Index: head/sys/dev/mpr/mpr_sas.c =================================================================== --- head/sys/dev/mpr/mpr_sas.c (revision 342385) +++ head/sys/dev/mpr/mpr_sas.c (revision 342386) @@ -1,3904 +1,3897 @@ /*- * Copyright (c) 2009 Yahoo! Inc. * Copyright (c) 2011-2015 LSI Corp. * Copyright (c) 2013-2016 Avago Technologies * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD * */ #include __FBSDID("$FreeBSD$"); /* Communications core for Avago Technologies (LSI) MPT3 */ /* TODO Move headers to mprvar */ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #if __FreeBSD_version >= 900026 #include #endif #include #include #include #include #include #include #include #include #include #include #include #include #include #define MPRSAS_DISCOVERY_TIMEOUT 20 #define MPRSAS_MAX_DISCOVERY_TIMEOUTS 10 /* 200 seconds */ /* * static array to check SCSI OpCode for EEDP protection bits */ #define PRO_R MPI2_SCSIIO_EEDPFLAGS_CHECK_REMOVE_OP #define PRO_W MPI2_SCSIIO_EEDPFLAGS_INSERT_OP #define PRO_V MPI2_SCSIIO_EEDPFLAGS_INSERT_OP static uint8_t op_code_prot[256] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, PRO_R, 0, PRO_W, 0, 0, 0, PRO_W, PRO_V, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, PRO_W, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, PRO_R, 0, PRO_W, 0, 0, 0, PRO_W, PRO_V, 0, 0, 0, PRO_W, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, PRO_R, 0, PRO_W, 0, 0, 0, PRO_W, PRO_V, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 }; MALLOC_DEFINE(M_MPRSAS, "MPRSAS", "MPR SAS memory"); static void mprsas_remove_device(struct mpr_softc *, struct mpr_command *); static void mprsas_remove_complete(struct mpr_softc *, struct mpr_command *); static void mprsas_action(struct cam_sim *sim, union ccb *ccb); static void mprsas_poll(struct cam_sim *sim); static void mprsas_scsiio_timeout(void *data); static void mprsas_abort_complete(struct mpr_softc *sc, struct mpr_command *cm); static void mprsas_action_scsiio(struct mprsas_softc *, union ccb *); static void mprsas_scsiio_complete(struct mpr_softc *, struct mpr_command *); static void mprsas_action_resetdev(struct mprsas_softc *, union ccb *); static void mprsas_resetdev_complete(struct mpr_softc *, struct mpr_command *); static int mprsas_send_abort(struct mpr_softc *sc, struct mpr_command *tm, struct mpr_command *cm); static void mprsas_async(void *callback_arg, uint32_t code, struct cam_path *path, void *arg); #if (__FreeBSD_version < 901503) || \ ((__FreeBSD_version >= 1000000) && (__FreeBSD_version < 1000006)) static void mprsas_check_eedp(struct mpr_softc *sc, struct cam_path *path, struct ccb_getdev *cgd); static void mprsas_read_cap_done(struct cam_periph *periph, union ccb *done_ccb); #endif static int mprsas_send_portenable(struct mpr_softc *sc); static void mprsas_portenable_complete(struct mpr_softc *sc, struct mpr_command *cm); #if __FreeBSD_version >= 900026 static void mprsas_smpio_complete(struct mpr_softc *sc, struct mpr_command *cm); static void mprsas_send_smpcmd(struct mprsas_softc *sassc, union ccb *ccb, uint64_t sasaddr); static void mprsas_action_smpio(struct mprsas_softc *sassc, union ccb *ccb); #endif //FreeBSD_version >= 900026 struct mprsas_target * mprsas_find_target_by_handle(struct mprsas_softc *sassc, int start, uint16_t handle) { struct mprsas_target *target; int i; for (i = start; i < sassc->maxtargets; i++) { target = &sassc->targets[i]; if (target->handle == handle) return (target); } return (NULL); } /* we need to freeze the simq during attach and diag reset, to avoid failing * commands before device handles have been found by discovery. Since * discovery involves reading config pages and possibly sending commands, * discovery actions may continue even after we receive the end of discovery * event, so refcount discovery actions instead of assuming we can unfreeze * the simq when we get the event. */ void mprsas_startup_increment(struct mprsas_softc *sassc) { MPR_FUNCTRACE(sassc->sc); if ((sassc->flags & MPRSAS_IN_STARTUP) != 0) { if (sassc->startup_refcount++ == 0) { /* just starting, freeze the simq */ mpr_dprint(sassc->sc, MPR_INIT, "%s freezing simq\n", __func__); #if (__FreeBSD_version >= 1000039) || \ ((__FreeBSD_version < 1000000) && (__FreeBSD_version >= 902502)) xpt_hold_boot(); #endif xpt_freeze_simq(sassc->sim, 1); } mpr_dprint(sassc->sc, MPR_INIT, "%s refcount %u\n", __func__, sassc->startup_refcount); } } void mprsas_release_simq_reinit(struct mprsas_softc *sassc) { if (sassc->flags & MPRSAS_QUEUE_FROZEN) { sassc->flags &= ~MPRSAS_QUEUE_FROZEN; xpt_release_simq(sassc->sim, 1); mpr_dprint(sassc->sc, MPR_INFO, "Unfreezing SIM queue\n"); } } void mprsas_startup_decrement(struct mprsas_softc *sassc) { MPR_FUNCTRACE(sassc->sc); if ((sassc->flags & MPRSAS_IN_STARTUP) != 0) { if (--sassc->startup_refcount == 0) { /* finished all discovery-related actions, release * the simq and rescan for the latest topology. */ mpr_dprint(sassc->sc, MPR_INIT, "%s releasing simq\n", __func__); sassc->flags &= ~MPRSAS_IN_STARTUP; xpt_release_simq(sassc->sim, 1); #if (__FreeBSD_version >= 1000039) || \ ((__FreeBSD_version < 1000000) && (__FreeBSD_version >= 902502)) xpt_release_boot(); #else mprsas_rescan_target(sassc->sc, NULL); #endif } mpr_dprint(sassc->sc, MPR_INIT, "%s refcount %u\n", __func__, sassc->startup_refcount); } } -/* The firmware requires us to stop sending commands when we're doing task - * management, so refcount the TMs and keep the simq frozen when any are in +/* + * The firmware requires us to stop sending commands when we're doing task + * management. * use. + * XXX The logic for serializing the device has been made lazy and moved to + * mprsas_prepare_for_tm(). */ struct mpr_command * mprsas_alloc_tm(struct mpr_softc *sc) { struct mpr_command *tm; MPR_FUNCTRACE(sc); tm = mpr_alloc_high_priority_command(sc); return tm; } void mprsas_free_tm(struct mpr_softc *sc, struct mpr_command *tm) { int target_id = 0xFFFFFFFF; MPR_FUNCTRACE(sc); if (tm == NULL) return; /* * For TM's the devq is frozen for the device. Unfreeze it here and * free the resources used for freezing the devq. Must clear the * INRESET flag as well or scsi I/O will not work. */ if (tm->cm_targ != NULL) { tm->cm_targ->flags &= ~MPRSAS_TARGET_INRESET; target_id = tm->cm_targ->tid; } if (tm->cm_ccb) { mpr_dprint(sc, MPR_INFO, "Unfreezing devq for target ID %d\n", target_id); xpt_release_devq(tm->cm_ccb->ccb_h.path, 1, TRUE); xpt_free_path(tm->cm_ccb->ccb_h.path); xpt_free_ccb(tm->cm_ccb); } mpr_free_high_priority_command(sc, tm); } void mprsas_rescan_target(struct mpr_softc *sc, struct mprsas_target *targ) { struct mprsas_softc *sassc = sc->sassc; path_id_t pathid; target_id_t targetid; union ccb *ccb; MPR_FUNCTRACE(sc); pathid = cam_sim_path(sassc->sim); if (targ == NULL) targetid = CAM_TARGET_WILDCARD; else targetid = targ - sassc->targets; /* * Allocate a CCB and schedule a rescan. */ ccb = xpt_alloc_ccb_nowait(); if (ccb == NULL) { mpr_dprint(sc, MPR_ERROR, "unable to alloc CCB for rescan\n"); return; } if (xpt_create_path(&ccb->ccb_h.path, NULL, pathid, targetid, CAM_LUN_WILDCARD) != CAM_REQ_CMP) { mpr_dprint(sc, MPR_ERROR, "unable to create path for rescan\n"); xpt_free_ccb(ccb); return; } if (targetid == CAM_TARGET_WILDCARD) ccb->ccb_h.func_code = XPT_SCAN_BUS; else ccb->ccb_h.func_code = XPT_SCAN_TGT; mpr_dprint(sc, MPR_TRACE, "%s targetid %u\n", __func__, targetid); xpt_rescan(ccb); } static void mprsas_log_command(struct mpr_command *cm, u_int level, const char *fmt, ...) { struct sbuf sb; va_list ap; char str[192]; char path_str[64]; if (cm == NULL) return; /* No need to be in here if debugging isn't enabled */ if ((cm->cm_sc->mpr_debug & level) == 0) return; sbuf_new(&sb, str, sizeof(str), 0); va_start(ap, fmt); if (cm->cm_ccb != NULL) { xpt_path_string(cm->cm_ccb->csio.ccb_h.path, path_str, sizeof(path_str)); sbuf_cat(&sb, path_str); if (cm->cm_ccb->ccb_h.func_code == XPT_SCSI_IO) { scsi_command_string(&cm->cm_ccb->csio, &sb); sbuf_printf(&sb, "length %d ", cm->cm_ccb->csio.dxfer_len); } } else { sbuf_printf(&sb, "(noperiph:%s%d:%u:%u:%u): ", cam_sim_name(cm->cm_sc->sassc->sim), cam_sim_unit(cm->cm_sc->sassc->sim), cam_sim_bus(cm->cm_sc->sassc->sim), cm->cm_targ ? cm->cm_targ->tid : 0xFFFFFFFF, cm->cm_lun); } sbuf_printf(&sb, "SMID %u ", cm->cm_desc.Default.SMID); sbuf_vprintf(&sb, fmt, ap); sbuf_finish(&sb); mpr_print_field(cm->cm_sc, "%s", sbuf_data(&sb)); va_end(ap); } static void mprsas_remove_volume(struct mpr_softc *sc, struct mpr_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *reply; struct mprsas_target *targ; uint16_t handle; MPR_FUNCTRACE(sc); reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; handle = (uint16_t)(uintptr_t)tm->cm_complete_data; targ = tm->cm_targ; if (reply == NULL) { /* XXX retry the remove after the diag reset completes? */ mpr_dprint(sc, MPR_FAULT, "%s NULL reply resetting device " "0x%04x\n", __func__, handle); mprsas_free_tm(sc, tm); return; } if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) { mpr_dprint(sc, MPR_ERROR, "IOCStatus = 0x%x while resetting " "device 0x%x\n", le16toh(reply->IOCStatus), handle); } mpr_dprint(sc, MPR_XINFO, "Reset aborted %u commands\n", le32toh(reply->TerminationCount)); mpr_free_reply(sc, tm->cm_reply_data); tm->cm_reply = NULL; /* Ensures the reply won't get re-freed */ mpr_dprint(sc, MPR_XINFO, "clearing target %u handle 0x%04x\n", targ->tid, handle); /* * Don't clear target if remove fails because things will get confusing. * Leave the devname and sasaddr intact so that we know to avoid reusing * this target id if possible, and so we can assign the same target id * to this device if it comes back in the future. */ if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SUCCESS) { targ = tm->cm_targ; targ->handle = 0x0; targ->encl_handle = 0x0; targ->encl_level_valid = 0x0; targ->encl_level = 0x0; targ->connector_name[0] = ' '; targ->connector_name[1] = ' '; targ->connector_name[2] = ' '; targ->connector_name[3] = ' '; targ->encl_slot = 0x0; targ->exp_dev_handle = 0x0; targ->phy_num = 0x0; targ->linkrate = 0x0; targ->devinfo = 0x0; targ->flags = 0x0; targ->scsi_req_desc_type = 0; } mprsas_free_tm(sc, tm); } /* * No Need to call "MPI2_SAS_OP_REMOVE_DEVICE" For Volume removal. * Otherwise Volume Delete is same as Bare Drive Removal. */ void mprsas_prepare_volume_remove(struct mprsas_softc *sassc, uint16_t handle) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mpr_softc *sc; struct mpr_command *cm; struct mprsas_target *targ = NULL; MPR_FUNCTRACE(sassc->sc); sc = sassc->sc; targ = mprsas_find_target_by_handle(sassc, 0, handle); if (targ == NULL) { /* FIXME: what is the action? */ /* We don't know about this device? */ mpr_dprint(sc, MPR_ERROR, "%s %d : invalid handle 0x%x \n", __func__,__LINE__, handle); return; } targ->flags |= MPRSAS_TARGET_INREMOVAL; cm = mprsas_alloc_tm(sc); if (cm == NULL) { mpr_dprint(sc, MPR_ERROR, "%s: command alloc failure\n", __func__); return; } mprsas_rescan_target(sc, targ); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)cm->cm_req; req->DevHandle = targ->handle; req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET; /* SAS Hard Link Reset / SATA Link Reset */ req->MsgFlags = MPI2_SCSITASKMGMT_MSGFLAGS_LINK_RESET; cm->cm_targ = targ; cm->cm_data = NULL; - cm->cm_desc.HighPriority.RequestFlags = - MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; cm->cm_complete = mprsas_remove_volume; cm->cm_complete_data = (void *)(uintptr_t)handle; mpr_dprint(sc, MPR_INFO, "%s: Sending reset for target ID %d\n", __func__, targ->tid); mprsas_prepare_for_tm(sc, cm, targ, CAM_LUN_WILDCARD); mpr_map_command(sc, cm); } /* * The firmware performs debounce on the link to avoid transient link errors * and false removals. When it does decide that link has been lost and a * device needs to go away, it expects that the host will perform a target reset * and then an op remove. The reset has the side-effect of aborting any * outstanding requests for the device, which is required for the op-remove to * succeed. It's not clear if the host should check for the device coming back * alive after the reset. */ void mprsas_prepare_remove(struct mprsas_softc *sassc, uint16_t handle) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mpr_softc *sc; struct mpr_command *cm; struct mprsas_target *targ = NULL; MPR_FUNCTRACE(sassc->sc); sc = sassc->sc; targ = mprsas_find_target_by_handle(sassc, 0, handle); if (targ == NULL) { /* FIXME: what is the action? */ /* We don't know about this device? */ mpr_dprint(sc, MPR_ERROR, "%s : invalid handle 0x%x \n", __func__, handle); return; } targ->flags |= MPRSAS_TARGET_INREMOVAL; cm = mprsas_alloc_tm(sc); if (cm == NULL) { mpr_dprint(sc, MPR_ERROR, "%s: command alloc failure\n", __func__); return; } mprsas_rescan_target(sc, targ); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)cm->cm_req; memset(req, 0, sizeof(*req)); req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET; /* SAS Hard Link Reset / SATA Link Reset */ req->MsgFlags = MPI2_SCSITASKMGMT_MSGFLAGS_LINK_RESET; cm->cm_targ = targ; cm->cm_data = NULL; - cm->cm_desc.HighPriority.RequestFlags = - MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; cm->cm_complete = mprsas_remove_device; cm->cm_complete_data = (void *)(uintptr_t)handle; mpr_dprint(sc, MPR_INFO, "%s: Sending reset for target ID %d\n", __func__, targ->tid); mprsas_prepare_for_tm(sc, cm, targ, CAM_LUN_WILDCARD); mpr_map_command(sc, cm); } static void mprsas_remove_device(struct mpr_softc *sc, struct mpr_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *reply; MPI2_SAS_IOUNIT_CONTROL_REQUEST *req; struct mprsas_target *targ; struct mpr_command *next_cm; uint16_t handle; MPR_FUNCTRACE(sc); reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; handle = (uint16_t)(uintptr_t)tm->cm_complete_data; targ = tm->cm_targ; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { mpr_dprint(sc, MPR_ERROR, "%s: cm_flags = %#x for remove of " "handle %#04x! This should not happen!\n", __func__, tm->cm_flags, handle); } if (reply == NULL) { /* XXX retry the remove after the diag reset completes? */ mpr_dprint(sc, MPR_FAULT, "%s NULL reply resetting device " "0x%04x\n", __func__, handle); mprsas_free_tm(sc, tm); return; } if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) { mpr_dprint(sc, MPR_ERROR, "IOCStatus = 0x%x while resetting " "device 0x%x\n", le16toh(reply->IOCStatus), handle); } mpr_dprint(sc, MPR_XINFO, "Reset aborted %u commands\n", le32toh(reply->TerminationCount)); mpr_free_reply(sc, tm->cm_reply_data); tm->cm_reply = NULL; /* Ensures the reply won't get re-freed */ /* Reuse the existing command */ req = (MPI2_SAS_IOUNIT_CONTROL_REQUEST *)tm->cm_req; memset(req, 0, sizeof(*req)); req->Function = MPI2_FUNCTION_SAS_IO_UNIT_CONTROL; req->Operation = MPI2_SAS_OP_REMOVE_DEVICE; req->DevHandle = htole16(handle); tm->cm_data = NULL; tm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; tm->cm_complete = mprsas_remove_complete; tm->cm_complete_data = (void *)(uintptr_t)handle; mpr_map_command(sc, tm); mpr_dprint(sc, MPR_INFO, "clearing target %u handle 0x%04x\n", targ->tid, handle); if (targ->encl_level_valid) { mpr_dprint(sc, MPR_INFO, "At enclosure level %d, slot %d, " "connector name (%4s)\n", targ->encl_level, targ->encl_slot, targ->connector_name); } TAILQ_FOREACH_SAFE(tm, &targ->commands, cm_link, next_cm) { union ccb *ccb; mpr_dprint(sc, MPR_XINFO, "Completing missed command %p\n", tm); ccb = tm->cm_complete_data; mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); mprsas_scsiio_complete(sc, tm); } } static void mprsas_remove_complete(struct mpr_softc *sc, struct mpr_command *tm) { MPI2_SAS_IOUNIT_CONTROL_REPLY *reply; uint16_t handle; struct mprsas_target *targ; struct mprsas_lun *lun; MPR_FUNCTRACE(sc); reply = (MPI2_SAS_IOUNIT_CONTROL_REPLY *)tm->cm_reply; handle = (uint16_t)(uintptr_t)tm->cm_complete_data; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { mpr_dprint(sc, MPR_XINFO, "%s: cm_flags = %#x for remove of " "handle %#04x! This should not happen!\n", __func__, tm->cm_flags, handle); mprsas_free_tm(sc, tm); return; } if (reply == NULL) { /* most likely a chip reset */ mpr_dprint(sc, MPR_FAULT, "%s NULL reply removing device " "0x%04x\n", __func__, handle); mprsas_free_tm(sc, tm); return; } mpr_dprint(sc, MPR_XINFO, "%s on handle 0x%04x, IOCStatus= 0x%x\n", __func__, handle, le16toh(reply->IOCStatus)); /* * Don't clear target if remove fails because things will get confusing. * Leave the devname and sasaddr intact so that we know to avoid reusing * this target id if possible, and so we can assign the same target id * to this device if it comes back in the future. */ if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SUCCESS) { targ = tm->cm_targ; targ->handle = 0x0; targ->encl_handle = 0x0; targ->encl_level_valid = 0x0; targ->encl_level = 0x0; targ->connector_name[0] = ' '; targ->connector_name[1] = ' '; targ->connector_name[2] = ' '; targ->connector_name[3] = ' '; targ->encl_slot = 0x0; targ->exp_dev_handle = 0x0; targ->phy_num = 0x0; targ->linkrate = 0x0; targ->devinfo = 0x0; targ->flags = 0x0; targ->scsi_req_desc_type = 0; while (!SLIST_EMPTY(&targ->luns)) { lun = SLIST_FIRST(&targ->luns); SLIST_REMOVE_HEAD(&targ->luns, lun_link); free(lun, M_MPR); } } mprsas_free_tm(sc, tm); } static int mprsas_register_events(struct mpr_softc *sc) { uint8_t events[16]; bzero(events, 16); setbit(events, MPI2_EVENT_SAS_DEVICE_STATUS_CHANGE); setbit(events, MPI2_EVENT_SAS_DISCOVERY); setbit(events, MPI2_EVENT_SAS_BROADCAST_PRIMITIVE); setbit(events, MPI2_EVENT_SAS_INIT_DEVICE_STATUS_CHANGE); setbit(events, MPI2_EVENT_SAS_INIT_TABLE_OVERFLOW); setbit(events, MPI2_EVENT_SAS_TOPOLOGY_CHANGE_LIST); setbit(events, MPI2_EVENT_SAS_ENCL_DEVICE_STATUS_CHANGE); setbit(events, MPI2_EVENT_IR_CONFIGURATION_CHANGE_LIST); setbit(events, MPI2_EVENT_IR_VOLUME); setbit(events, MPI2_EVENT_IR_PHYSICAL_DISK); setbit(events, MPI2_EVENT_IR_OPERATION_STATUS); setbit(events, MPI2_EVENT_TEMP_THRESHOLD); setbit(events, MPI2_EVENT_SAS_DEVICE_DISCOVERY_ERROR); if (sc->facts->MsgVersion >= MPI2_VERSION_02_06) { setbit(events, MPI2_EVENT_ACTIVE_CABLE_EXCEPTION); if (sc->mpr_flags & MPR_FLAGS_GEN35_IOC) { setbit(events, MPI2_EVENT_PCIE_DEVICE_STATUS_CHANGE); setbit(events, MPI2_EVENT_PCIE_ENUMERATION); setbit(events, MPI2_EVENT_PCIE_TOPOLOGY_CHANGE_LIST); } } mpr_register_events(sc, events, mprsas_evt_handler, NULL, &sc->sassc->mprsas_eh); return (0); } int mpr_attach_sas(struct mpr_softc *sc) { struct mprsas_softc *sassc; cam_status status; int unit, error = 0, reqs; MPR_FUNCTRACE(sc); mpr_dprint(sc, MPR_INIT, "%s entered\n", __func__); sassc = malloc(sizeof(struct mprsas_softc), M_MPR, M_WAITOK|M_ZERO); if (!sassc) { mpr_dprint(sc, MPR_INIT|MPR_ERROR, "Cannot allocate SAS subsystem memory\n"); return (ENOMEM); } /* * XXX MaxTargets could change during a reinit. Since we don't * resize the targets[] array during such an event, cache the value * of MaxTargets here so that we don't get into trouble later. This * should move into the reinit logic. */ sassc->maxtargets = sc->facts->MaxTargets + sc->facts->MaxVolumes; sassc->targets = malloc(sizeof(struct mprsas_target) * sassc->maxtargets, M_MPR, M_WAITOK|M_ZERO); if (!sassc->targets) { mpr_dprint(sc, MPR_INIT|MPR_ERROR, "Cannot allocate SAS target memory\n"); free(sassc, M_MPR); return (ENOMEM); } sc->sassc = sassc; sassc->sc = sc; reqs = sc->num_reqs - sc->num_prireqs - 1; if ((sassc->devq = cam_simq_alloc(reqs)) == NULL) { mpr_dprint(sc, MPR_INIT|MPR_ERROR, "Cannot allocate SIMQ\n"); error = ENOMEM; goto out; } unit = device_get_unit(sc->mpr_dev); sassc->sim = cam_sim_alloc(mprsas_action, mprsas_poll, "mpr", sassc, unit, &sc->mpr_mtx, reqs, reqs, sassc->devq); if (sassc->sim == NULL) { mpr_dprint(sc, MPR_INIT|MPR_ERROR, "Cannot allocate SIM\n"); error = EINVAL; goto out; } TAILQ_INIT(&sassc->ev_queue); /* Initialize taskqueue for Event Handling */ TASK_INIT(&sassc->ev_task, 0, mprsas_firmware_event_work, sc); sassc->ev_tq = taskqueue_create("mpr_taskq", M_NOWAIT | M_ZERO, taskqueue_thread_enqueue, &sassc->ev_tq); taskqueue_start_threads(&sassc->ev_tq, 1, PRIBIO, "%s taskq", device_get_nameunit(sc->mpr_dev)); mpr_lock(sc); /* * XXX There should be a bus for every port on the adapter, but since * we're just going to fake the topology for now, we'll pretend that * everything is just a target on a single bus. */ if ((error = xpt_bus_register(sassc->sim, sc->mpr_dev, 0)) != 0) { mpr_dprint(sc, MPR_INIT|MPR_ERROR, "Error %d registering SCSI bus\n", error); mpr_unlock(sc); goto out; } /* * Assume that discovery events will start right away. * * Hold off boot until discovery is complete. */ sassc->flags |= MPRSAS_IN_STARTUP | MPRSAS_IN_DISCOVERY; sc->sassc->startup_refcount = 0; mprsas_startup_increment(sassc); callout_init(&sassc->discovery_callout, 1 /*mpsafe*/); /* * Register for async events so we can determine the EEDP * capabilities of devices. */ status = xpt_create_path(&sassc->path, /*periph*/NULL, cam_sim_path(sc->sassc->sim), CAM_TARGET_WILDCARD, CAM_LUN_WILDCARD); if (status != CAM_REQ_CMP) { mpr_dprint(sc, MPR_INIT|MPR_ERROR, "Error %#x creating sim path\n", status); sassc->path = NULL; } else { int event; #if (__FreeBSD_version >= 1000006) || \ ((__FreeBSD_version >= 901503) && (__FreeBSD_version < 1000000)) event = AC_ADVINFO_CHANGED | AC_FOUND_DEVICE; #else event = AC_FOUND_DEVICE; #endif /* * Prior to the CAM locking improvements, we can't call * xpt_register_async() with a particular path specified. * * If a path isn't specified, xpt_register_async() will * generate a wildcard path and acquire the XPT lock while * it calls xpt_action() to execute the XPT_SASYNC_CB CCB. * It will then drop the XPT lock once that is done. * * If a path is specified for xpt_register_async(), it will * not acquire and drop the XPT lock around the call to * xpt_action(). xpt_action() asserts that the caller * holds the SIM lock, so the SIM lock has to be held when * calling xpt_register_async() when the path is specified. * * But xpt_register_async calls xpt_for_all_devices(), * which calls xptbustraverse(), which will acquire each * SIM lock. When it traverses our particular bus, it will * necessarily acquire the SIM lock, which will lead to a * recursive lock acquisition. * * The CAM locking changes fix this problem by acquiring * the XPT topology lock around bus traversal in * xptbustraverse(), so the caller can hold the SIM lock * and it does not cause a recursive lock acquisition. * * These __FreeBSD_version values are approximate, especially * for stable/10, which is two months later than the actual * change. */ #if (__FreeBSD_version < 1000703) || \ ((__FreeBSD_version >= 1100000) && (__FreeBSD_version < 1100002)) mpr_unlock(sc); status = xpt_register_async(event, mprsas_async, sc, NULL); mpr_lock(sc); #else status = xpt_register_async(event, mprsas_async, sc, sassc->path); #endif if (status != CAM_REQ_CMP) { mpr_dprint(sc, MPR_ERROR, "Error %#x registering async handler for " "AC_ADVINFO_CHANGED events\n", status); xpt_free_path(sassc->path); sassc->path = NULL; } } if (status != CAM_REQ_CMP) { /* * EEDP use is the exception, not the rule. * Warn the user, but do not fail to attach. */ mpr_printf(sc, "EEDP capabilities disabled.\n"); } mpr_unlock(sc); mprsas_register_events(sc); out: if (error) mpr_detach_sas(sc); mpr_dprint(sc, MPR_INIT, "%s exit, error= %d\n", __func__, error); return (error); } int mpr_detach_sas(struct mpr_softc *sc) { struct mprsas_softc *sassc; struct mprsas_lun *lun, *lun_tmp; struct mprsas_target *targ; int i; MPR_FUNCTRACE(sc); if (sc->sassc == NULL) return (0); sassc = sc->sassc; mpr_deregister_events(sc, sassc->mprsas_eh); /* * Drain and free the event handling taskqueue with the lock * unheld so that any parallel processing tasks drain properly * without deadlocking. */ if (sassc->ev_tq != NULL) taskqueue_free(sassc->ev_tq); /* Make sure CAM doesn't wedge if we had to bail out early. */ mpr_lock(sc); while (sassc->startup_refcount != 0) mprsas_startup_decrement(sassc); /* Deregister our async handler */ if (sassc->path != NULL) { xpt_register_async(0, mprsas_async, sc, sassc->path); xpt_free_path(sassc->path); sassc->path = NULL; } if (sassc->flags & MPRSAS_IN_STARTUP) xpt_release_simq(sassc->sim, 1); if (sassc->sim != NULL) { xpt_bus_deregister(cam_sim_path(sassc->sim)); cam_sim_free(sassc->sim, FALSE); } mpr_unlock(sc); if (sassc->devq != NULL) cam_simq_free(sassc->devq); for (i = 0; i < sassc->maxtargets; i++) { targ = &sassc->targets[i]; SLIST_FOREACH_SAFE(lun, &targ->luns, lun_link, lun_tmp) { free(lun, M_MPR); } } free(sassc->targets, M_MPR); free(sassc, M_MPR); sc->sassc = NULL; return (0); } void mprsas_discovery_end(struct mprsas_softc *sassc) { struct mpr_softc *sc = sassc->sc; MPR_FUNCTRACE(sc); if (sassc->flags & MPRSAS_DISCOVERY_TIMEOUT_PENDING) callout_stop(&sassc->discovery_callout); /* * After discovery has completed, check the mapping table for any * missing devices and update their missing counts. Only do this once * whenever the driver is initialized so that missing counts aren't * updated unnecessarily. Note that just because discovery has * completed doesn't mean that events have been processed yet. The * check_devices function is a callout timer that checks if ALL devices * are missing. If so, it will wait a little longer for events to * complete and keep resetting itself until some device in the mapping * table is not missing, meaning that event processing has started. */ if (sc->track_mapping_events) { mpr_dprint(sc, MPR_XINFO | MPR_MAPPING, "Discovery has " "completed. Check for missing devices in the mapping " "table.\n"); callout_reset(&sc->device_check_callout, MPR_MISSING_CHECK_DELAY * hz, mpr_mapping_check_devices, sc); } } static void mprsas_action(struct cam_sim *sim, union ccb *ccb) { struct mprsas_softc *sassc; sassc = cam_sim_softc(sim); MPR_FUNCTRACE(sassc->sc); mpr_dprint(sassc->sc, MPR_TRACE, "ccb func_code 0x%x\n", ccb->ccb_h.func_code); mtx_assert(&sassc->sc->mpr_mtx, MA_OWNED); switch (ccb->ccb_h.func_code) { case XPT_PATH_INQ: { struct ccb_pathinq *cpi = &ccb->cpi; struct mpr_softc *sc = sassc->sc; cpi->version_num = 1; cpi->hba_inquiry = PI_SDTR_ABLE|PI_TAG_ABLE|PI_WIDE_16; cpi->target_sprt = 0; #if (__FreeBSD_version >= 1000039) || \ ((__FreeBSD_version < 1000000) && (__FreeBSD_version >= 902502)) cpi->hba_misc = PIM_NOBUSRESET | PIM_UNMAPPED | PIM_NOSCAN; #else cpi->hba_misc = PIM_NOBUSRESET | PIM_UNMAPPED; #endif cpi->hba_eng_cnt = 0; cpi->max_target = sassc->maxtargets - 1; cpi->max_lun = 255; /* * initiator_id is set here to an ID outside the set of valid * target IDs (including volumes). */ cpi->initiator_id = sassc->maxtargets; strlcpy(cpi->sim_vid, "FreeBSD", SIM_IDLEN); strlcpy(cpi->hba_vid, "Avago Tech", HBA_IDLEN); strlcpy(cpi->dev_name, cam_sim_name(sim), DEV_IDLEN); cpi->unit_number = cam_sim_unit(sim); cpi->bus_id = cam_sim_bus(sim); /* * XXXSLM-I think this needs to change based on config page or * something instead of hardcoded to 150000. */ cpi->base_transfer_speed = 150000; cpi->transport = XPORT_SAS; cpi->transport_version = 0; cpi->protocol = PROTO_SCSI; cpi->protocol_version = SCSI_REV_SPC; cpi->maxio = sc->maxio; mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); break; } case XPT_GET_TRAN_SETTINGS: { struct ccb_trans_settings *cts; struct ccb_trans_settings_sas *sas; struct ccb_trans_settings_scsi *scsi; struct mprsas_target *targ; cts = &ccb->cts; sas = &cts->xport_specific.sas; scsi = &cts->proto_specific.scsi; KASSERT(cts->ccb_h.target_id < sassc->maxtargets, ("Target %d out of bounds in XPT_GET_TRAN_SETTINGS\n", cts->ccb_h.target_id)); targ = &sassc->targets[cts->ccb_h.target_id]; if (targ->handle == 0x0) { mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); break; } cts->protocol_version = SCSI_REV_SPC2; cts->transport = XPORT_SAS; cts->transport_version = 0; sas->valid = CTS_SAS_VALID_SPEED; switch (targ->linkrate) { case 0x08: sas->bitrate = 150000; break; case 0x09: sas->bitrate = 300000; break; case 0x0a: sas->bitrate = 600000; break; case 0x0b: sas->bitrate = 1200000; break; default: sas->valid = 0; } cts->protocol = PROTO_SCSI; scsi->valid = CTS_SCSI_VALID_TQ; scsi->flags = CTS_SCSI_FLAGS_TAG_ENB; mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); break; } case XPT_CALC_GEOMETRY: cam_calc_geometry(&ccb->ccg, /*extended*/1); mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); break; case XPT_RESET_DEV: mpr_dprint(sassc->sc, MPR_XINFO, "mprsas_action " "XPT_RESET_DEV\n"); mprsas_action_resetdev(sassc, ccb); return; case XPT_RESET_BUS: case XPT_ABORT: case XPT_TERM_IO: mpr_dprint(sassc->sc, MPR_XINFO, "mprsas_action faking success " "for abort or reset\n"); mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); break; case XPT_SCSI_IO: mprsas_action_scsiio(sassc, ccb); return; #if __FreeBSD_version >= 900026 case XPT_SMP_IO: mprsas_action_smpio(sassc, ccb); return; #endif default: mprsas_set_ccbstatus(ccb, CAM_FUNC_NOTAVAIL); break; } xpt_done(ccb); } static void mprsas_announce_reset(struct mpr_softc *sc, uint32_t ac_code, target_id_t target_id, lun_id_t lun_id) { path_id_t path_id = cam_sim_path(sc->sassc->sim); struct cam_path *path; mpr_dprint(sc, MPR_XINFO, "%s code %x target %d lun %jx\n", __func__, ac_code, target_id, (uintmax_t)lun_id); if (xpt_create_path(&path, NULL, path_id, target_id, lun_id) != CAM_REQ_CMP) { mpr_dprint(sc, MPR_ERROR, "unable to create path for reset " "notification\n"); return; } xpt_async(ac_code, path, NULL); xpt_free_path(path); } static void mprsas_complete_all_commands(struct mpr_softc *sc) { struct mpr_command *cm; int i; int completed; MPR_FUNCTRACE(sc); mtx_assert(&sc->mpr_mtx, MA_OWNED); /* complete all commands with a NULL reply */ for (i = 1; i < sc->num_reqs; i++) { cm = &sc->commands[i]; if (cm->cm_state == MPR_CM_STATE_FREE) continue; cm->cm_state = MPR_CM_STATE_BUSY; cm->cm_reply = NULL; completed = 0; if (cm->cm_flags & MPR_CM_FLAGS_SATA_ID_TIMEOUT) { MPASS(cm->cm_data); free(cm->cm_data, M_MPR); cm->cm_data = NULL; } if (cm->cm_flags & MPR_CM_FLAGS_POLLED) cm->cm_flags |= MPR_CM_FLAGS_COMPLETE; if (cm->cm_complete != NULL) { mprsas_log_command(cm, MPR_RECOVERY, "completing cm %p state %x ccb %p for diag reset\n", cm, cm->cm_state, cm->cm_ccb); cm->cm_complete(sc, cm); completed = 1; } else if (cm->cm_flags & MPR_CM_FLAGS_WAKEUP) { mprsas_log_command(cm, MPR_RECOVERY, "waking up cm %p state %x ccb %p for diag reset\n", cm, cm->cm_state, cm->cm_ccb); wakeup(cm); completed = 1; } if ((completed == 0) && (cm->cm_state != MPR_CM_STATE_FREE)) { /* this should never happen, but if it does, log */ mprsas_log_command(cm, MPR_RECOVERY, "cm %p state %x flags 0x%x ccb %p during diag " "reset\n", cm, cm->cm_state, cm->cm_flags, cm->cm_ccb); } } sc->io_cmds_active = 0; } void mprsas_handle_reinit(struct mpr_softc *sc) { int i; /* Go back into startup mode and freeze the simq, so that CAM * doesn't send any commands until after we've rediscovered all * targets and found the proper device handles for them. * * After the reset, portenable will trigger discovery, and after all * discovery-related activities have finished, the simq will be * released. */ mpr_dprint(sc, MPR_INIT, "%s startup\n", __func__); sc->sassc->flags |= MPRSAS_IN_STARTUP; sc->sassc->flags |= MPRSAS_IN_DISCOVERY; mprsas_startup_increment(sc->sassc); /* notify CAM of a bus reset */ mprsas_announce_reset(sc, AC_BUS_RESET, CAM_TARGET_WILDCARD, CAM_LUN_WILDCARD); /* complete and cleanup after all outstanding commands */ mprsas_complete_all_commands(sc); mpr_dprint(sc, MPR_INIT, "%s startup %u after command completion\n", __func__, sc->sassc->startup_refcount); /* zero all the target handles, since they may change after the * reset, and we have to rediscover all the targets and use the new * handles. */ for (i = 0; i < sc->sassc->maxtargets; i++) { if (sc->sassc->targets[i].outstanding != 0) mpr_dprint(sc, MPR_INIT, "target %u outstanding %u\n", i, sc->sassc->targets[i].outstanding); sc->sassc->targets[i].handle = 0x0; sc->sassc->targets[i].exp_dev_handle = 0x0; sc->sassc->targets[i].outstanding = 0; sc->sassc->targets[i].flags = MPRSAS_TARGET_INDIAGRESET; } } static void mprsas_tm_timeout(void *data) { struct mpr_command *tm = data; struct mpr_softc *sc = tm->cm_sc; mtx_assert(&sc->mpr_mtx, MA_OWNED); mprsas_log_command(tm, MPR_INFO|MPR_RECOVERY, "task mgmt %p timed " "out\n", tm); KASSERT(tm->cm_state == MPR_CM_STATE_INQUEUE, ("command not inqueue\n")); tm->cm_state = MPR_CM_STATE_BUSY; mpr_reinit(sc); } static void mprsas_logical_unit_reset_complete(struct mpr_softc *sc, struct mpr_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *reply; MPI2_SCSI_TASK_MANAGE_REQUEST *req; unsigned int cm_count = 0; struct mpr_command *cm; struct mprsas_target *targ; callout_stop(&tm->cm_callout); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; targ = tm->cm_targ; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { mpr_dprint(sc, MPR_RECOVERY|MPR_ERROR, "%s: cm_flags = %#x for LUN reset! " "This should not happen!\n", __func__, tm->cm_flags); mprsas_free_tm(sc, tm); return; } if (reply == NULL) { mpr_dprint(sc, MPR_RECOVERY, "NULL reset reply for tm %p\n", tm); if ((sc->mpr_flags & MPR_FLAGS_DIAGRESET) != 0) { /* this completion was due to a reset, just cleanup */ mpr_dprint(sc, MPR_RECOVERY, "Hardware undergoing " "reset, ignoring NULL LUN reset reply\n"); targ->tm = NULL; mprsas_free_tm(sc, tm); } else { /* we should have gotten a reply. */ mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "NULL reply on " "LUN reset attempt, resetting controller\n"); mpr_reinit(sc); } return; } mpr_dprint(sc, MPR_RECOVERY, "logical unit reset status 0x%x code 0x%x count %u\n", le16toh(reply->IOCStatus), le32toh(reply->ResponseCode), le32toh(reply->TerminationCount)); /* * See if there are any outstanding commands for this LUN. * This could be made more efficient by using a per-LU data * structure of some sort. */ TAILQ_FOREACH(cm, &targ->commands, cm_link) { if (cm->cm_lun == tm->cm_lun) cm_count++; } if (cm_count == 0) { mpr_dprint(sc, MPR_RECOVERY|MPR_INFO, "Finished recovery after LUN reset for target %u\n", targ->tid); mprsas_announce_reset(sc, AC_SENT_BDR, targ->tid, tm->cm_lun); /* * We've finished recovery for this logical unit. check and * see if some other logical unit has a timedout command * that needs to be processed. */ cm = TAILQ_FIRST(&targ->timedout_commands); if (cm) { mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "More commands to abort for target %u\n", targ->tid); mprsas_send_abort(sc, tm, cm); } else { targ->tm = NULL; mprsas_free_tm(sc, tm); } } else { /* if we still have commands for this LUN, the reset * effectively failed, regardless of the status reported. * Escalate to a target reset. */ mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "logical unit reset complete for target %u, but still " "have %u command(s), sending target reset\n", targ->tid, cm_count); mprsas_send_reset(sc, tm, MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET); } } static void mprsas_target_reset_complete(struct mpr_softc *sc, struct mpr_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *reply; MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mprsas_target *targ; callout_stop(&tm->cm_callout); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; targ = tm->cm_targ; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { mpr_dprint(sc, MPR_ERROR, "%s: cm_flags = %#x for target " "reset! This should not happen!\n", __func__, tm->cm_flags); mprsas_free_tm(sc, tm); return; } if (reply == NULL) { mpr_dprint(sc, MPR_RECOVERY, "NULL target reset reply for tm %p TaskMID %u\n", tm, le16toh(req->TaskMID)); if ((sc->mpr_flags & MPR_FLAGS_DIAGRESET) != 0) { /* this completion was due to a reset, just cleanup */ mpr_dprint(sc, MPR_RECOVERY, "Hardware undergoing " "reset, ignoring NULL target reset reply\n"); targ->tm = NULL; mprsas_free_tm(sc, tm); } else { /* we should have gotten a reply. */ mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "NULL reply on " "target reset attempt, resetting controller\n"); mpr_reinit(sc); } return; } mpr_dprint(sc, MPR_RECOVERY, "target reset status 0x%x code 0x%x count %u\n", le16toh(reply->IOCStatus), le32toh(reply->ResponseCode), le32toh(reply->TerminationCount)); if (targ->outstanding == 0) { /* * We've finished recovery for this target and all * of its logical units. */ mpr_dprint(sc, MPR_RECOVERY|MPR_INFO, "Finished reset recovery for target %u\n", targ->tid); mprsas_announce_reset(sc, AC_SENT_BDR, tm->cm_targ->tid, CAM_LUN_WILDCARD); targ->tm = NULL; mprsas_free_tm(sc, tm); } else { /* * After a target reset, if this target still has * outstanding commands, the reset effectively failed, * regardless of the status reported. escalate. */ mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "Target reset complete for target %u, but still have %u " "command(s), resetting controller\n", targ->tid, targ->outstanding); mpr_reinit(sc); } } #define MPR_RESET_TIMEOUT 30 int mprsas_send_reset(struct mpr_softc *sc, struct mpr_command *tm, uint8_t type) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mprsas_target *target; int err; target = tm->cm_targ; if (target->handle == 0) { mpr_dprint(sc, MPR_ERROR, "%s null devhandle for target_id " "%d\n", __func__, target->tid); return -1; } req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; req->DevHandle = htole16(target->handle); req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = type; if (type == MPI2_SCSITASKMGMT_TASKTYPE_LOGICAL_UNIT_RESET) { /* XXX Need to handle invalid LUNs */ MPR_SET_LUN(req->LUN, tm->cm_lun); tm->cm_targ->logical_unit_resets++; mpr_dprint(sc, MPR_RECOVERY|MPR_INFO, "Sending logical unit reset to target %u lun %d\n", target->tid, tm->cm_lun); tm->cm_complete = mprsas_logical_unit_reset_complete; mprsas_prepare_for_tm(sc, tm, target, tm->cm_lun); } else if (type == MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET) { /* * Target reset method = * SAS Hard Link Reset / SATA Link Reset */ req->MsgFlags = MPI2_SCSITASKMGMT_MSGFLAGS_LINK_RESET; tm->cm_targ->target_resets++; mpr_dprint(sc, MPR_RECOVERY|MPR_INFO, "Sending target reset to target %u\n", target->tid); tm->cm_complete = mprsas_target_reset_complete; mprsas_prepare_for_tm(sc, tm, target, CAM_LUN_WILDCARD); } else { mpr_dprint(sc, MPR_ERROR, "unexpected reset type 0x%x\n", type); return -1; } if (target->encl_level_valid) { mpr_dprint(sc, MPR_RECOVERY|MPR_INFO, "At enclosure level %d, slot %d, connector name (%4s)\n", target->encl_level, target->encl_slot, target->connector_name); } tm->cm_data = NULL; - tm->cm_desc.HighPriority.RequestFlags = - MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; tm->cm_complete_data = (void *)tm; callout_reset(&tm->cm_callout, MPR_RESET_TIMEOUT * hz, mprsas_tm_timeout, tm); err = mpr_map_command(sc, tm); if (err) mpr_dprint(sc, MPR_ERROR|MPR_RECOVERY, "error %d sending reset type %u\n", err, type); return err; } static void mprsas_abort_complete(struct mpr_softc *sc, struct mpr_command *tm) { struct mpr_command *cm; MPI2_SCSI_TASK_MANAGE_REPLY *reply; MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mprsas_target *targ; callout_stop(&tm->cm_callout); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; targ = tm->cm_targ; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { mpr_dprint(sc, MPR_RECOVERY|MPR_ERROR, "cm_flags = %#x for abort %p TaskMID %u!\n", tm->cm_flags, tm, le16toh(req->TaskMID)); mprsas_free_tm(sc, tm); return; } if (reply == NULL) { mpr_dprint(sc, MPR_RECOVERY, "NULL abort reply for tm %p TaskMID %u\n", tm, le16toh(req->TaskMID)); if ((sc->mpr_flags & MPR_FLAGS_DIAGRESET) != 0) { /* this completion was due to a reset, just cleanup */ mpr_dprint(sc, MPR_RECOVERY, "Hardware undergoing " "reset, ignoring NULL abort reply\n"); targ->tm = NULL; mprsas_free_tm(sc, tm); } else { /* we should have gotten a reply. */ mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "NULL reply on " "abort attempt, resetting controller\n"); mpr_reinit(sc); } return; } mpr_dprint(sc, MPR_RECOVERY, "abort TaskMID %u status 0x%x code 0x%x count %u\n", le16toh(req->TaskMID), le16toh(reply->IOCStatus), le32toh(reply->ResponseCode), le32toh(reply->TerminationCount)); cm = TAILQ_FIRST(&tm->cm_targ->timedout_commands); if (cm == NULL) { /* * if there are no more timedout commands, we're done with * error recovery for this target. */ mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "Finished abort recovery for target %u\n", targ->tid); targ->tm = NULL; mprsas_free_tm(sc, tm); } else if (le16toh(req->TaskMID) != cm->cm_desc.Default.SMID) { /* abort success, but we have more timedout commands to abort */ mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "Continuing abort recovery for target %u\n", targ->tid); mprsas_send_abort(sc, tm, cm); } else { /* * we didn't get a command completion, so the abort * failed as far as we're concerned. escalate. */ mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "Abort failed for target %u, sending logical unit reset\n", targ->tid); mprsas_send_reset(sc, tm, MPI2_SCSITASKMGMT_TASKTYPE_LOGICAL_UNIT_RESET); } } #define MPR_ABORT_TIMEOUT 5 static int mprsas_send_abort(struct mpr_softc *sc, struct mpr_command *tm, struct mpr_command *cm) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mprsas_target *targ; int err; targ = cm->cm_targ; if (targ->handle == 0) { mpr_dprint(sc, MPR_ERROR|MPR_RECOVERY, "%s null devhandle for target_id %d\n", __func__, cm->cm_ccb->ccb_h.target_id); return -1; } mprsas_log_command(cm, MPR_RECOVERY|MPR_INFO, "Aborting command %p\n", cm); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_ABORT_TASK; /* XXX Need to handle invalid LUNs */ MPR_SET_LUN(req->LUN, cm->cm_ccb->ccb_h.target_lun); req->TaskMID = htole16(cm->cm_desc.Default.SMID); tm->cm_data = NULL; - tm->cm_desc.HighPriority.RequestFlags = - MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; tm->cm_complete = mprsas_abort_complete; tm->cm_complete_data = (void *)tm; tm->cm_targ = cm->cm_targ; tm->cm_lun = cm->cm_lun; callout_reset(&tm->cm_callout, MPR_ABORT_TIMEOUT * hz, mprsas_tm_timeout, tm); targ->aborts++; mprsas_prepare_for_tm(sc, tm, targ, tm->cm_lun); err = mpr_map_command(sc, tm); if (err) mpr_dprint(sc, MPR_ERROR|MPR_RECOVERY, "error %d sending abort for cm %p SMID %u\n", err, cm, req->TaskMID); return err; } static void mprsas_scsiio_timeout(void *data) { sbintime_t elapsed, now; union ccb *ccb; struct mpr_softc *sc; struct mpr_command *cm; struct mprsas_target *targ; cm = (struct mpr_command *)data; sc = cm->cm_sc; ccb = cm->cm_ccb; now = sbinuptime(); MPR_FUNCTRACE(sc); mtx_assert(&sc->mpr_mtx, MA_OWNED); mpr_dprint(sc, MPR_XINFO|MPR_RECOVERY, "Timeout checking cm %p\n", cm); /* * Run the interrupt handler to make sure it's not pending. This * isn't perfect because the command could have already completed * and been re-used, though this is unlikely. */ mpr_intr_locked(sc); if (cm->cm_state != MPR_CM_STATE_INQUEUE) { mprsas_log_command(cm, MPR_XINFO, "SCSI command %p almost timed out\n", cm); return; } if (cm->cm_ccb == NULL) { mpr_dprint(sc, MPR_ERROR, "command timeout with NULL ccb\n"); return; } targ = cm->cm_targ; targ->timeouts++; elapsed = now - ccb->ccb_h.qos.sim_data; mprsas_log_command(cm, MPR_INFO|MPR_RECOVERY, "Command timeout on target %u(0x%04x), %d set, %d.%d elapsed\n", targ->tid, targ->handle, ccb->ccb_h.timeout, sbintime_getsec(elapsed), elapsed & 0xffffffff); if (targ->encl_level_valid) { mpr_dprint(sc, MPR_INFO|MPR_RECOVERY, "At enclosure level %d, slot %d, connector name (%4s)\n", targ->encl_level, targ->encl_slot, targ->connector_name); } /* XXX first, check the firmware state, to see if it's still * operational. if not, do a diag reset. */ mprsas_set_ccbstatus(cm->cm_ccb, CAM_CMD_TIMEOUT); cm->cm_state = MPR_CM_STATE_TIMEDOUT; TAILQ_INSERT_TAIL(&targ->timedout_commands, cm, cm_recovery); if (targ->tm != NULL) { /* target already in recovery, just queue up another * timedout command to be processed later. */ mpr_dprint(sc, MPR_RECOVERY, "queued timedout cm %p for " "processing by tm %p\n", cm, targ->tm); } else if ((targ->tm = mprsas_alloc_tm(sc)) != NULL) { /* start recovery by aborting the first timedout command */ mpr_dprint(sc, MPR_RECOVERY|MPR_INFO, "Sending abort to target %u for SMID %d\n", targ->tid, cm->cm_desc.Default.SMID); mpr_dprint(sc, MPR_RECOVERY, "timedout cm %p allocated tm %p\n", cm, targ->tm); mprsas_send_abort(sc, targ->tm, cm); } else { /* XXX queue this target up for recovery once a TM becomes * available. The firmware only has a limited number of * HighPriority credits for the high priority requests used * for task management, and we ran out. * * Isilon: don't worry about this for now, since we have * more credits than disks in an enclosure, and limit * ourselves to one TM per target for recovery. */ mpr_dprint(sc, MPR_ERROR|MPR_RECOVERY, "timedout cm %p failed to allocate a tm\n", cm); } } /** * mprsas_build_nvme_unmap - Build Native NVMe DSM command equivalent * to SCSI Unmap. * Return 0 - for success, * 1 - to immediately return back the command with success status to CAM * negative value - to fallback to firmware path i.e. issue scsi unmap * to FW without any translation. */ static int mprsas_build_nvme_unmap(struct mpr_softc *sc, struct mpr_command *cm, union ccb *ccb, struct mprsas_target *targ) { Mpi26NVMeEncapsulatedRequest_t *req = NULL; struct ccb_scsiio *csio; struct unmap_parm_list *plist; struct nvme_dsm_range *nvme_dsm_ranges = NULL; struct nvme_command *c; int i, res; uint16_t ndesc, list_len, data_length; struct mpr_prp_page *prp_page_info; uint64_t nvme_dsm_ranges_dma_handle; csio = &ccb->csio; #if __FreeBSD_version >= 1100103 list_len = (scsiio_cdb_ptr(csio)[7] << 8 | scsiio_cdb_ptr(csio)[8]); #else if (csio->ccb_h.flags & CAM_CDB_POINTER) { list_len = (ccb->csio.cdb_io.cdb_ptr[7] << 8 | ccb->csio.cdb_io.cdb_ptr[8]); } else { list_len = (ccb->csio.cdb_io.cdb_bytes[7] << 8 | ccb->csio.cdb_io.cdb_bytes[8]); } #endif if (!list_len) { mpr_dprint(sc, MPR_ERROR, "Parameter list length is Zero\n"); return -EINVAL; } plist = malloc(csio->dxfer_len, M_MPR, M_ZERO|M_NOWAIT); if (!plist) { mpr_dprint(sc, MPR_ERROR, "Unable to allocate memory to " "save UNMAP data\n"); return -ENOMEM; } /* Copy SCSI unmap data to a local buffer */ bcopy(csio->data_ptr, plist, csio->dxfer_len); /* return back the unmap command to CAM with success status, * if number of descripts is zero. */ ndesc = be16toh(plist->unmap_blk_desc_data_len) >> 4; if (!ndesc) { mpr_dprint(sc, MPR_XINFO, "Number of descriptors in " "UNMAP cmd is Zero\n"); res = 1; goto out; } data_length = ndesc * sizeof(struct nvme_dsm_range); if (data_length > targ->MDTS) { mpr_dprint(sc, MPR_ERROR, "data length: %d is greater than " "Device's MDTS: %d\n", data_length, targ->MDTS); res = -EINVAL; goto out; } prp_page_info = mpr_alloc_prp_page(sc); KASSERT(prp_page_info != NULL, ("%s: There is no PRP Page for " "UNMAP command.\n", __func__)); /* * Insert the allocated PRP page into the command's PRP page list. This * will be freed when the command is freed. */ TAILQ_INSERT_TAIL(&cm->cm_prp_page_list, prp_page_info, prp_page_link); nvme_dsm_ranges = (struct nvme_dsm_range *)prp_page_info->prp_page; nvme_dsm_ranges_dma_handle = prp_page_info->prp_page_busaddr; bzero(nvme_dsm_ranges, data_length); /* Convert SCSI unmap's descriptor data to NVMe DSM specific Range data * for each descriptors contained in SCSI UNMAP data. */ for (i = 0; i < ndesc; i++) { nvme_dsm_ranges[i].length = htole32(be32toh(plist->desc[i].nlb)); nvme_dsm_ranges[i].starting_lba = htole64(be64toh(plist->desc[i].slba)); nvme_dsm_ranges[i].attributes = 0; } /* Build MPI2.6's NVMe Encapsulated Request Message */ req = (Mpi26NVMeEncapsulatedRequest_t *)cm->cm_req; bzero(req, sizeof(*req)); req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_NVME_ENCAPSULATED; req->Flags = MPI26_NVME_FLAGS_WRITE; req->ErrorResponseBaseAddress.High = htole32((uint32_t)((uint64_t)cm->cm_sense_busaddr >> 32)); req->ErrorResponseBaseAddress.Low = htole32(cm->cm_sense_busaddr); req->ErrorResponseAllocationLength = htole16(sizeof(struct nvme_completion)); req->EncapsulatedCommandLength = htole16(sizeof(struct nvme_command)); req->DataLength = htole32(data_length); /* Build NVMe DSM command */ c = (struct nvme_command *) req->NVMe_Command; c->opc = NVME_OPC_DATASET_MANAGEMENT; c->nsid = htole32(csio->ccb_h.target_lun + 1); c->cdw10 = htole32(ndesc - 1); c->cdw11 = htole32(NVME_DSM_ATTR_DEALLOCATE); cm->cm_length = data_length; cm->cm_data = NULL; cm->cm_complete = mprsas_scsiio_complete; cm->cm_complete_data = ccb; cm->cm_targ = targ; cm->cm_lun = csio->ccb_h.target_lun; cm->cm_ccb = ccb; cm->cm_desc.Default.RequestFlags = MPI26_REQ_DESCRIPT_FLAGS_PCIE_ENCAPSULATED; csio->ccb_h.qos.sim_data = sbinuptime(); #if __FreeBSD_version >= 1000029 callout_reset_sbt(&cm->cm_callout, SBT_1MS * ccb->ccb_h.timeout, 0, mprsas_scsiio_timeout, cm, 0); #else //__FreeBSD_version < 1000029 callout_reset(&cm->cm_callout, (ccb->ccb_h.timeout * hz) / 1000, mprsas_scsiio_timeout, cm); #endif //__FreeBSD_version >= 1000029 targ->issued++; targ->outstanding++; TAILQ_INSERT_TAIL(&targ->commands, cm, cm_link); ccb->ccb_h.status |= CAM_SIM_QUEUED; mprsas_log_command(cm, MPR_XINFO, "%s cm %p ccb %p outstanding %u\n", __func__, cm, ccb, targ->outstanding); mpr_build_nvme_prp(sc, cm, req, (void *)(uintptr_t)nvme_dsm_ranges_dma_handle, 0, data_length); mpr_map_command(sc, cm); out: free(plist, M_MPR); return 0; } static void mprsas_action_scsiio(struct mprsas_softc *sassc, union ccb *ccb) { MPI2_SCSI_IO_REQUEST *req; struct ccb_scsiio *csio; struct mpr_softc *sc; struct mprsas_target *targ; struct mprsas_lun *lun; struct mpr_command *cm; uint8_t i, lba_byte, *ref_tag_addr, scsi_opcode; uint16_t eedp_flags; uint32_t mpi_control; int rc; sc = sassc->sc; MPR_FUNCTRACE(sc); mtx_assert(&sc->mpr_mtx, MA_OWNED); csio = &ccb->csio; KASSERT(csio->ccb_h.target_id < sassc->maxtargets, ("Target %d out of bounds in XPT_SCSI_IO\n", csio->ccb_h.target_id)); targ = &sassc->targets[csio->ccb_h.target_id]; mpr_dprint(sc, MPR_TRACE, "ccb %p target flag %x\n", ccb, targ->flags); if (targ->handle == 0x0) { mpr_dprint(sc, MPR_ERROR, "%s NULL handle for target %u\n", __func__, csio->ccb_h.target_id); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); xpt_done(ccb); return; } if (targ->flags & MPR_TARGET_FLAGS_RAID_COMPONENT) { mpr_dprint(sc, MPR_ERROR, "%s Raid component no SCSI IO " "supported %u\n", __func__, csio->ccb_h.target_id); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); xpt_done(ccb); return; } /* * Sometimes, it is possible to get a command that is not "In * Progress" and was actually aborted by the upper layer. Check for * this here and complete the command without error. */ if (mprsas_get_ccbstatus(ccb) != CAM_REQ_INPROG) { mpr_dprint(sc, MPR_TRACE, "%s Command is not in progress for " "target %u\n", __func__, csio->ccb_h.target_id); xpt_done(ccb); return; } /* * If devinfo is 0 this will be a volume. In that case don't tell CAM * that the volume has timed out. We want volumes to be enumerated * until they are deleted/removed, not just failed. */ if (targ->flags & MPRSAS_TARGET_INREMOVAL) { if (targ->devinfo == 0) mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); else mprsas_set_ccbstatus(ccb, CAM_SEL_TIMEOUT); xpt_done(ccb); return; } if ((sc->mpr_flags & MPR_FLAGS_SHUTDOWN) != 0) { mpr_dprint(sc, MPR_INFO, "%s shutting down\n", __func__); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); xpt_done(ccb); return; } /* * If target has a reset in progress, freeze the devq and return. The * devq will be released when the TM reset is finished. */ if (targ->flags & MPRSAS_TARGET_INRESET) { ccb->ccb_h.status = CAM_BUSY | CAM_DEV_QFRZN; mpr_dprint(sc, MPR_INFO, "%s: Freezing devq for target ID %d\n", __func__, targ->tid); xpt_freeze_devq(ccb->ccb_h.path, 1); xpt_done(ccb); return; } cm = mpr_alloc_command(sc); if (cm == NULL || (sc->mpr_flags & MPR_FLAGS_DIAGRESET)) { if (cm != NULL) { mpr_free_command(sc, cm); } if ((sassc->flags & MPRSAS_QUEUE_FROZEN) == 0) { xpt_freeze_simq(sassc->sim, 1); sassc->flags |= MPRSAS_QUEUE_FROZEN; } ccb->ccb_h.status &= ~CAM_SIM_QUEUED; ccb->ccb_h.status |= CAM_REQUEUE_REQ; xpt_done(ccb); return; } /* For NVME device's issue UNMAP command directly to NVME drives by * constructing equivalent native NVMe DataSetManagement command. */ #if __FreeBSD_version >= 1100103 scsi_opcode = scsiio_cdb_ptr(csio)[0]; #else if (csio->ccb_h.flags & CAM_CDB_POINTER) scsi_opcode = csio->cdb_io.cdb_ptr[0]; else scsi_opcode = csio->cdb_io.cdb_bytes[0]; #endif if (scsi_opcode == UNMAP && targ->is_nvme && (csio->ccb_h.flags & CAM_DATA_MASK) == CAM_DATA_VADDR) { rc = mprsas_build_nvme_unmap(sc, cm, ccb, targ); if (rc == 1) { /* return command to CAM with success status */ mpr_free_command(sc, cm); mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); xpt_done(ccb); return; } else if (!rc) /* Issued NVMe Encapsulated Request Message */ return; } req = (MPI2_SCSI_IO_REQUEST *)cm->cm_req; bzero(req, sizeof(*req)); req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_SCSI_IO_REQUEST; req->MsgFlags = 0; req->SenseBufferLowAddress = htole32(cm->cm_sense_busaddr); req->SenseBufferLength = MPR_SENSE_LEN; req->SGLFlags = 0; req->ChainOffset = 0; req->SGLOffset0 = 24; /* 32bit word offset to the SGL */ req->SGLOffset1= 0; req->SGLOffset2= 0; req->SGLOffset3= 0; req->SkipCount = 0; req->DataLength = htole32(csio->dxfer_len); req->BidirectionalDataLength = 0; req->IoFlags = htole16(csio->cdb_len); req->EEDPFlags = 0; /* Note: BiDirectional transfers are not supported */ switch (csio->ccb_h.flags & CAM_DIR_MASK) { case CAM_DIR_IN: mpi_control = MPI2_SCSIIO_CONTROL_READ; cm->cm_flags |= MPR_CM_FLAGS_DATAIN; break; case CAM_DIR_OUT: mpi_control = MPI2_SCSIIO_CONTROL_WRITE; cm->cm_flags |= MPR_CM_FLAGS_DATAOUT; break; case CAM_DIR_NONE: default: mpi_control = MPI2_SCSIIO_CONTROL_NODATATRANSFER; break; } if (csio->cdb_len == 32) mpi_control |= 4 << MPI2_SCSIIO_CONTROL_ADDCDBLEN_SHIFT; /* * It looks like the hardware doesn't require an explicit tag * number for each transaction. SAM Task Management not supported * at the moment. */ switch (csio->tag_action) { case MSG_HEAD_OF_Q_TAG: mpi_control |= MPI2_SCSIIO_CONTROL_HEADOFQ; break; case MSG_ORDERED_Q_TAG: mpi_control |= MPI2_SCSIIO_CONTROL_ORDEREDQ; break; case MSG_ACA_TASK: mpi_control |= MPI2_SCSIIO_CONTROL_ACAQ; break; case CAM_TAG_ACTION_NONE: case MSG_SIMPLE_Q_TAG: default: mpi_control |= MPI2_SCSIIO_CONTROL_SIMPLEQ; break; } mpi_control |= sc->mapping_table[csio->ccb_h.target_id].TLR_bits; req->Control = htole32(mpi_control); if (MPR_SET_LUN(req->LUN, csio->ccb_h.target_lun) != 0) { mpr_free_command(sc, cm); mprsas_set_ccbstatus(ccb, CAM_LUN_INVALID); xpt_done(ccb); return; } if (csio->ccb_h.flags & CAM_CDB_POINTER) bcopy(csio->cdb_io.cdb_ptr, &req->CDB.CDB32[0], csio->cdb_len); else { KASSERT(csio->cdb_len <= IOCDBLEN, ("cdb_len %d is greater than IOCDBLEN but CAM_CDB_POINTER " "is not set", csio->cdb_len)); bcopy(csio->cdb_io.cdb_bytes, &req->CDB.CDB32[0],csio->cdb_len); } req->IoFlags = htole16(csio->cdb_len); /* * Check if EEDP is supported and enabled. If it is then check if the * SCSI opcode could be using EEDP. If so, make sure the LUN exists and * is formatted for EEDP support. If all of this is true, set CDB up * for EEDP transfer. */ eedp_flags = op_code_prot[req->CDB.CDB32[0]]; if (sc->eedp_enabled && eedp_flags) { SLIST_FOREACH(lun, &targ->luns, lun_link) { if (lun->lun_id == csio->ccb_h.target_lun) { break; } } if ((lun != NULL) && (lun->eedp_formatted)) { req->EEDPBlockSize = htole16(lun->eedp_block_size); eedp_flags |= (MPI2_SCSIIO_EEDPFLAGS_INC_PRI_REFTAG | MPI2_SCSIIO_EEDPFLAGS_CHECK_REFTAG | MPI2_SCSIIO_EEDPFLAGS_CHECK_GUARD); if (sc->mpr_flags & MPR_FLAGS_GEN35_IOC) { eedp_flags |= MPI25_SCSIIO_EEDPFLAGS_APPTAG_DISABLE_MODE; } req->EEDPFlags = htole16(eedp_flags); /* * If CDB less than 32, fill in Primary Ref Tag with * low 4 bytes of LBA. If CDB is 32, tag stuff is * already there. Also, set protection bit. FreeBSD * currently does not support CDBs bigger than 16, but * the code doesn't hurt, and will be here for the * future. */ if (csio->cdb_len != 32) { lba_byte = (csio->cdb_len == 16) ? 6 : 2; ref_tag_addr = (uint8_t *)&req->CDB.EEDP32. PrimaryReferenceTag; for (i = 0; i < 4; i++) { *ref_tag_addr = req->CDB.CDB32[lba_byte + i]; ref_tag_addr++; } req->CDB.EEDP32.PrimaryReferenceTag = htole32(req-> CDB.EEDP32.PrimaryReferenceTag); req->CDB.EEDP32.PrimaryApplicationTagMask = 0xFFFF; req->CDB.CDB32[1] = (req->CDB.CDB32[1] & 0x1F) | 0x20; } else { eedp_flags |= MPI2_SCSIIO_EEDPFLAGS_INC_PRI_APPTAG; req->EEDPFlags = htole16(eedp_flags); req->CDB.CDB32[10] = (req->CDB.CDB32[10] & 0x1F) | 0x20; } } } cm->cm_length = csio->dxfer_len; if (cm->cm_length != 0) { cm->cm_data = ccb; cm->cm_flags |= MPR_CM_FLAGS_USE_CCB; } else { cm->cm_data = NULL; } cm->cm_sge = &req->SGL; cm->cm_sglsize = (32 - 24) * 4; cm->cm_complete = mprsas_scsiio_complete; cm->cm_complete_data = ccb; cm->cm_targ = targ; cm->cm_lun = csio->ccb_h.target_lun; cm->cm_ccb = ccb; /* * If using FP desc type, need to set a bit in IoFlags (SCSI IO is 0) * and set descriptor type. */ if (targ->scsi_req_desc_type == MPI25_REQ_DESCRIPT_FLAGS_FAST_PATH_SCSI_IO) { req->IoFlags |= MPI25_SCSIIO_IOFLAGS_FAST_PATH; cm->cm_desc.FastPathSCSIIO.RequestFlags = MPI25_REQ_DESCRIPT_FLAGS_FAST_PATH_SCSI_IO; if (!sc->atomic_desc_capable) { cm->cm_desc.FastPathSCSIIO.DevHandle = htole16(targ->handle); } } else { cm->cm_desc.SCSIIO.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_SCSI_IO; if (!sc->atomic_desc_capable) cm->cm_desc.SCSIIO.DevHandle = htole16(targ->handle); } csio->ccb_h.qos.sim_data = sbinuptime(); #if __FreeBSD_version >= 1000029 callout_reset_sbt(&cm->cm_callout, SBT_1MS * ccb->ccb_h.timeout, 0, mprsas_scsiio_timeout, cm, 0); #else //__FreeBSD_version < 1000029 callout_reset(&cm->cm_callout, (ccb->ccb_h.timeout * hz) / 1000, mprsas_scsiio_timeout, cm); #endif //__FreeBSD_version >= 1000029 targ->issued++; targ->outstanding++; TAILQ_INSERT_TAIL(&targ->commands, cm, cm_link); ccb->ccb_h.status |= CAM_SIM_QUEUED; mprsas_log_command(cm, MPR_XINFO, "%s cm %p ccb %p outstanding %u\n", __func__, cm, ccb, targ->outstanding); mpr_map_command(sc, cm); return; } /** * mpr_sc_failed_io_info - translated non-succesfull SCSI_IO request */ static void mpr_sc_failed_io_info(struct mpr_softc *sc, struct ccb_scsiio *csio, Mpi2SCSIIOReply_t *mpi_reply, struct mprsas_target *targ) { u32 response_info; u8 *response_bytes; u16 ioc_status = le16toh(mpi_reply->IOCStatus) & MPI2_IOCSTATUS_MASK; u8 scsi_state = mpi_reply->SCSIState; u8 scsi_status = mpi_reply->SCSIStatus; char *desc_ioc_state = NULL; char *desc_scsi_status = NULL; u32 log_info = le32toh(mpi_reply->IOCLogInfo); if (log_info == 0x31170000) return; desc_ioc_state = mpr_describe_table(mpr_iocstatus_string, ioc_status); desc_scsi_status = mpr_describe_table(mpr_scsi_status_string, scsi_status); mpr_dprint(sc, MPR_XINFO, "\thandle(0x%04x), ioc_status(%s)(0x%04x)\n", le16toh(mpi_reply->DevHandle), desc_ioc_state, ioc_status); if (targ->encl_level_valid) { mpr_dprint(sc, MPR_XINFO, "At enclosure level %d, slot %d, " "connector name (%4s)\n", targ->encl_level, targ->encl_slot, targ->connector_name); } /* * We can add more detail about underflow data here * TO-DO */ mpr_dprint(sc, MPR_XINFO, "\tscsi_status(%s)(0x%02x), " "scsi_state %b\n", desc_scsi_status, scsi_status, scsi_state, "\20" "\1AutosenseValid" "\2AutosenseFailed" "\3NoScsiStatus" "\4Terminated" "\5Response InfoValid"); if (sc->mpr_debug & MPR_XINFO && scsi_state & MPI2_SCSI_STATE_AUTOSENSE_VALID) { mpr_dprint(sc, MPR_XINFO, "-> Sense Buffer Data : Start :\n"); scsi_sense_print(csio); mpr_dprint(sc, MPR_XINFO, "-> Sense Buffer Data : End :\n"); } if (scsi_state & MPI2_SCSI_STATE_RESPONSE_INFO_VALID) { response_info = le32toh(mpi_reply->ResponseInfo); response_bytes = (u8 *)&response_info; mpr_dprint(sc, MPR_XINFO, "response code(0x%01x): %s\n", response_bytes[0], mpr_describe_table(mpr_scsi_taskmgmt_string, response_bytes[0])); } } /** mprsas_nvme_trans_status_code * * Convert Native NVMe command error status to * equivalent SCSI error status. * * Returns appropriate scsi_status */ static u8 mprsas_nvme_trans_status_code(uint16_t nvme_status, struct mpr_command *cm) { u8 status = MPI2_SCSI_STATUS_GOOD; int skey, asc, ascq; union ccb *ccb = cm->cm_complete_data; int returned_sense_len; uint8_t sct, sc; sct = NVME_STATUS_GET_SCT(nvme_status); sc = NVME_STATUS_GET_SC(nvme_status); status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_ILLEGAL_REQUEST; asc = SCSI_ASC_NO_SENSE; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; switch (sct) { case NVME_SCT_GENERIC: switch (sc) { case NVME_SC_SUCCESS: status = MPI2_SCSI_STATUS_GOOD; skey = SSD_KEY_NO_SENSE; asc = SCSI_ASC_NO_SENSE; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_INVALID_OPCODE: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_ILLEGAL_REQUEST; asc = SCSI_ASC_ILLEGAL_COMMAND; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_INVALID_FIELD: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_ILLEGAL_REQUEST; asc = SCSI_ASC_INVALID_CDB; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_DATA_TRANSFER_ERROR: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_MEDIUM_ERROR; asc = SCSI_ASC_NO_SENSE; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_ABORTED_POWER_LOSS: status = MPI2_SCSI_STATUS_TASK_ABORTED; skey = SSD_KEY_ABORTED_COMMAND; asc = SCSI_ASC_WARNING; ascq = SCSI_ASCQ_POWER_LOSS_EXPECTED; break; case NVME_SC_INTERNAL_DEVICE_ERROR: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_HARDWARE_ERROR; asc = SCSI_ASC_INTERNAL_TARGET_FAILURE; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_ABORTED_BY_REQUEST: case NVME_SC_ABORTED_SQ_DELETION: case NVME_SC_ABORTED_FAILED_FUSED: case NVME_SC_ABORTED_MISSING_FUSED: status = MPI2_SCSI_STATUS_TASK_ABORTED; skey = SSD_KEY_ABORTED_COMMAND; asc = SCSI_ASC_NO_SENSE; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_INVALID_NAMESPACE_OR_FORMAT: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_ILLEGAL_REQUEST; asc = SCSI_ASC_ACCESS_DENIED_INVALID_LUN_ID; ascq = SCSI_ASCQ_INVALID_LUN_ID; break; case NVME_SC_LBA_OUT_OF_RANGE: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_ILLEGAL_REQUEST; asc = SCSI_ASC_ILLEGAL_BLOCK; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_CAPACITY_EXCEEDED: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_MEDIUM_ERROR; asc = SCSI_ASC_NO_SENSE; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_NAMESPACE_NOT_READY: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_NOT_READY; asc = SCSI_ASC_LUN_NOT_READY; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; } break; case NVME_SCT_COMMAND_SPECIFIC: switch (sc) { case NVME_SC_INVALID_FORMAT: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_ILLEGAL_REQUEST; asc = SCSI_ASC_FORMAT_COMMAND_FAILED; ascq = SCSI_ASCQ_FORMAT_COMMAND_FAILED; break; case NVME_SC_CONFLICTING_ATTRIBUTES: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_ILLEGAL_REQUEST; asc = SCSI_ASC_INVALID_CDB; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; } break; case NVME_SCT_MEDIA_ERROR: switch (sc) { case NVME_SC_WRITE_FAULTS: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_MEDIUM_ERROR; asc = SCSI_ASC_PERIPHERAL_DEV_WRITE_FAULT; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_UNRECOVERED_READ_ERROR: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_MEDIUM_ERROR; asc = SCSI_ASC_UNRECOVERED_READ_ERROR; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_GUARD_CHECK_ERROR: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_MEDIUM_ERROR; asc = SCSI_ASC_LOG_BLOCK_GUARD_CHECK_FAILED; ascq = SCSI_ASCQ_LOG_BLOCK_GUARD_CHECK_FAILED; break; case NVME_SC_APPLICATION_TAG_CHECK_ERROR: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_MEDIUM_ERROR; asc = SCSI_ASC_LOG_BLOCK_APPTAG_CHECK_FAILED; ascq = SCSI_ASCQ_LOG_BLOCK_APPTAG_CHECK_FAILED; break; case NVME_SC_REFERENCE_TAG_CHECK_ERROR: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_MEDIUM_ERROR; asc = SCSI_ASC_LOG_BLOCK_REFTAG_CHECK_FAILED; ascq = SCSI_ASCQ_LOG_BLOCK_REFTAG_CHECK_FAILED; break; case NVME_SC_COMPARE_FAILURE: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_MISCOMPARE; asc = SCSI_ASC_MISCOMPARE_DURING_VERIFY; ascq = SCSI_ASCQ_CAUSE_NOT_REPORTABLE; break; case NVME_SC_ACCESS_DENIED: status = MPI2_SCSI_STATUS_CHECK_CONDITION; skey = SSD_KEY_ILLEGAL_REQUEST; asc = SCSI_ASC_ACCESS_DENIED_INVALID_LUN_ID; ascq = SCSI_ASCQ_INVALID_LUN_ID; break; } break; } returned_sense_len = sizeof(struct scsi_sense_data); if (returned_sense_len < ccb->csio.sense_len) ccb->csio.sense_resid = ccb->csio.sense_len - returned_sense_len; else ccb->csio.sense_resid = 0; scsi_set_sense_data(&ccb->csio.sense_data, SSD_TYPE_FIXED, 1, skey, asc, ascq, SSD_ELEM_NONE); ccb->ccb_h.status |= CAM_AUTOSNS_VALID; return status; } /** mprsas_complete_nvme_unmap * * Complete native NVMe command issued using NVMe Encapsulated * Request Message. */ static u8 mprsas_complete_nvme_unmap(struct mpr_softc *sc, struct mpr_command *cm) { Mpi26NVMeEncapsulatedErrorReply_t *mpi_reply; struct nvme_completion *nvme_completion = NULL; u8 scsi_status = MPI2_SCSI_STATUS_GOOD; mpi_reply =(Mpi26NVMeEncapsulatedErrorReply_t *)cm->cm_reply; if (le16toh(mpi_reply->ErrorResponseCount)){ nvme_completion = (struct nvme_completion *)cm->cm_sense; scsi_status = mprsas_nvme_trans_status_code( nvme_completion->status, cm); } return scsi_status; } static void mprsas_scsiio_complete(struct mpr_softc *sc, struct mpr_command *cm) { MPI2_SCSI_IO_REPLY *rep; union ccb *ccb; struct ccb_scsiio *csio; struct mprsas_softc *sassc; struct scsi_vpd_supported_page_list *vpd_list = NULL; u8 *TLR_bits, TLR_on, *scsi_cdb; int dir = 0, i; u16 alloc_len; struct mprsas_target *target; target_id_t target_id; MPR_FUNCTRACE(sc); mpr_dprint(sc, MPR_TRACE, "cm %p SMID %u ccb %p reply %p outstanding %u\n", cm, cm->cm_desc.Default.SMID, cm->cm_ccb, cm->cm_reply, cm->cm_targ->outstanding); callout_stop(&cm->cm_callout); mtx_assert(&sc->mpr_mtx, MA_OWNED); sassc = sc->sassc; ccb = cm->cm_complete_data; csio = &ccb->csio; target_id = csio->ccb_h.target_id; rep = (MPI2_SCSI_IO_REPLY *)cm->cm_reply; /* * XXX KDM if the chain allocation fails, does it matter if we do * the sync and unload here? It is simpler to do it in every case, * assuming it doesn't cause problems. */ if (cm->cm_data != NULL) { if (cm->cm_flags & MPR_CM_FLAGS_DATAIN) dir = BUS_DMASYNC_POSTREAD; else if (cm->cm_flags & MPR_CM_FLAGS_DATAOUT) dir = BUS_DMASYNC_POSTWRITE; bus_dmamap_sync(sc->buffer_dmat, cm->cm_dmamap, dir); bus_dmamap_unload(sc->buffer_dmat, cm->cm_dmamap); } cm->cm_targ->completed++; cm->cm_targ->outstanding--; TAILQ_REMOVE(&cm->cm_targ->commands, cm, cm_link); ccb->ccb_h.status &= ~(CAM_STATUS_MASK | CAM_SIM_QUEUED); if (cm->cm_state == MPR_CM_STATE_TIMEDOUT) { TAILQ_REMOVE(&cm->cm_targ->timedout_commands, cm, cm_recovery); cm->cm_state = MPR_CM_STATE_BUSY; if (cm->cm_reply != NULL) mprsas_log_command(cm, MPR_RECOVERY, "completed timedout cm %p ccb %p during recovery " "ioc %x scsi %x state %x xfer %u\n", cm, cm->cm_ccb, le16toh(rep->IOCStatus), rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); else mprsas_log_command(cm, MPR_RECOVERY, "completed timedout cm %p ccb %p during recovery\n", cm, cm->cm_ccb); } else if (cm->cm_targ->tm != NULL) { if (cm->cm_reply != NULL) mprsas_log_command(cm, MPR_RECOVERY, "completed cm %p ccb %p during recovery " "ioc %x scsi %x state %x xfer %u\n", cm, cm->cm_ccb, le16toh(rep->IOCStatus), rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); else mprsas_log_command(cm, MPR_RECOVERY, "completed cm %p ccb %p during recovery\n", cm, cm->cm_ccb); } else if ((sc->mpr_flags & MPR_FLAGS_DIAGRESET) != 0) { mprsas_log_command(cm, MPR_RECOVERY, "reset completed cm %p ccb %p\n", cm, cm->cm_ccb); } if ((cm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { /* * We ran into an error after we tried to map the command, * so we're getting a callback without queueing the command * to the hardware. So we set the status here, and it will * be retained below. We'll go through the "fast path", * because there can be no reply when we haven't actually * gone out to the hardware. */ mprsas_set_ccbstatus(ccb, CAM_REQUEUE_REQ); /* * Currently the only error included in the mask is * MPR_CM_FLAGS_CHAIN_FAILED, which means we're out of * chain frames. We need to freeze the queue until we get * a command that completed without this error, which will * hopefully have some chain frames attached that we can * use. If we wanted to get smarter about it, we would * only unfreeze the queue in this condition when we're * sure that we're getting some chain frames back. That's * probably unnecessary. */ if ((sassc->flags & MPRSAS_QUEUE_FROZEN) == 0) { xpt_freeze_simq(sassc->sim, 1); sassc->flags |= MPRSAS_QUEUE_FROZEN; mpr_dprint(sc, MPR_XINFO, "Error sending command, " "freezing SIM queue\n"); } } /* * Point to the SCSI CDB, which is dependent on the CAM_CDB_POINTER * flag, and use it in a few places in the rest of this function for * convenience. Use the macro if available. */ #if __FreeBSD_version >= 1100103 scsi_cdb = scsiio_cdb_ptr(csio); #else if (csio->ccb_h.flags & CAM_CDB_POINTER) scsi_cdb = csio->cdb_io.cdb_ptr; else scsi_cdb = csio->cdb_io.cdb_bytes; #endif /* * If this is a Start Stop Unit command and it was issued by the driver * during shutdown, decrement the refcount to account for all of the * commands that were sent. All SSU commands should be completed before * shutdown completes, meaning SSU_refcount will be 0 after SSU_started * is TRUE. */ if (sc->SSU_started && (scsi_cdb[0] == START_STOP_UNIT)) { mpr_dprint(sc, MPR_INFO, "Decrementing SSU count.\n"); sc->SSU_refcount--; } /* Take the fast path to completion */ if (cm->cm_reply == NULL) { if (mprsas_get_ccbstatus(ccb) == CAM_REQ_INPROG) { if ((sc->mpr_flags & MPR_FLAGS_DIAGRESET) != 0) mprsas_set_ccbstatus(ccb, CAM_SCSI_BUS_RESET); else { mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); csio->scsi_status = SCSI_STATUS_OK; } if (sassc->flags & MPRSAS_QUEUE_FROZEN) { ccb->ccb_h.status |= CAM_RELEASE_SIMQ; sassc->flags &= ~MPRSAS_QUEUE_FROZEN; mpr_dprint(sc, MPR_XINFO, "Unfreezing SIM queue\n"); } } /* * There are two scenarios where the status won't be * CAM_REQ_CMP. The first is if MPR_CM_FLAGS_ERROR_MASK is * set, the second is in the MPR_FLAGS_DIAGRESET above. */ if (mprsas_get_ccbstatus(ccb) != CAM_REQ_CMP) { /* * Freeze the dev queue so that commands are * executed in the correct order after error * recovery. */ ccb->ccb_h.status |= CAM_DEV_QFRZN; xpt_freeze_devq(ccb->ccb_h.path, /*count*/ 1); } mpr_free_command(sc, cm); xpt_done(ccb); return; } target = &sassc->targets[target_id]; if (scsi_cdb[0] == UNMAP && target->is_nvme && (csio->ccb_h.flags & CAM_DATA_MASK) == CAM_DATA_VADDR) { rep->SCSIStatus = mprsas_complete_nvme_unmap(sc, cm); csio->scsi_status = rep->SCSIStatus; } mprsas_log_command(cm, MPR_XINFO, "ioc %x scsi %x state %x xfer %u\n", le16toh(rep->IOCStatus), rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); switch (le16toh(rep->IOCStatus) & MPI2_IOCSTATUS_MASK) { case MPI2_IOCSTATUS_SCSI_DATA_UNDERRUN: csio->resid = cm->cm_length - le32toh(rep->TransferCount); /* FALLTHROUGH */ case MPI2_IOCSTATUS_SUCCESS: case MPI2_IOCSTATUS_SCSI_RECOVERED_ERROR: if ((le16toh(rep->IOCStatus) & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SCSI_RECOVERED_ERROR) mprsas_log_command(cm, MPR_XINFO, "recovered error\n"); /* Completion failed at the transport level. */ if (rep->SCSIState & (MPI2_SCSI_STATE_NO_SCSI_STATUS | MPI2_SCSI_STATE_TERMINATED)) { mprsas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); break; } /* In a modern packetized environment, an autosense failure * implies that there's not much else that can be done to * recover the command. */ if (rep->SCSIState & MPI2_SCSI_STATE_AUTOSENSE_FAILED) { mprsas_set_ccbstatus(ccb, CAM_AUTOSENSE_FAIL); break; } /* * CAM doesn't care about SAS Response Info data, but if this is * the state check if TLR should be done. If not, clear the * TLR_bits for the target. */ if ((rep->SCSIState & MPI2_SCSI_STATE_RESPONSE_INFO_VALID) && ((le32toh(rep->ResponseInfo) & MPI2_SCSI_RI_MASK_REASONCODE) == MPR_SCSI_RI_INVALID_FRAME)) { sc->mapping_table[target_id].TLR_bits = (u8)MPI2_SCSIIO_CONTROL_NO_TLR; } /* * Intentionally override the normal SCSI status reporting * for these two cases. These are likely to happen in a * multi-initiator environment, and we want to make sure that * CAM retries these commands rather than fail them. */ if ((rep->SCSIStatus == MPI2_SCSI_STATUS_COMMAND_TERMINATED) || (rep->SCSIStatus == MPI2_SCSI_STATUS_TASK_ABORTED)) { mprsas_set_ccbstatus(ccb, CAM_REQ_ABORTED); break; } /* Handle normal status and sense */ csio->scsi_status = rep->SCSIStatus; if (rep->SCSIStatus == MPI2_SCSI_STATUS_GOOD) mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); else mprsas_set_ccbstatus(ccb, CAM_SCSI_STATUS_ERROR); if (rep->SCSIState & MPI2_SCSI_STATE_AUTOSENSE_VALID) { int sense_len, returned_sense_len; returned_sense_len = min(le32toh(rep->SenseCount), sizeof(struct scsi_sense_data)); if (returned_sense_len < csio->sense_len) csio->sense_resid = csio->sense_len - returned_sense_len; else csio->sense_resid = 0; sense_len = min(returned_sense_len, csio->sense_len - csio->sense_resid); bzero(&csio->sense_data, sizeof(csio->sense_data)); bcopy(cm->cm_sense, &csio->sense_data, sense_len); ccb->ccb_h.status |= CAM_AUTOSNS_VALID; } /* * Check if this is an INQUIRY command. If it's a VPD inquiry, * and it's page code 0 (Supported Page List), and there is * inquiry data, and this is for a sequential access device, and * the device is an SSP target, and TLR is supported by the * controller, turn the TLR_bits value ON if page 0x90 is * supported. */ if ((scsi_cdb[0] == INQUIRY) && (scsi_cdb[1] & SI_EVPD) && (scsi_cdb[2] == SVPD_SUPPORTED_PAGE_LIST) && ((csio->ccb_h.flags & CAM_DATA_MASK) == CAM_DATA_VADDR) && (csio->data_ptr != NULL) && ((csio->data_ptr[0] & 0x1f) == T_SEQUENTIAL) && (sc->control_TLR) && (sc->mapping_table[target_id].device_info & MPI2_SAS_DEVICE_INFO_SSP_TARGET)) { vpd_list = (struct scsi_vpd_supported_page_list *) csio->data_ptr; TLR_bits = &sc->mapping_table[target_id].TLR_bits; *TLR_bits = (u8)MPI2_SCSIIO_CONTROL_NO_TLR; TLR_on = (u8)MPI2_SCSIIO_CONTROL_TLR_ON; alloc_len = ((u16)scsi_cdb[3] << 8) + scsi_cdb[4]; alloc_len -= csio->resid; for (i = 0; i < MIN(vpd_list->length, alloc_len); i++) { if (vpd_list->list[i] == 0x90) { *TLR_bits = TLR_on; break; } } } /* * If this is a SATA direct-access end device, mark it so that * a SCSI StartStopUnit command will be sent to it when the * driver is being shutdown. */ if ((scsi_cdb[0] == INQUIRY) && (csio->data_ptr != NULL) && ((csio->data_ptr[0] & 0x1f) == T_DIRECT) && (sc->mapping_table[target_id].device_info & MPI2_SAS_DEVICE_INFO_SATA_DEVICE) && ((sc->mapping_table[target_id].device_info & MPI2_SAS_DEVICE_INFO_MASK_DEVICE_TYPE) == MPI2_SAS_DEVICE_INFO_END_DEVICE)) { target = &sassc->targets[target_id]; target->supports_SSU = TRUE; mpr_dprint(sc, MPR_XINFO, "Target %d supports SSU\n", target_id); } break; case MPI2_IOCSTATUS_SCSI_INVALID_DEVHANDLE: case MPI2_IOCSTATUS_SCSI_DEVICE_NOT_THERE: /* * If devinfo is 0 this will be a volume. In that case don't * tell CAM that the volume is not there. We want volumes to * be enumerated until they are deleted/removed, not just * failed. */ if (cm->cm_targ->devinfo == 0) mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); else mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); break; case MPI2_IOCSTATUS_INVALID_SGL: mpr_print_scsiio_cmd(sc, cm); mprsas_set_ccbstatus(ccb, CAM_UNREC_HBA_ERROR); break; case MPI2_IOCSTATUS_SCSI_TASK_TERMINATED: /* * This is one of the responses that comes back when an I/O * has been aborted. If it is because of a timeout that we * initiated, just set the status to CAM_CMD_TIMEOUT. * Otherwise set it to CAM_REQ_ABORTED. The effect on the * command is the same (it gets retried, subject to the * retry counter), the only difference is what gets printed * on the console. */ if (cm->cm_state == MPR_CM_STATE_TIMEDOUT) mprsas_set_ccbstatus(ccb, CAM_CMD_TIMEOUT); else mprsas_set_ccbstatus(ccb, CAM_REQ_ABORTED); break; case MPI2_IOCSTATUS_SCSI_DATA_OVERRUN: /* resid is ignored for this condition */ csio->resid = 0; mprsas_set_ccbstatus(ccb, CAM_DATA_RUN_ERR); break; case MPI2_IOCSTATUS_SCSI_IOC_TERMINATED: case MPI2_IOCSTATUS_SCSI_EXT_TERMINATED: /* * These can sometimes be transient transport-related * errors, and sometimes persistent drive-related errors. * We used to retry these without decrementing the retry * count by returning CAM_REQUEUE_REQ. Unfortunately, if * we hit a persistent drive problem that returns one of * these error codes, we would retry indefinitely. So, * return CAM_REQ_CMP_ERROR so that we decrement the retry * count and avoid infinite retries. We're taking the * potential risk of flagging false failures in the event * of a topology-related error (e.g. a SAS expander problem * causes a command addressed to a drive to fail), but * avoiding getting into an infinite retry loop. */ mprsas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); mpr_dprint(sc, MPR_INFO, "Controller reported %s tgt %u SMID %u loginfo %x\n", mpr_describe_table(mpr_iocstatus_string, le16toh(rep->IOCStatus) & MPI2_IOCSTATUS_MASK), target_id, cm->cm_desc.Default.SMID, le32toh(rep->IOCLogInfo)); mpr_dprint(sc, MPR_XINFO, "SCSIStatus %x SCSIState %x xfercount %u\n", rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); break; case MPI2_IOCSTATUS_INVALID_FUNCTION: case MPI2_IOCSTATUS_INTERNAL_ERROR: case MPI2_IOCSTATUS_INVALID_VPID: case MPI2_IOCSTATUS_INVALID_FIELD: case MPI2_IOCSTATUS_INVALID_STATE: case MPI2_IOCSTATUS_OP_STATE_NOT_SUPPORTED: case MPI2_IOCSTATUS_SCSI_IO_DATA_ERROR: case MPI2_IOCSTATUS_SCSI_PROTOCOL_ERROR: case MPI2_IOCSTATUS_SCSI_RESIDUAL_MISMATCH: case MPI2_IOCSTATUS_SCSI_TASK_MGMT_FAILED: default: mprsas_log_command(cm, MPR_XINFO, "completed ioc %x loginfo %x scsi %x state %x xfer %u\n", le16toh(rep->IOCStatus), le32toh(rep->IOCLogInfo), rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); csio->resid = cm->cm_length; if (scsi_cdb[0] == UNMAP && target->is_nvme && (csio->ccb_h.flags & CAM_DATA_MASK) == CAM_DATA_VADDR) mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); else mprsas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); break; } mpr_sc_failed_io_info(sc, csio, rep, cm->cm_targ); if (sassc->flags & MPRSAS_QUEUE_FROZEN) { ccb->ccb_h.status |= CAM_RELEASE_SIMQ; sassc->flags &= ~MPRSAS_QUEUE_FROZEN; mpr_dprint(sc, MPR_XINFO, "Command completed, unfreezing SIM " "queue\n"); } if (mprsas_get_ccbstatus(ccb) != CAM_REQ_CMP) { ccb->ccb_h.status |= CAM_DEV_QFRZN; xpt_freeze_devq(ccb->ccb_h.path, /*count*/ 1); } mpr_free_command(sc, cm); xpt_done(ccb); } #if __FreeBSD_version >= 900026 static void mprsas_smpio_complete(struct mpr_softc *sc, struct mpr_command *cm) { MPI2_SMP_PASSTHROUGH_REPLY *rpl; MPI2_SMP_PASSTHROUGH_REQUEST *req; uint64_t sasaddr; union ccb *ccb; ccb = cm->cm_complete_data; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and SMP * commands require two S/G elements only. That should be handled * in the standard request size. */ if ((cm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { mpr_dprint(sc, MPR_ERROR, "%s: cm_flags = %#x on SMP " "request!\n", __func__, cm->cm_flags); mprsas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); goto bailout; } rpl = (MPI2_SMP_PASSTHROUGH_REPLY *)cm->cm_reply; if (rpl == NULL) { mpr_dprint(sc, MPR_ERROR, "%s: NULL cm_reply!\n", __func__); mprsas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); goto bailout; } req = (MPI2_SMP_PASSTHROUGH_REQUEST *)cm->cm_req; sasaddr = le32toh(req->SASAddress.Low); sasaddr |= ((uint64_t)(le32toh(req->SASAddress.High))) << 32; if ((le16toh(rpl->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS || rpl->SASStatus != MPI2_SASSTATUS_SUCCESS) { mpr_dprint(sc, MPR_XINFO, "%s: IOCStatus %04x SASStatus %02x\n", __func__, le16toh(rpl->IOCStatus), rpl->SASStatus); mprsas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); goto bailout; } mpr_dprint(sc, MPR_XINFO, "%s: SMP request to SAS address %#jx " "completed successfully\n", __func__, (uintmax_t)sasaddr); if (ccb->smpio.smp_response[2] == SMP_FR_ACCEPTED) mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); else mprsas_set_ccbstatus(ccb, CAM_SMP_STATUS_ERROR); bailout: /* * We sync in both directions because we had DMAs in the S/G list * in both directions. */ bus_dmamap_sync(sc->buffer_dmat, cm->cm_dmamap, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(sc->buffer_dmat, cm->cm_dmamap); mpr_free_command(sc, cm); xpt_done(ccb); } static void mprsas_send_smpcmd(struct mprsas_softc *sassc, union ccb *ccb, uint64_t sasaddr) { struct mpr_command *cm; uint8_t *request, *response; MPI2_SMP_PASSTHROUGH_REQUEST *req; struct mpr_softc *sc; struct sglist *sg; int error; sc = sassc->sc; sg = NULL; error = 0; #if (__FreeBSD_version >= 1000028) || \ ((__FreeBSD_version >= 902001) && (__FreeBSD_version < 1000000)) switch (ccb->ccb_h.flags & CAM_DATA_MASK) { case CAM_DATA_PADDR: case CAM_DATA_SG_PADDR: /* * XXX We don't yet support physical addresses here. */ mpr_dprint(sc, MPR_ERROR, "%s: physical addresses not " "supported\n", __func__); mprsas_set_ccbstatus(ccb, CAM_REQ_INVALID); xpt_done(ccb); return; case CAM_DATA_SG: /* * The chip does not support more than one buffer for the * request or response. */ if ((ccb->smpio.smp_request_sglist_cnt > 1) || (ccb->smpio.smp_response_sglist_cnt > 1)) { mpr_dprint(sc, MPR_ERROR, "%s: multiple request or " "response buffer segments not supported for SMP\n", __func__); mprsas_set_ccbstatus(ccb, CAM_REQ_INVALID); xpt_done(ccb); return; } /* * The CAM_SCATTER_VALID flag was originally implemented * for the XPT_SCSI_IO CCB, which only has one data pointer. * We have two. So, just take that flag to mean that we * might have S/G lists, and look at the S/G segment count * to figure out whether that is the case for each individual * buffer. */ if (ccb->smpio.smp_request_sglist_cnt != 0) { bus_dma_segment_t *req_sg; req_sg = (bus_dma_segment_t *)ccb->smpio.smp_request; request = (uint8_t *)(uintptr_t)req_sg[0].ds_addr; } else request = ccb->smpio.smp_request; if (ccb->smpio.smp_response_sglist_cnt != 0) { bus_dma_segment_t *rsp_sg; rsp_sg = (bus_dma_segment_t *)ccb->smpio.smp_response; response = (uint8_t *)(uintptr_t)rsp_sg[0].ds_addr; } else response = ccb->smpio.smp_response; break; case CAM_DATA_VADDR: request = ccb->smpio.smp_request; response = ccb->smpio.smp_response; break; default: mprsas_set_ccbstatus(ccb, CAM_REQ_INVALID); xpt_done(ccb); return; } #else /* __FreeBSD_version < 1000028 */ /* * XXX We don't yet support physical addresses here. */ if (ccb->ccb_h.flags & (CAM_DATA_PHYS|CAM_SG_LIST_PHYS)) { mpr_dprint(sc, MPR_ERROR, "%s: physical addresses not " "supported\n", __func__); mprsas_set_ccbstatus(ccb, CAM_REQ_INVALID); xpt_done(ccb); return; } /* * If the user wants to send an S/G list, check to make sure they * have single buffers. */ if (ccb->ccb_h.flags & CAM_SCATTER_VALID) { /* * The chip does not support more than one buffer for the * request or response. */ if ((ccb->smpio.smp_request_sglist_cnt > 1) || (ccb->smpio.smp_response_sglist_cnt > 1)) { mpr_dprint(sc, MPR_ERROR, "%s: multiple request or " "response buffer segments not supported for SMP\n", __func__); mprsas_set_ccbstatus(ccb, CAM_REQ_INVALID); xpt_done(ccb); return; } /* * The CAM_SCATTER_VALID flag was originally implemented * for the XPT_SCSI_IO CCB, which only has one data pointer. * We have two. So, just take that flag to mean that we * might have S/G lists, and look at the S/G segment count * to figure out whether that is the case for each individual * buffer. */ if (ccb->smpio.smp_request_sglist_cnt != 0) { bus_dma_segment_t *req_sg; req_sg = (bus_dma_segment_t *)ccb->smpio.smp_request; request = (uint8_t *)(uintptr_t)req_sg[0].ds_addr; } else request = ccb->smpio.smp_request; if (ccb->smpio.smp_response_sglist_cnt != 0) { bus_dma_segment_t *rsp_sg; rsp_sg = (bus_dma_segment_t *)ccb->smpio.smp_response; response = (uint8_t *)(uintptr_t)rsp_sg[0].ds_addr; } else response = ccb->smpio.smp_response; } else { request = ccb->smpio.smp_request; response = ccb->smpio.smp_response; } #endif /* __FreeBSD_version < 1000028 */ cm = mpr_alloc_command(sc); if (cm == NULL) { mpr_dprint(sc, MPR_ERROR, "%s: cannot allocate command\n", __func__); mprsas_set_ccbstatus(ccb, CAM_RESRC_UNAVAIL); xpt_done(ccb); return; } req = (MPI2_SMP_PASSTHROUGH_REQUEST *)cm->cm_req; bzero(req, sizeof(*req)); req->Function = MPI2_FUNCTION_SMP_PASSTHROUGH; /* Allow the chip to use any route to this SAS address. */ req->PhysicalPort = 0xff; req->RequestDataLength = htole16(ccb->smpio.smp_request_len); req->SGLFlags = MPI2_SGLFLAGS_SYSTEM_ADDRESS_SPACE | MPI2_SGLFLAGS_SGL_TYPE_MPI; mpr_dprint(sc, MPR_XINFO, "%s: sending SMP request to SAS address " "%#jx\n", __func__, (uintmax_t)sasaddr); mpr_init_sge(cm, req, &req->SGL); /* * Set up a uio to pass into mpr_map_command(). This allows us to * do one map command, and one busdma call in there. */ cm->cm_uio.uio_iov = cm->cm_iovec; cm->cm_uio.uio_iovcnt = 2; cm->cm_uio.uio_segflg = UIO_SYSSPACE; /* * The read/write flag isn't used by busdma, but set it just in * case. This isn't exactly accurate, either, since we're going in * both directions. */ cm->cm_uio.uio_rw = UIO_WRITE; cm->cm_iovec[0].iov_base = request; cm->cm_iovec[0].iov_len = le16toh(req->RequestDataLength); cm->cm_iovec[1].iov_base = response; cm->cm_iovec[1].iov_len = ccb->smpio.smp_response_len; cm->cm_uio.uio_resid = cm->cm_iovec[0].iov_len + cm->cm_iovec[1].iov_len; /* * Trigger a warning message in mpr_data_cb() for the user if we * wind up exceeding two S/G segments. The chip expects one * segment for the request and another for the response. */ cm->cm_max_segs = 2; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; cm->cm_complete = mprsas_smpio_complete; cm->cm_complete_data = ccb; /* * Tell the mapping code that we're using a uio, and that this is * an SMP passthrough request. There is a little special-case * logic there (in mpr_data_cb()) to handle the bidirectional * transfer. */ cm->cm_flags |= MPR_CM_FLAGS_USE_UIO | MPR_CM_FLAGS_SMP_PASS | MPR_CM_FLAGS_DATAIN | MPR_CM_FLAGS_DATAOUT; /* The chip data format is little endian. */ req->SASAddress.High = htole32(sasaddr >> 32); req->SASAddress.Low = htole32(sasaddr); /* * XXX Note that we don't have a timeout/abort mechanism here. * From the manual, it looks like task management requests only * work for SCSI IO and SATA passthrough requests. We may need to * have a mechanism to retry requests in the event of a chip reset * at least. Hopefully the chip will insure that any errors short * of that are relayed back to the driver. */ error = mpr_map_command(sc, cm); if ((error != 0) && (error != EINPROGRESS)) { mpr_dprint(sc, MPR_ERROR, "%s: error %d returned from " "mpr_map_command()\n", __func__, error); goto bailout_error; } return; bailout_error: mpr_free_command(sc, cm); mprsas_set_ccbstatus(ccb, CAM_RESRC_UNAVAIL); xpt_done(ccb); return; } static void mprsas_action_smpio(struct mprsas_softc *sassc, union ccb *ccb) { struct mpr_softc *sc; struct mprsas_target *targ; uint64_t sasaddr = 0; sc = sassc->sc; /* * Make sure the target exists. */ KASSERT(ccb->ccb_h.target_id < sassc->maxtargets, ("Target %d out of bounds in XPT_SMP_IO\n", ccb->ccb_h.target_id)); targ = &sassc->targets[ccb->ccb_h.target_id]; if (targ->handle == 0x0) { mpr_dprint(sc, MPR_ERROR, "%s: target %d does not exist!\n", __func__, ccb->ccb_h.target_id); mprsas_set_ccbstatus(ccb, CAM_SEL_TIMEOUT); xpt_done(ccb); return; } /* * If this device has an embedded SMP target, we'll talk to it * directly. * figure out what the expander's address is. */ if ((targ->devinfo & MPI2_SAS_DEVICE_INFO_SMP_TARGET) != 0) sasaddr = targ->sasaddr; /* * If we don't have a SAS address for the expander yet, try * grabbing it from the page 0x83 information cached in the * transport layer for this target. LSI expanders report the * expander SAS address as the port-associated SAS address in * Inquiry VPD page 0x83. Maxim expanders don't report it in page * 0x83. * * XXX KDM disable this for now, but leave it commented out so that * it is obvious that this is another possible way to get the SAS * address. * * The parent handle method below is a little more reliable, and * the other benefit is that it works for devices other than SES * devices. So you can send a SMP request to a da(4) device and it * will get routed to the expander that device is attached to. * (Assuming the da(4) device doesn't contain an SMP target...) */ #if 0 if (sasaddr == 0) sasaddr = xpt_path_sas_addr(ccb->ccb_h.path); #endif /* * If we still don't have a SAS address for the expander, look for * the parent device of this device, which is probably the expander. */ if (sasaddr == 0) { #ifdef OLD_MPR_PROBE struct mprsas_target *parent_target; #endif if (targ->parent_handle == 0x0) { mpr_dprint(sc, MPR_ERROR, "%s: handle %d does not have " "a valid parent handle!\n", __func__, targ->handle); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } #ifdef OLD_MPR_PROBE parent_target = mprsas_find_target_by_handle(sassc, 0, targ->parent_handle); if (parent_target == NULL) { mpr_dprint(sc, MPR_ERROR, "%s: handle %d does not have " "a valid parent target!\n", __func__, targ->handle); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } if ((parent_target->devinfo & MPI2_SAS_DEVICE_INFO_SMP_TARGET) == 0) { mpr_dprint(sc, MPR_ERROR, "%s: handle %d parent %d " "does not have an SMP target!\n", __func__, targ->handle, parent_target->handle); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } sasaddr = parent_target->sasaddr; #else /* OLD_MPR_PROBE */ if ((targ->parent_devinfo & MPI2_SAS_DEVICE_INFO_SMP_TARGET) == 0) { mpr_dprint(sc, MPR_ERROR, "%s: handle %d parent %d " "does not have an SMP target!\n", __func__, targ->handle, targ->parent_handle); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } if (targ->parent_sasaddr == 0x0) { mpr_dprint(sc, MPR_ERROR, "%s: handle %d parent handle " "%d does not have a valid SAS address!\n", __func__, targ->handle, targ->parent_handle); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } sasaddr = targ->parent_sasaddr; #endif /* OLD_MPR_PROBE */ } if (sasaddr == 0) { mpr_dprint(sc, MPR_INFO, "%s: unable to find SAS address for " "handle %d\n", __func__, targ->handle); mprsas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } mprsas_send_smpcmd(sassc, ccb, sasaddr); return; bailout: xpt_done(ccb); } #endif //__FreeBSD_version >= 900026 static void mprsas_action_resetdev(struct mprsas_softc *sassc, union ccb *ccb) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mpr_softc *sc; struct mpr_command *tm; struct mprsas_target *targ; MPR_FUNCTRACE(sassc->sc); mtx_assert(&sassc->sc->mpr_mtx, MA_OWNED); KASSERT(ccb->ccb_h.target_id < sassc->maxtargets, ("Target %d out of " "bounds in XPT_RESET_DEV\n", ccb->ccb_h.target_id)); sc = sassc->sc; tm = mpr_alloc_command(sc); if (tm == NULL) { mpr_dprint(sc, MPR_ERROR, "command alloc failure in " "mprsas_action_resetdev\n"); mprsas_set_ccbstatus(ccb, CAM_RESRC_UNAVAIL); xpt_done(ccb); return; } targ = &sassc->targets[ccb->ccb_h.target_id]; req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET; /* SAS Hard Link Reset / SATA Link Reset */ req->MsgFlags = MPI2_SCSITASKMGMT_MSGFLAGS_LINK_RESET; tm->cm_data = NULL; - tm->cm_desc.HighPriority.RequestFlags = - MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; tm->cm_complete = mprsas_resetdev_complete; tm->cm_complete_data = ccb; mpr_dprint(sc, MPR_INFO, "%s: Sending reset for target ID %d\n", __func__, targ->tid); tm->cm_targ = targ; targ->flags |= MPRSAS_TARGET_INRESET; mpr_map_command(sc, tm); } static void mprsas_resetdev_complete(struct mpr_softc *sc, struct mpr_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *resp; union ccb *ccb; MPR_FUNCTRACE(sc); mtx_assert(&sc->mpr_mtx, MA_OWNED); resp = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; ccb = tm->cm_complete_data; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; mpr_dprint(sc, MPR_ERROR, "%s: cm_flags = %#x for reset of " "handle %#04x! This should not happen!\n", __func__, tm->cm_flags, req->DevHandle); mprsas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); goto bailout; } mpr_dprint(sc, MPR_XINFO, "%s: IOCStatus = 0x%x ResponseCode = 0x%x\n", __func__, le16toh(resp->IOCStatus), le32toh(resp->ResponseCode)); if (le32toh(resp->ResponseCode) == MPI2_SCSITASKMGMT_RSP_TM_COMPLETE) { mprsas_set_ccbstatus(ccb, CAM_REQ_CMP); mprsas_announce_reset(sc, AC_SENT_BDR, tm->cm_targ->tid, CAM_LUN_WILDCARD); } else mprsas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); bailout: mprsas_free_tm(sc, tm); xpt_done(ccb); } static void mprsas_poll(struct cam_sim *sim) { struct mprsas_softc *sassc; sassc = cam_sim_softc(sim); if (sassc->sc->mpr_debug & MPR_TRACE) { /* frequent debug messages during a panic just slow * everything down too much. */ mpr_dprint(sassc->sc, MPR_XINFO, "%s clearing MPR_TRACE\n", __func__); sassc->sc->mpr_debug &= ~MPR_TRACE; } mpr_intr_locked(sassc->sc); } static void mprsas_async(void *callback_arg, uint32_t code, struct cam_path *path, void *arg) { struct mpr_softc *sc; sc = (struct mpr_softc *)callback_arg; switch (code) { #if (__FreeBSD_version >= 1000006) || \ ((__FreeBSD_version >= 901503) && (__FreeBSD_version < 1000000)) case AC_ADVINFO_CHANGED: { struct mprsas_target *target; struct mprsas_softc *sassc; struct scsi_read_capacity_data_long rcap_buf; struct ccb_dev_advinfo cdai; struct mprsas_lun *lun; lun_id_t lunid; int found_lun; uintptr_t buftype; buftype = (uintptr_t)arg; found_lun = 0; sassc = sc->sassc; /* * We're only interested in read capacity data changes. */ if (buftype != CDAI_TYPE_RCAPLONG) break; /* * See the comment in mpr_attach_sas() for a detailed * explanation. In these versions of FreeBSD we register * for all events and filter out the events that don't * apply to us. */ #if (__FreeBSD_version < 1000703) || \ ((__FreeBSD_version >= 1100000) && (__FreeBSD_version < 1100002)) if (xpt_path_path_id(path) != sassc->sim->path_id) break; #endif /* * We should have a handle for this, but check to make sure. */ KASSERT(xpt_path_target_id(path) < sassc->maxtargets, ("Target %d out of bounds in mprsas_async\n", xpt_path_target_id(path))); target = &sassc->targets[xpt_path_target_id(path)]; if (target->handle == 0) break; lunid = xpt_path_lun_id(path); SLIST_FOREACH(lun, &target->luns, lun_link) { if (lun->lun_id == lunid) { found_lun = 1; break; } } if (found_lun == 0) { lun = malloc(sizeof(struct mprsas_lun), M_MPR, M_NOWAIT | M_ZERO); if (lun == NULL) { mpr_dprint(sc, MPR_ERROR, "Unable to alloc " "LUN for EEDP support.\n"); break; } lun->lun_id = lunid; SLIST_INSERT_HEAD(&target->luns, lun, lun_link); } bzero(&rcap_buf, sizeof(rcap_buf)); xpt_setup_ccb(&cdai.ccb_h, path, CAM_PRIORITY_NORMAL); cdai.ccb_h.func_code = XPT_DEV_ADVINFO; cdai.ccb_h.flags = CAM_DIR_IN; cdai.buftype = CDAI_TYPE_RCAPLONG; #if (__FreeBSD_version >= 1100061) || \ ((__FreeBSD_version >= 1001510) && (__FreeBSD_version < 1100000)) cdai.flags = CDAI_FLAG_NONE; #else cdai.flags = 0; #endif cdai.bufsiz = sizeof(rcap_buf); cdai.buf = (uint8_t *)&rcap_buf; xpt_action((union ccb *)&cdai); if ((cdai.ccb_h.status & CAM_DEV_QFRZN) != 0) cam_release_devq(cdai.ccb_h.path, 0, 0, 0, FALSE); if ((mprsas_get_ccbstatus((union ccb *)&cdai) == CAM_REQ_CMP) && (rcap_buf.prot & SRC16_PROT_EN)) { switch (rcap_buf.prot & SRC16_P_TYPE) { case SRC16_PTYPE_1: case SRC16_PTYPE_3: lun->eedp_formatted = TRUE; lun->eedp_block_size = scsi_4btoul(rcap_buf.length); break; case SRC16_PTYPE_2: default: lun->eedp_formatted = FALSE; lun->eedp_block_size = 0; break; } } else { lun->eedp_formatted = FALSE; lun->eedp_block_size = 0; } break; } #endif case AC_FOUND_DEVICE: { struct ccb_getdev *cgd; /* * See the comment in mpr_attach_sas() for a detailed * explanation. In these versions of FreeBSD we register * for all events and filter out the events that don't * apply to us. */ #if (__FreeBSD_version < 1000703) || \ ((__FreeBSD_version >= 1100000) && (__FreeBSD_version < 1100002)) if (xpt_path_path_id(path) != sc->sassc->sim->path_id) break; #endif cgd = arg; #if (__FreeBSD_version < 901503) || \ ((__FreeBSD_version >= 1000000) && (__FreeBSD_version < 1000006)) mprsas_check_eedp(sc, path, cgd); #endif break; } default: break; } } #if (__FreeBSD_version < 901503) || \ ((__FreeBSD_version >= 1000000) && (__FreeBSD_version < 1000006)) static void mprsas_check_eedp(struct mpr_softc *sc, struct cam_path *path, struct ccb_getdev *cgd) { struct mprsas_softc *sassc = sc->sassc; struct ccb_scsiio *csio; struct scsi_read_capacity_16 *scsi_cmd; struct scsi_read_capacity_eedp *rcap_buf; path_id_t pathid; target_id_t targetid; lun_id_t lunid; union ccb *ccb; struct cam_path *local_path; struct mprsas_target *target; struct mprsas_lun *lun; uint8_t found_lun; char path_str[64]; pathid = cam_sim_path(sassc->sim); targetid = xpt_path_target_id(path); lunid = xpt_path_lun_id(path); KASSERT(targetid < sassc->maxtargets, ("Target %d out of bounds in " "mprsas_check_eedp\n", targetid)); target = &sassc->targets[targetid]; if (target->handle == 0x0) return; /* * Determine if the device is EEDP capable. * * If this flag is set in the inquiry data, the device supports * protection information, and must support the 16 byte read capacity * command, otherwise continue without sending read cap 16. */ if ((cgd->inq_data.spc3_flags & SPC3_SID_PROTECT) == 0) return; /* * Issue a READ CAPACITY 16 command. This info is used to determine if * the LUN is formatted for EEDP support. */ ccb = xpt_alloc_ccb_nowait(); if (ccb == NULL) { mpr_dprint(sc, MPR_ERROR, "Unable to alloc CCB for EEDP " "support.\n"); return; } if (xpt_create_path(&local_path, xpt_periph, pathid, targetid, lunid) != CAM_REQ_CMP) { mpr_dprint(sc, MPR_ERROR, "Unable to create path for EEDP " "support.\n"); xpt_free_ccb(ccb); return; } /* * If LUN is already in list, don't create a new one. */ found_lun = FALSE; SLIST_FOREACH(lun, &target->luns, lun_link) { if (lun->lun_id == lunid) { found_lun = TRUE; break; } } if (!found_lun) { lun = malloc(sizeof(struct mprsas_lun), M_MPR, M_NOWAIT | M_ZERO); if (lun == NULL) { mpr_dprint(sc, MPR_ERROR, "Unable to alloc LUN for " "EEDP support.\n"); xpt_free_path(local_path); xpt_free_ccb(ccb); return; } lun->lun_id = lunid; SLIST_INSERT_HEAD(&target->luns, lun, lun_link); } xpt_path_string(local_path, path_str, sizeof(path_str)); mpr_dprint(sc, MPR_INFO, "Sending read cap: path %s handle %d\n", path_str, target->handle); /* * Issue a READ CAPACITY 16 command for the LUN. The * mprsas_read_cap_done function will load the read cap info into the * LUN struct. */ rcap_buf = malloc(sizeof(struct scsi_read_capacity_eedp), M_MPR, M_NOWAIT | M_ZERO); if (rcap_buf == NULL) { mpr_dprint(sc, MPR_ERROR, "Unable to alloc read capacity " "buffer for EEDP support.\n"); xpt_free_path(ccb->ccb_h.path); xpt_free_ccb(ccb); return; } xpt_setup_ccb(&ccb->ccb_h, local_path, CAM_PRIORITY_XPT); csio = &ccb->csio; csio->ccb_h.func_code = XPT_SCSI_IO; csio->ccb_h.flags = CAM_DIR_IN; csio->ccb_h.retry_count = 4; csio->ccb_h.cbfcnp = mprsas_read_cap_done; csio->ccb_h.timeout = 60000; csio->data_ptr = (uint8_t *)rcap_buf; csio->dxfer_len = sizeof(struct scsi_read_capacity_eedp); csio->sense_len = MPR_SENSE_LEN; csio->cdb_len = sizeof(*scsi_cmd); csio->tag_action = MSG_SIMPLE_Q_TAG; scsi_cmd = (struct scsi_read_capacity_16 *)&csio->cdb_io.cdb_bytes; bzero(scsi_cmd, sizeof(*scsi_cmd)); scsi_cmd->opcode = 0x9E; scsi_cmd->service_action = SRC16_SERVICE_ACTION; ((uint8_t *)scsi_cmd)[13] = sizeof(struct scsi_read_capacity_eedp); ccb->ccb_h.ppriv_ptr1 = sassc; xpt_action(ccb); } static void mprsas_read_cap_done(struct cam_periph *periph, union ccb *done_ccb) { struct mprsas_softc *sassc; struct mprsas_target *target; struct mprsas_lun *lun; struct scsi_read_capacity_eedp *rcap_buf; if (done_ccb == NULL) return; /* Driver need to release devq, it Scsi command is * generated by driver internally. * Currently there is a single place where driver * calls scsi command internally. In future if driver * calls more scsi command internally, it needs to release * devq internally, since those command will not go back to * cam_periph. */ if ((done_ccb->ccb_h.status & CAM_DEV_QFRZN) ) { done_ccb->ccb_h.status &= ~CAM_DEV_QFRZN; xpt_release_devq(done_ccb->ccb_h.path, /*count*/ 1, /*run_queue*/TRUE); } rcap_buf = (struct scsi_read_capacity_eedp *)done_ccb->csio.data_ptr; /* * Get the LUN ID for the path and look it up in the LUN list for the * target. */ sassc = (struct mprsas_softc *)done_ccb->ccb_h.ppriv_ptr1; KASSERT(done_ccb->ccb_h.target_id < sassc->maxtargets, ("Target %d out " "of bounds in mprsas_read_cap_done\n", done_ccb->ccb_h.target_id)); target = &sassc->targets[done_ccb->ccb_h.target_id]; SLIST_FOREACH(lun, &target->luns, lun_link) { if (lun->lun_id != done_ccb->ccb_h.target_lun) continue; /* * Got the LUN in the target's LUN list. Fill it in with EEDP * info. If the READ CAP 16 command had some SCSI error (common * if command is not supported), mark the lun as not supporting * EEDP and set the block size to 0. */ if ((mprsas_get_ccbstatus(done_ccb) != CAM_REQ_CMP) || (done_ccb->csio.scsi_status != SCSI_STATUS_OK)) { lun->eedp_formatted = FALSE; lun->eedp_block_size = 0; break; } if (rcap_buf->protect & 0x01) { mpr_dprint(sassc->sc, MPR_INFO, "LUN %d for target ID " "%d is formatted for EEDP support.\n", done_ccb->ccb_h.target_lun, done_ccb->ccb_h.target_id); lun->eedp_formatted = TRUE; lun->eedp_block_size = scsi_4btoul(rcap_buf->length); } break; } // Finished with this CCB and path. free(rcap_buf, M_MPR); xpt_free_path(done_ccb->ccb_h.path); xpt_free_ccb(done_ccb); } #endif /* (__FreeBSD_version < 901503) || \ ((__FreeBSD_version >= 1000000) && (__FreeBSD_version < 1000006)) */ +/* + * Set the INRESET flag for this target so that no I/O will be sent to + * the target until the reset has completed. If an I/O request does + * happen, the devq will be frozen. The CCB holds the path which is + * used to release the devq. The devq is released and the CCB is freed + * when the TM completes. + */ void mprsas_prepare_for_tm(struct mpr_softc *sc, struct mpr_command *tm, struct mprsas_target *target, lun_id_t lun_id) { union ccb *ccb; path_id_t path_id; - /* - * Set the INRESET flag for this target so that no I/O will be sent to - * the target until the reset has completed. If an I/O request does - * happen, the devq will be frozen. The CCB holds the path which is - * used to release the devq. The devq is released and the CCB is freed - * when the TM completes. - */ ccb = xpt_alloc_ccb_nowait(); if (ccb) { path_id = cam_sim_path(sc->sassc->sim); if (xpt_create_path(&ccb->ccb_h.path, xpt_periph, path_id, target->tid, lun_id) != CAM_REQ_CMP) { xpt_free_ccb(ccb); } else { tm->cm_ccb = ccb; tm->cm_targ = target; target->flags |= MPRSAS_TARGET_INRESET; } } } int mprsas_startup(struct mpr_softc *sc) { /* * Send the port enable message and set the wait_for_port_enable flag. * This flag helps to keep the simq frozen until all discovery events * are processed. */ sc->wait_for_port_enable = 1; mprsas_send_portenable(sc); return (0); } static int mprsas_send_portenable(struct mpr_softc *sc) { MPI2_PORT_ENABLE_REQUEST *request; struct mpr_command *cm; MPR_FUNCTRACE(sc); if ((cm = mpr_alloc_command(sc)) == NULL) return (EBUSY); request = (MPI2_PORT_ENABLE_REQUEST *)cm->cm_req; request->Function = MPI2_FUNCTION_PORT_ENABLE; request->MsgFlags = 0; request->VP_ID = 0; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; cm->cm_complete = mprsas_portenable_complete; cm->cm_data = NULL; cm->cm_sge = NULL; mpr_map_command(sc, cm); mpr_dprint(sc, MPR_XINFO, "mpr_send_portenable finished cm %p req %p complete %p\n", cm, cm->cm_req, cm->cm_complete); return (0); } static void mprsas_portenable_complete(struct mpr_softc *sc, struct mpr_command *cm) { MPI2_PORT_ENABLE_REPLY *reply; struct mprsas_softc *sassc; MPR_FUNCTRACE(sc); sassc = sc->sassc; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * port enable commands don't have S/G lists. */ if ((cm->cm_flags & MPR_CM_FLAGS_ERROR_MASK) != 0) { mpr_dprint(sc, MPR_ERROR, "%s: cm_flags = %#x for port enable! " "This should not happen!\n", __func__, cm->cm_flags); } reply = (MPI2_PORT_ENABLE_REPLY *)cm->cm_reply; if (reply == NULL) mpr_dprint(sc, MPR_FAULT, "Portenable NULL reply\n"); else if (le16toh(reply->IOCStatus & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) mpr_dprint(sc, MPR_FAULT, "Portenable failed\n"); mpr_free_command(sc, cm); /* * Done waiting for port enable to complete. Decrement the refcount. * If refcount is 0, discovery is complete and a rescan of the bus can * take place. */ sc->wait_for_port_enable = 0; sc->port_enable_complete = 1; wakeup(&sc->port_enable_complete); mprsas_startup_decrement(sassc); } int mprsas_check_id(struct mprsas_softc *sassc, int id) { struct mpr_softc *sc = sassc->sc; char *ids; char *name; ids = &sc->exclude_ids[0]; while((name = strsep(&ids, ",")) != NULL) { if (name[0] == '\0') continue; if (strtol(name, NULL, 0) == (long)id) return (1); } return (0); } void mprsas_realloc_targets(struct mpr_softc *sc, int maxtargets) { struct mprsas_softc *sassc; struct mprsas_lun *lun, *lun_tmp; struct mprsas_target *targ; int i; sassc = sc->sassc; /* * The number of targets is based on IOC Facts, so free all of * the allocated LUNs for each target and then the target buffer * itself. */ for (i=0; i< maxtargets; i++) { targ = &sassc->targets[i]; SLIST_FOREACH_SAFE(lun, &targ->luns, lun_link, lun_tmp) { free(lun, M_MPR); } } free(sassc->targets, M_MPR); sassc->targets = malloc(sizeof(struct mprsas_target) * maxtargets, M_MPR, M_WAITOK|M_ZERO); if (!sassc->targets) { panic("%s failed to alloc targets with error %d\n", __func__, ENOMEM); } } Index: head/sys/dev/mpr/mpr_user.c =================================================================== --- head/sys/dev/mpr/mpr_user.c (revision 342385) +++ head/sys/dev/mpr/mpr_user.c (revision 342386) @@ -1,2624 +1,2622 @@ /*- * Copyright (c) 2008 Yahoo!, Inc. * All rights reserved. * Written by: John Baldwin * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * 3. Neither the name of the author nor the names of any co-contributors * may be used to endorse or promote products derived from this software * without specific prior written permission. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD userland interface */ /*- * Copyright (c) 2011-2015 LSI Corp. * Copyright (c) 2013-2016 Avago Technologies * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD * * $FreeBSD$ */ #include __FBSDID("$FreeBSD$"); /* TODO Move headers to mprvar */ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include static d_open_t mpr_open; static d_close_t mpr_close; static d_ioctl_t mpr_ioctl_devsw; static struct cdevsw mpr_cdevsw = { .d_version = D_VERSION, .d_flags = 0, .d_open = mpr_open, .d_close = mpr_close, .d_ioctl = mpr_ioctl_devsw, .d_name = "mpr", }; typedef int (mpr_user_f)(struct mpr_command *, struct mpr_usr_command *); static mpr_user_f mpi_pre_ioc_facts; static mpr_user_f mpi_pre_port_facts; static mpr_user_f mpi_pre_fw_download; static mpr_user_f mpi_pre_fw_upload; static mpr_user_f mpi_pre_sata_passthrough; static mpr_user_f mpi_pre_smp_passthrough; static mpr_user_f mpi_pre_config; static mpr_user_f mpi_pre_sas_io_unit_control; static int mpr_user_read_cfg_header(struct mpr_softc *, struct mpr_cfg_page_req *); static int mpr_user_read_cfg_page(struct mpr_softc *, struct mpr_cfg_page_req *, void *); static int mpr_user_read_extcfg_header(struct mpr_softc *, struct mpr_ext_cfg_page_req *); static int mpr_user_read_extcfg_page(struct mpr_softc *, struct mpr_ext_cfg_page_req *, void *); static int mpr_user_write_cfg_page(struct mpr_softc *, struct mpr_cfg_page_req *, void *); static int mpr_user_setup_request(struct mpr_command *, struct mpr_usr_command *); static int mpr_user_command(struct mpr_softc *, struct mpr_usr_command *); static int mpr_user_pass_thru(struct mpr_softc *sc, mpr_pass_thru_t *data); static void mpr_user_get_adapter_data(struct mpr_softc *sc, mpr_adapter_data_t *data); static void mpr_user_read_pci_info(struct mpr_softc *sc, mpr_pci_info_t *data); static uint8_t mpr_get_fw_diag_buffer_number(struct mpr_softc *sc, uint32_t unique_id); static int mpr_post_fw_diag_buffer(struct mpr_softc *sc, mpr_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code); static int mpr_release_fw_diag_buffer(struct mpr_softc *sc, mpr_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code, uint32_t diag_type); static int mpr_diag_register(struct mpr_softc *sc, mpr_fw_diag_register_t *diag_register, uint32_t *return_code); static int mpr_diag_unregister(struct mpr_softc *sc, mpr_fw_diag_unregister_t *diag_unregister, uint32_t *return_code); static int mpr_diag_query(struct mpr_softc *sc, mpr_fw_diag_query_t *diag_query, uint32_t *return_code); static int mpr_diag_read_buffer(struct mpr_softc *sc, mpr_diag_read_buffer_t *diag_read_buffer, uint8_t *ioctl_buf, uint32_t *return_code); static int mpr_diag_release(struct mpr_softc *sc, mpr_fw_diag_release_t *diag_release, uint32_t *return_code); static int mpr_do_diag_action(struct mpr_softc *sc, uint32_t action, uint8_t *diag_action, uint32_t length, uint32_t *return_code); static int mpr_user_diag_action(struct mpr_softc *sc, mpr_diag_action_t *data); static void mpr_user_event_query(struct mpr_softc *sc, mpr_event_query_t *data); static void mpr_user_event_enable(struct mpr_softc *sc, mpr_event_enable_t *data); static int mpr_user_event_report(struct mpr_softc *sc, mpr_event_report_t *data); static int mpr_user_reg_access(struct mpr_softc *sc, mpr_reg_access_t *data); static int mpr_user_btdh(struct mpr_softc *sc, mpr_btdh_mapping_t *data); static MALLOC_DEFINE(M_MPRUSER, "mpr_user", "Buffers for mpr(4) ioctls"); /* Macros from compat/freebsd32/freebsd32.h */ #define PTRIN(v) (void *)(uintptr_t)(v) #define PTROUT(v) (uint32_t)(uintptr_t)(v) #define CP(src,dst,fld) do { (dst).fld = (src).fld; } while (0) #define PTRIN_CP(src,dst,fld) \ do { (dst).fld = PTRIN((src).fld); } while (0) #define PTROUT_CP(src,dst,fld) \ do { (dst).fld = PTROUT((src).fld); } while (0) /* * MPI functions that support IEEE SGLs for SAS3. */ static uint8_t ieee_sgl_func_list[] = { MPI2_FUNCTION_SCSI_IO_REQUEST, MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH, MPI2_FUNCTION_SMP_PASSTHROUGH, MPI2_FUNCTION_SATA_PASSTHROUGH, MPI2_FUNCTION_FW_UPLOAD, MPI2_FUNCTION_FW_DOWNLOAD, MPI2_FUNCTION_TARGET_ASSIST, MPI2_FUNCTION_TARGET_STATUS_SEND, MPI2_FUNCTION_TOOLBOX }; int mpr_attach_user(struct mpr_softc *sc) { int unit; unit = device_get_unit(sc->mpr_dev); sc->mpr_cdev = make_dev(&mpr_cdevsw, unit, UID_ROOT, GID_OPERATOR, 0640, "mpr%d", unit); if (sc->mpr_cdev == NULL) return (ENOMEM); sc->mpr_cdev->si_drv1 = sc; return (0); } void mpr_detach_user(struct mpr_softc *sc) { /* XXX: do a purge of pending requests? */ if (sc->mpr_cdev != NULL) destroy_dev(sc->mpr_cdev); } static int mpr_open(struct cdev *dev, int flags, int fmt, struct thread *td) { return (0); } static int mpr_close(struct cdev *dev, int flags, int fmt, struct thread *td) { return (0); } static int mpr_user_read_cfg_header(struct mpr_softc *sc, struct mpr_cfg_page_req *page_req) { MPI2_CONFIG_PAGE_HEADER *hdr; struct mpr_config_params params; int error; hdr = ¶ms.hdr.Struct; params.action = MPI2_CONFIG_ACTION_PAGE_HEADER; params.page_address = le32toh(page_req->page_address); hdr->PageVersion = 0; hdr->PageLength = 0; hdr->PageNumber = page_req->header.PageNumber; hdr->PageType = page_req->header.PageType; params.buffer = NULL; params.length = 0; params.callback = NULL; if ((error = mpr_read_config_page(sc, ¶ms)) != 0) { /* * Leave the request. Without resetting the chip, it's * still owned by it and we'll just get into trouble * freeing it now. Mark it as abandoned so that if it * shows up later it can be freed. */ mpr_printf(sc, "read_cfg_header timed out\n"); return (ETIMEDOUT); } page_req->ioc_status = htole16(params.status); if ((page_req->ioc_status & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SUCCESS) { bcopy(hdr, &page_req->header, sizeof(page_req->header)); } return (0); } static int mpr_user_read_cfg_page(struct mpr_softc *sc, struct mpr_cfg_page_req *page_req, void *buf) { MPI2_CONFIG_PAGE_HEADER *reqhdr, *hdr; struct mpr_config_params params; int error; reqhdr = buf; hdr = ¶ms.hdr.Struct; hdr->PageVersion = reqhdr->PageVersion; hdr->PageLength = reqhdr->PageLength; hdr->PageNumber = reqhdr->PageNumber; hdr->PageType = reqhdr->PageType & MPI2_CONFIG_PAGETYPE_MASK; params.action = MPI2_CONFIG_ACTION_PAGE_READ_CURRENT; params.page_address = le32toh(page_req->page_address); params.buffer = buf; params.length = le32toh(page_req->len); params.callback = NULL; if ((error = mpr_read_config_page(sc, ¶ms)) != 0) { mpr_printf(sc, "mpr_user_read_cfg_page timed out\n"); return (ETIMEDOUT); } page_req->ioc_status = htole16(params.status); return (0); } static int mpr_user_read_extcfg_header(struct mpr_softc *sc, struct mpr_ext_cfg_page_req *ext_page_req) { MPI2_CONFIG_EXTENDED_PAGE_HEADER *hdr; struct mpr_config_params params; int error; hdr = ¶ms.hdr.Ext; params.action = MPI2_CONFIG_ACTION_PAGE_HEADER; hdr->PageVersion = ext_page_req->header.PageVersion; hdr->PageType = MPI2_CONFIG_PAGETYPE_EXTENDED; hdr->ExtPageLength = 0; hdr->PageNumber = ext_page_req->header.PageNumber; hdr->ExtPageType = ext_page_req->header.ExtPageType; params.page_address = le32toh(ext_page_req->page_address); params.buffer = NULL; params.length = 0; params.callback = NULL; if ((error = mpr_read_config_page(sc, ¶ms)) != 0) { /* * Leave the request. Without resetting the chip, it's * still owned by it and we'll just get into trouble * freeing it now. Mark it as abandoned so that if it * shows up later it can be freed. */ mpr_printf(sc, "mpr_user_read_extcfg_header timed out\n"); return (ETIMEDOUT); } ext_page_req->ioc_status = htole16(params.status); if ((ext_page_req->ioc_status & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SUCCESS) { ext_page_req->header.PageVersion = hdr->PageVersion; ext_page_req->header.PageNumber = hdr->PageNumber; ext_page_req->header.PageType = hdr->PageType; ext_page_req->header.ExtPageLength = hdr->ExtPageLength; ext_page_req->header.ExtPageType = hdr->ExtPageType; } return (0); } static int mpr_user_read_extcfg_page(struct mpr_softc *sc, struct mpr_ext_cfg_page_req *ext_page_req, void *buf) { MPI2_CONFIG_EXTENDED_PAGE_HEADER *reqhdr, *hdr; struct mpr_config_params params; int error; reqhdr = buf; hdr = ¶ms.hdr.Ext; params.action = MPI2_CONFIG_ACTION_PAGE_READ_CURRENT; params.page_address = le32toh(ext_page_req->page_address); hdr->PageVersion = reqhdr->PageVersion; hdr->PageType = MPI2_CONFIG_PAGETYPE_EXTENDED; hdr->PageNumber = reqhdr->PageNumber; hdr->ExtPageType = reqhdr->ExtPageType; hdr->ExtPageLength = reqhdr->ExtPageLength; params.buffer = buf; params.length = le32toh(ext_page_req->len); params.callback = NULL; if ((error = mpr_read_config_page(sc, ¶ms)) != 0) { mpr_printf(sc, "mpr_user_read_extcfg_page timed out\n"); return (ETIMEDOUT); } ext_page_req->ioc_status = htole16(params.status); return (0); } static int mpr_user_write_cfg_page(struct mpr_softc *sc, struct mpr_cfg_page_req *page_req, void *buf) { MPI2_CONFIG_PAGE_HEADER *reqhdr, *hdr; struct mpr_config_params params; u_int hdr_attr; int error; reqhdr = buf; hdr = ¶ms.hdr.Struct; hdr_attr = reqhdr->PageType & MPI2_CONFIG_PAGEATTR_MASK; if (hdr_attr != MPI2_CONFIG_PAGEATTR_CHANGEABLE && hdr_attr != MPI2_CONFIG_PAGEATTR_PERSISTENT) { mpr_printf(sc, "page type 0x%x not changeable\n", reqhdr->PageType & MPI2_CONFIG_PAGETYPE_MASK); return (EINVAL); } /* * There isn't any point in restoring stripped out attributes * if you then mask them going down to issue the request. */ hdr->PageVersion = reqhdr->PageVersion; hdr->PageLength = reqhdr->PageLength; hdr->PageNumber = reqhdr->PageNumber; hdr->PageType = reqhdr->PageType; params.action = MPI2_CONFIG_ACTION_PAGE_WRITE_CURRENT; params.page_address = le32toh(page_req->page_address); params.buffer = buf; params.length = le32toh(page_req->len); params.callback = NULL; if ((error = mpr_write_config_page(sc, ¶ms)) != 0) { mpr_printf(sc, "mpr_write_cfg_page timed out\n"); return (ETIMEDOUT); } page_req->ioc_status = htole16(params.status); return (0); } void mpr_init_sge(struct mpr_command *cm, void *req, void *sge) { int off, space; space = (int)cm->cm_sc->reqframesz; off = (uintptr_t)sge - (uintptr_t)req; KASSERT(off < space, ("bad pointers %p %p, off %d, space %d", req, sge, off, space)); cm->cm_sge = sge; cm->cm_sglsize = space - off; } /* * Prepare the mpr_command for an IOC_FACTS request. */ static int mpi_pre_ioc_facts(struct mpr_command *cm, struct mpr_usr_command *cmd) { MPI2_IOC_FACTS_REQUEST *req = (void *)cm->cm_req; MPI2_IOC_FACTS_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); cm->cm_sge = NULL; cm->cm_sglsize = 0; return (0); } /* * Prepare the mpr_command for a PORT_FACTS request. */ static int mpi_pre_port_facts(struct mpr_command *cm, struct mpr_usr_command *cmd) { MPI2_PORT_FACTS_REQUEST *req = (void *)cm->cm_req; MPI2_PORT_FACTS_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); cm->cm_sge = NULL; cm->cm_sglsize = 0; return (0); } /* * Prepare the mpr_command for a FW_DOWNLOAD request. */ static int mpi_pre_fw_download(struct mpr_command *cm, struct mpr_usr_command *cmd) { MPI25_FW_DOWNLOAD_REQUEST *req = (void *)cm->cm_req; MPI2_FW_DOWNLOAD_REPLY *rpl; int error; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); if (cmd->len == 0) return (EINVAL); error = copyin(cmd->buf, cm->cm_data, cmd->len); if (error != 0) return (error); mpr_init_sge(cm, req, &req->SGL); /* * For now, the F/W image must be provided in a single request. */ if ((req->MsgFlags & MPI2_FW_DOWNLOAD_MSGFLGS_LAST_SEGMENT) == 0) return (EINVAL); if (req->TotalImageSize != cmd->len) return (EINVAL); req->ImageOffset = 0; req->ImageSize = cmd->len; cm->cm_flags |= MPR_CM_FLAGS_DATAOUT; return (mpr_push_ieee_sge(cm, &req->SGL, 0)); } /* * Prepare the mpr_command for a FW_UPLOAD request. */ static int mpi_pre_fw_upload(struct mpr_command *cm, struct mpr_usr_command *cmd) { MPI25_FW_UPLOAD_REQUEST *req = (void *)cm->cm_req; MPI2_FW_UPLOAD_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); mpr_init_sge(cm, req, &req->SGL); if (cmd->len == 0) { /* Perhaps just asking what the size of the fw is? */ return (0); } req->ImageOffset = 0; req->ImageSize = cmd->len; cm->cm_flags |= MPR_CM_FLAGS_DATAIN; return (mpr_push_ieee_sge(cm, &req->SGL, 0)); } /* * Prepare the mpr_command for a SATA_PASSTHROUGH request. */ static int mpi_pre_sata_passthrough(struct mpr_command *cm, struct mpr_usr_command *cmd) { MPI2_SATA_PASSTHROUGH_REQUEST *req = (void *)cm->cm_req; MPI2_SATA_PASSTHROUGH_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); mpr_init_sge(cm, req, &req->SGL); return (0); } /* * Prepare the mpr_command for a SMP_PASSTHROUGH request. */ static int mpi_pre_smp_passthrough(struct mpr_command *cm, struct mpr_usr_command *cmd) { MPI2_SMP_PASSTHROUGH_REQUEST *req = (void *)cm->cm_req; MPI2_SMP_PASSTHROUGH_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); mpr_init_sge(cm, req, &req->SGL); return (0); } /* * Prepare the mpr_command for a CONFIG request. */ static int mpi_pre_config(struct mpr_command *cm, struct mpr_usr_command *cmd) { MPI2_CONFIG_REQUEST *req = (void *)cm->cm_req; MPI2_CONFIG_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); mpr_init_sge(cm, req, &req->PageBufferSGE); return (0); } /* * Prepare the mpr_command for a SAS_IO_UNIT_CONTROL request. */ static int mpi_pre_sas_io_unit_control(struct mpr_command *cm, struct mpr_usr_command *cmd) { cm->cm_sge = NULL; cm->cm_sglsize = 0; return (0); } /* * A set of functions to prepare an mpr_command for the various * supported requests. */ struct mpr_user_func { U8 Function; mpr_user_f *f_pre; } mpr_user_func_list[] = { { MPI2_FUNCTION_IOC_FACTS, mpi_pre_ioc_facts }, { MPI2_FUNCTION_PORT_FACTS, mpi_pre_port_facts }, { MPI2_FUNCTION_FW_DOWNLOAD, mpi_pre_fw_download }, { MPI2_FUNCTION_FW_UPLOAD, mpi_pre_fw_upload }, { MPI2_FUNCTION_SATA_PASSTHROUGH, mpi_pre_sata_passthrough }, { MPI2_FUNCTION_SMP_PASSTHROUGH, mpi_pre_smp_passthrough}, { MPI2_FUNCTION_CONFIG, mpi_pre_config}, { MPI2_FUNCTION_SAS_IO_UNIT_CONTROL, mpi_pre_sas_io_unit_control }, { 0xFF, NULL } /* list end */ }; static int mpr_user_setup_request(struct mpr_command *cm, struct mpr_usr_command *cmd) { MPI2_REQUEST_HEADER *hdr = (MPI2_REQUEST_HEADER *)cm->cm_req; struct mpr_user_func *f; for (f = mpr_user_func_list; f->f_pre != NULL; f++) { if (hdr->Function == f->Function) return (f->f_pre(cm, cmd)); } return (EINVAL); } static int mpr_user_command(struct mpr_softc *sc, struct mpr_usr_command *cmd) { MPI2_REQUEST_HEADER *hdr; MPI2_DEFAULT_REPLY *rpl = NULL; void *buf = NULL; struct mpr_command *cm = NULL; int err = 0; int sz; mpr_lock(sc); cm = mpr_alloc_command(sc); if (cm == NULL) { mpr_printf(sc, "%s: no mpr requests\n", __func__); err = ENOMEM; goto RetFree; } mpr_unlock(sc); hdr = (MPI2_REQUEST_HEADER *)cm->cm_req; mpr_dprint(sc, MPR_USER, "%s: req %p %d rpl %p %d\n", __func__, cmd->req, cmd->req_len, cmd->rpl, cmd->rpl_len); if (cmd->req_len > (int)sc->reqframesz) { err = EINVAL; goto RetFreeUnlocked; } err = copyin(cmd->req, hdr, cmd->req_len); if (err != 0) goto RetFreeUnlocked; mpr_dprint(sc, MPR_USER, "%s: Function %02X MsgFlags %02X\n", __func__, hdr->Function, hdr->MsgFlags); if (cmd->len > 0) { buf = malloc(cmd->len, M_MPRUSER, M_WAITOK|M_ZERO); cm->cm_data = buf; cm->cm_length = cmd->len; } else { cm->cm_data = NULL; cm->cm_length = 0; } cm->cm_flags = MPR_CM_FLAGS_SGE_SIMPLE; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; err = mpr_user_setup_request(cm, cmd); if (err == EINVAL) { mpr_printf(sc, "%s: unsupported parameter or unsupported " "function in request (function = 0x%X)\n", __func__, hdr->Function); } if (err != 0) goto RetFreeUnlocked; mpr_lock(sc); err = mpr_wait_command(sc, &cm, 30, CAN_SLEEP); if (err || (cm == NULL)) { mpr_printf(sc, "%s: invalid request: error %d\n", __func__, err); goto RetFree; } if (cm != NULL) rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply; if (rpl != NULL) sz = rpl->MsgLength * 4; else sz = 0; if (sz > cmd->rpl_len) { mpr_printf(sc, "%s: user reply buffer (%d) smaller than " "returned buffer (%d)\n", __func__, cmd->rpl_len, sz); sz = cmd->rpl_len; } mpr_unlock(sc); copyout(rpl, cmd->rpl, sz); if (buf != NULL) copyout(buf, cmd->buf, cmd->len); mpr_dprint(sc, MPR_USER, "%s: reply size %d\n", __func__, sz); RetFreeUnlocked: mpr_lock(sc); RetFree: if (cm != NULL) mpr_free_command(sc, cm); mpr_unlock(sc); if (buf != NULL) free(buf, M_MPRUSER); return (err); } static int mpr_user_pass_thru(struct mpr_softc *sc, mpr_pass_thru_t *data) { MPI2_REQUEST_HEADER *hdr, tmphdr; MPI2_DEFAULT_REPLY *rpl; Mpi26NVMeEncapsulatedErrorReply_t *nvme_error_reply = NULL; Mpi26NVMeEncapsulatedRequest_t *nvme_encap_request = NULL; struct mpr_command *cm = NULL; int i, err = 0, dir = 0, sz; uint8_t tool, function = 0; u_int sense_len; struct mprsas_target *targ = NULL; /* * Only allow one passthru command at a time. Use the MPR_FLAGS_BUSY * bit to denote that a passthru is being processed. */ mpr_lock(sc); if (sc->mpr_flags & MPR_FLAGS_BUSY) { mpr_dprint(sc, MPR_USER, "%s: Only one passthru command " "allowed at a single time.", __func__); mpr_unlock(sc); return (EBUSY); } sc->mpr_flags |= MPR_FLAGS_BUSY; mpr_unlock(sc); /* * Do some validation on data direction. Valid cases are: * 1) DataSize is 0 and direction is NONE * 2) DataSize is non-zero and one of: * a) direction is READ or * b) direction is WRITE or * c) direction is BOTH and DataOutSize is non-zero * If valid and the direction is BOTH, change the direction to READ. * if valid and the direction is not BOTH, make sure DataOutSize is 0. */ if (((data->DataSize == 0) && (data->DataDirection == MPR_PASS_THRU_DIRECTION_NONE)) || ((data->DataSize != 0) && ((data->DataDirection == MPR_PASS_THRU_DIRECTION_READ) || (data->DataDirection == MPR_PASS_THRU_DIRECTION_WRITE) || ((data->DataDirection == MPR_PASS_THRU_DIRECTION_BOTH) && (data->DataOutSize != 0))))) { if (data->DataDirection == MPR_PASS_THRU_DIRECTION_BOTH) data->DataDirection = MPR_PASS_THRU_DIRECTION_READ; else data->DataOutSize = 0; } else return (EINVAL); mpr_dprint(sc, MPR_USER, "%s: req 0x%jx %d rpl 0x%jx %d " "data in 0x%jx %d data out 0x%jx %d data dir %d\n", __func__, data->PtrRequest, data->RequestSize, data->PtrReply, data->ReplySize, data->PtrData, data->DataSize, data->PtrDataOut, data->DataOutSize, data->DataDirection); /* * copy in the header so we know what we're dealing with before we * commit to allocating a command for it. */ err = copyin(PTRIN(data->PtrRequest), &tmphdr, data->RequestSize); if (err != 0) goto RetFreeUnlocked; if (data->RequestSize > (int)sc->reqframesz) { err = EINVAL; goto RetFreeUnlocked; } function = tmphdr.Function; mpr_dprint(sc, MPR_USER, "%s: Function %02X MsgFlags %02X\n", __func__, function, tmphdr.MsgFlags); /* * Handle a passthru TM request. */ if (function == MPI2_FUNCTION_SCSI_TASK_MGMT) { MPI2_SCSI_TASK_MANAGE_REQUEST *task; mpr_lock(sc); cm = mprsas_alloc_tm(sc); if (cm == NULL) { err = EINVAL; goto Ret; } /* Copy the header in. Only a small fixup is needed. */ task = (MPI2_SCSI_TASK_MANAGE_REQUEST *)cm->cm_req; bcopy(&tmphdr, task, data->RequestSize); task->TaskMID = cm->cm_desc.Default.SMID; cm->cm_data = NULL; - cm->cm_desc.HighPriority.RequestFlags = - MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; cm->cm_complete = NULL; cm->cm_complete_data = NULL; targ = mprsas_find_target_by_handle(sc->sassc, 0, task->DevHandle); if (targ == NULL) { mpr_dprint(sc, MPR_INFO, "%s %d : invalid handle for requested TM 0x%x \n", __func__, __LINE__, task->DevHandle); err = 1; } else { mprsas_prepare_for_tm(sc, cm, targ, CAM_LUN_WILDCARD); err = mpr_wait_command(sc, &cm, 30, CAN_SLEEP); } if (err != 0) { err = EIO; mpr_dprint(sc, MPR_FAULT, "%s: task management failed", __func__); } /* * Copy the reply data and sense data to user space. */ if ((cm != NULL) && (cm->cm_reply != NULL)) { rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply; sz = rpl->MsgLength * 4; if (sz > data->ReplySize) { mpr_printf(sc, "%s: user reply buffer (%d) " "smaller than returned buffer (%d)\n", __func__, data->ReplySize, sz); } mpr_unlock(sc); copyout(cm->cm_reply, PTRIN(data->PtrReply), data->ReplySize); mpr_lock(sc); } mprsas_free_tm(sc, cm); goto Ret; } mpr_lock(sc); cm = mpr_alloc_command(sc); if (cm == NULL) { mpr_printf(sc, "%s: no mpr requests\n", __func__); err = ENOMEM; goto Ret; } mpr_unlock(sc); hdr = (MPI2_REQUEST_HEADER *)cm->cm_req; bcopy(&tmphdr, hdr, data->RequestSize); /* * Do some checking to make sure the IOCTL request contains a valid * request. Then set the SGL info. */ mpr_init_sge(cm, hdr, (void *)((uint8_t *)hdr + data->RequestSize)); /* * Set up for read, write or both. From check above, DataOutSize will * be 0 if direction is READ or WRITE, but it will have some non-zero * value if the direction is BOTH. So, just use the biggest size to get * the cm_data buffer size. If direction is BOTH, 2 SGLs need to be set * up; the first is for the request and the second will contain the * response data. cm_out_len needs to be set here and this will be used * when the SGLs are set up. */ cm->cm_data = NULL; cm->cm_length = MAX(data->DataSize, data->DataOutSize); cm->cm_out_len = data->DataOutSize; cm->cm_flags = 0; if (cm->cm_length != 0) { cm->cm_data = malloc(cm->cm_length, M_MPRUSER, M_WAITOK | M_ZERO); cm->cm_flags = MPR_CM_FLAGS_DATAIN; if (data->DataOutSize) { cm->cm_flags |= MPR_CM_FLAGS_DATAOUT; err = copyin(PTRIN(data->PtrDataOut), cm->cm_data, data->DataOutSize); } else if (data->DataDirection == MPR_PASS_THRU_DIRECTION_WRITE) { cm->cm_flags = MPR_CM_FLAGS_DATAOUT; err = copyin(PTRIN(data->PtrData), cm->cm_data, data->DataSize); } if (err != 0) mpr_dprint(sc, MPR_FAULT, "%s: failed to copy IOCTL " "data from user space\n", __func__); } /* * Set this flag only if processing a command that does not need an * IEEE SGL. The CLI Tool within the Toolbox uses IEEE SGLs, so clear * the flag only for that tool if processing a Toolbox function. */ cm->cm_flags |= MPR_CM_FLAGS_SGE_SIMPLE; for (i = 0; i < sizeof (ieee_sgl_func_list); i++) { if (function == ieee_sgl_func_list[i]) { if (function == MPI2_FUNCTION_TOOLBOX) { tool = (uint8_t)hdr->FunctionDependent1; if (tool != MPI2_TOOLBOX_DIAGNOSTIC_CLI_TOOL) break; } cm->cm_flags &= ~MPR_CM_FLAGS_SGE_SIMPLE; break; } } cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; if (function == MPI2_FUNCTION_NVME_ENCAPSULATED) { nvme_encap_request = (Mpi26NVMeEncapsulatedRequest_t *)cm->cm_req; cm->cm_desc.Default.RequestFlags = MPI26_REQ_DESCRIPT_FLAGS_PCIE_ENCAPSULATED; /* * Get the Physical Address of the sense buffer. * Save the user's Error Response buffer address and use that * field to hold the sense buffer address. * Clear the internal sense buffer, which will potentially hold * the Completion Queue Entry on return, or 0 if no Entry. * Build the PRPs and set direction bits. * Send the request. */ cm->nvme_error_response = (uint64_t *)(uintptr_t)(((uint64_t)nvme_encap_request-> ErrorResponseBaseAddress.High << 32) | (uint64_t)nvme_encap_request-> ErrorResponseBaseAddress.Low); nvme_encap_request->ErrorResponseBaseAddress.High = htole32((uint32_t)((uint64_t)cm->cm_sense_busaddr >> 32)); nvme_encap_request->ErrorResponseBaseAddress.Low = htole32(cm->cm_sense_busaddr); memset(cm->cm_sense, 0, NVME_ERROR_RESPONSE_SIZE); mpr_build_nvme_prp(sc, cm, nvme_encap_request, cm->cm_data, data->DataSize, data->DataOutSize); } /* * Set up Sense buffer and SGL offset for IO passthru. SCSI IO request * uses SCSI IO or Fast Path SCSI IO descriptor. */ if ((function == MPI2_FUNCTION_SCSI_IO_REQUEST) || (function == MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH)) { MPI2_SCSI_IO_REQUEST *scsi_io_req; scsi_io_req = (MPI2_SCSI_IO_REQUEST *)hdr; /* * Put SGE for data and data_out buffer at the end of * scsi_io_request message header (64 bytes in total). * Following above SGEs, the residual space will be used by * sense data. */ scsi_io_req->SenseBufferLength = (uint8_t)(data->RequestSize - 64); scsi_io_req->SenseBufferLowAddress = htole32(cm->cm_sense_busaddr); /* * Set SGLOffset0 value. This is the number of dwords that SGL * is offset from the beginning of MPI2_SCSI_IO_REQUEST struct. */ scsi_io_req->SGLOffset0 = 24; /* * Setup descriptor info. RAID passthrough must use the * default request descriptor which is already set, so if this * is a SCSI IO request, change the descriptor to SCSI IO or * Fast Path SCSI IO. Also, if this is a SCSI IO request, * handle the reply in the mprsas_scsio_complete function. */ if (function == MPI2_FUNCTION_SCSI_IO_REQUEST) { targ = mprsas_find_target_by_handle(sc->sassc, 0, scsi_io_req->DevHandle); if (!targ) { printf("No Target found for handle %d\n", scsi_io_req->DevHandle); err = EINVAL; goto RetFreeUnlocked; } if (targ->scsi_req_desc_type == MPI25_REQ_DESCRIPT_FLAGS_FAST_PATH_SCSI_IO) { cm->cm_desc.FastPathSCSIIO.RequestFlags = MPI25_REQ_DESCRIPT_FLAGS_FAST_PATH_SCSI_IO; if (!sc->atomic_desc_capable) { cm->cm_desc.FastPathSCSIIO.DevHandle = scsi_io_req->DevHandle; } scsi_io_req->IoFlags |= MPI25_SCSIIO_IOFLAGS_FAST_PATH; } else { cm->cm_desc.SCSIIO.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_SCSI_IO; if (!sc->atomic_desc_capable) { cm->cm_desc.SCSIIO.DevHandle = scsi_io_req->DevHandle; } } /* * Make sure the DevHandle is not 0 because this is a * likely error. */ if (scsi_io_req->DevHandle == 0) { err = EINVAL; goto RetFreeUnlocked; } } } mpr_lock(sc); err = mpr_wait_command(sc, &cm, 30, CAN_SLEEP); if (err || (cm == NULL)) { mpr_printf(sc, "%s: invalid request: error %d\n", __func__, err); goto RetFree; } /* * Sync the DMA data, if any. Then copy the data to user space. */ if (cm->cm_data != NULL) { if (cm->cm_flags & MPR_CM_FLAGS_DATAIN) dir = BUS_DMASYNC_POSTREAD; else if (cm->cm_flags & MPR_CM_FLAGS_DATAOUT) dir = BUS_DMASYNC_POSTWRITE; bus_dmamap_sync(sc->buffer_dmat, cm->cm_dmamap, dir); bus_dmamap_unload(sc->buffer_dmat, cm->cm_dmamap); if (cm->cm_flags & MPR_CM_FLAGS_DATAIN) { mpr_unlock(sc); err = copyout(cm->cm_data, PTRIN(data->PtrData), data->DataSize); mpr_lock(sc); if (err != 0) mpr_dprint(sc, MPR_FAULT, "%s: failed to copy " "IOCTL data to user space\n", __func__); } } /* * Copy the reply data and sense data to user space. */ if (cm->cm_reply != NULL) { rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply; sz = rpl->MsgLength * 4; if (sz > data->ReplySize) { mpr_printf(sc, "%s: user reply buffer (%d) smaller " "than returned buffer (%d)\n", __func__, data->ReplySize, sz); } mpr_unlock(sc); copyout(cm->cm_reply, PTRIN(data->PtrReply), data->ReplySize); mpr_lock(sc); if ((function == MPI2_FUNCTION_SCSI_IO_REQUEST) || (function == MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH)) { if (((MPI2_SCSI_IO_REPLY *)rpl)->SCSIState & MPI2_SCSI_STATE_AUTOSENSE_VALID) { sense_len = MIN((le32toh(((MPI2_SCSI_IO_REPLY *)rpl)-> SenseCount)), sizeof(struct scsi_sense_data)); mpr_unlock(sc); copyout(cm->cm_sense, cm->cm_req + 64, sense_len); mpr_lock(sc); } } /* * Copy out the NVMe Error Reponse to user. The Error Response * buffer is given by the user, but a sense buffer is used to * get that data from the IOC. The user's * ErrorResponseBaseAddress is saved in the * 'nvme_error_response' field before the command because that * field is set to a sense buffer. When the command is * complete, the Error Response data from the IOC is copied to * that user address after it is checked for validity. * Also note that 'sense' buffers are not defined for * NVMe commands. Sense terminalogy is only used here so that * the same IOCTL structure and sense buffers can be used for * NVMe. */ if (function == MPI2_FUNCTION_NVME_ENCAPSULATED) { if (cm->nvme_error_response == NULL) { mpr_dprint(sc, MPR_INFO, "NVMe Error Response " "buffer is NULL. Response data will not be " "returned.\n"); mpr_unlock(sc); goto RetFreeUnlocked; } nvme_error_reply = (Mpi26NVMeEncapsulatedErrorReply_t *)cm->cm_reply; sz = MIN(le32toh(nvme_error_reply->ErrorResponseCount), NVME_ERROR_RESPONSE_SIZE); mpr_unlock(sc); copyout(cm->cm_sense, cm->nvme_error_response, sz); mpr_lock(sc); } } mpr_unlock(sc); RetFreeUnlocked: mpr_lock(sc); RetFree: if (cm != NULL) { if (cm->cm_data) free(cm->cm_data, M_MPRUSER); mpr_free_command(sc, cm); } Ret: sc->mpr_flags &= ~MPR_FLAGS_BUSY; mpr_unlock(sc); return (err); } static void mpr_user_get_adapter_data(struct mpr_softc *sc, mpr_adapter_data_t *data) { Mpi2ConfigReply_t mpi_reply; Mpi2BiosPage3_t config_page; /* * Use the PCI interface functions to get the Bus, Device, and Function * information. */ data->PciInformation.u.bits.BusNumber = pci_get_bus(sc->mpr_dev); data->PciInformation.u.bits.DeviceNumber = pci_get_slot(sc->mpr_dev); data->PciInformation.u.bits.FunctionNumber = pci_get_function(sc->mpr_dev); /* * Get the FW version that should already be saved in IOC Facts. */ data->MpiFirmwareVersion = sc->facts->FWVersion.Word; /* * General device info. */ if (sc->mpr_flags & MPR_FLAGS_GEN35_IOC) data->AdapterType = MPRIOCTL_ADAPTER_TYPE_SAS35; else data->AdapterType = MPRIOCTL_ADAPTER_TYPE_SAS3; data->PCIDeviceHwId = pci_get_device(sc->mpr_dev); data->PCIDeviceHwRev = pci_read_config(sc->mpr_dev, PCIR_REVID, 1); data->SubSystemId = pci_get_subdevice(sc->mpr_dev); data->SubsystemVendorId = pci_get_subvendor(sc->mpr_dev); /* * Get the driver version. */ strcpy((char *)&data->DriverVersion[0], MPR_DRIVER_VERSION); /* * Need to get BIOS Config Page 3 for the BIOS Version. */ data->BiosVersion = 0; mpr_lock(sc); if (mpr_config_get_bios_pg3(sc, &mpi_reply, &config_page)) printf("%s: Error while retrieving BIOS Version\n", __func__); else data->BiosVersion = config_page.BiosVersion; mpr_unlock(sc); } static void mpr_user_read_pci_info(struct mpr_softc *sc, mpr_pci_info_t *data) { int i; /* * Use the PCI interface functions to get the Bus, Device, and Function * information. */ data->BusNumber = pci_get_bus(sc->mpr_dev); data->DeviceNumber = pci_get_slot(sc->mpr_dev); data->FunctionNumber = pci_get_function(sc->mpr_dev); /* * Now get the interrupt vector and the pci header. The vector can * only be 0 right now. The header is the first 256 bytes of config * space. */ data->InterruptVector = 0; for (i = 0; i < sizeof (data->PciHeader); i++) { data->PciHeader[i] = pci_read_config(sc->mpr_dev, i, 1); } } static uint8_t mpr_get_fw_diag_buffer_number(struct mpr_softc *sc, uint32_t unique_id) { uint8_t index; for (index = 0; index < MPI2_DIAG_BUF_TYPE_COUNT; index++) { if (sc->fw_diag_buffer_list[index].unique_id == unique_id) { return (index); } } return (MPR_FW_DIAGNOSTIC_UID_NOT_FOUND); } static int mpr_post_fw_diag_buffer(struct mpr_softc *sc, mpr_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code) { MPI2_DIAG_BUFFER_POST_REQUEST *req; MPI2_DIAG_BUFFER_POST_REPLY *reply; struct mpr_command *cm = NULL; int i, status; /* * If buffer is not enabled, just leave. */ *return_code = MPR_FW_DIAG_ERROR_POST_FAILED; if (!pBuffer->enabled) { return (MPR_DIAG_FAILURE); } /* * Clear some flags initially. */ pBuffer->force_release = FALSE; pBuffer->valid_data = FALSE; pBuffer->owned_by_firmware = FALSE; /* * Get a command. */ cm = mpr_alloc_command(sc); if (cm == NULL) { mpr_printf(sc, "%s: no mpr requests\n", __func__); return (MPR_DIAG_FAILURE); } /* * Build the request for releasing the FW Diag Buffer and send it. */ req = (MPI2_DIAG_BUFFER_POST_REQUEST *)cm->cm_req; req->Function = MPI2_FUNCTION_DIAG_BUFFER_POST; req->BufferType = pBuffer->buffer_type; req->ExtendedType = pBuffer->extended_type; req->BufferLength = pBuffer->size; for (i = 0; i < (sizeof(req->ProductSpecific) / 4); i++) req->ProductSpecific[i] = pBuffer->product_specific[i]; mpr_from_u64(sc->fw_diag_busaddr, &req->BufferAddress); cm->cm_data = NULL; cm->cm_length = 0; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; cm->cm_complete_data = NULL; /* * Send command synchronously. */ status = mpr_wait_command(sc, &cm, 30, CAN_SLEEP); if (status || (cm == NULL)) { mpr_printf(sc, "%s: invalid request: error %d\n", __func__, status); status = MPR_DIAG_FAILURE; goto done; } /* * Process POST reply. */ reply = (MPI2_DIAG_BUFFER_POST_REPLY *)cm->cm_reply; if (reply == NULL) { mpr_printf(sc, "%s: reply is NULL, probably due to " "reinitialization", __func__); status = MPR_DIAG_FAILURE; goto done; } if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) { status = MPR_DIAG_FAILURE; mpr_dprint(sc, MPR_FAULT, "%s: post of FW Diag Buffer failed " "with IOCStatus = 0x%x, IOCLogInfo = 0x%x and " "TransferLength = 0x%x\n", __func__, le16toh(reply->IOCStatus), le32toh(reply->IOCLogInfo), le32toh(reply->TransferLength)); goto done; } /* * Post was successful. */ pBuffer->valid_data = TRUE; pBuffer->owned_by_firmware = TRUE; *return_code = MPR_FW_DIAG_ERROR_SUCCESS; status = MPR_DIAG_SUCCESS; done: if (cm != NULL) mpr_free_command(sc, cm); return (status); } static int mpr_release_fw_diag_buffer(struct mpr_softc *sc, mpr_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code, uint32_t diag_type) { MPI2_DIAG_RELEASE_REQUEST *req; MPI2_DIAG_RELEASE_REPLY *reply; struct mpr_command *cm = NULL; int status; /* * If buffer is not enabled, just leave. */ *return_code = MPR_FW_DIAG_ERROR_RELEASE_FAILED; if (!pBuffer->enabled) { mpr_dprint(sc, MPR_USER, "%s: This buffer type is not " "supported by the IOC", __func__); return (MPR_DIAG_FAILURE); } /* * Clear some flags initially. */ pBuffer->force_release = FALSE; pBuffer->valid_data = FALSE; pBuffer->owned_by_firmware = FALSE; /* * Get a command. */ cm = mpr_alloc_command(sc); if (cm == NULL) { mpr_printf(sc, "%s: no mpr requests\n", __func__); return (MPR_DIAG_FAILURE); } /* * Build the request for releasing the FW Diag Buffer and send it. */ req = (MPI2_DIAG_RELEASE_REQUEST *)cm->cm_req; req->Function = MPI2_FUNCTION_DIAG_RELEASE; req->BufferType = pBuffer->buffer_type; cm->cm_data = NULL; cm->cm_length = 0; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; cm->cm_complete_data = NULL; /* * Send command synchronously. */ status = mpr_wait_command(sc, &cm, 30, CAN_SLEEP); if (status || (cm == NULL)) { mpr_printf(sc, "%s: invalid request: error %d\n", __func__, status); status = MPR_DIAG_FAILURE; goto done; } /* * Process RELEASE reply. */ reply = (MPI2_DIAG_RELEASE_REPLY *)cm->cm_reply; if (reply == NULL) { mpr_printf(sc, "%s: reply is NULL, probably due to " "reinitialization", __func__); status = MPR_DIAG_FAILURE; goto done; } if (((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) || pBuffer->owned_by_firmware) { status = MPR_DIAG_FAILURE; mpr_dprint(sc, MPR_FAULT, "%s: release of FW Diag Buffer " "failed with IOCStatus = 0x%x and IOCLogInfo = 0x%x\n", __func__, le16toh(reply->IOCStatus), le32toh(reply->IOCLogInfo)); goto done; } /* * Release was successful. */ *return_code = MPR_FW_DIAG_ERROR_SUCCESS; status = MPR_DIAG_SUCCESS; /* * If this was for an UNREGISTER diag type command, clear the unique ID. */ if (diag_type == MPR_FW_DIAG_TYPE_UNREGISTER) { pBuffer->unique_id = MPR_FW_DIAG_INVALID_UID; } done: if (cm != NULL) mpr_free_command(sc, cm); return (status); } static int mpr_diag_register(struct mpr_softc *sc, mpr_fw_diag_register_t *diag_register, uint32_t *return_code) { mpr_fw_diagnostic_buffer_t *pBuffer; struct mpr_busdma_context *ctx; uint8_t extended_type, buffer_type, i; uint32_t buffer_size; uint32_t unique_id; int status; int error; extended_type = diag_register->ExtendedType; buffer_type = diag_register->BufferType; buffer_size = diag_register->RequestedBufferSize; unique_id = diag_register->UniqueId; ctx = NULL; error = 0; /* * Check for valid buffer type */ if (buffer_type >= MPI2_DIAG_BUF_TYPE_COUNT) { *return_code = MPR_FW_DIAG_ERROR_INVALID_PARAMETER; return (MPR_DIAG_FAILURE); } /* * Get the current buffer and look up the unique ID. The unique ID * should not be found. If it is, the ID is already in use. */ i = mpr_get_fw_diag_buffer_number(sc, unique_id); pBuffer = &sc->fw_diag_buffer_list[buffer_type]; if (i != MPR_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPR_FW_DIAG_ERROR_INVALID_UID; return (MPR_DIAG_FAILURE); } /* * The buffer's unique ID should not be registered yet, and the given * unique ID cannot be 0. */ if ((pBuffer->unique_id != MPR_FW_DIAG_INVALID_UID) || (unique_id == MPR_FW_DIAG_INVALID_UID)) { *return_code = MPR_FW_DIAG_ERROR_INVALID_UID; return (MPR_DIAG_FAILURE); } /* * If this buffer is already posted as immediate, just change owner. */ if (pBuffer->immediate && pBuffer->owned_by_firmware && (pBuffer->unique_id == MPR_FW_DIAG_INVALID_UID)) { pBuffer->immediate = FALSE; pBuffer->unique_id = unique_id; return (MPR_DIAG_SUCCESS); } /* * Post a new buffer after checking if it's enabled. The DMA buffer * that is allocated will be contiguous (nsegments = 1). */ if (!pBuffer->enabled) { *return_code = MPR_FW_DIAG_ERROR_NO_BUFFER; return (MPR_DIAG_FAILURE); } if (bus_dma_tag_create( sc->mpr_parent_dmat, /* parent */ 1, 0, /* algnmnt, boundary */ BUS_SPACE_MAXADDR_32BIT,/* lowaddr */ BUS_SPACE_MAXADDR, /* highaddr */ NULL, NULL, /* filter, filterarg */ buffer_size, /* maxsize */ 1, /* nsegments */ buffer_size, /* maxsegsize */ 0, /* flags */ NULL, NULL, /* lockfunc, lockarg */ &sc->fw_diag_dmat)) { mpr_dprint(sc, MPR_ERROR, "Cannot allocate FW diag buffer DMA tag\n"); *return_code = MPR_FW_DIAG_ERROR_NO_BUFFER; status = MPR_DIAG_FAILURE; goto bailout; } if (bus_dmamem_alloc(sc->fw_diag_dmat, (void **)&sc->fw_diag_buffer, BUS_DMA_NOWAIT, &sc->fw_diag_map)) { mpr_dprint(sc, MPR_ERROR, "Cannot allocate FW diag buffer memory\n"); *return_code = MPR_FW_DIAG_ERROR_NO_BUFFER; status = MPR_DIAG_FAILURE; goto bailout; } bzero(sc->fw_diag_buffer, buffer_size); ctx = malloc(sizeof(*ctx), M_MPR, M_WAITOK | M_ZERO); if (ctx == NULL) { device_printf(sc->mpr_dev, "%s: context malloc failed\n", __func__); *return_code = MPR_FW_DIAG_ERROR_NO_BUFFER; status = MPR_DIAG_FAILURE; goto bailout; } ctx->addr = &sc->fw_diag_busaddr; ctx->buffer_dmat = sc->fw_diag_dmat; ctx->buffer_dmamap = sc->fw_diag_map; ctx->softc = sc; error = bus_dmamap_load(sc->fw_diag_dmat, sc->fw_diag_map, sc->fw_diag_buffer, buffer_size, mpr_memaddr_wait_cb, ctx, 0); if (error == EINPROGRESS) { /* XXX KDM */ device_printf(sc->mpr_dev, "%s: Deferred bus_dmamap_load\n", __func__); /* * Wait for the load to complete. If we're interrupted, * bail out. */ mpr_lock(sc); if (ctx->completed == 0) { error = msleep(ctx, &sc->mpr_mtx, PCATCH, "mprwait", 0); if (error != 0) { /* * We got an error from msleep(9). This is * most likely due to a signal. Tell * mpr_memaddr_wait_cb() that we've abandoned * the context, so it needs to clean up when * it is called. */ ctx->abandoned = 1; /* The callback will free this memory */ ctx = NULL; mpr_unlock(sc); device_printf(sc->mpr_dev, "Cannot " "bus_dmamap_load FW diag buffer, error = " "%d returned from msleep\n", error); *return_code = MPR_FW_DIAG_ERROR_NO_BUFFER; status = MPR_DIAG_FAILURE; goto bailout; } } mpr_unlock(sc); } if ((error != 0) || (ctx->error != 0)) { device_printf(sc->mpr_dev, "Cannot bus_dmamap_load FW diag " "buffer, %serror = %d\n", error ? "" : "callback ", error ? error : ctx->error); *return_code = MPR_FW_DIAG_ERROR_NO_BUFFER; status = MPR_DIAG_FAILURE; goto bailout; } bus_dmamap_sync(sc->fw_diag_dmat, sc->fw_diag_map, BUS_DMASYNC_PREREAD); pBuffer->size = buffer_size; /* * Copy the given info to the diag buffer and post the buffer. */ pBuffer->buffer_type = buffer_type; pBuffer->immediate = FALSE; if (buffer_type == MPI2_DIAG_BUF_TYPE_TRACE) { for (i = 0; i < (sizeof (pBuffer->product_specific) / 4); i++) { pBuffer->product_specific[i] = diag_register->ProductSpecific[i]; } } pBuffer->extended_type = extended_type; pBuffer->unique_id = unique_id; status = mpr_post_fw_diag_buffer(sc, pBuffer, return_code); bailout: /* * In case there was a failure, free the DMA buffer. */ if (status == MPR_DIAG_FAILURE) { if (sc->fw_diag_busaddr != 0) { bus_dmamap_unload(sc->fw_diag_dmat, sc->fw_diag_map); sc->fw_diag_busaddr = 0; } if (sc->fw_diag_buffer != NULL) { bus_dmamem_free(sc->fw_diag_dmat, sc->fw_diag_buffer, sc->fw_diag_map); sc->fw_diag_buffer = NULL; } if (sc->fw_diag_dmat != NULL) { bus_dma_tag_destroy(sc->fw_diag_dmat); sc->fw_diag_dmat = NULL; } } if (ctx != NULL) free(ctx, M_MPR); return (status); } static int mpr_diag_unregister(struct mpr_softc *sc, mpr_fw_diag_unregister_t *diag_unregister, uint32_t *return_code) { mpr_fw_diagnostic_buffer_t *pBuffer; uint8_t i; uint32_t unique_id; int status; unique_id = diag_unregister->UniqueId; /* * Get the current buffer and look up the unique ID. The unique ID * should be there. */ i = mpr_get_fw_diag_buffer_number(sc, unique_id); if (i == MPR_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPR_FW_DIAG_ERROR_INVALID_UID; return (MPR_DIAG_FAILURE); } pBuffer = &sc->fw_diag_buffer_list[i]; /* * Try to release the buffer from FW before freeing it. If release * fails, don't free the DMA buffer in case FW tries to access it * later. If buffer is not owned by firmware, can't release it. */ if (!pBuffer->owned_by_firmware) { status = MPR_DIAG_SUCCESS; } else { status = mpr_release_fw_diag_buffer(sc, pBuffer, return_code, MPR_FW_DIAG_TYPE_UNREGISTER); } /* * At this point, return the current status no matter what happens with * the DMA buffer. */ pBuffer->unique_id = MPR_FW_DIAG_INVALID_UID; if (status == MPR_DIAG_SUCCESS) { if (sc->fw_diag_busaddr != 0) { bus_dmamap_unload(sc->fw_diag_dmat, sc->fw_diag_map); sc->fw_diag_busaddr = 0; } if (sc->fw_diag_buffer != NULL) { bus_dmamem_free(sc->fw_diag_dmat, sc->fw_diag_buffer, sc->fw_diag_map); sc->fw_diag_buffer = NULL; } if (sc->fw_diag_dmat != NULL) { bus_dma_tag_destroy(sc->fw_diag_dmat); sc->fw_diag_dmat = NULL; } } return (status); } static int mpr_diag_query(struct mpr_softc *sc, mpr_fw_diag_query_t *diag_query, uint32_t *return_code) { mpr_fw_diagnostic_buffer_t *pBuffer; uint8_t i; uint32_t unique_id; unique_id = diag_query->UniqueId; /* * If ID is valid, query on ID. * If ID is invalid, query on buffer type. */ if (unique_id == MPR_FW_DIAG_INVALID_UID) { i = diag_query->BufferType; if (i >= MPI2_DIAG_BUF_TYPE_COUNT) { *return_code = MPR_FW_DIAG_ERROR_INVALID_UID; return (MPR_DIAG_FAILURE); } } else { i = mpr_get_fw_diag_buffer_number(sc, unique_id); if (i == MPR_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPR_FW_DIAG_ERROR_INVALID_UID; return (MPR_DIAG_FAILURE); } } /* * Fill query structure with the diag buffer info. */ pBuffer = &sc->fw_diag_buffer_list[i]; diag_query->BufferType = pBuffer->buffer_type; diag_query->ExtendedType = pBuffer->extended_type; if (diag_query->BufferType == MPI2_DIAG_BUF_TYPE_TRACE) { for (i = 0; i < (sizeof(diag_query->ProductSpecific) / 4); i++) { diag_query->ProductSpecific[i] = pBuffer->product_specific[i]; } } diag_query->TotalBufferSize = pBuffer->size; diag_query->DriverAddedBufferSize = 0; diag_query->UniqueId = pBuffer->unique_id; diag_query->ApplicationFlags = 0; diag_query->DiagnosticFlags = 0; /* * Set/Clear application flags */ if (pBuffer->immediate) { diag_query->ApplicationFlags &= ~MPR_FW_DIAG_FLAG_APP_OWNED; } else { diag_query->ApplicationFlags |= MPR_FW_DIAG_FLAG_APP_OWNED; } if (pBuffer->valid_data || pBuffer->owned_by_firmware) { diag_query->ApplicationFlags |= MPR_FW_DIAG_FLAG_BUFFER_VALID; } else { diag_query->ApplicationFlags &= ~MPR_FW_DIAG_FLAG_BUFFER_VALID; } if (pBuffer->owned_by_firmware) { diag_query->ApplicationFlags |= MPR_FW_DIAG_FLAG_FW_BUFFER_ACCESS; } else { diag_query->ApplicationFlags &= ~MPR_FW_DIAG_FLAG_FW_BUFFER_ACCESS; } return (MPR_DIAG_SUCCESS); } static int mpr_diag_read_buffer(struct mpr_softc *sc, mpr_diag_read_buffer_t *diag_read_buffer, uint8_t *ioctl_buf, uint32_t *return_code) { mpr_fw_diagnostic_buffer_t *pBuffer; uint8_t i, *pData; uint32_t unique_id; int status; unique_id = diag_read_buffer->UniqueId; /* * Get the current buffer and look up the unique ID. The unique ID * should be there. */ i = mpr_get_fw_diag_buffer_number(sc, unique_id); if (i == MPR_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPR_FW_DIAG_ERROR_INVALID_UID; return (MPR_DIAG_FAILURE); } pBuffer = &sc->fw_diag_buffer_list[i]; /* * Make sure requested read is within limits */ if (diag_read_buffer->StartingOffset + diag_read_buffer->BytesToRead > pBuffer->size) { *return_code = MPR_FW_DIAG_ERROR_INVALID_PARAMETER; return (MPR_DIAG_FAILURE); } /* Sync the DMA map before we copy to userland. */ bus_dmamap_sync(sc->fw_diag_dmat, sc->fw_diag_map, BUS_DMASYNC_POSTREAD); /* * Copy the requested data from DMA to the diag_read_buffer. The DMA * buffer that was allocated is one contiguous buffer. */ pData = (uint8_t *)(sc->fw_diag_buffer + diag_read_buffer->StartingOffset); if (copyout(pData, ioctl_buf, diag_read_buffer->BytesToRead) != 0) return (MPR_DIAG_FAILURE); diag_read_buffer->Status = 0; /* * Set or clear the Force Release flag. */ if (pBuffer->force_release) { diag_read_buffer->Flags |= MPR_FW_DIAG_FLAG_FORCE_RELEASE; } else { diag_read_buffer->Flags &= ~MPR_FW_DIAG_FLAG_FORCE_RELEASE; } /* * If buffer is to be reregistered, make sure it's not already owned by * firmware first. */ status = MPR_DIAG_SUCCESS; if (!pBuffer->owned_by_firmware) { if (diag_read_buffer->Flags & MPR_FW_DIAG_FLAG_REREGISTER) { status = mpr_post_fw_diag_buffer(sc, pBuffer, return_code); } } return (status); } static int mpr_diag_release(struct mpr_softc *sc, mpr_fw_diag_release_t *diag_release, uint32_t *return_code) { mpr_fw_diagnostic_buffer_t *pBuffer; uint8_t i; uint32_t unique_id; int status; unique_id = diag_release->UniqueId; /* * Get the current buffer and look up the unique ID. The unique ID * should be there. */ i = mpr_get_fw_diag_buffer_number(sc, unique_id); if (i == MPR_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPR_FW_DIAG_ERROR_INVALID_UID; return (MPR_DIAG_FAILURE); } pBuffer = &sc->fw_diag_buffer_list[i]; /* * If buffer is not owned by firmware, it's already been released. */ if (!pBuffer->owned_by_firmware) { *return_code = MPR_FW_DIAG_ERROR_ALREADY_RELEASED; return (MPR_DIAG_FAILURE); } /* * Release the buffer. */ status = mpr_release_fw_diag_buffer(sc, pBuffer, return_code, MPR_FW_DIAG_TYPE_RELEASE); return (status); } static int mpr_do_diag_action(struct mpr_softc *sc, uint32_t action, uint8_t *diag_action, uint32_t length, uint32_t *return_code) { mpr_fw_diag_register_t diag_register; mpr_fw_diag_unregister_t diag_unregister; mpr_fw_diag_query_t diag_query; mpr_diag_read_buffer_t diag_read_buffer; mpr_fw_diag_release_t diag_release; int status = MPR_DIAG_SUCCESS; uint32_t original_return_code; original_return_code = *return_code; *return_code = MPR_FW_DIAG_ERROR_SUCCESS; switch (action) { case MPR_FW_DIAG_TYPE_REGISTER: if (!length) { *return_code = MPR_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPR_DIAG_FAILURE; break; } if (copyin(diag_action, &diag_register, sizeof(diag_register)) != 0) return (MPR_DIAG_FAILURE); status = mpr_diag_register(sc, &diag_register, return_code); break; case MPR_FW_DIAG_TYPE_UNREGISTER: if (length < sizeof(diag_unregister)) { *return_code = MPR_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPR_DIAG_FAILURE; break; } if (copyin(diag_action, &diag_unregister, sizeof(diag_unregister)) != 0) return (MPR_DIAG_FAILURE); status = mpr_diag_unregister(sc, &diag_unregister, return_code); break; case MPR_FW_DIAG_TYPE_QUERY: if (length < sizeof (diag_query)) { *return_code = MPR_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPR_DIAG_FAILURE; break; } if (copyin(diag_action, &diag_query, sizeof(diag_query)) != 0) return (MPR_DIAG_FAILURE); status = mpr_diag_query(sc, &diag_query, return_code); if (status == MPR_DIAG_SUCCESS) if (copyout(&diag_query, diag_action, sizeof (diag_query)) != 0) return (MPR_DIAG_FAILURE); break; case MPR_FW_DIAG_TYPE_READ_BUFFER: if (copyin(diag_action, &diag_read_buffer, sizeof(diag_read_buffer)) != 0) return (MPR_DIAG_FAILURE); if (length < diag_read_buffer.BytesToRead) { *return_code = MPR_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPR_DIAG_FAILURE; break; } status = mpr_diag_read_buffer(sc, &diag_read_buffer, PTRIN(diag_read_buffer.PtrDataBuffer), return_code); if (status == MPR_DIAG_SUCCESS) { if (copyout(&diag_read_buffer, diag_action, sizeof(diag_read_buffer) - sizeof(diag_read_buffer.PtrDataBuffer)) != 0) return (MPR_DIAG_FAILURE); } break; case MPR_FW_DIAG_TYPE_RELEASE: if (length < sizeof(diag_release)) { *return_code = MPR_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPR_DIAG_FAILURE; break; } if (copyin(diag_action, &diag_release, sizeof(diag_release)) != 0) return (MPR_DIAG_FAILURE); status = mpr_diag_release(sc, &diag_release, return_code); break; default: *return_code = MPR_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPR_DIAG_FAILURE; break; } if ((status == MPR_DIAG_FAILURE) && (original_return_code == MPR_FW_DIAG_NEW) && (*return_code != MPR_FW_DIAG_ERROR_SUCCESS)) status = MPR_DIAG_SUCCESS; return (status); } static int mpr_user_diag_action(struct mpr_softc *sc, mpr_diag_action_t *data) { int status; /* * Only allow one diag action at one time. */ if (sc->mpr_flags & MPR_FLAGS_BUSY) { mpr_dprint(sc, MPR_USER, "%s: Only one FW diag command " "allowed at a single time.", __func__); return (EBUSY); } sc->mpr_flags |= MPR_FLAGS_BUSY; /* * Send diag action request */ if (data->Action == MPR_FW_DIAG_TYPE_REGISTER || data->Action == MPR_FW_DIAG_TYPE_UNREGISTER || data->Action == MPR_FW_DIAG_TYPE_QUERY || data->Action == MPR_FW_DIAG_TYPE_READ_BUFFER || data->Action == MPR_FW_DIAG_TYPE_RELEASE) { status = mpr_do_diag_action(sc, data->Action, PTRIN(data->PtrDiagAction), data->Length, &data->ReturnCode); } else status = EINVAL; sc->mpr_flags &= ~MPR_FLAGS_BUSY; return (status); } /* * Copy the event recording mask and the event queue size out. For * clarification, the event recording mask (events_to_record) is not the same * thing as the event mask (event_mask). events_to_record has a bit set for * every event type that is to be recorded by the driver, and event_mask has a * bit cleared for every event that is allowed into the driver from the IOC. * They really have nothing to do with each other. */ static void mpr_user_event_query(struct mpr_softc *sc, mpr_event_query_t *data) { uint8_t i; mpr_lock(sc); data->Entries = MPR_EVENT_QUEUE_SIZE; for (i = 0; i < 4; i++) { data->Types[i] = sc->events_to_record[i]; } mpr_unlock(sc); } /* * Set the driver's event mask according to what's been given. See * mpr_user_event_query for explanation of the event recording mask and the IOC * event mask. It's the app's responsibility to enable event logging by setting * the bits in events_to_record. Initially, no events will be logged. */ static void mpr_user_event_enable(struct mpr_softc *sc, mpr_event_enable_t *data) { uint8_t i; mpr_lock(sc); for (i = 0; i < 4; i++) { sc->events_to_record[i] = data->Types[i]; } mpr_unlock(sc); } /* * Copy out the events that have been recorded, up to the max events allowed. */ static int mpr_user_event_report(struct mpr_softc *sc, mpr_event_report_t *data) { int status = 0; uint32_t size; mpr_lock(sc); size = data->Size; if ((size >= sizeof(sc->recorded_events)) && (status == 0)) { mpr_unlock(sc); if (copyout((void *)sc->recorded_events, PTRIN(data->PtrEvents), size) != 0) status = EFAULT; mpr_lock(sc); } else { /* * data->Size value is not large enough to copy event data. */ status = EFAULT; } /* * Change size value to match the number of bytes that were copied. */ if (status == 0) data->Size = sizeof(sc->recorded_events); mpr_unlock(sc); return (status); } /* * Record events into the driver from the IOC if they are not masked. */ void mprsas_record_event(struct mpr_softc *sc, MPI2_EVENT_NOTIFICATION_REPLY *event_reply) { uint32_t event; int i, j; uint16_t event_data_len; boolean_t sendAEN = FALSE; event = event_reply->Event; /* * Generate a system event to let anyone who cares know that a * LOG_ENTRY_ADDED event has occurred. This is sent no matter what the * event mask is set to. */ if (event == MPI2_EVENT_LOG_ENTRY_ADDED) { sendAEN = TRUE; } /* * Record the event only if its corresponding bit is set in * events_to_record. event_index is the index into recorded_events and * event_number is the overall number of an event being recorded since * start-of-day. event_index will roll over; event_number will never * roll over. */ i = (uint8_t)(event / 32); j = (uint8_t)(event % 32); if ((i < 4) && ((1 << j) & sc->events_to_record[i])) { i = sc->event_index; sc->recorded_events[i].Type = event; sc->recorded_events[i].Number = ++sc->event_number; bzero(sc->recorded_events[i].Data, MPR_MAX_EVENT_DATA_LENGTH * 4); event_data_len = event_reply->EventDataLength; if (event_data_len > 0) { /* * Limit data to size in m_event entry */ if (event_data_len > MPR_MAX_EVENT_DATA_LENGTH) { event_data_len = MPR_MAX_EVENT_DATA_LENGTH; } for (j = 0; j < event_data_len; j++) { sc->recorded_events[i].Data[j] = event_reply->EventData[j]; } /* * check for index wrap-around */ if (++i == MPR_EVENT_QUEUE_SIZE) { i = 0; } sc->event_index = (uint8_t)i; /* * Set flag to send the event. */ sendAEN = TRUE; } } /* * Generate a system event if flag is set to let anyone who cares know * that an event has occurred. */ if (sendAEN) { //SLM-how to send a system event (see kqueue, kevent) // (void) ddi_log_sysevent(mpt->m_dip, DDI_VENDOR_LSI, "MPT_SAS", // "SAS", NULL, NULL, DDI_NOSLEEP); } } static int mpr_user_reg_access(struct mpr_softc *sc, mpr_reg_access_t *data) { int status = 0; switch (data->Command) { /* * IO access is not supported. */ case REG_IO_READ: case REG_IO_WRITE: mpr_dprint(sc, MPR_USER, "IO access is not supported. " "Use memory access."); status = EINVAL; break; case REG_MEM_READ: data->RegData = mpr_regread(sc, data->RegOffset); break; case REG_MEM_WRITE: mpr_regwrite(sc, data->RegOffset, data->RegData); break; default: status = EINVAL; break; } return (status); } static int mpr_user_btdh(struct mpr_softc *sc, mpr_btdh_mapping_t *data) { uint8_t bt2dh = FALSE; uint8_t dh2bt = FALSE; uint16_t dev_handle, bus, target; bus = data->Bus; target = data->TargetID; dev_handle = data->DevHandle; /* * When DevHandle is 0xFFFF and Bus/Target are not 0xFFFF, use Bus/ * Target to get DevHandle. When Bus/Target are 0xFFFF and DevHandle is * not 0xFFFF, use DevHandle to get Bus/Target. Anything else is * invalid. */ if ((bus == 0xFFFF) && (target == 0xFFFF) && (dev_handle != 0xFFFF)) dh2bt = TRUE; if ((dev_handle == 0xFFFF) && (bus != 0xFFFF) && (target != 0xFFFF)) bt2dh = TRUE; if (!dh2bt && !bt2dh) return (EINVAL); /* * Only handle bus of 0. Make sure target is within range. */ if (bt2dh) { if (bus != 0) return (EINVAL); if (target > sc->max_devices) { mpr_dprint(sc, MPR_XINFO, "Target ID is out of range " "for Bus/Target to DevHandle mapping."); return (EINVAL); } dev_handle = sc->mapping_table[target].dev_handle; if (dev_handle) data->DevHandle = dev_handle; } else { bus = 0; target = mpr_mapping_get_tid_from_handle(sc, dev_handle); data->Bus = bus; data->TargetID = target; } return (0); } static int mpr_ioctl(struct cdev *dev, u_long cmd, void *arg, int flag, struct thread *td) { struct mpr_softc *sc; struct mpr_cfg_page_req *page_req; struct mpr_ext_cfg_page_req *ext_page_req; void *mpr_page; int error, msleep_ret; mpr_page = NULL; sc = dev->si_drv1; page_req = (void *)arg; ext_page_req = (void *)arg; switch (cmd) { case MPRIO_READ_CFG_HEADER: mpr_lock(sc); error = mpr_user_read_cfg_header(sc, page_req); mpr_unlock(sc); break; case MPRIO_READ_CFG_PAGE: mpr_page = malloc(page_req->len, M_MPRUSER, M_WAITOK | M_ZERO); error = copyin(page_req->buf, mpr_page, sizeof(MPI2_CONFIG_PAGE_HEADER)); if (error) break; mpr_lock(sc); error = mpr_user_read_cfg_page(sc, page_req, mpr_page); mpr_unlock(sc); if (error) break; error = copyout(mpr_page, page_req->buf, page_req->len); break; case MPRIO_READ_EXT_CFG_HEADER: mpr_lock(sc); error = mpr_user_read_extcfg_header(sc, ext_page_req); mpr_unlock(sc); break; case MPRIO_READ_EXT_CFG_PAGE: mpr_page = malloc(ext_page_req->len, M_MPRUSER, M_WAITOK | M_ZERO); error = copyin(ext_page_req->buf, mpr_page, sizeof(MPI2_CONFIG_EXTENDED_PAGE_HEADER)); if (error) break; mpr_lock(sc); error = mpr_user_read_extcfg_page(sc, ext_page_req, mpr_page); mpr_unlock(sc); if (error) break; error = copyout(mpr_page, ext_page_req->buf, ext_page_req->len); break; case MPRIO_WRITE_CFG_PAGE: mpr_page = malloc(page_req->len, M_MPRUSER, M_WAITOK|M_ZERO); error = copyin(page_req->buf, mpr_page, page_req->len); if (error) break; mpr_lock(sc); error = mpr_user_write_cfg_page(sc, page_req, mpr_page); mpr_unlock(sc); break; case MPRIO_MPR_COMMAND: error = mpr_user_command(sc, (struct mpr_usr_command *)arg); break; case MPTIOCTL_PASS_THRU: /* * The user has requested to pass through a command to be * executed by the MPT firmware. Call our routine which does * this. Only allow one passthru IOCTL at one time. */ error = mpr_user_pass_thru(sc, (mpr_pass_thru_t *)arg); break; case MPTIOCTL_GET_ADAPTER_DATA: /* * The user has requested to read adapter data. Call our * routine which does this. */ error = 0; mpr_user_get_adapter_data(sc, (mpr_adapter_data_t *)arg); break; case MPTIOCTL_GET_PCI_INFO: /* * The user has requested to read pci info. Call * our routine which does this. */ mpr_lock(sc); error = 0; mpr_user_read_pci_info(sc, (mpr_pci_info_t *)arg); mpr_unlock(sc); break; case MPTIOCTL_RESET_ADAPTER: mpr_lock(sc); sc->port_enable_complete = 0; uint32_t reinit_start = time_uptime; error = mpr_reinit(sc); /* Sleep for 300 second. */ msleep_ret = msleep(&sc->port_enable_complete, &sc->mpr_mtx, PRIBIO, "mpr_porten", 300 * hz); mpr_unlock(sc); if (msleep_ret) printf("Port Enable did not complete after Diag " "Reset msleep error %d.\n", msleep_ret); else mpr_dprint(sc, MPR_USER, "Hard Reset with Port Enable " "completed in %d seconds.\n", (uint32_t)(time_uptime - reinit_start)); break; case MPTIOCTL_DIAG_ACTION: /* * The user has done a diag buffer action. Call our routine * which does this. Only allow one diag action at one time. */ mpr_lock(sc); error = mpr_user_diag_action(sc, (mpr_diag_action_t *)arg); mpr_unlock(sc); break; case MPTIOCTL_EVENT_QUERY: /* * The user has done an event query. Call our routine which does * this. */ error = 0; mpr_user_event_query(sc, (mpr_event_query_t *)arg); break; case MPTIOCTL_EVENT_ENABLE: /* * The user has done an event enable. Call our routine which * does this. */ error = 0; mpr_user_event_enable(sc, (mpr_event_enable_t *)arg); break; case MPTIOCTL_EVENT_REPORT: /* * The user has done an event report. Call our routine which * does this. */ error = mpr_user_event_report(sc, (mpr_event_report_t *)arg); break; case MPTIOCTL_REG_ACCESS: /* * The user has requested register access. Call our routine * which does this. */ mpr_lock(sc); error = mpr_user_reg_access(sc, (mpr_reg_access_t *)arg); mpr_unlock(sc); break; case MPTIOCTL_BTDH_MAPPING: /* * The user has requested to translate a bus/target to a * DevHandle or a DevHandle to a bus/target. Call our routine * which does this. */ error = mpr_user_btdh(sc, (mpr_btdh_mapping_t *)arg); break; default: error = ENOIOCTL; break; } if (mpr_page != NULL) free(mpr_page, M_MPRUSER); return (error); } #ifdef COMPAT_FREEBSD32 struct mpr_cfg_page_req32 { MPI2_CONFIG_PAGE_HEADER header; uint32_t page_address; uint32_t buf; int len; uint16_t ioc_status; }; struct mpr_ext_cfg_page_req32 { MPI2_CONFIG_EXTENDED_PAGE_HEADER header; uint32_t page_address; uint32_t buf; int len; uint16_t ioc_status; }; struct mpr_raid_action32 { uint8_t action; uint8_t volume_bus; uint8_t volume_id; uint8_t phys_disk_num; uint32_t action_data_word; uint32_t buf; int len; uint32_t volume_status; uint32_t action_data[4]; uint16_t action_status; uint16_t ioc_status; uint8_t write; }; struct mpr_usr_command32 { uint32_t req; uint32_t req_len; uint32_t rpl; uint32_t rpl_len; uint32_t buf; int len; uint32_t flags; }; #define MPRIO_READ_CFG_HEADER32 _IOWR('M', 200, struct mpr_cfg_page_req32) #define MPRIO_READ_CFG_PAGE32 _IOWR('M', 201, struct mpr_cfg_page_req32) #define MPRIO_READ_EXT_CFG_HEADER32 _IOWR('M', 202, struct mpr_ext_cfg_page_req32) #define MPRIO_READ_EXT_CFG_PAGE32 _IOWR('M', 203, struct mpr_ext_cfg_page_req32) #define MPRIO_WRITE_CFG_PAGE32 _IOWR('M', 204, struct mpr_cfg_page_req32) #define MPRIO_RAID_ACTION32 _IOWR('M', 205, struct mpr_raid_action32) #define MPRIO_MPR_COMMAND32 _IOWR('M', 210, struct mpr_usr_command32) static int mpr_ioctl32(struct cdev *dev, u_long cmd32, void *_arg, int flag, struct thread *td) { struct mpr_cfg_page_req32 *page32 = _arg; struct mpr_ext_cfg_page_req32 *ext32 = _arg; struct mpr_raid_action32 *raid32 = _arg; struct mpr_usr_command32 *user32 = _arg; union { struct mpr_cfg_page_req page; struct mpr_ext_cfg_page_req ext; struct mpr_raid_action raid; struct mpr_usr_command user; } arg; u_long cmd; int error; switch (cmd32) { case MPRIO_READ_CFG_HEADER32: case MPRIO_READ_CFG_PAGE32: case MPRIO_WRITE_CFG_PAGE32: if (cmd32 == MPRIO_READ_CFG_HEADER32) cmd = MPRIO_READ_CFG_HEADER; else if (cmd32 == MPRIO_READ_CFG_PAGE32) cmd = MPRIO_READ_CFG_PAGE; else cmd = MPRIO_WRITE_CFG_PAGE; CP(*page32, arg.page, header); CP(*page32, arg.page, page_address); PTRIN_CP(*page32, arg.page, buf); CP(*page32, arg.page, len); CP(*page32, arg.page, ioc_status); break; case MPRIO_READ_EXT_CFG_HEADER32: case MPRIO_READ_EXT_CFG_PAGE32: if (cmd32 == MPRIO_READ_EXT_CFG_HEADER32) cmd = MPRIO_READ_EXT_CFG_HEADER; else cmd = MPRIO_READ_EXT_CFG_PAGE; CP(*ext32, arg.ext, header); CP(*ext32, arg.ext, page_address); PTRIN_CP(*ext32, arg.ext, buf); CP(*ext32, arg.ext, len); CP(*ext32, arg.ext, ioc_status); break; case MPRIO_RAID_ACTION32: cmd = MPRIO_RAID_ACTION; CP(*raid32, arg.raid, action); CP(*raid32, arg.raid, volume_bus); CP(*raid32, arg.raid, volume_id); CP(*raid32, arg.raid, phys_disk_num); CP(*raid32, arg.raid, action_data_word); PTRIN_CP(*raid32, arg.raid, buf); CP(*raid32, arg.raid, len); CP(*raid32, arg.raid, volume_status); bcopy(raid32->action_data, arg.raid.action_data, sizeof arg.raid.action_data); CP(*raid32, arg.raid, ioc_status); CP(*raid32, arg.raid, write); break; case MPRIO_MPR_COMMAND32: cmd = MPRIO_MPR_COMMAND; PTRIN_CP(*user32, arg.user, req); CP(*user32, arg.user, req_len); PTRIN_CP(*user32, arg.user, rpl); CP(*user32, arg.user, rpl_len); PTRIN_CP(*user32, arg.user, buf); CP(*user32, arg.user, len); CP(*user32, arg.user, flags); break; default: return (ENOIOCTL); } error = mpr_ioctl(dev, cmd, &arg, flag, td); if (error == 0 && (cmd32 & IOC_OUT) != 0) { switch (cmd32) { case MPRIO_READ_CFG_HEADER32: case MPRIO_READ_CFG_PAGE32: case MPRIO_WRITE_CFG_PAGE32: CP(arg.page, *page32, header); CP(arg.page, *page32, page_address); PTROUT_CP(arg.page, *page32, buf); CP(arg.page, *page32, len); CP(arg.page, *page32, ioc_status); break; case MPRIO_READ_EXT_CFG_HEADER32: case MPRIO_READ_EXT_CFG_PAGE32: CP(arg.ext, *ext32, header); CP(arg.ext, *ext32, page_address); PTROUT_CP(arg.ext, *ext32, buf); CP(arg.ext, *ext32, len); CP(arg.ext, *ext32, ioc_status); break; case MPRIO_RAID_ACTION32: CP(arg.raid, *raid32, action); CP(arg.raid, *raid32, volume_bus); CP(arg.raid, *raid32, volume_id); CP(arg.raid, *raid32, phys_disk_num); CP(arg.raid, *raid32, action_data_word); PTROUT_CP(arg.raid, *raid32, buf); CP(arg.raid, *raid32, len); CP(arg.raid, *raid32, volume_status); bcopy(arg.raid.action_data, raid32->action_data, sizeof arg.raid.action_data); CP(arg.raid, *raid32, ioc_status); CP(arg.raid, *raid32, write); break; case MPRIO_MPR_COMMAND32: PTROUT_CP(arg.user, *user32, req); CP(arg.user, *user32, req_len); PTROUT_CP(arg.user, *user32, rpl); CP(arg.user, *user32, rpl_len); PTROUT_CP(arg.user, *user32, buf); CP(arg.user, *user32, len); CP(arg.user, *user32, flags); break; } } return (error); } #endif /* COMPAT_FREEBSD32 */ static int mpr_ioctl_devsw(struct cdev *dev, u_long com, caddr_t arg, int flag, struct thread *td) { #ifdef COMPAT_FREEBSD32 if (SV_CURPROC_FLAG(SV_ILP32)) return (mpr_ioctl32(dev, com, arg, flag, td)); #endif return (mpr_ioctl(dev, com, arg, flag, td)); } Index: head/sys/dev/mpr/mprvar.h =================================================================== --- head/sys/dev/mpr/mprvar.h (revision 342385) +++ head/sys/dev/mpr/mprvar.h (revision 342386) @@ -1,939 +1,941 @@ /*- * Copyright (c) 2009 Yahoo! Inc. * Copyright (c) 2011-2015 LSI Corp. * Copyright (c) 2013-2016 Avago Technologies * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD * * $FreeBSD$ */ #ifndef _MPRVAR_H #define _MPRVAR_H #define MPR_DRIVER_VERSION "18.03.00.00-fbsd" #define MPR_DB_MAX_WAIT 2500 #define MPR_REQ_FRAMES 2048 #define MPR_PRI_REQ_FRAMES 128 #define MPR_EVT_REPLY_FRAMES 32 #define MPR_REPLY_FRAMES MPR_REQ_FRAMES #define MPR_CHAIN_FRAMES 16384 #define MPR_MAXIO_PAGES (-1) #define MPR_SENSE_LEN SSD_FULL_SIZE #define MPR_MSI_MAX 1 #define MPR_MSIX_MAX 96 #define MPR_SGE64_SIZE 12 #define MPR_SGE32_SIZE 8 #define MPR_SGC_SIZE 8 #define MPR_DEFAULT_CHAIN_SEG_SIZE 8 #define MPR_MAX_CHAIN_ELEMENT_SIZE 16 /* * PCIe NVMe Specific defines */ //SLM-for now just use the same value as a SAS disk #define NVME_QDEPTH MPR_REQ_FRAMES #define PRP_ENTRY_SIZE 8 #define NVME_CMD_PRP1_OFFSET 24 /* PRP1 offset in NVMe cmd */ #define NVME_CMD_PRP2_OFFSET 32 /* PRP2 offset in NVMe cmd */ #define NVME_ERROR_RESPONSE_SIZE 16 /* Max NVME Error Response */ #define HOST_PAGE_SIZE_4K 12 #define MPR_FUNCTRACE(sc) \ mpr_dprint((sc), MPR_TRACE, "%s\n", __func__) #define CAN_SLEEP 1 #define NO_SLEEP 0 #define MPR_PERIODIC_DELAY 1 /* 1 second heartbeat/watchdog check */ #define MPR_ATA_ID_TIMEOUT 5 /* 5 second timeout for SATA ID cmd */ #define MPR_MISSING_CHECK_DELAY 10 /* 10 seconds between missing check */ #define IFAULT_IOP_OVER_TEMP_THRESHOLD_EXCEEDED 0x2810 #define MPR_SCSI_RI_INVALID_FRAME (0x00000002) #define DEFAULT_SPINUP_WAIT 3 /* seconds to wait for spinup */ #include /* * host mapping related macro definitions */ #define MPR_MAPTABLE_BAD_IDX 0xFFFFFFFF #define MPR_DPM_BAD_IDX 0xFFFF #define MPR_ENCTABLE_BAD_IDX 0xFF #define MPR_MAX_MISSING_COUNT 0x0F #define MPR_DEV_RESERVED 0x20000000 #define MPR_MAP_IN_USE 0x10000000 #define MPR_MAP_BAD_ID 0xFFFFFFFF typedef uint8_t u8; typedef uint16_t u16; typedef uint32_t u32; typedef uint64_t u64; /** * struct dev_mapping_table - device mapping information * @physical_id: SAS address for drives or WWID for RAID volumes * @device_info: bitfield provides detailed info about the device * @phy_bits: bitfields indicating controller phys * @dpm_entry_num: index of this device in device persistent map table * @dev_handle: device handle for the device pointed by this entry * @id: target id * @missing_count: number of times the device not detected by driver * @hide_flag: Hide this physical disk/not (foreign configuration) * @init_complete: Whether the start of the day checks completed or not * @TLR_bits: Turn TLR support on or off */ struct dev_mapping_table { u64 physical_id; u32 device_info; u32 phy_bits; u16 dpm_entry_num; u16 dev_handle; u16 reserved1; u16 id; u8 missing_count; u8 init_complete; u8 TLR_bits; u8 reserved2; }; /** * struct enc_mapping_table - mapping information about an enclosure * @enclosure_id: Logical ID of this enclosure * @start_index: index to the entry in dev_mapping_table * @phy_bits: bitfields indicating controller phys * @dpm_entry_num: index of this enclosure in device persistent map table * @enc_handle: device handle for the enclosure pointed by this entry * @num_slots: number of slots in the enclosure * @start_slot: Starting slot id * @missing_count: number of times the device not detected by driver * @removal_flag: used to mark the device for removal * @skip_search: used as a flag to include/exclude enclosure for search * @init_complete: Whether the start of the day checks completed or not */ struct enc_mapping_table { u64 enclosure_id; u32 start_index; u32 phy_bits; u16 dpm_entry_num; u16 enc_handle; u16 num_slots; u16 start_slot; u8 missing_count; u8 removal_flag; u8 skip_search; u8 init_complete; }; /** * struct map_removal_table - entries to be removed from mapping table * @dpm_entry_num: index of this device in device persistent map table * @dev_handle: device handle for the device pointed by this entry */ struct map_removal_table{ u16 dpm_entry_num; u16 dev_handle; }; typedef struct mpr_fw_diagnostic_buffer { size_t size; uint8_t extended_type; uint8_t buffer_type; uint8_t force_release; uint32_t product_specific[23]; uint8_t immediate; uint8_t enabled; uint8_t valid_data; uint8_t owned_by_firmware; uint32_t unique_id; } mpr_fw_diagnostic_buffer_t; struct mpr_softc; struct mpr_command; struct mprsas_softc; union ccb; struct mprsas_target; struct mpr_column_map; MALLOC_DECLARE(M_MPR); typedef void mpr_evt_callback_t(struct mpr_softc *, uintptr_t, MPI2_EVENT_NOTIFICATION_REPLY *reply); typedef void mpr_command_callback_t(struct mpr_softc *, struct mpr_command *cm); struct mpr_chain { TAILQ_ENTRY(mpr_chain) chain_link; void *chain; uint64_t chain_busaddr; }; struct mpr_prp_page { TAILQ_ENTRY(mpr_prp_page) prp_page_link; uint64_t *prp_page; uint64_t prp_page_busaddr; }; /* * This needs to be at least 2 to support SMP passthrough. */ #define MPR_IOVEC_COUNT 2 struct mpr_command { TAILQ_ENTRY(mpr_command) cm_link; TAILQ_ENTRY(mpr_command) cm_recovery; struct mpr_softc *cm_sc; union ccb *cm_ccb; void *cm_data; u_int cm_length; u_int cm_out_len; struct uio cm_uio; struct iovec cm_iovec[MPR_IOVEC_COUNT]; u_int cm_max_segs; u_int cm_sglsize; void *cm_sge; uint8_t *cm_req; uint8_t *cm_reply; uint32_t cm_reply_data; mpr_command_callback_t *cm_complete; void *cm_complete_data; struct mprsas_target *cm_targ; MPI2_REQUEST_DESCRIPTOR_UNION cm_desc; u_int cm_lun; u_int cm_flags; #define MPR_CM_FLAGS_POLLED (1 << 0) #define MPR_CM_FLAGS_COMPLETE (1 << 1) #define MPR_CM_FLAGS_SGE_SIMPLE (1 << 2) #define MPR_CM_FLAGS_DATAOUT (1 << 3) #define MPR_CM_FLAGS_DATAIN (1 << 4) #define MPR_CM_FLAGS_WAKEUP (1 << 5) #define MPR_CM_FLAGS_USE_UIO (1 << 6) #define MPR_CM_FLAGS_SMP_PASS (1 << 7) #define MPR_CM_FLAGS_CHAIN_FAILED (1 << 8) #define MPR_CM_FLAGS_ERROR_MASK MPR_CM_FLAGS_CHAIN_FAILED #define MPR_CM_FLAGS_USE_CCB (1 << 9) #define MPR_CM_FLAGS_SATA_ID_TIMEOUT (1 << 10) u_int cm_state; #define MPR_CM_STATE_FREE 0 #define MPR_CM_STATE_BUSY 1 #define MPR_CM_STATE_TIMEDOUT 2 #define MPR_CM_STATE_INQUEUE 3 bus_dmamap_t cm_dmamap; struct scsi_sense_data *cm_sense; uint64_t *nvme_error_response; TAILQ_HEAD(, mpr_chain) cm_chain_list; TAILQ_HEAD(, mpr_prp_page) cm_prp_page_list; uint32_t cm_req_busaddr; bus_addr_t cm_sense_busaddr; struct callout cm_callout; mpr_command_callback_t *cm_timeout_handler; }; struct mpr_column_map { uint16_t dev_handle; uint8_t phys_disk_num; }; struct mpr_event_handle { TAILQ_ENTRY(mpr_event_handle) eh_list; mpr_evt_callback_t *callback; void *data; uint8_t mask[16]; }; struct mpr_busdma_context { int completed; int abandoned; int error; bus_addr_t *addr; struct mpr_softc *softc; bus_dmamap_t buffer_dmamap; bus_dma_tag_t buffer_dmat; }; struct mpr_queue { struct mpr_softc *sc; int qnum; MPI2_REPLY_DESCRIPTORS_UNION *post_queue; int replypostindex; #ifdef notyet ck_ring_buffer_t *ringmem; ck_ring_buffer_t *chainmem; ck_ring_t req_ring; ck_ring_t chain_ring; #endif bus_dma_tag_t buffer_dmat; int io_cmds_highwater; int chain_free_lowwater; int chain_alloc_fail; struct resource *irq; void *intrhand; int irq_rid; }; struct mpr_softc { device_t mpr_dev; struct cdev *mpr_cdev; u_int mpr_flags; #define MPR_FLAGS_INTX (1 << 0) #define MPR_FLAGS_MSI (1 << 1) #define MPR_FLAGS_BUSY (1 << 2) #define MPR_FLAGS_SHUTDOWN (1 << 3) #define MPR_FLAGS_DIAGRESET (1 << 4) #define MPR_FLAGS_ATTACH_DONE (1 << 5) #define MPR_FLAGS_GEN35_IOC (1 << 6) #define MPR_FLAGS_REALLOCATED (1 << 7) u_int mpr_debug; int msi_msgs; u_int reqframesz; u_int replyframesz; u_int atomic_desc_capable; int tm_cmds_active; int io_cmds_active; int io_cmds_highwater; int chain_free; int max_chains; int max_io_pages; u_int maxio; int chain_free_lowwater; uint32_t chain_frame_size; int prp_buffer_size; int prp_pages_free; int prp_pages_free_lowwater; u_int enable_ssu; int spinup_wait_time; int use_phynum; uint64_t chain_alloc_fail; uint64_t prp_page_alloc_fail; struct sysctl_ctx_list sysctl_ctx; struct sysctl_oid *sysctl_tree; char fw_version[16]; struct mpr_command *commands; struct mpr_chain *chains; struct mpr_prp_page *prps; struct callout periodic; struct callout device_check_callout; struct mpr_queue *queues; struct mprsas_softc *sassc; TAILQ_HEAD(, mpr_command) req_list; TAILQ_HEAD(, mpr_command) high_priority_req_list; TAILQ_HEAD(, mpr_chain) chain_list; TAILQ_HEAD(, mpr_prp_page) prp_page_list; TAILQ_HEAD(, mpr_command) tm_list; int replypostindex; int replyfreeindex; struct resource *mpr_regs_resource; bus_space_handle_t mpr_bhandle; bus_space_tag_t mpr_btag; int mpr_regs_rid; bus_dma_tag_t mpr_parent_dmat; bus_dma_tag_t buffer_dmat; MPI2_IOC_FACTS_REPLY *facts; int num_reqs; int num_prireqs; int num_replies; int num_chains; int fqdepth; /* Free queue */ int pqdepth; /* Post queue */ uint8_t event_mask[16]; TAILQ_HEAD(, mpr_event_handle) event_list; struct mpr_event_handle *mpr_log_eh; struct mtx mpr_mtx; struct intr_config_hook mpr_ich; uint8_t *req_frames; bus_addr_t req_busaddr; bus_dma_tag_t req_dmat; bus_dmamap_t req_map; uint8_t *reply_frames; bus_addr_t reply_busaddr; bus_dma_tag_t reply_dmat; bus_dmamap_t reply_map; struct scsi_sense_data *sense_frames; bus_addr_t sense_busaddr; bus_dma_tag_t sense_dmat; bus_dmamap_t sense_map; uint8_t *chain_frames; bus_dma_tag_t chain_dmat; bus_dmamap_t chain_map; uint8_t *prp_pages; bus_addr_t prp_page_busaddr; bus_dma_tag_t prp_page_dmat; bus_dmamap_t prp_page_map; MPI2_REPLY_DESCRIPTORS_UNION *post_queue; bus_addr_t post_busaddr; uint32_t *free_queue; bus_addr_t free_busaddr; bus_dma_tag_t queues_dmat; bus_dmamap_t queues_map; uint8_t *fw_diag_buffer; bus_addr_t fw_diag_busaddr; bus_dma_tag_t fw_diag_dmat; bus_dmamap_t fw_diag_map; uint8_t ir_firmware; /* static config pages */ Mpi2IOCPage8_t ioc_pg8; Mpi2IOUnitPage8_t iounit_pg8; /* host mapping support */ struct dev_mapping_table *mapping_table; struct enc_mapping_table *enclosure_table; struct map_removal_table *removal_table; uint8_t *dpm_entry_used; uint8_t *dpm_flush_entry; Mpi2DriverMappingPage0_t *dpm_pg0; uint16_t max_devices; uint16_t max_enclosures; uint16_t max_expanders; uint8_t max_volumes; uint8_t num_enc_table_entries; uint8_t num_rsvd_entries; uint16_t max_dpm_entries; uint8_t is_dpm_enable; uint8_t track_mapping_events; uint32_t pending_map_events; /* FW diag Buffer List */ mpr_fw_diagnostic_buffer_t fw_diag_buffer_list[MPI2_DIAG_BUF_TYPE_COUNT]; /* Event Recording IOCTL support */ uint32_t events_to_record[4]; mpr_event_entry_t recorded_events[MPR_EVENT_QUEUE_SIZE]; uint8_t event_index; uint32_t event_number; /* EEDP and TLR support */ uint8_t eedp_enabled; uint8_t control_TLR; /* Shutdown Event Handler */ eventhandler_tag shutdown_eh; /* To track topo events during reset */ #define MPR_DIAG_RESET_TIMEOUT 300000 uint8_t wait_for_port_enable; uint8_t port_enable_complete; uint8_t msleep_fake_chan; /* StartStopUnit command handling at shutdown */ uint32_t SSU_refcount; uint8_t SSU_started; /* Configuration tunables */ u_int disable_msix; u_int disable_msi; u_int max_msix; u_int max_reqframes; u_int max_prireqframes; u_int max_replyframes; u_int max_evtframes; char exclude_ids[80]; struct timeval lastfail; }; struct mpr_config_params { MPI2_CONFIG_EXT_PAGE_HEADER_UNION hdr; u_int action; u_int page_address; /* Attributes, not a phys address */ u_int status; void *buffer; u_int length; int timeout; void (*callback)(struct mpr_softc *, struct mpr_config_params *); void *cbdata; }; struct scsi_read_capacity_eedp { uint8_t addr[8]; uint8_t length[4]; uint8_t protect; }; static __inline uint32_t mpr_regread(struct mpr_softc *sc, uint32_t offset) { return (bus_space_read_4(sc->mpr_btag, sc->mpr_bhandle, offset)); } static __inline void mpr_regwrite(struct mpr_softc *sc, uint32_t offset, uint32_t val) { bus_space_write_4(sc->mpr_btag, sc->mpr_bhandle, offset, val); } /* free_queue must have Little Endian address * TODO- cm_reply_data is unwanted. We can remove it. * */ static __inline void mpr_free_reply(struct mpr_softc *sc, uint32_t busaddr) { if (++sc->replyfreeindex >= sc->fqdepth) sc->replyfreeindex = 0; sc->free_queue[sc->replyfreeindex] = htole32(busaddr); mpr_regwrite(sc, MPI2_REPLY_FREE_HOST_INDEX_OFFSET, sc->replyfreeindex); } static __inline struct mpr_chain * mpr_alloc_chain(struct mpr_softc *sc) { struct mpr_chain *chain; if ((chain = TAILQ_FIRST(&sc->chain_list)) != NULL) { TAILQ_REMOVE(&sc->chain_list, chain, chain_link); sc->chain_free--; if (sc->chain_free < sc->chain_free_lowwater) sc->chain_free_lowwater = sc->chain_free; } else sc->chain_alloc_fail++; return (chain); } static __inline void mpr_free_chain(struct mpr_softc *sc, struct mpr_chain *chain) { #if 0 bzero(chain->chain, 128); #endif sc->chain_free++; TAILQ_INSERT_TAIL(&sc->chain_list, chain, chain_link); } static __inline struct mpr_prp_page * mpr_alloc_prp_page(struct mpr_softc *sc) { struct mpr_prp_page *prp_page; if ((prp_page = TAILQ_FIRST(&sc->prp_page_list)) != NULL) { TAILQ_REMOVE(&sc->prp_page_list, prp_page, prp_page_link); sc->prp_pages_free--; if (sc->prp_pages_free < sc->prp_pages_free_lowwater) sc->prp_pages_free_lowwater = sc->prp_pages_free; } else sc->prp_page_alloc_fail++; return (prp_page); } static __inline void mpr_free_prp_page(struct mpr_softc *sc, struct mpr_prp_page *prp_page) { sc->prp_pages_free++; TAILQ_INSERT_TAIL(&sc->prp_page_list, prp_page, prp_page_link); } static __inline void mpr_free_command(struct mpr_softc *sc, struct mpr_command *cm) { struct mpr_chain *chain, *chain_temp; struct mpr_prp_page *prp_page, *prp_page_temp; KASSERT(cm->cm_state == MPR_CM_STATE_BUSY, ("state not busy\n")); if (cm->cm_reply != NULL) mpr_free_reply(sc, cm->cm_reply_data); cm->cm_reply = NULL; cm->cm_flags = 0; cm->cm_complete = NULL; cm->cm_complete_data = NULL; cm->cm_ccb = NULL; cm->cm_targ = NULL; cm->cm_max_segs = 0; cm->cm_lun = 0; cm->cm_state = MPR_CM_STATE_FREE; cm->cm_data = NULL; cm->cm_length = 0; cm->cm_out_len = 0; cm->cm_sglsize = 0; cm->cm_sge = NULL; TAILQ_FOREACH_SAFE(chain, &cm->cm_chain_list, chain_link, chain_temp) { TAILQ_REMOVE(&cm->cm_chain_list, chain, chain_link); mpr_free_chain(sc, chain); } TAILQ_FOREACH_SAFE(prp_page, &cm->cm_prp_page_list, prp_page_link, prp_page_temp) { TAILQ_REMOVE(&cm->cm_prp_page_list, prp_page, prp_page_link); mpr_free_prp_page(sc, prp_page); } TAILQ_INSERT_TAIL(&sc->req_list, cm, cm_link); } static __inline struct mpr_command * mpr_alloc_command(struct mpr_softc *sc) { struct mpr_command *cm; cm = TAILQ_FIRST(&sc->req_list); if (cm == NULL) return (NULL); KASSERT(cm->cm_state == MPR_CM_STATE_FREE, ("mpr: Allocating busy command\n")); TAILQ_REMOVE(&sc->req_list, cm, cm_link); cm->cm_state = MPR_CM_STATE_BUSY; cm->cm_timeout_handler = NULL; return (cm); } static __inline void mpr_free_high_priority_command(struct mpr_softc *sc, struct mpr_command *cm) { struct mpr_chain *chain, *chain_temp; KASSERT(cm->cm_state == MPR_CM_STATE_BUSY, ("state not busy\n")); if (cm->cm_reply != NULL) mpr_free_reply(sc, cm->cm_reply_data); cm->cm_reply = NULL; cm->cm_flags = 0; cm->cm_complete = NULL; cm->cm_complete_data = NULL; cm->cm_ccb = NULL; cm->cm_targ = NULL; cm->cm_lun = 0; cm->cm_state = MPR_CM_STATE_FREE; TAILQ_FOREACH_SAFE(chain, &cm->cm_chain_list, chain_link, chain_temp) { TAILQ_REMOVE(&cm->cm_chain_list, chain, chain_link); mpr_free_chain(sc, chain); } TAILQ_INSERT_TAIL(&sc->high_priority_req_list, cm, cm_link); } static __inline struct mpr_command * mpr_alloc_high_priority_command(struct mpr_softc *sc) { struct mpr_command *cm; cm = TAILQ_FIRST(&sc->high_priority_req_list); if (cm == NULL) return (NULL); KASSERT(cm->cm_state == MPR_CM_STATE_FREE, ("mpr: Allocating busy command\n")); TAILQ_REMOVE(&sc->high_priority_req_list, cm, cm_link); cm->cm_state = MPR_CM_STATE_BUSY; cm->cm_timeout_handler = NULL; + cm->cm_desc.HighPriority.RequestFlags = + MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; return (cm); } static __inline void mpr_lock(struct mpr_softc *sc) { mtx_lock(&sc->mpr_mtx); } static __inline void mpr_unlock(struct mpr_softc *sc) { mtx_unlock(&sc->mpr_mtx); } #define MPR_INFO (1 << 0) /* Basic info */ #define MPR_FAULT (1 << 1) /* Hardware faults */ #define MPR_EVENT (1 << 2) /* Event data from the controller */ #define MPR_LOG (1 << 3) /* Log data from the controller */ #define MPR_RECOVERY (1 << 4) /* Command error recovery tracing */ #define MPR_ERROR (1 << 5) /* Parameter errors, programming bugs */ #define MPR_INIT (1 << 6) /* Things related to system init */ #define MPR_XINFO (1 << 7) /* More detailed/noisy info */ #define MPR_USER (1 << 8) /* Trace user-generated commands */ #define MPR_MAPPING (1 << 9) /* Trace device mappings */ #define MPR_TRACE (1 << 10) /* Function-by-function trace */ #define MPR_SSU_DISABLE_SSD_DISABLE_HDD 0 #define MPR_SSU_ENABLE_SSD_DISABLE_HDD 1 #define MPR_SSU_DISABLE_SSD_ENABLE_HDD 2 #define MPR_SSU_ENABLE_SSD_ENABLE_HDD 3 #define mpr_printf(sc, args...) \ device_printf((sc)->mpr_dev, ##args) #define mpr_print_field(sc, msg, args...) \ printf("\t" msg, ##args) #define mpr_vprintf(sc, args...) \ do { \ if (bootverbose) \ mpr_printf(sc, ##args); \ } while (0) #define mpr_dprint(sc, level, msg, args...) \ do { \ if ((sc)->mpr_debug & (level)) \ device_printf((sc)->mpr_dev, msg, ##args); \ } while (0) #define MPR_PRINTFIELD_START(sc, tag...) \ mpr_printf((sc), ##tag); \ mpr_print_field((sc), ":\n") #define MPR_PRINTFIELD_END(sc, tag) \ mpr_printf((sc), tag "\n") #define MPR_PRINTFIELD(sc, facts, attr, fmt) \ mpr_print_field((sc), #attr ": " #fmt "\n", (facts)->attr) static __inline void mpr_from_u64(uint64_t data, U64 *mpr) { (mpr)->High = htole32((uint32_t)((data) >> 32)); (mpr)->Low = htole32((uint32_t)((data) & 0xffffffff)); } static __inline uint64_t mpr_to_u64(U64 *data) { return (((uint64_t)le32toh(data->High) << 32) | le32toh(data->Low)); } static __inline void mpr_mask_intr(struct mpr_softc *sc) { uint32_t mask; mask = mpr_regread(sc, MPI2_HOST_INTERRUPT_MASK_OFFSET); mask |= MPI2_HIM_REPLY_INT_MASK; mpr_regwrite(sc, MPI2_HOST_INTERRUPT_MASK_OFFSET, mask); } static __inline void mpr_unmask_intr(struct mpr_softc *sc) { uint32_t mask; mask = mpr_regread(sc, MPI2_HOST_INTERRUPT_MASK_OFFSET); mask &= ~MPI2_HIM_REPLY_INT_MASK; mpr_regwrite(sc, MPI2_HOST_INTERRUPT_MASK_OFFSET, mask); } int mpr_pci_setup_interrupts(struct mpr_softc *sc); void mpr_pci_free_interrupts(struct mpr_softc *sc); int mpr_pci_restore(struct mpr_softc *sc); void mpr_get_tunables(struct mpr_softc *sc); int mpr_attach(struct mpr_softc *sc); int mpr_free(struct mpr_softc *sc); void mpr_intr(void *); void mpr_intr_msi(void *); void mpr_intr_locked(void *); int mpr_register_events(struct mpr_softc *, uint8_t *, mpr_evt_callback_t *, void *, struct mpr_event_handle **); int mpr_restart(struct mpr_softc *); int mpr_update_events(struct mpr_softc *, struct mpr_event_handle *, uint8_t *); int mpr_deregister_events(struct mpr_softc *, struct mpr_event_handle *); void mpr_build_nvme_prp(struct mpr_softc *sc, struct mpr_command *cm, Mpi26NVMeEncapsulatedRequest_t *nvme_encap_request, void *data, uint32_t data_in_sz, uint32_t data_out_sz); int mpr_push_sge(struct mpr_command *, MPI2_SGE_SIMPLE64 *, size_t, int); int mpr_push_ieee_sge(struct mpr_command *, void *, int); int mpr_add_dmaseg(struct mpr_command *, vm_paddr_t, size_t, u_int, int); int mpr_attach_sas(struct mpr_softc *sc); int mpr_detach_sas(struct mpr_softc *sc); int mpr_read_config_page(struct mpr_softc *, struct mpr_config_params *); int mpr_write_config_page(struct mpr_softc *, struct mpr_config_params *); void mpr_memaddr_cb(void *, bus_dma_segment_t *, int , int ); void mpr_memaddr_wait_cb(void *, bus_dma_segment_t *, int , int ); void mpr_init_sge(struct mpr_command *cm, void *req, void *sge); int mpr_attach_user(struct mpr_softc *); void mpr_detach_user(struct mpr_softc *); void mprsas_record_event(struct mpr_softc *sc, MPI2_EVENT_NOTIFICATION_REPLY *event_reply); int mpr_map_command(struct mpr_softc *sc, struct mpr_command *cm); int mpr_wait_command(struct mpr_softc *sc, struct mpr_command **cm, int timeout, int sleep_flag); int mpr_request_polled(struct mpr_softc *sc, struct mpr_command **cm); int mpr_config_get_bios_pg3(struct mpr_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2BiosPage3_t *config_page); int mpr_config_get_raid_volume_pg0(struct mpr_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2RaidVolPage0_t *config_page, u32 page_address); int mpr_config_get_ioc_pg8(struct mpr_softc *sc, Mpi2ConfigReply_t *, Mpi2IOCPage8_t *); int mpr_config_get_iounit_pg8(struct mpr_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2IOUnitPage8_t *config_page); int mpr_config_get_sas_device_pg0(struct mpr_softc *, Mpi2ConfigReply_t *, Mpi2SasDevicePage0_t *, u32 , u16 ); int mpr_config_get_pcie_device_pg0(struct mpr_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi26PCIeDevicePage0_t *config_page, u32 form, u16 handle); int mpr_config_get_pcie_device_pg2(struct mpr_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi26PCIeDevicePage2_t *config_page, u32 form, u16 handle); int mpr_config_get_dpm_pg0(struct mpr_softc *, Mpi2ConfigReply_t *, Mpi2DriverMappingPage0_t *, u16 ); int mpr_config_get_raid_volume_pg1(struct mpr_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2RaidVolPage1_t *config_page, u32 form, u16 handle); int mpr_config_get_volume_wwid(struct mpr_softc *sc, u16 volume_handle, u64 *wwid); int mpr_config_get_raid_pd_pg0(struct mpr_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2RaidPhysDiskPage0_t *config_page, u32 page_address); void mprsas_ir_shutdown(struct mpr_softc *sc, int howto); int mpr_reinit(struct mpr_softc *sc); void mprsas_handle_reinit(struct mpr_softc *sc); void mpr_base_static_config_pages(struct mpr_softc *sc); int mpr_mapping_initialize(struct mpr_softc *); void mpr_mapping_topology_change_event(struct mpr_softc *, Mpi2EventDataSasTopologyChangeList_t *); void mpr_mapping_pcie_topology_change_event(struct mpr_softc *sc, Mpi26EventDataPCIeTopologyChangeList_t *event_data); void mpr_mapping_free_memory(struct mpr_softc *sc); int mpr_config_set_dpm_pg0(struct mpr_softc *, Mpi2ConfigReply_t *, Mpi2DriverMappingPage0_t *, u16 ); void mpr_mapping_exit(struct mpr_softc *); void mpr_mapping_check_devices(void *); int mpr_mapping_allocate_memory(struct mpr_softc *sc); unsigned int mpr_mapping_get_tid(struct mpr_softc *, uint64_t , u16); unsigned int mpr_mapping_get_tid_from_handle(struct mpr_softc *sc, u16 handle); unsigned int mpr_mapping_get_raid_tid(struct mpr_softc *sc, u64 wwid, u16 volHandle); unsigned int mpr_mapping_get_raid_tid_from_handle(struct mpr_softc *sc, u16 volHandle); void mpr_mapping_enclosure_dev_status_change_event(struct mpr_softc *, Mpi2EventDataSasEnclDevStatusChange_t *event_data); void mpr_mapping_ir_config_change_event(struct mpr_softc *sc, Mpi2EventDataIrConfigChangeList_t *event_data); void mprsas_evt_handler(struct mpr_softc *sc, uintptr_t data, MPI2_EVENT_NOTIFICATION_REPLY *event); void mprsas_prepare_remove(struct mprsas_softc *sassc, uint16_t handle); void mprsas_prepare_volume_remove(struct mprsas_softc *sassc, uint16_t handle); int mprsas_startup(struct mpr_softc *sc); struct mprsas_target * mprsas_find_target_by_handle(struct mprsas_softc *, int, uint16_t); void mprsas_realloc_targets(struct mpr_softc *sc, int maxtargets); struct mpr_command * mprsas_alloc_tm(struct mpr_softc *sc); void mprsas_free_tm(struct mpr_softc *sc, struct mpr_command *tm); void mprsas_release_simq_reinit(struct mprsas_softc *sassc); int mprsas_send_reset(struct mpr_softc *sc, struct mpr_command *tm, uint8_t type); SYSCTL_DECL(_hw_mpr); /* Compatibility shims for different OS versions */ #if __FreeBSD_version >= 800001 #define mpr_kproc_create(func, farg, proc_ptr, flags, stackpgs, fmtstr, arg) \ kproc_create(func, farg, proc_ptr, flags, stackpgs, fmtstr, arg) #define mpr_kproc_exit(arg) kproc_exit(arg) #else #define mpr_kproc_create(func, farg, proc_ptr, flags, stackpgs, fmtstr, arg) \ kthread_create(func, farg, proc_ptr, flags, stackpgs, fmtstr, arg) #define mpr_kproc_exit(arg) kthread_exit(arg) #endif #if defined(CAM_PRIORITY_XPT) #define MPR_PRIORITY_XPT CAM_PRIORITY_XPT #else #define MPR_PRIORITY_XPT 5 #endif #if __FreeBSD_version < 800107 // Prior to FreeBSD-8.0 scp3_flags was not defined. #define spc3_flags reserved #define SPC3_SID_PROTECT 0x01 #define SPC3_SID_3PC 0x08 #define SPC3_SID_TPGS_MASK 0x30 #define SPC3_SID_TPGS_IMPLICIT 0x10 #define SPC3_SID_TPGS_EXPLICIT 0x20 #define SPC3_SID_ACC 0x40 #define SPC3_SID_SCCS 0x80 #define CAM_PRIORITY_NORMAL CAM_PRIORITY_NONE #endif /* Definitions for SCSI unmap translation to NVMe DSM command */ /* UNMAP block descriptor structure */ struct unmap_blk_desc { uint64_t slba; uint32_t nlb; uint32_t resv; }; /* UNMAP command's data */ struct unmap_parm_list { uint16_t unmap_data_len; uint16_t unmap_blk_desc_data_len; uint32_t resv; struct unmap_blk_desc desc[0]; }; /* SCSI ADDITIONAL SENSE Codes */ #define FIXED_SENSE_DATA 0x70 #define SCSI_ASC_NO_SENSE 0x00 #define SCSI_ASC_PERIPHERAL_DEV_WRITE_FAULT 0x03 #define SCSI_ASC_LUN_NOT_READY 0x04 #define SCSI_ASC_WARNING 0x0B #define SCSI_ASC_LOG_BLOCK_GUARD_CHECK_FAILED 0x10 #define SCSI_ASC_LOG_BLOCK_APPTAG_CHECK_FAILED 0x10 #define SCSI_ASC_LOG_BLOCK_REFTAG_CHECK_FAILED 0x10 #define SCSI_ASC_UNRECOVERED_READ_ERROR 0x11 #define SCSI_ASC_MISCOMPARE_DURING_VERIFY 0x1D #define SCSI_ASC_ACCESS_DENIED_INVALID_LUN_ID 0x20 #define SCSI_ASC_ILLEGAL_COMMAND 0x20 #define SCSI_ASC_ILLEGAL_BLOCK 0x21 #define SCSI_ASC_INVALID_CDB 0x24 #define SCSI_ASC_INVALID_LUN 0x25 #define SCSI_ASC_INVALID_PARAMETER 0x26 #define SCSI_ASC_FORMAT_COMMAND_FAILED 0x31 #define SCSI_ASC_INTERNAL_TARGET_FAILURE 0x44 /* SCSI ADDITIONAL SENSE Code Qualifiers */ #define SCSI_ASCQ_CAUSE_NOT_REPORTABLE 0x00 #define SCSI_ASCQ_FORMAT_COMMAND_FAILED 0x01 #define SCSI_ASCQ_LOG_BLOCK_GUARD_CHECK_FAILED 0x01 #define SCSI_ASCQ_LOG_BLOCK_APPTAG_CHECK_FAILED 0x02 #define SCSI_ASCQ_LOG_BLOCK_REFTAG_CHECK_FAILED 0x03 #define SCSI_ASCQ_FORMAT_IN_PROGRESS 0x04 #define SCSI_ASCQ_POWER_LOSS_EXPECTED 0x08 #define SCSI_ASCQ_INVALID_LUN_ID 0x09 #endif Index: head/sys/dev/mps/mps_sas.c =================================================================== --- head/sys/dev/mps/mps_sas.c (revision 342385) +++ head/sys/dev/mps/mps_sas.c (revision 342386) @@ -1,3642 +1,3638 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2009 Yahoo! Inc. * Copyright (c) 2011-2015 LSI Corp. * Copyright (c) 2013-2015 Avago Technologies * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD * * $FreeBSD$ */ #include __FBSDID("$FreeBSD$"); /* Communications core for Avago Technologies (LSI) MPT2 */ /* TODO Move headers to mpsvar */ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #if __FreeBSD_version >= 900026 #include #endif #include #include #include #include #include #include #include #include #include #include #include #define MPSSAS_DISCOVERY_TIMEOUT 20 #define MPSSAS_MAX_DISCOVERY_TIMEOUTS 10 /* 200 seconds */ /* * static array to check SCSI OpCode for EEDP protection bits */ #define PRO_R MPI2_SCSIIO_EEDPFLAGS_CHECK_REMOVE_OP #define PRO_W MPI2_SCSIIO_EEDPFLAGS_INSERT_OP #define PRO_V MPI2_SCSIIO_EEDPFLAGS_INSERT_OP static uint8_t op_code_prot[256] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, PRO_R, 0, PRO_W, 0, 0, 0, PRO_W, PRO_V, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, PRO_W, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, PRO_R, 0, PRO_W, 0, 0, 0, PRO_W, PRO_V, 0, 0, 0, PRO_W, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, PRO_R, 0, PRO_W, 0, 0, 0, PRO_W, PRO_V, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 }; MALLOC_DEFINE(M_MPSSAS, "MPSSAS", "MPS SAS memory"); static void mpssas_remove_device(struct mps_softc *, struct mps_command *); static void mpssas_remove_complete(struct mps_softc *, struct mps_command *); static void mpssas_action(struct cam_sim *sim, union ccb *ccb); static void mpssas_poll(struct cam_sim *sim); static int mpssas_send_abort(struct mps_softc *sc, struct mps_command *tm, struct mps_command *cm); static void mpssas_scsiio_timeout(void *data); static void mpssas_abort_complete(struct mps_softc *sc, struct mps_command *cm); static void mpssas_direct_drive_io(struct mpssas_softc *sassc, struct mps_command *cm, union ccb *ccb); static void mpssas_action_scsiio(struct mpssas_softc *, union ccb *); static void mpssas_scsiio_complete(struct mps_softc *, struct mps_command *); static void mpssas_action_resetdev(struct mpssas_softc *, union ccb *); #if __FreeBSD_version >= 900026 static void mpssas_smpio_complete(struct mps_softc *sc, struct mps_command *cm); static void mpssas_send_smpcmd(struct mpssas_softc *sassc, union ccb *ccb, uint64_t sasaddr); static void mpssas_action_smpio(struct mpssas_softc *sassc, union ccb *ccb); #endif //FreeBSD_version >= 900026 static void mpssas_resetdev_complete(struct mps_softc *, struct mps_command *); static void mpssas_async(void *callback_arg, uint32_t code, struct cam_path *path, void *arg); #if (__FreeBSD_version < 901503) || \ ((__FreeBSD_version >= 1000000) && (__FreeBSD_version < 1000006)) static void mpssas_check_eedp(struct mps_softc *sc, struct cam_path *path, struct ccb_getdev *cgd); static void mpssas_read_cap_done(struct cam_periph *periph, union ccb *done_ccb); #endif static int mpssas_send_portenable(struct mps_softc *sc); static void mpssas_portenable_complete(struct mps_softc *sc, struct mps_command *cm); struct mpssas_target * mpssas_find_target_by_handle(struct mpssas_softc *sassc, int start, uint16_t handle) { struct mpssas_target *target; int i; for (i = start; i < sassc->maxtargets; i++) { target = &sassc->targets[i]; if (target->handle == handle) return (target); } return (NULL); } /* we need to freeze the simq during attach and diag reset, to avoid failing * commands before device handles have been found by discovery. Since * discovery involves reading config pages and possibly sending commands, * discovery actions may continue even after we receive the end of discovery * event, so refcount discovery actions instead of assuming we can unfreeze * the simq when we get the event. */ void mpssas_startup_increment(struct mpssas_softc *sassc) { MPS_FUNCTRACE(sassc->sc); if ((sassc->flags & MPSSAS_IN_STARTUP) != 0) { if (sassc->startup_refcount++ == 0) { /* just starting, freeze the simq */ mps_dprint(sassc->sc, MPS_INIT, "%s freezing simq\n", __func__); #if __FreeBSD_version >= 1000039 xpt_hold_boot(); #endif xpt_freeze_simq(sassc->sim, 1); } mps_dprint(sassc->sc, MPS_INIT, "%s refcount %u\n", __func__, sassc->startup_refcount); } } void mpssas_release_simq_reinit(struct mpssas_softc *sassc) { if (sassc->flags & MPSSAS_QUEUE_FROZEN) { sassc->flags &= ~MPSSAS_QUEUE_FROZEN; xpt_release_simq(sassc->sim, 1); mps_dprint(sassc->sc, MPS_INFO, "Unfreezing SIM queue\n"); } } void mpssas_startup_decrement(struct mpssas_softc *sassc) { MPS_FUNCTRACE(sassc->sc); if ((sassc->flags & MPSSAS_IN_STARTUP) != 0) { if (--sassc->startup_refcount == 0) { /* finished all discovery-related actions, release * the simq and rescan for the latest topology. */ mps_dprint(sassc->sc, MPS_INIT, "%s releasing simq\n", __func__); sassc->flags &= ~MPSSAS_IN_STARTUP; xpt_release_simq(sassc->sim, 1); #if __FreeBSD_version >= 1000039 xpt_release_boot(); #else mpssas_rescan_target(sassc->sc, NULL); #endif } mps_dprint(sassc->sc, MPS_INIT, "%s refcount %u\n", __func__, sassc->startup_refcount); } } -/* The firmware requires us to stop sending commands when we're doing task - * management, so refcount the TMs and keep the simq frozen when any are in - * use. +/* + * The firmware requires us to stop sending commands when we're doing task + * management. + * XXX The logic for serializing the device has been made lazy and moved to + * mpssas_prepare_for_tm(). */ struct mps_command * mpssas_alloc_tm(struct mps_softc *sc) { struct mps_command *tm; tm = mps_alloc_high_priority_command(sc); return tm; } void mpssas_free_tm(struct mps_softc *sc, struct mps_command *tm) { int target_id = 0xFFFFFFFF; if (tm == NULL) return; /* * For TM's the devq is frozen for the device. Unfreeze it here and * free the resources used for freezing the devq. Must clear the * INRESET flag as well or scsi I/O will not work. */ if (tm->cm_targ != NULL) { tm->cm_targ->flags &= ~MPSSAS_TARGET_INRESET; target_id = tm->cm_targ->tid; } if (tm->cm_ccb) { mps_dprint(sc, MPS_INFO, "Unfreezing devq for target ID %d\n", target_id); xpt_release_devq(tm->cm_ccb->ccb_h.path, 1, TRUE); xpt_free_path(tm->cm_ccb->ccb_h.path); xpt_free_ccb(tm->cm_ccb); } mps_free_high_priority_command(sc, tm); } void mpssas_rescan_target(struct mps_softc *sc, struct mpssas_target *targ) { struct mpssas_softc *sassc = sc->sassc; path_id_t pathid; target_id_t targetid; union ccb *ccb; MPS_FUNCTRACE(sc); pathid = cam_sim_path(sassc->sim); if (targ == NULL) targetid = CAM_TARGET_WILDCARD; else targetid = targ - sassc->targets; /* * Allocate a CCB and schedule a rescan. */ ccb = xpt_alloc_ccb_nowait(); if (ccb == NULL) { mps_dprint(sc, MPS_ERROR, "unable to alloc CCB for rescan\n"); return; } if (xpt_create_path(&ccb->ccb_h.path, NULL, pathid, targetid, CAM_LUN_WILDCARD) != CAM_REQ_CMP) { mps_dprint(sc, MPS_ERROR, "unable to create path for rescan\n"); xpt_free_ccb(ccb); return; } if (targetid == CAM_TARGET_WILDCARD) ccb->ccb_h.func_code = XPT_SCAN_BUS; else ccb->ccb_h.func_code = XPT_SCAN_TGT; mps_dprint(sc, MPS_TRACE, "%s targetid %u\n", __func__, targetid); xpt_rescan(ccb); } static void mpssas_log_command(struct mps_command *cm, u_int level, const char *fmt, ...) { struct sbuf sb; va_list ap; char str[192]; char path_str[64]; if (cm == NULL) return; /* No need to be in here if debugging isn't enabled */ if ((cm->cm_sc->mps_debug & level) == 0) return; sbuf_new(&sb, str, sizeof(str), 0); va_start(ap, fmt); if (cm->cm_ccb != NULL) { xpt_path_string(cm->cm_ccb->csio.ccb_h.path, path_str, sizeof(path_str)); sbuf_cat(&sb, path_str); if (cm->cm_ccb->ccb_h.func_code == XPT_SCSI_IO) { scsi_command_string(&cm->cm_ccb->csio, &sb); sbuf_printf(&sb, "length %d ", cm->cm_ccb->csio.dxfer_len); } } else { sbuf_printf(&sb, "(noperiph:%s%d:%u:%u:%u): ", cam_sim_name(cm->cm_sc->sassc->sim), cam_sim_unit(cm->cm_sc->sassc->sim), cam_sim_bus(cm->cm_sc->sassc->sim), cm->cm_targ ? cm->cm_targ->tid : 0xFFFFFFFF, cm->cm_lun); } sbuf_printf(&sb, "SMID %u ", cm->cm_desc.Default.SMID); sbuf_vprintf(&sb, fmt, ap); sbuf_finish(&sb); mps_print_field(cm->cm_sc, "%s", sbuf_data(&sb)); va_end(ap); } static void mpssas_remove_volume(struct mps_softc *sc, struct mps_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *reply; struct mpssas_target *targ; uint16_t handle; MPS_FUNCTRACE(sc); reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; handle = (uint16_t)(uintptr_t)tm->cm_complete_data; targ = tm->cm_targ; if (reply == NULL) { /* XXX retry the remove after the diag reset completes? */ mps_dprint(sc, MPS_FAULT, "%s NULL reply resetting device 0x%04x\n", __func__, handle); mpssas_free_tm(sc, tm); return; } if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) { mps_dprint(sc, MPS_ERROR, "IOCStatus = 0x%x while resetting device 0x%x\n", le16toh(reply->IOCStatus), handle); } mps_dprint(sc, MPS_XINFO, "Reset aborted %u commands\n", reply->TerminationCount); mps_free_reply(sc, tm->cm_reply_data); tm->cm_reply = NULL; /* Ensures the reply won't get re-freed */ mps_dprint(sc, MPS_XINFO, "clearing target %u handle 0x%04x\n", targ->tid, handle); /* * Don't clear target if remove fails because things will get confusing. * Leave the devname and sasaddr intact so that we know to avoid reusing * this target id if possible, and so we can assign the same target id * to this device if it comes back in the future. */ if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SUCCESS) { targ = tm->cm_targ; targ->handle = 0x0; targ->encl_handle = 0x0; targ->encl_slot = 0x0; targ->exp_dev_handle = 0x0; targ->phy_num = 0x0; targ->linkrate = 0x0; targ->devinfo = 0x0; targ->flags = 0x0; } mpssas_free_tm(sc, tm); } /* * No Need to call "MPI2_SAS_OP_REMOVE_DEVICE" For Volume removal. * Otherwise Volume Delete is same as Bare Drive Removal. */ void mpssas_prepare_volume_remove(struct mpssas_softc *sassc, uint16_t handle) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mps_softc *sc; struct mps_command *cm; struct mpssas_target *targ = NULL; MPS_FUNCTRACE(sassc->sc); sc = sassc->sc; #ifdef WD_SUPPORT /* * If this is a WD controller, determine if the disk should be exposed * to the OS or not. If disk should be exposed, return from this * function without doing anything. */ if (sc->WD_available && (sc->WD_hide_expose == MPS_WD_EXPOSE_ALWAYS)) { return; } #endif //WD_SUPPORT targ = mpssas_find_target_by_handle(sassc, 0, handle); if (targ == NULL) { /* FIXME: what is the action? */ /* We don't know about this device? */ mps_dprint(sc, MPS_ERROR, "%s %d : invalid handle 0x%x \n", __func__,__LINE__, handle); return; } targ->flags |= MPSSAS_TARGET_INREMOVAL; cm = mpssas_alloc_tm(sc); if (cm == NULL) { mps_dprint(sc, MPS_ERROR, "%s: command alloc failure\n", __func__); return; } mpssas_rescan_target(sc, targ); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)cm->cm_req; req->DevHandle = targ->handle; req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET; /* SAS Hard Link Reset / SATA Link Reset */ req->MsgFlags = MPI2_SCSITASKMGMT_MSGFLAGS_LINK_RESET; cm->cm_targ = targ; cm->cm_data = NULL; - cm->cm_desc.HighPriority.RequestFlags = - MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; cm->cm_complete = mpssas_remove_volume; cm->cm_complete_data = (void *)(uintptr_t)handle; mps_dprint(sc, MPS_INFO, "%s: Sending reset for target ID %d\n", __func__, targ->tid); mpssas_prepare_for_tm(sc, cm, targ, CAM_LUN_WILDCARD); mps_map_command(sc, cm); } /* * The MPT2 firmware performs debounce on the link to avoid transient link * errors and false removals. When it does decide that link has been lost * and a device need to go away, it expects that the host will perform a * target reset and then an op remove. The reset has the side-effect of * aborting any outstanding requests for the device, which is required for * the op-remove to succeed. It's not clear if the host should check for * the device coming back alive after the reset. */ void mpssas_prepare_remove(struct mpssas_softc *sassc, uint16_t handle) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mps_softc *sc; struct mps_command *cm; struct mpssas_target *targ = NULL; MPS_FUNCTRACE(sassc->sc); sc = sassc->sc; targ = mpssas_find_target_by_handle(sassc, 0, handle); if (targ == NULL) { /* FIXME: what is the action? */ /* We don't know about this device? */ mps_dprint(sc, MPS_ERROR, "%s : invalid handle 0x%x \n", __func__, handle); return; } targ->flags |= MPSSAS_TARGET_INREMOVAL; cm = mpssas_alloc_tm(sc); if (cm == NULL) { mps_dprint(sc, MPS_ERROR, "%s: command alloc failure\n", __func__); return; } mpssas_rescan_target(sc, targ); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)cm->cm_req; memset(req, 0, sizeof(*req)); req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET; /* SAS Hard Link Reset / SATA Link Reset */ req->MsgFlags = MPI2_SCSITASKMGMT_MSGFLAGS_LINK_RESET; cm->cm_targ = targ; cm->cm_data = NULL; - cm->cm_desc.HighPriority.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; cm->cm_complete = mpssas_remove_device; cm->cm_complete_data = (void *)(uintptr_t)handle; mps_dprint(sc, MPS_INFO, "%s: Sending reset for target ID %d\n", __func__, targ->tid); mpssas_prepare_for_tm(sc, cm, targ, CAM_LUN_WILDCARD); mps_map_command(sc, cm); } static void mpssas_remove_device(struct mps_softc *sc, struct mps_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *reply; MPI2_SAS_IOUNIT_CONTROL_REQUEST *req; struct mpssas_target *targ; struct mps_command *next_cm; uint16_t handle; MPS_FUNCTRACE(sc); reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; handle = (uint16_t)(uintptr_t)tm->cm_complete_data; targ = tm->cm_targ; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { mps_dprint(sc, MPS_ERROR, "%s: cm_flags = %#x for remove of handle %#04x! " "This should not happen!\n", __func__, tm->cm_flags, handle); } if (reply == NULL) { /* XXX retry the remove after the diag reset completes? */ mps_dprint(sc, MPS_FAULT, "%s NULL reply resetting device 0x%04x\n", __func__, handle); mpssas_free_tm(sc, tm); return; } if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) { mps_dprint(sc, MPS_ERROR, "IOCStatus = 0x%x while resetting device 0x%x\n", le16toh(reply->IOCStatus), handle); } mps_dprint(sc, MPS_XINFO, "Reset aborted %u commands\n", le32toh(reply->TerminationCount)); mps_free_reply(sc, tm->cm_reply_data); tm->cm_reply = NULL; /* Ensures the reply won't get re-freed */ /* Reuse the existing command */ req = (MPI2_SAS_IOUNIT_CONTROL_REQUEST *)tm->cm_req; memset(req, 0, sizeof(*req)); req->Function = MPI2_FUNCTION_SAS_IO_UNIT_CONTROL; req->Operation = MPI2_SAS_OP_REMOVE_DEVICE; req->DevHandle = htole16(handle); tm->cm_data = NULL; tm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; tm->cm_complete = mpssas_remove_complete; tm->cm_complete_data = (void *)(uintptr_t)handle; mps_map_command(sc, tm); mps_dprint(sc, MPS_XINFO, "clearing target %u handle 0x%04x\n", targ->tid, handle); TAILQ_FOREACH_SAFE(tm, &targ->commands, cm_link, next_cm) { union ccb *ccb; mps_dprint(sc, MPS_XINFO, "Completing missed command %p\n", tm); ccb = tm->cm_complete_data; mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); mpssas_scsiio_complete(sc, tm); } } static void mpssas_remove_complete(struct mps_softc *sc, struct mps_command *tm) { MPI2_SAS_IOUNIT_CONTROL_REPLY *reply; uint16_t handle; struct mpssas_target *targ; struct mpssas_lun *lun; MPS_FUNCTRACE(sc); reply = (MPI2_SAS_IOUNIT_CONTROL_REPLY *)tm->cm_reply; handle = (uint16_t)(uintptr_t)tm->cm_complete_data; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { mps_dprint(sc, MPS_XINFO, "%s: cm_flags = %#x for remove of handle %#04x! " "This should not happen!\n", __func__, tm->cm_flags, handle); mpssas_free_tm(sc, tm); return; } if (reply == NULL) { /* most likely a chip reset */ mps_dprint(sc, MPS_FAULT, "%s NULL reply removing device 0x%04x\n", __func__, handle); mpssas_free_tm(sc, tm); return; } mps_dprint(sc, MPS_XINFO, "%s on handle 0x%04x, IOCStatus= 0x%x\n", __func__, handle, le16toh(reply->IOCStatus)); /* * Don't clear target if remove fails because things will get confusing. * Leave the devname and sasaddr intact so that we know to avoid reusing * this target id if possible, and so we can assign the same target id * to this device if it comes back in the future. */ if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SUCCESS) { targ = tm->cm_targ; targ->handle = 0x0; targ->encl_handle = 0x0; targ->encl_slot = 0x0; targ->exp_dev_handle = 0x0; targ->phy_num = 0x0; targ->linkrate = 0x0; targ->devinfo = 0x0; targ->flags = 0x0; while(!SLIST_EMPTY(&targ->luns)) { lun = SLIST_FIRST(&targ->luns); SLIST_REMOVE_HEAD(&targ->luns, lun_link); free(lun, M_MPT2); } } mpssas_free_tm(sc, tm); } static int mpssas_register_events(struct mps_softc *sc) { u32 events[MPI2_EVENT_NOTIFY_EVENTMASK_WORDS]; bzero(events, 16); setbit(events, MPI2_EVENT_SAS_DEVICE_STATUS_CHANGE); setbit(events, MPI2_EVENT_SAS_DISCOVERY); setbit(events, MPI2_EVENT_SAS_BROADCAST_PRIMITIVE); setbit(events, MPI2_EVENT_SAS_INIT_DEVICE_STATUS_CHANGE); setbit(events, MPI2_EVENT_SAS_INIT_TABLE_OVERFLOW); setbit(events, MPI2_EVENT_SAS_TOPOLOGY_CHANGE_LIST); setbit(events, MPI2_EVENT_SAS_ENCL_DEVICE_STATUS_CHANGE); setbit(events, MPI2_EVENT_IR_CONFIGURATION_CHANGE_LIST); setbit(events, MPI2_EVENT_IR_VOLUME); setbit(events, MPI2_EVENT_IR_PHYSICAL_DISK); setbit(events, MPI2_EVENT_IR_OPERATION_STATUS); setbit(events, MPI2_EVENT_LOG_ENTRY_ADDED); mps_register_events(sc, events, mpssas_evt_handler, NULL, &sc->sassc->mpssas_eh); return (0); } int mps_attach_sas(struct mps_softc *sc) { struct mpssas_softc *sassc; cam_status status; int unit, error = 0, reqs; MPS_FUNCTRACE(sc); mps_dprint(sc, MPS_INIT, "%s entered\n", __func__); sassc = malloc(sizeof(struct mpssas_softc), M_MPT2, M_WAITOK|M_ZERO); if(!sassc) { mps_dprint(sc, MPS_INIT|MPS_ERROR, "Cannot allocate SAS controller memory\n"); return (ENOMEM); } /* * XXX MaxTargets could change during a reinit. Since we don't * resize the targets[] array during such an event, cache the value * of MaxTargets here so that we don't get into trouble later. This * should move into the reinit logic. */ sassc->maxtargets = sc->facts->MaxTargets + sc->facts->MaxVolumes; sassc->targets = malloc(sizeof(struct mpssas_target) * sassc->maxtargets, M_MPT2, M_WAITOK|M_ZERO); if(!sassc->targets) { mps_dprint(sc, MPS_INIT|MPS_ERROR, "Cannot allocate SAS target memory\n"); free(sassc, M_MPT2); return (ENOMEM); } sc->sassc = sassc; sassc->sc = sc; reqs = sc->num_reqs - sc->num_prireqs - 1; if ((sassc->devq = cam_simq_alloc(reqs)) == NULL) { mps_dprint(sc, MPS_ERROR, "Cannot allocate SIMQ\n"); error = ENOMEM; goto out; } unit = device_get_unit(sc->mps_dev); sassc->sim = cam_sim_alloc(mpssas_action, mpssas_poll, "mps", sassc, unit, &sc->mps_mtx, reqs, reqs, sassc->devq); if (sassc->sim == NULL) { mps_dprint(sc, MPS_INIT|MPS_ERROR, "Cannot allocate SIM\n"); error = EINVAL; goto out; } TAILQ_INIT(&sassc->ev_queue); /* Initialize taskqueue for Event Handling */ TASK_INIT(&sassc->ev_task, 0, mpssas_firmware_event_work, sc); sassc->ev_tq = taskqueue_create("mps_taskq", M_NOWAIT | M_ZERO, taskqueue_thread_enqueue, &sassc->ev_tq); taskqueue_start_threads(&sassc->ev_tq, 1, PRIBIO, "%s taskq", device_get_nameunit(sc->mps_dev)); mps_lock(sc); /* * XXX There should be a bus for every port on the adapter, but since * we're just going to fake the topology for now, we'll pretend that * everything is just a target on a single bus. */ if ((error = xpt_bus_register(sassc->sim, sc->mps_dev, 0)) != 0) { mps_dprint(sc, MPS_INIT|MPS_ERROR, "Error %d registering SCSI bus\n", error); mps_unlock(sc); goto out; } /* * Assume that discovery events will start right away. * * Hold off boot until discovery is complete. */ sassc->flags |= MPSSAS_IN_STARTUP | MPSSAS_IN_DISCOVERY; sc->sassc->startup_refcount = 0; mpssas_startup_increment(sassc); callout_init(&sassc->discovery_callout, 1 /*mpsafe*/); /* * Register for async events so we can determine the EEDP * capabilities of devices. */ status = xpt_create_path(&sassc->path, /*periph*/NULL, cam_sim_path(sc->sassc->sim), CAM_TARGET_WILDCARD, CAM_LUN_WILDCARD); if (status != CAM_REQ_CMP) { mps_dprint(sc, MPS_ERROR|MPS_INIT, "Error %#x creating sim path\n", status); sassc->path = NULL; } else { int event; #if (__FreeBSD_version >= 1000006) || \ ((__FreeBSD_version >= 901503) && (__FreeBSD_version < 1000000)) event = AC_ADVINFO_CHANGED; #else event = AC_FOUND_DEVICE; #endif status = xpt_register_async(event, mpssas_async, sc, sassc->path); if (status != CAM_REQ_CMP) { mps_dprint(sc, MPS_ERROR, "Error %#x registering async handler for " "AC_ADVINFO_CHANGED events\n", status); xpt_free_path(sassc->path); sassc->path = NULL; } } if (status != CAM_REQ_CMP) { /* * EEDP use is the exception, not the rule. * Warn the user, but do not fail to attach. */ mps_printf(sc, "EEDP capabilities disabled.\n"); } mps_unlock(sc); mpssas_register_events(sc); out: if (error) mps_detach_sas(sc); mps_dprint(sc, MPS_INIT, "%s exit error= %d\n", __func__, error); return (error); } int mps_detach_sas(struct mps_softc *sc) { struct mpssas_softc *sassc; struct mpssas_lun *lun, *lun_tmp; struct mpssas_target *targ; int i; MPS_FUNCTRACE(sc); if (sc->sassc == NULL) return (0); sassc = sc->sassc; mps_deregister_events(sc, sassc->mpssas_eh); /* * Drain and free the event handling taskqueue with the lock * unheld so that any parallel processing tasks drain properly * without deadlocking. */ if (sassc->ev_tq != NULL) taskqueue_free(sassc->ev_tq); /* Make sure CAM doesn't wedge if we had to bail out early. */ mps_lock(sc); while (sassc->startup_refcount != 0) mpssas_startup_decrement(sassc); /* Deregister our async handler */ if (sassc->path != NULL) { xpt_register_async(0, mpssas_async, sc, sassc->path); xpt_free_path(sassc->path); sassc->path = NULL; } if (sassc->flags & MPSSAS_IN_STARTUP) xpt_release_simq(sassc->sim, 1); if (sassc->sim != NULL) { xpt_bus_deregister(cam_sim_path(sassc->sim)); cam_sim_free(sassc->sim, FALSE); } mps_unlock(sc); if (sassc->devq != NULL) cam_simq_free(sassc->devq); for(i=0; i< sassc->maxtargets ;i++) { targ = &sassc->targets[i]; SLIST_FOREACH_SAFE(lun, &targ->luns, lun_link, lun_tmp) { free(lun, M_MPT2); } } free(sassc->targets, M_MPT2); free(sassc, M_MPT2); sc->sassc = NULL; return (0); } void mpssas_discovery_end(struct mpssas_softc *sassc) { struct mps_softc *sc = sassc->sc; MPS_FUNCTRACE(sc); if (sassc->flags & MPSSAS_DISCOVERY_TIMEOUT_PENDING) callout_stop(&sassc->discovery_callout); /* * After discovery has completed, check the mapping table for any * missing devices and update their missing counts. Only do this once * whenever the driver is initialized so that missing counts aren't * updated unnecessarily. Note that just because discovery has * completed doesn't mean that events have been processed yet. The * check_devices function is a callout timer that checks if ALL devices * are missing. If so, it will wait a little longer for events to * complete and keep resetting itself until some device in the mapping * table is not missing, meaning that event processing has started. */ if (sc->track_mapping_events) { mps_dprint(sc, MPS_XINFO | MPS_MAPPING, "Discovery has " "completed. Check for missing devices in the mapping " "table.\n"); callout_reset(&sc->device_check_callout, MPS_MISSING_CHECK_DELAY * hz, mps_mapping_check_devices, sc); } } static void mpssas_action(struct cam_sim *sim, union ccb *ccb) { struct mpssas_softc *sassc; sassc = cam_sim_softc(sim); MPS_FUNCTRACE(sassc->sc); mps_dprint(sassc->sc, MPS_TRACE, "ccb func_code 0x%x\n", ccb->ccb_h.func_code); mtx_assert(&sassc->sc->mps_mtx, MA_OWNED); switch (ccb->ccb_h.func_code) { case XPT_PATH_INQ: { struct ccb_pathinq *cpi = &ccb->cpi; struct mps_softc *sc = sassc->sc; cpi->version_num = 1; cpi->hba_inquiry = PI_SDTR_ABLE|PI_TAG_ABLE|PI_WIDE_16; cpi->target_sprt = 0; #if __FreeBSD_version >= 1000039 cpi->hba_misc = PIM_NOBUSRESET | PIM_UNMAPPED | PIM_NOSCAN; #else cpi->hba_misc = PIM_NOBUSRESET | PIM_UNMAPPED; #endif cpi->hba_eng_cnt = 0; cpi->max_target = sassc->maxtargets - 1; cpi->max_lun = 255; /* * initiator_id is set here to an ID outside the set of valid * target IDs (including volumes). */ cpi->initiator_id = sassc->maxtargets; strlcpy(cpi->sim_vid, "FreeBSD", SIM_IDLEN); strlcpy(cpi->hba_vid, "Avago Tech", HBA_IDLEN); strlcpy(cpi->dev_name, cam_sim_name(sim), DEV_IDLEN); cpi->unit_number = cam_sim_unit(sim); cpi->bus_id = cam_sim_bus(sim); cpi->base_transfer_speed = 150000; cpi->transport = XPORT_SAS; cpi->transport_version = 0; cpi->protocol = PROTO_SCSI; cpi->protocol_version = SCSI_REV_SPC; cpi->maxio = sc->maxio; mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); break; } case XPT_GET_TRAN_SETTINGS: { struct ccb_trans_settings *cts; struct ccb_trans_settings_sas *sas; struct ccb_trans_settings_scsi *scsi; struct mpssas_target *targ; cts = &ccb->cts; sas = &cts->xport_specific.sas; scsi = &cts->proto_specific.scsi; KASSERT(cts->ccb_h.target_id < sassc->maxtargets, ("Target %d out of bounds in XPT_GET_TRANS_SETTINGS\n", cts->ccb_h.target_id)); targ = &sassc->targets[cts->ccb_h.target_id]; if (targ->handle == 0x0) { mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); break; } cts->protocol_version = SCSI_REV_SPC2; cts->transport = XPORT_SAS; cts->transport_version = 0; sas->valid = CTS_SAS_VALID_SPEED; switch (targ->linkrate) { case 0x08: sas->bitrate = 150000; break; case 0x09: sas->bitrate = 300000; break; case 0x0a: sas->bitrate = 600000; break; default: sas->valid = 0; } cts->protocol = PROTO_SCSI; scsi->valid = CTS_SCSI_VALID_TQ; scsi->flags = CTS_SCSI_FLAGS_TAG_ENB; mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); break; } case XPT_CALC_GEOMETRY: cam_calc_geometry(&ccb->ccg, /*extended*/1); mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); break; case XPT_RESET_DEV: mps_dprint(sassc->sc, MPS_XINFO, "mpssas_action XPT_RESET_DEV\n"); mpssas_action_resetdev(sassc, ccb); return; case XPT_RESET_BUS: case XPT_ABORT: case XPT_TERM_IO: mps_dprint(sassc->sc, MPS_XINFO, "mpssas_action faking success for abort or reset\n"); mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); break; case XPT_SCSI_IO: mpssas_action_scsiio(sassc, ccb); return; #if __FreeBSD_version >= 900026 case XPT_SMP_IO: mpssas_action_smpio(sassc, ccb); return; #endif default: mpssas_set_ccbstatus(ccb, CAM_FUNC_NOTAVAIL); break; } xpt_done(ccb); } static void mpssas_announce_reset(struct mps_softc *sc, uint32_t ac_code, target_id_t target_id, lun_id_t lun_id) { path_id_t path_id = cam_sim_path(sc->sassc->sim); struct cam_path *path; mps_dprint(sc, MPS_XINFO, "%s code %x target %d lun %jx\n", __func__, ac_code, target_id, (uintmax_t)lun_id); if (xpt_create_path(&path, NULL, path_id, target_id, lun_id) != CAM_REQ_CMP) { mps_dprint(sc, MPS_ERROR, "unable to create path for reset " "notification\n"); return; } xpt_async(ac_code, path, NULL); xpt_free_path(path); } static void mpssas_complete_all_commands(struct mps_softc *sc) { struct mps_command *cm; int i; int completed; MPS_FUNCTRACE(sc); mtx_assert(&sc->mps_mtx, MA_OWNED); /* complete all commands with a NULL reply */ for (i = 1; i < sc->num_reqs; i++) { cm = &sc->commands[i]; if (cm->cm_state == MPS_CM_STATE_FREE) continue; cm->cm_state = MPS_CM_STATE_BUSY; cm->cm_reply = NULL; completed = 0; if (cm->cm_flags & MPS_CM_FLAGS_SATA_ID_TIMEOUT) { MPASS(cm->cm_data); free(cm->cm_data, M_MPT2); cm->cm_data = NULL; } if (cm->cm_flags & MPS_CM_FLAGS_POLLED) cm->cm_flags |= MPS_CM_FLAGS_COMPLETE; if (cm->cm_complete != NULL) { mpssas_log_command(cm, MPS_RECOVERY, "completing cm %p state %x ccb %p for diag reset\n", cm, cm->cm_state, cm->cm_ccb); cm->cm_complete(sc, cm); completed = 1; } else if (cm->cm_flags & MPS_CM_FLAGS_WAKEUP) { mpssas_log_command(cm, MPS_RECOVERY, "waking up cm %p state %x ccb %p for diag reset\n", cm, cm->cm_state, cm->cm_ccb); wakeup(cm); completed = 1; } if ((completed == 0) && (cm->cm_state != MPS_CM_STATE_FREE)) { /* this should never happen, but if it does, log */ mpssas_log_command(cm, MPS_RECOVERY, "cm %p state %x flags 0x%x ccb %p during diag " "reset\n", cm, cm->cm_state, cm->cm_flags, cm->cm_ccb); } } sc->io_cmds_active = 0; } void mpssas_handle_reinit(struct mps_softc *sc) { int i; /* Go back into startup mode and freeze the simq, so that CAM * doesn't send any commands until after we've rediscovered all * targets and found the proper device handles for them. * * After the reset, portenable will trigger discovery, and after all * discovery-related activities have finished, the simq will be * released. */ mps_dprint(sc, MPS_INIT, "%s startup\n", __func__); sc->sassc->flags |= MPSSAS_IN_STARTUP; sc->sassc->flags |= MPSSAS_IN_DISCOVERY; mpssas_startup_increment(sc->sassc); /* notify CAM of a bus reset */ mpssas_announce_reset(sc, AC_BUS_RESET, CAM_TARGET_WILDCARD, CAM_LUN_WILDCARD); /* complete and cleanup after all outstanding commands */ mpssas_complete_all_commands(sc); mps_dprint(sc, MPS_INIT, "%s startup %u after command completion\n", __func__, sc->sassc->startup_refcount); /* zero all the target handles, since they may change after the * reset, and we have to rediscover all the targets and use the new * handles. */ for (i = 0; i < sc->sassc->maxtargets; i++) { if (sc->sassc->targets[i].outstanding != 0) mps_dprint(sc, MPS_INIT, "target %u outstanding %u\n", i, sc->sassc->targets[i].outstanding); sc->sassc->targets[i].handle = 0x0; sc->sassc->targets[i].exp_dev_handle = 0x0; sc->sassc->targets[i].outstanding = 0; sc->sassc->targets[i].flags = MPSSAS_TARGET_INDIAGRESET; } } static void mpssas_tm_timeout(void *data) { struct mps_command *tm = data; struct mps_softc *sc = tm->cm_sc; mtx_assert(&sc->mps_mtx, MA_OWNED); mpssas_log_command(tm, MPS_INFO|MPS_RECOVERY, "task mgmt %p timed out\n", tm); KASSERT(tm->cm_state == MPS_CM_STATE_INQUEUE, ("command not inqueue\n")); tm->cm_state = MPS_CM_STATE_BUSY; mps_reinit(sc); } static void mpssas_logical_unit_reset_complete(struct mps_softc *sc, struct mps_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *reply; MPI2_SCSI_TASK_MANAGE_REQUEST *req; unsigned int cm_count = 0; struct mps_command *cm; struct mpssas_target *targ; callout_stop(&tm->cm_callout); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; targ = tm->cm_targ; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. * XXXSL So should it be an assertion? */ if ((tm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { mps_dprint(sc, MPS_RECOVERY|MPS_ERROR, "%s: cm_flags = %#x for LUN reset! " "This should not happen!\n", __func__, tm->cm_flags); mpssas_free_tm(sc, tm); return; } if (reply == NULL) { mps_dprint(sc, MPS_RECOVERY, "NULL reset reply for tm %p\n", tm); if ((sc->mps_flags & MPS_FLAGS_DIAGRESET) != 0) { /* this completion was due to a reset, just cleanup */ mps_dprint(sc, MPS_RECOVERY, "Hardware undergoing " "reset, ignoring NULL LUN reset reply\n"); targ->tm = NULL; mpssas_free_tm(sc, tm); } else { /* we should have gotten a reply. */ mps_dprint(sc, MPS_INFO|MPS_RECOVERY, "NULL reply on " "LUN reset attempt, resetting controller\n"); mps_reinit(sc); } return; } mps_dprint(sc, MPS_RECOVERY, "logical unit reset status 0x%x code 0x%x count %u\n", le16toh(reply->IOCStatus), le32toh(reply->ResponseCode), le32toh(reply->TerminationCount)); /* * See if there are any outstanding commands for this LUN. * This could be made more efficient by using a per-LU data * structure of some sort. */ TAILQ_FOREACH(cm, &targ->commands, cm_link) { if (cm->cm_lun == tm->cm_lun) cm_count++; } if (cm_count == 0) { mps_dprint(sc, MPS_RECOVERY|MPS_INFO, "Finished recovery after LUN reset for target %u\n", targ->tid); mpssas_announce_reset(sc, AC_SENT_BDR, targ->tid, tm->cm_lun); /* * We've finished recovery for this logical unit. check and * see if some other logical unit has a timedout command * that needs to be processed. */ cm = TAILQ_FIRST(&targ->timedout_commands); if (cm) { mps_dprint(sc, MPS_INFO|MPS_RECOVERY, "More commands to abort for target %u\n", targ->tid); mpssas_send_abort(sc, tm, cm); } else { targ->tm = NULL; mpssas_free_tm(sc, tm); } } else { /* * If we still have commands for this LUN, the reset * effectively failed, regardless of the status reported. * Escalate to a target reset. */ mps_dprint(sc, MPS_INFO|MPS_RECOVERY, "logical unit reset complete for target %u, but still " "have %u command(s), sending target reset\n", targ->tid, cm_count); mpssas_send_reset(sc, tm, MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET); } } static void mpssas_target_reset_complete(struct mps_softc *sc, struct mps_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *reply; MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mpssas_target *targ; callout_stop(&tm->cm_callout); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; targ = tm->cm_targ; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { mps_dprint(sc, MPS_ERROR,"%s: cm_flags = %#x for target reset! " "This should not happen!\n", __func__, tm->cm_flags); mpssas_free_tm(sc, tm); return; } if (reply == NULL) { mps_dprint(sc, MPS_RECOVERY, "NULL target reset reply for tm %pi TaskMID %u\n", tm, le16toh(req->TaskMID)); if ((sc->mps_flags & MPS_FLAGS_DIAGRESET) != 0) { /* this completion was due to a reset, just cleanup */ mps_dprint(sc, MPS_RECOVERY, "Hardware undergoing " "reset, ignoring NULL target reset reply\n"); targ->tm = NULL; mpssas_free_tm(sc, tm); } else { /* we should have gotten a reply. */ mps_dprint(sc, MPS_INFO|MPS_RECOVERY, "NULL reply on " "target reset attempt, resetting controller\n"); mps_reinit(sc); } return; } mps_dprint(sc, MPS_RECOVERY, "target reset status 0x%x code 0x%x count %u\n", le16toh(reply->IOCStatus), le32toh(reply->ResponseCode), le32toh(reply->TerminationCount)); if (targ->outstanding == 0) { /* we've finished recovery for this target and all * of its logical units. */ mps_dprint(sc, MPS_RECOVERY|MPS_INFO, "Finished reset recovery for target %u\n", targ->tid); mpssas_announce_reset(sc, AC_SENT_BDR, tm->cm_targ->tid, CAM_LUN_WILDCARD); targ->tm = NULL; mpssas_free_tm(sc, tm); } else { /* * After a target reset, if this target still has * outstanding commands, the reset effectively failed, * regardless of the status reported. escalate. */ mps_dprint(sc, MPS_INFO|MPS_RECOVERY, "Target reset complete for target %u, but still have %u " "command(s), resetting controller\n", targ->tid, targ->outstanding); mps_reinit(sc); } } #define MPS_RESET_TIMEOUT 30 int mpssas_send_reset(struct mps_softc *sc, struct mps_command *tm, uint8_t type) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mpssas_target *target; int err; target = tm->cm_targ; if (target->handle == 0) { mps_dprint(sc, MPS_ERROR,"%s null devhandle for target_id %d\n", __func__, target->tid); return -1; } req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; req->DevHandle = htole16(target->handle); req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = type; if (type == MPI2_SCSITASKMGMT_TASKTYPE_LOGICAL_UNIT_RESET) { /* XXX Need to handle invalid LUNs */ MPS_SET_LUN(req->LUN, tm->cm_lun); tm->cm_targ->logical_unit_resets++; mps_dprint(sc, MPS_RECOVERY|MPS_INFO, "Sending logical unit reset to target %u lun %d\n", target->tid, tm->cm_lun); tm->cm_complete = mpssas_logical_unit_reset_complete; mpssas_prepare_for_tm(sc, tm, target, tm->cm_lun); } else if (type == MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET) { /* * Target reset method = * SAS Hard Link Reset / SATA Link Reset */ req->MsgFlags = MPI2_SCSITASKMGMT_MSGFLAGS_LINK_RESET; tm->cm_targ->target_resets++; mps_dprint(sc, MPS_RECOVERY|MPS_INFO, "Sending target reset to target %u\n", target->tid); tm->cm_complete = mpssas_target_reset_complete; mpssas_prepare_for_tm(sc, tm, target, CAM_LUN_WILDCARD); } else { mps_dprint(sc, MPS_ERROR, "unexpected reset type 0x%x\n", type); return -1; } tm->cm_data = NULL; - tm->cm_desc.HighPriority.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; tm->cm_complete_data = (void *)tm; callout_reset(&tm->cm_callout, MPS_RESET_TIMEOUT * hz, mpssas_tm_timeout, tm); err = mps_map_command(sc, tm); if (err) mps_dprint(sc, MPS_ERROR|MPS_RECOVERY, "error %d sending reset type %u\n", err, type); return err; } static void mpssas_abort_complete(struct mps_softc *sc, struct mps_command *tm) { struct mps_command *cm; MPI2_SCSI_TASK_MANAGE_REPLY *reply; MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mpssas_target *targ; callout_stop(&tm->cm_callout); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; reply = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; targ = tm->cm_targ; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { mps_dprint(sc, MPS_RECOVERY, "cm_flags = %#x for abort %p TaskMID %u!\n", tm->cm_flags, tm, le16toh(req->TaskMID)); mpssas_free_tm(sc, tm); return; } if (reply == NULL) { mps_dprint(sc, MPS_RECOVERY, "NULL abort reply for tm %p TaskMID %u\n", tm, le16toh(req->TaskMID)); if ((sc->mps_flags & MPS_FLAGS_DIAGRESET) != 0) { /* this completion was due to a reset, just cleanup */ mps_dprint(sc, MPS_RECOVERY, "Hardware undergoing " "reset, ignoring NULL abort reply\n"); targ->tm = NULL; mpssas_free_tm(sc, tm); } else { /* we should have gotten a reply. */ mps_dprint(sc, MPS_INFO|MPS_RECOVERY, "NULL reply on " "abort attempt, resetting controller\n"); mps_reinit(sc); } return; } mps_dprint(sc, MPS_RECOVERY, "abort TaskMID %u status 0x%x code 0x%x count %u\n", le16toh(req->TaskMID), le16toh(reply->IOCStatus), le32toh(reply->ResponseCode), le32toh(reply->TerminationCount)); cm = TAILQ_FIRST(&tm->cm_targ->timedout_commands); if (cm == NULL) { /* * If there are no more timedout commands, we're done with * error recovery for this target. */ mps_dprint(sc, MPS_INFO|MPS_RECOVERY, "Finished abort recovery for target %u\n", targ->tid); targ->tm = NULL; mpssas_free_tm(sc, tm); } else if (le16toh(req->TaskMID) != cm->cm_desc.Default.SMID) { /* abort success, but we have more timedout commands to abort */ mps_dprint(sc, MPS_INFO|MPS_RECOVERY, "Continuing abort recovery for target %u\n", targ->tid); mpssas_send_abort(sc, tm, cm); } else { /* we didn't get a command completion, so the abort * failed as far as we're concerned. escalate. */ mps_dprint(sc, MPS_RECOVERY, "Abort failed for target %u, sending logical unit reset\n", targ->tid); mpssas_send_reset(sc, tm, MPI2_SCSITASKMGMT_TASKTYPE_LOGICAL_UNIT_RESET); } } #define MPS_ABORT_TIMEOUT 5 static int mpssas_send_abort(struct mps_softc *sc, struct mps_command *tm, struct mps_command *cm) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mpssas_target *targ; int err; targ = cm->cm_targ; if (targ->handle == 0) { mps_dprint(sc, MPS_ERROR|MPS_RECOVERY, "%s null devhandle for target_id %d\n", __func__, cm->cm_ccb->ccb_h.target_id); return -1; } mpssas_log_command(cm, MPS_RECOVERY|MPS_INFO, "Aborting command %p\n", cm); req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_ABORT_TASK; /* XXX Need to handle invalid LUNs */ MPS_SET_LUN(req->LUN, cm->cm_ccb->ccb_h.target_lun); req->TaskMID = htole16(cm->cm_desc.Default.SMID); tm->cm_data = NULL; - tm->cm_desc.HighPriority.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; tm->cm_complete = mpssas_abort_complete; tm->cm_complete_data = (void *)tm; tm->cm_targ = cm->cm_targ; tm->cm_lun = cm->cm_lun; callout_reset(&tm->cm_callout, MPS_ABORT_TIMEOUT * hz, mpssas_tm_timeout, tm); targ->aborts++; mpssas_prepare_for_tm(sc, tm, targ, tm->cm_lun); err = mps_map_command(sc, tm); if (err) mps_dprint(sc, MPS_ERROR|MPS_RECOVERY, "error %d sending abort for cm %p SMID %u\n", err, cm, req->TaskMID); return err; } static void mpssas_scsiio_timeout(void *data) { sbintime_t elapsed, now; union ccb *ccb; struct mps_softc *sc; struct mps_command *cm; struct mpssas_target *targ; cm = (struct mps_command *)data; sc = cm->cm_sc; ccb = cm->cm_ccb; now = sbinuptime(); MPS_FUNCTRACE(sc); mtx_assert(&sc->mps_mtx, MA_OWNED); mps_dprint(sc, MPS_XINFO|MPS_RECOVERY, "Timeout checking cm %p\n", sc); /* * Run the interrupt handler to make sure it's not pending. This * isn't perfect because the command could have already completed * and been re-used, though this is unlikely. */ mps_intr_locked(sc); if (cm->cm_state != MPS_CM_STATE_INQUEUE) { mpssas_log_command(cm, MPS_XINFO, "SCSI command %p almost timed out\n", cm); return; } if (cm->cm_ccb == NULL) { mps_dprint(sc, MPS_ERROR, "command timeout with NULL ccb\n"); return; } targ = cm->cm_targ; targ->timeouts++; elapsed = now - ccb->ccb_h.qos.sim_data; mpssas_log_command(cm, MPS_INFO|MPS_RECOVERY, "Command timeout on target %u(0x%04x) %d set, %d.%d elapsed\n", targ->tid, targ->handle, ccb->ccb_h.timeout, sbintime_getsec(elapsed), elapsed & 0xffffffff); /* XXX first, check the firmware state, to see if it's still * operational. if not, do a diag reset. */ mpssas_set_ccbstatus(cm->cm_ccb, CAM_CMD_TIMEOUT); cm->cm_state = MPS_CM_STATE_TIMEDOUT; TAILQ_INSERT_TAIL(&targ->timedout_commands, cm, cm_recovery); if (targ->tm != NULL) { /* target already in recovery, just queue up another * timedout command to be processed later. */ mps_dprint(sc, MPS_RECOVERY, "queued timedout cm %p for processing by tm %p\n", cm, targ->tm); } else if ((targ->tm = mpssas_alloc_tm(sc)) != NULL) { mps_dprint(sc, MPS_RECOVERY|MPS_INFO, "Sending abort to target %u for SMID %d\n", targ->tid, cm->cm_desc.Default.SMID); mps_dprint(sc, MPS_RECOVERY, "timedout cm %p allocated tm %p\n", cm, targ->tm); /* start recovery by aborting the first timedout command */ mpssas_send_abort(sc, targ->tm, cm); } else { /* XXX queue this target up for recovery once a TM becomes * available. The firmware only has a limited number of * HighPriority credits for the high priority requests used * for task management, and we ran out. * * Isilon: don't worry about this for now, since we have * more credits than disks in an enclosure, and limit * ourselves to one TM per target for recovery. */ mps_dprint(sc, MPS_ERROR|MPS_RECOVERY, "timedout cm %p failed to allocate a tm\n", cm); } } static void mpssas_action_scsiio(struct mpssas_softc *sassc, union ccb *ccb) { MPI2_SCSI_IO_REQUEST *req; struct ccb_scsiio *csio; struct mps_softc *sc; struct mpssas_target *targ; struct mpssas_lun *lun; struct mps_command *cm; uint8_t i, lba_byte, *ref_tag_addr; uint16_t eedp_flags; uint32_t mpi_control; sc = sassc->sc; MPS_FUNCTRACE(sc); mtx_assert(&sc->mps_mtx, MA_OWNED); csio = &ccb->csio; KASSERT(csio->ccb_h.target_id < sassc->maxtargets, ("Target %d out of bounds in XPT_SCSI_IO\n", csio->ccb_h.target_id)); targ = &sassc->targets[csio->ccb_h.target_id]; mps_dprint(sc, MPS_TRACE, "ccb %p target flag %x\n", ccb, targ->flags); if (targ->handle == 0x0) { mps_dprint(sc, MPS_ERROR, "%s NULL handle for target %u\n", __func__, csio->ccb_h.target_id); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); xpt_done(ccb); return; } if (targ->flags & MPS_TARGET_FLAGS_RAID_COMPONENT) { mps_dprint(sc, MPS_ERROR, "%s Raid component no SCSI IO " "supported %u\n", __func__, csio->ccb_h.target_id); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); xpt_done(ccb); return; } /* * Sometimes, it is possible to get a command that is not "In * Progress" and was actually aborted by the upper layer. Check for * this here and complete the command without error. */ if (mpssas_get_ccbstatus(ccb) != CAM_REQ_INPROG) { mps_dprint(sc, MPS_TRACE, "%s Command is not in progress for " "target %u\n", __func__, csio->ccb_h.target_id); xpt_done(ccb); return; } /* * If devinfo is 0 this will be a volume. In that case don't tell CAM * that the volume has timed out. We want volumes to be enumerated * until they are deleted/removed, not just failed. */ if (targ->flags & MPSSAS_TARGET_INREMOVAL) { if (targ->devinfo == 0) mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); else mpssas_set_ccbstatus(ccb, CAM_SEL_TIMEOUT); xpt_done(ccb); return; } if ((sc->mps_flags & MPS_FLAGS_SHUTDOWN) != 0) { mps_dprint(sc, MPS_INFO, "%s shutting down\n", __func__); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); xpt_done(ccb); return; } /* * If target has a reset in progress, freeze the devq and return. The * devq will be released when the TM reset is finished. */ if (targ->flags & MPSSAS_TARGET_INRESET) { ccb->ccb_h.status = CAM_BUSY | CAM_DEV_QFRZN; mps_dprint(sc, MPS_INFO, "%s: Freezing devq for target ID %d\n", __func__, targ->tid); xpt_freeze_devq(ccb->ccb_h.path, 1); xpt_done(ccb); return; } cm = mps_alloc_command(sc); if (cm == NULL || (sc->mps_flags & MPS_FLAGS_DIAGRESET)) { if (cm != NULL) { mps_free_command(sc, cm); } if ((sassc->flags & MPSSAS_QUEUE_FROZEN) == 0) { xpt_freeze_simq(sassc->sim, 1); sassc->flags |= MPSSAS_QUEUE_FROZEN; } ccb->ccb_h.status &= ~CAM_SIM_QUEUED; ccb->ccb_h.status |= CAM_REQUEUE_REQ; xpt_done(ccb); return; } req = (MPI2_SCSI_IO_REQUEST *)cm->cm_req; bzero(req, sizeof(*req)); req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_SCSI_IO_REQUEST; req->MsgFlags = 0; req->SenseBufferLowAddress = htole32(cm->cm_sense_busaddr); req->SenseBufferLength = MPS_SENSE_LEN; req->SGLFlags = 0; req->ChainOffset = 0; req->SGLOffset0 = 24; /* 32bit word offset to the SGL */ req->SGLOffset1= 0; req->SGLOffset2= 0; req->SGLOffset3= 0; req->SkipCount = 0; req->DataLength = htole32(csio->dxfer_len); req->BidirectionalDataLength = 0; req->IoFlags = htole16(csio->cdb_len); req->EEDPFlags = 0; /* Note: BiDirectional transfers are not supported */ switch (csio->ccb_h.flags & CAM_DIR_MASK) { case CAM_DIR_IN: mpi_control = MPI2_SCSIIO_CONTROL_READ; cm->cm_flags |= MPS_CM_FLAGS_DATAIN; break; case CAM_DIR_OUT: mpi_control = MPI2_SCSIIO_CONTROL_WRITE; cm->cm_flags |= MPS_CM_FLAGS_DATAOUT; break; case CAM_DIR_NONE: default: mpi_control = MPI2_SCSIIO_CONTROL_NODATATRANSFER; break; } if (csio->cdb_len == 32) mpi_control |= 4 << MPI2_SCSIIO_CONTROL_ADDCDBLEN_SHIFT; /* * It looks like the hardware doesn't require an explicit tag * number for each transaction. SAM Task Management not supported * at the moment. */ switch (csio->tag_action) { case MSG_HEAD_OF_Q_TAG: mpi_control |= MPI2_SCSIIO_CONTROL_HEADOFQ; break; case MSG_ORDERED_Q_TAG: mpi_control |= MPI2_SCSIIO_CONTROL_ORDEREDQ; break; case MSG_ACA_TASK: mpi_control |= MPI2_SCSIIO_CONTROL_ACAQ; break; case CAM_TAG_ACTION_NONE: case MSG_SIMPLE_Q_TAG: default: mpi_control |= MPI2_SCSIIO_CONTROL_SIMPLEQ; break; } mpi_control |= sc->mapping_table[csio->ccb_h.target_id].TLR_bits; req->Control = htole32(mpi_control); if (MPS_SET_LUN(req->LUN, csio->ccb_h.target_lun) != 0) { mps_free_command(sc, cm); mpssas_set_ccbstatus(ccb, CAM_LUN_INVALID); xpt_done(ccb); return; } if (csio->ccb_h.flags & CAM_CDB_POINTER) bcopy(csio->cdb_io.cdb_ptr, &req->CDB.CDB32[0], csio->cdb_len); else bcopy(csio->cdb_io.cdb_bytes, &req->CDB.CDB32[0],csio->cdb_len); req->IoFlags = htole16(csio->cdb_len); /* * Check if EEDP is supported and enabled. If it is then check if the * SCSI opcode could be using EEDP. If so, make sure the LUN exists and * is formatted for EEDP support. If all of this is true, set CDB up * for EEDP transfer. */ eedp_flags = op_code_prot[req->CDB.CDB32[0]]; if (sc->eedp_enabled && eedp_flags) { SLIST_FOREACH(lun, &targ->luns, lun_link) { if (lun->lun_id == csio->ccb_h.target_lun) { break; } } if ((lun != NULL) && (lun->eedp_formatted)) { req->EEDPBlockSize = htole16(lun->eedp_block_size); eedp_flags |= (MPI2_SCSIIO_EEDPFLAGS_INC_PRI_REFTAG | MPI2_SCSIIO_EEDPFLAGS_CHECK_REFTAG | MPI2_SCSIIO_EEDPFLAGS_CHECK_GUARD); req->EEDPFlags = htole16(eedp_flags); /* * If CDB less than 32, fill in Primary Ref Tag with * low 4 bytes of LBA. If CDB is 32, tag stuff is * already there. Also, set protection bit. FreeBSD * currently does not support CDBs bigger than 16, but * the code doesn't hurt, and will be here for the * future. */ if (csio->cdb_len != 32) { lba_byte = (csio->cdb_len == 16) ? 6 : 2; ref_tag_addr = (uint8_t *)&req->CDB.EEDP32. PrimaryReferenceTag; for (i = 0; i < 4; i++) { *ref_tag_addr = req->CDB.CDB32[lba_byte + i]; ref_tag_addr++; } req->CDB.EEDP32.PrimaryReferenceTag = htole32(req->CDB.EEDP32.PrimaryReferenceTag); req->CDB.EEDP32.PrimaryApplicationTagMask = 0xFFFF; req->CDB.CDB32[1] = (req->CDB.CDB32[1] & 0x1F) | 0x20; } else { eedp_flags |= MPI2_SCSIIO_EEDPFLAGS_INC_PRI_APPTAG; req->EEDPFlags = htole16(eedp_flags); req->CDB.CDB32[10] = (req->CDB.CDB32[10] & 0x1F) | 0x20; } } } cm->cm_length = csio->dxfer_len; if (cm->cm_length != 0) { cm->cm_data = ccb; cm->cm_flags |= MPS_CM_FLAGS_USE_CCB; } else { cm->cm_data = NULL; } cm->cm_sge = &req->SGL; cm->cm_sglsize = (32 - 24) * 4; cm->cm_desc.SCSIIO.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_SCSI_IO; cm->cm_desc.SCSIIO.DevHandle = htole16(targ->handle); cm->cm_complete = mpssas_scsiio_complete; cm->cm_complete_data = ccb; cm->cm_targ = targ; cm->cm_lun = csio->ccb_h.target_lun; cm->cm_ccb = ccb; /* * If HBA is a WD and the command is not for a retry, try to build a * direct I/O message. If failed, or the command is for a retry, send * the I/O to the IR volume itself. */ if (sc->WD_valid_config) { if (ccb->ccb_h.sim_priv.entries[0].field == MPS_WD_RETRY) { mpssas_direct_drive_io(sassc, cm, ccb); } else { mpssas_set_ccbstatus(ccb, CAM_REQ_INPROG); } } #if defined(BUF_TRACKING) || defined(FULL_BUF_TRACKING) if (csio->bio != NULL) biotrack(csio->bio, __func__); #endif csio->ccb_h.qos.sim_data = sbinuptime(); callout_reset_sbt(&cm->cm_callout, SBT_1MS * ccb->ccb_h.timeout, 0, mpssas_scsiio_timeout, cm, 0); targ->issued++; targ->outstanding++; TAILQ_INSERT_TAIL(&targ->commands, cm, cm_link); ccb->ccb_h.status |= CAM_SIM_QUEUED; mpssas_log_command(cm, MPS_XINFO, "%s cm %p ccb %p outstanding %u\n", __func__, cm, ccb, targ->outstanding); mps_map_command(sc, cm); return; } /** * mps_sc_failed_io_info - translated non-succesfull SCSI_IO request */ static void mps_sc_failed_io_info(struct mps_softc *sc, struct ccb_scsiio *csio, Mpi2SCSIIOReply_t *mpi_reply) { u32 response_info; u8 *response_bytes; u16 ioc_status = le16toh(mpi_reply->IOCStatus) & MPI2_IOCSTATUS_MASK; u8 scsi_state = mpi_reply->SCSIState; u8 scsi_status = mpi_reply->SCSIStatus; u32 log_info = le32toh(mpi_reply->IOCLogInfo); const char *desc_ioc_state, *desc_scsi_status; if (log_info == 0x31170000) return; desc_ioc_state = mps_describe_table(mps_iocstatus_string, ioc_status); desc_scsi_status = mps_describe_table(mps_scsi_status_string, scsi_status); mps_dprint(sc, MPS_XINFO, "\thandle(0x%04x), ioc_status(%s)(0x%04x)\n", le16toh(mpi_reply->DevHandle), desc_ioc_state, ioc_status); /* *We can add more detail about underflow data here * TO-DO */ mps_dprint(sc, MPS_XINFO, "\tscsi_status(%s)(0x%02x), " "scsi_state %b\n", desc_scsi_status, scsi_status, scsi_state, "\20" "\1AutosenseValid" "\2AutosenseFailed" "\3NoScsiStatus" "\4Terminated" "\5Response InfoValid"); if (sc->mps_debug & MPS_XINFO && scsi_state & MPI2_SCSI_STATE_AUTOSENSE_VALID) { mps_dprint(sc, MPS_XINFO, "-> Sense Buffer Data : Start :\n"); scsi_sense_print(csio); mps_dprint(sc, MPS_XINFO, "-> Sense Buffer Data : End :\n"); } if (scsi_state & MPI2_SCSI_STATE_RESPONSE_INFO_VALID) { response_info = le32toh(mpi_reply->ResponseInfo); response_bytes = (u8 *)&response_info; mps_dprint(sc, MPS_XINFO, "response code(0x%1x): %s\n", response_bytes[0], mps_describe_table(mps_scsi_taskmgmt_string, response_bytes[0])); } } static void mpssas_scsiio_complete(struct mps_softc *sc, struct mps_command *cm) { MPI2_SCSI_IO_REPLY *rep; union ccb *ccb; struct ccb_scsiio *csio; struct mpssas_softc *sassc; struct scsi_vpd_supported_page_list *vpd_list = NULL; u8 *TLR_bits, TLR_on; int dir = 0, i; u16 alloc_len; struct mpssas_target *target; target_id_t target_id; MPS_FUNCTRACE(sc); mps_dprint(sc, MPS_TRACE, "cm %p SMID %u ccb %p reply %p outstanding %u\n", cm, cm->cm_desc.Default.SMID, cm->cm_ccb, cm->cm_reply, cm->cm_targ->outstanding); callout_stop(&cm->cm_callout); mtx_assert(&sc->mps_mtx, MA_OWNED); sassc = sc->sassc; ccb = cm->cm_complete_data; csio = &ccb->csio; target_id = csio->ccb_h.target_id; rep = (MPI2_SCSI_IO_REPLY *)cm->cm_reply; /* * XXX KDM if the chain allocation fails, does it matter if we do * the sync and unload here? It is simpler to do it in every case, * assuming it doesn't cause problems. */ if (cm->cm_data != NULL) { if (cm->cm_flags & MPS_CM_FLAGS_DATAIN) dir = BUS_DMASYNC_POSTREAD; else if (cm->cm_flags & MPS_CM_FLAGS_DATAOUT) dir = BUS_DMASYNC_POSTWRITE; bus_dmamap_sync(sc->buffer_dmat, cm->cm_dmamap, dir); bus_dmamap_unload(sc->buffer_dmat, cm->cm_dmamap); } cm->cm_targ->completed++; cm->cm_targ->outstanding--; TAILQ_REMOVE(&cm->cm_targ->commands, cm, cm_link); ccb->ccb_h.status &= ~(CAM_STATUS_MASK | CAM_SIM_QUEUED); #if defined(BUF_TRACKING) || defined(FULL_BUF_TRACKING) if (ccb->csio.bio != NULL) biotrack(ccb->csio.bio, __func__); #endif if (cm->cm_state == MPS_CM_STATE_TIMEDOUT) { TAILQ_REMOVE(&cm->cm_targ->timedout_commands, cm, cm_recovery); cm->cm_state = MPS_CM_STATE_BUSY; if (cm->cm_reply != NULL) mpssas_log_command(cm, MPS_RECOVERY, "completed timedout cm %p ccb %p during recovery " "ioc %x scsi %x state %x xfer %u\n", cm, cm->cm_ccb, le16toh(rep->IOCStatus), rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); else mpssas_log_command(cm, MPS_RECOVERY, "completed timedout cm %p ccb %p during recovery\n", cm, cm->cm_ccb); } else if (cm->cm_targ->tm != NULL) { if (cm->cm_reply != NULL) mpssas_log_command(cm, MPS_RECOVERY, "completed cm %p ccb %p during recovery " "ioc %x scsi %x state %x xfer %u\n", cm, cm->cm_ccb, le16toh(rep->IOCStatus), rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); else mpssas_log_command(cm, MPS_RECOVERY, "completed cm %p ccb %p during recovery\n", cm, cm->cm_ccb); } else if ((sc->mps_flags & MPS_FLAGS_DIAGRESET) != 0) { mpssas_log_command(cm, MPS_RECOVERY, "reset completed cm %p ccb %p\n", cm, cm->cm_ccb); } if ((cm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { /* * We ran into an error after we tried to map the command, * so we're getting a callback without queueing the command * to the hardware. So we set the status here, and it will * be retained below. We'll go through the "fast path", * because there can be no reply when we haven't actually * gone out to the hardware. */ mpssas_set_ccbstatus(ccb, CAM_REQUEUE_REQ); /* * Currently the only error included in the mask is * MPS_CM_FLAGS_CHAIN_FAILED, which means we're out of * chain frames. We need to freeze the queue until we get * a command that completed without this error, which will * hopefully have some chain frames attached that we can * use. If we wanted to get smarter about it, we would * only unfreeze the queue in this condition when we're * sure that we're getting some chain frames back. That's * probably unnecessary. */ if ((sassc->flags & MPSSAS_QUEUE_FROZEN) == 0) { xpt_freeze_simq(sassc->sim, 1); sassc->flags |= MPSSAS_QUEUE_FROZEN; mps_dprint(sc, MPS_XINFO, "Error sending command, " "freezing SIM queue\n"); } } /* * If this is a Start Stop Unit command and it was issued by the driver * during shutdown, decrement the refcount to account for all of the * commands that were sent. All SSU commands should be completed before * shutdown completes, meaning SSU_refcount will be 0 after SSU_started * is TRUE. */ if (sc->SSU_started && (csio->cdb_io.cdb_bytes[0] == START_STOP_UNIT)) { mps_dprint(sc, MPS_INFO, "Decrementing SSU count.\n"); sc->SSU_refcount--; } /* Take the fast path to completion */ if (cm->cm_reply == NULL) { if (mpssas_get_ccbstatus(ccb) == CAM_REQ_INPROG) { if ((sc->mps_flags & MPS_FLAGS_DIAGRESET) != 0) mpssas_set_ccbstatus(ccb, CAM_SCSI_BUS_RESET); else { mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); ccb->csio.scsi_status = SCSI_STATUS_OK; } if (sassc->flags & MPSSAS_QUEUE_FROZEN) { ccb->ccb_h.status |= CAM_RELEASE_SIMQ; sassc->flags &= ~MPSSAS_QUEUE_FROZEN; mps_dprint(sc, MPS_XINFO, "Unfreezing SIM queue\n"); } } /* * There are two scenarios where the status won't be * CAM_REQ_CMP. The first is if MPS_CM_FLAGS_ERROR_MASK is * set, the second is in the MPS_FLAGS_DIAGRESET above. */ if (mpssas_get_ccbstatus(ccb) != CAM_REQ_CMP) { /* * Freeze the dev queue so that commands are * executed in the correct order after error * recovery. */ ccb->ccb_h.status |= CAM_DEV_QFRZN; xpt_freeze_devq(ccb->ccb_h.path, /*count*/ 1); } mps_free_command(sc, cm); xpt_done(ccb); return; } mpssas_log_command(cm, MPS_XINFO, "ioc %x scsi %x state %x xfer %u\n", le16toh(rep->IOCStatus), rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); /* * If this is a Direct Drive I/O, reissue the I/O to the original IR * Volume if an error occurred (normal I/O retry). Use the original * CCB, but set a flag that this will be a retry so that it's sent to * the original volume. Free the command but reuse the CCB. */ if (cm->cm_flags & MPS_CM_FLAGS_DD_IO) { mps_free_command(sc, cm); ccb->ccb_h.sim_priv.entries[0].field = MPS_WD_RETRY; mpssas_action_scsiio(sassc, ccb); return; } else ccb->ccb_h.sim_priv.entries[0].field = 0; switch (le16toh(rep->IOCStatus) & MPI2_IOCSTATUS_MASK) { case MPI2_IOCSTATUS_SCSI_DATA_UNDERRUN: csio->resid = cm->cm_length - le32toh(rep->TransferCount); /* FALLTHROUGH */ case MPI2_IOCSTATUS_SUCCESS: case MPI2_IOCSTATUS_SCSI_RECOVERED_ERROR: if ((le16toh(rep->IOCStatus) & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SCSI_RECOVERED_ERROR) mpssas_log_command(cm, MPS_XINFO, "recovered error\n"); /* Completion failed at the transport level. */ if (rep->SCSIState & (MPI2_SCSI_STATE_NO_SCSI_STATUS | MPI2_SCSI_STATE_TERMINATED)) { mpssas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); break; } /* In a modern packetized environment, an autosense failure * implies that there's not much else that can be done to * recover the command. */ if (rep->SCSIState & MPI2_SCSI_STATE_AUTOSENSE_FAILED) { mpssas_set_ccbstatus(ccb, CAM_AUTOSENSE_FAIL); break; } /* * CAM doesn't care about SAS Response Info data, but if this is * the state check if TLR should be done. If not, clear the * TLR_bits for the target. */ if ((rep->SCSIState & MPI2_SCSI_STATE_RESPONSE_INFO_VALID) && ((le32toh(rep->ResponseInfo) & MPI2_SCSI_RI_MASK_REASONCODE) == MPS_SCSI_RI_INVALID_FRAME)) { sc->mapping_table[target_id].TLR_bits = (u8)MPI2_SCSIIO_CONTROL_NO_TLR; } /* * Intentionally override the normal SCSI status reporting * for these two cases. These are likely to happen in a * multi-initiator environment, and we want to make sure that * CAM retries these commands rather than fail them. */ if ((rep->SCSIStatus == MPI2_SCSI_STATUS_COMMAND_TERMINATED) || (rep->SCSIStatus == MPI2_SCSI_STATUS_TASK_ABORTED)) { mpssas_set_ccbstatus(ccb, CAM_REQ_ABORTED); break; } /* Handle normal status and sense */ csio->scsi_status = rep->SCSIStatus; if (rep->SCSIStatus == MPI2_SCSI_STATUS_GOOD) mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); else mpssas_set_ccbstatus(ccb, CAM_SCSI_STATUS_ERROR); if (rep->SCSIState & MPI2_SCSI_STATE_AUTOSENSE_VALID) { int sense_len, returned_sense_len; returned_sense_len = min(le32toh(rep->SenseCount), sizeof(struct scsi_sense_data)); if (returned_sense_len < ccb->csio.sense_len) ccb->csio.sense_resid = ccb->csio.sense_len - returned_sense_len; else ccb->csio.sense_resid = 0; sense_len = min(returned_sense_len, ccb->csio.sense_len - ccb->csio.sense_resid); bzero(&ccb->csio.sense_data, sizeof(ccb->csio.sense_data)); bcopy(cm->cm_sense, &ccb->csio.sense_data, sense_len); ccb->ccb_h.status |= CAM_AUTOSNS_VALID; } /* * Check if this is an INQUIRY command. If it's a VPD inquiry, * and it's page code 0 (Supported Page List), and there is * inquiry data, and this is for a sequential access device, and * the device is an SSP target, and TLR is supported by the * controller, turn the TLR_bits value ON if page 0x90 is * supported. */ if ((csio->cdb_io.cdb_bytes[0] == INQUIRY) && (csio->cdb_io.cdb_bytes[1] & SI_EVPD) && (csio->cdb_io.cdb_bytes[2] == SVPD_SUPPORTED_PAGE_LIST) && ((csio->ccb_h.flags & CAM_DATA_MASK) == CAM_DATA_VADDR) && (csio->data_ptr != NULL) && ((csio->data_ptr[0] & 0x1f) == T_SEQUENTIAL) && (sc->control_TLR) && (sc->mapping_table[target_id].device_info & MPI2_SAS_DEVICE_INFO_SSP_TARGET)) { vpd_list = (struct scsi_vpd_supported_page_list *) csio->data_ptr; TLR_bits = &sc->mapping_table[target_id].TLR_bits; *TLR_bits = (u8)MPI2_SCSIIO_CONTROL_NO_TLR; TLR_on = (u8)MPI2_SCSIIO_CONTROL_TLR_ON; alloc_len = ((u16)csio->cdb_io.cdb_bytes[3] << 8) + csio->cdb_io.cdb_bytes[4]; alloc_len -= csio->resid; for (i = 0; i < MIN(vpd_list->length, alloc_len); i++) { if (vpd_list->list[i] == 0x90) { *TLR_bits = TLR_on; break; } } } /* * If this is a SATA direct-access end device, mark it so that * a SCSI StartStopUnit command will be sent to it when the * driver is being shutdown. */ if ((csio->cdb_io.cdb_bytes[0] == INQUIRY) && ((csio->data_ptr[0] & 0x1f) == T_DIRECT) && (sc->mapping_table[target_id].device_info & MPI2_SAS_DEVICE_INFO_SATA_DEVICE) && ((sc->mapping_table[target_id].device_info & MPI2_SAS_DEVICE_INFO_MASK_DEVICE_TYPE) == MPI2_SAS_DEVICE_INFO_END_DEVICE)) { target = &sassc->targets[target_id]; target->supports_SSU = TRUE; mps_dprint(sc, MPS_XINFO, "Target %d supports SSU\n", target_id); } break; case MPI2_IOCSTATUS_SCSI_INVALID_DEVHANDLE: case MPI2_IOCSTATUS_SCSI_DEVICE_NOT_THERE: /* * If devinfo is 0 this will be a volume. In that case don't * tell CAM that the volume is not there. We want volumes to * be enumerated until they are deleted/removed, not just * failed. */ if (cm->cm_targ->devinfo == 0) mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); else mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); break; case MPI2_IOCSTATUS_INVALID_SGL: mps_print_scsiio_cmd(sc, cm); mpssas_set_ccbstatus(ccb, CAM_UNREC_HBA_ERROR); break; case MPI2_IOCSTATUS_SCSI_TASK_TERMINATED: /* * This is one of the responses that comes back when an I/O * has been aborted. If it is because of a timeout that we * initiated, just set the status to CAM_CMD_TIMEOUT. * Otherwise set it to CAM_REQ_ABORTED. The effect on the * command is the same (it gets retried, subject to the * retry counter), the only difference is what gets printed * on the console. */ if (cm->cm_state == MPS_CM_STATE_TIMEDOUT) mpssas_set_ccbstatus(ccb, CAM_CMD_TIMEOUT); else mpssas_set_ccbstatus(ccb, CAM_REQ_ABORTED); break; case MPI2_IOCSTATUS_SCSI_DATA_OVERRUN: /* resid is ignored for this condition */ csio->resid = 0; mpssas_set_ccbstatus(ccb, CAM_DATA_RUN_ERR); break; case MPI2_IOCSTATUS_SCSI_IOC_TERMINATED: case MPI2_IOCSTATUS_SCSI_EXT_TERMINATED: /* * These can sometimes be transient transport-related * errors, and sometimes persistent drive-related errors. * We used to retry these without decrementing the retry * count by returning CAM_REQUEUE_REQ. Unfortunately, if * we hit a persistent drive problem that returns one of * these error codes, we would retry indefinitely. So, * return CAM_REQ_CMP_ERROR so that we decrement the retry * count and avoid infinite retries. We're taking the * potential risk of flagging false failures in the event * of a topology-related error (e.g. a SAS expander problem * causes a command addressed to a drive to fail), but * avoiding getting into an infinite retry loop. */ mpssas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); mps_dprint(sc, MPS_INFO, "Controller reported %s tgt %u SMID %u loginfo %x\n", mps_describe_table(mps_iocstatus_string, le16toh(rep->IOCStatus) & MPI2_IOCSTATUS_MASK), target_id, cm->cm_desc.Default.SMID, le32toh(rep->IOCLogInfo)); mps_dprint(sc, MPS_XINFO, "SCSIStatus %x SCSIState %x xfercount %u\n", rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); break; case MPI2_IOCSTATUS_INVALID_FUNCTION: case MPI2_IOCSTATUS_INTERNAL_ERROR: case MPI2_IOCSTATUS_INVALID_VPID: case MPI2_IOCSTATUS_INVALID_FIELD: case MPI2_IOCSTATUS_INVALID_STATE: case MPI2_IOCSTATUS_OP_STATE_NOT_SUPPORTED: case MPI2_IOCSTATUS_SCSI_IO_DATA_ERROR: case MPI2_IOCSTATUS_SCSI_PROTOCOL_ERROR: case MPI2_IOCSTATUS_SCSI_RESIDUAL_MISMATCH: case MPI2_IOCSTATUS_SCSI_TASK_MGMT_FAILED: default: mpssas_log_command(cm, MPS_XINFO, "completed ioc %x loginfo %x scsi %x state %x xfer %u\n", le16toh(rep->IOCStatus), le32toh(rep->IOCLogInfo), rep->SCSIStatus, rep->SCSIState, le32toh(rep->TransferCount)); csio->resid = cm->cm_length; mpssas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); break; } mps_sc_failed_io_info(sc,csio,rep); if (sassc->flags & MPSSAS_QUEUE_FROZEN) { ccb->ccb_h.status |= CAM_RELEASE_SIMQ; sassc->flags &= ~MPSSAS_QUEUE_FROZEN; mps_dprint(sc, MPS_XINFO, "Command completed, " "unfreezing SIM queue\n"); } if (mpssas_get_ccbstatus(ccb) != CAM_REQ_CMP) { ccb->ccb_h.status |= CAM_DEV_QFRZN; xpt_freeze_devq(ccb->ccb_h.path, /*count*/ 1); } mps_free_command(sc, cm); xpt_done(ccb); } /* All Request reached here are Endian safe */ static void mpssas_direct_drive_io(struct mpssas_softc *sassc, struct mps_command *cm, union ccb *ccb) { pMpi2SCSIIORequest_t pIO_req; struct mps_softc *sc = sassc->sc; uint64_t virtLBA; uint32_t physLBA, stripe_offset, stripe_unit; uint32_t io_size, column; uint8_t *ptrLBA, lba_idx, physLBA_byte, *CDB; /* * If this is a valid SCSI command (Read6, Read10, Read16, Write6, * Write10, or Write16), build a direct I/O message. Otherwise, the I/O * will be sent to the IR volume itself. Since Read6 and Write6 are a * bit different than the 10/16 CDBs, handle them separately. */ pIO_req = (pMpi2SCSIIORequest_t)cm->cm_req; CDB = pIO_req->CDB.CDB32; /* * Handle 6 byte CDBs. */ if ((pIO_req->DevHandle == sc->DD_dev_handle) && ((CDB[0] == READ_6) || (CDB[0] == WRITE_6))) { /* * Get the transfer size in blocks. */ io_size = (cm->cm_length >> sc->DD_block_exponent); /* * Get virtual LBA given in the CDB. */ virtLBA = ((uint64_t)(CDB[1] & 0x1F) << 16) | ((uint64_t)CDB[2] << 8) | (uint64_t)CDB[3]; /* * Check that LBA range for I/O does not exceed volume's * MaxLBA. */ if ((virtLBA + (uint64_t)io_size - 1) <= sc->DD_max_lba) { /* * Check if the I/O crosses a stripe boundary. If not, * translate the virtual LBA to a physical LBA and set * the DevHandle for the PhysDisk to be used. If it * does cross a boundary, do normal I/O. To get the * right DevHandle to use, get the map number for the * column, then use that map number to look up the * DevHandle of the PhysDisk. */ stripe_offset = (uint32_t)virtLBA & (sc->DD_stripe_size - 1); if ((stripe_offset + io_size) <= sc->DD_stripe_size) { physLBA = (uint32_t)virtLBA >> sc->DD_stripe_exponent; stripe_unit = physLBA / sc->DD_num_phys_disks; column = physLBA % sc->DD_num_phys_disks; pIO_req->DevHandle = htole16(sc->DD_column_map[column].dev_handle); /* ???? Is this endian safe*/ cm->cm_desc.SCSIIO.DevHandle = pIO_req->DevHandle; physLBA = (stripe_unit << sc->DD_stripe_exponent) + stripe_offset; ptrLBA = &pIO_req->CDB.CDB32[1]; physLBA_byte = (uint8_t)(physLBA >> 16); *ptrLBA = physLBA_byte; ptrLBA = &pIO_req->CDB.CDB32[2]; physLBA_byte = (uint8_t)(physLBA >> 8); *ptrLBA = physLBA_byte; ptrLBA = &pIO_req->CDB.CDB32[3]; physLBA_byte = (uint8_t)physLBA; *ptrLBA = physLBA_byte; /* * Set flag that Direct Drive I/O is * being done. */ cm->cm_flags |= MPS_CM_FLAGS_DD_IO; } } return; } /* * Handle 10, 12 or 16 byte CDBs. */ if ((pIO_req->DevHandle == sc->DD_dev_handle) && ((CDB[0] == READ_10) || (CDB[0] == WRITE_10) || (CDB[0] == READ_16) || (CDB[0] == WRITE_16) || (CDB[0] == READ_12) || (CDB[0] == WRITE_12))) { /* * For 16-byte CDB's, verify that the upper 4 bytes of the CDB * are 0. If not, this is accessing beyond 2TB so handle it in * the else section. 10-byte and 12-byte CDB's are OK. * FreeBSD sends very rare 12 byte READ/WRITE, but driver is * ready to accept 12byte CDB for Direct IOs. */ if ((CDB[0] == READ_10 || CDB[0] == WRITE_10) || (CDB[0] == READ_12 || CDB[0] == WRITE_12) || !(CDB[2] | CDB[3] | CDB[4] | CDB[5])) { /* * Get the transfer size in blocks. */ io_size = (cm->cm_length >> sc->DD_block_exponent); /* * Get virtual LBA. Point to correct lower 4 bytes of * LBA in the CDB depending on command. */ lba_idx = ((CDB[0] == READ_12) || (CDB[0] == WRITE_12) || (CDB[0] == READ_10) || (CDB[0] == WRITE_10))? 2 : 6; virtLBA = ((uint64_t)CDB[lba_idx] << 24) | ((uint64_t)CDB[lba_idx + 1] << 16) | ((uint64_t)CDB[lba_idx + 2] << 8) | (uint64_t)CDB[lba_idx + 3]; /* * Check that LBA range for I/O does not exceed volume's * MaxLBA. */ if ((virtLBA + (uint64_t)io_size - 1) <= sc->DD_max_lba) { /* * Check if the I/O crosses a stripe boundary. * If not, translate the virtual LBA to a * physical LBA and set the DevHandle for the * PhysDisk to be used. If it does cross a * boundary, do normal I/O. To get the right * DevHandle to use, get the map number for the * column, then use that map number to look up * the DevHandle of the PhysDisk. */ stripe_offset = (uint32_t)virtLBA & (sc->DD_stripe_size - 1); if ((stripe_offset + io_size) <= sc->DD_stripe_size) { physLBA = (uint32_t)virtLBA >> sc->DD_stripe_exponent; stripe_unit = physLBA / sc->DD_num_phys_disks; column = physLBA % sc->DD_num_phys_disks; pIO_req->DevHandle = htole16(sc->DD_column_map[column]. dev_handle); cm->cm_desc.SCSIIO.DevHandle = pIO_req->DevHandle; physLBA = (stripe_unit << sc->DD_stripe_exponent) + stripe_offset; ptrLBA = &pIO_req->CDB.CDB32[lba_idx]; physLBA_byte = (uint8_t)(physLBA >> 24); *ptrLBA = physLBA_byte; ptrLBA = &pIO_req->CDB.CDB32[lba_idx + 1]; physLBA_byte = (uint8_t)(physLBA >> 16); *ptrLBA = physLBA_byte; ptrLBA = &pIO_req->CDB.CDB32[lba_idx + 2]; physLBA_byte = (uint8_t)(physLBA >> 8); *ptrLBA = physLBA_byte; ptrLBA = &pIO_req->CDB.CDB32[lba_idx + 3]; physLBA_byte = (uint8_t)physLBA; *ptrLBA = physLBA_byte; /* * Set flag that Direct Drive I/O is * being done. */ cm->cm_flags |= MPS_CM_FLAGS_DD_IO; } } } else { /* * 16-byte CDB and the upper 4 bytes of the CDB are not * 0. Get the transfer size in blocks. */ io_size = (cm->cm_length >> sc->DD_block_exponent); /* * Get virtual LBA. */ virtLBA = ((uint64_t)CDB[2] << 54) | ((uint64_t)CDB[3] << 48) | ((uint64_t)CDB[4] << 40) | ((uint64_t)CDB[5] << 32) | ((uint64_t)CDB[6] << 24) | ((uint64_t)CDB[7] << 16) | ((uint64_t)CDB[8] << 8) | (uint64_t)CDB[9]; /* * Check that LBA range for I/O does not exceed volume's * MaxLBA. */ if ((virtLBA + (uint64_t)io_size - 1) <= sc->DD_max_lba) { /* * Check if the I/O crosses a stripe boundary. * If not, translate the virtual LBA to a * physical LBA and set the DevHandle for the * PhysDisk to be used. If it does cross a * boundary, do normal I/O. To get the right * DevHandle to use, get the map number for the * column, then use that map number to look up * the DevHandle of the PhysDisk. */ stripe_offset = (uint32_t)virtLBA & (sc->DD_stripe_size - 1); if ((stripe_offset + io_size) <= sc->DD_stripe_size) { physLBA = (uint32_t)(virtLBA >> sc->DD_stripe_exponent); stripe_unit = physLBA / sc->DD_num_phys_disks; column = physLBA % sc->DD_num_phys_disks; pIO_req->DevHandle = htole16(sc->DD_column_map[column]. dev_handle); cm->cm_desc.SCSIIO.DevHandle = pIO_req->DevHandle; physLBA = (stripe_unit << sc->DD_stripe_exponent) + stripe_offset; /* * Set upper 4 bytes of LBA to 0. We * assume that the phys disks are less * than 2 TB's in size. Then, set the * lower 4 bytes. */ pIO_req->CDB.CDB32[2] = 0; pIO_req->CDB.CDB32[3] = 0; pIO_req->CDB.CDB32[4] = 0; pIO_req->CDB.CDB32[5] = 0; ptrLBA = &pIO_req->CDB.CDB32[6]; physLBA_byte = (uint8_t)(physLBA >> 24); *ptrLBA = physLBA_byte; ptrLBA = &pIO_req->CDB.CDB32[7]; physLBA_byte = (uint8_t)(physLBA >> 16); *ptrLBA = physLBA_byte; ptrLBA = &pIO_req->CDB.CDB32[8]; physLBA_byte = (uint8_t)(physLBA >> 8); *ptrLBA = physLBA_byte; ptrLBA = &pIO_req->CDB.CDB32[9]; physLBA_byte = (uint8_t)physLBA; *ptrLBA = physLBA_byte; /* * Set flag that Direct Drive I/O is * being done. */ cm->cm_flags |= MPS_CM_FLAGS_DD_IO; } } } } } #if __FreeBSD_version >= 900026 static void mpssas_smpio_complete(struct mps_softc *sc, struct mps_command *cm) { MPI2_SMP_PASSTHROUGH_REPLY *rpl; MPI2_SMP_PASSTHROUGH_REQUEST *req; uint64_t sasaddr; union ccb *ccb; ccb = cm->cm_complete_data; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and SMP * commands require two S/G elements only. That should be handled * in the standard request size. */ if ((cm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { mps_dprint(sc, MPS_ERROR,"%s: cm_flags = %#x on SMP request!\n", __func__, cm->cm_flags); mpssas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); goto bailout; } rpl = (MPI2_SMP_PASSTHROUGH_REPLY *)cm->cm_reply; if (rpl == NULL) { mps_dprint(sc, MPS_ERROR, "%s: NULL cm_reply!\n", __func__); mpssas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); goto bailout; } req = (MPI2_SMP_PASSTHROUGH_REQUEST *)cm->cm_req; sasaddr = le32toh(req->SASAddress.Low); sasaddr |= ((uint64_t)(le32toh(req->SASAddress.High))) << 32; if ((le16toh(rpl->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS || rpl->SASStatus != MPI2_SASSTATUS_SUCCESS) { mps_dprint(sc, MPS_XINFO, "%s: IOCStatus %04x SASStatus %02x\n", __func__, le16toh(rpl->IOCStatus), rpl->SASStatus); mpssas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); goto bailout; } mps_dprint(sc, MPS_XINFO, "%s: SMP request to SAS address " "%#jx completed successfully\n", __func__, (uintmax_t)sasaddr); if (ccb->smpio.smp_response[2] == SMP_FR_ACCEPTED) mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); else mpssas_set_ccbstatus(ccb, CAM_SMP_STATUS_ERROR); bailout: /* * We sync in both directions because we had DMAs in the S/G list * in both directions. */ bus_dmamap_sync(sc->buffer_dmat, cm->cm_dmamap, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(sc->buffer_dmat, cm->cm_dmamap); mps_free_command(sc, cm); xpt_done(ccb); } static void mpssas_send_smpcmd(struct mpssas_softc *sassc, union ccb *ccb, uint64_t sasaddr) { struct mps_command *cm; uint8_t *request, *response; MPI2_SMP_PASSTHROUGH_REQUEST *req; struct mps_softc *sc; int error; sc = sassc->sc; error = 0; /* * XXX We don't yet support physical addresses here. */ switch ((ccb->ccb_h.flags & CAM_DATA_MASK)) { case CAM_DATA_PADDR: case CAM_DATA_SG_PADDR: mps_dprint(sc, MPS_ERROR, "%s: physical addresses not supported\n", __func__); mpssas_set_ccbstatus(ccb, CAM_REQ_INVALID); xpt_done(ccb); return; case CAM_DATA_SG: /* * The chip does not support more than one buffer for the * request or response. */ if ((ccb->smpio.smp_request_sglist_cnt > 1) || (ccb->smpio.smp_response_sglist_cnt > 1)) { mps_dprint(sc, MPS_ERROR, "%s: multiple request or response " "buffer segments not supported for SMP\n", __func__); mpssas_set_ccbstatus(ccb, CAM_REQ_INVALID); xpt_done(ccb); return; } /* * The CAM_SCATTER_VALID flag was originally implemented * for the XPT_SCSI_IO CCB, which only has one data pointer. * We have two. So, just take that flag to mean that we * might have S/G lists, and look at the S/G segment count * to figure out whether that is the case for each individual * buffer. */ if (ccb->smpio.smp_request_sglist_cnt != 0) { bus_dma_segment_t *req_sg; req_sg = (bus_dma_segment_t *)ccb->smpio.smp_request; request = (uint8_t *)(uintptr_t)req_sg[0].ds_addr; } else request = ccb->smpio.smp_request; if (ccb->smpio.smp_response_sglist_cnt != 0) { bus_dma_segment_t *rsp_sg; rsp_sg = (bus_dma_segment_t *)ccb->smpio.smp_response; response = (uint8_t *)(uintptr_t)rsp_sg[0].ds_addr; } else response = ccb->smpio.smp_response; break; case CAM_DATA_VADDR: request = ccb->smpio.smp_request; response = ccb->smpio.smp_response; break; default: mpssas_set_ccbstatus(ccb, CAM_REQ_INVALID); xpt_done(ccb); return; } cm = mps_alloc_command(sc); if (cm == NULL) { mps_dprint(sc, MPS_ERROR, "%s: cannot allocate command\n", __func__); mpssas_set_ccbstatus(ccb, CAM_RESRC_UNAVAIL); xpt_done(ccb); return; } req = (MPI2_SMP_PASSTHROUGH_REQUEST *)cm->cm_req; bzero(req, sizeof(*req)); req->Function = MPI2_FUNCTION_SMP_PASSTHROUGH; /* Allow the chip to use any route to this SAS address. */ req->PhysicalPort = 0xff; req->RequestDataLength = htole16(ccb->smpio.smp_request_len); req->SGLFlags = MPI2_SGLFLAGS_SYSTEM_ADDRESS_SPACE | MPI2_SGLFLAGS_SGL_TYPE_MPI; mps_dprint(sc, MPS_XINFO, "%s: sending SMP request to SAS " "address %#jx\n", __func__, (uintmax_t)sasaddr); mpi_init_sge(cm, req, &req->SGL); /* * Set up a uio to pass into mps_map_command(). This allows us to * do one map command, and one busdma call in there. */ cm->cm_uio.uio_iov = cm->cm_iovec; cm->cm_uio.uio_iovcnt = 2; cm->cm_uio.uio_segflg = UIO_SYSSPACE; /* * The read/write flag isn't used by busdma, but set it just in * case. This isn't exactly accurate, either, since we're going in * both directions. */ cm->cm_uio.uio_rw = UIO_WRITE; cm->cm_iovec[0].iov_base = request; cm->cm_iovec[0].iov_len = le16toh(req->RequestDataLength); cm->cm_iovec[1].iov_base = response; cm->cm_iovec[1].iov_len = ccb->smpio.smp_response_len; cm->cm_uio.uio_resid = cm->cm_iovec[0].iov_len + cm->cm_iovec[1].iov_len; /* * Trigger a warning message in mps_data_cb() for the user if we * wind up exceeding two S/G segments. The chip expects one * segment for the request and another for the response. */ cm->cm_max_segs = 2; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; cm->cm_complete = mpssas_smpio_complete; cm->cm_complete_data = ccb; /* * Tell the mapping code that we're using a uio, and that this is * an SMP passthrough request. There is a little special-case * logic there (in mps_data_cb()) to handle the bidirectional * transfer. */ cm->cm_flags |= MPS_CM_FLAGS_USE_UIO | MPS_CM_FLAGS_SMP_PASS | MPS_CM_FLAGS_DATAIN | MPS_CM_FLAGS_DATAOUT; /* The chip data format is little endian. */ req->SASAddress.High = htole32(sasaddr >> 32); req->SASAddress.Low = htole32(sasaddr); /* * XXX Note that we don't have a timeout/abort mechanism here. * From the manual, it looks like task management requests only * work for SCSI IO and SATA passthrough requests. We may need to * have a mechanism to retry requests in the event of a chip reset * at least. Hopefully the chip will insure that any errors short * of that are relayed back to the driver. */ error = mps_map_command(sc, cm); if ((error != 0) && (error != EINPROGRESS)) { mps_dprint(sc, MPS_ERROR, "%s: error %d returned from mps_map_command()\n", __func__, error); goto bailout_error; } return; bailout_error: mps_free_command(sc, cm); mpssas_set_ccbstatus(ccb, CAM_RESRC_UNAVAIL); xpt_done(ccb); return; } static void mpssas_action_smpio(struct mpssas_softc *sassc, union ccb *ccb) { struct mps_softc *sc; struct mpssas_target *targ; uint64_t sasaddr = 0; sc = sassc->sc; /* * Make sure the target exists. */ KASSERT(ccb->ccb_h.target_id < sassc->maxtargets, ("Target %d out of bounds in XPT_SMP_IO\n", ccb->ccb_h.target_id)); targ = &sassc->targets[ccb->ccb_h.target_id]; if (targ->handle == 0x0) { mps_dprint(sc, MPS_ERROR, "%s: target %d does not exist!\n", __func__, ccb->ccb_h.target_id); mpssas_set_ccbstatus(ccb, CAM_SEL_TIMEOUT); xpt_done(ccb); return; } /* * If this device has an embedded SMP target, we'll talk to it * directly. * figure out what the expander's address is. */ if ((targ->devinfo & MPI2_SAS_DEVICE_INFO_SMP_TARGET) != 0) sasaddr = targ->sasaddr; /* * If we don't have a SAS address for the expander yet, try * grabbing it from the page 0x83 information cached in the * transport layer for this target. LSI expanders report the * expander SAS address as the port-associated SAS address in * Inquiry VPD page 0x83. Maxim expanders don't report it in page * 0x83. * * XXX KDM disable this for now, but leave it commented out so that * it is obvious that this is another possible way to get the SAS * address. * * The parent handle method below is a little more reliable, and * the other benefit is that it works for devices other than SES * devices. So you can send a SMP request to a da(4) device and it * will get routed to the expander that device is attached to. * (Assuming the da(4) device doesn't contain an SMP target...) */ #if 0 if (sasaddr == 0) sasaddr = xpt_path_sas_addr(ccb->ccb_h.path); #endif /* * If we still don't have a SAS address for the expander, look for * the parent device of this device, which is probably the expander. */ if (sasaddr == 0) { #ifdef OLD_MPS_PROBE struct mpssas_target *parent_target; #endif if (targ->parent_handle == 0x0) { mps_dprint(sc, MPS_ERROR, "%s: handle %d does not have a valid " "parent handle!\n", __func__, targ->handle); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } #ifdef OLD_MPS_PROBE parent_target = mpssas_find_target_by_handle(sassc, 0, targ->parent_handle); if (parent_target == NULL) { mps_dprint(sc, MPS_ERROR, "%s: handle %d does not have a valid " "parent target!\n", __func__, targ->handle); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } if ((parent_target->devinfo & MPI2_SAS_DEVICE_INFO_SMP_TARGET) == 0) { mps_dprint(sc, MPS_ERROR, "%s: handle %d parent %d does not " "have an SMP target!\n", __func__, targ->handle, parent_target->handle); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } sasaddr = parent_target->sasaddr; #else /* OLD_MPS_PROBE */ if ((targ->parent_devinfo & MPI2_SAS_DEVICE_INFO_SMP_TARGET) == 0) { mps_dprint(sc, MPS_ERROR, "%s: handle %d parent %d does not " "have an SMP target!\n", __func__, targ->handle, targ->parent_handle); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } if (targ->parent_sasaddr == 0x0) { mps_dprint(sc, MPS_ERROR, "%s: handle %d parent handle %d does " "not have a valid SAS address!\n", __func__, targ->handle, targ->parent_handle); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } sasaddr = targ->parent_sasaddr; #endif /* OLD_MPS_PROBE */ } if (sasaddr == 0) { mps_dprint(sc, MPS_INFO, "%s: unable to find SAS address for handle %d\n", __func__, targ->handle); mpssas_set_ccbstatus(ccb, CAM_DEV_NOT_THERE); goto bailout; } mpssas_send_smpcmd(sassc, ccb, sasaddr); return; bailout: xpt_done(ccb); } #endif //__FreeBSD_version >= 900026 static void mpssas_action_resetdev(struct mpssas_softc *sassc, union ccb *ccb) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; struct mps_softc *sc; struct mps_command *tm; struct mpssas_target *targ; MPS_FUNCTRACE(sassc->sc); mtx_assert(&sassc->sc->mps_mtx, MA_OWNED); KASSERT(ccb->ccb_h.target_id < sassc->maxtargets, ("Target %d out of bounds in XPT_RESET_DEV\n", ccb->ccb_h.target_id)); sc = sassc->sc; tm = mps_alloc_command(sc); if (tm == NULL) { mps_dprint(sc, MPS_ERROR, "command alloc failure in mpssas_action_resetdev\n"); mpssas_set_ccbstatus(ccb, CAM_RESRC_UNAVAIL); xpt_done(ccb); return; } targ = &sassc->targets[ccb->ccb_h.target_id]; req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; req->DevHandle = htole16(targ->handle); req->Function = MPI2_FUNCTION_SCSI_TASK_MGMT; req->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET; /* SAS Hard Link Reset / SATA Link Reset */ req->MsgFlags = MPI2_SCSITASKMGMT_MSGFLAGS_LINK_RESET; tm->cm_data = NULL; - tm->cm_desc.HighPriority.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; tm->cm_complete = mpssas_resetdev_complete; tm->cm_complete_data = ccb; tm->cm_targ = targ; targ->flags |= MPSSAS_TARGET_INRESET; mps_map_command(sc, tm); } static void mpssas_resetdev_complete(struct mps_softc *sc, struct mps_command *tm) { MPI2_SCSI_TASK_MANAGE_REPLY *resp; union ccb *ccb; MPS_FUNCTRACE(sc); mtx_assert(&sc->mps_mtx, MA_OWNED); resp = (MPI2_SCSI_TASK_MANAGE_REPLY *)tm->cm_reply; ccb = tm->cm_complete_data; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * task management commands don't have S/G lists. */ if ((tm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { MPI2_SCSI_TASK_MANAGE_REQUEST *req; req = (MPI2_SCSI_TASK_MANAGE_REQUEST *)tm->cm_req; mps_dprint(sc, MPS_ERROR, "%s: cm_flags = %#x for reset of handle %#04x! " "This should not happen!\n", __func__, tm->cm_flags, req->DevHandle); mpssas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); goto bailout; } mps_dprint(sc, MPS_XINFO, "%s: IOCStatus = 0x%x ResponseCode = 0x%x\n", __func__, le16toh(resp->IOCStatus), le32toh(resp->ResponseCode)); if (le32toh(resp->ResponseCode) == MPI2_SCSITASKMGMT_RSP_TM_COMPLETE) { mpssas_set_ccbstatus(ccb, CAM_REQ_CMP); mpssas_announce_reset(sc, AC_SENT_BDR, tm->cm_targ->tid, CAM_LUN_WILDCARD); } else mpssas_set_ccbstatus(ccb, CAM_REQ_CMP_ERR); bailout: mpssas_free_tm(sc, tm); xpt_done(ccb); } static void mpssas_poll(struct cam_sim *sim) { struct mpssas_softc *sassc; sassc = cam_sim_softc(sim); if (sassc->sc->mps_debug & MPS_TRACE) { /* frequent debug messages during a panic just slow * everything down too much. */ mps_printf(sassc->sc, "%s clearing MPS_TRACE\n", __func__); sassc->sc->mps_debug &= ~MPS_TRACE; } mps_intr_locked(sassc->sc); } static void mpssas_async(void *callback_arg, uint32_t code, struct cam_path *path, void *arg) { struct mps_softc *sc; sc = (struct mps_softc *)callback_arg; switch (code) { #if (__FreeBSD_version >= 1000006) || \ ((__FreeBSD_version >= 901503) && (__FreeBSD_version < 1000000)) case AC_ADVINFO_CHANGED: { struct mpssas_target *target; struct mpssas_softc *sassc; struct scsi_read_capacity_data_long rcap_buf; struct ccb_dev_advinfo cdai; struct mpssas_lun *lun; lun_id_t lunid; int found_lun; uintptr_t buftype; buftype = (uintptr_t)arg; found_lun = 0; sassc = sc->sassc; /* * We're only interested in read capacity data changes. */ if (buftype != CDAI_TYPE_RCAPLONG) break; /* * We should have a handle for this, but check to make sure. */ KASSERT(xpt_path_target_id(path) < sassc->maxtargets, ("Target %d out of bounds in mpssas_async\n", xpt_path_target_id(path))); target = &sassc->targets[xpt_path_target_id(path)]; if (target->handle == 0) break; lunid = xpt_path_lun_id(path); SLIST_FOREACH(lun, &target->luns, lun_link) { if (lun->lun_id == lunid) { found_lun = 1; break; } } if (found_lun == 0) { lun = malloc(sizeof(struct mpssas_lun), M_MPT2, M_NOWAIT | M_ZERO); if (lun == NULL) { mps_dprint(sc, MPS_ERROR, "Unable to alloc " "LUN for EEDP support.\n"); break; } lun->lun_id = lunid; SLIST_INSERT_HEAD(&target->luns, lun, lun_link); } bzero(&rcap_buf, sizeof(rcap_buf)); xpt_setup_ccb(&cdai.ccb_h, path, CAM_PRIORITY_NORMAL); cdai.ccb_h.func_code = XPT_DEV_ADVINFO; cdai.ccb_h.flags = CAM_DIR_IN; cdai.buftype = CDAI_TYPE_RCAPLONG; #if (__FreeBSD_version >= 1100061) || \ ((__FreeBSD_version >= 1001510) && (__FreeBSD_version < 1100000)) cdai.flags = CDAI_FLAG_NONE; #else cdai.flags = 0; #endif cdai.bufsiz = sizeof(rcap_buf); cdai.buf = (uint8_t *)&rcap_buf; xpt_action((union ccb *)&cdai); if ((cdai.ccb_h.status & CAM_DEV_QFRZN) != 0) cam_release_devq(cdai.ccb_h.path, 0, 0, 0, FALSE); if ((mpssas_get_ccbstatus((union ccb *)&cdai) == CAM_REQ_CMP) && (rcap_buf.prot & SRC16_PROT_EN)) { switch (rcap_buf.prot & SRC16_P_TYPE) { case SRC16_PTYPE_1: case SRC16_PTYPE_3: lun->eedp_formatted = TRUE; lun->eedp_block_size = scsi_4btoul(rcap_buf.length); break; case SRC16_PTYPE_2: default: lun->eedp_formatted = FALSE; lun->eedp_block_size = 0; break; } } else { lun->eedp_formatted = FALSE; lun->eedp_block_size = 0; } break; } #else case AC_FOUND_DEVICE: { struct ccb_getdev *cgd; cgd = arg; mpssas_check_eedp(sc, path, cgd); break; } #endif default: break; } } #if (__FreeBSD_version < 901503) || \ ((__FreeBSD_version >= 1000000) && (__FreeBSD_version < 1000006)) static void mpssas_check_eedp(struct mps_softc *sc, struct cam_path *path, struct ccb_getdev *cgd) { struct mpssas_softc *sassc = sc->sassc; struct ccb_scsiio *csio; struct scsi_read_capacity_16 *scsi_cmd; struct scsi_read_capacity_eedp *rcap_buf; path_id_t pathid; target_id_t targetid; lun_id_t lunid; union ccb *ccb; struct cam_path *local_path; struct mpssas_target *target; struct mpssas_lun *lun; uint8_t found_lun; char path_str[64]; sassc = sc->sassc; pathid = cam_sim_path(sassc->sim); targetid = xpt_path_target_id(path); lunid = xpt_path_lun_id(path); KASSERT(targetid < sassc->maxtargets, ("Target %d out of bounds in mpssas_check_eedp\n", targetid)); target = &sassc->targets[targetid]; if (target->handle == 0x0) return; /* * Determine if the device is EEDP capable. * * If this flag is set in the inquiry data, * the device supports protection information, * and must support the 16 byte read * capacity command, otherwise continue without * sending read cap 16 */ if ((cgd->inq_data.spc3_flags & SPC3_SID_PROTECT) == 0) return; /* * Issue a READ CAPACITY 16 command. This info * is used to determine if the LUN is formatted * for EEDP support. */ ccb = xpt_alloc_ccb_nowait(); if (ccb == NULL) { mps_dprint(sc, MPS_ERROR, "Unable to alloc CCB " "for EEDP support.\n"); return; } if (xpt_create_path(&local_path, xpt_periph, pathid, targetid, lunid) != CAM_REQ_CMP) { mps_dprint(sc, MPS_ERROR, "Unable to create " "path for EEDP support\n"); xpt_free_ccb(ccb); return; } /* * If LUN is already in list, don't create a new * one. */ found_lun = FALSE; SLIST_FOREACH(lun, &target->luns, lun_link) { if (lun->lun_id == lunid) { found_lun = TRUE; break; } } if (!found_lun) { lun = malloc(sizeof(struct mpssas_lun), M_MPT2, M_NOWAIT | M_ZERO); if (lun == NULL) { mps_dprint(sc, MPS_ERROR, "Unable to alloc LUN for EEDP support.\n"); xpt_free_path(local_path); xpt_free_ccb(ccb); return; } lun->lun_id = lunid; SLIST_INSERT_HEAD(&target->luns, lun, lun_link); } xpt_path_string(local_path, path_str, sizeof(path_str)); mps_dprint(sc, MPS_INFO, "Sending read cap: path %s handle %d\n", path_str, target->handle); /* * Issue a READ CAPACITY 16 command for the LUN. * The mpssas_read_cap_done function will load * the read cap info into the LUN struct. */ rcap_buf = malloc(sizeof(struct scsi_read_capacity_eedp), M_MPT2, M_NOWAIT | M_ZERO); if (rcap_buf == NULL) { mps_dprint(sc, MPS_FAULT, "Unable to alloc read capacity buffer for EEDP support.\n"); xpt_free_path(ccb->ccb_h.path); xpt_free_ccb(ccb); return; } xpt_setup_ccb(&ccb->ccb_h, local_path, CAM_PRIORITY_XPT); csio = &ccb->csio; csio->ccb_h.func_code = XPT_SCSI_IO; csio->ccb_h.flags = CAM_DIR_IN; csio->ccb_h.retry_count = 4; csio->ccb_h.cbfcnp = mpssas_read_cap_done; csio->ccb_h.timeout = 60000; csio->data_ptr = (uint8_t *)rcap_buf; csio->dxfer_len = sizeof(struct scsi_read_capacity_eedp); csio->sense_len = MPS_SENSE_LEN; csio->cdb_len = sizeof(*scsi_cmd); csio->tag_action = MSG_SIMPLE_Q_TAG; scsi_cmd = (struct scsi_read_capacity_16 *)&csio->cdb_io.cdb_bytes; bzero(scsi_cmd, sizeof(*scsi_cmd)); scsi_cmd->opcode = 0x9E; scsi_cmd->service_action = SRC16_SERVICE_ACTION; ((uint8_t *)scsi_cmd)[13] = sizeof(struct scsi_read_capacity_eedp); ccb->ccb_h.ppriv_ptr1 = sassc; xpt_action(ccb); } static void mpssas_read_cap_done(struct cam_periph *periph, union ccb *done_ccb) { struct mpssas_softc *sassc; struct mpssas_target *target; struct mpssas_lun *lun; struct scsi_read_capacity_eedp *rcap_buf; if (done_ccb == NULL) return; /* Driver need to release devq, it Scsi command is * generated by driver internally. * Currently there is a single place where driver * calls scsi command internally. In future if driver * calls more scsi command internally, it needs to release * devq internally, since those command will not go back to * cam_periph. */ if ((done_ccb->ccb_h.status & CAM_DEV_QFRZN) ) { done_ccb->ccb_h.status &= ~CAM_DEV_QFRZN; xpt_release_devq(done_ccb->ccb_h.path, /*count*/ 1, /*run_queue*/TRUE); } rcap_buf = (struct scsi_read_capacity_eedp *)done_ccb->csio.data_ptr; /* * Get the LUN ID for the path and look it up in the LUN list for the * target. */ sassc = (struct mpssas_softc *)done_ccb->ccb_h.ppriv_ptr1; KASSERT(done_ccb->ccb_h.target_id < sassc->maxtargets, ("Target %d out of bounds in mpssas_read_cap_done\n", done_ccb->ccb_h.target_id)); target = &sassc->targets[done_ccb->ccb_h.target_id]; SLIST_FOREACH(lun, &target->luns, lun_link) { if (lun->lun_id != done_ccb->ccb_h.target_lun) continue; /* * Got the LUN in the target's LUN list. Fill it in * with EEDP info. If the READ CAP 16 command had some * SCSI error (common if command is not supported), mark * the lun as not supporting EEDP and set the block size * to 0. */ if ((mpssas_get_ccbstatus(done_ccb) != CAM_REQ_CMP) || (done_ccb->csio.scsi_status != SCSI_STATUS_OK)) { lun->eedp_formatted = FALSE; lun->eedp_block_size = 0; break; } if (rcap_buf->protect & 0x01) { mps_dprint(sassc->sc, MPS_INFO, "LUN %d for " "target ID %d is formatted for EEDP " "support.\n", done_ccb->ccb_h.target_lun, done_ccb->ccb_h.target_id); lun->eedp_formatted = TRUE; lun->eedp_block_size = scsi_4btoul(rcap_buf->length); } break; } // Finished with this CCB and path. free(rcap_buf, M_MPT2); xpt_free_path(done_ccb->ccb_h.path); xpt_free_ccb(done_ccb); } #endif /* (__FreeBSD_version < 901503) || \ ((__FreeBSD_version >= 1000000) && (__FreeBSD_version < 1000006)) */ +/* + * Set the INRESET flag for this target so that no I/O will be sent to + * the target until the reset has completed. If an I/O request does + * happen, the devq will be frozen. The CCB holds the path which is + * used to release the devq. The devq is released and the CCB is freed + * when the TM completes. + */ void mpssas_prepare_for_tm(struct mps_softc *sc, struct mps_command *tm, struct mpssas_target *target, lun_id_t lun_id) { union ccb *ccb; path_id_t path_id; - /* - * Set the INRESET flag for this target so that no I/O will be sent to - * the target until the reset has completed. If an I/O request does - * happen, the devq will be frozen. The CCB holds the path which is - * used to release the devq. The devq is released and the CCB is freed - * when the TM completes. - */ ccb = xpt_alloc_ccb_nowait(); if (ccb) { path_id = cam_sim_path(sc->sassc->sim); if (xpt_create_path(&ccb->ccb_h.path, xpt_periph, path_id, target->tid, lun_id) != CAM_REQ_CMP) { xpt_free_ccb(ccb); } else { tm->cm_ccb = ccb; tm->cm_targ = target; target->flags |= MPSSAS_TARGET_INRESET; } } } int mpssas_startup(struct mps_softc *sc) { /* * Send the port enable message and set the wait_for_port_enable flag. * This flag helps to keep the simq frozen until all discovery events * are processed. */ sc->wait_for_port_enable = 1; mpssas_send_portenable(sc); return (0); } static int mpssas_send_portenable(struct mps_softc *sc) { MPI2_PORT_ENABLE_REQUEST *request; struct mps_command *cm; MPS_FUNCTRACE(sc); if ((cm = mps_alloc_command(sc)) == NULL) return (EBUSY); request = (MPI2_PORT_ENABLE_REQUEST *)cm->cm_req; request->Function = MPI2_FUNCTION_PORT_ENABLE; request->MsgFlags = 0; request->VP_ID = 0; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; cm->cm_complete = mpssas_portenable_complete; cm->cm_data = NULL; cm->cm_sge = NULL; mps_map_command(sc, cm); mps_dprint(sc, MPS_XINFO, "mps_send_portenable finished cm %p req %p complete %p\n", cm, cm->cm_req, cm->cm_complete); return (0); } static void mpssas_portenable_complete(struct mps_softc *sc, struct mps_command *cm) { MPI2_PORT_ENABLE_REPLY *reply; struct mpssas_softc *sassc; MPS_FUNCTRACE(sc); sassc = sc->sassc; /* * Currently there should be no way we can hit this case. It only * happens when we have a failure to allocate chain frames, and * port enable commands don't have S/G lists. */ if ((cm->cm_flags & MPS_CM_FLAGS_ERROR_MASK) != 0) { mps_dprint(sc, MPS_ERROR, "%s: cm_flags = %#x for port enable! " "This should not happen!\n", __func__, cm->cm_flags); } reply = (MPI2_PORT_ENABLE_REPLY *)cm->cm_reply; if (reply == NULL) mps_dprint(sc, MPS_FAULT, "Portenable NULL reply\n"); else if (le16toh(reply->IOCStatus & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) mps_dprint(sc, MPS_FAULT, "Portenable failed\n"); mps_free_command(sc, cm); /* * Get WarpDrive info after discovery is complete but before the scan * starts. At this point, all devices are ready to be exposed to the * OS. If devices should be hidden instead, take them out of the * 'targets' array before the scan. The devinfo for a disk will have * some info and a volume's will be 0. Use that to remove disks. */ mps_wd_config_pages(sc); /* * Done waiting for port enable to complete. Decrement the refcount. * If refcount is 0, discovery is complete and a rescan of the bus can * take place. Since the simq was explicitly frozen before port * enable, it must be explicitly released here to keep the * freeze/release count in sync. */ sc->wait_for_port_enable = 0; sc->port_enable_complete = 1; wakeup(&sc->port_enable_complete); mpssas_startup_decrement(sassc); } int mpssas_check_id(struct mpssas_softc *sassc, int id) { struct mps_softc *sc = sassc->sc; char *ids; char *name; ids = &sc->exclude_ids[0]; while((name = strsep(&ids, ",")) != NULL) { if (name[0] == '\0') continue; if (strtol(name, NULL, 0) == (long)id) return (1); } return (0); } void mpssas_realloc_targets(struct mps_softc *sc, int maxtargets) { struct mpssas_softc *sassc; struct mpssas_lun *lun, *lun_tmp; struct mpssas_target *targ; int i; sassc = sc->sassc; /* * The number of targets is based on IOC Facts, so free all of * the allocated LUNs for each target and then the target buffer * itself. */ for (i=0; i< maxtargets; i++) { targ = &sassc->targets[i]; SLIST_FOREACH_SAFE(lun, &targ->luns, lun_link, lun_tmp) { free(lun, M_MPT2); } } free(sassc->targets, M_MPT2); sassc->targets = malloc(sizeof(struct mpssas_target) * maxtargets, M_MPT2, M_WAITOK|M_ZERO); if (!sassc->targets) { panic("%s failed to alloc targets with error %d\n", __func__, ENOMEM); } } Index: head/sys/dev/mps/mps_user.c =================================================================== --- head/sys/dev/mps/mps_user.c (revision 342385) +++ head/sys/dev/mps/mps_user.c (revision 342386) @@ -1,2527 +1,2525 @@ /*- * SPDX-License-Identifier: BSD-3-Clause * * Copyright (c) 2008 Yahoo!, Inc. * All rights reserved. * Written by: John Baldwin * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * 3. Neither the name of the author nor the names of any co-contributors * may be used to endorse or promote products derived from this software * without specific prior written permission. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD userland interface */ /*- * Copyright (c) 2011-2015 LSI Corp. * Copyright (c) 2013-2015 Avago Technologies * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD * * $FreeBSD$ */ #include __FBSDID("$FreeBSD$"); /* TODO Move headers to mpsvar */ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include static d_open_t mps_open; static d_close_t mps_close; static d_ioctl_t mps_ioctl_devsw; static struct cdevsw mps_cdevsw = { .d_version = D_VERSION, .d_flags = 0, .d_open = mps_open, .d_close = mps_close, .d_ioctl = mps_ioctl_devsw, .d_name = "mps", }; typedef int (mps_user_f)(struct mps_command *, struct mps_usr_command *); static mps_user_f mpi_pre_ioc_facts; static mps_user_f mpi_pre_port_facts; static mps_user_f mpi_pre_fw_download; static mps_user_f mpi_pre_fw_upload; static mps_user_f mpi_pre_sata_passthrough; static mps_user_f mpi_pre_smp_passthrough; static mps_user_f mpi_pre_config; static mps_user_f mpi_pre_sas_io_unit_control; static int mps_user_read_cfg_header(struct mps_softc *, struct mps_cfg_page_req *); static int mps_user_read_cfg_page(struct mps_softc *, struct mps_cfg_page_req *, void *); static int mps_user_read_extcfg_header(struct mps_softc *, struct mps_ext_cfg_page_req *); static int mps_user_read_extcfg_page(struct mps_softc *, struct mps_ext_cfg_page_req *, void *); static int mps_user_write_cfg_page(struct mps_softc *, struct mps_cfg_page_req *, void *); static int mps_user_setup_request(struct mps_command *, struct mps_usr_command *); static int mps_user_command(struct mps_softc *, struct mps_usr_command *); static int mps_user_pass_thru(struct mps_softc *sc, mps_pass_thru_t *data); static void mps_user_get_adapter_data(struct mps_softc *sc, mps_adapter_data_t *data); static void mps_user_read_pci_info(struct mps_softc *sc, mps_pci_info_t *data); static uint8_t mps_get_fw_diag_buffer_number(struct mps_softc *sc, uint32_t unique_id); static int mps_post_fw_diag_buffer(struct mps_softc *sc, mps_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code); static int mps_release_fw_diag_buffer(struct mps_softc *sc, mps_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code, uint32_t diag_type); static int mps_diag_register(struct mps_softc *sc, mps_fw_diag_register_t *diag_register, uint32_t *return_code); static int mps_diag_unregister(struct mps_softc *sc, mps_fw_diag_unregister_t *diag_unregister, uint32_t *return_code); static int mps_diag_query(struct mps_softc *sc, mps_fw_diag_query_t *diag_query, uint32_t *return_code); static int mps_diag_read_buffer(struct mps_softc *sc, mps_diag_read_buffer_t *diag_read_buffer, uint8_t *ioctl_buf, uint32_t *return_code); static int mps_diag_release(struct mps_softc *sc, mps_fw_diag_release_t *diag_release, uint32_t *return_code); static int mps_do_diag_action(struct mps_softc *sc, uint32_t action, uint8_t *diag_action, uint32_t length, uint32_t *return_code); static int mps_user_diag_action(struct mps_softc *sc, mps_diag_action_t *data); static void mps_user_event_query(struct mps_softc *sc, mps_event_query_t *data); static void mps_user_event_enable(struct mps_softc *sc, mps_event_enable_t *data); static int mps_user_event_report(struct mps_softc *sc, mps_event_report_t *data); static int mps_user_reg_access(struct mps_softc *sc, mps_reg_access_t *data); static int mps_user_btdh(struct mps_softc *sc, mps_btdh_mapping_t *data); MALLOC_DEFINE(M_MPSUSER, "mps_user", "Buffers for mps(4) ioctls"); /* Macros from compat/freebsd32/freebsd32.h */ #define PTRIN(v) (void *)(uintptr_t)(v) #define PTROUT(v) (uint32_t)(uintptr_t)(v) #define CP(src,dst,fld) do { (dst).fld = (src).fld; } while (0) #define PTRIN_CP(src,dst,fld) \ do { (dst).fld = PTRIN((src).fld); } while (0) #define PTROUT_CP(src,dst,fld) \ do { (dst).fld = PTROUT((src).fld); } while (0) int mps_attach_user(struct mps_softc *sc) { int unit; unit = device_get_unit(sc->mps_dev); sc->mps_cdev = make_dev(&mps_cdevsw, unit, UID_ROOT, GID_OPERATOR, 0640, "mps%d", unit); if (sc->mps_cdev == NULL) { return (ENOMEM); } sc->mps_cdev->si_drv1 = sc; return (0); } void mps_detach_user(struct mps_softc *sc) { /* XXX: do a purge of pending requests? */ if (sc->mps_cdev != NULL) destroy_dev(sc->mps_cdev); } static int mps_open(struct cdev *dev, int flags, int fmt, struct thread *td) { return (0); } static int mps_close(struct cdev *dev, int flags, int fmt, struct thread *td) { return (0); } static int mps_user_read_cfg_header(struct mps_softc *sc, struct mps_cfg_page_req *page_req) { MPI2_CONFIG_PAGE_HEADER *hdr; struct mps_config_params params; int error; hdr = ¶ms.hdr.Struct; params.action = MPI2_CONFIG_ACTION_PAGE_HEADER; params.page_address = le32toh(page_req->page_address); hdr->PageVersion = 0; hdr->PageLength = 0; hdr->PageNumber = page_req->header.PageNumber; hdr->PageType = page_req->header.PageType; params.buffer = NULL; params.length = 0; params.callback = NULL; if ((error = mps_read_config_page(sc, ¶ms)) != 0) { /* * Leave the request. Without resetting the chip, it's * still owned by it and we'll just get into trouble * freeing it now. Mark it as abandoned so that if it * shows up later it can be freed. */ mps_printf(sc, "read_cfg_header timed out\n"); return (ETIMEDOUT); } page_req->ioc_status = htole16(params.status); if ((page_req->ioc_status & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SUCCESS) { bcopy(hdr, &page_req->header, sizeof(page_req->header)); } return (0); } static int mps_user_read_cfg_page(struct mps_softc *sc, struct mps_cfg_page_req *page_req, void *buf) { MPI2_CONFIG_PAGE_HEADER *reqhdr, *hdr; struct mps_config_params params; int error; reqhdr = buf; hdr = ¶ms.hdr.Struct; hdr->PageVersion = reqhdr->PageVersion; hdr->PageLength = reqhdr->PageLength; hdr->PageNumber = reqhdr->PageNumber; hdr->PageType = reqhdr->PageType & MPI2_CONFIG_PAGETYPE_MASK; params.action = MPI2_CONFIG_ACTION_PAGE_READ_CURRENT; params.page_address = le32toh(page_req->page_address); params.buffer = buf; params.length = le32toh(page_req->len); params.callback = NULL; if ((error = mps_read_config_page(sc, ¶ms)) != 0) { mps_printf(sc, "mps_user_read_cfg_page timed out\n"); return (ETIMEDOUT); } page_req->ioc_status = htole16(params.status); return (0); } static int mps_user_read_extcfg_header(struct mps_softc *sc, struct mps_ext_cfg_page_req *ext_page_req) { MPI2_CONFIG_EXTENDED_PAGE_HEADER *hdr; struct mps_config_params params; int error; hdr = ¶ms.hdr.Ext; params.action = MPI2_CONFIG_ACTION_PAGE_HEADER; hdr->PageVersion = ext_page_req->header.PageVersion; hdr->PageType = MPI2_CONFIG_PAGETYPE_EXTENDED; hdr->ExtPageLength = 0; hdr->PageNumber = ext_page_req->header.PageNumber; hdr->ExtPageType = ext_page_req->header.ExtPageType; params.page_address = le32toh(ext_page_req->page_address); params.buffer = NULL; params.length = 0; params.callback = NULL; if ((error = mps_read_config_page(sc, ¶ms)) != 0) { /* * Leave the request. Without resetting the chip, it's * still owned by it and we'll just get into trouble * freeing it now. Mark it as abandoned so that if it * shows up later it can be freed. */ mps_printf(sc, "mps_user_read_extcfg_header timed out\n"); return (ETIMEDOUT); } ext_page_req->ioc_status = htole16(params.status); if ((ext_page_req->ioc_status & MPI2_IOCSTATUS_MASK) == MPI2_IOCSTATUS_SUCCESS) { ext_page_req->header.PageVersion = hdr->PageVersion; ext_page_req->header.PageNumber = hdr->PageNumber; ext_page_req->header.PageType = hdr->PageType; ext_page_req->header.ExtPageLength = hdr->ExtPageLength; ext_page_req->header.ExtPageType = hdr->ExtPageType; } return (0); } static int mps_user_read_extcfg_page(struct mps_softc *sc, struct mps_ext_cfg_page_req *ext_page_req, void *buf) { MPI2_CONFIG_EXTENDED_PAGE_HEADER *reqhdr, *hdr; struct mps_config_params params; int error; reqhdr = buf; hdr = ¶ms.hdr.Ext; params.action = MPI2_CONFIG_ACTION_PAGE_READ_CURRENT; params.page_address = le32toh(ext_page_req->page_address); hdr->PageVersion = reqhdr->PageVersion; hdr->PageType = MPI2_CONFIG_PAGETYPE_EXTENDED; hdr->PageNumber = reqhdr->PageNumber; hdr->ExtPageType = reqhdr->ExtPageType; hdr->ExtPageLength = reqhdr->ExtPageLength; params.buffer = buf; params.length = le32toh(ext_page_req->len); params.callback = NULL; if ((error = mps_read_config_page(sc, ¶ms)) != 0) { mps_printf(sc, "mps_user_read_extcfg_page timed out\n"); return (ETIMEDOUT); } ext_page_req->ioc_status = htole16(params.status); return (0); } static int mps_user_write_cfg_page(struct mps_softc *sc, struct mps_cfg_page_req *page_req, void *buf) { MPI2_CONFIG_PAGE_HEADER *reqhdr, *hdr; struct mps_config_params params; u_int hdr_attr; int error; reqhdr = buf; hdr = ¶ms.hdr.Struct; hdr_attr = reqhdr->PageType & MPI2_CONFIG_PAGEATTR_MASK; if (hdr_attr != MPI2_CONFIG_PAGEATTR_CHANGEABLE && hdr_attr != MPI2_CONFIG_PAGEATTR_PERSISTENT) { mps_printf(sc, "page type 0x%x not changeable\n", reqhdr->PageType & MPI2_CONFIG_PAGETYPE_MASK); return (EINVAL); } /* * There isn't any point in restoring stripped out attributes * if you then mask them going down to issue the request. */ hdr->PageVersion = reqhdr->PageVersion; hdr->PageLength = reqhdr->PageLength; hdr->PageNumber = reqhdr->PageNumber; hdr->PageType = reqhdr->PageType; params.action = MPI2_CONFIG_ACTION_PAGE_WRITE_CURRENT; params.page_address = le32toh(page_req->page_address); params.buffer = buf; params.length = le32toh(page_req->len); params.callback = NULL; if ((error = mps_write_config_page(sc, ¶ms)) != 0) { mps_printf(sc, "mps_write_cfg_page timed out\n"); return (ETIMEDOUT); } page_req->ioc_status = htole16(params.status); return (0); } void mpi_init_sge(struct mps_command *cm, void *req, void *sge) { int off, space; space = (int)cm->cm_sc->reqframesz; off = (uintptr_t)sge - (uintptr_t)req; KASSERT(off < space, ("bad pointers %p %p, off %d, space %d", req, sge, off, space)); cm->cm_sge = sge; cm->cm_sglsize = space - off; } /* * Prepare the mps_command for an IOC_FACTS request. */ static int mpi_pre_ioc_facts(struct mps_command *cm, struct mps_usr_command *cmd) { MPI2_IOC_FACTS_REQUEST *req = (void *)cm->cm_req; MPI2_IOC_FACTS_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); cm->cm_sge = NULL; cm->cm_sglsize = 0; return (0); } /* * Prepare the mps_command for a PORT_FACTS request. */ static int mpi_pre_port_facts(struct mps_command *cm, struct mps_usr_command *cmd) { MPI2_PORT_FACTS_REQUEST *req = (void *)cm->cm_req; MPI2_PORT_FACTS_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); cm->cm_sge = NULL; cm->cm_sglsize = 0; return (0); } /* * Prepare the mps_command for a FW_DOWNLOAD request. */ static int mpi_pre_fw_download(struct mps_command *cm, struct mps_usr_command *cmd) { MPI2_FW_DOWNLOAD_REQUEST *req = (void *)cm->cm_req; MPI2_FW_DOWNLOAD_REPLY *rpl; MPI2_FW_DOWNLOAD_TCSGE tc; int error; /* * This code assumes there is room in the request's SGL for * the TransactionContext plus at least a SGL chain element. */ CTASSERT(sizeof req->SGL >= sizeof tc + MPS_SGC_SIZE); if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); if (cmd->len == 0) return (EINVAL); error = copyin(cmd->buf, cm->cm_data, cmd->len); if (error != 0) return (error); mpi_init_sge(cm, req, &req->SGL); bzero(&tc, sizeof tc); /* * For now, the F/W image must be provided in a single request. */ if ((req->MsgFlags & MPI2_FW_DOWNLOAD_MSGFLGS_LAST_SEGMENT) == 0) return (EINVAL); if (req->TotalImageSize != cmd->len) return (EINVAL); /* * The value of the first two elements is specified in the * Fusion-MPT Message Passing Interface document. */ tc.ContextSize = 0; tc.DetailsLength = 12; tc.ImageOffset = 0; tc.ImageSize = cmd->len; cm->cm_flags |= MPS_CM_FLAGS_DATAOUT; return (mps_push_sge(cm, &tc, sizeof tc, 0)); } /* * Prepare the mps_command for a FW_UPLOAD request. */ static int mpi_pre_fw_upload(struct mps_command *cm, struct mps_usr_command *cmd) { MPI2_FW_UPLOAD_REQUEST *req = (void *)cm->cm_req; MPI2_FW_UPLOAD_REPLY *rpl; MPI2_FW_UPLOAD_TCSGE tc; /* * This code assumes there is room in the request's SGL for * the TransactionContext plus at least a SGL chain element. */ CTASSERT(sizeof req->SGL >= sizeof tc + MPS_SGC_SIZE); if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); mpi_init_sge(cm, req, &req->SGL); bzero(&tc, sizeof tc); /* * The value of the first two elements is specified in the * Fusion-MPT Message Passing Interface document. */ tc.ContextSize = 0; tc.DetailsLength = 12; /* * XXX Is there any reason to fetch a partial image? I.e. to * set ImageOffset to something other than 0? */ tc.ImageOffset = 0; tc.ImageSize = cmd->len; cm->cm_flags |= MPS_CM_FLAGS_DATAIN; return (mps_push_sge(cm, &tc, sizeof tc, 0)); } /* * Prepare the mps_command for a SATA_PASSTHROUGH request. */ static int mpi_pre_sata_passthrough(struct mps_command *cm, struct mps_usr_command *cmd) { MPI2_SATA_PASSTHROUGH_REQUEST *req = (void *)cm->cm_req; MPI2_SATA_PASSTHROUGH_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); mpi_init_sge(cm, req, &req->SGL); return (0); } /* * Prepare the mps_command for a SMP_PASSTHROUGH request. */ static int mpi_pre_smp_passthrough(struct mps_command *cm, struct mps_usr_command *cmd) { MPI2_SMP_PASSTHROUGH_REQUEST *req = (void *)cm->cm_req; MPI2_SMP_PASSTHROUGH_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); mpi_init_sge(cm, req, &req->SGL); return (0); } /* * Prepare the mps_command for a CONFIG request. */ static int mpi_pre_config(struct mps_command *cm, struct mps_usr_command *cmd) { MPI2_CONFIG_REQUEST *req = (void *)cm->cm_req; MPI2_CONFIG_REPLY *rpl; if (cmd->req_len != sizeof *req) return (EINVAL); if (cmd->rpl_len != sizeof *rpl) return (EINVAL); mpi_init_sge(cm, req, &req->PageBufferSGE); return (0); } /* * Prepare the mps_command for a SAS_IO_UNIT_CONTROL request. */ static int mpi_pre_sas_io_unit_control(struct mps_command *cm, struct mps_usr_command *cmd) { cm->cm_sge = NULL; cm->cm_sglsize = 0; return (0); } /* * A set of functions to prepare an mps_command for the various * supported requests. */ struct mps_user_func { U8 Function; mps_user_f *f_pre; } mps_user_func_list[] = { { MPI2_FUNCTION_IOC_FACTS, mpi_pre_ioc_facts }, { MPI2_FUNCTION_PORT_FACTS, mpi_pre_port_facts }, { MPI2_FUNCTION_FW_DOWNLOAD, mpi_pre_fw_download }, { MPI2_FUNCTION_FW_UPLOAD, mpi_pre_fw_upload }, { MPI2_FUNCTION_SATA_PASSTHROUGH, mpi_pre_sata_passthrough }, { MPI2_FUNCTION_SMP_PASSTHROUGH, mpi_pre_smp_passthrough}, { MPI2_FUNCTION_CONFIG, mpi_pre_config}, { MPI2_FUNCTION_SAS_IO_UNIT_CONTROL, mpi_pre_sas_io_unit_control }, { 0xFF, NULL } /* list end */ }; static int mps_user_setup_request(struct mps_command *cm, struct mps_usr_command *cmd) { MPI2_REQUEST_HEADER *hdr = (MPI2_REQUEST_HEADER *)cm->cm_req; struct mps_user_func *f; for (f = mps_user_func_list; f->f_pre != NULL; f++) { if (hdr->Function == f->Function) return (f->f_pre(cm, cmd)); } return (EINVAL); } static int mps_user_command(struct mps_softc *sc, struct mps_usr_command *cmd) { MPI2_REQUEST_HEADER *hdr; MPI2_DEFAULT_REPLY *rpl; void *buf = NULL; struct mps_command *cm = NULL; int err = 0; int sz; mps_lock(sc); cm = mps_alloc_command(sc); if (cm == NULL) { mps_printf(sc, "%s: no mps requests\n", __func__); err = ENOMEM; goto RetFree; } mps_unlock(sc); hdr = (MPI2_REQUEST_HEADER *)cm->cm_req; mps_dprint(sc, MPS_USER, "%s: req %p %d rpl %p %d\n", __func__, cmd->req, cmd->req_len, cmd->rpl, cmd->rpl_len); if (cmd->req_len > (int)sc->reqframesz) { err = EINVAL; goto RetFreeUnlocked; } err = copyin(cmd->req, hdr, cmd->req_len); if (err != 0) goto RetFreeUnlocked; mps_dprint(sc, MPS_USER, "%s: Function %02X MsgFlags %02X\n", __func__, hdr->Function, hdr->MsgFlags); if (cmd->len > 0) { buf = malloc(cmd->len, M_MPSUSER, M_WAITOK|M_ZERO); cm->cm_data = buf; cm->cm_length = cmd->len; } else { cm->cm_data = NULL; cm->cm_length = 0; } cm->cm_flags = MPS_CM_FLAGS_SGE_SIMPLE; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; err = mps_user_setup_request(cm, cmd); if (err == EINVAL) { mps_printf(sc, "%s: unsupported parameter or unsupported " "function in request (function = 0x%X)\n", __func__, hdr->Function); } if (err != 0) goto RetFreeUnlocked; mps_lock(sc); err = mps_wait_command(sc, &cm, 60, CAN_SLEEP); if (err || (cm == NULL)) { mps_printf(sc, "%s: invalid request: error %d\n", __func__, err); goto RetFree; } rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply; if (rpl != NULL) sz = rpl->MsgLength * 4; else sz = 0; if (sz > cmd->rpl_len) { mps_printf(sc, "%s: user reply buffer (%d) smaller than " "returned buffer (%d)\n", __func__, cmd->rpl_len, sz); sz = cmd->rpl_len; } mps_unlock(sc); copyout(rpl, cmd->rpl, sz); if (buf != NULL) copyout(buf, cmd->buf, cmd->len); mps_dprint(sc, MPS_USER, "%s: reply size %d\n", __func__, sz); RetFreeUnlocked: mps_lock(sc); RetFree: if (cm != NULL) mps_free_command(sc, cm); mps_unlock(sc); if (buf != NULL) free(buf, M_MPSUSER); return (err); } static int mps_user_pass_thru(struct mps_softc *sc, mps_pass_thru_t *data) { MPI2_REQUEST_HEADER *hdr, tmphdr; MPI2_DEFAULT_REPLY *rpl = NULL; struct mps_command *cm = NULL; int err = 0, dir = 0, sz; uint8_t function = 0; u_int sense_len; struct mpssas_target *targ = NULL; /* * Only allow one passthru command at a time. Use the MPS_FLAGS_BUSY * bit to denote that a passthru is being processed. */ mps_lock(sc); if (sc->mps_flags & MPS_FLAGS_BUSY) { mps_dprint(sc, MPS_USER, "%s: Only one passthru command " "allowed at a single time.", __func__); mps_unlock(sc); return (EBUSY); } sc->mps_flags |= MPS_FLAGS_BUSY; mps_unlock(sc); /* * Do some validation on data direction. Valid cases are: * 1) DataSize is 0 and direction is NONE * 2) DataSize is non-zero and one of: * a) direction is READ or * b) direction is WRITE or * c) direction is BOTH and DataOutSize is non-zero * If valid and the direction is BOTH, change the direction to READ. * if valid and the direction is not BOTH, make sure DataOutSize is 0. */ if (((data->DataSize == 0) && (data->DataDirection == MPS_PASS_THRU_DIRECTION_NONE)) || ((data->DataSize != 0) && ((data->DataDirection == MPS_PASS_THRU_DIRECTION_READ) || (data->DataDirection == MPS_PASS_THRU_DIRECTION_WRITE) || ((data->DataDirection == MPS_PASS_THRU_DIRECTION_BOTH) && (data->DataOutSize != 0))))) { if (data->DataDirection == MPS_PASS_THRU_DIRECTION_BOTH) data->DataDirection = MPS_PASS_THRU_DIRECTION_READ; else data->DataOutSize = 0; } else return (EINVAL); mps_dprint(sc, MPS_USER, "%s: req 0x%jx %d rpl 0x%jx %d " "data in 0x%jx %d data out 0x%jx %d data dir %d\n", __func__, data->PtrRequest, data->RequestSize, data->PtrReply, data->ReplySize, data->PtrData, data->DataSize, data->PtrDataOut, data->DataOutSize, data->DataDirection); /* * copy in the header so we know what we're dealing with before we * commit to allocating a command for it. */ err = copyin(PTRIN(data->PtrRequest), &tmphdr, data->RequestSize); if (err != 0) goto RetFreeUnlocked; if (data->RequestSize > (int)sc->reqframesz) { err = EINVAL; goto RetFreeUnlocked; } function = tmphdr.Function; mps_dprint(sc, MPS_USER, "%s: Function %02X MsgFlags %02X\n", __func__, function, tmphdr.MsgFlags); /* * Handle a passthru TM request. */ if (function == MPI2_FUNCTION_SCSI_TASK_MGMT) { MPI2_SCSI_TASK_MANAGE_REQUEST *task; mps_lock(sc); cm = mpssas_alloc_tm(sc); if (cm == NULL) { err = EINVAL; goto Ret; } /* Copy the header in. Only a small fixup is needed. */ task = (MPI2_SCSI_TASK_MANAGE_REQUEST *)cm->cm_req; bcopy(&tmphdr, task, data->RequestSize); task->TaskMID = cm->cm_desc.Default.SMID; cm->cm_data = NULL; - cm->cm_desc.HighPriority.RequestFlags = - MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; cm->cm_complete = NULL; cm->cm_complete_data = NULL; targ = mpssas_find_target_by_handle(sc->sassc, 0, task->DevHandle); if (targ == NULL) { mps_dprint(sc, MPS_INFO, "%s %d : invalid handle for requested TM 0x%x \n", __func__, __LINE__, task->DevHandle); err = 1; } else { mpssas_prepare_for_tm(sc, cm, targ, CAM_LUN_WILDCARD); err = mps_wait_command(sc, &cm, 30, CAN_SLEEP); } if (err != 0) { err = EIO; mps_dprint(sc, MPS_FAULT, "%s: task management failed", __func__); } /* * Copy the reply data and sense data to user space. */ if ((cm != NULL) && (cm->cm_reply != NULL)) { rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply; sz = rpl->MsgLength * 4; if (sz > data->ReplySize) { mps_printf(sc, "%s: user reply buffer (%d) " "smaller than returned buffer (%d)\n", __func__, data->ReplySize, sz); } mps_unlock(sc); copyout(cm->cm_reply, PTRIN(data->PtrReply), data->ReplySize); mps_lock(sc); } mpssas_free_tm(sc, cm); goto Ret; } mps_lock(sc); cm = mps_alloc_command(sc); if (cm == NULL) { mps_printf(sc, "%s: no mps requests\n", __func__); err = ENOMEM; goto Ret; } mps_unlock(sc); hdr = (MPI2_REQUEST_HEADER *)cm->cm_req; bcopy(&tmphdr, hdr, data->RequestSize); /* * Do some checking to make sure the IOCTL request contains a valid * request. Then set the SGL info. */ mpi_init_sge(cm, hdr, (void *)((uint8_t *)hdr + data->RequestSize)); /* * Set up for read, write or both. From check above, DataOutSize will * be 0 if direction is READ or WRITE, but it will have some non-zero * value if the direction is BOTH. So, just use the biggest size to get * the cm_data buffer size. If direction is BOTH, 2 SGLs need to be set * up; the first is for the request and the second will contain the * response data. cm_out_len needs to be set here and this will be used * when the SGLs are set up. */ cm->cm_data = NULL; cm->cm_length = MAX(data->DataSize, data->DataOutSize); cm->cm_out_len = data->DataOutSize; cm->cm_flags = 0; if (cm->cm_length != 0) { cm->cm_data = malloc(cm->cm_length, M_MPSUSER, M_WAITOK | M_ZERO); cm->cm_flags = MPS_CM_FLAGS_DATAIN; if (data->DataOutSize) { cm->cm_flags |= MPS_CM_FLAGS_DATAOUT; err = copyin(PTRIN(data->PtrDataOut), cm->cm_data, data->DataOutSize); } else if (data->DataDirection == MPS_PASS_THRU_DIRECTION_WRITE) { cm->cm_flags = MPS_CM_FLAGS_DATAOUT; err = copyin(PTRIN(data->PtrData), cm->cm_data, data->DataSize); } if (err != 0) mps_dprint(sc, MPS_FAULT, "%s: failed to copy " "IOCTL data from user space\n", __func__); } cm->cm_flags |= MPS_CM_FLAGS_SGE_SIMPLE; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; /* * Set up Sense buffer and SGL offset for IO passthru. SCSI IO request * uses SCSI IO descriptor. */ if ((function == MPI2_FUNCTION_SCSI_IO_REQUEST) || (function == MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH)) { MPI2_SCSI_IO_REQUEST *scsi_io_req; scsi_io_req = (MPI2_SCSI_IO_REQUEST *)hdr; /* * Put SGE for data and data_out buffer at the end of * scsi_io_request message header (64 bytes in total). * Following above SGEs, the residual space will be used by * sense data. */ scsi_io_req->SenseBufferLength = (uint8_t)(data->RequestSize - 64); scsi_io_req->SenseBufferLowAddress = htole32(cm->cm_sense_busaddr); /* * Set SGLOffset0 value. This is the number of dwords that SGL * is offset from the beginning of MPI2_SCSI_IO_REQUEST struct. */ scsi_io_req->SGLOffset0 = 24; /* * Setup descriptor info. RAID passthrough must use the * default request descriptor which is already set, so if this * is a SCSI IO request, change the descriptor to SCSI IO. * Also, if this is a SCSI IO request, handle the reply in the * mpssas_scsio_complete function. */ if (function == MPI2_FUNCTION_SCSI_IO_REQUEST) { cm->cm_desc.SCSIIO.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_SCSI_IO; cm->cm_desc.SCSIIO.DevHandle = scsi_io_req->DevHandle; /* * Make sure the DevHandle is not 0 because this is a * likely error. */ if (scsi_io_req->DevHandle == 0) { err = EINVAL; goto RetFreeUnlocked; } } } mps_lock(sc); err = mps_wait_command(sc, &cm, 30, CAN_SLEEP); if (err || (cm == NULL)) { mps_printf(sc, "%s: invalid request: error %d\n", __func__, err); mps_unlock(sc); goto RetFreeUnlocked; } /* * Sync the DMA data, if any. Then copy the data to user space. */ if (cm->cm_data != NULL) { if (cm->cm_flags & MPS_CM_FLAGS_DATAIN) dir = BUS_DMASYNC_POSTREAD; else if (cm->cm_flags & MPS_CM_FLAGS_DATAOUT) dir = BUS_DMASYNC_POSTWRITE; bus_dmamap_sync(sc->buffer_dmat, cm->cm_dmamap, dir); bus_dmamap_unload(sc->buffer_dmat, cm->cm_dmamap); if (cm->cm_flags & MPS_CM_FLAGS_DATAIN) { mps_unlock(sc); err = copyout(cm->cm_data, PTRIN(data->PtrData), data->DataSize); mps_lock(sc); if (err != 0) mps_dprint(sc, MPS_FAULT, "%s: failed to copy " "IOCTL data to user space\n", __func__); } } /* * Copy the reply data and sense data to user space. */ if (cm->cm_reply != NULL) { rpl = (MPI2_DEFAULT_REPLY *)cm->cm_reply; sz = rpl->MsgLength * 4; if (sz > data->ReplySize) { mps_printf(sc, "%s: user reply buffer (%d) smaller " "than returned buffer (%d)\n", __func__, data->ReplySize, sz); } mps_unlock(sc); copyout(cm->cm_reply, PTRIN(data->PtrReply), data->ReplySize); mps_lock(sc); if ((function == MPI2_FUNCTION_SCSI_IO_REQUEST) || (function == MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH)) { if (((MPI2_SCSI_IO_REPLY *)rpl)->SCSIState & MPI2_SCSI_STATE_AUTOSENSE_VALID) { sense_len = MIN((le32toh(((MPI2_SCSI_IO_REPLY *)rpl)->SenseCount)), sizeof(struct scsi_sense_data)); mps_unlock(sc); copyout(cm->cm_sense, cm->cm_req + 64, sense_len); mps_lock(sc); } } } mps_unlock(sc); RetFreeUnlocked: mps_lock(sc); if (cm != NULL) { if (cm->cm_data) free(cm->cm_data, M_MPSUSER); mps_free_command(sc, cm); } Ret: sc->mps_flags &= ~MPS_FLAGS_BUSY; mps_unlock(sc); return (err); } static void mps_user_get_adapter_data(struct mps_softc *sc, mps_adapter_data_t *data) { Mpi2ConfigReply_t mpi_reply; Mpi2BiosPage3_t config_page; /* * Use the PCI interface functions to get the Bus, Device, and Function * information. */ data->PciInformation.u.bits.BusNumber = pci_get_bus(sc->mps_dev); data->PciInformation.u.bits.DeviceNumber = pci_get_slot(sc->mps_dev); data->PciInformation.u.bits.FunctionNumber = pci_get_function(sc->mps_dev); /* * Get the FW version that should already be saved in IOC Facts. */ data->MpiFirmwareVersion = sc->facts->FWVersion.Word; /* * General device info. */ data->AdapterType = MPSIOCTL_ADAPTER_TYPE_SAS2; if (sc->mps_flags & MPS_FLAGS_WD_AVAILABLE) data->AdapterType = MPSIOCTL_ADAPTER_TYPE_SAS2_SSS6200; data->PCIDeviceHwId = pci_get_device(sc->mps_dev); data->PCIDeviceHwRev = pci_read_config(sc->mps_dev, PCIR_REVID, 1); data->SubSystemId = pci_get_subdevice(sc->mps_dev); data->SubsystemVendorId = pci_get_subvendor(sc->mps_dev); /* * Get the driver version. */ strcpy((char *)&data->DriverVersion[0], MPS_DRIVER_VERSION); /* * Need to get BIOS Config Page 3 for the BIOS Version. */ data->BiosVersion = 0; mps_lock(sc); if (mps_config_get_bios_pg3(sc, &mpi_reply, &config_page)) printf("%s: Error while retrieving BIOS Version\n", __func__); else data->BiosVersion = config_page.BiosVersion; mps_unlock(sc); } static void mps_user_read_pci_info(struct mps_softc *sc, mps_pci_info_t *data) { int i; /* * Use the PCI interface functions to get the Bus, Device, and Function * information. */ data->BusNumber = pci_get_bus(sc->mps_dev); data->DeviceNumber = pci_get_slot(sc->mps_dev); data->FunctionNumber = pci_get_function(sc->mps_dev); /* * Now get the interrupt vector and the pci header. The vector can * only be 0 right now. The header is the first 256 bytes of config * space. */ data->InterruptVector = 0; for (i = 0; i < sizeof (data->PciHeader); i++) { data->PciHeader[i] = pci_read_config(sc->mps_dev, i, 1); } } static uint8_t mps_get_fw_diag_buffer_number(struct mps_softc *sc, uint32_t unique_id) { uint8_t index; for (index = 0; index < MPI2_DIAG_BUF_TYPE_COUNT; index++) { if (sc->fw_diag_buffer_list[index].unique_id == unique_id) { return (index); } } return (MPS_FW_DIAGNOSTIC_UID_NOT_FOUND); } static int mps_post_fw_diag_buffer(struct mps_softc *sc, mps_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code) { MPI2_DIAG_BUFFER_POST_REQUEST *req; MPI2_DIAG_BUFFER_POST_REPLY *reply = NULL; struct mps_command *cm = NULL; int i, status; /* * If buffer is not enabled, just leave. */ *return_code = MPS_FW_DIAG_ERROR_POST_FAILED; if (!pBuffer->enabled) { return (MPS_DIAG_FAILURE); } /* * Clear some flags initially. */ pBuffer->force_release = FALSE; pBuffer->valid_data = FALSE; pBuffer->owned_by_firmware = FALSE; /* * Get a command. */ cm = mps_alloc_command(sc); if (cm == NULL) { mps_printf(sc, "%s: no mps requests\n", __func__); return (MPS_DIAG_FAILURE); } /* * Build the request for releasing the FW Diag Buffer and send it. */ req = (MPI2_DIAG_BUFFER_POST_REQUEST *)cm->cm_req; req->Function = MPI2_FUNCTION_DIAG_BUFFER_POST; req->BufferType = pBuffer->buffer_type; req->ExtendedType = pBuffer->extended_type; req->BufferLength = pBuffer->size; for (i = 0; i < (sizeof(req->ProductSpecific) / 4); i++) req->ProductSpecific[i] = pBuffer->product_specific[i]; mps_from_u64(sc->fw_diag_busaddr, &req->BufferAddress); cm->cm_data = NULL; cm->cm_length = 0; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; cm->cm_complete_data = NULL; /* * Send command synchronously. */ status = mps_wait_command(sc, &cm, 30, CAN_SLEEP); if (status || (cm == NULL)) { mps_printf(sc, "%s: invalid request: error %d\n", __func__, status); status = MPS_DIAG_FAILURE; goto done; } /* * Process POST reply. */ reply = (MPI2_DIAG_BUFFER_POST_REPLY *)cm->cm_reply; if (reply == NULL) { mps_printf(sc, "%s: reply is NULL, probably due to " "reinitialization\n", __func__); status = MPS_DIAG_FAILURE; goto done; } if ((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) { status = MPS_DIAG_FAILURE; mps_dprint(sc, MPS_FAULT, "%s: post of FW Diag Buffer failed " "with IOCStatus = 0x%x, IOCLogInfo = 0x%x and " "TransferLength = 0x%x\n", __func__, le16toh(reply->IOCStatus), le32toh(reply->IOCLogInfo), le32toh(reply->TransferLength)); goto done; } /* * Post was successful. */ pBuffer->valid_data = TRUE; pBuffer->owned_by_firmware = TRUE; *return_code = MPS_FW_DIAG_ERROR_SUCCESS; status = MPS_DIAG_SUCCESS; done: if (cm != NULL) mps_free_command(sc, cm); return (status); } static int mps_release_fw_diag_buffer(struct mps_softc *sc, mps_fw_diagnostic_buffer_t *pBuffer, uint32_t *return_code, uint32_t diag_type) { MPI2_DIAG_RELEASE_REQUEST *req; MPI2_DIAG_RELEASE_REPLY *reply = NULL; struct mps_command *cm = NULL; int status; /* * If buffer is not enabled, just leave. */ *return_code = MPS_FW_DIAG_ERROR_RELEASE_FAILED; if (!pBuffer->enabled) { mps_dprint(sc, MPS_USER, "%s: This buffer type is not " "supported by the IOC", __func__); return (MPS_DIAG_FAILURE); } /* * Clear some flags initially. */ pBuffer->force_release = FALSE; pBuffer->valid_data = FALSE; pBuffer->owned_by_firmware = FALSE; /* * Get a command. */ cm = mps_alloc_command(sc); if (cm == NULL) { mps_printf(sc, "%s: no mps requests\n", __func__); return (MPS_DIAG_FAILURE); } /* * Build the request for releasing the FW Diag Buffer and send it. */ req = (MPI2_DIAG_RELEASE_REQUEST *)cm->cm_req; req->Function = MPI2_FUNCTION_DIAG_RELEASE; req->BufferType = pBuffer->buffer_type; cm->cm_data = NULL; cm->cm_length = 0; cm->cm_desc.Default.RequestFlags = MPI2_REQ_DESCRIPT_FLAGS_DEFAULT_TYPE; cm->cm_complete_data = NULL; /* * Send command synchronously. */ status = mps_wait_command(sc, &cm, 30, CAN_SLEEP); if (status || (cm == NULL)) { mps_printf(sc, "%s: invalid request: error %d\n", __func__, status); status = MPS_DIAG_FAILURE; goto done; } /* * Process RELEASE reply. */ reply = (MPI2_DIAG_RELEASE_REPLY *)cm->cm_reply; if (reply == NULL) { mps_printf(sc, "%s: reply is NULL, probably due to " "reinitialization\n", __func__); status = MPS_DIAG_FAILURE; goto done; } if (((le16toh(reply->IOCStatus) & MPI2_IOCSTATUS_MASK) != MPI2_IOCSTATUS_SUCCESS) || pBuffer->owned_by_firmware) { status = MPS_DIAG_FAILURE; mps_dprint(sc, MPS_FAULT, "%s: release of FW Diag Buffer " "failed with IOCStatus = 0x%x and IOCLogInfo = 0x%x\n", __func__, le16toh(reply->IOCStatus), le32toh(reply->IOCLogInfo)); goto done; } /* * Release was successful. */ *return_code = MPS_FW_DIAG_ERROR_SUCCESS; status = MPS_DIAG_SUCCESS; /* * If this was for an UNREGISTER diag type command, clear the unique ID. */ if (diag_type == MPS_FW_DIAG_TYPE_UNREGISTER) { pBuffer->unique_id = MPS_FW_DIAG_INVALID_UID; } done: if (cm != NULL) mps_free_command(sc, cm); return (status); } static int mps_diag_register(struct mps_softc *sc, mps_fw_diag_register_t *diag_register, uint32_t *return_code) { mps_fw_diagnostic_buffer_t *pBuffer; struct mps_busdma_context *ctx; uint8_t extended_type, buffer_type, i; uint32_t buffer_size; uint32_t unique_id; int status; int error; extended_type = diag_register->ExtendedType; buffer_type = diag_register->BufferType; buffer_size = diag_register->RequestedBufferSize; unique_id = diag_register->UniqueId; ctx = NULL; error = 0; /* * Check for valid buffer type */ if (buffer_type >= MPI2_DIAG_BUF_TYPE_COUNT) { *return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER; return (MPS_DIAG_FAILURE); } /* * Get the current buffer and look up the unique ID. The unique ID * should not be found. If it is, the ID is already in use. */ i = mps_get_fw_diag_buffer_number(sc, unique_id); pBuffer = &sc->fw_diag_buffer_list[buffer_type]; if (i != MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPS_FW_DIAG_ERROR_INVALID_UID; return (MPS_DIAG_FAILURE); } /* * The buffer's unique ID should not be registered yet, and the given * unique ID cannot be 0. */ if ((pBuffer->unique_id != MPS_FW_DIAG_INVALID_UID) || (unique_id == MPS_FW_DIAG_INVALID_UID)) { *return_code = MPS_FW_DIAG_ERROR_INVALID_UID; return (MPS_DIAG_FAILURE); } /* * If this buffer is already posted as immediate, just change owner. */ if (pBuffer->immediate && pBuffer->owned_by_firmware && (pBuffer->unique_id == MPS_FW_DIAG_INVALID_UID)) { pBuffer->immediate = FALSE; pBuffer->unique_id = unique_id; return (MPS_DIAG_SUCCESS); } /* * Post a new buffer after checking if it's enabled. The DMA buffer * that is allocated will be contiguous (nsegments = 1). */ if (!pBuffer->enabled) { *return_code = MPS_FW_DIAG_ERROR_NO_BUFFER; return (MPS_DIAG_FAILURE); } if (bus_dma_tag_create( sc->mps_parent_dmat, /* parent */ 1, 0, /* algnmnt, boundary */ BUS_SPACE_MAXADDR_32BIT,/* lowaddr */ BUS_SPACE_MAXADDR, /* highaddr */ NULL, NULL, /* filter, filterarg */ buffer_size, /* maxsize */ 1, /* nsegments */ buffer_size, /* maxsegsize */ 0, /* flags */ NULL, NULL, /* lockfunc, lockarg */ &sc->fw_diag_dmat)) { mps_dprint(sc, MPS_ERROR, "Cannot allocate FW diag buffer DMA tag\n"); *return_code = MPS_FW_DIAG_ERROR_NO_BUFFER; status = MPS_DIAG_FAILURE; goto bailout; } if (bus_dmamem_alloc(sc->fw_diag_dmat, (void **)&sc->fw_diag_buffer, BUS_DMA_NOWAIT, &sc->fw_diag_map)) { mps_dprint(sc, MPS_ERROR, "Cannot allocate FW diag buffer memory\n"); *return_code = MPS_FW_DIAG_ERROR_NO_BUFFER; status = MPS_DIAG_FAILURE; goto bailout; } bzero(sc->fw_diag_buffer, buffer_size); ctx = malloc(sizeof(*ctx), M_MPSUSER, M_WAITOK | M_ZERO); if (ctx == NULL) { device_printf(sc->mps_dev, "%s: context malloc failed\n", __func__); *return_code = MPS_FW_DIAG_ERROR_NO_BUFFER; status = MPS_DIAG_FAILURE; goto bailout; } ctx->addr = &sc->fw_diag_busaddr; ctx->buffer_dmat = sc->fw_diag_dmat; ctx->buffer_dmamap = sc->fw_diag_map; ctx->softc = sc; error = bus_dmamap_load(sc->fw_diag_dmat, sc->fw_diag_map, sc->fw_diag_buffer, buffer_size, mps_memaddr_wait_cb, ctx, 0); if (error == EINPROGRESS) { /* XXX KDM */ device_printf(sc->mps_dev, "%s: Deferred bus_dmamap_load\n", __func__); /* * Wait for the load to complete. If we're interrupted, * bail out. */ mps_lock(sc); if (ctx->completed == 0) { error = msleep(ctx, &sc->mps_mtx, PCATCH, "mpswait", 0); if (error != 0) { /* * We got an error from msleep(9). This is * most likely due to a signal. Tell * mpr_memaddr_wait_cb() that we've abandoned * the context, so it needs to clean up when * it is called. */ ctx->abandoned = 1; /* The callback will free this memory */ ctx = NULL; mps_unlock(sc); device_printf(sc->mps_dev, "Cannot " "bus_dmamap_load FW diag buffer, error = " "%d returned from msleep\n", error); *return_code = MPS_FW_DIAG_ERROR_NO_BUFFER; status = MPS_DIAG_FAILURE; goto bailout; } } mps_unlock(sc); } if ((error != 0) || (ctx->error != 0)) { device_printf(sc->mps_dev, "Cannot bus_dmamap_load FW diag " "buffer, %serror = %d\n", error ? "" : "callback ", error ? error : ctx->error); *return_code = MPS_FW_DIAG_ERROR_NO_BUFFER; status = MPS_DIAG_FAILURE; goto bailout; } bus_dmamap_sync(sc->fw_diag_dmat, sc->fw_diag_map, BUS_DMASYNC_PREREAD); pBuffer->size = buffer_size; /* * Copy the given info to the diag buffer and post the buffer. */ pBuffer->buffer_type = buffer_type; pBuffer->immediate = FALSE; if (buffer_type == MPI2_DIAG_BUF_TYPE_TRACE) { for (i = 0; i < (sizeof (pBuffer->product_specific) / 4); i++) { pBuffer->product_specific[i] = diag_register->ProductSpecific[i]; } } pBuffer->extended_type = extended_type; pBuffer->unique_id = unique_id; status = mps_post_fw_diag_buffer(sc, pBuffer, return_code); bailout: /* * In case there was a failure, free the DMA buffer. */ if (status == MPS_DIAG_FAILURE) { if (sc->fw_diag_busaddr != 0) { bus_dmamap_unload(sc->fw_diag_dmat, sc->fw_diag_map); sc->fw_diag_busaddr = 0; } if (sc->fw_diag_buffer != NULL) { bus_dmamem_free(sc->fw_diag_dmat, sc->fw_diag_buffer, sc->fw_diag_map); sc->fw_diag_buffer = NULL; } if (sc->fw_diag_dmat != NULL) { bus_dma_tag_destroy(sc->fw_diag_dmat); sc->fw_diag_dmat = NULL; } } if (ctx != NULL) free(ctx, M_MPSUSER); return (status); } static int mps_diag_unregister(struct mps_softc *sc, mps_fw_diag_unregister_t *diag_unregister, uint32_t *return_code) { mps_fw_diagnostic_buffer_t *pBuffer; uint8_t i; uint32_t unique_id; int status; unique_id = diag_unregister->UniqueId; /* * Get the current buffer and look up the unique ID. The unique ID * should be there. */ i = mps_get_fw_diag_buffer_number(sc, unique_id); if (i == MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPS_FW_DIAG_ERROR_INVALID_UID; return (MPS_DIAG_FAILURE); } pBuffer = &sc->fw_diag_buffer_list[i]; /* * Try to release the buffer from FW before freeing it. If release * fails, don't free the DMA buffer in case FW tries to access it * later. If buffer is not owned by firmware, can't release it. */ if (!pBuffer->owned_by_firmware) { status = MPS_DIAG_SUCCESS; } else { status = mps_release_fw_diag_buffer(sc, pBuffer, return_code, MPS_FW_DIAG_TYPE_UNREGISTER); } /* * At this point, return the current status no matter what happens with * the DMA buffer. */ pBuffer->unique_id = MPS_FW_DIAG_INVALID_UID; if (status == MPS_DIAG_SUCCESS) { if (sc->fw_diag_busaddr != 0) { bus_dmamap_unload(sc->fw_diag_dmat, sc->fw_diag_map); sc->fw_diag_busaddr = 0; } if (sc->fw_diag_buffer != NULL) { bus_dmamem_free(sc->fw_diag_dmat, sc->fw_diag_buffer, sc->fw_diag_map); sc->fw_diag_buffer = NULL; } if (sc->fw_diag_dmat != NULL) { bus_dma_tag_destroy(sc->fw_diag_dmat); sc->fw_diag_dmat = NULL; } } return (status); } static int mps_diag_query(struct mps_softc *sc, mps_fw_diag_query_t *diag_query, uint32_t *return_code) { mps_fw_diagnostic_buffer_t *pBuffer; uint8_t i; uint32_t unique_id; unique_id = diag_query->UniqueId; /* * If ID is valid, query on ID. * If ID is invalid, query on buffer type. */ if (unique_id == MPS_FW_DIAG_INVALID_UID) { i = diag_query->BufferType; if (i >= MPI2_DIAG_BUF_TYPE_COUNT) { *return_code = MPS_FW_DIAG_ERROR_INVALID_UID; return (MPS_DIAG_FAILURE); } } else { i = mps_get_fw_diag_buffer_number(sc, unique_id); if (i == MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPS_FW_DIAG_ERROR_INVALID_UID; return (MPS_DIAG_FAILURE); } } /* * Fill query structure with the diag buffer info. */ pBuffer = &sc->fw_diag_buffer_list[i]; diag_query->BufferType = pBuffer->buffer_type; diag_query->ExtendedType = pBuffer->extended_type; if (diag_query->BufferType == MPI2_DIAG_BUF_TYPE_TRACE) { for (i = 0; i < (sizeof(diag_query->ProductSpecific) / 4); i++) { diag_query->ProductSpecific[i] = pBuffer->product_specific[i]; } } diag_query->TotalBufferSize = pBuffer->size; diag_query->DriverAddedBufferSize = 0; diag_query->UniqueId = pBuffer->unique_id; diag_query->ApplicationFlags = 0; diag_query->DiagnosticFlags = 0; /* * Set/Clear application flags */ if (pBuffer->immediate) { diag_query->ApplicationFlags &= ~MPS_FW_DIAG_FLAG_APP_OWNED; } else { diag_query->ApplicationFlags |= MPS_FW_DIAG_FLAG_APP_OWNED; } if (pBuffer->valid_data || pBuffer->owned_by_firmware) { diag_query->ApplicationFlags |= MPS_FW_DIAG_FLAG_BUFFER_VALID; } else { diag_query->ApplicationFlags &= ~MPS_FW_DIAG_FLAG_BUFFER_VALID; } if (pBuffer->owned_by_firmware) { diag_query->ApplicationFlags |= MPS_FW_DIAG_FLAG_FW_BUFFER_ACCESS; } else { diag_query->ApplicationFlags &= ~MPS_FW_DIAG_FLAG_FW_BUFFER_ACCESS; } return (MPS_DIAG_SUCCESS); } static int mps_diag_read_buffer(struct mps_softc *sc, mps_diag_read_buffer_t *diag_read_buffer, uint8_t *ioctl_buf, uint32_t *return_code) { mps_fw_diagnostic_buffer_t *pBuffer; uint8_t i, *pData; uint32_t unique_id; int status; unique_id = diag_read_buffer->UniqueId; /* * Get the current buffer and look up the unique ID. The unique ID * should be there. */ i = mps_get_fw_diag_buffer_number(sc, unique_id); if (i == MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPS_FW_DIAG_ERROR_INVALID_UID; return (MPS_DIAG_FAILURE); } pBuffer = &sc->fw_diag_buffer_list[i]; /* * Make sure requested read is within limits */ if (diag_read_buffer->StartingOffset + diag_read_buffer->BytesToRead > pBuffer->size) { *return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER; return (MPS_DIAG_FAILURE); } /* Sync the DMA map before we copy to userland. */ bus_dmamap_sync(sc->fw_diag_dmat, sc->fw_diag_map, BUS_DMASYNC_POSTREAD); /* * Copy the requested data from DMA to the diag_read_buffer. The DMA * buffer that was allocated is one contiguous buffer. */ pData = (uint8_t *)(sc->fw_diag_buffer + diag_read_buffer->StartingOffset); if (copyout(pData, ioctl_buf, diag_read_buffer->BytesToRead) != 0) return (MPS_DIAG_FAILURE); diag_read_buffer->Status = 0; /* * Set or clear the Force Release flag. */ if (pBuffer->force_release) { diag_read_buffer->Flags |= MPS_FW_DIAG_FLAG_FORCE_RELEASE; } else { diag_read_buffer->Flags &= ~MPS_FW_DIAG_FLAG_FORCE_RELEASE; } /* * If buffer is to be reregistered, make sure it's not already owned by * firmware first. */ status = MPS_DIAG_SUCCESS; if (!pBuffer->owned_by_firmware) { if (diag_read_buffer->Flags & MPS_FW_DIAG_FLAG_REREGISTER) { status = mps_post_fw_diag_buffer(sc, pBuffer, return_code); } } return (status); } static int mps_diag_release(struct mps_softc *sc, mps_fw_diag_release_t *diag_release, uint32_t *return_code) { mps_fw_diagnostic_buffer_t *pBuffer; uint8_t i; uint32_t unique_id; int status; unique_id = diag_release->UniqueId; /* * Get the current buffer and look up the unique ID. The unique ID * should be there. */ i = mps_get_fw_diag_buffer_number(sc, unique_id); if (i == MPS_FW_DIAGNOSTIC_UID_NOT_FOUND) { *return_code = MPS_FW_DIAG_ERROR_INVALID_UID; return (MPS_DIAG_FAILURE); } pBuffer = &sc->fw_diag_buffer_list[i]; /* * If buffer is not owned by firmware, it's already been released. */ if (!pBuffer->owned_by_firmware) { *return_code = MPS_FW_DIAG_ERROR_ALREADY_RELEASED; return (MPS_DIAG_FAILURE); } /* * Release the buffer. */ status = mps_release_fw_diag_buffer(sc, pBuffer, return_code, MPS_FW_DIAG_TYPE_RELEASE); return (status); } static int mps_do_diag_action(struct mps_softc *sc, uint32_t action, uint8_t *diag_action, uint32_t length, uint32_t *return_code) { mps_fw_diag_register_t diag_register; mps_fw_diag_unregister_t diag_unregister; mps_fw_diag_query_t diag_query; mps_diag_read_buffer_t diag_read_buffer; mps_fw_diag_release_t diag_release; int status = MPS_DIAG_SUCCESS; uint32_t original_return_code; original_return_code = *return_code; *return_code = MPS_FW_DIAG_ERROR_SUCCESS; switch (action) { case MPS_FW_DIAG_TYPE_REGISTER: if (!length) { *return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPS_DIAG_FAILURE; break; } if (copyin(diag_action, &diag_register, sizeof(diag_register)) != 0) return (MPS_DIAG_FAILURE); status = mps_diag_register(sc, &diag_register, return_code); break; case MPS_FW_DIAG_TYPE_UNREGISTER: if (length < sizeof(diag_unregister)) { *return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPS_DIAG_FAILURE; break; } if (copyin(diag_action, &diag_unregister, sizeof(diag_unregister)) != 0) return (MPS_DIAG_FAILURE); status = mps_diag_unregister(sc, &diag_unregister, return_code); break; case MPS_FW_DIAG_TYPE_QUERY: if (length < sizeof (diag_query)) { *return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPS_DIAG_FAILURE; break; } if (copyin(diag_action, &diag_query, sizeof(diag_query)) != 0) return (MPS_DIAG_FAILURE); status = mps_diag_query(sc, &diag_query, return_code); if (status == MPS_DIAG_SUCCESS) if (copyout(&diag_query, diag_action, sizeof (diag_query)) != 0) return (MPS_DIAG_FAILURE); break; case MPS_FW_DIAG_TYPE_READ_BUFFER: if (copyin(diag_action, &diag_read_buffer, sizeof(diag_read_buffer)) != 0) return (MPS_DIAG_FAILURE); if (length < diag_read_buffer.BytesToRead) { *return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPS_DIAG_FAILURE; break; } status = mps_diag_read_buffer(sc, &diag_read_buffer, PTRIN(diag_read_buffer.PtrDataBuffer), return_code); if (status == MPS_DIAG_SUCCESS) { if (copyout(&diag_read_buffer, diag_action, sizeof(diag_read_buffer) - sizeof(diag_read_buffer.PtrDataBuffer)) != 0) return (MPS_DIAG_FAILURE); } break; case MPS_FW_DIAG_TYPE_RELEASE: if (length < sizeof(diag_release)) { *return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPS_DIAG_FAILURE; break; } if (copyin(diag_action, &diag_release, sizeof(diag_release)) != 0) return (MPS_DIAG_FAILURE); status = mps_diag_release(sc, &diag_release, return_code); break; default: *return_code = MPS_FW_DIAG_ERROR_INVALID_PARAMETER; status = MPS_DIAG_FAILURE; break; } if ((status == MPS_DIAG_FAILURE) && (original_return_code == MPS_FW_DIAG_NEW) && (*return_code != MPS_FW_DIAG_ERROR_SUCCESS)) status = MPS_DIAG_SUCCESS; return (status); } static int mps_user_diag_action(struct mps_softc *sc, mps_diag_action_t *data) { int status; /* * Only allow one diag action at one time. */ if (sc->mps_flags & MPS_FLAGS_BUSY) { mps_dprint(sc, MPS_USER, "%s: Only one FW diag command " "allowed at a single time.", __func__); return (EBUSY); } sc->mps_flags |= MPS_FLAGS_BUSY; /* * Send diag action request */ if (data->Action == MPS_FW_DIAG_TYPE_REGISTER || data->Action == MPS_FW_DIAG_TYPE_UNREGISTER || data->Action == MPS_FW_DIAG_TYPE_QUERY || data->Action == MPS_FW_DIAG_TYPE_READ_BUFFER || data->Action == MPS_FW_DIAG_TYPE_RELEASE) { status = mps_do_diag_action(sc, data->Action, PTRIN(data->PtrDiagAction), data->Length, &data->ReturnCode); } else status = EINVAL; sc->mps_flags &= ~MPS_FLAGS_BUSY; return (status); } /* * Copy the event recording mask and the event queue size out. For * clarification, the event recording mask (events_to_record) is not the same * thing as the event mask (event_mask). events_to_record has a bit set for * every event type that is to be recorded by the driver, and event_mask has a * bit cleared for every event that is allowed into the driver from the IOC. * They really have nothing to do with each other. */ static void mps_user_event_query(struct mps_softc *sc, mps_event_query_t *data) { uint8_t i; mps_lock(sc); data->Entries = MPS_EVENT_QUEUE_SIZE; for (i = 0; i < 4; i++) { data->Types[i] = sc->events_to_record[i]; } mps_unlock(sc); } /* * Set the driver's event mask according to what's been given. See * mps_user_event_query for explanation of the event recording mask and the IOC * event mask. It's the app's responsibility to enable event logging by setting * the bits in events_to_record. Initially, no events will be logged. */ static void mps_user_event_enable(struct mps_softc *sc, mps_event_enable_t *data) { uint8_t i; mps_lock(sc); for (i = 0; i < 4; i++) { sc->events_to_record[i] = data->Types[i]; } mps_unlock(sc); } /* * Copy out the events that have been recorded, up to the max events allowed. */ static int mps_user_event_report(struct mps_softc *sc, mps_event_report_t *data) { int status = 0; uint32_t size; mps_lock(sc); size = data->Size; if ((size >= sizeof(sc->recorded_events)) && (status == 0)) { mps_unlock(sc); if (copyout((void *)sc->recorded_events, PTRIN(data->PtrEvents), size) != 0) status = EFAULT; mps_lock(sc); } else { /* * data->Size value is not large enough to copy event data. */ status = EFAULT; } /* * Change size value to match the number of bytes that were copied. */ if (status == 0) data->Size = sizeof(sc->recorded_events); mps_unlock(sc); return (status); } /* * Record events into the driver from the IOC if they are not masked. */ void mpssas_record_event(struct mps_softc *sc, MPI2_EVENT_NOTIFICATION_REPLY *event_reply) { uint32_t event; int i, j; uint16_t event_data_len; boolean_t sendAEN = FALSE; event = event_reply->Event; /* * Generate a system event to let anyone who cares know that a * LOG_ENTRY_ADDED event has occurred. This is sent no matter what the * event mask is set to. */ if (event == MPI2_EVENT_LOG_ENTRY_ADDED) { sendAEN = TRUE; } /* * Record the event only if its corresponding bit is set in * events_to_record. event_index is the index into recorded_events and * event_number is the overall number of an event being recorded since * start-of-day. event_index will roll over; event_number will never * roll over. */ i = (uint8_t)(event / 32); j = (uint8_t)(event % 32); if ((i < 4) && ((1 << j) & sc->events_to_record[i])) { i = sc->event_index; sc->recorded_events[i].Type = event; sc->recorded_events[i].Number = ++sc->event_number; bzero(sc->recorded_events[i].Data, MPS_MAX_EVENT_DATA_LENGTH * 4); event_data_len = event_reply->EventDataLength; if (event_data_len > 0) { /* * Limit data to size in m_event entry */ if (event_data_len > MPS_MAX_EVENT_DATA_LENGTH) { event_data_len = MPS_MAX_EVENT_DATA_LENGTH; } for (j = 0; j < event_data_len; j++) { sc->recorded_events[i].Data[j] = event_reply->EventData[j]; } /* * check for index wrap-around */ if (++i == MPS_EVENT_QUEUE_SIZE) { i = 0; } sc->event_index = (uint8_t)i; /* * Set flag to send the event. */ sendAEN = TRUE; } } /* * Generate a system event if flag is set to let anyone who cares know * that an event has occurred. */ if (sendAEN) { //SLM-how to send a system event (see kqueue, kevent) // (void) ddi_log_sysevent(mpt->m_dip, DDI_VENDOR_LSI, "MPT_SAS", // "SAS", NULL, NULL, DDI_NOSLEEP); } } static int mps_user_reg_access(struct mps_softc *sc, mps_reg_access_t *data) { int status = 0; switch (data->Command) { /* * IO access is not supported. */ case REG_IO_READ: case REG_IO_WRITE: mps_dprint(sc, MPS_USER, "IO access is not supported. " "Use memory access."); status = EINVAL; break; case REG_MEM_READ: data->RegData = mps_regread(sc, data->RegOffset); break; case REG_MEM_WRITE: mps_regwrite(sc, data->RegOffset, data->RegData); break; default: status = EINVAL; break; } return (status); } static int mps_user_btdh(struct mps_softc *sc, mps_btdh_mapping_t *data) { uint8_t bt2dh = FALSE; uint8_t dh2bt = FALSE; uint16_t dev_handle, bus, target; bus = data->Bus; target = data->TargetID; dev_handle = data->DevHandle; /* * When DevHandle is 0xFFFF and Bus/Target are not 0xFFFF, use Bus/ * Target to get DevHandle. When Bus/Target are 0xFFFF and DevHandle is * not 0xFFFF, use DevHandle to get Bus/Target. Anything else is * invalid. */ if ((bus == 0xFFFF) && (target == 0xFFFF) && (dev_handle != 0xFFFF)) dh2bt = TRUE; if ((dev_handle == 0xFFFF) && (bus != 0xFFFF) && (target != 0xFFFF)) bt2dh = TRUE; if (!dh2bt && !bt2dh) return (EINVAL); /* * Only handle bus of 0. Make sure target is within range. */ if (bt2dh) { if (bus != 0) return (EINVAL); if (target > sc->max_devices) { mps_dprint(sc, MPS_FAULT, "Target ID is out of range " "for Bus/Target to DevHandle mapping."); return (EINVAL); } dev_handle = sc->mapping_table[target].dev_handle; if (dev_handle) data->DevHandle = dev_handle; } else { bus = 0; target = mps_mapping_get_tid_from_handle(sc, dev_handle); data->Bus = bus; data->TargetID = target; } return (0); } static int mps_ioctl(struct cdev *dev, u_long cmd, void *arg, int flag, struct thread *td) { struct mps_softc *sc; struct mps_cfg_page_req *page_req; struct mps_ext_cfg_page_req *ext_page_req; void *mps_page; int error, msleep_ret; mps_page = NULL; sc = dev->si_drv1; page_req = (void *)arg; ext_page_req = (void *)arg; switch (cmd) { case MPSIO_READ_CFG_HEADER: mps_lock(sc); error = mps_user_read_cfg_header(sc, page_req); mps_unlock(sc); break; case MPSIO_READ_CFG_PAGE: mps_page = malloc(page_req->len, M_MPSUSER, M_WAITOK | M_ZERO); error = copyin(page_req->buf, mps_page, sizeof(MPI2_CONFIG_PAGE_HEADER)); if (error) break; mps_lock(sc); error = mps_user_read_cfg_page(sc, page_req, mps_page); mps_unlock(sc); if (error) break; error = copyout(mps_page, page_req->buf, page_req->len); break; case MPSIO_READ_EXT_CFG_HEADER: mps_lock(sc); error = mps_user_read_extcfg_header(sc, ext_page_req); mps_unlock(sc); break; case MPSIO_READ_EXT_CFG_PAGE: mps_page = malloc(ext_page_req->len, M_MPSUSER, M_WAITOK|M_ZERO); error = copyin(ext_page_req->buf, mps_page, sizeof(MPI2_CONFIG_EXTENDED_PAGE_HEADER)); if (error) break; mps_lock(sc); error = mps_user_read_extcfg_page(sc, ext_page_req, mps_page); mps_unlock(sc); if (error) break; error = copyout(mps_page, ext_page_req->buf, ext_page_req->len); break; case MPSIO_WRITE_CFG_PAGE: mps_page = malloc(page_req->len, M_MPSUSER, M_WAITOK|M_ZERO); error = copyin(page_req->buf, mps_page, page_req->len); if (error) break; mps_lock(sc); error = mps_user_write_cfg_page(sc, page_req, mps_page); mps_unlock(sc); break; case MPSIO_MPS_COMMAND: error = mps_user_command(sc, (struct mps_usr_command *)arg); break; case MPTIOCTL_PASS_THRU: /* * The user has requested to pass through a command to be * executed by the MPT firmware. Call our routine which does * this. Only allow one passthru IOCTL at one time. */ error = mps_user_pass_thru(sc, (mps_pass_thru_t *)arg); break; case MPTIOCTL_GET_ADAPTER_DATA: /* * The user has requested to read adapter data. Call our * routine which does this. */ error = 0; mps_user_get_adapter_data(sc, (mps_adapter_data_t *)arg); break; case MPTIOCTL_GET_PCI_INFO: /* * The user has requested to read pci info. Call * our routine which does this. */ mps_lock(sc); error = 0; mps_user_read_pci_info(sc, (mps_pci_info_t *)arg); mps_unlock(sc); break; case MPTIOCTL_RESET_ADAPTER: mps_lock(sc); sc->port_enable_complete = 0; uint32_t reinit_start = time_uptime; error = mps_reinit(sc); /* Sleep for 300 second. */ msleep_ret = msleep(&sc->port_enable_complete, &sc->mps_mtx, PRIBIO, "mps_porten", 300 * hz); mps_unlock(sc); if (msleep_ret) printf("Port Enable did not complete after Diag " "Reset msleep error %d.\n", msleep_ret); else mps_dprint(sc, MPS_USER, "Hard Reset with Port Enable completed in %d seconds.\n", (uint32_t) (time_uptime - reinit_start)); break; case MPTIOCTL_DIAG_ACTION: /* * The user has done a diag buffer action. Call our routine * which does this. Only allow one diag action at one time. */ mps_lock(sc); error = mps_user_diag_action(sc, (mps_diag_action_t *)arg); mps_unlock(sc); break; case MPTIOCTL_EVENT_QUERY: /* * The user has done an event query. Call our routine which does * this. */ error = 0; mps_user_event_query(sc, (mps_event_query_t *)arg); break; case MPTIOCTL_EVENT_ENABLE: /* * The user has done an event enable. Call our routine which * does this. */ error = 0; mps_user_event_enable(sc, (mps_event_enable_t *)arg); break; case MPTIOCTL_EVENT_REPORT: /* * The user has done an event report. Call our routine which * does this. */ error = mps_user_event_report(sc, (mps_event_report_t *)arg); break; case MPTIOCTL_REG_ACCESS: /* * The user has requested register access. Call our routine * which does this. */ mps_lock(sc); error = mps_user_reg_access(sc, (mps_reg_access_t *)arg); mps_unlock(sc); break; case MPTIOCTL_BTDH_MAPPING: /* * The user has requested to translate a bus/target to a * DevHandle or a DevHandle to a bus/target. Call our routine * which does this. */ error = mps_user_btdh(sc, (mps_btdh_mapping_t *)arg); break; default: error = ENOIOCTL; break; } if (mps_page != NULL) free(mps_page, M_MPSUSER); return (error); } #ifdef COMPAT_FREEBSD32 struct mps_cfg_page_req32 { MPI2_CONFIG_PAGE_HEADER header; uint32_t page_address; uint32_t buf; int len; uint16_t ioc_status; }; struct mps_ext_cfg_page_req32 { MPI2_CONFIG_EXTENDED_PAGE_HEADER header; uint32_t page_address; uint32_t buf; int len; uint16_t ioc_status; }; struct mps_raid_action32 { uint8_t action; uint8_t volume_bus; uint8_t volume_id; uint8_t phys_disk_num; uint32_t action_data_word; uint32_t buf; int len; uint32_t volume_status; uint32_t action_data[4]; uint16_t action_status; uint16_t ioc_status; uint8_t write; }; struct mps_usr_command32 { uint32_t req; uint32_t req_len; uint32_t rpl; uint32_t rpl_len; uint32_t buf; int len; uint32_t flags; }; #define MPSIO_READ_CFG_HEADER32 _IOWR('M', 200, struct mps_cfg_page_req32) #define MPSIO_READ_CFG_PAGE32 _IOWR('M', 201, struct mps_cfg_page_req32) #define MPSIO_READ_EXT_CFG_HEADER32 _IOWR('M', 202, struct mps_ext_cfg_page_req32) #define MPSIO_READ_EXT_CFG_PAGE32 _IOWR('M', 203, struct mps_ext_cfg_page_req32) #define MPSIO_WRITE_CFG_PAGE32 _IOWR('M', 204, struct mps_cfg_page_req32) #define MPSIO_RAID_ACTION32 _IOWR('M', 205, struct mps_raid_action32) #define MPSIO_MPS_COMMAND32 _IOWR('M', 210, struct mps_usr_command32) static int mps_ioctl32(struct cdev *dev, u_long cmd32, void *_arg, int flag, struct thread *td) { struct mps_cfg_page_req32 *page32 = _arg; struct mps_ext_cfg_page_req32 *ext32 = _arg; struct mps_raid_action32 *raid32 = _arg; struct mps_usr_command32 *user32 = _arg; union { struct mps_cfg_page_req page; struct mps_ext_cfg_page_req ext; struct mps_raid_action raid; struct mps_usr_command user; } arg; u_long cmd; int error; switch (cmd32) { case MPSIO_READ_CFG_HEADER32: case MPSIO_READ_CFG_PAGE32: case MPSIO_WRITE_CFG_PAGE32: if (cmd32 == MPSIO_READ_CFG_HEADER32) cmd = MPSIO_READ_CFG_HEADER; else if (cmd32 == MPSIO_READ_CFG_PAGE32) cmd = MPSIO_READ_CFG_PAGE; else cmd = MPSIO_WRITE_CFG_PAGE; CP(*page32, arg.page, header); CP(*page32, arg.page, page_address); PTRIN_CP(*page32, arg.page, buf); CP(*page32, arg.page, len); CP(*page32, arg.page, ioc_status); break; case MPSIO_READ_EXT_CFG_HEADER32: case MPSIO_READ_EXT_CFG_PAGE32: if (cmd32 == MPSIO_READ_EXT_CFG_HEADER32) cmd = MPSIO_READ_EXT_CFG_HEADER; else cmd = MPSIO_READ_EXT_CFG_PAGE; CP(*ext32, arg.ext, header); CP(*ext32, arg.ext, page_address); PTRIN_CP(*ext32, arg.ext, buf); CP(*ext32, arg.ext, len); CP(*ext32, arg.ext, ioc_status); break; case MPSIO_RAID_ACTION32: cmd = MPSIO_RAID_ACTION; CP(*raid32, arg.raid, action); CP(*raid32, arg.raid, volume_bus); CP(*raid32, arg.raid, volume_id); CP(*raid32, arg.raid, phys_disk_num); CP(*raid32, arg.raid, action_data_word); PTRIN_CP(*raid32, arg.raid, buf); CP(*raid32, arg.raid, len); CP(*raid32, arg.raid, volume_status); bcopy(raid32->action_data, arg.raid.action_data, sizeof arg.raid.action_data); CP(*raid32, arg.raid, ioc_status); CP(*raid32, arg.raid, write); break; case MPSIO_MPS_COMMAND32: cmd = MPSIO_MPS_COMMAND; PTRIN_CP(*user32, arg.user, req); CP(*user32, arg.user, req_len); PTRIN_CP(*user32, arg.user, rpl); CP(*user32, arg.user, rpl_len); PTRIN_CP(*user32, arg.user, buf); CP(*user32, arg.user, len); CP(*user32, arg.user, flags); break; default: return (ENOIOCTL); } error = mps_ioctl(dev, cmd, &arg, flag, td); if (error == 0 && (cmd32 & IOC_OUT) != 0) { switch (cmd32) { case MPSIO_READ_CFG_HEADER32: case MPSIO_READ_CFG_PAGE32: case MPSIO_WRITE_CFG_PAGE32: CP(arg.page, *page32, header); CP(arg.page, *page32, page_address); PTROUT_CP(arg.page, *page32, buf); CP(arg.page, *page32, len); CP(arg.page, *page32, ioc_status); break; case MPSIO_READ_EXT_CFG_HEADER32: case MPSIO_READ_EXT_CFG_PAGE32: CP(arg.ext, *ext32, header); CP(arg.ext, *ext32, page_address); PTROUT_CP(arg.ext, *ext32, buf); CP(arg.ext, *ext32, len); CP(arg.ext, *ext32, ioc_status); break; case MPSIO_RAID_ACTION32: CP(arg.raid, *raid32, action); CP(arg.raid, *raid32, volume_bus); CP(arg.raid, *raid32, volume_id); CP(arg.raid, *raid32, phys_disk_num); CP(arg.raid, *raid32, action_data_word); PTROUT_CP(arg.raid, *raid32, buf); CP(arg.raid, *raid32, len); CP(arg.raid, *raid32, volume_status); bcopy(arg.raid.action_data, raid32->action_data, sizeof arg.raid.action_data); CP(arg.raid, *raid32, ioc_status); CP(arg.raid, *raid32, write); break; case MPSIO_MPS_COMMAND32: PTROUT_CP(arg.user, *user32, req); CP(arg.user, *user32, req_len); PTROUT_CP(arg.user, *user32, rpl); CP(arg.user, *user32, rpl_len); PTROUT_CP(arg.user, *user32, buf); CP(arg.user, *user32, len); CP(arg.user, *user32, flags); break; } } return (error); } #endif /* COMPAT_FREEBSD32 */ static int mps_ioctl_devsw(struct cdev *dev, u_long com, caddr_t arg, int flag, struct thread *td) { #ifdef COMPAT_FREEBSD32 if (SV_CURPROC_FLAG(SV_ILP32)) return (mps_ioctl32(dev, com, arg, flag, td)); #endif return (mps_ioctl(dev, com, arg, flag, td)); } Index: head/sys/dev/mps/mpsvar.h =================================================================== --- head/sys/dev/mps/mpsvar.h (revision 342385) +++ head/sys/dev/mps/mpsvar.h (revision 342386) @@ -1,857 +1,859 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2009 Yahoo! Inc. * Copyright (c) 2011-2015 LSI Corp. * Copyright (c) 2013-2015 Avago Technologies * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. * * Avago Technologies (LSI) MPT-Fusion Host Adapter FreeBSD * * $FreeBSD$ */ #ifndef _MPSVAR_H #define _MPSVAR_H #define MPS_DRIVER_VERSION "21.02.00.00-fbsd" #define MPS_DB_MAX_WAIT 2500 #define MPS_REQ_FRAMES 2048 #define MPS_PRI_REQ_FRAMES 128 #define MPS_EVT_REPLY_FRAMES 32 #define MPS_REPLY_FRAMES MPS_REQ_FRAMES #define MPS_CHAIN_FRAMES 16384 #define MPS_MAXIO_PAGES (-1) #define MPS_SENSE_LEN SSD_FULL_SIZE #define MPS_MSI_MAX 1 #define MPS_MSIX_MAX 16 #define MPS_SGE64_SIZE 12 #define MPS_SGE32_SIZE 8 #define MPS_SGC_SIZE 8 #define CAN_SLEEP 1 #define NO_SLEEP 0 #define MPS_PERIODIC_DELAY 1 /* 1 second heartbeat/watchdog check */ #define MPS_ATA_ID_TIMEOUT 5 /* 5 second timeout for SATA ID cmd */ #define MPS_MISSING_CHECK_DELAY 10 /* 10 seconds between missing check */ #define MPS_SCSI_RI_INVALID_FRAME (0x00000002) #define DEFAULT_SPINUP_WAIT 3 /* seconds to wait for spinup */ #include /* * host mapping related macro definitions */ #define MPS_MAPTABLE_BAD_IDX 0xFFFFFFFF #define MPS_DPM_BAD_IDX 0xFFFF #define MPS_ENCTABLE_BAD_IDX 0xFF #define MPS_MAX_MISSING_COUNT 0x0F #define MPS_DEV_RESERVED 0x20000000 #define MPS_MAP_IN_USE 0x10000000 #define MPS_MAP_BAD_ID 0xFFFFFFFF /* * WarpDrive controller */ #define MPS_CHIP_WD_DEVICE_ID 0x007E #define MPS_WD_LSI_OEM 0x80 #define MPS_WD_HIDE_EXPOSE_MASK 0x03 #define MPS_WD_HIDE_ALWAYS 0x00 #define MPS_WD_EXPOSE_ALWAYS 0x01 #define MPS_WD_HIDE_IF_VOLUME 0x02 #define MPS_WD_RETRY 0x01 #define MPS_MAN_PAGE10_SIZE 0x5C /* Hardcode for now */ #define MPS_MAX_DISKS_IN_VOL 10 /* * WarpDrive Event Logging */ #define MPI2_WD_LOG_ENTRY 0x8002 #define MPI2_WD_SSD_THROTTLING 0x0041 #define MPI2_WD_DRIVE_LIFE_WARN 0x0043 #define MPI2_WD_DRIVE_LIFE_DEAD 0x0044 #define MPI2_WD_RAIL_MON_FAIL 0x004D typedef uint8_t u8; typedef uint16_t u16; typedef uint32_t u32; typedef uint64_t u64; /** * struct dev_mapping_table - device mapping information * @physical_id: SAS address for drives or WWID for RAID volumes * @device_info: bitfield provides detailed info about the device * @phy_bits: bitfields indicating controller phys * @dpm_entry_num: index of this device in device persistent map table * @dev_handle: device handle for the device pointed by this entry * @id: target id * @missing_count: number of times the device not detected by driver * @hide_flag: Hide this physical disk/not (foreign configuration) * @init_complete: Whether the start of the day checks completed or not */ struct dev_mapping_table { u64 physical_id; u32 device_info; u32 phy_bits; u16 dpm_entry_num; u16 dev_handle; u16 reserved1; u16 id; u8 missing_count; u8 init_complete; u8 TLR_bits; u8 reserved2; }; /** * struct enc_mapping_table - mapping information about an enclosure * @enclosure_id: Logical ID of this enclosure * @start_index: index to the entry in dev_mapping_table * @phy_bits: bitfields indicating controller phys * @dpm_entry_num: index of this enclosure in device persistent map table * @enc_handle: device handle for the enclosure pointed by this entry * @num_slots: number of slots in the enclosure * @start_slot: Starting slot id * @missing_count: number of times the device not detected by driver * @removal_flag: used to mark the device for removal * @skip_search: used as a flag to include/exclude enclosure for search * @init_complete: Whether the start of the day checks completed or not */ struct enc_mapping_table { u64 enclosure_id; u32 start_index; u32 phy_bits; u16 dpm_entry_num; u16 enc_handle; u16 num_slots; u16 start_slot; u8 missing_count; u8 removal_flag; u8 skip_search; u8 init_complete; }; /** * struct map_removal_table - entries to be removed from mapping table * @dpm_entry_num: index of this device in device persistent map table * @dev_handle: device handle for the device pointed by this entry */ struct map_removal_table{ u16 dpm_entry_num; u16 dev_handle; }; typedef struct mps_fw_diagnostic_buffer { size_t size; uint8_t extended_type; uint8_t buffer_type; uint8_t force_release; uint32_t product_specific[23]; uint8_t immediate; uint8_t enabled; uint8_t valid_data; uint8_t owned_by_firmware; uint32_t unique_id; } mps_fw_diagnostic_buffer_t; struct mps_softc; struct mps_command; struct mpssas_softc; union ccb; struct mpssas_target; struct mps_column_map; MALLOC_DECLARE(M_MPT2); typedef void mps_evt_callback_t(struct mps_softc *, uintptr_t, MPI2_EVENT_NOTIFICATION_REPLY *reply); typedef void mps_command_callback_t(struct mps_softc *, struct mps_command *cm); struct mps_chain { TAILQ_ENTRY(mps_chain) chain_link; MPI2_SGE_IO_UNION *chain; uint32_t chain_busaddr; }; /* * This needs to be at least 2 to support SMP passthrough. */ #define MPS_IOVEC_COUNT 2 struct mps_command { TAILQ_ENTRY(mps_command) cm_link; TAILQ_ENTRY(mps_command) cm_recovery; struct mps_softc *cm_sc; union ccb *cm_ccb; void *cm_data; u_int cm_length; u_int cm_out_len; struct uio cm_uio; struct iovec cm_iovec[MPS_IOVEC_COUNT]; u_int cm_max_segs; u_int cm_sglsize; MPI2_SGE_IO_UNION *cm_sge; uint8_t *cm_req; uint8_t *cm_reply; uint32_t cm_reply_data; mps_command_callback_t *cm_complete; void *cm_complete_data; struct mpssas_target *cm_targ; MPI2_REQUEST_DESCRIPTOR_UNION cm_desc; u_int cm_lun; u_int cm_flags; #define MPS_CM_FLAGS_POLLED (1 << 0) #define MPS_CM_FLAGS_COMPLETE (1 << 1) #define MPS_CM_FLAGS_SGE_SIMPLE (1 << 2) #define MPS_CM_FLAGS_DATAOUT (1 << 3) #define MPS_CM_FLAGS_DATAIN (1 << 4) #define MPS_CM_FLAGS_WAKEUP (1 << 5) #define MPS_CM_FLAGS_DD_IO (1 << 6) #define MPS_CM_FLAGS_USE_UIO (1 << 7) #define MPS_CM_FLAGS_SMP_PASS (1 << 8) #define MPS_CM_FLAGS_CHAIN_FAILED (1 << 9) #define MPS_CM_FLAGS_ERROR_MASK MPS_CM_FLAGS_CHAIN_FAILED #define MPS_CM_FLAGS_USE_CCB (1 << 10) #define MPS_CM_FLAGS_SATA_ID_TIMEOUT (1 << 11) u_int cm_state; #define MPS_CM_STATE_FREE 0 #define MPS_CM_STATE_BUSY 1 #define MPS_CM_STATE_TIMEDOUT 2 #define MPS_CM_STATE_INQUEUE 3 bus_dmamap_t cm_dmamap; struct scsi_sense_data *cm_sense; TAILQ_HEAD(, mps_chain) cm_chain_list; uint32_t cm_req_busaddr; uint32_t cm_sense_busaddr; struct callout cm_callout; mps_command_callback_t *cm_timeout_handler; }; struct mps_column_map { uint16_t dev_handle; uint8_t phys_disk_num; }; struct mps_event_handle { TAILQ_ENTRY(mps_event_handle) eh_list; mps_evt_callback_t *callback; void *data; u32 mask[MPI2_EVENT_NOTIFY_EVENTMASK_WORDS]; }; struct mps_busdma_context { int completed; int abandoned; int error; bus_addr_t *addr; struct mps_softc *softc; bus_dmamap_t buffer_dmamap; bus_dma_tag_t buffer_dmat; }; struct mps_queue { struct mps_softc *sc; int qnum; MPI2_REPLY_DESCRIPTORS_UNION *post_queue; int replypostindex; #ifdef notyet ck_ring_buffer_t *ringmem; ck_ring_buffer_t *chainmem; ck_ring_t req_ring; ck_ring_t chain_ring; #endif bus_dma_tag_t buffer_dmat; int io_cmds_highwater; int chain_free_lowwater; int chain_alloc_fail; struct resource *irq; void *intrhand; int irq_rid; }; struct mps_softc { device_t mps_dev; struct cdev *mps_cdev; u_int mps_flags; #define MPS_FLAGS_INTX (1 << 0) #define MPS_FLAGS_MSI (1 << 1) #define MPS_FLAGS_BUSY (1 << 2) #define MPS_FLAGS_SHUTDOWN (1 << 3) #define MPS_FLAGS_DIAGRESET (1 << 4) #define MPS_FLAGS_ATTACH_DONE (1 << 5) #define MPS_FLAGS_WD_AVAILABLE (1 << 6) #define MPS_FLAGS_REALLOCATED (1 << 7) u_int mps_debug; u_int msi_msgs; u_int reqframesz; u_int replyframesz; int tm_cmds_active; int io_cmds_active; int io_cmds_highwater; int chain_free; int max_chains; int max_io_pages; u_int maxio; int chain_free_lowwater; u_int enable_ssu; int spinup_wait_time; int use_phynum; uint64_t chain_alloc_fail; struct sysctl_ctx_list sysctl_ctx; struct sysctl_oid *sysctl_tree; char fw_version[16]; struct mps_command *commands; struct mps_chain *chains; struct callout periodic; struct callout device_check_callout; struct mps_queue *queues; struct mpssas_softc *sassc; TAILQ_HEAD(, mps_command) req_list; TAILQ_HEAD(, mps_command) high_priority_req_list; TAILQ_HEAD(, mps_chain) chain_list; TAILQ_HEAD(, mps_command) tm_list; int replypostindex; int replyfreeindex; struct resource *mps_regs_resource; bus_space_handle_t mps_bhandle; bus_space_tag_t mps_btag; int mps_regs_rid; bus_dma_tag_t mps_parent_dmat; bus_dma_tag_t buffer_dmat; MPI2_IOC_FACTS_REPLY *facts; int num_reqs; int num_prireqs; int num_replies; int num_chains; int fqdepth; /* Free queue */ int pqdepth; /* Post queue */ u32 event_mask[MPI2_EVENT_NOTIFY_EVENTMASK_WORDS]; TAILQ_HEAD(, mps_event_handle) event_list; struct mps_event_handle *mps_log_eh; struct mtx mps_mtx; struct intr_config_hook mps_ich; uint8_t *req_frames; bus_addr_t req_busaddr; bus_dma_tag_t req_dmat; bus_dmamap_t req_map; uint8_t *reply_frames; bus_addr_t reply_busaddr; bus_dma_tag_t reply_dmat; bus_dmamap_t reply_map; struct scsi_sense_data *sense_frames; bus_addr_t sense_busaddr; bus_dma_tag_t sense_dmat; bus_dmamap_t sense_map; uint8_t *chain_frames; bus_dma_tag_t chain_dmat; bus_dmamap_t chain_map; MPI2_REPLY_DESCRIPTORS_UNION *post_queue; bus_addr_t post_busaddr; uint32_t *free_queue; bus_addr_t free_busaddr; bus_dma_tag_t queues_dmat; bus_dmamap_t queues_map; uint8_t *fw_diag_buffer; bus_addr_t fw_diag_busaddr; bus_dma_tag_t fw_diag_dmat; bus_dmamap_t fw_diag_map; uint8_t ir_firmware; /* static config pages */ Mpi2IOCPage8_t ioc_pg8; /* host mapping support */ struct dev_mapping_table *mapping_table; struct enc_mapping_table *enclosure_table; struct map_removal_table *removal_table; uint8_t *dpm_entry_used; uint8_t *dpm_flush_entry; Mpi2DriverMappingPage0_t *dpm_pg0; uint16_t max_devices; uint16_t max_enclosures; uint16_t max_expanders; uint8_t max_volumes; uint8_t num_enc_table_entries; uint8_t num_rsvd_entries; uint16_t max_dpm_entries; uint8_t is_dpm_enable; uint8_t track_mapping_events; uint32_t pending_map_events; /* FW diag Buffer List */ mps_fw_diagnostic_buffer_t fw_diag_buffer_list[MPI2_DIAG_BUF_TYPE_COUNT]; /* Event Recording IOCTL support */ uint32_t events_to_record[4]; mps_event_entry_t recorded_events[MPS_EVENT_QUEUE_SIZE]; uint8_t event_index; uint32_t event_number; /* EEDP and TLR support */ uint8_t eedp_enabled; uint8_t control_TLR; /* Shutdown Event Handler */ eventhandler_tag shutdown_eh; /* To track topo events during reset */ #define MPS_DIAG_RESET_TIMEOUT 300000 uint8_t wait_for_port_enable; uint8_t port_enable_complete; uint8_t msleep_fake_chan; /* WD controller */ uint8_t WD_available; uint8_t WD_valid_config; uint8_t WD_hide_expose; /* Direct Drive for WarpDrive */ uint8_t DD_num_phys_disks; uint16_t DD_dev_handle; uint32_t DD_stripe_size; uint32_t DD_stripe_exponent; uint32_t DD_block_size; uint16_t DD_block_exponent; uint64_t DD_max_lba; struct mps_column_map DD_column_map[MPS_MAX_DISKS_IN_VOL]; /* StartStopUnit command handling at shutdown */ uint32_t SSU_refcount; uint8_t SSU_started; /* Configuration tunables */ u_int disable_msix; u_int disable_msi; u_int max_msix; u_int max_reqframes; u_int max_prireqframes; u_int max_replyframes; u_int max_evtframes; char exclude_ids[80]; struct timeval lastfail; }; struct mps_config_params { MPI2_CONFIG_EXT_PAGE_HEADER_UNION hdr; u_int action; u_int page_address; /* Attributes, not a phys address */ u_int status; void *buffer; u_int length; int timeout; void (*callback)(struct mps_softc *, struct mps_config_params *); void *cbdata; }; struct scsi_read_capacity_eedp { uint8_t addr[8]; uint8_t length[4]; uint8_t protect; }; static __inline uint32_t mps_regread(struct mps_softc *sc, uint32_t offset) { return (bus_space_read_4(sc->mps_btag, sc->mps_bhandle, offset)); } static __inline void mps_regwrite(struct mps_softc *sc, uint32_t offset, uint32_t val) { bus_space_write_4(sc->mps_btag, sc->mps_bhandle, offset, val); } /* free_queue must have Little Endian address * TODO- cm_reply_data is unwanted. We can remove it. * */ static __inline void mps_free_reply(struct mps_softc *sc, uint32_t busaddr) { if (++sc->replyfreeindex >= sc->fqdepth) sc->replyfreeindex = 0; sc->free_queue[sc->replyfreeindex] = htole32(busaddr); mps_regwrite(sc, MPI2_REPLY_FREE_HOST_INDEX_OFFSET, sc->replyfreeindex); } static __inline struct mps_chain * mps_alloc_chain(struct mps_softc *sc) { struct mps_chain *chain; if ((chain = TAILQ_FIRST(&sc->chain_list)) != NULL) { TAILQ_REMOVE(&sc->chain_list, chain, chain_link); sc->chain_free--; if (sc->chain_free < sc->chain_free_lowwater) sc->chain_free_lowwater = sc->chain_free; } else sc->chain_alloc_fail++; return (chain); } static __inline void mps_free_chain(struct mps_softc *sc, struct mps_chain *chain) { sc->chain_free++; TAILQ_INSERT_TAIL(&sc->chain_list, chain, chain_link); } static __inline void mps_free_command(struct mps_softc *sc, struct mps_command *cm) { struct mps_chain *chain, *chain_temp; KASSERT(cm->cm_state == MPS_CM_STATE_BUSY, ("state not busy\n")); if (cm->cm_reply != NULL) mps_free_reply(sc, cm->cm_reply_data); cm->cm_reply = NULL; cm->cm_flags = 0; cm->cm_complete = NULL; cm->cm_complete_data = NULL; cm->cm_ccb = NULL; cm->cm_targ = NULL; cm->cm_max_segs = 0; cm->cm_lun = 0; cm->cm_state = MPS_CM_STATE_FREE; cm->cm_data = NULL; cm->cm_length = 0; cm->cm_out_len = 0; cm->cm_sglsize = 0; cm->cm_sge = NULL; TAILQ_FOREACH_SAFE(chain, &cm->cm_chain_list, chain_link, chain_temp) { TAILQ_REMOVE(&cm->cm_chain_list, chain, chain_link); mps_free_chain(sc, chain); } TAILQ_INSERT_TAIL(&sc->req_list, cm, cm_link); } static __inline struct mps_command * mps_alloc_command(struct mps_softc *sc) { struct mps_command *cm; cm = TAILQ_FIRST(&sc->req_list); if (cm == NULL) return (NULL); KASSERT(cm->cm_state == MPS_CM_STATE_FREE, ("mps: Allocating busy command\n")); TAILQ_REMOVE(&sc->req_list, cm, cm_link); cm->cm_state = MPS_CM_STATE_BUSY; cm->cm_timeout_handler = NULL; return (cm); } static __inline void mps_free_high_priority_command(struct mps_softc *sc, struct mps_command *cm) { struct mps_chain *chain, *chain_temp; KASSERT(cm->cm_state == MPS_CM_STATE_BUSY, ("state not busy\n")); if (cm->cm_reply != NULL) mps_free_reply(sc, cm->cm_reply_data); cm->cm_reply = NULL; cm->cm_flags = 0; cm->cm_complete = NULL; cm->cm_complete_data = NULL; cm->cm_ccb = NULL; cm->cm_targ = NULL; cm->cm_lun = 0; cm->cm_state = MPS_CM_STATE_FREE; TAILQ_FOREACH_SAFE(chain, &cm->cm_chain_list, chain_link, chain_temp) { TAILQ_REMOVE(&cm->cm_chain_list, chain, chain_link); mps_free_chain(sc, chain); } TAILQ_INSERT_TAIL(&sc->high_priority_req_list, cm, cm_link); } static __inline struct mps_command * mps_alloc_high_priority_command(struct mps_softc *sc) { struct mps_command *cm; cm = TAILQ_FIRST(&sc->high_priority_req_list); if (cm == NULL) return (NULL); KASSERT(cm->cm_state == MPS_CM_STATE_FREE, ("mps: Allocating busy command\n")); TAILQ_REMOVE(&sc->high_priority_req_list, cm, cm_link); cm->cm_state = MPS_CM_STATE_BUSY; cm->cm_timeout_handler = NULL; + cm->cm_desc.HighPriority.RequestFlags = + MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY; return (cm); } static __inline void mps_lock(struct mps_softc *sc) { mtx_lock(&sc->mps_mtx); } static __inline void mps_unlock(struct mps_softc *sc) { mtx_unlock(&sc->mps_mtx); } #define MPS_INFO (1 << 0) /* Basic info */ #define MPS_FAULT (1 << 1) /* Hardware faults */ #define MPS_EVENT (1 << 2) /* Event data from the controller */ #define MPS_LOG (1 << 3) /* Log data from the controller */ #define MPS_RECOVERY (1 << 4) /* Command error recovery tracing */ #define MPS_ERROR (1 << 5) /* Parameter errors, programming bugs */ #define MPS_INIT (1 << 6) /* Things related to system init */ #define MPS_XINFO (1 << 7) /* More detailed/noisy info */ #define MPS_USER (1 << 8) /* Trace user-generated commands */ #define MPS_MAPPING (1 << 9) /* Trace device mappings */ #define MPS_TRACE (1 << 10) /* Function-by-function trace */ #define MPS_SSU_DISABLE_SSD_DISABLE_HDD 0 #define MPS_SSU_ENABLE_SSD_DISABLE_HDD 1 #define MPS_SSU_DISABLE_SSD_ENABLE_HDD 2 #define MPS_SSU_ENABLE_SSD_ENABLE_HDD 3 #define mps_printf(sc, args...) \ device_printf((sc)->mps_dev, ##args) #define mps_print_field(sc, msg, args...) \ printf("\t" msg, ##args) #define mps_vprintf(sc, args...) \ do { \ if (bootverbose) \ mps_printf(sc, ##args); \ } while (0) #define mps_dprint(sc, level, msg, args...) \ do { \ if ((sc)->mps_debug & (level)) \ device_printf((sc)->mps_dev, msg, ##args); \ } while (0) #define MPS_PRINTFIELD_START(sc, tag...) \ mps_printf((sc), ##tag); \ mps_print_field((sc), ":\n") #define MPS_PRINTFIELD_END(sc, tag) \ mps_printf((sc), tag "\n") #define MPS_PRINTFIELD(sc, facts, attr, fmt) \ mps_print_field((sc), #attr ": " #fmt "\n", (facts)->attr) #define MPS_FUNCTRACE(sc) \ mps_dprint((sc), MPS_TRACE, "%s\n", __func__) #define CAN_SLEEP 1 #define NO_SLEEP 0 static __inline void mps_from_u64(uint64_t data, U64 *mps) { (mps)->High = htole32((uint32_t)((data) >> 32)); (mps)->Low = htole32((uint32_t)((data) & 0xffffffff)); } static __inline uint64_t mps_to_u64(U64 *data) { return (((uint64_t)le32toh(data->High) << 32) | le32toh(data->Low)); } static __inline void mps_mask_intr(struct mps_softc *sc) { uint32_t mask; mask = mps_regread(sc, MPI2_HOST_INTERRUPT_MASK_OFFSET); mask |= MPI2_HIM_REPLY_INT_MASK; mps_regwrite(sc, MPI2_HOST_INTERRUPT_MASK_OFFSET, mask); } static __inline void mps_unmask_intr(struct mps_softc *sc) { uint32_t mask; mask = mps_regread(sc, MPI2_HOST_INTERRUPT_MASK_OFFSET); mask &= ~MPI2_HIM_REPLY_INT_MASK; mps_regwrite(sc, MPI2_HOST_INTERRUPT_MASK_OFFSET, mask); } int mps_pci_setup_interrupts(struct mps_softc *sc); void mps_pci_free_interrupts(struct mps_softc *sc); int mps_pci_restore(struct mps_softc *sc); void mps_get_tunables(struct mps_softc *sc); int mps_attach(struct mps_softc *sc); int mps_free(struct mps_softc *sc); void mps_intr(void *); void mps_intr_msi(void *); void mps_intr_locked(void *); int mps_register_events(struct mps_softc *, u32 *, mps_evt_callback_t *, void *, struct mps_event_handle **); int mps_restart(struct mps_softc *); int mps_update_events(struct mps_softc *, struct mps_event_handle *, u32 *); void mps_deregister_events(struct mps_softc *, struct mps_event_handle *); int mps_push_sge(struct mps_command *, void *, size_t, int); int mps_add_dmaseg(struct mps_command *, vm_paddr_t, size_t, u_int, int); int mps_attach_sas(struct mps_softc *sc); int mps_detach_sas(struct mps_softc *sc); int mps_read_config_page(struct mps_softc *, struct mps_config_params *); int mps_write_config_page(struct mps_softc *, struct mps_config_params *); void mps_memaddr_cb(void *, bus_dma_segment_t *, int , int ); void mps_memaddr_wait_cb(void *, bus_dma_segment_t *, int , int ); void mpi_init_sge(struct mps_command *cm, void *req, void *sge); int mps_attach_user(struct mps_softc *); void mps_detach_user(struct mps_softc *); void mpssas_record_event(struct mps_softc *sc, MPI2_EVENT_NOTIFICATION_REPLY *event_reply); int mps_map_command(struct mps_softc *sc, struct mps_command *cm); int mps_wait_command(struct mps_softc *sc, struct mps_command **cm, int timeout, int sleep_flag); int mps_config_get_bios_pg3(struct mps_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2BiosPage3_t *config_page); int mps_config_get_raid_volume_pg0(struct mps_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2RaidVolPage0_t *config_page, u32 page_address); int mps_config_get_ioc_pg8(struct mps_softc *sc, Mpi2ConfigReply_t *, Mpi2IOCPage8_t *); int mps_config_get_man_pg10(struct mps_softc *sc, Mpi2ConfigReply_t *mpi_reply); int mps_config_get_sas_device_pg0(struct mps_softc *, Mpi2ConfigReply_t *, Mpi2SasDevicePage0_t *, u32 , u16 ); int mps_config_get_dpm_pg0(struct mps_softc *, Mpi2ConfigReply_t *, Mpi2DriverMappingPage0_t *, u16 ); int mps_config_get_raid_volume_pg1(struct mps_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2RaidVolPage1_t *config_page, u32 form, u16 handle); int mps_config_get_volume_wwid(struct mps_softc *sc, u16 volume_handle, u64 *wwid); int mps_config_get_raid_pd_pg0(struct mps_softc *sc, Mpi2ConfigReply_t *mpi_reply, Mpi2RaidPhysDiskPage0_t *config_page, u32 page_address); void mpssas_ir_shutdown(struct mps_softc *sc, int howto); int mps_reinit(struct mps_softc *sc); void mpssas_handle_reinit(struct mps_softc *sc); void mps_base_static_config_pages(struct mps_softc *sc); void mps_wd_config_pages(struct mps_softc *sc); int mps_mapping_initialize(struct mps_softc *); void mps_mapping_topology_change_event(struct mps_softc *, Mpi2EventDataSasTopologyChangeList_t *); void mps_mapping_free_memory(struct mps_softc *sc); int mps_config_set_dpm_pg0(struct mps_softc *, Mpi2ConfigReply_t *, Mpi2DriverMappingPage0_t *, u16 ); void mps_mapping_exit(struct mps_softc *); void mps_mapping_check_devices(void *); int mps_mapping_allocate_memory(struct mps_softc *sc); unsigned int mps_mapping_get_tid(struct mps_softc *, uint64_t , u16); unsigned int mps_mapping_get_tid_from_handle(struct mps_softc *sc, u16 handle); unsigned int mps_mapping_get_raid_tid(struct mps_softc *sc, u64 wwid, u16 volHandle); unsigned int mps_mapping_get_raid_tid_from_handle(struct mps_softc *sc, u16 volHandle); void mps_mapping_enclosure_dev_status_change_event(struct mps_softc *, Mpi2EventDataSasEnclDevStatusChange_t *event_data); void mps_mapping_ir_config_change_event(struct mps_softc *sc, Mpi2EventDataIrConfigChangeList_t *event_data); int mps_mapping_dump(SYSCTL_HANDLER_ARGS); int mps_mapping_encl_dump(SYSCTL_HANDLER_ARGS); void mpssas_evt_handler(struct mps_softc *sc, uintptr_t data, MPI2_EVENT_NOTIFICATION_REPLY *event); void mpssas_prepare_remove(struct mpssas_softc *sassc, uint16_t handle); void mpssas_prepare_volume_remove(struct mpssas_softc *sassc, uint16_t handle); int mpssas_startup(struct mps_softc *sc); struct mpssas_target * mpssas_find_target_by_handle(struct mpssas_softc *, int, uint16_t); void mpssas_realloc_targets(struct mps_softc *sc, int maxtargets); struct mps_command * mpssas_alloc_tm(struct mps_softc *sc); void mpssas_free_tm(struct mps_softc *sc, struct mps_command *tm); void mpssas_release_simq_reinit(struct mpssas_softc *sassc); int mpssas_send_reset(struct mps_softc *sc, struct mps_command *tm, uint8_t type); SYSCTL_DECL(_hw_mps); /* Compatibility shims for different OS versions */ #if __FreeBSD_version >= 800001 #define mps_kproc_create(func, farg, proc_ptr, flags, stackpgs, fmtstr, arg) \ kproc_create(func, farg, proc_ptr, flags, stackpgs, fmtstr, arg) #define mps_kproc_exit(arg) kproc_exit(arg) #else #define mps_kproc_create(func, farg, proc_ptr, flags, stackpgs, fmtstr, arg) \ kthread_create(func, farg, proc_ptr, flags, stackpgs, fmtstr, arg) #define mps_kproc_exit(arg) kthread_exit(arg) #endif #if defined(CAM_PRIORITY_XPT) #define MPS_PRIORITY_XPT CAM_PRIORITY_XPT #else #define MPS_PRIORITY_XPT 5 #endif #if __FreeBSD_version < 800107 // Prior to FreeBSD-8.0 scp3_flags was not defined. #define spc3_flags reserved #define SPC3_SID_PROTECT 0x01 #define SPC3_SID_3PC 0x08 #define SPC3_SID_TPGS_MASK 0x30 #define SPC3_SID_TPGS_IMPLICIT 0x10 #define SPC3_SID_TPGS_EXPLICIT 0x20 #define SPC3_SID_ACC 0x40 #define SPC3_SID_SCCS 0x80 #define CAM_PRIORITY_NORMAL CAM_PRIORITY_NONE #endif #endif