linux/drivers/scsi/bnx2fc/bnx2fc_io.c
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   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
  19static int bnx2fc_split_bd(struct bnx2fc_cmd *io_req, u64 addr, int sg_len,
  20                           int bd_index);
  21static int bnx2fc_map_sg(struct bnx2fc_cmd *io_req);
  22static int bnx2fc_build_bd_list_from_sg(struct bnx2fc_cmd *io_req);
  23static void bnx2fc_unmap_sg_list(struct bnx2fc_cmd *io_req);
  24static void bnx2fc_free_mp_resc(struct bnx2fc_cmd *io_req);
  25static void bnx2fc_parse_fcp_rsp(struct bnx2fc_cmd *io_req,
  26                                 struct fcoe_fcp_rsp_payload *fcp_rsp,
  27                                 u8 num_rq);
  28
  29void 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
  40static 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->tm_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
 156done:
 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
 162static 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        sc_cmd->SCp.ptr = NULL;
 208        sc_cmd->scsi_done(sc_cmd);
 209}
 210
 211struct 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->free_list = kzalloc(sizeof(*cmgr->free_list) *
 244                                  arr_sz, GFP_KERNEL);
 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(sizeof(*cmgr->free_list_lock) *
 251                                       arr_sz, GFP_KERNEL);
 252        if (!cmgr->free_list_lock) {
 253                printk(KERN_ERR PFX "failed to alloc free_list_lock\n");
 254                kfree(cmgr->free_list);
 255                cmgr->free_list = NULL;
 256                goto mem_err;
 257        }
 258
 259        cmgr->hba = hba;
 260        cmgr->cmds = (struct bnx2fc_cmd **)(cmgr + 1);
 261
 262        for (i = 0; i < arr_sz; i++)  {
 263                INIT_LIST_HEAD(&cmgr->free_list[i]);
 264                spin_lock_init(&cmgr->free_list_lock[i]);
 265        }
 266
 267        /*
 268         * Pre-allocated pool of bnx2fc_cmds.
 269         * Last entry in the free list array is the free list
 270         * of slow path requests.
 271         */
 272        xid = BNX2FC_MIN_XID;
 273        num_pri_ios = num_ios - hba->elstm_xids;
 274        for (i = 0; i < num_ios; i++) {
 275                io_req = kzalloc(sizeof(*io_req), GFP_KERNEL);
 276
 277                if (!io_req) {
 278                        printk(KERN_ERR PFX "failed to alloc io_req\n");
 279                        goto mem_err;
 280                }
 281
 282                INIT_LIST_HEAD(&io_req->link);
 283                INIT_DELAYED_WORK(&io_req->timeout_work, bnx2fc_cmd_timeout);
 284
 285                io_req->xid = xid++;
 286                if (i < num_pri_ios)
 287                        list_add_tail(&io_req->link,
 288                                &cmgr->free_list[io_req->xid %
 289                                                 num_possible_cpus()]);
 290                else
 291                        list_add_tail(&io_req->link,
 292                                &cmgr->free_list[num_possible_cpus()]);
 293                io_req++;
 294        }
 295
 296        /* Allocate pool of io_bdts - one for each bnx2fc_cmd */
 297        mem_size = num_ios * sizeof(struct io_bdt *);
 298        cmgr->io_bdt_pool = kmalloc(mem_size, GFP_KERNEL);
 299        if (!cmgr->io_bdt_pool) {
 300                printk(KERN_ERR PFX "failed to alloc io_bdt_pool\n");
 301                goto mem_err;
 302        }
 303
 304        mem_size = sizeof(struct io_bdt);
 305        for (i = 0; i < num_ios; i++) {
 306                cmgr->io_bdt_pool[i] = kmalloc(mem_size, GFP_KERNEL);
 307                if (!cmgr->io_bdt_pool[i]) {
 308                        printk(KERN_ERR PFX "failed to alloc "
 309                                "io_bdt_pool[%d]\n", i);
 310                        goto mem_err;
 311                }
 312        }
 313
 314        /* Allocate an map fcoe_bdt_ctx structures */
 315        bd_tbl_sz = BNX2FC_MAX_BDS_PER_CMD * sizeof(struct fcoe_bd_ctx);
 316        for (i = 0; i < num_ios; i++) {
 317                bdt_info = cmgr->io_bdt_pool[i];
 318                bdt_info->bd_tbl = dma_alloc_coherent(&hba->pcidev->dev,
 319                                                      bd_tbl_sz,
 320                                                      &bdt_info->bd_tbl_dma,
 321                                                      GFP_KERNEL);
 322                if (!bdt_info->bd_tbl) {
 323                        printk(KERN_ERR PFX "failed to alloc "
 324                                "bdt_tbl[%d]\n", i);
 325                        goto mem_err;
 326                }
 327        }
 328
 329        return cmgr;
 330
 331mem_err:
 332        bnx2fc_cmd_mgr_free(cmgr);
 333        return NULL;
 334}
 335
 336void bnx2fc_cmd_mgr_free(struct bnx2fc_cmd_mgr *cmgr)
 337{
 338        struct io_bdt *bdt_info;
 339        struct bnx2fc_hba *hba = cmgr->hba;
 340        size_t bd_tbl_sz;
 341        u16 min_xid = BNX2FC_MIN_XID;
 342        u16 max_xid = hba->max_xid;
 343        int num_ios;
 344        int i;
 345
 346        num_ios = max_xid - min_xid + 1;
 347
 348        /* Free fcoe_bdt_ctx structures */
 349        if (!cmgr->io_bdt_pool)
 350                goto free_cmd_pool;
 351
 352        bd_tbl_sz = BNX2FC_MAX_BDS_PER_CMD * sizeof(struct fcoe_bd_ctx);
 353        for (i = 0; i < num_ios; i++) {
 354                bdt_info = cmgr->io_bdt_pool[i];
 355                if (bdt_info->bd_tbl) {
 356                        dma_free_coherent(&hba->pcidev->dev, bd_tbl_sz,
 357                                            bdt_info->bd_tbl,
 358                                            bdt_info->bd_tbl_dma);
 359                        bdt_info->bd_tbl = NULL;
 360                }
 361        }
 362
 363        /* Destroy io_bdt pool */
 364        for (i = 0; i < num_ios; i++) {
 365                kfree(cmgr->io_bdt_pool[i]);
 366                cmgr->io_bdt_pool[i] = NULL;
 367        }
 368
 369        kfree(cmgr->io_bdt_pool);
 370        cmgr->io_bdt_pool = NULL;
 371
 372free_cmd_pool:
 373        kfree(cmgr->free_list_lock);
 374
 375        /* Destroy cmd pool */
 376        if (!cmgr->free_list)
 377                goto free_cmgr;
 378
 379        for (i = 0; i < num_possible_cpus() + 1; i++)  {
 380                struct bnx2fc_cmd *tmp, *io_req;
 381
 382                list_for_each_entry_safe(io_req, tmp,
 383                                         &cmgr->free_list[i], link) {
 384                        list_del(&io_req->link);
 385                        kfree(io_req);
 386                }
 387        }
 388        kfree(cmgr->free_list);
 389free_cmgr:
 390        /* Free command manager itself */
 391        kfree(cmgr);
 392}
 393
 394struct bnx2fc_cmd *bnx2fc_elstm_alloc(struct bnx2fc_rport *tgt, int type)
 395{
 396        struct fcoe_port *port = tgt->port;
 397        struct bnx2fc_interface *interface = port->priv;
 398        struct bnx2fc_cmd_mgr *cmd_mgr = interface->hba->cmd_mgr;
 399        struct bnx2fc_cmd *io_req;
 400        struct list_head *listp;
 401        struct io_bdt *bd_tbl;
 402        int index = RESERVE_FREE_LIST_INDEX;
 403        u32 free_sqes;
 404        u32 max_sqes;
 405        u16 xid;
 406
 407        max_sqes = tgt->max_sqes;
 408        switch (type) {
 409        case BNX2FC_TASK_MGMT_CMD:
 410                max_sqes = BNX2FC_TM_MAX_SQES;
 411                break;
 412        case BNX2FC_ELS:
 413                max_sqes = BNX2FC_ELS_MAX_SQES;
 414                break;
 415        default:
 416                break;
 417        }
 418
 419        /*
 420         * NOTE: Free list insertions and deletions are protected with
 421         * cmgr lock
 422         */
 423        spin_lock_bh(&cmd_mgr->free_list_lock[index]);
 424        free_sqes = atomic_read(&tgt->free_sqes);
 425        if ((list_empty(&(cmd_mgr->free_list[index]))) ||
 426            (tgt->num_active_ios.counter  >= max_sqes) ||
 427            (free_sqes + max_sqes <= BNX2FC_SQ_WQES_MAX)) {
 428                BNX2FC_TGT_DBG(tgt, "No free els_tm cmds available "
 429                        "ios(%d):sqes(%d)\n",
 430                        tgt->num_active_ios.counter, tgt->max_sqes);
 431                if (list_empty(&(cmd_mgr->free_list[index])))
 432                        printk(KERN_ERR PFX "elstm_alloc: list_empty\n");
 433                spin_unlock_bh(&cmd_mgr->free_list_lock[index]);
 434                return NULL;
 435        }
 436
 437        listp = (struct list_head *)
 438                        cmd_mgr->free_list[index].next;
 439        list_del_init(listp);
 440        io_req = (struct bnx2fc_cmd *) listp;
 441        xid = io_req->xid;
 442        cmd_mgr->cmds[xid] = io_req;
 443        atomic_inc(&tgt->num_active_ios);
 444        atomic_dec(&tgt->free_sqes);
 445        spin_unlock_bh(&cmd_mgr->free_list_lock[index]);
 446
 447        INIT_LIST_HEAD(&io_req->link);
 448
 449        io_req->port = port;
 450        io_req->cmd_mgr = cmd_mgr;
 451        io_req->req_flags = 0;
 452        io_req->cmd_type = type;
 453
 454        /* Bind io_bdt for this io_req */
 455        /* Have a static link between io_req and io_bdt_pool */
 456        bd_tbl = io_req->bd_tbl = cmd_mgr->io_bdt_pool[xid];
 457        bd_tbl->io_req = io_req;
 458
 459        /* Hold the io_req  against deletion */
 460        kref_init(&io_req->refcount);
 461        return io_req;
 462}
 463
 464struct bnx2fc_cmd *bnx2fc_cmd_alloc(struct bnx2fc_rport *tgt)
 465{
 466        struct fcoe_port *port = tgt->port;
 467        struct bnx2fc_interface *interface = port->priv;
 468        struct bnx2fc_cmd_mgr *cmd_mgr = interface->hba->cmd_mgr;
 469        struct bnx2fc_cmd *io_req;
 470        struct list_head *listp;
 471        struct io_bdt *bd_tbl;
 472        u32 free_sqes;
 473        u32 max_sqes;
 474        u16 xid;
 475        int index = get_cpu();
 476
 477        max_sqes = BNX2FC_SCSI_MAX_SQES;
 478        /*
 479         * NOTE: Free list insertions and deletions are protected with
 480         * cmgr lock
 481         */
 482        spin_lock_bh(&cmd_mgr->free_list_lock[index]);
 483        free_sqes = atomic_read(&tgt->free_sqes);
 484        if ((list_empty(&cmd_mgr->free_list[index])) ||
 485            (tgt->num_active_ios.counter  >= max_sqes) ||
 486            (free_sqes + max_sqes <= BNX2FC_SQ_WQES_MAX)) {
 487                spin_unlock_bh(&cmd_mgr->free_list_lock[index]);
 488                put_cpu();
 489                return NULL;
 490        }
 491
 492        listp = (struct list_head *)
 493                cmd_mgr->free_list[index].next;
 494        list_del_init(listp);
 495        io_req = (struct bnx2fc_cmd *) listp;
 496        xid = io_req->xid;
 497        cmd_mgr->cmds[xid] = io_req;
 498        atomic_inc(&tgt->num_active_ios);
 499        atomic_dec(&tgt->free_sqes);
 500        spin_unlock_bh(&cmd_mgr->free_list_lock[index]);
 501        put_cpu();
 502
 503        INIT_LIST_HEAD(&io_req->link);
 504
 505        io_req->port = port;
 506        io_req->cmd_mgr = cmd_mgr;
 507        io_req->req_flags = 0;
 508
 509        /* Bind io_bdt for this io_req */
 510        /* Have a static link between io_req and io_bdt_pool */
 511        bd_tbl = io_req->bd_tbl = cmd_mgr->io_bdt_pool[xid];
 512        bd_tbl->io_req = io_req;
 513
 514        /* Hold the io_req  against deletion */
 515        kref_init(&io_req->refcount);
 516        return io_req;
 517}
 518
 519void bnx2fc_cmd_release(struct kref *ref)
 520{
 521        struct bnx2fc_cmd *io_req = container_of(ref,
 522                                                struct bnx2fc_cmd, refcount);
 523        struct bnx2fc_cmd_mgr *cmd_mgr = io_req->cmd_mgr;
 524        int index;
 525
 526        if (io_req->cmd_type == BNX2FC_SCSI_CMD)
 527                index = io_req->xid % num_possible_cpus();
 528        else
 529                index = RESERVE_FREE_LIST_INDEX;
 530
 531
 532        spin_lock_bh(&cmd_mgr->free_list_lock[index]);
 533        if (io_req->cmd_type != BNX2FC_SCSI_CMD)
 534                bnx2fc_free_mp_resc(io_req);
 535        cmd_mgr->cmds[io_req->xid] = NULL;
 536        /* Delete IO from retire queue */
 537        list_del_init(&io_req->link);
 538        /* Add it to the free list */
 539        list_add(&io_req->link,
 540                        &cmd_mgr->free_list[index]);
 541        atomic_dec(&io_req->tgt->num_active_ios);
 542        spin_unlock_bh(&cmd_mgr->free_list_lock[index]);
 543
 544}
 545
 546static void bnx2fc_free_mp_resc(struct bnx2fc_cmd *io_req)
 547{
 548        struct bnx2fc_mp_req *mp_req = &(io_req->mp_req);
 549        struct bnx2fc_interface *interface = io_req->port->priv;
 550        struct bnx2fc_hba *hba = interface->hba;
 551        size_t sz = sizeof(struct fcoe_bd_ctx);
 552
 553        /* clear tm flags */
 554        mp_req->tm_flags = 0;
 555        if (mp_req->mp_req_bd) {
 556                dma_free_coherent(&hba->pcidev->dev, sz,
 557                                     mp_req->mp_req_bd,
 558                                     mp_req->mp_req_bd_dma);
 559                mp_req->mp_req_bd = NULL;
 560        }
 561        if (mp_req->mp_resp_bd) {
 562                dma_free_coherent(&hba->pcidev->dev, sz,
 563                                     mp_req->mp_resp_bd,
 564                                     mp_req->mp_resp_bd_dma);
 565                mp_req->mp_resp_bd = NULL;
 566        }
 567        if (mp_req->req_buf) {
 568                dma_free_coherent(&hba->pcidev->dev, CNIC_PAGE_SIZE,
 569                                     mp_req->req_buf,
 570                                     mp_req->req_buf_dma);
 571                mp_req->req_buf = NULL;
 572        }
 573        if (mp_req->resp_buf) {
 574                dma_free_coherent(&hba->pcidev->dev, CNIC_PAGE_SIZE,
 575                                     mp_req->resp_buf,
 576                                     mp_req->resp_buf_dma);
 577                mp_req->resp_buf = NULL;
 578        }
 579}
 580
 581int bnx2fc_init_mp_req(struct bnx2fc_cmd *io_req)
 582{
 583        struct bnx2fc_mp_req *mp_req;
 584        struct fcoe_bd_ctx *mp_req_bd;
 585        struct fcoe_bd_ctx *mp_resp_bd;
 586        struct bnx2fc_interface *interface = io_req->port->priv;
 587        struct bnx2fc_hba *hba = interface->hba;
 588        dma_addr_t addr;
 589        size_t sz;
 590
 591        mp_req = (struct bnx2fc_mp_req *)&(io_req->mp_req);
 592        memset(mp_req, 0, sizeof(struct bnx2fc_mp_req));
 593
 594        if (io_req->cmd_type != BNX2FC_ELS) {
 595                mp_req->req_len = sizeof(struct fcp_cmnd);
 596                io_req->data_xfer_len = mp_req->req_len;
 597        } else
 598                mp_req->req_len = io_req->data_xfer_len;
 599
 600        mp_req->req_buf = dma_alloc_coherent(&hba->pcidev->dev, CNIC_PAGE_SIZE,
 601                                             &mp_req->req_buf_dma,
 602                                             GFP_ATOMIC);
 603        if (!mp_req->req_buf) {
 604                printk(KERN_ERR PFX "unable to alloc MP req buffer\n");
 605                bnx2fc_free_mp_resc(io_req);
 606                return FAILED;
 607        }
 608
 609        mp_req->resp_buf = dma_alloc_coherent(&hba->pcidev->dev, CNIC_PAGE_SIZE,
 610                                              &mp_req->resp_buf_dma,
 611                                              GFP_ATOMIC);
 612        if (!mp_req->resp_buf) {
 613                printk(KERN_ERR PFX "unable to alloc TM resp buffer\n");
 614                bnx2fc_free_mp_resc(io_req);
 615                return FAILED;
 616        }
 617        memset(mp_req->req_buf, 0, CNIC_PAGE_SIZE);
 618        memset(mp_req->resp_buf, 0, CNIC_PAGE_SIZE);
 619
 620        /* Allocate and map mp_req_bd and mp_resp_bd */
 621        sz = sizeof(struct fcoe_bd_ctx);
 622        mp_req->mp_req_bd = dma_alloc_coherent(&hba->pcidev->dev, sz,
 623                                                 &mp_req->mp_req_bd_dma,
 624                                                 GFP_ATOMIC);
 625        if (!mp_req->mp_req_bd) {
 626                printk(KERN_ERR PFX "unable to alloc MP req bd\n");
 627                bnx2fc_free_mp_resc(io_req);
 628                return FAILED;
 629        }
 630        mp_req->mp_resp_bd = dma_alloc_coherent(&hba->pcidev->dev, sz,
 631                                                 &mp_req->mp_resp_bd_dma,
 632                                                 GFP_ATOMIC);
 633        if (!mp_req->mp_resp_bd) {
 634                printk(KERN_ERR PFX "unable to alloc MP resp bd\n");
 635                bnx2fc_free_mp_resc(io_req);
 636                return FAILED;
 637        }
 638        /* Fill bd table */
 639        addr = mp_req->req_buf_dma;
 640        mp_req_bd = mp_req->mp_req_bd;
 641        mp_req_bd->buf_addr_lo = (u32)addr & 0xffffffff;
 642        mp_req_bd->buf_addr_hi = (u32)((u64)addr >> 32);
 643        mp_req_bd->buf_len = CNIC_PAGE_SIZE;
 644        mp_req_bd->flags = 0;
 645
 646        /*
 647         * MP buffer is either a task mgmt command or an ELS.
 648         * So the assumption is that it consumes a single bd
 649         * entry in the bd table
 650         */
 651        mp_resp_bd = mp_req->mp_resp_bd;
 652        addr = mp_req->resp_buf_dma;
 653        mp_resp_bd->buf_addr_lo = (u32)addr & 0xffffffff;
 654        mp_resp_bd->buf_addr_hi = (u32)((u64)addr >> 32);
 655        mp_resp_bd->buf_len = CNIC_PAGE_SIZE;
 656        mp_resp_bd->flags = 0;
 657
 658        return SUCCESS;
 659}
 660
 661static int bnx2fc_initiate_tmf(struct scsi_cmnd *sc_cmd, u8 tm_flags)
 662{
 663        struct fc_lport *lport;
 664        struct fc_rport *rport;
 665        struct fc_rport_libfc_priv *rp;
 666        struct fcoe_port *port;
 667        struct bnx2fc_interface *interface;
 668        struct bnx2fc_rport *tgt;
 669        struct bnx2fc_cmd *io_req;
 670        struct bnx2fc_mp_req *tm_req;
 671        struct fcoe_task_ctx_entry *task;
 672        struct fcoe_task_ctx_entry *task_page;
 673        struct Scsi_Host *host = sc_cmd->device->host;
 674        struct fc_frame_header *fc_hdr;
 675        struct fcp_cmnd *fcp_cmnd;
 676        int task_idx, index;
 677        int rc = SUCCESS;
 678        u16 xid;
 679        u32 sid, did;
 680        unsigned long start = jiffies;
 681
 682        lport = shost_priv(host);
 683        rport = starget_to_rport(scsi_target(sc_cmd->device));
 684        port = lport_priv(lport);
 685        interface = port->priv;
 686
 687        if (rport == NULL) {
 688                printk(KERN_ERR PFX "device_reset: rport is NULL\n");
 689                rc = FAILED;
 690                goto tmf_err;
 691        }
 692        rp = rport->dd_data;
 693
 694        rc = fc_block_scsi_eh(sc_cmd);
 695        if (rc)
 696                return rc;
 697
 698        if (lport->state != LPORT_ST_READY || !(lport->link_up)) {
 699                printk(KERN_ERR PFX "device_reset: link is not ready\n");
 700                rc = FAILED;
 701                goto tmf_err;
 702        }
 703        /* rport and tgt are allocated together, so tgt should be non-NULL */
 704        tgt = (struct bnx2fc_rport *)&rp[1];
 705
 706        if (!(test_bit(BNX2FC_FLAG_SESSION_READY, &tgt->flags))) {
 707                printk(KERN_ERR PFX "device_reset: tgt not offloaded\n");
 708                rc = FAILED;
 709                goto tmf_err;
 710        }
 711retry_tmf:
 712        io_req = bnx2fc_elstm_alloc(tgt, BNX2FC_TASK_MGMT_CMD);
 713        if (!io_req) {
 714                if (time_after(jiffies, start + HZ)) {
 715                        printk(KERN_ERR PFX "tmf: Failed TMF");
 716                        rc = FAILED;
 717                        goto tmf_err;
 718                }
 719                msleep(20);
 720                goto retry_tmf;
 721        }
 722        /* Initialize rest of io_req fields */
 723        io_req->sc_cmd = sc_cmd;
 724        io_req->port = port;
 725        io_req->tgt = tgt;
 726
 727        tm_req = (struct bnx2fc_mp_req *)&(io_req->mp_req);
 728
 729        rc = bnx2fc_init_mp_req(io_req);
 730        if (rc == FAILED) {
 731                printk(KERN_ERR PFX "Task mgmt MP request init failed\n");
 732                spin_lock_bh(&tgt->tgt_lock);
 733                kref_put(&io_req->refcount, bnx2fc_cmd_release);
 734                spin_unlock_bh(&tgt->tgt_lock);
 735                goto tmf_err;
 736        }
 737
 738        /* Set TM flags */
 739        io_req->io_req_flags = 0;
 740        tm_req->tm_flags = tm_flags;
 741
 742        /* Fill FCP_CMND */
 743        bnx2fc_build_fcp_cmnd(io_req, (struct fcp_cmnd *)tm_req->req_buf);
 744        fcp_cmnd = (struct fcp_cmnd *)tm_req->req_buf;
 745        memset(fcp_cmnd->fc_cdb, 0,  sc_cmd->cmd_len);
 746        fcp_cmnd->fc_dl = 0;
 747
 748        /* Fill FC header */
 749        fc_hdr = &(tm_req->req_fc_hdr);
 750        sid = tgt->sid;
 751        did = rport->port_id;
 752        __fc_fill_fc_hdr(fc_hdr, FC_RCTL_DD_UNSOL_CMD, did, sid,
 753                           FC_TYPE_FCP, FC_FC_FIRST_SEQ | FC_FC_END_SEQ |
 754                           FC_FC_SEQ_INIT, 0);
 755        /* Obtain exchange id */
 756        xid = io_req->xid;
 757
 758        BNX2FC_TGT_DBG(tgt, "Initiate TMF - xid = 0x%x\n", xid);
 759        task_idx = xid/BNX2FC_TASKS_PER_PAGE;
 760        index = xid % BNX2FC_TASKS_PER_PAGE;
 761
 762        /* Initialize task context for this IO request */
 763        task_page = (struct fcoe_task_ctx_entry *)
 764                        interface->hba->task_ctx[task_idx];
 765        task = &(task_page[index]);
 766        bnx2fc_init_mp_task(io_req, task);
 767
 768        sc_cmd->SCp.ptr = (char *)io_req;
 769
 770        /* Obtain free SQ entry */
 771        spin_lock_bh(&tgt->tgt_lock);
 772        bnx2fc_add_2_sq(tgt, xid);
 773
 774        /* Enqueue the io_req to active_tm_queue */
 775        io_req->on_tmf_queue = 1;
 776        list_add_tail(&io_req->link, &tgt->active_tm_queue);
 777
 778        init_completion(&io_req->tm_done);
 779        io_req->wait_for_comp = 1;
 780
 781        /* Ring doorbell */
 782        bnx2fc_ring_doorbell(tgt);
 783        spin_unlock_bh(&tgt->tgt_lock);
 784
 785        rc = wait_for_completion_timeout(&io_req->tm_done,
 786                                         interface->tm_timeout * HZ);
 787        spin_lock_bh(&tgt->tgt_lock);
 788
 789        io_req->wait_for_comp = 0;
 790        if (!(test_bit(BNX2FC_FLAG_TM_COMPL, &io_req->req_flags))) {
 791                set_bit(BNX2FC_FLAG_TM_TIMEOUT, &io_req->req_flags);
 792                if (io_req->on_tmf_queue) {
 793                        list_del_init(&io_req->link);
 794                        io_req->on_tmf_queue = 0;
 795                }
 796                io_req->wait_for_comp = 1;
 797                bnx2fc_initiate_cleanup(io_req);
 798                spin_unlock_bh(&tgt->tgt_lock);
 799                rc = wait_for_completion_timeout(&io_req->tm_done,
 800                                                 BNX2FC_FW_TIMEOUT);
 801                spin_lock_bh(&tgt->tgt_lock);
 802                io_req->wait_for_comp = 0;
 803                if (!rc)
 804                        kref_put(&io_req->refcount, bnx2fc_cmd_release);
 805        }
 806
 807        spin_unlock_bh(&tgt->tgt_lock);
 808
 809        if (!rc) {
 810                BNX2FC_TGT_DBG(tgt, "task mgmt command failed...\n");
 811                rc = FAILED;
 812        } else {
 813                BNX2FC_TGT_DBG(tgt, "task mgmt command success...\n");
 814                rc = SUCCESS;
 815        }
 816tmf_err:
 817        return rc;
 818}
 819
 820int bnx2fc_initiate_abts(struct bnx2fc_cmd *io_req)
 821{
 822        struct fc_lport *lport;
 823        struct bnx2fc_rport *tgt = io_req->tgt;
 824        struct fc_rport *rport = tgt->rport;
 825        struct fc_rport_priv *rdata = tgt->rdata;
 826        struct bnx2fc_interface *interface;
 827        struct fcoe_port *port;
 828        struct bnx2fc_cmd *abts_io_req;
 829        struct fcoe_task_ctx_entry *task;
 830        struct fcoe_task_ctx_entry *task_page;
 831        struct fc_frame_header *fc_hdr;
 832        struct bnx2fc_mp_req *abts_req;
 833        int task_idx, index;
 834        u32 sid, did;
 835        u16 xid;
 836        int rc = SUCCESS;
 837        u32 r_a_tov = rdata->r_a_tov;
 838
 839        /* called with tgt_lock held */
 840        BNX2FC_IO_DBG(io_req, "Entered bnx2fc_initiate_abts\n");
 841
 842        port = io_req->port;
 843        interface = port->priv;
 844        lport = port->lport;
 845
 846        if (!test_bit(BNX2FC_FLAG_SESSION_READY, &tgt->flags)) {
 847                printk(KERN_ERR PFX "initiate_abts: tgt not offloaded\n");
 848                rc = FAILED;
 849                goto abts_err;
 850        }
 851
 852        if (rport == NULL) {
 853                printk(KERN_ERR PFX "initiate_abts: rport is NULL\n");
 854                rc = FAILED;
 855                goto abts_err;
 856        }
 857
 858        if (lport->state != LPORT_ST_READY || !(lport->link_up)) {
 859                printk(KERN_ERR PFX "initiate_abts: link is not ready\n");
 860                rc = FAILED;
 861                goto abts_err;
 862        }
 863
 864        abts_io_req = bnx2fc_elstm_alloc(tgt, BNX2FC_ABTS);
 865        if (!abts_io_req) {
 866                printk(KERN_ERR PFX "abts: couldnt allocate cmd\n");
 867                rc = FAILED;
 868                goto abts_err;
 869        }
 870
 871        /* Initialize rest of io_req fields */
 872        abts_io_req->sc_cmd = NULL;
 873        abts_io_req->port = port;
 874        abts_io_req->tgt = tgt;
 875        abts_io_req->data_xfer_len = 0; /* No data transfer for ABTS */
 876
 877        abts_req = (struct bnx2fc_mp_req *)&(abts_io_req->mp_req);
 878        memset(abts_req, 0, sizeof(struct bnx2fc_mp_req));
 879
 880        /* Fill FC header */
 881        fc_hdr = &(abts_req->req_fc_hdr);
 882
 883        /* Obtain oxid and rxid for the original exchange to be aborted */
 884        fc_hdr->fh_ox_id = htons(io_req->xid);
 885        fc_hdr->fh_rx_id = htons(io_req->task->rxwr_txrd.var_ctx.rx_id);
 886
 887        sid = tgt->sid;
 888        did = rport->port_id;
 889
 890        __fc_fill_fc_hdr(fc_hdr, FC_RCTL_BA_ABTS, did, sid,
 891                           FC_TYPE_BLS, FC_FC_FIRST_SEQ | FC_FC_END_SEQ |
 892                           FC_FC_SEQ_INIT, 0);
 893
 894        xid = abts_io_req->xid;
 895        BNX2FC_IO_DBG(abts_io_req, "ABTS io_req\n");
 896        task_idx = xid/BNX2FC_TASKS_PER_PAGE;
 897        index = xid % BNX2FC_TASKS_PER_PAGE;
 898
 899        /* Initialize task context for this IO request */
 900        task_page = (struct fcoe_task_ctx_entry *)
 901                        interface->hba->task_ctx[task_idx];
 902        task = &(task_page[index]);
 903        bnx2fc_init_mp_task(abts_io_req, task);
 904
 905        /*
 906         * ABTS task is a temporary task that will be cleaned up
 907         * irrespective of ABTS response. We need to start the timer
 908         * for the original exchange, as the CQE is posted for the original
 909         * IO request.
 910         *
 911         * Timer for ABTS is started only when it is originated by a
 912         * TM request. For the ABTS issued as part of ULP timeout,
 913         * scsi-ml maintains the timers.
 914         */
 915
 916        /* if (test_bit(BNX2FC_FLAG_ISSUE_ABTS, &io_req->req_flags))*/
 917        bnx2fc_cmd_timer_set(io_req, 2 * r_a_tov);
 918
 919        /* Obtain free SQ entry */
 920        bnx2fc_add_2_sq(tgt, xid);
 921
 922        /* Ring doorbell */
 923        bnx2fc_ring_doorbell(tgt);
 924
 925abts_err:
 926        return rc;
 927}
 928
 929int bnx2fc_initiate_seq_cleanup(struct bnx2fc_cmd *orig_io_req, u32 offset,
 930                                enum fc_rctl r_ctl)
 931{
 932        struct fc_lport *lport;
 933        struct bnx2fc_rport *tgt = orig_io_req->tgt;
 934        struct bnx2fc_interface *interface;
 935        struct fcoe_port *port;
 936        struct bnx2fc_cmd *seq_clnp_req;
 937        struct fcoe_task_ctx_entry *task;
 938        struct fcoe_task_ctx_entry *task_page;
 939        struct bnx2fc_els_cb_arg *cb_arg = NULL;
 940        int task_idx, index;
 941        u16 xid;
 942        int rc = 0;
 943
 944        BNX2FC_IO_DBG(orig_io_req, "bnx2fc_initiate_seq_cleanup xid = 0x%x\n",
 945                   orig_io_req->xid);
 946        kref_get(&orig_io_req->refcount);
 947
 948        port = orig_io_req->port;
 949        interface = port->priv;
 950        lport = port->lport;
 951
 952        cb_arg = kzalloc(sizeof(struct bnx2fc_els_cb_arg), GFP_ATOMIC);
 953        if (!cb_arg) {
 954                printk(KERN_ERR PFX "Unable to alloc cb_arg for seq clnup\n");
 955                rc = -ENOMEM;
 956                goto cleanup_err;
 957        }
 958
 959        seq_clnp_req = bnx2fc_elstm_alloc(tgt, BNX2FC_SEQ_CLEANUP);
 960        if (!seq_clnp_req) {
 961                printk(KERN_ERR PFX "cleanup: couldnt allocate cmd\n");
 962                rc = -ENOMEM;
 963                kfree(cb_arg);
 964                goto cleanup_err;
 965        }
 966        /* Initialize rest of io_req fields */
 967        seq_clnp_req->sc_cmd = NULL;
 968        seq_clnp_req->port = port;
 969        seq_clnp_req->tgt = tgt;
 970        seq_clnp_req->data_xfer_len = 0; /* No data transfer for cleanup */
 971
 972        xid = seq_clnp_req->xid;
 973
 974        task_idx = xid/BNX2FC_TASKS_PER_PAGE;
 975        index = xid % BNX2FC_TASKS_PER_PAGE;
 976
 977        /* Initialize task context for this IO request */
 978        task_page = (struct fcoe_task_ctx_entry *)
 979                     interface->hba->task_ctx[task_idx];
 980        task = &(task_page[index]);
 981        cb_arg->aborted_io_req = orig_io_req;
 982        cb_arg->io_req = seq_clnp_req;
 983        cb_arg->r_ctl = r_ctl;
 984        cb_arg->offset = offset;
 985        seq_clnp_req->cb_arg = cb_arg;
 986
 987        printk(KERN_ERR PFX "call init_seq_cleanup_task\n");
 988        bnx2fc_init_seq_cleanup_task(seq_clnp_req, task, orig_io_req, offset);
 989
 990        /* Obtain free SQ entry */
 991        bnx2fc_add_2_sq(tgt, xid);
 992
 993        /* Ring doorbell */
 994        bnx2fc_ring_doorbell(tgt);
 995cleanup_err:
 996        return rc;
 997}
 998
 999int bnx2fc_initiate_cleanup(struct bnx2fc_cmd *io_req)
1000{
1001        struct fc_lport *lport;
1002        struct bnx2fc_rport *tgt = io_req->tgt;
1003        struct bnx2fc_interface *interface;
1004        struct fcoe_port *port;
1005        struct bnx2fc_cmd *cleanup_io_req;
1006        struct fcoe_task_ctx_entry *task;
1007        struct fcoe_task_ctx_entry *task_page;
1008        int task_idx, index;
1009        u16 xid, orig_xid;
1010        int rc = 0;
1011
1012        /* ASSUMPTION: called with tgt_lock held */
1013        BNX2FC_IO_DBG(io_req, "Entered bnx2fc_initiate_cleanup\n");
1014
1015        port = io_req->port;
1016        interface = port->priv;
1017        lport = port->lport;
1018
1019        cleanup_io_req = bnx2fc_elstm_alloc(tgt, BNX2FC_CLEANUP);
1020        if (!cleanup_io_req) {
1021                printk(KERN_ERR PFX "cleanup: couldnt allocate cmd\n");
1022                rc = -1;
1023                goto cleanup_err;
1024        }
1025
1026        /* Initialize rest of io_req fields */
1027        cleanup_io_req->sc_cmd = NULL;
1028        cleanup_io_req->port = port;
1029        cleanup_io_req->tgt = tgt;
1030        cleanup_io_req->data_xfer_len = 0; /* No data transfer for cleanup */
1031
1032        xid = cleanup_io_req->xid;
1033
1034        task_idx = xid/BNX2FC_TASKS_PER_PAGE;
1035        index = xid % BNX2FC_TASKS_PER_PAGE;
1036
1037        /* Initialize task context for this IO request */
1038        task_page = (struct fcoe_task_ctx_entry *)
1039                        interface->hba->task_ctx[task_idx];
1040        task = &(task_page[index]);
1041        orig_xid = io_req->xid;
1042
1043        BNX2FC_IO_DBG(io_req, "CLEANUP io_req xid = 0x%x\n", xid);
1044
1045        bnx2fc_init_cleanup_task(cleanup_io_req, task, orig_xid);
1046
1047        /* Obtain free SQ entry */
1048        bnx2fc_add_2_sq(tgt, xid);
1049
1050        /* Ring doorbell */
1051        bnx2fc_ring_doorbell(tgt);
1052
1053cleanup_err:
1054        return rc;
1055}
1056
1057/**
1058 * bnx2fc_eh_target_reset: Reset a target
1059 *
1060 * @sc_cmd:     SCSI command
1061 *
1062 * Set from SCSI host template to send task mgmt command to the target
1063 *      and wait for the response
1064 */
1065int bnx2fc_eh_target_reset(struct scsi_cmnd *sc_cmd)
1066{
1067        return bnx2fc_initiate_tmf(sc_cmd, FCP_TMF_TGT_RESET);
1068}
1069
1070/**
1071 * bnx2fc_eh_device_reset - Reset a single LUN
1072 *
1073 * @sc_cmd:     SCSI command
1074 *
1075 * Set from SCSI host template to send task mgmt command to the target
1076 *      and wait for the response
1077 */
1078int bnx2fc_eh_device_reset(struct scsi_cmnd *sc_cmd)
1079{
1080        return bnx2fc_initiate_tmf(sc_cmd, FCP_TMF_LUN_RESET);
1081}
1082
1083static int bnx2fc_abts_cleanup(struct bnx2fc_cmd *io_req)
1084{
1085        struct bnx2fc_rport *tgt = io_req->tgt;
1086        int rc = SUCCESS;
1087
1088        io_req->wait_for_comp = 1;
1089        bnx2fc_initiate_cleanup(io_req);
1090
1091        spin_unlock_bh(&tgt->tgt_lock);
1092
1093        wait_for_completion(&io_req->tm_done);
1094
1095        io_req->wait_for_comp = 0;
1096        /*
1097         * release the reference taken in eh_abort to allow the
1098         * target to re-login after flushing IOs
1099         */
1100        kref_put(&io_req->refcount, bnx2fc_cmd_release);
1101
1102        spin_lock_bh(&tgt->tgt_lock);
1103        return rc;
1104}
1105/**
1106 * bnx2fc_eh_abort - eh_abort_handler api to abort an outstanding
1107 *                      SCSI command
1108 *
1109 * @sc_cmd:     SCSI_ML command pointer
1110 *
1111 * SCSI abort request handler
1112 */
1113int bnx2fc_eh_abort(struct scsi_cmnd *sc_cmd)
1114{
1115        struct fc_rport *rport = starget_to_rport(scsi_target(sc_cmd->device));
1116        struct fc_rport_libfc_priv *rp = rport->dd_data;
1117        struct bnx2fc_cmd *io_req;
1118        struct fc_lport *lport;
1119        struct bnx2fc_rport *tgt;
1120        int rc;
1121
1122        rc = fc_block_scsi_eh(sc_cmd);
1123        if (rc)
1124                return rc;
1125
1126        lport = shost_priv(sc_cmd->device->host);
1127        if ((lport->state != LPORT_ST_READY) || !(lport->link_up)) {
1128                printk(KERN_ERR PFX "eh_abort: link not ready\n");
1129                return FAILED;
1130        }
1131
1132        tgt = (struct bnx2fc_rport *)&rp[1];
1133
1134        BNX2FC_TGT_DBG(tgt, "Entered bnx2fc_eh_abort\n");
1135
1136        spin_lock_bh(&tgt->tgt_lock);
1137        io_req = (struct bnx2fc_cmd *)sc_cmd->SCp.ptr;
1138        if (!io_req) {
1139                /* Command might have just completed */
1140                printk(KERN_ERR PFX "eh_abort: io_req is NULL\n");
1141                spin_unlock_bh(&tgt->tgt_lock);
1142                return SUCCESS;
1143        }
1144        BNX2FC_IO_DBG(io_req, "eh_abort - refcnt = %d\n",
1145                      kref_read(&io_req->refcount));
1146
1147        /* Hold IO request across abort processing */
1148        kref_get(&io_req->refcount);
1149
1150        BUG_ON(tgt != io_req->tgt);
1151
1152        /* Remove the io_req from the active_q. */
1153        /*
1154         * Task Mgmt functions (LUN RESET & TGT RESET) will not
1155         * issue an ABTS on this particular IO req, as the
1156         * io_req is no longer in the active_q.
1157         */
1158        if (tgt->flush_in_prog) {
1159                printk(KERN_ERR PFX "eh_abort: io_req (xid = 0x%x) "
1160                        "flush in progress\n", io_req->xid);
1161                kref_put(&io_req->refcount, bnx2fc_cmd_release);
1162                spin_unlock_bh(&tgt->tgt_lock);
1163                return SUCCESS;
1164        }
1165
1166        if (io_req->on_active_queue == 0) {
1167                printk(KERN_ERR PFX "eh_abort: io_req (xid = 0x%x) "
1168                                "not on active_q\n", io_req->xid);
1169                /*
1170                 * The IO is still with the FW.
1171                 * Return failure and let SCSI-ml retry eh_abort.
1172                 */
1173                spin_unlock_bh(&tgt->tgt_lock);
1174                return FAILED;
1175        }
1176
1177        /*
1178         * Only eh_abort processing will remove the IO from
1179         * active_cmd_q before processing the request. this is
1180         * done to avoid race conditions between IOs aborted
1181         * as part of task management completion and eh_abort
1182         * processing
1183         */
1184        list_del_init(&io_req->link);
1185        io_req->on_active_queue = 0;
1186        /* Move IO req to retire queue */
1187        list_add_tail(&io_req->link, &tgt->io_retire_queue);
1188
1189        init_completion(&io_req->tm_done);
1190
1191        if (test_and_set_bit(BNX2FC_FLAG_ISSUE_ABTS, &io_req->req_flags)) {
1192                printk(KERN_ERR PFX "eh_abort: io_req (xid = 0x%x) "
1193                                "already in abts processing\n", io_req->xid);
1194                if (cancel_delayed_work(&io_req->timeout_work))
1195                        kref_put(&io_req->refcount,
1196                                 bnx2fc_cmd_release); /* drop timer hold */
1197                rc = bnx2fc_abts_cleanup(io_req);
1198                /* This only occurs when an task abort was requested while ABTS
1199                   is in progress.  Setting the IO_CLEANUP flag will skip the
1200                   RRQ process in the case when the fw generated SCSI_CMD cmpl
1201                   was a result from the ABTS request rather than the CLEANUP
1202                   request */
1203                set_bit(BNX2FC_FLAG_IO_CLEANUP, &io_req->req_flags);
1204                goto out;
1205        }
1206
1207        /* Cancel the current timer running on this io_req */
1208        if (cancel_delayed_work(&io_req->timeout_work))
1209                kref_put(&io_req->refcount,
1210                         bnx2fc_cmd_release); /* drop timer hold */
1211        set_bit(BNX2FC_FLAG_EH_ABORT, &io_req->req_flags);
1212        io_req->wait_for_comp = 1;
1213        rc = bnx2fc_initiate_abts(io_req);
1214        if (rc == FAILED) {
1215                bnx2fc_initiate_cleanup(io_req);
1216                spin_unlock_bh(&tgt->tgt_lock);
1217                wait_for_completion(&io_req->tm_done);
1218                spin_lock_bh(&tgt->tgt_lock);
1219                io_req->wait_for_comp = 0;
1220                goto done;
1221        }
1222        spin_unlock_bh(&tgt->tgt_lock);
1223
1224        wait_for_completion(&io_req->tm_done);
1225
1226        spin_lock_bh(&tgt->tgt_lock);
1227        io_req->wait_for_comp = 0;
1228        if (test_bit(BNX2FC_FLAG_IO_COMPL, &io_req->req_flags)) {
1229                BNX2FC_IO_DBG(io_req, "IO completed in a different context\n");
1230                rc = SUCCESS;
1231        } else if (!(test_and_set_bit(BNX2FC_FLAG_ABTS_DONE,
1232                                      &io_req->req_flags))) {
1233                /* Let the scsi-ml try to recover this command */
1234                printk(KERN_ERR PFX "abort failed, xid = 0x%x\n",
1235                       io_req->xid);
1236                rc = bnx2fc_abts_cleanup(io_req);
1237                goto out;
1238        } else {
1239                /*
1240                 * We come here even when there was a race condition
1241                 * between timeout and abts completion, and abts
1242                 * completion happens just in time.
1243                 */
1244                BNX2FC_IO_DBG(io_req, "abort succeeded\n");
1245                rc = SUCCESS;
1246                bnx2fc_scsi_done(io_req, DID_ABORT);
1247                kref_put(&io_req->refcount, bnx2fc_cmd_release);
1248        }
1249done:
1250        /* release the reference taken in eh_abort */
1251        kref_put(&io_req->refcount, bnx2fc_cmd_release);
1252out:
1253        spin_unlock_bh(&tgt->tgt_lock);
1254        return rc;
1255}
1256
1257void bnx2fc_process_seq_cleanup_compl(struct bnx2fc_cmd *seq_clnp_req,
1258                                      struct fcoe_task_ctx_entry *task,
1259                                      u8 rx_state)
1260{
1261        struct bnx2fc_els_cb_arg *cb_arg = seq_clnp_req->cb_arg;
1262        struct bnx2fc_cmd *orig_io_req = cb_arg->aborted_io_req;
1263        u32 offset = cb_arg->offset;
1264        enum fc_rctl r_ctl = cb_arg->r_ctl;
1265        int rc = 0;
1266        struct bnx2fc_rport *tgt = orig_io_req->tgt;
1267
1268        BNX2FC_IO_DBG(orig_io_req, "Entered process_cleanup_compl xid = 0x%x"
1269                              "cmd_type = %d\n",
1270                   seq_clnp_req->xid, seq_clnp_req->cmd_type);
1271
1272        if (rx_state == FCOE_TASK_RX_STATE_IGNORED_SEQUENCE_CLEANUP) {
1273                printk(KERN_ERR PFX "seq cleanup ignored - xid = 0x%x\n",
1274                        seq_clnp_req->xid);
1275                goto free_cb_arg;
1276        }
1277
1278        spin_unlock_bh(&tgt->tgt_lock);
1279        rc = bnx2fc_send_srr(orig_io_req, offset, r_ctl);
1280        spin_lock_bh(&tgt->tgt_lock);
1281
1282        if (rc)
1283                printk(KERN_ERR PFX "clnup_compl: Unable to send SRR"
1284                        " IO will abort\n");
1285        seq_clnp_req->cb_arg = NULL;
1286        kref_put(&orig_io_req->refcount, bnx2fc_cmd_release);
1287free_cb_arg:
1288        kfree(cb_arg);
1289        return;
1290}
1291
1292void bnx2fc_process_cleanup_compl(struct bnx2fc_cmd *io_req,
1293                                  struct fcoe_task_ctx_entry *task,
1294                                  u8 num_rq)
1295{
1296        BNX2FC_IO_DBG(io_req, "Entered process_cleanup_compl "
1297                              "refcnt = %d, cmd_type = %d\n",
1298                   kref_read(&io_req->refcount), io_req->cmd_type);
1299        bnx2fc_scsi_done(io_req, DID_ERROR);
1300        kref_put(&io_req->refcount, bnx2fc_cmd_release);
1301        if (io_req->wait_for_comp)
1302                complete(&io_req->tm_done);
1303}
1304
1305void bnx2fc_process_abts_compl(struct bnx2fc_cmd *io_req,
1306                               struct fcoe_task_ctx_entry *task,
1307                               u8 num_rq)
1308{
1309        u32 r_ctl;
1310        u32 r_a_tov = FC_DEF_R_A_TOV;
1311        u8 issue_rrq = 0;
1312        struct bnx2fc_rport *tgt = io_req->tgt;
1313
1314        BNX2FC_IO_DBG(io_req, "Entered process_abts_compl xid = 0x%x"
1315                              "refcnt = %d, cmd_type = %d\n",
1316                   io_req->xid,
1317                   kref_read(&io_req->refcount), io_req->cmd_type);
1318
1319        if (test_and_set_bit(BNX2FC_FLAG_ABTS_DONE,
1320                                       &io_req->req_flags)) {
1321                BNX2FC_IO_DBG(io_req, "Timer context finished processing"
1322                                " this io\n");
1323                return;
1324        }
1325
1326        /* Do not issue RRQ as this IO is already cleanedup */
1327        if (test_and_set_bit(BNX2FC_FLAG_IO_CLEANUP,
1328                                &io_req->req_flags))
1329                goto io_compl;
1330
1331        /*
1332         * For ABTS issued due to SCSI eh_abort_handler, timeout
1333         * values are maintained by scsi-ml itself. Cancel timeout
1334         * in case ABTS issued as part of task management function
1335         * or due to FW error.
1336         */
1337        if (test_bit(BNX2FC_FLAG_ISSUE_ABTS, &io_req->req_flags))
1338                if (cancel_delayed_work(&io_req->timeout_work))
1339                        kref_put(&io_req->refcount,
1340                                 bnx2fc_cmd_release); /* drop timer hold */
1341
1342        r_ctl = (u8)task->rxwr_only.union_ctx.comp_info.abts_rsp.r_ctl;
1343
1344        switch (r_ctl) {
1345        case FC_RCTL_BA_ACC:
1346                /*
1347                 * Dont release this cmd yet. It will be relesed
1348                 * after we get RRQ response
1349                 */
1350                BNX2FC_IO_DBG(io_req, "ABTS response - ACC Send RRQ\n");
1351                issue_rrq = 1;
1352                break;
1353
1354        case FC_RCTL_BA_RJT:
1355                BNX2FC_IO_DBG(io_req, "ABTS response - RJT\n");
1356                break;
1357        default:
1358                printk(KERN_ERR PFX "Unknown ABTS response\n");
1359                break;
1360        }
1361
1362        if (issue_rrq) {
1363                BNX2FC_IO_DBG(io_req, "Issue RRQ after R_A_TOV\n");
1364                set_bit(BNX2FC_FLAG_ISSUE_RRQ, &io_req->req_flags);
1365        }
1366        set_bit(BNX2FC_FLAG_RETIRE_OXID, &io_req->req_flags);
1367        bnx2fc_cmd_timer_set(io_req, r_a_tov);
1368
1369io_compl:
1370        if (io_req->wait_for_comp) {
1371                if (test_and_clear_bit(BNX2FC_FLAG_EH_ABORT,
1372                                       &io_req->req_flags))
1373                        complete(&io_req->tm_done);
1374        } else {
1375                /*
1376                 * We end up here when ABTS is issued as
1377                 * in asynchronous context, i.e., as part
1378                 * of task management completion, or
1379                 * when FW error is received or when the
1380                 * ABTS is issued when the IO is timed
1381                 * out.
1382                 */
1383
1384                if (io_req->on_active_queue) {
1385                        list_del_init(&io_req->link);
1386                        io_req->on_active_queue = 0;
1387                        /* Move IO req to retire queue */
1388                        list_add_tail(&io_req->link, &tgt->io_retire_queue);
1389                }
1390                bnx2fc_scsi_done(io_req, DID_ERROR);
1391                kref_put(&io_req->refcount, bnx2fc_cmd_release);
1392        }
1393}
1394
1395static void bnx2fc_lun_reset_cmpl(struct bnx2fc_cmd *io_req)
1396{
1397        struct scsi_cmnd *sc_cmd = io_req->sc_cmd;
1398        struct bnx2fc_rport *tgt = io_req->tgt;
1399        struct bnx2fc_cmd *cmd, *tmp;
1400        u64 tm_lun = sc_cmd->device->lun;
1401        u64 lun;
1402        int rc = 0;
1403
1404        /* called with tgt_lock held */
1405        BNX2FC_IO_DBG(io_req, "Entered bnx2fc_lun_reset_cmpl\n");
1406        /*
1407         * Walk thru the active_ios queue and ABORT the IO
1408         * that matches with the LUN that was reset
1409         */
1410        list_for_each_entry_safe(cmd, tmp, &tgt->active_cmd_queue, link) {
1411                BNX2FC_TGT_DBG(tgt, "LUN RST cmpl: scan for pending IOs\n");
1412                lun = cmd->sc_cmd->device->lun;
1413                if (lun == tm_lun) {
1414                        /* Initiate ABTS on this cmd */
1415                        if (!test_and_set_bit(BNX2FC_FLAG_ISSUE_ABTS,
1416                                              &cmd->req_flags)) {
1417                                /* cancel the IO timeout */
1418                                if (cancel_delayed_work(&io_req->timeout_work))
1419                                        kref_put(&io_req->refcount,
1420                                                 bnx2fc_cmd_release);
1421                                                        /* timer hold */
1422                                rc = bnx2fc_initiate_abts(cmd);
1423                                /* abts shouldn't fail in this context */
1424                                WARN_ON(rc != SUCCESS);
1425                        } else
1426                                printk(KERN_ERR PFX "lun_rst: abts already in"
1427                                        " progress for this IO 0x%x\n",
1428                                        cmd->xid);
1429                }
1430        }
1431}
1432
1433static void bnx2fc_tgt_reset_cmpl(struct bnx2fc_cmd *io_req)
1434{
1435        struct bnx2fc_rport *tgt = io_req->tgt;
1436        struct bnx2fc_cmd *cmd, *tmp;
1437        int rc = 0;
1438
1439        /* called with tgt_lock held */
1440        BNX2FC_IO_DBG(io_req, "Entered bnx2fc_tgt_reset_cmpl\n");
1441        /*
1442         * Walk thru the active_ios queue and ABORT the IO
1443         * that matches with the LUN that was reset
1444         */
1445        list_for_each_entry_safe(cmd, tmp, &tgt->active_cmd_queue, link) {
1446                BNX2FC_TGT_DBG(tgt, "TGT RST cmpl: scan for pending IOs\n");
1447                /* Initiate ABTS */
1448                if (!test_and_set_bit(BNX2FC_FLAG_ISSUE_ABTS,
1449                                                        &cmd->req_flags)) {
1450                        /* cancel the IO timeout */
1451                        if (cancel_delayed_work(&io_req->timeout_work))
1452                                kref_put(&io_req->refcount,
1453                                         bnx2fc_cmd_release); /* timer hold */
1454                        rc = bnx2fc_initiate_abts(cmd);
1455                        /* abts shouldn't fail in this context */
1456                        WARN_ON(rc != SUCCESS);
1457
1458                } else
1459                        printk(KERN_ERR PFX "tgt_rst: abts already in progress"
1460                                " for this IO 0x%x\n", cmd->xid);
1461        }
1462}
1463
1464void bnx2fc_process_tm_compl(struct bnx2fc_cmd *io_req,
1465                             struct fcoe_task_ctx_entry *task, u8 num_rq)
1466{
1467        struct bnx2fc_mp_req *tm_req;
1468        struct fc_frame_header *fc_hdr;
1469        struct scsi_cmnd *sc_cmd = io_req->sc_cmd;
1470        u64 *hdr;
1471        u64 *temp_hdr;
1472        void *rsp_buf;
1473
1474        /* Called with tgt_lock held */
1475        BNX2FC_IO_DBG(io_req, "Entered process_tm_compl\n");
1476
1477        if (!(test_bit(BNX2FC_FLAG_TM_TIMEOUT, &io_req->req_flags)))
1478                set_bit(BNX2FC_FLAG_TM_COMPL, &io_req->req_flags);
1479        else {
1480                /* TM has already timed out and we got
1481                 * delayed completion. Ignore completion
1482                 * processing.
1483                 */
1484                return;
1485        }
1486
1487        tm_req = &(io_req->mp_req);
1488        fc_hdr = &(tm_req->resp_fc_hdr);
1489        hdr = (u64 *)fc_hdr;
1490        temp_hdr = (u64 *)
1491                &task->rxwr_only.union_ctx.comp_info.mp_rsp.fc_hdr;
1492        hdr[0] = cpu_to_be64(temp_hdr[0]);
1493        hdr[1] = cpu_to_be64(temp_hdr[1]);
1494        hdr[2] = cpu_to_be64(temp_hdr[2]);
1495
1496        tm_req->resp_len =
1497                task->rxwr_only.union_ctx.comp_info.mp_rsp.mp_payload_len;
1498
1499        rsp_buf = tm_req->resp_buf;
1500
1501        if (fc_hdr->fh_r_ctl == FC_RCTL_DD_CMD_STATUS) {
1502                bnx2fc_parse_fcp_rsp(io_req,
1503                                     (struct fcoe_fcp_rsp_payload *)
1504                                     rsp_buf, num_rq);
1505                if (io_req->fcp_rsp_code == 0) {
1506                        /* TM successful */
1507                        if (tm_req->tm_flags & FCP_TMF_LUN_RESET)
1508                                bnx2fc_lun_reset_cmpl(io_req);
1509                        else if (tm_req->tm_flags & FCP_TMF_TGT_RESET)
1510                                bnx2fc_tgt_reset_cmpl(io_req);
1511                }
1512        } else {
1513                printk(KERN_ERR PFX "tmf's fc_hdr r_ctl = 0x%x\n",
1514                        fc_hdr->fh_r_ctl);
1515        }
1516        if (!sc_cmd->SCp.ptr) {
1517                printk(KERN_ERR PFX "tm_compl: SCp.ptr is NULL\n");
1518                return;
1519        }
1520        switch (io_req->fcp_status) {
1521        case FC_GOOD:
1522                if (io_req->cdb_status == 0) {
1523                        /* Good IO completion */
1524                        sc_cmd->result = DID_OK << 16;
1525                } else {
1526                        /* Transport status is good, SCSI status not good */
1527                        sc_cmd->result = (DID_OK << 16) | io_req->cdb_status;
1528                }
1529                if (io_req->fcp_resid)
1530                        scsi_set_resid(sc_cmd, io_req->fcp_resid);
1531                break;
1532
1533        default:
1534                BNX2FC_IO_DBG(io_req, "process_tm_compl: fcp_status = %d\n",
1535                           io_req->fcp_status);
1536                break;
1537        }
1538
1539        sc_cmd = io_req->sc_cmd;
1540        io_req->sc_cmd = NULL;
1541
1542        /* check if the io_req exists in tgt's tmf_q */
1543        if (io_req->on_tmf_queue) {
1544
1545                list_del_init(&io_req->link);
1546                io_req->on_tmf_queue = 0;
1547        } else {
1548
1549                printk(KERN_ERR PFX "Command not on active_cmd_queue!\n");
1550                return;
1551        }
1552
1553        sc_cmd->SCp.ptr = NULL;
1554        sc_cmd->scsi_done(sc_cmd);
1555
1556        kref_put(&io_req->refcount, bnx2fc_cmd_release);
1557        if (io_req->wait_for_comp) {
1558                BNX2FC_IO_DBG(io_req, "tm_compl - wake up the waiter\n");
1559                complete(&io_req->tm_done);
1560        }
1561}
1562
1563static int bnx2fc_split_bd(struct bnx2fc_cmd *io_req, u64 addr, int sg_len,
1564                           int bd_index)
1565{
1566        struct fcoe_bd_ctx *bd = io_req->bd_tbl->bd_tbl;
1567        int frag_size, sg_frags;
1568
1569        sg_frags = 0;
1570        while (sg_len) {
1571                if (sg_len >= BNX2FC_BD_SPLIT_SZ)
1572                        frag_size = BNX2FC_BD_SPLIT_SZ;
1573                else
1574                        frag_size = sg_len;
1575                bd[bd_index + sg_frags].buf_addr_lo = addr & 0xffffffff;
1576                bd[bd_index + sg_frags].buf_addr_hi  = addr >> 32;
1577                bd[bd_index + sg_frags].buf_len = (u16)frag_size;
1578                bd[bd_index + sg_frags].flags = 0;
1579
1580                addr += (u64) frag_size;
1581                sg_frags++;
1582                sg_len -= frag_size;
1583        }
1584        return sg_frags;
1585
1586}
1587
1588static int bnx2fc_map_sg(struct bnx2fc_cmd *io_req)
1589{
1590        struct bnx2fc_interface *interface = io_req->port->priv;
1591        struct bnx2fc_hba *hba = interface->hba;
1592        struct scsi_cmnd *sc = io_req->sc_cmd;
1593        struct fcoe_bd_ctx *bd = io_req->bd_tbl->bd_tbl;
1594        struct scatterlist *sg;
1595        int byte_count = 0;
1596        int sg_count = 0;
1597        int bd_count = 0;
1598        int sg_frags;
1599        unsigned int sg_len;
1600        u64 addr;
1601        int i;
1602
1603        /*
1604         * Use dma_map_sg directly to ensure we're using the correct
1605         * dev struct off of pcidev.
1606         */
1607        sg_count = dma_map_sg(&hba->pcidev->dev, scsi_sglist(sc),
1608                              scsi_sg_count(sc), sc->sc_data_direction);
1609        scsi_for_each_sg(sc, sg, sg_count, i) {
1610                sg_len = sg_dma_len(sg);
1611                addr = sg_dma_address(sg);
1612                if (sg_len > BNX2FC_MAX_BD_LEN) {
1613                        sg_frags = bnx2fc_split_bd(io_req, addr, sg_len,
1614                                                   bd_count);
1615                } else {
1616
1617                        sg_frags = 1;
1618                        bd[bd_count].buf_addr_lo = addr & 0xffffffff;
1619                        bd[bd_count].buf_addr_hi  = addr >> 32;
1620                        bd[bd_count].buf_len = (u16)sg_len;
1621                        bd[bd_count].flags = 0;
1622                }
1623                bd_count += sg_frags;
1624                byte_count += sg_len;
1625        }
1626        if (byte_count != scsi_bufflen(sc))
1627                printk(KERN_ERR PFX "byte_count = %d != scsi_bufflen = %d, "
1628                        "task_id = 0x%x\n", byte_count, scsi_bufflen(sc),
1629                        io_req->xid);
1630        return bd_count;
1631}
1632
1633static int bnx2fc_build_bd_list_from_sg(struct bnx2fc_cmd *io_req)
1634{
1635        struct scsi_cmnd *sc = io_req->sc_cmd;
1636        struct fcoe_bd_ctx *bd = io_req->bd_tbl->bd_tbl;
1637        int bd_count;
1638
1639        if (scsi_sg_count(sc)) {
1640                bd_count = bnx2fc_map_sg(io_req);
1641                if (bd_count == 0)
1642                        return -ENOMEM;
1643        } else {
1644                bd_count = 0;
1645                bd[0].buf_addr_lo = bd[0].buf_addr_hi = 0;
1646                bd[0].buf_len = bd[0].flags = 0;
1647        }
1648        io_req->bd_tbl->bd_valid = bd_count;
1649
1650        return 0;
1651}
1652
1653static void bnx2fc_unmap_sg_list(struct bnx2fc_cmd *io_req)
1654{
1655        struct scsi_cmnd *sc = io_req->sc_cmd;
1656        struct bnx2fc_interface *interface = io_req->port->priv;
1657        struct bnx2fc_hba *hba = interface->hba;
1658
1659        /*
1660         * Use dma_unmap_sg directly to ensure we're using the correct
1661         * dev struct off of pcidev.
1662         */
1663        if (io_req->bd_tbl->bd_valid && sc && scsi_sg_count(sc)) {
1664                dma_unmap_sg(&hba->pcidev->dev, scsi_sglist(sc),
1665                    scsi_sg_count(sc), sc->sc_data_direction);
1666                io_req->bd_tbl->bd_valid = 0;
1667        }
1668}
1669
1670void bnx2fc_build_fcp_cmnd(struct bnx2fc_cmd *io_req,
1671                                  struct fcp_cmnd *fcp_cmnd)
1672{
1673        struct scsi_cmnd *sc_cmd = io_req->sc_cmd;
1674
1675        memset(fcp_cmnd, 0, sizeof(struct fcp_cmnd));
1676
1677        int_to_scsilun(sc_cmd->device->lun, &fcp_cmnd->fc_lun);
1678
1679        fcp_cmnd->fc_dl = htonl(io_req->data_xfer_len);
1680        memcpy(fcp_cmnd->fc_cdb, sc_cmd->cmnd, sc_cmd->cmd_len);
1681
1682        fcp_cmnd->fc_cmdref = 0;
1683        fcp_cmnd->fc_pri_ta = 0;
1684        fcp_cmnd->fc_tm_flags = io_req->mp_req.tm_flags;
1685        fcp_cmnd->fc_flags = io_req->io_req_flags;
1686        fcp_cmnd->fc_pri_ta = FCP_PTA_SIMPLE;
1687}
1688
1689static void bnx2fc_parse_fcp_rsp(struct bnx2fc_cmd *io_req,
1690                                 struct fcoe_fcp_rsp_payload *fcp_rsp,
1691                                 u8 num_rq)
1692{
1693        struct scsi_cmnd *sc_cmd = io_req->sc_cmd;
1694        struct bnx2fc_rport *tgt = io_req->tgt;
1695        u8 rsp_flags = fcp_rsp->fcp_flags.flags;
1696        u32 rq_buff_len = 0;
1697        int i;
1698        unsigned char *rq_data;
1699        unsigned char *dummy;
1700        int fcp_sns_len = 0;
1701        int fcp_rsp_len = 0;
1702
1703        io_req->fcp_status = FC_GOOD;
1704        io_req->fcp_resid = 0;
1705        if (rsp_flags & (FCOE_FCP_RSP_FLAGS_FCP_RESID_OVER |
1706            FCOE_FCP_RSP_FLAGS_FCP_RESID_UNDER))
1707                io_req->fcp_resid = fcp_rsp->fcp_resid;
1708
1709        io_req->scsi_comp_flags = rsp_flags;
1710        CMD_SCSI_STATUS(sc_cmd) = io_req->cdb_status =
1711                                fcp_rsp->scsi_status_code;
1712
1713        /* Fetch fcp_rsp_info and fcp_sns_info if available */
1714        if (num_rq) {
1715
1716                /*
1717                 * We do not anticipate num_rq >1, as the linux defined
1718                 * SCSI_SENSE_BUFFERSIZE is 96 bytes + 8 bytes of FCP_RSP_INFO
1719                 * 256 bytes of single rq buffer is good enough to hold this.
1720                 */
1721
1722                if (rsp_flags &
1723                    FCOE_FCP_RSP_FLAGS_FCP_RSP_LEN_VALID) {
1724                        fcp_rsp_len = rq_buff_len
1725                                        = fcp_rsp->fcp_rsp_len;
1726                }
1727
1728                if (rsp_flags &
1729                    FCOE_FCP_RSP_FLAGS_FCP_SNS_LEN_VALID) {
1730                        fcp_sns_len = fcp_rsp->fcp_sns_len;
1731                        rq_buff_len += fcp_rsp->fcp_sns_len;
1732                }
1733
1734                io_req->fcp_rsp_len = fcp_rsp_len;
1735                io_req->fcp_sns_len = fcp_sns_len;
1736
1737                if (rq_buff_len > num_rq * BNX2FC_RQ_BUF_SZ) {
1738                        /* Invalid sense sense length. */
1739                        printk(KERN_ERR PFX "invalid sns length %d\n",
1740                                rq_buff_len);
1741                        /* reset rq_buff_len */
1742                        rq_buff_len =  num_rq * BNX2FC_RQ_BUF_SZ;
1743                }
1744
1745                rq_data = bnx2fc_get_next_rqe(tgt, 1);
1746
1747                if (num_rq > 1) {
1748                        /* We do not need extra sense data */
1749                        for (i = 1; i < num_rq; i++)
1750                                dummy = bnx2fc_get_next_rqe(tgt, 1);
1751                }
1752
1753                /* fetch fcp_rsp_code */
1754                if ((fcp_rsp_len == 4) || (fcp_rsp_len == 8)) {
1755                        /* Only for task management function */
1756                        io_req->fcp_rsp_code = rq_data[3];
1757                        BNX2FC_IO_DBG(io_req, "fcp_rsp_code = %d\n",
1758                                io_req->fcp_rsp_code);
1759                }
1760
1761                /* fetch sense data */
1762                rq_data += fcp_rsp_len;
1763
1764                if (fcp_sns_len > SCSI_SENSE_BUFFERSIZE) {
1765                        printk(KERN_ERR PFX "Truncating sense buffer\n");
1766                        fcp_sns_len = SCSI_SENSE_BUFFERSIZE;
1767                }
1768
1769                memset(sc_cmd->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE);
1770                if (fcp_sns_len)
1771                        memcpy(sc_cmd->sense_buffer, rq_data, fcp_sns_len);
1772
1773                /* return RQ entries */
1774                for (i = 0; i < num_rq; i++)
1775                        bnx2fc_return_rqe(tgt, 1);
1776        }
1777}
1778
1779/**
1780 * bnx2fc_queuecommand - Queuecommand function of the scsi template
1781 *
1782 * @host:       The Scsi_Host the command was issued to
1783 * @sc_cmd:     struct scsi_cmnd to be executed
1784 *
1785 * This is the IO strategy routine, called by SCSI-ML
1786 **/
1787int bnx2fc_queuecommand(struct Scsi_Host *host,
1788                        struct scsi_cmnd *sc_cmd)
1789{
1790        struct fc_lport *lport = shost_priv(host);
1791        struct fc_rport *rport = starget_to_rport(scsi_target(sc_cmd->device));
1792        struct fc_rport_libfc_priv *rp = rport->dd_data;
1793        struct bnx2fc_rport *tgt;
1794        struct bnx2fc_cmd *io_req;
1795        int rc = 0;
1796        int rval;
1797
1798        rval = fc_remote_port_chkready(rport);
1799        if (rval) {
1800                sc_cmd->result = rval;
1801                sc_cmd->scsi_done(sc_cmd);
1802                return 0;
1803        }
1804
1805        if ((lport->state != LPORT_ST_READY) || !(lport->link_up)) {
1806                rc = SCSI_MLQUEUE_HOST_BUSY;
1807                goto exit_qcmd;
1808        }
1809
1810        /* rport and tgt are allocated together, so tgt should be non-NULL */
1811        tgt = (struct bnx2fc_rport *)&rp[1];
1812
1813        if (!test_bit(BNX2FC_FLAG_SESSION_READY, &tgt->flags)) {
1814                /*
1815                 * Session is not offloaded yet. Let SCSI-ml retry
1816                 * the command.
1817                 */
1818                rc = SCSI_MLQUEUE_TARGET_BUSY;
1819                goto exit_qcmd;
1820        }
1821        if (tgt->retry_delay_timestamp) {
1822                if (time_after(jiffies, tgt->retry_delay_timestamp)) {
1823                        tgt->retry_delay_timestamp = 0;
1824                } else {
1825                        /* If retry_delay timer is active, flow off the ML */
1826                        rc = SCSI_MLQUEUE_TARGET_BUSY;
1827                        goto exit_qcmd;
1828                }
1829        }
1830
1831        spin_lock_bh(&tgt->tgt_lock);
1832
1833        io_req = bnx2fc_cmd_alloc(tgt);
1834        if (!io_req) {
1835                rc = SCSI_MLQUEUE_HOST_BUSY;
1836                goto exit_qcmd_tgtlock;
1837        }
1838        io_req->sc_cmd = sc_cmd;
1839
1840        if (bnx2fc_post_io_req(tgt, io_req)) {
1841                printk(KERN_ERR PFX "Unable to post io_req\n");
1842                rc = SCSI_MLQUEUE_HOST_BUSY;
1843                goto exit_qcmd_tgtlock;
1844        }
1845
1846exit_qcmd_tgtlock:
1847        spin_unlock_bh(&tgt->tgt_lock);
1848exit_qcmd:
1849        return rc;
1850}
1851
1852void bnx2fc_process_scsi_cmd_compl(struct bnx2fc_cmd *io_req,
1853                                   struct fcoe_task_ctx_entry *task,
1854                                   u8 num_rq)
1855{
1856        struct fcoe_fcp_rsp_payload *fcp_rsp;
1857        struct bnx2fc_rport *tgt = io_req->tgt;
1858        struct scsi_cmnd *sc_cmd;
1859        struct Scsi_Host *host;
1860
1861
1862        /* scsi_cmd_cmpl is called with tgt lock held */
1863
1864        if (test_and_set_bit(BNX2FC_FLAG_IO_COMPL, &io_req->req_flags)) {
1865                /* we will not receive ABTS response for this IO */
1866                BNX2FC_IO_DBG(io_req, "Timer context finished processing "
1867                           "this scsi cmd\n");
1868        }
1869
1870        /* Cancel the timeout_work, as we received IO completion */
1871        if (cancel_delayed_work(&io_req->timeout_work))
1872                kref_put(&io_req->refcount,
1873                         bnx2fc_cmd_release); /* drop timer hold */
1874
1875        sc_cmd = io_req->sc_cmd;
1876        if (sc_cmd == NULL) {
1877                printk(KERN_ERR PFX "scsi_cmd_compl - sc_cmd is NULL\n");
1878                return;
1879        }
1880
1881        /* Fetch fcp_rsp from task context and perform cmd completion */
1882        fcp_rsp = (struct fcoe_fcp_rsp_payload *)
1883                   &(task->rxwr_only.union_ctx.comp_info.fcp_rsp.payload);
1884
1885        /* parse fcp_rsp and obtain sense data from RQ if available */
1886        bnx2fc_parse_fcp_rsp(io_req, fcp_rsp, num_rq);
1887
1888        host = sc_cmd->device->host;
1889        if (!sc_cmd->SCp.ptr) {
1890                printk(KERN_ERR PFX "SCp.ptr is NULL\n");
1891                return;
1892        }
1893
1894        if (io_req->on_active_queue) {
1895                list_del_init(&io_req->link);
1896                io_req->on_active_queue = 0;
1897                /* Move IO req to retire queue */
1898                list_add_tail(&io_req->link, &tgt->io_retire_queue);
1899        } else {
1900                /* This should not happen, but could have been pulled
1901                 * by bnx2fc_flush_active_ios(), or during a race
1902                 * between command abort and (late) completion.
1903                 */
1904                BNX2FC_IO_DBG(io_req, "xid not on active_cmd_queue\n");
1905                if (io_req->wait_for_comp)
1906                        if (test_and_clear_bit(BNX2FC_FLAG_EH_ABORT,
1907                                               &io_req->req_flags))
1908                                complete(&io_req->tm_done);
1909        }
1910
1911        bnx2fc_unmap_sg_list(io_req);
1912        io_req->sc_cmd = NULL;
1913
1914        switch (io_req->fcp_status) {
1915        case FC_GOOD:
1916                if (io_req->cdb_status == 0) {
1917                        /* Good IO completion */
1918                        sc_cmd->result = DID_OK << 16;
1919                } else {
1920                        /* Transport status is good, SCSI status not good */
1921                        BNX2FC_IO_DBG(io_req, "scsi_cmpl: cdb_status = %d"
1922                                 " fcp_resid = 0x%x\n",
1923                                io_req->cdb_status, io_req->fcp_resid);
1924                        sc_cmd->result = (DID_OK << 16) | io_req->cdb_status;
1925
1926                        if (io_req->cdb_status == SAM_STAT_TASK_SET_FULL ||
1927                            io_req->cdb_status == SAM_STAT_BUSY) {
1928                                /* Set the jiffies + retry_delay_timer * 100ms
1929                                   for the rport/tgt */
1930                                tgt->retry_delay_timestamp = jiffies +
1931                                        fcp_rsp->retry_delay_timer * HZ / 10;
1932                        }
1933
1934                }
1935                if (io_req->fcp_resid)
1936                        scsi_set_resid(sc_cmd, io_req->fcp_resid);
1937                break;
1938        default:
1939                printk(KERN_ERR PFX "scsi_cmd_compl: fcp_status = %d\n",
1940                        io_req->fcp_status);
1941                break;
1942        }
1943        sc_cmd->SCp.ptr = NULL;
1944        sc_cmd->scsi_done(sc_cmd);
1945        kref_put(&io_req->refcount, bnx2fc_cmd_release);
1946}
1947
1948int bnx2fc_post_io_req(struct bnx2fc_rport *tgt,
1949                               struct bnx2fc_cmd *io_req)
1950{
1951        struct fcoe_task_ctx_entry *task;
1952        struct fcoe_task_ctx_entry *task_page;
1953        struct scsi_cmnd *sc_cmd = io_req->sc_cmd;
1954        struct fcoe_port *port = tgt->port;
1955        struct bnx2fc_interface *interface = port->priv;
1956        struct bnx2fc_hba *hba = interface->hba;
1957        struct fc_lport *lport = port->lport;
1958        struct fc_stats *stats;
1959        int task_idx, index;
1960        u16 xid;
1961
1962        /* bnx2fc_post_io_req() is called with the tgt_lock held */
1963
1964        /* Initialize rest of io_req fields */
1965        io_req->cmd_type = BNX2FC_SCSI_CMD;
1966        io_req->port = port;
1967        io_req->tgt = tgt;
1968        io_req->data_xfer_len = scsi_bufflen(sc_cmd);
1969        sc_cmd->SCp.ptr = (char *)io_req;
1970
1971        stats = per_cpu_ptr(lport->stats, get_cpu());
1972        if (sc_cmd->sc_data_direction == DMA_FROM_DEVICE) {
1973                io_req->io_req_flags = BNX2FC_READ;
1974                stats->InputRequests++;
1975                stats->InputBytes += io_req->data_xfer_len;
1976        } else if (sc_cmd->sc_data_direction == DMA_TO_DEVICE) {
1977                io_req->io_req_flags = BNX2FC_WRITE;
1978                stats->OutputRequests++;
1979                stats->OutputBytes += io_req->data_xfer_len;
1980        } else {
1981                io_req->io_req_flags = 0;
1982                stats->ControlRequests++;
1983        }
1984        put_cpu();
1985
1986        xid = io_req->xid;
1987
1988        /* Build buffer descriptor list for firmware from sg list */
1989        if (bnx2fc_build_bd_list_from_sg(io_req)) {
1990                printk(KERN_ERR PFX "BD list creation failed\n");
1991                kref_put(&io_req->refcount, bnx2fc_cmd_release);
1992                return -EAGAIN;
1993        }
1994
1995        task_idx = xid / BNX2FC_TASKS_PER_PAGE;
1996        index = xid % BNX2FC_TASKS_PER_PAGE;
1997
1998        /* Initialize task context for this IO request */
1999        task_page = (struct fcoe_task_ctx_entry *) hba->task_ctx[task_idx];
2000        task = &(task_page[index]);
2001        bnx2fc_init_task(io_req, task);
2002
2003        if (tgt->flush_in_prog) {
2004                printk(KERN_ERR PFX "Flush in progress..Host Busy\n");
2005                kref_put(&io_req->refcount, bnx2fc_cmd_release);
2006                return -EAGAIN;
2007        }
2008
2009        if (!test_bit(BNX2FC_FLAG_SESSION_READY, &tgt->flags)) {
2010                printk(KERN_ERR PFX "Session not ready...post_io\n");
2011                kref_put(&io_req->refcount, bnx2fc_cmd_release);
2012                return -EAGAIN;
2013        }
2014
2015        /* Time IO req */
2016        if (tgt->io_timeout)
2017                bnx2fc_cmd_timer_set(io_req, BNX2FC_IO_TIMEOUT);
2018        /* Obtain free SQ entry */
2019        bnx2fc_add_2_sq(tgt, xid);
2020
2021        /* Enqueue the io_req to active_cmd_queue */
2022
2023        io_req->on_active_queue = 1;
2024        /* move io_req from pending_queue to active_queue */
2025        list_add_tail(&io_req->link, &tgt->active_cmd_queue);
2026
2027        /* Ring doorbell */
2028        bnx2fc_ring_doorbell(tgt);
2029        return 0;
2030}
2031