1 /* 2 * pmcraid.c -- driver for PMC Sierra MaxRAID controller adapters 3 * 4 * Written By: Anil Ravindranath<anil_ravindranath@pmc-sierra.com> 5 * PMC-Sierra Inc 6 * 7 * Copyright (C) 2008, 2009 PMC Sierra Inc 8 * 9 * This program is free software; you can redistribute it and/or modify 10 * it under the terms of the GNU General Public License as published by 11 * the Free Software Foundation; either version 2 of the License, or 12 * (at your option) any later version. 13 * 14 * This program is distributed in the hope that it will be useful, 15 * but WITHOUT ANY WARRANTY; without even the implied warranty of 16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 17 * GNU General Public License for more details. 18 * 19 * You should have received a copy of the GNU General Public License 20 * along with this program; if not, write to the Free Software 21 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307, 22 * USA 23 * 24 */ 25 #include <linux/fs.h> 26 #include <linux/init.h> 27 #include <linux/types.h> 28 #include <linux/errno.h> 29 #include <linux/kernel.h> 30 #include <linux/ioport.h> 31 #include <linux/delay.h> 32 #include <linux/pci.h> 33 #include <linux/wait.h> 34 #include <linux/spinlock.h> 35 #include <linux/sched.h> 36 #include <linux/interrupt.h> 37 #include <linux/blkdev.h> 38 #include <linux/firmware.h> 39 #include <linux/module.h> 40 #include <linux/moduleparam.h> 41 #include <linux/hdreg.h> 42 #include <linux/version.h> 43 #include <linux/io.h> 44 #include <asm/irq.h> 45 #include <asm/processor.h> 46 #include <linux/libata.h> 47 #include <linux/mutex.h> 48 #include <scsi/scsi.h> 49 #include <scsi/scsi_host.h> 50 #include <scsi/scsi_device.h> 51 #include <scsi/scsi_tcq.h> 52 #include <scsi/scsi_eh.h> 53 #include <scsi/scsi_cmnd.h> 54 #include <scsi/scsicam.h> 55 56 #include "pmcraid.h" 57 58 /* 59 * Module configuration parameters 60 */ 61 static unsigned int pmcraid_debug_log; 62 static unsigned int pmcraid_disable_aen; 63 static unsigned int pmcraid_log_level = IOASC_LOG_LEVEL_MUST; 64 65 /* 66 * Data structures to support multiple adapters by the LLD. 67 * pmcraid_adapter_count - count of configured adapters 68 */ 69 static atomic_t pmcraid_adapter_count = ATOMIC_INIT(0); 70 71 /* 72 * Supporting user-level control interface through IOCTL commands. 73 * pmcraid_major - major number to use 74 * pmcraid_minor - minor number(s) to use 75 */ 76 static unsigned int pmcraid_major; 77 static struct class *pmcraid_class; 78 DECLARE_BITMAP(pmcraid_minor, PMCRAID_MAX_ADAPTERS); 79 80 /* 81 * Module parameters 82 */ 83 MODULE_AUTHOR("Anil Ravindranath<anil_ravindranath@pmc-sierra.com>"); 84 MODULE_DESCRIPTION("PMC Sierra MaxRAID Controller Driver"); 85 MODULE_LICENSE("GPL"); 86 MODULE_VERSION(PMCRAID_DRIVER_VERSION); 87 88 module_param_named(log_level, pmcraid_log_level, uint, (S_IRUGO | S_IWUSR)); 89 MODULE_PARM_DESC(log_level, 90 "Enables firmware error code logging, default :1 high-severity" 91 " errors, 2: all errors including high-severity errors," 92 " 0: disables logging"); 93 94 module_param_named(debug, pmcraid_debug_log, uint, (S_IRUGO | S_IWUSR)); 95 MODULE_PARM_DESC(debug, 96 "Enable driver verbose message logging. Set 1 to enable." 97 "(default: 0)"); 98 99 module_param_named(disable_aen, pmcraid_disable_aen, uint, (S_IRUGO | S_IWUSR)); 100 MODULE_PARM_DESC(disable_aen, 101 "Disable driver aen notifications to apps. Set 1 to disable." 102 "(default: 0)"); 103 104 /* chip specific constants for PMC MaxRAID controllers (same for 105 * 0x5220 and 0x8010 106 */ 107 static struct pmcraid_chip_details pmcraid_chip_cfg[] = { 108 { 109 .ioastatus = 0x0, 110 .ioarrin = 0x00040, 111 .mailbox = 0x7FC30, 112 .global_intr_mask = 0x00034, 113 .ioa_host_intr = 0x0009C, 114 .ioa_host_intr_clr = 0x000A0, 115 .ioa_host_mask = 0x7FC28, 116 .ioa_host_mask_clr = 0x7FC28, 117 .host_ioa_intr = 0x00020, 118 .host_ioa_intr_clr = 0x00020, 119 .transop_timeout = 300 120 } 121 }; 122 123 /* 124 * PCI device ids supported by pmcraid driver 125 */ 126 static struct pci_device_id pmcraid_pci_table[] __devinitdata = { 127 { PCI_DEVICE(PCI_VENDOR_ID_PMC, PCI_DEVICE_ID_PMC_MAXRAID), 128 0, 0, (kernel_ulong_t)&pmcraid_chip_cfg[0] 129 }, 130 {} 131 }; 132 133 MODULE_DEVICE_TABLE(pci, pmcraid_pci_table); 134 135 136 137 /** 138 * pmcraid_slave_alloc - Prepare for commands to a device 139 * @scsi_dev: scsi device struct 140 * 141 * This function is called by mid-layer prior to sending any command to the new 142 * device. Stores resource entry details of the device in scsi_device struct. 143 * Queuecommand uses the resource handle and other details to fill up IOARCB 144 * while sending commands to the device. 145 * 146 * Return value: 147 * 0 on success / -ENXIO if device does not exist 148 */ 149 static int pmcraid_slave_alloc(struct scsi_device *scsi_dev) 150 { 151 struct pmcraid_resource_entry *temp, *res = NULL; 152 struct pmcraid_instance *pinstance; 153 u8 target, bus, lun; 154 unsigned long lock_flags; 155 int rc = -ENXIO; 156 pinstance = shost_priv(scsi_dev->host); 157 158 /* Driver exposes VSET and GSCSI resources only; all other device types 159 * are not exposed. Resource list is synchronized using resource lock 160 * so any traversal or modifications to the list should be done inside 161 * this lock 162 */ 163 spin_lock_irqsave(&pinstance->resource_lock, lock_flags); 164 list_for_each_entry(temp, &pinstance->used_res_q, queue) { 165 166 /* do not expose VSETs with order-ids > MAX_VSET_TARGETS */ 167 if (RES_IS_VSET(temp->cfg_entry)) { 168 target = temp->cfg_entry.unique_flags1; 169 if (target > PMCRAID_MAX_VSET_TARGETS) 170 continue; 171 bus = PMCRAID_VSET_BUS_ID; 172 lun = 0; 173 } else if (RES_IS_GSCSI(temp->cfg_entry)) { 174 target = RES_TARGET(temp->cfg_entry.resource_address); 175 bus = PMCRAID_PHYS_BUS_ID; 176 lun = RES_LUN(temp->cfg_entry.resource_address); 177 } else { 178 continue; 179 } 180 181 if (bus == scsi_dev->channel && 182 target == scsi_dev->id && 183 lun == scsi_dev->lun) { 184 res = temp; 185 break; 186 } 187 } 188 189 if (res) { 190 res->scsi_dev = scsi_dev; 191 scsi_dev->hostdata = res; 192 res->change_detected = 0; 193 atomic_set(&res->read_failures, 0); 194 atomic_set(&res->write_failures, 0); 195 rc = 0; 196 } 197 spin_unlock_irqrestore(&pinstance->resource_lock, lock_flags); 198 return rc; 199 } 200 201 /** 202 * pmcraid_slave_configure - Configures a SCSI device 203 * @scsi_dev: scsi device struct 204 * 205 * This fucntion is executed by SCSI mid layer just after a device is first 206 * scanned (i.e. it has responded to an INQUIRY). For VSET resources, the 207 * timeout value (default 30s) will be over-written to a higher value (60s) 208 * and max_sectors value will be over-written to 512. It also sets queue depth 209 * to host->cmd_per_lun value 210 * 211 * Return value: 212 * 0 on success 213 */ 214 static int pmcraid_slave_configure(struct scsi_device *scsi_dev) 215 { 216 struct pmcraid_resource_entry *res = scsi_dev->hostdata; 217 218 if (!res) 219 return 0; 220 221 /* LLD exposes VSETs and Enclosure devices only */ 222 if (RES_IS_GSCSI(res->cfg_entry) && 223 scsi_dev->type != TYPE_ENCLOSURE) 224 return -ENXIO; 225 226 pmcraid_info("configuring %x:%x:%x:%x\n", 227 scsi_dev->host->unique_id, 228 scsi_dev->channel, 229 scsi_dev->id, 230 scsi_dev->lun); 231 232 if (RES_IS_GSCSI(res->cfg_entry)) { 233 scsi_dev->allow_restart = 1; 234 } else if (RES_IS_VSET(res->cfg_entry)) { 235 scsi_dev->allow_restart = 1; 236 blk_queue_rq_timeout(scsi_dev->request_queue, 237 PMCRAID_VSET_IO_TIMEOUT); 238 blk_queue_max_sectors(scsi_dev->request_queue, 239 PMCRAID_VSET_MAX_SECTORS); 240 } 241 242 if (scsi_dev->tagged_supported && 243 (RES_IS_GSCSI(res->cfg_entry) || RES_IS_VSET(res->cfg_entry))) { 244 scsi_activate_tcq(scsi_dev, scsi_dev->queue_depth); 245 scsi_adjust_queue_depth(scsi_dev, MSG_SIMPLE_TAG, 246 scsi_dev->host->cmd_per_lun); 247 } else { 248 scsi_adjust_queue_depth(scsi_dev, 0, 249 scsi_dev->host->cmd_per_lun); 250 } 251 252 return 0; 253 } 254 255 /** 256 * pmcraid_slave_destroy - Unconfigure a SCSI device before removing it 257 * 258 * @scsi_dev: scsi device struct 259 * 260 * This is called by mid-layer before removing a device. Pointer assignments 261 * done in pmcraid_slave_alloc will be reset to NULL here. 262 * 263 * Return value 264 * none 265 */ 266 static void pmcraid_slave_destroy(struct scsi_device *scsi_dev) 267 { 268 struct pmcraid_resource_entry *res; 269 270 res = (struct pmcraid_resource_entry *)scsi_dev->hostdata; 271 272 if (res) 273 res->scsi_dev = NULL; 274 275 scsi_dev->hostdata = NULL; 276 } 277 278 /** 279 * pmcraid_change_queue_depth - Change the device's queue depth 280 * @scsi_dev: scsi device struct 281 * @depth: depth to set 282 * @reason: calling context 283 * 284 * Return value 285 * actual depth set 286 */ 287 static int pmcraid_change_queue_depth(struct scsi_device *scsi_dev, int depth, 288 int reason) 289 { 290 if (reason != SCSI_QDEPTH_DEFAULT) 291 return -EOPNOTSUPP; 292 293 if (depth > PMCRAID_MAX_CMD_PER_LUN) 294 depth = PMCRAID_MAX_CMD_PER_LUN; 295 296 scsi_adjust_queue_depth(scsi_dev, scsi_get_tag_type(scsi_dev), depth); 297 298 return scsi_dev->queue_depth; 299 } 300 301 /** 302 * pmcraid_change_queue_type - Change the device's queue type 303 * @scsi_dev: scsi device struct 304 * @tag: type of tags to use 305 * 306 * Return value: 307 * actual queue type set 308 */ 309 static int pmcraid_change_queue_type(struct scsi_device *scsi_dev, int tag) 310 { 311 struct pmcraid_resource_entry *res; 312 313 res = (struct pmcraid_resource_entry *)scsi_dev->hostdata; 314 315 if ((res) && scsi_dev->tagged_supported && 316 (RES_IS_GSCSI(res->cfg_entry) || RES_IS_VSET(res->cfg_entry))) { 317 scsi_set_tag_type(scsi_dev, tag); 318 319 if (tag) 320 scsi_activate_tcq(scsi_dev, scsi_dev->queue_depth); 321 else 322 scsi_deactivate_tcq(scsi_dev, scsi_dev->queue_depth); 323 } else 324 tag = 0; 325 326 return tag; 327 } 328 329 330 /** 331 * pmcraid_init_cmdblk - initializes a command block 332 * 333 * @cmd: pointer to struct pmcraid_cmd to be initialized 334 * @index: if >=0 first time initialization; otherwise reinitialization 335 * 336 * Return Value 337 * None 338 */ 339 void pmcraid_init_cmdblk(struct pmcraid_cmd *cmd, int index) 340 { 341 struct pmcraid_ioarcb *ioarcb = &(cmd->ioa_cb->ioarcb); 342 dma_addr_t dma_addr = cmd->ioa_cb_bus_addr; 343 344 if (index >= 0) { 345 /* first time initialization (called from probe) */ 346 u32 ioasa_offset = 347 offsetof(struct pmcraid_control_block, ioasa); 348 349 cmd->index = index; 350 ioarcb->response_handle = cpu_to_le32(index << 2); 351 ioarcb->ioarcb_bus_addr = cpu_to_le64(dma_addr); 352 ioarcb->ioasa_bus_addr = cpu_to_le64(dma_addr + ioasa_offset); 353 ioarcb->ioasa_len = cpu_to_le16(sizeof(struct pmcraid_ioasa)); 354 } else { 355 /* re-initialization of various lengths, called once command is 356 * processed by IOA 357 */ 358 memset(&cmd->ioa_cb->ioarcb.cdb, 0, PMCRAID_MAX_CDB_LEN); 359 ioarcb->request_flags0 = 0; 360 ioarcb->request_flags1 = 0; 361 ioarcb->cmd_timeout = 0; 362 ioarcb->ioarcb_bus_addr &= (~0x1FULL); 363 ioarcb->ioadl_bus_addr = 0; 364 ioarcb->ioadl_length = 0; 365 ioarcb->data_transfer_length = 0; 366 ioarcb->add_cmd_param_length = 0; 367 ioarcb->add_cmd_param_offset = 0; 368 cmd->ioa_cb->ioasa.ioasc = 0; 369 cmd->ioa_cb->ioasa.residual_data_length = 0; 370 cmd->u.time_left = 0; 371 } 372 373 cmd->cmd_done = NULL; 374 cmd->scsi_cmd = NULL; 375 cmd->release = 0; 376 cmd->completion_req = 0; 377 cmd->dma_handle = 0; 378 init_timer(&cmd->timer); 379 } 380 381 /** 382 * pmcraid_reinit_cmdblk - reinitialize a command block 383 * 384 * @cmd: pointer to struct pmcraid_cmd to be reinitialized 385 * 386 * Return Value 387 * None 388 */ 389 static void pmcraid_reinit_cmdblk(struct pmcraid_cmd *cmd) 390 { 391 pmcraid_init_cmdblk(cmd, -1); 392 } 393 394 /** 395 * pmcraid_get_free_cmd - get a free cmd block from command block pool 396 * @pinstance: adapter instance structure 397 * 398 * Return Value: 399 * returns pointer to cmd block or NULL if no blocks are available 400 */ 401 static struct pmcraid_cmd *pmcraid_get_free_cmd( 402 struct pmcraid_instance *pinstance 403 ) 404 { 405 struct pmcraid_cmd *cmd = NULL; 406 unsigned long lock_flags; 407 408 /* free cmd block list is protected by free_pool_lock */ 409 spin_lock_irqsave(&pinstance->free_pool_lock, lock_flags); 410 411 if (!list_empty(&pinstance->free_cmd_pool)) { 412 cmd = list_entry(pinstance->free_cmd_pool.next, 413 struct pmcraid_cmd, free_list); 414 list_del(&cmd->free_list); 415 } 416 spin_unlock_irqrestore(&pinstance->free_pool_lock, lock_flags); 417 418 /* Initialize the command block before giving it the caller */ 419 if (cmd != NULL) 420 pmcraid_reinit_cmdblk(cmd); 421 return cmd; 422 } 423 424 /** 425 * pmcraid_return_cmd - return a completed command block back into free pool 426 * @cmd: pointer to the command block 427 * 428 * Return Value: 429 * nothing 430 */ 431 void pmcraid_return_cmd(struct pmcraid_cmd *cmd) 432 { 433 struct pmcraid_instance *pinstance = cmd->drv_inst; 434 unsigned long lock_flags; 435 436 spin_lock_irqsave(&pinstance->free_pool_lock, lock_flags); 437 list_add_tail(&cmd->free_list, &pinstance->free_cmd_pool); 438 spin_unlock_irqrestore(&pinstance->free_pool_lock, lock_flags); 439 } 440 441 /** 442 * pmcraid_read_interrupts - reads IOA interrupts 443 * 444 * @pinstance: pointer to adapter instance structure 445 * 446 * Return value 447 * interrupts read from IOA 448 */ 449 static u32 pmcraid_read_interrupts(struct pmcraid_instance *pinstance) 450 { 451 return ioread32(pinstance->int_regs.ioa_host_interrupt_reg); 452 } 453 454 /** 455 * pmcraid_disable_interrupts - Masks and clears all specified interrupts 456 * 457 * @pinstance: pointer to per adapter instance structure 458 * @intrs: interrupts to disable 459 * 460 * Return Value 461 * None 462 */ 463 static void pmcraid_disable_interrupts( 464 struct pmcraid_instance *pinstance, 465 u32 intrs 466 ) 467 { 468 u32 gmask = ioread32(pinstance->int_regs.global_interrupt_mask_reg); 469 u32 nmask = gmask | GLOBAL_INTERRUPT_MASK; 470 471 iowrite32(nmask, pinstance->int_regs.global_interrupt_mask_reg); 472 iowrite32(intrs, pinstance->int_regs.ioa_host_interrupt_clr_reg); 473 iowrite32(intrs, pinstance->int_regs.ioa_host_interrupt_mask_reg); 474 ioread32(pinstance->int_regs.ioa_host_interrupt_mask_reg); 475 } 476 477 /** 478 * pmcraid_enable_interrupts - Enables specified interrupts 479 * 480 * @pinstance: pointer to per adapter instance structure 481 * @intr: interrupts to enable 482 * 483 * Return Value 484 * None 485 */ 486 static void pmcraid_enable_interrupts( 487 struct pmcraid_instance *pinstance, 488 u32 intrs 489 ) 490 { 491 u32 gmask = ioread32(pinstance->int_regs.global_interrupt_mask_reg); 492 u32 nmask = gmask & (~GLOBAL_INTERRUPT_MASK); 493 494 iowrite32(nmask, pinstance->int_regs.global_interrupt_mask_reg); 495 iowrite32(~intrs, pinstance->int_regs.ioa_host_interrupt_mask_reg); 496 ioread32(pinstance->int_regs.ioa_host_interrupt_mask_reg); 497 498 pmcraid_info("enabled interrupts global mask = %x intr_mask = %x\n", 499 ioread32(pinstance->int_regs.global_interrupt_mask_reg), 500 ioread32(pinstance->int_regs.ioa_host_interrupt_mask_reg)); 501 } 502 503 /** 504 * pmcraid_reset_type - Determine the required reset type 505 * @pinstance: pointer to adapter instance structure 506 * 507 * IOA requires hard reset if any of the following conditions is true. 508 * 1. If HRRQ valid interrupt is not masked 509 * 2. IOA reset alert doorbell is set 510 * 3. If there are any error interrupts 511 */ 512 static void pmcraid_reset_type(struct pmcraid_instance *pinstance) 513 { 514 u32 mask; 515 u32 intrs; 516 u32 alerts; 517 518 mask = ioread32(pinstance->int_regs.ioa_host_interrupt_mask_reg); 519 intrs = ioread32(pinstance->int_regs.ioa_host_interrupt_reg); 520 alerts = ioread32(pinstance->int_regs.host_ioa_interrupt_reg); 521 522 if ((mask & INTRS_HRRQ_VALID) == 0 || 523 (alerts & DOORBELL_IOA_RESET_ALERT) || 524 (intrs & PMCRAID_ERROR_INTERRUPTS)) { 525 pmcraid_info("IOA requires hard reset\n"); 526 pinstance->ioa_hard_reset = 1; 527 } 528 529 /* If unit check is active, trigger the dump */ 530 if (intrs & INTRS_IOA_UNIT_CHECK) 531 pinstance->ioa_unit_check = 1; 532 } 533 534 /** 535 * pmcraid_bist_done - completion function for PCI BIST 536 * @cmd: pointer to reset command 537 * Return Value 538 * none 539 */ 540 541 static void pmcraid_ioa_reset(struct pmcraid_cmd *); 542 543 static void pmcraid_bist_done(struct pmcraid_cmd *cmd) 544 { 545 struct pmcraid_instance *pinstance = cmd->drv_inst; 546 unsigned long lock_flags; 547 int rc; 548 u16 pci_reg; 549 550 rc = pci_read_config_word(pinstance->pdev, PCI_COMMAND, &pci_reg); 551 552 /* If PCI config space can't be accessed wait for another two secs */ 553 if ((rc != PCIBIOS_SUCCESSFUL || (!(pci_reg & PCI_COMMAND_MEMORY))) && 554 cmd->u.time_left > 0) { 555 pmcraid_info("BIST not complete, waiting another 2 secs\n"); 556 cmd->timer.expires = jiffies + cmd->u.time_left; 557 cmd->u.time_left = 0; 558 cmd->timer.data = (unsigned long)cmd; 559 cmd->timer.function = 560 (void (*)(unsigned long))pmcraid_bist_done; 561 add_timer(&cmd->timer); 562 } else { 563 cmd->u.time_left = 0; 564 pmcraid_info("BIST is complete, proceeding with reset\n"); 565 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 566 pmcraid_ioa_reset(cmd); 567 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 568 } 569 } 570 571 /** 572 * pmcraid_start_bist - starts BIST 573 * @cmd: pointer to reset cmd 574 * Return Value 575 * none 576 */ 577 static void pmcraid_start_bist(struct pmcraid_cmd *cmd) 578 { 579 struct pmcraid_instance *pinstance = cmd->drv_inst; 580 u32 doorbells, intrs; 581 582 /* proceed with bist and wait for 2 seconds */ 583 iowrite32(DOORBELL_IOA_START_BIST, 584 pinstance->int_regs.host_ioa_interrupt_reg); 585 doorbells = ioread32(pinstance->int_regs.host_ioa_interrupt_reg); 586 intrs = ioread32(pinstance->int_regs.ioa_host_interrupt_reg); 587 pmcraid_info("doorbells after start bist: %x intrs: %x \n", 588 doorbells, intrs); 589 590 cmd->u.time_left = msecs_to_jiffies(PMCRAID_BIST_TIMEOUT); 591 cmd->timer.data = (unsigned long)cmd; 592 cmd->timer.expires = jiffies + msecs_to_jiffies(PMCRAID_BIST_TIMEOUT); 593 cmd->timer.function = (void (*)(unsigned long))pmcraid_bist_done; 594 add_timer(&cmd->timer); 595 } 596 597 /** 598 * pmcraid_reset_alert_done - completion routine for reset_alert 599 * @cmd: pointer to command block used in reset sequence 600 * Return value 601 * None 602 */ 603 static void pmcraid_reset_alert_done(struct pmcraid_cmd *cmd) 604 { 605 struct pmcraid_instance *pinstance = cmd->drv_inst; 606 u32 status = ioread32(pinstance->ioa_status); 607 unsigned long lock_flags; 608 609 /* if the critical operation in progress bit is set or the wait times 610 * out, invoke reset engine to proceed with hard reset. If there is 611 * some more time to wait, restart the timer 612 */ 613 if (((status & INTRS_CRITICAL_OP_IN_PROGRESS) == 0) || 614 cmd->u.time_left <= 0) { 615 pmcraid_info("critical op is reset proceeding with reset\n"); 616 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 617 pmcraid_ioa_reset(cmd); 618 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 619 } else { 620 pmcraid_info("critical op is not yet reset waiting again\n"); 621 /* restart timer if some more time is available to wait */ 622 cmd->u.time_left -= PMCRAID_CHECK_FOR_RESET_TIMEOUT; 623 cmd->timer.data = (unsigned long)cmd; 624 cmd->timer.expires = jiffies + PMCRAID_CHECK_FOR_RESET_TIMEOUT; 625 cmd->timer.function = 626 (void (*)(unsigned long))pmcraid_reset_alert_done; 627 add_timer(&cmd->timer); 628 } 629 } 630 631 /** 632 * pmcraid_reset_alert - alerts IOA for a possible reset 633 * @cmd : command block to be used for reset sequence. 634 * 635 * Return Value 636 * returns 0 if pci config-space is accessible and RESET_DOORBELL is 637 * successfully written to IOA. Returns non-zero in case pci_config_space 638 * is not accessible 639 */ 640 static void pmcraid_reset_alert(struct pmcraid_cmd *cmd) 641 { 642 struct pmcraid_instance *pinstance = cmd->drv_inst; 643 u32 doorbells; 644 int rc; 645 u16 pci_reg; 646 647 /* If we are able to access IOA PCI config space, alert IOA that we are 648 * going to reset it soon. This enables IOA to preserv persistent error 649 * data if any. In case memory space is not accessible, proceed with 650 * BIST or slot_reset 651 */ 652 rc = pci_read_config_word(pinstance->pdev, PCI_COMMAND, &pci_reg); 653 if ((rc == PCIBIOS_SUCCESSFUL) && (pci_reg & PCI_COMMAND_MEMORY)) { 654 655 /* wait for IOA permission i.e until CRITICAL_OPERATION bit is 656 * reset IOA doesn't generate any interrupts when CRITICAL 657 * OPERATION bit is reset. A timer is started to wait for this 658 * bit to be reset. 659 */ 660 cmd->u.time_left = PMCRAID_RESET_TIMEOUT; 661 cmd->timer.data = (unsigned long)cmd; 662 cmd->timer.expires = jiffies + PMCRAID_CHECK_FOR_RESET_TIMEOUT; 663 cmd->timer.function = 664 (void (*)(unsigned long))pmcraid_reset_alert_done; 665 add_timer(&cmd->timer); 666 667 iowrite32(DOORBELL_IOA_RESET_ALERT, 668 pinstance->int_regs.host_ioa_interrupt_reg); 669 doorbells = 670 ioread32(pinstance->int_regs.host_ioa_interrupt_reg); 671 pmcraid_info("doorbells after reset alert: %x\n", doorbells); 672 } else { 673 pmcraid_info("PCI config is not accessible starting BIST\n"); 674 pinstance->ioa_state = IOA_STATE_IN_HARD_RESET; 675 pmcraid_start_bist(cmd); 676 } 677 } 678 679 /** 680 * pmcraid_timeout_handler - Timeout handler for internally generated ops 681 * 682 * @cmd : pointer to command structure, that got timedout 683 * 684 * This function blocks host requests and initiates an adapter reset. 685 * 686 * Return value: 687 * None 688 */ 689 static void pmcraid_timeout_handler(struct pmcraid_cmd *cmd) 690 { 691 struct pmcraid_instance *pinstance = cmd->drv_inst; 692 unsigned long lock_flags; 693 694 dev_info(&pinstance->pdev->dev, 695 "Adapter being reset due to command timeout.\n"); 696 697 /* Command timeouts result in hard reset sequence. The command that got 698 * timed out may be the one used as part of reset sequence. In this 699 * case restart reset sequence using the same command block even if 700 * reset is in progress. Otherwise fail this command and get a free 701 * command block to restart the reset sequence. 702 */ 703 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 704 if (!pinstance->ioa_reset_in_progress) { 705 pinstance->ioa_reset_attempts = 0; 706 cmd = pmcraid_get_free_cmd(pinstance); 707 708 /* If we are out of command blocks, just return here itself. 709 * Some other command's timeout handler can do the reset job 710 */ 711 if (cmd == NULL) { 712 spin_unlock_irqrestore(pinstance->host->host_lock, 713 lock_flags); 714 pmcraid_err("no free cmnd block for timeout handler\n"); 715 return; 716 } 717 718 pinstance->reset_cmd = cmd; 719 pinstance->ioa_reset_in_progress = 1; 720 } else { 721 pmcraid_info("reset is already in progress\n"); 722 723 if (pinstance->reset_cmd != cmd) { 724 /* This command should have been given to IOA, this 725 * command will be completed by fail_outstanding_cmds 726 * anyway 727 */ 728 pmcraid_err("cmd is pending but reset in progress\n"); 729 } 730 731 /* If this command was being used as part of the reset 732 * sequence, set cmd_done pointer to pmcraid_ioa_reset. This 733 * causes fail_outstanding_commands not to return the command 734 * block back to free pool 735 */ 736 if (cmd == pinstance->reset_cmd) 737 cmd->cmd_done = pmcraid_ioa_reset; 738 739 } 740 741 pinstance->ioa_state = IOA_STATE_IN_RESET_ALERT; 742 scsi_block_requests(pinstance->host); 743 pmcraid_reset_alert(cmd); 744 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 745 } 746 747 /** 748 * pmcraid_internal_done - completion routine for internally generated cmds 749 * 750 * @cmd: command that got response from IOA 751 * 752 * Return Value: 753 * none 754 */ 755 static void pmcraid_internal_done(struct pmcraid_cmd *cmd) 756 { 757 pmcraid_info("response internal cmd CDB[0] = %x ioasc = %x\n", 758 cmd->ioa_cb->ioarcb.cdb[0], 759 le32_to_cpu(cmd->ioa_cb->ioasa.ioasc)); 760 761 /* Some of the internal commands are sent with callers blocking for the 762 * response. Same will be indicated as part of cmd->completion_req 763 * field. Response path needs to wake up any waiters waiting for cmd 764 * completion if this flag is set. 765 */ 766 if (cmd->completion_req) { 767 cmd->completion_req = 0; 768 complete(&cmd->wait_for_completion); 769 } 770 771 /* most of the internal commands are completed by caller itself, so 772 * no need to return the command block back to free pool until we are 773 * required to do so (e.g once done with initialization). 774 */ 775 if (cmd->release) { 776 cmd->release = 0; 777 pmcraid_return_cmd(cmd); 778 } 779 } 780 781 /** 782 * pmcraid_reinit_cfgtable_done - done function for cfg table reinitialization 783 * 784 * @cmd: command that got response from IOA 785 * 786 * This routine is called after driver re-reads configuration table due to a 787 * lost CCN. It returns the command block back to free pool and schedules 788 * worker thread to add/delete devices into the system. 789 * 790 * Return Value: 791 * none 792 */ 793 static void pmcraid_reinit_cfgtable_done(struct pmcraid_cmd *cmd) 794 { 795 pmcraid_info("response internal cmd CDB[0] = %x ioasc = %x\n", 796 cmd->ioa_cb->ioarcb.cdb[0], 797 le32_to_cpu(cmd->ioa_cb->ioasa.ioasc)); 798 799 if (cmd->release) { 800 cmd->release = 0; 801 pmcraid_return_cmd(cmd); 802 } 803 pmcraid_info("scheduling worker for config table reinitialization\n"); 804 schedule_work(&cmd->drv_inst->worker_q); 805 } 806 807 /** 808 * pmcraid_erp_done - Process completion of SCSI error response from device 809 * @cmd: pmcraid_command 810 * 811 * This function copies the sense buffer into the scsi_cmd struct and completes 812 * scsi_cmd by calling scsi_done function. 813 * 814 * Return value: 815 * none 816 */ 817 static void pmcraid_erp_done(struct pmcraid_cmd *cmd) 818 { 819 struct scsi_cmnd *scsi_cmd = cmd->scsi_cmd; 820 struct pmcraid_instance *pinstance = cmd->drv_inst; 821 u32 ioasc = le32_to_cpu(cmd->ioa_cb->ioasa.ioasc); 822 823 if (PMCRAID_IOASC_SENSE_KEY(ioasc) > 0) { 824 scsi_cmd->result |= (DID_ERROR << 16); 825 scmd_printk(KERN_INFO, scsi_cmd, 826 "command CDB[0] = %x failed with IOASC: 0x%08X\n", 827 cmd->ioa_cb->ioarcb.cdb[0], ioasc); 828 } 829 830 /* if we had allocated sense buffers for request sense, copy the sense 831 * release the buffers 832 */ 833 if (cmd->sense_buffer != NULL) { 834 memcpy(scsi_cmd->sense_buffer, 835 cmd->sense_buffer, 836 SCSI_SENSE_BUFFERSIZE); 837 pci_free_consistent(pinstance->pdev, 838 SCSI_SENSE_BUFFERSIZE, 839 cmd->sense_buffer, cmd->sense_buffer_dma); 840 cmd->sense_buffer = NULL; 841 cmd->sense_buffer_dma = 0; 842 } 843 844 scsi_dma_unmap(scsi_cmd); 845 pmcraid_return_cmd(cmd); 846 scsi_cmd->scsi_done(scsi_cmd); 847 } 848 849 /** 850 * pmcraid_fire_command - sends an IOA command to adapter 851 * 852 * This function adds the given block into pending command list 853 * and returns without waiting 854 * 855 * @cmd : command to be sent to the device 856 * 857 * Return Value 858 * None 859 */ 860 static void _pmcraid_fire_command(struct pmcraid_cmd *cmd) 861 { 862 struct pmcraid_instance *pinstance = cmd->drv_inst; 863 unsigned long lock_flags; 864 865 /* Add this command block to pending cmd pool. We do this prior to 866 * writting IOARCB to ioarrin because IOA might complete the command 867 * by the time we are about to add it to the list. Response handler 868 * (isr/tasklet) looks for cmb block in the pending pending list. 869 */ 870 spin_lock_irqsave(&pinstance->pending_pool_lock, lock_flags); 871 list_add_tail(&cmd->free_list, &pinstance->pending_cmd_pool); 872 spin_unlock_irqrestore(&pinstance->pending_pool_lock, lock_flags); 873 atomic_inc(&pinstance->outstanding_cmds); 874 875 /* driver writes lower 32-bit value of IOARCB address only */ 876 mb(); 877 iowrite32(le32_to_cpu(cmd->ioa_cb->ioarcb.ioarcb_bus_addr), 878 pinstance->ioarrin); 879 } 880 881 /** 882 * pmcraid_send_cmd - fires a command to IOA 883 * 884 * This function also sets up timeout function, and command completion 885 * function 886 * 887 * @cmd: pointer to the command block to be fired to IOA 888 * @cmd_done: command completion function, called once IOA responds 889 * @timeout: timeout to wait for this command completion 890 * @timeout_func: timeout handler 891 * 892 * Return value 893 * none 894 */ 895 static void pmcraid_send_cmd( 896 struct pmcraid_cmd *cmd, 897 void (*cmd_done) (struct pmcraid_cmd *), 898 unsigned long timeout, 899 void (*timeout_func) (struct pmcraid_cmd *) 900 ) 901 { 902 /* initialize done function */ 903 cmd->cmd_done = cmd_done; 904 905 if (timeout_func) { 906 /* setup timeout handler */ 907 cmd->timer.data = (unsigned long)cmd; 908 cmd->timer.expires = jiffies + timeout; 909 cmd->timer.function = (void (*)(unsigned long))timeout_func; 910 add_timer(&cmd->timer); 911 } 912 913 /* fire the command to IOA */ 914 _pmcraid_fire_command(cmd); 915 } 916 917 /** 918 * pmcraid_ioa_shutdown - sends SHUTDOWN command to ioa 919 * 920 * @cmd: pointer to the command block used as part of reset sequence 921 * 922 * Return Value 923 * None 924 */ 925 static void pmcraid_ioa_shutdown(struct pmcraid_cmd *cmd) 926 { 927 pmcraid_info("response for Cancel CCN CDB[0] = %x ioasc = %x\n", 928 cmd->ioa_cb->ioarcb.cdb[0], 929 le32_to_cpu(cmd->ioa_cb->ioasa.ioasc)); 930 931 /* Note that commands sent during reset require next command to be sent 932 * to IOA. Hence reinit the done function as well as timeout function 933 */ 934 pmcraid_reinit_cmdblk(cmd); 935 cmd->ioa_cb->ioarcb.request_type = REQ_TYPE_IOACMD; 936 cmd->ioa_cb->ioarcb.resource_handle = 937 cpu_to_le32(PMCRAID_IOA_RES_HANDLE); 938 cmd->ioa_cb->ioarcb.cdb[0] = PMCRAID_IOA_SHUTDOWN; 939 cmd->ioa_cb->ioarcb.cdb[1] = PMCRAID_SHUTDOWN_NORMAL; 940 941 /* fire shutdown command to hardware. */ 942 pmcraid_info("firing normal shutdown command (%d) to IOA\n", 943 le32_to_cpu(cmd->ioa_cb->ioarcb.response_handle)); 944 945 pmcraid_send_cmd(cmd, pmcraid_ioa_reset, 946 PMCRAID_SHUTDOWN_TIMEOUT, 947 pmcraid_timeout_handler); 948 } 949 950 /** 951 * pmcraid_identify_hrrq - registers host rrq buffers with IOA 952 * @cmd: pointer to command block to be used for identify hrrq 953 * 954 * Return Value 955 * 0 in case of success, otherwise non-zero failure code 956 */ 957 958 static void pmcraid_querycfg(struct pmcraid_cmd *); 959 960 static void pmcraid_identify_hrrq(struct pmcraid_cmd *cmd) 961 { 962 struct pmcraid_instance *pinstance = cmd->drv_inst; 963 struct pmcraid_ioarcb *ioarcb = &cmd->ioa_cb->ioarcb; 964 int index = 0; 965 __be64 hrrq_addr = cpu_to_be64(pinstance->hrrq_start_bus_addr[index]); 966 u32 hrrq_size = cpu_to_be32(sizeof(u32) * PMCRAID_MAX_CMD); 967 968 pmcraid_reinit_cmdblk(cmd); 969 970 /* Initialize ioarcb */ 971 ioarcb->request_type = REQ_TYPE_IOACMD; 972 ioarcb->resource_handle = cpu_to_le32(PMCRAID_IOA_RES_HANDLE); 973 974 /* initialize the hrrq number where IOA will respond to this command */ 975 ioarcb->hrrq_id = index; 976 ioarcb->cdb[0] = PMCRAID_IDENTIFY_HRRQ; 977 ioarcb->cdb[1] = index; 978 979 /* IOA expects 64-bit pci address to be written in B.E format 980 * (i.e cdb[2]=MSByte..cdb[9]=LSB. 981 */ 982 pmcraid_info("HRRQ_IDENTIFY with hrrq:ioarcb => %llx:%llx\n", 983 hrrq_addr, ioarcb->ioarcb_bus_addr); 984 985 memcpy(&(ioarcb->cdb[2]), &hrrq_addr, sizeof(hrrq_addr)); 986 memcpy(&(ioarcb->cdb[10]), &hrrq_size, sizeof(hrrq_size)); 987 988 /* Subsequent commands require HRRQ identification to be successful. 989 * Note that this gets called even during reset from SCSI mid-layer 990 * or tasklet 991 */ 992 pmcraid_send_cmd(cmd, pmcraid_querycfg, 993 PMCRAID_INTERNAL_TIMEOUT, 994 pmcraid_timeout_handler); 995 } 996 997 static void pmcraid_process_ccn(struct pmcraid_cmd *cmd); 998 static void pmcraid_process_ldn(struct pmcraid_cmd *cmd); 999 1000 /** 1001 * pmcraid_send_hcam_cmd - send an initialized command block(HCAM) to IOA 1002 * 1003 * @cmd: initialized command block pointer 1004 * 1005 * Return Value 1006 * none 1007 */ 1008 static void pmcraid_send_hcam_cmd(struct pmcraid_cmd *cmd) 1009 { 1010 if (cmd->ioa_cb->ioarcb.cdb[1] == PMCRAID_HCAM_CODE_CONFIG_CHANGE) 1011 atomic_set(&(cmd->drv_inst->ccn.ignore), 0); 1012 else 1013 atomic_set(&(cmd->drv_inst->ldn.ignore), 0); 1014 1015 pmcraid_send_cmd(cmd, cmd->cmd_done, 0, NULL); 1016 } 1017 1018 /** 1019 * pmcraid_init_hcam - send an initialized command block(HCAM) to IOA 1020 * 1021 * @pinstance: pointer to adapter instance structure 1022 * @type: HCAM type 1023 * 1024 * Return Value 1025 * pointer to initialized pmcraid_cmd structure or NULL 1026 */ 1027 static struct pmcraid_cmd *pmcraid_init_hcam 1028 ( 1029 struct pmcraid_instance *pinstance, 1030 u8 type 1031 ) 1032 { 1033 struct pmcraid_cmd *cmd; 1034 struct pmcraid_ioarcb *ioarcb; 1035 struct pmcraid_ioadl_desc *ioadl; 1036 struct pmcraid_hostrcb *hcam; 1037 void (*cmd_done) (struct pmcraid_cmd *); 1038 dma_addr_t dma; 1039 int rcb_size; 1040 1041 cmd = pmcraid_get_free_cmd(pinstance); 1042 1043 if (!cmd) { 1044 pmcraid_err("no free command blocks for hcam\n"); 1045 return cmd; 1046 } 1047 1048 if (type == PMCRAID_HCAM_CODE_CONFIG_CHANGE) { 1049 rcb_size = sizeof(struct pmcraid_hcam_ccn); 1050 cmd_done = pmcraid_process_ccn; 1051 dma = pinstance->ccn.baddr + PMCRAID_AEN_HDR_SIZE; 1052 hcam = &pinstance->ccn; 1053 } else { 1054 rcb_size = sizeof(struct pmcraid_hcam_ldn); 1055 cmd_done = pmcraid_process_ldn; 1056 dma = pinstance->ldn.baddr + PMCRAID_AEN_HDR_SIZE; 1057 hcam = &pinstance->ldn; 1058 } 1059 1060 /* initialize command pointer used for HCAM registration */ 1061 hcam->cmd = cmd; 1062 1063 ioarcb = &cmd->ioa_cb->ioarcb; 1064 ioarcb->ioadl_bus_addr = cpu_to_le64((cmd->ioa_cb_bus_addr) + 1065 offsetof(struct pmcraid_ioarcb, 1066 add_data.u.ioadl[0])); 1067 ioarcb->ioadl_length = cpu_to_le32(sizeof(struct pmcraid_ioadl_desc)); 1068 ioadl = ioarcb->add_data.u.ioadl; 1069 1070 /* Initialize ioarcb */ 1071 ioarcb->request_type = REQ_TYPE_HCAM; 1072 ioarcb->resource_handle = cpu_to_le32(PMCRAID_IOA_RES_HANDLE); 1073 ioarcb->cdb[0] = PMCRAID_HOST_CONTROLLED_ASYNC; 1074 ioarcb->cdb[1] = type; 1075 ioarcb->cdb[7] = (rcb_size >> 8) & 0xFF; 1076 ioarcb->cdb[8] = (rcb_size) & 0xFF; 1077 1078 ioarcb->data_transfer_length = cpu_to_le32(rcb_size); 1079 1080 ioadl[0].flags |= IOADL_FLAGS_READ_LAST; 1081 ioadl[0].data_len = cpu_to_le32(rcb_size); 1082 ioadl[0].address = cpu_to_le32(dma); 1083 1084 cmd->cmd_done = cmd_done; 1085 return cmd; 1086 } 1087 1088 /** 1089 * pmcraid_send_hcam - Send an HCAM to IOA 1090 * @pinstance: ioa config struct 1091 * @type: HCAM type 1092 * 1093 * This function will send a Host Controlled Async command to IOA. 1094 * 1095 * Return value: 1096 * none 1097 */ 1098 static void pmcraid_send_hcam(struct pmcraid_instance *pinstance, u8 type) 1099 { 1100 struct pmcraid_cmd *cmd = pmcraid_init_hcam(pinstance, type); 1101 pmcraid_send_hcam_cmd(cmd); 1102 } 1103 1104 1105 /** 1106 * pmcraid_prepare_cancel_cmd - prepares a command block to abort another 1107 * 1108 * @cmd: pointer to cmd that is used as cancelling command 1109 * @cmd_to_cancel: pointer to the command that needs to be cancelled 1110 */ 1111 static void pmcraid_prepare_cancel_cmd( 1112 struct pmcraid_cmd *cmd, 1113 struct pmcraid_cmd *cmd_to_cancel 1114 ) 1115 { 1116 struct pmcraid_ioarcb *ioarcb = &cmd->ioa_cb->ioarcb; 1117 __be64 ioarcb_addr = cmd_to_cancel->ioa_cb->ioarcb.ioarcb_bus_addr; 1118 1119 /* Get the resource handle to where the command to be aborted has been 1120 * sent. 1121 */ 1122 ioarcb->resource_handle = cmd_to_cancel->ioa_cb->ioarcb.resource_handle; 1123 ioarcb->request_type = REQ_TYPE_IOACMD; 1124 memset(ioarcb->cdb, 0, PMCRAID_MAX_CDB_LEN); 1125 ioarcb->cdb[0] = PMCRAID_ABORT_CMD; 1126 1127 /* IOARCB address of the command to be cancelled is given in 1128 * cdb[2]..cdb[9] is Big-Endian format. Note that length bits in 1129 * IOARCB address are not masked. 1130 */ 1131 ioarcb_addr = cpu_to_be64(ioarcb_addr); 1132 memcpy(&(ioarcb->cdb[2]), &ioarcb_addr, sizeof(ioarcb_addr)); 1133 } 1134 1135 /** 1136 * pmcraid_cancel_hcam - sends ABORT task to abort a given HCAM 1137 * 1138 * @cmd: command to be used as cancelling command 1139 * @type: HCAM type 1140 * @cmd_done: op done function for the cancelling command 1141 */ 1142 static void pmcraid_cancel_hcam( 1143 struct pmcraid_cmd *cmd, 1144 u8 type, 1145 void (*cmd_done) (struct pmcraid_cmd *) 1146 ) 1147 { 1148 struct pmcraid_instance *pinstance; 1149 struct pmcraid_hostrcb *hcam; 1150 1151 pinstance = cmd->drv_inst; 1152 hcam = (type == PMCRAID_HCAM_CODE_LOG_DATA) ? 1153 &pinstance->ldn : &pinstance->ccn; 1154 1155 /* prepare for cancelling previous hcam command. If the HCAM is 1156 * currently not pending with IOA, we would have hcam->cmd as non-null 1157 */ 1158 if (hcam->cmd == NULL) 1159 return; 1160 1161 pmcraid_prepare_cancel_cmd(cmd, hcam->cmd); 1162 1163 /* writing to IOARRIN must be protected by host_lock, as mid-layer 1164 * schedule queuecommand while we are doing this 1165 */ 1166 pmcraid_send_cmd(cmd, cmd_done, 1167 PMCRAID_INTERNAL_TIMEOUT, 1168 pmcraid_timeout_handler); 1169 } 1170 1171 /** 1172 * pmcraid_cancel_ccn - cancel CCN HCAM already registered with IOA 1173 * 1174 * @cmd: command block to be used for cancelling the HCAM 1175 */ 1176 static void pmcraid_cancel_ccn(struct pmcraid_cmd *cmd) 1177 { 1178 pmcraid_info("response for Cancel LDN CDB[0] = %x ioasc = %x\n", 1179 cmd->ioa_cb->ioarcb.cdb[0], 1180 le32_to_cpu(cmd->ioa_cb->ioasa.ioasc)); 1181 1182 pmcraid_reinit_cmdblk(cmd); 1183 1184 pmcraid_cancel_hcam(cmd, 1185 PMCRAID_HCAM_CODE_CONFIG_CHANGE, 1186 pmcraid_ioa_shutdown); 1187 } 1188 1189 /** 1190 * pmcraid_cancel_ldn - cancel LDN HCAM already registered with IOA 1191 * 1192 * @cmd: command block to be used for cancelling the HCAM 1193 */ 1194 static void pmcraid_cancel_ldn(struct pmcraid_cmd *cmd) 1195 { 1196 pmcraid_cancel_hcam(cmd, 1197 PMCRAID_HCAM_CODE_LOG_DATA, 1198 pmcraid_cancel_ccn); 1199 } 1200 1201 /** 1202 * pmcraid_expose_resource - check if the resource can be exposed to OS 1203 * 1204 * @cfgte: pointer to configuration table entry of the resource 1205 * 1206 * Return value: 1207 * true if resource can be added to midlayer, false(0) otherwise 1208 */ 1209 static int pmcraid_expose_resource(struct pmcraid_config_table_entry *cfgte) 1210 { 1211 int retval = 0; 1212 1213 if (cfgte->resource_type == RES_TYPE_VSET) 1214 retval = ((cfgte->unique_flags1 & 0x80) == 0); 1215 else if (cfgte->resource_type == RES_TYPE_GSCSI) 1216 retval = (RES_BUS(cfgte->resource_address) != 1217 PMCRAID_VIRTUAL_ENCL_BUS_ID); 1218 return retval; 1219 } 1220 1221 /* attributes supported by pmcraid_event_family */ 1222 enum { 1223 PMCRAID_AEN_ATTR_UNSPEC, 1224 PMCRAID_AEN_ATTR_EVENT, 1225 __PMCRAID_AEN_ATTR_MAX, 1226 }; 1227 #define PMCRAID_AEN_ATTR_MAX (__PMCRAID_AEN_ATTR_MAX - 1) 1228 1229 /* commands supported by pmcraid_event_family */ 1230 enum { 1231 PMCRAID_AEN_CMD_UNSPEC, 1232 PMCRAID_AEN_CMD_EVENT, 1233 __PMCRAID_AEN_CMD_MAX, 1234 }; 1235 #define PMCRAID_AEN_CMD_MAX (__PMCRAID_AEN_CMD_MAX - 1) 1236 1237 static struct genl_family pmcraid_event_family = { 1238 .id = GENL_ID_GENERATE, 1239 .name = "pmcraid", 1240 .version = 1, 1241 .maxattr = PMCRAID_AEN_ATTR_MAX 1242 }; 1243 1244 /** 1245 * pmcraid_netlink_init - registers pmcraid_event_family 1246 * 1247 * Return value: 1248 * 0 if the pmcraid_event_family is successfully registered 1249 * with netlink generic, non-zero otherwise 1250 */ 1251 static int pmcraid_netlink_init(void) 1252 { 1253 int result; 1254 1255 result = genl_register_family(&pmcraid_event_family); 1256 1257 if (result) 1258 return result; 1259 1260 pmcraid_info("registered NETLINK GENERIC group: %d\n", 1261 pmcraid_event_family.id); 1262 1263 return result; 1264 } 1265 1266 /** 1267 * pmcraid_netlink_release - unregisters pmcraid_event_family 1268 * 1269 * Return value: 1270 * none 1271 */ 1272 static void pmcraid_netlink_release(void) 1273 { 1274 genl_unregister_family(&pmcraid_event_family); 1275 } 1276 1277 /** 1278 * pmcraid_notify_aen - sends event msg to user space application 1279 * @pinstance: pointer to adapter instance structure 1280 * @type: HCAM type 1281 * 1282 * Return value: 1283 * 0 if success, error value in case of any failure. 1284 */ 1285 static int pmcraid_notify_aen(struct pmcraid_instance *pinstance, u8 type) 1286 { 1287 struct sk_buff *skb; 1288 struct pmcraid_aen_msg *aen_msg; 1289 void *msg_header; 1290 int data_size, total_size; 1291 int result; 1292 1293 1294 if (type == PMCRAID_HCAM_CODE_LOG_DATA) { 1295 aen_msg = pinstance->ldn.msg; 1296 data_size = pinstance->ldn.hcam->data_len; 1297 } else { 1298 aen_msg = pinstance->ccn.msg; 1299 data_size = pinstance->ccn.hcam->data_len; 1300 } 1301 1302 data_size += sizeof(struct pmcraid_hcam_hdr); 1303 aen_msg->hostno = (pinstance->host->unique_id << 16 | 1304 MINOR(pinstance->cdev.dev)); 1305 aen_msg->length = data_size; 1306 data_size += sizeof(*aen_msg); 1307 1308 total_size = nla_total_size(data_size); 1309 skb = genlmsg_new(total_size, GFP_ATOMIC); 1310 1311 1312 if (!skb) { 1313 pmcraid_err("Failed to allocate aen data SKB of size: %x\n", 1314 total_size); 1315 return -ENOMEM; 1316 } 1317 1318 /* add the genetlink message header */ 1319 msg_header = genlmsg_put(skb, 0, 0, 1320 &pmcraid_event_family, 0, 1321 PMCRAID_AEN_CMD_EVENT); 1322 if (!msg_header) { 1323 pmcraid_err("failed to copy command details\n"); 1324 nlmsg_free(skb); 1325 return -ENOMEM; 1326 } 1327 1328 result = nla_put(skb, PMCRAID_AEN_ATTR_EVENT, data_size, aen_msg); 1329 1330 if (result) { 1331 pmcraid_err("failed to copy AEN attribute data \n"); 1332 nlmsg_free(skb); 1333 return -EINVAL; 1334 } 1335 1336 /* send genetlink multicast message to notify appplications */ 1337 result = genlmsg_end(skb, msg_header); 1338 1339 if (result < 0) { 1340 pmcraid_err("genlmsg_end failed\n"); 1341 nlmsg_free(skb); 1342 return result; 1343 } 1344 1345 result = 1346 genlmsg_multicast(skb, 0, pmcraid_event_family.id, GFP_ATOMIC); 1347 1348 /* If there are no listeners, genlmsg_multicast may return non-zero 1349 * value. 1350 */ 1351 if (result) 1352 pmcraid_info("failed to send %s event message %x!\n", 1353 type == PMCRAID_HCAM_CODE_LOG_DATA ? "LDN" : "CCN", 1354 result); 1355 return result; 1356 } 1357 1358 /** 1359 * pmcraid_handle_config_change - Handle a config change from the adapter 1360 * @pinstance: pointer to per adapter instance structure 1361 * 1362 * Return value: 1363 * none 1364 */ 1365 1366 static void pmcraid_handle_config_change(struct pmcraid_instance *pinstance) 1367 { 1368 struct pmcraid_config_table_entry *cfg_entry; 1369 struct pmcraid_hcam_ccn *ccn_hcam; 1370 struct pmcraid_cmd *cmd; 1371 struct pmcraid_cmd *cfgcmd; 1372 struct pmcraid_resource_entry *res = NULL; 1373 unsigned long lock_flags; 1374 unsigned long host_lock_flags; 1375 u32 new_entry = 1; 1376 u32 hidden_entry = 0; 1377 int rc; 1378 1379 ccn_hcam = (struct pmcraid_hcam_ccn *)pinstance->ccn.hcam; 1380 cfg_entry = &ccn_hcam->cfg_entry; 1381 1382 pmcraid_info 1383 ("CCN(%x): %x type: %x lost: %x flags: %x res: %x:%x:%x:%x\n", 1384 pinstance->ccn.hcam->ilid, 1385 pinstance->ccn.hcam->op_code, 1386 pinstance->ccn.hcam->notification_type, 1387 pinstance->ccn.hcam->notification_lost, 1388 pinstance->ccn.hcam->flags, 1389 pinstance->host->unique_id, 1390 RES_IS_VSET(*cfg_entry) ? PMCRAID_VSET_BUS_ID : 1391 (RES_IS_GSCSI(*cfg_entry) ? PMCRAID_PHYS_BUS_ID : 1392 RES_BUS(cfg_entry->resource_address)), 1393 RES_IS_VSET(*cfg_entry) ? cfg_entry->unique_flags1 : 1394 RES_TARGET(cfg_entry->resource_address), 1395 RES_LUN(cfg_entry->resource_address)); 1396 1397 1398 /* If this HCAM indicates a lost notification, read the config table */ 1399 if (pinstance->ccn.hcam->notification_lost) { 1400 cfgcmd = pmcraid_get_free_cmd(pinstance); 1401 if (cfgcmd) { 1402 pmcraid_info("lost CCN, reading config table\b"); 1403 pinstance->reinit_cfg_table = 1; 1404 pmcraid_querycfg(cfgcmd); 1405 } else { 1406 pmcraid_err("lost CCN, no free cmd for querycfg\n"); 1407 } 1408 goto out_notify_apps; 1409 } 1410 1411 /* If this resource is not going to be added to mid-layer, just notify 1412 * applications and return. If this notification is about hiding a VSET 1413 * resource, check if it was exposed already. 1414 */ 1415 if (pinstance->ccn.hcam->notification_type == 1416 NOTIFICATION_TYPE_ENTRY_CHANGED && 1417 cfg_entry->resource_type == RES_TYPE_VSET && 1418 cfg_entry->unique_flags1 & 0x80) { 1419 hidden_entry = 1; 1420 } else if (!pmcraid_expose_resource(cfg_entry)) 1421 goto out_notify_apps; 1422 1423 spin_lock_irqsave(&pinstance->resource_lock, lock_flags); 1424 list_for_each_entry(res, &pinstance->used_res_q, queue) { 1425 rc = memcmp(&res->cfg_entry.resource_address, 1426 &cfg_entry->resource_address, 1427 sizeof(cfg_entry->resource_address)); 1428 if (!rc) { 1429 new_entry = 0; 1430 break; 1431 } 1432 } 1433 1434 if (new_entry) { 1435 1436 if (hidden_entry) { 1437 spin_unlock_irqrestore(&pinstance->resource_lock, 1438 lock_flags); 1439 goto out_notify_apps; 1440 } 1441 1442 /* If there are more number of resources than what driver can 1443 * manage, do not notify the applications about the CCN. Just 1444 * ignore this notifications and re-register the same HCAM 1445 */ 1446 if (list_empty(&pinstance->free_res_q)) { 1447 spin_unlock_irqrestore(&pinstance->resource_lock, 1448 lock_flags); 1449 pmcraid_err("too many resources attached\n"); 1450 spin_lock_irqsave(pinstance->host->host_lock, 1451 host_lock_flags); 1452 pmcraid_send_hcam(pinstance, 1453 PMCRAID_HCAM_CODE_CONFIG_CHANGE); 1454 spin_unlock_irqrestore(pinstance->host->host_lock, 1455 host_lock_flags); 1456 return; 1457 } 1458 1459 res = list_entry(pinstance->free_res_q.next, 1460 struct pmcraid_resource_entry, queue); 1461 1462 list_del(&res->queue); 1463 res->scsi_dev = NULL; 1464 res->reset_progress = 0; 1465 list_add_tail(&res->queue, &pinstance->used_res_q); 1466 } 1467 1468 memcpy(&res->cfg_entry, cfg_entry, 1469 sizeof(struct pmcraid_config_table_entry)); 1470 1471 if (pinstance->ccn.hcam->notification_type == 1472 NOTIFICATION_TYPE_ENTRY_DELETED || hidden_entry) { 1473 if (res->scsi_dev) { 1474 res->cfg_entry.unique_flags1 &= 0x7F; 1475 res->change_detected = RES_CHANGE_DEL; 1476 res->cfg_entry.resource_handle = 1477 PMCRAID_INVALID_RES_HANDLE; 1478 schedule_work(&pinstance->worker_q); 1479 } else { 1480 /* This may be one of the non-exposed resources */ 1481 list_move_tail(&res->queue, &pinstance->free_res_q); 1482 } 1483 } else if (!res->scsi_dev) { 1484 res->change_detected = RES_CHANGE_ADD; 1485 schedule_work(&pinstance->worker_q); 1486 } 1487 spin_unlock_irqrestore(&pinstance->resource_lock, lock_flags); 1488 1489 out_notify_apps: 1490 1491 /* Notify configuration changes to registered applications.*/ 1492 if (!pmcraid_disable_aen) 1493 pmcraid_notify_aen(pinstance, PMCRAID_HCAM_CODE_CONFIG_CHANGE); 1494 1495 cmd = pmcraid_init_hcam(pinstance, PMCRAID_HCAM_CODE_CONFIG_CHANGE); 1496 if (cmd) 1497 pmcraid_send_hcam_cmd(cmd); 1498 } 1499 1500 /** 1501 * pmcraid_get_error_info - return error string for an ioasc 1502 * @ioasc: ioasc code 1503 * Return Value 1504 * none 1505 */ 1506 static struct pmcraid_ioasc_error *pmcraid_get_error_info(u32 ioasc) 1507 { 1508 int i; 1509 for (i = 0; i < ARRAY_SIZE(pmcraid_ioasc_error_table); i++) { 1510 if (pmcraid_ioasc_error_table[i].ioasc_code == ioasc) 1511 return &pmcraid_ioasc_error_table[i]; 1512 } 1513 return NULL; 1514 } 1515 1516 /** 1517 * pmcraid_ioasc_logger - log IOASC information based user-settings 1518 * @ioasc: ioasc code 1519 * @cmd: pointer to command that resulted in 'ioasc' 1520 */ 1521 void pmcraid_ioasc_logger(u32 ioasc, struct pmcraid_cmd *cmd) 1522 { 1523 struct pmcraid_ioasc_error *error_info = pmcraid_get_error_info(ioasc); 1524 1525 if (error_info == NULL || 1526 cmd->drv_inst->current_log_level < error_info->log_level) 1527 return; 1528 1529 /* log the error string */ 1530 pmcraid_err("cmd [%d] for resource %x failed with %x(%s)\n", 1531 cmd->ioa_cb->ioarcb.cdb[0], 1532 cmd->ioa_cb->ioarcb.resource_handle, 1533 le32_to_cpu(ioasc), error_info->error_string); 1534 } 1535 1536 /** 1537 * pmcraid_handle_error_log - Handle a config change (error log) from the IOA 1538 * 1539 * @pinstance: pointer to per adapter instance structure 1540 * 1541 * Return value: 1542 * none 1543 */ 1544 static void pmcraid_handle_error_log(struct pmcraid_instance *pinstance) 1545 { 1546 struct pmcraid_hcam_ldn *hcam_ldn; 1547 u32 ioasc; 1548 1549 hcam_ldn = (struct pmcraid_hcam_ldn *)pinstance->ldn.hcam; 1550 1551 pmcraid_info 1552 ("LDN(%x): %x type: %x lost: %x flags: %x overlay id: %x\n", 1553 pinstance->ldn.hcam->ilid, 1554 pinstance->ldn.hcam->op_code, 1555 pinstance->ldn.hcam->notification_type, 1556 pinstance->ldn.hcam->notification_lost, 1557 pinstance->ldn.hcam->flags, 1558 pinstance->ldn.hcam->overlay_id); 1559 1560 /* log only the errors, no need to log informational log entries */ 1561 if (pinstance->ldn.hcam->notification_type != 1562 NOTIFICATION_TYPE_ERROR_LOG) 1563 return; 1564 1565 if (pinstance->ldn.hcam->notification_lost == 1566 HOSTRCB_NOTIFICATIONS_LOST) 1567 dev_info(&pinstance->pdev->dev, "Error notifications lost\n"); 1568 1569 ioasc = le32_to_cpu(hcam_ldn->error_log.fd_ioasc); 1570 1571 if (ioasc == PMCRAID_IOASC_UA_BUS_WAS_RESET || 1572 ioasc == PMCRAID_IOASC_UA_BUS_WAS_RESET_BY_OTHER) { 1573 dev_info(&pinstance->pdev->dev, 1574 "UnitAttention due to IOA Bus Reset\n"); 1575 scsi_report_bus_reset( 1576 pinstance->host, 1577 RES_BUS(hcam_ldn->error_log.fd_ra)); 1578 } 1579 1580 return; 1581 } 1582 1583 /** 1584 * pmcraid_process_ccn - Op done function for a CCN. 1585 * @cmd: pointer to command struct 1586 * 1587 * This function is the op done function for a configuration 1588 * change notification 1589 * 1590 * Return value: 1591 * none 1592 */ 1593 static void pmcraid_process_ccn(struct pmcraid_cmd *cmd) 1594 { 1595 struct pmcraid_instance *pinstance = cmd->drv_inst; 1596 u32 ioasc = le32_to_cpu(cmd->ioa_cb->ioasa.ioasc); 1597 unsigned long lock_flags; 1598 1599 pinstance->ccn.cmd = NULL; 1600 pmcraid_return_cmd(cmd); 1601 1602 /* If driver initiated IOA reset happened while this hcam was pending 1603 * with IOA, or IOA bringdown sequence is in progress, no need to 1604 * re-register the hcam 1605 */ 1606 if (ioasc == PMCRAID_IOASC_IOA_WAS_RESET || 1607 atomic_read(&pinstance->ccn.ignore) == 1) { 1608 return; 1609 } else if (ioasc) { 1610 dev_info(&pinstance->pdev->dev, 1611 "Host RCB (CCN) failed with IOASC: 0x%08X\n", ioasc); 1612 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 1613 pmcraid_send_hcam(pinstance, PMCRAID_HCAM_CODE_CONFIG_CHANGE); 1614 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 1615 } else { 1616 pmcraid_handle_config_change(pinstance); 1617 } 1618 } 1619 1620 /** 1621 * pmcraid_process_ldn - op done function for an LDN 1622 * @cmd: pointer to command block 1623 * 1624 * Return value 1625 * none 1626 */ 1627 static void pmcraid_initiate_reset(struct pmcraid_instance *); 1628 1629 static void pmcraid_process_ldn(struct pmcraid_cmd *cmd) 1630 { 1631 struct pmcraid_instance *pinstance = cmd->drv_inst; 1632 struct pmcraid_hcam_ldn *ldn_hcam = 1633 (struct pmcraid_hcam_ldn *)pinstance->ldn.hcam; 1634 u32 ioasc = le32_to_cpu(cmd->ioa_cb->ioasa.ioasc); 1635 u32 fd_ioasc = le32_to_cpu(ldn_hcam->error_log.fd_ioasc); 1636 unsigned long lock_flags; 1637 1638 /* return the command block back to freepool */ 1639 pinstance->ldn.cmd = NULL; 1640 pmcraid_return_cmd(cmd); 1641 1642 /* If driver initiated IOA reset happened while this hcam was pending 1643 * with IOA, no need to re-register the hcam as reset engine will do it 1644 * once reset sequence is complete 1645 */ 1646 if (ioasc == PMCRAID_IOASC_IOA_WAS_RESET || 1647 atomic_read(&pinstance->ccn.ignore) == 1) { 1648 return; 1649 } else if (!ioasc) { 1650 pmcraid_handle_error_log(pinstance); 1651 if (fd_ioasc == PMCRAID_IOASC_NR_IOA_RESET_REQUIRED) { 1652 spin_lock_irqsave(pinstance->host->host_lock, 1653 lock_flags); 1654 pmcraid_initiate_reset(pinstance); 1655 spin_unlock_irqrestore(pinstance->host->host_lock, 1656 lock_flags); 1657 return; 1658 } 1659 } else { 1660 dev_info(&pinstance->pdev->dev, 1661 "Host RCB(LDN) failed with IOASC: 0x%08X\n", ioasc); 1662 } 1663 /* send netlink message for HCAM notification if enabled */ 1664 if (!pmcraid_disable_aen) 1665 pmcraid_notify_aen(pinstance, PMCRAID_HCAM_CODE_LOG_DATA); 1666 1667 cmd = pmcraid_init_hcam(pinstance, PMCRAID_HCAM_CODE_LOG_DATA); 1668 if (cmd) 1669 pmcraid_send_hcam_cmd(cmd); 1670 } 1671 1672 /** 1673 * pmcraid_register_hcams - register HCAMs for CCN and LDN 1674 * 1675 * @pinstance: pointer per adapter instance structure 1676 * 1677 * Return Value 1678 * none 1679 */ 1680 static void pmcraid_register_hcams(struct pmcraid_instance *pinstance) 1681 { 1682 pmcraid_send_hcam(pinstance, PMCRAID_HCAM_CODE_CONFIG_CHANGE); 1683 pmcraid_send_hcam(pinstance, PMCRAID_HCAM_CODE_LOG_DATA); 1684 } 1685 1686 /** 1687 * pmcraid_unregister_hcams - cancel HCAMs registered already 1688 * @cmd: pointer to command used as part of reset sequence 1689 */ 1690 static void pmcraid_unregister_hcams(struct pmcraid_cmd *cmd) 1691 { 1692 struct pmcraid_instance *pinstance = cmd->drv_inst; 1693 1694 /* During IOA bringdown, HCAM gets fired and tasklet proceeds with 1695 * handling hcam response though it is not necessary. In order to 1696 * prevent this, set 'ignore', so that bring-down sequence doesn't 1697 * re-send any more hcams 1698 */ 1699 atomic_set(&pinstance->ccn.ignore, 1); 1700 atomic_set(&pinstance->ldn.ignore, 1); 1701 1702 /* If adapter reset was forced as part of runtime reset sequence, 1703 * start the reset sequence. 1704 */ 1705 if (pinstance->force_ioa_reset && !pinstance->ioa_bringdown) { 1706 pinstance->force_ioa_reset = 0; 1707 pinstance->ioa_state = IOA_STATE_IN_RESET_ALERT; 1708 pmcraid_reset_alert(cmd); 1709 return; 1710 } 1711 1712 /* Driver tries to cancel HCAMs by sending ABORT TASK for each HCAM 1713 * one after the other. So CCN cancellation will be triggered by 1714 * pmcraid_cancel_ldn itself. 1715 */ 1716 pmcraid_cancel_ldn(cmd); 1717 } 1718 1719 /** 1720 * pmcraid_reset_enable_ioa - re-enable IOA after a hard reset 1721 * @pinstance: pointer to adapter instance structure 1722 * Return Value 1723 * 1 if TRANSITION_TO_OPERATIONAL is active, otherwise 0 1724 */ 1725 static void pmcraid_reinit_buffers(struct pmcraid_instance *); 1726 1727 static int pmcraid_reset_enable_ioa(struct pmcraid_instance *pinstance) 1728 { 1729 u32 intrs; 1730 1731 pmcraid_reinit_buffers(pinstance); 1732 intrs = pmcraid_read_interrupts(pinstance); 1733 1734 pmcraid_enable_interrupts(pinstance, PMCRAID_PCI_INTERRUPTS); 1735 1736 if (intrs & INTRS_TRANSITION_TO_OPERATIONAL) { 1737 iowrite32(INTRS_TRANSITION_TO_OPERATIONAL, 1738 pinstance->int_regs.ioa_host_interrupt_mask_reg); 1739 iowrite32(INTRS_TRANSITION_TO_OPERATIONAL, 1740 pinstance->int_regs.ioa_host_interrupt_clr_reg); 1741 return 1; 1742 } else { 1743 return 0; 1744 } 1745 } 1746 1747 /** 1748 * pmcraid_soft_reset - performs a soft reset and makes IOA become ready 1749 * @cmd : pointer to reset command block 1750 * 1751 * Return Value 1752 * none 1753 */ 1754 static void pmcraid_soft_reset(struct pmcraid_cmd *cmd) 1755 { 1756 struct pmcraid_instance *pinstance = cmd->drv_inst; 1757 u32 int_reg; 1758 u32 doorbell; 1759 1760 /* There will be an interrupt when Transition to Operational bit is 1761 * set so tasklet would execute next reset task. The timeout handler 1762 * would re-initiate a reset 1763 */ 1764 cmd->cmd_done = pmcraid_ioa_reset; 1765 cmd->timer.data = (unsigned long)cmd; 1766 cmd->timer.expires = jiffies + 1767 msecs_to_jiffies(PMCRAID_TRANSOP_TIMEOUT); 1768 cmd->timer.function = (void (*)(unsigned long))pmcraid_timeout_handler; 1769 1770 if (!timer_pending(&cmd->timer)) 1771 add_timer(&cmd->timer); 1772 1773 /* Enable destructive diagnostics on IOA if it is not yet in 1774 * operational state 1775 */ 1776 doorbell = DOORBELL_RUNTIME_RESET | 1777 DOORBELL_ENABLE_DESTRUCTIVE_DIAGS; 1778 1779 iowrite32(doorbell, pinstance->int_regs.host_ioa_interrupt_reg); 1780 int_reg = ioread32(pinstance->int_regs.ioa_host_interrupt_reg); 1781 pmcraid_info("Waiting for IOA to become operational %x:%x\n", 1782 ioread32(pinstance->int_regs.host_ioa_interrupt_reg), 1783 int_reg); 1784 } 1785 1786 /** 1787 * pmcraid_get_dump - retrieves IOA dump in case of Unit Check interrupt 1788 * 1789 * @pinstance: pointer to adapter instance structure 1790 * 1791 * Return Value 1792 * none 1793 */ 1794 static void pmcraid_get_dump(struct pmcraid_instance *pinstance) 1795 { 1796 pmcraid_info("%s is not yet implemented\n", __func__); 1797 } 1798 1799 /** 1800 * pmcraid_fail_outstanding_cmds - Fails all outstanding ops. 1801 * @pinstance: pointer to adapter instance structure 1802 * 1803 * This function fails all outstanding ops. If they are submitted to IOA 1804 * already, it sends cancel all messages if IOA is still accepting IOARCBs, 1805 * otherwise just completes the commands and returns the cmd blocks to free 1806 * pool. 1807 * 1808 * Return value: 1809 * none 1810 */ 1811 static void pmcraid_fail_outstanding_cmds(struct pmcraid_instance *pinstance) 1812 { 1813 struct pmcraid_cmd *cmd, *temp; 1814 unsigned long lock_flags; 1815 1816 /* pending command list is protected by pending_pool_lock. Its 1817 * traversal must be done as within this lock 1818 */ 1819 spin_lock_irqsave(&pinstance->pending_pool_lock, lock_flags); 1820 list_for_each_entry_safe(cmd, temp, &pinstance->pending_cmd_pool, 1821 free_list) { 1822 list_del(&cmd->free_list); 1823 spin_unlock_irqrestore(&pinstance->pending_pool_lock, 1824 lock_flags); 1825 cmd->ioa_cb->ioasa.ioasc = 1826 cpu_to_le32(PMCRAID_IOASC_IOA_WAS_RESET); 1827 cmd->ioa_cb->ioasa.ilid = 1828 cpu_to_be32(PMCRAID_DRIVER_ILID); 1829 1830 /* In case the command timer is still running */ 1831 del_timer(&cmd->timer); 1832 1833 /* If this is an IO command, complete it by invoking scsi_done 1834 * function. If this is one of the internal commands other 1835 * than pmcraid_ioa_reset and HCAM commands invoke cmd_done to 1836 * complete it 1837 */ 1838 if (cmd->scsi_cmd) { 1839 1840 struct scsi_cmnd *scsi_cmd = cmd->scsi_cmd; 1841 __le32 resp = cmd->ioa_cb->ioarcb.response_handle; 1842 1843 scsi_cmd->result |= DID_ERROR << 16; 1844 1845 scsi_dma_unmap(scsi_cmd); 1846 pmcraid_return_cmd(cmd); 1847 1848 pmcraid_info("failing(%d) CDB[0] = %x result: %x\n", 1849 le32_to_cpu(resp) >> 2, 1850 cmd->ioa_cb->ioarcb.cdb[0], 1851 scsi_cmd->result); 1852 scsi_cmd->scsi_done(scsi_cmd); 1853 } else if (cmd->cmd_done == pmcraid_internal_done || 1854 cmd->cmd_done == pmcraid_erp_done) { 1855 cmd->cmd_done(cmd); 1856 } else if (cmd->cmd_done != pmcraid_ioa_reset) { 1857 pmcraid_return_cmd(cmd); 1858 } 1859 1860 atomic_dec(&pinstance->outstanding_cmds); 1861 spin_lock_irqsave(&pinstance->pending_pool_lock, lock_flags); 1862 } 1863 1864 spin_unlock_irqrestore(&pinstance->pending_pool_lock, lock_flags); 1865 } 1866 1867 /** 1868 * pmcraid_ioa_reset - Implementation of IOA reset logic 1869 * 1870 * @cmd: pointer to the cmd block to be used for entire reset process 1871 * 1872 * This function executes most of the steps required for IOA reset. This gets 1873 * called by user threads (modprobe/insmod/rmmod) timer, tasklet and midlayer's 1874 * 'eh_' thread. Access to variables used for controling the reset sequence is 1875 * synchronized using host lock. Various functions called during reset process 1876 * would make use of a single command block, pointer to which is also stored in 1877 * adapter instance structure. 1878 * 1879 * Return Value 1880 * None 1881 */ 1882 static void pmcraid_ioa_reset(struct pmcraid_cmd *cmd) 1883 { 1884 struct pmcraid_instance *pinstance = cmd->drv_inst; 1885 u8 reset_complete = 0; 1886 1887 pinstance->ioa_reset_in_progress = 1; 1888 1889 if (pinstance->reset_cmd != cmd) { 1890 pmcraid_err("reset is called with different command block\n"); 1891 pinstance->reset_cmd = cmd; 1892 } 1893 1894 pmcraid_info("reset_engine: state = %d, command = %p\n", 1895 pinstance->ioa_state, cmd); 1896 1897 switch (pinstance->ioa_state) { 1898 1899 case IOA_STATE_DEAD: 1900 /* If IOA is offline, whatever may be the reset reason, just 1901 * return. callers might be waiting on the reset wait_q, wake 1902 * up them 1903 */ 1904 pmcraid_err("IOA is offline no reset is possible\n"); 1905 reset_complete = 1; 1906 break; 1907 1908 case IOA_STATE_IN_BRINGDOWN: 1909 /* we enter here, once ioa shutdown command is processed by IOA 1910 * Alert IOA for a possible reset. If reset alert fails, IOA 1911 * goes through hard-reset 1912 */ 1913 pmcraid_disable_interrupts(pinstance, ~0); 1914 pinstance->ioa_state = IOA_STATE_IN_RESET_ALERT; 1915 pmcraid_reset_alert(cmd); 1916 break; 1917 1918 case IOA_STATE_UNKNOWN: 1919 /* We may be called during probe or resume. Some pre-processing 1920 * is required for prior to reset 1921 */ 1922 scsi_block_requests(pinstance->host); 1923 1924 /* If asked to reset while IOA was processing responses or 1925 * there are any error responses then IOA may require 1926 * hard-reset. 1927 */ 1928 if (pinstance->ioa_hard_reset == 0) { 1929 if (ioread32(pinstance->ioa_status) & 1930 INTRS_TRANSITION_TO_OPERATIONAL) { 1931 pmcraid_info("sticky bit set, bring-up\n"); 1932 pinstance->ioa_state = IOA_STATE_IN_BRINGUP; 1933 pmcraid_reinit_cmdblk(cmd); 1934 pmcraid_identify_hrrq(cmd); 1935 } else { 1936 pinstance->ioa_state = IOA_STATE_IN_SOFT_RESET; 1937 pmcraid_soft_reset(cmd); 1938 } 1939 } else { 1940 /* Alert IOA of a possible reset and wait for critical 1941 * operation in progress bit to reset 1942 */ 1943 pinstance->ioa_state = IOA_STATE_IN_RESET_ALERT; 1944 pmcraid_reset_alert(cmd); 1945 } 1946 break; 1947 1948 case IOA_STATE_IN_RESET_ALERT: 1949 /* If critical operation in progress bit is reset or wait gets 1950 * timed out, reset proceeds with starting BIST on the IOA. 1951 * pmcraid_ioa_hard_reset keeps a count of reset attempts. If 1952 * they are 3 or more, reset engine marks IOA dead and returns 1953 */ 1954 pinstance->ioa_state = IOA_STATE_IN_HARD_RESET; 1955 pmcraid_start_bist(cmd); 1956 break; 1957 1958 case IOA_STATE_IN_HARD_RESET: 1959 pinstance->ioa_reset_attempts++; 1960 1961 /* retry reset if we haven't reached maximum allowed limit */ 1962 if (pinstance->ioa_reset_attempts > PMCRAID_RESET_ATTEMPTS) { 1963 pinstance->ioa_reset_attempts = 0; 1964 pmcraid_err("IOA didn't respond marking it as dead\n"); 1965 pinstance->ioa_state = IOA_STATE_DEAD; 1966 reset_complete = 1; 1967 break; 1968 } 1969 1970 /* Once either bist or pci reset is done, restore PCI config 1971 * space. If this fails, proceed with hard reset again 1972 */ 1973 1974 if (pci_restore_state(pinstance->pdev)) { 1975 pmcraid_info("config-space error resetting again\n"); 1976 pinstance->ioa_state = IOA_STATE_IN_RESET_ALERT; 1977 pmcraid_reset_alert(cmd); 1978 break; 1979 } 1980 1981 /* fail all pending commands */ 1982 pmcraid_fail_outstanding_cmds(pinstance); 1983 1984 /* check if unit check is active, if so extract dump */ 1985 if (pinstance->ioa_unit_check) { 1986 pmcraid_info("unit check is active\n"); 1987 pinstance->ioa_unit_check = 0; 1988 pmcraid_get_dump(pinstance); 1989 pinstance->ioa_reset_attempts--; 1990 pinstance->ioa_state = IOA_STATE_IN_RESET_ALERT; 1991 pmcraid_reset_alert(cmd); 1992 break; 1993 } 1994 1995 /* if the reset reason is to bring-down the ioa, we might be 1996 * done with the reset restore pci_config_space and complete 1997 * the reset 1998 */ 1999 if (pinstance->ioa_bringdown) { 2000 pmcraid_info("bringing down the adapter\n"); 2001 pinstance->ioa_shutdown_type = SHUTDOWN_NONE; 2002 pinstance->ioa_bringdown = 0; 2003 pinstance->ioa_state = IOA_STATE_UNKNOWN; 2004 reset_complete = 1; 2005 } else { 2006 /* bring-up IOA, so proceed with soft reset 2007 * Reinitialize hrrq_buffers and their indices also 2008 * enable interrupts after a pci_restore_state 2009 */ 2010 if (pmcraid_reset_enable_ioa(pinstance)) { 2011 pinstance->ioa_state = IOA_STATE_IN_BRINGUP; 2012 pmcraid_info("bringing up the adapter\n"); 2013 pmcraid_reinit_cmdblk(cmd); 2014 pmcraid_identify_hrrq(cmd); 2015 } else { 2016 pinstance->ioa_state = IOA_STATE_IN_SOFT_RESET; 2017 pmcraid_soft_reset(cmd); 2018 } 2019 } 2020 break; 2021 2022 case IOA_STATE_IN_SOFT_RESET: 2023 /* TRANSITION TO OPERATIONAL is on so start initialization 2024 * sequence 2025 */ 2026 pmcraid_info("In softreset proceeding with bring-up\n"); 2027 pinstance->ioa_state = IOA_STATE_IN_BRINGUP; 2028 2029 /* Initialization commands start with HRRQ identification. From 2030 * now on tasklet completes most of the commands as IOA is up 2031 * and intrs are enabled 2032 */ 2033 pmcraid_identify_hrrq(cmd); 2034 break; 2035 2036 case IOA_STATE_IN_BRINGUP: 2037 /* we are done with bringing up of IOA, change the ioa_state to 2038 * operational and wake up any waiters 2039 */ 2040 pinstance->ioa_state = IOA_STATE_OPERATIONAL; 2041 reset_complete = 1; 2042 break; 2043 2044 case IOA_STATE_OPERATIONAL: 2045 default: 2046 /* When IOA is operational and a reset is requested, check for 2047 * the reset reason. If reset is to bring down IOA, unregister 2048 * HCAMs and initiate shutdown; if adapter reset is forced then 2049 * restart reset sequence again 2050 */ 2051 if (pinstance->ioa_shutdown_type == SHUTDOWN_NONE && 2052 pinstance->force_ioa_reset == 0) { 2053 reset_complete = 1; 2054 } else { 2055 if (pinstance->ioa_shutdown_type != SHUTDOWN_NONE) 2056 pinstance->ioa_state = IOA_STATE_IN_BRINGDOWN; 2057 pmcraid_reinit_cmdblk(cmd); 2058 pmcraid_unregister_hcams(cmd); 2059 } 2060 break; 2061 } 2062 2063 /* reset will be completed if ioa_state is either DEAD or UNKNOWN or 2064 * OPERATIONAL. Reset all control variables used during reset, wake up 2065 * any waiting threads and let the SCSI mid-layer send commands. Note 2066 * that host_lock must be held before invoking scsi_report_bus_reset. 2067 */ 2068 if (reset_complete) { 2069 pinstance->ioa_reset_in_progress = 0; 2070 pinstance->ioa_reset_attempts = 0; 2071 pinstance->reset_cmd = NULL; 2072 pinstance->ioa_shutdown_type = SHUTDOWN_NONE; 2073 pinstance->ioa_bringdown = 0; 2074 pmcraid_return_cmd(cmd); 2075 2076 /* If target state is to bring up the adapter, proceed with 2077 * hcam registration and resource exposure to mid-layer. 2078 */ 2079 if (pinstance->ioa_state == IOA_STATE_OPERATIONAL) 2080 pmcraid_register_hcams(pinstance); 2081 2082 wake_up_all(&pinstance->reset_wait_q); 2083 } 2084 2085 return; 2086 } 2087 2088 /** 2089 * pmcraid_initiate_reset - initiates reset sequence. This is called from 2090 * ISR/tasklet during error interrupts including IOA unit check. If reset 2091 * is already in progress, it just returns, otherwise initiates IOA reset 2092 * to bring IOA up to operational state. 2093 * 2094 * @pinstance: pointer to adapter instance structure 2095 * 2096 * Return value 2097 * none 2098 */ 2099 static void pmcraid_initiate_reset(struct pmcraid_instance *pinstance) 2100 { 2101 struct pmcraid_cmd *cmd; 2102 2103 /* If the reset is already in progress, just return, otherwise start 2104 * reset sequence and return 2105 */ 2106 if (!pinstance->ioa_reset_in_progress) { 2107 scsi_block_requests(pinstance->host); 2108 cmd = pmcraid_get_free_cmd(pinstance); 2109 2110 if (cmd == NULL) { 2111 pmcraid_err("no cmnd blocks for initiate_reset\n"); 2112 return; 2113 } 2114 2115 pinstance->ioa_shutdown_type = SHUTDOWN_NONE; 2116 pinstance->reset_cmd = cmd; 2117 pinstance->force_ioa_reset = 1; 2118 pmcraid_ioa_reset(cmd); 2119 } 2120 } 2121 2122 /** 2123 * pmcraid_reset_reload - utility routine for doing IOA reset either to bringup 2124 * or bringdown IOA 2125 * @pinstance: pointer adapter instance structure 2126 * @shutdown_type: shutdown type to be used NONE, NORMAL or ABRREV 2127 * @target_state: expected target state after reset 2128 * 2129 * Note: This command initiates reset and waits for its completion. Hence this 2130 * should not be called from isr/timer/tasklet functions (timeout handlers, 2131 * error response handlers and interrupt handlers). 2132 * 2133 * Return Value 2134 * 1 in case ioa_state is not target_state, 0 otherwise. 2135 */ 2136 static int pmcraid_reset_reload( 2137 struct pmcraid_instance *pinstance, 2138 u8 shutdown_type, 2139 u8 target_state 2140 ) 2141 { 2142 struct pmcraid_cmd *reset_cmd = NULL; 2143 unsigned long lock_flags; 2144 int reset = 1; 2145 2146 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 2147 2148 if (pinstance->ioa_reset_in_progress) { 2149 pmcraid_info("reset_reload: reset is already in progress\n"); 2150 2151 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 2152 2153 wait_event(pinstance->reset_wait_q, 2154 !pinstance->ioa_reset_in_progress); 2155 2156 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 2157 2158 if (pinstance->ioa_state == IOA_STATE_DEAD) { 2159 spin_unlock_irqrestore(pinstance->host->host_lock, 2160 lock_flags); 2161 pmcraid_info("reset_reload: IOA is dead\n"); 2162 return reset; 2163 } else if (pinstance->ioa_state == target_state) { 2164 reset = 0; 2165 } 2166 } 2167 2168 if (reset) { 2169 pmcraid_info("reset_reload: proceeding with reset\n"); 2170 scsi_block_requests(pinstance->host); 2171 reset_cmd = pmcraid_get_free_cmd(pinstance); 2172 2173 if (reset_cmd == NULL) { 2174 pmcraid_err("no free cmnd for reset_reload\n"); 2175 spin_unlock_irqrestore(pinstance->host->host_lock, 2176 lock_flags); 2177 return reset; 2178 } 2179 2180 if (shutdown_type == SHUTDOWN_NORMAL) 2181 pinstance->ioa_bringdown = 1; 2182 2183 pinstance->ioa_shutdown_type = shutdown_type; 2184 pinstance->reset_cmd = reset_cmd; 2185 pinstance->force_ioa_reset = reset; 2186 pmcraid_info("reset_reload: initiating reset\n"); 2187 pmcraid_ioa_reset(reset_cmd); 2188 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 2189 pmcraid_info("reset_reload: waiting for reset to complete\n"); 2190 wait_event(pinstance->reset_wait_q, 2191 !pinstance->ioa_reset_in_progress); 2192 2193 pmcraid_info("reset_reload: reset is complete !! \n"); 2194 scsi_unblock_requests(pinstance->host); 2195 if (pinstance->ioa_state == target_state) 2196 reset = 0; 2197 } 2198 2199 return reset; 2200 } 2201 2202 /** 2203 * pmcraid_reset_bringdown - wrapper over pmcraid_reset_reload to bringdown IOA 2204 * 2205 * @pinstance: pointer to adapter instance structure 2206 * 2207 * Return Value 2208 * whatever is returned from pmcraid_reset_reload 2209 */ 2210 static int pmcraid_reset_bringdown(struct pmcraid_instance *pinstance) 2211 { 2212 return pmcraid_reset_reload(pinstance, 2213 SHUTDOWN_NORMAL, 2214 IOA_STATE_UNKNOWN); 2215 } 2216 2217 /** 2218 * pmcraid_reset_bringup - wrapper over pmcraid_reset_reload to bring up IOA 2219 * 2220 * @pinstance: pointer to adapter instance structure 2221 * 2222 * Return Value 2223 * whatever is returned from pmcraid_reset_reload 2224 */ 2225 static int pmcraid_reset_bringup(struct pmcraid_instance *pinstance) 2226 { 2227 return pmcraid_reset_reload(pinstance, 2228 SHUTDOWN_NONE, 2229 IOA_STATE_OPERATIONAL); 2230 } 2231 2232 /** 2233 * pmcraid_request_sense - Send request sense to a device 2234 * @cmd: pmcraid command struct 2235 * 2236 * This function sends a request sense to a device as a result of a check 2237 * condition. This method re-uses the same command block that failed earlier. 2238 */ 2239 static void pmcraid_request_sense(struct pmcraid_cmd *cmd) 2240 { 2241 struct pmcraid_ioarcb *ioarcb = &cmd->ioa_cb->ioarcb; 2242 struct pmcraid_ioadl_desc *ioadl = ioarcb->add_data.u.ioadl; 2243 2244 /* allocate DMAable memory for sense buffers */ 2245 cmd->sense_buffer = pci_alloc_consistent(cmd->drv_inst->pdev, 2246 SCSI_SENSE_BUFFERSIZE, 2247 &cmd->sense_buffer_dma); 2248 2249 if (cmd->sense_buffer == NULL) { 2250 pmcraid_err 2251 ("couldn't allocate sense buffer for request sense\n"); 2252 pmcraid_erp_done(cmd); 2253 return; 2254 } 2255 2256 /* re-use the command block */ 2257 memset(&cmd->ioa_cb->ioasa, 0, sizeof(struct pmcraid_ioasa)); 2258 memset(ioarcb->cdb, 0, PMCRAID_MAX_CDB_LEN); 2259 ioarcb->request_flags0 = (SYNC_COMPLETE | 2260 NO_LINK_DESCS | 2261 INHIBIT_UL_CHECK); 2262 ioarcb->request_type = REQ_TYPE_SCSI; 2263 ioarcb->cdb[0] = REQUEST_SENSE; 2264 ioarcb->cdb[4] = SCSI_SENSE_BUFFERSIZE; 2265 2266 ioarcb->ioadl_bus_addr = cpu_to_le64((cmd->ioa_cb_bus_addr) + 2267 offsetof(struct pmcraid_ioarcb, 2268 add_data.u.ioadl[0])); 2269 ioarcb->ioadl_length = cpu_to_le32(sizeof(struct pmcraid_ioadl_desc)); 2270 2271 ioarcb->data_transfer_length = cpu_to_le32(SCSI_SENSE_BUFFERSIZE); 2272 2273 ioadl->address = cpu_to_le64(cmd->sense_buffer_dma); 2274 ioadl->data_len = cpu_to_le32(SCSI_SENSE_BUFFERSIZE); 2275 ioadl->flags = IOADL_FLAGS_LAST_DESC; 2276 2277 /* request sense might be called as part of error response processing 2278 * which runs in tasklets context. It is possible that mid-layer might 2279 * schedule queuecommand during this time, hence, writting to IOARRIN 2280 * must be protect by host_lock 2281 */ 2282 pmcraid_send_cmd(cmd, pmcraid_erp_done, 2283 PMCRAID_REQUEST_SENSE_TIMEOUT, 2284 pmcraid_timeout_handler); 2285 } 2286 2287 /** 2288 * pmcraid_cancel_all - cancel all outstanding IOARCBs as part of error recovery 2289 * @cmd: command that failed 2290 * @sense: true if request_sense is required after cancel all 2291 * 2292 * This function sends a cancel all to a device to clear the queue. 2293 */ 2294 static void pmcraid_cancel_all(struct pmcraid_cmd *cmd, u32 sense) 2295 { 2296 struct scsi_cmnd *scsi_cmd = cmd->scsi_cmd; 2297 struct pmcraid_ioarcb *ioarcb = &cmd->ioa_cb->ioarcb; 2298 struct pmcraid_resource_entry *res = scsi_cmd->device->hostdata; 2299 void (*cmd_done) (struct pmcraid_cmd *) = sense ? pmcraid_erp_done 2300 : pmcraid_request_sense; 2301 2302 memset(ioarcb->cdb, 0, PMCRAID_MAX_CDB_LEN); 2303 ioarcb->request_flags0 = SYNC_OVERRIDE; 2304 ioarcb->request_type = REQ_TYPE_IOACMD; 2305 ioarcb->cdb[0] = PMCRAID_CANCEL_ALL_REQUESTS; 2306 2307 if (RES_IS_GSCSI(res->cfg_entry)) 2308 ioarcb->cdb[1] = PMCRAID_SYNC_COMPLETE_AFTER_CANCEL; 2309 2310 ioarcb->ioadl_bus_addr = 0; 2311 ioarcb->ioadl_length = 0; 2312 ioarcb->data_transfer_length = 0; 2313 ioarcb->ioarcb_bus_addr &= (~0x1FULL); 2314 2315 /* writing to IOARRIN must be protected by host_lock, as mid-layer 2316 * schedule queuecommand while we are doing this 2317 */ 2318 pmcraid_send_cmd(cmd, cmd_done, 2319 PMCRAID_REQUEST_SENSE_TIMEOUT, 2320 pmcraid_timeout_handler); 2321 } 2322 2323 /** 2324 * pmcraid_frame_auto_sense: frame fixed format sense information 2325 * 2326 * @cmd: pointer to failing command block 2327 * 2328 * Return value 2329 * none 2330 */ 2331 static void pmcraid_frame_auto_sense(struct pmcraid_cmd *cmd) 2332 { 2333 u8 *sense_buf = cmd->scsi_cmd->sense_buffer; 2334 struct pmcraid_resource_entry *res = cmd->scsi_cmd->device->hostdata; 2335 struct pmcraid_ioasa *ioasa = &cmd->ioa_cb->ioasa; 2336 u32 ioasc = le32_to_cpu(ioasa->ioasc); 2337 u32 failing_lba = 0; 2338 2339 memset(sense_buf, 0, SCSI_SENSE_BUFFERSIZE); 2340 cmd->scsi_cmd->result = SAM_STAT_CHECK_CONDITION; 2341 2342 if (RES_IS_VSET(res->cfg_entry) && 2343 ioasc == PMCRAID_IOASC_ME_READ_ERROR_NO_REALLOC && 2344 ioasa->u.vset.failing_lba_hi != 0) { 2345 2346 sense_buf[0] = 0x72; 2347 sense_buf[1] = PMCRAID_IOASC_SENSE_KEY(ioasc); 2348 sense_buf[2] = PMCRAID_IOASC_SENSE_CODE(ioasc); 2349 sense_buf[3] = PMCRAID_IOASC_SENSE_QUAL(ioasc); 2350 2351 sense_buf[7] = 12; 2352 sense_buf[8] = 0; 2353 sense_buf[9] = 0x0A; 2354 sense_buf[10] = 0x80; 2355 2356 failing_lba = le32_to_cpu(ioasa->u.vset.failing_lba_hi); 2357 2358 sense_buf[12] = (failing_lba & 0xff000000) >> 24; 2359 sense_buf[13] = (failing_lba & 0x00ff0000) >> 16; 2360 sense_buf[14] = (failing_lba & 0x0000ff00) >> 8; 2361 sense_buf[15] = failing_lba & 0x000000ff; 2362 2363 failing_lba = le32_to_cpu(ioasa->u.vset.failing_lba_lo); 2364 2365 sense_buf[16] = (failing_lba & 0xff000000) >> 24; 2366 sense_buf[17] = (failing_lba & 0x00ff0000) >> 16; 2367 sense_buf[18] = (failing_lba & 0x0000ff00) >> 8; 2368 sense_buf[19] = failing_lba & 0x000000ff; 2369 } else { 2370 sense_buf[0] = 0x70; 2371 sense_buf[2] = PMCRAID_IOASC_SENSE_KEY(ioasc); 2372 sense_buf[12] = PMCRAID_IOASC_SENSE_CODE(ioasc); 2373 sense_buf[13] = PMCRAID_IOASC_SENSE_QUAL(ioasc); 2374 2375 if (ioasc == PMCRAID_IOASC_ME_READ_ERROR_NO_REALLOC) { 2376 if (RES_IS_VSET(res->cfg_entry)) 2377 failing_lba = 2378 le32_to_cpu(ioasa->u. 2379 vset.failing_lba_lo); 2380 sense_buf[0] |= 0x80; 2381 sense_buf[3] = (failing_lba >> 24) & 0xff; 2382 sense_buf[4] = (failing_lba >> 16) & 0xff; 2383 sense_buf[5] = (failing_lba >> 8) & 0xff; 2384 sense_buf[6] = failing_lba & 0xff; 2385 } 2386 2387 sense_buf[7] = 6; /* additional length */ 2388 } 2389 } 2390 2391 /** 2392 * pmcraid_error_handler - Error response handlers for a SCSI op 2393 * @cmd: pointer to pmcraid_cmd that has failed 2394 * 2395 * This function determines whether or not to initiate ERP on the affected 2396 * device. This is called from a tasklet, which doesn't hold any locks. 2397 * 2398 * Return value: 2399 * 0 it caller can complete the request, otherwise 1 where in error 2400 * handler itself completes the request and returns the command block 2401 * back to free-pool 2402 */ 2403 static int pmcraid_error_handler(struct pmcraid_cmd *cmd) 2404 { 2405 struct scsi_cmnd *scsi_cmd = cmd->scsi_cmd; 2406 struct pmcraid_resource_entry *res = scsi_cmd->device->hostdata; 2407 struct pmcraid_instance *pinstance = cmd->drv_inst; 2408 struct pmcraid_ioasa *ioasa = &cmd->ioa_cb->ioasa; 2409 u32 ioasc = le32_to_cpu(ioasa->ioasc); 2410 u32 masked_ioasc = ioasc & PMCRAID_IOASC_SENSE_MASK; 2411 u32 sense_copied = 0; 2412 2413 if (!res) { 2414 pmcraid_info("resource pointer is NULL\n"); 2415 return 0; 2416 } 2417 2418 /* If this was a SCSI read/write command keep count of errors */ 2419 if (SCSI_CMD_TYPE(scsi_cmd->cmnd[0]) == SCSI_READ_CMD) 2420 atomic_inc(&res->read_failures); 2421 else if (SCSI_CMD_TYPE(scsi_cmd->cmnd[0]) == SCSI_WRITE_CMD) 2422 atomic_inc(&res->write_failures); 2423 2424 if (!RES_IS_GSCSI(res->cfg_entry) && 2425 masked_ioasc != PMCRAID_IOASC_HW_DEVICE_BUS_STATUS_ERROR) { 2426 pmcraid_frame_auto_sense(cmd); 2427 } 2428 2429 /* Log IOASC/IOASA information based on user settings */ 2430 pmcraid_ioasc_logger(ioasc, cmd); 2431 2432 switch (masked_ioasc) { 2433 2434 case PMCRAID_IOASC_AC_TERMINATED_BY_HOST: 2435 scsi_cmd->result |= (DID_ABORT << 16); 2436 break; 2437 2438 case PMCRAID_IOASC_IR_INVALID_RESOURCE_HANDLE: 2439 case PMCRAID_IOASC_HW_CANNOT_COMMUNICATE: 2440 scsi_cmd->result |= (DID_NO_CONNECT << 16); 2441 break; 2442 2443 case PMCRAID_IOASC_NR_SYNC_REQUIRED: 2444 res->sync_reqd = 1; 2445 scsi_cmd->result |= (DID_IMM_RETRY << 16); 2446 break; 2447 2448 case PMCRAID_IOASC_ME_READ_ERROR_NO_REALLOC: 2449 scsi_cmd->result |= (DID_PASSTHROUGH << 16); 2450 break; 2451 2452 case PMCRAID_IOASC_UA_BUS_WAS_RESET: 2453 case PMCRAID_IOASC_UA_BUS_WAS_RESET_BY_OTHER: 2454 if (!res->reset_progress) 2455 scsi_report_bus_reset(pinstance->host, 2456 scsi_cmd->device->channel); 2457 scsi_cmd->result |= (DID_ERROR << 16); 2458 break; 2459 2460 case PMCRAID_IOASC_HW_DEVICE_BUS_STATUS_ERROR: 2461 scsi_cmd->result |= PMCRAID_IOASC_SENSE_STATUS(ioasc); 2462 res->sync_reqd = 1; 2463 2464 /* if check_condition is not active return with error otherwise 2465 * get/frame the sense buffer 2466 */ 2467 if (PMCRAID_IOASC_SENSE_STATUS(ioasc) != 2468 SAM_STAT_CHECK_CONDITION && 2469 PMCRAID_IOASC_SENSE_STATUS(ioasc) != SAM_STAT_ACA_ACTIVE) 2470 return 0; 2471 2472 /* If we have auto sense data as part of IOASA pass it to 2473 * mid-layer 2474 */ 2475 if (ioasa->auto_sense_length != 0) { 2476 short sense_len = ioasa->auto_sense_length; 2477 int data_size = min_t(u16, le16_to_cpu(sense_len), 2478 SCSI_SENSE_BUFFERSIZE); 2479 2480 memcpy(scsi_cmd->sense_buffer, 2481 ioasa->sense_data, 2482 data_size); 2483 sense_copied = 1; 2484 } 2485 2486 if (RES_IS_GSCSI(res->cfg_entry)) { 2487 pmcraid_cancel_all(cmd, sense_copied); 2488 } else if (sense_copied) { 2489 pmcraid_erp_done(cmd); 2490 return 0; 2491 } else { 2492 pmcraid_request_sense(cmd); 2493 } 2494 2495 return 1; 2496 2497 case PMCRAID_IOASC_NR_INIT_CMD_REQUIRED: 2498 break; 2499 2500 default: 2501 if (PMCRAID_IOASC_SENSE_KEY(ioasc) > RECOVERED_ERROR) 2502 scsi_cmd->result |= (DID_ERROR << 16); 2503 break; 2504 } 2505 return 0; 2506 } 2507 2508 /** 2509 * pmcraid_reset_device - device reset handler functions 2510 * 2511 * @scsi_cmd: scsi command struct 2512 * @modifier: reset modifier indicating the reset sequence to be performed 2513 * 2514 * This function issues a device reset to the affected device. 2515 * A LUN reset will be sent to the device first. If that does 2516 * not work, a target reset will be sent. 2517 * 2518 * Return value: 2519 * SUCCESS / FAILED 2520 */ 2521 static int pmcraid_reset_device( 2522 struct scsi_cmnd *scsi_cmd, 2523 unsigned long timeout, 2524 u8 modifier 2525 ) 2526 { 2527 struct pmcraid_cmd *cmd; 2528 struct pmcraid_instance *pinstance; 2529 struct pmcraid_resource_entry *res; 2530 struct pmcraid_ioarcb *ioarcb; 2531 unsigned long lock_flags; 2532 u32 ioasc; 2533 2534 pinstance = 2535 (struct pmcraid_instance *)scsi_cmd->device->host->hostdata; 2536 res = scsi_cmd->device->hostdata; 2537 2538 if (!res) { 2539 sdev_printk(KERN_ERR, scsi_cmd->device, 2540 "reset_device: NULL resource pointer\n"); 2541 return FAILED; 2542 } 2543 2544 /* If adapter is currently going through reset/reload, return failed. 2545 * This will force the mid-layer to call _eh_bus/host reset, which 2546 * will then go to sleep and wait for the reset to complete 2547 */ 2548 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 2549 if (pinstance->ioa_reset_in_progress || 2550 pinstance->ioa_state == IOA_STATE_DEAD) { 2551 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 2552 return FAILED; 2553 } 2554 2555 res->reset_progress = 1; 2556 pmcraid_info("Resetting %s resource with addr %x\n", 2557 ((modifier & RESET_DEVICE_LUN) ? "LUN" : 2558 ((modifier & RESET_DEVICE_TARGET) ? "TARGET" : "BUS")), 2559 le32_to_cpu(res->cfg_entry.resource_address)); 2560 2561 /* get a free cmd block */ 2562 cmd = pmcraid_get_free_cmd(pinstance); 2563 2564 if (cmd == NULL) { 2565 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 2566 pmcraid_err("%s: no cmd blocks are available\n", __func__); 2567 return FAILED; 2568 } 2569 2570 ioarcb = &cmd->ioa_cb->ioarcb; 2571 ioarcb->resource_handle = res->cfg_entry.resource_handle; 2572 ioarcb->request_type = REQ_TYPE_IOACMD; 2573 ioarcb->cdb[0] = PMCRAID_RESET_DEVICE; 2574 2575 /* Initialize reset modifier bits */ 2576 if (modifier) 2577 modifier = ENABLE_RESET_MODIFIER | modifier; 2578 2579 ioarcb->cdb[1] = modifier; 2580 2581 init_completion(&cmd->wait_for_completion); 2582 cmd->completion_req = 1; 2583 2584 pmcraid_info("cmd(CDB[0] = %x) for %x with index = %d\n", 2585 cmd->ioa_cb->ioarcb.cdb[0], 2586 le32_to_cpu(cmd->ioa_cb->ioarcb.resource_handle), 2587 le32_to_cpu(cmd->ioa_cb->ioarcb.response_handle) >> 2); 2588 2589 pmcraid_send_cmd(cmd, 2590 pmcraid_internal_done, 2591 timeout, 2592 pmcraid_timeout_handler); 2593 2594 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 2595 2596 /* RESET_DEVICE command completes after all pending IOARCBs are 2597 * completed. Once this command is completed, pmcraind_internal_done 2598 * will wake up the 'completion' queue. 2599 */ 2600 wait_for_completion(&cmd->wait_for_completion); 2601 2602 /* complete the command here itself and return the command block 2603 * to free list 2604 */ 2605 pmcraid_return_cmd(cmd); 2606 res->reset_progress = 0; 2607 ioasc = le32_to_cpu(cmd->ioa_cb->ioasa.ioasc); 2608 2609 /* set the return value based on the returned ioasc */ 2610 return PMCRAID_IOASC_SENSE_KEY(ioasc) ? FAILED : SUCCESS; 2611 } 2612 2613 /** 2614 * _pmcraid_io_done - helper for pmcraid_io_done function 2615 * 2616 * @cmd: pointer to pmcraid command struct 2617 * @reslen: residual data length to be set in the ioasa 2618 * @ioasc: ioasc either returned by IOA or set by driver itself. 2619 * 2620 * This function is invoked by pmcraid_io_done to complete mid-layer 2621 * scsi ops. 2622 * 2623 * Return value: 2624 * 0 if caller is required to return it to free_pool. Returns 1 if 2625 * caller need not worry about freeing command block as error handler 2626 * will take care of that. 2627 */ 2628 2629 static int _pmcraid_io_done(struct pmcraid_cmd *cmd, int reslen, int ioasc) 2630 { 2631 struct scsi_cmnd *scsi_cmd = cmd->scsi_cmd; 2632 int rc = 0; 2633 2634 scsi_set_resid(scsi_cmd, reslen); 2635 2636 pmcraid_info("response(%d) CDB[0] = %x ioasc:result: %x:%x\n", 2637 le32_to_cpu(cmd->ioa_cb->ioarcb.response_handle) >> 2, 2638 cmd->ioa_cb->ioarcb.cdb[0], 2639 ioasc, scsi_cmd->result); 2640 2641 if (PMCRAID_IOASC_SENSE_KEY(ioasc) != 0) 2642 rc = pmcraid_error_handler(cmd); 2643 2644 if (rc == 0) { 2645 scsi_dma_unmap(scsi_cmd); 2646 scsi_cmd->scsi_done(scsi_cmd); 2647 } 2648 2649 return rc; 2650 } 2651 2652 /** 2653 * pmcraid_io_done - SCSI completion function 2654 * 2655 * @cmd: pointer to pmcraid command struct 2656 * 2657 * This function is invoked by tasklet/mid-layer error handler to completing 2658 * the SCSI ops sent from mid-layer. 2659 * 2660 * Return value 2661 * none 2662 */ 2663 2664 static void pmcraid_io_done(struct pmcraid_cmd *cmd) 2665 { 2666 u32 ioasc = le32_to_cpu(cmd->ioa_cb->ioasa.ioasc); 2667 u32 reslen = le32_to_cpu(cmd->ioa_cb->ioasa.residual_data_length); 2668 2669 if (_pmcraid_io_done(cmd, reslen, ioasc) == 0) 2670 pmcraid_return_cmd(cmd); 2671 } 2672 2673 /** 2674 * pmcraid_abort_cmd - Aborts a single IOARCB already submitted to IOA 2675 * 2676 * @cmd: command block of the command to be aborted 2677 * 2678 * Return Value: 2679 * returns pointer to command structure used as cancelling cmd 2680 */ 2681 static struct pmcraid_cmd *pmcraid_abort_cmd(struct pmcraid_cmd *cmd) 2682 { 2683 struct pmcraid_cmd *cancel_cmd; 2684 struct pmcraid_instance *pinstance; 2685 struct pmcraid_resource_entry *res; 2686 2687 pinstance = (struct pmcraid_instance *)cmd->drv_inst; 2688 res = cmd->scsi_cmd->device->hostdata; 2689 2690 cancel_cmd = pmcraid_get_free_cmd(pinstance); 2691 2692 if (cancel_cmd == NULL) { 2693 pmcraid_err("%s: no cmd blocks are available\n", __func__); 2694 return NULL; 2695 } 2696 2697 pmcraid_prepare_cancel_cmd(cancel_cmd, cmd); 2698 2699 pmcraid_info("aborting command CDB[0]= %x with index = %d\n", 2700 cmd->ioa_cb->ioarcb.cdb[0], 2701 cmd->ioa_cb->ioarcb.response_handle >> 2); 2702 2703 init_completion(&cancel_cmd->wait_for_completion); 2704 cancel_cmd->completion_req = 1; 2705 2706 pmcraid_info("command (%d) CDB[0] = %x for %x\n", 2707 le32_to_cpu(cancel_cmd->ioa_cb->ioarcb.response_handle) >> 2, 2708 cmd->ioa_cb->ioarcb.cdb[0], 2709 le32_to_cpu(cancel_cmd->ioa_cb->ioarcb.resource_handle)); 2710 2711 pmcraid_send_cmd(cancel_cmd, 2712 pmcraid_internal_done, 2713 PMCRAID_INTERNAL_TIMEOUT, 2714 pmcraid_timeout_handler); 2715 return cancel_cmd; 2716 } 2717 2718 /** 2719 * pmcraid_abort_complete - Waits for ABORT TASK completion 2720 * 2721 * @cancel_cmd: command block use as cancelling command 2722 * 2723 * Return Value: 2724 * returns SUCCESS if ABORT TASK has good completion 2725 * otherwise FAILED 2726 */ 2727 static int pmcraid_abort_complete(struct pmcraid_cmd *cancel_cmd) 2728 { 2729 struct pmcraid_resource_entry *res; 2730 u32 ioasc; 2731 2732 wait_for_completion(&cancel_cmd->wait_for_completion); 2733 res = cancel_cmd->u.res; 2734 cancel_cmd->u.res = NULL; 2735 ioasc = le32_to_cpu(cancel_cmd->ioa_cb->ioasa.ioasc); 2736 2737 /* If the abort task is not timed out we will get a Good completion 2738 * as sense_key, otherwise we may get one the following responses 2739 * due to subsquent bus reset or device reset. In case IOASC is 2740 * NR_SYNC_REQUIRED, set sync_reqd flag for the corresponding resource 2741 */ 2742 if (ioasc == PMCRAID_IOASC_UA_BUS_WAS_RESET || 2743 ioasc == PMCRAID_IOASC_NR_SYNC_REQUIRED) { 2744 if (ioasc == PMCRAID_IOASC_NR_SYNC_REQUIRED) 2745 res->sync_reqd = 1; 2746 ioasc = 0; 2747 } 2748 2749 /* complete the command here itself */ 2750 pmcraid_return_cmd(cancel_cmd); 2751 return PMCRAID_IOASC_SENSE_KEY(ioasc) ? FAILED : SUCCESS; 2752 } 2753 2754 /** 2755 * pmcraid_eh_abort_handler - entry point for aborting a single task on errors 2756 * 2757 * @scsi_cmd: scsi command struct given by mid-layer. When this is called 2758 * mid-layer ensures that no other commands are queued. This 2759 * never gets called under interrupt, but a separate eh thread. 2760 * 2761 * Return value: 2762 * SUCCESS / FAILED 2763 */ 2764 static int pmcraid_eh_abort_handler(struct scsi_cmnd *scsi_cmd) 2765 { 2766 struct pmcraid_instance *pinstance; 2767 struct pmcraid_cmd *cmd; 2768 struct pmcraid_resource_entry *res; 2769 unsigned long host_lock_flags; 2770 unsigned long pending_lock_flags; 2771 struct pmcraid_cmd *cancel_cmd = NULL; 2772 int cmd_found = 0; 2773 int rc = FAILED; 2774 2775 pinstance = 2776 (struct pmcraid_instance *)scsi_cmd->device->host->hostdata; 2777 2778 scmd_printk(KERN_INFO, scsi_cmd, 2779 "I/O command timed out, aborting it.\n"); 2780 2781 res = scsi_cmd->device->hostdata; 2782 2783 if (res == NULL) 2784 return rc; 2785 2786 /* If we are currently going through reset/reload, return failed. 2787 * This will force the mid-layer to eventually call 2788 * pmcraid_eh_host_reset which will then go to sleep and wait for the 2789 * reset to complete 2790 */ 2791 spin_lock_irqsave(pinstance->host->host_lock, host_lock_flags); 2792 2793 if (pinstance->ioa_reset_in_progress || 2794 pinstance->ioa_state == IOA_STATE_DEAD) { 2795 spin_unlock_irqrestore(pinstance->host->host_lock, 2796 host_lock_flags); 2797 return rc; 2798 } 2799 2800 /* loop over pending cmd list to find cmd corresponding to this 2801 * scsi_cmd. Note that this command might not have been completed 2802 * already. locking: all pending commands are protected with 2803 * pending_pool_lock. 2804 */ 2805 spin_lock_irqsave(&pinstance->pending_pool_lock, pending_lock_flags); 2806 list_for_each_entry(cmd, &pinstance->pending_cmd_pool, free_list) { 2807 2808 if (cmd->scsi_cmd == scsi_cmd) { 2809 cmd_found = 1; 2810 break; 2811 } 2812 } 2813 2814 spin_unlock_irqrestore(&pinstance->pending_pool_lock, 2815 pending_lock_flags); 2816 2817 /* If the command to be aborted was given to IOA and still pending with 2818 * it, send ABORT_TASK to abort this and wait for its completion 2819 */ 2820 if (cmd_found) 2821 cancel_cmd = pmcraid_abort_cmd(cmd); 2822 2823 spin_unlock_irqrestore(pinstance->host->host_lock, 2824 host_lock_flags); 2825 2826 if (cancel_cmd) { 2827 cancel_cmd->u.res = cmd->scsi_cmd->device->hostdata; 2828 rc = pmcraid_abort_complete(cancel_cmd); 2829 } 2830 2831 return cmd_found ? rc : SUCCESS; 2832 } 2833 2834 /** 2835 * pmcraid_eh_xxxx_reset_handler - bus/target/device reset handler callbacks 2836 * 2837 * @scmd: pointer to scsi_cmd that was sent to the resource to be reset. 2838 * 2839 * All these routines invokve pmcraid_reset_device with appropriate parameters. 2840 * Since these are called from mid-layer EH thread, no other IO will be queued 2841 * to the resource being reset. However, control path (IOCTL) may be active so 2842 * it is necessary to synchronize IOARRIN writes which pmcraid_reset_device 2843 * takes care by locking/unlocking host_lock. 2844 * 2845 * Return value 2846 * SUCCESS or FAILED 2847 */ 2848 static int pmcraid_eh_device_reset_handler(struct scsi_cmnd *scmd) 2849 { 2850 scmd_printk(KERN_INFO, scmd, 2851 "resetting device due to an I/O command timeout.\n"); 2852 return pmcraid_reset_device(scmd, 2853 PMCRAID_INTERNAL_TIMEOUT, 2854 RESET_DEVICE_LUN); 2855 } 2856 2857 static int pmcraid_eh_bus_reset_handler(struct scsi_cmnd *scmd) 2858 { 2859 scmd_printk(KERN_INFO, scmd, 2860 "Doing bus reset due to an I/O command timeout.\n"); 2861 return pmcraid_reset_device(scmd, 2862 PMCRAID_RESET_BUS_TIMEOUT, 2863 RESET_DEVICE_BUS); 2864 } 2865 2866 static int pmcraid_eh_target_reset_handler(struct scsi_cmnd *scmd) 2867 { 2868 scmd_printk(KERN_INFO, scmd, 2869 "Doing target reset due to an I/O command timeout.\n"); 2870 return pmcraid_reset_device(scmd, 2871 PMCRAID_INTERNAL_TIMEOUT, 2872 RESET_DEVICE_TARGET); 2873 } 2874 2875 /** 2876 * pmcraid_eh_host_reset_handler - adapter reset handler callback 2877 * 2878 * @scmd: pointer to scsi_cmd that was sent to a resource of adapter 2879 * 2880 * Initiates adapter reset to bring it up to operational state 2881 * 2882 * Return value 2883 * SUCCESS or FAILED 2884 */ 2885 static int pmcraid_eh_host_reset_handler(struct scsi_cmnd *scmd) 2886 { 2887 unsigned long interval = 10000; /* 10 seconds interval */ 2888 int waits = jiffies_to_msecs(PMCRAID_RESET_HOST_TIMEOUT) / interval; 2889 struct pmcraid_instance *pinstance = 2890 (struct pmcraid_instance *)(scmd->device->host->hostdata); 2891 2892 2893 /* wait for an additional 150 seconds just in case firmware could come 2894 * up and if it could complete all the pending commands excluding the 2895 * two HCAM (CCN and LDN). 2896 */ 2897 while (waits--) { 2898 if (atomic_read(&pinstance->outstanding_cmds) <= 2899 PMCRAID_MAX_HCAM_CMD) 2900 return SUCCESS; 2901 msleep(interval); 2902 } 2903 2904 dev_err(&pinstance->pdev->dev, 2905 "Adapter being reset due to an I/O command timeout.\n"); 2906 return pmcraid_reset_bringup(pinstance) == 0 ? SUCCESS : FAILED; 2907 } 2908 2909 /** 2910 * pmcraid_task_attributes - Translate SPI Q-Tags to task attributes 2911 * @scsi_cmd: scsi command struct 2912 * 2913 * Return value 2914 * number of tags or 0 if the task is not tagged 2915 */ 2916 static u8 pmcraid_task_attributes(struct scsi_cmnd *scsi_cmd) 2917 { 2918 char tag[2]; 2919 u8 rc = 0; 2920 2921 if (scsi_populate_tag_msg(scsi_cmd, tag)) { 2922 switch (tag[0]) { 2923 case MSG_SIMPLE_TAG: 2924 rc = TASK_TAG_SIMPLE; 2925 break; 2926 case MSG_HEAD_TAG: 2927 rc = TASK_TAG_QUEUE_HEAD; 2928 break; 2929 case MSG_ORDERED_TAG: 2930 rc = TASK_TAG_ORDERED; 2931 break; 2932 }; 2933 } 2934 2935 return rc; 2936 } 2937 2938 2939 /** 2940 * pmcraid_init_ioadls - initializes IOADL related fields in IOARCB 2941 * @cmd: pmcraid command struct 2942 * @sgcount: count of scatter-gather elements 2943 * 2944 * Return value 2945 * returns pointer pmcraid_ioadl_desc, initialized to point to internal 2946 * or external IOADLs 2947 */ 2948 struct pmcraid_ioadl_desc * 2949 pmcraid_init_ioadls(struct pmcraid_cmd *cmd, int sgcount) 2950 { 2951 struct pmcraid_ioadl_desc *ioadl; 2952 struct pmcraid_ioarcb *ioarcb = &cmd->ioa_cb->ioarcb; 2953 int ioadl_count = 0; 2954 2955 if (ioarcb->add_cmd_param_length) 2956 ioadl_count = DIV_ROUND_UP(ioarcb->add_cmd_param_length, 16); 2957 ioarcb->ioadl_length = 2958 sizeof(struct pmcraid_ioadl_desc) * sgcount; 2959 2960 if ((sgcount + ioadl_count) > (ARRAY_SIZE(ioarcb->add_data.u.ioadl))) { 2961 /* external ioadls start at offset 0x80 from control_block 2962 * structure, re-using 24 out of 27 ioadls part of IOARCB. 2963 * It is necessary to indicate to firmware that driver is 2964 * using ioadls to be treated as external to IOARCB. 2965 */ 2966 ioarcb->ioarcb_bus_addr &= ~(0x1FULL); 2967 ioarcb->ioadl_bus_addr = 2968 cpu_to_le64((cmd->ioa_cb_bus_addr) + 2969 offsetof(struct pmcraid_ioarcb, 2970 add_data.u.ioadl[3])); 2971 ioadl = &ioarcb->add_data.u.ioadl[3]; 2972 } else { 2973 ioarcb->ioadl_bus_addr = 2974 cpu_to_le64((cmd->ioa_cb_bus_addr) + 2975 offsetof(struct pmcraid_ioarcb, 2976 add_data.u.ioadl[ioadl_count])); 2977 2978 ioadl = &ioarcb->add_data.u.ioadl[ioadl_count]; 2979 ioarcb->ioarcb_bus_addr |= 2980 DIV_ROUND_CLOSEST(sgcount + ioadl_count, 8); 2981 } 2982 2983 return ioadl; 2984 } 2985 2986 /** 2987 * pmcraid_build_ioadl - Build a scatter/gather list and map the buffer 2988 * @pinstance: pointer to adapter instance structure 2989 * @cmd: pmcraid command struct 2990 * 2991 * This function is invoked by queuecommand entry point while sending a command 2992 * to firmware. This builds ioadl descriptors and sets up ioarcb fields. 2993 * 2994 * Return value: 2995 * 0 on success or -1 on failure 2996 */ 2997 static int pmcraid_build_ioadl( 2998 struct pmcraid_instance *pinstance, 2999 struct pmcraid_cmd *cmd 3000 ) 3001 { 3002 int i, nseg; 3003 struct scatterlist *sglist; 3004 3005 struct scsi_cmnd *scsi_cmd = cmd->scsi_cmd; 3006 struct pmcraid_ioarcb *ioarcb = &(cmd->ioa_cb->ioarcb); 3007 struct pmcraid_ioadl_desc *ioadl = ioarcb->add_data.u.ioadl; 3008 3009 u32 length = scsi_bufflen(scsi_cmd); 3010 3011 if (!length) 3012 return 0; 3013 3014 nseg = scsi_dma_map(scsi_cmd); 3015 3016 if (nseg < 0) { 3017 scmd_printk(KERN_ERR, scsi_cmd, "scsi_map_dma failed!\n"); 3018 return -1; 3019 } else if (nseg > PMCRAID_MAX_IOADLS) { 3020 scsi_dma_unmap(scsi_cmd); 3021 scmd_printk(KERN_ERR, scsi_cmd, 3022 "sg count is (%d) more than allowed!\n", nseg); 3023 return -1; 3024 } 3025 3026 /* Initialize IOARCB data transfer length fields */ 3027 if (scsi_cmd->sc_data_direction == DMA_TO_DEVICE) 3028 ioarcb->request_flags0 |= TRANSFER_DIR_WRITE; 3029 3030 ioarcb->request_flags0 |= NO_LINK_DESCS; 3031 ioarcb->data_transfer_length = cpu_to_le32(length); 3032 ioadl = pmcraid_init_ioadls(cmd, nseg); 3033 3034 /* Initialize IOADL descriptor addresses */ 3035 scsi_for_each_sg(scsi_cmd, sglist, nseg, i) { 3036 ioadl[i].data_len = cpu_to_le32(sg_dma_len(sglist)); 3037 ioadl[i].address = cpu_to_le64(sg_dma_address(sglist)); 3038 ioadl[i].flags = 0; 3039 } 3040 /* setup last descriptor */ 3041 ioadl[i - 1].flags = IOADL_FLAGS_LAST_DESC; 3042 3043 return 0; 3044 } 3045 3046 /** 3047 * pmcraid_free_sglist - Frees an allocated SG buffer list 3048 * @sglist: scatter/gather list pointer 3049 * 3050 * Free a DMA'able memory previously allocated with pmcraid_alloc_sglist 3051 * 3052 * Return value: 3053 * none 3054 */ 3055 static void pmcraid_free_sglist(struct pmcraid_sglist *sglist) 3056 { 3057 int i; 3058 3059 for (i = 0; i < sglist->num_sg; i++) 3060 __free_pages(sg_page(&(sglist->scatterlist[i])), 3061 sglist->order); 3062 3063 kfree(sglist); 3064 } 3065 3066 /** 3067 * pmcraid_alloc_sglist - Allocates memory for a SG list 3068 * @buflen: buffer length 3069 * 3070 * Allocates a DMA'able buffer in chunks and assembles a scatter/gather 3071 * list. 3072 * 3073 * Return value 3074 * pointer to sglist / NULL on failure 3075 */ 3076 static struct pmcraid_sglist *pmcraid_alloc_sglist(int buflen) 3077 { 3078 struct pmcraid_sglist *sglist; 3079 struct scatterlist *scatterlist; 3080 struct page *page; 3081 int num_elem, i, j; 3082 int sg_size; 3083 int order; 3084 int bsize_elem; 3085 3086 sg_size = buflen / (PMCRAID_MAX_IOADLS - 1); 3087 order = (sg_size > 0) ? get_order(sg_size) : 0; 3088 bsize_elem = PAGE_SIZE * (1 << order); 3089 3090 /* Determine the actual number of sg entries needed */ 3091 if (buflen % bsize_elem) 3092 num_elem = (buflen / bsize_elem) + 1; 3093 else 3094 num_elem = buflen / bsize_elem; 3095 3096 /* Allocate a scatter/gather list for the DMA */ 3097 sglist = kzalloc(sizeof(struct pmcraid_sglist) + 3098 (sizeof(struct scatterlist) * (num_elem - 1)), 3099 GFP_KERNEL); 3100 3101 if (sglist == NULL) 3102 return NULL; 3103 3104 scatterlist = sglist->scatterlist; 3105 sg_init_table(scatterlist, num_elem); 3106 sglist->order = order; 3107 sglist->num_sg = num_elem; 3108 sg_size = buflen; 3109 3110 for (i = 0; i < num_elem; i++) { 3111 page = alloc_pages(GFP_KERNEL|GFP_DMA, order); 3112 if (!page) { 3113 for (j = i - 1; j >= 0; j--) 3114 __free_pages(sg_page(&scatterlist[j]), order); 3115 kfree(sglist); 3116 return NULL; 3117 } 3118 3119 sg_set_page(&scatterlist[i], page, 3120 sg_size < bsize_elem ? sg_size : bsize_elem, 0); 3121 sg_size -= bsize_elem; 3122 } 3123 3124 return sglist; 3125 } 3126 3127 /** 3128 * pmcraid_copy_sglist - Copy user buffer to kernel buffer's SG list 3129 * @sglist: scatter/gather list pointer 3130 * @buffer: buffer pointer 3131 * @len: buffer length 3132 * @direction: data transfer direction 3133 * 3134 * Copy a user buffer into a buffer allocated by pmcraid_alloc_sglist 3135 * 3136 * Return value: 3137 * 0 on success / other on failure 3138 */ 3139 static int pmcraid_copy_sglist( 3140 struct pmcraid_sglist *sglist, 3141 unsigned long buffer, 3142 u32 len, 3143 int direction 3144 ) 3145 { 3146 struct scatterlist *scatterlist; 3147 void *kaddr; 3148 int bsize_elem; 3149 int i; 3150 int rc = 0; 3151 3152 /* Determine the actual number of bytes per element */ 3153 bsize_elem = PAGE_SIZE * (1 << sglist->order); 3154 3155 scatterlist = sglist->scatterlist; 3156 3157 for (i = 0; i < (len / bsize_elem); i++, buffer += bsize_elem) { 3158 struct page *page = sg_page(&scatterlist[i]); 3159 3160 kaddr = kmap(page); 3161 if (direction == DMA_TO_DEVICE) 3162 rc = __copy_from_user(kaddr, 3163 (void *)buffer, 3164 bsize_elem); 3165 else 3166 rc = __copy_to_user((void *)buffer, kaddr, bsize_elem); 3167 3168 kunmap(page); 3169 3170 if (rc) { 3171 pmcraid_err("failed to copy user data into sg list\n"); 3172 return -EFAULT; 3173 } 3174 3175 scatterlist[i].length = bsize_elem; 3176 } 3177 3178 if (len % bsize_elem) { 3179 struct page *page = sg_page(&scatterlist[i]); 3180 3181 kaddr = kmap(page); 3182 3183 if (direction == DMA_TO_DEVICE) 3184 rc = __copy_from_user(kaddr, 3185 (void *)buffer, 3186 len % bsize_elem); 3187 else 3188 rc = __copy_to_user((void *)buffer, 3189 kaddr, 3190 len % bsize_elem); 3191 3192 kunmap(page); 3193 3194 scatterlist[i].length = len % bsize_elem; 3195 } 3196 3197 if (rc) { 3198 pmcraid_err("failed to copy user data into sg list\n"); 3199 rc = -EFAULT; 3200 } 3201 3202 return rc; 3203 } 3204 3205 /** 3206 * pmcraid_queuecommand - Queue a mid-layer request 3207 * @scsi_cmd: scsi command struct 3208 * @done: done function 3209 * 3210 * This function queues a request generated by the mid-layer. Midlayer calls 3211 * this routine within host->lock. Some of the functions called by queuecommand 3212 * would use cmd block queue locks (free_pool_lock and pending_pool_lock) 3213 * 3214 * Return value: 3215 * 0 on success 3216 * SCSI_MLQUEUE_DEVICE_BUSY if device is busy 3217 * SCSI_MLQUEUE_HOST_BUSY if host is busy 3218 */ 3219 static int pmcraid_queuecommand( 3220 struct scsi_cmnd *scsi_cmd, 3221 void (*done) (struct scsi_cmnd *) 3222 ) 3223 { 3224 struct pmcraid_instance *pinstance; 3225 struct pmcraid_resource_entry *res; 3226 struct pmcraid_ioarcb *ioarcb; 3227 struct pmcraid_cmd *cmd; 3228 int rc = 0; 3229 3230 pinstance = 3231 (struct pmcraid_instance *)scsi_cmd->device->host->hostdata; 3232 3233 scsi_cmd->scsi_done = done; 3234 res = scsi_cmd->device->hostdata; 3235 scsi_cmd->result = (DID_OK << 16); 3236 3237 /* if adapter is marked as dead, set result to DID_NO_CONNECT complete 3238 * the command 3239 */ 3240 if (pinstance->ioa_state == IOA_STATE_DEAD) { 3241 pmcraid_info("IOA is dead, but queuecommand is scheduled\n"); 3242 scsi_cmd->result = (DID_NO_CONNECT << 16); 3243 scsi_cmd->scsi_done(scsi_cmd); 3244 return 0; 3245 } 3246 3247 /* If IOA reset is in progress, can't queue the commands */ 3248 if (pinstance->ioa_reset_in_progress) 3249 return SCSI_MLQUEUE_HOST_BUSY; 3250 3251 /* initialize the command and IOARCB to be sent to IOA */ 3252 cmd = pmcraid_get_free_cmd(pinstance); 3253 3254 if (cmd == NULL) { 3255 pmcraid_err("free command block is not available\n"); 3256 return SCSI_MLQUEUE_HOST_BUSY; 3257 } 3258 3259 cmd->scsi_cmd = scsi_cmd; 3260 ioarcb = &(cmd->ioa_cb->ioarcb); 3261 memcpy(ioarcb->cdb, scsi_cmd->cmnd, scsi_cmd->cmd_len); 3262 ioarcb->resource_handle = res->cfg_entry.resource_handle; 3263 ioarcb->request_type = REQ_TYPE_SCSI; 3264 3265 cmd->cmd_done = pmcraid_io_done; 3266 3267 if (RES_IS_GSCSI(res->cfg_entry) || RES_IS_VSET(res->cfg_entry)) { 3268 if (scsi_cmd->underflow == 0) 3269 ioarcb->request_flags0 |= INHIBIT_UL_CHECK; 3270 3271 if (res->sync_reqd) { 3272 ioarcb->request_flags0 |= SYNC_COMPLETE; 3273 res->sync_reqd = 0; 3274 } 3275 3276 ioarcb->request_flags0 |= NO_LINK_DESCS; 3277 ioarcb->request_flags1 |= pmcraid_task_attributes(scsi_cmd); 3278 3279 if (RES_IS_GSCSI(res->cfg_entry)) 3280 ioarcb->request_flags1 |= DELAY_AFTER_RESET; 3281 } 3282 3283 rc = pmcraid_build_ioadl(pinstance, cmd); 3284 3285 pmcraid_info("command (%d) CDB[0] = %x for %x:%x:%x:%x\n", 3286 le32_to_cpu(ioarcb->response_handle) >> 2, 3287 scsi_cmd->cmnd[0], pinstance->host->unique_id, 3288 RES_IS_VSET(res->cfg_entry) ? PMCRAID_VSET_BUS_ID : 3289 PMCRAID_PHYS_BUS_ID, 3290 RES_IS_VSET(res->cfg_entry) ? 3291 res->cfg_entry.unique_flags1 : 3292 RES_TARGET(res->cfg_entry.resource_address), 3293 RES_LUN(res->cfg_entry.resource_address)); 3294 3295 if (likely(rc == 0)) { 3296 _pmcraid_fire_command(cmd); 3297 } else { 3298 pmcraid_err("queuecommand could not build ioadl\n"); 3299 pmcraid_return_cmd(cmd); 3300 rc = SCSI_MLQUEUE_HOST_BUSY; 3301 } 3302 3303 return rc; 3304 } 3305 3306 /** 3307 * pmcraid_open -char node "open" entry, allowed only users with admin access 3308 */ 3309 static int pmcraid_chr_open(struct inode *inode, struct file *filep) 3310 { 3311 struct pmcraid_instance *pinstance; 3312 3313 if (!capable(CAP_SYS_ADMIN)) 3314 return -EACCES; 3315 3316 /* Populate adapter instance * pointer for use by ioctl */ 3317 pinstance = container_of(inode->i_cdev, struct pmcraid_instance, cdev); 3318 filep->private_data = pinstance; 3319 3320 return 0; 3321 } 3322 3323 /** 3324 * pmcraid_release - char node "release" entry point 3325 */ 3326 static int pmcraid_chr_release(struct inode *inode, struct file *filep) 3327 { 3328 struct pmcraid_instance *pinstance = 3329 ((struct pmcraid_instance *)filep->private_data); 3330 3331 filep->private_data = NULL; 3332 fasync_helper(-1, filep, 0, &pinstance->aen_queue); 3333 3334 return 0; 3335 } 3336 3337 /** 3338 * pmcraid_fasync - Async notifier registration from applications 3339 * 3340 * This function adds the calling process to a driver global queue. When an 3341 * event occurs, SIGIO will be sent to all processes in this queue. 3342 */ 3343 static int pmcraid_chr_fasync(int fd, struct file *filep, int mode) 3344 { 3345 struct pmcraid_instance *pinstance; 3346 int rc; 3347 3348 pinstance = (struct pmcraid_instance *)filep->private_data; 3349 mutex_lock(&pinstance->aen_queue_lock); 3350 rc = fasync_helper(fd, filep, mode, &pinstance->aen_queue); 3351 mutex_unlock(&pinstance->aen_queue_lock); 3352 3353 return rc; 3354 } 3355 3356 3357 /** 3358 * pmcraid_build_passthrough_ioadls - builds SG elements for passthrough 3359 * commands sent over IOCTL interface 3360 * 3361 * @cmd : pointer to struct pmcraid_cmd 3362 * @buflen : length of the request buffer 3363 * @direction : data transfer direction 3364 * 3365 * Return value 3366 * 0 on success, non-zero error code on failure 3367 */ 3368 static int pmcraid_build_passthrough_ioadls( 3369 struct pmcraid_cmd *cmd, 3370 int buflen, 3371 int direction 3372 ) 3373 { 3374 struct pmcraid_sglist *sglist = NULL; 3375 struct scatterlist *sg = NULL; 3376 struct pmcraid_ioarcb *ioarcb = &cmd->ioa_cb->ioarcb; 3377 struct pmcraid_ioadl_desc *ioadl; 3378 int i; 3379 3380 sglist = pmcraid_alloc_sglist(buflen); 3381 3382 if (!sglist) { 3383 pmcraid_err("can't allocate memory for passthrough SGls\n"); 3384 return -ENOMEM; 3385 } 3386 3387 sglist->num_dma_sg = pci_map_sg(cmd->drv_inst->pdev, 3388 sglist->scatterlist, 3389 sglist->num_sg, direction); 3390 3391 if (!sglist->num_dma_sg || sglist->num_dma_sg > PMCRAID_MAX_IOADLS) { 3392 dev_err(&cmd->drv_inst->pdev->dev, 3393 "Failed to map passthrough buffer!\n"); 3394 pmcraid_free_sglist(sglist); 3395 return -EIO; 3396 } 3397 3398 cmd->sglist = sglist; 3399 ioarcb->request_flags0 |= NO_LINK_DESCS; 3400 3401 ioadl = pmcraid_init_ioadls(cmd, sglist->num_dma_sg); 3402 3403 /* Initialize IOADL descriptor addresses */ 3404 for_each_sg(sglist->scatterlist, sg, sglist->num_dma_sg, i) { 3405 ioadl[i].data_len = cpu_to_le32(sg_dma_len(sg)); 3406 ioadl[i].address = cpu_to_le64(sg_dma_address(sg)); 3407 ioadl[i].flags = 0; 3408 } 3409 3410 /* setup the last descriptor */ 3411 ioadl[i - 1].flags = IOADL_FLAGS_LAST_DESC; 3412 3413 return 0; 3414 } 3415 3416 3417 /** 3418 * pmcraid_release_passthrough_ioadls - release passthrough ioadls 3419 * 3420 * @cmd: pointer to struct pmcraid_cmd for which ioadls were allocated 3421 * @buflen: size of the request buffer 3422 * @direction: data transfer direction 3423 * 3424 * Return value 3425 * 0 on success, non-zero error code on failure 3426 */ 3427 static void pmcraid_release_passthrough_ioadls( 3428 struct pmcraid_cmd *cmd, 3429 int buflen, 3430 int direction 3431 ) 3432 { 3433 struct pmcraid_sglist *sglist = cmd->sglist; 3434 3435 if (buflen > 0) { 3436 pci_unmap_sg(cmd->drv_inst->pdev, 3437 sglist->scatterlist, 3438 sglist->num_sg, 3439 direction); 3440 pmcraid_free_sglist(sglist); 3441 cmd->sglist = NULL; 3442 } 3443 } 3444 3445 /** 3446 * pmcraid_ioctl_passthrough - handling passthrough IOCTL commands 3447 * 3448 * @pinstance: pointer to adapter instance structure 3449 * @cmd: ioctl code 3450 * @arg: pointer to pmcraid_passthrough_buffer user buffer 3451 * 3452 * Return value 3453 * 0 on success, non-zero error code on failure 3454 */ 3455 static long pmcraid_ioctl_passthrough( 3456 struct pmcraid_instance *pinstance, 3457 unsigned int ioctl_cmd, 3458 unsigned int buflen, 3459 unsigned long arg 3460 ) 3461 { 3462 struct pmcraid_passthrough_ioctl_buffer *buffer; 3463 struct pmcraid_ioarcb *ioarcb; 3464 struct pmcraid_cmd *cmd; 3465 struct pmcraid_cmd *cancel_cmd; 3466 unsigned long request_buffer; 3467 unsigned long request_offset; 3468 unsigned long lock_flags; 3469 int request_size; 3470 int buffer_size; 3471 u8 access, direction; 3472 int rc = 0; 3473 3474 /* If IOA reset is in progress, wait 10 secs for reset to complete */ 3475 if (pinstance->ioa_reset_in_progress) { 3476 rc = wait_event_interruptible_timeout( 3477 pinstance->reset_wait_q, 3478 !pinstance->ioa_reset_in_progress, 3479 msecs_to_jiffies(10000)); 3480 3481 if (!rc) 3482 return -ETIMEDOUT; 3483 else if (rc < 0) 3484 return -ERESTARTSYS; 3485 } 3486 3487 /* If adapter is not in operational state, return error */ 3488 if (pinstance->ioa_state != IOA_STATE_OPERATIONAL) { 3489 pmcraid_err("IOA is not operational\n"); 3490 return -ENOTTY; 3491 } 3492 3493 buffer_size = sizeof(struct pmcraid_passthrough_ioctl_buffer); 3494 buffer = kmalloc(buffer_size, GFP_KERNEL); 3495 3496 if (!buffer) { 3497 pmcraid_err("no memory for passthrough buffer\n"); 3498 return -ENOMEM; 3499 } 3500 3501 request_offset = 3502 offsetof(struct pmcraid_passthrough_ioctl_buffer, request_buffer); 3503 3504 request_buffer = arg + request_offset; 3505 3506 rc = __copy_from_user(buffer, 3507 (struct pmcraid_passthrough_ioctl_buffer *) arg, 3508 sizeof(struct pmcraid_passthrough_ioctl_buffer)); 3509 if (rc) { 3510 pmcraid_err("ioctl: can't copy passthrough buffer\n"); 3511 rc = -EFAULT; 3512 goto out_free_buffer; 3513 } 3514 3515 request_size = buffer->ioarcb.data_transfer_length; 3516 3517 if (buffer->ioarcb.request_flags0 & TRANSFER_DIR_WRITE) { 3518 access = VERIFY_READ; 3519 direction = DMA_TO_DEVICE; 3520 } else { 3521 access = VERIFY_WRITE; 3522 direction = DMA_FROM_DEVICE; 3523 } 3524 3525 if (request_size > 0) { 3526 rc = access_ok(access, arg, request_offset + request_size); 3527 3528 if (!rc) { 3529 rc = -EFAULT; 3530 goto out_free_buffer; 3531 } 3532 } 3533 3534 /* check if we have any additional command parameters */ 3535 if (buffer->ioarcb.add_cmd_param_length > PMCRAID_ADD_CMD_PARAM_LEN) { 3536 rc = -EINVAL; 3537 goto out_free_buffer; 3538 } 3539 3540 cmd = pmcraid_get_free_cmd(pinstance); 3541 3542 if (!cmd) { 3543 pmcraid_err("free command block is not available\n"); 3544 rc = -ENOMEM; 3545 goto out_free_buffer; 3546 } 3547 3548 cmd->scsi_cmd = NULL; 3549 ioarcb = &(cmd->ioa_cb->ioarcb); 3550 3551 /* Copy the user-provided IOARCB stuff field by field */ 3552 ioarcb->resource_handle = buffer->ioarcb.resource_handle; 3553 ioarcb->data_transfer_length = buffer->ioarcb.data_transfer_length; 3554 ioarcb->cmd_timeout = buffer->ioarcb.cmd_timeout; 3555 ioarcb->request_type = buffer->ioarcb.request_type; 3556 ioarcb->request_flags0 = buffer->ioarcb.request_flags0; 3557 ioarcb->request_flags1 = buffer->ioarcb.request_flags1; 3558 memcpy(ioarcb->cdb, buffer->ioarcb.cdb, PMCRAID_MAX_CDB_LEN); 3559 3560 if (buffer->ioarcb.add_cmd_param_length) { 3561 ioarcb->add_cmd_param_length = 3562 buffer->ioarcb.add_cmd_param_length; 3563 ioarcb->add_cmd_param_offset = 3564 buffer->ioarcb.add_cmd_param_offset; 3565 memcpy(ioarcb->add_data.u.add_cmd_params, 3566 buffer->ioarcb.add_data.u.add_cmd_params, 3567 buffer->ioarcb.add_cmd_param_length); 3568 } 3569 3570 if (request_size) { 3571 rc = pmcraid_build_passthrough_ioadls(cmd, 3572 request_size, 3573 direction); 3574 if (rc) { 3575 pmcraid_err("couldn't build passthrough ioadls\n"); 3576 goto out_free_buffer; 3577 } 3578 } 3579 3580 /* If data is being written into the device, copy the data from user 3581 * buffers 3582 */ 3583 if (direction == DMA_TO_DEVICE && request_size > 0) { 3584 rc = pmcraid_copy_sglist(cmd->sglist, 3585 request_buffer, 3586 request_size, 3587 direction); 3588 if (rc) { 3589 pmcraid_err("failed to copy user buffer\n"); 3590 goto out_free_sglist; 3591 } 3592 } 3593 3594 /* passthrough ioctl is a blocking command so, put the user to sleep 3595 * until timeout. Note that a timeout value of 0 means, do timeout. 3596 */ 3597 cmd->cmd_done = pmcraid_internal_done; 3598 init_completion(&cmd->wait_for_completion); 3599 cmd->completion_req = 1; 3600 3601 pmcraid_info("command(%d) (CDB[0] = %x) for %x\n", 3602 le32_to_cpu(cmd->ioa_cb->ioarcb.response_handle) >> 2, 3603 cmd->ioa_cb->ioarcb.cdb[0], 3604 le32_to_cpu(cmd->ioa_cb->ioarcb.resource_handle)); 3605 3606 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 3607 _pmcraid_fire_command(cmd); 3608 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 3609 3610 /* If command timeout is specified put caller to wait till that time, 3611 * otherwise it would be blocking wait. If command gets timed out, it 3612 * will be aborted. 3613 */ 3614 if (buffer->ioarcb.cmd_timeout == 0) { 3615 wait_for_completion(&cmd->wait_for_completion); 3616 } else if (!wait_for_completion_timeout( 3617 &cmd->wait_for_completion, 3618 msecs_to_jiffies(buffer->ioarcb.cmd_timeout * 1000))) { 3619 3620 pmcraid_info("aborting cmd %d (CDB[0] = %x) due to timeout\n", 3621 le32_to_cpu(cmd->ioa_cb->ioarcb.response_handle >> 2), 3622 cmd->ioa_cb->ioarcb.cdb[0]); 3623 3624 rc = -ETIMEDOUT; 3625 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 3626 cancel_cmd = pmcraid_abort_cmd(cmd); 3627 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 3628 3629 if (cancel_cmd) { 3630 wait_for_completion(&cancel_cmd->wait_for_completion); 3631 pmcraid_return_cmd(cancel_cmd); 3632 } 3633 3634 goto out_free_sglist; 3635 } 3636 3637 /* If the command failed for any reason, copy entire IOASA buffer and 3638 * return IOCTL success. If copying IOASA to user-buffer fails, return 3639 * EFAULT 3640 */ 3641 if (le32_to_cpu(cmd->ioa_cb->ioasa.ioasc)) { 3642 3643 void *ioasa = 3644 (void *)(arg + 3645 offsetof(struct pmcraid_passthrough_ioctl_buffer, ioasa)); 3646 3647 pmcraid_info("command failed with %x\n", 3648 le32_to_cpu(cmd->ioa_cb->ioasa.ioasc)); 3649 if (copy_to_user(ioasa, &cmd->ioa_cb->ioasa, 3650 sizeof(struct pmcraid_ioasa))) { 3651 pmcraid_err("failed to copy ioasa buffer to user\n"); 3652 rc = -EFAULT; 3653 } 3654 } 3655 /* If the data transfer was from device, copy the data onto user 3656 * buffers 3657 */ 3658 else if (direction == DMA_FROM_DEVICE && request_size > 0) { 3659 rc = pmcraid_copy_sglist(cmd->sglist, 3660 request_buffer, 3661 request_size, 3662 direction); 3663 if (rc) { 3664 pmcraid_err("failed to copy user buffer\n"); 3665 rc = -EFAULT; 3666 } 3667 } 3668 3669 out_free_sglist: 3670 pmcraid_release_passthrough_ioadls(cmd, request_size, direction); 3671 pmcraid_return_cmd(cmd); 3672 3673 out_free_buffer: 3674 kfree(buffer); 3675 3676 return rc; 3677 } 3678 3679 3680 3681 3682 /** 3683 * pmcraid_ioctl_driver - ioctl handler for commands handled by driver itself 3684 * 3685 * @pinstance: pointer to adapter instance structure 3686 * @cmd: ioctl command passed in 3687 * @buflen: length of user_buffer 3688 * @user_buffer: user buffer pointer 3689 * 3690 * Return Value 3691 * 0 in case of success, otherwise appropriate error code 3692 */ 3693 static long pmcraid_ioctl_driver( 3694 struct pmcraid_instance *pinstance, 3695 unsigned int cmd, 3696 unsigned int buflen, 3697 void __user *user_buffer 3698 ) 3699 { 3700 int rc = -ENOSYS; 3701 3702 if (!access_ok(VERIFY_READ, user_buffer, _IOC_SIZE(cmd))) { 3703 pmcraid_err("ioctl_driver: access fault in request buffer \n"); 3704 return -EFAULT; 3705 } 3706 3707 switch (cmd) { 3708 case PMCRAID_IOCTL_RESET_ADAPTER: 3709 pmcraid_reset_bringup(pinstance); 3710 rc = 0; 3711 break; 3712 3713 default: 3714 break; 3715 } 3716 3717 return rc; 3718 } 3719 3720 /** 3721 * pmcraid_check_ioctl_buffer - check for proper access to user buffer 3722 * 3723 * @cmd: ioctl command 3724 * @arg: user buffer 3725 * @hdr: pointer to kernel memory for pmcraid_ioctl_header 3726 * 3727 * Return Value 3728 * negetive error code if there are access issues, otherwise zero. 3729 * Upon success, returns ioctl header copied out of user buffer. 3730 */ 3731 3732 static int pmcraid_check_ioctl_buffer( 3733 int cmd, 3734 void __user *arg, 3735 struct pmcraid_ioctl_header *hdr 3736 ) 3737 { 3738 int rc = 0; 3739 int access = VERIFY_READ; 3740 3741 if (copy_from_user(hdr, arg, sizeof(struct pmcraid_ioctl_header))) { 3742 pmcraid_err("couldn't copy ioctl header from user buffer\n"); 3743 return -EFAULT; 3744 } 3745 3746 /* check for valid driver signature */ 3747 rc = memcmp(hdr->signature, 3748 PMCRAID_IOCTL_SIGNATURE, 3749 sizeof(hdr->signature)); 3750 if (rc) { 3751 pmcraid_err("signature verification failed\n"); 3752 return -EINVAL; 3753 } 3754 3755 /* buffer length can't be negetive */ 3756 if (hdr->buffer_length < 0) { 3757 pmcraid_err("ioctl: invalid buffer length specified\n"); 3758 return -EINVAL; 3759 } 3760 3761 /* check for appropriate buffer access */ 3762 if ((_IOC_DIR(cmd) & _IOC_READ) == _IOC_READ) 3763 access = VERIFY_WRITE; 3764 3765 rc = access_ok(access, 3766 (arg + sizeof(struct pmcraid_ioctl_header)), 3767 hdr->buffer_length); 3768 if (!rc) { 3769 pmcraid_err("access failed for user buffer of size %d\n", 3770 hdr->buffer_length); 3771 return -EFAULT; 3772 } 3773 3774 return 0; 3775 } 3776 3777 /** 3778 * pmcraid_ioctl - char node ioctl entry point 3779 */ 3780 static long pmcraid_chr_ioctl( 3781 struct file *filep, 3782 unsigned int cmd, 3783 unsigned long arg 3784 ) 3785 { 3786 struct pmcraid_instance *pinstance = NULL; 3787 struct pmcraid_ioctl_header *hdr = NULL; 3788 int retval = -ENOTTY; 3789 3790 hdr = kmalloc(GFP_KERNEL, sizeof(struct pmcraid_ioctl_header)); 3791 3792 if (!hdr) { 3793 pmcraid_err("faile to allocate memory for ioctl header\n"); 3794 return -ENOMEM; 3795 } 3796 3797 retval = pmcraid_check_ioctl_buffer(cmd, (void *)arg, hdr); 3798 3799 if (retval) { 3800 pmcraid_info("chr_ioctl: header check failed\n"); 3801 kfree(hdr); 3802 return retval; 3803 } 3804 3805 pinstance = (struct pmcraid_instance *)filep->private_data; 3806 3807 if (!pinstance) { 3808 pmcraid_info("adapter instance is not found\n"); 3809 kfree(hdr); 3810 return -ENOTTY; 3811 } 3812 3813 switch (_IOC_TYPE(cmd)) { 3814 3815 case PMCRAID_PASSTHROUGH_IOCTL: 3816 /* If ioctl code is to download microcode, we need to block 3817 * mid-layer requests. 3818 */ 3819 if (cmd == PMCRAID_IOCTL_DOWNLOAD_MICROCODE) 3820 scsi_block_requests(pinstance->host); 3821 3822 retval = pmcraid_ioctl_passthrough(pinstance, 3823 cmd, 3824 hdr->buffer_length, 3825 arg); 3826 3827 if (cmd == PMCRAID_IOCTL_DOWNLOAD_MICROCODE) 3828 scsi_unblock_requests(pinstance->host); 3829 break; 3830 3831 case PMCRAID_DRIVER_IOCTL: 3832 arg += sizeof(struct pmcraid_ioctl_header); 3833 retval = pmcraid_ioctl_driver(pinstance, 3834 cmd, 3835 hdr->buffer_length, 3836 (void __user *)arg); 3837 break; 3838 3839 default: 3840 retval = -ENOTTY; 3841 break; 3842 } 3843 3844 kfree(hdr); 3845 3846 return retval; 3847 } 3848 3849 /** 3850 * File operations structure for management interface 3851 */ 3852 static const struct file_operations pmcraid_fops = { 3853 .owner = THIS_MODULE, 3854 .open = pmcraid_chr_open, 3855 .release = pmcraid_chr_release, 3856 .fasync = pmcraid_chr_fasync, 3857 .unlocked_ioctl = pmcraid_chr_ioctl, 3858 #ifdef CONFIG_COMPAT 3859 .compat_ioctl = pmcraid_chr_ioctl, 3860 #endif 3861 }; 3862 3863 3864 3865 3866 /** 3867 * pmcraid_show_log_level - Display adapter's error logging level 3868 * @dev: class device struct 3869 * @buf: buffer 3870 * 3871 * Return value: 3872 * number of bytes printed to buffer 3873 */ 3874 static ssize_t pmcraid_show_log_level( 3875 struct device *dev, 3876 struct device_attribute *attr, 3877 char *buf) 3878 { 3879 struct Scsi_Host *shost = class_to_shost(dev); 3880 struct pmcraid_instance *pinstance = 3881 (struct pmcraid_instance *)shost->hostdata; 3882 return snprintf(buf, PAGE_SIZE, "%d\n", pinstance->current_log_level); 3883 } 3884 3885 /** 3886 * pmcraid_store_log_level - Change the adapter's error logging level 3887 * @dev: class device struct 3888 * @buf: buffer 3889 * @count: not used 3890 * 3891 * Return value: 3892 * number of bytes printed to buffer 3893 */ 3894 static ssize_t pmcraid_store_log_level( 3895 struct device *dev, 3896 struct device_attribute *attr, 3897 const char *buf, 3898 size_t count 3899 ) 3900 { 3901 struct Scsi_Host *shost; 3902 struct pmcraid_instance *pinstance; 3903 unsigned long val; 3904 3905 if (strict_strtoul(buf, 10, &val)) 3906 return -EINVAL; 3907 /* log-level should be from 0 to 2 */ 3908 if (val > 2) 3909 return -EINVAL; 3910 3911 shost = class_to_shost(dev); 3912 pinstance = (struct pmcraid_instance *)shost->hostdata; 3913 pinstance->current_log_level = val; 3914 3915 return strlen(buf); 3916 } 3917 3918 static struct device_attribute pmcraid_log_level_attr = { 3919 .attr = { 3920 .name = "log_level", 3921 .mode = S_IRUGO | S_IWUSR, 3922 }, 3923 .show = pmcraid_show_log_level, 3924 .store = pmcraid_store_log_level, 3925 }; 3926 3927 /** 3928 * pmcraid_show_drv_version - Display driver version 3929 * @dev: class device struct 3930 * @buf: buffer 3931 * 3932 * Return value: 3933 * number of bytes printed to buffer 3934 */ 3935 static ssize_t pmcraid_show_drv_version( 3936 struct device *dev, 3937 struct device_attribute *attr, 3938 char *buf 3939 ) 3940 { 3941 return snprintf(buf, PAGE_SIZE, "version: %s, build date: %s\n", 3942 PMCRAID_DRIVER_VERSION, PMCRAID_DRIVER_DATE); 3943 } 3944 3945 static struct device_attribute pmcraid_driver_version_attr = { 3946 .attr = { 3947 .name = "drv_version", 3948 .mode = S_IRUGO, 3949 }, 3950 .show = pmcraid_show_drv_version, 3951 }; 3952 3953 /** 3954 * pmcraid_show_io_adapter_id - Display driver assigned adapter id 3955 * @dev: class device struct 3956 * @buf: buffer 3957 * 3958 * Return value: 3959 * number of bytes printed to buffer 3960 */ 3961 static ssize_t pmcraid_show_adapter_id( 3962 struct device *dev, 3963 struct device_attribute *attr, 3964 char *buf 3965 ) 3966 { 3967 struct Scsi_Host *shost = class_to_shost(dev); 3968 struct pmcraid_instance *pinstance = 3969 (struct pmcraid_instance *)shost->hostdata; 3970 u32 adapter_id = (pinstance->pdev->bus->number << 8) | 3971 pinstance->pdev->devfn; 3972 u32 aen_group = pmcraid_event_family.id; 3973 3974 return snprintf(buf, PAGE_SIZE, 3975 "adapter id: %d\nminor: %d\naen group: %d\n", 3976 adapter_id, MINOR(pinstance->cdev.dev), aen_group); 3977 } 3978 3979 static struct device_attribute pmcraid_adapter_id_attr = { 3980 .attr = { 3981 .name = "adapter_id", 3982 .mode = S_IRUGO | S_IWUSR, 3983 }, 3984 .show = pmcraid_show_adapter_id, 3985 }; 3986 3987 static struct device_attribute *pmcraid_host_attrs[] = { 3988 &pmcraid_log_level_attr, 3989 &pmcraid_driver_version_attr, 3990 &pmcraid_adapter_id_attr, 3991 NULL, 3992 }; 3993 3994 3995 /* host template structure for pmcraid driver */ 3996 static struct scsi_host_template pmcraid_host_template = { 3997 .module = THIS_MODULE, 3998 .name = PMCRAID_DRIVER_NAME, 3999 .queuecommand = pmcraid_queuecommand, 4000 .eh_abort_handler = pmcraid_eh_abort_handler, 4001 .eh_bus_reset_handler = pmcraid_eh_bus_reset_handler, 4002 .eh_target_reset_handler = pmcraid_eh_target_reset_handler, 4003 .eh_device_reset_handler = pmcraid_eh_device_reset_handler, 4004 .eh_host_reset_handler = pmcraid_eh_host_reset_handler, 4005 4006 .slave_alloc = pmcraid_slave_alloc, 4007 .slave_configure = pmcraid_slave_configure, 4008 .slave_destroy = pmcraid_slave_destroy, 4009 .change_queue_depth = pmcraid_change_queue_depth, 4010 .change_queue_type = pmcraid_change_queue_type, 4011 .can_queue = PMCRAID_MAX_IO_CMD, 4012 .this_id = -1, 4013 .sg_tablesize = PMCRAID_MAX_IOADLS, 4014 .max_sectors = PMCRAID_IOA_MAX_SECTORS, 4015 .cmd_per_lun = PMCRAID_MAX_CMD_PER_LUN, 4016 .use_clustering = ENABLE_CLUSTERING, 4017 .shost_attrs = pmcraid_host_attrs, 4018 .proc_name = PMCRAID_DRIVER_NAME 4019 }; 4020 4021 /** 4022 * pmcraid_isr_common - Common interrupt handler routine 4023 * 4024 * @pinstance: pointer to adapter instance 4025 * @intrs: active interrupts (contents of ioa_host_interrupt register) 4026 * @hrrq_id: Host RRQ index 4027 * 4028 * Return Value 4029 * none 4030 */ 4031 static void pmcraid_isr_common( 4032 struct pmcraid_instance *pinstance, 4033 u32 intrs, 4034 int hrrq_id 4035 ) 4036 { 4037 u32 intrs_clear = 4038 (intrs & INTRS_CRITICAL_OP_IN_PROGRESS) ? intrs 4039 : INTRS_HRRQ_VALID; 4040 iowrite32(intrs_clear, 4041 pinstance->int_regs.ioa_host_interrupt_clr_reg); 4042 intrs = ioread32(pinstance->int_regs.ioa_host_interrupt_reg); 4043 4044 /* hrrq valid bit was set, schedule tasklet to handle the response */ 4045 if (intrs_clear == INTRS_HRRQ_VALID) 4046 tasklet_schedule(&(pinstance->isr_tasklet[hrrq_id])); 4047 } 4048 4049 /** 4050 * pmcraid_isr - implements interrupt handling routine 4051 * 4052 * @irq: interrupt vector number 4053 * @dev_id: pointer hrrq_vector 4054 * 4055 * Return Value 4056 * IRQ_HANDLED if interrupt is handled or IRQ_NONE if ignored 4057 */ 4058 static irqreturn_t pmcraid_isr(int irq, void *dev_id) 4059 { 4060 struct pmcraid_isr_param *hrrq_vector; 4061 struct pmcraid_instance *pinstance; 4062 unsigned long lock_flags; 4063 u32 intrs; 4064 4065 /* In case of legacy interrupt mode where interrupts are shared across 4066 * isrs, it may be possible that the current interrupt is not from IOA 4067 */ 4068 if (!dev_id) { 4069 printk(KERN_INFO "%s(): NULL host pointer\n", __func__); 4070 return IRQ_NONE; 4071 } 4072 4073 hrrq_vector = (struct pmcraid_isr_param *)dev_id; 4074 pinstance = hrrq_vector->drv_inst; 4075 4076 /* Acquire the lock (currently host_lock) while processing interrupts. 4077 * This interval is small as most of the response processing is done by 4078 * tasklet without the lock. 4079 */ 4080 spin_lock_irqsave(pinstance->host->host_lock, lock_flags); 4081 intrs = pmcraid_read_interrupts(pinstance); 4082 4083 if (unlikely((intrs & PMCRAID_PCI_INTERRUPTS) == 0)) { 4084 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 4085 return IRQ_NONE; 4086 } 4087 4088 /* Any error interrupts including unit_check, initiate IOA reset. 4089 * In case of unit check indicate to reset_sequence that IOA unit 4090 * checked and prepare for a dump during reset sequence 4091 */ 4092 if (intrs & PMCRAID_ERROR_INTERRUPTS) { 4093 4094 if (intrs & INTRS_IOA_UNIT_CHECK) 4095 pinstance->ioa_unit_check = 1; 4096 4097 iowrite32(intrs, 4098 pinstance->int_regs.ioa_host_interrupt_clr_reg); 4099 pmcraid_err("ISR: error interrupts: %x initiating reset\n", 4100 intrs); 4101 intrs = ioread32(pinstance->int_regs.ioa_host_interrupt_reg); 4102 pmcraid_initiate_reset(pinstance); 4103 } else { 4104 pmcraid_isr_common(pinstance, intrs, hrrq_vector->hrrq_id); 4105 } 4106 4107 spin_unlock_irqrestore(pinstance->host->host_lock, lock_flags); 4108 4109 return IRQ_HANDLED; 4110 } 4111 4112 4113 /** 4114 * pmcraid_worker_function - worker thread function 4115 * 4116 * @workp: pointer to struct work queue 4117 * 4118 * Return Value 4119 * None 4120 */ 4121 4122 static void pmcraid_worker_function(struct work_struct *workp) 4123 { 4124 struct pmcraid_instance *pinstance; 4125 struct pmcraid_resource_entry *res; 4126 struct pmcraid_resource_entry *temp; 4127 struct scsi_device *sdev; 4128 unsigned long lock_flags; 4129 unsigned long host_lock_flags; 4130 u8 bus, target, lun; 4131 4132 pinstance = container_of(workp, struct pmcraid_instance, worker_q); 4133 /* add resources only after host is added into system */ 4134 if (!atomic_read(&pinstance->expose_resources)) 4135 return; 4136 4137 spin_lock_irqsave(&pinstance->resource_lock, lock_flags); 4138 list_for_each_entry_safe(res, temp, &pinstance->used_res_q, queue) { 4139 4140 if (res->change_detected == RES_CHANGE_DEL && res->scsi_dev) { 4141 sdev = res->scsi_dev; 4142 4143 /* host_lock must be held before calling 4144 * scsi_device_get 4145 */ 4146 spin_lock_irqsave(pinstance->host->host_lock, 4147 host_lock_flags); 4148 if (!scsi_device_get(sdev)) { 4149 spin_unlock_irqrestore( 4150 pinstance->host->host_lock, 4151 host_lock_flags); 4152 pmcraid_info("deleting %x from midlayer\n", 4153 res->cfg_entry.resource_address); 4154 list_move_tail(&res->queue, 4155 &pinstance->free_res_q); 4156 spin_unlock_irqrestore( 4157 &pinstance->resource_lock, 4158 lock_flags); 4159 scsi_remove_device(sdev); 4160 scsi_device_put(sdev); 4161 spin_lock_irqsave(&pinstance->resource_lock, 4162 lock_flags); 4163 res->change_detected = 0; 4164 } else { 4165 spin_unlock_irqrestore( 4166 pinstance->host->host_lock, 4167 host_lock_flags); 4168 } 4169 } 4170 } 4171 4172 list_for_each_entry(res, &pinstance->used_res_q, queue) { 4173 4174 if (res->change_detected == RES_CHANGE_ADD) { 4175 4176 if (!pmcraid_expose_resource(&res->cfg_entry)) 4177 continue; 4178 4179 if (RES_IS_VSET(res->cfg_entry)) { 4180 bus = PMCRAID_VSET_BUS_ID; 4181 target = res->cfg_entry.unique_flags1; 4182 lun = PMCRAID_VSET_LUN_ID; 4183 } else { 4184 bus = PMCRAID_PHYS_BUS_ID; 4185 target = 4186 RES_TARGET( 4187 res->cfg_entry.resource_address); 4188 lun = RES_LUN(res->cfg_entry.resource_address); 4189 } 4190 4191 res->change_detected = 0; 4192 spin_unlock_irqrestore(&pinstance->resource_lock, 4193 lock_flags); 4194 scsi_add_device(pinstance->host, bus, target, lun); 4195 spin_lock_irqsave(&pinstance->resource_lock, 4196 lock_flags); 4197 } 4198 } 4199 4200 spin_unlock_irqrestore(&pinstance->resource_lock, lock_flags); 4201 } 4202 4203 /** 4204 * pmcraid_tasklet_function - Tasklet function 4205 * 4206 * @instance: pointer to msix param structure 4207 * 4208 * Return Value 4209 * None 4210 */ 4211 void pmcraid_tasklet_function(unsigned long instance) 4212 { 4213 struct pmcraid_isr_param *hrrq_vector; 4214 struct pmcraid_instance *pinstance; 4215 unsigned long hrrq_lock_flags; 4216 unsigned long pending_lock_flags; 4217 unsigned long host_lock_flags; 4218 spinlock_t *lockp; /* hrrq buffer lock */ 4219 int id; 4220 u32 intrs; 4221 __le32 resp; 4222 4223 hrrq_vector = (struct pmcraid_isr_param *)instance; 4224 pinstance = hrrq_vector->drv_inst; 4225 id = hrrq_vector->hrrq_id; 4226 lockp = &(pinstance->hrrq_lock[id]); 4227 intrs = pmcraid_read_interrupts(pinstance); 4228 4229 /* If interrupts was as part of the ioa initialization, clear and mask 4230 * it. Delete the timer and wakeup the reset engine to proceed with 4231 * reset sequence 4232 */ 4233 if (intrs & INTRS_TRANSITION_TO_OPERATIONAL) { 4234 iowrite32(INTRS_TRANSITION_TO_OPERATIONAL, 4235 pinstance->int_regs.ioa_host_interrupt_mask_reg); 4236 iowrite32(INTRS_TRANSITION_TO_OPERATIONAL, 4237 pinstance->int_regs.ioa_host_interrupt_clr_reg); 4238 4239 if (pinstance->reset_cmd != NULL) { 4240 del_timer(&pinstance->reset_cmd->timer); 4241 spin_lock_irqsave(pinstance->host->host_lock, 4242 host_lock_flags); 4243 pinstance->reset_cmd->cmd_done(pinstance->reset_cmd); 4244 spin_unlock_irqrestore(pinstance->host->host_lock, 4245 host_lock_flags); 4246 } 4247 return; 4248 } 4249 4250 /* loop through each of the commands responded by IOA. Each HRRQ buf is 4251 * protected by its own lock. Traversals must be done within this lock 4252 * as there may be multiple tasklets running on multiple CPUs. Note 4253 * that the lock is held just for picking up the response handle and 4254 * manipulating hrrq_curr/toggle_bit values. 4255 */ 4256 spin_lock_irqsave(lockp, hrrq_lock_flags); 4257 4258 resp = le32_to_cpu(*(pinstance->hrrq_curr[id])); 4259 4260 while ((resp & HRRQ_TOGGLE_BIT) == 4261 pinstance->host_toggle_bit[id]) { 4262 4263 int cmd_index = resp >> 2; 4264 struct pmcraid_cmd *cmd = NULL; 4265 4266 if (cmd_index < PMCRAID_MAX_CMD) { 4267 cmd = pinstance->cmd_list[cmd_index]; 4268 } else { 4269 /* In case of invalid response handle, initiate IOA 4270 * reset sequence. 4271 */ 4272 spin_unlock_irqrestore(lockp, hrrq_lock_flags); 4273 4274 pmcraid_err("Invalid response %d initiating reset\n", 4275 cmd_index); 4276 4277 spin_lock_irqsave(pinstance->host->host_lock, 4278 host_lock_flags); 4279 pmcraid_initiate_reset(pinstance); 4280 spin_unlock_irqrestore(pinstance->host->host_lock, 4281 host_lock_flags); 4282 4283 spin_lock_irqsave(lockp, hrrq_lock_flags); 4284 break; 4285 } 4286 4287 if (pinstance->hrrq_curr[id] < pinstance->hrrq_end[id]) { 4288 pinstance->hrrq_curr[id]++; 4289 } else { 4290 pinstance->hrrq_curr[id] = pinstance->hrrq_start[id]; 4291 pinstance->host_toggle_bit[id] ^= 1u; 4292 } 4293 4294 spin_unlock_irqrestore(lockp, hrrq_lock_flags); 4295 4296 spin_lock_irqsave(&pinstance->pending_pool_lock, 4297 pending_lock_flags); 4298 list_del(&cmd->free_list); 4299 spin_unlock_irqrestore(&pinstance->pending_pool_lock, 4300 pending_lock_flags); 4301 del_timer(&cmd->timer); 4302 atomic_dec(&pinstance->outstanding_cmds); 4303 4304 if (cmd->cmd_done == pmcraid_ioa_reset) { 4305 spin_lock_irqsave(pinstance->host->host_lock, 4306 host_lock_flags); 4307 cmd->cmd_done(cmd); 4308 spin_unlock_irqrestore(pinstance->host->host_lock, 4309 host_lock_flags); 4310 } else if (cmd->cmd_done != NULL) { 4311 cmd->cmd_done(cmd); 4312 } 4313 /* loop over until we are done with all responses */ 4314 spin_lock_irqsave(lockp, hrrq_lock_flags); 4315 resp = le32_to_cpu(*(pinstance->hrrq_curr[id])); 4316 } 4317 4318 spin_unlock_irqrestore(lockp, hrrq_lock_flags); 4319 } 4320 4321 /** 4322 * pmcraid_unregister_interrupt_handler - de-register interrupts handlers 4323 * @pinstance: pointer to adapter instance structure 4324 * 4325 * This routine un-registers registered interrupt handler and 4326 * also frees irqs/vectors. 4327 * 4328 * Retun Value 4329 * None 4330 */ 4331 static 4332 void pmcraid_unregister_interrupt_handler(struct pmcraid_instance *pinstance) 4333 { 4334 free_irq(pinstance->pdev->irq, &(pinstance->hrrq_vector[0])); 4335 } 4336 4337 /** 4338 * pmcraid_register_interrupt_handler - registers interrupt handler 4339 * @pinstance: pointer to per-adapter instance structure 4340 * 4341 * Return Value 4342 * 0 on success, non-zero error code otherwise. 4343 */ 4344 static int 4345 pmcraid_register_interrupt_handler(struct pmcraid_instance *pinstance) 4346 { 4347 struct pci_dev *pdev = pinstance->pdev; 4348 4349 pinstance->hrrq_vector[0].hrrq_id = 0; 4350 pinstance->hrrq_vector[0].drv_inst = pinstance; 4351 pinstance->hrrq_vector[0].vector = 0; 4352 pinstance->num_hrrq = 1; 4353 return request_irq(pdev->irq, pmcraid_isr, IRQF_SHARED, 4354 PMCRAID_DRIVER_NAME, &pinstance->hrrq_vector[0]); 4355 } 4356 4357 /** 4358 * pmcraid_release_cmd_blocks - release buufers allocated for command blocks 4359 * @pinstance: per adapter instance structure pointer 4360 * @max_index: number of buffer blocks to release 4361 * 4362 * Return Value 4363 * None 4364 */ 4365 static void 4366 pmcraid_release_cmd_blocks(struct pmcraid_instance *pinstance, int max_index) 4367 { 4368 int i; 4369 for (i = 0; i < max_index; i++) { 4370 kmem_cache_free(pinstance->cmd_cachep, pinstance->cmd_list[i]); 4371 pinstance->cmd_list[i] = NULL; 4372 } 4373 kmem_cache_destroy(pinstance->cmd_cachep); 4374 pinstance->cmd_cachep = NULL; 4375 } 4376 4377 /** 4378 * pmcraid_release_control_blocks - releases buffers alloced for control blocks 4379 * @pinstance: pointer to per adapter instance structure 4380 * @max_index: number of buffers (from 0 onwards) to release 4381 * 4382 * This function assumes that the command blocks for which control blocks are 4383 * linked are not released. 4384 * 4385 * Return Value 4386 * None 4387 */ 4388 static void 4389 pmcraid_release_control_blocks( 4390 struct pmcraid_instance *pinstance, 4391 int max_index 4392 ) 4393 { 4394 int i; 4395 4396 if (pinstance->control_pool == NULL) 4397 return; 4398 4399 for (i = 0; i < max_index; i++) { 4400 pci_pool_free(pinstance->control_pool, 4401 pinstance->cmd_list[i]->ioa_cb, 4402 pinstance->cmd_list[i]->ioa_cb_bus_addr); 4403 pinstance->cmd_list[i]->ioa_cb = NULL; 4404 pinstance->cmd_list[i]->ioa_cb_bus_addr = 0; 4405 } 4406 pci_pool_destroy(pinstance->control_pool); 4407 pinstance->control_pool = NULL; 4408 } 4409 4410 /** 4411 * pmcraid_allocate_cmd_blocks - allocate memory for cmd block structures 4412 * @pinstance - pointer to per adapter instance structure 4413 * 4414 * Allocates memory for command blocks using kernel slab allocator. 4415 * 4416 * Return Value 4417 * 0 in case of success; -ENOMEM in case of failure 4418 */ 4419 static int __devinit 4420 pmcraid_allocate_cmd_blocks(struct pmcraid_instance *pinstance) 4421 { 4422 int i; 4423 4424 sprintf(pinstance->cmd_pool_name, "pmcraid_cmd_pool_%d", 4425 pinstance->host->unique_id); 4426 4427 4428 pinstance->cmd_cachep = kmem_cache_create( 4429 pinstance->cmd_pool_name, 4430 sizeof(struct pmcraid_cmd), 0, 4431 SLAB_HWCACHE_ALIGN, NULL); 4432 if (!pinstance->cmd_cachep) 4433 return -ENOMEM; 4434 4435 for (i = 0; i < PMCRAID_MAX_CMD; i++) { 4436 pinstance->cmd_list[i] = 4437 kmem_cache_alloc(pinstance->cmd_cachep, GFP_KERNEL); 4438 if (!pinstance->cmd_list[i]) { 4439 pmcraid_release_cmd_blocks(pinstance, i); 4440 return -ENOMEM; 4441 } 4442 } 4443 return 0; 4444 } 4445 4446 /** 4447 * pmcraid_allocate_control_blocks - allocates memory control blocks 4448 * @pinstance : pointer to per adapter instance structure 4449 * 4450 * This function allocates PCI memory for DMAable buffers like IOARCB, IOADLs 4451 * and IOASAs. This is called after command blocks are already allocated. 4452 * 4453 * Return Value 4454 * 0 in case it can allocate all control blocks, otherwise -ENOMEM 4455 */ 4456 static int __devinit 4457 pmcraid_allocate_control_blocks(struct pmcraid_instance *pinstance) 4458 { 4459 int i; 4460 4461 sprintf(pinstance->ctl_pool_name, "pmcraid_control_pool_%d", 4462 pinstance->host->unique_id); 4463 4464 pinstance->control_pool = 4465 pci_pool_create(pinstance->ctl_pool_name, 4466 pinstance->pdev, 4467 sizeof(struct pmcraid_control_block), 4468 PMCRAID_IOARCB_ALIGNMENT, 0); 4469 4470 if (!pinstance->control_pool) 4471 return -ENOMEM; 4472 4473 for (i = 0; i < PMCRAID_MAX_CMD; i++) { 4474 pinstance->cmd_list[i]->ioa_cb = 4475 pci_pool_alloc( 4476 pinstance->control_pool, 4477 GFP_KERNEL, 4478 &(pinstance->cmd_list[i]->ioa_cb_bus_addr)); 4479 4480 if (!pinstance->cmd_list[i]->ioa_cb) { 4481 pmcraid_release_control_blocks(pinstance, i); 4482 return -ENOMEM; 4483 } 4484 memset(pinstance->cmd_list[i]->ioa_cb, 0, 4485 sizeof(struct pmcraid_control_block)); 4486 } 4487 return 0; 4488 } 4489 4490 /** 4491 * pmcraid_release_host_rrqs - release memory allocated for hrrq buffer(s) 4492 * @pinstance: pointer to per adapter instance structure 4493 * @maxindex: size of hrrq buffer pointer array 4494 * 4495 * Return Value 4496 * None 4497 */ 4498 static void 4499 pmcraid_release_host_rrqs(struct pmcraid_instance *pinstance, int maxindex) 4500 { 4501 int i; 4502 for (i = 0; i < maxindex; i++) { 4503 4504 pci_free_consistent(pinstance->pdev, 4505 HRRQ_ENTRY_SIZE * PMCRAID_MAX_CMD, 4506 pinstance->hrrq_start[i], 4507 pinstance->hrrq_start_bus_addr[i]); 4508 4509 /* reset pointers and toggle bit to zeros */ 4510 pinstance->hrrq_start[i] = NULL; 4511 pinstance->hrrq_start_bus_addr[i] = 0; 4512 pinstance->host_toggle_bit[i] = 0; 4513 } 4514 } 4515 4516 /** 4517 * pmcraid_allocate_host_rrqs - Allocate and initialize host RRQ buffers 4518 * @pinstance: pointer to per adapter instance structure 4519 * 4520 * Return value 4521 * 0 hrrq buffers are allocated, -ENOMEM otherwise. 4522 */ 4523 static int __devinit 4524 pmcraid_allocate_host_rrqs(struct pmcraid_instance *pinstance) 4525 { 4526 int i; 4527 int buf_count = PMCRAID_MAX_CMD / pinstance->num_hrrq; 4528 4529 for (i = 0; i < pinstance->num_hrrq; i++) { 4530 int buffer_size = HRRQ_ENTRY_SIZE * buf_count; 4531 4532 pinstance->hrrq_start[i] = 4533 pci_alloc_consistent( 4534 pinstance->pdev, 4535 buffer_size, 4536 &(pinstance->hrrq_start_bus_addr[i])); 4537 4538 if (pinstance->hrrq_start[i] == 0) { 4539 pmcraid_err("could not allocate host rrq: %d\n", i); 4540 pmcraid_release_host_rrqs(pinstance, i); 4541 return -ENOMEM; 4542 } 4543 4544 memset(pinstance->hrrq_start[i], 0, buffer_size); 4545 pinstance->hrrq_curr[i] = pinstance->hrrq_start[i]; 4546 pinstance->hrrq_end[i] = 4547 pinstance->hrrq_start[i] + buf_count - 1; 4548 pinstance->host_toggle_bit[i] = 1; 4549 spin_lock_init(&pinstance->hrrq_lock[i]); 4550 } 4551 return 0; 4552 } 4553 4554 /** 4555 * pmcraid_release_hcams - release HCAM buffers 4556 * 4557 * @pinstance: pointer to per adapter instance structure 4558 * 4559 * Return value 4560 * none 4561 */ 4562 static void pmcraid_release_hcams(struct pmcraid_instance *pinstance) 4563 { 4564 if (pinstance->ccn.msg != NULL) { 4565 pci_free_consistent(pinstance->pdev, 4566 PMCRAID_AEN_HDR_SIZE + 4567 sizeof(struct pmcraid_hcam_ccn), 4568 pinstance->ccn.msg, 4569 pinstance->ccn.baddr); 4570 4571 pinstance->ccn.msg = NULL; 4572 pinstance->ccn.hcam = NULL; 4573 pinstance->ccn.baddr = 0; 4574 } 4575 4576 if (pinstance->ldn.msg != NULL) { 4577 pci_free_consistent(pinstance->pdev, 4578 PMCRAID_AEN_HDR_SIZE + 4579 sizeof(struct pmcraid_hcam_ldn), 4580 pinstance->ldn.msg, 4581 pinstance->ldn.baddr); 4582 4583 pinstance->ldn.msg = NULL; 4584 pinstance->ldn.hcam = NULL; 4585 pinstance->ldn.baddr = 0; 4586 } 4587 } 4588 4589 /** 4590 * pmcraid_allocate_hcams - allocates HCAM buffers 4591 * @pinstance : pointer to per adapter instance structure 4592 * 4593 * Return Value: 4594 * 0 in case of successful allocation, non-zero otherwise 4595 */ 4596 static int pmcraid_allocate_hcams(struct pmcraid_instance *pinstance) 4597 { 4598 pinstance->ccn.msg = pci_alloc_consistent( 4599 pinstance->pdev, 4600 PMCRAID_AEN_HDR_SIZE + 4601 sizeof(struct pmcraid_hcam_ccn), 4602 &(pinstance->ccn.baddr)); 4603 4604 pinstance->ldn.msg = pci_alloc_consistent( 4605 pinstance->pdev, 4606 PMCRAID_AEN_HDR_SIZE + 4607 sizeof(struct pmcraid_hcam_ldn), 4608 &(pinstance->ldn.baddr)); 4609 4610 if (pinstance->ldn.msg == NULL || pinstance->ccn.msg == NULL) { 4611 pmcraid_release_hcams(pinstance); 4612 } else { 4613 pinstance->ccn.hcam = 4614 (void *)pinstance->ccn.msg + PMCRAID_AEN_HDR_SIZE; 4615 pinstance->ldn.hcam = 4616 (void *)pinstance->ldn.msg + PMCRAID_AEN_HDR_SIZE; 4617 4618 atomic_set(&pinstance->ccn.ignore, 0); 4619 atomic_set(&pinstance->ldn.ignore, 0); 4620 } 4621 4622 return (pinstance->ldn.msg == NULL) ? -ENOMEM : 0; 4623 } 4624 4625 /** 4626 * pmcraid_release_config_buffers - release config.table buffers 4627 * @pinstance: pointer to per adapter instance structure 4628 * 4629 * Return Value 4630 * none 4631 */ 4632 static void pmcraid_release_config_buffers(struct pmcraid_instance *pinstance) 4633 { 4634 if (pinstance->cfg_table != NULL && 4635 pinstance->cfg_table_bus_addr != 0) { 4636 pci_free_consistent(pinstance->pdev, 4637 sizeof(struct pmcraid_config_table), 4638 pinstance->cfg_table, 4639 pinstance->cfg_table_bus_addr); 4640 pinstance->cfg_table = NULL; 4641 pinstance->cfg_table_bus_addr = 0; 4642 } 4643 4644 if (pinstance->res_entries != NULL) { 4645 int i; 4646 4647 for (i = 0; i < PMCRAID_MAX_RESOURCES; i++) 4648 list_del(&pinstance->res_entries[i].queue); 4649 kfree(pinstance->res_entries); 4650 pinstance->res_entries = NULL; 4651 } 4652 4653 pmcraid_release_hcams(pinstance); 4654 } 4655 4656 /** 4657 * pmcraid_allocate_config_buffers - allocates DMAable memory for config table 4658 * @pinstance : pointer to per adapter instance structure 4659 * 4660 * Return Value 4661 * 0 for successful allocation, -ENOMEM for any failure 4662 */ 4663 static int __devinit 4664 pmcraid_allocate_config_buffers(struct pmcraid_instance *pinstance) 4665 { 4666 int i; 4667 4668 pinstance->res_entries = 4669 kzalloc(sizeof(struct pmcraid_resource_entry) * 4670 PMCRAID_MAX_RESOURCES, GFP_KERNEL); 4671 4672 if (NULL == pinstance->res_entries) { 4673 pmcraid_err("failed to allocate memory for resource table\n"); 4674 return -ENOMEM; 4675 } 4676 4677 for (i = 0; i < PMCRAID_MAX_RESOURCES; i++) 4678 list_add_tail(&pinstance->res_entries[i].queue, 4679 &pinstance->free_res_q); 4680 4681 pinstance->cfg_table = 4682 pci_alloc_consistent(pinstance->pdev, 4683 sizeof(struct pmcraid_config_table), 4684 &pinstance->cfg_table_bus_addr); 4685 4686 if (NULL == pinstance->cfg_table) { 4687 pmcraid_err("couldn't alloc DMA memory for config table\n"); 4688 pmcraid_release_config_buffers(pinstance); 4689 return -ENOMEM; 4690 } 4691 4692 if (pmcraid_allocate_hcams(pinstance)) { 4693 pmcraid_err("could not alloc DMA memory for HCAMS\n"); 4694 pmcraid_release_config_buffers(pinstance); 4695 return -ENOMEM; 4696 } 4697 4698 return 0; 4699 } 4700 4701 /** 4702 * pmcraid_init_tasklets - registers tasklets for response handling 4703 * 4704 * @pinstance: pointer adapter instance structure 4705 * 4706 * Return value 4707 * none 4708 */ 4709 static void pmcraid_init_tasklets(struct pmcraid_instance *pinstance) 4710 { 4711 int i; 4712 for (i = 0; i < pinstance->num_hrrq; i++) 4713 tasklet_init(&pinstance->isr_tasklet[i], 4714 pmcraid_tasklet_function, 4715 (unsigned long)&pinstance->hrrq_vector[i]); 4716 } 4717 4718 /** 4719 * pmcraid_kill_tasklets - destroys tasklets registered for response handling 4720 * 4721 * @pinstance: pointer to adapter instance structure 4722 * 4723 * Return value 4724 * none 4725 */ 4726 static void pmcraid_kill_tasklets(struct pmcraid_instance *pinstance) 4727 { 4728 int i; 4729 for (i = 0; i < pinstance->num_hrrq; i++) 4730 tasklet_kill(&pinstance->isr_tasklet[i]); 4731 } 4732 4733 /** 4734 * pmcraid_init_buffers - allocates memory and initializes various structures 4735 * @pinstance: pointer to per adapter instance structure 4736 * 4737 * This routine pre-allocates memory based on the type of block as below: 4738 * cmdblocks(PMCRAID_MAX_CMD): kernel memory using kernel's slab_allocator, 4739 * IOARCBs(PMCRAID_MAX_CMD) : DMAable memory, using pci pool allocator 4740 * config-table entries : DMAable memory using pci_alloc_consistent 4741 * HostRRQs : DMAable memory, using pci_alloc_consistent 4742 * 4743 * Return Value 4744 * 0 in case all of the blocks are allocated, -ENOMEM otherwise. 4745 */ 4746 static int __devinit pmcraid_init_buffers(struct pmcraid_instance *pinstance) 4747 { 4748 int i; 4749 4750 if (pmcraid_allocate_host_rrqs(pinstance)) { 4751 pmcraid_err("couldn't allocate memory for %d host rrqs\n", 4752 pinstance->num_hrrq); 4753 return -ENOMEM; 4754 } 4755 4756 if (pmcraid_allocate_config_buffers(pinstance)) { 4757 pmcraid_err("couldn't allocate memory for config buffers\n"); 4758 pmcraid_release_host_rrqs(pinstance, pinstance->num_hrrq); 4759 return -ENOMEM; 4760 } 4761 4762 if (pmcraid_allocate_cmd_blocks(pinstance)) { 4763 pmcraid_err("couldn't allocate memory for cmd blocks \n"); 4764 pmcraid_release_config_buffers(pinstance); 4765 pmcraid_release_host_rrqs(pinstance, pinstance->num_hrrq); 4766 return -ENOMEM; 4767 } 4768 4769 if (pmcraid_allocate_control_blocks(pinstance)) { 4770 pmcraid_err("couldn't allocate memory control blocks \n"); 4771 pmcraid_release_config_buffers(pinstance); 4772 pmcraid_release_cmd_blocks(pinstance, PMCRAID_MAX_CMD); 4773 pmcraid_release_host_rrqs(pinstance, pinstance->num_hrrq); 4774 return -ENOMEM; 4775 } 4776 4777 /* Initialize all the command blocks and add them to free pool. No 4778 * need to lock (free_pool_lock) as this is done in initialization 4779 * itself 4780 */ 4781 for (i = 0; i < PMCRAID_MAX_CMD; i++) { 4782 struct pmcraid_cmd *cmdp = pinstance->cmd_list[i]; 4783 pmcraid_init_cmdblk(cmdp, i); 4784 cmdp->drv_inst = pinstance; 4785 list_add_tail(&cmdp->free_list, &pinstance->free_cmd_pool); 4786 } 4787 4788 return 0; 4789 } 4790 4791 /** 4792 * pmcraid_reinit_buffers - resets various buffer pointers 4793 * @pinstance: pointer to adapter instance 4794 * Return value 4795 * none 4796 */ 4797 static void pmcraid_reinit_buffers(struct pmcraid_instance *pinstance) 4798 { 4799 int i; 4800 int buffer_size = HRRQ_ENTRY_SIZE * PMCRAID_MAX_CMD; 4801 4802 for (i = 0; i < pinstance->num_hrrq; i++) { 4803 memset(pinstance->hrrq_start[i], 0, buffer_size); 4804 pinstance->hrrq_curr[i] = pinstance->hrrq_start[i]; 4805 pinstance->hrrq_end[i] = 4806 pinstance->hrrq_start[i] + PMCRAID_MAX_CMD - 1; 4807 pinstance->host_toggle_bit[i] = 1; 4808 } 4809 } 4810 4811 /** 4812 * pmcraid_init_instance - initialize per instance data structure 4813 * @pdev: pointer to pci device structure 4814 * @host: pointer to Scsi_Host structure 4815 * @mapped_pci_addr: memory mapped IOA configuration registers 4816 * 4817 * Return Value 4818 * 0 on success, non-zero in case of any failure 4819 */ 4820 static int __devinit pmcraid_init_instance( 4821 struct pci_dev *pdev, 4822 struct Scsi_Host *host, 4823 void __iomem *mapped_pci_addr 4824 ) 4825 { 4826 struct pmcraid_instance *pinstance = 4827 (struct pmcraid_instance *)host->hostdata; 4828 4829 pinstance->host = host; 4830 pinstance->pdev = pdev; 4831 4832 /* Initialize register addresses */ 4833 pinstance->mapped_dma_addr = mapped_pci_addr; 4834 4835 /* Initialize chip-specific details */ 4836 { 4837 struct pmcraid_chip_details *chip_cfg = pinstance->chip_cfg; 4838 struct pmcraid_interrupts *pint_regs = &pinstance->int_regs; 4839 4840 pinstance->ioarrin = mapped_pci_addr + chip_cfg->ioarrin; 4841 4842 pint_regs->ioa_host_interrupt_reg = 4843 mapped_pci_addr + chip_cfg->ioa_host_intr; 4844 pint_regs->ioa_host_interrupt_clr_reg = 4845 mapped_pci_addr + chip_cfg->ioa_host_intr_clr; 4846 pint_regs->host_ioa_interrupt_reg = 4847 mapped_pci_addr + chip_cfg->host_ioa_intr; 4848 pint_regs->host_ioa_interrupt_clr_reg = 4849 mapped_pci_addr + chip_cfg->host_ioa_intr_clr; 4850 4851 /* Current version of firmware exposes interrupt mask set 4852 * and mask clr registers through memory mapped bar0. 4853 */ 4854 pinstance->mailbox = mapped_pci_addr + chip_cfg->mailbox; 4855 pinstance->ioa_status = mapped_pci_addr + chip_cfg->ioastatus; 4856 pint_regs->ioa_host_interrupt_mask_reg = 4857 mapped_pci_addr + chip_cfg->ioa_host_mask; 4858 pint_regs->ioa_host_interrupt_mask_clr_reg = 4859 mapped_pci_addr + chip_cfg->ioa_host_mask_clr; 4860 pint_regs->global_interrupt_mask_reg = 4861 mapped_pci_addr + chip_cfg->global_intr_mask; 4862 }; 4863 4864 pinstance->ioa_reset_attempts = 0; 4865 init_waitqueue_head(&pinstance->reset_wait_q); 4866 4867 atomic_set(&pinstance->outstanding_cmds, 0); 4868 atomic_set(&pinstance->expose_resources, 0); 4869 4870 INIT_LIST_HEAD(&pinstance->free_res_q); 4871 INIT_LIST_HEAD(&pinstance->used_res_q); 4872 INIT_LIST_HEAD(&pinstance->free_cmd_pool); 4873 INIT_LIST_HEAD(&pinstance->pending_cmd_pool); 4874 4875 spin_lock_init(&pinstance->free_pool_lock); 4876 spin_lock_init(&pinstance->pending_pool_lock); 4877 spin_lock_init(&pinstance->resource_lock); 4878 mutex_init(&pinstance->aen_queue_lock); 4879 4880 /* Work-queue (Shared) for deferred processing error handling */ 4881 INIT_WORK(&pinstance->worker_q, pmcraid_worker_function); 4882 4883 /* Initialize the default log_level */ 4884 pinstance->current_log_level = pmcraid_log_level; 4885 4886 /* Setup variables required for reset engine */ 4887 pinstance->ioa_state = IOA_STATE_UNKNOWN; 4888 pinstance->reset_cmd = NULL; 4889 return 0; 4890 } 4891 4892 /** 4893 * pmcraid_release_buffers - release per-adapter buffers allocated 4894 * 4895 * @pinstance: pointer to adapter soft state 4896 * 4897 * Return Value 4898 * none 4899 */ 4900 static void pmcraid_release_buffers(struct pmcraid_instance *pinstance) 4901 { 4902 pmcraid_release_config_buffers(pinstance); 4903 pmcraid_release_control_blocks(pinstance, PMCRAID_MAX_CMD); 4904 pmcraid_release_cmd_blocks(pinstance, PMCRAID_MAX_CMD); 4905 pmcraid_release_host_rrqs(pinstance, pinstance->num_hrrq); 4906 4907 } 4908 4909 /** 4910 * pmcraid_shutdown - shutdown adapter controller. 4911 * @pdev: pci device struct 4912 * 4913 * Issues an adapter shutdown to the card waits for its completion 4914 * 4915 * Return value 4916 * none 4917 */ 4918 static void pmcraid_shutdown(struct pci_dev *pdev) 4919 { 4920 struct pmcraid_instance *pinstance = pci_get_drvdata(pdev); 4921 pmcraid_reset_bringdown(pinstance); 4922 } 4923 4924 4925 /** 4926 * pmcraid_get_minor - returns unused minor number from minor number bitmap 4927 */ 4928 static unsigned short pmcraid_get_minor(void) 4929 { 4930 int minor; 4931 4932 minor = find_first_zero_bit(pmcraid_minor, sizeof(pmcraid_minor)); 4933 __set_bit(minor, pmcraid_minor); 4934 return minor; 4935 } 4936 4937 /** 4938 * pmcraid_release_minor - releases given minor back to minor number bitmap 4939 */ 4940 static void pmcraid_release_minor(unsigned short minor) 4941 { 4942 __clear_bit(minor, pmcraid_minor); 4943 } 4944 4945 /** 4946 * pmcraid_setup_chrdev - allocates a minor number and registers a char device 4947 * 4948 * @pinstance: pointer to adapter instance for which to register device 4949 * 4950 * Return value 4951 * 0 in case of success, otherwise non-zero 4952 */ 4953 static int pmcraid_setup_chrdev(struct pmcraid_instance *pinstance) 4954 { 4955 int minor; 4956 int error; 4957 4958 minor = pmcraid_get_minor(); 4959 cdev_init(&pinstance->cdev, &pmcraid_fops); 4960 pinstance->cdev.owner = THIS_MODULE; 4961 4962 error = cdev_add(&pinstance->cdev, MKDEV(pmcraid_major, minor), 1); 4963 4964 if (error) 4965 pmcraid_release_minor(minor); 4966 else 4967 device_create(pmcraid_class, NULL, MKDEV(pmcraid_major, minor), 4968 NULL, "pmcsas%u", minor); 4969 return error; 4970 } 4971 4972 /** 4973 * pmcraid_release_chrdev - unregisters per-adapter management interface 4974 * 4975 * @pinstance: pointer to adapter instance structure 4976 * 4977 * Return value 4978 * none 4979 */ 4980 static void pmcraid_release_chrdev(struct pmcraid_instance *pinstance) 4981 { 4982 pmcraid_release_minor(MINOR(pinstance->cdev.dev)); 4983 device_destroy(pmcraid_class, 4984 MKDEV(pmcraid_major, MINOR(pinstance->cdev.dev))); 4985 cdev_del(&pinstance->cdev); 4986 } 4987 4988 /** 4989 * pmcraid_remove - IOA hot plug remove entry point 4990 * @pdev: pci device struct 4991 * 4992 * Return value 4993 * none 4994 */ 4995 static void __devexit pmcraid_remove(struct pci_dev *pdev) 4996 { 4997 struct pmcraid_instance *pinstance = pci_get_drvdata(pdev); 4998 4999 /* remove the management interface (/dev file) for this device */ 5000 pmcraid_release_chrdev(pinstance); 5001 5002 /* remove host template from scsi midlayer */ 5003 scsi_remove_host(pinstance->host); 5004 5005 /* block requests from mid-layer */ 5006 scsi_block_requests(pinstance->host); 5007 5008 /* initiate shutdown adapter */ 5009 pmcraid_shutdown(pdev); 5010 5011 pmcraid_disable_interrupts(pinstance, ~0); 5012 flush_scheduled_work(); 5013 5014 pmcraid_kill_tasklets(pinstance); 5015 pmcraid_unregister_interrupt_handler(pinstance); 5016 pmcraid_release_buffers(pinstance); 5017 iounmap(pinstance->mapped_dma_addr); 5018 pci_release_regions(pdev); 5019 scsi_host_put(pinstance->host); 5020 pci_disable_device(pdev); 5021 5022 return; 5023 } 5024 5025 #ifdef CONFIG_PM 5026 /** 5027 * pmcraid_suspend - driver suspend entry point for power management 5028 * @pdev: PCI device structure 5029 * @state: PCI power state to suspend routine 5030 * 5031 * Return Value - 0 always 5032 */ 5033 static int pmcraid_suspend(struct pci_dev *pdev, pm_message_t state) 5034 { 5035 struct pmcraid_instance *pinstance = pci_get_drvdata(pdev); 5036 5037 pmcraid_shutdown(pdev); 5038 pmcraid_disable_interrupts(pinstance, ~0); 5039 pmcraid_kill_tasklets(pinstance); 5040 pci_set_drvdata(pinstance->pdev, pinstance); 5041 pmcraid_unregister_interrupt_handler(pinstance); 5042 pci_save_state(pdev); 5043 pci_disable_device(pdev); 5044 pci_set_power_state(pdev, pci_choose_state(pdev, state)); 5045 5046 return 0; 5047 } 5048 5049 /** 5050 * pmcraid_resume - driver resume entry point PCI power management 5051 * @pdev: PCI device structure 5052 * 5053 * Return Value - 0 in case of success. Error code in case of any failure 5054 */ 5055 static int pmcraid_resume(struct pci_dev *pdev) 5056 { 5057 struct pmcraid_instance *pinstance = pci_get_drvdata(pdev); 5058 struct Scsi_Host *host = pinstance->host; 5059 int rc; 5060 int hrrqs; 5061 5062 pci_set_power_state(pdev, PCI_D0); 5063 pci_enable_wake(pdev, PCI_D0, 0); 5064 pci_restore_state(pdev); 5065 5066 rc = pci_enable_device(pdev); 5067 5068 if (rc) { 5069 dev_err(&pdev->dev, "resume: Enable device failed\n"); 5070 return rc; 5071 } 5072 5073 pci_set_master(pdev); 5074 5075 if ((sizeof(dma_addr_t) == 4) || 5076 pci_set_dma_mask(pdev, DMA_BIT_MASK(64))) 5077 rc = pci_set_dma_mask(pdev, DMA_BIT_MASK(32)); 5078 5079 if (rc == 0) 5080 rc = pci_set_consistent_dma_mask(pdev, DMA_BIT_MASK(32)); 5081 5082 if (rc != 0) { 5083 dev_err(&pdev->dev, "resume: Failed to set PCI DMA mask\n"); 5084 goto disable_device; 5085 } 5086 5087 atomic_set(&pinstance->outstanding_cmds, 0); 5088 hrrqs = pinstance->num_hrrq; 5089 rc = pmcraid_register_interrupt_handler(pinstance); 5090 5091 if (rc) { 5092 dev_err(&pdev->dev, 5093 "resume: couldn't register interrupt handlers\n"); 5094 rc = -ENODEV; 5095 goto release_host; 5096 } 5097 5098 pmcraid_init_tasklets(pinstance); 5099 pmcraid_enable_interrupts(pinstance, PMCRAID_PCI_INTERRUPTS); 5100 5101 /* Start with hard reset sequence which brings up IOA to operational 5102 * state as well as completes the reset sequence. 5103 */ 5104 pinstance->ioa_hard_reset = 1; 5105 5106 /* Start IOA firmware initialization and bring card to Operational 5107 * state. 5108 */ 5109 if (pmcraid_reset_bringup(pinstance)) { 5110 dev_err(&pdev->dev, "couldn't initialize IOA \n"); 5111 rc = -ENODEV; 5112 goto release_tasklets; 5113 } 5114 5115 return 0; 5116 5117 release_tasklets: 5118 pmcraid_kill_tasklets(pinstance); 5119 pmcraid_unregister_interrupt_handler(pinstance); 5120 5121 release_host: 5122 scsi_host_put(host); 5123 5124 disable_device: 5125 pci_disable_device(pdev); 5126 5127 return rc; 5128 } 5129 5130 #else 5131 5132 #define pmcraid_suspend NULL 5133 #define pmcraid_resume NULL 5134 5135 #endif /* CONFIG_PM */ 5136 5137 /** 5138 * pmcraid_complete_ioa_reset - Called by either timer or tasklet during 5139 * completion of the ioa reset 5140 * @cmd: pointer to reset command block 5141 */ 5142 static void pmcraid_complete_ioa_reset(struct pmcraid_cmd *cmd) 5143 { 5144 struct pmcraid_instance *pinstance = cmd->drv_inst; 5145 unsigned long flags; 5146 5147 spin_lock_irqsave(pinstance->host->host_lock, flags); 5148 pmcraid_ioa_reset(cmd); 5149 spin_unlock_irqrestore(pinstance->host->host_lock, flags); 5150 scsi_unblock_requests(pinstance->host); 5151 schedule_work(&pinstance->worker_q); 5152 } 5153 5154 /** 5155 * pmcraid_set_supported_devs - sends SET SUPPORTED DEVICES to IOAFP 5156 * 5157 * @cmd: pointer to pmcraid_cmd structure 5158 * 5159 * Return Value 5160 * 0 for success or non-zero for failure cases 5161 */ 5162 static void pmcraid_set_supported_devs(struct pmcraid_cmd *cmd) 5163 { 5164 struct pmcraid_ioarcb *ioarcb = &cmd->ioa_cb->ioarcb; 5165 void (*cmd_done) (struct pmcraid_cmd *) = pmcraid_complete_ioa_reset; 5166 5167 pmcraid_reinit_cmdblk(cmd); 5168 5169 ioarcb->resource_handle = cpu_to_le32(PMCRAID_IOA_RES_HANDLE); 5170 ioarcb->request_type = REQ_TYPE_IOACMD; 5171 ioarcb->cdb[0] = PMCRAID_SET_SUPPORTED_DEVICES; 5172 ioarcb->cdb[1] = ALL_DEVICES_SUPPORTED; 5173 5174 /* If this was called as part of resource table reinitialization due to 5175 * lost CCN, it is enough to return the command block back to free pool 5176 * as part of set_supported_devs completion function. 5177 */ 5178 if (cmd->drv_inst->reinit_cfg_table) { 5179 cmd->drv_inst->reinit_cfg_table = 0; 5180 cmd->release = 1; 5181 cmd_done = pmcraid_reinit_cfgtable_done; 5182 } 5183 5184 /* we will be done with the reset sequence after set supported devices, 5185 * setup the done function to return the command block back to free 5186 * pool 5187 */ 5188 pmcraid_send_cmd(cmd, 5189 cmd_done, 5190 PMCRAID_SET_SUP_DEV_TIMEOUT, 5191 pmcraid_timeout_handler); 5192 return; 5193 } 5194 5195 /** 5196 * pmcraid_init_res_table - Initialize the resource table 5197 * @cmd: pointer to pmcraid command struct 5198 * 5199 * This function looks through the existing resource table, comparing 5200 * it with the config table. This function will take care of old/new 5201 * devices and schedule adding/removing them from the mid-layer 5202 * as appropriate. 5203 * 5204 * Return value 5205 * None 5206 */ 5207 static void pmcraid_init_res_table(struct pmcraid_cmd *cmd) 5208 { 5209 struct pmcraid_instance *pinstance = cmd->drv_inst; 5210 struct pmcraid_resource_entry *res, *temp; 5211 struct pmcraid_config_table_entry *cfgte; 5212 unsigned long lock_flags; 5213 int found, rc, i; 5214 LIST_HEAD(old_res); 5215 5216 if (pinstance->cfg_table->flags & MICROCODE_UPDATE_REQUIRED) 5217 pmcraid_err("IOA requires microcode download\n"); 5218 5219 /* resource list is protected by pinstance->resource_lock. 5220 * init_res_table can be called from probe (user-thread) or runtime 5221 * reset (timer/tasklet) 5222 */ 5223 spin_lock_irqsave(&pinstance->resource_lock, lock_flags); 5224 5225 list_for_each_entry_safe(res, temp, &pinstance->used_res_q, queue) 5226 list_move_tail(&res->queue, &old_res); 5227 5228 for (i = 0; i < pinstance->cfg_table->num_entries; i++) { 5229 cfgte = &pinstance->cfg_table->entries[i]; 5230 5231 if (!pmcraid_expose_resource(cfgte)) 5232 continue; 5233 5234 found = 0; 5235 5236 /* If this entry was already detected and initialized */ 5237 list_for_each_entry_safe(res, temp, &old_res, queue) { 5238 5239 rc = memcmp(&res->cfg_entry.resource_address, 5240 &cfgte->resource_address, 5241 sizeof(cfgte->resource_address)); 5242 if (!rc) { 5243 list_move_tail(&res->queue, 5244 &pinstance->used_res_q); 5245 found = 1; 5246 break; 5247 } 5248 } 5249 5250 /* If this is new entry, initialize it and add it the queue */ 5251 if (!found) { 5252 5253 if (list_empty(&pinstance->free_res_q)) { 5254 pmcraid_err("Too many devices attached\n"); 5255 break; 5256 } 5257 5258 found = 1; 5259 res = list_entry(pinstance->free_res_q.next, 5260 struct pmcraid_resource_entry, queue); 5261 5262 res->scsi_dev = NULL; 5263 res->change_detected = RES_CHANGE_ADD; 5264 res->reset_progress = 0; 5265 list_move_tail(&res->queue, &pinstance->used_res_q); 5266 } 5267 5268 /* copy new configuration table entry details into driver 5269 * maintained resource entry 5270 */ 5271 if (found) { 5272 memcpy(&res->cfg_entry, cfgte, 5273 sizeof(struct pmcraid_config_table_entry)); 5274 pmcraid_info("New res type:%x, vset:%x, addr:%x:\n", 5275 res->cfg_entry.resource_type, 5276 res->cfg_entry.unique_flags1, 5277 le32_to_cpu(res->cfg_entry.resource_address)); 5278 } 5279 } 5280 5281 /* Detect any deleted entries, mark them for deletion from mid-layer */ 5282 list_for_each_entry_safe(res, temp, &old_res, queue) { 5283 5284 if (res->scsi_dev) { 5285 res->change_detected = RES_CHANGE_DEL; 5286 res->cfg_entry.resource_handle = 5287 PMCRAID_INVALID_RES_HANDLE; 5288 list_move_tail(&res->queue, &pinstance->used_res_q); 5289 } else { 5290 list_move_tail(&res->queue, &pinstance->free_res_q); 5291 } 5292 } 5293 5294 /* release the resource list lock */ 5295 spin_unlock_irqrestore(&pinstance->resource_lock, lock_flags); 5296 pmcraid_set_supported_devs(cmd); 5297 } 5298 5299 /** 5300 * pmcraid_querycfg - Send a Query IOA Config to the adapter. 5301 * @cmd: pointer pmcraid_cmd struct 5302 * 5303 * This function sends a Query IOA Configuration command to the adapter to 5304 * retrieve the IOA configuration table. 5305 * 5306 * Return value: 5307 * none 5308 */ 5309 static void pmcraid_querycfg(struct pmcraid_cmd *cmd) 5310 { 5311 struct pmcraid_ioarcb *ioarcb = &cmd->ioa_cb->ioarcb; 5312 struct pmcraid_ioadl_desc *ioadl = ioarcb->add_data.u.ioadl; 5313 struct pmcraid_instance *pinstance = cmd->drv_inst; 5314 int cfg_table_size = cpu_to_be32(sizeof(struct pmcraid_config_table)); 5315 5316 ioarcb->request_type = REQ_TYPE_IOACMD; 5317 ioarcb->resource_handle = cpu_to_le32(PMCRAID_IOA_RES_HANDLE); 5318 5319 ioarcb->cdb[0] = PMCRAID_QUERY_IOA_CONFIG; 5320 5321 /* firmware requires 4-byte length field, specified in B.E format */ 5322 memcpy(&(ioarcb->cdb[10]), &cfg_table_size, sizeof(cfg_table_size)); 5323 5324 /* Since entire config table can be described by single IOADL, it can 5325 * be part of IOARCB itself 5326 */ 5327 ioarcb->ioadl_bus_addr = cpu_to_le64((cmd->ioa_cb_bus_addr) + 5328 offsetof(struct pmcraid_ioarcb, 5329 add_data.u.ioadl[0])); 5330 ioarcb->ioadl_length = cpu_to_le32(sizeof(struct pmcraid_ioadl_desc)); 5331 ioarcb->ioarcb_bus_addr &= ~(0x1FULL); 5332 5333 ioarcb->request_flags0 |= NO_LINK_DESCS; 5334 ioarcb->data_transfer_length = 5335 cpu_to_le32(sizeof(struct pmcraid_config_table)); 5336 5337 ioadl = &(ioarcb->add_data.u.ioadl[0]); 5338 ioadl->flags = IOADL_FLAGS_LAST_DESC; 5339 ioadl->address = cpu_to_le64(pinstance->cfg_table_bus_addr); 5340 ioadl->data_len = cpu_to_le32(sizeof(struct pmcraid_config_table)); 5341 5342 pmcraid_send_cmd(cmd, pmcraid_init_res_table, 5343 PMCRAID_INTERNAL_TIMEOUT, pmcraid_timeout_handler); 5344 } 5345 5346 5347 /** 5348 * pmcraid_probe - PCI probe entry pointer for PMC MaxRaid controller driver 5349 * @pdev: pointer to pci device structure 5350 * @dev_id: pointer to device ids structure 5351 * 5352 * Return Value 5353 * returns 0 if the device is claimed and successfully configured. 5354 * returns non-zero error code in case of any failure 5355 */ 5356 static int __devinit pmcraid_probe( 5357 struct pci_dev *pdev, 5358 const struct pci_device_id *dev_id 5359 ) 5360 { 5361 struct pmcraid_instance *pinstance; 5362 struct Scsi_Host *host; 5363 void __iomem *mapped_pci_addr; 5364 int rc = PCIBIOS_SUCCESSFUL; 5365 5366 if (atomic_read(&pmcraid_adapter_count) >= PMCRAID_MAX_ADAPTERS) { 5367 pmcraid_err 5368 ("maximum number(%d) of supported adapters reached\n", 5369 atomic_read(&pmcraid_adapter_count)); 5370 return -ENOMEM; 5371 } 5372 5373 atomic_inc(&pmcraid_adapter_count); 5374 rc = pci_enable_device(pdev); 5375 5376 if (rc) { 5377 dev_err(&pdev->dev, "Cannot enable adapter\n"); 5378 atomic_dec(&pmcraid_adapter_count); 5379 return rc; 5380 } 5381 5382 dev_info(&pdev->dev, 5383 "Found new IOA(%x:%x), Total IOA count: %d\n", 5384 pdev->vendor, pdev->device, 5385 atomic_read(&pmcraid_adapter_count)); 5386 5387 rc = pci_request_regions(pdev, PMCRAID_DRIVER_NAME); 5388 5389 if (rc < 0) { 5390 dev_err(&pdev->dev, 5391 "Couldn't register memory range of registers\n"); 5392 goto out_disable_device; 5393 } 5394 5395 mapped_pci_addr = pci_iomap(pdev, 0, 0); 5396 5397 if (!mapped_pci_addr) { 5398 dev_err(&pdev->dev, "Couldn't map PCI registers memory\n"); 5399 rc = -ENOMEM; 5400 goto out_release_regions; 5401 } 5402 5403 pci_set_master(pdev); 5404 5405 /* Firmware requires the system bus address of IOARCB to be within 5406 * 32-bit addressable range though it has 64-bit IOARRIN register. 5407 * However, firmware supports 64-bit streaming DMA buffers, whereas 5408 * coherent buffers are to be 32-bit. Since pci_alloc_consistent always 5409 * returns memory within 4GB (if not, change this logic), coherent 5410 * buffers are within firmware acceptible address ranges. 5411 */ 5412 if ((sizeof(dma_addr_t) == 4) || 5413 pci_set_dma_mask(pdev, DMA_BIT_MASK(64))) 5414 rc = pci_set_dma_mask(pdev, DMA_BIT_MASK(32)); 5415 5416 /* firmware expects 32-bit DMA addresses for IOARRIN register; set 32 5417 * bit mask for pci_alloc_consistent to return addresses within 4GB 5418 */ 5419 if (rc == 0) 5420 rc = pci_set_consistent_dma_mask(pdev, DMA_BIT_MASK(32)); 5421 5422 if (rc != 0) { 5423 dev_err(&pdev->dev, "Failed to set PCI DMA mask\n"); 5424 goto cleanup_nomem; 5425 } 5426 5427 host = scsi_host_alloc(&pmcraid_host_template, 5428 sizeof(struct pmcraid_instance)); 5429 5430 if (!host) { 5431 dev_err(&pdev->dev, "scsi_host_alloc failed!\n"); 5432 rc = -ENOMEM; 5433 goto cleanup_nomem; 5434 } 5435 5436 host->max_id = PMCRAID_MAX_NUM_TARGETS_PER_BUS; 5437 host->max_lun = PMCRAID_MAX_NUM_LUNS_PER_TARGET; 5438 host->unique_id = host->host_no; 5439 host->max_channel = PMCRAID_MAX_BUS_TO_SCAN; 5440 host->max_cmd_len = PMCRAID_MAX_CDB_LEN; 5441 5442 /* zero out entire instance structure */ 5443 pinstance = (struct pmcraid_instance *)host->hostdata; 5444 memset(pinstance, 0, sizeof(*pinstance)); 5445 5446 pinstance->chip_cfg = 5447 (struct pmcraid_chip_details *)(dev_id->driver_data); 5448 5449 rc = pmcraid_init_instance(pdev, host, mapped_pci_addr); 5450 5451 if (rc < 0) { 5452 dev_err(&pdev->dev, "failed to initialize adapter instance\n"); 5453 goto out_scsi_host_put; 5454 } 5455 5456 pci_set_drvdata(pdev, pinstance); 5457 5458 /* Save PCI config-space for use following the reset */ 5459 rc = pci_save_state(pinstance->pdev); 5460 5461 if (rc != 0) { 5462 dev_err(&pdev->dev, "Failed to save PCI config space\n"); 5463 goto out_scsi_host_put; 5464 } 5465 5466 pmcraid_disable_interrupts(pinstance, ~0); 5467 5468 rc = pmcraid_register_interrupt_handler(pinstance); 5469 5470 if (rc) { 5471 dev_err(&pdev->dev, "couldn't register interrupt handler\n"); 5472 goto out_scsi_host_put; 5473 } 5474 5475 pmcraid_init_tasklets(pinstance); 5476 5477 /* allocate verious buffers used by LLD.*/ 5478 rc = pmcraid_init_buffers(pinstance); 5479 5480 if (rc) { 5481 pmcraid_err("couldn't allocate memory blocks\n"); 5482 goto out_unregister_isr; 5483 } 5484 5485 /* check the reset type required */ 5486 pmcraid_reset_type(pinstance); 5487 5488 pmcraid_enable_interrupts(pinstance, PMCRAID_PCI_INTERRUPTS); 5489 5490 /* Start IOA firmware initialization and bring card to Operational 5491 * state. 5492 */ 5493 pmcraid_info("starting IOA initialization sequence\n"); 5494 if (pmcraid_reset_bringup(pinstance)) { 5495 dev_err(&pdev->dev, "couldn't initialize IOA \n"); 5496 rc = 1; 5497 goto out_release_bufs; 5498 } 5499 5500 /* Add adapter instance into mid-layer list */ 5501 rc = scsi_add_host(pinstance->host, &pdev->dev); 5502 if (rc != 0) { 5503 pmcraid_err("couldn't add host into mid-layer: %d\n", rc); 5504 goto out_release_bufs; 5505 } 5506 5507 scsi_scan_host(pinstance->host); 5508 5509 rc = pmcraid_setup_chrdev(pinstance); 5510 5511 if (rc != 0) { 5512 pmcraid_err("couldn't create mgmt interface, error: %x\n", 5513 rc); 5514 goto out_remove_host; 5515 } 5516 5517 /* Schedule worker thread to handle CCN and take care of adding and 5518 * removing devices to OS 5519 */ 5520 atomic_set(&pinstance->expose_resources, 1); 5521 schedule_work(&pinstance->worker_q); 5522 return rc; 5523 5524 out_remove_host: 5525 scsi_remove_host(host); 5526 5527 out_release_bufs: 5528 pmcraid_release_buffers(pinstance); 5529 5530 out_unregister_isr: 5531 pmcraid_kill_tasklets(pinstance); 5532 pmcraid_unregister_interrupt_handler(pinstance); 5533 5534 out_scsi_host_put: 5535 scsi_host_put(host); 5536 5537 cleanup_nomem: 5538 iounmap(mapped_pci_addr); 5539 5540 out_release_regions: 5541 pci_release_regions(pdev); 5542 5543 out_disable_device: 5544 atomic_dec(&pmcraid_adapter_count); 5545 pci_set_drvdata(pdev, NULL); 5546 pci_disable_device(pdev); 5547 return -ENODEV; 5548 } 5549 5550 /* 5551 * PCI driver structure of pcmraid driver 5552 */ 5553 static struct pci_driver pmcraid_driver = { 5554 .name = PMCRAID_DRIVER_NAME, 5555 .id_table = pmcraid_pci_table, 5556 .probe = pmcraid_probe, 5557 .remove = pmcraid_remove, 5558 .suspend = pmcraid_suspend, 5559 .resume = pmcraid_resume, 5560 .shutdown = pmcraid_shutdown 5561 }; 5562 5563 /** 5564 * pmcraid_init - module load entry point 5565 */ 5566 static int __init pmcraid_init(void) 5567 { 5568 dev_t dev; 5569 int error; 5570 5571 pmcraid_info("%s Device Driver version: %s %s\n", 5572 PMCRAID_DRIVER_NAME, 5573 PMCRAID_DRIVER_VERSION, PMCRAID_DRIVER_DATE); 5574 5575 error = alloc_chrdev_region(&dev, 0, 5576 PMCRAID_MAX_ADAPTERS, 5577 PMCRAID_DEVFILE); 5578 5579 if (error) { 5580 pmcraid_err("failed to get a major number for adapters\n"); 5581 goto out_init; 5582 } 5583 5584 pmcraid_major = MAJOR(dev); 5585 pmcraid_class = class_create(THIS_MODULE, PMCRAID_DEVFILE); 5586 5587 if (IS_ERR(pmcraid_class)) { 5588 error = PTR_ERR(pmcraid_class); 5589 pmcraid_err("failed to register with with sysfs, error = %x\n", 5590 error); 5591 goto out_unreg_chrdev; 5592 } 5593 5594 error = pmcraid_netlink_init(); 5595 5596 if (error) 5597 goto out_unreg_chrdev; 5598 5599 error = pci_register_driver(&pmcraid_driver); 5600 5601 if (error == 0) 5602 goto out_init; 5603 5604 pmcraid_err("failed to register pmcraid driver, error = %x\n", 5605 error); 5606 class_destroy(pmcraid_class); 5607 pmcraid_netlink_release(); 5608 5609 out_unreg_chrdev: 5610 unregister_chrdev_region(MKDEV(pmcraid_major, 0), PMCRAID_MAX_ADAPTERS); 5611 5612 out_init: 5613 return error; 5614 } 5615 5616 /** 5617 * pmcraid_exit - module unload entry point 5618 */ 5619 static void __exit pmcraid_exit(void) 5620 { 5621 pmcraid_netlink_release(); 5622 class_destroy(pmcraid_class); 5623 unregister_chrdev_region(MKDEV(pmcraid_major, 0), 5624 PMCRAID_MAX_ADAPTERS); 5625 pci_unregister_driver(&pmcraid_driver); 5626 } 5627 5628 module_init(pmcraid_init); 5629 module_exit(pmcraid_exit); 5630