numa.c 20 KB

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  1. /*
  2. * pSeries NUMA support
  3. *
  4. * Copyright (C) 2002 Anton Blanchard <anton@au.ibm.com>, IBM
  5. *
  6. * This program is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU General Public License
  8. * as published by the Free Software Foundation; either version
  9. * 2 of the License, or (at your option) any later version.
  10. */
  11. #include <linux/threads.h>
  12. #include <linux/bootmem.h>
  13. #include <linux/init.h>
  14. #include <linux/mm.h>
  15. #include <linux/mmzone.h>
  16. #include <linux/module.h>
  17. #include <linux/nodemask.h>
  18. #include <linux/cpu.h>
  19. #include <linux/notifier.h>
  20. #include <asm/sparsemem.h>
  21. #include <asm/lmb.h>
  22. #include <asm/system.h>
  23. #include <asm/smp.h>
  24. static int numa_enabled = 1;
  25. static int numa_debug;
  26. #define dbg(args...) if (numa_debug) { printk(KERN_INFO args); }
  27. int numa_cpu_lookup_table[NR_CPUS];
  28. cpumask_t numa_cpumask_lookup_table[MAX_NUMNODES];
  29. struct pglist_data *node_data[MAX_NUMNODES];
  30. EXPORT_SYMBOL(numa_cpu_lookup_table);
  31. EXPORT_SYMBOL(numa_cpumask_lookup_table);
  32. EXPORT_SYMBOL(node_data);
  33. static bootmem_data_t __initdata plat_node_bdata[MAX_NUMNODES];
  34. static int min_common_depth;
  35. static int n_mem_addr_cells, n_mem_size_cells;
  36. /*
  37. * We need somewhere to store start/end/node for each region until we have
  38. * allocated the real node_data structures.
  39. */
  40. #define MAX_REGIONS (MAX_LMB_REGIONS*2)
  41. static struct {
  42. unsigned long start_pfn;
  43. unsigned long end_pfn;
  44. int nid;
  45. } init_node_data[MAX_REGIONS] __initdata;
  46. int __init early_pfn_to_nid(unsigned long pfn)
  47. {
  48. unsigned int i;
  49. for (i = 0; init_node_data[i].end_pfn; i++) {
  50. unsigned long start_pfn = init_node_data[i].start_pfn;
  51. unsigned long end_pfn = init_node_data[i].end_pfn;
  52. if ((start_pfn <= pfn) && (pfn < end_pfn))
  53. return init_node_data[i].nid;
  54. }
  55. return -1;
  56. }
  57. void __init add_region(unsigned int nid, unsigned long start_pfn,
  58. unsigned long pages)
  59. {
  60. unsigned int i;
  61. dbg("add_region nid %d start_pfn 0x%lx pages 0x%lx\n",
  62. nid, start_pfn, pages);
  63. for (i = 0; init_node_data[i].end_pfn; i++) {
  64. if (init_node_data[i].nid != nid)
  65. continue;
  66. if (init_node_data[i].end_pfn == start_pfn) {
  67. init_node_data[i].end_pfn += pages;
  68. return;
  69. }
  70. if (init_node_data[i].start_pfn == (start_pfn + pages)) {
  71. init_node_data[i].start_pfn -= pages;
  72. return;
  73. }
  74. }
  75. /*
  76. * Leave last entry NULL so we dont iterate off the end (we use
  77. * entry.end_pfn to terminate the walk).
  78. */
  79. if (i >= (MAX_REGIONS - 1)) {
  80. printk(KERN_ERR "WARNING: too many memory regions in "
  81. "numa code, truncating\n");
  82. return;
  83. }
  84. init_node_data[i].start_pfn = start_pfn;
  85. init_node_data[i].end_pfn = start_pfn + pages;
  86. init_node_data[i].nid = nid;
  87. }
  88. /* We assume init_node_data has no overlapping regions */
  89. void __init get_region(unsigned int nid, unsigned long *start_pfn,
  90. unsigned long *end_pfn, unsigned long *pages_present)
  91. {
  92. unsigned int i;
  93. *start_pfn = -1UL;
  94. *end_pfn = *pages_present = 0;
  95. for (i = 0; init_node_data[i].end_pfn; i++) {
  96. if (init_node_data[i].nid != nid)
  97. continue;
  98. *pages_present += init_node_data[i].end_pfn -
  99. init_node_data[i].start_pfn;
  100. if (init_node_data[i].start_pfn < *start_pfn)
  101. *start_pfn = init_node_data[i].start_pfn;
  102. if (init_node_data[i].end_pfn > *end_pfn)
  103. *end_pfn = init_node_data[i].end_pfn;
  104. }
  105. /* We didnt find a matching region, return start/end as 0 */
  106. if (*start_pfn == -1UL)
  107. *start_pfn = 0;
  108. }
  109. static void __cpuinit map_cpu_to_node(int cpu, int node)
  110. {
  111. numa_cpu_lookup_table[cpu] = node;
  112. dbg("adding cpu %d to node %d\n", cpu, node);
  113. if (!(cpu_isset(cpu, numa_cpumask_lookup_table[node])))
  114. cpu_set(cpu, numa_cpumask_lookup_table[node]);
  115. }
  116. #ifdef CONFIG_HOTPLUG_CPU
  117. static void unmap_cpu_from_node(unsigned long cpu)
  118. {
  119. int node = numa_cpu_lookup_table[cpu];
  120. dbg("removing cpu %lu from node %d\n", cpu, node);
  121. if (cpu_isset(cpu, numa_cpumask_lookup_table[node])) {
  122. cpu_clear(cpu, numa_cpumask_lookup_table[node]);
  123. } else {
  124. printk(KERN_ERR "WARNING: cpu %lu not found in node %d\n",
  125. cpu, node);
  126. }
  127. }
  128. #endif /* CONFIG_HOTPLUG_CPU */
  129. static struct device_node * __cpuinit find_cpu_node(unsigned int cpu)
  130. {
  131. unsigned int hw_cpuid = get_hard_smp_processor_id(cpu);
  132. struct device_node *cpu_node = NULL;
  133. unsigned int *interrupt_server, *reg;
  134. int len;
  135. while ((cpu_node = of_find_node_by_type(cpu_node, "cpu")) != NULL) {
  136. /* Try interrupt server first */
  137. interrupt_server = (unsigned int *)get_property(cpu_node,
  138. "ibm,ppc-interrupt-server#s", &len);
  139. len = len / sizeof(u32);
  140. if (interrupt_server && (len > 0)) {
  141. while (len--) {
  142. if (interrupt_server[len] == hw_cpuid)
  143. return cpu_node;
  144. }
  145. } else {
  146. reg = (unsigned int *)get_property(cpu_node,
  147. "reg", &len);
  148. if (reg && (len > 0) && (reg[0] == hw_cpuid))
  149. return cpu_node;
  150. }
  151. }
  152. return NULL;
  153. }
  154. /* must hold reference to node during call */
  155. static int *of_get_associativity(struct device_node *dev)
  156. {
  157. return (unsigned int *)get_property(dev, "ibm,associativity", NULL);
  158. }
  159. /* Returns nid in the range [0..MAX_NUMNODES-1], or -1 if no useful numa
  160. * info is found.
  161. */
  162. static int of_node_to_nid_single(struct device_node *device)
  163. {
  164. int nid = -1;
  165. unsigned int *tmp;
  166. if (min_common_depth == -1)
  167. goto out;
  168. tmp = of_get_associativity(device);
  169. if (!tmp)
  170. goto out;
  171. if (tmp[0] >= min_common_depth)
  172. nid = tmp[min_common_depth];
  173. /* POWER4 LPAR uses 0xffff as invalid node */
  174. if (nid == 0xffff || nid >= MAX_NUMNODES)
  175. nid = -1;
  176. out:
  177. return nid;
  178. }
  179. /* Walk the device tree upwards, looking for an associativity id */
  180. int of_node_to_nid(struct device_node *device)
  181. {
  182. struct device_node *tmp;
  183. int nid = -1;
  184. of_node_get(device);
  185. while (device) {
  186. nid = of_node_to_nid_single(device);
  187. if (nid != -1)
  188. break;
  189. tmp = device;
  190. device = of_get_parent(tmp);
  191. of_node_put(tmp);
  192. }
  193. of_node_put(device);
  194. return nid;
  195. }
  196. EXPORT_SYMBOL_GPL(of_node_to_nid);
  197. /*
  198. * In theory, the "ibm,associativity" property may contain multiple
  199. * associativity lists because a resource may be multiply connected
  200. * into the machine. This resource then has different associativity
  201. * characteristics relative to its multiple connections. We ignore
  202. * this for now. We also assume that all cpu and memory sets have
  203. * their distances represented at a common level. This won't be
  204. * true for heirarchical NUMA.
  205. *
  206. * In any case the ibm,associativity-reference-points should give
  207. * the correct depth for a normal NUMA system.
  208. *
  209. * - Dave Hansen <haveblue@us.ibm.com>
  210. */
  211. static int __init find_min_common_depth(void)
  212. {
  213. int depth;
  214. unsigned int *ref_points;
  215. struct device_node *rtas_root;
  216. unsigned int len;
  217. rtas_root = of_find_node_by_path("/rtas");
  218. if (!rtas_root)
  219. return -1;
  220. /*
  221. * this property is 2 32-bit integers, each representing a level of
  222. * depth in the associativity nodes. The first is for an SMP
  223. * configuration (should be all 0's) and the second is for a normal
  224. * NUMA configuration.
  225. */
  226. ref_points = (unsigned int *)get_property(rtas_root,
  227. "ibm,associativity-reference-points", &len);
  228. if ((len >= 1) && ref_points) {
  229. depth = ref_points[1];
  230. } else {
  231. dbg("NUMA: ibm,associativity-reference-points not found.\n");
  232. depth = -1;
  233. }
  234. of_node_put(rtas_root);
  235. return depth;
  236. }
  237. static void __init get_n_mem_cells(int *n_addr_cells, int *n_size_cells)
  238. {
  239. struct device_node *memory = NULL;
  240. memory = of_find_node_by_type(memory, "memory");
  241. if (!memory)
  242. panic("numa.c: No memory nodes found!");
  243. *n_addr_cells = prom_n_addr_cells(memory);
  244. *n_size_cells = prom_n_size_cells(memory);
  245. of_node_put(memory);
  246. }
  247. static unsigned long __devinit read_n_cells(int n, unsigned int **buf)
  248. {
  249. unsigned long result = 0;
  250. while (n--) {
  251. result = (result << 32) | **buf;
  252. (*buf)++;
  253. }
  254. return result;
  255. }
  256. /*
  257. * Figure out to which domain a cpu belongs and stick it there.
  258. * Return the id of the domain used.
  259. */
  260. static int __cpuinit numa_setup_cpu(unsigned long lcpu)
  261. {
  262. int nid = 0;
  263. struct device_node *cpu = find_cpu_node(lcpu);
  264. if (!cpu) {
  265. WARN_ON(1);
  266. goto out;
  267. }
  268. nid = of_node_to_nid_single(cpu);
  269. if (nid < 0 || !node_online(nid))
  270. nid = any_online_node(NODE_MASK_ALL);
  271. out:
  272. map_cpu_to_node(lcpu, nid);
  273. of_node_put(cpu);
  274. return nid;
  275. }
  276. static int __cpuinit cpu_numa_callback(struct notifier_block *nfb,
  277. unsigned long action,
  278. void *hcpu)
  279. {
  280. unsigned long lcpu = (unsigned long)hcpu;
  281. int ret = NOTIFY_DONE;
  282. switch (action) {
  283. case CPU_UP_PREPARE:
  284. numa_setup_cpu(lcpu);
  285. ret = NOTIFY_OK;
  286. break;
  287. #ifdef CONFIG_HOTPLUG_CPU
  288. case CPU_DEAD:
  289. case CPU_UP_CANCELED:
  290. unmap_cpu_from_node(lcpu);
  291. break;
  292. ret = NOTIFY_OK;
  293. #endif
  294. }
  295. return ret;
  296. }
  297. /*
  298. * Check and possibly modify a memory region to enforce the memory limit.
  299. *
  300. * Returns the size the region should have to enforce the memory limit.
  301. * This will either be the original value of size, a truncated value,
  302. * or zero. If the returned value of size is 0 the region should be
  303. * discarded as it lies wholy above the memory limit.
  304. */
  305. static unsigned long __init numa_enforce_memory_limit(unsigned long start,
  306. unsigned long size)
  307. {
  308. /*
  309. * We use lmb_end_of_DRAM() in here instead of memory_limit because
  310. * we've already adjusted it for the limit and it takes care of
  311. * having memory holes below the limit.
  312. */
  313. if (! memory_limit)
  314. return size;
  315. if (start + size <= lmb_end_of_DRAM())
  316. return size;
  317. if (start >= lmb_end_of_DRAM())
  318. return 0;
  319. return lmb_end_of_DRAM() - start;
  320. }
  321. static int __init parse_numa_properties(void)
  322. {
  323. struct device_node *cpu = NULL;
  324. struct device_node *memory = NULL;
  325. int default_nid = 0;
  326. unsigned long i;
  327. if (numa_enabled == 0) {
  328. printk(KERN_WARNING "NUMA disabled by user\n");
  329. return -1;
  330. }
  331. min_common_depth = find_min_common_depth();
  332. if (min_common_depth < 0)
  333. return min_common_depth;
  334. dbg("NUMA associativity depth for CPU/Memory: %d\n", min_common_depth);
  335. /*
  336. * Even though we connect cpus to numa domains later in SMP
  337. * init, we need to know the node ids now. This is because
  338. * each node to be onlined must have NODE_DATA etc backing it.
  339. */
  340. for_each_present_cpu(i) {
  341. int nid;
  342. cpu = find_cpu_node(i);
  343. BUG_ON(!cpu);
  344. nid = of_node_to_nid_single(cpu);
  345. of_node_put(cpu);
  346. /*
  347. * Don't fall back to default_nid yet -- we will plug
  348. * cpus into nodes once the memory scan has discovered
  349. * the topology.
  350. */
  351. if (nid < 0)
  352. continue;
  353. node_set_online(nid);
  354. }
  355. get_n_mem_cells(&n_mem_addr_cells, &n_mem_size_cells);
  356. memory = NULL;
  357. while ((memory = of_find_node_by_type(memory, "memory")) != NULL) {
  358. unsigned long start;
  359. unsigned long size;
  360. int nid;
  361. int ranges;
  362. unsigned int *memcell_buf;
  363. unsigned int len;
  364. memcell_buf = (unsigned int *)get_property(memory,
  365. "linux,usable-memory", &len);
  366. if (!memcell_buf || len <= 0)
  367. memcell_buf =
  368. (unsigned int *)get_property(memory, "reg",
  369. &len);
  370. if (!memcell_buf || len <= 0)
  371. continue;
  372. /* ranges in cell */
  373. ranges = (len >> 2) / (n_mem_addr_cells + n_mem_size_cells);
  374. new_range:
  375. /* these are order-sensitive, and modify the buffer pointer */
  376. start = read_n_cells(n_mem_addr_cells, &memcell_buf);
  377. size = read_n_cells(n_mem_size_cells, &memcell_buf);
  378. /*
  379. * Assumption: either all memory nodes or none will
  380. * have associativity properties. If none, then
  381. * everything goes to default_nid.
  382. */
  383. nid = of_node_to_nid_single(memory);
  384. if (nid < 0)
  385. nid = default_nid;
  386. node_set_online(nid);
  387. if (!(size = numa_enforce_memory_limit(start, size))) {
  388. if (--ranges)
  389. goto new_range;
  390. else
  391. continue;
  392. }
  393. add_region(nid, start >> PAGE_SHIFT,
  394. size >> PAGE_SHIFT);
  395. if (--ranges)
  396. goto new_range;
  397. }
  398. return 0;
  399. }
  400. static void __init setup_nonnuma(void)
  401. {
  402. unsigned long top_of_ram = lmb_end_of_DRAM();
  403. unsigned long total_ram = lmb_phys_mem_size();
  404. unsigned int i;
  405. printk(KERN_DEBUG "Top of RAM: 0x%lx, Total RAM: 0x%lx\n",
  406. top_of_ram, total_ram);
  407. printk(KERN_DEBUG "Memory hole size: %ldMB\n",
  408. (top_of_ram - total_ram) >> 20);
  409. for (i = 0; i < lmb.memory.cnt; ++i)
  410. add_region(0, lmb.memory.region[i].base >> PAGE_SHIFT,
  411. lmb_size_pages(&lmb.memory, i));
  412. node_set_online(0);
  413. }
  414. void __init dump_numa_cpu_topology(void)
  415. {
  416. unsigned int node;
  417. unsigned int cpu, count;
  418. if (min_common_depth == -1 || !numa_enabled)
  419. return;
  420. for_each_online_node(node) {
  421. printk(KERN_DEBUG "Node %d CPUs:", node);
  422. count = 0;
  423. /*
  424. * If we used a CPU iterator here we would miss printing
  425. * the holes in the cpumap.
  426. */
  427. for (cpu = 0; cpu < NR_CPUS; cpu++) {
  428. if (cpu_isset(cpu, numa_cpumask_lookup_table[node])) {
  429. if (count == 0)
  430. printk(" %u", cpu);
  431. ++count;
  432. } else {
  433. if (count > 1)
  434. printk("-%u", cpu - 1);
  435. count = 0;
  436. }
  437. }
  438. if (count > 1)
  439. printk("-%u", NR_CPUS - 1);
  440. printk("\n");
  441. }
  442. }
  443. static void __init dump_numa_memory_topology(void)
  444. {
  445. unsigned int node;
  446. unsigned int count;
  447. if (min_common_depth == -1 || !numa_enabled)
  448. return;
  449. for_each_online_node(node) {
  450. unsigned long i;
  451. printk(KERN_DEBUG "Node %d Memory:", node);
  452. count = 0;
  453. for (i = 0; i < lmb_end_of_DRAM();
  454. i += (1 << SECTION_SIZE_BITS)) {
  455. if (early_pfn_to_nid(i >> PAGE_SHIFT) == node) {
  456. if (count == 0)
  457. printk(" 0x%lx", i);
  458. ++count;
  459. } else {
  460. if (count > 0)
  461. printk("-0x%lx", i);
  462. count = 0;
  463. }
  464. }
  465. if (count > 0)
  466. printk("-0x%lx", i);
  467. printk("\n");
  468. }
  469. }
  470. /*
  471. * Allocate some memory, satisfying the lmb or bootmem allocator where
  472. * required. nid is the preferred node and end is the physical address of
  473. * the highest address in the node.
  474. *
  475. * Returns the physical address of the memory.
  476. */
  477. static void __init *careful_allocation(int nid, unsigned long size,
  478. unsigned long align,
  479. unsigned long end_pfn)
  480. {
  481. int new_nid;
  482. unsigned long ret = __lmb_alloc_base(size, align, end_pfn << PAGE_SHIFT);
  483. /* retry over all memory */
  484. if (!ret)
  485. ret = __lmb_alloc_base(size, align, lmb_end_of_DRAM());
  486. if (!ret)
  487. panic("numa.c: cannot allocate %lu bytes on node %d",
  488. size, nid);
  489. /*
  490. * If the memory came from a previously allocated node, we must
  491. * retry with the bootmem allocator.
  492. */
  493. new_nid = early_pfn_to_nid(ret >> PAGE_SHIFT);
  494. if (new_nid < nid) {
  495. ret = (unsigned long)__alloc_bootmem_node(NODE_DATA(new_nid),
  496. size, align, 0);
  497. if (!ret)
  498. panic("numa.c: cannot allocate %lu bytes on node %d",
  499. size, new_nid);
  500. ret = __pa(ret);
  501. dbg("alloc_bootmem %lx %lx\n", ret, size);
  502. }
  503. return (void *)ret;
  504. }
  505. static struct notifier_block __cpuinitdata ppc64_numa_nb = {
  506. .notifier_call = cpu_numa_callback,
  507. .priority = 1 /* Must run before sched domains notifier. */
  508. };
  509. void __init do_init_bootmem(void)
  510. {
  511. int nid;
  512. unsigned int i;
  513. min_low_pfn = 0;
  514. max_low_pfn = lmb_end_of_DRAM() >> PAGE_SHIFT;
  515. max_pfn = max_low_pfn;
  516. if (parse_numa_properties())
  517. setup_nonnuma();
  518. else
  519. dump_numa_memory_topology();
  520. register_cpu_notifier(&ppc64_numa_nb);
  521. cpu_numa_callback(&ppc64_numa_nb, CPU_UP_PREPARE,
  522. (void *)(unsigned long)boot_cpuid);
  523. for_each_online_node(nid) {
  524. unsigned long start_pfn, end_pfn, pages_present;
  525. unsigned long bootmem_paddr;
  526. unsigned long bootmap_pages;
  527. get_region(nid, &start_pfn, &end_pfn, &pages_present);
  528. /* Allocate the node structure node local if possible */
  529. NODE_DATA(nid) = careful_allocation(nid,
  530. sizeof(struct pglist_data),
  531. SMP_CACHE_BYTES, end_pfn);
  532. NODE_DATA(nid) = __va(NODE_DATA(nid));
  533. memset(NODE_DATA(nid), 0, sizeof(struct pglist_data));
  534. dbg("node %d\n", nid);
  535. dbg("NODE_DATA() = %p\n", NODE_DATA(nid));
  536. NODE_DATA(nid)->bdata = &plat_node_bdata[nid];
  537. NODE_DATA(nid)->node_start_pfn = start_pfn;
  538. NODE_DATA(nid)->node_spanned_pages = end_pfn - start_pfn;
  539. if (NODE_DATA(nid)->node_spanned_pages == 0)
  540. continue;
  541. dbg("start_paddr = %lx\n", start_pfn << PAGE_SHIFT);
  542. dbg("end_paddr = %lx\n", end_pfn << PAGE_SHIFT);
  543. bootmap_pages = bootmem_bootmap_pages(end_pfn - start_pfn);
  544. bootmem_paddr = (unsigned long)careful_allocation(nid,
  545. bootmap_pages << PAGE_SHIFT,
  546. PAGE_SIZE, end_pfn);
  547. memset(__va(bootmem_paddr), 0, bootmap_pages << PAGE_SHIFT);
  548. dbg("bootmap_paddr = %lx\n", bootmem_paddr);
  549. init_bootmem_node(NODE_DATA(nid), bootmem_paddr >> PAGE_SHIFT,
  550. start_pfn, end_pfn);
  551. /* Add free regions on this node */
  552. for (i = 0; init_node_data[i].end_pfn; i++) {
  553. unsigned long start, end;
  554. if (init_node_data[i].nid != nid)
  555. continue;
  556. start = init_node_data[i].start_pfn << PAGE_SHIFT;
  557. end = init_node_data[i].end_pfn << PAGE_SHIFT;
  558. dbg("free_bootmem %lx %lx\n", start, end - start);
  559. free_bootmem_node(NODE_DATA(nid), start, end - start);
  560. }
  561. /* Mark reserved regions on this node */
  562. for (i = 0; i < lmb.reserved.cnt; i++) {
  563. unsigned long physbase = lmb.reserved.region[i].base;
  564. unsigned long size = lmb.reserved.region[i].size;
  565. unsigned long start_paddr = start_pfn << PAGE_SHIFT;
  566. unsigned long end_paddr = end_pfn << PAGE_SHIFT;
  567. if (early_pfn_to_nid(physbase >> PAGE_SHIFT) != nid &&
  568. early_pfn_to_nid((physbase+size-1) >> PAGE_SHIFT) != nid)
  569. continue;
  570. if (physbase < end_paddr &&
  571. (physbase+size) > start_paddr) {
  572. /* overlaps */
  573. if (physbase < start_paddr) {
  574. size -= start_paddr - physbase;
  575. physbase = start_paddr;
  576. }
  577. if (size > end_paddr - physbase)
  578. size = end_paddr - physbase;
  579. dbg("reserve_bootmem %lx %lx\n", physbase,
  580. size);
  581. reserve_bootmem_node(NODE_DATA(nid), physbase,
  582. size);
  583. }
  584. }
  585. /* Add regions into sparsemem */
  586. for (i = 0; init_node_data[i].end_pfn; i++) {
  587. unsigned long start, end;
  588. if (init_node_data[i].nid != nid)
  589. continue;
  590. start = init_node_data[i].start_pfn;
  591. end = init_node_data[i].end_pfn;
  592. memory_present(nid, start, end);
  593. }
  594. }
  595. }
  596. void __init paging_init(void)
  597. {
  598. unsigned long zones_size[MAX_NR_ZONES];
  599. unsigned long zholes_size[MAX_NR_ZONES];
  600. int nid;
  601. memset(zones_size, 0, sizeof(zones_size));
  602. memset(zholes_size, 0, sizeof(zholes_size));
  603. for_each_online_node(nid) {
  604. unsigned long start_pfn, end_pfn, pages_present;
  605. get_region(nid, &start_pfn, &end_pfn, &pages_present);
  606. zones_size[ZONE_DMA] = end_pfn - start_pfn;
  607. zholes_size[ZONE_DMA] = zones_size[ZONE_DMA] - pages_present;
  608. dbg("free_area_init node %d %lx %lx (hole: %lx)\n", nid,
  609. zones_size[ZONE_DMA], start_pfn, zholes_size[ZONE_DMA]);
  610. free_area_init_node(nid, NODE_DATA(nid), zones_size, start_pfn,
  611. zholes_size);
  612. }
  613. }
  614. static int __init early_numa(char *p)
  615. {
  616. if (!p)
  617. return 0;
  618. if (strstr(p, "off"))
  619. numa_enabled = 0;
  620. if (strstr(p, "debug"))
  621. numa_debug = 1;
  622. return 0;
  623. }
  624. early_param("numa", early_numa);
  625. #ifdef CONFIG_MEMORY_HOTPLUG
  626. /*
  627. * Find the node associated with a hot added memory section. Section
  628. * corresponds to a SPARSEMEM section, not an LMB. It is assumed that
  629. * sections are fully contained within a single LMB.
  630. */
  631. int hot_add_scn_to_nid(unsigned long scn_addr)
  632. {
  633. struct device_node *memory = NULL;
  634. nodemask_t nodes;
  635. int default_nid = any_online_node(NODE_MASK_ALL);
  636. int nid;
  637. if (!numa_enabled || (min_common_depth < 0))
  638. return default_nid;
  639. while ((memory = of_find_node_by_type(memory, "memory")) != NULL) {
  640. unsigned long start, size;
  641. int ranges;
  642. unsigned int *memcell_buf;
  643. unsigned int len;
  644. memcell_buf = (unsigned int *)get_property(memory, "reg", &len);
  645. if (!memcell_buf || len <= 0)
  646. continue;
  647. /* ranges in cell */
  648. ranges = (len >> 2) / (n_mem_addr_cells + n_mem_size_cells);
  649. ha_new_range:
  650. start = read_n_cells(n_mem_addr_cells, &memcell_buf);
  651. size = read_n_cells(n_mem_size_cells, &memcell_buf);
  652. nid = of_node_to_nid_single(memory);
  653. /* Domains not present at boot default to 0 */
  654. if (nid < 0 || !node_online(nid))
  655. nid = default_nid;
  656. if ((scn_addr >= start) && (scn_addr < (start + size))) {
  657. of_node_put(memory);
  658. goto got_nid;
  659. }
  660. if (--ranges) /* process all ranges in cell */
  661. goto ha_new_range;
  662. }
  663. BUG(); /* section address should be found above */
  664. return 0;
  665. /* Temporary code to ensure that returned node is not empty */
  666. got_nid:
  667. nodes_setall(nodes);
  668. while (NODE_DATA(nid)->node_spanned_pages == 0) {
  669. node_clear(nid, nodes);
  670. nid = any_online_node(nodes);
  671. }
  672. return nid;
  673. }
  674. #endif /* CONFIG_MEMORY_HOTPLUG */