1 #ifndef _SCSI_SCSI_HOST_H 2 #define _SCSI_SCSI_HOST_H 3 4 #include <linux/device.h> 5 #include <linux/list.h> 6 #include <linux/types.h> 7 #include <linux/workqueue.h> 8 #include <linux/mutex.h> 9 #include <linux/seq_file.h> 10 #include <linux/blk-mq.h> 11 #include <scsi/scsi.h> 12 13 struct request_queue; 14 struct block_device; 15 struct completion; 16 struct module; 17 struct scsi_cmnd; 18 struct scsi_device; 19 struct scsi_host_cmd_pool; 20 struct scsi_target; 21 struct Scsi_Host; 22 struct scsi_host_cmd_pool; 23 struct scsi_transport_template; 24 struct blk_queue_tags; 25 26 27 /* 28 * The various choices mean: 29 * NONE: Self evident. Host adapter is not capable of scatter-gather. 30 * ALL: Means that the host adapter module can do scatter-gather, 31 * and that there is no limit to the size of the table to which 32 * we scatter/gather data. The value we set here is the maximum 33 * single element sglist. To use chained sglists, the adapter 34 * has to set a value beyond ALL (and correctly use the chain 35 * handling API. 36 * Anything else: Indicates the maximum number of chains that can be 37 * used in one scatter-gather request. 38 */ 39 #define SG_NONE 0 40 #define SG_ALL SG_CHUNK_SIZE 41 42 #define MODE_UNKNOWN 0x00 43 #define MODE_INITIATOR 0x01 44 #define MODE_TARGET 0x02 45 46 #define DISABLE_CLUSTERING 0 47 #define ENABLE_CLUSTERING 1 48 49 struct scsi_host_template { 50 struct module *module; 51 const char *name; 52 53 /* 54 * Used to initialize old-style drivers. For new-style drivers 55 * just perform all work in your module initialization function. 56 * 57 * Status: OBSOLETE 58 */ 59 int (* detect)(struct scsi_host_template *); 60 61 /* 62 * Used as unload callback for hosts with old-style drivers. 63 * 64 * Status: OBSOLETE 65 */ 66 int (* release)(struct Scsi_Host *); 67 68 /* 69 * The info function will return whatever useful information the 70 * developer sees fit. If not provided, then the name field will 71 * be used instead. 72 * 73 * Status: OPTIONAL 74 */ 75 const char *(* info)(struct Scsi_Host *); 76 77 /* 78 * Ioctl interface 79 * 80 * Status: OPTIONAL 81 */ 82 int (* ioctl)(struct scsi_device *dev, int cmd, void __user *arg); 83 84 85 #ifdef CONFIG_COMPAT 86 /* 87 * Compat handler. Handle 32bit ABI. 88 * When unknown ioctl is passed return -ENOIOCTLCMD. 89 * 90 * Status: OPTIONAL 91 */ 92 int (* compat_ioctl)(struct scsi_device *dev, int cmd, void __user *arg); 93 #endif 94 95 /* 96 * The queuecommand function is used to queue up a scsi 97 * command block to the LLDD. When the driver finished 98 * processing the command the done callback is invoked. 99 * 100 * If queuecommand returns 0, then the HBA has accepted the 101 * command. The done() function must be called on the command 102 * when the driver has finished with it. (you may call done on the 103 * command before queuecommand returns, but in this case you 104 * *must* return 0 from queuecommand). 105 * 106 * Queuecommand may also reject the command, in which case it may 107 * not touch the command and must not call done() for it. 108 * 109 * There are two possible rejection returns: 110 * 111 * SCSI_MLQUEUE_DEVICE_BUSY: Block this device temporarily, but 112 * allow commands to other devices serviced by this host. 113 * 114 * SCSI_MLQUEUE_HOST_BUSY: Block all devices served by this 115 * host temporarily. 116 * 117 * For compatibility, any other non-zero return is treated the 118 * same as SCSI_MLQUEUE_HOST_BUSY. 119 * 120 * NOTE: "temporarily" means either until the next command for# 121 * this device/host completes, or a period of time determined by 122 * I/O pressure in the system if there are no other outstanding 123 * commands. 124 * 125 * STATUS: REQUIRED 126 */ 127 int (* queuecommand)(struct Scsi_Host *, struct scsi_cmnd *); 128 129 /* 130 * This is an error handling strategy routine. You don't need to 131 * define one of these if you don't want to - there is a default 132 * routine that is present that should work in most cases. For those 133 * driver authors that have the inclination and ability to write their 134 * own strategy routine, this is where it is specified. Note - the 135 * strategy routine is *ALWAYS* run in the context of the kernel eh 136 * thread. Thus you are guaranteed to *NOT* be in an interrupt 137 * handler when you execute this, and you are also guaranteed to 138 * *NOT* have any other commands being queued while you are in the 139 * strategy routine. When you return from this function, operations 140 * return to normal. 141 * 142 * See scsi_error.c scsi_unjam_host for additional comments about 143 * what this function should and should not be attempting to do. 144 * 145 * Status: REQUIRED (at least one of them) 146 */ 147 int (* eh_abort_handler)(struct scsi_cmnd *); 148 int (* eh_device_reset_handler)(struct scsi_cmnd *); 149 int (* eh_target_reset_handler)(struct scsi_cmnd *); 150 int (* eh_bus_reset_handler)(struct scsi_cmnd *); 151 int (* eh_host_reset_handler)(struct scsi_cmnd *); 152 153 /* 154 * Before the mid layer attempts to scan for a new device where none 155 * currently exists, it will call this entry in your driver. Should 156 * your driver need to allocate any structs or perform any other init 157 * items in order to send commands to a currently unused target/lun 158 * combo, then this is where you can perform those allocations. This 159 * is specifically so that drivers won't have to perform any kind of 160 * "is this a new device" checks in their queuecommand routine, 161 * thereby making the hot path a bit quicker. 162 * 163 * Return values: 0 on success, non-0 on failure 164 * 165 * Deallocation: If we didn't find any devices at this ID, you will 166 * get an immediate call to slave_destroy(). If we find something 167 * here then you will get a call to slave_configure(), then the 168 * device will be used for however long it is kept around, then when 169 * the device is removed from the system (or * possibly at reboot 170 * time), you will then get a call to slave_destroy(). This is 171 * assuming you implement slave_configure and slave_destroy. 172 * However, if you allocate memory and hang it off the device struct, 173 * then you must implement the slave_destroy() routine at a minimum 174 * in order to avoid leaking memory 175 * each time a device is tore down. 176 * 177 * Status: OPTIONAL 178 */ 179 int (* slave_alloc)(struct scsi_device *); 180 181 /* 182 * Once the device has responded to an INQUIRY and we know the 183 * device is online, we call into the low level driver with the 184 * struct scsi_device *. If the low level device driver implements 185 * this function, it *must* perform the task of setting the queue 186 * depth on the device. All other tasks are optional and depend 187 * on what the driver supports and various implementation details. 188 * 189 * Things currently recommended to be handled at this time include: 190 * 191 * 1. Setting the device queue depth. Proper setting of this is 192 * described in the comments for scsi_change_queue_depth. 193 * 2. Determining if the device supports the various synchronous 194 * negotiation protocols. The device struct will already have 195 * responded to INQUIRY and the results of the standard items 196 * will have been shoved into the various device flag bits, eg. 197 * device->sdtr will be true if the device supports SDTR messages. 198 * 3. Allocating command structs that the device will need. 199 * 4. Setting the default timeout on this device (if needed). 200 * 5. Anything else the low level driver might want to do on a device 201 * specific setup basis... 202 * 6. Return 0 on success, non-0 on error. The device will be marked 203 * as offline on error so that no access will occur. If you return 204 * non-0, your slave_destroy routine will never get called for this 205 * device, so don't leave any loose memory hanging around, clean 206 * up after yourself before returning non-0 207 * 208 * Status: OPTIONAL 209 */ 210 int (* slave_configure)(struct scsi_device *); 211 212 /* 213 * Immediately prior to deallocating the device and after all activity 214 * has ceased the mid layer calls this point so that the low level 215 * driver may completely detach itself from the scsi device and vice 216 * versa. The low level driver is responsible for freeing any memory 217 * it allocated in the slave_alloc or slave_configure calls. 218 * 219 * Status: OPTIONAL 220 */ 221 void (* slave_destroy)(struct scsi_device *); 222 223 /* 224 * Before the mid layer attempts to scan for a new device attached 225 * to a target where no target currently exists, it will call this 226 * entry in your driver. Should your driver need to allocate any 227 * structs or perform any other init items in order to send commands 228 * to a currently unused target, then this is where you can perform 229 * those allocations. 230 * 231 * Return values: 0 on success, non-0 on failure 232 * 233 * Status: OPTIONAL 234 */ 235 int (* target_alloc)(struct scsi_target *); 236 237 /* 238 * Immediately prior to deallocating the target structure, and 239 * after all activity to attached scsi devices has ceased, the 240 * midlayer calls this point so that the driver may deallocate 241 * and terminate any references to the target. 242 * 243 * Status: OPTIONAL 244 */ 245 void (* target_destroy)(struct scsi_target *); 246 247 /* 248 * If a host has the ability to discover targets on its own instead 249 * of scanning the entire bus, it can fill in this function and 250 * call scsi_scan_host(). This function will be called periodically 251 * until it returns 1 with the scsi_host and the elapsed time of 252 * the scan in jiffies. 253 * 254 * Status: OPTIONAL 255 */ 256 int (* scan_finished)(struct Scsi_Host *, unsigned long); 257 258 /* 259 * If the host wants to be called before the scan starts, but 260 * after the midlayer has set up ready for the scan, it can fill 261 * in this function. 262 * 263 * Status: OPTIONAL 264 */ 265 void (* scan_start)(struct Scsi_Host *); 266 267 /* 268 * Fill in this function to allow the queue depth of this host 269 * to be changeable (on a per device basis). Returns either 270 * the current queue depth setting (may be different from what 271 * was passed in) or an error. An error should only be 272 * returned if the requested depth is legal but the driver was 273 * unable to set it. If the requested depth is illegal, the 274 * driver should set and return the closest legal queue depth. 275 * 276 * Status: OPTIONAL 277 */ 278 int (* change_queue_depth)(struct scsi_device *, int); 279 280 /* 281 * This function determines the BIOS parameters for a given 282 * harddisk. These tend to be numbers that are made up by 283 * the host adapter. Parameters: 284 * size, device, list (heads, sectors, cylinders) 285 * 286 * Status: OPTIONAL 287 */ 288 int (* bios_param)(struct scsi_device *, struct block_device *, 289 sector_t, int []); 290 291 /* 292 * This function is called when one or more partitions on the 293 * device reach beyond the end of the device. 294 * 295 * Status: OPTIONAL 296 */ 297 void (*unlock_native_capacity)(struct scsi_device *); 298 299 /* 300 * Can be used to export driver statistics and other infos to the 301 * world outside the kernel ie. userspace and it also provides an 302 * interface to feed the driver with information. 303 * 304 * Status: OBSOLETE 305 */ 306 int (*show_info)(struct seq_file *, struct Scsi_Host *); 307 int (*write_info)(struct Scsi_Host *, char *, int); 308 309 /* 310 * This is an optional routine that allows the transport to become 311 * involved when a scsi io timer fires. The return value tells the 312 * timer routine how to finish the io timeout handling: 313 * EH_HANDLED: I fixed the error, please complete the command 314 * EH_RESET_TIMER: I need more time, reset the timer and 315 * begin counting again 316 * EH_NOT_HANDLED Begin normal error recovery 317 * 318 * Status: OPTIONAL 319 */ 320 enum blk_eh_timer_return (*eh_timed_out)(struct scsi_cmnd *); 321 322 /* This is an optional routine that allows transport to initiate 323 * LLD adapter or firmware reset using sysfs attribute. 324 * 325 * Return values: 0 on success, -ve value on failure. 326 * 327 * Status: OPTIONAL 328 */ 329 330 int (*host_reset)(struct Scsi_Host *shost, int reset_type); 331 #define SCSI_ADAPTER_RESET 1 332 #define SCSI_FIRMWARE_RESET 2 333 334 335 /* 336 * Name of proc directory 337 */ 338 const char *proc_name; 339 340 /* 341 * Used to store the procfs directory if a driver implements the 342 * show_info method. 343 */ 344 struct proc_dir_entry *proc_dir; 345 346 /* 347 * This determines if we will use a non-interrupt driven 348 * or an interrupt driven scheme. It is set to the maximum number 349 * of simultaneous commands a given host adapter will accept. 350 */ 351 int can_queue; 352 353 /* 354 * In many instances, especially where disconnect / reconnect are 355 * supported, our host also has an ID on the SCSI bus. If this is 356 * the case, then it must be reserved. Please set this_id to -1 if 357 * your setup is in single initiator mode, and the host lacks an 358 * ID. 359 */ 360 int this_id; 361 362 /* 363 * This determines the degree to which the host adapter is capable 364 * of scatter-gather. 365 */ 366 unsigned short sg_tablesize; 367 unsigned short sg_prot_tablesize; 368 369 /* 370 * Set this if the host adapter has limitations beside segment count. 371 */ 372 unsigned int max_sectors; 373 374 /* 375 * DMA scatter gather segment boundary limit. A segment crossing this 376 * boundary will be split in two. 377 */ 378 unsigned long dma_boundary; 379 380 /* 381 * This specifies "machine infinity" for host templates which don't 382 * limit the transfer size. Note this limit represents an absolute 383 * maximum, and may be over the transfer limits allowed for 384 * individual devices (e.g. 256 for SCSI-1). 385 */ 386 #define SCSI_DEFAULT_MAX_SECTORS 1024 387 388 /* 389 * True if this host adapter can make good use of linked commands. 390 * This will allow more than one command to be queued to a given 391 * unit on a given host. Set this to the maximum number of command 392 * blocks to be provided for each device. Set this to 1 for one 393 * command block per lun, 2 for two, etc. Do not set this to 0. 394 * You should make sure that the host adapter will do the right thing 395 * before you try setting this above 1. 396 */ 397 short cmd_per_lun; 398 399 /* 400 * present contains counter indicating how many boards of this 401 * type were found when we did the scan. 402 */ 403 unsigned char present; 404 405 /* If use block layer to manage tags, this is tag allocation policy */ 406 int tag_alloc_policy; 407 408 /* 409 * Track QUEUE_FULL events and reduce queue depth on demand. 410 */ 411 unsigned track_queue_depth:1; 412 413 /* 414 * This specifies the mode that a LLD supports. 415 */ 416 unsigned supported_mode:2; 417 418 /* 419 * True if this host adapter uses unchecked DMA onto an ISA bus. 420 */ 421 unsigned unchecked_isa_dma:1; 422 423 /* 424 * True if this host adapter can make good use of clustering. 425 * I originally thought that if the tablesize was large that it 426 * was a waste of CPU cycles to prepare a cluster list, but 427 * it works out that the Buslogic is faster if you use a smaller 428 * number of segments (i.e. use clustering). I guess it is 429 * inefficient. 430 */ 431 unsigned use_clustering:1; 432 433 /* 434 * True for emulated SCSI host adapters (e.g. ATAPI). 435 */ 436 unsigned emulated:1; 437 438 /* 439 * True if the low-level driver performs its own reset-settle delays. 440 */ 441 unsigned skip_settle_delay:1; 442 443 /* True if the controller does not support WRITE SAME */ 444 unsigned no_write_same:1; 445 446 /* 447 * True if asynchronous aborts are not supported 448 */ 449 unsigned no_async_abort:1; 450 451 /* 452 * Countdown for host blocking with no commands outstanding. 453 */ 454 unsigned int max_host_blocked; 455 456 /* 457 * Default value for the blocking. If the queue is empty, 458 * host_blocked counts down in the request_fn until it restarts 459 * host operations as zero is reached. 460 * 461 * FIXME: This should probably be a value in the template 462 */ 463 #define SCSI_DEFAULT_HOST_BLOCKED 7 464 465 /* 466 * Pointer to the sysfs class properties for this host, NULL terminated. 467 */ 468 struct device_attribute **shost_attrs; 469 470 /* 471 * Pointer to the SCSI device properties for this host, NULL terminated. 472 */ 473 struct device_attribute **sdev_attrs; 474 475 /* 476 * List of hosts per template. 477 * 478 * This is only for use by scsi_module.c for legacy templates. 479 * For these access to it is synchronized implicitly by 480 * module_init/module_exit. 481 */ 482 struct list_head legacy_hosts; 483 484 /* 485 * Vendor Identifier associated with the host 486 * 487 * Note: When specifying vendor_id, be sure to read the 488 * Vendor Type and ID formatting requirements specified in 489 * scsi_netlink.h 490 */ 491 u64 vendor_id; 492 493 /* 494 * Additional per-command data allocated for the driver. 495 */ 496 unsigned int cmd_size; 497 struct scsi_host_cmd_pool *cmd_pool; 498 499 /* temporary flag to disable blk-mq I/O path */ 500 bool disable_blk_mq; 501 }; 502 503 /* 504 * Temporary #define for host lock push down. Can be removed when all 505 * drivers have been updated to take advantage of unlocked 506 * queuecommand. 507 * 508 */ 509 #define DEF_SCSI_QCMD(func_name) \ 510 int func_name(struct Scsi_Host *shost, struct scsi_cmnd *cmd) \ 511 { \ 512 unsigned long irq_flags; \ 513 int rc; \ 514 spin_lock_irqsave(shost->host_lock, irq_flags); \ 515 scsi_cmd_get_serial(shost, cmd); \ 516 rc = func_name##_lck (cmd, cmd->scsi_done); \ 517 spin_unlock_irqrestore(shost->host_lock, irq_flags); \ 518 return rc; \ 519 } 520 521 522 /* 523 * shost state: If you alter this, you also need to alter scsi_sysfs.c 524 * (for the ascii descriptions) and the state model enforcer: 525 * scsi_host_set_state() 526 */ 527 enum scsi_host_state { 528 SHOST_CREATED = 1, 529 SHOST_RUNNING, 530 SHOST_CANCEL, 531 SHOST_DEL, 532 SHOST_RECOVERY, 533 SHOST_CANCEL_RECOVERY, 534 SHOST_DEL_RECOVERY, 535 }; 536 537 struct Scsi_Host { 538 /* 539 * __devices is protected by the host_lock, but you should 540 * usually use scsi_device_lookup / shost_for_each_device 541 * to access it and don't care about locking yourself. 542 * In the rare case of being in irq context you can use 543 * their __ prefixed variants with the lock held. NEVER 544 * access this list directly from a driver. 545 */ 546 struct list_head __devices; 547 struct list_head __targets; 548 549 struct scsi_host_cmd_pool *cmd_pool; 550 spinlock_t free_list_lock; 551 struct list_head free_list; /* backup store of cmd structs */ 552 struct list_head starved_list; 553 554 spinlock_t default_lock; 555 spinlock_t *host_lock; 556 557 struct mutex scan_mutex;/* serialize scanning activity */ 558 559 struct list_head eh_cmd_q; 560 struct task_struct * ehandler; /* Error recovery thread. */ 561 struct completion * eh_action; /* Wait for specific actions on the 562 host. */ 563 wait_queue_head_t host_wait; 564 struct scsi_host_template *hostt; 565 struct scsi_transport_template *transportt; 566 567 /* 568 * Area to keep a shared tag map (if needed, will be 569 * NULL if not). 570 */ 571 union { 572 struct blk_queue_tag *bqt; 573 struct blk_mq_tag_set tag_set; 574 }; 575 576 atomic_t host_busy; /* commands actually active on low-level */ 577 atomic_t host_blocked; 578 579 unsigned int host_failed; /* commands that failed. 580 protected by host_lock */ 581 unsigned int host_eh_scheduled; /* EH scheduled without command */ 582 583 unsigned int host_no; /* Used for IOCTL_GET_IDLUN, /proc/scsi et al. */ 584 585 /* next two fields are used to bound the time spent in error handling */ 586 int eh_deadline; 587 unsigned long last_reset; 588 589 590 /* 591 * These three parameters can be used to allow for wide scsi, 592 * and for host adapters that support multiple busses 593 * The last two should be set to 1 more than the actual max id 594 * or lun (e.g. 8 for SCSI parallel systems). 595 */ 596 unsigned int max_channel; 597 unsigned int max_id; 598 u64 max_lun; 599 600 /* 601 * This is a unique identifier that must be assigned so that we 602 * have some way of identifying each detected host adapter properly 603 * and uniquely. For hosts that do not support more than one card 604 * in the system at one time, this does not need to be set. It is 605 * initialized to 0 in scsi_register. 606 */ 607 unsigned int unique_id; 608 609 /* 610 * The maximum length of SCSI commands that this host can accept. 611 * Probably 12 for most host adapters, but could be 16 for others. 612 * or 260 if the driver supports variable length cdbs. 613 * For drivers that don't set this field, a value of 12 is 614 * assumed. 615 */ 616 unsigned short max_cmd_len; 617 618 int this_id; 619 int can_queue; 620 short cmd_per_lun; 621 short unsigned int sg_tablesize; 622 short unsigned int sg_prot_tablesize; 623 unsigned int max_sectors; 624 unsigned long dma_boundary; 625 /* 626 * In scsi-mq mode, the number of hardware queues supported by the LLD. 627 * 628 * Note: it is assumed that each hardware queue has a queue depth of 629 * can_queue. In other words, the total queue depth per host 630 * is nr_hw_queues * can_queue. 631 */ 632 unsigned nr_hw_queues; 633 /* 634 * Used to assign serial numbers to the cmds. 635 * Protected by the host lock. 636 */ 637 unsigned long cmd_serial_number; 638 639 unsigned active_mode:2; 640 unsigned unchecked_isa_dma:1; 641 unsigned use_clustering:1; 642 643 /* 644 * Host has requested that no further requests come through for the 645 * time being. 646 */ 647 unsigned host_self_blocked:1; 648 649 /* 650 * Host uses correct SCSI ordering not PC ordering. The bit is 651 * set for the minority of drivers whose authors actually read 652 * the spec ;). 653 */ 654 unsigned reverse_ordering:1; 655 656 /* Task mgmt function in progress */ 657 unsigned tmf_in_progress:1; 658 659 /* Asynchronous scan in progress */ 660 unsigned async_scan:1; 661 662 /* Don't resume host in EH */ 663 unsigned eh_noresume:1; 664 665 /* The controller does not support WRITE SAME */ 666 unsigned no_write_same:1; 667 668 unsigned use_blk_mq:1; 669 unsigned use_cmd_list:1; 670 671 /* Host responded with short (<36 bytes) INQUIRY result */ 672 unsigned short_inquiry:1; 673 674 /* 675 * Optional work queue to be utilized by the transport 676 */ 677 char work_q_name[20]; 678 struct workqueue_struct *work_q; 679 680 /* 681 * Task management function work queue 682 */ 683 struct workqueue_struct *tmf_work_q; 684 685 /* The transport requires the LUN bits NOT to be stored in CDB[1] */ 686 unsigned no_scsi2_lun_in_cdb:1; 687 688 /* 689 * Value host_blocked counts down from 690 */ 691 unsigned int max_host_blocked; 692 693 /* Protection Information */ 694 unsigned int prot_capabilities; 695 unsigned char prot_guard_type; 696 697 /* 698 * q used for scsi_tgt msgs, async events or any other requests that 699 * need to be processed in userspace 700 */ 701 struct request_queue *uspace_req_q; 702 703 /* legacy crap */ 704 unsigned long base; 705 unsigned long io_port; 706 unsigned char n_io_port; 707 unsigned char dma_channel; 708 unsigned int irq; 709 710 711 enum scsi_host_state shost_state; 712 713 /* ldm bits */ 714 struct device shost_gendev, shost_dev; 715 716 /* 717 * List of hosts per template. 718 * 719 * This is only for use by scsi_module.c for legacy templates. 720 * For these access to it is synchronized implicitly by 721 * module_init/module_exit. 722 */ 723 struct list_head sht_legacy_list; 724 725 /* 726 * Points to the transport data (if any) which is allocated 727 * separately 728 */ 729 void *shost_data; 730 731 /* 732 * Points to the physical bus device we'd use to do DMA 733 * Needed just in case we have virtual hosts. 734 */ 735 struct device *dma_dev; 736 737 /* 738 * We should ensure that this is aligned, both for better performance 739 * and also because some compilers (m68k) don't automatically force 740 * alignment to a long boundary. 741 */ 742 unsigned long hostdata[0] /* Used for storage of host specific stuff */ 743 __attribute__ ((aligned (sizeof(unsigned long)))); 744 }; 745 746 #define class_to_shost(d) \ 747 container_of(d, struct Scsi_Host, shost_dev) 748 749 #define shost_printk(prefix, shost, fmt, a...) \ 750 dev_printk(prefix, &(shost)->shost_gendev, fmt, ##a) 751 752 static inline void *shost_priv(struct Scsi_Host *shost) 753 { 754 return (void *)shost->hostdata; 755 } 756 757 int scsi_is_host_device(const struct device *); 758 759 static inline struct Scsi_Host *dev_to_shost(struct device *dev) 760 { 761 while (!scsi_is_host_device(dev)) { 762 if (!dev->parent) 763 return NULL; 764 dev = dev->parent; 765 } 766 return container_of(dev, struct Scsi_Host, shost_gendev); 767 } 768 769 static inline int scsi_host_in_recovery(struct Scsi_Host *shost) 770 { 771 return shost->shost_state == SHOST_RECOVERY || 772 shost->shost_state == SHOST_CANCEL_RECOVERY || 773 shost->shost_state == SHOST_DEL_RECOVERY || 774 shost->tmf_in_progress; 775 } 776 777 extern bool scsi_use_blk_mq; 778 779 static inline bool shost_use_blk_mq(struct Scsi_Host *shost) 780 { 781 return shost->use_blk_mq; 782 } 783 784 extern int scsi_queue_work(struct Scsi_Host *, struct work_struct *); 785 extern void scsi_flush_work(struct Scsi_Host *); 786 787 extern struct Scsi_Host *scsi_host_alloc(struct scsi_host_template *, int); 788 extern int __must_check scsi_add_host_with_dma(struct Scsi_Host *, 789 struct device *, 790 struct device *); 791 extern void scsi_scan_host(struct Scsi_Host *); 792 extern void scsi_rescan_device(struct device *); 793 extern void scsi_remove_host(struct Scsi_Host *); 794 extern struct Scsi_Host *scsi_host_get(struct Scsi_Host *); 795 extern void scsi_host_put(struct Scsi_Host *t); 796 extern struct Scsi_Host *scsi_host_lookup(unsigned short); 797 extern const char *scsi_host_state_name(enum scsi_host_state); 798 extern void scsi_cmd_get_serial(struct Scsi_Host *, struct scsi_cmnd *); 799 800 static inline int __must_check scsi_add_host(struct Scsi_Host *host, 801 struct device *dev) 802 { 803 return scsi_add_host_with_dma(host, dev, dev); 804 } 805 806 static inline struct device *scsi_get_device(struct Scsi_Host *shost) 807 { 808 return shost->shost_gendev.parent; 809 } 810 811 /** 812 * scsi_host_scan_allowed - Is scanning of this host allowed 813 * @shost: Pointer to Scsi_Host. 814 **/ 815 static inline int scsi_host_scan_allowed(struct Scsi_Host *shost) 816 { 817 return shost->shost_state == SHOST_RUNNING || 818 shost->shost_state == SHOST_RECOVERY; 819 } 820 821 extern void scsi_unblock_requests(struct Scsi_Host *); 822 extern void scsi_block_requests(struct Scsi_Host *); 823 824 struct class_container; 825 826 extern struct request_queue *__scsi_alloc_queue(struct Scsi_Host *shost, 827 void (*) (struct request_queue *)); 828 /* 829 * These two functions are used to allocate and free a pseudo device 830 * which will connect to the host adapter itself rather than any 831 * physical device. You must deallocate when you are done with the 832 * thing. This physical pseudo-device isn't real and won't be available 833 * from any high-level drivers. 834 */ 835 extern void scsi_free_host_dev(struct scsi_device *); 836 extern struct scsi_device *scsi_get_host_dev(struct Scsi_Host *); 837 838 /* 839 * DIF defines the exchange of protection information between 840 * initiator and SBC block device. 841 * 842 * DIX defines the exchange of protection information between OS and 843 * initiator. 844 */ 845 enum scsi_host_prot_capabilities { 846 SHOST_DIF_TYPE1_PROTECTION = 1 << 0, /* T10 DIF Type 1 */ 847 SHOST_DIF_TYPE2_PROTECTION = 1 << 1, /* T10 DIF Type 2 */ 848 SHOST_DIF_TYPE3_PROTECTION = 1 << 2, /* T10 DIF Type 3 */ 849 850 SHOST_DIX_TYPE0_PROTECTION = 1 << 3, /* DIX between OS and HBA only */ 851 SHOST_DIX_TYPE1_PROTECTION = 1 << 4, /* DIX with DIF Type 1 */ 852 SHOST_DIX_TYPE2_PROTECTION = 1 << 5, /* DIX with DIF Type 2 */ 853 SHOST_DIX_TYPE3_PROTECTION = 1 << 6, /* DIX with DIF Type 3 */ 854 }; 855 856 /* 857 * SCSI hosts which support the Data Integrity Extensions must 858 * indicate their capabilities by setting the prot_capabilities using 859 * this call. 860 */ 861 static inline void scsi_host_set_prot(struct Scsi_Host *shost, unsigned int mask) 862 { 863 shost->prot_capabilities = mask; 864 } 865 866 static inline unsigned int scsi_host_get_prot(struct Scsi_Host *shost) 867 { 868 return shost->prot_capabilities; 869 } 870 871 static inline int scsi_host_prot_dma(struct Scsi_Host *shost) 872 { 873 return shost->prot_capabilities >= SHOST_DIX_TYPE0_PROTECTION; 874 } 875 876 static inline unsigned int scsi_host_dif_capable(struct Scsi_Host *shost, unsigned int target_type) 877 { 878 static unsigned char cap[] = { 0, 879 SHOST_DIF_TYPE1_PROTECTION, 880 SHOST_DIF_TYPE2_PROTECTION, 881 SHOST_DIF_TYPE3_PROTECTION }; 882 883 if (target_type >= ARRAY_SIZE(cap)) 884 return 0; 885 886 return shost->prot_capabilities & cap[target_type] ? target_type : 0; 887 } 888 889 static inline unsigned int scsi_host_dix_capable(struct Scsi_Host *shost, unsigned int target_type) 890 { 891 #if defined(CONFIG_BLK_DEV_INTEGRITY) 892 static unsigned char cap[] = { SHOST_DIX_TYPE0_PROTECTION, 893 SHOST_DIX_TYPE1_PROTECTION, 894 SHOST_DIX_TYPE2_PROTECTION, 895 SHOST_DIX_TYPE3_PROTECTION }; 896 897 if (target_type >= ARRAY_SIZE(cap)) 898 return 0; 899 900 return shost->prot_capabilities & cap[target_type]; 901 #endif 902 return 0; 903 } 904 905 /* 906 * All DIX-capable initiators must support the T10-mandated CRC 907 * checksum. Controllers can optionally implement the IP checksum 908 * scheme which has much lower impact on system performance. Note 909 * that the main rationale for the checksum is to match integrity 910 * metadata with data. Detecting bit errors are a job for ECC memory 911 * and buses. 912 */ 913 914 enum scsi_host_guard_type { 915 SHOST_DIX_GUARD_CRC = 1 << 0, 916 SHOST_DIX_GUARD_IP = 1 << 1, 917 }; 918 919 static inline void scsi_host_set_guard(struct Scsi_Host *shost, unsigned char type) 920 { 921 shost->prot_guard_type = type; 922 } 923 924 static inline unsigned char scsi_host_get_guard(struct Scsi_Host *shost) 925 { 926 return shost->prot_guard_type; 927 } 928 929 /* legacy interfaces */ 930 extern struct Scsi_Host *scsi_register(struct scsi_host_template *, int); 931 extern void scsi_unregister(struct Scsi_Host *); 932 extern int scsi_host_set_state(struct Scsi_Host *, enum scsi_host_state); 933 934 #endif /* _SCSI_SCSI_HOST_H */ 935