xref: /linux-6.15/drivers/android/binder_alloc.c (revision ea9cdbf0)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /* binder_alloc.c
3  *
4  * Android IPC Subsystem
5  *
6  * Copyright (C) 2007-2017 Google, Inc.
7  */
8 
9 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
10 
11 #include <linux/list.h>
12 #include <linux/sched/mm.h>
13 #include <linux/module.h>
14 #include <linux/rtmutex.h>
15 #include <linux/rbtree.h>
16 #include <linux/seq_file.h>
17 #include <linux/vmalloc.h>
18 #include <linux/slab.h>
19 #include <linux/sched.h>
20 #include <linux/list_lru.h>
21 #include <linux/ratelimit.h>
22 #include <asm/cacheflush.h>
23 #include <linux/uaccess.h>
24 #include <linux/highmem.h>
25 #include <linux/sizes.h>
26 #include "binder_alloc.h"
27 #include "binder_trace.h"
28 
29 struct list_lru binder_freelist;
30 
31 static DEFINE_MUTEX(binder_alloc_mmap_lock);
32 
33 enum {
34 	BINDER_DEBUG_USER_ERROR             = 1U << 0,
35 	BINDER_DEBUG_OPEN_CLOSE             = 1U << 1,
36 	BINDER_DEBUG_BUFFER_ALLOC           = 1U << 2,
37 	BINDER_DEBUG_BUFFER_ALLOC_ASYNC     = 1U << 3,
38 };
39 static uint32_t binder_alloc_debug_mask = BINDER_DEBUG_USER_ERROR;
40 
41 module_param_named(debug_mask, binder_alloc_debug_mask,
42 		   uint, 0644);
43 
44 #define binder_alloc_debug(mask, x...) \
45 	do { \
46 		if (binder_alloc_debug_mask & mask) \
47 			pr_info_ratelimited(x); \
48 	} while (0)
49 
50 static struct binder_buffer *binder_buffer_next(struct binder_buffer *buffer)
51 {
52 	return list_entry(buffer->entry.next, struct binder_buffer, entry);
53 }
54 
55 static struct binder_buffer *binder_buffer_prev(struct binder_buffer *buffer)
56 {
57 	return list_entry(buffer->entry.prev, struct binder_buffer, entry);
58 }
59 
60 static size_t binder_alloc_buffer_size(struct binder_alloc *alloc,
61 				       struct binder_buffer *buffer)
62 {
63 	if (list_is_last(&buffer->entry, &alloc->buffers))
64 		return alloc->buffer + alloc->buffer_size - buffer->user_data;
65 	return binder_buffer_next(buffer)->user_data - buffer->user_data;
66 }
67 
68 static void binder_insert_free_buffer(struct binder_alloc *alloc,
69 				      struct binder_buffer *new_buffer)
70 {
71 	struct rb_node **p = &alloc->free_buffers.rb_node;
72 	struct rb_node *parent = NULL;
73 	struct binder_buffer *buffer;
74 	size_t buffer_size;
75 	size_t new_buffer_size;
76 
77 	BUG_ON(!new_buffer->free);
78 
79 	new_buffer_size = binder_alloc_buffer_size(alloc, new_buffer);
80 
81 	binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
82 		     "%d: add free buffer, size %zd, at %pK\n",
83 		      alloc->pid, new_buffer_size, new_buffer);
84 
85 	while (*p) {
86 		parent = *p;
87 		buffer = rb_entry(parent, struct binder_buffer, rb_node);
88 		BUG_ON(!buffer->free);
89 
90 		buffer_size = binder_alloc_buffer_size(alloc, buffer);
91 
92 		if (new_buffer_size < buffer_size)
93 			p = &parent->rb_left;
94 		else
95 			p = &parent->rb_right;
96 	}
97 	rb_link_node(&new_buffer->rb_node, parent, p);
98 	rb_insert_color(&new_buffer->rb_node, &alloc->free_buffers);
99 }
100 
101 static void binder_insert_allocated_buffer_locked(
102 		struct binder_alloc *alloc, struct binder_buffer *new_buffer)
103 {
104 	struct rb_node **p = &alloc->allocated_buffers.rb_node;
105 	struct rb_node *parent = NULL;
106 	struct binder_buffer *buffer;
107 
108 	BUG_ON(new_buffer->free);
109 
110 	while (*p) {
111 		parent = *p;
112 		buffer = rb_entry(parent, struct binder_buffer, rb_node);
113 		BUG_ON(buffer->free);
114 
115 		if (new_buffer->user_data < buffer->user_data)
116 			p = &parent->rb_left;
117 		else if (new_buffer->user_data > buffer->user_data)
118 			p = &parent->rb_right;
119 		else
120 			BUG();
121 	}
122 	rb_link_node(&new_buffer->rb_node, parent, p);
123 	rb_insert_color(&new_buffer->rb_node, &alloc->allocated_buffers);
124 }
125 
126 static struct binder_buffer *binder_alloc_prepare_to_free_locked(
127 		struct binder_alloc *alloc,
128 		unsigned long user_ptr)
129 {
130 	struct rb_node *n = alloc->allocated_buffers.rb_node;
131 	struct binder_buffer *buffer;
132 
133 	while (n) {
134 		buffer = rb_entry(n, struct binder_buffer, rb_node);
135 		BUG_ON(buffer->free);
136 
137 		if (user_ptr < buffer->user_data) {
138 			n = n->rb_left;
139 		} else if (user_ptr > buffer->user_data) {
140 			n = n->rb_right;
141 		} else {
142 			/*
143 			 * Guard against user threads attempting to
144 			 * free the buffer when in use by kernel or
145 			 * after it's already been freed.
146 			 */
147 			if (!buffer->allow_user_free)
148 				return ERR_PTR(-EPERM);
149 			buffer->allow_user_free = 0;
150 			return buffer;
151 		}
152 	}
153 	return NULL;
154 }
155 
156 /**
157  * binder_alloc_prepare_to_free() - get buffer given user ptr
158  * @alloc:	binder_alloc for this proc
159  * @user_ptr:	User pointer to buffer data
160  *
161  * Validate userspace pointer to buffer data and return buffer corresponding to
162  * that user pointer. Search the rb tree for buffer that matches user data
163  * pointer.
164  *
165  * Return:	Pointer to buffer or NULL
166  */
167 struct binder_buffer *binder_alloc_prepare_to_free(struct binder_alloc *alloc,
168 						   unsigned long user_ptr)
169 {
170 	struct binder_buffer *buffer;
171 
172 	mutex_lock(&alloc->mutex);
173 	buffer = binder_alloc_prepare_to_free_locked(alloc, user_ptr);
174 	mutex_unlock(&alloc->mutex);
175 	return buffer;
176 }
177 
178 static inline void
179 binder_set_installed_page(struct binder_lru_page *lru_page,
180 			  struct page *page)
181 {
182 	/* Pairs with acquire in binder_get_installed_page() */
183 	smp_store_release(&lru_page->page_ptr, page);
184 }
185 
186 static inline struct page *
187 binder_get_installed_page(struct binder_lru_page *lru_page)
188 {
189 	/* Pairs with release in binder_set_installed_page() */
190 	return smp_load_acquire(&lru_page->page_ptr);
191 }
192 
193 static void binder_lru_freelist_add(struct binder_alloc *alloc,
194 				    unsigned long start, unsigned long end)
195 {
196 	struct binder_lru_page *page;
197 	unsigned long page_addr;
198 
199 	trace_binder_update_page_range(alloc, false, start, end);
200 
201 	for (page_addr = start; page_addr < end; page_addr += PAGE_SIZE) {
202 		size_t index;
203 		int ret;
204 
205 		index = (page_addr - alloc->buffer) / PAGE_SIZE;
206 		page = &alloc->pages[index];
207 
208 		if (!binder_get_installed_page(page))
209 			continue;
210 
211 		trace_binder_free_lru_start(alloc, index);
212 
213 		ret = list_lru_add(&binder_freelist, &page->lru);
214 		WARN_ON(!ret);
215 
216 		trace_binder_free_lru_end(alloc, index);
217 	}
218 }
219 
220 static int binder_install_single_page(struct binder_alloc *alloc,
221 				      struct binder_lru_page *lru_page,
222 				      unsigned long addr)
223 {
224 	struct page *page;
225 	int ret = 0;
226 
227 	if (!mmget_not_zero(alloc->mm))
228 		return -ESRCH;
229 
230 	/*
231 	 * Protected with mmap_sem in write mode as multiple tasks
232 	 * might race to install the same page.
233 	 */
234 	mmap_write_lock(alloc->mm);
235 	if (binder_get_installed_page(lru_page))
236 		goto out;
237 
238 	if (!alloc->vma) {
239 		pr_err("%d: %s failed, no vma\n", alloc->pid, __func__);
240 		ret = -ESRCH;
241 		goto out;
242 	}
243 
244 	page = alloc_page(GFP_KERNEL | __GFP_HIGHMEM | __GFP_ZERO);
245 	if (!page) {
246 		pr_err("%d: failed to allocate page\n", alloc->pid);
247 		ret = -ENOMEM;
248 		goto out;
249 	}
250 
251 	ret = vm_insert_page(alloc->vma, addr, page);
252 	if (ret) {
253 		pr_err("%d: %s failed to insert page at %lx with %d\n",
254 		       alloc->pid, __func__, addr, ret);
255 		__free_page(page);
256 		ret = -ENOMEM;
257 		goto out;
258 	}
259 
260 	/* Mark page installation complete and safe to use */
261 	binder_set_installed_page(lru_page, page);
262 out:
263 	mmap_write_unlock(alloc->mm);
264 	mmput_async(alloc->mm);
265 	return ret;
266 }
267 
268 static int binder_install_buffer_pages(struct binder_alloc *alloc,
269 				       struct binder_buffer *buffer,
270 				       size_t size)
271 {
272 	struct binder_lru_page *page;
273 	unsigned long start, final;
274 	unsigned long page_addr;
275 
276 	start = buffer->user_data & PAGE_MASK;
277 	final = PAGE_ALIGN(buffer->user_data + size);
278 
279 	for (page_addr = start; page_addr < final; page_addr += PAGE_SIZE) {
280 		unsigned long index;
281 		int ret;
282 
283 		index = (page_addr - alloc->buffer) / PAGE_SIZE;
284 		page = &alloc->pages[index];
285 
286 		if (binder_get_installed_page(page))
287 			continue;
288 
289 		trace_binder_alloc_page_start(alloc, index);
290 
291 		ret = binder_install_single_page(alloc, page, page_addr);
292 		if (ret)
293 			return ret;
294 
295 		trace_binder_alloc_page_end(alloc, index);
296 	}
297 
298 	return 0;
299 }
300 
301 /* The range of pages should exclude those shared with other buffers */
302 static void binder_lru_freelist_del(struct binder_alloc *alloc,
303 				    unsigned long start, unsigned long end)
304 {
305 	struct binder_lru_page *page;
306 	unsigned long page_addr;
307 
308 	binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
309 			   "%d: pages %lx-%lx\n",
310 			   alloc->pid, start, end);
311 
312 	trace_binder_update_page_range(alloc, true, start, end);
313 
314 	for (page_addr = start; page_addr < end; page_addr += PAGE_SIZE) {
315 		unsigned long index;
316 		bool on_lru;
317 
318 		index = (page_addr - alloc->buffer) / PAGE_SIZE;
319 		page = &alloc->pages[index];
320 
321 		if (page->page_ptr) {
322 			trace_binder_alloc_lru_start(alloc, index);
323 
324 			on_lru = list_lru_del(&binder_freelist, &page->lru);
325 			WARN_ON(!on_lru);
326 
327 			trace_binder_alloc_lru_end(alloc, index);
328 			continue;
329 		}
330 
331 		if (index + 1 > alloc->pages_high)
332 			alloc->pages_high = index + 1;
333 	}
334 }
335 
336 static inline void binder_alloc_set_vma(struct binder_alloc *alloc,
337 		struct vm_area_struct *vma)
338 {
339 	/* pairs with smp_load_acquire in binder_alloc_get_vma() */
340 	smp_store_release(&alloc->vma, vma);
341 }
342 
343 static inline struct vm_area_struct *binder_alloc_get_vma(
344 		struct binder_alloc *alloc)
345 {
346 	/* pairs with smp_store_release in binder_alloc_set_vma() */
347 	return smp_load_acquire(&alloc->vma);
348 }
349 
350 static void debug_no_space_locked(struct binder_alloc *alloc)
351 {
352 	size_t largest_alloc_size = 0;
353 	struct binder_buffer *buffer;
354 	size_t allocated_buffers = 0;
355 	size_t largest_free_size = 0;
356 	size_t total_alloc_size = 0;
357 	size_t total_free_size = 0;
358 	size_t free_buffers = 0;
359 	size_t buffer_size;
360 	struct rb_node *n;
361 
362 	for (n = rb_first(&alloc->allocated_buffers); n; n = rb_next(n)) {
363 		buffer = rb_entry(n, struct binder_buffer, rb_node);
364 		buffer_size = binder_alloc_buffer_size(alloc, buffer);
365 		allocated_buffers++;
366 		total_alloc_size += buffer_size;
367 		if (buffer_size > largest_alloc_size)
368 			largest_alloc_size = buffer_size;
369 	}
370 
371 	for (n = rb_first(&alloc->free_buffers); n; n = rb_next(n)) {
372 		buffer = rb_entry(n, struct binder_buffer, rb_node);
373 		buffer_size = binder_alloc_buffer_size(alloc, buffer);
374 		free_buffers++;
375 		total_free_size += buffer_size;
376 		if (buffer_size > largest_free_size)
377 			largest_free_size = buffer_size;
378 	}
379 
380 	binder_alloc_debug(BINDER_DEBUG_USER_ERROR,
381 			   "allocated: %zd (num: %zd largest: %zd), free: %zd (num: %zd largest: %zd)\n",
382 			   total_alloc_size, allocated_buffers,
383 			   largest_alloc_size, total_free_size,
384 			   free_buffers, largest_free_size);
385 }
386 
387 static bool debug_low_async_space_locked(struct binder_alloc *alloc)
388 {
389 	/*
390 	 * Find the amount and size of buffers allocated by the current caller;
391 	 * The idea is that once we cross the threshold, whoever is responsible
392 	 * for the low async space is likely to try to send another async txn,
393 	 * and at some point we'll catch them in the act. This is more efficient
394 	 * than keeping a map per pid.
395 	 */
396 	struct binder_buffer *buffer;
397 	size_t total_alloc_size = 0;
398 	int pid = current->tgid;
399 	size_t num_buffers = 0;
400 	struct rb_node *n;
401 
402 	/*
403 	 * Only start detecting spammers once we have less than 20% of async
404 	 * space left (which is less than 10% of total buffer size).
405 	 */
406 	if (alloc->free_async_space >= alloc->buffer_size / 10) {
407 		alloc->oneway_spam_detected = false;
408 		return false;
409 	}
410 
411 	for (n = rb_first(&alloc->allocated_buffers); n != NULL;
412 		 n = rb_next(n)) {
413 		buffer = rb_entry(n, struct binder_buffer, rb_node);
414 		if (buffer->pid != pid)
415 			continue;
416 		if (!buffer->async_transaction)
417 			continue;
418 		total_alloc_size += binder_alloc_buffer_size(alloc, buffer);
419 		num_buffers++;
420 	}
421 
422 	/*
423 	 * Warn if this pid has more than 50 transactions, or more than 50% of
424 	 * async space (which is 25% of total buffer size). Oneway spam is only
425 	 * detected when the threshold is exceeded.
426 	 */
427 	if (num_buffers > 50 || total_alloc_size > alloc->buffer_size / 4) {
428 		binder_alloc_debug(BINDER_DEBUG_USER_ERROR,
429 			     "%d: pid %d spamming oneway? %zd buffers allocated for a total size of %zd\n",
430 			      alloc->pid, pid, num_buffers, total_alloc_size);
431 		if (!alloc->oneway_spam_detected) {
432 			alloc->oneway_spam_detected = true;
433 			return true;
434 		}
435 	}
436 	return false;
437 }
438 
439 /* Callers preallocate @new_buffer, it is freed by this function if unused */
440 static struct binder_buffer *binder_alloc_new_buf_locked(
441 				struct binder_alloc *alloc,
442 				struct binder_buffer *new_buffer,
443 				size_t size,
444 				int is_async)
445 {
446 	struct rb_node *n = alloc->free_buffers.rb_node;
447 	struct rb_node *best_fit = NULL;
448 	struct binder_buffer *buffer;
449 	unsigned long has_page_addr;
450 	unsigned long end_page_addr;
451 	size_t buffer_size;
452 
453 	if (is_async && alloc->free_async_space < size) {
454 		binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
455 			     "%d: binder_alloc_buf size %zd failed, no async space left\n",
456 			      alloc->pid, size);
457 		buffer = ERR_PTR(-ENOSPC);
458 		goto out;
459 	}
460 
461 	while (n) {
462 		buffer = rb_entry(n, struct binder_buffer, rb_node);
463 		BUG_ON(!buffer->free);
464 		buffer_size = binder_alloc_buffer_size(alloc, buffer);
465 
466 		if (size < buffer_size) {
467 			best_fit = n;
468 			n = n->rb_left;
469 		} else if (size > buffer_size) {
470 			n = n->rb_right;
471 		} else {
472 			best_fit = n;
473 			break;
474 		}
475 	}
476 
477 	if (unlikely(!best_fit)) {
478 		binder_alloc_debug(BINDER_DEBUG_USER_ERROR,
479 				   "%d: binder_alloc_buf size %zd failed, no address space\n",
480 				   alloc->pid, size);
481 		debug_no_space_locked(alloc);
482 		buffer = ERR_PTR(-ENOSPC);
483 		goto out;
484 	}
485 
486 	if (buffer_size != size) {
487 		/* Found an oversized buffer and needs to be split */
488 		buffer = rb_entry(best_fit, struct binder_buffer, rb_node);
489 		buffer_size = binder_alloc_buffer_size(alloc, buffer);
490 
491 		WARN_ON(n || buffer_size == size);
492 		new_buffer->user_data = buffer->user_data + size;
493 		list_add(&new_buffer->entry, &buffer->entry);
494 		new_buffer->free = 1;
495 		binder_insert_free_buffer(alloc, new_buffer);
496 		new_buffer = NULL;
497 	}
498 
499 	binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
500 		     "%d: binder_alloc_buf size %zd got buffer %pK size %zd\n",
501 		      alloc->pid, size, buffer, buffer_size);
502 
503 	has_page_addr = (buffer->user_data + buffer_size) & PAGE_MASK;
504 	end_page_addr = PAGE_ALIGN(buffer->user_data + size);
505 	if (end_page_addr > has_page_addr)
506 		end_page_addr = has_page_addr;
507 	binder_lru_freelist_del(alloc, PAGE_ALIGN(buffer->user_data),
508 				end_page_addr);
509 
510 	rb_erase(&buffer->rb_node, &alloc->free_buffers);
511 	buffer->free = 0;
512 	buffer->allow_user_free = 0;
513 	binder_insert_allocated_buffer_locked(alloc, buffer);
514 	buffer->async_transaction = is_async;
515 	buffer->oneway_spam_suspect = false;
516 	if (is_async) {
517 		alloc->free_async_space -= size;
518 		binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC_ASYNC,
519 			     "%d: binder_alloc_buf size %zd async free %zd\n",
520 			      alloc->pid, size, alloc->free_async_space);
521 		if (debug_low_async_space_locked(alloc))
522 			buffer->oneway_spam_suspect = true;
523 	}
524 
525 out:
526 	/* Discard possibly unused new_buffer */
527 	kfree(new_buffer);
528 	return buffer;
529 }
530 
531 /* Calculate the sanitized total size, returns 0 for invalid request */
532 static inline size_t sanitized_size(size_t data_size,
533 				    size_t offsets_size,
534 				    size_t extra_buffers_size)
535 {
536 	size_t total, tmp;
537 
538 	/* Align to pointer size and check for overflows */
539 	tmp = ALIGN(data_size, sizeof(void *)) +
540 		ALIGN(offsets_size, sizeof(void *));
541 	if (tmp < data_size || tmp < offsets_size)
542 		return 0;
543 	total = tmp + ALIGN(extra_buffers_size, sizeof(void *));
544 	if (total < tmp || total < extra_buffers_size)
545 		return 0;
546 
547 	/* Pad 0-sized buffers so they get a unique address */
548 	total = max(total, sizeof(void *));
549 
550 	return total;
551 }
552 
553 /**
554  * binder_alloc_new_buf() - Allocate a new binder buffer
555  * @alloc:              binder_alloc for this proc
556  * @data_size:          size of user data buffer
557  * @offsets_size:       user specified buffer offset
558  * @extra_buffers_size: size of extra space for meta-data (eg, security context)
559  * @is_async:           buffer for async transaction
560  *
561  * Allocate a new buffer given the requested sizes. Returns
562  * the kernel version of the buffer pointer. The size allocated
563  * is the sum of the three given sizes (each rounded up to
564  * pointer-sized boundary)
565  *
566  * Return:	The allocated buffer or %ERR_PTR(-errno) if error
567  */
568 struct binder_buffer *binder_alloc_new_buf(struct binder_alloc *alloc,
569 					   size_t data_size,
570 					   size_t offsets_size,
571 					   size_t extra_buffers_size,
572 					   int is_async)
573 {
574 	struct binder_buffer *buffer, *next;
575 	size_t size;
576 	int ret;
577 
578 	/* Check binder_alloc is fully initialized */
579 	if (!binder_alloc_get_vma(alloc)) {
580 		binder_alloc_debug(BINDER_DEBUG_USER_ERROR,
581 				   "%d: binder_alloc_buf, no vma\n",
582 				   alloc->pid);
583 		return ERR_PTR(-ESRCH);
584 	}
585 
586 	size = sanitized_size(data_size, offsets_size, extra_buffers_size);
587 	if (unlikely(!size)) {
588 		binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
589 				   "%d: got transaction with invalid size %zd-%zd-%zd\n",
590 				   alloc->pid, data_size, offsets_size,
591 				   extra_buffers_size);
592 		return ERR_PTR(-EINVAL);
593 	}
594 
595 	/* Preallocate the next buffer */
596 	next = kzalloc(sizeof(*next), GFP_KERNEL);
597 	if (!next)
598 		return ERR_PTR(-ENOMEM);
599 
600 	mutex_lock(&alloc->mutex);
601 	buffer = binder_alloc_new_buf_locked(alloc, next, size, is_async);
602 	if (IS_ERR(buffer)) {
603 		mutex_unlock(&alloc->mutex);
604 		goto out;
605 	}
606 
607 	buffer->data_size = data_size;
608 	buffer->offsets_size = offsets_size;
609 	buffer->extra_buffers_size = extra_buffers_size;
610 	buffer->pid = current->tgid;
611 	mutex_unlock(&alloc->mutex);
612 
613 	ret = binder_install_buffer_pages(alloc, buffer, size);
614 	if (ret) {
615 		binder_alloc_free_buf(alloc, buffer);
616 		buffer = ERR_PTR(ret);
617 	}
618 out:
619 	return buffer;
620 }
621 
622 static unsigned long buffer_start_page(struct binder_buffer *buffer)
623 {
624 	return buffer->user_data & PAGE_MASK;
625 }
626 
627 static unsigned long prev_buffer_end_page(struct binder_buffer *buffer)
628 {
629 	return (buffer->user_data - 1) & PAGE_MASK;
630 }
631 
632 static void binder_delete_free_buffer(struct binder_alloc *alloc,
633 				      struct binder_buffer *buffer)
634 {
635 	struct binder_buffer *prev, *next = NULL;
636 	bool to_free = true;
637 
638 	BUG_ON(alloc->buffers.next == &buffer->entry);
639 	prev = binder_buffer_prev(buffer);
640 	BUG_ON(!prev->free);
641 	if (prev_buffer_end_page(prev) == buffer_start_page(buffer)) {
642 		to_free = false;
643 		binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
644 				   "%d: merge free, buffer %lx share page with %lx\n",
645 				   alloc->pid, buffer->user_data,
646 				   prev->user_data);
647 	}
648 
649 	if (!list_is_last(&buffer->entry, &alloc->buffers)) {
650 		next = binder_buffer_next(buffer);
651 		if (buffer_start_page(next) == buffer_start_page(buffer)) {
652 			to_free = false;
653 			binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
654 					   "%d: merge free, buffer %lx share page with %lx\n",
655 					   alloc->pid,
656 					   buffer->user_data,
657 					   next->user_data);
658 		}
659 	}
660 
661 	if (PAGE_ALIGNED(buffer->user_data)) {
662 		binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
663 				   "%d: merge free, buffer start %lx is page aligned\n",
664 				   alloc->pid, buffer->user_data);
665 		to_free = false;
666 	}
667 
668 	if (to_free) {
669 		binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
670 				   "%d: merge free, buffer %lx do not share page with %lx or %lx\n",
671 				   alloc->pid, buffer->user_data,
672 				   prev->user_data,
673 				   next ? next->user_data : 0);
674 		binder_lru_freelist_add(alloc, buffer_start_page(buffer),
675 					buffer_start_page(buffer) + PAGE_SIZE);
676 	}
677 	list_del(&buffer->entry);
678 	kfree(buffer);
679 }
680 
681 static void binder_free_buf_locked(struct binder_alloc *alloc,
682 				   struct binder_buffer *buffer)
683 {
684 	size_t size, buffer_size;
685 
686 	buffer_size = binder_alloc_buffer_size(alloc, buffer);
687 
688 	size = ALIGN(buffer->data_size, sizeof(void *)) +
689 		ALIGN(buffer->offsets_size, sizeof(void *)) +
690 		ALIGN(buffer->extra_buffers_size, sizeof(void *));
691 
692 	binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
693 		     "%d: binder_free_buf %pK size %zd buffer_size %zd\n",
694 		      alloc->pid, buffer, size, buffer_size);
695 
696 	BUG_ON(buffer->free);
697 	BUG_ON(size > buffer_size);
698 	BUG_ON(buffer->transaction != NULL);
699 	BUG_ON(buffer->user_data < alloc->buffer);
700 	BUG_ON(buffer->user_data > alloc->buffer + alloc->buffer_size);
701 
702 	if (buffer->async_transaction) {
703 		alloc->free_async_space += buffer_size;
704 		binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC_ASYNC,
705 			     "%d: binder_free_buf size %zd async free %zd\n",
706 			      alloc->pid, size, alloc->free_async_space);
707 	}
708 
709 	binder_lru_freelist_add(alloc, PAGE_ALIGN(buffer->user_data),
710 				(buffer->user_data + buffer_size) & PAGE_MASK);
711 
712 	rb_erase(&buffer->rb_node, &alloc->allocated_buffers);
713 	buffer->free = 1;
714 	if (!list_is_last(&buffer->entry, &alloc->buffers)) {
715 		struct binder_buffer *next = binder_buffer_next(buffer);
716 
717 		if (next->free) {
718 			rb_erase(&next->rb_node, &alloc->free_buffers);
719 			binder_delete_free_buffer(alloc, next);
720 		}
721 	}
722 	if (alloc->buffers.next != &buffer->entry) {
723 		struct binder_buffer *prev = binder_buffer_prev(buffer);
724 
725 		if (prev->free) {
726 			binder_delete_free_buffer(alloc, buffer);
727 			rb_erase(&prev->rb_node, &alloc->free_buffers);
728 			buffer = prev;
729 		}
730 	}
731 	binder_insert_free_buffer(alloc, buffer);
732 }
733 
734 /**
735  * binder_alloc_get_page() - get kernel pointer for given buffer offset
736  * @alloc: binder_alloc for this proc
737  * @buffer: binder buffer to be accessed
738  * @buffer_offset: offset into @buffer data
739  * @pgoffp: address to copy final page offset to
740  *
741  * Lookup the struct page corresponding to the address
742  * at @buffer_offset into @buffer->user_data. If @pgoffp is not
743  * NULL, the byte-offset into the page is written there.
744  *
745  * The caller is responsible to ensure that the offset points
746  * to a valid address within the @buffer and that @buffer is
747  * not freeable by the user. Since it can't be freed, we are
748  * guaranteed that the corresponding elements of @alloc->pages[]
749  * cannot change.
750  *
751  * Return: struct page
752  */
753 static struct page *binder_alloc_get_page(struct binder_alloc *alloc,
754 					  struct binder_buffer *buffer,
755 					  binder_size_t buffer_offset,
756 					  pgoff_t *pgoffp)
757 {
758 	binder_size_t buffer_space_offset = buffer_offset +
759 		(buffer->user_data - alloc->buffer);
760 	pgoff_t pgoff = buffer_space_offset & ~PAGE_MASK;
761 	size_t index = buffer_space_offset >> PAGE_SHIFT;
762 	struct binder_lru_page *lru_page;
763 
764 	lru_page = &alloc->pages[index];
765 	*pgoffp = pgoff;
766 	return lru_page->page_ptr;
767 }
768 
769 /**
770  * binder_alloc_clear_buf() - zero out buffer
771  * @alloc: binder_alloc for this proc
772  * @buffer: binder buffer to be cleared
773  *
774  * memset the given buffer to 0
775  */
776 static void binder_alloc_clear_buf(struct binder_alloc *alloc,
777 				   struct binder_buffer *buffer)
778 {
779 	size_t bytes = binder_alloc_buffer_size(alloc, buffer);
780 	binder_size_t buffer_offset = 0;
781 
782 	while (bytes) {
783 		unsigned long size;
784 		struct page *page;
785 		pgoff_t pgoff;
786 
787 		page = binder_alloc_get_page(alloc, buffer,
788 					     buffer_offset, &pgoff);
789 		size = min_t(size_t, bytes, PAGE_SIZE - pgoff);
790 		memset_page(page, pgoff, 0, size);
791 		bytes -= size;
792 		buffer_offset += size;
793 	}
794 }
795 
796 /**
797  * binder_alloc_free_buf() - free a binder buffer
798  * @alloc:	binder_alloc for this proc
799  * @buffer:	kernel pointer to buffer
800  *
801  * Free the buffer allocated via binder_alloc_new_buf()
802  */
803 void binder_alloc_free_buf(struct binder_alloc *alloc,
804 			    struct binder_buffer *buffer)
805 {
806 	/*
807 	 * We could eliminate the call to binder_alloc_clear_buf()
808 	 * from binder_alloc_deferred_release() by moving this to
809 	 * binder_free_buf_locked(). However, that could
810 	 * increase contention for the alloc mutex if clear_on_free
811 	 * is used frequently for large buffers. The mutex is not
812 	 * needed for correctness here.
813 	 */
814 	if (buffer->clear_on_free) {
815 		binder_alloc_clear_buf(alloc, buffer);
816 		buffer->clear_on_free = false;
817 	}
818 	mutex_lock(&alloc->mutex);
819 	binder_free_buf_locked(alloc, buffer);
820 	mutex_unlock(&alloc->mutex);
821 }
822 
823 /**
824  * binder_alloc_mmap_handler() - map virtual address space for proc
825  * @alloc:	alloc structure for this proc
826  * @vma:	vma passed to mmap()
827  *
828  * Called by binder_mmap() to initialize the space specified in
829  * vma for allocating binder buffers
830  *
831  * Return:
832  *      0 = success
833  *      -EBUSY = address space already mapped
834  *      -ENOMEM = failed to map memory to given address space
835  */
836 int binder_alloc_mmap_handler(struct binder_alloc *alloc,
837 			      struct vm_area_struct *vma)
838 {
839 	struct binder_buffer *buffer;
840 	const char *failure_string;
841 	int ret, i;
842 
843 	if (unlikely(vma->vm_mm != alloc->mm)) {
844 		ret = -EINVAL;
845 		failure_string = "invalid vma->vm_mm";
846 		goto err_invalid_mm;
847 	}
848 
849 	mutex_lock(&binder_alloc_mmap_lock);
850 	if (alloc->buffer_size) {
851 		ret = -EBUSY;
852 		failure_string = "already mapped";
853 		goto err_already_mapped;
854 	}
855 	alloc->buffer_size = min_t(unsigned long, vma->vm_end - vma->vm_start,
856 				   SZ_4M);
857 	mutex_unlock(&binder_alloc_mmap_lock);
858 
859 	alloc->buffer = vma->vm_start;
860 
861 	alloc->pages = kcalloc(alloc->buffer_size / PAGE_SIZE,
862 			       sizeof(alloc->pages[0]),
863 			       GFP_KERNEL);
864 	if (alloc->pages == NULL) {
865 		ret = -ENOMEM;
866 		failure_string = "alloc page array";
867 		goto err_alloc_pages_failed;
868 	}
869 
870 	for (i = 0; i < alloc->buffer_size / PAGE_SIZE; i++) {
871 		alloc->pages[i].alloc = alloc;
872 		INIT_LIST_HEAD(&alloc->pages[i].lru);
873 	}
874 
875 	buffer = kzalloc(sizeof(*buffer), GFP_KERNEL);
876 	if (!buffer) {
877 		ret = -ENOMEM;
878 		failure_string = "alloc buffer struct";
879 		goto err_alloc_buf_struct_failed;
880 	}
881 
882 	buffer->user_data = alloc->buffer;
883 	list_add(&buffer->entry, &alloc->buffers);
884 	buffer->free = 1;
885 	binder_insert_free_buffer(alloc, buffer);
886 	alloc->free_async_space = alloc->buffer_size / 2;
887 
888 	/* Signal binder_alloc is fully initialized */
889 	binder_alloc_set_vma(alloc, vma);
890 
891 	return 0;
892 
893 err_alloc_buf_struct_failed:
894 	kfree(alloc->pages);
895 	alloc->pages = NULL;
896 err_alloc_pages_failed:
897 	alloc->buffer = 0;
898 	mutex_lock(&binder_alloc_mmap_lock);
899 	alloc->buffer_size = 0;
900 err_already_mapped:
901 	mutex_unlock(&binder_alloc_mmap_lock);
902 err_invalid_mm:
903 	binder_alloc_debug(BINDER_DEBUG_USER_ERROR,
904 			   "%s: %d %lx-%lx %s failed %d\n", __func__,
905 			   alloc->pid, vma->vm_start, vma->vm_end,
906 			   failure_string, ret);
907 	return ret;
908 }
909 
910 
911 void binder_alloc_deferred_release(struct binder_alloc *alloc)
912 {
913 	struct rb_node *n;
914 	int buffers, page_count;
915 	struct binder_buffer *buffer;
916 
917 	buffers = 0;
918 	mutex_lock(&alloc->mutex);
919 	BUG_ON(alloc->vma);
920 
921 	while ((n = rb_first(&alloc->allocated_buffers))) {
922 		buffer = rb_entry(n, struct binder_buffer, rb_node);
923 
924 		/* Transaction should already have been freed */
925 		BUG_ON(buffer->transaction);
926 
927 		if (buffer->clear_on_free) {
928 			binder_alloc_clear_buf(alloc, buffer);
929 			buffer->clear_on_free = false;
930 		}
931 		binder_free_buf_locked(alloc, buffer);
932 		buffers++;
933 	}
934 
935 	while (!list_empty(&alloc->buffers)) {
936 		buffer = list_first_entry(&alloc->buffers,
937 					  struct binder_buffer, entry);
938 		WARN_ON(!buffer->free);
939 
940 		list_del(&buffer->entry);
941 		WARN_ON_ONCE(!list_empty(&alloc->buffers));
942 		kfree(buffer);
943 	}
944 
945 	page_count = 0;
946 	if (alloc->pages) {
947 		int i;
948 
949 		for (i = 0; i < alloc->buffer_size / PAGE_SIZE; i++) {
950 			unsigned long page_addr;
951 			bool on_lru;
952 
953 			if (!alloc->pages[i].page_ptr)
954 				continue;
955 
956 			on_lru = list_lru_del(&binder_freelist,
957 					      &alloc->pages[i].lru);
958 			page_addr = alloc->buffer + i * PAGE_SIZE;
959 			binder_alloc_debug(BINDER_DEBUG_BUFFER_ALLOC,
960 				     "%s: %d: page %d at %lx %s\n",
961 				     __func__, alloc->pid, i, page_addr,
962 				     on_lru ? "on lru" : "active");
963 			__free_page(alloc->pages[i].page_ptr);
964 			page_count++;
965 		}
966 		kfree(alloc->pages);
967 	}
968 	mutex_unlock(&alloc->mutex);
969 	if (alloc->mm)
970 		mmdrop(alloc->mm);
971 
972 	binder_alloc_debug(BINDER_DEBUG_OPEN_CLOSE,
973 		     "%s: %d buffers %d, pages %d\n",
974 		     __func__, alloc->pid, buffers, page_count);
975 }
976 
977 static void print_binder_buffer(struct seq_file *m, const char *prefix,
978 				struct binder_buffer *buffer)
979 {
980 	seq_printf(m, "%s %d: %lx size %zd:%zd:%zd %s\n",
981 		   prefix, buffer->debug_id, buffer->user_data,
982 		   buffer->data_size, buffer->offsets_size,
983 		   buffer->extra_buffers_size,
984 		   buffer->transaction ? "active" : "delivered");
985 }
986 
987 /**
988  * binder_alloc_print_allocated() - print buffer info
989  * @m:     seq_file for output via seq_printf()
990  * @alloc: binder_alloc for this proc
991  *
992  * Prints information about every buffer associated with
993  * the binder_alloc state to the given seq_file
994  */
995 void binder_alloc_print_allocated(struct seq_file *m,
996 				  struct binder_alloc *alloc)
997 {
998 	struct rb_node *n;
999 
1000 	mutex_lock(&alloc->mutex);
1001 	for (n = rb_first(&alloc->allocated_buffers); n != NULL; n = rb_next(n))
1002 		print_binder_buffer(m, "  buffer",
1003 				    rb_entry(n, struct binder_buffer, rb_node));
1004 	mutex_unlock(&alloc->mutex);
1005 }
1006 
1007 /**
1008  * binder_alloc_print_pages() - print page usage
1009  * @m:     seq_file for output via seq_printf()
1010  * @alloc: binder_alloc for this proc
1011  */
1012 void binder_alloc_print_pages(struct seq_file *m,
1013 			      struct binder_alloc *alloc)
1014 {
1015 	struct binder_lru_page *page;
1016 	int i;
1017 	int active = 0;
1018 	int lru = 0;
1019 	int free = 0;
1020 
1021 	mutex_lock(&alloc->mutex);
1022 	/*
1023 	 * Make sure the binder_alloc is fully initialized, otherwise we might
1024 	 * read inconsistent state.
1025 	 */
1026 	if (binder_alloc_get_vma(alloc) != NULL) {
1027 		for (i = 0; i < alloc->buffer_size / PAGE_SIZE; i++) {
1028 			page = &alloc->pages[i];
1029 			if (!page->page_ptr)
1030 				free++;
1031 			else if (list_empty(&page->lru))
1032 				active++;
1033 			else
1034 				lru++;
1035 		}
1036 	}
1037 	mutex_unlock(&alloc->mutex);
1038 	seq_printf(m, "  pages: %d:%d:%d\n", active, lru, free);
1039 	seq_printf(m, "  pages high watermark: %zu\n", alloc->pages_high);
1040 }
1041 
1042 /**
1043  * binder_alloc_get_allocated_count() - return count of buffers
1044  * @alloc: binder_alloc for this proc
1045  *
1046  * Return: count of allocated buffers
1047  */
1048 int binder_alloc_get_allocated_count(struct binder_alloc *alloc)
1049 {
1050 	struct rb_node *n;
1051 	int count = 0;
1052 
1053 	mutex_lock(&alloc->mutex);
1054 	for (n = rb_first(&alloc->allocated_buffers); n != NULL; n = rb_next(n))
1055 		count++;
1056 	mutex_unlock(&alloc->mutex);
1057 	return count;
1058 }
1059 
1060 
1061 /**
1062  * binder_alloc_vma_close() - invalidate address space
1063  * @alloc: binder_alloc for this proc
1064  *
1065  * Called from binder_vma_close() when releasing address space.
1066  * Clears alloc->vma to prevent new incoming transactions from
1067  * allocating more buffers.
1068  */
1069 void binder_alloc_vma_close(struct binder_alloc *alloc)
1070 {
1071 	binder_alloc_set_vma(alloc, NULL);
1072 }
1073 
1074 /**
1075  * binder_alloc_free_page() - shrinker callback to free pages
1076  * @item:   item to free
1077  * @lock:   lock protecting the item
1078  * @cb_arg: callback argument
1079  *
1080  * Called from list_lru_walk() in binder_shrink_scan() to free
1081  * up pages when the system is under memory pressure.
1082  */
1083 enum lru_status binder_alloc_free_page(struct list_head *item,
1084 				       struct list_lru_one *lru,
1085 				       spinlock_t *lock,
1086 				       void *cb_arg)
1087 	__must_hold(lock)
1088 {
1089 	struct mm_struct *mm = NULL;
1090 	struct binder_lru_page *page = container_of(item,
1091 						    struct binder_lru_page,
1092 						    lru);
1093 	struct binder_alloc *alloc;
1094 	unsigned long page_addr;
1095 	size_t index;
1096 	struct vm_area_struct *vma;
1097 
1098 	alloc = page->alloc;
1099 	if (!mutex_trylock(&alloc->mutex))
1100 		goto err_get_alloc_mutex_failed;
1101 
1102 	if (!page->page_ptr)
1103 		goto err_page_already_freed;
1104 
1105 	index = page - alloc->pages;
1106 	page_addr = alloc->buffer + index * PAGE_SIZE;
1107 
1108 	mm = alloc->mm;
1109 	if (!mmget_not_zero(mm))
1110 		goto err_mmget;
1111 	if (!mmap_read_trylock(mm))
1112 		goto err_mmap_read_lock_failed;
1113 	vma = vma_lookup(mm, page_addr);
1114 	if (vma && vma != binder_alloc_get_vma(alloc))
1115 		goto err_invalid_vma;
1116 
1117 	list_lru_isolate(lru, item);
1118 	spin_unlock(lock);
1119 
1120 	if (vma) {
1121 		trace_binder_unmap_user_start(alloc, index);
1122 
1123 		zap_page_range_single(vma, page_addr, PAGE_SIZE, NULL);
1124 
1125 		trace_binder_unmap_user_end(alloc, index);
1126 	}
1127 	mmap_read_unlock(mm);
1128 	mmput_async(mm);
1129 
1130 	trace_binder_unmap_kernel_start(alloc, index);
1131 
1132 	__free_page(page->page_ptr);
1133 	page->page_ptr = NULL;
1134 
1135 	trace_binder_unmap_kernel_end(alloc, index);
1136 
1137 	spin_lock(lock);
1138 	mutex_unlock(&alloc->mutex);
1139 	return LRU_REMOVED_RETRY;
1140 
1141 err_invalid_vma:
1142 	mmap_read_unlock(mm);
1143 err_mmap_read_lock_failed:
1144 	mmput_async(mm);
1145 err_mmget:
1146 err_page_already_freed:
1147 	mutex_unlock(&alloc->mutex);
1148 err_get_alloc_mutex_failed:
1149 	return LRU_SKIP;
1150 }
1151 
1152 static unsigned long
1153 binder_shrink_count(struct shrinker *shrink, struct shrink_control *sc)
1154 {
1155 	return list_lru_count(&binder_freelist);
1156 }
1157 
1158 static unsigned long
1159 binder_shrink_scan(struct shrinker *shrink, struct shrink_control *sc)
1160 {
1161 	return list_lru_walk(&binder_freelist, binder_alloc_free_page,
1162 			    NULL, sc->nr_to_scan);
1163 }
1164 
1165 static struct shrinker *binder_shrinker;
1166 
1167 /**
1168  * binder_alloc_init() - called by binder_open() for per-proc initialization
1169  * @alloc: binder_alloc for this proc
1170  *
1171  * Called from binder_open() to initialize binder_alloc fields for
1172  * new binder proc
1173  */
1174 void binder_alloc_init(struct binder_alloc *alloc)
1175 {
1176 	alloc->pid = current->group_leader->pid;
1177 	alloc->mm = current->mm;
1178 	mmgrab(alloc->mm);
1179 	mutex_init(&alloc->mutex);
1180 	INIT_LIST_HEAD(&alloc->buffers);
1181 }
1182 
1183 int binder_alloc_shrinker_init(void)
1184 {
1185 	int ret;
1186 
1187 	ret = list_lru_init(&binder_freelist);
1188 	if (ret)
1189 		return ret;
1190 
1191 	binder_shrinker = shrinker_alloc(0, "android-binder");
1192 	if (!binder_shrinker) {
1193 		list_lru_destroy(&binder_freelist);
1194 		return -ENOMEM;
1195 	}
1196 
1197 	binder_shrinker->count_objects = binder_shrink_count;
1198 	binder_shrinker->scan_objects = binder_shrink_scan;
1199 
1200 	shrinker_register(binder_shrinker);
1201 
1202 	return 0;
1203 }
1204 
1205 void binder_alloc_shrinker_exit(void)
1206 {
1207 	shrinker_free(binder_shrinker);
1208 	list_lru_destroy(&binder_freelist);
1209 }
1210 
1211 /**
1212  * check_buffer() - verify that buffer/offset is safe to access
1213  * @alloc: binder_alloc for this proc
1214  * @buffer: binder buffer to be accessed
1215  * @offset: offset into @buffer data
1216  * @bytes: bytes to access from offset
1217  *
1218  * Check that the @offset/@bytes are within the size of the given
1219  * @buffer and that the buffer is currently active and not freeable.
1220  * Offsets must also be multiples of sizeof(u32). The kernel is
1221  * allowed to touch the buffer in two cases:
1222  *
1223  * 1) when the buffer is being created:
1224  *     (buffer->free == 0 && buffer->allow_user_free == 0)
1225  * 2) when the buffer is being torn down:
1226  *     (buffer->free == 0 && buffer->transaction == NULL).
1227  *
1228  * Return: true if the buffer is safe to access
1229  */
1230 static inline bool check_buffer(struct binder_alloc *alloc,
1231 				struct binder_buffer *buffer,
1232 				binder_size_t offset, size_t bytes)
1233 {
1234 	size_t buffer_size = binder_alloc_buffer_size(alloc, buffer);
1235 
1236 	return buffer_size >= bytes &&
1237 		offset <= buffer_size - bytes &&
1238 		IS_ALIGNED(offset, sizeof(u32)) &&
1239 		!buffer->free &&
1240 		(!buffer->allow_user_free || !buffer->transaction);
1241 }
1242 
1243 /**
1244  * binder_alloc_copy_user_to_buffer() - copy src user to tgt user
1245  * @alloc: binder_alloc for this proc
1246  * @buffer: binder buffer to be accessed
1247  * @buffer_offset: offset into @buffer data
1248  * @from: userspace pointer to source buffer
1249  * @bytes: bytes to copy
1250  *
1251  * Copy bytes from source userspace to target buffer.
1252  *
1253  * Return: bytes remaining to be copied
1254  */
1255 unsigned long
1256 binder_alloc_copy_user_to_buffer(struct binder_alloc *alloc,
1257 				 struct binder_buffer *buffer,
1258 				 binder_size_t buffer_offset,
1259 				 const void __user *from,
1260 				 size_t bytes)
1261 {
1262 	if (!check_buffer(alloc, buffer, buffer_offset, bytes))
1263 		return bytes;
1264 
1265 	while (bytes) {
1266 		unsigned long size;
1267 		unsigned long ret;
1268 		struct page *page;
1269 		pgoff_t pgoff;
1270 		void *kptr;
1271 
1272 		page = binder_alloc_get_page(alloc, buffer,
1273 					     buffer_offset, &pgoff);
1274 		size = min_t(size_t, bytes, PAGE_SIZE - pgoff);
1275 		kptr = kmap_local_page(page) + pgoff;
1276 		ret = copy_from_user(kptr, from, size);
1277 		kunmap_local(kptr);
1278 		if (ret)
1279 			return bytes - size + ret;
1280 		bytes -= size;
1281 		from += size;
1282 		buffer_offset += size;
1283 	}
1284 	return 0;
1285 }
1286 
1287 static int binder_alloc_do_buffer_copy(struct binder_alloc *alloc,
1288 				       bool to_buffer,
1289 				       struct binder_buffer *buffer,
1290 				       binder_size_t buffer_offset,
1291 				       void *ptr,
1292 				       size_t bytes)
1293 {
1294 	/* All copies must be 32-bit aligned and 32-bit size */
1295 	if (!check_buffer(alloc, buffer, buffer_offset, bytes))
1296 		return -EINVAL;
1297 
1298 	while (bytes) {
1299 		unsigned long size;
1300 		struct page *page;
1301 		pgoff_t pgoff;
1302 
1303 		page = binder_alloc_get_page(alloc, buffer,
1304 					     buffer_offset, &pgoff);
1305 		size = min_t(size_t, bytes, PAGE_SIZE - pgoff);
1306 		if (to_buffer)
1307 			memcpy_to_page(page, pgoff, ptr, size);
1308 		else
1309 			memcpy_from_page(ptr, page, pgoff, size);
1310 		bytes -= size;
1311 		pgoff = 0;
1312 		ptr = ptr + size;
1313 		buffer_offset += size;
1314 	}
1315 	return 0;
1316 }
1317 
1318 int binder_alloc_copy_to_buffer(struct binder_alloc *alloc,
1319 				struct binder_buffer *buffer,
1320 				binder_size_t buffer_offset,
1321 				void *src,
1322 				size_t bytes)
1323 {
1324 	return binder_alloc_do_buffer_copy(alloc, true, buffer, buffer_offset,
1325 					   src, bytes);
1326 }
1327 
1328 int binder_alloc_copy_from_buffer(struct binder_alloc *alloc,
1329 				  void *dest,
1330 				  struct binder_buffer *buffer,
1331 				  binder_size_t buffer_offset,
1332 				  size_t bytes)
1333 {
1334 	return binder_alloc_do_buffer_copy(alloc, false, buffer, buffer_offset,
1335 					   dest, bytes);
1336 }
1337 
1338