vmalloc.c 68 KB

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  1. /*
  2. * linux/mm/vmalloc.c
  3. *
  4. * Copyright (C) 1993 Linus Torvalds
  5. * Support of BIGMEM added by Gerhard Wichert, Siemens AG, July 1999
  6. * SMP-safe vmalloc/vfree/ioremap, Tigran Aivazian <tigran@veritas.com>, May 2000
  7. * Major rework to support vmap/vunmap, Christoph Hellwig, SGI, August 2002
  8. * Numa awareness, Christoph Lameter, SGI, June 2005
  9. */
  10. #include <linux/vmalloc.h>
  11. #include <linux/mm.h>
  12. #include <linux/module.h>
  13. #include <linux/highmem.h>
  14. #include <linux/sched.h>
  15. #include <linux/slab.h>
  16. #include <linux/spinlock.h>
  17. #include <linux/interrupt.h>
  18. #include <linux/proc_fs.h>
  19. #include <linux/seq_file.h>
  20. #include <linux/debugobjects.h>
  21. #include <linux/kallsyms.h>
  22. #include <linux/list.h>
  23. #include <linux/rbtree.h>
  24. #include <linux/radix-tree.h>
  25. #include <linux/rcupdate.h>
  26. #include <linux/pfn.h>
  27. #include <linux/kmemleak.h>
  28. #include <linux/atomic.h>
  29. #include <asm/uaccess.h>
  30. #include <asm/tlbflush.h>
  31. #include <asm/shmparam.h>
  32. /*** Page table manipulation functions ***/
  33. static void vunmap_pte_range(pmd_t *pmd, unsigned long addr, unsigned long end)
  34. {
  35. pte_t *pte;
  36. pte = pte_offset_kernel(pmd, addr);
  37. do {
  38. pte_t ptent = ptep_get_and_clear(&init_mm, addr, pte);
  39. WARN_ON(!pte_none(ptent) && !pte_present(ptent));
  40. } while (pte++, addr += PAGE_SIZE, addr != end);
  41. }
  42. static void vunmap_pmd_range(pud_t *pud, unsigned long addr, unsigned long end)
  43. {
  44. pmd_t *pmd;
  45. unsigned long next;
  46. pmd = pmd_offset(pud, addr);
  47. do {
  48. next = pmd_addr_end(addr, end);
  49. if (pmd_none_or_clear_bad(pmd))
  50. continue;
  51. vunmap_pte_range(pmd, addr, next);
  52. } while (pmd++, addr = next, addr != end);
  53. }
  54. static void vunmap_pud_range(pgd_t *pgd, unsigned long addr, unsigned long end)
  55. {
  56. pud_t *pud;
  57. unsigned long next;
  58. pud = pud_offset(pgd, addr);
  59. do {
  60. next = pud_addr_end(addr, end);
  61. if (pud_none_or_clear_bad(pud))
  62. continue;
  63. vunmap_pmd_range(pud, addr, next);
  64. } while (pud++, addr = next, addr != end);
  65. }
  66. static void vunmap_page_range(unsigned long addr, unsigned long end)
  67. {
  68. pgd_t *pgd;
  69. unsigned long next;
  70. BUG_ON(addr >= end);
  71. pgd = pgd_offset_k(addr);
  72. do {
  73. next = pgd_addr_end(addr, end);
  74. if (pgd_none_or_clear_bad(pgd))
  75. continue;
  76. vunmap_pud_range(pgd, addr, next);
  77. } while (pgd++, addr = next, addr != end);
  78. }
  79. static int vmap_pte_range(pmd_t *pmd, unsigned long addr,
  80. unsigned long end, pgprot_t prot, struct page **pages, int *nr)
  81. {
  82. pte_t *pte;
  83. /*
  84. * nr is a running index into the array which helps higher level
  85. * callers keep track of where we're up to.
  86. */
  87. pte = pte_alloc_kernel(pmd, addr);
  88. if (!pte)
  89. return -ENOMEM;
  90. do {
  91. struct page *page = pages[*nr];
  92. if (WARN_ON(!pte_none(*pte)))
  93. return -EBUSY;
  94. if (WARN_ON(!page))
  95. return -ENOMEM;
  96. set_pte_at(&init_mm, addr, pte, mk_pte(page, prot));
  97. (*nr)++;
  98. } while (pte++, addr += PAGE_SIZE, addr != end);
  99. return 0;
  100. }
  101. static int vmap_pmd_range(pud_t *pud, unsigned long addr,
  102. unsigned long end, pgprot_t prot, struct page **pages, int *nr)
  103. {
  104. pmd_t *pmd;
  105. unsigned long next;
  106. pmd = pmd_alloc(&init_mm, pud, addr);
  107. if (!pmd)
  108. return -ENOMEM;
  109. do {
  110. next = pmd_addr_end(addr, end);
  111. if (vmap_pte_range(pmd, addr, next, prot, pages, nr))
  112. return -ENOMEM;
  113. } while (pmd++, addr = next, addr != end);
  114. return 0;
  115. }
  116. static int vmap_pud_range(pgd_t *pgd, unsigned long addr,
  117. unsigned long end, pgprot_t prot, struct page **pages, int *nr)
  118. {
  119. pud_t *pud;
  120. unsigned long next;
  121. pud = pud_alloc(&init_mm, pgd, addr);
  122. if (!pud)
  123. return -ENOMEM;
  124. do {
  125. next = pud_addr_end(addr, end);
  126. if (vmap_pmd_range(pud, addr, next, prot, pages, nr))
  127. return -ENOMEM;
  128. } while (pud++, addr = next, addr != end);
  129. return 0;
  130. }
  131. /*
  132. * Set up page tables in kva (addr, end). The ptes shall have prot "prot", and
  133. * will have pfns corresponding to the "pages" array.
  134. *
  135. * Ie. pte at addr+N*PAGE_SIZE shall point to pfn corresponding to pages[N]
  136. */
  137. static int vmap_page_range_noflush(unsigned long start, unsigned long end,
  138. pgprot_t prot, struct page **pages)
  139. {
  140. pgd_t *pgd;
  141. unsigned long next;
  142. unsigned long addr = start;
  143. int err = 0;
  144. int nr = 0;
  145. BUG_ON(addr >= end);
  146. pgd = pgd_offset_k(addr);
  147. do {
  148. next = pgd_addr_end(addr, end);
  149. err = vmap_pud_range(pgd, addr, next, prot, pages, &nr);
  150. if (err)
  151. return err;
  152. } while (pgd++, addr = next, addr != end);
  153. return nr;
  154. }
  155. static int vmap_page_range(unsigned long start, unsigned long end,
  156. pgprot_t prot, struct page **pages)
  157. {
  158. int ret;
  159. ret = vmap_page_range_noflush(start, end, prot, pages);
  160. flush_cache_vmap(start, end);
  161. return ret;
  162. }
  163. int is_vmalloc_or_module_addr(const void *x)
  164. {
  165. /*
  166. * ARM, x86-64 and sparc64 put modules in a special place,
  167. * and fall back on vmalloc() if that fails. Others
  168. * just put it in the vmalloc space.
  169. */
  170. #if defined(CONFIG_MODULES) && defined(MODULES_VADDR)
  171. unsigned long addr = (unsigned long)x;
  172. if (addr >= MODULES_VADDR && addr < MODULES_END)
  173. return 1;
  174. #endif
  175. return is_vmalloc_addr(x);
  176. }
  177. /*
  178. * Walk a vmap address to the struct page it maps.
  179. */
  180. struct page *vmalloc_to_page(const void *vmalloc_addr)
  181. {
  182. unsigned long addr = (unsigned long) vmalloc_addr;
  183. struct page *page = NULL;
  184. pgd_t *pgd = pgd_offset_k(addr);
  185. /*
  186. * XXX we might need to change this if we add VIRTUAL_BUG_ON for
  187. * architectures that do not vmalloc module space
  188. */
  189. VIRTUAL_BUG_ON(!is_vmalloc_or_module_addr(vmalloc_addr));
  190. if (!pgd_none(*pgd)) {
  191. pud_t *pud = pud_offset(pgd, addr);
  192. if (!pud_none(*pud)) {
  193. pmd_t *pmd = pmd_offset(pud, addr);
  194. if (!pmd_none(*pmd)) {
  195. pte_t *ptep, pte;
  196. ptep = pte_offset_map(pmd, addr);
  197. pte = *ptep;
  198. if (pte_present(pte))
  199. page = pte_page(pte);
  200. pte_unmap(ptep);
  201. }
  202. }
  203. }
  204. return page;
  205. }
  206. EXPORT_SYMBOL(vmalloc_to_page);
  207. /*
  208. * Map a vmalloc()-space virtual address to the physical page frame number.
  209. */
  210. unsigned long vmalloc_to_pfn(const void *vmalloc_addr)
  211. {
  212. return page_to_pfn(vmalloc_to_page(vmalloc_addr));
  213. }
  214. EXPORT_SYMBOL(vmalloc_to_pfn);
  215. /*** Global kva allocator ***/
  216. #define VM_LAZY_FREE 0x01
  217. #define VM_LAZY_FREEING 0x02
  218. #define VM_VM_AREA 0x04
  219. struct vmap_area {
  220. unsigned long va_start;
  221. unsigned long va_end;
  222. unsigned long flags;
  223. struct rb_node rb_node; /* address sorted rbtree */
  224. struct list_head list; /* address sorted list */
  225. struct list_head purge_list; /* "lazy purge" list */
  226. struct vm_struct *vm;
  227. struct rcu_head rcu_head;
  228. };
  229. static DEFINE_SPINLOCK(vmap_area_lock);
  230. /* Export for kexec only */
  231. LIST_HEAD(vmap_area_list);
  232. static struct rb_root vmap_area_root = RB_ROOT;
  233. /* The vmap cache globals are protected by vmap_area_lock */
  234. static struct rb_node *free_vmap_cache;
  235. static unsigned long cached_hole_size;
  236. static unsigned long cached_vstart;
  237. static unsigned long cached_align;
  238. static unsigned long vmap_area_pcpu_hole;
  239. static struct vmap_area *__find_vmap_area(unsigned long addr)
  240. {
  241. struct rb_node *n = vmap_area_root.rb_node;
  242. while (n) {
  243. struct vmap_area *va;
  244. va = rb_entry(n, struct vmap_area, rb_node);
  245. if (addr < va->va_start)
  246. n = n->rb_left;
  247. else if (addr > va->va_start)
  248. n = n->rb_right;
  249. else
  250. return va;
  251. }
  252. return NULL;
  253. }
  254. static void __insert_vmap_area(struct vmap_area *va)
  255. {
  256. struct rb_node **p = &vmap_area_root.rb_node;
  257. struct rb_node *parent = NULL;
  258. struct rb_node *tmp;
  259. while (*p) {
  260. struct vmap_area *tmp_va;
  261. parent = *p;
  262. tmp_va = rb_entry(parent, struct vmap_area, rb_node);
  263. if (va->va_start < tmp_va->va_end)
  264. p = &(*p)->rb_left;
  265. else if (va->va_end > tmp_va->va_start)
  266. p = &(*p)->rb_right;
  267. else
  268. BUG();
  269. }
  270. rb_link_node(&va->rb_node, parent, p);
  271. rb_insert_color(&va->rb_node, &vmap_area_root);
  272. /* address-sort this list */
  273. tmp = rb_prev(&va->rb_node);
  274. if (tmp) {
  275. struct vmap_area *prev;
  276. prev = rb_entry(tmp, struct vmap_area, rb_node);
  277. list_add_rcu(&va->list, &prev->list);
  278. } else
  279. list_add_rcu(&va->list, &vmap_area_list);
  280. }
  281. static void purge_vmap_area_lazy(void);
  282. /*
  283. * Allocate a region of KVA of the specified size and alignment, within the
  284. * vstart and vend.
  285. */
  286. static struct vmap_area *alloc_vmap_area(unsigned long size,
  287. unsigned long align,
  288. unsigned long vstart, unsigned long vend,
  289. int node, gfp_t gfp_mask)
  290. {
  291. struct vmap_area *va;
  292. struct rb_node *n;
  293. unsigned long addr;
  294. int purged = 0;
  295. struct vmap_area *first;
  296. BUG_ON(!size);
  297. BUG_ON(size & ~PAGE_MASK);
  298. BUG_ON(!is_power_of_2(align));
  299. va = kmalloc_node(sizeof(struct vmap_area),
  300. gfp_mask & GFP_RECLAIM_MASK, node);
  301. if (unlikely(!va))
  302. return ERR_PTR(-ENOMEM);
  303. retry:
  304. spin_lock(&vmap_area_lock);
  305. /*
  306. * Invalidate cache if we have more permissive parameters.
  307. * cached_hole_size notes the largest hole noticed _below_
  308. * the vmap_area cached in free_vmap_cache: if size fits
  309. * into that hole, we want to scan from vstart to reuse
  310. * the hole instead of allocating above free_vmap_cache.
  311. * Note that __free_vmap_area may update free_vmap_cache
  312. * without updating cached_hole_size or cached_align.
  313. */
  314. if (!free_vmap_cache ||
  315. size < cached_hole_size ||
  316. vstart < cached_vstart ||
  317. align < cached_align) {
  318. nocache:
  319. cached_hole_size = 0;
  320. free_vmap_cache = NULL;
  321. }
  322. /* record if we encounter less permissive parameters */
  323. cached_vstart = vstart;
  324. cached_align = align;
  325. /* find starting point for our search */
  326. if (free_vmap_cache) {
  327. first = rb_entry(free_vmap_cache, struct vmap_area, rb_node);
  328. addr = ALIGN(first->va_end, align);
  329. if (addr < vstart)
  330. goto nocache;
  331. if (addr + size - 1 < addr)
  332. goto overflow;
  333. } else {
  334. addr = ALIGN(vstart, align);
  335. if (addr + size - 1 < addr)
  336. goto overflow;
  337. n = vmap_area_root.rb_node;
  338. first = NULL;
  339. while (n) {
  340. struct vmap_area *tmp;
  341. tmp = rb_entry(n, struct vmap_area, rb_node);
  342. if (tmp->va_end >= addr) {
  343. first = tmp;
  344. if (tmp->va_start <= addr)
  345. break;
  346. n = n->rb_left;
  347. } else
  348. n = n->rb_right;
  349. }
  350. if (!first)
  351. goto found;
  352. }
  353. /* from the starting point, walk areas until a suitable hole is found */
  354. while (addr + size > first->va_start && addr + size <= vend) {
  355. if (addr + cached_hole_size < first->va_start)
  356. cached_hole_size = first->va_start - addr;
  357. addr = ALIGN(first->va_end, align);
  358. if (addr + size - 1 < addr)
  359. goto overflow;
  360. if (list_is_last(&first->list, &vmap_area_list))
  361. goto found;
  362. first = list_entry(first->list.next,
  363. struct vmap_area, list);
  364. }
  365. found:
  366. if (addr + size > vend)
  367. goto overflow;
  368. va->va_start = addr;
  369. va->va_end = addr + size;
  370. va->flags = 0;
  371. __insert_vmap_area(va);
  372. free_vmap_cache = &va->rb_node;
  373. spin_unlock(&vmap_area_lock);
  374. BUG_ON(va->va_start & (align-1));
  375. BUG_ON(va->va_start < vstart);
  376. BUG_ON(va->va_end > vend);
  377. return va;
  378. overflow:
  379. spin_unlock(&vmap_area_lock);
  380. if (!purged) {
  381. purge_vmap_area_lazy();
  382. purged = 1;
  383. goto retry;
  384. }
  385. if (printk_ratelimit())
  386. printk(KERN_WARNING
  387. "vmap allocation for size %lu failed: "
  388. "use vmalloc=<size> to increase size.\n", size);
  389. kfree(va);
  390. return ERR_PTR(-EBUSY);
  391. }
  392. static void __free_vmap_area(struct vmap_area *va)
  393. {
  394. BUG_ON(RB_EMPTY_NODE(&va->rb_node));
  395. if (free_vmap_cache) {
  396. if (va->va_end < cached_vstart) {
  397. free_vmap_cache = NULL;
  398. } else {
  399. struct vmap_area *cache;
  400. cache = rb_entry(free_vmap_cache, struct vmap_area, rb_node);
  401. if (va->va_start <= cache->va_start) {
  402. free_vmap_cache = rb_prev(&va->rb_node);
  403. /*
  404. * We don't try to update cached_hole_size or
  405. * cached_align, but it won't go very wrong.
  406. */
  407. }
  408. }
  409. }
  410. rb_erase(&va->rb_node, &vmap_area_root);
  411. RB_CLEAR_NODE(&va->rb_node);
  412. list_del_rcu(&va->list);
  413. /*
  414. * Track the highest possible candidate for pcpu area
  415. * allocation. Areas outside of vmalloc area can be returned
  416. * here too, consider only end addresses which fall inside
  417. * vmalloc area proper.
  418. */
  419. if (va->va_end > VMALLOC_START && va->va_end <= VMALLOC_END)
  420. vmap_area_pcpu_hole = max(vmap_area_pcpu_hole, va->va_end);
  421. kfree_rcu(va, rcu_head);
  422. }
  423. /*
  424. * Free a region of KVA allocated by alloc_vmap_area
  425. */
  426. static void free_vmap_area(struct vmap_area *va)
  427. {
  428. spin_lock(&vmap_area_lock);
  429. __free_vmap_area(va);
  430. spin_unlock(&vmap_area_lock);
  431. }
  432. /*
  433. * Clear the pagetable entries of a given vmap_area
  434. */
  435. static void unmap_vmap_area(struct vmap_area *va)
  436. {
  437. vunmap_page_range(va->va_start, va->va_end);
  438. }
  439. static void vmap_debug_free_range(unsigned long start, unsigned long end)
  440. {
  441. /*
  442. * Unmap page tables and force a TLB flush immediately if
  443. * CONFIG_DEBUG_PAGEALLOC is set. This catches use after free
  444. * bugs similarly to those in linear kernel virtual address
  445. * space after a page has been freed.
  446. *
  447. * All the lazy freeing logic is still retained, in order to
  448. * minimise intrusiveness of this debugging feature.
  449. *
  450. * This is going to be *slow* (linear kernel virtual address
  451. * debugging doesn't do a broadcast TLB flush so it is a lot
  452. * faster).
  453. */
  454. #ifdef CONFIG_DEBUG_PAGEALLOC
  455. vunmap_page_range(start, end);
  456. flush_tlb_kernel_range(start, end);
  457. #endif
  458. }
  459. /*
  460. * lazy_max_pages is the maximum amount of virtual address space we gather up
  461. * before attempting to purge with a TLB flush.
  462. *
  463. * There is a tradeoff here: a larger number will cover more kernel page tables
  464. * and take slightly longer to purge, but it will linearly reduce the number of
  465. * global TLB flushes that must be performed. It would seem natural to scale
  466. * this number up linearly with the number of CPUs (because vmapping activity
  467. * could also scale linearly with the number of CPUs), however it is likely
  468. * that in practice, workloads might be constrained in other ways that mean
  469. * vmap activity will not scale linearly with CPUs. Also, I want to be
  470. * conservative and not introduce a big latency on huge systems, so go with
  471. * a less aggressive log scale. It will still be an improvement over the old
  472. * code, and it will be simple to change the scale factor if we find that it
  473. * becomes a problem on bigger systems.
  474. */
  475. static unsigned long lazy_max_pages(void)
  476. {
  477. unsigned int log;
  478. log = fls(num_online_cpus());
  479. return log * (32UL * 1024 * 1024 / PAGE_SIZE);
  480. }
  481. static atomic_t vmap_lazy_nr = ATOMIC_INIT(0);
  482. /* for per-CPU blocks */
  483. static void purge_fragmented_blocks_allcpus(void);
  484. /*
  485. * called before a call to iounmap() if the caller wants vm_area_struct's
  486. * immediately freed.
  487. */
  488. void set_iounmap_nonlazy(void)
  489. {
  490. atomic_set(&vmap_lazy_nr, lazy_max_pages()+1);
  491. }
  492. /*
  493. * Purges all lazily-freed vmap areas.
  494. *
  495. * If sync is 0 then don't purge if there is already a purge in progress.
  496. * If force_flush is 1, then flush kernel TLBs between *start and *end even
  497. * if we found no lazy vmap areas to unmap (callers can use this to optimise
  498. * their own TLB flushing).
  499. * Returns with *start = min(*start, lowest purged address)
  500. * *end = max(*end, highest purged address)
  501. */
  502. static void __purge_vmap_area_lazy(unsigned long *start, unsigned long *end,
  503. int sync, int force_flush)
  504. {
  505. static DEFINE_SPINLOCK(purge_lock);
  506. LIST_HEAD(valist);
  507. struct vmap_area *va;
  508. struct vmap_area *n_va;
  509. int nr = 0;
  510. /*
  511. * If sync is 0 but force_flush is 1, we'll go sync anyway but callers
  512. * should not expect such behaviour. This just simplifies locking for
  513. * the case that isn't actually used at the moment anyway.
  514. */
  515. if (!sync && !force_flush) {
  516. if (!spin_trylock(&purge_lock))
  517. return;
  518. } else
  519. spin_lock(&purge_lock);
  520. if (sync)
  521. purge_fragmented_blocks_allcpus();
  522. rcu_read_lock();
  523. list_for_each_entry_rcu(va, &vmap_area_list, list) {
  524. if (va->flags & VM_LAZY_FREE) {
  525. if (va->va_start < *start)
  526. *start = va->va_start;
  527. if (va->va_end > *end)
  528. *end = va->va_end;
  529. nr += (va->va_end - va->va_start) >> PAGE_SHIFT;
  530. list_add_tail(&va->purge_list, &valist);
  531. va->flags |= VM_LAZY_FREEING;
  532. va->flags &= ~VM_LAZY_FREE;
  533. }
  534. }
  535. rcu_read_unlock();
  536. if (nr)
  537. atomic_sub(nr, &vmap_lazy_nr);
  538. if (nr || force_flush)
  539. flush_tlb_kernel_range(*start, *end);
  540. if (nr) {
  541. spin_lock(&vmap_area_lock);
  542. list_for_each_entry_safe(va, n_va, &valist, purge_list)
  543. __free_vmap_area(va);
  544. spin_unlock(&vmap_area_lock);
  545. }
  546. spin_unlock(&purge_lock);
  547. }
  548. /*
  549. * Kick off a purge of the outstanding lazy areas. Don't bother if somebody
  550. * is already purging.
  551. */
  552. static void try_purge_vmap_area_lazy(void)
  553. {
  554. unsigned long start = ULONG_MAX, end = 0;
  555. __purge_vmap_area_lazy(&start, &end, 0, 0);
  556. }
  557. /*
  558. * Kick off a purge of the outstanding lazy areas.
  559. */
  560. static void purge_vmap_area_lazy(void)
  561. {
  562. unsigned long start = ULONG_MAX, end = 0;
  563. __purge_vmap_area_lazy(&start, &end, 1, 0);
  564. }
  565. /*
  566. * Free a vmap area, caller ensuring that the area has been unmapped
  567. * and flush_cache_vunmap had been called for the correct range
  568. * previously.
  569. */
  570. static void free_vmap_area_noflush(struct vmap_area *va)
  571. {
  572. va->flags |= VM_LAZY_FREE;
  573. atomic_add((va->va_end - va->va_start) >> PAGE_SHIFT, &vmap_lazy_nr);
  574. if (unlikely(atomic_read(&vmap_lazy_nr) > lazy_max_pages()))
  575. try_purge_vmap_area_lazy();
  576. }
  577. /*
  578. * Free and unmap a vmap area, caller ensuring flush_cache_vunmap had been
  579. * called for the correct range previously.
  580. */
  581. static void free_unmap_vmap_area_noflush(struct vmap_area *va)
  582. {
  583. unmap_vmap_area(va);
  584. free_vmap_area_noflush(va);
  585. }
  586. /*
  587. * Free and unmap a vmap area
  588. */
  589. static void free_unmap_vmap_area(struct vmap_area *va)
  590. {
  591. flush_cache_vunmap(va->va_start, va->va_end);
  592. free_unmap_vmap_area_noflush(va);
  593. }
  594. static struct vmap_area *find_vmap_area(unsigned long addr)
  595. {
  596. struct vmap_area *va;
  597. spin_lock(&vmap_area_lock);
  598. va = __find_vmap_area(addr);
  599. spin_unlock(&vmap_area_lock);
  600. return va;
  601. }
  602. static void free_unmap_vmap_area_addr(unsigned long addr)
  603. {
  604. struct vmap_area *va;
  605. va = find_vmap_area(addr);
  606. BUG_ON(!va);
  607. free_unmap_vmap_area(va);
  608. }
  609. /*** Per cpu kva allocator ***/
  610. /*
  611. * vmap space is limited especially on 32 bit architectures. Ensure there is
  612. * room for at least 16 percpu vmap blocks per CPU.
  613. */
  614. /*
  615. * If we had a constant VMALLOC_START and VMALLOC_END, we'd like to be able
  616. * to #define VMALLOC_SPACE (VMALLOC_END-VMALLOC_START). Guess
  617. * instead (we just need a rough idea)
  618. */
  619. #if BITS_PER_LONG == 32
  620. #define VMALLOC_SPACE (128UL*1024*1024)
  621. #else
  622. #define VMALLOC_SPACE (128UL*1024*1024*1024)
  623. #endif
  624. #define VMALLOC_PAGES (VMALLOC_SPACE / PAGE_SIZE)
  625. #define VMAP_MAX_ALLOC BITS_PER_LONG /* 256K with 4K pages */
  626. #define VMAP_BBMAP_BITS_MAX 1024 /* 4MB with 4K pages */
  627. #define VMAP_BBMAP_BITS_MIN (VMAP_MAX_ALLOC*2)
  628. #define VMAP_MIN(x, y) ((x) < (y) ? (x) : (y)) /* can't use min() */
  629. #define VMAP_MAX(x, y) ((x) > (y) ? (x) : (y)) /* can't use max() */
  630. #define VMAP_BBMAP_BITS \
  631. VMAP_MIN(VMAP_BBMAP_BITS_MAX, \
  632. VMAP_MAX(VMAP_BBMAP_BITS_MIN, \
  633. VMALLOC_PAGES / roundup_pow_of_two(NR_CPUS) / 16))
  634. #define VMAP_BLOCK_SIZE (VMAP_BBMAP_BITS * PAGE_SIZE)
  635. static bool vmap_initialized __read_mostly = false;
  636. struct vmap_block_queue {
  637. spinlock_t lock;
  638. struct list_head free;
  639. };
  640. struct vmap_block {
  641. spinlock_t lock;
  642. struct vmap_area *va;
  643. struct vmap_block_queue *vbq;
  644. unsigned long free, dirty;
  645. DECLARE_BITMAP(alloc_map, VMAP_BBMAP_BITS);
  646. DECLARE_BITMAP(dirty_map, VMAP_BBMAP_BITS);
  647. struct list_head free_list;
  648. struct rcu_head rcu_head;
  649. struct list_head purge;
  650. };
  651. /* Queue of free and dirty vmap blocks, for allocation and flushing purposes */
  652. static DEFINE_PER_CPU(struct vmap_block_queue, vmap_block_queue);
  653. /*
  654. * Radix tree of vmap blocks, indexed by address, to quickly find a vmap block
  655. * in the free path. Could get rid of this if we change the API to return a
  656. * "cookie" from alloc, to be passed to free. But no big deal yet.
  657. */
  658. static DEFINE_SPINLOCK(vmap_block_tree_lock);
  659. static RADIX_TREE(vmap_block_tree, GFP_ATOMIC);
  660. /*
  661. * We should probably have a fallback mechanism to allocate virtual memory
  662. * out of partially filled vmap blocks. However vmap block sizing should be
  663. * fairly reasonable according to the vmalloc size, so it shouldn't be a
  664. * big problem.
  665. */
  666. static unsigned long addr_to_vb_idx(unsigned long addr)
  667. {
  668. addr -= VMALLOC_START & ~(VMAP_BLOCK_SIZE-1);
  669. addr /= VMAP_BLOCK_SIZE;
  670. return addr;
  671. }
  672. static struct vmap_block *new_vmap_block(gfp_t gfp_mask)
  673. {
  674. struct vmap_block_queue *vbq;
  675. struct vmap_block *vb;
  676. struct vmap_area *va;
  677. unsigned long vb_idx;
  678. int node, err;
  679. node = numa_node_id();
  680. vb = kmalloc_node(sizeof(struct vmap_block),
  681. gfp_mask & GFP_RECLAIM_MASK, node);
  682. if (unlikely(!vb))
  683. return ERR_PTR(-ENOMEM);
  684. va = alloc_vmap_area(VMAP_BLOCK_SIZE, VMAP_BLOCK_SIZE,
  685. VMALLOC_START, VMALLOC_END,
  686. node, gfp_mask);
  687. if (IS_ERR(va)) {
  688. kfree(vb);
  689. return ERR_CAST(va);
  690. }
  691. err = radix_tree_preload(gfp_mask);
  692. if (unlikely(err)) {
  693. kfree(vb);
  694. free_vmap_area(va);
  695. return ERR_PTR(err);
  696. }
  697. spin_lock_init(&vb->lock);
  698. vb->va = va;
  699. vb->free = VMAP_BBMAP_BITS;
  700. vb->dirty = 0;
  701. bitmap_zero(vb->alloc_map, VMAP_BBMAP_BITS);
  702. bitmap_zero(vb->dirty_map, VMAP_BBMAP_BITS);
  703. INIT_LIST_HEAD(&vb->free_list);
  704. vb_idx = addr_to_vb_idx(va->va_start);
  705. spin_lock(&vmap_block_tree_lock);
  706. err = radix_tree_insert(&vmap_block_tree, vb_idx, vb);
  707. spin_unlock(&vmap_block_tree_lock);
  708. BUG_ON(err);
  709. radix_tree_preload_end();
  710. vbq = &get_cpu_var(vmap_block_queue);
  711. vb->vbq = vbq;
  712. spin_lock(&vbq->lock);
  713. list_add_rcu(&vb->free_list, &vbq->free);
  714. spin_unlock(&vbq->lock);
  715. put_cpu_var(vmap_block_queue);
  716. return vb;
  717. }
  718. static void free_vmap_block(struct vmap_block *vb)
  719. {
  720. struct vmap_block *tmp;
  721. unsigned long vb_idx;
  722. vb_idx = addr_to_vb_idx(vb->va->va_start);
  723. spin_lock(&vmap_block_tree_lock);
  724. tmp = radix_tree_delete(&vmap_block_tree, vb_idx);
  725. spin_unlock(&vmap_block_tree_lock);
  726. BUG_ON(tmp != vb);
  727. free_vmap_area_noflush(vb->va);
  728. kfree_rcu(vb, rcu_head);
  729. }
  730. static void purge_fragmented_blocks(int cpu)
  731. {
  732. LIST_HEAD(purge);
  733. struct vmap_block *vb;
  734. struct vmap_block *n_vb;
  735. struct vmap_block_queue *vbq = &per_cpu(vmap_block_queue, cpu);
  736. rcu_read_lock();
  737. list_for_each_entry_rcu(vb, &vbq->free, free_list) {
  738. if (!(vb->free + vb->dirty == VMAP_BBMAP_BITS && vb->dirty != VMAP_BBMAP_BITS))
  739. continue;
  740. spin_lock(&vb->lock);
  741. if (vb->free + vb->dirty == VMAP_BBMAP_BITS && vb->dirty != VMAP_BBMAP_BITS) {
  742. vb->free = 0; /* prevent further allocs after releasing lock */
  743. vb->dirty = VMAP_BBMAP_BITS; /* prevent purging it again */
  744. bitmap_fill(vb->alloc_map, VMAP_BBMAP_BITS);
  745. bitmap_fill(vb->dirty_map, VMAP_BBMAP_BITS);
  746. spin_lock(&vbq->lock);
  747. list_del_rcu(&vb->free_list);
  748. spin_unlock(&vbq->lock);
  749. spin_unlock(&vb->lock);
  750. list_add_tail(&vb->purge, &purge);
  751. } else
  752. spin_unlock(&vb->lock);
  753. }
  754. rcu_read_unlock();
  755. list_for_each_entry_safe(vb, n_vb, &purge, purge) {
  756. list_del(&vb->purge);
  757. free_vmap_block(vb);
  758. }
  759. }
  760. static void purge_fragmented_blocks_thiscpu(void)
  761. {
  762. purge_fragmented_blocks(smp_processor_id());
  763. }
  764. static void purge_fragmented_blocks_allcpus(void)
  765. {
  766. int cpu;
  767. for_each_possible_cpu(cpu)
  768. purge_fragmented_blocks(cpu);
  769. }
  770. static void *vb_alloc(unsigned long size, gfp_t gfp_mask)
  771. {
  772. struct vmap_block_queue *vbq;
  773. struct vmap_block *vb;
  774. unsigned long addr = 0;
  775. unsigned int order;
  776. int purge = 0;
  777. BUG_ON(size & ~PAGE_MASK);
  778. BUG_ON(size > PAGE_SIZE*VMAP_MAX_ALLOC);
  779. if (WARN_ON(size == 0)) {
  780. /*
  781. * Allocating 0 bytes isn't what caller wants since
  782. * get_order(0) returns funny result. Just warn and terminate
  783. * early.
  784. */
  785. return NULL;
  786. }
  787. order = get_order(size);
  788. again:
  789. rcu_read_lock();
  790. vbq = &get_cpu_var(vmap_block_queue);
  791. list_for_each_entry_rcu(vb, &vbq->free, free_list) {
  792. int i;
  793. spin_lock(&vb->lock);
  794. if (vb->free < 1UL << order)
  795. goto next;
  796. i = bitmap_find_free_region(vb->alloc_map,
  797. VMAP_BBMAP_BITS, order);
  798. if (i < 0) {
  799. if (vb->free + vb->dirty == VMAP_BBMAP_BITS) {
  800. /* fragmented and no outstanding allocations */
  801. BUG_ON(vb->dirty != VMAP_BBMAP_BITS);
  802. purge = 1;
  803. }
  804. goto next;
  805. }
  806. addr = vb->va->va_start + (i << PAGE_SHIFT);
  807. BUG_ON(addr_to_vb_idx(addr) !=
  808. addr_to_vb_idx(vb->va->va_start));
  809. vb->free -= 1UL << order;
  810. if (vb->free == 0) {
  811. spin_lock(&vbq->lock);
  812. list_del_rcu(&vb->free_list);
  813. spin_unlock(&vbq->lock);
  814. }
  815. spin_unlock(&vb->lock);
  816. break;
  817. next:
  818. spin_unlock(&vb->lock);
  819. }
  820. if (purge)
  821. purge_fragmented_blocks_thiscpu();
  822. put_cpu_var(vmap_block_queue);
  823. rcu_read_unlock();
  824. if (!addr) {
  825. vb = new_vmap_block(gfp_mask);
  826. if (IS_ERR(vb))
  827. return vb;
  828. goto again;
  829. }
  830. return (void *)addr;
  831. }
  832. static void vb_free(const void *addr, unsigned long size)
  833. {
  834. unsigned long offset;
  835. unsigned long vb_idx;
  836. unsigned int order;
  837. struct vmap_block *vb;
  838. BUG_ON(size & ~PAGE_MASK);
  839. BUG_ON(size > PAGE_SIZE*VMAP_MAX_ALLOC);
  840. flush_cache_vunmap((unsigned long)addr, (unsigned long)addr + size);
  841. order = get_order(size);
  842. offset = (unsigned long)addr & (VMAP_BLOCK_SIZE - 1);
  843. vb_idx = addr_to_vb_idx((unsigned long)addr);
  844. rcu_read_lock();
  845. vb = radix_tree_lookup(&vmap_block_tree, vb_idx);
  846. rcu_read_unlock();
  847. BUG_ON(!vb);
  848. vunmap_page_range((unsigned long)addr, (unsigned long)addr + size);
  849. spin_lock(&vb->lock);
  850. BUG_ON(bitmap_allocate_region(vb->dirty_map, offset >> PAGE_SHIFT, order));
  851. vb->dirty += 1UL << order;
  852. if (vb->dirty == VMAP_BBMAP_BITS) {
  853. BUG_ON(vb->free);
  854. spin_unlock(&vb->lock);
  855. free_vmap_block(vb);
  856. } else
  857. spin_unlock(&vb->lock);
  858. }
  859. /**
  860. * vm_unmap_aliases - unmap outstanding lazy aliases in the vmap layer
  861. *
  862. * The vmap/vmalloc layer lazily flushes kernel virtual mappings primarily
  863. * to amortize TLB flushing overheads. What this means is that any page you
  864. * have now, may, in a former life, have been mapped into kernel virtual
  865. * address by the vmap layer and so there might be some CPUs with TLB entries
  866. * still referencing that page (additional to the regular 1:1 kernel mapping).
  867. *
  868. * vm_unmap_aliases flushes all such lazy mappings. After it returns, we can
  869. * be sure that none of the pages we have control over will have any aliases
  870. * from the vmap layer.
  871. */
  872. void vm_unmap_aliases(void)
  873. {
  874. unsigned long start = ULONG_MAX, end = 0;
  875. int cpu;
  876. int flush = 0;
  877. if (unlikely(!vmap_initialized))
  878. return;
  879. for_each_possible_cpu(cpu) {
  880. struct vmap_block_queue *vbq = &per_cpu(vmap_block_queue, cpu);
  881. struct vmap_block *vb;
  882. rcu_read_lock();
  883. list_for_each_entry_rcu(vb, &vbq->free, free_list) {
  884. int i;
  885. spin_lock(&vb->lock);
  886. i = find_first_bit(vb->dirty_map, VMAP_BBMAP_BITS);
  887. while (i < VMAP_BBMAP_BITS) {
  888. unsigned long s, e;
  889. int j;
  890. j = find_next_zero_bit(vb->dirty_map,
  891. VMAP_BBMAP_BITS, i);
  892. s = vb->va->va_start + (i << PAGE_SHIFT);
  893. e = vb->va->va_start + (j << PAGE_SHIFT);
  894. flush = 1;
  895. if (s < start)
  896. start = s;
  897. if (e > end)
  898. end = e;
  899. i = j;
  900. i = find_next_bit(vb->dirty_map,
  901. VMAP_BBMAP_BITS, i);
  902. }
  903. spin_unlock(&vb->lock);
  904. }
  905. rcu_read_unlock();
  906. }
  907. __purge_vmap_area_lazy(&start, &end, 1, flush);
  908. }
  909. EXPORT_SYMBOL_GPL(vm_unmap_aliases);
  910. /**
  911. * vm_unmap_ram - unmap linear kernel address space set up by vm_map_ram
  912. * @mem: the pointer returned by vm_map_ram
  913. * @count: the count passed to that vm_map_ram call (cannot unmap partial)
  914. */
  915. void vm_unmap_ram(const void *mem, unsigned int count)
  916. {
  917. unsigned long size = count << PAGE_SHIFT;
  918. unsigned long addr = (unsigned long)mem;
  919. BUG_ON(!addr);
  920. BUG_ON(addr < VMALLOC_START);
  921. BUG_ON(addr > VMALLOC_END);
  922. BUG_ON(addr & (PAGE_SIZE-1));
  923. debug_check_no_locks_freed(mem, size);
  924. vmap_debug_free_range(addr, addr+size);
  925. if (likely(count <= VMAP_MAX_ALLOC))
  926. vb_free(mem, size);
  927. else
  928. free_unmap_vmap_area_addr(addr);
  929. }
  930. EXPORT_SYMBOL(vm_unmap_ram);
  931. /**
  932. * vm_map_ram - map pages linearly into kernel virtual address (vmalloc space)
  933. * @pages: an array of pointers to the pages to be mapped
  934. * @count: number of pages
  935. * @node: prefer to allocate data structures on this node
  936. * @prot: memory protection to use. PAGE_KERNEL for regular RAM
  937. *
  938. * Returns: a pointer to the address that has been mapped, or %NULL on failure
  939. */
  940. void *vm_map_ram(struct page **pages, unsigned int count, int node, pgprot_t prot)
  941. {
  942. unsigned long size = count << PAGE_SHIFT;
  943. unsigned long addr;
  944. void *mem;
  945. if (likely(count <= VMAP_MAX_ALLOC)) {
  946. mem = vb_alloc(size, GFP_KERNEL);
  947. if (IS_ERR(mem))
  948. return NULL;
  949. addr = (unsigned long)mem;
  950. } else {
  951. struct vmap_area *va;
  952. va = alloc_vmap_area(size, PAGE_SIZE,
  953. VMALLOC_START, VMALLOC_END, node, GFP_KERNEL);
  954. if (IS_ERR(va))
  955. return NULL;
  956. addr = va->va_start;
  957. mem = (void *)addr;
  958. }
  959. if (vmap_page_range(addr, addr + size, prot, pages) < 0) {
  960. vm_unmap_ram(mem, count);
  961. return NULL;
  962. }
  963. return mem;
  964. }
  965. EXPORT_SYMBOL(vm_map_ram);
  966. static struct vm_struct *vmlist __initdata;
  967. /**
  968. * vm_area_add_early - add vmap area early during boot
  969. * @vm: vm_struct to add
  970. *
  971. * This function is used to add fixed kernel vm area to vmlist before
  972. * vmalloc_init() is called. @vm->addr, @vm->size, and @vm->flags
  973. * should contain proper values and the other fields should be zero.
  974. *
  975. * DO NOT USE THIS FUNCTION UNLESS YOU KNOW WHAT YOU'RE DOING.
  976. */
  977. void __init vm_area_add_early(struct vm_struct *vm)
  978. {
  979. struct vm_struct *tmp, **p;
  980. BUG_ON(vmap_initialized);
  981. for (p = &vmlist; (tmp = *p) != NULL; p = &tmp->next) {
  982. if (tmp->addr >= vm->addr) {
  983. BUG_ON(tmp->addr < vm->addr + vm->size);
  984. break;
  985. } else
  986. BUG_ON(tmp->addr + tmp->size > vm->addr);
  987. }
  988. vm->next = *p;
  989. *p = vm;
  990. }
  991. /**
  992. * vm_area_register_early - register vmap area early during boot
  993. * @vm: vm_struct to register
  994. * @align: requested alignment
  995. *
  996. * This function is used to register kernel vm area before
  997. * vmalloc_init() is called. @vm->size and @vm->flags should contain
  998. * proper values on entry and other fields should be zero. On return,
  999. * vm->addr contains the allocated address.
  1000. *
  1001. * DO NOT USE THIS FUNCTION UNLESS YOU KNOW WHAT YOU'RE DOING.
  1002. */
  1003. void __init vm_area_register_early(struct vm_struct *vm, size_t align)
  1004. {
  1005. static size_t vm_init_off __initdata;
  1006. unsigned long addr;
  1007. addr = ALIGN(VMALLOC_START + vm_init_off, align);
  1008. vm_init_off = PFN_ALIGN(addr + vm->size) - VMALLOC_START;
  1009. vm->addr = (void *)addr;
  1010. vm_area_add_early(vm);
  1011. }
  1012. void __init vmalloc_init(void)
  1013. {
  1014. struct vmap_area *va;
  1015. struct vm_struct *tmp;
  1016. int i;
  1017. for_each_possible_cpu(i) {
  1018. struct vmap_block_queue *vbq;
  1019. vbq = &per_cpu(vmap_block_queue, i);
  1020. spin_lock_init(&vbq->lock);
  1021. INIT_LIST_HEAD(&vbq->free);
  1022. }
  1023. /* Import existing vmlist entries. */
  1024. for (tmp = vmlist; tmp; tmp = tmp->next) {
  1025. va = kzalloc(sizeof(struct vmap_area), GFP_NOWAIT);
  1026. va->flags = VM_VM_AREA;
  1027. va->va_start = (unsigned long)tmp->addr;
  1028. va->va_end = va->va_start + tmp->size;
  1029. va->vm = tmp;
  1030. __insert_vmap_area(va);
  1031. }
  1032. vmap_area_pcpu_hole = VMALLOC_END;
  1033. vmap_initialized = true;
  1034. }
  1035. /**
  1036. * map_kernel_range_noflush - map kernel VM area with the specified pages
  1037. * @addr: start of the VM area to map
  1038. * @size: size of the VM area to map
  1039. * @prot: page protection flags to use
  1040. * @pages: pages to map
  1041. *
  1042. * Map PFN_UP(@size) pages at @addr. The VM area @addr and @size
  1043. * specify should have been allocated using get_vm_area() and its
  1044. * friends.
  1045. *
  1046. * NOTE:
  1047. * This function does NOT do any cache flushing. The caller is
  1048. * responsible for calling flush_cache_vmap() on to-be-mapped areas
  1049. * before calling this function.
  1050. *
  1051. * RETURNS:
  1052. * The number of pages mapped on success, -errno on failure.
  1053. */
  1054. int map_kernel_range_noflush(unsigned long addr, unsigned long size,
  1055. pgprot_t prot, struct page **pages)
  1056. {
  1057. return vmap_page_range_noflush(addr, addr + size, prot, pages);
  1058. }
  1059. /**
  1060. * unmap_kernel_range_noflush - unmap kernel VM area
  1061. * @addr: start of the VM area to unmap
  1062. * @size: size of the VM area to unmap
  1063. *
  1064. * Unmap PFN_UP(@size) pages at @addr. The VM area @addr and @size
  1065. * specify should have been allocated using get_vm_area() and its
  1066. * friends.
  1067. *
  1068. * NOTE:
  1069. * This function does NOT do any cache flushing. The caller is
  1070. * responsible for calling flush_cache_vunmap() on to-be-mapped areas
  1071. * before calling this function and flush_tlb_kernel_range() after.
  1072. */
  1073. void unmap_kernel_range_noflush(unsigned long addr, unsigned long size)
  1074. {
  1075. vunmap_page_range(addr, addr + size);
  1076. }
  1077. EXPORT_SYMBOL_GPL(unmap_kernel_range_noflush);
  1078. /**
  1079. * unmap_kernel_range - unmap kernel VM area and flush cache and TLB
  1080. * @addr: start of the VM area to unmap
  1081. * @size: size of the VM area to unmap
  1082. *
  1083. * Similar to unmap_kernel_range_noflush() but flushes vcache before
  1084. * the unmapping and tlb after.
  1085. */
  1086. void unmap_kernel_range(unsigned long addr, unsigned long size)
  1087. {
  1088. unsigned long end = addr + size;
  1089. flush_cache_vunmap(addr, end);
  1090. vunmap_page_range(addr, end);
  1091. flush_tlb_kernel_range(addr, end);
  1092. }
  1093. int map_vm_area(struct vm_struct *area, pgprot_t prot, struct page ***pages)
  1094. {
  1095. unsigned long addr = (unsigned long)area->addr;
  1096. unsigned long end = addr + area->size - PAGE_SIZE;
  1097. int err;
  1098. err = vmap_page_range(addr, end, prot, *pages);
  1099. if (err > 0) {
  1100. *pages += err;
  1101. err = 0;
  1102. }
  1103. return err;
  1104. }
  1105. EXPORT_SYMBOL_GPL(map_vm_area);
  1106. static void setup_vmalloc_vm(struct vm_struct *vm, struct vmap_area *va,
  1107. unsigned long flags, const void *caller)
  1108. {
  1109. spin_lock(&vmap_area_lock);
  1110. vm->flags = flags;
  1111. vm->addr = (void *)va->va_start;
  1112. vm->size = va->va_end - va->va_start;
  1113. vm->caller = caller;
  1114. va->vm = vm;
  1115. va->flags |= VM_VM_AREA;
  1116. spin_unlock(&vmap_area_lock);
  1117. }
  1118. static void clear_vm_unlist(struct vm_struct *vm)
  1119. {
  1120. /*
  1121. * Before removing VM_UNLIST,
  1122. * we should make sure that vm has proper values.
  1123. * Pair with smp_rmb() in show_numa_info().
  1124. */
  1125. smp_wmb();
  1126. vm->flags &= ~VM_UNLIST;
  1127. }
  1128. static void insert_vmalloc_vm(struct vm_struct *vm, struct vmap_area *va,
  1129. unsigned long flags, const void *caller)
  1130. {
  1131. setup_vmalloc_vm(vm, va, flags, caller);
  1132. clear_vm_unlist(vm);
  1133. }
  1134. static struct vm_struct *__get_vm_area_node(unsigned long size,
  1135. unsigned long align, unsigned long flags, unsigned long start,
  1136. unsigned long end, int node, gfp_t gfp_mask, const void *caller)
  1137. {
  1138. struct vmap_area *va;
  1139. struct vm_struct *area;
  1140. BUG_ON(in_interrupt());
  1141. if (flags & VM_IOREMAP) {
  1142. int bit = fls(size);
  1143. if (bit > IOREMAP_MAX_ORDER)
  1144. bit = IOREMAP_MAX_ORDER;
  1145. else if (bit < PAGE_SHIFT)
  1146. bit = PAGE_SHIFT;
  1147. align = 1ul << bit;
  1148. }
  1149. size = PAGE_ALIGN(size);
  1150. if (unlikely(!size))
  1151. return NULL;
  1152. area = kzalloc_node(sizeof(*area), gfp_mask & GFP_RECLAIM_MASK, node);
  1153. if (unlikely(!area))
  1154. return NULL;
  1155. /*
  1156. * We always allocate a guard page.
  1157. */
  1158. size += PAGE_SIZE;
  1159. va = alloc_vmap_area(size, align, start, end, node, gfp_mask);
  1160. if (IS_ERR(va)) {
  1161. kfree(area);
  1162. return NULL;
  1163. }
  1164. /*
  1165. * When this function is called from __vmalloc_node_range,
  1166. * we add VM_UNLIST flag to avoid accessing uninitialized
  1167. * members of vm_struct such as pages and nr_pages fields.
  1168. * They will be set later.
  1169. */
  1170. if (flags & VM_UNLIST)
  1171. setup_vmalloc_vm(area, va, flags, caller);
  1172. else
  1173. insert_vmalloc_vm(area, va, flags, caller);
  1174. return area;
  1175. }
  1176. struct vm_struct *__get_vm_area(unsigned long size, unsigned long flags,
  1177. unsigned long start, unsigned long end)
  1178. {
  1179. return __get_vm_area_node(size, 1, flags, start, end, NUMA_NO_NODE,
  1180. GFP_KERNEL, __builtin_return_address(0));
  1181. }
  1182. EXPORT_SYMBOL_GPL(__get_vm_area);
  1183. struct vm_struct *__get_vm_area_caller(unsigned long size, unsigned long flags,
  1184. unsigned long start, unsigned long end,
  1185. const void *caller)
  1186. {
  1187. return __get_vm_area_node(size, 1, flags, start, end, NUMA_NO_NODE,
  1188. GFP_KERNEL, caller);
  1189. }
  1190. /**
  1191. * get_vm_area - reserve a contiguous kernel virtual area
  1192. * @size: size of the area
  1193. * @flags: %VM_IOREMAP for I/O mappings or VM_ALLOC
  1194. *
  1195. * Search an area of @size in the kernel virtual mapping area,
  1196. * and reserved it for out purposes. Returns the area descriptor
  1197. * on success or %NULL on failure.
  1198. */
  1199. struct vm_struct *get_vm_area(unsigned long size, unsigned long flags)
  1200. {
  1201. return __get_vm_area_node(size, 1, flags, VMALLOC_START, VMALLOC_END,
  1202. NUMA_NO_NODE, GFP_KERNEL,
  1203. __builtin_return_address(0));
  1204. }
  1205. struct vm_struct *get_vm_area_caller(unsigned long size, unsigned long flags,
  1206. const void *caller)
  1207. {
  1208. return __get_vm_area_node(size, 1, flags, VMALLOC_START, VMALLOC_END,
  1209. NUMA_NO_NODE, GFP_KERNEL, caller);
  1210. }
  1211. /**
  1212. * find_vm_area - find a continuous kernel virtual area
  1213. * @addr: base address
  1214. *
  1215. * Search for the kernel VM area starting at @addr, and return it.
  1216. * It is up to the caller to do all required locking to keep the returned
  1217. * pointer valid.
  1218. */
  1219. struct vm_struct *find_vm_area(const void *addr)
  1220. {
  1221. struct vmap_area *va;
  1222. va = find_vmap_area((unsigned long)addr);
  1223. if (va && va->flags & VM_VM_AREA)
  1224. return va->vm;
  1225. return NULL;
  1226. }
  1227. /**
  1228. * remove_vm_area - find and remove a continuous kernel virtual area
  1229. * @addr: base address
  1230. *
  1231. * Search for the kernel VM area starting at @addr, and remove it.
  1232. * This function returns the found VM area, but using it is NOT safe
  1233. * on SMP machines, except for its size or flags.
  1234. */
  1235. struct vm_struct *remove_vm_area(const void *addr)
  1236. {
  1237. struct vmap_area *va;
  1238. va = find_vmap_area((unsigned long)addr);
  1239. if (va && va->flags & VM_VM_AREA) {
  1240. struct vm_struct *vm = va->vm;
  1241. spin_lock(&vmap_area_lock);
  1242. va->vm = NULL;
  1243. va->flags &= ~VM_VM_AREA;
  1244. spin_unlock(&vmap_area_lock);
  1245. vmap_debug_free_range(va->va_start, va->va_end);
  1246. free_unmap_vmap_area(va);
  1247. vm->size -= PAGE_SIZE;
  1248. return vm;
  1249. }
  1250. return NULL;
  1251. }
  1252. static void __vunmap(const void *addr, int deallocate_pages)
  1253. {
  1254. struct vm_struct *area;
  1255. if (!addr)
  1256. return;
  1257. if ((PAGE_SIZE-1) & (unsigned long)addr) {
  1258. WARN(1, KERN_ERR "Trying to vfree() bad address (%p)\n", addr);
  1259. return;
  1260. }
  1261. area = remove_vm_area(addr);
  1262. if (unlikely(!area)) {
  1263. WARN(1, KERN_ERR "Trying to vfree() nonexistent vm area (%p)\n",
  1264. addr);
  1265. return;
  1266. }
  1267. debug_check_no_locks_freed(addr, area->size);
  1268. debug_check_no_obj_freed(addr, area->size);
  1269. if (deallocate_pages) {
  1270. int i;
  1271. for (i = 0; i < area->nr_pages; i++) {
  1272. struct page *page = area->pages[i];
  1273. BUG_ON(!page);
  1274. __free_page(page);
  1275. }
  1276. if (area->flags & VM_VPAGES)
  1277. vfree(area->pages);
  1278. else
  1279. kfree(area->pages);
  1280. }
  1281. kfree(area);
  1282. return;
  1283. }
  1284. /**
  1285. * vfree - release memory allocated by vmalloc()
  1286. * @addr: memory base address
  1287. *
  1288. * Free the virtually continuous memory area starting at @addr, as
  1289. * obtained from vmalloc(), vmalloc_32() or __vmalloc(). If @addr is
  1290. * NULL, no operation is performed.
  1291. *
  1292. * Must not be called in interrupt context.
  1293. */
  1294. void vfree(const void *addr)
  1295. {
  1296. BUG_ON(in_interrupt());
  1297. kmemleak_free(addr);
  1298. __vunmap(addr, 1);
  1299. }
  1300. EXPORT_SYMBOL(vfree);
  1301. /**
  1302. * vunmap - release virtual mapping obtained by vmap()
  1303. * @addr: memory base address
  1304. *
  1305. * Free the virtually contiguous memory area starting at @addr,
  1306. * which was created from the page array passed to vmap().
  1307. *
  1308. * Must not be called in interrupt context.
  1309. */
  1310. void vunmap(const void *addr)
  1311. {
  1312. BUG_ON(in_interrupt());
  1313. might_sleep();
  1314. __vunmap(addr, 0);
  1315. }
  1316. EXPORT_SYMBOL(vunmap);
  1317. /**
  1318. * vmap - map an array of pages into virtually contiguous space
  1319. * @pages: array of page pointers
  1320. * @count: number of pages to map
  1321. * @flags: vm_area->flags
  1322. * @prot: page protection for the mapping
  1323. *
  1324. * Maps @count pages from @pages into contiguous kernel virtual
  1325. * space.
  1326. */
  1327. void *vmap(struct page **pages, unsigned int count,
  1328. unsigned long flags, pgprot_t prot)
  1329. {
  1330. struct vm_struct *area;
  1331. might_sleep();
  1332. if (count > totalram_pages)
  1333. return NULL;
  1334. area = get_vm_area_caller((count << PAGE_SHIFT), flags,
  1335. __builtin_return_address(0));
  1336. if (!area)
  1337. return NULL;
  1338. if (map_vm_area(area, prot, &pages)) {
  1339. vunmap(area->addr);
  1340. return NULL;
  1341. }
  1342. return area->addr;
  1343. }
  1344. EXPORT_SYMBOL(vmap);
  1345. static void *__vmalloc_node(unsigned long size, unsigned long align,
  1346. gfp_t gfp_mask, pgprot_t prot,
  1347. int node, const void *caller);
  1348. static void *__vmalloc_area_node(struct vm_struct *area, gfp_t gfp_mask,
  1349. pgprot_t prot, int node, const void *caller)
  1350. {
  1351. const int order = 0;
  1352. struct page **pages;
  1353. unsigned int nr_pages, array_size, i;
  1354. gfp_t nested_gfp = (gfp_mask & GFP_RECLAIM_MASK) | __GFP_ZERO;
  1355. nr_pages = (area->size - PAGE_SIZE) >> PAGE_SHIFT;
  1356. array_size = (nr_pages * sizeof(struct page *));
  1357. area->nr_pages = nr_pages;
  1358. /* Please note that the recursion is strictly bounded. */
  1359. if (array_size > PAGE_SIZE) {
  1360. pages = __vmalloc_node(array_size, 1, nested_gfp|__GFP_HIGHMEM,
  1361. PAGE_KERNEL, node, caller);
  1362. area->flags |= VM_VPAGES;
  1363. } else {
  1364. pages = kmalloc_node(array_size, nested_gfp, node);
  1365. }
  1366. area->pages = pages;
  1367. area->caller = caller;
  1368. if (!area->pages) {
  1369. remove_vm_area(area->addr);
  1370. kfree(area);
  1371. return NULL;
  1372. }
  1373. for (i = 0; i < area->nr_pages; i++) {
  1374. struct page *page;
  1375. gfp_t tmp_mask = gfp_mask | __GFP_NOWARN;
  1376. if (node < 0)
  1377. page = alloc_page(tmp_mask);
  1378. else
  1379. page = alloc_pages_node(node, tmp_mask, order);
  1380. if (unlikely(!page)) {
  1381. /* Successfully allocated i pages, free them in __vunmap() */
  1382. area->nr_pages = i;
  1383. goto fail;
  1384. }
  1385. area->pages[i] = page;
  1386. }
  1387. if (map_vm_area(area, prot, &pages))
  1388. goto fail;
  1389. return area->addr;
  1390. fail:
  1391. warn_alloc_failed(gfp_mask, order,
  1392. "vmalloc: allocation failure, allocated %ld of %ld bytes\n",
  1393. (area->nr_pages*PAGE_SIZE), area->size);
  1394. vfree(area->addr);
  1395. return NULL;
  1396. }
  1397. /**
  1398. * __vmalloc_node_range - allocate virtually contiguous memory
  1399. * @size: allocation size
  1400. * @align: desired alignment
  1401. * @start: vm area range start
  1402. * @end: vm area range end
  1403. * @gfp_mask: flags for the page level allocator
  1404. * @prot: protection mask for the allocated pages
  1405. * @node: node to use for allocation or NUMA_NO_NODE
  1406. * @caller: caller's return address
  1407. *
  1408. * Allocate enough pages to cover @size from the page level
  1409. * allocator with @gfp_mask flags. Map them into contiguous
  1410. * kernel virtual space, using a pagetable protection of @prot.
  1411. */
  1412. void *__vmalloc_node_range(unsigned long size, unsigned long align,
  1413. unsigned long start, unsigned long end, gfp_t gfp_mask,
  1414. pgprot_t prot, int node, const void *caller)
  1415. {
  1416. struct vm_struct *area;
  1417. void *addr;
  1418. unsigned long real_size = size;
  1419. size = PAGE_ALIGN(size);
  1420. if (!size || (size >> PAGE_SHIFT) > totalram_pages)
  1421. goto fail;
  1422. area = __get_vm_area_node(size, align, VM_ALLOC | VM_UNLIST,
  1423. start, end, node, gfp_mask, caller);
  1424. if (!area)
  1425. goto fail;
  1426. addr = __vmalloc_area_node(area, gfp_mask, prot, node, caller);
  1427. if (!addr)
  1428. return NULL;
  1429. /*
  1430. * In this function, newly allocated vm_struct has VM_UNLIST flag.
  1431. * It means that vm_struct is not fully initialized.
  1432. * Now, it is fully initialized, so remove this flag here.
  1433. */
  1434. clear_vm_unlist(area);
  1435. /*
  1436. * A ref_count = 3 is needed because the vm_struct and vmap_area
  1437. * structures allocated in the __get_vm_area_node() function contain
  1438. * references to the virtual address of the vmalloc'ed block.
  1439. */
  1440. kmemleak_alloc(addr, real_size, 3, gfp_mask);
  1441. return addr;
  1442. fail:
  1443. warn_alloc_failed(gfp_mask, 0,
  1444. "vmalloc: allocation failure: %lu bytes\n",
  1445. real_size);
  1446. return NULL;
  1447. }
  1448. /**
  1449. * __vmalloc_node - allocate virtually contiguous memory
  1450. * @size: allocation size
  1451. * @align: desired alignment
  1452. * @gfp_mask: flags for the page level allocator
  1453. * @prot: protection mask for the allocated pages
  1454. * @node: node to use for allocation or NUMA_NO_NODE
  1455. * @caller: caller's return address
  1456. *
  1457. * Allocate enough pages to cover @size from the page level
  1458. * allocator with @gfp_mask flags. Map them into contiguous
  1459. * kernel virtual space, using a pagetable protection of @prot.
  1460. */
  1461. static void *__vmalloc_node(unsigned long size, unsigned long align,
  1462. gfp_t gfp_mask, pgprot_t prot,
  1463. int node, const void *caller)
  1464. {
  1465. return __vmalloc_node_range(size, align, VMALLOC_START, VMALLOC_END,
  1466. gfp_mask, prot, node, caller);
  1467. }
  1468. void *__vmalloc(unsigned long size, gfp_t gfp_mask, pgprot_t prot)
  1469. {
  1470. return __vmalloc_node(size, 1, gfp_mask, prot, NUMA_NO_NODE,
  1471. __builtin_return_address(0));
  1472. }
  1473. EXPORT_SYMBOL(__vmalloc);
  1474. static inline void *__vmalloc_node_flags(unsigned long size,
  1475. int node, gfp_t flags)
  1476. {
  1477. return __vmalloc_node(size, 1, flags, PAGE_KERNEL,
  1478. node, __builtin_return_address(0));
  1479. }
  1480. /**
  1481. * vmalloc - allocate virtually contiguous memory
  1482. * @size: allocation size
  1483. * Allocate enough pages to cover @size from the page level
  1484. * allocator and map them into contiguous kernel virtual space.
  1485. *
  1486. * For tight control over page level allocator and protection flags
  1487. * use __vmalloc() instead.
  1488. */
  1489. void *vmalloc(unsigned long size)
  1490. {
  1491. return __vmalloc_node_flags(size, NUMA_NO_NODE,
  1492. GFP_KERNEL | __GFP_HIGHMEM);
  1493. }
  1494. EXPORT_SYMBOL(vmalloc);
  1495. /**
  1496. * vzalloc - allocate virtually contiguous memory with zero fill
  1497. * @size: allocation size
  1498. * Allocate enough pages to cover @size from the page level
  1499. * allocator and map them into contiguous kernel virtual space.
  1500. * The memory allocated is set to zero.
  1501. *
  1502. * For tight control over page level allocator and protection flags
  1503. * use __vmalloc() instead.
  1504. */
  1505. void *vzalloc(unsigned long size)
  1506. {
  1507. return __vmalloc_node_flags(size, NUMA_NO_NODE,
  1508. GFP_KERNEL | __GFP_HIGHMEM | __GFP_ZERO);
  1509. }
  1510. EXPORT_SYMBOL(vzalloc);
  1511. /**
  1512. * vmalloc_user - allocate zeroed virtually contiguous memory for userspace
  1513. * @size: allocation size
  1514. *
  1515. * The resulting memory area is zeroed so it can be mapped to userspace
  1516. * without leaking data.
  1517. */
  1518. void *vmalloc_user(unsigned long size)
  1519. {
  1520. struct vm_struct *area;
  1521. void *ret;
  1522. ret = __vmalloc_node(size, SHMLBA,
  1523. GFP_KERNEL | __GFP_HIGHMEM | __GFP_ZERO,
  1524. PAGE_KERNEL, NUMA_NO_NODE,
  1525. __builtin_return_address(0));
  1526. if (ret) {
  1527. area = find_vm_area(ret);
  1528. area->flags |= VM_USERMAP;
  1529. }
  1530. return ret;
  1531. }
  1532. EXPORT_SYMBOL(vmalloc_user);
  1533. /**
  1534. * vmalloc_node - allocate memory on a specific node
  1535. * @size: allocation size
  1536. * @node: numa node
  1537. *
  1538. * Allocate enough pages to cover @size from the page level
  1539. * allocator and map them into contiguous kernel virtual space.
  1540. *
  1541. * For tight control over page level allocator and protection flags
  1542. * use __vmalloc() instead.
  1543. */
  1544. void *vmalloc_node(unsigned long size, int node)
  1545. {
  1546. return __vmalloc_node(size, 1, GFP_KERNEL | __GFP_HIGHMEM, PAGE_KERNEL,
  1547. node, __builtin_return_address(0));
  1548. }
  1549. EXPORT_SYMBOL(vmalloc_node);
  1550. /**
  1551. * vzalloc_node - allocate memory on a specific node with zero fill
  1552. * @size: allocation size
  1553. * @node: numa node
  1554. *
  1555. * Allocate enough pages to cover @size from the page level
  1556. * allocator and map them into contiguous kernel virtual space.
  1557. * The memory allocated is set to zero.
  1558. *
  1559. * For tight control over page level allocator and protection flags
  1560. * use __vmalloc_node() instead.
  1561. */
  1562. void *vzalloc_node(unsigned long size, int node)
  1563. {
  1564. return __vmalloc_node_flags(size, node,
  1565. GFP_KERNEL | __GFP_HIGHMEM | __GFP_ZERO);
  1566. }
  1567. EXPORT_SYMBOL(vzalloc_node);
  1568. #ifndef PAGE_KERNEL_EXEC
  1569. # define PAGE_KERNEL_EXEC PAGE_KERNEL
  1570. #endif
  1571. /**
  1572. * vmalloc_exec - allocate virtually contiguous, executable memory
  1573. * @size: allocation size
  1574. *
  1575. * Kernel-internal function to allocate enough pages to cover @size
  1576. * the page level allocator and map them into contiguous and
  1577. * executable kernel virtual space.
  1578. *
  1579. * For tight control over page level allocator and protection flags
  1580. * use __vmalloc() instead.
  1581. */
  1582. void *vmalloc_exec(unsigned long size)
  1583. {
  1584. return __vmalloc_node(size, 1, GFP_KERNEL | __GFP_HIGHMEM, PAGE_KERNEL_EXEC,
  1585. NUMA_NO_NODE, __builtin_return_address(0));
  1586. }
  1587. #if defined(CONFIG_64BIT) && defined(CONFIG_ZONE_DMA32)
  1588. #define GFP_VMALLOC32 GFP_DMA32 | GFP_KERNEL
  1589. #elif defined(CONFIG_64BIT) && defined(CONFIG_ZONE_DMA)
  1590. #define GFP_VMALLOC32 GFP_DMA | GFP_KERNEL
  1591. #else
  1592. #define GFP_VMALLOC32 GFP_KERNEL
  1593. #endif
  1594. /**
  1595. * vmalloc_32 - allocate virtually contiguous memory (32bit addressable)
  1596. * @size: allocation size
  1597. *
  1598. * Allocate enough 32bit PA addressable pages to cover @size from the
  1599. * page level allocator and map them into contiguous kernel virtual space.
  1600. */
  1601. void *vmalloc_32(unsigned long size)
  1602. {
  1603. return __vmalloc_node(size, 1, GFP_VMALLOC32, PAGE_KERNEL,
  1604. NUMA_NO_NODE, __builtin_return_address(0));
  1605. }
  1606. EXPORT_SYMBOL(vmalloc_32);
  1607. /**
  1608. * vmalloc_32_user - allocate zeroed virtually contiguous 32bit memory
  1609. * @size: allocation size
  1610. *
  1611. * The resulting memory area is 32bit addressable and zeroed so it can be
  1612. * mapped to userspace without leaking data.
  1613. */
  1614. void *vmalloc_32_user(unsigned long size)
  1615. {
  1616. struct vm_struct *area;
  1617. void *ret;
  1618. ret = __vmalloc_node(size, 1, GFP_VMALLOC32 | __GFP_ZERO, PAGE_KERNEL,
  1619. NUMA_NO_NODE, __builtin_return_address(0));
  1620. if (ret) {
  1621. area = find_vm_area(ret);
  1622. area->flags |= VM_USERMAP;
  1623. }
  1624. return ret;
  1625. }
  1626. EXPORT_SYMBOL(vmalloc_32_user);
  1627. /*
  1628. * small helper routine , copy contents to buf from addr.
  1629. * If the page is not present, fill zero.
  1630. */
  1631. static int aligned_vread(char *buf, char *addr, unsigned long count)
  1632. {
  1633. struct page *p;
  1634. int copied = 0;
  1635. while (count) {
  1636. unsigned long offset, length;
  1637. offset = (unsigned long)addr & ~PAGE_MASK;
  1638. length = PAGE_SIZE - offset;
  1639. if (length > count)
  1640. length = count;
  1641. p = vmalloc_to_page(addr);
  1642. /*
  1643. * To do safe access to this _mapped_ area, we need
  1644. * lock. But adding lock here means that we need to add
  1645. * overhead of vmalloc()/vfree() calles for this _debug_
  1646. * interface, rarely used. Instead of that, we'll use
  1647. * kmap() and get small overhead in this access function.
  1648. */
  1649. if (p) {
  1650. /*
  1651. * we can expect USER0 is not used (see vread/vwrite's
  1652. * function description)
  1653. */
  1654. void *map = kmap_atomic(p);
  1655. memcpy(buf, map + offset, length);
  1656. kunmap_atomic(map);
  1657. } else
  1658. memset(buf, 0, length);
  1659. addr += length;
  1660. buf += length;
  1661. copied += length;
  1662. count -= length;
  1663. }
  1664. return copied;
  1665. }
  1666. static int aligned_vwrite(char *buf, char *addr, unsigned long count)
  1667. {
  1668. struct page *p;
  1669. int copied = 0;
  1670. while (count) {
  1671. unsigned long offset, length;
  1672. offset = (unsigned long)addr & ~PAGE_MASK;
  1673. length = PAGE_SIZE - offset;
  1674. if (length > count)
  1675. length = count;
  1676. p = vmalloc_to_page(addr);
  1677. /*
  1678. * To do safe access to this _mapped_ area, we need
  1679. * lock. But adding lock here means that we need to add
  1680. * overhead of vmalloc()/vfree() calles for this _debug_
  1681. * interface, rarely used. Instead of that, we'll use
  1682. * kmap() and get small overhead in this access function.
  1683. */
  1684. if (p) {
  1685. /*
  1686. * we can expect USER0 is not used (see vread/vwrite's
  1687. * function description)
  1688. */
  1689. void *map = kmap_atomic(p);
  1690. memcpy(map + offset, buf, length);
  1691. kunmap_atomic(map);
  1692. }
  1693. addr += length;
  1694. buf += length;
  1695. copied += length;
  1696. count -= length;
  1697. }
  1698. return copied;
  1699. }
  1700. /**
  1701. * vread() - read vmalloc area in a safe way.
  1702. * @buf: buffer for reading data
  1703. * @addr: vm address.
  1704. * @count: number of bytes to be read.
  1705. *
  1706. * Returns # of bytes which addr and buf should be increased.
  1707. * (same number to @count). Returns 0 if [addr...addr+count) doesn't
  1708. * includes any intersect with alive vmalloc area.
  1709. *
  1710. * This function checks that addr is a valid vmalloc'ed area, and
  1711. * copy data from that area to a given buffer. If the given memory range
  1712. * of [addr...addr+count) includes some valid address, data is copied to
  1713. * proper area of @buf. If there are memory holes, they'll be zero-filled.
  1714. * IOREMAP area is treated as memory hole and no copy is done.
  1715. *
  1716. * If [addr...addr+count) doesn't includes any intersects with alive
  1717. * vm_struct area, returns 0. @buf should be kernel's buffer.
  1718. *
  1719. * Note: In usual ops, vread() is never necessary because the caller
  1720. * should know vmalloc() area is valid and can use memcpy().
  1721. * This is for routines which have to access vmalloc area without
  1722. * any informaion, as /dev/kmem.
  1723. *
  1724. */
  1725. long vread(char *buf, char *addr, unsigned long count)
  1726. {
  1727. struct vmap_area *va;
  1728. struct vm_struct *vm;
  1729. char *vaddr, *buf_start = buf;
  1730. unsigned long buflen = count;
  1731. unsigned long n;
  1732. /* Don't allow overflow */
  1733. if ((unsigned long) addr + count < count)
  1734. count = -(unsigned long) addr;
  1735. spin_lock(&vmap_area_lock);
  1736. list_for_each_entry(va, &vmap_area_list, list) {
  1737. if (!count)
  1738. break;
  1739. if (!(va->flags & VM_VM_AREA))
  1740. continue;
  1741. vm = va->vm;
  1742. vaddr = (char *) vm->addr;
  1743. if (addr >= vaddr + vm->size - PAGE_SIZE)
  1744. continue;
  1745. while (addr < vaddr) {
  1746. if (count == 0)
  1747. goto finished;
  1748. *buf = '\0';
  1749. buf++;
  1750. addr++;
  1751. count--;
  1752. }
  1753. n = vaddr + vm->size - PAGE_SIZE - addr;
  1754. if (n > count)
  1755. n = count;
  1756. if (!(vm->flags & VM_IOREMAP))
  1757. aligned_vread(buf, addr, n);
  1758. else /* IOREMAP area is treated as memory hole */
  1759. memset(buf, 0, n);
  1760. buf += n;
  1761. addr += n;
  1762. count -= n;
  1763. }
  1764. finished:
  1765. spin_unlock(&vmap_area_lock);
  1766. if (buf == buf_start)
  1767. return 0;
  1768. /* zero-fill memory holes */
  1769. if (buf != buf_start + buflen)
  1770. memset(buf, 0, buflen - (buf - buf_start));
  1771. return buflen;
  1772. }
  1773. /**
  1774. * vwrite() - write vmalloc area in a safe way.
  1775. * @buf: buffer for source data
  1776. * @addr: vm address.
  1777. * @count: number of bytes to be read.
  1778. *
  1779. * Returns # of bytes which addr and buf should be incresed.
  1780. * (same number to @count).
  1781. * If [addr...addr+count) doesn't includes any intersect with valid
  1782. * vmalloc area, returns 0.
  1783. *
  1784. * This function checks that addr is a valid vmalloc'ed area, and
  1785. * copy data from a buffer to the given addr. If specified range of
  1786. * [addr...addr+count) includes some valid address, data is copied from
  1787. * proper area of @buf. If there are memory holes, no copy to hole.
  1788. * IOREMAP area is treated as memory hole and no copy is done.
  1789. *
  1790. * If [addr...addr+count) doesn't includes any intersects with alive
  1791. * vm_struct area, returns 0. @buf should be kernel's buffer.
  1792. *
  1793. * Note: In usual ops, vwrite() is never necessary because the caller
  1794. * should know vmalloc() area is valid and can use memcpy().
  1795. * This is for routines which have to access vmalloc area without
  1796. * any informaion, as /dev/kmem.
  1797. */
  1798. long vwrite(char *buf, char *addr, unsigned long count)
  1799. {
  1800. struct vmap_area *va;
  1801. struct vm_struct *vm;
  1802. char *vaddr;
  1803. unsigned long n, buflen;
  1804. int copied = 0;
  1805. /* Don't allow overflow */
  1806. if ((unsigned long) addr + count < count)
  1807. count = -(unsigned long) addr;
  1808. buflen = count;
  1809. spin_lock(&vmap_area_lock);
  1810. list_for_each_entry(va, &vmap_area_list, list) {
  1811. if (!count)
  1812. break;
  1813. if (!(va->flags & VM_VM_AREA))
  1814. continue;
  1815. vm = va->vm;
  1816. vaddr = (char *) vm->addr;
  1817. if (addr >= vaddr + vm->size - PAGE_SIZE)
  1818. continue;
  1819. while (addr < vaddr) {
  1820. if (count == 0)
  1821. goto finished;
  1822. buf++;
  1823. addr++;
  1824. count--;
  1825. }
  1826. n = vaddr + vm->size - PAGE_SIZE - addr;
  1827. if (n > count)
  1828. n = count;
  1829. if (!(vm->flags & VM_IOREMAP)) {
  1830. aligned_vwrite(buf, addr, n);
  1831. copied++;
  1832. }
  1833. buf += n;
  1834. addr += n;
  1835. count -= n;
  1836. }
  1837. finished:
  1838. spin_unlock(&vmap_area_lock);
  1839. if (!copied)
  1840. return 0;
  1841. return buflen;
  1842. }
  1843. /**
  1844. * remap_vmalloc_range - map vmalloc pages to userspace
  1845. * @vma: vma to cover (map full range of vma)
  1846. * @addr: vmalloc memory
  1847. * @pgoff: number of pages into addr before first page to map
  1848. *
  1849. * Returns: 0 for success, -Exxx on failure
  1850. *
  1851. * This function checks that addr is a valid vmalloc'ed area, and
  1852. * that it is big enough to cover the vma. Will return failure if
  1853. * that criteria isn't met.
  1854. *
  1855. * Similar to remap_pfn_range() (see mm/memory.c)
  1856. */
  1857. int remap_vmalloc_range(struct vm_area_struct *vma, void *addr,
  1858. unsigned long pgoff)
  1859. {
  1860. struct vm_struct *area;
  1861. unsigned long uaddr = vma->vm_start;
  1862. unsigned long usize = vma->vm_end - vma->vm_start;
  1863. if ((PAGE_SIZE-1) & (unsigned long)addr)
  1864. return -EINVAL;
  1865. area = find_vm_area(addr);
  1866. if (!area)
  1867. return -EINVAL;
  1868. if (!(area->flags & VM_USERMAP))
  1869. return -EINVAL;
  1870. if (usize + (pgoff << PAGE_SHIFT) > area->size - PAGE_SIZE)
  1871. return -EINVAL;
  1872. addr += pgoff << PAGE_SHIFT;
  1873. do {
  1874. struct page *page = vmalloc_to_page(addr);
  1875. int ret;
  1876. ret = vm_insert_page(vma, uaddr, page);
  1877. if (ret)
  1878. return ret;
  1879. uaddr += PAGE_SIZE;
  1880. addr += PAGE_SIZE;
  1881. usize -= PAGE_SIZE;
  1882. } while (usize > 0);
  1883. vma->vm_flags |= VM_DONTEXPAND | VM_DONTDUMP;
  1884. return 0;
  1885. }
  1886. EXPORT_SYMBOL(remap_vmalloc_range);
  1887. /*
  1888. * Implement a stub for vmalloc_sync_all() if the architecture chose not to
  1889. * have one.
  1890. */
  1891. void __attribute__((weak)) vmalloc_sync_all(void)
  1892. {
  1893. }
  1894. static int f(pte_t *pte, pgtable_t table, unsigned long addr, void *data)
  1895. {
  1896. pte_t ***p = data;
  1897. if (p) {
  1898. *(*p) = pte;
  1899. (*p)++;
  1900. }
  1901. return 0;
  1902. }
  1903. /**
  1904. * alloc_vm_area - allocate a range of kernel address space
  1905. * @size: size of the area
  1906. * @ptes: returns the PTEs for the address space
  1907. *
  1908. * Returns: NULL on failure, vm_struct on success
  1909. *
  1910. * This function reserves a range of kernel address space, and
  1911. * allocates pagetables to map that range. No actual mappings
  1912. * are created.
  1913. *
  1914. * If @ptes is non-NULL, pointers to the PTEs (in init_mm)
  1915. * allocated for the VM area are returned.
  1916. */
  1917. struct vm_struct *alloc_vm_area(size_t size, pte_t **ptes)
  1918. {
  1919. struct vm_struct *area;
  1920. area = get_vm_area_caller(size, VM_IOREMAP,
  1921. __builtin_return_address(0));
  1922. if (area == NULL)
  1923. return NULL;
  1924. /*
  1925. * This ensures that page tables are constructed for this region
  1926. * of kernel virtual address space and mapped into init_mm.
  1927. */
  1928. if (apply_to_page_range(&init_mm, (unsigned long)area->addr,
  1929. size, f, ptes ? &ptes : NULL)) {
  1930. free_vm_area(area);
  1931. return NULL;
  1932. }
  1933. return area;
  1934. }
  1935. EXPORT_SYMBOL_GPL(alloc_vm_area);
  1936. void free_vm_area(struct vm_struct *area)
  1937. {
  1938. struct vm_struct *ret;
  1939. ret = remove_vm_area(area->addr);
  1940. BUG_ON(ret != area);
  1941. kfree(area);
  1942. }
  1943. EXPORT_SYMBOL_GPL(free_vm_area);
  1944. #ifdef CONFIG_SMP
  1945. static struct vmap_area *node_to_va(struct rb_node *n)
  1946. {
  1947. return n ? rb_entry(n, struct vmap_area, rb_node) : NULL;
  1948. }
  1949. /**
  1950. * pvm_find_next_prev - find the next and prev vmap_area surrounding @end
  1951. * @end: target address
  1952. * @pnext: out arg for the next vmap_area
  1953. * @pprev: out arg for the previous vmap_area
  1954. *
  1955. * Returns: %true if either or both of next and prev are found,
  1956. * %false if no vmap_area exists
  1957. *
  1958. * Find vmap_areas end addresses of which enclose @end. ie. if not
  1959. * NULL, *pnext->va_end > @end and *pprev->va_end <= @end.
  1960. */
  1961. static bool pvm_find_next_prev(unsigned long end,
  1962. struct vmap_area **pnext,
  1963. struct vmap_area **pprev)
  1964. {
  1965. struct rb_node *n = vmap_area_root.rb_node;
  1966. struct vmap_area *va = NULL;
  1967. while (n) {
  1968. va = rb_entry(n, struct vmap_area, rb_node);
  1969. if (end < va->va_end)
  1970. n = n->rb_left;
  1971. else if (end > va->va_end)
  1972. n = n->rb_right;
  1973. else
  1974. break;
  1975. }
  1976. if (!va)
  1977. return false;
  1978. if (va->va_end > end) {
  1979. *pnext = va;
  1980. *pprev = node_to_va(rb_prev(&(*pnext)->rb_node));
  1981. } else {
  1982. *pprev = va;
  1983. *pnext = node_to_va(rb_next(&(*pprev)->rb_node));
  1984. }
  1985. return true;
  1986. }
  1987. /**
  1988. * pvm_determine_end - find the highest aligned address between two vmap_areas
  1989. * @pnext: in/out arg for the next vmap_area
  1990. * @pprev: in/out arg for the previous vmap_area
  1991. * @align: alignment
  1992. *
  1993. * Returns: determined end address
  1994. *
  1995. * Find the highest aligned address between *@pnext and *@pprev below
  1996. * VMALLOC_END. *@pnext and *@pprev are adjusted so that the aligned
  1997. * down address is between the end addresses of the two vmap_areas.
  1998. *
  1999. * Please note that the address returned by this function may fall
  2000. * inside *@pnext vmap_area. The caller is responsible for checking
  2001. * that.
  2002. */
  2003. static unsigned long pvm_determine_end(struct vmap_area **pnext,
  2004. struct vmap_area **pprev,
  2005. unsigned long align)
  2006. {
  2007. const unsigned long vmalloc_end = VMALLOC_END & ~(align - 1);
  2008. unsigned long addr;
  2009. if (*pnext)
  2010. addr = min((*pnext)->va_start & ~(align - 1), vmalloc_end);
  2011. else
  2012. addr = vmalloc_end;
  2013. while (*pprev && (*pprev)->va_end > addr) {
  2014. *pnext = *pprev;
  2015. *pprev = node_to_va(rb_prev(&(*pnext)->rb_node));
  2016. }
  2017. return addr;
  2018. }
  2019. /**
  2020. * pcpu_get_vm_areas - allocate vmalloc areas for percpu allocator
  2021. * @offsets: array containing offset of each area
  2022. * @sizes: array containing size of each area
  2023. * @nr_vms: the number of areas to allocate
  2024. * @align: alignment, all entries in @offsets and @sizes must be aligned to this
  2025. *
  2026. * Returns: kmalloc'd vm_struct pointer array pointing to allocated
  2027. * vm_structs on success, %NULL on failure
  2028. *
  2029. * Percpu allocator wants to use congruent vm areas so that it can
  2030. * maintain the offsets among percpu areas. This function allocates
  2031. * congruent vmalloc areas for it with GFP_KERNEL. These areas tend to
  2032. * be scattered pretty far, distance between two areas easily going up
  2033. * to gigabytes. To avoid interacting with regular vmallocs, these
  2034. * areas are allocated from top.
  2035. *
  2036. * Despite its complicated look, this allocator is rather simple. It
  2037. * does everything top-down and scans areas from the end looking for
  2038. * matching slot. While scanning, if any of the areas overlaps with
  2039. * existing vmap_area, the base address is pulled down to fit the
  2040. * area. Scanning is repeated till all the areas fit and then all
  2041. * necessary data structres are inserted and the result is returned.
  2042. */
  2043. struct vm_struct **pcpu_get_vm_areas(const unsigned long *offsets,
  2044. const size_t *sizes, int nr_vms,
  2045. size_t align)
  2046. {
  2047. const unsigned long vmalloc_start = ALIGN(VMALLOC_START, align);
  2048. const unsigned long vmalloc_end = VMALLOC_END & ~(align - 1);
  2049. struct vmap_area **vas, *prev, *next;
  2050. struct vm_struct **vms;
  2051. int area, area2, last_area, term_area;
  2052. unsigned long base, start, end, last_end;
  2053. bool purged = false;
  2054. /* verify parameters and allocate data structures */
  2055. BUG_ON(align & ~PAGE_MASK || !is_power_of_2(align));
  2056. for (last_area = 0, area = 0; area < nr_vms; area++) {
  2057. start = offsets[area];
  2058. end = start + sizes[area];
  2059. /* is everything aligned properly? */
  2060. BUG_ON(!IS_ALIGNED(offsets[area], align));
  2061. BUG_ON(!IS_ALIGNED(sizes[area], align));
  2062. /* detect the area with the highest address */
  2063. if (start > offsets[last_area])
  2064. last_area = area;
  2065. for (area2 = 0; area2 < nr_vms; area2++) {
  2066. unsigned long start2 = offsets[area2];
  2067. unsigned long end2 = start2 + sizes[area2];
  2068. if (area2 == area)
  2069. continue;
  2070. BUG_ON(start2 >= start && start2 < end);
  2071. BUG_ON(end2 <= end && end2 > start);
  2072. }
  2073. }
  2074. last_end = offsets[last_area] + sizes[last_area];
  2075. if (vmalloc_end - vmalloc_start < last_end) {
  2076. WARN_ON(true);
  2077. return NULL;
  2078. }
  2079. vms = kcalloc(nr_vms, sizeof(vms[0]), GFP_KERNEL);
  2080. vas = kcalloc(nr_vms, sizeof(vas[0]), GFP_KERNEL);
  2081. if (!vas || !vms)
  2082. goto err_free2;
  2083. for (area = 0; area < nr_vms; area++) {
  2084. vas[area] = kzalloc(sizeof(struct vmap_area), GFP_KERNEL);
  2085. vms[area] = kzalloc(sizeof(struct vm_struct), GFP_KERNEL);
  2086. if (!vas[area] || !vms[area])
  2087. goto err_free;
  2088. }
  2089. retry:
  2090. spin_lock(&vmap_area_lock);
  2091. /* start scanning - we scan from the top, begin with the last area */
  2092. area = term_area = last_area;
  2093. start = offsets[area];
  2094. end = start + sizes[area];
  2095. if (!pvm_find_next_prev(vmap_area_pcpu_hole, &next, &prev)) {
  2096. base = vmalloc_end - last_end;
  2097. goto found;
  2098. }
  2099. base = pvm_determine_end(&next, &prev, align) - end;
  2100. while (true) {
  2101. BUG_ON(next && next->va_end <= base + end);
  2102. BUG_ON(prev && prev->va_end > base + end);
  2103. /*
  2104. * base might have underflowed, add last_end before
  2105. * comparing.
  2106. */
  2107. if (base + last_end < vmalloc_start + last_end) {
  2108. spin_unlock(&vmap_area_lock);
  2109. if (!purged) {
  2110. purge_vmap_area_lazy();
  2111. purged = true;
  2112. goto retry;
  2113. }
  2114. goto err_free;
  2115. }
  2116. /*
  2117. * If next overlaps, move base downwards so that it's
  2118. * right below next and then recheck.
  2119. */
  2120. if (next && next->va_start < base + end) {
  2121. base = pvm_determine_end(&next, &prev, align) - end;
  2122. term_area = area;
  2123. continue;
  2124. }
  2125. /*
  2126. * If prev overlaps, shift down next and prev and move
  2127. * base so that it's right below new next and then
  2128. * recheck.
  2129. */
  2130. if (prev && prev->va_end > base + start) {
  2131. next = prev;
  2132. prev = node_to_va(rb_prev(&next->rb_node));
  2133. base = pvm_determine_end(&next, &prev, align) - end;
  2134. term_area = area;
  2135. continue;
  2136. }
  2137. /*
  2138. * This area fits, move on to the previous one. If
  2139. * the previous one is the terminal one, we're done.
  2140. */
  2141. area = (area + nr_vms - 1) % nr_vms;
  2142. if (area == term_area)
  2143. break;
  2144. start = offsets[area];
  2145. end = start + sizes[area];
  2146. pvm_find_next_prev(base + end, &next, &prev);
  2147. }
  2148. found:
  2149. /* we've found a fitting base, insert all va's */
  2150. for (area = 0; area < nr_vms; area++) {
  2151. struct vmap_area *va = vas[area];
  2152. va->va_start = base + offsets[area];
  2153. va->va_end = va->va_start + sizes[area];
  2154. __insert_vmap_area(va);
  2155. }
  2156. vmap_area_pcpu_hole = base + offsets[last_area];
  2157. spin_unlock(&vmap_area_lock);
  2158. /* insert all vm's */
  2159. for (area = 0; area < nr_vms; area++)
  2160. insert_vmalloc_vm(vms[area], vas[area], VM_ALLOC,
  2161. pcpu_get_vm_areas);
  2162. kfree(vas);
  2163. return vms;
  2164. err_free:
  2165. for (area = 0; area < nr_vms; area++) {
  2166. kfree(vas[area]);
  2167. kfree(vms[area]);
  2168. }
  2169. err_free2:
  2170. kfree(vas);
  2171. kfree(vms);
  2172. return NULL;
  2173. }
  2174. /**
  2175. * pcpu_free_vm_areas - free vmalloc areas for percpu allocator
  2176. * @vms: vm_struct pointer array returned by pcpu_get_vm_areas()
  2177. * @nr_vms: the number of allocated areas
  2178. *
  2179. * Free vm_structs and the array allocated by pcpu_get_vm_areas().
  2180. */
  2181. void pcpu_free_vm_areas(struct vm_struct **vms, int nr_vms)
  2182. {
  2183. int i;
  2184. for (i = 0; i < nr_vms; i++)
  2185. free_vm_area(vms[i]);
  2186. kfree(vms);
  2187. }
  2188. #endif /* CONFIG_SMP */
  2189. #ifdef CONFIG_PROC_FS
  2190. static void *s_start(struct seq_file *m, loff_t *pos)
  2191. __acquires(&vmap_area_lock)
  2192. {
  2193. loff_t n = *pos;
  2194. struct vmap_area *va;
  2195. spin_lock(&vmap_area_lock);
  2196. va = list_entry((&vmap_area_list)->next, typeof(*va), list);
  2197. while (n > 0 && &va->list != &vmap_area_list) {
  2198. n--;
  2199. va = list_entry(va->list.next, typeof(*va), list);
  2200. }
  2201. if (!n && &va->list != &vmap_area_list)
  2202. return va;
  2203. return NULL;
  2204. }
  2205. static void *s_next(struct seq_file *m, void *p, loff_t *pos)
  2206. {
  2207. struct vmap_area *va = p, *next;
  2208. ++*pos;
  2209. next = list_entry(va->list.next, typeof(*va), list);
  2210. if (&next->list != &vmap_area_list)
  2211. return next;
  2212. return NULL;
  2213. }
  2214. static void s_stop(struct seq_file *m, void *p)
  2215. __releases(&vmap_area_lock)
  2216. {
  2217. spin_unlock(&vmap_area_lock);
  2218. }
  2219. static void show_numa_info(struct seq_file *m, struct vm_struct *v)
  2220. {
  2221. if (IS_ENABLED(CONFIG_NUMA)) {
  2222. unsigned int nr, *counters = m->private;
  2223. if (!counters)
  2224. return;
  2225. /* Pair with smp_wmb() in clear_vm_unlist() */
  2226. smp_rmb();
  2227. if (v->flags & VM_UNLIST)
  2228. return;
  2229. memset(counters, 0, nr_node_ids * sizeof(unsigned int));
  2230. for (nr = 0; nr < v->nr_pages; nr++)
  2231. counters[page_to_nid(v->pages[nr])]++;
  2232. for_each_node_state(nr, N_HIGH_MEMORY)
  2233. if (counters[nr])
  2234. seq_printf(m, " N%u=%u", nr, counters[nr]);
  2235. }
  2236. }
  2237. static int s_show(struct seq_file *m, void *p)
  2238. {
  2239. struct vmap_area *va = p;
  2240. struct vm_struct *v;
  2241. if (va->flags & (VM_LAZY_FREE | VM_LAZY_FREEING))
  2242. return 0;
  2243. if (!(va->flags & VM_VM_AREA)) {
  2244. seq_printf(m, "0x%pK-0x%pK %7ld vm_map_ram\n",
  2245. (void *)va->va_start, (void *)va->va_end,
  2246. va->va_end - va->va_start);
  2247. return 0;
  2248. }
  2249. v = va->vm;
  2250. seq_printf(m, "0x%pK-0x%pK %7ld",
  2251. v->addr, v->addr + v->size, v->size);
  2252. if (v->caller)
  2253. seq_printf(m, " %pS", v->caller);
  2254. if (v->nr_pages)
  2255. seq_printf(m, " pages=%d", v->nr_pages);
  2256. if (v->phys_addr)
  2257. seq_printf(m, " phys=%llx", (unsigned long long)v->phys_addr);
  2258. if (v->flags & VM_IOREMAP)
  2259. seq_printf(m, " ioremap");
  2260. if (v->flags & VM_ALLOC)
  2261. seq_printf(m, " vmalloc");
  2262. if (v->flags & VM_MAP)
  2263. seq_printf(m, " vmap");
  2264. if (v->flags & VM_USERMAP)
  2265. seq_printf(m, " user");
  2266. if (v->flags & VM_VPAGES)
  2267. seq_printf(m, " vpages");
  2268. show_numa_info(m, v);
  2269. seq_putc(m, '\n');
  2270. return 0;
  2271. }
  2272. static const struct seq_operations vmalloc_op = {
  2273. .start = s_start,
  2274. .next = s_next,
  2275. .stop = s_stop,
  2276. .show = s_show,
  2277. };
  2278. static int vmalloc_open(struct inode *inode, struct file *file)
  2279. {
  2280. unsigned int *ptr = NULL;
  2281. int ret;
  2282. if (IS_ENABLED(CONFIG_NUMA)) {
  2283. ptr = kmalloc(nr_node_ids * sizeof(unsigned int), GFP_KERNEL);
  2284. if (ptr == NULL)
  2285. return -ENOMEM;
  2286. }
  2287. ret = seq_open(file, &vmalloc_op);
  2288. if (!ret) {
  2289. struct seq_file *m = file->private_data;
  2290. m->private = ptr;
  2291. } else
  2292. kfree(ptr);
  2293. return ret;
  2294. }
  2295. static const struct file_operations proc_vmalloc_operations = {
  2296. .open = vmalloc_open,
  2297. .read = seq_read,
  2298. .llseek = seq_lseek,
  2299. .release = seq_release_private,
  2300. };
  2301. static int __init proc_vmalloc_init(void)
  2302. {
  2303. proc_create("vmallocinfo", S_IRUSR, NULL, &proc_vmalloc_operations);
  2304. return 0;
  2305. }
  2306. module_init(proc_vmalloc_init);
  2307. void get_vmalloc_info(struct vmalloc_info *vmi)
  2308. {
  2309. struct vmap_area *va;
  2310. unsigned long free_area_size;
  2311. unsigned long prev_end;
  2312. vmi->used = 0;
  2313. vmi->largest_chunk = 0;
  2314. prev_end = VMALLOC_START;
  2315. spin_lock(&vmap_area_lock);
  2316. if (list_empty(&vmap_area_list)) {
  2317. vmi->largest_chunk = VMALLOC_TOTAL;
  2318. goto out;
  2319. }
  2320. list_for_each_entry(va, &vmap_area_list, list) {
  2321. unsigned long addr = va->va_start;
  2322. /*
  2323. * Some archs keep another range for modules in vmalloc space
  2324. */
  2325. if (addr < VMALLOC_START)
  2326. continue;
  2327. if (addr >= VMALLOC_END)
  2328. break;
  2329. if (va->flags & (VM_LAZY_FREE | VM_LAZY_FREEING))
  2330. continue;
  2331. vmi->used += (va->va_end - va->va_start);
  2332. free_area_size = addr - prev_end;
  2333. if (vmi->largest_chunk < free_area_size)
  2334. vmi->largest_chunk = free_area_size;
  2335. prev_end = va->va_end;
  2336. }
  2337. if (VMALLOC_END - prev_end > vmi->largest_chunk)
  2338. vmi->largest_chunk = VMALLOC_END - prev_end;
  2339. out:
  2340. spin_unlock(&vmap_area_lock);
  2341. }
  2342. #endif