discontig.c 20 KB

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  1. /*
  2. * Copyright (c) 2000, 2003 Silicon Graphics, Inc. All rights reserved.
  3. * Copyright (c) 2001 Intel Corp.
  4. * Copyright (c) 2001 Tony Luck <tony.luck@intel.com>
  5. * Copyright (c) 2002 NEC Corp.
  6. * Copyright (c) 2002 Kimio Suganuma <k-suganuma@da.jp.nec.com>
  7. * Copyright (c) 2004 Silicon Graphics, Inc
  8. * Russ Anderson <rja@sgi.com>
  9. * Jesse Barnes <jbarnes@sgi.com>
  10. * Jack Steiner <steiner@sgi.com>
  11. */
  12. /*
  13. * Platform initialization for Discontig Memory
  14. */
  15. #include <linux/kernel.h>
  16. #include <linux/mm.h>
  17. #include <linux/swap.h>
  18. #include <linux/bootmem.h>
  19. #include <linux/acpi.h>
  20. #include <linux/efi.h>
  21. #include <linux/nodemask.h>
  22. #include <asm/pgalloc.h>
  23. #include <asm/tlb.h>
  24. #include <asm/meminit.h>
  25. #include <asm/numa.h>
  26. #include <asm/sections.h>
  27. /*
  28. * Track per-node information needed to setup the boot memory allocator, the
  29. * per-node areas, and the real VM.
  30. */
  31. struct early_node_data {
  32. struct ia64_node_data *node_data;
  33. unsigned long pernode_addr;
  34. unsigned long pernode_size;
  35. struct bootmem_data bootmem_data;
  36. unsigned long num_physpages;
  37. unsigned long num_dma_physpages;
  38. unsigned long min_pfn;
  39. unsigned long max_pfn;
  40. };
  41. static struct early_node_data mem_data[MAX_NUMNODES] __initdata;
  42. static nodemask_t memory_less_mask __initdata;
  43. static pg_data_t *pgdat_list[MAX_NUMNODES];
  44. /*
  45. * To prevent cache aliasing effects, align per-node structures so that they
  46. * start at addresses that are strided by node number.
  47. */
  48. #define MAX_NODE_ALIGN_OFFSET (32 * 1024 * 1024)
  49. #define NODEDATA_ALIGN(addr, node) \
  50. ((((addr) + 1024*1024-1) & ~(1024*1024-1)) + \
  51. (((node)*PERCPU_PAGE_SIZE) & (MAX_NODE_ALIGN_OFFSET - 1)))
  52. /**
  53. * build_node_maps - callback to setup bootmem structs for each node
  54. * @start: physical start of range
  55. * @len: length of range
  56. * @node: node where this range resides
  57. *
  58. * We allocate a struct bootmem_data for each piece of memory that we wish to
  59. * treat as a virtually contiguous block (i.e. each node). Each such block
  60. * must start on an %IA64_GRANULE_SIZE boundary, so we round the address down
  61. * if necessary. Any non-existent pages will simply be part of the virtual
  62. * memmap. We also update min_low_pfn and max_low_pfn here as we receive
  63. * memory ranges from the caller.
  64. */
  65. static int __init build_node_maps(unsigned long start, unsigned long len,
  66. int node)
  67. {
  68. unsigned long cstart, epfn, end = start + len;
  69. struct bootmem_data *bdp = &mem_data[node].bootmem_data;
  70. epfn = GRANULEROUNDUP(end) >> PAGE_SHIFT;
  71. cstart = GRANULEROUNDDOWN(start);
  72. if (!bdp->node_low_pfn) {
  73. bdp->node_boot_start = cstart;
  74. bdp->node_low_pfn = epfn;
  75. } else {
  76. bdp->node_boot_start = min(cstart, bdp->node_boot_start);
  77. bdp->node_low_pfn = max(epfn, bdp->node_low_pfn);
  78. }
  79. min_low_pfn = min(min_low_pfn, bdp->node_boot_start>>PAGE_SHIFT);
  80. max_low_pfn = max(max_low_pfn, bdp->node_low_pfn);
  81. return 0;
  82. }
  83. /**
  84. * early_nr_cpus_node - return number of cpus on a given node
  85. * @node: node to check
  86. *
  87. * Count the number of cpus on @node. We can't use nr_cpus_node() yet because
  88. * acpi_boot_init() (which builds the node_to_cpu_mask array) hasn't been
  89. * called yet. Note that node 0 will also count all non-existent cpus.
  90. */
  91. static int __meminit early_nr_cpus_node(int node)
  92. {
  93. int cpu, n = 0;
  94. for (cpu = 0; cpu < NR_CPUS; cpu++)
  95. if (node == node_cpuid[cpu].nid)
  96. n++;
  97. return n;
  98. }
  99. /**
  100. * compute_pernodesize - compute size of pernode data
  101. * @node: the node id.
  102. */
  103. static unsigned long __meminit compute_pernodesize(int node)
  104. {
  105. unsigned long pernodesize = 0, cpus;
  106. cpus = early_nr_cpus_node(node);
  107. pernodesize += PERCPU_PAGE_SIZE * cpus;
  108. pernodesize += node * L1_CACHE_BYTES;
  109. pernodesize += L1_CACHE_ALIGN(sizeof(pg_data_t));
  110. pernodesize += L1_CACHE_ALIGN(sizeof(struct ia64_node_data));
  111. pernodesize = PAGE_ALIGN(pernodesize);
  112. return pernodesize;
  113. }
  114. /**
  115. * per_cpu_node_setup - setup per-cpu areas on each node
  116. * @cpu_data: per-cpu area on this node
  117. * @node: node to setup
  118. *
  119. * Copy the static per-cpu data into the region we just set aside and then
  120. * setup __per_cpu_offset for each CPU on this node. Return a pointer to
  121. * the end of the area.
  122. */
  123. static void *per_cpu_node_setup(void *cpu_data, int node)
  124. {
  125. #ifdef CONFIG_SMP
  126. int cpu;
  127. for (cpu = 0; cpu < NR_CPUS; cpu++) {
  128. if (node == node_cpuid[cpu].nid) {
  129. memcpy(__va(cpu_data), __phys_per_cpu_start,
  130. __per_cpu_end - __per_cpu_start);
  131. __per_cpu_offset[cpu] = (char*)__va(cpu_data) -
  132. __per_cpu_start;
  133. cpu_data += PERCPU_PAGE_SIZE;
  134. }
  135. }
  136. #endif
  137. return cpu_data;
  138. }
  139. /**
  140. * fill_pernode - initialize pernode data.
  141. * @node: the node id.
  142. * @pernode: physical address of pernode data
  143. * @pernodesize: size of the pernode data
  144. */
  145. static void __init fill_pernode(int node, unsigned long pernode,
  146. unsigned long pernodesize)
  147. {
  148. void *cpu_data;
  149. int cpus = early_nr_cpus_node(node);
  150. struct bootmem_data *bdp = &mem_data[node].bootmem_data;
  151. mem_data[node].pernode_addr = pernode;
  152. mem_data[node].pernode_size = pernodesize;
  153. memset(__va(pernode), 0, pernodesize);
  154. cpu_data = (void *)pernode;
  155. pernode += PERCPU_PAGE_SIZE * cpus;
  156. pernode += node * L1_CACHE_BYTES;
  157. pgdat_list[node] = __va(pernode);
  158. pernode += L1_CACHE_ALIGN(sizeof(pg_data_t));
  159. mem_data[node].node_data = __va(pernode);
  160. pernode += L1_CACHE_ALIGN(sizeof(struct ia64_node_data));
  161. pgdat_list[node]->bdata = bdp;
  162. pernode += L1_CACHE_ALIGN(sizeof(pg_data_t));
  163. cpu_data = per_cpu_node_setup(cpu_data, node);
  164. return;
  165. }
  166. /**
  167. * find_pernode_space - allocate memory for memory map and per-node structures
  168. * @start: physical start of range
  169. * @len: length of range
  170. * @node: node where this range resides
  171. *
  172. * This routine reserves space for the per-cpu data struct, the list of
  173. * pg_data_ts and the per-node data struct. Each node will have something like
  174. * the following in the first chunk of addr. space large enough to hold it.
  175. *
  176. * ________________________
  177. * | |
  178. * |~~~~~~~~~~~~~~~~~~~~~~~~| <-- NODEDATA_ALIGN(start, node) for the first
  179. * | PERCPU_PAGE_SIZE * | start and length big enough
  180. * | cpus_on_this_node | Node 0 will also have entries for all non-existent cpus.
  181. * |------------------------|
  182. * | local pg_data_t * |
  183. * |------------------------|
  184. * | local ia64_node_data |
  185. * |------------------------|
  186. * | ??? |
  187. * |________________________|
  188. *
  189. * Once this space has been set aside, the bootmem maps are initialized. We
  190. * could probably move the allocation of the per-cpu and ia64_node_data space
  191. * outside of this function and use alloc_bootmem_node(), but doing it here
  192. * is straightforward and we get the alignments we want so...
  193. */
  194. static int __init find_pernode_space(unsigned long start, unsigned long len,
  195. int node)
  196. {
  197. unsigned long epfn;
  198. unsigned long pernodesize = 0, pernode, pages, mapsize;
  199. struct bootmem_data *bdp = &mem_data[node].bootmem_data;
  200. epfn = (start + len) >> PAGE_SHIFT;
  201. pages = bdp->node_low_pfn - (bdp->node_boot_start >> PAGE_SHIFT);
  202. mapsize = bootmem_bootmap_pages(pages) << PAGE_SHIFT;
  203. /*
  204. * Make sure this memory falls within this node's usable memory
  205. * since we may have thrown some away in build_maps().
  206. */
  207. if (start < bdp->node_boot_start || epfn > bdp->node_low_pfn)
  208. return 0;
  209. /* Don't setup this node's local space twice... */
  210. if (mem_data[node].pernode_addr)
  211. return 0;
  212. /*
  213. * Calculate total size needed, incl. what's necessary
  214. * for good alignment and alias prevention.
  215. */
  216. pernodesize = compute_pernodesize(node);
  217. pernode = NODEDATA_ALIGN(start, node);
  218. /* Is this range big enough for what we want to store here? */
  219. if (start + len > (pernode + pernodesize + mapsize))
  220. fill_pernode(node, pernode, pernodesize);
  221. return 0;
  222. }
  223. /**
  224. * free_node_bootmem - free bootmem allocator memory for use
  225. * @start: physical start of range
  226. * @len: length of range
  227. * @node: node where this range resides
  228. *
  229. * Simply calls the bootmem allocator to free the specified ranged from
  230. * the given pg_data_t's bdata struct. After this function has been called
  231. * for all the entries in the EFI memory map, the bootmem allocator will
  232. * be ready to service allocation requests.
  233. */
  234. static int __init free_node_bootmem(unsigned long start, unsigned long len,
  235. int node)
  236. {
  237. free_bootmem_node(pgdat_list[node], start, len);
  238. return 0;
  239. }
  240. /**
  241. * reserve_pernode_space - reserve memory for per-node space
  242. *
  243. * Reserve the space used by the bootmem maps & per-node space in the boot
  244. * allocator so that when we actually create the real mem maps we don't
  245. * use their memory.
  246. */
  247. static void __init reserve_pernode_space(void)
  248. {
  249. unsigned long base, size, pages;
  250. struct bootmem_data *bdp;
  251. int node;
  252. for_each_online_node(node) {
  253. pg_data_t *pdp = pgdat_list[node];
  254. if (node_isset(node, memory_less_mask))
  255. continue;
  256. bdp = pdp->bdata;
  257. /* First the bootmem_map itself */
  258. pages = bdp->node_low_pfn - (bdp->node_boot_start>>PAGE_SHIFT);
  259. size = bootmem_bootmap_pages(pages) << PAGE_SHIFT;
  260. base = __pa(bdp->node_bootmem_map);
  261. reserve_bootmem_node(pdp, base, size);
  262. /* Now the per-node space */
  263. size = mem_data[node].pernode_size;
  264. base = __pa(mem_data[node].pernode_addr);
  265. reserve_bootmem_node(pdp, base, size);
  266. }
  267. }
  268. static void __meminit scatter_node_data(void)
  269. {
  270. pg_data_t **dst;
  271. int node;
  272. /*
  273. * for_each_online_node() can't be used at here.
  274. * node_online_map is not set for hot-added nodes at this time,
  275. * because we are halfway through initialization of the new node's
  276. * structures. If for_each_online_node() is used, a new node's
  277. * pg_data_ptrs will be not initialized. Insted of using it,
  278. * pgdat_list[] is checked.
  279. */
  280. for_each_node(node) {
  281. if (pgdat_list[node]) {
  282. dst = LOCAL_DATA_ADDR(pgdat_list[node])->pg_data_ptrs;
  283. memcpy(dst, pgdat_list, sizeof(pgdat_list));
  284. }
  285. }
  286. }
  287. /**
  288. * initialize_pernode_data - fixup per-cpu & per-node pointers
  289. *
  290. * Each node's per-node area has a copy of the global pg_data_t list, so
  291. * we copy that to each node here, as well as setting the per-cpu pointer
  292. * to the local node data structure. The active_cpus field of the per-node
  293. * structure gets setup by the platform_cpu_init() function later.
  294. */
  295. static void __init initialize_pernode_data(void)
  296. {
  297. int cpu, node;
  298. scatter_node_data();
  299. #ifdef CONFIG_SMP
  300. /* Set the node_data pointer for each per-cpu struct */
  301. for (cpu = 0; cpu < NR_CPUS; cpu++) {
  302. node = node_cpuid[cpu].nid;
  303. per_cpu(cpu_info, cpu).node_data = mem_data[node].node_data;
  304. }
  305. #else
  306. {
  307. struct cpuinfo_ia64 *cpu0_cpu_info;
  308. cpu = 0;
  309. node = node_cpuid[cpu].nid;
  310. cpu0_cpu_info = (struct cpuinfo_ia64 *)(__phys_per_cpu_start +
  311. ((char *)&per_cpu__cpu_info - __per_cpu_start));
  312. cpu0_cpu_info->node_data = mem_data[node].node_data;
  313. }
  314. #endif /* CONFIG_SMP */
  315. }
  316. /**
  317. * memory_less_node_alloc - * attempt to allocate memory on the best NUMA slit
  318. * node but fall back to any other node when __alloc_bootmem_node fails
  319. * for best.
  320. * @nid: node id
  321. * @pernodesize: size of this node's pernode data
  322. */
  323. static void __init *memory_less_node_alloc(int nid, unsigned long pernodesize)
  324. {
  325. void *ptr = NULL;
  326. u8 best = 0xff;
  327. int bestnode = -1, node, anynode = 0;
  328. for_each_online_node(node) {
  329. if (node_isset(node, memory_less_mask))
  330. continue;
  331. else if (node_distance(nid, node) < best) {
  332. best = node_distance(nid, node);
  333. bestnode = node;
  334. }
  335. anynode = node;
  336. }
  337. if (bestnode == -1)
  338. bestnode = anynode;
  339. ptr = __alloc_bootmem_node(pgdat_list[bestnode], pernodesize,
  340. PERCPU_PAGE_SIZE, __pa(MAX_DMA_ADDRESS));
  341. return ptr;
  342. }
  343. /**
  344. * memory_less_nodes - allocate and initialize CPU only nodes pernode
  345. * information.
  346. */
  347. static void __init memory_less_nodes(void)
  348. {
  349. unsigned long pernodesize;
  350. void *pernode;
  351. int node;
  352. for_each_node_mask(node, memory_less_mask) {
  353. pernodesize = compute_pernodesize(node);
  354. pernode = memory_less_node_alloc(node, pernodesize);
  355. fill_pernode(node, __pa(pernode), pernodesize);
  356. }
  357. return;
  358. }
  359. #ifdef CONFIG_SPARSEMEM
  360. /**
  361. * register_sparse_mem - notify SPARSEMEM that this memory range exists.
  362. * @start: physical start of range
  363. * @end: physical end of range
  364. * @arg: unused
  365. *
  366. * Simply calls SPARSEMEM to register memory section(s).
  367. */
  368. static int __init register_sparse_mem(unsigned long start, unsigned long end,
  369. void *arg)
  370. {
  371. int nid;
  372. start = __pa(start) >> PAGE_SHIFT;
  373. end = __pa(end) >> PAGE_SHIFT;
  374. nid = early_pfn_to_nid(start);
  375. memory_present(nid, start, end);
  376. return 0;
  377. }
  378. static void __init arch_sparse_init(void)
  379. {
  380. efi_memmap_walk(register_sparse_mem, NULL);
  381. sparse_init();
  382. }
  383. #else
  384. #define arch_sparse_init() do {} while (0)
  385. #endif
  386. /**
  387. * find_memory - walk the EFI memory map and setup the bootmem allocator
  388. *
  389. * Called early in boot to setup the bootmem allocator, and to
  390. * allocate the per-cpu and per-node structures.
  391. */
  392. void __init find_memory(void)
  393. {
  394. int node;
  395. reserve_memory();
  396. if (num_online_nodes() == 0) {
  397. printk(KERN_ERR "node info missing!\n");
  398. node_set_online(0);
  399. }
  400. nodes_or(memory_less_mask, memory_less_mask, node_online_map);
  401. min_low_pfn = -1;
  402. max_low_pfn = 0;
  403. /* These actually end up getting called by call_pernode_memory() */
  404. efi_memmap_walk(filter_rsvd_memory, build_node_maps);
  405. efi_memmap_walk(filter_rsvd_memory, find_pernode_space);
  406. for_each_online_node(node)
  407. if (mem_data[node].bootmem_data.node_low_pfn) {
  408. node_clear(node, memory_less_mask);
  409. mem_data[node].min_pfn = ~0UL;
  410. }
  411. /*
  412. * Initialize the boot memory maps in reverse order since that's
  413. * what the bootmem allocator expects
  414. */
  415. for (node = MAX_NUMNODES - 1; node >= 0; node--) {
  416. unsigned long pernode, pernodesize, map;
  417. struct bootmem_data *bdp;
  418. if (!node_online(node))
  419. continue;
  420. else if (node_isset(node, memory_less_mask))
  421. continue;
  422. bdp = &mem_data[node].bootmem_data;
  423. pernode = mem_data[node].pernode_addr;
  424. pernodesize = mem_data[node].pernode_size;
  425. map = pernode + pernodesize;
  426. init_bootmem_node(pgdat_list[node],
  427. map>>PAGE_SHIFT,
  428. bdp->node_boot_start>>PAGE_SHIFT,
  429. bdp->node_low_pfn);
  430. }
  431. efi_memmap_walk(filter_rsvd_memory, free_node_bootmem);
  432. reserve_pernode_space();
  433. memory_less_nodes();
  434. initialize_pernode_data();
  435. max_pfn = max_low_pfn;
  436. find_initrd();
  437. }
  438. #ifdef CONFIG_SMP
  439. /**
  440. * per_cpu_init - setup per-cpu variables
  441. *
  442. * find_pernode_space() does most of this already, we just need to set
  443. * local_per_cpu_offset
  444. */
  445. void __cpuinit *per_cpu_init(void)
  446. {
  447. int cpu;
  448. static int first_time = 1;
  449. if (smp_processor_id() != 0)
  450. return __per_cpu_start + __per_cpu_offset[smp_processor_id()];
  451. if (first_time) {
  452. first_time = 0;
  453. for (cpu = 0; cpu < NR_CPUS; cpu++)
  454. per_cpu(local_per_cpu_offset, cpu) = __per_cpu_offset[cpu];
  455. }
  456. return __per_cpu_start + __per_cpu_offset[smp_processor_id()];
  457. }
  458. #endif /* CONFIG_SMP */
  459. /**
  460. * show_mem - give short summary of memory stats
  461. *
  462. * Shows a simple page count of reserved and used pages in the system.
  463. * For discontig machines, it does this on a per-pgdat basis.
  464. */
  465. void show_mem(void)
  466. {
  467. int i, total_reserved = 0;
  468. int total_shared = 0, total_cached = 0;
  469. unsigned long total_present = 0;
  470. pg_data_t *pgdat;
  471. printk(KERN_INFO "Mem-info:\n");
  472. show_free_areas();
  473. printk(KERN_INFO "Free swap: %6ldkB\n",
  474. nr_swap_pages<<(PAGE_SHIFT-10));
  475. printk(KERN_INFO "Node memory in pages:\n");
  476. for_each_online_pgdat(pgdat) {
  477. unsigned long present;
  478. unsigned long flags;
  479. int shared = 0, cached = 0, reserved = 0;
  480. pgdat_resize_lock(pgdat, &flags);
  481. present = pgdat->node_present_pages;
  482. for(i = 0; i < pgdat->node_spanned_pages; i++) {
  483. struct page *page;
  484. if (pfn_valid(pgdat->node_start_pfn + i))
  485. page = pfn_to_page(pgdat->node_start_pfn + i);
  486. else {
  487. i = vmemmap_find_next_valid_pfn(pgdat->node_id,
  488. i) - 1;
  489. continue;
  490. }
  491. if (PageReserved(page))
  492. reserved++;
  493. else if (PageSwapCache(page))
  494. cached++;
  495. else if (page_count(page))
  496. shared += page_count(page)-1;
  497. }
  498. pgdat_resize_unlock(pgdat, &flags);
  499. total_present += present;
  500. total_reserved += reserved;
  501. total_cached += cached;
  502. total_shared += shared;
  503. printk(KERN_INFO "Node %4d: RAM: %11ld, rsvd: %8d, "
  504. "shrd: %10d, swpd: %10d\n", pgdat->node_id,
  505. present, reserved, shared, cached);
  506. }
  507. printk(KERN_INFO "%ld pages of RAM\n", total_present);
  508. printk(KERN_INFO "%d reserved pages\n", total_reserved);
  509. printk(KERN_INFO "%d pages shared\n", total_shared);
  510. printk(KERN_INFO "%d pages swap cached\n", total_cached);
  511. printk(KERN_INFO "Total of %ld pages in page table cache\n",
  512. pgtable_quicklist_total_size());
  513. printk(KERN_INFO "%d free buffer pages\n", nr_free_buffer_pages());
  514. }
  515. /**
  516. * call_pernode_memory - use SRAT to call callback functions with node info
  517. * @start: physical start of range
  518. * @len: length of range
  519. * @arg: function to call for each range
  520. *
  521. * efi_memmap_walk() knows nothing about layout of memory across nodes. Find
  522. * out to which node a block of memory belongs. Ignore memory that we cannot
  523. * identify, and split blocks that run across multiple nodes.
  524. *
  525. * Take this opportunity to round the start address up and the end address
  526. * down to page boundaries.
  527. */
  528. void call_pernode_memory(unsigned long start, unsigned long len, void *arg)
  529. {
  530. unsigned long rs, re, end = start + len;
  531. void (*func)(unsigned long, unsigned long, int);
  532. int i;
  533. start = PAGE_ALIGN(start);
  534. end &= PAGE_MASK;
  535. if (start >= end)
  536. return;
  537. func = arg;
  538. if (!num_node_memblks) {
  539. /* No SRAT table, so assume one node (node 0) */
  540. if (start < end)
  541. (*func)(start, end - start, 0);
  542. return;
  543. }
  544. for (i = 0; i < num_node_memblks; i++) {
  545. rs = max(start, node_memblk[i].start_paddr);
  546. re = min(end, node_memblk[i].start_paddr +
  547. node_memblk[i].size);
  548. if (rs < re)
  549. (*func)(rs, re - rs, node_memblk[i].nid);
  550. if (re == end)
  551. break;
  552. }
  553. }
  554. /**
  555. * count_node_pages - callback to build per-node memory info structures
  556. * @start: physical start of range
  557. * @len: length of range
  558. * @node: node where this range resides
  559. *
  560. * Each node has it's own number of physical pages, DMAable pages, start, and
  561. * end page frame number. This routine will be called by call_pernode_memory()
  562. * for each piece of usable memory and will setup these values for each node.
  563. * Very similar to build_maps().
  564. */
  565. static __init int count_node_pages(unsigned long start, unsigned long len, int node)
  566. {
  567. unsigned long end = start + len;
  568. add_active_range(node, start >> PAGE_SHIFT, end >> PAGE_SHIFT);
  569. mem_data[node].num_physpages += len >> PAGE_SHIFT;
  570. if (start <= __pa(MAX_DMA_ADDRESS))
  571. mem_data[node].num_dma_physpages +=
  572. (min(end, __pa(MAX_DMA_ADDRESS)) - start) >>PAGE_SHIFT;
  573. start = GRANULEROUNDDOWN(start);
  574. start = ORDERROUNDDOWN(start);
  575. end = GRANULEROUNDUP(end);
  576. mem_data[node].max_pfn = max(mem_data[node].max_pfn,
  577. end >> PAGE_SHIFT);
  578. mem_data[node].min_pfn = min(mem_data[node].min_pfn,
  579. start >> PAGE_SHIFT);
  580. return 0;
  581. }
  582. /**
  583. * paging_init - setup page tables
  584. *
  585. * paging_init() sets up the page tables for each node of the system and frees
  586. * the bootmem allocator memory for general use.
  587. */
  588. void __init paging_init(void)
  589. {
  590. unsigned long max_dma;
  591. unsigned long pfn_offset = 0;
  592. unsigned long max_pfn = 0;
  593. int node;
  594. unsigned long max_zone_pfns[MAX_NR_ZONES];
  595. max_dma = virt_to_phys((void *) MAX_DMA_ADDRESS) >> PAGE_SHIFT;
  596. arch_sparse_init();
  597. efi_memmap_walk(filter_rsvd_memory, count_node_pages);
  598. #ifdef CONFIG_VIRTUAL_MEM_MAP
  599. vmalloc_end -= PAGE_ALIGN(ALIGN(max_low_pfn, MAX_ORDER_NR_PAGES) *
  600. sizeof(struct page));
  601. vmem_map = (struct page *) vmalloc_end;
  602. efi_memmap_walk(create_mem_map_page_table, NULL);
  603. printk("Virtual mem_map starts at 0x%p\n", vmem_map);
  604. #endif
  605. for_each_online_node(node) {
  606. num_physpages += mem_data[node].num_physpages;
  607. pfn_offset = mem_data[node].min_pfn;
  608. #ifdef CONFIG_VIRTUAL_MEM_MAP
  609. NODE_DATA(node)->node_mem_map = vmem_map + pfn_offset;
  610. #endif
  611. if (mem_data[node].max_pfn > max_pfn)
  612. max_pfn = mem_data[node].max_pfn;
  613. }
  614. memset(max_zone_pfns, 0, sizeof(max_zone_pfns));
  615. max_zone_pfns[ZONE_DMA] = max_dma;
  616. max_zone_pfns[ZONE_NORMAL] = max_pfn;
  617. free_area_init_nodes(max_zone_pfns);
  618. zero_page_memmap_ptr = virt_to_page(ia64_imva(empty_zero_page));
  619. }
  620. pg_data_t *arch_alloc_nodedata(int nid)
  621. {
  622. unsigned long size = compute_pernodesize(nid);
  623. return kzalloc(size, GFP_KERNEL);
  624. }
  625. void arch_free_nodedata(pg_data_t *pgdat)
  626. {
  627. kfree(pgdat);
  628. }
  629. void arch_refresh_nodedata(int update_node, pg_data_t *update_pgdat)
  630. {
  631. pgdat_list[update_node] = update_pgdat;
  632. scatter_node_data();
  633. }