1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * acpi_bus.c - ACPI Bus Driver ($Revision: 80 $) 4 * 5 * Copyright (C) 2001, 2002 Paul Diefenbaugh <paul.s.diefenbaugh@intel.com> 6 */ 7 8 #define pr_fmt(fmt) "ACPI: " fmt 9 10 #include <linux/module.h> 11 #include <linux/init.h> 12 #include <linux/ioport.h> 13 #include <linux/kernel.h> 14 #include <linux/list.h> 15 #include <linux/sched.h> 16 #include <linux/pm.h> 17 #include <linux/device.h> 18 #include <linux/proc_fs.h> 19 #include <linux/acpi.h> 20 #include <linux/slab.h> 21 #include <linux/regulator/machine.h> 22 #include <linux/workqueue.h> 23 #include <linux/reboot.h> 24 #include <linux/delay.h> 25 #ifdef CONFIG_X86 26 #include <asm/mpspec.h> 27 #include <linux/dmi.h> 28 #endif 29 #include <linux/acpi_viot.h> 30 #include <linux/pci.h> 31 #include <acpi/apei.h> 32 #include <linux/suspend.h> 33 #include <linux/prmt.h> 34 35 #include "internal.h" 36 37 struct acpi_device *acpi_root; 38 struct proc_dir_entry *acpi_root_dir; 39 EXPORT_SYMBOL(acpi_root_dir); 40 41 #ifdef CONFIG_X86 42 #ifdef CONFIG_ACPI_CUSTOM_DSDT 43 static inline int set_copy_dsdt(const struct dmi_system_id *id) 44 { 45 return 0; 46 } 47 #else 48 static int set_copy_dsdt(const struct dmi_system_id *id) 49 { 50 pr_notice("%s detected - force copy of DSDT to local memory\n", id->ident); 51 acpi_gbl_copy_dsdt_locally = 1; 52 return 0; 53 } 54 #endif 55 56 static const struct dmi_system_id dsdt_dmi_table[] __initconst = { 57 /* 58 * Invoke DSDT corruption work-around on all Toshiba Satellite. 59 * https://bugzilla.kernel.org/show_bug.cgi?id=14679 60 */ 61 { 62 .callback = set_copy_dsdt, 63 .ident = "TOSHIBA Satellite", 64 .matches = { 65 DMI_MATCH(DMI_SYS_VENDOR, "TOSHIBA"), 66 DMI_MATCH(DMI_PRODUCT_NAME, "Satellite"), 67 }, 68 }, 69 {} 70 }; 71 #endif 72 73 /* -------------------------------------------------------------------------- 74 Device Management 75 -------------------------------------------------------------------------- */ 76 77 acpi_status acpi_bus_get_status_handle(acpi_handle handle, 78 unsigned long long *sta) 79 { 80 acpi_status status; 81 82 status = acpi_evaluate_integer(handle, "_STA", NULL, sta); 83 if (ACPI_SUCCESS(status)) 84 return AE_OK; 85 86 if (status == AE_NOT_FOUND) { 87 *sta = ACPI_STA_DEVICE_PRESENT | ACPI_STA_DEVICE_ENABLED | 88 ACPI_STA_DEVICE_UI | ACPI_STA_DEVICE_FUNCTIONING; 89 return AE_OK; 90 } 91 return status; 92 } 93 EXPORT_SYMBOL_GPL(acpi_bus_get_status_handle); 94 95 int acpi_bus_get_status(struct acpi_device *device) 96 { 97 acpi_status status; 98 unsigned long long sta; 99 100 if (acpi_device_override_status(device, &sta)) { 101 acpi_set_device_status(device, sta); 102 return 0; 103 } 104 105 /* Battery devices must have their deps met before calling _STA */ 106 if (acpi_device_is_battery(device) && device->dep_unmet) { 107 acpi_set_device_status(device, 0); 108 return 0; 109 } 110 111 status = acpi_bus_get_status_handle(device->handle, &sta); 112 if (ACPI_FAILURE(status)) 113 return -ENODEV; 114 115 if (!device->status.present && device->status.enabled) { 116 pr_info(FW_BUG "Device [%s] status [%08x]: not present and enabled\n", 117 device->pnp.bus_id, (u32)sta); 118 device->status.enabled = 0; 119 /* 120 * The status is clearly invalid, so clear the functional bit as 121 * well to avoid attempting to use the device. 122 */ 123 device->status.functional = 0; 124 } 125 126 acpi_set_device_status(device, sta); 127 128 if (device->status.functional && !device->status.present) { 129 pr_debug("Device [%s] status [%08x]: functional but not present\n", 130 device->pnp.bus_id, (u32)sta); 131 } 132 133 pr_debug("Device [%s] status [%08x]\n", device->pnp.bus_id, (u32)sta); 134 return 0; 135 } 136 EXPORT_SYMBOL(acpi_bus_get_status); 137 138 void acpi_bus_private_data_handler(acpi_handle handle, 139 void *context) 140 { 141 return; 142 } 143 EXPORT_SYMBOL(acpi_bus_private_data_handler); 144 145 int acpi_bus_attach_private_data(acpi_handle handle, void *data) 146 { 147 acpi_status status; 148 149 status = acpi_attach_data(handle, 150 acpi_bus_private_data_handler, data); 151 if (ACPI_FAILURE(status)) { 152 acpi_handle_debug(handle, "Error attaching device data\n"); 153 return -ENODEV; 154 } 155 156 return 0; 157 } 158 EXPORT_SYMBOL_GPL(acpi_bus_attach_private_data); 159 160 int acpi_bus_get_private_data(acpi_handle handle, void **data) 161 { 162 acpi_status status; 163 164 if (!data) 165 return -EINVAL; 166 167 status = acpi_get_data(handle, acpi_bus_private_data_handler, data); 168 if (ACPI_FAILURE(status)) { 169 acpi_handle_debug(handle, "No context for object\n"); 170 return -ENODEV; 171 } 172 173 return 0; 174 } 175 EXPORT_SYMBOL_GPL(acpi_bus_get_private_data); 176 177 void acpi_bus_detach_private_data(acpi_handle handle) 178 { 179 acpi_detach_data(handle, acpi_bus_private_data_handler); 180 } 181 EXPORT_SYMBOL_GPL(acpi_bus_detach_private_data); 182 183 static void acpi_dump_osc_data(acpi_handle handle, const guid_t *guid, int rev, 184 struct acpi_buffer *cap) 185 { 186 u32 *capbuf = cap->pointer; 187 int i; 188 189 acpi_handle_debug(handle, "_OSC: UUID: %pUL, rev: %d\n", guid, rev); 190 for (i = 0; i < cap->length / sizeof(u32); i++) 191 acpi_handle_debug(handle, "_OSC: capabilities DWORD %i: [%08x]\n", 192 i, capbuf[i]); 193 } 194 195 #define OSC_ERROR_MASK (OSC_REQUEST_ERROR | OSC_INVALID_UUID_ERROR | \ 196 OSC_INVALID_REVISION_ERROR | \ 197 OSC_CAPABILITIES_MASK_ERROR) 198 199 static int acpi_eval_osc(acpi_handle handle, guid_t *guid, int rev, 200 struct acpi_buffer *cap, 201 union acpi_object in_params[at_least 4], 202 struct acpi_buffer *output) 203 { 204 struct acpi_object_list input; 205 union acpi_object *out_obj; 206 acpi_status status; 207 208 in_params[0].type = ACPI_TYPE_BUFFER; 209 in_params[0].buffer.length = sizeof(*guid); 210 in_params[0].buffer.pointer = (u8 *)guid; 211 in_params[1].type = ACPI_TYPE_INTEGER; 212 in_params[1].integer.value = rev; 213 in_params[2].type = ACPI_TYPE_INTEGER; 214 in_params[2].integer.value = cap->length / sizeof(u32); 215 in_params[3].type = ACPI_TYPE_BUFFER; 216 in_params[3].buffer.length = cap->length; 217 in_params[3].buffer.pointer = cap->pointer; 218 input.pointer = in_params; 219 input.count = 4; 220 221 output->length = ACPI_ALLOCATE_BUFFER; 222 output->pointer = NULL; 223 224 status = acpi_evaluate_object(handle, "_OSC", &input, output); 225 if (ACPI_FAILURE(status) || !output->length) 226 return -ENODATA; 227 228 out_obj = output->pointer; 229 if (out_obj->type != ACPI_TYPE_BUFFER || 230 out_obj->buffer.length != cap->length) { 231 acpi_handle_debug(handle, "Invalid _OSC return buffer\n"); 232 acpi_dump_osc_data(handle, guid, rev, cap); 233 ACPI_FREE(out_obj); 234 return -ENODATA; 235 } 236 237 return 0; 238 } 239 240 static bool acpi_osc_error_check(acpi_handle handle, guid_t *guid, int rev, 241 struct acpi_buffer *cap, u32 *retbuf) 242 { 243 /* Only take defined error bits into account. */ 244 u32 errors = retbuf[OSC_QUERY_DWORD] & OSC_ERROR_MASK; 245 u32 *capbuf = cap->pointer; 246 bool fail; 247 248 /* 249 * If OSC_QUERY_ENABLE is set, ignore the "capabilities masked" 250 * bit because it merely means that some features have not been 251 * acknowledged which is not unexpected. 252 */ 253 if (capbuf[OSC_QUERY_DWORD] & OSC_QUERY_ENABLE) 254 errors &= ~OSC_CAPABILITIES_MASK_ERROR; 255 256 if (!errors) 257 return false; 258 259 acpi_dump_osc_data(handle, guid, rev, cap); 260 /* 261 * As a rule, fail only if OSC_QUERY_ENABLE is set because otherwise the 262 * acknowledged features need to be controlled. 263 */ 264 fail = !!(capbuf[OSC_QUERY_DWORD] & OSC_QUERY_ENABLE); 265 266 if (errors & OSC_REQUEST_ERROR) 267 acpi_handle_debug(handle, "_OSC: request failed\n"); 268 269 if (errors & OSC_INVALID_UUID_ERROR) { 270 acpi_handle_debug(handle, "_OSC: invalid UUID\n"); 271 /* 272 * Always fail if this bit is set because it means that the 273 * request could not be processed. 274 */ 275 fail = true; 276 } 277 278 if (errors & OSC_INVALID_REVISION_ERROR) 279 acpi_handle_debug(handle, "_OSC: invalid revision\n"); 280 281 if (errors & OSC_CAPABILITIES_MASK_ERROR) 282 acpi_handle_debug(handle, "_OSC: capability bits masked\n"); 283 284 return fail; 285 } 286 287 acpi_status acpi_run_osc(acpi_handle handle, struct acpi_osc_context *context) 288 { 289 union acpi_object in_params[4], *out_obj; 290 struct acpi_buffer output; 291 acpi_status status = AE_OK; 292 guid_t guid; 293 u32 *retbuf; 294 int ret; 295 296 if (!context || !context->cap.pointer || 297 context->cap.length < 2 * sizeof(u32) || 298 guid_parse(context->uuid_str, &guid)) 299 return AE_BAD_PARAMETER; 300 301 ret = acpi_eval_osc(handle, &guid, context->rev, &context->cap, 302 in_params, &output); 303 if (ret) 304 return AE_ERROR; 305 306 out_obj = output.pointer; 307 retbuf = (u32 *)out_obj->buffer.pointer; 308 309 if (acpi_osc_error_check(handle, &guid, context->rev, &context->cap, retbuf)) { 310 status = AE_ERROR; 311 goto out; 312 } 313 314 context->ret.length = out_obj->buffer.length; 315 context->ret.pointer = kmemdup(retbuf, context->ret.length, GFP_KERNEL); 316 if (!context->ret.pointer) { 317 status = AE_NO_MEMORY; 318 goto out; 319 } 320 status = AE_OK; 321 322 out: 323 ACPI_FREE(out_obj); 324 return status; 325 } 326 EXPORT_SYMBOL(acpi_run_osc); 327 328 static int acpi_osc_handshake(acpi_handle handle, const char *uuid_str, 329 int rev, u32 *capbuf, size_t bufsize) 330 { 331 union acpi_object in_params[4], *out_obj; 332 struct acpi_object_list input; 333 struct acpi_buffer cap = { 334 .pointer = capbuf, 335 .length = bufsize * sizeof(u32), 336 }; 337 struct acpi_buffer output; 338 u32 *retbuf, test, errors; 339 guid_t guid; 340 int ret, i; 341 342 if (!capbuf || bufsize < 2 || guid_parse(uuid_str, &guid)) 343 return -EINVAL; 344 345 /* First evaluate _OSC with OSC_QUERY_ENABLE set. */ 346 capbuf[OSC_QUERY_DWORD] = OSC_QUERY_ENABLE; 347 348 ret = acpi_eval_osc(handle, &guid, rev, &cap, in_params, &output); 349 if (ret) 350 return ret; 351 352 out_obj = output.pointer; 353 retbuf = (u32 *)out_obj->buffer.pointer; 354 355 if (acpi_osc_error_check(handle, &guid, rev, &cap, retbuf)) { 356 ret = -ENODATA; 357 goto out; 358 } 359 360 /* 361 * Clear the feature bits in the capabilities buffer that have not been 362 * acknowledged and clear the return buffer. 363 */ 364 for (i = OSC_QUERY_DWORD + 1, test = 0; i < bufsize; i++) { 365 capbuf[i] &= retbuf[i]; 366 test |= capbuf[i]; 367 retbuf[i] = 0; 368 } 369 /* 370 * If none of the feature bits have been acknowledged, there's nothing 371 * more to do. capbuf[] contains a feature mask of all zeros. 372 */ 373 if (!test) 374 goto out; 375 376 retbuf[OSC_QUERY_DWORD] = 0; 377 /* 378 * Now evaluate _OSC again (directly) with OSC_QUERY_ENABLE clear and 379 * the updated input and output buffers used before. Since the feature 380 * bits that were clear in the return buffer from the previous _OSC 381 * evaluation are also clear in the capabilities buffer now, this _OSC 382 * evaluation is not expected to fail. 383 */ 384 capbuf[OSC_QUERY_DWORD] = 0; 385 /* Reuse in_params[] populated by acpi_eval_osc(). */ 386 input.pointer = in_params; 387 input.count = 4; 388 389 if (ACPI_FAILURE(acpi_evaluate_object(handle, "_OSC", &input, &output))) { 390 ret = -ENODATA; 391 goto out; 392 } 393 394 /* 395 * Clear the feature bits in capbuf[] that have not been acknowledged. 396 * After that, capbuf[] contains the resultant feature mask. 397 */ 398 for (i = OSC_QUERY_DWORD + 1, test = 0; i < bufsize; i++) { 399 test |= capbuf[i] & ~retbuf[i]; 400 capbuf[i] &= retbuf[i]; 401 } 402 403 errors = retbuf[OSC_QUERY_DWORD] & OSC_ERROR_MASK; 404 /* 405 * Some platforms set OSC_CAPABILITIES_MASK_ERROR even though they 406 * acknowledge all of the requested features, so avoid complaining in 407 * those cases unless any other error bits are also set. 408 */ 409 if (errors && (test || errors != OSC_CAPABILITIES_MASK_ERROR)) { 410 /* 411 * Complain about the unexpected errors and print diagnostic 412 * information related to them. 413 */ 414 acpi_handle_err(handle, "_OSC: errors while processing control request\n"); 415 acpi_handle_err(handle, "_OSC: some features may be missing\n"); 416 acpi_osc_error_check(handle, &guid, rev, &cap, retbuf); 417 } 418 419 out: 420 ACPI_FREE(out_obj); 421 return ret; 422 } 423 424 bool osc_sb_apei_support_acked; 425 426 /* 427 * ACPI 6.0 Section 8.4.4.2 Idle State Coordination 428 * OSPM supports platform coordinated low power idle(LPI) states 429 */ 430 bool osc_pc_lpi_support_confirmed; 431 EXPORT_SYMBOL_GPL(osc_pc_lpi_support_confirmed); 432 433 /* 434 * ACPI 6.2 Section 6.2.11.2 'Platform-Wide OSPM Capabilities': 435 * Starting with ACPI Specification 6.2, all _CPC registers can be in 436 * PCC, System Memory, System IO, or Functional Fixed Hardware address 437 * spaces. OSPM support for this more flexible register space scheme is 438 * indicated by the “Flexible Address Space for CPPC Registers” _OSC bit. 439 * 440 * Otherwise (cf ACPI 6.1, s8.4.7.1.1.X), _CPC registers must be in: 441 * - PCC or Functional Fixed Hardware address space if defined 442 * - SystemMemory address space (NULL register) if not defined 443 */ 444 bool osc_cpc_flexible_adr_space_confirmed; 445 EXPORT_SYMBOL_GPL(osc_cpc_flexible_adr_space_confirmed); 446 447 /* 448 * ACPI 6.4 Operating System Capabilities for USB. 449 */ 450 bool osc_sb_native_usb4_support_confirmed; 451 EXPORT_SYMBOL_GPL(osc_sb_native_usb4_support_confirmed); 452 453 bool osc_sb_cppc2_support_acked; 454 455 static void acpi_bus_osc_negotiate_platform_control(void) 456 { 457 static const u8 sb_uuid_str[] = "0811B06E-4A27-44F9-8D60-3CBBC22E7B48"; 458 u32 capbuf[2], feature_mask; 459 acpi_handle handle; 460 461 feature_mask = OSC_SB_PR3_SUPPORT | OSC_SB_HOTPLUG_OST_SUPPORT | 462 OSC_SB_PCLPI_SUPPORT | OSC_SB_OVER_16_PSTATES_SUPPORT | 463 OSC_SB_GED_SUPPORT | OSC_SB_IRQ_RESOURCE_SOURCE_SUPPORT; 464 465 if (IS_ENABLED(CONFIG_ARM64) || IS_ENABLED(CONFIG_X86)) 466 feature_mask |= OSC_SB_GENERIC_INITIATOR_SUPPORT; 467 468 if (IS_ENABLED(CONFIG_ACPI_CPPC_LIB)) { 469 feature_mask |= OSC_SB_CPC_SUPPORT | OSC_SB_CPCV2_SUPPORT | 470 OSC_SB_CPC_FLEXIBLE_ADR_SPACE; 471 if (IS_ENABLED(CONFIG_SCHED_MC_PRIO)) 472 feature_mask |= OSC_SB_CPC_DIVERSE_HIGH_SUPPORT; 473 } 474 475 if (IS_ENABLED(CONFIG_ACPI_PROCESSOR_AGGREGATOR)) 476 feature_mask |= OSC_SB_PAD_SUPPORT; 477 478 if (IS_ENABLED(CONFIG_ACPI_PROCESSOR)) 479 feature_mask |= OSC_SB_PPC_OST_SUPPORT; 480 481 if (IS_ENABLED(CONFIG_ACPI_THERMAL)) 482 feature_mask |= OSC_SB_FAST_THERMAL_SAMPLING_SUPPORT; 483 484 if (IS_ENABLED(CONFIG_ACPI_BATTERY)) 485 feature_mask |= OSC_SB_BATTERY_CHARGE_LIMITING_SUPPORT; 486 487 if (IS_ENABLED(CONFIG_ACPI_PRMT)) 488 feature_mask |= OSC_SB_PRM_SUPPORT; 489 490 if (IS_ENABLED(CONFIG_ACPI_FFH)) 491 feature_mask |= OSC_SB_FFH_OPR_SUPPORT; 492 493 if (IS_ENABLED(CONFIG_USB4)) 494 feature_mask |= OSC_SB_NATIVE_USB4_SUPPORT; 495 496 if (!ghes_disable) 497 feature_mask |= OSC_SB_APEI_SUPPORT; 498 499 if (ACPI_FAILURE(acpi_get_handle(NULL, "\\_SB", &handle))) 500 return; 501 502 capbuf[OSC_SUPPORT_DWORD] = feature_mask; 503 504 acpi_handle_info(handle, "platform _OSC: OS support mask [%08x]\n", feature_mask); 505 506 if (acpi_osc_handshake(handle, sb_uuid_str, 1, capbuf, ARRAY_SIZE(capbuf))) 507 return; 508 509 feature_mask = capbuf[OSC_SUPPORT_DWORD]; 510 511 acpi_handle_info(handle, "platform _OSC: OS control mask [%08x]\n", feature_mask); 512 513 osc_sb_cppc2_support_acked = feature_mask & OSC_SB_CPCV2_SUPPORT; 514 osc_sb_apei_support_acked = feature_mask & OSC_SB_APEI_SUPPORT; 515 osc_pc_lpi_support_confirmed = feature_mask & OSC_SB_PCLPI_SUPPORT; 516 osc_sb_native_usb4_support_confirmed = feature_mask & OSC_SB_NATIVE_USB4_SUPPORT; 517 osc_cpc_flexible_adr_space_confirmed = feature_mask & OSC_SB_CPC_FLEXIBLE_ADR_SPACE; 518 } 519 520 /* 521 * Native control of USB4 capabilities. If any of the tunneling bits is 522 * set it means OS is in control and we use software based connection 523 * manager. 524 */ 525 u32 osc_sb_native_usb4_control; 526 EXPORT_SYMBOL_GPL(osc_sb_native_usb4_control); 527 528 static void acpi_bus_decode_usb_osc(const char *msg, u32 bits) 529 { 530 pr_info("%s USB3%c DisplayPort%c PCIe%c XDomain%c\n", msg, 531 (bits & OSC_USB_USB3_TUNNELING) ? '+' : '-', 532 (bits & OSC_USB_DP_TUNNELING) ? '+' : '-', 533 (bits & OSC_USB_PCIE_TUNNELING) ? '+' : '-', 534 (bits & OSC_USB_XDOMAIN) ? '+' : '-'); 535 } 536 537 static void acpi_bus_osc_negotiate_usb_control(void) 538 { 539 static const u8 sb_usb_uuid_str[] = "23A0D13A-26AB-486C-9C5F-0FFA525A575A"; 540 u32 capbuf[3], control; 541 acpi_handle handle; 542 543 if (!osc_sb_native_usb4_support_confirmed) 544 return; 545 546 if (ACPI_FAILURE(acpi_get_handle(NULL, "\\_SB", &handle))) 547 return; 548 549 control = OSC_USB_USB3_TUNNELING | OSC_USB_DP_TUNNELING | 550 OSC_USB_PCIE_TUNNELING | OSC_USB_XDOMAIN; 551 552 capbuf[OSC_SUPPORT_DWORD] = 0; 553 capbuf[OSC_CONTROL_DWORD] = control; 554 555 if (acpi_osc_handshake(handle, sb_usb_uuid_str, 1, capbuf, ARRAY_SIZE(capbuf))) 556 return; 557 558 osc_sb_native_usb4_control = capbuf[OSC_CONTROL_DWORD]; 559 560 acpi_bus_decode_usb_osc("USB4 _OSC: OS supports", control); 561 acpi_bus_decode_usb_osc("USB4 _OSC: OS controls", osc_sb_native_usb4_control); 562 } 563 564 /* -------------------------------------------------------------------------- 565 Notification Handling 566 -------------------------------------------------------------------------- */ 567 568 /** 569 * acpi_bus_notify - Global system-level (0x00-0x7F) notifications handler 570 * @handle: Target ACPI object. 571 * @type: Notification type. 572 * @data: Ignored. 573 * 574 * This only handles notifications related to device hotplug. 575 */ 576 static void acpi_bus_notify(acpi_handle handle, u32 type, void *data) 577 { 578 struct acpi_device *adev; 579 580 switch (type) { 581 case ACPI_NOTIFY_BUS_CHECK: 582 acpi_handle_debug(handle, "ACPI_NOTIFY_BUS_CHECK event\n"); 583 break; 584 585 case ACPI_NOTIFY_DEVICE_CHECK: 586 acpi_handle_debug(handle, "ACPI_NOTIFY_DEVICE_CHECK event\n"); 587 break; 588 589 case ACPI_NOTIFY_DEVICE_WAKE: 590 acpi_handle_debug(handle, "ACPI_NOTIFY_DEVICE_WAKE event\n"); 591 return; 592 593 case ACPI_NOTIFY_EJECT_REQUEST: 594 acpi_handle_debug(handle, "ACPI_NOTIFY_EJECT_REQUEST event\n"); 595 break; 596 597 case ACPI_NOTIFY_DEVICE_CHECK_LIGHT: 598 acpi_handle_debug(handle, "ACPI_NOTIFY_DEVICE_CHECK_LIGHT event\n"); 599 /* TBD: Exactly what does 'light' mean? */ 600 return; 601 602 case ACPI_NOTIFY_FREQUENCY_MISMATCH: 603 acpi_handle_err(handle, "Device cannot be configured due " 604 "to a frequency mismatch\n"); 605 return; 606 607 case ACPI_NOTIFY_BUS_MODE_MISMATCH: 608 acpi_handle_err(handle, "Device cannot be configured due " 609 "to a bus mode mismatch\n"); 610 return; 611 612 case ACPI_NOTIFY_POWER_FAULT: 613 acpi_handle_err(handle, "Device has suffered a power fault\n"); 614 return; 615 616 default: 617 acpi_handle_debug(handle, "Unknown event type 0x%x\n", type); 618 return; 619 } 620 621 adev = acpi_get_acpi_dev(handle); 622 623 if (adev && ACPI_SUCCESS(acpi_hotplug_schedule(adev, type))) 624 return; 625 626 acpi_put_acpi_dev(adev); 627 628 acpi_evaluate_ost(handle, type, ACPI_OST_SC_NON_SPECIFIC_FAILURE, NULL); 629 } 630 631 int acpi_dev_install_notify_handler(struct acpi_device *adev, 632 u32 handler_type, 633 acpi_notify_handler handler, void *context) 634 { 635 acpi_status status; 636 637 status = acpi_install_notify_handler(adev->handle, handler_type, 638 handler, context); 639 if (ACPI_FAILURE(status)) 640 return -ENODEV; 641 642 return 0; 643 } 644 EXPORT_SYMBOL_GPL(acpi_dev_install_notify_handler); 645 646 void acpi_dev_remove_notify_handler(struct acpi_device *adev, 647 u32 handler_type, 648 acpi_notify_handler handler) 649 { 650 acpi_remove_notify_handler(adev->handle, handler_type, handler); 651 acpi_os_wait_events_complete(); 652 } 653 EXPORT_SYMBOL_GPL(acpi_dev_remove_notify_handler); 654 655 struct acpi_notify_handler_devres { 656 struct acpi_device *adev; 657 acpi_notify_handler handler; 658 u32 handler_type; 659 }; 660 661 static void devm_acpi_notify_handler_release(struct device *dev, void *res) 662 { 663 struct acpi_notify_handler_devres *dr = res; 664 665 acpi_dev_remove_notify_handler(dr->adev, dr->handler_type, dr->handler); 666 } 667 668 /** 669 * devm_acpi_install_notify_handler - Install an ACPI notify handler for a 670 * managed device 671 * @dev: Device to install a notify handler for 672 * @handler_type: Type of the notify handler 673 * @handler: Handler function to install 674 * @context: Data passed back to the handler function 675 * 676 * This function performs the same function as acpi_dev_install_notify_handler() 677 * called for the ACPI companion of @dev with the same @handler_type, @handler, 678 * and @context arguments, but the ACPI notify handler installed by it will be 679 * automatically removed on driver detach. 680 * 681 * Callers should ensure that all resources used by @handler have been allocated 682 * prior to invoking this function, in which case those resources should be 683 * devres-managed so that they won't be released before the notify handler 684 * removal. Otherwise, special synchronization between @handler and the 685 * management of those resources is required. 686 * 687 * When the request fails, an error message is printed. Don't add extra error 688 * messages at the call sites. 689 * 690 * Return: 0 on success or a negative error number. 691 */ 692 int devm_acpi_install_notify_handler(struct device *dev, u32 handler_type, 693 acpi_notify_handler handler, void *context) 694 { 695 struct acpi_notify_handler_devres *dr; 696 struct acpi_device *adev; 697 int ret; 698 699 adev = ACPI_COMPANION(dev); 700 if (!adev) 701 return dev_err_probe(dev, -ENODEV, "No ACPI companion\n"); 702 703 dr = devres_alloc(devm_acpi_notify_handler_release, sizeof(*dr), GFP_KERNEL); 704 if (!dr) 705 return -ENOMEM; 706 707 ret = acpi_dev_install_notify_handler(adev, handler_type, handler, context); 708 if (ret) { 709 devres_free(dr); 710 return dev_err_probe(dev, ret, "Failed to install an ACPI notify handler\n"); 711 } 712 713 dr->adev = adev; 714 dr->handler = handler; 715 dr->handler_type = handler_type; 716 devres_add(dev, dr); 717 718 return 0; 719 } 720 EXPORT_SYMBOL_GPL(devm_acpi_install_notify_handler); 721 722 /* Handle events targeting \_SB device (at present only graceful shutdown) */ 723 724 #define ACPI_SB_NOTIFY_SHUTDOWN_REQUEST 0x81 725 #define ACPI_SB_INDICATE_INTERVAL 10000 726 727 static void sb_notify_work(struct work_struct *dummy) 728 { 729 acpi_handle sb_handle; 730 731 orderly_poweroff(true); 732 733 /* 734 * After initiating graceful shutdown, the ACPI spec requires OSPM 735 * to evaluate _OST method once every 10seconds to indicate that 736 * the shutdown is in progress 737 */ 738 acpi_get_handle(NULL, "\\_SB", &sb_handle); 739 while (1) { 740 pr_info("Graceful shutdown in progress.\n"); 741 acpi_evaluate_ost(sb_handle, ACPI_OST_EC_OSPM_SHUTDOWN, 742 ACPI_OST_SC_OS_SHUTDOWN_IN_PROGRESS, NULL); 743 msleep(ACPI_SB_INDICATE_INTERVAL); 744 } 745 } 746 747 static void acpi_sb_notify(acpi_handle handle, u32 event, void *data) 748 { 749 static DECLARE_WORK(acpi_sb_work, sb_notify_work); 750 751 if (event == ACPI_SB_NOTIFY_SHUTDOWN_REQUEST) { 752 if (!work_busy(&acpi_sb_work)) 753 schedule_work(&acpi_sb_work); 754 } else { 755 pr_warn("event %x is not supported by \\_SB device\n", event); 756 } 757 } 758 759 static int __init acpi_setup_sb_notify_handler(void) 760 { 761 acpi_handle sb_handle; 762 763 if (ACPI_FAILURE(acpi_get_handle(NULL, "\\_SB", &sb_handle))) 764 return -ENXIO; 765 766 if (ACPI_FAILURE(acpi_install_notify_handler(sb_handle, ACPI_DEVICE_NOTIFY, 767 acpi_sb_notify, NULL))) 768 return -EINVAL; 769 770 return 0; 771 } 772 773 /* -------------------------------------------------------------------------- 774 Device Matching 775 -------------------------------------------------------------------------- */ 776 777 778 static struct device *primary_physical_device(struct acpi_device *adev) 779 { 780 struct acpi_device_physical_node *pn; 781 782 pn = list_first_entry_or_null(&adev->physical_node_list, 783 struct acpi_device_physical_node, node); 784 if (pn) 785 return pn->dev; 786 787 return NULL; 788 } 789 790 /** 791 * acpi_bus_get_primary_device - Get first physical device for a given ACPI one 792 * @adev: ACPI device to get the first physical device for. 793 * 794 * Find the first physical device for which @adev is the ACPI companion and 795 * reference count it if present. 796 * 797 * Return: Pointer to the first physical counterpart of @adev or NULL if there 798 * are none. Callers are responsible for invoking put_device() on the returned 799 * device. 800 */ 801 struct device *acpi_bus_get_primary_device(struct acpi_device *adev) 802 { 803 if (!adev) 804 return NULL; 805 806 guard(mutex)(&adev->physical_node_lock); 807 808 return get_device(primary_physical_device(adev)); 809 } 810 EXPORT_SYMBOL_GPL(acpi_bus_get_primary_device); 811 812 /** 813 * acpi_get_first_physical_node - Find first physical node of an ACPI device 814 * @adev: ACPI device in question 815 * 816 * Return: First physical node of ACPI device @adev 817 */ 818 struct device *acpi_get_first_physical_node(struct acpi_device *adev) 819 { 820 guard(mutex)(&adev->physical_node_lock); 821 822 return primary_physical_device(adev); 823 } 824 EXPORT_SYMBOL_GPL(acpi_get_first_physical_node); 825 826 static struct acpi_device *acpi_primary_dev_companion(struct acpi_device *adev, 827 const struct device *dev) 828 { 829 const struct device *phys_dev = acpi_get_first_physical_node(adev); 830 831 return phys_dev && phys_dev == dev ? adev : NULL; 832 } 833 834 /** 835 * acpi_device_is_first_physical_node - Is given dev first physical node 836 * @adev: ACPI companion device 837 * @dev: Physical device to check 838 * 839 * Function checks if given @dev is the first physical devices attached to 840 * the ACPI companion device. This distinction is needed in some cases 841 * where the same companion device is shared between many physical devices. 842 * 843 * Note that the caller have to provide valid @adev pointer. 844 */ 845 bool acpi_device_is_first_physical_node(struct acpi_device *adev, 846 const struct device *dev) 847 { 848 return !!acpi_primary_dev_companion(adev, dev); 849 } 850 851 /* 852 * acpi_companion_match() - Can we match via ACPI companion device 853 * @dev: Device in question 854 * 855 * Check if the given device has an ACPI companion and if that companion has 856 * a valid list of PNP IDs, and if the device is the first (primary) physical 857 * device associated with it. Return the companion pointer if that's the case 858 * or NULL otherwise. 859 * 860 * If multiple physical devices are attached to a single ACPI companion, we need 861 * to be careful. The usage scenario for this kind of relationship is that all 862 * of the physical devices in question use resources provided by the ACPI 863 * companion. A typical case is an MFD device where all the sub-devices share 864 * the parent's ACPI companion. In such cases we can only allow the primary 865 * (first) physical device to be matched with the help of the companion's PNP 866 * IDs. 867 * 868 * Additional physical devices sharing the ACPI companion can still use 869 * resources available from it but they will be matched normally using functions 870 * provided by their bus types (and analogously for their modalias). 871 */ 872 const struct acpi_device *acpi_companion_match(const struct device *dev) 873 { 874 struct acpi_device *adev; 875 876 adev = ACPI_COMPANION(dev); 877 if (!adev) 878 return NULL; 879 880 if (list_empty(&adev->pnp.ids)) 881 return NULL; 882 883 return acpi_primary_dev_companion(adev, dev); 884 } 885 886 /** 887 * acpi_of_match_device - Match device object using the "compatible" property. 888 * @adev: ACPI device object to match. 889 * @of_match_table: List of device IDs to match against. 890 * @of_id: OF ID if matched 891 * 892 * If @dev has an ACPI companion which has ACPI_DT_NAMESPACE_HID in its list of 893 * identifiers and a _DSD object with the "compatible" property, use that 894 * property to match against the given list of identifiers. 895 */ 896 static bool acpi_of_match_device(const struct acpi_device *adev, 897 const struct of_device_id *of_match_table, 898 const struct of_device_id **of_id) 899 { 900 const union acpi_object *of_compatible, *obj; 901 int i, nval; 902 903 if (!adev) 904 return false; 905 906 of_compatible = adev->data.of_compatible; 907 if (!of_match_table || !of_compatible) 908 return false; 909 910 if (of_compatible->type == ACPI_TYPE_PACKAGE) { 911 nval = of_compatible->package.count; 912 obj = of_compatible->package.elements; 913 } else { /* Must be ACPI_TYPE_STRING. */ 914 nval = 1; 915 obj = of_compatible; 916 } 917 /* Now we can look for the driver DT compatible strings */ 918 for (i = 0; i < nval; i++, obj++) { 919 const struct of_device_id *id; 920 921 for (id = of_match_table; id->compatible[0]; id++) 922 if (!strcasecmp(obj->string.pointer, id->compatible)) { 923 if (of_id) 924 *of_id = id; 925 return true; 926 } 927 } 928 929 return false; 930 } 931 932 static bool acpi_of_modalias(struct acpi_device *adev, 933 char *modalias, size_t len) 934 { 935 const union acpi_object *of_compatible; 936 const union acpi_object *obj; 937 const char *str, *chr; 938 939 of_compatible = adev->data.of_compatible; 940 if (!of_compatible) 941 return false; 942 943 if (of_compatible->type == ACPI_TYPE_PACKAGE) 944 obj = of_compatible->package.elements; 945 else /* Must be ACPI_TYPE_STRING. */ 946 obj = of_compatible; 947 948 str = obj->string.pointer; 949 chr = strchr(str, ','); 950 strscpy(modalias, chr ? chr + 1 : str, len); 951 952 return true; 953 } 954 955 /** 956 * acpi_set_modalias - Set modalias using "compatible" property or supplied ID 957 * @adev: ACPI device object to match 958 * @default_id: ID string to use as default if no compatible string found 959 * @modalias: Pointer to buffer that modalias value will be copied into 960 * @len: Length of modalias buffer 961 * 962 * This is a counterpart of of_alias_from_compatible() for struct acpi_device 963 * objects. If there is a compatible string for @adev, it will be copied to 964 * @modalias with the vendor prefix stripped; otherwise, @default_id will be 965 * used. 966 */ 967 void acpi_set_modalias(struct acpi_device *adev, const char *default_id, 968 char *modalias, size_t len) 969 { 970 if (!acpi_of_modalias(adev, modalias, len)) 971 strscpy(modalias, default_id, len); 972 } 973 EXPORT_SYMBOL_GPL(acpi_set_modalias); 974 975 static bool __acpi_match_device_cls(const struct acpi_device_id *id, 976 struct acpi_hardware_id *hwid) 977 { 978 int i, msk, byte_shift; 979 char buf[3]; 980 981 if (!id->cls) 982 return false; 983 984 /* Apply class-code bitmask, before checking each class-code byte */ 985 for (i = 1; i <= 3; i++) { 986 byte_shift = 8 * (3 - i); 987 msk = (id->cls_msk >> byte_shift) & 0xFF; 988 if (!msk) 989 continue; 990 991 sprintf(buf, "%02x", (id->cls >> byte_shift) & msk); 992 if (strncmp(buf, &hwid->id[(i - 1) * 2], 2)) 993 return false; 994 } 995 return true; 996 } 997 998 static bool __acpi_match_device(const struct acpi_device *device, 999 const struct acpi_device_id *acpi_ids, 1000 const struct of_device_id *of_ids, 1001 const struct acpi_device_id **acpi_id, 1002 const struct of_device_id **of_id) 1003 { 1004 const struct acpi_device_id *id; 1005 struct acpi_hardware_id *hwid; 1006 1007 /* 1008 * If the device is not present, it is unnecessary to load device 1009 * driver for it. 1010 */ 1011 if (!device || !device->status.present) 1012 return false; 1013 1014 list_for_each_entry(hwid, &device->pnp.ids, list) { 1015 /* First, check the ACPI/PNP IDs provided by the caller. */ 1016 if (acpi_ids) { 1017 for (id = acpi_ids; id->id[0] || id->cls; id++) { 1018 if (id->id[0] && !strcmp((char *)id->id, hwid->id)) 1019 goto out_acpi_match; 1020 if (id->cls && __acpi_match_device_cls(id, hwid)) 1021 goto out_acpi_match; 1022 } 1023 } 1024 1025 /* 1026 * Next, check ACPI_DT_NAMESPACE_HID and try to match the 1027 * "compatible" property if found. 1028 */ 1029 if (!strcmp(ACPI_DT_NAMESPACE_HID, hwid->id)) 1030 return acpi_of_match_device(device, of_ids, of_id); 1031 } 1032 return false; 1033 1034 out_acpi_match: 1035 if (acpi_id) 1036 *acpi_id = id; 1037 return true; 1038 } 1039 1040 /** 1041 * acpi_match_acpi_device - Match an ACPI device against a given list of ACPI IDs 1042 * @ids: Array of struct acpi_device_id objects to match against. 1043 * @adev: The ACPI device pointer to match. 1044 * 1045 * Match the ACPI device @adev against a given list of ACPI IDs @ids. 1046 * 1047 * Return: 1048 * a pointer to the first matching ACPI ID on success or %NULL on failure. 1049 */ 1050 const struct acpi_device_id *acpi_match_acpi_device(const struct acpi_device_id *ids, 1051 const struct acpi_device *adev) 1052 { 1053 const struct acpi_device_id *id = NULL; 1054 1055 __acpi_match_device(adev, ids, NULL, &id, NULL); 1056 return id; 1057 } 1058 EXPORT_SYMBOL_GPL(acpi_match_acpi_device); 1059 1060 /** 1061 * acpi_match_device - Match a struct device against a given list of ACPI IDs 1062 * @ids: Array of struct acpi_device_id object to match against. 1063 * @dev: The device structure to match. 1064 * 1065 * Check if @dev has a valid ACPI handle and if there is a struct acpi_device 1066 * object for that handle and use that object to match against a given list of 1067 * device IDs. 1068 * 1069 * Return a pointer to the first matching ID on success or %NULL on failure. 1070 */ 1071 const struct acpi_device_id *acpi_match_device(const struct acpi_device_id *ids, 1072 const struct device *dev) 1073 { 1074 return acpi_match_acpi_device(ids, acpi_companion_match(dev)); 1075 } 1076 EXPORT_SYMBOL_GPL(acpi_match_device); 1077 1078 const void *acpi_device_get_match_data(const struct device *dev) 1079 { 1080 const struct acpi_device_id *acpi_ids = dev->driver->acpi_match_table; 1081 const struct of_device_id *of_ids = dev->driver->of_match_table; 1082 const struct acpi_device *adev = acpi_companion_match(dev); 1083 const struct acpi_device_id *acpi_id = NULL; 1084 const struct of_device_id *of_id = NULL; 1085 1086 if (!__acpi_match_device(adev, acpi_ids, of_ids, &acpi_id, &of_id)) 1087 return NULL; 1088 1089 if (acpi_id) 1090 return (const void *)acpi_id->driver_data; 1091 1092 if (of_id) 1093 return of_id->data; 1094 1095 return NULL; 1096 } 1097 EXPORT_SYMBOL_GPL(acpi_device_get_match_data); 1098 1099 int acpi_match_device_ids(struct acpi_device *device, 1100 const struct acpi_device_id *ids) 1101 { 1102 return __acpi_match_device(device, ids, NULL, NULL, NULL) ? 0 : -ENOENT; 1103 } 1104 EXPORT_SYMBOL(acpi_match_device_ids); 1105 1106 bool acpi_driver_match_device(struct device *dev, 1107 const struct device_driver *drv) 1108 { 1109 const struct acpi_device_id *acpi_ids = drv->acpi_match_table; 1110 const struct of_device_id *of_ids = drv->of_match_table; 1111 1112 if (!acpi_ids) 1113 return acpi_of_match_device(ACPI_COMPANION(dev), of_ids, NULL); 1114 1115 return __acpi_match_device(acpi_companion_match(dev), acpi_ids, of_ids, NULL, NULL); 1116 } 1117 EXPORT_SYMBOL_GPL(acpi_driver_match_device); 1118 1119 /* -------------------------------------------------------------------------- 1120 ACPI Bus operations 1121 -------------------------------------------------------------------------- */ 1122 1123 static int acpi_bus_match(struct device *dev, const struct device_driver *drv) 1124 { 1125 return 0; 1126 } 1127 1128 static int acpi_device_uevent(const struct device *dev, struct kobj_uevent_env *env) 1129 { 1130 return __acpi_device_uevent_modalias(to_acpi_device(dev), env); 1131 } 1132 1133 const struct bus_type acpi_bus_type = { 1134 .name = "acpi", 1135 .match = acpi_bus_match, 1136 .uevent = acpi_device_uevent, 1137 }; 1138 1139 int acpi_bus_for_each_dev(int (*fn)(struct device *, void *), void *data) 1140 { 1141 return bus_for_each_dev(&acpi_bus_type, NULL, data, fn); 1142 } 1143 EXPORT_SYMBOL_GPL(acpi_bus_for_each_dev); 1144 1145 /** 1146 * acpi_bus_find_device_by_name() - Locate an ACPI device by its name 1147 * @name: Name of the device to match 1148 * 1149 * The caller is responsible for calling put_device() on the returned object. 1150 * 1151 * Returns: 1152 * New reference to the matched device or NULL if the device can't be found. 1153 */ 1154 struct device *acpi_bus_find_device_by_name(const char *name) 1155 { 1156 return bus_find_device_by_name(&acpi_bus_type, NULL, name); 1157 } 1158 EXPORT_SYMBOL_GPL(acpi_bus_find_device_by_name); 1159 1160 struct acpi_dev_walk_context { 1161 int (*fn)(struct acpi_device *, void *); 1162 void *data; 1163 }; 1164 1165 static int acpi_dev_for_one_check(struct device *dev, void *context) 1166 { 1167 struct acpi_dev_walk_context *adwc = context; 1168 1169 if (dev->bus != &acpi_bus_type) 1170 return 0; 1171 1172 return adwc->fn(to_acpi_device(dev), adwc->data); 1173 } 1174 EXPORT_SYMBOL_GPL(acpi_dev_for_each_child); 1175 1176 int acpi_dev_for_each_child(struct acpi_device *adev, 1177 int (*fn)(struct acpi_device *, void *), void *data) 1178 { 1179 struct acpi_dev_walk_context adwc = { 1180 .fn = fn, 1181 .data = data, 1182 }; 1183 1184 return device_for_each_child(&adev->dev, &adwc, acpi_dev_for_one_check); 1185 } 1186 1187 int acpi_dev_for_each_child_reverse(struct acpi_device *adev, 1188 int (*fn)(struct acpi_device *, void *), 1189 void *data) 1190 { 1191 struct acpi_dev_walk_context adwc = { 1192 .fn = fn, 1193 .data = data, 1194 }; 1195 1196 return device_for_each_child_reverse(&adev->dev, &adwc, acpi_dev_for_one_check); 1197 } 1198 1199 /* -------------------------------------------------------------------------- 1200 Initialization/Cleanup 1201 -------------------------------------------------------------------------- */ 1202 1203 static int __init acpi_bus_init_irq(void) 1204 { 1205 acpi_status status; 1206 char *message = NULL; 1207 1208 1209 /* 1210 * Let the system know what interrupt model we are using by 1211 * evaluating the \_PIC object, if exists. 1212 */ 1213 1214 switch (acpi_irq_model) { 1215 case ACPI_IRQ_MODEL_PIC: 1216 message = "PIC"; 1217 break; 1218 case ACPI_IRQ_MODEL_IOAPIC: 1219 message = "IOAPIC"; 1220 break; 1221 case ACPI_IRQ_MODEL_IOSAPIC: 1222 message = "IOSAPIC"; 1223 break; 1224 case ACPI_IRQ_MODEL_GIC: 1225 message = "GIC"; 1226 break; 1227 case ACPI_IRQ_MODEL_GIC_V5: 1228 message = "GICv5"; 1229 break; 1230 case ACPI_IRQ_MODEL_PLATFORM: 1231 message = "platform specific model"; 1232 break; 1233 case ACPI_IRQ_MODEL_LPIC: 1234 message = "LPIC"; 1235 break; 1236 case ACPI_IRQ_MODEL_RINTC: 1237 message = "RINTC"; 1238 break; 1239 default: 1240 pr_info("Unknown interrupt routing model\n"); 1241 return -ENODEV; 1242 } 1243 1244 pr_info("Using %s for interrupt routing\n", message); 1245 1246 status = acpi_execute_simple_method(NULL, "\\_PIC", acpi_irq_model); 1247 if (ACPI_FAILURE(status) && (status != AE_NOT_FOUND)) { 1248 pr_info("_PIC evaluation failed: %s\n", acpi_format_exception(status)); 1249 return -ENODEV; 1250 } 1251 1252 return 0; 1253 } 1254 1255 /** 1256 * acpi_early_init - Initialize ACPICA and populate the ACPI namespace. 1257 * 1258 * The ACPI tables are accessible after this, but the handling of events has not 1259 * been initialized and the global lock is not available yet, so AML should not 1260 * be executed at this point. 1261 * 1262 * Doing this before switching the EFI runtime services to virtual mode allows 1263 * the EfiBootServices memory to be freed slightly earlier on boot. 1264 */ 1265 void __init acpi_early_init(void) 1266 { 1267 acpi_status status; 1268 1269 if (acpi_disabled) 1270 return; 1271 1272 pr_info("Core revision %08x\n", ACPI_CA_VERSION); 1273 1274 /* enable workarounds, unless strict ACPI spec. compliance */ 1275 if (!acpi_strict) 1276 acpi_gbl_enable_interpreter_slack = TRUE; 1277 1278 acpi_permanent_mmap = true; 1279 1280 #ifdef CONFIG_X86 1281 /* 1282 * If the machine falls into the DMI check table, 1283 * DSDT will be copied to memory. 1284 * Note that calling dmi_check_system() here on other architectures 1285 * would not be OK because only x86 initializes dmi early enough. 1286 * Thankfully only x86 systems need such quirks for now. 1287 */ 1288 dmi_check_system(dsdt_dmi_table); 1289 #endif 1290 1291 status = acpi_reallocate_root_table(); 1292 if (ACPI_FAILURE(status)) { 1293 pr_err("Unable to reallocate ACPI tables\n"); 1294 goto error0; 1295 } 1296 1297 status = acpi_initialize_subsystem(); 1298 if (ACPI_FAILURE(status)) { 1299 pr_err("Unable to initialize the ACPI Interpreter\n"); 1300 goto error0; 1301 } 1302 1303 #ifdef CONFIG_X86 1304 if (!acpi_ioapic) { 1305 /* compatible (0) means level (3) */ 1306 if (!(acpi_sci_flags & ACPI_MADT_TRIGGER_MASK)) { 1307 acpi_sci_flags &= ~ACPI_MADT_TRIGGER_MASK; 1308 acpi_sci_flags |= ACPI_MADT_TRIGGER_LEVEL; 1309 } 1310 /* Set PIC-mode SCI trigger type */ 1311 acpi_pic_sci_set_trigger(acpi_gbl_FADT.sci_interrupt, 1312 (acpi_sci_flags & ACPI_MADT_TRIGGER_MASK) >> 2); 1313 } else { 1314 /* 1315 * now that acpi_gbl_FADT is initialized, 1316 * update it with result from INT_SRC_OVR parsing 1317 */ 1318 acpi_gbl_FADT.sci_interrupt = acpi_sci_override_gsi; 1319 } 1320 #endif 1321 return; 1322 1323 error0: 1324 disable_acpi(); 1325 } 1326 1327 /** 1328 * acpi_subsystem_init - Finalize the early initialization of ACPI. 1329 * 1330 * Switch over the platform to the ACPI mode (if possible). 1331 * 1332 * Doing this too early is generally unsafe, but at the same time it needs to be 1333 * done before all things that really depend on ACPI. The right spot appears to 1334 * be before finalizing the EFI initialization. 1335 */ 1336 void __init acpi_subsystem_init(void) 1337 { 1338 acpi_status status; 1339 1340 if (acpi_disabled) 1341 return; 1342 1343 status = acpi_enable_subsystem(~ACPI_NO_ACPI_ENABLE); 1344 if (ACPI_FAILURE(status)) { 1345 pr_err("Unable to enable ACPI\n"); 1346 disable_acpi(); 1347 } else { 1348 /* 1349 * If the system is using ACPI then we can be reasonably 1350 * confident that any regulators are managed by the firmware 1351 * so tell the regulator core it has everything it needs to 1352 * know. 1353 */ 1354 regulator_has_full_constraints(); 1355 } 1356 } 1357 1358 static acpi_status acpi_bus_table_handler(u32 event, void *table, void *context) 1359 { 1360 if (event == ACPI_TABLE_EVENT_LOAD) 1361 acpi_scan_table_notify(); 1362 1363 return acpi_sysfs_table_handler(event, table, context); 1364 } 1365 1366 static int __init acpi_bus_init(void) 1367 { 1368 int result; 1369 acpi_status status; 1370 1371 acpi_os_initialize1(); 1372 1373 status = acpi_load_tables(); 1374 if (ACPI_FAILURE(status)) { 1375 pr_err("Unable to load the System Description Tables\n"); 1376 goto error1; 1377 } 1378 1379 /* 1380 * ACPI 2.0 requires the EC driver to be loaded and work before the EC 1381 * device is found in the namespace. 1382 * 1383 * This is accomplished by looking for the ECDT table and getting the EC 1384 * parameters out of that. 1385 * 1386 * Do that before calling acpi_initialize_objects() which may trigger EC 1387 * address space accesses. 1388 */ 1389 acpi_ec_ecdt_probe(); 1390 1391 status = acpi_enable_subsystem(ACPI_NO_ACPI_ENABLE); 1392 if (ACPI_FAILURE(status)) { 1393 pr_err("Unable to start the ACPI Interpreter\n"); 1394 goto error1; 1395 } 1396 1397 status = acpi_initialize_objects(ACPI_FULL_INITIALIZATION); 1398 if (ACPI_FAILURE(status)) { 1399 pr_err("Unable to initialize ACPI objects\n"); 1400 goto error1; 1401 } 1402 1403 /* 1404 * _OSC method may exist in module level code, 1405 * so it must be run after ACPI_FULL_INITIALIZATION 1406 */ 1407 acpi_bus_osc_negotiate_platform_control(); 1408 acpi_bus_osc_negotiate_usb_control(); 1409 1410 /* 1411 * _PDC control method may load dynamic SSDT tables, 1412 * and we need to install the table handler before that. 1413 */ 1414 status = acpi_install_table_handler(acpi_bus_table_handler, NULL); 1415 1416 acpi_sysfs_init(); 1417 1418 acpi_early_processor_control_setup(); 1419 1420 /* 1421 * Maybe EC region is required at bus_scan/acpi_get_devices. So it 1422 * is necessary to enable it as early as possible. 1423 */ 1424 acpi_ec_dsdt_probe(); 1425 1426 pr_info("Interpreter enabled\n"); 1427 1428 /* Initialize sleep structures */ 1429 acpi_sleep_init(); 1430 1431 /* 1432 * Get the system interrupt model and evaluate \_PIC. 1433 */ 1434 result = acpi_bus_init_irq(); 1435 if (result) 1436 goto error1; 1437 1438 /* 1439 * Register for all standard device notifications. 1440 */ 1441 status = 1442 acpi_install_notify_handler(ACPI_ROOT_OBJECT, ACPI_SYSTEM_NOTIFY, 1443 &acpi_bus_notify, NULL); 1444 if (ACPI_FAILURE(status)) { 1445 pr_err("Unable to register for system notifications\n"); 1446 goto error1; 1447 } 1448 1449 /* 1450 * Create the top ACPI proc directory 1451 */ 1452 acpi_root_dir = proc_mkdir(ACPI_BUS_FILE_ROOT, NULL); 1453 1454 result = bus_register(&acpi_bus_type); 1455 if (!result) 1456 return 0; 1457 1458 /* Mimic structured exception handling */ 1459 error1: 1460 acpi_terminate(); 1461 return -ENODEV; 1462 } 1463 1464 struct kobject *acpi_kobj; 1465 EXPORT_SYMBOL_GPL(acpi_kobj); 1466 1467 void __weak __init acpi_arch_init(void) { } 1468 1469 static int __init acpi_init(void) 1470 { 1471 int result; 1472 1473 if (acpi_disabled) { 1474 pr_info("Interpreter disabled.\n"); 1475 return -ENODEV; 1476 } 1477 1478 acpi_kobj = kobject_create_and_add("acpi", firmware_kobj); 1479 if (!acpi_kobj) { 1480 pr_err("Failed to register kobject\n"); 1481 return -ENOMEM; 1482 } 1483 1484 init_prmt(); 1485 acpi_init_pcc(); 1486 result = acpi_bus_init(); 1487 if (result) { 1488 kobject_put(acpi_kobj); 1489 disable_acpi(); 1490 return result; 1491 } 1492 acpi_init_ffh(); 1493 1494 pci_mmcfg_late_init(); 1495 acpi_viot_early_init(); 1496 acpi_hest_init(); 1497 acpi_ghes_init(); 1498 acpi_arch_init(); 1499 acpi_scan_init(); 1500 acpi_ec_init(); 1501 acpi_debugfs_init(); 1502 acpi_sleep_proc_init(); 1503 acpi_wakeup_device_init(); 1504 acpi_debugger_init(); 1505 acpi_setup_sb_notify_handler(); 1506 acpi_viot_init(); 1507 return 0; 1508 } 1509 1510 subsys_initcall(acpi_init); 1511