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2b144498 1/*
7b2d81d4 2 * User-space Probes (UProbes)
2b144498
SD
3 *
4 * This program is free software; you can redistribute it and/or modify
5 * it under the terms of the GNU General Public License as published by
6 * the Free Software Foundation; either version 2 of the License, or
7 * (at your option) any later version.
8 *
9 * This program is distributed in the hope that it will be useful,
10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
12 * GNU General Public License for more details.
13 *
14 * You should have received a copy of the GNU General Public License
15 * along with this program; if not, write to the Free Software
16 * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
17 *
35aa621b 18 * Copyright (C) IBM Corporation, 2008-2012
2b144498
SD
19 * Authors:
20 * Srikar Dronamraju
21 * Jim Keniston
35aa621b 22 * Copyright (C) 2011-2012 Red Hat, Inc., Peter Zijlstra <pzijlstr@redhat.com>
2b144498
SD
23 */
24
25#include <linux/kernel.h>
26#include <linux/highmem.h>
27#include <linux/pagemap.h> /* read_mapping_page */
28#include <linux/slab.h>
29#include <linux/sched.h>
e8440c14 30#include <linux/export.h>
2b144498
SD
31#include <linux/rmap.h> /* anon_vma_prepare */
32#include <linux/mmu_notifier.h> /* set_pte_at_notify */
33#include <linux/swap.h> /* try_to_free_swap */
0326f5a9
SD
34#include <linux/ptrace.h> /* user_enable_single_step */
35#include <linux/kdebug.h> /* notifier mechanism */
194f8dcb 36#include "../../mm/internal.h" /* munlock_vma_page */
32cdba1e 37#include <linux/percpu-rwsem.h>
aa59c53f 38#include <linux/task_work.h>
40814f68 39#include <linux/shmem_fs.h>
7b2d81d4 40
2b144498
SD
41#include <linux/uprobes.h>
42
d4b3b638
SD
43#define UINSNS_PER_PAGE (PAGE_SIZE/UPROBE_XOL_SLOT_BYTES)
44#define MAX_UPROBE_XOL_SLOTS UINSNS_PER_PAGE
45
2b144498 46static struct rb_root uprobes_tree = RB_ROOT;
441f1eb7
ON
47/*
48 * allows us to skip the uprobe_mmap if there are no uprobe events active
49 * at this time. Probably a fine grained per inode count is better?
50 */
51#define no_uprobe_events() RB_EMPTY_ROOT(&uprobes_tree)
7b2d81d4 52
2b144498
SD
53static DEFINE_SPINLOCK(uprobes_treelock); /* serialize rbtree access */
54
55#define UPROBES_HASH_SZ 13
2b144498
SD
56/* serialize uprobe->pending_list */
57static struct mutex uprobes_mmap_mutex[UPROBES_HASH_SZ];
7b2d81d4 58#define uprobes_mmap_hash(v) (&uprobes_mmap_mutex[((unsigned long)(v)) % UPROBES_HASH_SZ])
2b144498 59
32cdba1e
ON
60static struct percpu_rw_semaphore dup_mmap_sem;
61
cb9a19fe 62/* Have a copy of original instruction */
71434f2f 63#define UPROBE_COPY_INSN 0
cb9a19fe 64
3ff54efd
SD
65struct uprobe {
66 struct rb_node rb_node; /* node in the rb tree */
67 atomic_t ref;
e591c8d7 68 struct rw_semaphore register_rwsem;
3ff54efd
SD
69 struct rw_semaphore consumer_rwsem;
70 struct list_head pending_list;
71 struct uprobe_consumer *consumers;
72 struct inode *inode; /* Also hold a ref to inode */
73 loff_t offset;
71434f2f 74 unsigned long flags;
ad439356
ON
75
76 /*
77 * The generic code assumes that it has two members of unknown type
78 * owned by the arch-specific code:
79 *
80 * insn - copy_insn() saves the original instruction here for
81 * arch_uprobe_analyze_insn().
82 *
83 * ixol - potentially modified instruction to execute out of
84 * line, copied to xol_area by xol_get_insn_slot().
85 */
3ff54efd
SD
86 struct arch_uprobe arch;
87};
88
0dfd0eb8
AA
89struct return_instance {
90 struct uprobe *uprobe;
91 unsigned long func;
92 unsigned long orig_ret_vaddr; /* original return address */
93 bool chained; /* true, if instance is nested */
94
95 struct return_instance *next; /* keep as stack */
96};
97
c912dae6 98/*
ad439356
ON
99 * Execute out of line area: anonymous executable mapping installed
100 * by the probed task to execute the copy of the original instruction
101 * mangled by set_swbp().
102 *
c912dae6
ON
103 * On a breakpoint hit, thread contests for a slot. It frees the
104 * slot after singlestep. Currently a fixed number of slots are
105 * allocated.
106 */
107struct xol_area {
108 wait_queue_head_t wq; /* if all slots are busy */
109 atomic_t slot_count; /* number of in-use slots */
110 unsigned long *bitmap; /* 0 = free slot */
111 struct page *page;
112
113 /*
114 * We keep the vma's vm_start rather than a pointer to the vma
115 * itself. The probed process or a naughty kernel module could make
116 * the vma go away, and we must handle that reasonably gracefully.
117 */
118 unsigned long vaddr; /* Page(s) of instruction slots */
119};
120
2b144498
SD
121/*
122 * valid_vma: Verify if the specified vma is an executable vma
123 * Relax restrictions while unregistering: vm_flags might have
124 * changed after breakpoint was inserted.
125 * - is_register: indicates if we are in register context.
126 * - Return 1 if the specified virtual address is in an
127 * executable vma.
128 */
129static bool valid_vma(struct vm_area_struct *vma, bool is_register)
130{
13f59c5e 131 vm_flags_t flags = VM_HUGETLB | VM_MAYEXEC | VM_MAYSHARE;
2b144498 132
e40cfce6
ON
133 if (is_register)
134 flags |= VM_WRITE;
2b144498 135
e40cfce6 136 return vma->vm_file && (vma->vm_flags & flags) == VM_MAYEXEC;
2b144498
SD
137}
138
57683f72 139static unsigned long offset_to_vaddr(struct vm_area_struct *vma, loff_t offset)
2b144498 140{
57683f72 141 return vma->vm_start + offset - ((loff_t)vma->vm_pgoff << PAGE_SHIFT);
2b144498
SD
142}
143
cb113b47
ON
144static loff_t vaddr_to_offset(struct vm_area_struct *vma, unsigned long vaddr)
145{
146 return ((loff_t)vma->vm_pgoff << PAGE_SHIFT) + (vaddr - vma->vm_start);
147}
148
2b144498
SD
149/**
150 * __replace_page - replace page in vma by new page.
151 * based on replace_page in mm/ksm.c
152 *
153 * @vma: vma that holds the pte pointing to page
c517ee74 154 * @addr: address the old @page is mapped at
2b144498
SD
155 * @page: the cowed page we are replacing by kpage
156 * @kpage: the modified page we replace page by
157 *
158 * Returns 0 on success, -EFAULT on failure.
159 */
c517ee74
ON
160static int __replace_page(struct vm_area_struct *vma, unsigned long addr,
161 struct page *page, struct page *kpage)
2b144498
SD
162{
163 struct mm_struct *mm = vma->vm_mm;
5323ce71
ON
164 spinlock_t *ptl;
165 pte_t *ptep;
9f92448c 166 int err;
6bdb913f
HE
167 /* For mmu_notifiers */
168 const unsigned long mmun_start = addr;
169 const unsigned long mmun_end = addr + PAGE_SIZE;
00501b53
JW
170 struct mem_cgroup *memcg;
171
172 err = mem_cgroup_try_charge(kpage, vma->vm_mm, GFP_KERNEL, &memcg);
173 if (err)
174 return err;
2b144498 175
194f8dcb 176 /* For try_to_free_swap() and munlock_vma_page() below */
9f92448c
ON
177 lock_page(page);
178
6bdb913f 179 mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
9f92448c 180 err = -EAGAIN;
5323ce71 181 ptep = page_check_address(page, mm, addr, &ptl, 0);
2b144498 182 if (!ptep)
9f92448c 183 goto unlock;
2b144498
SD
184
185 get_page(kpage);
186 page_add_new_anon_rmap(kpage, vma, addr);
00501b53
JW
187 mem_cgroup_commit_charge(kpage, memcg, false);
188 lru_cache_add_active_or_unevictable(kpage, vma);
2b144498 189
7396fa81
SD
190 if (!PageAnon(page)) {
191 dec_mm_counter(mm, MM_FILEPAGES);
192 inc_mm_counter(mm, MM_ANONPAGES);
193 }
194
2b144498 195 flush_cache_page(vma, addr, pte_pfn(*ptep));
34ee645e 196 ptep_clear_flush_notify(vma, addr, ptep);
2b144498
SD
197 set_pte_at_notify(mm, addr, ptep, mk_pte(kpage, vma->vm_page_prot));
198
199 page_remove_rmap(page);
200 if (!page_mapped(page))
201 try_to_free_swap(page);
2b144498 202 pte_unmap_unlock(ptep, ptl);
2b144498 203
194f8dcb
ON
204 if (vma->vm_flags & VM_LOCKED)
205 munlock_vma_page(page);
206 put_page(page);
207
9f92448c
ON
208 err = 0;
209 unlock:
00501b53 210 mem_cgroup_cancel_charge(kpage, memcg);
6bdb913f 211 mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
9f92448c
ON
212 unlock_page(page);
213 return err;
2b144498
SD
214}
215
216/**
5cb4ac3a 217 * is_swbp_insn - check if instruction is breakpoint instruction.
2b144498 218 * @insn: instruction to be checked.
5cb4ac3a 219 * Default implementation of is_swbp_insn
2b144498
SD
220 * Returns true if @insn is a breakpoint instruction.
221 */
5cb4ac3a 222bool __weak is_swbp_insn(uprobe_opcode_t *insn)
2b144498 223{
5cb4ac3a 224 return *insn == UPROBE_SWBP_INSN;
2b144498
SD
225}
226
0908ad6e
AM
227/**
228 * is_trap_insn - check if instruction is breakpoint instruction.
229 * @insn: instruction to be checked.
230 * Default implementation of is_trap_insn
231 * Returns true if @insn is a breakpoint instruction.
232 *
233 * This function is needed for the case where an architecture has multiple
234 * trap instructions (like powerpc).
235 */
236bool __weak is_trap_insn(uprobe_opcode_t *insn)
237{
238 return is_swbp_insn(insn);
239}
240
ab0d805c 241static void copy_from_page(struct page *page, unsigned long vaddr, void *dst, int len)
cceb55aa
ON
242{
243 void *kaddr = kmap_atomic(page);
ab0d805c 244 memcpy(dst, kaddr + (vaddr & ~PAGE_MASK), len);
cceb55aa
ON
245 kunmap_atomic(kaddr);
246}
247
5669ccee
ON
248static void copy_to_page(struct page *page, unsigned long vaddr, const void *src, int len)
249{
250 void *kaddr = kmap_atomic(page);
251 memcpy(kaddr + (vaddr & ~PAGE_MASK), src, len);
252 kunmap_atomic(kaddr);
253}
254
ed6f6a50
ON
255static int verify_opcode(struct page *page, unsigned long vaddr, uprobe_opcode_t *new_opcode)
256{
257 uprobe_opcode_t old_opcode;
258 bool is_swbp;
259
0908ad6e
AM
260 /*
261 * Note: We only check if the old_opcode is UPROBE_SWBP_INSN here.
262 * We do not check if it is any other 'trap variant' which could
263 * be conditional trap instruction such as the one powerpc supports.
264 *
265 * The logic is that we do not care if the underlying instruction
266 * is a trap variant; uprobes always wins over any other (gdb)
267 * breakpoint.
268 */
ab0d805c 269 copy_from_page(page, vaddr, &old_opcode, UPROBE_SWBP_INSN_SIZE);
ed6f6a50
ON
270 is_swbp = is_swbp_insn(&old_opcode);
271
272 if (is_swbp_insn(new_opcode)) {
273 if (is_swbp) /* register: already installed? */
274 return 0;
275 } else {
276 if (!is_swbp) /* unregister: was it changed by us? */
076a365b 277 return 0;
ed6f6a50
ON
278 }
279
280 return 1;
281}
282
2b144498
SD
283/*
284 * NOTE:
285 * Expect the breakpoint instruction to be the smallest size instruction for
286 * the architecture. If an arch has variable length instruction and the
287 * breakpoint instruction is not of the smallest length instruction
0908ad6e 288 * supported by that architecture then we need to modify is_trap_at_addr and
f72d41fa
ON
289 * uprobe_write_opcode accordingly. This would never be a problem for archs
290 * that have fixed length instructions.
29dedee0 291 *
f72d41fa 292 * uprobe_write_opcode - write the opcode at a given virtual address.
2b144498 293 * @mm: the probed process address space.
2b144498
SD
294 * @vaddr: the virtual address to store the opcode.
295 * @opcode: opcode to be written at @vaddr.
296 *
29dedee0 297 * Called with mm->mmap_sem held for write.
2b144498
SD
298 * Return 0 (success) or a negative errno.
299 */
f72d41fa 300int uprobe_write_opcode(struct mm_struct *mm, unsigned long vaddr,
cceb55aa 301 uprobe_opcode_t opcode)
2b144498
SD
302{
303 struct page *old_page, *new_page;
2b144498 304 struct vm_area_struct *vma;
2b144498 305 int ret;
f403072c 306
5323ce71 307retry:
2b144498 308 /* Read the page with vaddr into memory */
75ed82ea 309 ret = get_user_pages(NULL, mm, vaddr, 1, 0, 1, &old_page, &vma);
2b144498
SD
310 if (ret <= 0)
311 return ret;
7b2d81d4 312
ed6f6a50
ON
313 ret = verify_opcode(old_page, vaddr, &opcode);
314 if (ret <= 0)
315 goto put_old;
316
29dedee0
ON
317 ret = anon_vma_prepare(vma);
318 if (ret)
319 goto put_old;
320
2b144498
SD
321 ret = -ENOMEM;
322 new_page = alloc_page_vma(GFP_HIGHUSER_MOVABLE, vma, vaddr);
323 if (!new_page)
9f92448c 324 goto put_old;
2b144498 325
29dedee0 326 __SetPageUptodate(new_page);
3f47107c
ON
327 copy_highpage(new_page, old_page);
328 copy_to_page(new_page, vaddr, &opcode, UPROBE_SWBP_INSN_SIZE);
2b144498 329
c517ee74 330 ret = __replace_page(vma, vaddr, old_page, new_page);
2b144498 331 page_cache_release(new_page);
9f92448c 332put_old:
7b2d81d4
IM
333 put_page(old_page);
334
5323ce71
ON
335 if (unlikely(ret == -EAGAIN))
336 goto retry;
2b144498
SD
337 return ret;
338}
339
2b144498 340/**
5cb4ac3a 341 * set_swbp - store breakpoint at a given address.
e3343e6a 342 * @auprobe: arch specific probepoint information.
2b144498 343 * @mm: the probed process address space.
2b144498
SD
344 * @vaddr: the virtual address to insert the opcode.
345 *
346 * For mm @mm, store the breakpoint instruction at @vaddr.
347 * Return 0 (success) or a negative errno.
348 */
5cb4ac3a 349int __weak set_swbp(struct arch_uprobe *auprobe, struct mm_struct *mm, unsigned long vaddr)
2b144498 350{
f72d41fa 351 return uprobe_write_opcode(mm, vaddr, UPROBE_SWBP_INSN);
2b144498
SD
352}
353
354/**
355 * set_orig_insn - Restore the original instruction.
356 * @mm: the probed process address space.
e3343e6a 357 * @auprobe: arch specific probepoint information.
2b144498 358 * @vaddr: the virtual address to insert the opcode.
2b144498
SD
359 *
360 * For mm @mm, restore the original opcode (opcode) at @vaddr.
361 * Return 0 (success) or a negative errno.
362 */
7b2d81d4 363int __weak
ded86e7c 364set_orig_insn(struct arch_uprobe *auprobe, struct mm_struct *mm, unsigned long vaddr)
2b144498 365{
803200e2 366 return uprobe_write_opcode(mm, vaddr, *(uprobe_opcode_t *)&auprobe->insn);
2b144498
SD
367}
368
f231722a
ON
369static struct uprobe *get_uprobe(struct uprobe *uprobe)
370{
371 atomic_inc(&uprobe->ref);
372 return uprobe;
373}
374
375static void put_uprobe(struct uprobe *uprobe)
376{
377 if (atomic_dec_and_test(&uprobe->ref))
378 kfree(uprobe);
379}
380
2b144498
SD
381static int match_uprobe(struct uprobe *l, struct uprobe *r)
382{
383 if (l->inode < r->inode)
384 return -1;
7b2d81d4 385
2b144498
SD
386 if (l->inode > r->inode)
387 return 1;
2b144498 388
7b2d81d4
IM
389 if (l->offset < r->offset)
390 return -1;
391
392 if (l->offset > r->offset)
393 return 1;
2b144498
SD
394
395 return 0;
396}
397
398static struct uprobe *__find_uprobe(struct inode *inode, loff_t offset)
399{
400 struct uprobe u = { .inode = inode, .offset = offset };
401 struct rb_node *n = uprobes_tree.rb_node;
402 struct uprobe *uprobe;
403 int match;
404
405 while (n) {
406 uprobe = rb_entry(n, struct uprobe, rb_node);
407 match = match_uprobe(&u, uprobe);
f231722a
ON
408 if (!match)
409 return get_uprobe(uprobe);
7b2d81d4 410
2b144498
SD
411 if (match < 0)
412 n = n->rb_left;
413 else
414 n = n->rb_right;
415 }
416 return NULL;
417}
418
419/*
420 * Find a uprobe corresponding to a given inode:offset
421 * Acquires uprobes_treelock
422 */
423static struct uprobe *find_uprobe(struct inode *inode, loff_t offset)
424{
425 struct uprobe *uprobe;
2b144498 426
6f47caa0 427 spin_lock(&uprobes_treelock);
2b144498 428 uprobe = __find_uprobe(inode, offset);
6f47caa0 429 spin_unlock(&uprobes_treelock);
7b2d81d4 430
2b144498
SD
431 return uprobe;
432}
433
434static struct uprobe *__insert_uprobe(struct uprobe *uprobe)
435{
436 struct rb_node **p = &uprobes_tree.rb_node;
437 struct rb_node *parent = NULL;
438 struct uprobe *u;
439 int match;
440
441 while (*p) {
442 parent = *p;
443 u = rb_entry(parent, struct uprobe, rb_node);
444 match = match_uprobe(uprobe, u);
f231722a
ON
445 if (!match)
446 return get_uprobe(u);
2b144498
SD
447
448 if (match < 0)
449 p = &parent->rb_left;
450 else
451 p = &parent->rb_right;
452
453 }
7b2d81d4 454
2b144498
SD
455 u = NULL;
456 rb_link_node(&uprobe->rb_node, parent, p);
457 rb_insert_color(&uprobe->rb_node, &uprobes_tree);
458 /* get access + creation ref */
459 atomic_set(&uprobe->ref, 2);
7b2d81d4 460
2b144498
SD
461 return u;
462}
463
464/*
7b2d81d4 465 * Acquire uprobes_treelock.
2b144498
SD
466 * Matching uprobe already exists in rbtree;
467 * increment (access refcount) and return the matching uprobe.
468 *
469 * No matching uprobe; insert the uprobe in rb_tree;
470 * get a double refcount (access + creation) and return NULL.
471 */
472static struct uprobe *insert_uprobe(struct uprobe *uprobe)
473{
2b144498
SD
474 struct uprobe *u;
475
6f47caa0 476 spin_lock(&uprobes_treelock);
2b144498 477 u = __insert_uprobe(uprobe);
6f47caa0 478 spin_unlock(&uprobes_treelock);
7b2d81d4 479
2b144498
SD
480 return u;
481}
482
2b144498
SD
483static struct uprobe *alloc_uprobe(struct inode *inode, loff_t offset)
484{
485 struct uprobe *uprobe, *cur_uprobe;
486
487 uprobe = kzalloc(sizeof(struct uprobe), GFP_KERNEL);
488 if (!uprobe)
489 return NULL;
490
491 uprobe->inode = igrab(inode);
492 uprobe->offset = offset;
e591c8d7 493 init_rwsem(&uprobe->register_rwsem);
2b144498 494 init_rwsem(&uprobe->consumer_rwsem);
2b144498
SD
495
496 /* add to uprobes_tree, sorted on inode:offset */
497 cur_uprobe = insert_uprobe(uprobe);
2b144498
SD
498 /* a uprobe exists for this inode:offset combination */
499 if (cur_uprobe) {
500 kfree(uprobe);
501 uprobe = cur_uprobe;
502 iput(inode);
7b2d81d4
IM
503 }
504
2b144498
SD
505 return uprobe;
506}
507
9a98e03c 508static void consumer_add(struct uprobe *uprobe, struct uprobe_consumer *uc)
2b144498
SD
509{
510 down_write(&uprobe->consumer_rwsem);
e3343e6a
SD
511 uc->next = uprobe->consumers;
512 uprobe->consumers = uc;
2b144498 513 up_write(&uprobe->consumer_rwsem);
2b144498
SD
514}
515
516/*
e3343e6a
SD
517 * For uprobe @uprobe, delete the consumer @uc.
518 * Return true if the @uc is deleted successfully
2b144498
SD
519 * or return false.
520 */
e3343e6a 521static bool consumer_del(struct uprobe *uprobe, struct uprobe_consumer *uc)
2b144498
SD
522{
523 struct uprobe_consumer **con;
524 bool ret = false;
525
526 down_write(&uprobe->consumer_rwsem);
527 for (con = &uprobe->consumers; *con; con = &(*con)->next) {
e3343e6a
SD
528 if (*con == uc) {
529 *con = uc->next;
2b144498
SD
530 ret = true;
531 break;
532 }
533 }
534 up_write(&uprobe->consumer_rwsem);
7b2d81d4 535
2b144498
SD
536 return ret;
537}
538
2ded0980
ON
539static int __copy_insn(struct address_space *mapping, struct file *filp,
540 void *insn, int nbytes, loff_t offset)
2b144498 541{
2b144498 542 struct page *page;
2b144498 543 /*
40814f68
ON
544 * Ensure that the page that has the original instruction is populated
545 * and in page-cache. If ->readpage == NULL it must be shmem_mapping(),
546 * see uprobe_register().
2b144498 547 */
40814f68
ON
548 if (mapping->a_ops->readpage)
549 page = read_mapping_page(mapping, offset >> PAGE_CACHE_SHIFT, filp);
550 else
551 page = shmem_read_mapping_page(mapping, offset >> PAGE_CACHE_SHIFT);
2b144498
SD
552 if (IS_ERR(page))
553 return PTR_ERR(page);
554
2edb7b55 555 copy_from_page(page, offset, insn, nbytes);
2b144498 556 page_cache_release(page);
7b2d81d4 557
2b144498
SD
558 return 0;
559}
560
d436615e 561static int copy_insn(struct uprobe *uprobe, struct file *filp)
2b144498 562{
2ded0980
ON
563 struct address_space *mapping = uprobe->inode->i_mapping;
564 loff_t offs = uprobe->offset;
803200e2
ON
565 void *insn = &uprobe->arch.insn;
566 int size = sizeof(uprobe->arch.insn);
2ded0980
ON
567 int len, err = -EIO;
568
569 /* Copy only available bytes, -EIO if nothing was read */
570 do {
571 if (offs >= i_size_read(uprobe->inode))
572 break;
573
574 len = min_t(int, size, PAGE_SIZE - (offs & ~PAGE_MASK));
575 err = __copy_insn(mapping, filp, insn, len, offs);
fc36f595 576 if (err)
2ded0980
ON
577 break;
578
579 insn += len;
580 offs += len;
581 size -= len;
582 } while (size);
583
584 return err;
2b144498
SD
585}
586
cb9a19fe
ON
587static int prepare_uprobe(struct uprobe *uprobe, struct file *file,
588 struct mm_struct *mm, unsigned long vaddr)
589{
590 int ret = 0;
591
71434f2f 592 if (test_bit(UPROBE_COPY_INSN, &uprobe->flags))
cb9a19fe
ON
593 return ret;
594
d4d3ccc6
ON
595 /* TODO: move this into _register, until then we abuse this sem. */
596 down_write(&uprobe->consumer_rwsem);
71434f2f 597 if (test_bit(UPROBE_COPY_INSN, &uprobe->flags))
4710f05f
ON
598 goto out;
599
cb9a19fe
ON
600 ret = copy_insn(uprobe, file);
601 if (ret)
602 goto out;
603
604 ret = -ENOTSUPP;
803200e2 605 if (is_trap_insn((uprobe_opcode_t *)&uprobe->arch.insn))
cb9a19fe
ON
606 goto out;
607
608 ret = arch_uprobe_analyze_insn(&uprobe->arch, mm, vaddr);
609 if (ret)
610 goto out;
611
f72d41fa 612 /* uprobe_write_opcode() assumes we don't cross page boundary */
cb9a19fe
ON
613 BUG_ON((uprobe->offset & ~PAGE_MASK) +
614 UPROBE_SWBP_INSN_SIZE > PAGE_SIZE);
615
616 smp_wmb(); /* pairs with rmb() in find_active_uprobe() */
71434f2f 617 set_bit(UPROBE_COPY_INSN, &uprobe->flags);
cb9a19fe
ON
618
619 out:
d4d3ccc6 620 up_write(&uprobe->consumer_rwsem);
4710f05f 621
cb9a19fe
ON
622 return ret;
623}
624
8a7f2fa0
ON
625static inline bool consumer_filter(struct uprobe_consumer *uc,
626 enum uprobe_filter_ctx ctx, struct mm_struct *mm)
806a98bd 627{
8a7f2fa0 628 return !uc->filter || uc->filter(uc, ctx, mm);
806a98bd
ON
629}
630
8a7f2fa0
ON
631static bool filter_chain(struct uprobe *uprobe,
632 enum uprobe_filter_ctx ctx, struct mm_struct *mm)
63633cbf 633{
1ff6fee5
ON
634 struct uprobe_consumer *uc;
635 bool ret = false;
636
637 down_read(&uprobe->consumer_rwsem);
638 for (uc = uprobe->consumers; uc; uc = uc->next) {
8a7f2fa0 639 ret = consumer_filter(uc, ctx, mm);
1ff6fee5
ON
640 if (ret)
641 break;
642 }
643 up_read(&uprobe->consumer_rwsem);
644
645 return ret;
63633cbf
ON
646}
647
e3343e6a
SD
648static int
649install_breakpoint(struct uprobe *uprobe, struct mm_struct *mm,
816c03fb 650 struct vm_area_struct *vma, unsigned long vaddr)
2b144498 651{
f8ac4ec9 652 bool first_uprobe;
2b144498
SD
653 int ret;
654
cb9a19fe
ON
655 ret = prepare_uprobe(uprobe, vma->vm_file, mm, vaddr);
656 if (ret)
657 return ret;
682968e0 658
f8ac4ec9
ON
659 /*
660 * set MMF_HAS_UPROBES in advance for uprobe_pre_sstep_notifier(),
661 * the task can hit this breakpoint right after __replace_page().
662 */
663 first_uprobe = !test_bit(MMF_HAS_UPROBES, &mm->flags);
664 if (first_uprobe)
665 set_bit(MMF_HAS_UPROBES, &mm->flags);
666
816c03fb 667 ret = set_swbp(&uprobe->arch, mm, vaddr);
9f68f672
ON
668 if (!ret)
669 clear_bit(MMF_RECALC_UPROBES, &mm->flags);
670 else if (first_uprobe)
f8ac4ec9 671 clear_bit(MMF_HAS_UPROBES, &mm->flags);
2b144498
SD
672
673 return ret;
674}
675
076a365b 676static int
816c03fb 677remove_breakpoint(struct uprobe *uprobe, struct mm_struct *mm, unsigned long vaddr)
2b144498 678{
9f68f672 679 set_bit(MMF_RECALC_UPROBES, &mm->flags);
076a365b 680 return set_orig_insn(&uprobe->arch, mm, vaddr);
2b144498
SD
681}
682
06b7bcd8
ON
683static inline bool uprobe_is_active(struct uprobe *uprobe)
684{
685 return !RB_EMPTY_NODE(&uprobe->rb_node);
686}
0326f5a9 687/*
778b032d
ON
688 * There could be threads that have already hit the breakpoint. They
689 * will recheck the current insn and restart if find_uprobe() fails.
690 * See find_active_uprobe().
0326f5a9 691 */
2b144498
SD
692static void delete_uprobe(struct uprobe *uprobe)
693{
06b7bcd8
ON
694 if (WARN_ON(!uprobe_is_active(uprobe)))
695 return;
696
6f47caa0 697 spin_lock(&uprobes_treelock);
2b144498 698 rb_erase(&uprobe->rb_node, &uprobes_tree);
6f47caa0 699 spin_unlock(&uprobes_treelock);
06b7bcd8 700 RB_CLEAR_NODE(&uprobe->rb_node); /* for uprobe_is_active() */
2b144498
SD
701 iput(uprobe->inode);
702 put_uprobe(uprobe);
2b144498
SD
703}
704
26872090
ON
705struct map_info {
706 struct map_info *next;
707 struct mm_struct *mm;
816c03fb 708 unsigned long vaddr;
26872090
ON
709};
710
711static inline struct map_info *free_map_info(struct map_info *info)
2b144498 712{
26872090
ON
713 struct map_info *next = info->next;
714 kfree(info);
715 return next;
716}
717
718static struct map_info *
719build_map_info(struct address_space *mapping, loff_t offset, bool is_register)
720{
721 unsigned long pgoff = offset >> PAGE_SHIFT;
2b144498 722 struct vm_area_struct *vma;
26872090
ON
723 struct map_info *curr = NULL;
724 struct map_info *prev = NULL;
725 struct map_info *info;
726 int more = 0;
2b144498 727
26872090 728 again:
4a23717a 729 i_mmap_lock_read(mapping);
6b2dbba8 730 vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff, pgoff) {
2b144498
SD
731 if (!valid_vma(vma, is_register))
732 continue;
733
7a5bfb66
ON
734 if (!prev && !more) {
735 /*
c8c06efa 736 * Needs GFP_NOWAIT to avoid i_mmap_rwsem recursion through
7a5bfb66
ON
737 * reclaim. This is optimistic, no harm done if it fails.
738 */
739 prev = kmalloc(sizeof(struct map_info),
740 GFP_NOWAIT | __GFP_NOMEMALLOC | __GFP_NOWARN);
741 if (prev)
742 prev->next = NULL;
743 }
26872090
ON
744 if (!prev) {
745 more++;
746 continue;
2b144498 747 }
2b144498 748
26872090
ON
749 if (!atomic_inc_not_zero(&vma->vm_mm->mm_users))
750 continue;
7b2d81d4 751
26872090
ON
752 info = prev;
753 prev = prev->next;
754 info->next = curr;
755 curr = info;
2b144498 756
26872090 757 info->mm = vma->vm_mm;
57683f72 758 info->vaddr = offset_to_vaddr(vma, offset);
26872090 759 }
4a23717a 760 i_mmap_unlock_read(mapping);
2b144498 761
26872090
ON
762 if (!more)
763 goto out;
764
765 prev = curr;
766 while (curr) {
767 mmput(curr->mm);
768 curr = curr->next;
769 }
7b2d81d4 770
26872090
ON
771 do {
772 info = kmalloc(sizeof(struct map_info), GFP_KERNEL);
773 if (!info) {
774 curr = ERR_PTR(-ENOMEM);
775 goto out;
776 }
777 info->next = prev;
778 prev = info;
779 } while (--more);
780
781 goto again;
782 out:
783 while (prev)
784 prev = free_map_info(prev);
785 return curr;
2b144498
SD
786}
787
bdf8647c
ON
788static int
789register_for_each_vma(struct uprobe *uprobe, struct uprobe_consumer *new)
2b144498 790{
bdf8647c 791 bool is_register = !!new;
26872090
ON
792 struct map_info *info;
793 int err = 0;
2b144498 794
32cdba1e 795 percpu_down_write(&dup_mmap_sem);
26872090
ON
796 info = build_map_info(uprobe->inode->i_mapping,
797 uprobe->offset, is_register);
32cdba1e
ON
798 if (IS_ERR(info)) {
799 err = PTR_ERR(info);
800 goto out;
801 }
7b2d81d4 802
26872090
ON
803 while (info) {
804 struct mm_struct *mm = info->mm;
805 struct vm_area_struct *vma;
7b2d81d4 806
076a365b 807 if (err && is_register)
26872090 808 goto free;
7b2d81d4 809
77fc4af1 810 down_write(&mm->mmap_sem);
f4d6dfe5
ON
811 vma = find_vma(mm, info->vaddr);
812 if (!vma || !valid_vma(vma, is_register) ||
f281769e 813 file_inode(vma->vm_file) != uprobe->inode)
26872090
ON
814 goto unlock;
815
f4d6dfe5
ON
816 if (vma->vm_start > info->vaddr ||
817 vaddr_to_offset(vma, info->vaddr) != uprobe->offset)
26872090 818 goto unlock;
2b144498 819
806a98bd
ON
820 if (is_register) {
821 /* consult only the "caller", new consumer. */
bdf8647c 822 if (consumer_filter(new,
8a7f2fa0 823 UPROBE_FILTER_REGISTER, mm))
806a98bd
ON
824 err = install_breakpoint(uprobe, mm, vma, info->vaddr);
825 } else if (test_bit(MMF_HAS_UPROBES, &mm->flags)) {
8a7f2fa0
ON
826 if (!filter_chain(uprobe,
827 UPROBE_FILTER_UNREGISTER, mm))
806a98bd
ON
828 err |= remove_breakpoint(uprobe, mm, info->vaddr);
829 }
78f74116 830
26872090
ON
831 unlock:
832 up_write(&mm->mmap_sem);
833 free:
834 mmput(mm);
835 info = free_map_info(info);
2b144498 836 }
32cdba1e
ON
837 out:
838 percpu_up_write(&dup_mmap_sem);
26872090 839 return err;
2b144498
SD
840}
841
9a98e03c 842static int __uprobe_register(struct uprobe *uprobe, struct uprobe_consumer *uc)
2b144498 843{
9a98e03c 844 consumer_add(uprobe, uc);
bdf8647c 845 return register_for_each_vma(uprobe, uc);
2b144498
SD
846}
847
04aab9b2 848static void __uprobe_unregister(struct uprobe *uprobe, struct uprobe_consumer *uc)
2b144498 849{
04aab9b2
ON
850 int err;
851
06d07139 852 if (WARN_ON(!consumer_del(uprobe, uc)))
04aab9b2 853 return;
2b144498 854
bdf8647c 855 err = register_for_each_vma(uprobe, NULL);
bb929284
ON
856 /* TODO : cant unregister? schedule a worker thread */
857 if (!uprobe->consumers && !err)
858 delete_uprobe(uprobe);
2b144498
SD
859}
860
861/*
7b2d81d4 862 * uprobe_register - register a probe
2b144498
SD
863 * @inode: the file in which the probe has to be placed.
864 * @offset: offset from the start of the file.
e3343e6a 865 * @uc: information on howto handle the probe..
2b144498 866 *
7b2d81d4 867 * Apart from the access refcount, uprobe_register() takes a creation
2b144498
SD
868 * refcount (thro alloc_uprobe) if and only if this @uprobe is getting
869 * inserted into the rbtree (i.e first consumer for a @inode:@offset
7b2d81d4 870 * tuple). Creation refcount stops uprobe_unregister from freeing the
2b144498 871 * @uprobe even before the register operation is complete. Creation
e3343e6a 872 * refcount is released when the last @uc for the @uprobe
2b144498
SD
873 * unregisters.
874 *
875 * Return errno if it cannot successully install probes
876 * else return 0 (success)
877 */
e3343e6a 878int uprobe_register(struct inode *inode, loff_t offset, struct uprobe_consumer *uc)
2b144498
SD
879{
880 struct uprobe *uprobe;
7b2d81d4 881 int ret;
2b144498 882
ea024870
AA
883 /* Uprobe must have at least one set consumer */
884 if (!uc->handler && !uc->ret_handler)
885 return -EINVAL;
886
40814f68
ON
887 /* copy_insn() uses read_mapping_page() or shmem_read_mapping_page() */
888 if (!inode->i_mapping->a_ops->readpage && !shmem_mapping(inode->i_mapping))
41ccba02 889 return -EIO;
f0744af7 890 /* Racy, just to catch the obvious mistakes */
2b144498 891 if (offset > i_size_read(inode))
7b2d81d4 892 return -EINVAL;
2b144498 893
66d06dff 894 retry:
2b144498 895 uprobe = alloc_uprobe(inode, offset);
66d06dff
ON
896 if (!uprobe)
897 return -ENOMEM;
898 /*
899 * We can race with uprobe_unregister()->delete_uprobe().
900 * Check uprobe_is_active() and retry if it is false.
901 */
902 down_write(&uprobe->register_rwsem);
903 ret = -EAGAIN;
904 if (likely(uprobe_is_active(uprobe))) {
9a98e03c
ON
905 ret = __uprobe_register(uprobe, uc);
906 if (ret)
04aab9b2 907 __uprobe_unregister(uprobe, uc);
2b144498 908 }
66d06dff
ON
909 up_write(&uprobe->register_rwsem);
910 put_uprobe(uprobe);
2b144498 911
66d06dff
ON
912 if (unlikely(ret == -EAGAIN))
913 goto retry;
2b144498
SD
914 return ret;
915}
e8440c14 916EXPORT_SYMBOL_GPL(uprobe_register);
2b144498 917
bdf8647c
ON
918/*
919 * uprobe_apply - unregister a already registered probe.
920 * @inode: the file in which the probe has to be removed.
921 * @offset: offset from the start of the file.
922 * @uc: consumer which wants to add more or remove some breakpoints
923 * @add: add or remove the breakpoints
924 */
925int uprobe_apply(struct inode *inode, loff_t offset,
926 struct uprobe_consumer *uc, bool add)
927{
928 struct uprobe *uprobe;
929 struct uprobe_consumer *con;
930 int ret = -ENOENT;
931
932 uprobe = find_uprobe(inode, offset);
06d07139 933 if (WARN_ON(!uprobe))
bdf8647c
ON
934 return ret;
935
936 down_write(&uprobe->register_rwsem);
937 for (con = uprobe->consumers; con && con != uc ; con = con->next)
938 ;
939 if (con)
940 ret = register_for_each_vma(uprobe, add ? uc : NULL);
941 up_write(&uprobe->register_rwsem);
942 put_uprobe(uprobe);
943
944 return ret;
945}
946
2b144498 947/*
7b2d81d4 948 * uprobe_unregister - unregister a already registered probe.
2b144498
SD
949 * @inode: the file in which the probe has to be removed.
950 * @offset: offset from the start of the file.
e3343e6a 951 * @uc: identify which probe if multiple probes are colocated.
2b144498 952 */
e3343e6a 953void uprobe_unregister(struct inode *inode, loff_t offset, struct uprobe_consumer *uc)
2b144498 954{
7b2d81d4 955 struct uprobe *uprobe;
2b144498 956
2b144498 957 uprobe = find_uprobe(inode, offset);
06d07139 958 if (WARN_ON(!uprobe))
2b144498
SD
959 return;
960
e591c8d7 961 down_write(&uprobe->register_rwsem);
04aab9b2 962 __uprobe_unregister(uprobe, uc);
e591c8d7 963 up_write(&uprobe->register_rwsem);
c91368c4 964 put_uprobe(uprobe);
2b144498 965}
e8440c14 966EXPORT_SYMBOL_GPL(uprobe_unregister);
2b144498 967
da1816b1
ON
968static int unapply_uprobe(struct uprobe *uprobe, struct mm_struct *mm)
969{
970 struct vm_area_struct *vma;
971 int err = 0;
972
973 down_read(&mm->mmap_sem);
974 for (vma = mm->mmap; vma; vma = vma->vm_next) {
975 unsigned long vaddr;
976 loff_t offset;
977
978 if (!valid_vma(vma, false) ||
f281769e 979 file_inode(vma->vm_file) != uprobe->inode)
da1816b1
ON
980 continue;
981
982 offset = (loff_t)vma->vm_pgoff << PAGE_SHIFT;
983 if (uprobe->offset < offset ||
984 uprobe->offset >= offset + vma->vm_end - vma->vm_start)
985 continue;
986
987 vaddr = offset_to_vaddr(vma, uprobe->offset);
988 err |= remove_breakpoint(uprobe, mm, vaddr);
989 }
990 up_read(&mm->mmap_sem);
991
992 return err;
993}
994
891c3970
ON
995static struct rb_node *
996find_node_in_range(struct inode *inode, loff_t min, loff_t max)
2b144498 997{
2b144498 998 struct rb_node *n = uprobes_tree.rb_node;
2b144498
SD
999
1000 while (n) {
891c3970 1001 struct uprobe *u = rb_entry(n, struct uprobe, rb_node);
2b144498 1002
891c3970 1003 if (inode < u->inode) {
2b144498 1004 n = n->rb_left;
891c3970 1005 } else if (inode > u->inode) {
2b144498 1006 n = n->rb_right;
891c3970
ON
1007 } else {
1008 if (max < u->offset)
1009 n = n->rb_left;
1010 else if (min > u->offset)
1011 n = n->rb_right;
1012 else
1013 break;
1014 }
2b144498 1015 }
7b2d81d4 1016
891c3970 1017 return n;
2b144498
SD
1018}
1019
1020/*
891c3970 1021 * For a given range in vma, build a list of probes that need to be inserted.
2b144498 1022 */
891c3970
ON
1023static void build_probe_list(struct inode *inode,
1024 struct vm_area_struct *vma,
1025 unsigned long start, unsigned long end,
1026 struct list_head *head)
2b144498 1027{
891c3970 1028 loff_t min, max;
891c3970
ON
1029 struct rb_node *n, *t;
1030 struct uprobe *u;
7b2d81d4 1031
891c3970 1032 INIT_LIST_HEAD(head);
cb113b47 1033 min = vaddr_to_offset(vma, start);
891c3970 1034 max = min + (end - start) - 1;
2b144498 1035
6f47caa0 1036 spin_lock(&uprobes_treelock);
891c3970
ON
1037 n = find_node_in_range(inode, min, max);
1038 if (n) {
1039 for (t = n; t; t = rb_prev(t)) {
1040 u = rb_entry(t, struct uprobe, rb_node);
1041 if (u->inode != inode || u->offset < min)
1042 break;
1043 list_add(&u->pending_list, head);
f231722a 1044 get_uprobe(u);
891c3970
ON
1045 }
1046 for (t = n; (t = rb_next(t)); ) {
1047 u = rb_entry(t, struct uprobe, rb_node);
1048 if (u->inode != inode || u->offset > max)
1049 break;
1050 list_add(&u->pending_list, head);
f231722a 1051 get_uprobe(u);
891c3970 1052 }
2b144498 1053 }
6f47caa0 1054 spin_unlock(&uprobes_treelock);
2b144498
SD
1055}
1056
1057/*
5e5be71a 1058 * Called from mmap_region/vma_adjust with mm->mmap_sem acquired.
2b144498 1059 *
5e5be71a
ON
1060 * Currently we ignore all errors and always return 0, the callers
1061 * can't handle the failure anyway.
2b144498 1062 */
7b2d81d4 1063int uprobe_mmap(struct vm_area_struct *vma)
2b144498
SD
1064{
1065 struct list_head tmp_list;
665605a2 1066 struct uprobe *uprobe, *u;
2b144498 1067 struct inode *inode;
2b144498 1068
441f1eb7 1069 if (no_uprobe_events() || !valid_vma(vma, true))
7b2d81d4 1070 return 0;
2b144498 1071
f281769e 1072 inode = file_inode(vma->vm_file);
2b144498 1073 if (!inode)
7b2d81d4 1074 return 0;
2b144498 1075
2b144498 1076 mutex_lock(uprobes_mmap_hash(inode));
891c3970 1077 build_probe_list(inode, vma, vma->vm_start, vma->vm_end, &tmp_list);
806a98bd
ON
1078 /*
1079 * We can race with uprobe_unregister(), this uprobe can be already
1080 * removed. But in this case filter_chain() must return false, all
1081 * consumers have gone away.
1082 */
665605a2 1083 list_for_each_entry_safe(uprobe, u, &tmp_list, pending_list) {
806a98bd 1084 if (!fatal_signal_pending(current) &&
8a7f2fa0 1085 filter_chain(uprobe, UPROBE_FILTER_MMAP, vma->vm_mm)) {
57683f72 1086 unsigned long vaddr = offset_to_vaddr(vma, uprobe->offset);
5e5be71a 1087 install_breakpoint(uprobe, vma->vm_mm, vma, vaddr);
2b144498
SD
1088 }
1089 put_uprobe(uprobe);
1090 }
2b144498
SD
1091 mutex_unlock(uprobes_mmap_hash(inode));
1092
5e5be71a 1093 return 0;
2b144498
SD
1094}
1095
9f68f672
ON
1096static bool
1097vma_has_uprobes(struct vm_area_struct *vma, unsigned long start, unsigned long end)
1098{
1099 loff_t min, max;
1100 struct inode *inode;
1101 struct rb_node *n;
1102
f281769e 1103 inode = file_inode(vma->vm_file);
9f68f672
ON
1104
1105 min = vaddr_to_offset(vma, start);
1106 max = min + (end - start) - 1;
1107
1108 spin_lock(&uprobes_treelock);
1109 n = find_node_in_range(inode, min, max);
1110 spin_unlock(&uprobes_treelock);
1111
1112 return !!n;
1113}
1114
682968e0
SD
1115/*
1116 * Called in context of a munmap of a vma.
1117 */
cbc91f71 1118void uprobe_munmap(struct vm_area_struct *vma, unsigned long start, unsigned long end)
682968e0 1119{
441f1eb7 1120 if (no_uprobe_events() || !valid_vma(vma, false))
682968e0
SD
1121 return;
1122
2fd611a9
ON
1123 if (!atomic_read(&vma->vm_mm->mm_users)) /* called by mmput() ? */
1124 return;
1125
9f68f672
ON
1126 if (!test_bit(MMF_HAS_UPROBES, &vma->vm_mm->flags) ||
1127 test_bit(MMF_RECALC_UPROBES, &vma->vm_mm->flags))
f8ac4ec9
ON
1128 return;
1129
9f68f672
ON
1130 if (vma_has_uprobes(vma, start, end))
1131 set_bit(MMF_RECALC_UPROBES, &vma->vm_mm->flags);
682968e0
SD
1132}
1133
d4b3b638 1134/* Slot allocation for XOL */
6441ec8b 1135static int xol_add_vma(struct mm_struct *mm, struct xol_area *area)
d4b3b638 1136{
c8a82538 1137 int ret = -EALREADY;
d4b3b638
SD
1138
1139 down_write(&mm->mmap_sem);
1140 if (mm->uprobes_state.xol_area)
1141 goto fail;
1142
af0d95af
ON
1143 if (!area->vaddr) {
1144 /* Try to map as high as possible, this is only a hint. */
1145 area->vaddr = get_unmapped_area(NULL, TASK_SIZE - PAGE_SIZE,
1146 PAGE_SIZE, 0, 0);
1147 if (area->vaddr & ~PAGE_MASK) {
1148 ret = area->vaddr;
1149 goto fail;
1150 }
d4b3b638
SD
1151 }
1152
1153 ret = install_special_mapping(mm, area->vaddr, PAGE_SIZE,
1154 VM_EXEC|VM_MAYEXEC|VM_DONTCOPY|VM_IO, &area->page);
1155 if (ret)
1156 goto fail;
1157
1158 smp_wmb(); /* pairs with get_xol_area() */
1159 mm->uprobes_state.xol_area = area;
c8a82538 1160 fail:
d4b3b638 1161 up_write(&mm->mmap_sem);
d4b3b638
SD
1162
1163 return ret;
1164}
1165
af0d95af 1166static struct xol_area *__create_xol_area(unsigned long vaddr)
d4b3b638 1167{
9b545df8 1168 struct mm_struct *mm = current->mm;
e78aebfd 1169 uprobe_opcode_t insn = UPROBE_SWBP_INSN;
6441ec8b 1170 struct xol_area *area;
9b545df8 1171
af0d95af 1172 area = kmalloc(sizeof(*area), GFP_KERNEL);
d4b3b638 1173 if (unlikely(!area))
c8a82538 1174 goto out;
d4b3b638
SD
1175
1176 area->bitmap = kzalloc(BITS_TO_LONGS(UINSNS_PER_PAGE) * sizeof(long), GFP_KERNEL);
d4b3b638 1177 if (!area->bitmap)
c8a82538
ON
1178 goto free_area;
1179
1180 area->page = alloc_page(GFP_HIGHUSER);
1181 if (!area->page)
1182 goto free_bitmap;
d4b3b638 1183
af0d95af 1184 area->vaddr = vaddr;
6441ec8b
ON
1185 init_waitqueue_head(&area->wq);
1186 /* Reserve the 1st slot for get_trampoline_vaddr() */
e78aebfd 1187 set_bit(0, area->bitmap);
e78aebfd 1188 atomic_set(&area->slot_count, 1);
6441ec8b 1189 copy_to_page(area->page, 0, &insn, UPROBE_SWBP_INSN_SIZE);
e78aebfd 1190
6441ec8b 1191 if (!xol_add_vma(mm, area))
d4b3b638
SD
1192 return area;
1193
c8a82538
ON
1194 __free_page(area->page);
1195 free_bitmap:
d4b3b638 1196 kfree(area->bitmap);
c8a82538 1197 free_area:
d4b3b638 1198 kfree(area);
c8a82538 1199 out:
6441ec8b
ON
1200 return NULL;
1201}
1202
1203/*
1204 * get_xol_area - Allocate process's xol_area if necessary.
1205 * This area will be used for storing instructions for execution out of line.
1206 *
1207 * Returns the allocated area or NULL.
1208 */
1209static struct xol_area *get_xol_area(void)
1210{
1211 struct mm_struct *mm = current->mm;
1212 struct xol_area *area;
1213
1214 if (!mm->uprobes_state.xol_area)
af0d95af 1215 __create_xol_area(0);
6441ec8b 1216
9b545df8 1217 area = mm->uprobes_state.xol_area;
6441ec8b 1218 smp_read_barrier_depends(); /* pairs with wmb in xol_add_vma() */
9b545df8 1219 return area;
d4b3b638
SD
1220}
1221
1222/*
1223 * uprobe_clear_state - Free the area allocated for slots.
1224 */
1225void uprobe_clear_state(struct mm_struct *mm)
1226{
1227 struct xol_area *area = mm->uprobes_state.xol_area;
1228
1229 if (!area)
1230 return;
1231
1232 put_page(area->page);
1233 kfree(area->bitmap);
1234 kfree(area);
1235}
1236
32cdba1e
ON
1237void uprobe_start_dup_mmap(void)
1238{
1239 percpu_down_read(&dup_mmap_sem);
1240}
1241
1242void uprobe_end_dup_mmap(void)
1243{
1244 percpu_up_read(&dup_mmap_sem);
1245}
1246
f8ac4ec9
ON
1247void uprobe_dup_mmap(struct mm_struct *oldmm, struct mm_struct *newmm)
1248{
61559a81
ON
1249 newmm->uprobes_state.xol_area = NULL;
1250
9f68f672 1251 if (test_bit(MMF_HAS_UPROBES, &oldmm->flags)) {
f8ac4ec9 1252 set_bit(MMF_HAS_UPROBES, &newmm->flags);
9f68f672
ON
1253 /* unconditionally, dup_mmap() skips VM_DONTCOPY vmas */
1254 set_bit(MMF_RECALC_UPROBES, &newmm->flags);
1255 }
f8ac4ec9
ON
1256}
1257
d4b3b638
SD
1258/*
1259 * - search for a free slot.
1260 */
1261static unsigned long xol_take_insn_slot(struct xol_area *area)
1262{
1263 unsigned long slot_addr;
1264 int slot_nr;
1265
1266 do {
1267 slot_nr = find_first_zero_bit(area->bitmap, UINSNS_PER_PAGE);
1268 if (slot_nr < UINSNS_PER_PAGE) {
1269 if (!test_and_set_bit(slot_nr, area->bitmap))
1270 break;
1271
1272 slot_nr = UINSNS_PER_PAGE;
1273 continue;
1274 }
1275 wait_event(area->wq, (atomic_read(&area->slot_count) < UINSNS_PER_PAGE));
1276 } while (slot_nr >= UINSNS_PER_PAGE);
1277
1278 slot_addr = area->vaddr + (slot_nr * UPROBE_XOL_SLOT_BYTES);
1279 atomic_inc(&area->slot_count);
1280
1281 return slot_addr;
1282}
1283
1284/*
a6cb3f6d 1285 * xol_get_insn_slot - allocate a slot for xol.
d4b3b638
SD
1286 * Returns the allocated slot address or 0.
1287 */
a6cb3f6d 1288static unsigned long xol_get_insn_slot(struct uprobe *uprobe)
d4b3b638
SD
1289{
1290 struct xol_area *area;
a6cb3f6d 1291 unsigned long xol_vaddr;
d4b3b638 1292
9b545df8
ON
1293 area = get_xol_area();
1294 if (!area)
1295 return 0;
d4b3b638 1296
a6cb3f6d
ON
1297 xol_vaddr = xol_take_insn_slot(area);
1298 if (unlikely(!xol_vaddr))
d4b3b638
SD
1299 return 0;
1300
72e6ae28
VK
1301 arch_uprobe_copy_ixol(area->page, xol_vaddr,
1302 &uprobe->arch.ixol, sizeof(uprobe->arch.ixol));
d4b3b638 1303
a6cb3f6d 1304 return xol_vaddr;
d4b3b638
SD
1305}
1306
1307/*
1308 * xol_free_insn_slot - If slot was earlier allocated by
1309 * @xol_get_insn_slot(), make the slot available for
1310 * subsequent requests.
1311 */
1312static void xol_free_insn_slot(struct task_struct *tsk)
1313{
1314 struct xol_area *area;
1315 unsigned long vma_end;
1316 unsigned long slot_addr;
1317
1318 if (!tsk->mm || !tsk->mm->uprobes_state.xol_area || !tsk->utask)
1319 return;
1320
1321 slot_addr = tsk->utask->xol_vaddr;
af4355e9 1322 if (unlikely(!slot_addr))
d4b3b638
SD
1323 return;
1324
1325 area = tsk->mm->uprobes_state.xol_area;
1326 vma_end = area->vaddr + PAGE_SIZE;
1327 if (area->vaddr <= slot_addr && slot_addr < vma_end) {
1328 unsigned long offset;
1329 int slot_nr;
1330
1331 offset = slot_addr - area->vaddr;
1332 slot_nr = offset / UPROBE_XOL_SLOT_BYTES;
1333 if (slot_nr >= UINSNS_PER_PAGE)
1334 return;
1335
1336 clear_bit(slot_nr, area->bitmap);
1337 atomic_dec(&area->slot_count);
1338 if (waitqueue_active(&area->wq))
1339 wake_up(&area->wq);
1340
1341 tsk->utask->xol_vaddr = 0;
1342 }
1343}
1344
72e6ae28
VK
1345void __weak arch_uprobe_copy_ixol(struct page *page, unsigned long vaddr,
1346 void *src, unsigned long len)
1347{
1348 /* Initialize the slot */
1349 copy_to_page(page, vaddr, src, len);
1350
1351 /*
1352 * We probably need flush_icache_user_range() but it needs vma.
1353 * This should work on most of architectures by default. If
1354 * architecture needs to do something different it can define
1355 * its own version of the function.
1356 */
1357 flush_dcache_page(page);
1358}
1359
0326f5a9
SD
1360/**
1361 * uprobe_get_swbp_addr - compute address of swbp given post-swbp regs
1362 * @regs: Reflects the saved state of the task after it has hit a breakpoint
1363 * instruction.
1364 * Return the address of the breakpoint instruction.
1365 */
1366unsigned long __weak uprobe_get_swbp_addr(struct pt_regs *regs)
1367{
1368 return instruction_pointer(regs) - UPROBE_SWBP_INSN_SIZE;
1369}
1370
b02ef20a
ON
1371unsigned long uprobe_get_trap_addr(struct pt_regs *regs)
1372{
1373 struct uprobe_task *utask = current->utask;
1374
1375 if (unlikely(utask && utask->active_uprobe))
1376 return utask->vaddr;
1377
1378 return instruction_pointer(regs);
1379}
1380
2bb5e840
ON
1381static struct return_instance *free_ret_instance(struct return_instance *ri)
1382{
1383 struct return_instance *next = ri->next;
1384 put_uprobe(ri->uprobe);
1385 kfree(ri);
1386 return next;
1387}
1388
0326f5a9
SD
1389/*
1390 * Called with no locks held.
1391 * Called in context of a exiting or a exec-ing thread.
1392 */
1393void uprobe_free_utask(struct task_struct *t)
1394{
1395 struct uprobe_task *utask = t->utask;
2bb5e840 1396 struct return_instance *ri;
0326f5a9 1397
0326f5a9
SD
1398 if (!utask)
1399 return;
1400
1401 if (utask->active_uprobe)
1402 put_uprobe(utask->active_uprobe);
1403
0dfd0eb8 1404 ri = utask->return_instances;
2bb5e840
ON
1405 while (ri)
1406 ri = free_ret_instance(ri);
0dfd0eb8 1407
d4b3b638 1408 xol_free_insn_slot(t);
0326f5a9
SD
1409 kfree(utask);
1410 t->utask = NULL;
1411}
1412
0326f5a9 1413/*
5a2df662
ON
1414 * Allocate a uprobe_task object for the task if if necessary.
1415 * Called when the thread hits a breakpoint.
0326f5a9
SD
1416 *
1417 * Returns:
1418 * - pointer to new uprobe_task on success
1419 * - NULL otherwise
1420 */
5a2df662 1421static struct uprobe_task *get_utask(void)
0326f5a9 1422{
5a2df662
ON
1423 if (!current->utask)
1424 current->utask = kzalloc(sizeof(struct uprobe_task), GFP_KERNEL);
1425 return current->utask;
0326f5a9
SD
1426}
1427
248d3a7b
ON
1428static int dup_utask(struct task_struct *t, struct uprobe_task *o_utask)
1429{
1430 struct uprobe_task *n_utask;
1431 struct return_instance **p, *o, *n;
1432
1433 n_utask = kzalloc(sizeof(struct uprobe_task), GFP_KERNEL);
1434 if (!n_utask)
1435 return -ENOMEM;
1436 t->utask = n_utask;
1437
1438 p = &n_utask->return_instances;
1439 for (o = o_utask->return_instances; o; o = o->next) {
1440 n = kmalloc(sizeof(struct return_instance), GFP_KERNEL);
1441 if (!n)
1442 return -ENOMEM;
1443
1444 *n = *o;
f231722a 1445 get_uprobe(n->uprobe);
248d3a7b
ON
1446 n->next = NULL;
1447
1448 *p = n;
1449 p = &n->next;
1450 n_utask->depth++;
1451 }
1452
1453 return 0;
1454}
1455
1456static void uprobe_warn(struct task_struct *t, const char *msg)
1457{
1458 pr_warn("uprobe: %s:%d failed to %s\n",
1459 current->comm, current->pid, msg);
1460}
1461
aa59c53f
ON
1462static void dup_xol_work(struct callback_head *work)
1463{
aa59c53f
ON
1464 if (current->flags & PF_EXITING)
1465 return;
1466
32473431 1467 if (!__create_xol_area(current->utask->dup_xol_addr))
aa59c53f
ON
1468 uprobe_warn(current, "dup xol area");
1469}
1470
b68e0749
ON
1471/*
1472 * Called in context of a new clone/fork from copy_process.
1473 */
3ab67966 1474void uprobe_copy_process(struct task_struct *t, unsigned long flags)
b68e0749 1475{
248d3a7b
ON
1476 struct uprobe_task *utask = current->utask;
1477 struct mm_struct *mm = current->mm;
aa59c53f 1478 struct xol_area *area;
248d3a7b 1479
b68e0749 1480 t->utask = NULL;
248d3a7b 1481
3ab67966
ON
1482 if (!utask || !utask->return_instances)
1483 return;
1484
1485 if (mm == t->mm && !(flags & CLONE_VFORK))
248d3a7b
ON
1486 return;
1487
1488 if (dup_utask(t, utask))
1489 return uprobe_warn(t, "dup ret instances");
aa59c53f
ON
1490
1491 /* The task can fork() after dup_xol_work() fails */
1492 area = mm->uprobes_state.xol_area;
1493 if (!area)
1494 return uprobe_warn(t, "dup xol area");
1495
3ab67966
ON
1496 if (mm == t->mm)
1497 return;
1498
32473431
ON
1499 t->utask->dup_xol_addr = area->vaddr;
1500 init_task_work(&t->utask->dup_xol_work, dup_xol_work);
1501 task_work_add(t, &t->utask->dup_xol_work, true);
b68e0749
ON
1502}
1503
e78aebfd
AA
1504/*
1505 * Current area->vaddr notion assume the trampoline address is always
1506 * equal area->vaddr.
1507 *
1508 * Returns -1 in case the xol_area is not allocated.
1509 */
1510static unsigned long get_trampoline_vaddr(void)
1511{
1512 struct xol_area *area;
1513 unsigned long trampoline_vaddr = -1;
1514
1515 area = current->mm->uprobes_state.xol_area;
1516 smp_read_barrier_depends();
1517 if (area)
1518 trampoline_vaddr = area->vaddr;
1519
1520 return trampoline_vaddr;
1521}
1522
0dfd0eb8
AA
1523static void prepare_uretprobe(struct uprobe *uprobe, struct pt_regs *regs)
1524{
1525 struct return_instance *ri;
1526 struct uprobe_task *utask;
1527 unsigned long orig_ret_vaddr, trampoline_vaddr;
1528 bool chained = false;
1529
1530 if (!get_xol_area())
1531 return;
1532
1533 utask = get_utask();
1534 if (!utask)
1535 return;
1536
ded49c55
AA
1537 if (utask->depth >= MAX_URETPROBE_DEPTH) {
1538 printk_ratelimited(KERN_INFO "uprobe: omit uretprobe due to"
1539 " nestedness limit pid/tgid=%d/%d\n",
1540 current->pid, current->tgid);
1541 return;
1542 }
1543
0dfd0eb8
AA
1544 ri = kzalloc(sizeof(struct return_instance), GFP_KERNEL);
1545 if (!ri)
1546 goto fail;
1547
1548 trampoline_vaddr = get_trampoline_vaddr();
1549 orig_ret_vaddr = arch_uretprobe_hijack_return_addr(trampoline_vaddr, regs);
1550 if (orig_ret_vaddr == -1)
1551 goto fail;
1552
1553 /*
1554 * We don't want to keep trampoline address in stack, rather keep the
1555 * original return address of first caller thru all the consequent
1556 * instances. This also makes breakpoint unwrapping easier.
1557 */
1558 if (orig_ret_vaddr == trampoline_vaddr) {
1559 if (!utask->return_instances) {
1560 /*
1561 * This situation is not possible. Likely we have an
1562 * attack from user-space.
1563 */
1564 pr_warn("uprobe: unable to set uretprobe pid/tgid=%d/%d\n",
1565 current->pid, current->tgid);
1566 goto fail;
1567 }
1568
1569 chained = true;
1570 orig_ret_vaddr = utask->return_instances->orig_ret_vaddr;
1571 }
1572
f231722a 1573 ri->uprobe = get_uprobe(uprobe);
0dfd0eb8
AA
1574 ri->func = instruction_pointer(regs);
1575 ri->orig_ret_vaddr = orig_ret_vaddr;
1576 ri->chained = chained;
1577
ded49c55
AA
1578 utask->depth++;
1579
0dfd0eb8
AA
1580 /* add instance to the stack */
1581 ri->next = utask->return_instances;
1582 utask->return_instances = ri;
1583
1584 return;
1585
1586 fail:
1587 kfree(ri);
1588}
1589
0326f5a9
SD
1590/* Prepare to single-step probed instruction out of line. */
1591static int
a6cb3f6d 1592pre_ssout(struct uprobe *uprobe, struct pt_regs *regs, unsigned long bp_vaddr)
0326f5a9 1593{
a6cb3f6d
ON
1594 struct uprobe_task *utask;
1595 unsigned long xol_vaddr;
aba51024 1596 int err;
a6cb3f6d 1597
608e7427
ON
1598 utask = get_utask();
1599 if (!utask)
1600 return -ENOMEM;
a6cb3f6d
ON
1601
1602 xol_vaddr = xol_get_insn_slot(uprobe);
1603 if (!xol_vaddr)
1604 return -ENOMEM;
1605
1606 utask->xol_vaddr = xol_vaddr;
1607 utask->vaddr = bp_vaddr;
d4b3b638 1608
aba51024
ON
1609 err = arch_uprobe_pre_xol(&uprobe->arch, regs);
1610 if (unlikely(err)) {
1611 xol_free_insn_slot(current);
1612 return err;
1613 }
1614
608e7427
ON
1615 utask->active_uprobe = uprobe;
1616 utask->state = UTASK_SSTEP;
aba51024 1617 return 0;
0326f5a9
SD
1618}
1619
1620/*
1621 * If we are singlestepping, then ensure this thread is not connected to
1622 * non-fatal signals until completion of singlestep. When xol insn itself
1623 * triggers the signal, restart the original insn even if the task is
1624 * already SIGKILL'ed (since coredump should report the correct ip). This
1625 * is even more important if the task has a handler for SIGSEGV/etc, The
1626 * _same_ instruction should be repeated again after return from the signal
1627 * handler, and SSTEP can never finish in this case.
1628 */
1629bool uprobe_deny_signal(void)
1630{
1631 struct task_struct *t = current;
1632 struct uprobe_task *utask = t->utask;
1633
1634 if (likely(!utask || !utask->active_uprobe))
1635 return false;
1636
1637 WARN_ON_ONCE(utask->state != UTASK_SSTEP);
1638
1639 if (signal_pending(t)) {
1640 spin_lock_irq(&t->sighand->siglock);
1641 clear_tsk_thread_flag(t, TIF_SIGPENDING);
1642 spin_unlock_irq(&t->sighand->siglock);
1643
1644 if (__fatal_signal_pending(t) || arch_uprobe_xol_was_trapped(t)) {
1645 utask->state = UTASK_SSTEP_TRAPPED;
1646 set_tsk_thread_flag(t, TIF_UPROBE);
0326f5a9
SD
1647 }
1648 }
1649
1650 return true;
1651}
1652
499a4f3e
ON
1653static void mmf_recalc_uprobes(struct mm_struct *mm)
1654{
1655 struct vm_area_struct *vma;
1656
1657 for (vma = mm->mmap; vma; vma = vma->vm_next) {
1658 if (!valid_vma(vma, false))
1659 continue;
1660 /*
1661 * This is not strictly accurate, we can race with
1662 * uprobe_unregister() and see the already removed
1663 * uprobe if delete_uprobe() was not yet called.
63633cbf 1664 * Or this uprobe can be filtered out.
499a4f3e
ON
1665 */
1666 if (vma_has_uprobes(vma, vma->vm_start, vma->vm_end))
1667 return;
1668 }
1669
1670 clear_bit(MMF_HAS_UPROBES, &mm->flags);
1671}
1672
0908ad6e 1673static int is_trap_at_addr(struct mm_struct *mm, unsigned long vaddr)
ec75fba9
ON
1674{
1675 struct page *page;
1676 uprobe_opcode_t opcode;
1677 int result;
1678
1679 pagefault_disable();
1680 result = __copy_from_user_inatomic(&opcode, (void __user*)vaddr,
1681 sizeof(opcode));
1682 pagefault_enable();
1683
1684 if (likely(result == 0))
1685 goto out;
1686
1687 result = get_user_pages(NULL, mm, vaddr, 1, 0, 1, &page, NULL);
1688 if (result < 0)
1689 return result;
1690
ab0d805c 1691 copy_from_page(page, vaddr, &opcode, UPROBE_SWBP_INSN_SIZE);
ec75fba9
ON
1692 put_page(page);
1693 out:
0908ad6e
AM
1694 /* This needs to return true for any variant of the trap insn */
1695 return is_trap_insn(&opcode);
ec75fba9
ON
1696}
1697
d790d346 1698static struct uprobe *find_active_uprobe(unsigned long bp_vaddr, int *is_swbp)
0326f5a9 1699{
3a9ea052
ON
1700 struct mm_struct *mm = current->mm;
1701 struct uprobe *uprobe = NULL;
0326f5a9 1702 struct vm_area_struct *vma;
0326f5a9 1703
0326f5a9
SD
1704 down_read(&mm->mmap_sem);
1705 vma = find_vma(mm, bp_vaddr);
3a9ea052
ON
1706 if (vma && vma->vm_start <= bp_vaddr) {
1707 if (valid_vma(vma, false)) {
f281769e 1708 struct inode *inode = file_inode(vma->vm_file);
cb113b47 1709 loff_t offset = vaddr_to_offset(vma, bp_vaddr);
0326f5a9 1710
3a9ea052
ON
1711 uprobe = find_uprobe(inode, offset);
1712 }
d790d346
ON
1713
1714 if (!uprobe)
0908ad6e 1715 *is_swbp = is_trap_at_addr(mm, bp_vaddr);
d790d346
ON
1716 } else {
1717 *is_swbp = -EFAULT;
0326f5a9 1718 }
499a4f3e
ON
1719
1720 if (!uprobe && test_and_clear_bit(MMF_RECALC_UPROBES, &mm->flags))
1721 mmf_recalc_uprobes(mm);
0326f5a9
SD
1722 up_read(&mm->mmap_sem);
1723
3a9ea052
ON
1724 return uprobe;
1725}
1726
da1816b1
ON
1727static void handler_chain(struct uprobe *uprobe, struct pt_regs *regs)
1728{
1729 struct uprobe_consumer *uc;
1730 int remove = UPROBE_HANDLER_REMOVE;
0dfd0eb8 1731 bool need_prep = false; /* prepare return uprobe, when needed */
da1816b1
ON
1732
1733 down_read(&uprobe->register_rwsem);
1734 for (uc = uprobe->consumers; uc; uc = uc->next) {
ea024870 1735 int rc = 0;
da1816b1 1736
ea024870
AA
1737 if (uc->handler) {
1738 rc = uc->handler(uc, regs);
1739 WARN(rc & ~UPROBE_HANDLER_MASK,
1740 "bad rc=0x%x from %pf()\n", rc, uc->handler);
1741 }
0dfd0eb8
AA
1742
1743 if (uc->ret_handler)
1744 need_prep = true;
1745
da1816b1
ON
1746 remove &= rc;
1747 }
1748
0dfd0eb8
AA
1749 if (need_prep && !remove)
1750 prepare_uretprobe(uprobe, regs); /* put bp at return */
1751
da1816b1
ON
1752 if (remove && uprobe->consumers) {
1753 WARN_ON(!uprobe_is_active(uprobe));
1754 unapply_uprobe(uprobe, current->mm);
1755 }
1756 up_read(&uprobe->register_rwsem);
1757}
1758
fec8898d
AA
1759static void
1760handle_uretprobe_chain(struct return_instance *ri, struct pt_regs *regs)
1761{
1762 struct uprobe *uprobe = ri->uprobe;
1763 struct uprobe_consumer *uc;
1764
1765 down_read(&uprobe->register_rwsem);
1766 for (uc = uprobe->consumers; uc; uc = uc->next) {
1767 if (uc->ret_handler)
1768 uc->ret_handler(uc, ri->func, regs);
1769 }
1770 up_read(&uprobe->register_rwsem);
1771}
1772
1773static bool handle_trampoline(struct pt_regs *regs)
1774{
1775 struct uprobe_task *utask;
2bb5e840 1776 struct return_instance *ri;
fec8898d
AA
1777 bool chained;
1778
1779 utask = current->utask;
1780 if (!utask)
1781 return false;
1782
1783 ri = utask->return_instances;
1784 if (!ri)
1785 return false;
1786
1787 /*
1788 * TODO: we should throw out return_instance's invalidated by
1789 * longjmp(), currently we assume that the probed function always
1790 * returns.
1791 */
1792 instruction_pointer_set(regs, ri->orig_ret_vaddr);
1793
1794 for (;;) {
1795 handle_uretprobe_chain(ri, regs);
1796
1797 chained = ri->chained;
2bb5e840 1798 ri = free_ret_instance(ri);
878b5a6e 1799 utask->depth--;
fec8898d
AA
1800
1801 if (!chained)
1802 break;
fec8898d
AA
1803 BUG_ON(!ri);
1804 }
1805
1806 utask->return_instances = ri;
1807
1808 return true;
1809}
1810
6fe50a28
DL
1811bool __weak arch_uprobe_ignore(struct arch_uprobe *aup, struct pt_regs *regs)
1812{
1813 return false;
1814}
1815
3a9ea052
ON
1816/*
1817 * Run handler and ask thread to singlestep.
1818 * Ensure all non-fatal signals cannot interrupt thread while it singlesteps.
1819 */
1820static void handle_swbp(struct pt_regs *regs)
1821{
3a9ea052
ON
1822 struct uprobe *uprobe;
1823 unsigned long bp_vaddr;
56bb4cf6 1824 int uninitialized_var(is_swbp);
3a9ea052
ON
1825
1826 bp_vaddr = uprobe_get_swbp_addr(regs);
fec8898d
AA
1827 if (bp_vaddr == get_trampoline_vaddr()) {
1828 if (handle_trampoline(regs))
1829 return;
3a9ea052 1830
fec8898d
AA
1831 pr_warn("uprobe: unable to handle uretprobe pid/tgid=%d/%d\n",
1832 current->pid, current->tgid);
1833 }
1834
1835 uprobe = find_active_uprobe(bp_vaddr, &is_swbp);
0326f5a9 1836 if (!uprobe) {
56bb4cf6
ON
1837 if (is_swbp > 0) {
1838 /* No matching uprobe; signal SIGTRAP. */
1839 send_sig(SIGTRAP, current, 0);
1840 } else {
1841 /*
1842 * Either we raced with uprobe_unregister() or we can't
1843 * access this memory. The latter is only possible if
1844 * another thread plays with our ->mm. In both cases
1845 * we can simply restart. If this vma was unmapped we
1846 * can pretend this insn was not executed yet and get
1847 * the (correct) SIGSEGV after restart.
1848 */
1849 instruction_pointer_set(regs, bp_vaddr);
1850 }
0326f5a9
SD
1851 return;
1852 }
74e59dfc
ON
1853
1854 /* change it in advance for ->handler() and restart */
1855 instruction_pointer_set(regs, bp_vaddr);
1856
142b18dd
ON
1857 /*
1858 * TODO: move copy_insn/etc into _register and remove this hack.
1859 * After we hit the bp, _unregister + _register can install the
1860 * new and not-yet-analyzed uprobe at the same address, restart.
1861 */
1862 smp_rmb(); /* pairs with wmb() in install_breakpoint() */
71434f2f 1863 if (unlikely(!test_bit(UPROBE_COPY_INSN, &uprobe->flags)))
74e59dfc 1864 goto out;
0326f5a9 1865
72fd293a
ON
1866 /* Tracing handlers use ->utask to communicate with fetch methods */
1867 if (!get_utask())
1868 goto out;
1869
6fe50a28
DL
1870 if (arch_uprobe_ignore(&uprobe->arch, regs))
1871 goto out;
1872
0326f5a9 1873 handler_chain(uprobe, regs);
6fe50a28 1874
8a6b1732 1875 if (arch_uprobe_skip_sstep(&uprobe->arch, regs))
0578a970 1876 goto out;
0326f5a9 1877
608e7427 1878 if (!pre_ssout(uprobe, regs, bp_vaddr))
0326f5a9 1879 return;
0326f5a9 1880
8a6b1732 1881 /* arch_uprobe_skip_sstep() succeeded, or restart if can't singlestep */
0578a970 1882out:
8bd87445 1883 put_uprobe(uprobe);
0326f5a9
SD
1884}
1885
1886/*
1887 * Perform required fix-ups and disable singlestep.
1888 * Allow pending signals to take effect.
1889 */
1890static void handle_singlestep(struct uprobe_task *utask, struct pt_regs *regs)
1891{
1892 struct uprobe *uprobe;
014940ba 1893 int err = 0;
0326f5a9
SD
1894
1895 uprobe = utask->active_uprobe;
1896 if (utask->state == UTASK_SSTEP_ACK)
014940ba 1897 err = arch_uprobe_post_xol(&uprobe->arch, regs);
0326f5a9
SD
1898 else if (utask->state == UTASK_SSTEP_TRAPPED)
1899 arch_uprobe_abort_xol(&uprobe->arch, regs);
1900 else
1901 WARN_ON_ONCE(1);
1902
1903 put_uprobe(uprobe);
1904 utask->active_uprobe = NULL;
1905 utask->state = UTASK_RUNNING;
d4b3b638 1906 xol_free_insn_slot(current);
0326f5a9
SD
1907
1908 spin_lock_irq(&current->sighand->siglock);
1909 recalc_sigpending(); /* see uprobe_deny_signal() */
1910 spin_unlock_irq(&current->sighand->siglock);
014940ba
ON
1911
1912 if (unlikely(err)) {
1913 uprobe_warn(current, "execute the probed insn, sending SIGILL.");
1914 force_sig_info(SIGILL, SEND_SIG_FORCED, current);
1915 }
0326f5a9
SD
1916}
1917
1918/*
1b08e907
ON
1919 * On breakpoint hit, breakpoint notifier sets the TIF_UPROBE flag and
1920 * allows the thread to return from interrupt. After that handle_swbp()
1921 * sets utask->active_uprobe.
0326f5a9 1922 *
1b08e907
ON
1923 * On singlestep exception, singlestep notifier sets the TIF_UPROBE flag
1924 * and allows the thread to return from interrupt.
0326f5a9
SD
1925 *
1926 * While returning to userspace, thread notices the TIF_UPROBE flag and calls
1927 * uprobe_notify_resume().
1928 */
1929void uprobe_notify_resume(struct pt_regs *regs)
1930{
1931 struct uprobe_task *utask;
1932
db023ea5
ON
1933 clear_thread_flag(TIF_UPROBE);
1934
0326f5a9 1935 utask = current->utask;
1b08e907 1936 if (utask && utask->active_uprobe)
0326f5a9 1937 handle_singlestep(utask, regs);
1b08e907
ON
1938 else
1939 handle_swbp(regs);
0326f5a9
SD
1940}
1941
1942/*
1943 * uprobe_pre_sstep_notifier gets called from interrupt context as part of
1944 * notifier mechanism. Set TIF_UPROBE flag and indicate breakpoint hit.
1945 */
1946int uprobe_pre_sstep_notifier(struct pt_regs *regs)
1947{
0dfd0eb8
AA
1948 if (!current->mm)
1949 return 0;
1950
1951 if (!test_bit(MMF_HAS_UPROBES, &current->mm->flags) &&
1952 (!current->utask || !current->utask->return_instances))
0326f5a9
SD
1953 return 0;
1954
0326f5a9 1955 set_thread_flag(TIF_UPROBE);
0326f5a9
SD
1956 return 1;
1957}
1958
1959/*
1960 * uprobe_post_sstep_notifier gets called in interrupt context as part of notifier
1961 * mechanism. Set TIF_UPROBE flag and indicate completion of singlestep.
1962 */
1963int uprobe_post_sstep_notifier(struct pt_regs *regs)
1964{
1965 struct uprobe_task *utask = current->utask;
1966
1967 if (!current->mm || !utask || !utask->active_uprobe)
1968 /* task is currently not uprobed */
1969 return 0;
1970
1971 utask->state = UTASK_SSTEP_ACK;
1972 set_thread_flag(TIF_UPROBE);
1973 return 1;
1974}
1975
1976static struct notifier_block uprobe_exception_nb = {
1977 .notifier_call = arch_uprobe_exception_notify,
1978 .priority = INT_MAX-1, /* notified after kprobes, kgdb */
1979};
1980
2b144498
SD
1981static int __init init_uprobes(void)
1982{
1983 int i;
1984
66d06dff 1985 for (i = 0; i < UPROBES_HASH_SZ; i++)
2b144498 1986 mutex_init(&uprobes_mmap_mutex[i]);
0326f5a9 1987
32cdba1e
ON
1988 if (percpu_init_rwsem(&dup_mmap_sem))
1989 return -ENOMEM;
1990
0326f5a9 1991 return register_die_notifier(&uprobe_exception_nb);
2b144498 1992}
736e89d9 1993__initcall(init_uprobes);