1 /* 2 * EFI application boot time services 3 * 4 * Copyright (c) 2016 Alexander Graf 5 * 6 * SPDX-License-Identifier: GPL-2.0+ 7 */ 8 9 #include <common.h> 10 #include <efi_loader.h> 11 #include <malloc.h> 12 #include <asm/global_data.h> 13 #include <linux/libfdt_env.h> 14 #include <u-boot/crc.h> 15 #include <bootm.h> 16 #include <inttypes.h> 17 #include <watchdog.h> 18 19 DECLARE_GLOBAL_DATA_PTR; 20 21 /* This list contains all the EFI objects our payload has access to */ 22 LIST_HEAD(efi_obj_list); 23 24 /* 25 * If we're running on nasty systems (32bit ARM booting into non-EFI Linux) 26 * we need to do trickery with caches. Since we don't want to break the EFI 27 * aware boot path, only apply hacks when loading exiting directly (breaking 28 * direct Linux EFI booting along the way - oh well). 29 */ 30 static bool efi_is_direct_boot = true; 31 32 /* 33 * EFI can pass arbitrary additional "tables" containing vendor specific 34 * information to the payload. One such table is the FDT table which contains 35 * a pointer to a flattened device tree blob. 36 * 37 * In most cases we want to pass an FDT to the payload, so reserve one slot of 38 * config table space for it. The pointer gets populated by do_bootefi_exec(). 39 */ 40 static struct efi_configuration_table __efi_runtime_data efi_conf_table[2]; 41 42 #ifdef CONFIG_ARM 43 /* 44 * The "gd" pointer lives in a register on ARM and AArch64 that we declare 45 * fixed when compiling U-Boot. However, the payload does not know about that 46 * restriction so we need to manually swap its and our view of that register on 47 * EFI callback entry/exit. 48 */ 49 static volatile void *efi_gd, *app_gd; 50 #endif 51 52 static int entry_count; 53 static int nesting_level; 54 55 /* Called on every callback entry */ 56 int __efi_entry_check(void) 57 { 58 int ret = entry_count++ == 0; 59 #ifdef CONFIG_ARM 60 assert(efi_gd); 61 app_gd = gd; 62 gd = efi_gd; 63 #endif 64 return ret; 65 } 66 67 /* Called on every callback exit */ 68 int __efi_exit_check(void) 69 { 70 int ret = --entry_count == 0; 71 #ifdef CONFIG_ARM 72 gd = app_gd; 73 #endif 74 return ret; 75 } 76 77 /* Called from do_bootefi_exec() */ 78 void efi_save_gd(void) 79 { 80 #ifdef CONFIG_ARM 81 efi_gd = gd; 82 #endif 83 } 84 85 /* 86 * Special case handler for error/abort that just forces things back 87 * to u-boot world so we can dump out an abort msg, without any care 88 * about returning back to UEFI world. 89 */ 90 void efi_restore_gd(void) 91 { 92 #ifdef CONFIG_ARM 93 /* Only restore if we're already in EFI context */ 94 if (!efi_gd) 95 return; 96 gd = efi_gd; 97 #endif 98 } 99 100 /* 101 * Two spaces per indent level, maxing out at 10.. which ought to be 102 * enough for anyone ;-) 103 */ 104 static const char *indent_string(int level) 105 { 106 const char *indent = " "; 107 const int max = strlen(indent); 108 level = min(max, level * 2); 109 return &indent[max - level]; 110 } 111 112 const char *__efi_nesting_inc(void) 113 { 114 return indent_string(nesting_level++); 115 } 116 117 const char *__efi_nesting_dec(void) 118 { 119 return indent_string(--nesting_level); 120 } 121 122 /* Low 32 bit */ 123 #define EFI_LOW32(a) (a & 0xFFFFFFFFULL) 124 /* High 32 bit */ 125 #define EFI_HIGH32(a) (a >> 32) 126 127 /* 128 * 64bit division by 10 implemented as multiplication by 1 / 10 129 * 130 * Decimals of one tenth: 0x1 / 0xA = 0x0.19999... 131 */ 132 #define EFI_TENTH 0x199999999999999A 133 static u64 efi_div10(u64 a) 134 { 135 u64 prod; 136 u64 rem; 137 u64 ret; 138 139 ret = EFI_HIGH32(a) * EFI_HIGH32(EFI_TENTH); 140 prod = EFI_HIGH32(a) * EFI_LOW32(EFI_TENTH); 141 rem = EFI_LOW32(prod); 142 ret += EFI_HIGH32(prod); 143 prod = EFI_LOW32(a) * EFI_HIGH32(EFI_TENTH); 144 rem += EFI_LOW32(prod); 145 ret += EFI_HIGH32(prod); 146 prod = EFI_LOW32(a) * EFI_LOW32(EFI_TENTH); 147 rem += EFI_HIGH32(prod); 148 ret += EFI_HIGH32(rem); 149 /* Round to nearest integer */ 150 if (rem >= (1 << 31)) 151 ++ret; 152 return ret; 153 } 154 155 void efi_signal_event(struct efi_event *event) 156 { 157 if (event->signaled) 158 return; 159 event->signaled = 1; 160 if (event->type & EVT_NOTIFY_SIGNAL) { 161 EFI_CALL(event->notify_function(event, event->notify_context)); 162 } 163 } 164 165 static efi_status_t efi_unsupported(const char *funcname) 166 { 167 debug("EFI: App called into unimplemented function %s\n", funcname); 168 return EFI_EXIT(EFI_UNSUPPORTED); 169 } 170 171 static unsigned long EFIAPI efi_raise_tpl(UINTN new_tpl) 172 { 173 EFI_ENTRY("0x%zx", new_tpl); 174 return EFI_EXIT(0); 175 } 176 177 static void EFIAPI efi_restore_tpl(UINTN old_tpl) 178 { 179 EFI_ENTRY("0x%zx", old_tpl); 180 efi_unsupported(__func__); 181 } 182 183 static efi_status_t EFIAPI efi_allocate_pages_ext(int type, int memory_type, 184 unsigned long pages, 185 uint64_t *memory) 186 { 187 efi_status_t r; 188 189 EFI_ENTRY("%d, %d, 0x%lx, %p", type, memory_type, pages, memory); 190 r = efi_allocate_pages(type, memory_type, pages, memory); 191 return EFI_EXIT(r); 192 } 193 194 static efi_status_t EFIAPI efi_free_pages_ext(uint64_t memory, 195 unsigned long pages) 196 { 197 efi_status_t r; 198 199 EFI_ENTRY("%"PRIx64", 0x%lx", memory, pages); 200 r = efi_free_pages(memory, pages); 201 return EFI_EXIT(r); 202 } 203 204 static efi_status_t EFIAPI efi_get_memory_map_ext( 205 unsigned long *memory_map_size, 206 struct efi_mem_desc *memory_map, 207 unsigned long *map_key, 208 unsigned long *descriptor_size, 209 uint32_t *descriptor_version) 210 { 211 efi_status_t r; 212 213 EFI_ENTRY("%p, %p, %p, %p, %p", memory_map_size, memory_map, 214 map_key, descriptor_size, descriptor_version); 215 r = efi_get_memory_map(memory_map_size, memory_map, map_key, 216 descriptor_size, descriptor_version); 217 return EFI_EXIT(r); 218 } 219 220 static efi_status_t EFIAPI efi_allocate_pool_ext(int pool_type, 221 unsigned long size, 222 void **buffer) 223 { 224 efi_status_t r; 225 226 EFI_ENTRY("%d, %ld, %p", pool_type, size, buffer); 227 r = efi_allocate_pool(pool_type, size, buffer); 228 return EFI_EXIT(r); 229 } 230 231 static efi_status_t EFIAPI efi_free_pool_ext(void *buffer) 232 { 233 efi_status_t r; 234 235 EFI_ENTRY("%p", buffer); 236 r = efi_free_pool(buffer); 237 return EFI_EXIT(r); 238 } 239 240 /* 241 * Our event capabilities are very limited. Only a small limited 242 * number of events is allowed to coexist. 243 */ 244 static struct efi_event efi_events[16]; 245 246 efi_status_t efi_create_event(uint32_t type, UINTN notify_tpl, 247 void (EFIAPI *notify_function) ( 248 struct efi_event *event, 249 void *context), 250 void *notify_context, struct efi_event **event) 251 { 252 int i; 253 254 if (event == NULL) 255 return EFI_INVALID_PARAMETER; 256 257 if ((type & EVT_NOTIFY_SIGNAL) && (type & EVT_NOTIFY_WAIT)) 258 return EFI_INVALID_PARAMETER; 259 260 if ((type & (EVT_NOTIFY_SIGNAL|EVT_NOTIFY_WAIT)) && 261 notify_function == NULL) 262 return EFI_INVALID_PARAMETER; 263 264 for (i = 0; i < ARRAY_SIZE(efi_events); ++i) { 265 if (efi_events[i].type) 266 continue; 267 efi_events[i].type = type; 268 efi_events[i].notify_tpl = notify_tpl; 269 efi_events[i].notify_function = notify_function; 270 efi_events[i].notify_context = notify_context; 271 /* Disable timers on bootup */ 272 efi_events[i].trigger_next = -1ULL; 273 efi_events[i].signaled = 0; 274 *event = &efi_events[i]; 275 return EFI_SUCCESS; 276 } 277 return EFI_OUT_OF_RESOURCES; 278 } 279 280 static efi_status_t EFIAPI efi_create_event_ext( 281 uint32_t type, UINTN notify_tpl, 282 void (EFIAPI *notify_function) ( 283 struct efi_event *event, 284 void *context), 285 void *notify_context, struct efi_event **event) 286 { 287 EFI_ENTRY("%d, 0x%zx, %p, %p", type, notify_tpl, notify_function, 288 notify_context); 289 return EFI_EXIT(efi_create_event(type, notify_tpl, notify_function, 290 notify_context, event)); 291 } 292 293 294 /* 295 * Our timers have to work without interrupts, so we check whenever keyboard 296 * input or disk accesses happen if enough time elapsed for it to fire. 297 */ 298 void efi_timer_check(void) 299 { 300 int i; 301 u64 now = timer_get_us(); 302 303 for (i = 0; i < ARRAY_SIZE(efi_events); ++i) { 304 if (!efi_events[i].type || 305 !(efi_events[i].type & EVT_TIMER) || 306 efi_events[i].trigger_type == EFI_TIMER_STOP || 307 now < efi_events[i].trigger_next) 308 continue; 309 if (efi_events[i].trigger_type == EFI_TIMER_PERIODIC) { 310 efi_events[i].trigger_next += 311 efi_events[i].trigger_time; 312 efi_events[i].signaled = 0; 313 } 314 efi_signal_event(&efi_events[i]); 315 } 316 WATCHDOG_RESET(); 317 } 318 319 efi_status_t efi_set_timer(struct efi_event *event, enum efi_timer_delay type, 320 uint64_t trigger_time) 321 { 322 int i; 323 324 /* 325 * The parameter defines a multiple of 100ns. 326 * We use multiples of 1000ns. So divide by 10. 327 */ 328 trigger_time = efi_div10(trigger_time); 329 330 for (i = 0; i < ARRAY_SIZE(efi_events); ++i) { 331 if (event != &efi_events[i]) 332 continue; 333 334 if (!(event->type & EVT_TIMER)) 335 break; 336 switch (type) { 337 case EFI_TIMER_STOP: 338 event->trigger_next = -1ULL; 339 break; 340 case EFI_TIMER_PERIODIC: 341 case EFI_TIMER_RELATIVE: 342 event->trigger_next = 343 timer_get_us() + trigger_time; 344 break; 345 default: 346 return EFI_INVALID_PARAMETER; 347 } 348 event->trigger_type = type; 349 event->trigger_time = trigger_time; 350 return EFI_SUCCESS; 351 } 352 return EFI_INVALID_PARAMETER; 353 } 354 355 static efi_status_t EFIAPI efi_set_timer_ext(struct efi_event *event, 356 enum efi_timer_delay type, 357 uint64_t trigger_time) 358 { 359 EFI_ENTRY("%p, %d, %"PRIx64, event, type, trigger_time); 360 return EFI_EXIT(efi_set_timer(event, type, trigger_time)); 361 } 362 363 static efi_status_t EFIAPI efi_wait_for_event(unsigned long num_events, 364 struct efi_event **event, 365 unsigned long *index) 366 { 367 int i, j; 368 369 EFI_ENTRY("%ld, %p, %p", num_events, event, index); 370 371 /* Check parameters */ 372 if (!num_events || !event) 373 return EFI_EXIT(EFI_INVALID_PARAMETER); 374 for (i = 0; i < num_events; ++i) { 375 for (j = 0; j < ARRAY_SIZE(efi_events); ++j) { 376 if (event[i] == &efi_events[j]) 377 goto known_event; 378 } 379 return EFI_EXIT(EFI_INVALID_PARAMETER); 380 known_event: 381 if (!event[i]->type || event[i]->type & EVT_NOTIFY_SIGNAL) 382 return EFI_EXIT(EFI_INVALID_PARAMETER); 383 } 384 385 /* Wait for signal */ 386 for (;;) { 387 for (i = 0; i < num_events; ++i) { 388 if (event[i]->signaled) 389 goto out; 390 } 391 /* Allow events to occur. */ 392 efi_timer_check(); 393 } 394 395 out: 396 /* 397 * Reset the signal which is passed to the caller to allow periodic 398 * events to occur. 399 */ 400 event[i]->signaled = 0; 401 if (index) 402 *index = i; 403 404 return EFI_EXIT(EFI_SUCCESS); 405 } 406 407 static efi_status_t EFIAPI efi_signal_event_ext(struct efi_event *event) 408 { 409 int i; 410 411 EFI_ENTRY("%p", event); 412 for (i = 0; i < ARRAY_SIZE(efi_events); ++i) { 413 if (event != &efi_events[i]) 414 continue; 415 efi_signal_event(event); 416 break; 417 } 418 return EFI_EXIT(EFI_SUCCESS); 419 } 420 421 static efi_status_t EFIAPI efi_close_event(struct efi_event *event) 422 { 423 int i; 424 425 EFI_ENTRY("%p", event); 426 for (i = 0; i < ARRAY_SIZE(efi_events); ++i) { 427 if (event == &efi_events[i]) { 428 event->type = 0; 429 event->trigger_next = -1ULL; 430 event->signaled = 0; 431 return EFI_EXIT(EFI_SUCCESS); 432 } 433 } 434 return EFI_EXIT(EFI_INVALID_PARAMETER); 435 } 436 437 static efi_status_t EFIAPI efi_check_event(struct efi_event *event) 438 { 439 int i; 440 441 EFI_ENTRY("%p", event); 442 efi_timer_check(); 443 for (i = 0; i < ARRAY_SIZE(efi_events); ++i) { 444 if (event != &efi_events[i]) 445 continue; 446 if (!event->type || event->type & EVT_NOTIFY_SIGNAL) 447 break; 448 if (event->signaled) 449 return EFI_EXIT(EFI_SUCCESS); 450 return EFI_EXIT(EFI_NOT_READY); 451 } 452 return EFI_EXIT(EFI_INVALID_PARAMETER); 453 } 454 455 static efi_status_t EFIAPI efi_install_protocol_interface(void **handle, 456 efi_guid_t *protocol, int protocol_interface_type, 457 void *protocol_interface) 458 { 459 struct list_head *lhandle; 460 int i; 461 efi_status_t r; 462 463 if (!handle || !protocol || 464 protocol_interface_type != EFI_NATIVE_INTERFACE) { 465 r = EFI_INVALID_PARAMETER; 466 goto out; 467 } 468 469 /* Create new handle if requested. */ 470 if (!*handle) { 471 r = EFI_OUT_OF_RESOURCES; 472 goto out; 473 } 474 /* Find object. */ 475 list_for_each(lhandle, &efi_obj_list) { 476 struct efi_object *efiobj; 477 efiobj = list_entry(lhandle, struct efi_object, link); 478 479 if (efiobj->handle != *handle) 480 continue; 481 /* Check if protocol is already installed on the handle. */ 482 for (i = 0; i < ARRAY_SIZE(efiobj->protocols); i++) { 483 struct efi_handler *handler = &efiobj->protocols[i]; 484 485 if (!handler->guid) 486 continue; 487 if (!guidcmp(handler->guid, protocol)) { 488 r = EFI_INVALID_PARAMETER; 489 goto out; 490 } 491 } 492 /* Install protocol in first empty slot. */ 493 for (i = 0; i < ARRAY_SIZE(efiobj->protocols); i++) { 494 struct efi_handler *handler = &efiobj->protocols[i]; 495 496 if (handler->guid) 497 continue; 498 499 handler->guid = protocol; 500 handler->protocol_interface = protocol_interface; 501 r = EFI_SUCCESS; 502 goto out; 503 } 504 r = EFI_OUT_OF_RESOURCES; 505 goto out; 506 } 507 r = EFI_INVALID_PARAMETER; 508 out: 509 return r; 510 } 511 512 static efi_status_t EFIAPI efi_install_protocol_interface_ext(void **handle, 513 efi_guid_t *protocol, int protocol_interface_type, 514 void *protocol_interface) 515 { 516 EFI_ENTRY("%p, %p, %d, %p", handle, protocol, protocol_interface_type, 517 protocol_interface); 518 519 return EFI_EXIT(efi_install_protocol_interface(handle, protocol, 520 protocol_interface_type, 521 protocol_interface)); 522 } 523 524 static efi_status_t EFIAPI efi_reinstall_protocol_interface(void *handle, 525 efi_guid_t *protocol, void *old_interface, 526 void *new_interface) 527 { 528 EFI_ENTRY("%p, %p, %p, %p", handle, protocol, old_interface, 529 new_interface); 530 return EFI_EXIT(EFI_ACCESS_DENIED); 531 } 532 533 static efi_status_t EFIAPI efi_uninstall_protocol_interface(void *handle, 534 efi_guid_t *protocol, void *protocol_interface) 535 { 536 struct list_head *lhandle; 537 int i; 538 efi_status_t r = EFI_NOT_FOUND; 539 540 if (!handle || !protocol) { 541 r = EFI_INVALID_PARAMETER; 542 goto out; 543 } 544 545 list_for_each(lhandle, &efi_obj_list) { 546 struct efi_object *efiobj; 547 efiobj = list_entry(lhandle, struct efi_object, link); 548 549 if (efiobj->handle != handle) 550 continue; 551 552 for (i = 0; i < ARRAY_SIZE(efiobj->protocols); i++) { 553 struct efi_handler *handler = &efiobj->protocols[i]; 554 const efi_guid_t *hprotocol = handler->guid; 555 556 if (!hprotocol) 557 continue; 558 if (!guidcmp(hprotocol, protocol)) { 559 if (handler->protocol_interface) { 560 r = EFI_ACCESS_DENIED; 561 } else { 562 handler->guid = 0; 563 r = EFI_SUCCESS; 564 } 565 goto out; 566 } 567 } 568 } 569 570 out: 571 return r; 572 } 573 574 static efi_status_t EFIAPI efi_uninstall_protocol_interface_ext(void *handle, 575 efi_guid_t *protocol, void *protocol_interface) 576 { 577 EFI_ENTRY("%p, %p, %p", handle, protocol, protocol_interface); 578 579 return EFI_EXIT(efi_uninstall_protocol_interface(handle, protocol, 580 protocol_interface)); 581 } 582 583 static efi_status_t EFIAPI efi_register_protocol_notify(efi_guid_t *protocol, 584 struct efi_event *event, 585 void **registration) 586 { 587 EFI_ENTRY("%p, %p, %p", protocol, event, registration); 588 return EFI_EXIT(EFI_OUT_OF_RESOURCES); 589 } 590 591 static int efi_search(enum efi_locate_search_type search_type, 592 efi_guid_t *protocol, void *search_key, 593 struct efi_object *efiobj) 594 { 595 int i; 596 597 switch (search_type) { 598 case all_handles: 599 return 0; 600 case by_register_notify: 601 return -1; 602 case by_protocol: 603 for (i = 0; i < ARRAY_SIZE(efiobj->protocols); i++) { 604 const efi_guid_t *guid = efiobj->protocols[i].guid; 605 if (guid && !guidcmp(guid, protocol)) 606 return 0; 607 } 608 return -1; 609 } 610 611 return -1; 612 } 613 614 static efi_status_t efi_locate_handle( 615 enum efi_locate_search_type search_type, 616 efi_guid_t *protocol, void *search_key, 617 unsigned long *buffer_size, efi_handle_t *buffer) 618 { 619 struct list_head *lhandle; 620 unsigned long size = 0; 621 622 /* Count how much space we need */ 623 list_for_each(lhandle, &efi_obj_list) { 624 struct efi_object *efiobj; 625 efiobj = list_entry(lhandle, struct efi_object, link); 626 if (!efi_search(search_type, protocol, search_key, efiobj)) { 627 size += sizeof(void*); 628 } 629 } 630 631 if (*buffer_size < size) { 632 *buffer_size = size; 633 return EFI_BUFFER_TOO_SMALL; 634 } 635 636 *buffer_size = size; 637 if (size == 0) 638 return EFI_NOT_FOUND; 639 640 /* Then fill the array */ 641 list_for_each(lhandle, &efi_obj_list) { 642 struct efi_object *efiobj; 643 efiobj = list_entry(lhandle, struct efi_object, link); 644 if (!efi_search(search_type, protocol, search_key, efiobj)) { 645 *(buffer++) = efiobj->handle; 646 } 647 } 648 649 return EFI_SUCCESS; 650 } 651 652 static efi_status_t EFIAPI efi_locate_handle_ext( 653 enum efi_locate_search_type search_type, 654 efi_guid_t *protocol, void *search_key, 655 unsigned long *buffer_size, efi_handle_t *buffer) 656 { 657 EFI_ENTRY("%d, %p, %p, %p, %p", search_type, protocol, search_key, 658 buffer_size, buffer); 659 660 return EFI_EXIT(efi_locate_handle(search_type, protocol, search_key, 661 buffer_size, buffer)); 662 } 663 664 static efi_status_t EFIAPI efi_locate_device_path(efi_guid_t *protocol, 665 struct efi_device_path **device_path, 666 efi_handle_t *device) 667 { 668 struct efi_object *efiobj; 669 670 EFI_ENTRY("%pUl, %p, %p", protocol, device_path, device); 671 672 efiobj = efi_dp_find_obj(*device_path, device_path); 673 if (!efiobj) 674 return EFI_EXIT(EFI_NOT_FOUND); 675 676 *device = efiobj->handle; 677 678 return EFI_EXIT(EFI_SUCCESS); 679 } 680 681 /* Collapses configuration table entries, removing index i */ 682 static void efi_remove_configuration_table(int i) 683 { 684 struct efi_configuration_table *this = &efi_conf_table[i]; 685 struct efi_configuration_table *next = &efi_conf_table[i+1]; 686 struct efi_configuration_table *end = &efi_conf_table[systab.nr_tables]; 687 688 memmove(this, next, (ulong)end - (ulong)next); 689 systab.nr_tables--; 690 } 691 692 efi_status_t efi_install_configuration_table(const efi_guid_t *guid, void *table) 693 { 694 int i; 695 696 /* Check for guid override */ 697 for (i = 0; i < systab.nr_tables; i++) { 698 if (!guidcmp(guid, &efi_conf_table[i].guid)) { 699 if (table) 700 efi_conf_table[i].table = table; 701 else 702 efi_remove_configuration_table(i); 703 return EFI_SUCCESS; 704 } 705 } 706 707 if (!table) 708 return EFI_NOT_FOUND; 709 710 /* No override, check for overflow */ 711 if (i >= ARRAY_SIZE(efi_conf_table)) 712 return EFI_OUT_OF_RESOURCES; 713 714 /* Add a new entry */ 715 memcpy(&efi_conf_table[i].guid, guid, sizeof(*guid)); 716 efi_conf_table[i].table = table; 717 systab.nr_tables = i + 1; 718 719 return EFI_SUCCESS; 720 } 721 722 static efi_status_t EFIAPI efi_install_configuration_table_ext(efi_guid_t *guid, 723 void *table) 724 { 725 EFI_ENTRY("%p, %p", guid, table); 726 return EFI_EXIT(efi_install_configuration_table(guid, table)); 727 } 728 729 static efi_status_t EFIAPI efi_load_image(bool boot_policy, 730 efi_handle_t parent_image, 731 struct efi_device_path *file_path, 732 void *source_buffer, 733 unsigned long source_size, 734 efi_handle_t *image_handle) 735 { 736 static struct efi_object loaded_image_info_obj = { 737 .protocols = { 738 { 739 .guid = &efi_guid_loaded_image, 740 }, 741 }, 742 }; 743 struct efi_loaded_image *info; 744 struct efi_object *obj; 745 746 EFI_ENTRY("%d, %p, %p, %p, %ld, %p", boot_policy, parent_image, 747 file_path, source_buffer, source_size, image_handle); 748 info = malloc(sizeof(*info)); 749 loaded_image_info_obj.protocols[0].protocol_interface = info; 750 obj = malloc(sizeof(loaded_image_info_obj)); 751 memset(info, 0, sizeof(*info)); 752 memcpy(obj, &loaded_image_info_obj, sizeof(loaded_image_info_obj)); 753 obj->handle = info; 754 info->file_path = file_path; 755 info->reserved = efi_load_pe(source_buffer, info); 756 if (!info->reserved) { 757 free(info); 758 free(obj); 759 return EFI_EXIT(EFI_UNSUPPORTED); 760 } 761 762 *image_handle = info; 763 list_add_tail(&obj->link, &efi_obj_list); 764 765 return EFI_EXIT(EFI_SUCCESS); 766 } 767 768 static efi_status_t EFIAPI efi_start_image(efi_handle_t image_handle, 769 unsigned long *exit_data_size, 770 s16 **exit_data) 771 { 772 ulong (*entry)(void *image_handle, struct efi_system_table *st); 773 struct efi_loaded_image *info = image_handle; 774 775 EFI_ENTRY("%p, %p, %p", image_handle, exit_data_size, exit_data); 776 entry = info->reserved; 777 778 efi_is_direct_boot = false; 779 780 /* call the image! */ 781 if (setjmp(&info->exit_jmp)) { 782 /* We returned from the child image */ 783 return EFI_EXIT(info->exit_status); 784 } 785 786 __efi_nesting_dec(); 787 __efi_exit_check(); 788 entry(image_handle, &systab); 789 __efi_entry_check(); 790 __efi_nesting_inc(); 791 792 /* Should usually never get here */ 793 return EFI_EXIT(EFI_SUCCESS); 794 } 795 796 static efi_status_t EFIAPI efi_exit(efi_handle_t image_handle, 797 efi_status_t exit_status, unsigned long exit_data_size, 798 int16_t *exit_data) 799 { 800 struct efi_loaded_image *loaded_image_info = (void*)image_handle; 801 802 EFI_ENTRY("%p, %ld, %ld, %p", image_handle, exit_status, 803 exit_data_size, exit_data); 804 805 loaded_image_info->exit_status = exit_status; 806 longjmp(&loaded_image_info->exit_jmp, 1); 807 808 panic("EFI application exited"); 809 } 810 811 static struct efi_object *efi_search_obj(void *handle) 812 { 813 struct list_head *lhandle; 814 815 list_for_each(lhandle, &efi_obj_list) { 816 struct efi_object *efiobj; 817 efiobj = list_entry(lhandle, struct efi_object, link); 818 if (efiobj->handle == handle) 819 return efiobj; 820 } 821 822 return NULL; 823 } 824 825 static efi_status_t EFIAPI efi_unload_image(void *image_handle) 826 { 827 struct efi_object *efiobj; 828 829 EFI_ENTRY("%p", image_handle); 830 efiobj = efi_search_obj(image_handle); 831 if (efiobj) 832 list_del(&efiobj->link); 833 834 return EFI_EXIT(EFI_SUCCESS); 835 } 836 837 static void efi_exit_caches(void) 838 { 839 #if defined(CONFIG_ARM) && !defined(CONFIG_ARM64) 840 /* 841 * Grub on 32bit ARM needs to have caches disabled before jumping into 842 * a zImage, but does not know of all cache layers. Give it a hand. 843 */ 844 if (efi_is_direct_boot) 845 cleanup_before_linux(); 846 #endif 847 } 848 849 static efi_status_t EFIAPI efi_exit_boot_services(void *image_handle, 850 unsigned long map_key) 851 { 852 EFI_ENTRY("%p, %ld", image_handle, map_key); 853 854 board_quiesce_devices(); 855 856 /* Fix up caches for EFI payloads if necessary */ 857 efi_exit_caches(); 858 859 /* This stops all lingering devices */ 860 bootm_disable_interrupts(); 861 862 /* Give the payload some time to boot */ 863 WATCHDOG_RESET(); 864 865 return EFI_EXIT(EFI_SUCCESS); 866 } 867 868 static efi_status_t EFIAPI efi_get_next_monotonic_count(uint64_t *count) 869 { 870 static uint64_t mono = 0; 871 EFI_ENTRY("%p", count); 872 *count = mono++; 873 return EFI_EXIT(EFI_SUCCESS); 874 } 875 876 static efi_status_t EFIAPI efi_stall(unsigned long microseconds) 877 { 878 EFI_ENTRY("%ld", microseconds); 879 udelay(microseconds); 880 return EFI_EXIT(EFI_SUCCESS); 881 } 882 883 static efi_status_t EFIAPI efi_set_watchdog_timer(unsigned long timeout, 884 uint64_t watchdog_code, 885 unsigned long data_size, 886 uint16_t *watchdog_data) 887 { 888 EFI_ENTRY("%ld, 0x%"PRIx64", %ld, %p", timeout, watchdog_code, 889 data_size, watchdog_data); 890 return efi_unsupported(__func__); 891 } 892 893 static efi_status_t EFIAPI efi_connect_controller( 894 efi_handle_t controller_handle, 895 efi_handle_t *driver_image_handle, 896 struct efi_device_path *remain_device_path, 897 bool recursive) 898 { 899 EFI_ENTRY("%p, %p, %p, %d", controller_handle, driver_image_handle, 900 remain_device_path, recursive); 901 return EFI_EXIT(EFI_NOT_FOUND); 902 } 903 904 static efi_status_t EFIAPI efi_disconnect_controller(void *controller_handle, 905 void *driver_image_handle, 906 void *child_handle) 907 { 908 EFI_ENTRY("%p, %p, %p", controller_handle, driver_image_handle, 909 child_handle); 910 return EFI_EXIT(EFI_INVALID_PARAMETER); 911 } 912 913 static efi_status_t EFIAPI efi_close_protocol(void *handle, 914 efi_guid_t *protocol, 915 void *agent_handle, 916 void *controller_handle) 917 { 918 EFI_ENTRY("%p, %p, %p, %p", handle, protocol, agent_handle, 919 controller_handle); 920 return EFI_EXIT(EFI_NOT_FOUND); 921 } 922 923 static efi_status_t EFIAPI efi_open_protocol_information(efi_handle_t handle, 924 efi_guid_t *protocol, 925 struct efi_open_protocol_info_entry **entry_buffer, 926 unsigned long *entry_count) 927 { 928 EFI_ENTRY("%p, %p, %p, %p", handle, protocol, entry_buffer, 929 entry_count); 930 return EFI_EXIT(EFI_NOT_FOUND); 931 } 932 933 static efi_status_t EFIAPI efi_protocols_per_handle(void *handle, 934 efi_guid_t ***protocol_buffer, 935 unsigned long *protocol_buffer_count) 936 { 937 unsigned long buffer_size; 938 struct efi_object *efiobj; 939 unsigned long i, j; 940 struct list_head *lhandle; 941 efi_status_t r; 942 943 EFI_ENTRY("%p, %p, %p", handle, protocol_buffer, 944 protocol_buffer_count); 945 946 if (!handle || !protocol_buffer || !protocol_buffer_count) 947 return EFI_EXIT(EFI_INVALID_PARAMETER); 948 949 *protocol_buffer = NULL; 950 *protocol_buffer_count = 0; 951 list_for_each(lhandle, &efi_obj_list) { 952 efiobj = list_entry(lhandle, struct efi_object, link); 953 954 if (efiobj->handle != handle) 955 continue; 956 957 /* Count protocols */ 958 for (i = 0; i < ARRAY_SIZE(efiobj->protocols); i++) { 959 if (efiobj->protocols[i].guid) 960 ++*protocol_buffer_count; 961 } 962 /* Copy guids */ 963 if (*protocol_buffer_count) { 964 buffer_size = sizeof(efi_guid_t *) * 965 *protocol_buffer_count; 966 r = efi_allocate_pool(EFI_ALLOCATE_ANY_PAGES, 967 buffer_size, 968 (void **)protocol_buffer); 969 if (r != EFI_SUCCESS) 970 return EFI_EXIT(r); 971 j = 0; 972 for (i = 0; i < ARRAY_SIZE(efiobj->protocols); ++i) { 973 if (efiobj->protocols[i].guid) { 974 (*protocol_buffer)[j] = (void *) 975 efiobj->protocols[i].guid; 976 ++j; 977 } 978 } 979 } 980 break; 981 } 982 983 return EFI_EXIT(EFI_SUCCESS); 984 } 985 986 static efi_status_t EFIAPI efi_locate_handle_buffer( 987 enum efi_locate_search_type search_type, 988 efi_guid_t *protocol, void *search_key, 989 unsigned long *no_handles, efi_handle_t **buffer) 990 { 991 efi_status_t r; 992 unsigned long buffer_size = 0; 993 994 EFI_ENTRY("%d, %p, %p, %p, %p", search_type, protocol, search_key, 995 no_handles, buffer); 996 997 if (!no_handles || !buffer) { 998 r = EFI_INVALID_PARAMETER; 999 goto out; 1000 } 1001 *no_handles = 0; 1002 *buffer = NULL; 1003 r = efi_locate_handle(search_type, protocol, search_key, &buffer_size, 1004 *buffer); 1005 if (r != EFI_BUFFER_TOO_SMALL) 1006 goto out; 1007 r = efi_allocate_pool(EFI_ALLOCATE_ANY_PAGES, buffer_size, 1008 (void **)buffer); 1009 if (r != EFI_SUCCESS) 1010 goto out; 1011 r = efi_locate_handle(search_type, protocol, search_key, &buffer_size, 1012 *buffer); 1013 if (r == EFI_SUCCESS) 1014 *no_handles = buffer_size / sizeof(void *); 1015 out: 1016 return EFI_EXIT(r); 1017 } 1018 1019 static efi_status_t EFIAPI efi_locate_protocol(efi_guid_t *protocol, 1020 void *registration, 1021 void **protocol_interface) 1022 { 1023 struct list_head *lhandle; 1024 int i; 1025 1026 EFI_ENTRY("%p, %p, %p", protocol, registration, protocol_interface); 1027 1028 if (!protocol || !protocol_interface) 1029 return EFI_EXIT(EFI_INVALID_PARAMETER); 1030 1031 list_for_each(lhandle, &efi_obj_list) { 1032 struct efi_object *efiobj; 1033 1034 efiobj = list_entry(lhandle, struct efi_object, link); 1035 for (i = 0; i < ARRAY_SIZE(efiobj->protocols); i++) { 1036 struct efi_handler *handler = &efiobj->protocols[i]; 1037 1038 if (!handler->guid) 1039 continue; 1040 if (!guidcmp(handler->guid, protocol)) { 1041 *protocol_interface = 1042 handler->protocol_interface; 1043 return EFI_EXIT(EFI_SUCCESS); 1044 } 1045 } 1046 } 1047 *protocol_interface = NULL; 1048 1049 return EFI_EXIT(EFI_NOT_FOUND); 1050 } 1051 1052 static efi_status_t EFIAPI efi_install_multiple_protocol_interfaces( 1053 void **handle, ...) 1054 { 1055 EFI_ENTRY("%p", handle); 1056 1057 va_list argptr; 1058 efi_guid_t *protocol; 1059 void *protocol_interface; 1060 efi_status_t r = EFI_SUCCESS; 1061 int i = 0; 1062 1063 if (!handle) 1064 return EFI_EXIT(EFI_INVALID_PARAMETER); 1065 1066 va_start(argptr, handle); 1067 for (;;) { 1068 protocol = va_arg(argptr, efi_guid_t*); 1069 if (!protocol) 1070 break; 1071 protocol_interface = va_arg(argptr, void*); 1072 r = efi_install_protocol_interface(handle, protocol, 1073 EFI_NATIVE_INTERFACE, 1074 protocol_interface); 1075 if (r != EFI_SUCCESS) 1076 break; 1077 i++; 1078 } 1079 va_end(argptr); 1080 if (r == EFI_SUCCESS) 1081 return EFI_EXIT(r); 1082 1083 /* If an error occured undo all changes. */ 1084 va_start(argptr, handle); 1085 for (; i; --i) { 1086 protocol = va_arg(argptr, efi_guid_t*); 1087 protocol_interface = va_arg(argptr, void*); 1088 efi_uninstall_protocol_interface(handle, protocol, 1089 protocol_interface); 1090 } 1091 va_end(argptr); 1092 1093 return EFI_EXIT(r); 1094 } 1095 1096 static efi_status_t EFIAPI efi_uninstall_multiple_protocol_interfaces( 1097 void *handle, ...) 1098 { 1099 EFI_ENTRY("%p", handle); 1100 return EFI_EXIT(EFI_INVALID_PARAMETER); 1101 } 1102 1103 static efi_status_t EFIAPI efi_calculate_crc32(void *data, 1104 unsigned long data_size, 1105 uint32_t *crc32_p) 1106 { 1107 EFI_ENTRY("%p, %ld", data, data_size); 1108 *crc32_p = crc32(0, data, data_size); 1109 return EFI_EXIT(EFI_SUCCESS); 1110 } 1111 1112 static void EFIAPI efi_copy_mem(void *destination, void *source, 1113 unsigned long length) 1114 { 1115 EFI_ENTRY("%p, %p, %ld", destination, source, length); 1116 memcpy(destination, source, length); 1117 } 1118 1119 static void EFIAPI efi_set_mem(void *buffer, unsigned long size, uint8_t value) 1120 { 1121 EFI_ENTRY("%p, %ld, 0x%x", buffer, size, value); 1122 memset(buffer, value, size); 1123 } 1124 1125 static efi_status_t EFIAPI efi_open_protocol( 1126 void *handle, efi_guid_t *protocol, 1127 void **protocol_interface, void *agent_handle, 1128 void *controller_handle, uint32_t attributes) 1129 { 1130 struct list_head *lhandle; 1131 int i; 1132 efi_status_t r = EFI_INVALID_PARAMETER; 1133 1134 EFI_ENTRY("%p, %p, %p, %p, %p, 0x%x", handle, protocol, 1135 protocol_interface, agent_handle, controller_handle, 1136 attributes); 1137 1138 if (!handle || !protocol || 1139 (!protocol_interface && attributes != 1140 EFI_OPEN_PROTOCOL_TEST_PROTOCOL)) { 1141 goto out; 1142 } 1143 1144 switch (attributes) { 1145 case EFI_OPEN_PROTOCOL_BY_HANDLE_PROTOCOL: 1146 case EFI_OPEN_PROTOCOL_GET_PROTOCOL: 1147 case EFI_OPEN_PROTOCOL_TEST_PROTOCOL: 1148 break; 1149 case EFI_OPEN_PROTOCOL_BY_CHILD_CONTROLLER: 1150 if (controller_handle == handle) 1151 goto out; 1152 case EFI_OPEN_PROTOCOL_BY_DRIVER: 1153 case EFI_OPEN_PROTOCOL_BY_DRIVER | EFI_OPEN_PROTOCOL_EXCLUSIVE: 1154 if (controller_handle == NULL) 1155 goto out; 1156 case EFI_OPEN_PROTOCOL_EXCLUSIVE: 1157 if (agent_handle == NULL) 1158 goto out; 1159 break; 1160 default: 1161 goto out; 1162 } 1163 1164 list_for_each(lhandle, &efi_obj_list) { 1165 struct efi_object *efiobj; 1166 efiobj = list_entry(lhandle, struct efi_object, link); 1167 1168 if (efiobj->handle != handle) 1169 continue; 1170 1171 for (i = 0; i < ARRAY_SIZE(efiobj->protocols); i++) { 1172 struct efi_handler *handler = &efiobj->protocols[i]; 1173 const efi_guid_t *hprotocol = handler->guid; 1174 if (!hprotocol) 1175 continue; 1176 if (!guidcmp(hprotocol, protocol)) { 1177 if (attributes != 1178 EFI_OPEN_PROTOCOL_TEST_PROTOCOL) { 1179 *protocol_interface = 1180 handler->protocol_interface; 1181 } 1182 r = EFI_SUCCESS; 1183 goto out; 1184 } 1185 } 1186 goto unsupported; 1187 } 1188 1189 unsupported: 1190 r = EFI_UNSUPPORTED; 1191 out: 1192 return EFI_EXIT(r); 1193 } 1194 1195 static efi_status_t EFIAPI efi_handle_protocol(void *handle, 1196 efi_guid_t *protocol, 1197 void **protocol_interface) 1198 { 1199 return efi_open_protocol(handle, protocol, protocol_interface, NULL, 1200 NULL, EFI_OPEN_PROTOCOL_BY_HANDLE_PROTOCOL); 1201 } 1202 1203 static const struct efi_boot_services efi_boot_services = { 1204 .hdr = { 1205 .headersize = sizeof(struct efi_table_hdr), 1206 }, 1207 .raise_tpl = efi_raise_tpl, 1208 .restore_tpl = efi_restore_tpl, 1209 .allocate_pages = efi_allocate_pages_ext, 1210 .free_pages = efi_free_pages_ext, 1211 .get_memory_map = efi_get_memory_map_ext, 1212 .allocate_pool = efi_allocate_pool_ext, 1213 .free_pool = efi_free_pool_ext, 1214 .create_event = efi_create_event_ext, 1215 .set_timer = efi_set_timer_ext, 1216 .wait_for_event = efi_wait_for_event, 1217 .signal_event = efi_signal_event_ext, 1218 .close_event = efi_close_event, 1219 .check_event = efi_check_event, 1220 .install_protocol_interface = efi_install_protocol_interface_ext, 1221 .reinstall_protocol_interface = efi_reinstall_protocol_interface, 1222 .uninstall_protocol_interface = efi_uninstall_protocol_interface_ext, 1223 .handle_protocol = efi_handle_protocol, 1224 .reserved = NULL, 1225 .register_protocol_notify = efi_register_protocol_notify, 1226 .locate_handle = efi_locate_handle_ext, 1227 .locate_device_path = efi_locate_device_path, 1228 .install_configuration_table = efi_install_configuration_table_ext, 1229 .load_image = efi_load_image, 1230 .start_image = efi_start_image, 1231 .exit = efi_exit, 1232 .unload_image = efi_unload_image, 1233 .exit_boot_services = efi_exit_boot_services, 1234 .get_next_monotonic_count = efi_get_next_monotonic_count, 1235 .stall = efi_stall, 1236 .set_watchdog_timer = efi_set_watchdog_timer, 1237 .connect_controller = efi_connect_controller, 1238 .disconnect_controller = efi_disconnect_controller, 1239 .open_protocol = efi_open_protocol, 1240 .close_protocol = efi_close_protocol, 1241 .open_protocol_information = efi_open_protocol_information, 1242 .protocols_per_handle = efi_protocols_per_handle, 1243 .locate_handle_buffer = efi_locate_handle_buffer, 1244 .locate_protocol = efi_locate_protocol, 1245 .install_multiple_protocol_interfaces = efi_install_multiple_protocol_interfaces, 1246 .uninstall_multiple_protocol_interfaces = efi_uninstall_multiple_protocol_interfaces, 1247 .calculate_crc32 = efi_calculate_crc32, 1248 .copy_mem = efi_copy_mem, 1249 .set_mem = efi_set_mem, 1250 }; 1251 1252 1253 static uint16_t __efi_runtime_data firmware_vendor[] = 1254 { 'D','a','s',' ','U','-','b','o','o','t',0 }; 1255 1256 struct efi_system_table __efi_runtime_data systab = { 1257 .hdr = { 1258 .signature = EFI_SYSTEM_TABLE_SIGNATURE, 1259 .revision = 0x20005, /* 2.5 */ 1260 .headersize = sizeof(struct efi_table_hdr), 1261 }, 1262 .fw_vendor = (long)firmware_vendor, 1263 .con_in = (void*)&efi_con_in, 1264 .con_out = (void*)&efi_con_out, 1265 .std_err = (void*)&efi_con_out, 1266 .runtime = (void*)&efi_runtime_services, 1267 .boottime = (void*)&efi_boot_services, 1268 .nr_tables = 0, 1269 .tables = (void*)efi_conf_table, 1270 }; 1271