ixgbe: Add support for IPv6 and UDP to ixgbe_get_headlen
[linux-2.6/cjktty.git] / mm / bootmem.c
blob434be4ae7a0495817267e5e100c68f47c2006415
1 /*
2 * bootmem - A boot-time physical memory allocator and configurator
4 * Copyright (C) 1999 Ingo Molnar
5 * 1999 Kanoj Sarcar, SGI
6 * 2008 Johannes Weiner
8 * Access to this subsystem has to be serialized externally (which is true
9 * for the boot process anyway).
11 #include <linux/init.h>
12 #include <linux/pfn.h>
13 #include <linux/slab.h>
14 #include <linux/bootmem.h>
15 #include <linux/export.h>
16 #include <linux/kmemleak.h>
17 #include <linux/range.h>
18 #include <linux/memblock.h>
20 #include <asm/bug.h>
21 #include <asm/io.h>
22 #include <asm/processor.h>
24 #include "internal.h"
26 #ifndef CONFIG_NEED_MULTIPLE_NODES
27 struct pglist_data __refdata contig_page_data = {
28 .bdata = &bootmem_node_data[0]
30 EXPORT_SYMBOL(contig_page_data);
31 #endif
33 unsigned long max_low_pfn;
34 unsigned long min_low_pfn;
35 unsigned long max_pfn;
37 bootmem_data_t bootmem_node_data[MAX_NUMNODES] __initdata;
39 static struct list_head bdata_list __initdata = LIST_HEAD_INIT(bdata_list);
41 static int bootmem_debug;
43 static int __init bootmem_debug_setup(char *buf)
45 bootmem_debug = 1;
46 return 0;
48 early_param("bootmem_debug", bootmem_debug_setup);
50 #define bdebug(fmt, args...) ({ \
51 if (unlikely(bootmem_debug)) \
52 printk(KERN_INFO \
53 "bootmem::%s " fmt, \
54 __func__, ## args); \
57 static unsigned long __init bootmap_bytes(unsigned long pages)
59 unsigned long bytes = DIV_ROUND_UP(pages, 8);
61 return ALIGN(bytes, sizeof(long));
64 /**
65 * bootmem_bootmap_pages - calculate bitmap size in pages
66 * @pages: number of pages the bitmap has to represent
68 unsigned long __init bootmem_bootmap_pages(unsigned long pages)
70 unsigned long bytes = bootmap_bytes(pages);
72 return PAGE_ALIGN(bytes) >> PAGE_SHIFT;
76 * link bdata in order
78 static void __init link_bootmem(bootmem_data_t *bdata)
80 bootmem_data_t *ent;
82 list_for_each_entry(ent, &bdata_list, list) {
83 if (bdata->node_min_pfn < ent->node_min_pfn) {
84 list_add_tail(&bdata->list, &ent->list);
85 return;
89 list_add_tail(&bdata->list, &bdata_list);
93 * Called once to set up the allocator itself.
95 static unsigned long __init init_bootmem_core(bootmem_data_t *bdata,
96 unsigned long mapstart, unsigned long start, unsigned long end)
98 unsigned long mapsize;
100 mminit_validate_memmodel_limits(&start, &end);
101 bdata->node_bootmem_map = phys_to_virt(PFN_PHYS(mapstart));
102 bdata->node_min_pfn = start;
103 bdata->node_low_pfn = end;
104 link_bootmem(bdata);
107 * Initially all pages are reserved - setup_arch() has to
108 * register free RAM areas explicitly.
110 mapsize = bootmap_bytes(end - start);
111 memset(bdata->node_bootmem_map, 0xff, mapsize);
113 bdebug("nid=%td start=%lx map=%lx end=%lx mapsize=%lx\n",
114 bdata - bootmem_node_data, start, mapstart, end, mapsize);
116 return mapsize;
120 * init_bootmem_node - register a node as boot memory
121 * @pgdat: node to register
122 * @freepfn: pfn where the bitmap for this node is to be placed
123 * @startpfn: first pfn on the node
124 * @endpfn: first pfn after the node
126 * Returns the number of bytes needed to hold the bitmap for this node.
128 unsigned long __init init_bootmem_node(pg_data_t *pgdat, unsigned long freepfn,
129 unsigned long startpfn, unsigned long endpfn)
131 return init_bootmem_core(pgdat->bdata, freepfn, startpfn, endpfn);
135 * init_bootmem - register boot memory
136 * @start: pfn where the bitmap is to be placed
137 * @pages: number of available physical pages
139 * Returns the number of bytes needed to hold the bitmap.
141 unsigned long __init init_bootmem(unsigned long start, unsigned long pages)
143 max_low_pfn = pages;
144 min_low_pfn = start;
145 return init_bootmem_core(NODE_DATA(0)->bdata, start, 0, pages);
149 * free_bootmem_late - free bootmem pages directly to page allocator
150 * @addr: starting address of the range
151 * @size: size of the range in bytes
153 * This is only useful when the bootmem allocator has already been torn
154 * down, but we are still initializing the system. Pages are given directly
155 * to the page allocator, no bootmem metadata is updated because it is gone.
157 void __init free_bootmem_late(unsigned long addr, unsigned long size)
159 unsigned long cursor, end;
161 kmemleak_free_part(__va(addr), size);
163 cursor = PFN_UP(addr);
164 end = PFN_DOWN(addr + size);
166 for (; cursor < end; cursor++) {
167 __free_pages_bootmem(pfn_to_page(cursor), 0);
168 totalram_pages++;
172 static unsigned long __init free_all_bootmem_core(bootmem_data_t *bdata)
174 struct page *page;
175 unsigned long start, end, pages, count = 0;
177 if (!bdata->node_bootmem_map)
178 return 0;
180 start = bdata->node_min_pfn;
181 end = bdata->node_low_pfn;
183 bdebug("nid=%td start=%lx end=%lx\n",
184 bdata - bootmem_node_data, start, end);
186 while (start < end) {
187 unsigned long *map, idx, vec;
189 map = bdata->node_bootmem_map;
190 idx = start - bdata->node_min_pfn;
191 vec = ~map[idx / BITS_PER_LONG];
193 * If we have a properly aligned and fully unreserved
194 * BITS_PER_LONG block of pages in front of us, free
195 * it in one go.
197 if (IS_ALIGNED(start, BITS_PER_LONG) && vec == ~0UL) {
198 int order = ilog2(BITS_PER_LONG);
200 __free_pages_bootmem(pfn_to_page(start), order);
201 fixup_zone_present_pages(page_to_nid(pfn_to_page(start)),
202 start, start + BITS_PER_LONG);
203 count += BITS_PER_LONG;
204 start += BITS_PER_LONG;
205 } else {
206 unsigned long off = 0;
208 vec >>= start & (BITS_PER_LONG - 1);
209 while (vec) {
210 if (vec & 1) {
211 page = pfn_to_page(start + off);
212 __free_pages_bootmem(page, 0);
213 fixup_zone_present_pages(
214 page_to_nid(page),
215 start + off, start + off + 1);
216 count++;
218 vec >>= 1;
219 off++;
221 start = ALIGN(start + 1, BITS_PER_LONG);
225 page = virt_to_page(bdata->node_bootmem_map);
226 pages = bdata->node_low_pfn - bdata->node_min_pfn;
227 pages = bootmem_bootmap_pages(pages);
228 count += pages;
229 while (pages--) {
230 fixup_zone_present_pages(page_to_nid(page),
231 page_to_pfn(page), page_to_pfn(page) + 1);
232 __free_pages_bootmem(page++, 0);
235 bdebug("nid=%td released=%lx\n", bdata - bootmem_node_data, count);
237 return count;
241 * free_all_bootmem_node - release a node's free pages to the buddy allocator
242 * @pgdat: node to be released
244 * Returns the number of pages actually released.
246 unsigned long __init free_all_bootmem_node(pg_data_t *pgdat)
248 register_page_bootmem_info_node(pgdat);
249 return free_all_bootmem_core(pgdat->bdata);
253 * free_all_bootmem - release free pages to the buddy allocator
255 * Returns the number of pages actually released.
257 unsigned long __init free_all_bootmem(void)
259 unsigned long total_pages = 0;
260 bootmem_data_t *bdata;
262 list_for_each_entry(bdata, &bdata_list, list)
263 total_pages += free_all_bootmem_core(bdata);
265 return total_pages;
268 static void __init __free(bootmem_data_t *bdata,
269 unsigned long sidx, unsigned long eidx)
271 unsigned long idx;
273 bdebug("nid=%td start=%lx end=%lx\n", bdata - bootmem_node_data,
274 sidx + bdata->node_min_pfn,
275 eidx + bdata->node_min_pfn);
277 if (bdata->hint_idx > sidx)
278 bdata->hint_idx = sidx;
280 for (idx = sidx; idx < eidx; idx++)
281 if (!test_and_clear_bit(idx, bdata->node_bootmem_map))
282 BUG();
285 static int __init __reserve(bootmem_data_t *bdata, unsigned long sidx,
286 unsigned long eidx, int flags)
288 unsigned long idx;
289 int exclusive = flags & BOOTMEM_EXCLUSIVE;
291 bdebug("nid=%td start=%lx end=%lx flags=%x\n",
292 bdata - bootmem_node_data,
293 sidx + bdata->node_min_pfn,
294 eidx + bdata->node_min_pfn,
295 flags);
297 for (idx = sidx; idx < eidx; idx++)
298 if (test_and_set_bit(idx, bdata->node_bootmem_map)) {
299 if (exclusive) {
300 __free(bdata, sidx, idx);
301 return -EBUSY;
303 bdebug("silent double reserve of PFN %lx\n",
304 idx + bdata->node_min_pfn);
306 return 0;
309 static int __init mark_bootmem_node(bootmem_data_t *bdata,
310 unsigned long start, unsigned long end,
311 int reserve, int flags)
313 unsigned long sidx, eidx;
315 bdebug("nid=%td start=%lx end=%lx reserve=%d flags=%x\n",
316 bdata - bootmem_node_data, start, end, reserve, flags);
318 BUG_ON(start < bdata->node_min_pfn);
319 BUG_ON(end > bdata->node_low_pfn);
321 sidx = start - bdata->node_min_pfn;
322 eidx = end - bdata->node_min_pfn;
324 if (reserve)
325 return __reserve(bdata, sidx, eidx, flags);
326 else
327 __free(bdata, sidx, eidx);
328 return 0;
331 static int __init mark_bootmem(unsigned long start, unsigned long end,
332 int reserve, int flags)
334 unsigned long pos;
335 bootmem_data_t *bdata;
337 pos = start;
338 list_for_each_entry(bdata, &bdata_list, list) {
339 int err;
340 unsigned long max;
342 if (pos < bdata->node_min_pfn ||
343 pos >= bdata->node_low_pfn) {
344 BUG_ON(pos != start);
345 continue;
348 max = min(bdata->node_low_pfn, end);
350 err = mark_bootmem_node(bdata, pos, max, reserve, flags);
351 if (reserve && err) {
352 mark_bootmem(start, pos, 0, 0);
353 return err;
356 if (max == end)
357 return 0;
358 pos = bdata->node_low_pfn;
360 BUG();
364 * free_bootmem_node - mark a page range as usable
365 * @pgdat: node the range resides on
366 * @physaddr: starting address of the range
367 * @size: size of the range in bytes
369 * Partial pages will be considered reserved and left as they are.
371 * The range must reside completely on the specified node.
373 void __init free_bootmem_node(pg_data_t *pgdat, unsigned long physaddr,
374 unsigned long size)
376 unsigned long start, end;
378 kmemleak_free_part(__va(physaddr), size);
380 start = PFN_UP(physaddr);
381 end = PFN_DOWN(physaddr + size);
383 mark_bootmem_node(pgdat->bdata, start, end, 0, 0);
387 * free_bootmem - mark a page range as usable
388 * @addr: starting address of the range
389 * @size: size of the range in bytes
391 * Partial pages will be considered reserved and left as they are.
393 * The range must be contiguous but may span node boundaries.
395 void __init free_bootmem(unsigned long addr, unsigned long size)
397 unsigned long start, end;
399 kmemleak_free_part(__va(addr), size);
401 start = PFN_UP(addr);
402 end = PFN_DOWN(addr + size);
404 mark_bootmem(start, end, 0, 0);
408 * reserve_bootmem_node - mark a page range as reserved
409 * @pgdat: node the range resides on
410 * @physaddr: starting address of the range
411 * @size: size of the range in bytes
412 * @flags: reservation flags (see linux/bootmem.h)
414 * Partial pages will be reserved.
416 * The range must reside completely on the specified node.
418 int __init reserve_bootmem_node(pg_data_t *pgdat, unsigned long physaddr,
419 unsigned long size, int flags)
421 unsigned long start, end;
423 start = PFN_DOWN(physaddr);
424 end = PFN_UP(physaddr + size);
426 return mark_bootmem_node(pgdat->bdata, start, end, 1, flags);
430 * reserve_bootmem - mark a page range as reserved
431 * @addr: starting address of the range
432 * @size: size of the range in bytes
433 * @flags: reservation flags (see linux/bootmem.h)
435 * Partial pages will be reserved.
437 * The range must be contiguous but may span node boundaries.
439 int __init reserve_bootmem(unsigned long addr, unsigned long size,
440 int flags)
442 unsigned long start, end;
444 start = PFN_DOWN(addr);
445 end = PFN_UP(addr + size);
447 return mark_bootmem(start, end, 1, flags);
450 int __weak __init reserve_bootmem_generic(unsigned long phys, unsigned long len,
451 int flags)
453 return reserve_bootmem(phys, len, flags);
456 static unsigned long __init align_idx(struct bootmem_data *bdata,
457 unsigned long idx, unsigned long step)
459 unsigned long base = bdata->node_min_pfn;
462 * Align the index with respect to the node start so that the
463 * combination of both satisfies the requested alignment.
466 return ALIGN(base + idx, step) - base;
469 static unsigned long __init align_off(struct bootmem_data *bdata,
470 unsigned long off, unsigned long align)
472 unsigned long base = PFN_PHYS(bdata->node_min_pfn);
474 /* Same as align_idx for byte offsets */
476 return ALIGN(base + off, align) - base;
479 static void * __init alloc_bootmem_bdata(struct bootmem_data *bdata,
480 unsigned long size, unsigned long align,
481 unsigned long goal, unsigned long limit)
483 unsigned long fallback = 0;
484 unsigned long min, max, start, sidx, midx, step;
486 bdebug("nid=%td size=%lx [%lu pages] align=%lx goal=%lx limit=%lx\n",
487 bdata - bootmem_node_data, size, PAGE_ALIGN(size) >> PAGE_SHIFT,
488 align, goal, limit);
490 BUG_ON(!size);
491 BUG_ON(align & (align - 1));
492 BUG_ON(limit && goal + size > limit);
494 if (!bdata->node_bootmem_map)
495 return NULL;
497 min = bdata->node_min_pfn;
498 max = bdata->node_low_pfn;
500 goal >>= PAGE_SHIFT;
501 limit >>= PAGE_SHIFT;
503 if (limit && max > limit)
504 max = limit;
505 if (max <= min)
506 return NULL;
508 step = max(align >> PAGE_SHIFT, 1UL);
510 if (goal && min < goal && goal < max)
511 start = ALIGN(goal, step);
512 else
513 start = ALIGN(min, step);
515 sidx = start - bdata->node_min_pfn;
516 midx = max - bdata->node_min_pfn;
518 if (bdata->hint_idx > sidx) {
520 * Handle the valid case of sidx being zero and still
521 * catch the fallback below.
523 fallback = sidx + 1;
524 sidx = align_idx(bdata, bdata->hint_idx, step);
527 while (1) {
528 int merge;
529 void *region;
530 unsigned long eidx, i, start_off, end_off;
531 find_block:
532 sidx = find_next_zero_bit(bdata->node_bootmem_map, midx, sidx);
533 sidx = align_idx(bdata, sidx, step);
534 eidx = sidx + PFN_UP(size);
536 if (sidx >= midx || eidx > midx)
537 break;
539 for (i = sidx; i < eidx; i++)
540 if (test_bit(i, bdata->node_bootmem_map)) {
541 sidx = align_idx(bdata, i, step);
542 if (sidx == i)
543 sidx += step;
544 goto find_block;
547 if (bdata->last_end_off & (PAGE_SIZE - 1) &&
548 PFN_DOWN(bdata->last_end_off) + 1 == sidx)
549 start_off = align_off(bdata, bdata->last_end_off, align);
550 else
551 start_off = PFN_PHYS(sidx);
553 merge = PFN_DOWN(start_off) < sidx;
554 end_off = start_off + size;
556 bdata->last_end_off = end_off;
557 bdata->hint_idx = PFN_UP(end_off);
560 * Reserve the area now:
562 if (__reserve(bdata, PFN_DOWN(start_off) + merge,
563 PFN_UP(end_off), BOOTMEM_EXCLUSIVE))
564 BUG();
566 region = phys_to_virt(PFN_PHYS(bdata->node_min_pfn) +
567 start_off);
568 memset(region, 0, size);
570 * The min_count is set to 0 so that bootmem allocated blocks
571 * are never reported as leaks.
573 kmemleak_alloc(region, size, 0, 0);
574 return region;
577 if (fallback) {
578 sidx = align_idx(bdata, fallback - 1, step);
579 fallback = 0;
580 goto find_block;
583 return NULL;
586 static void * __init alloc_arch_preferred_bootmem(bootmem_data_t *bdata,
587 unsigned long size, unsigned long align,
588 unsigned long goal, unsigned long limit)
590 if (WARN_ON_ONCE(slab_is_available()))
591 return kzalloc(size, GFP_NOWAIT);
593 #ifdef CONFIG_HAVE_ARCH_BOOTMEM
595 bootmem_data_t *p_bdata;
597 p_bdata = bootmem_arch_preferred_node(bdata, size, align,
598 goal, limit);
599 if (p_bdata)
600 return alloc_bootmem_bdata(p_bdata, size, align,
601 goal, limit);
603 #endif
604 return NULL;
607 static void * __init alloc_bootmem_core(unsigned long size,
608 unsigned long align,
609 unsigned long goal,
610 unsigned long limit)
612 bootmem_data_t *bdata;
613 void *region;
615 region = alloc_arch_preferred_bootmem(NULL, size, align, goal, limit);
616 if (region)
617 return region;
619 list_for_each_entry(bdata, &bdata_list, list) {
620 if (goal && bdata->node_low_pfn <= PFN_DOWN(goal))
621 continue;
622 if (limit && bdata->node_min_pfn >= PFN_DOWN(limit))
623 break;
625 region = alloc_bootmem_bdata(bdata, size, align, goal, limit);
626 if (region)
627 return region;
630 return NULL;
633 static void * __init ___alloc_bootmem_nopanic(unsigned long size,
634 unsigned long align,
635 unsigned long goal,
636 unsigned long limit)
638 void *ptr;
640 restart:
641 ptr = alloc_bootmem_core(size, align, goal, limit);
642 if (ptr)
643 return ptr;
644 if (goal) {
645 goal = 0;
646 goto restart;
649 return NULL;
653 * __alloc_bootmem_nopanic - allocate boot memory without panicking
654 * @size: size of the request in bytes
655 * @align: alignment of the region
656 * @goal: preferred starting address of the region
658 * The goal is dropped if it can not be satisfied and the allocation will
659 * fall back to memory below @goal.
661 * Allocation may happen on any node in the system.
663 * Returns NULL on failure.
665 void * __init __alloc_bootmem_nopanic(unsigned long size, unsigned long align,
666 unsigned long goal)
668 unsigned long limit = 0;
670 return ___alloc_bootmem_nopanic(size, align, goal, limit);
673 static void * __init ___alloc_bootmem(unsigned long size, unsigned long align,
674 unsigned long goal, unsigned long limit)
676 void *mem = ___alloc_bootmem_nopanic(size, align, goal, limit);
678 if (mem)
679 return mem;
681 * Whoops, we cannot satisfy the allocation request.
683 printk(KERN_ALERT "bootmem alloc of %lu bytes failed!\n", size);
684 panic("Out of memory");
685 return NULL;
689 * __alloc_bootmem - allocate boot memory
690 * @size: size of the request in bytes
691 * @align: alignment of the region
692 * @goal: preferred starting address of the region
694 * The goal is dropped if it can not be satisfied and the allocation will
695 * fall back to memory below @goal.
697 * Allocation may happen on any node in the system.
699 * The function panics if the request can not be satisfied.
701 void * __init __alloc_bootmem(unsigned long size, unsigned long align,
702 unsigned long goal)
704 unsigned long limit = 0;
706 return ___alloc_bootmem(size, align, goal, limit);
709 void * __init ___alloc_bootmem_node_nopanic(pg_data_t *pgdat,
710 unsigned long size, unsigned long align,
711 unsigned long goal, unsigned long limit)
713 void *ptr;
715 again:
716 ptr = alloc_arch_preferred_bootmem(pgdat->bdata, size,
717 align, goal, limit);
718 if (ptr)
719 return ptr;
721 /* do not panic in alloc_bootmem_bdata() */
722 if (limit && goal + size > limit)
723 limit = 0;
725 ptr = alloc_bootmem_bdata(pgdat->bdata, size, align, goal, limit);
726 if (ptr)
727 return ptr;
729 ptr = alloc_bootmem_core(size, align, goal, limit);
730 if (ptr)
731 return ptr;
733 if (goal) {
734 goal = 0;
735 goto again;
738 return NULL;
741 void * __init __alloc_bootmem_node_nopanic(pg_data_t *pgdat, unsigned long size,
742 unsigned long align, unsigned long goal)
744 if (WARN_ON_ONCE(slab_is_available()))
745 return kzalloc_node(size, GFP_NOWAIT, pgdat->node_id);
747 return ___alloc_bootmem_node_nopanic(pgdat, size, align, goal, 0);
750 void * __init ___alloc_bootmem_node(pg_data_t *pgdat, unsigned long size,
751 unsigned long align, unsigned long goal,
752 unsigned long limit)
754 void *ptr;
756 ptr = ___alloc_bootmem_node_nopanic(pgdat, size, align, goal, 0);
757 if (ptr)
758 return ptr;
760 printk(KERN_ALERT "bootmem alloc of %lu bytes failed!\n", size);
761 panic("Out of memory");
762 return NULL;
766 * __alloc_bootmem_node - allocate boot memory from a specific node
767 * @pgdat: node to allocate from
768 * @size: size of the request in bytes
769 * @align: alignment of the region
770 * @goal: preferred starting address of the region
772 * The goal is dropped if it can not be satisfied and the allocation will
773 * fall back to memory below @goal.
775 * Allocation may fall back to any node in the system if the specified node
776 * can not hold the requested memory.
778 * The function panics if the request can not be satisfied.
780 void * __init __alloc_bootmem_node(pg_data_t *pgdat, unsigned long size,
781 unsigned long align, unsigned long goal)
783 if (WARN_ON_ONCE(slab_is_available()))
784 return kzalloc_node(size, GFP_NOWAIT, pgdat->node_id);
786 return ___alloc_bootmem_node(pgdat, size, align, goal, 0);
789 void * __init __alloc_bootmem_node_high(pg_data_t *pgdat, unsigned long size,
790 unsigned long align, unsigned long goal)
792 #ifdef MAX_DMA32_PFN
793 unsigned long end_pfn;
795 if (WARN_ON_ONCE(slab_is_available()))
796 return kzalloc_node(size, GFP_NOWAIT, pgdat->node_id);
798 /* update goal according ...MAX_DMA32_PFN */
799 end_pfn = pgdat->node_start_pfn + pgdat->node_spanned_pages;
801 if (end_pfn > MAX_DMA32_PFN + (128 >> (20 - PAGE_SHIFT)) &&
802 (goal >> PAGE_SHIFT) < MAX_DMA32_PFN) {
803 void *ptr;
804 unsigned long new_goal;
806 new_goal = MAX_DMA32_PFN << PAGE_SHIFT;
807 ptr = alloc_bootmem_bdata(pgdat->bdata, size, align,
808 new_goal, 0);
809 if (ptr)
810 return ptr;
812 #endif
814 return __alloc_bootmem_node(pgdat, size, align, goal);
818 #ifndef ARCH_LOW_ADDRESS_LIMIT
819 #define ARCH_LOW_ADDRESS_LIMIT 0xffffffffUL
820 #endif
823 * __alloc_bootmem_low - allocate low boot memory
824 * @size: size of the request in bytes
825 * @align: alignment of the region
826 * @goal: preferred starting address of the region
828 * The goal is dropped if it can not be satisfied and the allocation will
829 * fall back to memory below @goal.
831 * Allocation may happen on any node in the system.
833 * The function panics if the request can not be satisfied.
835 void * __init __alloc_bootmem_low(unsigned long size, unsigned long align,
836 unsigned long goal)
838 return ___alloc_bootmem(size, align, goal, ARCH_LOW_ADDRESS_LIMIT);
842 * __alloc_bootmem_low_node - allocate low boot memory from a specific node
843 * @pgdat: node to allocate from
844 * @size: size of the request in bytes
845 * @align: alignment of the region
846 * @goal: preferred starting address of the region
848 * The goal is dropped if it can not be satisfied and the allocation will
849 * fall back to memory below @goal.
851 * Allocation may fall back to any node in the system if the specified node
852 * can not hold the requested memory.
854 * The function panics if the request can not be satisfied.
856 void * __init __alloc_bootmem_low_node(pg_data_t *pgdat, unsigned long size,
857 unsigned long align, unsigned long goal)
859 if (WARN_ON_ONCE(slab_is_available()))
860 return kzalloc_node(size, GFP_NOWAIT, pgdat->node_id);
862 return ___alloc_bootmem_node(pgdat, size, align,
863 goal, ARCH_LOW_ADDRESS_LIMIT);