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