Index: head/sys/ofed/drivers/infiniband/core/ib_cma.c =================================================================== --- head/sys/ofed/drivers/infiniband/core/ib_cma.c (revision 336382) +++ head/sys/ofed/drivers/infiniband/core/ib_cma.c (revision 336383) @@ -1,4374 +1,4376 @@ /*- * SPDX-License-Identifier: BSD-2-Clause OR GPL-2.0 * * Copyright (c) 2005 Voltaire Inc. All rights reserved. * Copyright (c) 2002-2005, Network Appliance, Inc. All rights reserved. * Copyright (c) 1999-2005, Mellanox Technologies, Inc. All rights reserved. * Copyright (c) 2005-2006 Intel Corporation. All rights reserved. * * This software is available to you under a choice of one of two * licenses. You may choose to be licensed under the terms of the GNU * General Public License (GPL) Version 2, available from the file * COPYING in the main directory of this source tree, or the * OpenIB.org BSD license below: * * 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. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * $FreeBSD$ */ #define LINUXKPI_PARAM_PREFIX ibcore_ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include "core_priv.h" MODULE_AUTHOR("Sean Hefty"); MODULE_DESCRIPTION("Generic RDMA CM Agent"); MODULE_LICENSE("Dual BSD/GPL"); #define CMA_CM_RESPONSE_TIMEOUT 20 #define CMA_QUERY_CLASSPORT_INFO_TIMEOUT 3000 #define CMA_MAX_CM_RETRIES 15 #define CMA_CM_MRA_SETTING (IB_CM_MRA_FLAG_DELAY | 24) #define CMA_IBOE_PACKET_LIFETIME 18 static const char * const cma_events[] = { [RDMA_CM_EVENT_ADDR_RESOLVED] = "address resolved", [RDMA_CM_EVENT_ADDR_ERROR] = "address error", [RDMA_CM_EVENT_ROUTE_RESOLVED] = "route resolved ", [RDMA_CM_EVENT_ROUTE_ERROR] = "route error", [RDMA_CM_EVENT_CONNECT_REQUEST] = "connect request", [RDMA_CM_EVENT_CONNECT_RESPONSE] = "connect response", [RDMA_CM_EVENT_CONNECT_ERROR] = "connect error", [RDMA_CM_EVENT_UNREACHABLE] = "unreachable", [RDMA_CM_EVENT_REJECTED] = "rejected", [RDMA_CM_EVENT_ESTABLISHED] = "established", [RDMA_CM_EVENT_DISCONNECTED] = "disconnected", [RDMA_CM_EVENT_DEVICE_REMOVAL] = "device removal", [RDMA_CM_EVENT_MULTICAST_JOIN] = "multicast join", [RDMA_CM_EVENT_MULTICAST_ERROR] = "multicast error", [RDMA_CM_EVENT_ADDR_CHANGE] = "address change", [RDMA_CM_EVENT_TIMEWAIT_EXIT] = "timewait exit", }; const char *__attribute_const__ rdma_event_msg(enum rdma_cm_event_type event) { size_t index = event; return (index < ARRAY_SIZE(cma_events) && cma_events[index]) ? cma_events[index] : "unrecognized event"; } EXPORT_SYMBOL(rdma_event_msg); static int cma_check_linklocal(struct rdma_dev_addr *, struct sockaddr *); static void cma_add_one(struct ib_device *device); static void cma_remove_one(struct ib_device *device, void *client_data); static struct ib_client cma_client = { .name = "cma", .add = cma_add_one, .remove = cma_remove_one }; static struct ib_sa_client sa_client; static struct rdma_addr_client addr_client; static LIST_HEAD(dev_list); static LIST_HEAD(listen_any_list); static DEFINE_MUTEX(lock); static struct workqueue_struct *cma_wq; struct cma_pernet { struct idr tcp_ps; struct idr udp_ps; struct idr ipoib_ps; struct idr ib_ps; }; VNET_DEFINE(struct cma_pernet, cma_pernet); static struct cma_pernet *cma_pernet_ptr(struct vnet *vnet) { struct cma_pernet *retval; CURVNET_SET_QUIET(vnet); retval = &VNET(cma_pernet); CURVNET_RESTORE(); return (retval); } static struct idr *cma_pernet_idr(struct vnet *net, enum rdma_port_space ps) { struct cma_pernet *pernet = cma_pernet_ptr(net); switch (ps) { case RDMA_PS_TCP: return &pernet->tcp_ps; case RDMA_PS_UDP: return &pernet->udp_ps; case RDMA_PS_IPOIB: return &pernet->ipoib_ps; case RDMA_PS_IB: return &pernet->ib_ps; default: return NULL; } } struct cma_device { struct list_head list; struct ib_device *device; struct completion comp; atomic_t refcount; struct list_head id_list; struct sysctl_ctx_list sysctl_ctx; enum ib_gid_type *default_gid_type; }; struct rdma_bind_list { enum rdma_port_space ps; struct hlist_head owners; unsigned short port; }; struct class_port_info_context { struct ib_class_port_info *class_port_info; struct ib_device *device; struct completion done; struct ib_sa_query *sa_query; u8 port_num; }; static int cma_ps_alloc(struct vnet *vnet, enum rdma_port_space ps, struct rdma_bind_list *bind_list, int snum) { struct idr *idr = cma_pernet_idr(vnet, ps); return idr_alloc(idr, bind_list, snum, snum + 1, GFP_KERNEL); } static struct rdma_bind_list *cma_ps_find(struct vnet *net, enum rdma_port_space ps, int snum) { struct idr *idr = cma_pernet_idr(net, ps); return idr_find(idr, snum); } static void cma_ps_remove(struct vnet *net, enum rdma_port_space ps, int snum) { struct idr *idr = cma_pernet_idr(net, ps); idr_remove(idr, snum); } enum { CMA_OPTION_AFONLY, }; void cma_ref_dev(struct cma_device *cma_dev) { atomic_inc(&cma_dev->refcount); } struct cma_device *cma_enum_devices_by_ibdev(cma_device_filter filter, void *cookie) { struct cma_device *cma_dev; struct cma_device *found_cma_dev = NULL; mutex_lock(&lock); list_for_each_entry(cma_dev, &dev_list, list) if (filter(cma_dev->device, cookie)) { found_cma_dev = cma_dev; break; } if (found_cma_dev) cma_ref_dev(found_cma_dev); mutex_unlock(&lock); return found_cma_dev; } int cma_get_default_gid_type(struct cma_device *cma_dev, unsigned int port) { if (port < rdma_start_port(cma_dev->device) || port > rdma_end_port(cma_dev->device)) return -EINVAL; return cma_dev->default_gid_type[port - rdma_start_port(cma_dev->device)]; } int cma_set_default_gid_type(struct cma_device *cma_dev, unsigned int port, enum ib_gid_type default_gid_type) { unsigned long supported_gids; if (port < rdma_start_port(cma_dev->device) || port > rdma_end_port(cma_dev->device)) return -EINVAL; supported_gids = roce_gid_type_mask_support(cma_dev->device, port); if (!(supported_gids & 1 << default_gid_type)) return -EINVAL; cma_dev->default_gid_type[port - rdma_start_port(cma_dev->device)] = default_gid_type; return 0; } struct ib_device *cma_get_ib_dev(struct cma_device *cma_dev) { return cma_dev->device; } /* * Device removal can occur at anytime, so we need extra handling to * serialize notifying the user of device removal with other callbacks. * We do this by disabling removal notification while a callback is in process, * and reporting it after the callback completes. */ struct rdma_id_private { struct rdma_cm_id id; struct rdma_bind_list *bind_list; struct hlist_node node; struct list_head list; /* listen_any_list or cma_device.list */ struct list_head listen_list; /* per device listens */ struct cma_device *cma_dev; struct list_head mc_list; int internal_id; enum rdma_cm_state state; spinlock_t lock; struct mutex qp_mutex; struct completion comp; atomic_t refcount; struct mutex handler_mutex; int backlog; int timeout_ms; struct ib_sa_query *query; int query_id; union { struct ib_cm_id *ib; struct iw_cm_id *iw; } cm_id; u32 seq_num; u32 qkey; u32 qp_num; pid_t owner; u32 options; u8 srq; u8 tos; u8 reuseaddr; u8 afonly; enum ib_gid_type gid_type; }; struct cma_multicast { struct rdma_id_private *id_priv; union { struct ib_sa_multicast *ib; } multicast; struct list_head list; void *context; struct sockaddr_storage addr; struct kref mcref; bool igmp_joined; u8 join_state; }; struct cma_work { struct work_struct work; struct rdma_id_private *id; enum rdma_cm_state old_state; enum rdma_cm_state new_state; struct rdma_cm_event event; }; struct cma_ndev_work { struct work_struct work; struct rdma_id_private *id; struct rdma_cm_event event; }; struct iboe_mcast_work { struct work_struct work; struct rdma_id_private *id; struct cma_multicast *mc; }; union cma_ip_addr { struct in6_addr ip6; struct { __be32 pad[3]; __be32 addr; } ip4; }; struct cma_hdr { u8 cma_version; u8 ip_version; /* IP version: 7:4 */ __be16 port; union cma_ip_addr src_addr; union cma_ip_addr dst_addr; }; #define CMA_VERSION 0x00 struct cma_req_info { struct ib_device *device; int port; union ib_gid local_gid; __be64 service_id; u16 pkey; bool has_gid:1; }; static int cma_comp(struct rdma_id_private *id_priv, enum rdma_cm_state comp) { unsigned long flags; int ret; spin_lock_irqsave(&id_priv->lock, flags); ret = (id_priv->state == comp); spin_unlock_irqrestore(&id_priv->lock, flags); return ret; } static int cma_comp_exch(struct rdma_id_private *id_priv, enum rdma_cm_state comp, enum rdma_cm_state exch) { unsigned long flags; int ret; spin_lock_irqsave(&id_priv->lock, flags); if ((ret = (id_priv->state == comp))) id_priv->state = exch; spin_unlock_irqrestore(&id_priv->lock, flags); return ret; } static enum rdma_cm_state cma_exch(struct rdma_id_private *id_priv, enum rdma_cm_state exch) { unsigned long flags; enum rdma_cm_state old; spin_lock_irqsave(&id_priv->lock, flags); old = id_priv->state; id_priv->state = exch; spin_unlock_irqrestore(&id_priv->lock, flags); return old; } static inline u8 cma_get_ip_ver(const struct cma_hdr *hdr) { return hdr->ip_version >> 4; } static inline void cma_set_ip_ver(struct cma_hdr *hdr, u8 ip_ver) { hdr->ip_version = (ip_ver << 4) | (hdr->ip_version & 0xF); } static int cma_igmp_send(struct net_device *ndev, const union ib_gid *mgid, bool join) { int retval; if (ndev) { union { struct sockaddr sock; struct sockaddr_storage storage; } addr; rdma_gid2ip(&addr.sock, mgid); CURVNET_SET_QUIET(ndev->if_vnet); if (join) retval = -if_addmulti(ndev, &addr.sock, NULL); else retval = -if_delmulti(ndev, &addr.sock); CURVNET_RESTORE(); } else { retval = -ENODEV; } return retval; } static void _cma_attach_to_dev(struct rdma_id_private *id_priv, struct cma_device *cma_dev) { cma_ref_dev(cma_dev); id_priv->cma_dev = cma_dev; id_priv->gid_type = 0; id_priv->id.device = cma_dev->device; id_priv->id.route.addr.dev_addr.transport = rdma_node_get_transport(cma_dev->device->node_type); list_add_tail(&id_priv->list, &cma_dev->id_list); } static void cma_attach_to_dev(struct rdma_id_private *id_priv, struct cma_device *cma_dev) { _cma_attach_to_dev(id_priv, cma_dev); id_priv->gid_type = cma_dev->default_gid_type[id_priv->id.port_num - rdma_start_port(cma_dev->device)]; } void cma_deref_dev(struct cma_device *cma_dev) { if (atomic_dec_and_test(&cma_dev->refcount)) complete(&cma_dev->comp); } static inline void release_mc(struct kref *kref) { struct cma_multicast *mc = container_of(kref, struct cma_multicast, mcref); kfree(mc->multicast.ib); kfree(mc); } static void cma_release_dev(struct rdma_id_private *id_priv) { mutex_lock(&lock); list_del(&id_priv->list); cma_deref_dev(id_priv->cma_dev); id_priv->cma_dev = NULL; mutex_unlock(&lock); } static inline struct sockaddr *cma_src_addr(struct rdma_id_private *id_priv) { return (struct sockaddr *) &id_priv->id.route.addr.src_addr; } static inline struct sockaddr *cma_dst_addr(struct rdma_id_private *id_priv) { return (struct sockaddr *) &id_priv->id.route.addr.dst_addr; } static inline unsigned short cma_family(struct rdma_id_private *id_priv) { return id_priv->id.route.addr.src_addr.ss_family; } static int cma_set_qkey(struct rdma_id_private *id_priv, u32 qkey) { struct ib_sa_mcmember_rec rec; int ret = 0; if (id_priv->qkey) { if (qkey && id_priv->qkey != qkey) return -EINVAL; return 0; } if (qkey) { id_priv->qkey = qkey; return 0; } switch (id_priv->id.ps) { case RDMA_PS_UDP: case RDMA_PS_IB: id_priv->qkey = RDMA_UDP_QKEY; break; case RDMA_PS_IPOIB: ib_addr_get_mgid(&id_priv->id.route.addr.dev_addr, &rec.mgid); ret = ib_sa_get_mcmember_rec(id_priv->id.device, id_priv->id.port_num, &rec.mgid, &rec); if (!ret) id_priv->qkey = be32_to_cpu(rec.qkey); break; default: break; } return ret; } static void cma_translate_ib(struct sockaddr_ib *sib, struct rdma_dev_addr *dev_addr) { dev_addr->dev_type = ARPHRD_INFINIBAND; rdma_addr_set_sgid(dev_addr, (union ib_gid *) &sib->sib_addr); ib_addr_set_pkey(dev_addr, ntohs(sib->sib_pkey)); } static int cma_translate_addr(struct sockaddr *addr, struct rdma_dev_addr *dev_addr) { int ret; if (addr->sa_family != AF_IB) { ret = rdma_translate_ip(addr, dev_addr); } else { cma_translate_ib((struct sockaddr_ib *) addr, dev_addr); ret = 0; } return ret; } static inline int cma_validate_port(struct ib_device *device, u8 port, enum ib_gid_type gid_type, union ib_gid *gid, const struct rdma_dev_addr *dev_addr) { const int dev_type = dev_addr->dev_type; struct net_device *ndev; int ret = -ENODEV; if ((dev_type == ARPHRD_INFINIBAND) && !rdma_protocol_ib(device, port)) return ret; if ((dev_type != ARPHRD_INFINIBAND) && rdma_protocol_ib(device, port)) return ret; if (dev_type == ARPHRD_ETHER && rdma_protocol_roce(device, port)) { ndev = dev_get_by_index(dev_addr->net, dev_addr->bound_dev_if); } else { ndev = NULL; gid_type = IB_GID_TYPE_IB; } ret = ib_find_cached_gid_by_port(device, gid, gid_type, port, ndev, NULL); if (ndev) dev_put(ndev); return ret; } static int cma_acquire_dev(struct rdma_id_private *id_priv, struct rdma_id_private *listen_id_priv) { struct rdma_dev_addr *dev_addr = &id_priv->id.route.addr.dev_addr; struct cma_device *cma_dev; union ib_gid gid, iboe_gid, *gidp; int ret = -ENODEV; u8 port; if (dev_addr->dev_type != ARPHRD_INFINIBAND && id_priv->id.ps == RDMA_PS_IPOIB) return -EINVAL; mutex_lock(&lock); rdma_ip2gid((struct sockaddr *)&id_priv->id.route.addr.src_addr, &iboe_gid); memcpy(&gid, dev_addr->src_dev_addr + rdma_addr_gid_offset(dev_addr), sizeof gid); if (listen_id_priv) { cma_dev = listen_id_priv->cma_dev; port = listen_id_priv->id.port_num; gidp = rdma_protocol_roce(cma_dev->device, port) ? &iboe_gid : &gid; ret = cma_validate_port(cma_dev->device, port, rdma_protocol_ib(cma_dev->device, port) ? IB_GID_TYPE_IB : listen_id_priv->gid_type, gidp, dev_addr); if (!ret) { id_priv->id.port_num = port; goto out; } } list_for_each_entry(cma_dev, &dev_list, list) { for (port = 1; port <= cma_dev->device->phys_port_cnt; ++port) { if (listen_id_priv && listen_id_priv->cma_dev == cma_dev && listen_id_priv->id.port_num == port) continue; gidp = rdma_protocol_roce(cma_dev->device, port) ? &iboe_gid : &gid; ret = cma_validate_port(cma_dev->device, port, rdma_protocol_ib(cma_dev->device, port) ? IB_GID_TYPE_IB : cma_dev->default_gid_type[port - 1], gidp, dev_addr); if (!ret) { id_priv->id.port_num = port; goto out; } } } out: if (!ret) cma_attach_to_dev(id_priv, cma_dev); mutex_unlock(&lock); return ret; } /* * Select the source IB device and address to reach the destination IB address. */ static int cma_resolve_ib_dev(struct rdma_id_private *id_priv) { struct cma_device *cma_dev, *cur_dev; struct sockaddr_ib *addr; union ib_gid gid, sgid, *dgid; u16 pkey, index; u8 p; int i; cma_dev = NULL; addr = (struct sockaddr_ib *) cma_dst_addr(id_priv); dgid = (union ib_gid *) &addr->sib_addr; pkey = ntohs(addr->sib_pkey); list_for_each_entry(cur_dev, &dev_list, list) { for (p = 1; p <= cur_dev->device->phys_port_cnt; ++p) { if (!rdma_cap_af_ib(cur_dev->device, p)) continue; if (ib_find_cached_pkey(cur_dev->device, p, pkey, &index)) continue; for (i = 0; !ib_get_cached_gid(cur_dev->device, p, i, &gid, NULL); i++) { if (!memcmp(&gid, dgid, sizeof(gid))) { cma_dev = cur_dev; sgid = gid; id_priv->id.port_num = p; goto found; } if (!cma_dev && (gid.global.subnet_prefix == dgid->global.subnet_prefix)) { cma_dev = cur_dev; sgid = gid; id_priv->id.port_num = p; } } } } if (!cma_dev) return -ENODEV; found: cma_attach_to_dev(id_priv, cma_dev); addr = (struct sockaddr_ib *) cma_src_addr(id_priv); memcpy(&addr->sib_addr, &sgid, sizeof sgid); cma_translate_ib(addr, &id_priv->id.route.addr.dev_addr); return 0; } static void cma_deref_id(struct rdma_id_private *id_priv) { if (atomic_dec_and_test(&id_priv->refcount)) complete(&id_priv->comp); } struct rdma_cm_id *rdma_create_id(struct vnet *net, rdma_cm_event_handler event_handler, void *context, enum rdma_port_space ps, enum ib_qp_type qp_type) { struct rdma_id_private *id_priv; id_priv = kzalloc(sizeof *id_priv, GFP_KERNEL); if (!id_priv) return ERR_PTR(-ENOMEM); id_priv->owner = task_pid_nr(current); id_priv->state = RDMA_CM_IDLE; id_priv->id.context = context; id_priv->id.event_handler = event_handler; id_priv->id.ps = ps; id_priv->id.qp_type = qp_type; spin_lock_init(&id_priv->lock); mutex_init(&id_priv->qp_mutex); init_completion(&id_priv->comp); atomic_set(&id_priv->refcount, 1); mutex_init(&id_priv->handler_mutex); INIT_LIST_HEAD(&id_priv->listen_list); INIT_LIST_HEAD(&id_priv->mc_list); get_random_bytes(&id_priv->seq_num, sizeof id_priv->seq_num); id_priv->id.route.addr.dev_addr.net = TD_TO_VNET(curthread); return &id_priv->id; } EXPORT_SYMBOL(rdma_create_id); static int cma_init_ud_qp(struct rdma_id_private *id_priv, struct ib_qp *qp) { struct ib_qp_attr qp_attr; int qp_attr_mask, ret; qp_attr.qp_state = IB_QPS_INIT; ret = rdma_init_qp_attr(&id_priv->id, &qp_attr, &qp_attr_mask); if (ret) return ret; ret = ib_modify_qp(qp, &qp_attr, qp_attr_mask); if (ret) return ret; qp_attr.qp_state = IB_QPS_RTR; ret = ib_modify_qp(qp, &qp_attr, IB_QP_STATE); if (ret) return ret; qp_attr.qp_state = IB_QPS_RTS; qp_attr.sq_psn = 0; ret = ib_modify_qp(qp, &qp_attr, IB_QP_STATE | IB_QP_SQ_PSN); return ret; } static int cma_init_conn_qp(struct rdma_id_private *id_priv, struct ib_qp *qp) { struct ib_qp_attr qp_attr; int qp_attr_mask, ret; qp_attr.qp_state = IB_QPS_INIT; ret = rdma_init_qp_attr(&id_priv->id, &qp_attr, &qp_attr_mask); if (ret) return ret; return ib_modify_qp(qp, &qp_attr, qp_attr_mask); } int rdma_create_qp(struct rdma_cm_id *id, struct ib_pd *pd, struct ib_qp_init_attr *qp_init_attr) { struct rdma_id_private *id_priv; struct ib_qp *qp; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (id->device != pd->device) return -EINVAL; qp_init_attr->port_num = id->port_num; qp = ib_create_qp(pd, qp_init_attr); if (IS_ERR(qp)) return PTR_ERR(qp); if (id->qp_type == IB_QPT_UD) ret = cma_init_ud_qp(id_priv, qp); else ret = cma_init_conn_qp(id_priv, qp); if (ret) goto err; id->qp = qp; id_priv->qp_num = qp->qp_num; id_priv->srq = (qp->srq != NULL); return 0; err: ib_destroy_qp(qp); return ret; } EXPORT_SYMBOL(rdma_create_qp); void rdma_destroy_qp(struct rdma_cm_id *id) { struct rdma_id_private *id_priv; id_priv = container_of(id, struct rdma_id_private, id); mutex_lock(&id_priv->qp_mutex); ib_destroy_qp(id_priv->id.qp); id_priv->id.qp = NULL; mutex_unlock(&id_priv->qp_mutex); } EXPORT_SYMBOL(rdma_destroy_qp); static int cma_modify_qp_rtr(struct rdma_id_private *id_priv, struct rdma_conn_param *conn_param) { struct ib_qp_attr qp_attr; int qp_attr_mask, ret; union ib_gid sgid; mutex_lock(&id_priv->qp_mutex); if (!id_priv->id.qp) { ret = 0; goto out; } /* Need to update QP attributes from default values. */ qp_attr.qp_state = IB_QPS_INIT; ret = rdma_init_qp_attr(&id_priv->id, &qp_attr, &qp_attr_mask); if (ret) goto out; ret = ib_modify_qp(id_priv->id.qp, &qp_attr, qp_attr_mask); if (ret) goto out; qp_attr.qp_state = IB_QPS_RTR; ret = rdma_init_qp_attr(&id_priv->id, &qp_attr, &qp_attr_mask); if (ret) goto out; ret = ib_query_gid(id_priv->id.device, id_priv->id.port_num, qp_attr.ah_attr.grh.sgid_index, &sgid, NULL); if (ret) goto out; BUG_ON(id_priv->cma_dev->device != id_priv->id.device); if (conn_param) qp_attr.max_dest_rd_atomic = conn_param->responder_resources; ret = ib_modify_qp(id_priv->id.qp, &qp_attr, qp_attr_mask); out: mutex_unlock(&id_priv->qp_mutex); return ret; } static int cma_modify_qp_rts(struct rdma_id_private *id_priv, struct rdma_conn_param *conn_param) { struct ib_qp_attr qp_attr; int qp_attr_mask, ret; mutex_lock(&id_priv->qp_mutex); if (!id_priv->id.qp) { ret = 0; goto out; } qp_attr.qp_state = IB_QPS_RTS; ret = rdma_init_qp_attr(&id_priv->id, &qp_attr, &qp_attr_mask); if (ret) goto out; if (conn_param) qp_attr.max_rd_atomic = conn_param->initiator_depth; ret = ib_modify_qp(id_priv->id.qp, &qp_attr, qp_attr_mask); out: mutex_unlock(&id_priv->qp_mutex); return ret; } static int cma_modify_qp_err(struct rdma_id_private *id_priv) { struct ib_qp_attr qp_attr; int ret; mutex_lock(&id_priv->qp_mutex); if (!id_priv->id.qp) { ret = 0; goto out; } qp_attr.qp_state = IB_QPS_ERR; ret = ib_modify_qp(id_priv->id.qp, &qp_attr, IB_QP_STATE); out: mutex_unlock(&id_priv->qp_mutex); return ret; } static int cma_ib_init_qp_attr(struct rdma_id_private *id_priv, struct ib_qp_attr *qp_attr, int *qp_attr_mask) { struct rdma_dev_addr *dev_addr = &id_priv->id.route.addr.dev_addr; int ret; u16 pkey; if (rdma_cap_eth_ah(id_priv->id.device, id_priv->id.port_num)) pkey = 0xffff; else pkey = ib_addr_get_pkey(dev_addr); ret = ib_find_cached_pkey(id_priv->id.device, id_priv->id.port_num, pkey, &qp_attr->pkey_index); if (ret) return ret; qp_attr->port_num = id_priv->id.port_num; *qp_attr_mask = IB_QP_STATE | IB_QP_PKEY_INDEX | IB_QP_PORT; if (id_priv->id.qp_type == IB_QPT_UD) { ret = cma_set_qkey(id_priv, 0); if (ret) return ret; qp_attr->qkey = id_priv->qkey; *qp_attr_mask |= IB_QP_QKEY; } else { qp_attr->qp_access_flags = 0; *qp_attr_mask |= IB_QP_ACCESS_FLAGS; } return 0; } int rdma_init_qp_attr(struct rdma_cm_id *id, struct ib_qp_attr *qp_attr, int *qp_attr_mask) { struct rdma_id_private *id_priv; int ret = 0; id_priv = container_of(id, struct rdma_id_private, id); if (rdma_cap_ib_cm(id->device, id->port_num)) { if (!id_priv->cm_id.ib || (id_priv->id.qp_type == IB_QPT_UD)) ret = cma_ib_init_qp_attr(id_priv, qp_attr, qp_attr_mask); else ret = ib_cm_init_qp_attr(id_priv->cm_id.ib, qp_attr, qp_attr_mask); if (qp_attr->qp_state == IB_QPS_RTR) qp_attr->rq_psn = id_priv->seq_num; } else if (rdma_cap_iw_cm(id->device, id->port_num)) { if (!id_priv->cm_id.iw) { qp_attr->qp_access_flags = 0; *qp_attr_mask = IB_QP_STATE | IB_QP_ACCESS_FLAGS; } else ret = iw_cm_init_qp_attr(id_priv->cm_id.iw, qp_attr, qp_attr_mask); + qp_attr->port_num = id_priv->id.port_num; + *qp_attr_mask |= IB_QP_PORT; } else ret = -ENOSYS; return ret; } EXPORT_SYMBOL(rdma_init_qp_attr); static inline int cma_zero_addr(struct sockaddr *addr) { switch (addr->sa_family) { case AF_INET: return ipv4_is_zeronet(((struct sockaddr_in *)addr)->sin_addr.s_addr); case AF_INET6: return ipv6_addr_any(&((struct sockaddr_in6 *) addr)->sin6_addr); case AF_IB: return ib_addr_any(&((struct sockaddr_ib *) addr)->sib_addr); default: return 0; } } static inline int cma_loopback_addr(struct sockaddr *addr) { switch (addr->sa_family) { case AF_INET: return ipv4_is_loopback(((struct sockaddr_in *) addr)->sin_addr.s_addr); case AF_INET6: return ipv6_addr_loopback(&((struct sockaddr_in6 *) addr)->sin6_addr); case AF_IB: return ib_addr_loopback(&((struct sockaddr_ib *) addr)->sib_addr); default: return 0; } } static inline int cma_any_addr(struct sockaddr *addr) { return cma_zero_addr(addr) || cma_loopback_addr(addr); } static int cma_addr_cmp(struct sockaddr *src, struct sockaddr *dst) { if (src->sa_family != dst->sa_family) return -1; switch (src->sa_family) { case AF_INET: return ((struct sockaddr_in *) src)->sin_addr.s_addr != ((struct sockaddr_in *) dst)->sin_addr.s_addr; case AF_INET6: return ipv6_addr_cmp(&((struct sockaddr_in6 *) src)->sin6_addr, &((struct sockaddr_in6 *) dst)->sin6_addr); default: return ib_addr_cmp(&((struct sockaddr_ib *) src)->sib_addr, &((struct sockaddr_ib *) dst)->sib_addr); } } static __be16 cma_port(struct sockaddr *addr) { struct sockaddr_ib *sib; switch (addr->sa_family) { case AF_INET: return ((struct sockaddr_in *) addr)->sin_port; case AF_INET6: return ((struct sockaddr_in6 *) addr)->sin6_port; case AF_IB: sib = (struct sockaddr_ib *) addr; return htons((u16) (be64_to_cpu(sib->sib_sid) & be64_to_cpu(sib->sib_sid_mask))); default: return 0; } } static inline int cma_any_port(struct sockaddr *addr) { return !cma_port(addr); } static void cma_save_ib_info(struct sockaddr *src_addr, struct sockaddr *dst_addr, struct rdma_cm_id *listen_id, struct ib_sa_path_rec *path) { struct sockaddr_ib *listen_ib, *ib; listen_ib = (struct sockaddr_ib *) &listen_id->route.addr.src_addr; if (src_addr) { ib = (struct sockaddr_ib *)src_addr; ib->sib_family = AF_IB; if (path) { ib->sib_pkey = path->pkey; ib->sib_flowinfo = path->flow_label; memcpy(&ib->sib_addr, &path->sgid, 16); ib->sib_sid = path->service_id; ib->sib_scope_id = 0; } else { ib->sib_pkey = listen_ib->sib_pkey; ib->sib_flowinfo = listen_ib->sib_flowinfo; ib->sib_addr = listen_ib->sib_addr; ib->sib_sid = listen_ib->sib_sid; ib->sib_scope_id = listen_ib->sib_scope_id; } ib->sib_sid_mask = cpu_to_be64(0xffffffffffffffffULL); } if (dst_addr) { ib = (struct sockaddr_ib *)dst_addr; ib->sib_family = AF_IB; if (path) { ib->sib_pkey = path->pkey; ib->sib_flowinfo = path->flow_label; memcpy(&ib->sib_addr, &path->dgid, 16); } } } static void cma_save_ip4_info(struct sockaddr_in *src_addr, struct sockaddr_in *dst_addr, struct cma_hdr *hdr, __be16 local_port) { if (src_addr) { *src_addr = (struct sockaddr_in) { .sin_len = sizeof(struct sockaddr_in), .sin_family = AF_INET, .sin_addr.s_addr = hdr->dst_addr.ip4.addr, .sin_port = local_port, }; } if (dst_addr) { *dst_addr = (struct sockaddr_in) { .sin_len = sizeof(struct sockaddr_in), .sin_family = AF_INET, .sin_addr.s_addr = hdr->src_addr.ip4.addr, .sin_port = hdr->port, }; } } static void cma_ip6_clear_scope_id(struct in6_addr *addr) { /* make sure link local scope ID gets zeroed */ if (IN6_IS_SCOPE_LINKLOCAL(addr) || IN6_IS_ADDR_MC_INTFACELOCAL(addr)) { /* use byte-access to be alignment safe */ addr->s6_addr[2] = 0; addr->s6_addr[3] = 0; } } static void cma_save_ip6_info(struct sockaddr_in6 *src_addr, struct sockaddr_in6 *dst_addr, struct cma_hdr *hdr, __be16 local_port) { if (src_addr) { *src_addr = (struct sockaddr_in6) { .sin6_len = sizeof(struct sockaddr_in6), .sin6_family = AF_INET6, .sin6_addr = hdr->dst_addr.ip6, .sin6_port = local_port, }; cma_ip6_clear_scope_id(&src_addr->sin6_addr); } if (dst_addr) { *dst_addr = (struct sockaddr_in6) { .sin6_len = sizeof(struct sockaddr_in6), .sin6_family = AF_INET6, .sin6_addr = hdr->src_addr.ip6, .sin6_port = hdr->port, }; cma_ip6_clear_scope_id(&dst_addr->sin6_addr); } } static u16 cma_port_from_service_id(__be64 service_id) { return (u16)be64_to_cpu(service_id); } static int cma_save_ip_info(struct sockaddr *src_addr, struct sockaddr *dst_addr, struct ib_cm_event *ib_event, __be64 service_id) { struct cma_hdr *hdr; __be16 port; hdr = ib_event->private_data; if (hdr->cma_version != CMA_VERSION) return -EINVAL; port = htons(cma_port_from_service_id(service_id)); switch (cma_get_ip_ver(hdr)) { case 4: cma_save_ip4_info((struct sockaddr_in *)src_addr, (struct sockaddr_in *)dst_addr, hdr, port); break; case 6: cma_save_ip6_info((struct sockaddr_in6 *)src_addr, (struct sockaddr_in6 *)dst_addr, hdr, port); break; default: return -EAFNOSUPPORT; } return 0; } static int cma_save_net_info(struct sockaddr *src_addr, struct sockaddr *dst_addr, struct rdma_cm_id *listen_id, struct ib_cm_event *ib_event, sa_family_t sa_family, __be64 service_id) { if (sa_family == AF_IB) { if (ib_event->event == IB_CM_REQ_RECEIVED) cma_save_ib_info(src_addr, dst_addr, listen_id, ib_event->param.req_rcvd.primary_path); else if (ib_event->event == IB_CM_SIDR_REQ_RECEIVED) cma_save_ib_info(src_addr, dst_addr, listen_id, NULL); return 0; } return cma_save_ip_info(src_addr, dst_addr, ib_event, service_id); } static int cma_save_req_info(const struct ib_cm_event *ib_event, struct cma_req_info *req) { const struct ib_cm_req_event_param *req_param = &ib_event->param.req_rcvd; const struct ib_cm_sidr_req_event_param *sidr_param = &ib_event->param.sidr_req_rcvd; switch (ib_event->event) { case IB_CM_REQ_RECEIVED: req->device = req_param->listen_id->device; req->port = req_param->port; memcpy(&req->local_gid, &req_param->primary_path->sgid, sizeof(req->local_gid)); req->has_gid = true; req->service_id = req_param->primary_path->service_id; req->pkey = be16_to_cpu(req_param->primary_path->pkey); if (req->pkey != req_param->bth_pkey) pr_warn_ratelimited("RDMA CMA: got different BTH P_Key (0x%x) and primary path P_Key (0x%x)\n" "RDMA CMA: in the future this may cause the request to be dropped\n", req_param->bth_pkey, req->pkey); break; case IB_CM_SIDR_REQ_RECEIVED: req->device = sidr_param->listen_id->device; req->port = sidr_param->port; req->has_gid = false; req->service_id = sidr_param->service_id; req->pkey = sidr_param->pkey; if (req->pkey != sidr_param->bth_pkey) pr_warn_ratelimited("RDMA CMA: got different BTH P_Key (0x%x) and SIDR request payload P_Key (0x%x)\n" "RDMA CMA: in the future this may cause the request to be dropped\n", sidr_param->bth_pkey, req->pkey); break; default: return -EINVAL; } return 0; } static bool validate_ipv4_net_dev(struct net_device *net_dev, const struct sockaddr_in *dst_addr, const struct sockaddr_in *src_addr) { #ifdef INET struct sockaddr_in dst_tmp = *dst_addr; __be32 daddr = dst_addr->sin_addr.s_addr, saddr = src_addr->sin_addr.s_addr; struct net_device *src_dev; struct rtentry *rte; bool ret; if (ipv4_is_multicast(saddr) || ipv4_is_lbcast(saddr) || ipv4_is_lbcast(daddr) || ipv4_is_zeronet(saddr) || ipv4_is_zeronet(daddr) || ipv4_is_loopback(daddr) || ipv4_is_loopback(saddr)) return false; src_dev = ip_dev_find(net_dev->if_vnet, saddr); if (src_dev != net_dev) { if (src_dev != NULL) dev_put(src_dev); return false; } dev_put(src_dev); /* * Make sure the socket address length field * is set, else rtalloc1() will fail. */ dst_tmp.sin_len = sizeof(dst_tmp); CURVNET_SET(net_dev->if_vnet); rte = rtalloc1((struct sockaddr *)&dst_tmp, 1, 0); CURVNET_RESTORE(); if (rte != NULL) { ret = (rte->rt_ifp == net_dev); RTFREE_LOCKED(rte); } else { ret = false; } return ret; #else return false; #endif } static bool validate_ipv6_net_dev(struct net_device *net_dev, const struct sockaddr_in6 *dst_addr, const struct sockaddr_in6 *src_addr) { #ifdef INET6 struct sockaddr_in6 dst_tmp = *dst_addr; struct in6_addr in6_addr = src_addr->sin6_addr; struct net_device *src_dev; struct rtentry *rte; bool ret; src_dev = ip6_dev_find(net_dev->if_vnet, in6_addr); if (src_dev != net_dev) return false; /* * Make sure the socket address length field * is set, else rtalloc1() will fail. */ dst_tmp.sin6_len = sizeof(dst_tmp); CURVNET_SET(net_dev->if_vnet); rte = rtalloc1((struct sockaddr *)&dst_tmp, 1, 0); CURVNET_RESTORE(); if (rte != NULL) { ret = (rte->rt_ifp == net_dev); RTFREE_LOCKED(rte); } else { ret = false; } return ret; #else return false; #endif } static bool validate_net_dev(struct net_device *net_dev, const struct sockaddr *daddr, const struct sockaddr *saddr) { const struct sockaddr_in *daddr4 = (const struct sockaddr_in *)daddr; const struct sockaddr_in *saddr4 = (const struct sockaddr_in *)saddr; const struct sockaddr_in6 *daddr6 = (const struct sockaddr_in6 *)daddr; const struct sockaddr_in6 *saddr6 = (const struct sockaddr_in6 *)saddr; switch (daddr->sa_family) { case AF_INET: return saddr->sa_family == AF_INET && validate_ipv4_net_dev(net_dev, daddr4, saddr4); case AF_INET6: return saddr->sa_family == AF_INET6 && validate_ipv6_net_dev(net_dev, daddr6, saddr6); default: return false; } } static struct net_device *cma_get_net_dev(struct ib_cm_event *ib_event, const struct cma_req_info *req) { struct sockaddr_storage listen_addr_storage, src_addr_storage; struct sockaddr *listen_addr = (struct sockaddr *)&listen_addr_storage, *src_addr = (struct sockaddr *)&src_addr_storage; struct net_device *net_dev; const union ib_gid *gid = req->has_gid ? &req->local_gid : NULL; int err; err = cma_save_ip_info(listen_addr, src_addr, ib_event, req->service_id); if (err) return ERR_PTR(err); net_dev = ib_get_net_dev_by_params(req->device, req->port, req->pkey, gid, listen_addr); if (!net_dev) return ERR_PTR(-ENODEV); if (!validate_net_dev(net_dev, listen_addr, src_addr)) { dev_put(net_dev); return ERR_PTR(-EHOSTUNREACH); } return net_dev; } static enum rdma_port_space rdma_ps_from_service_id(__be64 service_id) { return (be64_to_cpu(service_id) >> 16) & 0xffff; } static bool cma_match_private_data(struct rdma_id_private *id_priv, const struct cma_hdr *hdr) { struct sockaddr *addr = cma_src_addr(id_priv); __be32 ip4_addr; struct in6_addr ip6_addr; if (cma_any_addr(addr) && !id_priv->afonly) return true; switch (addr->sa_family) { case AF_INET: ip4_addr = ((struct sockaddr_in *)addr)->sin_addr.s_addr; if (cma_get_ip_ver(hdr) != 4) return false; if (!cma_any_addr(addr) && hdr->dst_addr.ip4.addr != ip4_addr) return false; break; case AF_INET6: ip6_addr = ((struct sockaddr_in6 *)addr)->sin6_addr; if (cma_get_ip_ver(hdr) != 6) return false; cma_ip6_clear_scope_id(&ip6_addr); if (!cma_any_addr(addr) && memcmp(&hdr->dst_addr.ip6, &ip6_addr, sizeof(ip6_addr))) return false; break; case AF_IB: return true; default: return false; } return true; } static bool cma_protocol_roce_dev_port(struct ib_device *device, int port_num) { enum rdma_link_layer ll = rdma_port_get_link_layer(device, port_num); enum rdma_transport_type transport = rdma_node_get_transport(device->node_type); return ll == IB_LINK_LAYER_ETHERNET && transport == RDMA_TRANSPORT_IB; } static bool cma_protocol_roce(const struct rdma_cm_id *id) { struct ib_device *device = id->device; const int port_num = id->port_num ?: rdma_start_port(device); return cma_protocol_roce_dev_port(device, port_num); } static bool cma_match_net_dev(const struct rdma_cm_id *id, const struct net_device *net_dev, u8 port_num) { const struct rdma_addr *addr = &id->route.addr; if (!net_dev) /* This request is an AF_IB request or a RoCE request */ return (!id->port_num || id->port_num == port_num) && (addr->src_addr.ss_family == AF_IB || cma_protocol_roce_dev_port(id->device, port_num)); return !addr->dev_addr.bound_dev_if || (net_eq(dev_net(net_dev), addr->dev_addr.net) && addr->dev_addr.bound_dev_if == net_dev->if_index); } static struct rdma_id_private *cma_find_listener( const struct rdma_bind_list *bind_list, const struct ib_cm_id *cm_id, const struct ib_cm_event *ib_event, const struct cma_req_info *req, const struct net_device *net_dev) { struct rdma_id_private *id_priv, *id_priv_dev; if (!bind_list) return ERR_PTR(-EINVAL); hlist_for_each_entry(id_priv, &bind_list->owners, node) { if (cma_match_private_data(id_priv, ib_event->private_data)) { if (id_priv->id.device == cm_id->device && cma_match_net_dev(&id_priv->id, net_dev, req->port)) return id_priv; list_for_each_entry(id_priv_dev, &id_priv->listen_list, listen_list) { if (id_priv_dev->id.device == cm_id->device && cma_match_net_dev(&id_priv_dev->id, net_dev, req->port)) return id_priv_dev; } } } return ERR_PTR(-EINVAL); } static struct rdma_id_private *cma_id_from_event(struct ib_cm_id *cm_id, struct ib_cm_event *ib_event, struct net_device **net_dev) { struct cma_req_info req; struct rdma_bind_list *bind_list; struct rdma_id_private *id_priv; int err; err = cma_save_req_info(ib_event, &req); if (err) return ERR_PTR(err); *net_dev = cma_get_net_dev(ib_event, &req); if (IS_ERR(*net_dev)) { if (PTR_ERR(*net_dev) == -EAFNOSUPPORT) { /* Assuming the protocol is AF_IB */ *net_dev = NULL; } else if (cma_protocol_roce_dev_port(req.device, req.port)) { /* TODO find the net dev matching the request parameters * through the RoCE GID table */ *net_dev = NULL; } else { return ERR_CAST(*net_dev); } } bind_list = cma_ps_find(*net_dev ? dev_net(*net_dev) : &init_net, rdma_ps_from_service_id(req.service_id), cma_port_from_service_id(req.service_id)); id_priv = cma_find_listener(bind_list, cm_id, ib_event, &req, *net_dev); if (IS_ERR(id_priv) && *net_dev) { dev_put(*net_dev); *net_dev = NULL; } return id_priv; } static inline int cma_user_data_offset(struct rdma_id_private *id_priv) { return cma_family(id_priv) == AF_IB ? 0 : sizeof(struct cma_hdr); } static void cma_cancel_route(struct rdma_id_private *id_priv) { if (rdma_cap_ib_sa(id_priv->id.device, id_priv->id.port_num)) { if (id_priv->query) ib_sa_cancel_query(id_priv->query_id, id_priv->query); } } static void cma_cancel_listens(struct rdma_id_private *id_priv) { struct rdma_id_private *dev_id_priv; /* * Remove from listen_any_list to prevent added devices from spawning * additional listen requests. */ mutex_lock(&lock); list_del(&id_priv->list); while (!list_empty(&id_priv->listen_list)) { dev_id_priv = list_entry(id_priv->listen_list.next, struct rdma_id_private, listen_list); /* sync with device removal to avoid duplicate destruction */ list_del_init(&dev_id_priv->list); list_del(&dev_id_priv->listen_list); mutex_unlock(&lock); rdma_destroy_id(&dev_id_priv->id); mutex_lock(&lock); } mutex_unlock(&lock); } static void cma_cancel_operation(struct rdma_id_private *id_priv, enum rdma_cm_state state) { switch (state) { case RDMA_CM_ADDR_QUERY: rdma_addr_cancel(&id_priv->id.route.addr.dev_addr); break; case RDMA_CM_ROUTE_QUERY: cma_cancel_route(id_priv); break; case RDMA_CM_LISTEN: if (cma_any_addr(cma_src_addr(id_priv)) && !id_priv->cma_dev) cma_cancel_listens(id_priv); break; default: break; } } static void cma_release_port(struct rdma_id_private *id_priv) { struct rdma_bind_list *bind_list = id_priv->bind_list; struct vnet *net = id_priv->id.route.addr.dev_addr.net; if (!bind_list) return; mutex_lock(&lock); hlist_del(&id_priv->node); if (hlist_empty(&bind_list->owners)) { cma_ps_remove(net, bind_list->ps, bind_list->port); kfree(bind_list); } mutex_unlock(&lock); } static void cma_leave_mc_groups(struct rdma_id_private *id_priv) { struct cma_multicast *mc; while (!list_empty(&id_priv->mc_list)) { mc = container_of(id_priv->mc_list.next, struct cma_multicast, list); list_del(&mc->list); if (rdma_cap_ib_mcast(id_priv->cma_dev->device, id_priv->id.port_num)) { ib_sa_free_multicast(mc->multicast.ib); kfree(mc); } else { if (mc->igmp_joined) { struct rdma_dev_addr *dev_addr = &id_priv->id.route.addr.dev_addr; struct net_device *ndev = NULL; if (dev_addr->bound_dev_if) ndev = dev_get_by_index(dev_addr->net, dev_addr->bound_dev_if); if (ndev) { cma_igmp_send(ndev, &mc->multicast.ib->rec.mgid, false); dev_put(ndev); } } kref_put(&mc->mcref, release_mc); } } } void rdma_destroy_id(struct rdma_cm_id *id) { struct rdma_id_private *id_priv; enum rdma_cm_state state; id_priv = container_of(id, struct rdma_id_private, id); state = cma_exch(id_priv, RDMA_CM_DESTROYING); cma_cancel_operation(id_priv, state); /* * Wait for any active callback to finish. New callbacks will find * the id_priv state set to destroying and abort. */ mutex_lock(&id_priv->handler_mutex); mutex_unlock(&id_priv->handler_mutex); if (id_priv->cma_dev) { if (rdma_cap_ib_cm(id_priv->id.device, 1)) { if (id_priv->cm_id.ib) ib_destroy_cm_id(id_priv->cm_id.ib); } else if (rdma_cap_iw_cm(id_priv->id.device, 1)) { if (id_priv->cm_id.iw) iw_destroy_cm_id(id_priv->cm_id.iw); } cma_leave_mc_groups(id_priv); cma_release_dev(id_priv); } cma_release_port(id_priv); cma_deref_id(id_priv); wait_for_completion(&id_priv->comp); if (id_priv->internal_id) cma_deref_id(id_priv->id.context); kfree(id_priv->id.route.path_rec); kfree(id_priv); } EXPORT_SYMBOL(rdma_destroy_id); static int cma_rep_recv(struct rdma_id_private *id_priv) { int ret; ret = cma_modify_qp_rtr(id_priv, NULL); if (ret) goto reject; ret = cma_modify_qp_rts(id_priv, NULL); if (ret) goto reject; ret = ib_send_cm_rtu(id_priv->cm_id.ib, NULL, 0); if (ret) goto reject; return 0; reject: cma_modify_qp_err(id_priv); ib_send_cm_rej(id_priv->cm_id.ib, IB_CM_REJ_CONSUMER_DEFINED, NULL, 0, NULL, 0); return ret; } static void cma_set_rep_event_data(struct rdma_cm_event *event, struct ib_cm_rep_event_param *rep_data, void *private_data) { event->param.conn.private_data = private_data; event->param.conn.private_data_len = IB_CM_REP_PRIVATE_DATA_SIZE; event->param.conn.responder_resources = rep_data->responder_resources; event->param.conn.initiator_depth = rep_data->initiator_depth; event->param.conn.flow_control = rep_data->flow_control; event->param.conn.rnr_retry_count = rep_data->rnr_retry_count; event->param.conn.srq = rep_data->srq; event->param.conn.qp_num = rep_data->remote_qpn; } static int cma_ib_handler(struct ib_cm_id *cm_id, struct ib_cm_event *ib_event) { struct rdma_id_private *id_priv = cm_id->context; struct rdma_cm_event event; int ret = 0; mutex_lock(&id_priv->handler_mutex); if ((ib_event->event != IB_CM_TIMEWAIT_EXIT && id_priv->state != RDMA_CM_CONNECT) || (ib_event->event == IB_CM_TIMEWAIT_EXIT && id_priv->state != RDMA_CM_DISCONNECT)) goto out; memset(&event, 0, sizeof event); switch (ib_event->event) { case IB_CM_REQ_ERROR: case IB_CM_REP_ERROR: event.event = RDMA_CM_EVENT_UNREACHABLE; event.status = -ETIMEDOUT; break; case IB_CM_REP_RECEIVED: if (id_priv->id.qp) { event.status = cma_rep_recv(id_priv); event.event = event.status ? RDMA_CM_EVENT_CONNECT_ERROR : RDMA_CM_EVENT_ESTABLISHED; } else { event.event = RDMA_CM_EVENT_CONNECT_RESPONSE; } cma_set_rep_event_data(&event, &ib_event->param.rep_rcvd, ib_event->private_data); break; case IB_CM_RTU_RECEIVED: case IB_CM_USER_ESTABLISHED: event.event = RDMA_CM_EVENT_ESTABLISHED; break; case IB_CM_DREQ_ERROR: event.status = -ETIMEDOUT; /* fall through */ case IB_CM_DREQ_RECEIVED: case IB_CM_DREP_RECEIVED: if (!cma_comp_exch(id_priv, RDMA_CM_CONNECT, RDMA_CM_DISCONNECT)) goto out; event.event = RDMA_CM_EVENT_DISCONNECTED; break; case IB_CM_TIMEWAIT_EXIT: event.event = RDMA_CM_EVENT_TIMEWAIT_EXIT; break; case IB_CM_MRA_RECEIVED: /* ignore event */ goto out; case IB_CM_REJ_RECEIVED: cma_modify_qp_err(id_priv); event.status = ib_event->param.rej_rcvd.reason; event.event = RDMA_CM_EVENT_REJECTED; event.param.conn.private_data = ib_event->private_data; event.param.conn.private_data_len = IB_CM_REJ_PRIVATE_DATA_SIZE; break; default: pr_err("RDMA CMA: unexpected IB CM event: %d\n", ib_event->event); goto out; } ret = id_priv->id.event_handler(&id_priv->id, &event); if (ret) { /* Destroy the CM ID by returning a non-zero value. */ id_priv->cm_id.ib = NULL; cma_exch(id_priv, RDMA_CM_DESTROYING); mutex_unlock(&id_priv->handler_mutex); rdma_destroy_id(&id_priv->id); return ret; } out: mutex_unlock(&id_priv->handler_mutex); return ret; } static struct rdma_id_private *cma_new_conn_id(struct rdma_cm_id *listen_id, struct ib_cm_event *ib_event, struct net_device *net_dev) { struct rdma_id_private *id_priv; struct rdma_cm_id *id; struct rdma_route *rt; const sa_family_t ss_family = listen_id->route.addr.src_addr.ss_family; const __be64 service_id = ib_event->param.req_rcvd.primary_path->service_id; int ret; id = rdma_create_id(listen_id->route.addr.dev_addr.net, listen_id->event_handler, listen_id->context, listen_id->ps, ib_event->param.req_rcvd.qp_type); if (IS_ERR(id)) return NULL; id_priv = container_of(id, struct rdma_id_private, id); if (cma_save_net_info((struct sockaddr *)&id->route.addr.src_addr, (struct sockaddr *)&id->route.addr.dst_addr, listen_id, ib_event, ss_family, service_id)) goto err; rt = &id->route; rt->num_paths = ib_event->param.req_rcvd.alternate_path ? 2 : 1; rt->path_rec = kmalloc(sizeof *rt->path_rec * rt->num_paths, GFP_KERNEL); if (!rt->path_rec) goto err; rt->path_rec[0] = *ib_event->param.req_rcvd.primary_path; if (rt->num_paths == 2) rt->path_rec[1] = *ib_event->param.req_rcvd.alternate_path; if (net_dev) { ret = rdma_copy_addr(&rt->addr.dev_addr, net_dev, NULL); if (ret) goto err; } else { if (!cma_protocol_roce(listen_id) && cma_any_addr(cma_src_addr(id_priv))) { rt->addr.dev_addr.dev_type = ARPHRD_INFINIBAND; rdma_addr_set_sgid(&rt->addr.dev_addr, &rt->path_rec[0].sgid); ib_addr_set_pkey(&rt->addr.dev_addr, be16_to_cpu(rt->path_rec[0].pkey)); } else if (!cma_any_addr(cma_src_addr(id_priv))) { ret = cma_translate_addr(cma_src_addr(id_priv), &rt->addr.dev_addr); if (ret) goto err; } } rdma_addr_set_dgid(&rt->addr.dev_addr, &rt->path_rec[0].dgid); id_priv->state = RDMA_CM_CONNECT; return id_priv; err: rdma_destroy_id(id); return NULL; } static struct rdma_id_private *cma_new_udp_id(struct rdma_cm_id *listen_id, struct ib_cm_event *ib_event, struct net_device *net_dev) { struct rdma_id_private *id_priv; struct rdma_cm_id *id; const sa_family_t ss_family = listen_id->route.addr.src_addr.ss_family; struct vnet *net = listen_id->route.addr.dev_addr.net; int ret; id = rdma_create_id(net, listen_id->event_handler, listen_id->context, listen_id->ps, IB_QPT_UD); if (IS_ERR(id)) return NULL; id_priv = container_of(id, struct rdma_id_private, id); if (cma_save_net_info((struct sockaddr *)&id->route.addr.src_addr, (struct sockaddr *)&id->route.addr.dst_addr, listen_id, ib_event, ss_family, ib_event->param.sidr_req_rcvd.service_id)) goto err; if (net_dev) { ret = rdma_copy_addr(&id->route.addr.dev_addr, net_dev, NULL); if (ret) goto err; } else { if (!cma_any_addr(cma_src_addr(id_priv))) { ret = cma_translate_addr(cma_src_addr(id_priv), &id->route.addr.dev_addr); if (ret) goto err; } } id_priv->state = RDMA_CM_CONNECT; return id_priv; err: rdma_destroy_id(id); return NULL; } static void cma_set_req_event_data(struct rdma_cm_event *event, struct ib_cm_req_event_param *req_data, void *private_data, int offset) { event->param.conn.private_data = (char *)private_data + offset; event->param.conn.private_data_len = IB_CM_REQ_PRIVATE_DATA_SIZE - offset; event->param.conn.responder_resources = req_data->responder_resources; event->param.conn.initiator_depth = req_data->initiator_depth; event->param.conn.flow_control = req_data->flow_control; event->param.conn.retry_count = req_data->retry_count; event->param.conn.rnr_retry_count = req_data->rnr_retry_count; event->param.conn.srq = req_data->srq; event->param.conn.qp_num = req_data->remote_qpn; } static int cma_check_req_qp_type(struct rdma_cm_id *id, struct ib_cm_event *ib_event) { return (((ib_event->event == IB_CM_REQ_RECEIVED) && (ib_event->param.req_rcvd.qp_type == id->qp_type)) || ((ib_event->event == IB_CM_SIDR_REQ_RECEIVED) && (id->qp_type == IB_QPT_UD)) || (!id->qp_type)); } static int cma_req_handler(struct ib_cm_id *cm_id, struct ib_cm_event *ib_event) { struct rdma_id_private *listen_id, *conn_id = NULL; struct rdma_cm_event event; struct net_device *net_dev; int offset, ret; listen_id = cma_id_from_event(cm_id, ib_event, &net_dev); if (IS_ERR(listen_id)) return PTR_ERR(listen_id); if (!cma_check_req_qp_type(&listen_id->id, ib_event)) { ret = -EINVAL; goto net_dev_put; } mutex_lock(&listen_id->handler_mutex); if (listen_id->state != RDMA_CM_LISTEN) { ret = -ECONNABORTED; goto err1; } memset(&event, 0, sizeof event); offset = cma_user_data_offset(listen_id); event.event = RDMA_CM_EVENT_CONNECT_REQUEST; if (ib_event->event == IB_CM_SIDR_REQ_RECEIVED) { conn_id = cma_new_udp_id(&listen_id->id, ib_event, net_dev); event.param.ud.private_data = (char *)ib_event->private_data + offset; event.param.ud.private_data_len = IB_CM_SIDR_REQ_PRIVATE_DATA_SIZE - offset; } else { conn_id = cma_new_conn_id(&listen_id->id, ib_event, net_dev); cma_set_req_event_data(&event, &ib_event->param.req_rcvd, ib_event->private_data, offset); } if (!conn_id) { ret = -ENOMEM; goto err1; } mutex_lock_nested(&conn_id->handler_mutex, SINGLE_DEPTH_NESTING); ret = cma_acquire_dev(conn_id, listen_id); if (ret) goto err2; conn_id->cm_id.ib = cm_id; cm_id->context = conn_id; cm_id->cm_handler = cma_ib_handler; /* * Protect against the user destroying conn_id from another thread * until we're done accessing it. */ atomic_inc(&conn_id->refcount); ret = conn_id->id.event_handler(&conn_id->id, &event); if (ret) goto err3; /* * Acquire mutex to prevent user executing rdma_destroy_id() * while we're accessing the cm_id. */ mutex_lock(&lock); if (cma_comp(conn_id, RDMA_CM_CONNECT) && (conn_id->id.qp_type != IB_QPT_UD)) ib_send_cm_mra(cm_id, CMA_CM_MRA_SETTING, NULL, 0); mutex_unlock(&lock); mutex_unlock(&conn_id->handler_mutex); mutex_unlock(&listen_id->handler_mutex); cma_deref_id(conn_id); if (net_dev) dev_put(net_dev); return 0; err3: cma_deref_id(conn_id); /* Destroy the CM ID by returning a non-zero value. */ conn_id->cm_id.ib = NULL; err2: cma_exch(conn_id, RDMA_CM_DESTROYING); mutex_unlock(&conn_id->handler_mutex); err1: mutex_unlock(&listen_id->handler_mutex); if (conn_id) rdma_destroy_id(&conn_id->id); net_dev_put: if (net_dev) dev_put(net_dev); return ret; } __be64 rdma_get_service_id(struct rdma_cm_id *id, struct sockaddr *addr) { if (addr->sa_family == AF_IB) return ((struct sockaddr_ib *) addr)->sib_sid; return cpu_to_be64(((u64)id->ps << 16) + be16_to_cpu(cma_port(addr))); } EXPORT_SYMBOL(rdma_get_service_id); static int cma_iw_handler(struct iw_cm_id *iw_id, struct iw_cm_event *iw_event) { struct rdma_id_private *id_priv = iw_id->context; struct rdma_cm_event event; int ret = 0; struct sockaddr *laddr = (struct sockaddr *)&iw_event->local_addr; struct sockaddr *raddr = (struct sockaddr *)&iw_event->remote_addr; mutex_lock(&id_priv->handler_mutex); if (id_priv->state != RDMA_CM_CONNECT) goto out; memset(&event, 0, sizeof event); switch (iw_event->event) { case IW_CM_EVENT_CLOSE: event.event = RDMA_CM_EVENT_DISCONNECTED; break; case IW_CM_EVENT_CONNECT_REPLY: memcpy(cma_src_addr(id_priv), laddr, rdma_addr_size(laddr)); memcpy(cma_dst_addr(id_priv), raddr, rdma_addr_size(raddr)); switch (iw_event->status) { case 0: event.event = RDMA_CM_EVENT_ESTABLISHED; event.param.conn.initiator_depth = iw_event->ird; event.param.conn.responder_resources = iw_event->ord; break; case -ECONNRESET: case -ECONNREFUSED: event.event = RDMA_CM_EVENT_REJECTED; break; case -ETIMEDOUT: event.event = RDMA_CM_EVENT_UNREACHABLE; break; default: event.event = RDMA_CM_EVENT_CONNECT_ERROR; break; } break; case IW_CM_EVENT_ESTABLISHED: event.event = RDMA_CM_EVENT_ESTABLISHED; event.param.conn.initiator_depth = iw_event->ird; event.param.conn.responder_resources = iw_event->ord; break; default: BUG_ON(1); } event.status = iw_event->status; event.param.conn.private_data = iw_event->private_data; event.param.conn.private_data_len = iw_event->private_data_len; ret = id_priv->id.event_handler(&id_priv->id, &event); if (ret) { /* Destroy the CM ID by returning a non-zero value. */ id_priv->cm_id.iw = NULL; cma_exch(id_priv, RDMA_CM_DESTROYING); mutex_unlock(&id_priv->handler_mutex); rdma_destroy_id(&id_priv->id); return ret; } out: mutex_unlock(&id_priv->handler_mutex); return ret; } static int iw_conn_req_handler(struct iw_cm_id *cm_id, struct iw_cm_event *iw_event) { struct rdma_cm_id *new_cm_id; struct rdma_id_private *listen_id, *conn_id; struct rdma_cm_event event; int ret = -ECONNABORTED; struct sockaddr *laddr = (struct sockaddr *)&iw_event->local_addr; struct sockaddr *raddr = (struct sockaddr *)&iw_event->remote_addr; listen_id = cm_id->context; mutex_lock(&listen_id->handler_mutex); if (listen_id->state != RDMA_CM_LISTEN) goto out; /* Create a new RDMA id for the new IW CM ID */ new_cm_id = rdma_create_id(listen_id->id.route.addr.dev_addr.net, listen_id->id.event_handler, listen_id->id.context, RDMA_PS_TCP, IB_QPT_RC); if (IS_ERR(new_cm_id)) { ret = -ENOMEM; goto out; } conn_id = container_of(new_cm_id, struct rdma_id_private, id); mutex_lock_nested(&conn_id->handler_mutex, SINGLE_DEPTH_NESTING); conn_id->state = RDMA_CM_CONNECT; ret = rdma_translate_ip(laddr, &conn_id->id.route.addr.dev_addr); if (ret) { mutex_unlock(&conn_id->handler_mutex); rdma_destroy_id(new_cm_id); goto out; } ret = cma_acquire_dev(conn_id, listen_id); if (ret) { mutex_unlock(&conn_id->handler_mutex); rdma_destroy_id(new_cm_id); goto out; } conn_id->cm_id.iw = cm_id; cm_id->context = conn_id; cm_id->cm_handler = cma_iw_handler; memcpy(cma_src_addr(conn_id), laddr, rdma_addr_size(laddr)); memcpy(cma_dst_addr(conn_id), raddr, rdma_addr_size(raddr)); memset(&event, 0, sizeof event); event.event = RDMA_CM_EVENT_CONNECT_REQUEST; event.param.conn.private_data = iw_event->private_data; event.param.conn.private_data_len = iw_event->private_data_len; event.param.conn.initiator_depth = iw_event->ird; event.param.conn.responder_resources = iw_event->ord; /* * Protect against the user destroying conn_id from another thread * until we're done accessing it. */ atomic_inc(&conn_id->refcount); ret = conn_id->id.event_handler(&conn_id->id, &event); if (ret) { /* User wants to destroy the CM ID */ conn_id->cm_id.iw = NULL; cma_exch(conn_id, RDMA_CM_DESTROYING); mutex_unlock(&conn_id->handler_mutex); cma_deref_id(conn_id); rdma_destroy_id(&conn_id->id); goto out; } mutex_unlock(&conn_id->handler_mutex); cma_deref_id(conn_id); out: mutex_unlock(&listen_id->handler_mutex); return ret; } static int cma_ib_listen(struct rdma_id_private *id_priv) { struct sockaddr *addr; struct ib_cm_id *id; __be64 svc_id; addr = cma_src_addr(id_priv); svc_id = rdma_get_service_id(&id_priv->id, addr); id = ib_cm_insert_listen(id_priv->id.device, cma_req_handler, svc_id); if (IS_ERR(id)) return PTR_ERR(id); id_priv->cm_id.ib = id; return 0; } static int cma_iw_listen(struct rdma_id_private *id_priv, int backlog) { int ret; struct iw_cm_id *id; id = iw_create_cm_id(id_priv->id.device, iw_conn_req_handler, id_priv); if (IS_ERR(id)) return PTR_ERR(id); id->tos = id_priv->tos; id_priv->cm_id.iw = id; memcpy(&id_priv->cm_id.iw->local_addr, cma_src_addr(id_priv), rdma_addr_size(cma_src_addr(id_priv))); ret = iw_cm_listen(id_priv->cm_id.iw, backlog); if (ret) { iw_destroy_cm_id(id_priv->cm_id.iw); id_priv->cm_id.iw = NULL; } return ret; } static int cma_listen_handler(struct rdma_cm_id *id, struct rdma_cm_event *event) { struct rdma_id_private *id_priv = id->context; id->context = id_priv->id.context; id->event_handler = id_priv->id.event_handler; return id_priv->id.event_handler(id, event); } static void cma_listen_on_dev(struct rdma_id_private *id_priv, struct cma_device *cma_dev) { struct rdma_id_private *dev_id_priv; struct rdma_cm_id *id; struct vnet *net = id_priv->id.route.addr.dev_addr.net; int ret; if (cma_family(id_priv) == AF_IB && !rdma_cap_ib_cm(cma_dev->device, 1)) return; id = rdma_create_id(net, cma_listen_handler, id_priv, id_priv->id.ps, id_priv->id.qp_type); if (IS_ERR(id)) return; dev_id_priv = container_of(id, struct rdma_id_private, id); dev_id_priv->state = RDMA_CM_ADDR_BOUND; memcpy(cma_src_addr(dev_id_priv), cma_src_addr(id_priv), rdma_addr_size(cma_src_addr(id_priv))); _cma_attach_to_dev(dev_id_priv, cma_dev); list_add_tail(&dev_id_priv->listen_list, &id_priv->listen_list); atomic_inc(&id_priv->refcount); dev_id_priv->internal_id = 1; dev_id_priv->afonly = id_priv->afonly; ret = rdma_listen(id, id_priv->backlog); if (ret) pr_warn("RDMA CMA: cma_listen_on_dev, error %d, listening on device %s\n", ret, cma_dev->device->name); } static void cma_listen_on_all(struct rdma_id_private *id_priv) { struct cma_device *cma_dev; mutex_lock(&lock); list_add_tail(&id_priv->list, &listen_any_list); list_for_each_entry(cma_dev, &dev_list, list) cma_listen_on_dev(id_priv, cma_dev); mutex_unlock(&lock); } void rdma_set_service_type(struct rdma_cm_id *id, int tos) { struct rdma_id_private *id_priv; id_priv = container_of(id, struct rdma_id_private, id); id_priv->tos = (u8) tos; } EXPORT_SYMBOL(rdma_set_service_type); static void cma_query_handler(int status, struct ib_sa_path_rec *path_rec, void *context) { struct cma_work *work = context; struct rdma_route *route; route = &work->id->id.route; if (!status) { route->num_paths = 1; *route->path_rec = *path_rec; } else { work->old_state = RDMA_CM_ROUTE_QUERY; work->new_state = RDMA_CM_ADDR_RESOLVED; work->event.event = RDMA_CM_EVENT_ROUTE_ERROR; work->event.status = status; } queue_work(cma_wq, &work->work); } static int cma_query_ib_route(struct rdma_id_private *id_priv, int timeout_ms, struct cma_work *work) { struct rdma_dev_addr *dev_addr = &id_priv->id.route.addr.dev_addr; struct ib_sa_path_rec path_rec; ib_sa_comp_mask comp_mask; struct sockaddr_in6 *sin6; struct sockaddr_ib *sib; memset(&path_rec, 0, sizeof path_rec); rdma_addr_get_sgid(dev_addr, &path_rec.sgid); rdma_addr_get_dgid(dev_addr, &path_rec.dgid); path_rec.pkey = cpu_to_be16(ib_addr_get_pkey(dev_addr)); path_rec.numb_path = 1; path_rec.reversible = 1; path_rec.service_id = rdma_get_service_id(&id_priv->id, cma_dst_addr(id_priv)); comp_mask = IB_SA_PATH_REC_DGID | IB_SA_PATH_REC_SGID | IB_SA_PATH_REC_PKEY | IB_SA_PATH_REC_NUMB_PATH | IB_SA_PATH_REC_REVERSIBLE | IB_SA_PATH_REC_SERVICE_ID; switch (cma_family(id_priv)) { case AF_INET: path_rec.qos_class = cpu_to_be16((u16) id_priv->tos); comp_mask |= IB_SA_PATH_REC_QOS_CLASS; break; case AF_INET6: sin6 = (struct sockaddr_in6 *) cma_src_addr(id_priv); path_rec.traffic_class = (u8) (be32_to_cpu(sin6->sin6_flowinfo) >> 20); comp_mask |= IB_SA_PATH_REC_TRAFFIC_CLASS; break; case AF_IB: sib = (struct sockaddr_ib *) cma_src_addr(id_priv); path_rec.traffic_class = (u8) (be32_to_cpu(sib->sib_flowinfo) >> 20); comp_mask |= IB_SA_PATH_REC_TRAFFIC_CLASS; break; } id_priv->query_id = ib_sa_path_rec_get(&sa_client, id_priv->id.device, id_priv->id.port_num, &path_rec, comp_mask, timeout_ms, GFP_KERNEL, cma_query_handler, work, &id_priv->query); return (id_priv->query_id < 0) ? id_priv->query_id : 0; } static void cma_work_handler(struct work_struct *_work) { struct cma_work *work = container_of(_work, struct cma_work, work); struct rdma_id_private *id_priv = work->id; int destroy = 0; mutex_lock(&id_priv->handler_mutex); if (!cma_comp_exch(id_priv, work->old_state, work->new_state)) goto out; if (id_priv->id.event_handler(&id_priv->id, &work->event)) { cma_exch(id_priv, RDMA_CM_DESTROYING); destroy = 1; } out: mutex_unlock(&id_priv->handler_mutex); cma_deref_id(id_priv); if (destroy) rdma_destroy_id(&id_priv->id); kfree(work); } static int cma_resolve_ib_route(struct rdma_id_private *id_priv, int timeout_ms) { struct rdma_route *route = &id_priv->id.route; struct cma_work *work; int ret; work = kzalloc(sizeof *work, GFP_KERNEL); if (!work) return -ENOMEM; work->id = id_priv; INIT_WORK(&work->work, cma_work_handler); work->old_state = RDMA_CM_ROUTE_QUERY; work->new_state = RDMA_CM_ROUTE_RESOLVED; work->event.event = RDMA_CM_EVENT_ROUTE_RESOLVED; route->path_rec = kmalloc(sizeof *route->path_rec, GFP_KERNEL); if (!route->path_rec) { ret = -ENOMEM; goto err1; } ret = cma_query_ib_route(id_priv, timeout_ms, work); if (ret) goto err2; return 0; err2: kfree(route->path_rec); route->path_rec = NULL; err1: kfree(work); return ret; } int rdma_set_ib_paths(struct rdma_cm_id *id, struct ib_sa_path_rec *path_rec, int num_paths) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (!cma_comp_exch(id_priv, RDMA_CM_ADDR_RESOLVED, RDMA_CM_ROUTE_RESOLVED)) return -EINVAL; id->route.path_rec = kmemdup(path_rec, sizeof *path_rec * num_paths, GFP_KERNEL); if (!id->route.path_rec) { ret = -ENOMEM; goto err; } id->route.num_paths = num_paths; return 0; err: cma_comp_exch(id_priv, RDMA_CM_ROUTE_RESOLVED, RDMA_CM_ADDR_RESOLVED); return ret; } EXPORT_SYMBOL(rdma_set_ib_paths); static int cma_resolve_iw_route(struct rdma_id_private *id_priv, int timeout_ms) { struct cma_work *work; work = kzalloc(sizeof *work, GFP_KERNEL); if (!work) return -ENOMEM; work->id = id_priv; INIT_WORK(&work->work, cma_work_handler); work->old_state = RDMA_CM_ROUTE_QUERY; work->new_state = RDMA_CM_ROUTE_RESOLVED; work->event.event = RDMA_CM_EVENT_ROUTE_RESOLVED; queue_work(cma_wq, &work->work); return 0; } static int iboe_tos_to_sl(struct net_device *ndev, int tos) { /* get service level, SL, from type of service, TOS */ int sl = tos; /* range check input argument and map 1:1 */ if (sl > 255) sl = 255; else if (sl < 0) sl = 0; /* final mappings are done by the vendor specific drivers */ return sl; } static enum ib_gid_type cma_route_gid_type(enum rdma_network_type network_type, unsigned long supported_gids, enum ib_gid_type default_gid) { if ((network_type == RDMA_NETWORK_IPV4 || network_type == RDMA_NETWORK_IPV6) && test_bit(IB_GID_TYPE_ROCE_UDP_ENCAP, &supported_gids)) return IB_GID_TYPE_ROCE_UDP_ENCAP; return default_gid; } static int cma_resolve_iboe_route(struct rdma_id_private *id_priv) { struct rdma_route *route = &id_priv->id.route; struct rdma_addr *addr = &route->addr; struct cma_work *work; int ret; struct net_device *ndev = NULL; work = kzalloc(sizeof *work, GFP_KERNEL); if (!work) return -ENOMEM; work->id = id_priv; INIT_WORK(&work->work, cma_work_handler); route->path_rec = kzalloc(sizeof *route->path_rec, GFP_KERNEL); if (!route->path_rec) { ret = -ENOMEM; goto err1; } route->num_paths = 1; if (addr->dev_addr.bound_dev_if) { unsigned long supported_gids; ndev = dev_get_by_index(addr->dev_addr.net, addr->dev_addr.bound_dev_if); if (!ndev) { ret = -ENODEV; goto err2; } route->path_rec->net = ndev->if_vnet; route->path_rec->ifindex = ndev->if_index; supported_gids = roce_gid_type_mask_support(id_priv->id.device, id_priv->id.port_num); route->path_rec->gid_type = cma_route_gid_type(addr->dev_addr.network, supported_gids, id_priv->gid_type); } if (!ndev) { ret = -ENODEV; goto err2; } memcpy(route->path_rec->dmac, addr->dev_addr.dst_dev_addr, ETH_ALEN); rdma_ip2gid((struct sockaddr *)&id_priv->id.route.addr.src_addr, &route->path_rec->sgid); rdma_ip2gid((struct sockaddr *)&id_priv->id.route.addr.dst_addr, &route->path_rec->dgid); /* Use the hint from IP Stack to select GID Type */ if (route->path_rec->gid_type < ib_network_to_gid_type(addr->dev_addr.network)) route->path_rec->gid_type = ib_network_to_gid_type(addr->dev_addr.network); if (((struct sockaddr *)&id_priv->id.route.addr.dst_addr)->sa_family != AF_IB) /* TODO: get the hoplimit from the inet/inet6 device */ route->path_rec->hop_limit = addr->dev_addr.hoplimit; else route->path_rec->hop_limit = 1; route->path_rec->reversible = 1; route->path_rec->pkey = cpu_to_be16(0xffff); route->path_rec->mtu_selector = IB_SA_EQ; route->path_rec->sl = iboe_tos_to_sl(ndev, id_priv->tos); route->path_rec->mtu = iboe_get_mtu(ndev->if_mtu); route->path_rec->rate_selector = IB_SA_EQ; route->path_rec->rate = iboe_get_rate(ndev); dev_put(ndev); route->path_rec->packet_life_time_selector = IB_SA_EQ; route->path_rec->packet_life_time = CMA_IBOE_PACKET_LIFETIME; if (!route->path_rec->mtu) { ret = -EINVAL; goto err2; } work->old_state = RDMA_CM_ROUTE_QUERY; work->new_state = RDMA_CM_ROUTE_RESOLVED; work->event.event = RDMA_CM_EVENT_ROUTE_RESOLVED; work->event.status = 0; queue_work(cma_wq, &work->work); return 0; err2: kfree(route->path_rec); route->path_rec = NULL; err1: kfree(work); return ret; } int rdma_resolve_route(struct rdma_cm_id *id, int timeout_ms) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (!cma_comp_exch(id_priv, RDMA_CM_ADDR_RESOLVED, RDMA_CM_ROUTE_QUERY)) return -EINVAL; atomic_inc(&id_priv->refcount); if (rdma_cap_ib_sa(id->device, id->port_num)) ret = cma_resolve_ib_route(id_priv, timeout_ms); else if (rdma_protocol_roce(id->device, id->port_num)) ret = cma_resolve_iboe_route(id_priv); else if (rdma_protocol_iwarp(id->device, id->port_num)) ret = cma_resolve_iw_route(id_priv, timeout_ms); else ret = -ENOSYS; if (ret) goto err; return 0; err: cma_comp_exch(id_priv, RDMA_CM_ROUTE_QUERY, RDMA_CM_ADDR_RESOLVED); cma_deref_id(id_priv); return ret; } EXPORT_SYMBOL(rdma_resolve_route); static void cma_set_loopback(struct sockaddr *addr) { switch (addr->sa_family) { case AF_INET: ((struct sockaddr_in *) addr)->sin_addr.s_addr = htonl(INADDR_LOOPBACK); break; case AF_INET6: ipv6_addr_set(&((struct sockaddr_in6 *) addr)->sin6_addr, 0, 0, 0, htonl(1)); break; default: ib_addr_set(&((struct sockaddr_ib *) addr)->sib_addr, 0, 0, 0, htonl(1)); break; } } static int cma_bind_loopback(struct rdma_id_private *id_priv) { struct cma_device *cma_dev, *cur_dev; struct ib_port_attr port_attr; union ib_gid gid; u16 pkey; int ret; u8 p; cma_dev = NULL; mutex_lock(&lock); list_for_each_entry(cur_dev, &dev_list, list) { if (cma_family(id_priv) == AF_IB && !rdma_cap_ib_cm(cur_dev->device, 1)) continue; if (!cma_dev) cma_dev = cur_dev; for (p = 1; p <= cur_dev->device->phys_port_cnt; ++p) { if (!ib_query_port(cur_dev->device, p, &port_attr) && port_attr.state == IB_PORT_ACTIVE) { cma_dev = cur_dev; goto port_found; } } } if (!cma_dev) { ret = -ENODEV; goto out; } p = 1; port_found: ret = ib_get_cached_gid(cma_dev->device, p, 0, &gid, NULL); if (ret) goto out; ret = ib_get_cached_pkey(cma_dev->device, p, 0, &pkey); if (ret) goto out; id_priv->id.route.addr.dev_addr.dev_type = (rdma_protocol_ib(cma_dev->device, p)) ? ARPHRD_INFINIBAND : ARPHRD_ETHER; rdma_addr_set_sgid(&id_priv->id.route.addr.dev_addr, &gid); ib_addr_set_pkey(&id_priv->id.route.addr.dev_addr, pkey); id_priv->id.port_num = p; cma_attach_to_dev(id_priv, cma_dev); cma_set_loopback(cma_src_addr(id_priv)); out: mutex_unlock(&lock); return ret; } static void addr_handler(int status, struct sockaddr *src_addr, struct rdma_dev_addr *dev_addr, void *context) { struct rdma_id_private *id_priv = context; struct rdma_cm_event event; memset(&event, 0, sizeof event); mutex_lock(&id_priv->handler_mutex); if (!cma_comp_exch(id_priv, RDMA_CM_ADDR_QUERY, RDMA_CM_ADDR_RESOLVED)) goto out; memcpy(cma_src_addr(id_priv), src_addr, rdma_addr_size(src_addr)); if (!status && !id_priv->cma_dev) status = cma_acquire_dev(id_priv, NULL); if (status) { if (!cma_comp_exch(id_priv, RDMA_CM_ADDR_RESOLVED, RDMA_CM_ADDR_BOUND)) goto out; event.event = RDMA_CM_EVENT_ADDR_ERROR; event.status = status; } else event.event = RDMA_CM_EVENT_ADDR_RESOLVED; if (id_priv->id.event_handler(&id_priv->id, &event)) { cma_exch(id_priv, RDMA_CM_DESTROYING); mutex_unlock(&id_priv->handler_mutex); cma_deref_id(id_priv); rdma_destroy_id(&id_priv->id); return; } out: mutex_unlock(&id_priv->handler_mutex); cma_deref_id(id_priv); } static int cma_resolve_loopback(struct rdma_id_private *id_priv) { struct cma_work *work; union ib_gid gid; int ret; work = kzalloc(sizeof *work, GFP_KERNEL); if (!work) return -ENOMEM; if (!id_priv->cma_dev) { ret = cma_bind_loopback(id_priv); if (ret) goto err; } rdma_addr_get_sgid(&id_priv->id.route.addr.dev_addr, &gid); rdma_addr_set_dgid(&id_priv->id.route.addr.dev_addr, &gid); work->id = id_priv; INIT_WORK(&work->work, cma_work_handler); work->old_state = RDMA_CM_ADDR_QUERY; work->new_state = RDMA_CM_ADDR_RESOLVED; work->event.event = RDMA_CM_EVENT_ADDR_RESOLVED; queue_work(cma_wq, &work->work); return 0; err: kfree(work); return ret; } static int cma_resolve_ib_addr(struct rdma_id_private *id_priv) { struct cma_work *work; int ret; work = kzalloc(sizeof *work, GFP_KERNEL); if (!work) return -ENOMEM; if (!id_priv->cma_dev) { ret = cma_resolve_ib_dev(id_priv); if (ret) goto err; } rdma_addr_set_dgid(&id_priv->id.route.addr.dev_addr, (union ib_gid *) &(((struct sockaddr_ib *) &id_priv->id.route.addr.dst_addr)->sib_addr)); work->id = id_priv; INIT_WORK(&work->work, cma_work_handler); work->old_state = RDMA_CM_ADDR_QUERY; work->new_state = RDMA_CM_ADDR_RESOLVED; work->event.event = RDMA_CM_EVENT_ADDR_RESOLVED; queue_work(cma_wq, &work->work); return 0; err: kfree(work); return ret; } static int cma_bind_addr(struct rdma_cm_id *id, struct sockaddr *src_addr, struct sockaddr *dst_addr) { if (!src_addr || !src_addr->sa_family) { src_addr = (struct sockaddr *) &id->route.addr.src_addr; src_addr->sa_family = dst_addr->sa_family; if (dst_addr->sa_family == AF_INET6) { struct sockaddr_in6 *src_addr6 = (struct sockaddr_in6 *) src_addr; struct sockaddr_in6 *dst_addr6 = (struct sockaddr_in6 *) dst_addr; src_addr6->sin6_scope_id = dst_addr6->sin6_scope_id; if (IN6_IS_SCOPE_LINKLOCAL(&dst_addr6->sin6_addr) || IN6_IS_ADDR_MC_INTFACELOCAL(&dst_addr6->sin6_addr)) id->route.addr.dev_addr.bound_dev_if = dst_addr6->sin6_scope_id; } else if (dst_addr->sa_family == AF_IB) { ((struct sockaddr_ib *) src_addr)->sib_pkey = ((struct sockaddr_ib *) dst_addr)->sib_pkey; } } return rdma_bind_addr(id, src_addr); } int rdma_resolve_addr(struct rdma_cm_id *id, struct sockaddr *src_addr, struct sockaddr *dst_addr, int timeout_ms) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (id_priv->state == RDMA_CM_IDLE) { ret = cma_bind_addr(id, src_addr, dst_addr); if (ret) return ret; } if (cma_family(id_priv) != dst_addr->sa_family) return -EINVAL; if (!cma_comp_exch(id_priv, RDMA_CM_ADDR_BOUND, RDMA_CM_ADDR_QUERY)) return -EINVAL; atomic_inc(&id_priv->refcount); memcpy(cma_dst_addr(id_priv), dst_addr, rdma_addr_size(dst_addr)); if (cma_any_addr(dst_addr)) { ret = cma_resolve_loopback(id_priv); } else { if (dst_addr->sa_family == AF_IB) { ret = cma_resolve_ib_addr(id_priv); } else { ret = cma_check_linklocal(&id->route.addr.dev_addr, dst_addr); if (ret) goto err; ret = rdma_resolve_ip(&addr_client, cma_src_addr(id_priv), dst_addr, &id->route.addr.dev_addr, timeout_ms, addr_handler, id_priv); } } if (ret) goto err; return 0; err: cma_comp_exch(id_priv, RDMA_CM_ADDR_QUERY, RDMA_CM_ADDR_BOUND); cma_deref_id(id_priv); return ret; } EXPORT_SYMBOL(rdma_resolve_addr); int rdma_set_reuseaddr(struct rdma_cm_id *id, int reuse) { struct rdma_id_private *id_priv; unsigned long flags; int ret; id_priv = container_of(id, struct rdma_id_private, id); spin_lock_irqsave(&id_priv->lock, flags); if (reuse || id_priv->state == RDMA_CM_IDLE) { id_priv->reuseaddr = reuse; ret = 0; } else { ret = -EINVAL; } spin_unlock_irqrestore(&id_priv->lock, flags); return ret; } EXPORT_SYMBOL(rdma_set_reuseaddr); int rdma_set_afonly(struct rdma_cm_id *id, int afonly) { struct rdma_id_private *id_priv; unsigned long flags; int ret; id_priv = container_of(id, struct rdma_id_private, id); spin_lock_irqsave(&id_priv->lock, flags); if (id_priv->state == RDMA_CM_IDLE || id_priv->state == RDMA_CM_ADDR_BOUND) { id_priv->options |= (1 << CMA_OPTION_AFONLY); id_priv->afonly = afonly; ret = 0; } else { ret = -EINVAL; } spin_unlock_irqrestore(&id_priv->lock, flags); return ret; } EXPORT_SYMBOL(rdma_set_afonly); static void cma_bind_port(struct rdma_bind_list *bind_list, struct rdma_id_private *id_priv) { struct sockaddr *addr; struct sockaddr_ib *sib; u64 sid, mask; __be16 port; addr = cma_src_addr(id_priv); port = htons(bind_list->port); switch (addr->sa_family) { case AF_INET: ((struct sockaddr_in *) addr)->sin_port = port; break; case AF_INET6: ((struct sockaddr_in6 *) addr)->sin6_port = port; break; case AF_IB: sib = (struct sockaddr_ib *) addr; sid = be64_to_cpu(sib->sib_sid); mask = be64_to_cpu(sib->sib_sid_mask); sib->sib_sid = cpu_to_be64((sid & mask) | (u64) ntohs(port)); sib->sib_sid_mask = cpu_to_be64(~0ULL); break; } id_priv->bind_list = bind_list; hlist_add_head(&id_priv->node, &bind_list->owners); } static int cma_alloc_port(enum rdma_port_space ps, struct rdma_id_private *id_priv, unsigned short snum) { struct rdma_bind_list *bind_list; int ret; bind_list = kzalloc(sizeof *bind_list, GFP_KERNEL); if (!bind_list) return -ENOMEM; ret = cma_ps_alloc(id_priv->id.route.addr.dev_addr.net, ps, bind_list, snum); if (ret < 0) goto err; bind_list->ps = ps; bind_list->port = (unsigned short)ret; cma_bind_port(bind_list, id_priv); return 0; err: kfree(bind_list); return ret == -ENOSPC ? -EADDRNOTAVAIL : ret; } static int cma_alloc_any_port(enum rdma_port_space ps, struct rdma_id_private *id_priv) { static unsigned int last_used_port; int low, high, remaining; unsigned int rover; struct vnet *net = id_priv->id.route.addr.dev_addr.net; u32 rand; inet_get_local_port_range(net, &low, &high); remaining = (high - low) + 1; get_random_bytes(&rand, sizeof(rand)); rover = rand % remaining + low; retry: if (last_used_port != rover && !cma_ps_find(net, ps, (unsigned short)rover)) { int ret = cma_alloc_port(ps, id_priv, rover); /* * Remember previously used port number in order to avoid * re-using same port immediately after it is closed. */ if (!ret) last_used_port = rover; if (ret != -EADDRNOTAVAIL) return ret; } if (--remaining) { rover++; if ((rover < low) || (rover > high)) rover = low; goto retry; } return -EADDRNOTAVAIL; } /* * Check that the requested port is available. This is called when trying to * bind to a specific port, or when trying to listen on a bound port. In * the latter case, the provided id_priv may already be on the bind_list, but * we still need to check that it's okay to start listening. */ static int cma_check_port(struct rdma_bind_list *bind_list, struct rdma_id_private *id_priv, uint8_t reuseaddr) { struct rdma_id_private *cur_id; struct sockaddr *addr, *cur_addr; addr = cma_src_addr(id_priv); hlist_for_each_entry(cur_id, &bind_list->owners, node) { if (id_priv == cur_id) continue; if ((cur_id->state != RDMA_CM_LISTEN) && reuseaddr && cur_id->reuseaddr) continue; cur_addr = cma_src_addr(cur_id); if (id_priv->afonly && cur_id->afonly && (addr->sa_family != cur_addr->sa_family)) continue; if (cma_any_addr(addr) || cma_any_addr(cur_addr)) return -EADDRNOTAVAIL; if (!cma_addr_cmp(addr, cur_addr)) return -EADDRINUSE; } return 0; } static int cma_use_port(enum rdma_port_space ps, struct rdma_id_private *id_priv) { struct rdma_bind_list *bind_list; unsigned short snum; int ret; snum = ntohs(cma_port(cma_src_addr(id_priv))); if (snum < IPPORT_RESERVED && priv_check(curthread, PRIV_NETINET_BINDANY) != 0) return -EACCES; bind_list = cma_ps_find(id_priv->id.route.addr.dev_addr.net, ps, snum); if (!bind_list) { ret = cma_alloc_port(ps, id_priv, snum); } else { ret = cma_check_port(bind_list, id_priv, id_priv->reuseaddr); if (!ret) cma_bind_port(bind_list, id_priv); } return ret; } static int cma_bind_listen(struct rdma_id_private *id_priv) { struct rdma_bind_list *bind_list = id_priv->bind_list; int ret = 0; mutex_lock(&lock); if (bind_list->owners.first->next) ret = cma_check_port(bind_list, id_priv, 0); mutex_unlock(&lock); return ret; } static enum rdma_port_space cma_select_inet_ps( struct rdma_id_private *id_priv) { switch (id_priv->id.ps) { case RDMA_PS_TCP: case RDMA_PS_UDP: case RDMA_PS_IPOIB: case RDMA_PS_IB: return id_priv->id.ps; default: return 0; } } static enum rdma_port_space cma_select_ib_ps(struct rdma_id_private *id_priv) { enum rdma_port_space ps = 0; struct sockaddr_ib *sib; u64 sid_ps, mask, sid; sib = (struct sockaddr_ib *) cma_src_addr(id_priv); mask = be64_to_cpu(sib->sib_sid_mask) & RDMA_IB_IP_PS_MASK; sid = be64_to_cpu(sib->sib_sid) & mask; if ((id_priv->id.ps == RDMA_PS_IB) && (sid == (RDMA_IB_IP_PS_IB & mask))) { sid_ps = RDMA_IB_IP_PS_IB; ps = RDMA_PS_IB; } else if (((id_priv->id.ps == RDMA_PS_IB) || (id_priv->id.ps == RDMA_PS_TCP)) && (sid == (RDMA_IB_IP_PS_TCP & mask))) { sid_ps = RDMA_IB_IP_PS_TCP; ps = RDMA_PS_TCP; } else if (((id_priv->id.ps == RDMA_PS_IB) || (id_priv->id.ps == RDMA_PS_UDP)) && (sid == (RDMA_IB_IP_PS_UDP & mask))) { sid_ps = RDMA_IB_IP_PS_UDP; ps = RDMA_PS_UDP; } if (ps) { sib->sib_sid = cpu_to_be64(sid_ps | ntohs(cma_port((struct sockaddr *) sib))); sib->sib_sid_mask = cpu_to_be64(RDMA_IB_IP_PS_MASK | be64_to_cpu(sib->sib_sid_mask)); } return ps; } static int cma_get_port(struct rdma_id_private *id_priv) { enum rdma_port_space ps; int ret; if (cma_family(id_priv) != AF_IB) ps = cma_select_inet_ps(id_priv); else ps = cma_select_ib_ps(id_priv); if (!ps) return -EPROTONOSUPPORT; mutex_lock(&lock); if (cma_any_port(cma_src_addr(id_priv))) ret = cma_alloc_any_port(ps, id_priv); else ret = cma_use_port(ps, id_priv); mutex_unlock(&lock); return ret; } static int cma_check_linklocal(struct rdma_dev_addr *dev_addr, struct sockaddr *addr) { #ifdef INET6 struct sockaddr_in6 sin6; if (addr->sa_family != AF_INET6) return 0; sin6 = *(struct sockaddr_in6 *)addr; if (IN6_IS_SCOPE_LINKLOCAL(&sin6.sin6_addr) || IN6_IS_ADDR_MC_INTFACELOCAL(&sin6.sin6_addr)) { bool failure; CURVNET_SET_QUIET(dev_addr->net); failure = sa6_recoverscope(&sin6) || sin6.sin6_scope_id == 0; CURVNET_RESTORE(); /* check if IPv6 scope ID is not set */ if (failure) return -EINVAL; dev_addr->bound_dev_if = sin6.sin6_scope_id; } #endif return 0; } int rdma_listen(struct rdma_cm_id *id, int backlog) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (id_priv->state == RDMA_CM_IDLE) { id->route.addr.src_addr.ss_family = AF_INET; ret = rdma_bind_addr(id, cma_src_addr(id_priv)); if (ret) return ret; } if (!cma_comp_exch(id_priv, RDMA_CM_ADDR_BOUND, RDMA_CM_LISTEN)) return -EINVAL; if (id_priv->reuseaddr) { ret = cma_bind_listen(id_priv); if (ret) goto err; } id_priv->backlog = backlog; if (id->device) { if (rdma_cap_ib_cm(id->device, 1)) { ret = cma_ib_listen(id_priv); if (ret) goto err; } else if (rdma_cap_iw_cm(id->device, 1)) { ret = cma_iw_listen(id_priv, backlog); if (ret) goto err; } else { ret = -ENOSYS; goto err; } } else cma_listen_on_all(id_priv); return 0; err: id_priv->backlog = 0; cma_comp_exch(id_priv, RDMA_CM_LISTEN, RDMA_CM_ADDR_BOUND); return ret; } EXPORT_SYMBOL(rdma_listen); int rdma_bind_addr(struct rdma_cm_id *id, struct sockaddr *addr) { struct rdma_id_private *id_priv; int ret; if (addr->sa_family != AF_INET && addr->sa_family != AF_INET6 && addr->sa_family != AF_IB) return -EAFNOSUPPORT; id_priv = container_of(id, struct rdma_id_private, id); if (!cma_comp_exch(id_priv, RDMA_CM_IDLE, RDMA_CM_ADDR_BOUND)) return -EINVAL; ret = cma_check_linklocal(&id->route.addr.dev_addr, addr); if (ret) goto err1; memcpy(cma_src_addr(id_priv), addr, rdma_addr_size(addr)); if (!cma_any_addr(addr)) { ret = cma_translate_addr(addr, &id->route.addr.dev_addr); if (ret) goto err1; ret = cma_acquire_dev(id_priv, NULL); if (ret) goto err1; } if (!(id_priv->options & (1 << CMA_OPTION_AFONLY))) { if (addr->sa_family == AF_INET) id_priv->afonly = 1; #ifdef INET6 else if (addr->sa_family == AF_INET6) { CURVNET_SET_QUIET(id_priv->id.route.addr.dev_addr.net); id_priv->afonly = V_ip6_v6only; CURVNET_RESTORE(); } #endif } ret = cma_get_port(id_priv); if (ret) goto err2; return 0; err2: if (id_priv->cma_dev) cma_release_dev(id_priv); err1: cma_comp_exch(id_priv, RDMA_CM_ADDR_BOUND, RDMA_CM_IDLE); return ret; } EXPORT_SYMBOL(rdma_bind_addr); static int cma_format_hdr(void *hdr, struct rdma_id_private *id_priv) { struct cma_hdr *cma_hdr; cma_hdr = hdr; cma_hdr->cma_version = CMA_VERSION; if (cma_family(id_priv) == AF_INET) { struct sockaddr_in *src4, *dst4; src4 = (struct sockaddr_in *) cma_src_addr(id_priv); dst4 = (struct sockaddr_in *) cma_dst_addr(id_priv); cma_set_ip_ver(cma_hdr, 4); cma_hdr->src_addr.ip4.addr = src4->sin_addr.s_addr; cma_hdr->dst_addr.ip4.addr = dst4->sin_addr.s_addr; cma_hdr->port = src4->sin_port; } else if (cma_family(id_priv) == AF_INET6) { struct sockaddr_in6 *src6, *dst6; src6 = (struct sockaddr_in6 *) cma_src_addr(id_priv); dst6 = (struct sockaddr_in6 *) cma_dst_addr(id_priv); cma_set_ip_ver(cma_hdr, 6); cma_hdr->src_addr.ip6 = src6->sin6_addr; cma_hdr->dst_addr.ip6 = dst6->sin6_addr; cma_hdr->port = src6->sin6_port; cma_ip6_clear_scope_id(&cma_hdr->src_addr.ip6); cma_ip6_clear_scope_id(&cma_hdr->dst_addr.ip6); } return 0; } static int cma_sidr_rep_handler(struct ib_cm_id *cm_id, struct ib_cm_event *ib_event) { struct rdma_id_private *id_priv = cm_id->context; struct rdma_cm_event event; struct ib_cm_sidr_rep_event_param *rep = &ib_event->param.sidr_rep_rcvd; int ret = 0; mutex_lock(&id_priv->handler_mutex); if (id_priv->state != RDMA_CM_CONNECT) goto out; memset(&event, 0, sizeof event); switch (ib_event->event) { case IB_CM_SIDR_REQ_ERROR: event.event = RDMA_CM_EVENT_UNREACHABLE; event.status = -ETIMEDOUT; break; case IB_CM_SIDR_REP_RECEIVED: event.param.ud.private_data = ib_event->private_data; event.param.ud.private_data_len = IB_CM_SIDR_REP_PRIVATE_DATA_SIZE; if (rep->status != IB_SIDR_SUCCESS) { event.event = RDMA_CM_EVENT_UNREACHABLE; event.status = ib_event->param.sidr_rep_rcvd.status; break; } ret = cma_set_qkey(id_priv, rep->qkey); if (ret) { event.event = RDMA_CM_EVENT_ADDR_ERROR; event.status = ret; break; } ret = ib_init_ah_from_path(id_priv->id.device, id_priv->id.port_num, id_priv->id.route.path_rec, &event.param.ud.ah_attr); if (ret) { event.event = RDMA_CM_EVENT_ADDR_ERROR; event.status = ret; break; } event.param.ud.qp_num = rep->qpn; event.param.ud.qkey = rep->qkey; event.event = RDMA_CM_EVENT_ESTABLISHED; event.status = 0; break; default: pr_err("RDMA CMA: unexpected IB CM event: %d\n", ib_event->event); goto out; } ret = id_priv->id.event_handler(&id_priv->id, &event); if (ret) { /* Destroy the CM ID by returning a non-zero value. */ id_priv->cm_id.ib = NULL; cma_exch(id_priv, RDMA_CM_DESTROYING); mutex_unlock(&id_priv->handler_mutex); rdma_destroy_id(&id_priv->id); return ret; } out: mutex_unlock(&id_priv->handler_mutex); return ret; } static int cma_resolve_ib_udp(struct rdma_id_private *id_priv, struct rdma_conn_param *conn_param) { struct ib_cm_sidr_req_param req; struct ib_cm_id *id; void *private_data; int offset, ret; memset(&req, 0, sizeof req); offset = cma_user_data_offset(id_priv); req.private_data_len = offset + conn_param->private_data_len; if (req.private_data_len < conn_param->private_data_len) return -EINVAL; if (req.private_data_len) { private_data = kzalloc(req.private_data_len, GFP_ATOMIC); if (!private_data) return -ENOMEM; } else { private_data = NULL; } if (conn_param->private_data && conn_param->private_data_len) memcpy((char *)private_data + offset, conn_param->private_data, conn_param->private_data_len); if (private_data) { ret = cma_format_hdr(private_data, id_priv); if (ret) goto out; req.private_data = private_data; } id = ib_create_cm_id(id_priv->id.device, cma_sidr_rep_handler, id_priv); if (IS_ERR(id)) { ret = PTR_ERR(id); goto out; } id_priv->cm_id.ib = id; req.path = id_priv->id.route.path_rec; req.service_id = rdma_get_service_id(&id_priv->id, cma_dst_addr(id_priv)); req.timeout_ms = 1 << (CMA_CM_RESPONSE_TIMEOUT - 8); req.max_cm_retries = CMA_MAX_CM_RETRIES; ret = ib_send_cm_sidr_req(id_priv->cm_id.ib, &req); if (ret) { ib_destroy_cm_id(id_priv->cm_id.ib); id_priv->cm_id.ib = NULL; } out: kfree(private_data); return ret; } static int cma_connect_ib(struct rdma_id_private *id_priv, struct rdma_conn_param *conn_param) { struct ib_cm_req_param req; struct rdma_route *route; void *private_data; struct ib_cm_id *id; int offset, ret; memset(&req, 0, sizeof req); offset = cma_user_data_offset(id_priv); req.private_data_len = offset + conn_param->private_data_len; if (req.private_data_len < conn_param->private_data_len) return -EINVAL; if (req.private_data_len) { private_data = kzalloc(req.private_data_len, GFP_ATOMIC); if (!private_data) return -ENOMEM; } else { private_data = NULL; } if (conn_param->private_data && conn_param->private_data_len) memcpy((char *)private_data + offset, conn_param->private_data, conn_param->private_data_len); id = ib_create_cm_id(id_priv->id.device, cma_ib_handler, id_priv); if (IS_ERR(id)) { ret = PTR_ERR(id); goto out; } id_priv->cm_id.ib = id; route = &id_priv->id.route; if (private_data) { ret = cma_format_hdr(private_data, id_priv); if (ret) goto out; req.private_data = private_data; } req.primary_path = &route->path_rec[0]; if (route->num_paths == 2) req.alternate_path = &route->path_rec[1]; req.service_id = rdma_get_service_id(&id_priv->id, cma_dst_addr(id_priv)); req.qp_num = id_priv->qp_num; req.qp_type = id_priv->id.qp_type; req.starting_psn = id_priv->seq_num; req.responder_resources = conn_param->responder_resources; req.initiator_depth = conn_param->initiator_depth; req.flow_control = conn_param->flow_control; req.retry_count = min_t(u8, 7, conn_param->retry_count); req.rnr_retry_count = min_t(u8, 7, conn_param->rnr_retry_count); req.remote_cm_response_timeout = CMA_CM_RESPONSE_TIMEOUT; req.local_cm_response_timeout = CMA_CM_RESPONSE_TIMEOUT; req.max_cm_retries = CMA_MAX_CM_RETRIES; req.srq = id_priv->srq ? 1 : 0; ret = ib_send_cm_req(id_priv->cm_id.ib, &req); out: if (ret && !IS_ERR(id)) { ib_destroy_cm_id(id); id_priv->cm_id.ib = NULL; } kfree(private_data); return ret; } static int cma_connect_iw(struct rdma_id_private *id_priv, struct rdma_conn_param *conn_param) { struct iw_cm_id *cm_id; int ret; struct iw_cm_conn_param iw_param; cm_id = iw_create_cm_id(id_priv->id.device, cma_iw_handler, id_priv); if (IS_ERR(cm_id)) return PTR_ERR(cm_id); cm_id->tos = id_priv->tos; id_priv->cm_id.iw = cm_id; memcpy(&cm_id->local_addr, cma_src_addr(id_priv), rdma_addr_size(cma_src_addr(id_priv))); memcpy(&cm_id->remote_addr, cma_dst_addr(id_priv), rdma_addr_size(cma_dst_addr(id_priv))); ret = cma_modify_qp_rtr(id_priv, conn_param); if (ret) goto out; if (conn_param) { iw_param.ord = conn_param->initiator_depth; iw_param.ird = conn_param->responder_resources; iw_param.private_data = conn_param->private_data; iw_param.private_data_len = conn_param->private_data_len; iw_param.qpn = id_priv->id.qp ? id_priv->qp_num : conn_param->qp_num; } else { memset(&iw_param, 0, sizeof iw_param); iw_param.qpn = id_priv->qp_num; } ret = iw_cm_connect(cm_id, &iw_param); out: if (ret) { iw_destroy_cm_id(cm_id); id_priv->cm_id.iw = NULL; } return ret; } int rdma_connect(struct rdma_cm_id *id, struct rdma_conn_param *conn_param) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (!cma_comp_exch(id_priv, RDMA_CM_ROUTE_RESOLVED, RDMA_CM_CONNECT)) return -EINVAL; if (!id->qp) { id_priv->qp_num = conn_param->qp_num; id_priv->srq = conn_param->srq; } if (rdma_cap_ib_cm(id->device, id->port_num)) { if (id->qp_type == IB_QPT_UD) ret = cma_resolve_ib_udp(id_priv, conn_param); else ret = cma_connect_ib(id_priv, conn_param); } else if (rdma_cap_iw_cm(id->device, id->port_num)) ret = cma_connect_iw(id_priv, conn_param); else ret = -ENOSYS; if (ret) goto err; return 0; err: cma_comp_exch(id_priv, RDMA_CM_CONNECT, RDMA_CM_ROUTE_RESOLVED); return ret; } EXPORT_SYMBOL(rdma_connect); static int cma_accept_ib(struct rdma_id_private *id_priv, struct rdma_conn_param *conn_param) { struct ib_cm_rep_param rep; int ret; ret = cma_modify_qp_rtr(id_priv, conn_param); if (ret) goto out; ret = cma_modify_qp_rts(id_priv, conn_param); if (ret) goto out; memset(&rep, 0, sizeof rep); rep.qp_num = id_priv->qp_num; rep.starting_psn = id_priv->seq_num; rep.private_data = conn_param->private_data; rep.private_data_len = conn_param->private_data_len; rep.responder_resources = conn_param->responder_resources; rep.initiator_depth = conn_param->initiator_depth; rep.failover_accepted = 0; rep.flow_control = conn_param->flow_control; rep.rnr_retry_count = min_t(u8, 7, conn_param->rnr_retry_count); rep.srq = id_priv->srq ? 1 : 0; ret = ib_send_cm_rep(id_priv->cm_id.ib, &rep); out: return ret; } static int cma_accept_iw(struct rdma_id_private *id_priv, struct rdma_conn_param *conn_param) { struct iw_cm_conn_param iw_param; int ret; ret = cma_modify_qp_rtr(id_priv, conn_param); if (ret) return ret; iw_param.ord = conn_param->initiator_depth; iw_param.ird = conn_param->responder_resources; iw_param.private_data = conn_param->private_data; iw_param.private_data_len = conn_param->private_data_len; if (id_priv->id.qp) { iw_param.qpn = id_priv->qp_num; } else iw_param.qpn = conn_param->qp_num; return iw_cm_accept(id_priv->cm_id.iw, &iw_param); } static int cma_send_sidr_rep(struct rdma_id_private *id_priv, enum ib_cm_sidr_status status, u32 qkey, const void *private_data, int private_data_len) { struct ib_cm_sidr_rep_param rep; int ret; memset(&rep, 0, sizeof rep); rep.status = status; if (status == IB_SIDR_SUCCESS) { ret = cma_set_qkey(id_priv, qkey); if (ret) return ret; rep.qp_num = id_priv->qp_num; rep.qkey = id_priv->qkey; } rep.private_data = private_data; rep.private_data_len = private_data_len; return ib_send_cm_sidr_rep(id_priv->cm_id.ib, &rep); } int rdma_accept(struct rdma_cm_id *id, struct rdma_conn_param *conn_param) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); id_priv->owner = task_pid_nr(current); if (!cma_comp(id_priv, RDMA_CM_CONNECT)) return -EINVAL; if (!id->qp && conn_param) { id_priv->qp_num = conn_param->qp_num; id_priv->srq = conn_param->srq; } if (rdma_cap_ib_cm(id->device, id->port_num)) { if (id->qp_type == IB_QPT_UD) { if (conn_param) ret = cma_send_sidr_rep(id_priv, IB_SIDR_SUCCESS, conn_param->qkey, conn_param->private_data, conn_param->private_data_len); else ret = cma_send_sidr_rep(id_priv, IB_SIDR_SUCCESS, 0, NULL, 0); } else { if (conn_param) ret = cma_accept_ib(id_priv, conn_param); else ret = cma_rep_recv(id_priv); } } else if (rdma_cap_iw_cm(id->device, id->port_num)) ret = cma_accept_iw(id_priv, conn_param); else ret = -ENOSYS; if (ret) goto reject; return 0; reject: cma_modify_qp_err(id_priv); rdma_reject(id, NULL, 0); return ret; } EXPORT_SYMBOL(rdma_accept); int rdma_notify(struct rdma_cm_id *id, enum ib_event_type event) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (!id_priv->cm_id.ib) return -EINVAL; switch (id->device->node_type) { case RDMA_NODE_IB_CA: ret = ib_cm_notify(id_priv->cm_id.ib, event); break; default: ret = 0; break; } return ret; } EXPORT_SYMBOL(rdma_notify); int rdma_reject(struct rdma_cm_id *id, const void *private_data, u8 private_data_len) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (!id_priv->cm_id.ib) return -EINVAL; if (rdma_cap_ib_cm(id->device, id->port_num)) { if (id->qp_type == IB_QPT_UD) ret = cma_send_sidr_rep(id_priv, IB_SIDR_REJECT, 0, private_data, private_data_len); else ret = ib_send_cm_rej(id_priv->cm_id.ib, IB_CM_REJ_CONSUMER_DEFINED, NULL, 0, private_data, private_data_len); } else if (rdma_cap_iw_cm(id->device, id->port_num)) { ret = iw_cm_reject(id_priv->cm_id.iw, private_data, private_data_len); } else ret = -ENOSYS; return ret; } EXPORT_SYMBOL(rdma_reject); int rdma_disconnect(struct rdma_cm_id *id) { struct rdma_id_private *id_priv; int ret; id_priv = container_of(id, struct rdma_id_private, id); if (!id_priv->cm_id.ib) return -EINVAL; if (rdma_cap_ib_cm(id->device, id->port_num)) { ret = cma_modify_qp_err(id_priv); if (ret) goto out; /* Initiate or respond to a disconnect. */ if (ib_send_cm_dreq(id_priv->cm_id.ib, NULL, 0)) ib_send_cm_drep(id_priv->cm_id.ib, NULL, 0); } else if (rdma_cap_iw_cm(id->device, id->port_num)) { ret = iw_cm_disconnect(id_priv->cm_id.iw, 0); } else ret = -EINVAL; out: return ret; } EXPORT_SYMBOL(rdma_disconnect); static int cma_ib_mc_handler(int status, struct ib_sa_multicast *multicast) { struct rdma_id_private *id_priv; struct cma_multicast *mc = multicast->context; struct rdma_cm_event event; int ret = 0; id_priv = mc->id_priv; mutex_lock(&id_priv->handler_mutex); if (id_priv->state != RDMA_CM_ADDR_BOUND && id_priv->state != RDMA_CM_ADDR_RESOLVED) goto out; if (!status) status = cma_set_qkey(id_priv, be32_to_cpu(multicast->rec.qkey)); mutex_lock(&id_priv->qp_mutex); if (!status && id_priv->id.qp) status = ib_attach_mcast(id_priv->id.qp, &multicast->rec.mgid, be16_to_cpu(multicast->rec.mlid)); mutex_unlock(&id_priv->qp_mutex); memset(&event, 0, sizeof event); event.status = status; event.param.ud.private_data = mc->context; if (!status) { struct rdma_dev_addr *dev_addr = &id_priv->id.route.addr.dev_addr; struct net_device *ndev = dev_get_by_index(dev_addr->net, dev_addr->bound_dev_if); enum ib_gid_type gid_type = id_priv->cma_dev->default_gid_type[id_priv->id.port_num - rdma_start_port(id_priv->cma_dev->device)]; event.event = RDMA_CM_EVENT_MULTICAST_JOIN; ib_init_ah_from_mcmember(id_priv->id.device, id_priv->id.port_num, &multicast->rec, ndev, gid_type, &event.param.ud.ah_attr); event.param.ud.qp_num = 0xFFFFFF; event.param.ud.qkey = be32_to_cpu(multicast->rec.qkey); if (ndev) dev_put(ndev); } else event.event = RDMA_CM_EVENT_MULTICAST_ERROR; ret = id_priv->id.event_handler(&id_priv->id, &event); if (ret) { cma_exch(id_priv, RDMA_CM_DESTROYING); mutex_unlock(&id_priv->handler_mutex); rdma_destroy_id(&id_priv->id); return 0; } out: mutex_unlock(&id_priv->handler_mutex); return 0; } static void cma_set_mgid(struct rdma_id_private *id_priv, struct sockaddr *addr, union ib_gid *mgid) { unsigned char mc_map[MAX_ADDR_LEN]; struct rdma_dev_addr *dev_addr = &id_priv->id.route.addr.dev_addr; struct sockaddr_in *sin = (struct sockaddr_in *) addr; struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *) addr; if (cma_any_addr(addr)) { memset(mgid, 0, sizeof *mgid); } else if ((addr->sa_family == AF_INET6) && ((be32_to_cpu(sin6->sin6_addr.s6_addr32[0]) & 0xFFF0FFFF) == 0xFF10A01B)) { /* IPv6 address is an SA assigned MGID. */ memcpy(mgid, &sin6->sin6_addr, sizeof *mgid); } else if (addr->sa_family == AF_IB) { memcpy(mgid, &((struct sockaddr_ib *) addr)->sib_addr, sizeof *mgid); } else if (addr->sa_family == AF_INET6) { ipv6_ib_mc_map(&sin6->sin6_addr, dev_addr->broadcast, mc_map); if (id_priv->id.ps == RDMA_PS_UDP) mc_map[7] = 0x01; /* Use RDMA CM signature */ *mgid = *(union ib_gid *) (mc_map + 4); } else { ip_ib_mc_map(sin->sin_addr.s_addr, dev_addr->broadcast, mc_map); if (id_priv->id.ps == RDMA_PS_UDP) mc_map[7] = 0x01; /* Use RDMA CM signature */ *mgid = *(union ib_gid *) (mc_map + 4); } } static void cma_query_sa_classport_info_cb(int status, struct ib_class_port_info *rec, void *context) { struct class_port_info_context *cb_ctx = context; WARN_ON(!context); if (status || !rec) { pr_debug("RDMA CM: %s port %u failed query ClassPortInfo status: %d\n", cb_ctx->device->name, cb_ctx->port_num, status); goto out; } memcpy(cb_ctx->class_port_info, rec, sizeof(struct ib_class_port_info)); out: complete(&cb_ctx->done); } static int cma_query_sa_classport_info(struct ib_device *device, u8 port_num, struct ib_class_port_info *class_port_info) { struct class_port_info_context *cb_ctx; int ret; cb_ctx = kmalloc(sizeof(*cb_ctx), GFP_KERNEL); if (!cb_ctx) return -ENOMEM; cb_ctx->device = device; cb_ctx->class_port_info = class_port_info; cb_ctx->port_num = port_num; init_completion(&cb_ctx->done); ret = ib_sa_classport_info_rec_query(&sa_client, device, port_num, CMA_QUERY_CLASSPORT_INFO_TIMEOUT, GFP_KERNEL, cma_query_sa_classport_info_cb, cb_ctx, &cb_ctx->sa_query); if (ret < 0) { pr_err("RDMA CM: %s port %u failed to send ClassPortInfo query, ret: %d\n", device->name, port_num, ret); goto out; } wait_for_completion(&cb_ctx->done); out: kfree(cb_ctx); return ret; } static int cma_join_ib_multicast(struct rdma_id_private *id_priv, struct cma_multicast *mc) { struct ib_sa_mcmember_rec rec; struct ib_class_port_info class_port_info; struct rdma_dev_addr *dev_addr = &id_priv->id.route.addr.dev_addr; ib_sa_comp_mask comp_mask; int ret; ib_addr_get_mgid(dev_addr, &rec.mgid); ret = ib_sa_get_mcmember_rec(id_priv->id.device, id_priv->id.port_num, &rec.mgid, &rec); if (ret) return ret; ret = cma_set_qkey(id_priv, 0); if (ret) return ret; cma_set_mgid(id_priv, (struct sockaddr *) &mc->addr, &rec.mgid); rec.qkey = cpu_to_be32(id_priv->qkey); rdma_addr_get_sgid(dev_addr, &rec.port_gid); rec.pkey = cpu_to_be16(ib_addr_get_pkey(dev_addr)); rec.join_state = mc->join_state; if (rec.join_state == BIT(SENDONLY_FULLMEMBER_JOIN)) { ret = cma_query_sa_classport_info(id_priv->id.device, id_priv->id.port_num, &class_port_info); if (ret) return ret; if (!(ib_get_cpi_capmask2(&class_port_info) & IB_SA_CAP_MASK2_SENDONLY_FULL_MEM_SUPPORT)) { pr_warn("RDMA CM: %s port %u Unable to multicast join\n" "RDMA CM: SM doesn't support Send Only Full Member option\n", id_priv->id.device->name, id_priv->id.port_num); return -EOPNOTSUPP; } } comp_mask = IB_SA_MCMEMBER_REC_MGID | IB_SA_MCMEMBER_REC_PORT_GID | IB_SA_MCMEMBER_REC_PKEY | IB_SA_MCMEMBER_REC_JOIN_STATE | IB_SA_MCMEMBER_REC_QKEY | IB_SA_MCMEMBER_REC_SL | IB_SA_MCMEMBER_REC_FLOW_LABEL | IB_SA_MCMEMBER_REC_TRAFFIC_CLASS; if (id_priv->id.ps == RDMA_PS_IPOIB) comp_mask |= IB_SA_MCMEMBER_REC_RATE | IB_SA_MCMEMBER_REC_RATE_SELECTOR | IB_SA_MCMEMBER_REC_MTU_SELECTOR | IB_SA_MCMEMBER_REC_MTU | IB_SA_MCMEMBER_REC_HOP_LIMIT; mc->multicast.ib = ib_sa_join_multicast(&sa_client, id_priv->id.device, id_priv->id.port_num, &rec, comp_mask, GFP_KERNEL, cma_ib_mc_handler, mc); return PTR_ERR_OR_ZERO(mc->multicast.ib); } static void iboe_mcast_work_handler(struct work_struct *work) { struct iboe_mcast_work *mw = container_of(work, struct iboe_mcast_work, work); struct cma_multicast *mc = mw->mc; struct ib_sa_multicast *m = mc->multicast.ib; mc->multicast.ib->context = mc; cma_ib_mc_handler(0, m); kref_put(&mc->mcref, release_mc); kfree(mw); } static void cma_iboe_set_mgid(struct sockaddr *addr, union ib_gid *mgid, enum ib_gid_type gid_type) { struct sockaddr_in *sin = (struct sockaddr_in *)addr; struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)addr; if (cma_any_addr(addr)) { memset(mgid, 0, sizeof *mgid); } else if (addr->sa_family == AF_INET6) { memcpy(mgid, &sin6->sin6_addr, sizeof *mgid); } else { mgid->raw[0] = (gid_type == IB_GID_TYPE_ROCE_UDP_ENCAP) ? 0 : 0xff; mgid->raw[1] = (gid_type == IB_GID_TYPE_ROCE_UDP_ENCAP) ? 0 : 0x0e; mgid->raw[2] = 0; mgid->raw[3] = 0; mgid->raw[4] = 0; mgid->raw[5] = 0; mgid->raw[6] = 0; mgid->raw[7] = 0; mgid->raw[8] = 0; mgid->raw[9] = 0; mgid->raw[10] = 0xff; mgid->raw[11] = 0xff; *(__be32 *)(&mgid->raw[12]) = sin->sin_addr.s_addr; } } static int cma_iboe_join_multicast(struct rdma_id_private *id_priv, struct cma_multicast *mc) { struct iboe_mcast_work *work; struct rdma_dev_addr *dev_addr = &id_priv->id.route.addr.dev_addr; int err = 0; struct sockaddr *addr = (struct sockaddr *)&mc->addr; struct net_device *ndev = NULL; enum ib_gid_type gid_type; bool send_only; send_only = mc->join_state == BIT(SENDONLY_FULLMEMBER_JOIN); if (cma_zero_addr((struct sockaddr *)&mc->addr)) return -EINVAL; work = kzalloc(sizeof *work, GFP_KERNEL); if (!work) return -ENOMEM; mc->multicast.ib = kzalloc(sizeof(struct ib_sa_multicast), GFP_KERNEL); if (!mc->multicast.ib) { err = -ENOMEM; goto out1; } gid_type = id_priv->cma_dev->default_gid_type[id_priv->id.port_num - rdma_start_port(id_priv->cma_dev->device)]; cma_iboe_set_mgid(addr, &mc->multicast.ib->rec.mgid, gid_type); mc->multicast.ib->rec.pkey = cpu_to_be16(0xffff); if (id_priv->id.ps == RDMA_PS_UDP) mc->multicast.ib->rec.qkey = cpu_to_be32(RDMA_UDP_QKEY); if (dev_addr->bound_dev_if) ndev = dev_get_by_index(dev_addr->net, dev_addr->bound_dev_if); if (!ndev) { err = -ENODEV; goto out2; } mc->multicast.ib->rec.rate = iboe_get_rate(ndev); mc->multicast.ib->rec.hop_limit = 1; mc->multicast.ib->rec.mtu = iboe_get_mtu(ndev->if_mtu); if (addr->sa_family == AF_INET) { if (gid_type == IB_GID_TYPE_ROCE_UDP_ENCAP) { mc->multicast.ib->rec.hop_limit = IPV6_DEFAULT_HOPLIMIT; if (!send_only) { err = cma_igmp_send(ndev, &mc->multicast.ib->rec.mgid, true); if (!err) mc->igmp_joined = true; } } } else { if (gid_type == IB_GID_TYPE_ROCE_UDP_ENCAP) err = -ENOTSUPP; } dev_put(ndev); if (err || !mc->multicast.ib->rec.mtu) { if (!err) err = -EINVAL; goto out2; } rdma_ip2gid((struct sockaddr *)&id_priv->id.route.addr.src_addr, &mc->multicast.ib->rec.port_gid); work->id = id_priv; work->mc = mc; INIT_WORK(&work->work, iboe_mcast_work_handler); kref_get(&mc->mcref); queue_work(cma_wq, &work->work); return 0; out2: kfree(mc->multicast.ib); out1: kfree(work); return err; } int rdma_join_multicast(struct rdma_cm_id *id, struct sockaddr *addr, u8 join_state, void *context) { struct rdma_id_private *id_priv; struct cma_multicast *mc; int ret; if (!id->device) return -EINVAL; id_priv = container_of(id, struct rdma_id_private, id); if (!cma_comp(id_priv, RDMA_CM_ADDR_BOUND) && !cma_comp(id_priv, RDMA_CM_ADDR_RESOLVED)) return -EINVAL; mc = kmalloc(sizeof *mc, GFP_KERNEL); if (!mc) return -ENOMEM; memcpy(&mc->addr, addr, rdma_addr_size(addr)); mc->context = context; mc->id_priv = id_priv; mc->igmp_joined = false; mc->join_state = join_state; spin_lock(&id_priv->lock); list_add(&mc->list, &id_priv->mc_list); spin_unlock(&id_priv->lock); if (rdma_protocol_roce(id->device, id->port_num)) { kref_init(&mc->mcref); ret = cma_iboe_join_multicast(id_priv, mc); } else if (rdma_cap_ib_mcast(id->device, id->port_num)) ret = cma_join_ib_multicast(id_priv, mc); else ret = -ENOSYS; if (ret) { spin_lock_irq(&id_priv->lock); list_del(&mc->list); spin_unlock_irq(&id_priv->lock); kfree(mc); } return ret; } EXPORT_SYMBOL(rdma_join_multicast); void rdma_leave_multicast(struct rdma_cm_id *id, struct sockaddr *addr) { struct rdma_id_private *id_priv; struct cma_multicast *mc; id_priv = container_of(id, struct rdma_id_private, id); spin_lock_irq(&id_priv->lock); list_for_each_entry(mc, &id_priv->mc_list, list) { if (!memcmp(&mc->addr, addr, rdma_addr_size(addr))) { list_del(&mc->list); spin_unlock_irq(&id_priv->lock); if (id->qp) ib_detach_mcast(id->qp, &mc->multicast.ib->rec.mgid, be16_to_cpu(mc->multicast.ib->rec.mlid)); BUG_ON(id_priv->cma_dev->device != id->device); if (rdma_cap_ib_mcast(id->device, id->port_num)) { ib_sa_free_multicast(mc->multicast.ib); kfree(mc); } else if (rdma_protocol_roce(id->device, id->port_num)) { if (mc->igmp_joined) { struct rdma_dev_addr *dev_addr = &id->route.addr.dev_addr; struct net_device *ndev = NULL; if (dev_addr->bound_dev_if) ndev = dev_get_by_index(dev_addr->net, dev_addr->bound_dev_if); if (ndev) { cma_igmp_send(ndev, &mc->multicast.ib->rec.mgid, false); dev_put(ndev); } mc->igmp_joined = false; } kref_put(&mc->mcref, release_mc); } return; } } spin_unlock_irq(&id_priv->lock); } EXPORT_SYMBOL(rdma_leave_multicast); static int sysctl_cma_default_roce_mode(SYSCTL_HANDLER_ARGS) { struct cma_device *cma_dev = arg1; const int port = arg2; char buf[64]; int error; strlcpy(buf, ib_cache_gid_type_str( cma_get_default_gid_type(cma_dev, port)), sizeof(buf)); error = sysctl_handle_string(oidp, buf, sizeof(buf), req); if (error != 0 || req->newptr == NULL) goto done; error = ib_cache_gid_parse_type_str(buf); if (error < 0) { error = EINVAL; goto done; } cma_set_default_gid_type(cma_dev, port, error); error = 0; done: return (error); } static void cma_add_one(struct ib_device *device) { struct cma_device *cma_dev; struct rdma_id_private *id_priv; unsigned int i; cma_dev = kmalloc(sizeof *cma_dev, GFP_KERNEL); if (!cma_dev) return; sysctl_ctx_init(&cma_dev->sysctl_ctx); cma_dev->device = device; cma_dev->default_gid_type = kcalloc(device->phys_port_cnt, sizeof(*cma_dev->default_gid_type), GFP_KERNEL); if (!cma_dev->default_gid_type) { kfree(cma_dev); return; } for (i = rdma_start_port(device); i <= rdma_end_port(device); i++) { unsigned long supported_gids; unsigned int default_gid_type; supported_gids = roce_gid_type_mask_support(device, i); if (WARN_ON(!supported_gids)) { /* set something valid */ default_gid_type = 0; } else if (test_bit(IB_GID_TYPE_ROCE_UDP_ENCAP, &supported_gids)) { /* prefer RoCEv2, if supported */ default_gid_type = IB_GID_TYPE_ROCE_UDP_ENCAP; } else { default_gid_type = find_first_bit(&supported_gids, BITS_PER_LONG); } cma_dev->default_gid_type[i - rdma_start_port(device)] = default_gid_type; } init_completion(&cma_dev->comp); atomic_set(&cma_dev->refcount, 1); INIT_LIST_HEAD(&cma_dev->id_list); ib_set_client_data(device, &cma_client, cma_dev); mutex_lock(&lock); list_add_tail(&cma_dev->list, &dev_list); list_for_each_entry(id_priv, &listen_any_list, list) cma_listen_on_dev(id_priv, cma_dev); mutex_unlock(&lock); for (i = rdma_start_port(device); i <= rdma_end_port(device); i++) { char buf[64]; snprintf(buf, sizeof(buf), "default_roce_mode_port%d", i); (void) SYSCTL_ADD_PROC(&cma_dev->sysctl_ctx, SYSCTL_CHILDREN(device->ports_parent->parent->oidp), OID_AUTO, buf, CTLTYPE_STRING | CTLFLAG_RWTUN | CTLFLAG_MPSAFE, cma_dev, i, &sysctl_cma_default_roce_mode, "A", "Default RoCE mode. Valid values: IB/RoCE v1 and RoCE v2"); } } static int cma_remove_id_dev(struct rdma_id_private *id_priv) { struct rdma_cm_event event; enum rdma_cm_state state; int ret = 0; /* Record that we want to remove the device */ state = cma_exch(id_priv, RDMA_CM_DEVICE_REMOVAL); if (state == RDMA_CM_DESTROYING) return 0; cma_cancel_operation(id_priv, state); mutex_lock(&id_priv->handler_mutex); /* Check for destruction from another callback. */ if (!cma_comp(id_priv, RDMA_CM_DEVICE_REMOVAL)) goto out; memset(&event, 0, sizeof event); event.event = RDMA_CM_EVENT_DEVICE_REMOVAL; ret = id_priv->id.event_handler(&id_priv->id, &event); out: mutex_unlock(&id_priv->handler_mutex); return ret; } static void cma_process_remove(struct cma_device *cma_dev) { struct rdma_id_private *id_priv; int ret; mutex_lock(&lock); while (!list_empty(&cma_dev->id_list)) { id_priv = list_entry(cma_dev->id_list.next, struct rdma_id_private, list); list_del(&id_priv->listen_list); list_del_init(&id_priv->list); atomic_inc(&id_priv->refcount); mutex_unlock(&lock); ret = id_priv->internal_id ? 1 : cma_remove_id_dev(id_priv); cma_deref_id(id_priv); if (ret) rdma_destroy_id(&id_priv->id); mutex_lock(&lock); } mutex_unlock(&lock); cma_deref_dev(cma_dev); wait_for_completion(&cma_dev->comp); } static void cma_remove_one(struct ib_device *device, void *client_data) { struct cma_device *cma_dev = client_data; if (!cma_dev) return; mutex_lock(&lock); list_del(&cma_dev->list); mutex_unlock(&lock); cma_process_remove(cma_dev); sysctl_ctx_free(&cma_dev->sysctl_ctx); kfree(cma_dev->default_gid_type); kfree(cma_dev); } static void cma_init_vnet(void *arg) { struct cma_pernet *pernet = &VNET(cma_pernet); idr_init(&pernet->tcp_ps); idr_init(&pernet->udp_ps); idr_init(&pernet->ipoib_ps); idr_init(&pernet->ib_ps); } VNET_SYSINIT(cma_init_vnet, SI_SUB_OFED_MODINIT - 1, SI_ORDER_FIRST, cma_init_vnet, NULL); static void cma_destroy_vnet(void *arg) { struct cma_pernet *pernet = &VNET(cma_pernet); idr_destroy(&pernet->tcp_ps); idr_destroy(&pernet->udp_ps); idr_destroy(&pernet->ipoib_ps); idr_destroy(&pernet->ib_ps); } VNET_SYSUNINIT(cma_destroy_vnet, SI_SUB_OFED_MODINIT - 1, SI_ORDER_SECOND, cma_destroy_vnet, NULL); static int __init cma_init(void) { int ret; cma_wq = alloc_ordered_workqueue("rdma_cm", WQ_MEM_RECLAIM); if (!cma_wq) return -ENOMEM; ib_sa_register_client(&sa_client); rdma_addr_register_client(&addr_client); ret = ib_register_client(&cma_client); if (ret) goto err; cma_configfs_init(); return 0; err: rdma_addr_unregister_client(&addr_client); ib_sa_unregister_client(&sa_client); destroy_workqueue(cma_wq); return ret; } static void __exit cma_cleanup(void) { cma_configfs_exit(); ib_unregister_client(&cma_client); rdma_addr_unregister_client(&addr_client); ib_sa_unregister_client(&sa_client); destroy_workqueue(cma_wq); } module_init(cma_init); module_exit(cma_cleanup); Index: head/sys/ofed/drivers/infiniband/core/ib_uverbs_cmd.c =================================================================== --- head/sys/ofed/drivers/infiniband/core/ib_uverbs_cmd.c (revision 336382) +++ head/sys/ofed/drivers/infiniband/core/ib_uverbs_cmd.c (revision 336383) @@ -1,4279 +1,4301 @@ /*- * SPDX-License-Identifier: BSD-2-Clause OR GPL-2.0 * * Copyright (c) 2005 Topspin Communications. All rights reserved. * Copyright (c) 2005, 2006, 2007 Cisco Systems. All rights reserved. * Copyright (c) 2005 PathScale, Inc. All rights reserved. * Copyright (c) 2006 Mellanox Technologies. All rights reserved. * * This software is available to you under a choice of one of two * licenses. You may choose to be licensed under the terms of the GNU * General Public License (GPL) Version 2, available from the file * COPYING in the main directory of this source tree, or the * OpenIB.org BSD license below: * * 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. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * $FreeBSD$ */ #define LINUXKPI_PARAM_PREFIX ibcore_ #include #include #include #include #include #include #include "uverbs.h" #include "core_priv.h" #include struct uverbs_lock_class { char name[16]; }; static struct uverbs_lock_class pd_lock_class = { .name = "PD-uobj" }; static struct uverbs_lock_class mr_lock_class = { .name = "MR-uobj" }; static struct uverbs_lock_class mw_lock_class = { .name = "MW-uobj" }; static struct uverbs_lock_class cq_lock_class = { .name = "CQ-uobj" }; static struct uverbs_lock_class qp_lock_class = { .name = "QP-uobj" }; static struct uverbs_lock_class ah_lock_class = { .name = "AH-uobj" }; static struct uverbs_lock_class srq_lock_class = { .name = "SRQ-uobj" }; static struct uverbs_lock_class xrcd_lock_class = { .name = "XRCD-uobj" }; static struct uverbs_lock_class rule_lock_class = { .name = "RULE-uobj" }; static struct uverbs_lock_class wq_lock_class = { .name = "WQ-uobj" }; static struct uverbs_lock_class rwq_ind_table_lock_class = { .name = "IND_TBL-uobj" }; /* * The ib_uobject locking scheme is as follows: * * - ib_uverbs_idr_lock protects the uverbs idrs themselves, so it * needs to be held during all idr write operations. When an object is * looked up, a reference must be taken on the object's kref before * dropping this lock. For read operations, the rcu_read_lock() * and rcu_write_lock() but similarly the kref reference is grabbed * before the rcu_read_unlock(). * * - Each object also has an rwsem. This rwsem must be held for * reading while an operation that uses the object is performed. * For example, while registering an MR, the associated PD's * uobject.mutex must be held for reading. The rwsem must be held * for writing while initializing or destroying an object. * * - In addition, each object has a "live" flag. If this flag is not * set, then lookups of the object will fail even if it is found in * the idr. This handles a reader that blocks and does not acquire * the rwsem until after the object is destroyed. The destroy * operation will set the live flag to 0 and then drop the rwsem; * this will allow the reader to acquire the rwsem, see that the * live flag is 0, and then drop the rwsem and its reference to * object. The underlying storage will not be freed until the last * reference to the object is dropped. */ static void init_uobj(struct ib_uobject *uobj, u64 user_handle, struct ib_ucontext *context, struct uverbs_lock_class *c) { uobj->user_handle = user_handle; uobj->context = context; kref_init(&uobj->ref); init_rwsem(&uobj->mutex); uobj->live = 0; } static void release_uobj(struct kref *kref) { kfree_rcu(container_of(kref, struct ib_uobject, ref), rcu); } static void put_uobj(struct ib_uobject *uobj) { kref_put(&uobj->ref, release_uobj); } static void put_uobj_read(struct ib_uobject *uobj) { up_read(&uobj->mutex); put_uobj(uobj); } static void put_uobj_write(struct ib_uobject *uobj) { up_write(&uobj->mutex); put_uobj(uobj); } static int idr_add_uobj(struct idr *idr, struct ib_uobject *uobj) { int ret; idr_preload(GFP_KERNEL); spin_lock(&ib_uverbs_idr_lock); ret = idr_alloc(idr, uobj, 0, 0, GFP_NOWAIT); if (ret >= 0) uobj->id = ret; spin_unlock(&ib_uverbs_idr_lock); idr_preload_end(); return ret < 0 ? ret : 0; } void idr_remove_uobj(struct idr *idr, struct ib_uobject *uobj) { spin_lock(&ib_uverbs_idr_lock); idr_remove(idr, uobj->id); spin_unlock(&ib_uverbs_idr_lock); } static struct ib_uobject *__idr_get_uobj(struct idr *idr, int id, struct ib_ucontext *context) { struct ib_uobject *uobj; rcu_read_lock(); uobj = idr_find(idr, id); if (uobj) { if (uobj->context == context) kref_get(&uobj->ref); else uobj = NULL; } rcu_read_unlock(); return uobj; } static struct ib_uobject *idr_read_uobj(struct idr *idr, int id, struct ib_ucontext *context, int nested) { struct ib_uobject *uobj; uobj = __idr_get_uobj(idr, id, context); if (!uobj) return NULL; if (nested) down_read_nested(&uobj->mutex, SINGLE_DEPTH_NESTING); else down_read(&uobj->mutex); if (!uobj->live) { put_uobj_read(uobj); return NULL; } return uobj; } static struct ib_uobject *idr_write_uobj(struct idr *idr, int id, struct ib_ucontext *context) { struct ib_uobject *uobj; uobj = __idr_get_uobj(idr, id, context); if (!uobj) return NULL; down_write(&uobj->mutex); if (!uobj->live) { put_uobj_write(uobj); return NULL; } return uobj; } static void *idr_read_obj(struct idr *idr, int id, struct ib_ucontext *context, int nested) { struct ib_uobject *uobj; uobj = idr_read_uobj(idr, id, context, nested); return uobj ? uobj->object : NULL; } static struct ib_pd *idr_read_pd(int pd_handle, struct ib_ucontext *context) { return idr_read_obj(&ib_uverbs_pd_idr, pd_handle, context, 0); } static void put_pd_read(struct ib_pd *pd) { put_uobj_read(pd->uobject); } static struct ib_cq *idr_read_cq(int cq_handle, struct ib_ucontext *context, int nested) { return idr_read_obj(&ib_uverbs_cq_idr, cq_handle, context, nested); } static void put_cq_read(struct ib_cq *cq) { put_uobj_read(cq->uobject); } static struct ib_ah *idr_read_ah(int ah_handle, struct ib_ucontext *context) { return idr_read_obj(&ib_uverbs_ah_idr, ah_handle, context, 0); } static void put_ah_read(struct ib_ah *ah) { put_uobj_read(ah->uobject); } static struct ib_qp *idr_read_qp(int qp_handle, struct ib_ucontext *context) { return idr_read_obj(&ib_uverbs_qp_idr, qp_handle, context, 0); } static struct ib_wq *idr_read_wq(int wq_handle, struct ib_ucontext *context) { return idr_read_obj(&ib_uverbs_wq_idr, wq_handle, context, 0); } static void put_wq_read(struct ib_wq *wq) { put_uobj_read(wq->uobject); } static struct ib_rwq_ind_table *idr_read_rwq_indirection_table(int ind_table_handle, struct ib_ucontext *context) { return idr_read_obj(&ib_uverbs_rwq_ind_tbl_idr, ind_table_handle, context, 0); } static void put_rwq_indirection_table_read(struct ib_rwq_ind_table *ind_table) { put_uobj_read(ind_table->uobject); } static struct ib_qp *idr_write_qp(int qp_handle, struct ib_ucontext *context) { struct ib_uobject *uobj; uobj = idr_write_uobj(&ib_uverbs_qp_idr, qp_handle, context); return uobj ? uobj->object : NULL; } static void put_qp_read(struct ib_qp *qp) { put_uobj_read(qp->uobject); } static void put_qp_write(struct ib_qp *qp) { put_uobj_write(qp->uobject); } static struct ib_srq *idr_read_srq(int srq_handle, struct ib_ucontext *context) { return idr_read_obj(&ib_uverbs_srq_idr, srq_handle, context, 0); } static void put_srq_read(struct ib_srq *srq) { put_uobj_read(srq->uobject); } static struct ib_xrcd *idr_read_xrcd(int xrcd_handle, struct ib_ucontext *context, struct ib_uobject **uobj) { *uobj = idr_read_uobj(&ib_uverbs_xrcd_idr, xrcd_handle, context, 0); return *uobj ? (*uobj)->object : NULL; } static void put_xrcd_read(struct ib_uobject *uobj) { put_uobj_read(uobj); } ssize_t ib_uverbs_get_context(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_get_context cmd; struct ib_uverbs_get_context_resp resp; struct ib_udata udata; struct ib_ucontext *ucontext; struct file *filp; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; mutex_lock(&file->mutex); if (file->ucontext) { ret = -EINVAL; goto err; } INIT_UDATA(&udata, buf + sizeof cmd, (unsigned long) cmd.response + sizeof resp, in_len - sizeof cmd, out_len - sizeof resp); ucontext = ib_dev->alloc_ucontext(ib_dev, &udata); if (IS_ERR(ucontext)) { ret = PTR_ERR(ucontext); goto err; } ucontext->device = ib_dev; INIT_LIST_HEAD(&ucontext->pd_list); INIT_LIST_HEAD(&ucontext->mr_list); INIT_LIST_HEAD(&ucontext->mw_list); INIT_LIST_HEAD(&ucontext->cq_list); INIT_LIST_HEAD(&ucontext->qp_list); INIT_LIST_HEAD(&ucontext->srq_list); INIT_LIST_HEAD(&ucontext->ah_list); INIT_LIST_HEAD(&ucontext->wq_list); INIT_LIST_HEAD(&ucontext->rwq_ind_tbl_list); INIT_LIST_HEAD(&ucontext->xrcd_list); INIT_LIST_HEAD(&ucontext->rule_list); rcu_read_lock(); ucontext->tgid = get_pid(task_pid_group_leader(current)); rcu_read_unlock(); ucontext->closing = 0; #ifdef CONFIG_INFINIBAND_ON_DEMAND_PAGING ucontext->umem_tree = RB_ROOT; init_rwsem(&ucontext->umem_rwsem); ucontext->odp_mrs_count = 0; INIT_LIST_HEAD(&ucontext->no_private_counters); if (!(ib_dev->attrs.device_cap_flags & IB_DEVICE_ON_DEMAND_PAGING)) ucontext->invalidate_range = NULL; #endif resp.num_comp_vectors = file->device->num_comp_vectors; ret = get_unused_fd_flags(O_CLOEXEC); if (ret < 0) goto err_free; resp.async_fd = ret; filp = ib_uverbs_alloc_event_file(file, ib_dev, 1); if (IS_ERR(filp)) { ret = PTR_ERR(filp); goto err_fd; } if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) { ret = -EFAULT; goto err_file; } file->ucontext = ucontext; fd_install(resp.async_fd, filp); mutex_unlock(&file->mutex); return in_len; err_file: ib_uverbs_free_async_event_file(file); fput(filp); err_fd: put_unused_fd(resp.async_fd); err_free: put_pid(ucontext->tgid); ib_dev->dealloc_ucontext(ucontext); err: mutex_unlock(&file->mutex); return ret; } static void copy_query_dev_fields(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_uverbs_query_device_resp *resp, struct ib_device_attr *attr) { resp->fw_ver = attr->fw_ver; resp->node_guid = ib_dev->node_guid; resp->sys_image_guid = attr->sys_image_guid; resp->max_mr_size = attr->max_mr_size; resp->page_size_cap = attr->page_size_cap; resp->vendor_id = attr->vendor_id; resp->vendor_part_id = attr->vendor_part_id; resp->hw_ver = attr->hw_ver; resp->max_qp = attr->max_qp; resp->max_qp_wr = attr->max_qp_wr; resp->device_cap_flags = (u32)(attr->device_cap_flags); resp->max_sge = attr->max_sge; resp->max_sge_rd = attr->max_sge_rd; resp->max_cq = attr->max_cq; resp->max_cqe = attr->max_cqe; resp->max_mr = attr->max_mr; resp->max_pd = attr->max_pd; resp->max_qp_rd_atom = attr->max_qp_rd_atom; resp->max_ee_rd_atom = attr->max_ee_rd_atom; resp->max_res_rd_atom = attr->max_res_rd_atom; resp->max_qp_init_rd_atom = attr->max_qp_init_rd_atom; resp->max_ee_init_rd_atom = attr->max_ee_init_rd_atom; resp->atomic_cap = attr->atomic_cap; resp->max_ee = attr->max_ee; resp->max_rdd = attr->max_rdd; resp->max_mw = attr->max_mw; resp->max_raw_ipv6_qp = attr->max_raw_ipv6_qp; resp->max_raw_ethy_qp = attr->max_raw_ethy_qp; resp->max_mcast_grp = attr->max_mcast_grp; resp->max_mcast_qp_attach = attr->max_mcast_qp_attach; resp->max_total_mcast_qp_attach = attr->max_total_mcast_qp_attach; resp->max_ah = attr->max_ah; resp->max_fmr = attr->max_fmr; resp->max_map_per_fmr = attr->max_map_per_fmr; resp->max_srq = attr->max_srq; resp->max_srq_wr = attr->max_srq_wr; resp->max_srq_sge = attr->max_srq_sge; resp->max_pkeys = attr->max_pkeys; resp->local_ca_ack_delay = attr->local_ca_ack_delay; resp->phys_port_cnt = ib_dev->phys_port_cnt; } ssize_t ib_uverbs_query_device(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_query_device cmd; struct ib_uverbs_query_device_resp resp; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; memset(&resp, 0, sizeof resp); copy_query_dev_fields(file, ib_dev, &resp, &ib_dev->attrs); if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) return -EFAULT; return in_len; } ssize_t ib_uverbs_query_port(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_query_port cmd; struct ib_uverbs_query_port_resp resp; struct ib_port_attr attr; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; ret = ib_query_port(ib_dev, cmd.port_num, &attr); if (ret) return ret; memset(&resp, 0, sizeof resp); resp.state = attr.state; resp.max_mtu = attr.max_mtu; resp.active_mtu = attr.active_mtu; resp.gid_tbl_len = attr.gid_tbl_len; resp.port_cap_flags = attr.port_cap_flags; resp.max_msg_sz = attr.max_msg_sz; resp.bad_pkey_cntr = attr.bad_pkey_cntr; resp.qkey_viol_cntr = attr.qkey_viol_cntr; resp.pkey_tbl_len = attr.pkey_tbl_len; resp.lid = attr.lid; resp.sm_lid = attr.sm_lid; resp.lmc = attr.lmc; resp.max_vl_num = attr.max_vl_num; resp.sm_sl = attr.sm_sl; resp.subnet_timeout = attr.subnet_timeout; resp.init_type_reply = attr.init_type_reply; resp.active_width = attr.active_width; resp.active_speed = attr.active_speed; resp.phys_state = attr.phys_state; resp.link_layer = rdma_port_get_link_layer(ib_dev, cmd.port_num); if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) return -EFAULT; return in_len; } ssize_t ib_uverbs_alloc_pd(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_alloc_pd cmd; struct ib_uverbs_alloc_pd_resp resp; struct ib_udata udata; struct ib_uobject *uobj; struct ib_pd *pd; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; INIT_UDATA(&udata, buf + sizeof cmd, (unsigned long) cmd.response + sizeof resp, in_len - sizeof cmd, out_len - sizeof resp); uobj = kmalloc(sizeof *uobj, GFP_KERNEL); if (!uobj) return -ENOMEM; init_uobj(uobj, 0, file->ucontext, &pd_lock_class); down_write(&uobj->mutex); pd = ib_dev->alloc_pd(ib_dev, file->ucontext, &udata); if (IS_ERR(pd)) { ret = PTR_ERR(pd); goto err; } pd->device = ib_dev; pd->uobject = uobj; pd->__internal_mr = NULL; atomic_set(&pd->usecnt, 0); uobj->object = pd; ret = idr_add_uobj(&ib_uverbs_pd_idr, uobj); if (ret) goto err_idr; memset(&resp, 0, sizeof resp); resp.pd_handle = uobj->id; if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) { ret = -EFAULT; goto err_copy; } mutex_lock(&file->mutex); list_add_tail(&uobj->list, &file->ucontext->pd_list); mutex_unlock(&file->mutex); uobj->live = 1; up_write(&uobj->mutex); return in_len; err_copy: idr_remove_uobj(&ib_uverbs_pd_idr, uobj); err_idr: ib_dealloc_pd(pd); err: put_uobj_write(uobj); return ret; } ssize_t ib_uverbs_dealloc_pd(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_dealloc_pd cmd; struct ib_uobject *uobj; struct ib_pd *pd; int ret; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; uobj = idr_write_uobj(&ib_uverbs_pd_idr, cmd.pd_handle, file->ucontext); if (!uobj) return -EINVAL; pd = uobj->object; if (atomic_read(&pd->usecnt)) { ret = -EBUSY; goto err_put; } ret = pd->device->dealloc_pd(uobj->object); WARN_ONCE(ret, "Infiniband HW driver failed dealloc_pd"); if (ret) goto err_put; uobj->live = 0; put_uobj_write(uobj); idr_remove_uobj(&ib_uverbs_pd_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); put_uobj(uobj); return in_len; err_put: put_uobj_write(uobj); return ret; } struct xrcd_table_entry { struct rb_node node; struct ib_xrcd *xrcd; struct inode *inode; }; static int xrcd_table_insert(struct ib_uverbs_device *dev, struct inode *inode, struct ib_xrcd *xrcd) { struct xrcd_table_entry *entry, *scan; struct rb_node **p = &dev->xrcd_tree.rb_node; struct rb_node *parent = NULL; entry = kmalloc(sizeof *entry, GFP_KERNEL); if (!entry) return -ENOMEM; entry->xrcd = xrcd; entry->inode = inode; while (*p) { parent = *p; scan = rb_entry(parent, struct xrcd_table_entry, node); if (inode < scan->inode) { p = &(*p)->rb_left; } else if (inode > scan->inode) { p = &(*p)->rb_right; } else { kfree(entry); return -EEXIST; } } rb_link_node(&entry->node, parent, p); rb_insert_color(&entry->node, &dev->xrcd_tree); igrab(inode); return 0; } static struct xrcd_table_entry *xrcd_table_search(struct ib_uverbs_device *dev, struct inode *inode) { struct xrcd_table_entry *entry; struct rb_node *p = dev->xrcd_tree.rb_node; while (p) { entry = rb_entry(p, struct xrcd_table_entry, node); if (inode < entry->inode) p = p->rb_left; else if (inode > entry->inode) p = p->rb_right; else return entry; } return NULL; } static struct ib_xrcd *find_xrcd(struct ib_uverbs_device *dev, struct inode *inode) { struct xrcd_table_entry *entry; entry = xrcd_table_search(dev, inode); if (!entry) return NULL; return entry->xrcd; } static void xrcd_table_delete(struct ib_uverbs_device *dev, struct inode *inode) { struct xrcd_table_entry *entry; entry = xrcd_table_search(dev, inode); if (entry) { iput(inode); rb_erase(&entry->node, &dev->xrcd_tree); kfree(entry); } } ssize_t ib_uverbs_open_xrcd(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_open_xrcd cmd; struct ib_uverbs_open_xrcd_resp resp; struct ib_udata udata; struct ib_uxrcd_object *obj; struct ib_xrcd *xrcd = NULL; struct fd f = {NULL}; struct inode *inode = NULL; int ret = 0; int new_xrcd = 0; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; INIT_UDATA(&udata, buf + sizeof cmd, (unsigned long) cmd.response + sizeof resp, in_len - sizeof cmd, out_len - sizeof resp); mutex_lock(&file->device->xrcd_tree_mutex); if (cmd.fd != -1) { /* search for file descriptor */ f = fdget(cmd.fd); if (!f.file) { ret = -EBADF; goto err_tree_mutex_unlock; } inode = f.file->f_dentry->d_inode; xrcd = find_xrcd(file->device, inode); if (!xrcd && !(cmd.oflags & O_CREAT)) { /* no file descriptor. Need CREATE flag */ ret = -EAGAIN; goto err_tree_mutex_unlock; } if (xrcd && cmd.oflags & O_EXCL) { ret = -EINVAL; goto err_tree_mutex_unlock; } } obj = kmalloc(sizeof *obj, GFP_KERNEL); if (!obj) { ret = -ENOMEM; goto err_tree_mutex_unlock; } init_uobj(&obj->uobject, 0, file->ucontext, &xrcd_lock_class); down_write(&obj->uobject.mutex); if (!xrcd) { xrcd = ib_dev->alloc_xrcd(ib_dev, file->ucontext, &udata); if (IS_ERR(xrcd)) { ret = PTR_ERR(xrcd); goto err; } xrcd->inode = inode; xrcd->device = ib_dev; atomic_set(&xrcd->usecnt, 0); mutex_init(&xrcd->tgt_qp_mutex); INIT_LIST_HEAD(&xrcd->tgt_qp_list); new_xrcd = 1; } atomic_set(&obj->refcnt, 0); obj->uobject.object = xrcd; ret = idr_add_uobj(&ib_uverbs_xrcd_idr, &obj->uobject); if (ret) goto err_idr; memset(&resp, 0, sizeof resp); resp.xrcd_handle = obj->uobject.id; if (inode) { if (new_xrcd) { /* create new inode/xrcd table entry */ ret = xrcd_table_insert(file->device, inode, xrcd); if (ret) goto err_insert_xrcd; } atomic_inc(&xrcd->usecnt); } if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) { ret = -EFAULT; goto err_copy; } if (f.file) fdput(f); mutex_lock(&file->mutex); list_add_tail(&obj->uobject.list, &file->ucontext->xrcd_list); mutex_unlock(&file->mutex); obj->uobject.live = 1; up_write(&obj->uobject.mutex); mutex_unlock(&file->device->xrcd_tree_mutex); return in_len; err_copy: if (inode) { if (new_xrcd) xrcd_table_delete(file->device, inode); atomic_dec(&xrcd->usecnt); } err_insert_xrcd: idr_remove_uobj(&ib_uverbs_xrcd_idr, &obj->uobject); err_idr: ib_dealloc_xrcd(xrcd); err: put_uobj_write(&obj->uobject); err_tree_mutex_unlock: if (f.file) fdput(f); mutex_unlock(&file->device->xrcd_tree_mutex); return ret; } ssize_t ib_uverbs_close_xrcd(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_close_xrcd cmd; struct ib_uobject *uobj; struct ib_xrcd *xrcd = NULL; struct inode *inode = NULL; struct ib_uxrcd_object *obj; int live; int ret = 0; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; mutex_lock(&file->device->xrcd_tree_mutex); uobj = idr_write_uobj(&ib_uverbs_xrcd_idr, cmd.xrcd_handle, file->ucontext); if (!uobj) { ret = -EINVAL; goto out; } xrcd = uobj->object; inode = xrcd->inode; obj = container_of(uobj, struct ib_uxrcd_object, uobject); if (atomic_read(&obj->refcnt)) { put_uobj_write(uobj); ret = -EBUSY; goto out; } if (!inode || atomic_dec_and_test(&xrcd->usecnt)) { ret = ib_dealloc_xrcd(uobj->object); if (!ret) uobj->live = 0; } live = uobj->live; if (inode && ret) atomic_inc(&xrcd->usecnt); put_uobj_write(uobj); if (ret) goto out; if (inode && !live) xrcd_table_delete(file->device, inode); idr_remove_uobj(&ib_uverbs_xrcd_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); put_uobj(uobj); ret = in_len; out: mutex_unlock(&file->device->xrcd_tree_mutex); return ret; } void ib_uverbs_dealloc_xrcd(struct ib_uverbs_device *dev, struct ib_xrcd *xrcd) { struct inode *inode; inode = xrcd->inode; if (inode && !atomic_dec_and_test(&xrcd->usecnt)) return; ib_dealloc_xrcd(xrcd); if (inode) xrcd_table_delete(dev, inode); } ssize_t ib_uverbs_reg_mr(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_reg_mr cmd; struct ib_uverbs_reg_mr_resp resp; struct ib_udata udata; struct ib_uobject *uobj; struct ib_pd *pd; struct ib_mr *mr; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; INIT_UDATA(&udata, buf + sizeof cmd, (unsigned long) cmd.response + sizeof resp, in_len - sizeof cmd, out_len - sizeof resp); if ((cmd.start & ~PAGE_MASK) != (cmd.hca_va & ~PAGE_MASK)) return -EINVAL; ret = ib_check_mr_access(cmd.access_flags); if (ret) return ret; uobj = kmalloc(sizeof *uobj, GFP_KERNEL); if (!uobj) return -ENOMEM; init_uobj(uobj, 0, file->ucontext, &mr_lock_class); down_write(&uobj->mutex); pd = idr_read_pd(cmd.pd_handle, file->ucontext); if (!pd) { ret = -EINVAL; goto err_free; } if (cmd.access_flags & IB_ACCESS_ON_DEMAND) { if (!(pd->device->attrs.device_cap_flags & IB_DEVICE_ON_DEMAND_PAGING)) { pr_debug("ODP support not available\n"); ret = -EINVAL; goto err_put; } } mr = pd->device->reg_user_mr(pd, cmd.start, cmd.length, cmd.hca_va, cmd.access_flags, &udata); if (IS_ERR(mr)) { ret = PTR_ERR(mr); goto err_put; } mr->device = pd->device; mr->pd = pd; mr->uobject = uobj; atomic_inc(&pd->usecnt); uobj->object = mr; ret = idr_add_uobj(&ib_uverbs_mr_idr, uobj); if (ret) goto err_unreg; memset(&resp, 0, sizeof resp); resp.lkey = mr->lkey; resp.rkey = mr->rkey; resp.mr_handle = uobj->id; if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) { ret = -EFAULT; goto err_copy; } put_pd_read(pd); mutex_lock(&file->mutex); list_add_tail(&uobj->list, &file->ucontext->mr_list); mutex_unlock(&file->mutex); uobj->live = 1; up_write(&uobj->mutex); return in_len; err_copy: idr_remove_uobj(&ib_uverbs_mr_idr, uobj); err_unreg: ib_dereg_mr(mr); err_put: put_pd_read(pd); err_free: put_uobj_write(uobj); return ret; } ssize_t ib_uverbs_rereg_mr(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_rereg_mr cmd; struct ib_uverbs_rereg_mr_resp resp; struct ib_udata udata; struct ib_pd *pd = NULL; struct ib_mr *mr; struct ib_pd *old_pd; int ret; struct ib_uobject *uobj; if (out_len < sizeof(resp)) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof(cmd))) return -EFAULT; INIT_UDATA(&udata, buf + sizeof(cmd), (unsigned long) cmd.response + sizeof(resp), in_len - sizeof(cmd), out_len - sizeof(resp)); if (cmd.flags & ~IB_MR_REREG_SUPPORTED || !cmd.flags) return -EINVAL; if ((cmd.flags & IB_MR_REREG_TRANS) && (!cmd.start || !cmd.hca_va || 0 >= cmd.length || (cmd.start & ~PAGE_MASK) != (cmd.hca_va & ~PAGE_MASK))) return -EINVAL; uobj = idr_write_uobj(&ib_uverbs_mr_idr, cmd.mr_handle, file->ucontext); if (!uobj) return -EINVAL; mr = uobj->object; if (cmd.flags & IB_MR_REREG_ACCESS) { ret = ib_check_mr_access(cmd.access_flags); if (ret) goto put_uobjs; } if (cmd.flags & IB_MR_REREG_PD) { pd = idr_read_pd(cmd.pd_handle, file->ucontext); if (!pd) { ret = -EINVAL; goto put_uobjs; } } old_pd = mr->pd; ret = mr->device->rereg_user_mr(mr, cmd.flags, cmd.start, cmd.length, cmd.hca_va, cmd.access_flags, pd, &udata); if (!ret) { if (cmd.flags & IB_MR_REREG_PD) { atomic_inc(&pd->usecnt); mr->pd = pd; atomic_dec(&old_pd->usecnt); } } else { goto put_uobj_pd; } memset(&resp, 0, sizeof(resp)); resp.lkey = mr->lkey; resp.rkey = mr->rkey; if (copy_to_user((void __user *)(unsigned long)cmd.response, &resp, sizeof(resp))) ret = -EFAULT; else ret = in_len; put_uobj_pd: if (cmd.flags & IB_MR_REREG_PD) put_pd_read(pd); put_uobjs: put_uobj_write(mr->uobject); return ret; } ssize_t ib_uverbs_dereg_mr(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_dereg_mr cmd; struct ib_mr *mr; struct ib_uobject *uobj; int ret = -EINVAL; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; uobj = idr_write_uobj(&ib_uverbs_mr_idr, cmd.mr_handle, file->ucontext); if (!uobj) return -EINVAL; mr = uobj->object; ret = ib_dereg_mr(mr); if (!ret) uobj->live = 0; put_uobj_write(uobj); if (ret) return ret; idr_remove_uobj(&ib_uverbs_mr_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); put_uobj(uobj); return in_len; } ssize_t ib_uverbs_alloc_mw(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_alloc_mw cmd; struct ib_uverbs_alloc_mw_resp resp; struct ib_uobject *uobj; struct ib_pd *pd; struct ib_mw *mw; struct ib_udata udata; int ret; if (out_len < sizeof(resp)) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof(cmd))) return -EFAULT; uobj = kmalloc(sizeof(*uobj), GFP_KERNEL); if (!uobj) return -ENOMEM; init_uobj(uobj, 0, file->ucontext, &mw_lock_class); down_write(&uobj->mutex); pd = idr_read_pd(cmd.pd_handle, file->ucontext); if (!pd) { ret = -EINVAL; goto err_free; } INIT_UDATA(&udata, buf + sizeof(cmd), (unsigned long)cmd.response + sizeof(resp), in_len - sizeof(cmd) - sizeof(struct ib_uverbs_cmd_hdr), out_len - sizeof(resp)); mw = pd->device->alloc_mw(pd, cmd.mw_type, &udata); if (IS_ERR(mw)) { ret = PTR_ERR(mw); goto err_put; } mw->device = pd->device; mw->pd = pd; mw->uobject = uobj; atomic_inc(&pd->usecnt); uobj->object = mw; ret = idr_add_uobj(&ib_uverbs_mw_idr, uobj); if (ret) goto err_unalloc; memset(&resp, 0, sizeof(resp)); resp.rkey = mw->rkey; resp.mw_handle = uobj->id; if (copy_to_user((void __user *)(unsigned long)cmd.response, &resp, sizeof(resp))) { ret = -EFAULT; goto err_copy; } put_pd_read(pd); mutex_lock(&file->mutex); list_add_tail(&uobj->list, &file->ucontext->mw_list); mutex_unlock(&file->mutex); uobj->live = 1; up_write(&uobj->mutex); return in_len; err_copy: idr_remove_uobj(&ib_uverbs_mw_idr, uobj); err_unalloc: uverbs_dealloc_mw(mw); err_put: put_pd_read(pd); err_free: put_uobj_write(uobj); return ret; } ssize_t ib_uverbs_dealloc_mw(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_dealloc_mw cmd; struct ib_mw *mw; struct ib_uobject *uobj; int ret = -EINVAL; if (copy_from_user(&cmd, buf, sizeof(cmd))) return -EFAULT; uobj = idr_write_uobj(&ib_uverbs_mw_idr, cmd.mw_handle, file->ucontext); if (!uobj) return -EINVAL; mw = uobj->object; ret = uverbs_dealloc_mw(mw); if (!ret) uobj->live = 0; put_uobj_write(uobj); if (ret) return ret; idr_remove_uobj(&ib_uverbs_mw_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); put_uobj(uobj); return in_len; } ssize_t ib_uverbs_create_comp_channel(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_create_comp_channel cmd; struct ib_uverbs_create_comp_channel_resp resp; struct file *filp; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; ret = get_unused_fd_flags(O_CLOEXEC); if (ret < 0) return ret; resp.fd = ret; filp = ib_uverbs_alloc_event_file(file, ib_dev, 0); if (IS_ERR(filp)) { put_unused_fd(resp.fd); return PTR_ERR(filp); } if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) { put_unused_fd(resp.fd); fput(filp); return -EFAULT; } fd_install(resp.fd, filp); return in_len; } static struct ib_ucq_object *create_cq(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw, struct ib_uverbs_ex_create_cq *cmd, size_t cmd_sz, int (*cb)(struct ib_uverbs_file *file, struct ib_ucq_object *obj, struct ib_uverbs_ex_create_cq_resp *resp, struct ib_udata *udata, void *context), void *context) { struct ib_ucq_object *obj; struct ib_uverbs_event_file *ev_file = NULL; struct ib_cq *cq; int ret; struct ib_uverbs_ex_create_cq_resp resp; struct ib_cq_init_attr attr = {}; if (cmd->comp_vector >= file->device->num_comp_vectors) return ERR_PTR(-EINVAL); obj = kmalloc(sizeof *obj, GFP_KERNEL); if (!obj) return ERR_PTR(-ENOMEM); init_uobj(&obj->uobject, cmd->user_handle, file->ucontext, &cq_lock_class); down_write(&obj->uobject.mutex); if (cmd->comp_channel >= 0) { ev_file = ib_uverbs_lookup_comp_file(cmd->comp_channel); if (!ev_file) { ret = -EINVAL; goto err; } } obj->uverbs_file = file; obj->comp_events_reported = 0; obj->async_events_reported = 0; INIT_LIST_HEAD(&obj->comp_list); INIT_LIST_HEAD(&obj->async_list); attr.cqe = cmd->cqe; attr.comp_vector = cmd->comp_vector; if (cmd_sz > offsetof(typeof(*cmd), flags) + sizeof(cmd->flags)) attr.flags = cmd->flags; cq = ib_dev->create_cq(ib_dev, &attr, file->ucontext, uhw); if (IS_ERR(cq)) { ret = PTR_ERR(cq); goto err_file; } cq->device = ib_dev; cq->uobject = &obj->uobject; cq->comp_handler = ib_uverbs_comp_handler; cq->event_handler = ib_uverbs_cq_event_handler; cq->cq_context = ev_file; atomic_set(&cq->usecnt, 0); obj->uobject.object = cq; ret = idr_add_uobj(&ib_uverbs_cq_idr, &obj->uobject); if (ret) goto err_free; memset(&resp, 0, sizeof resp); resp.base.cq_handle = obj->uobject.id; resp.base.cqe = cq->cqe; resp.response_length = offsetof(typeof(resp), response_length) + sizeof(resp.response_length); ret = cb(file, obj, &resp, ucore, context); if (ret) goto err_cb; mutex_lock(&file->mutex); list_add_tail(&obj->uobject.list, &file->ucontext->cq_list); mutex_unlock(&file->mutex); obj->uobject.live = 1; up_write(&obj->uobject.mutex); return obj; err_cb: idr_remove_uobj(&ib_uverbs_cq_idr, &obj->uobject); err_free: ib_destroy_cq(cq); err_file: if (ev_file) ib_uverbs_release_ucq(file, ev_file, obj); err: put_uobj_write(&obj->uobject); return ERR_PTR(ret); } static int ib_uverbs_create_cq_cb(struct ib_uverbs_file *file, struct ib_ucq_object *obj, struct ib_uverbs_ex_create_cq_resp *resp, struct ib_udata *ucore, void *context) { if (ib_copy_to_udata(ucore, &resp->base, sizeof(resp->base))) return -EFAULT; return 0; } ssize_t ib_uverbs_create_cq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_create_cq cmd; struct ib_uverbs_ex_create_cq cmd_ex; struct ib_uverbs_create_cq_resp resp; struct ib_udata ucore; struct ib_udata uhw; struct ib_ucq_object *obj; if (out_len < sizeof(resp)) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof(cmd))) return -EFAULT; INIT_UDATA(&ucore, buf, (unsigned long)cmd.response, sizeof(cmd), sizeof(resp)); INIT_UDATA(&uhw, buf + sizeof(cmd), (unsigned long)cmd.response + sizeof(resp), in_len - sizeof(cmd), out_len - sizeof(resp)); memset(&cmd_ex, 0, sizeof(cmd_ex)); cmd_ex.user_handle = cmd.user_handle; cmd_ex.cqe = cmd.cqe; cmd_ex.comp_vector = cmd.comp_vector; cmd_ex.comp_channel = cmd.comp_channel; obj = create_cq(file, ib_dev, &ucore, &uhw, &cmd_ex, offsetof(typeof(cmd_ex), comp_channel) + sizeof(cmd.comp_channel), ib_uverbs_create_cq_cb, NULL); if (IS_ERR(obj)) return PTR_ERR(obj); return in_len; } static int ib_uverbs_ex_create_cq_cb(struct ib_uverbs_file *file, struct ib_ucq_object *obj, struct ib_uverbs_ex_create_cq_resp *resp, struct ib_udata *ucore, void *context) { if (ib_copy_to_udata(ucore, resp, resp->response_length)) return -EFAULT; return 0; } int ib_uverbs_ex_create_cq(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_ex_create_cq_resp resp; struct ib_uverbs_ex_create_cq cmd; struct ib_ucq_object *obj; int err; if (ucore->inlen < sizeof(cmd)) return -EINVAL; err = ib_copy_from_udata(&cmd, ucore, sizeof(cmd)); if (err) return err; if (cmd.comp_mask) return -EINVAL; if (cmd.reserved) return -EINVAL; if (ucore->outlen < (offsetof(typeof(resp), response_length) + sizeof(resp.response_length))) return -ENOSPC; obj = create_cq(file, ib_dev, ucore, uhw, &cmd, min(ucore->inlen, sizeof(cmd)), ib_uverbs_ex_create_cq_cb, NULL); if (IS_ERR(obj)) return PTR_ERR(obj); return 0; } ssize_t ib_uverbs_resize_cq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_resize_cq cmd; struct ib_uverbs_resize_cq_resp resp; struct ib_udata udata; struct ib_cq *cq; int ret = -EINVAL; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; INIT_UDATA(&udata, buf + sizeof cmd, (unsigned long) cmd.response + sizeof resp, in_len - sizeof cmd, out_len - sizeof resp); cq = idr_read_cq(cmd.cq_handle, file->ucontext, 0); if (!cq) return -EINVAL; ret = cq->device->resize_cq(cq, cmd.cqe, &udata); if (ret) goto out; resp.cqe = cq->cqe; if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp.cqe)) ret = -EFAULT; out: put_cq_read(cq); return ret ? ret : in_len; } static int copy_wc_to_user(void __user *dest, struct ib_wc *wc) { struct ib_uverbs_wc tmp; tmp.wr_id = wc->wr_id; tmp.status = wc->status; tmp.opcode = wc->opcode; tmp.vendor_err = wc->vendor_err; tmp.byte_len = wc->byte_len; tmp.ex.imm_data = (__u32 __force) wc->ex.imm_data; tmp.qp_num = wc->qp->qp_num; tmp.src_qp = wc->src_qp; tmp.wc_flags = wc->wc_flags; tmp.pkey_index = wc->pkey_index; tmp.slid = wc->slid; tmp.sl = wc->sl; tmp.dlid_path_bits = wc->dlid_path_bits; tmp.port_num = wc->port_num; tmp.reserved = 0; if (copy_to_user(dest, &tmp, sizeof tmp)) return -EFAULT; return 0; } ssize_t ib_uverbs_poll_cq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_poll_cq cmd; struct ib_uverbs_poll_cq_resp resp; u8 __user *header_ptr; u8 __user *data_ptr; struct ib_cq *cq; struct ib_wc wc; int ret; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; cq = idr_read_cq(cmd.cq_handle, file->ucontext, 0); if (!cq) return -EINVAL; /* we copy a struct ib_uverbs_poll_cq_resp to user space */ header_ptr = (void __user *)(unsigned long) cmd.response; data_ptr = header_ptr + sizeof resp; memset(&resp, 0, sizeof resp); while (resp.count < cmd.ne) { ret = ib_poll_cq(cq, 1, &wc); if (ret < 0) goto out_put; if (!ret) break; ret = copy_wc_to_user(data_ptr, &wc); if (ret) goto out_put; data_ptr += sizeof(struct ib_uverbs_wc); ++resp.count; } if (copy_to_user(header_ptr, &resp, sizeof resp)) { ret = -EFAULT; goto out_put; } ret = in_len; out_put: put_cq_read(cq); return ret; } ssize_t ib_uverbs_req_notify_cq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_req_notify_cq cmd; struct ib_cq *cq; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; cq = idr_read_cq(cmd.cq_handle, file->ucontext, 0); if (!cq) return -EINVAL; ib_req_notify_cq(cq, cmd.solicited_only ? IB_CQ_SOLICITED : IB_CQ_NEXT_COMP); put_cq_read(cq); return in_len; } ssize_t ib_uverbs_destroy_cq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_destroy_cq cmd; struct ib_uverbs_destroy_cq_resp resp; struct ib_uobject *uobj; struct ib_cq *cq; struct ib_ucq_object *obj; struct ib_uverbs_event_file *ev_file; int ret = -EINVAL; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; uobj = idr_write_uobj(&ib_uverbs_cq_idr, cmd.cq_handle, file->ucontext); if (!uobj) return -EINVAL; cq = uobj->object; ev_file = cq->cq_context; obj = container_of(cq->uobject, struct ib_ucq_object, uobject); ret = ib_destroy_cq(cq); if (!ret) uobj->live = 0; put_uobj_write(uobj); if (ret) return ret; idr_remove_uobj(&ib_uverbs_cq_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); ib_uverbs_release_ucq(file, ev_file, obj); memset(&resp, 0, sizeof resp); resp.comp_events_reported = obj->comp_events_reported; resp.async_events_reported = obj->async_events_reported; put_uobj(uobj); if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) return -EFAULT; return in_len; } static int create_qp(struct ib_uverbs_file *file, struct ib_udata *ucore, struct ib_udata *uhw, struct ib_uverbs_ex_create_qp *cmd, size_t cmd_sz, int (*cb)(struct ib_uverbs_file *file, struct ib_uverbs_ex_create_qp_resp *resp, struct ib_udata *udata), void *context) { struct ib_uqp_object *obj; struct ib_device *device; struct ib_pd *pd = NULL; struct ib_xrcd *xrcd = NULL; struct ib_uobject *uninitialized_var(xrcd_uobj); struct ib_cq *scq = NULL, *rcq = NULL; struct ib_srq *srq = NULL; struct ib_qp *qp; char *buf; struct ib_qp_init_attr attr = {}; struct ib_uverbs_ex_create_qp_resp resp; int ret; struct ib_rwq_ind_table *ind_tbl = NULL; bool has_sq = true; if (cmd->qp_type == IB_QPT_RAW_PACKET && priv_check(curthread, PRIV_NET_RAW) != 0) return -EPERM; obj = kzalloc(sizeof *obj, GFP_KERNEL); if (!obj) return -ENOMEM; init_uobj(&obj->uevent.uobject, cmd->user_handle, file->ucontext, &qp_lock_class); mutex_init(&obj->mcast_lock); down_write(&obj->uevent.uobject.mutex); if (cmd_sz >= offsetof(typeof(*cmd), rwq_ind_tbl_handle) + sizeof(cmd->rwq_ind_tbl_handle) && (cmd->comp_mask & IB_UVERBS_CREATE_QP_MASK_IND_TABLE)) { ind_tbl = idr_read_rwq_indirection_table(cmd->rwq_ind_tbl_handle, file->ucontext); if (!ind_tbl) { ret = -EINVAL; goto err_put; } attr.rwq_ind_tbl = ind_tbl; } if ((cmd_sz >= offsetof(typeof(*cmd), reserved1) + sizeof(cmd->reserved1)) && cmd->reserved1) { ret = -EOPNOTSUPP; goto err_put; } if (ind_tbl && (cmd->max_recv_wr || cmd->max_recv_sge || cmd->is_srq)) { ret = -EINVAL; goto err_put; } if (ind_tbl && !cmd->max_send_wr) has_sq = false; if (cmd->qp_type == IB_QPT_XRC_TGT) { xrcd = idr_read_xrcd(cmd->pd_handle, file->ucontext, &xrcd_uobj); if (!xrcd) { ret = -EINVAL; goto err_put; } device = xrcd->device; } else { if (cmd->qp_type == IB_QPT_XRC_INI) { cmd->max_recv_wr = 0; cmd->max_recv_sge = 0; } else { if (cmd->is_srq) { srq = idr_read_srq(cmd->srq_handle, file->ucontext); if (!srq || srq->srq_type != IB_SRQT_BASIC) { ret = -EINVAL; goto err_put; } } if (!ind_tbl) { if (cmd->recv_cq_handle != cmd->send_cq_handle) { rcq = idr_read_cq(cmd->recv_cq_handle, file->ucontext, 0); if (!rcq) { ret = -EINVAL; goto err_put; } } } } if (has_sq) scq = idr_read_cq(cmd->send_cq_handle, file->ucontext, !!rcq); if (!ind_tbl) rcq = rcq ?: scq; pd = idr_read_pd(cmd->pd_handle, file->ucontext); if (!pd || (!scq && has_sq)) { ret = -EINVAL; goto err_put; } device = pd->device; } attr.event_handler = ib_uverbs_qp_event_handler; attr.qp_context = file; attr.send_cq = scq; attr.recv_cq = rcq; attr.srq = srq; attr.xrcd = xrcd; attr.sq_sig_type = cmd->sq_sig_all ? IB_SIGNAL_ALL_WR : IB_SIGNAL_REQ_WR; attr.qp_type = cmd->qp_type; attr.create_flags = 0; attr.cap.max_send_wr = cmd->max_send_wr; attr.cap.max_recv_wr = cmd->max_recv_wr; attr.cap.max_send_sge = cmd->max_send_sge; attr.cap.max_recv_sge = cmd->max_recv_sge; attr.cap.max_inline_data = cmd->max_inline_data; obj->uevent.events_reported = 0; INIT_LIST_HEAD(&obj->uevent.event_list); INIT_LIST_HEAD(&obj->mcast_list); if (cmd_sz >= offsetof(typeof(*cmd), create_flags) + sizeof(cmd->create_flags)) attr.create_flags = cmd->create_flags; if (attr.create_flags & ~(IB_QP_CREATE_BLOCK_MULTICAST_LOOPBACK | IB_QP_CREATE_CROSS_CHANNEL | IB_QP_CREATE_MANAGED_SEND | IB_QP_CREATE_MANAGED_RECV | IB_QP_CREATE_SCATTER_FCS)) { ret = -EINVAL; goto err_put; } buf = (char *)cmd + sizeof(*cmd); if (cmd_sz > sizeof(*cmd)) if (!(buf[0] == 0 && !memcmp(buf, buf + 1, cmd_sz - sizeof(*cmd) - 1))) { ret = -EINVAL; goto err_put; } if (cmd->qp_type == IB_QPT_XRC_TGT) qp = ib_create_qp(pd, &attr); else qp = device->create_qp(pd, &attr, uhw); if (IS_ERR(qp)) { ret = PTR_ERR(qp); goto err_put; } if (cmd->qp_type != IB_QPT_XRC_TGT) { qp->real_qp = qp; qp->device = device; qp->pd = pd; qp->send_cq = attr.send_cq; qp->recv_cq = attr.recv_cq; qp->srq = attr.srq; qp->rwq_ind_tbl = ind_tbl; qp->event_handler = attr.event_handler; qp->qp_context = attr.qp_context; qp->qp_type = attr.qp_type; atomic_set(&qp->usecnt, 0); atomic_inc(&pd->usecnt); if (attr.send_cq) atomic_inc(&attr.send_cq->usecnt); if (attr.recv_cq) atomic_inc(&attr.recv_cq->usecnt); if (attr.srq) atomic_inc(&attr.srq->usecnt); if (ind_tbl) atomic_inc(&ind_tbl->usecnt); } else { /* It is done in _ib_create_qp for other QP types */ qp->uobject = &obj->uevent.uobject; } qp->uobject = &obj->uevent.uobject; obj->uevent.uobject.object = qp; ret = idr_add_uobj(&ib_uverbs_qp_idr, &obj->uevent.uobject); if (ret) goto err_destroy; memset(&resp, 0, sizeof resp); resp.base.qpn = qp->qp_num; resp.base.qp_handle = obj->uevent.uobject.id; resp.base.max_recv_sge = attr.cap.max_recv_sge; resp.base.max_send_sge = attr.cap.max_send_sge; resp.base.max_recv_wr = attr.cap.max_recv_wr; resp.base.max_send_wr = attr.cap.max_send_wr; resp.base.max_inline_data = attr.cap.max_inline_data; resp.response_length = offsetof(typeof(resp), response_length) + sizeof(resp.response_length); ret = cb(file, &resp, ucore); if (ret) goto err_cb; if (xrcd) { obj->uxrcd = container_of(xrcd_uobj, struct ib_uxrcd_object, uobject); atomic_inc(&obj->uxrcd->refcnt); put_xrcd_read(xrcd_uobj); } if (pd) put_pd_read(pd); if (scq) put_cq_read(scq); if (rcq && rcq != scq) put_cq_read(rcq); if (srq) put_srq_read(srq); if (ind_tbl) put_rwq_indirection_table_read(ind_tbl); mutex_lock(&file->mutex); list_add_tail(&obj->uevent.uobject.list, &file->ucontext->qp_list); mutex_unlock(&file->mutex); obj->uevent.uobject.live = 1; up_write(&obj->uevent.uobject.mutex); return 0; err_cb: idr_remove_uobj(&ib_uverbs_qp_idr, &obj->uevent.uobject); err_destroy: ib_destroy_qp(qp); err_put: if (xrcd) put_xrcd_read(xrcd_uobj); if (pd) put_pd_read(pd); if (scq) put_cq_read(scq); if (rcq && rcq != scq) put_cq_read(rcq); if (srq) put_srq_read(srq); if (ind_tbl) put_rwq_indirection_table_read(ind_tbl); put_uobj_write(&obj->uevent.uobject); return ret; } static int ib_uverbs_create_qp_cb(struct ib_uverbs_file *file, struct ib_uverbs_ex_create_qp_resp *resp, struct ib_udata *ucore) { if (ib_copy_to_udata(ucore, &resp->base, sizeof(resp->base))) return -EFAULT; return 0; } ssize_t ib_uverbs_create_qp(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_create_qp cmd; struct ib_uverbs_ex_create_qp cmd_ex; struct ib_udata ucore; struct ib_udata uhw; ssize_t resp_size = sizeof(struct ib_uverbs_create_qp_resp); int err; if (out_len < resp_size) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof(cmd))) return -EFAULT; INIT_UDATA(&ucore, buf, (unsigned long)cmd.response, sizeof(cmd), resp_size); INIT_UDATA(&uhw, buf + sizeof(cmd), (unsigned long)cmd.response + resp_size, in_len - sizeof(cmd) - sizeof(struct ib_uverbs_cmd_hdr), out_len - resp_size); memset(&cmd_ex, 0, sizeof(cmd_ex)); cmd_ex.user_handle = cmd.user_handle; cmd_ex.pd_handle = cmd.pd_handle; cmd_ex.send_cq_handle = cmd.send_cq_handle; cmd_ex.recv_cq_handle = cmd.recv_cq_handle; cmd_ex.srq_handle = cmd.srq_handle; cmd_ex.max_send_wr = cmd.max_send_wr; cmd_ex.max_recv_wr = cmd.max_recv_wr; cmd_ex.max_send_sge = cmd.max_send_sge; cmd_ex.max_recv_sge = cmd.max_recv_sge; cmd_ex.max_inline_data = cmd.max_inline_data; cmd_ex.sq_sig_all = cmd.sq_sig_all; cmd_ex.qp_type = cmd.qp_type; cmd_ex.is_srq = cmd.is_srq; err = create_qp(file, &ucore, &uhw, &cmd_ex, offsetof(typeof(cmd_ex), is_srq) + sizeof(cmd.is_srq), ib_uverbs_create_qp_cb, NULL); if (err) return err; return in_len; } static int ib_uverbs_ex_create_qp_cb(struct ib_uverbs_file *file, struct ib_uverbs_ex_create_qp_resp *resp, struct ib_udata *ucore) { if (ib_copy_to_udata(ucore, resp, resp->response_length)) return -EFAULT; return 0; } int ib_uverbs_ex_create_qp(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_ex_create_qp_resp resp; struct ib_uverbs_ex_create_qp cmd = {0}; int err; if (ucore->inlen < (offsetof(typeof(cmd), comp_mask) + sizeof(cmd.comp_mask))) return -EINVAL; err = ib_copy_from_udata(&cmd, ucore, min(sizeof(cmd), ucore->inlen)); if (err) return err; if (cmd.comp_mask & ~IB_UVERBS_CREATE_QP_SUP_COMP_MASK) return -EINVAL; if (cmd.reserved) return -EINVAL; if (ucore->outlen < (offsetof(typeof(resp), response_length) + sizeof(resp.response_length))) return -ENOSPC; err = create_qp(file, ucore, uhw, &cmd, min(ucore->inlen, sizeof(cmd)), ib_uverbs_ex_create_qp_cb, NULL); if (err) return err; return 0; } ssize_t ib_uverbs_open_qp(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_open_qp cmd; struct ib_uverbs_create_qp_resp resp; struct ib_udata udata; struct ib_uqp_object *obj; struct ib_xrcd *xrcd; struct ib_uobject *uninitialized_var(xrcd_uobj); struct ib_qp *qp; struct ib_qp_open_attr attr; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; INIT_UDATA(&udata, buf + sizeof cmd, (unsigned long) cmd.response + sizeof resp, in_len - sizeof cmd, out_len - sizeof resp); obj = kmalloc(sizeof *obj, GFP_KERNEL); if (!obj) return -ENOMEM; init_uobj(&obj->uevent.uobject, cmd.user_handle, file->ucontext, &qp_lock_class); down_write(&obj->uevent.uobject.mutex); xrcd = idr_read_xrcd(cmd.pd_handle, file->ucontext, &xrcd_uobj); if (!xrcd) { ret = -EINVAL; goto err_put; } attr.event_handler = ib_uverbs_qp_event_handler; attr.qp_context = file; attr.qp_num = cmd.qpn; attr.qp_type = cmd.qp_type; obj->uevent.events_reported = 0; INIT_LIST_HEAD(&obj->uevent.event_list); INIT_LIST_HEAD(&obj->mcast_list); qp = ib_open_qp(xrcd, &attr); if (IS_ERR(qp)) { ret = PTR_ERR(qp); goto err_put; } qp->uobject = &obj->uevent.uobject; obj->uevent.uobject.object = qp; ret = idr_add_uobj(&ib_uverbs_qp_idr, &obj->uevent.uobject); if (ret) goto err_destroy; memset(&resp, 0, sizeof resp); resp.qpn = qp->qp_num; resp.qp_handle = obj->uevent.uobject.id; if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) { ret = -EFAULT; goto err_remove; } obj->uxrcd = container_of(xrcd_uobj, struct ib_uxrcd_object, uobject); atomic_inc(&obj->uxrcd->refcnt); put_xrcd_read(xrcd_uobj); mutex_lock(&file->mutex); list_add_tail(&obj->uevent.uobject.list, &file->ucontext->qp_list); mutex_unlock(&file->mutex); obj->uevent.uobject.live = 1; up_write(&obj->uevent.uobject.mutex); return in_len; err_remove: idr_remove_uobj(&ib_uverbs_qp_idr, &obj->uevent.uobject); err_destroy: ib_destroy_qp(qp); err_put: put_xrcd_read(xrcd_uobj); put_uobj_write(&obj->uevent.uobject); return ret; } ssize_t ib_uverbs_query_qp(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_query_qp cmd; struct ib_uverbs_query_qp_resp resp; struct ib_qp *qp; struct ib_qp_attr *attr; struct ib_qp_init_attr *init_attr; int ret; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; attr = kmalloc(sizeof *attr, GFP_KERNEL); init_attr = kmalloc(sizeof *init_attr, GFP_KERNEL); if (!attr || !init_attr) { ret = -ENOMEM; goto out; } qp = idr_read_qp(cmd.qp_handle, file->ucontext); if (!qp) { ret = -EINVAL; goto out; } ret = ib_query_qp(qp, attr, cmd.attr_mask, init_attr); put_qp_read(qp); if (ret) goto out; memset(&resp, 0, sizeof resp); resp.qp_state = attr->qp_state; resp.cur_qp_state = attr->cur_qp_state; resp.path_mtu = attr->path_mtu; resp.path_mig_state = attr->path_mig_state; resp.qkey = attr->qkey; resp.rq_psn = attr->rq_psn; resp.sq_psn = attr->sq_psn; resp.dest_qp_num = attr->dest_qp_num; resp.qp_access_flags = attr->qp_access_flags; resp.pkey_index = attr->pkey_index; resp.alt_pkey_index = attr->alt_pkey_index; resp.sq_draining = attr->sq_draining; resp.max_rd_atomic = attr->max_rd_atomic; resp.max_dest_rd_atomic = attr->max_dest_rd_atomic; resp.min_rnr_timer = attr->min_rnr_timer; resp.port_num = attr->port_num; resp.timeout = attr->timeout; resp.retry_cnt = attr->retry_cnt; resp.rnr_retry = attr->rnr_retry; resp.alt_port_num = attr->alt_port_num; resp.alt_timeout = attr->alt_timeout; memcpy(resp.dest.dgid, attr->ah_attr.grh.dgid.raw, 16); resp.dest.flow_label = attr->ah_attr.grh.flow_label; resp.dest.sgid_index = attr->ah_attr.grh.sgid_index; resp.dest.hop_limit = attr->ah_attr.grh.hop_limit; resp.dest.traffic_class = attr->ah_attr.grh.traffic_class; resp.dest.dlid = attr->ah_attr.dlid; resp.dest.sl = attr->ah_attr.sl; resp.dest.src_path_bits = attr->ah_attr.src_path_bits; resp.dest.static_rate = attr->ah_attr.static_rate; resp.dest.is_global = !!(attr->ah_attr.ah_flags & IB_AH_GRH); resp.dest.port_num = attr->ah_attr.port_num; memcpy(resp.alt_dest.dgid, attr->alt_ah_attr.grh.dgid.raw, 16); resp.alt_dest.flow_label = attr->alt_ah_attr.grh.flow_label; resp.alt_dest.sgid_index = attr->alt_ah_attr.grh.sgid_index; resp.alt_dest.hop_limit = attr->alt_ah_attr.grh.hop_limit; resp.alt_dest.traffic_class = attr->alt_ah_attr.grh.traffic_class; resp.alt_dest.dlid = attr->alt_ah_attr.dlid; resp.alt_dest.sl = attr->alt_ah_attr.sl; resp.alt_dest.src_path_bits = attr->alt_ah_attr.src_path_bits; resp.alt_dest.static_rate = attr->alt_ah_attr.static_rate; resp.alt_dest.is_global = !!(attr->alt_ah_attr.ah_flags & IB_AH_GRH); resp.alt_dest.port_num = attr->alt_ah_attr.port_num; resp.max_send_wr = init_attr->cap.max_send_wr; resp.max_recv_wr = init_attr->cap.max_recv_wr; resp.max_send_sge = init_attr->cap.max_send_sge; resp.max_recv_sge = init_attr->cap.max_recv_sge; resp.max_inline_data = init_attr->cap.max_inline_data; resp.sq_sig_all = init_attr->sq_sig_type == IB_SIGNAL_ALL_WR; if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) ret = -EFAULT; out: kfree(attr); kfree(init_attr); return ret ? ret : in_len; } /* Remove ignored fields set in the attribute mask */ static int modify_qp_mask(enum ib_qp_type qp_type, int mask) { switch (qp_type) { case IB_QPT_XRC_INI: return mask & ~(IB_QP_MAX_DEST_RD_ATOMIC | IB_QP_MIN_RNR_TIMER); case IB_QPT_XRC_TGT: return mask & ~(IB_QP_MAX_QP_RD_ATOMIC | IB_QP_RETRY_CNT | IB_QP_RNR_RETRY); default: return mask; } } ssize_t ib_uverbs_modify_qp(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_modify_qp cmd; struct ib_udata udata; struct ib_qp *qp; struct ib_qp_attr *attr; int ret; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; INIT_UDATA(&udata, buf + sizeof cmd, NULL, in_len - sizeof cmd, out_len); attr = kmalloc(sizeof *attr, GFP_KERNEL); if (!attr) return -ENOMEM; qp = idr_read_qp(cmd.qp_handle, file->ucontext); if (!qp) { ret = -EINVAL; goto out; } + if ((cmd.attr_mask & IB_QP_PORT) && + !rdma_is_port_valid(qp->device, cmd.port_num)) { + ret = -EINVAL; + goto release_qp; + } + + if ((cmd.attr_mask & IB_QP_AV) && + !rdma_is_port_valid(qp->device, cmd.dest.port_num)) { + ret = -EINVAL; + goto release_qp; + } + + if ((cmd.attr_mask & IB_QP_ALT_PATH) && + (!rdma_is_port_valid(qp->device, cmd.alt_port_num) || + !rdma_is_port_valid(qp->device, cmd.alt_dest.port_num))) { + ret = -EINVAL; + goto release_qp; + } + attr->qp_state = cmd.qp_state; attr->cur_qp_state = cmd.cur_qp_state; attr->path_mtu = cmd.path_mtu; attr->path_mig_state = cmd.path_mig_state; attr->qkey = cmd.qkey; attr->rq_psn = cmd.rq_psn; attr->sq_psn = cmd.sq_psn; attr->dest_qp_num = cmd.dest_qp_num; attr->qp_access_flags = cmd.qp_access_flags; attr->pkey_index = cmd.pkey_index; attr->alt_pkey_index = cmd.alt_pkey_index; attr->en_sqd_async_notify = cmd.en_sqd_async_notify; attr->max_rd_atomic = cmd.max_rd_atomic; attr->max_dest_rd_atomic = cmd.max_dest_rd_atomic; attr->min_rnr_timer = cmd.min_rnr_timer; attr->port_num = cmd.port_num; attr->timeout = cmd.timeout; attr->retry_cnt = cmd.retry_cnt; attr->rnr_retry = cmd.rnr_retry; attr->alt_port_num = cmd.alt_port_num; attr->alt_timeout = cmd.alt_timeout; memcpy(attr->ah_attr.grh.dgid.raw, cmd.dest.dgid, 16); attr->ah_attr.grh.flow_label = cmd.dest.flow_label; attr->ah_attr.grh.sgid_index = cmd.dest.sgid_index; attr->ah_attr.grh.hop_limit = cmd.dest.hop_limit; attr->ah_attr.grh.traffic_class = cmd.dest.traffic_class; attr->ah_attr.dlid = cmd.dest.dlid; attr->ah_attr.sl = cmd.dest.sl; attr->ah_attr.src_path_bits = cmd.dest.src_path_bits; attr->ah_attr.static_rate = cmd.dest.static_rate; attr->ah_attr.ah_flags = cmd.dest.is_global ? IB_AH_GRH : 0; attr->ah_attr.port_num = cmd.dest.port_num; memcpy(attr->alt_ah_attr.grh.dgid.raw, cmd.alt_dest.dgid, 16); attr->alt_ah_attr.grh.flow_label = cmd.alt_dest.flow_label; attr->alt_ah_attr.grh.sgid_index = cmd.alt_dest.sgid_index; attr->alt_ah_attr.grh.hop_limit = cmd.alt_dest.hop_limit; attr->alt_ah_attr.grh.traffic_class = cmd.alt_dest.traffic_class; attr->alt_ah_attr.dlid = cmd.alt_dest.dlid; attr->alt_ah_attr.sl = cmd.alt_dest.sl; attr->alt_ah_attr.src_path_bits = cmd.alt_dest.src_path_bits; attr->alt_ah_attr.static_rate = cmd.alt_dest.static_rate; attr->alt_ah_attr.ah_flags = cmd.alt_dest.is_global ? IB_AH_GRH : 0; attr->alt_ah_attr.port_num = cmd.alt_dest.port_num; if (qp->real_qp == qp) { if (cmd.attr_mask & IB_QP_AV) { ret = ib_resolve_eth_dmac(qp->device, &attr->ah_attr); if (ret) goto release_qp; } ret = qp->device->modify_qp(qp, attr, modify_qp_mask(qp->qp_type, cmd.attr_mask), &udata); } else { ret = ib_modify_qp(qp, attr, modify_qp_mask(qp->qp_type, cmd.attr_mask)); } if (ret) goto release_qp; ret = in_len; release_qp: put_qp_read(qp); out: kfree(attr); return ret; } ssize_t ib_uverbs_destroy_qp(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_destroy_qp cmd; struct ib_uverbs_destroy_qp_resp resp; struct ib_uobject *uobj; struct ib_qp *qp; struct ib_uqp_object *obj; int ret = -EINVAL; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; memset(&resp, 0, sizeof resp); uobj = idr_write_uobj(&ib_uverbs_qp_idr, cmd.qp_handle, file->ucontext); if (!uobj) return -EINVAL; qp = uobj->object; obj = container_of(uobj, struct ib_uqp_object, uevent.uobject); if (!list_empty(&obj->mcast_list)) { put_uobj_write(uobj); return -EBUSY; } ret = ib_destroy_qp(qp); if (!ret) uobj->live = 0; put_uobj_write(uobj); if (ret) return ret; if (obj->uxrcd) atomic_dec(&obj->uxrcd->refcnt); idr_remove_uobj(&ib_uverbs_qp_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); ib_uverbs_release_uevent(file, &obj->uevent); resp.events_reported = obj->uevent.events_reported; put_uobj(uobj); if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) return -EFAULT; return in_len; } static void *alloc_wr(size_t wr_size, __u32 num_sge) { return kmalloc(ALIGN(wr_size, sizeof (struct ib_sge)) + num_sge * sizeof (struct ib_sge), GFP_KERNEL); }; ssize_t ib_uverbs_post_send(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_post_send cmd; struct ib_uverbs_post_send_resp resp; struct ib_uverbs_send_wr *user_wr; struct ib_send_wr *wr = NULL, *last, *next, *bad_wr; struct ib_qp *qp; int i, sg_ind; int is_ud; ssize_t ret = -EINVAL; size_t next_size; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; if (in_len < sizeof cmd + cmd.wqe_size * cmd.wr_count + cmd.sge_count * sizeof (struct ib_uverbs_sge)) return -EINVAL; if (cmd.wqe_size < sizeof (struct ib_uverbs_send_wr)) return -EINVAL; user_wr = kmalloc(cmd.wqe_size, GFP_KERNEL); if (!user_wr) return -ENOMEM; qp = idr_read_qp(cmd.qp_handle, file->ucontext); if (!qp) goto out; is_ud = qp->qp_type == IB_QPT_UD; sg_ind = 0; last = NULL; for (i = 0; i < cmd.wr_count; ++i) { if (copy_from_user(user_wr, buf + sizeof cmd + i * cmd.wqe_size, cmd.wqe_size)) { ret = -EFAULT; goto out_put; } if (user_wr->num_sge + sg_ind > cmd.sge_count) { ret = -EINVAL; goto out_put; } if (is_ud) { struct ib_ud_wr *ud; if (user_wr->opcode != IB_WR_SEND && user_wr->opcode != IB_WR_SEND_WITH_IMM) { ret = -EINVAL; goto out_put; } next_size = sizeof(*ud); ud = alloc_wr(next_size, user_wr->num_sge); if (!ud) { ret = -ENOMEM; goto out_put; } ud->ah = idr_read_ah(user_wr->wr.ud.ah, file->ucontext); if (!ud->ah) { kfree(ud); ret = -EINVAL; goto out_put; } ud->remote_qpn = user_wr->wr.ud.remote_qpn; ud->remote_qkey = user_wr->wr.ud.remote_qkey; next = &ud->wr; } else if (user_wr->opcode == IB_WR_RDMA_WRITE_WITH_IMM || user_wr->opcode == IB_WR_RDMA_WRITE || user_wr->opcode == IB_WR_RDMA_READ) { struct ib_rdma_wr *rdma; next_size = sizeof(*rdma); rdma = alloc_wr(next_size, user_wr->num_sge); if (!rdma) { ret = -ENOMEM; goto out_put; } rdma->remote_addr = user_wr->wr.rdma.remote_addr; rdma->rkey = user_wr->wr.rdma.rkey; next = &rdma->wr; } else if (user_wr->opcode == IB_WR_ATOMIC_CMP_AND_SWP || user_wr->opcode == IB_WR_ATOMIC_FETCH_AND_ADD) { struct ib_atomic_wr *atomic; next_size = sizeof(*atomic); atomic = alloc_wr(next_size, user_wr->num_sge); if (!atomic) { ret = -ENOMEM; goto out_put; } atomic->remote_addr = user_wr->wr.atomic.remote_addr; atomic->compare_add = user_wr->wr.atomic.compare_add; atomic->swap = user_wr->wr.atomic.swap; atomic->rkey = user_wr->wr.atomic.rkey; next = &atomic->wr; } else if (user_wr->opcode == IB_WR_SEND || user_wr->opcode == IB_WR_SEND_WITH_IMM || user_wr->opcode == IB_WR_SEND_WITH_INV) { next_size = sizeof(*next); next = alloc_wr(next_size, user_wr->num_sge); if (!next) { ret = -ENOMEM; goto out_put; } } else { ret = -EINVAL; goto out_put; } if (user_wr->opcode == IB_WR_SEND_WITH_IMM || user_wr->opcode == IB_WR_RDMA_WRITE_WITH_IMM) { next->ex.imm_data = (__be32 __force) user_wr->ex.imm_data; } else if (user_wr->opcode == IB_WR_SEND_WITH_INV) { next->ex.invalidate_rkey = user_wr->ex.invalidate_rkey; } if (!last) wr = next; else last->next = next; last = next; next->next = NULL; next->wr_id = user_wr->wr_id; next->num_sge = user_wr->num_sge; next->opcode = user_wr->opcode; next->send_flags = user_wr->send_flags; if (next->num_sge) { next->sg_list = (void *)((char *)next + ALIGN(next_size, sizeof(struct ib_sge))); if (copy_from_user(next->sg_list, (const char *)buf + sizeof cmd + cmd.wr_count * cmd.wqe_size + sg_ind * sizeof (struct ib_sge), next->num_sge * sizeof (struct ib_sge))) { ret = -EFAULT; goto out_put; } sg_ind += next->num_sge; } else next->sg_list = NULL; } resp.bad_wr = 0; ret = qp->device->post_send(qp->real_qp, wr, &bad_wr); if (ret) for (next = wr; next; next = next->next) { ++resp.bad_wr; if (next == bad_wr) break; } if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) ret = -EFAULT; out_put: put_qp_read(qp); while (wr) { if (is_ud && ud_wr(wr)->ah) put_ah_read(ud_wr(wr)->ah); next = wr->next; kfree(wr); wr = next; } out: kfree(user_wr); return ret ? ret : in_len; } static struct ib_recv_wr *ib_uverbs_unmarshall_recv(const char __user *buf, int in_len, u32 wr_count, u32 sge_count, u32 wqe_size) { struct ib_uverbs_recv_wr *user_wr; struct ib_recv_wr *wr = NULL, *last, *next; int sg_ind; int i; int ret; if (in_len < wqe_size * wr_count + sge_count * sizeof (struct ib_uverbs_sge)) return ERR_PTR(-EINVAL); if (wqe_size < sizeof (struct ib_uverbs_recv_wr)) return ERR_PTR(-EINVAL); user_wr = kmalloc(wqe_size, GFP_KERNEL); if (!user_wr) return ERR_PTR(-ENOMEM); sg_ind = 0; last = NULL; for (i = 0; i < wr_count; ++i) { if (copy_from_user(user_wr, buf + i * wqe_size, wqe_size)) { ret = -EFAULT; goto err; } if (user_wr->num_sge + sg_ind > sge_count) { ret = -EINVAL; goto err; } next = kmalloc(ALIGN(sizeof *next, sizeof (struct ib_sge)) + user_wr->num_sge * sizeof (struct ib_sge), GFP_KERNEL); if (!next) { ret = -ENOMEM; goto err; } if (!last) wr = next; else last->next = next; last = next; next->next = NULL; next->wr_id = user_wr->wr_id; next->num_sge = user_wr->num_sge; if (next->num_sge) { next->sg_list = (void *)((char *)next + ALIGN(sizeof *next, sizeof (struct ib_sge))); if (copy_from_user(next->sg_list, (const char *)buf + wr_count * wqe_size + sg_ind * sizeof (struct ib_sge), next->num_sge * sizeof (struct ib_sge))) { ret = -EFAULT; goto err; } sg_ind += next->num_sge; } else next->sg_list = NULL; } kfree(user_wr); return wr; err: kfree(user_wr); while (wr) { next = wr->next; kfree(wr); wr = next; } return ERR_PTR(ret); } ssize_t ib_uverbs_post_recv(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_post_recv cmd; struct ib_uverbs_post_recv_resp resp; struct ib_recv_wr *wr, *next, *bad_wr; struct ib_qp *qp; ssize_t ret = -EINVAL; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; wr = ib_uverbs_unmarshall_recv(buf + sizeof cmd, in_len - sizeof cmd, cmd.wr_count, cmd.sge_count, cmd.wqe_size); if (IS_ERR(wr)) return PTR_ERR(wr); qp = idr_read_qp(cmd.qp_handle, file->ucontext); if (!qp) goto out; resp.bad_wr = 0; ret = qp->device->post_recv(qp->real_qp, wr, &bad_wr); put_qp_read(qp); if (ret) for (next = wr; next; next = next->next) { ++resp.bad_wr; if (next == bad_wr) break; } if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) ret = -EFAULT; out: while (wr) { next = wr->next; kfree(wr); wr = next; } return ret ? ret : in_len; } ssize_t ib_uverbs_post_srq_recv(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_post_srq_recv cmd; struct ib_uverbs_post_srq_recv_resp resp; struct ib_recv_wr *wr, *next, *bad_wr; struct ib_srq *srq; ssize_t ret = -EINVAL; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; wr = ib_uverbs_unmarshall_recv(buf + sizeof cmd, in_len - sizeof cmd, cmd.wr_count, cmd.sge_count, cmd.wqe_size); if (IS_ERR(wr)) return PTR_ERR(wr); srq = idr_read_srq(cmd.srq_handle, file->ucontext); if (!srq) goto out; resp.bad_wr = 0; ret = srq->device->post_srq_recv(srq, wr, &bad_wr); put_srq_read(srq); if (ret) for (next = wr; next; next = next->next) { ++resp.bad_wr; if (next == bad_wr) break; } if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) ret = -EFAULT; out: while (wr) { next = wr->next; kfree(wr); wr = next; } return ret ? ret : in_len; } ssize_t ib_uverbs_create_ah(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_create_ah cmd; struct ib_uverbs_create_ah_resp resp; struct ib_uobject *uobj; struct ib_pd *pd; struct ib_ah *ah; struct ib_ah_attr attr; int ret; struct ib_udata udata; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; + + if (!rdma_is_port_valid(ib_dev, cmd.attr.port_num)) + return -EINVAL; INIT_UDATA(&udata, buf + sizeof(cmd), (unsigned long)cmd.response + sizeof(resp), in_len - sizeof(cmd), out_len - sizeof(resp)); uobj = kmalloc(sizeof *uobj, GFP_KERNEL); if (!uobj) return -ENOMEM; init_uobj(uobj, cmd.user_handle, file->ucontext, &ah_lock_class); down_write(&uobj->mutex); pd = idr_read_pd(cmd.pd_handle, file->ucontext); if (!pd) { ret = -EINVAL; goto err; } attr.dlid = cmd.attr.dlid; attr.sl = cmd.attr.sl; attr.src_path_bits = cmd.attr.src_path_bits; attr.static_rate = cmd.attr.static_rate; attr.ah_flags = cmd.attr.is_global ? IB_AH_GRH : 0; attr.port_num = cmd.attr.port_num; attr.grh.flow_label = cmd.attr.grh.flow_label; attr.grh.sgid_index = cmd.attr.grh.sgid_index; attr.grh.hop_limit = cmd.attr.grh.hop_limit; attr.grh.traffic_class = cmd.attr.grh.traffic_class; memset(&attr.dmac, 0, sizeof(attr.dmac)); memcpy(attr.grh.dgid.raw, cmd.attr.grh.dgid, 16); ah = pd->device->create_ah(pd, &attr, &udata); if (IS_ERR(ah)) { ret = PTR_ERR(ah); goto err_put; } ah->device = pd->device; ah->pd = pd; atomic_inc(&pd->usecnt); ah->uobject = uobj; uobj->object = ah; ret = idr_add_uobj(&ib_uverbs_ah_idr, uobj); if (ret) goto err_destroy; resp.ah_handle = uobj->id; if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) { ret = -EFAULT; goto err_copy; } put_pd_read(pd); mutex_lock(&file->mutex); list_add_tail(&uobj->list, &file->ucontext->ah_list); mutex_unlock(&file->mutex); uobj->live = 1; up_write(&uobj->mutex); return in_len; err_copy: idr_remove_uobj(&ib_uverbs_ah_idr, uobj); err_destroy: ib_destroy_ah(ah); err_put: put_pd_read(pd); err: put_uobj_write(uobj); return ret; } ssize_t ib_uverbs_destroy_ah(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_destroy_ah cmd; struct ib_ah *ah; struct ib_uobject *uobj; int ret; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; uobj = idr_write_uobj(&ib_uverbs_ah_idr, cmd.ah_handle, file->ucontext); if (!uobj) return -EINVAL; ah = uobj->object; ret = ib_destroy_ah(ah); if (!ret) uobj->live = 0; put_uobj_write(uobj); if (ret) return ret; idr_remove_uobj(&ib_uverbs_ah_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); put_uobj(uobj); return in_len; } ssize_t ib_uverbs_attach_mcast(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_attach_mcast cmd; struct ib_qp *qp; struct ib_uqp_object *obj; struct ib_uverbs_mcast_entry *mcast; int ret; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; qp = idr_write_qp(cmd.qp_handle, file->ucontext); if (!qp) return -EINVAL; obj = container_of(qp->uobject, struct ib_uqp_object, uevent.uobject); mutex_lock(&obj->mcast_lock); list_for_each_entry(mcast, &obj->mcast_list, list) if (cmd.mlid == mcast->lid && !memcmp(cmd.gid, mcast->gid.raw, sizeof mcast->gid.raw)) { ret = 0; goto out_put; } mcast = kmalloc(sizeof *mcast, GFP_KERNEL); if (!mcast) { ret = -ENOMEM; goto out_put; } mcast->lid = cmd.mlid; memcpy(mcast->gid.raw, cmd.gid, sizeof mcast->gid.raw); ret = ib_attach_mcast(qp, &mcast->gid, cmd.mlid); if (!ret) list_add_tail(&mcast->list, &obj->mcast_list); else kfree(mcast); out_put: mutex_unlock(&obj->mcast_lock); put_qp_write(qp); return ret ? ret : in_len; } ssize_t ib_uverbs_detach_mcast(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_detach_mcast cmd; struct ib_uqp_object *obj; struct ib_qp *qp; struct ib_uverbs_mcast_entry *mcast; int ret = -EINVAL; bool found = false; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; qp = idr_write_qp(cmd.qp_handle, file->ucontext); if (!qp) return -EINVAL; obj = container_of(qp->uobject, struct ib_uqp_object, uevent.uobject); mutex_lock(&obj->mcast_lock); list_for_each_entry(mcast, &obj->mcast_list, list) if (cmd.mlid == mcast->lid && !memcmp(cmd.gid, mcast->gid.raw, sizeof mcast->gid.raw)) { list_del(&mcast->list); kfree(mcast); found = true; break; } if (!found) { ret = -EINVAL; goto out_put; } ret = ib_detach_mcast(qp, (union ib_gid *)cmd.gid, cmd.mlid); out_put: mutex_unlock(&obj->mcast_lock); put_qp_write(qp); return ret ? ret : in_len; } static size_t kern_spec_filter_sz(struct ib_uverbs_flow_spec_hdr *spec) { /* Returns user space filter size, includes padding */ return (spec->size - sizeof(struct ib_uverbs_flow_spec_hdr)) / 2; } static ssize_t spec_filter_size(void *kern_spec_filter, u16 kern_filter_size, u16 ib_real_filter_sz) { /* * User space filter structures must be 64 bit aligned, otherwise this * may pass, but we won't handle additional new attributes. */ if (kern_filter_size > ib_real_filter_sz) { if (memchr_inv((char *)kern_spec_filter + ib_real_filter_sz, 0, kern_filter_size - ib_real_filter_sz)) return -EINVAL; return ib_real_filter_sz; } return kern_filter_size; } static int kern_spec_to_ib_spec(struct ib_uverbs_flow_spec *kern_spec, union ib_flow_spec *ib_spec) { ssize_t actual_filter_sz; ssize_t kern_filter_sz; ssize_t ib_filter_sz; void *kern_spec_mask; void *kern_spec_val; if (kern_spec->reserved) return -EINVAL; ib_spec->type = kern_spec->type; kern_filter_sz = kern_spec_filter_sz(&kern_spec->hdr); /* User flow spec size must be aligned to 4 bytes */ if (kern_filter_sz != ALIGN(kern_filter_sz, 4)) return -EINVAL; kern_spec_val = (char *)kern_spec + sizeof(struct ib_uverbs_flow_spec_hdr); kern_spec_mask = (char *)kern_spec_val + kern_filter_sz; switch (ib_spec->type) { case IB_FLOW_SPEC_ETH: ib_filter_sz = offsetof(struct ib_flow_eth_filter, real_sz); actual_filter_sz = spec_filter_size(kern_spec_mask, kern_filter_sz, ib_filter_sz); if (actual_filter_sz <= 0) return -EINVAL; ib_spec->size = sizeof(struct ib_flow_spec_eth); memcpy(&ib_spec->eth.val, kern_spec_val, actual_filter_sz); memcpy(&ib_spec->eth.mask, kern_spec_mask, actual_filter_sz); break; case IB_FLOW_SPEC_IPV4: ib_filter_sz = offsetof(struct ib_flow_ipv4_filter, real_sz); actual_filter_sz = spec_filter_size(kern_spec_mask, kern_filter_sz, ib_filter_sz); if (actual_filter_sz <= 0) return -EINVAL; ib_spec->size = sizeof(struct ib_flow_spec_ipv4); memcpy(&ib_spec->ipv4.val, kern_spec_val, actual_filter_sz); memcpy(&ib_spec->ipv4.mask, kern_spec_mask, actual_filter_sz); break; case IB_FLOW_SPEC_IPV6: ib_filter_sz = offsetof(struct ib_flow_ipv6_filter, real_sz); actual_filter_sz = spec_filter_size(kern_spec_mask, kern_filter_sz, ib_filter_sz); if (actual_filter_sz <= 0) return -EINVAL; ib_spec->size = sizeof(struct ib_flow_spec_ipv6); memcpy(&ib_spec->ipv6.val, kern_spec_val, actual_filter_sz); memcpy(&ib_spec->ipv6.mask, kern_spec_mask, actual_filter_sz); if ((ntohl(ib_spec->ipv6.mask.flow_label)) >= BIT(20) || (ntohl(ib_spec->ipv6.val.flow_label)) >= BIT(20)) return -EINVAL; break; case IB_FLOW_SPEC_TCP: case IB_FLOW_SPEC_UDP: ib_filter_sz = offsetof(struct ib_flow_tcp_udp_filter, real_sz); actual_filter_sz = spec_filter_size(kern_spec_mask, kern_filter_sz, ib_filter_sz); if (actual_filter_sz <= 0) return -EINVAL; ib_spec->size = sizeof(struct ib_flow_spec_tcp_udp); memcpy(&ib_spec->tcp_udp.val, kern_spec_val, actual_filter_sz); memcpy(&ib_spec->tcp_udp.mask, kern_spec_mask, actual_filter_sz); break; default: return -EINVAL; } return 0; } int ib_uverbs_ex_create_wq(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_ex_create_wq cmd = {}; struct ib_uverbs_ex_create_wq_resp resp = {}; struct ib_uwq_object *obj; int err = 0; struct ib_cq *cq; struct ib_pd *pd; struct ib_wq *wq; struct ib_wq_init_attr wq_init_attr = {}; size_t required_cmd_sz; size_t required_resp_len; required_cmd_sz = offsetof(typeof(cmd), max_sge) + sizeof(cmd.max_sge); required_resp_len = offsetof(typeof(resp), wqn) + sizeof(resp.wqn); if (ucore->inlen < required_cmd_sz) return -EINVAL; if (ucore->outlen < required_resp_len) return -ENOSPC; if (ucore->inlen > sizeof(cmd) && !ib_is_udata_cleared(ucore, sizeof(cmd), ucore->inlen - sizeof(cmd))) return -EOPNOTSUPP; err = ib_copy_from_udata(&cmd, ucore, min(sizeof(cmd), ucore->inlen)); if (err) return err; if (cmd.comp_mask) return -EOPNOTSUPP; obj = kmalloc(sizeof(*obj), GFP_KERNEL); if (!obj) return -ENOMEM; init_uobj(&obj->uevent.uobject, cmd.user_handle, file->ucontext, &wq_lock_class); down_write(&obj->uevent.uobject.mutex); pd = idr_read_pd(cmd.pd_handle, file->ucontext); if (!pd) { err = -EINVAL; goto err_uobj; } cq = idr_read_cq(cmd.cq_handle, file->ucontext, 0); if (!cq) { err = -EINVAL; goto err_put_pd; } wq_init_attr.cq = cq; wq_init_attr.max_sge = cmd.max_sge; wq_init_attr.max_wr = cmd.max_wr; wq_init_attr.wq_context = file; wq_init_attr.wq_type = cmd.wq_type; wq_init_attr.event_handler = ib_uverbs_wq_event_handler; obj->uevent.events_reported = 0; INIT_LIST_HEAD(&obj->uevent.event_list); wq = pd->device->create_wq(pd, &wq_init_attr, uhw); if (IS_ERR(wq)) { err = PTR_ERR(wq); goto err_put_cq; } wq->uobject = &obj->uevent.uobject; obj->uevent.uobject.object = wq; wq->wq_type = wq_init_attr.wq_type; wq->cq = cq; wq->pd = pd; wq->device = pd->device; wq->wq_context = wq_init_attr.wq_context; atomic_set(&wq->usecnt, 0); atomic_inc(&pd->usecnt); atomic_inc(&cq->usecnt); wq->uobject = &obj->uevent.uobject; obj->uevent.uobject.object = wq; err = idr_add_uobj(&ib_uverbs_wq_idr, &obj->uevent.uobject); if (err) goto destroy_wq; memset(&resp, 0, sizeof(resp)); resp.wq_handle = obj->uevent.uobject.id; resp.max_sge = wq_init_attr.max_sge; resp.max_wr = wq_init_attr.max_wr; resp.wqn = wq->wq_num; resp.response_length = required_resp_len; err = ib_copy_to_udata(ucore, &resp, resp.response_length); if (err) goto err_copy; put_pd_read(pd); put_cq_read(cq); mutex_lock(&file->mutex); list_add_tail(&obj->uevent.uobject.list, &file->ucontext->wq_list); mutex_unlock(&file->mutex); obj->uevent.uobject.live = 1; up_write(&obj->uevent.uobject.mutex); return 0; err_copy: idr_remove_uobj(&ib_uverbs_wq_idr, &obj->uevent.uobject); destroy_wq: ib_destroy_wq(wq); err_put_cq: put_cq_read(cq); err_put_pd: put_pd_read(pd); err_uobj: put_uobj_write(&obj->uevent.uobject); return err; } int ib_uverbs_ex_destroy_wq(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_ex_destroy_wq cmd = {}; struct ib_uverbs_ex_destroy_wq_resp resp = {}; struct ib_wq *wq; struct ib_uobject *uobj; struct ib_uwq_object *obj; size_t required_cmd_sz; size_t required_resp_len; int ret; required_cmd_sz = offsetof(typeof(cmd), wq_handle) + sizeof(cmd.wq_handle); required_resp_len = offsetof(typeof(resp), reserved) + sizeof(resp.reserved); if (ucore->inlen < required_cmd_sz) return -EINVAL; if (ucore->outlen < required_resp_len) return -ENOSPC; if (ucore->inlen > sizeof(cmd) && !ib_is_udata_cleared(ucore, sizeof(cmd), ucore->inlen - sizeof(cmd))) return -EOPNOTSUPP; ret = ib_copy_from_udata(&cmd, ucore, min(sizeof(cmd), ucore->inlen)); if (ret) return ret; if (cmd.comp_mask) return -EOPNOTSUPP; resp.response_length = required_resp_len; uobj = idr_write_uobj(&ib_uverbs_wq_idr, cmd.wq_handle, file->ucontext); if (!uobj) return -EINVAL; wq = uobj->object; obj = container_of(uobj, struct ib_uwq_object, uevent.uobject); ret = ib_destroy_wq(wq); if (!ret) uobj->live = 0; put_uobj_write(uobj); if (ret) return ret; idr_remove_uobj(&ib_uverbs_wq_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); ib_uverbs_release_uevent(file, &obj->uevent); resp.events_reported = obj->uevent.events_reported; put_uobj(uobj); ret = ib_copy_to_udata(ucore, &resp, resp.response_length); if (ret) return ret; return 0; } int ib_uverbs_ex_modify_wq(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_ex_modify_wq cmd = {}; struct ib_wq *wq; struct ib_wq_attr wq_attr = {}; size_t required_cmd_sz; int ret; required_cmd_sz = offsetof(typeof(cmd), curr_wq_state) + sizeof(cmd.curr_wq_state); if (ucore->inlen < required_cmd_sz) return -EINVAL; if (ucore->inlen > sizeof(cmd) && !ib_is_udata_cleared(ucore, sizeof(cmd), ucore->inlen - sizeof(cmd))) return -EOPNOTSUPP; ret = ib_copy_from_udata(&cmd, ucore, min(sizeof(cmd), ucore->inlen)); if (ret) return ret; if (!cmd.attr_mask) return -EINVAL; if (cmd.attr_mask > (IB_WQ_STATE | IB_WQ_CUR_STATE)) return -EINVAL; wq = idr_read_wq(cmd.wq_handle, file->ucontext); if (!wq) return -EINVAL; wq_attr.curr_wq_state = cmd.curr_wq_state; wq_attr.wq_state = cmd.wq_state; ret = wq->device->modify_wq(wq, &wq_attr, cmd.attr_mask, uhw); put_wq_read(wq); return ret; } int ib_uverbs_ex_create_rwq_ind_table(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_ex_create_rwq_ind_table cmd = {}; struct ib_uverbs_ex_create_rwq_ind_table_resp resp = {}; struct ib_uobject *uobj; int err = 0; struct ib_rwq_ind_table_init_attr init_attr = {}; struct ib_rwq_ind_table *rwq_ind_tbl; struct ib_wq **wqs = NULL; u32 *wqs_handles = NULL; struct ib_wq *wq = NULL; int i, j, num_read_wqs; u32 num_wq_handles; u32 expected_in_size; size_t required_cmd_sz_header; size_t required_resp_len; required_cmd_sz_header = offsetof(typeof(cmd), log_ind_tbl_size) + sizeof(cmd.log_ind_tbl_size); required_resp_len = offsetof(typeof(resp), ind_tbl_num) + sizeof(resp.ind_tbl_num); if (ucore->inlen < required_cmd_sz_header) return -EINVAL; if (ucore->outlen < required_resp_len) return -ENOSPC; err = ib_copy_from_udata(&cmd, ucore, required_cmd_sz_header); if (err) return err; ucore->inbuf = (const char *)ucore->inbuf + required_cmd_sz_header; ucore->inlen -= required_cmd_sz_header; if (cmd.comp_mask) return -EOPNOTSUPP; if (cmd.log_ind_tbl_size > IB_USER_VERBS_MAX_LOG_IND_TBL_SIZE) return -EINVAL; num_wq_handles = 1 << cmd.log_ind_tbl_size; expected_in_size = num_wq_handles * sizeof(__u32); if (num_wq_handles == 1) /* input size for wq handles is u64 aligned */ expected_in_size += sizeof(__u32); if (ucore->inlen < expected_in_size) return -EINVAL; if (ucore->inlen > expected_in_size && !ib_is_udata_cleared(ucore, expected_in_size, ucore->inlen - expected_in_size)) return -EOPNOTSUPP; wqs_handles = kcalloc(num_wq_handles, sizeof(*wqs_handles), GFP_KERNEL); if (!wqs_handles) return -ENOMEM; err = ib_copy_from_udata(wqs_handles, ucore, num_wq_handles * sizeof(__u32)); if (err) goto err_free; wqs = kcalloc(num_wq_handles, sizeof(*wqs), GFP_KERNEL); if (!wqs) { err = -ENOMEM; goto err_free; } for (num_read_wqs = 0; num_read_wqs < num_wq_handles; num_read_wqs++) { wq = idr_read_wq(wqs_handles[num_read_wqs], file->ucontext); if (!wq) { err = -EINVAL; goto put_wqs; } wqs[num_read_wqs] = wq; } uobj = kmalloc(sizeof(*uobj), GFP_KERNEL); if (!uobj) { err = -ENOMEM; goto put_wqs; } init_uobj(uobj, 0, file->ucontext, &rwq_ind_table_lock_class); down_write(&uobj->mutex); init_attr.log_ind_tbl_size = cmd.log_ind_tbl_size; init_attr.ind_tbl = wqs; rwq_ind_tbl = ib_dev->create_rwq_ind_table(ib_dev, &init_attr, uhw); if (IS_ERR(rwq_ind_tbl)) { err = PTR_ERR(rwq_ind_tbl); goto err_uobj; } rwq_ind_tbl->ind_tbl = wqs; rwq_ind_tbl->log_ind_tbl_size = init_attr.log_ind_tbl_size; rwq_ind_tbl->uobject = uobj; uobj->object = rwq_ind_tbl; rwq_ind_tbl->device = ib_dev; atomic_set(&rwq_ind_tbl->usecnt, 0); for (i = 0; i < num_wq_handles; i++) atomic_inc(&wqs[i]->usecnt); err = idr_add_uobj(&ib_uverbs_rwq_ind_tbl_idr, uobj); if (err) goto destroy_ind_tbl; resp.ind_tbl_handle = uobj->id; resp.ind_tbl_num = rwq_ind_tbl->ind_tbl_num; resp.response_length = required_resp_len; err = ib_copy_to_udata(ucore, &resp, resp.response_length); if (err) goto err_copy; kfree(wqs_handles); for (j = 0; j < num_read_wqs; j++) put_wq_read(wqs[j]); mutex_lock(&file->mutex); list_add_tail(&uobj->list, &file->ucontext->rwq_ind_tbl_list); mutex_unlock(&file->mutex); uobj->live = 1; up_write(&uobj->mutex); return 0; err_copy: idr_remove_uobj(&ib_uverbs_rwq_ind_tbl_idr, uobj); destroy_ind_tbl: ib_destroy_rwq_ind_table(rwq_ind_tbl); err_uobj: put_uobj_write(uobj); put_wqs: for (j = 0; j < num_read_wqs; j++) put_wq_read(wqs[j]); err_free: kfree(wqs_handles); kfree(wqs); return err; } int ib_uverbs_ex_destroy_rwq_ind_table(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_ex_destroy_rwq_ind_table cmd = {}; struct ib_rwq_ind_table *rwq_ind_tbl; struct ib_uobject *uobj; int ret; struct ib_wq **ind_tbl; size_t required_cmd_sz; required_cmd_sz = offsetof(typeof(cmd), ind_tbl_handle) + sizeof(cmd.ind_tbl_handle); if (ucore->inlen < required_cmd_sz) return -EINVAL; if (ucore->inlen > sizeof(cmd) && !ib_is_udata_cleared(ucore, sizeof(cmd), ucore->inlen - sizeof(cmd))) return -EOPNOTSUPP; ret = ib_copy_from_udata(&cmd, ucore, min(sizeof(cmd), ucore->inlen)); if (ret) return ret; if (cmd.comp_mask) return -EOPNOTSUPP; uobj = idr_write_uobj(&ib_uverbs_rwq_ind_tbl_idr, cmd.ind_tbl_handle, file->ucontext); if (!uobj) return -EINVAL; rwq_ind_tbl = uobj->object; ind_tbl = rwq_ind_tbl->ind_tbl; ret = ib_destroy_rwq_ind_table(rwq_ind_tbl); if (!ret) uobj->live = 0; put_uobj_write(uobj); if (ret) return ret; idr_remove_uobj(&ib_uverbs_rwq_ind_tbl_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); put_uobj(uobj); kfree(ind_tbl); return ret; } int ib_uverbs_ex_create_flow(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_create_flow cmd; struct ib_uverbs_create_flow_resp resp; struct ib_uobject *uobj; struct ib_flow *flow_id; struct ib_uverbs_flow_attr *kern_flow_attr; struct ib_flow_attr *flow_attr; struct ib_qp *qp; int err = 0; void *kern_spec; void *ib_spec; int i; if (ucore->inlen < sizeof(cmd)) return -EINVAL; if (ucore->outlen < sizeof(resp)) return -ENOSPC; err = ib_copy_from_udata(&cmd, ucore, sizeof(cmd)); if (err) return err; ucore->inbuf = (const char *)ucore->inbuf + sizeof(cmd); ucore->inlen -= sizeof(cmd); if (cmd.comp_mask) return -EINVAL; if (priv_check(curthread, PRIV_NET_RAW) != 0) return -EPERM; if (cmd.flow_attr.flags >= IB_FLOW_ATTR_FLAGS_RESERVED) return -EINVAL; if ((cmd.flow_attr.flags & IB_FLOW_ATTR_FLAGS_DONT_TRAP) && ((cmd.flow_attr.type == IB_FLOW_ATTR_ALL_DEFAULT) || (cmd.flow_attr.type == IB_FLOW_ATTR_MC_DEFAULT))) return -EINVAL; if (cmd.flow_attr.num_of_specs > IB_FLOW_SPEC_SUPPORT_LAYERS) return -EINVAL; if (cmd.flow_attr.size > ucore->inlen || cmd.flow_attr.size > (cmd.flow_attr.num_of_specs * sizeof(struct ib_uverbs_flow_spec))) return -EINVAL; if (cmd.flow_attr.reserved[0] || cmd.flow_attr.reserved[1]) return -EINVAL; if (cmd.flow_attr.num_of_specs) { kern_flow_attr = kmalloc(sizeof(*kern_flow_attr) + cmd.flow_attr.size, GFP_KERNEL); if (!kern_flow_attr) return -ENOMEM; memcpy(kern_flow_attr, &cmd.flow_attr, sizeof(*kern_flow_attr)); err = ib_copy_from_udata(kern_flow_attr + 1, ucore, cmd.flow_attr.size); if (err) goto err_free_attr; } else { kern_flow_attr = &cmd.flow_attr; } uobj = kmalloc(sizeof(*uobj), GFP_KERNEL); if (!uobj) { err = -ENOMEM; goto err_free_attr; } init_uobj(uobj, 0, file->ucontext, &rule_lock_class); down_write(&uobj->mutex); qp = idr_read_qp(cmd.qp_handle, file->ucontext); if (!qp) { err = -EINVAL; goto err_uobj; } flow_attr = kzalloc(sizeof(*flow_attr) + cmd.flow_attr.num_of_specs * sizeof(union ib_flow_spec), GFP_KERNEL); if (!flow_attr) { err = -ENOMEM; goto err_put; } flow_attr->type = kern_flow_attr->type; flow_attr->priority = kern_flow_attr->priority; flow_attr->num_of_specs = kern_flow_attr->num_of_specs; flow_attr->port = kern_flow_attr->port; flow_attr->flags = kern_flow_attr->flags; flow_attr->size = sizeof(*flow_attr); kern_spec = kern_flow_attr + 1; ib_spec = flow_attr + 1; for (i = 0; i < flow_attr->num_of_specs && cmd.flow_attr.size > offsetof(struct ib_uverbs_flow_spec, reserved) && cmd.flow_attr.size >= ((struct ib_uverbs_flow_spec *)kern_spec)->size; i++) { err = kern_spec_to_ib_spec(kern_spec, ib_spec); if (err) goto err_free; flow_attr->size += ((union ib_flow_spec *) ib_spec)->size; cmd.flow_attr.size -= ((struct ib_uverbs_flow_spec *)kern_spec)->size; kern_spec = (char *)kern_spec + ((struct ib_uverbs_flow_spec *) kern_spec)->size; ib_spec = (char *)ib_spec + ((union ib_flow_spec *)ib_spec)->size; } if (cmd.flow_attr.size || (i != flow_attr->num_of_specs)) { pr_warn("create flow failed, flow %d: %d bytes left from uverb cmd\n", i, cmd.flow_attr.size); err = -EINVAL; goto err_free; } flow_id = ib_create_flow(qp, flow_attr, IB_FLOW_DOMAIN_USER); if (IS_ERR(flow_id)) { err = PTR_ERR(flow_id); goto err_free; } flow_id->qp = qp; flow_id->uobject = uobj; uobj->object = flow_id; err = idr_add_uobj(&ib_uverbs_rule_idr, uobj); if (err) goto destroy_flow; memset(&resp, 0, sizeof(resp)); resp.flow_handle = uobj->id; err = ib_copy_to_udata(ucore, &resp, sizeof(resp)); if (err) goto err_copy; put_qp_read(qp); mutex_lock(&file->mutex); list_add_tail(&uobj->list, &file->ucontext->rule_list); mutex_unlock(&file->mutex); uobj->live = 1; up_write(&uobj->mutex); kfree(flow_attr); if (cmd.flow_attr.num_of_specs) kfree(kern_flow_attr); return 0; err_copy: idr_remove_uobj(&ib_uverbs_rule_idr, uobj); destroy_flow: ib_destroy_flow(flow_id); err_free: kfree(flow_attr); err_put: put_qp_read(qp); err_uobj: put_uobj_write(uobj); err_free_attr: if (cmd.flow_attr.num_of_specs) kfree(kern_flow_attr); return err; } int ib_uverbs_ex_destroy_flow(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_destroy_flow cmd; struct ib_flow *flow_id; struct ib_uobject *uobj; int ret; if (ucore->inlen < sizeof(cmd)) return -EINVAL; ret = ib_copy_from_udata(&cmd, ucore, sizeof(cmd)); if (ret) return ret; if (cmd.comp_mask) return -EINVAL; uobj = idr_write_uobj(&ib_uverbs_rule_idr, cmd.flow_handle, file->ucontext); if (!uobj) return -EINVAL; flow_id = uobj->object; ret = ib_destroy_flow(flow_id); if (!ret) uobj->live = 0; put_uobj_write(uobj); idr_remove_uobj(&ib_uverbs_rule_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); put_uobj(uobj); return ret; } static int __uverbs_create_xsrq(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_uverbs_create_xsrq *cmd, struct ib_udata *udata) { struct ib_uverbs_create_srq_resp resp; struct ib_usrq_object *obj; struct ib_pd *pd; struct ib_srq *srq; struct ib_uobject *uninitialized_var(xrcd_uobj); struct ib_srq_init_attr attr; int ret; obj = kmalloc(sizeof *obj, GFP_KERNEL); if (!obj) return -ENOMEM; init_uobj(&obj->uevent.uobject, cmd->user_handle, file->ucontext, &srq_lock_class); down_write(&obj->uevent.uobject.mutex); if (cmd->srq_type == IB_SRQT_XRC) { attr.ext.xrc.xrcd = idr_read_xrcd(cmd->xrcd_handle, file->ucontext, &xrcd_uobj); if (!attr.ext.xrc.xrcd) { ret = -EINVAL; goto err; } obj->uxrcd = container_of(xrcd_uobj, struct ib_uxrcd_object, uobject); atomic_inc(&obj->uxrcd->refcnt); attr.ext.xrc.cq = idr_read_cq(cmd->cq_handle, file->ucontext, 0); if (!attr.ext.xrc.cq) { ret = -EINVAL; goto err_put_xrcd; } } pd = idr_read_pd(cmd->pd_handle, file->ucontext); if (!pd) { ret = -EINVAL; goto err_put_cq; } attr.event_handler = ib_uverbs_srq_event_handler; attr.srq_context = file; attr.srq_type = cmd->srq_type; attr.attr.max_wr = cmd->max_wr; attr.attr.max_sge = cmd->max_sge; attr.attr.srq_limit = cmd->srq_limit; obj->uevent.events_reported = 0; INIT_LIST_HEAD(&obj->uevent.event_list); srq = pd->device->create_srq(pd, &attr, udata); if (IS_ERR(srq)) { ret = PTR_ERR(srq); goto err_put; } srq->device = pd->device; srq->pd = pd; srq->srq_type = cmd->srq_type; srq->uobject = &obj->uevent.uobject; srq->event_handler = attr.event_handler; srq->srq_context = attr.srq_context; if (cmd->srq_type == IB_SRQT_XRC) { srq->ext.xrc.cq = attr.ext.xrc.cq; srq->ext.xrc.xrcd = attr.ext.xrc.xrcd; atomic_inc(&attr.ext.xrc.cq->usecnt); atomic_inc(&attr.ext.xrc.xrcd->usecnt); } atomic_inc(&pd->usecnt); atomic_set(&srq->usecnt, 0); obj->uevent.uobject.object = srq; ret = idr_add_uobj(&ib_uverbs_srq_idr, &obj->uevent.uobject); if (ret) goto err_destroy; memset(&resp, 0, sizeof resp); resp.srq_handle = obj->uevent.uobject.id; resp.max_wr = attr.attr.max_wr; resp.max_sge = attr.attr.max_sge; if (cmd->srq_type == IB_SRQT_XRC) resp.srqn = srq->ext.xrc.srq_num; if (copy_to_user((void __user *) (unsigned long) cmd->response, &resp, sizeof resp)) { ret = -EFAULT; goto err_copy; } if (cmd->srq_type == IB_SRQT_XRC) { put_uobj_read(xrcd_uobj); put_cq_read(attr.ext.xrc.cq); } put_pd_read(pd); mutex_lock(&file->mutex); list_add_tail(&obj->uevent.uobject.list, &file->ucontext->srq_list); mutex_unlock(&file->mutex); obj->uevent.uobject.live = 1; up_write(&obj->uevent.uobject.mutex); return 0; err_copy: idr_remove_uobj(&ib_uverbs_srq_idr, &obj->uevent.uobject); err_destroy: ib_destroy_srq(srq); err_put: put_pd_read(pd); err_put_cq: if (cmd->srq_type == IB_SRQT_XRC) put_cq_read(attr.ext.xrc.cq); err_put_xrcd: if (cmd->srq_type == IB_SRQT_XRC) { atomic_dec(&obj->uxrcd->refcnt); put_uobj_read(xrcd_uobj); } err: put_uobj_write(&obj->uevent.uobject); return ret; } ssize_t ib_uverbs_create_srq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_create_srq cmd; struct ib_uverbs_create_xsrq xcmd; struct ib_uverbs_create_srq_resp resp; struct ib_udata udata; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; xcmd.response = cmd.response; xcmd.user_handle = cmd.user_handle; xcmd.srq_type = IB_SRQT_BASIC; xcmd.pd_handle = cmd.pd_handle; xcmd.max_wr = cmd.max_wr; xcmd.max_sge = cmd.max_sge; xcmd.srq_limit = cmd.srq_limit; INIT_UDATA(&udata, buf + sizeof cmd, (unsigned long) cmd.response + sizeof resp, in_len - sizeof cmd - sizeof(struct ib_uverbs_cmd_hdr), out_len - sizeof resp); ret = __uverbs_create_xsrq(file, ib_dev, &xcmd, &udata); if (ret) return ret; return in_len; } ssize_t ib_uverbs_create_xsrq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_create_xsrq cmd; struct ib_uverbs_create_srq_resp resp; struct ib_udata udata; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; INIT_UDATA(&udata, buf + sizeof cmd, (unsigned long) cmd.response + sizeof resp, in_len - sizeof cmd - sizeof(struct ib_uverbs_cmd_hdr), out_len - sizeof resp); ret = __uverbs_create_xsrq(file, ib_dev, &cmd, &udata); if (ret) return ret; return in_len; } ssize_t ib_uverbs_modify_srq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_modify_srq cmd; struct ib_udata udata; struct ib_srq *srq; struct ib_srq_attr attr; int ret; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; INIT_UDATA(&udata, buf + sizeof cmd, NULL, in_len - sizeof cmd, out_len); srq = idr_read_srq(cmd.srq_handle, file->ucontext); if (!srq) return -EINVAL; attr.max_wr = cmd.max_wr; attr.srq_limit = cmd.srq_limit; ret = srq->device->modify_srq(srq, &attr, cmd.attr_mask, &udata); put_srq_read(srq); return ret ? ret : in_len; } ssize_t ib_uverbs_query_srq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_query_srq cmd; struct ib_uverbs_query_srq_resp resp; struct ib_srq_attr attr; struct ib_srq *srq; int ret; if (out_len < sizeof resp) return -ENOSPC; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; srq = idr_read_srq(cmd.srq_handle, file->ucontext); if (!srq) return -EINVAL; ret = ib_query_srq(srq, &attr); put_srq_read(srq); if (ret) return ret; memset(&resp, 0, sizeof resp); resp.max_wr = attr.max_wr; resp.max_sge = attr.max_sge; resp.srq_limit = attr.srq_limit; if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) return -EFAULT; return in_len; } ssize_t ib_uverbs_destroy_srq(struct ib_uverbs_file *file, struct ib_device *ib_dev, const char __user *buf, int in_len, int out_len) { struct ib_uverbs_destroy_srq cmd; struct ib_uverbs_destroy_srq_resp resp; struct ib_uobject *uobj; struct ib_srq *srq; struct ib_uevent_object *obj; int ret = -EINVAL; struct ib_usrq_object *us; enum ib_srq_type srq_type; if (copy_from_user(&cmd, buf, sizeof cmd)) return -EFAULT; uobj = idr_write_uobj(&ib_uverbs_srq_idr, cmd.srq_handle, file->ucontext); if (!uobj) return -EINVAL; srq = uobj->object; obj = container_of(uobj, struct ib_uevent_object, uobject); srq_type = srq->srq_type; ret = ib_destroy_srq(srq); if (!ret) uobj->live = 0; put_uobj_write(uobj); if (ret) return ret; if (srq_type == IB_SRQT_XRC) { us = container_of(obj, struct ib_usrq_object, uevent); atomic_dec(&us->uxrcd->refcnt); } idr_remove_uobj(&ib_uverbs_srq_idr, uobj); mutex_lock(&file->mutex); list_del(&uobj->list); mutex_unlock(&file->mutex); ib_uverbs_release_uevent(file, obj); memset(&resp, 0, sizeof resp); resp.events_reported = obj->events_reported; put_uobj(uobj); if (copy_to_user((void __user *) (unsigned long) cmd.response, &resp, sizeof resp)) ret = -EFAULT; return ret ? ret : in_len; } int ib_uverbs_ex_query_device(struct ib_uverbs_file *file, struct ib_device *ib_dev, struct ib_udata *ucore, struct ib_udata *uhw) { struct ib_uverbs_ex_query_device_resp resp = { {0} }; struct ib_uverbs_ex_query_device cmd; struct ib_device_attr attr = {0}; int err; if (ucore->inlen < sizeof(cmd)) return -EINVAL; err = ib_copy_from_udata(&cmd, ucore, sizeof(cmd)); if (err) return err; if (cmd.comp_mask) return -EINVAL; if (cmd.reserved) return -EINVAL; resp.response_length = offsetof(typeof(resp), odp_caps); if (ucore->outlen < resp.response_length) return -ENOSPC; err = ib_dev->query_device(ib_dev, &attr, uhw); if (err) return err; copy_query_dev_fields(file, ib_dev, &resp.base, &attr); if (ucore->outlen < resp.response_length + sizeof(resp.odp_caps)) goto end; #ifdef CONFIG_INFINIBAND_ON_DEMAND_PAGING resp.odp_caps.general_caps = attr.odp_caps.general_caps; resp.odp_caps.per_transport_caps.rc_odp_caps = attr.odp_caps.per_transport_caps.rc_odp_caps; resp.odp_caps.per_transport_caps.uc_odp_caps = attr.odp_caps.per_transport_caps.uc_odp_caps; resp.odp_caps.per_transport_caps.ud_odp_caps = attr.odp_caps.per_transport_caps.ud_odp_caps; #endif resp.response_length += sizeof(resp.odp_caps); if (ucore->outlen < resp.response_length + sizeof(resp.timestamp_mask)) goto end; resp.timestamp_mask = attr.timestamp_mask; resp.response_length += sizeof(resp.timestamp_mask); if (ucore->outlen < resp.response_length + sizeof(resp.hca_core_clock)) goto end; resp.hca_core_clock = attr.hca_core_clock; resp.response_length += sizeof(resp.hca_core_clock); if (ucore->outlen < resp.response_length + sizeof(resp.device_cap_flags_ex)) goto end; resp.device_cap_flags_ex = attr.device_cap_flags; resp.response_length += sizeof(resp.device_cap_flags_ex); if (ucore->outlen < resp.response_length + sizeof(resp.rss_caps)) goto end; resp.rss_caps.supported_qpts = attr.rss_caps.supported_qpts; resp.rss_caps.max_rwq_indirection_tables = attr.rss_caps.max_rwq_indirection_tables; resp.rss_caps.max_rwq_indirection_table_size = attr.rss_caps.max_rwq_indirection_table_size; resp.response_length += sizeof(resp.rss_caps); if (ucore->outlen < resp.response_length + sizeof(resp.max_wq_type_rq)) goto end; resp.max_wq_type_rq = attr.max_wq_type_rq; resp.response_length += sizeof(resp.max_wq_type_rq); end: err = ib_copy_to_udata(ucore, &resp, resp.response_length); return err; } Index: head/sys/ofed/include/rdma/ib_verbs.h =================================================================== --- head/sys/ofed/include/rdma/ib_verbs.h (revision 336382) +++ head/sys/ofed/include/rdma/ib_verbs.h (revision 336383) @@ -1,3368 +1,3375 @@ /*- * SPDX-License-Identifier: BSD-2-Clause OR GPL-2.0 * * Copyright (c) 2004 Mellanox Technologies Ltd. All rights reserved. * Copyright (c) 2004 Infinicon Corporation. All rights reserved. * Copyright (c) 2004 Intel Corporation. All rights reserved. * Copyright (c) 2004 Topspin Corporation. All rights reserved. * Copyright (c) 2004 Voltaire Corporation. All rights reserved. * Copyright (c) 2005 Sun Microsystems, Inc. All rights reserved. * Copyright (c) 2005, 2006, 2007 Cisco Systems. All rights reserved. * * This software is available to you under a choice of one of two * licenses. You may choose to be licensed under the terms of the GNU * General Public License (GPL) Version 2, available from the file * COPYING in the main directory of this source tree, or the * OpenIB.org BSD license below: * * 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. * * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE * SOFTWARE. * * $FreeBSD$ */ #if !defined(IB_VERBS_H) #define IB_VERBS_H #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include struct ifla_vf_info; struct ifla_vf_stats; extern struct workqueue_struct *ib_wq; extern struct workqueue_struct *ib_comp_wq; union ib_gid { u8 raw[16]; struct { __be64 subnet_prefix; __be64 interface_id; } global; }; extern union ib_gid zgid; enum ib_gid_type { /* If link layer is Ethernet, this is RoCE V1 */ IB_GID_TYPE_IB = 0, IB_GID_TYPE_ROCE = 0, IB_GID_TYPE_ROCE_UDP_ENCAP = 1, IB_GID_TYPE_SIZE }; #define ROCE_V2_UDP_DPORT 4791 struct ib_gid_attr { enum ib_gid_type gid_type; struct net_device *ndev; }; enum rdma_node_type { /* IB values map to NodeInfo:NodeType. */ RDMA_NODE_IB_CA = 1, RDMA_NODE_IB_SWITCH, RDMA_NODE_IB_ROUTER, RDMA_NODE_RNIC, RDMA_NODE_USNIC, RDMA_NODE_USNIC_UDP, }; enum { /* set the local administered indication */ IB_SA_WELL_KNOWN_GUID = BIT_ULL(57) | 2, }; enum rdma_transport_type { RDMA_TRANSPORT_IB, RDMA_TRANSPORT_IWARP, RDMA_TRANSPORT_USNIC, RDMA_TRANSPORT_USNIC_UDP }; enum rdma_protocol_type { RDMA_PROTOCOL_IB, RDMA_PROTOCOL_IBOE, RDMA_PROTOCOL_IWARP, RDMA_PROTOCOL_USNIC_UDP }; __attribute_const__ enum rdma_transport_type rdma_node_get_transport(enum rdma_node_type node_type); enum rdma_network_type { RDMA_NETWORK_IB, RDMA_NETWORK_ROCE_V1 = RDMA_NETWORK_IB, RDMA_NETWORK_IPV4, RDMA_NETWORK_IPV6 }; static inline enum ib_gid_type ib_network_to_gid_type(enum rdma_network_type network_type) { if (network_type == RDMA_NETWORK_IPV4 || network_type == RDMA_NETWORK_IPV6) return IB_GID_TYPE_ROCE_UDP_ENCAP; /* IB_GID_TYPE_IB same as RDMA_NETWORK_ROCE_V1 */ return IB_GID_TYPE_IB; } static inline enum rdma_network_type ib_gid_to_network_type(enum ib_gid_type gid_type, union ib_gid *gid) { if (gid_type == IB_GID_TYPE_IB) return RDMA_NETWORK_IB; if (ipv6_addr_v4mapped((struct in6_addr *)gid)) return RDMA_NETWORK_IPV4; else return RDMA_NETWORK_IPV6; } enum rdma_link_layer { IB_LINK_LAYER_UNSPECIFIED, IB_LINK_LAYER_INFINIBAND, IB_LINK_LAYER_ETHERNET, }; enum ib_device_cap_flags { IB_DEVICE_RESIZE_MAX_WR = (1 << 0), IB_DEVICE_BAD_PKEY_CNTR = (1 << 1), IB_DEVICE_BAD_QKEY_CNTR = (1 << 2), IB_DEVICE_RAW_MULTI = (1 << 3), IB_DEVICE_AUTO_PATH_MIG = (1 << 4), IB_DEVICE_CHANGE_PHY_PORT = (1 << 5), IB_DEVICE_UD_AV_PORT_ENFORCE = (1 << 6), IB_DEVICE_CURR_QP_STATE_MOD = (1 << 7), IB_DEVICE_SHUTDOWN_PORT = (1 << 8), IB_DEVICE_INIT_TYPE = (1 << 9), IB_DEVICE_PORT_ACTIVE_EVENT = (1 << 10), IB_DEVICE_SYS_IMAGE_GUID = (1 << 11), IB_DEVICE_RC_RNR_NAK_GEN = (1 << 12), IB_DEVICE_SRQ_RESIZE = (1 << 13), IB_DEVICE_N_NOTIFY_CQ = (1 << 14), /* * This device supports a per-device lkey or stag that can be * used without performing a memory registration for the local * memory. Note that ULPs should never check this flag, but * instead of use the local_dma_lkey flag in the ib_pd structure, * which will always contain a usable lkey. */ IB_DEVICE_LOCAL_DMA_LKEY = (1 << 15), IB_DEVICE_RESERVED /* old SEND_W_INV */ = (1 << 16), IB_DEVICE_MEM_WINDOW = (1 << 17), /* * Devices should set IB_DEVICE_UD_IP_SUM if they support * insertion of UDP and TCP checksum on outgoing UD IPoIB * messages and can verify the validity of checksum for * incoming messages. Setting this flag implies that the * IPoIB driver may set NETIF_F_IP_CSUM for datagram mode. */ IB_DEVICE_UD_IP_CSUM = (1 << 18), IB_DEVICE_UD_TSO = (1 << 19), IB_DEVICE_XRC = (1 << 20), /* * This device supports the IB "base memory management extension", * which includes support for fast registrations (IB_WR_REG_MR, * IB_WR_LOCAL_INV and IB_WR_SEND_WITH_INV verbs). This flag should * also be set by any iWarp device which must support FRs to comply * to the iWarp verbs spec. iWarp devices also support the * IB_WR_RDMA_READ_WITH_INV verb for RDMA READs that invalidate the * stag. */ IB_DEVICE_MEM_MGT_EXTENSIONS = (1 << 21), IB_DEVICE_BLOCK_MULTICAST_LOOPBACK = (1 << 22), IB_DEVICE_MEM_WINDOW_TYPE_2A = (1 << 23), IB_DEVICE_MEM_WINDOW_TYPE_2B = (1 << 24), IB_DEVICE_RC_IP_CSUM = (1 << 25), IB_DEVICE_RAW_IP_CSUM = (1 << 26), /* * Devices should set IB_DEVICE_CROSS_CHANNEL if they * support execution of WQEs that involve synchronization * of I/O operations with single completion queue managed * by hardware. */ IB_DEVICE_CROSS_CHANNEL = (1 << 27), IB_DEVICE_MANAGED_FLOW_STEERING = (1 << 29), IB_DEVICE_SIGNATURE_HANDOVER = (1 << 30), IB_DEVICE_ON_DEMAND_PAGING = (1ULL << 31), IB_DEVICE_SG_GAPS_REG = (1ULL << 32), IB_DEVICE_VIRTUAL_FUNCTION = (1ULL << 33), IB_DEVICE_RAW_SCATTER_FCS = (1ULL << 34), }; enum ib_signature_prot_cap { IB_PROT_T10DIF_TYPE_1 = 1, IB_PROT_T10DIF_TYPE_2 = 1 << 1, IB_PROT_T10DIF_TYPE_3 = 1 << 2, }; enum ib_signature_guard_cap { IB_GUARD_T10DIF_CRC = 1, IB_GUARD_T10DIF_CSUM = 1 << 1, }; enum ib_atomic_cap { IB_ATOMIC_NONE, IB_ATOMIC_HCA, IB_ATOMIC_GLOB }; enum ib_odp_general_cap_bits { IB_ODP_SUPPORT = 1 << 0, }; enum ib_odp_transport_cap_bits { IB_ODP_SUPPORT_SEND = 1 << 0, IB_ODP_SUPPORT_RECV = 1 << 1, IB_ODP_SUPPORT_WRITE = 1 << 2, IB_ODP_SUPPORT_READ = 1 << 3, IB_ODP_SUPPORT_ATOMIC = 1 << 4, }; struct ib_odp_caps { uint64_t general_caps; struct { uint32_t rc_odp_caps; uint32_t uc_odp_caps; uint32_t ud_odp_caps; } per_transport_caps; }; struct ib_rss_caps { /* Corresponding bit will be set if qp type from * 'enum ib_qp_type' is supported, e.g. * supported_qpts |= 1 << IB_QPT_UD */ u32 supported_qpts; u32 max_rwq_indirection_tables; u32 max_rwq_indirection_table_size; }; enum ib_cq_creation_flags { IB_CQ_FLAGS_TIMESTAMP_COMPLETION = 1 << 0, IB_CQ_FLAGS_IGNORE_OVERRUN = 1 << 1, }; struct ib_cq_init_attr { unsigned int cqe; int comp_vector; u32 flags; }; struct ib_device_attr { u64 fw_ver; __be64 sys_image_guid; u64 max_mr_size; u64 page_size_cap; u32 vendor_id; u32 vendor_part_id; u32 hw_ver; int max_qp; int max_qp_wr; u64 device_cap_flags; int max_sge; int max_sge_rd; int max_cq; int max_cqe; int max_mr; int max_pd; int max_qp_rd_atom; int max_ee_rd_atom; int max_res_rd_atom; int max_qp_init_rd_atom; int max_ee_init_rd_atom; enum ib_atomic_cap atomic_cap; enum ib_atomic_cap masked_atomic_cap; int max_ee; int max_rdd; int max_mw; int max_raw_ipv6_qp; int max_raw_ethy_qp; int max_mcast_grp; int max_mcast_qp_attach; int max_total_mcast_qp_attach; int max_ah; int max_fmr; int max_map_per_fmr; int max_srq; int max_srq_wr; int max_srq_sge; unsigned int max_fast_reg_page_list_len; u16 max_pkeys; u8 local_ca_ack_delay; int sig_prot_cap; int sig_guard_cap; struct ib_odp_caps odp_caps; uint64_t timestamp_mask; uint64_t hca_core_clock; /* in KHZ */ struct ib_rss_caps rss_caps; u32 max_wq_type_rq; }; enum ib_mtu { IB_MTU_256 = 1, IB_MTU_512 = 2, IB_MTU_1024 = 3, IB_MTU_2048 = 4, IB_MTU_4096 = 5 }; static inline int ib_mtu_enum_to_int(enum ib_mtu mtu) { switch (mtu) { case IB_MTU_256: return 256; case IB_MTU_512: return 512; case IB_MTU_1024: return 1024; case IB_MTU_2048: return 2048; case IB_MTU_4096: return 4096; default: return -1; } } enum ib_port_state { IB_PORT_NOP = 0, IB_PORT_DOWN = 1, IB_PORT_INIT = 2, IB_PORT_ARMED = 3, IB_PORT_ACTIVE = 4, IB_PORT_ACTIVE_DEFER = 5, IB_PORT_DUMMY = -1, /* force enum signed */ }; enum ib_port_cap_flags { IB_PORT_SM = 1 << 1, IB_PORT_NOTICE_SUP = 1 << 2, IB_PORT_TRAP_SUP = 1 << 3, IB_PORT_OPT_IPD_SUP = 1 << 4, IB_PORT_AUTO_MIGR_SUP = 1 << 5, IB_PORT_SL_MAP_SUP = 1 << 6, IB_PORT_MKEY_NVRAM = 1 << 7, IB_PORT_PKEY_NVRAM = 1 << 8, IB_PORT_LED_INFO_SUP = 1 << 9, IB_PORT_SM_DISABLED = 1 << 10, IB_PORT_SYS_IMAGE_GUID_SUP = 1 << 11, IB_PORT_PKEY_SW_EXT_PORT_TRAP_SUP = 1 << 12, IB_PORT_EXTENDED_SPEEDS_SUP = 1 << 14, IB_PORT_CM_SUP = 1 << 16, IB_PORT_SNMP_TUNNEL_SUP = 1 << 17, IB_PORT_REINIT_SUP = 1 << 18, IB_PORT_DEVICE_MGMT_SUP = 1 << 19, IB_PORT_VENDOR_CLASS_SUP = 1 << 20, IB_PORT_DR_NOTICE_SUP = 1 << 21, IB_PORT_CAP_MASK_NOTICE_SUP = 1 << 22, IB_PORT_BOOT_MGMT_SUP = 1 << 23, IB_PORT_LINK_LATENCY_SUP = 1 << 24, IB_PORT_CLIENT_REG_SUP = 1 << 25, IB_PORT_IP_BASED_GIDS = 1 << 26, }; enum ib_port_width { IB_WIDTH_1X = 1, IB_WIDTH_4X = 2, IB_WIDTH_8X = 4, IB_WIDTH_12X = 8 }; static inline int ib_width_enum_to_int(enum ib_port_width width) { switch (width) { case IB_WIDTH_1X: return 1; case IB_WIDTH_4X: return 4; case IB_WIDTH_8X: return 8; case IB_WIDTH_12X: return 12; default: return -1; } } enum ib_port_speed { IB_SPEED_SDR = 1, IB_SPEED_DDR = 2, IB_SPEED_QDR = 4, IB_SPEED_FDR10 = 8, IB_SPEED_FDR = 16, IB_SPEED_EDR = 32, IB_SPEED_HDR = 64 }; /** * struct rdma_hw_stats * @timestamp - Used by the core code to track when the last update was * @lifespan - Used by the core code to determine how old the counters * should be before being updated again. Stored in jiffies, defaults * to 10 milliseconds, drivers can override the default be specifying * their own value during their allocation routine. * @name - Array of pointers to static names used for the counters in * directory. * @num_counters - How many hardware counters there are. If name is * shorter than this number, a kernel oops will result. Driver authors * are encouraged to leave BUILD_BUG_ON(ARRAY_SIZE(@name) < num_counters) * in their code to prevent this. * @value - Array of u64 counters that are accessed by the sysfs code and * filled in by the drivers get_stats routine */ struct rdma_hw_stats { unsigned long timestamp; unsigned long lifespan; const char * const *names; int num_counters; u64 value[]; }; #define RDMA_HW_STATS_DEFAULT_LIFESPAN 10 /** * rdma_alloc_hw_stats_struct - Helper function to allocate dynamic struct * for drivers. * @names - Array of static const char * * @num_counters - How many elements in array * @lifespan - How many milliseconds between updates */ static inline struct rdma_hw_stats *rdma_alloc_hw_stats_struct( const char * const *names, int num_counters, unsigned long lifespan) { struct rdma_hw_stats *stats; stats = kzalloc(sizeof(*stats) + num_counters * sizeof(u64), GFP_KERNEL); if (!stats) return NULL; stats->names = names; stats->num_counters = num_counters; stats->lifespan = msecs_to_jiffies(lifespan); return stats; } /* Define bits for the various functionality this port needs to be supported by * the core. */ /* Management 0x00000FFF */ #define RDMA_CORE_CAP_IB_MAD 0x00000001 #define RDMA_CORE_CAP_IB_SMI 0x00000002 #define RDMA_CORE_CAP_IB_CM 0x00000004 #define RDMA_CORE_CAP_IW_CM 0x00000008 #define RDMA_CORE_CAP_IB_SA 0x00000010 #define RDMA_CORE_CAP_OPA_MAD 0x00000020 /* Address format 0x000FF000 */ #define RDMA_CORE_CAP_AF_IB 0x00001000 #define RDMA_CORE_CAP_ETH_AH 0x00002000 /* Protocol 0xFFF00000 */ #define RDMA_CORE_CAP_PROT_IB 0x00100000 #define RDMA_CORE_CAP_PROT_ROCE 0x00200000 #define RDMA_CORE_CAP_PROT_IWARP 0x00400000 #define RDMA_CORE_CAP_PROT_ROCE_UDP_ENCAP 0x00800000 #define RDMA_CORE_PORT_IBA_IB (RDMA_CORE_CAP_PROT_IB \ | RDMA_CORE_CAP_IB_MAD \ | RDMA_CORE_CAP_IB_SMI \ | RDMA_CORE_CAP_IB_CM \ | RDMA_CORE_CAP_IB_SA \ | RDMA_CORE_CAP_AF_IB) #define RDMA_CORE_PORT_IBA_ROCE (RDMA_CORE_CAP_PROT_ROCE \ | RDMA_CORE_CAP_IB_MAD \ | RDMA_CORE_CAP_IB_CM \ | RDMA_CORE_CAP_AF_IB \ | RDMA_CORE_CAP_ETH_AH) #define RDMA_CORE_PORT_IBA_ROCE_UDP_ENCAP \ (RDMA_CORE_CAP_PROT_ROCE_UDP_ENCAP \ | RDMA_CORE_CAP_IB_MAD \ | RDMA_CORE_CAP_IB_CM \ | RDMA_CORE_CAP_AF_IB \ | RDMA_CORE_CAP_ETH_AH) #define RDMA_CORE_PORT_IWARP (RDMA_CORE_CAP_PROT_IWARP \ | RDMA_CORE_CAP_IW_CM) #define RDMA_CORE_PORT_INTEL_OPA (RDMA_CORE_PORT_IBA_IB \ | RDMA_CORE_CAP_OPA_MAD) struct ib_port_attr { u64 subnet_prefix; enum ib_port_state state; enum ib_mtu max_mtu; enum ib_mtu active_mtu; int gid_tbl_len; u32 port_cap_flags; u32 max_msg_sz; u32 bad_pkey_cntr; u32 qkey_viol_cntr; u16 pkey_tbl_len; u16 lid; u16 sm_lid; u8 lmc; u8 max_vl_num; u8 sm_sl; u8 subnet_timeout; u8 init_type_reply; u8 active_width; u8 active_speed; u8 phys_state; bool grh_required; }; enum ib_device_modify_flags { IB_DEVICE_MODIFY_SYS_IMAGE_GUID = 1 << 0, IB_DEVICE_MODIFY_NODE_DESC = 1 << 1 }; #define IB_DEVICE_NODE_DESC_MAX 64 struct ib_device_modify { u64 sys_image_guid; char node_desc[IB_DEVICE_NODE_DESC_MAX]; }; enum ib_port_modify_flags { IB_PORT_SHUTDOWN = 1, IB_PORT_INIT_TYPE = (1<<2), IB_PORT_RESET_QKEY_CNTR = (1<<3) }; struct ib_port_modify { u32 set_port_cap_mask; u32 clr_port_cap_mask; u8 init_type; }; enum ib_event_type { IB_EVENT_CQ_ERR, IB_EVENT_QP_FATAL, IB_EVENT_QP_REQ_ERR, IB_EVENT_QP_ACCESS_ERR, IB_EVENT_COMM_EST, IB_EVENT_SQ_DRAINED, IB_EVENT_PATH_MIG, IB_EVENT_PATH_MIG_ERR, IB_EVENT_DEVICE_FATAL, IB_EVENT_PORT_ACTIVE, IB_EVENT_PORT_ERR, IB_EVENT_LID_CHANGE, IB_EVENT_PKEY_CHANGE, IB_EVENT_SM_CHANGE, IB_EVENT_SRQ_ERR, IB_EVENT_SRQ_LIMIT_REACHED, IB_EVENT_QP_LAST_WQE_REACHED, IB_EVENT_CLIENT_REREGISTER, IB_EVENT_GID_CHANGE, IB_EVENT_WQ_FATAL, }; const char *__attribute_const__ ib_event_msg(enum ib_event_type event); struct ib_event { struct ib_device *device; union { struct ib_cq *cq; struct ib_qp *qp; struct ib_srq *srq; struct ib_wq *wq; u8 port_num; } element; enum ib_event_type event; }; struct ib_event_handler { struct ib_device *device; void (*handler)(struct ib_event_handler *, struct ib_event *); struct list_head list; }; #define INIT_IB_EVENT_HANDLER(_ptr, _device, _handler) \ do { \ (_ptr)->device = _device; \ (_ptr)->handler = _handler; \ INIT_LIST_HEAD(&(_ptr)->list); \ } while (0) struct ib_global_route { union ib_gid dgid; u32 flow_label; u8 sgid_index; u8 hop_limit; u8 traffic_class; }; struct ib_grh { __be32 version_tclass_flow; __be16 paylen; u8 next_hdr; u8 hop_limit; union ib_gid sgid; union ib_gid dgid; }; union rdma_network_hdr { struct ib_grh ibgrh; struct { /* The IB spec states that if it's IPv4, the header * is located in the last 20 bytes of the header. */ u8 reserved[20]; struct ip roce4grh; }; }; enum { IB_MULTICAST_QPN = 0xffffff }; #define IB_LID_PERMISSIVE cpu_to_be16(0xFFFF) #define IB_MULTICAST_LID_BASE cpu_to_be16(0xC000) enum ib_ah_flags { IB_AH_GRH = 1 }; enum ib_rate { IB_RATE_PORT_CURRENT = 0, IB_RATE_2_5_GBPS = 2, IB_RATE_5_GBPS = 5, IB_RATE_10_GBPS = 3, IB_RATE_20_GBPS = 6, IB_RATE_30_GBPS = 4, IB_RATE_40_GBPS = 7, IB_RATE_60_GBPS = 8, IB_RATE_80_GBPS = 9, IB_RATE_120_GBPS = 10, IB_RATE_14_GBPS = 11, IB_RATE_56_GBPS = 12, IB_RATE_112_GBPS = 13, IB_RATE_168_GBPS = 14, IB_RATE_25_GBPS = 15, IB_RATE_100_GBPS = 16, IB_RATE_200_GBPS = 17, IB_RATE_300_GBPS = 18 }; /** * ib_rate_to_mult - Convert the IB rate enum to a multiple of the * base rate of 2.5 Gbit/sec. For example, IB_RATE_5_GBPS will be * converted to 2, since 5 Gbit/sec is 2 * 2.5 Gbit/sec. * @rate: rate to convert. */ __attribute_const__ int ib_rate_to_mult(enum ib_rate rate); /** * ib_rate_to_mbps - Convert the IB rate enum to Mbps. * For example, IB_RATE_2_5_GBPS will be converted to 2500. * @rate: rate to convert. */ __attribute_const__ int ib_rate_to_mbps(enum ib_rate rate); /** * enum ib_mr_type - memory region type * @IB_MR_TYPE_MEM_REG: memory region that is used for * normal registration * @IB_MR_TYPE_SIGNATURE: memory region that is used for * signature operations (data-integrity * capable regions) * @IB_MR_TYPE_SG_GAPS: memory region that is capable to * register any arbitrary sg lists (without * the normal mr constraints - see * ib_map_mr_sg) */ enum ib_mr_type { IB_MR_TYPE_MEM_REG, IB_MR_TYPE_SIGNATURE, IB_MR_TYPE_SG_GAPS, }; /** * Signature types * IB_SIG_TYPE_NONE: Unprotected. * IB_SIG_TYPE_T10_DIF: Type T10-DIF */ enum ib_signature_type { IB_SIG_TYPE_NONE, IB_SIG_TYPE_T10_DIF, }; /** * Signature T10-DIF block-guard types * IB_T10DIF_CRC: Corresponds to T10-PI mandated CRC checksum rules. * IB_T10DIF_CSUM: Corresponds to IP checksum rules. */ enum ib_t10_dif_bg_type { IB_T10DIF_CRC, IB_T10DIF_CSUM }; /** * struct ib_t10_dif_domain - Parameters specific for T10-DIF * domain. * @bg_type: T10-DIF block guard type (CRC|CSUM) * @pi_interval: protection information interval. * @bg: seed of guard computation. * @app_tag: application tag of guard block * @ref_tag: initial guard block reference tag. * @ref_remap: Indicate wethear the reftag increments each block * @app_escape: Indicate to skip block check if apptag=0xffff * @ref_escape: Indicate to skip block check if reftag=0xffffffff * @apptag_check_mask: check bitmask of application tag. */ struct ib_t10_dif_domain { enum ib_t10_dif_bg_type bg_type; u16 pi_interval; u16 bg; u16 app_tag; u32 ref_tag; bool ref_remap; bool app_escape; bool ref_escape; u16 apptag_check_mask; }; /** * struct ib_sig_domain - Parameters for signature domain * @sig_type: specific signauture type * @sig: union of all signature domain attributes that may * be used to set domain layout. */ struct ib_sig_domain { enum ib_signature_type sig_type; union { struct ib_t10_dif_domain dif; } sig; }; /** * struct ib_sig_attrs - Parameters for signature handover operation * @check_mask: bitmask for signature byte check (8 bytes) * @mem: memory domain layout desciptor. * @wire: wire domain layout desciptor. */ struct ib_sig_attrs { u8 check_mask; struct ib_sig_domain mem; struct ib_sig_domain wire; }; enum ib_sig_err_type { IB_SIG_BAD_GUARD, IB_SIG_BAD_REFTAG, IB_SIG_BAD_APPTAG, }; /** * struct ib_sig_err - signature error descriptor */ struct ib_sig_err { enum ib_sig_err_type err_type; u32 expected; u32 actual; u64 sig_err_offset; u32 key; }; enum ib_mr_status_check { IB_MR_CHECK_SIG_STATUS = 1, }; /** * struct ib_mr_status - Memory region status container * * @fail_status: Bitmask of MR checks status. For each * failed check a corresponding status bit is set. * @sig_err: Additional info for IB_MR_CEHCK_SIG_STATUS * failure. */ struct ib_mr_status { u32 fail_status; struct ib_sig_err sig_err; }; /** * mult_to_ib_rate - Convert a multiple of 2.5 Gbit/sec to an IB rate * enum. * @mult: multiple to convert. */ __attribute_const__ enum ib_rate mult_to_ib_rate(int mult); struct ib_ah_attr { struct ib_global_route grh; u16 dlid; u8 sl; u8 src_path_bits; u8 static_rate; u8 ah_flags; u8 port_num; u8 dmac[ETH_ALEN]; }; enum ib_wc_status { IB_WC_SUCCESS, IB_WC_LOC_LEN_ERR, IB_WC_LOC_QP_OP_ERR, IB_WC_LOC_EEC_OP_ERR, IB_WC_LOC_PROT_ERR, IB_WC_WR_FLUSH_ERR, IB_WC_MW_BIND_ERR, IB_WC_BAD_RESP_ERR, IB_WC_LOC_ACCESS_ERR, IB_WC_REM_INV_REQ_ERR, IB_WC_REM_ACCESS_ERR, IB_WC_REM_OP_ERR, IB_WC_RETRY_EXC_ERR, IB_WC_RNR_RETRY_EXC_ERR, IB_WC_LOC_RDD_VIOL_ERR, IB_WC_REM_INV_RD_REQ_ERR, IB_WC_REM_ABORT_ERR, IB_WC_INV_EECN_ERR, IB_WC_INV_EEC_STATE_ERR, IB_WC_FATAL_ERR, IB_WC_RESP_TIMEOUT_ERR, IB_WC_GENERAL_ERR }; const char *__attribute_const__ ib_wc_status_msg(enum ib_wc_status status); enum ib_wc_opcode { IB_WC_SEND, IB_WC_RDMA_WRITE, IB_WC_RDMA_READ, IB_WC_COMP_SWAP, IB_WC_FETCH_ADD, IB_WC_LSO, IB_WC_LOCAL_INV, IB_WC_REG_MR, IB_WC_MASKED_COMP_SWAP, IB_WC_MASKED_FETCH_ADD, /* * Set value of IB_WC_RECV so consumers can test if a completion is a * receive by testing (opcode & IB_WC_RECV). */ IB_WC_RECV = 1 << 7, IB_WC_RECV_RDMA_WITH_IMM, IB_WC_DUMMY = -1, /* force enum signed */ }; enum ib_wc_flags { IB_WC_GRH = 1, IB_WC_WITH_IMM = (1<<1), IB_WC_WITH_INVALIDATE = (1<<2), IB_WC_IP_CSUM_OK = (1<<3), IB_WC_WITH_SMAC = (1<<4), IB_WC_WITH_VLAN = (1<<5), IB_WC_WITH_NETWORK_HDR_TYPE = (1<<6), }; struct ib_wc { union { u64 wr_id; struct ib_cqe *wr_cqe; }; enum ib_wc_status status; enum ib_wc_opcode opcode; u32 vendor_err; u32 byte_len; struct ib_qp *qp; union { __be32 imm_data; u32 invalidate_rkey; } ex; u32 src_qp; int wc_flags; u16 pkey_index; u16 slid; u8 sl; u8 dlid_path_bits; u8 port_num; /* valid only for DR SMPs on switches */ u8 smac[ETH_ALEN]; u16 vlan_id; u8 network_hdr_type; }; enum ib_cq_notify_flags { IB_CQ_SOLICITED = 1 << 0, IB_CQ_NEXT_COMP = 1 << 1, IB_CQ_SOLICITED_MASK = IB_CQ_SOLICITED | IB_CQ_NEXT_COMP, IB_CQ_REPORT_MISSED_EVENTS = 1 << 2, }; enum ib_srq_type { IB_SRQT_BASIC, IB_SRQT_XRC }; enum ib_srq_attr_mask { IB_SRQ_MAX_WR = 1 << 0, IB_SRQ_LIMIT = 1 << 1, }; struct ib_srq_attr { u32 max_wr; u32 max_sge; u32 srq_limit; }; struct ib_srq_init_attr { void (*event_handler)(struct ib_event *, void *); void *srq_context; struct ib_srq_attr attr; enum ib_srq_type srq_type; union { struct { struct ib_xrcd *xrcd; struct ib_cq *cq; } xrc; } ext; }; struct ib_qp_cap { u32 max_send_wr; u32 max_recv_wr; u32 max_send_sge; u32 max_recv_sge; u32 max_inline_data; /* * Maximum number of rdma_rw_ctx structures in flight at a time. * ib_create_qp() will calculate the right amount of neededed WRs * and MRs based on this. */ u32 max_rdma_ctxs; }; enum ib_sig_type { IB_SIGNAL_ALL_WR, IB_SIGNAL_REQ_WR }; enum ib_qp_type { /* * IB_QPT_SMI and IB_QPT_GSI have to be the first two entries * here (and in that order) since the MAD layer uses them as * indices into a 2-entry table. */ IB_QPT_SMI, IB_QPT_GSI, IB_QPT_RC, IB_QPT_UC, IB_QPT_UD, IB_QPT_RAW_IPV6, IB_QPT_RAW_ETHERTYPE, IB_QPT_RAW_PACKET = 8, IB_QPT_XRC_INI = 9, IB_QPT_XRC_TGT, IB_QPT_MAX, /* Reserve a range for qp types internal to the low level driver. * These qp types will not be visible at the IB core layer, so the * IB_QPT_MAX usages should not be affected in the core layer */ IB_QPT_RESERVED1 = 0x1000, IB_QPT_RESERVED2, IB_QPT_RESERVED3, IB_QPT_RESERVED4, IB_QPT_RESERVED5, IB_QPT_RESERVED6, IB_QPT_RESERVED7, IB_QPT_RESERVED8, IB_QPT_RESERVED9, IB_QPT_RESERVED10, }; enum ib_qp_create_flags { IB_QP_CREATE_IPOIB_UD_LSO = 1 << 0, IB_QP_CREATE_BLOCK_MULTICAST_LOOPBACK = 1 << 1, IB_QP_CREATE_CROSS_CHANNEL = 1 << 2, IB_QP_CREATE_MANAGED_SEND = 1 << 3, IB_QP_CREATE_MANAGED_RECV = 1 << 4, IB_QP_CREATE_NETIF_QP = 1 << 5, IB_QP_CREATE_SIGNATURE_EN = 1 << 6, IB_QP_CREATE_USE_GFP_NOIO = 1 << 7, IB_QP_CREATE_SCATTER_FCS = 1 << 8, /* reserve bits 26-31 for low level drivers' internal use */ IB_QP_CREATE_RESERVED_START = 1 << 26, IB_QP_CREATE_RESERVED_END = 1 << 31, }; /* * Note: users may not call ib_close_qp or ib_destroy_qp from the event_handler * callback to destroy the passed in QP. */ struct ib_qp_init_attr { void (*event_handler)(struct ib_event *, void *); void *qp_context; struct ib_cq *send_cq; struct ib_cq *recv_cq; struct ib_srq *srq; struct ib_xrcd *xrcd; /* XRC TGT QPs only */ struct ib_qp_cap cap; enum ib_sig_type sq_sig_type; enum ib_qp_type qp_type; enum ib_qp_create_flags create_flags; /* * Only needed for special QP types, or when using the RW API. */ u8 port_num; struct ib_rwq_ind_table *rwq_ind_tbl; }; struct ib_qp_open_attr { void (*event_handler)(struct ib_event *, void *); void *qp_context; u32 qp_num; enum ib_qp_type qp_type; }; enum ib_rnr_timeout { IB_RNR_TIMER_655_36 = 0, IB_RNR_TIMER_000_01 = 1, IB_RNR_TIMER_000_02 = 2, IB_RNR_TIMER_000_03 = 3, IB_RNR_TIMER_000_04 = 4, IB_RNR_TIMER_000_06 = 5, IB_RNR_TIMER_000_08 = 6, IB_RNR_TIMER_000_12 = 7, IB_RNR_TIMER_000_16 = 8, IB_RNR_TIMER_000_24 = 9, IB_RNR_TIMER_000_32 = 10, IB_RNR_TIMER_000_48 = 11, IB_RNR_TIMER_000_64 = 12, IB_RNR_TIMER_000_96 = 13, IB_RNR_TIMER_001_28 = 14, IB_RNR_TIMER_001_92 = 15, IB_RNR_TIMER_002_56 = 16, IB_RNR_TIMER_003_84 = 17, IB_RNR_TIMER_005_12 = 18, IB_RNR_TIMER_007_68 = 19, IB_RNR_TIMER_010_24 = 20, IB_RNR_TIMER_015_36 = 21, IB_RNR_TIMER_020_48 = 22, IB_RNR_TIMER_030_72 = 23, IB_RNR_TIMER_040_96 = 24, IB_RNR_TIMER_061_44 = 25, IB_RNR_TIMER_081_92 = 26, IB_RNR_TIMER_122_88 = 27, IB_RNR_TIMER_163_84 = 28, IB_RNR_TIMER_245_76 = 29, IB_RNR_TIMER_327_68 = 30, IB_RNR_TIMER_491_52 = 31 }; enum ib_qp_attr_mask { IB_QP_STATE = 1, IB_QP_CUR_STATE = (1<<1), IB_QP_EN_SQD_ASYNC_NOTIFY = (1<<2), IB_QP_ACCESS_FLAGS = (1<<3), IB_QP_PKEY_INDEX = (1<<4), IB_QP_PORT = (1<<5), IB_QP_QKEY = (1<<6), IB_QP_AV = (1<<7), IB_QP_PATH_MTU = (1<<8), IB_QP_TIMEOUT = (1<<9), IB_QP_RETRY_CNT = (1<<10), IB_QP_RNR_RETRY = (1<<11), IB_QP_RQ_PSN = (1<<12), IB_QP_MAX_QP_RD_ATOMIC = (1<<13), IB_QP_ALT_PATH = (1<<14), IB_QP_MIN_RNR_TIMER = (1<<15), IB_QP_SQ_PSN = (1<<16), IB_QP_MAX_DEST_RD_ATOMIC = (1<<17), IB_QP_PATH_MIG_STATE = (1<<18), IB_QP_CAP = (1<<19), IB_QP_DEST_QPN = (1<<20), IB_QP_RESERVED1 = (1<<21), IB_QP_RESERVED2 = (1<<22), IB_QP_RESERVED3 = (1<<23), IB_QP_RESERVED4 = (1<<24), }; enum ib_qp_state { IB_QPS_RESET, IB_QPS_INIT, IB_QPS_RTR, IB_QPS_RTS, IB_QPS_SQD, IB_QPS_SQE, IB_QPS_ERR, IB_QPS_DUMMY = -1, /* force enum signed */ }; enum ib_mig_state { IB_MIG_MIGRATED, IB_MIG_REARM, IB_MIG_ARMED }; enum ib_mw_type { IB_MW_TYPE_1 = 1, IB_MW_TYPE_2 = 2 }; struct ib_qp_attr { enum ib_qp_state qp_state; enum ib_qp_state cur_qp_state; enum ib_mtu path_mtu; enum ib_mig_state path_mig_state; u32 qkey; u32 rq_psn; u32 sq_psn; u32 dest_qp_num; int qp_access_flags; struct ib_qp_cap cap; struct ib_ah_attr ah_attr; struct ib_ah_attr alt_ah_attr; u16 pkey_index; u16 alt_pkey_index; u8 en_sqd_async_notify; u8 sq_draining; u8 max_rd_atomic; u8 max_dest_rd_atomic; u8 min_rnr_timer; u8 port_num; u8 timeout; u8 retry_cnt; u8 rnr_retry; u8 alt_port_num; u8 alt_timeout; }; enum ib_wr_opcode { IB_WR_RDMA_WRITE, IB_WR_RDMA_WRITE_WITH_IMM, IB_WR_SEND, IB_WR_SEND_WITH_IMM, IB_WR_RDMA_READ, IB_WR_ATOMIC_CMP_AND_SWP, IB_WR_ATOMIC_FETCH_AND_ADD, IB_WR_LSO, IB_WR_SEND_WITH_INV, IB_WR_RDMA_READ_WITH_INV, IB_WR_LOCAL_INV, IB_WR_REG_MR, IB_WR_MASKED_ATOMIC_CMP_AND_SWP, IB_WR_MASKED_ATOMIC_FETCH_AND_ADD, IB_WR_REG_SIG_MR, /* reserve values for low level drivers' internal use. * These values will not be used at all in the ib core layer. */ IB_WR_RESERVED1 = 0xf0, IB_WR_RESERVED2, IB_WR_RESERVED3, IB_WR_RESERVED4, IB_WR_RESERVED5, IB_WR_RESERVED6, IB_WR_RESERVED7, IB_WR_RESERVED8, IB_WR_RESERVED9, IB_WR_RESERVED10, IB_WR_DUMMY = -1, /* force enum signed */ }; enum ib_send_flags { IB_SEND_FENCE = 1, IB_SEND_SIGNALED = (1<<1), IB_SEND_SOLICITED = (1<<2), IB_SEND_INLINE = (1<<3), IB_SEND_IP_CSUM = (1<<4), /* reserve bits 26-31 for low level drivers' internal use */ IB_SEND_RESERVED_START = (1 << 26), IB_SEND_RESERVED_END = (1 << 31), }; struct ib_sge { u64 addr; u32 length; u32 lkey; }; struct ib_cqe { void (*done)(struct ib_cq *cq, struct ib_wc *wc); }; struct ib_send_wr { struct ib_send_wr *next; union { u64 wr_id; struct ib_cqe *wr_cqe; }; struct ib_sge *sg_list; int num_sge; enum ib_wr_opcode opcode; int send_flags; union { __be32 imm_data; u32 invalidate_rkey; } ex; }; struct ib_rdma_wr { struct ib_send_wr wr; u64 remote_addr; u32 rkey; }; static inline struct ib_rdma_wr *rdma_wr(struct ib_send_wr *wr) { return container_of(wr, struct ib_rdma_wr, wr); } struct ib_atomic_wr { struct ib_send_wr wr; u64 remote_addr; u64 compare_add; u64 swap; u64 compare_add_mask; u64 swap_mask; u32 rkey; }; static inline struct ib_atomic_wr *atomic_wr(struct ib_send_wr *wr) { return container_of(wr, struct ib_atomic_wr, wr); } struct ib_ud_wr { struct ib_send_wr wr; struct ib_ah *ah; void *header; int hlen; int mss; u32 remote_qpn; u32 remote_qkey; u16 pkey_index; /* valid for GSI only */ u8 port_num; /* valid for DR SMPs on switch only */ }; static inline struct ib_ud_wr *ud_wr(struct ib_send_wr *wr) { return container_of(wr, struct ib_ud_wr, wr); } struct ib_reg_wr { struct ib_send_wr wr; struct ib_mr *mr; u32 key; int access; }; static inline struct ib_reg_wr *reg_wr(struct ib_send_wr *wr) { return container_of(wr, struct ib_reg_wr, wr); } struct ib_sig_handover_wr { struct ib_send_wr wr; struct ib_sig_attrs *sig_attrs; struct ib_mr *sig_mr; int access_flags; struct ib_sge *prot; }; static inline struct ib_sig_handover_wr *sig_handover_wr(struct ib_send_wr *wr) { return container_of(wr, struct ib_sig_handover_wr, wr); } struct ib_recv_wr { struct ib_recv_wr *next; union { u64 wr_id; struct ib_cqe *wr_cqe; }; struct ib_sge *sg_list; int num_sge; }; enum ib_access_flags { IB_ACCESS_LOCAL_WRITE = 1, IB_ACCESS_REMOTE_WRITE = (1<<1), IB_ACCESS_REMOTE_READ = (1<<2), IB_ACCESS_REMOTE_ATOMIC = (1<<3), IB_ACCESS_MW_BIND = (1<<4), IB_ZERO_BASED = (1<<5), IB_ACCESS_ON_DEMAND = (1<<6), }; /* * XXX: these are apparently used for ->rereg_user_mr, no idea why they * are hidden here instead of a uapi header! */ enum ib_mr_rereg_flags { IB_MR_REREG_TRANS = 1, IB_MR_REREG_PD = (1<<1), IB_MR_REREG_ACCESS = (1<<2), IB_MR_REREG_SUPPORTED = ((IB_MR_REREG_ACCESS << 1) - 1) }; struct ib_fmr_attr { int max_pages; int max_maps; u8 page_shift; }; struct ib_umem; struct ib_ucontext { struct ib_device *device; struct list_head pd_list; struct list_head mr_list; struct list_head mw_list; struct list_head cq_list; struct list_head qp_list; struct list_head srq_list; struct list_head ah_list; struct list_head xrcd_list; struct list_head rule_list; struct list_head wq_list; struct list_head rwq_ind_tbl_list; int closing; pid_t tgid; #ifdef CONFIG_INFINIBAND_ON_DEMAND_PAGING struct rb_root umem_tree; /* * Protects .umem_rbroot and tree, as well as odp_mrs_count and * mmu notifiers registration. */ struct rw_semaphore umem_rwsem; void (*invalidate_range)(struct ib_umem *umem, unsigned long start, unsigned long end); struct mmu_notifier mn; atomic_t notifier_count; /* A list of umems that don't have private mmu notifier counters yet. */ struct list_head no_private_counters; int odp_mrs_count; #endif }; struct ib_uobject { u64 user_handle; /* handle given to us by userspace */ struct ib_ucontext *context; /* associated user context */ void *object; /* containing object */ struct list_head list; /* link to context's list */ int id; /* index into kernel idr */ struct kref ref; struct rw_semaphore mutex; /* protects .live */ struct rcu_head rcu; /* kfree_rcu() overhead */ int live; }; struct ib_udata { const void __user *inbuf; void __user *outbuf; size_t inlen; size_t outlen; }; struct ib_pd { u32 local_dma_lkey; u32 flags; struct ib_device *device; struct ib_uobject *uobject; atomic_t usecnt; /* count all resources */ u32 unsafe_global_rkey; /* * Implementation details of the RDMA core, don't use in drivers: */ struct ib_mr *__internal_mr; }; struct ib_xrcd { struct ib_device *device; atomic_t usecnt; /* count all exposed resources */ struct inode *inode; struct mutex tgt_qp_mutex; struct list_head tgt_qp_list; }; struct ib_ah { struct ib_device *device; struct ib_pd *pd; struct ib_uobject *uobject; }; typedef void (*ib_comp_handler)(struct ib_cq *cq, void *cq_context); enum ib_poll_context { IB_POLL_DIRECT, /* caller context, no hw completions */ IB_POLL_SOFTIRQ, /* poll from softirq context */ IB_POLL_WORKQUEUE, /* poll from workqueue */ }; struct ib_cq { struct ib_device *device; struct ib_uobject *uobject; ib_comp_handler comp_handler; void (*event_handler)(struct ib_event *, void *); void *cq_context; int cqe; atomic_t usecnt; /* count number of work queues */ enum ib_poll_context poll_ctx; struct work_struct work; }; struct ib_srq { struct ib_device *device; struct ib_pd *pd; struct ib_uobject *uobject; void (*event_handler)(struct ib_event *, void *); void *srq_context; enum ib_srq_type srq_type; atomic_t usecnt; union { struct { struct ib_xrcd *xrcd; struct ib_cq *cq; u32 srq_num; } xrc; } ext; }; enum ib_wq_type { IB_WQT_RQ }; enum ib_wq_state { IB_WQS_RESET, IB_WQS_RDY, IB_WQS_ERR }; struct ib_wq { struct ib_device *device; struct ib_uobject *uobject; void *wq_context; void (*event_handler)(struct ib_event *, void *); struct ib_pd *pd; struct ib_cq *cq; u32 wq_num; enum ib_wq_state state; enum ib_wq_type wq_type; atomic_t usecnt; }; struct ib_wq_init_attr { void *wq_context; enum ib_wq_type wq_type; u32 max_wr; u32 max_sge; struct ib_cq *cq; void (*event_handler)(struct ib_event *, void *); }; enum ib_wq_attr_mask { IB_WQ_STATE = 1 << 0, IB_WQ_CUR_STATE = 1 << 1, }; struct ib_wq_attr { enum ib_wq_state wq_state; enum ib_wq_state curr_wq_state; }; struct ib_rwq_ind_table { struct ib_device *device; struct ib_uobject *uobject; atomic_t usecnt; u32 ind_tbl_num; u32 log_ind_tbl_size; struct ib_wq **ind_tbl; }; struct ib_rwq_ind_table_init_attr { u32 log_ind_tbl_size; /* Each entry is a pointer to Receive Work Queue */ struct ib_wq **ind_tbl; }; /* * @max_write_sge: Maximum SGE elements per RDMA WRITE request. * @max_read_sge: Maximum SGE elements per RDMA READ request. */ struct ib_qp { struct ib_device *device; struct ib_pd *pd; struct ib_cq *send_cq; struct ib_cq *recv_cq; spinlock_t mr_lock; struct ib_srq *srq; struct ib_xrcd *xrcd; /* XRC TGT QPs only */ struct list_head xrcd_list; /* count times opened, mcast attaches, flow attaches */ atomic_t usecnt; struct list_head open_list; struct ib_qp *real_qp; struct ib_uobject *uobject; void (*event_handler)(struct ib_event *, void *); void *qp_context; u32 qp_num; u32 max_write_sge; u32 max_read_sge; enum ib_qp_type qp_type; struct ib_rwq_ind_table *rwq_ind_tbl; }; struct ib_mr { struct ib_device *device; struct ib_pd *pd; u32 lkey; u32 rkey; u64 iova; u32 length; unsigned int page_size; bool need_inval; union { struct ib_uobject *uobject; /* user */ struct list_head qp_entry; /* FR */ }; }; struct ib_mw { struct ib_device *device; struct ib_pd *pd; struct ib_uobject *uobject; u32 rkey; enum ib_mw_type type; }; struct ib_fmr { struct ib_device *device; struct ib_pd *pd; struct list_head list; u32 lkey; u32 rkey; }; /* Supported steering options */ enum ib_flow_attr_type { /* steering according to rule specifications */ IB_FLOW_ATTR_NORMAL = 0x0, /* default unicast and multicast rule - * receive all Eth traffic which isn't steered to any QP */ IB_FLOW_ATTR_ALL_DEFAULT = 0x1, /* default multicast rule - * receive all Eth multicast traffic which isn't steered to any QP */ IB_FLOW_ATTR_MC_DEFAULT = 0x2, /* sniffer rule - receive all port traffic */ IB_FLOW_ATTR_SNIFFER = 0x3 }; /* Supported steering header types */ enum ib_flow_spec_type { /* L2 headers*/ IB_FLOW_SPEC_ETH = 0x20, IB_FLOW_SPEC_IB = 0x22, /* L3 header*/ IB_FLOW_SPEC_IPV4 = 0x30, IB_FLOW_SPEC_IPV6 = 0x31, /* L4 headers*/ IB_FLOW_SPEC_TCP = 0x40, IB_FLOW_SPEC_UDP = 0x41 }; #define IB_FLOW_SPEC_LAYER_MASK 0xF0 #define IB_FLOW_SPEC_SUPPORT_LAYERS 4 /* Flow steering rule priority is set according to it's domain. * Lower domain value means higher priority. */ enum ib_flow_domain { IB_FLOW_DOMAIN_USER, IB_FLOW_DOMAIN_ETHTOOL, IB_FLOW_DOMAIN_RFS, IB_FLOW_DOMAIN_NIC, IB_FLOW_DOMAIN_NUM /* Must be last */ }; enum ib_flow_flags { IB_FLOW_ATTR_FLAGS_DONT_TRAP = 1UL << 1, /* Continue match, no steal */ IB_FLOW_ATTR_FLAGS_RESERVED = 1UL << 2 /* Must be last */ }; struct ib_flow_eth_filter { u8 dst_mac[6]; u8 src_mac[6]; __be16 ether_type; __be16 vlan_tag; /* Must be last */ u8 real_sz[0]; }; struct ib_flow_spec_eth { enum ib_flow_spec_type type; u16 size; struct ib_flow_eth_filter val; struct ib_flow_eth_filter mask; }; struct ib_flow_ib_filter { __be16 dlid; __u8 sl; /* Must be last */ u8 real_sz[0]; }; struct ib_flow_spec_ib { enum ib_flow_spec_type type; u16 size; struct ib_flow_ib_filter val; struct ib_flow_ib_filter mask; }; /* IPv4 header flags */ enum ib_ipv4_flags { IB_IPV4_DONT_FRAG = 0x2, /* Don't enable packet fragmentation */ IB_IPV4_MORE_FRAG = 0X4 /* For All fragmented packets except the last have this flag set */ }; struct ib_flow_ipv4_filter { __be32 src_ip; __be32 dst_ip; u8 proto; u8 tos; u8 ttl; u8 flags; /* Must be last */ u8 real_sz[0]; }; struct ib_flow_spec_ipv4 { enum ib_flow_spec_type type; u16 size; struct ib_flow_ipv4_filter val; struct ib_flow_ipv4_filter mask; }; struct ib_flow_ipv6_filter { u8 src_ip[16]; u8 dst_ip[16]; __be32 flow_label; u8 next_hdr; u8 traffic_class; u8 hop_limit; /* Must be last */ u8 real_sz[0]; }; struct ib_flow_spec_ipv6 { enum ib_flow_spec_type type; u16 size; struct ib_flow_ipv6_filter val; struct ib_flow_ipv6_filter mask; }; struct ib_flow_tcp_udp_filter { __be16 dst_port; __be16 src_port; /* Must be last */ u8 real_sz[0]; }; struct ib_flow_spec_tcp_udp { enum ib_flow_spec_type type; u16 size; struct ib_flow_tcp_udp_filter val; struct ib_flow_tcp_udp_filter mask; }; union ib_flow_spec { struct { enum ib_flow_spec_type type; u16 size; }; struct ib_flow_spec_eth eth; struct ib_flow_spec_ib ib; struct ib_flow_spec_ipv4 ipv4; struct ib_flow_spec_tcp_udp tcp_udp; struct ib_flow_spec_ipv6 ipv6; }; struct ib_flow_attr { enum ib_flow_attr_type type; u16 size; u16 priority; u32 flags; u8 num_of_specs; u8 port; /* Following are the optional layers according to user request * struct ib_flow_spec_xxx * struct ib_flow_spec_yyy */ }; struct ib_flow { struct ib_qp *qp; struct ib_uobject *uobject; }; struct ib_mad_hdr; struct ib_grh; enum ib_process_mad_flags { IB_MAD_IGNORE_MKEY = 1, IB_MAD_IGNORE_BKEY = 2, IB_MAD_IGNORE_ALL = IB_MAD_IGNORE_MKEY | IB_MAD_IGNORE_BKEY }; enum ib_mad_result { IB_MAD_RESULT_FAILURE = 0, /* (!SUCCESS is the important flag) */ IB_MAD_RESULT_SUCCESS = 1 << 0, /* MAD was successfully processed */ IB_MAD_RESULT_REPLY = 1 << 1, /* Reply packet needs to be sent */ IB_MAD_RESULT_CONSUMED = 1 << 2 /* Packet consumed: stop processing */ }; #define IB_DEVICE_NAME_MAX 64 struct ib_cache { rwlock_t lock; struct ib_event_handler event_handler; struct ib_pkey_cache **pkey_cache; struct ib_gid_table **gid_cache; u8 *lmc_cache; }; struct ib_dma_mapping_ops { int (*mapping_error)(struct ib_device *dev, u64 dma_addr); u64 (*map_single)(struct ib_device *dev, void *ptr, size_t size, enum dma_data_direction direction); void (*unmap_single)(struct ib_device *dev, u64 addr, size_t size, enum dma_data_direction direction); u64 (*map_page)(struct ib_device *dev, struct page *page, unsigned long offset, size_t size, enum dma_data_direction direction); void (*unmap_page)(struct ib_device *dev, u64 addr, size_t size, enum dma_data_direction direction); int (*map_sg)(struct ib_device *dev, struct scatterlist *sg, int nents, enum dma_data_direction direction); void (*unmap_sg)(struct ib_device *dev, struct scatterlist *sg, int nents, enum dma_data_direction direction); int (*map_sg_attrs)(struct ib_device *dev, struct scatterlist *sg, int nents, enum dma_data_direction direction, struct dma_attrs *attrs); void (*unmap_sg_attrs)(struct ib_device *dev, struct scatterlist *sg, int nents, enum dma_data_direction direction, struct dma_attrs *attrs); void (*sync_single_for_cpu)(struct ib_device *dev, u64 dma_handle, size_t size, enum dma_data_direction dir); void (*sync_single_for_device)(struct ib_device *dev, u64 dma_handle, size_t size, enum dma_data_direction dir); void *(*alloc_coherent)(struct ib_device *dev, size_t size, u64 *dma_handle, gfp_t flag); void (*free_coherent)(struct ib_device *dev, size_t size, void *cpu_addr, u64 dma_handle); }; struct iw_cm_verbs; struct ib_port_immutable { int pkey_tbl_len; int gid_tbl_len; u32 core_cap_flags; u32 max_mad_size; }; struct ib_device { struct device *dma_device; char name[IB_DEVICE_NAME_MAX]; struct list_head event_handler_list; spinlock_t event_handler_lock; spinlock_t client_data_lock; struct list_head core_list; /* Access to the client_data_list is protected by the client_data_lock * spinlock and the lists_rwsem read-write semaphore */ struct list_head client_data_list; struct ib_cache cache; /** * port_immutable is indexed by port number */ struct ib_port_immutable *port_immutable; int num_comp_vectors; struct iw_cm_verbs *iwcm; /** * alloc_hw_stats - Allocate a struct rdma_hw_stats and fill in the * driver initialized data. The struct is kfree()'ed by the sysfs * core when the device is removed. A lifespan of -1 in the return * struct tells the core to set a default lifespan. */ struct rdma_hw_stats *(*alloc_hw_stats)(struct ib_device *device, u8 port_num); /** * get_hw_stats - Fill in the counter value(s) in the stats struct. * @index - The index in the value array we wish to have updated, or * num_counters if we want all stats updated * Return codes - * < 0 - Error, no counters updated * index - Updated the single counter pointed to by index * num_counters - Updated all counters (will reset the timestamp * and prevent further calls for lifespan milliseconds) * Drivers are allowed to update all counters in leiu of just the * one given in index at their option */ int (*get_hw_stats)(struct ib_device *device, struct rdma_hw_stats *stats, u8 port, int index); int (*query_device)(struct ib_device *device, struct ib_device_attr *device_attr, struct ib_udata *udata); int (*query_port)(struct ib_device *device, u8 port_num, struct ib_port_attr *port_attr); enum rdma_link_layer (*get_link_layer)(struct ib_device *device, u8 port_num); /* When calling get_netdev, the HW vendor's driver should return the * net device of device @device at port @port_num or NULL if such * a net device doesn't exist. The vendor driver should call dev_hold * on this net device. The HW vendor's device driver must guarantee * that this function returns NULL before the net device reaches * NETDEV_UNREGISTER_FINAL state. */ struct net_device *(*get_netdev)(struct ib_device *device, u8 port_num); int (*query_gid)(struct ib_device *device, u8 port_num, int index, union ib_gid *gid); /* When calling add_gid, the HW vendor's driver should * add the gid of device @device at gid index @index of * port @port_num to be @gid. Meta-info of that gid (for example, * the network device related to this gid is available * at @attr. @context allows the HW vendor driver to store extra * information together with a GID entry. The HW vendor may allocate * memory to contain this information and store it in @context when a * new GID entry is written to. Params are consistent until the next * call of add_gid or delete_gid. The function should return 0 on * success or error otherwise. The function could be called * concurrently for different ports. This function is only called * when roce_gid_table is used. */ int (*add_gid)(struct ib_device *device, u8 port_num, unsigned int index, const union ib_gid *gid, const struct ib_gid_attr *attr, void **context); /* When calling del_gid, the HW vendor's driver should delete the * gid of device @device at gid index @index of port @port_num. * Upon the deletion of a GID entry, the HW vendor must free any * allocated memory. The caller will clear @context afterwards. * This function is only called when roce_gid_table is used. */ int (*del_gid)(struct ib_device *device, u8 port_num, unsigned int index, void **context); int (*query_pkey)(struct ib_device *device, u8 port_num, u16 index, u16 *pkey); int (*modify_device)(struct ib_device *device, int device_modify_mask, struct ib_device_modify *device_modify); int (*modify_port)(struct ib_device *device, u8 port_num, int port_modify_mask, struct ib_port_modify *port_modify); struct ib_ucontext * (*alloc_ucontext)(struct ib_device *device, struct ib_udata *udata); int (*dealloc_ucontext)(struct ib_ucontext *context); int (*mmap)(struct ib_ucontext *context, struct vm_area_struct *vma); struct ib_pd * (*alloc_pd)(struct ib_device *device, struct ib_ucontext *context, struct ib_udata *udata); int (*dealloc_pd)(struct ib_pd *pd); struct ib_ah * (*create_ah)(struct ib_pd *pd, struct ib_ah_attr *ah_attr, struct ib_udata *udata); int (*modify_ah)(struct ib_ah *ah, struct ib_ah_attr *ah_attr); int (*query_ah)(struct ib_ah *ah, struct ib_ah_attr *ah_attr); int (*destroy_ah)(struct ib_ah *ah); struct ib_srq * (*create_srq)(struct ib_pd *pd, struct ib_srq_init_attr *srq_init_attr, struct ib_udata *udata); int (*modify_srq)(struct ib_srq *srq, struct ib_srq_attr *srq_attr, enum ib_srq_attr_mask srq_attr_mask, struct ib_udata *udata); int (*query_srq)(struct ib_srq *srq, struct ib_srq_attr *srq_attr); int (*destroy_srq)(struct ib_srq *srq); int (*post_srq_recv)(struct ib_srq *srq, struct ib_recv_wr *recv_wr, struct ib_recv_wr **bad_recv_wr); struct ib_qp * (*create_qp)(struct ib_pd *pd, struct ib_qp_init_attr *qp_init_attr, struct ib_udata *udata); int (*modify_qp)(struct ib_qp *qp, struct ib_qp_attr *qp_attr, int qp_attr_mask, struct ib_udata *udata); int (*query_qp)(struct ib_qp *qp, struct ib_qp_attr *qp_attr, int qp_attr_mask, struct ib_qp_init_attr *qp_init_attr); int (*destroy_qp)(struct ib_qp *qp); int (*post_send)(struct ib_qp *qp, struct ib_send_wr *send_wr, struct ib_send_wr **bad_send_wr); int (*post_recv)(struct ib_qp *qp, struct ib_recv_wr *recv_wr, struct ib_recv_wr **bad_recv_wr); struct ib_cq * (*create_cq)(struct ib_device *device, const struct ib_cq_init_attr *attr, struct ib_ucontext *context, struct ib_udata *udata); int (*modify_cq)(struct ib_cq *cq, u16 cq_count, u16 cq_period); int (*destroy_cq)(struct ib_cq *cq); int (*resize_cq)(struct ib_cq *cq, int cqe, struct ib_udata *udata); int (*poll_cq)(struct ib_cq *cq, int num_entries, struct ib_wc *wc); int (*peek_cq)(struct ib_cq *cq, int wc_cnt); int (*req_notify_cq)(struct ib_cq *cq, enum ib_cq_notify_flags flags); int (*req_ncomp_notif)(struct ib_cq *cq, int wc_cnt); struct ib_mr * (*get_dma_mr)(struct ib_pd *pd, int mr_access_flags); struct ib_mr * (*reg_user_mr)(struct ib_pd *pd, u64 start, u64 length, u64 virt_addr, int mr_access_flags, struct ib_udata *udata); int (*rereg_user_mr)(struct ib_mr *mr, int flags, u64 start, u64 length, u64 virt_addr, int mr_access_flags, struct ib_pd *pd, struct ib_udata *udata); int (*dereg_mr)(struct ib_mr *mr); struct ib_mr * (*alloc_mr)(struct ib_pd *pd, enum ib_mr_type mr_type, u32 max_num_sg); int (*map_mr_sg)(struct ib_mr *mr, struct scatterlist *sg, int sg_nents, unsigned int *sg_offset); struct ib_mw * (*alloc_mw)(struct ib_pd *pd, enum ib_mw_type type, struct ib_udata *udata); int (*dealloc_mw)(struct ib_mw *mw); struct ib_fmr * (*alloc_fmr)(struct ib_pd *pd, int mr_access_flags, struct ib_fmr_attr *fmr_attr); int (*map_phys_fmr)(struct ib_fmr *fmr, u64 *page_list, int list_len, u64 iova); int (*unmap_fmr)(struct list_head *fmr_list); int (*dealloc_fmr)(struct ib_fmr *fmr); int (*attach_mcast)(struct ib_qp *qp, union ib_gid *gid, u16 lid); int (*detach_mcast)(struct ib_qp *qp, union ib_gid *gid, u16 lid); int (*process_mad)(struct ib_device *device, int process_mad_flags, u8 port_num, const struct ib_wc *in_wc, const struct ib_grh *in_grh, const struct ib_mad_hdr *in_mad, size_t in_mad_size, struct ib_mad_hdr *out_mad, size_t *out_mad_size, u16 *out_mad_pkey_index); struct ib_xrcd * (*alloc_xrcd)(struct ib_device *device, struct ib_ucontext *ucontext, struct ib_udata *udata); int (*dealloc_xrcd)(struct ib_xrcd *xrcd); struct ib_flow * (*create_flow)(struct ib_qp *qp, struct ib_flow_attr *flow_attr, int domain); int (*destroy_flow)(struct ib_flow *flow_id); int (*check_mr_status)(struct ib_mr *mr, u32 check_mask, struct ib_mr_status *mr_status); void (*disassociate_ucontext)(struct ib_ucontext *ibcontext); void (*drain_rq)(struct ib_qp *qp); void (*drain_sq)(struct ib_qp *qp); int (*set_vf_link_state)(struct ib_device *device, int vf, u8 port, int state); int (*get_vf_config)(struct ib_device *device, int vf, u8 port, struct ifla_vf_info *ivf); int (*get_vf_stats)(struct ib_device *device, int vf, u8 port, struct ifla_vf_stats *stats); int (*set_vf_guid)(struct ib_device *device, int vf, u8 port, u64 guid, int type); struct ib_wq * (*create_wq)(struct ib_pd *pd, struct ib_wq_init_attr *init_attr, struct ib_udata *udata); int (*destroy_wq)(struct ib_wq *wq); int (*modify_wq)(struct ib_wq *wq, struct ib_wq_attr *attr, u32 wq_attr_mask, struct ib_udata *udata); struct ib_rwq_ind_table * (*create_rwq_ind_table)(struct ib_device *device, struct ib_rwq_ind_table_init_attr *init_attr, struct ib_udata *udata); int (*destroy_rwq_ind_table)(struct ib_rwq_ind_table *wq_ind_table); struct ib_dma_mapping_ops *dma_ops; struct module *owner; struct device dev; struct kobject *ports_parent; struct list_head port_list; enum { IB_DEV_UNINITIALIZED, IB_DEV_REGISTERED, IB_DEV_UNREGISTERED } reg_state; int uverbs_abi_ver; u64 uverbs_cmd_mask; u64 uverbs_ex_cmd_mask; char node_desc[IB_DEVICE_NODE_DESC_MAX]; __be64 node_guid; u32 local_dma_lkey; u16 is_switch:1; u8 node_type; u8 phys_port_cnt; struct ib_device_attr attrs; struct attribute_group *hw_stats_ag; struct rdma_hw_stats *hw_stats; /** * The following mandatory functions are used only at device * registration. Keep functions such as these at the end of this * structure to avoid cache line misses when accessing struct ib_device * in fast paths. */ int (*get_port_immutable)(struct ib_device *, u8, struct ib_port_immutable *); void (*get_dev_fw_str)(struct ib_device *, char *str, size_t str_len); }; struct ib_client { char *name; void (*add) (struct ib_device *); void (*remove)(struct ib_device *, void *client_data); /* Returns the net_dev belonging to this ib_client and matching the * given parameters. * @dev: An RDMA device that the net_dev use for communication. * @port: A physical port number on the RDMA device. * @pkey: P_Key that the net_dev uses if applicable. * @gid: A GID that the net_dev uses to communicate. * @addr: An IP address the net_dev is configured with. * @client_data: The device's client data set by ib_set_client_data(). * * An ib_client that implements a net_dev on top of RDMA devices * (such as IP over IB) should implement this callback, allowing the * rdma_cm module to find the right net_dev for a given request. * * The caller is responsible for calling dev_put on the returned * netdev. */ struct net_device *(*get_net_dev_by_params)( struct ib_device *dev, u8 port, u16 pkey, const union ib_gid *gid, const struct sockaddr *addr, void *client_data); struct list_head list; }; struct ib_device *ib_alloc_device(size_t size); void ib_dealloc_device(struct ib_device *device); void ib_get_device_fw_str(struct ib_device *device, char *str, size_t str_len); int ib_register_device(struct ib_device *device, int (*port_callback)(struct ib_device *, u8, struct kobject *)); void ib_unregister_device(struct ib_device *device); int ib_register_client (struct ib_client *client); void ib_unregister_client(struct ib_client *client); void *ib_get_client_data(struct ib_device *device, struct ib_client *client); void ib_set_client_data(struct ib_device *device, struct ib_client *client, void *data); static inline int ib_copy_from_udata(void *dest, struct ib_udata *udata, size_t len) { return copy_from_user(dest, udata->inbuf, len) ? -EFAULT : 0; } static inline int ib_copy_to_udata(struct ib_udata *udata, void *src, size_t len) { return copy_to_user(udata->outbuf, src, len) ? -EFAULT : 0; } static inline bool ib_is_udata_cleared(struct ib_udata *udata, size_t offset, size_t len) { const void __user *p = (const char __user *)udata->inbuf + offset; bool ret; u8 *buf; if (len > USHRT_MAX) return false; buf = memdup_user(p, len); if (IS_ERR(buf)) return false; ret = !memchr_inv(buf, 0, len); kfree(buf); return ret; } /** * ib_modify_qp_is_ok - Check that the supplied attribute mask * contains all required attributes and no attributes not allowed for * the given QP state transition. * @cur_state: Current QP state * @next_state: Next QP state * @type: QP type * @mask: Mask of supplied QP attributes * @ll : link layer of port * * This function is a helper function that a low-level driver's * modify_qp method can use to validate the consumer's input. It * checks that cur_state and next_state are valid QP states, that a * transition from cur_state to next_state is allowed by the IB spec, * and that the attribute mask supplied is allowed for the transition. */ int ib_modify_qp_is_ok(enum ib_qp_state cur_state, enum ib_qp_state next_state, enum ib_qp_type type, enum ib_qp_attr_mask mask, enum rdma_link_layer ll); int ib_register_event_handler (struct ib_event_handler *event_handler); int ib_unregister_event_handler(struct ib_event_handler *event_handler); void ib_dispatch_event(struct ib_event *event); int ib_query_port(struct ib_device *device, u8 port_num, struct ib_port_attr *port_attr); enum rdma_link_layer rdma_port_get_link_layer(struct ib_device *device, u8 port_num); /** * rdma_cap_ib_switch - Check if the device is IB switch * @device: Device to check * * Device driver is responsible for setting is_switch bit on * in ib_device structure at init time. * * Return: true if the device is IB switch. */ static inline bool rdma_cap_ib_switch(const struct ib_device *device) { return device->is_switch; } /** * rdma_start_port - Return the first valid port number for the device * specified * * @device: Device to be checked * * Return start port number */ static inline u8 rdma_start_port(const struct ib_device *device) { return rdma_cap_ib_switch(device) ? 0 : 1; } /** * rdma_end_port - Return the last valid port number for the device * specified * * @device: Device to be checked * * Return last port number */ static inline u8 rdma_end_port(const struct ib_device *device) { return rdma_cap_ib_switch(device) ? 0 : device->phys_port_cnt; } +static inline int rdma_is_port_valid(const struct ib_device *device, + unsigned int port) +{ + return (port >= rdma_start_port(device) && + port <= rdma_end_port(device)); +} + static inline bool rdma_protocol_ib(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_IB; } static inline bool rdma_protocol_roce(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & (RDMA_CORE_CAP_PROT_ROCE | RDMA_CORE_CAP_PROT_ROCE_UDP_ENCAP); } static inline bool rdma_protocol_roce_udp_encap(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_ROCE_UDP_ENCAP; } static inline bool rdma_protocol_roce_eth_encap(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_ROCE; } static inline bool rdma_protocol_iwarp(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_IWARP; } static inline bool rdma_ib_or_roce(const struct ib_device *device, u8 port_num) { return rdma_protocol_ib(device, port_num) || rdma_protocol_roce(device, port_num); } /** * rdma_cap_ib_mad - Check if the port of a device supports Infiniband * Management Datagrams. * @device: Device to check * @port_num: Port number to check * * Management Datagrams (MAD) are a required part of the InfiniBand * specification and are supported on all InfiniBand devices. A slightly * extended version are also supported on OPA interfaces. * * Return: true if the port supports sending/receiving of MAD packets. */ static inline bool rdma_cap_ib_mad(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IB_MAD; } /** * rdma_cap_opa_mad - Check if the port of device provides support for OPA * Management Datagrams. * @device: Device to check * @port_num: Port number to check * * Intel OmniPath devices extend and/or replace the InfiniBand Management * datagrams with their own versions. These OPA MADs share many but not all of * the characteristics of InfiniBand MADs. * * OPA MADs differ in the following ways: * * 1) MADs are variable size up to 2K * IBTA defined MADs remain fixed at 256 bytes * 2) OPA SMPs must carry valid PKeys * 3) OPA SMP packets are a different format * * Return: true if the port supports OPA MAD packet formats. */ static inline bool rdma_cap_opa_mad(struct ib_device *device, u8 port_num) { return (device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_OPA_MAD) == RDMA_CORE_CAP_OPA_MAD; } /** * rdma_cap_ib_smi - Check if the port of a device provides an Infiniband * Subnet Management Agent (SMA) on the Subnet Management Interface (SMI). * @device: Device to check * @port_num: Port number to check * * Each InfiniBand node is required to provide a Subnet Management Agent * that the subnet manager can access. Prior to the fabric being fully * configured by the subnet manager, the SMA is accessed via a well known * interface called the Subnet Management Interface (SMI). This interface * uses directed route packets to communicate with the SM to get around the * chicken and egg problem of the SM needing to know what's on the fabric * in order to configure the fabric, and needing to configure the fabric in * order to send packets to the devices on the fabric. These directed * route packets do not need the fabric fully configured in order to reach * their destination. The SMI is the only method allowed to send * directed route packets on an InfiniBand fabric. * * Return: true if the port provides an SMI. */ static inline bool rdma_cap_ib_smi(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IB_SMI; } /** * rdma_cap_ib_cm - Check if the port of device has the capability Infiniband * Communication Manager. * @device: Device to check * @port_num: Port number to check * * The InfiniBand Communication Manager is one of many pre-defined General * Service Agents (GSA) that are accessed via the General Service * Interface (GSI). It's role is to facilitate establishment of connections * between nodes as well as other management related tasks for established * connections. * * Return: true if the port supports an IB CM (this does not guarantee that * a CM is actually running however). */ static inline bool rdma_cap_ib_cm(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IB_CM; } /** * rdma_cap_iw_cm - Check if the port of device has the capability IWARP * Communication Manager. * @device: Device to check * @port_num: Port number to check * * Similar to above, but specific to iWARP connections which have a different * managment protocol than InfiniBand. * * Return: true if the port supports an iWARP CM (this does not guarantee that * a CM is actually running however). */ static inline bool rdma_cap_iw_cm(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IW_CM; } /** * rdma_cap_ib_sa - Check if the port of device has the capability Infiniband * Subnet Administration. * @device: Device to check * @port_num: Port number to check * * An InfiniBand Subnet Administration (SA) service is a pre-defined General * Service Agent (GSA) provided by the Subnet Manager (SM). On InfiniBand * fabrics, devices should resolve routes to other hosts by contacting the * SA to query the proper route. * * Return: true if the port should act as a client to the fabric Subnet * Administration interface. This does not imply that the SA service is * running locally. */ static inline bool rdma_cap_ib_sa(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IB_SA; } /** * rdma_cap_ib_mcast - Check if the port of device has the capability Infiniband * Multicast. * @device: Device to check * @port_num: Port number to check * * InfiniBand multicast registration is more complex than normal IPv4 or * IPv6 multicast registration. Each Host Channel Adapter must register * with the Subnet Manager when it wishes to join a multicast group. It * should do so only once regardless of how many queue pairs it subscribes * to this group. And it should leave the group only after all queue pairs * attached to the group have been detached. * * Return: true if the port must undertake the additional adminstrative * overhead of registering/unregistering with the SM and tracking of the * total number of queue pairs attached to the multicast group. */ static inline bool rdma_cap_ib_mcast(const struct ib_device *device, u8 port_num) { return rdma_cap_ib_sa(device, port_num); } /** * rdma_cap_af_ib - Check if the port of device has the capability * Native Infiniband Address. * @device: Device to check * @port_num: Port number to check * * InfiniBand addressing uses a port's GUID + Subnet Prefix to make a default * GID. RoCE uses a different mechanism, but still generates a GID via * a prescribed mechanism and port specific data. * * Return: true if the port uses a GID address to identify devices on the * network. */ static inline bool rdma_cap_af_ib(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_AF_IB; } /** * rdma_cap_eth_ah - Check if the port of device has the capability * Ethernet Address Handle. * @device: Device to check * @port_num: Port number to check * * RoCE is InfiniBand over Ethernet, and it uses a well defined technique * to fabricate GIDs over Ethernet/IP specific addresses native to the * port. Normally, packet headers are generated by the sending host * adapter, but when sending connectionless datagrams, we must manually * inject the proper headers for the fabric we are communicating over. * * Return: true if we are running as a RoCE port and must force the * addition of a Global Route Header built from our Ethernet Address * Handle into our header list for connectionless packets. */ static inline bool rdma_cap_eth_ah(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_ETH_AH; } /** * rdma_max_mad_size - Return the max MAD size required by this RDMA Port. * * @device: Device * @port_num: Port number * * This MAD size includes the MAD headers and MAD payload. No other headers * are included. * * Return the max MAD size required by the Port. Will return 0 if the port * does not support MADs */ static inline size_t rdma_max_mad_size(const struct ib_device *device, u8 port_num) { return device->port_immutable[port_num].max_mad_size; } /** * rdma_cap_roce_gid_table - Check if the port of device uses roce_gid_table * @device: Device to check * @port_num: Port number to check * * RoCE GID table mechanism manages the various GIDs for a device. * * NOTE: if allocating the port's GID table has failed, this call will still * return true, but any RoCE GID table API will fail. * * Return: true if the port uses RoCE GID table mechanism in order to manage * its GIDs. */ static inline bool rdma_cap_roce_gid_table(const struct ib_device *device, u8 port_num) { return rdma_protocol_roce(device, port_num) && device->add_gid && device->del_gid; } /* * Check if the device supports READ W/ INVALIDATE. */ static inline bool rdma_cap_read_inv(struct ib_device *dev, u32 port_num) { /* * iWarp drivers must support READ W/ INVALIDATE. No other protocol * has support for it yet. */ return rdma_protocol_iwarp(dev, port_num); } int ib_query_gid(struct ib_device *device, u8 port_num, int index, union ib_gid *gid, struct ib_gid_attr *attr); int ib_set_vf_link_state(struct ib_device *device, int vf, u8 port, int state); int ib_get_vf_config(struct ib_device *device, int vf, u8 port, struct ifla_vf_info *info); int ib_get_vf_stats(struct ib_device *device, int vf, u8 port, struct ifla_vf_stats *stats); int ib_set_vf_guid(struct ib_device *device, int vf, u8 port, u64 guid, int type); int ib_query_pkey(struct ib_device *device, u8 port_num, u16 index, u16 *pkey); int ib_modify_device(struct ib_device *device, int device_modify_mask, struct ib_device_modify *device_modify); int ib_modify_port(struct ib_device *device, u8 port_num, int port_modify_mask, struct ib_port_modify *port_modify); int ib_find_gid(struct ib_device *device, union ib_gid *gid, enum ib_gid_type gid_type, struct net_device *ndev, u8 *port_num, u16 *index); int ib_find_pkey(struct ib_device *device, u8 port_num, u16 pkey, u16 *index); enum ib_pd_flags { /* * Create a memory registration for all memory in the system and place * the rkey for it into pd->unsafe_global_rkey. This can be used by * ULPs to avoid the overhead of dynamic MRs. * * This flag is generally considered unsafe and must only be used in * extremly trusted environments. Every use of it will log a warning * in the kernel log. */ IB_PD_UNSAFE_GLOBAL_RKEY = 0x01, }; struct ib_pd *__ib_alloc_pd(struct ib_device *device, unsigned int flags, const char *caller); #define ib_alloc_pd(device, flags) \ __ib_alloc_pd((device), (flags), __func__) void ib_dealloc_pd(struct ib_pd *pd); /** * ib_create_ah - Creates an address handle for the given address vector. * @pd: The protection domain associated with the address handle. * @ah_attr: The attributes of the address vector. * * The address handle is used to reference a local or global destination * in all UD QP post sends. */ struct ib_ah *ib_create_ah(struct ib_pd *pd, struct ib_ah_attr *ah_attr); /** * ib_init_ah_from_wc - Initializes address handle attributes from a * work completion. * @device: Device on which the received message arrived. * @port_num: Port on which the received message arrived. * @wc: Work completion associated with the received message. * @grh: References the received global route header. This parameter is * ignored unless the work completion indicates that the GRH is valid. * @ah_attr: Returned attributes that can be used when creating an address * handle for replying to the message. */ int ib_init_ah_from_wc(struct ib_device *device, u8 port_num, const struct ib_wc *wc, const struct ib_grh *grh, struct ib_ah_attr *ah_attr); /** * ib_create_ah_from_wc - Creates an address handle associated with the * sender of the specified work completion. * @pd: The protection domain associated with the address handle. * @wc: Work completion information associated with a received message. * @grh: References the received global route header. This parameter is * ignored unless the work completion indicates that the GRH is valid. * @port_num: The outbound port number to associate with the address. * * The address handle is used to reference a local or global destination * in all UD QP post sends. */ struct ib_ah *ib_create_ah_from_wc(struct ib_pd *pd, const struct ib_wc *wc, const struct ib_grh *grh, u8 port_num); /** * ib_modify_ah - Modifies the address vector associated with an address * handle. * @ah: The address handle to modify. * @ah_attr: The new address vector attributes to associate with the * address handle. */ int ib_modify_ah(struct ib_ah *ah, struct ib_ah_attr *ah_attr); /** * ib_query_ah - Queries the address vector associated with an address * handle. * @ah: The address handle to query. * @ah_attr: The address vector attributes associated with the address * handle. */ int ib_query_ah(struct ib_ah *ah, struct ib_ah_attr *ah_attr); /** * ib_destroy_ah - Destroys an address handle. * @ah: The address handle to destroy. */ int ib_destroy_ah(struct ib_ah *ah); /** * ib_create_srq - Creates a SRQ associated with the specified protection * domain. * @pd: The protection domain associated with the SRQ. * @srq_init_attr: A list of initial attributes required to create the * SRQ. If SRQ creation succeeds, then the attributes are updated to * the actual capabilities of the created SRQ. * * srq_attr->max_wr and srq_attr->max_sge are read the determine the * requested size of the SRQ, and set to the actual values allocated * on return. If ib_create_srq() succeeds, then max_wr and max_sge * will always be at least as large as the requested values. */ struct ib_srq *ib_create_srq(struct ib_pd *pd, struct ib_srq_init_attr *srq_init_attr); /** * ib_modify_srq - Modifies the attributes for the specified SRQ. * @srq: The SRQ to modify. * @srq_attr: On input, specifies the SRQ attributes to modify. On output, * the current values of selected SRQ attributes are returned. * @srq_attr_mask: A bit-mask used to specify which attributes of the SRQ * are being modified. * * The mask may contain IB_SRQ_MAX_WR to resize the SRQ and/or * IB_SRQ_LIMIT to set the SRQ's limit and request notification when * the number of receives queued drops below the limit. */ int ib_modify_srq(struct ib_srq *srq, struct ib_srq_attr *srq_attr, enum ib_srq_attr_mask srq_attr_mask); /** * ib_query_srq - Returns the attribute list and current values for the * specified SRQ. * @srq: The SRQ to query. * @srq_attr: The attributes of the specified SRQ. */ int ib_query_srq(struct ib_srq *srq, struct ib_srq_attr *srq_attr); /** * ib_destroy_srq - Destroys the specified SRQ. * @srq: The SRQ to destroy. */ int ib_destroy_srq(struct ib_srq *srq); /** * ib_post_srq_recv - Posts a list of work requests to the specified SRQ. * @srq: The SRQ to post the work request on. * @recv_wr: A list of work requests to post on the receive queue. * @bad_recv_wr: On an immediate failure, this parameter will reference * the work request that failed to be posted on the QP. */ static inline int ib_post_srq_recv(struct ib_srq *srq, struct ib_recv_wr *recv_wr, struct ib_recv_wr **bad_recv_wr) { return srq->device->post_srq_recv(srq, recv_wr, bad_recv_wr); } /** * ib_create_qp - Creates a QP associated with the specified protection * domain. * @pd: The protection domain associated with the QP. * @qp_init_attr: A list of initial attributes required to create the * QP. If QP creation succeeds, then the attributes are updated to * the actual capabilities of the created QP. */ struct ib_qp *ib_create_qp(struct ib_pd *pd, struct ib_qp_init_attr *qp_init_attr); /** * ib_modify_qp - Modifies the attributes for the specified QP and then * transitions the QP to the given state. * @qp: The QP to modify. * @qp_attr: On input, specifies the QP attributes to modify. On output, * the current values of selected QP attributes are returned. * @qp_attr_mask: A bit-mask used to specify which attributes of the QP * are being modified. */ int ib_modify_qp(struct ib_qp *qp, struct ib_qp_attr *qp_attr, int qp_attr_mask); /** * ib_query_qp - Returns the attribute list and current values for the * specified QP. * @qp: The QP to query. * @qp_attr: The attributes of the specified QP. * @qp_attr_mask: A bit-mask used to select specific attributes to query. * @qp_init_attr: Additional attributes of the selected QP. * * The qp_attr_mask may be used to limit the query to gathering only the * selected attributes. */ int ib_query_qp(struct ib_qp *qp, struct ib_qp_attr *qp_attr, int qp_attr_mask, struct ib_qp_init_attr *qp_init_attr); /** * ib_destroy_qp - Destroys the specified QP. * @qp: The QP to destroy. */ int ib_destroy_qp(struct ib_qp *qp); /** * ib_open_qp - Obtain a reference to an existing sharable QP. * @xrcd - XRC domain * @qp_open_attr: Attributes identifying the QP to open. * * Returns a reference to a sharable QP. */ struct ib_qp *ib_open_qp(struct ib_xrcd *xrcd, struct ib_qp_open_attr *qp_open_attr); /** * ib_close_qp - Release an external reference to a QP. * @qp: The QP handle to release * * The opened QP handle is released by the caller. The underlying * shared QP is not destroyed until all internal references are released. */ int ib_close_qp(struct ib_qp *qp); /** * ib_post_send - Posts a list of work requests to the send queue of * the specified QP. * @qp: The QP to post the work request on. * @send_wr: A list of work requests to post on the send queue. * @bad_send_wr: On an immediate failure, this parameter will reference * the work request that failed to be posted on the QP. * * While IBA Vol. 1 section 11.4.1.1 specifies that if an immediate * error is returned, the QP state shall not be affected, * ib_post_send() will return an immediate error after queueing any * earlier work requests in the list. */ static inline int ib_post_send(struct ib_qp *qp, struct ib_send_wr *send_wr, struct ib_send_wr **bad_send_wr) { return qp->device->post_send(qp, send_wr, bad_send_wr); } /** * ib_post_recv - Posts a list of work requests to the receive queue of * the specified QP. * @qp: The QP to post the work request on. * @recv_wr: A list of work requests to post on the receive queue. * @bad_recv_wr: On an immediate failure, this parameter will reference * the work request that failed to be posted on the QP. */ static inline int ib_post_recv(struct ib_qp *qp, struct ib_recv_wr *recv_wr, struct ib_recv_wr **bad_recv_wr) { return qp->device->post_recv(qp, recv_wr, bad_recv_wr); } struct ib_cq *ib_alloc_cq(struct ib_device *dev, void *private, int nr_cqe, int comp_vector, enum ib_poll_context poll_ctx); void ib_free_cq(struct ib_cq *cq); /** * ib_create_cq - Creates a CQ on the specified device. * @device: The device on which to create the CQ. * @comp_handler: A user-specified callback that is invoked when a * completion event occurs on the CQ. * @event_handler: A user-specified callback that is invoked when an * asynchronous event not associated with a completion occurs on the CQ. * @cq_context: Context associated with the CQ returned to the user via * the associated completion and event handlers. * @cq_attr: The attributes the CQ should be created upon. * * Users can examine the cq structure to determine the actual CQ size. */ struct ib_cq *ib_create_cq(struct ib_device *device, ib_comp_handler comp_handler, void (*event_handler)(struct ib_event *, void *), void *cq_context, const struct ib_cq_init_attr *cq_attr); /** * ib_resize_cq - Modifies the capacity of the CQ. * @cq: The CQ to resize. * @cqe: The minimum size of the CQ. * * Users can examine the cq structure to determine the actual CQ size. */ int ib_resize_cq(struct ib_cq *cq, int cqe); /** * ib_modify_cq - Modifies moderation params of the CQ * @cq: The CQ to modify. * @cq_count: number of CQEs that will trigger an event * @cq_period: max period of time in usec before triggering an event * */ int ib_modify_cq(struct ib_cq *cq, u16 cq_count, u16 cq_period); /** * ib_destroy_cq - Destroys the specified CQ. * @cq: The CQ to destroy. */ int ib_destroy_cq(struct ib_cq *cq); /** * ib_poll_cq - poll a CQ for completion(s) * @cq:the CQ being polled * @num_entries:maximum number of completions to return * @wc:array of at least @num_entries &struct ib_wc where completions * will be returned * * Poll a CQ for (possibly multiple) completions. If the return value * is < 0, an error occurred. If the return value is >= 0, it is the * number of completions returned. If the return value is * non-negative and < num_entries, then the CQ was emptied. */ static inline int ib_poll_cq(struct ib_cq *cq, int num_entries, struct ib_wc *wc) { return cq->device->poll_cq(cq, num_entries, wc); } /** * ib_peek_cq - Returns the number of unreaped completions currently * on the specified CQ. * @cq: The CQ to peek. * @wc_cnt: A minimum number of unreaped completions to check for. * * If the number of unreaped completions is greater than or equal to wc_cnt, * this function returns wc_cnt, otherwise, it returns the actual number of * unreaped completions. */ int ib_peek_cq(struct ib_cq *cq, int wc_cnt); /** * ib_req_notify_cq - Request completion notification on a CQ. * @cq: The CQ to generate an event for. * @flags: * Must contain exactly one of %IB_CQ_SOLICITED or %IB_CQ_NEXT_COMP * to request an event on the next solicited event or next work * completion at any type, respectively. %IB_CQ_REPORT_MISSED_EVENTS * may also be |ed in to request a hint about missed events, as * described below. * * Return Value: * < 0 means an error occurred while requesting notification * == 0 means notification was requested successfully, and if * IB_CQ_REPORT_MISSED_EVENTS was passed in, then no events * were missed and it is safe to wait for another event. In * this case is it guaranteed that any work completions added * to the CQ since the last CQ poll will trigger a completion * notification event. * > 0 is only returned if IB_CQ_REPORT_MISSED_EVENTS was passed * in. It means that the consumer must poll the CQ again to * make sure it is empty to avoid missing an event because of a * race between requesting notification and an entry being * added to the CQ. This return value means it is possible * (but not guaranteed) that a work completion has been added * to the CQ since the last poll without triggering a * completion notification event. */ static inline int ib_req_notify_cq(struct ib_cq *cq, enum ib_cq_notify_flags flags) { return cq->device->req_notify_cq(cq, flags); } /** * ib_req_ncomp_notif - Request completion notification when there are * at least the specified number of unreaped completions on the CQ. * @cq: The CQ to generate an event for. * @wc_cnt: The number of unreaped completions that should be on the * CQ before an event is generated. */ static inline int ib_req_ncomp_notif(struct ib_cq *cq, int wc_cnt) { return cq->device->req_ncomp_notif ? cq->device->req_ncomp_notif(cq, wc_cnt) : -ENOSYS; } /** * ib_dma_mapping_error - check a DMA addr for error * @dev: The device for which the dma_addr was created * @dma_addr: The DMA address to check */ static inline int ib_dma_mapping_error(struct ib_device *dev, u64 dma_addr) { if (dev->dma_ops) return dev->dma_ops->mapping_error(dev, dma_addr); return dma_mapping_error(dev->dma_device, dma_addr); } /** * ib_dma_map_single - Map a kernel virtual address to DMA address * @dev: The device for which the dma_addr is to be created * @cpu_addr: The kernel virtual address * @size: The size of the region in bytes * @direction: The direction of the DMA */ static inline u64 ib_dma_map_single(struct ib_device *dev, void *cpu_addr, size_t size, enum dma_data_direction direction) { if (dev->dma_ops) return dev->dma_ops->map_single(dev, cpu_addr, size, direction); return dma_map_single(dev->dma_device, cpu_addr, size, direction); } /** * ib_dma_unmap_single - Destroy a mapping created by ib_dma_map_single() * @dev: The device for which the DMA address was created * @addr: The DMA address * @size: The size of the region in bytes * @direction: The direction of the DMA */ static inline void ib_dma_unmap_single(struct ib_device *dev, u64 addr, size_t size, enum dma_data_direction direction) { if (dev->dma_ops) dev->dma_ops->unmap_single(dev, addr, size, direction); else dma_unmap_single(dev->dma_device, addr, size, direction); } static inline u64 ib_dma_map_single_attrs(struct ib_device *dev, void *cpu_addr, size_t size, enum dma_data_direction direction, struct dma_attrs *dma_attrs) { return dma_map_single_attrs(dev->dma_device, cpu_addr, size, direction, dma_attrs); } static inline void ib_dma_unmap_single_attrs(struct ib_device *dev, u64 addr, size_t size, enum dma_data_direction direction, struct dma_attrs *dma_attrs) { return dma_unmap_single_attrs(dev->dma_device, addr, size, direction, dma_attrs); } /** * ib_dma_map_page - Map a physical page to DMA address * @dev: The device for which the dma_addr is to be created * @page: The page to be mapped * @offset: The offset within the page * @size: The size of the region in bytes * @direction: The direction of the DMA */ static inline u64 ib_dma_map_page(struct ib_device *dev, struct page *page, unsigned long offset, size_t size, enum dma_data_direction direction) { if (dev->dma_ops) return dev->dma_ops->map_page(dev, page, offset, size, direction); return dma_map_page(dev->dma_device, page, offset, size, direction); } /** * ib_dma_unmap_page - Destroy a mapping created by ib_dma_map_page() * @dev: The device for which the DMA address was created * @addr: The DMA address * @size: The size of the region in bytes * @direction: The direction of the DMA */ static inline void ib_dma_unmap_page(struct ib_device *dev, u64 addr, size_t size, enum dma_data_direction direction) { if (dev->dma_ops) dev->dma_ops->unmap_page(dev, addr, size, direction); else dma_unmap_page(dev->dma_device, addr, size, direction); } /** * ib_dma_map_sg - Map a scatter/gather list to DMA addresses * @dev: The device for which the DMA addresses are to be created * @sg: The array of scatter/gather entries * @nents: The number of scatter/gather entries * @direction: The direction of the DMA */ static inline int ib_dma_map_sg(struct ib_device *dev, struct scatterlist *sg, int nents, enum dma_data_direction direction) { if (dev->dma_ops) return dev->dma_ops->map_sg(dev, sg, nents, direction); return dma_map_sg(dev->dma_device, sg, nents, direction); } /** * ib_dma_unmap_sg - Unmap a scatter/gather list of DMA addresses * @dev: The device for which the DMA addresses were created * @sg: The array of scatter/gather entries * @nents: The number of scatter/gather entries * @direction: The direction of the DMA */ static inline void ib_dma_unmap_sg(struct ib_device *dev, struct scatterlist *sg, int nents, enum dma_data_direction direction) { if (dev->dma_ops) dev->dma_ops->unmap_sg(dev, sg, nents, direction); else dma_unmap_sg(dev->dma_device, sg, nents, direction); } static inline int ib_dma_map_sg_attrs(struct ib_device *dev, struct scatterlist *sg, int nents, enum dma_data_direction direction, struct dma_attrs *dma_attrs) { if (dev->dma_ops) return dev->dma_ops->map_sg_attrs(dev, sg, nents, direction, dma_attrs); else return dma_map_sg_attrs(dev->dma_device, sg, nents, direction, dma_attrs); } static inline void ib_dma_unmap_sg_attrs(struct ib_device *dev, struct scatterlist *sg, int nents, enum dma_data_direction direction, struct dma_attrs *dma_attrs) { if (dev->dma_ops) return dev->dma_ops->unmap_sg_attrs(dev, sg, nents, direction, dma_attrs); else dma_unmap_sg_attrs(dev->dma_device, sg, nents, direction, dma_attrs); } /** * ib_sg_dma_address - Return the DMA address from a scatter/gather entry * @dev: The device for which the DMA addresses were created * @sg: The scatter/gather entry * * Note: this function is obsolete. To do: change all occurrences of * ib_sg_dma_address() into sg_dma_address(). */ static inline u64 ib_sg_dma_address(struct ib_device *dev, struct scatterlist *sg) { return sg_dma_address(sg); } /** * ib_sg_dma_len - Return the DMA length from a scatter/gather entry * @dev: The device for which the DMA addresses were created * @sg: The scatter/gather entry * * Note: this function is obsolete. To do: change all occurrences of * ib_sg_dma_len() into sg_dma_len(). */ static inline unsigned int ib_sg_dma_len(struct ib_device *dev, struct scatterlist *sg) { return sg_dma_len(sg); } /** * ib_dma_sync_single_for_cpu - Prepare DMA region to be accessed by CPU * @dev: The device for which the DMA address was created * @addr: The DMA address * @size: The size of the region in bytes * @dir: The direction of the DMA */ static inline void ib_dma_sync_single_for_cpu(struct ib_device *dev, u64 addr, size_t size, enum dma_data_direction dir) { if (dev->dma_ops) dev->dma_ops->sync_single_for_cpu(dev, addr, size, dir); else dma_sync_single_for_cpu(dev->dma_device, addr, size, dir); } /** * ib_dma_sync_single_for_device - Prepare DMA region to be accessed by device * @dev: The device for which the DMA address was created * @addr: The DMA address * @size: The size of the region in bytes * @dir: The direction of the DMA */ static inline void ib_dma_sync_single_for_device(struct ib_device *dev, u64 addr, size_t size, enum dma_data_direction dir) { if (dev->dma_ops) dev->dma_ops->sync_single_for_device(dev, addr, size, dir); else dma_sync_single_for_device(dev->dma_device, addr, size, dir); } /** * ib_dma_alloc_coherent - Allocate memory and map it for DMA * @dev: The device for which the DMA address is requested * @size: The size of the region to allocate in bytes * @dma_handle: A pointer for returning the DMA address of the region * @flag: memory allocator flags */ static inline void *ib_dma_alloc_coherent(struct ib_device *dev, size_t size, u64 *dma_handle, gfp_t flag) { if (dev->dma_ops) return dev->dma_ops->alloc_coherent(dev, size, dma_handle, flag); else { dma_addr_t handle; void *ret; ret = dma_alloc_coherent(dev->dma_device, size, &handle, flag); *dma_handle = handle; return ret; } } /** * ib_dma_free_coherent - Free memory allocated by ib_dma_alloc_coherent() * @dev: The device for which the DMA addresses were allocated * @size: The size of the region * @cpu_addr: the address returned by ib_dma_alloc_coherent() * @dma_handle: the DMA address returned by ib_dma_alloc_coherent() */ static inline void ib_dma_free_coherent(struct ib_device *dev, size_t size, void *cpu_addr, u64 dma_handle) { if (dev->dma_ops) dev->dma_ops->free_coherent(dev, size, cpu_addr, dma_handle); else dma_free_coherent(dev->dma_device, size, cpu_addr, dma_handle); } /** * ib_dereg_mr - Deregisters a memory region and removes it from the * HCA translation table. * @mr: The memory region to deregister. * * This function can fail, if the memory region has memory windows bound to it. */ int ib_dereg_mr(struct ib_mr *mr); struct ib_mr *ib_alloc_mr(struct ib_pd *pd, enum ib_mr_type mr_type, u32 max_num_sg); /** * ib_update_fast_reg_key - updates the key portion of the fast_reg MR * R_Key and L_Key. * @mr - struct ib_mr pointer to be updated. * @newkey - new key to be used. */ static inline void ib_update_fast_reg_key(struct ib_mr *mr, u8 newkey) { mr->lkey = (mr->lkey & 0xffffff00) | newkey; mr->rkey = (mr->rkey & 0xffffff00) | newkey; } /** * ib_inc_rkey - increments the key portion of the given rkey. Can be used * for calculating a new rkey for type 2 memory windows. * @rkey - the rkey to increment. */ static inline u32 ib_inc_rkey(u32 rkey) { const u32 mask = 0x000000ff; return ((rkey + 1) & mask) | (rkey & ~mask); } /** * ib_alloc_fmr - Allocates a unmapped fast memory region. * @pd: The protection domain associated with the unmapped region. * @mr_access_flags: Specifies the memory access rights. * @fmr_attr: Attributes of the unmapped region. * * A fast memory region must be mapped before it can be used as part of * a work request. */ struct ib_fmr *ib_alloc_fmr(struct ib_pd *pd, int mr_access_flags, struct ib_fmr_attr *fmr_attr); /** * ib_map_phys_fmr - Maps a list of physical pages to a fast memory region. * @fmr: The fast memory region to associate with the pages. * @page_list: An array of physical pages to map to the fast memory region. * @list_len: The number of pages in page_list. * @iova: The I/O virtual address to use with the mapped region. */ static inline int ib_map_phys_fmr(struct ib_fmr *fmr, u64 *page_list, int list_len, u64 iova) { return fmr->device->map_phys_fmr(fmr, page_list, list_len, iova); } /** * ib_unmap_fmr - Removes the mapping from a list of fast memory regions. * @fmr_list: A linked list of fast memory regions to unmap. */ int ib_unmap_fmr(struct list_head *fmr_list); /** * ib_dealloc_fmr - Deallocates a fast memory region. * @fmr: The fast memory region to deallocate. */ int ib_dealloc_fmr(struct ib_fmr *fmr); /** * ib_attach_mcast - Attaches the specified QP to a multicast group. * @qp: QP to attach to the multicast group. The QP must be type * IB_QPT_UD. * @gid: Multicast group GID. * @lid: Multicast group LID in host byte order. * * In order to send and receive multicast packets, subnet * administration must have created the multicast group and configured * the fabric appropriately. The port associated with the specified * QP must also be a member of the multicast group. */ int ib_attach_mcast(struct ib_qp *qp, union ib_gid *gid, u16 lid); /** * ib_detach_mcast - Detaches the specified QP from a multicast group. * @qp: QP to detach from the multicast group. * @gid: Multicast group GID. * @lid: Multicast group LID in host byte order. */ int ib_detach_mcast(struct ib_qp *qp, union ib_gid *gid, u16 lid); /** * ib_alloc_xrcd - Allocates an XRC domain. * @device: The device on which to allocate the XRC domain. */ struct ib_xrcd *ib_alloc_xrcd(struct ib_device *device); /** * ib_dealloc_xrcd - Deallocates an XRC domain. * @xrcd: The XRC domain to deallocate. */ int ib_dealloc_xrcd(struct ib_xrcd *xrcd); struct ib_flow *ib_create_flow(struct ib_qp *qp, struct ib_flow_attr *flow_attr, int domain); int ib_destroy_flow(struct ib_flow *flow_id); static inline int ib_check_mr_access(int flags) { /* * Local write permission is required if remote write or * remote atomic permission is also requested. */ if (flags & (IB_ACCESS_REMOTE_ATOMIC | IB_ACCESS_REMOTE_WRITE) && !(flags & IB_ACCESS_LOCAL_WRITE)) return -EINVAL; return 0; } /** * ib_check_mr_status: lightweight check of MR status. * This routine may provide status checks on a selected * ib_mr. first use is for signature status check. * * @mr: A memory region. * @check_mask: Bitmask of which checks to perform from * ib_mr_status_check enumeration. * @mr_status: The container of relevant status checks. * failed checks will be indicated in the status bitmask * and the relevant info shall be in the error item. */ int ib_check_mr_status(struct ib_mr *mr, u32 check_mask, struct ib_mr_status *mr_status); struct net_device *ib_get_net_dev_by_params(struct ib_device *dev, u8 port, u16 pkey, const union ib_gid *gid, const struct sockaddr *addr); struct ib_wq *ib_create_wq(struct ib_pd *pd, struct ib_wq_init_attr *init_attr); int ib_destroy_wq(struct ib_wq *wq); int ib_modify_wq(struct ib_wq *wq, struct ib_wq_attr *attr, u32 wq_attr_mask); struct ib_rwq_ind_table *ib_create_rwq_ind_table(struct ib_device *device, struct ib_rwq_ind_table_init_attr* wq_ind_table_init_attr); int ib_destroy_rwq_ind_table(struct ib_rwq_ind_table *wq_ind_table); int ib_map_mr_sg(struct ib_mr *mr, struct scatterlist *sg, int sg_nents, unsigned int *sg_offset, unsigned int page_size); static inline int ib_map_mr_sg_zbva(struct ib_mr *mr, struct scatterlist *sg, int sg_nents, unsigned int *sg_offset, unsigned int page_size) { int n; n = ib_map_mr_sg(mr, sg, sg_nents, sg_offset, page_size); mr->iova = 0; return n; } int ib_sg_to_pages(struct ib_mr *mr, struct scatterlist *sgl, int sg_nents, unsigned int *sg_offset, int (*set_page)(struct ib_mr *, u64)); void ib_drain_rq(struct ib_qp *qp); void ib_drain_sq(struct ib_qp *qp); void ib_drain_qp(struct ib_qp *qp); int ib_resolve_eth_dmac(struct ib_device *device, struct ib_ah_attr *ah_attr); #endif /* IB_VERBS_H */