1 /*- 2 * Copyright (c) 2008-2010 Rui Paulo 3 * Copyright (c) 2006 Marcel Moolenaar 4 * All rights reserved. 5 * 6 * Redistribution and use in source and binary forms, with or without 7 * modification, are permitted provided that the following conditions 8 * are met: 9 * 10 * 1. Redistributions of source code must retain the above copyright 11 * notice, this list of conditions and the following disclaimer. 12 * 2. Redistributions in binary form must reproduce the above copyright 13 * notice, this list of conditions and the following disclaimer in the 14 * documentation and/or other materials provided with the distribution. 15 * 16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR 17 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 18 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 19 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, 20 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 21 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 22 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 23 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 24 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 25 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 26 */ 27 28 #include <sys/cdefs.h> 29 __FBSDID("$FreeBSD$"); 30 31 #include <sys/disk.h> 32 #include <sys/param.h> 33 #include <sys/reboot.h> 34 #include <sys/boot.h> 35 #include <stdint.h> 36 #include <stand.h> 37 #include <string.h> 38 #include <setjmp.h> 39 #include <disk.h> 40 41 #include <efi.h> 42 #include <efilib.h> 43 44 #include <uuid.h> 45 46 #include <bootstrap.h> 47 #include <smbios.h> 48 49 #ifdef EFI_ZFS_BOOT 50 #include <libzfs.h> 51 52 #include "efizfs.h" 53 #endif 54 55 #include "loader_efi.h" 56 57 extern char bootprog_info[]; 58 59 struct arch_switch archsw; /* MI/MD interface boundary */ 60 61 EFI_GUID acpi = ACPI_TABLE_GUID; 62 EFI_GUID acpi20 = ACPI_20_TABLE_GUID; 63 EFI_GUID devid = DEVICE_PATH_PROTOCOL; 64 EFI_GUID imgid = LOADED_IMAGE_PROTOCOL; 65 EFI_GUID mps = MPS_TABLE_GUID; 66 EFI_GUID netid = EFI_SIMPLE_NETWORK_PROTOCOL; 67 EFI_GUID smbios = SMBIOS_TABLE_GUID; 68 EFI_GUID smbios3 = SMBIOS3_TABLE_GUID; 69 EFI_GUID dxe = DXE_SERVICES_TABLE_GUID; 70 EFI_GUID hoblist = HOB_LIST_TABLE_GUID; 71 EFI_GUID lzmadecomp = LZMA_DECOMPRESSION_GUID; 72 EFI_GUID mpcore = ARM_MP_CORE_INFO_TABLE_GUID; 73 EFI_GUID esrt = ESRT_TABLE_GUID; 74 EFI_GUID memtype = MEMORY_TYPE_INFORMATION_TABLE_GUID; 75 EFI_GUID debugimg = DEBUG_IMAGE_INFO_TABLE_GUID; 76 EFI_GUID fdtdtb = FDT_TABLE_GUID; 77 EFI_GUID inputid = SIMPLE_TEXT_INPUT_PROTOCOL; 78 79 static EFI_LOADED_IMAGE *img; 80 81 /* 82 * Number of seconds to wait for a keystroke before exiting with failure 83 * in the event no currdev is found. -2 means always break, -1 means 84 * never break, 0 means poll once and then reboot, > 0 means wait for 85 * that many seconds. "fail_timeout" can be set in the environment as 86 * well. 87 */ 88 static int fail_timeout = 5; 89 90 #ifdef EFI_ZFS_BOOT 91 bool 92 efi_zfs_is_preferred(EFI_HANDLE *h) 93 { 94 return (h == img->DeviceHandle); 95 } 96 #endif 97 98 static int 99 has_keyboard(void) 100 { 101 EFI_STATUS status; 102 EFI_DEVICE_PATH *path; 103 EFI_HANDLE *hin, *hin_end, *walker; 104 UINTN sz; 105 int retval = 0; 106 107 /* 108 * Find all the handles that support the SIMPLE_TEXT_INPUT_PROTOCOL and 109 * do the typical dance to get the right sized buffer. 110 */ 111 sz = 0; 112 hin = NULL; 113 status = BS->LocateHandle(ByProtocol, &inputid, 0, &sz, 0); 114 if (status == EFI_BUFFER_TOO_SMALL) { 115 hin = (EFI_HANDLE *)malloc(sz); 116 status = BS->LocateHandle(ByProtocol, &inputid, 0, &sz, 117 hin); 118 if (EFI_ERROR(status)) 119 free(hin); 120 } 121 if (EFI_ERROR(status)) 122 return retval; 123 124 /* 125 * Look at each of the handles. If it supports the device path protocol, 126 * use it to get the device path for this handle. Then see if that 127 * device path matches either the USB device path for keyboards or the 128 * legacy device path for keyboards. 129 */ 130 hin_end = &hin[sz / sizeof(*hin)]; 131 for (walker = hin; walker < hin_end; walker++) { 132 status = BS->HandleProtocol(*walker, &devid, (VOID **)&path); 133 if (EFI_ERROR(status)) 134 continue; 135 136 while (!IsDevicePathEnd(path)) { 137 /* 138 * Check for the ACPI keyboard node. All PNP3xx nodes 139 * are keyboards of different flavors. Note: It is 140 * unclear of there's always a keyboard node when 141 * there's a keyboard controller, or if there's only one 142 * when a keyboard is detected at boot. 143 */ 144 if (DevicePathType(path) == ACPI_DEVICE_PATH && 145 (DevicePathSubType(path) == ACPI_DP || 146 DevicePathSubType(path) == ACPI_EXTENDED_DP)) { 147 ACPI_HID_DEVICE_PATH *acpi; 148 149 acpi = (ACPI_HID_DEVICE_PATH *)(void *)path; 150 if ((EISA_ID_TO_NUM(acpi->HID) & 0xff00) == 0x300 && 151 (acpi->HID & 0xffff) == PNP_EISA_ID_CONST) { 152 retval = 1; 153 goto out; 154 } 155 /* 156 * Check for USB keyboard node, if present. Unlike a 157 * PS/2 keyboard, these definitely only appear when 158 * connected to the system. 159 */ 160 } else if (DevicePathType(path) == MESSAGING_DEVICE_PATH && 161 DevicePathSubType(path) == MSG_USB_CLASS_DP) { 162 USB_CLASS_DEVICE_PATH *usb; 163 164 usb = (USB_CLASS_DEVICE_PATH *)(void *)path; 165 if (usb->DeviceClass == 3 && /* HID */ 166 usb->DeviceSubClass == 1 && /* Boot devices */ 167 usb->DeviceProtocol == 1) { /* Boot keyboards */ 168 retval = 1; 169 goto out; 170 } 171 } 172 path = NextDevicePathNode(path); 173 } 174 } 175 out: 176 free(hin); 177 return retval; 178 } 179 180 static void 181 set_currdev_devdesc(struct devdesc *currdev) 182 { 183 const char *devname; 184 185 devname = efi_fmtdev(currdev); 186 187 printf("Setting currdev to %s\n", devname); 188 189 env_setenv("currdev", EV_VOLATILE, devname, efi_setcurrdev, env_nounset); 190 env_setenv("loaddev", EV_VOLATILE, devname, env_noset, env_nounset); 191 } 192 193 static void 194 set_currdev_devsw(struct devsw *dev, int unit) 195 { 196 struct devdesc currdev; 197 198 currdev.d_dev = dev; 199 currdev.d_unit = unit; 200 201 set_currdev_devdesc(&currdev); 202 } 203 204 static void 205 set_currdev_pdinfo(pdinfo_t *dp) 206 { 207 208 /* 209 * Disks are special: they have partitions. if the parent 210 * pointer is non-null, we're a partition not a full disk 211 * and we need to adjust currdev appropriately. 212 */ 213 if (dp->pd_devsw->dv_type == DEVT_DISK) { 214 struct disk_devdesc currdev; 215 216 currdev.dd.d_dev = dp->pd_devsw; 217 if (dp->pd_parent == NULL) { 218 currdev.dd.d_unit = dp->pd_unit; 219 currdev.d_slice = -1; 220 currdev.d_partition = -1; 221 } else { 222 currdev.dd.d_unit = dp->pd_parent->pd_unit; 223 currdev.d_slice = dp->pd_unit; 224 currdev.d_partition = 255; /* Assumes GPT */ 225 } 226 set_currdev_devdesc((struct devdesc *)&currdev); 227 } else { 228 set_currdev_devsw(dp->pd_devsw, dp->pd_unit); 229 } 230 } 231 232 static bool 233 sanity_check_currdev(void) 234 { 235 struct stat st; 236 237 return (stat("/boot/defaults/loader.conf", &st) == 0); 238 } 239 240 #ifdef EFI_ZFS_BOOT 241 static bool 242 probe_zfs_currdev(uint64_t guid) 243 { 244 char *devname; 245 struct zfs_devdesc currdev; 246 247 currdev.dd.d_dev = &zfs_dev; 248 currdev.dd.d_unit = 0; 249 currdev.pool_guid = guid; 250 currdev.root_guid = 0; 251 set_currdev_devdesc((struct devdesc *)&currdev); 252 devname = efi_fmtdev(&currdev); 253 init_zfs_bootenv(devname); 254 255 return (sanity_check_currdev()); 256 } 257 #endif 258 259 static bool 260 try_as_currdev(pdinfo_t *hd, pdinfo_t *pp) 261 { 262 uint64_t guid; 263 264 #ifdef EFI_ZFS_BOOT 265 /* 266 * If there's a zpool on this device, try it as a ZFS 267 * filesystem, which has somewhat different setup than all 268 * other types of fs due to imperfect loader integration. 269 * This all stems from ZFS being both a device (zpool) and 270 * a filesystem, plus the boot env feature. 271 */ 272 if (efizfs_get_guid_by_handle(pp->pd_handle, &guid)) 273 return (probe_zfs_currdev(guid)); 274 #endif 275 /* 276 * All other filesystems just need the pdinfo 277 * initialized in the standard way. 278 */ 279 set_currdev_pdinfo(pp); 280 return (sanity_check_currdev()); 281 } 282 283 static int 284 find_currdev(EFI_LOADED_IMAGE *img) 285 { 286 pdinfo_t *dp, *pp; 287 EFI_DEVICE_PATH *devpath, *copy; 288 EFI_HANDLE h; 289 CHAR16 *text; 290 struct devsw *dev; 291 int unit; 292 uint64_t extra; 293 294 #ifdef EFI_ZFS_BOOT 295 /* 296 * Did efi_zfs_probe() detect the boot pool? If so, use the zpool 297 * it found, if it's sane. ZFS is the only thing that looks for 298 * disks and pools to boot. This may change in the future, however, 299 * if we allow specifying which pool to boot from via UEFI variables 300 * rather than the bootenv stuff that FreeBSD uses today. 301 */ 302 if (pool_guid != 0) { 303 printf("Trying ZFS pool\n"); 304 if (probe_zfs_currdev(pool_guid)) 305 return (0); 306 } 307 #endif /* EFI_ZFS_BOOT */ 308 309 /* 310 * Try to find the block device by its handle based on the 311 * image we're booting. If we can't find a sane partition, 312 * search all the other partitions of the disk. We do not 313 * search other disks because it's a violation of the UEFI 314 * boot protocol to do so. We fail and let UEFI go on to 315 * the next candidate. 316 */ 317 dp = efiblk_get_pdinfo_by_handle(img->DeviceHandle); 318 if (dp != NULL) { 319 text = efi_devpath_name(dp->pd_devpath); 320 if (text != NULL) { 321 printf("Trying ESP: %S\n", text); 322 efi_free_devpath_name(text); 323 } 324 set_currdev_pdinfo(dp); 325 if (sanity_check_currdev()) 326 return (0); 327 if (dp->pd_parent != NULL) { 328 dp = dp->pd_parent; 329 STAILQ_FOREACH(pp, &dp->pd_part, pd_link) { 330 text = efi_devpath_name(pp->pd_devpath); 331 if (text != NULL) { 332 printf("And now the part: %S\n", text); 333 efi_free_devpath_name(text); 334 } 335 /* 336 * Roll up the ZFS special case 337 * for those partitions that have 338 * zpools on them 339 */ 340 if (try_as_currdev(dp, pp)) 341 return (0); 342 } 343 } 344 } else { 345 printf("Can't find device by handle\n"); 346 } 347 348 /* 349 * Try the device handle from our loaded image first. If that 350 * fails, use the device path from the loaded image and see if 351 * any of the nodes in that path match one of the enumerated 352 * handles. Currently, this handle list is only for netboot. 353 */ 354 if (efi_handle_lookup(img->DeviceHandle, &dev, &unit, &extra) == 0) { 355 set_currdev_devsw(dev, unit); 356 if (sanity_check_currdev()) 357 return (0); 358 } 359 360 copy = NULL; 361 devpath = efi_lookup_image_devpath(IH); 362 while (devpath != NULL) { 363 h = efi_devpath_handle(devpath); 364 if (h == NULL) 365 break; 366 367 free(copy); 368 copy = NULL; 369 370 if (efi_handle_lookup(h, &dev, &unit, &extra) == 0) { 371 set_currdev_devsw(dev, unit); 372 if (sanity_check_currdev()) 373 return (0); 374 } 375 376 devpath = efi_lookup_devpath(h); 377 if (devpath != NULL) { 378 copy = efi_devpath_trim(devpath); 379 devpath = copy; 380 } 381 } 382 free(copy); 383 384 return (ENOENT); 385 } 386 387 static bool 388 interactive_interrupt(const char *msg) 389 { 390 time_t now, then, last; 391 392 last = 0; 393 now = then = getsecs(); 394 printf("%s\n", msg); 395 if (fail_timeout == -2) /* Always break to OK */ 396 return (true); 397 if (fail_timeout == -1) /* Never break to OK */ 398 return (false); 399 do { 400 if (last != now) { 401 printf("press any key to interrupt reboot in %d seconds\r", 402 fail_timeout - (int)(now - then)); 403 last = now; 404 } 405 406 /* XXX no pause or timeout wait for char */ 407 if (ischar()) 408 return (true); 409 now = getsecs(); 410 } while (now - then < fail_timeout); 411 return (false); 412 } 413 414 EFI_STATUS 415 main(int argc, CHAR16 *argv[]) 416 { 417 char var[128]; 418 EFI_GUID *guid; 419 int i, j, vargood, howto; 420 UINTN k; 421 int has_kbd; 422 char *s; 423 EFI_DEVICE_PATH *imgpath; 424 CHAR16 *text; 425 EFI_STATUS status; 426 UINT16 boot_current; 427 size_t sz; 428 UINT16 boot_order[100]; 429 #if !defined(__arm__) 430 char buf[40]; 431 #endif 432 433 archsw.arch_autoload = efi_autoload; 434 archsw.arch_getdev = efi_getdev; 435 archsw.arch_copyin = efi_copyin; 436 archsw.arch_copyout = efi_copyout; 437 archsw.arch_readin = efi_readin; 438 #ifdef EFI_ZFS_BOOT 439 /* Note this needs to be set before ZFS init. */ 440 archsw.arch_zfs_probe = efi_zfs_probe; 441 #endif 442 443 /* Get our loaded image protocol interface structure. */ 444 BS->HandleProtocol(IH, &imgid, (VOID**)&img); 445 446 /* Init the time source */ 447 efi_time_init(); 448 449 has_kbd = has_keyboard(); 450 451 /* 452 * XXX Chicken-and-egg problem; we want to have console output 453 * early, but some console attributes may depend on reading from 454 * eg. the boot device, which we can't do yet. We can use 455 * printf() etc. once this is done. 456 */ 457 cons_probe(); 458 459 /* 460 * Initialise the block cache. Set the upper limit. 461 */ 462 bcache_init(32768, 512); 463 464 /* 465 * Parse the args to set the console settings, etc 466 * boot1.efi passes these in, if it can read /boot.config or /boot/config 467 * or iPXE may be setup to pass these in. Or the optional argument in the 468 * boot environment was used to pass these arguments in (in which case 469 * neither /boot.config nor /boot/config are consulted). 470 * 471 * Loop through the args, and for each one that contains an '=' that is 472 * not the first character, add it to the environment. This allows 473 * loader and kernel env vars to be passed on the command line. Convert 474 * args from UCS-2 to ASCII (16 to 8 bit) as they are copied (though this 475 * method is flawed for non-ASCII characters). 476 */ 477 howto = 0; 478 for (i = 1; i < argc; i++) { 479 if (argv[i][0] == '-') { 480 for (j = 1; argv[i][j] != 0; j++) { 481 int ch; 482 483 ch = argv[i][j]; 484 switch (ch) { 485 case 'a': 486 howto |= RB_ASKNAME; 487 break; 488 case 'd': 489 howto |= RB_KDB; 490 break; 491 case 'D': 492 howto |= RB_MULTIPLE; 493 break; 494 case 'h': 495 howto |= RB_SERIAL; 496 break; 497 case 'm': 498 howto |= RB_MUTE; 499 break; 500 case 'p': 501 howto |= RB_PAUSE; 502 break; 503 case 'P': 504 if (!has_kbd) 505 howto |= RB_SERIAL | RB_MULTIPLE; 506 break; 507 case 'r': 508 howto |= RB_DFLTROOT; 509 break; 510 case 's': 511 howto |= RB_SINGLE; 512 break; 513 case 'S': 514 if (argv[i][j + 1] == 0) { 515 if (i + 1 == argc) { 516 setenv("comconsole_speed", "115200", 1); 517 } else { 518 cpy16to8(&argv[i + 1][0], var, 519 sizeof(var)); 520 setenv("comconsole_speed", var, 1); 521 } 522 i++; 523 break; 524 } else { 525 cpy16to8(&argv[i][j + 1], var, 526 sizeof(var)); 527 setenv("comconsole_speed", var, 1); 528 break; 529 } 530 case 'v': 531 howto |= RB_VERBOSE; 532 break; 533 } 534 } 535 } else { 536 vargood = 0; 537 for (j = 0; argv[i][j] != 0; j++) { 538 if (j == sizeof(var)) { 539 vargood = 0; 540 break; 541 } 542 if (j > 0 && argv[i][j] == '=') 543 vargood = 1; 544 var[j] = (char)argv[i][j]; 545 } 546 if (vargood) { 547 var[j] = 0; 548 putenv(var); 549 } 550 } 551 } 552 for (i = 0; howto_names[i].ev != NULL; i++) 553 if (howto & howto_names[i].mask) 554 setenv(howto_names[i].ev, "YES", 1); 555 556 /* 557 * XXX we need fallback to this stuff after looking at the ConIn, ConOut and ConErr variables 558 */ 559 if (howto & RB_MULTIPLE) { 560 if (howto & RB_SERIAL) 561 setenv("console", "comconsole efi" , 1); 562 else 563 setenv("console", "efi comconsole" , 1); 564 } else if (howto & RB_SERIAL) { 565 setenv("console", "comconsole" , 1); 566 } else 567 setenv("console", "efi", 1); 568 569 if (efi_copy_init()) { 570 printf("failed to allocate staging area\n"); 571 return (EFI_BUFFER_TOO_SMALL); 572 } 573 574 if ((s = getenv("fail_timeout")) != NULL) 575 fail_timeout = strtol(s, NULL, 10); 576 577 /* 578 * Scan the BLOCK IO MEDIA handles then 579 * march through the device switch probing for things. 580 */ 581 if ((i = efipart_inithandles()) == 0) { 582 for (i = 0; devsw[i] != NULL; i++) 583 if (devsw[i]->dv_init != NULL) 584 (devsw[i]->dv_init)(); 585 } else 586 printf("efipart_inithandles failed %d, expect failures", i); 587 588 printf("Command line arguments:"); 589 for (i = 0; i < argc; i++) 590 printf(" %S", argv[i]); 591 printf("\n"); 592 593 printf("Image base: 0x%lx\n", (u_long)img->ImageBase); 594 printf("EFI version: %d.%02d\n", ST->Hdr.Revision >> 16, 595 ST->Hdr.Revision & 0xffff); 596 printf("EFI Firmware: %S (rev %d.%02d)\n", ST->FirmwareVendor, 597 ST->FirmwareRevision >> 16, ST->FirmwareRevision & 0xffff); 598 599 printf("\n%s", bootprog_info); 600 601 /* Determine the devpath of our image so we can prefer it. */ 602 text = efi_devpath_name(img->FilePath); 603 if (text != NULL) { 604 printf(" Load Path: %S\n", text); 605 efi_setenv_freebsd_wcs("LoaderPath", text); 606 efi_free_devpath_name(text); 607 } 608 609 status = BS->HandleProtocol(img->DeviceHandle, &devid, (void **)&imgpath); 610 if (status == EFI_SUCCESS) { 611 text = efi_devpath_name(imgpath); 612 if (text != NULL) { 613 printf(" Load Device: %S\n", text); 614 efi_setenv_freebsd_wcs("LoaderDev", text); 615 efi_free_devpath_name(text); 616 } 617 } 618 619 boot_current = 0; 620 sz = sizeof(boot_current); 621 efi_global_getenv("BootCurrent", &boot_current, &sz); 622 printf(" BootCurrent: %04x\n", boot_current); 623 624 sz = sizeof(boot_order); 625 efi_global_getenv("BootOrder", &boot_order, &sz); 626 printf(" BootOrder:"); 627 for (i = 0; i < sz / sizeof(boot_order[0]); i++) 628 printf(" %04x%s", boot_order[i], 629 boot_order[i] == boot_current ? "[*]" : ""); 630 printf("\n"); 631 632 /* 633 * Disable the watchdog timer. By default the boot manager sets 634 * the timer to 5 minutes before invoking a boot option. If we 635 * want to return to the boot manager, we have to disable the 636 * watchdog timer and since we're an interactive program, we don't 637 * want to wait until the user types "quit". The timer may have 638 * fired by then. We don't care if this fails. It does not prevent 639 * normal functioning in any way... 640 */ 641 BS->SetWatchdogTimer(0, 0, 0, NULL); 642 643 /* 644 * Try and find a good currdev based on the image that was booted. 645 * It might be desirable here to have a short pause to allow falling 646 * through to the boot loader instead of returning instantly to follow 647 * the boot protocol and also allow an escape hatch for users wishing 648 * to try something different. 649 */ 650 if (find_currdev(img) != 0) 651 if (!interactive_interrupt("Failed to find bootable partition")) 652 return (EFI_NOT_FOUND); 653 654 efi_init_environment(); 655 setenv("LINES", "24", 1); /* optional */ 656 657 for (k = 0; k < ST->NumberOfTableEntries; k++) { 658 guid = &ST->ConfigurationTable[k].VendorGuid; 659 #if !defined(__arm__) 660 if (!memcmp(guid, &smbios, sizeof(EFI_GUID))) { 661 snprintf(buf, sizeof(buf), "%p", 662 ST->ConfigurationTable[k].VendorTable); 663 setenv("hint.smbios.0.mem", buf, 1); 664 smbios_detect(ST->ConfigurationTable[k].VendorTable); 665 break; 666 } 667 #endif 668 } 669 670 interact(); /* doesn't return */ 671 672 return (EFI_SUCCESS); /* keep compiler happy */ 673 } 674 675 COMMAND_SET(reboot, "reboot", "reboot the system", command_reboot); 676 677 static int 678 command_reboot(int argc, char *argv[]) 679 { 680 int i; 681 682 for (i = 0; devsw[i] != NULL; ++i) 683 if (devsw[i]->dv_cleanup != NULL) 684 (devsw[i]->dv_cleanup)(); 685 686 RS->ResetSystem(EfiResetCold, EFI_SUCCESS, 0, NULL); 687 688 /* NOTREACHED */ 689 return (CMD_ERROR); 690 } 691 692 COMMAND_SET(quit, "quit", "exit the loader", command_quit); 693 694 static int 695 command_quit(int argc, char *argv[]) 696 { 697 exit(0); 698 return (CMD_OK); 699 } 700 701 COMMAND_SET(memmap, "memmap", "print memory map", command_memmap); 702 703 static int 704 command_memmap(int argc, char *argv[]) 705 { 706 UINTN sz; 707 EFI_MEMORY_DESCRIPTOR *map, *p; 708 UINTN key, dsz; 709 UINT32 dver; 710 EFI_STATUS status; 711 int i, ndesc; 712 char line[80]; 713 static char *types[] = { 714 "Reserved", 715 "LoaderCode", 716 "LoaderData", 717 "BootServicesCode", 718 "BootServicesData", 719 "RuntimeServicesCode", 720 "RuntimeServicesData", 721 "ConventionalMemory", 722 "UnusableMemory", 723 "ACPIReclaimMemory", 724 "ACPIMemoryNVS", 725 "MemoryMappedIO", 726 "MemoryMappedIOPortSpace", 727 "PalCode" 728 }; 729 730 sz = 0; 731 status = BS->GetMemoryMap(&sz, 0, &key, &dsz, &dver); 732 if (status != EFI_BUFFER_TOO_SMALL) { 733 printf("Can't determine memory map size\n"); 734 return (CMD_ERROR); 735 } 736 map = malloc(sz); 737 status = BS->GetMemoryMap(&sz, map, &key, &dsz, &dver); 738 if (EFI_ERROR(status)) { 739 printf("Can't read memory map\n"); 740 return (CMD_ERROR); 741 } 742 743 ndesc = sz / dsz; 744 snprintf(line, sizeof(line), "%23s %12s %12s %8s %4s\n", 745 "Type", "Physical", "Virtual", "#Pages", "Attr"); 746 pager_open(); 747 if (pager_output(line)) { 748 pager_close(); 749 return (CMD_OK); 750 } 751 752 for (i = 0, p = map; i < ndesc; 753 i++, p = NextMemoryDescriptor(p, dsz)) { 754 printf("%23s %012jx %012jx %08jx ", types[p->Type], 755 (uintmax_t)p->PhysicalStart, (uintmax_t)p->VirtualStart, 756 (uintmax_t)p->NumberOfPages); 757 if (p->Attribute & EFI_MEMORY_UC) 758 printf("UC "); 759 if (p->Attribute & EFI_MEMORY_WC) 760 printf("WC "); 761 if (p->Attribute & EFI_MEMORY_WT) 762 printf("WT "); 763 if (p->Attribute & EFI_MEMORY_WB) 764 printf("WB "); 765 if (p->Attribute & EFI_MEMORY_UCE) 766 printf("UCE "); 767 if (p->Attribute & EFI_MEMORY_WP) 768 printf("WP "); 769 if (p->Attribute & EFI_MEMORY_RP) 770 printf("RP "); 771 if (p->Attribute & EFI_MEMORY_XP) 772 printf("XP "); 773 if (pager_output("\n")) 774 break; 775 } 776 777 pager_close(); 778 return (CMD_OK); 779 } 780 781 COMMAND_SET(configuration, "configuration", "print configuration tables", 782 command_configuration); 783 784 static const char * 785 guid_to_string(EFI_GUID *guid) 786 { 787 static char buf[40]; 788 789 sprintf(buf, "%08x-%04x-%04x-%02x%02x-%02x%02x%02x%02x%02x%02x", 790 guid->Data1, guid->Data2, guid->Data3, guid->Data4[0], 791 guid->Data4[1], guid->Data4[2], guid->Data4[3], guid->Data4[4], 792 guid->Data4[5], guid->Data4[6], guid->Data4[7]); 793 return (buf); 794 } 795 796 static int 797 command_configuration(int argc, char *argv[]) 798 { 799 char line[80]; 800 UINTN i; 801 802 snprintf(line, sizeof(line), "NumberOfTableEntries=%lu\n", 803 (unsigned long)ST->NumberOfTableEntries); 804 pager_open(); 805 if (pager_output(line)) { 806 pager_close(); 807 return (CMD_OK); 808 } 809 810 for (i = 0; i < ST->NumberOfTableEntries; i++) { 811 EFI_GUID *guid; 812 813 printf(" "); 814 guid = &ST->ConfigurationTable[i].VendorGuid; 815 if (!memcmp(guid, &mps, sizeof(EFI_GUID))) 816 printf("MPS Table"); 817 else if (!memcmp(guid, &acpi, sizeof(EFI_GUID))) 818 printf("ACPI Table"); 819 else if (!memcmp(guid, &acpi20, sizeof(EFI_GUID))) 820 printf("ACPI 2.0 Table"); 821 else if (!memcmp(guid, &smbios, sizeof(EFI_GUID))) 822 printf("SMBIOS Table %p", 823 ST->ConfigurationTable[i].VendorTable); 824 else if (!memcmp(guid, &smbios3, sizeof(EFI_GUID))) 825 printf("SMBIOS3 Table"); 826 else if (!memcmp(guid, &dxe, sizeof(EFI_GUID))) 827 printf("DXE Table"); 828 else if (!memcmp(guid, &hoblist, sizeof(EFI_GUID))) 829 printf("HOB List Table"); 830 else if (!memcmp(guid, &lzmadecomp, sizeof(EFI_GUID))) 831 printf("LZMA Compression"); 832 else if (!memcmp(guid, &mpcore, sizeof(EFI_GUID))) 833 printf("ARM MpCore Information Table"); 834 else if (!memcmp(guid, &esrt, sizeof(EFI_GUID))) 835 printf("ESRT Table"); 836 else if (!memcmp(guid, &memtype, sizeof(EFI_GUID))) 837 printf("Memory Type Information Table"); 838 else if (!memcmp(guid, &debugimg, sizeof(EFI_GUID))) 839 printf("Debug Image Info Table"); 840 else if (!memcmp(guid, &fdtdtb, sizeof(EFI_GUID))) 841 printf("FDT Table"); 842 else 843 printf("Unknown Table (%s)", guid_to_string(guid)); 844 snprintf(line, sizeof(line), " at %p\n", 845 ST->ConfigurationTable[i].VendorTable); 846 if (pager_output(line)) 847 break; 848 } 849 850 pager_close(); 851 return (CMD_OK); 852 } 853 854 855 COMMAND_SET(mode, "mode", "change or display EFI text modes", command_mode); 856 857 static int 858 command_mode(int argc, char *argv[]) 859 { 860 UINTN cols, rows; 861 unsigned int mode; 862 int i; 863 char *cp; 864 char rowenv[8]; 865 EFI_STATUS status; 866 SIMPLE_TEXT_OUTPUT_INTERFACE *conout; 867 extern void HO(void); 868 869 conout = ST->ConOut; 870 871 if (argc > 1) { 872 mode = strtol(argv[1], &cp, 0); 873 if (cp[0] != '\0') { 874 printf("Invalid mode\n"); 875 return (CMD_ERROR); 876 } 877 status = conout->QueryMode(conout, mode, &cols, &rows); 878 if (EFI_ERROR(status)) { 879 printf("invalid mode %d\n", mode); 880 return (CMD_ERROR); 881 } 882 status = conout->SetMode(conout, mode); 883 if (EFI_ERROR(status)) { 884 printf("couldn't set mode %d\n", mode); 885 return (CMD_ERROR); 886 } 887 sprintf(rowenv, "%u", (unsigned)rows); 888 setenv("LINES", rowenv, 1); 889 HO(); /* set cursor */ 890 return (CMD_OK); 891 } 892 893 printf("Current mode: %d\n", conout->Mode->Mode); 894 for (i = 0; i <= conout->Mode->MaxMode; i++) { 895 status = conout->QueryMode(conout, i, &cols, &rows); 896 if (EFI_ERROR(status)) 897 continue; 898 printf("Mode %d: %u columns, %u rows\n", i, (unsigned)cols, 899 (unsigned)rows); 900 } 901 902 if (i != 0) 903 printf("Select a mode with the command \"mode <number>\"\n"); 904 905 return (CMD_OK); 906 } 907 908 #ifdef LOADER_FDT_SUPPORT 909 extern int command_fdt_internal(int argc, char *argv[]); 910 911 /* 912 * Since proper fdt command handling function is defined in fdt_loader_cmd.c, 913 * and declaring it as extern is in contradiction with COMMAND_SET() macro 914 * (which uses static pointer), we're defining wrapper function, which 915 * calls the proper fdt handling routine. 916 */ 917 static int 918 command_fdt(int argc, char *argv[]) 919 { 920 921 return (command_fdt_internal(argc, argv)); 922 } 923 924 COMMAND_SET(fdt, "fdt", "flattened device tree handling", command_fdt); 925 #endif 926 927 /* 928 * Chain load another efi loader. 929 */ 930 static int 931 command_chain(int argc, char *argv[]) 932 { 933 EFI_GUID LoadedImageGUID = LOADED_IMAGE_PROTOCOL; 934 EFI_HANDLE loaderhandle; 935 EFI_LOADED_IMAGE *loaded_image; 936 EFI_STATUS status; 937 struct stat st; 938 struct devdesc *dev; 939 char *name, *path; 940 void *buf; 941 int fd; 942 943 if (argc < 2) { 944 command_errmsg = "wrong number of arguments"; 945 return (CMD_ERROR); 946 } 947 948 name = argv[1]; 949 950 if ((fd = open(name, O_RDONLY)) < 0) { 951 command_errmsg = "no such file"; 952 return (CMD_ERROR); 953 } 954 955 if (fstat(fd, &st) < -1) { 956 command_errmsg = "stat failed"; 957 close(fd); 958 return (CMD_ERROR); 959 } 960 961 status = BS->AllocatePool(EfiLoaderCode, (UINTN)st.st_size, &buf); 962 if (status != EFI_SUCCESS) { 963 command_errmsg = "failed to allocate buffer"; 964 close(fd); 965 return (CMD_ERROR); 966 } 967 if (read(fd, buf, st.st_size) != st.st_size) { 968 command_errmsg = "error while reading the file"; 969 (void)BS->FreePool(buf); 970 close(fd); 971 return (CMD_ERROR); 972 } 973 close(fd); 974 status = BS->LoadImage(FALSE, IH, NULL, buf, st.st_size, &loaderhandle); 975 (void)BS->FreePool(buf); 976 if (status != EFI_SUCCESS) { 977 command_errmsg = "LoadImage failed"; 978 return (CMD_ERROR); 979 } 980 status = BS->HandleProtocol(loaderhandle, &LoadedImageGUID, 981 (void **)&loaded_image); 982 983 if (argc > 2) { 984 int i, len = 0; 985 CHAR16 *argp; 986 987 for (i = 2; i < argc; i++) 988 len += strlen(argv[i]) + 1; 989 990 len *= sizeof (*argp); 991 loaded_image->LoadOptions = argp = malloc (len); 992 loaded_image->LoadOptionsSize = len; 993 for (i = 2; i < argc; i++) { 994 char *ptr = argv[i]; 995 while (*ptr) 996 *(argp++) = *(ptr++); 997 *(argp++) = ' '; 998 } 999 *(--argv) = 0; 1000 } 1001 1002 if (efi_getdev((void **)&dev, name, (const char **)&path) == 0) { 1003 #ifdef EFI_ZFS_BOOT 1004 struct zfs_devdesc *z_dev; 1005 #endif 1006 struct disk_devdesc *d_dev; 1007 pdinfo_t *hd, *pd; 1008 1009 switch (dev->d_dev->dv_type) { 1010 #ifdef EFI_ZFS_BOOT 1011 case DEVT_ZFS: 1012 z_dev = (struct zfs_devdesc *)dev; 1013 loaded_image->DeviceHandle = 1014 efizfs_get_handle_by_guid(z_dev->pool_guid); 1015 break; 1016 #endif 1017 case DEVT_NET: 1018 loaded_image->DeviceHandle = 1019 efi_find_handle(dev->d_dev, dev->d_unit); 1020 break; 1021 default: 1022 hd = efiblk_get_pdinfo(dev); 1023 if (STAILQ_EMPTY(&hd->pd_part)) { 1024 loaded_image->DeviceHandle = hd->pd_handle; 1025 break; 1026 } 1027 d_dev = (struct disk_devdesc *)dev; 1028 STAILQ_FOREACH(pd, &hd->pd_part, pd_link) { 1029 /* 1030 * d_partition should be 255 1031 */ 1032 if (pd->pd_unit == (uint32_t)d_dev->d_slice) { 1033 loaded_image->DeviceHandle = 1034 pd->pd_handle; 1035 break; 1036 } 1037 } 1038 break; 1039 } 1040 } 1041 1042 dev_cleanup(); 1043 status = BS->StartImage(loaderhandle, NULL, NULL); 1044 if (status != EFI_SUCCESS) { 1045 command_errmsg = "StartImage failed"; 1046 free(loaded_image->LoadOptions); 1047 loaded_image->LoadOptions = NULL; 1048 status = BS->UnloadImage(loaded_image); 1049 return (CMD_ERROR); 1050 } 1051 1052 return (CMD_ERROR); /* not reached */ 1053 } 1054 1055 COMMAND_SET(chain, "chain", "chain load file", command_chain); 1056