2 * handle transition of Linux booting another kernel
3 * Copyright (C) 2002-2005 Eric Biederman <ebiederm@xmission.com>
5 * This source code is licensed under the GNU General Public License,
6 * Version 2. See the file COPYING for more details.
9 #define pr_fmt(fmt) "kexec: " fmt
12 #include <linux/kexec.h>
13 #include <linux/string.h>
14 #include <linux/gfp.h>
15 #include <linux/reboot.h>
16 #include <linux/numa.h>
17 #include <linux/ftrace.h>
19 #include <linux/suspend.h>
20 #include <linux/vmalloc.h>
23 #include <asm/pgtable.h>
24 #include <asm/tlbflush.h>
25 #include <asm/mmu_context.h>
26 #include <asm/io_apic.h>
27 #include <asm/debugreg.h>
28 #include <asm/kexec-bzimage64.h>
29 #include <asm/setup.h>
30 #include <asm/set_memory.h>
32 #ifdef CONFIG_KEXEC_FILE
33 static struct kexec_file_ops
*kexec_file_loaders
[] = {
38 static void free_transition_pgtable(struct kimage
*image
)
40 free_page((unsigned long)image
->arch
.p4d
);
41 free_page((unsigned long)image
->arch
.pud
);
42 free_page((unsigned long)image
->arch
.pmd
);
43 free_page((unsigned long)image
->arch
.pte
);
46 static int init_transition_pgtable(struct kimage
*image
, pgd_t
*pgd
)
52 unsigned long vaddr
, paddr
;
55 vaddr
= (unsigned long)relocate_kernel
;
56 paddr
= __pa(page_address(image
->control_code_page
)+PAGE_SIZE
);
57 pgd
+= pgd_index(vaddr
);
58 if (!pgd_present(*pgd
)) {
59 p4d
= (p4d_t
*)get_zeroed_page(GFP_KERNEL
);
62 image
->arch
.p4d
= p4d
;
63 set_pgd(pgd
, __pgd(__pa(p4d
) | _KERNPG_TABLE
));
65 p4d
= p4d_offset(pgd
, vaddr
);
66 if (!p4d_present(*p4d
)) {
67 pud
= (pud_t
*)get_zeroed_page(GFP_KERNEL
);
70 image
->arch
.pud
= pud
;
71 set_p4d(p4d
, __p4d(__pa(pud
) | _KERNPG_TABLE
));
73 pud
= pud_offset(p4d
, vaddr
);
74 if (!pud_present(*pud
)) {
75 pmd
= (pmd_t
*)get_zeroed_page(GFP_KERNEL
);
78 image
->arch
.pmd
= pmd
;
79 set_pud(pud
, __pud(__pa(pmd
) | _KERNPG_TABLE
));
81 pmd
= pmd_offset(pud
, vaddr
);
82 if (!pmd_present(*pmd
)) {
83 pte
= (pte_t
*)get_zeroed_page(GFP_KERNEL
);
86 image
->arch
.pte
= pte
;
87 set_pmd(pmd
, __pmd(__pa(pte
) | _KERNPG_TABLE
));
89 pte
= pte_offset_kernel(pmd
, vaddr
);
90 set_pte(pte
, pfn_pte(paddr
>> PAGE_SHIFT
, PAGE_KERNEL_EXEC_NOENC
));
93 free_transition_pgtable(image
);
97 static void *alloc_pgt_page(void *data
)
99 struct kimage
*image
= (struct kimage
*)data
;
103 page
= kimage_alloc_control_pages(image
, 0);
105 p
= page_address(page
);
112 static int init_pgtable(struct kimage
*image
, unsigned long start_pgtable
)
114 struct x86_mapping_info info
= {
115 .alloc_pgt_page
= alloc_pgt_page
,
117 .page_flag
= __PAGE_KERNEL_LARGE_EXEC
,
118 .kernpg_flag
= _KERNPG_TABLE_NOENC
,
120 unsigned long mstart
, mend
;
125 level4p
= (pgd_t
*)__va(start_pgtable
);
129 info
.direct_gbpages
= true;
131 for (i
= 0; i
< nr_pfn_mapped
; i
++) {
132 mstart
= pfn_mapped
[i
].start
<< PAGE_SHIFT
;
133 mend
= pfn_mapped
[i
].end
<< PAGE_SHIFT
;
135 result
= kernel_ident_mapping_init(&info
,
136 level4p
, mstart
, mend
);
142 * segments's mem ranges could be outside 0 ~ max_pfn,
143 * for example when jump back to original kernel from kexeced kernel.
144 * or first kernel is booted with user mem map, and second kernel
145 * could be loaded out of that range.
147 for (i
= 0; i
< image
->nr_segments
; i
++) {
148 mstart
= image
->segment
[i
].mem
;
149 mend
= mstart
+ image
->segment
[i
].memsz
;
151 result
= kernel_ident_mapping_init(&info
,
152 level4p
, mstart
, mend
);
158 return init_transition_pgtable(image
, level4p
);
161 static void set_idt(void *newidt
, u16 limit
)
163 struct desc_ptr curidt
;
165 /* x86-64 supports unaliged loads & stores */
167 curidt
.address
= (unsigned long)newidt
;
169 __asm__
__volatile__ (
176 static void set_gdt(void *newgdt
, u16 limit
)
178 struct desc_ptr curgdt
;
180 /* x86-64 supports unaligned loads & stores */
182 curgdt
.address
= (unsigned long)newgdt
;
184 __asm__
__volatile__ (
190 static void load_segments(void)
192 __asm__
__volatile__ (
198 : : "a" (__KERNEL_DS
) : "memory"
202 #ifdef CONFIG_KEXEC_FILE
203 /* Update purgatory as needed after various image segments have been prepared */
204 static int arch_update_purgatory(struct kimage
*image
)
208 if (!image
->file_mode
)
211 /* Setup copying of backup region */
212 if (image
->type
== KEXEC_TYPE_CRASH
) {
213 ret
= kexec_purgatory_get_set_symbol(image
,
214 "purgatory_backup_dest",
215 &image
->arch
.backup_load_addr
,
216 sizeof(image
->arch
.backup_load_addr
), 0);
220 ret
= kexec_purgatory_get_set_symbol(image
,
221 "purgatory_backup_src",
222 &image
->arch
.backup_src_start
,
223 sizeof(image
->arch
.backup_src_start
), 0);
227 ret
= kexec_purgatory_get_set_symbol(image
,
228 "purgatory_backup_sz",
229 &image
->arch
.backup_src_sz
,
230 sizeof(image
->arch
.backup_src_sz
), 0);
237 #else /* !CONFIG_KEXEC_FILE */
238 static inline int arch_update_purgatory(struct kimage
*image
)
242 #endif /* CONFIG_KEXEC_FILE */
244 int machine_kexec_prepare(struct kimage
*image
)
246 unsigned long start_pgtable
;
249 /* Calculate the offsets */
250 start_pgtable
= page_to_pfn(image
->control_code_page
) << PAGE_SHIFT
;
252 /* Setup the identity mapped 64bit page table */
253 result
= init_pgtable(image
, start_pgtable
);
257 /* update purgatory as needed */
258 result
= arch_update_purgatory(image
);
265 void machine_kexec_cleanup(struct kimage
*image
)
267 free_transition_pgtable(image
);
271 * Do not allocate memory (or fail in any way) in machine_kexec().
272 * We are past the point of no return, committed to rebooting now.
274 void machine_kexec(struct kimage
*image
)
276 unsigned long page_list
[PAGES_NR
];
278 int save_ftrace_enabled
;
280 #ifdef CONFIG_KEXEC_JUMP
281 if (image
->preserve_context
)
282 save_processor_state();
285 save_ftrace_enabled
= __ftrace_enabled_save();
287 /* Interrupts aren't acceptable while we reboot */
289 hw_breakpoint_disable();
291 if (image
->preserve_context
) {
292 #ifdef CONFIG_X86_IO_APIC
294 * We need to put APICs in legacy mode so that we can
295 * get timer interrupts in second kernel. kexec/kdump
296 * paths already have calls to disable_IO_APIC() in
297 * one form or other. kexec jump path also need
304 control_page
= page_address(image
->control_code_page
) + PAGE_SIZE
;
305 memcpy(control_page
, relocate_kernel
, KEXEC_CONTROL_CODE_MAX_SIZE
);
307 page_list
[PA_CONTROL_PAGE
] = virt_to_phys(control_page
);
308 page_list
[VA_CONTROL_PAGE
] = (unsigned long)control_page
;
309 page_list
[PA_TABLE_PAGE
] =
310 (unsigned long)__pa(page_address(image
->control_code_page
));
312 if (image
->type
== KEXEC_TYPE_DEFAULT
)
313 page_list
[PA_SWAP_PAGE
] = (page_to_pfn(image
->swap_page
)
317 * The segment registers are funny things, they have both a
318 * visible and an invisible part. Whenever the visible part is
319 * set to a specific selector, the invisible part is loaded
320 * with from a table in memory. At no other time is the
321 * descriptor table in memory accessed.
323 * I take advantage of this here by force loading the
324 * segments, before I zap the gdt with an invalid value.
328 * The gdt & idt are now invalid.
329 * If you want to load them you must set up your own idt & gdt.
331 set_gdt(phys_to_virt(0), 0);
332 set_idt(phys_to_virt(0), 0);
335 image
->start
= relocate_kernel((unsigned long)image
->head
,
336 (unsigned long)page_list
,
338 image
->preserve_context
,
341 #ifdef CONFIG_KEXEC_JUMP
342 if (image
->preserve_context
)
343 restore_processor_state();
346 __ftrace_enabled_restore(save_ftrace_enabled
);
349 void arch_crash_save_vmcoreinfo(void)
351 VMCOREINFO_NUMBER(phys_base
);
352 VMCOREINFO_SYMBOL(init_top_pgt
);
355 VMCOREINFO_SYMBOL(node_data
);
356 VMCOREINFO_LENGTH(node_data
, MAX_NUMNODES
);
358 vmcoreinfo_append_str("KERNELOFFSET=%lx\n",
360 VMCOREINFO_NUMBER(KERNEL_IMAGE_SIZE
);
363 /* arch-dependent functionality related to kexec file-based syscall */
365 #ifdef CONFIG_KEXEC_FILE
366 int arch_kexec_kernel_image_probe(struct kimage
*image
, void *buf
,
367 unsigned long buf_len
)
369 int i
, ret
= -ENOEXEC
;
370 struct kexec_file_ops
*fops
;
372 for (i
= 0; i
< ARRAY_SIZE(kexec_file_loaders
); i
++) {
373 fops
= kexec_file_loaders
[i
];
374 if (!fops
|| !fops
->probe
)
377 ret
= fops
->probe(buf
, buf_len
);
387 void *arch_kexec_kernel_image_load(struct kimage
*image
)
389 vfree(image
->arch
.elf_headers
);
390 image
->arch
.elf_headers
= NULL
;
392 if (!image
->fops
|| !image
->fops
->load
)
393 return ERR_PTR(-ENOEXEC
);
395 return image
->fops
->load(image
, image
->kernel_buf
,
396 image
->kernel_buf_len
, image
->initrd_buf
,
397 image
->initrd_buf_len
, image
->cmdline_buf
,
398 image
->cmdline_buf_len
);
401 int arch_kimage_file_post_load_cleanup(struct kimage
*image
)
403 if (!image
->fops
|| !image
->fops
->cleanup
)
406 return image
->fops
->cleanup(image
->image_loader_data
);
409 #ifdef CONFIG_KEXEC_VERIFY_SIG
410 int arch_kexec_kernel_verify_sig(struct kimage
*image
, void *kernel
,
411 unsigned long kernel_len
)
413 if (!image
->fops
|| !image
->fops
->verify_sig
) {
414 pr_debug("kernel loader does not support signature verification.");
415 return -EKEYREJECTED
;
418 return image
->fops
->verify_sig(kernel
, kernel_len
);
423 * Apply purgatory relocations.
425 * ehdr: Pointer to elf headers
426 * sechdrs: Pointer to section headers.
427 * relsec: section index of SHT_RELA section.
429 * TODO: Some of the code belongs to generic code. Move that in kexec.c.
431 int arch_kexec_apply_relocations_add(const Elf64_Ehdr
*ehdr
,
432 Elf64_Shdr
*sechdrs
, unsigned int relsec
)
438 Elf64_Shdr
*section
, *symtabsec
;
439 unsigned long address
, sec_base
, value
;
440 const char *strtab
, *name
, *shstrtab
;
443 * ->sh_offset has been modified to keep the pointer to section
446 rel
= (void *)sechdrs
[relsec
].sh_offset
;
448 /* Section to which relocations apply */
449 section
= &sechdrs
[sechdrs
[relsec
].sh_info
];
451 pr_debug("Applying relocate section %u to %u\n", relsec
,
452 sechdrs
[relsec
].sh_info
);
454 /* Associated symbol table */
455 symtabsec
= &sechdrs
[sechdrs
[relsec
].sh_link
];
458 if (symtabsec
->sh_link
>= ehdr
->e_shnum
) {
459 /* Invalid strtab section number */
460 pr_err("Invalid string table section index %d\n",
465 strtab
= (char *)sechdrs
[symtabsec
->sh_link
].sh_offset
;
467 /* section header string table */
468 shstrtab
= (char *)sechdrs
[ehdr
->e_shstrndx
].sh_offset
;
470 for (i
= 0; i
< sechdrs
[relsec
].sh_size
/ sizeof(*rel
); i
++) {
473 * rel[i].r_offset contains byte offset from beginning
474 * of section to the storage unit affected.
476 * This is location to update (->sh_offset). This is temporary
477 * buffer where section is currently loaded. This will finally
478 * be loaded to a different address later, pointed to by
479 * ->sh_addr. kexec takes care of moving it
480 * (kexec_load_segment()).
482 location
= (void *)(section
->sh_offset
+ rel
[i
].r_offset
);
484 /* Final address of the location */
485 address
= section
->sh_addr
+ rel
[i
].r_offset
;
488 * rel[i].r_info contains information about symbol table index
489 * w.r.t which relocation must be made and type of relocation
490 * to apply. ELF64_R_SYM() and ELF64_R_TYPE() macros get
491 * these respectively.
493 sym
= (Elf64_Sym
*)symtabsec
->sh_offset
+
494 ELF64_R_SYM(rel
[i
].r_info
);
497 name
= strtab
+ sym
->st_name
;
499 name
= shstrtab
+ sechdrs
[sym
->st_shndx
].sh_name
;
501 pr_debug("Symbol: %s info: %02x shndx: %02x value=%llx size: %llx\n",
502 name
, sym
->st_info
, sym
->st_shndx
, sym
->st_value
,
505 if (sym
->st_shndx
== SHN_UNDEF
) {
506 pr_err("Undefined symbol: %s\n", name
);
510 if (sym
->st_shndx
== SHN_COMMON
) {
511 pr_err("symbol '%s' in common section\n", name
);
515 if (sym
->st_shndx
== SHN_ABS
)
517 else if (sym
->st_shndx
>= ehdr
->e_shnum
) {
518 pr_err("Invalid section %d for symbol %s\n",
519 sym
->st_shndx
, name
);
522 sec_base
= sechdrs
[sym
->st_shndx
].sh_addr
;
524 value
= sym
->st_value
;
526 value
+= rel
[i
].r_addend
;
528 switch (ELF64_R_TYPE(rel
[i
].r_info
)) {
532 *(u64
*)location
= value
;
535 *(u32
*)location
= value
;
536 if (value
!= *(u32
*)location
)
540 *(s32
*)location
= value
;
541 if ((s64
)value
!= *(s32
*)location
)
546 value
-= (u64
)address
;
547 *(u32
*)location
= value
;
550 pr_err("Unknown rela relocation: %llu\n",
551 ELF64_R_TYPE(rel
[i
].r_info
));
558 pr_err("Overflow in relocation type %d value 0x%lx\n",
559 (int)ELF64_R_TYPE(rel
[i
].r_info
), value
);
562 #endif /* CONFIG_KEXEC_FILE */
565 kexec_mark_range(unsigned long start
, unsigned long end
, bool protect
)
568 unsigned int nr_pages
;
571 * For physical range: [start, end]. We must skip the unassigned
572 * crashk resource with zero-valued "end" member.
574 if (!end
|| start
> end
)
577 page
= pfn_to_page(start
>> PAGE_SHIFT
);
578 nr_pages
= (end
>> PAGE_SHIFT
) - (start
>> PAGE_SHIFT
) + 1;
580 return set_pages_ro(page
, nr_pages
);
582 return set_pages_rw(page
, nr_pages
);
585 static void kexec_mark_crashkres(bool protect
)
587 unsigned long control
;
589 kexec_mark_range(crashk_low_res
.start
, crashk_low_res
.end
, protect
);
591 /* Don't touch the control code page used in crash_kexec().*/
592 control
= PFN_PHYS(page_to_pfn(kexec_crash_image
->control_code_page
));
593 /* Control code page is located in the 2nd page. */
594 kexec_mark_range(crashk_res
.start
, control
+ PAGE_SIZE
- 1, protect
);
595 control
+= KEXEC_CONTROL_PAGE_SIZE
;
596 kexec_mark_range(control
, crashk_res
.end
, protect
);
599 void arch_kexec_protect_crashkres(void)
601 kexec_mark_crashkres(true);
604 void arch_kexec_unprotect_crashkres(void)
606 kexec_mark_crashkres(false);
609 int arch_kexec_post_alloc_pages(void *vaddr
, unsigned int pages
, gfp_t gfp
)
612 * If SME is active we need to be sure that kexec pages are
613 * not encrypted because when we boot to the new kernel the
614 * pages won't be accessed encrypted (initially).
616 return set_memory_decrypted((unsigned long)vaddr
, pages
);
619 void arch_kexec_pre_free_pages(void *vaddr
, unsigned int pages
)
622 * If SME is active we need to reset the pages back to being
623 * an encrypted mapping before freeing them.
625 set_memory_encrypted((unsigned long)vaddr
, pages
);