]> bbs.cooldavid.org Git - net-next-2.6.git/blame - mm/vmalloc.c
page-allocator: change migratetype for all pageblocks within a high-order page during...
[net-next-2.6.git] / mm / vmalloc.c
CommitLineData
1da177e4
LT
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
930fc45a 8 * Numa awareness, Christoph Lameter, SGI, June 2005
1da177e4
LT
9 */
10
db64fe02 11#include <linux/vmalloc.h>
1da177e4
LT
12#include <linux/mm.h>
13#include <linux/module.h>
14#include <linux/highmem.h>
15#include <linux/slab.h>
16#include <linux/spinlock.h>
17#include <linux/interrupt.h>
5f6a6a9c 18#include <linux/proc_fs.h>
a10aa579 19#include <linux/seq_file.h>
3ac7fe5a 20#include <linux/debugobjects.h>
23016969 21#include <linux/kallsyms.h>
db64fe02
NP
22#include <linux/list.h>
23#include <linux/rbtree.h>
24#include <linux/radix-tree.h>
25#include <linux/rcupdate.h>
f0aa6617 26#include <linux/pfn.h>
89219d37 27#include <linux/kmemleak.h>
1da177e4 28
db64fe02 29#include <asm/atomic.h>
1da177e4
LT
30#include <asm/uaccess.h>
31#include <asm/tlbflush.h>
32
33
db64fe02 34/*** Page table manipulation functions ***/
b221385b 35
1da177e4
LT
36static void vunmap_pte_range(pmd_t *pmd, unsigned long addr, unsigned long end)
37{
38 pte_t *pte;
39
40 pte = pte_offset_kernel(pmd, addr);
41 do {
42 pte_t ptent = ptep_get_and_clear(&init_mm, addr, pte);
43 WARN_ON(!pte_none(ptent) && !pte_present(ptent));
44 } while (pte++, addr += PAGE_SIZE, addr != end);
45}
46
db64fe02 47static void vunmap_pmd_range(pud_t *pud, unsigned long addr, unsigned long end)
1da177e4
LT
48{
49 pmd_t *pmd;
50 unsigned long next;
51
52 pmd = pmd_offset(pud, addr);
53 do {
54 next = pmd_addr_end(addr, end);
55 if (pmd_none_or_clear_bad(pmd))
56 continue;
57 vunmap_pte_range(pmd, addr, next);
58 } while (pmd++, addr = next, addr != end);
59}
60
db64fe02 61static void vunmap_pud_range(pgd_t *pgd, unsigned long addr, unsigned long end)
1da177e4
LT
62{
63 pud_t *pud;
64 unsigned long next;
65
66 pud = pud_offset(pgd, addr);
67 do {
68 next = pud_addr_end(addr, end);
69 if (pud_none_or_clear_bad(pud))
70 continue;
71 vunmap_pmd_range(pud, addr, next);
72 } while (pud++, addr = next, addr != end);
73}
74
db64fe02 75static void vunmap_page_range(unsigned long addr, unsigned long end)
1da177e4
LT
76{
77 pgd_t *pgd;
78 unsigned long next;
1da177e4
LT
79
80 BUG_ON(addr >= end);
81 pgd = pgd_offset_k(addr);
1da177e4
LT
82 do {
83 next = pgd_addr_end(addr, end);
84 if (pgd_none_or_clear_bad(pgd))
85 continue;
86 vunmap_pud_range(pgd, addr, next);
87 } while (pgd++, addr = next, addr != end);
1da177e4
LT
88}
89
90static int vmap_pte_range(pmd_t *pmd, unsigned long addr,
db64fe02 91 unsigned long end, pgprot_t prot, struct page **pages, int *nr)
1da177e4
LT
92{
93 pte_t *pte;
94
db64fe02
NP
95 /*
96 * nr is a running index into the array which helps higher level
97 * callers keep track of where we're up to.
98 */
99
872fec16 100 pte = pte_alloc_kernel(pmd, addr);
1da177e4
LT
101 if (!pte)
102 return -ENOMEM;
103 do {
db64fe02
NP
104 struct page *page = pages[*nr];
105
106 if (WARN_ON(!pte_none(*pte)))
107 return -EBUSY;
108 if (WARN_ON(!page))
1da177e4
LT
109 return -ENOMEM;
110 set_pte_at(&init_mm, addr, pte, mk_pte(page, prot));
db64fe02 111 (*nr)++;
1da177e4
LT
112 } while (pte++, addr += PAGE_SIZE, addr != end);
113 return 0;
114}
115
db64fe02
NP
116static int vmap_pmd_range(pud_t *pud, unsigned long addr,
117 unsigned long end, pgprot_t prot, struct page **pages, int *nr)
1da177e4
LT
118{
119 pmd_t *pmd;
120 unsigned long next;
121
122 pmd = pmd_alloc(&init_mm, pud, addr);
123 if (!pmd)
124 return -ENOMEM;
125 do {
126 next = pmd_addr_end(addr, end);
db64fe02 127 if (vmap_pte_range(pmd, addr, next, prot, pages, nr))
1da177e4
LT
128 return -ENOMEM;
129 } while (pmd++, addr = next, addr != end);
130 return 0;
131}
132
db64fe02
NP
133static int vmap_pud_range(pgd_t *pgd, unsigned long addr,
134 unsigned long end, pgprot_t prot, struct page **pages, int *nr)
1da177e4
LT
135{
136 pud_t *pud;
137 unsigned long next;
138
139 pud = pud_alloc(&init_mm, pgd, addr);
140 if (!pud)
141 return -ENOMEM;
142 do {
143 next = pud_addr_end(addr, end);
db64fe02 144 if (vmap_pmd_range(pud, addr, next, prot, pages, nr))
1da177e4
LT
145 return -ENOMEM;
146 } while (pud++, addr = next, addr != end);
147 return 0;
148}
149
db64fe02
NP
150/*
151 * Set up page tables in kva (addr, end). The ptes shall have prot "prot", and
152 * will have pfns corresponding to the "pages" array.
153 *
154 * Ie. pte at addr+N*PAGE_SIZE shall point to pfn corresponding to pages[N]
155 */
8fc48985
TH
156static int vmap_page_range_noflush(unsigned long start, unsigned long end,
157 pgprot_t prot, struct page **pages)
1da177e4
LT
158{
159 pgd_t *pgd;
160 unsigned long next;
2e4e27c7 161 unsigned long addr = start;
db64fe02
NP
162 int err = 0;
163 int nr = 0;
1da177e4
LT
164
165 BUG_ON(addr >= end);
166 pgd = pgd_offset_k(addr);
1da177e4
LT
167 do {
168 next = pgd_addr_end(addr, end);
db64fe02 169 err = vmap_pud_range(pgd, addr, next, prot, pages, &nr);
1da177e4 170 if (err)
bf88c8c8 171 return err;
1da177e4 172 } while (pgd++, addr = next, addr != end);
db64fe02 173
db64fe02 174 return nr;
1da177e4
LT
175}
176
8fc48985
TH
177static int vmap_page_range(unsigned long start, unsigned long end,
178 pgprot_t prot, struct page **pages)
179{
180 int ret;
181
182 ret = vmap_page_range_noflush(start, end, prot, pages);
183 flush_cache_vmap(start, end);
184 return ret;
185}
186
73bdf0a6
LT
187static inline int is_vmalloc_or_module_addr(const void *x)
188{
189 /*
ab4f2ee1 190 * ARM, x86-64 and sparc64 put modules in a special place,
73bdf0a6
LT
191 * and fall back on vmalloc() if that fails. Others
192 * just put it in the vmalloc space.
193 */
194#if defined(CONFIG_MODULES) && defined(MODULES_VADDR)
195 unsigned long addr = (unsigned long)x;
196 if (addr >= MODULES_VADDR && addr < MODULES_END)
197 return 1;
198#endif
199 return is_vmalloc_addr(x);
200}
201
48667e7a 202/*
db64fe02 203 * Walk a vmap address to the struct page it maps.
48667e7a 204 */
b3bdda02 205struct page *vmalloc_to_page(const void *vmalloc_addr)
48667e7a
CL
206{
207 unsigned long addr = (unsigned long) vmalloc_addr;
208 struct page *page = NULL;
209 pgd_t *pgd = pgd_offset_k(addr);
48667e7a 210
7aa413de
IM
211 /*
212 * XXX we might need to change this if we add VIRTUAL_BUG_ON for
213 * architectures that do not vmalloc module space
214 */
73bdf0a6 215 VIRTUAL_BUG_ON(!is_vmalloc_or_module_addr(vmalloc_addr));
59ea7463 216
48667e7a 217 if (!pgd_none(*pgd)) {
db64fe02 218 pud_t *pud = pud_offset(pgd, addr);
48667e7a 219 if (!pud_none(*pud)) {
db64fe02 220 pmd_t *pmd = pmd_offset(pud, addr);
48667e7a 221 if (!pmd_none(*pmd)) {
db64fe02
NP
222 pte_t *ptep, pte;
223
48667e7a
CL
224 ptep = pte_offset_map(pmd, addr);
225 pte = *ptep;
226 if (pte_present(pte))
227 page = pte_page(pte);
228 pte_unmap(ptep);
229 }
230 }
231 }
232 return page;
233}
234EXPORT_SYMBOL(vmalloc_to_page);
235
236/*
237 * Map a vmalloc()-space virtual address to the physical page frame number.
238 */
b3bdda02 239unsigned long vmalloc_to_pfn(const void *vmalloc_addr)
48667e7a
CL
240{
241 return page_to_pfn(vmalloc_to_page(vmalloc_addr));
242}
243EXPORT_SYMBOL(vmalloc_to_pfn);
244
db64fe02
NP
245
246/*** Global kva allocator ***/
247
248#define VM_LAZY_FREE 0x01
249#define VM_LAZY_FREEING 0x02
250#define VM_VM_AREA 0x04
251
252struct vmap_area {
253 unsigned long va_start;
254 unsigned long va_end;
255 unsigned long flags;
256 struct rb_node rb_node; /* address sorted rbtree */
257 struct list_head list; /* address sorted list */
258 struct list_head purge_list; /* "lazy purge" list */
259 void *private;
260 struct rcu_head rcu_head;
261};
262
263static DEFINE_SPINLOCK(vmap_area_lock);
264static struct rb_root vmap_area_root = RB_ROOT;
265static LIST_HEAD(vmap_area_list);
ca23e405 266static unsigned long vmap_area_pcpu_hole;
db64fe02
NP
267
268static struct vmap_area *__find_vmap_area(unsigned long addr)
1da177e4 269{
db64fe02
NP
270 struct rb_node *n = vmap_area_root.rb_node;
271
272 while (n) {
273 struct vmap_area *va;
274
275 va = rb_entry(n, struct vmap_area, rb_node);
276 if (addr < va->va_start)
277 n = n->rb_left;
278 else if (addr > va->va_start)
279 n = n->rb_right;
280 else
281 return va;
282 }
283
284 return NULL;
285}
286
287static void __insert_vmap_area(struct vmap_area *va)
288{
289 struct rb_node **p = &vmap_area_root.rb_node;
290 struct rb_node *parent = NULL;
291 struct rb_node *tmp;
292
293 while (*p) {
294 struct vmap_area *tmp;
295
296 parent = *p;
297 tmp = rb_entry(parent, struct vmap_area, rb_node);
298 if (va->va_start < tmp->va_end)
299 p = &(*p)->rb_left;
300 else if (va->va_end > tmp->va_start)
301 p = &(*p)->rb_right;
302 else
303 BUG();
304 }
305
306 rb_link_node(&va->rb_node, parent, p);
307 rb_insert_color(&va->rb_node, &vmap_area_root);
308
309 /* address-sort this list so it is usable like the vmlist */
310 tmp = rb_prev(&va->rb_node);
311 if (tmp) {
312 struct vmap_area *prev;
313 prev = rb_entry(tmp, struct vmap_area, rb_node);
314 list_add_rcu(&va->list, &prev->list);
315 } else
316 list_add_rcu(&va->list, &vmap_area_list);
317}
318
319static void purge_vmap_area_lazy(void);
320
321/*
322 * Allocate a region of KVA of the specified size and alignment, within the
323 * vstart and vend.
324 */
325static struct vmap_area *alloc_vmap_area(unsigned long size,
326 unsigned long align,
327 unsigned long vstart, unsigned long vend,
328 int node, gfp_t gfp_mask)
329{
330 struct vmap_area *va;
331 struct rb_node *n;
1da177e4 332 unsigned long addr;
db64fe02
NP
333 int purged = 0;
334
7766970c 335 BUG_ON(!size);
db64fe02
NP
336 BUG_ON(size & ~PAGE_MASK);
337
db64fe02
NP
338 va = kmalloc_node(sizeof(struct vmap_area),
339 gfp_mask & GFP_RECLAIM_MASK, node);
340 if (unlikely(!va))
341 return ERR_PTR(-ENOMEM);
342
343retry:
0ae15132
GC
344 addr = ALIGN(vstart, align);
345
db64fe02 346 spin_lock(&vmap_area_lock);
7766970c
NP
347 if (addr + size - 1 < addr)
348 goto overflow;
349
db64fe02
NP
350 /* XXX: could have a last_hole cache */
351 n = vmap_area_root.rb_node;
352 if (n) {
353 struct vmap_area *first = NULL;
354
355 do {
356 struct vmap_area *tmp;
357 tmp = rb_entry(n, struct vmap_area, rb_node);
358 if (tmp->va_end >= addr) {
359 if (!first && tmp->va_start < addr + size)
360 first = tmp;
361 n = n->rb_left;
362 } else {
363 first = tmp;
364 n = n->rb_right;
365 }
366 } while (n);
367
368 if (!first)
369 goto found;
370
371 if (first->va_end < addr) {
372 n = rb_next(&first->rb_node);
373 if (n)
374 first = rb_entry(n, struct vmap_area, rb_node);
375 else
376 goto found;
377 }
378
f011c2da 379 while (addr + size > first->va_start && addr + size <= vend) {
db64fe02 380 addr = ALIGN(first->va_end + PAGE_SIZE, align);
7766970c
NP
381 if (addr + size - 1 < addr)
382 goto overflow;
db64fe02
NP
383
384 n = rb_next(&first->rb_node);
385 if (n)
386 first = rb_entry(n, struct vmap_area, rb_node);
387 else
388 goto found;
389 }
390 }
391found:
392 if (addr + size > vend) {
7766970c 393overflow:
db64fe02
NP
394 spin_unlock(&vmap_area_lock);
395 if (!purged) {
396 purge_vmap_area_lazy();
397 purged = 1;
398 goto retry;
399 }
400 if (printk_ratelimit())
c1279c4e
GC
401 printk(KERN_WARNING
402 "vmap allocation for size %lu failed: "
403 "use vmalloc=<size> to increase size.\n", size);
2498ce42 404 kfree(va);
db64fe02
NP
405 return ERR_PTR(-EBUSY);
406 }
407
408 BUG_ON(addr & (align-1));
409
410 va->va_start = addr;
411 va->va_end = addr + size;
412 va->flags = 0;
413 __insert_vmap_area(va);
414 spin_unlock(&vmap_area_lock);
415
416 return va;
417}
418
419static void rcu_free_va(struct rcu_head *head)
420{
421 struct vmap_area *va = container_of(head, struct vmap_area, rcu_head);
422
423 kfree(va);
424}
425
426static void __free_vmap_area(struct vmap_area *va)
427{
428 BUG_ON(RB_EMPTY_NODE(&va->rb_node));
429 rb_erase(&va->rb_node, &vmap_area_root);
430 RB_CLEAR_NODE(&va->rb_node);
431 list_del_rcu(&va->list);
432
ca23e405
TH
433 /*
434 * Track the highest possible candidate for pcpu area
435 * allocation. Areas outside of vmalloc area can be returned
436 * here too, consider only end addresses which fall inside
437 * vmalloc area proper.
438 */
439 if (va->va_end > VMALLOC_START && va->va_end <= VMALLOC_END)
440 vmap_area_pcpu_hole = max(vmap_area_pcpu_hole, va->va_end);
441
db64fe02
NP
442 call_rcu(&va->rcu_head, rcu_free_va);
443}
444
445/*
446 * Free a region of KVA allocated by alloc_vmap_area
447 */
448static void free_vmap_area(struct vmap_area *va)
449{
450 spin_lock(&vmap_area_lock);
451 __free_vmap_area(va);
452 spin_unlock(&vmap_area_lock);
453}
454
455/*
456 * Clear the pagetable entries of a given vmap_area
457 */
458static void unmap_vmap_area(struct vmap_area *va)
459{
460 vunmap_page_range(va->va_start, va->va_end);
461}
462
cd52858c
NP
463static void vmap_debug_free_range(unsigned long start, unsigned long end)
464{
465 /*
466 * Unmap page tables and force a TLB flush immediately if
467 * CONFIG_DEBUG_PAGEALLOC is set. This catches use after free
468 * bugs similarly to those in linear kernel virtual address
469 * space after a page has been freed.
470 *
471 * All the lazy freeing logic is still retained, in order to
472 * minimise intrusiveness of this debugging feature.
473 *
474 * This is going to be *slow* (linear kernel virtual address
475 * debugging doesn't do a broadcast TLB flush so it is a lot
476 * faster).
477 */
478#ifdef CONFIG_DEBUG_PAGEALLOC
479 vunmap_page_range(start, end);
480 flush_tlb_kernel_range(start, end);
481#endif
482}
483
db64fe02
NP
484/*
485 * lazy_max_pages is the maximum amount of virtual address space we gather up
486 * before attempting to purge with a TLB flush.
487 *
488 * There is a tradeoff here: a larger number will cover more kernel page tables
489 * and take slightly longer to purge, but it will linearly reduce the number of
490 * global TLB flushes that must be performed. It would seem natural to scale
491 * this number up linearly with the number of CPUs (because vmapping activity
492 * could also scale linearly with the number of CPUs), however it is likely
493 * that in practice, workloads might be constrained in other ways that mean
494 * vmap activity will not scale linearly with CPUs. Also, I want to be
495 * conservative and not introduce a big latency on huge systems, so go with
496 * a less aggressive log scale. It will still be an improvement over the old
497 * code, and it will be simple to change the scale factor if we find that it
498 * becomes a problem on bigger systems.
499 */
500static unsigned long lazy_max_pages(void)
501{
502 unsigned int log;
503
504 log = fls(num_online_cpus());
505
506 return log * (32UL * 1024 * 1024 / PAGE_SIZE);
507}
508
509static atomic_t vmap_lazy_nr = ATOMIC_INIT(0);
510
511/*
512 * Purges all lazily-freed vmap areas.
513 *
514 * If sync is 0 then don't purge if there is already a purge in progress.
515 * If force_flush is 1, then flush kernel TLBs between *start and *end even
516 * if we found no lazy vmap areas to unmap (callers can use this to optimise
517 * their own TLB flushing).
518 * Returns with *start = min(*start, lowest purged address)
519 * *end = max(*end, highest purged address)
520 */
521static void __purge_vmap_area_lazy(unsigned long *start, unsigned long *end,
522 int sync, int force_flush)
523{
46666d8a 524 static DEFINE_SPINLOCK(purge_lock);
db64fe02
NP
525 LIST_HEAD(valist);
526 struct vmap_area *va;
cbb76676 527 struct vmap_area *n_va;
db64fe02
NP
528 int nr = 0;
529
530 /*
531 * If sync is 0 but force_flush is 1, we'll go sync anyway but callers
532 * should not expect such behaviour. This just simplifies locking for
533 * the case that isn't actually used at the moment anyway.
534 */
535 if (!sync && !force_flush) {
46666d8a 536 if (!spin_trylock(&purge_lock))
db64fe02
NP
537 return;
538 } else
46666d8a 539 spin_lock(&purge_lock);
db64fe02
NP
540
541 rcu_read_lock();
542 list_for_each_entry_rcu(va, &vmap_area_list, list) {
543 if (va->flags & VM_LAZY_FREE) {
544 if (va->va_start < *start)
545 *start = va->va_start;
546 if (va->va_end > *end)
547 *end = va->va_end;
548 nr += (va->va_end - va->va_start) >> PAGE_SHIFT;
549 unmap_vmap_area(va);
550 list_add_tail(&va->purge_list, &valist);
551 va->flags |= VM_LAZY_FREEING;
552 va->flags &= ~VM_LAZY_FREE;
553 }
554 }
555 rcu_read_unlock();
556
557 if (nr) {
558 BUG_ON(nr > atomic_read(&vmap_lazy_nr));
559 atomic_sub(nr, &vmap_lazy_nr);
560 }
561
562 if (nr || force_flush)
563 flush_tlb_kernel_range(*start, *end);
564
565 if (nr) {
566 spin_lock(&vmap_area_lock);
cbb76676 567 list_for_each_entry_safe(va, n_va, &valist, purge_list)
db64fe02
NP
568 __free_vmap_area(va);
569 spin_unlock(&vmap_area_lock);
570 }
46666d8a 571 spin_unlock(&purge_lock);
db64fe02
NP
572}
573
496850e5
NP
574/*
575 * Kick off a purge of the outstanding lazy areas. Don't bother if somebody
576 * is already purging.
577 */
578static void try_purge_vmap_area_lazy(void)
579{
580 unsigned long start = ULONG_MAX, end = 0;
581
582 __purge_vmap_area_lazy(&start, &end, 0, 0);
583}
584
db64fe02
NP
585/*
586 * Kick off a purge of the outstanding lazy areas.
587 */
588static void purge_vmap_area_lazy(void)
589{
590 unsigned long start = ULONG_MAX, end = 0;
591
496850e5 592 __purge_vmap_area_lazy(&start, &end, 1, 0);
db64fe02
NP
593}
594
595/*
b29acbdc
NP
596 * Free and unmap a vmap area, caller ensuring flush_cache_vunmap had been
597 * called for the correct range previously.
db64fe02 598 */
b29acbdc 599static void free_unmap_vmap_area_noflush(struct vmap_area *va)
db64fe02
NP
600{
601 va->flags |= VM_LAZY_FREE;
602 atomic_add((va->va_end - va->va_start) >> PAGE_SHIFT, &vmap_lazy_nr);
603 if (unlikely(atomic_read(&vmap_lazy_nr) > lazy_max_pages()))
496850e5 604 try_purge_vmap_area_lazy();
db64fe02
NP
605}
606
b29acbdc
NP
607/*
608 * Free and unmap a vmap area
609 */
610static void free_unmap_vmap_area(struct vmap_area *va)
611{
612 flush_cache_vunmap(va->va_start, va->va_end);
613 free_unmap_vmap_area_noflush(va);
614}
615
db64fe02
NP
616static struct vmap_area *find_vmap_area(unsigned long addr)
617{
618 struct vmap_area *va;
619
620 spin_lock(&vmap_area_lock);
621 va = __find_vmap_area(addr);
622 spin_unlock(&vmap_area_lock);
623
624 return va;
625}
626
627static void free_unmap_vmap_area_addr(unsigned long addr)
628{
629 struct vmap_area *va;
630
631 va = find_vmap_area(addr);
632 BUG_ON(!va);
633 free_unmap_vmap_area(va);
634}
635
636
637/*** Per cpu kva allocator ***/
638
639/*
640 * vmap space is limited especially on 32 bit architectures. Ensure there is
641 * room for at least 16 percpu vmap blocks per CPU.
642 */
643/*
644 * If we had a constant VMALLOC_START and VMALLOC_END, we'd like to be able
645 * to #define VMALLOC_SPACE (VMALLOC_END-VMALLOC_START). Guess
646 * instead (we just need a rough idea)
647 */
648#if BITS_PER_LONG == 32
649#define VMALLOC_SPACE (128UL*1024*1024)
650#else
651#define VMALLOC_SPACE (128UL*1024*1024*1024)
652#endif
653
654#define VMALLOC_PAGES (VMALLOC_SPACE / PAGE_SIZE)
655#define VMAP_MAX_ALLOC BITS_PER_LONG /* 256K with 4K pages */
656#define VMAP_BBMAP_BITS_MAX 1024 /* 4MB with 4K pages */
657#define VMAP_BBMAP_BITS_MIN (VMAP_MAX_ALLOC*2)
658#define VMAP_MIN(x, y) ((x) < (y) ? (x) : (y)) /* can't use min() */
659#define VMAP_MAX(x, y) ((x) > (y) ? (x) : (y)) /* can't use max() */
660#define VMAP_BBMAP_BITS VMAP_MIN(VMAP_BBMAP_BITS_MAX, \
661 VMAP_MAX(VMAP_BBMAP_BITS_MIN, \
662 VMALLOC_PAGES / NR_CPUS / 16))
663
664#define VMAP_BLOCK_SIZE (VMAP_BBMAP_BITS * PAGE_SIZE)
665
9b463334
JF
666static bool vmap_initialized __read_mostly = false;
667
db64fe02
NP
668struct vmap_block_queue {
669 spinlock_t lock;
670 struct list_head free;
671 struct list_head dirty;
672 unsigned int nr_dirty;
673};
674
675struct vmap_block {
676 spinlock_t lock;
677 struct vmap_area *va;
678 struct vmap_block_queue *vbq;
679 unsigned long free, dirty;
680 DECLARE_BITMAP(alloc_map, VMAP_BBMAP_BITS);
681 DECLARE_BITMAP(dirty_map, VMAP_BBMAP_BITS);
682 union {
d086817d 683 struct list_head free_list;
db64fe02
NP
684 struct rcu_head rcu_head;
685 };
686};
687
688/* Queue of free and dirty vmap blocks, for allocation and flushing purposes */
689static DEFINE_PER_CPU(struct vmap_block_queue, vmap_block_queue);
690
691/*
692 * Radix tree of vmap blocks, indexed by address, to quickly find a vmap block
693 * in the free path. Could get rid of this if we change the API to return a
694 * "cookie" from alloc, to be passed to free. But no big deal yet.
695 */
696static DEFINE_SPINLOCK(vmap_block_tree_lock);
697static RADIX_TREE(vmap_block_tree, GFP_ATOMIC);
698
699/*
700 * We should probably have a fallback mechanism to allocate virtual memory
701 * out of partially filled vmap blocks. However vmap block sizing should be
702 * fairly reasonable according to the vmalloc size, so it shouldn't be a
703 * big problem.
704 */
705
706static unsigned long addr_to_vb_idx(unsigned long addr)
707{
708 addr -= VMALLOC_START & ~(VMAP_BLOCK_SIZE-1);
709 addr /= VMAP_BLOCK_SIZE;
710 return addr;
711}
712
713static struct vmap_block *new_vmap_block(gfp_t gfp_mask)
714{
715 struct vmap_block_queue *vbq;
716 struct vmap_block *vb;
717 struct vmap_area *va;
718 unsigned long vb_idx;
719 int node, err;
720
721 node = numa_node_id();
722
723 vb = kmalloc_node(sizeof(struct vmap_block),
724 gfp_mask & GFP_RECLAIM_MASK, node);
725 if (unlikely(!vb))
726 return ERR_PTR(-ENOMEM);
727
728 va = alloc_vmap_area(VMAP_BLOCK_SIZE, VMAP_BLOCK_SIZE,
729 VMALLOC_START, VMALLOC_END,
730 node, gfp_mask);
731 if (unlikely(IS_ERR(va))) {
732 kfree(vb);
733 return ERR_PTR(PTR_ERR(va));
734 }
735
736 err = radix_tree_preload(gfp_mask);
737 if (unlikely(err)) {
738 kfree(vb);
739 free_vmap_area(va);
740 return ERR_PTR(err);
741 }
742
743 spin_lock_init(&vb->lock);
744 vb->va = va;
745 vb->free = VMAP_BBMAP_BITS;
746 vb->dirty = 0;
747 bitmap_zero(vb->alloc_map, VMAP_BBMAP_BITS);
748 bitmap_zero(vb->dirty_map, VMAP_BBMAP_BITS);
749 INIT_LIST_HEAD(&vb->free_list);
db64fe02
NP
750
751 vb_idx = addr_to_vb_idx(va->va_start);
752 spin_lock(&vmap_block_tree_lock);
753 err = radix_tree_insert(&vmap_block_tree, vb_idx, vb);
754 spin_unlock(&vmap_block_tree_lock);
755 BUG_ON(err);
756 radix_tree_preload_end();
757
758 vbq = &get_cpu_var(vmap_block_queue);
759 vb->vbq = vbq;
760 spin_lock(&vbq->lock);
761 list_add(&vb->free_list, &vbq->free);
762 spin_unlock(&vbq->lock);
763 put_cpu_var(vmap_cpu_blocks);
764
765 return vb;
766}
767
768static void rcu_free_vb(struct rcu_head *head)
769{
770 struct vmap_block *vb = container_of(head, struct vmap_block, rcu_head);
771
772 kfree(vb);
773}
774
775static void free_vmap_block(struct vmap_block *vb)
776{
777 struct vmap_block *tmp;
778 unsigned long vb_idx;
779
d086817d 780 BUG_ON(!list_empty(&vb->free_list));
db64fe02
NP
781
782 vb_idx = addr_to_vb_idx(vb->va->va_start);
783 spin_lock(&vmap_block_tree_lock);
784 tmp = radix_tree_delete(&vmap_block_tree, vb_idx);
785 spin_unlock(&vmap_block_tree_lock);
786 BUG_ON(tmp != vb);
787
b29acbdc 788 free_unmap_vmap_area_noflush(vb->va);
db64fe02
NP
789 call_rcu(&vb->rcu_head, rcu_free_vb);
790}
791
792static void *vb_alloc(unsigned long size, gfp_t gfp_mask)
793{
794 struct vmap_block_queue *vbq;
795 struct vmap_block *vb;
796 unsigned long addr = 0;
797 unsigned int order;
798
799 BUG_ON(size & ~PAGE_MASK);
800 BUG_ON(size > PAGE_SIZE*VMAP_MAX_ALLOC);
801 order = get_order(size);
802
803again:
804 rcu_read_lock();
805 vbq = &get_cpu_var(vmap_block_queue);
806 list_for_each_entry_rcu(vb, &vbq->free, free_list) {
807 int i;
808
809 spin_lock(&vb->lock);
810 i = bitmap_find_free_region(vb->alloc_map,
811 VMAP_BBMAP_BITS, order);
812
813 if (i >= 0) {
814 addr = vb->va->va_start + (i << PAGE_SHIFT);
815 BUG_ON(addr_to_vb_idx(addr) !=
816 addr_to_vb_idx(vb->va->va_start));
817 vb->free -= 1UL << order;
818 if (vb->free == 0) {
819 spin_lock(&vbq->lock);
820 list_del_init(&vb->free_list);
821 spin_unlock(&vbq->lock);
822 }
823 spin_unlock(&vb->lock);
824 break;
825 }
826 spin_unlock(&vb->lock);
827 }
828 put_cpu_var(vmap_cpu_blocks);
829 rcu_read_unlock();
830
831 if (!addr) {
832 vb = new_vmap_block(gfp_mask);
833 if (IS_ERR(vb))
834 return vb;
835 goto again;
836 }
837
838 return (void *)addr;
839}
840
841static void vb_free(const void *addr, unsigned long size)
842{
843 unsigned long offset;
844 unsigned long vb_idx;
845 unsigned int order;
846 struct vmap_block *vb;
847
848 BUG_ON(size & ~PAGE_MASK);
849 BUG_ON(size > PAGE_SIZE*VMAP_MAX_ALLOC);
b29acbdc
NP
850
851 flush_cache_vunmap((unsigned long)addr, (unsigned long)addr + size);
852
db64fe02
NP
853 order = get_order(size);
854
855 offset = (unsigned long)addr & (VMAP_BLOCK_SIZE - 1);
856
857 vb_idx = addr_to_vb_idx((unsigned long)addr);
858 rcu_read_lock();
859 vb = radix_tree_lookup(&vmap_block_tree, vb_idx);
860 rcu_read_unlock();
861 BUG_ON(!vb);
862
863 spin_lock(&vb->lock);
864 bitmap_allocate_region(vb->dirty_map, offset >> PAGE_SHIFT, order);
d086817d 865
db64fe02
NP
866 vb->dirty += 1UL << order;
867 if (vb->dirty == VMAP_BBMAP_BITS) {
868 BUG_ON(vb->free || !list_empty(&vb->free_list));
869 spin_unlock(&vb->lock);
870 free_vmap_block(vb);
871 } else
872 spin_unlock(&vb->lock);
873}
874
875/**
876 * vm_unmap_aliases - unmap outstanding lazy aliases in the vmap layer
877 *
878 * The vmap/vmalloc layer lazily flushes kernel virtual mappings primarily
879 * to amortize TLB flushing overheads. What this means is that any page you
880 * have now, may, in a former life, have been mapped into kernel virtual
881 * address by the vmap layer and so there might be some CPUs with TLB entries
882 * still referencing that page (additional to the regular 1:1 kernel mapping).
883 *
884 * vm_unmap_aliases flushes all such lazy mappings. After it returns, we can
885 * be sure that none of the pages we have control over will have any aliases
886 * from the vmap layer.
887 */
888void vm_unmap_aliases(void)
889{
890 unsigned long start = ULONG_MAX, end = 0;
891 int cpu;
892 int flush = 0;
893
9b463334
JF
894 if (unlikely(!vmap_initialized))
895 return;
896
db64fe02
NP
897 for_each_possible_cpu(cpu) {
898 struct vmap_block_queue *vbq = &per_cpu(vmap_block_queue, cpu);
899 struct vmap_block *vb;
900
901 rcu_read_lock();
902 list_for_each_entry_rcu(vb, &vbq->free, free_list) {
903 int i;
904
905 spin_lock(&vb->lock);
906 i = find_first_bit(vb->dirty_map, VMAP_BBMAP_BITS);
907 while (i < VMAP_BBMAP_BITS) {
908 unsigned long s, e;
909 int j;
910 j = find_next_zero_bit(vb->dirty_map,
911 VMAP_BBMAP_BITS, i);
912
913 s = vb->va->va_start + (i << PAGE_SHIFT);
914 e = vb->va->va_start + (j << PAGE_SHIFT);
915 vunmap_page_range(s, e);
916 flush = 1;
917
918 if (s < start)
919 start = s;
920 if (e > end)
921 end = e;
922
923 i = j;
924 i = find_next_bit(vb->dirty_map,
925 VMAP_BBMAP_BITS, i);
926 }
927 spin_unlock(&vb->lock);
928 }
929 rcu_read_unlock();
930 }
931
932 __purge_vmap_area_lazy(&start, &end, 1, flush);
933}
934EXPORT_SYMBOL_GPL(vm_unmap_aliases);
935
936/**
937 * vm_unmap_ram - unmap linear kernel address space set up by vm_map_ram
938 * @mem: the pointer returned by vm_map_ram
939 * @count: the count passed to that vm_map_ram call (cannot unmap partial)
940 */
941void vm_unmap_ram(const void *mem, unsigned int count)
942{
943 unsigned long size = count << PAGE_SHIFT;
944 unsigned long addr = (unsigned long)mem;
945
946 BUG_ON(!addr);
947 BUG_ON(addr < VMALLOC_START);
948 BUG_ON(addr > VMALLOC_END);
949 BUG_ON(addr & (PAGE_SIZE-1));
950
951 debug_check_no_locks_freed(mem, size);
cd52858c 952 vmap_debug_free_range(addr, addr+size);
db64fe02
NP
953
954 if (likely(count <= VMAP_MAX_ALLOC))
955 vb_free(mem, size);
956 else
957 free_unmap_vmap_area_addr(addr);
958}
959EXPORT_SYMBOL(vm_unmap_ram);
960
961/**
962 * vm_map_ram - map pages linearly into kernel virtual address (vmalloc space)
963 * @pages: an array of pointers to the pages to be mapped
964 * @count: number of pages
965 * @node: prefer to allocate data structures on this node
966 * @prot: memory protection to use. PAGE_KERNEL for regular RAM
e99c97ad
RD
967 *
968 * Returns: a pointer to the address that has been mapped, or %NULL on failure
db64fe02
NP
969 */
970void *vm_map_ram(struct page **pages, unsigned int count, int node, pgprot_t prot)
971{
972 unsigned long size = count << PAGE_SHIFT;
973 unsigned long addr;
974 void *mem;
975
976 if (likely(count <= VMAP_MAX_ALLOC)) {
977 mem = vb_alloc(size, GFP_KERNEL);
978 if (IS_ERR(mem))
979 return NULL;
980 addr = (unsigned long)mem;
981 } else {
982 struct vmap_area *va;
983 va = alloc_vmap_area(size, PAGE_SIZE,
984 VMALLOC_START, VMALLOC_END, node, GFP_KERNEL);
985 if (IS_ERR(va))
986 return NULL;
987
988 addr = va->va_start;
989 mem = (void *)addr;
990 }
991 if (vmap_page_range(addr, addr + size, prot, pages) < 0) {
992 vm_unmap_ram(mem, count);
993 return NULL;
994 }
995 return mem;
996}
997EXPORT_SYMBOL(vm_map_ram);
998
f0aa6617
TH
999/**
1000 * vm_area_register_early - register vmap area early during boot
1001 * @vm: vm_struct to register
c0c0a293 1002 * @align: requested alignment
f0aa6617
TH
1003 *
1004 * This function is used to register kernel vm area before
1005 * vmalloc_init() is called. @vm->size and @vm->flags should contain
1006 * proper values on entry and other fields should be zero. On return,
1007 * vm->addr contains the allocated address.
1008 *
1009 * DO NOT USE THIS FUNCTION UNLESS YOU KNOW WHAT YOU'RE DOING.
1010 */
c0c0a293 1011void __init vm_area_register_early(struct vm_struct *vm, size_t align)
f0aa6617
TH
1012{
1013 static size_t vm_init_off __initdata;
c0c0a293
TH
1014 unsigned long addr;
1015
1016 addr = ALIGN(VMALLOC_START + vm_init_off, align);
1017 vm_init_off = PFN_ALIGN(addr + vm->size) - VMALLOC_START;
f0aa6617 1018
c0c0a293 1019 vm->addr = (void *)addr;
f0aa6617
TH
1020
1021 vm->next = vmlist;
1022 vmlist = vm;
1023}
1024
db64fe02
NP
1025void __init vmalloc_init(void)
1026{
822c18f2
IK
1027 struct vmap_area *va;
1028 struct vm_struct *tmp;
db64fe02
NP
1029 int i;
1030
1031 for_each_possible_cpu(i) {
1032 struct vmap_block_queue *vbq;
1033
1034 vbq = &per_cpu(vmap_block_queue, i);
1035 spin_lock_init(&vbq->lock);
1036 INIT_LIST_HEAD(&vbq->free);
1037 INIT_LIST_HEAD(&vbq->dirty);
1038 vbq->nr_dirty = 0;
1039 }
9b463334 1040
822c18f2
IK
1041 /* Import existing vmlist entries. */
1042 for (tmp = vmlist; tmp; tmp = tmp->next) {
43ebdac4 1043 va = kzalloc(sizeof(struct vmap_area), GFP_NOWAIT);
822c18f2
IK
1044 va->flags = tmp->flags | VM_VM_AREA;
1045 va->va_start = (unsigned long)tmp->addr;
1046 va->va_end = va->va_start + tmp->size;
1047 __insert_vmap_area(va);
1048 }
ca23e405
TH
1049
1050 vmap_area_pcpu_hole = VMALLOC_END;
1051
9b463334 1052 vmap_initialized = true;
db64fe02
NP
1053}
1054
8fc48985
TH
1055/**
1056 * map_kernel_range_noflush - map kernel VM area with the specified pages
1057 * @addr: start of the VM area to map
1058 * @size: size of the VM area to map
1059 * @prot: page protection flags to use
1060 * @pages: pages to map
1061 *
1062 * Map PFN_UP(@size) pages at @addr. The VM area @addr and @size
1063 * specify should have been allocated using get_vm_area() and its
1064 * friends.
1065 *
1066 * NOTE:
1067 * This function does NOT do any cache flushing. The caller is
1068 * responsible for calling flush_cache_vmap() on to-be-mapped areas
1069 * before calling this function.
1070 *
1071 * RETURNS:
1072 * The number of pages mapped on success, -errno on failure.
1073 */
1074int map_kernel_range_noflush(unsigned long addr, unsigned long size,
1075 pgprot_t prot, struct page **pages)
1076{
1077 return vmap_page_range_noflush(addr, addr + size, prot, pages);
1078}
1079
1080/**
1081 * unmap_kernel_range_noflush - unmap kernel VM area
1082 * @addr: start of the VM area to unmap
1083 * @size: size of the VM area to unmap
1084 *
1085 * Unmap PFN_UP(@size) pages at @addr. The VM area @addr and @size
1086 * specify should have been allocated using get_vm_area() and its
1087 * friends.
1088 *
1089 * NOTE:
1090 * This function does NOT do any cache flushing. The caller is
1091 * responsible for calling flush_cache_vunmap() on to-be-mapped areas
1092 * before calling this function and flush_tlb_kernel_range() after.
1093 */
1094void unmap_kernel_range_noflush(unsigned long addr, unsigned long size)
1095{
1096 vunmap_page_range(addr, addr + size);
1097}
1098
1099/**
1100 * unmap_kernel_range - unmap kernel VM area and flush cache and TLB
1101 * @addr: start of the VM area to unmap
1102 * @size: size of the VM area to unmap
1103 *
1104 * Similar to unmap_kernel_range_noflush() but flushes vcache before
1105 * the unmapping and tlb after.
1106 */
db64fe02
NP
1107void unmap_kernel_range(unsigned long addr, unsigned long size)
1108{
1109 unsigned long end = addr + size;
f6fcba70
TH
1110
1111 flush_cache_vunmap(addr, end);
db64fe02
NP
1112 vunmap_page_range(addr, end);
1113 flush_tlb_kernel_range(addr, end);
1114}
1115
1116int map_vm_area(struct vm_struct *area, pgprot_t prot, struct page ***pages)
1117{
1118 unsigned long addr = (unsigned long)area->addr;
1119 unsigned long end = addr + area->size - PAGE_SIZE;
1120 int err;
1121
1122 err = vmap_page_range(addr, end, prot, *pages);
1123 if (err > 0) {
1124 *pages += err;
1125 err = 0;
1126 }
1127
1128 return err;
1129}
1130EXPORT_SYMBOL_GPL(map_vm_area);
1131
1132/*** Old vmalloc interfaces ***/
1133DEFINE_RWLOCK(vmlist_lock);
1134struct vm_struct *vmlist;
1135
cf88c790
TH
1136static void insert_vmalloc_vm(struct vm_struct *vm, struct vmap_area *va,
1137 unsigned long flags, void *caller)
1138{
1139 struct vm_struct *tmp, **p;
1140
1141 vm->flags = flags;
1142 vm->addr = (void *)va->va_start;
1143 vm->size = va->va_end - va->va_start;
1144 vm->caller = caller;
1145 va->private = vm;
1146 va->flags |= VM_VM_AREA;
1147
1148 write_lock(&vmlist_lock);
1149 for (p = &vmlist; (tmp = *p) != NULL; p = &tmp->next) {
1150 if (tmp->addr >= vm->addr)
1151 break;
1152 }
1153 vm->next = *p;
1154 *p = vm;
1155 write_unlock(&vmlist_lock);
1156}
1157
db64fe02
NP
1158static struct vm_struct *__get_vm_area_node(unsigned long size,
1159 unsigned long flags, unsigned long start, unsigned long end,
1160 int node, gfp_t gfp_mask, void *caller)
1161{
1162 static struct vmap_area *va;
1163 struct vm_struct *area;
db64fe02 1164 unsigned long align = 1;
1da177e4 1165
52fd24ca 1166 BUG_ON(in_interrupt());
1da177e4
LT
1167 if (flags & VM_IOREMAP) {
1168 int bit = fls(size);
1169
1170 if (bit > IOREMAP_MAX_ORDER)
1171 bit = IOREMAP_MAX_ORDER;
1172 else if (bit < PAGE_SHIFT)
1173 bit = PAGE_SHIFT;
1174
1175 align = 1ul << bit;
1176 }
db64fe02 1177
1da177e4 1178 size = PAGE_ALIGN(size);
31be8309
OH
1179 if (unlikely(!size))
1180 return NULL;
1da177e4 1181
cf88c790 1182 area = kzalloc_node(sizeof(*area), gfp_mask & GFP_RECLAIM_MASK, node);
1da177e4
LT
1183 if (unlikely(!area))
1184 return NULL;
1185
1da177e4
LT
1186 /*
1187 * We always allocate a guard page.
1188 */
1189 size += PAGE_SIZE;
1190
db64fe02
NP
1191 va = alloc_vmap_area(size, align, start, end, node, gfp_mask);
1192 if (IS_ERR(va)) {
1193 kfree(area);
1194 return NULL;
1da177e4 1195 }
1da177e4 1196
cf88c790 1197 insert_vmalloc_vm(area, va, flags, caller);
1da177e4 1198 return area;
1da177e4
LT
1199}
1200
930fc45a
CL
1201struct vm_struct *__get_vm_area(unsigned long size, unsigned long flags,
1202 unsigned long start, unsigned long end)
1203{
23016969
CL
1204 return __get_vm_area_node(size, flags, start, end, -1, GFP_KERNEL,
1205 __builtin_return_address(0));
930fc45a 1206}
5992b6da 1207EXPORT_SYMBOL_GPL(__get_vm_area);
930fc45a 1208
c2968612
BH
1209struct vm_struct *__get_vm_area_caller(unsigned long size, unsigned long flags,
1210 unsigned long start, unsigned long end,
1211 void *caller)
1212{
1213 return __get_vm_area_node(size, flags, start, end, -1, GFP_KERNEL,
1214 caller);
1215}
1216
1da177e4 1217/**
183ff22b 1218 * get_vm_area - reserve a contiguous kernel virtual area
1da177e4
LT
1219 * @size: size of the area
1220 * @flags: %VM_IOREMAP for I/O mappings or VM_ALLOC
1221 *
1222 * Search an area of @size in the kernel virtual mapping area,
1223 * and reserved it for out purposes. Returns the area descriptor
1224 * on success or %NULL on failure.
1225 */
1226struct vm_struct *get_vm_area(unsigned long size, unsigned long flags)
1227{
23016969
CL
1228 return __get_vm_area_node(size, flags, VMALLOC_START, VMALLOC_END,
1229 -1, GFP_KERNEL, __builtin_return_address(0));
1230}
1231
1232struct vm_struct *get_vm_area_caller(unsigned long size, unsigned long flags,
1233 void *caller)
1234{
1235 return __get_vm_area_node(size, flags, VMALLOC_START, VMALLOC_END,
1236 -1, GFP_KERNEL, caller);
1da177e4
LT
1237}
1238
52fd24ca
GP
1239struct vm_struct *get_vm_area_node(unsigned long size, unsigned long flags,
1240 int node, gfp_t gfp_mask)
930fc45a 1241{
52fd24ca 1242 return __get_vm_area_node(size, flags, VMALLOC_START, VMALLOC_END, node,
23016969 1243 gfp_mask, __builtin_return_address(0));
930fc45a
CL
1244}
1245
db64fe02 1246static struct vm_struct *find_vm_area(const void *addr)
83342314 1247{
db64fe02 1248 struct vmap_area *va;
83342314 1249
db64fe02
NP
1250 va = find_vmap_area((unsigned long)addr);
1251 if (va && va->flags & VM_VM_AREA)
1252 return va->private;
1da177e4 1253
1da177e4 1254 return NULL;
1da177e4
LT
1255}
1256
7856dfeb 1257/**
183ff22b 1258 * remove_vm_area - find and remove a continuous kernel virtual area
7856dfeb
AK
1259 * @addr: base address
1260 *
1261 * Search for the kernel VM area starting at @addr, and remove it.
1262 * This function returns the found VM area, but using it is NOT safe
1263 * on SMP machines, except for its size or flags.
1264 */
b3bdda02 1265struct vm_struct *remove_vm_area(const void *addr)
7856dfeb 1266{
db64fe02
NP
1267 struct vmap_area *va;
1268
1269 va = find_vmap_area((unsigned long)addr);
1270 if (va && va->flags & VM_VM_AREA) {
1271 struct vm_struct *vm = va->private;
1272 struct vm_struct *tmp, **p;
cd52858c
NP
1273
1274 vmap_debug_free_range(va->va_start, va->va_end);
db64fe02
NP
1275 free_unmap_vmap_area(va);
1276 vm->size -= PAGE_SIZE;
1277
1278 write_lock(&vmlist_lock);
1279 for (p = &vmlist; (tmp = *p) != vm; p = &tmp->next)
1280 ;
1281 *p = tmp->next;
1282 write_unlock(&vmlist_lock);
1283
1284 return vm;
1285 }
1286 return NULL;
7856dfeb
AK
1287}
1288
b3bdda02 1289static void __vunmap(const void *addr, int deallocate_pages)
1da177e4
LT
1290{
1291 struct vm_struct *area;
1292
1293 if (!addr)
1294 return;
1295
1296 if ((PAGE_SIZE-1) & (unsigned long)addr) {
4c8573e2 1297 WARN(1, KERN_ERR "Trying to vfree() bad address (%p)\n", addr);
1da177e4
LT
1298 return;
1299 }
1300
1301 area = remove_vm_area(addr);
1302 if (unlikely(!area)) {
4c8573e2 1303 WARN(1, KERN_ERR "Trying to vfree() nonexistent vm area (%p)\n",
1da177e4 1304 addr);
1da177e4
LT
1305 return;
1306 }
1307
9a11b49a 1308 debug_check_no_locks_freed(addr, area->size);
3ac7fe5a 1309 debug_check_no_obj_freed(addr, area->size);
9a11b49a 1310
1da177e4
LT
1311 if (deallocate_pages) {
1312 int i;
1313
1314 for (i = 0; i < area->nr_pages; i++) {
bf53d6f8
CL
1315 struct page *page = area->pages[i];
1316
1317 BUG_ON(!page);
1318 __free_page(page);
1da177e4
LT
1319 }
1320
8757d5fa 1321 if (area->flags & VM_VPAGES)
1da177e4
LT
1322 vfree(area->pages);
1323 else
1324 kfree(area->pages);
1325 }
1326
1327 kfree(area);
1328 return;
1329}
1330
1331/**
1332 * vfree - release memory allocated by vmalloc()
1da177e4
LT
1333 * @addr: memory base address
1334 *
183ff22b 1335 * Free the virtually continuous memory area starting at @addr, as
80e93eff
PE
1336 * obtained from vmalloc(), vmalloc_32() or __vmalloc(). If @addr is
1337 * NULL, no operation is performed.
1da177e4 1338 *
80e93eff 1339 * Must not be called in interrupt context.
1da177e4 1340 */
b3bdda02 1341void vfree(const void *addr)
1da177e4
LT
1342{
1343 BUG_ON(in_interrupt());
89219d37
CM
1344
1345 kmemleak_free(addr);
1346
1da177e4
LT
1347 __vunmap(addr, 1);
1348}
1da177e4
LT
1349EXPORT_SYMBOL(vfree);
1350
1351/**
1352 * vunmap - release virtual mapping obtained by vmap()
1da177e4
LT
1353 * @addr: memory base address
1354 *
1355 * Free the virtually contiguous memory area starting at @addr,
1356 * which was created from the page array passed to vmap().
1357 *
80e93eff 1358 * Must not be called in interrupt context.
1da177e4 1359 */
b3bdda02 1360void vunmap(const void *addr)
1da177e4
LT
1361{
1362 BUG_ON(in_interrupt());
34754b69 1363 might_sleep();
1da177e4
LT
1364 __vunmap(addr, 0);
1365}
1da177e4
LT
1366EXPORT_SYMBOL(vunmap);
1367
1368/**
1369 * vmap - map an array of pages into virtually contiguous space
1da177e4
LT
1370 * @pages: array of page pointers
1371 * @count: number of pages to map
1372 * @flags: vm_area->flags
1373 * @prot: page protection for the mapping
1374 *
1375 * Maps @count pages from @pages into contiguous kernel virtual
1376 * space.
1377 */
1378void *vmap(struct page **pages, unsigned int count,
1379 unsigned long flags, pgprot_t prot)
1380{
1381 struct vm_struct *area;
1382
34754b69
PZ
1383 might_sleep();
1384
1da177e4
LT
1385 if (count > num_physpages)
1386 return NULL;
1387
23016969
CL
1388 area = get_vm_area_caller((count << PAGE_SHIFT), flags,
1389 __builtin_return_address(0));
1da177e4
LT
1390 if (!area)
1391 return NULL;
23016969 1392
1da177e4
LT
1393 if (map_vm_area(area, prot, &pages)) {
1394 vunmap(area->addr);
1395 return NULL;
1396 }
1397
1398 return area->addr;
1399}
1da177e4
LT
1400EXPORT_SYMBOL(vmap);
1401
db64fe02
NP
1402static void *__vmalloc_node(unsigned long size, gfp_t gfp_mask, pgprot_t prot,
1403 int node, void *caller);
e31d9eb5 1404static void *__vmalloc_area_node(struct vm_struct *area, gfp_t gfp_mask,
23016969 1405 pgprot_t prot, int node, void *caller)
1da177e4
LT
1406{
1407 struct page **pages;
1408 unsigned int nr_pages, array_size, i;
1409
1410 nr_pages = (area->size - PAGE_SIZE) >> PAGE_SHIFT;
1411 array_size = (nr_pages * sizeof(struct page *));
1412
1413 area->nr_pages = nr_pages;
1414 /* Please note that the recursion is strictly bounded. */
8757d5fa 1415 if (array_size > PAGE_SIZE) {
94f6030c 1416 pages = __vmalloc_node(array_size, gfp_mask | __GFP_ZERO,
23016969 1417 PAGE_KERNEL, node, caller);
8757d5fa 1418 area->flags |= VM_VPAGES;
286e1ea3
AM
1419 } else {
1420 pages = kmalloc_node(array_size,
6cb06229 1421 (gfp_mask & GFP_RECLAIM_MASK) | __GFP_ZERO,
286e1ea3
AM
1422 node);
1423 }
1da177e4 1424 area->pages = pages;
23016969 1425 area->caller = caller;
1da177e4
LT
1426 if (!area->pages) {
1427 remove_vm_area(area->addr);
1428 kfree(area);
1429 return NULL;
1430 }
1da177e4
LT
1431
1432 for (i = 0; i < area->nr_pages; i++) {
bf53d6f8
CL
1433 struct page *page;
1434
930fc45a 1435 if (node < 0)
bf53d6f8 1436 page = alloc_page(gfp_mask);
930fc45a 1437 else
bf53d6f8
CL
1438 page = alloc_pages_node(node, gfp_mask, 0);
1439
1440 if (unlikely(!page)) {
1da177e4
LT
1441 /* Successfully allocated i pages, free them in __vunmap() */
1442 area->nr_pages = i;
1443 goto fail;
1444 }
bf53d6f8 1445 area->pages[i] = page;
1da177e4
LT
1446 }
1447
1448 if (map_vm_area(area, prot, &pages))
1449 goto fail;
1450 return area->addr;
1451
1452fail:
1453 vfree(area->addr);
1454 return NULL;
1455}
1456
930fc45a
CL
1457void *__vmalloc_area(struct vm_struct *area, gfp_t gfp_mask, pgprot_t prot)
1458{
89219d37
CM
1459 void *addr = __vmalloc_area_node(area, gfp_mask, prot, -1,
1460 __builtin_return_address(0));
1461
1462 /*
1463 * A ref_count = 3 is needed because the vm_struct and vmap_area
1464 * structures allocated in the __get_vm_area_node() function contain
1465 * references to the virtual address of the vmalloc'ed block.
1466 */
1467 kmemleak_alloc(addr, area->size - PAGE_SIZE, 3, gfp_mask);
1468
1469 return addr;
930fc45a
CL
1470}
1471
1da177e4 1472/**
930fc45a 1473 * __vmalloc_node - allocate virtually contiguous memory
1da177e4
LT
1474 * @size: allocation size
1475 * @gfp_mask: flags for the page level allocator
1476 * @prot: protection mask for the allocated pages
d44e0780 1477 * @node: node to use for allocation or -1
c85d194b 1478 * @caller: caller's return address
1da177e4
LT
1479 *
1480 * Allocate enough pages to cover @size from the page level
1481 * allocator with @gfp_mask flags. Map them into contiguous
1482 * kernel virtual space, using a pagetable protection of @prot.
1483 */
b221385b 1484static void *__vmalloc_node(unsigned long size, gfp_t gfp_mask, pgprot_t prot,
23016969 1485 int node, void *caller)
1da177e4
LT
1486{
1487 struct vm_struct *area;
89219d37
CM
1488 void *addr;
1489 unsigned long real_size = size;
1da177e4
LT
1490
1491 size = PAGE_ALIGN(size);
1492 if (!size || (size >> PAGE_SHIFT) > num_physpages)
1493 return NULL;
1494
23016969
CL
1495 area = __get_vm_area_node(size, VM_ALLOC, VMALLOC_START, VMALLOC_END,
1496 node, gfp_mask, caller);
1497
1da177e4
LT
1498 if (!area)
1499 return NULL;
1500
89219d37
CM
1501 addr = __vmalloc_area_node(area, gfp_mask, prot, node, caller);
1502
1503 /*
1504 * A ref_count = 3 is needed because the vm_struct and vmap_area
1505 * structures allocated in the __get_vm_area_node() function contain
1506 * references to the virtual address of the vmalloc'ed block.
1507 */
1508 kmemleak_alloc(addr, real_size, 3, gfp_mask);
1509
1510 return addr;
1da177e4
LT
1511}
1512
930fc45a
CL
1513void *__vmalloc(unsigned long size, gfp_t gfp_mask, pgprot_t prot)
1514{
23016969
CL
1515 return __vmalloc_node(size, gfp_mask, prot, -1,
1516 __builtin_return_address(0));
930fc45a 1517}
1da177e4
LT
1518EXPORT_SYMBOL(__vmalloc);
1519
1520/**
1521 * vmalloc - allocate virtually contiguous memory
1da177e4 1522 * @size: allocation size
1da177e4
LT
1523 * Allocate enough pages to cover @size from the page level
1524 * allocator and map them into contiguous kernel virtual space.
1525 *
c1c8897f 1526 * For tight control over page level allocator and protection flags
1da177e4
LT
1527 * use __vmalloc() instead.
1528 */
1529void *vmalloc(unsigned long size)
1530{
23016969
CL
1531 return __vmalloc_node(size, GFP_KERNEL | __GFP_HIGHMEM, PAGE_KERNEL,
1532 -1, __builtin_return_address(0));
1da177e4 1533}
1da177e4
LT
1534EXPORT_SYMBOL(vmalloc);
1535
83342314 1536/**
ead04089
REB
1537 * vmalloc_user - allocate zeroed virtually contiguous memory for userspace
1538 * @size: allocation size
83342314 1539 *
ead04089
REB
1540 * The resulting memory area is zeroed so it can be mapped to userspace
1541 * without leaking data.
83342314
NP
1542 */
1543void *vmalloc_user(unsigned long size)
1544{
1545 struct vm_struct *area;
1546 void *ret;
1547
84877848
GC
1548 ret = __vmalloc_node(size, GFP_KERNEL | __GFP_HIGHMEM | __GFP_ZERO,
1549 PAGE_KERNEL, -1, __builtin_return_address(0));
2b4ac44e 1550 if (ret) {
db64fe02 1551 area = find_vm_area(ret);
2b4ac44e 1552 area->flags |= VM_USERMAP;
2b4ac44e 1553 }
83342314
NP
1554 return ret;
1555}
1556EXPORT_SYMBOL(vmalloc_user);
1557
930fc45a
CL
1558/**
1559 * vmalloc_node - allocate memory on a specific node
930fc45a 1560 * @size: allocation size
d44e0780 1561 * @node: numa node
930fc45a
CL
1562 *
1563 * Allocate enough pages to cover @size from the page level
1564 * allocator and map them into contiguous kernel virtual space.
1565 *
c1c8897f 1566 * For tight control over page level allocator and protection flags
930fc45a
CL
1567 * use __vmalloc() instead.
1568 */
1569void *vmalloc_node(unsigned long size, int node)
1570{
23016969
CL
1571 return __vmalloc_node(size, GFP_KERNEL | __GFP_HIGHMEM, PAGE_KERNEL,
1572 node, __builtin_return_address(0));
930fc45a
CL
1573}
1574EXPORT_SYMBOL(vmalloc_node);
1575
4dc3b16b
PP
1576#ifndef PAGE_KERNEL_EXEC
1577# define PAGE_KERNEL_EXEC PAGE_KERNEL
1578#endif
1579
1da177e4
LT
1580/**
1581 * vmalloc_exec - allocate virtually contiguous, executable memory
1da177e4
LT
1582 * @size: allocation size
1583 *
1584 * Kernel-internal function to allocate enough pages to cover @size
1585 * the page level allocator and map them into contiguous and
1586 * executable kernel virtual space.
1587 *
c1c8897f 1588 * For tight control over page level allocator and protection flags
1da177e4
LT
1589 * use __vmalloc() instead.
1590 */
1591
1da177e4
LT
1592void *vmalloc_exec(unsigned long size)
1593{
84877848
GC
1594 return __vmalloc_node(size, GFP_KERNEL | __GFP_HIGHMEM, PAGE_KERNEL_EXEC,
1595 -1, __builtin_return_address(0));
1da177e4
LT
1596}
1597
0d08e0d3 1598#if defined(CONFIG_64BIT) && defined(CONFIG_ZONE_DMA32)
7ac674f5 1599#define GFP_VMALLOC32 GFP_DMA32 | GFP_KERNEL
0d08e0d3 1600#elif defined(CONFIG_64BIT) && defined(CONFIG_ZONE_DMA)
7ac674f5 1601#define GFP_VMALLOC32 GFP_DMA | GFP_KERNEL
0d08e0d3
AK
1602#else
1603#define GFP_VMALLOC32 GFP_KERNEL
1604#endif
1605
1da177e4
LT
1606/**
1607 * vmalloc_32 - allocate virtually contiguous memory (32bit addressable)
1da177e4
LT
1608 * @size: allocation size
1609 *
1610 * Allocate enough 32bit PA addressable pages to cover @size from the
1611 * page level allocator and map them into contiguous kernel virtual space.
1612 */
1613void *vmalloc_32(unsigned long size)
1614{
84877848
GC
1615 return __vmalloc_node(size, GFP_VMALLOC32, PAGE_KERNEL,
1616 -1, __builtin_return_address(0));
1da177e4 1617}
1da177e4
LT
1618EXPORT_SYMBOL(vmalloc_32);
1619
83342314 1620/**
ead04089 1621 * vmalloc_32_user - allocate zeroed virtually contiguous 32bit memory
83342314 1622 * @size: allocation size
ead04089
REB
1623 *
1624 * The resulting memory area is 32bit addressable and zeroed so it can be
1625 * mapped to userspace without leaking data.
83342314
NP
1626 */
1627void *vmalloc_32_user(unsigned long size)
1628{
1629 struct vm_struct *area;
1630 void *ret;
1631
84877848
GC
1632 ret = __vmalloc_node(size, GFP_VMALLOC32 | __GFP_ZERO, PAGE_KERNEL,
1633 -1, __builtin_return_address(0));
2b4ac44e 1634 if (ret) {
db64fe02 1635 area = find_vm_area(ret);
2b4ac44e 1636 area->flags |= VM_USERMAP;
2b4ac44e 1637 }
83342314
NP
1638 return ret;
1639}
1640EXPORT_SYMBOL(vmalloc_32_user);
1641
1da177e4
LT
1642long vread(char *buf, char *addr, unsigned long count)
1643{
1644 struct vm_struct *tmp;
1645 char *vaddr, *buf_start = buf;
1646 unsigned long n;
1647
1648 /* Don't allow overflow */
1649 if ((unsigned long) addr + count < count)
1650 count = -(unsigned long) addr;
1651
1652 read_lock(&vmlist_lock);
1653 for (tmp = vmlist; tmp; tmp = tmp->next) {
1654 vaddr = (char *) tmp->addr;
1655 if (addr >= vaddr + tmp->size - PAGE_SIZE)
1656 continue;
1657 while (addr < vaddr) {
1658 if (count == 0)
1659 goto finished;
1660 *buf = '\0';
1661 buf++;
1662 addr++;
1663 count--;
1664 }
1665 n = vaddr + tmp->size - PAGE_SIZE - addr;
1666 do {
1667 if (count == 0)
1668 goto finished;
1669 *buf = *addr;
1670 buf++;
1671 addr++;
1672 count--;
1673 } while (--n > 0);
1674 }
1675finished:
1676 read_unlock(&vmlist_lock);
1677 return buf - buf_start;
1678}
1679
1680long vwrite(char *buf, char *addr, unsigned long count)
1681{
1682 struct vm_struct *tmp;
1683 char *vaddr, *buf_start = buf;
1684 unsigned long n;
1685
1686 /* Don't allow overflow */
1687 if ((unsigned long) addr + count < count)
1688 count = -(unsigned long) addr;
1689
1690 read_lock(&vmlist_lock);
1691 for (tmp = vmlist; tmp; tmp = tmp->next) {
1692 vaddr = (char *) tmp->addr;
1693 if (addr >= vaddr + tmp->size - PAGE_SIZE)
1694 continue;
1695 while (addr < vaddr) {
1696 if (count == 0)
1697 goto finished;
1698 buf++;
1699 addr++;
1700 count--;
1701 }
1702 n = vaddr + tmp->size - PAGE_SIZE - addr;
1703 do {
1704 if (count == 0)
1705 goto finished;
1706 *addr = *buf;
1707 buf++;
1708 addr++;
1709 count--;
1710 } while (--n > 0);
1711 }
1712finished:
1713 read_unlock(&vmlist_lock);
1714 return buf - buf_start;
1715}
83342314
NP
1716
1717/**
1718 * remap_vmalloc_range - map vmalloc pages to userspace
83342314
NP
1719 * @vma: vma to cover (map full range of vma)
1720 * @addr: vmalloc memory
1721 * @pgoff: number of pages into addr before first page to map
7682486b
RD
1722 *
1723 * Returns: 0 for success, -Exxx on failure
83342314
NP
1724 *
1725 * This function checks that addr is a valid vmalloc'ed area, and
1726 * that it is big enough to cover the vma. Will return failure if
1727 * that criteria isn't met.
1728 *
72fd4a35 1729 * Similar to remap_pfn_range() (see mm/memory.c)
83342314
NP
1730 */
1731int remap_vmalloc_range(struct vm_area_struct *vma, void *addr,
1732 unsigned long pgoff)
1733{
1734 struct vm_struct *area;
1735 unsigned long uaddr = vma->vm_start;
1736 unsigned long usize = vma->vm_end - vma->vm_start;
83342314
NP
1737
1738 if ((PAGE_SIZE-1) & (unsigned long)addr)
1739 return -EINVAL;
1740
db64fe02 1741 area = find_vm_area(addr);
83342314 1742 if (!area)
db64fe02 1743 return -EINVAL;
83342314
NP
1744
1745 if (!(area->flags & VM_USERMAP))
db64fe02 1746 return -EINVAL;
83342314
NP
1747
1748 if (usize + (pgoff << PAGE_SHIFT) > area->size - PAGE_SIZE)
db64fe02 1749 return -EINVAL;
83342314
NP
1750
1751 addr += pgoff << PAGE_SHIFT;
1752 do {
1753 struct page *page = vmalloc_to_page(addr);
db64fe02
NP
1754 int ret;
1755
83342314
NP
1756 ret = vm_insert_page(vma, uaddr, page);
1757 if (ret)
1758 return ret;
1759
1760 uaddr += PAGE_SIZE;
1761 addr += PAGE_SIZE;
1762 usize -= PAGE_SIZE;
1763 } while (usize > 0);
1764
1765 /* Prevent "things" like memory migration? VM_flags need a cleanup... */
1766 vma->vm_flags |= VM_RESERVED;
1767
db64fe02 1768 return 0;
83342314
NP
1769}
1770EXPORT_SYMBOL(remap_vmalloc_range);
1771
1eeb66a1
CH
1772/*
1773 * Implement a stub for vmalloc_sync_all() if the architecture chose not to
1774 * have one.
1775 */
1776void __attribute__((weak)) vmalloc_sync_all(void)
1777{
1778}
5f4352fb
JF
1779
1780
2f569afd 1781static int f(pte_t *pte, pgtable_t table, unsigned long addr, void *data)
5f4352fb
JF
1782{
1783 /* apply_to_page_range() does all the hard work. */
1784 return 0;
1785}
1786
1787/**
1788 * alloc_vm_area - allocate a range of kernel address space
1789 * @size: size of the area
7682486b
RD
1790 *
1791 * Returns: NULL on failure, vm_struct on success
5f4352fb
JF
1792 *
1793 * This function reserves a range of kernel address space, and
1794 * allocates pagetables to map that range. No actual mappings
1795 * are created. If the kernel address space is not shared
1796 * between processes, it syncs the pagetable across all
1797 * processes.
1798 */
1799struct vm_struct *alloc_vm_area(size_t size)
1800{
1801 struct vm_struct *area;
1802
23016969
CL
1803 area = get_vm_area_caller(size, VM_IOREMAP,
1804 __builtin_return_address(0));
5f4352fb
JF
1805 if (area == NULL)
1806 return NULL;
1807
1808 /*
1809 * This ensures that page tables are constructed for this region
1810 * of kernel virtual address space and mapped into init_mm.
1811 */
1812 if (apply_to_page_range(&init_mm, (unsigned long)area->addr,
1813 area->size, f, NULL)) {
1814 free_vm_area(area);
1815 return NULL;
1816 }
1817
1818 /* Make sure the pagetables are constructed in process kernel
1819 mappings */
1820 vmalloc_sync_all();
1821
1822 return area;
1823}
1824EXPORT_SYMBOL_GPL(alloc_vm_area);
1825
1826void free_vm_area(struct vm_struct *area)
1827{
1828 struct vm_struct *ret;
1829 ret = remove_vm_area(area->addr);
1830 BUG_ON(ret != area);
1831 kfree(area);
1832}
1833EXPORT_SYMBOL_GPL(free_vm_area);
a10aa579 1834
ca23e405
TH
1835static struct vmap_area *node_to_va(struct rb_node *n)
1836{
1837 return n ? rb_entry(n, struct vmap_area, rb_node) : NULL;
1838}
1839
1840/**
1841 * pvm_find_next_prev - find the next and prev vmap_area surrounding @end
1842 * @end: target address
1843 * @pnext: out arg for the next vmap_area
1844 * @pprev: out arg for the previous vmap_area
1845 *
1846 * Returns: %true if either or both of next and prev are found,
1847 * %false if no vmap_area exists
1848 *
1849 * Find vmap_areas end addresses of which enclose @end. ie. if not
1850 * NULL, *pnext->va_end > @end and *pprev->va_end <= @end.
1851 */
1852static bool pvm_find_next_prev(unsigned long end,
1853 struct vmap_area **pnext,
1854 struct vmap_area **pprev)
1855{
1856 struct rb_node *n = vmap_area_root.rb_node;
1857 struct vmap_area *va = NULL;
1858
1859 while (n) {
1860 va = rb_entry(n, struct vmap_area, rb_node);
1861 if (end < va->va_end)
1862 n = n->rb_left;
1863 else if (end > va->va_end)
1864 n = n->rb_right;
1865 else
1866 break;
1867 }
1868
1869 if (!va)
1870 return false;
1871
1872 if (va->va_end > end) {
1873 *pnext = va;
1874 *pprev = node_to_va(rb_prev(&(*pnext)->rb_node));
1875 } else {
1876 *pprev = va;
1877 *pnext = node_to_va(rb_next(&(*pprev)->rb_node));
1878 }
1879 return true;
1880}
1881
1882/**
1883 * pvm_determine_end - find the highest aligned address between two vmap_areas
1884 * @pnext: in/out arg for the next vmap_area
1885 * @pprev: in/out arg for the previous vmap_area
1886 * @align: alignment
1887 *
1888 * Returns: determined end address
1889 *
1890 * Find the highest aligned address between *@pnext and *@pprev below
1891 * VMALLOC_END. *@pnext and *@pprev are adjusted so that the aligned
1892 * down address is between the end addresses of the two vmap_areas.
1893 *
1894 * Please note that the address returned by this function may fall
1895 * inside *@pnext vmap_area. The caller is responsible for checking
1896 * that.
1897 */
1898static unsigned long pvm_determine_end(struct vmap_area **pnext,
1899 struct vmap_area **pprev,
1900 unsigned long align)
1901{
1902 const unsigned long vmalloc_end = VMALLOC_END & ~(align - 1);
1903 unsigned long addr;
1904
1905 if (*pnext)
1906 addr = min((*pnext)->va_start & ~(align - 1), vmalloc_end);
1907 else
1908 addr = vmalloc_end;
1909
1910 while (*pprev && (*pprev)->va_end > addr) {
1911 *pnext = *pprev;
1912 *pprev = node_to_va(rb_prev(&(*pnext)->rb_node));
1913 }
1914
1915 return addr;
1916}
1917
1918/**
1919 * pcpu_get_vm_areas - allocate vmalloc areas for percpu allocator
1920 * @offsets: array containing offset of each area
1921 * @sizes: array containing size of each area
1922 * @nr_vms: the number of areas to allocate
1923 * @align: alignment, all entries in @offsets and @sizes must be aligned to this
1924 * @gfp_mask: allocation mask
1925 *
1926 * Returns: kmalloc'd vm_struct pointer array pointing to allocated
1927 * vm_structs on success, %NULL on failure
1928 *
1929 * Percpu allocator wants to use congruent vm areas so that it can
1930 * maintain the offsets among percpu areas. This function allocates
1931 * congruent vmalloc areas for it. These areas tend to be scattered
1932 * pretty far, distance between two areas easily going up to
1933 * gigabytes. To avoid interacting with regular vmallocs, these areas
1934 * are allocated from top.
1935 *
1936 * Despite its complicated look, this allocator is rather simple. It
1937 * does everything top-down and scans areas from the end looking for
1938 * matching slot. While scanning, if any of the areas overlaps with
1939 * existing vmap_area, the base address is pulled down to fit the
1940 * area. Scanning is repeated till all the areas fit and then all
1941 * necessary data structres are inserted and the result is returned.
1942 */
1943struct vm_struct **pcpu_get_vm_areas(const unsigned long *offsets,
1944 const size_t *sizes, int nr_vms,
1945 size_t align, gfp_t gfp_mask)
1946{
1947 const unsigned long vmalloc_start = ALIGN(VMALLOC_START, align);
1948 const unsigned long vmalloc_end = VMALLOC_END & ~(align - 1);
1949 struct vmap_area **vas, *prev, *next;
1950 struct vm_struct **vms;
1951 int area, area2, last_area, term_area;
1952 unsigned long base, start, end, last_end;
1953 bool purged = false;
1954
1955 gfp_mask &= GFP_RECLAIM_MASK;
1956
1957 /* verify parameters and allocate data structures */
1958 BUG_ON(align & ~PAGE_MASK || !is_power_of_2(align));
1959 for (last_area = 0, area = 0; area < nr_vms; area++) {
1960 start = offsets[area];
1961 end = start + sizes[area];
1962
1963 /* is everything aligned properly? */
1964 BUG_ON(!IS_ALIGNED(offsets[area], align));
1965 BUG_ON(!IS_ALIGNED(sizes[area], align));
1966
1967 /* detect the area with the highest address */
1968 if (start > offsets[last_area])
1969 last_area = area;
1970
1971 for (area2 = 0; area2 < nr_vms; area2++) {
1972 unsigned long start2 = offsets[area2];
1973 unsigned long end2 = start2 + sizes[area2];
1974
1975 if (area2 == area)
1976 continue;
1977
1978 BUG_ON(start2 >= start && start2 < end);
1979 BUG_ON(end2 <= end && end2 > start);
1980 }
1981 }
1982 last_end = offsets[last_area] + sizes[last_area];
1983
1984 if (vmalloc_end - vmalloc_start < last_end) {
1985 WARN_ON(true);
1986 return NULL;
1987 }
1988
1989 vms = kzalloc(sizeof(vms[0]) * nr_vms, gfp_mask);
1990 vas = kzalloc(sizeof(vas[0]) * nr_vms, gfp_mask);
1991 if (!vas || !vms)
1992 goto err_free;
1993
1994 for (area = 0; area < nr_vms; area++) {
1995 vas[area] = kzalloc(sizeof(struct vmap_area), gfp_mask);
1996 vms[area] = kzalloc(sizeof(struct vm_struct), gfp_mask);
1997 if (!vas[area] || !vms[area])
1998 goto err_free;
1999 }
2000retry:
2001 spin_lock(&vmap_area_lock);
2002
2003 /* start scanning - we scan from the top, begin with the last area */
2004 area = term_area = last_area;
2005 start = offsets[area];
2006 end = start + sizes[area];
2007
2008 if (!pvm_find_next_prev(vmap_area_pcpu_hole, &next, &prev)) {
2009 base = vmalloc_end - last_end;
2010 goto found;
2011 }
2012 base = pvm_determine_end(&next, &prev, align) - end;
2013
2014 while (true) {
2015 BUG_ON(next && next->va_end <= base + end);
2016 BUG_ON(prev && prev->va_end > base + end);
2017
2018 /*
2019 * base might have underflowed, add last_end before
2020 * comparing.
2021 */
2022 if (base + last_end < vmalloc_start + last_end) {
2023 spin_unlock(&vmap_area_lock);
2024 if (!purged) {
2025 purge_vmap_area_lazy();
2026 purged = true;
2027 goto retry;
2028 }
2029 goto err_free;
2030 }
2031
2032 /*
2033 * If next overlaps, move base downwards so that it's
2034 * right below next and then recheck.
2035 */
2036 if (next && next->va_start < base + end) {
2037 base = pvm_determine_end(&next, &prev, align) - end;
2038 term_area = area;
2039 continue;
2040 }
2041
2042 /*
2043 * If prev overlaps, shift down next and prev and move
2044 * base so that it's right below new next and then
2045 * recheck.
2046 */
2047 if (prev && prev->va_end > base + start) {
2048 next = prev;
2049 prev = node_to_va(rb_prev(&next->rb_node));
2050 base = pvm_determine_end(&next, &prev, align) - end;
2051 term_area = area;
2052 continue;
2053 }
2054
2055 /*
2056 * This area fits, move on to the previous one. If
2057 * the previous one is the terminal one, we're done.
2058 */
2059 area = (area + nr_vms - 1) % nr_vms;
2060 if (area == term_area)
2061 break;
2062 start = offsets[area];
2063 end = start + sizes[area];
2064 pvm_find_next_prev(base + end, &next, &prev);
2065 }
2066found:
2067 /* we've found a fitting base, insert all va's */
2068 for (area = 0; area < nr_vms; area++) {
2069 struct vmap_area *va = vas[area];
2070
2071 va->va_start = base + offsets[area];
2072 va->va_end = va->va_start + sizes[area];
2073 __insert_vmap_area(va);
2074 }
2075
2076 vmap_area_pcpu_hole = base + offsets[last_area];
2077
2078 spin_unlock(&vmap_area_lock);
2079
2080 /* insert all vm's */
2081 for (area = 0; area < nr_vms; area++)
2082 insert_vmalloc_vm(vms[area], vas[area], VM_ALLOC,
2083 pcpu_get_vm_areas);
2084
2085 kfree(vas);
2086 return vms;
2087
2088err_free:
2089 for (area = 0; area < nr_vms; area++) {
2090 if (vas)
2091 kfree(vas[area]);
2092 if (vms)
2093 kfree(vms[area]);
2094 }
2095 kfree(vas);
2096 kfree(vms);
2097 return NULL;
2098}
2099
2100/**
2101 * pcpu_free_vm_areas - free vmalloc areas for percpu allocator
2102 * @vms: vm_struct pointer array returned by pcpu_get_vm_areas()
2103 * @nr_vms: the number of allocated areas
2104 *
2105 * Free vm_structs and the array allocated by pcpu_get_vm_areas().
2106 */
2107void pcpu_free_vm_areas(struct vm_struct **vms, int nr_vms)
2108{
2109 int i;
2110
2111 for (i = 0; i < nr_vms; i++)
2112 free_vm_area(vms[i]);
2113 kfree(vms);
2114}
a10aa579
CL
2115
2116#ifdef CONFIG_PROC_FS
2117static void *s_start(struct seq_file *m, loff_t *pos)
2118{
2119 loff_t n = *pos;
2120 struct vm_struct *v;
2121
2122 read_lock(&vmlist_lock);
2123 v = vmlist;
2124 while (n > 0 && v) {
2125 n--;
2126 v = v->next;
2127 }
2128 if (!n)
2129 return v;
2130
2131 return NULL;
2132
2133}
2134
2135static void *s_next(struct seq_file *m, void *p, loff_t *pos)
2136{
2137 struct vm_struct *v = p;
2138
2139 ++*pos;
2140 return v->next;
2141}
2142
2143static void s_stop(struct seq_file *m, void *p)
2144{
2145 read_unlock(&vmlist_lock);
2146}
2147
a47a126a
ED
2148static void show_numa_info(struct seq_file *m, struct vm_struct *v)
2149{
2150 if (NUMA_BUILD) {
2151 unsigned int nr, *counters = m->private;
2152
2153 if (!counters)
2154 return;
2155
2156 memset(counters, 0, nr_node_ids * sizeof(unsigned int));
2157
2158 for (nr = 0; nr < v->nr_pages; nr++)
2159 counters[page_to_nid(v->pages[nr])]++;
2160
2161 for_each_node_state(nr, N_HIGH_MEMORY)
2162 if (counters[nr])
2163 seq_printf(m, " N%u=%u", nr, counters[nr]);
2164 }
2165}
2166
a10aa579
CL
2167static int s_show(struct seq_file *m, void *p)
2168{
2169 struct vm_struct *v = p;
2170
2171 seq_printf(m, "0x%p-0x%p %7ld",
2172 v->addr, v->addr + v->size, v->size);
2173
23016969 2174 if (v->caller) {
9c246247 2175 char buff[KSYM_SYMBOL_LEN];
23016969
CL
2176
2177 seq_putc(m, ' ');
2178 sprint_symbol(buff, (unsigned long)v->caller);
2179 seq_puts(m, buff);
2180 }
2181
a10aa579
CL
2182 if (v->nr_pages)
2183 seq_printf(m, " pages=%d", v->nr_pages);
2184
2185 if (v->phys_addr)
2186 seq_printf(m, " phys=%lx", v->phys_addr);
2187
2188 if (v->flags & VM_IOREMAP)
2189 seq_printf(m, " ioremap");
2190
2191 if (v->flags & VM_ALLOC)
2192 seq_printf(m, " vmalloc");
2193
2194 if (v->flags & VM_MAP)
2195 seq_printf(m, " vmap");
2196
2197 if (v->flags & VM_USERMAP)
2198 seq_printf(m, " user");
2199
2200 if (v->flags & VM_VPAGES)
2201 seq_printf(m, " vpages");
2202
a47a126a 2203 show_numa_info(m, v);
a10aa579
CL
2204 seq_putc(m, '\n');
2205 return 0;
2206}
2207
5f6a6a9c 2208static const struct seq_operations vmalloc_op = {
a10aa579
CL
2209 .start = s_start,
2210 .next = s_next,
2211 .stop = s_stop,
2212 .show = s_show,
2213};
5f6a6a9c
AD
2214
2215static int vmalloc_open(struct inode *inode, struct file *file)
2216{
2217 unsigned int *ptr = NULL;
2218 int ret;
2219
2220 if (NUMA_BUILD)
2221 ptr = kmalloc(nr_node_ids * sizeof(unsigned int), GFP_KERNEL);
2222 ret = seq_open(file, &vmalloc_op);
2223 if (!ret) {
2224 struct seq_file *m = file->private_data;
2225 m->private = ptr;
2226 } else
2227 kfree(ptr);
2228 return ret;
2229}
2230
2231static const struct file_operations proc_vmalloc_operations = {
2232 .open = vmalloc_open,
2233 .read = seq_read,
2234 .llseek = seq_lseek,
2235 .release = seq_release_private,
2236};
2237
2238static int __init proc_vmalloc_init(void)
2239{
2240 proc_create("vmallocinfo", S_IRUSR, NULL, &proc_vmalloc_operations);
2241 return 0;
2242}
2243module_init(proc_vmalloc_init);
a10aa579
CL
2244#endif
2245