1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * User-space Probes (UProbes)
4 *
5 * Copyright (C) IBM Corporation, 2008-2012
6 * Authors:
7 * Srikar Dronamraju
8 * Jim Keniston
9 * Copyright (C) 2011-2012 Red Hat, Inc., Peter Zijlstra
10 */
11
12 #include <linux/kernel.h>
13 #include <linux/highmem.h>
14 #include <linux/pagemap.h> /* read_mapping_page */
15 #include <linux/slab.h>
16 #include <linux/sched.h>
17 #include <linux/sched/mm.h>
18 #include <linux/export.h>
19 #include <linux/rmap.h> /* anon_vma_prepare */
20 #include <linux/mmu_notifier.h>
21 #include <linux/swap.h> /* folio_free_swap */
22 #include <linux/ptrace.h> /* user_enable_single_step */
23 #include <linux/kdebug.h> /* notifier mechanism */
24 #include <linux/percpu-rwsem.h>
25 #include <linux/task_work.h>
26 #include <linux/shmem_fs.h>
27 #include <linux/khugepaged.h>
28 #include <linux/rcupdate_trace.h>
29 #include <linux/workqueue.h>
30 #include <linux/srcu.h>
31 #include <linux/oom.h> /* check_stable_address_space */
32 #include <linux/pagewalk.h>
33
34 #include <linux/uprobes.h>
35
36 #define UINSNS_PER_PAGE (PAGE_SIZE/UPROBE_XOL_SLOT_BYTES)
37 #define MAX_UPROBE_XOL_SLOTS UINSNS_PER_PAGE
38
39 static struct rb_root uprobes_tree = RB_ROOT;
40 /*
41 * allows us to skip the uprobe_mmap if there are no uprobe events active
42 * at this time. Probably a fine grained per inode count is better?
43 */
44 #define no_uprobe_events() RB_EMPTY_ROOT(&uprobes_tree)
45
46 static DEFINE_RWLOCK(uprobes_treelock); /* serialize rbtree access */
47 static seqcount_rwlock_t uprobes_seqcount = SEQCNT_RWLOCK_ZERO(uprobes_seqcount, &uprobes_treelock);
48
49 #define UPROBES_HASH_SZ 13
50 /* serialize uprobe->pending_list */
51 static struct mutex uprobes_mmap_mutex[UPROBES_HASH_SZ];
52 #define uprobes_mmap_hash(v) (&uprobes_mmap_mutex[((unsigned long)(v)) % UPROBES_HASH_SZ])
53
54 DEFINE_STATIC_PERCPU_RWSEM(dup_mmap_sem);
55
56 /* Covers return_instance's uprobe lifetime. */
57 DEFINE_STATIC_SRCU_FAST_UPDOWN(uretprobes_srcu);
58
59 /* Have a copy of original instruction */
60 #define UPROBE_COPY_INSN 0
61
62 struct uprobe {
63 struct rb_node rb_node; /* node in the rb tree */
64 refcount_t ref;
65 struct rw_semaphore register_rwsem;
66 struct rw_semaphore consumer_rwsem;
67 struct list_head pending_list;
68 struct list_head consumers;
69 struct inode *inode; /* Also hold a ref to inode */
70 union {
71 struct rcu_head rcu;
72 struct work_struct work;
73 };
74 loff_t offset;
75 loff_t ref_ctr_offset;
76 unsigned long flags; /* "unsigned long" so bitops work */
77
78 /*
79 * The generic code assumes that it has two members of unknown type
80 * owned by the arch-specific code:
81 *
82 * insn - copy_insn() saves the original instruction here for
83 * arch_uprobe_analyze_insn().
84 *
85 * ixol - potentially modified instruction to execute out of
86 * line, copied to xol_area by xol_get_insn_slot().
87 */
88 struct arch_uprobe arch;
89 };
90
91 struct delayed_uprobe {
92 struct list_head list;
93 struct uprobe *uprobe;
94 struct mm_struct *mm;
95 };
96
97 static DEFINE_MUTEX(delayed_uprobe_lock);
98 static LIST_HEAD(delayed_uprobe_list);
99
100 /*
101 * Execute out of line area: anonymous executable mapping installed
102 * by the probed task to execute the copy of the original instruction
103 * mangled by set_swbp().
104 *
105 * On a breakpoint hit, thread contests for a slot. It frees the
106 * slot after singlestep. Currently a fixed number of slots are
107 * allocated.
108 */
109 struct xol_area {
110 wait_queue_head_t wq; /* if all slots are busy */
111 unsigned long *bitmap; /* 0 = free slot */
112
113 struct page *page;
114 /*
115 * We keep the vma's vm_start rather than a pointer to the vma
116 * itself. The probed process or a naughty kernel module could make
117 * the vma go away, and we must handle that reasonably gracefully.
118 */
119 unsigned long vaddr; /* Page(s) of instruction slots */
120 };
121
uprobe_warn(struct task_struct * t,const char * msg)122 static void uprobe_warn(struct task_struct *t, const char *msg)
123 {
124 pr_warn("uprobe: %s:%d failed to %s\n", t->comm, t->pid, msg);
125 }
126
127 /*
128 * valid_vma: Verify if the specified vma is an executable vma
129 * Relax restrictions while unregistering: vm_flags might have
130 * changed after breakpoint was inserted.
131 * - is_register: indicates if we are in register context.
132 * - Return 1 if the specified virtual address is in an
133 * executable vma.
134 */
valid_vma(struct vm_area_struct * vma,bool is_register)135 static bool valid_vma(struct vm_area_struct *vma, bool is_register)
136 {
137 vm_flags_t flags = VM_HUGETLB | VM_MAYEXEC | VM_MAYSHARE;
138
139 if (is_register)
140 flags |= VM_WRITE;
141
142 return vma->vm_file && (vma->vm_flags & flags) == VM_MAYEXEC;
143 }
144
offset_to_vaddr(struct vm_area_struct * vma,loff_t offset)145 static unsigned long offset_to_vaddr(struct vm_area_struct *vma, loff_t offset)
146 {
147 return vma->vm_start + offset - ((loff_t)vma->vm_pgoff << PAGE_SHIFT);
148 }
149
vaddr_to_offset(struct vm_area_struct * vma,unsigned long vaddr)150 static loff_t vaddr_to_offset(struct vm_area_struct *vma, unsigned long vaddr)
151 {
152 return ((loff_t)vma->vm_pgoff << PAGE_SHIFT) + (vaddr - vma->vm_start);
153 }
154
155 /**
156 * is_swbp_insn - check if instruction is breakpoint instruction.
157 * @insn: instruction to be checked.
158 * Default implementation of is_swbp_insn
159 * Returns true if @insn is a breakpoint instruction.
160 */
is_swbp_insn(uprobe_opcode_t * insn)161 bool __weak is_swbp_insn(uprobe_opcode_t *insn)
162 {
163 return *insn == UPROBE_SWBP_INSN;
164 }
165
166 /**
167 * is_trap_insn - check if instruction is breakpoint instruction.
168 * @insn: instruction to be checked.
169 * Default implementation of is_trap_insn
170 * Returns true if @insn is a breakpoint instruction.
171 *
172 * This function is needed for the case where an architecture has multiple
173 * trap instructions (like powerpc).
174 */
is_trap_insn(uprobe_opcode_t * insn)175 bool __weak is_trap_insn(uprobe_opcode_t *insn)
176 {
177 return is_swbp_insn(insn);
178 }
179
uprobe_copy_from_page(struct page * page,unsigned long vaddr,void * dst,int len)180 void uprobe_copy_from_page(struct page *page, unsigned long vaddr, void *dst, int len)
181 {
182 void *kaddr = kmap_local_page(page);
183 memcpy(dst, kaddr + (vaddr & ~PAGE_MASK), len);
184 kunmap_local(kaddr);
185 }
186
copy_to_page(struct page * page,unsigned long vaddr,const void * src,int len)187 static void copy_to_page(struct page *page, unsigned long vaddr, const void *src, int len)
188 {
189 void *kaddr = kmap_local_page(page);
190 memcpy(kaddr + (vaddr & ~PAGE_MASK), src, len);
191 kunmap_local(kaddr);
192 }
193
verify_opcode(struct page * page,unsigned long vaddr,uprobe_opcode_t * insn,int nbytes,void * data)194 static int verify_opcode(struct page *page, unsigned long vaddr, uprobe_opcode_t *insn,
195 int nbytes, void *data)
196 {
197 uprobe_opcode_t old_opcode;
198 bool is_swbp;
199
200 /*
201 * Note: We only check if the old_opcode is UPROBE_SWBP_INSN here.
202 * We do not check if it is any other 'trap variant' which could
203 * be conditional trap instruction such as the one powerpc supports.
204 *
205 * The logic is that we do not care if the underlying instruction
206 * is a trap variant; uprobes always wins over any other (gdb)
207 * breakpoint.
208 */
209 uprobe_copy_from_page(page, vaddr, &old_opcode, UPROBE_SWBP_INSN_SIZE);
210 is_swbp = is_swbp_insn(&old_opcode);
211
212 if (is_swbp_insn(insn)) {
213 if (is_swbp) /* register: already installed? */
214 return 0;
215 } else {
216 if (!is_swbp) /* unregister: was it changed by us? */
217 return 0;
218 }
219
220 return 1;
221 }
222
223 static struct delayed_uprobe *
delayed_uprobe_check(struct uprobe * uprobe,struct mm_struct * mm)224 delayed_uprobe_check(struct uprobe *uprobe, struct mm_struct *mm)
225 {
226 struct delayed_uprobe *du;
227
228 list_for_each_entry(du, &delayed_uprobe_list, list)
229 if (du->uprobe == uprobe && du->mm == mm)
230 return du;
231 return NULL;
232 }
233
delayed_uprobe_add(struct uprobe * uprobe,struct mm_struct * mm)234 static int delayed_uprobe_add(struct uprobe *uprobe, struct mm_struct *mm)
235 {
236 struct delayed_uprobe *du;
237
238 if (delayed_uprobe_check(uprobe, mm))
239 return 0;
240
241 du = kzalloc_obj(*du);
242 if (!du)
243 return -ENOMEM;
244
245 du->uprobe = uprobe;
246 du->mm = mm;
247 list_add(&du->list, &delayed_uprobe_list);
248 return 0;
249 }
250
delayed_uprobe_delete(struct delayed_uprobe * du)251 static void delayed_uprobe_delete(struct delayed_uprobe *du)
252 {
253 if (WARN_ON(!du))
254 return;
255 list_del(&du->list);
256 kfree(du);
257 }
258
delayed_uprobe_remove(struct uprobe * uprobe,struct mm_struct * mm)259 static void delayed_uprobe_remove(struct uprobe *uprobe, struct mm_struct *mm)
260 {
261 struct list_head *pos, *q;
262 struct delayed_uprobe *du;
263
264 if (!uprobe && !mm)
265 return;
266
267 list_for_each_safe(pos, q, &delayed_uprobe_list) {
268 du = list_entry(pos, struct delayed_uprobe, list);
269
270 if (uprobe && du->uprobe != uprobe)
271 continue;
272 if (mm && du->mm != mm)
273 continue;
274
275 delayed_uprobe_delete(du);
276 }
277 }
278
valid_ref_ctr_vma(struct uprobe * uprobe,struct vm_area_struct * vma)279 static bool valid_ref_ctr_vma(struct uprobe *uprobe,
280 struct vm_area_struct *vma)
281 {
282 unsigned long vaddr = offset_to_vaddr(vma, uprobe->ref_ctr_offset);
283
284 return uprobe->ref_ctr_offset &&
285 vma->vm_file &&
286 file_inode(vma->vm_file) == uprobe->inode &&
287 (vma->vm_flags & (VM_WRITE|VM_SHARED)) == VM_WRITE &&
288 vma->vm_start <= vaddr &&
289 vma->vm_end > vaddr;
290 }
291
292 static struct vm_area_struct *
find_ref_ctr_vma(struct uprobe * uprobe,struct mm_struct * mm)293 find_ref_ctr_vma(struct uprobe *uprobe, struct mm_struct *mm)
294 {
295 VMA_ITERATOR(vmi, mm, 0);
296 struct vm_area_struct *tmp;
297
298 for_each_vma(vmi, tmp)
299 if (valid_ref_ctr_vma(uprobe, tmp))
300 return tmp;
301
302 return NULL;
303 }
304
305 static int
__update_ref_ctr(struct mm_struct * mm,unsigned long vaddr,short d)306 __update_ref_ctr(struct mm_struct *mm, unsigned long vaddr, short d)
307 {
308 void *kaddr;
309 struct page *page;
310 int ret;
311 short *ptr;
312
313 if (!vaddr || !d)
314 return -EINVAL;
315
316 ret = get_user_pages_remote(mm, vaddr, 1,
317 FOLL_WRITE, &page, NULL);
318 if (unlikely(ret <= 0)) {
319 /*
320 * We are asking for 1 page. If get_user_pages_remote() fails,
321 * it may return 0, in that case we have to return error.
322 */
323 return ret == 0 ? -EBUSY : ret;
324 }
325
326 kaddr = kmap_local_page(page);
327 ptr = kaddr + (vaddr & ~PAGE_MASK);
328
329 if (unlikely(*ptr + d < 0)) {
330 pr_warn("ref_ctr going negative. vaddr: 0x%lx, "
331 "curr val: %d, delta: %d\n", vaddr, *ptr, d);
332 ret = -EINVAL;
333 goto out;
334 }
335
336 *ptr += d;
337 ret = 0;
338 out:
339 kunmap_local(kaddr);
340 put_page(page);
341 return ret;
342 }
343
update_ref_ctr_warn(struct uprobe * uprobe,struct mm_struct * mm,short d)344 static void update_ref_ctr_warn(struct uprobe *uprobe,
345 struct mm_struct *mm, short d)
346 {
347 pr_warn("ref_ctr %s failed for inode: 0x%llx offset: "
348 "0x%llx ref_ctr_offset: 0x%llx of mm: 0x%p\n",
349 d > 0 ? "increment" : "decrement", uprobe->inode->i_ino,
350 (unsigned long long) uprobe->offset,
351 (unsigned long long) uprobe->ref_ctr_offset, mm);
352 }
353
update_ref_ctr(struct uprobe * uprobe,struct mm_struct * mm,short d)354 static int update_ref_ctr(struct uprobe *uprobe, struct mm_struct *mm,
355 short d)
356 {
357 struct vm_area_struct *rc_vma;
358 unsigned long rc_vaddr;
359 int ret = 0;
360
361 rc_vma = find_ref_ctr_vma(uprobe, mm);
362
363 if (rc_vma) {
364 rc_vaddr = offset_to_vaddr(rc_vma, uprobe->ref_ctr_offset);
365 ret = __update_ref_ctr(mm, rc_vaddr, d);
366 if (ret)
367 update_ref_ctr_warn(uprobe, mm, d);
368
369 if (d > 0)
370 return ret;
371 }
372
373 mutex_lock(&delayed_uprobe_lock);
374 if (d > 0)
375 ret = delayed_uprobe_add(uprobe, mm);
376 else
377 delayed_uprobe_remove(uprobe, mm);
378 mutex_unlock(&delayed_uprobe_lock);
379
380 return ret;
381 }
382
orig_page_is_identical(struct vm_area_struct * vma,unsigned long vaddr,struct page * page,bool * pmd_mappable)383 static bool orig_page_is_identical(struct vm_area_struct *vma,
384 unsigned long vaddr, struct page *page, bool *pmd_mappable)
385 {
386 const pgoff_t index = vaddr_to_offset(vma, vaddr) >> PAGE_SHIFT;
387 struct folio *orig_folio = filemap_get_folio(vma->vm_file->f_mapping,
388 index);
389 struct page *orig_page;
390 bool identical;
391
392 if (IS_ERR(orig_folio))
393 return false;
394 orig_page = folio_file_page(orig_folio, index);
395
396 *pmd_mappable = folio_test_pmd_mappable(orig_folio);
397 identical = folio_test_uptodate(orig_folio) &&
398 pages_identical(page, orig_page);
399 folio_put(orig_folio);
400 return identical;
401 }
402
__uprobe_write(struct vm_area_struct * vma,struct folio_walk * fw,struct folio * folio,unsigned long insn_vaddr,uprobe_opcode_t * insn,int nbytes,bool is_register)403 static int __uprobe_write(struct vm_area_struct *vma,
404 struct folio_walk *fw, struct folio *folio,
405 unsigned long insn_vaddr, uprobe_opcode_t *insn, int nbytes,
406 bool is_register)
407 {
408 const unsigned long vaddr = insn_vaddr & PAGE_MASK;
409 bool pmd_mappable;
410
411 /* For now, we'll only handle PTE-mapped folios. */
412 if (fw->level != FW_LEVEL_PTE)
413 return -EFAULT;
414
415 /*
416 * See can_follow_write_pte(): we'd actually prefer a writable PTE here,
417 * but the VMA might not be writable.
418 */
419 if (!pte_write(fw->pte)) {
420 if (!PageAnonExclusive(fw->page))
421 return -EFAULT;
422 if (unlikely(userfaultfd_pte_wp(vma, fw->pte)))
423 return -EFAULT;
424 /* SOFTDIRTY is handled via pte_mkdirty() below. */
425 }
426
427 /*
428 * We'll temporarily unmap the page and flush the TLB, such that we can
429 * modify the page atomically.
430 */
431 flush_cache_page(vma, vaddr, pte_pfn(fw->pte));
432 fw->pte = ptep_clear_flush(vma, vaddr, fw->ptep);
433 copy_to_page(fw->page, insn_vaddr, insn, nbytes);
434
435 /*
436 * When unregistering, we may only zap a PTE if uffd is disabled and
437 * there are no unexpected folio references ...
438 */
439 if (is_register || userfaultfd_missing(vma) ||
440 (folio_ref_count(folio) != folio_expected_ref_count(folio) + 1))
441 goto remap;
442
443 /*
444 * ... and the mapped page is identical to the original page that
445 * would get faulted in on next access.
446 */
447 if (!orig_page_is_identical(vma, vaddr, fw->page, &pmd_mappable))
448 goto remap;
449
450 dec_mm_counter(vma->vm_mm, MM_ANONPAGES);
451 folio_remove_rmap_pte(folio, fw->page, vma);
452 if (!folio_mapped(folio) && folio_test_swapcache(folio) &&
453 folio_trylock(folio)) {
454 folio_free_swap(folio);
455 folio_unlock(folio);
456 }
457 folio_put(folio);
458
459 return pmd_mappable;
460 remap:
461 /*
462 * Make sure that our copy_to_page() changes become visible before the
463 * set_pte_at() write.
464 */
465 smp_wmb();
466 /* We modified the page. Make sure to mark the PTE dirty. */
467 set_pte_at(vma->vm_mm, vaddr, fw->ptep, pte_mkdirty(fw->pte));
468 return 0;
469 }
470
471 /*
472 * NOTE:
473 * Expect the breakpoint instruction to be the smallest size instruction for
474 * the architecture. If an arch has variable length instruction and the
475 * breakpoint instruction is not of the smallest length instruction
476 * supported by that architecture then we need to modify is_trap_at_addr and
477 * uprobe_write_opcode accordingly. This would never be a problem for archs
478 * that have fixed length instructions.
479 *
480 * uprobe_write_opcode - write the opcode at a given virtual address.
481 * @auprobe: arch specific probepoint information.
482 * @vma: the probed virtual memory area.
483 * @opcode_vaddr: the virtual address to store the opcode.
484 * @opcode: opcode to be written at @opcode_vaddr.
485 *
486 * Called with mm->mmap_lock held for write.
487 * Return 0 (success) or a negative errno.
488 */
uprobe_write_opcode(struct arch_uprobe * auprobe,struct vm_area_struct * vma,const unsigned long opcode_vaddr,uprobe_opcode_t opcode,bool is_register)489 int uprobe_write_opcode(struct arch_uprobe *auprobe, struct vm_area_struct *vma,
490 const unsigned long opcode_vaddr, uprobe_opcode_t opcode,
491 bool is_register)
492 {
493 return uprobe_write(auprobe, vma, opcode_vaddr, &opcode, UPROBE_SWBP_INSN_SIZE,
494 verify_opcode, is_register, true /* do_update_ref_ctr */, NULL);
495 }
496
uprobe_write(struct arch_uprobe * auprobe,struct vm_area_struct * vma,const unsigned long insn_vaddr,uprobe_opcode_t * insn,int nbytes,uprobe_write_verify_t verify,bool is_register,bool do_update_ref_ctr,void * data)497 int uprobe_write(struct arch_uprobe *auprobe, struct vm_area_struct *vma,
498 const unsigned long insn_vaddr, uprobe_opcode_t *insn, int nbytes,
499 uprobe_write_verify_t verify, bool is_register, bool do_update_ref_ctr,
500 void *data)
501 {
502 const unsigned long vaddr = insn_vaddr & PAGE_MASK;
503 struct mm_struct *mm = vma->vm_mm;
504 struct uprobe *uprobe;
505 int ret, ref_ctr_updated = 0;
506 unsigned int gup_flags = FOLL_FORCE;
507 struct mmu_notifier_range range;
508 struct folio_walk fw;
509 struct folio *folio;
510 struct page *page;
511
512 uprobe = container_of(auprobe, struct uprobe, arch);
513
514 if (WARN_ON_ONCE(!is_cow_mapping(vma->vm_flags)))
515 return -EINVAL;
516
517 /*
518 * When registering, we have to break COW to get an exclusive anonymous
519 * page that we can safely modify. Use FOLL_WRITE to trigger a write
520 * fault if required. When unregistering, we might be lucky and the
521 * anon page is already gone. So defer write faults until really
522 * required. Use FOLL_SPLIT_PMD, because __uprobe_write()
523 * cannot deal with PMDs yet.
524 */
525 if (is_register)
526 gup_flags |= FOLL_WRITE | FOLL_SPLIT_PMD;
527
528 retry:
529 ret = get_user_pages_remote(mm, vaddr, 1, gup_flags, &page, NULL);
530 if (ret <= 0)
531 goto out;
532 folio = page_folio(page);
533
534 ret = verify(page, insn_vaddr, insn, nbytes, data);
535 if (ret <= 0) {
536 folio_put(folio);
537 goto out;
538 }
539
540 /* We are going to replace instruction, update ref_ctr. */
541 if (do_update_ref_ctr && !ref_ctr_updated && uprobe->ref_ctr_offset) {
542 ret = update_ref_ctr(uprobe, mm, is_register ? 1 : -1);
543 if (ret) {
544 folio_put(folio);
545 goto out;
546 }
547
548 ref_ctr_updated = 1;
549 }
550
551 ret = 0;
552 if (unlikely(!folio_test_anon(folio) || folio_is_zone_device(folio))) {
553 VM_WARN_ON_ONCE(is_register);
554 folio_put(folio);
555 goto out;
556 }
557
558 if (!is_register) {
559 /*
560 * In the common case, we'll be able to zap the page when
561 * unregistering. So trigger MMU notifiers now, as we won't
562 * be able to do it under PTL.
563 */
564 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm,
565 vaddr, vaddr + PAGE_SIZE);
566 mmu_notifier_invalidate_range_start(&range);
567 }
568
569 ret = -EAGAIN;
570 /* Walk the page tables again, to perform the actual update. */
571 if (folio_walk_start(&fw, vma, vaddr, 0)) {
572 if (fw.page == page)
573 ret = __uprobe_write(vma, &fw, folio, insn_vaddr, insn, nbytes, is_register);
574 folio_walk_end(&fw, vma);
575 }
576
577 if (!is_register)
578 mmu_notifier_invalidate_range_end(&range);
579
580 folio_put(folio);
581 switch (ret) {
582 case -EFAULT:
583 gup_flags |= FOLL_WRITE | FOLL_SPLIT_PMD;
584 fallthrough;
585 case -EAGAIN:
586 goto retry;
587 default:
588 break;
589 }
590
591 out:
592 /* Revert back reference counter if instruction update failed. */
593 if (do_update_ref_ctr && ret < 0 && ref_ctr_updated)
594 update_ref_ctr(uprobe, mm, is_register ? -1 : 1);
595
596 /* try collapse pmd for compound page */
597 if (ret > 0)
598 collapse_pte_mapped_thp(mm, vaddr, false);
599
600 return ret < 0 ? ret : 0;
601 }
602
603 /**
604 * set_swbp - store breakpoint at a given address.
605 * @auprobe: arch specific probepoint information.
606 * @vma: the probed virtual memory area.
607 * @vaddr: the virtual address to insert the opcode.
608 *
609 * For mm @mm, store the breakpoint instruction at @vaddr.
610 * Return 0 (success) or a negative errno.
611 */
set_swbp(struct arch_uprobe * auprobe,struct vm_area_struct * vma,unsigned long vaddr)612 int __weak set_swbp(struct arch_uprobe *auprobe, struct vm_area_struct *vma,
613 unsigned long vaddr)
614 {
615 return uprobe_write_opcode(auprobe, vma, vaddr, UPROBE_SWBP_INSN, true);
616 }
617
618 /**
619 * set_orig_insn - Restore the original instruction.
620 * @vma: the probed virtual memory area.
621 * @auprobe: arch specific probepoint information.
622 * @vaddr: the virtual address to insert the opcode.
623 *
624 * For mm @mm, restore the original opcode (opcode) at @vaddr.
625 * Return 0 (success) or a negative errno.
626 */
set_orig_insn(struct arch_uprobe * auprobe,struct vm_area_struct * vma,unsigned long vaddr)627 int __weak set_orig_insn(struct arch_uprobe *auprobe,
628 struct vm_area_struct *vma, unsigned long vaddr)
629 {
630 return uprobe_write_opcode(auprobe, vma, vaddr,
631 *(uprobe_opcode_t *)&auprobe->insn, false);
632 }
633
634 /* uprobe should have guaranteed positive refcount */
get_uprobe(struct uprobe * uprobe)635 static struct uprobe *get_uprobe(struct uprobe *uprobe)
636 {
637 refcount_inc(&uprobe->ref);
638 return uprobe;
639 }
640
641 /*
642 * uprobe should have guaranteed lifetime, which can be either of:
643 * - caller already has refcount taken (and wants an extra one);
644 * - uprobe is RCU protected and won't be freed until after grace period;
645 * - we are holding uprobes_treelock (for read or write, doesn't matter).
646 */
try_get_uprobe(struct uprobe * uprobe)647 static struct uprobe *try_get_uprobe(struct uprobe *uprobe)
648 {
649 if (refcount_inc_not_zero(&uprobe->ref))
650 return uprobe;
651 return NULL;
652 }
653
uprobe_is_active(struct uprobe * uprobe)654 static inline bool uprobe_is_active(struct uprobe *uprobe)
655 {
656 return !RB_EMPTY_NODE(&uprobe->rb_node);
657 }
658
uprobe_free_rcu_tasks_trace(struct rcu_head * rcu)659 static void uprobe_free_rcu_tasks_trace(struct rcu_head *rcu)
660 {
661 struct uprobe *uprobe = container_of(rcu, struct uprobe, rcu);
662
663 kfree(uprobe);
664 }
665
uprobe_free_srcu(struct rcu_head * rcu)666 static void uprobe_free_srcu(struct rcu_head *rcu)
667 {
668 struct uprobe *uprobe = container_of(rcu, struct uprobe, rcu);
669
670 call_rcu_tasks_trace(&uprobe->rcu, uprobe_free_rcu_tasks_trace);
671 }
672
uprobe_free_deferred(struct work_struct * work)673 static void uprobe_free_deferred(struct work_struct *work)
674 {
675 struct uprobe *uprobe = container_of(work, struct uprobe, work);
676
677 write_lock(&uprobes_treelock);
678
679 if (uprobe_is_active(uprobe)) {
680 write_seqcount_begin(&uprobes_seqcount);
681 rb_erase(&uprobe->rb_node, &uprobes_tree);
682 write_seqcount_end(&uprobes_seqcount);
683 }
684
685 write_unlock(&uprobes_treelock);
686
687 /*
688 * If application munmap(exec_vma) before uprobe_unregister()
689 * gets called, we don't get a chance to remove uprobe from
690 * delayed_uprobe_list from remove_breakpoint(). Do it here.
691 */
692 mutex_lock(&delayed_uprobe_lock);
693 delayed_uprobe_remove(uprobe, NULL);
694 mutex_unlock(&delayed_uprobe_lock);
695
696 /* start srcu -> rcu_tasks_trace -> kfree chain */
697 call_srcu(&uretprobes_srcu, &uprobe->rcu, uprobe_free_srcu);
698 }
699
put_uprobe(struct uprobe * uprobe)700 static void put_uprobe(struct uprobe *uprobe)
701 {
702 if (!refcount_dec_and_test(&uprobe->ref))
703 return;
704
705 INIT_WORK(&uprobe->work, uprobe_free_deferred);
706 schedule_work(&uprobe->work);
707 }
708
709 /* Initialize hprobe as SRCU-protected "leased" uprobe */
hprobe_init_leased(struct hprobe * hprobe,struct uprobe * uprobe,struct srcu_ctr __percpu * srcu_scp)710 static void hprobe_init_leased(struct hprobe *hprobe, struct uprobe *uprobe,
711 struct srcu_ctr __percpu *srcu_scp)
712 {
713 WARN_ON(!uprobe);
714 hprobe->state = HPROBE_LEASED;
715 hprobe->uprobe = uprobe;
716 hprobe->srcu_scp = srcu_scp;
717 }
718
719 /* Initialize hprobe as refcounted ("stable") uprobe (uprobe can be NULL). */
hprobe_init_stable(struct hprobe * hprobe,struct uprobe * uprobe)720 static void hprobe_init_stable(struct hprobe *hprobe, struct uprobe *uprobe)
721 {
722 hprobe->state = uprobe ? HPROBE_STABLE : HPROBE_GONE;
723 hprobe->uprobe = uprobe;
724 hprobe->srcu_scp = NULL;
725 }
726
727 /*
728 * hprobe_consume() fetches hprobe's underlying uprobe and detects whether
729 * uprobe is SRCU protected or is refcounted. hprobe_consume() can be
730 * used only once for a given hprobe.
731 *
732 * Caller has to call hprobe_finalize() and pass previous hprobe_state, so
733 * that hprobe_finalize() can perform SRCU unlock or put uprobe, whichever
734 * is appropriate.
735 */
hprobe_consume(struct hprobe * hprobe,enum hprobe_state * hstate)736 static inline struct uprobe *hprobe_consume(struct hprobe *hprobe, enum hprobe_state *hstate)
737 {
738 *hstate = xchg(&hprobe->state, HPROBE_CONSUMED);
739 switch (*hstate) {
740 case HPROBE_LEASED:
741 case HPROBE_STABLE:
742 return hprobe->uprobe;
743 case HPROBE_GONE: /* uprobe is NULL, no SRCU */
744 case HPROBE_CONSUMED: /* uprobe was finalized already, do nothing */
745 return NULL;
746 default:
747 WARN(1, "hprobe invalid state %d", *hstate);
748 return NULL;
749 }
750 }
751
752 /*
753 * Reset hprobe state and, if hprobe was LEASED, release SRCU lock.
754 * hprobe_finalize() can only be used from current context after
755 * hprobe_consume() call (which determines uprobe and hstate value).
756 */
hprobe_finalize(struct hprobe * hprobe,enum hprobe_state hstate)757 static void hprobe_finalize(struct hprobe *hprobe, enum hprobe_state hstate)
758 {
759 switch (hstate) {
760 case HPROBE_LEASED:
761 srcu_up_read_fast(&uretprobes_srcu, hprobe->srcu_scp);
762 break;
763 case HPROBE_STABLE:
764 put_uprobe(hprobe->uprobe);
765 break;
766 case HPROBE_GONE:
767 case HPROBE_CONSUMED:
768 break;
769 default:
770 WARN(1, "hprobe invalid state %d", hstate);
771 break;
772 }
773 }
774
775 /*
776 * Attempt to switch (atomically) uprobe from being SRCU protected (LEASED)
777 * to refcounted (STABLE) state. Competes with hprobe_consume(); only one of
778 * them can win the race to perform SRCU unlocking. Whoever wins must perform
779 * SRCU unlock.
780 *
781 * Returns underlying valid uprobe or NULL, if there was no underlying uprobe
782 * to begin with or we failed to bump its refcount and it's going away.
783 *
784 * Returned non-NULL uprobe can be still safely used within an ongoing SRCU
785 * locked region. If `get` is true, it's guaranteed that non-NULL uprobe has
786 * an extra refcount for caller to assume and use. Otherwise, it's not
787 * guaranteed that returned uprobe has a positive refcount, so caller has to
788 * attempt try_get_uprobe(), if it needs to preserve uprobe beyond current
789 * SRCU lock region. See dup_utask().
790 */
hprobe_expire(struct hprobe * hprobe,bool get)791 static struct uprobe *hprobe_expire(struct hprobe *hprobe, bool get)
792 {
793 enum hprobe_state hstate;
794
795 /*
796 * Caller should guarantee that return_instance is not going to be
797 * freed from under us. This can be achieved either through holding
798 * rcu_read_lock() or by owning return_instance in the first place.
799 *
800 * Underlying uprobe is itself protected from reuse by SRCU, so ensure
801 * SRCU lock is held properly.
802 */
803 lockdep_assert(srcu_read_lock_held(&uretprobes_srcu));
804
805 hstate = READ_ONCE(hprobe->state);
806 switch (hstate) {
807 case HPROBE_STABLE:
808 /* uprobe has positive refcount, bump refcount, if necessary */
809 return get ? get_uprobe(hprobe->uprobe) : hprobe->uprobe;
810 case HPROBE_GONE:
811 /*
812 * SRCU was unlocked earlier and we didn't manage to take
813 * uprobe refcnt, so it's effectively NULL
814 */
815 return NULL;
816 case HPROBE_CONSUMED:
817 /*
818 * uprobe was consumed, so it's effectively NULL as far as
819 * uretprobe processing logic is concerned
820 */
821 return NULL;
822 case HPROBE_LEASED: {
823 struct uprobe *uprobe = try_get_uprobe(hprobe->uprobe);
824 /*
825 * Try to switch hprobe state, guarding against
826 * hprobe_consume() or another hprobe_expire() racing with us.
827 * Note, if we failed to get uprobe refcount, we use special
828 * HPROBE_GONE state to signal that hprobe->uprobe shouldn't
829 * be used as it will be freed after SRCU is unlocked.
830 */
831 if (try_cmpxchg(&hprobe->state, &hstate, uprobe ? HPROBE_STABLE : HPROBE_GONE)) {
832 /* We won the race, we are the ones to unlock SRCU */
833 srcu_up_read_fast(&uretprobes_srcu, hprobe->srcu_scp);
834 return get && uprobe ? get_uprobe(uprobe) : uprobe;
835 }
836
837 /*
838 * We lost the race, undo refcount bump (if it ever happened),
839 * unless caller would like an extra refcount anyways.
840 */
841 if (uprobe && !get)
842 put_uprobe(uprobe);
843 /*
844 * Even if hprobe_consume() or another hprobe_expire() wins
845 * the state update race and unlocks SRCU from under us, we
846 * still have a guarantee that underyling uprobe won't be
847 * freed due to ongoing caller's SRCU lock region, so we can
848 * return it regardless. Also, if `get` was true, we also have
849 * an extra ref for the caller to own. This is used in dup_utask().
850 */
851 return uprobe;
852 }
853 default:
854 WARN(1, "unknown hprobe state %d", hstate);
855 return NULL;
856 }
857 }
858
859 static __always_inline
uprobe_cmp(const struct inode * l_inode,const loff_t l_offset,const struct uprobe * r)860 int uprobe_cmp(const struct inode *l_inode, const loff_t l_offset,
861 const struct uprobe *r)
862 {
863 if (l_inode < r->inode)
864 return -1;
865
866 if (l_inode > r->inode)
867 return 1;
868
869 if (l_offset < r->offset)
870 return -1;
871
872 if (l_offset > r->offset)
873 return 1;
874
875 return 0;
876 }
877
878 #define __node_2_uprobe(node) \
879 rb_entry((node), struct uprobe, rb_node)
880
881 struct __uprobe_key {
882 struct inode *inode;
883 loff_t offset;
884 };
885
__uprobe_cmp_key(const void * key,const struct rb_node * b)886 static inline int __uprobe_cmp_key(const void *key, const struct rb_node *b)
887 {
888 const struct __uprobe_key *a = key;
889 return uprobe_cmp(a->inode, a->offset, __node_2_uprobe(b));
890 }
891
__uprobe_cmp(struct rb_node * a,const struct rb_node * b)892 static inline int __uprobe_cmp(struct rb_node *a, const struct rb_node *b)
893 {
894 struct uprobe *u = __node_2_uprobe(a);
895 return uprobe_cmp(u->inode, u->offset, __node_2_uprobe(b));
896 }
897
898 /*
899 * Assumes being inside RCU protected region.
900 * No refcount is taken on returned uprobe.
901 */
find_uprobe_rcu(struct inode * inode,loff_t offset)902 static struct uprobe *find_uprobe_rcu(struct inode *inode, loff_t offset)
903 {
904 struct __uprobe_key key = {
905 .inode = inode,
906 .offset = offset,
907 };
908 struct rb_node *node;
909 unsigned int seq;
910
911 lockdep_assert(rcu_read_lock_trace_held());
912
913 do {
914 seq = read_seqcount_begin(&uprobes_seqcount);
915 node = rb_find_rcu(&key, &uprobes_tree, __uprobe_cmp_key);
916 /*
917 * Lockless RB-tree lookups can result only in false negatives.
918 * If the element is found, it is correct and can be returned
919 * under RCU protection. If we find nothing, we need to
920 * validate that seqcount didn't change. If it did, we have to
921 * try again as we might have missed the element (false
922 * negative). If seqcount is unchanged, search truly failed.
923 */
924 if (node)
925 return __node_2_uprobe(node);
926 } while (read_seqcount_retry(&uprobes_seqcount, seq));
927
928 return NULL;
929 }
930
931 /*
932 * Attempt to insert a new uprobe into uprobes_tree.
933 *
934 * If uprobe already exists (for given inode+offset), we just increment
935 * refcount of previously existing uprobe.
936 *
937 * If not, a provided new instance of uprobe is inserted into the tree (with
938 * assumed initial refcount == 1).
939 *
940 * In any case, we return a uprobe instance that ends up being in uprobes_tree.
941 * Caller has to clean up new uprobe instance, if it ended up not being
942 * inserted into the tree.
943 *
944 * We assume that uprobes_treelock is held for writing.
945 */
__insert_uprobe(struct uprobe * uprobe)946 static struct uprobe *__insert_uprobe(struct uprobe *uprobe)
947 {
948 struct rb_node *node;
949 again:
950 node = rb_find_add_rcu(&uprobe->rb_node, &uprobes_tree, __uprobe_cmp);
951 if (node) {
952 struct uprobe *u = __node_2_uprobe(node);
953
954 if (!try_get_uprobe(u)) {
955 rb_erase(node, &uprobes_tree);
956 RB_CLEAR_NODE(&u->rb_node);
957 goto again;
958 }
959
960 return u;
961 }
962
963 return uprobe;
964 }
965
966 /*
967 * Acquire uprobes_treelock and insert uprobe into uprobes_tree
968 * (or reuse existing one, see __insert_uprobe() comments above).
969 */
insert_uprobe(struct uprobe * uprobe)970 static struct uprobe *insert_uprobe(struct uprobe *uprobe)
971 {
972 struct uprobe *u;
973
974 write_lock(&uprobes_treelock);
975 write_seqcount_begin(&uprobes_seqcount);
976 u = __insert_uprobe(uprobe);
977 write_seqcount_end(&uprobes_seqcount);
978 write_unlock(&uprobes_treelock);
979
980 return u;
981 }
982
983 static void
ref_ctr_mismatch_warn(struct uprobe * cur_uprobe,struct uprobe * uprobe)984 ref_ctr_mismatch_warn(struct uprobe *cur_uprobe, struct uprobe *uprobe)
985 {
986 pr_warn("ref_ctr_offset mismatch. inode: 0x%llx offset: 0x%llx "
987 "ref_ctr_offset(old): 0x%llx ref_ctr_offset(new): 0x%llx\n",
988 uprobe->inode->i_ino, (unsigned long long) uprobe->offset,
989 (unsigned long long) cur_uprobe->ref_ctr_offset,
990 (unsigned long long) uprobe->ref_ctr_offset);
991 }
992
alloc_uprobe(struct inode * inode,loff_t offset,loff_t ref_ctr_offset)993 static struct uprobe *alloc_uprobe(struct inode *inode, loff_t offset,
994 loff_t ref_ctr_offset)
995 {
996 struct uprobe *uprobe, *cur_uprobe;
997
998 uprobe = kzalloc_obj(struct uprobe);
999 if (!uprobe)
1000 return ERR_PTR(-ENOMEM);
1001
1002 uprobe->inode = inode;
1003 uprobe->offset = offset;
1004 uprobe->ref_ctr_offset = ref_ctr_offset;
1005 INIT_LIST_HEAD(&uprobe->consumers);
1006 init_rwsem(&uprobe->register_rwsem);
1007 init_rwsem(&uprobe->consumer_rwsem);
1008 RB_CLEAR_NODE(&uprobe->rb_node);
1009 refcount_set(&uprobe->ref, 1);
1010
1011 /* add to uprobes_tree, sorted on inode:offset */
1012 cur_uprobe = insert_uprobe(uprobe);
1013 /* a uprobe exists for this inode:offset combination */
1014 if (cur_uprobe != uprobe) {
1015 if (cur_uprobe->ref_ctr_offset != uprobe->ref_ctr_offset) {
1016 ref_ctr_mismatch_warn(cur_uprobe, uprobe);
1017 put_uprobe(cur_uprobe);
1018 kfree(uprobe);
1019 return ERR_PTR(-EINVAL);
1020 }
1021 kfree(uprobe);
1022 uprobe = cur_uprobe;
1023 }
1024
1025 return uprobe;
1026 }
1027
consumer_add(struct uprobe * uprobe,struct uprobe_consumer * uc)1028 static void consumer_add(struct uprobe *uprobe, struct uprobe_consumer *uc)
1029 {
1030 static atomic64_t id;
1031
1032 down_write(&uprobe->consumer_rwsem);
1033 list_add_rcu(&uc->cons_node, &uprobe->consumers);
1034 uc->id = (__u64) atomic64_inc_return(&id);
1035 up_write(&uprobe->consumer_rwsem);
1036 }
1037
1038 /*
1039 * For uprobe @uprobe, delete the consumer @uc.
1040 * Should never be called with consumer that's not part of @uprobe->consumers.
1041 */
consumer_del(struct uprobe * uprobe,struct uprobe_consumer * uc)1042 static void consumer_del(struct uprobe *uprobe, struct uprobe_consumer *uc)
1043 {
1044 down_write(&uprobe->consumer_rwsem);
1045 list_del_rcu(&uc->cons_node);
1046 up_write(&uprobe->consumer_rwsem);
1047 }
1048
__copy_insn(struct address_space * mapping,struct file * filp,void * insn,int nbytes,loff_t offset)1049 static int __copy_insn(struct address_space *mapping, struct file *filp,
1050 void *insn, int nbytes, loff_t offset)
1051 {
1052 struct page *page;
1053 /*
1054 * Ensure that the page that has the original instruction is populated
1055 * and in page-cache. If ->read_folio == NULL it must be shmem_mapping(),
1056 * see uprobe_register().
1057 */
1058 if (mapping->a_ops->read_folio)
1059 page = read_mapping_page(mapping, offset >> PAGE_SHIFT, filp);
1060 else
1061 page = shmem_read_mapping_page(mapping, offset >> PAGE_SHIFT);
1062 if (IS_ERR(page))
1063 return PTR_ERR(page);
1064
1065 uprobe_copy_from_page(page, offset, insn, nbytes);
1066 put_page(page);
1067
1068 return 0;
1069 }
1070
copy_insn(struct uprobe * uprobe,struct file * filp)1071 static int copy_insn(struct uprobe *uprobe, struct file *filp)
1072 {
1073 struct address_space *mapping = uprobe->inode->i_mapping;
1074 loff_t offs = uprobe->offset;
1075 void *insn = &uprobe->arch.insn;
1076 int size = sizeof(uprobe->arch.insn);
1077 int len, err = -EIO;
1078
1079 /* Copy only available bytes, -EIO if nothing was read */
1080 do {
1081 if (offs >= i_size_read(uprobe->inode))
1082 break;
1083
1084 len = min_t(int, size, PAGE_SIZE - (offs & ~PAGE_MASK));
1085 err = __copy_insn(mapping, filp, insn, len, offs);
1086 if (err)
1087 break;
1088
1089 insn += len;
1090 offs += len;
1091 size -= len;
1092 } while (size);
1093
1094 return err;
1095 }
1096
prepare_uprobe(struct uprobe * uprobe,struct file * file,struct mm_struct * mm,unsigned long vaddr)1097 static int prepare_uprobe(struct uprobe *uprobe, struct file *file,
1098 struct mm_struct *mm, unsigned long vaddr)
1099 {
1100 int ret = 0;
1101
1102 if (test_bit(UPROBE_COPY_INSN, &uprobe->flags))
1103 return ret;
1104
1105 /* TODO: move this into _register, until then we abuse this sem. */
1106 down_write(&uprobe->consumer_rwsem);
1107 if (test_bit(UPROBE_COPY_INSN, &uprobe->flags))
1108 goto out;
1109
1110 ret = copy_insn(uprobe, file);
1111 if (ret)
1112 goto out;
1113
1114 ret = -ENOTSUPP;
1115 if (is_trap_insn((uprobe_opcode_t *)&uprobe->arch.insn))
1116 goto out;
1117
1118 ret = arch_uprobe_analyze_insn(&uprobe->arch, mm, vaddr);
1119 if (ret)
1120 goto out;
1121
1122 smp_wmb(); /* pairs with the smp_rmb() in handle_swbp() */
1123 set_bit(UPROBE_COPY_INSN, &uprobe->flags);
1124
1125 out:
1126 up_write(&uprobe->consumer_rwsem);
1127
1128 return ret;
1129 }
1130
consumer_filter(struct uprobe_consumer * uc,struct mm_struct * mm)1131 static inline bool consumer_filter(struct uprobe_consumer *uc, struct mm_struct *mm)
1132 {
1133 return !uc->filter || uc->filter(uc, mm);
1134 }
1135
filter_chain(struct uprobe * uprobe,struct mm_struct * mm)1136 static bool filter_chain(struct uprobe *uprobe, struct mm_struct *mm)
1137 {
1138 struct uprobe_consumer *uc;
1139 bool ret = false;
1140
1141 down_read(&uprobe->consumer_rwsem);
1142 list_for_each_entry(uc, &uprobe->consumers, cons_node) {
1143 ret = consumer_filter(uc, mm);
1144 if (ret)
1145 break;
1146 }
1147 up_read(&uprobe->consumer_rwsem);
1148
1149 return ret;
1150 }
1151
install_breakpoint(struct uprobe * uprobe,struct vm_area_struct * vma,unsigned long vaddr)1152 static int install_breakpoint(struct uprobe *uprobe, struct vm_area_struct *vma,
1153 unsigned long vaddr)
1154 {
1155 struct mm_struct *mm = vma->vm_mm;
1156 bool first_uprobe;
1157 int ret;
1158
1159 ret = prepare_uprobe(uprobe, vma->vm_file, mm, vaddr);
1160 if (ret)
1161 return ret;
1162
1163 /*
1164 * set MMF_HAS_UPROBES in advance for uprobe_pre_sstep_notifier(),
1165 * the task can hit this breakpoint right after __replace_page().
1166 */
1167 first_uprobe = !mm_flags_test(MMF_HAS_UPROBES, mm);
1168 if (first_uprobe)
1169 mm_flags_set(MMF_HAS_UPROBES, mm);
1170
1171 ret = set_swbp(&uprobe->arch, vma, vaddr);
1172 if (!ret)
1173 mm_flags_clear(MMF_RECALC_UPROBES, mm);
1174 else if (first_uprobe)
1175 mm_flags_clear(MMF_HAS_UPROBES, mm);
1176
1177 return ret;
1178 }
1179
remove_breakpoint(struct uprobe * uprobe,struct vm_area_struct * vma,unsigned long vaddr)1180 static int remove_breakpoint(struct uprobe *uprobe, struct vm_area_struct *vma,
1181 unsigned long vaddr)
1182 {
1183 struct mm_struct *mm = vma->vm_mm;
1184
1185 mm_flags_set(MMF_RECALC_UPROBES, mm);
1186 return set_orig_insn(&uprobe->arch, vma, vaddr);
1187 }
1188
1189 struct map_info {
1190 struct map_info *next;
1191 struct mm_struct *mm;
1192 unsigned long vaddr;
1193 };
1194
free_map_info(struct map_info * info)1195 static inline struct map_info *free_map_info(struct map_info *info)
1196 {
1197 struct map_info *next = info->next;
1198 kfree(info);
1199 return next;
1200 }
1201
1202 static struct map_info *
build_map_info(struct address_space * mapping,loff_t offset,bool is_register)1203 build_map_info(struct address_space *mapping, loff_t offset, bool is_register)
1204 {
1205 unsigned long pgoff = offset >> PAGE_SHIFT;
1206 struct vm_area_struct *vma;
1207 struct map_info *curr = NULL;
1208 struct map_info *prev = NULL;
1209 struct map_info *info;
1210 int more = 0;
1211
1212 again:
1213 i_mmap_lock_read(mapping);
1214 vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff, pgoff) {
1215 if (!valid_vma(vma, is_register))
1216 continue;
1217
1218 if (!prev && !more) {
1219 /*
1220 * Needs GFP_NOWAIT to avoid i_mmap_rwsem recursion through
1221 * reclaim. This is optimistic, no harm done if it fails.
1222 */
1223 prev = kmalloc_obj(struct map_info,
1224 GFP_NOWAIT | __GFP_NOMEMALLOC);
1225 if (prev)
1226 prev->next = NULL;
1227 }
1228 if (!prev) {
1229 more++;
1230 continue;
1231 }
1232
1233 if (!mmget_not_zero(vma->vm_mm))
1234 continue;
1235
1236 info = prev;
1237 prev = prev->next;
1238 info->next = curr;
1239 curr = info;
1240
1241 info->mm = vma->vm_mm;
1242 info->vaddr = offset_to_vaddr(vma, offset);
1243 }
1244 i_mmap_unlock_read(mapping);
1245
1246 if (!more)
1247 goto out;
1248
1249 prev = curr;
1250 while (curr) {
1251 mmput(curr->mm);
1252 curr = curr->next;
1253 }
1254
1255 do {
1256 info = kmalloc_obj(struct map_info);
1257 if (!info) {
1258 curr = ERR_PTR(-ENOMEM);
1259 goto out;
1260 }
1261 info->next = prev;
1262 prev = info;
1263 } while (--more);
1264
1265 goto again;
1266 out:
1267 while (prev)
1268 prev = free_map_info(prev);
1269 return curr;
1270 }
1271
1272 static int
register_for_each_vma(struct uprobe * uprobe,struct uprobe_consumer * new)1273 register_for_each_vma(struct uprobe *uprobe, struct uprobe_consumer *new)
1274 {
1275 bool is_register = !!new;
1276 struct map_info *info;
1277 int err = 0;
1278
1279 percpu_down_write(&dup_mmap_sem);
1280 info = build_map_info(uprobe->inode->i_mapping,
1281 uprobe->offset, is_register);
1282 if (IS_ERR(info)) {
1283 err = PTR_ERR(info);
1284 goto out;
1285 }
1286
1287 while (info) {
1288 struct mm_struct *mm = info->mm;
1289 struct vm_area_struct *vma;
1290
1291 if (err && is_register)
1292 goto free;
1293 /*
1294 * We take mmap_lock for writing to avoid the race with
1295 * find_active_uprobe_rcu() which takes mmap_lock for reading.
1296 * Thus this install_breakpoint() can not make
1297 * is_trap_at_addr() true right after find_uprobe_rcu()
1298 * returns NULL in find_active_uprobe_rcu().
1299 */
1300 mmap_write_lock(mm);
1301 if (check_stable_address_space(mm))
1302 goto unlock;
1303
1304 vma = find_vma(mm, info->vaddr);
1305 if (!vma || !valid_vma(vma, is_register) ||
1306 file_inode(vma->vm_file) != uprobe->inode)
1307 goto unlock;
1308
1309 if (vma->vm_start > info->vaddr ||
1310 vaddr_to_offset(vma, info->vaddr) != uprobe->offset)
1311 goto unlock;
1312
1313 if (is_register) {
1314 /* consult only the "caller", new consumer. */
1315 if (consumer_filter(new, mm))
1316 err = install_breakpoint(uprobe, vma, info->vaddr);
1317 } else if (mm_flags_test(MMF_HAS_UPROBES, mm)) {
1318 if (!filter_chain(uprobe, mm))
1319 err |= remove_breakpoint(uprobe, vma, info->vaddr);
1320 }
1321
1322 unlock:
1323 mmap_write_unlock(mm);
1324 free:
1325 mmput(mm);
1326 info = free_map_info(info);
1327 }
1328 out:
1329 percpu_up_write(&dup_mmap_sem);
1330 return err;
1331 }
1332
1333 /**
1334 * uprobe_unregister_nosync - unregister an already registered probe.
1335 * @uprobe: uprobe to remove
1336 * @uc: identify which probe if multiple probes are colocated.
1337 */
uprobe_unregister_nosync(struct uprobe * uprobe,struct uprobe_consumer * uc)1338 void uprobe_unregister_nosync(struct uprobe *uprobe, struct uprobe_consumer *uc)
1339 {
1340 int err;
1341
1342 down_write(&uprobe->register_rwsem);
1343 consumer_del(uprobe, uc);
1344 err = register_for_each_vma(uprobe, NULL);
1345 up_write(&uprobe->register_rwsem);
1346
1347 /* TODO : cant unregister? schedule a worker thread */
1348 if (unlikely(err)) {
1349 uprobe_warn(current, "unregister, leaking uprobe");
1350 return;
1351 }
1352
1353 put_uprobe(uprobe);
1354 }
1355 EXPORT_SYMBOL_GPL(uprobe_unregister_nosync);
1356
uprobe_unregister_sync(void)1357 void uprobe_unregister_sync(void)
1358 {
1359 /*
1360 * Now that handler_chain() and handle_uretprobe_chain() iterate over
1361 * uprobe->consumers list under RCU protection without holding
1362 * uprobe->register_rwsem, we need to wait for RCU grace period to
1363 * make sure that we can't call into just unregistered
1364 * uprobe_consumer's callbacks anymore. If we don't do that, fast and
1365 * unlucky enough caller can free consumer's memory and cause
1366 * handler_chain() or handle_uretprobe_chain() to do an use-after-free.
1367 */
1368 synchronize_rcu_tasks_trace();
1369 synchronize_srcu(&uretprobes_srcu);
1370 }
1371 EXPORT_SYMBOL_GPL(uprobe_unregister_sync);
1372
1373 /**
1374 * uprobe_register - register a probe
1375 * @inode: the file in which the probe has to be placed.
1376 * @offset: offset from the start of the file.
1377 * @ref_ctr_offset: offset of SDT marker / reference counter
1378 * @uc: information on howto handle the probe..
1379 *
1380 * Apart from the access refcount, uprobe_register() takes a creation
1381 * refcount (thro alloc_uprobe) if and only if this @uprobe is getting
1382 * inserted into the rbtree (i.e first consumer for a @inode:@offset
1383 * tuple). Creation refcount stops uprobe_unregister from freeing the
1384 * @uprobe even before the register operation is complete. Creation
1385 * refcount is released when the last @uc for the @uprobe
1386 * unregisters. Caller of uprobe_register() is required to keep @inode
1387 * (and the containing mount) referenced.
1388 *
1389 * Return: pointer to the new uprobe on success or an ERR_PTR on failure.
1390 */
uprobe_register(struct inode * inode,loff_t offset,loff_t ref_ctr_offset,struct uprobe_consumer * uc)1391 struct uprobe *uprobe_register(struct inode *inode,
1392 loff_t offset, loff_t ref_ctr_offset,
1393 struct uprobe_consumer *uc)
1394 {
1395 struct uprobe *uprobe;
1396 int ret;
1397
1398 /* Uprobe must have at least one set consumer */
1399 if (!uc->handler && !uc->ret_handler)
1400 return ERR_PTR(-EINVAL);
1401
1402 /* copy_insn() uses read_mapping_page() or shmem_read_mapping_page() */
1403 if (!inode->i_mapping->a_ops->read_folio &&
1404 !shmem_mapping(inode->i_mapping))
1405 return ERR_PTR(-EIO);
1406 /* Racy, just to catch the obvious mistakes */
1407 if (offset > i_size_read(inode))
1408 return ERR_PTR(-EINVAL);
1409
1410 /*
1411 * This ensures that uprobe_copy_from_page(), copy_to_page() and
1412 * __update_ref_ctr() can't cross page boundary.
1413 */
1414 if (!IS_ALIGNED(offset, UPROBE_SWBP_INSN_SIZE))
1415 return ERR_PTR(-EINVAL);
1416 if (!IS_ALIGNED(ref_ctr_offset, sizeof(short)))
1417 return ERR_PTR(-EINVAL);
1418
1419 uprobe = alloc_uprobe(inode, offset, ref_ctr_offset);
1420 if (IS_ERR(uprobe))
1421 return uprobe;
1422
1423 down_write(&uprobe->register_rwsem);
1424 consumer_add(uprobe, uc);
1425 ret = register_for_each_vma(uprobe, uc);
1426 up_write(&uprobe->register_rwsem);
1427
1428 if (ret) {
1429 uprobe_unregister_nosync(uprobe, uc);
1430 /*
1431 * Registration might have partially succeeded, so we can have
1432 * this consumer being called right at this time. We need to
1433 * sync here. It's ok, it's unlikely slow path.
1434 */
1435 uprobe_unregister_sync();
1436 return ERR_PTR(ret);
1437 }
1438
1439 return uprobe;
1440 }
1441 EXPORT_SYMBOL_GPL(uprobe_register);
1442
1443 /**
1444 * uprobe_apply - add or remove the breakpoints according to @uc->filter
1445 * @uprobe: uprobe which "owns" the breakpoint
1446 * @uc: consumer which wants to add more or remove some breakpoints
1447 * @add: add or remove the breakpoints
1448 * Return: 0 on success or negative error code.
1449 */
uprobe_apply(struct uprobe * uprobe,struct uprobe_consumer * uc,bool add)1450 int uprobe_apply(struct uprobe *uprobe, struct uprobe_consumer *uc, bool add)
1451 {
1452 struct uprobe_consumer *con;
1453 int ret = -ENOENT;
1454
1455 down_write(&uprobe->register_rwsem);
1456
1457 rcu_read_lock_trace();
1458 list_for_each_entry_rcu(con, &uprobe->consumers, cons_node, rcu_read_lock_trace_held()) {
1459 if (con == uc) {
1460 ret = register_for_each_vma(uprobe, add ? uc : NULL);
1461 break;
1462 }
1463 }
1464 rcu_read_unlock_trace();
1465
1466 up_write(&uprobe->register_rwsem);
1467
1468 return ret;
1469 }
1470
unapply_uprobe(struct uprobe * uprobe,struct mm_struct * mm)1471 static int unapply_uprobe(struct uprobe *uprobe, struct mm_struct *mm)
1472 {
1473 VMA_ITERATOR(vmi, mm, 0);
1474 struct vm_area_struct *vma;
1475 int err = 0;
1476
1477 mmap_write_lock(mm);
1478 for_each_vma(vmi, vma) {
1479 unsigned long vaddr;
1480 loff_t offset;
1481
1482 if (!valid_vma(vma, false) ||
1483 file_inode(vma->vm_file) != uprobe->inode)
1484 continue;
1485
1486 offset = (loff_t)vma->vm_pgoff << PAGE_SHIFT;
1487 if (uprobe->offset < offset ||
1488 uprobe->offset >= offset + vma->vm_end - vma->vm_start)
1489 continue;
1490
1491 vaddr = offset_to_vaddr(vma, uprobe->offset);
1492 err |= remove_breakpoint(uprobe, vma, vaddr);
1493 }
1494 mmap_write_unlock(mm);
1495
1496 return err;
1497 }
1498
1499 static struct rb_node *
find_node_in_range(struct inode * inode,loff_t min,loff_t max)1500 find_node_in_range(struct inode *inode, loff_t min, loff_t max)
1501 {
1502 struct rb_node *n = uprobes_tree.rb_node;
1503
1504 while (n) {
1505 struct uprobe *u = rb_entry(n, struct uprobe, rb_node);
1506
1507 if (inode < u->inode) {
1508 n = n->rb_left;
1509 } else if (inode > u->inode) {
1510 n = n->rb_right;
1511 } else {
1512 if (max < u->offset)
1513 n = n->rb_left;
1514 else if (min > u->offset)
1515 n = n->rb_right;
1516 else
1517 break;
1518 }
1519 }
1520
1521 return n;
1522 }
1523
1524 /*
1525 * For a given range in vma, build a list of probes that need to be inserted.
1526 */
build_probe_list(struct inode * inode,struct vm_area_struct * vma,unsigned long start,unsigned long end,struct list_head * head)1527 static void build_probe_list(struct inode *inode,
1528 struct vm_area_struct *vma,
1529 unsigned long start, unsigned long end,
1530 struct list_head *head)
1531 {
1532 loff_t min, max;
1533 struct rb_node *n, *t;
1534 struct uprobe *u;
1535
1536 INIT_LIST_HEAD(head);
1537 min = vaddr_to_offset(vma, start);
1538 max = min + (end - start) - 1;
1539
1540 read_lock(&uprobes_treelock);
1541 n = find_node_in_range(inode, min, max);
1542 if (n) {
1543 for (t = n; t; t = rb_prev(t)) {
1544 u = rb_entry(t, struct uprobe, rb_node);
1545 if (u->inode != inode || u->offset < min)
1546 break;
1547 /* if uprobe went away, it's safe to ignore it */
1548 if (try_get_uprobe(u))
1549 list_add(&u->pending_list, head);
1550 }
1551 for (t = n; (t = rb_next(t)); ) {
1552 u = rb_entry(t, struct uprobe, rb_node);
1553 if (u->inode != inode || u->offset > max)
1554 break;
1555 /* if uprobe went away, it's safe to ignore it */
1556 if (try_get_uprobe(u))
1557 list_add(&u->pending_list, head);
1558 }
1559 }
1560 read_unlock(&uprobes_treelock);
1561 }
1562
1563 /* @vma contains reference counter, not the probed instruction. */
delayed_ref_ctr_inc(struct vm_area_struct * vma)1564 static int delayed_ref_ctr_inc(struct vm_area_struct *vma)
1565 {
1566 struct list_head *pos, *q;
1567 struct delayed_uprobe *du;
1568 unsigned long vaddr;
1569 int ret = 0, err = 0;
1570
1571 mutex_lock(&delayed_uprobe_lock);
1572 list_for_each_safe(pos, q, &delayed_uprobe_list) {
1573 du = list_entry(pos, struct delayed_uprobe, list);
1574
1575 if (du->mm != vma->vm_mm ||
1576 !valid_ref_ctr_vma(du->uprobe, vma))
1577 continue;
1578
1579 vaddr = offset_to_vaddr(vma, du->uprobe->ref_ctr_offset);
1580 ret = __update_ref_ctr(vma->vm_mm, vaddr, 1);
1581 if (ret) {
1582 update_ref_ctr_warn(du->uprobe, vma->vm_mm, 1);
1583 if (!err)
1584 err = ret;
1585 }
1586 delayed_uprobe_delete(du);
1587 }
1588 mutex_unlock(&delayed_uprobe_lock);
1589 return err;
1590 }
1591
1592 /*
1593 * Called from mmap_region/vma_merge with mm->mmap_lock acquired.
1594 *
1595 * Currently we ignore all errors and always return 0, the callers
1596 * can't handle the failure anyway.
1597 */
uprobe_mmap(struct vm_area_struct * vma)1598 int uprobe_mmap(struct vm_area_struct *vma)
1599 {
1600 struct list_head tmp_list;
1601 struct uprobe *uprobe, *u;
1602 struct inode *inode;
1603
1604 if (no_uprobe_events())
1605 return 0;
1606
1607 if (vma->vm_file &&
1608 (vma->vm_flags & (VM_WRITE|VM_SHARED)) == VM_WRITE &&
1609 mm_flags_test(MMF_HAS_UPROBES, vma->vm_mm))
1610 delayed_ref_ctr_inc(vma);
1611
1612 if (!valid_vma(vma, true))
1613 return 0;
1614
1615 inode = file_inode(vma->vm_file);
1616 if (!inode)
1617 return 0;
1618
1619 mutex_lock(uprobes_mmap_hash(inode));
1620 build_probe_list(inode, vma, vma->vm_start, vma->vm_end, &tmp_list);
1621 /*
1622 * We can race with uprobe_unregister(), this uprobe can be already
1623 * removed. But in this case filter_chain() must return false, all
1624 * consumers have gone away.
1625 */
1626 list_for_each_entry_safe(uprobe, u, &tmp_list, pending_list) {
1627 if (!fatal_signal_pending(current) &&
1628 filter_chain(uprobe, vma->vm_mm)) {
1629 unsigned long vaddr = offset_to_vaddr(vma, uprobe->offset);
1630 install_breakpoint(uprobe, vma, vaddr);
1631 }
1632 put_uprobe(uprobe);
1633 }
1634 mutex_unlock(uprobes_mmap_hash(inode));
1635
1636 return 0;
1637 }
1638
1639 static bool
vma_has_uprobes(struct vm_area_struct * vma,unsigned long start,unsigned long end)1640 vma_has_uprobes(struct vm_area_struct *vma, unsigned long start, unsigned long end)
1641 {
1642 loff_t min, max;
1643 struct inode *inode;
1644 struct rb_node *n;
1645
1646 inode = file_inode(vma->vm_file);
1647
1648 min = vaddr_to_offset(vma, start);
1649 max = min + (end - start) - 1;
1650
1651 read_lock(&uprobes_treelock);
1652 n = find_node_in_range(inode, min, max);
1653 read_unlock(&uprobes_treelock);
1654
1655 return !!n;
1656 }
1657
1658 /*
1659 * Called in context of a munmap of a vma.
1660 */
uprobe_munmap(struct vm_area_struct * vma,unsigned long start,unsigned long end)1661 void uprobe_munmap(struct vm_area_struct *vma, unsigned long start, unsigned long end)
1662 {
1663 if (no_uprobe_events() || !valid_vma(vma, false))
1664 return;
1665
1666 if (!atomic_read(&vma->vm_mm->mm_users)) /* called by mmput() ? */
1667 return;
1668
1669 if (!mm_flags_test(MMF_HAS_UPROBES, vma->vm_mm) ||
1670 mm_flags_test(MMF_RECALC_UPROBES, vma->vm_mm))
1671 return;
1672
1673 if (vma_has_uprobes(vma, start, end))
1674 mm_flags_set(MMF_RECALC_UPROBES, vma->vm_mm);
1675 }
1676
xol_fault(const struct vm_special_mapping * sm,struct vm_area_struct * vma,struct vm_fault * vmf)1677 static vm_fault_t xol_fault(const struct vm_special_mapping *sm,
1678 struct vm_area_struct *vma, struct vm_fault *vmf)
1679 {
1680 struct xol_area *area = vma->vm_mm->uprobes_state.xol_area;
1681
1682 vmf->page = area->page;
1683 get_page(vmf->page);
1684 return 0;
1685 }
1686
xol_mremap(const struct vm_special_mapping * sm,struct vm_area_struct * new_vma)1687 static int xol_mremap(const struct vm_special_mapping *sm, struct vm_area_struct *new_vma)
1688 {
1689 return -EPERM;
1690 }
1691
1692 static const struct vm_special_mapping xol_mapping = {
1693 .name = "[uprobes]",
1694 .fault = xol_fault,
1695 .mremap = xol_mremap,
1696 };
1697
arch_uprobe_get_xol_area(void)1698 unsigned long __weak arch_uprobe_get_xol_area(void)
1699 {
1700 /* Try to map as high as possible, this is only a hint. */
1701 return get_unmapped_area(NULL, TASK_SIZE - PAGE_SIZE, PAGE_SIZE, 0, 0);
1702 }
1703
1704 /* Slot allocation for XOL */
xol_add_vma(struct mm_struct * mm,struct xol_area * area)1705 static int xol_add_vma(struct mm_struct *mm, struct xol_area *area)
1706 {
1707 struct vm_area_struct *vma;
1708 int ret;
1709
1710 if (mmap_write_lock_killable(mm))
1711 return -EINTR;
1712
1713 if (mm->uprobes_state.xol_area) {
1714 ret = -EALREADY;
1715 goto fail;
1716 }
1717
1718 if (!area->vaddr) {
1719 area->vaddr = arch_uprobe_get_xol_area();
1720 if (IS_ERR_VALUE(area->vaddr)) {
1721 ret = area->vaddr;
1722 goto fail;
1723 }
1724 }
1725
1726 vma = _install_special_mapping(mm, area->vaddr, PAGE_SIZE,
1727 VM_EXEC|VM_MAYEXEC|VM_DONTCOPY|VM_IO|
1728 VM_SEALED_SYSMAP,
1729 &xol_mapping);
1730 if (IS_ERR(vma)) {
1731 ret = PTR_ERR(vma);
1732 goto fail;
1733 }
1734
1735 ret = 0;
1736 /* pairs with get_xol_area() */
1737 smp_store_release(&mm->uprobes_state.xol_area, area); /* ^^^ */
1738 fail:
1739 mmap_write_unlock(mm);
1740
1741 return ret;
1742 }
1743
arch_uretprobe_trampoline(unsigned long * psize)1744 void * __weak arch_uretprobe_trampoline(unsigned long *psize)
1745 {
1746 static uprobe_opcode_t insn = UPROBE_SWBP_INSN;
1747
1748 *psize = UPROBE_SWBP_INSN_SIZE;
1749 return &insn;
1750 }
1751
__create_xol_area(unsigned long vaddr)1752 static struct xol_area *__create_xol_area(unsigned long vaddr)
1753 {
1754 struct mm_struct *mm = current->mm;
1755 unsigned long insns_size;
1756 struct xol_area *area;
1757 void *insns;
1758
1759 area = kzalloc_obj(*area);
1760 if (unlikely(!area))
1761 goto out;
1762
1763 area->bitmap = kcalloc(BITS_TO_LONGS(UINSNS_PER_PAGE), sizeof(long),
1764 GFP_KERNEL);
1765 if (!area->bitmap)
1766 goto free_area;
1767
1768 area->page = alloc_page(GFP_HIGHUSER | __GFP_ZERO);
1769 if (!area->page)
1770 goto free_bitmap;
1771
1772 area->vaddr = vaddr;
1773 init_waitqueue_head(&area->wq);
1774 /* Reserve the 1st slot for get_trampoline_vaddr() */
1775 set_bit(0, area->bitmap);
1776 insns = arch_uretprobe_trampoline(&insns_size);
1777 arch_uprobe_copy_ixol(area->page, 0, insns, insns_size);
1778
1779 if (!xol_add_vma(mm, area))
1780 return area;
1781
1782 __free_page(area->page);
1783 free_bitmap:
1784 kfree(area->bitmap);
1785 free_area:
1786 kfree(area);
1787 out:
1788 return NULL;
1789 }
1790
1791 /*
1792 * get_xol_area - Allocate process's xol_area if necessary.
1793 * This area will be used for storing instructions for execution out of line.
1794 *
1795 * Returns the allocated area or NULL.
1796 */
get_xol_area(void)1797 static struct xol_area *get_xol_area(void)
1798 {
1799 struct mm_struct *mm = current->mm;
1800 struct xol_area *area;
1801
1802 if (!mm->uprobes_state.xol_area)
1803 __create_xol_area(0);
1804
1805 /* Pairs with xol_add_vma() smp_store_release() */
1806 area = READ_ONCE(mm->uprobes_state.xol_area); /* ^^^ */
1807 return area;
1808 }
1809
1810 /*
1811 * uprobe_clear_state - Free the area allocated for slots.
1812 */
uprobe_clear_state(struct mm_struct * mm)1813 void uprobe_clear_state(struct mm_struct *mm)
1814 {
1815 struct xol_area *area = mm->uprobes_state.xol_area;
1816
1817 mutex_lock(&delayed_uprobe_lock);
1818 delayed_uprobe_remove(NULL, mm);
1819 mutex_unlock(&delayed_uprobe_lock);
1820
1821 if (!area)
1822 return;
1823
1824 put_page(area->page);
1825 kfree(area->bitmap);
1826 kfree(area);
1827 }
1828
uprobe_start_dup_mmap(void)1829 void uprobe_start_dup_mmap(void)
1830 {
1831 percpu_down_read(&dup_mmap_sem);
1832 }
1833
uprobe_end_dup_mmap(void)1834 void uprobe_end_dup_mmap(void)
1835 {
1836 percpu_up_read(&dup_mmap_sem);
1837 }
1838
uprobe_dup_mmap(struct mm_struct * oldmm,struct mm_struct * newmm)1839 void uprobe_dup_mmap(struct mm_struct *oldmm, struct mm_struct *newmm)
1840 {
1841 if (mm_flags_test(MMF_HAS_UPROBES, oldmm)) {
1842 mm_flags_set(MMF_HAS_UPROBES, newmm);
1843 /* unconditionally, dup_mmap() skips VM_DONTCOPY vmas */
1844 mm_flags_set(MMF_RECALC_UPROBES, newmm);
1845 }
1846 }
1847
xol_get_slot_nr(struct xol_area * area)1848 static unsigned long xol_get_slot_nr(struct xol_area *area)
1849 {
1850 unsigned long slot_nr;
1851
1852 slot_nr = find_first_zero_bit(area->bitmap, UINSNS_PER_PAGE);
1853 if (slot_nr < UINSNS_PER_PAGE) {
1854 if (!test_and_set_bit(slot_nr, area->bitmap))
1855 return slot_nr;
1856 }
1857
1858 return UINSNS_PER_PAGE;
1859 }
1860
1861 /*
1862 * xol_get_insn_slot - allocate a slot for xol.
1863 */
xol_get_insn_slot(struct uprobe * uprobe,struct uprobe_task * utask)1864 static bool xol_get_insn_slot(struct uprobe *uprobe, struct uprobe_task *utask)
1865 {
1866 struct xol_area *area = get_xol_area();
1867 unsigned long slot_nr;
1868
1869 if (!area)
1870 return false;
1871
1872 wait_event(area->wq, (slot_nr = xol_get_slot_nr(area)) < UINSNS_PER_PAGE);
1873
1874 utask->xol_vaddr = area->vaddr + slot_nr * UPROBE_XOL_SLOT_BYTES;
1875 arch_uprobe_copy_ixol(area->page, utask->xol_vaddr,
1876 &uprobe->arch.ixol, sizeof(uprobe->arch.ixol));
1877 return true;
1878 }
1879
1880 /*
1881 * xol_free_insn_slot - free the slot allocated by xol_get_insn_slot()
1882 */
xol_free_insn_slot(struct uprobe_task * utask)1883 static void xol_free_insn_slot(struct uprobe_task *utask)
1884 {
1885 struct xol_area *area = current->mm->uprobes_state.xol_area;
1886 unsigned long offset = utask->xol_vaddr - area->vaddr;
1887 unsigned int slot_nr;
1888
1889 utask->xol_vaddr = 0;
1890 /* xol_vaddr must fit into [area->vaddr, area->vaddr + PAGE_SIZE) */
1891 if (WARN_ON_ONCE(offset >= PAGE_SIZE))
1892 return;
1893
1894 slot_nr = offset / UPROBE_XOL_SLOT_BYTES;
1895 clear_bit(slot_nr, area->bitmap);
1896 smp_mb__after_atomic(); /* pairs with prepare_to_wait() */
1897 if (waitqueue_active(&area->wq))
1898 wake_up(&area->wq);
1899 }
1900
arch_uprobe_copy_ixol(struct page * page,unsigned long vaddr,void * src,unsigned long len)1901 void __weak arch_uprobe_copy_ixol(struct page *page, unsigned long vaddr,
1902 void *src, unsigned long len)
1903 {
1904 /* Initialize the slot */
1905 copy_to_page(page, vaddr, src, len);
1906
1907 /*
1908 * We probably need flush_icache_user_page() but it needs vma.
1909 * This should work on most of architectures by default. If
1910 * architecture needs to do something different it can define
1911 * its own version of the function.
1912 */
1913 flush_dcache_page(page);
1914 }
1915
1916 /**
1917 * uprobe_get_swbp_addr - compute address of swbp given post-swbp regs
1918 * @regs: Reflects the saved state of the task after it has hit a breakpoint
1919 * instruction.
1920 * Return the address of the breakpoint instruction.
1921 */
uprobe_get_swbp_addr(struct pt_regs * regs)1922 unsigned long __weak uprobe_get_swbp_addr(struct pt_regs *regs)
1923 {
1924 return instruction_pointer(regs) - UPROBE_SWBP_INSN_SIZE;
1925 }
1926
uprobe_get_trap_addr(struct pt_regs * regs)1927 unsigned long uprobe_get_trap_addr(struct pt_regs *regs)
1928 {
1929 struct uprobe_task *utask = current->utask;
1930
1931 if (unlikely(utask && utask->active_uprobe))
1932 return utask->vaddr;
1933
1934 return instruction_pointer(regs);
1935 }
1936
ri_pool_push(struct uprobe_task * utask,struct return_instance * ri)1937 static void ri_pool_push(struct uprobe_task *utask, struct return_instance *ri)
1938 {
1939 ri->cons_cnt = 0;
1940 ri->next = utask->ri_pool;
1941 utask->ri_pool = ri;
1942 }
1943
ri_pool_pop(struct uprobe_task * utask)1944 static struct return_instance *ri_pool_pop(struct uprobe_task *utask)
1945 {
1946 struct return_instance *ri = utask->ri_pool;
1947
1948 if (likely(ri))
1949 utask->ri_pool = ri->next;
1950
1951 return ri;
1952 }
1953
ri_free(struct return_instance * ri)1954 static void ri_free(struct return_instance *ri)
1955 {
1956 kfree(ri->extra_consumers);
1957 kfree_rcu(ri, rcu);
1958 }
1959
free_ret_instance(struct uprobe_task * utask,struct return_instance * ri,bool cleanup_hprobe)1960 static void free_ret_instance(struct uprobe_task *utask,
1961 struct return_instance *ri, bool cleanup_hprobe)
1962 {
1963 unsigned seq;
1964
1965 if (cleanup_hprobe) {
1966 enum hprobe_state hstate;
1967
1968 (void)hprobe_consume(&ri->hprobe, &hstate);
1969 hprobe_finalize(&ri->hprobe, hstate);
1970 }
1971
1972 /*
1973 * At this point return_instance is unlinked from utask's
1974 * return_instances list and this has become visible to ri_timer().
1975 * If seqcount now indicates that ri_timer's return instance
1976 * processing loop isn't active, we can return ri into the pool of
1977 * to-be-reused return instances for future uretprobes. If ri_timer()
1978 * happens to be running right now, though, we fallback to safety and
1979 * just perform RCU-delated freeing of ri.
1980 * Admittedly, this is a rather simple use of seqcount, but it nicely
1981 * abstracts away all the necessary memory barriers, so we use
1982 * a well-supported kernel primitive here.
1983 */
1984 if (raw_seqcount_try_begin(&utask->ri_seqcount, seq)) {
1985 /* immediate reuse of ri without RCU GP is OK */
1986 ri_pool_push(utask, ri);
1987 } else {
1988 /* we might be racing with ri_timer(), so play it safe */
1989 ri_free(ri);
1990 }
1991 }
1992
1993 /*
1994 * Called with no locks held.
1995 * Called in context of an exiting or an exec-ing thread.
1996 */
uprobe_free_utask(struct task_struct * t)1997 void uprobe_free_utask(struct task_struct *t)
1998 {
1999 struct uprobe_task *utask = t->utask;
2000 struct return_instance *ri, *ri_next;
2001
2002 if (!utask)
2003 return;
2004
2005 t->utask = NULL;
2006 WARN_ON_ONCE(utask->active_uprobe || utask->xol_vaddr);
2007
2008 timer_delete_sync(&utask->ri_timer);
2009
2010 ri = utask->return_instances;
2011 while (ri) {
2012 ri_next = ri->next;
2013 free_ret_instance(utask, ri, true /* cleanup_hprobe */);
2014 ri = ri_next;
2015 }
2016
2017 /* free_ret_instance() above might add to ri_pool, so this loop should come last */
2018 ri = utask->ri_pool;
2019 while (ri) {
2020 ri_next = ri->next;
2021 ri_free(ri);
2022 ri = ri_next;
2023 }
2024
2025 kfree(utask);
2026 }
2027
2028 #define RI_TIMER_PERIOD (HZ / 10) /* 100 ms */
2029
2030 #define for_each_ret_instance_rcu(pos, head) \
2031 for (pos = rcu_dereference_raw(head); pos; pos = rcu_dereference_raw(pos->next))
2032
ri_timer(struct timer_list * timer)2033 static void ri_timer(struct timer_list *timer)
2034 {
2035 struct uprobe_task *utask = container_of(timer, struct uprobe_task, ri_timer);
2036 struct return_instance *ri;
2037
2038 /* SRCU protects uprobe from reuse for the cmpxchg() inside hprobe_expire(). */
2039 guard(srcu_fast_updown)(&uretprobes_srcu);
2040 /* RCU protects return_instance from freeing. */
2041 guard(rcu)();
2042
2043 /*
2044 * See free_ret_instance() for notes on seqcount use.
2045 * We also employ raw API variants to avoid lockdep false-positive
2046 * warning complaining about enabled preemption. The timer can only be
2047 * invoked once for a uprobe_task. Therefore there can only be one
2048 * writer. The reader does not require an even sequence count to make
2049 * progress, so it is OK to remain preemptible on PREEMPT_RT.
2050 */
2051 raw_write_seqcount_begin(&utask->ri_seqcount);
2052
2053 for_each_ret_instance_rcu(ri, utask->return_instances)
2054 hprobe_expire(&ri->hprobe, false);
2055
2056 raw_write_seqcount_end(&utask->ri_seqcount);
2057 }
2058
alloc_utask(void)2059 static struct uprobe_task *alloc_utask(void)
2060 {
2061 struct uprobe_task *utask;
2062
2063 utask = kzalloc_obj(*utask);
2064 if (!utask)
2065 return NULL;
2066
2067 timer_setup(&utask->ri_timer, ri_timer, 0);
2068 seqcount_init(&utask->ri_seqcount);
2069
2070 return utask;
2071 }
2072
2073 /*
2074 * Allocate a uprobe_task object for the task if necessary.
2075 * Called when the thread hits a breakpoint.
2076 *
2077 * Returns:
2078 * - pointer to new uprobe_task on success
2079 * - NULL otherwise
2080 */
get_utask(void)2081 static struct uprobe_task *get_utask(void)
2082 {
2083 if (!current->utask)
2084 current->utask = alloc_utask();
2085 return current->utask;
2086 }
2087
alloc_return_instance(struct uprobe_task * utask)2088 static struct return_instance *alloc_return_instance(struct uprobe_task *utask)
2089 {
2090 struct return_instance *ri;
2091
2092 ri = ri_pool_pop(utask);
2093 if (ri)
2094 return ri;
2095
2096 ri = kzalloc_obj(*ri);
2097 if (!ri)
2098 return ZERO_SIZE_PTR;
2099
2100 return ri;
2101 }
2102
dup_return_instance(struct return_instance * old)2103 static struct return_instance *dup_return_instance(struct return_instance *old)
2104 {
2105 struct return_instance *ri;
2106
2107 ri = kmemdup(old, sizeof(*ri), GFP_KERNEL);
2108 if (!ri)
2109 return NULL;
2110
2111 if (unlikely(old->cons_cnt > 1)) {
2112 ri->extra_consumers = kmemdup(old->extra_consumers,
2113 sizeof(ri->extra_consumers[0]) * (old->cons_cnt - 1),
2114 GFP_KERNEL);
2115 if (!ri->extra_consumers) {
2116 kfree(ri);
2117 return NULL;
2118 }
2119 }
2120
2121 return ri;
2122 }
2123
dup_utask(struct task_struct * t,struct uprobe_task * o_utask)2124 static int dup_utask(struct task_struct *t, struct uprobe_task *o_utask)
2125 {
2126 struct uprobe_task *n_utask;
2127 struct return_instance **p, *o, *n;
2128 struct uprobe *uprobe;
2129
2130 n_utask = alloc_utask();
2131 if (!n_utask)
2132 return -ENOMEM;
2133 t->utask = n_utask;
2134
2135 /* protect uprobes from freeing, we'll need try_get_uprobe() them */
2136 guard(srcu_fast_updown)(&uretprobes_srcu);
2137
2138 p = &n_utask->return_instances;
2139 for (o = o_utask->return_instances; o; o = o->next) {
2140 n = dup_return_instance(o);
2141 if (!n)
2142 return -ENOMEM;
2143
2144 /* if uprobe is non-NULL, we'll have an extra refcount for uprobe */
2145 uprobe = hprobe_expire(&o->hprobe, true);
2146
2147 /*
2148 * New utask will have stable properly refcounted uprobe or
2149 * NULL. Even if we failed to get refcounted uprobe, we still
2150 * need to preserve full set of return_instances for proper
2151 * uretprobe handling and nesting in forked task.
2152 */
2153 hprobe_init_stable(&n->hprobe, uprobe);
2154
2155 n->next = NULL;
2156 rcu_assign_pointer(*p, n);
2157 p = &n->next;
2158
2159 n_utask->depth++;
2160 }
2161
2162 return 0;
2163 }
2164
dup_xol_work(struct callback_head * work)2165 static void dup_xol_work(struct callback_head *work)
2166 {
2167 if (current->flags & PF_EXITING)
2168 return;
2169
2170 if (!__create_xol_area(current->utask->dup_xol_addr) &&
2171 !fatal_signal_pending(current))
2172 uprobe_warn(current, "dup xol area");
2173 }
2174
2175 /*
2176 * Called in context of a new clone/fork from copy_process.
2177 */
uprobe_copy_process(struct task_struct * t,u64 flags)2178 void uprobe_copy_process(struct task_struct *t, u64 flags)
2179 {
2180 struct uprobe_task *utask = current->utask;
2181 struct mm_struct *mm = current->mm;
2182 struct xol_area *area;
2183
2184 t->utask = NULL;
2185
2186 if (!utask || !utask->return_instances)
2187 return;
2188
2189 if (mm == t->mm && !(flags & CLONE_VFORK))
2190 return;
2191
2192 if (dup_utask(t, utask))
2193 return uprobe_warn(t, "dup ret instances");
2194
2195 /* The task can fork() after dup_xol_work() fails */
2196 area = mm->uprobes_state.xol_area;
2197 if (!area)
2198 return uprobe_warn(t, "dup xol area");
2199
2200 if (mm == t->mm)
2201 return;
2202
2203 t->utask->dup_xol_addr = area->vaddr;
2204 init_task_work(&t->utask->dup_xol_work, dup_xol_work);
2205 task_work_add(t, &t->utask->dup_xol_work, TWA_RESUME);
2206 }
2207
2208 /*
2209 * Current area->vaddr notion assume the trampoline address is always
2210 * equal area->vaddr.
2211 *
2212 * Returns -1 in case the xol_area is not allocated.
2213 */
uprobe_get_trampoline_vaddr(void)2214 unsigned long uprobe_get_trampoline_vaddr(void)
2215 {
2216 unsigned long trampoline_vaddr = UPROBE_NO_TRAMPOLINE_VADDR;
2217 struct xol_area *area;
2218
2219 /* Pairs with xol_add_vma() smp_store_release() */
2220 area = READ_ONCE(current->mm->uprobes_state.xol_area); /* ^^^ */
2221 if (area)
2222 trampoline_vaddr = area->vaddr;
2223
2224 return trampoline_vaddr;
2225 }
2226
cleanup_return_instances(struct uprobe_task * utask,bool chained,struct pt_regs * regs)2227 static void cleanup_return_instances(struct uprobe_task *utask, bool chained,
2228 struct pt_regs *regs)
2229 {
2230 struct return_instance *ri = utask->return_instances, *ri_next;
2231 enum rp_check ctx = chained ? RP_CHECK_CHAIN_CALL : RP_CHECK_CALL;
2232
2233 while (ri && !arch_uretprobe_is_alive(ri, ctx, regs)) {
2234 ri_next = ri->next;
2235 rcu_assign_pointer(utask->return_instances, ri_next);
2236 utask->depth--;
2237
2238 free_ret_instance(utask, ri, true /* cleanup_hprobe */);
2239 ri = ri_next;
2240 }
2241 }
2242
prepare_uretprobe(struct uprobe * uprobe,struct pt_regs * regs,struct return_instance * ri)2243 static void prepare_uretprobe(struct uprobe *uprobe, struct pt_regs *regs,
2244 struct return_instance *ri)
2245 {
2246 struct uprobe_task *utask = current->utask;
2247 unsigned long orig_ret_vaddr, trampoline_vaddr;
2248 struct srcu_ctr __percpu *srcu_scp;
2249 bool chained;
2250
2251 if (!get_xol_area())
2252 goto free;
2253
2254 if (utask->depth >= MAX_URETPROBE_DEPTH) {
2255 printk_ratelimited(KERN_INFO "uprobe: omit uretprobe due to"
2256 " nestedness limit pid/tgid=%d/%d\n",
2257 current->pid, current->tgid);
2258 goto free;
2259 }
2260
2261 trampoline_vaddr = uprobe_get_trampoline_vaddr();
2262 orig_ret_vaddr = arch_uretprobe_hijack_return_addr(trampoline_vaddr, regs);
2263 if (orig_ret_vaddr == -1)
2264 goto free;
2265
2266 /* drop the entries invalidated by longjmp() */
2267 chained = (orig_ret_vaddr == trampoline_vaddr);
2268 cleanup_return_instances(utask, chained, regs);
2269
2270 /*
2271 * We don't want to keep trampoline address in stack, rather keep the
2272 * original return address of first caller thru all the consequent
2273 * instances. This also makes breakpoint unwrapping easier.
2274 */
2275 if (chained) {
2276 if (!utask->return_instances) {
2277 /*
2278 * This situation is not possible. Likely we have an
2279 * attack from user-space.
2280 */
2281 uprobe_warn(current, "handle tail call");
2282 goto free;
2283 }
2284 orig_ret_vaddr = utask->return_instances->orig_ret_vaddr;
2285 }
2286
2287 /*
2288 * Use srcu_down_read_fast() because the SRCU lock survives a switch to
2289 * user space and can be unlocked from a different context by ri_timer()
2290 * or dup_utask().
2291 */
2292 srcu_scp = srcu_down_read_fast(&uretprobes_srcu);
2293
2294 ri->func = instruction_pointer(regs);
2295 ri->stack = user_stack_pointer(regs);
2296 ri->orig_ret_vaddr = orig_ret_vaddr;
2297 ri->chained = chained;
2298
2299 utask->depth++;
2300
2301 hprobe_init_leased(&ri->hprobe, uprobe, srcu_scp);
2302 ri->next = utask->return_instances;
2303 rcu_assign_pointer(utask->return_instances, ri);
2304
2305 mod_timer(&utask->ri_timer, jiffies + RI_TIMER_PERIOD);
2306
2307 return;
2308 free:
2309 ri_free(ri);
2310 }
2311
2312 /* Prepare to single-step probed instruction out of line. */
2313 static int
pre_ssout(struct uprobe * uprobe,struct pt_regs * regs,unsigned long bp_vaddr)2314 pre_ssout(struct uprobe *uprobe, struct pt_regs *regs, unsigned long bp_vaddr)
2315 {
2316 struct uprobe_task *utask = current->utask;
2317 int err;
2318
2319 if (!try_get_uprobe(uprobe))
2320 return -EINVAL;
2321
2322 if (!xol_get_insn_slot(uprobe, utask)) {
2323 err = -ENOMEM;
2324 goto err_out;
2325 }
2326
2327 utask->vaddr = bp_vaddr;
2328 err = arch_uprobe_pre_xol(&uprobe->arch, regs);
2329 if (unlikely(err)) {
2330 xol_free_insn_slot(utask);
2331 goto err_out;
2332 }
2333
2334 utask->active_uprobe = uprobe;
2335 utask->state = UTASK_SSTEP;
2336 return 0;
2337 err_out:
2338 put_uprobe(uprobe);
2339 return err;
2340 }
2341
2342 /*
2343 * If we are singlestepping, then ensure this thread is not connected to
2344 * non-fatal signals until completion of singlestep. When xol insn itself
2345 * triggers the signal, restart the original insn even if the task is
2346 * already SIGKILL'ed (since coredump should report the correct ip). This
2347 * is even more important if the task has a handler for SIGSEGV/etc, The
2348 * _same_ instruction should be repeated again after return from the signal
2349 * handler, and SSTEP can never finish in this case.
2350 */
uprobe_deny_signal(void)2351 bool uprobe_deny_signal(void)
2352 {
2353 struct task_struct *t = current;
2354 struct uprobe_task *utask = t->utask;
2355
2356 if (likely(!utask || !utask->active_uprobe))
2357 return false;
2358
2359 WARN_ON_ONCE(utask->state != UTASK_SSTEP);
2360
2361 if (task_sigpending(t)) {
2362 utask->signal_denied = true;
2363 clear_tsk_thread_flag(t, TIF_SIGPENDING);
2364
2365 if (__fatal_signal_pending(t) || arch_uprobe_xol_was_trapped(t)) {
2366 utask->state = UTASK_SSTEP_TRAPPED;
2367 set_tsk_thread_flag(t, TIF_UPROBE);
2368 }
2369 }
2370
2371 return true;
2372 }
2373
mmf_recalc_uprobes(struct mm_struct * mm)2374 static void mmf_recalc_uprobes(struct mm_struct *mm)
2375 {
2376 VMA_ITERATOR(vmi, mm, 0);
2377 struct vm_area_struct *vma;
2378
2379 for_each_vma(vmi, vma) {
2380 if (!valid_vma(vma, false))
2381 continue;
2382 /*
2383 * This is not strictly accurate, we can race with
2384 * uprobe_unregister() and see the already removed
2385 * uprobe if delete_uprobe() was not yet called.
2386 * Or this uprobe can be filtered out.
2387 */
2388 if (vma_has_uprobes(vma, vma->vm_start, vma->vm_end))
2389 return;
2390 }
2391
2392 mm_flags_clear(MMF_HAS_UPROBES, mm);
2393 }
2394
is_trap_at_addr(struct mm_struct * mm,unsigned long vaddr)2395 static int is_trap_at_addr(struct mm_struct *mm, unsigned long vaddr)
2396 {
2397 struct page *page;
2398 uprobe_opcode_t opcode;
2399 int result;
2400
2401 if (WARN_ON_ONCE(!IS_ALIGNED(vaddr, UPROBE_SWBP_INSN_SIZE)))
2402 return -EINVAL;
2403
2404 pagefault_disable();
2405 result = __get_user(opcode, (uprobe_opcode_t __user *)vaddr);
2406 pagefault_enable();
2407
2408 if (likely(result == 0))
2409 goto out;
2410
2411 result = get_user_pages(vaddr, 1, FOLL_FORCE, &page);
2412 if (result < 0)
2413 return result;
2414
2415 uprobe_copy_from_page(page, vaddr, &opcode, UPROBE_SWBP_INSN_SIZE);
2416 put_page(page);
2417 out:
2418 /* This needs to return true for any variant of the trap insn */
2419 return is_trap_insn(&opcode);
2420 }
2421
find_active_uprobe_speculative(unsigned long bp_vaddr)2422 static struct uprobe *find_active_uprobe_speculative(unsigned long bp_vaddr)
2423 {
2424 struct mm_struct *mm = current->mm;
2425 struct uprobe *uprobe = NULL;
2426 struct vm_area_struct *vma;
2427 struct file *vm_file;
2428 loff_t offset;
2429 unsigned int seq;
2430
2431 guard(rcu)();
2432
2433 if (!mmap_lock_speculate_try_begin(mm, &seq))
2434 return NULL;
2435
2436 vma = vma_lookup(mm, bp_vaddr);
2437 if (!vma)
2438 return NULL;
2439
2440 /*
2441 * vm_file memory can be reused for another instance of struct file,
2442 * but can't be freed from under us, so it's safe to read fields from
2443 * it, even if the values are some garbage values; ultimately
2444 * find_uprobe_rcu() + mmap_lock_speculation_end() check will ensure
2445 * that whatever we speculatively found is correct
2446 */
2447 vm_file = READ_ONCE(vma->vm_file);
2448 if (!vm_file)
2449 return NULL;
2450
2451 offset = (loff_t)(vma->vm_pgoff << PAGE_SHIFT) + (bp_vaddr - vma->vm_start);
2452 uprobe = find_uprobe_rcu(vm_file->f_inode, offset);
2453 if (!uprobe)
2454 return NULL;
2455
2456 /* now double check that nothing about MM changed */
2457 if (mmap_lock_speculate_retry(mm, seq))
2458 return NULL;
2459
2460 return uprobe;
2461 }
2462
2463 /* assumes being inside RCU protected region */
find_active_uprobe_rcu(unsigned long bp_vaddr,int * is_swbp)2464 static struct uprobe *find_active_uprobe_rcu(unsigned long bp_vaddr, int *is_swbp)
2465 {
2466 struct mm_struct *mm = current->mm;
2467 struct uprobe *uprobe = NULL;
2468 struct vm_area_struct *vma;
2469
2470 uprobe = find_active_uprobe_speculative(bp_vaddr);
2471 if (uprobe)
2472 return uprobe;
2473
2474 mmap_read_lock(mm);
2475 vma = vma_lookup(mm, bp_vaddr);
2476 if (vma) {
2477 if (vma->vm_file) {
2478 struct inode *inode = file_inode(vma->vm_file);
2479 loff_t offset = vaddr_to_offset(vma, bp_vaddr);
2480
2481 uprobe = find_uprobe_rcu(inode, offset);
2482 }
2483
2484 if (!uprobe)
2485 *is_swbp = is_trap_at_addr(mm, bp_vaddr);
2486 } else {
2487 *is_swbp = -EFAULT;
2488 }
2489
2490 if (!uprobe && mm_flags_test_and_clear(MMF_RECALC_UPROBES, mm))
2491 mmf_recalc_uprobes(mm);
2492 mmap_read_unlock(mm);
2493
2494 return uprobe;
2495 }
2496
push_consumer(struct return_instance * ri,__u64 id,__u64 cookie)2497 static struct return_instance *push_consumer(struct return_instance *ri, __u64 id, __u64 cookie)
2498 {
2499 struct return_consumer *ric;
2500
2501 if (unlikely(ri == ZERO_SIZE_PTR))
2502 return ri;
2503
2504 if (unlikely(ri->cons_cnt > 0)) {
2505 ric = krealloc(ri->extra_consumers, sizeof(*ric) * ri->cons_cnt, GFP_KERNEL);
2506 if (!ric) {
2507 ri_free(ri);
2508 return ZERO_SIZE_PTR;
2509 }
2510 ri->extra_consumers = ric;
2511 }
2512
2513 ric = likely(ri->cons_cnt == 0) ? &ri->consumer : &ri->extra_consumers[ri->cons_cnt - 1];
2514 ric->id = id;
2515 ric->cookie = cookie;
2516
2517 ri->cons_cnt++;
2518 return ri;
2519 }
2520
2521 static struct return_consumer *
return_consumer_find(struct return_instance * ri,int * iter,int id)2522 return_consumer_find(struct return_instance *ri, int *iter, int id)
2523 {
2524 struct return_consumer *ric;
2525 int idx;
2526
2527 for (idx = *iter; idx < ri->cons_cnt; idx++)
2528 {
2529 ric = likely(idx == 0) ? &ri->consumer : &ri->extra_consumers[idx - 1];
2530 if (ric->id == id) {
2531 *iter = idx + 1;
2532 return ric;
2533 }
2534 }
2535
2536 return NULL;
2537 }
2538
ignore_ret_handler(int rc)2539 static bool ignore_ret_handler(int rc)
2540 {
2541 return rc == UPROBE_HANDLER_REMOVE || rc == UPROBE_HANDLER_IGNORE;
2542 }
2543
handler_chain(struct uprobe * uprobe,struct pt_regs * regs)2544 static void handler_chain(struct uprobe *uprobe, struct pt_regs *regs)
2545 {
2546 struct uprobe_consumer *uc;
2547 bool has_consumers = false, remove = true;
2548 struct return_instance *ri = NULL;
2549 struct uprobe_task *utask = current->utask;
2550
2551 utask->auprobe = &uprobe->arch;
2552
2553 list_for_each_entry_rcu(uc, &uprobe->consumers, cons_node, rcu_read_lock_trace_held()) {
2554 bool session = uc->handler && uc->ret_handler;
2555 __u64 cookie = 0;
2556 int rc = 0;
2557
2558 if (uc->handler) {
2559 rc = uc->handler(uc, regs, &cookie);
2560 WARN(rc < 0 || rc > 2,
2561 "bad rc=0x%x from %ps()\n", rc, uc->handler);
2562 }
2563
2564 remove &= rc == UPROBE_HANDLER_REMOVE;
2565 has_consumers = true;
2566
2567 if (!uc->ret_handler || ignore_ret_handler(rc))
2568 continue;
2569
2570 if (!ri)
2571 ri = alloc_return_instance(utask);
2572
2573 if (session)
2574 ri = push_consumer(ri, uc->id, cookie);
2575 }
2576 utask->auprobe = NULL;
2577
2578 if (!ZERO_OR_NULL_PTR(ri))
2579 prepare_uretprobe(uprobe, regs, ri);
2580
2581 if (remove && has_consumers) {
2582 down_read(&uprobe->register_rwsem);
2583
2584 /* re-check that removal is still required, this time under lock */
2585 if (!filter_chain(uprobe, current->mm)) {
2586 WARN_ON(!uprobe_is_active(uprobe));
2587 unapply_uprobe(uprobe, current->mm);
2588 }
2589
2590 up_read(&uprobe->register_rwsem);
2591 }
2592 }
2593
2594 static void
handle_uretprobe_chain(struct return_instance * ri,struct uprobe * uprobe,struct pt_regs * regs)2595 handle_uretprobe_chain(struct return_instance *ri, struct uprobe *uprobe, struct pt_regs *regs)
2596 {
2597 struct return_consumer *ric;
2598 struct uprobe_consumer *uc;
2599 int ric_idx = 0;
2600
2601 /* all consumers unsubscribed meanwhile */
2602 if (unlikely(!uprobe))
2603 return;
2604
2605 rcu_read_lock_trace();
2606 list_for_each_entry_rcu(uc, &uprobe->consumers, cons_node, rcu_read_lock_trace_held()) {
2607 bool session = uc->handler && uc->ret_handler;
2608
2609 if (uc->ret_handler) {
2610 ric = return_consumer_find(ri, &ric_idx, uc->id);
2611 if (!session || ric)
2612 uc->ret_handler(uc, ri->func, regs, ric ? &ric->cookie : NULL);
2613 }
2614 }
2615 rcu_read_unlock_trace();
2616 }
2617
find_next_ret_chain(struct return_instance * ri)2618 static struct return_instance *find_next_ret_chain(struct return_instance *ri)
2619 {
2620 bool chained;
2621
2622 do {
2623 chained = ri->chained;
2624 ri = ri->next; /* can't be NULL if chained */
2625 } while (chained);
2626
2627 return ri;
2628 }
2629
uprobe_handle_trampoline(struct pt_regs * regs)2630 void uprobe_handle_trampoline(struct pt_regs *regs)
2631 {
2632 struct uprobe_task *utask;
2633 struct return_instance *ri, *ri_next, *next_chain;
2634 struct uprobe *uprobe;
2635 enum hprobe_state hstate;
2636 bool valid;
2637
2638 utask = current->utask;
2639 if (!utask)
2640 goto sigill;
2641
2642 ri = utask->return_instances;
2643 if (!ri)
2644 goto sigill;
2645
2646 do {
2647 /*
2648 * We should throw out the frames invalidated by longjmp().
2649 * If this chain is valid, then the next one should be alive
2650 * or NULL; the latter case means that nobody but ri->func
2651 * could hit this trampoline on return. TODO: sigaltstack().
2652 */
2653 next_chain = find_next_ret_chain(ri);
2654 valid = !next_chain || arch_uretprobe_is_alive(next_chain, RP_CHECK_RET, regs);
2655
2656 instruction_pointer_set(regs, ri->orig_ret_vaddr);
2657 do {
2658 /* pop current instance from the stack of pending return instances,
2659 * as it's not pending anymore: we just fixed up original
2660 * instruction pointer in regs and are about to call handlers;
2661 * this allows fixup_uretprobe_trampoline_entries() to properly fix up
2662 * captured stack traces from uretprobe handlers, in which pending
2663 * trampoline addresses on the stack are replaced with correct
2664 * original return addresses
2665 */
2666 ri_next = ri->next;
2667 rcu_assign_pointer(utask->return_instances, ri_next);
2668 utask->depth--;
2669
2670 uprobe = hprobe_consume(&ri->hprobe, &hstate);
2671 if (valid)
2672 handle_uretprobe_chain(ri, uprobe, regs);
2673 hprobe_finalize(&ri->hprobe, hstate);
2674
2675 /* We already took care of hprobe, no need to waste more time on that. */
2676 free_ret_instance(utask, ri, false /* !cleanup_hprobe */);
2677 ri = ri_next;
2678 } while (ri != next_chain);
2679 } while (!valid);
2680
2681 return;
2682
2683 sigill:
2684 uprobe_warn(current, "handle uretprobe, sending SIGILL.");
2685 force_sig(SIGILL);
2686 }
2687
arch_uprobe_ignore(struct arch_uprobe * aup,struct pt_regs * regs)2688 bool __weak arch_uprobe_ignore(struct arch_uprobe *aup, struct pt_regs *regs)
2689 {
2690 return false;
2691 }
2692
arch_uretprobe_is_alive(struct return_instance * ret,enum rp_check ctx,struct pt_regs * regs)2693 bool __weak arch_uretprobe_is_alive(struct return_instance *ret, enum rp_check ctx,
2694 struct pt_regs *regs)
2695 {
2696 return true;
2697 }
2698
arch_uprobe_optimize(struct arch_uprobe * auprobe,unsigned long vaddr)2699 void __weak arch_uprobe_optimize(struct arch_uprobe *auprobe, unsigned long vaddr)
2700 {
2701 }
2702
2703 /*
2704 * Run handler and ask thread to singlestep.
2705 * Ensure all non-fatal signals cannot interrupt thread while it singlesteps.
2706 */
handle_swbp(struct pt_regs * regs)2707 static void handle_swbp(struct pt_regs *regs)
2708 {
2709 struct uprobe *uprobe;
2710 unsigned long bp_vaddr;
2711 int is_swbp;
2712
2713 bp_vaddr = uprobe_get_swbp_addr(regs);
2714 if (bp_vaddr == uprobe_get_trampoline_vaddr())
2715 return uprobe_handle_trampoline(regs);
2716
2717 rcu_read_lock_trace();
2718
2719 uprobe = find_active_uprobe_rcu(bp_vaddr, &is_swbp);
2720 if (!uprobe) {
2721 if (is_swbp > 0) {
2722 /* No matching uprobe; signal SIGTRAP. */
2723 force_sig(SIGTRAP);
2724 } else {
2725 /*
2726 * Either we raced with uprobe_unregister() or we can't
2727 * access this memory. The latter is only possible if
2728 * another thread plays with our ->mm. In both cases
2729 * we can simply restart. If this vma was unmapped we
2730 * can pretend this insn was not executed yet and get
2731 * the (correct) SIGSEGV after restart.
2732 */
2733 instruction_pointer_set(regs, bp_vaddr);
2734 }
2735 goto out;
2736 }
2737
2738 /* change it in advance for ->handler() and restart */
2739 instruction_pointer_set(regs, bp_vaddr);
2740
2741 /*
2742 * TODO: move copy_insn/etc into _register and remove this hack.
2743 * After we hit the bp, _unregister + _register can install the
2744 * new and not-yet-analyzed uprobe at the same address, restart.
2745 */
2746 if (unlikely(!test_bit(UPROBE_COPY_INSN, &uprobe->flags)))
2747 goto out;
2748
2749 /*
2750 * Pairs with the smp_wmb() in prepare_uprobe().
2751 *
2752 * Guarantees that if we see the UPROBE_COPY_INSN bit set, then
2753 * we must also see the stores to &uprobe->arch performed by the
2754 * prepare_uprobe() call.
2755 */
2756 smp_rmb();
2757
2758 /* Tracing handlers use ->utask to communicate with fetch methods */
2759 if (!get_utask())
2760 goto out;
2761
2762 if (arch_uprobe_ignore(&uprobe->arch, regs))
2763 goto out;
2764
2765 handler_chain(uprobe, regs);
2766
2767 /* Try to optimize after first hit. */
2768 arch_uprobe_optimize(&uprobe->arch, bp_vaddr);
2769
2770 /*
2771 * If user decided to take execution elsewhere, it makes little sense
2772 * to execute the original instruction, so let's skip it.
2773 */
2774 if (instruction_pointer(regs) != bp_vaddr)
2775 goto out;
2776
2777 if (arch_uprobe_skip_sstep(&uprobe->arch, regs))
2778 goto out;
2779
2780 if (pre_ssout(uprobe, regs, bp_vaddr))
2781 goto out;
2782
2783 out:
2784 /* arch_uprobe_skip_sstep() succeeded, or restart if can't singlestep */
2785 rcu_read_unlock_trace();
2786 }
2787
handle_syscall_uprobe(struct pt_regs * regs,unsigned long bp_vaddr)2788 void handle_syscall_uprobe(struct pt_regs *regs, unsigned long bp_vaddr)
2789 {
2790 struct uprobe *uprobe;
2791 int is_swbp;
2792
2793 guard(rcu_tasks_trace)();
2794
2795 uprobe = find_active_uprobe_rcu(bp_vaddr, &is_swbp);
2796 if (!uprobe)
2797 return;
2798 if (!get_utask())
2799 return;
2800 if (arch_uprobe_ignore(&uprobe->arch, regs))
2801 return;
2802 handler_chain(uprobe, regs);
2803 }
2804
2805 /*
2806 * Perform required fix-ups and disable singlestep.
2807 * Allow pending signals to take effect.
2808 */
handle_singlestep(struct uprobe_task * utask,struct pt_regs * regs)2809 static void handle_singlestep(struct uprobe_task *utask, struct pt_regs *regs)
2810 {
2811 struct uprobe *uprobe;
2812 int err = 0;
2813
2814 uprobe = utask->active_uprobe;
2815 if (utask->state == UTASK_SSTEP_ACK)
2816 err = arch_uprobe_post_xol(&uprobe->arch, regs);
2817 else if (utask->state == UTASK_SSTEP_TRAPPED)
2818 arch_uprobe_abort_xol(&uprobe->arch, regs);
2819 else
2820 WARN_ON_ONCE(1);
2821
2822 put_uprobe(uprobe);
2823 utask->active_uprobe = NULL;
2824 utask->state = UTASK_RUNNING;
2825 xol_free_insn_slot(utask);
2826
2827 if (utask->signal_denied) {
2828 set_thread_flag(TIF_SIGPENDING);
2829 utask->signal_denied = false;
2830 }
2831
2832 if (unlikely(err)) {
2833 uprobe_warn(current, "execute the probed insn, sending SIGILL.");
2834 force_sig(SIGILL);
2835 }
2836 }
2837
2838 /*
2839 * On breakpoint hit, breakpoint notifier sets the TIF_UPROBE flag and
2840 * allows the thread to return from interrupt. After that handle_swbp()
2841 * sets utask->active_uprobe.
2842 *
2843 * On singlestep exception, singlestep notifier sets the TIF_UPROBE flag
2844 * and allows the thread to return from interrupt.
2845 *
2846 * While returning to userspace, thread notices the TIF_UPROBE flag and calls
2847 * uprobe_notify_resume().
2848 */
uprobe_notify_resume(struct pt_regs * regs)2849 void uprobe_notify_resume(struct pt_regs *regs)
2850 {
2851 struct uprobe_task *utask;
2852
2853 clear_thread_flag(TIF_UPROBE);
2854
2855 utask = current->utask;
2856 if (utask && utask->active_uprobe)
2857 handle_singlestep(utask, regs);
2858 else
2859 handle_swbp(regs);
2860 }
2861
2862 /*
2863 * uprobe_pre_sstep_notifier gets called from interrupt context as part of
2864 * notifier mechanism. Set TIF_UPROBE flag and indicate breakpoint hit.
2865 */
uprobe_pre_sstep_notifier(struct pt_regs * regs)2866 int uprobe_pre_sstep_notifier(struct pt_regs *regs)
2867 {
2868 if (!current->mm)
2869 return 0;
2870
2871 if (!mm_flags_test(MMF_HAS_UPROBES, current->mm) &&
2872 (!current->utask || !current->utask->return_instances))
2873 return 0;
2874
2875 set_thread_flag(TIF_UPROBE);
2876 return 1;
2877 }
2878
2879 /*
2880 * uprobe_post_sstep_notifier gets called in interrupt context as part of notifier
2881 * mechanism. Set TIF_UPROBE flag and indicate completion of singlestep.
2882 */
uprobe_post_sstep_notifier(struct pt_regs * regs)2883 int uprobe_post_sstep_notifier(struct pt_regs *regs)
2884 {
2885 struct uprobe_task *utask = current->utask;
2886
2887 if (!current->mm || !utask || !utask->active_uprobe)
2888 /* task is currently not uprobed */
2889 return 0;
2890
2891 utask->state = UTASK_SSTEP_ACK;
2892 set_thread_flag(TIF_UPROBE);
2893 return 1;
2894 }
2895
2896 static struct notifier_block uprobe_exception_nb = {
2897 .notifier_call = arch_uprobe_exception_notify,
2898 .priority = INT_MAX-1, /* notified after kprobes, kgdb */
2899 };
2900
uprobes_init(void)2901 void __init uprobes_init(void)
2902 {
2903 int i;
2904
2905 for (i = 0; i < UPROBES_HASH_SZ; i++)
2906 mutex_init(&uprobes_mmap_mutex[i]);
2907
2908 BUG_ON(register_die_notifier(&uprobe_exception_nb));
2909 }
2910