1 // SPDX-License-Identifier: GPL-2.0 2 #define pr_fmt(fmt) "kcov: " fmt 3 4 #define DISABLE_BRANCH_PROFILING 5 #include <linux/atomic.h> 6 #include <linux/compiler.h> 7 #include <linux/errno.h> 8 #include <linux/export.h> 9 #include <linux/types.h> 10 #include <linux/file.h> 11 #include <linux/fs.h> 12 #include <linux/hashtable.h> 13 #include <linux/init.h> 14 #include <linux/jiffies.h> 15 #include <linux/kmsan-checks.h> 16 #include <linux/mm.h> 17 #include <linux/preempt.h> 18 #include <linux/printk.h> 19 #include <linux/sched.h> 20 #include <linux/slab.h> 21 #include <linux/spinlock.h> 22 #include <linux/vmalloc.h> 23 #include <linux/debugfs.h> 24 #include <linux/uaccess.h> 25 #include <linux/kcov.h> 26 #include <linux/refcount.h> 27 #include <linux/log2.h> 28 #include <asm/setup.h> 29 30 #define kcov_debug(fmt, ...) pr_debug("%s: " fmt, __func__, ##__VA_ARGS__) 31 32 /* Number of 64-bit words written per one comparison: */ 33 #define KCOV_WORDS_PER_CMP 4 34 35 /* 36 * kcov descriptor (one per opened debugfs file). 37 * State transitions of the descriptor: 38 * - initial state after open() 39 * - then there must be a single ioctl(KCOV_INIT_TRACE) call 40 * - then, mmap() call (several calls are allowed but not useful) 41 * - then, ioctl(KCOV_ENABLE, arg), where arg is 42 * KCOV_TRACE_PC - to trace only the PCs 43 * or 44 * KCOV_TRACE_CMP - to trace only the comparison operands 45 * - then, ioctl(KCOV_DISABLE) to disable the task. 46 * Enabling/disabling ioctls can be repeated (only one task a time allowed). 47 */ 48 struct kcov { 49 /* 50 * Reference counter. We keep one for: 51 * - opened file descriptor 52 * - task with enabled coverage (we can't unwire it from another task) 53 * - each code section for remote coverage collection 54 */ 55 refcount_t refcount; 56 /* The lock protects mode, size, area and t. */ 57 spinlock_t lock; 58 enum kcov_mode mode __guarded_by(&lock); 59 /* Size of arena (in long's). */ 60 unsigned int size __guarded_by(&lock); 61 /* Coverage buffer shared with user space. */ 62 void *area __guarded_by(&lock); 63 /* Task for which we collect coverage, or NULL. */ 64 struct task_struct *t __guarded_by(&lock); 65 /* Collecting coverage from remote (background) threads. */ 66 bool remote; 67 /* Size of remote area (in long's). */ 68 unsigned int remote_size; 69 /* 70 * Sequence is incremented each time kcov is reenabled, used by 71 * kcov_remote_stop(), see the comment there. 72 */ 73 int sequence; 74 }; 75 76 struct kcov_remote_area { 77 struct list_head list; 78 unsigned int size; 79 }; 80 81 struct kcov_remote { 82 u64 handle; 83 struct kcov *kcov; 84 struct hlist_node hnode; 85 }; 86 87 static DEFINE_SPINLOCK(kcov_remote_lock); 88 static DEFINE_HASHTABLE(kcov_remote_map, 4); 89 static struct list_head kcov_remote_areas = LIST_HEAD_INIT(kcov_remote_areas); 90 91 struct kcov_percpu_data { 92 void *irq_area; 93 local_lock_t lock; 94 95 unsigned int saved_mode; 96 unsigned int saved_size; 97 void *saved_area; 98 struct kcov *saved_kcov; 99 int saved_sequence; 100 }; 101 102 static DEFINE_PER_CPU(struct kcov_percpu_data, kcov_percpu_data) = { 103 .lock = INIT_LOCAL_LOCK(lock), 104 }; 105 106 /* Must be called with kcov_remote_lock locked. */ 107 static struct kcov_remote *kcov_remote_find(u64 handle) 108 { 109 struct kcov_remote *remote; 110 111 hash_for_each_possible(kcov_remote_map, remote, hnode, handle) { 112 if (remote->handle == handle) 113 return remote; 114 } 115 return NULL; 116 } 117 118 /* Must be called with kcov_remote_lock locked. */ 119 static struct kcov_remote *kcov_remote_add(struct kcov *kcov, u64 handle) 120 { 121 struct kcov_remote *remote; 122 123 if (kcov_remote_find(handle)) 124 return ERR_PTR(-EEXIST); 125 remote = kmalloc_obj(*remote, GFP_ATOMIC); 126 if (!remote) 127 return ERR_PTR(-ENOMEM); 128 remote->handle = handle; 129 remote->kcov = kcov; 130 hash_add(kcov_remote_map, &remote->hnode, handle); 131 return remote; 132 } 133 134 /* Must be called with kcov_remote_lock locked. */ 135 static struct kcov_remote_area *kcov_remote_area_get(unsigned int size) 136 { 137 struct kcov_remote_area *area; 138 struct list_head *pos; 139 140 list_for_each(pos, &kcov_remote_areas) { 141 area = list_entry(pos, struct kcov_remote_area, list); 142 if (area->size == size) { 143 list_del(&area->list); 144 return area; 145 } 146 } 147 return NULL; 148 } 149 150 /* Must be called with kcov_remote_lock locked. */ 151 static void kcov_remote_area_put(struct kcov_remote_area *area, 152 unsigned int size) 153 { 154 INIT_LIST_HEAD(&area->list); 155 area->size = size; 156 list_add(&area->list, &kcov_remote_areas); 157 /* 158 * KMSAN doesn't instrument this file, so it may not know area->list 159 * is initialized. Unpoison it explicitly to avoid reports in 160 * kcov_remote_area_get(). 161 */ 162 kmsan_unpoison_memory(&area->list, sizeof(area->list)); 163 } 164 165 /* 166 * Unlike in_serving_softirq(), this function returns false when called during 167 * a hardirq or an NMI that happened in the softirq context. 168 */ 169 static __always_inline bool in_softirq_really(void) 170 { 171 return in_serving_softirq() && !in_hardirq() && !in_nmi(); 172 } 173 174 static notrace bool check_kcov_mode(enum kcov_mode needed_mode, struct task_struct *t) 175 { 176 unsigned int mode; 177 178 /* 179 * We are interested in code coverage as a function of a syscall inputs, 180 * so we ignore code executed in interrupts, unless we are in a remote 181 * coverage collection section in a softirq. 182 */ 183 if (!in_task() && !(in_softirq_really() && t->kcov_softirq)) 184 return false; 185 mode = READ_ONCE(t->kcov_mode); 186 /* 187 * There is some code that runs in interrupts but for which 188 * in_interrupt() returns false (e.g. preempt_schedule_irq()). 189 * READ_ONCE()/barrier() effectively provides load-acquire wrt 190 * interrupts, there are paired barrier()/WRITE_ONCE() in 191 * kcov_start(). 192 */ 193 barrier(); 194 return mode == needed_mode; 195 } 196 197 static notrace unsigned long canonicalize_ip(unsigned long ip) 198 { 199 #ifdef CONFIG_RANDOMIZE_BASE 200 ip -= kaslr_offset(); 201 #endif 202 return ip; 203 } 204 205 /* 206 * Entry point from instrumented code. 207 * This is called once per basic-block/edge. 208 */ 209 void notrace __sanitizer_cov_trace_pc(void) 210 { 211 struct task_struct *t; 212 unsigned long *area; 213 unsigned long ip = canonicalize_ip(_RET_IP_); 214 unsigned long pos; 215 216 t = current; 217 if (!check_kcov_mode(KCOV_MODE_TRACE_PC, t)) 218 return; 219 220 area = t->kcov_area; 221 /* The first 64-bit word is the number of subsequent PCs. */ 222 pos = READ_ONCE(area[0]) + 1; 223 if (likely(pos < t->kcov_size)) { 224 /* Previously we write pc before updating pos. However, some 225 * early interrupt code could bypass check_kcov_mode() check 226 * and invoke __sanitizer_cov_trace_pc(). If such interrupt is 227 * raised between writing pc and updating pos, the pc could be 228 * overitten by the recursive __sanitizer_cov_trace_pc(). 229 * Update pos before writing pc to avoid such interleaving. 230 */ 231 WRITE_ONCE(area[0], pos); 232 barrier(); 233 area[pos] = ip; 234 } 235 } 236 EXPORT_SYMBOL(__sanitizer_cov_trace_pc); 237 238 #ifdef CONFIG_KCOV_ENABLE_COMPARISONS 239 static void notrace write_comp_data(u64 type, u64 arg1, u64 arg2, u64 ip) 240 { 241 struct task_struct *t; 242 u64 *area; 243 u64 count, start_index, end_pos, max_pos; 244 245 t = current; 246 if (!check_kcov_mode(KCOV_MODE_TRACE_CMP, t)) 247 return; 248 249 ip = canonicalize_ip(ip); 250 251 /* 252 * We write all comparison arguments and types as u64. 253 * The buffer was allocated for t->kcov_size unsigned longs. 254 */ 255 area = (u64 *)t->kcov_area; 256 max_pos = t->kcov_size * sizeof(unsigned long); 257 258 count = READ_ONCE(area[0]); 259 260 /* Every record is KCOV_WORDS_PER_CMP 64-bit words. */ 261 start_index = 1 + count * KCOV_WORDS_PER_CMP; 262 end_pos = (start_index + KCOV_WORDS_PER_CMP) * sizeof(u64); 263 if (likely(end_pos <= max_pos)) { 264 /* See comment in __sanitizer_cov_trace_pc(). */ 265 WRITE_ONCE(area[0], count + 1); 266 barrier(); 267 area[start_index] = type; 268 area[start_index + 1] = arg1; 269 area[start_index + 2] = arg2; 270 area[start_index + 3] = ip; 271 } 272 } 273 274 void notrace __sanitizer_cov_trace_cmp1(u8 arg1, u8 arg2) 275 { 276 write_comp_data(KCOV_CMP_SIZE(0), arg1, arg2, _RET_IP_); 277 } 278 EXPORT_SYMBOL(__sanitizer_cov_trace_cmp1); 279 280 void notrace __sanitizer_cov_trace_cmp2(u16 arg1, u16 arg2) 281 { 282 write_comp_data(KCOV_CMP_SIZE(1), arg1, arg2, _RET_IP_); 283 } 284 EXPORT_SYMBOL(__sanitizer_cov_trace_cmp2); 285 286 void notrace __sanitizer_cov_trace_cmp4(u32 arg1, u32 arg2) 287 { 288 write_comp_data(KCOV_CMP_SIZE(2), arg1, arg2, _RET_IP_); 289 } 290 EXPORT_SYMBOL(__sanitizer_cov_trace_cmp4); 291 292 void notrace __sanitizer_cov_trace_cmp8(kcov_u64 arg1, kcov_u64 arg2) 293 { 294 write_comp_data(KCOV_CMP_SIZE(3), arg1, arg2, _RET_IP_); 295 } 296 EXPORT_SYMBOL(__sanitizer_cov_trace_cmp8); 297 298 void notrace __sanitizer_cov_trace_const_cmp1(u8 arg1, u8 arg2) 299 { 300 write_comp_data(KCOV_CMP_SIZE(0) | KCOV_CMP_CONST, arg1, arg2, 301 _RET_IP_); 302 } 303 EXPORT_SYMBOL(__sanitizer_cov_trace_const_cmp1); 304 305 void notrace __sanitizer_cov_trace_const_cmp2(u16 arg1, u16 arg2) 306 { 307 write_comp_data(KCOV_CMP_SIZE(1) | KCOV_CMP_CONST, arg1, arg2, 308 _RET_IP_); 309 } 310 EXPORT_SYMBOL(__sanitizer_cov_trace_const_cmp2); 311 312 void notrace __sanitizer_cov_trace_const_cmp4(u32 arg1, u32 arg2) 313 { 314 write_comp_data(KCOV_CMP_SIZE(2) | KCOV_CMP_CONST, arg1, arg2, 315 _RET_IP_); 316 } 317 EXPORT_SYMBOL(__sanitizer_cov_trace_const_cmp4); 318 319 void notrace __sanitizer_cov_trace_const_cmp8(kcov_u64 arg1, kcov_u64 arg2) 320 { 321 write_comp_data(KCOV_CMP_SIZE(3) | KCOV_CMP_CONST, arg1, arg2, 322 _RET_IP_); 323 } 324 EXPORT_SYMBOL(__sanitizer_cov_trace_const_cmp8); 325 326 void notrace __sanitizer_cov_trace_switch(kcov_u64 val, void *arg) 327 { 328 u64 i; 329 u64 *cases = arg; 330 u64 count = cases[0]; 331 u64 size = cases[1]; 332 u64 type = KCOV_CMP_CONST; 333 334 switch (size) { 335 case 8: 336 type |= KCOV_CMP_SIZE(0); 337 break; 338 case 16: 339 type |= KCOV_CMP_SIZE(1); 340 break; 341 case 32: 342 type |= KCOV_CMP_SIZE(2); 343 break; 344 case 64: 345 type |= KCOV_CMP_SIZE(3); 346 break; 347 default: 348 return; 349 } 350 for (i = 0; i < count; i++) 351 write_comp_data(type, cases[i + 2], val, _RET_IP_); 352 } 353 EXPORT_SYMBOL(__sanitizer_cov_trace_switch); 354 #endif /* ifdef CONFIG_KCOV_ENABLE_COMPARISONS */ 355 356 static void kcov_start(struct task_struct *t, struct kcov *kcov, 357 unsigned int size, void *area, enum kcov_mode mode, 358 int sequence) 359 { 360 kcov_debug("t = %px, size = %u, area = %px\n", t, size, area); 361 t->kcov = kcov; 362 /* Cache in task struct for performance. */ 363 t->kcov_size = size; 364 t->kcov_area = area; 365 t->kcov_sequence = sequence; 366 /* See comment in check_kcov_mode(). */ 367 barrier(); 368 WRITE_ONCE(t->kcov_mode, mode); 369 } 370 371 /* operates on coverage-generator-owned fields */ 372 static void kcov_stop(struct task_struct *t) 373 { 374 WRITE_ONCE(t->kcov_mode, KCOV_MODE_DISABLED); 375 barrier(); 376 t->kcov = NULL; 377 t->kcov_size = 0; 378 t->kcov_area = NULL; 379 } 380 381 /* operates on coverage-generator-owned fields */ 382 static void kcov_task_reset(struct task_struct *t) 383 { 384 kcov_stop(t); 385 t->kcov_sequence = 0; 386 } 387 388 void kcov_task_init(struct task_struct *t) 389 { 390 kcov_task_reset(t); 391 t->kcov_remote = NULL; 392 t->kcov_handle = current->kcov_handle; 393 } 394 395 static void kcov_reset(struct kcov *kcov) 396 __must_hold(&kcov->lock) 397 { 398 kcov->t = NULL; 399 kcov->mode = KCOV_MODE_INIT; 400 kcov->remote = false; 401 kcov->remote_size = 0; 402 kcov->sequence++; 403 } 404 405 static void kcov_remote_reset(struct kcov *kcov) 406 __must_hold(&kcov->lock) 407 { 408 int bkt; 409 struct kcov_remote *remote; 410 struct hlist_node *tmp; 411 unsigned long flags; 412 413 spin_lock_irqsave(&kcov_remote_lock, flags); 414 hash_for_each_safe(kcov_remote_map, bkt, tmp, remote, hnode) { 415 if (remote->kcov != kcov) 416 continue; 417 hash_del(&remote->hnode); 418 kfree(remote); 419 } 420 /* Do reset before unlock to prevent races with kcov_remote_start(). */ 421 kcov_reset(kcov); 422 spin_unlock_irqrestore(&kcov_remote_lock, flags); 423 } 424 425 static void kcov_disable(struct task_struct *t, struct kcov *kcov) 426 __must_hold(&kcov->lock) 427 { 428 if (kcov->remote) { 429 t->kcov_handle = 0; 430 t->kcov_remote = NULL; 431 kcov_remote_reset(kcov); 432 } else { 433 kcov_task_reset(t); 434 kcov_reset(kcov); 435 } 436 } 437 438 static void kcov_get(struct kcov *kcov) 439 { 440 refcount_inc(&kcov->refcount); 441 } 442 443 static void kcov_put(struct kcov *kcov) 444 { 445 if (refcount_dec_and_test(&kcov->refcount)) { 446 /* Context-safety: no references left, object being destroyed. */ 447 context_unsafe( 448 kcov_remote_reset(kcov); 449 vfree(kcov->area); 450 ); 451 kfree(kcov); 452 } 453 } 454 455 void kcov_task_exit(struct task_struct *t) 456 { 457 struct kcov *kcov; 458 unsigned long flags; 459 460 kcov = t->kcov; 461 if (kcov) { 462 spin_lock_irqsave(&kcov->lock, flags); 463 kcov_debug("t = %px, kcov->t = %px\n", t, kcov->t); 464 /* 465 * This could be a remote task between kcov_remote_start() and 466 * kcov_remote_stop(). 467 * In this case we should print a warning right away, since a 468 * task shouldn't be exiting when it's in a kcov coverage 469 * collection section. 470 * 471 * Otherwise, this should be a task that created a local 472 * kcov instance and hasn't called KCOV_DISABLE. 473 * Make sure that t->kcov->t is consistent. 474 */ 475 if (WARN_ON(kcov->remote) || WARN_ON(kcov->t != t)) { 476 spin_unlock_irqrestore(&kcov->lock, flags); 477 return; 478 } 479 /* Just to not leave dangling references behind. */ 480 kcov_disable(t, kcov); 481 spin_unlock_irqrestore(&kcov->lock, flags); 482 kcov_put(kcov); 483 } 484 kcov = t->kcov_remote; 485 if (kcov) { 486 spin_lock_irqsave(&kcov->lock, flags); 487 kcov_debug("t = %px, kcov->t = %px\n", t, kcov->t); 488 /* 489 * This is a KCOV_REMOTE_ENABLE device, and the task is the 490 * user task which has requested remote coverage collection. 491 * Make sure that t->kcov->t is consistent. 492 */ 493 if (WARN_ON(!kcov->remote) || WARN_ON(kcov->t != t)) { 494 spin_unlock_irqrestore(&kcov->lock, flags); 495 return; 496 } 497 /* Just to not leave dangling references behind. */ 498 kcov_disable(t, kcov); 499 spin_unlock_irqrestore(&kcov->lock, flags); 500 kcov_put(kcov); 501 } 502 } 503 504 static int kcov_mmap(struct file *filep, struct vm_area_struct *vma) 505 { 506 int res = 0; 507 struct kcov *kcov = vma->vm_file->private_data; 508 unsigned long size, off; 509 struct page *page; 510 unsigned long flags; 511 void *area; 512 513 spin_lock_irqsave(&kcov->lock, flags); 514 size = kcov->size * sizeof(unsigned long); 515 if (kcov->area == NULL || vma->vm_pgoff != 0 || 516 vma->vm_end - vma->vm_start != size) { 517 res = -EINVAL; 518 goto exit; 519 } 520 area = kcov->area; 521 spin_unlock_irqrestore(&kcov->lock, flags); 522 vm_flags_set(vma, VM_DONTEXPAND); 523 for (off = 0; off < size; off += PAGE_SIZE) { 524 page = vmalloc_to_page(area + off); 525 res = vm_insert_page(vma, vma->vm_start + off, page); 526 if (res) { 527 pr_warn_once("kcov: vm_insert_page() failed\n"); 528 return res; 529 } 530 } 531 return 0; 532 exit: 533 spin_unlock_irqrestore(&kcov->lock, flags); 534 return res; 535 } 536 537 static int kcov_open(struct inode *inode, struct file *filep) 538 { 539 struct kcov *kcov; 540 541 kcov = kzalloc_obj(*kcov); 542 if (!kcov) 543 return -ENOMEM; 544 guard(spinlock_init)(&kcov->lock); 545 kcov->mode = KCOV_MODE_DISABLED; 546 kcov->sequence = 1; 547 refcount_set(&kcov->refcount, 1); 548 filep->private_data = kcov; 549 return nonseekable_open(inode, filep); 550 } 551 552 static int kcov_close(struct inode *inode, struct file *filep) 553 { 554 kcov_put(filep->private_data); 555 return 0; 556 } 557 558 static int kcov_get_mode(unsigned long arg) 559 { 560 if (arg == KCOV_TRACE_PC) 561 return KCOV_MODE_TRACE_PC; 562 else if (arg == KCOV_TRACE_CMP) 563 #ifdef CONFIG_KCOV_ENABLE_COMPARISONS 564 return KCOV_MODE_TRACE_CMP; 565 #else 566 return -ENOTSUPP; 567 #endif 568 else 569 return -EINVAL; 570 } 571 572 /* 573 * Fault in a lazily-faulted vmalloc area before it can be used by 574 * __sanitizer_cov_trace_pc(), to avoid recursion issues if any code on the 575 * vmalloc fault handling path is instrumented. 576 */ 577 static void kcov_fault_in_area(struct kcov *kcov) 578 __must_hold(&kcov->lock) 579 { 580 unsigned long stride = PAGE_SIZE / sizeof(unsigned long); 581 unsigned long *area = kcov->area; 582 unsigned long offset; 583 584 for (offset = 0; offset < kcov->size; offset += stride) 585 READ_ONCE(area[offset]); 586 } 587 588 static inline bool kcov_check_handle(u64 handle, bool common_valid, 589 bool uncommon_valid, bool zero_valid) 590 { 591 if (handle & ~(KCOV_SUBSYSTEM_MASK | KCOV_INSTANCE_MASK)) 592 return false; 593 switch (handle & KCOV_SUBSYSTEM_MASK) { 594 case KCOV_SUBSYSTEM_COMMON: 595 return (handle & KCOV_INSTANCE_MASK) ? 596 common_valid : zero_valid; 597 case KCOV_SUBSYSTEM_USB: 598 return uncommon_valid; 599 default: 600 return false; 601 } 602 return false; 603 } 604 605 static int kcov_ioctl_locked(struct kcov *kcov, unsigned int cmd, 606 unsigned long arg) 607 __must_hold(&kcov->lock) 608 { 609 struct task_struct *t; 610 unsigned long flags, unused; 611 int mode, i; 612 struct kcov_remote_arg *remote_arg; 613 struct kcov_remote *remote; 614 615 switch (cmd) { 616 case KCOV_ENABLE: 617 /* 618 * Enable coverage for the current task. 619 * At this point user must have been enabled trace mode, 620 * and mmapped the file. Coverage collection is disabled only 621 * at task exit or voluntary by KCOV_DISABLE. After that it can 622 * be enabled for another task. 623 */ 624 if (kcov->mode != KCOV_MODE_INIT || !kcov->area) 625 return -EINVAL; 626 t = current; 627 if (kcov->t != NULL || t->kcov != NULL) 628 return -EBUSY; 629 mode = kcov_get_mode(arg); 630 if (mode < 0) 631 return mode; 632 kcov_fault_in_area(kcov); 633 kcov->mode = mode; 634 kcov_start(t, kcov, kcov->size, kcov->area, kcov->mode, 635 kcov->sequence); 636 kcov->t = t; 637 /* Put either in kcov_task_exit() or in KCOV_DISABLE. */ 638 kcov_get(kcov); 639 return 0; 640 case KCOV_DISABLE: 641 /* Disable coverage for the current task. */ 642 unused = arg; 643 t = current; 644 if (unused != 0 || (kcov != t->kcov && kcov != t->kcov_remote)) 645 return -EINVAL; 646 if (WARN_ON(kcov->t != t)) 647 return -EINVAL; 648 kcov_disable(t, kcov); 649 kcov_put(kcov); 650 return 0; 651 case KCOV_REMOTE_ENABLE: 652 if (kcov->mode != KCOV_MODE_INIT || !kcov->area) 653 return -EINVAL; 654 t = current; 655 if (kcov->t != NULL || t->kcov_remote != NULL) 656 return -EBUSY; 657 remote_arg = (struct kcov_remote_arg *)arg; 658 mode = kcov_get_mode(remote_arg->trace_mode); 659 if (mode < 0) 660 return mode; 661 if ((unsigned long)remote_arg->area_size > 662 LONG_MAX / sizeof(unsigned long)) 663 return -EINVAL; 664 kcov->mode = mode; 665 t->kcov_remote = kcov; 666 kcov->t = t; 667 kcov->remote = true; 668 kcov->remote_size = remote_arg->area_size; 669 spin_lock_irqsave(&kcov_remote_lock, flags); 670 for (i = 0; i < remote_arg->num_handles; i++) { 671 if (!kcov_check_handle(remote_arg->handles[i], 672 false, true, false)) { 673 spin_unlock_irqrestore(&kcov_remote_lock, 674 flags); 675 kcov_disable(t, kcov); 676 return -EINVAL; 677 } 678 remote = kcov_remote_add(kcov, remote_arg->handles[i]); 679 if (IS_ERR(remote)) { 680 spin_unlock_irqrestore(&kcov_remote_lock, 681 flags); 682 kcov_disable(t, kcov); 683 return PTR_ERR(remote); 684 } 685 } 686 if (remote_arg->common_handle) { 687 if (!kcov_check_handle(remote_arg->common_handle, 688 true, false, false)) { 689 spin_unlock_irqrestore(&kcov_remote_lock, 690 flags); 691 kcov_disable(t, kcov); 692 return -EINVAL; 693 } 694 remote = kcov_remote_add(kcov, 695 remote_arg->common_handle); 696 if (IS_ERR(remote)) { 697 spin_unlock_irqrestore(&kcov_remote_lock, 698 flags); 699 kcov_disable(t, kcov); 700 return PTR_ERR(remote); 701 } 702 t->kcov_handle = remote_arg->common_handle; 703 } 704 spin_unlock_irqrestore(&kcov_remote_lock, flags); 705 /* Put either in kcov_task_exit() or in KCOV_DISABLE. */ 706 kcov_get(kcov); 707 return 0; 708 default: 709 return -ENOTTY; 710 } 711 } 712 713 static long kcov_ioctl(struct file *filep, unsigned int cmd, unsigned long arg) 714 { 715 struct kcov *kcov; 716 int res; 717 struct kcov_remote_arg *remote_arg = NULL; 718 unsigned int remote_num_handles; 719 unsigned long remote_arg_size; 720 unsigned long size, flags; 721 void *area; 722 723 kcov = filep->private_data; 724 switch (cmd) { 725 case KCOV_INIT_TRACE: 726 /* 727 * Enable kcov in trace mode and setup buffer size. 728 * Must happen before anything else. 729 * 730 * First check the size argument - it must be at least 2 731 * to hold the current position and one PC. 732 */ 733 size = arg; 734 if (size < 2 || size > INT_MAX / sizeof(unsigned long)) 735 return -EINVAL; 736 area = vmalloc_user(size * sizeof(unsigned long)); 737 if (area == NULL) 738 return -ENOMEM; 739 spin_lock_irqsave(&kcov->lock, flags); 740 if (kcov->mode != KCOV_MODE_DISABLED) { 741 spin_unlock_irqrestore(&kcov->lock, flags); 742 vfree(area); 743 return -EBUSY; 744 } 745 kcov->area = area; 746 kcov->size = size; 747 kcov->mode = KCOV_MODE_INIT; 748 spin_unlock_irqrestore(&kcov->lock, flags); 749 return 0; 750 case KCOV_REMOTE_ENABLE: 751 if (get_user(remote_num_handles, (unsigned __user *)(arg + 752 offsetof(struct kcov_remote_arg, num_handles)))) 753 return -EFAULT; 754 if (remote_num_handles > KCOV_REMOTE_MAX_HANDLES) 755 return -EINVAL; 756 remote_arg_size = struct_size(remote_arg, handles, 757 remote_num_handles); 758 remote_arg = memdup_user((void __user *)arg, remote_arg_size); 759 if (IS_ERR(remote_arg)) 760 return PTR_ERR(remote_arg); 761 if (remote_arg->num_handles != remote_num_handles) { 762 kfree(remote_arg); 763 return -EINVAL; 764 } 765 arg = (unsigned long)remote_arg; 766 fallthrough; 767 default: 768 /* 769 * All other commands can be normally executed under a spin lock, so we 770 * obtain and release it here in order to simplify kcov_ioctl_locked(). 771 */ 772 spin_lock_irqsave(&kcov->lock, flags); 773 res = kcov_ioctl_locked(kcov, cmd, arg); 774 spin_unlock_irqrestore(&kcov->lock, flags); 775 kfree(remote_arg); 776 return res; 777 } 778 } 779 780 static const struct file_operations kcov_fops = { 781 .open = kcov_open, 782 .unlocked_ioctl = kcov_ioctl, 783 .compat_ioctl = kcov_ioctl, 784 .mmap = kcov_mmap, 785 .release = kcov_close, 786 }; 787 788 /* 789 * kcov_remote_start() and kcov_remote_stop() can be used to annotate a section 790 * of code in a kernel background thread or in a softirq to allow kcov to be 791 * used to collect coverage from that part of code. 792 * 793 * The handle argument of kcov_remote_start() identifies a code section that is 794 * used for coverage collection. A userspace process passes this handle to 795 * KCOV_REMOTE_ENABLE ioctl to make the used kcov device start collecting 796 * coverage for the code section identified by this handle. 797 * 798 * The usage of these annotations in the kernel code is different depending on 799 * the type of the kernel thread whose code is being annotated. 800 * 801 * For global kernel threads that are spawned in a limited number of instances 802 * (e.g. one USB hub_event() worker thread is spawned per USB HCD) and for 803 * softirqs, each instance must be assigned a unique 4-byte instance id. The 804 * instance id is then combined with a 1-byte subsystem id to get a handle via 805 * kcov_remote_handle(subsystem_id, instance_id). 806 * 807 * For local kernel threads that are spawned from system calls handler when a 808 * user interacts with some kernel interface (e.g. vhost workers), a handle is 809 * passed from a userspace process as the common_handle field of the 810 * kcov_remote_arg struct (note, that the user must generate a handle by using 811 * kcov_remote_handle() with KCOV_SUBSYSTEM_COMMON as the subsystem id and an 812 * arbitrary 4-byte non-zero number as the instance id). This common handle 813 * then gets saved into the task_struct of the process that issued the 814 * KCOV_REMOTE_ENABLE ioctl. When this process issues system calls that spawn 815 * kernel threads, the common handle must be retrieved via kcov_common_handle() 816 * and passed to the spawned threads via custom annotations. Those kernel 817 * threads must in turn be annotated with kcov_remote_start(common_handle) and 818 * kcov_remote_stop(). All of the threads that are spawned by the same process 819 * obtain the same handle, hence the name "common". 820 * 821 * See Documentation/dev-tools/kcov.rst for more details. 822 * 823 * Internally, kcov_remote_start() looks up the kcov device associated with the 824 * provided handle, allocates an area for coverage collection, and saves the 825 * pointers to kcov and area into the current task_struct to allow coverage to 826 * be collected via __sanitizer_cov_trace_pc(). 827 * In turns kcov_remote_stop() clears those pointers from task_struct to stop 828 * collecting coverage and copies all collected coverage into the kcov area. 829 */ 830 831 static inline bool kcov_mode_enabled(unsigned int mode) 832 { 833 return (mode & ~KCOV_IN_CTXSW) != KCOV_MODE_DISABLED; 834 } 835 836 static void kcov_remote_softirq_start(struct task_struct *t) 837 __must_hold(&kcov_percpu_data.lock) 838 { 839 struct kcov_percpu_data *data = this_cpu_ptr(&kcov_percpu_data); 840 unsigned int mode; 841 842 mode = READ_ONCE(t->kcov_mode); 843 barrier(); 844 if (kcov_mode_enabled(mode)) { 845 data->saved_mode = mode; 846 data->saved_size = t->kcov_size; 847 data->saved_area = t->kcov_area; 848 data->saved_sequence = t->kcov_sequence; 849 data->saved_kcov = t->kcov; 850 kcov_stop(t); 851 } 852 } 853 854 static void kcov_remote_softirq_stop(struct task_struct *t) 855 __must_hold(&kcov_percpu_data.lock) 856 { 857 struct kcov_percpu_data *data = this_cpu_ptr(&kcov_percpu_data); 858 859 if (data->saved_kcov) { 860 kcov_start(t, data->saved_kcov, data->saved_size, 861 data->saved_area, data->saved_mode, 862 data->saved_sequence); 863 data->saved_mode = 0; 864 data->saved_size = 0; 865 data->saved_area = NULL; 866 data->saved_sequence = 0; 867 data->saved_kcov = NULL; 868 } 869 } 870 871 void kcov_remote_start(u64 handle) 872 { 873 struct task_struct *t = current; 874 struct kcov_remote *remote; 875 struct kcov *kcov; 876 unsigned int mode; 877 void *area; 878 unsigned int size; 879 int sequence; 880 unsigned long flags; 881 882 if (WARN_ON(!kcov_check_handle(handle, true, true, true))) 883 return; 884 if (!in_task() && !in_softirq_really()) 885 return; 886 887 local_lock_irqsave(&kcov_percpu_data.lock, flags); 888 889 /* 890 * Check that kcov_remote_start() is not called twice in background 891 * threads nor called by user tasks (with enabled kcov). 892 */ 893 mode = READ_ONCE(t->kcov_mode); 894 if (WARN_ON(in_task() && kcov_mode_enabled(mode))) { 895 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 896 return; 897 } 898 /* 899 * Check that kcov_remote_start() is not called twice in softirqs. 900 * Note, that kcov_remote_start() can be called from a softirq that 901 * happened while collecting coverage from a background thread. 902 */ 903 if (WARN_ON(in_serving_softirq() && t->kcov_softirq)) { 904 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 905 return; 906 } 907 908 spin_lock(&kcov_remote_lock); 909 remote = kcov_remote_find(handle); 910 if (!remote) { 911 spin_unlock(&kcov_remote_lock); 912 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 913 return; 914 } 915 kcov_debug("handle = %llx, context: %s\n", handle, 916 in_task() ? "task" : "softirq"); 917 kcov = remote->kcov; 918 /* Put in kcov_remote_stop(). */ 919 kcov_get(kcov); 920 /* 921 * Read kcov fields before unlocking kcov_remote_lock to prevent races 922 * with KCOV_DISABLE and kcov_remote_reset(); cannot acquire kcov->lock 923 * here, because it might lead to deadlock given kcov_remote_lock is 924 * acquired _after_ kcov->lock elsewhere. 925 */ 926 mode = context_unsafe(kcov->mode); 927 sequence = kcov->sequence; 928 if (in_task()) { 929 size = kcov->remote_size; 930 area = kcov_remote_area_get(size); 931 } else { 932 size = CONFIG_KCOV_IRQ_AREA_SIZE; 933 area = this_cpu_ptr(&kcov_percpu_data)->irq_area; 934 } 935 spin_unlock(&kcov_remote_lock); 936 937 /* Can only happen when in_task(). */ 938 if (!area) { 939 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 940 area = vmalloc(size * sizeof(unsigned long)); 941 if (!area) { 942 kcov_put(kcov); 943 return; 944 } 945 local_lock_irqsave(&kcov_percpu_data.lock, flags); 946 } 947 948 /* Reset coverage size. */ 949 *(u64 *)area = 0; 950 951 if (in_serving_softirq()) { 952 kcov_remote_softirq_start(t); 953 t->kcov_softirq = 1; 954 } 955 kcov_start(t, kcov, size, area, mode, sequence); 956 957 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 958 959 } 960 EXPORT_SYMBOL(kcov_remote_start); 961 962 static void kcov_move_area(enum kcov_mode mode, void *dst_area, 963 unsigned int dst_area_size, void *src_area) 964 { 965 u64 word_size = sizeof(unsigned long); 966 u64 count_size, entry_size_log; 967 u64 dst_len, src_len; 968 void *dst_entries, *src_entries; 969 u64 dst_occupied, dst_free, bytes_to_move, entries_moved; 970 971 kcov_debug("%px %u <= %px %lu\n", 972 dst_area, dst_area_size, src_area, *(unsigned long *)src_area); 973 974 switch (mode) { 975 case KCOV_MODE_TRACE_PC: 976 dst_len = READ_ONCE(*(unsigned long *)dst_area); 977 src_len = *(unsigned long *)src_area; 978 count_size = sizeof(unsigned long); 979 entry_size_log = __ilog2_u64(sizeof(unsigned long)); 980 break; 981 case KCOV_MODE_TRACE_CMP: 982 dst_len = READ_ONCE(*(u64 *)dst_area); 983 src_len = *(u64 *)src_area; 984 count_size = sizeof(u64); 985 BUILD_BUG_ON(!is_power_of_2(KCOV_WORDS_PER_CMP)); 986 entry_size_log = __ilog2_u64(sizeof(u64) * KCOV_WORDS_PER_CMP); 987 break; 988 default: 989 WARN_ON(1); 990 return; 991 } 992 993 /* As arm can't divide u64 integers use log of entry size. */ 994 if (dst_len > ((dst_area_size * word_size - count_size) >> 995 entry_size_log)) 996 return; 997 dst_occupied = count_size + (dst_len << entry_size_log); 998 dst_free = dst_area_size * word_size - dst_occupied; 999 bytes_to_move = min(dst_free, src_len << entry_size_log); 1000 dst_entries = dst_area + dst_occupied; 1001 src_entries = src_area + count_size; 1002 memcpy(dst_entries, src_entries, bytes_to_move); 1003 entries_moved = bytes_to_move >> entry_size_log; 1004 1005 /* 1006 * A write memory barrier is required here, to ensure 1007 * that the writes from the memcpy() are visible before 1008 * the count is updated. Without this, it is possible for 1009 * a user to observe a new count value but stale 1010 * coverage data. 1011 */ 1012 smp_wmb(); 1013 1014 switch (mode) { 1015 case KCOV_MODE_TRACE_PC: 1016 WRITE_ONCE(*(unsigned long *)dst_area, dst_len + entries_moved); 1017 break; 1018 case KCOV_MODE_TRACE_CMP: 1019 WRITE_ONCE(*(u64 *)dst_area, dst_len + entries_moved); 1020 break; 1021 default: 1022 break; 1023 } 1024 } 1025 1026 /* See the comment before kcov_remote_start() for usage details. */ 1027 void kcov_remote_stop(void) 1028 { 1029 struct task_struct *t = current; 1030 struct kcov *kcov; 1031 unsigned int mode; 1032 void *area; 1033 unsigned int size; 1034 int sequence; 1035 unsigned long flags; 1036 1037 if (!in_task() && !in_softirq_really()) 1038 return; 1039 1040 local_lock_irqsave(&kcov_percpu_data.lock, flags); 1041 1042 mode = READ_ONCE(t->kcov_mode); 1043 barrier(); 1044 if (!kcov_mode_enabled(mode)) { 1045 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 1046 return; 1047 } 1048 /* 1049 * When in softirq, check if the corresponding kcov_remote_start() 1050 * actually found the remote handle and started collecting coverage. 1051 */ 1052 if (in_serving_softirq() && !t->kcov_softirq) { 1053 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 1054 return; 1055 } 1056 /* Make sure that kcov_softirq is only set when in softirq. */ 1057 if (WARN_ON(!in_serving_softirq() && t->kcov_softirq)) { 1058 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 1059 return; 1060 } 1061 1062 kcov = t->kcov; 1063 area = t->kcov_area; 1064 size = t->kcov_size; 1065 sequence = t->kcov_sequence; 1066 1067 kcov_stop(t); 1068 if (in_serving_softirq()) { 1069 t->kcov_softirq = 0; 1070 kcov_remote_softirq_stop(t); 1071 } 1072 1073 spin_lock(&kcov->lock); 1074 /* 1075 * KCOV_DISABLE could have been called between kcov_remote_start() 1076 * and kcov_remote_stop(), hence the sequence check. 1077 */ 1078 if (sequence == kcov->sequence && kcov->remote) 1079 kcov_move_area(kcov->mode, kcov->area, kcov->size, area); 1080 spin_unlock(&kcov->lock); 1081 1082 if (in_task()) { 1083 spin_lock(&kcov_remote_lock); 1084 kcov_remote_area_put(area, size); 1085 spin_unlock(&kcov_remote_lock); 1086 } 1087 1088 local_unlock_irqrestore(&kcov_percpu_data.lock, flags); 1089 1090 /* Get in kcov_remote_start(). */ 1091 kcov_put(kcov); 1092 } 1093 EXPORT_SYMBOL(kcov_remote_stop); 1094 1095 /* See the comment before kcov_remote_start() for usage details. */ 1096 struct kcov_common_handle_id kcov_common_handle(void) 1097 { 1098 if (!in_task()) 1099 return (struct kcov_common_handle_id){ .val = 0 }; 1100 return (struct kcov_common_handle_id){ .val = current->kcov_handle }; 1101 } 1102 EXPORT_SYMBOL(kcov_common_handle); 1103 1104 #ifdef CONFIG_KCOV_SELFTEST 1105 static void __init selftest(void) 1106 { 1107 unsigned long start; 1108 1109 pr_err("running self test\n"); 1110 /* 1111 * Test that interrupts don't produce spurious coverage. 1112 * The coverage callback filters out interrupt code, but only 1113 * after the handler updates preempt count. Some code periodically 1114 * leaks out of that section and leads to spurious coverage. 1115 * It's hard to call the actual interrupt handler directly, 1116 * so we just loop here for a bit waiting for a timer interrupt. 1117 * We set kcov_mode to enable tracing, but don't setup the area, 1118 * so any attempt to trace will crash. Note: we must not call any 1119 * potentially traced functions in this region. 1120 */ 1121 start = jiffies; 1122 WRITE_ONCE(current->kcov_mode, KCOV_MODE_TRACE_PC); 1123 while ((jiffies - start) * MSEC_PER_SEC / HZ < 300) 1124 ; 1125 WRITE_ONCE(current->kcov_mode, 0); 1126 pr_err("done running self test\n"); 1127 } 1128 #endif 1129 1130 static int __init kcov_init(void) 1131 { 1132 int cpu; 1133 1134 for_each_possible_cpu(cpu) { 1135 void *area = vmalloc_node(CONFIG_KCOV_IRQ_AREA_SIZE * 1136 sizeof(unsigned long), cpu_to_node(cpu)); 1137 if (!area) 1138 return -ENOMEM; 1139 per_cpu_ptr(&kcov_percpu_data, cpu)->irq_area = area; 1140 } 1141 1142 /* 1143 * The kcov debugfs file won't ever get removed and thus, 1144 * there is no need to protect it against removal races. The 1145 * use of debugfs_create_file_unsafe() is actually safe here. 1146 */ 1147 debugfs_create_file_unsafe("kcov", 0600, NULL, NULL, &kcov_fops); 1148 1149 #ifdef CONFIG_KCOV_SELFTEST 1150 selftest(); 1151 #endif 1152 1153 return 0; 1154 } 1155 1156 device_initcall(kcov_init); 1157