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40b0b3f8 1// SPDX-License-Identifier: GPL-2.0-only
a43cac0d
DY
2/*
3 * kexec: kexec_file_load system call
4 *
5 * Copyright (C) 2014 Red Hat Inc.
6 * Authors:
7 * Vivek Goyal <vgoyal@redhat.com>
a43cac0d
DY
8 */
9
de90a6bc
MH
10#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
11
a43cac0d
DY
12#include <linux/capability.h>
13#include <linux/mm.h>
14#include <linux/file.h>
15#include <linux/slab.h>
16#include <linux/kexec.h>
735c2f90 17#include <linux/memblock.h>
a43cac0d
DY
18#include <linux/mutex.h>
19#include <linux/list.h>
b804defe 20#include <linux/fs.h>
7b8589cc 21#include <linux/ima.h>
a43cac0d 22#include <crypto/hash.h>
a24d22b2 23#include <crypto/sha2.h>
babac4a8
AT
24#include <linux/elf.h>
25#include <linux/elfcore.h>
26#include <linux/kernel.h>
b89999d0 27#include <linux/kernel_read_file.h>
a43cac0d
DY
28#include <linux/syscalls.h>
29#include <linux/vmalloc.h>
30#include "kexec_internal.h"
31
1f10f3b3
CX
32#ifdef CONFIG_KEXEC_SIG
33static bool sig_enforce = IS_ENABLED(CONFIG_KEXEC_SIG_FORCE);
34
35void set_kexec_sig_enforced(void)
36{
37 sig_enforce = true;
38}
39#endif
40
a43cac0d
DY
41static int kexec_calculate_store_digests(struct kimage *image);
42
9ec4ecef
AT
43/*
44 * Currently this is the only default function that is exported as some
45 * architectures need it to do additional handlings.
46 * In the future, other default functions may be exported too if required.
47 */
48int kexec_image_probe_default(struct kimage *image, void *buf,
49 unsigned long buf_len)
50{
51 const struct kexec_file_ops * const *fops;
52 int ret = -ENOEXEC;
53
54 for (fops = &kexec_file_loaders[0]; *fops && (*fops)->probe; ++fops) {
55 ret = (*fops)->probe(buf, buf_len);
56 if (!ret) {
57 image->fops = *fops;
58 return ret;
59 }
60 }
61
62 return ret;
63}
64
a43cac0d
DY
65/* Architectures can provide this probe function */
66int __weak arch_kexec_kernel_image_probe(struct kimage *image, void *buf,
67 unsigned long buf_len)
68{
9ec4ecef
AT
69 return kexec_image_probe_default(image, buf, buf_len);
70}
71
72static void *kexec_image_load_default(struct kimage *image)
73{
74 if (!image->fops || !image->fops->load)
75 return ERR_PTR(-ENOEXEC);
76
77 return image->fops->load(image, image->kernel_buf,
78 image->kernel_buf_len, image->initrd_buf,
79 image->initrd_buf_len, image->cmdline_buf,
80 image->cmdline_buf_len);
a43cac0d
DY
81}
82
83void * __weak arch_kexec_kernel_image_load(struct kimage *image)
84{
9ec4ecef
AT
85 return kexec_image_load_default(image);
86}
87
92a98a2b 88int kexec_image_post_load_cleanup_default(struct kimage *image)
9ec4ecef
AT
89{
90 if (!image->fops || !image->fops->cleanup)
91 return 0;
92
93 return image->fops->cleanup(image->image_loader_data);
a43cac0d
DY
94}
95
96int __weak arch_kimage_file_post_load_cleanup(struct kimage *image)
97{
9ec4ecef 98 return kexec_image_post_load_cleanup_default(image);
a43cac0d
DY
99}
100
99d5cadf 101#ifdef CONFIG_KEXEC_SIG
9ec4ecef
AT
102static int kexec_image_verify_sig_default(struct kimage *image, void *buf,
103 unsigned long buf_len)
104{
105 if (!image->fops || !image->fops->verify_sig) {
106 pr_debug("kernel loader does not support signature verification.\n");
107 return -EKEYREJECTED;
108 }
109
110 return image->fops->verify_sig(buf, buf_len);
111}
112
a43cac0d
DY
113int __weak arch_kexec_kernel_verify_sig(struct kimage *image, void *buf,
114 unsigned long buf_len)
115{
9ec4ecef 116 return kexec_image_verify_sig_default(image, buf, buf_len);
a43cac0d 117}
978e30c9 118#endif
a43cac0d 119
a43cac0d
DY
120/*
121 * Free up memory used by kernel, initrd, and command line. This is temporary
122 * memory allocation which is not needed any more after these buffers have
123 * been loaded into separate segments and have been copied elsewhere.
124 */
125void kimage_file_post_load_cleanup(struct kimage *image)
126{
127 struct purgatory_info *pi = &image->purgatory_info;
128
129 vfree(image->kernel_buf);
130 image->kernel_buf = NULL;
131
132 vfree(image->initrd_buf);
133 image->initrd_buf = NULL;
134
135 kfree(image->cmdline_buf);
136 image->cmdline_buf = NULL;
137
138 vfree(pi->purgatory_buf);
139 pi->purgatory_buf = NULL;
140
141 vfree(pi->sechdrs);
142 pi->sechdrs = NULL;
143
f31e3386
LR
144#ifdef CONFIG_IMA_KEXEC
145 vfree(image->ima_buffer);
146 image->ima_buffer = NULL;
147#endif /* CONFIG_IMA_KEXEC */
148
a43cac0d
DY
149 /* See if architecture has anything to cleanup post load */
150 arch_kimage_file_post_load_cleanup(image);
151
152 /*
153 * Above call should have called into bootloader to free up
154 * any data stored in kimage->image_loader_data. It should
155 * be ok now to free it up.
156 */
157 kfree(image->image_loader_data);
158 image->image_loader_data = NULL;
159}
160
99d5cadf
JB
161#ifdef CONFIG_KEXEC_SIG
162static int
163kimage_validate_signature(struct kimage *image)
164{
99d5cadf
JB
165 int ret;
166
167 ret = arch_kexec_kernel_verify_sig(image, image->kernel_buf,
168 image->kernel_buf_len);
fd7af71b 169 if (ret) {
99d5cadf 170
1f10f3b3 171 if (sig_enforce) {
fd7af71b 172 pr_notice("Enforced kernel signature verification failed (%d).\n", ret);
99d5cadf
JB
173 return ret;
174 }
175
fd7af71b
LJ
176 /*
177 * If IMA is guaranteed to appraise a signature on the kexec
29d3c1c8
MG
178 * image, permit it even if the kernel is otherwise locked
179 * down.
180 */
181 if (!ima_appraise_signature(READING_KEXEC_IMAGE) &&
182 security_locked_down(LOCKDOWN_KEXEC))
183 return -EPERM;
184
fd7af71b 185 pr_debug("kernel signature verification failed (%d).\n", ret);
99d5cadf
JB
186 }
187
fd7af71b 188 return 0;
99d5cadf
JB
189}
190#endif
191
a43cac0d
DY
192/*
193 * In file mode list of segments is prepared by kernel. Copy relevant
194 * data from user space, do error checking, prepare segment list
195 */
196static int
197kimage_file_prepare_segments(struct kimage *image, int kernel_fd, int initrd_fd,
198 const char __user *cmdline_ptr,
199 unsigned long cmdline_len, unsigned flags)
200{
99d5cadf 201 int ret;
a43cac0d
DY
202 void *ldata;
203
0fa8e084 204 ret = kernel_read_file_from_fd(kernel_fd, 0, &image->kernel_buf,
88535288 205 INT_MAX, NULL, READING_KEXEC_IMAGE);
f7a4f689 206 if (ret < 0)
a43cac0d 207 return ret;
f7a4f689 208 image->kernel_buf_len = ret;
a43cac0d
DY
209
210 /* Call arch image probe handlers */
211 ret = arch_kexec_kernel_image_probe(image, image->kernel_buf,
212 image->kernel_buf_len);
a43cac0d
DY
213 if (ret)
214 goto out;
215
99d5cadf
JB
216#ifdef CONFIG_KEXEC_SIG
217 ret = kimage_validate_signature(image);
218
219 if (ret)
a43cac0d 220 goto out;
a43cac0d
DY
221#endif
222 /* It is possible that there no initramfs is being loaded */
223 if (!(flags & KEXEC_FILE_NO_INITRAMFS)) {
0fa8e084 224 ret = kernel_read_file_from_fd(initrd_fd, 0, &image->initrd_buf,
88535288 225 INT_MAX, NULL,
b804defe 226 READING_KEXEC_INITRAMFS);
f7a4f689 227 if (ret < 0)
a43cac0d 228 goto out;
f7a4f689
KC
229 image->initrd_buf_len = ret;
230 ret = 0;
a43cac0d
DY
231 }
232
233 if (cmdline_len) {
a9bd8dfa
AV
234 image->cmdline_buf = memdup_user(cmdline_ptr, cmdline_len);
235 if (IS_ERR(image->cmdline_buf)) {
236 ret = PTR_ERR(image->cmdline_buf);
237 image->cmdline_buf = NULL;
a43cac0d
DY
238 goto out;
239 }
240
241 image->cmdline_buf_len = cmdline_len;
242
243 /* command line should be a string with last byte null */
244 if (image->cmdline_buf[cmdline_len - 1] != '\0') {
245 ret = -EINVAL;
246 goto out;
247 }
6a31fcd4 248
4834177e 249 ima_kexec_cmdline(kernel_fd, image->cmdline_buf,
6a31fcd4 250 image->cmdline_buf_len - 1);
a43cac0d
DY
251 }
252
6a31fcd4
PS
253 /* IMA needs to pass the measurement list to the next kernel. */
254 ima_add_kexec_buffer(image);
255
a43cac0d
DY
256 /* Call arch image load handlers */
257 ldata = arch_kexec_kernel_image_load(image);
258
259 if (IS_ERR(ldata)) {
260 ret = PTR_ERR(ldata);
261 goto out;
262 }
263
264 image->image_loader_data = ldata;
265out:
266 /* In case of error, free up all allocated memory in this function */
267 if (ret)
268 kimage_file_post_load_cleanup(image);
269 return ret;
270}
271
272static int
273kimage_file_alloc_init(struct kimage **rimage, int kernel_fd,
274 int initrd_fd, const char __user *cmdline_ptr,
275 unsigned long cmdline_len, unsigned long flags)
276{
277 int ret;
278 struct kimage *image;
279 bool kexec_on_panic = flags & KEXEC_FILE_ON_CRASH;
280
281 image = do_kimage_alloc_init();
282 if (!image)
283 return -ENOMEM;
284
285 image->file_mode = 1;
286
287 if (kexec_on_panic) {
288 /* Enable special crash kernel control page alloc policy. */
289 image->control_page = crashk_res.start;
290 image->type = KEXEC_TYPE_CRASH;
291 }
292
293 ret = kimage_file_prepare_segments(image, kernel_fd, initrd_fd,
294 cmdline_ptr, cmdline_len, flags);
295 if (ret)
296 goto out_free_image;
297
298 ret = sanity_check_segment_list(image);
299 if (ret)
300 goto out_free_post_load_bufs;
301
302 ret = -ENOMEM;
303 image->control_code_page = kimage_alloc_control_pages(image,
304 get_order(KEXEC_CONTROL_PAGE_SIZE));
305 if (!image->control_code_page) {
306 pr_err("Could not allocate control_code_buffer\n");
307 goto out_free_post_load_bufs;
308 }
309
310 if (!kexec_on_panic) {
311 image->swap_page = kimage_alloc_control_pages(image, 0);
312 if (!image->swap_page) {
313 pr_err("Could not allocate swap buffer\n");
314 goto out_free_control_pages;
315 }
316 }
317
318 *rimage = image;
319 return 0;
320out_free_control_pages:
321 kimage_free_page_list(&image->control_pages);
322out_free_post_load_bufs:
323 kimage_file_post_load_cleanup(image);
324out_free_image:
325 kfree(image);
326 return ret;
327}
328
329SYSCALL_DEFINE5(kexec_file_load, int, kernel_fd, int, initrd_fd,
330 unsigned long, cmdline_len, const char __user *, cmdline_ptr,
331 unsigned long, flags)
332{
333 int ret = 0, i;
334 struct kimage **dest_image, *image;
335
336 /* We only trust the superuser with rebooting the system. */
337 if (!capable(CAP_SYS_BOOT) || kexec_load_disabled)
338 return -EPERM;
339
340 /* Make sure we have a legal set of flags */
341 if (flags != (flags & KEXEC_FILE_FLAGS))
342 return -EINVAL;
343
344 image = NULL;
345
346 if (!mutex_trylock(&kexec_mutex))
347 return -EBUSY;
348
349 dest_image = &kexec_image;
9b492cf5 350 if (flags & KEXEC_FILE_ON_CRASH) {
a43cac0d 351 dest_image = &kexec_crash_image;
9b492cf5
XP
352 if (kexec_crash_image)
353 arch_kexec_unprotect_crashkres();
354 }
a43cac0d
DY
355
356 if (flags & KEXEC_FILE_UNLOAD)
357 goto exchange;
358
359 /*
360 * In case of crash, new kernel gets loaded in reserved region. It is
361 * same memory where old crash kernel might be loaded. Free any
362 * current crash dump kernel before we corrupt it.
363 */
364 if (flags & KEXEC_FILE_ON_CRASH)
365 kimage_free(xchg(&kexec_crash_image, NULL));
366
367 ret = kimage_file_alloc_init(&image, kernel_fd, initrd_fd, cmdline_ptr,
368 cmdline_len, flags);
369 if (ret)
370 goto out;
371
372 ret = machine_kexec_prepare(image);
373 if (ret)
374 goto out;
375
1229384f
XP
376 /*
377 * Some architecture(like S390) may touch the crash memory before
378 * machine_kexec_prepare(), we must copy vmcoreinfo data after it.
379 */
380 ret = kimage_crash_copy_vmcoreinfo(image);
381 if (ret)
382 goto out;
383
a43cac0d
DY
384 ret = kexec_calculate_store_digests(image);
385 if (ret)
386 goto out;
387
388 for (i = 0; i < image->nr_segments; i++) {
389 struct kexec_segment *ksegment;
390
391 ksegment = &image->segment[i];
392 pr_debug("Loading segment %d: buf=0x%p bufsz=0x%zx mem=0x%lx memsz=0x%zx\n",
393 i, ksegment->buf, ksegment->bufsz, ksegment->mem,
394 ksegment->memsz);
395
396 ret = kimage_load_segment(image, &image->segment[i]);
397 if (ret)
398 goto out;
399 }
400
401 kimage_terminate(image);
402
de68e4da
PT
403 ret = machine_kexec_post_load(image);
404 if (ret)
405 goto out;
406
a43cac0d
DY
407 /*
408 * Free up any temporary buffers allocated which are not needed
409 * after image has been loaded
410 */
411 kimage_file_post_load_cleanup(image);
412exchange:
413 image = xchg(dest_image, image);
414out:
9b492cf5
XP
415 if ((flags & KEXEC_FILE_ON_CRASH) && kexec_crash_image)
416 arch_kexec_protect_crashkres();
417
a43cac0d
DY
418 mutex_unlock(&kexec_mutex);
419 kimage_free(image);
420 return ret;
421}
422
423static int locate_mem_hole_top_down(unsigned long start, unsigned long end,
424 struct kexec_buf *kbuf)
425{
426 struct kimage *image = kbuf->image;
427 unsigned long temp_start, temp_end;
428
429 temp_end = min(end, kbuf->buf_max);
430 temp_start = temp_end - kbuf->memsz;
431
432 do {
433 /* align down start */
434 temp_start = temp_start & (~(kbuf->buf_align - 1));
435
436 if (temp_start < start || temp_start < kbuf->buf_min)
437 return 0;
438
439 temp_end = temp_start + kbuf->memsz - 1;
440
441 /*
442 * Make sure this does not conflict with any of existing
443 * segments
444 */
445 if (kimage_is_destination_range(image, temp_start, temp_end)) {
446 temp_start = temp_start - PAGE_SIZE;
447 continue;
448 }
449
450 /* We found a suitable memory range */
451 break;
452 } while (1);
453
454 /* If we are here, we found a suitable memory range */
455 kbuf->mem = temp_start;
456
457 /* Success, stop navigating through remaining System RAM ranges */
458 return 1;
459}
460
461static int locate_mem_hole_bottom_up(unsigned long start, unsigned long end,
462 struct kexec_buf *kbuf)
463{
464 struct kimage *image = kbuf->image;
465 unsigned long temp_start, temp_end;
466
467 temp_start = max(start, kbuf->buf_min);
468
469 do {
470 temp_start = ALIGN(temp_start, kbuf->buf_align);
471 temp_end = temp_start + kbuf->memsz - 1;
472
473 if (temp_end > end || temp_end > kbuf->buf_max)
474 return 0;
475 /*
476 * Make sure this does not conflict with any of existing
477 * segments
478 */
479 if (kimage_is_destination_range(image, temp_start, temp_end)) {
480 temp_start = temp_start + PAGE_SIZE;
481 continue;
482 }
483
484 /* We found a suitable memory range */
485 break;
486 } while (1);
487
488 /* If we are here, we found a suitable memory range */
489 kbuf->mem = temp_start;
490
491 /* Success, stop navigating through remaining System RAM ranges */
492 return 1;
493}
494
1d2e733b 495static int locate_mem_hole_callback(struct resource *res, void *arg)
a43cac0d
DY
496{
497 struct kexec_buf *kbuf = (struct kexec_buf *)arg;
1d2e733b 498 u64 start = res->start, end = res->end;
a43cac0d
DY
499 unsigned long sz = end - start + 1;
500
501 /* Returning 0 will take to next memory range */
3fe4f499
DH
502
503 /* Don't use memory that will be detected and handled by a driver. */
7cf603d1 504 if (res->flags & IORESOURCE_SYSRAM_DRIVER_MANAGED)
3fe4f499
DH
505 return 0;
506
a43cac0d
DY
507 if (sz < kbuf->memsz)
508 return 0;
509
510 if (end < kbuf->buf_min || start > kbuf->buf_max)
511 return 0;
512
513 /*
514 * Allocate memory top down with-in ram range. Otherwise bottom up
515 * allocation.
516 */
517 if (kbuf->top_down)
518 return locate_mem_hole_top_down(start, end, kbuf);
519 return locate_mem_hole_bottom_up(start, end, kbuf);
520}
521
350e88ba 522#ifdef CONFIG_ARCH_KEEP_MEMBLOCK
735c2f90
AT
523static int kexec_walk_memblock(struct kexec_buf *kbuf,
524 int (*func)(struct resource *, void *))
525{
526 int ret = 0;
527 u64 i;
528 phys_addr_t mstart, mend;
529 struct resource res = { };
530
497e1858
AT
531 if (kbuf->image->type == KEXEC_TYPE_CRASH)
532 return func(&crashk_res, kbuf);
533
735c2f90 534 if (kbuf->top_down) {
497e1858 535 for_each_free_mem_range_reverse(i, NUMA_NO_NODE, MEMBLOCK_NONE,
735c2f90
AT
536 &mstart, &mend, NULL) {
537 /*
538 * In memblock, end points to the first byte after the
539 * range while in kexec, end points to the last byte
540 * in the range.
541 */
542 res.start = mstart;
543 res.end = mend - 1;
544 ret = func(&res, kbuf);
545 if (ret)
546 break;
547 }
548 } else {
497e1858
AT
549 for_each_free_mem_range(i, NUMA_NO_NODE, MEMBLOCK_NONE,
550 &mstart, &mend, NULL) {
735c2f90
AT
551 /*
552 * In memblock, end points to the first byte after the
553 * range while in kexec, end points to the last byte
554 * in the range.
555 */
556 res.start = mstart;
557 res.end = mend - 1;
558 ret = func(&res, kbuf);
559 if (ret)
560 break;
561 }
562 }
563
564 return ret;
565}
350e88ba
MR
566#else
567static int kexec_walk_memblock(struct kexec_buf *kbuf,
568 int (*func)(struct resource *, void *))
569{
570 return 0;
571}
735c2f90
AT
572#endif
573
60fe3910 574/**
735c2f90 575 * kexec_walk_resources - call func(data) on free memory regions
60fe3910
TJB
576 * @kbuf: Context info for the search. Also passed to @func.
577 * @func: Function to call for each memory region.
578 *
579 * Return: The memory walk will stop when func returns a non-zero value
580 * and that value will be returned. If all free regions are visited without
581 * func returning non-zero, then zero will be returned.
582 */
735c2f90
AT
583static int kexec_walk_resources(struct kexec_buf *kbuf,
584 int (*func)(struct resource *, void *))
60fe3910
TJB
585{
586 if (kbuf->image->type == KEXEC_TYPE_CRASH)
587 return walk_iomem_res_desc(crashk_res.desc,
588 IORESOURCE_SYSTEM_RAM | IORESOURCE_BUSY,
589 crashk_res.start, crashk_res.end,
590 kbuf, func);
591 else
592 return walk_system_ram_res(0, ULONG_MAX, kbuf, func);
593}
594
e2e806f9
TJB
595/**
596 * kexec_locate_mem_hole - find free memory for the purgatory or the next kernel
597 * @kbuf: Parameters for the memory search.
598 *
599 * On success, kbuf->mem will have the start address of the memory region found.
600 *
601 * Return: 0 on success, negative errno on error.
602 */
603int kexec_locate_mem_hole(struct kexec_buf *kbuf)
604{
605 int ret;
606
b6664ba4
AT
607 /* Arch knows where to place */
608 if (kbuf->mem != KEXEC_BUF_MEM_UNKNOWN)
609 return 0;
610
350e88ba 611 if (!IS_ENABLED(CONFIG_ARCH_KEEP_MEMBLOCK))
735c2f90
AT
612 ret = kexec_walk_resources(kbuf, locate_mem_hole_callback);
613 else
614 ret = kexec_walk_memblock(kbuf, locate_mem_hole_callback);
e2e806f9
TJB
615
616 return ret == 1 ? 0 : -EADDRNOTAVAIL;
617}
618
f891f197
HB
619/**
620 * arch_kexec_locate_mem_hole - Find free memory to place the segments.
621 * @kbuf: Parameters for the memory search.
622 *
623 * On success, kbuf->mem will have the start address of the memory region found.
624 *
625 * Return: 0 on success, negative errno on error.
626 */
627int __weak arch_kexec_locate_mem_hole(struct kexec_buf *kbuf)
628{
629 return kexec_locate_mem_hole(kbuf);
630}
631
ec2b9bfa
TJB
632/**
633 * kexec_add_buffer - place a buffer in a kexec segment
634 * @kbuf: Buffer contents and memory parameters.
635 *
636 * This function assumes that kexec_mutex is held.
637 * On successful return, @kbuf->mem will have the physical address of
638 * the buffer in memory.
639 *
640 * Return: 0 on success, negative errno on error.
a43cac0d 641 */
ec2b9bfa 642int kexec_add_buffer(struct kexec_buf *kbuf)
a43cac0d 643{
a43cac0d 644 struct kexec_segment *ksegment;
a43cac0d
DY
645 int ret;
646
647 /* Currently adding segment this way is allowed only in file mode */
ec2b9bfa 648 if (!kbuf->image->file_mode)
a43cac0d
DY
649 return -EINVAL;
650
ec2b9bfa 651 if (kbuf->image->nr_segments >= KEXEC_SEGMENT_MAX)
a43cac0d
DY
652 return -EINVAL;
653
654 /*
655 * Make sure we are not trying to add buffer after allocating
656 * control pages. All segments need to be placed first before
657 * any control pages are allocated. As control page allocation
658 * logic goes through list of segments to make sure there are
659 * no destination overlaps.
660 */
ec2b9bfa 661 if (!list_empty(&kbuf->image->control_pages)) {
a43cac0d
DY
662 WARN_ON(1);
663 return -EINVAL;
664 }
665
ec2b9bfa
TJB
666 /* Ensure minimum alignment needed for segments. */
667 kbuf->memsz = ALIGN(kbuf->memsz, PAGE_SIZE);
668 kbuf->buf_align = max(kbuf->buf_align, PAGE_SIZE);
a43cac0d
DY
669
670 /* Walk the RAM ranges and allocate a suitable range for the buffer */
f891f197 671 ret = arch_kexec_locate_mem_hole(kbuf);
e2e806f9
TJB
672 if (ret)
673 return ret;
a43cac0d
DY
674
675 /* Found a suitable memory range */
ec2b9bfa 676 ksegment = &kbuf->image->segment[kbuf->image->nr_segments];
a43cac0d
DY
677 ksegment->kbuf = kbuf->buffer;
678 ksegment->bufsz = kbuf->bufsz;
679 ksegment->mem = kbuf->mem;
680 ksegment->memsz = kbuf->memsz;
ec2b9bfa 681 kbuf->image->nr_segments++;
a43cac0d
DY
682 return 0;
683}
684
685/* Calculate and store the digest of segments */
686static int kexec_calculate_store_digests(struct kimage *image)
687{
688 struct crypto_shash *tfm;
689 struct shash_desc *desc;
690 int ret = 0, i, j, zero_buf_sz, sha_region_sz;
691 size_t desc_size, nullsz;
692 char *digest;
693 void *zero_buf;
694 struct kexec_sha_region *sha_regions;
695 struct purgatory_info *pi = &image->purgatory_info;
696
b799a09f
AT
697 if (!IS_ENABLED(CONFIG_ARCH_HAS_KEXEC_PURGATORY))
698 return 0;
699
a43cac0d
DY
700 zero_buf = __va(page_to_pfn(ZERO_PAGE(0)) << PAGE_SHIFT);
701 zero_buf_sz = PAGE_SIZE;
702
703 tfm = crypto_alloc_shash("sha256", 0, 0);
704 if (IS_ERR(tfm)) {
705 ret = PTR_ERR(tfm);
706 goto out;
707 }
708
709 desc_size = crypto_shash_descsize(tfm) + sizeof(*desc);
710 desc = kzalloc(desc_size, GFP_KERNEL);
711 if (!desc) {
712 ret = -ENOMEM;
713 goto out_free_tfm;
714 }
715
716 sha_region_sz = KEXEC_SEGMENT_MAX * sizeof(struct kexec_sha_region);
717 sha_regions = vzalloc(sha_region_sz);
31d82c2c
JJB
718 if (!sha_regions) {
719 ret = -ENOMEM;
a43cac0d 720 goto out_free_desc;
31d82c2c 721 }
a43cac0d
DY
722
723 desc->tfm = tfm;
a43cac0d
DY
724
725 ret = crypto_shash_init(desc);
726 if (ret < 0)
727 goto out_free_sha_regions;
728
729 digest = kzalloc(SHA256_DIGEST_SIZE, GFP_KERNEL);
730 if (!digest) {
731 ret = -ENOMEM;
732 goto out_free_sha_regions;
733 }
734
735 for (j = i = 0; i < image->nr_segments; i++) {
736 struct kexec_segment *ksegment;
737
738 ksegment = &image->segment[i];
739 /*
740 * Skip purgatory as it will be modified once we put digest
741 * info in purgatory.
742 */
743 if (ksegment->kbuf == pi->purgatory_buf)
744 continue;
745
746 ret = crypto_shash_update(desc, ksegment->kbuf,
747 ksegment->bufsz);
748 if (ret)
749 break;
750
751 /*
752 * Assume rest of the buffer is filled with zero and
753 * update digest accordingly.
754 */
755 nullsz = ksegment->memsz - ksegment->bufsz;
756 while (nullsz) {
757 unsigned long bytes = nullsz;
758
759 if (bytes > zero_buf_sz)
760 bytes = zero_buf_sz;
761 ret = crypto_shash_update(desc, zero_buf, bytes);
762 if (ret)
763 break;
764 nullsz -= bytes;
765 }
766
767 if (ret)
768 break;
769
770 sha_regions[j].start = ksegment->mem;
771 sha_regions[j].len = ksegment->memsz;
772 j++;
773 }
774
775 if (!ret) {
776 ret = crypto_shash_final(desc, digest);
777 if (ret)
778 goto out_free_digest;
40c50c1f
TG
779 ret = kexec_purgatory_get_set_symbol(image, "purgatory_sha_regions",
780 sha_regions, sha_region_sz, 0);
a43cac0d
DY
781 if (ret)
782 goto out_free_digest;
783
40c50c1f
TG
784 ret = kexec_purgatory_get_set_symbol(image, "purgatory_sha256_digest",
785 digest, SHA256_DIGEST_SIZE, 0);
a43cac0d
DY
786 if (ret)
787 goto out_free_digest;
788 }
789
790out_free_digest:
791 kfree(digest);
792out_free_sha_regions:
793 vfree(sha_regions);
794out_free_desc:
795 kfree(desc);
796out_free_tfm:
797 kfree(tfm);
798out:
799 return ret;
800}
801
b799a09f 802#ifdef CONFIG_ARCH_HAS_KEXEC_PURGATORY
93045705
PR
803/*
804 * kexec_purgatory_setup_kbuf - prepare buffer to load purgatory.
805 * @pi: Purgatory to be loaded.
806 * @kbuf: Buffer to setup.
807 *
808 * Allocates the memory needed for the buffer. Caller is responsible to free
809 * the memory after use.
810 *
811 * Return: 0 on success, negative errno on error.
812 */
813static int kexec_purgatory_setup_kbuf(struct purgatory_info *pi,
814 struct kexec_buf *kbuf)
a43cac0d 815{
93045705
PR
816 const Elf_Shdr *sechdrs;
817 unsigned long bss_align;
818 unsigned long bss_sz;
819 unsigned long align;
820 int i, ret;
a43cac0d 821
93045705 822 sechdrs = (void *)pi->ehdr + pi->ehdr->e_shoff;
3be3f61d
PR
823 kbuf->buf_align = bss_align = 1;
824 kbuf->bufsz = bss_sz = 0;
93045705
PR
825
826 for (i = 0; i < pi->ehdr->e_shnum; i++) {
827 if (!(sechdrs[i].sh_flags & SHF_ALLOC))
828 continue;
829
830 align = sechdrs[i].sh_addralign;
831 if (sechdrs[i].sh_type != SHT_NOBITS) {
832 if (kbuf->buf_align < align)
833 kbuf->buf_align = align;
834 kbuf->bufsz = ALIGN(kbuf->bufsz, align);
835 kbuf->bufsz += sechdrs[i].sh_size;
836 } else {
837 if (bss_align < align)
838 bss_align = align;
839 bss_sz = ALIGN(bss_sz, align);
840 bss_sz += sechdrs[i].sh_size;
841 }
842 }
843 kbuf->bufsz = ALIGN(kbuf->bufsz, bss_align);
844 kbuf->memsz = kbuf->bufsz + bss_sz;
845 if (kbuf->buf_align < bss_align)
846 kbuf->buf_align = bss_align;
847
848 kbuf->buffer = vzalloc(kbuf->bufsz);
849 if (!kbuf->buffer)
850 return -ENOMEM;
851 pi->purgatory_buf = kbuf->buffer;
852
853 ret = kexec_add_buffer(kbuf);
854 if (ret)
855 goto out;
93045705
PR
856
857 return 0;
858out:
859 vfree(pi->purgatory_buf);
860 pi->purgatory_buf = NULL;
861 return ret;
862}
863
864/*
865 * kexec_purgatory_setup_sechdrs - prepares the pi->sechdrs buffer.
866 * @pi: Purgatory to be loaded.
867 * @kbuf: Buffer prepared to store purgatory.
868 *
869 * Allocates the memory needed for the buffer. Caller is responsible to free
870 * the memory after use.
871 *
872 * Return: 0 on success, negative errno on error.
873 */
874static int kexec_purgatory_setup_sechdrs(struct purgatory_info *pi,
875 struct kexec_buf *kbuf)
876{
93045705
PR
877 unsigned long bss_addr;
878 unsigned long offset;
93045705 879 Elf_Shdr *sechdrs;
93045705 880 int i;
a43cac0d 881
8da0b724
PR
882 /*
883 * The section headers in kexec_purgatory are read-only. In order to
884 * have them modifiable make a temporary copy.
885 */
fad953ce 886 sechdrs = vzalloc(array_size(sizeof(Elf_Shdr), pi->ehdr->e_shnum));
a43cac0d
DY
887 if (!sechdrs)
888 return -ENOMEM;
93045705
PR
889 memcpy(sechdrs, (void *)pi->ehdr + pi->ehdr->e_shoff,
890 pi->ehdr->e_shnum * sizeof(Elf_Shdr));
891 pi->sechdrs = sechdrs;
a43cac0d 892
620f697c
PR
893 offset = 0;
894 bss_addr = kbuf->mem + kbuf->bufsz;
f1b1cca3 895 kbuf->image->start = pi->ehdr->e_entry;
a43cac0d
DY
896
897 for (i = 0; i < pi->ehdr->e_shnum; i++) {
93045705 898 unsigned long align;
620f697c 899 void *src, *dst;
93045705 900
a43cac0d
DY
901 if (!(sechdrs[i].sh_flags & SHF_ALLOC))
902 continue;
903
904 align = sechdrs[i].sh_addralign;
f1b1cca3 905 if (sechdrs[i].sh_type == SHT_NOBITS) {
a43cac0d
DY
906 bss_addr = ALIGN(bss_addr, align);
907 sechdrs[i].sh_addr = bss_addr;
908 bss_addr += sechdrs[i].sh_size;
f1b1cca3
PR
909 continue;
910 }
911
620f697c 912 offset = ALIGN(offset, align);
f1b1cca3
PR
913 if (sechdrs[i].sh_flags & SHF_EXECINSTR &&
914 pi->ehdr->e_entry >= sechdrs[i].sh_addr &&
915 pi->ehdr->e_entry < (sechdrs[i].sh_addr
916 + sechdrs[i].sh_size)) {
917 kbuf->image->start -= sechdrs[i].sh_addr;
620f697c 918 kbuf->image->start += kbuf->mem + offset;
a43cac0d 919 }
a43cac0d 920
8da0b724 921 src = (void *)pi->ehdr + sechdrs[i].sh_offset;
620f697c
PR
922 dst = pi->purgatory_buf + offset;
923 memcpy(dst, src, sechdrs[i].sh_size);
924
925 sechdrs[i].sh_addr = kbuf->mem + offset;
8da0b724 926 sechdrs[i].sh_offset = offset;
620f697c 927 offset += sechdrs[i].sh_size;
f1b1cca3 928 }
a43cac0d 929
93045705 930 return 0;
a43cac0d
DY
931}
932
933static int kexec_apply_relocations(struct kimage *image)
934{
935 int i, ret;
936 struct purgatory_info *pi = &image->purgatory_info;
8aec395b
PR
937 const Elf_Shdr *sechdrs;
938
939 sechdrs = (void *)pi->ehdr + pi->ehdr->e_shoff;
a43cac0d 940
a43cac0d 941 for (i = 0; i < pi->ehdr->e_shnum; i++) {
8aec395b
PR
942 const Elf_Shdr *relsec;
943 const Elf_Shdr *symtab;
944 Elf_Shdr *section;
945
946 relsec = sechdrs + i;
a43cac0d 947
8aec395b
PR
948 if (relsec->sh_type != SHT_RELA &&
949 relsec->sh_type != SHT_REL)
a43cac0d
DY
950 continue;
951
952 /*
953 * For section of type SHT_RELA/SHT_REL,
954 * ->sh_link contains section header index of associated
955 * symbol table. And ->sh_info contains section header
956 * index of section to which relocations apply.
957 */
8aec395b
PR
958 if (relsec->sh_info >= pi->ehdr->e_shnum ||
959 relsec->sh_link >= pi->ehdr->e_shnum)
a43cac0d
DY
960 return -ENOEXEC;
961
8aec395b
PR
962 section = pi->sechdrs + relsec->sh_info;
963 symtab = sechdrs + relsec->sh_link;
a43cac0d
DY
964
965 if (!(section->sh_flags & SHF_ALLOC))
966 continue;
967
968 /*
969 * symtab->sh_link contain section header index of associated
970 * string table.
971 */
972 if (symtab->sh_link >= pi->ehdr->e_shnum)
973 /* Invalid section number? */
974 continue;
975
976 /*
977 * Respective architecture needs to provide support for applying
978 * relocations of type SHT_RELA/SHT_REL.
979 */
8aec395b
PR
980 if (relsec->sh_type == SHT_RELA)
981 ret = arch_kexec_apply_relocations_add(pi, section,
982 relsec, symtab);
983 else if (relsec->sh_type == SHT_REL)
984 ret = arch_kexec_apply_relocations(pi, section,
985 relsec, symtab);
a43cac0d
DY
986 if (ret)
987 return ret;
988 }
989
990 return 0;
991}
992
3be3f61d
PR
993/*
994 * kexec_load_purgatory - Load and relocate the purgatory object.
995 * @image: Image to add the purgatory to.
996 * @kbuf: Memory parameters to use.
997 *
998 * Allocates the memory needed for image->purgatory_info.sechdrs and
999 * image->purgatory_info.purgatory_buf/kbuf->buffer. Caller is responsible
1000 * to free the memory after use.
1001 *
1002 * Return: 0 on success, negative errno on error.
1003 */
1004int kexec_load_purgatory(struct kimage *image, struct kexec_buf *kbuf)
a43cac0d
DY
1005{
1006 struct purgatory_info *pi = &image->purgatory_info;
1007 int ret;
1008
1009 if (kexec_purgatory_size <= 0)
1010 return -EINVAL;
1011
65c225d3 1012 pi->ehdr = (const Elf_Ehdr *)kexec_purgatory;
a43cac0d 1013
3be3f61d 1014 ret = kexec_purgatory_setup_kbuf(pi, kbuf);
a43cac0d
DY
1015 if (ret)
1016 return ret;
1017
3be3f61d 1018 ret = kexec_purgatory_setup_sechdrs(pi, kbuf);
93045705
PR
1019 if (ret)
1020 goto out_free_kbuf;
1021
a43cac0d
DY
1022 ret = kexec_apply_relocations(image);
1023 if (ret)
1024 goto out;
1025
a43cac0d
DY
1026 return 0;
1027out:
1028 vfree(pi->sechdrs);
070c43ee 1029 pi->sechdrs = NULL;
93045705 1030out_free_kbuf:
a43cac0d 1031 vfree(pi->purgatory_buf);
070c43ee 1032 pi->purgatory_buf = NULL;
a43cac0d
DY
1033 return ret;
1034}
1035
961d921a
PR
1036/*
1037 * kexec_purgatory_find_symbol - find a symbol in the purgatory
1038 * @pi: Purgatory to search in.
1039 * @name: Name of the symbol.
1040 *
1041 * Return: pointer to symbol in read-only symtab on success, NULL on error.
1042 */
1043static const Elf_Sym *kexec_purgatory_find_symbol(struct purgatory_info *pi,
1044 const char *name)
a43cac0d 1045{
961d921a 1046 const Elf_Shdr *sechdrs;
65c225d3 1047 const Elf_Ehdr *ehdr;
961d921a 1048 const Elf_Sym *syms;
a43cac0d 1049 const char *strtab;
961d921a 1050 int i, k;
a43cac0d 1051
961d921a 1052 if (!pi->ehdr)
a43cac0d
DY
1053 return NULL;
1054
a43cac0d 1055 ehdr = pi->ehdr;
961d921a 1056 sechdrs = (void *)ehdr + ehdr->e_shoff;
a43cac0d
DY
1057
1058 for (i = 0; i < ehdr->e_shnum; i++) {
1059 if (sechdrs[i].sh_type != SHT_SYMTAB)
1060 continue;
1061
1062 if (sechdrs[i].sh_link >= ehdr->e_shnum)
1063 /* Invalid strtab section number */
1064 continue;
961d921a
PR
1065 strtab = (void *)ehdr + sechdrs[sechdrs[i].sh_link].sh_offset;
1066 syms = (void *)ehdr + sechdrs[i].sh_offset;
a43cac0d
DY
1067
1068 /* Go through symbols for a match */
1069 for (k = 0; k < sechdrs[i].sh_size/sizeof(Elf_Sym); k++) {
1070 if (ELF_ST_BIND(syms[k].st_info) != STB_GLOBAL)
1071 continue;
1072
1073 if (strcmp(strtab + syms[k].st_name, name) != 0)
1074 continue;
1075
1076 if (syms[k].st_shndx == SHN_UNDEF ||
1077 syms[k].st_shndx >= ehdr->e_shnum) {
1078 pr_debug("Symbol: %s has bad section index %d.\n",
1079 name, syms[k].st_shndx);
1080 return NULL;
1081 }
1082
1083 /* Found the symbol we are looking for */
1084 return &syms[k];
1085 }
1086 }
1087
1088 return NULL;
1089}
1090
1091void *kexec_purgatory_get_symbol_addr(struct kimage *image, const char *name)
1092{
1093 struct purgatory_info *pi = &image->purgatory_info;
961d921a 1094 const Elf_Sym *sym;
a43cac0d
DY
1095 Elf_Shdr *sechdr;
1096
1097 sym = kexec_purgatory_find_symbol(pi, name);
1098 if (!sym)
1099 return ERR_PTR(-EINVAL);
1100
1101 sechdr = &pi->sechdrs[sym->st_shndx];
1102
1103 /*
1104 * Returns the address where symbol will finally be loaded after
1105 * kexec_load_segment()
1106 */
1107 return (void *)(sechdr->sh_addr + sym->st_value);
1108}
1109
1110/*
1111 * Get or set value of a symbol. If "get_value" is true, symbol value is
1112 * returned in buf otherwise symbol value is set based on value in buf.
1113 */
1114int kexec_purgatory_get_set_symbol(struct kimage *image, const char *name,
1115 void *buf, unsigned int size, bool get_value)
1116{
a43cac0d 1117 struct purgatory_info *pi = &image->purgatory_info;
961d921a
PR
1118 const Elf_Sym *sym;
1119 Elf_Shdr *sec;
a43cac0d
DY
1120 char *sym_buf;
1121
1122 sym = kexec_purgatory_find_symbol(pi, name);
1123 if (!sym)
1124 return -EINVAL;
1125
1126 if (sym->st_size != size) {
1127 pr_err("symbol %s size mismatch: expected %lu actual %u\n",
1128 name, (unsigned long)sym->st_size, size);
1129 return -EINVAL;
1130 }
1131
961d921a 1132 sec = pi->sechdrs + sym->st_shndx;
a43cac0d 1133
961d921a 1134 if (sec->sh_type == SHT_NOBITS) {
a43cac0d
DY
1135 pr_err("symbol %s is in a bss section. Cannot %s\n", name,
1136 get_value ? "get" : "set");
1137 return -EINVAL;
1138 }
1139
8da0b724 1140 sym_buf = (char *)pi->purgatory_buf + sec->sh_offset + sym->st_value;
a43cac0d
DY
1141
1142 if (get_value)
1143 memcpy((void *)buf, sym_buf, size);
1144 else
1145 memcpy((void *)sym_buf, buf, size);
1146
1147 return 0;
1148}
b799a09f 1149#endif /* CONFIG_ARCH_HAS_KEXEC_PURGATORY */
babac4a8
AT
1150
1151int crash_exclude_mem_range(struct crash_mem *mem,
1152 unsigned long long mstart, unsigned long long mend)
1153{
1154 int i, j;
a2e9a95d 1155 unsigned long long start, end, p_start, p_end;
babac4a8
AT
1156 struct crash_mem_range temp_range = {0, 0};
1157
1158 for (i = 0; i < mem->nr_ranges; i++) {
1159 start = mem->ranges[i].start;
1160 end = mem->ranges[i].end;
a2e9a95d
LJ
1161 p_start = mstart;
1162 p_end = mend;
babac4a8
AT
1163
1164 if (mstart > end || mend < start)
1165 continue;
1166
1167 /* Truncate any area outside of range */
1168 if (mstart < start)
a2e9a95d 1169 p_start = start;
babac4a8 1170 if (mend > end)
a2e9a95d 1171 p_end = end;
babac4a8
AT
1172
1173 /* Found completely overlapping range */
a2e9a95d 1174 if (p_start == start && p_end == end) {
babac4a8
AT
1175 mem->ranges[i].start = 0;
1176 mem->ranges[i].end = 0;
1177 if (i < mem->nr_ranges - 1) {
1178 /* Shift rest of the ranges to left */
1179 for (j = i; j < mem->nr_ranges - 1; j++) {
1180 mem->ranges[j].start =
1181 mem->ranges[j+1].start;
1182 mem->ranges[j].end =
1183 mem->ranges[j+1].end;
1184 }
a2e9a95d
LJ
1185
1186 /*
1187 * Continue to check if there are another overlapping ranges
1188 * from the current position because of shifting the above
1189 * mem ranges.
1190 */
1191 i--;
1192 mem->nr_ranges--;
1193 continue;
babac4a8
AT
1194 }
1195 mem->nr_ranges--;
1196 return 0;
1197 }
1198
a2e9a95d 1199 if (p_start > start && p_end < end) {
babac4a8 1200 /* Split original range */
a2e9a95d
LJ
1201 mem->ranges[i].end = p_start - 1;
1202 temp_range.start = p_end + 1;
babac4a8 1203 temp_range.end = end;
a2e9a95d
LJ
1204 } else if (p_start != start)
1205 mem->ranges[i].end = p_start - 1;
babac4a8 1206 else
a2e9a95d 1207 mem->ranges[i].start = p_end + 1;
babac4a8
AT
1208 break;
1209 }
1210
1211 /* If a split happened, add the split to array */
1212 if (!temp_range.end)
1213 return 0;
1214
1215 /* Split happened */
1216 if (i == mem->max_nr_ranges - 1)
1217 return -ENOMEM;
1218
1219 /* Location where new range should go */
1220 j = i + 1;
1221 if (j < mem->nr_ranges) {
1222 /* Move over all ranges one slot towards the end */
1223 for (i = mem->nr_ranges - 1; i >= j; i--)
1224 mem->ranges[i + 1] = mem->ranges[i];
1225 }
1226
1227 mem->ranges[j].start = temp_range.start;
1228 mem->ranges[j].end = temp_range.end;
1229 mem->nr_ranges++;
1230 return 0;
1231}
1232
1233int crash_prepare_elf64_headers(struct crash_mem *mem, int kernel_map,
1234 void **addr, unsigned long *sz)
1235{
1236 Elf64_Ehdr *ehdr;
1237 Elf64_Phdr *phdr;
1238 unsigned long nr_cpus = num_possible_cpus(), nr_phdr, elf_sz;
1239 unsigned char *buf;
1240 unsigned int cpu, i;
1241 unsigned long long notes_addr;
1242 unsigned long mstart, mend;
1243
475f63ae 1244 /* extra phdr for vmcoreinfo ELF note */
babac4a8
AT
1245 nr_phdr = nr_cpus + 1;
1246 nr_phdr += mem->nr_ranges;
1247
1248 /*
1249 * kexec-tools creates an extra PT_LOAD phdr for kernel text mapping
1250 * area (for example, ffffffff80000000 - ffffffffa0000000 on x86_64).
1251 * I think this is required by tools like gdb. So same physical
475f63ae 1252 * memory will be mapped in two ELF headers. One will contain kernel
babac4a8
AT
1253 * text virtual addresses and other will have __va(physical) addresses.
1254 */
1255
1256 nr_phdr++;
1257 elf_sz = sizeof(Elf64_Ehdr) + nr_phdr * sizeof(Elf64_Phdr);
1258 elf_sz = ALIGN(elf_sz, ELF_CORE_HEADER_ALIGN);
1259
1260 buf = vzalloc(elf_sz);
1261 if (!buf)
1262 return -ENOMEM;
1263
1264 ehdr = (Elf64_Ehdr *)buf;
1265 phdr = (Elf64_Phdr *)(ehdr + 1);
1266 memcpy(ehdr->e_ident, ELFMAG, SELFMAG);
1267 ehdr->e_ident[EI_CLASS] = ELFCLASS64;
1268 ehdr->e_ident[EI_DATA] = ELFDATA2LSB;
1269 ehdr->e_ident[EI_VERSION] = EV_CURRENT;
1270 ehdr->e_ident[EI_OSABI] = ELF_OSABI;
1271 memset(ehdr->e_ident + EI_PAD, 0, EI_NIDENT - EI_PAD);
1272 ehdr->e_type = ET_CORE;
1273 ehdr->e_machine = ELF_ARCH;
1274 ehdr->e_version = EV_CURRENT;
1275 ehdr->e_phoff = sizeof(Elf64_Ehdr);
1276 ehdr->e_ehsize = sizeof(Elf64_Ehdr);
1277 ehdr->e_phentsize = sizeof(Elf64_Phdr);
1278
a2e9a95d 1279 /* Prepare one phdr of type PT_NOTE for each present CPU */
babac4a8
AT
1280 for_each_present_cpu(cpu) {
1281 phdr->p_type = PT_NOTE;
1282 notes_addr = per_cpu_ptr_to_phys(per_cpu_ptr(crash_notes, cpu));
1283 phdr->p_offset = phdr->p_paddr = notes_addr;
1284 phdr->p_filesz = phdr->p_memsz = sizeof(note_buf_t);
1285 (ehdr->e_phnum)++;
1286 phdr++;
1287 }
1288
1289 /* Prepare one PT_NOTE header for vmcoreinfo */
1290 phdr->p_type = PT_NOTE;
1291 phdr->p_offset = phdr->p_paddr = paddr_vmcoreinfo_note();
1292 phdr->p_filesz = phdr->p_memsz = VMCOREINFO_NOTE_SIZE;
1293 (ehdr->e_phnum)++;
1294 phdr++;
1295
1296 /* Prepare PT_LOAD type program header for kernel text region */
1297 if (kernel_map) {
1298 phdr->p_type = PT_LOAD;
1299 phdr->p_flags = PF_R|PF_W|PF_X;
f973cce0 1300 phdr->p_vaddr = (unsigned long) _text;
babac4a8
AT
1301 phdr->p_filesz = phdr->p_memsz = _end - _text;
1302 phdr->p_offset = phdr->p_paddr = __pa_symbol(_text);
1303 ehdr->e_phnum++;
1304 phdr++;
1305 }
1306
1307 /* Go through all the ranges in mem->ranges[] and prepare phdr */
1308 for (i = 0; i < mem->nr_ranges; i++) {
1309 mstart = mem->ranges[i].start;
1310 mend = mem->ranges[i].end;
1311
1312 phdr->p_type = PT_LOAD;
1313 phdr->p_flags = PF_R|PF_W|PF_X;
1314 phdr->p_offset = mstart;
1315
1316 phdr->p_paddr = mstart;
f973cce0 1317 phdr->p_vaddr = (unsigned long) __va(mstart);
babac4a8
AT
1318 phdr->p_filesz = phdr->p_memsz = mend - mstart + 1;
1319 phdr->p_align = 0;
1320 ehdr->e_phnum++;
475f63ae 1321 pr_debug("Crash PT_LOAD ELF header. phdr=%p vaddr=0x%llx, paddr=0x%llx, sz=0x%llx e_phnum=%d p_offset=0x%llx\n",
babac4a8
AT
1322 phdr, phdr->p_vaddr, phdr->p_paddr, phdr->p_filesz,
1323 ehdr->e_phnum, phdr->p_offset);
475f63ae 1324 phdr++;
babac4a8
AT
1325 }
1326
1327 *addr = buf;
1328 *sz = elf_sz;
1329 return 0;
1330}