2 * linux/fs/binfmt_elf.c
4 * These are the functions used to load ELF format executables as used
5 * on SVr4 machines. Information on the format may be found in the book
6 * "UNIX SYSTEM V RELEASE 4 Programmers Guide: Ansi C and Programming Support
9 * Copyright 1993, 1994: Eric Youngdale (ericy@cais.com).
12 #include <linux/module.h>
13 #include <linux/kernel.h>
16 #include <linux/mman.h>
17 #include <linux/errno.h>
18 #include <linux/signal.h>
19 #include <linux/binfmts.h>
20 #include <linux/string.h>
21 #include <linux/file.h>
22 #include <linux/slab.h>
23 #include <linux/personality.h>
24 #include <linux/elfcore.h>
25 #include <linux/init.h>
26 #include <linux/highuid.h>
27 #include <linux/compiler.h>
28 #include <linux/highmem.h>
29 #include <linux/pagemap.h>
30 #include <linux/vmalloc.h>
31 #include <linux/security.h>
32 #include <linux/random.h>
33 #include <linux/elf.h>
34 #include <linux/elf-randomize.h>
35 #include <linux/utsname.h>
36 #include <linux/coredump.h>
37 #include <linux/sched.h>
38 #include <linux/dax.h>
39 #include <asm/uaccess.h>
40 #include <asm/param.h>
44 #define user_long_t long
46 #ifndef user_siginfo_t
47 #define user_siginfo_t siginfo_t
50 static int load_elf_binary(struct linux_binprm
*bprm
);
51 static unsigned long elf_map(struct file
*, unsigned long, struct elf_phdr
*,
52 int, int, unsigned long);
55 static int load_elf_library(struct file
*);
57 #define load_elf_library NULL
61 * If we don't support core dumping, then supply a NULL so we
64 #ifdef CONFIG_ELF_CORE
65 static int elf_core_dump(struct coredump_params
*cprm
);
67 #define elf_core_dump NULL
70 #if ELF_EXEC_PAGESIZE > PAGE_SIZE
71 #define ELF_MIN_ALIGN ELF_EXEC_PAGESIZE
73 #define ELF_MIN_ALIGN PAGE_SIZE
76 #ifndef ELF_CORE_EFLAGS
77 #define ELF_CORE_EFLAGS 0
80 #define ELF_PAGESTART(_v) ((_v) & ~(unsigned long)(ELF_MIN_ALIGN-1))
81 #define ELF_PAGEOFFSET(_v) ((_v) & (ELF_MIN_ALIGN-1))
82 #define ELF_PAGEALIGN(_v) (((_v) + ELF_MIN_ALIGN - 1) & ~(ELF_MIN_ALIGN - 1))
84 static struct linux_binfmt elf_format
= {
85 .module
= THIS_MODULE
,
86 .load_binary
= load_elf_binary
,
87 .load_shlib
= load_elf_library
,
88 .core_dump
= elf_core_dump
,
89 .min_coredump
= ELF_EXEC_PAGESIZE
,
92 #define BAD_ADDR(x) ((unsigned long)(x) >= TASK_SIZE)
94 static int set_brk(unsigned long start
, unsigned long end
)
96 start
= ELF_PAGEALIGN(start
);
97 end
= ELF_PAGEALIGN(end
);
99 int error
= vm_brk(start
, end
- start
);
103 current
->mm
->start_brk
= current
->mm
->brk
= end
;
107 /* We need to explicitly zero any fractional pages
108 after the data section (i.e. bss). This would
109 contain the junk from the file that should not
112 static int padzero(unsigned long elf_bss
)
116 nbyte
= ELF_PAGEOFFSET(elf_bss
);
118 nbyte
= ELF_MIN_ALIGN
- nbyte
;
119 if (clear_user((void __user
*) elf_bss
, nbyte
))
125 /* Let's use some macros to make this stack manipulation a little clearer */
126 #ifdef CONFIG_STACK_GROWSUP
127 #define STACK_ADD(sp, items) ((elf_addr_t __user *)(sp) + (items))
128 #define STACK_ROUND(sp, items) \
129 ((15 + (unsigned long) ((sp) + (items))) &~ 15UL)
130 #define STACK_ALLOC(sp, len) ({ \
131 elf_addr_t __user *old_sp = (elf_addr_t __user *)sp; sp += len; \
134 #define STACK_ADD(sp, items) ((elf_addr_t __user *)(sp) - (items))
135 #define STACK_ROUND(sp, items) \
136 (((unsigned long) (sp - items)) &~ 15UL)
137 #define STACK_ALLOC(sp, len) ({ sp -= len ; sp; })
140 #ifndef ELF_BASE_PLATFORM
142 * AT_BASE_PLATFORM indicates the "real" hardware/microarchitecture.
143 * If the arch defines ELF_BASE_PLATFORM (in asm/elf.h), the value
144 * will be copied to the user stack in the same manner as AT_PLATFORM.
146 #define ELF_BASE_PLATFORM NULL
150 create_elf_tables(struct linux_binprm
*bprm
, struct elfhdr
*exec
,
151 unsigned long load_addr
, unsigned long interp_load_addr
)
153 unsigned long p
= bprm
->p
;
154 int argc
= bprm
->argc
;
155 int envc
= bprm
->envc
;
156 elf_addr_t __user
*argv
;
157 elf_addr_t __user
*envp
;
158 elf_addr_t __user
*sp
;
159 elf_addr_t __user
*u_platform
;
160 elf_addr_t __user
*u_base_platform
;
161 elf_addr_t __user
*u_rand_bytes
;
162 const char *k_platform
= ELF_PLATFORM
;
163 const char *k_base_platform
= ELF_BASE_PLATFORM
;
164 unsigned char k_rand_bytes
[16];
166 elf_addr_t
*elf_info
;
168 const struct cred
*cred
= current_cred();
169 struct vm_area_struct
*vma
;
172 * In some cases (e.g. Hyper-Threading), we want to avoid L1
173 * evictions by the processes running on the same package. One
174 * thing we can do is to shuffle the initial stack for them.
177 p
= arch_align_stack(p
);
180 * If this architecture has a platform capability string, copy it
181 * to userspace. In some cases (Sparc), this info is impossible
182 * for userspace to get any other way, in others (i386) it is
187 size_t len
= strlen(k_platform
) + 1;
189 u_platform
= (elf_addr_t __user
*)STACK_ALLOC(p
, len
);
190 if (__copy_to_user(u_platform
, k_platform
, len
))
195 * If this architecture has a "base" platform capability
196 * string, copy it to userspace.
198 u_base_platform
= NULL
;
199 if (k_base_platform
) {
200 size_t len
= strlen(k_base_platform
) + 1;
202 u_base_platform
= (elf_addr_t __user
*)STACK_ALLOC(p
, len
);
203 if (__copy_to_user(u_base_platform
, k_base_platform
, len
))
208 * Generate 16 random bytes for userspace PRNG seeding.
210 get_random_bytes(k_rand_bytes
, sizeof(k_rand_bytes
));
211 u_rand_bytes
= (elf_addr_t __user
*)
212 STACK_ALLOC(p
, sizeof(k_rand_bytes
));
213 if (__copy_to_user(u_rand_bytes
, k_rand_bytes
, sizeof(k_rand_bytes
)))
216 /* Create the ELF interpreter info */
217 elf_info
= (elf_addr_t
*)current
->mm
->saved_auxv
;
218 /* update AT_VECTOR_SIZE_BASE if the number of NEW_AUX_ENT() changes */
219 #define NEW_AUX_ENT(id, val) \
221 elf_info[ei_index++] = id; \
222 elf_info[ei_index++] = val; \
227 * ARCH_DLINFO must come first so PPC can do its special alignment of
229 * update AT_VECTOR_SIZE_ARCH if the number of NEW_AUX_ENT() in
230 * ARCH_DLINFO changes
234 NEW_AUX_ENT(AT_HWCAP
, ELF_HWCAP
);
235 NEW_AUX_ENT(AT_PAGESZ
, ELF_EXEC_PAGESIZE
);
236 NEW_AUX_ENT(AT_CLKTCK
, CLOCKS_PER_SEC
);
237 NEW_AUX_ENT(AT_PHDR
, load_addr
+ exec
->e_phoff
);
238 NEW_AUX_ENT(AT_PHENT
, sizeof(struct elf_phdr
));
239 NEW_AUX_ENT(AT_PHNUM
, exec
->e_phnum
);
240 NEW_AUX_ENT(AT_BASE
, interp_load_addr
);
241 NEW_AUX_ENT(AT_FLAGS
, 0);
242 NEW_AUX_ENT(AT_ENTRY
, exec
->e_entry
);
243 NEW_AUX_ENT(AT_UID
, from_kuid_munged(cred
->user_ns
, cred
->uid
));
244 NEW_AUX_ENT(AT_EUID
, from_kuid_munged(cred
->user_ns
, cred
->euid
));
245 NEW_AUX_ENT(AT_GID
, from_kgid_munged(cred
->user_ns
, cred
->gid
));
246 NEW_AUX_ENT(AT_EGID
, from_kgid_munged(cred
->user_ns
, cred
->egid
));
247 NEW_AUX_ENT(AT_SECURE
, security_bprm_secureexec(bprm
));
248 NEW_AUX_ENT(AT_RANDOM
, (elf_addr_t
)(unsigned long)u_rand_bytes
);
250 NEW_AUX_ENT(AT_HWCAP2
, ELF_HWCAP2
);
252 NEW_AUX_ENT(AT_EXECFN
, bprm
->exec
);
254 NEW_AUX_ENT(AT_PLATFORM
,
255 (elf_addr_t
)(unsigned long)u_platform
);
257 if (k_base_platform
) {
258 NEW_AUX_ENT(AT_BASE_PLATFORM
,
259 (elf_addr_t
)(unsigned long)u_base_platform
);
261 if (bprm
->interp_flags
& BINPRM_FLAGS_EXECFD
) {
262 NEW_AUX_ENT(AT_EXECFD
, bprm
->interp_data
);
265 /* AT_NULL is zero; clear the rest too */
266 memset(&elf_info
[ei_index
], 0,
267 sizeof current
->mm
->saved_auxv
- ei_index
* sizeof elf_info
[0]);
269 /* And advance past the AT_NULL entry. */
272 sp
= STACK_ADD(p
, ei_index
);
274 items
= (argc
+ 1) + (envc
+ 1) + 1;
275 bprm
->p
= STACK_ROUND(sp
, items
);
277 /* Point sp at the lowest address on the stack */
278 #ifdef CONFIG_STACK_GROWSUP
279 sp
= (elf_addr_t __user
*)bprm
->p
- items
- ei_index
;
280 bprm
->exec
= (unsigned long)sp
; /* XXX: PARISC HACK */
282 sp
= (elf_addr_t __user
*)bprm
->p
;
287 * Grow the stack manually; some architectures have a limit on how
288 * far ahead a user-space access may be in order to grow the stack.
290 vma
= find_extend_vma(current
->mm
, bprm
->p
);
294 /* Now, let's put argc (and argv, envp if appropriate) on the stack */
295 if (__put_user(argc
, sp
++))
298 envp
= argv
+ argc
+ 1;
300 /* Populate argv and envp */
301 p
= current
->mm
->arg_end
= current
->mm
->arg_start
;
304 if (__put_user((elf_addr_t
)p
, argv
++))
306 len
= strnlen_user((void __user
*)p
, MAX_ARG_STRLEN
);
307 if (!len
|| len
> MAX_ARG_STRLEN
)
311 if (__put_user(0, argv
))
313 current
->mm
->arg_end
= current
->mm
->env_start
= p
;
316 if (__put_user((elf_addr_t
)p
, envp
++))
318 len
= strnlen_user((void __user
*)p
, MAX_ARG_STRLEN
);
319 if (!len
|| len
> MAX_ARG_STRLEN
)
323 if (__put_user(0, envp
))
325 current
->mm
->env_end
= p
;
327 /* Put the elf_info on the stack in the right place. */
328 sp
= (elf_addr_t __user
*)envp
+ 1;
329 if (copy_to_user(sp
, elf_info
, ei_index
* sizeof(elf_addr_t
)))
336 static unsigned long elf_map(struct file
*filep
, unsigned long addr
,
337 struct elf_phdr
*eppnt
, int prot
, int type
,
338 unsigned long total_size
)
340 unsigned long map_addr
;
341 unsigned long size
= eppnt
->p_filesz
+ ELF_PAGEOFFSET(eppnt
->p_vaddr
);
342 unsigned long off
= eppnt
->p_offset
- ELF_PAGEOFFSET(eppnt
->p_vaddr
);
343 addr
= ELF_PAGESTART(addr
);
344 size
= ELF_PAGEALIGN(size
);
346 /* mmap() will return -EINVAL if given a zero size, but a
347 * segment with zero filesize is perfectly valid */
352 * total_size is the size of the ELF (interpreter) image.
353 * The _first_ mmap needs to know the full size, otherwise
354 * randomization might put this image into an overlapping
355 * position with the ELF binary image. (since size < total_size)
356 * So we first map the 'big' image - and unmap the remainder at
357 * the end. (which unmap is needed for ELF images with holes.)
360 total_size
= ELF_PAGEALIGN(total_size
);
361 map_addr
= vm_mmap(filep
, addr
, total_size
, prot
, type
, off
);
362 if (!BAD_ADDR(map_addr
))
363 vm_munmap(map_addr
+size
, total_size
-size
);
365 map_addr
= vm_mmap(filep
, addr
, size
, prot
, type
, off
);
370 #endif /* !elf_map */
372 static unsigned long total_mapping_size(struct elf_phdr
*cmds
, int nr
)
374 int i
, first_idx
= -1, last_idx
= -1;
376 for (i
= 0; i
< nr
; i
++) {
377 if (cmds
[i
].p_type
== PT_LOAD
) {
386 return cmds
[last_idx
].p_vaddr
+ cmds
[last_idx
].p_memsz
-
387 ELF_PAGESTART(cmds
[first_idx
].p_vaddr
);
391 * load_elf_phdrs() - load ELF program headers
392 * @elf_ex: ELF header of the binary whose program headers should be loaded
393 * @elf_file: the opened ELF binary file
395 * Loads ELF program headers from the binary file elf_file, which has the ELF
396 * header pointed to by elf_ex, into a newly allocated array. The caller is
397 * responsible for freeing the allocated data. Returns an ERR_PTR upon failure.
399 static struct elf_phdr
*load_elf_phdrs(struct elfhdr
*elf_ex
,
400 struct file
*elf_file
)
402 struct elf_phdr
*elf_phdata
= NULL
;
403 int retval
, size
, err
= -1;
406 * If the size of this structure has changed, then punt, since
407 * we will be doing the wrong thing.
409 if (elf_ex
->e_phentsize
!= sizeof(struct elf_phdr
))
412 /* Sanity check the number of program headers... */
413 if (elf_ex
->e_phnum
< 1 ||
414 elf_ex
->e_phnum
> 65536U / sizeof(struct elf_phdr
))
417 /* ...and their total size. */
418 size
= sizeof(struct elf_phdr
) * elf_ex
->e_phnum
;
419 if (size
> ELF_MIN_ALIGN
)
422 elf_phdata
= kmalloc(size
, GFP_KERNEL
);
426 /* Read in the program headers */
427 retval
= kernel_read(elf_file
, elf_ex
->e_phoff
,
428 (char *)elf_phdata
, size
);
429 if (retval
!= size
) {
430 err
= (retval
< 0) ? retval
: -EIO
;
444 #ifndef CONFIG_ARCH_BINFMT_ELF_STATE
447 * struct arch_elf_state - arch-specific ELF loading state
449 * This structure is used to preserve architecture specific data during
450 * the loading of an ELF file, throughout the checking of architecture
451 * specific ELF headers & through to the point where the ELF load is
452 * known to be proceeding (ie. SET_PERSONALITY).
454 * This implementation is a dummy for architectures which require no
457 struct arch_elf_state
{
460 #define INIT_ARCH_ELF_STATE {}
463 * arch_elf_pt_proc() - check a PT_LOPROC..PT_HIPROC ELF program header
464 * @ehdr: The main ELF header
465 * @phdr: The program header to check
466 * @elf: The open ELF file
467 * @is_interp: True if the phdr is from the interpreter of the ELF being
468 * loaded, else false.
469 * @state: Architecture-specific state preserved throughout the process
470 * of loading the ELF.
472 * Inspects the program header phdr to validate its correctness and/or
473 * suitability for the system. Called once per ELF program header in the
474 * range PT_LOPROC to PT_HIPROC, for both the ELF being loaded and its
477 * Return: Zero to proceed with the ELF load, non-zero to fail the ELF load
478 * with that return code.
480 static inline int arch_elf_pt_proc(struct elfhdr
*ehdr
,
481 struct elf_phdr
*phdr
,
482 struct file
*elf
, bool is_interp
,
483 struct arch_elf_state
*state
)
485 /* Dummy implementation, always proceed */
490 * arch_check_elf() - check an ELF executable
491 * @ehdr: The main ELF header
492 * @has_interp: True if the ELF has an interpreter, else false.
493 * @interp_ehdr: The interpreter's ELF header
494 * @state: Architecture-specific state preserved throughout the process
495 * of loading the ELF.
497 * Provides a final opportunity for architecture code to reject the loading
498 * of the ELF & cause an exec syscall to return an error. This is called after
499 * all program headers to be checked by arch_elf_pt_proc have been.
501 * Return: Zero to proceed with the ELF load, non-zero to fail the ELF load
502 * with that return code.
504 static inline int arch_check_elf(struct elfhdr
*ehdr
, bool has_interp
,
505 struct elfhdr
*interp_ehdr
,
506 struct arch_elf_state
*state
)
508 /* Dummy implementation, always proceed */
512 #endif /* !CONFIG_ARCH_BINFMT_ELF_STATE */
514 /* This is much more generalized than the library routine read function,
515 so we keep this separate. Technically the library read function
516 is only provided so that we can read a.out libraries that have
519 static unsigned long load_elf_interp(struct elfhdr
*interp_elf_ex
,
520 struct file
*interpreter
, unsigned long *interp_map_addr
,
521 unsigned long no_base
, struct elf_phdr
*interp_elf_phdata
)
523 struct elf_phdr
*eppnt
;
524 unsigned long load_addr
= 0;
525 int load_addr_set
= 0;
526 unsigned long last_bss
= 0, elf_bss
= 0;
527 unsigned long error
= ~0UL;
528 unsigned long total_size
;
531 /* First of all, some simple consistency checks */
532 if (interp_elf_ex
->e_type
!= ET_EXEC
&&
533 interp_elf_ex
->e_type
!= ET_DYN
)
535 if (!elf_check_arch(interp_elf_ex
))
537 if (!interpreter
->f_op
->mmap
)
540 total_size
= total_mapping_size(interp_elf_phdata
,
541 interp_elf_ex
->e_phnum
);
547 eppnt
= interp_elf_phdata
;
548 for (i
= 0; i
< interp_elf_ex
->e_phnum
; i
++, eppnt
++) {
549 if (eppnt
->p_type
== PT_LOAD
) {
550 int elf_type
= MAP_PRIVATE
| MAP_DENYWRITE
;
552 unsigned long vaddr
= 0;
553 unsigned long k
, map_addr
;
555 if (eppnt
->p_flags
& PF_R
)
556 elf_prot
= PROT_READ
;
557 if (eppnt
->p_flags
& PF_W
)
558 elf_prot
|= PROT_WRITE
;
559 if (eppnt
->p_flags
& PF_X
)
560 elf_prot
|= PROT_EXEC
;
561 vaddr
= eppnt
->p_vaddr
;
562 if (interp_elf_ex
->e_type
== ET_EXEC
|| load_addr_set
)
563 elf_type
|= MAP_FIXED
;
564 else if (no_base
&& interp_elf_ex
->e_type
== ET_DYN
)
567 map_addr
= elf_map(interpreter
, load_addr
+ vaddr
,
568 eppnt
, elf_prot
, elf_type
, total_size
);
570 if (!*interp_map_addr
)
571 *interp_map_addr
= map_addr
;
573 if (BAD_ADDR(map_addr
))
576 if (!load_addr_set
&&
577 interp_elf_ex
->e_type
== ET_DYN
) {
578 load_addr
= map_addr
- ELF_PAGESTART(vaddr
);
583 * Check to see if the section's size will overflow the
584 * allowed task size. Note that p_filesz must always be
585 * <= p_memsize so it's only necessary to check p_memsz.
587 k
= load_addr
+ eppnt
->p_vaddr
;
589 eppnt
->p_filesz
> eppnt
->p_memsz
||
590 eppnt
->p_memsz
> TASK_SIZE
||
591 TASK_SIZE
- eppnt
->p_memsz
< k
) {
597 * Find the end of the file mapping for this phdr, and
598 * keep track of the largest address we see for this.
600 k
= load_addr
+ eppnt
->p_vaddr
+ eppnt
->p_filesz
;
605 * Do the same thing for the memory mapping - between
606 * elf_bss and last_bss is the bss section.
608 k
= load_addr
+ eppnt
->p_memsz
+ eppnt
->p_vaddr
;
614 if (last_bss
> elf_bss
) {
616 * Now fill out the bss section. First pad the last page up
617 * to the page boundary, and then perform a mmap to make sure
618 * that there are zero-mapped pages up to and including the
621 if (padzero(elf_bss
)) {
626 /* What we have mapped so far */
627 elf_bss
= ELF_PAGESTART(elf_bss
+ ELF_MIN_ALIGN
- 1);
629 /* Map the last of the bss segment */
630 error
= vm_brk(elf_bss
, last_bss
- elf_bss
);
641 * These are the functions used to load ELF style executables and shared
642 * libraries. There is no binary dependent code anywhere else.
645 #ifndef STACK_RND_MASK
646 #define STACK_RND_MASK (0x7ff >> (PAGE_SHIFT - 12)) /* 8MB of VA */
649 static unsigned long randomize_stack_top(unsigned long stack_top
)
651 unsigned long random_variable
= 0;
653 if ((current
->flags
& PF_RANDOMIZE
) &&
654 !(current
->personality
& ADDR_NO_RANDOMIZE
)) {
655 random_variable
= get_random_long();
656 random_variable
&= STACK_RND_MASK
;
657 random_variable
<<= PAGE_SHIFT
;
659 #ifdef CONFIG_STACK_GROWSUP
660 return PAGE_ALIGN(stack_top
) + random_variable
;
662 return PAGE_ALIGN(stack_top
) - random_variable
;
666 static int load_elf_binary(struct linux_binprm
*bprm
)
668 struct file
*interpreter
= NULL
; /* to shut gcc up */
669 unsigned long load_addr
= 0, load_bias
= 0;
670 int load_addr_set
= 0;
671 char * elf_interpreter
= NULL
;
673 struct elf_phdr
*elf_ppnt
, *elf_phdata
, *interp_elf_phdata
= NULL
;
674 unsigned long elf_bss
, elf_brk
;
676 unsigned long elf_entry
;
677 unsigned long interp_load_addr
= 0;
678 unsigned long start_code
, end_code
, start_data
, end_data
;
679 unsigned long reloc_func_desc __maybe_unused
= 0;
680 int executable_stack
= EXSTACK_DEFAULT
;
681 struct pt_regs
*regs
= current_pt_regs();
683 struct elfhdr elf_ex
;
684 struct elfhdr interp_elf_ex
;
686 struct arch_elf_state arch_state
= INIT_ARCH_ELF_STATE
;
688 loc
= kmalloc(sizeof(*loc
), GFP_KERNEL
);
694 /* Get the exec-header */
695 loc
->elf_ex
= *((struct elfhdr
*)bprm
->buf
);
698 /* First of all, some simple consistency checks */
699 if (memcmp(loc
->elf_ex
.e_ident
, ELFMAG
, SELFMAG
) != 0)
702 if (loc
->elf_ex
.e_type
!= ET_EXEC
&& loc
->elf_ex
.e_type
!= ET_DYN
)
704 if (!elf_check_arch(&loc
->elf_ex
))
706 if (!bprm
->file
->f_op
->mmap
)
709 elf_phdata
= load_elf_phdrs(&loc
->elf_ex
, bprm
->file
);
713 elf_ppnt
= elf_phdata
;
722 for (i
= 0; i
< loc
->elf_ex
.e_phnum
; i
++) {
723 if (elf_ppnt
->p_type
== PT_INTERP
) {
724 /* This is the program interpreter used for
725 * shared libraries - for now assume that this
726 * is an a.out format binary
729 if (elf_ppnt
->p_filesz
> PATH_MAX
||
730 elf_ppnt
->p_filesz
< 2)
734 elf_interpreter
= kmalloc(elf_ppnt
->p_filesz
,
736 if (!elf_interpreter
)
739 retval
= kernel_read(bprm
->file
, elf_ppnt
->p_offset
,
742 if (retval
!= elf_ppnt
->p_filesz
) {
745 goto out_free_interp
;
747 /* make sure path is NULL terminated */
749 if (elf_interpreter
[elf_ppnt
->p_filesz
- 1] != '\0')
750 goto out_free_interp
;
752 interpreter
= open_exec(elf_interpreter
);
753 retval
= PTR_ERR(interpreter
);
754 if (IS_ERR(interpreter
))
755 goto out_free_interp
;
758 * If the binary is not readable then enforce
759 * mm->dumpable = 0 regardless of the interpreter's
762 would_dump(bprm
, interpreter
);
764 /* Get the exec headers */
765 retval
= kernel_read(interpreter
, 0,
766 (void *)&loc
->interp_elf_ex
,
767 sizeof(loc
->interp_elf_ex
));
768 if (retval
!= sizeof(loc
->interp_elf_ex
)) {
771 goto out_free_dentry
;
779 elf_ppnt
= elf_phdata
;
780 for (i
= 0; i
< loc
->elf_ex
.e_phnum
; i
++, elf_ppnt
++)
781 switch (elf_ppnt
->p_type
) {
783 if (elf_ppnt
->p_flags
& PF_X
)
784 executable_stack
= EXSTACK_ENABLE_X
;
786 executable_stack
= EXSTACK_DISABLE_X
;
789 case PT_LOPROC
... PT_HIPROC
:
790 retval
= arch_elf_pt_proc(&loc
->elf_ex
, elf_ppnt
,
794 goto out_free_dentry
;
798 /* Some simple consistency checks for the interpreter */
799 if (elf_interpreter
) {
801 /* Not an ELF interpreter */
802 if (memcmp(loc
->interp_elf_ex
.e_ident
, ELFMAG
, SELFMAG
) != 0)
803 goto out_free_dentry
;
804 /* Verify the interpreter has a valid arch */
805 if (!elf_check_arch(&loc
->interp_elf_ex
))
806 goto out_free_dentry
;
808 /* Load the interpreter program headers */
809 interp_elf_phdata
= load_elf_phdrs(&loc
->interp_elf_ex
,
811 if (!interp_elf_phdata
)
812 goto out_free_dentry
;
814 /* Pass PT_LOPROC..PT_HIPROC headers to arch code */
815 elf_ppnt
= interp_elf_phdata
;
816 for (i
= 0; i
< loc
->interp_elf_ex
.e_phnum
; i
++, elf_ppnt
++)
817 switch (elf_ppnt
->p_type
) {
818 case PT_LOPROC
... PT_HIPROC
:
819 retval
= arch_elf_pt_proc(&loc
->interp_elf_ex
,
820 elf_ppnt
, interpreter
,
823 goto out_free_dentry
;
829 * Allow arch code to reject the ELF at this point, whilst it's
830 * still possible to return an error to the code that invoked
833 retval
= arch_check_elf(&loc
->elf_ex
,
834 !!interpreter
, &loc
->interp_elf_ex
,
837 goto out_free_dentry
;
839 /* Flush all traces of the currently running executable */
840 retval
= flush_old_exec(bprm
);
842 goto out_free_dentry
;
844 /* Do this immediately, since STACK_TOP as used in setup_arg_pages
845 may depend on the personality. */
846 SET_PERSONALITY2(loc
->elf_ex
, &arch_state
);
847 if (elf_read_implies_exec(loc
->elf_ex
, executable_stack
))
848 current
->personality
|= READ_IMPLIES_EXEC
;
850 if (!(current
->personality
& ADDR_NO_RANDOMIZE
) && randomize_va_space
)
851 current
->flags
|= PF_RANDOMIZE
;
853 setup_new_exec(bprm
);
855 /* Do this so that we can load the interpreter, if need be. We will
856 change some of these later */
857 retval
= setup_arg_pages(bprm
, randomize_stack_top(STACK_TOP
),
860 goto out_free_dentry
;
862 current
->mm
->start_stack
= bprm
->p
;
864 /* Now we do a little grungy work by mmapping the ELF image into
865 the correct location in memory. */
866 for(i
= 0, elf_ppnt
= elf_phdata
;
867 i
< loc
->elf_ex
.e_phnum
; i
++, elf_ppnt
++) {
868 int elf_prot
= 0, elf_flags
;
869 unsigned long k
, vaddr
;
870 unsigned long total_size
= 0;
872 if (elf_ppnt
->p_type
!= PT_LOAD
)
875 if (unlikely (elf_brk
> elf_bss
)) {
878 /* There was a PT_LOAD segment with p_memsz > p_filesz
879 before this one. Map anonymous pages, if needed,
880 and clear the area. */
881 retval
= set_brk(elf_bss
+ load_bias
,
882 elf_brk
+ load_bias
);
884 goto out_free_dentry
;
885 nbyte
= ELF_PAGEOFFSET(elf_bss
);
887 nbyte
= ELF_MIN_ALIGN
- nbyte
;
888 if (nbyte
> elf_brk
- elf_bss
)
889 nbyte
= elf_brk
- elf_bss
;
890 if (clear_user((void __user
*)elf_bss
+
893 * This bss-zeroing can fail if the ELF
894 * file specifies odd protections. So
895 * we don't check the return value
901 if (elf_ppnt
->p_flags
& PF_R
)
902 elf_prot
|= PROT_READ
;
903 if (elf_ppnt
->p_flags
& PF_W
)
904 elf_prot
|= PROT_WRITE
;
905 if (elf_ppnt
->p_flags
& PF_X
)
906 elf_prot
|= PROT_EXEC
;
908 elf_flags
= MAP_PRIVATE
| MAP_DENYWRITE
| MAP_EXECUTABLE
;
910 vaddr
= elf_ppnt
->p_vaddr
;
911 if (loc
->elf_ex
.e_type
== ET_EXEC
|| load_addr_set
) {
912 elf_flags
|= MAP_FIXED
;
913 } else if (loc
->elf_ex
.e_type
== ET_DYN
) {
914 /* Try and get dynamic programs out of the way of the
915 * default mmap base, as well as whatever program they
916 * might try to exec. This is because the brk will
917 * follow the loader, and is not movable. */
918 load_bias
= ELF_ET_DYN_BASE
- vaddr
;
919 if (current
->flags
& PF_RANDOMIZE
)
920 load_bias
+= arch_mmap_rnd();
921 load_bias
= ELF_PAGESTART(load_bias
);
922 total_size
= total_mapping_size(elf_phdata
,
923 loc
->elf_ex
.e_phnum
);
926 goto out_free_dentry
;
930 error
= elf_map(bprm
->file
, load_bias
+ vaddr
, elf_ppnt
,
931 elf_prot
, elf_flags
, total_size
);
932 if (BAD_ADDR(error
)) {
933 retval
= IS_ERR((void *)error
) ?
934 PTR_ERR((void*)error
) : -EINVAL
;
935 goto out_free_dentry
;
938 if (!load_addr_set
) {
940 load_addr
= (elf_ppnt
->p_vaddr
- elf_ppnt
->p_offset
);
941 if (loc
->elf_ex
.e_type
== ET_DYN
) {
943 ELF_PAGESTART(load_bias
+ vaddr
);
944 load_addr
+= load_bias
;
945 reloc_func_desc
= load_bias
;
948 k
= elf_ppnt
->p_vaddr
;
955 * Check to see if the section's size will overflow the
956 * allowed task size. Note that p_filesz must always be
957 * <= p_memsz so it is only necessary to check p_memsz.
959 if (BAD_ADDR(k
) || elf_ppnt
->p_filesz
> elf_ppnt
->p_memsz
||
960 elf_ppnt
->p_memsz
> TASK_SIZE
||
961 TASK_SIZE
- elf_ppnt
->p_memsz
< k
) {
962 /* set_brk can never work. Avoid overflows. */
964 goto out_free_dentry
;
967 k
= elf_ppnt
->p_vaddr
+ elf_ppnt
->p_filesz
;
971 if ((elf_ppnt
->p_flags
& PF_X
) && end_code
< k
)
975 k
= elf_ppnt
->p_vaddr
+ elf_ppnt
->p_memsz
;
980 loc
->elf_ex
.e_entry
+= load_bias
;
981 elf_bss
+= load_bias
;
982 elf_brk
+= load_bias
;
983 start_code
+= load_bias
;
984 end_code
+= load_bias
;
985 start_data
+= load_bias
;
986 end_data
+= load_bias
;
988 /* Calling set_brk effectively mmaps the pages that we need
989 * for the bss and break sections. We must do this before
990 * mapping in the interpreter, to make sure it doesn't wind
991 * up getting placed where the bss needs to go.
993 retval
= set_brk(elf_bss
, elf_brk
);
995 goto out_free_dentry
;
996 if (likely(elf_bss
!= elf_brk
) && unlikely(padzero(elf_bss
))) {
997 retval
= -EFAULT
; /* Nobody gets to see this, but.. */
998 goto out_free_dentry
;
1001 if (elf_interpreter
) {
1002 unsigned long interp_map_addr
= 0;
1004 elf_entry
= load_elf_interp(&loc
->interp_elf_ex
,
1007 load_bias
, interp_elf_phdata
);
1008 if (!IS_ERR((void *)elf_entry
)) {
1010 * load_elf_interp() returns relocation
1013 interp_load_addr
= elf_entry
;
1014 elf_entry
+= loc
->interp_elf_ex
.e_entry
;
1016 if (BAD_ADDR(elf_entry
)) {
1017 retval
= IS_ERR((void *)elf_entry
) ?
1018 (int)elf_entry
: -EINVAL
;
1019 goto out_free_dentry
;
1021 reloc_func_desc
= interp_load_addr
;
1023 allow_write_access(interpreter
);
1025 kfree(elf_interpreter
);
1027 elf_entry
= loc
->elf_ex
.e_entry
;
1028 if (BAD_ADDR(elf_entry
)) {
1030 goto out_free_dentry
;
1034 kfree(interp_elf_phdata
);
1037 set_binfmt(&elf_format
);
1039 #ifdef ARCH_HAS_SETUP_ADDITIONAL_PAGES
1040 retval
= arch_setup_additional_pages(bprm
, !!elf_interpreter
);
1043 #endif /* ARCH_HAS_SETUP_ADDITIONAL_PAGES */
1045 install_exec_creds(bprm
);
1046 retval
= create_elf_tables(bprm
, &loc
->elf_ex
,
1047 load_addr
, interp_load_addr
);
1050 /* N.B. passed_fileno might not be initialized? */
1051 current
->mm
->end_code
= end_code
;
1052 current
->mm
->start_code
= start_code
;
1053 current
->mm
->start_data
= start_data
;
1054 current
->mm
->end_data
= end_data
;
1055 current
->mm
->start_stack
= bprm
->p
;
1057 if ((current
->flags
& PF_RANDOMIZE
) && (randomize_va_space
> 1)) {
1058 current
->mm
->brk
= current
->mm
->start_brk
=
1059 arch_randomize_brk(current
->mm
);
1060 #ifdef compat_brk_randomized
1061 current
->brk_randomized
= 1;
1065 if (current
->personality
& MMAP_PAGE_ZERO
) {
1066 /* Why this, you ask??? Well SVr4 maps page 0 as read-only,
1067 and some applications "depend" upon this behavior.
1068 Since we do not have the power to recompile these, we
1069 emulate the SVr4 behavior. Sigh. */
1070 error
= vm_mmap(NULL
, 0, PAGE_SIZE
, PROT_READ
| PROT_EXEC
,
1071 MAP_FIXED
| MAP_PRIVATE
, 0);
1074 #ifdef ELF_PLAT_INIT
1076 * The ABI may specify that certain registers be set up in special
1077 * ways (on i386 %edx is the address of a DT_FINI function, for
1078 * example. In addition, it may also specify (eg, PowerPC64 ELF)
1079 * that the e_entry field is the address of the function descriptor
1080 * for the startup routine, rather than the address of the startup
1081 * routine itself. This macro performs whatever initialization to
1082 * the regs structure is required as well as any relocations to the
1083 * function descriptor entries when executing dynamically links apps.
1085 ELF_PLAT_INIT(regs
, reloc_func_desc
);
1088 start_thread(regs
, elf_entry
, bprm
->p
);
1097 kfree(interp_elf_phdata
);
1098 allow_write_access(interpreter
);
1102 kfree(elf_interpreter
);
1108 #ifdef CONFIG_USELIB
1109 /* This is really simpleminded and specialized - we are loading an
1110 a.out library that is given an ELF header. */
1111 static int load_elf_library(struct file
*file
)
1113 struct elf_phdr
*elf_phdata
;
1114 struct elf_phdr
*eppnt
;
1115 unsigned long elf_bss
, bss
, len
;
1116 int retval
, error
, i
, j
;
1117 struct elfhdr elf_ex
;
1120 retval
= kernel_read(file
, 0, (char *)&elf_ex
, sizeof(elf_ex
));
1121 if (retval
!= sizeof(elf_ex
))
1124 if (memcmp(elf_ex
.e_ident
, ELFMAG
, SELFMAG
) != 0)
1127 /* First of all, some simple consistency checks */
1128 if (elf_ex
.e_type
!= ET_EXEC
|| elf_ex
.e_phnum
> 2 ||
1129 !elf_check_arch(&elf_ex
) || !file
->f_op
->mmap
)
1132 /* Now read in all of the header information */
1134 j
= sizeof(struct elf_phdr
) * elf_ex
.e_phnum
;
1135 /* j < ELF_MIN_ALIGN because elf_ex.e_phnum <= 2 */
1138 elf_phdata
= kmalloc(j
, GFP_KERNEL
);
1144 retval
= kernel_read(file
, elf_ex
.e_phoff
, (char *)eppnt
, j
);
1148 for (j
= 0, i
= 0; i
<elf_ex
.e_phnum
; i
++)
1149 if ((eppnt
+ i
)->p_type
== PT_LOAD
)
1154 while (eppnt
->p_type
!= PT_LOAD
)
1157 /* Now use mmap to map the library into memory. */
1158 error
= vm_mmap(file
,
1159 ELF_PAGESTART(eppnt
->p_vaddr
),
1161 ELF_PAGEOFFSET(eppnt
->p_vaddr
)),
1162 PROT_READ
| PROT_WRITE
| PROT_EXEC
,
1163 MAP_FIXED
| MAP_PRIVATE
| MAP_DENYWRITE
,
1165 ELF_PAGEOFFSET(eppnt
->p_vaddr
)));
1166 if (error
!= ELF_PAGESTART(eppnt
->p_vaddr
))
1169 elf_bss
= eppnt
->p_vaddr
+ eppnt
->p_filesz
;
1170 if (padzero(elf_bss
)) {
1175 len
= ELF_PAGESTART(eppnt
->p_filesz
+ eppnt
->p_vaddr
+
1177 bss
= eppnt
->p_memsz
+ eppnt
->p_vaddr
;
1179 error
= vm_brk(len
, bss
- len
);
1190 #endif /* #ifdef CONFIG_USELIB */
1192 #ifdef CONFIG_ELF_CORE
1196 * Modelled on fs/exec.c:aout_core_dump()
1197 * Jeremy Fitzhardinge <jeremy@sw.oz.au>
1201 * The purpose of always_dump_vma() is to make sure that special kernel mappings
1202 * that are useful for post-mortem analysis are included in every core dump.
1203 * In that way we ensure that the core dump is fully interpretable later
1204 * without matching up the same kernel and hardware config to see what PC values
1205 * meant. These special mappings include - vDSO, vsyscall, and other
1206 * architecture specific mappings
1208 static bool always_dump_vma(struct vm_area_struct
*vma
)
1210 /* Any vsyscall mappings? */
1211 if (vma
== get_gate_vma(vma
->vm_mm
))
1215 * Assume that all vmas with a .name op should always be dumped.
1216 * If this changes, a new vm_ops field can easily be added.
1218 if (vma
->vm_ops
&& vma
->vm_ops
->name
&& vma
->vm_ops
->name(vma
))
1222 * arch_vma_name() returns non-NULL for special architecture mappings,
1223 * such as vDSO sections.
1225 if (arch_vma_name(vma
))
1232 * Decide what to dump of a segment, part, all or none.
1234 static unsigned long vma_dump_size(struct vm_area_struct
*vma
,
1235 unsigned long mm_flags
)
1237 #define FILTER(type) (mm_flags & (1UL << MMF_DUMP_##type))
1239 /* always dump the vdso and vsyscall sections */
1240 if (always_dump_vma(vma
))
1243 if (vma
->vm_flags
& VM_DONTDUMP
)
1246 /* support for DAX */
1247 if (vma_is_dax(vma
)) {
1248 if ((vma
->vm_flags
& VM_SHARED
) && FILTER(DAX_SHARED
))
1250 if (!(vma
->vm_flags
& VM_SHARED
) && FILTER(DAX_PRIVATE
))
1255 /* Hugetlb memory check */
1256 if (vma
->vm_flags
& VM_HUGETLB
) {
1257 if ((vma
->vm_flags
& VM_SHARED
) && FILTER(HUGETLB_SHARED
))
1259 if (!(vma
->vm_flags
& VM_SHARED
) && FILTER(HUGETLB_PRIVATE
))
1264 /* Do not dump I/O mapped devices or special mappings */
1265 if (vma
->vm_flags
& VM_IO
)
1268 /* By default, dump shared memory if mapped from an anonymous file. */
1269 if (vma
->vm_flags
& VM_SHARED
) {
1270 if (file_inode(vma
->vm_file
)->i_nlink
== 0 ?
1271 FILTER(ANON_SHARED
) : FILTER(MAPPED_SHARED
))
1276 /* Dump segments that have been written to. */
1277 if (vma
->anon_vma
&& FILTER(ANON_PRIVATE
))
1279 if (vma
->vm_file
== NULL
)
1282 if (FILTER(MAPPED_PRIVATE
))
1286 * If this looks like the beginning of a DSO or executable mapping,
1287 * check for an ELF header. If we find one, dump the first page to
1288 * aid in determining what was mapped here.
1290 if (FILTER(ELF_HEADERS
) &&
1291 vma
->vm_pgoff
== 0 && (vma
->vm_flags
& VM_READ
)) {
1292 u32 __user
*header
= (u32 __user
*) vma
->vm_start
;
1294 mm_segment_t fs
= get_fs();
1296 * Doing it this way gets the constant folded by GCC.
1300 char elfmag
[SELFMAG
];
1302 BUILD_BUG_ON(SELFMAG
!= sizeof word
);
1303 magic
.elfmag
[EI_MAG0
] = ELFMAG0
;
1304 magic
.elfmag
[EI_MAG1
] = ELFMAG1
;
1305 magic
.elfmag
[EI_MAG2
] = ELFMAG2
;
1306 magic
.elfmag
[EI_MAG3
] = ELFMAG3
;
1308 * Switch to the user "segment" for get_user(),
1309 * then put back what elf_core_dump() had in place.
1312 if (unlikely(get_user(word
, header
)))
1315 if (word
== magic
.cmp
)
1324 return vma
->vm_end
- vma
->vm_start
;
1327 /* An ELF note in memory */
1332 unsigned int datasz
;
1336 static int notesize(struct memelfnote
*en
)
1340 sz
= sizeof(struct elf_note
);
1341 sz
+= roundup(strlen(en
->name
) + 1, 4);
1342 sz
+= roundup(en
->datasz
, 4);
1347 static int writenote(struct memelfnote
*men
, struct coredump_params
*cprm
)
1350 en
.n_namesz
= strlen(men
->name
) + 1;
1351 en
.n_descsz
= men
->datasz
;
1352 en
.n_type
= men
->type
;
1354 return dump_emit(cprm
, &en
, sizeof(en
)) &&
1355 dump_emit(cprm
, men
->name
, en
.n_namesz
) && dump_align(cprm
, 4) &&
1356 dump_emit(cprm
, men
->data
, men
->datasz
) && dump_align(cprm
, 4);
1359 static void fill_elf_header(struct elfhdr
*elf
, int segs
,
1360 u16 machine
, u32 flags
)
1362 memset(elf
, 0, sizeof(*elf
));
1364 memcpy(elf
->e_ident
, ELFMAG
, SELFMAG
);
1365 elf
->e_ident
[EI_CLASS
] = ELF_CLASS
;
1366 elf
->e_ident
[EI_DATA
] = ELF_DATA
;
1367 elf
->e_ident
[EI_VERSION
] = EV_CURRENT
;
1368 elf
->e_ident
[EI_OSABI
] = ELF_OSABI
;
1370 elf
->e_type
= ET_CORE
;
1371 elf
->e_machine
= machine
;
1372 elf
->e_version
= EV_CURRENT
;
1373 elf
->e_phoff
= sizeof(struct elfhdr
);
1374 elf
->e_flags
= flags
;
1375 elf
->e_ehsize
= sizeof(struct elfhdr
);
1376 elf
->e_phentsize
= sizeof(struct elf_phdr
);
1377 elf
->e_phnum
= segs
;
1382 static void fill_elf_note_phdr(struct elf_phdr
*phdr
, int sz
, loff_t offset
)
1384 phdr
->p_type
= PT_NOTE
;
1385 phdr
->p_offset
= offset
;
1388 phdr
->p_filesz
= sz
;
1395 static void fill_note(struct memelfnote
*note
, const char *name
, int type
,
1396 unsigned int sz
, void *data
)
1406 * fill up all the fields in prstatus from the given task struct, except
1407 * registers which need to be filled up separately.
1409 static void fill_prstatus(struct elf_prstatus
*prstatus
,
1410 struct task_struct
*p
, long signr
)
1412 prstatus
->pr_info
.si_signo
= prstatus
->pr_cursig
= signr
;
1413 prstatus
->pr_sigpend
= p
->pending
.signal
.sig
[0];
1414 prstatus
->pr_sighold
= p
->blocked
.sig
[0];
1416 prstatus
->pr_ppid
= task_pid_vnr(rcu_dereference(p
->real_parent
));
1418 prstatus
->pr_pid
= task_pid_vnr(p
);
1419 prstatus
->pr_pgrp
= task_pgrp_vnr(p
);
1420 prstatus
->pr_sid
= task_session_vnr(p
);
1421 if (thread_group_leader(p
)) {
1422 struct task_cputime cputime
;
1425 * This is the record for the group leader. It shows the
1426 * group-wide total, not its individual thread total.
1428 thread_group_cputime(p
, &cputime
);
1429 cputime_to_timeval(cputime
.utime
, &prstatus
->pr_utime
);
1430 cputime_to_timeval(cputime
.stime
, &prstatus
->pr_stime
);
1432 cputime_t utime
, stime
;
1434 task_cputime(p
, &utime
, &stime
);
1435 cputime_to_timeval(utime
, &prstatus
->pr_utime
);
1436 cputime_to_timeval(stime
, &prstatus
->pr_stime
);
1438 cputime_to_timeval(p
->signal
->cutime
, &prstatus
->pr_cutime
);
1439 cputime_to_timeval(p
->signal
->cstime
, &prstatus
->pr_cstime
);
1442 static int fill_psinfo(struct elf_prpsinfo
*psinfo
, struct task_struct
*p
,
1443 struct mm_struct
*mm
)
1445 const struct cred
*cred
;
1446 unsigned int i
, len
;
1448 /* first copy the parameters from user space */
1449 memset(psinfo
, 0, sizeof(struct elf_prpsinfo
));
1451 len
= mm
->arg_end
- mm
->arg_start
;
1452 if (len
>= ELF_PRARGSZ
)
1453 len
= ELF_PRARGSZ
-1;
1454 if (copy_from_user(&psinfo
->pr_psargs
,
1455 (const char __user
*)mm
->arg_start
, len
))
1457 for(i
= 0; i
< len
; i
++)
1458 if (psinfo
->pr_psargs
[i
] == 0)
1459 psinfo
->pr_psargs
[i
] = ' ';
1460 psinfo
->pr_psargs
[len
] = 0;
1463 psinfo
->pr_ppid
= task_pid_vnr(rcu_dereference(p
->real_parent
));
1465 psinfo
->pr_pid
= task_pid_vnr(p
);
1466 psinfo
->pr_pgrp
= task_pgrp_vnr(p
);
1467 psinfo
->pr_sid
= task_session_vnr(p
);
1469 i
= p
->state
? ffz(~p
->state
) + 1 : 0;
1470 psinfo
->pr_state
= i
;
1471 psinfo
->pr_sname
= (i
> 5) ? '.' : "RSDTZW"[i
];
1472 psinfo
->pr_zomb
= psinfo
->pr_sname
== 'Z';
1473 psinfo
->pr_nice
= task_nice(p
);
1474 psinfo
->pr_flag
= p
->flags
;
1476 cred
= __task_cred(p
);
1477 SET_UID(psinfo
->pr_uid
, from_kuid_munged(cred
->user_ns
, cred
->uid
));
1478 SET_GID(psinfo
->pr_gid
, from_kgid_munged(cred
->user_ns
, cred
->gid
));
1480 strncpy(psinfo
->pr_fname
, p
->comm
, sizeof(psinfo
->pr_fname
));
1485 static void fill_auxv_note(struct memelfnote
*note
, struct mm_struct
*mm
)
1487 elf_addr_t
*auxv
= (elf_addr_t
*) mm
->saved_auxv
;
1491 while (auxv
[i
- 2] != AT_NULL
);
1492 fill_note(note
, "CORE", NT_AUXV
, i
* sizeof(elf_addr_t
), auxv
);
1495 static void fill_siginfo_note(struct memelfnote
*note
, user_siginfo_t
*csigdata
,
1496 const siginfo_t
*siginfo
)
1498 mm_segment_t old_fs
= get_fs();
1500 copy_siginfo_to_user((user_siginfo_t __user
*) csigdata
, siginfo
);
1502 fill_note(note
, "CORE", NT_SIGINFO
, sizeof(*csigdata
), csigdata
);
1505 #define MAX_FILE_NOTE_SIZE (4*1024*1024)
1507 * Format of NT_FILE note:
1509 * long count -- how many files are mapped
1510 * long page_size -- units for file_ofs
1511 * array of [COUNT] elements of
1515 * followed by COUNT filenames in ASCII: "FILE1" NUL "FILE2" NUL...
1517 static int fill_files_note(struct memelfnote
*note
)
1519 struct vm_area_struct
*vma
;
1520 unsigned count
, size
, names_ofs
, remaining
, n
;
1522 user_long_t
*start_end_ofs
;
1523 char *name_base
, *name_curpos
;
1525 /* *Estimated* file count and total data size needed */
1526 count
= current
->mm
->map_count
;
1529 names_ofs
= (2 + 3 * count
) * sizeof(data
[0]);
1531 if (size
>= MAX_FILE_NOTE_SIZE
) /* paranoia check */
1533 size
= round_up(size
, PAGE_SIZE
);
1534 data
= vmalloc(size
);
1538 start_end_ofs
= data
+ 2;
1539 name_base
= name_curpos
= ((char *)data
) + names_ofs
;
1540 remaining
= size
- names_ofs
;
1542 for (vma
= current
->mm
->mmap
; vma
!= NULL
; vma
= vma
->vm_next
) {
1544 const char *filename
;
1546 file
= vma
->vm_file
;
1549 filename
= file_path(file
, name_curpos
, remaining
);
1550 if (IS_ERR(filename
)) {
1551 if (PTR_ERR(filename
) == -ENAMETOOLONG
) {
1553 size
= size
* 5 / 4;
1559 /* file_path() fills at the end, move name down */
1560 /* n = strlen(filename) + 1: */
1561 n
= (name_curpos
+ remaining
) - filename
;
1562 remaining
= filename
- name_curpos
;
1563 memmove(name_curpos
, filename
, n
);
1566 *start_end_ofs
++ = vma
->vm_start
;
1567 *start_end_ofs
++ = vma
->vm_end
;
1568 *start_end_ofs
++ = vma
->vm_pgoff
;
1572 /* Now we know exact count of files, can store it */
1574 data
[1] = PAGE_SIZE
;
1576 * Count usually is less than current->mm->map_count,
1577 * we need to move filenames down.
1579 n
= current
->mm
->map_count
- count
;
1581 unsigned shift_bytes
= n
* 3 * sizeof(data
[0]);
1582 memmove(name_base
- shift_bytes
, name_base
,
1583 name_curpos
- name_base
);
1584 name_curpos
-= shift_bytes
;
1587 size
= name_curpos
- (char *)data
;
1588 fill_note(note
, "CORE", NT_FILE
, size
, data
);
1592 #ifdef CORE_DUMP_USE_REGSET
1593 #include <linux/regset.h>
1595 struct elf_thread_core_info
{
1596 struct elf_thread_core_info
*next
;
1597 struct task_struct
*task
;
1598 struct elf_prstatus prstatus
;
1599 struct memelfnote notes
[0];
1602 struct elf_note_info
{
1603 struct elf_thread_core_info
*thread
;
1604 struct memelfnote psinfo
;
1605 struct memelfnote signote
;
1606 struct memelfnote auxv
;
1607 struct memelfnote files
;
1608 user_siginfo_t csigdata
;
1614 * When a regset has a writeback hook, we call it on each thread before
1615 * dumping user memory. On register window machines, this makes sure the
1616 * user memory backing the register data is up to date before we read it.
1618 static void do_thread_regset_writeback(struct task_struct
*task
,
1619 const struct user_regset
*regset
)
1621 if (regset
->writeback
)
1622 regset
->writeback(task
, regset
, 1);
1626 #define PR_REG_SIZE(S) sizeof(S)
1629 #ifndef PRSTATUS_SIZE
1630 #define PRSTATUS_SIZE(S) sizeof(S)
1634 #define PR_REG_PTR(S) (&((S)->pr_reg))
1637 #ifndef SET_PR_FPVALID
1638 #define SET_PR_FPVALID(S, V) ((S)->pr_fpvalid = (V))
1641 static int fill_thread_core_info(struct elf_thread_core_info
*t
,
1642 const struct user_regset_view
*view
,
1643 long signr
, size_t *total
)
1648 * NT_PRSTATUS is the one special case, because the regset data
1649 * goes into the pr_reg field inside the note contents, rather
1650 * than being the whole note contents. We fill the reset in here.
1651 * We assume that regset 0 is NT_PRSTATUS.
1653 fill_prstatus(&t
->prstatus
, t
->task
, signr
);
1654 (void) view
->regsets
[0].get(t
->task
, &view
->regsets
[0],
1655 0, PR_REG_SIZE(t
->prstatus
.pr_reg
),
1656 PR_REG_PTR(&t
->prstatus
), NULL
);
1658 fill_note(&t
->notes
[0], "CORE", NT_PRSTATUS
,
1659 PRSTATUS_SIZE(t
->prstatus
), &t
->prstatus
);
1660 *total
+= notesize(&t
->notes
[0]);
1662 do_thread_regset_writeback(t
->task
, &view
->regsets
[0]);
1665 * Each other regset might generate a note too. For each regset
1666 * that has no core_note_type or is inactive, we leave t->notes[i]
1667 * all zero and we'll know to skip writing it later.
1669 for (i
= 1; i
< view
->n
; ++i
) {
1670 const struct user_regset
*regset
= &view
->regsets
[i
];
1671 do_thread_regset_writeback(t
->task
, regset
);
1672 if (regset
->core_note_type
&& regset
->get
&&
1673 (!regset
->active
|| regset
->active(t
->task
, regset
))) {
1675 size_t size
= regset
->n
* regset
->size
;
1676 void *data
= kmalloc(size
, GFP_KERNEL
);
1677 if (unlikely(!data
))
1679 ret
= regset
->get(t
->task
, regset
,
1680 0, size
, data
, NULL
);
1684 if (regset
->core_note_type
!= NT_PRFPREG
)
1685 fill_note(&t
->notes
[i
], "LINUX",
1686 regset
->core_note_type
,
1689 SET_PR_FPVALID(&t
->prstatus
, 1);
1690 fill_note(&t
->notes
[i
], "CORE",
1691 NT_PRFPREG
, size
, data
);
1693 *total
+= notesize(&t
->notes
[i
]);
1701 static int fill_note_info(struct elfhdr
*elf
, int phdrs
,
1702 struct elf_note_info
*info
,
1703 const siginfo_t
*siginfo
, struct pt_regs
*regs
)
1705 struct task_struct
*dump_task
= current
;
1706 const struct user_regset_view
*view
= task_user_regset_view(dump_task
);
1707 struct elf_thread_core_info
*t
;
1708 struct elf_prpsinfo
*psinfo
;
1709 struct core_thread
*ct
;
1713 info
->thread
= NULL
;
1715 psinfo
= kmalloc(sizeof(*psinfo
), GFP_KERNEL
);
1716 if (psinfo
== NULL
) {
1717 info
->psinfo
.data
= NULL
; /* So we don't free this wrongly */
1721 fill_note(&info
->psinfo
, "CORE", NT_PRPSINFO
, sizeof(*psinfo
), psinfo
);
1724 * Figure out how many notes we're going to need for each thread.
1726 info
->thread_notes
= 0;
1727 for (i
= 0; i
< view
->n
; ++i
)
1728 if (view
->regsets
[i
].core_note_type
!= 0)
1729 ++info
->thread_notes
;
1732 * Sanity check. We rely on regset 0 being in NT_PRSTATUS,
1733 * since it is our one special case.
1735 if (unlikely(info
->thread_notes
== 0) ||
1736 unlikely(view
->regsets
[0].core_note_type
!= NT_PRSTATUS
)) {
1742 * Initialize the ELF file header.
1744 fill_elf_header(elf
, phdrs
,
1745 view
->e_machine
, view
->e_flags
);
1748 * Allocate a structure for each thread.
1750 for (ct
= &dump_task
->mm
->core_state
->dumper
; ct
; ct
= ct
->next
) {
1751 t
= kzalloc(offsetof(struct elf_thread_core_info
,
1752 notes
[info
->thread_notes
]),
1758 if (ct
->task
== dump_task
|| !info
->thread
) {
1759 t
->next
= info
->thread
;
1763 * Make sure to keep the original task at
1764 * the head of the list.
1766 t
->next
= info
->thread
->next
;
1767 info
->thread
->next
= t
;
1772 * Now fill in each thread's information.
1774 for (t
= info
->thread
; t
!= NULL
; t
= t
->next
)
1775 if (!fill_thread_core_info(t
, view
, siginfo
->si_signo
, &info
->size
))
1779 * Fill in the two process-wide notes.
1781 fill_psinfo(psinfo
, dump_task
->group_leader
, dump_task
->mm
);
1782 info
->size
+= notesize(&info
->psinfo
);
1784 fill_siginfo_note(&info
->signote
, &info
->csigdata
, siginfo
);
1785 info
->size
+= notesize(&info
->signote
);
1787 fill_auxv_note(&info
->auxv
, current
->mm
);
1788 info
->size
+= notesize(&info
->auxv
);
1790 if (fill_files_note(&info
->files
) == 0)
1791 info
->size
+= notesize(&info
->files
);
1796 static size_t get_note_info_size(struct elf_note_info
*info
)
1802 * Write all the notes for each thread. When writing the first thread, the
1803 * process-wide notes are interleaved after the first thread-specific note.
1805 static int write_note_info(struct elf_note_info
*info
,
1806 struct coredump_params
*cprm
)
1809 struct elf_thread_core_info
*t
= info
->thread
;
1814 if (!writenote(&t
->notes
[0], cprm
))
1817 if (first
&& !writenote(&info
->psinfo
, cprm
))
1819 if (first
&& !writenote(&info
->signote
, cprm
))
1821 if (first
&& !writenote(&info
->auxv
, cprm
))
1823 if (first
&& info
->files
.data
&&
1824 !writenote(&info
->files
, cprm
))
1827 for (i
= 1; i
< info
->thread_notes
; ++i
)
1828 if (t
->notes
[i
].data
&&
1829 !writenote(&t
->notes
[i
], cprm
))
1839 static void free_note_info(struct elf_note_info
*info
)
1841 struct elf_thread_core_info
*threads
= info
->thread
;
1844 struct elf_thread_core_info
*t
= threads
;
1846 WARN_ON(t
->notes
[0].data
&& t
->notes
[0].data
!= &t
->prstatus
);
1847 for (i
= 1; i
< info
->thread_notes
; ++i
)
1848 kfree(t
->notes
[i
].data
);
1851 kfree(info
->psinfo
.data
);
1852 vfree(info
->files
.data
);
1857 /* Here is the structure in which status of each thread is captured. */
1858 struct elf_thread_status
1860 struct list_head list
;
1861 struct elf_prstatus prstatus
; /* NT_PRSTATUS */
1862 elf_fpregset_t fpu
; /* NT_PRFPREG */
1863 struct task_struct
*thread
;
1864 #ifdef ELF_CORE_COPY_XFPREGS
1865 elf_fpxregset_t xfpu
; /* ELF_CORE_XFPREG_TYPE */
1867 struct memelfnote notes
[3];
1872 * In order to add the specific thread information for the elf file format,
1873 * we need to keep a linked list of every threads pr_status and then create
1874 * a single section for them in the final core file.
1876 static int elf_dump_thread_status(long signr
, struct elf_thread_status
*t
)
1879 struct task_struct
*p
= t
->thread
;
1882 fill_prstatus(&t
->prstatus
, p
, signr
);
1883 elf_core_copy_task_regs(p
, &t
->prstatus
.pr_reg
);
1885 fill_note(&t
->notes
[0], "CORE", NT_PRSTATUS
, sizeof(t
->prstatus
),
1888 sz
+= notesize(&t
->notes
[0]);
1890 if ((t
->prstatus
.pr_fpvalid
= elf_core_copy_task_fpregs(p
, NULL
,
1892 fill_note(&t
->notes
[1], "CORE", NT_PRFPREG
, sizeof(t
->fpu
),
1895 sz
+= notesize(&t
->notes
[1]);
1898 #ifdef ELF_CORE_COPY_XFPREGS
1899 if (elf_core_copy_task_xfpregs(p
, &t
->xfpu
)) {
1900 fill_note(&t
->notes
[2], "LINUX", ELF_CORE_XFPREG_TYPE
,
1901 sizeof(t
->xfpu
), &t
->xfpu
);
1903 sz
+= notesize(&t
->notes
[2]);
1909 struct elf_note_info
{
1910 struct memelfnote
*notes
;
1911 struct memelfnote
*notes_files
;
1912 struct elf_prstatus
*prstatus
; /* NT_PRSTATUS */
1913 struct elf_prpsinfo
*psinfo
; /* NT_PRPSINFO */
1914 struct list_head thread_list
;
1915 elf_fpregset_t
*fpu
;
1916 #ifdef ELF_CORE_COPY_XFPREGS
1917 elf_fpxregset_t
*xfpu
;
1919 user_siginfo_t csigdata
;
1920 int thread_status_size
;
1924 static int elf_note_info_init(struct elf_note_info
*info
)
1926 memset(info
, 0, sizeof(*info
));
1927 INIT_LIST_HEAD(&info
->thread_list
);
1929 /* Allocate space for ELF notes */
1930 info
->notes
= kmalloc(8 * sizeof(struct memelfnote
), GFP_KERNEL
);
1933 info
->psinfo
= kmalloc(sizeof(*info
->psinfo
), GFP_KERNEL
);
1936 info
->prstatus
= kmalloc(sizeof(*info
->prstatus
), GFP_KERNEL
);
1937 if (!info
->prstatus
)
1939 info
->fpu
= kmalloc(sizeof(*info
->fpu
), GFP_KERNEL
);
1942 #ifdef ELF_CORE_COPY_XFPREGS
1943 info
->xfpu
= kmalloc(sizeof(*info
->xfpu
), GFP_KERNEL
);
1950 static int fill_note_info(struct elfhdr
*elf
, int phdrs
,
1951 struct elf_note_info
*info
,
1952 const siginfo_t
*siginfo
, struct pt_regs
*regs
)
1954 struct list_head
*t
;
1955 struct core_thread
*ct
;
1956 struct elf_thread_status
*ets
;
1958 if (!elf_note_info_init(info
))
1961 for (ct
= current
->mm
->core_state
->dumper
.next
;
1962 ct
; ct
= ct
->next
) {
1963 ets
= kzalloc(sizeof(*ets
), GFP_KERNEL
);
1967 ets
->thread
= ct
->task
;
1968 list_add(&ets
->list
, &info
->thread_list
);
1971 list_for_each(t
, &info
->thread_list
) {
1974 ets
= list_entry(t
, struct elf_thread_status
, list
);
1975 sz
= elf_dump_thread_status(siginfo
->si_signo
, ets
);
1976 info
->thread_status_size
+= sz
;
1978 /* now collect the dump for the current */
1979 memset(info
->prstatus
, 0, sizeof(*info
->prstatus
));
1980 fill_prstatus(info
->prstatus
, current
, siginfo
->si_signo
);
1981 elf_core_copy_regs(&info
->prstatus
->pr_reg
, regs
);
1984 fill_elf_header(elf
, phdrs
, ELF_ARCH
, ELF_CORE_EFLAGS
);
1987 * Set up the notes in similar form to SVR4 core dumps made
1988 * with info from their /proc.
1991 fill_note(info
->notes
+ 0, "CORE", NT_PRSTATUS
,
1992 sizeof(*info
->prstatus
), info
->prstatus
);
1993 fill_psinfo(info
->psinfo
, current
->group_leader
, current
->mm
);
1994 fill_note(info
->notes
+ 1, "CORE", NT_PRPSINFO
,
1995 sizeof(*info
->psinfo
), info
->psinfo
);
1997 fill_siginfo_note(info
->notes
+ 2, &info
->csigdata
, siginfo
);
1998 fill_auxv_note(info
->notes
+ 3, current
->mm
);
2001 if (fill_files_note(info
->notes
+ info
->numnote
) == 0) {
2002 info
->notes_files
= info
->notes
+ info
->numnote
;
2006 /* Try to dump the FPU. */
2007 info
->prstatus
->pr_fpvalid
= elf_core_copy_task_fpregs(current
, regs
,
2009 if (info
->prstatus
->pr_fpvalid
)
2010 fill_note(info
->notes
+ info
->numnote
++,
2011 "CORE", NT_PRFPREG
, sizeof(*info
->fpu
), info
->fpu
);
2012 #ifdef ELF_CORE_COPY_XFPREGS
2013 if (elf_core_copy_task_xfpregs(current
, info
->xfpu
))
2014 fill_note(info
->notes
+ info
->numnote
++,
2015 "LINUX", ELF_CORE_XFPREG_TYPE
,
2016 sizeof(*info
->xfpu
), info
->xfpu
);
2022 static size_t get_note_info_size(struct elf_note_info
*info
)
2027 for (i
= 0; i
< info
->numnote
; i
++)
2028 sz
+= notesize(info
->notes
+ i
);
2030 sz
+= info
->thread_status_size
;
2035 static int write_note_info(struct elf_note_info
*info
,
2036 struct coredump_params
*cprm
)
2039 struct list_head
*t
;
2041 for (i
= 0; i
< info
->numnote
; i
++)
2042 if (!writenote(info
->notes
+ i
, cprm
))
2045 /* write out the thread status notes section */
2046 list_for_each(t
, &info
->thread_list
) {
2047 struct elf_thread_status
*tmp
=
2048 list_entry(t
, struct elf_thread_status
, list
);
2050 for (i
= 0; i
< tmp
->num_notes
; i
++)
2051 if (!writenote(&tmp
->notes
[i
], cprm
))
2058 static void free_note_info(struct elf_note_info
*info
)
2060 while (!list_empty(&info
->thread_list
)) {
2061 struct list_head
*tmp
= info
->thread_list
.next
;
2063 kfree(list_entry(tmp
, struct elf_thread_status
, list
));
2066 /* Free data possibly allocated by fill_files_note(): */
2067 if (info
->notes_files
)
2068 vfree(info
->notes_files
->data
);
2070 kfree(info
->prstatus
);
2071 kfree(info
->psinfo
);
2074 #ifdef ELF_CORE_COPY_XFPREGS
2081 static struct vm_area_struct
*first_vma(struct task_struct
*tsk
,
2082 struct vm_area_struct
*gate_vma
)
2084 struct vm_area_struct
*ret
= tsk
->mm
->mmap
;
2091 * Helper function for iterating across a vma list. It ensures that the caller
2092 * will visit `gate_vma' prior to terminating the search.
2094 static struct vm_area_struct
*next_vma(struct vm_area_struct
*this_vma
,
2095 struct vm_area_struct
*gate_vma
)
2097 struct vm_area_struct
*ret
;
2099 ret
= this_vma
->vm_next
;
2102 if (this_vma
== gate_vma
)
2107 static void fill_extnum_info(struct elfhdr
*elf
, struct elf_shdr
*shdr4extnum
,
2108 elf_addr_t e_shoff
, int segs
)
2110 elf
->e_shoff
= e_shoff
;
2111 elf
->e_shentsize
= sizeof(*shdr4extnum
);
2113 elf
->e_shstrndx
= SHN_UNDEF
;
2115 memset(shdr4extnum
, 0, sizeof(*shdr4extnum
));
2117 shdr4extnum
->sh_type
= SHT_NULL
;
2118 shdr4extnum
->sh_size
= elf
->e_shnum
;
2119 shdr4extnum
->sh_link
= elf
->e_shstrndx
;
2120 shdr4extnum
->sh_info
= segs
;
2126 * This is a two-pass process; first we find the offsets of the bits,
2127 * and then they are actually written out. If we run out of core limit
2130 static int elf_core_dump(struct coredump_params
*cprm
)
2135 size_t vma_data_size
= 0;
2136 struct vm_area_struct
*vma
, *gate_vma
;
2137 struct elfhdr
*elf
= NULL
;
2138 loff_t offset
= 0, dataoff
;
2139 struct elf_note_info info
= { };
2140 struct elf_phdr
*phdr4note
= NULL
;
2141 struct elf_shdr
*shdr4extnum
= NULL
;
2144 elf_addr_t
*vma_filesz
= NULL
;
2147 * We no longer stop all VM operations.
2149 * This is because those proceses that could possibly change map_count
2150 * or the mmap / vma pages are now blocked in do_exit on current
2151 * finishing this core dump.
2153 * Only ptrace can touch these memory addresses, but it doesn't change
2154 * the map_count or the pages allocated. So no possibility of crashing
2155 * exists while dumping the mm->vm_next areas to the core file.
2158 /* alloc memory for large data structures: too large to be on stack */
2159 elf
= kmalloc(sizeof(*elf
), GFP_KERNEL
);
2163 * The number of segs are recored into ELF header as 16bit value.
2164 * Please check DEFAULT_MAX_MAP_COUNT definition when you modify here.
2166 segs
= current
->mm
->map_count
;
2167 segs
+= elf_core_extra_phdrs();
2169 gate_vma
= get_gate_vma(current
->mm
);
2170 if (gate_vma
!= NULL
)
2173 /* for notes section */
2176 /* If segs > PN_XNUM(0xffff), then e_phnum overflows. To avoid
2177 * this, kernel supports extended numbering. Have a look at
2178 * include/linux/elf.h for further information. */
2179 e_phnum
= segs
> PN_XNUM
? PN_XNUM
: segs
;
2182 * Collect all the non-memory information about the process for the
2183 * notes. This also sets up the file header.
2185 if (!fill_note_info(elf
, e_phnum
, &info
, cprm
->siginfo
, cprm
->regs
))
2193 offset
+= sizeof(*elf
); /* Elf header */
2194 offset
+= segs
* sizeof(struct elf_phdr
); /* Program headers */
2196 /* Write notes phdr entry */
2198 size_t sz
= get_note_info_size(&info
);
2200 sz
+= elf_coredump_extra_notes_size();
2202 phdr4note
= kmalloc(sizeof(*phdr4note
), GFP_KERNEL
);
2206 fill_elf_note_phdr(phdr4note
, sz
, offset
);
2210 dataoff
= offset
= roundup(offset
, ELF_EXEC_PAGESIZE
);
2212 vma_filesz
= kmalloc_array(segs
- 1, sizeof(*vma_filesz
), GFP_KERNEL
);
2216 for (i
= 0, vma
= first_vma(current
, gate_vma
); vma
!= NULL
;
2217 vma
= next_vma(vma
, gate_vma
)) {
2218 unsigned long dump_size
;
2220 dump_size
= vma_dump_size(vma
, cprm
->mm_flags
);
2221 vma_filesz
[i
++] = dump_size
;
2222 vma_data_size
+= dump_size
;
2225 offset
+= vma_data_size
;
2226 offset
+= elf_core_extra_data_size();
2229 if (e_phnum
== PN_XNUM
) {
2230 shdr4extnum
= kmalloc(sizeof(*shdr4extnum
), GFP_KERNEL
);
2233 fill_extnum_info(elf
, shdr4extnum
, e_shoff
, segs
);
2238 if (!dump_emit(cprm
, elf
, sizeof(*elf
)))
2241 if (!dump_emit(cprm
, phdr4note
, sizeof(*phdr4note
)))
2244 /* Write program headers for segments dump */
2245 for (i
= 0, vma
= first_vma(current
, gate_vma
); vma
!= NULL
;
2246 vma
= next_vma(vma
, gate_vma
)) {
2247 struct elf_phdr phdr
;
2249 phdr
.p_type
= PT_LOAD
;
2250 phdr
.p_offset
= offset
;
2251 phdr
.p_vaddr
= vma
->vm_start
;
2253 phdr
.p_filesz
= vma_filesz
[i
++];
2254 phdr
.p_memsz
= vma
->vm_end
- vma
->vm_start
;
2255 offset
+= phdr
.p_filesz
;
2256 phdr
.p_flags
= vma
->vm_flags
& VM_READ
? PF_R
: 0;
2257 if (vma
->vm_flags
& VM_WRITE
)
2258 phdr
.p_flags
|= PF_W
;
2259 if (vma
->vm_flags
& VM_EXEC
)
2260 phdr
.p_flags
|= PF_X
;
2261 phdr
.p_align
= ELF_EXEC_PAGESIZE
;
2263 if (!dump_emit(cprm
, &phdr
, sizeof(phdr
)))
2267 if (!elf_core_write_extra_phdrs(cprm
, offset
))
2270 /* write out the notes section */
2271 if (!write_note_info(&info
, cprm
))
2274 if (elf_coredump_extra_notes_write(cprm
))
2278 if (!dump_skip(cprm
, dataoff
- cprm
->pos
))
2281 for (i
= 0, vma
= first_vma(current
, gate_vma
); vma
!= NULL
;
2282 vma
= next_vma(vma
, gate_vma
)) {
2286 end
= vma
->vm_start
+ vma_filesz
[i
++];
2288 for (addr
= vma
->vm_start
; addr
< end
; addr
+= PAGE_SIZE
) {
2292 page
= get_dump_page(addr
);
2294 void *kaddr
= kmap(page
);
2295 stop
= !dump_emit(cprm
, kaddr
, PAGE_SIZE
);
2299 stop
= !dump_skip(cprm
, PAGE_SIZE
);
2305 if (!elf_core_write_extra_data(cprm
))
2308 if (e_phnum
== PN_XNUM
) {
2309 if (!dump_emit(cprm
, shdr4extnum
, sizeof(*shdr4extnum
)))
2317 free_note_info(&info
);
2326 #endif /* CONFIG_ELF_CORE */
2328 static int __init
init_elf_binfmt(void)
2330 register_binfmt(&elf_format
);
2334 static void __exit
exit_elf_binfmt(void)
2336 /* Remove the COFF and ELF loaders. */
2337 unregister_binfmt(&elf_format
);
2340 core_initcall(init_elf_binfmt
);
2341 module_exit(exit_elf_binfmt
);
2342 MODULE_LICENSE("GPL");