diff --git a/lib/libpfctl/libpfctl.c b/lib/libpfctl/libpfctl.c index 3d52502f9ba8..576b256155fb 100644 --- a/lib/libpfctl/libpfctl.c +++ b/lib/libpfctl/libpfctl.c @@ -1,989 +1,995 @@ /*- * SPDX-License-Identifier: BSD-2-Clause * * Copyright (c) 2021 Rubicon Communications, LLC (Netgate) * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * * - Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * - Redistributions in binary form must reproduce the above * copyright notice, this list of conditions and the following * disclaimer in the documentation and/or other materials provided * with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE * POSSIBILITY OF SUCH DAMAGE. * * $FreeBSD$ */ #include #include #include #include #include #include #include #include #include #include #include #include #include #include "libpfctl.h" static int _pfctl_clear_states(int , const struct pfctl_kill *, unsigned int *, uint64_t); static void pf_nvuint_8_array(const nvlist_t *nvl, const char *name, size_t maxelems, u_int8_t *numbers, size_t *nelems) { const uint64_t *tmp; size_t elems; tmp = nvlist_get_number_array(nvl, name, &elems); assert(elems <= maxelems); for (size_t i = 0; i < elems; i++) numbers[i] = tmp[i]; if (nelems) *nelems = elems; } static void pf_nvuint_16_array(const nvlist_t *nvl, const char *name, size_t maxelems, u_int16_t *numbers, size_t *nelems) { const uint64_t *tmp; size_t elems; tmp = nvlist_get_number_array(nvl, name, &elems); assert(elems <= maxelems); for (size_t i = 0; i < elems; i++) numbers[i] = tmp[i]; if (nelems) *nelems = elems; } static void pf_nvuint_32_array(const nvlist_t *nvl, const char *name, size_t maxelems, u_int32_t *numbers, size_t *nelems) { const uint64_t *tmp; size_t elems; tmp = nvlist_get_number_array(nvl, name, &elems); assert(elems <= maxelems); for (size_t i = 0; i < elems; i++) numbers[i] = tmp[i]; if (nelems) *nelems = elems; } static void pf_nvuint_64_array(const nvlist_t *nvl, const char *name, size_t maxelems, u_int64_t *numbers, size_t *nelems) { const uint64_t *tmp; size_t elems; tmp = nvlist_get_number_array(nvl, name, &elems); assert(elems <= maxelems); for (size_t i = 0; i < elems; i++) numbers[i] = tmp[i]; if (nelems) *nelems = elems; } static void _pfctl_get_status_counters(const nvlist_t *nvl, struct pfctl_status_counters *counters) { const uint64_t *ids, *counts; const char *const *names; size_t id_len, counter_len, names_len; ids = nvlist_get_number_array(nvl, "ids", &id_len); counts = nvlist_get_number_array(nvl, "counters", &counter_len); names = nvlist_get_string_array(nvl, "names", &names_len); assert(id_len == counter_len); assert(counter_len == names_len); TAILQ_INIT(counters); for (size_t i = 0; i < id_len; i++) { struct pfctl_status_counter *c; c = malloc(sizeof(*c)); c->id = ids[i]; c->counter = counts[i]; c->name = strdup(names[i]); TAILQ_INSERT_TAIL(counters, c, entry); } } struct pfctl_status * pfctl_get_status(int dev) { struct pfioc_nv nv; struct pfctl_status *status; nvlist_t *nvl; size_t len; const void *chksum; status = calloc(1, sizeof(*status)); if (status == NULL) return (NULL); nv.data = malloc(4096); nv.len = nv.size = 4096; if (ioctl(dev, DIOCGETSTATUSNV, &nv)) { free(nv.data); free(status); return (NULL); } nvl = nvlist_unpack(nv.data, nv.len, 0); free(nv.data); if (nvl == NULL) { free(status); return (NULL); } status->running = nvlist_get_bool(nvl, "running"); status->since = nvlist_get_number(nvl, "since"); status->debug = nvlist_get_number(nvl, "debug"); status->hostid = nvlist_get_number(nvl, "hostid"); status->states = nvlist_get_number(nvl, "states"); status->src_nodes = nvlist_get_number(nvl, "src_nodes"); strlcpy(status->ifname, nvlist_get_string(nvl, "ifname"), IFNAMSIZ); chksum = nvlist_get_binary(nvl, "chksum", &len); assert(len == PF_MD5_DIGEST_LENGTH); memcpy(status->pf_chksum, chksum, len); _pfctl_get_status_counters(nvlist_get_nvlist(nvl, "counters"), &status->counters); _pfctl_get_status_counters(nvlist_get_nvlist(nvl, "lcounters"), &status->lcounters); _pfctl_get_status_counters(nvlist_get_nvlist(nvl, "fcounters"), &status->fcounters); _pfctl_get_status_counters(nvlist_get_nvlist(nvl, "scounters"), &status->scounters); pf_nvuint_64_array(nvl, "pcounters", 2 * 2 * 3, (uint64_t *)status->pcounters, NULL); pf_nvuint_64_array(nvl, "bcounters", 2 * 2, (uint64_t *)status->bcounters, NULL); nvlist_destroy(nvl); return (status); } void pfctl_free_status(struct pfctl_status *status) { struct pfctl_status_counter *c, *tmp; TAILQ_FOREACH_SAFE(c, &status->counters, entry, tmp) { free(c->name); free(c); } TAILQ_FOREACH_SAFE(c, &status->lcounters, entry, tmp) { free(c->name); free(c); } TAILQ_FOREACH_SAFE(c, &status->fcounters, entry, tmp) { free(c->name); free(c); } TAILQ_FOREACH_SAFE(c, &status->scounters, entry, tmp) { free(c->name); free(c); } free(status); } static void pfctl_nv_add_addr(nvlist_t *nvparent, const char *name, const struct pf_addr *addr) { nvlist_t *nvl = nvlist_create(0); nvlist_add_binary(nvl, "addr", addr, sizeof(*addr)); nvlist_add_nvlist(nvparent, name, nvl); nvlist_destroy(nvl); } static void pf_nvaddr_to_addr(const nvlist_t *nvl, struct pf_addr *addr) { size_t len; const void *data; data = nvlist_get_binary(nvl, "addr", &len); assert(len == sizeof(struct pf_addr)); memcpy(addr, data, len); } static void pfctl_nv_add_addr_wrap(nvlist_t *nvparent, const char *name, const struct pf_addr_wrap *addr) { nvlist_t *nvl = nvlist_create(0); nvlist_add_number(nvl, "type", addr->type); nvlist_add_number(nvl, "iflags", addr->iflags); if (addr->type == PF_ADDR_DYNIFTL) nvlist_add_string(nvl, "ifname", addr->v.ifname); if (addr->type == PF_ADDR_TABLE) nvlist_add_string(nvl, "tblname", addr->v.tblname); pfctl_nv_add_addr(nvl, "addr", &addr->v.a.addr); pfctl_nv_add_addr(nvl, "mask", &addr->v.a.mask); nvlist_add_nvlist(nvparent, name, nvl); nvlist_destroy(nvl); } static void pf_nvaddr_wrap_to_addr_wrap(const nvlist_t *nvl, struct pf_addr_wrap *addr) { addr->type = nvlist_get_number(nvl, "type"); addr->iflags = nvlist_get_number(nvl, "iflags"); if (addr->type == PF_ADDR_DYNIFTL) strlcpy(addr->v.ifname, nvlist_get_string(nvl, "ifname"), IFNAMSIZ); if (addr->type == PF_ADDR_TABLE) strlcpy(addr->v.tblname, nvlist_get_string(nvl, "tblname"), PF_TABLE_NAME_SIZE); pf_nvaddr_to_addr(nvlist_get_nvlist(nvl, "addr"), &addr->v.a.addr); pf_nvaddr_to_addr(nvlist_get_nvlist(nvl, "mask"), &addr->v.a.mask); } static void pfctl_nv_add_rule_addr(nvlist_t *nvparent, const char *name, const struct pf_rule_addr *addr) { u_int64_t ports[2]; nvlist_t *nvl = nvlist_create(0); pfctl_nv_add_addr_wrap(nvl, "addr", &addr->addr); ports[0] = addr->port[0]; ports[1] = addr->port[1]; nvlist_add_number_array(nvl, "port", ports, 2); nvlist_add_number(nvl, "neg", addr->neg); nvlist_add_number(nvl, "port_op", addr->port_op); nvlist_add_nvlist(nvparent, name, nvl); nvlist_destroy(nvl); } static void pf_nvrule_addr_to_rule_addr(const nvlist_t *nvl, struct pf_rule_addr *addr) { pf_nvaddr_wrap_to_addr_wrap(nvlist_get_nvlist(nvl, "addr"), &addr->addr); pf_nvuint_16_array(nvl, "port", 2, addr->port, NULL); addr->neg = nvlist_get_number(nvl, "neg"); addr->port_op = nvlist_get_number(nvl, "port_op"); } static void pfctl_nv_add_mape(nvlist_t *nvparent, const char *name, const struct pf_mape_portset *mape) { nvlist_t *nvl = nvlist_create(0); nvlist_add_number(nvl, "offset", mape->offset); nvlist_add_number(nvl, "psidlen", mape->psidlen); nvlist_add_number(nvl, "psid", mape->psid); nvlist_add_nvlist(nvparent, name, nvl); nvlist_destroy(nvl); } static void pfctl_nv_add_pool(nvlist_t *nvparent, const char *name, const struct pfctl_pool *pool) { u_int64_t ports[2]; nvlist_t *nvl = nvlist_create(0); nvlist_add_binary(nvl, "key", &pool->key, sizeof(pool->key)); pfctl_nv_add_addr(nvl, "counter", &pool->counter); nvlist_add_number(nvl, "tblidx", pool->tblidx); ports[0] = pool->proxy_port[0]; ports[1] = pool->proxy_port[1]; nvlist_add_number_array(nvl, "proxy_port", ports, 2); nvlist_add_number(nvl, "opts", pool->opts); pfctl_nv_add_mape(nvl, "mape", &pool->mape); nvlist_add_nvlist(nvparent, name, nvl); nvlist_destroy(nvl); } static void pf_nvmape_to_mape(const nvlist_t *nvl, struct pf_mape_portset *mape) { mape->offset = nvlist_get_number(nvl, "offset"); mape->psidlen = nvlist_get_number(nvl, "psidlen"); mape->psid = nvlist_get_number(nvl, "psid"); } static void pf_nvpool_to_pool(const nvlist_t *nvl, struct pfctl_pool *pool) { size_t len; const void *data; data = nvlist_get_binary(nvl, "key", &len); assert(len == sizeof(pool->key)); memcpy(&pool->key, data, len); pf_nvaddr_to_addr(nvlist_get_nvlist(nvl, "counter"), &pool->counter); pool->tblidx = nvlist_get_number(nvl, "tblidx"); pf_nvuint_16_array(nvl, "proxy_port", 2, pool->proxy_port, NULL); pool->opts = nvlist_get_number(nvl, "opts"); if (nvlist_exists_nvlist(nvl, "mape")) pf_nvmape_to_mape(nvlist_get_nvlist(nvl, "mape"), &pool->mape); } static void pfctl_nv_add_uid(nvlist_t *nvparent, const char *name, const struct pf_rule_uid *uid) { u_int64_t uids[2]; nvlist_t *nvl = nvlist_create(0); uids[0] = uid->uid[0]; uids[1] = uid->uid[1]; nvlist_add_number_array(nvl, "uid", uids, 2); nvlist_add_number(nvl, "op", uid->op); nvlist_add_nvlist(nvparent, name, nvl); nvlist_destroy(nvl); } static void pf_nvrule_uid_to_rule_uid(const nvlist_t *nvl, struct pf_rule_uid *uid) { pf_nvuint_32_array(nvl, "uid", 2, uid->uid, NULL); uid->op = nvlist_get_number(nvl, "op"); } static void pfctl_nv_add_divert(nvlist_t *nvparent, const char *name, const struct pfctl_rule *r) { nvlist_t *nvl = nvlist_create(0); pfctl_nv_add_addr(nvl, "addr", &r->divert.addr); nvlist_add_number(nvl, "port", r->divert.port); nvlist_add_nvlist(nvparent, name, nvl); nvlist_destroy(nvl); } static void pf_nvdivert_to_divert(const nvlist_t *nvl, struct pfctl_rule *rule) { pf_nvaddr_to_addr(nvlist_get_nvlist(nvl, "addr"), &rule->divert.addr); rule->divert.port = nvlist_get_number(nvl, "port"); } static void pf_nvrule_to_rule(const nvlist_t *nvl, struct pfctl_rule *rule) { const uint64_t *skip; const char *const *labels; size_t skipcount, labelcount; rule->nr = nvlist_get_number(nvl, "nr"); pf_nvrule_addr_to_rule_addr(nvlist_get_nvlist(nvl, "src"), &rule->src); pf_nvrule_addr_to_rule_addr(nvlist_get_nvlist(nvl, "dst"), &rule->dst); skip = nvlist_get_number_array(nvl, "skip", &skipcount); assert(skip); assert(skipcount == PF_SKIP_COUNT); for (int i = 0; i < PF_SKIP_COUNT; i++) rule->skip[i].nr = skip[i]; labels = nvlist_get_string_array(nvl, "labels", &labelcount); assert(labelcount <= PF_RULE_MAX_LABEL_COUNT); for (size_t i = 0; i < labelcount; i++) strlcpy(rule->label[i], labels[i], PF_RULE_LABEL_SIZE); strlcpy(rule->ifname, nvlist_get_string(nvl, "ifname"), IFNAMSIZ); strlcpy(rule->qname, nvlist_get_string(nvl, "qname"), PF_QNAME_SIZE); strlcpy(rule->pqname, nvlist_get_string(nvl, "pqname"), PF_QNAME_SIZE); strlcpy(rule->tagname, nvlist_get_string(nvl, "tagname"), PF_TAG_NAME_SIZE); strlcpy(rule->match_tagname, nvlist_get_string(nvl, "match_tagname"), PF_TAG_NAME_SIZE); strlcpy(rule->overload_tblname, nvlist_get_string(nvl, "overload_tblname"), PF_TABLE_NAME_SIZE); pf_nvpool_to_pool(nvlist_get_nvlist(nvl, "rpool"), &rule->rpool); rule->evaluations = nvlist_get_number(nvl, "evaluations"); pf_nvuint_64_array(nvl, "packets", 2, rule->packets, NULL); pf_nvuint_64_array(nvl, "bytes", 2, rule->bytes, NULL); rule->os_fingerprint = nvlist_get_number(nvl, "os_fingerprint"); rule->rtableid = nvlist_get_number(nvl, "rtableid"); pf_nvuint_32_array(nvl, "timeout", PFTM_MAX, rule->timeout, NULL); rule->max_states = nvlist_get_number(nvl, "max_states"); rule->max_src_nodes = nvlist_get_number(nvl, "max_src_nodes"); rule->max_src_states = nvlist_get_number(nvl, "max_src_states"); rule->max_src_conn = nvlist_get_number(nvl, "max_src_conn"); rule->max_src_conn_rate.limit = nvlist_get_number(nvl, "max_src_conn_rate.limit"); rule->max_src_conn_rate.seconds = nvlist_get_number(nvl, "max_src_conn_rate.seconds"); rule->qid = nvlist_get_number(nvl, "qid"); rule->pqid = nvlist_get_number(nvl, "pqid"); + rule->dnpipe = nvlist_get_number(nvl, "dnpipe"); + rule->dnrpipe = nvlist_get_number(nvl, "dnrpipe"); + rule->free_flags = nvlist_get_number(nvl, "dnflags"); rule->prob = nvlist_get_number(nvl, "prob"); rule->cuid = nvlist_get_number(nvl, "cuid"); rule->cpid = nvlist_get_number(nvl, "cpid"); rule->return_icmp = nvlist_get_number(nvl, "return_icmp"); rule->return_icmp6 = nvlist_get_number(nvl, "return_icmp6"); rule->max_mss = nvlist_get_number(nvl, "max_mss"); rule->scrub_flags = nvlist_get_number(nvl, "scrub_flags"); pf_nvrule_uid_to_rule_uid(nvlist_get_nvlist(nvl, "uid"), &rule->uid); pf_nvrule_uid_to_rule_uid(nvlist_get_nvlist(nvl, "gid"), (struct pf_rule_uid *)&rule->gid); rule->rule_flag = nvlist_get_number(nvl, "rule_flag"); rule->action = nvlist_get_number(nvl, "action"); rule->direction = nvlist_get_number(nvl, "direction"); rule->log = nvlist_get_number(nvl, "log"); rule->logif = nvlist_get_number(nvl, "logif"); rule->quick = nvlist_get_number(nvl, "quick"); rule->ifnot = nvlist_get_number(nvl, "ifnot"); rule->match_tag_not = nvlist_get_number(nvl, "match_tag_not"); rule->natpass = nvlist_get_number(nvl, "natpass"); rule->keep_state = nvlist_get_number(nvl, "keep_state"); rule->af = nvlist_get_number(nvl, "af"); rule->proto = nvlist_get_number(nvl, "proto"); rule->type = nvlist_get_number(nvl, "type"); rule->code = nvlist_get_number(nvl, "code"); rule->flags = nvlist_get_number(nvl, "flags"); rule->flagset = nvlist_get_number(nvl, "flagset"); rule->min_ttl = nvlist_get_number(nvl, "min_ttl"); rule->allow_opts = nvlist_get_number(nvl, "allow_opts"); rule->rt = nvlist_get_number(nvl, "rt"); rule->return_ttl = nvlist_get_number(nvl, "return_ttl"); rule->tos = nvlist_get_number(nvl, "tos"); rule->set_tos = nvlist_get_number(nvl, "set_tos"); rule->anchor_relative = nvlist_get_number(nvl, "anchor_relative"); rule->anchor_wildcard = nvlist_get_number(nvl, "anchor_wildcard"); rule->flush = nvlist_get_number(nvl, "flush"); rule->prio = nvlist_get_number(nvl, "prio"); pf_nvuint_8_array(nvl, "set_prio", 2, rule->set_prio, NULL); pf_nvdivert_to_divert(nvlist_get_nvlist(nvl, "divert"), rule); rule->states_cur = nvlist_get_number(nvl, "states_cur"); rule->states_tot = nvlist_get_number(nvl, "states_tot"); rule->src_nodes = nvlist_get_number(nvl, "src_nodes"); } int pfctl_add_rule(int dev, const struct pfctl_rule *r, const char *anchor, const char *anchor_call, u_int32_t ticket, u_int32_t pool_ticket) { struct pfioc_nv nv; u_int64_t timeouts[PFTM_MAX]; u_int64_t set_prio[2]; nvlist_t *nvl, *nvlr; size_t labelcount; int ret; nvl = nvlist_create(0); nvlr = nvlist_create(0); nvlist_add_number(nvl, "ticket", ticket); nvlist_add_number(nvl, "pool_ticket", pool_ticket); nvlist_add_string(nvl, "anchor", anchor); nvlist_add_string(nvl, "anchor_call", anchor_call); nvlist_add_number(nvlr, "nr", r->nr); pfctl_nv_add_rule_addr(nvlr, "src", &r->src); pfctl_nv_add_rule_addr(nvlr, "dst", &r->dst); labelcount = 0; while (r->label[labelcount][0] != 0 && labelcount < PF_RULE_MAX_LABEL_COUNT) { nvlist_append_string_array(nvlr, "labels", r->label[labelcount]); labelcount++; } nvlist_add_string(nvlr, "ifname", r->ifname); nvlist_add_string(nvlr, "qname", r->qname); nvlist_add_string(nvlr, "pqname", r->pqname); nvlist_add_string(nvlr, "tagname", r->tagname); nvlist_add_string(nvlr, "match_tagname", r->match_tagname); nvlist_add_string(nvlr, "overload_tblname", r->overload_tblname); pfctl_nv_add_pool(nvlr, "rpool", &r->rpool); nvlist_add_number(nvlr, "os_fingerprint", r->os_fingerprint); nvlist_add_number(nvlr, "rtableid", r->rtableid); for (int i = 0; i < PFTM_MAX; i++) timeouts[i] = r->timeout[i]; nvlist_add_number_array(nvlr, "timeout", timeouts, PFTM_MAX); nvlist_add_number(nvlr, "max_states", r->max_states); nvlist_add_number(nvlr, "max_src_nodes", r->max_src_nodes); nvlist_add_number(nvlr, "max_src_states", r->max_src_states); nvlist_add_number(nvlr, "max_src_conn", r->max_src_conn); nvlist_add_number(nvlr, "max_src_conn_rate.limit", r->max_src_conn_rate.limit); nvlist_add_number(nvlr, "max_src_conn_rate.seconds", r->max_src_conn_rate.seconds); + nvlist_add_number(nvlr, "dnpipe", r->dnpipe); + nvlist_add_number(nvlr, "dnrpipe", r->dnrpipe); + nvlist_add_number(nvlr, "dnflags", r->free_flags); nvlist_add_number(nvlr, "prob", r->prob); nvlist_add_number(nvlr, "cuid", r->cuid); nvlist_add_number(nvlr, "cpid", r->cpid); nvlist_add_number(nvlr, "return_icmp", r->return_icmp); nvlist_add_number(nvlr, "return_icmp6", r->return_icmp6); nvlist_add_number(nvlr, "max_mss", r->max_mss); nvlist_add_number(nvlr, "scrub_flags", r->scrub_flags); pfctl_nv_add_uid(nvlr, "uid", &r->uid); pfctl_nv_add_uid(nvlr, "gid", (const struct pf_rule_uid *)&r->gid); nvlist_add_number(nvlr, "rule_flag", r->rule_flag); nvlist_add_number(nvlr, "action", r->action); nvlist_add_number(nvlr, "direction", r->direction); nvlist_add_number(nvlr, "log", r->log); nvlist_add_number(nvlr, "logif", r->logif); nvlist_add_number(nvlr, "quick", r->quick); nvlist_add_number(nvlr, "ifnot", r->ifnot); nvlist_add_number(nvlr, "match_tag_not", r->match_tag_not); nvlist_add_number(nvlr, "natpass", r->natpass); nvlist_add_number(nvlr, "keep_state", r->keep_state); nvlist_add_number(nvlr, "af", r->af); nvlist_add_number(nvlr, "proto", r->proto); nvlist_add_number(nvlr, "type", r->type); nvlist_add_number(nvlr, "code", r->code); nvlist_add_number(nvlr, "flags", r->flags); nvlist_add_number(nvlr, "flagset", r->flagset); nvlist_add_number(nvlr, "min_ttl", r->min_ttl); nvlist_add_number(nvlr, "allow_opts", r->allow_opts); nvlist_add_number(nvlr, "rt", r->rt); nvlist_add_number(nvlr, "return_ttl", r->return_ttl); nvlist_add_number(nvlr, "tos", r->tos); nvlist_add_number(nvlr, "set_tos", r->set_tos); nvlist_add_number(nvlr, "anchor_relative", r->anchor_relative); nvlist_add_number(nvlr, "anchor_wildcard", r->anchor_wildcard); nvlist_add_number(nvlr, "flush", r->flush); nvlist_add_number(nvlr, "prio", r->prio); set_prio[0] = r->set_prio[0]; set_prio[1] = r->set_prio[1]; nvlist_add_number_array(nvlr, "set_prio", set_prio, 2); pfctl_nv_add_divert(nvlr, "divert", r); nvlist_add_nvlist(nvl, "rule", nvlr); nvlist_destroy(nvlr); /* Now do the call. */ nv.data = nvlist_pack(nvl, &nv.len); nv.size = nv.len; ret = ioctl(dev, DIOCADDRULENV, &nv); free(nv.data); nvlist_destroy(nvl); return (ret); } int pfctl_get_rule(int dev, u_int32_t nr, u_int32_t ticket, const char *anchor, u_int32_t ruleset, struct pfctl_rule *rule, char *anchor_call) { return (pfctl_get_clear_rule(dev, nr, ticket, anchor, ruleset, rule, anchor_call, false)); } int pfctl_get_clear_rule(int dev, u_int32_t nr, u_int32_t ticket, const char *anchor, u_int32_t ruleset, struct pfctl_rule *rule, char *anchor_call, bool clear) { struct pfioc_nv nv; nvlist_t *nvl; void *nvlpacked; int ret; nvl = nvlist_create(0); if (nvl == 0) return (ENOMEM); nvlist_add_number(nvl, "nr", nr); nvlist_add_number(nvl, "ticket", ticket); nvlist_add_string(nvl, "anchor", anchor); nvlist_add_number(nvl, "ruleset", ruleset); if (clear) nvlist_add_bool(nvl, "clear_counter", true); nvlpacked = nvlist_pack(nvl, &nv.len); if (nvlpacked == NULL) { nvlist_destroy(nvl); return (ENOMEM); } nv.data = malloc(8182); nv.size = 8192; assert(nv.len <= nv.size); memcpy(nv.data, nvlpacked, nv.len); nvlist_destroy(nvl); nvl = NULL; free(nvlpacked); ret = ioctl(dev, DIOCGETRULENV, &nv); if (ret != 0) { free(nv.data); return (ret); } nvl = nvlist_unpack(nv.data, nv.len, 0); if (nvl == NULL) { free(nv.data); return (EIO); } pf_nvrule_to_rule(nvlist_get_nvlist(nvl, "rule"), rule); if (anchor_call) strlcpy(anchor_call, nvlist_get_string(nvl, "anchor_call"), MAXPATHLEN); free(nv.data); nvlist_destroy(nvl); return (0); } int pfctl_set_keepcounters(int dev, bool keep) { struct pfioc_nv nv; nvlist_t *nvl; int ret; nvl = nvlist_create(0); nvlist_add_bool(nvl, "keep_counters", keep); nv.data = nvlist_pack(nvl, &nv.len); nv.size = nv.len; nvlist_destroy(nvl); ret = ioctl(dev, DIOCKEEPCOUNTERS, &nv); free(nv.data); return (ret); } static void pfctl_nv_add_state_cmp(nvlist_t *nvl, const char *name, const struct pfctl_state_cmp *cmp) { nvlist_t *nv; nv = nvlist_create(0); nvlist_add_number(nv, "id", cmp->id); nvlist_add_number(nv, "creatorid", cmp->creatorid); nvlist_add_number(nv, "direction", cmp->direction); nvlist_add_nvlist(nvl, name, nv); nvlist_destroy(nv); } static void pf_state_key_export_to_state_key(struct pfctl_state_key *ps, const struct pf_state_key_export *s) { bcopy(s->addr, ps->addr, sizeof(ps->addr[0]) * 2); ps->port[0] = s->port[0]; ps->port[1] = s->port[1]; } static void pf_state_peer_export_to_state_peer(struct pfctl_state_peer *ps, const struct pf_state_peer_export *s) { /* Ignore scrub. */ ps->seqlo = s->seqlo; ps->seqhi = s->seqhi; ps->seqdiff = s->seqdiff; /* Ignore max_win & mss */ ps->state = s->state; ps->wscale = s->wscale; } static void pf_state_export_to_state(struct pfctl_state *ps, const struct pf_state_export *s) { assert(s->version >= PF_STATE_VERSION); ps->id = s->id; strlcpy(ps->ifname, s->ifname, sizeof(ps->ifname)); strlcpy(ps->orig_ifname, s->orig_ifname, sizeof(ps->orig_ifname)); pf_state_key_export_to_state_key(&ps->key[0], &s->key[0]); pf_state_key_export_to_state_key(&ps->key[1], &s->key[1]); pf_state_peer_export_to_state_peer(&ps->src, &s->src); pf_state_peer_export_to_state_peer(&ps->dst, &s->dst); bcopy(&s->rt_addr, &ps->rt_addr, sizeof(ps->rt_addr)); ps->rule = ntohl(s->rule); ps->anchor = ntohl(s->anchor); ps->nat_rule = ntohl(s->nat_rule); ps->creation = ntohl(s->creation); ps->expire = ntohl(s->expire); ps->packets[0] = s->packets[0]; ps->packets[1] = s->packets[1]; ps->bytes[0] = s->bytes[0]; ps->bytes[1] = s->bytes[1]; ps->creatorid = s->creatorid; ps->key[0].proto = s->proto; ps->key[1].proto = s->proto; ps->key[0].af = s->af; ps->key[1].af = s->af; ps->direction = s->direction; ps->state_flags = s->state_flags; ps->sync_flags = s->sync_flags; } int pfctl_get_states(int dev, struct pfctl_states *states) { struct pfioc_states_v2 ps; struct pf_state_export *p; char *inbuf = NULL, *newinbuf = NULL; unsigned int len = 0; int i, error; bzero(&ps, sizeof(ps)); ps.ps_req_version = PF_STATE_VERSION; bzero(states, sizeof(*states)); TAILQ_INIT(&states->states); for (;;) { ps.ps_len = len; if (len) { newinbuf = realloc(inbuf, len); if (newinbuf == NULL) return (ENOMEM); ps.ps_buf = inbuf = newinbuf; } if ((error = ioctl(dev, DIOCGETSTATESV2, &ps)) < 0) { free(inbuf); return (error); } if (ps.ps_len + sizeof(struct pfioc_states_v2) < len) break; if (len == 0 && ps.ps_len == 0) goto out; if (len == 0 && ps.ps_len != 0) len = ps.ps_len; if (ps.ps_len == 0) goto out; /* no states */ len *= 2; } p = ps.ps_states; for (i = 0; i < ps.ps_len; i += sizeof(*p), p++) { struct pfctl_state *s = malloc(sizeof(*s)); if (s == NULL) { pfctl_free_states(states); error = ENOMEM; goto out; } pf_state_export_to_state(s, p); TAILQ_INSERT_TAIL(&states->states, s, entry); } out: free(inbuf); return (error); } void pfctl_free_states(struct pfctl_states *states) { struct pfctl_state *s, *tmp; TAILQ_FOREACH_SAFE(s, &states->states, entry, tmp) { free(s); } bzero(states, sizeof(*states)); } static int _pfctl_clear_states(int dev, const struct pfctl_kill *kill, unsigned int *killed, uint64_t ioctlval) { struct pfioc_nv nv; nvlist_t *nvl; int ret; nvl = nvlist_create(0); pfctl_nv_add_state_cmp(nvl, "cmp", &kill->cmp); nvlist_add_number(nvl, "af", kill->af); nvlist_add_number(nvl, "proto", kill->proto); pfctl_nv_add_rule_addr(nvl, "src", &kill->src); pfctl_nv_add_rule_addr(nvl, "dst", &kill->dst); pfctl_nv_add_rule_addr(nvl, "rt_addr", &kill->rt_addr); nvlist_add_string(nvl, "ifname", kill->ifname); nvlist_add_string(nvl, "label", kill->label); nvlist_add_bool(nvl, "kill_match", kill->kill_match); nv.data = nvlist_pack(nvl, &nv.len); nv.size = nv.len; nvlist_destroy(nvl); nvl = NULL; ret = ioctl(dev, ioctlval, &nv); if (ret != 0) { free(nv.data); return (ret); } nvl = nvlist_unpack(nv.data, nv.len, 0); if (nvl == NULL) { free(nv.data); return (EIO); } if (killed) *killed = nvlist_get_number(nvl, "killed"); nvlist_destroy(nvl); free(nv.data); return (ret); } int pfctl_clear_states(int dev, const struct pfctl_kill *kill, unsigned int *killed) { return (_pfctl_clear_states(dev, kill, killed, DIOCCLRSTATESNV)); } int pfctl_kill_states(int dev, const struct pfctl_kill *kill, unsigned int *killed) { return (_pfctl_clear_states(dev, kill, killed, DIOCKILLSTATESNV)); } int pfctl_set_syncookies(int dev, const struct pfctl_syncookies *s) { struct pfioc_nv nv; nvlist_t *nvl; int ret; nvl = nvlist_create(0); nvlist_add_bool(nvl, "enabled", s->mode != PFCTL_SYNCOOKIES_NEVER); nvlist_add_bool(nvl, "adaptive", false); /* XXX TODO */ nv.data = nvlist_pack(nvl, &nv.len); nv.size = nv.len; nvlist_destroy(nvl); nvl = NULL; ret = ioctl(dev, DIOCSETSYNCOOKIES, &nv); free(nv.data); return (ret); } int pfctl_get_syncookies(int dev, struct pfctl_syncookies *s) { struct pfioc_nv nv; nvlist_t *nvl; bool enabled, adaptive; bzero(s, sizeof(*s)); nv.data = malloc(128); nv.len = nv.size = 128; if (ioctl(dev, DIOCGETSYNCOOKIES, &nv)) { free(nv.data); return (errno); } nvl = nvlist_unpack(nv.data, nv.len, 0); free(nv.data); if (nvl == NULL) { return (EIO); } enabled = nvlist_get_bool(nvl, "enabled"); adaptive = nvlist_get_bool(nvl, "adaptive"); s->mode = enabled ? PFCTL_SYNCOOKIES_ALWAYS : PFCTL_SYNCOOKIES_NEVER; nvlist_destroy(nvl); return (0); } diff --git a/lib/libpfctl/libpfctl.h b/lib/libpfctl/libpfctl.h index 70de7627f0a6..f57497b4a88a 100644 --- a/lib/libpfctl/libpfctl.h +++ b/lib/libpfctl/libpfctl.h @@ -1,305 +1,308 @@ /*- * SPDX-License-Identifier: BSD-2-Clause * * Copyright (c) 2021 Rubicon Communications, LLC (Netgate) * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * * - Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * - Redistributions in binary form must reproduce the above * copyright notice, this list of conditions and the following * disclaimer in the documentation and/or other materials provided * with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE * POSSIBILITY OF SUCH DAMAGE. * * $FreeBSD$ */ #ifndef _PFCTL_IOCTL_H_ #define _PFCTL_IOCTL_H_ #include struct pfctl_anchor; struct pfctl_status_counter { uint64_t id; uint64_t counter; char *name; TAILQ_ENTRY(pfctl_status_counter) entry; }; TAILQ_HEAD(pfctl_status_counters, pfctl_status_counter); struct pfctl_status { bool running; uint32_t since; uint32_t debug; uint32_t hostid; uint64_t states; uint64_t src_nodes; char ifname[IFNAMSIZ]; uint8_t pf_chksum[PF_MD5_DIGEST_LENGTH]; struct pfctl_status_counters counters; struct pfctl_status_counters lcounters; struct pfctl_status_counters fcounters; struct pfctl_status_counters scounters; uint64_t pcounters[2][2][3]; uint64_t bcounters[2][2]; }; struct pfctl_pool { struct pf_palist list; struct pf_pooladdr *cur; struct pf_poolhashkey key; struct pf_addr counter; struct pf_mape_portset mape; int tblidx; u_int16_t proxy_port[2]; u_int8_t opts; }; struct pfctl_rule { struct pf_rule_addr src; struct pf_rule_addr dst; union pf_rule_ptr skip[PF_SKIP_COUNT]; char label[PF_RULE_MAX_LABEL_COUNT][PF_RULE_LABEL_SIZE]; char ifname[IFNAMSIZ]; char qname[PF_QNAME_SIZE]; char pqname[PF_QNAME_SIZE]; char tagname[PF_TAG_NAME_SIZE]; char match_tagname[PF_TAG_NAME_SIZE]; char overload_tblname[PF_TABLE_NAME_SIZE]; TAILQ_ENTRY(pfctl_rule) entries; struct pfctl_pool rpool; u_int64_t evaluations; u_int64_t packets[2]; u_int64_t bytes[2]; struct pfi_kif *kif; struct pfctl_anchor *anchor; struct pfr_ktable *overload_tbl; pf_osfp_t os_fingerprint; int rtableid; u_int32_t timeout[PFTM_MAX]; u_int32_t max_states; u_int32_t max_src_nodes; u_int32_t max_src_states; u_int32_t max_src_conn; struct { u_int32_t limit; u_int32_t seconds; } max_src_conn_rate; u_int32_t qid; u_int32_t pqid; + u_int16_t dnpipe; + u_int16_t dnrpipe; + u_int32_t free_flags; u_int32_t nr; u_int32_t prob; uid_t cuid; pid_t cpid; uint64_t states_cur; uint64_t states_tot; uint64_t src_nodes; u_int16_t return_icmp; u_int16_t return_icmp6; u_int16_t max_mss; u_int16_t tag; u_int16_t match_tag; u_int16_t scrub_flags; struct pf_rule_uid uid; struct pf_rule_gid gid; u_int32_t rule_flag; u_int8_t action; u_int8_t direction; u_int8_t log; u_int8_t logif; u_int8_t quick; u_int8_t ifnot; u_int8_t match_tag_not; u_int8_t natpass; u_int8_t keep_state; sa_family_t af; u_int8_t proto; u_int8_t type; u_int8_t code; u_int8_t flags; u_int8_t flagset; u_int8_t min_ttl; u_int8_t allow_opts; u_int8_t rt; u_int8_t return_ttl; u_int8_t tos; u_int8_t set_tos; u_int8_t anchor_relative; u_int8_t anchor_wildcard; u_int8_t flush; u_int8_t prio; u_int8_t set_prio[2]; struct { struct pf_addr addr; u_int16_t port; } divert; }; TAILQ_HEAD(pfctl_rulequeue, pfctl_rule); struct pfctl_ruleset { struct { struct pfctl_rulequeue queues[2]; struct { struct pfctl_rulequeue *ptr; struct pfctl_rule **ptr_array; u_int32_t rcount; u_int32_t ticket; int open; } active, inactive; } rules[PF_RULESET_MAX]; struct pfctl_anchor *anchor; u_int32_t tticket; int tables; int topen; }; RB_HEAD(pfctl_anchor_global, pfctl_anchor); RB_HEAD(pfctl_anchor_node, pfctl_anchor); struct pfctl_anchor { RB_ENTRY(pfctl_anchor) entry_global; RB_ENTRY(pfctl_anchor) entry_node; struct pfctl_anchor *parent; struct pfctl_anchor_node children; char name[PF_ANCHOR_NAME_SIZE]; char path[MAXPATHLEN]; struct pfctl_ruleset ruleset; int refcnt; /* anchor rules */ int match; /* XXX: used for pfctl black magic */ }; RB_PROTOTYPE(pfctl_anchor_global, pfctl_anchor, entry_global, pf_anchor_compare); RB_PROTOTYPE(pfctl_anchor_node, pfctl_anchor, entry_node, pf_anchor_compare); struct pfctl_state_cmp { uint64_t id; uint32_t creatorid; uint8_t direction; }; struct pfctl_kill { struct pfctl_state_cmp cmp; sa_family_t af; int proto; struct pf_rule_addr src; struct pf_rule_addr dst; struct pf_rule_addr rt_addr; char ifname[IFNAMSIZ]; char label[PF_RULE_LABEL_SIZE]; bool kill_match; }; struct pfctl_state_peer { uint32_t seqlo; uint32_t seqhi; uint32_t seqdiff; uint8_t state; uint8_t wscale; }; struct pfctl_state_key { struct pf_addr addr[2]; uint16_t port[2]; sa_family_t af; uint8_t proto; }; struct pfctl_state { TAILQ_ENTRY(pfctl_state) entry; uint64_t id; uint32_t creatorid; uint8_t direction; struct pfctl_state_peer src; struct pfctl_state_peer dst; uint32_t rule; uint32_t anchor; uint32_t nat_rule; struct pf_addr rt_addr; struct pfctl_state_key key[2]; /* addresses stack and wire */ char ifname[IFNAMSIZ]; char orig_ifname[IFNAMSIZ]; uint64_t packets[2]; uint64_t bytes[2]; uint32_t creation; uint32_t expire; uint32_t pfsync_time; uint8_t state_flags; uint32_t sync_flags; }; TAILQ_HEAD(pfctl_statelist, pfctl_state); struct pfctl_states { struct pfctl_statelist states; size_t count; }; enum pfctl_syncookies_mode { PFCTL_SYNCOOKIES_NEVER, PFCTL_SYNCOOKIES_ALWAYS }; struct pfctl_syncookies { enum pfctl_syncookies_mode mode; }; struct pfctl_status* pfctl_get_status(int dev); void pfctl_free_status(struct pfctl_status *status); int pfctl_get_rule(int dev, u_int32_t nr, u_int32_t ticket, const char *anchor, u_int32_t ruleset, struct pfctl_rule *rule, char *anchor_call); int pfctl_get_clear_rule(int dev, u_int32_t nr, u_int32_t ticket, const char *anchor, u_int32_t ruleset, struct pfctl_rule *rule, char *anchor_call, bool clear); int pfctl_add_rule(int dev, const struct pfctl_rule *r, const char *anchor, const char *anchor_call, u_int32_t ticket, u_int32_t pool_ticket); int pfctl_set_keepcounters(int dev, bool keep); int pfctl_get_states(int dev, struct pfctl_states *states); void pfctl_free_states(struct pfctl_states *states); int pfctl_clear_states(int dev, const struct pfctl_kill *kill, unsigned int *killed); int pfctl_kill_states(int dev, const struct pfctl_kill *kill, unsigned int *killed); int pfctl_set_syncookies(int dev, const struct pfctl_syncookies *s); int pfctl_get_syncookies(int dev, struct pfctl_syncookies *s); #endif diff --git a/sbin/pfctl/parse.y b/sbin/pfctl/parse.y index dbfe299cf34f..6bcf5a0bc397 100644 --- a/sbin/pfctl/parse.y +++ b/sbin/pfctl/parse.y @@ -1,6466 +1,6507 @@ /* $OpenBSD: parse.y,v 1.554 2008/10/17 12:59:53 henning Exp $ */ /*- * SPDX-License-Identifier: BSD-2-Clause * * Copyright (c) 2001 Markus Friedl. All rights reserved. * Copyright (c) 2001 Daniel Hartmeier. All rights reserved. * Copyright (c) 2001 Theo de Raadt. All rights reserved. * Copyright (c) 2002,2003 Henning Brauer. All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. */ %{ #include __FBSDID("$FreeBSD$"); #define PFIOC_USE_LATEST #include #include #include #ifdef __FreeBSD__ #include #endif #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include "pfctl_parser.h" #include "pfctl.h" static struct pfctl *pf = NULL; static int debug = 0; static int rulestate = 0; static u_int16_t returnicmpdefault = (ICMP_UNREACH << 8) | ICMP_UNREACH_PORT; static u_int16_t returnicmp6default = (ICMP6_DST_UNREACH << 8) | ICMP6_DST_UNREACH_NOPORT; static int blockpolicy = PFRULE_DROP; static int failpolicy = PFRULE_DROP; static int require_order = 1; static int default_statelock; static TAILQ_HEAD(files, file) files = TAILQ_HEAD_INITIALIZER(files); static struct file { TAILQ_ENTRY(file) entry; FILE *stream; char *name; int lineno; int errors; } *file; struct file *pushfile(const char *, int); int popfile(void); int check_file_secrecy(int, const char *); int yyparse(void); int yylex(void); int yyerror(const char *, ...); int kw_cmp(const void *, const void *); int lookup(char *); int lgetc(int); int lungetc(int); int findeol(void); static TAILQ_HEAD(symhead, sym) symhead = TAILQ_HEAD_INITIALIZER(symhead); struct sym { TAILQ_ENTRY(sym) entry; int used; int persist; char *nam; char *val; }; int symset(const char *, const char *, int); char *symget(const char *); int atoul(char *, u_long *); enum { PFCTL_STATE_NONE, PFCTL_STATE_OPTION, PFCTL_STATE_SCRUB, PFCTL_STATE_QUEUE, PFCTL_STATE_NAT, PFCTL_STATE_FILTER }; struct node_proto { u_int8_t proto; struct node_proto *next; struct node_proto *tail; }; struct node_port { u_int16_t port[2]; u_int8_t op; struct node_port *next; struct node_port *tail; }; struct node_uid { uid_t uid[2]; u_int8_t op; struct node_uid *next; struct node_uid *tail; }; struct node_gid { gid_t gid[2]; u_int8_t op; struct node_gid *next; struct node_gid *tail; }; struct node_icmp { u_int8_t code; u_int8_t type; u_int8_t proto; struct node_icmp *next; struct node_icmp *tail; }; enum { PF_STATE_OPT_MAX, PF_STATE_OPT_NOSYNC, PF_STATE_OPT_SRCTRACK, PF_STATE_OPT_MAX_SRC_STATES, PF_STATE_OPT_MAX_SRC_CONN, PF_STATE_OPT_MAX_SRC_CONN_RATE, PF_STATE_OPT_MAX_SRC_NODES, PF_STATE_OPT_OVERLOAD, PF_STATE_OPT_STATELOCK, PF_STATE_OPT_TIMEOUT, PF_STATE_OPT_SLOPPY, }; enum { PF_SRCTRACK_NONE, PF_SRCTRACK, PF_SRCTRACK_GLOBAL, PF_SRCTRACK_RULE }; struct node_state_opt { int type; union { u_int32_t max_states; u_int32_t max_src_states; u_int32_t max_src_conn; struct { u_int32_t limit; u_int32_t seconds; } max_src_conn_rate; struct { u_int8_t flush; char tblname[PF_TABLE_NAME_SIZE]; } overload; u_int32_t max_src_nodes; u_int8_t src_track; u_int32_t statelock; struct { int number; u_int32_t seconds; } timeout; } data; struct node_state_opt *next; struct node_state_opt *tail; }; struct peer { struct node_host *host; struct node_port *port; }; static struct node_queue { char queue[PF_QNAME_SIZE]; char parent[PF_QNAME_SIZE]; char ifname[IFNAMSIZ]; int scheduler; struct node_queue *next; struct node_queue *tail; } *queues = NULL; struct node_qassign { char *qname; char *pqname; }; static struct filter_opts { int marker; #define FOM_FLAGS 0x01 #define FOM_ICMP 0x02 #define FOM_TOS 0x04 #define FOM_KEEP 0x08 #define FOM_SRCTRACK 0x10 #define FOM_SETPRIO 0x0400 #define FOM_PRIO 0x2000 struct node_uid *uid; struct node_gid *gid; struct { u_int8_t b1; u_int8_t b2; u_int16_t w; u_int16_t w2; } flags; struct node_icmp *icmpspec; u_int32_t tos; u_int32_t prob; struct { int action; struct node_state_opt *options; } keep; int fragment; int allowopts; char *label[PF_RULE_MAX_LABEL_COUNT]; int labelcount; struct node_qassign queues; char *tag; char *match_tag; u_int8_t match_tag_not; + u_int16_t dnpipe; + u_int16_t dnrpipe; + u_int32_t free_flags; u_int rtableid; u_int8_t prio; u_int8_t set_prio[2]; struct { struct node_host *addr; u_int16_t port; } divert; } filter_opts; static struct antispoof_opts { char *label[PF_RULE_MAX_LABEL_COUNT]; int labelcount; u_int rtableid; } antispoof_opts; static struct scrub_opts { int marker; #define SOM_MINTTL 0x01 #define SOM_MAXMSS 0x02 #define SOM_FRAGCACHE 0x04 #define SOM_SETTOS 0x08 int nodf; int minttl; int maxmss; int settos; int fragcache; int randomid; int reassemble_tcp; char *match_tag; u_int8_t match_tag_not; u_int rtableid; } scrub_opts; static struct queue_opts { int marker; #define QOM_BWSPEC 0x01 #define QOM_SCHEDULER 0x02 #define QOM_PRIORITY 0x04 #define QOM_TBRSIZE 0x08 #define QOM_QLIMIT 0x10 struct node_queue_bw queue_bwspec; struct node_queue_opt scheduler; int priority; unsigned int tbrsize; int qlimit; } queue_opts; static struct table_opts { int flags; int init_addr; struct node_tinithead init_nodes; } table_opts; static struct pool_opts { int marker; #define POM_TYPE 0x01 #define POM_STICKYADDRESS 0x02 u_int8_t opts; int type; int staticport; struct pf_poolhashkey *key; struct pf_mape_portset mape; } pool_opts; static struct codel_opts codel_opts; static struct node_hfsc_opts hfsc_opts; static struct node_fairq_opts fairq_opts; static struct node_state_opt *keep_state_defaults = NULL; int disallow_table(struct node_host *, const char *); int disallow_urpf_failed(struct node_host *, const char *); int disallow_alias(struct node_host *, const char *); int rule_consistent(struct pfctl_rule *, int); int filter_consistent(struct pfctl_rule *, int); int nat_consistent(struct pfctl_rule *); int rdr_consistent(struct pfctl_rule *); int process_tabledef(char *, struct table_opts *); void expand_label_str(char *, size_t, const char *, const char *); void expand_label_if(const char *, char *, size_t, const char *); void expand_label_addr(const char *, char *, size_t, u_int8_t, struct node_host *); void expand_label_port(const char *, char *, size_t, struct node_port *); void expand_label_proto(const char *, char *, size_t, u_int8_t); void expand_label_nr(const char *, char *, size_t); void expand_label(char *, size_t, const char *, u_int8_t, struct node_host *, struct node_port *, struct node_host *, struct node_port *, u_int8_t); void expand_rule(struct pfctl_rule *, struct node_if *, struct node_host *, struct node_proto *, struct node_os *, struct node_host *, struct node_port *, struct node_host *, struct node_port *, struct node_uid *, struct node_gid *, struct node_icmp *, const char *); int expand_altq(struct pf_altq *, struct node_if *, struct node_queue *, struct node_queue_bw bwspec, struct node_queue_opt *); int expand_queue(struct pf_altq *, struct node_if *, struct node_queue *, struct node_queue_bw, struct node_queue_opt *); int expand_skip_interface(struct node_if *); int check_rulestate(int); int getservice(char *); int rule_label(struct pfctl_rule *, char *s[PF_RULE_MAX_LABEL_COUNT]); int rt_tableid_max(void); void mv_rules(struct pfctl_ruleset *, struct pfctl_ruleset *); void decide_address_family(struct node_host *, sa_family_t *); void remove_invalid_hosts(struct node_host **, sa_family_t *); int invalid_redirect(struct node_host *, sa_family_t); u_int16_t parseicmpspec(char *, sa_family_t); int kw_casecmp(const void *, const void *); int map_tos(char *string, int *); static TAILQ_HEAD(loadanchorshead, loadanchors) loadanchorshead = TAILQ_HEAD_INITIALIZER(loadanchorshead); struct loadanchors { TAILQ_ENTRY(loadanchors) entries; char *anchorname; char *filename; }; typedef struct { union { int64_t number; double probability; int i; char *string; u_int rtableid; struct { u_int8_t b1; u_int8_t b2; u_int16_t w; u_int16_t w2; } b; struct range { int a; int b; int t; } range; struct node_if *interface; struct node_proto *proto; struct node_icmp *icmp; struct node_host *host; struct node_os *os; struct node_port *port; struct node_uid *uid; struct node_gid *gid; struct node_state_opt *state_opt; struct peer peer; struct { struct peer src, dst; struct node_os *src_os; } fromto; struct { struct node_host *host; u_int8_t rt; u_int8_t pool_opts; sa_family_t af; struct pf_poolhashkey *key; } route; struct redirection { struct node_host *host; struct range rport; } *redirection; struct { int action; struct node_state_opt *options; } keep_state; struct { u_int8_t log; u_int8_t logif; u_int8_t quick; } logquick; struct { int neg; char *name; } tagged; struct pf_poolhashkey *hashkey; struct node_queue *queue; struct node_queue_opt queue_options; struct node_queue_bw queue_bwspec; struct node_qassign qassign; struct filter_opts filter_opts; struct antispoof_opts antispoof_opts; struct queue_opts queue_opts; struct scrub_opts scrub_opts; struct table_opts table_opts; struct pool_opts pool_opts; struct node_hfsc_opts hfsc_opts; struct node_fairq_opts fairq_opts; struct codel_opts codel_opts; } v; int lineno; } YYSTYPE; #define PPORT_RANGE 1 #define PPORT_STAR 2 int parseport(char *, struct range *r, int); #define DYNIF_MULTIADDR(addr) ((addr).type == PF_ADDR_DYNIFTL && \ (!((addr).iflags & PFI_AFLAG_NOALIAS) || \ !isdigit((addr).v.ifname[strlen((addr).v.ifname)-1]))) %} %token PASS BLOCK MATCH SCRUB RETURN IN OS OUT LOG QUICK ON FROM TO FLAGS %token RETURNRST RETURNICMP RETURNICMP6 PROTO INET INET6 ALL ANY ICMPTYPE %token ICMP6TYPE CODE KEEP MODULATE STATE PORT RDR NAT BINAT ARROW NODF %token MINTTL ERROR ALLOWOPTS FASTROUTE FILENAME ROUTETO DUPTO REPLYTO NO LABEL %token NOROUTE URPFFAILED FRAGMENT USER GROUP MAXMSS MAXIMUM TTL TOS DROP TABLE %token REASSEMBLE FRAGDROP FRAGCROP ANCHOR NATANCHOR RDRANCHOR BINATANCHOR %token SET OPTIMIZATION TIMEOUT LIMIT LOGINTERFACE BLOCKPOLICY FAILPOLICY %token RANDOMID REQUIREORDER SYNPROXY FINGERPRINTS NOSYNC DEBUG SKIP HOSTID %token ANTISPOOF FOR INCLUDE KEEPCOUNTERS SYNCOOKIES %token BITMASK RANDOM SOURCEHASH ROUNDROBIN STATICPORT PROBABILITY MAPEPORTSET %token ALTQ CBQ CODEL PRIQ HFSC FAIRQ BANDWIDTH TBRSIZE LINKSHARE REALTIME %token UPPERLIMIT QUEUE PRIORITY QLIMIT HOGS BUCKETS RTABLE TARGET INTERVAL +%token DNPIPE DNQUEUE %token LOAD RULESET_OPTIMIZATION PRIO %token STICKYADDRESS MAXSRCSTATES MAXSRCNODES SOURCETRACK GLOBAL RULE %token MAXSRCCONN MAXSRCCONNRATE OVERLOAD FLUSH SLOPPY %token TAGGED TAG IFBOUND FLOATING STATEPOLICY STATEDEFAULTS ROUTE SETTOS %token DIVERTTO DIVERTREPLY %token STRING %token NUMBER %token PORTBINARY %type interface if_list if_item_not if_item %type number icmptype icmp6type uid gid %type tos not yesno %type probability %type no dir af fragcache optimizer syncookie_val %type sourcetrack flush unaryop statelock %type action nataction natpasslog scrubaction %type flags flag blockspec prio %type portplain portstar portrange %type hashkey %type proto proto_list proto_item %type protoval %type icmpspec %type icmp_list icmp_item %type icmp6_list icmp6_item %type reticmpspec reticmp6spec %type fromto %type ipportspec from to %type ipspec toipspec xhost host dynaddr host_list %type redir_host_list redirspec %type route_host route_host_list routespec %type os xos os_list %type portspec port_list port_item %type uids uid_list uid_item %type gids gid_list gid_item %type route %type redirection redirpool %type label stringall tag anchorname %type string varstring numberstring %type keep %type state_opt_spec state_opt_list state_opt_item %type logquick quick log logopts logopt %type antispoof_ifspc antispoof_iflst antispoof_if %type qname %type qassign qassign_list qassign_item %type scheduler %type cbqflags_list cbqflags_item %type priqflags_list priqflags_item %type hfscopts_list hfscopts_item hfsc_opts %type fairqopts_list fairqopts_item fairq_opts %type codelopts_list codelopts_item codel_opts %type bandwidth %type filter_opts filter_opt filter_opts_l %type filter_sets filter_set filter_sets_l %type antispoof_opts antispoof_opt antispoof_opts_l %type queue_opts queue_opt queue_opts_l %type scrub_opts scrub_opt scrub_opts_l %type table_opts table_opt table_opts_l %type pool_opts pool_opt pool_opts_l %type tagged %type rtable %% ruleset : /* empty */ | ruleset include '\n' | ruleset '\n' | ruleset option '\n' | ruleset scrubrule '\n' | ruleset natrule '\n' | ruleset binatrule '\n' | ruleset pfrule '\n' | ruleset anchorrule '\n' | ruleset loadrule '\n' | ruleset altqif '\n' | ruleset queuespec '\n' | ruleset varset '\n' | ruleset antispoof '\n' | ruleset tabledef '\n' | '{' fakeanchor '}' '\n'; | ruleset error '\n' { file->errors++; } ; include : INCLUDE STRING { struct file *nfile; if ((nfile = pushfile($2, 0)) == NULL) { yyerror("failed to include file %s", $2); free($2); YYERROR; } free($2); file = nfile; lungetc('\n'); } ; /* * apply to previouslys specified rule: must be careful to note * what that is: pf or nat or binat or rdr */ fakeanchor : fakeanchor '\n' | fakeanchor anchorrule '\n' | fakeanchor binatrule '\n' | fakeanchor natrule '\n' | fakeanchor pfrule '\n' | fakeanchor error '\n' ; optimizer : string { if (!strcmp($1, "none")) $$ = 0; else if (!strcmp($1, "basic")) $$ = PF_OPTIMIZE_BASIC; else if (!strcmp($1, "profile")) $$ = PF_OPTIMIZE_BASIC | PF_OPTIMIZE_PROFILE; else { yyerror("unknown ruleset-optimization %s", $1); YYERROR; } } ; option : SET OPTIMIZATION STRING { if (check_rulestate(PFCTL_STATE_OPTION)) { free($3); YYERROR; } if (pfctl_set_optimization(pf, $3) != 0) { yyerror("unknown optimization %s", $3); free($3); YYERROR; } free($3); } | SET RULESET_OPTIMIZATION optimizer { if (!(pf->opts & PF_OPT_OPTIMIZE)) { pf->opts |= PF_OPT_OPTIMIZE; pf->optimize = $3; } } | SET TIMEOUT timeout_spec | SET TIMEOUT '{' optnl timeout_list '}' | SET LIMIT limit_spec | SET LIMIT '{' optnl limit_list '}' | SET LOGINTERFACE stringall { if (check_rulestate(PFCTL_STATE_OPTION)) { free($3); YYERROR; } if (pfctl_set_logif(pf, $3) != 0) { yyerror("error setting loginterface %s", $3); free($3); YYERROR; } free($3); } | SET HOSTID number { if ($3 == 0 || $3 > UINT_MAX) { yyerror("hostid must be non-zero"); YYERROR; } if (pfctl_set_hostid(pf, $3) != 0) { yyerror("error setting hostid %08x", $3); YYERROR; } } | SET BLOCKPOLICY DROP { if (pf->opts & PF_OPT_VERBOSE) printf("set block-policy drop\n"); if (check_rulestate(PFCTL_STATE_OPTION)) YYERROR; blockpolicy = PFRULE_DROP; } | SET BLOCKPOLICY RETURN { if (pf->opts & PF_OPT_VERBOSE) printf("set block-policy return\n"); if (check_rulestate(PFCTL_STATE_OPTION)) YYERROR; blockpolicy = PFRULE_RETURN; } | SET FAILPOLICY DROP { if (pf->opts & PF_OPT_VERBOSE) printf("set fail-policy drop\n"); if (check_rulestate(PFCTL_STATE_OPTION)) YYERROR; failpolicy = PFRULE_DROP; } | SET FAILPOLICY RETURN { if (pf->opts & PF_OPT_VERBOSE) printf("set fail-policy return\n"); if (check_rulestate(PFCTL_STATE_OPTION)) YYERROR; failpolicy = PFRULE_RETURN; } | SET REQUIREORDER yesno { if (pf->opts & PF_OPT_VERBOSE) printf("set require-order %s\n", $3 == 1 ? "yes" : "no"); require_order = $3; } | SET FINGERPRINTS STRING { if (pf->opts & PF_OPT_VERBOSE) printf("set fingerprints \"%s\"\n", $3); if (check_rulestate(PFCTL_STATE_OPTION)) { free($3); YYERROR; } if (!pf->anchor->name[0]) { if (pfctl_file_fingerprints(pf->dev, pf->opts, $3)) { yyerror("error loading " "fingerprints %s", $3); free($3); YYERROR; } } free($3); } | SET STATEPOLICY statelock { if (pf->opts & PF_OPT_VERBOSE) switch ($3) { case 0: printf("set state-policy floating\n"); break; case PFRULE_IFBOUND: printf("set state-policy if-bound\n"); break; } default_statelock = $3; } | SET DEBUG STRING { if (check_rulestate(PFCTL_STATE_OPTION)) { free($3); YYERROR; } if (pfctl_set_debug(pf, $3) != 0) { yyerror("error setting debuglevel %s", $3); free($3); YYERROR; } free($3); } | SET SKIP interface { if (expand_skip_interface($3) != 0) { yyerror("error setting skip interface(s)"); YYERROR; } } | SET STATEDEFAULTS state_opt_list { if (keep_state_defaults != NULL) { yyerror("cannot redefine state-defaults"); YYERROR; } keep_state_defaults = $3; } | SET KEEPCOUNTERS { pf->keep_counters = true; } | SET SYNCOOKIES syncookie_val { pf->syncookies = $3; } ; syncookie_val : STRING { if (!strcmp($1, "never")) $$ = PFCTL_SYNCOOKIES_NEVER; else if (!strcmp($1, "always")) $$ = PFCTL_SYNCOOKIES_ALWAYS; else { yyerror("illegal value for syncookies"); YYERROR; } } ; stringall : STRING { $$ = $1; } | ALL { if (($$ = strdup("all")) == NULL) { err(1, "stringall: strdup"); } } ; string : STRING string { if (asprintf(&$$, "%s %s", $1, $2) == -1) err(1, "string: asprintf"); free($1); free($2); } | STRING ; varstring : numberstring varstring { if (asprintf(&$$, "%s %s", $1, $2) == -1) err(1, "string: asprintf"); free($1); free($2); } | numberstring ; numberstring : NUMBER { char *s; if (asprintf(&s, "%lld", (long long)$1) == -1) { yyerror("string: asprintf"); YYERROR; } $$ = s; } | STRING ; varset : STRING '=' varstring { char *s = $1; if (pf->opts & PF_OPT_VERBOSE) printf("%s = \"%s\"\n", $1, $3); while (*s++) { if (isspace((unsigned char)*s)) { yyerror("macro name cannot contain " "whitespace"); YYERROR; } } if (symset($1, $3, 0) == -1) err(1, "cannot store variable %s", $1); free($1); free($3); } ; anchorname : STRING { $$ = $1; } | /* empty */ { $$ = NULL; } ; pfa_anchorlist : /* empty */ | pfa_anchorlist '\n' | pfa_anchorlist pfrule '\n' | pfa_anchorlist anchorrule '\n' ; pfa_anchor : '{' { char ta[PF_ANCHOR_NAME_SIZE]; struct pfctl_ruleset *rs; /* steping into a brace anchor */ pf->asd++; pf->bn++; pf->brace = 1; /* create a holding ruleset in the root */ snprintf(ta, PF_ANCHOR_NAME_SIZE, "_%d", pf->bn); rs = pf_find_or_create_ruleset(ta); if (rs == NULL) err(1, "pfa_anchor: pf_find_or_create_ruleset"); pf->astack[pf->asd] = rs->anchor; pf->anchor = rs->anchor; } '\n' pfa_anchorlist '}' { pf->alast = pf->anchor; pf->asd--; pf->anchor = pf->astack[pf->asd]; } | /* empty */ ; anchorrule : ANCHOR anchorname dir quick interface af proto fromto filter_opts pfa_anchor { struct pfctl_rule r; struct node_proto *proto; if (check_rulestate(PFCTL_STATE_FILTER)) { if ($2) free($2); YYERROR; } if ($2 && ($2[0] == '_' || strstr($2, "/_") != NULL)) { free($2); yyerror("anchor names beginning with '_' " "are reserved for internal use"); YYERROR; } memset(&r, 0, sizeof(r)); if (pf->astack[pf->asd + 1]) { /* move inline rules into relative location */ pfctl_anchor_setup(&r, &pf->astack[pf->asd]->ruleset, $2 ? $2 : pf->alast->name); if (r.anchor == NULL) err(1, "anchorrule: unable to " "create ruleset"); if (pf->alast != r.anchor) { if (r.anchor->match) { yyerror("inline anchor '%s' " "already exists", r.anchor->name); YYERROR; } mv_rules(&pf->alast->ruleset, &r.anchor->ruleset); } pf_remove_if_empty_ruleset(&pf->alast->ruleset); pf->alast = r.anchor; } else { if (!$2) { yyerror("anchors without explicit " "rules must specify a name"); YYERROR; } } r.direction = $3; r.quick = $4.quick; r.af = $6; r.prob = $9.prob; r.rtableid = $9.rtableid; if ($9.tag) if (strlcpy(r.tagname, $9.tag, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } if ($9.match_tag) if (strlcpy(r.match_tagname, $9.match_tag, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } r.match_tag_not = $9.match_tag_not; if (rule_label(&r, $9.label)) YYERROR; for (int i = 0; i < PF_RULE_MAX_LABEL_COUNT; i++) free($9.label[i]); r.flags = $9.flags.b1; r.flagset = $9.flags.b2; if (($9.flags.b1 & $9.flags.b2) != $9.flags.b1) { yyerror("flags always false"); YYERROR; } if ($9.flags.b1 || $9.flags.b2 || $8.src_os) { for (proto = $7; proto != NULL && proto->proto != IPPROTO_TCP; proto = proto->next) ; /* nothing */ if (proto == NULL && $7 != NULL) { if ($9.flags.b1 || $9.flags.b2) yyerror( "flags only apply to tcp"); if ($8.src_os) yyerror( "OS fingerprinting only " "applies to tcp"); YYERROR; } } r.tos = $9.tos; if ($9.keep.action) { yyerror("cannot specify state handling " "on anchors"); YYERROR; } if ($9.match_tag) if (strlcpy(r.match_tagname, $9.match_tag, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } r.match_tag_not = $9.match_tag_not; if ($9.marker & FOM_PRIO) { if ($9.prio == 0) r.prio = PF_PRIO_ZERO; else r.prio = $9.prio; } if ($9.marker & FOM_SETPRIO) { r.set_prio[0] = $9.set_prio[0]; r.set_prio[1] = $9.set_prio[1]; r.scrub_flags |= PFSTATE_SETPRIO; } decide_address_family($8.src.host, &r.af); decide_address_family($8.dst.host, &r.af); expand_rule(&r, $5, NULL, $7, $8.src_os, $8.src.host, $8.src.port, $8.dst.host, $8.dst.port, $9.uid, $9.gid, $9.icmpspec, pf->astack[pf->asd + 1] ? pf->alast->name : $2); free($2); pf->astack[pf->asd + 1] = NULL; } | NATANCHOR string interface af proto fromto rtable { struct pfctl_rule r; if (check_rulestate(PFCTL_STATE_NAT)) { free($2); YYERROR; } memset(&r, 0, sizeof(r)); r.action = PF_NAT; r.af = $4; r.rtableid = $7; decide_address_family($6.src.host, &r.af); decide_address_family($6.dst.host, &r.af); expand_rule(&r, $3, NULL, $5, $6.src_os, $6.src.host, $6.src.port, $6.dst.host, $6.dst.port, 0, 0, 0, $2); free($2); } | RDRANCHOR string interface af proto fromto rtable { struct pfctl_rule r; if (check_rulestate(PFCTL_STATE_NAT)) { free($2); YYERROR; } memset(&r, 0, sizeof(r)); r.action = PF_RDR; r.af = $4; r.rtableid = $7; decide_address_family($6.src.host, &r.af); decide_address_family($6.dst.host, &r.af); if ($6.src.port != NULL) { yyerror("source port parameter not supported" " in rdr-anchor"); YYERROR; } if ($6.dst.port != NULL) { if ($6.dst.port->next != NULL) { yyerror("destination port list " "expansion not supported in " "rdr-anchor"); YYERROR; } else if ($6.dst.port->op != PF_OP_EQ) { yyerror("destination port operators" " not supported in rdr-anchor"); YYERROR; } r.dst.port[0] = $6.dst.port->port[0]; r.dst.port[1] = $6.dst.port->port[1]; r.dst.port_op = $6.dst.port->op; } expand_rule(&r, $3, NULL, $5, $6.src_os, $6.src.host, $6.src.port, $6.dst.host, $6.dst.port, 0, 0, 0, $2); free($2); } | BINATANCHOR string interface af proto fromto rtable { struct pfctl_rule r; if (check_rulestate(PFCTL_STATE_NAT)) { free($2); YYERROR; } memset(&r, 0, sizeof(r)); r.action = PF_BINAT; r.af = $4; r.rtableid = $7; if ($5 != NULL) { if ($5->next != NULL) { yyerror("proto list expansion" " not supported in binat-anchor"); YYERROR; } r.proto = $5->proto; free($5); } if ($6.src.host != NULL || $6.src.port != NULL || $6.dst.host != NULL || $6.dst.port != NULL) { yyerror("fromto parameter not supported" " in binat-anchor"); YYERROR; } decide_address_family($6.src.host, &r.af); decide_address_family($6.dst.host, &r.af); pfctl_append_rule(pf, &r, $2); free($2); } ; loadrule : LOAD ANCHOR string FROM string { struct loadanchors *loadanchor; if (strlen(pf->anchor->name) + 1 + strlen($3) >= MAXPATHLEN) { yyerror("anchorname %s too long, max %u\n", $3, MAXPATHLEN - 1); free($3); YYERROR; } loadanchor = calloc(1, sizeof(struct loadanchors)); if (loadanchor == NULL) err(1, "loadrule: calloc"); if ((loadanchor->anchorname = malloc(MAXPATHLEN)) == NULL) err(1, "loadrule: malloc"); if (pf->anchor->name[0]) snprintf(loadanchor->anchorname, MAXPATHLEN, "%s/%s", pf->anchor->name, $3); else strlcpy(loadanchor->anchorname, $3, MAXPATHLEN); if ((loadanchor->filename = strdup($5)) == NULL) err(1, "loadrule: strdup"); TAILQ_INSERT_TAIL(&loadanchorshead, loadanchor, entries); free($3); free($5); }; scrubaction : no SCRUB { $$.b2 = $$.w = 0; if ($1) $$.b1 = PF_NOSCRUB; else $$.b1 = PF_SCRUB; } ; scrubrule : scrubaction dir logquick interface af proto fromto scrub_opts { struct pfctl_rule r; if (check_rulestate(PFCTL_STATE_SCRUB)) YYERROR; memset(&r, 0, sizeof(r)); r.action = $1.b1; r.direction = $2; r.log = $3.log; r.logif = $3.logif; if ($3.quick) { yyerror("scrub rules do not support 'quick'"); YYERROR; } r.af = $5; if ($8.nodf) r.rule_flag |= PFRULE_NODF; if ($8.randomid) r.rule_flag |= PFRULE_RANDOMID; if ($8.reassemble_tcp) { if (r.direction != PF_INOUT) { yyerror("reassemble tcp rules can not " "specify direction"); YYERROR; } r.rule_flag |= PFRULE_REASSEMBLE_TCP; } if ($8.minttl) r.min_ttl = $8.minttl; if ($8.maxmss) r.max_mss = $8.maxmss; if ($8.marker & SOM_SETTOS) { r.rule_flag |= PFRULE_SET_TOS; r.set_tos = $8.settos; } if ($8.fragcache) r.rule_flag |= $8.fragcache; if ($8.match_tag) if (strlcpy(r.match_tagname, $8.match_tag, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } r.match_tag_not = $8.match_tag_not; r.rtableid = $8.rtableid; expand_rule(&r, $4, NULL, $6, $7.src_os, $7.src.host, $7.src.port, $7.dst.host, $7.dst.port, NULL, NULL, NULL, ""); } ; scrub_opts : { bzero(&scrub_opts, sizeof scrub_opts); scrub_opts.rtableid = -1; } scrub_opts_l { $$ = scrub_opts; } | /* empty */ { bzero(&scrub_opts, sizeof scrub_opts); scrub_opts.rtableid = -1; $$ = scrub_opts; } ; scrub_opts_l : scrub_opts_l scrub_opt | scrub_opt ; scrub_opt : NODF { if (scrub_opts.nodf) { yyerror("no-df cannot be respecified"); YYERROR; } scrub_opts.nodf = 1; } | MINTTL NUMBER { if (scrub_opts.marker & SOM_MINTTL) { yyerror("min-ttl cannot be respecified"); YYERROR; } if ($2 < 0 || $2 > 255) { yyerror("illegal min-ttl value %d", $2); YYERROR; } scrub_opts.marker |= SOM_MINTTL; scrub_opts.minttl = $2; } | MAXMSS NUMBER { if (scrub_opts.marker & SOM_MAXMSS) { yyerror("max-mss cannot be respecified"); YYERROR; } if ($2 < 0 || $2 > 65535) { yyerror("illegal max-mss value %d", $2); YYERROR; } scrub_opts.marker |= SOM_MAXMSS; scrub_opts.maxmss = $2; } | SETTOS tos { if (scrub_opts.marker & SOM_SETTOS) { yyerror("set-tos cannot be respecified"); YYERROR; } scrub_opts.marker |= SOM_SETTOS; scrub_opts.settos = $2; } | fragcache { if (scrub_opts.marker & SOM_FRAGCACHE) { yyerror("fragcache cannot be respecified"); YYERROR; } scrub_opts.marker |= SOM_FRAGCACHE; scrub_opts.fragcache = $1; } | REASSEMBLE STRING { if (strcasecmp($2, "tcp") != 0) { yyerror("scrub reassemble supports only tcp, " "not '%s'", $2); free($2); YYERROR; } free($2); if (scrub_opts.reassemble_tcp) { yyerror("reassemble tcp cannot be respecified"); YYERROR; } scrub_opts.reassemble_tcp = 1; } | RANDOMID { if (scrub_opts.randomid) { yyerror("random-id cannot be respecified"); YYERROR; } scrub_opts.randomid = 1; } | RTABLE NUMBER { if ($2 < 0 || $2 > rt_tableid_max()) { yyerror("invalid rtable id"); YYERROR; } scrub_opts.rtableid = $2; } | not TAGGED string { scrub_opts.match_tag = $3; scrub_opts.match_tag_not = $1; } ; fragcache : FRAGMENT REASSEMBLE { $$ = 0; /* default */ } | FRAGMENT FRAGCROP { $$ = 0; } | FRAGMENT FRAGDROP { $$ = 0; } ; antispoof : ANTISPOOF logquick antispoof_ifspc af antispoof_opts { struct pfctl_rule r; struct node_host *h = NULL, *hh; struct node_if *i, *j; if (check_rulestate(PFCTL_STATE_FILTER)) YYERROR; for (i = $3; i; i = i->next) { bzero(&r, sizeof(r)); r.action = PF_DROP; r.direction = PF_IN; r.log = $2.log; r.logif = $2.logif; r.quick = $2.quick; r.af = $4; if (rule_label(&r, $5.label)) YYERROR; r.rtableid = $5.rtableid; j = calloc(1, sizeof(struct node_if)); if (j == NULL) err(1, "antispoof: calloc"); if (strlcpy(j->ifname, i->ifname, sizeof(j->ifname)) >= sizeof(j->ifname)) { free(j); yyerror("interface name too long"); YYERROR; } j->not = 1; if (i->dynamic) { h = calloc(1, sizeof(*h)); if (h == NULL) err(1, "address: calloc"); h->addr.type = PF_ADDR_DYNIFTL; set_ipmask(h, 128); if (strlcpy(h->addr.v.ifname, i->ifname, sizeof(h->addr.v.ifname)) >= sizeof(h->addr.v.ifname)) { free(h); yyerror( "interface name too long"); YYERROR; } hh = malloc(sizeof(*hh)); if (hh == NULL) err(1, "address: malloc"); bcopy(h, hh, sizeof(*hh)); h->addr.iflags = PFI_AFLAG_NETWORK; } else { h = ifa_lookup(j->ifname, PFI_AFLAG_NETWORK); hh = NULL; } if (h != NULL) expand_rule(&r, j, NULL, NULL, NULL, h, NULL, NULL, NULL, NULL, NULL, NULL, ""); if ((i->ifa_flags & IFF_LOOPBACK) == 0) { bzero(&r, sizeof(r)); r.action = PF_DROP; r.direction = PF_IN; r.log = $2.log; r.logif = $2.logif; r.quick = $2.quick; r.af = $4; if (rule_label(&r, $5.label)) YYERROR; r.rtableid = $5.rtableid; if (hh != NULL) h = hh; else h = ifa_lookup(i->ifname, 0); if (h != NULL) expand_rule(&r, NULL, NULL, NULL, NULL, h, NULL, NULL, NULL, NULL, NULL, NULL, ""); } else free(hh); } for (int i = 0; i < PF_RULE_MAX_LABEL_COUNT; i++) free($5.label[i]); } ; antispoof_ifspc : FOR antispoof_if { $$ = $2; } | FOR '{' optnl antispoof_iflst '}' { $$ = $4; } ; antispoof_iflst : antispoof_if optnl { $$ = $1; } | antispoof_iflst comma antispoof_if optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; antispoof_if : if_item { $$ = $1; } | '(' if_item ')' { $2->dynamic = 1; $$ = $2; } ; antispoof_opts : { bzero(&antispoof_opts, sizeof antispoof_opts); antispoof_opts.rtableid = -1; } antispoof_opts_l { $$ = antispoof_opts; } | /* empty */ { bzero(&antispoof_opts, sizeof antispoof_opts); antispoof_opts.rtableid = -1; $$ = antispoof_opts; } ; antispoof_opts_l : antispoof_opts_l antispoof_opt | antispoof_opt ; antispoof_opt : label { if (antispoof_opts.labelcount >= PF_RULE_MAX_LABEL_COUNT) { yyerror("label can only be used %d times", PF_RULE_MAX_LABEL_COUNT); YYERROR; } antispoof_opts.label[antispoof_opts.labelcount++] = $1; } | RTABLE NUMBER { if ($2 < 0 || $2 > rt_tableid_max()) { yyerror("invalid rtable id"); YYERROR; } antispoof_opts.rtableid = $2; } ; not : '!' { $$ = 1; } | /* empty */ { $$ = 0; } ; tabledef : TABLE '<' STRING '>' table_opts { struct node_host *h, *nh; struct node_tinit *ti, *nti; if (strlen($3) >= PF_TABLE_NAME_SIZE) { yyerror("table name too long, max %d chars", PF_TABLE_NAME_SIZE - 1); free($3); YYERROR; } if (pf->loadopt & PFCTL_FLAG_TABLE) if (process_tabledef($3, &$5)) { free($3); YYERROR; } free($3); for (ti = SIMPLEQ_FIRST(&$5.init_nodes); ti != SIMPLEQ_END(&$5.init_nodes); ti = nti) { if (ti->file) free(ti->file); for (h = ti->host; h != NULL; h = nh) { nh = h->next; free(h); } nti = SIMPLEQ_NEXT(ti, entries); free(ti); } } ; table_opts : { bzero(&table_opts, sizeof table_opts); SIMPLEQ_INIT(&table_opts.init_nodes); } table_opts_l { $$ = table_opts; } | /* empty */ { bzero(&table_opts, sizeof table_opts); SIMPLEQ_INIT(&table_opts.init_nodes); $$ = table_opts; } ; table_opts_l : table_opts_l table_opt | table_opt ; table_opt : STRING { if (!strcmp($1, "const")) table_opts.flags |= PFR_TFLAG_CONST; else if (!strcmp($1, "persist")) table_opts.flags |= PFR_TFLAG_PERSIST; else if (!strcmp($1, "counters")) table_opts.flags |= PFR_TFLAG_COUNTERS; else { yyerror("invalid table option '%s'", $1); free($1); YYERROR; } free($1); } | '{' optnl '}' { table_opts.init_addr = 1; } | '{' optnl host_list '}' { struct node_host *n; struct node_tinit *ti; for (n = $3; n != NULL; n = n->next) { switch (n->addr.type) { case PF_ADDR_ADDRMASK: continue; /* ok */ case PF_ADDR_RANGE: yyerror("address ranges are not " "permitted inside tables"); break; case PF_ADDR_DYNIFTL: yyerror("dynamic addresses are not " "permitted inside tables"); break; case PF_ADDR_TABLE: yyerror("tables cannot contain tables"); break; case PF_ADDR_NOROUTE: yyerror("\"no-route\" is not permitted " "inside tables"); break; case PF_ADDR_URPFFAILED: yyerror("\"urpf-failed\" is not " "permitted inside tables"); break; default: yyerror("unknown address type %d", n->addr.type); } YYERROR; } if (!(ti = calloc(1, sizeof(*ti)))) err(1, "table_opt: calloc"); ti->host = $3; SIMPLEQ_INSERT_TAIL(&table_opts.init_nodes, ti, entries); table_opts.init_addr = 1; } | FILENAME STRING { struct node_tinit *ti; if (!(ti = calloc(1, sizeof(*ti)))) err(1, "table_opt: calloc"); ti->file = $2; SIMPLEQ_INSERT_TAIL(&table_opts.init_nodes, ti, entries); table_opts.init_addr = 1; } ; altqif : ALTQ interface queue_opts QUEUE qassign { struct pf_altq a; if (check_rulestate(PFCTL_STATE_QUEUE)) YYERROR; memset(&a, 0, sizeof(a)); if ($3.scheduler.qtype == ALTQT_NONE) { yyerror("no scheduler specified!"); YYERROR; } a.scheduler = $3.scheduler.qtype; a.qlimit = $3.qlimit; a.tbrsize = $3.tbrsize; if ($5 == NULL && $3.scheduler.qtype != ALTQT_CODEL) { yyerror("no child queues specified"); YYERROR; } if (expand_altq(&a, $2, $5, $3.queue_bwspec, &$3.scheduler)) YYERROR; } ; queuespec : QUEUE STRING interface queue_opts qassign { struct pf_altq a; if (check_rulestate(PFCTL_STATE_QUEUE)) { free($2); YYERROR; } memset(&a, 0, sizeof(a)); if (strlcpy(a.qname, $2, sizeof(a.qname)) >= sizeof(a.qname)) { yyerror("queue name too long (max " "%d chars)", PF_QNAME_SIZE-1); free($2); YYERROR; } free($2); if ($4.tbrsize) { yyerror("cannot specify tbrsize for queue"); YYERROR; } if ($4.priority > 255) { yyerror("priority out of range: max 255"); YYERROR; } a.priority = $4.priority; a.qlimit = $4.qlimit; a.scheduler = $4.scheduler.qtype; if (expand_queue(&a, $3, $5, $4.queue_bwspec, &$4.scheduler)) { yyerror("errors in queue definition"); YYERROR; } } ; queue_opts : { bzero(&queue_opts, sizeof queue_opts); queue_opts.priority = DEFAULT_PRIORITY; queue_opts.qlimit = DEFAULT_QLIMIT; queue_opts.scheduler.qtype = ALTQT_NONE; queue_opts.queue_bwspec.bw_percent = 100; } queue_opts_l { $$ = queue_opts; } | /* empty */ { bzero(&queue_opts, sizeof queue_opts); queue_opts.priority = DEFAULT_PRIORITY; queue_opts.qlimit = DEFAULT_QLIMIT; queue_opts.scheduler.qtype = ALTQT_NONE; queue_opts.queue_bwspec.bw_percent = 100; $$ = queue_opts; } ; queue_opts_l : queue_opts_l queue_opt | queue_opt ; queue_opt : BANDWIDTH bandwidth { if (queue_opts.marker & QOM_BWSPEC) { yyerror("bandwidth cannot be respecified"); YYERROR; } queue_opts.marker |= QOM_BWSPEC; queue_opts.queue_bwspec = $2; } | PRIORITY NUMBER { if (queue_opts.marker & QOM_PRIORITY) { yyerror("priority cannot be respecified"); YYERROR; } if ($2 < 0 || $2 > 255) { yyerror("priority out of range: max 255"); YYERROR; } queue_opts.marker |= QOM_PRIORITY; queue_opts.priority = $2; } | QLIMIT NUMBER { if (queue_opts.marker & QOM_QLIMIT) { yyerror("qlimit cannot be respecified"); YYERROR; } if ($2 < 0 || $2 > 65535) { yyerror("qlimit out of range: max 65535"); YYERROR; } queue_opts.marker |= QOM_QLIMIT; queue_opts.qlimit = $2; } | scheduler { if (queue_opts.marker & QOM_SCHEDULER) { yyerror("scheduler cannot be respecified"); YYERROR; } queue_opts.marker |= QOM_SCHEDULER; queue_opts.scheduler = $1; } | TBRSIZE NUMBER { if (queue_opts.marker & QOM_TBRSIZE) { yyerror("tbrsize cannot be respecified"); YYERROR; } if ($2 < 0 || $2 > UINT_MAX) { yyerror("tbrsize too big: max %u", UINT_MAX); YYERROR; } queue_opts.marker |= QOM_TBRSIZE; queue_opts.tbrsize = $2; } ; bandwidth : STRING { double bps; char *cp; $$.bw_percent = 0; bps = strtod($1, &cp); if (cp != NULL) { if (strlen(cp) > 1) { char *cu = cp + 1; if (!strcmp(cu, "Bit") || !strcmp(cu, "B") || !strcmp(cu, "bit") || !strcmp(cu, "b")) { *cu = 0; } } if (!strcmp(cp, "b")) ; /* nothing */ else if (!strcmp(cp, "K")) bps *= 1000; else if (!strcmp(cp, "M")) bps *= 1000 * 1000; else if (!strcmp(cp, "G")) bps *= 1000 * 1000 * 1000; else if (!strcmp(cp, "%")) { if (bps < 0 || bps > 100) { yyerror("bandwidth spec " "out of range"); free($1); YYERROR; } $$.bw_percent = bps; bps = 0; } else { yyerror("unknown unit %s", cp); free($1); YYERROR; } } free($1); $$.bw_absolute = (u_int64_t)bps; } | NUMBER { if ($1 < 0 || $1 >= LLONG_MAX) { yyerror("bandwidth number too big"); YYERROR; } $$.bw_percent = 0; $$.bw_absolute = $1; } ; scheduler : CBQ { $$.qtype = ALTQT_CBQ; $$.data.cbq_opts.flags = 0; } | CBQ '(' cbqflags_list ')' { $$.qtype = ALTQT_CBQ; $$.data.cbq_opts.flags = $3; } | PRIQ { $$.qtype = ALTQT_PRIQ; $$.data.priq_opts.flags = 0; } | PRIQ '(' priqflags_list ')' { $$.qtype = ALTQT_PRIQ; $$.data.priq_opts.flags = $3; } | HFSC { $$.qtype = ALTQT_HFSC; bzero(&$$.data.hfsc_opts, sizeof(struct node_hfsc_opts)); } | HFSC '(' hfsc_opts ')' { $$.qtype = ALTQT_HFSC; $$.data.hfsc_opts = $3; } | FAIRQ { $$.qtype = ALTQT_FAIRQ; bzero(&$$.data.fairq_opts, sizeof(struct node_fairq_opts)); } | FAIRQ '(' fairq_opts ')' { $$.qtype = ALTQT_FAIRQ; $$.data.fairq_opts = $3; } | CODEL { $$.qtype = ALTQT_CODEL; bzero(&$$.data.codel_opts, sizeof(struct codel_opts)); } | CODEL '(' codel_opts ')' { $$.qtype = ALTQT_CODEL; $$.data.codel_opts = $3; } ; cbqflags_list : cbqflags_item { $$ |= $1; } | cbqflags_list comma cbqflags_item { $$ |= $3; } ; cbqflags_item : STRING { if (!strcmp($1, "default")) $$ = CBQCLF_DEFCLASS; else if (!strcmp($1, "borrow")) $$ = CBQCLF_BORROW; else if (!strcmp($1, "red")) $$ = CBQCLF_RED; else if (!strcmp($1, "ecn")) $$ = CBQCLF_RED|CBQCLF_ECN; else if (!strcmp($1, "rio")) $$ = CBQCLF_RIO; else if (!strcmp($1, "codel")) $$ = CBQCLF_CODEL; else { yyerror("unknown cbq flag \"%s\"", $1); free($1); YYERROR; } free($1); } ; priqflags_list : priqflags_item { $$ |= $1; } | priqflags_list comma priqflags_item { $$ |= $3; } ; priqflags_item : STRING { if (!strcmp($1, "default")) $$ = PRCF_DEFAULTCLASS; else if (!strcmp($1, "red")) $$ = PRCF_RED; else if (!strcmp($1, "ecn")) $$ = PRCF_RED|PRCF_ECN; else if (!strcmp($1, "rio")) $$ = PRCF_RIO; else if (!strcmp($1, "codel")) $$ = PRCF_CODEL; else { yyerror("unknown priq flag \"%s\"", $1); free($1); YYERROR; } free($1); } ; hfsc_opts : { bzero(&hfsc_opts, sizeof(struct node_hfsc_opts)); } hfscopts_list { $$ = hfsc_opts; } ; hfscopts_list : hfscopts_item | hfscopts_list comma hfscopts_item ; hfscopts_item : LINKSHARE bandwidth { if (hfsc_opts.linkshare.used) { yyerror("linkshare already specified"); YYERROR; } hfsc_opts.linkshare.m2 = $2; hfsc_opts.linkshare.used = 1; } | LINKSHARE '(' bandwidth comma NUMBER comma bandwidth ')' { if ($5 < 0 || $5 > INT_MAX) { yyerror("timing in curve out of range"); YYERROR; } if (hfsc_opts.linkshare.used) { yyerror("linkshare already specified"); YYERROR; } hfsc_opts.linkshare.m1 = $3; hfsc_opts.linkshare.d = $5; hfsc_opts.linkshare.m2 = $7; hfsc_opts.linkshare.used = 1; } | REALTIME bandwidth { if (hfsc_opts.realtime.used) { yyerror("realtime already specified"); YYERROR; } hfsc_opts.realtime.m2 = $2; hfsc_opts.realtime.used = 1; } | REALTIME '(' bandwidth comma NUMBER comma bandwidth ')' { if ($5 < 0 || $5 > INT_MAX) { yyerror("timing in curve out of range"); YYERROR; } if (hfsc_opts.realtime.used) { yyerror("realtime already specified"); YYERROR; } hfsc_opts.realtime.m1 = $3; hfsc_opts.realtime.d = $5; hfsc_opts.realtime.m2 = $7; hfsc_opts.realtime.used = 1; } | UPPERLIMIT bandwidth { if (hfsc_opts.upperlimit.used) { yyerror("upperlimit already specified"); YYERROR; } hfsc_opts.upperlimit.m2 = $2; hfsc_opts.upperlimit.used = 1; } | UPPERLIMIT '(' bandwidth comma NUMBER comma bandwidth ')' { if ($5 < 0 || $5 > INT_MAX) { yyerror("timing in curve out of range"); YYERROR; } if (hfsc_opts.upperlimit.used) { yyerror("upperlimit already specified"); YYERROR; } hfsc_opts.upperlimit.m1 = $3; hfsc_opts.upperlimit.d = $5; hfsc_opts.upperlimit.m2 = $7; hfsc_opts.upperlimit.used = 1; } | STRING { if (!strcmp($1, "default")) hfsc_opts.flags |= HFCF_DEFAULTCLASS; else if (!strcmp($1, "red")) hfsc_opts.flags |= HFCF_RED; else if (!strcmp($1, "ecn")) hfsc_opts.flags |= HFCF_RED|HFCF_ECN; else if (!strcmp($1, "rio")) hfsc_opts.flags |= HFCF_RIO; else if (!strcmp($1, "codel")) hfsc_opts.flags |= HFCF_CODEL; else { yyerror("unknown hfsc flag \"%s\"", $1); free($1); YYERROR; } free($1); } ; fairq_opts : { bzero(&fairq_opts, sizeof(struct node_fairq_opts)); } fairqopts_list { $$ = fairq_opts; } ; fairqopts_list : fairqopts_item | fairqopts_list comma fairqopts_item ; fairqopts_item : LINKSHARE bandwidth { if (fairq_opts.linkshare.used) { yyerror("linkshare already specified"); YYERROR; } fairq_opts.linkshare.m2 = $2; fairq_opts.linkshare.used = 1; } | LINKSHARE '(' bandwidth number bandwidth ')' { if (fairq_opts.linkshare.used) { yyerror("linkshare already specified"); YYERROR; } fairq_opts.linkshare.m1 = $3; fairq_opts.linkshare.d = $4; fairq_opts.linkshare.m2 = $5; fairq_opts.linkshare.used = 1; } | HOGS bandwidth { fairq_opts.hogs_bw = $2; } | BUCKETS number { fairq_opts.nbuckets = $2; } | STRING { if (!strcmp($1, "default")) fairq_opts.flags |= FARF_DEFAULTCLASS; else if (!strcmp($1, "red")) fairq_opts.flags |= FARF_RED; else if (!strcmp($1, "ecn")) fairq_opts.flags |= FARF_RED|FARF_ECN; else if (!strcmp($1, "rio")) fairq_opts.flags |= FARF_RIO; else if (!strcmp($1, "codel")) fairq_opts.flags |= FARF_CODEL; else { yyerror("unknown fairq flag \"%s\"", $1); free($1); YYERROR; } free($1); } ; codel_opts : { bzero(&codel_opts, sizeof(struct codel_opts)); } codelopts_list { $$ = codel_opts; } ; codelopts_list : codelopts_item | codelopts_list comma codelopts_item ; codelopts_item : INTERVAL number { if (codel_opts.interval) { yyerror("interval already specified"); YYERROR; } codel_opts.interval = $2; } | TARGET number { if (codel_opts.target) { yyerror("target already specified"); YYERROR; } codel_opts.target = $2; } | STRING { if (!strcmp($1, "ecn")) codel_opts.ecn = 1; else { yyerror("unknown codel option \"%s\"", $1); free($1); YYERROR; } free($1); } ; qassign : /* empty */ { $$ = NULL; } | qassign_item { $$ = $1; } | '{' optnl qassign_list '}' { $$ = $3; } ; qassign_list : qassign_item optnl { $$ = $1; } | qassign_list comma qassign_item optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; qassign_item : STRING { $$ = calloc(1, sizeof(struct node_queue)); if ($$ == NULL) err(1, "qassign_item: calloc"); if (strlcpy($$->queue, $1, sizeof($$->queue)) >= sizeof($$->queue)) { yyerror("queue name '%s' too long (max " "%d chars)", $1, sizeof($$->queue)-1); free($1); free($$); YYERROR; } free($1); $$->next = NULL; $$->tail = $$; } ; pfrule : action dir logquick interface route af proto fromto filter_opts { struct pfctl_rule r; struct node_state_opt *o; struct node_proto *proto; int srctrack = 0; int statelock = 0; int adaptive = 0; int defaults = 0; if (check_rulestate(PFCTL_STATE_FILTER)) YYERROR; memset(&r, 0, sizeof(r)); r.action = $1.b1; switch ($1.b2) { case PFRULE_RETURNRST: r.rule_flag |= PFRULE_RETURNRST; r.return_ttl = $1.w; break; case PFRULE_RETURNICMP: r.rule_flag |= PFRULE_RETURNICMP; r.return_icmp = $1.w; r.return_icmp6 = $1.w2; break; case PFRULE_RETURN: r.rule_flag |= PFRULE_RETURN; r.return_icmp = $1.w; r.return_icmp6 = $1.w2; break; } r.direction = $2; r.log = $3.log; r.logif = $3.logif; r.quick = $3.quick; r.prob = $9.prob; r.rtableid = $9.rtableid; if ($9.marker & FOM_PRIO) { if ($9.prio == 0) r.prio = PF_PRIO_ZERO; else r.prio = $9.prio; } if ($9.marker & FOM_SETPRIO) { r.set_prio[0] = $9.set_prio[0]; r.set_prio[1] = $9.set_prio[1]; r.scrub_flags |= PFSTATE_SETPRIO; } r.af = $6; if ($9.tag) if (strlcpy(r.tagname, $9.tag, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } if ($9.match_tag) if (strlcpy(r.match_tagname, $9.match_tag, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } r.match_tag_not = $9.match_tag_not; if (rule_label(&r, $9.label)) YYERROR; for (int i = 0; i < PF_RULE_MAX_LABEL_COUNT; i++) free($9.label[i]); r.flags = $9.flags.b1; r.flagset = $9.flags.b2; if (($9.flags.b1 & $9.flags.b2) != $9.flags.b1) { yyerror("flags always false"); YYERROR; } if ($9.flags.b1 || $9.flags.b2 || $8.src_os) { for (proto = $7; proto != NULL && proto->proto != IPPROTO_TCP; proto = proto->next) ; /* nothing */ if (proto == NULL && $7 != NULL) { if ($9.flags.b1 || $9.flags.b2) yyerror( "flags only apply to tcp"); if ($8.src_os) yyerror( "OS fingerprinting only " "apply to tcp"); YYERROR; } #if 0 if (($9.flags.b1 & parse_flags("S")) == 0 && $8.src_os) { yyerror("OS fingerprinting requires " "the SYN TCP flag (flags S/SA)"); YYERROR; } #endif } r.tos = $9.tos; r.keep_state = $9.keep.action; o = $9.keep.options; /* 'keep state' by default on pass rules. */ if (!r.keep_state && !r.action && !($9.marker & FOM_KEEP)) { r.keep_state = PF_STATE_NORMAL; o = keep_state_defaults; defaults = 1; } while (o) { struct node_state_opt *p = o; switch (o->type) { case PF_STATE_OPT_MAX: if (r.max_states) { yyerror("state option 'max' " "multiple definitions"); YYERROR; } r.max_states = o->data.max_states; break; case PF_STATE_OPT_NOSYNC: if (r.rule_flag & PFRULE_NOSYNC) { yyerror("state option 'sync' " "multiple definitions"); YYERROR; } r.rule_flag |= PFRULE_NOSYNC; break; case PF_STATE_OPT_SRCTRACK: if (srctrack) { yyerror("state option " "'source-track' " "multiple definitions"); YYERROR; } srctrack = o->data.src_track; r.rule_flag |= PFRULE_SRCTRACK; break; case PF_STATE_OPT_MAX_SRC_STATES: if (r.max_src_states) { yyerror("state option " "'max-src-states' " "multiple definitions"); YYERROR; } if (o->data.max_src_states == 0) { yyerror("'max-src-states' must " "be > 0"); YYERROR; } r.max_src_states = o->data.max_src_states; r.rule_flag |= PFRULE_SRCTRACK; break; case PF_STATE_OPT_OVERLOAD: if (r.overload_tblname[0]) { yyerror("multiple 'overload' " "table definitions"); YYERROR; } if (strlcpy(r.overload_tblname, o->data.overload.tblname, PF_TABLE_NAME_SIZE) >= PF_TABLE_NAME_SIZE) { yyerror("state option: " "strlcpy"); YYERROR; } r.flush = o->data.overload.flush; break; case PF_STATE_OPT_MAX_SRC_CONN: if (r.max_src_conn) { yyerror("state option " "'max-src-conn' " "multiple definitions"); YYERROR; } if (o->data.max_src_conn == 0) { yyerror("'max-src-conn' " "must be > 0"); YYERROR; } r.max_src_conn = o->data.max_src_conn; r.rule_flag |= PFRULE_SRCTRACK | PFRULE_RULESRCTRACK; break; case PF_STATE_OPT_MAX_SRC_CONN_RATE: if (r.max_src_conn_rate.limit) { yyerror("state option " "'max-src-conn-rate' " "multiple definitions"); YYERROR; } if (!o->data.max_src_conn_rate.limit || !o->data.max_src_conn_rate.seconds) { yyerror("'max-src-conn-rate' " "values must be > 0"); YYERROR; } if (o->data.max_src_conn_rate.limit > PF_THRESHOLD_MAX) { yyerror("'max-src-conn-rate' " "maximum rate must be < %u", PF_THRESHOLD_MAX); YYERROR; } r.max_src_conn_rate.limit = o->data.max_src_conn_rate.limit; r.max_src_conn_rate.seconds = o->data.max_src_conn_rate.seconds; r.rule_flag |= PFRULE_SRCTRACK | PFRULE_RULESRCTRACK; break; case PF_STATE_OPT_MAX_SRC_NODES: if (r.max_src_nodes) { yyerror("state option " "'max-src-nodes' " "multiple definitions"); YYERROR; } if (o->data.max_src_nodes == 0) { yyerror("'max-src-nodes' must " "be > 0"); YYERROR; } r.max_src_nodes = o->data.max_src_nodes; r.rule_flag |= PFRULE_SRCTRACK | PFRULE_RULESRCTRACK; break; case PF_STATE_OPT_STATELOCK: if (statelock) { yyerror("state locking option: " "multiple definitions"); YYERROR; } statelock = 1; r.rule_flag |= o->data.statelock; break; case PF_STATE_OPT_SLOPPY: if (r.rule_flag & PFRULE_STATESLOPPY) { yyerror("state sloppy option: " "multiple definitions"); YYERROR; } r.rule_flag |= PFRULE_STATESLOPPY; break; case PF_STATE_OPT_TIMEOUT: if (o->data.timeout.number == PFTM_ADAPTIVE_START || o->data.timeout.number == PFTM_ADAPTIVE_END) adaptive = 1; if (r.timeout[o->data.timeout.number]) { yyerror("state timeout %s " "multiple definitions", pf_timeouts[o->data. timeout.number].name); YYERROR; } r.timeout[o->data.timeout.number] = o->data.timeout.seconds; } o = o->next; if (!defaults) free(p); } /* 'flags S/SA' by default on stateful rules */ if (!r.action && !r.flags && !r.flagset && !$9.fragment && !($9.marker & FOM_FLAGS) && r.keep_state) { r.flags = parse_flags("S"); r.flagset = parse_flags("SA"); } if (!adaptive && r.max_states) { r.timeout[PFTM_ADAPTIVE_START] = (r.max_states / 10) * 6; r.timeout[PFTM_ADAPTIVE_END] = (r.max_states / 10) * 12; } if (r.rule_flag & PFRULE_SRCTRACK) { if (srctrack == PF_SRCTRACK_GLOBAL && r.max_src_nodes) { yyerror("'max-src-nodes' is " "incompatible with " "'source-track global'"); YYERROR; } if (srctrack == PF_SRCTRACK_GLOBAL && r.max_src_conn) { yyerror("'max-src-conn' is " "incompatible with " "'source-track global'"); YYERROR; } if (srctrack == PF_SRCTRACK_GLOBAL && r.max_src_conn_rate.seconds) { yyerror("'max-src-conn-rate' is " "incompatible with " "'source-track global'"); YYERROR; } if (r.timeout[PFTM_SRC_NODE] < r.max_src_conn_rate.seconds) r.timeout[PFTM_SRC_NODE] = r.max_src_conn_rate.seconds; r.rule_flag |= PFRULE_SRCTRACK; if (srctrack == PF_SRCTRACK_RULE) r.rule_flag |= PFRULE_RULESRCTRACK; } if (r.keep_state && !statelock) r.rule_flag |= default_statelock; if ($9.fragment) r.rule_flag |= PFRULE_FRAGMENT; r.allow_opts = $9.allowopts; decide_address_family($8.src.host, &r.af); decide_address_family($8.dst.host, &r.af); if ($5.rt) { if (!r.direction) { yyerror("direction must be explicit " "with rules that specify routing"); YYERROR; } r.rt = $5.rt; r.rpool.opts = $5.pool_opts; if ($5.key != NULL) memcpy(&r.rpool.key, $5.key, sizeof(struct pf_poolhashkey)); } if (r.rt) { decide_address_family($5.host, &r.af); remove_invalid_hosts(&$5.host, &r.af); if ($5.host == NULL) { yyerror("no routing address with " "matching address family found."); YYERROR; } if ((r.rpool.opts & PF_POOL_TYPEMASK) == PF_POOL_NONE && ($5.host->next != NULL || $5.host->addr.type == PF_ADDR_TABLE || DYNIF_MULTIADDR($5.host->addr))) r.rpool.opts |= PF_POOL_ROUNDROBIN; if ((r.rpool.opts & PF_POOL_TYPEMASK) != PF_POOL_ROUNDROBIN && disallow_table($5.host, "tables are only " "supported in round-robin routing pools")) YYERROR; if ((r.rpool.opts & PF_POOL_TYPEMASK) != PF_POOL_ROUNDROBIN && disallow_alias($5.host, "interface (%s) " "is only supported in round-robin " "routing pools")) YYERROR; if ($5.host->next != NULL) { if ((r.rpool.opts & PF_POOL_TYPEMASK) != PF_POOL_ROUNDROBIN) { yyerror("r.rpool.opts must " "be PF_POOL_ROUNDROBIN"); YYERROR; } } } if ($9.queues.qname != NULL) { if (strlcpy(r.qname, $9.queues.qname, sizeof(r.qname)) >= sizeof(r.qname)) { yyerror("rule qname too long (max " "%d chars)", sizeof(r.qname)-1); YYERROR; } free($9.queues.qname); } if ($9.queues.pqname != NULL) { if (strlcpy(r.pqname, $9.queues.pqname, sizeof(r.pqname)) >= sizeof(r.pqname)) { yyerror("rule pqname too long (max " "%d chars)", sizeof(r.pqname)-1); YYERROR; } free($9.queues.pqname); } #ifdef __FreeBSD__ r.divert.port = $9.divert.port; #else if ((r.divert.port = $9.divert.port)) { if (r.direction == PF_OUT) { if ($9.divert.addr) { yyerror("address specified " "for outgoing divert"); YYERROR; } bzero(&r.divert.addr, sizeof(r.divert.addr)); } else { if (!$9.divert.addr) { yyerror("no address specified " "for incoming divert"); YYERROR; } if ($9.divert.addr->af != r.af) { yyerror("address family " "mismatch for divert"); YYERROR; } r.divert.addr = $9.divert.addr->addr.v.a.addr; } } #endif + if ($9.dnpipe || $9.dnrpipe) { + r.dnpipe = $9.dnpipe; + r.dnrpipe = $9.dnrpipe; + if ($9.free_flags & PFRULE_DN_IS_PIPE) + r.free_flags |= PFRULE_DN_IS_PIPE; + else + r.free_flags |= PFRULE_DN_IS_QUEUE; + } + expand_rule(&r, $4, $5.host, $7, $8.src_os, $8.src.host, $8.src.port, $8.dst.host, $8.dst.port, $9.uid, $9.gid, $9.icmpspec, ""); } ; filter_opts : { bzero(&filter_opts, sizeof filter_opts); filter_opts.rtableid = -1; } filter_opts_l { $$ = filter_opts; } | /* empty */ { bzero(&filter_opts, sizeof filter_opts); filter_opts.rtableid = -1; $$ = filter_opts; } ; filter_opts_l : filter_opts_l filter_opt | filter_opt ; filter_opt : USER uids { if (filter_opts.uid) $2->tail->next = filter_opts.uid; filter_opts.uid = $2; } | GROUP gids { if (filter_opts.gid) $2->tail->next = filter_opts.gid; filter_opts.gid = $2; } | flags { if (filter_opts.marker & FOM_FLAGS) { yyerror("flags cannot be redefined"); YYERROR; } filter_opts.marker |= FOM_FLAGS; filter_opts.flags.b1 |= $1.b1; filter_opts.flags.b2 |= $1.b2; filter_opts.flags.w |= $1.w; filter_opts.flags.w2 |= $1.w2; } | icmpspec { if (filter_opts.marker & FOM_ICMP) { yyerror("icmp-type cannot be redefined"); YYERROR; } filter_opts.marker |= FOM_ICMP; filter_opts.icmpspec = $1; } | PRIO NUMBER { if (filter_opts.marker & FOM_PRIO) { yyerror("prio cannot be redefined"); YYERROR; } if ($2 < 0 || $2 > PF_PRIO_MAX) { yyerror("prio must be 0 - %u", PF_PRIO_MAX); YYERROR; } filter_opts.marker |= FOM_PRIO; filter_opts.prio = $2; } | TOS tos { if (filter_opts.marker & FOM_TOS) { yyerror("tos cannot be redefined"); YYERROR; } filter_opts.marker |= FOM_TOS; filter_opts.tos = $2; } | keep { if (filter_opts.marker & FOM_KEEP) { yyerror("modulate or keep cannot be redefined"); YYERROR; } filter_opts.marker |= FOM_KEEP; filter_opts.keep.action = $1.action; filter_opts.keep.options = $1.options; } | FRAGMENT { filter_opts.fragment = 1; } | ALLOWOPTS { filter_opts.allowopts = 1; } | label { if (filter_opts.labelcount >= PF_RULE_MAX_LABEL_COUNT) { yyerror("label can only be used %d times", PF_RULE_MAX_LABEL_COUNT); YYERROR; } filter_opts.label[filter_opts.labelcount++] = $1; } | qname { if (filter_opts.queues.qname) { yyerror("queue cannot be redefined"); YYERROR; } filter_opts.queues = $1; } + | DNPIPE number { + filter_opts.dnpipe = $2; + filter_opts.free_flags |= PFRULE_DN_IS_PIPE; + } + | DNPIPE '(' number ')' { + filter_opts.dnpipe = $3; + filter_opts.free_flags |= PFRULE_DN_IS_PIPE; + } + | DNPIPE '(' number comma number ')' { + filter_opts.dnrpipe = $5; + filter_opts.dnpipe = $3; + filter_opts.free_flags |= PFRULE_DN_IS_PIPE; + } + | DNQUEUE number { + filter_opts.dnpipe = $2; + filter_opts.free_flags |= PFRULE_DN_IS_QUEUE; + } + | DNQUEUE '(' number comma number ')' { + filter_opts.dnrpipe = $5; + filter_opts.dnpipe = $3; + filter_opts.free_flags |= PFRULE_DN_IS_QUEUE; + } + | DNQUEUE '(' number ')' { + filter_opts.dnpipe = $3; + filter_opts.free_flags |= PFRULE_DN_IS_QUEUE; + } | TAG string { filter_opts.tag = $2; } | not TAGGED string { filter_opts.match_tag = $3; filter_opts.match_tag_not = $1; } | PROBABILITY probability { double p; p = floor($2 * UINT_MAX + 0.5); if (p < 0.0 || p > UINT_MAX) { yyerror("invalid probability: %lf", p); YYERROR; } filter_opts.prob = (u_int32_t)p; if (filter_opts.prob == 0) filter_opts.prob = 1; } | RTABLE NUMBER { if ($2 < 0 || $2 > rt_tableid_max()) { yyerror("invalid rtable id"); YYERROR; } filter_opts.rtableid = $2; } | DIVERTTO portplain { #ifdef __FreeBSD__ filter_opts.divert.port = $2.a; if (!filter_opts.divert.port) { yyerror("invalid divert port: %u", ntohs($2.a)); YYERROR; } #endif } | DIVERTTO STRING PORT portplain { #ifndef __FreeBSD__ if ((filter_opts.divert.addr = host($2)) == NULL) { yyerror("could not parse divert address: %s", $2); free($2); YYERROR; } #else if ($2) #endif free($2); filter_opts.divert.port = $4.a; if (!filter_opts.divert.port) { yyerror("invalid divert port: %u", ntohs($4.a)); YYERROR; } } | DIVERTREPLY { #ifdef __FreeBSD__ yyerror("divert-reply has no meaning in FreeBSD pf(4)"); YYERROR; #else filter_opts.divert.port = 1; /* some random value */ #endif } | filter_sets ; filter_sets : SET '(' filter_sets_l ')' { $$ = filter_opts; } | SET filter_set { $$ = filter_opts; } ; filter_sets_l : filter_sets_l comma filter_set | filter_set ; filter_set : prio { if (filter_opts.marker & FOM_SETPRIO) { yyerror("prio cannot be redefined"); YYERROR; } filter_opts.marker |= FOM_SETPRIO; filter_opts.set_prio[0] = $1.b1; filter_opts.set_prio[1] = $1.b2; } prio : PRIO NUMBER { if ($2 < 0 || $2 > PF_PRIO_MAX) { yyerror("prio must be 0 - %u", PF_PRIO_MAX); YYERROR; } $$.b1 = $$.b2 = $2; } | PRIO '(' NUMBER comma NUMBER ')' { if ($3 < 0 || $3 > PF_PRIO_MAX || $5 < 0 || $5 > PF_PRIO_MAX) { yyerror("prio must be 0 - %u", PF_PRIO_MAX); YYERROR; } $$.b1 = $3; $$.b2 = $5; } ; probability : STRING { char *e; double p = strtod($1, &e); if (*e == '%') { p *= 0.01; e++; } if (*e) { yyerror("invalid probability: %s", $1); free($1); YYERROR; } free($1); $$ = p; } | NUMBER { $$ = (double)$1; } ; action : PASS { $$.b1 = PF_PASS; $$.b2 = failpolicy; $$.w = returnicmpdefault; $$.w2 = returnicmp6default; } | MATCH { $$.b1 = PF_MATCH; $$.b2 = $$.w = 0; } | BLOCK blockspec { $$ = $2; $$.b1 = PF_DROP; } ; blockspec : /* empty */ { $$.b2 = blockpolicy; $$.w = returnicmpdefault; $$.w2 = returnicmp6default; } | DROP { $$.b2 = PFRULE_DROP; $$.w = 0; $$.w2 = 0; } | RETURNRST { $$.b2 = PFRULE_RETURNRST; $$.w = 0; $$.w2 = 0; } | RETURNRST '(' TTL NUMBER ')' { if ($4 < 0 || $4 > 255) { yyerror("illegal ttl value %d", $4); YYERROR; } $$.b2 = PFRULE_RETURNRST; $$.w = $4; $$.w2 = 0; } | RETURNICMP { $$.b2 = PFRULE_RETURNICMP; $$.w = returnicmpdefault; $$.w2 = returnicmp6default; } | RETURNICMP6 { $$.b2 = PFRULE_RETURNICMP; $$.w = returnicmpdefault; $$.w2 = returnicmp6default; } | RETURNICMP '(' reticmpspec ')' { $$.b2 = PFRULE_RETURNICMP; $$.w = $3; $$.w2 = returnicmpdefault; } | RETURNICMP6 '(' reticmp6spec ')' { $$.b2 = PFRULE_RETURNICMP; $$.w = returnicmpdefault; $$.w2 = $3; } | RETURNICMP '(' reticmpspec comma reticmp6spec ')' { $$.b2 = PFRULE_RETURNICMP; $$.w = $3; $$.w2 = $5; } | RETURN { $$.b2 = PFRULE_RETURN; $$.w = returnicmpdefault; $$.w2 = returnicmp6default; } ; reticmpspec : STRING { if (!($$ = parseicmpspec($1, AF_INET))) { free($1); YYERROR; } free($1); } | NUMBER { u_int8_t icmptype; if ($1 < 0 || $1 > 255) { yyerror("invalid icmp code %lu", $1); YYERROR; } icmptype = returnicmpdefault >> 8; $$ = (icmptype << 8 | $1); } ; reticmp6spec : STRING { if (!($$ = parseicmpspec($1, AF_INET6))) { free($1); YYERROR; } free($1); } | NUMBER { u_int8_t icmptype; if ($1 < 0 || $1 > 255) { yyerror("invalid icmp code %lu", $1); YYERROR; } icmptype = returnicmp6default >> 8; $$ = (icmptype << 8 | $1); } ; dir : /* empty */ { $$ = PF_INOUT; } | IN { $$ = PF_IN; } | OUT { $$ = PF_OUT; } ; quick : /* empty */ { $$.quick = 0; } | QUICK { $$.quick = 1; } ; logquick : /* empty */ { $$.log = 0; $$.quick = 0; $$.logif = 0; } | log { $$ = $1; $$.quick = 0; } | QUICK { $$.quick = 1; $$.log = 0; $$.logif = 0; } | log QUICK { $$ = $1; $$.quick = 1; } | QUICK log { $$ = $2; $$.quick = 1; } ; log : LOG { $$.log = PF_LOG; $$.logif = 0; } | LOG '(' logopts ')' { $$.log = PF_LOG | $3.log; $$.logif = $3.logif; } ; logopts : logopt { $$ = $1; } | logopts comma logopt { $$.log = $1.log | $3.log; $$.logif = $3.logif; if ($$.logif == 0) $$.logif = $1.logif; } ; logopt : ALL { $$.log = PF_LOG_ALL; $$.logif = 0; } | USER { $$.log = PF_LOG_SOCKET_LOOKUP; $$.logif = 0; } | GROUP { $$.log = PF_LOG_SOCKET_LOOKUP; $$.logif = 0; } | TO string { const char *errstr; u_int i; $$.log = 0; if (strncmp($2, "pflog", 5)) { yyerror("%s: should be a pflog interface", $2); free($2); YYERROR; } i = strtonum($2 + 5, 0, 255, &errstr); if (errstr) { yyerror("%s: %s", $2, errstr); free($2); YYERROR; } free($2); $$.logif = i; } ; interface : /* empty */ { $$ = NULL; } | ON if_item_not { $$ = $2; } | ON '{' optnl if_list '}' { $$ = $4; } ; if_list : if_item_not optnl { $$ = $1; } | if_list comma if_item_not optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; if_item_not : not if_item { $$ = $2; $$->not = $1; } ; if_item : STRING { struct node_host *n; $$ = calloc(1, sizeof(struct node_if)); if ($$ == NULL) err(1, "if_item: calloc"); if (strlcpy($$->ifname, $1, sizeof($$->ifname)) >= sizeof($$->ifname)) { free($1); free($$); yyerror("interface name too long"); YYERROR; } if ((n = ifa_exists($1)) != NULL) $$->ifa_flags = n->ifa_flags; free($1); $$->not = 0; $$->next = NULL; $$->tail = $$; } ; af : /* empty */ { $$ = 0; } | INET { $$ = AF_INET; } | INET6 { $$ = AF_INET6; } ; proto : /* empty */ { $$ = NULL; } | PROTO proto_item { $$ = $2; } | PROTO '{' optnl proto_list '}' { $$ = $4; } ; proto_list : proto_item optnl { $$ = $1; } | proto_list comma proto_item optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; proto_item : protoval { u_int8_t pr; pr = (u_int8_t)$1; if (pr == 0) { yyerror("proto 0 cannot be used"); YYERROR; } $$ = calloc(1, sizeof(struct node_proto)); if ($$ == NULL) err(1, "proto_item: calloc"); $$->proto = pr; $$->next = NULL; $$->tail = $$; } ; protoval : STRING { struct protoent *p; p = getprotobyname($1); if (p == NULL) { yyerror("unknown protocol %s", $1); free($1); YYERROR; } $$ = p->p_proto; free($1); } | NUMBER { if ($1 < 0 || $1 > 255) { yyerror("protocol outside range"); YYERROR; } } ; fromto : ALL { $$.src.host = NULL; $$.src.port = NULL; $$.dst.host = NULL; $$.dst.port = NULL; $$.src_os = NULL; } | from os to { $$.src = $1; $$.src_os = $2; $$.dst = $3; } ; os : /* empty */ { $$ = NULL; } | OS xos { $$ = $2; } | OS '{' optnl os_list '}' { $$ = $4; } ; xos : STRING { $$ = calloc(1, sizeof(struct node_os)); if ($$ == NULL) err(1, "os: calloc"); $$->os = $1; $$->tail = $$; } ; os_list : xos optnl { $$ = $1; } | os_list comma xos optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; from : /* empty */ { $$.host = NULL; $$.port = NULL; } | FROM ipportspec { $$ = $2; } ; to : /* empty */ { $$.host = NULL; $$.port = NULL; } | TO ipportspec { if (disallow_urpf_failed($2.host, "\"urpf-failed\" is " "not permitted in a destination address")) YYERROR; $$ = $2; } ; ipportspec : ipspec { $$.host = $1; $$.port = NULL; } | ipspec PORT portspec { $$.host = $1; $$.port = $3; } | PORT portspec { $$.host = NULL; $$.port = $2; } ; optnl : '\n' optnl | ; ipspec : ANY { $$ = NULL; } | xhost { $$ = $1; } | '{' optnl host_list '}' { $$ = $3; } ; toipspec : TO ipspec { $$ = $2; } | /* empty */ { $$ = NULL; } ; host_list : ipspec optnl { $$ = $1; } | host_list comma ipspec optnl { if ($3 == NULL) $$ = $1; else if ($1 == NULL) $$ = $3; else { $1->tail->next = $3; $1->tail = $3->tail; $$ = $1; } } ; xhost : not host { struct node_host *n; for (n = $2; n != NULL; n = n->next) n->not = $1; $$ = $2; } | not NOROUTE { $$ = calloc(1, sizeof(struct node_host)); if ($$ == NULL) err(1, "xhost: calloc"); $$->addr.type = PF_ADDR_NOROUTE; $$->next = NULL; $$->not = $1; $$->tail = $$; } | not URPFFAILED { $$ = calloc(1, sizeof(struct node_host)); if ($$ == NULL) err(1, "xhost: calloc"); $$->addr.type = PF_ADDR_URPFFAILED; $$->next = NULL; $$->not = $1; $$->tail = $$; } ; host : STRING { if (($$ = host($1)) == NULL) { /* error. "any" is handled elsewhere */ free($1); yyerror("could not parse host specification"); YYERROR; } free($1); } | STRING '-' STRING { struct node_host *b, *e; if ((b = host($1)) == NULL || (e = host($3)) == NULL) { free($1); free($3); yyerror("could not parse host specification"); YYERROR; } if (b->af != e->af || b->addr.type != PF_ADDR_ADDRMASK || e->addr.type != PF_ADDR_ADDRMASK || unmask(&b->addr.v.a.mask, b->af) != (b->af == AF_INET ? 32 : 128) || unmask(&e->addr.v.a.mask, e->af) != (e->af == AF_INET ? 32 : 128) || b->next != NULL || b->not || e->next != NULL || e->not) { free(b); free(e); free($1); free($3); yyerror("invalid address range"); YYERROR; } memcpy(&b->addr.v.a.mask, &e->addr.v.a.addr, sizeof(b->addr.v.a.mask)); b->addr.type = PF_ADDR_RANGE; $$ = b; free(e); free($1); free($3); } | STRING '/' NUMBER { char *buf; if (asprintf(&buf, "%s/%lld", $1, (long long)$3) == -1) err(1, "host: asprintf"); free($1); if (($$ = host(buf)) == NULL) { /* error. "any" is handled elsewhere */ free(buf); yyerror("could not parse host specification"); YYERROR; } free(buf); } | NUMBER '/' NUMBER { char *buf; /* ie. for 10/8 parsing */ #ifdef __FreeBSD__ if (asprintf(&buf, "%lld/%lld", (long long)$1, (long long)$3) == -1) #else if (asprintf(&buf, "%lld/%lld", $1, $3) == -1) #endif err(1, "host: asprintf"); if (($$ = host(buf)) == NULL) { /* error. "any" is handled elsewhere */ free(buf); yyerror("could not parse host specification"); YYERROR; } free(buf); } | dynaddr | dynaddr '/' NUMBER { struct node_host *n; if ($3 < 0 || $3 > 128) { yyerror("bit number too big"); YYERROR; } $$ = $1; for (n = $1; n != NULL; n = n->next) set_ipmask(n, $3); } | '<' STRING '>' { if (strlen($2) >= PF_TABLE_NAME_SIZE) { yyerror("table name '%s' too long", $2); free($2); YYERROR; } $$ = calloc(1, sizeof(struct node_host)); if ($$ == NULL) err(1, "host: calloc"); $$->addr.type = PF_ADDR_TABLE; if (strlcpy($$->addr.v.tblname, $2, sizeof($$->addr.v.tblname)) >= sizeof($$->addr.v.tblname)) errx(1, "host: strlcpy"); free($2); $$->next = NULL; $$->tail = $$; } ; number : NUMBER | STRING { u_long ulval; if (atoul($1, &ulval) == -1) { yyerror("%s is not a number", $1); free($1); YYERROR; } else $$ = ulval; free($1); } ; dynaddr : '(' STRING ')' { int flags = 0; char *p, *op; op = $2; if (!isalpha(op[0])) { yyerror("invalid interface name '%s'", op); free(op); YYERROR; } while ((p = strrchr($2, ':')) != NULL) { if (!strcmp(p+1, "network")) flags |= PFI_AFLAG_NETWORK; else if (!strcmp(p+1, "broadcast")) flags |= PFI_AFLAG_BROADCAST; else if (!strcmp(p+1, "peer")) flags |= PFI_AFLAG_PEER; else if (!strcmp(p+1, "0")) flags |= PFI_AFLAG_NOALIAS; else { yyerror("interface %s has bad modifier", $2); free(op); YYERROR; } *p = '\0'; } if (flags & (flags - 1) & PFI_AFLAG_MODEMASK) { free(op); yyerror("illegal combination of " "interface modifiers"); YYERROR; } $$ = calloc(1, sizeof(struct node_host)); if ($$ == NULL) err(1, "address: calloc"); $$->af = 0; set_ipmask($$, 128); $$->addr.type = PF_ADDR_DYNIFTL; $$->addr.iflags = flags; if (strlcpy($$->addr.v.ifname, $2, sizeof($$->addr.v.ifname)) >= sizeof($$->addr.v.ifname)) { free(op); free($$); yyerror("interface name too long"); YYERROR; } free(op); $$->next = NULL; $$->tail = $$; } ; portspec : port_item { $$ = $1; } | '{' optnl port_list '}' { $$ = $3; } ; port_list : port_item optnl { $$ = $1; } | port_list comma port_item optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; port_item : portrange { $$ = calloc(1, sizeof(struct node_port)); if ($$ == NULL) err(1, "port_item: calloc"); $$->port[0] = $1.a; $$->port[1] = $1.b; if ($1.t) $$->op = PF_OP_RRG; else $$->op = PF_OP_EQ; $$->next = NULL; $$->tail = $$; } | unaryop portrange { if ($2.t) { yyerror("':' cannot be used with an other " "port operator"); YYERROR; } $$ = calloc(1, sizeof(struct node_port)); if ($$ == NULL) err(1, "port_item: calloc"); $$->port[0] = $2.a; $$->port[1] = $2.b; $$->op = $1; $$->next = NULL; $$->tail = $$; } | portrange PORTBINARY portrange { if ($1.t || $3.t) { yyerror("':' cannot be used with an other " "port operator"); YYERROR; } $$ = calloc(1, sizeof(struct node_port)); if ($$ == NULL) err(1, "port_item: calloc"); $$->port[0] = $1.a; $$->port[1] = $3.a; $$->op = $2; $$->next = NULL; $$->tail = $$; } ; portplain : numberstring { if (parseport($1, &$$, 0) == -1) { free($1); YYERROR; } free($1); } ; portrange : numberstring { if (parseport($1, &$$, PPORT_RANGE) == -1) { free($1); YYERROR; } free($1); } ; uids : uid_item { $$ = $1; } | '{' optnl uid_list '}' { $$ = $3; } ; uid_list : uid_item optnl { $$ = $1; } | uid_list comma uid_item optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; uid_item : uid { $$ = calloc(1, sizeof(struct node_uid)); if ($$ == NULL) err(1, "uid_item: calloc"); $$->uid[0] = $1; $$->uid[1] = $1; $$->op = PF_OP_EQ; $$->next = NULL; $$->tail = $$; } | unaryop uid { if ($2 == UID_MAX && $1 != PF_OP_EQ && $1 != PF_OP_NE) { yyerror("user unknown requires operator = or " "!="); YYERROR; } $$ = calloc(1, sizeof(struct node_uid)); if ($$ == NULL) err(1, "uid_item: calloc"); $$->uid[0] = $2; $$->uid[1] = $2; $$->op = $1; $$->next = NULL; $$->tail = $$; } | uid PORTBINARY uid { if ($1 == UID_MAX || $3 == UID_MAX) { yyerror("user unknown requires operator = or " "!="); YYERROR; } $$ = calloc(1, sizeof(struct node_uid)); if ($$ == NULL) err(1, "uid_item: calloc"); $$->uid[0] = $1; $$->uid[1] = $3; $$->op = $2; $$->next = NULL; $$->tail = $$; } ; uid : STRING { if (!strcmp($1, "unknown")) $$ = UID_MAX; else { struct passwd *pw; if ((pw = getpwnam($1)) == NULL) { yyerror("unknown user %s", $1); free($1); YYERROR; } $$ = pw->pw_uid; } free($1); } | NUMBER { if ($1 < 0 || $1 >= UID_MAX) { yyerror("illegal uid value %lu", $1); YYERROR; } $$ = $1; } ; gids : gid_item { $$ = $1; } | '{' optnl gid_list '}' { $$ = $3; } ; gid_list : gid_item optnl { $$ = $1; } | gid_list comma gid_item optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; gid_item : gid { $$ = calloc(1, sizeof(struct node_gid)); if ($$ == NULL) err(1, "gid_item: calloc"); $$->gid[0] = $1; $$->gid[1] = $1; $$->op = PF_OP_EQ; $$->next = NULL; $$->tail = $$; } | unaryop gid { if ($2 == GID_MAX && $1 != PF_OP_EQ && $1 != PF_OP_NE) { yyerror("group unknown requires operator = or " "!="); YYERROR; } $$ = calloc(1, sizeof(struct node_gid)); if ($$ == NULL) err(1, "gid_item: calloc"); $$->gid[0] = $2; $$->gid[1] = $2; $$->op = $1; $$->next = NULL; $$->tail = $$; } | gid PORTBINARY gid { if ($1 == GID_MAX || $3 == GID_MAX) { yyerror("group unknown requires operator = or " "!="); YYERROR; } $$ = calloc(1, sizeof(struct node_gid)); if ($$ == NULL) err(1, "gid_item: calloc"); $$->gid[0] = $1; $$->gid[1] = $3; $$->op = $2; $$->next = NULL; $$->tail = $$; } ; gid : STRING { if (!strcmp($1, "unknown")) $$ = GID_MAX; else { struct group *grp; if ((grp = getgrnam($1)) == NULL) { yyerror("unknown group %s", $1); free($1); YYERROR; } $$ = grp->gr_gid; } free($1); } | NUMBER { if ($1 < 0 || $1 >= GID_MAX) { yyerror("illegal gid value %lu", $1); YYERROR; } $$ = $1; } ; flag : STRING { int f; if ((f = parse_flags($1)) < 0) { yyerror("bad flags %s", $1); free($1); YYERROR; } free($1); $$.b1 = f; } ; flags : FLAGS flag '/' flag { $$.b1 = $2.b1; $$.b2 = $4.b1; } | FLAGS '/' flag { $$.b1 = 0; $$.b2 = $3.b1; } | FLAGS ANY { $$.b1 = 0; $$.b2 = 0; } ; icmpspec : ICMPTYPE icmp_item { $$ = $2; } | ICMPTYPE '{' optnl icmp_list '}' { $$ = $4; } | ICMP6TYPE icmp6_item { $$ = $2; } | ICMP6TYPE '{' optnl icmp6_list '}' { $$ = $4; } ; icmp_list : icmp_item optnl { $$ = $1; } | icmp_list comma icmp_item optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; icmp6_list : icmp6_item optnl { $$ = $1; } | icmp6_list comma icmp6_item optnl { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; icmp_item : icmptype { $$ = calloc(1, sizeof(struct node_icmp)); if ($$ == NULL) err(1, "icmp_item: calloc"); $$->type = $1; $$->code = 0; $$->proto = IPPROTO_ICMP; $$->next = NULL; $$->tail = $$; } | icmptype CODE STRING { const struct icmpcodeent *p; if ((p = geticmpcodebyname($1-1, $3, AF_INET)) == NULL) { yyerror("unknown icmp-code %s", $3); free($3); YYERROR; } free($3); $$ = calloc(1, sizeof(struct node_icmp)); if ($$ == NULL) err(1, "icmp_item: calloc"); $$->type = $1; $$->code = p->code + 1; $$->proto = IPPROTO_ICMP; $$->next = NULL; $$->tail = $$; } | icmptype CODE NUMBER { if ($3 < 0 || $3 > 255) { yyerror("illegal icmp-code %lu", $3); YYERROR; } $$ = calloc(1, sizeof(struct node_icmp)); if ($$ == NULL) err(1, "icmp_item: calloc"); $$->type = $1; $$->code = $3 + 1; $$->proto = IPPROTO_ICMP; $$->next = NULL; $$->tail = $$; } ; icmp6_item : icmp6type { $$ = calloc(1, sizeof(struct node_icmp)); if ($$ == NULL) err(1, "icmp_item: calloc"); $$->type = $1; $$->code = 0; $$->proto = IPPROTO_ICMPV6; $$->next = NULL; $$->tail = $$; } | icmp6type CODE STRING { const struct icmpcodeent *p; if ((p = geticmpcodebyname($1-1, $3, AF_INET6)) == NULL) { yyerror("unknown icmp6-code %s", $3); free($3); YYERROR; } free($3); $$ = calloc(1, sizeof(struct node_icmp)); if ($$ == NULL) err(1, "icmp_item: calloc"); $$->type = $1; $$->code = p->code + 1; $$->proto = IPPROTO_ICMPV6; $$->next = NULL; $$->tail = $$; } | icmp6type CODE NUMBER { if ($3 < 0 || $3 > 255) { yyerror("illegal icmp-code %lu", $3); YYERROR; } $$ = calloc(1, sizeof(struct node_icmp)); if ($$ == NULL) err(1, "icmp_item: calloc"); $$->type = $1; $$->code = $3 + 1; $$->proto = IPPROTO_ICMPV6; $$->next = NULL; $$->tail = $$; } ; icmptype : STRING { const struct icmptypeent *p; if ((p = geticmptypebyname($1, AF_INET)) == NULL) { yyerror("unknown icmp-type %s", $1); free($1); YYERROR; } $$ = p->type + 1; free($1); } | NUMBER { if ($1 < 0 || $1 > 255) { yyerror("illegal icmp-type %lu", $1); YYERROR; } $$ = $1 + 1; } ; icmp6type : STRING { const struct icmptypeent *p; if ((p = geticmptypebyname($1, AF_INET6)) == NULL) { yyerror("unknown icmp6-type %s", $1); free($1); YYERROR; } $$ = p->type + 1; free($1); } | NUMBER { if ($1 < 0 || $1 > 255) { yyerror("illegal icmp6-type %lu", $1); YYERROR; } $$ = $1 + 1; } ; tos : STRING { int val; char *end; if (map_tos($1, &val)) $$ = val; else if ($1[0] == '0' && $1[1] == 'x') { errno = 0; $$ = strtoul($1, &end, 16); if (errno || *end != '\0') $$ = 256; } else $$ = 256; /* flag bad argument */ if ($$ < 0 || $$ > 255) { yyerror("illegal tos value %s", $1); free($1); YYERROR; } free($1); } | NUMBER { $$ = $1; if ($$ < 0 || $$ > 255) { yyerror("illegal tos value %s", $1); YYERROR; } } ; sourcetrack : SOURCETRACK { $$ = PF_SRCTRACK; } | SOURCETRACK GLOBAL { $$ = PF_SRCTRACK_GLOBAL; } | SOURCETRACK RULE { $$ = PF_SRCTRACK_RULE; } ; statelock : IFBOUND { $$ = PFRULE_IFBOUND; } | FLOATING { $$ = 0; } ; keep : NO STATE { $$.action = 0; $$.options = NULL; } | KEEP STATE state_opt_spec { $$.action = PF_STATE_NORMAL; $$.options = $3; } | MODULATE STATE state_opt_spec { $$.action = PF_STATE_MODULATE; $$.options = $3; } | SYNPROXY STATE state_opt_spec { $$.action = PF_STATE_SYNPROXY; $$.options = $3; } ; flush : /* empty */ { $$ = 0; } | FLUSH { $$ = PF_FLUSH; } | FLUSH GLOBAL { $$ = PF_FLUSH | PF_FLUSH_GLOBAL; } ; state_opt_spec : '(' state_opt_list ')' { $$ = $2; } | /* empty */ { $$ = NULL; } ; state_opt_list : state_opt_item { $$ = $1; } | state_opt_list comma state_opt_item { $1->tail->next = $3; $1->tail = $3; $$ = $1; } ; state_opt_item : MAXIMUM NUMBER { if ($2 < 0 || $2 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_MAX; $$->data.max_states = $2; $$->next = NULL; $$->tail = $$; } | NOSYNC { $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_NOSYNC; $$->next = NULL; $$->tail = $$; } | MAXSRCSTATES NUMBER { if ($2 < 0 || $2 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_MAX_SRC_STATES; $$->data.max_src_states = $2; $$->next = NULL; $$->tail = $$; } | MAXSRCCONN NUMBER { if ($2 < 0 || $2 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_MAX_SRC_CONN; $$->data.max_src_conn = $2; $$->next = NULL; $$->tail = $$; } | MAXSRCCONNRATE NUMBER '/' NUMBER { if ($2 < 0 || $2 > UINT_MAX || $4 < 0 || $4 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_MAX_SRC_CONN_RATE; $$->data.max_src_conn_rate.limit = $2; $$->data.max_src_conn_rate.seconds = $4; $$->next = NULL; $$->tail = $$; } | OVERLOAD '<' STRING '>' flush { if (strlen($3) >= PF_TABLE_NAME_SIZE) { yyerror("table name '%s' too long", $3); free($3); YYERROR; } $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); if (strlcpy($$->data.overload.tblname, $3, PF_TABLE_NAME_SIZE) >= PF_TABLE_NAME_SIZE) errx(1, "state_opt_item: strlcpy"); free($3); $$->type = PF_STATE_OPT_OVERLOAD; $$->data.overload.flush = $5; $$->next = NULL; $$->tail = $$; } | MAXSRCNODES NUMBER { if ($2 < 0 || $2 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_MAX_SRC_NODES; $$->data.max_src_nodes = $2; $$->next = NULL; $$->tail = $$; } | sourcetrack { $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_SRCTRACK; $$->data.src_track = $1; $$->next = NULL; $$->tail = $$; } | statelock { $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_STATELOCK; $$->data.statelock = $1; $$->next = NULL; $$->tail = $$; } | SLOPPY { $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_SLOPPY; $$->next = NULL; $$->tail = $$; } | STRING NUMBER { int i; if ($2 < 0 || $2 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } for (i = 0; pf_timeouts[i].name && strcmp(pf_timeouts[i].name, $1); ++i) ; /* nothing */ if (!pf_timeouts[i].name) { yyerror("illegal timeout name %s", $1); free($1); YYERROR; } if (strchr(pf_timeouts[i].name, '.') == NULL) { yyerror("illegal state timeout %s", $1); free($1); YYERROR; } free($1); $$ = calloc(1, sizeof(struct node_state_opt)); if ($$ == NULL) err(1, "state_opt_item: calloc"); $$->type = PF_STATE_OPT_TIMEOUT; $$->data.timeout.number = pf_timeouts[i].timeout; $$->data.timeout.seconds = $2; $$->next = NULL; $$->tail = $$; } ; label : LABEL STRING { $$ = $2; } ; qname : QUEUE STRING { $$.qname = $2; $$.pqname = NULL; } | QUEUE '(' STRING ')' { $$.qname = $3; $$.pqname = NULL; } | QUEUE '(' STRING comma STRING ')' { $$.qname = $3; $$.pqname = $5; } ; no : /* empty */ { $$ = 0; } | NO { $$ = 1; } ; portstar : numberstring { if (parseport($1, &$$, PPORT_RANGE|PPORT_STAR) == -1) { free($1); YYERROR; } free($1); } ; redirspec : host { $$ = $1; } | '{' optnl redir_host_list '}' { $$ = $3; } ; redir_host_list : host optnl { $$ = $1; } | redir_host_list comma host optnl { $1->tail->next = $3; $1->tail = $3->tail; $$ = $1; } ; redirpool : /* empty */ { $$ = NULL; } | ARROW redirspec { $$ = calloc(1, sizeof(struct redirection)); if ($$ == NULL) err(1, "redirection: calloc"); $$->host = $2; $$->rport.a = $$->rport.b = $$->rport.t = 0; } | ARROW redirspec PORT portstar { $$ = calloc(1, sizeof(struct redirection)); if ($$ == NULL) err(1, "redirection: calloc"); $$->host = $2; $$->rport = $4; } ; hashkey : /* empty */ { $$ = calloc(1, sizeof(struct pf_poolhashkey)); if ($$ == NULL) err(1, "hashkey: calloc"); $$->key32[0] = arc4random(); $$->key32[1] = arc4random(); $$->key32[2] = arc4random(); $$->key32[3] = arc4random(); } | string { if (!strncmp($1, "0x", 2)) { if (strlen($1) != 34) { free($1); yyerror("hex key must be 128 bits " "(32 hex digits) long"); YYERROR; } $$ = calloc(1, sizeof(struct pf_poolhashkey)); if ($$ == NULL) err(1, "hashkey: calloc"); if (sscanf($1, "0x%8x%8x%8x%8x", &$$->key32[0], &$$->key32[1], &$$->key32[2], &$$->key32[3]) != 4) { free($$); free($1); yyerror("invalid hex key"); YYERROR; } } else { MD5_CTX context; $$ = calloc(1, sizeof(struct pf_poolhashkey)); if ($$ == NULL) err(1, "hashkey: calloc"); MD5Init(&context); MD5Update(&context, (unsigned char *)$1, strlen($1)); MD5Final((unsigned char *)$$, &context); HTONL($$->key32[0]); HTONL($$->key32[1]); HTONL($$->key32[2]); HTONL($$->key32[3]); } free($1); } ; pool_opts : { bzero(&pool_opts, sizeof pool_opts); } pool_opts_l { $$ = pool_opts; } | /* empty */ { bzero(&pool_opts, sizeof pool_opts); $$ = pool_opts; } ; pool_opts_l : pool_opts_l pool_opt | pool_opt ; pool_opt : BITMASK { if (pool_opts.type) { yyerror("pool type cannot be redefined"); YYERROR; } pool_opts.type = PF_POOL_BITMASK; } | RANDOM { if (pool_opts.type) { yyerror("pool type cannot be redefined"); YYERROR; } pool_opts.type = PF_POOL_RANDOM; } | SOURCEHASH hashkey { if (pool_opts.type) { yyerror("pool type cannot be redefined"); YYERROR; } pool_opts.type = PF_POOL_SRCHASH; pool_opts.key = $2; } | ROUNDROBIN { if (pool_opts.type) { yyerror("pool type cannot be redefined"); YYERROR; } pool_opts.type = PF_POOL_ROUNDROBIN; } | STATICPORT { if (pool_opts.staticport) { yyerror("static-port cannot be redefined"); YYERROR; } pool_opts.staticport = 1; } | STICKYADDRESS { if (filter_opts.marker & POM_STICKYADDRESS) { yyerror("sticky-address cannot be redefined"); YYERROR; } pool_opts.marker |= POM_STICKYADDRESS; pool_opts.opts |= PF_POOL_STICKYADDR; } | MAPEPORTSET number '/' number '/' number { if (pool_opts.mape.offset) { yyerror("map-e-portset cannot be redefined"); YYERROR; } if (pool_opts.type) { yyerror("map-e-portset cannot be used with " "address pools"); YYERROR; } if ($2 <= 0 || $2 >= 16) { yyerror("MAP-E PSID offset must be 1-15"); YYERROR; } if ($4 < 0 || $4 >= 16 || $2 + $4 > 16) { yyerror("Invalid MAP-E PSID length"); YYERROR; } else if ($4 == 0) { yyerror("PSID Length = 0: this means" " you do not need MAP-E"); YYERROR; } if ($6 < 0 || $6 > 65535) { yyerror("Invalid MAP-E PSID"); YYERROR; } pool_opts.mape.offset = $2; pool_opts.mape.psidlen = $4; pool_opts.mape.psid = $6; } ; redirection : /* empty */ { $$ = NULL; } | ARROW host { $$ = calloc(1, sizeof(struct redirection)); if ($$ == NULL) err(1, "redirection: calloc"); $$->host = $2; $$->rport.a = $$->rport.b = $$->rport.t = 0; } | ARROW host PORT portstar { $$ = calloc(1, sizeof(struct redirection)); if ($$ == NULL) err(1, "redirection: calloc"); $$->host = $2; $$->rport = $4; } ; natpasslog : /* empty */ { $$.b1 = $$.b2 = 0; $$.w2 = 0; } | PASS { $$.b1 = 1; $$.b2 = 0; $$.w2 = 0; } | PASS log { $$.b1 = 1; $$.b2 = $2.log; $$.w2 = $2.logif; } | log { $$.b1 = 0; $$.b2 = $1.log; $$.w2 = $1.logif; } ; nataction : no NAT natpasslog { if ($1 && $3.b1) { yyerror("\"pass\" not valid with \"no\""); YYERROR; } if ($1) $$.b1 = PF_NONAT; else $$.b1 = PF_NAT; $$.b2 = $3.b1; $$.w = $3.b2; $$.w2 = $3.w2; } | no RDR natpasslog { if ($1 && $3.b1) { yyerror("\"pass\" not valid with \"no\""); YYERROR; } if ($1) $$.b1 = PF_NORDR; else $$.b1 = PF_RDR; $$.b2 = $3.b1; $$.w = $3.b2; $$.w2 = $3.w2; } ; natrule : nataction interface af proto fromto tag tagged rtable redirpool pool_opts { struct pfctl_rule r; if (check_rulestate(PFCTL_STATE_NAT)) YYERROR; memset(&r, 0, sizeof(r)); r.action = $1.b1; r.natpass = $1.b2; r.log = $1.w; r.logif = $1.w2; r.af = $3; if (!r.af) { if ($5.src.host && $5.src.host->af && !$5.src.host->ifindex) r.af = $5.src.host->af; else if ($5.dst.host && $5.dst.host->af && !$5.dst.host->ifindex) r.af = $5.dst.host->af; } if ($6 != NULL) if (strlcpy(r.tagname, $6, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } if ($7.name) if (strlcpy(r.match_tagname, $7.name, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } r.match_tag_not = $7.neg; r.rtableid = $8; if (r.action == PF_NONAT || r.action == PF_NORDR) { if ($9 != NULL) { yyerror("translation rule with 'no' " "does not need '->'"); YYERROR; } } else { if ($9 == NULL || $9->host == NULL) { yyerror("translation rule requires '-> " "address'"); YYERROR; } if (!r.af && ! $9->host->ifindex) r.af = $9->host->af; remove_invalid_hosts(&$9->host, &r.af); if (invalid_redirect($9->host, r.af)) YYERROR; if (check_netmask($9->host, r.af)) YYERROR; r.rpool.proxy_port[0] = ntohs($9->rport.a); switch (r.action) { case PF_RDR: if (!$9->rport.b && $9->rport.t && $5.dst.port != NULL) { r.rpool.proxy_port[1] = ntohs($9->rport.a) + (ntohs( $5.dst.port->port[1]) - ntohs( $5.dst.port->port[0])); } else r.rpool.proxy_port[1] = ntohs($9->rport.b); break; case PF_NAT: r.rpool.proxy_port[1] = ntohs($9->rport.b); if (!r.rpool.proxy_port[0] && !r.rpool.proxy_port[1]) { r.rpool.proxy_port[0] = PF_NAT_PROXY_PORT_LOW; r.rpool.proxy_port[1] = PF_NAT_PROXY_PORT_HIGH; } else if (!r.rpool.proxy_port[1]) r.rpool.proxy_port[1] = r.rpool.proxy_port[0]; break; default: break; } r.rpool.opts = $10.type; if ((r.rpool.opts & PF_POOL_TYPEMASK) == PF_POOL_NONE && ($9->host->next != NULL || $9->host->addr.type == PF_ADDR_TABLE || DYNIF_MULTIADDR($9->host->addr))) r.rpool.opts = PF_POOL_ROUNDROBIN; if ((r.rpool.opts & PF_POOL_TYPEMASK) != PF_POOL_ROUNDROBIN && disallow_table($9->host, "tables are only " "supported in round-robin redirection " "pools")) YYERROR; if ((r.rpool.opts & PF_POOL_TYPEMASK) != PF_POOL_ROUNDROBIN && disallow_alias($9->host, "interface (%s) " "is only supported in round-robin " "redirection pools")) YYERROR; if ($9->host->next != NULL) { if ((r.rpool.opts & PF_POOL_TYPEMASK) != PF_POOL_ROUNDROBIN) { yyerror("only round-robin " "valid for multiple " "redirection addresses"); YYERROR; } } } if ($10.key != NULL) memcpy(&r.rpool.key, $10.key, sizeof(struct pf_poolhashkey)); if ($10.opts) r.rpool.opts |= $10.opts; if ($10.staticport) { if (r.action != PF_NAT) { yyerror("the 'static-port' option is " "only valid with nat rules"); YYERROR; } if (r.rpool.proxy_port[0] != PF_NAT_PROXY_PORT_LOW && r.rpool.proxy_port[1] != PF_NAT_PROXY_PORT_HIGH) { yyerror("the 'static-port' option can't" " be used when specifying a port" " range"); YYERROR; } r.rpool.proxy_port[0] = 0; r.rpool.proxy_port[1] = 0; } if ($10.mape.offset) { if (r.action != PF_NAT) { yyerror("the 'map-e-portset' option is" " only valid with nat rules"); YYERROR; } if ($10.staticport) { yyerror("the 'map-e-portset' option" " can't be used 'static-port'"); YYERROR; } if (r.rpool.proxy_port[0] != PF_NAT_PROXY_PORT_LOW && r.rpool.proxy_port[1] != PF_NAT_PROXY_PORT_HIGH) { yyerror("the 'map-e-portset' option" " can't be used when specifying" " a port range"); YYERROR; } r.rpool.mape = $10.mape; } expand_rule(&r, $2, $9 == NULL ? NULL : $9->host, $4, $5.src_os, $5.src.host, $5.src.port, $5.dst.host, $5.dst.port, 0, 0, 0, ""); free($9); } ; binatrule : no BINAT natpasslog interface af proto FROM ipspec toipspec tag tagged rtable redirection { struct pfctl_rule binat; struct pf_pooladdr *pa; if (check_rulestate(PFCTL_STATE_NAT)) YYERROR; if (disallow_urpf_failed($9, "\"urpf-failed\" is not " "permitted as a binat destination")) YYERROR; memset(&binat, 0, sizeof(binat)); if ($1 && $3.b1) { yyerror("\"pass\" not valid with \"no\""); YYERROR; } if ($1) binat.action = PF_NOBINAT; else binat.action = PF_BINAT; binat.natpass = $3.b1; binat.log = $3.b2; binat.logif = $3.w2; binat.af = $5; if (!binat.af && $8 != NULL && $8->af) binat.af = $8->af; if (!binat.af && $9 != NULL && $9->af) binat.af = $9->af; if (!binat.af && $13 != NULL && $13->host) binat.af = $13->host->af; if (!binat.af) { yyerror("address family (inet/inet6) " "undefined"); YYERROR; } if ($4 != NULL) { memcpy(binat.ifname, $4->ifname, sizeof(binat.ifname)); binat.ifnot = $4->not; free($4); } if ($10 != NULL) if (strlcpy(binat.tagname, $10, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } if ($11.name) if (strlcpy(binat.match_tagname, $11.name, PF_TAG_NAME_SIZE) >= PF_TAG_NAME_SIZE) { yyerror("tag too long, max %u chars", PF_TAG_NAME_SIZE - 1); YYERROR; } binat.match_tag_not = $11.neg; binat.rtableid = $12; if ($6 != NULL) { binat.proto = $6->proto; free($6); } if ($8 != NULL && disallow_table($8, "invalid use of " "table <%s> as the source address of a binat rule")) YYERROR; if ($8 != NULL && disallow_alias($8, "invalid use of " "interface (%s) as the source address of a binat " "rule")) YYERROR; if ($13 != NULL && $13->host != NULL && disallow_table( $13->host, "invalid use of table <%s> as the " "redirect address of a binat rule")) YYERROR; if ($13 != NULL && $13->host != NULL && disallow_alias( $13->host, "invalid use of interface (%s) as the " "redirect address of a binat rule")) YYERROR; if ($8 != NULL) { if ($8->next) { yyerror("multiple binat ip addresses"); YYERROR; } if ($8->addr.type == PF_ADDR_DYNIFTL) $8->af = binat.af; if ($8->af != binat.af) { yyerror("binat ip versions must match"); YYERROR; } if (check_netmask($8, binat.af)) YYERROR; memcpy(&binat.src.addr, &$8->addr, sizeof(binat.src.addr)); free($8); } if ($9 != NULL) { if ($9->next) { yyerror("multiple binat ip addresses"); YYERROR; } if ($9->af != binat.af && $9->af) { yyerror("binat ip versions must match"); YYERROR; } if (check_netmask($9, binat.af)) YYERROR; memcpy(&binat.dst.addr, &$9->addr, sizeof(binat.dst.addr)); binat.dst.neg = $9->not; free($9); } if (binat.action == PF_NOBINAT) { if ($13 != NULL) { yyerror("'no binat' rule does not need" " '->'"); YYERROR; } } else { if ($13 == NULL || $13->host == NULL) { yyerror("'binat' rule requires" " '-> address'"); YYERROR; } remove_invalid_hosts(&$13->host, &binat.af); if (invalid_redirect($13->host, binat.af)) YYERROR; if ($13->host->next != NULL) { yyerror("binat rule must redirect to " "a single address"); YYERROR; } if (check_netmask($13->host, binat.af)) YYERROR; if (!PF_AZERO(&binat.src.addr.v.a.mask, binat.af) && !PF_AEQ(&binat.src.addr.v.a.mask, &$13->host->addr.v.a.mask, binat.af)) { yyerror("'binat' source mask and " "redirect mask must be the same"); YYERROR; } TAILQ_INIT(&binat.rpool.list); pa = calloc(1, sizeof(struct pf_pooladdr)); if (pa == NULL) err(1, "binat: calloc"); pa->addr = $13->host->addr; pa->ifname[0] = 0; TAILQ_INSERT_TAIL(&binat.rpool.list, pa, entries); free($13); } pfctl_append_rule(pf, &binat, ""); } ; tag : /* empty */ { $$ = NULL; } | TAG STRING { $$ = $2; } ; tagged : /* empty */ { $$.neg = 0; $$.name = NULL; } | not TAGGED string { $$.neg = $1; $$.name = $3; } ; rtable : /* empty */ { $$ = -1; } | RTABLE NUMBER { if ($2 < 0 || $2 > rt_tableid_max()) { yyerror("invalid rtable id"); YYERROR; } $$ = $2; } ; route_host : STRING { $$ = calloc(1, sizeof(struct node_host)); if ($$ == NULL) err(1, "route_host: calloc"); $$->ifname = strdup($1); set_ipmask($$, 128); $$->next = NULL; $$->tail = $$; } | '(' STRING host ')' { struct node_host *n; $$ = $3; for (n = $3; n != NULL; n = n->next) n->ifname = strdup($2); } ; route_host_list : route_host optnl { $$ = $1; } | route_host_list comma route_host optnl { if ($1->af == 0) $1->af = $3->af; if ($1->af != $3->af) { yyerror("all pool addresses must be in the " "same address family"); YYERROR; } $1->tail->next = $3; $1->tail = $3->tail; $$ = $1; } ; routespec : route_host { $$ = $1; } | '{' optnl route_host_list '}' { $$ = $3; } ; route : /* empty */ { $$.host = NULL; $$.rt = 0; $$.pool_opts = 0; } | FASTROUTE { /* backwards-compat */ $$.host = NULL; $$.rt = 0; $$.pool_opts = 0; } | ROUTETO routespec pool_opts { $$.host = $2; $$.rt = PF_ROUTETO; $$.pool_opts = $3.type | $3.opts; if ($3.key != NULL) $$.key = $3.key; } | REPLYTO routespec pool_opts { $$.host = $2; $$.rt = PF_REPLYTO; $$.pool_opts = $3.type | $3.opts; if ($3.key != NULL) $$.key = $3.key; } | DUPTO routespec pool_opts { $$.host = $2; $$.rt = PF_DUPTO; $$.pool_opts = $3.type | $3.opts; if ($3.key != NULL) $$.key = $3.key; } ; timeout_spec : STRING NUMBER { if (check_rulestate(PFCTL_STATE_OPTION)) { free($1); YYERROR; } if ($2 < 0 || $2 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } if (pfctl_set_timeout(pf, $1, $2, 0) != 0) { yyerror("unknown timeout %s", $1); free($1); YYERROR; } free($1); } | INTERVAL NUMBER { if (check_rulestate(PFCTL_STATE_OPTION)) YYERROR; if ($2 < 0 || $2 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } if (pfctl_set_timeout(pf, "interval", $2, 0) != 0) YYERROR; } ; timeout_list : timeout_list comma timeout_spec optnl | timeout_spec optnl ; limit_spec : STRING NUMBER { if (check_rulestate(PFCTL_STATE_OPTION)) { free($1); YYERROR; } if ($2 < 0 || $2 > UINT_MAX) { yyerror("only positive values permitted"); YYERROR; } if (pfctl_set_limit(pf, $1, $2) != 0) { yyerror("unable to set limit %s %u", $1, $2); free($1); YYERROR; } free($1); } ; limit_list : limit_list comma limit_spec optnl | limit_spec optnl ; comma : ',' | /* empty */ ; yesno : NO { $$ = 0; } | STRING { if (!strcmp($1, "yes")) $$ = 1; else { yyerror("invalid value '%s', expected 'yes' " "or 'no'", $1); free($1); YYERROR; } free($1); } ; unaryop : '=' { $$ = PF_OP_EQ; } | '!' '=' { $$ = PF_OP_NE; } | '<' '=' { $$ = PF_OP_LE; } | '<' { $$ = PF_OP_LT; } | '>' '=' { $$ = PF_OP_GE; } | '>' { $$ = PF_OP_GT; } ; %% int yyerror(const char *fmt, ...) { va_list ap; file->errors++; va_start(ap, fmt); fprintf(stderr, "%s:%d: ", file->name, yylval.lineno); vfprintf(stderr, fmt, ap); fprintf(stderr, "\n"); va_end(ap); return (0); } int disallow_table(struct node_host *h, const char *fmt) { for (; h != NULL; h = h->next) if (h->addr.type == PF_ADDR_TABLE) { yyerror(fmt, h->addr.v.tblname); return (1); } return (0); } int disallow_urpf_failed(struct node_host *h, const char *fmt) { for (; h != NULL; h = h->next) if (h->addr.type == PF_ADDR_URPFFAILED) { yyerror(fmt); return (1); } return (0); } int disallow_alias(struct node_host *h, const char *fmt) { for (; h != NULL; h = h->next) if (DYNIF_MULTIADDR(h->addr)) { yyerror(fmt, h->addr.v.tblname); return (1); } return (0); } int rule_consistent(struct pfctl_rule *r, int anchor_call) { int problems = 0; switch (r->action) { case PF_PASS: case PF_DROP: case PF_SCRUB: case PF_NOSCRUB: problems = filter_consistent(r, anchor_call); break; case PF_NAT: case PF_NONAT: problems = nat_consistent(r); break; case PF_RDR: case PF_NORDR: problems = rdr_consistent(r); break; case PF_BINAT: case PF_NOBINAT: default: break; } return (problems); } int filter_consistent(struct pfctl_rule *r, int anchor_call) { int problems = 0; if (r->proto != IPPROTO_TCP && r->proto != IPPROTO_UDP && (r->src.port_op || r->dst.port_op)) { yyerror("port only applies to tcp/udp"); problems++; } if (r->proto != IPPROTO_ICMP && r->proto != IPPROTO_ICMPV6 && (r->type || r->code)) { yyerror("icmp-type/code only applies to icmp"); problems++; } if (!r->af && (r->type || r->code)) { yyerror("must indicate address family with icmp-type/code"); problems++; } if (r->overload_tblname[0] && r->max_src_conn == 0 && r->max_src_conn_rate.seconds == 0) { yyerror("'overload' requires 'max-src-conn' " "or 'max-src-conn-rate'"); problems++; } if ((r->proto == IPPROTO_ICMP && r->af == AF_INET6) || (r->proto == IPPROTO_ICMPV6 && r->af == AF_INET)) { yyerror("proto %s doesn't match address family %s", r->proto == IPPROTO_ICMP ? "icmp" : "icmp6", r->af == AF_INET ? "inet" : "inet6"); problems++; } if (r->allow_opts && r->action != PF_PASS) { yyerror("allow-opts can only be specified for pass rules"); problems++; } if (r->rule_flag & PFRULE_FRAGMENT && (r->src.port_op || r->dst.port_op || r->flagset || r->type || r->code)) { yyerror("fragments can be filtered only on IP header fields"); problems++; } if (r->rule_flag & PFRULE_RETURNRST && r->proto != IPPROTO_TCP) { yyerror("return-rst can only be applied to TCP rules"); problems++; } if (r->max_src_nodes && !(r->rule_flag & PFRULE_RULESRCTRACK)) { yyerror("max-src-nodes requires 'source-track rule'"); problems++; } if (r->action == PF_DROP && r->keep_state) { yyerror("keep state on block rules doesn't make sense"); problems++; } if (r->rule_flag & PFRULE_STATESLOPPY && (r->keep_state == PF_STATE_MODULATE || r->keep_state == PF_STATE_SYNPROXY)) { yyerror("sloppy state matching cannot be used with " "synproxy state or modulate state"); problems++; } return (-problems); } int nat_consistent(struct pfctl_rule *r) { return (0); /* yeah! */ } int rdr_consistent(struct pfctl_rule *r) { int problems = 0; if (r->proto != IPPROTO_TCP && r->proto != IPPROTO_UDP) { if (r->src.port_op) { yyerror("src port only applies to tcp/udp"); problems++; } if (r->dst.port_op) { yyerror("dst port only applies to tcp/udp"); problems++; } if (r->rpool.proxy_port[0]) { yyerror("rpool port only applies to tcp/udp"); problems++; } } if (r->dst.port_op && r->dst.port_op != PF_OP_EQ && r->dst.port_op != PF_OP_RRG) { yyerror("invalid port operator for rdr destination port"); problems++; } return (-problems); } int process_tabledef(char *name, struct table_opts *opts) { struct pfr_buffer ab; struct node_tinit *ti; unsigned long maxcount; size_t s = sizeof(maxcount); bzero(&ab, sizeof(ab)); ab.pfrb_type = PFRB_ADDRS; SIMPLEQ_FOREACH(ti, &opts->init_nodes, entries) { if (ti->file) if (pfr_buf_load(&ab, ti->file, 0, append_addr)) { if (errno) yyerror("cannot load \"%s\": %s", ti->file, strerror(errno)); else yyerror("file \"%s\" contains bad data", ti->file); goto _error; } if (ti->host) if (append_addr_host(&ab, ti->host, 0, 0)) { yyerror("cannot create address buffer: %s", strerror(errno)); goto _error; } } if (pf->opts & PF_OPT_VERBOSE) print_tabledef(name, opts->flags, opts->init_addr, &opts->init_nodes); if (!(pf->opts & PF_OPT_NOACTION) && pfctl_define_table(name, opts->flags, opts->init_addr, pf->anchor->name, &ab, pf->anchor->ruleset.tticket)) { if (sysctlbyname("net.pf.request_maxcount", &maxcount, &s, NULL, 0) == -1) maxcount = 65535; if (ab.pfrb_size > maxcount) yyerror("cannot define table %s: too many elements.\n" "Consider increasing net.pf.request_maxcount.", name); else yyerror("cannot define table %s: %s", name, pfr_strerror(errno)); goto _error; } pf->tdirty = 1; pfr_buf_clear(&ab); return (0); _error: pfr_buf_clear(&ab); return (-1); } struct keywords { const char *k_name; int k_val; }; /* macro gore, but you should've seen the prior indentation nightmare... */ #define FREE_LIST(T,r) \ do { \ T *p, *node = r; \ while (node != NULL) { \ p = node; \ node = node->next; \ free(p); \ } \ } while (0) #define LOOP_THROUGH(T,n,r,C) \ do { \ T *n; \ if (r == NULL) { \ r = calloc(1, sizeof(T)); \ if (r == NULL) \ err(1, "LOOP: calloc"); \ r->next = NULL; \ } \ n = r; \ while (n != NULL) { \ do { \ C; \ } while (0); \ n = n->next; \ } \ } while (0) void expand_label_str(char *label, size_t len, const char *srch, const char *repl) { char *tmp; char *p, *q; if ((tmp = calloc(1, len)) == NULL) err(1, "expand_label_str: calloc"); p = q = label; while ((q = strstr(p, srch)) != NULL) { *q = '\0'; if ((strlcat(tmp, p, len) >= len) || (strlcat(tmp, repl, len) >= len)) errx(1, "expand_label: label too long"); q += strlen(srch); p = q; } if (strlcat(tmp, p, len) >= len) errx(1, "expand_label: label too long"); strlcpy(label, tmp, len); /* always fits */ free(tmp); } void expand_label_if(const char *name, char *label, size_t len, const char *ifname) { if (strstr(label, name) != NULL) { if (!*ifname) expand_label_str(label, len, name, "any"); else expand_label_str(label, len, name, ifname); } } void expand_label_addr(const char *name, char *label, size_t len, sa_family_t af, struct node_host *h) { char tmp[64], tmp_not[66]; if (strstr(label, name) != NULL) { switch (h->addr.type) { case PF_ADDR_DYNIFTL: snprintf(tmp, sizeof(tmp), "(%s)", h->addr.v.ifname); break; case PF_ADDR_TABLE: snprintf(tmp, sizeof(tmp), "<%s>", h->addr.v.tblname); break; case PF_ADDR_NOROUTE: snprintf(tmp, sizeof(tmp), "no-route"); break; case PF_ADDR_URPFFAILED: snprintf(tmp, sizeof(tmp), "urpf-failed"); break; case PF_ADDR_ADDRMASK: if (!af || (PF_AZERO(&h->addr.v.a.addr, af) && PF_AZERO(&h->addr.v.a.mask, af))) snprintf(tmp, sizeof(tmp), "any"); else { char a[48]; int bits; if (inet_ntop(af, &h->addr.v.a.addr, a, sizeof(a)) == NULL) snprintf(tmp, sizeof(tmp), "?"); else { bits = unmask(&h->addr.v.a.mask, af); if ((af == AF_INET && bits < 32) || (af == AF_INET6 && bits < 128)) snprintf(tmp, sizeof(tmp), "%s/%d", a, bits); else snprintf(tmp, sizeof(tmp), "%s", a); } } break; default: snprintf(tmp, sizeof(tmp), "?"); break; } if (h->not) { snprintf(tmp_not, sizeof(tmp_not), "! %s", tmp); expand_label_str(label, len, name, tmp_not); } else expand_label_str(label, len, name, tmp); } } void expand_label_port(const char *name, char *label, size_t len, struct node_port *port) { char a1[6], a2[6], op[13] = ""; if (strstr(label, name) != NULL) { snprintf(a1, sizeof(a1), "%u", ntohs(port->port[0])); snprintf(a2, sizeof(a2), "%u", ntohs(port->port[1])); if (!port->op) ; else if (port->op == PF_OP_IRG) snprintf(op, sizeof(op), "%s><%s", a1, a2); else if (port->op == PF_OP_XRG) snprintf(op, sizeof(op), "%s<>%s", a1, a2); else if (port->op == PF_OP_EQ) snprintf(op, sizeof(op), "%s", a1); else if (port->op == PF_OP_NE) snprintf(op, sizeof(op), "!=%s", a1); else if (port->op == PF_OP_LT) snprintf(op, sizeof(op), "<%s", a1); else if (port->op == PF_OP_LE) snprintf(op, sizeof(op), "<=%s", a1); else if (port->op == PF_OP_GT) snprintf(op, sizeof(op), ">%s", a1); else if (port->op == PF_OP_GE) snprintf(op, sizeof(op), ">=%s", a1); expand_label_str(label, len, name, op); } } void expand_label_proto(const char *name, char *label, size_t len, u_int8_t proto) { const char *protoname; char n[4]; if (strstr(label, name) != NULL) { protoname = pfctl_proto2name(proto); if (protoname != NULL) expand_label_str(label, len, name, protoname); else { snprintf(n, sizeof(n), "%u", proto); expand_label_str(label, len, name, n); } } } void expand_label_nr(const char *name, char *label, size_t len) { char n[11]; if (strstr(label, name) != NULL) { snprintf(n, sizeof(n), "%u", pf->anchor->match); expand_label_str(label, len, name, n); } } void expand_label(char *label, size_t len, const char *ifname, sa_family_t af, struct node_host *src_host, struct node_port *src_port, struct node_host *dst_host, struct node_port *dst_port, u_int8_t proto) { expand_label_if("$if", label, len, ifname); expand_label_addr("$srcaddr", label, len, af, src_host); expand_label_addr("$dstaddr", label, len, af, dst_host); expand_label_port("$srcport", label, len, src_port); expand_label_port("$dstport", label, len, dst_port); expand_label_proto("$proto", label, len, proto); expand_label_nr("$nr", label, len); } int expand_altq(struct pf_altq *a, struct node_if *interfaces, struct node_queue *nqueues, struct node_queue_bw bwspec, struct node_queue_opt *opts) { struct pf_altq pa, pb; char qname[PF_QNAME_SIZE]; struct node_queue *n; struct node_queue_bw bw; int errs = 0; if ((pf->loadopt & PFCTL_FLAG_ALTQ) == 0) { FREE_LIST(struct node_if, interfaces); if (nqueues) FREE_LIST(struct node_queue, nqueues); return (0); } LOOP_THROUGH(struct node_if, interface, interfaces, memcpy(&pa, a, sizeof(struct pf_altq)); if (strlcpy(pa.ifname, interface->ifname, sizeof(pa.ifname)) >= sizeof(pa.ifname)) errx(1, "expand_altq: strlcpy"); if (interface->not) { yyerror("altq on ! is not supported"); errs++; } else { if (eval_pfaltq(pf, &pa, &bwspec, opts)) errs++; else if (pfctl_add_altq(pf, &pa)) errs++; if (pf->opts & PF_OPT_VERBOSE) { print_altq(&pf->paltq->altq, 0, &bwspec, opts); if (nqueues && nqueues->tail) { printf("queue { "); LOOP_THROUGH(struct node_queue, queue, nqueues, printf("%s ", queue->queue); ); printf("}"); } printf("\n"); } if (pa.scheduler == ALTQT_CBQ || pa.scheduler == ALTQT_HFSC || pa.scheduler == ALTQT_FAIRQ) { /* now create a root queue */ memset(&pb, 0, sizeof(struct pf_altq)); if (strlcpy(qname, "root_", sizeof(qname)) >= sizeof(qname)) errx(1, "expand_altq: strlcpy"); if (strlcat(qname, interface->ifname, sizeof(qname)) >= sizeof(qname)) errx(1, "expand_altq: strlcat"); if (strlcpy(pb.qname, qname, sizeof(pb.qname)) >= sizeof(pb.qname)) errx(1, "expand_altq: strlcpy"); if (strlcpy(pb.ifname, interface->ifname, sizeof(pb.ifname)) >= sizeof(pb.ifname)) errx(1, "expand_altq: strlcpy"); pb.qlimit = pa.qlimit; pb.scheduler = pa.scheduler; bw.bw_absolute = pa.ifbandwidth; bw.bw_percent = 0; if (eval_pfqueue(pf, &pb, &bw, opts)) errs++; else if (pfctl_add_altq(pf, &pb)) errs++; } LOOP_THROUGH(struct node_queue, queue, nqueues, n = calloc(1, sizeof(struct node_queue)); if (n == NULL) err(1, "expand_altq: calloc"); if (pa.scheduler == ALTQT_CBQ || pa.scheduler == ALTQT_HFSC || pa.scheduler == ALTQT_FAIRQ) if (strlcpy(n->parent, qname, sizeof(n->parent)) >= sizeof(n->parent)) errx(1, "expand_altq: strlcpy"); if (strlcpy(n->queue, queue->queue, sizeof(n->queue)) >= sizeof(n->queue)) errx(1, "expand_altq: strlcpy"); if (strlcpy(n->ifname, interface->ifname, sizeof(n->ifname)) >= sizeof(n->ifname)) errx(1, "expand_altq: strlcpy"); n->scheduler = pa.scheduler; n->next = NULL; n->tail = n; if (queues == NULL) queues = n; else { queues->tail->next = n; queues->tail = n; } ); } ); FREE_LIST(struct node_if, interfaces); if (nqueues) FREE_LIST(struct node_queue, nqueues); return (errs); } int expand_queue(struct pf_altq *a, struct node_if *interfaces, struct node_queue *nqueues, struct node_queue_bw bwspec, struct node_queue_opt *opts) { struct node_queue *n, *nq; struct pf_altq pa; u_int8_t found = 0; u_int8_t errs = 0; if ((pf->loadopt & PFCTL_FLAG_ALTQ) == 0) { FREE_LIST(struct node_queue, nqueues); return (0); } if (queues == NULL) { yyerror("queue %s has no parent", a->qname); FREE_LIST(struct node_queue, nqueues); return (1); } LOOP_THROUGH(struct node_if, interface, interfaces, LOOP_THROUGH(struct node_queue, tqueue, queues, if (!strncmp(a->qname, tqueue->queue, PF_QNAME_SIZE) && (interface->ifname[0] == 0 || (!interface->not && !strncmp(interface->ifname, tqueue->ifname, IFNAMSIZ)) || (interface->not && strncmp(interface->ifname, tqueue->ifname, IFNAMSIZ)))) { /* found ourself in queues */ found++; memcpy(&pa, a, sizeof(struct pf_altq)); if (pa.scheduler != ALTQT_NONE && pa.scheduler != tqueue->scheduler) { yyerror("exactly one scheduler type " "per interface allowed"); return (1); } pa.scheduler = tqueue->scheduler; /* scheduler dependent error checking */ switch (pa.scheduler) { case ALTQT_PRIQ: if (nqueues != NULL) { yyerror("priq queues cannot " "have child queues"); return (1); } if (bwspec.bw_absolute > 0 || bwspec.bw_percent < 100) { yyerror("priq doesn't take " "bandwidth"); return (1); } break; default: break; } if (strlcpy(pa.ifname, tqueue->ifname, sizeof(pa.ifname)) >= sizeof(pa.ifname)) errx(1, "expand_queue: strlcpy"); if (strlcpy(pa.parent, tqueue->parent, sizeof(pa.parent)) >= sizeof(pa.parent)) errx(1, "expand_queue: strlcpy"); if (eval_pfqueue(pf, &pa, &bwspec, opts)) errs++; else if (pfctl_add_altq(pf, &pa)) errs++; for (nq = nqueues; nq != NULL; nq = nq->next) { if (!strcmp(a->qname, nq->queue)) { yyerror("queue cannot have " "itself as child"); errs++; continue; } n = calloc(1, sizeof(struct node_queue)); if (n == NULL) err(1, "expand_queue: calloc"); if (strlcpy(n->parent, a->qname, sizeof(n->parent)) >= sizeof(n->parent)) errx(1, "expand_queue strlcpy"); if (strlcpy(n->queue, nq->queue, sizeof(n->queue)) >= sizeof(n->queue)) errx(1, "expand_queue strlcpy"); if (strlcpy(n->ifname, tqueue->ifname, sizeof(n->ifname)) >= sizeof(n->ifname)) errx(1, "expand_queue strlcpy"); n->scheduler = tqueue->scheduler; n->next = NULL; n->tail = n; if (queues == NULL) queues = n; else { queues->tail->next = n; queues->tail = n; } } if ((pf->opts & PF_OPT_VERBOSE) && ( (found == 1 && interface->ifname[0] == 0) || (found > 0 && interface->ifname[0] != 0))) { print_queue(&pf->paltq->altq, 0, &bwspec, interface->ifname[0] != 0, opts); if (nqueues && nqueues->tail) { printf("{ "); LOOP_THROUGH(struct node_queue, queue, nqueues, printf("%s ", queue->queue); ); printf("}"); } printf("\n"); } } ); ); FREE_LIST(struct node_queue, nqueues); FREE_LIST(struct node_if, interfaces); if (!found) { yyerror("queue %s has no parent", a->qname); errs++; } if (errs) return (1); else return (0); } void expand_rule(struct pfctl_rule *r, struct node_if *interfaces, struct node_host *rpool_hosts, struct node_proto *protos, struct node_os *src_oses, struct node_host *src_hosts, struct node_port *src_ports, struct node_host *dst_hosts, struct node_port *dst_ports, struct node_uid *uids, struct node_gid *gids, struct node_icmp *icmp_types, const char *anchor_call) { sa_family_t af = r->af; int added = 0, error = 0; char ifname[IF_NAMESIZE]; char label[PF_RULE_MAX_LABEL_COUNT][PF_RULE_LABEL_SIZE]; char tagname[PF_TAG_NAME_SIZE]; char match_tagname[PF_TAG_NAME_SIZE]; struct pf_pooladdr *pa; struct node_host *h; u_int8_t flags, flagset, keep_state; memcpy(label, r->label, sizeof(r->label)); assert(sizeof(r->label) == sizeof(label)); if (strlcpy(tagname, r->tagname, sizeof(tagname)) >= sizeof(tagname)) errx(1, "expand_rule: strlcpy"); if (strlcpy(match_tagname, r->match_tagname, sizeof(match_tagname)) >= sizeof(match_tagname)) errx(1, "expand_rule: strlcpy"); flags = r->flags; flagset = r->flagset; keep_state = r->keep_state; LOOP_THROUGH(struct node_if, interface, interfaces, LOOP_THROUGH(struct node_proto, proto, protos, LOOP_THROUGH(struct node_icmp, icmp_type, icmp_types, LOOP_THROUGH(struct node_host, src_host, src_hosts, LOOP_THROUGH(struct node_port, src_port, src_ports, LOOP_THROUGH(struct node_os, src_os, src_oses, LOOP_THROUGH(struct node_host, dst_host, dst_hosts, LOOP_THROUGH(struct node_port, dst_port, dst_ports, LOOP_THROUGH(struct node_uid, uid, uids, LOOP_THROUGH(struct node_gid, gid, gids, r->af = af; /* for link-local IPv6 address, interface must match up */ if ((r->af && src_host->af && r->af != src_host->af) || (r->af && dst_host->af && r->af != dst_host->af) || (src_host->af && dst_host->af && src_host->af != dst_host->af) || (src_host->ifindex && dst_host->ifindex && src_host->ifindex != dst_host->ifindex) || (src_host->ifindex && *interface->ifname && src_host->ifindex != if_nametoindex(interface->ifname)) || (dst_host->ifindex && *interface->ifname && dst_host->ifindex != if_nametoindex(interface->ifname))) continue; if (!r->af && src_host->af) r->af = src_host->af; else if (!r->af && dst_host->af) r->af = dst_host->af; if (*interface->ifname) strlcpy(r->ifname, interface->ifname, sizeof(r->ifname)); else if (if_indextoname(src_host->ifindex, ifname)) strlcpy(r->ifname, ifname, sizeof(r->ifname)); else if (if_indextoname(dst_host->ifindex, ifname)) strlcpy(r->ifname, ifname, sizeof(r->ifname)); else memset(r->ifname, '\0', sizeof(r->ifname)); memcpy(r->label, label, sizeof(r->label)); if (strlcpy(r->tagname, tagname, sizeof(r->tagname)) >= sizeof(r->tagname)) errx(1, "expand_rule: strlcpy"); if (strlcpy(r->match_tagname, match_tagname, sizeof(r->match_tagname)) >= sizeof(r->match_tagname)) errx(1, "expand_rule: strlcpy"); for (int i = 0; i < PF_RULE_MAX_LABEL_COUNT; i++) expand_label(r->label[i], PF_RULE_LABEL_SIZE, r->ifname, r->af, src_host, src_port, dst_host, dst_port, proto->proto); expand_label(r->tagname, PF_TAG_NAME_SIZE, r->ifname, r->af, src_host, src_port, dst_host, dst_port, proto->proto); expand_label(r->match_tagname, PF_TAG_NAME_SIZE, r->ifname, r->af, src_host, src_port, dst_host, dst_port, proto->proto); error += check_netmask(src_host, r->af); error += check_netmask(dst_host, r->af); r->ifnot = interface->not; r->proto = proto->proto; r->src.addr = src_host->addr; r->src.neg = src_host->not; r->src.port[0] = src_port->port[0]; r->src.port[1] = src_port->port[1]; r->src.port_op = src_port->op; r->dst.addr = dst_host->addr; r->dst.neg = dst_host->not; r->dst.port[0] = dst_port->port[0]; r->dst.port[1] = dst_port->port[1]; r->dst.port_op = dst_port->op; r->uid.op = uid->op; r->uid.uid[0] = uid->uid[0]; r->uid.uid[1] = uid->uid[1]; r->gid.op = gid->op; r->gid.gid[0] = gid->gid[0]; r->gid.gid[1] = gid->gid[1]; r->type = icmp_type->type; r->code = icmp_type->code; if ((keep_state == PF_STATE_MODULATE || keep_state == PF_STATE_SYNPROXY) && r->proto && r->proto != IPPROTO_TCP) r->keep_state = PF_STATE_NORMAL; else r->keep_state = keep_state; if (r->proto && r->proto != IPPROTO_TCP) { r->flags = 0; r->flagset = 0; } else { r->flags = flags; r->flagset = flagset; } if (icmp_type->proto && r->proto != icmp_type->proto) { yyerror("icmp-type mismatch"); error++; } if (src_os && src_os->os) { r->os_fingerprint = pfctl_get_fingerprint(src_os->os); if ((pf->opts & PF_OPT_VERBOSE2) && r->os_fingerprint == PF_OSFP_NOMATCH) fprintf(stderr, "warning: unknown '%s' OS fingerprint\n", src_os->os); } else { r->os_fingerprint = PF_OSFP_ANY; } TAILQ_INIT(&r->rpool.list); for (h = rpool_hosts; h != NULL; h = h->next) { pa = calloc(1, sizeof(struct pf_pooladdr)); if (pa == NULL) err(1, "expand_rule: calloc"); pa->addr = h->addr; if (h->ifname != NULL) { if (strlcpy(pa->ifname, h->ifname, sizeof(pa->ifname)) >= sizeof(pa->ifname)) errx(1, "expand_rule: strlcpy"); } else pa->ifname[0] = 0; TAILQ_INSERT_TAIL(&r->rpool.list, pa, entries); } if (rule_consistent(r, anchor_call[0]) < 0 || error) yyerror("skipping rule due to errors"); else { r->nr = pf->astack[pf->asd]->match++; pfctl_append_rule(pf, r, anchor_call); added++; } )))))))))); FREE_LIST(struct node_if, interfaces); FREE_LIST(struct node_proto, protos); FREE_LIST(struct node_host, src_hosts); FREE_LIST(struct node_port, src_ports); FREE_LIST(struct node_os, src_oses); FREE_LIST(struct node_host, dst_hosts); FREE_LIST(struct node_port, dst_ports); FREE_LIST(struct node_uid, uids); FREE_LIST(struct node_gid, gids); FREE_LIST(struct node_icmp, icmp_types); FREE_LIST(struct node_host, rpool_hosts); if (!added) yyerror("rule expands to no valid combination"); } int expand_skip_interface(struct node_if *interfaces) { int errs = 0; if (!interfaces || (!interfaces->next && !interfaces->not && !strcmp(interfaces->ifname, "none"))) { if (pf->opts & PF_OPT_VERBOSE) printf("set skip on none\n"); errs = pfctl_set_interface_flags(pf, "", PFI_IFLAG_SKIP, 0); return (errs); } if (pf->opts & PF_OPT_VERBOSE) printf("set skip on {"); LOOP_THROUGH(struct node_if, interface, interfaces, if (pf->opts & PF_OPT_VERBOSE) printf(" %s", interface->ifname); if (interface->not) { yyerror("skip on ! is not supported"); errs++; } else errs += pfctl_set_interface_flags(pf, interface->ifname, PFI_IFLAG_SKIP, 1); ); if (pf->opts & PF_OPT_VERBOSE) printf(" }\n"); FREE_LIST(struct node_if, interfaces); if (errs) return (1); else return (0); } #undef FREE_LIST #undef LOOP_THROUGH int check_rulestate(int desired_state) { if (require_order && (rulestate > desired_state)) { yyerror("Rules must be in order: options, normalization, " "queueing, translation, filtering"); return (1); } rulestate = desired_state; return (0); } int kw_cmp(const void *k, const void *e) { return (strcmp(k, ((const struct keywords *)e)->k_name)); } int lookup(char *s) { /* this has to be sorted always */ static const struct keywords keywords[] = { { "all", ALL}, { "allow-opts", ALLOWOPTS}, { "altq", ALTQ}, { "anchor", ANCHOR}, { "antispoof", ANTISPOOF}, { "any", ANY}, { "bandwidth", BANDWIDTH}, { "binat", BINAT}, { "binat-anchor", BINATANCHOR}, { "bitmask", BITMASK}, { "block", BLOCK}, { "block-policy", BLOCKPOLICY}, { "buckets", BUCKETS}, { "cbq", CBQ}, { "code", CODE}, { "codelq", CODEL}, { "crop", FRAGCROP}, { "debug", DEBUG}, { "divert-reply", DIVERTREPLY}, { "divert-to", DIVERTTO}, + { "dnpipe", DNPIPE}, + { "dnqueue", DNQUEUE}, { "drop", DROP}, { "drop-ovl", FRAGDROP}, { "dup-to", DUPTO}, { "fail-policy", FAILPOLICY}, { "fairq", FAIRQ}, { "fastroute", FASTROUTE}, { "file", FILENAME}, { "fingerprints", FINGERPRINTS}, { "flags", FLAGS}, { "floating", FLOATING}, { "flush", FLUSH}, { "for", FOR}, { "fragment", FRAGMENT}, { "from", FROM}, { "global", GLOBAL}, { "group", GROUP}, { "hfsc", HFSC}, { "hogs", HOGS}, { "hostid", HOSTID}, { "icmp-type", ICMPTYPE}, { "icmp6-type", ICMP6TYPE}, { "if-bound", IFBOUND}, { "in", IN}, { "include", INCLUDE}, { "inet", INET}, { "inet6", INET6}, { "interval", INTERVAL}, { "keep", KEEP}, { "keepcounters", KEEPCOUNTERS}, { "label", LABEL}, { "limit", LIMIT}, { "linkshare", LINKSHARE}, { "load", LOAD}, { "log", LOG}, { "loginterface", LOGINTERFACE}, { "map-e-portset", MAPEPORTSET}, { "match", MATCH}, { "max", MAXIMUM}, { "max-mss", MAXMSS}, { "max-src-conn", MAXSRCCONN}, { "max-src-conn-rate", MAXSRCCONNRATE}, { "max-src-nodes", MAXSRCNODES}, { "max-src-states", MAXSRCSTATES}, { "min-ttl", MINTTL}, { "modulate", MODULATE}, { "nat", NAT}, { "nat-anchor", NATANCHOR}, { "no", NO}, { "no-df", NODF}, { "no-route", NOROUTE}, { "no-sync", NOSYNC}, { "on", ON}, { "optimization", OPTIMIZATION}, { "os", OS}, { "out", OUT}, { "overload", OVERLOAD}, { "pass", PASS}, { "port", PORT}, { "prio", PRIO}, { "priority", PRIORITY}, { "priq", PRIQ}, { "probability", PROBABILITY}, { "proto", PROTO}, { "qlimit", QLIMIT}, { "queue", QUEUE}, { "quick", QUICK}, { "random", RANDOM}, { "random-id", RANDOMID}, { "rdr", RDR}, { "rdr-anchor", RDRANCHOR}, { "realtime", REALTIME}, { "reassemble", REASSEMBLE}, { "reply-to", REPLYTO}, { "require-order", REQUIREORDER}, { "return", RETURN}, { "return-icmp", RETURNICMP}, { "return-icmp6", RETURNICMP6}, { "return-rst", RETURNRST}, { "round-robin", ROUNDROBIN}, { "route", ROUTE}, { "route-to", ROUTETO}, { "rtable", RTABLE}, { "rule", RULE}, { "ruleset-optimization", RULESET_OPTIMIZATION}, { "scrub", SCRUB}, { "set", SET}, { "set-tos", SETTOS}, { "skip", SKIP}, { "sloppy", SLOPPY}, { "source-hash", SOURCEHASH}, { "source-track", SOURCETRACK}, { "state", STATE}, { "state-defaults", STATEDEFAULTS}, { "state-policy", STATEPOLICY}, { "static-port", STATICPORT}, { "sticky-address", STICKYADDRESS}, { "syncookies", SYNCOOKIES}, { "synproxy", SYNPROXY}, { "table", TABLE}, { "tag", TAG}, { "tagged", TAGGED}, { "target", TARGET}, { "tbrsize", TBRSIZE}, { "timeout", TIMEOUT}, { "to", TO}, { "tos", TOS}, { "ttl", TTL}, { "upperlimit", UPPERLIMIT}, { "urpf-failed", URPFFAILED}, { "user", USER}, }; const struct keywords *p; p = bsearch(s, keywords, sizeof(keywords)/sizeof(keywords[0]), sizeof(keywords[0]), kw_cmp); if (p) { if (debug > 1) fprintf(stderr, "%s: %d\n", s, p->k_val); return (p->k_val); } else { if (debug > 1) fprintf(stderr, "string: %s\n", s); return (STRING); } } #define MAXPUSHBACK 128 static char *parsebuf; static int parseindex; static char pushback_buffer[MAXPUSHBACK]; static int pushback_index = 0; int lgetc(int quotec) { int c, next; if (parsebuf) { /* Read character from the parsebuffer instead of input. */ if (parseindex >= 0) { c = parsebuf[parseindex++]; if (c != '\0') return (c); parsebuf = NULL; } else parseindex++; } if (pushback_index) return (pushback_buffer[--pushback_index]); if (quotec) { if ((c = getc(file->stream)) == EOF) { yyerror("reached end of file while parsing quoted string"); if (popfile() == EOF) return (EOF); return (quotec); } return (c); } while ((c = getc(file->stream)) == '\\') { next = getc(file->stream); if (next != '\n') { c = next; break; } yylval.lineno = file->lineno; file->lineno++; } while (c == EOF) { if (popfile() == EOF) return (EOF); c = getc(file->stream); } return (c); } int lungetc(int c) { if (c == EOF) return (EOF); if (parsebuf) { parseindex--; if (parseindex >= 0) return (c); } if (pushback_index < MAXPUSHBACK-1) return (pushback_buffer[pushback_index++] = c); else return (EOF); } int findeol(void) { int c; parsebuf = NULL; /* skip to either EOF or the first real EOL */ while (1) { if (pushback_index) c = pushback_buffer[--pushback_index]; else c = lgetc(0); if (c == '\n') { file->lineno++; break; } if (c == EOF) break; } return (ERROR); } int yylex(void) { char buf[8096]; char *p, *val; int quotec, next, c; int token; top: p = buf; while ((c = lgetc(0)) == ' ' || c == '\t') ; /* nothing */ yylval.lineno = file->lineno; if (c == '#') while ((c = lgetc(0)) != '\n' && c != EOF) ; /* nothing */ if (c == '$' && parsebuf == NULL) { while (1) { if ((c = lgetc(0)) == EOF) return (0); if (p + 1 >= buf + sizeof(buf) - 1) { yyerror("string too long"); return (findeol()); } if (isalnum(c) || c == '_') { *p++ = (char)c; continue; } *p = '\0'; lungetc(c); break; } val = symget(buf); if (val == NULL) { yyerror("macro '%s' not defined", buf); return (findeol()); } parsebuf = val; parseindex = 0; goto top; } switch (c) { case '\'': case '"': quotec = c; while (1) { if ((c = lgetc(quotec)) == EOF) return (0); if (c == '\n') { file->lineno++; continue; } else if (c == '\\') { if ((next = lgetc(quotec)) == EOF) return (0); if (next == quotec || c == ' ' || c == '\t') c = next; else if (next == '\n') { file->lineno++; continue; } else lungetc(next); } else if (c == quotec) { *p = '\0'; break; } if (p + 1 >= buf + sizeof(buf) - 1) { yyerror("string too long"); return (findeol()); } *p++ = (char)c; } yylval.v.string = strdup(buf); if (yylval.v.string == NULL) err(1, "yylex: strdup"); return (STRING); case '<': next = lgetc(0); if (next == '>') { yylval.v.i = PF_OP_XRG; return (PORTBINARY); } lungetc(next); break; case '>': next = lgetc(0); if (next == '<') { yylval.v.i = PF_OP_IRG; return (PORTBINARY); } lungetc(next); break; case '-': next = lgetc(0); if (next == '>') return (ARROW); lungetc(next); break; } #define allowed_to_end_number(x) \ (isspace(x) || x == ')' || x ==',' || x == '/' || x == '}' || x == '=') if (c == '-' || isdigit(c)) { do { *p++ = c; if ((unsigned)(p-buf) >= sizeof(buf)) { yyerror("string too long"); return (findeol()); } } while ((c = lgetc(0)) != EOF && isdigit(c)); lungetc(c); if (p == buf + 1 && buf[0] == '-') goto nodigits; if (c == EOF || allowed_to_end_number(c)) { const char *errstr = NULL; *p = '\0'; yylval.v.number = strtonum(buf, LLONG_MIN, LLONG_MAX, &errstr); if (errstr) { yyerror("\"%s\" invalid number: %s", buf, errstr); return (findeol()); } return (NUMBER); } else { nodigits: while (p > buf + 1) lungetc(*--p); c = *--p; if (c == '-') return (c); } } #define allowed_in_string(x) \ (isalnum(x) || (ispunct(x) && x != '(' && x != ')' && \ x != '{' && x != '}' && x != '<' && x != '>' && \ x != '!' && x != '=' && x != '/' && x != '#' && \ x != ',')) if (isalnum(c) || c == ':' || c == '_') { do { *p++ = c; if ((unsigned)(p-buf) >= sizeof(buf)) { yyerror("string too long"); return (findeol()); } } while ((c = lgetc(0)) != EOF && (allowed_in_string(c))); lungetc(c); *p = '\0'; if ((token = lookup(buf)) == STRING) if ((yylval.v.string = strdup(buf)) == NULL) err(1, "yylex: strdup"); return (token); } if (c == '\n') { yylval.lineno = file->lineno; file->lineno++; } if (c == EOF) return (0); return (c); } int check_file_secrecy(int fd, const char *fname) { struct stat st; if (fstat(fd, &st)) { warn("cannot stat %s", fname); return (-1); } if (st.st_uid != 0 && st.st_uid != getuid()) { warnx("%s: owner not root or current user", fname); return (-1); } if (st.st_mode & (S_IRWXG | S_IRWXO)) { warnx("%s: group/world readable/writeable", fname); return (-1); } return (0); } struct file * pushfile(const char *name, int secret) { struct file *nfile; if ((nfile = calloc(1, sizeof(struct file))) == NULL || (nfile->name = strdup(name)) == NULL) { warn("malloc"); return (NULL); } if (TAILQ_FIRST(&files) == NULL && strcmp(nfile->name, "-") == 0) { nfile->stream = stdin; free(nfile->name); if ((nfile->name = strdup("stdin")) == NULL) { warn("strdup"); free(nfile); return (NULL); } } else if ((nfile->stream = fopen(nfile->name, "r")) == NULL) { warn("%s", nfile->name); free(nfile->name); free(nfile); return (NULL); } else if (secret && check_file_secrecy(fileno(nfile->stream), nfile->name)) { fclose(nfile->stream); free(nfile->name); free(nfile); return (NULL); } nfile->lineno = 1; TAILQ_INSERT_TAIL(&files, nfile, entry); return (nfile); } int popfile(void) { struct file *prev; if ((prev = TAILQ_PREV(file, files, entry)) != NULL) { prev->errors += file->errors; TAILQ_REMOVE(&files, file, entry); fclose(file->stream); free(file->name); free(file); file = prev; return (0); } return (EOF); } int parse_config(char *filename, struct pfctl *xpf) { int errors = 0; struct sym *sym; pf = xpf; errors = 0; rulestate = PFCTL_STATE_NONE; returnicmpdefault = (ICMP_UNREACH << 8) | ICMP_UNREACH_PORT; returnicmp6default = (ICMP6_DST_UNREACH << 8) | ICMP6_DST_UNREACH_NOPORT; blockpolicy = PFRULE_DROP; failpolicy = PFRULE_DROP; require_order = 1; if ((file = pushfile(filename, 0)) == NULL) { warn("cannot open the main config file!"); return (-1); } yyparse(); errors = file->errors; popfile(); /* Free macros and check which have not been used. */ while ((sym = TAILQ_FIRST(&symhead))) { if ((pf->opts & PF_OPT_VERBOSE2) && !sym->used) fprintf(stderr, "warning: macro '%s' not " "used\n", sym->nam); free(sym->nam); free(sym->val); TAILQ_REMOVE(&symhead, sym, entry); free(sym); } return (errors ? -1 : 0); } int symset(const char *nam, const char *val, int persist) { struct sym *sym; for (sym = TAILQ_FIRST(&symhead); sym && strcmp(nam, sym->nam); sym = TAILQ_NEXT(sym, entry)) ; /* nothing */ if (sym != NULL) { if (sym->persist == 1) return (0); else { free(sym->nam); free(sym->val); TAILQ_REMOVE(&symhead, sym, entry); free(sym); } } if ((sym = calloc(1, sizeof(*sym))) == NULL) return (-1); sym->nam = strdup(nam); if (sym->nam == NULL) { free(sym); return (-1); } sym->val = strdup(val); if (sym->val == NULL) { free(sym->nam); free(sym); return (-1); } sym->used = 0; sym->persist = persist; TAILQ_INSERT_TAIL(&symhead, sym, entry); return (0); } int pfctl_cmdline_symset(char *s) { char *sym, *val; int ret; if ((val = strrchr(s, '=')) == NULL) return (-1); if ((sym = malloc(strlen(s) - strlen(val) + 1)) == NULL) err(1, "pfctl_cmdline_symset: malloc"); strlcpy(sym, s, strlen(s) - strlen(val) + 1); ret = symset(sym, val + 1, 1); free(sym); return (ret); } char * symget(const char *nam) { struct sym *sym; TAILQ_FOREACH(sym, &symhead, entry) if (strcmp(nam, sym->nam) == 0) { sym->used = 1; return (sym->val); } return (NULL); } void mv_rules(struct pfctl_ruleset *src, struct pfctl_ruleset *dst) { int i; struct pfctl_rule *r; for (i = 0; i < PF_RULESET_MAX; ++i) { while ((r = TAILQ_FIRST(src->rules[i].active.ptr)) != NULL) { TAILQ_REMOVE(src->rules[i].active.ptr, r, entries); TAILQ_INSERT_TAIL(dst->rules[i].active.ptr, r, entries); dst->anchor->match++; } src->anchor->match = 0; while ((r = TAILQ_FIRST(src->rules[i].inactive.ptr)) != NULL) { TAILQ_REMOVE(src->rules[i].inactive.ptr, r, entries); TAILQ_INSERT_TAIL(dst->rules[i].inactive.ptr, r, entries); } } } void decide_address_family(struct node_host *n, sa_family_t *af) { if (*af != 0 || n == NULL) return; *af = n->af; while ((n = n->next) != NULL) { if (n->af != *af) { *af = 0; return; } } } void remove_invalid_hosts(struct node_host **nh, sa_family_t *af) { struct node_host *n = *nh, *prev = NULL; while (n != NULL) { if (*af && n->af && n->af != *af) { /* unlink and free n */ struct node_host *next = n->next; /* adjust tail pointer */ if (n == (*nh)->tail) (*nh)->tail = prev; /* adjust previous node's next pointer */ if (prev == NULL) *nh = next; else prev->next = next; /* free node */ if (n->ifname != NULL) free(n->ifname); free(n); n = next; } else { if (n->af && !*af) *af = n->af; prev = n; n = n->next; } } } int invalid_redirect(struct node_host *nh, sa_family_t af) { if (!af) { struct node_host *n; /* tables and dyniftl are ok without an address family */ for (n = nh; n != NULL; n = n->next) { if (n->addr.type != PF_ADDR_TABLE && n->addr.type != PF_ADDR_DYNIFTL) { yyerror("address family not given and " "translation address expands to multiple " "address families"); return (1); } } } if (nh == NULL) { yyerror("no translation address with matching address family " "found."); return (1); } return (0); } int atoul(char *s, u_long *ulvalp) { u_long ulval; char *ep; errno = 0; ulval = strtoul(s, &ep, 0); if (s[0] == '\0' || *ep != '\0') return (-1); if (errno == ERANGE && ulval == ULONG_MAX) return (-1); *ulvalp = ulval; return (0); } int getservice(char *n) { struct servent *s; u_long ulval; if (atoul(n, &ulval) == 0) { if (ulval > 65535) { yyerror("illegal port value %lu", ulval); return (-1); } return (htons(ulval)); } else { s = getservbyname(n, "tcp"); if (s == NULL) s = getservbyname(n, "udp"); if (s == NULL) { yyerror("unknown port %s", n); return (-1); } return (s->s_port); } } int rule_label(struct pfctl_rule *r, char *s[PF_RULE_MAX_LABEL_COUNT]) { for (int i = 0; i < PF_RULE_MAX_LABEL_COUNT; i++) { if (s[i] == NULL) return (0); if (strlcpy(r->label[i], s[i], sizeof(r->label[0])) >= sizeof(r->label[0])) { yyerror("rule label too long (max %d chars)", sizeof(r->label[0])-1); return (-1); } } return (0); } u_int16_t parseicmpspec(char *w, sa_family_t af) { const struct icmpcodeent *p; u_long ulval; u_int8_t icmptype; if (af == AF_INET) icmptype = returnicmpdefault >> 8; else icmptype = returnicmp6default >> 8; if (atoul(w, &ulval) == -1) { if ((p = geticmpcodebyname(icmptype, w, af)) == NULL) { yyerror("unknown icmp code %s", w); return (0); } ulval = p->code; } if (ulval > 255) { yyerror("invalid icmp code %lu", ulval); return (0); } return (icmptype << 8 | ulval); } int parseport(char *port, struct range *r, int extensions) { char *p = strchr(port, ':'); if (p == NULL) { if ((r->a = getservice(port)) == -1) return (-1); r->b = 0; r->t = PF_OP_NONE; return (0); } if ((extensions & PPORT_STAR) && !strcmp(p+1, "*")) { *p = 0; if ((r->a = getservice(port)) == -1) return (-1); r->b = 0; r->t = PF_OP_IRG; return (0); } if ((extensions & PPORT_RANGE)) { *p++ = 0; if ((r->a = getservice(port)) == -1 || (r->b = getservice(p)) == -1) return (-1); if (r->a == r->b) { r->b = 0; r->t = PF_OP_NONE; } else r->t = PF_OP_RRG; return (0); } return (-1); } int pfctl_load_anchors(int dev, struct pfctl *pf, struct pfr_buffer *trans) { struct loadanchors *la; TAILQ_FOREACH(la, &loadanchorshead, entries) { if (pf->opts & PF_OPT_VERBOSE) fprintf(stderr, "\nLoading anchor %s from %s\n", la->anchorname, la->filename); if (pfctl_rules(dev, la->filename, pf->opts, pf->optimize, la->anchorname, trans) == -1) return (-1); } return (0); } int kw_casecmp(const void *k, const void *e) { return (strcasecmp(k, ((const struct keywords *)e)->k_name)); } int map_tos(char *s, int *val) { /* DiffServ Codepoints and other TOS mappings */ const struct keywords toswords[] = { { "af11", IPTOS_DSCP_AF11 }, { "af12", IPTOS_DSCP_AF12 }, { "af13", IPTOS_DSCP_AF13 }, { "af21", IPTOS_DSCP_AF21 }, { "af22", IPTOS_DSCP_AF22 }, { "af23", IPTOS_DSCP_AF23 }, { "af31", IPTOS_DSCP_AF31 }, { "af32", IPTOS_DSCP_AF32 }, { "af33", IPTOS_DSCP_AF33 }, { "af41", IPTOS_DSCP_AF41 }, { "af42", IPTOS_DSCP_AF42 }, { "af43", IPTOS_DSCP_AF43 }, { "critical", IPTOS_PREC_CRITIC_ECP }, { "cs0", IPTOS_DSCP_CS0 }, { "cs1", IPTOS_DSCP_CS1 }, { "cs2", IPTOS_DSCP_CS2 }, { "cs3", IPTOS_DSCP_CS3 }, { "cs4", IPTOS_DSCP_CS4 }, { "cs5", IPTOS_DSCP_CS5 }, { "cs6", IPTOS_DSCP_CS6 }, { "cs7", IPTOS_DSCP_CS7 }, { "ef", IPTOS_DSCP_EF }, { "inetcontrol", IPTOS_PREC_INTERNETCONTROL }, { "lowdelay", IPTOS_LOWDELAY }, { "netcontrol", IPTOS_PREC_NETCONTROL }, { "reliability", IPTOS_RELIABILITY }, { "throughput", IPTOS_THROUGHPUT }, { "va", IPTOS_DSCP_VA } }; const struct keywords *p; p = bsearch(s, toswords, sizeof(toswords)/sizeof(toswords[0]), sizeof(toswords[0]), kw_casecmp); if (p) { *val = p->k_val; return (1); } return (0); } int rt_tableid_max(void) { #ifdef __FreeBSD__ int fibs; size_t l = sizeof(fibs); if (sysctlbyname("net.fibs", &fibs, &l, NULL, 0) == -1) fibs = 16; /* XXX RT_MAXFIBS, at least limit it some. */ /* * As the OpenBSD code only compares > and not >= we need to adjust * here given we only accept values of 0..n and want to avoid #ifdefs * in the grammar. */ return (fibs - 1); #else return (RT_TABLEID_MAX); #endif } diff --git a/sbin/pfctl/pfctl_parser.c b/sbin/pfctl/pfctl_parser.c index 89c9bc349ca3..131ad22123e2 100644 --- a/sbin/pfctl/pfctl_parser.c +++ b/sbin/pfctl/pfctl_parser.c @@ -1,1875 +1,1884 @@ /* $OpenBSD: pfctl_parser.c,v 1.240 2008/06/10 20:55:02 mcbride Exp $ */ /*- * SPDX-License-Identifier: BSD-2-Clause * * Copyright (c) 2001 Daniel Hartmeier * Copyright (c) 2002,2003 Henning Brauer * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * * - Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * - Redistributions in binary form must reproduce the above * copyright notice, this list of conditions and the following * disclaimer in the documentation and/or other materials provided * with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE * POSSIBILITY OF SUCH DAMAGE. * */ #include __FBSDID("$FreeBSD$"); #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include "pfctl_parser.h" #include "pfctl.h" void print_op (u_int8_t, const char *, const char *); void print_port (u_int8_t, u_int16_t, u_int16_t, const char *, int); void print_ugid (u_int8_t, unsigned, unsigned, const char *, unsigned); void print_flags (u_int8_t); void print_fromto(struct pf_rule_addr *, pf_osfp_t, struct pf_rule_addr *, u_int8_t, u_int8_t, int, int); int ifa_skip_if(const char *filter, struct node_host *p); struct node_host *host_if(const char *, int); struct node_host *host_v4(const char *, int); struct node_host *host_v6(const char *, int); struct node_host *host_dns(const char *, int, int); const char * const tcpflags = "FSRPAUEW"; static const struct icmptypeent icmp_type[] = { { "echoreq", ICMP_ECHO }, { "echorep", ICMP_ECHOREPLY }, { "unreach", ICMP_UNREACH }, { "squench", ICMP_SOURCEQUENCH }, { "redir", ICMP_REDIRECT }, { "althost", ICMP_ALTHOSTADDR }, { "routeradv", ICMP_ROUTERADVERT }, { "routersol", ICMP_ROUTERSOLICIT }, { "timex", ICMP_TIMXCEED }, { "paramprob", ICMP_PARAMPROB }, { "timereq", ICMP_TSTAMP }, { "timerep", ICMP_TSTAMPREPLY }, { "inforeq", ICMP_IREQ }, { "inforep", ICMP_IREQREPLY }, { "maskreq", ICMP_MASKREQ }, { "maskrep", ICMP_MASKREPLY }, { "trace", ICMP_TRACEROUTE }, { "dataconv", ICMP_DATACONVERR }, { "mobredir", ICMP_MOBILE_REDIRECT }, { "ipv6-where", ICMP_IPV6_WHEREAREYOU }, { "ipv6-here", ICMP_IPV6_IAMHERE }, { "mobregreq", ICMP_MOBILE_REGREQUEST }, { "mobregrep", ICMP_MOBILE_REGREPLY }, { "skip", ICMP_SKIP }, { "photuris", ICMP_PHOTURIS } }; static const struct icmptypeent icmp6_type[] = { { "unreach", ICMP6_DST_UNREACH }, { "toobig", ICMP6_PACKET_TOO_BIG }, { "timex", ICMP6_TIME_EXCEEDED }, { "paramprob", ICMP6_PARAM_PROB }, { "echoreq", ICMP6_ECHO_REQUEST }, { "echorep", ICMP6_ECHO_REPLY }, { "groupqry", ICMP6_MEMBERSHIP_QUERY }, { "listqry", MLD_LISTENER_QUERY }, { "grouprep", ICMP6_MEMBERSHIP_REPORT }, { "listenrep", MLD_LISTENER_REPORT }, { "groupterm", ICMP6_MEMBERSHIP_REDUCTION }, { "listendone", MLD_LISTENER_DONE }, { "routersol", ND_ROUTER_SOLICIT }, { "routeradv", ND_ROUTER_ADVERT }, { "neighbrsol", ND_NEIGHBOR_SOLICIT }, { "neighbradv", ND_NEIGHBOR_ADVERT }, { "redir", ND_REDIRECT }, { "routrrenum", ICMP6_ROUTER_RENUMBERING }, { "wrureq", ICMP6_WRUREQUEST }, { "wrurep", ICMP6_WRUREPLY }, { "fqdnreq", ICMP6_FQDN_QUERY }, { "fqdnrep", ICMP6_FQDN_REPLY }, { "niqry", ICMP6_NI_QUERY }, { "nirep", ICMP6_NI_REPLY }, { "mtraceresp", MLD_MTRACE_RESP }, { "mtrace", MLD_MTRACE } }; static const struct icmpcodeent icmp_code[] = { { "net-unr", ICMP_UNREACH, ICMP_UNREACH_NET }, { "host-unr", ICMP_UNREACH, ICMP_UNREACH_HOST }, { "proto-unr", ICMP_UNREACH, ICMP_UNREACH_PROTOCOL }, { "port-unr", ICMP_UNREACH, ICMP_UNREACH_PORT }, { "needfrag", ICMP_UNREACH, ICMP_UNREACH_NEEDFRAG }, { "srcfail", ICMP_UNREACH, ICMP_UNREACH_SRCFAIL }, { "net-unk", ICMP_UNREACH, ICMP_UNREACH_NET_UNKNOWN }, { "host-unk", ICMP_UNREACH, ICMP_UNREACH_HOST_UNKNOWN }, { "isolate", ICMP_UNREACH, ICMP_UNREACH_ISOLATED }, { "net-prohib", ICMP_UNREACH, ICMP_UNREACH_NET_PROHIB }, { "host-prohib", ICMP_UNREACH, ICMP_UNREACH_HOST_PROHIB }, { "net-tos", ICMP_UNREACH, ICMP_UNREACH_TOSNET }, { "host-tos", ICMP_UNREACH, ICMP_UNREACH_TOSHOST }, { "filter-prohib", ICMP_UNREACH, ICMP_UNREACH_FILTER_PROHIB }, { "host-preced", ICMP_UNREACH, ICMP_UNREACH_HOST_PRECEDENCE }, { "cutoff-preced", ICMP_UNREACH, ICMP_UNREACH_PRECEDENCE_CUTOFF }, { "redir-net", ICMP_REDIRECT, ICMP_REDIRECT_NET }, { "redir-host", ICMP_REDIRECT, ICMP_REDIRECT_HOST }, { "redir-tos-net", ICMP_REDIRECT, ICMP_REDIRECT_TOSNET }, { "redir-tos-host", ICMP_REDIRECT, ICMP_REDIRECT_TOSHOST }, { "normal-adv", ICMP_ROUTERADVERT, ICMP_ROUTERADVERT_NORMAL }, { "common-adv", ICMP_ROUTERADVERT, ICMP_ROUTERADVERT_NOROUTE_COMMON }, { "transit", ICMP_TIMXCEED, ICMP_TIMXCEED_INTRANS }, { "reassemb", ICMP_TIMXCEED, ICMP_TIMXCEED_REASS }, { "badhead", ICMP_PARAMPROB, ICMP_PARAMPROB_ERRATPTR }, { "optmiss", ICMP_PARAMPROB, ICMP_PARAMPROB_OPTABSENT }, { "badlen", ICMP_PARAMPROB, ICMP_PARAMPROB_LENGTH }, { "unknown-ind", ICMP_PHOTURIS, ICMP_PHOTURIS_UNKNOWN_INDEX }, { "auth-fail", ICMP_PHOTURIS, ICMP_PHOTURIS_AUTH_FAILED }, { "decrypt-fail", ICMP_PHOTURIS, ICMP_PHOTURIS_DECRYPT_FAILED } }; static const struct icmpcodeent icmp6_code[] = { { "admin-unr", ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_ADMIN }, { "noroute-unr", ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_NOROUTE }, { "notnbr-unr", ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_NOTNEIGHBOR }, { "beyond-unr", ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_BEYONDSCOPE }, { "addr-unr", ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_ADDR }, { "port-unr", ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_NOPORT }, { "transit", ICMP6_TIME_EXCEEDED, ICMP6_TIME_EXCEED_TRANSIT }, { "reassemb", ICMP6_TIME_EXCEEDED, ICMP6_TIME_EXCEED_REASSEMBLY }, { "badhead", ICMP6_PARAM_PROB, ICMP6_PARAMPROB_HEADER }, { "nxthdr", ICMP6_PARAM_PROB, ICMP6_PARAMPROB_NEXTHEADER }, { "redironlink", ND_REDIRECT, ND_REDIRECT_ONLINK }, { "redirrouter", ND_REDIRECT, ND_REDIRECT_ROUTER } }; const struct pf_timeout pf_timeouts[] = { { "tcp.first", PFTM_TCP_FIRST_PACKET }, { "tcp.opening", PFTM_TCP_OPENING }, { "tcp.established", PFTM_TCP_ESTABLISHED }, { "tcp.closing", PFTM_TCP_CLOSING }, { "tcp.finwait", PFTM_TCP_FIN_WAIT }, { "tcp.closed", PFTM_TCP_CLOSED }, { "tcp.tsdiff", PFTM_TS_DIFF }, { "udp.first", PFTM_UDP_FIRST_PACKET }, { "udp.single", PFTM_UDP_SINGLE }, { "udp.multiple", PFTM_UDP_MULTIPLE }, { "icmp.first", PFTM_ICMP_FIRST_PACKET }, { "icmp.error", PFTM_ICMP_ERROR_REPLY }, { "other.first", PFTM_OTHER_FIRST_PACKET }, { "other.single", PFTM_OTHER_SINGLE }, { "other.multiple", PFTM_OTHER_MULTIPLE }, { "frag", PFTM_FRAG }, { "interval", PFTM_INTERVAL }, { "adaptive.start", PFTM_ADAPTIVE_START }, { "adaptive.end", PFTM_ADAPTIVE_END }, { "src.track", PFTM_SRC_NODE }, { NULL, 0 } }; static struct hsearch_data isgroup_map; static __attribute__((constructor)) void pfctl_parser_init(void) { /* * As hdestroy() will never be called on these tables, it will be * safe to use references into the stored data as keys. */ if (hcreate_r(0, &isgroup_map) == 0) err(1, "Failed to create interface group query response map"); } const struct icmptypeent * geticmptypebynumber(u_int8_t type, sa_family_t af) { unsigned int i; if (af != AF_INET6) { for (i=0; i < nitems(icmp_type); i++) { if (type == icmp_type[i].type) return (&icmp_type[i]); } } else { for (i=0; i < nitems(icmp6_type); i++) { if (type == icmp6_type[i].type) return (&icmp6_type[i]); } } return (NULL); } const struct icmptypeent * geticmptypebyname(char *w, sa_family_t af) { unsigned int i; if (af != AF_INET6) { for (i=0; i < nitems(icmp_type); i++) { if (!strcmp(w, icmp_type[i].name)) return (&icmp_type[i]); } } else { for (i=0; i < nitems(icmp6_type); i++) { if (!strcmp(w, icmp6_type[i].name)) return (&icmp6_type[i]); } } return (NULL); } const struct icmpcodeent * geticmpcodebynumber(u_int8_t type, u_int8_t code, sa_family_t af) { unsigned int i; if (af != AF_INET6) { for (i=0; i < nitems(icmp_code); i++) { if (type == icmp_code[i].type && code == icmp_code[i].code) return (&icmp_code[i]); } } else { for (i=0; i < nitems(icmp6_code); i++) { if (type == icmp6_code[i].type && code == icmp6_code[i].code) return (&icmp6_code[i]); } } return (NULL); } const struct icmpcodeent * geticmpcodebyname(u_long type, char *w, sa_family_t af) { unsigned int i; if (af != AF_INET6) { for (i=0; i < nitems(icmp_code); i++) { if (type == icmp_code[i].type && !strcmp(w, icmp_code[i].name)) return (&icmp_code[i]); } } else { for (i=0; i < nitems(icmp6_code); i++) { if (type == icmp6_code[i].type && !strcmp(w, icmp6_code[i].name)) return (&icmp6_code[i]); } } return (NULL); } void print_op(u_int8_t op, const char *a1, const char *a2) { if (op == PF_OP_IRG) printf(" %s >< %s", a1, a2); else if (op == PF_OP_XRG) printf(" %s <> %s", a1, a2); else if (op == PF_OP_EQ) printf(" = %s", a1); else if (op == PF_OP_NE) printf(" != %s", a1); else if (op == PF_OP_LT) printf(" < %s", a1); else if (op == PF_OP_LE) printf(" <= %s", a1); else if (op == PF_OP_GT) printf(" > %s", a1); else if (op == PF_OP_GE) printf(" >= %s", a1); else if (op == PF_OP_RRG) printf(" %s:%s", a1, a2); } void print_port(u_int8_t op, u_int16_t p1, u_int16_t p2, const char *proto, int numeric) { char a1[6], a2[6]; struct servent *s; if (!numeric) s = getservbyport(p1, proto); else s = NULL; p1 = ntohs(p1); p2 = ntohs(p2); snprintf(a1, sizeof(a1), "%u", p1); snprintf(a2, sizeof(a2), "%u", p2); printf(" port"); if (s != NULL && (op == PF_OP_EQ || op == PF_OP_NE)) print_op(op, s->s_name, a2); else print_op(op, a1, a2); } void print_ugid(u_int8_t op, unsigned u1, unsigned u2, const char *t, unsigned umax) { char a1[11], a2[11]; snprintf(a1, sizeof(a1), "%u", u1); snprintf(a2, sizeof(a2), "%u", u2); printf(" %s", t); if (u1 == umax && (op == PF_OP_EQ || op == PF_OP_NE)) print_op(op, "unknown", a2); else print_op(op, a1, a2); } void print_flags(u_int8_t f) { int i; for (i = 0; tcpflags[i]; ++i) if (f & (1 << i)) printf("%c", tcpflags[i]); } void print_fromto(struct pf_rule_addr *src, pf_osfp_t osfp, struct pf_rule_addr *dst, sa_family_t af, u_int8_t proto, int verbose, int numeric) { char buf[PF_OSFP_LEN*3]; if (src->addr.type == PF_ADDR_ADDRMASK && dst->addr.type == PF_ADDR_ADDRMASK && PF_AZERO(&src->addr.v.a.addr, AF_INET6) && PF_AZERO(&src->addr.v.a.mask, AF_INET6) && PF_AZERO(&dst->addr.v.a.addr, AF_INET6) && PF_AZERO(&dst->addr.v.a.mask, AF_INET6) && !src->neg && !dst->neg && !src->port_op && !dst->port_op && osfp == PF_OSFP_ANY) printf(" all"); else { printf(" from "); if (src->neg) printf("! "); print_addr(&src->addr, af, verbose); if (src->port_op) print_port(src->port_op, src->port[0], src->port[1], proto == IPPROTO_TCP ? "tcp" : "udp", numeric); if (osfp != PF_OSFP_ANY) printf(" os \"%s\"", pfctl_lookup_fingerprint(osfp, buf, sizeof(buf))); printf(" to "); if (dst->neg) printf("! "); print_addr(&dst->addr, af, verbose); if (dst->port_op) print_port(dst->port_op, dst->port[0], dst->port[1], proto == IPPROTO_TCP ? "tcp" : "udp", numeric); } } void print_pool(struct pfctl_pool *pool, u_int16_t p1, u_int16_t p2, sa_family_t af, int id) { struct pf_pooladdr *pooladdr; if ((TAILQ_FIRST(&pool->list) != NULL) && TAILQ_NEXT(TAILQ_FIRST(&pool->list), entries) != NULL) printf("{ "); TAILQ_FOREACH(pooladdr, &pool->list, entries){ switch (id) { case PF_NAT: case PF_RDR: case PF_BINAT: print_addr(&pooladdr->addr, af, 0); break; case PF_PASS: if (PF_AZERO(&pooladdr->addr.v.a.addr, af)) printf("%s", pooladdr->ifname); else { printf("(%s ", pooladdr->ifname); print_addr(&pooladdr->addr, af, 0); printf(")"); } break; default: break; } if (TAILQ_NEXT(pooladdr, entries) != NULL) printf(", "); else if (TAILQ_NEXT(TAILQ_FIRST(&pool->list), entries) != NULL) printf(" }"); } switch (id) { case PF_NAT: if ((p1 != PF_NAT_PROXY_PORT_LOW || p2 != PF_NAT_PROXY_PORT_HIGH) && (p1 != 0 || p2 != 0)) { if (p1 == p2) printf(" port %u", p1); else printf(" port %u:%u", p1, p2); } break; case PF_RDR: if (p1) { printf(" port %u", p1); if (p2 && (p2 != p1)) printf(":%u", p2); } break; default: break; } switch (pool->opts & PF_POOL_TYPEMASK) { case PF_POOL_NONE: break; case PF_POOL_BITMASK: printf(" bitmask"); break; case PF_POOL_RANDOM: printf(" random"); break; case PF_POOL_SRCHASH: printf(" source-hash 0x%08x%08x%08x%08x", pool->key.key32[0], pool->key.key32[1], pool->key.key32[2], pool->key.key32[3]); break; case PF_POOL_ROUNDROBIN: printf(" round-robin"); break; } if (pool->opts & PF_POOL_STICKYADDR) printf(" sticky-address"); if (id == PF_NAT && p1 == 0 && p2 == 0) printf(" static-port"); if (pool->mape.offset > 0) printf(" map-e-portset %u/%u/%u", pool->mape.offset, pool->mape.psidlen, pool->mape.psid); } const char * const pf_reasons[PFRES_MAX+1] = PFRES_NAMES; const char * const pf_lcounters[LCNT_MAX+1] = LCNT_NAMES; const char * const pf_fcounters[FCNT_MAX+1] = FCNT_NAMES; const char * const pf_scounters[FCNT_MAX+1] = FCNT_NAMES; void print_status(struct pfctl_status *s, struct pfctl_syncookies *cookies, int opts) { struct pfctl_status_counter *c; char statline[80], *running; time_t runtime; int i; char buf[PF_MD5_DIGEST_LENGTH * 2 + 1]; static const char hex[] = "0123456789abcdef"; runtime = time(NULL) - s->since; running = s->running ? "Enabled" : "Disabled"; if (s->since) { unsigned int sec, min, hrs, day = runtime; sec = day % 60; day /= 60; min = day % 60; day /= 60; hrs = day % 24; day /= 24; snprintf(statline, sizeof(statline), "Status: %s for %u days %.2u:%.2u:%.2u", running, day, hrs, min, sec); } else snprintf(statline, sizeof(statline), "Status: %s", running); printf("%-44s", statline); switch (s->debug) { case PF_DEBUG_NONE: printf("%15s\n\n", "Debug: None"); break; case PF_DEBUG_URGENT: printf("%15s\n\n", "Debug: Urgent"); break; case PF_DEBUG_MISC: printf("%15s\n\n", "Debug: Misc"); break; case PF_DEBUG_NOISY: printf("%15s\n\n", "Debug: Loud"); break; } if (opts & PF_OPT_VERBOSE) { printf("Hostid: 0x%08x\n", ntohl(s->hostid)); for (i = 0; i < PF_MD5_DIGEST_LENGTH; i++) { buf[i + i] = hex[s->pf_chksum[i] >> 4]; buf[i + i + 1] = hex[s->pf_chksum[i] & 0x0f]; } buf[i + i] = '\0'; printf("Checksum: 0x%s\n\n", buf); } if (s->ifname[0] != 0) { printf("Interface Stats for %-16s %5s %16s\n", s->ifname, "IPv4", "IPv6"); printf(" %-25s %14llu %16llu\n", "Bytes In", (unsigned long long)s->bcounters[0][0], (unsigned long long)s->bcounters[1][0]); printf(" %-25s %14llu %16llu\n", "Bytes Out", (unsigned long long)s->bcounters[0][1], (unsigned long long)s->bcounters[1][1]); printf(" Packets In\n"); printf(" %-23s %14llu %16llu\n", "Passed", (unsigned long long)s->pcounters[0][0][PF_PASS], (unsigned long long)s->pcounters[1][0][PF_PASS]); printf(" %-23s %14llu %16llu\n", "Blocked", (unsigned long long)s->pcounters[0][0][PF_DROP], (unsigned long long)s->pcounters[1][0][PF_DROP]); printf(" Packets Out\n"); printf(" %-23s %14llu %16llu\n", "Passed", (unsigned long long)s->pcounters[0][1][PF_PASS], (unsigned long long)s->pcounters[1][1][PF_PASS]); printf(" %-23s %14llu %16llu\n\n", "Blocked", (unsigned long long)s->pcounters[0][1][PF_DROP], (unsigned long long)s->pcounters[1][1][PF_DROP]); } printf("%-27s %14s %16s\n", "State Table", "Total", "Rate"); printf(" %-25s %14ju %14s\n", "current entries", s->states, ""); TAILQ_FOREACH(c, &s->fcounters, entry) { printf(" %-25s %14ju ", c->name, c->counter); if (runtime > 0) printf("%14.1f/s\n", (double)c->counter / (double)runtime); else printf("%14s\n", ""); } if (opts & PF_OPT_VERBOSE) { printf("Source Tracking Table\n"); printf(" %-25s %14ju %14s\n", "current entries", s->src_nodes, ""); TAILQ_FOREACH(c, &s->scounters, entry) { printf(" %-25s %14ju ", c->name, c->counter); if (runtime > 0) printf("%14.1f/s\n", (double)c->counter / (double)runtime); else printf("%14s\n", ""); } } printf("Counters\n"); TAILQ_FOREACH(c, &s->counters, entry) { printf(" %-25s %14ju ", c->name, c->counter); if (runtime > 0) printf("%14.1f/s\n", (double)c->counter / (double)runtime); else printf("%14s\n", ""); } if (opts & PF_OPT_VERBOSE) { printf("Limit Counters\n"); TAILQ_FOREACH(c, &s->lcounters, entry) { printf(" %-25s %14ju ", c->name, c->counter); if (runtime > 0) printf("%14.1f/s\n", (double)c->counter / (double)runtime); else printf("%14s\n", ""); } printf("Syncookies\n"); printf(" %-25s %s\n", "mode", cookies->mode == PFCTL_SYNCOOKIES_NEVER ? "never" : "always"); } } void print_running(struct pfctl_status *status) { printf("%s\n", status->running ? "Enabled" : "Disabled"); } void print_src_node(struct pf_src_node *sn, int opts) { struct pf_addr_wrap aw; int min, sec; memset(&aw, 0, sizeof(aw)); if (sn->af == AF_INET) aw.v.a.mask.addr32[0] = 0xffffffff; else memset(&aw.v.a.mask, 0xff, sizeof(aw.v.a.mask)); aw.v.a.addr = sn->addr; print_addr(&aw, sn->af, opts & PF_OPT_VERBOSE2); printf(" -> "); aw.v.a.addr = sn->raddr; print_addr(&aw, sn->af, opts & PF_OPT_VERBOSE2); printf(" ( states %u, connections %u, rate %u.%u/%us )\n", sn->states, sn->conn, sn->conn_rate.count / 1000, (sn->conn_rate.count % 1000) / 100, sn->conn_rate.seconds); if (opts & PF_OPT_VERBOSE) { sec = sn->creation % 60; sn->creation /= 60; min = sn->creation % 60; sn->creation /= 60; printf(" age %.2u:%.2u:%.2u", sn->creation, min, sec); if (sn->states == 0) { sec = sn->expire % 60; sn->expire /= 60; min = sn->expire % 60; sn->expire /= 60; printf(", expires in %.2u:%.2u:%.2u", sn->expire, min, sec); } printf(", %llu pkts, %llu bytes", #ifdef __FreeBSD__ (unsigned long long)(sn->packets[0] + sn->packets[1]), (unsigned long long)(sn->bytes[0] + sn->bytes[1])); #else sn->packets[0] + sn->packets[1], sn->bytes[0] + sn->bytes[1]); #endif switch (sn->ruletype) { case PF_NAT: if (sn->rule.nr != -1) printf(", nat rule %u", sn->rule.nr); break; case PF_RDR: if (sn->rule.nr != -1) printf(", rdr rule %u", sn->rule.nr); break; case PF_PASS: if (sn->rule.nr != -1) printf(", filter rule %u", sn->rule.nr); break; } printf("\n"); } } void print_rule(struct pfctl_rule *r, const char *anchor_call, int verbose, int numeric) { static const char *actiontypes[] = { "pass", "block", "scrub", "no scrub", "nat", "no nat", "binat", "no binat", "rdr", "no rdr" }; static const char *anchortypes[] = { "anchor", "anchor", "anchor", "anchor", "nat-anchor", "nat-anchor", "binat-anchor", "binat-anchor", "rdr-anchor", "rdr-anchor" }; int i, opts; if (verbose) printf("@%d ", r->nr); if (r->action == PF_MATCH) printf("match"); else if (r->action > PF_NORDR) printf("action(%d)", r->action); else if (anchor_call[0]) { if (anchor_call[0] == '_') { printf("%s", anchortypes[r->action]); } else printf("%s \"%s\"", anchortypes[r->action], anchor_call); } else { printf("%s", actiontypes[r->action]); if (r->natpass) printf(" pass"); } if (r->action == PF_DROP) { if (r->rule_flag & PFRULE_RETURN) printf(" return"); else if (r->rule_flag & PFRULE_RETURNRST) { if (!r->return_ttl) printf(" return-rst"); else printf(" return-rst(ttl %d)", r->return_ttl); } else if (r->rule_flag & PFRULE_RETURNICMP) { const struct icmpcodeent *ic, *ic6; ic = geticmpcodebynumber(r->return_icmp >> 8, r->return_icmp & 255, AF_INET); ic6 = geticmpcodebynumber(r->return_icmp6 >> 8, r->return_icmp6 & 255, AF_INET6); switch (r->af) { case AF_INET: printf(" return-icmp"); if (ic == NULL) printf("(%u)", r->return_icmp & 255); else printf("(%s)", ic->name); break; case AF_INET6: printf(" return-icmp6"); if (ic6 == NULL) printf("(%u)", r->return_icmp6 & 255); else printf("(%s)", ic6->name); break; default: printf(" return-icmp"); if (ic == NULL) printf("(%u, ", r->return_icmp & 255); else printf("(%s, ", ic->name); if (ic6 == NULL) printf("%u)", r->return_icmp6 & 255); else printf("%s)", ic6->name); break; } } else printf(" drop"); } if (r->direction == PF_IN) printf(" in"); else if (r->direction == PF_OUT) printf(" out"); if (r->log) { printf(" log"); if (r->log & ~PF_LOG || r->logif) { int count = 0; printf(" ("); if (r->log & PF_LOG_ALL) printf("%sall", count++ ? ", " : ""); if (r->log & PF_LOG_SOCKET_LOOKUP) printf("%suser", count++ ? ", " : ""); if (r->logif) printf("%sto pflog%u", count++ ? ", " : "", r->logif); printf(")"); } } if (r->quick) printf(" quick"); if (r->ifname[0]) { if (r->ifnot) printf(" on ! %s", r->ifname); else printf(" on %s", r->ifname); } if (r->rt) { if (r->rt == PF_ROUTETO) printf(" route-to"); else if (r->rt == PF_REPLYTO) printf(" reply-to"); else if (r->rt == PF_DUPTO) printf(" dup-to"); printf(" "); print_pool(&r->rpool, 0, 0, r->af, PF_PASS); } if (r->af) { if (r->af == AF_INET) printf(" inet"); else printf(" inet6"); } if (r->proto) { const char *protoname; if ((protoname = pfctl_proto2name(r->proto)) != NULL) printf(" proto %s", protoname); else printf(" proto %u", r->proto); } print_fromto(&r->src, r->os_fingerprint, &r->dst, r->af, r->proto, verbose, numeric); if (r->uid.op) print_ugid(r->uid.op, r->uid.uid[0], r->uid.uid[1], "user", UID_MAX); if (r->gid.op) print_ugid(r->gid.op, r->gid.gid[0], r->gid.gid[1], "group", GID_MAX); if (r->flags || r->flagset) { printf(" flags "); print_flags(r->flags); printf("/"); print_flags(r->flagset); } else if (r->action == PF_PASS && (!r->proto || r->proto == IPPROTO_TCP) && !(r->rule_flag & PFRULE_FRAGMENT) && !anchor_call[0] && r->keep_state) printf(" flags any"); if (r->type) { const struct icmptypeent *it; it = geticmptypebynumber(r->type-1, r->af); if (r->af != AF_INET6) printf(" icmp-type"); else printf(" icmp6-type"); if (it != NULL) printf(" %s", it->name); else printf(" %u", r->type-1); if (r->code) { const struct icmpcodeent *ic; ic = geticmpcodebynumber(r->type-1, r->code-1, r->af); if (ic != NULL) printf(" code %s", ic->name); else printf(" code %u", r->code-1); } } if (r->tos) printf(" tos 0x%2.2x", r->tos); if (r->prio) printf(" prio %u", r->prio == PF_PRIO_ZERO ? 0 : r->prio); if (r->scrub_flags & PFSTATE_SETMASK) { char *comma = ""; printf(" set ("); if (r->scrub_flags & PFSTATE_SETPRIO) { if (r->set_prio[0] == r->set_prio[1]) printf("%s prio %u", comma, r->set_prio[0]); else printf("%s prio(%u, %u)", comma, r->set_prio[0], r->set_prio[1]); comma = ","; } printf(" )"); } if (!r->keep_state && r->action == PF_PASS && !anchor_call[0]) printf(" no state"); else if (r->keep_state == PF_STATE_NORMAL) printf(" keep state"); else if (r->keep_state == PF_STATE_MODULATE) printf(" modulate state"); else if (r->keep_state == PF_STATE_SYNPROXY) printf(" synproxy state"); if (r->prob) { char buf[20]; snprintf(buf, sizeof(buf), "%f", r->prob*100.0/(UINT_MAX+1.0)); for (i = strlen(buf)-1; i > 0; i--) { if (buf[i] == '0') buf[i] = '\0'; else { if (buf[i] == '.') buf[i] = '\0'; break; } } printf(" probability %s%%", buf); } opts = 0; if (r->max_states || r->max_src_nodes || r->max_src_states) opts = 1; if (r->rule_flag & PFRULE_NOSYNC) opts = 1; if (r->rule_flag & PFRULE_SRCTRACK) opts = 1; if (r->rule_flag & PFRULE_IFBOUND) opts = 1; if (r->rule_flag & PFRULE_STATESLOPPY) opts = 1; for (i = 0; !opts && i < PFTM_MAX; ++i) if (r->timeout[i]) opts = 1; if (opts) { printf(" ("); if (r->max_states) { printf("max %u", r->max_states); opts = 0; } if (r->rule_flag & PFRULE_NOSYNC) { if (!opts) printf(", "); printf("no-sync"); opts = 0; } if (r->rule_flag & PFRULE_SRCTRACK) { if (!opts) printf(", "); printf("source-track"); if (r->rule_flag & PFRULE_RULESRCTRACK) printf(" rule"); else printf(" global"); opts = 0; } if (r->max_src_states) { if (!opts) printf(", "); printf("max-src-states %u", r->max_src_states); opts = 0; } if (r->max_src_conn) { if (!opts) printf(", "); printf("max-src-conn %u", r->max_src_conn); opts = 0; } if (r->max_src_conn_rate.limit) { if (!opts) printf(", "); printf("max-src-conn-rate %u/%u", r->max_src_conn_rate.limit, r->max_src_conn_rate.seconds); opts = 0; } if (r->max_src_nodes) { if (!opts) printf(", "); printf("max-src-nodes %u", r->max_src_nodes); opts = 0; } if (r->overload_tblname[0]) { if (!opts) printf(", "); printf("overload <%s>", r->overload_tblname); if (r->flush) printf(" flush"); if (r->flush & PF_FLUSH_GLOBAL) printf(" global"); } if (r->rule_flag & PFRULE_IFBOUND) { if (!opts) printf(", "); printf("if-bound"); opts = 0; } if (r->rule_flag & PFRULE_STATESLOPPY) { if (!opts) printf(", "); printf("sloppy"); opts = 0; } for (i = 0; i < PFTM_MAX; ++i) if (r->timeout[i]) { int j; if (!opts) printf(", "); opts = 0; for (j = 0; pf_timeouts[j].name != NULL; ++j) if (pf_timeouts[j].timeout == i) break; printf("%s %u", pf_timeouts[j].name == NULL ? "inv.timeout" : pf_timeouts[j].name, r->timeout[i]); } printf(")"); } if (r->rule_flag & PFRULE_FRAGMENT) printf(" fragment"); if (r->rule_flag & PFRULE_NODF) printf(" no-df"); if (r->rule_flag & PFRULE_RANDOMID) printf(" random-id"); if (r->min_ttl) printf(" min-ttl %d", r->min_ttl); if (r->max_mss) printf(" max-mss %d", r->max_mss); if (r->rule_flag & PFRULE_SET_TOS) printf(" set-tos 0x%2.2x", r->set_tos); if (r->allow_opts) printf(" allow-opts"); if (r->action == PF_SCRUB) { if (r->rule_flag & PFRULE_REASSEMBLE_TCP) printf(" reassemble tcp"); printf(" fragment reassemble"); } i = 0; while (r->label[i][0]) printf(" label \"%s\"", r->label[i++]); + /* Only dnrpipe as we might do (0, 42) to only queue return traffic. */ + if (r->dnrpipe) + printf(" %s(%d, %d)", + r->free_flags & PFRULE_DN_IS_PIPE ? "dnpipe" : "dnqueue", + r->dnpipe, r->dnrpipe); + else if (r->dnpipe) + printf(" %s %d", + r->free_flags & PFRULE_DN_IS_PIPE ? "dnpipe" : "dnqueue", + r->dnpipe); if (r->qname[0] && r->pqname[0]) printf(" queue(%s, %s)", r->qname, r->pqname); else if (r->qname[0]) printf(" queue %s", r->qname); if (r->tagname[0]) printf(" tag %s", r->tagname); if (r->match_tagname[0]) { if (r->match_tag_not) printf(" !"); printf(" tagged %s", r->match_tagname); } if (r->rtableid != -1) printf(" rtable %u", r->rtableid); if (r->divert.port) { #ifdef __FreeBSD__ printf(" divert-to %u", ntohs(r->divert.port)); #else if (PF_AZERO(&r->divert.addr, r->af)) { printf(" divert-reply"); } else { /* XXX cut&paste from print_addr */ char buf[48]; printf(" divert-to "); if (inet_ntop(r->af, &r->divert.addr, buf, sizeof(buf)) == NULL) printf("?"); else printf("%s", buf); printf(" port %u", ntohs(r->divert.port)); } #endif } if (!anchor_call[0] && (r->action == PF_NAT || r->action == PF_BINAT || r->action == PF_RDR)) { printf(" -> "); print_pool(&r->rpool, r->rpool.proxy_port[0], r->rpool.proxy_port[1], r->af, r->action); } } void print_tabledef(const char *name, int flags, int addrs, struct node_tinithead *nodes) { struct node_tinit *ti, *nti; struct node_host *h; printf("table <%s>", name); if (flags & PFR_TFLAG_CONST) printf(" const"); if (flags & PFR_TFLAG_PERSIST) printf(" persist"); if (flags & PFR_TFLAG_COUNTERS) printf(" counters"); SIMPLEQ_FOREACH(ti, nodes, entries) { if (ti->file) { printf(" file \"%s\"", ti->file); continue; } printf(" {"); for (;;) { for (h = ti->host; h != NULL; h = h->next) { printf(h->not ? " !" : " "); print_addr(&h->addr, h->af, 0); } nti = SIMPLEQ_NEXT(ti, entries); if (nti != NULL && nti->file == NULL) ti = nti; /* merge lists */ else break; } printf(" }"); } if (addrs && SIMPLEQ_EMPTY(nodes)) printf(" { }"); printf("\n"); } int parse_flags(char *s) { char *p, *q; u_int8_t f = 0; for (p = s; *p; p++) { if ((q = strchr(tcpflags, *p)) == NULL) return -1; else f |= 1 << (q - tcpflags); } return (f ? f : PF_TH_ALL); } void set_ipmask(struct node_host *h, u_int8_t b) { struct pf_addr *m, *n; int i, j = 0; m = &h->addr.v.a.mask; memset(m, 0, sizeof(*m)); while (b >= 32) { m->addr32[j++] = 0xffffffff; b -= 32; } for (i = 31; i > 31-b; --i) m->addr32[j] |= (1 << i); if (b) m->addr32[j] = htonl(m->addr32[j]); /* Mask off bits of the address that will never be used. */ n = &h->addr.v.a.addr; if (h->addr.type == PF_ADDR_ADDRMASK) for (i = 0; i < 4; i++) n->addr32[i] = n->addr32[i] & m->addr32[i]; } int check_netmask(struct node_host *h, sa_family_t af) { struct node_host *n = NULL; struct pf_addr *m; for (n = h; n != NULL; n = n->next) { if (h->addr.type == PF_ADDR_TABLE) continue; m = &h->addr.v.a.mask; /* fix up netmask for dynaddr */ if (af == AF_INET && h->addr.type == PF_ADDR_DYNIFTL && unmask(m, AF_INET6) > 32) set_ipmask(n, 32); /* netmasks > 32 bit are invalid on v4 */ if (af == AF_INET && (m->addr32[1] || m->addr32[2] || m->addr32[3])) { fprintf(stderr, "netmask %u invalid for IPv4 address\n", unmask(m, AF_INET6)); return (1); } } return (0); } /* interface lookup routines */ static struct node_host *iftab; /* * Retrieve the list of groups this interface is a member of and make sure * each group is in the group map. */ static void ifa_add_groups_to_map(char *ifa_name) { int s, len; struct ifgroupreq ifgr; struct ifg_req *ifg; s = get_query_socket(); /* Get size of group list for this interface */ memset(&ifgr, 0, sizeof(ifgr)); strlcpy(ifgr.ifgr_name, ifa_name, IFNAMSIZ); if (ioctl(s, SIOCGIFGROUP, (caddr_t)&ifgr) == -1) err(1, "SIOCGIFGROUP"); /* Retrieve group list for this interface */ len = ifgr.ifgr_len; ifgr.ifgr_groups = (struct ifg_req *)calloc(len / sizeof(struct ifg_req), sizeof(struct ifg_req)); if (ifgr.ifgr_groups == NULL) err(1, "calloc"); if (ioctl(s, SIOCGIFGROUP, (caddr_t)&ifgr) == -1) err(1, "SIOCGIFGROUP"); ifg = ifgr.ifgr_groups; for (; ifg && len >= sizeof(struct ifg_req); ifg++) { len -= sizeof(struct ifg_req); if (strcmp(ifg->ifgrq_group, "all")) { ENTRY item; ENTRY *ret_item; int *answer; item.key = ifg->ifgrq_group; if (hsearch_r(item, FIND, &ret_item, &isgroup_map) == 0) { struct ifgroupreq ifgr2; /* Don't know the answer yet */ if ((answer = malloc(sizeof(int))) == NULL) err(1, "malloc"); bzero(&ifgr2, sizeof(ifgr2)); strlcpy(ifgr2.ifgr_name, ifg->ifgrq_group, sizeof(ifgr2.ifgr_name)); if (ioctl(s, SIOCGIFGMEMB, (caddr_t)&ifgr2) == 0) *answer = ifgr2.ifgr_len; else *answer = 0; item.key = strdup(ifg->ifgrq_group); item.data = answer; if (hsearch_r(item, ENTER, &ret_item, &isgroup_map) == 0) err(1, "interface group query response" " map insert"); } } } free(ifgr.ifgr_groups); } void ifa_load(void) { struct ifaddrs *ifap, *ifa; struct node_host *n = NULL, *h = NULL; if (getifaddrs(&ifap) < 0) err(1, "getifaddrs"); for (ifa = ifap; ifa; ifa = ifa->ifa_next) { if (!(ifa->ifa_addr->sa_family == AF_INET || ifa->ifa_addr->sa_family == AF_INET6 || ifa->ifa_addr->sa_family == AF_LINK)) continue; n = calloc(1, sizeof(struct node_host)); if (n == NULL) err(1, "address: calloc"); n->af = ifa->ifa_addr->sa_family; n->ifa_flags = ifa->ifa_flags; #ifdef __KAME__ if (n->af == AF_INET6 && IN6_IS_ADDR_LINKLOCAL(&((struct sockaddr_in6 *) ifa->ifa_addr)->sin6_addr) && ((struct sockaddr_in6 *)ifa->ifa_addr)->sin6_scope_id == 0) { struct sockaddr_in6 *sin6; sin6 = (struct sockaddr_in6 *)ifa->ifa_addr; sin6->sin6_scope_id = sin6->sin6_addr.s6_addr[2] << 8 | sin6->sin6_addr.s6_addr[3]; sin6->sin6_addr.s6_addr[2] = 0; sin6->sin6_addr.s6_addr[3] = 0; } #endif n->ifindex = 0; if (n->af == AF_INET) { memcpy(&n->addr.v.a.addr, &((struct sockaddr_in *) ifa->ifa_addr)->sin_addr.s_addr, sizeof(struct in_addr)); memcpy(&n->addr.v.a.mask, &((struct sockaddr_in *) ifa->ifa_netmask)->sin_addr.s_addr, sizeof(struct in_addr)); if (ifa->ifa_broadaddr != NULL) memcpy(&n->bcast, &((struct sockaddr_in *) ifa->ifa_broadaddr)->sin_addr.s_addr, sizeof(struct in_addr)); if (ifa->ifa_dstaddr != NULL) memcpy(&n->peer, &((struct sockaddr_in *) ifa->ifa_dstaddr)->sin_addr.s_addr, sizeof(struct in_addr)); } else if (n->af == AF_INET6) { memcpy(&n->addr.v.a.addr, &((struct sockaddr_in6 *) ifa->ifa_addr)->sin6_addr.s6_addr, sizeof(struct in6_addr)); memcpy(&n->addr.v.a.mask, &((struct sockaddr_in6 *) ifa->ifa_netmask)->sin6_addr.s6_addr, sizeof(struct in6_addr)); if (ifa->ifa_broadaddr != NULL) memcpy(&n->bcast, &((struct sockaddr_in6 *) ifa->ifa_broadaddr)->sin6_addr.s6_addr, sizeof(struct in6_addr)); if (ifa->ifa_dstaddr != NULL) memcpy(&n->peer, &((struct sockaddr_in6 *) ifa->ifa_dstaddr)->sin6_addr.s6_addr, sizeof(struct in6_addr)); n->ifindex = ((struct sockaddr_in6 *) ifa->ifa_addr)->sin6_scope_id; } else if (n->af == AF_LINK) { ifa_add_groups_to_map(ifa->ifa_name); } if ((n->ifname = strdup(ifa->ifa_name)) == NULL) err(1, "ifa_load: strdup"); n->next = NULL; n->tail = n; if (h == NULL) h = n; else { h->tail->next = n; h->tail = n; } } iftab = h; freeifaddrs(ifap); } static int get_socket_domain(void) { int sdom; sdom = AF_UNSPEC; #ifdef WITH_INET6 if (sdom == AF_UNSPEC && feature_present("inet6")) sdom = AF_INET6; #endif #ifdef WITH_INET if (sdom == AF_UNSPEC && feature_present("inet")) sdom = AF_INET; #endif if (sdom == AF_UNSPEC) sdom = AF_LINK; return (sdom); } int get_query_socket(void) { static int s = -1; if (s == -1) { if ((s = socket(get_socket_domain(), SOCK_DGRAM, 0)) == -1) err(1, "socket"); } return (s); } /* * Returns the response len if the name is a group, otherwise returns 0. */ static int is_a_group(char *name) { ENTRY item; ENTRY *ret_item; item.key = name; if (hsearch_r(item, FIND, &ret_item, &isgroup_map) == 0) return (0); return (*(int *)ret_item->data); } struct node_host * ifa_exists(char *ifa_name) { struct node_host *n; if (iftab == NULL) ifa_load(); /* check whether this is a group */ if (is_a_group(ifa_name)) { /* fake a node_host */ if ((n = calloc(1, sizeof(*n))) == NULL) err(1, "calloc"); if ((n->ifname = strdup(ifa_name)) == NULL) err(1, "strdup"); return (n); } for (n = iftab; n; n = n->next) { if (n->af == AF_LINK && !strncmp(n->ifname, ifa_name, IFNAMSIZ)) return (n); } return (NULL); } struct node_host * ifa_grouplookup(char *ifa_name, int flags) { struct ifg_req *ifg; struct ifgroupreq ifgr; int s, len; struct node_host *n, *h = NULL; s = get_query_socket(); len = is_a_group(ifa_name); if (len == 0) return (NULL); bzero(&ifgr, sizeof(ifgr)); strlcpy(ifgr.ifgr_name, ifa_name, sizeof(ifgr.ifgr_name)); ifgr.ifgr_len = len; if ((ifgr.ifgr_groups = calloc(1, len)) == NULL) err(1, "calloc"); if (ioctl(s, SIOCGIFGMEMB, (caddr_t)&ifgr) == -1) err(1, "SIOCGIFGMEMB"); for (ifg = ifgr.ifgr_groups; ifg && len >= sizeof(struct ifg_req); ifg++) { len -= sizeof(struct ifg_req); if ((n = ifa_lookup(ifg->ifgrq_member, flags)) == NULL) continue; if (h == NULL) h = n; else { h->tail->next = n; h->tail = n->tail; } } free(ifgr.ifgr_groups); return (h); } struct node_host * ifa_lookup(char *ifa_name, int flags) { struct node_host *p = NULL, *h = NULL, *n = NULL; int got4 = 0, got6 = 0; const char *last_if = NULL; /* first load iftab and isgroup_map */ if (iftab == NULL) ifa_load(); if ((h = ifa_grouplookup(ifa_name, flags)) != NULL) return (h); if (!strncmp(ifa_name, "self", IFNAMSIZ)) ifa_name = NULL; for (p = iftab; p; p = p->next) { if (ifa_skip_if(ifa_name, p)) continue; if ((flags & PFI_AFLAG_BROADCAST) && p->af != AF_INET) continue; if ((flags & PFI_AFLAG_BROADCAST) && !(p->ifa_flags & IFF_BROADCAST)) continue; if ((flags & PFI_AFLAG_PEER) && !(p->ifa_flags & IFF_POINTOPOINT)) continue; if ((flags & PFI_AFLAG_NETWORK) && p->ifindex > 0) continue; if (last_if == NULL || strcmp(last_if, p->ifname)) got4 = got6 = 0; last_if = p->ifname; if ((flags & PFI_AFLAG_NOALIAS) && p->af == AF_INET && got4) continue; if ((flags & PFI_AFLAG_NOALIAS) && p->af == AF_INET6 && IN6_IS_ADDR_LINKLOCAL(&p->addr.v.a.addr.v6)) continue; if ((flags & PFI_AFLAG_NOALIAS) && p->af == AF_INET6 && got6) continue; if (p->af == AF_INET) got4 = 1; else got6 = 1; n = calloc(1, sizeof(struct node_host)); if (n == NULL) err(1, "address: calloc"); n->af = p->af; if (flags & PFI_AFLAG_BROADCAST) memcpy(&n->addr.v.a.addr, &p->bcast, sizeof(struct pf_addr)); else if (flags & PFI_AFLAG_PEER) memcpy(&n->addr.v.a.addr, &p->peer, sizeof(struct pf_addr)); else memcpy(&n->addr.v.a.addr, &p->addr.v.a.addr, sizeof(struct pf_addr)); if (flags & PFI_AFLAG_NETWORK) set_ipmask(n, unmask(&p->addr.v.a.mask, n->af)); else { if (n->af == AF_INET) { if (p->ifa_flags & IFF_LOOPBACK && p->ifa_flags & IFF_LINK1) memcpy(&n->addr.v.a.mask, &p->addr.v.a.mask, sizeof(struct pf_addr)); else set_ipmask(n, 32); } else set_ipmask(n, 128); } n->ifindex = p->ifindex; n->ifname = strdup(p->ifname); n->next = NULL; n->tail = n; if (h == NULL) h = n; else { h->tail->next = n; h->tail = n; } } return (h); } int ifa_skip_if(const char *filter, struct node_host *p) { int n; if (p->af != AF_INET && p->af != AF_INET6) return (1); if (filter == NULL || !*filter) return (0); if (!strcmp(p->ifname, filter)) return (0); /* exact match */ n = strlen(filter); if (n < 1 || n >= IFNAMSIZ) return (1); /* sanity check */ if (filter[n-1] >= '0' && filter[n-1] <= '9') return (1); /* only do exact match in that case */ if (strncmp(p->ifname, filter, n)) return (1); /* prefix doesn't match */ return (p->ifname[n] < '0' || p->ifname[n] > '9'); } struct node_host * host(const char *s) { struct node_host *h = NULL; int mask, v4mask, v6mask, cont = 1; char *p, *q, *ps; if ((p = strrchr(s, '/')) != NULL) { mask = strtol(p+1, &q, 0); if (!q || *q || mask > 128 || q == (p+1)) { fprintf(stderr, "invalid netmask '%s'\n", p); return (NULL); } if ((ps = malloc(strlen(s) - strlen(p) + 1)) == NULL) err(1, "host: malloc"); strlcpy(ps, s, strlen(s) - strlen(p) + 1); v4mask = v6mask = mask; } else { if ((ps = strdup(s)) == NULL) err(1, "host: strdup"); v4mask = 32; v6mask = 128; mask = -1; } /* IPv4 address? */ if (cont && (h = host_v4(s, mask)) != NULL) cont = 0; /* IPv6 address? */ if (cont && (h = host_v6(ps, v6mask)) != NULL) cont = 0; /* interface with this name exists? */ /* expensive with thousands of interfaces - prioritze IPv4/6 check */ if (cont && (h = host_if(ps, mask)) != NULL) cont = 0; /* dns lookup */ if (cont && (h = host_dns(ps, v4mask, v6mask)) != NULL) cont = 0; free(ps); if (h == NULL || cont == 1) { fprintf(stderr, "no IP address found for %s\n", s); return (NULL); } return (h); } struct node_host * host_if(const char *s, int mask) { struct node_host *n, *h = NULL; char *p, *ps; int flags = 0; if ((ps = strdup(s)) == NULL) err(1, "host_if: strdup"); while ((p = strrchr(ps, ':')) != NULL) { if (!strcmp(p+1, "network")) flags |= PFI_AFLAG_NETWORK; else if (!strcmp(p+1, "broadcast")) flags |= PFI_AFLAG_BROADCAST; else if (!strcmp(p+1, "peer")) flags |= PFI_AFLAG_PEER; else if (!strcmp(p+1, "0")) flags |= PFI_AFLAG_NOALIAS; else { free(ps); return (NULL); } *p = '\0'; } if (flags & (flags - 1) & PFI_AFLAG_MODEMASK) { /* Yep! */ fprintf(stderr, "illegal combination of interface modifiers\n"); free(ps); return (NULL); } if ((flags & (PFI_AFLAG_NETWORK|PFI_AFLAG_BROADCAST)) && mask > -1) { fprintf(stderr, "network or broadcast lookup, but " "extra netmask given\n"); free(ps); return (NULL); } if (ifa_exists(ps) || !strncmp(ps, "self", IFNAMSIZ)) { /* interface with this name exists */ h = ifa_lookup(ps, flags); for (n = h; n != NULL && mask > -1; n = n->next) set_ipmask(n, mask); } free(ps); return (h); } struct node_host * host_v4(const char *s, int mask) { struct node_host *h = NULL; struct in_addr ina; int bits = 32; memset(&ina, 0, sizeof(struct in_addr)); if (strrchr(s, '/') != NULL) { if ((bits = inet_net_pton(AF_INET, s, &ina, sizeof(ina))) == -1) return (NULL); } else { if (inet_pton(AF_INET, s, &ina) != 1) return (NULL); } h = calloc(1, sizeof(struct node_host)); if (h == NULL) err(1, "address: calloc"); h->ifname = NULL; h->af = AF_INET; h->addr.v.a.addr.addr32[0] = ina.s_addr; set_ipmask(h, bits); h->next = NULL; h->tail = h; return (h); } struct node_host * host_v6(const char *s, int mask) { struct addrinfo hints, *res; struct node_host *h = NULL; memset(&hints, 0, sizeof(hints)); hints.ai_family = AF_INET6; hints.ai_socktype = SOCK_DGRAM; /*dummy*/ hints.ai_flags = AI_NUMERICHOST; if (getaddrinfo(s, "0", &hints, &res) == 0) { h = calloc(1, sizeof(struct node_host)); if (h == NULL) err(1, "address: calloc"); h->ifname = NULL; h->af = AF_INET6; memcpy(&h->addr.v.a.addr, &((struct sockaddr_in6 *)res->ai_addr)->sin6_addr, sizeof(h->addr.v.a.addr)); h->ifindex = ((struct sockaddr_in6 *)res->ai_addr)->sin6_scope_id; set_ipmask(h, mask); freeaddrinfo(res); h->next = NULL; h->tail = h; } return (h); } struct node_host * host_dns(const char *s, int v4mask, int v6mask) { struct addrinfo hints, *res0, *res; struct node_host *n, *h = NULL; int error, noalias = 0; int got4 = 0, got6 = 0; char *p, *ps; if ((ps = strdup(s)) == NULL) err(1, "host_dns: strdup"); if ((p = strrchr(ps, ':')) != NULL && !strcmp(p, ":0")) { noalias = 1; *p = '\0'; } memset(&hints, 0, sizeof(hints)); hints.ai_family = PF_UNSPEC; hints.ai_socktype = SOCK_STREAM; /* DUMMY */ error = getaddrinfo(ps, NULL, &hints, &res0); if (error) { free(ps); return (h); } for (res = res0; res; res = res->ai_next) { if (res->ai_family != AF_INET && res->ai_family != AF_INET6) continue; if (noalias) { if (res->ai_family == AF_INET) { if (got4) continue; got4 = 1; } else { if (got6) continue; got6 = 1; } } n = calloc(1, sizeof(struct node_host)); if (n == NULL) err(1, "host_dns: calloc"); n->ifname = NULL; n->af = res->ai_family; if (res->ai_family == AF_INET) { memcpy(&n->addr.v.a.addr, &((struct sockaddr_in *) res->ai_addr)->sin_addr.s_addr, sizeof(struct in_addr)); set_ipmask(n, v4mask); } else { memcpy(&n->addr.v.a.addr, &((struct sockaddr_in6 *) res->ai_addr)->sin6_addr.s6_addr, sizeof(struct in6_addr)); n->ifindex = ((struct sockaddr_in6 *) res->ai_addr)->sin6_scope_id; set_ipmask(n, v6mask); } n->next = NULL; n->tail = n; if (h == NULL) h = n; else { h->tail->next = n; h->tail = n; } } freeaddrinfo(res0); free(ps); return (h); } /* * convert a hostname to a list of addresses and put them in the given buffer. * test: * if set to 1, only simple addresses are accepted (no netblock, no "!"). */ int append_addr(struct pfr_buffer *b, char *s, int test) { char *r; struct node_host *h, *n; int rv, not = 0; for (r = s; *r == '!'; r++) not = !not; if ((n = host(r)) == NULL) { errno = 0; return (-1); } rv = append_addr_host(b, n, test, not); do { h = n; n = n->next; free(h); } while (n != NULL); return (rv); } /* * same as previous function, but with a pre-parsed input and the ability * to "negate" the result. Does not free the node_host list. * not: * setting it to 1 is equivalent to adding "!" in front of parameter s. */ int append_addr_host(struct pfr_buffer *b, struct node_host *n, int test, int not) { int bits; struct pfr_addr addr; do { bzero(&addr, sizeof(addr)); addr.pfra_not = n->not ^ not; addr.pfra_af = n->af; addr.pfra_net = unmask(&n->addr.v.a.mask, n->af); switch (n->af) { case AF_INET: addr.pfra_ip4addr.s_addr = n->addr.v.a.addr.addr32[0]; bits = 32; break; case AF_INET6: memcpy(&addr.pfra_ip6addr, &n->addr.v.a.addr.v6, sizeof(struct in6_addr)); bits = 128; break; default: errno = EINVAL; return (-1); } if ((test && (not || addr.pfra_net != bits)) || addr.pfra_net > bits) { errno = EINVAL; return (-1); } if (pfr_buf_add(b, &addr)) return (-1); } while ((n = n->next) != NULL); return (0); } int pfctl_add_trans(struct pfr_buffer *buf, int rs_num, const char *anchor) { struct pfioc_trans_e trans; bzero(&trans, sizeof(trans)); trans.rs_num = rs_num; if (strlcpy(trans.anchor, anchor, sizeof(trans.anchor)) >= sizeof(trans.anchor)) errx(1, "pfctl_add_trans: strlcpy"); return pfr_buf_add(buf, &trans); } u_int32_t pfctl_get_ticket(struct pfr_buffer *buf, int rs_num, const char *anchor) { struct pfioc_trans_e *p; PFRB_FOREACH(p, buf) if (rs_num == p->rs_num && !strcmp(anchor, p->anchor)) return (p->ticket); errx(1, "pfctl_get_ticket: assertion failed"); } int pfctl_trans(int dev, struct pfr_buffer *buf, u_long cmd, int from) { struct pfioc_trans trans; bzero(&trans, sizeof(trans)); trans.size = buf->pfrb_size - from; trans.esize = sizeof(struct pfioc_trans_e); trans.array = ((struct pfioc_trans_e *)buf->pfrb_caddr) + from; return ioctl(dev, cmd, &trans); } diff --git a/sys/net/pfvar.h b/sys/net/pfvar.h index 2c5c0037cb92..b2c177fba68c 100644 --- a/sys/net/pfvar.h +++ b/sys/net/pfvar.h @@ -1,2184 +1,2194 @@ /*- * SPDX-License-Identifier: BSD-2-Clause * * Copyright (c) 2001 Daniel Hartmeier * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * * - Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * - Redistributions in binary form must reproduce the above * copyright notice, this list of conditions and the following * disclaimer in the documentation and/or other materials provided * with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE * POSSIBILITY OF SUCH DAMAGE. * * $OpenBSD: pfvar.h,v 1.282 2009/01/29 15:12:28 pyr Exp $ * $FreeBSD$ */ #ifndef _NET_PFVAR_H_ #define _NET_PFVAR_H_ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #ifdef _KERNEL #include #include #include #include #include #endif #include #include #include #ifdef _KERNEL #if defined(__arm__) #define PF_WANT_32_TO_64_COUNTER #endif /* * A hybrid of 32-bit and 64-bit counters which can be used on platforms where * counter(9) is very expensive. * * As 32-bit counters are expected to overflow, a periodic job sums them up to * a saved 64-bit state. Fetching the value still walks all CPUs to get the most * current snapshot. */ #ifdef PF_WANT_32_TO_64_COUNTER struct pf_counter_u64_pcpu { u_int32_t current; u_int32_t snapshot; }; struct pf_counter_u64 { struct pf_counter_u64_pcpu *pfcu64_pcpu; u_int64_t pfcu64_value; seqc_t pfcu64_seqc; }; static inline int pf_counter_u64_init(struct pf_counter_u64 *pfcu64, int flags) { pfcu64->pfcu64_value = 0; pfcu64->pfcu64_seqc = 0; pfcu64->pfcu64_pcpu = uma_zalloc_pcpu(pcpu_zone_8, flags | M_ZERO); if (__predict_false(pfcu64->pfcu64_pcpu == NULL)) return (ENOMEM); return (0); } static inline void pf_counter_u64_deinit(struct pf_counter_u64 *pfcu64) { uma_zfree_pcpu(pcpu_zone_8, pfcu64->pfcu64_pcpu); } static inline void pf_counter_u64_critical_enter(void) { critical_enter(); } static inline void pf_counter_u64_critical_exit(void) { critical_exit(); } static inline void pf_counter_u64_add_protected(struct pf_counter_u64 *pfcu64, uint32_t n) { struct pf_counter_u64_pcpu *pcpu; u_int32_t val; MPASS(curthread->td_critnest > 0); pcpu = zpcpu_get(pfcu64->pfcu64_pcpu); val = atomic_load_int(&pcpu->current); atomic_store_int(&pcpu->current, val + n); } static inline void pf_counter_u64_add(struct pf_counter_u64 *pfcu64, uint32_t n) { critical_enter(); pf_counter_u64_add_protected(pfcu64, n); critical_exit(); } static inline u_int64_t pf_counter_u64_periodic(struct pf_counter_u64 *pfcu64) { struct pf_counter_u64_pcpu *pcpu; u_int64_t sum; u_int32_t val; int cpu; MPASS(curthread->td_critnest > 0); seqc_write_begin(&pfcu64->pfcu64_seqc); sum = pfcu64->pfcu64_value; CPU_FOREACH(cpu) { pcpu = zpcpu_get_cpu(pfcu64->pfcu64_pcpu, cpu); val = atomic_load_int(&pcpu->current); sum += (uint32_t)(val - pcpu->snapshot); pcpu->snapshot = val; } pfcu64->pfcu64_value = sum; seqc_write_end(&pfcu64->pfcu64_seqc); return (sum); } static inline u_int64_t pf_counter_u64_fetch(struct pf_counter_u64 *pfcu64) { struct pf_counter_u64_pcpu *pcpu; u_int64_t sum; seqc_t seqc; int cpu; for (;;) { seqc = seqc_read(&pfcu64->pfcu64_seqc); sum = 0; CPU_FOREACH(cpu) { pcpu = zpcpu_get_cpu(pfcu64->pfcu64_pcpu, cpu); sum += (uint32_t)(atomic_load_int(&pcpu->current) -pcpu->snapshot); } sum += pfcu64->pfcu64_value; if (seqc_consistent(&pfcu64->pfcu64_seqc, seqc)) break; } return (sum); } static inline void pf_counter_u64_zero_protected(struct pf_counter_u64 *pfcu64) { struct pf_counter_u64_pcpu *pcpu; int cpu; MPASS(curthread->td_critnest > 0); seqc_write_begin(&pfcu64->pfcu64_seqc); CPU_FOREACH(cpu) { pcpu = zpcpu_get_cpu(pfcu64->pfcu64_pcpu, cpu); pcpu->snapshot = atomic_load_int(&pcpu->current); } pfcu64->pfcu64_value = 0; seqc_write_end(&pfcu64->pfcu64_seqc); } static inline void pf_counter_u64_zero(struct pf_counter_u64 *pfcu64) { critical_enter(); pf_counter_u64_zero_protected(pfcu64); critical_exit(); } #else struct pf_counter_u64 { counter_u64_t counter; }; static inline int pf_counter_u64_init(struct pf_counter_u64 *pfcu64, int flags) { pfcu64->counter = counter_u64_alloc(flags); if (__predict_false(pfcu64->counter == NULL)) return (ENOMEM); return (0); } static inline void pf_counter_u64_deinit(struct pf_counter_u64 *pfcu64) { counter_u64_free(pfcu64->counter); } static inline void pf_counter_u64_critical_enter(void) { } static inline void pf_counter_u64_critical_exit(void) { } static inline void pf_counter_u64_add_protected(struct pf_counter_u64 *pfcu64, uint32_t n) { counter_u64_add(pfcu64->counter, n); } static inline void pf_counter_u64_add(struct pf_counter_u64 *pfcu64, uint32_t n) { pf_counter_u64_add_protected(pfcu64, n); } static inline u_int64_t pf_counter_u64_fetch(struct pf_counter_u64 *pfcu64) { return (counter_u64_fetch(pfcu64->counter)); } static inline void pf_counter_u64_zero_protected(struct pf_counter_u64 *pfcu64) { counter_u64_zero(pfcu64->counter); } static inline void pf_counter_u64_zero(struct pf_counter_u64 *pfcu64) { pf_counter_u64_zero_protected(pfcu64); } #endif SYSCTL_DECL(_net_pf); MALLOC_DECLARE(M_PFHASH); SDT_PROVIDER_DECLARE(pf); struct pfi_dynaddr { TAILQ_ENTRY(pfi_dynaddr) entry; struct pf_addr pfid_addr4; struct pf_addr pfid_mask4; struct pf_addr pfid_addr6; struct pf_addr pfid_mask6; struct pfr_ktable *pfid_kt; struct pfi_kkif *pfid_kif; int pfid_net; /* mask or 128 */ int pfid_acnt4; /* address count IPv4 */ int pfid_acnt6; /* address count IPv6 */ sa_family_t pfid_af; /* rule af */ u_int8_t pfid_iflags; /* PFI_AFLAG_* */ }; /* * Address manipulation macros */ #define HTONL(x) (x) = htonl((__uint32_t)(x)) #define HTONS(x) (x) = htons((__uint16_t)(x)) #define NTOHL(x) (x) = ntohl((__uint32_t)(x)) #define NTOHS(x) (x) = ntohs((__uint16_t)(x)) #define PF_NAME "pf" #define PF_HASHROW_ASSERT(h) mtx_assert(&(h)->lock, MA_OWNED) #define PF_HASHROW_LOCK(h) mtx_lock(&(h)->lock) #define PF_HASHROW_UNLOCK(h) mtx_unlock(&(h)->lock) #ifdef INVARIANTS #define PF_STATE_LOCK(s) \ do { \ struct pf_kstate *_s = (s); \ struct pf_idhash *_ih = &V_pf_idhash[PF_IDHASH(_s)]; \ MPASS(_s->lock == &_ih->lock); \ mtx_lock(_s->lock); \ } while (0) #define PF_STATE_UNLOCK(s) \ do { \ struct pf_kstate *_s = (s); \ struct pf_idhash *_ih = &V_pf_idhash[PF_IDHASH(_s)]; \ MPASS(_s->lock == &_ih->lock); \ mtx_unlock(_s->lock); \ } while (0) #else #define PF_STATE_LOCK(s) mtx_lock(s->lock) #define PF_STATE_UNLOCK(s) mtx_unlock(s->lock) #endif #ifdef INVARIANTS #define PF_STATE_LOCK_ASSERT(s) \ do { \ struct pf_kstate *_s = (s); \ struct pf_idhash *_ih = &V_pf_idhash[PF_IDHASH(_s)]; \ MPASS(_s->lock == &_ih->lock); \ PF_HASHROW_ASSERT(_ih); \ } while (0) #else /* !INVARIANTS */ #define PF_STATE_LOCK_ASSERT(s) do {} while (0) #endif /* INVARIANTS */ extern struct mtx_padalign pf_unlnkdrules_mtx; #define PF_UNLNKDRULES_LOCK() mtx_lock(&pf_unlnkdrules_mtx) #define PF_UNLNKDRULES_UNLOCK() mtx_unlock(&pf_unlnkdrules_mtx) extern struct rmlock pf_rules_lock; #define PF_RULES_RLOCK_TRACKER struct rm_priotracker _pf_rules_tracker #define PF_RULES_RLOCK() rm_rlock(&pf_rules_lock, &_pf_rules_tracker) #define PF_RULES_RUNLOCK() rm_runlock(&pf_rules_lock, &_pf_rules_tracker) #define PF_RULES_WLOCK() rm_wlock(&pf_rules_lock) #define PF_RULES_WUNLOCK() rm_wunlock(&pf_rules_lock) #define PF_RULES_WOWNED() rm_wowned(&pf_rules_lock) #define PF_RULES_ASSERT() rm_assert(&pf_rules_lock, RA_LOCKED) #define PF_RULES_RASSERT() rm_assert(&pf_rules_lock, RA_RLOCKED) #define PF_RULES_WASSERT() rm_assert(&pf_rules_lock, RA_WLOCKED) extern struct mtx_padalign pf_table_stats_lock; #define PF_TABLE_STATS_LOCK() mtx_lock(&pf_table_stats_lock) #define PF_TABLE_STATS_UNLOCK() mtx_unlock(&pf_table_stats_lock) #define PF_TABLE_STATS_OWNED() mtx_owned(&pf_table_stats_lock) #define PF_TABLE_STATS_ASSERT() mtx_assert(&pf_rules_lock, MA_OWNED) extern struct sx pf_end_lock; #define PF_MODVER 1 #define PFLOG_MODVER 1 #define PFSYNC_MODVER 1 #define PFLOG_MINVER 1 #define PFLOG_PREFVER PFLOG_MODVER #define PFLOG_MAXVER 1 #define PFSYNC_MINVER 1 #define PFSYNC_PREFVER PFSYNC_MODVER #define PFSYNC_MAXVER 1 #ifdef INET #ifndef INET6 #define PF_INET_ONLY #endif /* ! INET6 */ #endif /* INET */ #ifdef INET6 #ifndef INET #define PF_INET6_ONLY #endif /* ! INET */ #endif /* INET6 */ #ifdef INET #ifdef INET6 #define PF_INET_INET6 #endif /* INET6 */ #endif /* INET */ #else #define PF_INET_INET6 #endif /* _KERNEL */ /* Both IPv4 and IPv6 */ #ifdef PF_INET_INET6 #define PF_AEQ(a, b, c) \ ((c == AF_INET && (a)->addr32[0] == (b)->addr32[0]) || \ (c == AF_INET6 && (a)->addr32[3] == (b)->addr32[3] && \ (a)->addr32[2] == (b)->addr32[2] && \ (a)->addr32[1] == (b)->addr32[1] && \ (a)->addr32[0] == (b)->addr32[0])) \ #define PF_ANEQ(a, b, c) \ ((c == AF_INET && (a)->addr32[0] != (b)->addr32[0]) || \ (c == AF_INET6 && ((a)->addr32[0] != (b)->addr32[0] || \ (a)->addr32[1] != (b)->addr32[1] || \ (a)->addr32[2] != (b)->addr32[2] || \ (a)->addr32[3] != (b)->addr32[3]))) \ #define PF_AZERO(a, c) \ ((c == AF_INET && !(a)->addr32[0]) || \ (c == AF_INET6 && !(a)->addr32[0] && !(a)->addr32[1] && \ !(a)->addr32[2] && !(a)->addr32[3] )) \ #define PF_MATCHA(n, a, m, b, f) \ pf_match_addr(n, a, m, b, f) #define PF_ACPY(a, b, f) \ pf_addrcpy(a, b, f) #define PF_AINC(a, f) \ pf_addr_inc(a, f) #define PF_POOLMASK(a, b, c, d, f) \ pf_poolmask(a, b, c, d, f) #else /* Just IPv6 */ #ifdef PF_INET6_ONLY #define PF_AEQ(a, b, c) \ ((a)->addr32[3] == (b)->addr32[3] && \ (a)->addr32[2] == (b)->addr32[2] && \ (a)->addr32[1] == (b)->addr32[1] && \ (a)->addr32[0] == (b)->addr32[0]) \ #define PF_ANEQ(a, b, c) \ ((a)->addr32[3] != (b)->addr32[3] || \ (a)->addr32[2] != (b)->addr32[2] || \ (a)->addr32[1] != (b)->addr32[1] || \ (a)->addr32[0] != (b)->addr32[0]) \ #define PF_AZERO(a, c) \ (!(a)->addr32[0] && \ !(a)->addr32[1] && \ !(a)->addr32[2] && \ !(a)->addr32[3] ) \ #define PF_MATCHA(n, a, m, b, f) \ pf_match_addr(n, a, m, b, f) #define PF_ACPY(a, b, f) \ pf_addrcpy(a, b, f) #define PF_AINC(a, f) \ pf_addr_inc(a, f) #define PF_POOLMASK(a, b, c, d, f) \ pf_poolmask(a, b, c, d, f) #else /* Just IPv4 */ #ifdef PF_INET_ONLY #define PF_AEQ(a, b, c) \ ((a)->addr32[0] == (b)->addr32[0]) #define PF_ANEQ(a, b, c) \ ((a)->addr32[0] != (b)->addr32[0]) #define PF_AZERO(a, c) \ (!(a)->addr32[0]) #define PF_MATCHA(n, a, m, b, f) \ pf_match_addr(n, a, m, b, f) #define PF_ACPY(a, b, f) \ (a)->v4.s_addr = (b)->v4.s_addr #define PF_AINC(a, f) \ do { \ (a)->addr32[0] = htonl(ntohl((a)->addr32[0]) + 1); \ } while (0) #define PF_POOLMASK(a, b, c, d, f) \ do { \ (a)->addr32[0] = ((b)->addr32[0] & (c)->addr32[0]) | \ (((c)->addr32[0] ^ 0xffffffff ) & (d)->addr32[0]); \ } while (0) #endif /* PF_INET_ONLY */ #endif /* PF_INET6_ONLY */ #endif /* PF_INET_INET6 */ /* * XXX callers not FIB-aware in our version of pf yet. * OpenBSD fixed it later it seems, 2010/05/07 13:33:16 claudio. */ #define PF_MISMATCHAW(aw, x, af, neg, ifp, rtid) \ ( \ (((aw)->type == PF_ADDR_NOROUTE && \ pf_routable((x), (af), NULL, (rtid))) || \ (((aw)->type == PF_ADDR_URPFFAILED && (ifp) != NULL && \ pf_routable((x), (af), (ifp), (rtid))) || \ ((aw)->type == PF_ADDR_TABLE && \ !pfr_match_addr((aw)->p.tbl, (x), (af))) || \ ((aw)->type == PF_ADDR_DYNIFTL && \ !pfi_match_addr((aw)->p.dyn, (x), (af))) || \ ((aw)->type == PF_ADDR_RANGE && \ !pf_match_addr_range(&(aw)->v.a.addr, \ &(aw)->v.a.mask, (x), (af))) || \ ((aw)->type == PF_ADDR_ADDRMASK && \ !PF_AZERO(&(aw)->v.a.mask, (af)) && \ !PF_MATCHA(0, &(aw)->v.a.addr, \ &(aw)->v.a.mask, (x), (af))))) != \ (neg) \ ) #define PF_ALGNMNT(off) (((off) % 2) == 0) #ifdef _KERNEL struct pf_kpooladdr { struct pf_addr_wrap addr; TAILQ_ENTRY(pf_kpooladdr) entries; char ifname[IFNAMSIZ]; struct pfi_kkif *kif; }; TAILQ_HEAD(pf_kpalist, pf_kpooladdr); struct pf_kpool { struct pf_kpalist list; struct pf_kpooladdr *cur; struct pf_poolhashkey key; struct pf_addr counter; struct pf_mape_portset mape; int tblidx; u_int16_t proxy_port[2]; u_int8_t opts; }; struct pf_rule_actions { uint16_t qid; uint16_t pqid; + uint16_t dnpipe; + uint16_t dnrpipe; /* Reverse direction pipe */ + uint32_t flags; }; union pf_krule_ptr { struct pf_krule *ptr; u_int32_t nr; }; struct pf_krule { struct pf_rule_addr src; struct pf_rule_addr dst; union pf_krule_ptr skip[PF_SKIP_COUNT]; char label[PF_RULE_MAX_LABEL_COUNT][PF_RULE_LABEL_SIZE]; char ifname[IFNAMSIZ]; char qname[PF_QNAME_SIZE]; char pqname[PF_QNAME_SIZE]; char tagname[PF_TAG_NAME_SIZE]; char match_tagname[PF_TAG_NAME_SIZE]; char overload_tblname[PF_TABLE_NAME_SIZE]; TAILQ_ENTRY(pf_krule) entries; struct pf_kpool rpool; struct pf_counter_u64 evaluations; struct pf_counter_u64 packets[2]; struct pf_counter_u64 bytes[2]; struct pfi_kkif *kif; struct pf_kanchor *anchor; struct pfr_ktable *overload_tbl; pf_osfp_t os_fingerprint; int rtableid; u_int32_t timeout[PFTM_MAX]; u_int32_t max_states; u_int32_t max_src_nodes; u_int32_t max_src_states; u_int32_t max_src_conn; struct { u_int32_t limit; u_int32_t seconds; } max_src_conn_rate; u_int16_t qid; u_int16_t pqid; + u_int16_t dnpipe; + u_int16_t dnrpipe; + u_int32_t free_flags; u_int32_t nr; u_int32_t prob; uid_t cuid; pid_t cpid; counter_u64_t states_cur; counter_u64_t states_tot; counter_u64_t src_nodes; u_int16_t return_icmp; u_int16_t return_icmp6; u_int16_t max_mss; u_int16_t tag; u_int16_t match_tag; u_int16_t scrub_flags; struct pf_rule_uid uid; struct pf_rule_gid gid; u_int32_t rule_flag; uint32_t rule_ref; u_int8_t action; u_int8_t direction; u_int8_t log; u_int8_t logif; u_int8_t quick; u_int8_t ifnot; u_int8_t match_tag_not; u_int8_t natpass; u_int8_t keep_state; sa_family_t af; u_int8_t proto; u_int8_t type; u_int8_t code; u_int8_t flags; u_int8_t flagset; u_int8_t min_ttl; u_int8_t allow_opts; u_int8_t rt; u_int8_t return_ttl; u_int8_t tos; u_int8_t set_tos; u_int8_t anchor_relative; u_int8_t anchor_wildcard; u_int8_t flush; u_int8_t prio; u_int8_t set_prio[2]; struct { struct pf_addr addr; u_int16_t port; } divert; #ifdef PF_WANT_32_TO_64_COUNTER LIST_ENTRY(pf_krule) allrulelist; bool allrulelinked; #endif }; struct pf_ksrc_node { LIST_ENTRY(pf_ksrc_node) entry; struct pf_addr addr; struct pf_addr raddr; union pf_krule_ptr rule; struct pfi_kkif *kif; counter_u64_t bytes[2]; counter_u64_t packets[2]; u_int32_t states; u_int32_t conn; struct pf_threshold conn_rate; u_int32_t creation; u_int32_t expire; sa_family_t af; u_int8_t ruletype; }; #endif struct pf_state_scrub { struct timeval pfss_last; /* time received last packet */ u_int32_t pfss_tsecr; /* last echoed timestamp */ u_int32_t pfss_tsval; /* largest timestamp */ u_int32_t pfss_tsval0; /* original timestamp */ u_int16_t pfss_flags; #define PFSS_TIMESTAMP 0x0001 /* modulate timestamp */ #define PFSS_PAWS 0x0010 /* stricter PAWS checks */ #define PFSS_PAWS_IDLED 0x0020 /* was idle too long. no PAWS */ #define PFSS_DATA_TS 0x0040 /* timestamp on data packets */ #define PFSS_DATA_NOTS 0x0080 /* no timestamp on data packets */ u_int8_t pfss_ttl; /* stashed TTL */ u_int8_t pad; u_int32_t pfss_ts_mod; /* timestamp modulation */ }; struct pf_state_host { struct pf_addr addr; u_int16_t port; u_int16_t pad; }; struct pf_state_peer { struct pf_state_scrub *scrub; /* state is scrubbed */ u_int32_t seqlo; /* Max sequence number sent */ u_int32_t seqhi; /* Max the other end ACKd + win */ u_int32_t seqdiff; /* Sequence number modulator */ u_int16_t max_win; /* largest window (pre scaling) */ u_int16_t mss; /* Maximum segment size option */ u_int8_t state; /* active state level */ u_int8_t wscale; /* window scaling factor */ u_int8_t tcp_est; /* Did we reach TCPS_ESTABLISHED */ u_int8_t pad[1]; }; /* Keep synced with struct pf_state_key. */ struct pf_state_key_cmp { struct pf_addr addr[2]; u_int16_t port[2]; sa_family_t af; u_int8_t proto; u_int8_t pad[2]; }; struct pf_state_key { struct pf_addr addr[2]; u_int16_t port[2]; sa_family_t af; u_int8_t proto; u_int8_t pad[2]; LIST_ENTRY(pf_state_key) entry; TAILQ_HEAD(, pf_kstate) states[2]; }; /* Keep synced with struct pf_kstate. */ struct pf_state_cmp { u_int64_t id; u_int32_t creatorid; u_int8_t direction; u_int8_t pad[3]; }; #define PFSTATE_ALLOWOPTS 0x01 #define PFSTATE_SLOPPY 0x02 /* was PFSTATE_PFLOW 0x04 */ #define PFSTATE_NOSYNC 0x08 #define PFSTATE_ACK 0x10 +#define PFRULE_DN_IS_PIPE 0x40 +#define PFRULE_DN_IS_QUEUE 0x80 #define PFSTATE_SETPRIO 0x0200 #define PFSTATE_SETMASK (PFSTATE_SETPRIO) struct pf_state_scrub_export { uint16_t pfss_flags; uint8_t pfss_ttl; /* stashed TTL */ #define PF_SCRUB_FLAG_VALID 0x01 uint8_t scrub_flag; uint32_t pfss_ts_mod; /* timestamp modulation */ }; struct pf_state_key_export { struct pf_addr addr[2]; uint16_t port[2]; }; struct pf_state_peer_export { struct pf_state_scrub_export scrub; /* state is scrubbed */ uint32_t seqlo; /* Max sequence number sent */ uint32_t seqhi; /* Max the other end ACKd + win */ uint32_t seqdiff; /* Sequence number modulator */ uint16_t max_win; /* largest window (pre scaling) */ uint16_t mss; /* Maximum segment size option */ uint8_t state; /* active state level */ uint8_t wscale; /* window scaling factor */ uint8_t dummy[6]; }; _Static_assert(sizeof(struct pf_state_peer_export) == 32, "size incorrect"); struct pf_state_export { uint64_t version; #define PF_STATE_VERSION 20210706 uint64_t id; char ifname[IFNAMSIZ]; char orig_ifname[IFNAMSIZ]; struct pf_state_key_export key[2]; struct pf_state_peer_export src; struct pf_state_peer_export dst; struct pf_addr rt_addr; uint32_t rule; uint32_t anchor; uint32_t nat_rule; uint32_t creation; uint32_t expire; uint32_t spare0; uint64_t packets[2]; uint64_t bytes[2]; uint32_t creatorid; uint32_t spare1; sa_family_t af; uint8_t proto; uint8_t direction; uint8_t log; uint8_t state_flags; uint8_t timeout; uint8_t sync_flags; uint8_t updates; uint8_t spare[112]; }; _Static_assert(sizeof(struct pf_state_export) == 384, "size incorrect"); #ifdef _KERNEL struct pf_kstate { /* * Area shared with pf_state_cmp */ u_int64_t id; u_int32_t creatorid; u_int8_t direction; u_int8_t pad[3]; /* * end of the area */ u_int8_t state_flags; u_int8_t timeout; u_int8_t sync_state; /* PFSYNC_S_x */ u_int8_t sync_updates; /* XXX */ u_int refs; struct mtx *lock; TAILQ_ENTRY(pf_kstate) sync_list; TAILQ_ENTRY(pf_kstate) key_list[2]; LIST_ENTRY(pf_kstate) entry; struct pf_state_peer src; struct pf_state_peer dst; union pf_krule_ptr rule; union pf_krule_ptr anchor; union pf_krule_ptr nat_rule; struct pf_addr rt_addr; struct pf_state_key *key[2]; /* addresses stack and wire */ struct pfi_kkif *kif; struct pfi_kkif *orig_kif; /* The real kif, even if we're a floating state (i.e. if == V_pfi_all). */ struct pfi_kkif *rt_kif; struct pf_ksrc_node *src_node; struct pf_ksrc_node *nat_src_node; u_int64_t packets[2]; u_int64_t bytes[2]; u_int32_t creation; u_int32_t expire; u_int32_t pfsync_time; u_int16_t qid; u_int16_t pqid; + u_int16_t dnpipe; + u_int16_t dnrpipe; u_int16_t tag; u_int8_t log; }; /* * Size <= fits 13 objects per page on LP64. Try to not grow the struct beyond that. */ _Static_assert(sizeof(struct pf_kstate) <= 312, "pf_kstate size crosses 312 bytes"); #endif /* * Unified state structures for pulling states out of the kernel * used by pfsync(4) and the pf(4) ioctl. */ struct pfsync_state_scrub { u_int16_t pfss_flags; u_int8_t pfss_ttl; /* stashed TTL */ #define PFSYNC_SCRUB_FLAG_VALID 0x01 u_int8_t scrub_flag; u_int32_t pfss_ts_mod; /* timestamp modulation */ } __packed; struct pfsync_state_peer { struct pfsync_state_scrub scrub; /* state is scrubbed */ u_int32_t seqlo; /* Max sequence number sent */ u_int32_t seqhi; /* Max the other end ACKd + win */ u_int32_t seqdiff; /* Sequence number modulator */ u_int16_t max_win; /* largest window (pre scaling) */ u_int16_t mss; /* Maximum segment size option */ u_int8_t state; /* active state level */ u_int8_t wscale; /* window scaling factor */ u_int8_t pad[6]; } __packed; struct pfsync_state_key { struct pf_addr addr[2]; u_int16_t port[2]; }; struct pfsync_state { u_int64_t id; char ifname[IFNAMSIZ]; struct pfsync_state_key key[2]; struct pfsync_state_peer src; struct pfsync_state_peer dst; struct pf_addr rt_addr; u_int32_t rule; u_int32_t anchor; u_int32_t nat_rule; u_int32_t creation; u_int32_t expire; u_int32_t packets[2][2]; u_int32_t bytes[2][2]; u_int32_t creatorid; sa_family_t af; u_int8_t proto; u_int8_t direction; u_int8_t __spare[2]; u_int8_t log; u_int8_t state_flags; u_int8_t timeout; u_int8_t sync_flags; u_int8_t updates; } __packed; #ifdef _KERNEL /* pfsync */ typedef int pfsync_state_import_t(struct pfsync_state *, u_int8_t); typedef void pfsync_insert_state_t(struct pf_kstate *); typedef void pfsync_update_state_t(struct pf_kstate *); typedef void pfsync_delete_state_t(struct pf_kstate *); typedef void pfsync_clear_states_t(u_int32_t, const char *); typedef int pfsync_defer_t(struct pf_kstate *, struct mbuf *); typedef void pfsync_detach_ifnet_t(struct ifnet *); VNET_DECLARE(pfsync_state_import_t *, pfsync_state_import_ptr); #define V_pfsync_state_import_ptr VNET(pfsync_state_import_ptr) VNET_DECLARE(pfsync_insert_state_t *, pfsync_insert_state_ptr); #define V_pfsync_insert_state_ptr VNET(pfsync_insert_state_ptr) VNET_DECLARE(pfsync_update_state_t *, pfsync_update_state_ptr); #define V_pfsync_update_state_ptr VNET(pfsync_update_state_ptr) VNET_DECLARE(pfsync_delete_state_t *, pfsync_delete_state_ptr); #define V_pfsync_delete_state_ptr VNET(pfsync_delete_state_ptr) VNET_DECLARE(pfsync_clear_states_t *, pfsync_clear_states_ptr); #define V_pfsync_clear_states_ptr VNET(pfsync_clear_states_ptr) VNET_DECLARE(pfsync_defer_t *, pfsync_defer_ptr); #define V_pfsync_defer_ptr VNET(pfsync_defer_ptr) extern pfsync_detach_ifnet_t *pfsync_detach_ifnet_ptr; void pfsync_state_export(struct pfsync_state *, struct pf_kstate *); void pf_state_export(struct pf_state_export *, struct pf_kstate *); /* pflog */ struct pf_kruleset; struct pf_pdesc; typedef int pflog_packet_t(struct pfi_kkif *, struct mbuf *, sa_family_t, u_int8_t, u_int8_t, struct pf_krule *, struct pf_krule *, struct pf_kruleset *, struct pf_pdesc *, int); extern pflog_packet_t *pflog_packet_ptr; #endif /* _KERNEL */ #define PFSYNC_FLAG_SRCNODE 0x04 #define PFSYNC_FLAG_NATSRCNODE 0x08 /* for copies to/from network byte order */ /* ioctl interface also uses network byte order */ #define pf_state_peer_hton(s,d) do { \ (d)->seqlo = htonl((s)->seqlo); \ (d)->seqhi = htonl((s)->seqhi); \ (d)->seqdiff = htonl((s)->seqdiff); \ (d)->max_win = htons((s)->max_win); \ (d)->mss = htons((s)->mss); \ (d)->state = (s)->state; \ (d)->wscale = (s)->wscale; \ if ((s)->scrub) { \ (d)->scrub.pfss_flags = \ htons((s)->scrub->pfss_flags & PFSS_TIMESTAMP); \ (d)->scrub.pfss_ttl = (s)->scrub->pfss_ttl; \ (d)->scrub.pfss_ts_mod = htonl((s)->scrub->pfss_ts_mod);\ (d)->scrub.scrub_flag = PFSYNC_SCRUB_FLAG_VALID; \ } \ } while (0) #define pf_state_peer_ntoh(s,d) do { \ (d)->seqlo = ntohl((s)->seqlo); \ (d)->seqhi = ntohl((s)->seqhi); \ (d)->seqdiff = ntohl((s)->seqdiff); \ (d)->max_win = ntohs((s)->max_win); \ (d)->mss = ntohs((s)->mss); \ (d)->state = (s)->state; \ (d)->wscale = (s)->wscale; \ if ((s)->scrub.scrub_flag == PFSYNC_SCRUB_FLAG_VALID && \ (d)->scrub != NULL) { \ (d)->scrub->pfss_flags = \ ntohs((s)->scrub.pfss_flags) & PFSS_TIMESTAMP; \ (d)->scrub->pfss_ttl = (s)->scrub.pfss_ttl; \ (d)->scrub->pfss_ts_mod = ntohl((s)->scrub.pfss_ts_mod);\ } \ } while (0) #define pf_state_counter_hton(s,d) do { \ d[0] = htonl((s>>32)&0xffffffff); \ d[1] = htonl(s&0xffffffff); \ } while (0) #define pf_state_counter_from_pfsync(s) \ (((u_int64_t)(s[0])<<32) | (u_int64_t)(s[1])) #define pf_state_counter_ntoh(s,d) do { \ d = ntohl(s[0]); \ d = d<<32; \ d += ntohl(s[1]); \ } while (0) TAILQ_HEAD(pf_krulequeue, pf_krule); struct pf_kanchor; struct pf_kruleset { struct { struct pf_krulequeue queues[2]; struct { struct pf_krulequeue *ptr; struct pf_krule **ptr_array; u_int32_t rcount; u_int32_t ticket; int open; } active, inactive; } rules[PF_RULESET_MAX]; struct pf_kanchor *anchor; u_int32_t tticket; int tables; int topen; }; RB_HEAD(pf_kanchor_global, pf_kanchor); RB_HEAD(pf_kanchor_node, pf_kanchor); struct pf_kanchor { RB_ENTRY(pf_kanchor) entry_global; RB_ENTRY(pf_kanchor) entry_node; struct pf_kanchor *parent; struct pf_kanchor_node children; char name[PF_ANCHOR_NAME_SIZE]; char path[MAXPATHLEN]; struct pf_kruleset ruleset; int refcnt; /* anchor rules */ int match; /* XXX: used for pfctl black magic */ }; RB_PROTOTYPE(pf_kanchor_global, pf_kanchor, entry_global, pf_anchor_compare); RB_PROTOTYPE(pf_kanchor_node, pf_kanchor, entry_node, pf_kanchor_compare); #define PF_RESERVED_ANCHOR "_pf" #define PFR_TFLAG_PERSIST 0x00000001 #define PFR_TFLAG_CONST 0x00000002 #define PFR_TFLAG_ACTIVE 0x00000004 #define PFR_TFLAG_INACTIVE 0x00000008 #define PFR_TFLAG_REFERENCED 0x00000010 #define PFR_TFLAG_REFDANCHOR 0x00000020 #define PFR_TFLAG_COUNTERS 0x00000040 /* Adjust masks below when adding flags. */ #define PFR_TFLAG_USRMASK (PFR_TFLAG_PERSIST | \ PFR_TFLAG_CONST | \ PFR_TFLAG_COUNTERS) #define PFR_TFLAG_SETMASK (PFR_TFLAG_ACTIVE | \ PFR_TFLAG_INACTIVE | \ PFR_TFLAG_REFERENCED | \ PFR_TFLAG_REFDANCHOR) #define PFR_TFLAG_ALLMASK (PFR_TFLAG_PERSIST | \ PFR_TFLAG_CONST | \ PFR_TFLAG_ACTIVE | \ PFR_TFLAG_INACTIVE | \ PFR_TFLAG_REFERENCED | \ PFR_TFLAG_REFDANCHOR | \ PFR_TFLAG_COUNTERS) struct pf_kanchor_stackframe; struct pfr_table { char pfrt_anchor[MAXPATHLEN]; char pfrt_name[PF_TABLE_NAME_SIZE]; u_int32_t pfrt_flags; u_int8_t pfrt_fback; }; enum { PFR_FB_NONE, PFR_FB_MATCH, PFR_FB_ADDED, PFR_FB_DELETED, PFR_FB_CHANGED, PFR_FB_CLEARED, PFR_FB_DUPLICATE, PFR_FB_NOTMATCH, PFR_FB_CONFLICT, PFR_FB_NOCOUNT, PFR_FB_MAX }; struct pfr_addr { union { struct in_addr _pfra_ip4addr; struct in6_addr _pfra_ip6addr; } pfra_u; u_int8_t pfra_af; u_int8_t pfra_net; u_int8_t pfra_not; u_int8_t pfra_fback; }; #define pfra_ip4addr pfra_u._pfra_ip4addr #define pfra_ip6addr pfra_u._pfra_ip6addr enum { PFR_DIR_IN, PFR_DIR_OUT, PFR_DIR_MAX }; enum { PFR_OP_BLOCK, PFR_OP_PASS, PFR_OP_ADDR_MAX, PFR_OP_TABLE_MAX }; enum { PFR_TYPE_PACKETS, PFR_TYPE_BYTES, PFR_TYPE_MAX }; #define PFR_NUM_COUNTERS (PFR_DIR_MAX * PFR_OP_ADDR_MAX * PFR_TYPE_MAX) #define PFR_OP_XPASS PFR_OP_ADDR_MAX struct pfr_astats { struct pfr_addr pfras_a; u_int64_t pfras_packets[PFR_DIR_MAX][PFR_OP_ADDR_MAX]; u_int64_t pfras_bytes[PFR_DIR_MAX][PFR_OP_ADDR_MAX]; long pfras_tzero; }; enum { PFR_REFCNT_RULE, PFR_REFCNT_ANCHOR, PFR_REFCNT_MAX }; struct pfr_tstats { struct pfr_table pfrts_t; u_int64_t pfrts_packets[PFR_DIR_MAX][PFR_OP_TABLE_MAX]; u_int64_t pfrts_bytes[PFR_DIR_MAX][PFR_OP_TABLE_MAX]; u_int64_t pfrts_match; u_int64_t pfrts_nomatch; long pfrts_tzero; int pfrts_cnt; int pfrts_refcnt[PFR_REFCNT_MAX]; }; #ifdef _KERNEL struct pfr_kstate_counter { counter_u64_t pkc_pcpu; u_int64_t pkc_zero; }; static inline int pfr_kstate_counter_init(struct pfr_kstate_counter *pfrc, int flags) { pfrc->pkc_zero = 0; pfrc->pkc_pcpu = counter_u64_alloc(flags); if (pfrc->pkc_pcpu == NULL) return (ENOMEM); return (0); } static inline void pfr_kstate_counter_deinit(struct pfr_kstate_counter *pfrc) { counter_u64_free(pfrc->pkc_pcpu); } static inline u_int64_t pfr_kstate_counter_fetch(struct pfr_kstate_counter *pfrc) { u_int64_t c; c = counter_u64_fetch(pfrc->pkc_pcpu); c -= pfrc->pkc_zero; return (c); } static inline void pfr_kstate_counter_zero(struct pfr_kstate_counter *pfrc) { u_int64_t c; c = counter_u64_fetch(pfrc->pkc_pcpu); pfrc->pkc_zero = c; } static inline void pfr_kstate_counter_add(struct pfr_kstate_counter *pfrc, int64_t n) { counter_u64_add(pfrc->pkc_pcpu, n); } struct pfr_ktstats { struct pfr_table pfrts_t; struct pfr_kstate_counter pfrkts_packets[PFR_DIR_MAX][PFR_OP_TABLE_MAX]; struct pfr_kstate_counter pfrkts_bytes[PFR_DIR_MAX][PFR_OP_TABLE_MAX]; struct pfr_kstate_counter pfrkts_match; struct pfr_kstate_counter pfrkts_nomatch; long pfrkts_tzero; int pfrkts_cnt; int pfrkts_refcnt[PFR_REFCNT_MAX]; }; #endif /* _KERNEL */ #define pfrts_name pfrts_t.pfrt_name #define pfrts_flags pfrts_t.pfrt_flags #ifndef _SOCKADDR_UNION_DEFINED #define _SOCKADDR_UNION_DEFINED union sockaddr_union { struct sockaddr sa; struct sockaddr_in sin; struct sockaddr_in6 sin6; }; #endif /* _SOCKADDR_UNION_DEFINED */ struct pfr_kcounters { counter_u64_t pfrkc_counters; long pfrkc_tzero; }; #define pfr_kentry_counter(kc, dir, op, t) \ ((kc)->pfrkc_counters + \ (dir) * PFR_OP_ADDR_MAX * PFR_TYPE_MAX + (op) * PFR_TYPE_MAX + (t)) #ifdef _KERNEL SLIST_HEAD(pfr_kentryworkq, pfr_kentry); struct pfr_kentry { struct radix_node pfrke_node[2]; union sockaddr_union pfrke_sa; SLIST_ENTRY(pfr_kentry) pfrke_workq; struct pfr_kcounters pfrke_counters; u_int8_t pfrke_af; u_int8_t pfrke_net; u_int8_t pfrke_not; u_int8_t pfrke_mark; }; SLIST_HEAD(pfr_ktableworkq, pfr_ktable); RB_HEAD(pfr_ktablehead, pfr_ktable); struct pfr_ktable { struct pfr_ktstats pfrkt_kts; RB_ENTRY(pfr_ktable) pfrkt_tree; SLIST_ENTRY(pfr_ktable) pfrkt_workq; struct radix_node_head *pfrkt_ip4; struct radix_node_head *pfrkt_ip6; struct pfr_ktable *pfrkt_shadow; struct pfr_ktable *pfrkt_root; struct pf_kruleset *pfrkt_rs; long pfrkt_larg; int pfrkt_nflags; }; #define pfrkt_t pfrkt_kts.pfrts_t #define pfrkt_name pfrkt_t.pfrt_name #define pfrkt_anchor pfrkt_t.pfrt_anchor #define pfrkt_ruleset pfrkt_t.pfrt_ruleset #define pfrkt_flags pfrkt_t.pfrt_flags #define pfrkt_cnt pfrkt_kts.pfrkts_cnt #define pfrkt_refcnt pfrkt_kts.pfrkts_refcnt #define pfrkt_packets pfrkt_kts.pfrkts_packets #define pfrkt_bytes pfrkt_kts.pfrkts_bytes #define pfrkt_match pfrkt_kts.pfrkts_match #define pfrkt_nomatch pfrkt_kts.pfrkts_nomatch #define pfrkt_tzero pfrkt_kts.pfrkts_tzero #endif #ifdef _KERNEL struct pfi_kkif { char pfik_name[IFNAMSIZ]; union { RB_ENTRY(pfi_kkif) _pfik_tree; LIST_ENTRY(pfi_kkif) _pfik_list; } _pfik_glue; #define pfik_tree _pfik_glue._pfik_tree #define pfik_list _pfik_glue._pfik_list struct pf_counter_u64 pfik_packets[2][2][2]; struct pf_counter_u64 pfik_bytes[2][2][2]; u_int32_t pfik_tzero; u_int pfik_flags; struct ifnet *pfik_ifp; struct ifg_group *pfik_group; u_int pfik_rulerefs; TAILQ_HEAD(, pfi_dynaddr) pfik_dynaddrs; #ifdef PF_WANT_32_TO_64_COUNTER LIST_ENTRY(pfi_kkif) pfik_allkiflist; #endif }; #endif #define PFI_IFLAG_REFS 0x0001 /* has state references */ #define PFI_IFLAG_SKIP 0x0100 /* skip filtering on interface */ #ifdef _KERNEL struct pf_pdesc { struct { int done; uid_t uid; gid_t gid; } lookup; u_int64_t tot_len; /* Make Mickey money */ union pf_headers { struct tcphdr tcp; struct udphdr udp; struct icmp icmp; #ifdef INET6 struct icmp6_hdr icmp6; #endif /* INET6 */ char any[0]; } hdr; struct pf_krule *nat_rule; /* nat/rdr rule applied to packet */ struct pf_addr *src; /* src address */ struct pf_addr *dst; /* dst address */ u_int16_t *sport; u_int16_t *dport; struct pf_mtag *pf_mtag; struct pf_rule_actions act; u_int32_t p_len; /* total length of payload */ u_int16_t *ip_sum; u_int16_t *proto_sum; u_int16_t flags; /* Let SCRUB trigger behavior in * state code. Easier than tags */ #define PFDESC_TCP_NORM 0x0001 /* TCP shall be statefully scrubbed */ #define PFDESC_IP_REAS 0x0002 /* IP frags would've been reassembled */ sa_family_t af; u_int8_t proto; u_int8_t tos; u_int8_t dir; /* direction */ u_int8_t sidx; /* key index for source */ u_int8_t didx; /* key index for destination */ }; #endif /* flags for RDR options */ #define PF_DPORT_RANGE 0x01 /* Dest port uses range */ #define PF_RPORT_RANGE 0x02 /* RDR'ed port uses range */ /* UDP state enumeration */ #define PFUDPS_NO_TRAFFIC 0 #define PFUDPS_SINGLE 1 #define PFUDPS_MULTIPLE 2 #define PFUDPS_NSTATES 3 /* number of state levels */ #define PFUDPS_NAMES { \ "NO_TRAFFIC", \ "SINGLE", \ "MULTIPLE", \ NULL \ } /* Other protocol state enumeration */ #define PFOTHERS_NO_TRAFFIC 0 #define PFOTHERS_SINGLE 1 #define PFOTHERS_MULTIPLE 2 #define PFOTHERS_NSTATES 3 /* number of state levels */ #define PFOTHERS_NAMES { \ "NO_TRAFFIC", \ "SINGLE", \ "MULTIPLE", \ NULL \ } #define ACTION_SET(a, x) \ do { \ if ((a) != NULL) \ *(a) = (x); \ } while (0) #define REASON_SET(a, x) \ do { \ if ((a) != NULL) \ *(a) = (x); \ if (x < PFRES_MAX) \ counter_u64_add(V_pf_status.counters[x], 1); \ } while (0) enum pf_syncookies_mode { PF_SYNCOOKIES_NEVER = 0, PF_SYNCOOKIES_ALWAYS = 1, PF_SYNCOOKIES_MODE_MAX = PF_SYNCOOKIES_ALWAYS }; #ifdef _KERNEL struct pf_kstatus { counter_u64_t counters[PFRES_MAX]; /* reason for passing/dropping */ counter_u64_t lcounters[KLCNT_MAX]; /* limit counters */ struct pf_counter_u64 fcounters[FCNT_MAX]; /* state operation counters */ counter_u64_t scounters[SCNT_MAX]; /* src_node operation counters */ uint32_t states; uint32_t src_nodes; uint32_t running; uint32_t since; uint32_t debug; uint32_t hostid; char ifname[IFNAMSIZ]; uint8_t pf_chksum[PF_MD5_DIGEST_LENGTH]; bool keep_counters; enum pf_syncookies_mode syncookies_mode; bool syncookies_active; }; #endif struct pf_divert { union { struct in_addr ipv4; struct in6_addr ipv6; } addr; u_int16_t port; }; #define PFFRAG_FRENT_HIWAT 5000 /* Number of fragment entries */ #define PFR_KENTRY_HIWAT 200000 /* Number of table entries */ /* * Limit the length of the fragment queue traversal. Remember * search entry points based on the fragment offset. */ #define PF_FRAG_ENTRY_POINTS 16 /* * The number of entries in the fragment queue must be limited * to avoid DoS by linear seaching. Instead of a global limit, * use a limit per entry point. For large packets these sum up. */ #define PF_FRAG_ENTRY_LIMIT 64 /* * ioctl parameter structures */ struct pfioc_pooladdr { u_int32_t action; u_int32_t ticket; u_int32_t nr; u_int32_t r_num; u_int8_t r_action; u_int8_t r_last; u_int8_t af; char anchor[MAXPATHLEN]; struct pf_pooladdr addr; }; struct pfioc_rule { u_int32_t action; u_int32_t ticket; u_int32_t pool_ticket; u_int32_t nr; char anchor[MAXPATHLEN]; char anchor_call[MAXPATHLEN]; struct pf_rule rule; }; struct pfioc_natlook { struct pf_addr saddr; struct pf_addr daddr; struct pf_addr rsaddr; struct pf_addr rdaddr; u_int16_t sport; u_int16_t dport; u_int16_t rsport; u_int16_t rdport; sa_family_t af; u_int8_t proto; u_int8_t direction; }; struct pfioc_state { struct pfsync_state state; }; struct pfioc_src_node_kill { sa_family_t psnk_af; struct pf_rule_addr psnk_src; struct pf_rule_addr psnk_dst; u_int psnk_killed; }; #ifdef _KERNEL struct pf_kstate_kill { struct pf_state_cmp psk_pfcmp; sa_family_t psk_af; int psk_proto; struct pf_rule_addr psk_src; struct pf_rule_addr psk_dst; struct pf_rule_addr psk_rt_addr; char psk_ifname[IFNAMSIZ]; char psk_label[PF_RULE_LABEL_SIZE]; u_int psk_killed; bool psk_kill_match; }; #endif struct pfioc_state_kill { struct pf_state_cmp psk_pfcmp; sa_family_t psk_af; int psk_proto; struct pf_rule_addr psk_src; struct pf_rule_addr psk_dst; char psk_ifname[IFNAMSIZ]; char psk_label[PF_RULE_LABEL_SIZE]; u_int psk_killed; }; struct pfioc_states { int ps_len; union { caddr_t psu_buf; struct pfsync_state *psu_states; } ps_u; #define ps_buf ps_u.psu_buf #define ps_states ps_u.psu_states }; struct pfioc_states_v2 { int ps_len; uint64_t ps_req_version; union { caddr_t psu_buf; struct pf_state_export *psu_states; } ps_u; #define ps_buf ps_u.psu_buf #define ps_states ps_u.psu_states }; struct pfioc_src_nodes { int psn_len; union { caddr_t psu_buf; struct pf_src_node *psu_src_nodes; } psn_u; #define psn_buf psn_u.psu_buf #define psn_src_nodes psn_u.psu_src_nodes }; struct pfioc_if { char ifname[IFNAMSIZ]; }; struct pfioc_tm { int timeout; int seconds; }; struct pfioc_limit { int index; unsigned limit; }; struct pfioc_altq_v0 { u_int32_t action; u_int32_t ticket; u_int32_t nr; struct pf_altq_v0 altq; }; struct pfioc_altq_v1 { u_int32_t action; u_int32_t ticket; u_int32_t nr; /* * Placed here so code that only uses the above parameters can be * written entirely in terms of the v0 or v1 type. */ u_int32_t version; struct pf_altq_v1 altq; }; /* * Latest version of struct pfioc_altq_vX. This must move in lock-step with * the latest version of struct pf_altq_vX as it has that struct as a * member. */ #define PFIOC_ALTQ_VERSION PF_ALTQ_VERSION struct pfioc_qstats_v0 { u_int32_t ticket; u_int32_t nr; void *buf; int nbytes; u_int8_t scheduler; }; struct pfioc_qstats_v1 { u_int32_t ticket; u_int32_t nr; void *buf; int nbytes; u_int8_t scheduler; /* * Placed here so code that only uses the above parameters can be * written entirely in terms of the v0 or v1 type. */ u_int32_t version; /* Requested version of stats struct */ }; /* Latest version of struct pfioc_qstats_vX */ #define PFIOC_QSTATS_VERSION 1 struct pfioc_ruleset { u_int32_t nr; char path[MAXPATHLEN]; char name[PF_ANCHOR_NAME_SIZE]; }; #define PF_RULESET_ALTQ (PF_RULESET_MAX) #define PF_RULESET_TABLE (PF_RULESET_MAX+1) struct pfioc_trans { int size; /* number of elements */ int esize; /* size of each element in bytes */ struct pfioc_trans_e { int rs_num; char anchor[MAXPATHLEN]; u_int32_t ticket; } *array; }; #define PFR_FLAG_ATOMIC 0x00000001 /* unused */ #define PFR_FLAG_DUMMY 0x00000002 #define PFR_FLAG_FEEDBACK 0x00000004 #define PFR_FLAG_CLSTATS 0x00000008 #define PFR_FLAG_ADDRSTOO 0x00000010 #define PFR_FLAG_REPLACE 0x00000020 #define PFR_FLAG_ALLRSETS 0x00000040 #define PFR_FLAG_ALLMASK 0x0000007F #ifdef _KERNEL #define PFR_FLAG_USERIOCTL 0x10000000 #endif struct pfioc_table { struct pfr_table pfrio_table; void *pfrio_buffer; int pfrio_esize; int pfrio_size; int pfrio_size2; int pfrio_nadd; int pfrio_ndel; int pfrio_nchange; int pfrio_flags; u_int32_t pfrio_ticket; }; #define pfrio_exists pfrio_nadd #define pfrio_nzero pfrio_nadd #define pfrio_nmatch pfrio_nadd #define pfrio_naddr pfrio_size2 #define pfrio_setflag pfrio_size2 #define pfrio_clrflag pfrio_nadd struct pfioc_iface { char pfiio_name[IFNAMSIZ]; void *pfiio_buffer; int pfiio_esize; int pfiio_size; int pfiio_nzero; int pfiio_flags; }; /* * ioctl operations */ #define DIOCSTART _IO ('D', 1) #define DIOCSTOP _IO ('D', 2) #define DIOCADDRULE _IOWR('D', 4, struct pfioc_rule) #define DIOCADDRULENV _IOWR('D', 4, struct pfioc_nv) #define DIOCGETRULES _IOWR('D', 6, struct pfioc_rule) #define DIOCGETRULE _IOWR('D', 7, struct pfioc_rule) #define DIOCGETRULENV _IOWR('D', 7, struct pfioc_nv) /* XXX cut 8 - 17 */ #define DIOCCLRSTATES _IOWR('D', 18, struct pfioc_state_kill) #define DIOCCLRSTATESNV _IOWR('D', 18, struct pfioc_nv) #define DIOCGETSTATE _IOWR('D', 19, struct pfioc_state) #define DIOCGETSTATENV _IOWR('D', 19, struct pfioc_nv) #define DIOCSETSTATUSIF _IOWR('D', 20, struct pfioc_if) #define DIOCGETSTATUS _IOWR('D', 21, struct pf_status) #define DIOCGETSTATUSNV _IOWR('D', 21, struct pfioc_nv) #define DIOCCLRSTATUS _IO ('D', 22) #define DIOCNATLOOK _IOWR('D', 23, struct pfioc_natlook) #define DIOCSETDEBUG _IOWR('D', 24, u_int32_t) #define DIOCGETSTATES _IOWR('D', 25, struct pfioc_states) #define DIOCCHANGERULE _IOWR('D', 26, struct pfioc_rule) /* XXX cut 26 - 28 */ #define DIOCSETTIMEOUT _IOWR('D', 29, struct pfioc_tm) #define DIOCGETTIMEOUT _IOWR('D', 30, struct pfioc_tm) #define DIOCADDSTATE _IOWR('D', 37, struct pfioc_state) #define DIOCCLRRULECTRS _IO ('D', 38) #define DIOCGETLIMIT _IOWR('D', 39, struct pfioc_limit) #define DIOCSETLIMIT _IOWR('D', 40, struct pfioc_limit) #define DIOCKILLSTATES _IOWR('D', 41, struct pfioc_state_kill) #define DIOCKILLSTATESNV _IOWR('D', 41, struct pfioc_nv) #define DIOCSTARTALTQ _IO ('D', 42) #define DIOCSTOPALTQ _IO ('D', 43) #define DIOCADDALTQV0 _IOWR('D', 45, struct pfioc_altq_v0) #define DIOCADDALTQV1 _IOWR('D', 45, struct pfioc_altq_v1) #define DIOCGETALTQSV0 _IOWR('D', 47, struct pfioc_altq_v0) #define DIOCGETALTQSV1 _IOWR('D', 47, struct pfioc_altq_v1) #define DIOCGETALTQV0 _IOWR('D', 48, struct pfioc_altq_v0) #define DIOCGETALTQV1 _IOWR('D', 48, struct pfioc_altq_v1) #define DIOCCHANGEALTQV0 _IOWR('D', 49, struct pfioc_altq_v0) #define DIOCCHANGEALTQV1 _IOWR('D', 49, struct pfioc_altq_v1) #define DIOCGETQSTATSV0 _IOWR('D', 50, struct pfioc_qstats_v0) #define DIOCGETQSTATSV1 _IOWR('D', 50, struct pfioc_qstats_v1) #define DIOCBEGINADDRS _IOWR('D', 51, struct pfioc_pooladdr) #define DIOCADDADDR _IOWR('D', 52, struct pfioc_pooladdr) #define DIOCGETADDRS _IOWR('D', 53, struct pfioc_pooladdr) #define DIOCGETADDR _IOWR('D', 54, struct pfioc_pooladdr) #define DIOCCHANGEADDR _IOWR('D', 55, struct pfioc_pooladdr) /* XXX cut 55 - 57 */ #define DIOCGETRULESETS _IOWR('D', 58, struct pfioc_ruleset) #define DIOCGETRULESET _IOWR('D', 59, struct pfioc_ruleset) #define DIOCRCLRTABLES _IOWR('D', 60, struct pfioc_table) #define DIOCRADDTABLES _IOWR('D', 61, struct pfioc_table) #define DIOCRDELTABLES _IOWR('D', 62, struct pfioc_table) #define DIOCRGETTABLES _IOWR('D', 63, struct pfioc_table) #define DIOCRGETTSTATS _IOWR('D', 64, struct pfioc_table) #define DIOCRCLRTSTATS _IOWR('D', 65, struct pfioc_table) #define DIOCRCLRADDRS _IOWR('D', 66, struct pfioc_table) #define DIOCRADDADDRS _IOWR('D', 67, struct pfioc_table) #define DIOCRDELADDRS _IOWR('D', 68, struct pfioc_table) #define DIOCRSETADDRS _IOWR('D', 69, struct pfioc_table) #define DIOCRGETADDRS _IOWR('D', 70, struct pfioc_table) #define DIOCRGETASTATS _IOWR('D', 71, struct pfioc_table) #define DIOCRCLRASTATS _IOWR('D', 72, struct pfioc_table) #define DIOCRTSTADDRS _IOWR('D', 73, struct pfioc_table) #define DIOCRSETTFLAGS _IOWR('D', 74, struct pfioc_table) #define DIOCRINADEFINE _IOWR('D', 77, struct pfioc_table) #define DIOCOSFPFLUSH _IO('D', 78) #define DIOCOSFPADD _IOWR('D', 79, struct pf_osfp_ioctl) #define DIOCOSFPGET _IOWR('D', 80, struct pf_osfp_ioctl) #define DIOCXBEGIN _IOWR('D', 81, struct pfioc_trans) #define DIOCXCOMMIT _IOWR('D', 82, struct pfioc_trans) #define DIOCXROLLBACK _IOWR('D', 83, struct pfioc_trans) #define DIOCGETSRCNODES _IOWR('D', 84, struct pfioc_src_nodes) #define DIOCCLRSRCNODES _IO('D', 85) #define DIOCSETHOSTID _IOWR('D', 86, u_int32_t) #define DIOCIGETIFACES _IOWR('D', 87, struct pfioc_iface) #define DIOCSETIFFLAG _IOWR('D', 89, struct pfioc_iface) #define DIOCCLRIFFLAG _IOWR('D', 90, struct pfioc_iface) #define DIOCKILLSRCNODES _IOWR('D', 91, struct pfioc_src_node_kill) #define DIOCKEEPCOUNTERS _IOWR('D', 92, struct pfioc_nv) #define DIOCGETSTATESV2 _IOWR('D', 93, struct pfioc_states_v2) #define DIOCGETSYNCOOKIES _IOWR('D', 94, struct pfioc_nv) #define DIOCSETSYNCOOKIES _IOWR('D', 95, struct pfioc_nv) struct pf_ifspeed_v0 { char ifname[IFNAMSIZ]; u_int32_t baudrate; }; struct pf_ifspeed_v1 { char ifname[IFNAMSIZ]; u_int32_t baudrate32; /* layout identical to struct pf_ifspeed_v0 up to this point */ u_int64_t baudrate; }; /* Latest version of struct pf_ifspeed_vX */ #define PF_IFSPEED_VERSION 1 #define DIOCGIFSPEEDV0 _IOWR('D', 92, struct pf_ifspeed_v0) #define DIOCGIFSPEEDV1 _IOWR('D', 92, struct pf_ifspeed_v1) /* * Compatibility and convenience macros */ #ifndef _KERNEL #ifdef PFIOC_USE_LATEST /* * Maintaining in-tree consumers of the ioctl interface is easier when that * code can be written in terms old names that refer to the latest interface * version as that reduces the required changes in the consumers to those * that are functionally necessary to accommodate a new interface version. */ #define pfioc_altq __CONCAT(pfioc_altq_v, PFIOC_ALTQ_VERSION) #define pfioc_qstats __CONCAT(pfioc_qstats_v, PFIOC_QSTATS_VERSION) #define pf_ifspeed __CONCAT(pf_ifspeed_v, PF_IFSPEED_VERSION) #define DIOCADDALTQ __CONCAT(DIOCADDALTQV, PFIOC_ALTQ_VERSION) #define DIOCGETALTQS __CONCAT(DIOCGETALTQSV, PFIOC_ALTQ_VERSION) #define DIOCGETALTQ __CONCAT(DIOCGETALTQV, PFIOC_ALTQ_VERSION) #define DIOCCHANGEALTQ __CONCAT(DIOCCHANGEALTQV, PFIOC_ALTQ_VERSION) #define DIOCGETQSTATS __CONCAT(DIOCGETQSTATSV, PFIOC_QSTATS_VERSION) #define DIOCGIFSPEED __CONCAT(DIOCGIFSPEEDV, PF_IFSPEED_VERSION) #else /* * When building out-of-tree code that is written for the old interface, * such as may exist in ports for example, resolve the old struct tags and * ioctl command names to the v0 versions. */ #define pfioc_altq __CONCAT(pfioc_altq_v, 0) #define pfioc_qstats __CONCAT(pfioc_qstats_v, 0) #define pf_ifspeed __CONCAT(pf_ifspeed_v, 0) #define DIOCADDALTQ __CONCAT(DIOCADDALTQV, 0) #define DIOCGETALTQS __CONCAT(DIOCGETALTQSV, 0) #define DIOCGETALTQ __CONCAT(DIOCGETALTQV, 0) #define DIOCCHANGEALTQ __CONCAT(DIOCCHANGEALTQV, 0) #define DIOCGETQSTATS __CONCAT(DIOCGETQSTATSV, 0) #define DIOCGIFSPEED __CONCAT(DIOCGIFSPEEDV, 0) #endif /* PFIOC_USE_LATEST */ #endif /* _KERNEL */ #ifdef _KERNEL LIST_HEAD(pf_ksrc_node_list, pf_ksrc_node); struct pf_srchash { struct pf_ksrc_node_list nodes; struct mtx lock; }; struct pf_keyhash { LIST_HEAD(, pf_state_key) keys; struct mtx lock; }; struct pf_idhash { LIST_HEAD(, pf_kstate) states; struct mtx lock; }; extern u_long pf_ioctl_maxcount; extern u_long pf_hashmask; extern u_long pf_srchashmask; #define PF_HASHSIZ (131072) #define PF_SRCHASHSIZ (PF_HASHSIZ/4) VNET_DECLARE(struct pf_keyhash *, pf_keyhash); VNET_DECLARE(struct pf_idhash *, pf_idhash); #define V_pf_keyhash VNET(pf_keyhash) #define V_pf_idhash VNET(pf_idhash) VNET_DECLARE(struct pf_srchash *, pf_srchash); #define V_pf_srchash VNET(pf_srchash) #define PF_IDHASH(s) (be64toh((s)->id) % (pf_hashmask + 1)) VNET_DECLARE(void *, pf_swi_cookie); #define V_pf_swi_cookie VNET(pf_swi_cookie) VNET_DECLARE(struct intr_event *, pf_swi_ie); #define V_pf_swi_ie VNET(pf_swi_ie) VNET_DECLARE(uint64_t, pf_stateid[MAXCPU]); #define V_pf_stateid VNET(pf_stateid) TAILQ_HEAD(pf_altqqueue, pf_altq); VNET_DECLARE(struct pf_altqqueue, pf_altqs[4]); #define V_pf_altqs VNET(pf_altqs) VNET_DECLARE(struct pf_kpalist, pf_pabuf); #define V_pf_pabuf VNET(pf_pabuf) VNET_DECLARE(u_int32_t, ticket_altqs_active); #define V_ticket_altqs_active VNET(ticket_altqs_active) VNET_DECLARE(u_int32_t, ticket_altqs_inactive); #define V_ticket_altqs_inactive VNET(ticket_altqs_inactive) VNET_DECLARE(int, altqs_inactive_open); #define V_altqs_inactive_open VNET(altqs_inactive_open) VNET_DECLARE(u_int32_t, ticket_pabuf); #define V_ticket_pabuf VNET(ticket_pabuf) VNET_DECLARE(struct pf_altqqueue *, pf_altqs_active); #define V_pf_altqs_active VNET(pf_altqs_active) VNET_DECLARE(struct pf_altqqueue *, pf_altq_ifs_active); #define V_pf_altq_ifs_active VNET(pf_altq_ifs_active) VNET_DECLARE(struct pf_altqqueue *, pf_altqs_inactive); #define V_pf_altqs_inactive VNET(pf_altqs_inactive) VNET_DECLARE(struct pf_altqqueue *, pf_altq_ifs_inactive); #define V_pf_altq_ifs_inactive VNET(pf_altq_ifs_inactive) VNET_DECLARE(struct pf_krulequeue, pf_unlinked_rules); #define V_pf_unlinked_rules VNET(pf_unlinked_rules) #ifdef PF_WANT_32_TO_64_COUNTER LIST_HEAD(allkiflist_head, pfi_kkif); VNET_DECLARE(struct allkiflist_head, pf_allkiflist); #define V_pf_allkiflist VNET(pf_allkiflist) VNET_DECLARE(size_t, pf_allkifcount); #define V_pf_allkifcount VNET(pf_allkifcount) VNET_DECLARE(struct pfi_kkif *, pf_kifmarker); #define V_pf_kifmarker VNET(pf_kifmarker) LIST_HEAD(allrulelist_head, pf_krule); VNET_DECLARE(struct allrulelist_head, pf_allrulelist); #define V_pf_allrulelist VNET(pf_allrulelist) VNET_DECLARE(size_t, pf_allrulecount); #define V_pf_allrulecount VNET(pf_allrulecount) VNET_DECLARE(struct pf_krule *, pf_rulemarker); #define V_pf_rulemarker VNET(pf_rulemarker) #endif void pf_initialize(void); void pf_mtag_initialize(void); void pf_mtag_cleanup(void); void pf_cleanup(void); struct pf_mtag *pf_get_mtag(struct mbuf *); extern void pf_calc_skip_steps(struct pf_krulequeue *); #ifdef ALTQ extern void pf_altq_ifnet_event(struct ifnet *, int); #endif VNET_DECLARE(uma_zone_t, pf_state_z); #define V_pf_state_z VNET(pf_state_z) VNET_DECLARE(uma_zone_t, pf_state_key_z); #define V_pf_state_key_z VNET(pf_state_key_z) VNET_DECLARE(uma_zone_t, pf_state_scrub_z); #define V_pf_state_scrub_z VNET(pf_state_scrub_z) extern void pf_purge_thread(void *); extern void pf_unload_vnet_purge(void); extern void pf_intr(void *); extern void pf_purge_expired_src_nodes(void); extern int pf_unlink_state(struct pf_kstate *, u_int); #define PF_ENTER_LOCKED 0x00000001 #define PF_RETURN_LOCKED 0x00000002 extern int pf_state_insert(struct pfi_kkif *, struct pfi_kkif *, struct pf_state_key *, struct pf_state_key *, struct pf_kstate *); extern struct pf_kstate *pf_alloc_state(int); extern void pf_free_state(struct pf_kstate *); static __inline void pf_ref_state(struct pf_kstate *s) { refcount_acquire(&s->refs); } static __inline int pf_release_state(struct pf_kstate *s) { if (refcount_release(&s->refs)) { pf_free_state(s); return (1); } else return (0); } static __inline int pf_release_staten(struct pf_kstate *s, u_int n) { if (refcount_releasen(&s->refs, n)) { pf_free_state(s); return (1); } else return (0); } extern struct pf_kstate *pf_find_state_byid(uint64_t, uint32_t); extern struct pf_kstate *pf_find_state_all(struct pf_state_key_cmp *, u_int, int *); extern bool pf_find_state_all_exists(struct pf_state_key_cmp *, u_int); extern struct pf_ksrc_node *pf_find_src_node(struct pf_addr *, struct pf_krule *, sa_family_t, int); extern void pf_unlink_src_node(struct pf_ksrc_node *); extern u_int pf_free_src_nodes(struct pf_ksrc_node_list *); extern void pf_print_state(struct pf_kstate *); extern void pf_print_flags(u_int8_t); extern u_int16_t pf_cksum_fixup(u_int16_t, u_int16_t, u_int16_t, u_int8_t); extern u_int16_t pf_proto_cksum_fixup(struct mbuf *, u_int16_t, u_int16_t, u_int16_t, u_int8_t); VNET_DECLARE(struct ifnet *, sync_ifp); #define V_sync_ifp VNET(sync_ifp); VNET_DECLARE(struct pf_krule, pf_default_rule); #define V_pf_default_rule VNET(pf_default_rule) extern void pf_addrcpy(struct pf_addr *, struct pf_addr *, u_int8_t); void pf_free_rule(struct pf_krule *); #ifdef INET int pf_test(int, int, struct ifnet *, struct mbuf **, struct inpcb *); int pf_normalize_ip(struct mbuf **, int, struct pfi_kkif *, u_short *, struct pf_pdesc *); #endif /* INET */ #ifdef INET6 int pf_test6(int, int, struct ifnet *, struct mbuf **, struct inpcb *); int pf_normalize_ip6(struct mbuf **, int, struct pfi_kkif *, u_short *, struct pf_pdesc *); void pf_poolmask(struct pf_addr *, struct pf_addr*, struct pf_addr *, struct pf_addr *, u_int8_t); void pf_addr_inc(struct pf_addr *, sa_family_t); int pf_refragment6(struct ifnet *, struct mbuf **, struct m_tag *); #endif /* INET6 */ u_int32_t pf_new_isn(struct pf_kstate *); void *pf_pull_hdr(struct mbuf *, int, void *, int, u_short *, u_short *, sa_family_t); void pf_change_a(void *, u_int16_t *, u_int32_t, u_int8_t); void pf_change_proto_a(struct mbuf *, void *, u_int16_t *, u_int32_t, u_int8_t); void pf_change_tcp_a(struct mbuf *, void *, u_int16_t *, u_int32_t); void pf_patch_16_unaligned(struct mbuf *, u_int16_t *, void *, u_int16_t, bool, u_int8_t); void pf_patch_32_unaligned(struct mbuf *, u_int16_t *, void *, u_int32_t, bool, u_int8_t); void pf_send_deferred_syn(struct pf_kstate *); int pf_match_addr(u_int8_t, struct pf_addr *, struct pf_addr *, struct pf_addr *, sa_family_t); int pf_match_addr_range(struct pf_addr *, struct pf_addr *, struct pf_addr *, sa_family_t); int pf_match_port(u_int8_t, u_int16_t, u_int16_t, u_int16_t); void pf_normalize_init(void); void pf_normalize_cleanup(void); int pf_normalize_tcp(int, struct pfi_kkif *, struct mbuf *, int, int, void *, struct pf_pdesc *); void pf_normalize_tcp_cleanup(struct pf_kstate *); int pf_normalize_tcp_init(struct mbuf *, int, struct pf_pdesc *, struct tcphdr *, struct pf_state_peer *, struct pf_state_peer *); int pf_normalize_tcp_stateful(struct mbuf *, int, struct pf_pdesc *, u_short *, struct tcphdr *, struct pf_kstate *, struct pf_state_peer *, struct pf_state_peer *, int *); u_int32_t pf_state_expires(const struct pf_kstate *); void pf_purge_expired_fragments(void); void pf_purge_fragments(uint32_t); int pf_routable(struct pf_addr *addr, sa_family_t af, struct pfi_kkif *, int); int pf_socket_lookup(int, struct pf_pdesc *, struct mbuf *); struct pf_state_key *pf_alloc_state_key(int); void pfr_initialize(void); void pfr_cleanup(void); int pfr_match_addr(struct pfr_ktable *, struct pf_addr *, sa_family_t); void pfr_update_stats(struct pfr_ktable *, struct pf_addr *, sa_family_t, u_int64_t, int, int, int); int pfr_pool_get(struct pfr_ktable *, int *, struct pf_addr *, sa_family_t); void pfr_dynaddr_update(struct pfr_ktable *, struct pfi_dynaddr *); struct pfr_ktable * pfr_attach_table(struct pf_kruleset *, char *); void pfr_detach_table(struct pfr_ktable *); int pfr_clr_tables(struct pfr_table *, int *, int); int pfr_add_tables(struct pfr_table *, int, int *, int); int pfr_del_tables(struct pfr_table *, int, int *, int); int pfr_table_count(struct pfr_table *, int); int pfr_get_tables(struct pfr_table *, struct pfr_table *, int *, int); int pfr_get_tstats(struct pfr_table *, struct pfr_tstats *, int *, int); int pfr_clr_tstats(struct pfr_table *, int, int *, int); int pfr_set_tflags(struct pfr_table *, int, int, int, int *, int *, int); int pfr_clr_addrs(struct pfr_table *, int *, int); int pfr_insert_kentry(struct pfr_ktable *, struct pfr_addr *, long); int pfr_add_addrs(struct pfr_table *, struct pfr_addr *, int, int *, int); int pfr_del_addrs(struct pfr_table *, struct pfr_addr *, int, int *, int); int pfr_set_addrs(struct pfr_table *, struct pfr_addr *, int, int *, int *, int *, int *, int, u_int32_t); int pfr_get_addrs(struct pfr_table *, struct pfr_addr *, int *, int); int pfr_get_astats(struct pfr_table *, struct pfr_astats *, int *, int); int pfr_clr_astats(struct pfr_table *, struct pfr_addr *, int, int *, int); int pfr_tst_addrs(struct pfr_table *, struct pfr_addr *, int, int *, int); int pfr_ina_begin(struct pfr_table *, u_int32_t *, int *, int); int pfr_ina_rollback(struct pfr_table *, u_int32_t, int *, int); int pfr_ina_commit(struct pfr_table *, u_int32_t, int *, int *, int); int pfr_ina_define(struct pfr_table *, struct pfr_addr *, int, int *, int *, u_int32_t, int); MALLOC_DECLARE(PFI_MTYPE); VNET_DECLARE(struct pfi_kkif *, pfi_all); #define V_pfi_all VNET(pfi_all) void pfi_initialize(void); void pfi_initialize_vnet(void); void pfi_cleanup(void); void pfi_cleanup_vnet(void); void pfi_kkif_ref(struct pfi_kkif *); void pfi_kkif_unref(struct pfi_kkif *); struct pfi_kkif *pfi_kkif_find(const char *); struct pfi_kkif *pfi_kkif_attach(struct pfi_kkif *, const char *); int pfi_kkif_match(struct pfi_kkif *, struct pfi_kkif *); void pfi_kkif_purge(void); int pfi_match_addr(struct pfi_dynaddr *, struct pf_addr *, sa_family_t); int pfi_dynaddr_setup(struct pf_addr_wrap *, sa_family_t); void pfi_dynaddr_remove(struct pfi_dynaddr *); void pfi_dynaddr_copyout(struct pf_addr_wrap *); void pfi_update_status(const char *, struct pf_status *); void pfi_get_ifaces(const char *, struct pfi_kif *, int *); int pfi_set_flags(const char *, int); int pfi_clear_flags(const char *, int); int pf_match_tag(struct mbuf *, struct pf_krule *, int *, int); int pf_tag_packet(struct mbuf *, struct pf_pdesc *, int); int pf_addr_cmp(struct pf_addr *, struct pf_addr *, sa_family_t); u_int16_t pf_get_mss(struct mbuf *, int, u_int16_t, sa_family_t); u_int8_t pf_get_wscale(struct mbuf *, int, u_int16_t, sa_family_t); struct mbuf *pf_build_tcp(const struct pf_krule *, sa_family_t, const struct pf_addr *, const struct pf_addr *, u_int16_t, u_int16_t, u_int32_t, u_int32_t, u_int8_t, u_int16_t, u_int16_t, u_int8_t, int, u_int16_t); void pf_send_tcp(const struct pf_krule *, sa_family_t, const struct pf_addr *, const struct pf_addr *, u_int16_t, u_int16_t, u_int32_t, u_int32_t, u_int8_t, u_int16_t, u_int16_t, u_int8_t, int, u_int16_t); void pf_syncookies_init(void); void pf_syncookies_cleanup(void); int pf_get_syncookies(struct pfioc_nv *); int pf_set_syncookies(struct pfioc_nv *); int pf_synflood_check(struct pf_pdesc *); void pf_syncookie_send(struct mbuf *m, int off, struct pf_pdesc *); u_int8_t pf_syncookie_validate(struct pf_pdesc *); struct mbuf * pf_syncookie_recreate_syn(uint8_t, int, struct pf_pdesc *); VNET_DECLARE(struct pf_kstatus, pf_status); #define V_pf_status VNET(pf_status) struct pf_limit { uma_zone_t zone; u_int limit; }; VNET_DECLARE(struct pf_limit, pf_limits[PF_LIMIT_MAX]); #define V_pf_limits VNET(pf_limits) #endif /* _KERNEL */ #ifdef _KERNEL VNET_DECLARE(struct pf_kanchor_global, pf_anchors); #define V_pf_anchors VNET(pf_anchors) VNET_DECLARE(struct pf_kanchor, pf_main_anchor); #define V_pf_main_anchor VNET(pf_main_anchor) #define pf_main_ruleset V_pf_main_anchor.ruleset void pf_init_kruleset(struct pf_kruleset *); int pf_kanchor_setup(struct pf_krule *, const struct pf_kruleset *, const char *); int pf_kanchor_nvcopyout(const struct pf_kruleset *, const struct pf_krule *, nvlist_t *); int pf_kanchor_copyout(const struct pf_kruleset *, const struct pf_krule *, struct pfioc_rule *); void pf_kanchor_remove(struct pf_krule *); void pf_remove_if_empty_kruleset(struct pf_kruleset *); struct pf_kruleset *pf_find_kruleset(const char *); struct pf_kruleset *pf_find_or_create_kruleset(const char *); void pf_rs_initialize(void); void pf_krule_free(struct pf_krule *); #endif /* The fingerprint functions can be linked into userland programs (tcpdump) */ int pf_osfp_add(struct pf_osfp_ioctl *); #ifdef _KERNEL struct pf_osfp_enlist * pf_osfp_fingerprint(struct pf_pdesc *, struct mbuf *, int, const struct tcphdr *); #endif /* _KERNEL */ void pf_osfp_flush(void); int pf_osfp_get(struct pf_osfp_ioctl *); int pf_osfp_match(struct pf_osfp_enlist *, pf_osfp_t); #ifdef _KERNEL void pf_print_host(struct pf_addr *, u_int16_t, u_int8_t); void pf_step_into_anchor(struct pf_kanchor_stackframe *, int *, struct pf_kruleset **, int, struct pf_krule **, struct pf_krule **, int *); int pf_step_out_of_anchor(struct pf_kanchor_stackframe *, int *, struct pf_kruleset **, int, struct pf_krule **, struct pf_krule **, int *); int pf_map_addr(u_int8_t, struct pf_krule *, struct pf_addr *, struct pf_addr *, struct pf_addr *, struct pf_ksrc_node **); struct pf_krule *pf_get_translation(struct pf_pdesc *, struct mbuf *, int, int, struct pfi_kkif *, struct pf_ksrc_node **, struct pf_state_key **, struct pf_state_key **, struct pf_addr *, struct pf_addr *, uint16_t, uint16_t, struct pf_kanchor_stackframe *); struct pf_state_key *pf_state_key_setup(struct pf_pdesc *, struct pf_addr *, struct pf_addr *, u_int16_t, u_int16_t); struct pf_state_key *pf_state_key_clone(struct pf_state_key *); struct pfi_kkif *pf_kkif_create(int); void pf_kkif_free(struct pfi_kkif *); void pf_kkif_zero(struct pfi_kkif *); #endif /* _KERNEL */ #endif /* _NET_PFVAR_H_ */ diff --git a/sys/netpfil/ipfw/ip_dn_io.c b/sys/netpfil/ipfw/ip_dn_io.c index dad5cb087b39..11ad498505f4 100644 --- a/sys/netpfil/ipfw/ip_dn_io.c +++ b/sys/netpfil/ipfw/ip_dn_io.c @@ -1,968 +1,969 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2010 Luigi Rizzo, Riccardo Panicucci, Universita` di Pisa * All rights reserved * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. */ /* * Dummynet portions related to packet handling. */ #include __FBSDID("$FreeBSD$"); #include "opt_inet6.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include /* IFNAMSIZ, struct ifaddr, ifq head, lock.h mutex.h */ #include /* NET_EPOCH_... */ #include #include #include #include /* ip_len, ip_off */ #include /* ip_output(), IP_FORWARDING */ #include #include #include /* various ether_* routines */ #include /* for ip6_input, ip6_output prototypes */ #include #include #include #include #ifdef NEW_AQM #include #endif #include /* * We keep a private variable for the simulation time, but we could * probably use an existing one ("softticks" in sys/kern/kern_timeout.c) * instead of V_dn_cfg.curr_time */ VNET_DEFINE(struct dn_parms, dn_cfg); #define V_dn_cfg VNET(dn_cfg) /* * We use a heap to store entities for which we have pending timer events. * The heap is checked at every tick and all entities with expired events * are extracted. */ MALLOC_DEFINE(M_DUMMYNET, "dummynet", "dummynet heap"); extern void (*bridge_dn_p)(struct mbuf *, struct ifnet *); #ifdef SYSCTL_NODE /* * Because of the way the SYSBEGIN/SYSEND macros work on other * platforms, there should not be functions between them. * So keep the handlers outside the block. */ static int sysctl_hash_size(SYSCTL_HANDLER_ARGS) { int error, value; value = V_dn_cfg.hash_size; error = sysctl_handle_int(oidp, &value, 0, req); if (error != 0 || req->newptr == NULL) return (error); if (value < 16 || value > 65536) return (EINVAL); V_dn_cfg.hash_size = value; return (0); } static int sysctl_limits(SYSCTL_HANDLER_ARGS) { int error; long value; if (arg2 != 0) value = V_dn_cfg.slot_limit; else value = V_dn_cfg.byte_limit; error = sysctl_handle_long(oidp, &value, 0, req); if (error != 0 || req->newptr == NULL) return (error); if (arg2 != 0) { if (value < 1) return (EINVAL); V_dn_cfg.slot_limit = value; } else { if (value < 1500) return (EINVAL); V_dn_cfg.byte_limit = value; } return (0); } SYSBEGIN(f4) SYSCTL_DECL(_net_inet); SYSCTL_DECL(_net_inet_ip); #ifdef NEW_AQM SYSCTL_NODE(_net_inet_ip, OID_AUTO, dummynet, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "Dummynet"); #else static SYSCTL_NODE(_net_inet_ip, OID_AUTO, dummynet, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "Dummynet"); #endif /* wrapper to pass V_dn_cfg fields to SYSCTL_* */ #define DC(x) (&(VNET_NAME(dn_cfg).x)) /* parameters */ SYSCTL_PROC(_net_inet_ip_dummynet, OID_AUTO, hash_size, CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT, 0, 0, sysctl_hash_size, "I", "Default hash table size"); SYSCTL_PROC(_net_inet_ip_dummynet, OID_AUTO, pipe_slot_limit, CTLTYPE_LONG | CTLFLAG_RW | CTLFLAG_NEEDGIANT, 0, 1, sysctl_limits, "L", "Upper limit in slots for pipe queue."); SYSCTL_PROC(_net_inet_ip_dummynet, OID_AUTO, pipe_byte_limit, CTLTYPE_LONG | CTLFLAG_RW | CTLFLAG_NEEDGIANT, 0, 0, sysctl_limits, "L", "Upper limit in bytes for pipe queue."); SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, io_fast, CTLFLAG_RW | CTLFLAG_VNET, DC(io_fast), 0, "Enable fast dummynet io."); SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, debug, CTLFLAG_RW | CTLFLAG_VNET, DC(debug), 0, "Dummynet debug level"); /* RED parameters */ SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, red_lookup_depth, CTLFLAG_RD | CTLFLAG_VNET, DC(red_lookup_depth), 0, "Depth of RED lookup table"); SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, red_avg_pkt_size, CTLFLAG_RD | CTLFLAG_VNET, DC(red_avg_pkt_size), 0, "RED Medium packet size"); SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, red_max_pkt_size, CTLFLAG_RD | CTLFLAG_VNET, DC(red_max_pkt_size), 0, "RED Max packet size"); /* time adjustment */ SYSCTL_LONG(_net_inet_ip_dummynet, OID_AUTO, tick_delta, CTLFLAG_RD | CTLFLAG_VNET, DC(tick_delta), 0, "Last vs standard tick difference (usec)."); SYSCTL_LONG(_net_inet_ip_dummynet, OID_AUTO, tick_delta_sum, CTLFLAG_RD | CTLFLAG_VNET, DC(tick_delta_sum), 0, "Accumulated tick difference (usec)."); SYSCTL_LONG(_net_inet_ip_dummynet, OID_AUTO, tick_adjustment, CTLFLAG_RD | CTLFLAG_VNET, DC(tick_adjustment), 0, "Tick adjustments done."); SYSCTL_LONG(_net_inet_ip_dummynet, OID_AUTO, tick_diff, CTLFLAG_RD | CTLFLAG_VNET, DC(tick_diff), 0, "Adjusted vs non-adjusted curr_time difference (ticks)."); SYSCTL_LONG(_net_inet_ip_dummynet, OID_AUTO, tick_lost, CTLFLAG_RD | CTLFLAG_VNET, DC(tick_lost), 0, "Number of ticks coalesced by dummynet taskqueue."); /* Drain parameters */ SYSCTL_UINT(_net_inet_ip_dummynet, OID_AUTO, expire, CTLFLAG_RW | CTLFLAG_VNET, DC(expire), 0, "Expire empty queues/pipes"); SYSCTL_UINT(_net_inet_ip_dummynet, OID_AUTO, expire_cycle, CTLFLAG_RD | CTLFLAG_VNET, DC(expire_cycle), 0, "Expire cycle for queues/pipes"); /* statistics */ SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, schk_count, CTLFLAG_RD | CTLFLAG_VNET, DC(schk_count), 0, "Number of schedulers"); SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, si_count, CTLFLAG_RD | CTLFLAG_VNET, DC(si_count), 0, "Number of scheduler instances"); SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, fsk_count, CTLFLAG_RD | CTLFLAG_VNET, DC(fsk_count), 0, "Number of flowsets"); SYSCTL_INT(_net_inet_ip_dummynet, OID_AUTO, queue_count, CTLFLAG_RD | CTLFLAG_VNET, DC(queue_count), 0, "Number of queues"); SYSCTL_ULONG(_net_inet_ip_dummynet, OID_AUTO, io_pkt, CTLFLAG_RD | CTLFLAG_VNET, DC(io_pkt), 0, "Number of packets passed to dummynet."); SYSCTL_ULONG(_net_inet_ip_dummynet, OID_AUTO, io_pkt_fast, CTLFLAG_RD | CTLFLAG_VNET, DC(io_pkt_fast), 0, "Number of packets bypassed dummynet scheduler."); SYSCTL_ULONG(_net_inet_ip_dummynet, OID_AUTO, io_pkt_drop, CTLFLAG_RD | CTLFLAG_VNET, DC(io_pkt_drop), 0, "Number of packets dropped by dummynet."); #undef DC SYSEND #endif static void dummynet_send(struct mbuf *); /* * Return the mbuf tag holding the dummynet state (it should * be the first one on the list). */ struct dn_pkt_tag * dn_tag_get(struct mbuf *m) { struct m_tag *mtag = m_tag_first(m); #ifdef NEW_AQM /* XXX: to skip ts m_tag. For Debugging only*/ if (mtag != NULL && mtag->m_tag_id == DN_AQM_MTAG_TS) { m_tag_delete(m,mtag); mtag = m_tag_first(m); D("skip TS tag"); } #endif KASSERT(mtag != NULL && mtag->m_tag_cookie == MTAG_ABI_COMPAT && mtag->m_tag_id == PACKET_TAG_DUMMYNET, ("packet on dummynet queue w/o dummynet tag!")); return (struct dn_pkt_tag *)(mtag+1); } #ifndef NEW_AQM static inline void mq_append(struct mq *q, struct mbuf *m) { #ifdef USERSPACE // buffers from netmap need to be copied // XXX note that the routine is not expected to fail ND("append %p to %p", m, q); if (m->m_flags & M_STACK) { struct mbuf *m_new; void *p; int l, ofs; ofs = m->m_data - m->__m_extbuf; // XXX allocate MGETHDR(m_new, M_NOWAIT, MT_DATA); ND("*** WARNING, volatile buf %p ext %p %d dofs %d m_new %p", m, m->__m_extbuf, m->__m_extlen, ofs, m_new); p = m_new->__m_extbuf; /* new pointer */ l = m_new->__m_extlen; /* new len */ if (l <= m->__m_extlen) { panic("extlen too large"); } *m_new = *m; // copy m_new->m_flags &= ~M_STACK; m_new->__m_extbuf = p; // point to new buffer _pkt_copy(m->__m_extbuf, p, m->__m_extlen); m_new->m_data = p + ofs; m = m_new; } #endif /* USERSPACE */ if (q->head == NULL) q->head = m; else q->tail->m_nextpkt = m; q->count++; q->tail = m; m->m_nextpkt = NULL; } #endif /* * Dispose a list of packet. Use a functions so if we need to do * more work, this is a central point to do it. */ void dn_free_pkts(struct mbuf *mnext) { struct mbuf *m; while ((m = mnext) != NULL) { mnext = m->m_nextpkt; FREE_PKT(m); } } static int red_drops (struct dn_queue *q, int len) { /* * RED algorithm * * RED calculates the average queue size (avg) using a low-pass filter * with an exponential weighted (w_q) moving average: * avg <- (1-w_q) * avg + w_q * q_size * where q_size is the queue length (measured in bytes or * packets). * * If q_size == 0, we compute the idle time for the link, and set * avg = (1 - w_q)^(idle/s) * where s is the time needed for transmitting a medium-sized packet. * * Now, if avg < min_th the packet is enqueued. * If avg > max_th the packet is dropped. Otherwise, the packet is * dropped with probability P function of avg. */ struct dn_fsk *fs = q->fs; int64_t p_b = 0; /* Queue in bytes or packets? */ uint32_t q_size = (fs->fs.flags & DN_QSIZE_BYTES) ? q->ni.len_bytes : q->ni.length; /* Average queue size estimation. */ if (q_size != 0) { /* Queue is not empty, avg <- avg + (q_size - avg) * w_q */ int diff = SCALE(q_size) - q->avg; int64_t v = SCALE_MUL((int64_t)diff, (int64_t)fs->w_q); q->avg += (int)v; } else { /* * Queue is empty, find for how long the queue has been * empty and use a lookup table for computing * (1 - * w_q)^(idle_time/s) where s is the time to send a * (small) packet. * XXX check wraps... */ if (q->avg) { u_int t = div64((V_dn_cfg.curr_time - q->q_time), fs->lookup_step); q->avg = (t < fs->lookup_depth) ? SCALE_MUL(q->avg, fs->w_q_lookup[t]) : 0; } } /* Should i drop? */ if (q->avg < fs->min_th) { q->count = -1; return (0); /* accept packet */ } if (q->avg >= fs->max_th) { /* average queue >= max threshold */ if (fs->fs.flags & DN_IS_ECN) return (1); if (fs->fs.flags & DN_IS_GENTLE_RED) { /* * According to Gentle-RED, if avg is greater than * max_th the packet is dropped with a probability * p_b = c_3 * avg - c_4 * where c_3 = (1 - max_p) / max_th * c_4 = 1 - 2 * max_p */ p_b = SCALE_MUL((int64_t)fs->c_3, (int64_t)q->avg) - fs->c_4; } else { q->count = -1; return (1); } } else if (q->avg > fs->min_th) { if (fs->fs.flags & DN_IS_ECN) return (1); /* * We compute p_b using the linear dropping function * p_b = c_1 * avg - c_2 * where c_1 = max_p / (max_th - min_th) * c_2 = max_p * min_th / (max_th - min_th) */ p_b = SCALE_MUL((int64_t)fs->c_1, (int64_t)q->avg) - fs->c_2; } if (fs->fs.flags & DN_QSIZE_BYTES) p_b = div64((p_b * len) , fs->max_pkt_size); if (++q->count == 0) q->random = random() & 0xffff; else { /* * q->count counts packets arrived since last drop, so a greater * value of q->count means a greater packet drop probability. */ if (SCALE_MUL(p_b, SCALE((int64_t)q->count)) > q->random) { q->count = 0; /* After a drop we calculate a new random value. */ q->random = random() & 0xffff; return (1); /* drop */ } } /* End of RED algorithm. */ return (0); /* accept */ } /* * ECN/ECT Processing (partially adopted from altq) */ #ifndef NEW_AQM static #endif int ecn_mark(struct mbuf* m) { struct ip *ip; ip = (struct ip *)mtodo(m, dn_tag_get(m)->iphdr_off); switch (ip->ip_v) { case IPVERSION: { uint16_t old; if ((ip->ip_tos & IPTOS_ECN_MASK) == IPTOS_ECN_NOTECT) return (0); /* not-ECT */ if ((ip->ip_tos & IPTOS_ECN_MASK) == IPTOS_ECN_CE) return (1); /* already marked */ /* * ecn-capable but not marked, * mark CE and update checksum */ old = *(uint16_t *)ip; ip->ip_tos |= IPTOS_ECN_CE; ip->ip_sum = cksum_adjust(ip->ip_sum, old, *(uint16_t *)ip); return (1); } #ifdef INET6 case (IPV6_VERSION >> 4): { struct ip6_hdr *ip6 = (struct ip6_hdr *)ip; u_int32_t flowlabel; flowlabel = ntohl(ip6->ip6_flow); if ((flowlabel >> 28) != 6) return (0); /* version mismatch! */ if ((flowlabel & (IPTOS_ECN_MASK << 20)) == (IPTOS_ECN_NOTECT << 20)) return (0); /* not-ECT */ if ((flowlabel & (IPTOS_ECN_MASK << 20)) == (IPTOS_ECN_CE << 20)) return (1); /* already marked */ /* * ecn-capable but not marked, mark CE */ flowlabel |= (IPTOS_ECN_CE << 20); ip6->ip6_flow = htonl(flowlabel); return (1); } #endif } return (0); } /* * Enqueue a packet in q, subject to space and queue management policy * (whose parameters are in q->fs). * Update stats for the queue and the scheduler. * Return 0 on success, 1 on drop. The packet is consumed anyways. */ int dn_enqueue(struct dn_queue *q, struct mbuf* m, int drop) { struct dn_fs *f; struct dn_flow *ni; /* stats for scheduler instance */ uint64_t len; if (q->fs == NULL || q->_si == NULL) { printf("%s fs %p si %p, dropping\n", __FUNCTION__, q->fs, q->_si); FREE_PKT(m); return 1; } f = &(q->fs->fs); ni = &q->_si->ni; len = m->m_pkthdr.len; /* Update statistics, then check reasons to drop pkt. */ q->ni.tot_bytes += len; q->ni.tot_pkts++; ni->tot_bytes += len; ni->tot_pkts++; if (drop) goto drop; if (f->plr && random() < f->plr) goto drop; #ifdef NEW_AQM /* Call AQM enqueue function */ if (q->fs->aqmfp) return q->fs->aqmfp->enqueue(q ,m); #endif if (f->flags & DN_IS_RED && red_drops(q, m->m_pkthdr.len)) { if (!(f->flags & DN_IS_ECN) || !ecn_mark(m)) goto drop; } if (f->flags & DN_QSIZE_BYTES) { if (q->ni.len_bytes > f->qsize) goto drop; } else if (q->ni.length >= f->qsize) { goto drop; } mq_append(&q->mq, m); q->ni.length++; q->ni.len_bytes += len; ni->length++; ni->len_bytes += len; return (0); drop: V_dn_cfg.io_pkt_drop++; q->ni.drops++; ni->drops++; FREE_PKT(m); return (1); } /* * Fetch packets from the delay line which are due now. If there are * leftover packets, reinsert the delay line in the heap. * Runs under scheduler lock. */ static void transmit_event(struct mq *q, struct delay_line *dline, uint64_t now) { struct mbuf *m; struct dn_pkt_tag *pkt = NULL; dline->oid.subtype = 0; /* not in heap */ while ((m = dline->mq.head) != NULL) { pkt = dn_tag_get(m); if (!DN_KEY_LEQ(pkt->output_time, now)) break; dline->mq.head = m->m_nextpkt; dline->mq.count--; mq_append(q, m); } if (m != NULL) { dline->oid.subtype = 1; /* in heap */ heap_insert(&V_dn_cfg.evheap, pkt->output_time, dline); } } /* * Convert the additional MAC overheads/delays into an equivalent * number of bits for the given data rate. The samples are * in milliseconds so we need to divide by 1000. */ static uint64_t extra_bits(struct mbuf *m, struct dn_schk *s) { int index; uint64_t bits; struct dn_profile *pf = s->profile; if (!pf || pf->samples_no == 0) return 0; index = random() % pf->samples_no; bits = div64((uint64_t)pf->samples[index] * s->link.bandwidth, 1000); if (index >= pf->loss_level) { struct dn_pkt_tag *dt = dn_tag_get(m); if (dt) dt->dn_dir = DIR_DROP; } return bits; } /* * Send traffic from a scheduler instance due by 'now'. * Return a pointer to the head of the queue. */ static struct mbuf * serve_sched(struct mq *q, struct dn_sch_inst *si, uint64_t now) { struct mq def_q; struct dn_schk *s = si->sched; struct mbuf *m = NULL; int delay_line_idle = (si->dline.mq.head == NULL); int done; uint32_t bw; if (q == NULL) { q = &def_q; q->head = NULL; } bw = s->link.bandwidth; si->kflags &= ~DN_ACTIVE; if (bw > 0) si->credit += (now - si->sched_time) * bw; else si->credit = 0; si->sched_time = now; done = 0; while (si->credit >= 0 && (m = s->fp->dequeue(si)) != NULL) { uint64_t len_scaled; done++; len_scaled = (bw == 0) ? 0 : hz * (m->m_pkthdr.len * 8 + extra_bits(m, s)); si->credit -= len_scaled; /* Move packet in the delay line */ dn_tag_get(m)->output_time = V_dn_cfg.curr_time + s->link.delay ; mq_append(&si->dline.mq, m); } /* * If credit >= 0 the instance is idle, mark time. * Otherwise put back in the heap, and adjust the output * time of the last inserted packet, m, which was too early. */ if (si->credit >= 0) { si->idle_time = now; } else { uint64_t t; KASSERT (bw > 0, ("bw=0 and credit<0 ?")); t = div64(bw - 1 - si->credit, bw); if (m) dn_tag_get(m)->output_time += t; si->kflags |= DN_ACTIVE; heap_insert(&V_dn_cfg.evheap, now + t, si); } if (delay_line_idle && done) transmit_event(q, &si->dline, now); return q->head; } /* * The timer handler for dummynet. Time is computed in ticks, but * but the code is tolerant to the actual rate at which this is called. * Once complete, the function reschedules itself for the next tick. */ void dummynet_task(void *context, int pending) { struct timeval t; struct mq q = { NULL, NULL }; /* queue to accumulate results */ struct epoch_tracker et; VNET_ITERATOR_DECL(vnet_iter); VNET_LIST_RLOCK(); NET_EPOCH_ENTER(et); VNET_FOREACH(vnet_iter) { memset(&q, 0, sizeof(struct mq)); CURVNET_SET(vnet_iter); DN_BH_WLOCK(); /* Update number of lost(coalesced) ticks. */ V_dn_cfg.tick_lost += pending - 1; getmicrouptime(&t); /* Last tick duration (usec). */ V_dn_cfg.tick_last = (t.tv_sec - V_dn_cfg.prev_t.tv_sec) * 1000000 + (t.tv_usec - V_dn_cfg.prev_t.tv_usec); /* Last tick vs standard tick difference (usec). */ V_dn_cfg.tick_delta = (V_dn_cfg.tick_last * hz - 1000000) / hz; /* Accumulated tick difference (usec). */ V_dn_cfg.tick_delta_sum += V_dn_cfg.tick_delta; V_dn_cfg.prev_t = t; /* * Adjust curr_time if the accumulated tick difference is * greater than the 'standard' tick. Since curr_time should * be monotonically increasing, we do positive adjustments * as required, and throttle curr_time in case of negative * adjustment. */ V_dn_cfg.curr_time++; if (V_dn_cfg.tick_delta_sum - tick >= 0) { int diff = V_dn_cfg.tick_delta_sum / tick; V_dn_cfg.curr_time += diff; V_dn_cfg.tick_diff += diff; V_dn_cfg.tick_delta_sum %= tick; V_dn_cfg.tick_adjustment++; } else if (V_dn_cfg.tick_delta_sum + tick <= 0) { V_dn_cfg.curr_time--; V_dn_cfg.tick_diff--; V_dn_cfg.tick_delta_sum += tick; V_dn_cfg.tick_adjustment++; } /* serve pending events, accumulate in q */ for (;;) { struct dn_id *p; /* generic parameter to handler */ if (V_dn_cfg.evheap.elements == 0 || DN_KEY_LT(V_dn_cfg.curr_time, HEAP_TOP(&V_dn_cfg.evheap)->key)) break; p = HEAP_TOP(&V_dn_cfg.evheap)->object; heap_extract(&V_dn_cfg.evheap, NULL); if (p->type == DN_SCH_I) { serve_sched(&q, (struct dn_sch_inst *)p, V_dn_cfg.curr_time); } else { /* extracted a delay line */ transmit_event(&q, (struct delay_line *)p, V_dn_cfg.curr_time); } } if (V_dn_cfg.expire && ++V_dn_cfg.expire_cycle >= V_dn_cfg.expire) { V_dn_cfg.expire_cycle = 0; dn_drain_scheduler(); dn_drain_queue(); } DN_BH_WUNLOCK(); if (q.head != NULL) dummynet_send(q.head); CURVNET_RESTORE(); } NET_EPOCH_EXIT(et); VNET_LIST_RUNLOCK(); /* Schedule our next run. */ dn_reschedule(); } /* * forward a chain of packets to the proper destination. * This runs outside the dummynet lock. */ static void dummynet_send(struct mbuf *m) { struct mbuf *n; NET_EPOCH_ASSERT(); for (; m != NULL; m = n) { struct ifnet *ifp = NULL; /* gcc 3.4.6 complains */ struct m_tag *tag; int dst; n = m->m_nextpkt; m->m_nextpkt = NULL; tag = m_tag_first(m); if (tag == NULL) { /* should not happen */ dst = DIR_DROP; } else { struct dn_pkt_tag *pkt = dn_tag_get(m); /* extract the dummynet info, rename the tag * to carry reinject info. */ if (pkt->dn_dir == (DIR_OUT | PROTO_LAYER2) && pkt->ifp == NULL) { dst = DIR_DROP; } else { dst = pkt->dn_dir; ifp = pkt->ifp; tag->m_tag_cookie = MTAG_IPFW_RULE; tag->m_tag_id = 0; } } switch (dst) { case DIR_OUT: ip_output(m, NULL, NULL, IP_FORWARDING, NULL, NULL); break ; case DIR_IN : netisr_dispatch(NETISR_IP, m); break; #ifdef INET6 case DIR_IN | PROTO_IPV6: netisr_dispatch(NETISR_IPV6, m); break; case DIR_OUT | PROTO_IPV6: ip6_output(m, NULL, NULL, IPV6_FORWARDING, NULL, NULL, NULL); break; #endif case DIR_FWD | PROTO_IFB: /* DN_TO_IFB_FWD: */ if (bridge_dn_p != NULL) ((*bridge_dn_p)(m, ifp)); else printf("dummynet: if_bridge not loaded\n"); break; case DIR_IN | PROTO_LAYER2: /* DN_TO_ETH_DEMUX: */ /* * The Ethernet code assumes the Ethernet header is * contiguous in the first mbuf header. * Insure this is true. */ if (m->m_len < ETHER_HDR_LEN && (m = m_pullup(m, ETHER_HDR_LEN)) == NULL) { printf("dummynet/ether: pullup failed, " "dropping packet\n"); break; } ether_demux(m->m_pkthdr.rcvif, m); break; case DIR_OUT | PROTO_LAYER2: /* DN_TO_ETH_OUT: */ ether_output_frame(ifp, m); break; case DIR_DROP: /* drop the packet after some time */ FREE_PKT(m); break; default: printf("dummynet: bad switch %d!\n", dst); FREE_PKT(m); break; } } } static inline int tag_mbuf(struct mbuf *m, int dir, struct ip_fw_args *fwa) { struct dn_pkt_tag *dt; struct m_tag *mtag; mtag = m_tag_get(PACKET_TAG_DUMMYNET, sizeof(*dt), M_NOWAIT | M_ZERO); if (mtag == NULL) return 1; /* Cannot allocate packet header. */ m_tag_prepend(m, mtag); /* Attach to mbuf chain. */ dt = (struct dn_pkt_tag *)(mtag + 1); dt->rule = fwa->rule; - dt->rule.info &= IPFW_ONEPASS; /* only keep this info */ + /* only keep this info */ + dt->rule.info &= (IPFW_ONEPASS | IPFW_IS_DUMMYNET); dt->dn_dir = dir; dt->ifp = fwa->flags & IPFW_ARGS_OUT ? fwa->ifp : NULL; /* dt->output tame is updated as we move through */ dt->output_time = V_dn_cfg.curr_time; dt->iphdr_off = (dir & PROTO_LAYER2) ? ETHER_HDR_LEN : 0; return 0; } /* * dummynet hook for packets. * We use the argument to locate the flowset fs and the sched_set sch * associated to it. The we apply flow_mask and sched_mask to * determine the queue and scheduler instances. */ int dummynet_io(struct mbuf **m0, struct ip_fw_args *fwa) { struct mbuf *m = *m0; struct dn_fsk *fs = NULL; struct dn_sch_inst *si; struct dn_queue *q = NULL; /* default */ int fs_id, dir; fs_id = (fwa->rule.info & IPFW_INFO_MASK) + ((fwa->rule.info & IPFW_IS_PIPE) ? 2*DN_MAX_ID : 0); /* XXXGL: convert args to dir */ if (fwa->flags & IPFW_ARGS_IN) dir = DIR_IN; else dir = DIR_OUT; if (fwa->flags & IPFW_ARGS_ETHER) dir |= PROTO_LAYER2; else if (fwa->flags & IPFW_ARGS_IP6) dir |= PROTO_IPV6; DN_BH_WLOCK(); V_dn_cfg.io_pkt++; /* we could actually tag outside the lock, but who cares... */ if (tag_mbuf(m, dir, fwa)) goto dropit; /* XXX locate_flowset could be optimised with a direct ref. */ fs = dn_ht_find(V_dn_cfg.fshash, fs_id, 0, NULL); if (fs == NULL) goto dropit; /* This queue/pipe does not exist! */ if (fs->sched == NULL) /* should not happen */ goto dropit; /* find scheduler instance, possibly applying sched_mask */ si = ipdn_si_find(fs->sched, &(fwa->f_id)); if (si == NULL) goto dropit; /* * If the scheduler supports multiple queues, find the right one * (otherwise it will be ignored by enqueue). */ if (fs->sched->fp->flags & DN_MULTIQUEUE) { q = ipdn_q_find(fs, si, &(fwa->f_id)); if (q == NULL) goto dropit; } if (fs->sched->fp->enqueue(si, q, m)) { /* packet was dropped by enqueue() */ m = *m0 = NULL; /* dn_enqueue already increases io_pkt_drop */ V_dn_cfg.io_pkt_drop--; goto dropit; } if (si->kflags & DN_ACTIVE) { m = *m0 = NULL; /* consumed */ goto done; /* already active, nothing to do */ } /* compute the initial allowance */ if (si->idle_time < V_dn_cfg.curr_time) { /* Do this only on the first packet on an idle pipe */ struct dn_link *p = &fs->sched->link; si->sched_time = V_dn_cfg.curr_time; si->credit = V_dn_cfg.io_fast ? p->bandwidth : 0; if (p->burst) { uint64_t burst = (V_dn_cfg.curr_time - si->idle_time) * p->bandwidth; if (burst > p->burst) burst = p->burst; si->credit += burst; } } /* pass through scheduler and delay line */ m = serve_sched(NULL, si, V_dn_cfg.curr_time); /* optimization -- pass it back to ipfw for immediate send */ /* XXX Don't call dummynet_send() if scheduler return the packet * just enqueued. This avoid a lock order reversal. * */ if (/*V_dn_cfg.io_fast &&*/ m == *m0 && (dir & PROTO_LAYER2) == 0 ) { /* fast io, rename the tag * to carry reinject info. */ struct m_tag *tag = m_tag_first(m); tag->m_tag_cookie = MTAG_IPFW_RULE; tag->m_tag_id = 0; V_dn_cfg.io_pkt_fast++; if (m->m_nextpkt != NULL) { printf("dummynet: fast io: pkt chain detected!\n"); m->m_nextpkt = NULL; } m = NULL; } else { *m0 = NULL; } done: DN_BH_WUNLOCK(); if (m) dummynet_send(m); return 0; dropit: V_dn_cfg.io_pkt_drop++; DN_BH_WUNLOCK(); if (m) FREE_PKT(m); *m0 = NULL; return (fs && (fs->fs.flags & DN_NOERROR)) ? 0 : ENOBUFS; } diff --git a/sys/netpfil/pf/pf.c b/sys/netpfil/pf/pf.c index 1d492370953a..ac329a37f7bd 100644 --- a/sys/netpfil/pf/pf.c +++ b/sys/netpfil/pf/pf.c @@ -1,7088 +1,7264 @@ /*- * SPDX-License-Identifier: BSD-2-Clause * * Copyright (c) 2001 Daniel Hartmeier * Copyright (c) 2002 - 2008 Henning Brauer * Copyright (c) 2012 Gleb Smirnoff * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * * - Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * - Redistributions in binary form must reproduce the above * copyright notice, this list of conditions and the following * disclaimer in the documentation and/or other materials provided * with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE * COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE * POSSIBILITY OF SUCH DAMAGE. * * Effort sponsored in part by the Defense Advanced Research Projects * Agency (DARPA) and Air Force Research Laboratory, Air Force * Materiel Command, USAF, under agreement number F30602-01-2-0537. * * $OpenBSD: pf.c,v 1.634 2009/02/27 12:37:45 henning Exp $ */ #include __FBSDID("$FreeBSD$"); #include "opt_bpf.h" #include "opt_inet.h" #include "opt_inet6.h" #include "opt_pf.h" #include "opt_sctp.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include +/* dummynet */ +#include +#include +#include +#include +#include + #ifdef INET6 #include #include #include #include #include #include #include #endif /* INET6 */ #if defined(SCTP) || defined(SCTP_SUPPORT) #include #endif #include #include #define DPFPRINTF(n, x) if (V_pf_status.debug >= (n)) printf x SDT_PROVIDER_DEFINE(pf); SDT_PROBE_DEFINE4(pf, ip, test, done, "int", "int", "struct pf_krule *", "struct pf_kstate *"); SDT_PROBE_DEFINE4(pf, ip, test6, done, "int", "int", "struct pf_krule *", "struct pf_kstate *"); SDT_PROBE_DEFINE5(pf, ip, state, lookup, "struct pfi_kkif *", "struct pf_state_key_cmp *", "int", "struct pf_pdesc *", "struct pf_kstate *"); /* * Global variables */ /* state tables */ VNET_DEFINE(struct pf_altqqueue, pf_altqs[4]); VNET_DEFINE(struct pf_kpalist, pf_pabuf); VNET_DEFINE(struct pf_altqqueue *, pf_altqs_active); VNET_DEFINE(struct pf_altqqueue *, pf_altq_ifs_active); VNET_DEFINE(struct pf_altqqueue *, pf_altqs_inactive); VNET_DEFINE(struct pf_altqqueue *, pf_altq_ifs_inactive); VNET_DEFINE(struct pf_kstatus, pf_status); VNET_DEFINE(u_int32_t, ticket_altqs_active); VNET_DEFINE(u_int32_t, ticket_altqs_inactive); VNET_DEFINE(int, altqs_inactive_open); VNET_DEFINE(u_int32_t, ticket_pabuf); VNET_DEFINE(MD5_CTX, pf_tcp_secret_ctx); #define V_pf_tcp_secret_ctx VNET(pf_tcp_secret_ctx) VNET_DEFINE(u_char, pf_tcp_secret[16]); #define V_pf_tcp_secret VNET(pf_tcp_secret) VNET_DEFINE(int, pf_tcp_secret_init); #define V_pf_tcp_secret_init VNET(pf_tcp_secret_init) VNET_DEFINE(int, pf_tcp_iss_off); #define V_pf_tcp_iss_off VNET(pf_tcp_iss_off) VNET_DECLARE(int, pf_vnet_active); #define V_pf_vnet_active VNET(pf_vnet_active) VNET_DEFINE_STATIC(uint32_t, pf_purge_idx); #define V_pf_purge_idx VNET(pf_purge_idx) #ifdef PF_WANT_32_TO_64_COUNTER VNET_DEFINE_STATIC(uint32_t, pf_counter_periodic_iter); #define V_pf_counter_periodic_iter VNET(pf_counter_periodic_iter) VNET_DEFINE(struct allrulelist_head, pf_allrulelist); VNET_DEFINE(size_t, pf_allrulecount); VNET_DEFINE(struct pf_krule *, pf_rulemarker); #endif /* * Queue for pf_intr() sends. */ static MALLOC_DEFINE(M_PFTEMP, "pf_temp", "pf(4) temporary allocations"); struct pf_send_entry { STAILQ_ENTRY(pf_send_entry) pfse_next; struct mbuf *pfse_m; enum { PFSE_IP, PFSE_IP6, PFSE_ICMP, PFSE_ICMP6, } pfse_type; struct { int type; int code; int mtu; } icmpopts; }; STAILQ_HEAD(pf_send_head, pf_send_entry); VNET_DEFINE_STATIC(struct pf_send_head, pf_sendqueue); #define V_pf_sendqueue VNET(pf_sendqueue) static struct mtx_padalign pf_sendqueue_mtx; MTX_SYSINIT(pf_sendqueue_mtx, &pf_sendqueue_mtx, "pf send queue", MTX_DEF); #define PF_SENDQ_LOCK() mtx_lock(&pf_sendqueue_mtx) #define PF_SENDQ_UNLOCK() mtx_unlock(&pf_sendqueue_mtx) /* * Queue for pf_overload_task() tasks. */ struct pf_overload_entry { SLIST_ENTRY(pf_overload_entry) next; struct pf_addr addr; sa_family_t af; uint8_t dir; struct pf_krule *rule; }; SLIST_HEAD(pf_overload_head, pf_overload_entry); VNET_DEFINE_STATIC(struct pf_overload_head, pf_overloadqueue); #define V_pf_overloadqueue VNET(pf_overloadqueue) VNET_DEFINE_STATIC(struct task, pf_overloadtask); #define V_pf_overloadtask VNET(pf_overloadtask) static struct mtx_padalign pf_overloadqueue_mtx; MTX_SYSINIT(pf_overloadqueue_mtx, &pf_overloadqueue_mtx, "pf overload/flush queue", MTX_DEF); #define PF_OVERLOADQ_LOCK() mtx_lock(&pf_overloadqueue_mtx) #define PF_OVERLOADQ_UNLOCK() mtx_unlock(&pf_overloadqueue_mtx) VNET_DEFINE(struct pf_krulequeue, pf_unlinked_rules); struct mtx_padalign pf_unlnkdrules_mtx; MTX_SYSINIT(pf_unlnkdrules_mtx, &pf_unlnkdrules_mtx, "pf unlinked rules", MTX_DEF); struct mtx_padalign pf_table_stats_lock; MTX_SYSINIT(pf_table_stats_lock, &pf_table_stats_lock, "pf table stats", MTX_DEF); VNET_DEFINE_STATIC(uma_zone_t, pf_sources_z); #define V_pf_sources_z VNET(pf_sources_z) uma_zone_t pf_mtag_z; VNET_DEFINE(uma_zone_t, pf_state_z); VNET_DEFINE(uma_zone_t, pf_state_key_z); VNET_DEFINE(uint64_t, pf_stateid[MAXCPU]); #define PFID_CPUBITS 8 #define PFID_CPUSHIFT (sizeof(uint64_t) * NBBY - PFID_CPUBITS) #define PFID_CPUMASK ((uint64_t)((1 << PFID_CPUBITS) - 1) << PFID_CPUSHIFT) #define PFID_MAXID (~PFID_CPUMASK) CTASSERT((1 << PFID_CPUBITS) >= MAXCPU); static void pf_src_tree_remove_state(struct pf_kstate *); static void pf_init_threshold(struct pf_threshold *, u_int32_t, u_int32_t); static void pf_add_threshold(struct pf_threshold *); static int pf_check_threshold(struct pf_threshold *); static void pf_change_ap(struct mbuf *, struct pf_addr *, u_int16_t *, u_int16_t *, u_int16_t *, struct pf_addr *, u_int16_t, u_int8_t, sa_family_t); static int pf_modulate_sack(struct mbuf *, int, struct pf_pdesc *, struct tcphdr *, struct pf_state_peer *); static void pf_change_icmp(struct pf_addr *, u_int16_t *, struct pf_addr *, struct pf_addr *, u_int16_t, u_int16_t *, u_int16_t *, u_int16_t *, u_int16_t *, u_int8_t, sa_family_t); static void pf_send_icmp(struct mbuf *, u_int8_t, u_int8_t, sa_family_t, struct pf_krule *); static void pf_detach_state(struct pf_kstate *); static int pf_state_key_attach(struct pf_state_key *, struct pf_state_key *, struct pf_kstate *); static void pf_state_key_detach(struct pf_kstate *, int); static int pf_state_key_ctor(void *, int, void *, int); static u_int32_t pf_tcp_iss(struct pf_pdesc *); void pf_rule_to_actions(struct pf_krule *, struct pf_rule_actions *); static int pf_test_rule(struct pf_krule **, struct pf_kstate **, int, struct pfi_kkif *, struct mbuf *, int, struct pf_pdesc *, struct pf_krule **, struct pf_kruleset **, struct inpcb *); static int pf_create_state(struct pf_krule *, struct pf_krule *, struct pf_krule *, struct pf_pdesc *, struct pf_ksrc_node *, struct pf_state_key *, struct pf_state_key *, struct mbuf *, int, u_int16_t, u_int16_t, int *, struct pfi_kkif *, struct pf_kstate **, int, u_int16_t, u_int16_t, int); static int pf_test_fragment(struct pf_krule **, int, struct pfi_kkif *, struct mbuf *, void *, struct pf_pdesc *, struct pf_krule **, struct pf_kruleset **); static int pf_tcp_track_full(struct pf_kstate **, struct pfi_kkif *, struct mbuf *, int, struct pf_pdesc *, u_short *, int *); static int pf_tcp_track_sloppy(struct pf_kstate **, struct pf_pdesc *, u_short *); static int pf_test_state_tcp(struct pf_kstate **, int, struct pfi_kkif *, struct mbuf *, int, void *, struct pf_pdesc *, u_short *); static int pf_test_state_udp(struct pf_kstate **, int, struct pfi_kkif *, struct mbuf *, int, void *, struct pf_pdesc *); static int pf_test_state_icmp(struct pf_kstate **, int, struct pfi_kkif *, struct mbuf *, int, void *, struct pf_pdesc *, u_short *); static int pf_test_state_other(struct pf_kstate **, int, struct pfi_kkif *, struct mbuf *, struct pf_pdesc *); static u_int16_t pf_calc_mss(struct pf_addr *, sa_family_t, int, u_int16_t); static int pf_check_proto_cksum(struct mbuf *, int, int, u_int8_t, sa_family_t); static void pf_print_state_parts(struct pf_kstate *, struct pf_state_key *, struct pf_state_key *); static int pf_addr_wrap_neq(struct pf_addr_wrap *, struct pf_addr_wrap *); static void pf_patch_8(struct mbuf *, u_int16_t *, u_int8_t *, u_int8_t, bool, u_int8_t); static struct pf_kstate *pf_find_state(struct pfi_kkif *, struct pf_state_key_cmp *, u_int); static int pf_src_connlimit(struct pf_kstate **); static void pf_overload_task(void *v, int pending); static int pf_insert_src_node(struct pf_ksrc_node **, struct pf_krule *, struct pf_addr *, sa_family_t); static u_int pf_purge_expired_states(u_int, int); static void pf_purge_unlinked_rules(void); static int pf_mtag_uminit(void *, int, int); static void pf_mtag_free(struct m_tag *); #ifdef INET static void pf_route(struct mbuf **, struct pf_krule *, int, struct ifnet *, struct pf_kstate *, struct pf_pdesc *, struct inpcb *); #endif /* INET */ #ifdef INET6 static void pf_change_a6(struct pf_addr *, u_int16_t *, struct pf_addr *, u_int8_t); static void pf_route6(struct mbuf **, struct pf_krule *, int, struct ifnet *, struct pf_kstate *, struct pf_pdesc *, struct inpcb *); #endif /* INET6 */ static __inline void pf_set_protostate(struct pf_kstate *, int, u_int8_t); int in4_cksum(struct mbuf *m, u_int8_t nxt, int off, int len); extern int pf_end_threads; extern struct proc *pf_purge_proc; VNET_DEFINE(struct pf_limit, pf_limits[PF_LIMIT_MAX]); #define PACKET_LOOPED(pd) ((pd)->pf_mtag && \ (pd)->pf_mtag->flags & PF_PACKET_LOOPED) #define STATE_LOOKUP(i, k, d, s, pd) \ do { \ (s) = pf_find_state((i), (k), (d)); \ SDT_PROBE5(pf, ip, state, lookup, i, k, d, pd, (s)); \ if ((s) == NULL) \ return (PF_DROP); \ if (PACKET_LOOPED(pd)) \ return (PF_PASS); \ } while (0) #define BOUND_IFACE(r, k) \ ((r)->rule_flag & PFRULE_IFBOUND) ? (k) : V_pfi_all #define STATE_INC_COUNTERS(s) \ do { \ counter_u64_add(s->rule.ptr->states_cur, 1); \ counter_u64_add(s->rule.ptr->states_tot, 1); \ if (s->anchor.ptr != NULL) { \ counter_u64_add(s->anchor.ptr->states_cur, 1); \ counter_u64_add(s->anchor.ptr->states_tot, 1); \ } \ if (s->nat_rule.ptr != NULL) { \ counter_u64_add(s->nat_rule.ptr->states_cur, 1);\ counter_u64_add(s->nat_rule.ptr->states_tot, 1);\ } \ } while (0) #define STATE_DEC_COUNTERS(s) \ do { \ if (s->nat_rule.ptr != NULL) \ counter_u64_add(s->nat_rule.ptr->states_cur, -1);\ if (s->anchor.ptr != NULL) \ counter_u64_add(s->anchor.ptr->states_cur, -1); \ counter_u64_add(s->rule.ptr->states_cur, -1); \ } while (0) MALLOC_DEFINE(M_PFHASH, "pf_hash", "pf(4) hash header structures"); VNET_DEFINE(struct pf_keyhash *, pf_keyhash); VNET_DEFINE(struct pf_idhash *, pf_idhash); VNET_DEFINE(struct pf_srchash *, pf_srchash); SYSCTL_NODE(_net, OID_AUTO, pf, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "pf(4)"); u_long pf_hashmask; u_long pf_srchashmask; static u_long pf_hashsize; static u_long pf_srchashsize; u_long pf_ioctl_maxcount = 65535; SYSCTL_ULONG(_net_pf, OID_AUTO, states_hashsize, CTLFLAG_RDTUN, &pf_hashsize, 0, "Size of pf(4) states hashtable"); SYSCTL_ULONG(_net_pf, OID_AUTO, source_nodes_hashsize, CTLFLAG_RDTUN, &pf_srchashsize, 0, "Size of pf(4) source nodes hashtable"); SYSCTL_ULONG(_net_pf, OID_AUTO, request_maxcount, CTLFLAG_RWTUN, &pf_ioctl_maxcount, 0, "Maximum number of tables, addresses, ... in a single ioctl() call"); VNET_DEFINE(void *, pf_swi_cookie); VNET_DEFINE(struct intr_event *, pf_swi_ie); VNET_DEFINE(uint32_t, pf_hashseed); #define V_pf_hashseed VNET(pf_hashseed) int pf_addr_cmp(struct pf_addr *a, struct pf_addr *b, sa_family_t af) { switch (af) { #ifdef INET case AF_INET: if (a->addr32[0] > b->addr32[0]) return (1); if (a->addr32[0] < b->addr32[0]) return (-1); break; #endif /* INET */ #ifdef INET6 case AF_INET6: if (a->addr32[3] > b->addr32[3]) return (1); if (a->addr32[3] < b->addr32[3]) return (-1); if (a->addr32[2] > b->addr32[2]) return (1); if (a->addr32[2] < b->addr32[2]) return (-1); if (a->addr32[1] > b->addr32[1]) return (1); if (a->addr32[1] < b->addr32[1]) return (-1); if (a->addr32[0] > b->addr32[0]) return (1); if (a->addr32[0] < b->addr32[0]) return (-1); break; #endif /* INET6 */ default: panic("%s: unknown address family %u", __func__, af); } return (0); } static __inline uint32_t pf_hashkey(struct pf_state_key *sk) { uint32_t h; h = murmur3_32_hash32((uint32_t *)sk, sizeof(struct pf_state_key_cmp)/sizeof(uint32_t), V_pf_hashseed); return (h & pf_hashmask); } static __inline uint32_t pf_hashsrc(struct pf_addr *addr, sa_family_t af) { uint32_t h; switch (af) { case AF_INET: h = murmur3_32_hash32((uint32_t *)&addr->v4, sizeof(addr->v4)/sizeof(uint32_t), V_pf_hashseed); break; case AF_INET6: h = murmur3_32_hash32((uint32_t *)&addr->v6, sizeof(addr->v6)/sizeof(uint32_t), V_pf_hashseed); break; default: panic("%s: unknown address family %u", __func__, af); } return (h & pf_srchashmask); } #ifdef ALTQ static int pf_state_hash(struct pf_kstate *s) { u_int32_t hv = (intptr_t)s / sizeof(*s); hv ^= crc32(&s->src, sizeof(s->src)); hv ^= crc32(&s->dst, sizeof(s->dst)); if (hv == 0) hv = 1; return (hv); } #endif static __inline void pf_set_protostate(struct pf_kstate *s, int which, u_int8_t newstate) { if (which == PF_PEER_DST || which == PF_PEER_BOTH) s->dst.state = newstate; if (which == PF_PEER_DST) return; s->src.state = newstate; } #ifdef INET6 void pf_addrcpy(struct pf_addr *dst, struct pf_addr *src, sa_family_t af) { switch (af) { #ifdef INET case AF_INET: dst->addr32[0] = src->addr32[0]; break; #endif /* INET */ case AF_INET6: dst->addr32[0] = src->addr32[0]; dst->addr32[1] = src->addr32[1]; dst->addr32[2] = src->addr32[2]; dst->addr32[3] = src->addr32[3]; break; } } #endif /* INET6 */ static void pf_init_threshold(struct pf_threshold *threshold, u_int32_t limit, u_int32_t seconds) { threshold->limit = limit * PF_THRESHOLD_MULT; threshold->seconds = seconds; threshold->count = 0; threshold->last = time_uptime; } static void pf_add_threshold(struct pf_threshold *threshold) { u_int32_t t = time_uptime, diff = t - threshold->last; if (diff >= threshold->seconds) threshold->count = 0; else threshold->count -= threshold->count * diff / threshold->seconds; threshold->count += PF_THRESHOLD_MULT; threshold->last = t; } static int pf_check_threshold(struct pf_threshold *threshold) { return (threshold->count > threshold->limit); } static int pf_src_connlimit(struct pf_kstate **state) { struct pf_overload_entry *pfoe; int bad = 0; PF_STATE_LOCK_ASSERT(*state); (*state)->src_node->conn++; (*state)->src.tcp_est = 1; pf_add_threshold(&(*state)->src_node->conn_rate); if ((*state)->rule.ptr->max_src_conn && (*state)->rule.ptr->max_src_conn < (*state)->src_node->conn) { counter_u64_add(V_pf_status.lcounters[LCNT_SRCCONN], 1); bad++; } if ((*state)->rule.ptr->max_src_conn_rate.limit && pf_check_threshold(&(*state)->src_node->conn_rate)) { counter_u64_add(V_pf_status.lcounters[LCNT_SRCCONNRATE], 1); bad++; } if (!bad) return (0); /* Kill this state. */ (*state)->timeout = PFTM_PURGE; pf_set_protostate(*state, PF_PEER_BOTH, TCPS_CLOSED); if ((*state)->rule.ptr->overload_tbl == NULL) return (1); /* Schedule overloading and flushing task. */ pfoe = malloc(sizeof(*pfoe), M_PFTEMP, M_NOWAIT); if (pfoe == NULL) return (1); /* too bad :( */ bcopy(&(*state)->src_node->addr, &pfoe->addr, sizeof(pfoe->addr)); pfoe->af = (*state)->key[PF_SK_WIRE]->af; pfoe->rule = (*state)->rule.ptr; pfoe->dir = (*state)->direction; PF_OVERLOADQ_LOCK(); SLIST_INSERT_HEAD(&V_pf_overloadqueue, pfoe, next); PF_OVERLOADQ_UNLOCK(); taskqueue_enqueue(taskqueue_swi, &V_pf_overloadtask); return (1); } static void pf_overload_task(void *v, int pending) { struct pf_overload_head queue; struct pfr_addr p; struct pf_overload_entry *pfoe, *pfoe1; uint32_t killed = 0; CURVNET_SET((struct vnet *)v); PF_OVERLOADQ_LOCK(); queue = V_pf_overloadqueue; SLIST_INIT(&V_pf_overloadqueue); PF_OVERLOADQ_UNLOCK(); bzero(&p, sizeof(p)); SLIST_FOREACH(pfoe, &queue, next) { counter_u64_add(V_pf_status.lcounters[LCNT_OVERLOAD_TABLE], 1); if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("%s: blocking address ", __func__); pf_print_host(&pfoe->addr, 0, pfoe->af); printf("\n"); } p.pfra_af = pfoe->af; switch (pfoe->af) { #ifdef INET case AF_INET: p.pfra_net = 32; p.pfra_ip4addr = pfoe->addr.v4; break; #endif #ifdef INET6 case AF_INET6: p.pfra_net = 128; p.pfra_ip6addr = pfoe->addr.v6; break; #endif } PF_RULES_WLOCK(); pfr_insert_kentry(pfoe->rule->overload_tbl, &p, time_second); PF_RULES_WUNLOCK(); } /* * Remove those entries, that don't need flushing. */ SLIST_FOREACH_SAFE(pfoe, &queue, next, pfoe1) if (pfoe->rule->flush == 0) { SLIST_REMOVE(&queue, pfoe, pf_overload_entry, next); free(pfoe, M_PFTEMP); } else counter_u64_add( V_pf_status.lcounters[LCNT_OVERLOAD_FLUSH], 1); /* If nothing to flush, return. */ if (SLIST_EMPTY(&queue)) { CURVNET_RESTORE(); return; } for (int i = 0; i <= pf_hashmask; i++) { struct pf_idhash *ih = &V_pf_idhash[i]; struct pf_state_key *sk; struct pf_kstate *s; PF_HASHROW_LOCK(ih); LIST_FOREACH(s, &ih->states, entry) { sk = s->key[PF_SK_WIRE]; SLIST_FOREACH(pfoe, &queue, next) if (sk->af == pfoe->af && ((pfoe->rule->flush & PF_FLUSH_GLOBAL) || pfoe->rule == s->rule.ptr) && ((pfoe->dir == PF_OUT && PF_AEQ(&pfoe->addr, &sk->addr[1], sk->af)) || (pfoe->dir == PF_IN && PF_AEQ(&pfoe->addr, &sk->addr[0], sk->af)))) { s->timeout = PFTM_PURGE; pf_set_protostate(s, PF_PEER_BOTH, TCPS_CLOSED); killed++; } } PF_HASHROW_UNLOCK(ih); } SLIST_FOREACH_SAFE(pfoe, &queue, next, pfoe1) free(pfoe, M_PFTEMP); if (V_pf_status.debug >= PF_DEBUG_MISC) printf("%s: %u states killed", __func__, killed); CURVNET_RESTORE(); } /* * Can return locked on failure, so that we can consistently * allocate and insert a new one. */ struct pf_ksrc_node * pf_find_src_node(struct pf_addr *src, struct pf_krule *rule, sa_family_t af, int returnlocked) { struct pf_srchash *sh; struct pf_ksrc_node *n; counter_u64_add(V_pf_status.scounters[SCNT_SRC_NODE_SEARCH], 1); sh = &V_pf_srchash[pf_hashsrc(src, af)]; PF_HASHROW_LOCK(sh); LIST_FOREACH(n, &sh->nodes, entry) if (n->rule.ptr == rule && n->af == af && ((af == AF_INET && n->addr.v4.s_addr == src->v4.s_addr) || (af == AF_INET6 && bcmp(&n->addr, src, sizeof(*src)) == 0))) break; if (n != NULL) { n->states++; PF_HASHROW_UNLOCK(sh); } else if (returnlocked == 0) PF_HASHROW_UNLOCK(sh); return (n); } static void pf_free_src_node(struct pf_ksrc_node *sn) { for (int i = 0; i < 2; i++) { counter_u64_free(sn->bytes[i]); counter_u64_free(sn->packets[i]); } uma_zfree(V_pf_sources_z, sn); } static int pf_insert_src_node(struct pf_ksrc_node **sn, struct pf_krule *rule, struct pf_addr *src, sa_family_t af) { KASSERT((rule->rule_flag & PFRULE_SRCTRACK || rule->rpool.opts & PF_POOL_STICKYADDR), ("%s for non-tracking rule %p", __func__, rule)); if (*sn == NULL) *sn = pf_find_src_node(src, rule, af, 1); if (*sn == NULL) { struct pf_srchash *sh = &V_pf_srchash[pf_hashsrc(src, af)]; PF_HASHROW_ASSERT(sh); if (!rule->max_src_nodes || counter_u64_fetch(rule->src_nodes) < rule->max_src_nodes) (*sn) = uma_zalloc(V_pf_sources_z, M_NOWAIT | M_ZERO); else counter_u64_add(V_pf_status.lcounters[LCNT_SRCNODES], 1); if ((*sn) == NULL) { PF_HASHROW_UNLOCK(sh); return (-1); } for (int i = 0; i < 2; i++) { (*sn)->bytes[i] = counter_u64_alloc(M_NOWAIT); (*sn)->packets[i] = counter_u64_alloc(M_NOWAIT); if ((*sn)->bytes[i] == NULL || (*sn)->packets[i] == NULL) { pf_free_src_node(*sn); PF_HASHROW_UNLOCK(sh); return (-1); } } pf_init_threshold(&(*sn)->conn_rate, rule->max_src_conn_rate.limit, rule->max_src_conn_rate.seconds); (*sn)->af = af; (*sn)->rule.ptr = rule; PF_ACPY(&(*sn)->addr, src, af); LIST_INSERT_HEAD(&sh->nodes, *sn, entry); (*sn)->creation = time_uptime; (*sn)->ruletype = rule->action; (*sn)->states = 1; if ((*sn)->rule.ptr != NULL) counter_u64_add((*sn)->rule.ptr->src_nodes, 1); PF_HASHROW_UNLOCK(sh); counter_u64_add(V_pf_status.scounters[SCNT_SRC_NODE_INSERT], 1); } else { if (rule->max_src_states && (*sn)->states >= rule->max_src_states) { counter_u64_add(V_pf_status.lcounters[LCNT_SRCSTATES], 1); return (-1); } } return (0); } void pf_unlink_src_node(struct pf_ksrc_node *src) { PF_HASHROW_ASSERT(&V_pf_srchash[pf_hashsrc(&src->addr, src->af)]); LIST_REMOVE(src, entry); if (src->rule.ptr) counter_u64_add(src->rule.ptr->src_nodes, -1); } u_int pf_free_src_nodes(struct pf_ksrc_node_list *head) { struct pf_ksrc_node *sn, *tmp; u_int count = 0; LIST_FOREACH_SAFE(sn, head, entry, tmp) { pf_free_src_node(sn); count++; } counter_u64_add(V_pf_status.scounters[SCNT_SRC_NODE_REMOVALS], count); return (count); } void pf_mtag_initialize() { pf_mtag_z = uma_zcreate("pf mtags", sizeof(struct m_tag) + sizeof(struct pf_mtag), NULL, NULL, pf_mtag_uminit, NULL, UMA_ALIGN_PTR, 0); } /* Per-vnet data storage structures initialization. */ void pf_initialize() { struct pf_keyhash *kh; struct pf_idhash *ih; struct pf_srchash *sh; u_int i; if (pf_hashsize == 0 || !powerof2(pf_hashsize)) pf_hashsize = PF_HASHSIZ; if (pf_srchashsize == 0 || !powerof2(pf_srchashsize)) pf_srchashsize = PF_SRCHASHSIZ; V_pf_hashseed = arc4random(); /* States and state keys storage. */ V_pf_state_z = uma_zcreate("pf states", sizeof(struct pf_kstate), NULL, NULL, NULL, NULL, UMA_ALIGN_PTR, 0); V_pf_limits[PF_LIMIT_STATES].zone = V_pf_state_z; uma_zone_set_max(V_pf_state_z, PFSTATE_HIWAT); uma_zone_set_warning(V_pf_state_z, "PF states limit reached"); V_pf_state_key_z = uma_zcreate("pf state keys", sizeof(struct pf_state_key), pf_state_key_ctor, NULL, NULL, NULL, UMA_ALIGN_PTR, 0); V_pf_keyhash = mallocarray(pf_hashsize, sizeof(struct pf_keyhash), M_PFHASH, M_NOWAIT | M_ZERO); V_pf_idhash = mallocarray(pf_hashsize, sizeof(struct pf_idhash), M_PFHASH, M_NOWAIT | M_ZERO); if (V_pf_keyhash == NULL || V_pf_idhash == NULL) { printf("pf: Unable to allocate memory for " "state_hashsize %lu.\n", pf_hashsize); free(V_pf_keyhash, M_PFHASH); free(V_pf_idhash, M_PFHASH); pf_hashsize = PF_HASHSIZ; V_pf_keyhash = mallocarray(pf_hashsize, sizeof(struct pf_keyhash), M_PFHASH, M_WAITOK | M_ZERO); V_pf_idhash = mallocarray(pf_hashsize, sizeof(struct pf_idhash), M_PFHASH, M_WAITOK | M_ZERO); } pf_hashmask = pf_hashsize - 1; for (i = 0, kh = V_pf_keyhash, ih = V_pf_idhash; i <= pf_hashmask; i++, kh++, ih++) { mtx_init(&kh->lock, "pf_keyhash", NULL, MTX_DEF | MTX_DUPOK); mtx_init(&ih->lock, "pf_idhash", NULL, MTX_DEF); } /* Source nodes. */ V_pf_sources_z = uma_zcreate("pf source nodes", sizeof(struct pf_ksrc_node), NULL, NULL, NULL, NULL, UMA_ALIGN_PTR, 0); V_pf_limits[PF_LIMIT_SRC_NODES].zone = V_pf_sources_z; uma_zone_set_max(V_pf_sources_z, PFSNODE_HIWAT); uma_zone_set_warning(V_pf_sources_z, "PF source nodes limit reached"); V_pf_srchash = mallocarray(pf_srchashsize, sizeof(struct pf_srchash), M_PFHASH, M_NOWAIT | M_ZERO); if (V_pf_srchash == NULL) { printf("pf: Unable to allocate memory for " "source_hashsize %lu.\n", pf_srchashsize); pf_srchashsize = PF_SRCHASHSIZ; V_pf_srchash = mallocarray(pf_srchashsize, sizeof(struct pf_srchash), M_PFHASH, M_WAITOK | M_ZERO); } pf_srchashmask = pf_srchashsize - 1; for (i = 0, sh = V_pf_srchash; i <= pf_srchashmask; i++, sh++) mtx_init(&sh->lock, "pf_srchash", NULL, MTX_DEF); /* ALTQ */ TAILQ_INIT(&V_pf_altqs[0]); TAILQ_INIT(&V_pf_altqs[1]); TAILQ_INIT(&V_pf_altqs[2]); TAILQ_INIT(&V_pf_altqs[3]); TAILQ_INIT(&V_pf_pabuf); V_pf_altqs_active = &V_pf_altqs[0]; V_pf_altq_ifs_active = &V_pf_altqs[1]; V_pf_altqs_inactive = &V_pf_altqs[2]; V_pf_altq_ifs_inactive = &V_pf_altqs[3]; /* Send & overload+flush queues. */ STAILQ_INIT(&V_pf_sendqueue); SLIST_INIT(&V_pf_overloadqueue); TASK_INIT(&V_pf_overloadtask, 0, pf_overload_task, curvnet); /* Unlinked, but may be referenced rules. */ TAILQ_INIT(&V_pf_unlinked_rules); } void pf_mtag_cleanup() { uma_zdestroy(pf_mtag_z); } void pf_cleanup() { struct pf_keyhash *kh; struct pf_idhash *ih; struct pf_srchash *sh; struct pf_send_entry *pfse, *next; u_int i; for (i = 0, kh = V_pf_keyhash, ih = V_pf_idhash; i <= pf_hashmask; i++, kh++, ih++) { KASSERT(LIST_EMPTY(&kh->keys), ("%s: key hash not empty", __func__)); KASSERT(LIST_EMPTY(&ih->states), ("%s: id hash not empty", __func__)); mtx_destroy(&kh->lock); mtx_destroy(&ih->lock); } free(V_pf_keyhash, M_PFHASH); free(V_pf_idhash, M_PFHASH); for (i = 0, sh = V_pf_srchash; i <= pf_srchashmask; i++, sh++) { KASSERT(LIST_EMPTY(&sh->nodes), ("%s: source node hash not empty", __func__)); mtx_destroy(&sh->lock); } free(V_pf_srchash, M_PFHASH); STAILQ_FOREACH_SAFE(pfse, &V_pf_sendqueue, pfse_next, next) { m_freem(pfse->pfse_m); free(pfse, M_PFTEMP); } uma_zdestroy(V_pf_sources_z); uma_zdestroy(V_pf_state_z); uma_zdestroy(V_pf_state_key_z); } static int pf_mtag_uminit(void *mem, int size, int how) { struct m_tag *t; t = (struct m_tag *)mem; t->m_tag_cookie = MTAG_ABI_COMPAT; t->m_tag_id = PACKET_TAG_PF; t->m_tag_len = sizeof(struct pf_mtag); t->m_tag_free = pf_mtag_free; return (0); } static void pf_mtag_free(struct m_tag *t) { uma_zfree(pf_mtag_z, t); } struct pf_mtag * pf_get_mtag(struct mbuf *m) { struct m_tag *mtag; if ((mtag = m_tag_find(m, PACKET_TAG_PF, NULL)) != NULL) return ((struct pf_mtag *)(mtag + 1)); mtag = uma_zalloc(pf_mtag_z, M_NOWAIT); if (mtag == NULL) return (NULL); bzero(mtag + 1, sizeof(struct pf_mtag)); m_tag_prepend(m, mtag); return ((struct pf_mtag *)(mtag + 1)); } static int pf_state_key_attach(struct pf_state_key *skw, struct pf_state_key *sks, struct pf_kstate *s) { struct pf_keyhash *khs, *khw, *kh; struct pf_state_key *sk, *cur; struct pf_kstate *si, *olds = NULL; int idx; KASSERT(s->refs == 0, ("%s: state not pristine", __func__)); KASSERT(s->key[PF_SK_WIRE] == NULL, ("%s: state has key", __func__)); KASSERT(s->key[PF_SK_STACK] == NULL, ("%s: state has key", __func__)); /* * We need to lock hash slots of both keys. To avoid deadlock * we always lock the slot with lower address first. Unlock order * isn't important. * * We also need to lock ID hash slot before dropping key * locks. On success we return with ID hash slot locked. */ if (skw == sks) { khs = khw = &V_pf_keyhash[pf_hashkey(skw)]; PF_HASHROW_LOCK(khs); } else { khs = &V_pf_keyhash[pf_hashkey(sks)]; khw = &V_pf_keyhash[pf_hashkey(skw)]; if (khs == khw) { PF_HASHROW_LOCK(khs); } else if (khs < khw) { PF_HASHROW_LOCK(khs); PF_HASHROW_LOCK(khw); } else { PF_HASHROW_LOCK(khw); PF_HASHROW_LOCK(khs); } } #define KEYS_UNLOCK() do { \ if (khs != khw) { \ PF_HASHROW_UNLOCK(khs); \ PF_HASHROW_UNLOCK(khw); \ } else \ PF_HASHROW_UNLOCK(khs); \ } while (0) /* * First run: start with wire key. */ sk = skw; kh = khw; idx = PF_SK_WIRE; MPASS(s->lock == NULL); s->lock = &V_pf_idhash[PF_IDHASH(s)].lock; keyattach: LIST_FOREACH(cur, &kh->keys, entry) if (bcmp(cur, sk, sizeof(struct pf_state_key_cmp)) == 0) break; if (cur != NULL) { /* Key exists. Check for same kif, if none, add to key. */ TAILQ_FOREACH(si, &cur->states[idx], key_list[idx]) { struct pf_idhash *ih = &V_pf_idhash[PF_IDHASH(si)]; PF_HASHROW_LOCK(ih); if (si->kif == s->kif && si->direction == s->direction) { if (sk->proto == IPPROTO_TCP && si->src.state >= TCPS_FIN_WAIT_2 && si->dst.state >= TCPS_FIN_WAIT_2) { /* * New state matches an old >FIN_WAIT_2 * state. We can't drop key hash locks, * thus we can't unlink it properly. * * As a workaround we drop it into * TCPS_CLOSED state, schedule purge * ASAP and push it into the very end * of the slot TAILQ, so that it won't * conflict with our new state. */ pf_set_protostate(si, PF_PEER_BOTH, TCPS_CLOSED); si->timeout = PFTM_PURGE; olds = si; } else { if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("pf: %s key attach " "failed on %s: ", (idx == PF_SK_WIRE) ? "wire" : "stack", s->kif->pfik_name); pf_print_state_parts(s, (idx == PF_SK_WIRE) ? sk : NULL, (idx == PF_SK_STACK) ? sk : NULL); printf(", existing: "); pf_print_state_parts(si, (idx == PF_SK_WIRE) ? sk : NULL, (idx == PF_SK_STACK) ? sk : NULL); printf("\n"); } PF_HASHROW_UNLOCK(ih); KEYS_UNLOCK(); uma_zfree(V_pf_state_key_z, sk); if (idx == PF_SK_STACK) pf_detach_state(s); return (EEXIST); /* collision! */ } } PF_HASHROW_UNLOCK(ih); } uma_zfree(V_pf_state_key_z, sk); s->key[idx] = cur; } else { LIST_INSERT_HEAD(&kh->keys, sk, entry); s->key[idx] = sk; } stateattach: /* List is sorted, if-bound states before floating. */ if (s->kif == V_pfi_all) TAILQ_INSERT_TAIL(&s->key[idx]->states[idx], s, key_list[idx]); else TAILQ_INSERT_HEAD(&s->key[idx]->states[idx], s, key_list[idx]); if (olds) { TAILQ_REMOVE(&s->key[idx]->states[idx], olds, key_list[idx]); TAILQ_INSERT_TAIL(&s->key[idx]->states[idx], olds, key_list[idx]); olds = NULL; } /* * Attach done. See how should we (or should not?) * attach a second key. */ if (sks == skw) { s->key[PF_SK_STACK] = s->key[PF_SK_WIRE]; idx = PF_SK_STACK; sks = NULL; goto stateattach; } else if (sks != NULL) { /* * Continue attaching with stack key. */ sk = sks; kh = khs; idx = PF_SK_STACK; sks = NULL; goto keyattach; } PF_STATE_LOCK(s); KEYS_UNLOCK(); KASSERT(s->key[PF_SK_WIRE] != NULL && s->key[PF_SK_STACK] != NULL, ("%s failure", __func__)); return (0); #undef KEYS_UNLOCK } static void pf_detach_state(struct pf_kstate *s) { struct pf_state_key *sks = s->key[PF_SK_STACK]; struct pf_keyhash *kh; if (sks != NULL) { kh = &V_pf_keyhash[pf_hashkey(sks)]; PF_HASHROW_LOCK(kh); if (s->key[PF_SK_STACK] != NULL) pf_state_key_detach(s, PF_SK_STACK); /* * If both point to same key, then we are done. */ if (sks == s->key[PF_SK_WIRE]) { pf_state_key_detach(s, PF_SK_WIRE); PF_HASHROW_UNLOCK(kh); return; } PF_HASHROW_UNLOCK(kh); } if (s->key[PF_SK_WIRE] != NULL) { kh = &V_pf_keyhash[pf_hashkey(s->key[PF_SK_WIRE])]; PF_HASHROW_LOCK(kh); if (s->key[PF_SK_WIRE] != NULL) pf_state_key_detach(s, PF_SK_WIRE); PF_HASHROW_UNLOCK(kh); } } static void pf_state_key_detach(struct pf_kstate *s, int idx) { struct pf_state_key *sk = s->key[idx]; #ifdef INVARIANTS struct pf_keyhash *kh = &V_pf_keyhash[pf_hashkey(sk)]; PF_HASHROW_ASSERT(kh); #endif TAILQ_REMOVE(&sk->states[idx], s, key_list[idx]); s->key[idx] = NULL; if (TAILQ_EMPTY(&sk->states[0]) && TAILQ_EMPTY(&sk->states[1])) { LIST_REMOVE(sk, entry); uma_zfree(V_pf_state_key_z, sk); } } static int pf_state_key_ctor(void *mem, int size, void *arg, int flags) { struct pf_state_key *sk = mem; bzero(sk, sizeof(struct pf_state_key_cmp)); TAILQ_INIT(&sk->states[PF_SK_WIRE]); TAILQ_INIT(&sk->states[PF_SK_STACK]); return (0); } struct pf_state_key * pf_state_key_setup(struct pf_pdesc *pd, struct pf_addr *saddr, struct pf_addr *daddr, u_int16_t sport, u_int16_t dport) { struct pf_state_key *sk; sk = uma_zalloc(V_pf_state_key_z, M_NOWAIT); if (sk == NULL) return (NULL); PF_ACPY(&sk->addr[pd->sidx], saddr, pd->af); PF_ACPY(&sk->addr[pd->didx], daddr, pd->af); sk->port[pd->sidx] = sport; sk->port[pd->didx] = dport; sk->proto = pd->proto; sk->af = pd->af; return (sk); } struct pf_state_key * pf_state_key_clone(struct pf_state_key *orig) { struct pf_state_key *sk; sk = uma_zalloc(V_pf_state_key_z, M_NOWAIT); if (sk == NULL) return (NULL); bcopy(orig, sk, sizeof(struct pf_state_key_cmp)); return (sk); } int pf_state_insert(struct pfi_kkif *kif, struct pfi_kkif *orig_kif, struct pf_state_key *skw, struct pf_state_key *sks, struct pf_kstate *s) { struct pf_idhash *ih; struct pf_kstate *cur; int error; KASSERT(TAILQ_EMPTY(&sks->states[0]) && TAILQ_EMPTY(&sks->states[1]), ("%s: sks not pristine", __func__)); KASSERT(TAILQ_EMPTY(&skw->states[0]) && TAILQ_EMPTY(&skw->states[1]), ("%s: skw not pristine", __func__)); KASSERT(s->refs == 0, ("%s: state not pristine", __func__)); s->kif = kif; s->orig_kif = orig_kif; if (s->id == 0 && s->creatorid == 0) { /* XXX: should be atomic, but probability of collision low */ if ((s->id = V_pf_stateid[curcpu]++) == PFID_MAXID) V_pf_stateid[curcpu] = 1; s->id |= (uint64_t )curcpu << PFID_CPUSHIFT; s->id = htobe64(s->id); s->creatorid = V_pf_status.hostid; } /* Returns with ID locked on success. */ if ((error = pf_state_key_attach(skw, sks, s)) != 0) return (error); ih = &V_pf_idhash[PF_IDHASH(s)]; PF_HASHROW_ASSERT(ih); LIST_FOREACH(cur, &ih->states, entry) if (cur->id == s->id && cur->creatorid == s->creatorid) break; if (cur != NULL) { PF_HASHROW_UNLOCK(ih); if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("pf: state ID collision: " "id: %016llx creatorid: %08x\n", (unsigned long long)be64toh(s->id), ntohl(s->creatorid)); } pf_detach_state(s); return (EEXIST); } LIST_INSERT_HEAD(&ih->states, s, entry); /* One for keys, one for ID hash. */ refcount_init(&s->refs, 2); pf_counter_u64_add(&V_pf_status.fcounters[FCNT_STATE_INSERT], 1); if (V_pfsync_insert_state_ptr != NULL) V_pfsync_insert_state_ptr(s); /* Returns locked. */ return (0); } /* * Find state by ID: returns with locked row on success. */ struct pf_kstate * pf_find_state_byid(uint64_t id, uint32_t creatorid) { struct pf_idhash *ih; struct pf_kstate *s; pf_counter_u64_add(&V_pf_status.fcounters[FCNT_STATE_SEARCH], 1); ih = &V_pf_idhash[(be64toh(id) % (pf_hashmask + 1))]; PF_HASHROW_LOCK(ih); LIST_FOREACH(s, &ih->states, entry) if (s->id == id && s->creatorid == creatorid) break; if (s == NULL) PF_HASHROW_UNLOCK(ih); return (s); } /* * Find state by key. * Returns with ID hash slot locked on success. */ static struct pf_kstate * pf_find_state(struct pfi_kkif *kif, struct pf_state_key_cmp *key, u_int dir) { struct pf_keyhash *kh; struct pf_state_key *sk; struct pf_kstate *s; int idx; pf_counter_u64_add(&V_pf_status.fcounters[FCNT_STATE_SEARCH], 1); kh = &V_pf_keyhash[pf_hashkey((struct pf_state_key *)key)]; PF_HASHROW_LOCK(kh); LIST_FOREACH(sk, &kh->keys, entry) if (bcmp(sk, key, sizeof(struct pf_state_key_cmp)) == 0) break; if (sk == NULL) { PF_HASHROW_UNLOCK(kh); return (NULL); } idx = (dir == PF_IN ? PF_SK_WIRE : PF_SK_STACK); /* List is sorted, if-bound states before floating ones. */ TAILQ_FOREACH(s, &sk->states[idx], key_list[idx]) if (s->kif == V_pfi_all || s->kif == kif) { PF_STATE_LOCK(s); PF_HASHROW_UNLOCK(kh); if (__predict_false(s->timeout >= PFTM_MAX)) { /* * State is either being processed by * pf_unlink_state() in an other thread, or * is scheduled for immediate expiry. */ PF_STATE_UNLOCK(s); return (NULL); } return (s); } PF_HASHROW_UNLOCK(kh); return (NULL); } struct pf_kstate * pf_find_state_all(struct pf_state_key_cmp *key, u_int dir, int *more) { struct pf_keyhash *kh; struct pf_state_key *sk; struct pf_kstate *s, *ret = NULL; int idx, inout = 0; pf_counter_u64_add(&V_pf_status.fcounters[FCNT_STATE_SEARCH], 1); kh = &V_pf_keyhash[pf_hashkey((struct pf_state_key *)key)]; PF_HASHROW_LOCK(kh); LIST_FOREACH(sk, &kh->keys, entry) if (bcmp(sk, key, sizeof(struct pf_state_key_cmp)) == 0) break; if (sk == NULL) { PF_HASHROW_UNLOCK(kh); return (NULL); } switch (dir) { case PF_IN: idx = PF_SK_WIRE; break; case PF_OUT: idx = PF_SK_STACK; break; case PF_INOUT: idx = PF_SK_WIRE; inout = 1; break; default: panic("%s: dir %u", __func__, dir); } second_run: TAILQ_FOREACH(s, &sk->states[idx], key_list[idx]) { if (more == NULL) { PF_HASHROW_UNLOCK(kh); return (s); } if (ret) (*more)++; else ret = s; } if (inout == 1) { inout = 0; idx = PF_SK_STACK; goto second_run; } PF_HASHROW_UNLOCK(kh); return (ret); } bool pf_find_state_all_exists(struct pf_state_key_cmp *key, u_int dir) { struct pf_kstate *s; s = pf_find_state_all(key, dir, NULL); return (s != NULL); } /* END state table stuff */ static void pf_send(struct pf_send_entry *pfse) { PF_SENDQ_LOCK(); STAILQ_INSERT_TAIL(&V_pf_sendqueue, pfse, pfse_next); PF_SENDQ_UNLOCK(); swi_sched(V_pf_swi_cookie, 0); } static bool pf_isforlocal(struct mbuf *m, int af) { switch (af) { #ifdef INET case AF_INET: { struct rm_priotracker in_ifa_tracker; struct ip *ip; struct in_ifaddr *ia = NULL; ip = mtod(m, struct ip *); IN_IFADDR_RLOCK(&in_ifa_tracker); LIST_FOREACH(ia, INADDR_HASH(ip->ip_dst.s_addr), ia_hash) { if (IA_SIN(ia)->sin_addr.s_addr == ip->ip_dst.s_addr) { IN_IFADDR_RUNLOCK(&in_ifa_tracker); return (true); } } IN_IFADDR_RUNLOCK(&in_ifa_tracker); break; } #endif #ifdef INET6 case AF_INET6: { struct ip6_hdr *ip6; struct in6_ifaddr *ia; ip6 = mtod(m, struct ip6_hdr *); ia = in6ifa_ifwithaddr(&ip6->ip6_dst, 0 /* XXX */, false); if (ia == NULL) return (false); return (! (ia->ia6_flags & IN6_IFF_NOTREADY)); } #endif default: panic("Unsupported af %d", af); } return (false); } void pf_intr(void *v) { struct epoch_tracker et; struct pf_send_head queue; struct pf_send_entry *pfse, *next; CURVNET_SET((struct vnet *)v); PF_SENDQ_LOCK(); queue = V_pf_sendqueue; STAILQ_INIT(&V_pf_sendqueue); PF_SENDQ_UNLOCK(); NET_EPOCH_ENTER(et); STAILQ_FOREACH_SAFE(pfse, &queue, pfse_next, next) { switch (pfse->pfse_type) { #ifdef INET case PFSE_IP: { if (pf_isforlocal(pfse->pfse_m, AF_INET)) { pfse->pfse_m->m_flags |= M_SKIP_FIREWALL; pfse->pfse_m->m_pkthdr.csum_flags |= CSUM_IP_VALID | CSUM_IP_CHECKED; ip_input(pfse->pfse_m); } else { ip_output(pfse->pfse_m, NULL, NULL, 0, NULL, NULL); } break; } case PFSE_ICMP: icmp_error(pfse->pfse_m, pfse->icmpopts.type, pfse->icmpopts.code, 0, pfse->icmpopts.mtu); break; #endif /* INET */ #ifdef INET6 case PFSE_IP6: if (pf_isforlocal(pfse->pfse_m, AF_INET6)) { pfse->pfse_m->m_flags |= M_SKIP_FIREWALL; ip6_input(pfse->pfse_m); } else { ip6_output(pfse->pfse_m, NULL, NULL, 0, NULL, NULL, NULL); } break; case PFSE_ICMP6: icmp6_error(pfse->pfse_m, pfse->icmpopts.type, pfse->icmpopts.code, pfse->icmpopts.mtu); break; #endif /* INET6 */ default: panic("%s: unknown type", __func__); } free(pfse, M_PFTEMP); } NET_EPOCH_EXIT(et); CURVNET_RESTORE(); } #define pf_purge_thread_period (hz / 10) #ifdef PF_WANT_32_TO_64_COUNTER static void pf_status_counter_u64_periodic(void) { PF_RULES_RASSERT(); if ((V_pf_counter_periodic_iter % (pf_purge_thread_period * 10 * 60)) != 0) { return; } for (int i = 0; i < FCNT_MAX; i++) { pf_counter_u64_periodic(&V_pf_status.fcounters[i]); } } static void pf_kif_counter_u64_periodic(void) { struct pfi_kkif *kif; size_t r, run; PF_RULES_RASSERT(); if (__predict_false(V_pf_allkifcount == 0)) { return; } if ((V_pf_counter_periodic_iter % (pf_purge_thread_period * 10 * 300)) != 0) { return; } run = V_pf_allkifcount / 10; if (run < 5) run = 5; for (r = 0; r < run; r++) { kif = LIST_NEXT(V_pf_kifmarker, pfik_allkiflist); if (kif == NULL) { LIST_REMOVE(V_pf_kifmarker, pfik_allkiflist); LIST_INSERT_HEAD(&V_pf_allkiflist, V_pf_kifmarker, pfik_allkiflist); break; } LIST_REMOVE(V_pf_kifmarker, pfik_allkiflist); LIST_INSERT_AFTER(kif, V_pf_kifmarker, pfik_allkiflist); for (int i = 0; i < 2; i++) { for (int j = 0; j < 2; j++) { for (int k = 0; k < 2; k++) { pf_counter_u64_periodic(&kif->pfik_packets[i][j][k]); pf_counter_u64_periodic(&kif->pfik_bytes[i][j][k]); } } } } } static void pf_rule_counter_u64_periodic(void) { struct pf_krule *rule; size_t r, run; PF_RULES_RASSERT(); if (__predict_false(V_pf_allrulecount == 0)) { return; } if ((V_pf_counter_periodic_iter % (pf_purge_thread_period * 10 * 300)) != 0) { return; } run = V_pf_allrulecount / 10; if (run < 5) run = 5; for (r = 0; r < run; r++) { rule = LIST_NEXT(V_pf_rulemarker, allrulelist); if (rule == NULL) { LIST_REMOVE(V_pf_rulemarker, allrulelist); LIST_INSERT_HEAD(&V_pf_allrulelist, V_pf_rulemarker, allrulelist); break; } LIST_REMOVE(V_pf_rulemarker, allrulelist); LIST_INSERT_AFTER(rule, V_pf_rulemarker, allrulelist); pf_counter_u64_periodic(&rule->evaluations); for (int i = 0; i < 2; i++) { pf_counter_u64_periodic(&rule->packets[i]); pf_counter_u64_periodic(&rule->bytes[i]); } } } static void pf_counter_u64_periodic_main(void) { PF_RULES_RLOCK_TRACKER; V_pf_counter_periodic_iter++; PF_RULES_RLOCK(); pf_counter_u64_critical_enter(); pf_status_counter_u64_periodic(); pf_kif_counter_u64_periodic(); pf_rule_counter_u64_periodic(); pf_counter_u64_critical_exit(); PF_RULES_RUNLOCK(); } #else #define pf_counter_u64_periodic_main() do { } while (0) #endif void pf_purge_thread(void *unused __unused) { VNET_ITERATOR_DECL(vnet_iter); sx_xlock(&pf_end_lock); while (pf_end_threads == 0) { sx_sleep(pf_purge_thread, &pf_end_lock, 0, "pftm", pf_purge_thread_period); VNET_LIST_RLOCK(); VNET_FOREACH(vnet_iter) { CURVNET_SET(vnet_iter); /* Wait until V_pf_default_rule is initialized. */ if (V_pf_vnet_active == 0) { CURVNET_RESTORE(); continue; } pf_counter_u64_periodic_main(); /* * Process 1/interval fraction of the state * table every run. */ V_pf_purge_idx = pf_purge_expired_states(V_pf_purge_idx, pf_hashmask / (V_pf_default_rule.timeout[PFTM_INTERVAL] * 10)); /* * Purge other expired types every * PFTM_INTERVAL seconds. */ if (V_pf_purge_idx == 0) { /* * Order is important: * - states and src nodes reference rules * - states and rules reference kifs */ pf_purge_expired_fragments(); pf_purge_expired_src_nodes(); pf_purge_unlinked_rules(); pfi_kkif_purge(); } CURVNET_RESTORE(); } VNET_LIST_RUNLOCK(); } pf_end_threads++; sx_xunlock(&pf_end_lock); kproc_exit(0); } void pf_unload_vnet_purge(void) { /* * To cleanse up all kifs and rules we need * two runs: first one clears reference flags, * then pf_purge_expired_states() doesn't * raise them, and then second run frees. */ pf_purge_unlinked_rules(); pfi_kkif_purge(); /* * Now purge everything. */ pf_purge_expired_states(0, pf_hashmask); pf_purge_fragments(UINT_MAX); pf_purge_expired_src_nodes(); /* * Now all kifs & rules should be unreferenced, * thus should be successfully freed. */ pf_purge_unlinked_rules(); pfi_kkif_purge(); } u_int32_t pf_state_expires(const struct pf_kstate *state) { u_int32_t timeout; u_int32_t start; u_int32_t end; u_int32_t states; /* handle all PFTM_* > PFTM_MAX here */ if (state->timeout == PFTM_PURGE) return (time_uptime); KASSERT(state->timeout != PFTM_UNLINKED, ("pf_state_expires: timeout == PFTM_UNLINKED")); KASSERT((state->timeout < PFTM_MAX), ("pf_state_expires: timeout > PFTM_MAX")); timeout = state->rule.ptr->timeout[state->timeout]; if (!timeout) timeout = V_pf_default_rule.timeout[state->timeout]; start = state->rule.ptr->timeout[PFTM_ADAPTIVE_START]; if (start && state->rule.ptr != &V_pf_default_rule) { end = state->rule.ptr->timeout[PFTM_ADAPTIVE_END]; states = counter_u64_fetch(state->rule.ptr->states_cur); } else { start = V_pf_default_rule.timeout[PFTM_ADAPTIVE_START]; end = V_pf_default_rule.timeout[PFTM_ADAPTIVE_END]; states = V_pf_status.states; } if (end && states > start && start < end) { if (states < end) { timeout = (u_int64_t)timeout * (end - states) / (end - start); return (state->expire + timeout); } else return (time_uptime); } return (state->expire + timeout); } void pf_purge_expired_src_nodes() { struct pf_ksrc_node_list freelist; struct pf_srchash *sh; struct pf_ksrc_node *cur, *next; int i; LIST_INIT(&freelist); for (i = 0, sh = V_pf_srchash; i <= pf_srchashmask; i++, sh++) { PF_HASHROW_LOCK(sh); LIST_FOREACH_SAFE(cur, &sh->nodes, entry, next) if (cur->states == 0 && cur->expire <= time_uptime) { pf_unlink_src_node(cur); LIST_INSERT_HEAD(&freelist, cur, entry); } else if (cur->rule.ptr != NULL) cur->rule.ptr->rule_ref |= PFRULE_REFS; PF_HASHROW_UNLOCK(sh); } pf_free_src_nodes(&freelist); V_pf_status.src_nodes = uma_zone_get_cur(V_pf_sources_z); } static void pf_src_tree_remove_state(struct pf_kstate *s) { struct pf_ksrc_node *sn; struct pf_srchash *sh; uint32_t timeout; timeout = s->rule.ptr->timeout[PFTM_SRC_NODE] ? s->rule.ptr->timeout[PFTM_SRC_NODE] : V_pf_default_rule.timeout[PFTM_SRC_NODE]; if (s->src_node != NULL) { sn = s->src_node; sh = &V_pf_srchash[pf_hashsrc(&sn->addr, sn->af)]; PF_HASHROW_LOCK(sh); if (s->src.tcp_est) --sn->conn; if (--sn->states == 0) sn->expire = time_uptime + timeout; PF_HASHROW_UNLOCK(sh); } if (s->nat_src_node != s->src_node && s->nat_src_node != NULL) { sn = s->nat_src_node; sh = &V_pf_srchash[pf_hashsrc(&sn->addr, sn->af)]; PF_HASHROW_LOCK(sh); if (--sn->states == 0) sn->expire = time_uptime + timeout; PF_HASHROW_UNLOCK(sh); } s->src_node = s->nat_src_node = NULL; } /* * Unlink and potentilly free a state. Function may be * called with ID hash row locked, but always returns * unlocked, since it needs to go through key hash locking. */ int pf_unlink_state(struct pf_kstate *s, u_int flags) { struct pf_idhash *ih = &V_pf_idhash[PF_IDHASH(s)]; if ((flags & PF_ENTER_LOCKED) == 0) PF_HASHROW_LOCK(ih); else PF_HASHROW_ASSERT(ih); if (s->timeout == PFTM_UNLINKED) { /* * State is being processed * by pf_unlink_state() in * an other thread. */ PF_HASHROW_UNLOCK(ih); return (0); /* XXXGL: undefined actually */ } if (s->src.state == PF_TCPS_PROXY_DST) { /* XXX wire key the right one? */ pf_send_tcp(s->rule.ptr, s->key[PF_SK_WIRE]->af, &s->key[PF_SK_WIRE]->addr[1], &s->key[PF_SK_WIRE]->addr[0], s->key[PF_SK_WIRE]->port[1], s->key[PF_SK_WIRE]->port[0], s->src.seqhi, s->src.seqlo + 1, TH_RST|TH_ACK, 0, 0, 0, 1, s->tag); } LIST_REMOVE(s, entry); pf_src_tree_remove_state(s); if (V_pfsync_delete_state_ptr != NULL) V_pfsync_delete_state_ptr(s); STATE_DEC_COUNTERS(s); s->timeout = PFTM_UNLINKED; PF_HASHROW_UNLOCK(ih); pf_detach_state(s); /* pf_state_insert() initialises refs to 2 */ return (pf_release_staten(s, 2)); } struct pf_kstate * pf_alloc_state(int flags) { return (uma_zalloc(V_pf_state_z, flags | M_ZERO)); } void pf_free_state(struct pf_kstate *cur) { KASSERT(cur->refs == 0, ("%s: %p has refs", __func__, cur)); KASSERT(cur->timeout == PFTM_UNLINKED, ("%s: timeout %u", __func__, cur->timeout)); pf_normalize_tcp_cleanup(cur); uma_zfree(V_pf_state_z, cur); pf_counter_u64_add(&V_pf_status.fcounters[FCNT_STATE_REMOVALS], 1); } /* * Called only from pf_purge_thread(), thus serialized. */ static u_int pf_purge_expired_states(u_int i, int maxcheck) { struct pf_idhash *ih; struct pf_kstate *s; V_pf_status.states = uma_zone_get_cur(V_pf_state_z); /* * Go through hash and unlink states that expire now. */ while (maxcheck > 0) { ih = &V_pf_idhash[i]; /* only take the lock if we expect to do work */ if (!LIST_EMPTY(&ih->states)) { relock: PF_HASHROW_LOCK(ih); LIST_FOREACH(s, &ih->states, entry) { if (pf_state_expires(s) <= time_uptime) { V_pf_status.states -= pf_unlink_state(s, PF_ENTER_LOCKED); goto relock; } s->rule.ptr->rule_ref |= PFRULE_REFS; if (s->nat_rule.ptr != NULL) s->nat_rule.ptr->rule_ref |= PFRULE_REFS; if (s->anchor.ptr != NULL) s->anchor.ptr->rule_ref |= PFRULE_REFS; s->kif->pfik_flags |= PFI_IFLAG_REFS; if (s->rt_kif) s->rt_kif->pfik_flags |= PFI_IFLAG_REFS; } PF_HASHROW_UNLOCK(ih); } /* Return when we hit end of hash. */ if (++i > pf_hashmask) { V_pf_status.states = uma_zone_get_cur(V_pf_state_z); return (0); } maxcheck--; } V_pf_status.states = uma_zone_get_cur(V_pf_state_z); return (i); } static void pf_purge_unlinked_rules() { struct pf_krulequeue tmpq; struct pf_krule *r, *r1; /* * If we have overloading task pending, then we'd * better skip purging this time. There is a tiny * probability that overloading task references * an already unlinked rule. */ PF_OVERLOADQ_LOCK(); if (!SLIST_EMPTY(&V_pf_overloadqueue)) { PF_OVERLOADQ_UNLOCK(); return; } PF_OVERLOADQ_UNLOCK(); /* * Do naive mark-and-sweep garbage collecting of old rules. * Reference flag is raised by pf_purge_expired_states() * and pf_purge_expired_src_nodes(). * * To avoid LOR between PF_UNLNKDRULES_LOCK/PF_RULES_WLOCK, * use a temporary queue. */ TAILQ_INIT(&tmpq); PF_UNLNKDRULES_LOCK(); TAILQ_FOREACH_SAFE(r, &V_pf_unlinked_rules, entries, r1) { if (!(r->rule_ref & PFRULE_REFS)) { TAILQ_REMOVE(&V_pf_unlinked_rules, r, entries); TAILQ_INSERT_TAIL(&tmpq, r, entries); } else r->rule_ref &= ~PFRULE_REFS; } PF_UNLNKDRULES_UNLOCK(); if (!TAILQ_EMPTY(&tmpq)) { PF_RULES_WLOCK(); TAILQ_FOREACH_SAFE(r, &tmpq, entries, r1) { TAILQ_REMOVE(&tmpq, r, entries); pf_free_rule(r); } PF_RULES_WUNLOCK(); } } void pf_print_host(struct pf_addr *addr, u_int16_t p, sa_family_t af) { switch (af) { #ifdef INET case AF_INET: { u_int32_t a = ntohl(addr->addr32[0]); printf("%u.%u.%u.%u", (a>>24)&255, (a>>16)&255, (a>>8)&255, a&255); if (p) { p = ntohs(p); printf(":%u", p); } break; } #endif /* INET */ #ifdef INET6 case AF_INET6: { u_int16_t b; u_int8_t i, curstart, curend, maxstart, maxend; curstart = curend = maxstart = maxend = 255; for (i = 0; i < 8; i++) { if (!addr->addr16[i]) { if (curstart == 255) curstart = i; curend = i; } else { if ((curend - curstart) > (maxend - maxstart)) { maxstart = curstart; maxend = curend; } curstart = curend = 255; } } if ((curend - curstart) > (maxend - maxstart)) { maxstart = curstart; maxend = curend; } for (i = 0; i < 8; i++) { if (i >= maxstart && i <= maxend) { if (i == 0) printf(":"); if (i == maxend) printf(":"); } else { b = ntohs(addr->addr16[i]); printf("%x", b); if (i < 7) printf(":"); } } if (p) { p = ntohs(p); printf("[%u]", p); } break; } #endif /* INET6 */ } } void pf_print_state(struct pf_kstate *s) { pf_print_state_parts(s, NULL, NULL); } static void pf_print_state_parts(struct pf_kstate *s, struct pf_state_key *skwp, struct pf_state_key *sksp) { struct pf_state_key *skw, *sks; u_int8_t proto, dir; /* Do our best to fill these, but they're skipped if NULL */ skw = skwp ? skwp : (s ? s->key[PF_SK_WIRE] : NULL); sks = sksp ? sksp : (s ? s->key[PF_SK_STACK] : NULL); proto = skw ? skw->proto : (sks ? sks->proto : 0); dir = s ? s->direction : 0; switch (proto) { case IPPROTO_IPV4: printf("IPv4"); break; case IPPROTO_IPV6: printf("IPv6"); break; case IPPROTO_TCP: printf("TCP"); break; case IPPROTO_UDP: printf("UDP"); break; case IPPROTO_ICMP: printf("ICMP"); break; case IPPROTO_ICMPV6: printf("ICMPv6"); break; default: printf("%u", proto); break; } switch (dir) { case PF_IN: printf(" in"); break; case PF_OUT: printf(" out"); break; } if (skw) { printf(" wire: "); pf_print_host(&skw->addr[0], skw->port[0], skw->af); printf(" "); pf_print_host(&skw->addr[1], skw->port[1], skw->af); } if (sks) { printf(" stack: "); if (sks != skw) { pf_print_host(&sks->addr[0], sks->port[0], sks->af); printf(" "); pf_print_host(&sks->addr[1], sks->port[1], sks->af); } else printf("-"); } if (s) { if (proto == IPPROTO_TCP) { printf(" [lo=%u high=%u win=%u modulator=%u", s->src.seqlo, s->src.seqhi, s->src.max_win, s->src.seqdiff); if (s->src.wscale && s->dst.wscale) printf(" wscale=%u", s->src.wscale & PF_WSCALE_MASK); printf("]"); printf(" [lo=%u high=%u win=%u modulator=%u", s->dst.seqlo, s->dst.seqhi, s->dst.max_win, s->dst.seqdiff); if (s->src.wscale && s->dst.wscale) printf(" wscale=%u", s->dst.wscale & PF_WSCALE_MASK); printf("]"); } printf(" %u:%u", s->src.state, s->dst.state); } } void pf_print_flags(u_int8_t f) { if (f) printf(" "); if (f & TH_FIN) printf("F"); if (f & TH_SYN) printf("S"); if (f & TH_RST) printf("R"); if (f & TH_PUSH) printf("P"); if (f & TH_ACK) printf("A"); if (f & TH_URG) printf("U"); if (f & TH_ECE) printf("E"); if (f & TH_CWR) printf("W"); } #define PF_SET_SKIP_STEPS(i) \ do { \ while (head[i] != cur) { \ head[i]->skip[i].ptr = cur; \ head[i] = TAILQ_NEXT(head[i], entries); \ } \ } while (0) void pf_calc_skip_steps(struct pf_krulequeue *rules) { struct pf_krule *cur, *prev, *head[PF_SKIP_COUNT]; int i; cur = TAILQ_FIRST(rules); prev = cur; for (i = 0; i < PF_SKIP_COUNT; ++i) head[i] = cur; while (cur != NULL) { if (cur->kif != prev->kif || cur->ifnot != prev->ifnot) PF_SET_SKIP_STEPS(PF_SKIP_IFP); if (cur->direction != prev->direction) PF_SET_SKIP_STEPS(PF_SKIP_DIR); if (cur->af != prev->af) PF_SET_SKIP_STEPS(PF_SKIP_AF); if (cur->proto != prev->proto) PF_SET_SKIP_STEPS(PF_SKIP_PROTO); if (cur->src.neg != prev->src.neg || pf_addr_wrap_neq(&cur->src.addr, &prev->src.addr)) PF_SET_SKIP_STEPS(PF_SKIP_SRC_ADDR); if (cur->src.port[0] != prev->src.port[0] || cur->src.port[1] != prev->src.port[1] || cur->src.port_op != prev->src.port_op) PF_SET_SKIP_STEPS(PF_SKIP_SRC_PORT); if (cur->dst.neg != prev->dst.neg || pf_addr_wrap_neq(&cur->dst.addr, &prev->dst.addr)) PF_SET_SKIP_STEPS(PF_SKIP_DST_ADDR); if (cur->dst.port[0] != prev->dst.port[0] || cur->dst.port[1] != prev->dst.port[1] || cur->dst.port_op != prev->dst.port_op) PF_SET_SKIP_STEPS(PF_SKIP_DST_PORT); prev = cur; cur = TAILQ_NEXT(cur, entries); } for (i = 0; i < PF_SKIP_COUNT; ++i) PF_SET_SKIP_STEPS(i); } static int pf_addr_wrap_neq(struct pf_addr_wrap *aw1, struct pf_addr_wrap *aw2) { if (aw1->type != aw2->type) return (1); switch (aw1->type) { case PF_ADDR_ADDRMASK: case PF_ADDR_RANGE: if (PF_ANEQ(&aw1->v.a.addr, &aw2->v.a.addr, AF_INET6)) return (1); if (PF_ANEQ(&aw1->v.a.mask, &aw2->v.a.mask, AF_INET6)) return (1); return (0); case PF_ADDR_DYNIFTL: return (aw1->p.dyn->pfid_kt != aw2->p.dyn->pfid_kt); case PF_ADDR_NOROUTE: case PF_ADDR_URPFFAILED: return (0); case PF_ADDR_TABLE: return (aw1->p.tbl != aw2->p.tbl); default: printf("invalid address type: %d\n", aw1->type); return (1); } } /** * Checksum updates are a little complicated because the checksum in the TCP/UDP * header isn't always a full checksum. In some cases (i.e. output) it's a * pseudo-header checksum, which is a partial checksum over src/dst IP * addresses, protocol number and length. * * That means we have the following cases: * * Input or forwarding: we don't have TSO, the checksum fields are full * checksums, we need to update the checksum whenever we change anything. * * Output (i.e. the checksum is a pseudo-header checksum): * x The field being updated is src/dst address or affects the length of * the packet. We need to update the pseudo-header checksum (note that this * checksum is not ones' complement). * x Some other field is being modified (e.g. src/dst port numbers): We * don't have to update anything. **/ u_int16_t pf_cksum_fixup(u_int16_t cksum, u_int16_t old, u_int16_t new, u_int8_t udp) { u_int32_t x; x = cksum + old - new; x = (x + (x >> 16)) & 0xffff; /* optimise: eliminate a branch when not udp */ if (udp && cksum == 0x0000) return cksum; if (udp && x == 0x0000) x = 0xffff; return (u_int16_t)(x); } static void pf_patch_8(struct mbuf *m, u_int16_t *cksum, u_int8_t *f, u_int8_t v, bool hi, u_int8_t udp) { u_int16_t old = htons(hi ? (*f << 8) : *f); u_int16_t new = htons(hi ? ( v << 8) : v); if (*f == v) return; *f = v; if (m->m_pkthdr.csum_flags & (CSUM_DELAY_DATA | CSUM_DELAY_DATA_IPV6)) return; *cksum = pf_cksum_fixup(*cksum, old, new, udp); } void pf_patch_16_unaligned(struct mbuf *m, u_int16_t *cksum, void *f, u_int16_t v, bool hi, u_int8_t udp) { u_int8_t *fb = (u_int8_t *)f; u_int8_t *vb = (u_int8_t *)&v; pf_patch_8(m, cksum, fb++, *vb++, hi, udp); pf_patch_8(m, cksum, fb++, *vb++, !hi, udp); } void pf_patch_32_unaligned(struct mbuf *m, u_int16_t *cksum, void *f, u_int32_t v, bool hi, u_int8_t udp) { u_int8_t *fb = (u_int8_t *)f; u_int8_t *vb = (u_int8_t *)&v; pf_patch_8(m, cksum, fb++, *vb++, hi, udp); pf_patch_8(m, cksum, fb++, *vb++, !hi, udp); pf_patch_8(m, cksum, fb++, *vb++, hi, udp); pf_patch_8(m, cksum, fb++, *vb++, !hi, udp); } u_int16_t pf_proto_cksum_fixup(struct mbuf *m, u_int16_t cksum, u_int16_t old, u_int16_t new, u_int8_t udp) { if (m->m_pkthdr.csum_flags & (CSUM_DELAY_DATA | CSUM_DELAY_DATA_IPV6)) return (cksum); return (pf_cksum_fixup(cksum, old, new, udp)); } static void pf_change_ap(struct mbuf *m, struct pf_addr *a, u_int16_t *p, u_int16_t *ic, u_int16_t *pc, struct pf_addr *an, u_int16_t pn, u_int8_t u, sa_family_t af) { struct pf_addr ao; u_int16_t po = *p; PF_ACPY(&ao, a, af); PF_ACPY(a, an, af); if (m->m_pkthdr.csum_flags & (CSUM_DELAY_DATA | CSUM_DELAY_DATA_IPV6)) *pc = ~*pc; *p = pn; switch (af) { #ifdef INET case AF_INET: *ic = pf_cksum_fixup(pf_cksum_fixup(*ic, ao.addr16[0], an->addr16[0], 0), ao.addr16[1], an->addr16[1], 0); *p = pn; *pc = pf_cksum_fixup(pf_cksum_fixup(*pc, ao.addr16[0], an->addr16[0], u), ao.addr16[1], an->addr16[1], u); *pc = pf_proto_cksum_fixup(m, *pc, po, pn, u); break; #endif /* INET */ #ifdef INET6 case AF_INET6: *pc = pf_cksum_fixup(pf_cksum_fixup(pf_cksum_fixup( pf_cksum_fixup(pf_cksum_fixup(pf_cksum_fixup( pf_cksum_fixup(pf_cksum_fixup(*pc, ao.addr16[0], an->addr16[0], u), ao.addr16[1], an->addr16[1], u), ao.addr16[2], an->addr16[2], u), ao.addr16[3], an->addr16[3], u), ao.addr16[4], an->addr16[4], u), ao.addr16[5], an->addr16[5], u), ao.addr16[6], an->addr16[6], u), ao.addr16[7], an->addr16[7], u); *pc = pf_proto_cksum_fixup(m, *pc, po, pn, u); break; #endif /* INET6 */ } if (m->m_pkthdr.csum_flags & (CSUM_DELAY_DATA | CSUM_DELAY_DATA_IPV6)) { *pc = ~*pc; if (! *pc) *pc = 0xffff; } } /* Changes a u_int32_t. Uses a void * so there are no align restrictions */ void pf_change_a(void *a, u_int16_t *c, u_int32_t an, u_int8_t u) { u_int32_t ao; memcpy(&ao, a, sizeof(ao)); memcpy(a, &an, sizeof(u_int32_t)); *c = pf_cksum_fixup(pf_cksum_fixup(*c, ao / 65536, an / 65536, u), ao % 65536, an % 65536, u); } void pf_change_proto_a(struct mbuf *m, void *a, u_int16_t *c, u_int32_t an, u_int8_t udp) { u_int32_t ao; memcpy(&ao, a, sizeof(ao)); memcpy(a, &an, sizeof(u_int32_t)); *c = pf_proto_cksum_fixup(m, pf_proto_cksum_fixup(m, *c, ao / 65536, an / 65536, udp), ao % 65536, an % 65536, udp); } #ifdef INET6 static void pf_change_a6(struct pf_addr *a, u_int16_t *c, struct pf_addr *an, u_int8_t u) { struct pf_addr ao; PF_ACPY(&ao, a, AF_INET6); PF_ACPY(a, an, AF_INET6); *c = pf_cksum_fixup(pf_cksum_fixup(pf_cksum_fixup( pf_cksum_fixup(pf_cksum_fixup(pf_cksum_fixup( pf_cksum_fixup(pf_cksum_fixup(*c, ao.addr16[0], an->addr16[0], u), ao.addr16[1], an->addr16[1], u), ao.addr16[2], an->addr16[2], u), ao.addr16[3], an->addr16[3], u), ao.addr16[4], an->addr16[4], u), ao.addr16[5], an->addr16[5], u), ao.addr16[6], an->addr16[6], u), ao.addr16[7], an->addr16[7], u); } #endif /* INET6 */ static void pf_change_icmp(struct pf_addr *ia, u_int16_t *ip, struct pf_addr *oa, struct pf_addr *na, u_int16_t np, u_int16_t *pc, u_int16_t *h2c, u_int16_t *ic, u_int16_t *hc, u_int8_t u, sa_family_t af) { struct pf_addr oia, ooa; PF_ACPY(&oia, ia, af); if (oa) PF_ACPY(&ooa, oa, af); /* Change inner protocol port, fix inner protocol checksum. */ if (ip != NULL) { u_int16_t oip = *ip; u_int32_t opc; if (pc != NULL) opc = *pc; *ip = np; if (pc != NULL) *pc = pf_cksum_fixup(*pc, oip, *ip, u); *ic = pf_cksum_fixup(*ic, oip, *ip, 0); if (pc != NULL) *ic = pf_cksum_fixup(*ic, opc, *pc, 0); } /* Change inner ip address, fix inner ip and icmp checksums. */ PF_ACPY(ia, na, af); switch (af) { #ifdef INET case AF_INET: { u_int32_t oh2c = *h2c; *h2c = pf_cksum_fixup(pf_cksum_fixup(*h2c, oia.addr16[0], ia->addr16[0], 0), oia.addr16[1], ia->addr16[1], 0); *ic = pf_cksum_fixup(pf_cksum_fixup(*ic, oia.addr16[0], ia->addr16[0], 0), oia.addr16[1], ia->addr16[1], 0); *ic = pf_cksum_fixup(*ic, oh2c, *h2c, 0); break; } #endif /* INET */ #ifdef INET6 case AF_INET6: *ic = pf_cksum_fixup(pf_cksum_fixup(pf_cksum_fixup( pf_cksum_fixup(pf_cksum_fixup(pf_cksum_fixup( pf_cksum_fixup(pf_cksum_fixup(*ic, oia.addr16[0], ia->addr16[0], u), oia.addr16[1], ia->addr16[1], u), oia.addr16[2], ia->addr16[2], u), oia.addr16[3], ia->addr16[3], u), oia.addr16[4], ia->addr16[4], u), oia.addr16[5], ia->addr16[5], u), oia.addr16[6], ia->addr16[6], u), oia.addr16[7], ia->addr16[7], u); break; #endif /* INET6 */ } /* Outer ip address, fix outer ip or icmpv6 checksum, if necessary. */ if (oa) { PF_ACPY(oa, na, af); switch (af) { #ifdef INET case AF_INET: *hc = pf_cksum_fixup(pf_cksum_fixup(*hc, ooa.addr16[0], oa->addr16[0], 0), ooa.addr16[1], oa->addr16[1], 0); break; #endif /* INET */ #ifdef INET6 case AF_INET6: *ic = pf_cksum_fixup(pf_cksum_fixup(pf_cksum_fixup( pf_cksum_fixup(pf_cksum_fixup(pf_cksum_fixup( pf_cksum_fixup(pf_cksum_fixup(*ic, ooa.addr16[0], oa->addr16[0], u), ooa.addr16[1], oa->addr16[1], u), ooa.addr16[2], oa->addr16[2], u), ooa.addr16[3], oa->addr16[3], u), ooa.addr16[4], oa->addr16[4], u), ooa.addr16[5], oa->addr16[5], u), ooa.addr16[6], oa->addr16[6], u), ooa.addr16[7], oa->addr16[7], u); break; #endif /* INET6 */ } } } /* * Need to modulate the sequence numbers in the TCP SACK option * (credits to Krzysztof Pfaff for report and patch) */ static int pf_modulate_sack(struct mbuf *m, int off, struct pf_pdesc *pd, struct tcphdr *th, struct pf_state_peer *dst) { int hlen = (th->th_off << 2) - sizeof(*th), thoptlen = hlen; u_int8_t opts[TCP_MAXOLEN], *opt = opts; int copyback = 0, i, olen; struct sackblk sack; #define TCPOLEN_SACKLEN (TCPOLEN_SACK + 2) if (hlen < TCPOLEN_SACKLEN || !pf_pull_hdr(m, off + sizeof(*th), opts, hlen, NULL, NULL, pd->af)) return 0; while (hlen >= TCPOLEN_SACKLEN) { size_t startoff = opt - opts; olen = opt[1]; switch (*opt) { case TCPOPT_EOL: /* FALLTHROUGH */ case TCPOPT_NOP: opt++; hlen--; break; case TCPOPT_SACK: if (olen > hlen) olen = hlen; if (olen >= TCPOLEN_SACKLEN) { for (i = 2; i + TCPOLEN_SACK <= olen; i += TCPOLEN_SACK) { memcpy(&sack, &opt[i], sizeof(sack)); pf_patch_32_unaligned(m, &th->th_sum, &sack.start, htonl(ntohl(sack.start) - dst->seqdiff), PF_ALGNMNT(startoff), 0); pf_patch_32_unaligned(m, &th->th_sum, &sack.end, htonl(ntohl(sack.end) - dst->seqdiff), PF_ALGNMNT(startoff), 0); memcpy(&opt[i], &sack, sizeof(sack)); } copyback = 1; } /* FALLTHROUGH */ default: if (olen < 2) olen = 2; hlen -= olen; opt += olen; } } if (copyback) m_copyback(m, off + sizeof(*th), thoptlen, (caddr_t)opts); return (copyback); } struct mbuf * pf_build_tcp(const struct pf_krule *r, sa_family_t af, const struct pf_addr *saddr, const struct pf_addr *daddr, u_int16_t sport, u_int16_t dport, u_int32_t seq, u_int32_t ack, u_int8_t flags, u_int16_t win, u_int16_t mss, u_int8_t ttl, int tag, u_int16_t rtag) { struct mbuf *m; int len, tlen; #ifdef INET struct ip *h = NULL; #endif /* INET */ #ifdef INET6 struct ip6_hdr *h6 = NULL; #endif /* INET6 */ struct tcphdr *th; char *opt; struct pf_mtag *pf_mtag; len = 0; th = NULL; /* maximum segment size tcp option */ tlen = sizeof(struct tcphdr); if (mss) tlen += 4; switch (af) { #ifdef INET case AF_INET: len = sizeof(struct ip) + tlen; break; #endif /* INET */ #ifdef INET6 case AF_INET6: len = sizeof(struct ip6_hdr) + tlen; break; #endif /* INET6 */ default: panic("%s: unsupported af %d", __func__, af); } m = m_gethdr(M_NOWAIT, MT_DATA); if (m == NULL) return (NULL); #ifdef MAC mac_netinet_firewall_send(m); #endif if ((pf_mtag = pf_get_mtag(m)) == NULL) { m_freem(m); return (NULL); } if (tag) m->m_flags |= M_SKIP_FIREWALL; pf_mtag->tag = rtag; if (r != NULL && r->rtableid >= 0) M_SETFIB(m, r->rtableid); #ifdef ALTQ if (r != NULL && r->qid) { pf_mtag->qid = r->qid; /* add hints for ecn */ pf_mtag->hdr = mtod(m, struct ip *); } #endif /* ALTQ */ m->m_data += max_linkhdr; m->m_pkthdr.len = m->m_len = len; /* The rest of the stack assumes a rcvif, so provide one. * This is a locally generated packet, so .. close enough. */ m->m_pkthdr.rcvif = V_loif; bzero(m->m_data, len); switch (af) { #ifdef INET case AF_INET: h = mtod(m, struct ip *); /* IP header fields included in the TCP checksum */ h->ip_p = IPPROTO_TCP; h->ip_len = htons(tlen); h->ip_src.s_addr = saddr->v4.s_addr; h->ip_dst.s_addr = daddr->v4.s_addr; th = (struct tcphdr *)((caddr_t)h + sizeof(struct ip)); break; #endif /* INET */ #ifdef INET6 case AF_INET6: h6 = mtod(m, struct ip6_hdr *); /* IP header fields included in the TCP checksum */ h6->ip6_nxt = IPPROTO_TCP; h6->ip6_plen = htons(tlen); memcpy(&h6->ip6_src, &saddr->v6, sizeof(struct in6_addr)); memcpy(&h6->ip6_dst, &daddr->v6, sizeof(struct in6_addr)); th = (struct tcphdr *)((caddr_t)h6 + sizeof(struct ip6_hdr)); break; #endif /* INET6 */ } /* TCP header */ th->th_sport = sport; th->th_dport = dport; th->th_seq = htonl(seq); th->th_ack = htonl(ack); th->th_off = tlen >> 2; th->th_flags = flags; th->th_win = htons(win); if (mss) { opt = (char *)(th + 1); opt[0] = TCPOPT_MAXSEG; opt[1] = 4; HTONS(mss); bcopy((caddr_t)&mss, (caddr_t)(opt + 2), 2); } switch (af) { #ifdef INET case AF_INET: /* TCP checksum */ th->th_sum = in_cksum(m, len); /* Finish the IP header */ h->ip_v = 4; h->ip_hl = sizeof(*h) >> 2; h->ip_tos = IPTOS_LOWDELAY; h->ip_off = htons(V_path_mtu_discovery ? IP_DF : 0); h->ip_len = htons(len); h->ip_ttl = ttl ? ttl : V_ip_defttl; h->ip_sum = 0; break; #endif /* INET */ #ifdef INET6 case AF_INET6: /* TCP checksum */ th->th_sum = in6_cksum(m, IPPROTO_TCP, sizeof(struct ip6_hdr), tlen); h6->ip6_vfc |= IPV6_VERSION; h6->ip6_hlim = IPV6_DEFHLIM; break; #endif /* INET6 */ } return (m); } void pf_send_tcp(const struct pf_krule *r, sa_family_t af, const struct pf_addr *saddr, const struct pf_addr *daddr, u_int16_t sport, u_int16_t dport, u_int32_t seq, u_int32_t ack, u_int8_t flags, u_int16_t win, u_int16_t mss, u_int8_t ttl, int tag, u_int16_t rtag) { struct pf_send_entry *pfse; struct mbuf *m; m = pf_build_tcp(r, af, saddr, daddr, sport, dport, seq, ack, flags, win, mss, ttl, tag, rtag); if (m == NULL) return; /* Allocate outgoing queue entry, mbuf and mbuf tag. */ pfse = malloc(sizeof(*pfse), M_PFTEMP, M_NOWAIT); if (pfse == NULL) { m_freem(m); return; } switch (af) { #ifdef INET case AF_INET: pfse->pfse_type = PFSE_IP; break; #endif /* INET */ #ifdef INET6 case AF_INET6: pfse->pfse_type = PFSE_IP6; break; #endif /* INET6 */ } pfse->pfse_m = m; pf_send(pfse); } static void pf_return(struct pf_krule *r, struct pf_krule *nr, struct pf_pdesc *pd, struct pf_state_key *sk, int off, struct mbuf *m, struct tcphdr *th, struct pfi_kkif *kif, u_int16_t bproto_sum, u_int16_t bip_sum, int hdrlen, u_short *reason) { struct pf_addr * const saddr = pd->src; struct pf_addr * const daddr = pd->dst; sa_family_t af = pd->af; /* undo NAT changes, if they have taken place */ if (nr != NULL) { PF_ACPY(saddr, &sk->addr[pd->sidx], af); PF_ACPY(daddr, &sk->addr[pd->didx], af); if (pd->sport) *pd->sport = sk->port[pd->sidx]; if (pd->dport) *pd->dport = sk->port[pd->didx]; if (pd->proto_sum) *pd->proto_sum = bproto_sum; if (pd->ip_sum) *pd->ip_sum = bip_sum; m_copyback(m, off, hdrlen, pd->hdr.any); } if (pd->proto == IPPROTO_TCP && ((r->rule_flag & PFRULE_RETURNRST) || (r->rule_flag & PFRULE_RETURN)) && !(th->th_flags & TH_RST)) { u_int32_t ack = ntohl(th->th_seq) + pd->p_len; int len = 0; #ifdef INET struct ip *h4; #endif #ifdef INET6 struct ip6_hdr *h6; #endif switch (af) { #ifdef INET case AF_INET: h4 = mtod(m, struct ip *); len = ntohs(h4->ip_len) - off; break; #endif #ifdef INET6 case AF_INET6: h6 = mtod(m, struct ip6_hdr *); len = ntohs(h6->ip6_plen) - (off - sizeof(*h6)); break; #endif } if (pf_check_proto_cksum(m, off, len, IPPROTO_TCP, af)) REASON_SET(reason, PFRES_PROTCKSUM); else { if (th->th_flags & TH_SYN) ack++; if (th->th_flags & TH_FIN) ack++; pf_send_tcp(r, af, pd->dst, pd->src, th->th_dport, th->th_sport, ntohl(th->th_ack), ack, TH_RST|TH_ACK, 0, 0, r->return_ttl, 1, 0); } } else if (pd->proto != IPPROTO_ICMP && af == AF_INET && r->return_icmp) pf_send_icmp(m, r->return_icmp >> 8, r->return_icmp & 255, af, r); else if (pd->proto != IPPROTO_ICMPV6 && af == AF_INET6 && r->return_icmp6) pf_send_icmp(m, r->return_icmp6 >> 8, r->return_icmp6 & 255, af, r); } static int pf_match_ieee8021q_pcp(u_int8_t prio, struct mbuf *m) { struct m_tag *mtag; u_int8_t mpcp; mtag = m_tag_locate(m, MTAG_8021Q, MTAG_8021Q_PCP_IN, NULL); if (mtag == NULL) return (0); if (prio == PF_PRIO_ZERO) prio = 0; mpcp = *(uint8_t *)(mtag + 1); return (mpcp == prio); } static void pf_send_icmp(struct mbuf *m, u_int8_t type, u_int8_t code, sa_family_t af, struct pf_krule *r) { struct pf_send_entry *pfse; struct mbuf *m0; struct pf_mtag *pf_mtag; /* Allocate outgoing queue entry, mbuf and mbuf tag. */ pfse = malloc(sizeof(*pfse), M_PFTEMP, M_NOWAIT); if (pfse == NULL) return; if ((m0 = m_copypacket(m, M_NOWAIT)) == NULL) { free(pfse, M_PFTEMP); return; } if ((pf_mtag = pf_get_mtag(m0)) == NULL) { free(pfse, M_PFTEMP); return; } /* XXX: revisit */ m0->m_flags |= M_SKIP_FIREWALL; if (r->rtableid >= 0) M_SETFIB(m0, r->rtableid); #ifdef ALTQ if (r->qid) { pf_mtag->qid = r->qid; /* add hints for ecn */ pf_mtag->hdr = mtod(m0, struct ip *); } #endif /* ALTQ */ switch (af) { #ifdef INET case AF_INET: pfse->pfse_type = PFSE_ICMP; break; #endif /* INET */ #ifdef INET6 case AF_INET6: pfse->pfse_type = PFSE_ICMP6; break; #endif /* INET6 */ } pfse->pfse_m = m0; pfse->icmpopts.type = type; pfse->icmpopts.code = code; pf_send(pfse); } /* * Return 1 if the addresses a and b match (with mask m), otherwise return 0. * If n is 0, they match if they are equal. If n is != 0, they match if they * are different. */ int pf_match_addr(u_int8_t n, struct pf_addr *a, struct pf_addr *m, struct pf_addr *b, sa_family_t af) { int match = 0; switch (af) { #ifdef INET case AF_INET: if ((a->addr32[0] & m->addr32[0]) == (b->addr32[0] & m->addr32[0])) match++; break; #endif /* INET */ #ifdef INET6 case AF_INET6: if (((a->addr32[0] & m->addr32[0]) == (b->addr32[0] & m->addr32[0])) && ((a->addr32[1] & m->addr32[1]) == (b->addr32[1] & m->addr32[1])) && ((a->addr32[2] & m->addr32[2]) == (b->addr32[2] & m->addr32[2])) && ((a->addr32[3] & m->addr32[3]) == (b->addr32[3] & m->addr32[3]))) match++; break; #endif /* INET6 */ } if (match) { if (n) return (0); else return (1); } else { if (n) return (1); else return (0); } } /* * Return 1 if b <= a <= e, otherwise return 0. */ int pf_match_addr_range(struct pf_addr *b, struct pf_addr *e, struct pf_addr *a, sa_family_t af) { switch (af) { #ifdef INET case AF_INET: if ((ntohl(a->addr32[0]) < ntohl(b->addr32[0])) || (ntohl(a->addr32[0]) > ntohl(e->addr32[0]))) return (0); break; #endif /* INET */ #ifdef INET6 case AF_INET6: { int i; /* check a >= b */ for (i = 0; i < 4; ++i) if (ntohl(a->addr32[i]) > ntohl(b->addr32[i])) break; else if (ntohl(a->addr32[i]) < ntohl(b->addr32[i])) return (0); /* check a <= e */ for (i = 0; i < 4; ++i) if (ntohl(a->addr32[i]) < ntohl(e->addr32[i])) break; else if (ntohl(a->addr32[i]) > ntohl(e->addr32[i])) return (0); break; } #endif /* INET6 */ } return (1); } static int pf_match(u_int8_t op, u_int32_t a1, u_int32_t a2, u_int32_t p) { switch (op) { case PF_OP_IRG: return ((p > a1) && (p < a2)); case PF_OP_XRG: return ((p < a1) || (p > a2)); case PF_OP_RRG: return ((p >= a1) && (p <= a2)); case PF_OP_EQ: return (p == a1); case PF_OP_NE: return (p != a1); case PF_OP_LT: return (p < a1); case PF_OP_LE: return (p <= a1); case PF_OP_GT: return (p > a1); case PF_OP_GE: return (p >= a1); } return (0); /* never reached */ } int pf_match_port(u_int8_t op, u_int16_t a1, u_int16_t a2, u_int16_t p) { NTOHS(a1); NTOHS(a2); NTOHS(p); return (pf_match(op, a1, a2, p)); } static int pf_match_uid(u_int8_t op, uid_t a1, uid_t a2, uid_t u) { if (u == UID_MAX && op != PF_OP_EQ && op != PF_OP_NE) return (0); return (pf_match(op, a1, a2, u)); } static int pf_match_gid(u_int8_t op, gid_t a1, gid_t a2, gid_t g) { if (g == GID_MAX && op != PF_OP_EQ && op != PF_OP_NE) return (0); return (pf_match(op, a1, a2, g)); } int pf_match_tag(struct mbuf *m, struct pf_krule *r, int *tag, int mtag) { if (*tag == -1) *tag = mtag; return ((!r->match_tag_not && r->match_tag == *tag) || (r->match_tag_not && r->match_tag != *tag)); } int pf_tag_packet(struct mbuf *m, struct pf_pdesc *pd, int tag) { KASSERT(tag > 0, ("%s: tag %d", __func__, tag)); if (pd->pf_mtag == NULL && ((pd->pf_mtag = pf_get_mtag(m)) == NULL)) return (ENOMEM); pd->pf_mtag->tag = tag; return (0); } #define PF_ANCHOR_STACKSIZE 32 struct pf_kanchor_stackframe { struct pf_kruleset *rs; struct pf_krule *r; /* XXX: + match bit */ struct pf_kanchor *child; }; /* * XXX: We rely on malloc(9) returning pointer aligned addresses. */ #define PF_ANCHORSTACK_MATCH 0x00000001 #define PF_ANCHORSTACK_MASK (PF_ANCHORSTACK_MATCH) #define PF_ANCHOR_MATCH(f) ((uintptr_t)(f)->r & PF_ANCHORSTACK_MATCH) #define PF_ANCHOR_RULE(f) (struct pf_krule *) \ ((uintptr_t)(f)->r & ~PF_ANCHORSTACK_MASK) #define PF_ANCHOR_SET_MATCH(f) do { (f)->r = (void *) \ ((uintptr_t)(f)->r | PF_ANCHORSTACK_MATCH); \ } while (0) void pf_step_into_anchor(struct pf_kanchor_stackframe *stack, int *depth, struct pf_kruleset **rs, int n, struct pf_krule **r, struct pf_krule **a, int *match) { struct pf_kanchor_stackframe *f; PF_RULES_RASSERT(); if (match) *match = 0; if (*depth >= PF_ANCHOR_STACKSIZE) { printf("%s: anchor stack overflow on %s\n", __func__, (*r)->anchor->name); *r = TAILQ_NEXT(*r, entries); return; } else if (*depth == 0 && a != NULL) *a = *r; f = stack + (*depth)++; f->rs = *rs; f->r = *r; if ((*r)->anchor_wildcard) { struct pf_kanchor_node *parent = &(*r)->anchor->children; if ((f->child = RB_MIN(pf_kanchor_node, parent)) == NULL) { *r = NULL; return; } *rs = &f->child->ruleset; } else { f->child = NULL; *rs = &(*r)->anchor->ruleset; } *r = TAILQ_FIRST((*rs)->rules[n].active.ptr); } int pf_step_out_of_anchor(struct pf_kanchor_stackframe *stack, int *depth, struct pf_kruleset **rs, int n, struct pf_krule **r, struct pf_krule **a, int *match) { struct pf_kanchor_stackframe *f; struct pf_krule *fr; int quick = 0; PF_RULES_RASSERT(); do { if (*depth <= 0) break; f = stack + *depth - 1; fr = PF_ANCHOR_RULE(f); if (f->child != NULL) { struct pf_kanchor_node *parent; /* * This block traverses through * a wildcard anchor. */ parent = &fr->anchor->children; if (match != NULL && *match) { /* * If any of "*" matched, then * "foo/ *" matched, mark frame * appropriately. */ PF_ANCHOR_SET_MATCH(f); *match = 0; } f->child = RB_NEXT(pf_kanchor_node, parent, f->child); if (f->child != NULL) { *rs = &f->child->ruleset; *r = TAILQ_FIRST((*rs)->rules[n].active.ptr); if (*r == NULL) continue; else break; } } (*depth)--; if (*depth == 0 && a != NULL) *a = NULL; *rs = f->rs; if (PF_ANCHOR_MATCH(f) || (match != NULL && *match)) quick = fr->quick; *r = TAILQ_NEXT(fr, entries); } while (*r == NULL); return (quick); } #ifdef INET6 void pf_poolmask(struct pf_addr *naddr, struct pf_addr *raddr, struct pf_addr *rmask, struct pf_addr *saddr, sa_family_t af) { switch (af) { #ifdef INET case AF_INET: naddr->addr32[0] = (raddr->addr32[0] & rmask->addr32[0]) | ((rmask->addr32[0] ^ 0xffffffff ) & saddr->addr32[0]); break; #endif /* INET */ case AF_INET6: naddr->addr32[0] = (raddr->addr32[0] & rmask->addr32[0]) | ((rmask->addr32[0] ^ 0xffffffff ) & saddr->addr32[0]); naddr->addr32[1] = (raddr->addr32[1] & rmask->addr32[1]) | ((rmask->addr32[1] ^ 0xffffffff ) & saddr->addr32[1]); naddr->addr32[2] = (raddr->addr32[2] & rmask->addr32[2]) | ((rmask->addr32[2] ^ 0xffffffff ) & saddr->addr32[2]); naddr->addr32[3] = (raddr->addr32[3] & rmask->addr32[3]) | ((rmask->addr32[3] ^ 0xffffffff ) & saddr->addr32[3]); break; } } void pf_addr_inc(struct pf_addr *addr, sa_family_t af) { switch (af) { #ifdef INET case AF_INET: addr->addr32[0] = htonl(ntohl(addr->addr32[0]) + 1); break; #endif /* INET */ case AF_INET6: if (addr->addr32[3] == 0xffffffff) { addr->addr32[3] = 0; if (addr->addr32[2] == 0xffffffff) { addr->addr32[2] = 0; if (addr->addr32[1] == 0xffffffff) { addr->addr32[1] = 0; addr->addr32[0] = htonl(ntohl(addr->addr32[0]) + 1); } else addr->addr32[1] = htonl(ntohl(addr->addr32[1]) + 1); } else addr->addr32[2] = htonl(ntohl(addr->addr32[2]) + 1); } else addr->addr32[3] = htonl(ntohl(addr->addr32[3]) + 1); break; } } #endif /* INET6 */ void pf_rule_to_actions(struct pf_krule *r, struct pf_rule_actions *a) { if (r->qid) a->qid = r->qid; if (r->pqid) a->pqid = r->pqid; + if (r->dnpipe) + a->dnpipe = r->dnpipe; + if (r->dnrpipe) + a->dnpipe = r->dnrpipe; + if (r->free_flags & PFRULE_DN_IS_PIPE) + a->flags |= PFRULE_DN_IS_PIPE; } int pf_socket_lookup(int direction, struct pf_pdesc *pd, struct mbuf *m) { struct pf_addr *saddr, *daddr; u_int16_t sport, dport; struct inpcbinfo *pi; struct inpcb *inp; pd->lookup.uid = UID_MAX; pd->lookup.gid = GID_MAX; switch (pd->proto) { case IPPROTO_TCP: sport = pd->hdr.tcp.th_sport; dport = pd->hdr.tcp.th_dport; pi = &V_tcbinfo; break; case IPPROTO_UDP: sport = pd->hdr.udp.uh_sport; dport = pd->hdr.udp.uh_dport; pi = &V_udbinfo; break; default: return (-1); } if (direction == PF_IN) { saddr = pd->src; daddr = pd->dst; } else { u_int16_t p; p = sport; sport = dport; dport = p; saddr = pd->dst; daddr = pd->src; } switch (pd->af) { #ifdef INET case AF_INET: inp = in_pcblookup_mbuf(pi, saddr->v4, sport, daddr->v4, dport, INPLOOKUP_RLOCKPCB, NULL, m); if (inp == NULL) { inp = in_pcblookup_mbuf(pi, saddr->v4, sport, daddr->v4, dport, INPLOOKUP_WILDCARD | INPLOOKUP_RLOCKPCB, NULL, m); if (inp == NULL) return (-1); } break; #endif /* INET */ #ifdef INET6 case AF_INET6: inp = in6_pcblookup_mbuf(pi, &saddr->v6, sport, &daddr->v6, dport, INPLOOKUP_RLOCKPCB, NULL, m); if (inp == NULL) { inp = in6_pcblookup_mbuf(pi, &saddr->v6, sport, &daddr->v6, dport, INPLOOKUP_WILDCARD | INPLOOKUP_RLOCKPCB, NULL, m); if (inp == NULL) return (-1); } break; #endif /* INET6 */ default: return (-1); } INP_RLOCK_ASSERT(inp); pd->lookup.uid = inp->inp_cred->cr_uid; pd->lookup.gid = inp->inp_cred->cr_groups[0]; INP_RUNLOCK(inp); return (1); } u_int8_t pf_get_wscale(struct mbuf *m, int off, u_int16_t th_off, sa_family_t af) { int hlen; u_int8_t hdr[60]; u_int8_t *opt, optlen; u_int8_t wscale = 0; hlen = th_off << 2; /* hlen <= sizeof(hdr) */ if (hlen <= sizeof(struct tcphdr)) return (0); if (!pf_pull_hdr(m, off, hdr, hlen, NULL, NULL, af)) return (0); opt = hdr + sizeof(struct tcphdr); hlen -= sizeof(struct tcphdr); while (hlen >= 3) { switch (*opt) { case TCPOPT_EOL: case TCPOPT_NOP: ++opt; --hlen; break; case TCPOPT_WINDOW: wscale = opt[2]; if (wscale > TCP_MAX_WINSHIFT) wscale = TCP_MAX_WINSHIFT; wscale |= PF_WSCALE_FLAG; /* FALLTHROUGH */ default: optlen = opt[1]; if (optlen < 2) optlen = 2; hlen -= optlen; opt += optlen; break; } } return (wscale); } u_int16_t pf_get_mss(struct mbuf *m, int off, u_int16_t th_off, sa_family_t af) { int hlen; u_int8_t hdr[60]; u_int8_t *opt, optlen; u_int16_t mss = V_tcp_mssdflt; hlen = th_off << 2; /* hlen <= sizeof(hdr) */ if (hlen <= sizeof(struct tcphdr)) return (0); if (!pf_pull_hdr(m, off, hdr, hlen, NULL, NULL, af)) return (0); opt = hdr + sizeof(struct tcphdr); hlen -= sizeof(struct tcphdr); while (hlen >= TCPOLEN_MAXSEG) { switch (*opt) { case TCPOPT_EOL: case TCPOPT_NOP: ++opt; --hlen; break; case TCPOPT_MAXSEG: bcopy((caddr_t)(opt + 2), (caddr_t)&mss, 2); NTOHS(mss); /* FALLTHROUGH */ default: optlen = opt[1]; if (optlen < 2) optlen = 2; hlen -= optlen; opt += optlen; break; } } return (mss); } static u_int16_t pf_calc_mss(struct pf_addr *addr, sa_family_t af, int rtableid, u_int16_t offer) { struct nhop_object *nh; #ifdef INET6 struct in6_addr dst6; uint32_t scopeid; #endif /* INET6 */ int hlen = 0; uint16_t mss = 0; NET_EPOCH_ASSERT(); switch (af) { #ifdef INET case AF_INET: hlen = sizeof(struct ip); nh = fib4_lookup(rtableid, addr->v4, 0, 0, 0); if (nh != NULL) mss = nh->nh_mtu - hlen - sizeof(struct tcphdr); break; #endif /* INET */ #ifdef INET6 case AF_INET6: hlen = sizeof(struct ip6_hdr); in6_splitscope(&addr->v6, &dst6, &scopeid); nh = fib6_lookup(rtableid, &dst6, scopeid, 0, 0); if (nh != NULL) mss = nh->nh_mtu - hlen - sizeof(struct tcphdr); break; #endif /* INET6 */ } mss = max(V_tcp_mssdflt, mss); mss = min(mss, offer); mss = max(mss, 64); /* sanity - at least max opt space */ return (mss); } static u_int32_t pf_tcp_iss(struct pf_pdesc *pd) { MD5_CTX ctx; u_int32_t digest[4]; if (V_pf_tcp_secret_init == 0) { arc4random_buf(&V_pf_tcp_secret, sizeof(V_pf_tcp_secret)); MD5Init(&V_pf_tcp_secret_ctx); MD5Update(&V_pf_tcp_secret_ctx, V_pf_tcp_secret, sizeof(V_pf_tcp_secret)); V_pf_tcp_secret_init = 1; } ctx = V_pf_tcp_secret_ctx; MD5Update(&ctx, (char *)&pd->hdr.tcp.th_sport, sizeof(u_short)); MD5Update(&ctx, (char *)&pd->hdr.tcp.th_dport, sizeof(u_short)); if (pd->af == AF_INET6) { MD5Update(&ctx, (char *)&pd->src->v6, sizeof(struct in6_addr)); MD5Update(&ctx, (char *)&pd->dst->v6, sizeof(struct in6_addr)); } else { MD5Update(&ctx, (char *)&pd->src->v4, sizeof(struct in_addr)); MD5Update(&ctx, (char *)&pd->dst->v4, sizeof(struct in_addr)); } MD5Final((u_char *)digest, &ctx); V_pf_tcp_iss_off += 4096; #define ISN_RANDOM_INCREMENT (4096 - 1) return (digest[0] + (arc4random() & ISN_RANDOM_INCREMENT) + V_pf_tcp_iss_off); #undef ISN_RANDOM_INCREMENT } static int pf_test_rule(struct pf_krule **rm, struct pf_kstate **sm, int direction, struct pfi_kkif *kif, struct mbuf *m, int off, struct pf_pdesc *pd, struct pf_krule **am, struct pf_kruleset **rsm, struct inpcb *inp) { struct pf_krule *nr = NULL; struct pf_addr * const saddr = pd->src; struct pf_addr * const daddr = pd->dst; sa_family_t af = pd->af; struct pf_krule *r, *a = NULL; struct pf_kruleset *ruleset = NULL; struct pf_ksrc_node *nsn = NULL; struct tcphdr *th = &pd->hdr.tcp; struct pf_state_key *sk = NULL, *nk = NULL; u_short reason; int rewrite = 0, hdrlen = 0; int tag = -1, rtableid = -1; int asd = 0; int match = 0; int state_icmp = 0; u_int16_t sport = 0, dport = 0; u_int16_t bproto_sum = 0, bip_sum = 0; u_int8_t icmptype = 0, icmpcode = 0; struct pf_kanchor_stackframe anchor_stack[PF_ANCHOR_STACKSIZE]; PF_RULES_RASSERT(); if (inp != NULL) { INP_LOCK_ASSERT(inp); pd->lookup.uid = inp->inp_cred->cr_uid; pd->lookup.gid = inp->inp_cred->cr_groups[0]; pd->lookup.done = 1; } switch (pd->proto) { case IPPROTO_TCP: sport = th->th_sport; dport = th->th_dport; hdrlen = sizeof(*th); break; case IPPROTO_UDP: sport = pd->hdr.udp.uh_sport; dport = pd->hdr.udp.uh_dport; hdrlen = sizeof(pd->hdr.udp); break; #ifdef INET case IPPROTO_ICMP: if (pd->af != AF_INET) break; sport = dport = pd->hdr.icmp.icmp_id; hdrlen = sizeof(pd->hdr.icmp); icmptype = pd->hdr.icmp.icmp_type; icmpcode = pd->hdr.icmp.icmp_code; if (icmptype == ICMP_UNREACH || icmptype == ICMP_SOURCEQUENCH || icmptype == ICMP_REDIRECT || icmptype == ICMP_TIMXCEED || icmptype == ICMP_PARAMPROB) state_icmp++; break; #endif /* INET */ #ifdef INET6 case IPPROTO_ICMPV6: if (af != AF_INET6) break; sport = dport = pd->hdr.icmp6.icmp6_id; hdrlen = sizeof(pd->hdr.icmp6); icmptype = pd->hdr.icmp6.icmp6_type; icmpcode = pd->hdr.icmp6.icmp6_code; if (icmptype == ICMP6_DST_UNREACH || icmptype == ICMP6_PACKET_TOO_BIG || icmptype == ICMP6_TIME_EXCEEDED || icmptype == ICMP6_PARAM_PROB) state_icmp++; break; #endif /* INET6 */ default: sport = dport = hdrlen = 0; break; } r = TAILQ_FIRST(pf_main_ruleset.rules[PF_RULESET_FILTER].active.ptr); /* check packet for BINAT/NAT/RDR */ if ((nr = pf_get_translation(pd, m, off, direction, kif, &nsn, &sk, &nk, saddr, daddr, sport, dport, anchor_stack)) != NULL) { KASSERT(sk != NULL, ("%s: null sk", __func__)); KASSERT(nk != NULL, ("%s: null nk", __func__)); if (nr->log) { PFLOG_PACKET(kif, m, af, direction, PFRES_MATCH, nr, a, ruleset, pd, 1); } if (pd->ip_sum) bip_sum = *pd->ip_sum; switch (pd->proto) { case IPPROTO_TCP: bproto_sum = th->th_sum; pd->proto_sum = &th->th_sum; if (PF_ANEQ(saddr, &nk->addr[pd->sidx], af) || nk->port[pd->sidx] != sport) { pf_change_ap(m, saddr, &th->th_sport, pd->ip_sum, &th->th_sum, &nk->addr[pd->sidx], nk->port[pd->sidx], 0, af); pd->sport = &th->th_sport; sport = th->th_sport; } if (PF_ANEQ(daddr, &nk->addr[pd->didx], af) || nk->port[pd->didx] != dport) { pf_change_ap(m, daddr, &th->th_dport, pd->ip_sum, &th->th_sum, &nk->addr[pd->didx], nk->port[pd->didx], 0, af); dport = th->th_dport; pd->dport = &th->th_dport; } rewrite++; break; case IPPROTO_UDP: bproto_sum = pd->hdr.udp.uh_sum; pd->proto_sum = &pd->hdr.udp.uh_sum; if (PF_ANEQ(saddr, &nk->addr[pd->sidx], af) || nk->port[pd->sidx] != sport) { pf_change_ap(m, saddr, &pd->hdr.udp.uh_sport, pd->ip_sum, &pd->hdr.udp.uh_sum, &nk->addr[pd->sidx], nk->port[pd->sidx], 1, af); sport = pd->hdr.udp.uh_sport; pd->sport = &pd->hdr.udp.uh_sport; } if (PF_ANEQ(daddr, &nk->addr[pd->didx], af) || nk->port[pd->didx] != dport) { pf_change_ap(m, daddr, &pd->hdr.udp.uh_dport, pd->ip_sum, &pd->hdr.udp.uh_sum, &nk->addr[pd->didx], nk->port[pd->didx], 1, af); dport = pd->hdr.udp.uh_dport; pd->dport = &pd->hdr.udp.uh_dport; } rewrite++; break; #ifdef INET case IPPROTO_ICMP: nk->port[0] = nk->port[1]; if (PF_ANEQ(saddr, &nk->addr[pd->sidx], AF_INET)) pf_change_a(&saddr->v4.s_addr, pd->ip_sum, nk->addr[pd->sidx].v4.s_addr, 0); if (PF_ANEQ(daddr, &nk->addr[pd->didx], AF_INET)) pf_change_a(&daddr->v4.s_addr, pd->ip_sum, nk->addr[pd->didx].v4.s_addr, 0); if (nk->port[1] != pd->hdr.icmp.icmp_id) { pd->hdr.icmp.icmp_cksum = pf_cksum_fixup( pd->hdr.icmp.icmp_cksum, sport, nk->port[1], 0); pd->hdr.icmp.icmp_id = nk->port[1]; pd->sport = &pd->hdr.icmp.icmp_id; } m_copyback(m, off, ICMP_MINLEN, (caddr_t)&pd->hdr.icmp); break; #endif /* INET */ #ifdef INET6 case IPPROTO_ICMPV6: nk->port[0] = nk->port[1]; if (PF_ANEQ(saddr, &nk->addr[pd->sidx], AF_INET6)) pf_change_a6(saddr, &pd->hdr.icmp6.icmp6_cksum, &nk->addr[pd->sidx], 0); if (PF_ANEQ(daddr, &nk->addr[pd->didx], AF_INET6)) pf_change_a6(daddr, &pd->hdr.icmp6.icmp6_cksum, &nk->addr[pd->didx], 0); rewrite++; break; #endif /* INET */ default: switch (af) { #ifdef INET case AF_INET: if (PF_ANEQ(saddr, &nk->addr[pd->sidx], AF_INET)) pf_change_a(&saddr->v4.s_addr, pd->ip_sum, nk->addr[pd->sidx].v4.s_addr, 0); if (PF_ANEQ(daddr, &nk->addr[pd->didx], AF_INET)) pf_change_a(&daddr->v4.s_addr, pd->ip_sum, nk->addr[pd->didx].v4.s_addr, 0); break; #endif /* INET */ #ifdef INET6 case AF_INET6: if (PF_ANEQ(saddr, &nk->addr[pd->sidx], AF_INET6)) PF_ACPY(saddr, &nk->addr[pd->sidx], af); if (PF_ANEQ(daddr, &nk->addr[pd->didx], AF_INET6)) PF_ACPY(daddr, &nk->addr[pd->didx], af); break; #endif /* INET */ } break; } if (nr->natpass) r = NULL; pd->nat_rule = nr; } while (r != NULL) { pf_counter_u64_add(&r->evaluations, 1); if (pfi_kkif_match(r->kif, kif) == r->ifnot) r = r->skip[PF_SKIP_IFP].ptr; else if (r->direction && r->direction != direction) r = r->skip[PF_SKIP_DIR].ptr; else if (r->af && r->af != af) r = r->skip[PF_SKIP_AF].ptr; else if (r->proto && r->proto != pd->proto) r = r->skip[PF_SKIP_PROTO].ptr; else if (PF_MISMATCHAW(&r->src.addr, saddr, af, r->src.neg, kif, M_GETFIB(m))) r = r->skip[PF_SKIP_SRC_ADDR].ptr; /* tcp/udp only. port_op always 0 in other cases */ else if (r->src.port_op && !pf_match_port(r->src.port_op, r->src.port[0], r->src.port[1], sport)) r = r->skip[PF_SKIP_SRC_PORT].ptr; else if (PF_MISMATCHAW(&r->dst.addr, daddr, af, r->dst.neg, NULL, M_GETFIB(m))) r = r->skip[PF_SKIP_DST_ADDR].ptr; /* tcp/udp only. port_op always 0 in other cases */ else if (r->dst.port_op && !pf_match_port(r->dst.port_op, r->dst.port[0], r->dst.port[1], dport)) r = r->skip[PF_SKIP_DST_PORT].ptr; /* icmp only. type always 0 in other cases */ else if (r->type && r->type != icmptype + 1) r = TAILQ_NEXT(r, entries); /* icmp only. type always 0 in other cases */ else if (r->code && r->code != icmpcode + 1) r = TAILQ_NEXT(r, entries); else if (r->tos && !(r->tos == pd->tos)) r = TAILQ_NEXT(r, entries); else if (r->rule_flag & PFRULE_FRAGMENT) r = TAILQ_NEXT(r, entries); else if (pd->proto == IPPROTO_TCP && (r->flagset & th->th_flags) != r->flags) r = TAILQ_NEXT(r, entries); /* tcp/udp only. uid.op always 0 in other cases */ else if (r->uid.op && (pd->lookup.done || (pd->lookup.done = pf_socket_lookup(direction, pd, m), 1)) && !pf_match_uid(r->uid.op, r->uid.uid[0], r->uid.uid[1], pd->lookup.uid)) r = TAILQ_NEXT(r, entries); /* tcp/udp only. gid.op always 0 in other cases */ else if (r->gid.op && (pd->lookup.done || (pd->lookup.done = pf_socket_lookup(direction, pd, m), 1)) && !pf_match_gid(r->gid.op, r->gid.gid[0], r->gid.gid[1], pd->lookup.gid)) r = TAILQ_NEXT(r, entries); else if (r->prio && !pf_match_ieee8021q_pcp(r->prio, m)) r = TAILQ_NEXT(r, entries); else if (r->prob && r->prob <= arc4random()) r = TAILQ_NEXT(r, entries); else if (r->match_tag && !pf_match_tag(m, r, &tag, pd->pf_mtag ? pd->pf_mtag->tag : 0)) r = TAILQ_NEXT(r, entries); else if (r->os_fingerprint != PF_OSFP_ANY && (pd->proto != IPPROTO_TCP || !pf_osfp_match( pf_osfp_fingerprint(pd, m, off, th), r->os_fingerprint))) r = TAILQ_NEXT(r, entries); else { if (r->tag) tag = r->tag; if (r->rtableid >= 0) rtableid = r->rtableid; if (r->anchor == NULL) { if (r->action == PF_MATCH) { pf_counter_u64_critical_enter(); pf_counter_u64_add_protected(&r->packets[direction == PF_OUT], 1); pf_counter_u64_add_protected(&r->bytes[direction == PF_OUT], pd->tot_len); pf_counter_u64_critical_exit(); pf_rule_to_actions(r, &pd->act); if (r->log) PFLOG_PACKET(kif, m, af, direction, PFRES_MATCH, r, a, ruleset, pd, 1); } else { match = 1; *rm = r; *am = a; *rsm = ruleset; } if ((*rm)->quick) break; r = TAILQ_NEXT(r, entries); } else pf_step_into_anchor(anchor_stack, &asd, &ruleset, PF_RULESET_FILTER, &r, &a, &match); } if (r == NULL && pf_step_out_of_anchor(anchor_stack, &asd, &ruleset, PF_RULESET_FILTER, &r, &a, &match)) break; } r = *rm; a = *am; ruleset = *rsm; REASON_SET(&reason, PFRES_MATCH); /* apply actions for last matching pass/block rule */ pf_rule_to_actions(r, &pd->act); if (r->log) { if (rewrite) m_copyback(m, off, hdrlen, pd->hdr.any); PFLOG_PACKET(kif, m, af, direction, reason, r, a, ruleset, pd, 1); } if ((r->action == PF_DROP) && ((r->rule_flag & PFRULE_RETURNRST) || (r->rule_flag & PFRULE_RETURNICMP) || (r->rule_flag & PFRULE_RETURN))) { pf_return(r, nr, pd, sk, off, m, th, kif, bproto_sum, bip_sum, hdrlen, &reason); } if (r->action == PF_DROP) goto cleanup; if (tag > 0 && pf_tag_packet(m, pd, tag)) { REASON_SET(&reason, PFRES_MEMORY); goto cleanup; } if (rtableid >= 0) M_SETFIB(m, rtableid); if (!state_icmp && (r->keep_state || nr != NULL || (pd->flags & PFDESC_TCP_NORM))) { int action; action = pf_create_state(r, nr, a, pd, nsn, nk, sk, m, off, sport, dport, &rewrite, kif, sm, tag, bproto_sum, bip_sum, hdrlen); if (action != PF_PASS) { if (action == PF_DROP && (r->rule_flag & PFRULE_RETURN)) pf_return(r, nr, pd, sk, off, m, th, kif, bproto_sum, bip_sum, hdrlen, &reason); return (action); } } else { if (sk != NULL) uma_zfree(V_pf_state_key_z, sk); if (nk != NULL) uma_zfree(V_pf_state_key_z, nk); } /* copy back packet headers if we performed NAT operations */ if (rewrite) m_copyback(m, off, hdrlen, pd->hdr.any); if (*sm != NULL && !((*sm)->state_flags & PFSTATE_NOSYNC) && direction == PF_OUT && V_pfsync_defer_ptr != NULL && V_pfsync_defer_ptr(*sm, m)) /* * We want the state created, but we dont * want to send this in case a partner * firewall has to know about it to allow * replies through it. */ return (PF_DEFER); return (PF_PASS); cleanup: if (sk != NULL) uma_zfree(V_pf_state_key_z, sk); if (nk != NULL) uma_zfree(V_pf_state_key_z, nk); return (PF_DROP); } static int pf_create_state(struct pf_krule *r, struct pf_krule *nr, struct pf_krule *a, struct pf_pdesc *pd, struct pf_ksrc_node *nsn, struct pf_state_key *nk, struct pf_state_key *sk, struct mbuf *m, int off, u_int16_t sport, u_int16_t dport, int *rewrite, struct pfi_kkif *kif, struct pf_kstate **sm, int tag, u_int16_t bproto_sum, u_int16_t bip_sum, int hdrlen) { struct pf_kstate *s = NULL; struct pf_ksrc_node *sn = NULL; struct tcphdr *th = &pd->hdr.tcp; u_int16_t mss = V_tcp_mssdflt; u_short reason; /* check maximums */ if (r->max_states && (counter_u64_fetch(r->states_cur) >= r->max_states)) { counter_u64_add(V_pf_status.lcounters[LCNT_STATES], 1); REASON_SET(&reason, PFRES_MAXSTATES); goto csfailed; } /* src node for filter rule */ if ((r->rule_flag & PFRULE_SRCTRACK || r->rpool.opts & PF_POOL_STICKYADDR) && pf_insert_src_node(&sn, r, pd->src, pd->af) != 0) { REASON_SET(&reason, PFRES_SRCLIMIT); goto csfailed; } /* src node for translation rule */ if (nr != NULL && (nr->rpool.opts & PF_POOL_STICKYADDR) && pf_insert_src_node(&nsn, nr, &sk->addr[pd->sidx], pd->af)) { REASON_SET(&reason, PFRES_SRCLIMIT); goto csfailed; } s = pf_alloc_state(M_NOWAIT); if (s == NULL) { REASON_SET(&reason, PFRES_MEMORY); goto csfailed; } s->rule.ptr = r; s->nat_rule.ptr = nr; s->anchor.ptr = a; STATE_INC_COUNTERS(s); if (r->allow_opts) s->state_flags |= PFSTATE_ALLOWOPTS; if (r->rule_flag & PFRULE_STATESLOPPY) s->state_flags |= PFSTATE_SLOPPY; s->log = r->log & PF_LOG_ALL; s->sync_state = PFSYNC_S_NONE; s->qid = pd->act.qid; s->pqid = pd->act.pqid; + s->dnpipe = pd->act.dnpipe; + s->dnrpipe = pd->act.dnrpipe; + s->state_flags |= pd->act.flags; if (nr != NULL) s->log |= nr->log & PF_LOG_ALL; switch (pd->proto) { case IPPROTO_TCP: s->src.seqlo = ntohl(th->th_seq); s->src.seqhi = s->src.seqlo + pd->p_len + 1; if ((th->th_flags & (TH_SYN|TH_ACK)) == TH_SYN && r->keep_state == PF_STATE_MODULATE) { /* Generate sequence number modulator */ if ((s->src.seqdiff = pf_tcp_iss(pd) - s->src.seqlo) == 0) s->src.seqdiff = 1; pf_change_proto_a(m, &th->th_seq, &th->th_sum, htonl(s->src.seqlo + s->src.seqdiff), 0); *rewrite = 1; } else s->src.seqdiff = 0; if (th->th_flags & TH_SYN) { s->src.seqhi++; s->src.wscale = pf_get_wscale(m, off, th->th_off, pd->af); } s->src.max_win = MAX(ntohs(th->th_win), 1); if (s->src.wscale & PF_WSCALE_MASK) { /* Remove scale factor from initial window */ int win = s->src.max_win; win += 1 << (s->src.wscale & PF_WSCALE_MASK); s->src.max_win = (win - 1) >> (s->src.wscale & PF_WSCALE_MASK); } if (th->th_flags & TH_FIN) s->src.seqhi++; s->dst.seqhi = 1; s->dst.max_win = 1; pf_set_protostate(s, PF_PEER_SRC, TCPS_SYN_SENT); pf_set_protostate(s, PF_PEER_DST, TCPS_CLOSED); s->timeout = PFTM_TCP_FIRST_PACKET; break; case IPPROTO_UDP: pf_set_protostate(s, PF_PEER_SRC, PFUDPS_SINGLE); pf_set_protostate(s, PF_PEER_DST, PFUDPS_NO_TRAFFIC); s->timeout = PFTM_UDP_FIRST_PACKET; break; case IPPROTO_ICMP: #ifdef INET6 case IPPROTO_ICMPV6: #endif s->timeout = PFTM_ICMP_FIRST_PACKET; break; default: pf_set_protostate(s, PF_PEER_SRC, PFOTHERS_SINGLE); pf_set_protostate(s, PF_PEER_DST, PFOTHERS_NO_TRAFFIC); s->timeout = PFTM_OTHER_FIRST_PACKET; } if (r->rt) { if (pf_map_addr(pd->af, r, pd->src, &s->rt_addr, NULL, &sn)) { REASON_SET(&reason, PFRES_MAPFAILED); pf_src_tree_remove_state(s); s->timeout = PFTM_UNLINKED; STATE_DEC_COUNTERS(s); pf_free_state(s); goto csfailed; } s->rt_kif = r->rpool.cur->kif; } s->creation = time_uptime; s->expire = time_uptime; if (sn != NULL) s->src_node = sn; if (nsn != NULL) { /* XXX We only modify one side for now. */ PF_ACPY(&nsn->raddr, &nk->addr[1], pd->af); s->nat_src_node = nsn; } if (pd->proto == IPPROTO_TCP) { if ((pd->flags & PFDESC_TCP_NORM) && pf_normalize_tcp_init(m, off, pd, th, &s->src, &s->dst)) { REASON_SET(&reason, PFRES_MEMORY); pf_src_tree_remove_state(s); s->timeout = PFTM_UNLINKED; STATE_DEC_COUNTERS(s); pf_free_state(s); return (PF_DROP); } if ((pd->flags & PFDESC_TCP_NORM) && s->src.scrub && pf_normalize_tcp_stateful(m, off, pd, &reason, th, s, &s->src, &s->dst, rewrite)) { /* This really shouldn't happen!!! */ DPFPRINTF(PF_DEBUG_URGENT, ("pf_normalize_tcp_stateful failed on first " "pkt\n")); pf_src_tree_remove_state(s); s->timeout = PFTM_UNLINKED; STATE_DEC_COUNTERS(s); pf_free_state(s); return (PF_DROP); } } s->direction = pd->dir; /* * sk/nk could already been setup by pf_get_translation(). */ if (nr == NULL) { KASSERT((sk == NULL && nk == NULL), ("%s: nr %p sk %p, nk %p", __func__, nr, sk, nk)); sk = pf_state_key_setup(pd, pd->src, pd->dst, sport, dport); if (sk == NULL) goto csfailed; nk = sk; } else KASSERT((sk != NULL && nk != NULL), ("%s: nr %p sk %p, nk %p", __func__, nr, sk, nk)); /* Swap sk/nk for PF_OUT. */ if (pf_state_insert(BOUND_IFACE(r, kif), kif, (pd->dir == PF_IN) ? sk : nk, (pd->dir == PF_IN) ? nk : sk, s)) { REASON_SET(&reason, PFRES_STATEINS); pf_src_tree_remove_state(s); s->timeout = PFTM_UNLINKED; STATE_DEC_COUNTERS(s); pf_free_state(s); return (PF_DROP); } else *sm = s; if (tag > 0) s->tag = tag; if (pd->proto == IPPROTO_TCP && (th->th_flags & (TH_SYN|TH_ACK)) == TH_SYN && r->keep_state == PF_STATE_SYNPROXY) { pf_set_protostate(s, PF_PEER_SRC, PF_TCPS_PROXY_SRC); /* undo NAT changes, if they have taken place */ if (nr != NULL) { struct pf_state_key *skt = s->key[PF_SK_WIRE]; if (pd->dir == PF_OUT) skt = s->key[PF_SK_STACK]; PF_ACPY(pd->src, &skt->addr[pd->sidx], pd->af); PF_ACPY(pd->dst, &skt->addr[pd->didx], pd->af); if (pd->sport) *pd->sport = skt->port[pd->sidx]; if (pd->dport) *pd->dport = skt->port[pd->didx]; if (pd->proto_sum) *pd->proto_sum = bproto_sum; if (pd->ip_sum) *pd->ip_sum = bip_sum; m_copyback(m, off, hdrlen, pd->hdr.any); } s->src.seqhi = htonl(arc4random()); /* Find mss option */ int rtid = M_GETFIB(m); mss = pf_get_mss(m, off, th->th_off, pd->af); mss = pf_calc_mss(pd->src, pd->af, rtid, mss); mss = pf_calc_mss(pd->dst, pd->af, rtid, mss); s->src.mss = mss; pf_send_tcp(r, pd->af, pd->dst, pd->src, th->th_dport, th->th_sport, s->src.seqhi, ntohl(th->th_seq) + 1, TH_SYN|TH_ACK, 0, s->src.mss, 0, 1, 0); REASON_SET(&reason, PFRES_SYNPROXY); return (PF_SYNPROXY_DROP); } return (PF_PASS); csfailed: if (sk != NULL) uma_zfree(V_pf_state_key_z, sk); if (nk != NULL) uma_zfree(V_pf_state_key_z, nk); if (sn != NULL) { struct pf_srchash *sh; sh = &V_pf_srchash[pf_hashsrc(&sn->addr, sn->af)]; PF_HASHROW_LOCK(sh); if (--sn->states == 0 && sn->expire == 0) { pf_unlink_src_node(sn); uma_zfree(V_pf_sources_z, sn); counter_u64_add( V_pf_status.scounters[SCNT_SRC_NODE_REMOVALS], 1); } PF_HASHROW_UNLOCK(sh); } if (nsn != sn && nsn != NULL) { struct pf_srchash *sh; sh = &V_pf_srchash[pf_hashsrc(&nsn->addr, nsn->af)]; PF_HASHROW_LOCK(sh); if (--nsn->states == 0 && nsn->expire == 0) { pf_unlink_src_node(nsn); uma_zfree(V_pf_sources_z, nsn); counter_u64_add( V_pf_status.scounters[SCNT_SRC_NODE_REMOVALS], 1); } PF_HASHROW_UNLOCK(sh); } return (PF_DROP); } static int pf_test_fragment(struct pf_krule **rm, int direction, struct pfi_kkif *kif, struct mbuf *m, void *h, struct pf_pdesc *pd, struct pf_krule **am, struct pf_kruleset **rsm) { struct pf_krule *r, *a = NULL; struct pf_kruleset *ruleset = NULL; sa_family_t af = pd->af; u_short reason; int tag = -1; int asd = 0; int match = 0; struct pf_kanchor_stackframe anchor_stack[PF_ANCHOR_STACKSIZE]; PF_RULES_RASSERT(); r = TAILQ_FIRST(pf_main_ruleset.rules[PF_RULESET_FILTER].active.ptr); while (r != NULL) { pf_counter_u64_add(&r->evaluations, 1); if (pfi_kkif_match(r->kif, kif) == r->ifnot) r = r->skip[PF_SKIP_IFP].ptr; else if (r->direction && r->direction != direction) r = r->skip[PF_SKIP_DIR].ptr; else if (r->af && r->af != af) r = r->skip[PF_SKIP_AF].ptr; else if (r->proto && r->proto != pd->proto) r = r->skip[PF_SKIP_PROTO].ptr; else if (PF_MISMATCHAW(&r->src.addr, pd->src, af, r->src.neg, kif, M_GETFIB(m))) r = r->skip[PF_SKIP_SRC_ADDR].ptr; else if (PF_MISMATCHAW(&r->dst.addr, pd->dst, af, r->dst.neg, NULL, M_GETFIB(m))) r = r->skip[PF_SKIP_DST_ADDR].ptr; else if (r->tos && !(r->tos == pd->tos)) r = TAILQ_NEXT(r, entries); else if (r->os_fingerprint != PF_OSFP_ANY) r = TAILQ_NEXT(r, entries); else if (pd->proto == IPPROTO_UDP && (r->src.port_op || r->dst.port_op)) r = TAILQ_NEXT(r, entries); else if (pd->proto == IPPROTO_TCP && (r->src.port_op || r->dst.port_op || r->flagset)) r = TAILQ_NEXT(r, entries); else if ((pd->proto == IPPROTO_ICMP || pd->proto == IPPROTO_ICMPV6) && (r->type || r->code)) r = TAILQ_NEXT(r, entries); else if (r->prio && !pf_match_ieee8021q_pcp(r->prio, m)) r = TAILQ_NEXT(r, entries); else if (r->prob && r->prob <= (arc4random() % (UINT_MAX - 1) + 1)) r = TAILQ_NEXT(r, entries); else if (r->match_tag && !pf_match_tag(m, r, &tag, pd->pf_mtag ? pd->pf_mtag->tag : 0)) r = TAILQ_NEXT(r, entries); else { if (r->anchor == NULL) { if (r->action == PF_MATCH) { pf_counter_u64_critical_enter(); pf_counter_u64_add_protected(&r->packets[direction == PF_OUT], 1); pf_counter_u64_add_protected(&r->bytes[direction == PF_OUT], pd->tot_len); pf_counter_u64_critical_exit(); pf_rule_to_actions(r, &pd->act); if (r->log) PFLOG_PACKET(kif, m, af, direction, PFRES_MATCH, r, a, ruleset, pd, 1); } else { match = 1; *rm = r; *am = a; *rsm = ruleset; } if ((*rm)->quick) break; r = TAILQ_NEXT(r, entries); } else pf_step_into_anchor(anchor_stack, &asd, &ruleset, PF_RULESET_FILTER, &r, &a, &match); } if (r == NULL && pf_step_out_of_anchor(anchor_stack, &asd, &ruleset, PF_RULESET_FILTER, &r, &a, &match)) break; } r = *rm; a = *am; ruleset = *rsm; REASON_SET(&reason, PFRES_MATCH); /* apply actions for last matching pass/block rule */ pf_rule_to_actions(r, &pd->act); if (r->log) PFLOG_PACKET(kif, m, af, direction, reason, r, a, ruleset, pd, 1); if (r->action != PF_PASS) return (PF_DROP); if (tag > 0 && pf_tag_packet(m, pd, tag)) { REASON_SET(&reason, PFRES_MEMORY); return (PF_DROP); } return (PF_PASS); } static int pf_tcp_track_full(struct pf_kstate **state, struct pfi_kkif *kif, struct mbuf *m, int off, struct pf_pdesc *pd, u_short *reason, int *copyback) { struct tcphdr *th = &pd->hdr.tcp; struct pf_state_peer *src, *dst; u_int16_t win = ntohs(th->th_win); u_int32_t ack, end, seq, orig_seq; u_int8_t sws, dws, psrc, pdst; int ackskew; if (pd->dir == (*state)->direction) { src = &(*state)->src; dst = &(*state)->dst; psrc = PF_PEER_SRC; pdst = PF_PEER_DST; } else { src = &(*state)->dst; dst = &(*state)->src; psrc = PF_PEER_DST; pdst = PF_PEER_SRC; } if (src->wscale && dst->wscale && !(th->th_flags & TH_SYN)) { sws = src->wscale & PF_WSCALE_MASK; dws = dst->wscale & PF_WSCALE_MASK; } else sws = dws = 0; /* * Sequence tracking algorithm from Guido van Rooij's paper: * http://www.madison-gurkha.com/publications/tcp_filtering/ * tcp_filtering.ps */ orig_seq = seq = ntohl(th->th_seq); if (src->seqlo == 0) { /* First packet from this end. Set its state */ if ((pd->flags & PFDESC_TCP_NORM || dst->scrub) && src->scrub == NULL) { if (pf_normalize_tcp_init(m, off, pd, th, src, dst)) { REASON_SET(reason, PFRES_MEMORY); return (PF_DROP); } } /* Deferred generation of sequence number modulator */ if (dst->seqdiff && !src->seqdiff) { /* use random iss for the TCP server */ while ((src->seqdiff = arc4random() - seq) == 0) ; ack = ntohl(th->th_ack) - dst->seqdiff; pf_change_proto_a(m, &th->th_seq, &th->th_sum, htonl(seq + src->seqdiff), 0); pf_change_proto_a(m, &th->th_ack, &th->th_sum, htonl(ack), 0); *copyback = 1; } else { ack = ntohl(th->th_ack); } end = seq + pd->p_len; if (th->th_flags & TH_SYN) { end++; if (dst->wscale & PF_WSCALE_FLAG) { src->wscale = pf_get_wscale(m, off, th->th_off, pd->af); if (src->wscale & PF_WSCALE_FLAG) { /* Remove scale factor from initial * window */ sws = src->wscale & PF_WSCALE_MASK; win = ((u_int32_t)win + (1 << sws) - 1) >> sws; dws = dst->wscale & PF_WSCALE_MASK; } else { /* fixup other window */ dst->max_win <<= dst->wscale & PF_WSCALE_MASK; /* in case of a retrans SYN|ACK */ dst->wscale = 0; } } } if (th->th_flags & TH_FIN) end++; src->seqlo = seq; if (src->state < TCPS_SYN_SENT) pf_set_protostate(*state, psrc, TCPS_SYN_SENT); /* * May need to slide the window (seqhi may have been set by * the crappy stack check or if we picked up the connection * after establishment) */ if (src->seqhi == 1 || SEQ_GEQ(end + MAX(1, dst->max_win << dws), src->seqhi)) src->seqhi = end + MAX(1, dst->max_win << dws); if (win > src->max_win) src->max_win = win; } else { ack = ntohl(th->th_ack) - dst->seqdiff; if (src->seqdiff) { /* Modulate sequence numbers */ pf_change_proto_a(m, &th->th_seq, &th->th_sum, htonl(seq + src->seqdiff), 0); pf_change_proto_a(m, &th->th_ack, &th->th_sum, htonl(ack), 0); *copyback = 1; } end = seq + pd->p_len; if (th->th_flags & TH_SYN) end++; if (th->th_flags & TH_FIN) end++; } if ((th->th_flags & TH_ACK) == 0) { /* Let it pass through the ack skew check */ ack = dst->seqlo; } else if ((ack == 0 && (th->th_flags & (TH_ACK|TH_RST)) == (TH_ACK|TH_RST)) || /* broken tcp stacks do not set ack */ (dst->state < TCPS_SYN_SENT)) { /* * Many stacks (ours included) will set the ACK number in an * FIN|ACK if the SYN times out -- no sequence to ACK. */ ack = dst->seqlo; } if (seq == end) { /* Ease sequencing restrictions on no data packets */ seq = src->seqlo; end = seq; } ackskew = dst->seqlo - ack; /* * Need to demodulate the sequence numbers in any TCP SACK options * (Selective ACK). We could optionally validate the SACK values * against the current ACK window, either forwards or backwards, but * I'm not confident that SACK has been implemented properly * everywhere. It wouldn't surprise me if several stacks accidentally * SACK too far backwards of previously ACKed data. There really aren't * any security implications of bad SACKing unless the target stack * doesn't validate the option length correctly. Someone trying to * spoof into a TCP connection won't bother blindly sending SACK * options anyway. */ if (dst->seqdiff && (th->th_off << 2) > sizeof(struct tcphdr)) { if (pf_modulate_sack(m, off, pd, th, dst)) *copyback = 1; } #define MAXACKWINDOW (0xffff + 1500) /* 1500 is an arbitrary fudge factor */ if (SEQ_GEQ(src->seqhi, end) && /* Last octet inside other's window space */ SEQ_GEQ(seq, src->seqlo - (dst->max_win << dws)) && /* Retrans: not more than one window back */ (ackskew >= -MAXACKWINDOW) && /* Acking not more than one reassembled fragment backwards */ (ackskew <= (MAXACKWINDOW << sws)) && /* Acking not more than one window forward */ ((th->th_flags & TH_RST) == 0 || orig_seq == src->seqlo || (orig_seq == src->seqlo + 1) || (orig_seq + 1 == src->seqlo) || (pd->flags & PFDESC_IP_REAS) == 0)) { /* Require an exact/+1 sequence match on resets when possible */ if (dst->scrub || src->scrub) { if (pf_normalize_tcp_stateful(m, off, pd, reason, th, *state, src, dst, copyback)) return (PF_DROP); } /* update max window */ if (src->max_win < win) src->max_win = win; /* synchronize sequencing */ if (SEQ_GT(end, src->seqlo)) src->seqlo = end; /* slide the window of what the other end can send */ if (SEQ_GEQ(ack + (win << sws), dst->seqhi)) dst->seqhi = ack + MAX((win << sws), 1); /* update states */ if (th->th_flags & TH_SYN) if (src->state < TCPS_SYN_SENT) pf_set_protostate(*state, psrc, TCPS_SYN_SENT); if (th->th_flags & TH_FIN) if (src->state < TCPS_CLOSING) pf_set_protostate(*state, psrc, TCPS_CLOSING); if (th->th_flags & TH_ACK) { if (dst->state == TCPS_SYN_SENT) { pf_set_protostate(*state, pdst, TCPS_ESTABLISHED); if (src->state == TCPS_ESTABLISHED && (*state)->src_node != NULL && pf_src_connlimit(state)) { REASON_SET(reason, PFRES_SRCLIMIT); return (PF_DROP); } } else if (dst->state == TCPS_CLOSING) pf_set_protostate(*state, pdst, TCPS_FIN_WAIT_2); } if (th->th_flags & TH_RST) pf_set_protostate(*state, PF_PEER_BOTH, TCPS_TIME_WAIT); /* update expire time */ (*state)->expire = time_uptime; if (src->state >= TCPS_FIN_WAIT_2 && dst->state >= TCPS_FIN_WAIT_2) (*state)->timeout = PFTM_TCP_CLOSED; else if (src->state >= TCPS_CLOSING && dst->state >= TCPS_CLOSING) (*state)->timeout = PFTM_TCP_FIN_WAIT; else if (src->state < TCPS_ESTABLISHED || dst->state < TCPS_ESTABLISHED) (*state)->timeout = PFTM_TCP_OPENING; else if (src->state >= TCPS_CLOSING || dst->state >= TCPS_CLOSING) (*state)->timeout = PFTM_TCP_CLOSING; else (*state)->timeout = PFTM_TCP_ESTABLISHED; /* Fall through to PASS packet */ } else if ((dst->state < TCPS_SYN_SENT || dst->state >= TCPS_FIN_WAIT_2 || src->state >= TCPS_FIN_WAIT_2) && SEQ_GEQ(src->seqhi + MAXACKWINDOW, end) && /* Within a window forward of the originating packet */ SEQ_GEQ(seq, src->seqlo - MAXACKWINDOW)) { /* Within a window backward of the originating packet */ /* * This currently handles three situations: * 1) Stupid stacks will shotgun SYNs before their peer * replies. * 2) When PF catches an already established stream (the * firewall rebooted, the state table was flushed, routes * changed...) * 3) Packets get funky immediately after the connection * closes (this should catch Solaris spurious ACK|FINs * that web servers like to spew after a close) * * This must be a little more careful than the above code * since packet floods will also be caught here. We don't * update the TTL here to mitigate the damage of a packet * flood and so the same code can handle awkward establishment * and a loosened connection close. * In the establishment case, a correct peer response will * validate the connection, go through the normal state code * and keep updating the state TTL. */ if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("pf: loose state match: "); pf_print_state(*state); pf_print_flags(th->th_flags); printf(" seq=%u (%u) ack=%u len=%u ackskew=%d " "pkts=%llu:%llu dir=%s,%s\n", seq, orig_seq, ack, pd->p_len, ackskew, (unsigned long long)(*state)->packets[0], (unsigned long long)(*state)->packets[1], pd->dir == PF_IN ? "in" : "out", pd->dir == (*state)->direction ? "fwd" : "rev"); } if (dst->scrub || src->scrub) { if (pf_normalize_tcp_stateful(m, off, pd, reason, th, *state, src, dst, copyback)) return (PF_DROP); } /* update max window */ if (src->max_win < win) src->max_win = win; /* synchronize sequencing */ if (SEQ_GT(end, src->seqlo)) src->seqlo = end; /* slide the window of what the other end can send */ if (SEQ_GEQ(ack + (win << sws), dst->seqhi)) dst->seqhi = ack + MAX((win << sws), 1); /* * Cannot set dst->seqhi here since this could be a shotgunned * SYN and not an already established connection. */ if (th->th_flags & TH_FIN) if (src->state < TCPS_CLOSING) pf_set_protostate(*state, psrc, TCPS_CLOSING); if (th->th_flags & TH_RST) pf_set_protostate(*state, PF_PEER_BOTH, TCPS_TIME_WAIT); /* Fall through to PASS packet */ } else { if ((*state)->dst.state == TCPS_SYN_SENT && (*state)->src.state == TCPS_SYN_SENT) { /* Send RST for state mismatches during handshake */ if (!(th->th_flags & TH_RST)) pf_send_tcp((*state)->rule.ptr, pd->af, pd->dst, pd->src, th->th_dport, th->th_sport, ntohl(th->th_ack), 0, TH_RST, 0, 0, (*state)->rule.ptr->return_ttl, 1, 0); src->seqlo = 0; src->seqhi = 1; src->max_win = 1; } else if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("pf: BAD state: "); pf_print_state(*state); pf_print_flags(th->th_flags); printf(" seq=%u (%u) ack=%u len=%u ackskew=%d " "pkts=%llu:%llu dir=%s,%s\n", seq, orig_seq, ack, pd->p_len, ackskew, (unsigned long long)(*state)->packets[0], (unsigned long long)(*state)->packets[1], pd->dir == PF_IN ? "in" : "out", pd->dir == (*state)->direction ? "fwd" : "rev"); printf("pf: State failure on: %c %c %c %c | %c %c\n", SEQ_GEQ(src->seqhi, end) ? ' ' : '1', SEQ_GEQ(seq, src->seqlo - (dst->max_win << dws)) ? ' ': '2', (ackskew >= -MAXACKWINDOW) ? ' ' : '3', (ackskew <= (MAXACKWINDOW << sws)) ? ' ' : '4', SEQ_GEQ(src->seqhi + MAXACKWINDOW, end) ?' ' :'5', SEQ_GEQ(seq, src->seqlo - MAXACKWINDOW) ?' ' :'6'); } REASON_SET(reason, PFRES_BADSTATE); return (PF_DROP); } return (PF_PASS); } static int pf_tcp_track_sloppy(struct pf_kstate **state, struct pf_pdesc *pd, u_short *reason) { struct tcphdr *th = &pd->hdr.tcp; struct pf_state_peer *src, *dst; u_int8_t psrc, pdst; if (pd->dir == (*state)->direction) { src = &(*state)->src; dst = &(*state)->dst; psrc = PF_PEER_SRC; pdst = PF_PEER_DST; } else { src = &(*state)->dst; dst = &(*state)->src; psrc = PF_PEER_DST; pdst = PF_PEER_SRC; } if (th->th_flags & TH_SYN) if (src->state < TCPS_SYN_SENT) pf_set_protostate(*state, psrc, TCPS_SYN_SENT); if (th->th_flags & TH_FIN) if (src->state < TCPS_CLOSING) pf_set_protostate(*state, psrc, TCPS_CLOSING); if (th->th_flags & TH_ACK) { if (dst->state == TCPS_SYN_SENT) { pf_set_protostate(*state, pdst, TCPS_ESTABLISHED); if (src->state == TCPS_ESTABLISHED && (*state)->src_node != NULL && pf_src_connlimit(state)) { REASON_SET(reason, PFRES_SRCLIMIT); return (PF_DROP); } } else if (dst->state == TCPS_CLOSING) { pf_set_protostate(*state, pdst, TCPS_FIN_WAIT_2); } else if (src->state == TCPS_SYN_SENT && dst->state < TCPS_SYN_SENT) { /* * Handle a special sloppy case where we only see one * half of the connection. If there is a ACK after * the initial SYN without ever seeing a packet from * the destination, set the connection to established. */ pf_set_protostate(*state, PF_PEER_BOTH, TCPS_ESTABLISHED); dst->state = src->state = TCPS_ESTABLISHED; if ((*state)->src_node != NULL && pf_src_connlimit(state)) { REASON_SET(reason, PFRES_SRCLIMIT); return (PF_DROP); } } else if (src->state == TCPS_CLOSING && dst->state == TCPS_ESTABLISHED && dst->seqlo == 0) { /* * Handle the closing of half connections where we * don't see the full bidirectional FIN/ACK+ACK * handshake. */ pf_set_protostate(*state, pdst, TCPS_CLOSING); } } if (th->th_flags & TH_RST) pf_set_protostate(*state, PF_PEER_BOTH, TCPS_TIME_WAIT); /* update expire time */ (*state)->expire = time_uptime; if (src->state >= TCPS_FIN_WAIT_2 && dst->state >= TCPS_FIN_WAIT_2) (*state)->timeout = PFTM_TCP_CLOSED; else if (src->state >= TCPS_CLOSING && dst->state >= TCPS_CLOSING) (*state)->timeout = PFTM_TCP_FIN_WAIT; else if (src->state < TCPS_ESTABLISHED || dst->state < TCPS_ESTABLISHED) (*state)->timeout = PFTM_TCP_OPENING; else if (src->state >= TCPS_CLOSING || dst->state >= TCPS_CLOSING) (*state)->timeout = PFTM_TCP_CLOSING; else (*state)->timeout = PFTM_TCP_ESTABLISHED; return (PF_PASS); } static int pf_synproxy(struct pf_pdesc *pd, struct pf_kstate **state, u_short *reason) { struct pf_state_key *sk = (*state)->key[pd->didx]; struct tcphdr *th = &pd->hdr.tcp; if ((*state)->src.state == PF_TCPS_PROXY_SRC) { if (pd->dir != (*state)->direction) { REASON_SET(reason, PFRES_SYNPROXY); return (PF_SYNPROXY_DROP); } if (th->th_flags & TH_SYN) { if (ntohl(th->th_seq) != (*state)->src.seqlo) { REASON_SET(reason, PFRES_SYNPROXY); return (PF_DROP); } pf_send_tcp((*state)->rule.ptr, pd->af, pd->dst, pd->src, th->th_dport, th->th_sport, (*state)->src.seqhi, ntohl(th->th_seq) + 1, TH_SYN|TH_ACK, 0, (*state)->src.mss, 0, 1, 0); REASON_SET(reason, PFRES_SYNPROXY); return (PF_SYNPROXY_DROP); } else if ((th->th_flags & (TH_ACK|TH_RST|TH_FIN)) != TH_ACK || (ntohl(th->th_ack) != (*state)->src.seqhi + 1) || (ntohl(th->th_seq) != (*state)->src.seqlo + 1)) { REASON_SET(reason, PFRES_SYNPROXY); return (PF_DROP); } else if ((*state)->src_node != NULL && pf_src_connlimit(state)) { REASON_SET(reason, PFRES_SRCLIMIT); return (PF_DROP); } else pf_set_protostate(*state, PF_PEER_SRC, PF_TCPS_PROXY_DST); } if ((*state)->src.state == PF_TCPS_PROXY_DST) { if (pd->dir == (*state)->direction) { if (((th->th_flags & (TH_SYN|TH_ACK)) != TH_ACK) || (ntohl(th->th_ack) != (*state)->src.seqhi + 1) || (ntohl(th->th_seq) != (*state)->src.seqlo + 1)) { REASON_SET(reason, PFRES_SYNPROXY); return (PF_DROP); } (*state)->src.max_win = MAX(ntohs(th->th_win), 1); if ((*state)->dst.seqhi == 1) (*state)->dst.seqhi = htonl(arc4random()); pf_send_tcp((*state)->rule.ptr, pd->af, &sk->addr[pd->sidx], &sk->addr[pd->didx], sk->port[pd->sidx], sk->port[pd->didx], (*state)->dst.seqhi, 0, TH_SYN, 0, (*state)->src.mss, 0, 0, (*state)->tag); REASON_SET(reason, PFRES_SYNPROXY); return (PF_SYNPROXY_DROP); } else if (((th->th_flags & (TH_SYN|TH_ACK)) != (TH_SYN|TH_ACK)) || (ntohl(th->th_ack) != (*state)->dst.seqhi + 1)) { REASON_SET(reason, PFRES_SYNPROXY); return (PF_DROP); } else { (*state)->dst.max_win = MAX(ntohs(th->th_win), 1); (*state)->dst.seqlo = ntohl(th->th_seq); pf_send_tcp((*state)->rule.ptr, pd->af, pd->dst, pd->src, th->th_dport, th->th_sport, ntohl(th->th_ack), ntohl(th->th_seq) + 1, TH_ACK, (*state)->src.max_win, 0, 0, 0, (*state)->tag); pf_send_tcp((*state)->rule.ptr, pd->af, &sk->addr[pd->sidx], &sk->addr[pd->didx], sk->port[pd->sidx], sk->port[pd->didx], (*state)->src.seqhi + 1, (*state)->src.seqlo + 1, TH_ACK, (*state)->dst.max_win, 0, 0, 1, 0); (*state)->src.seqdiff = (*state)->dst.seqhi - (*state)->src.seqlo; (*state)->dst.seqdiff = (*state)->src.seqhi - (*state)->dst.seqlo; (*state)->src.seqhi = (*state)->src.seqlo + (*state)->dst.max_win; (*state)->dst.seqhi = (*state)->dst.seqlo + (*state)->src.max_win; (*state)->src.wscale = (*state)->dst.wscale = 0; pf_set_protostate(*state, PF_PEER_BOTH, TCPS_ESTABLISHED); REASON_SET(reason, PFRES_SYNPROXY); return (PF_SYNPROXY_DROP); } } return (PF_PASS); } static int pf_test_state_tcp(struct pf_kstate **state, int direction, struct pfi_kkif *kif, struct mbuf *m, int off, void *h, struct pf_pdesc *pd, u_short *reason) { struct pf_state_key_cmp key; struct tcphdr *th = &pd->hdr.tcp; int copyback = 0; int action; struct pf_state_peer *src, *dst; struct pf_state_key *sk; bzero(&key, sizeof(key)); key.af = pd->af; key.proto = IPPROTO_TCP; if (direction == PF_IN) { /* wire side, straight */ PF_ACPY(&key.addr[0], pd->src, key.af); PF_ACPY(&key.addr[1], pd->dst, key.af); key.port[0] = th->th_sport; key.port[1] = th->th_dport; } else { /* stack side, reverse */ PF_ACPY(&key.addr[1], pd->src, key.af); PF_ACPY(&key.addr[0], pd->dst, key.af); key.port[1] = th->th_sport; key.port[0] = th->th_dport; } STATE_LOOKUP(kif, &key, direction, *state, pd); if (direction == (*state)->direction) { src = &(*state)->src; dst = &(*state)->dst; } else { src = &(*state)->dst; dst = &(*state)->src; } sk = (*state)->key[pd->didx]; if ((action = pf_synproxy(pd, state, reason)) != PF_PASS) return (action); if (((th->th_flags & (TH_SYN|TH_ACK)) == TH_SYN) && dst->state >= TCPS_FIN_WAIT_2 && src->state >= TCPS_FIN_WAIT_2) { if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("pf: state reuse "); pf_print_state(*state); pf_print_flags(th->th_flags); printf("\n"); } /* XXX make sure it's the same direction ?? */ pf_set_protostate(*state, PF_PEER_BOTH, TCPS_CLOSED); pf_unlink_state(*state, PF_ENTER_LOCKED); *state = NULL; return (PF_DROP); } if ((*state)->state_flags & PFSTATE_SLOPPY) { if (pf_tcp_track_sloppy(state, pd, reason) == PF_DROP) return (PF_DROP); } else { if (pf_tcp_track_full(state, kif, m, off, pd, reason, ©back) == PF_DROP) return (PF_DROP); } /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; if (PF_ANEQ(pd->src, &nk->addr[pd->sidx], pd->af) || nk->port[pd->sidx] != th->th_sport) pf_change_ap(m, pd->src, &th->th_sport, pd->ip_sum, &th->th_sum, &nk->addr[pd->sidx], nk->port[pd->sidx], 0, pd->af); if (PF_ANEQ(pd->dst, &nk->addr[pd->didx], pd->af) || nk->port[pd->didx] != th->th_dport) pf_change_ap(m, pd->dst, &th->th_dport, pd->ip_sum, &th->th_sum, &nk->addr[pd->didx], nk->port[pd->didx], 0, pd->af); copyback = 1; } /* Copyback sequence modulation or stateful scrub changes if needed */ if (copyback) m_copyback(m, off, sizeof(*th), (caddr_t)th); return (PF_PASS); } static int pf_test_state_udp(struct pf_kstate **state, int direction, struct pfi_kkif *kif, struct mbuf *m, int off, void *h, struct pf_pdesc *pd) { struct pf_state_peer *src, *dst; struct pf_state_key_cmp key; struct udphdr *uh = &pd->hdr.udp; uint8_t psrc, pdst; bzero(&key, sizeof(key)); key.af = pd->af; key.proto = IPPROTO_UDP; if (direction == PF_IN) { /* wire side, straight */ PF_ACPY(&key.addr[0], pd->src, key.af); PF_ACPY(&key.addr[1], pd->dst, key.af); key.port[0] = uh->uh_sport; key.port[1] = uh->uh_dport; } else { /* stack side, reverse */ PF_ACPY(&key.addr[1], pd->src, key.af); PF_ACPY(&key.addr[0], pd->dst, key.af); key.port[1] = uh->uh_sport; key.port[0] = uh->uh_dport; } STATE_LOOKUP(kif, &key, direction, *state, pd); if (direction == (*state)->direction) { src = &(*state)->src; dst = &(*state)->dst; psrc = PF_PEER_SRC; pdst = PF_PEER_DST; } else { src = &(*state)->dst; dst = &(*state)->src; psrc = PF_PEER_DST; pdst = PF_PEER_SRC; } /* update states */ if (src->state < PFUDPS_SINGLE) pf_set_protostate(*state, psrc, PFUDPS_SINGLE); if (dst->state == PFUDPS_SINGLE) pf_set_protostate(*state, pdst, PFUDPS_MULTIPLE); /* update expire time */ (*state)->expire = time_uptime; if (src->state == PFUDPS_MULTIPLE && dst->state == PFUDPS_MULTIPLE) (*state)->timeout = PFTM_UDP_MULTIPLE; else (*state)->timeout = PFTM_UDP_SINGLE; /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; if (PF_ANEQ(pd->src, &nk->addr[pd->sidx], pd->af) || nk->port[pd->sidx] != uh->uh_sport) pf_change_ap(m, pd->src, &uh->uh_sport, pd->ip_sum, &uh->uh_sum, &nk->addr[pd->sidx], nk->port[pd->sidx], 1, pd->af); if (PF_ANEQ(pd->dst, &nk->addr[pd->didx], pd->af) || nk->port[pd->didx] != uh->uh_dport) pf_change_ap(m, pd->dst, &uh->uh_dport, pd->ip_sum, &uh->uh_sum, &nk->addr[pd->didx], nk->port[pd->didx], 1, pd->af); m_copyback(m, off, sizeof(*uh), (caddr_t)uh); } return (PF_PASS); } static int pf_test_state_icmp(struct pf_kstate **state, int direction, struct pfi_kkif *kif, struct mbuf *m, int off, void *h, struct pf_pdesc *pd, u_short *reason) { struct pf_addr *saddr = pd->src, *daddr = pd->dst; u_int16_t icmpid = 0, *icmpsum; u_int8_t icmptype, icmpcode; int state_icmp = 0; struct pf_state_key_cmp key; bzero(&key, sizeof(key)); switch (pd->proto) { #ifdef INET case IPPROTO_ICMP: icmptype = pd->hdr.icmp.icmp_type; icmpcode = pd->hdr.icmp.icmp_code; icmpid = pd->hdr.icmp.icmp_id; icmpsum = &pd->hdr.icmp.icmp_cksum; if (icmptype == ICMP_UNREACH || icmptype == ICMP_SOURCEQUENCH || icmptype == ICMP_REDIRECT || icmptype == ICMP_TIMXCEED || icmptype == ICMP_PARAMPROB) state_icmp++; break; #endif /* INET */ #ifdef INET6 case IPPROTO_ICMPV6: icmptype = pd->hdr.icmp6.icmp6_type; icmpcode = pd->hdr.icmp6.icmp6_code; icmpid = pd->hdr.icmp6.icmp6_id; icmpsum = &pd->hdr.icmp6.icmp6_cksum; if (icmptype == ICMP6_DST_UNREACH || icmptype == ICMP6_PACKET_TOO_BIG || icmptype == ICMP6_TIME_EXCEEDED || icmptype == ICMP6_PARAM_PROB) state_icmp++; break; #endif /* INET6 */ } if (!state_icmp) { /* * ICMP query/reply message not related to a TCP/UDP packet. * Search for an ICMP state. */ key.af = pd->af; key.proto = pd->proto; key.port[0] = key.port[1] = icmpid; if (direction == PF_IN) { /* wire side, straight */ PF_ACPY(&key.addr[0], pd->src, key.af); PF_ACPY(&key.addr[1], pd->dst, key.af); } else { /* stack side, reverse */ PF_ACPY(&key.addr[1], pd->src, key.af); PF_ACPY(&key.addr[0], pd->dst, key.af); } STATE_LOOKUP(kif, &key, direction, *state, pd); (*state)->expire = time_uptime; (*state)->timeout = PFTM_ICMP_ERROR_REPLY; /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; switch (pd->af) { #ifdef INET case AF_INET: if (PF_ANEQ(pd->src, &nk->addr[pd->sidx], AF_INET)) pf_change_a(&saddr->v4.s_addr, pd->ip_sum, nk->addr[pd->sidx].v4.s_addr, 0); if (PF_ANEQ(pd->dst, &nk->addr[pd->didx], AF_INET)) pf_change_a(&daddr->v4.s_addr, pd->ip_sum, nk->addr[pd->didx].v4.s_addr, 0); if (nk->port[0] != pd->hdr.icmp.icmp_id) { pd->hdr.icmp.icmp_cksum = pf_cksum_fixup( pd->hdr.icmp.icmp_cksum, icmpid, nk->port[pd->sidx], 0); pd->hdr.icmp.icmp_id = nk->port[pd->sidx]; } m_copyback(m, off, ICMP_MINLEN, (caddr_t )&pd->hdr.icmp); break; #endif /* INET */ #ifdef INET6 case AF_INET6: if (PF_ANEQ(pd->src, &nk->addr[pd->sidx], AF_INET6)) pf_change_a6(saddr, &pd->hdr.icmp6.icmp6_cksum, &nk->addr[pd->sidx], 0); if (PF_ANEQ(pd->dst, &nk->addr[pd->didx], AF_INET6)) pf_change_a6(daddr, &pd->hdr.icmp6.icmp6_cksum, &nk->addr[pd->didx], 0); m_copyback(m, off, sizeof(struct icmp6_hdr), (caddr_t )&pd->hdr.icmp6); break; #endif /* INET6 */ } } return (PF_PASS); } else { /* * ICMP error message in response to a TCP/UDP packet. * Extract the inner TCP/UDP header and search for that state. */ struct pf_pdesc pd2; bzero(&pd2, sizeof pd2); #ifdef INET struct ip h2; #endif /* INET */ #ifdef INET6 struct ip6_hdr h2_6; int terminal = 0; #endif /* INET6 */ int ipoff2 = 0; int off2 = 0; pd2.af = pd->af; /* Payload packet is from the opposite direction. */ pd2.sidx = (direction == PF_IN) ? 1 : 0; pd2.didx = (direction == PF_IN) ? 0 : 1; switch (pd->af) { #ifdef INET case AF_INET: /* offset of h2 in mbuf chain */ ipoff2 = off + ICMP_MINLEN; if (!pf_pull_hdr(m, ipoff2, &h2, sizeof(h2), NULL, reason, pd2.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: ICMP error message too short " "(ip)\n")); return (PF_DROP); } /* * ICMP error messages don't refer to non-first * fragments */ if (h2.ip_off & htons(IP_OFFMASK)) { REASON_SET(reason, PFRES_FRAG); return (PF_DROP); } /* offset of protocol header that follows h2 */ off2 = ipoff2 + (h2.ip_hl << 2); pd2.proto = h2.ip_p; pd2.src = (struct pf_addr *)&h2.ip_src; pd2.dst = (struct pf_addr *)&h2.ip_dst; pd2.ip_sum = &h2.ip_sum; break; #endif /* INET */ #ifdef INET6 case AF_INET6: ipoff2 = off + sizeof(struct icmp6_hdr); if (!pf_pull_hdr(m, ipoff2, &h2_6, sizeof(h2_6), NULL, reason, pd2.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: ICMP error message too short " "(ip6)\n")); return (PF_DROP); } pd2.proto = h2_6.ip6_nxt; pd2.src = (struct pf_addr *)&h2_6.ip6_src; pd2.dst = (struct pf_addr *)&h2_6.ip6_dst; pd2.ip_sum = NULL; off2 = ipoff2 + sizeof(h2_6); do { switch (pd2.proto) { case IPPROTO_FRAGMENT: /* * ICMPv6 error messages for * non-first fragments */ REASON_SET(reason, PFRES_FRAG); return (PF_DROP); case IPPROTO_AH: case IPPROTO_HOPOPTS: case IPPROTO_ROUTING: case IPPROTO_DSTOPTS: { /* get next header and header length */ struct ip6_ext opt6; if (!pf_pull_hdr(m, off2, &opt6, sizeof(opt6), NULL, reason, pd2.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: ICMPv6 short opt\n")); return (PF_DROP); } if (pd2.proto == IPPROTO_AH) off2 += (opt6.ip6e_len + 2) * 4; else off2 += (opt6.ip6e_len + 1) * 8; pd2.proto = opt6.ip6e_nxt; /* goto the next header */ break; } default: terminal++; break; } } while (!terminal); break; #endif /* INET6 */ } if (PF_ANEQ(pd->dst, pd2.src, pd->af)) { if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("pf: BAD ICMP %d:%d outer dst: ", icmptype, icmpcode); pf_print_host(pd->src, 0, pd->af); printf(" -> "); pf_print_host(pd->dst, 0, pd->af); printf(" inner src: "); pf_print_host(pd2.src, 0, pd2.af); printf(" -> "); pf_print_host(pd2.dst, 0, pd2.af); printf("\n"); } REASON_SET(reason, PFRES_BADSTATE); return (PF_DROP); } switch (pd2.proto) { case IPPROTO_TCP: { struct tcphdr th; u_int32_t seq; struct pf_state_peer *src, *dst; u_int8_t dws; int copyback = 0; /* * Only the first 8 bytes of the TCP header can be * expected. Don't access any TCP header fields after * th_seq, an ackskew test is not possible. */ if (!pf_pull_hdr(m, off2, &th, 8, NULL, reason, pd2.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: ICMP error message too short " "(tcp)\n")); return (PF_DROP); } key.af = pd2.af; key.proto = IPPROTO_TCP; PF_ACPY(&key.addr[pd2.sidx], pd2.src, key.af); PF_ACPY(&key.addr[pd2.didx], pd2.dst, key.af); key.port[pd2.sidx] = th.th_sport; key.port[pd2.didx] = th.th_dport; STATE_LOOKUP(kif, &key, direction, *state, pd); if (direction == (*state)->direction) { src = &(*state)->dst; dst = &(*state)->src; } else { src = &(*state)->src; dst = &(*state)->dst; } if (src->wscale && dst->wscale) dws = dst->wscale & PF_WSCALE_MASK; else dws = 0; /* Demodulate sequence number */ seq = ntohl(th.th_seq) - src->seqdiff; if (src->seqdiff) { pf_change_a(&th.th_seq, icmpsum, htonl(seq), 0); copyback = 1; } if (!((*state)->state_flags & PFSTATE_SLOPPY) && (!SEQ_GEQ(src->seqhi, seq) || !SEQ_GEQ(seq, src->seqlo - (dst->max_win << dws)))) { if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("pf: BAD ICMP %d:%d ", icmptype, icmpcode); pf_print_host(pd->src, 0, pd->af); printf(" -> "); pf_print_host(pd->dst, 0, pd->af); printf(" state: "); pf_print_state(*state); printf(" seq=%u\n", seq); } REASON_SET(reason, PFRES_BADSTATE); return (PF_DROP); } else { if (V_pf_status.debug >= PF_DEBUG_MISC) { printf("pf: OK ICMP %d:%d ", icmptype, icmpcode); pf_print_host(pd->src, 0, pd->af); printf(" -> "); pf_print_host(pd->dst, 0, pd->af); printf(" state: "); pf_print_state(*state); printf(" seq=%u\n", seq); } } /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; if (PF_ANEQ(pd2.src, &nk->addr[pd2.sidx], pd2.af) || nk->port[pd2.sidx] != th.th_sport) pf_change_icmp(pd2.src, &th.th_sport, daddr, &nk->addr[pd2.sidx], nk->port[pd2.sidx], NULL, pd2.ip_sum, icmpsum, pd->ip_sum, 0, pd2.af); if (PF_ANEQ(pd2.dst, &nk->addr[pd2.didx], pd2.af) || nk->port[pd2.didx] != th.th_dport) pf_change_icmp(pd2.dst, &th.th_dport, saddr, &nk->addr[pd2.didx], nk->port[pd2.didx], NULL, pd2.ip_sum, icmpsum, pd->ip_sum, 0, pd2.af); copyback = 1; } if (copyback) { switch (pd2.af) { #ifdef INET case AF_INET: m_copyback(m, off, ICMP_MINLEN, (caddr_t )&pd->hdr.icmp); m_copyback(m, ipoff2, sizeof(h2), (caddr_t )&h2); break; #endif /* INET */ #ifdef INET6 case AF_INET6: m_copyback(m, off, sizeof(struct icmp6_hdr), (caddr_t )&pd->hdr.icmp6); m_copyback(m, ipoff2, sizeof(h2_6), (caddr_t )&h2_6); break; #endif /* INET6 */ } m_copyback(m, off2, 8, (caddr_t)&th); } return (PF_PASS); break; } case IPPROTO_UDP: { struct udphdr uh; if (!pf_pull_hdr(m, off2, &uh, sizeof(uh), NULL, reason, pd2.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: ICMP error message too short " "(udp)\n")); return (PF_DROP); } key.af = pd2.af; key.proto = IPPROTO_UDP; PF_ACPY(&key.addr[pd2.sidx], pd2.src, key.af); PF_ACPY(&key.addr[pd2.didx], pd2.dst, key.af); key.port[pd2.sidx] = uh.uh_sport; key.port[pd2.didx] = uh.uh_dport; STATE_LOOKUP(kif, &key, direction, *state, pd); /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; if (PF_ANEQ(pd2.src, &nk->addr[pd2.sidx], pd2.af) || nk->port[pd2.sidx] != uh.uh_sport) pf_change_icmp(pd2.src, &uh.uh_sport, daddr, &nk->addr[pd2.sidx], nk->port[pd2.sidx], &uh.uh_sum, pd2.ip_sum, icmpsum, pd->ip_sum, 1, pd2.af); if (PF_ANEQ(pd2.dst, &nk->addr[pd2.didx], pd2.af) || nk->port[pd2.didx] != uh.uh_dport) pf_change_icmp(pd2.dst, &uh.uh_dport, saddr, &nk->addr[pd2.didx], nk->port[pd2.didx], &uh.uh_sum, pd2.ip_sum, icmpsum, pd->ip_sum, 1, pd2.af); switch (pd2.af) { #ifdef INET case AF_INET: m_copyback(m, off, ICMP_MINLEN, (caddr_t )&pd->hdr.icmp); m_copyback(m, ipoff2, sizeof(h2), (caddr_t)&h2); break; #endif /* INET */ #ifdef INET6 case AF_INET6: m_copyback(m, off, sizeof(struct icmp6_hdr), (caddr_t )&pd->hdr.icmp6); m_copyback(m, ipoff2, sizeof(h2_6), (caddr_t )&h2_6); break; #endif /* INET6 */ } m_copyback(m, off2, sizeof(uh), (caddr_t)&uh); } return (PF_PASS); break; } #ifdef INET case IPPROTO_ICMP: { struct icmp iih; if (!pf_pull_hdr(m, off2, &iih, ICMP_MINLEN, NULL, reason, pd2.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: ICMP error message too short i" "(icmp)\n")); return (PF_DROP); } key.af = pd2.af; key.proto = IPPROTO_ICMP; PF_ACPY(&key.addr[pd2.sidx], pd2.src, key.af); PF_ACPY(&key.addr[pd2.didx], pd2.dst, key.af); key.port[0] = key.port[1] = iih.icmp_id; STATE_LOOKUP(kif, &key, direction, *state, pd); /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; if (PF_ANEQ(pd2.src, &nk->addr[pd2.sidx], pd2.af) || nk->port[pd2.sidx] != iih.icmp_id) pf_change_icmp(pd2.src, &iih.icmp_id, daddr, &nk->addr[pd2.sidx], nk->port[pd2.sidx], NULL, pd2.ip_sum, icmpsum, pd->ip_sum, 0, AF_INET); if (PF_ANEQ(pd2.dst, &nk->addr[pd2.didx], pd2.af) || nk->port[pd2.didx] != iih.icmp_id) pf_change_icmp(pd2.dst, &iih.icmp_id, saddr, &nk->addr[pd2.didx], nk->port[pd2.didx], NULL, pd2.ip_sum, icmpsum, pd->ip_sum, 0, AF_INET); m_copyback(m, off, ICMP_MINLEN, (caddr_t)&pd->hdr.icmp); m_copyback(m, ipoff2, sizeof(h2), (caddr_t)&h2); m_copyback(m, off2, ICMP_MINLEN, (caddr_t)&iih); } return (PF_PASS); break; } #endif /* INET */ #ifdef INET6 case IPPROTO_ICMPV6: { struct icmp6_hdr iih; if (!pf_pull_hdr(m, off2, &iih, sizeof(struct icmp6_hdr), NULL, reason, pd2.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: ICMP error message too short " "(icmp6)\n")); return (PF_DROP); } key.af = pd2.af; key.proto = IPPROTO_ICMPV6; PF_ACPY(&key.addr[pd2.sidx], pd2.src, key.af); PF_ACPY(&key.addr[pd2.didx], pd2.dst, key.af); key.port[0] = key.port[1] = iih.icmp6_id; STATE_LOOKUP(kif, &key, direction, *state, pd); /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; if (PF_ANEQ(pd2.src, &nk->addr[pd2.sidx], pd2.af) || nk->port[pd2.sidx] != iih.icmp6_id) pf_change_icmp(pd2.src, &iih.icmp6_id, daddr, &nk->addr[pd2.sidx], nk->port[pd2.sidx], NULL, pd2.ip_sum, icmpsum, pd->ip_sum, 0, AF_INET6); if (PF_ANEQ(pd2.dst, &nk->addr[pd2.didx], pd2.af) || nk->port[pd2.didx] != iih.icmp6_id) pf_change_icmp(pd2.dst, &iih.icmp6_id, saddr, &nk->addr[pd2.didx], nk->port[pd2.didx], NULL, pd2.ip_sum, icmpsum, pd->ip_sum, 0, AF_INET6); m_copyback(m, off, sizeof(struct icmp6_hdr), (caddr_t)&pd->hdr.icmp6); m_copyback(m, ipoff2, sizeof(h2_6), (caddr_t)&h2_6); m_copyback(m, off2, sizeof(struct icmp6_hdr), (caddr_t)&iih); } return (PF_PASS); break; } #endif /* INET6 */ default: { key.af = pd2.af; key.proto = pd2.proto; PF_ACPY(&key.addr[pd2.sidx], pd2.src, key.af); PF_ACPY(&key.addr[pd2.didx], pd2.dst, key.af); key.port[0] = key.port[1] = 0; STATE_LOOKUP(kif, &key, direction, *state, pd); /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; if (PF_ANEQ(pd2.src, &nk->addr[pd2.sidx], pd2.af)) pf_change_icmp(pd2.src, NULL, daddr, &nk->addr[pd2.sidx], 0, NULL, pd2.ip_sum, icmpsum, pd->ip_sum, 0, pd2.af); if (PF_ANEQ(pd2.dst, &nk->addr[pd2.didx], pd2.af)) pf_change_icmp(pd2.dst, NULL, saddr, &nk->addr[pd2.didx], 0, NULL, pd2.ip_sum, icmpsum, pd->ip_sum, 0, pd2.af); switch (pd2.af) { #ifdef INET case AF_INET: m_copyback(m, off, ICMP_MINLEN, (caddr_t)&pd->hdr.icmp); m_copyback(m, ipoff2, sizeof(h2), (caddr_t)&h2); break; #endif /* INET */ #ifdef INET6 case AF_INET6: m_copyback(m, off, sizeof(struct icmp6_hdr), (caddr_t )&pd->hdr.icmp6); m_copyback(m, ipoff2, sizeof(h2_6), (caddr_t )&h2_6); break; #endif /* INET6 */ } } return (PF_PASS); break; } } } } static int pf_test_state_other(struct pf_kstate **state, int direction, struct pfi_kkif *kif, struct mbuf *m, struct pf_pdesc *pd) { struct pf_state_peer *src, *dst; struct pf_state_key_cmp key; uint8_t psrc, pdst; bzero(&key, sizeof(key)); key.af = pd->af; key.proto = pd->proto; if (direction == PF_IN) { PF_ACPY(&key.addr[0], pd->src, key.af); PF_ACPY(&key.addr[1], pd->dst, key.af); key.port[0] = key.port[1] = 0; } else { PF_ACPY(&key.addr[1], pd->src, key.af); PF_ACPY(&key.addr[0], pd->dst, key.af); key.port[1] = key.port[0] = 0; } STATE_LOOKUP(kif, &key, direction, *state, pd); if (direction == (*state)->direction) { src = &(*state)->src; dst = &(*state)->dst; psrc = PF_PEER_SRC; pdst = PF_PEER_DST; } else { src = &(*state)->dst; dst = &(*state)->src; psrc = PF_PEER_DST; pdst = PF_PEER_SRC; } /* update states */ if (src->state < PFOTHERS_SINGLE) pf_set_protostate(*state, psrc, PFOTHERS_SINGLE); if (dst->state == PFOTHERS_SINGLE) pf_set_protostate(*state, pdst, PFOTHERS_MULTIPLE); /* update expire time */ (*state)->expire = time_uptime; if (src->state == PFOTHERS_MULTIPLE && dst->state == PFOTHERS_MULTIPLE) (*state)->timeout = PFTM_OTHER_MULTIPLE; else (*state)->timeout = PFTM_OTHER_SINGLE; /* translate source/destination address, if necessary */ if ((*state)->key[PF_SK_WIRE] != (*state)->key[PF_SK_STACK]) { struct pf_state_key *nk = (*state)->key[pd->didx]; KASSERT(nk, ("%s: nk is null", __func__)); KASSERT(pd, ("%s: pd is null", __func__)); KASSERT(pd->src, ("%s: pd->src is null", __func__)); KASSERT(pd->dst, ("%s: pd->dst is null", __func__)); switch (pd->af) { #ifdef INET case AF_INET: if (PF_ANEQ(pd->src, &nk->addr[pd->sidx], AF_INET)) pf_change_a(&pd->src->v4.s_addr, pd->ip_sum, nk->addr[pd->sidx].v4.s_addr, 0); if (PF_ANEQ(pd->dst, &nk->addr[pd->didx], AF_INET)) pf_change_a(&pd->dst->v4.s_addr, pd->ip_sum, nk->addr[pd->didx].v4.s_addr, 0); break; #endif /* INET */ #ifdef INET6 case AF_INET6: if (PF_ANEQ(pd->src, &nk->addr[pd->sidx], AF_INET)) PF_ACPY(pd->src, &nk->addr[pd->sidx], pd->af); if (PF_ANEQ(pd->dst, &nk->addr[pd->didx], AF_INET)) PF_ACPY(pd->dst, &nk->addr[pd->didx], pd->af); #endif /* INET6 */ } } return (PF_PASS); } /* * ipoff and off are measured from the start of the mbuf chain. * h must be at "ipoff" on the mbuf chain. */ void * pf_pull_hdr(struct mbuf *m, int off, void *p, int len, u_short *actionp, u_short *reasonp, sa_family_t af) { switch (af) { #ifdef INET case AF_INET: { struct ip *h = mtod(m, struct ip *); u_int16_t fragoff = (ntohs(h->ip_off) & IP_OFFMASK) << 3; if (fragoff) { if (fragoff >= len) ACTION_SET(actionp, PF_PASS); else { ACTION_SET(actionp, PF_DROP); REASON_SET(reasonp, PFRES_FRAG); } return (NULL); } if (m->m_pkthdr.len < off + len || ntohs(h->ip_len) < off + len) { ACTION_SET(actionp, PF_DROP); REASON_SET(reasonp, PFRES_SHORT); return (NULL); } break; } #endif /* INET */ #ifdef INET6 case AF_INET6: { struct ip6_hdr *h = mtod(m, struct ip6_hdr *); if (m->m_pkthdr.len < off + len || (ntohs(h->ip6_plen) + sizeof(struct ip6_hdr)) < (unsigned)(off + len)) { ACTION_SET(actionp, PF_DROP); REASON_SET(reasonp, PFRES_SHORT); return (NULL); } break; } #endif /* INET6 */ } m_copydata(m, off, len, p); return (p); } int pf_routable(struct pf_addr *addr, sa_family_t af, struct pfi_kkif *kif, int rtableid) { struct ifnet *ifp; /* * Skip check for addresses with embedded interface scope, * as they would always match anyway. */ if (af == AF_INET6 && IN6_IS_SCOPE_EMBED(&addr->v6)) return (1); if (af != AF_INET && af != AF_INET6) return (0); /* Skip checks for ipsec interfaces */ if (kif != NULL && kif->pfik_ifp->if_type == IFT_ENC) return (1); ifp = (kif != NULL) ? kif->pfik_ifp : NULL; switch (af) { #ifdef INET6 case AF_INET6: return (fib6_check_urpf(rtableid, &addr->v6, 0, NHR_NONE, ifp)); #endif #ifdef INET case AF_INET: return (fib4_check_urpf(rtableid, addr->v4, 0, NHR_NONE, ifp)); #endif } return (0); } #ifdef INET static void pf_route(struct mbuf **m, struct pf_krule *r, int dir, struct ifnet *oifp, struct pf_kstate *s, struct pf_pdesc *pd, struct inpcb *inp) { struct mbuf *m0, *m1; struct sockaddr_in dst; struct ip *ip; struct ifnet *ifp = NULL; struct pf_addr naddr; struct pf_ksrc_node *sn = NULL; int error = 0; uint16_t ip_len, ip_off; KASSERT(m && *m && r && oifp, ("%s: invalid parameters", __func__)); KASSERT(dir == PF_IN || dir == PF_OUT, ("%s: invalid direction", __func__)); if ((pd->pf_mtag == NULL && ((pd->pf_mtag = pf_get_mtag(*m)) == NULL)) || pd->pf_mtag->routed++ > 3) { m0 = *m; *m = NULL; goto bad_locked; } if (r->rt == PF_DUPTO) { if ((pd->pf_mtag->flags & PF_DUPLICATED)) { if (s == NULL) { ifp = r->rpool.cur->kif ? r->rpool.cur->kif->pfik_ifp : NULL; } else { ifp = s->rt_kif ? s->rt_kif->pfik_ifp : NULL; PF_STATE_UNLOCK(s); } if (ifp == oifp) { /* When the 2nd interface is not skipped */ return; } else { m0 = *m; *m = NULL; goto bad; } } else { pd->pf_mtag->flags |= PF_DUPLICATED; if (((m0 = m_dup(*m, M_NOWAIT)) == NULL)) { if (s) PF_STATE_UNLOCK(s); return; } } } else { if ((r->rt == PF_REPLYTO) == (r->direction == dir)) { if (s) PF_STATE_UNLOCK(s); return; } m0 = *m; } ip = mtod(m0, struct ip *); bzero(&dst, sizeof(dst)); dst.sin_family = AF_INET; dst.sin_len = sizeof(dst); dst.sin_addr = ip->ip_dst; bzero(&naddr, sizeof(naddr)); if (TAILQ_EMPTY(&r->rpool.list)) { DPFPRINTF(PF_DEBUG_URGENT, ("%s: TAILQ_EMPTY(&r->rpool.list)\n", __func__)); goto bad_locked; } if (s == NULL) { pf_map_addr(AF_INET, r, (struct pf_addr *)&ip->ip_src, &naddr, NULL, &sn); if (!PF_AZERO(&naddr, AF_INET)) dst.sin_addr.s_addr = naddr.v4.s_addr; ifp = r->rpool.cur->kif ? r->rpool.cur->kif->pfik_ifp : NULL; } else { if (!PF_AZERO(&s->rt_addr, AF_INET)) dst.sin_addr.s_addr = s->rt_addr.v4.s_addr; ifp = s->rt_kif ? s->rt_kif->pfik_ifp : NULL; PF_STATE_UNLOCK(s); } if (ifp == NULL) goto bad; if (dir == PF_IN) { if (pf_test(PF_OUT, 0, ifp, &m0, inp) != PF_PASS) goto bad; else if (m0 == NULL) goto done; if (m0->m_len < sizeof(struct ip)) { DPFPRINTF(PF_DEBUG_URGENT, ("%s: m0->m_len < sizeof(struct ip)\n", __func__)); goto bad; } ip = mtod(m0, struct ip *); } if (ifp->if_flags & IFF_LOOPBACK) m0->m_flags |= M_SKIP_FIREWALL; ip_len = ntohs(ip->ip_len); ip_off = ntohs(ip->ip_off); /* Copied from FreeBSD 10.0-CURRENT ip_output. */ m0->m_pkthdr.csum_flags |= CSUM_IP; if (m0->m_pkthdr.csum_flags & CSUM_DELAY_DATA & ~ifp->if_hwassist) { m0 = mb_unmapped_to_ext(m0); if (m0 == NULL) goto done; in_delayed_cksum(m0); m0->m_pkthdr.csum_flags &= ~CSUM_DELAY_DATA; } #if defined(SCTP) || defined(SCTP_SUPPORT) if (m0->m_pkthdr.csum_flags & CSUM_SCTP & ~ifp->if_hwassist) { m0 = mb_unmapped_to_ext(m0); if (m0 == NULL) goto done; sctp_delayed_cksum(m0, (uint32_t)(ip->ip_hl << 2)); m0->m_pkthdr.csum_flags &= ~CSUM_SCTP; } #endif /* * If small enough for interface, or the interface will take * care of the fragmentation for us, we can just send directly. */ if (ip_len <= ifp->if_mtu || (m0->m_pkthdr.csum_flags & ifp->if_hwassist & CSUM_TSO) != 0) { ip->ip_sum = 0; if (m0->m_pkthdr.csum_flags & CSUM_IP & ~ifp->if_hwassist) { ip->ip_sum = in_cksum(m0, ip->ip_hl << 2); m0->m_pkthdr.csum_flags &= ~CSUM_IP; } m_clrprotoflags(m0); /* Avoid confusing lower layers. */ error = (*ifp->if_output)(ifp, m0, sintosa(&dst), NULL); goto done; } /* Balk when DF bit is set or the interface didn't support TSO. */ if ((ip_off & IP_DF) || (m0->m_pkthdr.csum_flags & CSUM_TSO)) { error = EMSGSIZE; KMOD_IPSTAT_INC(ips_cantfrag); if (r->rt != PF_DUPTO) { icmp_error(m0, ICMP_UNREACH, ICMP_UNREACH_NEEDFRAG, 0, ifp->if_mtu); goto done; } else goto bad; } error = ip_fragment(ip, &m0, ifp->if_mtu, ifp->if_hwassist); if (error) goto bad; for (; m0; m0 = m1) { m1 = m0->m_nextpkt; m0->m_nextpkt = NULL; if (error == 0) { m_clrprotoflags(m0); error = (*ifp->if_output)(ifp, m0, sintosa(&dst), NULL); } else m_freem(m0); } if (error == 0) KMOD_IPSTAT_INC(ips_fragmented); done: if (r->rt != PF_DUPTO) *m = NULL; return; bad_locked: if (s) PF_STATE_UNLOCK(s); bad: m_freem(m0); goto done; } #endif /* INET */ #ifdef INET6 static void pf_route6(struct mbuf **m, struct pf_krule *r, int dir, struct ifnet *oifp, struct pf_kstate *s, struct pf_pdesc *pd, struct inpcb *inp) { struct mbuf *m0; struct sockaddr_in6 dst; struct ip6_hdr *ip6; struct ifnet *ifp = NULL; struct pf_addr naddr; struct pf_ksrc_node *sn = NULL; KASSERT(m && *m && r && oifp, ("%s: invalid parameters", __func__)); KASSERT(dir == PF_IN || dir == PF_OUT, ("%s: invalid direction", __func__)); if ((pd->pf_mtag == NULL && ((pd->pf_mtag = pf_get_mtag(*m)) == NULL)) || pd->pf_mtag->routed++ > 3) { m0 = *m; *m = NULL; goto bad_locked; } if (r->rt == PF_DUPTO) { if ((pd->pf_mtag->flags & PF_DUPLICATED)) { if (s == NULL) { ifp = r->rpool.cur->kif ? r->rpool.cur->kif->pfik_ifp : NULL; } else { ifp = s->rt_kif ? s->rt_kif->pfik_ifp : NULL; PF_STATE_UNLOCK(s); } if (ifp == oifp) { /* When the 2nd interface is not skipped */ return; } else { m0 = *m; *m = NULL; goto bad; } } else { pd->pf_mtag->flags |= PF_DUPLICATED; if (((m0 = m_dup(*m, M_NOWAIT)) == NULL)) { if (s) PF_STATE_UNLOCK(s); return; } } } else { if ((r->rt == PF_REPLYTO) == (r->direction == dir)) { if (s) PF_STATE_UNLOCK(s); return; } m0 = *m; } ip6 = mtod(m0, struct ip6_hdr *); bzero(&dst, sizeof(dst)); dst.sin6_family = AF_INET6; dst.sin6_len = sizeof(dst); dst.sin6_addr = ip6->ip6_dst; bzero(&naddr, sizeof(naddr)); if (TAILQ_EMPTY(&r->rpool.list)) { DPFPRINTF(PF_DEBUG_URGENT, ("%s: TAILQ_EMPTY(&r->rpool.list)\n", __func__)); goto bad_locked; } if (s == NULL) { pf_map_addr(AF_INET6, r, (struct pf_addr *)&ip6->ip6_src, &naddr, NULL, &sn); if (!PF_AZERO(&naddr, AF_INET6)) PF_ACPY((struct pf_addr *)&dst.sin6_addr, &naddr, AF_INET6); ifp = r->rpool.cur->kif ? r->rpool.cur->kif->pfik_ifp : NULL; } else { if (!PF_AZERO(&s->rt_addr, AF_INET6)) PF_ACPY((struct pf_addr *)&dst.sin6_addr, &s->rt_addr, AF_INET6); ifp = s->rt_kif ? s->rt_kif->pfik_ifp : NULL; } if (s) PF_STATE_UNLOCK(s); if (ifp == NULL) goto bad; if (dir == PF_IN) { if (pf_test6(PF_OUT, PFIL_FWD, ifp, &m0, inp) != PF_PASS) goto bad; else if (m0 == NULL) goto done; if (m0->m_len < sizeof(struct ip6_hdr)) { DPFPRINTF(PF_DEBUG_URGENT, ("%s: m0->m_len < sizeof(struct ip6_hdr)\n", __func__)); goto bad; } ip6 = mtod(m0, struct ip6_hdr *); } if (ifp->if_flags & IFF_LOOPBACK) m0->m_flags |= M_SKIP_FIREWALL; if (m0->m_pkthdr.csum_flags & CSUM_DELAY_DATA_IPV6 & ~ifp->if_hwassist) { uint32_t plen = m0->m_pkthdr.len - sizeof(*ip6); m0 = mb_unmapped_to_ext(m0); if (m0 == NULL) goto done; in6_delayed_cksum(m0, plen, sizeof(struct ip6_hdr)); m0->m_pkthdr.csum_flags &= ~CSUM_DELAY_DATA_IPV6; } /* * If the packet is too large for the outgoing interface, * send back an icmp6 error. */ if (IN6_IS_SCOPE_EMBED(&dst.sin6_addr)) dst.sin6_addr.s6_addr16[1] = htons(ifp->if_index); if ((u_long)m0->m_pkthdr.len <= ifp->if_mtu) nd6_output_ifp(ifp, ifp, m0, &dst, NULL); else { in6_ifstat_inc(ifp, ifs6_in_toobig); if (r->rt != PF_DUPTO) icmp6_error(m0, ICMP6_PACKET_TOO_BIG, 0, ifp->if_mtu); else goto bad; } done: if (r->rt != PF_DUPTO) *m = NULL; return; bad_locked: if (s) PF_STATE_UNLOCK(s); bad: m_freem(m0); goto done; } #endif /* INET6 */ /* * FreeBSD supports cksum offloads for the following drivers. * em(4), fxp(4), lge(4), nge(4), re(4), ti(4), txp(4), xl(4) * * CSUM_DATA_VALID | CSUM_PSEUDO_HDR : * network driver performed cksum including pseudo header, need to verify * csum_data * CSUM_DATA_VALID : * network driver performed cksum, needs to additional pseudo header * cksum computation with partial csum_data(i.e. lack of H/W support for * pseudo header, for instance sk(4) and possibly gem(4)) * * After validating the cksum of packet, set both flag CSUM_DATA_VALID and * CSUM_PSEUDO_HDR in order to avoid recomputation of the cksum in upper * TCP/UDP layer. * Also, set csum_data to 0xffff to force cksum validation. */ static int pf_check_proto_cksum(struct mbuf *m, int off, int len, u_int8_t p, sa_family_t af) { u_int16_t sum = 0; int hw_assist = 0; struct ip *ip; if (off < sizeof(struct ip) || len < sizeof(struct udphdr)) return (1); if (m->m_pkthdr.len < off + len) return (1); switch (p) { case IPPROTO_TCP: if (m->m_pkthdr.csum_flags & CSUM_DATA_VALID) { if (m->m_pkthdr.csum_flags & CSUM_PSEUDO_HDR) { sum = m->m_pkthdr.csum_data; } else { ip = mtod(m, struct ip *); sum = in_pseudo(ip->ip_src.s_addr, ip->ip_dst.s_addr, htonl((u_short)len + m->m_pkthdr.csum_data + IPPROTO_TCP)); } sum ^= 0xffff; ++hw_assist; } break; case IPPROTO_UDP: if (m->m_pkthdr.csum_flags & CSUM_DATA_VALID) { if (m->m_pkthdr.csum_flags & CSUM_PSEUDO_HDR) { sum = m->m_pkthdr.csum_data; } else { ip = mtod(m, struct ip *); sum = in_pseudo(ip->ip_src.s_addr, ip->ip_dst.s_addr, htonl((u_short)len + m->m_pkthdr.csum_data + IPPROTO_UDP)); } sum ^= 0xffff; ++hw_assist; } break; case IPPROTO_ICMP: #ifdef INET6 case IPPROTO_ICMPV6: #endif /* INET6 */ break; default: return (1); } if (!hw_assist) { switch (af) { case AF_INET: if (p == IPPROTO_ICMP) { if (m->m_len < off) return (1); m->m_data += off; m->m_len -= off; sum = in_cksum(m, len); m->m_data -= off; m->m_len += off; } else { if (m->m_len < sizeof(struct ip)) return (1); sum = in4_cksum(m, p, off, len); } break; #ifdef INET6 case AF_INET6: if (m->m_len < sizeof(struct ip6_hdr)) return (1); sum = in6_cksum(m, p, off, len); break; #endif /* INET6 */ default: return (1); } } if (sum) { switch (p) { case IPPROTO_TCP: { KMOD_TCPSTAT_INC(tcps_rcvbadsum); break; } case IPPROTO_UDP: { KMOD_UDPSTAT_INC(udps_badsum); break; } #ifdef INET case IPPROTO_ICMP: { KMOD_ICMPSTAT_INC(icps_checksum); break; } #endif #ifdef INET6 case IPPROTO_ICMPV6: { KMOD_ICMP6STAT_INC(icp6s_checksum); break; } #endif /* INET6 */ } return (1); } else { if (p == IPPROTO_TCP || p == IPPROTO_UDP) { m->m_pkthdr.csum_flags |= (CSUM_DATA_VALID | CSUM_PSEUDO_HDR); m->m_pkthdr.csum_data = 0xffff; } } return (0); } +static bool +pf_pdesc_to_dnflow(int dir, const struct pf_pdesc *pd, + const struct pf_krule *r, const struct pf_kstate *s, + struct ip_fw_args *dnflow) +{ + int dndir = r->direction; + + if (s && dndir == PF_INOUT) + dndir = s->direction; + + memset(dnflow, 0, sizeof(*dnflow)); + + if (pd->dport != NULL) + dnflow->f_id.dst_port = ntohs(*pd->dport); + if (pd->sport != NULL) + dnflow->f_id.src_port = ntohs(*pd->sport); + + if (dir == PF_IN) + dnflow->flags |= IPFW_ARGS_IN; + else + dnflow->flags |= IPFW_ARGS_OUT; + + if (dir != dndir && pd->act.dnrpipe) { + dnflow->rule.info = pd->act.dnrpipe; + } + else if (dir == dndir) { + dnflow->rule.info = pd->act.dnpipe; + } + else { + return (false); + } + + dnflow->rule.info |= IPFW_IS_DUMMYNET; + if (r->free_flags & PFRULE_DN_IS_PIPE) + dnflow->rule.info |= IPFW_IS_PIPE; + + dnflow->f_id.proto = pd->proto; + dnflow->f_id.extra = dnflow->rule.info; + switch (pd->af) { + case AF_INET: + dnflow->f_id.addr_type = 4; + dnflow->f_id.src_ip = ntohl(pd->src->v4.s_addr); + dnflow->f_id.dst_ip = ntohl(pd->dst->v4.s_addr); + break; + case AF_INET6: + dnflow->flags |= IPFW_ARGS_IP6; + dnflow->f_id.addr_type = 6; + dnflow->f_id.src_ip6 = pd->src->v6; + dnflow->f_id.dst_ip6 = pd->dst->v6; + break; + default: + panic("Invalid AF"); + break; + } + + return (true); +} + #ifdef INET int pf_test(int dir, int pflags, struct ifnet *ifp, struct mbuf **m0, struct inpcb *inp) { struct pfi_kkif *kif; u_short action, reason = 0, log = 0; struct mbuf *m = *m0; struct ip *h = NULL; struct m_tag *ipfwtag; struct pf_krule *a = NULL, *r = &V_pf_default_rule, *tr, *nr; struct pf_kstate *s = NULL; struct pf_kruleset *ruleset = NULL; struct pf_pdesc pd; int off, dirndx, pqid = 0; PF_RULES_RLOCK_TRACKER; KASSERT(dir == PF_IN || dir == PF_OUT, ("%s: bad direction %d\n", __func__, dir)); M_ASSERTPKTHDR(m); if (!V_pf_status.running) return (PF_PASS); memset(&pd, 0, sizeof(pd)); kif = (struct pfi_kkif *)ifp->if_pf_kif; if (kif == NULL) { DPFPRINTF(PF_DEBUG_URGENT, ("pf_test: kif == NULL, if_xname %s\n", ifp->if_xname)); return (PF_DROP); } if (kif->pfik_flags & PFI_IFLAG_SKIP) return (PF_PASS); if (m->m_flags & M_SKIP_FIREWALL) return (PF_PASS); pd.pf_mtag = pf_find_mtag(m); PF_RULES_RLOCK(); - if (__predict_false(ip_divert_ptr != NULL) && + if ((__predict_false(ip_divert_ptr != NULL) || ip_dn_io_ptr != NULL) && ((ipfwtag = m_tag_locate(m, MTAG_IPFW_RULE, 0, NULL)) != NULL)) { struct ipfw_rule_ref *rr = (struct ipfw_rule_ref *)(ipfwtag+1); - if (rr->info & IPFW_IS_DIVERT && rr->rulenum == 0) { + if ((rr->info & IPFW_IS_DIVERT && rr->rulenum == 0) || + (rr->info & IPFW_IS_DUMMYNET)) { if (pd.pf_mtag == NULL && ((pd.pf_mtag = pf_get_mtag(m)) == NULL)) { action = PF_DROP; goto done; } pd.pf_mtag->flags |= PF_PACKET_LOOPED; m_tag_delete(m, ipfwtag); } if (pd.pf_mtag && pd.pf_mtag->flags & PF_FASTFWD_OURS_PRESENT) { m->m_flags |= M_FASTFWD_OURS; pd.pf_mtag->flags &= ~PF_FASTFWD_OURS_PRESENT; } } else if (pf_normalize_ip(m0, dir, kif, &reason, &pd) != PF_PASS) { /* We do IP header normalization and packet reassembly here */ action = PF_DROP; goto done; } m = *m0; /* pf_normalize messes with m0 */ h = mtod(m, struct ip *); off = h->ip_hl << 2; if (off < (int)sizeof(struct ip)) { action = PF_DROP; REASON_SET(&reason, PFRES_SHORT); log = 1; goto done; } pd.src = (struct pf_addr *)&h->ip_src; pd.dst = (struct pf_addr *)&h->ip_dst; pd.sport = pd.dport = NULL; pd.ip_sum = &h->ip_sum; pd.proto_sum = NULL; pd.proto = h->ip_p; pd.dir = dir; pd.sidx = (dir == PF_IN) ? 0 : 1; pd.didx = (dir == PF_IN) ? 1 : 0; pd.af = AF_INET; pd.tos = h->ip_tos & ~IPTOS_ECN_MASK; pd.tot_len = ntohs(h->ip_len); /* handle fragments that didn't get reassembled by normalization */ if (h->ip_off & htons(IP_MF | IP_OFFMASK)) { action = pf_test_fragment(&r, dir, kif, m, h, &pd, &a, &ruleset); goto done; } switch (h->ip_p) { case IPPROTO_TCP: { if (!pf_pull_hdr(m, off, &pd.hdr.tcp, sizeof(pd.hdr.tcp), &action, &reason, AF_INET)) { log = action != PF_PASS; goto done; } pd.p_len = pd.tot_len - off - (pd.hdr.tcp.th_off << 2); pd.sport = &pd.hdr.tcp.th_sport; pd.dport = &pd.hdr.tcp.th_dport; /* Respond to SYN with a syncookie. */ if ((pd.hdr.tcp.th_flags & (TH_SYN|TH_ACK|TH_RST)) == TH_SYN && pd.dir == PF_IN && pf_synflood_check(&pd)) { pf_syncookie_send(m, off, &pd); action = PF_DROP; break; } if ((pd.hdr.tcp.th_flags & TH_ACK) && pd.p_len == 0) pqid = 1; action = pf_normalize_tcp(dir, kif, m, 0, off, h, &pd); if (action == PF_DROP) goto done; action = pf_test_state_tcp(&s, dir, kif, m, off, h, &pd, &reason); if (action == PF_PASS) { if (V_pfsync_update_state_ptr != NULL) V_pfsync_update_state_ptr(s); r = s->rule.ptr; a = s->anchor.ptr; log = s->log; } else if (s == NULL) { /* Validate remote SYN|ACK, re-create original SYN if * valid. */ if ((pd.hdr.tcp.th_flags & (TH_SYN|TH_ACK|TH_RST)) == TH_ACK && pf_syncookie_validate(&pd) && pd.dir == PF_IN) { struct mbuf *msyn; msyn = pf_syncookie_recreate_syn(h->ip_ttl, off,&pd); if (msyn == NULL) { action = PF_DROP; break; } action = pf_test(dir, pflags, ifp, &msyn, inp); m_freem(msyn); if (action == PF_PASS) { action = pf_test_state_tcp(&s, dir, kif, m, off, h, &pd, &reason); if (action != PF_PASS || s == NULL) { action = PF_DROP; break; } s->src.seqhi = ntohl(pd.hdr.tcp.th_ack) - 1; s->src.seqlo = ntohl(pd.hdr.tcp.th_seq) - 1; pf_set_protostate(s, PF_PEER_SRC, PF_TCPS_PROXY_DST); action = pf_synproxy(&pd, &s, &reason); if (action != PF_PASS) break; } break; } else { action = pf_test_rule(&r, &s, dir, kif, m, off, &pd, &a, &ruleset, inp); } } break; } case IPPROTO_UDP: { if (!pf_pull_hdr(m, off, &pd.hdr.udp, sizeof(pd.hdr.udp), &action, &reason, AF_INET)) { log = action != PF_PASS; goto done; } + pd.sport = &pd.hdr.udp.uh_sport; + pd.dport = &pd.hdr.udp.uh_dport; if (pd.hdr.udp.uh_dport == 0 || ntohs(pd.hdr.udp.uh_ulen) > m->m_pkthdr.len - off || ntohs(pd.hdr.udp.uh_ulen) < sizeof(struct udphdr)) { action = PF_DROP; REASON_SET(&reason, PFRES_SHORT); goto done; } action = pf_test_state_udp(&s, dir, kif, m, off, h, &pd); if (action == PF_PASS) { if (V_pfsync_update_state_ptr != NULL) V_pfsync_update_state_ptr(s); r = s->rule.ptr; a = s->anchor.ptr; log = s->log; } else if (s == NULL) action = pf_test_rule(&r, &s, dir, kif, m, off, &pd, &a, &ruleset, inp); break; } case IPPROTO_ICMP: { if (!pf_pull_hdr(m, off, &pd.hdr.icmp, ICMP_MINLEN, &action, &reason, AF_INET)) { log = action != PF_PASS; goto done; } action = pf_test_state_icmp(&s, dir, kif, m, off, h, &pd, &reason); if (action == PF_PASS) { if (V_pfsync_update_state_ptr != NULL) V_pfsync_update_state_ptr(s); r = s->rule.ptr; a = s->anchor.ptr; log = s->log; } else if (s == NULL) action = pf_test_rule(&r, &s, dir, kif, m, off, &pd, &a, &ruleset, inp); break; } #ifdef INET6 case IPPROTO_ICMPV6: { action = PF_DROP; DPFPRINTF(PF_DEBUG_MISC, ("pf: dropping IPv4 packet with ICMPv6 payload\n")); goto done; } #endif default: action = pf_test_state_other(&s, dir, kif, m, &pd); if (action == PF_PASS) { if (V_pfsync_update_state_ptr != NULL) V_pfsync_update_state_ptr(s); r = s->rule.ptr; a = s->anchor.ptr; log = s->log; } else if (s == NULL) action = pf_test_rule(&r, &s, dir, kif, m, off, &pd, &a, &ruleset, inp); break; } done: PF_RULES_RUNLOCK(); if (action == PF_PASS && h->ip_hl > 5 && !((s && s->state_flags & PFSTATE_ALLOWOPTS) || r->allow_opts)) { action = PF_DROP; REASON_SET(&reason, PFRES_IPOPTIONS); log = r->log; DPFPRINTF(PF_DEBUG_MISC, ("pf: dropping packet with ip options\n")); } if (s && s->tag > 0 && pf_tag_packet(m, &pd, s->tag)) { action = PF_DROP; REASON_SET(&reason, PFRES_MEMORY); } if (r->rtableid >= 0) M_SETFIB(m, r->rtableid); if (r->scrub_flags & PFSTATE_SETPRIO) { if (pd.tos & IPTOS_LOWDELAY) pqid = 1; if (vlan_set_pcp(m, r->set_prio[pqid])) { action = PF_DROP; REASON_SET(&reason, PFRES_MEMORY); log = 1; DPFPRINTF(PF_DEBUG_MISC, ("pf: failed to allocate 802.1q mtag\n")); } } #ifdef ALTQ if (s && s->qid) { pd.act.pqid = s->pqid; pd.act.qid = s->qid; } else if (r->qid) { pd.act.pqid = r->pqid; pd.act.qid = r->qid; } if (action == PF_PASS && pd.act.qid) { if (pd.pf_mtag == NULL && ((pd.pf_mtag = pf_get_mtag(m)) == NULL)) { action = PF_DROP; REASON_SET(&reason, PFRES_MEMORY); } else { if (s != NULL) pd.pf_mtag->qid_hash = pf_state_hash(s); if (pqid || (pd.tos & IPTOS_LOWDELAY)) pd.pf_mtag->qid = pd.act.pqid; else pd.pf_mtag->qid = pd.act.qid; /* Add hints for ecn. */ pd.pf_mtag->hdr = h; } } #endif /* ALTQ */ + if (s && (s->dnpipe || s->dnrpipe)) { + pd.act.dnpipe = s->dnpipe; + pd.act.dnrpipe = s->dnrpipe; + pd.act.flags = s->state_flags; + } else if (r->dnpipe || r->dnrpipe) { + pd.act.dnpipe = r->dnpipe; + pd.act.dnrpipe = r->dnrpipe; + pd.act.flags = r->free_flags; + } + if ((pd.act.dnpipe || pd.act.dnrpipe) && !PACKET_LOOPED(&pd)) { + if (ip_dn_io_ptr == NULL) { + action = PF_DROP; + REASON_SET(&reason, PFRES_MEMORY); + } else { + struct ip_fw_args dnflow; + + if (pd.pf_mtag == NULL && + ((pd.pf_mtag = pf_get_mtag(m)) == NULL)) { + action = PF_DROP; + REASON_SET(&reason, PFRES_MEMORY); + if (s) + PF_STATE_UNLOCK(s); + return (action); + } + + if (pf_pdesc_to_dnflow(dir, &pd, r, s, &dnflow)) { + ip_dn_io_ptr(m0, &dnflow); + + if (*m0 == NULL) { + if (s) + PF_STATE_UNLOCK(s); + return (action); + } else { + /* This is dummynet fast io processing */ + m_tag_delete(*m0, m_tag_first(*m0)); + pd.pf_mtag->flags &= ~PF_PACKET_LOOPED; + } + } + } + } + /* * connections redirected to loopback should not match sockets * bound specifically to loopback due to security implications, * see tcp_input() and in_pcblookup_listen(). */ if (dir == PF_IN && action == PF_PASS && (pd.proto == IPPROTO_TCP || pd.proto == IPPROTO_UDP) && s != NULL && s->nat_rule.ptr != NULL && (s->nat_rule.ptr->action == PF_RDR || s->nat_rule.ptr->action == PF_BINAT) && IN_LOOPBACK(ntohl(pd.dst->v4.s_addr))) m->m_flags |= M_SKIP_FIREWALL; if (__predict_false(ip_divert_ptr != NULL) && action == PF_PASS && r->divert.port && !PACKET_LOOPED(&pd)) { ipfwtag = m_tag_alloc(MTAG_IPFW_RULE, 0, sizeof(struct ipfw_rule_ref), M_NOWAIT | M_ZERO); if (ipfwtag != NULL) { ((struct ipfw_rule_ref *)(ipfwtag+1))->info = ntohs(r->divert.port); ((struct ipfw_rule_ref *)(ipfwtag+1))->rulenum = dir; if (s) PF_STATE_UNLOCK(s); m_tag_prepend(m, ipfwtag); if (m->m_flags & M_FASTFWD_OURS) { if (pd.pf_mtag == NULL && ((pd.pf_mtag = pf_get_mtag(m)) == NULL)) { action = PF_DROP; REASON_SET(&reason, PFRES_MEMORY); log = 1; DPFPRINTF(PF_DEBUG_MISC, ("pf: failed to allocate tag\n")); } else { pd.pf_mtag->flags |= PF_FASTFWD_OURS_PRESENT; m->m_flags &= ~M_FASTFWD_OURS; } } ip_divert_ptr(*m0, dir == PF_IN); *m0 = NULL; return (action); } else { /* XXX: ipfw has the same behaviour! */ action = PF_DROP; REASON_SET(&reason, PFRES_MEMORY); log = 1; DPFPRINTF(PF_DEBUG_MISC, ("pf: failed to allocate divert tag\n")); } } if (log) { struct pf_krule *lr; if (s != NULL && s->nat_rule.ptr != NULL && s->nat_rule.ptr->log & PF_LOG_ALL) lr = s->nat_rule.ptr; else lr = r; PFLOG_PACKET(kif, m, AF_INET, dir, reason, lr, a, ruleset, &pd, (s == NULL)); } pf_counter_u64_critical_enter(); pf_counter_u64_add_protected(&kif->pfik_bytes[0][dir == PF_OUT][action != PF_PASS], pd.tot_len); pf_counter_u64_add_protected(&kif->pfik_packets[0][dir == PF_OUT][action != PF_PASS], 1); if (action == PF_PASS || r->action == PF_DROP) { dirndx = (dir == PF_OUT); pf_counter_u64_add_protected(&r->packets[dirndx], 1); pf_counter_u64_add_protected(&r->bytes[dirndx], pd.tot_len); if (a != NULL) { pf_counter_u64_add_protected(&a->packets[dirndx], 1); pf_counter_u64_add_protected(&a->bytes[dirndx], pd.tot_len); } if (s != NULL) { if (s->nat_rule.ptr != NULL) { pf_counter_u64_add_protected(&s->nat_rule.ptr->packets[dirndx], 1); pf_counter_u64_add_protected(&s->nat_rule.ptr->bytes[dirndx], pd.tot_len); } if (s->src_node != NULL) { counter_u64_add(s->src_node->packets[dirndx], 1); counter_u64_add(s->src_node->bytes[dirndx], pd.tot_len); } if (s->nat_src_node != NULL) { counter_u64_add(s->nat_src_node->packets[dirndx], 1); counter_u64_add(s->nat_src_node->bytes[dirndx], pd.tot_len); } dirndx = (dir == s->direction) ? 0 : 1; s->packets[dirndx]++; s->bytes[dirndx] += pd.tot_len; } tr = r; nr = (s != NULL) ? s->nat_rule.ptr : pd.nat_rule; if (nr != NULL && r == &V_pf_default_rule) tr = nr; if (tr->src.addr.type == PF_ADDR_TABLE) pfr_update_stats(tr->src.addr.p.tbl, (s == NULL) ? pd.src : &s->key[(s->direction == PF_IN)]-> addr[(s->direction == PF_OUT)], pd.af, pd.tot_len, dir == PF_OUT, r->action == PF_PASS, tr->src.neg); if (tr->dst.addr.type == PF_ADDR_TABLE) pfr_update_stats(tr->dst.addr.p.tbl, (s == NULL) ? pd.dst : &s->key[(s->direction == PF_IN)]-> addr[(s->direction == PF_IN)], pd.af, pd.tot_len, dir == PF_OUT, r->action == PF_PASS, tr->dst.neg); } pf_counter_u64_critical_exit(); switch (action) { case PF_SYNPROXY_DROP: m_freem(*m0); case PF_DEFER: *m0 = NULL; action = PF_PASS; break; case PF_DROP: m_freem(*m0); *m0 = NULL; break; default: /* pf_route() returns unlocked. */ if (r->rt) { pf_route(m0, r, dir, kif->pfik_ifp, s, &pd, inp); return (action); } break; } SDT_PROBE4(pf, ip, test, done, action, reason, r, s); if (s) PF_STATE_UNLOCK(s); return (action); } #endif /* INET */ #ifdef INET6 int pf_test6(int dir, int pflags, struct ifnet *ifp, struct mbuf **m0, struct inpcb *inp) { struct pfi_kkif *kif; u_short action, reason = 0, log = 0; struct mbuf *m = *m0, *n = NULL; struct m_tag *mtag; + struct m_tag *ipfwtag; struct ip6_hdr *h = NULL; struct pf_krule *a = NULL, *r = &V_pf_default_rule, *tr, *nr; struct pf_kstate *s = NULL; struct pf_kruleset *ruleset = NULL; struct pf_pdesc pd; int off, terminal = 0, dirndx, rh_cnt = 0, pqid = 0; PF_RULES_RLOCK_TRACKER; KASSERT(dir == PF_IN || dir == PF_OUT, ("%s: bad direction %d\n", __func__, dir)); M_ASSERTPKTHDR(m); if (!V_pf_status.running) return (PF_PASS); memset(&pd, 0, sizeof(pd)); pd.pf_mtag = pf_find_mtag(m); if (pd.pf_mtag && pd.pf_mtag->flags & PF_TAG_GENERATED) return (PF_PASS); kif = (struct pfi_kkif *)ifp->if_pf_kif; if (kif == NULL) { DPFPRINTF(PF_DEBUG_URGENT, ("pf_test6: kif == NULL, if_xname %s\n", ifp->if_xname)); return (PF_DROP); } if (kif->pfik_flags & PFI_IFLAG_SKIP) return (PF_PASS); if (m->m_flags & M_SKIP_FIREWALL) return (PF_PASS); PF_RULES_RLOCK(); /* We do IP header normalization and packet reassembly here */ - if (pf_normalize_ip6(m0, dir, kif, &reason, &pd) != PF_PASS) { + if (ip_dn_io_ptr != NULL && + ((ipfwtag = m_tag_locate(m, MTAG_IPFW_RULE, 0, NULL)) != NULL)) { + struct ipfw_rule_ref *rr = (struct ipfw_rule_ref *)(ipfwtag+1); + if (rr->info & IPFW_IS_DUMMYNET) { + if (pd.pf_mtag == NULL && + ((pd.pf_mtag = pf_get_mtag(m)) == NULL)) { + action = PF_DROP; + goto done; + } + pd.pf_mtag->flags |= PF_PACKET_LOOPED; + m_tag_delete(m, ipfwtag); + } + } else if (pf_normalize_ip6(m0, dir, kif, &reason, &pd) != PF_PASS) { action = PF_DROP; goto done; } m = *m0; /* pf_normalize messes with m0 */ h = mtod(m, struct ip6_hdr *); /* * we do not support jumbogram. if we keep going, zero ip6_plen * will do something bad, so drop the packet for now. */ if (htons(h->ip6_plen) == 0) { action = PF_DROP; REASON_SET(&reason, PFRES_NORM); /*XXX*/ goto done; } pd.src = (struct pf_addr *)&h->ip6_src; pd.dst = (struct pf_addr *)&h->ip6_dst; pd.sport = pd.dport = NULL; pd.ip_sum = NULL; pd.proto_sum = NULL; pd.dir = dir; pd.sidx = (dir == PF_IN) ? 0 : 1; pd.didx = (dir == PF_IN) ? 1 : 0; pd.af = AF_INET6; pd.tos = IPV6_DSCP(h); pd.tot_len = ntohs(h->ip6_plen) + sizeof(struct ip6_hdr); off = ((caddr_t)h - m->m_data) + sizeof(struct ip6_hdr); pd.proto = h->ip6_nxt; do { switch (pd.proto) { case IPPROTO_FRAGMENT: action = pf_test_fragment(&r, dir, kif, m, h, &pd, &a, &ruleset); if (action == PF_DROP) REASON_SET(&reason, PFRES_FRAG); goto done; case IPPROTO_ROUTING: { struct ip6_rthdr rthdr; if (rh_cnt++) { DPFPRINTF(PF_DEBUG_MISC, ("pf: IPv6 more than one rthdr\n")); action = PF_DROP; REASON_SET(&reason, PFRES_IPOPTIONS); log = 1; goto done; } if (!pf_pull_hdr(m, off, &rthdr, sizeof(rthdr), NULL, &reason, pd.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: IPv6 short rthdr\n")); action = PF_DROP; REASON_SET(&reason, PFRES_SHORT); log = 1; goto done; } if (rthdr.ip6r_type == IPV6_RTHDR_TYPE_0) { DPFPRINTF(PF_DEBUG_MISC, ("pf: IPv6 rthdr0\n")); action = PF_DROP; REASON_SET(&reason, PFRES_IPOPTIONS); log = 1; goto done; } /* FALLTHROUGH */ } case IPPROTO_AH: case IPPROTO_HOPOPTS: case IPPROTO_DSTOPTS: { /* get next header and header length */ struct ip6_ext opt6; if (!pf_pull_hdr(m, off, &opt6, sizeof(opt6), NULL, &reason, pd.af)) { DPFPRINTF(PF_DEBUG_MISC, ("pf: IPv6 short opt\n")); action = PF_DROP; log = 1; goto done; } if (pd.proto == IPPROTO_AH) off += (opt6.ip6e_len + 2) * 4; else off += (opt6.ip6e_len + 1) * 8; pd.proto = opt6.ip6e_nxt; /* goto the next header */ break; } default: terminal++; break; } } while (!terminal); /* if there's no routing header, use unmodified mbuf for checksumming */ if (!n) n = m; switch (pd.proto) { case IPPROTO_TCP: { if (!pf_pull_hdr(m, off, &pd.hdr.tcp, sizeof(pd.hdr.tcp), &action, &reason, AF_INET6)) { log = action != PF_PASS; goto done; } pd.p_len = pd.tot_len - off - (pd.hdr.tcp.th_off << 2); + pd.sport = &pd.hdr.tcp.th_sport; + pd.dport = &pd.hdr.tcp.th_dport; action = pf_normalize_tcp(dir, kif, m, 0, off, h, &pd); if (action == PF_DROP) goto done; action = pf_test_state_tcp(&s, dir, kif, m, off, h, &pd, &reason); if (action == PF_PASS) { if (V_pfsync_update_state_ptr != NULL) V_pfsync_update_state_ptr(s); r = s->rule.ptr; a = s->anchor.ptr; log = s->log; } else if (s == NULL) action = pf_test_rule(&r, &s, dir, kif, m, off, &pd, &a, &ruleset, inp); break; } case IPPROTO_UDP: { if (!pf_pull_hdr(m, off, &pd.hdr.udp, sizeof(pd.hdr.udp), &action, &reason, AF_INET6)) { log = action != PF_PASS; goto done; } + pd.sport = &pd.hdr.udp.uh_sport; + pd.dport = &pd.hdr.udp.uh_dport; if (pd.hdr.udp.uh_dport == 0 || ntohs(pd.hdr.udp.uh_ulen) > m->m_pkthdr.len - off || ntohs(pd.hdr.udp.uh_ulen) < sizeof(struct udphdr)) { action = PF_DROP; REASON_SET(&reason, PFRES_SHORT); goto done; } action = pf_test_state_udp(&s, dir, kif, m, off, h, &pd); if (action == PF_PASS) { if (V_pfsync_update_state_ptr != NULL) V_pfsync_update_state_ptr(s); r = s->rule.ptr; a = s->anchor.ptr; log = s->log; } else if (s == NULL) action = pf_test_rule(&r, &s, dir, kif, m, off, &pd, &a, &ruleset, inp); break; } case IPPROTO_ICMP: { action = PF_DROP; DPFPRINTF(PF_DEBUG_MISC, ("pf: dropping IPv6 packet with ICMPv4 payload\n")); goto done; } case IPPROTO_ICMPV6: { if (!pf_pull_hdr(m, off, &pd.hdr.icmp6, sizeof(pd.hdr.icmp6), &action, &reason, AF_INET6)) { log = action != PF_PASS; goto done; } action = pf_test_state_icmp(&s, dir, kif, m, off, h, &pd, &reason); if (action == PF_PASS) { if (V_pfsync_update_state_ptr != NULL) V_pfsync_update_state_ptr(s); r = s->rule.ptr; a = s->anchor.ptr; log = s->log; } else if (s == NULL) action = pf_test_rule(&r, &s, dir, kif, m, off, &pd, &a, &ruleset, inp); break; } default: action = pf_test_state_other(&s, dir, kif, m, &pd); if (action == PF_PASS) { if (V_pfsync_update_state_ptr != NULL) V_pfsync_update_state_ptr(s); r = s->rule.ptr; a = s->anchor.ptr; log = s->log; } else if (s == NULL) action = pf_test_rule(&r, &s, dir, kif, m, off, &pd, &a, &ruleset, inp); break; } done: PF_RULES_RUNLOCK(); if (n != m) { m_freem(n); n = NULL; } /* handle dangerous IPv6 extension headers. */ if (action == PF_PASS && rh_cnt && !((s && s->state_flags & PFSTATE_ALLOWOPTS) || r->allow_opts)) { action = PF_DROP; REASON_SET(&reason, PFRES_IPOPTIONS); log = r->log; DPFPRINTF(PF_DEBUG_MISC, ("pf: dropping packet with dangerous v6 headers\n")); } if (s && s->tag > 0 && pf_tag_packet(m, &pd, s->tag)) { action = PF_DROP; REASON_SET(&reason, PFRES_MEMORY); } if (r->rtableid >= 0) M_SETFIB(m, r->rtableid); if (r->scrub_flags & PFSTATE_SETPRIO) { if (pd.tos & IPTOS_LOWDELAY) pqid = 1; if (vlan_set_pcp(m, r->set_prio[pqid])) { action = PF_DROP; REASON_SET(&reason, PFRES_MEMORY); log = 1; DPFPRINTF(PF_DEBUG_MISC, ("pf: failed to allocate 802.1q mtag\n")); } } #ifdef ALTQ if (s && s->qid) { pd.act.pqid = s->pqid; pd.act.qid = s->qid; } else if (r->qid) { pd.act.pqid = r->pqid; pd.act.qid = r->qid; } if (action == PF_PASS && pd.act.qid) { if (pd.pf_mtag == NULL && ((pd.pf_mtag = pf_get_mtag(m)) == NULL)) { action = PF_DROP; REASON_SET(&reason, PFRES_MEMORY); } else { if (s != NULL) pd.pf_mtag->qid_hash = pf_state_hash(s); if (pd.tos & IPTOS_LOWDELAY) pd.pf_mtag->qid = pd.act.pqid; else pd.pf_mtag->qid = pd.act.qid; /* Add hints for ecn. */ pd.pf_mtag->hdr = h; } } #endif /* ALTQ */ + if (s && (s->dnpipe || s->dnrpipe)) { + pd.act.dnpipe = s->dnpipe; + pd.act.dnrpipe = s->dnrpipe; + pd.act.flags = s->state_flags; + } else { + pd.act.dnpipe = r->dnpipe; + pd.act.dnrpipe = r->dnrpipe; + pd.act.flags = r->free_flags; + } + if ((pd.act.dnpipe || pd.act.dnrpipe) && !PACKET_LOOPED(&pd)) { + if (ip_dn_io_ptr == NULL) { + action = PF_DROP; + REASON_SET(&reason, PFRES_MEMORY); + } else { + struct ip_fw_args dnflow; + + if (pd.pf_mtag == NULL && + ((pd.pf_mtag = pf_get_mtag(m)) == NULL)) { + action = PF_DROP; + REASON_SET(&reason, PFRES_MEMORY); + if (s) + PF_STATE_UNLOCK(s); + return (action); + } + + if (pf_pdesc_to_dnflow(dir, &pd, r, s, &dnflow)) { + ip_dn_io_ptr(m0, &dnflow); + + if (*m0 == NULL) { + if (s) + PF_STATE_UNLOCK(s); + return (action); + } else { + /* This is dummynet fast io processing */ + m_tag_delete(*m0, m_tag_first(*m0)); + pd.pf_mtag->flags &= ~PF_PACKET_LOOPED; + } + } + } + } + if (dir == PF_IN && action == PF_PASS && (pd.proto == IPPROTO_TCP || pd.proto == IPPROTO_UDP) && s != NULL && s->nat_rule.ptr != NULL && (s->nat_rule.ptr->action == PF_RDR || s->nat_rule.ptr->action == PF_BINAT) && IN6_IS_ADDR_LOOPBACK(&pd.dst->v6)) m->m_flags |= M_SKIP_FIREWALL; /* XXX: Anybody working on it?! */ if (r->divert.port) printf("pf: divert(9) is not supported for IPv6\n"); if (log) { struct pf_krule *lr; if (s != NULL && s->nat_rule.ptr != NULL && s->nat_rule.ptr->log & PF_LOG_ALL) lr = s->nat_rule.ptr; else lr = r; PFLOG_PACKET(kif, m, AF_INET6, dir, reason, lr, a, ruleset, &pd, (s == NULL)); } pf_counter_u64_critical_enter(); pf_counter_u64_add_protected(&kif->pfik_bytes[1][dir == PF_OUT][action != PF_PASS], pd.tot_len); pf_counter_u64_add_protected(&kif->pfik_packets[1][dir == PF_OUT][action != PF_PASS], 1); if (action == PF_PASS || r->action == PF_DROP) { dirndx = (dir == PF_OUT); pf_counter_u64_add_protected(&r->packets[dirndx], 1); pf_counter_u64_add_protected(&r->bytes[dirndx], pd.tot_len); if (a != NULL) { pf_counter_u64_add_protected(&a->packets[dirndx], 1); pf_counter_u64_add_protected(&a->bytes[dirndx], pd.tot_len); } if (s != NULL) { if (s->nat_rule.ptr != NULL) { pf_counter_u64_add_protected(&s->nat_rule.ptr->packets[dirndx], 1); pf_counter_u64_add_protected(&s->nat_rule.ptr->bytes[dirndx], pd.tot_len); } if (s->src_node != NULL) { counter_u64_add(s->src_node->packets[dirndx], 1); counter_u64_add(s->src_node->bytes[dirndx], pd.tot_len); } if (s->nat_src_node != NULL) { counter_u64_add(s->nat_src_node->packets[dirndx], 1); counter_u64_add(s->nat_src_node->bytes[dirndx], pd.tot_len); } dirndx = (dir == s->direction) ? 0 : 1; s->packets[dirndx]++; s->bytes[dirndx] += pd.tot_len; } tr = r; nr = (s != NULL) ? s->nat_rule.ptr : pd.nat_rule; if (nr != NULL && r == &V_pf_default_rule) tr = nr; if (tr->src.addr.type == PF_ADDR_TABLE) pfr_update_stats(tr->src.addr.p.tbl, (s == NULL) ? pd.src : &s->key[(s->direction == PF_IN)]->addr[0], pd.af, pd.tot_len, dir == PF_OUT, r->action == PF_PASS, tr->src.neg); if (tr->dst.addr.type == PF_ADDR_TABLE) pfr_update_stats(tr->dst.addr.p.tbl, (s == NULL) ? pd.dst : &s->key[(s->direction == PF_IN)]->addr[1], pd.af, pd.tot_len, dir == PF_OUT, r->action == PF_PASS, tr->dst.neg); } pf_counter_u64_critical_exit(); switch (action) { case PF_SYNPROXY_DROP: m_freem(*m0); case PF_DEFER: *m0 = NULL; action = PF_PASS; break; case PF_DROP: m_freem(*m0); *m0 = NULL; break; default: /* pf_route6() returns unlocked. */ if (r->rt) { pf_route6(m0, r, dir, kif->pfik_ifp, s, &pd, inp); return (action); } break; } if (s) PF_STATE_UNLOCK(s); /* If reassembled packet passed, create new fragments. */ if (action == PF_PASS && *m0 && (pflags & PFIL_FWD) && (mtag = m_tag_find(m, PF_REASSEMBLED, NULL)) != NULL) action = pf_refragment6(ifp, m0, mtag); SDT_PROBE4(pf, ip, test6, done, action, reason, r, s); return (action); } #endif /* INET6 */ diff --git a/sys/netpfil/pf/pf_nv.c b/sys/netpfil/pf/pf_nv.c index d1eca90e0ee5..fb2bab77ad8f 100644 --- a/sys/netpfil/pf/pf_nv.c +++ b/sys/netpfil/pf/pf_nv.c @@ -1,974 +1,980 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2021 Rubicon Communications, LLC (Netgate) * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * */ #include __FBSDID("$FreeBSD$"); #include "opt_inet.h" #include "opt_inet6.h" #include #include #include #include #include #include #define PF_NV_IMPL_UINT(fnname, type, max) \ int \ pf_nv ## fnname ## _opt(const nvlist_t *nvl, const char *name, \ type *val, type dflt) \ { \ uint64_t raw; \ if (! nvlist_exists_number(nvl, name)) { \ *val = dflt; \ return (0); \ } \ raw = nvlist_get_number(nvl, name); \ if (raw > max) \ return (ERANGE); \ *val = (type)raw; \ return (0); \ } \ int \ pf_nv ## fnname(const nvlist_t *nvl, const char *name, type *val) \ { \ uint64_t raw; \ if (! nvlist_exists_number(nvl, name)) \ return (EINVAL); \ raw = nvlist_get_number(nvl, name); \ if (raw > max) \ return (ERANGE); \ *val = (type)raw; \ return (0); \ } \ int \ pf_nv ## fnname ## _array(const nvlist_t *nvl, const char *name, \ type *array, size_t maxelems, size_t *nelems) \ { \ const uint64_t *n; \ size_t nitems; \ bzero(array, sizeof(type) * maxelems); \ if (! nvlist_exists_number_array(nvl, name)) \ return (EINVAL); \ n = nvlist_get_number_array(nvl, name, &nitems); \ if (nitems != maxelems) \ return (E2BIG); \ if (nelems != NULL) \ *nelems = nitems; \ for (size_t i = 0; i < nitems; i++) { \ if (n[i] > max) \ return (ERANGE); \ array[i] = (type)n[i]; \ } \ return (0); \ } \ void \ pf_ ## fnname ## _array_nv(nvlist_t *nvl, const char *name, \ const type *numbers, size_t count) \ { \ uint64_t tmp; \ for (size_t i = 0; i < count; i++) { \ tmp = numbers[i]; \ nvlist_append_number_array(nvl, name, tmp); \ } \ } int pf_nvbinary(const nvlist_t *nvl, const char *name, void *data, size_t expected_size) { const uint8_t *nvdata; size_t len; bzero(data, expected_size); if (! nvlist_exists_binary(nvl, name)) return (EINVAL); nvdata = (const uint8_t *)nvlist_get_binary(nvl, name, &len); if (len > expected_size) return (EINVAL); memcpy(data, nvdata, len); return (0); } PF_NV_IMPL_UINT(uint8, uint8_t, UINT8_MAX); PF_NV_IMPL_UINT(uint16, uint16_t, UINT16_MAX); PF_NV_IMPL_UINT(uint32, uint32_t, UINT32_MAX); PF_NV_IMPL_UINT(uint64, uint64_t, UINT64_MAX); int pf_nvint(const nvlist_t *nvl, const char *name, int *val) { int64_t raw; if (! nvlist_exists_number(nvl, name)) return (EINVAL); raw = nvlist_get_number(nvl, name); if (raw > INT_MAX || raw < INT_MIN) return (ERANGE); *val = (int)raw; return (0); } int pf_nvstring(const nvlist_t *nvl, const char *name, char *str, size_t maxlen) { int ret; if (! nvlist_exists_string(nvl, name)) return (EINVAL); ret = strlcpy(str, nvlist_get_string(nvl, name), maxlen); if (ret >= maxlen) return (EINVAL); return (0); } static int pf_nvaddr_to_addr(const nvlist_t *nvl, struct pf_addr *paddr) { return (pf_nvbinary(nvl, "addr", paddr, sizeof(*paddr))); } static nvlist_t * pf_addr_to_nvaddr(const struct pf_addr *paddr) { nvlist_t *nvl; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); nvlist_add_binary(nvl, "addr", paddr, sizeof(*paddr)); return (nvl); } static int pf_nvmape_to_mape(const nvlist_t *nvl, struct pf_mape_portset *mape) { int error = 0; bzero(mape, sizeof(*mape)); PFNV_CHK(pf_nvuint8(nvl, "offset", &mape->offset)); PFNV_CHK(pf_nvuint8(nvl, "psidlen", &mape->psidlen)); PFNV_CHK(pf_nvuint16(nvl, "psid", &mape->psid)); errout: return (error); } static nvlist_t * pf_mape_to_nvmape(const struct pf_mape_portset *mape) { nvlist_t *nvl; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); nvlist_add_number(nvl, "offset", mape->offset); nvlist_add_number(nvl, "psidlen", mape->psidlen); nvlist_add_number(nvl, "psid", mape->psid); return (nvl); } static int pf_nvpool_to_pool(const nvlist_t *nvl, struct pf_kpool *kpool) { int error = 0; bzero(kpool, sizeof(*kpool)); PFNV_CHK(pf_nvbinary(nvl, "key", &kpool->key, sizeof(kpool->key))); if (nvlist_exists_nvlist(nvl, "counter")) { PFNV_CHK(pf_nvaddr_to_addr(nvlist_get_nvlist(nvl, "counter"), &kpool->counter)); } PFNV_CHK(pf_nvint(nvl, "tblidx", &kpool->tblidx)); PFNV_CHK(pf_nvuint16_array(nvl, "proxy_port", kpool->proxy_port, 2, NULL)); PFNV_CHK(pf_nvuint8(nvl, "opts", &kpool->opts)); if (nvlist_exists_nvlist(nvl, "mape")) { PFNV_CHK(pf_nvmape_to_mape(nvlist_get_nvlist(nvl, "mape"), &kpool->mape)); } errout: return (error); } static nvlist_t * pf_pool_to_nvpool(const struct pf_kpool *pool) { nvlist_t *nvl; nvlist_t *tmp; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); nvlist_add_binary(nvl, "key", &pool->key, sizeof(pool->key)); tmp = pf_addr_to_nvaddr(&pool->counter); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "counter", tmp); nvlist_destroy(tmp); nvlist_add_number(nvl, "tblidx", pool->tblidx); pf_uint16_array_nv(nvl, "proxy_port", pool->proxy_port, 2); nvlist_add_number(nvl, "opts", pool->opts); tmp = pf_mape_to_nvmape(&pool->mape); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "mape", tmp); nvlist_destroy(tmp); return (nvl); error: nvlist_destroy(nvl); return (NULL); } static int pf_nvaddr_wrap_to_addr_wrap(const nvlist_t *nvl, struct pf_addr_wrap *addr) { int error = 0; bzero(addr, sizeof(*addr)); PFNV_CHK(pf_nvuint8(nvl, "type", &addr->type)); PFNV_CHK(pf_nvuint8(nvl, "iflags", &addr->iflags)); if (addr->type == PF_ADDR_DYNIFTL) PFNV_CHK(pf_nvstring(nvl, "ifname", addr->v.ifname, sizeof(addr->v.ifname))); if (addr->type == PF_ADDR_TABLE) PFNV_CHK(pf_nvstring(nvl, "tblname", addr->v.tblname, sizeof(addr->v.tblname))); if (! nvlist_exists_nvlist(nvl, "addr")) return (EINVAL); PFNV_CHK(pf_nvaddr_to_addr(nvlist_get_nvlist(nvl, "addr"), &addr->v.a.addr)); if (! nvlist_exists_nvlist(nvl, "mask")) return (EINVAL); PFNV_CHK(pf_nvaddr_to_addr(nvlist_get_nvlist(nvl, "mask"), &addr->v.a.mask)); switch (addr->type) { case PF_ADDR_DYNIFTL: case PF_ADDR_TABLE: case PF_ADDR_RANGE: case PF_ADDR_ADDRMASK: case PF_ADDR_NOROUTE: case PF_ADDR_URPFFAILED: break; default: return (EINVAL); } errout: return (error); } static nvlist_t * pf_addr_wrap_to_nvaddr_wrap(const struct pf_addr_wrap *addr) { nvlist_t *nvl; nvlist_t *tmp; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); nvlist_add_number(nvl, "type", addr->type); nvlist_add_number(nvl, "iflags", addr->iflags); if (addr->type == PF_ADDR_DYNIFTL) nvlist_add_string(nvl, "ifname", addr->v.ifname); if (addr->type == PF_ADDR_TABLE) nvlist_add_string(nvl, "tblname", addr->v.tblname); tmp = pf_addr_to_nvaddr(&addr->v.a.addr); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "addr", tmp); nvlist_destroy(tmp); tmp = pf_addr_to_nvaddr(&addr->v.a.mask); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "mask", tmp); nvlist_destroy(tmp); return (nvl); error: nvlist_destroy(nvl); return (NULL); } static int pf_validate_op(uint8_t op) { switch (op) { case PF_OP_NONE: case PF_OP_IRG: case PF_OP_EQ: case PF_OP_NE: case PF_OP_LT: case PF_OP_LE: case PF_OP_GT: case PF_OP_GE: case PF_OP_XRG: case PF_OP_RRG: break; default: return (EINVAL); } return (0); } static int pf_nvrule_addr_to_rule_addr(const nvlist_t *nvl, struct pf_rule_addr *addr) { int error = 0; if (! nvlist_exists_nvlist(nvl, "addr")) return (EINVAL); PFNV_CHK(pf_nvaddr_wrap_to_addr_wrap(nvlist_get_nvlist(nvl, "addr"), &addr->addr)); PFNV_CHK(pf_nvuint16_array(nvl, "port", addr->port, 2, NULL)); PFNV_CHK(pf_nvuint8(nvl, "neg", &addr->neg)); PFNV_CHK(pf_nvuint8(nvl, "port_op", &addr->port_op)); PFNV_CHK(pf_validate_op(addr->port_op)); errout: return (error); } static nvlist_t * pf_rule_addr_to_nvrule_addr(const struct pf_rule_addr *addr) { nvlist_t *nvl; nvlist_t *tmp; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); tmp = pf_addr_wrap_to_nvaddr_wrap(&addr->addr); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "addr", tmp); nvlist_destroy(tmp); pf_uint16_array_nv(nvl, "port", addr->port, 2); nvlist_add_number(nvl, "neg", addr->neg); nvlist_add_number(nvl, "port_op", addr->port_op); return (nvl); error: nvlist_destroy(nvl); return (NULL); } static int pf_nvrule_uid_to_rule_uid(const nvlist_t *nvl, struct pf_rule_uid *uid) { int error = 0; bzero(uid, sizeof(*uid)); PFNV_CHK(pf_nvuint32_array(nvl, "uid", uid->uid, 2, NULL)); PFNV_CHK(pf_nvuint8(nvl, "op", &uid->op)); PFNV_CHK(pf_validate_op(uid->op)); errout: return (error); } static nvlist_t * pf_rule_uid_to_nvrule_uid(const struct pf_rule_uid *uid) { nvlist_t *nvl; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); pf_uint32_array_nv(nvl, "uid", uid->uid, 2); nvlist_add_number(nvl, "op", uid->op); return (nvl); } static int pf_nvrule_gid_to_rule_gid(const nvlist_t *nvl, struct pf_rule_gid *gid) { /* Cheat a little. These stucts are the same, other than the name of * the first field. */ return (pf_nvrule_uid_to_rule_uid(nvl, (struct pf_rule_uid *)gid)); } int pf_check_rule_addr(const struct pf_rule_addr *addr) { switch (addr->addr.type) { case PF_ADDR_ADDRMASK: case PF_ADDR_NOROUTE: case PF_ADDR_DYNIFTL: case PF_ADDR_TABLE: case PF_ADDR_URPFFAILED: case PF_ADDR_RANGE: break; default: return (EINVAL); } if (addr->addr.p.dyn != NULL) { return (EINVAL); } return (0); } int pf_nvrule_to_krule(const nvlist_t *nvl, struct pf_krule *rule) { int error = 0; #define ERROUT(x) ERROUT_FUNCTION(errout, x) PFNV_CHK(pf_nvuint32(nvl, "nr", &rule->nr)); if (! nvlist_exists_nvlist(nvl, "src")) ERROUT(EINVAL); error = pf_nvrule_addr_to_rule_addr(nvlist_get_nvlist(nvl, "src"), &rule->src); if (error != 0) ERROUT(error); if (! nvlist_exists_nvlist(nvl, "dst")) ERROUT(EINVAL); PFNV_CHK(pf_nvrule_addr_to_rule_addr(nvlist_get_nvlist(nvl, "dst"), &rule->dst)); if (nvlist_exists_string(nvl, "label")) { PFNV_CHK(pf_nvstring(nvl, "label", rule->label[0], sizeof(rule->label[0]))); } else if (nvlist_exists_string_array(nvl, "labels")) { const char *const *strs; size_t items; int ret; strs = nvlist_get_string_array(nvl, "labels", &items); if (items > PF_RULE_MAX_LABEL_COUNT) ERROUT(E2BIG); for (size_t i = 0; i < items; i++) { ret = strlcpy(rule->label[i], strs[i], sizeof(rule->label[0])); if (ret >= sizeof(rule->label[0])) ERROUT(E2BIG); } } PFNV_CHK(pf_nvstring(nvl, "ifname", rule->ifname, sizeof(rule->ifname))); PFNV_CHK(pf_nvstring(nvl, "qname", rule->qname, sizeof(rule->qname))); PFNV_CHK(pf_nvstring(nvl, "pqname", rule->pqname, sizeof(rule->pqname))); PFNV_CHK(pf_nvstring(nvl, "tagname", rule->tagname, sizeof(rule->tagname))); + PFNV_CHK(pf_nvuint16_opt(nvl, "dnpipe", &rule->dnpipe, 0)); + PFNV_CHK(pf_nvuint16_opt(nvl, "dnrpipe", &rule->dnrpipe, 0)); + PFNV_CHK(pf_nvuint32_opt(nvl, "dnflags", &rule->free_flags, 0)); PFNV_CHK(pf_nvstring(nvl, "match_tagname", rule->match_tagname, sizeof(rule->match_tagname))); PFNV_CHK(pf_nvstring(nvl, "overload_tblname", rule->overload_tblname, sizeof(rule->overload_tblname))); if (! nvlist_exists_nvlist(nvl, "rpool")) ERROUT(EINVAL); PFNV_CHK(pf_nvpool_to_pool(nvlist_get_nvlist(nvl, "rpool"), &rule->rpool)); PFNV_CHK(pf_nvuint32(nvl, "os_fingerprint", &rule->os_fingerprint)); PFNV_CHK(pf_nvint(nvl, "rtableid", &rule->rtableid)); PFNV_CHK(pf_nvuint32_array(nvl, "timeout", rule->timeout, PFTM_MAX, NULL)); PFNV_CHK(pf_nvuint32(nvl, "max_states", &rule->max_states)); PFNV_CHK(pf_nvuint32(nvl, "max_src_nodes", &rule->max_src_nodes)); PFNV_CHK(pf_nvuint32(nvl, "max_src_states", &rule->max_src_states)); PFNV_CHK(pf_nvuint32(nvl, "max_src_conn", &rule->max_src_conn)); PFNV_CHK(pf_nvuint32(nvl, "max_src_conn_rate.limit", &rule->max_src_conn_rate.limit)); PFNV_CHK(pf_nvuint32(nvl, "max_src_conn_rate.seconds", &rule->max_src_conn_rate.seconds)); PFNV_CHK(pf_nvuint32(nvl, "prob", &rule->prob)); PFNV_CHK(pf_nvuint32(nvl, "cuid", &rule->cuid)); PFNV_CHK(pf_nvuint32(nvl, "cpid", &rule->cpid)); PFNV_CHK(pf_nvuint16(nvl, "return_icmp", &rule->return_icmp)); PFNV_CHK(pf_nvuint16(nvl, "return_icmp6", &rule->return_icmp6)); PFNV_CHK(pf_nvuint16(nvl, "max_mss", &rule->max_mss)); PFNV_CHK(pf_nvuint16(nvl, "scrub_flags", &rule->scrub_flags)); if (! nvlist_exists_nvlist(nvl, "uid")) ERROUT(EINVAL); PFNV_CHK(pf_nvrule_uid_to_rule_uid(nvlist_get_nvlist(nvl, "uid"), &rule->uid)); if (! nvlist_exists_nvlist(nvl, "gid")) ERROUT(EINVAL); PFNV_CHK(pf_nvrule_gid_to_rule_gid(nvlist_get_nvlist(nvl, "gid"), &rule->gid)); PFNV_CHK(pf_nvuint32(nvl, "rule_flag", &rule->rule_flag)); PFNV_CHK(pf_nvuint8(nvl, "action", &rule->action)); PFNV_CHK(pf_nvuint8(nvl, "direction", &rule->direction)); PFNV_CHK(pf_nvuint8(nvl, "log", &rule->log)); PFNV_CHK(pf_nvuint8(nvl, "logif", &rule->logif)); PFNV_CHK(pf_nvuint8(nvl, "quick", &rule->quick)); PFNV_CHK(pf_nvuint8(nvl, "ifnot", &rule->ifnot)); PFNV_CHK(pf_nvuint8(nvl, "match_tag_not", &rule->match_tag_not)); PFNV_CHK(pf_nvuint8(nvl, "natpass", &rule->natpass)); PFNV_CHK(pf_nvuint8(nvl, "keep_state", &rule->keep_state)); PFNV_CHK(pf_nvuint8(nvl, "af", &rule->af)); PFNV_CHK(pf_nvuint8(nvl, "proto", &rule->proto)); PFNV_CHK(pf_nvuint8(nvl, "type", &rule->type)); PFNV_CHK(pf_nvuint8(nvl, "code", &rule->code)); PFNV_CHK(pf_nvuint8(nvl, "flags", &rule->flags)); PFNV_CHK(pf_nvuint8(nvl, "flagset", &rule->flagset)); PFNV_CHK(pf_nvuint8(nvl, "min_ttl", &rule->min_ttl)); PFNV_CHK(pf_nvuint8(nvl, "allow_opts", &rule->allow_opts)); PFNV_CHK(pf_nvuint8(nvl, "rt", &rule->rt)); PFNV_CHK(pf_nvuint8(nvl, "return_ttl", &rule->return_ttl)); PFNV_CHK(pf_nvuint8(nvl, "tos", &rule->tos)); PFNV_CHK(pf_nvuint8(nvl, "set_tos", &rule->set_tos)); PFNV_CHK(pf_nvuint8(nvl, "anchor_relative", &rule->anchor_relative)); PFNV_CHK(pf_nvuint8(nvl, "anchor_wildcard", &rule->anchor_wildcard)); PFNV_CHK(pf_nvuint8(nvl, "flush", &rule->flush)); PFNV_CHK(pf_nvuint8(nvl, "prio", &rule->prio)); PFNV_CHK(pf_nvuint8_array(nvl, "set_prio", &rule->prio, 2, NULL)); if (nvlist_exists_nvlist(nvl, "divert")) { const nvlist_t *nvldivert = nvlist_get_nvlist(nvl, "divert"); if (! nvlist_exists_nvlist(nvldivert, "addr")) ERROUT(EINVAL); PFNV_CHK(pf_nvaddr_to_addr(nvlist_get_nvlist(nvldivert, "addr"), &rule->divert.addr)); PFNV_CHK(pf_nvuint16(nvldivert, "port", &rule->divert.port)); } /* Validation */ #ifndef INET if (rule->af == AF_INET) ERROUT(EAFNOSUPPORT); #endif /* INET */ #ifndef INET6 if (rule->af == AF_INET6) ERROUT(EAFNOSUPPORT); #endif /* INET6 */ PFNV_CHK(pf_check_rule_addr(&rule->src)); PFNV_CHK(pf_check_rule_addr(&rule->dst)); return (0); #undef ERROUT errout: return (error); } static nvlist_t * pf_divert_to_nvdivert(const struct pf_krule *rule) { nvlist_t *nvl; nvlist_t *tmp; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); tmp = pf_addr_to_nvaddr(&rule->divert.addr); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "addr", tmp); nvlist_destroy(tmp); nvlist_add_number(nvl, "port", rule->divert.port); return (nvl); error: nvlist_destroy(nvl); return (NULL); } nvlist_t * pf_krule_to_nvrule(struct pf_krule *rule) { nvlist_t *nvl, *tmp; nvl = nvlist_create(0); if (nvl == NULL) return (nvl); nvlist_add_number(nvl, "nr", rule->nr); tmp = pf_rule_addr_to_nvrule_addr(&rule->src); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "src", tmp); nvlist_destroy(tmp); tmp = pf_rule_addr_to_nvrule_addr(&rule->dst); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "dst", tmp); nvlist_destroy(tmp); for (int i = 0; i < PF_SKIP_COUNT; i++) { nvlist_append_number_array(nvl, "skip", rule->skip[i].ptr ? rule->skip[i].ptr->nr : -1); } for (int i = 0; i < PF_RULE_MAX_LABEL_COUNT; i++) { nvlist_append_string_array(nvl, "labels", rule->label[i]); } nvlist_add_string(nvl, "label", rule->label[0]); nvlist_add_string(nvl, "ifname", rule->ifname); nvlist_add_string(nvl, "qname", rule->qname); nvlist_add_string(nvl, "pqname", rule->pqname); + nvlist_add_number(nvl, "dnpipe", rule->dnpipe); + nvlist_add_number(nvl, "dnrpipe", rule->dnrpipe); + nvlist_add_number(nvl, "dnflags", rule->free_flags); nvlist_add_string(nvl, "tagname", rule->tagname); nvlist_add_string(nvl, "match_tagname", rule->match_tagname); nvlist_add_string(nvl, "overload_tblname", rule->overload_tblname); tmp = pf_pool_to_nvpool(&rule->rpool); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "rpool", tmp); nvlist_destroy(tmp); nvlist_add_number(nvl, "evaluations", pf_counter_u64_fetch(&rule->evaluations)); for (int i = 0; i < 2; i++) { nvlist_append_number_array(nvl, "packets", pf_counter_u64_fetch(&rule->packets[i])); nvlist_append_number_array(nvl, "bytes", pf_counter_u64_fetch(&rule->bytes[i])); } nvlist_add_number(nvl, "os_fingerprint", rule->os_fingerprint); nvlist_add_number(nvl, "rtableid", rule->rtableid); pf_uint32_array_nv(nvl, "timeout", rule->timeout, PFTM_MAX); nvlist_add_number(nvl, "max_states", rule->max_states); nvlist_add_number(nvl, "max_src_nodes", rule->max_src_nodes); nvlist_add_number(nvl, "max_src_states", rule->max_src_states); nvlist_add_number(nvl, "max_src_conn", rule->max_src_conn); nvlist_add_number(nvl, "max_src_conn_rate.limit", rule->max_src_conn_rate.limit); nvlist_add_number(nvl, "max_src_conn_rate.seconds", rule->max_src_conn_rate.seconds); nvlist_add_number(nvl, "qid", rule->qid); nvlist_add_number(nvl, "pqid", rule->pqid); nvlist_add_number(nvl, "prob", rule->prob); nvlist_add_number(nvl, "cuid", rule->cuid); nvlist_add_number(nvl, "cpid", rule->cpid); nvlist_add_number(nvl, "states_cur", counter_u64_fetch(rule->states_cur)); nvlist_add_number(nvl, "states_tot", counter_u64_fetch(rule->states_tot)); nvlist_add_number(nvl, "src_nodes", counter_u64_fetch(rule->src_nodes)); nvlist_add_number(nvl, "return_icmp", rule->return_icmp); nvlist_add_number(nvl, "return_icmp6", rule->return_icmp6); nvlist_add_number(nvl, "max_mss", rule->max_mss); nvlist_add_number(nvl, "scrub_flags", rule->scrub_flags); tmp = pf_rule_uid_to_nvrule_uid(&rule->uid); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "uid", tmp); nvlist_destroy(tmp); tmp = pf_rule_uid_to_nvrule_uid((const struct pf_rule_uid *)&rule->gid); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "gid", tmp); nvlist_destroy(tmp); nvlist_add_number(nvl, "rule_flag", rule->rule_flag); nvlist_add_number(nvl, "action", rule->action); nvlist_add_number(nvl, "direction", rule->direction); nvlist_add_number(nvl, "log", rule->log); nvlist_add_number(nvl, "logif", rule->logif); nvlist_add_number(nvl, "quick", rule->quick); nvlist_add_number(nvl, "ifnot", rule->ifnot); nvlist_add_number(nvl, "match_tag_not", rule->match_tag_not); nvlist_add_number(nvl, "natpass", rule->natpass); nvlist_add_number(nvl, "keep_state", rule->keep_state); nvlist_add_number(nvl, "af", rule->af); nvlist_add_number(nvl, "proto", rule->proto); nvlist_add_number(nvl, "type", rule->type); nvlist_add_number(nvl, "code", rule->code); nvlist_add_number(nvl, "flags", rule->flags); nvlist_add_number(nvl, "flagset", rule->flagset); nvlist_add_number(nvl, "min_ttl", rule->min_ttl); nvlist_add_number(nvl, "allow_opts", rule->allow_opts); nvlist_add_number(nvl, "rt", rule->rt); nvlist_add_number(nvl, "return_ttl", rule->return_ttl); nvlist_add_number(nvl, "tos", rule->tos); nvlist_add_number(nvl, "set_tos", rule->set_tos); nvlist_add_number(nvl, "anchor_relative", rule->anchor_relative); nvlist_add_number(nvl, "anchor_wildcard", rule->anchor_wildcard); nvlist_add_number(nvl, "flush", rule->flush); nvlist_add_number(nvl, "prio", rule->prio); pf_uint8_array_nv(nvl, "set_prio", &rule->prio, 2); tmp = pf_divert_to_nvdivert(rule); if (tmp == NULL) goto error; nvlist_add_nvlist(nvl, "divert", tmp); nvlist_destroy(tmp); return (nvl); error: nvlist_destroy(nvl); return (NULL); } static int pf_nvstate_cmp_to_state_cmp(const nvlist_t *nvl, struct pf_state_cmp *cmp) { int error = 0; bzero(cmp, sizeof(*cmp)); PFNV_CHK(pf_nvuint64(nvl, "id", &cmp->id)); PFNV_CHK(pf_nvuint32(nvl, "creatorid", &cmp->creatorid)); PFNV_CHK(pf_nvuint8(nvl, "direction", &cmp->direction)); errout: return (error); } int pf_nvstate_kill_to_kstate_kill(const nvlist_t *nvl, struct pf_kstate_kill *kill) { int error = 0; bzero(kill, sizeof(*kill)); if (! nvlist_exists_nvlist(nvl, "cmp")) return (EINVAL); PFNV_CHK(pf_nvstate_cmp_to_state_cmp(nvlist_get_nvlist(nvl, "cmp"), &kill->psk_pfcmp)); PFNV_CHK(pf_nvuint8(nvl, "af", &kill->psk_af)); PFNV_CHK(pf_nvint(nvl, "proto", &kill->psk_proto)); if (! nvlist_exists_nvlist(nvl, "src")) return (EINVAL); PFNV_CHK(pf_nvrule_addr_to_rule_addr(nvlist_get_nvlist(nvl, "src"), &kill->psk_src)); if (! nvlist_exists_nvlist(nvl, "dst")) return (EINVAL); PFNV_CHK(pf_nvrule_addr_to_rule_addr(nvlist_get_nvlist(nvl, "dst"), &kill->psk_dst)); if (nvlist_exists_nvlist(nvl, "rt_addr")) { PFNV_CHK(pf_nvrule_addr_to_rule_addr( nvlist_get_nvlist(nvl, "rt_addr"), &kill->psk_rt_addr)); } PFNV_CHK(pf_nvstring(nvl, "ifname", kill->psk_ifname, sizeof(kill->psk_ifname))); PFNV_CHK(pf_nvstring(nvl, "label", kill->psk_label, sizeof(kill->psk_label))); if (nvlist_exists_bool(nvl, "kill_match")) kill->psk_kill_match = nvlist_get_bool(nvl, "kill_match"); errout: return (error); } static nvlist_t * pf_state_key_to_nvstate_key(const struct pf_state_key *key) { nvlist_t *nvl, *tmp; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); for (int i = 0; i < 2; i++) { tmp = pf_addr_to_nvaddr(&key->addr[i]); if (tmp == NULL) goto errout; nvlist_append_nvlist_array(nvl, "addr", tmp); nvlist_destroy(tmp); nvlist_append_number_array(nvl, "port", key->port[i]); } nvlist_add_number(nvl, "af", key->af); nvlist_add_number(nvl, "proto", key->proto); return (nvl); errout: nvlist_destroy(nvl); return (NULL); } static nvlist_t * pf_state_peer_to_nvstate_peer(const struct pf_state_peer *peer) { nvlist_t *nvl; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); nvlist_add_number(nvl, "seqlo", peer->seqlo); nvlist_add_number(nvl, "seqhi", peer->seqhi); nvlist_add_number(nvl, "seqdiff", peer->seqdiff); nvlist_add_number(nvl, "state", peer->state); nvlist_add_number(nvl, "wscale", peer->wscale); return (nvl); } nvlist_t * pf_state_to_nvstate(const struct pf_kstate *s) { nvlist_t *nvl, *tmp; uint32_t expire, flags = 0; nvl = nvlist_create(0); if (nvl == NULL) return (NULL); nvlist_add_number(nvl, "id", s->id); nvlist_add_string(nvl, "ifname", s->kif->pfik_name); nvlist_add_string(nvl, "orig_ifname", s->orig_kif->pfik_name); tmp = pf_state_key_to_nvstate_key(s->key[PF_SK_STACK]); if (tmp == NULL) goto errout; nvlist_add_nvlist(nvl, "stack_key", tmp); nvlist_destroy(tmp); tmp = pf_state_key_to_nvstate_key(s->key[PF_SK_WIRE]); if (tmp == NULL) goto errout; nvlist_add_nvlist(nvl, "wire_key", tmp); nvlist_destroy(tmp); tmp = pf_state_peer_to_nvstate_peer(&s->src); if (tmp == NULL) goto errout; nvlist_add_nvlist(nvl, "src", tmp); nvlist_destroy(tmp); tmp = pf_state_peer_to_nvstate_peer(&s->dst); if (tmp == NULL) goto errout; nvlist_add_nvlist(nvl, "dst", tmp); nvlist_destroy(tmp); tmp = pf_addr_to_nvaddr(&s->rt_addr); if (tmp == NULL) goto errout; nvlist_add_nvlist(nvl, "rt_addr", tmp); nvlist_destroy(tmp); nvlist_add_number(nvl, "rule", s->rule.ptr ? s->rule.ptr->nr : -1); nvlist_add_number(nvl, "anchor", s->anchor.ptr ? s->anchor.ptr->nr : -1); nvlist_add_number(nvl, "nat_rule", s->nat_rule.ptr ? s->nat_rule.ptr->nr : -1); nvlist_add_number(nvl, "creation", s->creation); expire = pf_state_expires(s); if (expire <= time_uptime) expire = 0; else expire = expire - time_uptime; nvlist_add_number(nvl, "expire", expire); for (int i = 0; i < 2; i++) { nvlist_append_number_array(nvl, "packets", s->packets[i]); nvlist_append_number_array(nvl, "bytes", s->bytes[i]); } nvlist_add_number(nvl, "creatorid", s->creatorid); nvlist_add_number(nvl, "direction", s->direction); nvlist_add_number(nvl, "state_flags", s->state_flags); if (s->src_node) flags |= PFSYNC_FLAG_SRCNODE; if (s->nat_src_node) flags |= PFSYNC_FLAG_NATSRCNODE; nvlist_add_number(nvl, "sync_flags", flags); return (nvl); errout: nvlist_destroy(nvl); return (NULL); }