1 // SPDX-License-Identifier: GPL-2.0-only 2 /* Copyright (c) 2024 Meta Platforms, Inc. and affiliates. */ 3 #include <linux/bpf.h> 4 #include <linux/btf.h> 5 #include <linux/cacheflush.h> 6 #include <linux/err.h> 7 #include <linux/irq_work.h> 8 #include "linux/filter.h" 9 #include <linux/llist.h> 10 #include <linux/btf_ids.h> 11 #include <linux/vmalloc.h> 12 #include <linux/pagemap.h> 13 #include <asm/tlbflush.h> 14 #include "range_tree.h" 15 16 /* 17 * bpf_arena is a sparsely populated shared memory region between bpf program and 18 * user space process. 19 * 20 * For example on x86-64 the values could be: 21 * user_vm_start 7f7d26200000 // picked by mmap() 22 * kern_vm_start ffffc90001e69000 // picked by get_vm_area() 23 * For user space all pointers within the arena are normal 8-byte addresses. 24 * In this example 7f7d26200000 is the address of the first page (pgoff=0). 25 * The bpf program will access it as: kern_vm_start + lower_32bit_of_user_ptr 26 * (u32)7f7d26200000 -> 26200000 27 * hence 28 * ffffc90001e69000 + 26200000 == ffffc90028069000 is "pgoff=0" within 4Gb 29 * kernel memory region. 30 * 31 * BPF JITs generate the following code to access arena: 32 * mov eax, eax // eax has lower 32-bit of user pointer 33 * mov word ptr [rax + r12 + off], bx 34 * where r12 == kern_vm_start and off is s16. 35 * Hence allocate 4Gb + GUARD_SZ/2 on each side. 36 * 37 * Initially kernel vm_area and user vma are not populated. 38 * User space can fault-in any address which will insert the page 39 * into kernel and user vma. 40 * bpf program can allocate a page via bpf_arena_alloc_pages() kfunc 41 * which will insert it into kernel vm_area. 42 * The later fault-in from user space will populate that page into user vma. 43 */ 44 45 /* number of bytes addressable by LDX/STX insn with 16-bit 'off' field */ 46 #define GUARD_SZ round_up(1ull << sizeof_field(struct bpf_insn, off) * 8, PAGE_SIZE << 1) 47 #define KERN_VM_SZ (SZ_4G + GUARD_SZ) 48 49 static void arena_free_pages(struct bpf_arena *arena, long uaddr, long page_cnt, bool sleepable); 50 51 struct bpf_arena { 52 struct bpf_map map; 53 u64 user_vm_start; 54 u64 user_vm_end; 55 struct vm_struct *kern_vm; 56 struct page *scratch_page; 57 struct range_tree rt; 58 /* protects rt */ 59 rqspinlock_t spinlock; 60 struct list_head vma_list; 61 /* protects vma_list */ 62 struct mutex lock; 63 u64 zap_gen; 64 struct mutex zap_mutex; 65 struct irq_work free_irq; 66 struct work_struct free_work; 67 struct llist_head free_spans; 68 }; 69 70 static void arena_free_worker(struct work_struct *work); 71 static void arena_free_irq(struct irq_work *iw); 72 73 struct arena_free_span { 74 struct llist_node node; 75 unsigned long uaddr; 76 u32 page_cnt; 77 }; 78 79 u64 bpf_arena_get_kern_vm_start(struct bpf_arena *arena) 80 { 81 return arena ? (u64) (long) arena->kern_vm->addr + GUARD_SZ / 2 : 0; 82 } 83 84 u64 bpf_arena_get_user_vm_start(struct bpf_arena *arena) 85 { 86 return arena ? arena->user_vm_start : 0; 87 } 88 89 /** 90 * bpf_arena_map_kern_vm_start - kern_vm_start lookup by struct bpf_map * 91 * @map: a BPF_MAP_TYPE_ARENA map 92 * 93 * Return @map's kern_vm_start. 94 */ 95 u64 bpf_arena_map_kern_vm_start(struct bpf_map *map) 96 { 97 return bpf_arena_get_kern_vm_start(container_of(map, struct bpf_arena, map)); 98 } 99 100 /** 101 * bpf_prog_arena - return the bpf_map of the arena referenced by @prog 102 * @prog: a loaded BPF program 103 * 104 * The verifier enforces at most one arena per program and stores it in 105 * prog->aux->arena. Return that arena's underlying bpf_map, or NULL if 106 * @prog does not reference an arena. 107 */ 108 struct bpf_map *bpf_prog_arena(struct bpf_prog *prog) 109 { 110 struct bpf_arena *arena = prog->aux->arena; 111 112 return arena ? &arena->map : NULL; 113 } 114 115 static long arena_map_peek_elem(struct bpf_map *map, void *value) 116 { 117 return -EOPNOTSUPP; 118 } 119 120 static long arena_map_push_elem(struct bpf_map *map, void *value, u64 flags) 121 { 122 return -EOPNOTSUPP; 123 } 124 125 static long arena_map_pop_elem(struct bpf_map *map, void *value) 126 { 127 return -EOPNOTSUPP; 128 } 129 130 static long arena_map_delete_elem(struct bpf_map *map, void *value) 131 { 132 return -EOPNOTSUPP; 133 } 134 135 static int arena_map_get_next_key(struct bpf_map *map, void *key, void *next_key) 136 { 137 return -EOPNOTSUPP; 138 } 139 140 static long compute_pgoff(struct bpf_arena *arena, long uaddr) 141 { 142 return (u32)(uaddr - (u32)arena->user_vm_start) >> PAGE_SHIFT; 143 } 144 145 struct apply_range_data { 146 struct page **pages; 147 int i; 148 }; 149 150 struct clear_range_data { 151 struct llist_head *free_pages; 152 struct page *scratch_page; 153 }; 154 155 static int apply_range_set_cb(pte_t *pte, unsigned long addr, void *data) 156 { 157 struct apply_range_data *d = data; 158 struct page *page; 159 160 if (!data) 161 return 0; 162 /* sanity check */ 163 if (unlikely(!pte_none(ptep_get(pte)))) 164 return -EBUSY; 165 166 page = d->pages[d->i]; 167 /* paranoia, similar to vmap_pages_pte_range() */ 168 if (WARN_ON_ONCE(!pfn_valid(page_to_pfn(page)))) 169 return -EINVAL; 170 171 set_pte_at(&init_mm, addr, pte, mk_pte(page, PAGE_KERNEL)); 172 d->i++; 173 return 0; 174 } 175 176 static void flush_vmap_cache(unsigned long start, unsigned long size) 177 { 178 flush_cache_vmap(start, start + size); 179 } 180 181 static int apply_range_clear_cb(pte_t *pte, unsigned long addr, void *data) 182 { 183 struct clear_range_data *d = data; 184 pte_t old_pte; 185 struct page *page; 186 187 /* 188 * Pairs with ptep_try_set() in the kernel-fault scratch installer. 189 * Both sides must be atomic. 190 */ 191 old_pte = ptep_get_and_clear(&init_mm, addr, pte); 192 if (pte_none(old_pte) || !pte_present(old_pte)) 193 return 0; 194 195 page = pte_page(old_pte); 196 if (WARN_ON_ONCE(!page)) 197 return -EINVAL; 198 199 /* 200 * Skip the per-arena scratch page. A kernel fault on an unallocated uaddr 201 * scratches its PTE. A later bpf_arena_free_pages() over that range walks 202 * here. Without the skip, scratch_page would be freed. 203 */ 204 if (page == d->scratch_page) 205 return 0; 206 207 __llist_add(&page->pcp_llist, d->free_pages); 208 return 0; 209 } 210 211 static int apply_range_set_scratch_cb(pte_t *pte, unsigned long addr, void *data) 212 { 213 struct page *scratch_page = data; 214 215 if (!pte_none(ptep_get(pte))) 216 return 0; 217 /* 218 * Best-effort install. ptep_try_set() returns false only if another 219 * installer (real allocation or concurrent fault) won the cmpxchg. 220 * Their PTE is already valid, so the access retry succeeds. 221 * 222 * No flush_tlb_kernel_range() needed. Stale "not mapped" entries just 223 * cause one extra re-fault through this same path. 224 */ 225 ptep_try_set(pte, mk_pte(scratch_page, PAGE_KERNEL)); 226 return 0; 227 } 228 229 static int populate_pgtable_except_pte(struct bpf_arena *arena) 230 { 231 /* Populate intermediates for the recovery range (4 GiB + upper half-guard). */ 232 return apply_to_page_range(&init_mm, bpf_arena_get_kern_vm_start(arena), 233 SZ_4G + GUARD_SZ / 2, apply_range_set_cb, NULL); 234 } 235 236 static struct bpf_map *arena_map_alloc(union bpf_attr *attr) 237 { 238 struct vm_struct *kern_vm; 239 int numa_node = bpf_map_attr_numa_node(attr); 240 struct bpf_arena *arena; 241 u64 vm_range; 242 int err = -ENOMEM; 243 244 if (!bpf_jit_supports_arena()) 245 return ERR_PTR(-EOPNOTSUPP); 246 247 if (attr->key_size || attr->value_size || attr->max_entries == 0 || 248 /* BPF_F_MMAPABLE must be set */ 249 !(attr->map_flags & BPF_F_MMAPABLE) || 250 /* No unsupported flags present */ 251 (attr->map_flags & ~(BPF_F_SEGV_ON_FAULT | BPF_F_MMAPABLE | BPF_F_NO_USER_CONV))) 252 return ERR_PTR(-EINVAL); 253 254 if (attr->map_extra & ~PAGE_MASK) 255 /* If non-zero the map_extra is an expected user VMA start address */ 256 return ERR_PTR(-EINVAL); 257 258 vm_range = (u64)attr->max_entries * PAGE_SIZE; 259 if (vm_range > SZ_4G) 260 return ERR_PTR(-E2BIG); 261 262 if ((attr->map_extra >> 32) != ((attr->map_extra + vm_range - 1) >> 32)) 263 /* user vma must not cross 32-bit boundary */ 264 return ERR_PTR(-ERANGE); 265 266 kern_vm = get_vm_area(KERN_VM_SZ, VM_SPARSE | VM_USERMAP); 267 if (!kern_vm) 268 return ERR_PTR(-ENOMEM); 269 270 arena = bpf_map_area_alloc(sizeof(*arena), numa_node); 271 if (!arena) 272 goto err; 273 274 arena->kern_vm = kern_vm; 275 arena->user_vm_start = attr->map_extra; 276 if (arena->user_vm_start) 277 arena->user_vm_end = arena->user_vm_start + vm_range; 278 279 INIT_LIST_HEAD(&arena->vma_list); 280 init_llist_head(&arena->free_spans); 281 init_irq_work(&arena->free_irq, arena_free_irq); 282 INIT_WORK(&arena->free_work, arena_free_worker); 283 bpf_map_init_from_attr(&arena->map, attr); 284 285 err = bpf_map_alloc_pages(&arena->map, NUMA_NO_NODE, 1, &arena->scratch_page); 286 if (err) 287 goto err_free_arena; 288 289 range_tree_init(&arena->rt); 290 err = range_tree_set(&arena->rt, 0, attr->max_entries); 291 if (err) 292 goto err_free_scratch; 293 mutex_init(&arena->lock); 294 mutex_init(&arena->zap_mutex); 295 raw_res_spin_lock_init(&arena->spinlock); 296 err = populate_pgtable_except_pte(arena); 297 if (err) 298 goto err_destroy_rt; 299 300 return &arena->map; 301 302 err_destroy_rt: 303 range_tree_destroy(&arena->rt); 304 err_free_scratch: 305 __free_page(arena->scratch_page); 306 err_free_arena: 307 bpf_map_area_free(arena); 308 err: 309 free_vm_area(kern_vm); 310 return ERR_PTR(err); 311 } 312 313 static int existing_page_cb(pte_t *ptep, unsigned long addr, void *data) 314 { 315 struct bpf_arena *arena = data; 316 struct page *page; 317 pte_t pte; 318 319 pte = ptep_get(ptep); 320 if (!pte_present(pte)) /* sanity check */ 321 return 0; 322 page = pte_page(pte); 323 /* 324 * Skip the scratch page. The walk is page-table-driven, not range-tree-driven, 325 * so it can visit scratch PTEs at uaddrs the BPF program never allocated. 326 */ 327 if (page == arena->scratch_page) 328 return 0; 329 /* 330 * We do not update pte here: 331 * 1. Nobody should be accessing bpf_arena's range outside of a kernel bug 332 * 2. TLB flushing is batched or deferred. Even if we clear pte, 333 * the TLB entries can stick around and continue to permit access to 334 * the freed page. So it all relies on 1. 335 */ 336 __free_page(page); 337 return 0; 338 } 339 340 static void arena_map_free(struct bpf_map *map) 341 { 342 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 343 344 /* 345 * Check that user vma-s are not around when bpf map is freed. 346 * mmap() holds vm_file which holds bpf_map refcnt. 347 * munmap() must have happened on vma followed by arena_vm_close() 348 * which would clear arena->vma_list. 349 */ 350 if (WARN_ON_ONCE(!list_empty(&arena->vma_list))) 351 return; 352 353 /* Ensure no pending deferred frees */ 354 irq_work_sync(&arena->free_irq); 355 flush_work(&arena->free_work); 356 357 /* 358 * free_vm_area() calls remove_vm_area() that calls free_unmap_vmap_area(). 359 * It unmaps everything from vmalloc area and clears pgtables. 360 * Call apply_to_existing_page_range() first to find populated ptes and 361 * free those pages. 362 */ 363 apply_to_existing_page_range(&init_mm, bpf_arena_get_kern_vm_start(arena), 364 SZ_4G + GUARD_SZ / 2, existing_page_cb, arena); 365 free_vm_area(arena->kern_vm); 366 range_tree_destroy(&arena->rt); 367 __free_page(arena->scratch_page); 368 bpf_map_area_free(arena); 369 } 370 371 static void *arena_map_lookup_elem(struct bpf_map *map, void *key) 372 { 373 return ERR_PTR(-EINVAL); 374 } 375 376 static long arena_map_update_elem(struct bpf_map *map, void *key, 377 void *value, u64 flags) 378 { 379 return -EOPNOTSUPP; 380 } 381 382 static int arena_map_check_btf(struct bpf_map *map, const struct btf *btf, 383 const struct btf_type *key_type, const struct btf_type *value_type) 384 { 385 return 0; 386 } 387 388 static u64 arena_map_mem_usage(const struct bpf_map *map) 389 { 390 return 0; 391 } 392 393 struct vma_list { 394 struct vm_area_struct *vma; 395 struct list_head head; 396 refcount_t mmap_count; 397 u64 zap_gen; 398 }; 399 400 static int remember_vma(struct bpf_arena *arena, struct vm_area_struct *vma) 401 { 402 struct vma_list *vml; 403 404 vml = kmalloc_obj(*vml); 405 if (!vml) 406 return -ENOMEM; 407 refcount_set(&vml->mmap_count, 1); 408 vma->vm_private_data = vml; 409 vml->vma = vma; 410 vml->zap_gen = 0; 411 list_add(&vml->head, &arena->vma_list); 412 return 0; 413 } 414 415 static void arena_vm_open(struct vm_area_struct *vma) 416 { 417 struct vma_list *vml = vma->vm_private_data; 418 419 refcount_inc(&vml->mmap_count); 420 } 421 422 static int arena_vm_may_split(struct vm_area_struct *vma, unsigned long addr) 423 { 424 return -EINVAL; 425 } 426 427 static int arena_vm_mremap(struct vm_area_struct *vma) 428 { 429 return -EINVAL; 430 } 431 432 static void arena_vm_close(struct vm_area_struct *vma) 433 { 434 struct bpf_map *map = vma->vm_file->private_data; 435 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 436 struct vma_list *vml = vma->vm_private_data; 437 438 if (!refcount_dec_and_test(&vml->mmap_count)) 439 return; 440 guard(mutex)(&arena->lock); 441 /* update link list under lock */ 442 list_del(&vml->head); 443 vma->vm_private_data = NULL; 444 kfree(vml); 445 } 446 447 static vm_fault_t arena_vm_fault(struct vm_fault *vmf) 448 { 449 struct bpf_map *map = vmf->vma->vm_file->private_data; 450 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 451 struct mem_cgroup *new_memcg, *old_memcg; 452 struct page *page; 453 long kbase, kaddr; 454 unsigned long flags; 455 int ret; 456 457 kbase = bpf_arena_get_kern_vm_start(arena); 458 kaddr = kbase + (u32)(vmf->address); 459 460 if (raw_res_spin_lock_irqsave(&arena->spinlock, flags)) 461 /* Make a reasonable effort to address impossible case */ 462 return VM_FAULT_RETRY; 463 464 page = vmalloc_to_page((void *)kaddr); 465 if (page) { 466 if (page == arena->scratch_page) 467 /* BPF triggered scratch here; don't lazy-alloc over it */ 468 goto out_sigsegv; 469 /* already have a page vmap-ed */ 470 goto out; 471 } 472 473 bpf_map_memcg_enter(&arena->map, &old_memcg, &new_memcg); 474 475 if (arena->map.map_flags & BPF_F_SEGV_ON_FAULT) 476 /* User space requested to segfault when page is not allocated by bpf prog */ 477 goto out_sigsegv_memcg; 478 479 ret = range_tree_clear(&arena->rt, vmf->pgoff, 1); 480 if (ret) 481 goto out_sigsegv_memcg; 482 483 struct apply_range_data data = { .pages = &page, .i = 0 }; 484 /* Account into memcg of the process that created bpf_arena */ 485 ret = bpf_map_alloc_pages(map, NUMA_NO_NODE, 1, &page); 486 if (ret) { 487 range_tree_set(&arena->rt, vmf->pgoff, 1); 488 goto out_sigsegv_memcg; 489 } 490 491 ret = apply_to_page_range(&init_mm, kaddr, PAGE_SIZE, apply_range_set_cb, &data); 492 if (ret) { 493 range_tree_set(&arena->rt, vmf->pgoff, 1); 494 free_pages_nolock(page, 0); 495 goto out_sigsegv_memcg; 496 } 497 flush_vmap_cache(kaddr, PAGE_SIZE); 498 bpf_map_memcg_exit(old_memcg, new_memcg); 499 out: 500 page_ref_add(page, 1); 501 raw_res_spin_unlock_irqrestore(&arena->spinlock, flags); 502 vmf->page = page; 503 return 0; 504 out_sigsegv_memcg: 505 bpf_map_memcg_exit(old_memcg, new_memcg); 506 out_sigsegv: 507 raw_res_spin_unlock_irqrestore(&arena->spinlock, flags); 508 return VM_FAULT_SIGSEGV; 509 } 510 511 static const struct vm_operations_struct arena_vm_ops = { 512 .open = arena_vm_open, 513 .may_split = arena_vm_may_split, 514 .mremap = arena_vm_mremap, 515 .close = arena_vm_close, 516 .fault = arena_vm_fault, 517 }; 518 519 static unsigned long arena_get_unmapped_area(struct file *filp, unsigned long addr, 520 unsigned long len, unsigned long pgoff, 521 unsigned long flags) 522 { 523 struct bpf_map *map = filp->private_data; 524 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 525 long ret; 526 527 if (pgoff) 528 return -EINVAL; 529 if (len > SZ_4G) 530 return -E2BIG; 531 532 /* if user_vm_start was specified at arena creation time */ 533 if (arena->user_vm_start) { 534 if (len > arena->user_vm_end - arena->user_vm_start) 535 return -E2BIG; 536 if (len != arena->user_vm_end - arena->user_vm_start) 537 return -EINVAL; 538 if (addr != arena->user_vm_start) 539 return -EINVAL; 540 } 541 542 ret = mm_get_unmapped_area(filp, addr, len * 2, 0, flags); 543 if (IS_ERR_VALUE(ret)) 544 return ret; 545 if ((ret >> 32) == ((ret + len - 1) >> 32)) 546 return ret; 547 if (WARN_ON_ONCE(arena->user_vm_start)) 548 /* checks at map creation time should prevent this */ 549 return -EFAULT; 550 return round_up(ret, SZ_4G); 551 } 552 553 static int arena_map_mmap(struct bpf_map *map, struct vm_area_struct *vma) 554 { 555 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 556 557 guard(mutex)(&arena->lock); 558 if (arena->user_vm_start && arena->user_vm_start != vma->vm_start) 559 /* 560 * If map_extra was not specified at arena creation time then 561 * 1st user process can do mmap(NULL, ...) to pick user_vm_start 562 * 2nd user process must pass the same addr to mmap(addr, MAP_FIXED..); 563 * or 564 * specify addr in map_extra and 565 * use the same addr later with mmap(addr, MAP_FIXED..); 566 */ 567 return -EBUSY; 568 569 if (arena->user_vm_end && arena->user_vm_end != vma->vm_end) 570 /* all user processes must have the same size of mmap-ed region */ 571 return -EBUSY; 572 573 /* Earlier checks should prevent this */ 574 if (WARN_ON_ONCE(vma->vm_end - vma->vm_start > SZ_4G || vma->vm_pgoff)) 575 return -EFAULT; 576 577 if (remember_vma(arena, vma)) 578 return -ENOMEM; 579 580 arena->user_vm_start = vma->vm_start; 581 arena->user_vm_end = vma->vm_end; 582 /* 583 * bpf_map_mmap() checks that it's being mmaped as VM_SHARED and 584 * clears VM_MAYEXEC. Set VM_DONTEXPAND to avoid potential change 585 * of user_vm_start. Set VM_DONTCOPY to prevent arena VMA from 586 * being copied into the child process on fork. 587 */ 588 vm_flags_set(vma, VM_DONTEXPAND | VM_DONTCOPY); 589 vma->vm_ops = &arena_vm_ops; 590 return 0; 591 } 592 593 static int arena_map_direct_value_addr(const struct bpf_map *map, u64 *imm, u32 off) 594 { 595 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 596 597 if ((u64)off >= arena->user_vm_end - arena->user_vm_start) 598 return -ERANGE; 599 *imm = (unsigned long)arena->user_vm_start; 600 return 0; 601 } 602 603 BTF_ID_LIST_SINGLE(bpf_arena_map_btf_ids, struct, bpf_arena) 604 const struct bpf_map_ops arena_map_ops = { 605 .map_meta_equal = bpf_map_meta_equal, 606 .map_alloc = arena_map_alloc, 607 .map_free = arena_map_free, 608 .map_direct_value_addr = arena_map_direct_value_addr, 609 .map_mmap = arena_map_mmap, 610 .map_get_unmapped_area = arena_get_unmapped_area, 611 .map_get_next_key = arena_map_get_next_key, 612 .map_push_elem = arena_map_push_elem, 613 .map_peek_elem = arena_map_peek_elem, 614 .map_pop_elem = arena_map_pop_elem, 615 .map_lookup_elem = arena_map_lookup_elem, 616 .map_update_elem = arena_map_update_elem, 617 .map_delete_elem = arena_map_delete_elem, 618 .map_check_btf = arena_map_check_btf, 619 .map_mem_usage = arena_map_mem_usage, 620 .map_btf_id = &bpf_arena_map_btf_ids[0], 621 }; 622 623 static u64 clear_lo32(u64 val) 624 { 625 return val & ~(u64)~0U; 626 } 627 628 /* 629 * Allocate pages and vmap them into kernel vmalloc area. 630 * Later the pages will be mmaped into user space vma. 631 */ 632 static long arena_alloc_pages(struct bpf_arena *arena, long uaddr, long page_cnt, int node_id, 633 bool sleepable) 634 { 635 /* user_vm_end/start are fixed before bpf prog runs */ 636 long page_cnt_max = (arena->user_vm_end - arena->user_vm_start) >> PAGE_SHIFT; 637 u64 kern_vm_start = bpf_arena_get_kern_vm_start(arena); 638 struct mem_cgroup *new_memcg, *old_memcg; 639 struct apply_range_data data; 640 struct page **pages = NULL; 641 long remaining, mapped = 0; 642 long alloc_pages; 643 unsigned long flags; 644 long pgoff = 0; 645 u32 uaddr32; 646 int ret, i; 647 648 if (node_id != NUMA_NO_NODE && 649 ((unsigned int)node_id >= nr_node_ids || !node_online(node_id))) 650 return 0; 651 652 if (page_cnt > page_cnt_max) 653 return 0; 654 655 if (uaddr) { 656 if (uaddr & ~PAGE_MASK) 657 return 0; 658 pgoff = compute_pgoff(arena, uaddr); 659 if (pgoff > page_cnt_max - page_cnt) 660 /* requested address will be outside of user VMA */ 661 return 0; 662 } 663 664 bpf_map_memcg_enter(&arena->map, &old_memcg, &new_memcg); 665 /* Cap allocation size to KMALLOC_MAX_CACHE_SIZE so kmalloc_nolock() can succeed. */ 666 alloc_pages = min(page_cnt, KMALLOC_MAX_CACHE_SIZE / sizeof(struct page *)); 667 pages = kmalloc_nolock(alloc_pages * sizeof(struct page *), __GFP_ACCOUNT, NUMA_NO_NODE); 668 if (!pages) { 669 bpf_map_memcg_exit(old_memcg, new_memcg); 670 return 0; 671 } 672 data.pages = pages; 673 674 if (raw_res_spin_lock_irqsave(&arena->spinlock, flags)) 675 goto out_free_pages; 676 677 if (uaddr) { 678 ret = is_range_tree_set(&arena->rt, pgoff, page_cnt); 679 if (ret) 680 goto out_unlock_free_pages; 681 ret = range_tree_clear(&arena->rt, pgoff, page_cnt); 682 } else { 683 ret = pgoff = range_tree_find(&arena->rt, page_cnt); 684 if (pgoff >= 0) 685 ret = range_tree_clear(&arena->rt, pgoff, page_cnt); 686 } 687 if (ret) 688 goto out_unlock_free_pages; 689 690 remaining = page_cnt; 691 uaddr32 = (u32)(arena->user_vm_start + pgoff * PAGE_SIZE); 692 693 while (remaining) { 694 long this_batch = min(remaining, alloc_pages); 695 696 /* zeroing is needed, since alloc_pages_bulk() only fills in non-zero entries */ 697 memset(pages, 0, this_batch * sizeof(struct page *)); 698 699 ret = bpf_map_alloc_pages(&arena->map, node_id, this_batch, pages); 700 if (ret) 701 goto out; 702 703 /* 704 * Earlier checks made sure that uaddr32 + page_cnt * PAGE_SIZE - 1 705 * will not overflow 32-bit. Lower 32-bit need to represent 706 * contiguous user address range. 707 * Map these pages at kern_vm_start base. 708 * kern_vm_start + uaddr32 + page_cnt * PAGE_SIZE - 1 can overflow 709 * lower 32-bit and it's ok. 710 */ 711 data.i = 0; 712 ret = apply_to_page_range(&init_mm, 713 kern_vm_start + uaddr32 + (mapped << PAGE_SHIFT), 714 this_batch << PAGE_SHIFT, apply_range_set_cb, &data); 715 if (ret) { 716 /* data.i pages were mapped, account them and free the remaining */ 717 mapped += data.i; 718 for (i = data.i; i < this_batch; i++) 719 free_pages_nolock(pages[i], 0); 720 goto out; 721 } 722 723 mapped += this_batch; 724 remaining -= this_batch; 725 } 726 flush_vmap_cache(kern_vm_start + uaddr32, mapped << PAGE_SHIFT); 727 raw_res_spin_unlock_irqrestore(&arena->spinlock, flags); 728 kfree_nolock(pages); 729 bpf_map_memcg_exit(old_memcg, new_memcg); 730 return clear_lo32(arena->user_vm_start) + uaddr32; 731 out: 732 range_tree_set(&arena->rt, pgoff + mapped, page_cnt - mapped); 733 raw_res_spin_unlock_irqrestore(&arena->spinlock, flags); 734 if (mapped) { 735 flush_vmap_cache(kern_vm_start + uaddr32, mapped << PAGE_SHIFT); 736 arena_free_pages(arena, uaddr32, mapped, sleepable); 737 } 738 goto out_free_pages; 739 out_unlock_free_pages: 740 raw_res_spin_unlock_irqrestore(&arena->spinlock, flags); 741 out_free_pages: 742 kfree_nolock(pages); 743 bpf_map_memcg_exit(old_memcg, new_memcg); 744 return 0; 745 } 746 747 /* 748 * If page is present in vmalloc area, unmap it from vmalloc area, 749 * unmap it from all user space vma-s, 750 * and free it. 751 */ 752 static void zap_pages(struct bpf_arena *arena, long uaddr, long page_cnt) 753 { 754 unsigned long size = (unsigned long)page_cnt << PAGE_SHIFT; 755 struct vm_area_struct *vma; 756 struct mm_struct *mm; 757 struct vma_list *vml; 758 unsigned long vm_start; 759 u64 my_gen; 760 761 /* 762 * Taking mmap_read_lock() under arena->lock would deadlock against 763 * arena_vm_close(), which runs with mmap_write_lock held and then 764 * acquires arena->lock. Drop arena->lock for mmap_read_lock(). 765 * 766 * Use per-call my_gen, recorded in vml->zap_gen, to remember which 767 * vmls this invocation has already processed across the lock drop. 768 * Hold zap_mutex around the whole walk so concurrent zap_pages() 769 * callers cannot overwrite each other's marks on shared vmls -- 770 * otherwise call B's mark would make call A skip a vml that A has 771 * not yet zapped for A's uaddr range. 772 */ 773 mutex_lock(&arena->zap_mutex); 774 mutex_lock(&arena->lock); 775 my_gen = ++arena->zap_gen; 776 for (;;) { 777 mm = NULL; 778 list_for_each_entry(vml, &arena->vma_list, head) { 779 if (vml->zap_gen >= my_gen) 780 continue; 781 vml->zap_gen = my_gen; 782 if (!mmget_not_zero(vml->vma->vm_mm)) 783 continue; 784 mm = vml->vma->vm_mm; 785 vm_start = vml->vma->vm_start; 786 break; 787 } 788 if (!mm) 789 break; 790 mutex_unlock(&arena->lock); 791 792 mmap_read_lock(mm); 793 /* 794 * Re-resolve: while we waited the VMA could have been unmapped 795 * and a different mapping installed at the same address. 796 */ 797 vma = find_vma(mm, vm_start); 798 if (vma && vma->vm_start == vm_start && 799 vma->vm_file && vma->vm_file->private_data == &arena->map) 800 zap_vma_range(vma, uaddr, size); 801 mmap_read_unlock(mm); 802 mmput(mm); 803 804 mutex_lock(&arena->lock); 805 } 806 mutex_unlock(&arena->lock); 807 mutex_unlock(&arena->zap_mutex); 808 } 809 810 static void arena_free_pages(struct bpf_arena *arena, long uaddr, long page_cnt, bool sleepable) 811 { 812 struct mem_cgroup *new_memcg, *old_memcg; 813 u64 full_uaddr, uaddr_end; 814 long kaddr, pgoff; 815 struct page *page; 816 struct llist_head free_pages; 817 struct llist_node *pos, *t; 818 struct arena_free_span *s; 819 struct clear_range_data cdata; 820 unsigned long flags; 821 int ret = 0; 822 823 /* only aligned lower 32-bit are relevant */ 824 uaddr = (u32)uaddr; 825 uaddr &= PAGE_MASK; 826 kaddr = bpf_arena_get_kern_vm_start(arena) + uaddr; 827 full_uaddr = clear_lo32(arena->user_vm_start) + uaddr; 828 uaddr_end = min(arena->user_vm_end, full_uaddr + (page_cnt << PAGE_SHIFT)); 829 if (full_uaddr >= uaddr_end) 830 return; 831 832 page_cnt = (uaddr_end - full_uaddr) >> PAGE_SHIFT; 833 pgoff = compute_pgoff(arena, uaddr); 834 bpf_map_memcg_enter(&arena->map, &old_memcg, &new_memcg); 835 836 if (!sleepable) 837 goto defer; 838 839 ret = raw_res_spin_lock_irqsave(&arena->spinlock, flags); 840 841 /* Can't proceed without holding the spinlock so defer the free */ 842 if (ret) 843 goto defer; 844 845 range_tree_set(&arena->rt, pgoff, page_cnt); 846 847 init_llist_head(&free_pages); 848 cdata.free_pages = &free_pages; 849 cdata.scratch_page = arena->scratch_page; 850 /* clear ptes and collect struct pages */ 851 apply_to_existing_page_range(&init_mm, kaddr, page_cnt << PAGE_SHIFT, 852 apply_range_clear_cb, &cdata); 853 854 /* drop the lock to do the tlb flush and zap pages */ 855 raw_res_spin_unlock_irqrestore(&arena->spinlock, flags); 856 857 /* ensure no stale TLB entries */ 858 flush_tlb_kernel_range(kaddr, kaddr + (page_cnt * PAGE_SIZE)); 859 860 if (page_cnt > 1) 861 /* bulk zap if multiple pages being freed */ 862 zap_pages(arena, full_uaddr, page_cnt); 863 864 llist_for_each_safe(pos, t, __llist_del_all(&free_pages)) { 865 page = llist_entry(pos, struct page, pcp_llist); 866 if (page_cnt == 1 && page_mapped(page)) /* mapped by some user process */ 867 /* Optimization for the common case of page_cnt==1: 868 * If page wasn't mapped into some user vma there 869 * is no need to call zap_pages which is slow. When 870 * page_cnt is big it's faster to do the batched zap. 871 */ 872 zap_pages(arena, full_uaddr, 1); 873 __free_page(page); 874 } 875 bpf_map_memcg_exit(old_memcg, new_memcg); 876 877 return; 878 879 defer: 880 s = kmalloc_nolock(sizeof(struct arena_free_span), __GFP_ACCOUNT, -1); 881 bpf_map_memcg_exit(old_memcg, new_memcg); 882 if (!s) 883 /* 884 * If allocation fails in non-sleepable context, pages are intentionally left 885 * inaccessible (leaked) until the arena is destroyed. Cleanup or retries are not 886 * possible here, so we intentionally omit them for safety. 887 */ 888 return; 889 890 s->page_cnt = page_cnt; 891 s->uaddr = uaddr; 892 llist_add(&s->node, &arena->free_spans); 893 irq_work_queue(&arena->free_irq); 894 } 895 896 /* 897 * Reserve an arena virtual address range without populating it. This call stops 898 * bpf_arena_alloc_pages from adding pages to this range. 899 */ 900 static int arena_reserve_pages(struct bpf_arena *arena, long uaddr, u32 page_cnt) 901 { 902 long page_cnt_max = (arena->user_vm_end - arena->user_vm_start) >> PAGE_SHIFT; 903 struct mem_cgroup *new_memcg, *old_memcg; 904 unsigned long flags; 905 long pgoff; 906 int ret; 907 908 if (uaddr & ~PAGE_MASK) 909 return 0; 910 911 pgoff = compute_pgoff(arena, uaddr); 912 if (pgoff + page_cnt > page_cnt_max) 913 return -EINVAL; 914 915 if (raw_res_spin_lock_irqsave(&arena->spinlock, flags)) 916 return -EBUSY; 917 918 /* Cannot guard already allocated pages. */ 919 ret = is_range_tree_set(&arena->rt, pgoff, page_cnt); 920 if (ret) { 921 ret = -EBUSY; 922 goto out; 923 } 924 925 /* "Allocate" the region to prevent it from being allocated. */ 926 bpf_map_memcg_enter(&arena->map, &old_memcg, &new_memcg); 927 ret = range_tree_clear(&arena->rt, pgoff, page_cnt); 928 bpf_map_memcg_exit(old_memcg, new_memcg); 929 out: 930 raw_res_spin_unlock_irqrestore(&arena->spinlock, flags); 931 return ret; 932 } 933 934 static void arena_free_worker(struct work_struct *work) 935 { 936 struct bpf_arena *arena = container_of(work, struct bpf_arena, free_work); 937 struct mem_cgroup *new_memcg, *old_memcg; 938 struct llist_node *list, *pos, *t; 939 struct arena_free_span *s; 940 u64 arena_vm_start, user_vm_start; 941 struct llist_head free_pages; 942 struct clear_range_data cdata; 943 struct page *page; 944 unsigned long full_uaddr; 945 long kaddr, page_cnt, pgoff; 946 unsigned long flags; 947 948 if (raw_res_spin_lock_irqsave(&arena->spinlock, flags)) { 949 schedule_work(work); 950 return; 951 } 952 953 bpf_map_memcg_enter(&arena->map, &old_memcg, &new_memcg); 954 955 init_llist_head(&free_pages); 956 cdata.free_pages = &free_pages; 957 cdata.scratch_page = arena->scratch_page; 958 arena_vm_start = bpf_arena_get_kern_vm_start(arena); 959 user_vm_start = bpf_arena_get_user_vm_start(arena); 960 961 list = llist_del_all(&arena->free_spans); 962 llist_for_each(pos, list) { 963 s = llist_entry(pos, struct arena_free_span, node); 964 page_cnt = s->page_cnt; 965 kaddr = arena_vm_start + s->uaddr; 966 pgoff = compute_pgoff(arena, s->uaddr); 967 968 /* clear ptes and collect pages in free_pages llist */ 969 apply_to_existing_page_range(&init_mm, kaddr, page_cnt << PAGE_SHIFT, 970 apply_range_clear_cb, &cdata); 971 972 range_tree_set(&arena->rt, pgoff, page_cnt); 973 } 974 raw_res_spin_unlock_irqrestore(&arena->spinlock, flags); 975 976 /* Iterate the list again without holding spinlock to do the tlb flush and zap_pages */ 977 llist_for_each_safe(pos, t, list) { 978 s = llist_entry(pos, struct arena_free_span, node); 979 page_cnt = s->page_cnt; 980 full_uaddr = clear_lo32(user_vm_start) + s->uaddr; 981 kaddr = arena_vm_start + s->uaddr; 982 983 /* ensure no stale TLB entries */ 984 flush_tlb_kernel_range(kaddr, kaddr + (page_cnt * PAGE_SIZE)); 985 986 /* remove pages from user vmas */ 987 zap_pages(arena, full_uaddr, page_cnt); 988 989 kfree_nolock(s); 990 } 991 992 /* free all pages collected by apply_to_existing_page_range() in the first loop */ 993 llist_for_each_safe(pos, t, __llist_del_all(&free_pages)) { 994 page = llist_entry(pos, struct page, pcp_llist); 995 __free_page(page); 996 } 997 998 bpf_map_memcg_exit(old_memcg, new_memcg); 999 } 1000 1001 static void arena_free_irq(struct irq_work *iw) 1002 { 1003 struct bpf_arena *arena = container_of(iw, struct bpf_arena, free_irq); 1004 1005 schedule_work(&arena->free_work); 1006 } 1007 1008 __bpf_kfunc_start_defs(); 1009 1010 __bpf_kfunc void *bpf_arena_alloc_pages(void *p__map, void *addr__ign, u32 page_cnt, 1011 int node_id, u64 flags) 1012 { 1013 struct bpf_map *map = p__map; 1014 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 1015 1016 if (map->map_type != BPF_MAP_TYPE_ARENA || flags || !page_cnt) 1017 return NULL; 1018 1019 return (void *)arena_alloc_pages(arena, (long)addr__ign, page_cnt, node_id, true); 1020 } 1021 1022 void *bpf_arena_alloc_pages_non_sleepable(void *p__map, void *addr__ign, u32 page_cnt, 1023 int node_id, u64 flags) 1024 { 1025 struct bpf_map *map = p__map; 1026 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 1027 1028 if (map->map_type != BPF_MAP_TYPE_ARENA || flags || !page_cnt) 1029 return NULL; 1030 1031 return (void *)arena_alloc_pages(arena, (long)addr__ign, page_cnt, node_id, false); 1032 } 1033 1034 void *bpf_arena_alloc_pages_sleepable(void *p__map, void *addr__ign, u32 page_cnt, 1035 int node_id, u64 flags) 1036 { 1037 struct bpf_map *map = p__map; 1038 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 1039 1040 if (map->map_type != BPF_MAP_TYPE_ARENA || flags || !page_cnt) 1041 return NULL; 1042 1043 return (void *)arena_alloc_pages(arena, (long)addr__ign, page_cnt, node_id, true); 1044 } 1045 1046 __bpf_kfunc void bpf_arena_free_pages(void *p__map, void *ptr__ign, u32 page_cnt) 1047 { 1048 struct bpf_map *map = p__map; 1049 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 1050 1051 if (map->map_type != BPF_MAP_TYPE_ARENA || !page_cnt || !ptr__ign) 1052 return; 1053 arena_free_pages(arena, (long)ptr__ign, page_cnt, true); 1054 } 1055 1056 void bpf_arena_free_pages_non_sleepable(void *p__map, void *ptr__ign, u32 page_cnt) 1057 { 1058 struct bpf_map *map = p__map; 1059 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 1060 1061 if (map->map_type != BPF_MAP_TYPE_ARENA || !page_cnt || !ptr__ign) 1062 return; 1063 arena_free_pages(arena, (long)ptr__ign, page_cnt, false); 1064 } 1065 1066 __bpf_kfunc int bpf_arena_reserve_pages(void *p__map, void *ptr__ign, u32 page_cnt) 1067 { 1068 struct bpf_map *map = p__map; 1069 struct bpf_arena *arena = container_of(map, struct bpf_arena, map); 1070 1071 if (map->map_type != BPF_MAP_TYPE_ARENA) 1072 return -EINVAL; 1073 1074 if (!page_cnt) 1075 return 0; 1076 1077 return arena_reserve_pages(arena, (long)ptr__ign, page_cnt); 1078 } 1079 __bpf_kfunc_end_defs(); 1080 1081 BTF_KFUNCS_START(arena_kfuncs) 1082 BTF_ID_FLAGS(func, bpf_arena_alloc_pages, KF_ARENA_RET | KF_ARENA_ARG2) 1083 BTF_ID_FLAGS(func, bpf_arena_free_pages, KF_ARENA_ARG2) 1084 BTF_ID_FLAGS(func, bpf_arena_reserve_pages, KF_ARENA_ARG2) 1085 BTF_KFUNCS_END(arena_kfuncs) 1086 1087 static const struct btf_kfunc_id_set common_kfunc_set = { 1088 .owner = THIS_MODULE, 1089 .set = &arena_kfuncs, 1090 }; 1091 1092 static int __init kfunc_init(void) 1093 { 1094 return register_btf_kfunc_id_set(BPF_PROG_TYPE_UNSPEC, &common_kfunc_set); 1095 } 1096 late_initcall(kfunc_init); 1097 1098 static void __bpf_prog_report_arena_violation(struct bpf_prog *prog, bool write, 1099 unsigned long addr, unsigned long fault_ip) 1100 { 1101 struct bpf_stream_stage ss; 1102 u64 user_vm_start; 1103 1104 /* Use main prog for stream access */ 1105 prog = prog->aux->main_prog_aux->prog; 1106 1107 user_vm_start = bpf_arena_get_user_vm_start(prog->aux->arena); 1108 addr += clear_lo32(user_vm_start); 1109 1110 bpf_stream_stage(ss, prog, BPF_STDERR, ({ 1111 bpf_stream_printk(ss, "ERROR: Arena %s access at unmapped address 0x%lx\n", 1112 write ? "WRITE" : "READ", addr); 1113 bpf_stream_dump_stack(ss); 1114 })); 1115 } 1116 1117 bool bpf_arena_handle_page_fault(unsigned long addr, bool is_write, unsigned long fault_ip) 1118 { 1119 struct bpf_arena *arena; 1120 struct bpf_prog *prog; 1121 unsigned long kbase; 1122 unsigned long page_addr = addr & PAGE_MASK; 1123 1124 prog = bpf_prog_find_from_stack(); 1125 if (!prog) 1126 return false; 1127 1128 arena = prog->aux->arena; 1129 /* a prog not using arena may be on stack, so arena can be NULL */ 1130 if (!arena) 1131 return false; 1132 1133 kbase = bpf_arena_get_kern_vm_start(arena); 1134 1135 /* 1136 * Recovery covers the 4 GiB mappable band plus the upper half-guard. 1137 * Lower guard is unreachable from kfuncs; an address there indicates 1138 * a different bug class - leave it to the regular kernel oops path. 1139 */ 1140 if (page_addr < kbase || page_addr >= kbase + SZ_4G + GUARD_SZ / 2) 1141 return false; 1142 1143 apply_to_page_range(&init_mm, page_addr, PAGE_SIZE, 1144 apply_range_set_scratch_cb, arena->scratch_page); 1145 flush_vmap_cache(page_addr, PAGE_SIZE); 1146 __bpf_prog_report_arena_violation(prog, is_write, page_addr - kbase, fault_ip); 1147 return true; 1148 } 1149 1150 void bpf_prog_report_arena_violation(bool write, unsigned long addr, unsigned long fault_ip) 1151 { 1152 struct bpf_prog *prog; 1153 1154 /* 1155 * The RCU read lock is held to safely traverse the latch tree, but we 1156 * don't need its protection when accessing the prog, since it will not 1157 * disappear while we are handling the fault. 1158 */ 1159 rcu_read_lock(); 1160 prog = bpf_prog_ksym_find(fault_ip); 1161 rcu_read_unlock(); 1162 if (!prog) 1163 return; 1164 __bpf_prog_report_arena_violation(prog, write, addr, fault_ip); 1165 } 1166