1 /*-
2 * Copyright (c) 2008-2010 Rui Paulo
3 * Copyright (c) 2006 Marcel Moolenaar
4 * All rights reserved.
5 *
6 * Copyright (c) 2016-2019 Netflix, Inc. written by M. Warner Losh
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 *
12 * 1. Redistributions of source code must retain the above copyright
13 * notice, this list of conditions and the following disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 *
18 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
19 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
21 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
22 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
23 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
24 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
25 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
26 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
27 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
28 */
29
30 #include <stand.h>
31
32 #include <sys/disk.h>
33 #include <sys/param.h>
34 #include <sys/reboot.h>
35 #include <sys/boot.h>
36 #ifdef EFI_ZFS_BOOT
37 #include <sys/zfs_bootenv.h>
38 #endif
39 #include <paths.h>
40 #include <netinet/in.h>
41 #include <netinet/in_systm.h>
42 #include <stdint.h>
43 #include <string.h>
44 #include <setjmp.h>
45 #include <disk.h>
46 #include <dev_net.h>
47 #include <net.h>
48 #include <machine/_inttypes.h>
49
50 #include <efi.h>
51 #include <efilib.h>
52 #include <efichar.h>
53
54 #include <Guid/DebugImageInfoTable.h>
55 #include <Guid/DxeServices.h>
56 #include <Guid/Mps.h>
57 #include <Guid/SmBios.h>
58 #include <Protocol/Rng.h>
59 #include <Protocol/SimpleNetwork.h>
60 #include <Protocol/SimpleTextIn.h>
61
62 #include <uuid.h>
63
64 #include <bootstrap.h>
65 #include <smbios.h>
66
67 #include <dev/random/fortuna.h>
68 #include <geom/eli/pkcs5v2.h>
69
70 #include "efizfs.h"
71 #include "framebuffer.h"
72
73 #include "platform/acfreebsd.h"
74 #include "acconfig.h"
75 #define ACPI_SYSTEM_XFACE
76 #include "actypes.h"
77 #include "actbl.h"
78
79 #include <acpi_detect.h>
80
81 #include "loader_efi.h"
82
83 struct arch_switch archsw = { /* MI/MD interface boundary */
84 .arch_autoload = efi_autoload,
85 .arch_getdev = efi_getdev,
86 .arch_copyin = efi_copyin,
87 .arch_copyout = efi_copyout,
88 #if defined(__amd64__) || defined(__i386__)
89 .arch_hypervisor = x86_hypervisor,
90 #endif
91 .arch_readin = efi_readin,
92 .arch_zfs_probe = efi_zfs_probe,
93 };
94
95 // XXX These are from ???? Maybe ACPI which needs to define them?
96 // XXX EDK2 doesn't (or didn't as of Feb 2025)
97 #define HOB_LIST_TABLE_GUID \
98 { 0x7739f24c, 0x93d7, 0x11d4, {0x9a, 0x3a, 0x0, 0x90, 0x27, 0x3f, 0xc1, 0x4d} }
99 #define LZMA_DECOMPRESSION_GUID \
100 { 0xee4e5898, 0x3914, 0x4259, {0x9d, 0x6e, 0xdc, 0x7b, 0xd7, 0x94, 0x3, 0xcf} }
101 #define ARM_MP_CORE_INFO_TABLE_GUID \
102 { 0xa4ee0728, 0xe5d7, 0x4ac5, {0xb2, 0x1e, 0x65, 0x8e, 0xd8, 0x57, 0xe8, 0x34} }
103 #define ESRT_TABLE_GUID \
104 { 0xb122a263, 0x3661, 0x4f68, {0x99, 0x29, 0x78, 0xf8, 0xb0, 0xd6, 0x21, 0x80} }
105 #define MEMORY_TYPE_INFORMATION_TABLE_GUID \
106 { 0x4c19049f, 0x4137, 0x4dd3, {0x9c, 0x10, 0x8b, 0x97, 0xa8, 0x3f, 0xfd, 0xfa} }
107 #define FDT_TABLE_GUID \
108 { 0xb1b621d5, 0xf19c, 0x41a5, {0x83, 0x0b, 0xd9, 0x15, 0x2c, 0x69, 0xaa, 0xe0} }
109
110 EFI_GUID devid = DEVICE_PATH_PROTOCOL;
111 EFI_GUID imgid = LOADED_IMAGE_PROTOCOL;
112 EFI_GUID mps = MPS_TABLE_GUID;
113 EFI_GUID netid = EFI_SIMPLE_NETWORK_PROTOCOL_GUID;
114 EFI_GUID smbios = SMBIOS_TABLE_GUID;
115 EFI_GUID smbios3 = SMBIOS3_TABLE_GUID;
116 EFI_GUID dxe = DXE_SERVICES_TABLE_GUID;
117 EFI_GUID hoblist = HOB_LIST_TABLE_GUID;
118 EFI_GUID lzmadecomp = LZMA_DECOMPRESSION_GUID;
119 EFI_GUID mpcore = ARM_MP_CORE_INFO_TABLE_GUID;
120 EFI_GUID esrt = ESRT_TABLE_GUID;
121 EFI_GUID memtype = MEMORY_TYPE_INFORMATION_TABLE_GUID;
122 EFI_GUID debugimg = EFI_DEBUG_IMAGE_INFO_TABLE_GUID;
123 EFI_GUID fdtdtb = FDT_TABLE_GUID;
124 EFI_GUID inputid = EFI_SIMPLE_TEXT_INPUT_PROTOCOL_GUID;
125 EFI_GUID rng_guid = EFI_RNG_PROTOCOL_GUID;
126
127 /*
128 * Number of seconds to wait for a keystroke before exiting with failure
129 * in the event no currdev is found. -2 means always break, -1 means
130 * never break, 0 means poll once and then reboot, > 0 means wait for
131 * that many seconds. "fail_timeout" can be set in the environment as
132 * well.
133 */
134 static int fail_timeout = 5;
135
136 /*
137 * Current boot variable
138 */
139 UINT16 boot_current;
140
141 /*
142 * Image that we booted from.
143 */
144 EFI_LOADED_IMAGE *boot_img;
145
146 enum boot_policies {
147 STRICT,
148 RELAXED,
149 } boot_policy = STRICT;
150
151 const char *policy_map[] = {
152 [STRICT] = "strict",
153 [RELAXED] = "relaxed",
154 };
155
156 static bool
has_keyboard(void)157 has_keyboard(void)
158 {
159 EFI_STATUS status;
160 EFI_DEVICE_PATH *path;
161 EFI_HANDLE *hin, *hin_end, *walker;
162 UINTN sz;
163 bool retval = false;
164
165 /*
166 * Find all the handles that support the SIMPLE_TEXT_INPUT_PROTOCOL and
167 * do the typical dance to get the right sized buffer.
168 */
169 sz = 0;
170 hin = NULL;
171 status = BS->LocateHandle(ByProtocol, &inputid, 0, &sz, 0);
172 if (status == EFI_BUFFER_TOO_SMALL) {
173 hin = (EFI_HANDLE *)malloc(sz);
174 status = BS->LocateHandle(ByProtocol, &inputid, 0, &sz,
175 hin);
176 if (EFI_ERROR(status))
177 free(hin);
178 }
179 if (EFI_ERROR(status))
180 return retval;
181
182 /*
183 * Look at each of the handles. If it supports the device path protocol,
184 * use it to get the device path for this handle. Then see if that
185 * device path matches either the USB device path for keyboards or the
186 * legacy device path for keyboards.
187 */
188 hin_end = &hin[sz / sizeof(*hin)];
189 for (walker = hin; walker < hin_end; walker++) {
190 status = OpenProtocolByHandle(*walker, &devid, (void **)&path);
191 if (EFI_ERROR(status))
192 continue;
193
194 while (!IsDevicePathEnd(path)) {
195 /*
196 * Check for the ACPI keyboard node. All PNP3xx nodes
197 * are keyboards of different flavors. Note: It is
198 * unclear of there's always a keyboard node when
199 * there's a keyboard controller, or if there's only one
200 * when a keyboard is detected at boot.
201 */
202 if (DevicePathType(path) == ACPI_DEVICE_PATH &&
203 (DevicePathSubType(path) == ACPI_DP ||
204 DevicePathSubType(path) == ACPI_EXTENDED_DP)) {
205 ACPI_HID_DEVICE_PATH *acpi;
206
207 acpi = (ACPI_HID_DEVICE_PATH *)(void *)path;
208 if ((EISA_ID_TO_NUM(acpi->HID) & 0xff00) == 0x300 &&
209 (acpi->HID & 0xffff) == PNP_EISA_ID_CONST) {
210 retval = true;
211 goto out;
212 }
213 /*
214 * Check for USB keyboard node, if present. Unlike a
215 * PS/2 keyboard, these definitely only appear when
216 * connected to the system.
217 */
218 } else if (DevicePathType(path) == MESSAGING_DEVICE_PATH &&
219 DevicePathSubType(path) == MSG_USB_CLASS_DP) {
220 USB_CLASS_DEVICE_PATH *usb;
221
222 usb = (USB_CLASS_DEVICE_PATH *)(void *)path;
223 if (usb->DeviceClass == 3 && /* HID */
224 usb->DeviceSubClass == 1 && /* Boot devices */
225 usb->DeviceProtocol == 1) { /* Boot keyboards */
226 retval = true;
227 goto out;
228 }
229 }
230 path = NextDevicePathNode(path);
231 }
232 }
233 out:
234 free(hin);
235 return retval;
236 }
237
238 static void
set_currdev_devdesc(struct devdesc * currdev)239 set_currdev_devdesc(struct devdesc *currdev)
240 {
241 const char *devname;
242
243 devname = devformat(currdev);
244 printf("Setting currdev to %s\n", devname);
245 set_currdev(devname);
246 }
247
248 static void
set_currdev_devsw(struct devsw * dev,int unit)249 set_currdev_devsw(struct devsw *dev, int unit)
250 {
251 struct devdesc currdev;
252
253 currdev.d_dev = dev;
254 currdev.d_unit = unit;
255
256 set_currdev_devdesc(&currdev);
257 }
258
259 static void
set_currdev_pdinfo(pdinfo_t * dp)260 set_currdev_pdinfo(pdinfo_t *dp)
261 {
262
263 /*
264 * Disks are special: they have partitions. if the parent
265 * pointer is non-null, we're a partition not a full disk
266 * and we need to adjust currdev appropriately.
267 */
268 if (dp->pd_devsw->dv_type == DEVT_DISK) {
269 struct disk_devdesc currdev;
270
271 currdev.dd.d_dev = dp->pd_devsw;
272 if (dp->pd_parent == NULL) {
273 currdev.dd.d_unit = dp->pd_unit;
274 currdev.d_slice = D_SLICENONE;
275 currdev.d_partition = D_PARTNONE;
276 } else {
277 currdev.dd.d_unit = dp->pd_parent->pd_unit;
278 currdev.d_slice = dp->pd_unit;
279 currdev.d_partition = D_PARTISGPT; /* XXX Assumes GPT */
280 }
281 set_currdev_devdesc((struct devdesc *)&currdev);
282 } else {
283 set_currdev_devsw(dp->pd_devsw, dp->pd_unit);
284 }
285 }
286
287 static bool
sanity_check_currdev(void)288 sanity_check_currdev(void)
289 {
290 struct stat st;
291
292 return (stat(PATH_DEFAULTS_LOADER_CONF, &st) == 0 ||
293 #ifdef PATH_BOOTABLE_TOKEN
294 stat(PATH_BOOTABLE_TOKEN, &st) == 0 || /* non-standard layout */
295 #endif
296 stat(PATH_KERNEL, &st) == 0);
297 }
298
299 #ifdef EFI_ZFS_BOOT
300 static bool
probe_zfs_currdev(uint64_t guid)301 probe_zfs_currdev(uint64_t guid)
302 {
303 char buf[VDEV_PAD_SIZE];
304 char *devname;
305 struct zfs_devdesc currdev;
306
307 currdev.dd.d_dev = &zfs_dev;
308 currdev.dd.d_unit = 0;
309 currdev.pool_guid = guid;
310 currdev.root_guid = 0;
311 devname = devformat(&currdev.dd);
312 set_currdev(devname);
313 printf("Setting currdev to %s\n", devname);
314 init_zfs_boot_options(devname);
315
316 if (zfs_get_bootonce(&currdev, OS_BOOTONCE, buf, sizeof(buf)) == 0) {
317 printf("zfs bootonce: %s\n", buf);
318 set_currdev(buf);
319 setenv("zfs-bootonce", buf, 1);
320 }
321 (void)zfs_attach_nvstore(&currdev);
322
323 return (sanity_check_currdev());
324 }
325 #endif
326
327 static bool
probe_md_currdev(void)328 probe_md_currdev(void)
329 {
330 #ifdef LOADER_MD_SUPPORT
331 bool rv;
332
333 set_currdev_devsw(&md_dev, 0);
334 rv = sanity_check_currdev();
335 if (!rv)
336 printf("MD not present\n");
337 return (rv);
338 #else
339 return (false);
340 #endif
341 }
342
343 /*
344 * Try the passed in partition or entire disk to see if we can find a bootable
345 * partition or zpool.
346 */
347 static bool
try_as_currdev(pdinfo_t * pp,bool verbose)348 try_as_currdev(pdinfo_t *pp, bool verbose)
349 {
350 if (verbose) {
351 CHAR16 *text = efi_devpath_name(pp->pd_devpath);
352 if (text != NULL) {
353 printf("Trying: %S\n", text);
354 efi_free_devpath_name(text);
355 }
356 }
357 #ifdef EFI_ZFS_BOOT
358 uint64_t guid;
359
360 /*
361 * If there's a zpool on this device, try it as a ZFS
362 * filesystem, which has somewhat different setup than all
363 * other types of fs due to imperfect loader integration.
364 * This all stems from ZFS being both a device (zpool) and
365 * a filesystem, plus the boot env feature.
366 */
367 if (efizfs_get_guid_by_handle(pp->pd_handle, &guid))
368 return (probe_zfs_currdev(guid));
369 #endif
370 /*
371 * All other filesystems just need the pdinfo
372 * initialized in the standard way.
373 */
374 set_currdev_pdinfo(pp);
375 return (sanity_check_currdev());
376 }
377
378 /*
379 * Given a disk, try each of its partitions as the boot device.
380 */
381 static int
try_disk_and_partitions(pdinfo_t * disk,EFI_HANDLE skip_handle)382 try_disk_and_partitions(pdinfo_t *disk, EFI_HANDLE skip_handle)
383 {
384 pdinfo_t *pp;
385
386 if (disk == NULL)
387 return (ENOENT);
388
389 if (try_as_currdev(disk, true))
390 return (0);
391
392 STAILQ_FOREACH(pp, &disk->pd_part, pd_link) {
393 if (pp->pd_handle == skip_handle)
394 continue;
395 if (try_as_currdev(pp, true))
396 return (0);
397 }
398 return (ENOENT);
399 }
400
401 /*
402 * Search the boot device first (i.e. the ESP and any sibling partitions).
403 * Per the UEFI specification, filesystems on other devices must not be
404 * preferred until the boot device has been fully exhausted.
405 */
406 static int
try_boot_device_partitions(void)407 try_boot_device_partitions(void)
408 {
409 pdinfo_t *dp;
410 CHAR16 *text;
411
412 dp = efiblk_get_pdinfo_by_handle(boot_img->DeviceHandle);
413 if (dp == NULL)
414 return (ENOENT);
415
416 text = efi_devpath_name(dp->pd_devpath);
417 if (text != NULL) {
418 printf("Trying ESP device: %S\n", text);
419 efi_free_devpath_name(text);
420 }
421
422 return (try_disk_and_partitions(dp->pd_parent, dp->pd_handle));
423 }
424
425 /*
426 * Sometimes we get filenames that are all upper case
427 * and/or have backslashes in them. Filter all this out
428 * if it looks like we need to do so.
429 */
430 static void
fix_dosisms(char * p)431 fix_dosisms(char *p)
432 {
433 while (*p) {
434 if (isupper(*p))
435 *p = tolower(*p);
436 else if (*p == '\\')
437 *p = '/';
438 p++;
439 }
440 }
441
442 #define SIZE(dp, edp) (size_t)((intptr_t)(void *)edp - (intptr_t)(void *)dp)
443
444 enum { BOOT_INFO_OK = 0, BAD_CHOICE = 1, NOT_SPECIFIC = 2 };
445 static int
match_boot_info(char * boot_info,size_t bisz)446 match_boot_info(char *boot_info, size_t bisz)
447 {
448 uint32_t attr;
449 uint16_t fplen;
450 size_t len;
451 char *walker, *ep;
452 EFI_DEVICE_PATH *dp, *edp, *first_dp, *last_dp;
453 pdinfo_t *pp;
454 CHAR16 *descr;
455 char *kernel = NULL;
456 FILEPATH_DEVICE_PATH *fp;
457 struct stat st;
458 CHAR16 *text;
459
460 /*
461 * FreeBSD encodes its boot loading path into the boot loader
462 * BootXXXX variable. We look for the last one in the path
463 * and use that to load the kernel. However, if we only find
464 * one DEVICE_PATH, then there's nothing specific and we should
465 * fall back.
466 *
467 * In an ideal world, we'd look at the image handle we were
468 * passed, match up with the loader we are and then return the
469 * next one in the path. This would be most flexible and cover
470 * many chain booting scenarios where you need to use this
471 * boot loader to get to the next boot loader. However, that
472 * doesn't work. We rarely have the path to the image booted
473 * (just the device) so we can't count on that. So, we do the
474 * next best thing: we look through the device path(s) passed
475 * in the BootXXXX variable. If there's only one, we return
476 * NOT_SPECIFIC. Otherwise, we look at the last one and try to
477 * load that. If we can, we return BOOT_INFO_OK. Otherwise we
478 * return BAD_CHOICE for the caller to sort out.
479 */
480 if (bisz < sizeof(attr) + sizeof(fplen) + sizeof(CHAR16))
481 return NOT_SPECIFIC;
482 walker = boot_info;
483 ep = walker + bisz;
484 memcpy(&attr, walker, sizeof(attr));
485 walker += sizeof(attr);
486 memcpy(&fplen, walker, sizeof(fplen));
487 walker += sizeof(fplen);
488 descr = (CHAR16 *)(intptr_t)walker;
489 len = ucs2len(descr);
490 walker += (len + 1) * sizeof(CHAR16);
491 last_dp = first_dp = dp = (EFI_DEVICE_PATH *)walker;
492 edp = (EFI_DEVICE_PATH *)(walker + fplen);
493 if ((char *)edp > ep)
494 return NOT_SPECIFIC;
495 while (dp < edp && SIZE(dp, edp) > sizeof(EFI_DEVICE_PATH)) {
496 text = efi_devpath_name(dp);
497 if (text != NULL) {
498 printf(" BootInfo Path: %S\n", text);
499 efi_free_devpath_name(text);
500 }
501 last_dp = dp;
502 dp = (EFI_DEVICE_PATH *)((char *)dp + efi_devpath_length(dp));
503 }
504
505 /*
506 * If there's only one item in the list, then nothing was
507 * specified. Or if the last path doesn't have a media
508 * path in it. Those show up as various VenHw() nodes
509 * which are basically opaque to us. Don't count those
510 * as something specifc.
511 */
512 if (last_dp == first_dp) {
513 printf("Ignoring Boot%04x: Only one DP found\n", boot_current);
514 return NOT_SPECIFIC;
515 }
516 if (efi_devpath_to_media_path(last_dp) == NULL) {
517 printf("Ignoring Boot%04x: No Media Path\n", boot_current);
518 return NOT_SPECIFIC;
519 }
520
521 /*
522 * OK. At this point we either have a good path or a bad one.
523 * Let's check.
524 */
525 pp = efiblk_get_pdinfo_by_device_path(last_dp);
526 if (pp == NULL) {
527 printf("Ignoring Boot%04x: Device Path not found\n", boot_current);
528 return BAD_CHOICE;
529 }
530 set_currdev_pdinfo(pp);
531 if (!sanity_check_currdev()) {
532 printf("Ignoring Boot%04x: sanity check failed\n", boot_current);
533 return BAD_CHOICE;
534 }
535
536 /*
537 * OK. We've found a device that matches, next we need to check the last
538 * component of the path. If it's a file, then we set the default kernel
539 * to that. Otherwise, just use this as the default root.
540 *
541 * Reminder: we're running very early, before we've parsed the defaults
542 * file, so we may need to have a hack override.
543 */
544 dp = efi_devpath_last_node(last_dp);
545 if (DevicePathType(dp) != MEDIA_DEVICE_PATH ||
546 DevicePathSubType(dp) != MEDIA_FILEPATH_DP) {
547 printf("Using Boot%04x for root partition\n", boot_current);
548 return (BOOT_INFO_OK); /* use currdir, default kernel */
549 }
550 fp = (FILEPATH_DEVICE_PATH *)dp;
551 ucs2_to_utf8(fp->PathName, &kernel);
552 if (kernel == NULL) {
553 printf("Not using Boot%04x: can't decode kernel\n", boot_current);
554 return (BAD_CHOICE);
555 }
556 if (*kernel == '\\' || isupper(*kernel))
557 fix_dosisms(kernel);
558 if (stat(kernel, &st) != 0) {
559 free(kernel);
560 printf("Not using Boot%04x: can't find %s\n", boot_current,
561 kernel);
562 return (BAD_CHOICE);
563 }
564 setenv("kernel", kernel, 1);
565 free(kernel);
566 text = efi_devpath_name(last_dp);
567 if (text) {
568 printf("Using Boot%04x %S + %s\n", boot_current, text,
569 kernel);
570 efi_free_devpath_name(text);
571 }
572
573 return (BOOT_INFO_OK);
574 }
575
576 /*
577 * Look at the passed-in boot_info, if any. If we find it then we need
578 * to see if we can find ourselves in the boot chain. If we can, and
579 * there's another specified thing to boot next, assume that the file
580 * is loaded from / and use that for the root filesystem. If can't
581 * find the specified thing, we must fail the boot. If we're last on
582 * the list, then we fallback to looking for the first available /
583 * candidate (ZFS, if there's a bootable zpool, otherwise a UFS
584 * partition that has either /boot/defaults/loader.conf on it or
585 * /boot/kernel/kernel (the default kernel) that we can use.
586 *
587 * We always fail if we can't find the right thing. However, as
588 * a concession to buggy UEFI implementations, like u-boot, if
589 * we have determined that the host is violating the UEFI boot
590 * manager protocol, we'll signal the rest of the program that
591 * a drop to the OK boot loader prompt is possible.
592 */
593 static int
find_currdev(bool do_bootmgr,char * boot_info,size_t boot_info_sz)594 find_currdev(bool do_bootmgr, char *boot_info, size_t boot_info_sz)
595 {
596 pdinfo_t *dp;
597 EFI_DEVICE_PATH *devpath, *copy;
598 EFI_HANDLE h;
599 struct devsw *dev;
600 int unit;
601 uint64_t extra;
602 int rv;
603 char *rootdev;
604
605 /*
606 * First choice: if rootdev is already set, use that, even if
607 * it's wrong.
608 */
609 rootdev = getenv("rootdev");
610 if (rootdev != NULL && *rootdev != '\0') {
611 printf(" Setting currdev to configured rootdev %s\n",
612 rootdev);
613 set_currdev(rootdev);
614 return (0);
615 }
616
617 /*
618 * Second choice: If uefi_rootdev is set, translate that UEFI device
619 * path to the loader's internal name and use that.
620 */
621 do {
622 rootdev = getenv("uefi_rootdev");
623 if (rootdev == NULL)
624 break;
625 devpath = efi_name_to_devpath(rootdev);
626 if (devpath == NULL)
627 break;
628 dp = efiblk_get_pdinfo_by_device_path(devpath);
629 efi_devpath_free(devpath);
630 if (dp == NULL)
631 break;
632 printf(" Trying uefi_rootdev %s\n", rootdev);
633 /* if just a partition, just try that */
634 h = NULL;
635 if (dp->pd_parent != NULL) {
636 if (try_as_currdev(dp, false))
637 return (0);
638 /* That failed? Try the whole disk, but skip this part */
639 h = dp->pd_handle;
640 dp = dp->pd_parent;
641 }
642 /* otherwise, it's a full disk, so try all its partitions */
643 if (try_disk_and_partitions(dp, h) == 0)
644 return (0);
645 break;
646 } while (0);
647
648 /*
649 * Third choice: If there is an MD device, try to use that.
650 */
651 if (probe_md_currdev())
652 return (0);
653
654 /*
655 * Forth choice: If we can find out image boot_info, and there's
656 * a follow-on boot image in that boot_info, use that. In this
657 * case root will be the partition specified in that image and
658 * we'll load the kernel specified by the file path. Should there
659 * not be a filepath, we use the default. This filepath overrides
660 * loader.conf.
661 */
662 if (do_bootmgr) {
663 rv = match_boot_info(boot_info, boot_info_sz);
664 switch (rv) {
665 case BOOT_INFO_OK: /* We found it */
666 return (0);
667 case BAD_CHOICE: /* specified file not found -> error */
668 /* XXX do we want to have an escape hatch for last in boot order? */
669 return (ENOENT);
670 } /* Nothing specified, try normal match */
671 }
672
673 /*
674 * Fifth choice: try all the partitions on the boot device.
675 */
676 if (try_boot_device_partitions() == 0)
677 return (0);
678
679 #ifdef EFI_ZFS_BOOT
680 /*
681 * Sixth Choice: Probe the boot disk for ZFS and then probe the non-boot
682 * disk if we have a relaxed boot poluicy.
683 */
684 {
685 zfsinfo_list_t *zfsinfo = efizfs_get_zfsinfo_list();
686 zfsinfo_t *zi;
687
688 /*
689 * Try ZFS pool(s) on the boot device not reachable via
690 * the partition walk above.
691 */
692 STAILQ_FOREACH(zi, zfsinfo, zi_link) {
693 if (zi->zi_handle != boot_img->DeviceHandle)
694 continue;
695 printf("Trying ZFS pool 0x%jx\n", zi->zi_pool_guid);
696 if (probe_zfs_currdev(zi->zi_pool_guid))
697 return (0);
698 }
699
700 /*
701 * With a relaxed policy, try pools on other devices only
702 * after the boot device has no bootable root.
703 */
704 if (boot_policy == RELAXED) {
705 STAILQ_FOREACH(zi, zfsinfo, zi_link) {
706 if (zi->zi_handle == boot_img->DeviceHandle)
707 continue;
708 printf("Trying ZFS pool 0x%jx\n",
709 zi->zi_pool_guid);
710 if (probe_zfs_currdev(zi->zi_pool_guid))
711 return (0);
712 }
713 }
714 }
715 #endif /* EFI_ZFS_BOOT */
716
717 /*
718 * Seventh choice: Try the device handle from our loaded image first.
719 * If that fails, use the device path from the loaded image and see if
720 * any of the nodes in that path match one of the enumerated
721 * handles. Currently, this handle list is only for netboot.
722 */
723 if (efi_handle_lookup(boot_img->DeviceHandle, &dev, &unit, &extra) == 0) {
724 set_currdev_devsw(dev, unit);
725 if (sanity_check_currdev())
726 return (0);
727 }
728
729 /*
730 * Eighth choice: look up the device handle... This loops through the
731 * entries to find the device handle. The network protocols have long
732 * strings of device nodes in the device path, and this may make
733 * something work.
734 */
735 copy = NULL;
736 devpath = efi_lookup_image_devpath(IH);
737 while (devpath != NULL) {
738 h = efi_devpath_handle(devpath);
739 if (h == NULL)
740 break;
741
742 free(copy);
743 copy = NULL;
744
745 if (efi_handle_lookup(h, &dev, &unit, &extra) == 0) {
746 set_currdev_devsw(dev, unit);
747 if (sanity_check_currdev())
748 return (0);
749 }
750
751 devpath = efi_lookup_devpath(h);
752 if (devpath != NULL) {
753 copy = efi_devpath_trim(devpath);
754 devpath = copy;
755 }
756 }
757 free(copy);
758
759 return (ENOENT);
760 }
761
762 static bool
interactive_interrupt(const char * msg)763 interactive_interrupt(const char *msg)
764 {
765 time_t now, then, last;
766
767 last = 0;
768 now = then = getsecs();
769 printf("%s\n", msg);
770 if (fail_timeout == -2) /* Always break to OK */
771 return (true);
772 if (fail_timeout == -1) /* Never break to OK */
773 return (false);
774 do {
775 if (last != now) {
776 printf("press any key to interrupt reboot in %d seconds\r",
777 fail_timeout - (int)(now - then));
778 last = now;
779 }
780
781 /* XXX no pause or timeout wait for char */
782 if (ischar()) {
783 (void)getchar();
784 return (true);
785 }
786 now = getsecs();
787 } while (now - then < fail_timeout);
788 return (false);
789 }
790
791 static int
parse_args(int argc,CHAR16 * argv[])792 parse_args(int argc, CHAR16 *argv[])
793 {
794 int i, howto;
795 char var[128];
796
797 /*
798 * Parse the args to set the console settings, etc
799 * boot1.efi passes these in, if it can read /boot.config or /boot/config
800 * or iPXE may be setup to pass these in. Or the optional argument in the
801 * boot environment was used to pass these arguments in (in which case
802 * neither /boot.config nor /boot/config are consulted).
803 *
804 * Loop through the args, and for each one that contains an '=' that is
805 * not the first character, add it to the environment. This allows
806 * loader and kernel env vars to be passed on the command line. Convert
807 * args from UCS-2 to ASCII (16 to 8 bit) as they are copied (though this
808 * method is flawed for non-ASCII characters).
809 */
810 howto = 0;
811 for (i = 0; i < argc; i++) {
812 cpy16to8(argv[i], var, sizeof(var));
813 howto |= boot_parse_arg(var);
814 }
815
816 return (howto);
817 }
818
819 static void
setenv_int(const char * key,int val)820 setenv_int(const char *key, int val)
821 {
822 char buf[20];
823
824 snprintf(buf, sizeof(buf), "%d", val);
825 setenv(key, buf, 1);
826 }
827
828 static void *
acpi_map_sdt(vm_offset_t addr)829 acpi_map_sdt(vm_offset_t addr)
830 {
831 /* PA == VA */
832 return ((void *)addr);
833 }
834
835 static int
acpi_checksum(void * p,size_t length)836 acpi_checksum(void *p, size_t length)
837 {
838 uint8_t *bp;
839 uint8_t sum;
840
841 bp = p;
842 sum = 0;
843 while (length--)
844 sum += *bp++;
845
846 return (sum);
847 }
848
849 static void *
acpi_find_table(uint8_t * sig)850 acpi_find_table(uint8_t *sig)
851 {
852 int entries, i, addr_size;
853 ACPI_TABLE_HEADER *sdp;
854 ACPI_TABLE_RSDT *rsdt;
855 ACPI_TABLE_XSDT *xsdt;
856 vm_offset_t addr;
857
858 if (rsdp == NULL)
859 return (NULL);
860
861 rsdt = (ACPI_TABLE_RSDT *)(uintptr_t)rsdp->RsdtPhysicalAddress;
862 xsdt = (ACPI_TABLE_XSDT *)(uintptr_t)rsdp->XsdtPhysicalAddress;
863 if (rsdp->Revision < 2) {
864 sdp = (ACPI_TABLE_HEADER *)rsdt;
865 addr_size = sizeof(uint32_t);
866 } else {
867 sdp = (ACPI_TABLE_HEADER *)xsdt;
868 addr_size = sizeof(uint64_t);
869 }
870 entries = (sdp->Length - sizeof(ACPI_TABLE_HEADER)) / addr_size;
871 for (i = 0; i < entries; i++) {
872 if (addr_size == 4)
873 addr = le32toh(rsdt->TableOffsetEntry[i]);
874 else
875 addr = le64toh(xsdt->TableOffsetEntry[i]);
876 if (addr == 0)
877 continue;
878 sdp = (ACPI_TABLE_HEADER *)acpi_map_sdt(addr);
879 if (acpi_checksum(sdp, sdp->Length)) {
880 printf("RSDT entry %d (sig %.4s) is corrupt", i,
881 sdp->Signature);
882 continue;
883 }
884 if (memcmp(sig, sdp->Signature, 4) == 0)
885 return (sdp);
886 }
887 return (NULL);
888 }
889
890 /*
891 * Convert the InterfaceType in the SPCR. These are encoded the same for DBG2
892 * tables as well (though we don't parse those here).
893 */
894 static const char *
acpi_uart_type(UINT8 t)895 acpi_uart_type(UINT8 t)
896 {
897 static const char *types[] = {
898 [0x00] = "ns8250", /* Full 16550 */
899 [0x01] = "ns8250", /* DBGP Rev 1 16550 subset */
900 [0x03] = "pl011", /* Arm PL011 */
901 [0x05] = "ns8250", /* Nvidia 16550 */
902 [0x0d] = "pl011", /* Arm SBSA 32-bit width */
903 [0x0e] = "pl011", /* Arm SBSA generic */
904 [0x12] = "ns8250", /* 16550 defined in SerialPort */
905 };
906
907 if (t >= nitems(types))
908 return (NULL);
909 return (types[t]);
910 }
911
912 static int
acpi_uart_baud(UINT8 b)913 acpi_uart_baud(UINT8 b)
914 {
915 static int baud[] = { 0, -1, -1, 9600, 19200, -1, 57600, 115200 };
916
917 if (b > 7)
918 return (-1);
919 return (baud[b]);
920 }
921
922 static int
acpi_uart_regionwidth(UINT8 rw)923 acpi_uart_regionwidth(UINT8 rw)
924 {
925 if (rw == 0)
926 return (1);
927 if (rw > 4)
928 return (-1);
929 return (1 << (rw - 1));
930 }
931
932 static const char *
acpi_uart_parity(UINT8 p)933 acpi_uart_parity(UINT8 p)
934 {
935 /* Some of these SPCR entires get this wrong, hard wire none */
936 return ("none");
937 }
938
939 /*
940 * See if we can find an enabled SPCR ACPI table in the static tables. If so,
941 * then it describes the serial console that's been redirected to, so we know
942 * that at least there's a serial console. This is most important for embedded
943 * systems that don't have traidtional PC serial ports.
944 *
945 * All the two letter variables in this function correspond to their usage in
946 * the uart(4) console string. We use io == -1 to select between I/O ports and
947 * memory mapped addresses. Set both hw.uart.console and hw.uart.consol.extra
948 * to communicate settings from SPCR to the kernel.
949 */
950 static int
check_acpi_spcr(void)951 check_acpi_spcr(void)
952 {
953 ACPI_TABLE_SPCR *spcr;
954 int br, db, io, rs, rw, xo, pv, pd;
955 uintmax_t mm;
956 const char *dt, *pa;
957 char *val = NULL;
958
959 /*
960 * The SPCR is enabled when SerialPort is non-zero. Address being zero
961 * should suffice to see if it's disabled.
962 */
963 spcr = acpi_find_table(ACPI_SIG_SPCR);
964 if (spcr == NULL || spcr->SerialPort.Address == 0)
965 return (0);
966 dt = acpi_uart_type(spcr->InterfaceType);
967 if (dt == NULL) { /* Kernel can't use unknown types */
968 printf("UART Type %d not known\n", spcr->InterfaceType);
969 return (0);
970 }
971
972 /* I/O vs Memory mapped vs PCI device */
973 io = -1;
974 pv = spcr->PciVendorId;
975 pd = spcr->PciDeviceId;
976 if (pv == 0xffff && pd == 0xffff) {
977 if (spcr->SerialPort.SpaceId == 1)
978 io = spcr->SerialPort.Address;
979 else {
980 mm = spcr->SerialPort.Address;
981 rs = ffs(spcr->SerialPort.BitWidth) - 4;
982 rw = acpi_uart_regionwidth(spcr->SerialPort.AccessWidth);
983 }
984 } else {
985 /* XXX todo: bus:device:function + flags and segment */
986 }
987
988 /* Uart settings */
989 pa = acpi_uart_parity(spcr->Parity);
990 db = 8;
991
992 /*
993 * UartClkFreq is 3 and newer. We always use it then (it's only valid if
994 * it isn't 0, but if it is 0, we want to use 0 to have the kernel
995 * guess).
996 */
997 if (spcr->Header.Revision <= 2)
998 xo = 0;
999 else
1000 xo = spcr->UartClkFreq;
1001
1002 /*
1003 * PreciseBaudrate, when non-zero, is to be preferred. It's only valid,
1004 * though, for rev 4 and newer. So when it's 0 or the version is too
1005 * old, we do the old-style table lookup. Otherwise we believe it.
1006 */
1007 if (spcr->Header.Revision <= 3 || spcr->PreciseBaudrate == 0)
1008 br = acpi_uart_baud(spcr->BaudRate);
1009 else
1010 br = spcr->PreciseBaudrate;
1011
1012 if (io != -1) {
1013 asprintf(&val, "db:%d,dt:%s,io:%#x,pa:%s,br:%d,xo=%d",
1014 db, dt, io, pa, br, xo);
1015 } else if (pv != 0xffff && pd != 0xffff) {
1016 asprintf(&val, "db:%d,dt:%s,pv:%#x,pd:%#x,pa:%s,br:%d,xo=%d",
1017 db, dt, pv, pd, pa, br, xo);
1018 } else {
1019 asprintf(&val, "db:%d,dt:%s,mm:%#jx,rs:%d,rw:%d,pa:%s,br:%d,xo=%d",
1020 db, dt, mm, rs, rw, pa, br, xo);
1021 }
1022 env_setenv("hw.uart.console", EV_VOLATILE, val, NULL, NULL);
1023 free(val);
1024
1025 return (RB_SERIAL);
1026 }
1027
1028
1029 /*
1030 * Parse ConOut (the list of consoles active) and see if we can find a serial
1031 * port and/or a video port. It would be nice to also walk the ACPI DSDT to map
1032 * the UID for the serial port to a port since there's no standard mapping. Also
1033 * check for ConIn as well. This will be enough to determine if we have serial,
1034 * and if we don't, we default to video. If there's a dual-console situation
1035 * with only ConIn defined, this will currently fail.
1036 */
1037 int
parse_uefi_con_out(void)1038 parse_uefi_con_out(void)
1039 {
1040 int how, rv;
1041 int vid_seen = 0, com_seen = 0, seen = 0;
1042 size_t sz;
1043 char buf[4096], *ep;
1044 EFI_DEVICE_PATH *node;
1045 ACPI_HID_DEVICE_PATH *acpi;
1046 UART_DEVICE_PATH *uart;
1047 bool pci_pending;
1048
1049 /*
1050 * A SPCR in the ACPI fixed tables documents a serial port used for the
1051 * console. It may mirror a video console, or may be stand alone. If it
1052 * is present, we return RB_SERIAL and will use it for the kernel.
1053 */
1054 how = check_acpi_spcr();
1055 sz = sizeof(buf);
1056 rv = efi_global_getenv("ConOut", buf, &sz);
1057 if (rv != EFI_SUCCESS)
1058 rv = efi_global_getenv("ConOutDev", buf, &sz);
1059 if (rv != EFI_SUCCESS)
1060 rv = efi_global_getenv("ConIn", buf, &sz);
1061 if (rv != EFI_SUCCESS) {
1062 /*
1063 * If we don't have any Con* variable use both. If we have GOP
1064 * make video primary, otherwise set serial primary. In either
1065 * case, try to use both the 'efi' console which will use the
1066 * GOP, if present and serial. If there's a UEFI firmware that
1067 * omit this, but has a serial port redirect, we'll unavoidably
1068 * get doubled characters, but we'll be right in all the other
1069 * more common cases.
1070 */
1071 if (efi_has_gop())
1072 how |= RB_MULTIPLE;
1073 else
1074 how |= RB_MULTIPLE | RB_SERIAL;
1075 setenv("console", "efi,comconsole", 1);
1076 goto out;
1077 }
1078 ep = buf + sz;
1079 node = (EFI_DEVICE_PATH *)buf;
1080 while ((char *)node < ep) {
1081 if (IsDevicePathEndType(node)) {
1082 if (pci_pending && vid_seen == 0)
1083 vid_seen = ++seen;
1084 }
1085 pci_pending = false;
1086 if (DevicePathType(node) == ACPI_DEVICE_PATH &&
1087 (DevicePathSubType(node) == ACPI_DP ||
1088 DevicePathSubType(node) == ACPI_EXTENDED_DP)) {
1089 /* Check for Serial node */
1090 acpi = (void *)node;
1091 if (EISA_ID_TO_NUM(acpi->HID) == 0x501) {
1092 setenv_int("efi_8250_uid", acpi->UID);
1093 com_seen = ++seen;
1094 }
1095 } else if (DevicePathType(node) == MESSAGING_DEVICE_PATH &&
1096 DevicePathSubType(node) == MSG_UART_DP) {
1097 com_seen = ++seen;
1098 uart = (void *)node;
1099 setenv_int("efi_com_speed", uart->BaudRate);
1100 } else if (DevicePathType(node) == ACPI_DEVICE_PATH &&
1101 DevicePathSubType(node) == ACPI_ADR_DP) {
1102 /* Check for AcpiAdr() Node for video */
1103 vid_seen = ++seen;
1104 } else if (DevicePathType(node) == HARDWARE_DEVICE_PATH &&
1105 DevicePathSubType(node) == HW_PCI_DP) {
1106 /*
1107 * Note, vmware fusion has a funky console device
1108 * PciRoot(0x0)/Pci(0xf,0x0)
1109 * which we can only detect at the end since we also
1110 * have to cope with:
1111 * PciRoot(0x0)/Pci(0x1f,0x0)/Serial(0x1)
1112 * so only match it if it's last.
1113 */
1114 pci_pending = true;
1115 }
1116 node = NextDevicePathNode(node);
1117 }
1118
1119 /*
1120 * Truth table for RB_MULTIPLE | RB_SERIAL
1121 * Value Result
1122 * 0 Use only video console
1123 * RB_SERIAL Use only serial console
1124 * RB_MULTIPLE Use both video and serial console
1125 * (but video is primary so gets rc messages)
1126 * both Use both video and serial console
1127 * (but serial is primary so gets rc messages)
1128 *
1129 * Try to honor this as best we can. If only one of serial / video
1130 * found, then use that. Otherwise, use the first one we found.
1131 * This also implies if we found nothing, default to video.
1132 */
1133 how = 0;
1134 if (vid_seen && com_seen) {
1135 how |= RB_MULTIPLE;
1136 if (com_seen < vid_seen)
1137 how |= RB_SERIAL;
1138 } else if (com_seen)
1139 how |= RB_SERIAL;
1140 out:
1141 return (how);
1142 }
1143
1144 void
parse_loader_efi_config(EFI_HANDLE h,const char * env_fn)1145 parse_loader_efi_config(EFI_HANDLE h, const char *env_fn)
1146 {
1147 pdinfo_t *dp;
1148 struct stat st;
1149 int fd = -1;
1150 char *env = NULL;
1151
1152 dp = efiblk_get_pdinfo_by_handle(h);
1153 if (dp == NULL)
1154 return;
1155 set_currdev_pdinfo(dp);
1156 if (stat(env_fn, &st) != 0)
1157 return;
1158 fd = open(env_fn, O_RDONLY);
1159 if (fd == -1)
1160 return;
1161 env = malloc(st.st_size + 1);
1162 if (env == NULL)
1163 goto out;
1164 if (read(fd, env, st.st_size) != st.st_size)
1165 goto out;
1166 env[st.st_size] = '\0';
1167 boot_parse_cmdline(env);
1168 out:
1169 free(env);
1170 close(fd);
1171 }
1172
1173 static void
read_loader_env(const char * name,char * def_fn,bool once)1174 read_loader_env(const char *name, char *def_fn, bool once)
1175 {
1176 UINTN len;
1177 char *fn, *freeme = NULL;
1178
1179 len = 0;
1180 fn = def_fn;
1181 if (efi_freebsd_getenv(name, NULL, &len) == EFI_BUFFER_TOO_SMALL) {
1182 freeme = fn = malloc(len + 1);
1183 if (fn != NULL) {
1184 if (efi_freebsd_getenv(name, fn, &len) != EFI_SUCCESS) {
1185 free(fn);
1186 fn = NULL;
1187 printf(
1188 "Can't fetch FreeBSD::%s we know is there\n", name);
1189 } else {
1190 /*
1191 * if tagged as 'once' delete the env variable so we
1192 * only use it once.
1193 */
1194 if (once)
1195 efi_freebsd_delenv(name);
1196 /*
1197 * We malloced 1 more than len above, then redid the call.
1198 * so now we have room at the end of the string to NUL terminate
1199 * it here, even if the typical idium would have '- 1' here to
1200 * not overflow. len should be the same on return both times.
1201 */
1202 fn[len] = '\0';
1203 }
1204 } else {
1205 printf(
1206 "Can't allocate %d bytes to fetch FreeBSD::%s env var\n",
1207 len, name);
1208 }
1209 }
1210 if (fn) {
1211 printf(" Reading loader env vars from %s\n", fn);
1212 parse_loader_efi_config(boot_img->DeviceHandle, fn);
1213 }
1214
1215 free(freeme);
1216 }
1217
1218 caddr_t
ptov(uintptr_t x)1219 ptov(uintptr_t x)
1220 {
1221 return ((caddr_t)x);
1222 }
1223
1224 static void
efi_smbios_detect(void)1225 efi_smbios_detect(void)
1226 {
1227 VOID *smbios_v2_ptr = NULL;
1228 UINTN k;
1229
1230 for (k = 0; k < ST->NumberOfTableEntries; k++) {
1231 EFI_GUID *guid;
1232 VOID *const VT = ST->ConfigurationTable[k].VendorTable;
1233 char buf[40];
1234 bool is_smbios_v2, is_smbios_v3;
1235
1236 guid = &ST->ConfigurationTable[k].VendorGuid;
1237 is_smbios_v2 = memcmp(guid, &smbios, sizeof(*guid)) == 0;
1238 is_smbios_v3 = memcmp(guid, &smbios3, sizeof(*guid)) == 0;
1239
1240 if (!is_smbios_v2 && !is_smbios_v3)
1241 continue;
1242
1243 snprintf(buf, sizeof(buf), "%p", VT);
1244 setenv("hint.smbios.0.mem", buf, 1);
1245 if (is_smbios_v2)
1246 /*
1247 * We will parse a v2 table only if we don't find a v3
1248 * table. In the meantime, store the address.
1249 */
1250 smbios_v2_ptr = VT;
1251 else if (smbios_detect(VT) != NULL)
1252 /* v3 parsing succeeded, we are done. */
1253 return;
1254 }
1255 if (smbios_v2_ptr != NULL)
1256 (void)smbios_detect(smbios_v2_ptr);
1257 }
1258
1259 static void
set_boot_policy(void)1260 set_boot_policy(void)
1261 {
1262 const char *policy;
1263
1264 if ((policy = getenv("boot_policy")) == NULL)
1265 return;
1266 for (int i = 0; i < nitems(policy_map); i++) {
1267 if (strcmp(policy, policy_map[i]) == 0) {
1268 boot_policy = i;
1269 return;
1270 }
1271 }
1272 printf("Unknown boot_policy '%s', defaulting to %s\n",
1273 policy, policy_map[boot_policy]);
1274 }
1275
1276 static bool
is_efi_netboot(void)1277 is_efi_netboot(void)
1278 {
1279 EFI_DEVICE_PATH *devpath;
1280 uint8_t mac[6];
1281
1282 devpath = efi_lookup_devpath(boot_img->DeviceHandle);
1283 return (efi_devpath_get_mac(devpath, mac));
1284 }
1285
1286 EFI_STATUS
main(int argc,CHAR16 * argv[])1287 main(int argc, CHAR16 *argv[])
1288 {
1289 int howto, i, uhowto;
1290 bool has_ipxe, has_kbd;
1291 char *s;
1292 EFI_DEVICE_PATH *imgpath;
1293 CHAR16 *text;
1294 EFI_STATUS rv;
1295 size_t sz, bisz = 0;
1296 UINT16 boot_order[100];
1297 char boot_info[4096];
1298 char buf[32];
1299 bool uefi_boot_mgr;
1300
1301 #if !defined(__arm__)
1302 efi_smbios_detect();
1303 #endif
1304
1305 /* Get our loaded image protocol interface structure. */
1306 (void)OpenProtocolByHandle(IH, &imgid, (void **)&boot_img);
1307
1308 /* Report the RSDP early. */
1309 acpi_detect();
1310
1311 #ifdef LOADER_VERIEXEC
1312 /* tell boot_setenv to be careful */
1313 set_check_restricted(true);
1314 #endif
1315
1316 /*
1317 * Chicken-and-egg problem; we want to have console output early, but
1318 * some console attributes may depend on reading from eg. the boot
1319 * device, which we can't do yet. We can use printf() etc. once this is
1320 * done. So, we set it to the efi console, then call console init. This
1321 * gets us printf early, but also primes the pump for all future console
1322 * changes to take effect, regardless of where they come from.
1323 */
1324 setenv("console", "efi", 1);
1325 uhowto = parse_uefi_con_out();
1326 #if defined(__riscv)
1327 /*
1328 * This workaround likely is papering over a real issue
1329 */
1330 if ((uhowto & RB_SERIAL) != 0)
1331 setenv("console", "comconsole", 1);
1332 #endif
1333 cons_probe();
1334
1335 /* Set print_delay variable to have hooks in place. */
1336 env_setenv("print_delay", EV_VOLATILE, "", setprint_delay, env_nounset);
1337
1338 /* Set up currdev variable to have hooks in place. */
1339 env_setenv("currdev", EV_VOLATILE, "", gen_setcurrdev, env_nounset);
1340
1341 /* Init the time source */
1342 efi_time_init();
1343
1344 /*
1345 * Initialise the block cache. Set the upper limit.
1346 */
1347 bcache_init(32768, 512);
1348
1349 /*
1350 * Scan the command line args for memdisk=<url> and download that image
1351 * to install as a ramdisk. This needs to be done before we scan the
1352 * handles because it installs a handle and creates the right ACPI
1353 * tables for the kernel to find it.
1354 */
1355 has_ipxe = maybe_download_ramdisk(argc, argv);
1356
1357 /*
1358 * Scan the BLOCK IO MEDIA handles then
1359 * march through the device switch probing for things.
1360 */
1361 i = efipart_inithandles();
1362 if (i != 0 && i != ENOENT) {
1363 printf("efipart_inithandles failed with ERRNO %d, expect "
1364 "failures\n", i);
1365 }
1366
1367 /*
1368 * Scan all the VirtualDisks, passing them along to the FreeBSD kernel.
1369 */
1370 efiblk_memdisk_preload();
1371
1372 devinit();
1373
1374 /*
1375 * If we didn't find a ipxe image, and we're netbooting, try to
1376 * download an initmd that the dhcp server tells us about.
1377 */
1378 if (!has_ipxe && is_efi_netboot())
1379 maybe_download_initmd();
1380
1381 /*
1382 * Detect console settings two different ways: one via the command
1383 * args (eg -h) or via the UEFI ConOut variable.
1384 */
1385 has_kbd = has_keyboard();
1386 howto = parse_args(argc, argv);
1387 if (!has_kbd && (howto & RB_PROBE))
1388 howto |= RB_SERIAL | RB_MULTIPLE;
1389 howto &= ~RB_PROBE;
1390
1391 /*
1392 * Read additional environment variables from the boot device's
1393 * "LoaderEnv" file. Any boot loader environment variable may be set
1394 * there, which are subtly different than loader.conf variables. Only
1395 * the 'simple' ones may be set so things like foo_load="YES" won't work
1396 * for two reasons. First, the parser is simplistic and doesn't grok
1397 * quotes. Second, because the variables that cause an action to happen
1398 * are parsed by the lua, 4th or whatever code that's not yet
1399 * loaded. This is relative to the root directory when loader.efi is
1400 * loaded off the UFS root drive (when chain booted), or from the ESP
1401 * when directly loaded by the BIOS.
1402 *
1403 * We also read in NextLoaderEnv if it was specified. This allows next boot
1404 * functionality to be implemented and to override anything in LoaderEnv.
1405 */
1406 read_loader_env("LoaderEnv", "/efi/freebsd/loader.env", false);
1407 read_loader_env("NextLoaderEnv", NULL, true);
1408
1409 set_boot_policy();
1410
1411 /*
1412 * We now have two notions of console. howto should be viewed as
1413 * overrides. If console is already set, don't set it again.
1414 */
1415 #define VIDEO_ONLY 0
1416 #define SERIAL_ONLY RB_SERIAL
1417 #define VID_SER_BOTH RB_MULTIPLE
1418 #define SER_VID_BOTH (RB_SERIAL | RB_MULTIPLE)
1419 #define CON_MASK (RB_SERIAL | RB_MULTIPLE)
1420 if (strcmp(getenv("console"), "efi") == 0) {
1421 if ((howto & CON_MASK) == 0) {
1422 /* No override, uhowto is controlling and efi cons is perfect */
1423 howto = howto | (uhowto & CON_MASK);
1424 } else if ((howto & CON_MASK) == (uhowto & CON_MASK)) {
1425 /* override matches what UEFI told us, efi console is perfect */
1426 } else if ((uhowto & (CON_MASK)) != 0) {
1427 /*
1428 * We detected a serial console on ConOut. All possible
1429 * overrides include serial. We can't really override what efi
1430 * gives us, so we use it knowing it's the best choice.
1431 */
1432 /* Do nothing */
1433 } else {
1434 /*
1435 * We detected some kind of serial in the override, but ConOut
1436 * has no serial, so we have to sort out which case it really is.
1437 */
1438 switch (howto & CON_MASK) {
1439 case SERIAL_ONLY:
1440 setenv("console", "comconsole", 1);
1441 break;
1442 case VID_SER_BOTH:
1443 setenv("console", "efi,comconsole", 1);
1444 break;
1445 case SER_VID_BOTH:
1446 setenv("console", "comconsole,efi", 1);
1447 break;
1448 /* case VIDEO_ONLY can't happen -- it's the first if above */
1449 }
1450 }
1451 }
1452
1453 /*
1454 * howto is set now how we want to export the flags to the kernel, so
1455 * set the env based on it.
1456 */
1457 boot_howto_to_env(howto);
1458
1459 if (efi_copy_init())
1460 return (EFI_BUFFER_TOO_SMALL);
1461
1462 if ((s = getenv("fail_timeout")) != NULL)
1463 fail_timeout = strtol(s, NULL, 10);
1464
1465 printf("%s\n", bootprog_info);
1466 printf(" Command line arguments:");
1467 for (i = 0; i < argc; i++)
1468 printf(" %S", argv[i]);
1469 printf("\n");
1470
1471 printf(" Image base: 0x%lx\n", (unsigned long)boot_img->ImageBase);
1472 printf(" EFI version: %d.%02d\n", ST->Hdr.Revision >> 16,
1473 ST->Hdr.Revision & 0xffff);
1474 printf(" EFI Firmware: %S (rev %d.%02d)\n", ST->FirmwareVendor,
1475 ST->FirmwareRevision >> 16, ST->FirmwareRevision & 0xffff);
1476 printf(" Console: %s (%#x)\n", getenv("console"), howto);
1477
1478 /* Determine the devpath of our image so we can prefer it. */
1479 text = efi_devpath_name(boot_img->FilePath);
1480 if (text != NULL) {
1481 printf(" Load Path: %S\n", text);
1482 efi_setenv_freebsd_wcs("LoaderPath", text);
1483 efi_free_devpath_name(text);
1484 }
1485
1486 rv = OpenProtocolByHandle(boot_img->DeviceHandle, &devid,
1487 (void **)&imgpath);
1488 if (rv == EFI_SUCCESS) {
1489 text = efi_devpath_name(imgpath);
1490 if (text != NULL) {
1491 printf(" Load Device: %S\n", text);
1492 efi_setenv_freebsd_wcs("LoaderDev", text);
1493 efi_free_devpath_name(text);
1494 }
1495 }
1496
1497 if (getenv("uefi_ignore_boot_mgr") != NULL) {
1498 printf(" Ignoring UEFI boot manager\n");
1499 uefi_boot_mgr = false;
1500 } else {
1501 uefi_boot_mgr = true;
1502 boot_current = 0;
1503 sz = sizeof(boot_current);
1504 rv = efi_global_getenv("BootCurrent", &boot_current, &sz);
1505 if (rv == EFI_SUCCESS)
1506 printf(" BootCurrent: %04x\n", boot_current);
1507 else {
1508 boot_current = 0xffff;
1509 uefi_boot_mgr = false;
1510 }
1511
1512 sz = sizeof(boot_order);
1513 rv = efi_global_getenv("BootOrder", &boot_order, &sz);
1514 if (rv == EFI_SUCCESS) {
1515 printf(" BootOrder:");
1516 for (i = 0; i < sz / sizeof(boot_order[0]); i++)
1517 printf(" %04x%s", boot_order[i],
1518 boot_order[i] == boot_current ? "[*]" : "");
1519 printf("\n");
1520 } else if (uefi_boot_mgr) {
1521 /*
1522 * u-boot doesn't set BootOrder, but otherwise participates in the
1523 * boot manager protocol. So we fake it here and don't consider it
1524 * a failure.
1525 */
1526 boot_order[0] = boot_current;
1527 }
1528 }
1529
1530 /*
1531 * Next, find the boot info structure the UEFI boot manager is
1532 * supposed to setup. We need this so we can walk through it to
1533 * find where we are in the booting process and what to try to
1534 * boot next.
1535 */
1536 if (uefi_boot_mgr) {
1537 snprintf(buf, sizeof(buf), "Boot%04X", boot_current);
1538 sz = sizeof(boot_info);
1539 rv = efi_global_getenv(buf, &boot_info, &sz);
1540 if (rv == EFI_SUCCESS)
1541 bisz = sz;
1542 else
1543 uefi_boot_mgr = false;
1544 }
1545
1546 /*
1547 * Disable the watchdog timer. By default the boot manager sets
1548 * the timer to 5 minutes before invoking a boot option. If we
1549 * want to return to the boot manager, we have to disable the
1550 * watchdog timer and since we're an interactive program, we don't
1551 * want to wait until the user types "quit". The timer may have
1552 * fired by then. We don't care if this fails. It does not prevent
1553 * normal functioning in any way...
1554 */
1555 BS->SetWatchdogTimer(0, 0, 0, NULL);
1556
1557 /*
1558 * Initialize the trusted/forbidden certificates from UEFI.
1559 * They will be later used to verify the manifest(s),
1560 * which should contain hashes of verified files.
1561 * This needs to be initialized before any configuration files
1562 * are loaded.
1563 */
1564 #ifdef EFI_SECUREBOOT
1565 ve_efi_init();
1566 #endif
1567
1568 /*
1569 * Try and find a good currdev based on the image that was booted.
1570 * It might be desirable here to have a short pause to allow falling
1571 * through to the boot loader instead of returning instantly to follow
1572 * the boot protocol and also allow an escape hatch for users wishing
1573 * to try something different.
1574 */
1575 if (find_currdev(uefi_boot_mgr, boot_info, bisz) != 0)
1576 if (uefi_boot_mgr &&
1577 !interactive_interrupt("Failed to find bootable partition"))
1578 return (EFI_NOT_FOUND);
1579
1580 autoload_font(false); /* Set up the font list for console. */
1581 efi_init_environment();
1582
1583 interact(); /* doesn't return */
1584
1585 return (EFI_SUCCESS); /* keep compiler happy */
1586 }
1587
1588 COMMAND_SET(efi_seed_entropy, "efi-seed-entropy", "try to get entropy from the EFI RNG", command_seed_entropy);
1589
1590 static int
command_seed_entropy(int argc,char * argv[])1591 command_seed_entropy(int argc, char *argv[])
1592 {
1593 EFI_STATUS status;
1594 EFI_RNG_PROTOCOL *rng;
1595 unsigned int size_efi = RANDOM_FORTUNA_DEFPOOLSIZE * RANDOM_FORTUNA_NPOOLS;
1596 unsigned int size = RANDOM_FORTUNA_DEFPOOLSIZE * RANDOM_FORTUNA_NPOOLS;
1597 void *buf_efi;
1598 void *buf;
1599
1600 if (argc > 1) {
1601 size_efi = strtol(argv[1], NULL, 0);
1602
1603 /* Don't *compress* the entropy we get from EFI. */
1604 if (size_efi > size)
1605 size = size_efi;
1606
1607 /*
1608 * If the amount of entropy we get from EFI is less than the
1609 * size of a single Fortuna pool -- i.e. not enough to ensure
1610 * that Fortuna is safely seeded -- don't expand it since we
1611 * don't want to trick Fortuna into thinking that it has been
1612 * safely seeded when it has not.
1613 */
1614 if (size_efi < RANDOM_FORTUNA_DEFPOOLSIZE)
1615 size = size_efi;
1616 }
1617
1618 status = BS->LocateProtocol(&rng_guid, NULL, (VOID **)&rng);
1619 if (status != EFI_SUCCESS) {
1620 command_errmsg = "RNG protocol not found";
1621 return (CMD_ERROR);
1622 }
1623
1624 if ((buf = malloc(size)) == NULL) {
1625 command_errmsg = "out of memory";
1626 return (CMD_ERROR);
1627 }
1628
1629 if ((buf_efi = malloc(size_efi)) == NULL) {
1630 free(buf);
1631 command_errmsg = "out of memory";
1632 return (CMD_ERROR);
1633 }
1634
1635 TSENTER2("rng->GetRNG");
1636 status = rng->GetRNG(rng, NULL, size_efi, (UINT8 *)buf_efi);
1637 TSEXIT();
1638 if (status != EFI_SUCCESS) {
1639 free(buf_efi);
1640 free(buf);
1641 command_errmsg = "GetRNG failed";
1642 return (CMD_ERROR);
1643 }
1644 if (size_efi < size)
1645 pkcs5v2_genkey_raw(buf, size, "", 0, buf_efi, size_efi, 1);
1646 else
1647 memcpy(buf, buf_efi, size);
1648
1649 if (file_addbuf("efi_rng_seed", "boot_entropy_platform", size, buf) != 0) {
1650 free(buf_efi);
1651 free(buf);
1652 return (CMD_ERROR);
1653 }
1654
1655 explicit_bzero(buf_efi, size_efi);
1656 free(buf_efi);
1657 free(buf);
1658 return (CMD_OK);
1659 }
1660
1661 COMMAND_SET(poweroff, "poweroff", "power off the system", command_poweroff);
1662 COMMAND_SET(halt, "halt", "power off the system", command_poweroff);
1663
1664 static int
command_poweroff(int argc __unused,char * argv[]__unused)1665 command_poweroff(int argc __unused, char *argv[] __unused)
1666 {
1667 int i;
1668
1669 for (i = 0; devsw[i] != NULL; ++i)
1670 if (devsw[i]->dv_cleanup != NULL)
1671 (devsw[i]->dv_cleanup)();
1672
1673 RS->ResetSystem(EfiResetShutdown, EFI_SUCCESS, 0, NULL);
1674
1675 /* NOTREACHED */
1676 return (CMD_ERROR);
1677 }
1678
1679 COMMAND_SET(reboot, "reboot", "reboot the system", command_reboot);
1680
1681 static int
command_reboot(int argc,char * argv[])1682 command_reboot(int argc, char *argv[])
1683 {
1684 int i;
1685
1686 for (i = 0; devsw[i] != NULL; ++i)
1687 if (devsw[i]->dv_cleanup != NULL)
1688 (devsw[i]->dv_cleanup)();
1689
1690 RS->ResetSystem(EfiResetCold, EFI_SUCCESS, 0, NULL);
1691
1692 /* NOTREACHED */
1693 return (CMD_ERROR);
1694 }
1695
1696 COMMAND_SET(memmap, "memmap", "print memory map", command_memmap);
1697
1698 static int
command_memmap(int argc __unused,char * argv[]__unused)1699 command_memmap(int argc __unused, char *argv[] __unused)
1700 {
1701 UINTN sz;
1702 EFI_MEMORY_DESCRIPTOR *map, *p;
1703 UINTN key, dsz;
1704 UINT32 dver;
1705 EFI_STATUS status;
1706 int i, ndesc;
1707 char line[80];
1708
1709 sz = 0;
1710 status = BS->GetMemoryMap(&sz, 0, &key, &dsz, &dver);
1711 if (status != EFI_BUFFER_TOO_SMALL) {
1712 printf("Can't determine memory map size\n");
1713 return (CMD_ERROR);
1714 }
1715 map = malloc(sz);
1716 status = BS->GetMemoryMap(&sz, map, &key, &dsz, &dver);
1717 if (EFI_ERROR(status)) {
1718 printf("Can't read memory map\n");
1719 return (CMD_ERROR);
1720 }
1721
1722 ndesc = sz / dsz;
1723 snprintf(line, sizeof(line), "%23s %12s %12s %8s %4s\n",
1724 "Type", "Physical", "Virtual", "#Pages", "Attr");
1725 pager_open();
1726 if (pager_output(line)) {
1727 pager_close();
1728 return (CMD_OK);
1729 }
1730
1731 for (i = 0, p = map; i < ndesc;
1732 i++, p = NextMemoryDescriptor(p, dsz)) {
1733 snprintf(line, sizeof(line), "%23s %012jx %012jx %08jx ",
1734 efi_memory_type(p->Type), (uintmax_t)p->PhysicalStart,
1735 (uintmax_t)p->VirtualStart, (uintmax_t)p->NumberOfPages);
1736 if (pager_output(line))
1737 break;
1738
1739 if (p->Attribute & EFI_MEMORY_UC)
1740 printf("UC ");
1741 if (p->Attribute & EFI_MEMORY_WC)
1742 printf("WC ");
1743 if (p->Attribute & EFI_MEMORY_WT)
1744 printf("WT ");
1745 if (p->Attribute & EFI_MEMORY_WB)
1746 printf("WB ");
1747 if (p->Attribute & EFI_MEMORY_UCE)
1748 printf("UCE ");
1749 if (p->Attribute & EFI_MEMORY_WP)
1750 printf("WP ");
1751 if (p->Attribute & EFI_MEMORY_RP)
1752 printf("RP ");
1753 if (p->Attribute & EFI_MEMORY_XP)
1754 printf("XP ");
1755 if (p->Attribute & EFI_MEMORY_NV)
1756 printf("NV ");
1757 if (p->Attribute & EFI_MEMORY_MORE_RELIABLE)
1758 printf("MR ");
1759 if (p->Attribute & EFI_MEMORY_RO)
1760 printf("RO ");
1761 if (pager_output("\n"))
1762 break;
1763 }
1764
1765 pager_close();
1766 return (CMD_OK);
1767 }
1768
1769 COMMAND_SET(configuration, "configuration", "print configuration tables",
1770 command_configuration);
1771
1772 static int
command_configuration(int argc,char * argv[])1773 command_configuration(int argc, char *argv[])
1774 {
1775 UINTN i;
1776 char *name;
1777
1778 printf("NumberOfTableEntries=%lu\n",
1779 (unsigned long)ST->NumberOfTableEntries);
1780
1781 for (i = 0; i < ST->NumberOfTableEntries; i++) {
1782 EFI_GUID *guid;
1783
1784 printf(" ");
1785 guid = &ST->ConfigurationTable[i].VendorGuid;
1786
1787 if (efi_guid_to_name(guid, &name) == true) {
1788 printf(name);
1789 free(name);
1790 } else {
1791 printf("Error while translating UUID to name");
1792 }
1793 printf(" at %p\n", ST->ConfigurationTable[i].VendorTable);
1794 }
1795
1796 return (CMD_OK);
1797 }
1798
1799
1800 COMMAND_SET(mode, "mode", "change or display EFI text modes", command_mode);
1801
1802 static int
command_mode(int argc,char * argv[])1803 command_mode(int argc, char *argv[])
1804 {
1805 UINTN cols, rows;
1806 unsigned int mode;
1807 int i;
1808 char *cp;
1809 EFI_STATUS status;
1810 SIMPLE_TEXT_OUTPUT_INTERFACE *conout;
1811
1812 conout = ST->ConOut;
1813
1814 if (argc > 1) {
1815 mode = strtol(argv[1], &cp, 0);
1816 if (cp[0] != '\0') {
1817 printf("Invalid mode\n");
1818 return (CMD_ERROR);
1819 }
1820 status = conout->QueryMode(conout, mode, &cols, &rows);
1821 if (EFI_ERROR(status)) {
1822 printf("invalid mode %d\n", mode);
1823 return (CMD_ERROR);
1824 }
1825 status = conout->SetMode(conout, mode);
1826 if (EFI_ERROR(status)) {
1827 printf("couldn't set mode %d\n", mode);
1828 return (CMD_ERROR);
1829 }
1830 (void) cons_update_mode(true);
1831 return (CMD_OK);
1832 }
1833
1834 printf("Current mode: %d\n", conout->Mode->Mode);
1835 for (i = 0; i <= conout->Mode->MaxMode; i++) {
1836 status = conout->QueryMode(conout, i, &cols, &rows);
1837 if (EFI_ERROR(status))
1838 continue;
1839 printf("Mode %d: %u columns, %u rows\n", i, (unsigned)cols,
1840 (unsigned)rows);
1841 }
1842
1843 if (i != 0)
1844 printf("Select a mode with the command \"mode <number>\"\n");
1845
1846 return (CMD_OK);
1847 }
1848
1849 COMMAND_SET(lsefi, "lsefi", "list EFI handles", command_lsefi);
1850
1851 static void
lsefi_print_handle_info(EFI_HANDLE handle)1852 lsefi_print_handle_info(EFI_HANDLE handle)
1853 {
1854 EFI_DEVICE_PATH *devpath;
1855 EFI_DEVICE_PATH *imagepath;
1856 CHAR16 *dp_name;
1857
1858 imagepath = efi_lookup_image_devpath(handle);
1859 if (imagepath != NULL) {
1860 dp_name = efi_devpath_name(imagepath);
1861 printf("Handle for image %S", dp_name);
1862 efi_free_devpath_name(dp_name);
1863 return;
1864 }
1865 devpath = efi_lookup_devpath(handle);
1866 if (devpath != NULL) {
1867 dp_name = efi_devpath_name(devpath);
1868 printf("Handle for device %S", dp_name);
1869 efi_free_devpath_name(dp_name);
1870 return;
1871 }
1872 printf("Handle %p", handle);
1873 }
1874
1875 static int
command_lsefi(int argc __unused,char * argv[]__unused)1876 command_lsefi(int argc __unused, char *argv[] __unused)
1877 {
1878 char *name;
1879 EFI_HANDLE *buffer = NULL;
1880 EFI_HANDLE handle;
1881 UINTN bufsz = 0, i, j;
1882 EFI_STATUS status;
1883 int ret = 0;
1884
1885 status = BS->LocateHandle(AllHandles, NULL, NULL, &bufsz, buffer);
1886 if (status != EFI_BUFFER_TOO_SMALL) {
1887 snprintf(command_errbuf, sizeof (command_errbuf),
1888 "unexpected error: %lld", (long long)status);
1889 return (CMD_ERROR);
1890 }
1891 if ((buffer = malloc(bufsz)) == NULL) {
1892 sprintf(command_errbuf, "out of memory");
1893 return (CMD_ERROR);
1894 }
1895
1896 status = BS->LocateHandle(AllHandles, NULL, NULL, &bufsz, buffer);
1897 if (EFI_ERROR(status)) {
1898 free(buffer);
1899 snprintf(command_errbuf, sizeof (command_errbuf),
1900 "LocateHandle() error: %lld", (long long)status);
1901 return (CMD_ERROR);
1902 }
1903
1904 pager_open();
1905 for (i = 0; i < (bufsz / sizeof (EFI_HANDLE)); i++) {
1906 UINTN nproto = 0;
1907 EFI_GUID **protocols = NULL;
1908
1909 handle = buffer[i];
1910 lsefi_print_handle_info(handle);
1911 if (pager_output("\n"))
1912 break;
1913 /* device path */
1914
1915 status = BS->ProtocolsPerHandle(handle, &protocols, &nproto);
1916 if (EFI_ERROR(status)) {
1917 snprintf(command_errbuf, sizeof (command_errbuf),
1918 "ProtocolsPerHandle() error: %lld",
1919 (long long)status);
1920 continue;
1921 }
1922
1923 for (j = 0; j < nproto; j++) {
1924 if (efi_guid_to_name(protocols[j], &name) == true) {
1925 printf(" %s", name);
1926 free(name);
1927 } else {
1928 printf("Error while translating UUID to name");
1929 }
1930 if ((ret = pager_output("\n")) != 0)
1931 break;
1932 }
1933 BS->FreePool(protocols);
1934 if (ret != 0)
1935 break;
1936 }
1937 pager_close();
1938 free(buffer);
1939 return (CMD_OK);
1940 }
1941
1942 #ifdef LOADER_FDT_SUPPORT
1943 extern int command_fdt_internal(int argc, char *argv[]);
1944
1945 /*
1946 * Since proper fdt command handling function is defined in fdt_loader_cmd.c,
1947 * and declaring it as extern is in contradiction with COMMAND_SET() macro
1948 * (which uses static pointer), we're defining wrapper function, which
1949 * calls the proper fdt handling routine.
1950 */
1951 static int
command_fdt(int argc,char * argv[])1952 command_fdt(int argc, char *argv[])
1953 {
1954
1955 return (command_fdt_internal(argc, argv));
1956 }
1957
1958 COMMAND_SET(fdt, "fdt", "flattened device tree handling", command_fdt);
1959 #endif
1960
1961 /*
1962 * Chain load another efi loader.
1963 */
1964 static int
command_chain(int argc,char * argv[])1965 command_chain(int argc, char *argv[])
1966 {
1967 EFI_GUID LoadedImageGUID = LOADED_IMAGE_PROTOCOL;
1968 EFI_HANDLE loaderhandle;
1969 EFI_LOADED_IMAGE *loaded_image;
1970 UINTN ExitDataSize;
1971 CHAR16 *ExitData = NULL;
1972 EFI_STATUS status;
1973 struct stat st;
1974 struct devdesc *dev;
1975 char *name, *path;
1976 void *buf;
1977 int fd;
1978
1979 if (argc < 2) {
1980 command_errmsg = "wrong number of arguments";
1981 return (CMD_ERROR);
1982 }
1983
1984 name = argv[1];
1985
1986 if ((fd = open(name, O_RDONLY)) < 0) {
1987 command_errmsg = "no such file";
1988 return (CMD_ERROR);
1989 }
1990
1991 #ifdef LOADER_VERIEXEC
1992 if (verify_file(fd, name, 0, VE_MUST, __func__) < 0) {
1993 sprintf(command_errbuf, "can't verify: %s", name);
1994 close(fd);
1995 return (CMD_ERROR);
1996 }
1997 #endif
1998
1999 if (fstat(fd, &st) < -1) {
2000 command_errmsg = "stat failed";
2001 close(fd);
2002 return (CMD_ERROR);
2003 }
2004
2005 status = BS->AllocatePool(EfiLoaderCode, (UINTN)st.st_size, &buf);
2006 if (status != EFI_SUCCESS) {
2007 command_errmsg = "failed to allocate buffer";
2008 close(fd);
2009 return (CMD_ERROR);
2010 }
2011 if (read(fd, buf, st.st_size) != st.st_size) {
2012 command_errmsg = "error while reading the file";
2013 (void)BS->FreePool(buf);
2014 close(fd);
2015 return (CMD_ERROR);
2016 }
2017 close(fd);
2018 status = BS->LoadImage(FALSE, IH, NULL, buf, st.st_size, &loaderhandle);
2019 (void)BS->FreePool(buf);
2020 if (status != EFI_SUCCESS) {
2021 command_errmsg = "LoadImage failed";
2022 return (CMD_ERROR);
2023 }
2024 status = OpenProtocolByHandle(loaderhandle, &LoadedImageGUID,
2025 (void **)&loaded_image);
2026
2027 if (argc > 2) {
2028 int i, len = 0;
2029 CHAR16 *argp;
2030
2031 for (i = 2; i < argc; i++)
2032 len += strlen(argv[i]) + 1;
2033
2034 len *= sizeof (*argp);
2035 loaded_image->LoadOptions = argp = malloc (len);
2036 loaded_image->LoadOptionsSize = len;
2037 for (i = 2; i < argc; i++) {
2038 char *ptr = argv[i];
2039 while (*ptr)
2040 *(argp++) = *(ptr++);
2041 *(argp++) = ' ';
2042 }
2043 *(--argv) = 0;
2044 }
2045
2046 if (efi_getdev((void **)&dev, name, (const char **)&path) == 0) {
2047 #ifdef EFI_ZFS_BOOT
2048 struct zfs_devdesc *z_dev;
2049 #endif
2050 struct disk_devdesc *d_dev;
2051 pdinfo_t *hd, *pd;
2052
2053 switch (dev->d_dev->dv_type) {
2054 #ifdef EFI_ZFS_BOOT
2055 case DEVT_ZFS:
2056 z_dev = (struct zfs_devdesc *)dev;
2057 loaded_image->DeviceHandle =
2058 efizfs_get_handle_by_guid(z_dev->pool_guid);
2059 break;
2060 #endif
2061 case DEVT_NET:
2062 loaded_image->DeviceHandle =
2063 efi_find_handle(dev->d_dev, dev->d_unit);
2064 break;
2065 default:
2066 hd = efiblk_get_pdinfo(dev);
2067 if (STAILQ_EMPTY(&hd->pd_part)) {
2068 loaded_image->DeviceHandle = hd->pd_handle;
2069 break;
2070 }
2071 d_dev = (struct disk_devdesc *)dev;
2072 STAILQ_FOREACH(pd, &hd->pd_part, pd_link) {
2073 /*
2074 * d_partition should be 255
2075 */
2076 if (pd->pd_unit == (uint32_t)d_dev->d_slice) {
2077 loaded_image->DeviceHandle =
2078 pd->pd_handle;
2079 break;
2080 }
2081 }
2082 break;
2083 }
2084 }
2085
2086 dev_cleanup();
2087
2088 status = BS->StartImage(loaderhandle, &ExitDataSize, &ExitData);
2089 if (status != EFI_SUCCESS) {
2090 printf("StartImage failed (%lu)", DECODE_ERROR(status));
2091 if (ExitData != NULL) {
2092 printf(": %S", ExitData);
2093 BS->FreePool(ExitData);
2094 }
2095 putchar('\n');
2096 command_errmsg = "";
2097 free(loaded_image->LoadOptions);
2098 loaded_image->LoadOptions = NULL;
2099 status = BS->UnloadImage(loaded_image);
2100 return (CMD_ERROR);
2101 }
2102
2103 return (CMD_ERROR); /* not reached */
2104 }
2105
2106 COMMAND_SET(chain, "chain", "chain load file", command_chain);
2107
2108 #if defined(LOADER_NET_SUPPORT)
2109 extern struct in_addr servip;
2110 static int
command_netserver(int argc,char * argv[])2111 command_netserver(int argc, char *argv[])
2112 {
2113 char *proto;
2114 n_long rootaddr;
2115
2116 if (argc > 2) {
2117 command_errmsg = "wrong number of arguments";
2118 return (CMD_ERROR);
2119 }
2120 if (argc < 2) {
2121 proto = netproto == NET_TFTP ? "tftp://" : "nfs://";
2122 printf("Netserver URI: %s%s%s\n", proto, intoa(rootip.s_addr),
2123 rootpath);
2124 return (CMD_OK);
2125 }
2126 if (argc == 2) {
2127 strncpy(rootpath, argv[1], sizeof(rootpath));
2128 rootpath[sizeof(rootpath) -1] = '\0';
2129 if ((rootaddr = net_parse_rootpath()) != INADDR_NONE)
2130 servip.s_addr = rootip.s_addr = rootaddr;
2131 return (CMD_OK);
2132 }
2133 return (CMD_ERROR); /* not reached */
2134
2135 }
2136
2137 COMMAND_SET(netserver, "netserver", "change or display netserver URI",
2138 command_netserver);
2139 #endif
2140