x86/mm/pat: Don't report PAT on CPUs that don't support it
[linux/fpc-iii.git] / fs / exec.c
blobce0901e65c402f84c5de85ad1393b4dc6f347a39
1 /*
2 * linux/fs/exec.c
4 * Copyright (C) 1991, 1992 Linus Torvalds
5 */
7 /*
8 * #!-checking implemented by tytso.
9 */
11 * Demand-loading implemented 01.12.91 - no need to read anything but
12 * the header into memory. The inode of the executable is put into
13 * "current->executable", and page faults do the actual loading. Clean.
15 * Once more I can proudly say that linux stood up to being changed: it
16 * was less than 2 hours work to get demand-loading completely implemented.
18 * Demand loading changed July 1993 by Eric Youngdale. Use mmap instead,
19 * current->executable is only used by the procfs. This allows a dispatch
20 * table to check for several different types of binary formats. We keep
21 * trying until we recognize the file or we run out of supported binary
22 * formats.
25 #include <linux/slab.h>
26 #include <linux/file.h>
27 #include <linux/fdtable.h>
28 #include <linux/mm.h>
29 #include <linux/vmacache.h>
30 #include <linux/stat.h>
31 #include <linux/fcntl.h>
32 #include <linux/swap.h>
33 #include <linux/string.h>
34 #include <linux/init.h>
35 #include <linux/sched/mm.h>
36 #include <linux/sched/coredump.h>
37 #include <linux/sched/signal.h>
38 #include <linux/sched/numa_balancing.h>
39 #include <linux/sched/task.h>
40 #include <linux/pagemap.h>
41 #include <linux/perf_event.h>
42 #include <linux/highmem.h>
43 #include <linux/spinlock.h>
44 #include <linux/key.h>
45 #include <linux/personality.h>
46 #include <linux/binfmts.h>
47 #include <linux/utsname.h>
48 #include <linux/pid_namespace.h>
49 #include <linux/module.h>
50 #include <linux/namei.h>
51 #include <linux/mount.h>
52 #include <linux/security.h>
53 #include <linux/syscalls.h>
54 #include <linux/tsacct_kern.h>
55 #include <linux/cn_proc.h>
56 #include <linux/audit.h>
57 #include <linux/tracehook.h>
58 #include <linux/kmod.h>
59 #include <linux/fsnotify.h>
60 #include <linux/fs_struct.h>
61 #include <linux/pipe_fs_i.h>
62 #include <linux/oom.h>
63 #include <linux/compat.h>
64 #include <linux/vmalloc.h>
66 #include <linux/uaccess.h>
67 #include <asm/mmu_context.h>
68 #include <asm/tlb.h>
70 #include <trace/events/task.h>
71 #include "internal.h"
73 #include <trace/events/sched.h>
75 int suid_dumpable = 0;
77 static LIST_HEAD(formats);
78 static DEFINE_RWLOCK(binfmt_lock);
80 void __register_binfmt(struct linux_binfmt * fmt, int insert)
82 BUG_ON(!fmt);
83 if (WARN_ON(!fmt->load_binary))
84 return;
85 write_lock(&binfmt_lock);
86 insert ? list_add(&fmt->lh, &formats) :
87 list_add_tail(&fmt->lh, &formats);
88 write_unlock(&binfmt_lock);
91 EXPORT_SYMBOL(__register_binfmt);
93 void unregister_binfmt(struct linux_binfmt * fmt)
95 write_lock(&binfmt_lock);
96 list_del(&fmt->lh);
97 write_unlock(&binfmt_lock);
100 EXPORT_SYMBOL(unregister_binfmt);
102 static inline void put_binfmt(struct linux_binfmt * fmt)
104 module_put(fmt->module);
107 bool path_noexec(const struct path *path)
109 return (path->mnt->mnt_flags & MNT_NOEXEC) ||
110 (path->mnt->mnt_sb->s_iflags & SB_I_NOEXEC);
113 #ifdef CONFIG_USELIB
115 * Note that a shared library must be both readable and executable due to
116 * security reasons.
118 * Also note that we take the address to load from from the file itself.
120 SYSCALL_DEFINE1(uselib, const char __user *, library)
122 struct linux_binfmt *fmt;
123 struct file *file;
124 struct filename *tmp = getname(library);
125 int error = PTR_ERR(tmp);
126 static const struct open_flags uselib_flags = {
127 .open_flag = O_LARGEFILE | O_RDONLY | __FMODE_EXEC,
128 .acc_mode = MAY_READ | MAY_EXEC,
129 .intent = LOOKUP_OPEN,
130 .lookup_flags = LOOKUP_FOLLOW,
133 if (IS_ERR(tmp))
134 goto out;
136 file = do_filp_open(AT_FDCWD, tmp, &uselib_flags);
137 putname(tmp);
138 error = PTR_ERR(file);
139 if (IS_ERR(file))
140 goto out;
142 error = -EINVAL;
143 if (!S_ISREG(file_inode(file)->i_mode))
144 goto exit;
146 error = -EACCES;
147 if (path_noexec(&file->f_path))
148 goto exit;
150 fsnotify_open(file);
152 error = -ENOEXEC;
154 read_lock(&binfmt_lock);
155 list_for_each_entry(fmt, &formats, lh) {
156 if (!fmt->load_shlib)
157 continue;
158 if (!try_module_get(fmt->module))
159 continue;
160 read_unlock(&binfmt_lock);
161 error = fmt->load_shlib(file);
162 read_lock(&binfmt_lock);
163 put_binfmt(fmt);
164 if (error != -ENOEXEC)
165 break;
167 read_unlock(&binfmt_lock);
168 exit:
169 fput(file);
170 out:
171 return error;
173 #endif /* #ifdef CONFIG_USELIB */
175 #ifdef CONFIG_MMU
177 * The nascent bprm->mm is not visible until exec_mmap() but it can
178 * use a lot of memory, account these pages in current->mm temporary
179 * for oom_badness()->get_mm_rss(). Once exec succeeds or fails, we
180 * change the counter back via acct_arg_size(0).
182 static void acct_arg_size(struct linux_binprm *bprm, unsigned long pages)
184 struct mm_struct *mm = current->mm;
185 long diff = (long)(pages - bprm->vma_pages);
187 if (!mm || !diff)
188 return;
190 bprm->vma_pages = pages;
191 add_mm_counter(mm, MM_ANONPAGES, diff);
194 static struct page *get_arg_page(struct linux_binprm *bprm, unsigned long pos,
195 int write)
197 struct page *page;
198 int ret;
199 unsigned int gup_flags = FOLL_FORCE;
201 #ifdef CONFIG_STACK_GROWSUP
202 if (write) {
203 ret = expand_downwards(bprm->vma, pos);
204 if (ret < 0)
205 return NULL;
207 #endif
209 if (write)
210 gup_flags |= FOLL_WRITE;
213 * We are doing an exec(). 'current' is the process
214 * doing the exec and bprm->mm is the new process's mm.
216 ret = get_user_pages_remote(current, bprm->mm, pos, 1, gup_flags,
217 &page, NULL, NULL);
218 if (ret <= 0)
219 return NULL;
221 if (write) {
222 unsigned long size = bprm->vma->vm_end - bprm->vma->vm_start;
223 unsigned long ptr_size;
224 struct rlimit *rlim;
227 * Since the stack will hold pointers to the strings, we
228 * must account for them as well.
230 * The size calculation is the entire vma while each arg page is
231 * built, so each time we get here it's calculating how far it
232 * is currently (rather than each call being just the newly
233 * added size from the arg page). As a result, we need to
234 * always add the entire size of the pointers, so that on the
235 * last call to get_arg_page() we'll actually have the entire
236 * correct size.
238 ptr_size = (bprm->argc + bprm->envc) * sizeof(void *);
239 if (ptr_size > ULONG_MAX - size)
240 goto fail;
241 size += ptr_size;
243 acct_arg_size(bprm, size / PAGE_SIZE);
246 * We've historically supported up to 32 pages (ARG_MAX)
247 * of argument strings even with small stacks
249 if (size <= ARG_MAX)
250 return page;
253 * Limit to 1/4-th the stack size for the argv+env strings.
254 * This ensures that:
255 * - the remaining binfmt code will not run out of stack space,
256 * - the program will have a reasonable amount of stack left
257 * to work from.
259 rlim = current->signal->rlim;
260 if (size > READ_ONCE(rlim[RLIMIT_STACK].rlim_cur) / 4)
261 goto fail;
264 return page;
266 fail:
267 put_page(page);
268 return NULL;
271 static void put_arg_page(struct page *page)
273 put_page(page);
276 static void free_arg_pages(struct linux_binprm *bprm)
280 static void flush_arg_page(struct linux_binprm *bprm, unsigned long pos,
281 struct page *page)
283 flush_cache_page(bprm->vma, pos, page_to_pfn(page));
286 static int __bprm_mm_init(struct linux_binprm *bprm)
288 int err;
289 struct vm_area_struct *vma = NULL;
290 struct mm_struct *mm = bprm->mm;
292 bprm->vma = vma = kmem_cache_zalloc(vm_area_cachep, GFP_KERNEL);
293 if (!vma)
294 return -ENOMEM;
296 if (down_write_killable(&mm->mmap_sem)) {
297 err = -EINTR;
298 goto err_free;
300 vma->vm_mm = mm;
303 * Place the stack at the largest stack address the architecture
304 * supports. Later, we'll move this to an appropriate place. We don't
305 * use STACK_TOP because that can depend on attributes which aren't
306 * configured yet.
308 BUILD_BUG_ON(VM_STACK_FLAGS & VM_STACK_INCOMPLETE_SETUP);
309 vma->vm_end = STACK_TOP_MAX;
310 vma->vm_start = vma->vm_end - PAGE_SIZE;
311 vma->vm_flags = VM_SOFTDIRTY | VM_STACK_FLAGS | VM_STACK_INCOMPLETE_SETUP;
312 vma->vm_page_prot = vm_get_page_prot(vma->vm_flags);
313 INIT_LIST_HEAD(&vma->anon_vma_chain);
315 err = insert_vm_struct(mm, vma);
316 if (err)
317 goto err;
319 mm->stack_vm = mm->total_vm = 1;
320 arch_bprm_mm_init(mm, vma);
321 up_write(&mm->mmap_sem);
322 bprm->p = vma->vm_end - sizeof(void *);
323 return 0;
324 err:
325 up_write(&mm->mmap_sem);
326 err_free:
327 bprm->vma = NULL;
328 kmem_cache_free(vm_area_cachep, vma);
329 return err;
332 static bool valid_arg_len(struct linux_binprm *bprm, long len)
334 return len <= MAX_ARG_STRLEN;
337 #else
339 static inline void acct_arg_size(struct linux_binprm *bprm, unsigned long pages)
343 static struct page *get_arg_page(struct linux_binprm *bprm, unsigned long pos,
344 int write)
346 struct page *page;
348 page = bprm->page[pos / PAGE_SIZE];
349 if (!page && write) {
350 page = alloc_page(GFP_HIGHUSER|__GFP_ZERO);
351 if (!page)
352 return NULL;
353 bprm->page[pos / PAGE_SIZE] = page;
356 return page;
359 static void put_arg_page(struct page *page)
363 static void free_arg_page(struct linux_binprm *bprm, int i)
365 if (bprm->page[i]) {
366 __free_page(bprm->page[i]);
367 bprm->page[i] = NULL;
371 static void free_arg_pages(struct linux_binprm *bprm)
373 int i;
375 for (i = 0; i < MAX_ARG_PAGES; i++)
376 free_arg_page(bprm, i);
379 static void flush_arg_page(struct linux_binprm *bprm, unsigned long pos,
380 struct page *page)
384 static int __bprm_mm_init(struct linux_binprm *bprm)
386 bprm->p = PAGE_SIZE * MAX_ARG_PAGES - sizeof(void *);
387 return 0;
390 static bool valid_arg_len(struct linux_binprm *bprm, long len)
392 return len <= bprm->p;
395 #endif /* CONFIG_MMU */
398 * Create a new mm_struct and populate it with a temporary stack
399 * vm_area_struct. We don't have enough context at this point to set the stack
400 * flags, permissions, and offset, so we use temporary values. We'll update
401 * them later in setup_arg_pages().
403 static int bprm_mm_init(struct linux_binprm *bprm)
405 int err;
406 struct mm_struct *mm = NULL;
408 bprm->mm = mm = mm_alloc();
409 err = -ENOMEM;
410 if (!mm)
411 goto err;
413 err = __bprm_mm_init(bprm);
414 if (err)
415 goto err;
417 return 0;
419 err:
420 if (mm) {
421 bprm->mm = NULL;
422 mmdrop(mm);
425 return err;
428 struct user_arg_ptr {
429 #ifdef CONFIG_COMPAT
430 bool is_compat;
431 #endif
432 union {
433 const char __user *const __user *native;
434 #ifdef CONFIG_COMPAT
435 const compat_uptr_t __user *compat;
436 #endif
437 } ptr;
440 static const char __user *get_user_arg_ptr(struct user_arg_ptr argv, int nr)
442 const char __user *native;
444 #ifdef CONFIG_COMPAT
445 if (unlikely(argv.is_compat)) {
446 compat_uptr_t compat;
448 if (get_user(compat, argv.ptr.compat + nr))
449 return ERR_PTR(-EFAULT);
451 return compat_ptr(compat);
453 #endif
455 if (get_user(native, argv.ptr.native + nr))
456 return ERR_PTR(-EFAULT);
458 return native;
462 * count() counts the number of strings in array ARGV.
464 static int count(struct user_arg_ptr argv, int max)
466 int i = 0;
468 if (argv.ptr.native != NULL) {
469 for (;;) {
470 const char __user *p = get_user_arg_ptr(argv, i);
472 if (!p)
473 break;
475 if (IS_ERR(p))
476 return -EFAULT;
478 if (i >= max)
479 return -E2BIG;
480 ++i;
482 if (fatal_signal_pending(current))
483 return -ERESTARTNOHAND;
484 cond_resched();
487 return i;
491 * 'copy_strings()' copies argument/environment strings from the old
492 * processes's memory to the new process's stack. The call to get_user_pages()
493 * ensures the destination page is created and not swapped out.
495 static int copy_strings(int argc, struct user_arg_ptr argv,
496 struct linux_binprm *bprm)
498 struct page *kmapped_page = NULL;
499 char *kaddr = NULL;
500 unsigned long kpos = 0;
501 int ret;
503 while (argc-- > 0) {
504 const char __user *str;
505 int len;
506 unsigned long pos;
508 ret = -EFAULT;
509 str = get_user_arg_ptr(argv, argc);
510 if (IS_ERR(str))
511 goto out;
513 len = strnlen_user(str, MAX_ARG_STRLEN);
514 if (!len)
515 goto out;
517 ret = -E2BIG;
518 if (!valid_arg_len(bprm, len))
519 goto out;
521 /* We're going to work our way backwords. */
522 pos = bprm->p;
523 str += len;
524 bprm->p -= len;
526 while (len > 0) {
527 int offset, bytes_to_copy;
529 if (fatal_signal_pending(current)) {
530 ret = -ERESTARTNOHAND;
531 goto out;
533 cond_resched();
535 offset = pos % PAGE_SIZE;
536 if (offset == 0)
537 offset = PAGE_SIZE;
539 bytes_to_copy = offset;
540 if (bytes_to_copy > len)
541 bytes_to_copy = len;
543 offset -= bytes_to_copy;
544 pos -= bytes_to_copy;
545 str -= bytes_to_copy;
546 len -= bytes_to_copy;
548 if (!kmapped_page || kpos != (pos & PAGE_MASK)) {
549 struct page *page;
551 page = get_arg_page(bprm, pos, 1);
552 if (!page) {
553 ret = -E2BIG;
554 goto out;
557 if (kmapped_page) {
558 flush_kernel_dcache_page(kmapped_page);
559 kunmap(kmapped_page);
560 put_arg_page(kmapped_page);
562 kmapped_page = page;
563 kaddr = kmap(kmapped_page);
564 kpos = pos & PAGE_MASK;
565 flush_arg_page(bprm, kpos, kmapped_page);
567 if (copy_from_user(kaddr+offset, str, bytes_to_copy)) {
568 ret = -EFAULT;
569 goto out;
573 ret = 0;
574 out:
575 if (kmapped_page) {
576 flush_kernel_dcache_page(kmapped_page);
577 kunmap(kmapped_page);
578 put_arg_page(kmapped_page);
580 return ret;
584 * Like copy_strings, but get argv and its values from kernel memory.
586 int copy_strings_kernel(int argc, const char *const *__argv,
587 struct linux_binprm *bprm)
589 int r;
590 mm_segment_t oldfs = get_fs();
591 struct user_arg_ptr argv = {
592 .ptr.native = (const char __user *const __user *)__argv,
595 set_fs(KERNEL_DS);
596 r = copy_strings(argc, argv, bprm);
597 set_fs(oldfs);
599 return r;
601 EXPORT_SYMBOL(copy_strings_kernel);
603 #ifdef CONFIG_MMU
606 * During bprm_mm_init(), we create a temporary stack at STACK_TOP_MAX. Once
607 * the binfmt code determines where the new stack should reside, we shift it to
608 * its final location. The process proceeds as follows:
610 * 1) Use shift to calculate the new vma endpoints.
611 * 2) Extend vma to cover both the old and new ranges. This ensures the
612 * arguments passed to subsequent functions are consistent.
613 * 3) Move vma's page tables to the new range.
614 * 4) Free up any cleared pgd range.
615 * 5) Shrink the vma to cover only the new range.
617 static int shift_arg_pages(struct vm_area_struct *vma, unsigned long shift)
619 struct mm_struct *mm = vma->vm_mm;
620 unsigned long old_start = vma->vm_start;
621 unsigned long old_end = vma->vm_end;
622 unsigned long length = old_end - old_start;
623 unsigned long new_start = old_start - shift;
624 unsigned long new_end = old_end - shift;
625 struct mmu_gather tlb;
627 BUG_ON(new_start > new_end);
630 * ensure there are no vmas between where we want to go
631 * and where we are
633 if (vma != find_vma(mm, new_start))
634 return -EFAULT;
637 * cover the whole range: [new_start, old_end)
639 if (vma_adjust(vma, new_start, old_end, vma->vm_pgoff, NULL))
640 return -ENOMEM;
643 * move the page tables downwards, on failure we rely on
644 * process cleanup to remove whatever mess we made.
646 if (length != move_page_tables(vma, old_start,
647 vma, new_start, length, false))
648 return -ENOMEM;
650 lru_add_drain();
651 tlb_gather_mmu(&tlb, mm, old_start, old_end);
652 if (new_end > old_start) {
654 * when the old and new regions overlap clear from new_end.
656 free_pgd_range(&tlb, new_end, old_end, new_end,
657 vma->vm_next ? vma->vm_next->vm_start : USER_PGTABLES_CEILING);
658 } else {
660 * otherwise, clean from old_start; this is done to not touch
661 * the address space in [new_end, old_start) some architectures
662 * have constraints on va-space that make this illegal (IA64) -
663 * for the others its just a little faster.
665 free_pgd_range(&tlb, old_start, old_end, new_end,
666 vma->vm_next ? vma->vm_next->vm_start : USER_PGTABLES_CEILING);
668 tlb_finish_mmu(&tlb, old_start, old_end);
671 * Shrink the vma to just the new range. Always succeeds.
673 vma_adjust(vma, new_start, new_end, vma->vm_pgoff, NULL);
675 return 0;
679 * Finalizes the stack vm_area_struct. The flags and permissions are updated,
680 * the stack is optionally relocated, and some extra space is added.
682 int setup_arg_pages(struct linux_binprm *bprm,
683 unsigned long stack_top,
684 int executable_stack)
686 unsigned long ret;
687 unsigned long stack_shift;
688 struct mm_struct *mm = current->mm;
689 struct vm_area_struct *vma = bprm->vma;
690 struct vm_area_struct *prev = NULL;
691 unsigned long vm_flags;
692 unsigned long stack_base;
693 unsigned long stack_size;
694 unsigned long stack_expand;
695 unsigned long rlim_stack;
697 #ifdef CONFIG_STACK_GROWSUP
698 /* Limit stack size */
699 stack_base = rlimit_max(RLIMIT_STACK);
700 if (stack_base > STACK_SIZE_MAX)
701 stack_base = STACK_SIZE_MAX;
703 /* Add space for stack randomization. */
704 stack_base += (STACK_RND_MASK << PAGE_SHIFT);
706 /* Make sure we didn't let the argument array grow too large. */
707 if (vma->vm_end - vma->vm_start > stack_base)
708 return -ENOMEM;
710 stack_base = PAGE_ALIGN(stack_top - stack_base);
712 stack_shift = vma->vm_start - stack_base;
713 mm->arg_start = bprm->p - stack_shift;
714 bprm->p = vma->vm_end - stack_shift;
715 #else
716 stack_top = arch_align_stack(stack_top);
717 stack_top = PAGE_ALIGN(stack_top);
719 if (unlikely(stack_top < mmap_min_addr) ||
720 unlikely(vma->vm_end - vma->vm_start >= stack_top - mmap_min_addr))
721 return -ENOMEM;
723 stack_shift = vma->vm_end - stack_top;
725 bprm->p -= stack_shift;
726 mm->arg_start = bprm->p;
727 #endif
729 if (bprm->loader)
730 bprm->loader -= stack_shift;
731 bprm->exec -= stack_shift;
733 if (down_write_killable(&mm->mmap_sem))
734 return -EINTR;
736 vm_flags = VM_STACK_FLAGS;
739 * Adjust stack execute permissions; explicitly enable for
740 * EXSTACK_ENABLE_X, disable for EXSTACK_DISABLE_X and leave alone
741 * (arch default) otherwise.
743 if (unlikely(executable_stack == EXSTACK_ENABLE_X))
744 vm_flags |= VM_EXEC;
745 else if (executable_stack == EXSTACK_DISABLE_X)
746 vm_flags &= ~VM_EXEC;
747 vm_flags |= mm->def_flags;
748 vm_flags |= VM_STACK_INCOMPLETE_SETUP;
750 ret = mprotect_fixup(vma, &prev, vma->vm_start, vma->vm_end,
751 vm_flags);
752 if (ret)
753 goto out_unlock;
754 BUG_ON(prev != vma);
756 /* Move stack pages down in memory. */
757 if (stack_shift) {
758 ret = shift_arg_pages(vma, stack_shift);
759 if (ret)
760 goto out_unlock;
763 /* mprotect_fixup is overkill to remove the temporary stack flags */
764 vma->vm_flags &= ~VM_STACK_INCOMPLETE_SETUP;
766 stack_expand = 131072UL; /* randomly 32*4k (or 2*64k) pages */
767 stack_size = vma->vm_end - vma->vm_start;
769 * Align this down to a page boundary as expand_stack
770 * will align it up.
772 rlim_stack = rlimit(RLIMIT_STACK) & PAGE_MASK;
773 #ifdef CONFIG_STACK_GROWSUP
774 if (stack_size + stack_expand > rlim_stack)
775 stack_base = vma->vm_start + rlim_stack;
776 else
777 stack_base = vma->vm_end + stack_expand;
778 #else
779 if (stack_size + stack_expand > rlim_stack)
780 stack_base = vma->vm_end - rlim_stack;
781 else
782 stack_base = vma->vm_start - stack_expand;
783 #endif
784 current->mm->start_stack = bprm->p;
785 ret = expand_stack(vma, stack_base);
786 if (ret)
787 ret = -EFAULT;
789 out_unlock:
790 up_write(&mm->mmap_sem);
791 return ret;
793 EXPORT_SYMBOL(setup_arg_pages);
795 #else
798 * Transfer the program arguments and environment from the holding pages
799 * onto the stack. The provided stack pointer is adjusted accordingly.
801 int transfer_args_to_stack(struct linux_binprm *bprm,
802 unsigned long *sp_location)
804 unsigned long index, stop, sp;
805 int ret = 0;
807 stop = bprm->p >> PAGE_SHIFT;
808 sp = *sp_location;
810 for (index = MAX_ARG_PAGES - 1; index >= stop; index--) {
811 unsigned int offset = index == stop ? bprm->p & ~PAGE_MASK : 0;
812 char *src = kmap(bprm->page[index]) + offset;
813 sp -= PAGE_SIZE - offset;
814 if (copy_to_user((void *) sp, src, PAGE_SIZE - offset) != 0)
815 ret = -EFAULT;
816 kunmap(bprm->page[index]);
817 if (ret)
818 goto out;
821 *sp_location = sp;
823 out:
824 return ret;
826 EXPORT_SYMBOL(transfer_args_to_stack);
828 #endif /* CONFIG_MMU */
830 static struct file *do_open_execat(int fd, struct filename *name, int flags)
832 struct file *file;
833 int err;
834 struct open_flags open_exec_flags = {
835 .open_flag = O_LARGEFILE | O_RDONLY | __FMODE_EXEC,
836 .acc_mode = MAY_EXEC,
837 .intent = LOOKUP_OPEN,
838 .lookup_flags = LOOKUP_FOLLOW,
841 if ((flags & ~(AT_SYMLINK_NOFOLLOW | AT_EMPTY_PATH)) != 0)
842 return ERR_PTR(-EINVAL);
843 if (flags & AT_SYMLINK_NOFOLLOW)
844 open_exec_flags.lookup_flags &= ~LOOKUP_FOLLOW;
845 if (flags & AT_EMPTY_PATH)
846 open_exec_flags.lookup_flags |= LOOKUP_EMPTY;
848 file = do_filp_open(fd, name, &open_exec_flags);
849 if (IS_ERR(file))
850 goto out;
852 err = -EACCES;
853 if (!S_ISREG(file_inode(file)->i_mode))
854 goto exit;
856 if (path_noexec(&file->f_path))
857 goto exit;
859 err = deny_write_access(file);
860 if (err)
861 goto exit;
863 if (name->name[0] != '\0')
864 fsnotify_open(file);
866 out:
867 return file;
869 exit:
870 fput(file);
871 return ERR_PTR(err);
874 struct file *open_exec(const char *name)
876 struct filename *filename = getname_kernel(name);
877 struct file *f = ERR_CAST(filename);
879 if (!IS_ERR(filename)) {
880 f = do_open_execat(AT_FDCWD, filename, 0);
881 putname(filename);
883 return f;
885 EXPORT_SYMBOL(open_exec);
887 int kernel_read(struct file *file, loff_t offset,
888 char *addr, unsigned long count)
890 mm_segment_t old_fs;
891 loff_t pos = offset;
892 int result;
894 old_fs = get_fs();
895 set_fs(get_ds());
896 /* The cast to a user pointer is valid due to the set_fs() */
897 result = vfs_read(file, (void __user *)addr, count, &pos);
898 set_fs(old_fs);
899 return result;
902 EXPORT_SYMBOL(kernel_read);
904 int kernel_read_file(struct file *file, void **buf, loff_t *size,
905 loff_t max_size, enum kernel_read_file_id id)
907 loff_t i_size, pos;
908 ssize_t bytes = 0;
909 int ret;
911 if (!S_ISREG(file_inode(file)->i_mode) || max_size < 0)
912 return -EINVAL;
914 ret = security_kernel_read_file(file, id);
915 if (ret)
916 return ret;
918 ret = deny_write_access(file);
919 if (ret)
920 return ret;
922 i_size = i_size_read(file_inode(file));
923 if (max_size > 0 && i_size > max_size) {
924 ret = -EFBIG;
925 goto out;
927 if (i_size <= 0) {
928 ret = -EINVAL;
929 goto out;
932 if (id != READING_FIRMWARE_PREALLOC_BUFFER)
933 *buf = vmalloc(i_size);
934 if (!*buf) {
935 ret = -ENOMEM;
936 goto out;
939 pos = 0;
940 while (pos < i_size) {
941 bytes = kernel_read(file, pos, (char *)(*buf) + pos,
942 i_size - pos);
943 if (bytes < 0) {
944 ret = bytes;
945 goto out;
948 if (bytes == 0)
949 break;
950 pos += bytes;
953 if (pos != i_size) {
954 ret = -EIO;
955 goto out_free;
958 ret = security_kernel_post_read_file(file, *buf, i_size, id);
959 if (!ret)
960 *size = pos;
962 out_free:
963 if (ret < 0) {
964 if (id != READING_FIRMWARE_PREALLOC_BUFFER) {
965 vfree(*buf);
966 *buf = NULL;
970 out:
971 allow_write_access(file);
972 return ret;
974 EXPORT_SYMBOL_GPL(kernel_read_file);
976 int kernel_read_file_from_path(char *path, void **buf, loff_t *size,
977 loff_t max_size, enum kernel_read_file_id id)
979 struct file *file;
980 int ret;
982 if (!path || !*path)
983 return -EINVAL;
985 file = filp_open(path, O_RDONLY, 0);
986 if (IS_ERR(file))
987 return PTR_ERR(file);
989 ret = kernel_read_file(file, buf, size, max_size, id);
990 fput(file);
991 return ret;
993 EXPORT_SYMBOL_GPL(kernel_read_file_from_path);
995 int kernel_read_file_from_fd(int fd, void **buf, loff_t *size, loff_t max_size,
996 enum kernel_read_file_id id)
998 struct fd f = fdget(fd);
999 int ret = -EBADF;
1001 if (!f.file)
1002 goto out;
1004 ret = kernel_read_file(f.file, buf, size, max_size, id);
1005 out:
1006 fdput(f);
1007 return ret;
1009 EXPORT_SYMBOL_GPL(kernel_read_file_from_fd);
1011 ssize_t read_code(struct file *file, unsigned long addr, loff_t pos, size_t len)
1013 ssize_t res = vfs_read(file, (void __user *)addr, len, &pos);
1014 if (res > 0)
1015 flush_icache_range(addr, addr + len);
1016 return res;
1018 EXPORT_SYMBOL(read_code);
1020 static int exec_mmap(struct mm_struct *mm)
1022 struct task_struct *tsk;
1023 struct mm_struct *old_mm, *active_mm;
1025 /* Notify parent that we're no longer interested in the old VM */
1026 tsk = current;
1027 old_mm = current->mm;
1028 mm_release(tsk, old_mm);
1030 if (old_mm) {
1031 sync_mm_rss(old_mm);
1033 * Make sure that if there is a core dump in progress
1034 * for the old mm, we get out and die instead of going
1035 * through with the exec. We must hold mmap_sem around
1036 * checking core_state and changing tsk->mm.
1038 down_read(&old_mm->mmap_sem);
1039 if (unlikely(old_mm->core_state)) {
1040 up_read(&old_mm->mmap_sem);
1041 return -EINTR;
1044 task_lock(tsk);
1045 active_mm = tsk->active_mm;
1046 tsk->mm = mm;
1047 tsk->active_mm = mm;
1048 activate_mm(active_mm, mm);
1049 tsk->mm->vmacache_seqnum = 0;
1050 vmacache_flush(tsk);
1051 task_unlock(tsk);
1052 if (old_mm) {
1053 up_read(&old_mm->mmap_sem);
1054 BUG_ON(active_mm != old_mm);
1055 setmax_mm_hiwater_rss(&tsk->signal->maxrss, old_mm);
1056 mm_update_next_owner(old_mm);
1057 mmput(old_mm);
1058 return 0;
1060 mmdrop(active_mm);
1061 return 0;
1065 * This function makes sure the current process has its own signal table,
1066 * so that flush_signal_handlers can later reset the handlers without
1067 * disturbing other processes. (Other processes might share the signal
1068 * table via the CLONE_SIGHAND option to clone().)
1070 static int de_thread(struct task_struct *tsk)
1072 struct signal_struct *sig = tsk->signal;
1073 struct sighand_struct *oldsighand = tsk->sighand;
1074 spinlock_t *lock = &oldsighand->siglock;
1076 if (thread_group_empty(tsk))
1077 goto no_thread_group;
1080 * Kill all other threads in the thread group.
1082 spin_lock_irq(lock);
1083 if (signal_group_exit(sig)) {
1085 * Another group action in progress, just
1086 * return so that the signal is processed.
1088 spin_unlock_irq(lock);
1089 return -EAGAIN;
1092 sig->group_exit_task = tsk;
1093 sig->notify_count = zap_other_threads(tsk);
1094 if (!thread_group_leader(tsk))
1095 sig->notify_count--;
1097 while (sig->notify_count) {
1098 __set_current_state(TASK_KILLABLE);
1099 spin_unlock_irq(lock);
1100 schedule();
1101 if (unlikely(__fatal_signal_pending(tsk)))
1102 goto killed;
1103 spin_lock_irq(lock);
1105 spin_unlock_irq(lock);
1108 * At this point all other threads have exited, all we have to
1109 * do is to wait for the thread group leader to become inactive,
1110 * and to assume its PID:
1112 if (!thread_group_leader(tsk)) {
1113 struct task_struct *leader = tsk->group_leader;
1115 for (;;) {
1116 cgroup_threadgroup_change_begin(tsk);
1117 write_lock_irq(&tasklist_lock);
1119 * Do this under tasklist_lock to ensure that
1120 * exit_notify() can't miss ->group_exit_task
1122 sig->notify_count = -1;
1123 if (likely(leader->exit_state))
1124 break;
1125 __set_current_state(TASK_KILLABLE);
1126 write_unlock_irq(&tasklist_lock);
1127 cgroup_threadgroup_change_end(tsk);
1128 schedule();
1129 if (unlikely(__fatal_signal_pending(tsk)))
1130 goto killed;
1134 * The only record we have of the real-time age of a
1135 * process, regardless of execs it's done, is start_time.
1136 * All the past CPU time is accumulated in signal_struct
1137 * from sister threads now dead. But in this non-leader
1138 * exec, nothing survives from the original leader thread,
1139 * whose birth marks the true age of this process now.
1140 * When we take on its identity by switching to its PID, we
1141 * also take its birthdate (always earlier than our own).
1143 tsk->start_time = leader->start_time;
1144 tsk->real_start_time = leader->real_start_time;
1146 BUG_ON(!same_thread_group(leader, tsk));
1147 BUG_ON(has_group_leader_pid(tsk));
1149 * An exec() starts a new thread group with the
1150 * TGID of the previous thread group. Rehash the
1151 * two threads with a switched PID, and release
1152 * the former thread group leader:
1155 /* Become a process group leader with the old leader's pid.
1156 * The old leader becomes a thread of the this thread group.
1157 * Note: The old leader also uses this pid until release_task
1158 * is called. Odd but simple and correct.
1160 tsk->pid = leader->pid;
1161 change_pid(tsk, PIDTYPE_PID, task_pid(leader));
1162 transfer_pid(leader, tsk, PIDTYPE_PGID);
1163 transfer_pid(leader, tsk, PIDTYPE_SID);
1165 list_replace_rcu(&leader->tasks, &tsk->tasks);
1166 list_replace_init(&leader->sibling, &tsk->sibling);
1168 tsk->group_leader = tsk;
1169 leader->group_leader = tsk;
1171 tsk->exit_signal = SIGCHLD;
1172 leader->exit_signal = -1;
1174 BUG_ON(leader->exit_state != EXIT_ZOMBIE);
1175 leader->exit_state = EXIT_DEAD;
1178 * We are going to release_task()->ptrace_unlink() silently,
1179 * the tracer can sleep in do_wait(). EXIT_DEAD guarantees
1180 * the tracer wont't block again waiting for this thread.
1182 if (unlikely(leader->ptrace))
1183 __wake_up_parent(leader, leader->parent);
1184 write_unlock_irq(&tasklist_lock);
1185 cgroup_threadgroup_change_end(tsk);
1187 release_task(leader);
1190 sig->group_exit_task = NULL;
1191 sig->notify_count = 0;
1193 no_thread_group:
1194 /* we have changed execution domain */
1195 tsk->exit_signal = SIGCHLD;
1197 #ifdef CONFIG_POSIX_TIMERS
1198 exit_itimers(sig);
1199 flush_itimer_signals();
1200 #endif
1202 if (atomic_read(&oldsighand->count) != 1) {
1203 struct sighand_struct *newsighand;
1205 * This ->sighand is shared with the CLONE_SIGHAND
1206 * but not CLONE_THREAD task, switch to the new one.
1208 newsighand = kmem_cache_alloc(sighand_cachep, GFP_KERNEL);
1209 if (!newsighand)
1210 return -ENOMEM;
1212 atomic_set(&newsighand->count, 1);
1213 memcpy(newsighand->action, oldsighand->action,
1214 sizeof(newsighand->action));
1216 write_lock_irq(&tasklist_lock);
1217 spin_lock(&oldsighand->siglock);
1218 rcu_assign_pointer(tsk->sighand, newsighand);
1219 spin_unlock(&oldsighand->siglock);
1220 write_unlock_irq(&tasklist_lock);
1222 __cleanup_sighand(oldsighand);
1225 BUG_ON(!thread_group_leader(tsk));
1226 return 0;
1228 killed:
1229 /* protects against exit_notify() and __exit_signal() */
1230 read_lock(&tasklist_lock);
1231 sig->group_exit_task = NULL;
1232 sig->notify_count = 0;
1233 read_unlock(&tasklist_lock);
1234 return -EAGAIN;
1237 char *get_task_comm(char *buf, struct task_struct *tsk)
1239 /* buf must be at least sizeof(tsk->comm) in size */
1240 task_lock(tsk);
1241 strncpy(buf, tsk->comm, sizeof(tsk->comm));
1242 task_unlock(tsk);
1243 return buf;
1245 EXPORT_SYMBOL_GPL(get_task_comm);
1248 * These functions flushes out all traces of the currently running executable
1249 * so that a new one can be started
1252 void __set_task_comm(struct task_struct *tsk, const char *buf, bool exec)
1254 task_lock(tsk);
1255 trace_task_rename(tsk, buf);
1256 strlcpy(tsk->comm, buf, sizeof(tsk->comm));
1257 task_unlock(tsk);
1258 perf_event_comm(tsk, exec);
1261 int flush_old_exec(struct linux_binprm * bprm)
1263 int retval;
1266 * Make sure we have a private signal table and that
1267 * we are unassociated from the previous thread group.
1269 retval = de_thread(current);
1270 if (retval)
1271 goto out;
1274 * Must be called _before_ exec_mmap() as bprm->mm is
1275 * not visibile until then. This also enables the update
1276 * to be lockless.
1278 set_mm_exe_file(bprm->mm, bprm->file);
1281 * Release all of the old mmap stuff
1283 acct_arg_size(bprm, 0);
1284 retval = exec_mmap(bprm->mm);
1285 if (retval)
1286 goto out;
1288 bprm->mm = NULL; /* We're using it now */
1290 set_fs(USER_DS);
1291 current->flags &= ~(PF_RANDOMIZE | PF_FORKNOEXEC | PF_KTHREAD |
1292 PF_NOFREEZE | PF_NO_SETAFFINITY);
1293 flush_thread();
1294 current->personality &= ~bprm->per_clear;
1297 * We have to apply CLOEXEC before we change whether the process is
1298 * dumpable (in setup_new_exec) to avoid a race with a process in userspace
1299 * trying to access the should-be-closed file descriptors of a process
1300 * undergoing exec(2).
1302 do_close_on_exec(current->files);
1303 return 0;
1305 out:
1306 return retval;
1308 EXPORT_SYMBOL(flush_old_exec);
1310 void would_dump(struct linux_binprm *bprm, struct file *file)
1312 struct inode *inode = file_inode(file);
1313 if (inode_permission(inode, MAY_READ) < 0) {
1314 struct user_namespace *old, *user_ns;
1315 bprm->interp_flags |= BINPRM_FLAGS_ENFORCE_NONDUMP;
1317 /* Ensure mm->user_ns contains the executable */
1318 user_ns = old = bprm->mm->user_ns;
1319 while ((user_ns != &init_user_ns) &&
1320 !privileged_wrt_inode_uidgid(user_ns, inode))
1321 user_ns = user_ns->parent;
1323 if (old != user_ns) {
1324 bprm->mm->user_ns = get_user_ns(user_ns);
1325 put_user_ns(old);
1329 EXPORT_SYMBOL(would_dump);
1331 void setup_new_exec(struct linux_binprm * bprm)
1333 arch_pick_mmap_layout(current->mm);
1335 /* This is the point of no return */
1336 current->sas_ss_sp = current->sas_ss_size = 0;
1338 if (uid_eq(current_euid(), current_uid()) && gid_eq(current_egid(), current_gid()))
1339 set_dumpable(current->mm, SUID_DUMP_USER);
1340 else
1341 set_dumpable(current->mm, suid_dumpable);
1343 perf_event_exec();
1344 __set_task_comm(current, kbasename(bprm->filename), true);
1346 /* Set the new mm task size. We have to do that late because it may
1347 * depend on TIF_32BIT which is only updated in flush_thread() on
1348 * some architectures like powerpc
1350 current->mm->task_size = TASK_SIZE;
1352 /* install the new credentials */
1353 if (!uid_eq(bprm->cred->uid, current_euid()) ||
1354 !gid_eq(bprm->cred->gid, current_egid())) {
1355 current->pdeath_signal = 0;
1356 } else {
1357 if (bprm->interp_flags & BINPRM_FLAGS_ENFORCE_NONDUMP)
1358 set_dumpable(current->mm, suid_dumpable);
1361 /* An exec changes our domain. We are no longer part of the thread
1362 group */
1363 current->self_exec_id++;
1364 flush_signal_handlers(current, 0);
1366 EXPORT_SYMBOL(setup_new_exec);
1369 * Prepare credentials and lock ->cred_guard_mutex.
1370 * install_exec_creds() commits the new creds and drops the lock.
1371 * Or, if exec fails before, free_bprm() should release ->cred and
1372 * and unlock.
1374 int prepare_bprm_creds(struct linux_binprm *bprm)
1376 if (mutex_lock_interruptible(&current->signal->cred_guard_mutex))
1377 return -ERESTARTNOINTR;
1379 bprm->cred = prepare_exec_creds();
1380 if (likely(bprm->cred))
1381 return 0;
1383 mutex_unlock(&current->signal->cred_guard_mutex);
1384 return -ENOMEM;
1387 static void free_bprm(struct linux_binprm *bprm)
1389 free_arg_pages(bprm);
1390 if (bprm->cred) {
1391 mutex_unlock(&current->signal->cred_guard_mutex);
1392 abort_creds(bprm->cred);
1394 if (bprm->file) {
1395 allow_write_access(bprm->file);
1396 fput(bprm->file);
1398 /* If a binfmt changed the interp, free it. */
1399 if (bprm->interp != bprm->filename)
1400 kfree(bprm->interp);
1401 kfree(bprm);
1404 int bprm_change_interp(char *interp, struct linux_binprm *bprm)
1406 /* If a binfmt changed the interp, free it first. */
1407 if (bprm->interp != bprm->filename)
1408 kfree(bprm->interp);
1409 bprm->interp = kstrdup(interp, GFP_KERNEL);
1410 if (!bprm->interp)
1411 return -ENOMEM;
1412 return 0;
1414 EXPORT_SYMBOL(bprm_change_interp);
1417 * install the new credentials for this executable
1419 void install_exec_creds(struct linux_binprm *bprm)
1421 security_bprm_committing_creds(bprm);
1423 commit_creds(bprm->cred);
1424 bprm->cred = NULL;
1427 * Disable monitoring for regular users
1428 * when executing setuid binaries. Must
1429 * wait until new credentials are committed
1430 * by commit_creds() above
1432 if (get_dumpable(current->mm) != SUID_DUMP_USER)
1433 perf_event_exit_task(current);
1435 * cred_guard_mutex must be held at least to this point to prevent
1436 * ptrace_attach() from altering our determination of the task's
1437 * credentials; any time after this it may be unlocked.
1439 security_bprm_committed_creds(bprm);
1440 mutex_unlock(&current->signal->cred_guard_mutex);
1442 EXPORT_SYMBOL(install_exec_creds);
1445 * determine how safe it is to execute the proposed program
1446 * - the caller must hold ->cred_guard_mutex to protect against
1447 * PTRACE_ATTACH or seccomp thread-sync
1449 static void check_unsafe_exec(struct linux_binprm *bprm)
1451 struct task_struct *p = current, *t;
1452 unsigned n_fs;
1454 if (p->ptrace)
1455 bprm->unsafe |= LSM_UNSAFE_PTRACE;
1458 * This isn't strictly necessary, but it makes it harder for LSMs to
1459 * mess up.
1461 if (task_no_new_privs(current))
1462 bprm->unsafe |= LSM_UNSAFE_NO_NEW_PRIVS;
1464 t = p;
1465 n_fs = 1;
1466 spin_lock(&p->fs->lock);
1467 rcu_read_lock();
1468 while_each_thread(p, t) {
1469 if (t->fs == p->fs)
1470 n_fs++;
1472 rcu_read_unlock();
1474 if (p->fs->users > n_fs)
1475 bprm->unsafe |= LSM_UNSAFE_SHARE;
1476 else
1477 p->fs->in_exec = 1;
1478 spin_unlock(&p->fs->lock);
1481 static void bprm_fill_uid(struct linux_binprm *bprm)
1483 struct inode *inode;
1484 unsigned int mode;
1485 kuid_t uid;
1486 kgid_t gid;
1489 * Since this can be called multiple times (via prepare_binprm),
1490 * we must clear any previous work done when setting set[ug]id
1491 * bits from any earlier bprm->file uses (for example when run
1492 * first for a setuid script then again for its interpreter).
1494 bprm->cred->euid = current_euid();
1495 bprm->cred->egid = current_egid();
1497 if (!mnt_may_suid(bprm->file->f_path.mnt))
1498 return;
1500 if (task_no_new_privs(current))
1501 return;
1503 inode = bprm->file->f_path.dentry->d_inode;
1504 mode = READ_ONCE(inode->i_mode);
1505 if (!(mode & (S_ISUID|S_ISGID)))
1506 return;
1508 /* Be careful if suid/sgid is set */
1509 inode_lock(inode);
1511 /* reload atomically mode/uid/gid now that lock held */
1512 mode = inode->i_mode;
1513 uid = inode->i_uid;
1514 gid = inode->i_gid;
1515 inode_unlock(inode);
1517 /* We ignore suid/sgid if there are no mappings for them in the ns */
1518 if (!kuid_has_mapping(bprm->cred->user_ns, uid) ||
1519 !kgid_has_mapping(bprm->cred->user_ns, gid))
1520 return;
1522 if (mode & S_ISUID) {
1523 bprm->per_clear |= PER_CLEAR_ON_SETID;
1524 bprm->cred->euid = uid;
1527 if ((mode & (S_ISGID | S_IXGRP)) == (S_ISGID | S_IXGRP)) {
1528 bprm->per_clear |= PER_CLEAR_ON_SETID;
1529 bprm->cred->egid = gid;
1534 * Fill the binprm structure from the inode.
1535 * Check permissions, then read the first 128 (BINPRM_BUF_SIZE) bytes
1537 * This may be called multiple times for binary chains (scripts for example).
1539 int prepare_binprm(struct linux_binprm *bprm)
1541 int retval;
1543 bprm_fill_uid(bprm);
1545 /* fill in binprm security blob */
1546 retval = security_bprm_set_creds(bprm);
1547 if (retval)
1548 return retval;
1549 bprm->cred_prepared = 1;
1551 memset(bprm->buf, 0, BINPRM_BUF_SIZE);
1552 return kernel_read(bprm->file, 0, bprm->buf, BINPRM_BUF_SIZE);
1555 EXPORT_SYMBOL(prepare_binprm);
1558 * Arguments are '\0' separated strings found at the location bprm->p
1559 * points to; chop off the first by relocating brpm->p to right after
1560 * the first '\0' encountered.
1562 int remove_arg_zero(struct linux_binprm *bprm)
1564 int ret = 0;
1565 unsigned long offset;
1566 char *kaddr;
1567 struct page *page;
1569 if (!bprm->argc)
1570 return 0;
1572 do {
1573 offset = bprm->p & ~PAGE_MASK;
1574 page = get_arg_page(bprm, bprm->p, 0);
1575 if (!page) {
1576 ret = -EFAULT;
1577 goto out;
1579 kaddr = kmap_atomic(page);
1581 for (; offset < PAGE_SIZE && kaddr[offset];
1582 offset++, bprm->p++)
1585 kunmap_atomic(kaddr);
1586 put_arg_page(page);
1587 } while (offset == PAGE_SIZE);
1589 bprm->p++;
1590 bprm->argc--;
1591 ret = 0;
1593 out:
1594 return ret;
1596 EXPORT_SYMBOL(remove_arg_zero);
1598 #define printable(c) (((c)=='\t') || ((c)=='\n') || (0x20<=(c) && (c)<=0x7e))
1600 * cycle the list of binary formats handler, until one recognizes the image
1602 int search_binary_handler(struct linux_binprm *bprm)
1604 bool need_retry = IS_ENABLED(CONFIG_MODULES);
1605 struct linux_binfmt *fmt;
1606 int retval;
1608 /* This allows 4 levels of binfmt rewrites before failing hard. */
1609 if (bprm->recursion_depth > 5)
1610 return -ELOOP;
1612 retval = security_bprm_check(bprm);
1613 if (retval)
1614 return retval;
1616 retval = -ENOENT;
1617 retry:
1618 read_lock(&binfmt_lock);
1619 list_for_each_entry(fmt, &formats, lh) {
1620 if (!try_module_get(fmt->module))
1621 continue;
1622 read_unlock(&binfmt_lock);
1623 bprm->recursion_depth++;
1624 retval = fmt->load_binary(bprm);
1625 read_lock(&binfmt_lock);
1626 put_binfmt(fmt);
1627 bprm->recursion_depth--;
1628 if (retval < 0 && !bprm->mm) {
1629 /* we got to flush_old_exec() and failed after it */
1630 read_unlock(&binfmt_lock);
1631 force_sigsegv(SIGSEGV, current);
1632 return retval;
1634 if (retval != -ENOEXEC || !bprm->file) {
1635 read_unlock(&binfmt_lock);
1636 return retval;
1639 read_unlock(&binfmt_lock);
1641 if (need_retry) {
1642 if (printable(bprm->buf[0]) && printable(bprm->buf[1]) &&
1643 printable(bprm->buf[2]) && printable(bprm->buf[3]))
1644 return retval;
1645 if (request_module("binfmt-%04x", *(ushort *)(bprm->buf + 2)) < 0)
1646 return retval;
1647 need_retry = false;
1648 goto retry;
1651 return retval;
1653 EXPORT_SYMBOL(search_binary_handler);
1655 static int exec_binprm(struct linux_binprm *bprm)
1657 pid_t old_pid, old_vpid;
1658 int ret;
1660 /* Need to fetch pid before load_binary changes it */
1661 old_pid = current->pid;
1662 rcu_read_lock();
1663 old_vpid = task_pid_nr_ns(current, task_active_pid_ns(current->parent));
1664 rcu_read_unlock();
1666 ret = search_binary_handler(bprm);
1667 if (ret >= 0) {
1668 audit_bprm(bprm);
1669 trace_sched_process_exec(current, old_pid, bprm);
1670 ptrace_event(PTRACE_EVENT_EXEC, old_vpid);
1671 proc_exec_connector(current);
1674 return ret;
1678 * sys_execve() executes a new program.
1680 static int do_execveat_common(int fd, struct filename *filename,
1681 struct user_arg_ptr argv,
1682 struct user_arg_ptr envp,
1683 int flags)
1685 char *pathbuf = NULL;
1686 struct linux_binprm *bprm;
1687 struct file *file;
1688 struct files_struct *displaced;
1689 int retval;
1691 if (IS_ERR(filename))
1692 return PTR_ERR(filename);
1695 * We move the actual failure in case of RLIMIT_NPROC excess from
1696 * set*uid() to execve() because too many poorly written programs
1697 * don't check setuid() return code. Here we additionally recheck
1698 * whether NPROC limit is still exceeded.
1700 if ((current->flags & PF_NPROC_EXCEEDED) &&
1701 atomic_read(&current_user()->processes) > rlimit(RLIMIT_NPROC)) {
1702 retval = -EAGAIN;
1703 goto out_ret;
1706 /* We're below the limit (still or again), so we don't want to make
1707 * further execve() calls fail. */
1708 current->flags &= ~PF_NPROC_EXCEEDED;
1710 retval = unshare_files(&displaced);
1711 if (retval)
1712 goto out_ret;
1714 retval = -ENOMEM;
1715 bprm = kzalloc(sizeof(*bprm), GFP_KERNEL);
1716 if (!bprm)
1717 goto out_files;
1719 retval = prepare_bprm_creds(bprm);
1720 if (retval)
1721 goto out_free;
1723 check_unsafe_exec(bprm);
1724 current->in_execve = 1;
1726 file = do_open_execat(fd, filename, flags);
1727 retval = PTR_ERR(file);
1728 if (IS_ERR(file))
1729 goto out_unmark;
1731 sched_exec();
1733 bprm->file = file;
1734 if (fd == AT_FDCWD || filename->name[0] == '/') {
1735 bprm->filename = filename->name;
1736 } else {
1737 if (filename->name[0] == '\0')
1738 pathbuf = kasprintf(GFP_TEMPORARY, "/dev/fd/%d", fd);
1739 else
1740 pathbuf = kasprintf(GFP_TEMPORARY, "/dev/fd/%d/%s",
1741 fd, filename->name);
1742 if (!pathbuf) {
1743 retval = -ENOMEM;
1744 goto out_unmark;
1747 * Record that a name derived from an O_CLOEXEC fd will be
1748 * inaccessible after exec. Relies on having exclusive access to
1749 * current->files (due to unshare_files above).
1751 if (close_on_exec(fd, rcu_dereference_raw(current->files->fdt)))
1752 bprm->interp_flags |= BINPRM_FLAGS_PATH_INACCESSIBLE;
1753 bprm->filename = pathbuf;
1755 bprm->interp = bprm->filename;
1757 retval = bprm_mm_init(bprm);
1758 if (retval)
1759 goto out_unmark;
1761 bprm->argc = count(argv, MAX_ARG_STRINGS);
1762 if ((retval = bprm->argc) < 0)
1763 goto out;
1765 bprm->envc = count(envp, MAX_ARG_STRINGS);
1766 if ((retval = bprm->envc) < 0)
1767 goto out;
1769 retval = prepare_binprm(bprm);
1770 if (retval < 0)
1771 goto out;
1773 retval = copy_strings_kernel(1, &bprm->filename, bprm);
1774 if (retval < 0)
1775 goto out;
1777 bprm->exec = bprm->p;
1778 retval = copy_strings(bprm->envc, envp, bprm);
1779 if (retval < 0)
1780 goto out;
1782 retval = copy_strings(bprm->argc, argv, bprm);
1783 if (retval < 0)
1784 goto out;
1786 would_dump(bprm, bprm->file);
1788 retval = exec_binprm(bprm);
1789 if (retval < 0)
1790 goto out;
1792 /* execve succeeded */
1793 current->fs->in_exec = 0;
1794 current->in_execve = 0;
1795 acct_update_integrals(current);
1796 task_numa_free(current);
1797 free_bprm(bprm);
1798 kfree(pathbuf);
1799 putname(filename);
1800 if (displaced)
1801 put_files_struct(displaced);
1802 return retval;
1804 out:
1805 if (bprm->mm) {
1806 acct_arg_size(bprm, 0);
1807 mmput(bprm->mm);
1810 out_unmark:
1811 current->fs->in_exec = 0;
1812 current->in_execve = 0;
1814 out_free:
1815 free_bprm(bprm);
1816 kfree(pathbuf);
1818 out_files:
1819 if (displaced)
1820 reset_files_struct(displaced);
1821 out_ret:
1822 putname(filename);
1823 return retval;
1826 int do_execve(struct filename *filename,
1827 const char __user *const __user *__argv,
1828 const char __user *const __user *__envp)
1830 struct user_arg_ptr argv = { .ptr.native = __argv };
1831 struct user_arg_ptr envp = { .ptr.native = __envp };
1832 return do_execveat_common(AT_FDCWD, filename, argv, envp, 0);
1835 int do_execveat(int fd, struct filename *filename,
1836 const char __user *const __user *__argv,
1837 const char __user *const __user *__envp,
1838 int flags)
1840 struct user_arg_ptr argv = { .ptr.native = __argv };
1841 struct user_arg_ptr envp = { .ptr.native = __envp };
1843 return do_execveat_common(fd, filename, argv, envp, flags);
1846 #ifdef CONFIG_COMPAT
1847 static int compat_do_execve(struct filename *filename,
1848 const compat_uptr_t __user *__argv,
1849 const compat_uptr_t __user *__envp)
1851 struct user_arg_ptr argv = {
1852 .is_compat = true,
1853 .ptr.compat = __argv,
1855 struct user_arg_ptr envp = {
1856 .is_compat = true,
1857 .ptr.compat = __envp,
1859 return do_execveat_common(AT_FDCWD, filename, argv, envp, 0);
1862 static int compat_do_execveat(int fd, struct filename *filename,
1863 const compat_uptr_t __user *__argv,
1864 const compat_uptr_t __user *__envp,
1865 int flags)
1867 struct user_arg_ptr argv = {
1868 .is_compat = true,
1869 .ptr.compat = __argv,
1871 struct user_arg_ptr envp = {
1872 .is_compat = true,
1873 .ptr.compat = __envp,
1875 return do_execveat_common(fd, filename, argv, envp, flags);
1877 #endif
1879 void set_binfmt(struct linux_binfmt *new)
1881 struct mm_struct *mm = current->mm;
1883 if (mm->binfmt)
1884 module_put(mm->binfmt->module);
1886 mm->binfmt = new;
1887 if (new)
1888 __module_get(new->module);
1890 EXPORT_SYMBOL(set_binfmt);
1893 * set_dumpable stores three-value SUID_DUMP_* into mm->flags.
1895 void set_dumpable(struct mm_struct *mm, int value)
1897 unsigned long old, new;
1899 if (WARN_ON((unsigned)value > SUID_DUMP_ROOT))
1900 return;
1902 do {
1903 old = ACCESS_ONCE(mm->flags);
1904 new = (old & ~MMF_DUMPABLE_MASK) | value;
1905 } while (cmpxchg(&mm->flags, old, new) != old);
1908 SYSCALL_DEFINE3(execve,
1909 const char __user *, filename,
1910 const char __user *const __user *, argv,
1911 const char __user *const __user *, envp)
1913 return do_execve(getname(filename), argv, envp);
1916 SYSCALL_DEFINE5(execveat,
1917 int, fd, const char __user *, filename,
1918 const char __user *const __user *, argv,
1919 const char __user *const __user *, envp,
1920 int, flags)
1922 int lookup_flags = (flags & AT_EMPTY_PATH) ? LOOKUP_EMPTY : 0;
1924 return do_execveat(fd,
1925 getname_flags(filename, lookup_flags, NULL),
1926 argv, envp, flags);
1929 #ifdef CONFIG_COMPAT
1930 COMPAT_SYSCALL_DEFINE3(execve, const char __user *, filename,
1931 const compat_uptr_t __user *, argv,
1932 const compat_uptr_t __user *, envp)
1934 return compat_do_execve(getname(filename), argv, envp);
1937 COMPAT_SYSCALL_DEFINE5(execveat, int, fd,
1938 const char __user *, filename,
1939 const compat_uptr_t __user *, argv,
1940 const compat_uptr_t __user *, envp,
1941 int, flags)
1943 int lookup_flags = (flags & AT_EMPTY_PATH) ? LOOKUP_EMPTY : 0;
1945 return compat_do_execveat(fd,
1946 getname_flags(filename, lookup_flags, NULL),
1947 argv, envp, flags);
1949 #endif