1 /* bnx2fc_io.c: QLogic Linux FCoE offload driver. 2 * IO manager and SCSI IO processing. 3 * 4 * Copyright (c) 2008-2013 Broadcom Corporation 5 * Copyright (c) 2014-2016 QLogic Corporation 6 * Copyright (c) 2016-2017 Cavium Inc. 7 * 8 * This program is free software; you can redistribute it and/or modify 9 * it under the terms of the GNU General Public License as published by 10 * the Free Software Foundation. 11 * 12 * Written by: Bhanu Prakash Gollapudi (bprakash@broadcom.com) 13 */ 14 15 #include "bnx2fc.h" 16 17 #define RESERVE_FREE_LIST_INDEX num_possible_cpus() 18 19 static int bnx2fc_split_bd(struct bnx2fc_cmd *io_req, u64 addr, int sg_len, 20 int bd_index); 21 static int bnx2fc_map_sg(struct bnx2fc_cmd *io_req); 22 static int bnx2fc_build_bd_list_from_sg(struct bnx2fc_cmd *io_req); 23 static void bnx2fc_unmap_sg_list(struct bnx2fc_cmd *io_req); 24 static void bnx2fc_free_mp_resc(struct bnx2fc_cmd *io_req); 25 static void bnx2fc_parse_fcp_rsp(struct bnx2fc_cmd *io_req, 26 struct fcoe_fcp_rsp_payload *fcp_rsp, 27 u8 num_rq, unsigned char *rq_data); 28 29 void bnx2fc_cmd_timer_set(struct bnx2fc_cmd *io_req, 30 unsigned int timer_msec) 31 { 32 struct bnx2fc_interface *interface = io_req->port->priv; 33 34 if (queue_delayed_work(interface->timer_work_queue, 35 &io_req->timeout_work, 36 msecs_to_jiffies(timer_msec))) 37 kref_get(&io_req->refcount); 38 } 39 40 static void bnx2fc_cmd_timeout(struct work_struct *work) 41 { 42 struct bnx2fc_cmd *io_req = container_of(work, struct bnx2fc_cmd, 43 timeout_work.work); 44 u8 cmd_type = io_req->cmd_type; 45 struct bnx2fc_rport *tgt = io_req->tgt; 46 int rc; 47 48 BNX2FC_IO_DBG(io_req, "cmd_timeout, cmd_type = %d," 49 "req_flags = %lx\n", cmd_type, io_req->req_flags); 50 51 spin_lock_bh(&tgt->tgt_lock); 52 if (test_and_clear_bit(BNX2FC_FLAG_ISSUE_RRQ, &io_req->req_flags)) { 53 clear_bit(BNX2FC_FLAG_RETIRE_OXID, &io_req->req_flags); 54 /* 55 * ideally we should hold the io_req until RRQ complets, 56 * and release io_req from timeout hold. 57 */ 58 spin_unlock_bh(&tgt->tgt_lock); 59 bnx2fc_send_rrq(io_req); 60 return; 61 } 62 if (test_and_clear_bit(BNX2FC_FLAG_RETIRE_OXID, &io_req->req_flags)) { 63 BNX2FC_IO_DBG(io_req, "IO ready for reuse now\n"); 64 goto done; 65 } 66 67 switch (cmd_type) { 68 case BNX2FC_SCSI_CMD: 69 if (test_and_clear_bit(BNX2FC_FLAG_EH_ABORT, 70 &io_req->req_flags)) { 71 /* Handle eh_abort timeout */ 72 BNX2FC_IO_DBG(io_req, "eh_abort timed out\n"); 73 complete(&io_req->abts_done); 74 } else if (test_bit(BNX2FC_FLAG_ISSUE_ABTS, 75 &io_req->req_flags)) { 76 /* Handle internally generated ABTS timeout */ 77 BNX2FC_IO_DBG(io_req, "ABTS timed out refcnt = %d\n", 78 kref_read(&io_req->refcount)); 79 if (!(test_and_set_bit(BNX2FC_FLAG_ABTS_DONE, 80 &io_req->req_flags))) { 81 /* 82 * Cleanup and return original command to 83 * mid-layer. 84 */ 85 bnx2fc_initiate_cleanup(io_req); 86 kref_put(&io_req->refcount, bnx2fc_cmd_release); 87 spin_unlock_bh(&tgt->tgt_lock); 88 89 return; 90 } 91 } else { 92 /* Hanlde IO timeout */ 93 BNX2FC_IO_DBG(io_req, "IO timed out. issue ABTS\n"); 94 if (test_and_set_bit(BNX2FC_FLAG_IO_COMPL, 95 &io_req->req_flags)) { 96 BNX2FC_IO_DBG(io_req, "IO completed before " 97 " timer expiry\n"); 98 goto done; 99 } 100 101 if (!test_and_set_bit(BNX2FC_FLAG_ISSUE_ABTS, 102 &io_req->req_flags)) { 103 rc = bnx2fc_initiate_abts(io_req); 104 if (rc == SUCCESS) 105 goto done; 106 107 kref_put(&io_req->refcount, bnx2fc_cmd_release); 108 spin_unlock_bh(&tgt->tgt_lock); 109 110 return; 111 } else { 112 BNX2FC_IO_DBG(io_req, "IO already in " 113 "ABTS processing\n"); 114 } 115 } 116 break; 117 case BNX2FC_ELS: 118 119 if (test_bit(BNX2FC_FLAG_ISSUE_ABTS, &io_req->req_flags)) { 120 BNX2FC_IO_DBG(io_req, "ABTS for ELS timed out\n"); 121 122 if (!test_and_set_bit(BNX2FC_FLAG_ABTS_DONE, 123 &io_req->req_flags)) { 124 kref_put(&io_req->refcount, bnx2fc_cmd_release); 125 spin_unlock_bh(&tgt->tgt_lock); 126 127 return; 128 } 129 } else { 130 /* 131 * Handle ELS timeout. 132 * tgt_lock is used to sync compl path and timeout 133 * path. If els compl path is processing this IO, we 134 * have nothing to do here, just release the timer hold 135 */ 136 BNX2FC_IO_DBG(io_req, "ELS timed out\n"); 137 if (test_and_set_bit(BNX2FC_FLAG_ELS_DONE, 138 &io_req->req_flags)) 139 goto done; 140 141 /* Indicate the cb_func that this ELS is timed out */ 142 set_bit(BNX2FC_FLAG_ELS_TIMEOUT, &io_req->req_flags); 143 144 if ((io_req->cb_func) && (io_req->cb_arg)) { 145 io_req->cb_func(io_req->cb_arg); 146 io_req->cb_arg = NULL; 147 } 148 } 149 break; 150 default: 151 printk(KERN_ERR PFX "cmd_timeout: invalid cmd_type %d\n", 152 cmd_type); 153 break; 154 } 155 156 done: 157 /* release the cmd that was held when timer was set */ 158 kref_put(&io_req->refcount, bnx2fc_cmd_release); 159 spin_unlock_bh(&tgt->tgt_lock); 160 } 161 162 static void bnx2fc_scsi_done(struct bnx2fc_cmd *io_req, int err_code) 163 { 164 /* Called with host lock held */ 165 struct scsi_cmnd *sc_cmd = io_req->sc_cmd; 166 167 /* 168 * active_cmd_queue may have other command types as well, 169 * and during flush operation, we want to error back only 170 * scsi commands. 171 */ 172 if (io_req->cmd_type != BNX2FC_SCSI_CMD) 173 return; 174 175 BNX2FC_IO_DBG(io_req, "scsi_done. err_code = 0x%x\n", err_code); 176 if (test_bit(BNX2FC_FLAG_CMD_LOST, &io_req->req_flags)) { 177 /* Do not call scsi done for this IO */ 178 return; 179 } 180 181 bnx2fc_unmap_sg_list(io_req); 182 io_req->sc_cmd = NULL; 183 184 /* Sanity checks before returning command to mid-layer */ 185 if (!sc_cmd) { 186 printk(KERN_ERR PFX "scsi_done - sc_cmd NULL. " 187 "IO(0x%x) already cleaned up\n", 188 io_req->xid); 189 return; 190 } 191 if (!sc_cmd->device) { 192 pr_err(PFX "0x%x: sc_cmd->device is NULL.\n", io_req->xid); 193 return; 194 } 195 if (!sc_cmd->device->host) { 196 pr_err(PFX "0x%x: sc_cmd->device->host is NULL.\n", 197 io_req->xid); 198 return; 199 } 200 201 sc_cmd->result = err_code << 16; 202 203 BNX2FC_IO_DBG(io_req, "sc=%p, result=0x%x, retries=%d, allowed=%d\n", 204 sc_cmd, host_byte(sc_cmd->result), sc_cmd->retries, 205 sc_cmd->allowed); 206 scsi_set_resid(sc_cmd, scsi_bufflen(sc_cmd)); 207 bnx2fc_priv(sc_cmd)->io_req = NULL; 208 scsi_done(sc_cmd); 209 } 210 211 struct bnx2fc_cmd_mgr *bnx2fc_cmd_mgr_alloc(struct bnx2fc_hba *hba) 212 { 213 struct bnx2fc_cmd_mgr *cmgr; 214 struct io_bdt *bdt_info; 215 struct bnx2fc_cmd *io_req; 216 size_t len; 217 u32 mem_size; 218 u16 xid; 219 int i; 220 int num_ios, num_pri_ios; 221 size_t bd_tbl_sz; 222 int arr_sz = num_possible_cpus() + 1; 223 u16 min_xid = BNX2FC_MIN_XID; 224 u16 max_xid = hba->max_xid; 225 226 if (max_xid <= min_xid || max_xid == FC_XID_UNKNOWN) { 227 printk(KERN_ERR PFX "cmd_mgr_alloc: Invalid min_xid 0x%x \ 228 and max_xid 0x%x\n", min_xid, max_xid); 229 return NULL; 230 } 231 BNX2FC_MISC_DBG("min xid 0x%x, max xid 0x%x\n", min_xid, max_xid); 232 233 num_ios = max_xid - min_xid + 1; 234 len = (num_ios * (sizeof(struct bnx2fc_cmd *))); 235 len += sizeof(struct bnx2fc_cmd_mgr); 236 237 cmgr = kzalloc(len, GFP_KERNEL); 238 if (!cmgr) { 239 printk(KERN_ERR PFX "failed to alloc cmgr\n"); 240 return NULL; 241 } 242 243 cmgr->hba = hba; 244 cmgr->free_list = kzalloc_objs(*cmgr->free_list, arr_sz); 245 if (!cmgr->free_list) { 246 printk(KERN_ERR PFX "failed to alloc free_list\n"); 247 goto mem_err; 248 } 249 250 cmgr->free_list_lock = kzalloc_objs(*cmgr->free_list_lock, arr_sz); 251 if (!cmgr->free_list_lock) { 252 printk(KERN_ERR PFX "failed to alloc free_list_lock\n"); 253 kfree(cmgr->free_list); 254 cmgr->free_list = NULL; 255 goto mem_err; 256 } 257 258 cmgr->cmds = (struct bnx2fc_cmd **)(cmgr + 1); 259 260 for (i = 0; i < arr_sz; i++) { 261 INIT_LIST_HEAD(&cmgr->free_list[i]); 262 spin_lock_init(&cmgr->free_list_lock[i]); 263 } 264 265 /* 266 * Pre-allocated pool of bnx2fc_cmds. 267 * Last entry in the free list array is the free list 268 * of slow path requests. 269 */ 270 xid = BNX2FC_MIN_XID; 271 num_pri_ios = num_ios - hba->elstm_xids; 272 for (i = 0; i < num_ios; i++) { 273 io_req = kzalloc_obj(*io_req); 274 275 if (!io_req) { 276 printk(KERN_ERR PFX "failed to alloc io_req\n"); 277 goto mem_err; 278 } 279 280 INIT_LIST_HEAD(&io_req->link); 281 INIT_DELAYED_WORK(&io_req->timeout_work, bnx2fc_cmd_timeout); 282 283 io_req->xid = xid++; 284 if (i < num_pri_ios) 285 list_add_tail(&io_req->link, 286 &cmgr->free_list[io_req->xid % 287 num_possible_cpus()]); 288 else 289 list_add_tail(&io_req->link, 290 &cmgr->free_list[num_possible_cpus()]); 291 io_req++; 292 } 293 294 /* Allocate pool of io_bdts - one for each bnx2fc_cmd */ 295 mem_size = num_ios * sizeof(struct io_bdt *); 296 cmgr->io_bdt_pool = kzalloc(mem_size, GFP_KERNEL); 297 if (!cmgr->io_bdt_pool) { 298 printk(KERN_ERR PFX "failed to alloc io_bdt_pool\n"); 299 goto mem_err; 300 } 301 302 mem_size = sizeof(struct io_bdt); 303 for (i = 0; i < num_ios; i++) { 304 cmgr->io_bdt_pool[i] = kmalloc(mem_size, GFP_KERNEL); 305 if (!cmgr->io_bdt_pool[i]) { 306 printk(KERN_ERR PFX "failed to alloc " 307 "io_bdt_pool[%d]\n", i); 308 goto mem_err; 309 } 310 } 311 312 /* Allocate an map fcoe_bdt_ctx structures */ 313 bd_tbl_sz = BNX2FC_MAX_BDS_PER_CMD * sizeof(struct fcoe_bd_ctx); 314 for (i = 0; i < num_ios; i++) { 315 bdt_info = cmgr->io_bdt_pool[i]; 316 bdt_info->bd_tbl = dma_alloc_coherent(&hba->pcidev->dev, 317 bd_tbl_sz, 318 &bdt_info->bd_tbl_dma, 319 GFP_KERNEL); 320 if (!bdt_info->bd_tbl) { 321 printk(KERN_ERR PFX "failed to alloc " 322 "bdt_tbl[%d]\n", i); 323 goto mem_err; 324 } 325 } 326 327 return cmgr; 328 329 mem_err: 330 bnx2fc_cmd_mgr_free(cmgr); 331 return NULL; 332 } 333 334 void bnx2fc_cmd_mgr_free(struct bnx2fc_cmd_mgr *cmgr) 335 { 336 struct io_bdt *bdt_info; 337 struct bnx2fc_hba *hba = cmgr->hba; 338 size_t bd_tbl_sz; 339 u16 min_xid = BNX2FC_MIN_XID; 340 u16 max_xid = hba->max_xid; 341 int num_ios; 342 int i; 343 344 num_ios = max_xid - min_xid + 1; 345 346 /* Free fcoe_bdt_ctx structures */ 347 if (!cmgr->io_bdt_pool) 348 goto free_cmd_pool; 349 350 bd_tbl_sz = BNX2FC_MAX_BDS_PER_CMD * sizeof(struct fcoe_bd_ctx); 351 for (i = 0; i < num_ios; i++) { 352 bdt_info = cmgr->io_bdt_pool[i]; 353 if (bdt_info->bd_tbl) { 354 dma_free_coherent(&hba->pcidev->dev, bd_tbl_sz, 355 bdt_info->bd_tbl, 356 bdt_info->bd_tbl_dma); 357 bdt_info->bd_tbl = NULL; 358 } 359 } 360 361 /* Destroy io_bdt pool */ 362 for (i = 0; i < num_ios; i++) { 363 kfree(cmgr->io_bdt_pool[i]); 364 cmgr->io_bdt_pool[i] = NULL; 365 } 366 367 kfree(cmgr->io_bdt_pool); 368 cmgr->io_bdt_pool = NULL; 369 370 free_cmd_pool: 371 kfree(cmgr->free_list_lock); 372 373 /* Destroy cmd pool */ 374 if (!cmgr->free_list) 375 goto free_cmgr; 376 377 for (i = 0; i < num_possible_cpus() + 1; i++) { 378 struct bnx2fc_cmd *tmp, *io_req; 379 380 list_for_each_entry_safe(io_req, tmp, 381 &cmgr->free_list[i], link) { 382 list_del(&io_req->link); 383 kfree(io_req); 384 } 385 } 386 kfree(cmgr->free_list); 387 free_cmgr: 388 /* Free command manager itself */ 389 kfree(cmgr); 390 } 391 392 struct bnx2fc_cmd *bnx2fc_elstm_alloc(struct bnx2fc_rport *tgt, int type) 393 { 394 struct fcoe_port *port = tgt->port; 395 struct bnx2fc_interface *interface = port->priv; 396 struct bnx2fc_cmd_mgr *cmd_mgr = interface->hba->cmd_mgr; 397 struct bnx2fc_cmd *io_req; 398 struct list_head *listp; 399 struct io_bdt *bd_tbl; 400 int index = RESERVE_FREE_LIST_INDEX; 401 u32 free_sqes; 402 u32 max_sqes; 403 u16 xid; 404 405 max_sqes = tgt->max_sqes; 406 switch (type) { 407 case BNX2FC_TASK_MGMT_CMD: 408 max_sqes = BNX2FC_TM_MAX_SQES; 409 break; 410 case BNX2FC_ELS: 411 max_sqes = BNX2FC_ELS_MAX_SQES; 412 break; 413 default: 414 break; 415 } 416 417 /* 418 * NOTE: Free list insertions and deletions are protected with 419 * cmgr lock 420 */ 421 spin_lock_bh(&cmd_mgr->free_list_lock[index]); 422 free_sqes = atomic_read(&tgt->free_sqes); 423 if ((list_empty(&(cmd_mgr->free_list[index]))) || 424 (tgt->num_active_ios.counter >= max_sqes) || 425 (free_sqes + max_sqes <= BNX2FC_SQ_WQES_MAX)) { 426 BNX2FC_TGT_DBG(tgt, "No free els_tm cmds available " 427 "ios(%d):sqes(%d)\n", 428 tgt->num_active_ios.counter, tgt->max_sqes); 429 if (list_empty(&(cmd_mgr->free_list[index]))) 430 printk(KERN_ERR PFX "elstm_alloc: list_empty\n"); 431 spin_unlock_bh(&cmd_mgr->free_list_lock[index]); 432 return NULL; 433 } 434 435 listp = (struct list_head *) 436 cmd_mgr->free_list[index].next; 437 list_del_init(listp); 438 io_req = (struct bnx2fc_cmd *) listp; 439 xid = io_req->xid; 440 cmd_mgr->cmds[xid] = io_req; 441 atomic_inc(&tgt->num_active_ios); 442 atomic_dec(&tgt->free_sqes); 443 spin_unlock_bh(&cmd_mgr->free_list_lock[index]); 444 445 INIT_LIST_HEAD(&io_req->link); 446 447 io_req->port = port; 448 io_req->cmd_mgr = cmd_mgr; 449 io_req->req_flags = 0; 450 io_req->cmd_type = type; 451 452 /* Bind io_bdt for this io_req */ 453 /* Have a static link between io_req and io_bdt_pool */ 454 bd_tbl = io_req->bd_tbl = cmd_mgr->io_bdt_pool[xid]; 455 bd_tbl->io_req = io_req; 456 457 /* Hold the io_req against deletion */ 458 kref_init(&io_req->refcount); 459 return io_req; 460 } 461 462 struct bnx2fc_cmd *bnx2fc_cmd_alloc(struct bnx2fc_rport *tgt) 463 { 464 struct fcoe_port *port = tgt->port; 465 struct bnx2fc_interface *interface = port->priv; 466 struct bnx2fc_cmd_mgr *cmd_mgr = interface->hba->cmd_mgr; 467 struct bnx2fc_cmd *io_req; 468 struct list_head *listp; 469 struct io_bdt *bd_tbl; 470 u32 free_sqes; 471 u32 max_sqes; 472 u16 xid; 473 int index = raw_smp_processor_id(); 474 475 max_sqes = BNX2FC_SCSI_MAX_SQES; 476 /* 477 * NOTE: Free list insertions and deletions are protected with 478 * cmgr lock 479 */ 480 spin_lock_bh(&cmd_mgr->free_list_lock[index]); 481 free_sqes = atomic_read(&tgt->free_sqes); 482 if ((list_empty(&cmd_mgr->free_list[index])) || 483 (tgt->num_active_ios.counter >= max_sqes) || 484 (free_sqes + max_sqes <= BNX2FC_SQ_WQES_MAX)) { 485 spin_unlock_bh(&cmd_mgr->free_list_lock[index]); 486 return NULL; 487 } 488 489 listp = (struct list_head *) 490 cmd_mgr->free_list[index].next; 491 list_del_init(listp); 492 io_req = (struct bnx2fc_cmd *) listp; 493 xid = io_req->xid; 494 cmd_mgr->cmds[xid] = io_req; 495 atomic_inc(&tgt->num_active_ios); 496 atomic_dec(&tgt->free_sqes); 497 spin_unlock_bh(&cmd_mgr->free_list_lock[index]); 498 499 INIT_LIST_HEAD(&io_req->link); 500 501 io_req->port = port; 502 io_req->cmd_mgr = cmd_mgr; 503 io_req->req_flags = 0; 504 505 /* Bind io_bdt for this io_req */ 506 /* Have a static link between io_req and io_bdt_pool */ 507 bd_tbl = io_req->bd_tbl = cmd_mgr->io_bdt_pool[xid]; 508 bd_tbl->io_req = io_req; 509 510 /* Hold the io_req against deletion */ 511 kref_init(&io_req->refcount); 512 return io_req; 513 } 514 515 void bnx2fc_cmd_release(struct kref *ref) 516 { 517 struct bnx2fc_cmd *io_req = container_of(ref, 518 struct bnx2fc_cmd, refcount); 519 struct bnx2fc_cmd_mgr *cmd_mgr = io_req->cmd_mgr; 520 int index; 521 522 if (io_req->cmd_type == BNX2FC_SCSI_CMD) 523 index = io_req->xid % num_possible_cpus(); 524 else 525 index = RESERVE_FREE_LIST_INDEX; 526 527 528 spin_lock_bh(&cmd_mgr->free_list_lock[index]); 529 if (io_req->cmd_type != BNX2FC_SCSI_CMD) 530 bnx2fc_free_mp_resc(io_req); 531 cmd_mgr->cmds[io_req->xid] = NULL; 532 /* Delete IO from retire queue */ 533 list_del_init(&io_req->link); 534 /* Add it to the free list */ 535 list_add(&io_req->link, 536 &cmd_mgr->free_list[index]); 537 atomic_dec(&io_req->tgt->num_active_ios); 538 spin_unlock_bh(&cmd_mgr->free_list_lock[index]); 539 540 } 541 542 static void bnx2fc_free_mp_resc(struct bnx2fc_cmd *io_req) 543 { 544 struct bnx2fc_mp_req *mp_req = &(io_req->mp_req); 545 struct bnx2fc_interface *interface = io_req->port->priv; 546 struct bnx2fc_hba *hba = interface->hba; 547 size_t sz = sizeof(struct fcoe_bd_ctx); 548 549 /* clear tm flags */ 550 mp_req->tm_flags = 0; 551 if (mp_req->mp_req_bd) { 552 dma_free_coherent(&hba->pcidev->dev, sz, 553 mp_req->mp_req_bd, 554 mp_req->mp_req_bd_dma); 555 mp_req->mp_req_bd = NULL; 556 } 557 if (mp_req->mp_resp_bd) { 558 dma_free_coherent(&hba->pcidev->dev, sz, 559 mp_req->mp_resp_bd, 560 mp_req->mp_resp_bd_dma); 561 mp_req->mp_resp_bd = NULL; 562 } 563 if (mp_req->req_buf) { 564 dma_free_coherent(&hba->pcidev->dev, CNIC_PAGE_SIZE, 565 mp_req->req_buf, 566 mp_req->req_buf_dma); 567 mp_req->req_buf = NULL; 568 } 569 if (mp_req->resp_buf) { 570 dma_free_coherent(&hba->pcidev->dev, CNIC_PAGE_SIZE, 571 mp_req->resp_buf, 572 mp_req->resp_buf_dma); 573 mp_req->resp_buf = NULL; 574 } 575 } 576 577 int bnx2fc_init_mp_req(struct bnx2fc_cmd *io_req) 578 { 579 struct bnx2fc_mp_req *mp_req; 580 struct fcoe_bd_ctx *mp_req_bd; 581 struct fcoe_bd_ctx *mp_resp_bd; 582 struct bnx2fc_interface *interface = io_req->port->priv; 583 struct bnx2fc_hba *hba = interface->hba; 584 dma_addr_t addr; 585 size_t sz; 586 587 mp_req = (struct bnx2fc_mp_req *)&(io_req->mp_req); 588 memset(mp_req, 0, sizeof(struct bnx2fc_mp_req)); 589 590 if (io_req->cmd_type != BNX2FC_ELS) { 591 mp_req->req_len = sizeof(struct fcp_cmnd); 592 io_req->data_xfer_len = mp_req->req_len; 593 } else 594 mp_req->req_len = io_req->data_xfer_len; 595 596 mp_req->req_buf = dma_alloc_coherent(&hba->pcidev->dev, CNIC_PAGE_SIZE, 597 &mp_req->req_buf_dma, 598 GFP_ATOMIC); 599 if (!mp_req->req_buf) { 600 printk(KERN_ERR PFX "unable to alloc MP req buffer\n"); 601 bnx2fc_free_mp_resc(io_req); 602 return FAILED; 603 } 604 605 mp_req->resp_buf = dma_alloc_coherent(&hba->pcidev->dev, CNIC_PAGE_SIZE, 606 &mp_req->resp_buf_dma, 607 GFP_ATOMIC); 608 if (!mp_req->resp_buf) { 609 printk(KERN_ERR PFX "unable to alloc TM resp buffer\n"); 610 bnx2fc_free_mp_resc(io_req); 611 return FAILED; 612 } 613 memset(mp_req->req_buf, 0, CNIC_PAGE_SIZE); 614 memset(mp_req->resp_buf, 0, CNIC_PAGE_SIZE); 615 616 /* Allocate and map mp_req_bd and mp_resp_bd */ 617 sz = sizeof(struct fcoe_bd_ctx); 618 mp_req->mp_req_bd = dma_alloc_coherent(&hba->pcidev->dev, sz, 619 &mp_req->mp_req_bd_dma, 620 GFP_ATOMIC); 621 if (!mp_req->mp_req_bd) { 622 printk(KERN_ERR PFX "unable to alloc MP req bd\n"); 623 bnx2fc_free_mp_resc(io_req); 624 return FAILED; 625 } 626 mp_req->mp_resp_bd = dma_alloc_coherent(&hba->pcidev->dev, sz, 627 &mp_req->mp_resp_bd_dma, 628 GFP_ATOMIC); 629 if (!mp_req->mp_resp_bd) { 630 printk(KERN_ERR PFX "unable to alloc MP resp bd\n"); 631 bnx2fc_free_mp_resc(io_req); 632 return FAILED; 633 } 634 /* Fill bd table */ 635 addr = mp_req->req_buf_dma; 636 mp_req_bd = mp_req->mp_req_bd; 637 mp_req_bd->buf_addr_lo = (u32)addr & 0xffffffff; 638 mp_req_bd->buf_addr_hi = (u32)((u64)addr >> 32); 639 mp_req_bd->buf_len = CNIC_PAGE_SIZE; 640 mp_req_bd->flags = 0; 641 642 /* 643 * MP buffer is either a task mgmt command or an ELS. 644 * So the assumption is that it consumes a single bd 645 * entry in the bd table 646 */ 647 mp_resp_bd = mp_req->mp_resp_bd; 648 addr = mp_req->resp_buf_dma; 649 mp_resp_bd->buf_addr_lo = (u32)addr & 0xffffffff; 650 mp_resp_bd->buf_addr_hi = (u32)((u64)addr >> 32); 651 mp_resp_bd->buf_len = CNIC_PAGE_SIZE; 652 mp_resp_bd->flags = 0; 653 654 return SUCCESS; 655 } 656 657 static int bnx2fc_initiate_tmf(struct fc_lport *lport, struct fc_rport *rport, 658 u64 tm_lun, u8 tm_flags) 659 { 660 struct fc_rport_libfc_priv *rp; 661 struct fcoe_port *port; 662 struct bnx2fc_interface *interface; 663 struct bnx2fc_rport *tgt; 664 struct bnx2fc_cmd *io_req; 665 struct bnx2fc_mp_req *tm_req; 666 struct fcoe_task_ctx_entry *task; 667 struct fcoe_task_ctx_entry *task_page; 668 struct fc_frame_header *fc_hdr; 669 struct fcp_cmnd *fcp_cmnd; 670 int task_idx, index; 671 int rc = SUCCESS; 672 u16 xid; 673 u32 sid, did; 674 unsigned long start = jiffies; 675 676 port = lport_priv(lport); 677 interface = port->priv; 678 679 if (rport == NULL) { 680 printk(KERN_ERR PFX "device_reset: rport is NULL\n"); 681 rc = FAILED; 682 goto tmf_err; 683 } 684 rp = rport->dd_data; 685 686 rc = fc_block_rport(rport); 687 if (rc) 688 return rc; 689 690 if (lport->state != LPORT_ST_READY || !(lport->link_up)) { 691 printk(KERN_ERR PFX "device_reset: link is not ready\n"); 692 rc = FAILED; 693 goto tmf_err; 694 } 695 /* rport and tgt are allocated together, so tgt should be non-NULL */ 696 tgt = (struct bnx2fc_rport *)&rp[1]; 697 698 if (!(test_bit(BNX2FC_FLAG_SESSION_READY, &tgt->flags))) { 699 printk(KERN_ERR PFX "device_reset: tgt not offloaded\n"); 700 rc = FAILED; 701 goto tmf_err; 702 } 703 retry_tmf: 704 io_req = bnx2fc_elstm_alloc(tgt, BNX2FC_TASK_MGMT_CMD); 705 if (!io_req) { 706 if (time_after(jiffies, start + HZ)) { 707 printk(KERN_ERR PFX "tmf: Failed TMF"); 708 rc = FAILED; 709 goto tmf_err; 710 } 711 msleep(20); 712 goto retry_tmf; 713 } 714 /* Initialize rest of io_req fields */ 715 io_req->sc_cmd = NULL; 716 io_req->port = port; 717 io_req->tgt = tgt; 718 719 tm_req = (struct bnx2fc_mp_req *)&(io_req->mp_req); 720 721 rc = bnx2fc_init_mp_req(io_req); 722 if (rc == FAILED) { 723 printk(KERN_ERR PFX "Task mgmt MP request init failed\n"); 724 spin_lock_bh(&tgt->tgt_lock); 725 kref_put(&io_req->refcount, bnx2fc_cmd_release); 726 spin_unlock_bh(&tgt->tgt_lock); 727 goto tmf_err; 728 } 729 730 /* Set TM flags */ 731 io_req->io_req_flags = 0; 732 tm_req->tm_flags = tm_flags; 733 tm_req->tm_lun = tm_lun; 734 735 /* Fill FCP_CMND */ 736 bnx2fc_build_fcp_cmnd(io_req, (struct fcp_cmnd *)tm_req->req_buf); 737 fcp_cmnd = (struct fcp_cmnd *)tm_req->req_buf; 738 int_to_scsilun(tm_lun, &fcp_cmnd->fc_lun); 739 memset(fcp_cmnd->fc_cdb, 0, BNX2FC_MAX_CMD_LEN); 740 fcp_cmnd->fc_dl = 0; 741 742 /* Fill FC header */ 743 fc_hdr = &(tm_req->req_fc_hdr); 744 sid = tgt->sid; 745 did = rport->port_id; 746 __fc_fill_fc_hdr(fc_hdr, FC_RCTL_DD_UNSOL_CMD, did, sid, 747 FC_TYPE_FCP, FC_FC_FIRST_SEQ | FC_FC_END_SEQ | 748 FC_FC_SEQ_INIT, 0); 749 /* Obtain exchange id */ 750 xid = io_req->xid; 751 752 BNX2FC_TGT_DBG(tgt, "Initiate TMF - xid = 0x%x\n", xid); 753 task_idx = xid/BNX2FC_TASKS_PER_PAGE; 754 index = xid % BNX2FC_TASKS_PER_PAGE; 755 756 /* Initialize task context for this IO request */ 757 task_page = (struct fcoe_task_ctx_entry *) 758 interface->hba->task_ctx[task_idx]; 759 task = &(task_page[index]); 760 bnx2fc_init_mp_task(io_req, task); 761 762 /* Obtain free SQ entry */ 763 spin_lock_bh(&tgt->tgt_lock); 764 bnx2fc_add_2_sq(tgt, xid); 765 766 /* Enqueue the io_req to active_tm_queue */ 767 io_req->on_tmf_queue = 1; 768 list_add_tail(&io_req->link, &tgt->active_tm_queue); 769 770 init_completion(&io_req->abts_done); 771 io_req->wait_for_abts_comp = 1; 772 773 /* Ring doorbell */ 774 bnx2fc_ring_doorbell(tgt); 775 spin_unlock_bh(&tgt->tgt_lock); 776 777 rc = wait_for_completion_timeout(&io_req->abts_done, 778 interface->tm_timeout * HZ); 779 spin_lock_bh(&tgt->tgt_lock); 780 781 io_req->wait_for_abts_comp = 0; 782 if (!(test_bit(BNX2FC_FLAG_TM_COMPL, &io_req->req_flags))) { 783 set_bit(BNX2FC_FLAG_TM_TIMEOUT, &io_req->req_flags); 784 if (io_req->on_tmf_queue) { 785 list_del_init(&io_req->link); 786 io_req->on_tmf_queue = 0; 787 } 788 io_req->wait_for_cleanup_comp = 1; 789 init_completion(&io_req->cleanup_done); 790 bnx2fc_initiate_cleanup(io_req); 791 spin_unlock_bh(&tgt->tgt_lock); 792 rc = wait_for_completion_timeout(&io_req->cleanup_done, 793 BNX2FC_FW_TIMEOUT); 794 spin_lock_bh(&tgt->tgt_lock); 795 io_req->wait_for_cleanup_comp = 0; 796 if (!rc) 797 kref_put(&io_req->refcount, bnx2fc_cmd_release); 798 } 799 800 spin_unlock_bh(&tgt->tgt_lock); 801 802 if (!rc) { 803 BNX2FC_TGT_DBG(tgt, "task mgmt command failed...\n"); 804 rc = FAILED; 805 } else { 806 BNX2FC_TGT_DBG(tgt, "task mgmt command success...\n"); 807 rc = SUCCESS; 808 } 809 tmf_err: 810 return rc; 811 } 812 813 int bnx2fc_initiate_abts(struct bnx2fc_cmd *io_req) 814 { 815 struct fc_lport *lport; 816 struct bnx2fc_rport *tgt = io_req->tgt; 817 struct fc_rport *rport = tgt->rport; 818 struct fc_rport_priv *rdata = tgt->rdata; 819 struct bnx2fc_interface *interface; 820 struct fcoe_port *port; 821 struct bnx2fc_cmd *abts_io_req; 822 struct fcoe_task_ctx_entry *task; 823 struct fcoe_task_ctx_entry *task_page; 824 struct fc_frame_header *fc_hdr; 825 struct bnx2fc_mp_req *abts_req; 826 int task_idx, index; 827 u32 sid, did; 828 u16 xid; 829 int rc = SUCCESS; 830 u32 r_a_tov = rdata->r_a_tov; 831 832 /* called with tgt_lock held */ 833 BNX2FC_IO_DBG(io_req, "Entered bnx2fc_initiate_abts\n"); 834 835 port = io_req->port; 836 interface = port->priv; 837 lport = port->lport; 838 839 if (!test_bit(BNX2FC_FLAG_SESSION_READY, &tgt->flags)) { 840 printk(KERN_ERR PFX "initiate_abts: tgt not offloaded\n"); 841 rc = FAILED; 842 goto abts_err; 843 } 844 845 if (rport == NULL) { 846 printk(KERN_ERR PFX "initiate_abts: rport is NULL\n"); 847 rc = FAILED; 848 goto abts_err; 849 } 850 851 if (lport->state != LPORT_ST_READY || !(lport->link_up)) { 852 printk(KERN_ERR PFX "initiate_abts: link is not ready\n"); 853 rc = FAILED; 854 goto abts_err; 855 } 856 857 abts_io_req = bnx2fc_elstm_alloc(tgt, BNX2FC_ABTS); 858 if (!abts_io_req) { 859 printk(KERN_ERR PFX "abts: couldn't allocate cmd\n"); 860 rc = FAILED; 861 goto abts_err; 862 } 863 864 /* Initialize rest of io_req fields */ 865 abts_io_req->sc_cmd = NULL; 866 abts_io_req->port = port; 867 abts_io_req->tgt = tgt; 868 abts_io_req->data_xfer_len = 0; /* No data transfer for ABTS */ 869 870 abts_req = (struct bnx2fc_mp_req *)&(abts_io_req->mp_req); 871 memset(abts_req, 0, sizeof(struct bnx2fc_mp_req)); 872 873 /* Fill FC header */ 874 fc_hdr = &(abts_req->req_fc_hdr); 875 876 /* Obtain oxid and rxid for the original exchange to be aborted */ 877 fc_hdr->fh_ox_id = htons(io_req->xid); 878 fc_hdr->fh_rx_id = htons(io_req->task->rxwr_txrd.var_ctx.rx_id); 879 880 sid = tgt->sid; 881 did = rport->port_id; 882 883 __fc_fill_fc_hdr(fc_hdr, FC_RCTL_BA_ABTS, did, sid, 884 FC_TYPE_BLS, FC_FC_FIRST_SEQ | FC_FC_END_SEQ | 885 FC_FC_SEQ_INIT, 0); 886 887 xid = abts_io_req->xid; 888 BNX2FC_IO_DBG(abts_io_req, "ABTS io_req\n"); 889 task_idx = xid/BNX2FC_TASKS_PER_PAGE; 890 index = xid % BNX2FC_TASKS_PER_PAGE; 891 892 /* Initialize task context for this IO request */ 893 task_page = (struct fcoe_task_ctx_entry *) 894 interface->hba->task_ctx[task_idx]; 895 task = &(task_page[index]); 896 bnx2fc_init_mp_task(abts_io_req, task); 897 898 /* 899 * ABTS task is a temporary task that will be cleaned up 900 * irrespective of ABTS response. We need to start the timer 901 * for the original exchange, as the CQE is posted for the original 902 * IO request. 903 * 904 * Timer for ABTS is started only when it is originated by a 905 * TM request. For the ABTS issued as part of ULP timeout, 906 * scsi-ml maintains the timers. 907 */ 908 909 /* if (test_bit(BNX2FC_FLAG_ISSUE_ABTS, &io_req->req_flags))*/ 910 bnx2fc_cmd_timer_set(io_req, 2 * r_a_tov); 911 912 /* Obtain free SQ entry */ 913 bnx2fc_add_2_sq(tgt, xid); 914 915 /* Ring doorbell */ 916 bnx2fc_ring_doorbell(tgt); 917 918 abts_err: 919 return rc; 920 } 921 922 int bnx2fc_initiate_seq_cleanup(struct bnx2fc_cmd *orig_io_req, u32 offset, 923 enum fc_rctl r_ctl) 924 { 925 struct bnx2fc_rport *tgt = orig_io_req->tgt; 926 struct bnx2fc_interface *interface; 927 struct fcoe_port *port; 928 struct bnx2fc_cmd *seq_clnp_req; 929 struct fcoe_task_ctx_entry *task; 930 struct fcoe_task_ctx_entry *task_page; 931 struct bnx2fc_els_cb_arg *cb_arg = NULL; 932 int task_idx, index; 933 u16 xid; 934 int rc = 0; 935 936 BNX2FC_IO_DBG(orig_io_req, "bnx2fc_initiate_seq_cleanup xid = 0x%x\n", 937 orig_io_req->xid); 938 kref_get(&orig_io_req->refcount); 939 940 port = orig_io_req->port; 941 interface = port->priv; 942 943 cb_arg = kzalloc_obj(struct bnx2fc_els_cb_arg, GFP_ATOMIC); 944 if (!cb_arg) { 945 printk(KERN_ERR PFX "Unable to alloc cb_arg for seq clnup\n"); 946 rc = -ENOMEM; 947 goto cleanup_err; 948 } 949 950 seq_clnp_req = bnx2fc_elstm_alloc(tgt, BNX2FC_SEQ_CLEANUP); 951 if (!seq_clnp_req) { 952 printk(KERN_ERR PFX "cleanup: couldn't allocate cmd\n"); 953 rc = -ENOMEM; 954 kfree(cb_arg); 955 goto cleanup_err; 956 } 957 /* Initialize rest of io_req fields */ 958 seq_clnp_req->sc_cmd = NULL; 959 seq_clnp_req->port = port; 960 seq_clnp_req->tgt = tgt; 961 seq_clnp_req->data_xfer_len = 0; /* No data transfer for cleanup */ 962 963 xid = seq_clnp_req->xid; 964 965 task_idx = xid/BNX2FC_TASKS_PER_PAGE; 966 index = xid % BNX2FC_TASKS_PER_PAGE; 967 968 /* Initialize task context for this IO request */ 969 task_page = (struct fcoe_task_ctx_entry *) 970 interface->hba->task_ctx[task_idx]; 971 task = &(task_page[index]); 972 cb_arg->aborted_io_req = orig_io_req; 973 cb_arg->io_req = seq_clnp_req; 974 cb_arg->r_ctl = r_ctl; 975 cb_arg->offset = offset; 976 seq_clnp_req->cb_arg = cb_arg; 977 978 printk(KERN_ERR PFX "call init_seq_cleanup_task\n"); 979 bnx2fc_init_seq_cleanup_task(seq_clnp_req, task, orig_io_req, offset); 980 981 /* Obtain free SQ entry */ 982 bnx2fc_add_2_sq(tgt, xid); 983 984 /* Ring doorbell */ 985 bnx2fc_ring_doorbell(tgt); 986 cleanup_err: 987 return rc; 988 } 989 990 int bnx2fc_initiate_cleanup(struct bnx2fc_cmd *io_req) 991 { 992 struct bnx2fc_rport *tgt = io_req->tgt; 993 struct bnx2fc_interface *interface; 994 struct fcoe_port *port; 995 struct bnx2fc_cmd *cleanup_io_req; 996 struct fcoe_task_ctx_entry *task; 997 struct fcoe_task_ctx_entry *task_page; 998 int task_idx, index; 999 u16 xid, orig_xid; 1000 int rc = 0; 1001 1002 /* ASSUMPTION: called with tgt_lock held */ 1003 BNX2FC_IO_DBG(io_req, "Entered bnx2fc_initiate_cleanup\n"); 1004 1005 port = io_req->port; 1006 interface = port->priv; 1007 1008 cleanup_io_req = bnx2fc_elstm_alloc(tgt, BNX2FC_CLEANUP); 1009 if (!cleanup_io_req) { 1010 printk(KERN_ERR PFX "cleanup: couldn't allocate cmd\n"); 1011 rc = -1; 1012 goto cleanup_err; 1013 } 1014 1015 /* Initialize rest of io_req fields */ 1016 cleanup_io_req->sc_cmd = NULL; 1017 cleanup_io_req->port = port; 1018 cleanup_io_req->tgt = tgt; 1019 cleanup_io_req->data_xfer_len = 0; /* No data transfer for cleanup */ 1020 1021 xid = cleanup_io_req->xid; 1022 1023 task_idx = xid/BNX2FC_TASKS_PER_PAGE; 1024 index = xid % BNX2FC_TASKS_PER_PAGE; 1025 1026 /* Initialize task context for this IO request */ 1027 task_page = (struct fcoe_task_ctx_entry *) 1028 interface->hba->task_ctx[task_idx]; 1029 task = &(task_page[index]); 1030 orig_xid = io_req->xid; 1031 1032 BNX2FC_IO_DBG(io_req, "CLEANUP io_req xid = 0x%x\n", xid); 1033 1034 bnx2fc_init_cleanup_task(cleanup_io_req, task, orig_xid); 1035 1036 /* Obtain free SQ entry */ 1037 bnx2fc_add_2_sq(tgt, xid); 1038 1039 /* Set flag that cleanup request is pending with the firmware */ 1040 set_bit(BNX2FC_FLAG_ISSUE_CLEANUP_REQ, &io_req->req_flags); 1041 1042 /* Ring doorbell */ 1043 bnx2fc_ring_doorbell(tgt); 1044 1045 cleanup_err: 1046 return rc; 1047 } 1048 1049 /** 1050 * bnx2fc_eh_target_reset: Reset a target 1051 * 1052 * @sc_cmd: SCSI command 1053 * 1054 * Set from SCSI host template to send task mgmt command to the target 1055 * and wait for the response 1056 */ 1057 int bnx2fc_eh_target_reset(struct scsi_cmnd *sc_cmd) 1058 { 1059 struct fc_rport *rport = starget_to_rport(scsi_target(sc_cmd->device)); 1060 struct fc_lport *lport = shost_priv(rport_to_shost(rport)); 1061 1062 return bnx2fc_initiate_tmf(lport, rport, 0, FCP_TMF_TGT_RESET); 1063 } 1064 1065 /** 1066 * bnx2fc_eh_device_reset - Reset a single LUN 1067 * 1068 * @sc_cmd: SCSI command 1069 * 1070 * Set from SCSI host template to send task mgmt command to the target 1071 * and wait for the response 1072 */ 1073 int bnx2fc_eh_device_reset(struct scsi_cmnd *sc_cmd) 1074 { 1075 struct fc_rport *rport = starget_to_rport(scsi_target(sc_cmd->device)); 1076 struct fc_lport *lport = shost_priv(rport_to_shost(rport)); 1077 1078 return bnx2fc_initiate_tmf(lport, rport, sc_cmd->device->lun, 1079 FCP_TMF_LUN_RESET); 1080 } 1081 1082 static int bnx2fc_abts_cleanup(struct bnx2fc_cmd *io_req) 1083 __must_hold(&tgt->tgt_lock) 1084 { 1085 struct bnx2fc_rport *tgt = io_req->tgt; 1086 unsigned int time_left; 1087 1088 init_completion(&io_req->cleanup_done); 1089 io_req->wait_for_cleanup_comp = 1; 1090 bnx2fc_initiate_cleanup(io_req); 1091 1092 spin_unlock_bh(&tgt->tgt_lock); 1093 1094 /* 1095 * Can't wait forever on cleanup response lest we let the SCSI error 1096 * handler wait forever 1097 */ 1098 time_left = wait_for_completion_timeout(&io_req->cleanup_done, 1099 BNX2FC_FW_TIMEOUT); 1100 if (!time_left) { 1101 BNX2FC_IO_DBG(io_req, "%s(): Wait for cleanup timed out.\n", 1102 __func__); 1103 1104 /* 1105 * Put the extra reference to the SCSI command since it would 1106 * not have been returned in this case. 1107 */ 1108 kref_put(&io_req->refcount, bnx2fc_cmd_release); 1109 } 1110 1111 spin_lock_bh(&tgt->tgt_lock); 1112 io_req->wait_for_cleanup_comp = 0; 1113 return SUCCESS; 1114 } 1115 1116 /** 1117 * bnx2fc_eh_abort - eh_abort_handler api to abort an outstanding 1118 * SCSI command 1119 * 1120 * @sc_cmd: SCSI_ML command pointer 1121 * 1122 * SCSI abort request handler 1123 */ 1124 int bnx2fc_eh_abort(struct scsi_cmnd *sc_cmd) 1125 { 1126 struct fc_rport *rport = starget_to_rport(scsi_target(sc_cmd->device)); 1127 struct fc_rport_libfc_priv *rp = rport->dd_data; 1128 struct bnx2fc_cmd *io_req; 1129 struct fc_lport *lport; 1130 struct bnx2fc_rport *tgt; 1131 int rc; 1132 unsigned int time_left; 1133 1134 rc = fc_block_scsi_eh(sc_cmd); 1135 if (rc) 1136 return rc; 1137 1138 lport = shost_priv(sc_cmd->device->host); 1139 if ((lport->state != LPORT_ST_READY) || !(lport->link_up)) { 1140 printk(KERN_ERR PFX "eh_abort: link not ready\n"); 1141 return FAILED; 1142 } 1143 1144 tgt = (struct bnx2fc_rport *)&rp[1]; 1145 1146 BNX2FC_TGT_DBG(tgt, "Entered bnx2fc_eh_abort\n"); 1147 1148 spin_lock_bh(&tgt->tgt_lock); 1149 io_req = bnx2fc_priv(sc_cmd)->io_req; 1150 if (!io_req) { 1151 /* Command might have just completed */ 1152 printk(KERN_ERR PFX "eh_abort: io_req is NULL\n"); 1153 spin_unlock_bh(&tgt->tgt_lock); 1154 return SUCCESS; 1155 } 1156 BNX2FC_IO_DBG(io_req, "eh_abort - refcnt = %d\n", 1157 kref_read(&io_req->refcount)); 1158 1159 /* Hold IO request across abort processing */ 1160 kref_get(&io_req->refcount); 1161 1162 BUG_ON(tgt != io_req->tgt); 1163 1164 /* Remove the io_req from the active_q. */ 1165 /* 1166 * Task Mgmt functions (LUN RESET & TGT RESET) will not 1167 * issue an ABTS on this particular IO req, as the 1168 * io_req is no longer in the active_q. 1169 */ 1170 if (tgt->flush_in_prog) { 1171 printk(KERN_ERR PFX "eh_abort: io_req (xid = 0x%x) " 1172 "flush in progress\n", io_req->xid); 1173 kref_put(&io_req->refcount, bnx2fc_cmd_release); 1174 spin_unlock_bh(&tgt->tgt_lock); 1175 return SUCCESS; 1176 } 1177 1178 if (io_req->on_active_queue == 0) { 1179 printk(KERN_ERR PFX "eh_abort: io_req (xid = 0x%x) " 1180 "not on active_q\n", io_req->xid); 1181 /* 1182 * The IO is still with the FW. 1183 * Return failure and let SCSI-ml retry eh_abort. 1184 */ 1185 spin_unlock_bh(&tgt->tgt_lock); 1186 return FAILED; 1187 } 1188 1189 /* 1190 * Only eh_abort processing will remove the IO from 1191 * active_cmd_q before processing the request. this is 1192 * done to avoid race conditions between IOs aborted 1193 * as part of task management completion and eh_abort 1194 * processing 1195 */ 1196 list_del_init(&io_req->link); 1197 io_req->on_active_queue = 0; 1198 /* Move IO req to retire queue */ 1199 list_add_tail(&io_req->link, &tgt->io_retire_queue); 1200 1201 init_completion(&io_req->abts_done); 1202 init_completion(&io_req->cleanup_done); 1203 1204 if (test_and_set_bit(BNX2FC_FLAG_ISSUE_ABTS, &io_req->req_flags)) { 1205 printk(KERN_ERR PFX "eh_abort: io_req (xid = 0x%x) " 1206 "already in abts processing\n", io_req->xid); 1207 if (cancel_delayed_work(&io_req->timeout_work)) 1208 kref_put(&io_req->refcount, 1209 bnx2fc_cmd_release); /* drop timer hold */ 1210 /* 1211 * We don't want to hold off the upper layer timer so simply 1212 * cleanup the command and return that I/O was successfully 1213 * aborted. 1214 */ 1215 bnx2fc_abts_cleanup(io_req); 1216 /* This only occurs when an task abort was requested while ABTS 1217 is in progress. Setting the IO_CLEANUP flag will skip the 1218 RRQ process in the case when the fw generated SCSI_CMD cmpl 1219 was a result from the ABTS request rather than the CLEANUP 1220 request */ 1221 set_bit(BNX2FC_FLAG_IO_CLEANUP, &io_req->req_flags); 1222 rc = FAILED; 1223 goto done; 1224 } 1225 1226 /* Cancel the current timer running on this io_req */ 1227 if (cancel_delayed_work(&io_req->timeout_work)) 1228 kref_put(&io_req->refcount, 1229 bnx2fc_cmd_release); /* drop timer hold */ 1230 set_bit(BNX2FC_FLAG_EH_ABORT, &io_req->req_flags); 1231 io_req->wait_for_abts_comp = 1; 1232 rc = bnx2fc_initiate_abts(io_req); 1233 if (rc == FAILED) { 1234 io_req->wait_for_cleanup_comp = 1; 1235 bnx2fc_initiate_cleanup(io_req); 1236 spin_unlock_bh(&tgt->tgt_lock); 1237 wait_for_completion(&io_req->cleanup_done); 1238 spin_lock_bh(&tgt->tgt_lock); 1239 io_req->wait_for_cleanup_comp = 0; 1240 goto done; 1241 } 1242 spin_unlock_bh(&tgt->tgt_lock); 1243 1244 /* Wait 2 * RA_TOV + 1 to be sure timeout function hasn't fired */ 1245 time_left = wait_for_completion_timeout(&io_req->abts_done, 1246 msecs_to_jiffies(2 * rp->r_a_tov + 1)); 1247 if (time_left) 1248 BNX2FC_IO_DBG(io_req, 1249 "Timed out in eh_abort waiting for abts_done"); 1250 1251 spin_lock_bh(&tgt->tgt_lock); 1252 io_req->wait_for_abts_comp = 0; 1253 if (test_bit(BNX2FC_FLAG_IO_COMPL, &io_req->req_flags)) { 1254 BNX2FC_IO_DBG(io_req, "IO completed in a different context\n"); 1255 rc = SUCCESS; 1256 } else if (!(test_and_set_bit(BNX2FC_FLAG_ABTS_DONE, 1257 &io_req->req_flags))) { 1258 /* Let the scsi-ml try to recover this command */ 1259 printk(KERN_ERR PFX "abort failed, xid = 0x%x\n", 1260 io_req->xid); 1261 /* 1262 * Cleanup firmware residuals before returning control back 1263 * to SCSI ML. 1264 */ 1265 rc = bnx2fc_abts_cleanup(io_req); 1266 goto done; 1267 } else { 1268 /* 1269 * We come here even when there was a race condition 1270 * between timeout and abts completion, and abts 1271 * completion happens just in time. 1272 */ 1273 BNX2FC_IO_DBG(io_req, "abort succeeded\n"); 1274 rc = SUCCESS; 1275 bnx2fc_scsi_done(io_req, DID_ABORT); 1276 kref_put(&io_req->refcount, bnx2fc_cmd_release); 1277 } 1278 done: 1279 /* release the reference taken in eh_abort */ 1280 kref_put(&io_req->refcount, bnx2fc_cmd_release); 1281 spin_unlock_bh(&tgt->tgt_lock); 1282 return rc; 1283 } 1284 1285 void bnx2fc_process_seq_cleanup_compl(struct bnx2fc_cmd *seq_clnp_req, 1286 struct fcoe_task_ctx_entry *task, 1287 u8 rx_state) 1288 { 1289 struct bnx2fc_els_cb_arg *cb_arg = seq_clnp_req->cb_arg; 1290 struct bnx2fc_cmd *orig_io_req = cb_arg->aborted_io_req; 1291 u32 offset = cb_arg->offset; 1292 enum fc_rctl r_ctl = cb_arg->r_ctl; 1293 int rc = 0; 1294 struct bnx2fc_rport *tgt = orig_io_req->tgt; 1295 1296 BNX2FC_IO_DBG(orig_io_req, "Entered process_cleanup_compl xid = 0x%x" 1297 "cmd_type = %d\n", 1298 seq_clnp_req->xid, seq_clnp_req->cmd_type); 1299 1300 if (rx_state == FCOE_TASK_RX_STATE_IGNORED_SEQUENCE_CLEANUP) { 1301 printk(KERN_ERR PFX "seq cleanup ignored - xid = 0x%x\n", 1302 seq_clnp_req->xid); 1303 goto free_cb_arg; 1304 } 1305 1306 spin_unlock_bh(&tgt->tgt_lock); 1307 rc = bnx2fc_send_srr(orig_io_req, offset, r_ctl); 1308 spin_lock_bh(&tgt->tgt_lock); 1309 1310 if (rc) 1311 printk(KERN_ERR PFX "clnup_compl: Unable to send SRR" 1312 " IO will abort\n"); 1313 seq_clnp_req->cb_arg = NULL; 1314 kref_put(&orig_io_req->refcount, bnx2fc_cmd_release); 1315 free_cb_arg: 1316 kfree(cb_arg); 1317 return; 1318 } 1319 1320 void bnx2fc_process_cleanup_compl(struct bnx2fc_cmd *io_req, 1321 struct fcoe_task_ctx_entry *task, 1322 u8 num_rq) 1323 { 1324 BNX2FC_IO_DBG(io_req, "Entered process_cleanup_compl " 1325 "refcnt = %d, cmd_type = %d\n", 1326 kref_read(&io_req->refcount), io_req->cmd_type); 1327 /* 1328 * Test whether there is a cleanup request pending. If not just 1329 * exit. 1330 */ 1331 if (!test_and_clear_bit(BNX2FC_FLAG_ISSUE_CLEANUP_REQ, 1332 &io_req->req_flags)) 1333 return; 1334 /* 1335 * If we receive a cleanup completion for this request then the 1336 * firmware will not give us an abort completion for this request 1337 * so clear any ABTS pending flags. 1338 */ 1339 if (test_bit(BNX2FC_FLAG_ISSUE_ABTS, &io_req->req_flags) && 1340 !test_bit(BNX2FC_FLAG_ABTS_DONE, &io_req->req_flags)) { 1341 set_bit(BNX2FC_FLAG_ABTS_DONE, &io_req->req_flags); 1342 if (io_req->wait_for_abts_comp) 1343 complete(&io_req->abts_done); 1344 } 1345 1346 bnx2fc_scsi_done(io_req, DID_ERROR); 1347 kref_put(&io_req->refcount, bnx2fc_cmd_release); 1348 if (io_req->wait_for_cleanup_comp) 1349 complete(&io_req->cleanup_done); 1350 } 1351 1352 void bnx2fc_process_abts_compl(struct bnx2fc_cmd *io_req, 1353 struct fcoe_task_ctx_entry *task, 1354 u8 num_rq) 1355 { 1356 u32 r_ctl; 1357 u32 r_a_tov = FC_DEF_R_A_TOV; 1358 u8 issue_rrq = 0; 1359 struct bnx2fc_rport *tgt = io_req->tgt; 1360 1361 BNX2FC_IO_DBG(io_req, "Entered process_abts_compl xid = 0x%x" 1362 "refcnt = %d, cmd_type = %d\n", 1363 io_req->xid, 1364 kref_read(&io_req->refcount), io_req->cmd_type); 1365 1366 if (test_and_set_bit(BNX2FC_FLAG_ABTS_DONE, 1367 &io_req->req_flags)) { 1368 BNX2FC_IO_DBG(io_req, "Timer context finished processing" 1369 " this io\n"); 1370 return; 1371 } 1372 1373 /* 1374 * If we receive an ABTS completion here then we will not receive 1375 * a cleanup completion so clear any cleanup pending flags. 1376 */ 1377 if (test_bit(BNX2FC_FLAG_ISSUE_CLEANUP_REQ, &io_req->req_flags)) { 1378 clear_bit(BNX2FC_FLAG_ISSUE_CLEANUP_REQ, &io_req->req_flags); 1379 if (io_req->wait_for_cleanup_comp) 1380 complete(&io_req->cleanup_done); 1381 } 1382 1383 /* Do not issue RRQ as this IO is already cleanedup */ 1384 if (test_and_set_bit(BNX2FC_FLAG_IO_CLEANUP, 1385 &io_req->req_flags)) 1386 goto io_compl; 1387 1388 /* 1389 * For ABTS issued due to SCSI eh_abort_handler, timeout 1390 * values are maintained by scsi-ml itself. Cancel timeout 1391 * in case ABTS issued as part of task management function 1392 * or due to FW error. 1393 */ 1394 if (test_bit(BNX2FC_FLAG_ISSUE_ABTS, &io_req->req_flags)) 1395 if (cancel_delayed_work(&io_req->timeout_work)) 1396 kref_put(&io_req->refcount, 1397 bnx2fc_cmd_release); /* drop timer hold */ 1398 1399 r_ctl = (u8)task->rxwr_only.union_ctx.comp_info.abts_rsp.r_ctl; 1400 1401 switch (r_ctl) { 1402 case FC_RCTL_BA_ACC: 1403 /* 1404 * Dont release this cmd yet. It will be relesed 1405 * after we get RRQ response 1406 */ 1407 BNX2FC_IO_DBG(io_req, "ABTS response - ACC Send RRQ\n"); 1408 issue_rrq = 1; 1409 break; 1410 1411 case FC_RCTL_BA_RJT: 1412 BNX2FC_IO_DBG(io_req, "ABTS response - RJT\n"); 1413 break; 1414 default: 1415 printk(KERN_ERR PFX "Unknown ABTS response\n"); 1416 break; 1417 } 1418 1419 if (issue_rrq) { 1420 BNX2FC_IO_DBG(io_req, "Issue RRQ after R_A_TOV\n"); 1421 set_bit(BNX2FC_FLAG_ISSUE_RRQ, &io_req->req_flags); 1422 } 1423 set_bit(BNX2FC_FLAG_RETIRE_OXID, &io_req->req_flags); 1424 bnx2fc_cmd_timer_set(io_req, r_a_tov); 1425 1426 io_compl: 1427 if (io_req->wait_for_abts_comp) { 1428 if (test_and_clear_bit(BNX2FC_FLAG_EH_ABORT, 1429 &io_req->req_flags)) 1430 complete(&io_req->abts_done); 1431 } else { 1432 /* 1433 * We end up here when ABTS is issued as 1434 * in asynchronous context, i.e., as part 1435 * of task management completion, or 1436 * when FW error is received or when the 1437 * ABTS is issued when the IO is timed 1438 * out. 1439 */ 1440 1441 if (io_req->on_active_queue) { 1442 list_del_init(&io_req->link); 1443 io_req->on_active_queue = 0; 1444 /* Move IO req to retire queue */ 1445 list_add_tail(&io_req->link, &tgt->io_retire_queue); 1446 } 1447 bnx2fc_scsi_done(io_req, DID_ERROR); 1448 kref_put(&io_req->refcount, bnx2fc_cmd_release); 1449 } 1450 } 1451 1452 static void bnx2fc_lun_reset_cmpl(struct bnx2fc_cmd *io_req) 1453 { 1454 struct bnx2fc_rport *tgt = io_req->tgt; 1455 struct bnx2fc_cmd *cmd, *tmp; 1456 struct bnx2fc_mp_req *tm_req = &io_req->mp_req; 1457 u64 lun; 1458 int rc = 0; 1459 1460 /* called with tgt_lock held */ 1461 BNX2FC_IO_DBG(io_req, "Entered bnx2fc_lun_reset_cmpl\n"); 1462 /* 1463 * Walk thru the active_ios queue and ABORT the IO 1464 * that matches with the LUN that was reset 1465 */ 1466 list_for_each_entry_safe(cmd, tmp, &tgt->active_cmd_queue, link) { 1467 BNX2FC_TGT_DBG(tgt, "LUN RST cmpl: scan for pending IOs\n"); 1468 if (!cmd->sc_cmd) 1469 continue; 1470 lun = cmd->sc_cmd->device->lun; 1471 if (lun == tm_req->tm_lun) { 1472 /* Initiate ABTS on this cmd */ 1473 if (!test_and_set_bit(BNX2FC_FLAG_ISSUE_ABTS, 1474 &cmd->req_flags)) { 1475 /* cancel the IO timeout */ 1476 if (cancel_delayed_work(&io_req->timeout_work)) 1477 kref_put(&io_req->refcount, 1478 bnx2fc_cmd_release); 1479 /* timer hold */ 1480 rc = bnx2fc_initiate_abts(cmd); 1481 /* abts shouldn't fail in this context */ 1482 WARN_ON(rc != SUCCESS); 1483 } else 1484 printk(KERN_ERR PFX "lun_rst: abts already in" 1485 " progress for this IO 0x%x\n", 1486 cmd->xid); 1487 } 1488 } 1489 } 1490 1491 static void bnx2fc_tgt_reset_cmpl(struct bnx2fc_cmd *io_req) 1492 { 1493 struct bnx2fc_rport *tgt = io_req->tgt; 1494 struct bnx2fc_cmd *cmd, *tmp; 1495 int rc = 0; 1496 1497 /* called with tgt_lock held */ 1498 BNX2FC_IO_DBG(io_req, "Entered bnx2fc_tgt_reset_cmpl\n"); 1499 /* 1500 * Walk thru the active_ios queue and ABORT the IO 1501 * that matches with the LUN that was reset 1502 */ 1503 list_for_each_entry_safe(cmd, tmp, &tgt->active_cmd_queue, link) { 1504 BNX2FC_TGT_DBG(tgt, "TGT RST cmpl: scan for pending IOs\n"); 1505 /* Initiate ABTS */ 1506 if (!test_and_set_bit(BNX2FC_FLAG_ISSUE_ABTS, 1507 &cmd->req_flags)) { 1508 /* cancel the IO timeout */ 1509 if (cancel_delayed_work(&io_req->timeout_work)) 1510 kref_put(&io_req->refcount, 1511 bnx2fc_cmd_release); /* timer hold */ 1512 rc = bnx2fc_initiate_abts(cmd); 1513 /* abts shouldn't fail in this context */ 1514 WARN_ON(rc != SUCCESS); 1515 1516 } else 1517 printk(KERN_ERR PFX "tgt_rst: abts already in progress" 1518 " for this IO 0x%x\n", cmd->xid); 1519 } 1520 } 1521 1522 void bnx2fc_process_tm_compl(struct bnx2fc_cmd *io_req, 1523 struct fcoe_task_ctx_entry *task, u8 num_rq, 1524 unsigned char *rq_data) 1525 { 1526 struct bnx2fc_mp_req *tm_req; 1527 struct fc_frame_header *fc_hdr; 1528 struct scsi_cmnd *sc_cmd = io_req->sc_cmd; 1529 u64 *hdr; 1530 u64 *temp_hdr; 1531 void *rsp_buf; 1532 1533 /* Called with tgt_lock held */ 1534 BNX2FC_IO_DBG(io_req, "Entered process_tm_compl\n"); 1535 1536 if (!(test_bit(BNX2FC_FLAG_TM_TIMEOUT, &io_req->req_flags))) 1537 set_bit(BNX2FC_FLAG_TM_COMPL, &io_req->req_flags); 1538 else { 1539 /* TM has already timed out and we got 1540 * delayed completion. Ignore completion 1541 * processing. 1542 */ 1543 return; 1544 } 1545 1546 tm_req = &(io_req->mp_req); 1547 fc_hdr = &(tm_req->resp_fc_hdr); 1548 hdr = (u64 *)fc_hdr; 1549 temp_hdr = (u64 *) 1550 &task->rxwr_only.union_ctx.comp_info.mp_rsp.fc_hdr; 1551 hdr[0] = cpu_to_be64(temp_hdr[0]); 1552 hdr[1] = cpu_to_be64(temp_hdr[1]); 1553 hdr[2] = cpu_to_be64(temp_hdr[2]); 1554 1555 tm_req->resp_len = 1556 task->rxwr_only.union_ctx.comp_info.mp_rsp.mp_payload_len; 1557 1558 rsp_buf = tm_req->resp_buf; 1559 1560 if (fc_hdr->fh_r_ctl == FC_RCTL_DD_CMD_STATUS) { 1561 bnx2fc_parse_fcp_rsp(io_req, 1562 (struct fcoe_fcp_rsp_payload *) 1563 rsp_buf, num_rq, rq_data); 1564 if (io_req->fcp_rsp_code == 0) { 1565 /* TM successful */ 1566 if (tm_req->tm_flags & FCP_TMF_LUN_RESET) 1567 bnx2fc_lun_reset_cmpl(io_req); 1568 else if (tm_req->tm_flags & FCP_TMF_TGT_RESET) 1569 bnx2fc_tgt_reset_cmpl(io_req); 1570 } 1571 } else { 1572 printk(KERN_ERR PFX "tmf's fc_hdr r_ctl = 0x%x\n", 1573 fc_hdr->fh_r_ctl); 1574 } 1575 if (sc_cmd) { 1576 if (!bnx2fc_priv(sc_cmd)->io_req) { 1577 printk(KERN_ERR PFX "tm_compl: io_req is NULL\n"); 1578 return; 1579 } 1580 switch (io_req->fcp_status) { 1581 case FC_GOOD: 1582 if (io_req->cdb_status == 0) { 1583 /* Good IO completion */ 1584 sc_cmd->result = DID_OK << 16; 1585 } else { 1586 /* Transport status is good, SCSI status not good */ 1587 sc_cmd->result = (DID_OK << 16) | io_req->cdb_status; 1588 } 1589 if (io_req->fcp_resid) 1590 scsi_set_resid(sc_cmd, io_req->fcp_resid); 1591 break; 1592 1593 default: 1594 BNX2FC_IO_DBG(io_req, "process_tm_compl: fcp_status = %d\n", 1595 io_req->fcp_status); 1596 break; 1597 } 1598 1599 sc_cmd = io_req->sc_cmd; 1600 io_req->sc_cmd = NULL; 1601 1602 bnx2fc_priv(sc_cmd)->io_req = NULL; 1603 scsi_done(sc_cmd); 1604 } 1605 1606 /* check if the io_req exists in tgt's tmf_q */ 1607 if (io_req->on_tmf_queue) { 1608 1609 list_del_init(&io_req->link); 1610 io_req->on_tmf_queue = 0; 1611 } else { 1612 1613 printk(KERN_ERR PFX "Command not on active_cmd_queue!\n"); 1614 return; 1615 } 1616 1617 kref_put(&io_req->refcount, bnx2fc_cmd_release); 1618 if (io_req->wait_for_abts_comp) { 1619 BNX2FC_IO_DBG(io_req, "tm_compl - wake up the waiter\n"); 1620 complete(&io_req->abts_done); 1621 } 1622 } 1623 1624 static int bnx2fc_split_bd(struct bnx2fc_cmd *io_req, u64 addr, int sg_len, 1625 int bd_index) 1626 { 1627 struct fcoe_bd_ctx *bd = io_req->bd_tbl->bd_tbl; 1628 int frag_size, sg_frags; 1629 1630 sg_frags = 0; 1631 while (sg_len) { 1632 if (sg_len >= BNX2FC_BD_SPLIT_SZ) 1633 frag_size = BNX2FC_BD_SPLIT_SZ; 1634 else 1635 frag_size = sg_len; 1636 bd[bd_index + sg_frags].buf_addr_lo = addr & 0xffffffff; 1637 bd[bd_index + sg_frags].buf_addr_hi = addr >> 32; 1638 bd[bd_index + sg_frags].buf_len = (u16)frag_size; 1639 bd[bd_index + sg_frags].flags = 0; 1640 1641 addr += (u64) frag_size; 1642 sg_frags++; 1643 sg_len -= frag_size; 1644 } 1645 return sg_frags; 1646 1647 } 1648 1649 static int bnx2fc_map_sg(struct bnx2fc_cmd *io_req) 1650 { 1651 struct bnx2fc_interface *interface = io_req->port->priv; 1652 struct bnx2fc_hba *hba = interface->hba; 1653 struct scsi_cmnd *sc = io_req->sc_cmd; 1654 struct fcoe_bd_ctx *bd = io_req->bd_tbl->bd_tbl; 1655 struct scatterlist *sg; 1656 int byte_count = 0; 1657 int sg_count = 0; 1658 int bd_count = 0; 1659 int sg_frags; 1660 unsigned int sg_len; 1661 u64 addr; 1662 int i; 1663 1664 WARN_ON(scsi_sg_count(sc) > BNX2FC_MAX_BDS_PER_CMD); 1665 /* 1666 * Use dma_map_sg directly to ensure we're using the correct 1667 * dev struct off of pcidev. 1668 */ 1669 sg_count = dma_map_sg(&hba->pcidev->dev, scsi_sglist(sc), 1670 scsi_sg_count(sc), sc->sc_data_direction); 1671 scsi_for_each_sg(sc, sg, sg_count, i) { 1672 sg_len = sg_dma_len(sg); 1673 addr = sg_dma_address(sg); 1674 if (sg_len > BNX2FC_MAX_BD_LEN) { 1675 sg_frags = bnx2fc_split_bd(io_req, addr, sg_len, 1676 bd_count); 1677 } else { 1678 1679 sg_frags = 1; 1680 bd[bd_count].buf_addr_lo = addr & 0xffffffff; 1681 bd[bd_count].buf_addr_hi = addr >> 32; 1682 bd[bd_count].buf_len = (u16)sg_len; 1683 bd[bd_count].flags = 0; 1684 } 1685 bd_count += sg_frags; 1686 byte_count += sg_len; 1687 } 1688 if (byte_count != scsi_bufflen(sc)) 1689 printk(KERN_ERR PFX "byte_count = %d != scsi_bufflen = %d, " 1690 "task_id = 0x%x\n", byte_count, scsi_bufflen(sc), 1691 io_req->xid); 1692 return bd_count; 1693 } 1694 1695 static int bnx2fc_build_bd_list_from_sg(struct bnx2fc_cmd *io_req) 1696 { 1697 struct scsi_cmnd *sc = io_req->sc_cmd; 1698 struct fcoe_bd_ctx *bd = io_req->bd_tbl->bd_tbl; 1699 int bd_count; 1700 1701 if (scsi_sg_count(sc)) { 1702 bd_count = bnx2fc_map_sg(io_req); 1703 if (bd_count == 0) 1704 return -ENOMEM; 1705 } else { 1706 bd_count = 0; 1707 bd[0].buf_addr_lo = bd[0].buf_addr_hi = 0; 1708 bd[0].buf_len = bd[0].flags = 0; 1709 } 1710 io_req->bd_tbl->bd_valid = bd_count; 1711 1712 /* 1713 * Return the command to ML if BD count exceeds the max number 1714 * that can be handled by FW. 1715 */ 1716 if (bd_count > BNX2FC_FW_MAX_BDS_PER_CMD) { 1717 pr_err("bd_count = %d exceeded FW supported max BD(255), task_id = 0x%x\n", 1718 bd_count, io_req->xid); 1719 return -ENOMEM; 1720 } 1721 1722 return 0; 1723 } 1724 1725 static void bnx2fc_unmap_sg_list(struct bnx2fc_cmd *io_req) 1726 { 1727 struct scsi_cmnd *sc = io_req->sc_cmd; 1728 struct bnx2fc_interface *interface = io_req->port->priv; 1729 struct bnx2fc_hba *hba = interface->hba; 1730 1731 /* 1732 * Use dma_unmap_sg directly to ensure we're using the correct 1733 * dev struct off of pcidev. 1734 */ 1735 if (io_req->bd_tbl->bd_valid && sc && scsi_sg_count(sc)) { 1736 dma_unmap_sg(&hba->pcidev->dev, scsi_sglist(sc), 1737 scsi_sg_count(sc), sc->sc_data_direction); 1738 io_req->bd_tbl->bd_valid = 0; 1739 } 1740 } 1741 1742 void bnx2fc_build_fcp_cmnd(struct bnx2fc_cmd *io_req, 1743 struct fcp_cmnd *fcp_cmnd) 1744 { 1745 memset(fcp_cmnd, 0, sizeof(struct fcp_cmnd)); 1746 1747 fcp_cmnd->fc_dl = htonl(io_req->data_xfer_len); 1748 fcp_cmnd->fc_cmdref = 0; 1749 fcp_cmnd->fc_pri_ta = 0; 1750 fcp_cmnd->fc_tm_flags = io_req->mp_req.tm_flags; 1751 fcp_cmnd->fc_flags = io_req->io_req_flags; 1752 fcp_cmnd->fc_pri_ta = FCP_PTA_SIMPLE; 1753 } 1754 1755 static void bnx2fc_parse_fcp_rsp(struct bnx2fc_cmd *io_req, 1756 struct fcoe_fcp_rsp_payload *fcp_rsp, 1757 u8 num_rq, unsigned char *rq_data) 1758 { 1759 struct scsi_cmnd *sc_cmd = io_req->sc_cmd; 1760 u8 rsp_flags = fcp_rsp->fcp_flags.flags; 1761 u32 rq_buff_len = 0; 1762 int fcp_sns_len = 0; 1763 int fcp_rsp_len = 0; 1764 1765 io_req->fcp_status = FC_GOOD; 1766 io_req->fcp_resid = 0; 1767 if (rsp_flags & (FCOE_FCP_RSP_FLAGS_FCP_RESID_OVER | 1768 FCOE_FCP_RSP_FLAGS_FCP_RESID_UNDER)) 1769 io_req->fcp_resid = fcp_rsp->fcp_resid; 1770 1771 io_req->scsi_comp_flags = rsp_flags; 1772 io_req->cdb_status = fcp_rsp->scsi_status_code; 1773 1774 /* Fetch fcp_rsp_info and fcp_sns_info if available */ 1775 if (num_rq) { 1776 1777 /* 1778 * We do not anticipate num_rq >1, as the linux defined 1779 * SCSI_SENSE_BUFFERSIZE is 96 bytes + 8 bytes of FCP_RSP_INFO 1780 * 256 bytes of single rq buffer is good enough to hold this. 1781 */ 1782 1783 if (rsp_flags & 1784 FCOE_FCP_RSP_FLAGS_FCP_RSP_LEN_VALID) { 1785 fcp_rsp_len = rq_buff_len 1786 = fcp_rsp->fcp_rsp_len; 1787 } 1788 1789 if (rsp_flags & 1790 FCOE_FCP_RSP_FLAGS_FCP_SNS_LEN_VALID) { 1791 fcp_sns_len = fcp_rsp->fcp_sns_len; 1792 rq_buff_len += fcp_rsp->fcp_sns_len; 1793 } 1794 1795 io_req->fcp_rsp_len = fcp_rsp_len; 1796 io_req->fcp_sns_len = fcp_sns_len; 1797 1798 if (rq_buff_len > num_rq * BNX2FC_RQ_BUF_SZ) { 1799 /* Invalid sense sense length. */ 1800 printk(KERN_ERR PFX "invalid sns length %d\n", 1801 rq_buff_len); 1802 /* reset rq_buff_len */ 1803 rq_buff_len = num_rq * BNX2FC_RQ_BUF_SZ; 1804 } 1805 1806 /* fetch fcp_rsp_code */ 1807 if ((fcp_rsp_len == 4) || (fcp_rsp_len == 8)) { 1808 /* Only for task management function */ 1809 io_req->fcp_rsp_code = rq_data[3]; 1810 BNX2FC_IO_DBG(io_req, "fcp_rsp_code = %d\n", 1811 io_req->fcp_rsp_code); 1812 } 1813 1814 /* fetch sense data */ 1815 rq_data += fcp_rsp_len; 1816 1817 if (fcp_sns_len > SCSI_SENSE_BUFFERSIZE) { 1818 printk(KERN_ERR PFX "Truncating sense buffer\n"); 1819 fcp_sns_len = SCSI_SENSE_BUFFERSIZE; 1820 } 1821 1822 memset(sc_cmd->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE); 1823 if (fcp_sns_len) 1824 memcpy(sc_cmd->sense_buffer, rq_data, fcp_sns_len); 1825 1826 } 1827 } 1828 1829 /** 1830 * bnx2fc_queuecommand - Queuecommand function of the scsi template 1831 * 1832 * @host: The Scsi_Host the command was issued to 1833 * @sc_cmd: struct scsi_cmnd to be executed 1834 * 1835 * This is the IO strategy routine, called by SCSI-ML 1836 **/ 1837 enum scsi_qc_status bnx2fc_queuecommand(struct Scsi_Host *host, 1838 struct scsi_cmnd *sc_cmd) 1839 { 1840 struct fc_lport *lport = shost_priv(host); 1841 struct fc_rport *rport = starget_to_rport(scsi_target(sc_cmd->device)); 1842 struct fc_rport_libfc_priv *rp = rport->dd_data; 1843 struct bnx2fc_rport *tgt; 1844 struct bnx2fc_cmd *io_req; 1845 int rc = 0; 1846 int rval; 1847 1848 rval = fc_remote_port_chkready(rport); 1849 if (rval) { 1850 sc_cmd->result = rval; 1851 scsi_done(sc_cmd); 1852 return 0; 1853 } 1854 1855 if ((lport->state != LPORT_ST_READY) || !(lport->link_up)) { 1856 rc = SCSI_MLQUEUE_HOST_BUSY; 1857 goto exit_qcmd; 1858 } 1859 1860 /* rport and tgt are allocated together, so tgt should be non-NULL */ 1861 tgt = (struct bnx2fc_rport *)&rp[1]; 1862 1863 if (!test_bit(BNX2FC_FLAG_SESSION_READY, &tgt->flags)) { 1864 /* 1865 * Session is not offloaded yet. Let SCSI-ml retry 1866 * the command. 1867 */ 1868 rc = SCSI_MLQUEUE_TARGET_BUSY; 1869 goto exit_qcmd; 1870 } 1871 if (tgt->retry_delay_timestamp) { 1872 if (time_after(jiffies, tgt->retry_delay_timestamp)) { 1873 tgt->retry_delay_timestamp = 0; 1874 } else { 1875 /* If retry_delay timer is active, flow off the ML */ 1876 rc = SCSI_MLQUEUE_TARGET_BUSY; 1877 goto exit_qcmd; 1878 } 1879 } 1880 1881 spin_lock_bh(&tgt->tgt_lock); 1882 1883 io_req = bnx2fc_cmd_alloc(tgt); 1884 if (!io_req) { 1885 rc = SCSI_MLQUEUE_HOST_BUSY; 1886 goto exit_qcmd_tgtlock; 1887 } 1888 io_req->sc_cmd = sc_cmd; 1889 1890 if (bnx2fc_post_io_req(tgt, io_req)) { 1891 printk(KERN_ERR PFX "Unable to post io_req\n"); 1892 rc = SCSI_MLQUEUE_HOST_BUSY; 1893 goto exit_qcmd_tgtlock; 1894 } 1895 1896 exit_qcmd_tgtlock: 1897 spin_unlock_bh(&tgt->tgt_lock); 1898 exit_qcmd: 1899 return rc; 1900 } 1901 1902 void bnx2fc_process_scsi_cmd_compl(struct bnx2fc_cmd *io_req, 1903 struct fcoe_task_ctx_entry *task, 1904 u8 num_rq, unsigned char *rq_data) 1905 { 1906 struct fcoe_fcp_rsp_payload *fcp_rsp; 1907 struct bnx2fc_rport *tgt = io_req->tgt; 1908 struct scsi_cmnd *sc_cmd; 1909 u16 scope = 0, qualifier = 0; 1910 1911 /* scsi_cmd_cmpl is called with tgt lock held */ 1912 1913 if (test_and_set_bit(BNX2FC_FLAG_IO_COMPL, &io_req->req_flags)) { 1914 /* we will not receive ABTS response for this IO */ 1915 BNX2FC_IO_DBG(io_req, "Timer context finished processing " 1916 "this scsi cmd\n"); 1917 if (test_and_clear_bit(BNX2FC_FLAG_IO_CLEANUP, 1918 &io_req->req_flags)) { 1919 BNX2FC_IO_DBG(io_req, 1920 "Actual completion after cleanup request cleaning up\n"); 1921 bnx2fc_process_cleanup_compl(io_req, task, num_rq); 1922 } 1923 return; 1924 } 1925 1926 /* Cancel the timeout_work, as we received IO completion */ 1927 if (cancel_delayed_work(&io_req->timeout_work)) 1928 kref_put(&io_req->refcount, 1929 bnx2fc_cmd_release); /* drop timer hold */ 1930 1931 sc_cmd = io_req->sc_cmd; 1932 if (sc_cmd == NULL) { 1933 printk(KERN_ERR PFX "scsi_cmd_compl - sc_cmd is NULL\n"); 1934 return; 1935 } 1936 1937 /* Fetch fcp_rsp from task context and perform cmd completion */ 1938 fcp_rsp = (struct fcoe_fcp_rsp_payload *) 1939 &(task->rxwr_only.union_ctx.comp_info.fcp_rsp.payload); 1940 1941 /* parse fcp_rsp and obtain sense data from RQ if available */ 1942 bnx2fc_parse_fcp_rsp(io_req, fcp_rsp, num_rq, rq_data); 1943 1944 if (!bnx2fc_priv(sc_cmd)->io_req) { 1945 printk(KERN_ERR PFX "io_req is NULL\n"); 1946 return; 1947 } 1948 1949 if (io_req->on_active_queue) { 1950 list_del_init(&io_req->link); 1951 io_req->on_active_queue = 0; 1952 /* Move IO req to retire queue */ 1953 list_add_tail(&io_req->link, &tgt->io_retire_queue); 1954 } else { 1955 /* This should not happen, but could have been pulled 1956 * by bnx2fc_flush_active_ios(), or during a race 1957 * between command abort and (late) completion. 1958 */ 1959 BNX2FC_IO_DBG(io_req, "xid not on active_cmd_queue\n"); 1960 if (io_req->wait_for_abts_comp) 1961 if (test_and_clear_bit(BNX2FC_FLAG_EH_ABORT, 1962 &io_req->req_flags)) 1963 complete(&io_req->abts_done); 1964 } 1965 1966 bnx2fc_unmap_sg_list(io_req); 1967 io_req->sc_cmd = NULL; 1968 1969 switch (io_req->fcp_status) { 1970 case FC_GOOD: 1971 if (io_req->cdb_status == 0) { 1972 /* Good IO completion */ 1973 sc_cmd->result = DID_OK << 16; 1974 } else { 1975 /* Transport status is good, SCSI status not good */ 1976 BNX2FC_IO_DBG(io_req, "scsi_cmpl: cdb_status = %d" 1977 " fcp_resid = 0x%x\n", 1978 io_req->cdb_status, io_req->fcp_resid); 1979 sc_cmd->result = (DID_OK << 16) | io_req->cdb_status; 1980 1981 if (io_req->cdb_status == SAM_STAT_TASK_SET_FULL || 1982 io_req->cdb_status == SAM_STAT_BUSY) { 1983 /* Newer array firmware with BUSY or 1984 * TASK_SET_FULL may return a status that needs 1985 * the scope bits masked. 1986 * Or a huge delay timestamp up to 27 minutes 1987 * can result. 1988 */ 1989 if (fcp_rsp->retry_delay_timer) { 1990 /* Upper 2 bits */ 1991 scope = fcp_rsp->retry_delay_timer 1992 & 0xC000; 1993 /* Lower 14 bits */ 1994 qualifier = fcp_rsp->retry_delay_timer 1995 & 0x3FFF; 1996 } 1997 if (scope > 0 && qualifier > 0 && 1998 qualifier <= 0x3FEF) { 1999 /* Set the jiffies + 2000 * retry_delay_timer * 100ms 2001 * for the rport/tgt 2002 */ 2003 tgt->retry_delay_timestamp = jiffies + 2004 (qualifier * HZ / 10); 2005 } 2006 } 2007 } 2008 if (io_req->fcp_resid) 2009 scsi_set_resid(sc_cmd, io_req->fcp_resid); 2010 break; 2011 default: 2012 printk(KERN_ERR PFX "scsi_cmd_compl: fcp_status = %d\n", 2013 io_req->fcp_status); 2014 break; 2015 } 2016 bnx2fc_priv(sc_cmd)->io_req = NULL; 2017 scsi_done(sc_cmd); 2018 kref_put(&io_req->refcount, bnx2fc_cmd_release); 2019 } 2020 2021 int bnx2fc_post_io_req(struct bnx2fc_rport *tgt, 2022 struct bnx2fc_cmd *io_req) 2023 { 2024 struct fcoe_task_ctx_entry *task; 2025 struct fcoe_task_ctx_entry *task_page; 2026 struct scsi_cmnd *sc_cmd = io_req->sc_cmd; 2027 struct fcoe_port *port = tgt->port; 2028 struct bnx2fc_interface *interface = port->priv; 2029 struct bnx2fc_hba *hba = interface->hba; 2030 struct fc_lport *lport = port->lport; 2031 int task_idx, index; 2032 u16 xid; 2033 2034 /* bnx2fc_post_io_req() is called with the tgt_lock held */ 2035 2036 /* Initialize rest of io_req fields */ 2037 io_req->cmd_type = BNX2FC_SCSI_CMD; 2038 io_req->port = port; 2039 io_req->tgt = tgt; 2040 io_req->data_xfer_len = scsi_bufflen(sc_cmd); 2041 bnx2fc_priv(sc_cmd)->io_req = io_req; 2042 2043 if (sc_cmd->sc_data_direction == DMA_FROM_DEVICE) { 2044 io_req->io_req_flags = BNX2FC_READ; 2045 this_cpu_inc(lport->stats->InputRequests); 2046 this_cpu_add(lport->stats->InputBytes, io_req->data_xfer_len); 2047 } else if (sc_cmd->sc_data_direction == DMA_TO_DEVICE) { 2048 io_req->io_req_flags = BNX2FC_WRITE; 2049 this_cpu_inc(lport->stats->OutputRequests); 2050 this_cpu_add(lport->stats->OutputBytes, io_req->data_xfer_len); 2051 } else { 2052 io_req->io_req_flags = 0; 2053 this_cpu_inc(lport->stats->ControlRequests); 2054 } 2055 2056 xid = io_req->xid; 2057 2058 /* Build buffer descriptor list for firmware from sg list */ 2059 if (bnx2fc_build_bd_list_from_sg(io_req)) { 2060 printk(KERN_ERR PFX "BD list creation failed\n"); 2061 kref_put(&io_req->refcount, bnx2fc_cmd_release); 2062 return -EAGAIN; 2063 } 2064 2065 task_idx = xid / BNX2FC_TASKS_PER_PAGE; 2066 index = xid % BNX2FC_TASKS_PER_PAGE; 2067 2068 /* Initialize task context for this IO request */ 2069 task_page = (struct fcoe_task_ctx_entry *) hba->task_ctx[task_idx]; 2070 task = &(task_page[index]); 2071 bnx2fc_init_task(io_req, task); 2072 2073 if (tgt->flush_in_prog) { 2074 printk(KERN_ERR PFX "Flush in progress..Host Busy\n"); 2075 kref_put(&io_req->refcount, bnx2fc_cmd_release); 2076 return -EAGAIN; 2077 } 2078 2079 if (!test_bit(BNX2FC_FLAG_SESSION_READY, &tgt->flags)) { 2080 printk(KERN_ERR PFX "Session not ready...post_io\n"); 2081 kref_put(&io_req->refcount, bnx2fc_cmd_release); 2082 return -EAGAIN; 2083 } 2084 2085 /* Time IO req */ 2086 if (tgt->io_timeout) 2087 bnx2fc_cmd_timer_set(io_req, BNX2FC_IO_TIMEOUT); 2088 /* Obtain free SQ entry */ 2089 bnx2fc_add_2_sq(tgt, xid); 2090 2091 /* Enqueue the io_req to active_cmd_queue */ 2092 2093 io_req->on_active_queue = 1; 2094 /* move io_req from pending_queue to active_queue */ 2095 list_add_tail(&io_req->link, &tgt->active_cmd_queue); 2096 2097 /* Ring doorbell */ 2098 bnx2fc_ring_doorbell(tgt); 2099 return 0; 2100 } 2101