xref: /linux/kernel/kcov.c (revision 9a79524d1420e6b79a6868208c264f4518d1318e)
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