1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * scan.c - support for transforming the ACPI namespace into individual objects 4 */ 5 6 #define pr_fmt(fmt) "ACPI: " fmt 7 8 #include <linux/async.h> 9 #include <linux/module.h> 10 #include <linux/init.h> 11 #include <linux/slab.h> 12 #include <linux/kernel.h> 13 #include <linux/acpi.h> 14 #include <linux/acpi_iort.h> 15 #include <linux/acpi_rimt.h> 16 #include <linux/acpi_viot.h> 17 #include <linux/iommu.h> 18 #include <linux/signal.h> 19 #include <linux/kthread.h> 20 #include <linux/dmi.h> 21 #include <linux/dma-map-ops.h> 22 #include <linux/platform_data/x86/apple.h> 23 #include <linux/pgtable.h> 24 #include <linux/crc32.h> 25 #include <linux/dma-direct.h> 26 27 #include "internal.h" 28 #include "sleep.h" 29 30 #define ACPI_BUS_CLASS "system_bus" 31 #define ACPI_BUS_HID "LNXSYBUS" 32 #define ACPI_BUS_DEVICE_NAME "System Bus" 33 34 #define INVALID_ACPI_HANDLE ((acpi_handle)ZERO_PAGE(0)) 35 36 static const char *dummy_hid = "device"; 37 38 static LIST_HEAD(acpi_dep_list); 39 static DEFINE_MUTEX(acpi_dep_list_lock); 40 LIST_HEAD(acpi_bus_id_list); 41 static DEFINE_MUTEX(acpi_scan_lock); 42 static LIST_HEAD(acpi_scan_handlers_list); 43 DEFINE_MUTEX(acpi_device_lock); 44 LIST_HEAD(acpi_wakeup_device_list); 45 static DEFINE_MUTEX(acpi_hp_context_lock); 46 static LIST_HEAD(acpi_scan_system_dev_list); 47 48 /* 49 * The UART device described by the SPCR table is the only object which needs 50 * special-casing. Everything else is covered by ACPI namespace paths in STAO 51 * table. 52 */ 53 static u64 spcr_uart_addr; 54 55 void acpi_scan_lock_acquire(void) 56 { 57 mutex_lock(&acpi_scan_lock); 58 } 59 EXPORT_SYMBOL_GPL(acpi_scan_lock_acquire); 60 61 void acpi_scan_lock_release(void) 62 { 63 mutex_unlock(&acpi_scan_lock); 64 } 65 EXPORT_SYMBOL_GPL(acpi_scan_lock_release); 66 67 void acpi_lock_hp_context(void) 68 { 69 mutex_lock(&acpi_hp_context_lock); 70 } 71 72 void acpi_unlock_hp_context(void) 73 { 74 mutex_unlock(&acpi_hp_context_lock); 75 } 76 77 void acpi_initialize_hp_context(struct acpi_device *adev, 78 struct acpi_hotplug_context *hp, 79 acpi_hp_notify notify, acpi_hp_uevent uevent) 80 { 81 acpi_lock_hp_context(); 82 hp->notify = notify; 83 hp->uevent = uevent; 84 acpi_set_hp_context(adev, hp); 85 acpi_unlock_hp_context(); 86 } 87 EXPORT_SYMBOL_GPL(acpi_initialize_hp_context); 88 89 int acpi_scan_add_handler(struct acpi_scan_handler *handler) 90 { 91 if (!handler) 92 return -EINVAL; 93 94 list_add_tail(&handler->list_node, &acpi_scan_handlers_list); 95 return 0; 96 } 97 98 int acpi_scan_add_handler_with_hotplug(struct acpi_scan_handler *handler, 99 const char *hotplug_profile_name) 100 { 101 int error; 102 103 error = acpi_scan_add_handler(handler); 104 if (error) 105 return error; 106 107 acpi_sysfs_add_hotplug_profile(&handler->hotplug, hotplug_profile_name); 108 return 0; 109 } 110 111 bool acpi_scan_is_offline(struct acpi_device *adev, bool uevent) 112 { 113 struct acpi_device_physical_node *pn; 114 bool offline = true; 115 char *envp[] = { "EVENT=offline", NULL }; 116 117 /* 118 * acpi_container_offline() calls this for all of the container's 119 * children under the container's physical_node_lock lock. 120 */ 121 mutex_lock_nested(&adev->physical_node_lock, SINGLE_DEPTH_NESTING); 122 123 list_for_each_entry(pn, &adev->physical_node_list, node) 124 if (device_supports_offline(pn->dev) && !pn->dev->offline) { 125 if (uevent) 126 kobject_uevent_env(&pn->dev->kobj, KOBJ_CHANGE, envp); 127 128 offline = false; 129 break; 130 } 131 132 mutex_unlock(&adev->physical_node_lock); 133 return offline; 134 } 135 136 static acpi_status acpi_bus_offline(acpi_handle handle, u32 lvl, void *data, 137 void **ret_p) 138 { 139 struct acpi_device *device = acpi_fetch_acpi_dev(handle); 140 struct acpi_device_physical_node *pn; 141 bool second_pass = (bool)data; 142 acpi_status status = AE_OK; 143 144 if (!device) 145 return AE_OK; 146 147 if (device->handler && !device->handler->hotplug.enabled) { 148 *ret_p = &device->dev; 149 return AE_SUPPORT; 150 } 151 152 mutex_lock(&device->physical_node_lock); 153 154 list_for_each_entry(pn, &device->physical_node_list, node) { 155 int ret; 156 157 if (second_pass) { 158 /* Skip devices offlined by the first pass. */ 159 if (pn->put_online) 160 continue; 161 } else { 162 pn->put_online = false; 163 } 164 ret = device_offline(pn->dev); 165 if (ret >= 0) { 166 pn->put_online = !ret; 167 } else { 168 *ret_p = pn->dev; 169 if (second_pass) { 170 status = AE_ERROR; 171 break; 172 } 173 } 174 } 175 176 mutex_unlock(&device->physical_node_lock); 177 178 return status; 179 } 180 181 static acpi_status acpi_bus_online(acpi_handle handle, u32 lvl, void *data, 182 void **ret_p) 183 { 184 struct acpi_device *device = acpi_fetch_acpi_dev(handle); 185 struct acpi_device_physical_node *pn; 186 187 if (!device) 188 return AE_OK; 189 190 mutex_lock(&device->physical_node_lock); 191 192 list_for_each_entry(pn, &device->physical_node_list, node) 193 if (pn->put_online) { 194 device_online(pn->dev); 195 pn->put_online = false; 196 } 197 198 mutex_unlock(&device->physical_node_lock); 199 200 return AE_OK; 201 } 202 203 static int acpi_scan_try_to_offline(struct acpi_device *device) 204 { 205 acpi_handle handle = device->handle; 206 struct device *errdev = NULL; 207 acpi_status status; 208 209 /* 210 * Carry out two passes here and ignore errors in the first pass, 211 * because if the devices in question are memory blocks and 212 * CONFIG_MEMCG is set, one of the blocks may hold data structures 213 * that the other blocks depend on, but it is not known in advance which 214 * block holds them. 215 * 216 * If the first pass is successful, the second one isn't needed, though. 217 */ 218 status = acpi_walk_namespace(ACPI_TYPE_ANY, handle, ACPI_UINT32_MAX, 219 NULL, acpi_bus_offline, (void *)false, 220 (void **)&errdev); 221 if (status == AE_SUPPORT) { 222 dev_warn(errdev, "Offline disabled.\n"); 223 acpi_walk_namespace(ACPI_TYPE_ANY, handle, ACPI_UINT32_MAX, 224 acpi_bus_online, NULL, NULL, NULL); 225 return -EPERM; 226 } 227 acpi_bus_offline(handle, 0, (void *)false, (void **)&errdev); 228 if (errdev) { 229 errdev = NULL; 230 acpi_walk_namespace(ACPI_TYPE_ANY, handle, ACPI_UINT32_MAX, 231 NULL, acpi_bus_offline, (void *)true, 232 (void **)&errdev); 233 if (!errdev) 234 acpi_bus_offline(handle, 0, (void *)true, 235 (void **)&errdev); 236 237 if (errdev) { 238 dev_warn(errdev, "Offline failed.\n"); 239 acpi_bus_online(handle, 0, NULL, NULL); 240 acpi_walk_namespace(ACPI_TYPE_ANY, handle, 241 ACPI_UINT32_MAX, acpi_bus_online, 242 NULL, NULL, NULL); 243 return -EBUSY; 244 } 245 } 246 return 0; 247 } 248 249 #define ACPI_SCAN_CHECK_FLAG_STATUS BIT(0) 250 #define ACPI_SCAN_CHECK_FLAG_EJECT BIT(1) 251 252 static int acpi_scan_check_and_detach(struct acpi_device *adev, void *p) 253 { 254 struct acpi_scan_handler *handler = adev->handler; 255 uintptr_t flags = (uintptr_t)p; 256 257 acpi_dev_for_each_child_reverse(adev, acpi_scan_check_and_detach, p); 258 259 if (flags & ACPI_SCAN_CHECK_FLAG_STATUS) { 260 acpi_bus_get_status(adev); 261 /* 262 * Skip devices that are still there and take the enabled 263 * flag into account. 264 */ 265 if (acpi_device_is_enabled(adev)) 266 return 0; 267 268 /* Skip device that have not been enumerated. */ 269 if (!acpi_device_enumerated(adev)) { 270 dev_dbg(&adev->dev, "Still not enumerated\n"); 271 return 0; 272 } 273 } 274 275 adev->flags.match_driver = false; 276 if (handler) { 277 if (handler->detach) 278 handler->detach(adev); 279 } else { 280 device_release_driver(&adev->dev); 281 } 282 /* 283 * Most likely, the device is going away, so put it into D3cold before 284 * that. 285 */ 286 acpi_device_set_power(adev, ACPI_STATE_D3_COLD); 287 adev->flags.initialized = false; 288 289 /* For eject this is deferred to acpi_bus_post_eject() */ 290 if (!(flags & ACPI_SCAN_CHECK_FLAG_EJECT)) { 291 adev->handler = NULL; 292 acpi_device_clear_enumerated(adev); 293 } 294 return 0; 295 } 296 297 static int acpi_bus_post_eject(struct acpi_device *adev, void *not_used) 298 { 299 struct acpi_scan_handler *handler = adev->handler; 300 301 acpi_dev_for_each_child_reverse(adev, acpi_bus_post_eject, NULL); 302 303 if (handler) { 304 if (handler->post_eject) 305 handler->post_eject(adev); 306 307 adev->handler = NULL; 308 } 309 310 acpi_device_clear_enumerated(adev); 311 312 return 0; 313 } 314 315 static void acpi_scan_check_subtree(struct acpi_device *adev) 316 { 317 uintptr_t flags = ACPI_SCAN_CHECK_FLAG_STATUS; 318 319 acpi_scan_check_and_detach(adev, (void *)flags); 320 } 321 322 static int acpi_scan_hot_remove(struct acpi_device *device) 323 { 324 acpi_handle handle = device->handle; 325 unsigned long long sta; 326 acpi_status status; 327 uintptr_t flags = ACPI_SCAN_CHECK_FLAG_EJECT; 328 329 if (device->handler && device->handler->hotplug.demand_offline) { 330 if (!acpi_scan_is_offline(device, true)) 331 return -EBUSY; 332 } else { 333 int error = acpi_scan_try_to_offline(device); 334 if (error) 335 return error; 336 } 337 338 acpi_handle_debug(handle, "Ejecting\n"); 339 340 acpi_scan_check_and_detach(device, (void *)flags); 341 342 acpi_evaluate_lck(handle, 0); 343 /* 344 * TBD: _EJD support. 345 */ 346 status = acpi_evaluate_ej0(handle); 347 if (status == AE_NOT_FOUND) 348 return -ENODEV; 349 else if (ACPI_FAILURE(status)) 350 return -EIO; 351 352 /* 353 * Verify if eject was indeed successful. If not, log an error 354 * message. No need to call _OST since _EJ0 call was made OK. 355 */ 356 status = acpi_evaluate_integer(handle, "_STA", NULL, &sta); 357 if (ACPI_FAILURE(status)) { 358 acpi_handle_warn(handle, 359 "Status check after eject failed (0x%x)\n", status); 360 } else if (sta & ACPI_STA_DEVICE_ENABLED) { 361 acpi_handle_warn(handle, 362 "Eject incomplete - status 0x%llx\n", sta); 363 } else { 364 acpi_bus_post_eject(device, NULL); 365 } 366 367 return 0; 368 } 369 370 static int acpi_scan_rescan_bus(struct acpi_device *adev) 371 { 372 struct acpi_scan_handler *handler = adev->handler; 373 int ret; 374 375 if (handler && handler->hotplug.scan_dependent) 376 ret = handler->hotplug.scan_dependent(adev); 377 else 378 ret = acpi_bus_scan(adev->handle); 379 380 if (ret) 381 dev_info(&adev->dev, "Namespace scan failure\n"); 382 383 return ret; 384 } 385 386 static int acpi_scan_device_check(struct acpi_device *adev) 387 { 388 struct acpi_device *parent; 389 390 acpi_scan_check_subtree(adev); 391 392 if (!acpi_device_is_present(adev)) 393 return 0; 394 395 /* 396 * This function is only called for device objects for which matching 397 * scan handlers exist. The only situation in which the scan handler 398 * is not attached to this device object yet is when the device has 399 * just appeared (either it wasn't present at all before or it was 400 * removed and then added again). 401 */ 402 if (adev->handler) { 403 dev_dbg(&adev->dev, "Already enumerated\n"); 404 return 0; 405 } 406 407 parent = acpi_dev_parent(adev); 408 if (!parent) 409 parent = adev; 410 411 return acpi_scan_rescan_bus(parent); 412 } 413 414 static int acpi_scan_bus_check(struct acpi_device *adev) 415 { 416 acpi_scan_check_subtree(adev); 417 418 return acpi_scan_rescan_bus(adev); 419 } 420 421 static int acpi_generic_hotplug_event(struct acpi_device *adev, u32 type) 422 { 423 switch (type) { 424 case ACPI_NOTIFY_BUS_CHECK: 425 return acpi_scan_bus_check(adev); 426 case ACPI_NOTIFY_DEVICE_CHECK: 427 return acpi_scan_device_check(adev); 428 case ACPI_NOTIFY_EJECT_REQUEST: 429 case ACPI_OST_EC_OSPM_EJECT: 430 if (adev->handler && !adev->handler->hotplug.enabled) { 431 dev_info(&adev->dev, "Eject disabled\n"); 432 return -EPERM; 433 } 434 acpi_evaluate_ost(adev->handle, ACPI_NOTIFY_EJECT_REQUEST, 435 ACPI_OST_SC_EJECT_IN_PROGRESS, NULL); 436 return acpi_scan_hot_remove(adev); 437 } 438 return -EINVAL; 439 } 440 441 void acpi_device_hotplug(struct acpi_device *adev, u32 src) 442 { 443 u32 ost_code = ACPI_OST_SC_NON_SPECIFIC_FAILURE; 444 int error = -ENODEV; 445 446 lock_device_hotplug(); 447 mutex_lock(&acpi_scan_lock); 448 449 /* 450 * The device object's ACPI handle cannot become invalid as long as we 451 * are holding acpi_scan_lock, but it might have become invalid before 452 * that lock was acquired. 453 */ 454 if (adev->handle == INVALID_ACPI_HANDLE) 455 goto err_out; 456 457 if (adev->flags.is_dock_station) { 458 error = dock_notify(adev, src); 459 } else if (adev->flags.hotplug_notify) { 460 error = acpi_generic_hotplug_event(adev, src); 461 } else { 462 acpi_hp_notify notify; 463 464 acpi_lock_hp_context(); 465 notify = adev->hp ? adev->hp->notify : NULL; 466 acpi_unlock_hp_context(); 467 /* 468 * There may be additional notify handlers for device objects 469 * without the .event() callback, so ignore them here. 470 */ 471 if (notify) 472 error = notify(adev, src); 473 else 474 goto out; 475 } 476 switch (error) { 477 case 0: 478 ost_code = ACPI_OST_SC_SUCCESS; 479 break; 480 case -EPERM: 481 ost_code = ACPI_OST_SC_EJECT_NOT_SUPPORTED; 482 break; 483 case -EBUSY: 484 ost_code = ACPI_OST_SC_DEVICE_BUSY; 485 break; 486 default: 487 ost_code = ACPI_OST_SC_NON_SPECIFIC_FAILURE; 488 break; 489 } 490 491 err_out: 492 acpi_evaluate_ost(adev->handle, src, ost_code, NULL); 493 494 out: 495 acpi_put_acpi_dev(adev); 496 mutex_unlock(&acpi_scan_lock); 497 unlock_device_hotplug(); 498 } 499 500 static void acpi_free_power_resources_lists(struct acpi_device *device) 501 { 502 int i; 503 504 if (device->wakeup.flags.valid) 505 acpi_power_resources_list_free(&device->wakeup.resources); 506 507 if (!device->power.flags.power_resources) 508 return; 509 510 for (i = ACPI_STATE_D0; i <= ACPI_STATE_D3_HOT; i++) { 511 struct acpi_device_power_state *ps = &device->power.states[i]; 512 acpi_power_resources_list_free(&ps->resources); 513 } 514 } 515 516 static void acpi_device_release(struct device *dev) 517 { 518 struct acpi_device *acpi_dev = to_acpi_device(dev); 519 520 acpi_free_properties(acpi_dev); 521 acpi_free_pnp_ids(&acpi_dev->pnp); 522 acpi_free_power_resources_lists(acpi_dev); 523 kfree(acpi_dev); 524 } 525 526 static void acpi_device_del(struct acpi_device *device) 527 { 528 struct acpi_device_bus_id *acpi_device_bus_id; 529 530 mutex_lock(&acpi_device_lock); 531 532 list_for_each_entry(acpi_device_bus_id, &acpi_bus_id_list, node) 533 if (!strcmp(acpi_device_bus_id->bus_id, 534 acpi_device_hid(device))) { 535 ida_free(&acpi_device_bus_id->instance_ida, 536 device->pnp.instance_no); 537 if (ida_is_empty(&acpi_device_bus_id->instance_ida)) { 538 list_del(&acpi_device_bus_id->node); 539 kfree_const(acpi_device_bus_id->bus_id); 540 kfree(acpi_device_bus_id); 541 } 542 break; 543 } 544 545 list_del(&device->wakeup_list); 546 547 mutex_unlock(&acpi_device_lock); 548 549 acpi_power_add_remove_device(device, false); 550 acpi_device_remove_files(device); 551 if (device->remove) 552 device->remove(device); 553 554 device_del(&device->dev); 555 } 556 557 static BLOCKING_NOTIFIER_HEAD(acpi_reconfig_chain); 558 559 static LIST_HEAD(acpi_device_del_list); 560 static DEFINE_MUTEX(acpi_device_del_lock); 561 562 static void acpi_device_del_work_fn(struct work_struct *work_not_used) 563 { 564 for (;;) { 565 struct acpi_device *adev; 566 567 mutex_lock(&acpi_device_del_lock); 568 569 if (list_empty(&acpi_device_del_list)) { 570 mutex_unlock(&acpi_device_del_lock); 571 break; 572 } 573 adev = list_first_entry(&acpi_device_del_list, 574 struct acpi_device, del_list); 575 list_del(&adev->del_list); 576 577 mutex_unlock(&acpi_device_del_lock); 578 579 blocking_notifier_call_chain(&acpi_reconfig_chain, 580 ACPI_RECONFIG_DEVICE_REMOVE, adev); 581 582 acpi_device_del(adev); 583 /* 584 * Drop references to all power resources that might have been 585 * used by the device. 586 */ 587 acpi_power_transition(adev, ACPI_STATE_D3_COLD); 588 acpi_dev_put(adev); 589 } 590 } 591 592 /** 593 * acpi_scan_drop_device - Drop an ACPI device object. 594 * @handle: Handle of an ACPI namespace node, not used. 595 * @context: Address of the ACPI device object to drop. 596 * 597 * This is invoked by acpi_ns_delete_node() during the removal of the ACPI 598 * namespace node the device object pointed to by @context is attached to. 599 * 600 * The unregistration is carried out asynchronously to avoid running 601 * acpi_device_del() under the ACPICA's namespace mutex and the list is used to 602 * ensure the correct ordering (the device objects must be unregistered in the 603 * same order in which the corresponding namespace nodes are deleted). 604 */ 605 static void acpi_scan_drop_device(acpi_handle handle, void *context) 606 { 607 static DECLARE_WORK(work, acpi_device_del_work_fn); 608 struct acpi_device *adev = context; 609 610 mutex_lock(&acpi_device_del_lock); 611 612 /* 613 * Use the ACPI hotplug workqueue which is ordered, so this work item 614 * won't run after any hotplug work items submitted subsequently. That 615 * prevents attempts to register device objects identical to those being 616 * deleted from happening concurrently (such attempts result from 617 * hotplug events handled via the ACPI hotplug workqueue). It also will 618 * run after all of the work items submitted previously, which helps 619 * those work items to ensure that they are not accessing stale device 620 * objects. 621 */ 622 if (list_empty(&acpi_device_del_list)) 623 acpi_queue_hotplug_work(&work); 624 625 list_add_tail(&adev->del_list, &acpi_device_del_list); 626 /* Make acpi_ns_validate_handle() return NULL for this handle. */ 627 adev->handle = INVALID_ACPI_HANDLE; 628 629 mutex_unlock(&acpi_device_del_lock); 630 } 631 632 static struct acpi_device *handle_to_device(acpi_handle handle, 633 void (*callback)(void *)) 634 { 635 struct acpi_device *adev = NULL; 636 acpi_status status; 637 638 status = acpi_get_data_full(handle, acpi_scan_drop_device, 639 (void **)&adev, callback); 640 if (ACPI_FAILURE(status) || !adev) { 641 acpi_handle_debug(handle, "No context!\n"); 642 return NULL; 643 } 644 return adev; 645 } 646 647 /** 648 * acpi_fetch_acpi_dev - Retrieve ACPI device object. 649 * @handle: ACPI handle associated with the requested ACPI device object. 650 * 651 * Return a pointer to the ACPI device object associated with @handle, if 652 * present, or NULL otherwise. 653 */ 654 struct acpi_device *acpi_fetch_acpi_dev(acpi_handle handle) 655 { 656 return handle_to_device(handle, NULL); 657 } 658 EXPORT_SYMBOL_GPL(acpi_fetch_acpi_dev); 659 660 static void get_acpi_device(void *dev) 661 { 662 acpi_dev_get(dev); 663 } 664 665 /** 666 * acpi_get_acpi_dev - Retrieve ACPI device object and reference count it. 667 * @handle: ACPI handle associated with the requested ACPI device object. 668 * 669 * Return a pointer to the ACPI device object associated with @handle and bump 670 * up that object's reference counter (under the ACPI Namespace lock), if 671 * present, or return NULL otherwise. 672 * 673 * The ACPI device object reference acquired by this function needs to be 674 * dropped via acpi_dev_put(). 675 */ 676 struct acpi_device *acpi_get_acpi_dev(acpi_handle handle) 677 { 678 return handle_to_device(handle, get_acpi_device); 679 } 680 EXPORT_SYMBOL_GPL(acpi_get_acpi_dev); 681 682 static struct acpi_device_bus_id *acpi_device_bus_id_match(const char *dev_id) 683 { 684 struct acpi_device_bus_id *acpi_device_bus_id; 685 686 /* Find suitable bus_id and instance number in acpi_bus_id_list. */ 687 list_for_each_entry(acpi_device_bus_id, &acpi_bus_id_list, node) { 688 if (!strcmp(acpi_device_bus_id->bus_id, dev_id)) 689 return acpi_device_bus_id; 690 } 691 return NULL; 692 } 693 694 static int acpi_device_set_name(struct acpi_device *device, 695 struct acpi_device_bus_id *acpi_device_bus_id) 696 { 697 struct ida *instance_ida = &acpi_device_bus_id->instance_ida; 698 int result; 699 700 result = ida_alloc(instance_ida, GFP_KERNEL); 701 if (result < 0) 702 return result; 703 704 device->pnp.instance_no = result; 705 dev_set_name(&device->dev, "%s:%02x", acpi_device_bus_id->bus_id, result); 706 return 0; 707 } 708 709 int acpi_tie_acpi_dev(struct acpi_device *adev) 710 { 711 acpi_handle handle = adev->handle; 712 acpi_status status; 713 714 if (!handle) 715 return 0; 716 717 status = acpi_attach_data(handle, acpi_scan_drop_device, adev); 718 if (ACPI_FAILURE(status)) { 719 acpi_handle_err(handle, "Unable to attach device data\n"); 720 return -ENODEV; 721 } 722 723 return 0; 724 } 725 726 static void acpi_store_pld_crc(struct acpi_device *adev) 727 { 728 struct acpi_pld_info *pld; 729 730 if (!acpi_get_physical_device_location(adev->handle, &pld)) 731 return; 732 733 adev->pld_crc = crc32(~0, pld, sizeof(*pld)); 734 ACPI_FREE(pld); 735 } 736 737 int acpi_device_add(struct acpi_device *device) 738 { 739 struct acpi_device_bus_id *acpi_device_bus_id; 740 int result; 741 742 /* 743 * Linkage 744 * ------- 745 * Link this device to its parent and siblings. 746 */ 747 INIT_LIST_HEAD(&device->wakeup_list); 748 INIT_LIST_HEAD(&device->physical_node_list); 749 INIT_LIST_HEAD(&device->del_list); 750 mutex_init(&device->physical_node_lock); 751 752 mutex_lock(&acpi_device_lock); 753 754 acpi_device_bus_id = acpi_device_bus_id_match(acpi_device_hid(device)); 755 if (acpi_device_bus_id) { 756 result = acpi_device_set_name(device, acpi_device_bus_id); 757 if (result) 758 goto err_unlock; 759 } else { 760 acpi_device_bus_id = kzalloc_obj(*acpi_device_bus_id); 761 if (!acpi_device_bus_id) { 762 result = -ENOMEM; 763 goto err_unlock; 764 } 765 acpi_device_bus_id->bus_id = 766 kstrdup_const(acpi_device_hid(device), GFP_KERNEL); 767 if (!acpi_device_bus_id->bus_id) { 768 kfree(acpi_device_bus_id); 769 result = -ENOMEM; 770 goto err_unlock; 771 } 772 773 ida_init(&acpi_device_bus_id->instance_ida); 774 775 result = acpi_device_set_name(device, acpi_device_bus_id); 776 if (result) { 777 kfree_const(acpi_device_bus_id->bus_id); 778 kfree(acpi_device_bus_id); 779 goto err_unlock; 780 } 781 782 list_add_tail(&acpi_device_bus_id->node, &acpi_bus_id_list); 783 } 784 785 if (device->wakeup.flags.valid) 786 list_add_tail(&device->wakeup_list, &acpi_wakeup_device_list); 787 788 acpi_store_pld_crc(device); 789 790 mutex_unlock(&acpi_device_lock); 791 792 result = device_add(&device->dev); 793 if (result) { 794 dev_err(&device->dev, "Error registering device\n"); 795 goto err; 796 } 797 798 acpi_device_setup_files(device); 799 800 return 0; 801 802 err: 803 mutex_lock(&acpi_device_lock); 804 805 list_del(&device->wakeup_list); 806 807 err_unlock: 808 mutex_unlock(&acpi_device_lock); 809 810 acpi_detach_data(device->handle, acpi_scan_drop_device); 811 812 return result; 813 } 814 815 /* -------------------------------------------------------------------------- 816 Device Enumeration 817 -------------------------------------------------------------------------- */ 818 static bool acpi_info_matches_ids(struct acpi_device_info *info, 819 const char * const ids[]) 820 { 821 struct acpi_pnp_device_id_list *cid_list = NULL; 822 int i, index; 823 824 if (!(info->valid & ACPI_VALID_HID)) 825 return false; 826 827 index = match_string(ids, -1, info->hardware_id.string); 828 if (index >= 0) 829 return true; 830 831 if (info->valid & ACPI_VALID_CID) 832 cid_list = &info->compatible_id_list; 833 834 if (!cid_list) 835 return false; 836 837 for (i = 0; i < cid_list->count; i++) { 838 index = match_string(ids, -1, cid_list->ids[i].string); 839 if (index >= 0) 840 return true; 841 } 842 843 return false; 844 } 845 846 /* List of HIDs for which we ignore matching ACPI devices, when checking _DEP lists. */ 847 static const char * const acpi_ignore_dep_ids[] = { 848 "PNP0D80", /* Windows-compatible System Power Management Controller */ 849 "INT33BD", /* Intel Baytrail Mailbox Device */ 850 "INTC10DE", /* Intel CVS LNL */ 851 "INTC10E0", /* Intel CVS ARL */ 852 "LATT2021", /* Lattice FW Update Client Driver */ 853 NULL 854 }; 855 856 /* List of HIDs for which we honor deps of matching ACPI devs, when checking _DEP lists. */ 857 static const char * const acpi_honor_dep_ids[] = { 858 "INT3472", /* Camera sensor PMIC / clk and regulator info */ 859 "INTC1059", /* IVSC (TGL) driver must be loaded to allow i2c access to camera sensors */ 860 "INTC1095", /* IVSC (ADL) driver must be loaded to allow i2c access to camera sensors */ 861 "INTC100A", /* IVSC (RPL) driver must be loaded to allow i2c access to camera sensors */ 862 "INTC10CF", /* IVSC (MTL) driver must be loaded to allow i2c access to camera sensors */ 863 "RSCV0001", /* RISC-V PLIC */ 864 "RSCV0002", /* RISC-V APLIC */ 865 "RSCV0005", /* RISC-V SBI MPXY MBOX */ 866 "RSCV0006", /* RISC-V RPMI SYSMSI */ 867 "PNP0C0F", /* PCI Link Device */ 868 NULL 869 }; 870 871 static struct acpi_device *acpi_find_parent_acpi_dev(acpi_handle handle) 872 { 873 struct acpi_device *adev; 874 875 /* 876 * Fixed hardware devices do not appear in the namespace and do not 877 * have handles, but we fabricate acpi_devices for them, so we have 878 * to deal with them specially. 879 */ 880 if (!handle) 881 return acpi_root; 882 883 do { 884 acpi_status status; 885 886 status = acpi_get_parent(handle, &handle); 887 if (ACPI_FAILURE(status)) { 888 if (status != AE_NULL_ENTRY) 889 return acpi_root; 890 891 return NULL; 892 } 893 adev = acpi_fetch_acpi_dev(handle); 894 } while (!adev); 895 return adev; 896 } 897 898 acpi_status 899 acpi_bus_get_ejd(acpi_handle handle, acpi_handle *ejd) 900 { 901 acpi_status status; 902 acpi_handle tmp; 903 struct acpi_buffer buffer = {ACPI_ALLOCATE_BUFFER, NULL}; 904 union acpi_object *obj; 905 906 status = acpi_get_handle(handle, "_EJD", &tmp); 907 if (ACPI_FAILURE(status)) 908 return status; 909 910 status = acpi_evaluate_object(handle, "_EJD", NULL, &buffer); 911 if (ACPI_SUCCESS(status)) { 912 obj = buffer.pointer; 913 status = acpi_get_handle(ACPI_ROOT_OBJECT, obj->string.pointer, 914 ejd); 915 kfree(buffer.pointer); 916 } 917 return status; 918 } 919 EXPORT_SYMBOL_GPL(acpi_bus_get_ejd); 920 921 static int acpi_bus_extract_wakeup_device_power_package(struct acpi_device *dev) 922 { 923 acpi_handle handle = dev->handle; 924 struct acpi_device_wakeup *wakeup = &dev->wakeup; 925 struct acpi_buffer buffer = { ACPI_ALLOCATE_BUFFER, NULL }; 926 union acpi_object *package = NULL; 927 union acpi_object *element = NULL; 928 acpi_status status; 929 int err = -ENODATA; 930 931 INIT_LIST_HEAD(&wakeup->resources); 932 933 /* _PRW */ 934 status = acpi_evaluate_object(handle, "_PRW", NULL, &buffer); 935 if (ACPI_FAILURE(status)) { 936 acpi_handle_info(handle, "_PRW evaluation failed: %s\n", 937 acpi_format_exception(status)); 938 return err; 939 } 940 941 package = (union acpi_object *)buffer.pointer; 942 943 if (!package || package->package.count < 2) 944 goto out; 945 946 element = &(package->package.elements[0]); 947 if (!element) 948 goto out; 949 950 if (element->type == ACPI_TYPE_PACKAGE) { 951 if ((element->package.count < 2) || 952 (element->package.elements[0].type != 953 ACPI_TYPE_LOCAL_REFERENCE) 954 || (element->package.elements[1].type != ACPI_TYPE_INTEGER)) 955 goto out; 956 957 wakeup->gpe_device = 958 element->package.elements[0].reference.handle; 959 wakeup->gpe_number = 960 (u32) element->package.elements[1].integer.value; 961 } else if (element->type == ACPI_TYPE_INTEGER) { 962 wakeup->gpe_device = NULL; 963 wakeup->gpe_number = element->integer.value; 964 } else { 965 goto out; 966 } 967 968 element = &(package->package.elements[1]); 969 if (element->type != ACPI_TYPE_INTEGER) 970 goto out; 971 972 wakeup->sleep_state = element->integer.value; 973 974 err = acpi_extract_power_resources(package, 2, &wakeup->resources); 975 if (err) 976 goto out; 977 978 if (!list_empty(&wakeup->resources)) { 979 int sleep_state; 980 981 err = acpi_power_wakeup_list_init(&wakeup->resources, 982 &sleep_state); 983 if (err) { 984 acpi_handle_warn(handle, "Retrieving current states " 985 "of wakeup power resources failed\n"); 986 acpi_power_resources_list_free(&wakeup->resources); 987 goto out; 988 } 989 if (sleep_state < wakeup->sleep_state) { 990 acpi_handle_warn(handle, "Overriding _PRW sleep state " 991 "(S%d) by S%d from power resources\n", 992 (int)wakeup->sleep_state, sleep_state); 993 wakeup->sleep_state = sleep_state; 994 } 995 } 996 997 out: 998 kfree(buffer.pointer); 999 return err; 1000 } 1001 1002 static bool acpi_wakeup_gpe_init(struct acpi_device *device) 1003 { 1004 static const struct acpi_device_id button_device_ids[] = { 1005 {"PNP0C0D", 0}, /* Lid */ 1006 {"PNP0C0E", 0}, /* Sleep button */ 1007 {"", 0}, 1008 }; 1009 struct acpi_device_wakeup *wakeup = &device->wakeup; 1010 const struct acpi_device_id *match; 1011 acpi_status status; 1012 1013 wakeup->flags.notifier_present = 0; 1014 1015 match = acpi_match_acpi_device(button_device_ids, device); 1016 if (match && wakeup->sleep_state == ACPI_STATE_S5) 1017 wakeup->sleep_state = ACPI_STATE_S4; 1018 1019 status = acpi_setup_gpe_for_wake(device->handle, wakeup->gpe_device, 1020 wakeup->gpe_number); 1021 return ACPI_SUCCESS(status); 1022 } 1023 1024 static void acpi_bus_get_wakeup_device_flags(struct acpi_device *device) 1025 { 1026 int err; 1027 1028 /* Presence of _PRW indicates wake capable */ 1029 if (!acpi_has_method(device->handle, "_PRW")) 1030 return; 1031 1032 err = acpi_bus_extract_wakeup_device_power_package(device); 1033 if (err) { 1034 dev_err(&device->dev, "Unable to extract wakeup power resources"); 1035 return; 1036 } 1037 1038 device->wakeup.flags.valid = acpi_wakeup_gpe_init(device); 1039 device->wakeup.prepare_count = 0; 1040 /* 1041 * Call _PSW/_DSW object to disable its ability to wake the sleeping 1042 * system for the ACPI device with the _PRW object. 1043 * The _PSW object is deprecated in ACPI 3.0 and is replaced by _DSW. 1044 * So it is necessary to call _DSW object first. Only when it is not 1045 * present will the _PSW object used. 1046 */ 1047 err = acpi_device_sleep_wake(device, 0, 0, 0); 1048 if (err) 1049 pr_debug("error in _DSW or _PSW evaluation\n"); 1050 } 1051 1052 static void acpi_bus_init_power_state(struct acpi_device *device, int state) 1053 { 1054 struct acpi_device_power_state *ps = &device->power.states[state]; 1055 char pathname[5] = { '_', 'P', 'R', '0' + state, '\0' }; 1056 struct acpi_buffer buffer = { ACPI_ALLOCATE_BUFFER, NULL }; 1057 acpi_status status; 1058 1059 INIT_LIST_HEAD(&ps->resources); 1060 1061 /* Evaluate "_PRx" to get referenced power resources */ 1062 status = acpi_evaluate_object(device->handle, pathname, NULL, &buffer); 1063 if (ACPI_SUCCESS(status)) { 1064 union acpi_object *package = buffer.pointer; 1065 1066 if (buffer.length && package 1067 && package->type == ACPI_TYPE_PACKAGE 1068 && package->package.count) 1069 acpi_extract_power_resources(package, 0, &ps->resources); 1070 1071 ACPI_FREE(buffer.pointer); 1072 } 1073 1074 /* Evaluate "_PSx" to see if we can do explicit sets */ 1075 pathname[2] = 'S'; 1076 if (acpi_has_method(device->handle, pathname)) 1077 ps->flags.explicit_set = 1; 1078 1079 /* State is valid if there are means to put the device into it. */ 1080 if (!list_empty(&ps->resources) || ps->flags.explicit_set) 1081 ps->flags.valid = 1; 1082 1083 ps->power = -1; /* Unknown - driver assigned */ 1084 ps->latency = -1; /* Unknown - driver assigned */ 1085 } 1086 1087 static void acpi_bus_get_power_flags(struct acpi_device *device) 1088 { 1089 unsigned long long dsc = ACPI_STATE_D0; 1090 u32 i; 1091 1092 /* Presence of _PS0|_PR0 indicates 'power manageable' */ 1093 if (!acpi_has_method(device->handle, "_PS0") && 1094 !acpi_has_method(device->handle, "_PR0")) 1095 return; 1096 1097 device->flags.power_manageable = 1; 1098 1099 /* 1100 * Power Management Flags 1101 */ 1102 if (acpi_has_method(device->handle, "_PSC")) 1103 device->power.flags.explicit_get = 1; 1104 1105 if (acpi_has_method(device->handle, "_IRC")) 1106 device->power.flags.inrush_current = 1; 1107 1108 if (acpi_has_method(device->handle, "_DSW")) 1109 device->power.flags.dsw_present = 1; 1110 1111 acpi_evaluate_integer(device->handle, "_DSC", NULL, &dsc); 1112 device->power.state_for_enumeration = dsc; 1113 1114 /* 1115 * Enumerate supported power management states 1116 */ 1117 for (i = ACPI_STATE_D0; i <= ACPI_STATE_D3_HOT; i++) 1118 acpi_bus_init_power_state(device, i); 1119 1120 INIT_LIST_HEAD(&device->power.states[ACPI_STATE_D3_COLD].resources); 1121 1122 /* Set the defaults for D0 and D3hot (always supported). */ 1123 device->power.states[ACPI_STATE_D0].flags.valid = 1; 1124 device->power.states[ACPI_STATE_D0].power = 100; 1125 device->power.states[ACPI_STATE_D3_HOT].flags.valid = 1; 1126 1127 /* 1128 * Use power resources only if the D0 list of them is populated, because 1129 * some platforms may provide _PR3 only to indicate D3cold support and 1130 * in those cases the power resources list returned by it may be bogus. 1131 */ 1132 if (!list_empty(&device->power.states[ACPI_STATE_D0].resources)) { 1133 device->power.flags.power_resources = 1; 1134 /* 1135 * D3cold is supported if the D3hot list of power resources is 1136 * not empty. 1137 */ 1138 if (!list_empty(&device->power.states[ACPI_STATE_D3_HOT].resources)) 1139 device->power.states[ACPI_STATE_D3_COLD].flags.valid = 1; 1140 } 1141 1142 if (acpi_bus_init_power(device)) 1143 device->flags.power_manageable = 0; 1144 } 1145 1146 static void acpi_bus_get_flags(struct acpi_device *device) 1147 { 1148 /* Presence of _STA indicates 'dynamic_status' */ 1149 if (acpi_has_method(device->handle, "_STA")) 1150 device->flags.dynamic_status = 1; 1151 1152 /* Presence of _RMV indicates 'removable' */ 1153 if (acpi_has_method(device->handle, "_RMV")) 1154 device->flags.removable = 1; 1155 1156 /* Presence of _EJD|_EJ0 indicates 'ejectable' */ 1157 if (acpi_has_method(device->handle, "_EJD") || 1158 acpi_has_method(device->handle, "_EJ0")) 1159 device->flags.ejectable = 1; 1160 } 1161 1162 static void acpi_device_get_busid(struct acpi_device *device) 1163 { 1164 char bus_id[5] = { '?', 0 }; 1165 struct acpi_buffer buffer = { sizeof(bus_id), bus_id }; 1166 int i = 0; 1167 1168 /* 1169 * Bus ID 1170 * ------ 1171 * The device's Bus ID is simply the object name. 1172 * TBD: Shouldn't this value be unique (within the ACPI namespace)? 1173 */ 1174 if (!acpi_dev_parent(device)) { 1175 strscpy(device->pnp.bus_id, "ACPI"); 1176 return; 1177 } 1178 1179 switch (device->device_type) { 1180 case ACPI_BUS_TYPE_POWER_BUTTON: 1181 strscpy(device->pnp.bus_id, "PWRF"); 1182 break; 1183 case ACPI_BUS_TYPE_SLEEP_BUTTON: 1184 strscpy(device->pnp.bus_id, "SLPF"); 1185 break; 1186 case ACPI_BUS_TYPE_ECDT_EC: 1187 strscpy(device->pnp.bus_id, "ECDT"); 1188 break; 1189 default: 1190 acpi_get_name(device->handle, ACPI_SINGLE_NAME, &buffer); 1191 /* Clean up trailing underscores (if any) */ 1192 for (i = 3; i > 1; i--) { 1193 if (bus_id[i] == '_') 1194 bus_id[i] = '\0'; 1195 else 1196 break; 1197 } 1198 strscpy(device->pnp.bus_id, bus_id); 1199 break; 1200 } 1201 } 1202 1203 /* 1204 * acpi_ata_match - see if an acpi object is an ATA device 1205 * 1206 * If an acpi object has one of the ACPI ATA methods defined, 1207 * then we can safely call it an ATA device. 1208 */ 1209 bool acpi_ata_match(acpi_handle handle) 1210 { 1211 return acpi_has_method(handle, "_GTF") || 1212 acpi_has_method(handle, "_GTM") || 1213 acpi_has_method(handle, "_STM") || 1214 acpi_has_method(handle, "_SDD"); 1215 } 1216 1217 /* 1218 * acpi_bay_match - see if an acpi object is an ejectable driver bay 1219 * 1220 * If an acpi object is ejectable and has one of the ACPI ATA methods defined, 1221 * then we can safely call it an ejectable drive bay 1222 */ 1223 bool acpi_bay_match(acpi_handle handle) 1224 { 1225 acpi_handle phandle; 1226 1227 if (!acpi_has_method(handle, "_EJ0")) 1228 return false; 1229 if (acpi_ata_match(handle)) 1230 return true; 1231 if (ACPI_FAILURE(acpi_get_parent(handle, &phandle))) 1232 return false; 1233 1234 return acpi_ata_match(phandle); 1235 } 1236 1237 bool acpi_device_is_battery(struct acpi_device *adev) 1238 { 1239 struct acpi_hardware_id *hwid; 1240 1241 list_for_each_entry(hwid, &adev->pnp.ids, list) 1242 if (!strcmp("PNP0C0A", hwid->id)) 1243 return true; 1244 1245 return false; 1246 } 1247 1248 static bool is_ejectable_bay(struct acpi_device *adev) 1249 { 1250 acpi_handle handle = adev->handle; 1251 1252 if (acpi_has_method(handle, "_EJ0") && acpi_device_is_battery(adev)) 1253 return true; 1254 1255 return acpi_bay_match(handle); 1256 } 1257 1258 /* 1259 * acpi_dock_match - see if an acpi object has a _DCK method 1260 */ 1261 bool acpi_dock_match(acpi_handle handle) 1262 { 1263 return acpi_has_method(handle, "_DCK"); 1264 } 1265 1266 static acpi_status 1267 acpi_backlight_cap_match(acpi_handle handle, u32 level, void *context, 1268 void **return_value) 1269 { 1270 long *cap = context; 1271 1272 if (acpi_has_method(handle, "_BCM") && 1273 acpi_has_method(handle, "_BCL")) { 1274 acpi_handle_debug(handle, "Found generic backlight support\n"); 1275 *cap |= ACPI_VIDEO_BACKLIGHT; 1276 /* We have backlight support, no need to scan further */ 1277 return AE_CTRL_TERMINATE; 1278 } 1279 return 0; 1280 } 1281 1282 /* Returns true if the ACPI object is a video device which can be 1283 * handled by video.ko. 1284 * The device will get a Linux specific CID added in scan.c to 1285 * identify the device as an ACPI graphics device 1286 * Be aware that the graphics device may not be physically present 1287 */ 1288 long acpi_is_video_device(acpi_handle handle) 1289 { 1290 long video_caps = 0; 1291 1292 /* Is this device able to support video switching ? */ 1293 if (acpi_has_method(handle, "_DOD") || acpi_has_method(handle, "_DOS")) 1294 video_caps |= ACPI_VIDEO_OUTPUT_SWITCHING; 1295 1296 /* Is this device able to retrieve a video ROM ? */ 1297 if (acpi_has_method(handle, "_ROM")) 1298 video_caps |= ACPI_VIDEO_ROM_AVAILABLE; 1299 1300 /* Is this device able to configure which video head to be POSTed ? */ 1301 if (acpi_has_method(handle, "_VPO") && 1302 acpi_has_method(handle, "_GPD") && 1303 acpi_has_method(handle, "_SPD")) 1304 video_caps |= ACPI_VIDEO_DEVICE_POSTING; 1305 1306 /* Only check for backlight functionality if one of the above hit. */ 1307 if (video_caps) 1308 acpi_walk_namespace(ACPI_TYPE_DEVICE, handle, 1309 ACPI_UINT32_MAX, acpi_backlight_cap_match, NULL, 1310 &video_caps, NULL); 1311 1312 return video_caps; 1313 } 1314 EXPORT_SYMBOL(acpi_is_video_device); 1315 1316 const char *acpi_device_hid(struct acpi_device *device) 1317 { 1318 struct acpi_hardware_id *hid; 1319 1320 hid = list_first_entry_or_null(&device->pnp.ids, struct acpi_hardware_id, list); 1321 if (!hid) 1322 return dummy_hid; 1323 1324 return hid->id; 1325 } 1326 EXPORT_SYMBOL(acpi_device_hid); 1327 1328 static void acpi_add_id(struct acpi_device_pnp *pnp, const char *dev_id) 1329 { 1330 struct acpi_hardware_id *id; 1331 1332 id = kmalloc_obj(*id); 1333 if (!id) 1334 return; 1335 1336 id->id = kstrdup_const(dev_id, GFP_KERNEL); 1337 if (!id->id) { 1338 kfree(id); 1339 return; 1340 } 1341 1342 list_add_tail(&id->list, &pnp->ids); 1343 pnp->type.hardware_id = 1; 1344 } 1345 1346 /* 1347 * Old IBM workstations have a DSDT bug wherein the SMBus object 1348 * lacks the SMBUS01 HID and the methods do not have the necessary "_" 1349 * prefix. Work around this. 1350 */ 1351 static bool acpi_ibm_smbus_match(acpi_handle handle) 1352 { 1353 char node_name[ACPI_PATH_SEGMENT_LENGTH]; 1354 struct acpi_buffer path = { sizeof(node_name), node_name }; 1355 1356 if (!dmi_name_in_vendors("IBM")) 1357 return false; 1358 1359 /* Look for SMBS object */ 1360 if (ACPI_FAILURE(acpi_get_name(handle, ACPI_SINGLE_NAME, &path)) || 1361 strcmp("SMBS", path.pointer)) 1362 return false; 1363 1364 /* Does it have the necessary (but misnamed) methods? */ 1365 if (acpi_has_method(handle, "SBI") && 1366 acpi_has_method(handle, "SBR") && 1367 acpi_has_method(handle, "SBW")) 1368 return true; 1369 1370 return false; 1371 } 1372 1373 static bool acpi_object_is_system_bus(acpi_handle handle) 1374 { 1375 acpi_handle tmp; 1376 1377 if (ACPI_SUCCESS(acpi_get_handle(NULL, "\\_SB", &tmp)) && 1378 tmp == handle) 1379 return true; 1380 if (ACPI_SUCCESS(acpi_get_handle(NULL, "\\_TZ", &tmp)) && 1381 tmp == handle) 1382 return true; 1383 1384 return false; 1385 } 1386 1387 static void acpi_set_pnp_ids(acpi_handle handle, struct acpi_device_pnp *pnp, 1388 int device_type) 1389 { 1390 struct acpi_device_info *info = NULL; 1391 struct acpi_pnp_device_id_list *cid_list; 1392 int i; 1393 1394 switch (device_type) { 1395 case ACPI_BUS_TYPE_DEVICE: 1396 if (handle == ACPI_ROOT_OBJECT) { 1397 acpi_add_id(pnp, ACPI_SYSTEM_HID); 1398 break; 1399 } 1400 1401 acpi_get_object_info(handle, &info); 1402 if (!info) { 1403 pr_err("%s: Error reading device info\n", __func__); 1404 return; 1405 } 1406 1407 if (info->valid & ACPI_VALID_HID) { 1408 acpi_add_id(pnp, info->hardware_id.string); 1409 pnp->type.platform_id = 1; 1410 } 1411 if (info->valid & ACPI_VALID_CID) { 1412 cid_list = &info->compatible_id_list; 1413 for (i = 0; i < cid_list->count; i++) 1414 acpi_add_id(pnp, cid_list->ids[i].string); 1415 } 1416 if (info->valid & ACPI_VALID_ADR) { 1417 pnp->bus_address = info->address; 1418 pnp->type.bus_address = 1; 1419 } 1420 if (info->valid & ACPI_VALID_UID) 1421 pnp->unique_id = kstrdup(info->unique_id.string, 1422 GFP_KERNEL); 1423 if (info->valid & ACPI_VALID_CLS) 1424 acpi_add_id(pnp, info->class_code.string); 1425 1426 kfree(info); 1427 1428 /* 1429 * Some devices don't reliably have _HIDs & _CIDs, so add 1430 * synthetic HIDs to make sure drivers can find them. 1431 */ 1432 if (acpi_is_video_device(handle)) { 1433 acpi_add_id(pnp, ACPI_VIDEO_HID); 1434 pnp->type.backlight = 1; 1435 break; 1436 } 1437 if (acpi_bay_match(handle)) 1438 acpi_add_id(pnp, ACPI_BAY_HID); 1439 else if (acpi_dock_match(handle)) 1440 acpi_add_id(pnp, ACPI_DOCK_HID); 1441 else if (acpi_ibm_smbus_match(handle)) 1442 acpi_add_id(pnp, ACPI_SMBUS_IBM_HID); 1443 else if (list_empty(&pnp->ids) && 1444 acpi_object_is_system_bus(handle)) { 1445 /* \_SB, \_TZ, LNXSYBUS */ 1446 acpi_add_id(pnp, ACPI_BUS_HID); 1447 strscpy(pnp->device_name, ACPI_BUS_DEVICE_NAME); 1448 strscpy(pnp->device_class, ACPI_BUS_CLASS); 1449 } 1450 1451 break; 1452 case ACPI_BUS_TYPE_POWER: 1453 acpi_add_id(pnp, ACPI_POWER_HID); 1454 break; 1455 case ACPI_BUS_TYPE_PROCESSOR: 1456 acpi_add_id(pnp, ACPI_PROCESSOR_OBJECT_HID); 1457 break; 1458 case ACPI_BUS_TYPE_THERMAL: 1459 acpi_add_id(pnp, ACPI_THERMAL_HID); 1460 pnp->type.platform_id = 1; 1461 break; 1462 case ACPI_BUS_TYPE_POWER_BUTTON: 1463 acpi_add_id(pnp, ACPI_BUTTON_HID_POWERF); 1464 break; 1465 case ACPI_BUS_TYPE_SLEEP_BUTTON: 1466 acpi_add_id(pnp, ACPI_BUTTON_HID_SLEEPF); 1467 break; 1468 case ACPI_BUS_TYPE_ECDT_EC: 1469 acpi_add_id(pnp, ACPI_ECDT_HID); 1470 break; 1471 } 1472 } 1473 1474 void acpi_free_pnp_ids(struct acpi_device_pnp *pnp) 1475 { 1476 struct acpi_hardware_id *id, *tmp; 1477 1478 list_for_each_entry_safe(id, tmp, &pnp->ids, list) { 1479 kfree_const(id->id); 1480 kfree(id); 1481 } 1482 kfree(pnp->unique_id); 1483 } 1484 1485 /** 1486 * acpi_dma_supported - Check DMA support for the specified device. 1487 * @adev: The pointer to acpi device 1488 * 1489 * Return false if DMA is not supported. Otherwise, return true 1490 */ 1491 bool acpi_dma_supported(const struct acpi_device *adev) 1492 { 1493 if (!adev) 1494 return false; 1495 1496 if (adev->flags.cca_seen) 1497 return true; 1498 1499 /* 1500 * Per ACPI 6.0 sec 6.2.17, assume devices can do cache-coherent 1501 * DMA on "Intel platforms". Presumably that includes all x86 and 1502 * ia64, and other arches will set CONFIG_ACPI_CCA_REQUIRED=y. 1503 */ 1504 if (!IS_ENABLED(CONFIG_ACPI_CCA_REQUIRED)) 1505 return true; 1506 1507 return false; 1508 } 1509 1510 /** 1511 * acpi_get_dma_attr - Check the supported DMA attr for the specified device. 1512 * @adev: The pointer to acpi device 1513 * 1514 * Return enum dev_dma_attr. 1515 */ 1516 enum dev_dma_attr acpi_get_dma_attr(struct acpi_device *adev) 1517 { 1518 if (!acpi_dma_supported(adev)) 1519 return DEV_DMA_NOT_SUPPORTED; 1520 1521 if (adev->flags.coherent_dma) 1522 return DEV_DMA_COHERENT; 1523 else 1524 return DEV_DMA_NON_COHERENT; 1525 } 1526 1527 /** 1528 * acpi_dma_get_range() - Get device DMA parameters. 1529 * 1530 * @dev: device to configure 1531 * @map: pointer to DMA ranges result 1532 * 1533 * Evaluate DMA regions and return pointer to DMA regions on 1534 * parsing success; it does not update the passed in values on failure. 1535 * 1536 * Return 0 on success, < 0 on failure. 1537 */ 1538 int acpi_dma_get_range(struct device *dev, const struct bus_dma_region **map) 1539 { 1540 struct acpi_device *adev; 1541 LIST_HEAD(list); 1542 struct resource_entry *rentry; 1543 int ret; 1544 struct device *dma_dev = dev; 1545 struct bus_dma_region *r; 1546 1547 /* 1548 * Walk the device tree chasing an ACPI companion with a _DMA 1549 * object while we go. Stop if we find a device with an ACPI 1550 * companion containing a _DMA method. 1551 */ 1552 do { 1553 adev = ACPI_COMPANION(dma_dev); 1554 if (adev && acpi_has_method(adev->handle, METHOD_NAME__DMA)) 1555 break; 1556 1557 dma_dev = dma_dev->parent; 1558 } while (dma_dev); 1559 1560 if (!dma_dev) 1561 return -ENODEV; 1562 1563 if (!acpi_has_method(adev->handle, METHOD_NAME__CRS)) { 1564 acpi_handle_warn(adev->handle, "_DMA is valid only if _CRS is present\n"); 1565 return -EINVAL; 1566 } 1567 1568 ret = acpi_dev_get_dma_resources(adev, &list); 1569 if (ret > 0) { 1570 r = kzalloc_objs(*r, ret + 1); 1571 if (!r) { 1572 ret = -ENOMEM; 1573 goto out; 1574 } 1575 1576 *map = r; 1577 1578 list_for_each_entry(rentry, &list, node) { 1579 if (rentry->res->start >= rentry->res->end) { 1580 kfree(*map); 1581 *map = NULL; 1582 ret = -EINVAL; 1583 dev_dbg(dma_dev, "Invalid DMA regions configuration\n"); 1584 goto out; 1585 } 1586 1587 r->cpu_start = rentry->res->start; 1588 r->dma_start = rentry->res->start - rentry->offset; 1589 r->size = resource_size(rentry->res); 1590 r++; 1591 } 1592 } 1593 out: 1594 acpi_dev_free_resource_list(&list); 1595 1596 return ret >= 0 ? 0 : ret; 1597 } 1598 1599 #ifdef CONFIG_IOMMU_API 1600 int acpi_iommu_fwspec_init(struct device *dev, u32 id, 1601 struct fwnode_handle *fwnode) 1602 { 1603 int ret; 1604 1605 ret = iommu_fwspec_init(dev, fwnode); 1606 if (ret) 1607 return ret; 1608 1609 return iommu_fwspec_add_ids(dev, &id, 1); 1610 } 1611 1612 static int acpi_iommu_configure_id(struct device *dev, const u32 *id_in) 1613 { 1614 int err; 1615 1616 /* Serialise to make dev->iommu stable under our potential fwspec */ 1617 mutex_lock(&iommu_probe_device_lock); 1618 /* If we already translated the fwspec there is nothing left to do */ 1619 if (dev_iommu_fwspec_get(dev)) { 1620 mutex_unlock(&iommu_probe_device_lock); 1621 return 0; 1622 } 1623 1624 err = iort_iommu_configure_id(dev, id_in); 1625 if (err && err != -EPROBE_DEFER) 1626 err = rimt_iommu_configure_id(dev, id_in); 1627 if (err && err != -EPROBE_DEFER) 1628 err = viot_iommu_configure(dev); 1629 1630 mutex_unlock(&iommu_probe_device_lock); 1631 1632 return err; 1633 } 1634 1635 #else /* !CONFIG_IOMMU_API */ 1636 1637 int acpi_iommu_fwspec_init(struct device *dev, u32 id, 1638 struct fwnode_handle *fwnode) 1639 { 1640 return -ENODEV; 1641 } 1642 1643 static int acpi_iommu_configure_id(struct device *dev, const u32 *id_in) 1644 { 1645 return -ENODEV; 1646 } 1647 1648 #endif /* !CONFIG_IOMMU_API */ 1649 1650 /** 1651 * acpi_dma_configure_id - Set-up DMA configuration for the device. 1652 * @dev: The pointer to the device 1653 * @attr: device dma attributes 1654 * @input_id: input device id const value pointer 1655 */ 1656 int acpi_dma_configure_id(struct device *dev, enum dev_dma_attr attr, 1657 const u32 *input_id) 1658 { 1659 int ret; 1660 1661 if (attr == DEV_DMA_NOT_SUPPORTED) { 1662 set_dma_ops(dev, &dma_dummy_ops); 1663 return 0; 1664 } 1665 1666 acpi_arch_dma_setup(dev); 1667 1668 /* Ignore all other errors apart from EPROBE_DEFER */ 1669 ret = acpi_iommu_configure_id(dev, input_id); 1670 if (ret == -EPROBE_DEFER) 1671 return -EPROBE_DEFER; 1672 if (ret) 1673 dev_dbg(dev, "Adding to IOMMU failed: %d\n", ret); 1674 1675 arch_setup_dma_ops(dev, attr == DEV_DMA_COHERENT); 1676 1677 return 0; 1678 } 1679 EXPORT_SYMBOL_GPL(acpi_dma_configure_id); 1680 1681 static void acpi_init_coherency(struct acpi_device *adev) 1682 { 1683 unsigned long long cca = 0; 1684 acpi_status status; 1685 struct acpi_device *parent = acpi_dev_parent(adev); 1686 1687 if (parent && parent->flags.cca_seen) { 1688 /* 1689 * From ACPI spec, OSPM will ignore _CCA if an ancestor 1690 * already saw one. 1691 */ 1692 adev->flags.cca_seen = 1; 1693 cca = parent->flags.coherent_dma; 1694 } else { 1695 status = acpi_evaluate_integer(adev->handle, "_CCA", 1696 NULL, &cca); 1697 if (ACPI_SUCCESS(status)) 1698 adev->flags.cca_seen = 1; 1699 else if (!IS_ENABLED(CONFIG_ACPI_CCA_REQUIRED)) 1700 /* 1701 * If architecture does not specify that _CCA is 1702 * required for DMA-able devices (e.g. x86), 1703 * we default to _CCA=1. 1704 */ 1705 cca = 1; 1706 else 1707 acpi_handle_debug(adev->handle, 1708 "ACPI device is missing _CCA.\n"); 1709 } 1710 1711 adev->flags.coherent_dma = cca; 1712 } 1713 1714 static int acpi_check_serial_bus_slave(struct acpi_resource *ares, void *data) 1715 { 1716 bool *is_serial_bus_slave_p = data; 1717 1718 if (ares->type != ACPI_RESOURCE_TYPE_SERIAL_BUS) 1719 return 1; 1720 1721 *is_serial_bus_slave_p = true; 1722 1723 /* no need to do more checking */ 1724 return -1; 1725 } 1726 1727 static bool acpi_is_indirect_io_slave(struct acpi_device *device) 1728 { 1729 struct acpi_device *parent = acpi_dev_parent(device); 1730 static const struct acpi_device_id indirect_io_hosts[] = { 1731 {"HISI0191", 0}, 1732 {} 1733 }; 1734 1735 return parent && !acpi_match_device_ids(parent, indirect_io_hosts); 1736 } 1737 1738 static bool acpi_device_enumeration_by_parent(struct acpi_device *device) 1739 { 1740 struct list_head resource_list; 1741 bool is_serial_bus_slave = false; 1742 static const struct acpi_device_id ignore_serial_bus_ids[] = { 1743 /* 1744 * These devices have multiple SerialBus resources and a client 1745 * device must be instantiated for each of them, each with 1746 * its own device id. 1747 * Normally we only instantiate one client device for the first 1748 * resource, using the ACPI HID as id. These special cases are handled 1749 * by the drivers/platform/x86/serial-multi-instantiate.c driver, which 1750 * knows which client device id to use for each resource. 1751 */ 1752 {"BSG1160", }, 1753 {"BSG2150", }, 1754 {"CSC3551", }, 1755 {"CSC3554", }, 1756 {"CSC3556", }, 1757 {"CSC3557", }, 1758 {"INT33FE", }, 1759 {"INT3515", }, 1760 {"TXNW2781", }, 1761 /* Non-conforming _HID for Cirrus Logic already released */ 1762 {"CLSA0100", }, 1763 {"CLSA0101", }, 1764 /* 1765 * Some ACPI devs contain SerialBus resources even though they are not 1766 * attached to a serial bus at all. 1767 */ 1768 {ACPI_VIDEO_HID, }, 1769 {"MSHW0028", }, 1770 /* 1771 * HIDs of device with an UartSerialBusV2 resource for which userspace 1772 * expects a regular tty cdev to be created (instead of the in kernel 1773 * serdev) and which have a kernel driver which expects a platform_dev 1774 * such as the rfkill-gpio driver. 1775 */ 1776 {"BCM4752", }, 1777 {"LNV4752", }, 1778 {} 1779 }; 1780 1781 if (acpi_is_indirect_io_slave(device)) 1782 return true; 1783 1784 /* Macs use device properties in lieu of _CRS resources */ 1785 if (x86_apple_machine && 1786 (fwnode_property_present(&device->fwnode, "spiSclkPeriod") || 1787 fwnode_property_present(&device->fwnode, "i2cAddress") || 1788 fwnode_property_present(&device->fwnode, "baud"))) 1789 return true; 1790 1791 if (!acpi_match_device_ids(device, ignore_serial_bus_ids)) 1792 return false; 1793 1794 INIT_LIST_HEAD(&resource_list); 1795 acpi_dev_get_resources(device, &resource_list, 1796 acpi_check_serial_bus_slave, 1797 &is_serial_bus_slave); 1798 acpi_dev_free_resource_list(&resource_list); 1799 1800 return is_serial_bus_slave; 1801 } 1802 1803 void acpi_init_device_object(struct acpi_device *device, acpi_handle handle, 1804 int type, void (*release)(struct device *)) 1805 { 1806 struct acpi_device *parent = acpi_find_parent_acpi_dev(handle); 1807 1808 INIT_LIST_HEAD(&device->pnp.ids); 1809 device->device_type = type; 1810 device->handle = handle; 1811 device->dev.parent = parent ? &parent->dev : NULL; 1812 device->dev.release = release; 1813 device->dev.bus = &acpi_bus_type; 1814 device->dev.groups = acpi_groups; 1815 fwnode_init(&device->fwnode, &acpi_device_fwnode_ops); 1816 acpi_set_device_status(device, ACPI_STA_DEFAULT); 1817 acpi_device_get_busid(device); 1818 acpi_set_pnp_ids(handle, &device->pnp, type); 1819 acpi_init_properties(device); 1820 acpi_bus_get_flags(device); 1821 device->flags.match_driver = false; 1822 device->flags.initialized = true; 1823 device->flags.enumeration_by_parent = 1824 acpi_device_enumeration_by_parent(device); 1825 acpi_device_clear_enumerated(device); 1826 device_initialize(&device->dev); 1827 dev_set_uevent_suppress(&device->dev, true); 1828 acpi_init_coherency(device); 1829 } 1830 1831 static void acpi_scan_dep_init(struct acpi_device *adev) 1832 { 1833 struct acpi_dep_data *dep; 1834 1835 list_for_each_entry(dep, &acpi_dep_list, node) { 1836 if (dep->consumer == adev->handle) { 1837 if (dep->honor_dep) 1838 adev->flags.honor_deps = 1; 1839 1840 if (!dep->met) 1841 adev->dep_unmet++; 1842 } 1843 } 1844 } 1845 1846 void acpi_device_add_finalize(struct acpi_device *device) 1847 { 1848 dev_set_uevent_suppress(&device->dev, false); 1849 kobject_uevent(&device->dev.kobj, KOBJ_ADD); 1850 } 1851 1852 static void acpi_scan_init_status(struct acpi_device *adev) 1853 { 1854 if (acpi_bus_get_status(adev)) 1855 acpi_set_device_status(adev, 0); 1856 } 1857 1858 static int acpi_add_single_object(struct acpi_device **child, 1859 acpi_handle handle, int type, bool dep_init) 1860 { 1861 struct acpi_device *device; 1862 bool release_dep_lock = false; 1863 int result; 1864 1865 device = kzalloc_obj(struct acpi_device); 1866 if (!device) 1867 return -ENOMEM; 1868 1869 acpi_init_device_object(device, handle, type, acpi_device_release); 1870 /* 1871 * Getting the status is delayed till here so that we can call 1872 * acpi_bus_get_status() and use its quirk handling. Note that 1873 * this must be done before the get power-/wakeup_dev-flags calls. 1874 */ 1875 if (type == ACPI_BUS_TYPE_DEVICE || type == ACPI_BUS_TYPE_PROCESSOR) { 1876 if (dep_init) { 1877 mutex_lock(&acpi_dep_list_lock); 1878 /* 1879 * Hold the lock until the acpi_tie_acpi_dev() call 1880 * below to prevent concurrent acpi_scan_clear_dep() 1881 * from deleting a dependency list entry without 1882 * updating dep_unmet for the device. 1883 */ 1884 release_dep_lock = true; 1885 acpi_scan_dep_init(device); 1886 } 1887 acpi_scan_init_status(device); 1888 } 1889 1890 acpi_bus_get_power_flags(device); 1891 acpi_bus_get_wakeup_device_flags(device); 1892 1893 result = acpi_tie_acpi_dev(device); 1894 1895 if (release_dep_lock) 1896 mutex_unlock(&acpi_dep_list_lock); 1897 1898 if (!result) 1899 result = acpi_device_add(device); 1900 1901 if (result) { 1902 acpi_device_release(&device->dev); 1903 return result; 1904 } 1905 1906 acpi_power_add_remove_device(device, true); 1907 acpi_device_add_finalize(device); 1908 1909 acpi_handle_debug(handle, "Added as %s, parent %s\n", 1910 dev_name(&device->dev), device->dev.parent ? 1911 dev_name(device->dev.parent) : "(null)"); 1912 1913 *child = device; 1914 return 0; 1915 } 1916 1917 static acpi_status acpi_get_resource_memory(struct acpi_resource *ares, 1918 void *context) 1919 { 1920 struct resource *res = context; 1921 1922 if (acpi_dev_resource_memory(ares, res)) 1923 return AE_CTRL_TERMINATE; 1924 1925 return AE_OK; 1926 } 1927 1928 static bool acpi_device_should_be_hidden(acpi_handle handle) 1929 { 1930 acpi_status status; 1931 struct resource res; 1932 1933 /* Check if it should ignore the UART device */ 1934 if (!(spcr_uart_addr && acpi_has_method(handle, METHOD_NAME__CRS))) 1935 return false; 1936 1937 /* 1938 * The UART device described in SPCR table is assumed to have only one 1939 * memory resource present. So we only look for the first one here. 1940 */ 1941 status = acpi_walk_resources(handle, METHOD_NAME__CRS, 1942 acpi_get_resource_memory, &res); 1943 if (ACPI_FAILURE(status) || res.start != spcr_uart_addr) 1944 return false; 1945 1946 acpi_handle_info(handle, "The UART device @%pa in SPCR table will be hidden\n", 1947 &res.start); 1948 1949 return true; 1950 } 1951 1952 bool acpi_device_is_present(const struct acpi_device *adev) 1953 { 1954 return adev->status.present || adev->status.functional; 1955 } 1956 1957 bool acpi_device_is_enabled(const struct acpi_device *adev) 1958 { 1959 return adev->status.enabled; 1960 } 1961 1962 static bool acpi_scan_handler_matching(struct acpi_scan_handler *handler, 1963 const char *idstr, 1964 const struct acpi_device_id **matchid) 1965 { 1966 const struct acpi_device_id *devid; 1967 1968 if (handler->match) 1969 return handler->match(idstr, matchid); 1970 1971 for (devid = handler->ids; devid->id[0]; devid++) 1972 if (!strcmp((char *)devid->id, idstr)) { 1973 if (matchid) 1974 *matchid = devid; 1975 1976 return true; 1977 } 1978 1979 return false; 1980 } 1981 1982 static struct acpi_scan_handler *acpi_scan_match_handler(const char *idstr, 1983 const struct acpi_device_id **matchid) 1984 { 1985 struct acpi_scan_handler *handler; 1986 1987 list_for_each_entry(handler, &acpi_scan_handlers_list, list_node) 1988 if (acpi_scan_handler_matching(handler, idstr, matchid)) 1989 return handler; 1990 1991 return NULL; 1992 } 1993 1994 void acpi_scan_hotplug_enabled(struct acpi_hotplug_profile *hotplug, bool val) 1995 { 1996 if (!!hotplug->enabled == !!val) 1997 return; 1998 1999 mutex_lock(&acpi_scan_lock); 2000 2001 hotplug->enabled = val; 2002 2003 mutex_unlock(&acpi_scan_lock); 2004 } 2005 2006 int acpi_scan_add_dep(acpi_handle handle, struct acpi_handle_list *dep_devices) 2007 { 2008 u32 count; 2009 int i; 2010 2011 for (count = 0, i = 0; i < dep_devices->count; i++) { 2012 struct acpi_device_info *info; 2013 struct acpi_dep_data *dep; 2014 bool skip, honor_dep; 2015 acpi_status status; 2016 2017 status = acpi_get_object_info(dep_devices->handles[i], &info); 2018 if (ACPI_FAILURE(status)) { 2019 acpi_handle_debug(handle, "Error reading _DEP device info\n"); 2020 continue; 2021 } 2022 2023 skip = acpi_info_matches_ids(info, acpi_ignore_dep_ids); 2024 honor_dep = acpi_info_matches_ids(info, acpi_honor_dep_ids); 2025 kfree(info); 2026 2027 if (skip) 2028 continue; 2029 2030 dep = kzalloc_obj(*dep); 2031 if (!dep) 2032 continue; 2033 2034 count++; 2035 2036 dep->supplier = dep_devices->handles[i]; 2037 dep->consumer = handle; 2038 dep->honor_dep = honor_dep; 2039 2040 mutex_lock(&acpi_dep_list_lock); 2041 list_add_tail(&dep->node, &acpi_dep_list); 2042 mutex_unlock(&acpi_dep_list_lock); 2043 } 2044 2045 acpi_handle_list_free(dep_devices); 2046 return count; 2047 } 2048 2049 static void acpi_scan_init_hotplug(struct acpi_device *adev) 2050 { 2051 struct acpi_hardware_id *hwid; 2052 2053 if (acpi_dock_match(adev->handle) || is_ejectable_bay(adev)) { 2054 acpi_dock_add(adev); 2055 return; 2056 } 2057 list_for_each_entry(hwid, &adev->pnp.ids, list) { 2058 struct acpi_scan_handler *handler; 2059 2060 handler = acpi_scan_match_handler(hwid->id, NULL); 2061 if (handler) { 2062 adev->flags.hotplug_notify = true; 2063 break; 2064 } 2065 } 2066 } 2067 2068 u32 __weak arch_acpi_add_auto_dep(acpi_handle handle) { return 0; } 2069 2070 static u32 acpi_scan_check_dep(acpi_handle handle) 2071 { 2072 struct acpi_handle_list dep_devices; 2073 u32 count = 0; 2074 2075 /* 2076 * Some architectures like RISC-V need to add dependencies for 2077 * all devices which use GSI to the interrupt controller so that 2078 * interrupt controller is probed before any of those devices. 2079 * Instead of mandating _DEP on all the devices, detect the 2080 * dependency and add automatically. 2081 */ 2082 count += arch_acpi_add_auto_dep(handle); 2083 2084 /* 2085 * Check for _HID here to avoid deferring the enumeration of: 2086 * 1. PCI devices. 2087 * 2. ACPI nodes describing USB ports. 2088 * Still, checking for _HID catches more then just these cases ... 2089 */ 2090 if (!acpi_has_method(handle, "_DEP") || !acpi_has_method(handle, "_HID")) 2091 return count; 2092 2093 if (!acpi_evaluate_reference(handle, "_DEP", NULL, &dep_devices)) { 2094 acpi_handle_debug(handle, "Failed to evaluate _DEP.\n"); 2095 return count; 2096 } 2097 2098 count += acpi_scan_add_dep(handle, &dep_devices); 2099 return count; 2100 } 2101 2102 static acpi_status acpi_scan_check_crs_csi2_cb(acpi_handle handle, u32 a, void *b, void **c) 2103 { 2104 acpi_mipi_check_crs_csi2(handle); 2105 return AE_OK; 2106 } 2107 2108 static acpi_status acpi_bus_check_add(acpi_handle handle, bool first_pass, 2109 struct acpi_device **adev_p) 2110 { 2111 struct acpi_device *device = acpi_fetch_acpi_dev(handle); 2112 acpi_object_type acpi_type; 2113 int type; 2114 2115 if (device) 2116 goto out; 2117 2118 if (ACPI_FAILURE(acpi_get_type(handle, &acpi_type))) 2119 return AE_OK; 2120 2121 switch (acpi_type) { 2122 case ACPI_TYPE_DEVICE: 2123 if (acpi_device_should_be_hidden(handle)) 2124 return AE_OK; 2125 2126 if (first_pass) { 2127 acpi_mipi_check_crs_csi2(handle); 2128 2129 /* Bail out if there are dependencies. */ 2130 if (acpi_scan_check_dep(handle) > 0) { 2131 /* 2132 * The entire CSI-2 connection graph needs to be 2133 * extracted before any drivers or scan handlers 2134 * are bound to struct device objects, so scan 2135 * _CRS CSI-2 resource descriptors for all 2136 * devices below the current handle. 2137 */ 2138 acpi_walk_namespace(ACPI_TYPE_DEVICE, handle, 2139 ACPI_UINT32_MAX, 2140 acpi_scan_check_crs_csi2_cb, 2141 NULL, NULL, NULL); 2142 return AE_CTRL_DEPTH; 2143 } 2144 } 2145 2146 fallthrough; 2147 case ACPI_TYPE_ANY: /* for ACPI_ROOT_OBJECT */ 2148 type = ACPI_BUS_TYPE_DEVICE; 2149 break; 2150 2151 case ACPI_TYPE_PROCESSOR: 2152 type = ACPI_BUS_TYPE_PROCESSOR; 2153 break; 2154 2155 case ACPI_TYPE_THERMAL: 2156 type = ACPI_BUS_TYPE_THERMAL; 2157 break; 2158 2159 case ACPI_TYPE_POWER: 2160 acpi_add_power_resource(handle); 2161 fallthrough; 2162 default: 2163 return AE_OK; 2164 } 2165 2166 /* 2167 * If first_pass is true at this point, the device has no dependencies, 2168 * or the creation of the device object would have been postponed above. 2169 */ 2170 acpi_add_single_object(&device, handle, type, !first_pass); 2171 if (!device) 2172 return AE_CTRL_DEPTH; 2173 2174 acpi_scan_init_hotplug(device); 2175 2176 out: 2177 if (!*adev_p) 2178 *adev_p = device; 2179 2180 return AE_OK; 2181 } 2182 2183 static acpi_status acpi_bus_check_add_1(acpi_handle handle, u32 lvl_not_used, 2184 void *not_used, void **ret_p) 2185 { 2186 return acpi_bus_check_add(handle, true, (struct acpi_device **)ret_p); 2187 } 2188 2189 static acpi_status acpi_bus_check_add_2(acpi_handle handle, u32 lvl_not_used, 2190 void *not_used, void **ret_p) 2191 { 2192 return acpi_bus_check_add(handle, false, (struct acpi_device **)ret_p); 2193 } 2194 2195 struct acpi_scan_system_dev { 2196 struct list_head node; 2197 struct acpi_device *adev; 2198 }; 2199 2200 static const char * const acpi_system_dev_ids[] = { 2201 "PNP0C01", /* Memory controller */ 2202 "PNP0C02", /* Motherboard resource */ 2203 NULL 2204 }; 2205 2206 static void acpi_default_enumeration(struct acpi_device *device) 2207 { 2208 /* 2209 * Do not enumerate devices with enumeration_by_parent flag set as 2210 * they will be enumerated by their respective parents. 2211 */ 2212 if (device->flags.enumeration_by_parent) { 2213 blocking_notifier_call_chain(&acpi_reconfig_chain, 2214 ACPI_RECONFIG_DEVICE_ADD, device); 2215 return; 2216 } 2217 if (match_string(acpi_system_dev_ids, -1, acpi_device_hid(device)) >= 0) { 2218 struct acpi_scan_system_dev *sd; 2219 2220 /* 2221 * This is a generic system device, so there is no need to 2222 * create a platform device for it, but its resources need to be 2223 * reserved. However, that needs to be done after all of the 2224 * other device objects have been processed and PCI has claimed 2225 * BARs in case there are resource conflicts. 2226 */ 2227 sd = kmalloc_obj(*sd); 2228 if (sd) { 2229 sd->adev = device; 2230 list_add_tail(&sd->node, &acpi_scan_system_dev_list); 2231 } 2232 } else { 2233 /* For a regular device object, create a platform device. */ 2234 acpi_create_platform_device(device, NULL); 2235 } 2236 acpi_device_set_enumerated(device); 2237 } 2238 2239 static const struct acpi_device_id generic_device_ids[] = { 2240 {ACPI_DT_NAMESPACE_HID, }, 2241 {"", }, 2242 }; 2243 2244 static int acpi_generic_device_attach(struct acpi_device *adev, 2245 const struct acpi_device_id *not_used) 2246 { 2247 /* 2248 * Since ACPI_DT_NAMESPACE_HID is the only ID handled here, the test 2249 * below can be unconditional. 2250 */ 2251 if (adev->data.of_compatible) 2252 acpi_default_enumeration(adev); 2253 2254 return 1; 2255 } 2256 2257 static struct acpi_scan_handler generic_device_handler = { 2258 .ids = generic_device_ids, 2259 .attach = acpi_generic_device_attach, 2260 }; 2261 2262 static int acpi_scan_attach_handler(struct acpi_device *device) 2263 { 2264 struct acpi_hardware_id *hwid; 2265 int ret = 0; 2266 2267 list_for_each_entry(hwid, &device->pnp.ids, list) { 2268 const struct acpi_device_id *devid; 2269 struct acpi_scan_handler *handler; 2270 2271 handler = acpi_scan_match_handler(hwid->id, &devid); 2272 if (handler) { 2273 if (!handler->attach) { 2274 device->pnp.type.platform_id = 0; 2275 continue; 2276 } 2277 device->handler = handler; 2278 ret = handler->attach(device, devid); 2279 if (ret > 0) 2280 break; 2281 2282 device->handler = NULL; 2283 if (ret < 0) 2284 break; 2285 } 2286 } 2287 2288 return ret; 2289 } 2290 2291 static int acpi_bus_attach(struct acpi_device *device, void *first_pass) 2292 { 2293 bool skip = !first_pass && device->flags.visited; 2294 acpi_handle ejd; 2295 int ret; 2296 2297 if (skip) 2298 goto ok; 2299 2300 if (ACPI_SUCCESS(acpi_bus_get_ejd(device->handle, &ejd))) 2301 register_dock_dependent_device(device, ejd); 2302 2303 acpi_bus_get_status(device); 2304 /* Skip devices that are not ready for enumeration (e.g. not present) */ 2305 if (!acpi_dev_ready_for_enumeration(device)) { 2306 device->flags.initialized = false; 2307 acpi_device_clear_enumerated(device); 2308 device->flags.power_manageable = 0; 2309 return 0; 2310 } 2311 if (device->handler) 2312 goto ok; 2313 2314 acpi_ec_register_opregions(device); 2315 2316 if (!device->flags.initialized) { 2317 device->flags.power_manageable = 2318 device->power.states[ACPI_STATE_D0].flags.valid; 2319 if (acpi_bus_init_power(device)) 2320 device->flags.power_manageable = 0; 2321 2322 device->flags.initialized = true; 2323 } else if (device->flags.visited) { 2324 goto ok; 2325 } 2326 2327 ret = acpi_scan_attach_handler(device); 2328 if (ret < 0) 2329 return 0; 2330 2331 device->flags.match_driver = true; 2332 if (ret > 0 && !device->flags.enumeration_by_parent) { 2333 acpi_device_set_enumerated(device); 2334 goto ok; 2335 } 2336 2337 ret = device_attach(&device->dev); 2338 if (ret < 0) 2339 return 0; 2340 2341 if (device->pnp.type.platform_id || device->pnp.type.backlight || 2342 device->flags.enumeration_by_parent) 2343 acpi_default_enumeration(device); 2344 else 2345 acpi_device_set_enumerated(device); 2346 2347 ok: 2348 acpi_dev_for_each_child(device, acpi_bus_attach, first_pass); 2349 2350 if (!skip && device->handler && device->handler->hotplug.notify_online) 2351 device->handler->hotplug.notify_online(device); 2352 2353 return 0; 2354 } 2355 2356 static int acpi_dev_get_next_consumer_dev_cb(struct acpi_dep_data *dep, void *data) 2357 { 2358 struct acpi_device **adev_p = data; 2359 struct acpi_device *adev = *adev_p; 2360 2361 /* 2362 * If we're passed a 'previous' consumer device then we need to skip 2363 * any consumers until we meet the previous one, and then NULL @data 2364 * so the next one can be returned. 2365 */ 2366 if (adev) { 2367 if (dep->consumer == adev->handle) 2368 *adev_p = NULL; 2369 2370 return 0; 2371 } 2372 2373 adev = acpi_get_acpi_dev(dep->consumer); 2374 if (adev) { 2375 *(struct acpi_device **)data = adev; 2376 return 1; 2377 } 2378 /* Continue parsing if the device object is not present. */ 2379 return 0; 2380 } 2381 2382 static void acpi_scan_clear_dep_fn(void *dev, async_cookie_t cookie) 2383 { 2384 struct acpi_device *adev = to_acpi_device(dev); 2385 2386 acpi_scan_lock_acquire(); 2387 acpi_bus_attach(adev, (void *)true); 2388 acpi_scan_lock_release(); 2389 2390 acpi_dev_put(adev); 2391 } 2392 2393 static bool acpi_scan_clear_dep_queue(struct acpi_device *adev) 2394 { 2395 if (adev->dep_unmet) 2396 return false; 2397 2398 /* 2399 * Async schedule the deferred acpi_scan_clear_dep_fn() since: 2400 * - acpi_bus_attach() needs to hold acpi_scan_lock which cannot 2401 * be acquired under acpi_dep_list_lock (held here) 2402 * - the deferred work at boot stage is ensured to be finished 2403 * before userspace init task by the async_synchronize_full() 2404 * barrier 2405 * 2406 * Use _nocall variant since it'll return on failure instead of 2407 * run the function synchronously. 2408 */ 2409 return async_schedule_dev_nocall(acpi_scan_clear_dep_fn, &adev->dev); 2410 } 2411 2412 static void acpi_scan_delete_dep_data(struct acpi_dep_data *dep) 2413 { 2414 list_del(&dep->node); 2415 kfree(dep); 2416 } 2417 2418 static int acpi_scan_clear_dep(struct acpi_dep_data *dep, void *data) 2419 { 2420 struct acpi_device *adev = acpi_get_acpi_dev(dep->consumer); 2421 2422 if (adev) { 2423 adev->dep_unmet--; 2424 if (!acpi_scan_clear_dep_queue(adev)) 2425 acpi_dev_put(adev); 2426 } 2427 2428 if (dep->free_when_met) 2429 acpi_scan_delete_dep_data(dep); 2430 else 2431 dep->met = true; 2432 2433 return 0; 2434 } 2435 2436 /** 2437 * acpi_walk_dep_device_list - Apply a callback to every entry in acpi_dep_list 2438 * @handle: The ACPI handle of the supplier device 2439 * @callback: Pointer to the callback function to apply 2440 * @data: Pointer to some data to pass to the callback 2441 * 2442 * The return value of the callback determines this function's behaviour. If 0 2443 * is returned we continue to iterate over acpi_dep_list. If a positive value 2444 * is returned then the loop is broken but this function returns 0. If a 2445 * negative value is returned by the callback then the loop is broken and that 2446 * value is returned as the final error. 2447 */ 2448 static int acpi_walk_dep_device_list(acpi_handle handle, 2449 int (*callback)(struct acpi_dep_data *, void *), 2450 void *data) 2451 { 2452 struct acpi_dep_data *dep, *tmp; 2453 int ret = 0; 2454 2455 mutex_lock(&acpi_dep_list_lock); 2456 list_for_each_entry_safe(dep, tmp, &acpi_dep_list, node) { 2457 if (dep->supplier == handle) { 2458 ret = callback(dep, data); 2459 if (ret) 2460 break; 2461 } 2462 } 2463 mutex_unlock(&acpi_dep_list_lock); 2464 2465 return ret > 0 ? 0 : ret; 2466 } 2467 2468 /** 2469 * acpi_dev_clear_dependencies - Inform consumers that the device is now active 2470 * @supplier: Pointer to the supplier &struct acpi_device 2471 * 2472 * Clear dependencies on the given device. 2473 */ 2474 void acpi_dev_clear_dependencies(struct acpi_device *supplier) 2475 { 2476 acpi_walk_dep_device_list(supplier->handle, acpi_scan_clear_dep, NULL); 2477 } 2478 EXPORT_SYMBOL_GPL(acpi_dev_clear_dependencies); 2479 2480 /** 2481 * acpi_dev_ready_for_enumeration - Check if the ACPI device is ready for enumeration 2482 * @device: Pointer to the &struct acpi_device to check 2483 * 2484 * Check if the device is present and has no unmet dependencies. 2485 * 2486 * Return true if the device is ready for enumeratino. Otherwise, return false. 2487 */ 2488 bool acpi_dev_ready_for_enumeration(const struct acpi_device *device) 2489 { 2490 if (device->flags.honor_deps && device->dep_unmet) 2491 return false; 2492 2493 return acpi_device_is_present(device); 2494 } 2495 EXPORT_SYMBOL_GPL(acpi_dev_ready_for_enumeration); 2496 2497 /** 2498 * acpi_dev_get_next_consumer_dev - Return the next adev dependent on @supplier 2499 * @supplier: Pointer to the dependee device 2500 * @start: Pointer to the current dependent device 2501 * 2502 * Returns the next &struct acpi_device which declares itself dependent on 2503 * @supplier via the _DEP buffer, parsed from the acpi_dep_list. 2504 * 2505 * If the returned adev is not passed as @start to this function, the caller is 2506 * responsible for putting the reference to adev when it is no longer needed. 2507 */ 2508 struct acpi_device *acpi_dev_get_next_consumer_dev(struct acpi_device *supplier, 2509 struct acpi_device *start) 2510 { 2511 struct acpi_device *adev = start; 2512 2513 acpi_walk_dep_device_list(supplier->handle, 2514 acpi_dev_get_next_consumer_dev_cb, &adev); 2515 2516 acpi_dev_put(start); 2517 2518 if (adev == start) 2519 return NULL; 2520 2521 return adev; 2522 } 2523 EXPORT_SYMBOL_GPL(acpi_dev_get_next_consumer_dev); 2524 2525 static void acpi_scan_postponed_branch(acpi_handle handle) 2526 { 2527 struct acpi_device *adev = NULL; 2528 2529 if (ACPI_FAILURE(acpi_bus_check_add(handle, false, &adev))) 2530 return; 2531 2532 acpi_walk_namespace(ACPI_TYPE_ANY, handle, ACPI_UINT32_MAX, 2533 acpi_bus_check_add_2, NULL, NULL, (void **)&adev); 2534 2535 /* 2536 * Populate the ACPI _CRS CSI-2 software nodes for the ACPI devices that 2537 * have been added above. 2538 */ 2539 acpi_mipi_init_crs_csi2_swnodes(); 2540 2541 acpi_bus_attach(adev, NULL); 2542 } 2543 2544 static void acpi_scan_postponed(void) 2545 { 2546 struct acpi_dep_data *dep, *tmp; 2547 2548 mutex_lock(&acpi_dep_list_lock); 2549 2550 list_for_each_entry_safe(dep, tmp, &acpi_dep_list, node) { 2551 acpi_handle handle = dep->consumer; 2552 2553 /* 2554 * In case there are multiple acpi_dep_list entries with the 2555 * same consumer, skip the current entry if the consumer device 2556 * object corresponding to it is present already. 2557 */ 2558 if (!acpi_fetch_acpi_dev(handle)) { 2559 /* 2560 * Even though the lock is released here, tmp is 2561 * guaranteed to be valid, because none of the list 2562 * entries following dep is marked as "free when met" 2563 * and so they cannot be deleted. 2564 */ 2565 mutex_unlock(&acpi_dep_list_lock); 2566 2567 acpi_scan_postponed_branch(handle); 2568 2569 mutex_lock(&acpi_dep_list_lock); 2570 } 2571 2572 if (dep->met) 2573 acpi_scan_delete_dep_data(dep); 2574 else 2575 dep->free_when_met = true; 2576 } 2577 2578 mutex_unlock(&acpi_dep_list_lock); 2579 } 2580 2581 static void acpi_scan_claim_resources(struct acpi_device *adev) 2582 { 2583 struct resource_entry *rentry; 2584 LIST_HEAD(resource_list); 2585 unsigned int count = 0; 2586 const char *regionid; 2587 2588 if (acpi_dev_get_resources(adev, &resource_list, NULL, NULL) <= 0) 2589 return; 2590 2591 regionid = kstrdup(dev_name(&adev->dev), GFP_KERNEL); 2592 if (!regionid) 2593 goto exit; 2594 2595 list_for_each_entry(rentry, &resource_list, node) { 2596 struct resource *res = rentry->res; 2597 struct resource *r; 2598 2599 /* Skip disabled and invalid resources. */ 2600 if ((res->flags & IORESOURCE_DISABLED) || res->end < res->start) 2601 continue; 2602 2603 if (resource_type(res) == IORESOURCE_IO) { 2604 /* 2605 * Follow the PNP system driver and on x86 skip I/O 2606 * resources that start below 0x100 (the "standard PC 2607 * hardware" boundary). 2608 */ 2609 if (IS_ENABLED(CONFIG_X86) && res->start < 0x100) { 2610 dev_info(&adev->dev, "Skipped %pR\n", res); 2611 continue; 2612 } 2613 r = request_region(res->start, resource_size(res), regionid); 2614 } else if (resource_type(res) == IORESOURCE_MEM) { 2615 r = request_mem_region(res->start, resource_size(res), regionid); 2616 } else { 2617 continue; 2618 } 2619 2620 if (r) { 2621 r->flags &= ~IORESOURCE_BUSY; 2622 dev_info(&adev->dev, "Reserved %pR\n", r); 2623 count++; 2624 } else { 2625 /* 2626 * Failures at this point are usually harmless. PCI 2627 * quirks, for example, reserve resources they know 2628 * about too, so there may well be double reservations. 2629 */ 2630 dev_info(&adev->dev, "Could not reserve %pR\n", res); 2631 } 2632 } 2633 2634 if (!count) 2635 kfree(regionid); 2636 2637 exit: 2638 acpi_dev_free_resource_list(&resource_list); 2639 } 2640 2641 static int __init acpi_reserve_motherboard_resources(void) 2642 { 2643 struct acpi_scan_system_dev *sd, *tmp; 2644 2645 guard(mutex)(&acpi_scan_lock); 2646 2647 list_for_each_entry_safe(sd, tmp, &acpi_scan_system_dev_list, node) { 2648 acpi_scan_claim_resources(sd->adev); 2649 list_del(&sd->node); 2650 kfree(sd); 2651 } 2652 2653 return 0; 2654 } 2655 2656 /* 2657 * Reserve motherboard resources after PCI claims BARs, but before PCI assigns 2658 * resources for uninitialized PCI devices. 2659 */ 2660 fs_initcall(acpi_reserve_motherboard_resources); 2661 2662 /** 2663 * acpi_bus_scan - Add ACPI device node objects in a given namespace scope. 2664 * @handle: Root of the namespace scope to scan. 2665 * 2666 * Scan a given ACPI tree (probably recently hot-plugged) and create and add 2667 * found devices. 2668 * 2669 * If no devices were found, -ENODEV is returned, but it does not mean that 2670 * there has been a real error. There just have been no suitable ACPI objects 2671 * in the table trunk from which the kernel could create a device and add an 2672 * appropriate driver. 2673 * 2674 * Must be called under acpi_scan_lock. 2675 */ 2676 int acpi_bus_scan(acpi_handle handle) 2677 { 2678 struct acpi_device *device = NULL; 2679 2680 /* Pass 1: Avoid enumerating devices with missing dependencies. */ 2681 2682 if (ACPI_SUCCESS(acpi_bus_check_add(handle, true, &device))) 2683 acpi_walk_namespace(ACPI_TYPE_ANY, handle, ACPI_UINT32_MAX, 2684 acpi_bus_check_add_1, NULL, NULL, 2685 (void **)&device); 2686 2687 if (!device) 2688 return -ENODEV; 2689 2690 /* 2691 * Set up ACPI _CRS CSI-2 software nodes using information extracted 2692 * from the _CRS CSI-2 resource descriptors during the ACPI namespace 2693 * walk above and MIPI DisCo for Imaging device properties. 2694 */ 2695 acpi_mipi_scan_crs_csi2(); 2696 acpi_mipi_init_crs_csi2_swnodes(); 2697 2698 acpi_bus_attach(device, (void *)true); 2699 2700 /* Pass 2: Enumerate all of the remaining devices. */ 2701 2702 acpi_scan_postponed(); 2703 2704 acpi_mipi_crs_csi2_cleanup(); 2705 2706 return 0; 2707 } 2708 EXPORT_SYMBOL(acpi_bus_scan); 2709 2710 /** 2711 * acpi_bus_trim - Detach scan handlers and drivers from ACPI device objects. 2712 * @adev: Root of the ACPI namespace scope to walk. 2713 * 2714 * Must be called under acpi_scan_lock. 2715 */ 2716 void acpi_bus_trim(struct acpi_device *adev) 2717 { 2718 uintptr_t flags = 0; 2719 2720 acpi_scan_check_and_detach(adev, (void *)flags); 2721 } 2722 EXPORT_SYMBOL_GPL(acpi_bus_trim); 2723 2724 int acpi_bus_register_early_device(int type) 2725 { 2726 struct acpi_device *device = NULL; 2727 int result; 2728 2729 result = acpi_add_single_object(&device, NULL, type, false); 2730 if (result) 2731 return result; 2732 2733 acpi_default_enumeration(device); 2734 return 0; 2735 } 2736 EXPORT_SYMBOL_GPL(acpi_bus_register_early_device); 2737 2738 static void acpi_bus_add_fixed_device_object(enum acpi_bus_device_type type) 2739 { 2740 struct acpi_device *adev = NULL; 2741 2742 acpi_add_single_object(&adev, NULL, type, false); 2743 if (adev) 2744 acpi_default_enumeration(adev); 2745 } 2746 2747 static void acpi_bus_scan_fixed(void) 2748 { 2749 if (!(acpi_gbl_FADT.flags & ACPI_FADT_POWER_BUTTON)) 2750 acpi_bus_add_fixed_device_object(ACPI_BUS_TYPE_POWER_BUTTON); 2751 2752 if (!(acpi_gbl_FADT.flags & ACPI_FADT_SLEEP_BUTTON)) 2753 acpi_bus_add_fixed_device_object(ACPI_BUS_TYPE_SLEEP_BUTTON); 2754 } 2755 2756 static void __init acpi_get_spcr_uart_addr(void) 2757 { 2758 acpi_status status; 2759 struct acpi_table_spcr *spcr_ptr; 2760 2761 status = acpi_get_table(ACPI_SIG_SPCR, 0, 2762 (struct acpi_table_header **)&spcr_ptr); 2763 if (ACPI_FAILURE(status)) { 2764 pr_warn("STAO table present, but SPCR is missing\n"); 2765 return; 2766 } 2767 2768 spcr_uart_addr = spcr_ptr->serial_port.address; 2769 acpi_put_table((struct acpi_table_header *)spcr_ptr); 2770 } 2771 2772 static bool acpi_scan_initialized; 2773 2774 void __init acpi_scan_init(void) 2775 { 2776 acpi_status status; 2777 struct acpi_table_stao *stao_ptr; 2778 2779 acpi_pci_root_init(); 2780 acpi_pci_link_init(); 2781 acpi_processor_init(); 2782 acpi_platform_init(); 2783 acpi_lpss_init(); 2784 acpi_apd_init(); 2785 acpi_cmos_rtc_init(); 2786 acpi_container_init(); 2787 acpi_memory_hotplug_init(); 2788 acpi_watchdog_init(); 2789 acpi_pnp_init(); 2790 acpi_power_resources_init(); 2791 acpi_init_lpit(); 2792 2793 acpi_scan_add_handler(&generic_device_handler); 2794 2795 /* 2796 * If there is STAO table, check whether it needs to ignore the UART 2797 * device in SPCR table. 2798 */ 2799 status = acpi_get_table(ACPI_SIG_STAO, 0, 2800 (struct acpi_table_header **)&stao_ptr); 2801 if (ACPI_SUCCESS(status)) { 2802 if (stao_ptr->header.length > sizeof(struct acpi_table_stao)) 2803 pr_info("STAO Name List not yet supported.\n"); 2804 2805 if (stao_ptr->ignore_uart) 2806 acpi_get_spcr_uart_addr(); 2807 2808 acpi_put_table((struct acpi_table_header *)stao_ptr); 2809 } 2810 2811 acpi_gpe_apply_masked_gpes(); 2812 acpi_update_all_gpes(); 2813 2814 /* 2815 * Although we call __add_memory() that is documented to require the 2816 * device_hotplug_lock, it is not necessary here because this is an 2817 * early code when userspace or any other code path cannot trigger 2818 * hotplug/hotunplug operations. 2819 */ 2820 mutex_lock(&acpi_scan_lock); 2821 /* 2822 * Enumerate devices in the ACPI namespace. 2823 */ 2824 if (acpi_bus_scan(ACPI_ROOT_OBJECT)) 2825 goto unlock; 2826 2827 acpi_root = acpi_fetch_acpi_dev(ACPI_ROOT_OBJECT); 2828 if (!acpi_root) 2829 goto unlock; 2830 2831 /* Fixed feature devices do not exist on HW-reduced platform */ 2832 if (!acpi_gbl_reduced_hardware) 2833 acpi_bus_scan_fixed(); 2834 2835 acpi_turn_off_unused_power_resources(); 2836 2837 acpi_scan_initialized = true; 2838 2839 unlock: 2840 mutex_unlock(&acpi_scan_lock); 2841 } 2842 2843 static struct acpi_probe_entry *ape; 2844 static int acpi_probe_count; 2845 static DEFINE_MUTEX(acpi_probe_mutex); 2846 2847 static int __init acpi_match_madt(union acpi_subtable_headers *header, 2848 const unsigned long end) 2849 { 2850 if (!ape->subtable_valid || ape->subtable_valid(&header->common, ape)) 2851 if (!ape->probe_subtbl(header, end)) 2852 acpi_probe_count++; 2853 2854 return 0; 2855 } 2856 2857 void __weak arch_sort_irqchip_probe(struct acpi_probe_entry *ap_head, int nr) { } 2858 2859 int __init __acpi_probe_device_table(struct acpi_probe_entry *ap_head, int nr) 2860 { 2861 int count = 0; 2862 2863 if (acpi_disabled) 2864 return 0; 2865 2866 mutex_lock(&acpi_probe_mutex); 2867 arch_sort_irqchip_probe(ap_head, nr); 2868 for (ape = ap_head; nr; ape++, nr--) { 2869 if (ACPI_COMPARE_NAMESEG(ACPI_SIG_MADT, ape->id)) { 2870 acpi_probe_count = 0; 2871 acpi_table_parse_madt(ape->type, acpi_match_madt, 0); 2872 count += acpi_probe_count; 2873 } else { 2874 int res; 2875 res = acpi_table_parse(ape->id, ape->probe_table); 2876 if (!res) 2877 count++; 2878 } 2879 } 2880 mutex_unlock(&acpi_probe_mutex); 2881 2882 return count; 2883 } 2884 2885 static void acpi_table_events_fn(struct work_struct *work) 2886 { 2887 acpi_scan_lock_acquire(); 2888 acpi_bus_scan(ACPI_ROOT_OBJECT); 2889 acpi_scan_lock_release(); 2890 2891 kfree(work); 2892 } 2893 2894 void acpi_scan_table_notify(void) 2895 { 2896 struct work_struct *work; 2897 2898 if (!acpi_scan_initialized) 2899 return; 2900 2901 work = kmalloc_obj(*work); 2902 if (!work) 2903 return; 2904 2905 INIT_WORK(work, acpi_table_events_fn); 2906 schedule_work(work); 2907 } 2908 2909 int acpi_reconfig_notifier_register(struct notifier_block *nb) 2910 { 2911 return blocking_notifier_chain_register(&acpi_reconfig_chain, nb); 2912 } 2913 EXPORT_SYMBOL(acpi_reconfig_notifier_register); 2914 2915 int acpi_reconfig_notifier_unregister(struct notifier_block *nb) 2916 { 2917 return blocking_notifier_chain_unregister(&acpi_reconfig_chain, nb); 2918 } 2919 EXPORT_SYMBOL(acpi_reconfig_notifier_unregister); 2920