init.c 31 KB

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  1. #include <linux/gfp.h>
  2. #include <linux/initrd.h>
  3. #include <linux/ioport.h>
  4. #include <linux/swap.h>
  5. #include <linux/memblock.h>
  6. #include <linux/swapfile.h>
  7. #include <linux/swapops.h>
  8. #include <linux/kmemleak.h>
  9. #include <linux/sched/task.h>
  10. #include <linux/execmem.h>
  11. #include <asm/set_memory.h>
  12. #include <asm/cpu_device_id.h>
  13. #include <asm/e820/api.h>
  14. #include <asm/init.h>
  15. #include <asm/page.h>
  16. #include <asm/page_types.h>
  17. #include <asm/sections.h>
  18. #include <asm/setup.h>
  19. #include <asm/tlbflush.h>
  20. #include <asm/tlb.h>
  21. #include <asm/proto.h>
  22. #include <asm/dma.h> /* for MAX_DMA_PFN */
  23. #include <asm/kaslr.h>
  24. #include <asm/hypervisor.h>
  25. #include <asm/cpufeature.h>
  26. #include <asm/pti.h>
  27. #include <asm/text-patching.h>
  28. #include <asm/memtype.h>
  29. #include <asm/paravirt.h>
  30. /*
  31. * We need to define the tracepoints somewhere, and tlb.c
  32. * is only compiled when SMP=y.
  33. */
  34. #include <trace/events/tlb.h>
  35. #include "mm_internal.h"
  36. /*
  37. * Tables translating between page_cache_type_t and pte encoding.
  38. *
  39. * The default values are defined statically as minimal supported mode;
  40. * WC and WT fall back to UC-. pat_init() updates these values to support
  41. * more cache modes, WC and WT, when it is safe to do so. See pat_init()
  42. * for the details. Note, __early_ioremap() used during early boot-time
  43. * takes pgprot_t (pte encoding) and does not use these tables.
  44. *
  45. * Index into __cachemode2pte_tbl[] is the cachemode.
  46. *
  47. * Index into __pte2cachemode_tbl[] are the caching attribute bits of the pte
  48. * (_PAGE_PWT, _PAGE_PCD, _PAGE_PAT) at index bit positions 0, 1, 2.
  49. */
  50. static uint16_t __cachemode2pte_tbl[_PAGE_CACHE_MODE_NUM] = {
  51. [_PAGE_CACHE_MODE_WB ] = 0 | 0 ,
  52. [_PAGE_CACHE_MODE_WC ] = 0 | _PAGE_PCD,
  53. [_PAGE_CACHE_MODE_UC_MINUS] = 0 | _PAGE_PCD,
  54. [_PAGE_CACHE_MODE_UC ] = _PAGE_PWT | _PAGE_PCD,
  55. [_PAGE_CACHE_MODE_WT ] = 0 | _PAGE_PCD,
  56. [_PAGE_CACHE_MODE_WP ] = 0 | _PAGE_PCD,
  57. };
  58. unsigned long cachemode2protval(enum page_cache_mode pcm)
  59. {
  60. if (likely(pcm == 0))
  61. return 0;
  62. return __cachemode2pte_tbl[pcm];
  63. }
  64. EXPORT_SYMBOL(cachemode2protval);
  65. static uint8_t __pte2cachemode_tbl[8] = {
  66. [__pte2cm_idx( 0 | 0 | 0 )] = _PAGE_CACHE_MODE_WB,
  67. [__pte2cm_idx(_PAGE_PWT | 0 | 0 )] = _PAGE_CACHE_MODE_UC_MINUS,
  68. [__pte2cm_idx( 0 | _PAGE_PCD | 0 )] = _PAGE_CACHE_MODE_UC_MINUS,
  69. [__pte2cm_idx(_PAGE_PWT | _PAGE_PCD | 0 )] = _PAGE_CACHE_MODE_UC,
  70. [__pte2cm_idx( 0 | 0 | _PAGE_PAT)] = _PAGE_CACHE_MODE_WB,
  71. [__pte2cm_idx(_PAGE_PWT | 0 | _PAGE_PAT)] = _PAGE_CACHE_MODE_UC_MINUS,
  72. [__pte2cm_idx(0 | _PAGE_PCD | _PAGE_PAT)] = _PAGE_CACHE_MODE_UC_MINUS,
  73. [__pte2cm_idx(_PAGE_PWT | _PAGE_PCD | _PAGE_PAT)] = _PAGE_CACHE_MODE_UC,
  74. };
  75. /*
  76. * Check that the write-protect PAT entry is set for write-protect.
  77. * To do this without making assumptions how PAT has been set up (Xen has
  78. * another layout than the kernel), translate the _PAGE_CACHE_MODE_WP cache
  79. * mode via the __cachemode2pte_tbl[] into protection bits (those protection
  80. * bits will select a cache mode of WP or better), and then translate the
  81. * protection bits back into the cache mode using __pte2cm_idx() and the
  82. * __pte2cachemode_tbl[] array. This will return the really used cache mode.
  83. */
  84. bool x86_has_pat_wp(void)
  85. {
  86. uint16_t prot = __cachemode2pte_tbl[_PAGE_CACHE_MODE_WP];
  87. return __pte2cachemode_tbl[__pte2cm_idx(prot)] == _PAGE_CACHE_MODE_WP;
  88. }
  89. enum page_cache_mode pgprot2cachemode(pgprot_t pgprot)
  90. {
  91. unsigned long masked;
  92. masked = pgprot_val(pgprot) & _PAGE_CACHE_MASK;
  93. if (likely(masked == 0))
  94. return 0;
  95. return __pte2cachemode_tbl[__pte2cm_idx(masked)];
  96. }
  97. static unsigned long __initdata pgt_buf_start;
  98. static unsigned long __initdata pgt_buf_end;
  99. static unsigned long __initdata pgt_buf_top;
  100. static unsigned long min_pfn_mapped;
  101. static bool __initdata can_use_brk_pgt = true;
  102. /*
  103. * Pages returned are already directly mapped.
  104. *
  105. * Changing that is likely to break Xen, see commit:
  106. *
  107. * 279b706 x86,xen: introduce x86_init.mapping.pagetable_reserve
  108. *
  109. * for detailed information.
  110. */
  111. __ref void *alloc_low_pages(unsigned int num)
  112. {
  113. unsigned long pfn;
  114. int i;
  115. if (after_bootmem) {
  116. unsigned int order;
  117. order = get_order((unsigned long)num << PAGE_SHIFT);
  118. return (void *)__get_free_pages(GFP_ATOMIC | __GFP_ZERO, order);
  119. }
  120. if ((pgt_buf_end + num) > pgt_buf_top || !can_use_brk_pgt) {
  121. unsigned long ret = 0;
  122. if (min_pfn_mapped < max_pfn_mapped) {
  123. ret = memblock_phys_alloc_range(
  124. PAGE_SIZE * num, PAGE_SIZE,
  125. min_pfn_mapped << PAGE_SHIFT,
  126. max_pfn_mapped << PAGE_SHIFT);
  127. }
  128. if (!ret && can_use_brk_pgt)
  129. ret = __pa(extend_brk(PAGE_SIZE * num, PAGE_SIZE));
  130. if (!ret)
  131. panic("alloc_low_pages: can not alloc memory");
  132. pfn = ret >> PAGE_SHIFT;
  133. } else {
  134. pfn = pgt_buf_end;
  135. pgt_buf_end += num;
  136. }
  137. for (i = 0; i < num; i++) {
  138. void *adr;
  139. adr = __va((pfn + i) << PAGE_SHIFT);
  140. clear_page(adr);
  141. }
  142. return __va(pfn << PAGE_SHIFT);
  143. }
  144. /*
  145. * By default need to be able to allocate page tables below PGD firstly for
  146. * the 0-ISA_END_ADDRESS range and secondly for the initial PMD_SIZE mapping.
  147. * With KASLR memory randomization, depending on the machine e820 memory and the
  148. * PUD alignment, twice that many pages may be needed when KASLR memory
  149. * randomization is enabled.
  150. */
  151. #ifndef CONFIG_X86_5LEVEL
  152. #define INIT_PGD_PAGE_TABLES 3
  153. #else
  154. #define INIT_PGD_PAGE_TABLES 4
  155. #endif
  156. #ifndef CONFIG_RANDOMIZE_MEMORY
  157. #define INIT_PGD_PAGE_COUNT (2 * INIT_PGD_PAGE_TABLES)
  158. #else
  159. #define INIT_PGD_PAGE_COUNT (4 * INIT_PGD_PAGE_TABLES)
  160. #endif
  161. #define INIT_PGT_BUF_SIZE (INIT_PGD_PAGE_COUNT * PAGE_SIZE)
  162. RESERVE_BRK(early_pgt_alloc, INIT_PGT_BUF_SIZE);
  163. void __init early_alloc_pgt_buf(void)
  164. {
  165. unsigned long tables = INIT_PGT_BUF_SIZE;
  166. phys_addr_t base;
  167. base = __pa(extend_brk(tables, PAGE_SIZE));
  168. pgt_buf_start = base >> PAGE_SHIFT;
  169. pgt_buf_end = pgt_buf_start;
  170. pgt_buf_top = pgt_buf_start + (tables >> PAGE_SHIFT);
  171. }
  172. int after_bootmem;
  173. early_param_on_off("gbpages", "nogbpages", direct_gbpages, CONFIG_X86_DIRECT_GBPAGES);
  174. struct map_range {
  175. unsigned long start;
  176. unsigned long end;
  177. unsigned page_size_mask;
  178. };
  179. static int page_size_mask;
  180. /*
  181. * Save some of cr4 feature set we're using (e.g. Pentium 4MB
  182. * enable and PPro Global page enable), so that any CPU's that boot
  183. * up after us can get the correct flags. Invoked on the boot CPU.
  184. */
  185. static inline void cr4_set_bits_and_update_boot(unsigned long mask)
  186. {
  187. mmu_cr4_features |= mask;
  188. if (trampoline_cr4_features)
  189. *trampoline_cr4_features = mmu_cr4_features;
  190. cr4_set_bits(mask);
  191. }
  192. static void __init probe_page_size_mask(void)
  193. {
  194. /*
  195. * For pagealloc debugging, identity mapping will use small pages.
  196. * This will simplify cpa(), which otherwise needs to support splitting
  197. * large pages into small in interrupt context, etc.
  198. */
  199. if (boot_cpu_has(X86_FEATURE_PSE) && !debug_pagealloc_enabled())
  200. page_size_mask |= 1 << PG_LEVEL_2M;
  201. else
  202. direct_gbpages = 0;
  203. /* Enable PSE if available */
  204. if (boot_cpu_has(X86_FEATURE_PSE))
  205. cr4_set_bits_and_update_boot(X86_CR4_PSE);
  206. /* Enable PGE if available */
  207. __supported_pte_mask &= ~_PAGE_GLOBAL;
  208. if (boot_cpu_has(X86_FEATURE_PGE)) {
  209. cr4_set_bits_and_update_boot(X86_CR4_PGE);
  210. __supported_pte_mask |= _PAGE_GLOBAL;
  211. }
  212. /* By the default is everything supported: */
  213. __default_kernel_pte_mask = __supported_pte_mask;
  214. /* Except when with PTI where the kernel is mostly non-Global: */
  215. if (cpu_feature_enabled(X86_FEATURE_PTI))
  216. __default_kernel_pte_mask &= ~_PAGE_GLOBAL;
  217. /* Enable 1 GB linear kernel mappings if available: */
  218. if (direct_gbpages && boot_cpu_has(X86_FEATURE_GBPAGES)) {
  219. printk(KERN_INFO "Using GB pages for direct mapping\n");
  220. page_size_mask |= 1 << PG_LEVEL_1G;
  221. } else {
  222. direct_gbpages = 0;
  223. }
  224. }
  225. /*
  226. * INVLPG may not properly flush Global entries on
  227. * these CPUs. New microcode fixes the issue.
  228. */
  229. static const struct x86_cpu_id invlpg_miss_ids[] = {
  230. X86_MATCH_VFM(INTEL_ALDERLAKE, 0x2e),
  231. X86_MATCH_VFM(INTEL_ALDERLAKE_L, 0x42c),
  232. X86_MATCH_VFM(INTEL_ATOM_GRACEMONT, 0x11),
  233. X86_MATCH_VFM(INTEL_RAPTORLAKE, 0x118),
  234. X86_MATCH_VFM(INTEL_RAPTORLAKE_P, 0x4117),
  235. X86_MATCH_VFM(INTEL_RAPTORLAKE_S, 0x2e),
  236. {}
  237. };
  238. static void setup_pcid(void)
  239. {
  240. const struct x86_cpu_id *invlpg_miss_match;
  241. if (!IS_ENABLED(CONFIG_X86_64))
  242. return;
  243. if (!boot_cpu_has(X86_FEATURE_PCID))
  244. return;
  245. invlpg_miss_match = x86_match_cpu(invlpg_miss_ids);
  246. if (invlpg_miss_match &&
  247. boot_cpu_data.microcode < invlpg_miss_match->driver_data) {
  248. pr_info("Incomplete global flushes, disabling PCID");
  249. setup_clear_cpu_cap(X86_FEATURE_PCID);
  250. return;
  251. }
  252. if (boot_cpu_has(X86_FEATURE_PGE)) {
  253. /*
  254. * This can't be cr4_set_bits_and_update_boot() -- the
  255. * trampoline code can't handle CR4.PCIDE and it wouldn't
  256. * do any good anyway. Despite the name,
  257. * cr4_set_bits_and_update_boot() doesn't actually cause
  258. * the bits in question to remain set all the way through
  259. * the secondary boot asm.
  260. *
  261. * Instead, we brute-force it and set CR4.PCIDE manually in
  262. * start_secondary().
  263. */
  264. cr4_set_bits(X86_CR4_PCIDE);
  265. } else {
  266. /*
  267. * flush_tlb_all(), as currently implemented, won't work if
  268. * PCID is on but PGE is not. Since that combination
  269. * doesn't exist on real hardware, there's no reason to try
  270. * to fully support it, but it's polite to avoid corrupting
  271. * data if we're on an improperly configured VM.
  272. */
  273. setup_clear_cpu_cap(X86_FEATURE_PCID);
  274. }
  275. }
  276. #ifdef CONFIG_X86_32
  277. #define NR_RANGE_MR 3
  278. #else /* CONFIG_X86_64 */
  279. #define NR_RANGE_MR 5
  280. #endif
  281. static int __meminit save_mr(struct map_range *mr, int nr_range,
  282. unsigned long start_pfn, unsigned long end_pfn,
  283. unsigned long page_size_mask)
  284. {
  285. if (start_pfn < end_pfn) {
  286. if (nr_range >= NR_RANGE_MR)
  287. panic("run out of range for init_memory_mapping\n");
  288. mr[nr_range].start = start_pfn<<PAGE_SHIFT;
  289. mr[nr_range].end = end_pfn<<PAGE_SHIFT;
  290. mr[nr_range].page_size_mask = page_size_mask;
  291. nr_range++;
  292. }
  293. return nr_range;
  294. }
  295. /*
  296. * adjust the page_size_mask for small range to go with
  297. * big page size instead small one if nearby are ram too.
  298. */
  299. static void __ref adjust_range_page_size_mask(struct map_range *mr,
  300. int nr_range)
  301. {
  302. int i;
  303. for (i = 0; i < nr_range; i++) {
  304. if ((page_size_mask & (1<<PG_LEVEL_2M)) &&
  305. !(mr[i].page_size_mask & (1<<PG_LEVEL_2M))) {
  306. unsigned long start = round_down(mr[i].start, PMD_SIZE);
  307. unsigned long end = round_up(mr[i].end, PMD_SIZE);
  308. #ifdef CONFIG_X86_32
  309. if ((end >> PAGE_SHIFT) > max_low_pfn)
  310. continue;
  311. #endif
  312. if (memblock_is_region_memory(start, end - start))
  313. mr[i].page_size_mask |= 1<<PG_LEVEL_2M;
  314. }
  315. if ((page_size_mask & (1<<PG_LEVEL_1G)) &&
  316. !(mr[i].page_size_mask & (1<<PG_LEVEL_1G))) {
  317. unsigned long start = round_down(mr[i].start, PUD_SIZE);
  318. unsigned long end = round_up(mr[i].end, PUD_SIZE);
  319. if (memblock_is_region_memory(start, end - start))
  320. mr[i].page_size_mask |= 1<<PG_LEVEL_1G;
  321. }
  322. }
  323. }
  324. static const char *page_size_string(struct map_range *mr)
  325. {
  326. static const char str_1g[] = "1G";
  327. static const char str_2m[] = "2M";
  328. static const char str_4m[] = "4M";
  329. static const char str_4k[] = "4k";
  330. if (mr->page_size_mask & (1<<PG_LEVEL_1G))
  331. return str_1g;
  332. /*
  333. * 32-bit without PAE has a 4M large page size.
  334. * PG_LEVEL_2M is misnamed, but we can at least
  335. * print out the right size in the string.
  336. */
  337. if (IS_ENABLED(CONFIG_X86_32) &&
  338. !IS_ENABLED(CONFIG_X86_PAE) &&
  339. mr->page_size_mask & (1<<PG_LEVEL_2M))
  340. return str_4m;
  341. if (mr->page_size_mask & (1<<PG_LEVEL_2M))
  342. return str_2m;
  343. return str_4k;
  344. }
  345. static int __meminit split_mem_range(struct map_range *mr, int nr_range,
  346. unsigned long start,
  347. unsigned long end)
  348. {
  349. unsigned long start_pfn, end_pfn, limit_pfn;
  350. unsigned long pfn;
  351. int i;
  352. limit_pfn = PFN_DOWN(end);
  353. /* head if not big page alignment ? */
  354. pfn = start_pfn = PFN_DOWN(start);
  355. #ifdef CONFIG_X86_32
  356. /*
  357. * Don't use a large page for the first 2/4MB of memory
  358. * because there are often fixed size MTRRs in there
  359. * and overlapping MTRRs into large pages can cause
  360. * slowdowns.
  361. */
  362. if (pfn == 0)
  363. end_pfn = PFN_DOWN(PMD_SIZE);
  364. else
  365. end_pfn = round_up(pfn, PFN_DOWN(PMD_SIZE));
  366. #else /* CONFIG_X86_64 */
  367. end_pfn = round_up(pfn, PFN_DOWN(PMD_SIZE));
  368. #endif
  369. if (end_pfn > limit_pfn)
  370. end_pfn = limit_pfn;
  371. if (start_pfn < end_pfn) {
  372. nr_range = save_mr(mr, nr_range, start_pfn, end_pfn, 0);
  373. pfn = end_pfn;
  374. }
  375. /* big page (2M) range */
  376. start_pfn = round_up(pfn, PFN_DOWN(PMD_SIZE));
  377. #ifdef CONFIG_X86_32
  378. end_pfn = round_down(limit_pfn, PFN_DOWN(PMD_SIZE));
  379. #else /* CONFIG_X86_64 */
  380. end_pfn = round_up(pfn, PFN_DOWN(PUD_SIZE));
  381. if (end_pfn > round_down(limit_pfn, PFN_DOWN(PMD_SIZE)))
  382. end_pfn = round_down(limit_pfn, PFN_DOWN(PMD_SIZE));
  383. #endif
  384. if (start_pfn < end_pfn) {
  385. nr_range = save_mr(mr, nr_range, start_pfn, end_pfn,
  386. page_size_mask & (1<<PG_LEVEL_2M));
  387. pfn = end_pfn;
  388. }
  389. #ifdef CONFIG_X86_64
  390. /* big page (1G) range */
  391. start_pfn = round_up(pfn, PFN_DOWN(PUD_SIZE));
  392. end_pfn = round_down(limit_pfn, PFN_DOWN(PUD_SIZE));
  393. if (start_pfn < end_pfn) {
  394. nr_range = save_mr(mr, nr_range, start_pfn, end_pfn,
  395. page_size_mask &
  396. ((1<<PG_LEVEL_2M)|(1<<PG_LEVEL_1G)));
  397. pfn = end_pfn;
  398. }
  399. /* tail is not big page (1G) alignment */
  400. start_pfn = round_up(pfn, PFN_DOWN(PMD_SIZE));
  401. end_pfn = round_down(limit_pfn, PFN_DOWN(PMD_SIZE));
  402. if (start_pfn < end_pfn) {
  403. nr_range = save_mr(mr, nr_range, start_pfn, end_pfn,
  404. page_size_mask & (1<<PG_LEVEL_2M));
  405. pfn = end_pfn;
  406. }
  407. #endif
  408. /* tail is not big page (2M) alignment */
  409. start_pfn = pfn;
  410. end_pfn = limit_pfn;
  411. nr_range = save_mr(mr, nr_range, start_pfn, end_pfn, 0);
  412. if (!after_bootmem)
  413. adjust_range_page_size_mask(mr, nr_range);
  414. /* try to merge same page size and continuous */
  415. for (i = 0; nr_range > 1 && i < nr_range - 1; i++) {
  416. unsigned long old_start;
  417. if (mr[i].end != mr[i+1].start ||
  418. mr[i].page_size_mask != mr[i+1].page_size_mask)
  419. continue;
  420. /* move it */
  421. old_start = mr[i].start;
  422. memmove(&mr[i], &mr[i+1],
  423. (nr_range - 1 - i) * sizeof(struct map_range));
  424. mr[i--].start = old_start;
  425. nr_range--;
  426. }
  427. for (i = 0; i < nr_range; i++)
  428. pr_debug(" [mem %#010lx-%#010lx] page %s\n",
  429. mr[i].start, mr[i].end - 1,
  430. page_size_string(&mr[i]));
  431. return nr_range;
  432. }
  433. struct range pfn_mapped[E820_MAX_ENTRIES];
  434. int nr_pfn_mapped;
  435. static void add_pfn_range_mapped(unsigned long start_pfn, unsigned long end_pfn)
  436. {
  437. nr_pfn_mapped = add_range_with_merge(pfn_mapped, E820_MAX_ENTRIES,
  438. nr_pfn_mapped, start_pfn, end_pfn);
  439. nr_pfn_mapped = clean_sort_range(pfn_mapped, E820_MAX_ENTRIES);
  440. max_pfn_mapped = max(max_pfn_mapped, end_pfn);
  441. if (start_pfn < (1UL<<(32-PAGE_SHIFT)))
  442. max_low_pfn_mapped = max(max_low_pfn_mapped,
  443. min(end_pfn, 1UL<<(32-PAGE_SHIFT)));
  444. }
  445. bool pfn_range_is_mapped(unsigned long start_pfn, unsigned long end_pfn)
  446. {
  447. int i;
  448. for (i = 0; i < nr_pfn_mapped; i++)
  449. if ((start_pfn >= pfn_mapped[i].start) &&
  450. (end_pfn <= pfn_mapped[i].end))
  451. return true;
  452. return false;
  453. }
  454. /*
  455. * Setup the direct mapping of the physical memory at PAGE_OFFSET.
  456. * This runs before bootmem is initialized and gets pages directly from
  457. * the physical memory. To access them they are temporarily mapped.
  458. */
  459. unsigned long __ref init_memory_mapping(unsigned long start,
  460. unsigned long end, pgprot_t prot)
  461. {
  462. struct map_range mr[NR_RANGE_MR];
  463. unsigned long ret = 0;
  464. int nr_range, i;
  465. pr_debug("init_memory_mapping: [mem %#010lx-%#010lx]\n",
  466. start, end - 1);
  467. memset(mr, 0, sizeof(mr));
  468. nr_range = split_mem_range(mr, 0, start, end);
  469. for (i = 0; i < nr_range; i++)
  470. ret = kernel_physical_mapping_init(mr[i].start, mr[i].end,
  471. mr[i].page_size_mask,
  472. prot);
  473. add_pfn_range_mapped(start >> PAGE_SHIFT, ret >> PAGE_SHIFT);
  474. return ret >> PAGE_SHIFT;
  475. }
  476. /*
  477. * We need to iterate through the E820 memory map and create direct mappings
  478. * for only E820_TYPE_RAM and E820_KERN_RESERVED regions. We cannot simply
  479. * create direct mappings for all pfns from [0 to max_low_pfn) and
  480. * [4GB to max_pfn) because of possible memory holes in high addresses
  481. * that cannot be marked as UC by fixed/variable range MTRRs.
  482. * Depending on the alignment of E820 ranges, this may possibly result
  483. * in using smaller size (i.e. 4K instead of 2M or 1G) page tables.
  484. *
  485. * init_mem_mapping() calls init_range_memory_mapping() with big range.
  486. * That range would have hole in the middle or ends, and only ram parts
  487. * will be mapped in init_range_memory_mapping().
  488. */
  489. static unsigned long __init init_range_memory_mapping(
  490. unsigned long r_start,
  491. unsigned long r_end)
  492. {
  493. unsigned long start_pfn, end_pfn;
  494. unsigned long mapped_ram_size = 0;
  495. int i;
  496. for_each_mem_pfn_range(i, MAX_NUMNODES, &start_pfn, &end_pfn, NULL) {
  497. u64 start = clamp_val(PFN_PHYS(start_pfn), r_start, r_end);
  498. u64 end = clamp_val(PFN_PHYS(end_pfn), r_start, r_end);
  499. if (start >= end)
  500. continue;
  501. /*
  502. * if it is overlapping with brk pgt, we need to
  503. * alloc pgt buf from memblock instead.
  504. */
  505. can_use_brk_pgt = max(start, (u64)pgt_buf_end<<PAGE_SHIFT) >=
  506. min(end, (u64)pgt_buf_top<<PAGE_SHIFT);
  507. init_memory_mapping(start, end, PAGE_KERNEL);
  508. mapped_ram_size += end - start;
  509. can_use_brk_pgt = true;
  510. }
  511. return mapped_ram_size;
  512. }
  513. static unsigned long __init get_new_step_size(unsigned long step_size)
  514. {
  515. /*
  516. * Initial mapped size is PMD_SIZE (2M).
  517. * We can not set step_size to be PUD_SIZE (1G) yet.
  518. * In worse case, when we cross the 1G boundary, and
  519. * PG_LEVEL_2M is not set, we will need 1+1+512 pages (2M + 8k)
  520. * to map 1G range with PTE. Hence we use one less than the
  521. * difference of page table level shifts.
  522. *
  523. * Don't need to worry about overflow in the top-down case, on 32bit,
  524. * when step_size is 0, round_down() returns 0 for start, and that
  525. * turns it into 0x100000000ULL.
  526. * In the bottom-up case, round_up(x, 0) returns 0 though too, which
  527. * needs to be taken into consideration by the code below.
  528. */
  529. return step_size << (PMD_SHIFT - PAGE_SHIFT - 1);
  530. }
  531. /**
  532. * memory_map_top_down - Map [map_start, map_end) top down
  533. * @map_start: start address of the target memory range
  534. * @map_end: end address of the target memory range
  535. *
  536. * This function will setup direct mapping for memory range
  537. * [map_start, map_end) in top-down. That said, the page tables
  538. * will be allocated at the end of the memory, and we map the
  539. * memory in top-down.
  540. */
  541. static void __init memory_map_top_down(unsigned long map_start,
  542. unsigned long map_end)
  543. {
  544. unsigned long real_end, last_start;
  545. unsigned long step_size;
  546. unsigned long addr;
  547. unsigned long mapped_ram_size = 0;
  548. /*
  549. * Systems that have many reserved areas near top of the memory,
  550. * e.g. QEMU with less than 1G RAM and EFI enabled, or Xen, will
  551. * require lots of 4K mappings which may exhaust pgt_buf.
  552. * Start with top-most PMD_SIZE range aligned at PMD_SIZE to ensure
  553. * there is enough mapped memory that can be allocated from
  554. * memblock.
  555. */
  556. addr = memblock_phys_alloc_range(PMD_SIZE, PMD_SIZE, map_start,
  557. map_end);
  558. if (!addr) {
  559. pr_warn("Failed to release memory for alloc_low_pages()");
  560. real_end = max(map_start, ALIGN_DOWN(map_end, PMD_SIZE));
  561. } else {
  562. memblock_phys_free(addr, PMD_SIZE);
  563. real_end = addr + PMD_SIZE;
  564. }
  565. /* step_size need to be small so pgt_buf from BRK could cover it */
  566. step_size = PMD_SIZE;
  567. max_pfn_mapped = 0; /* will get exact value next */
  568. min_pfn_mapped = real_end >> PAGE_SHIFT;
  569. last_start = real_end;
  570. /*
  571. * We start from the top (end of memory) and go to the bottom.
  572. * The memblock_find_in_range() gets us a block of RAM from the
  573. * end of RAM in [min_pfn_mapped, max_pfn_mapped) used as new pages
  574. * for page table.
  575. */
  576. while (last_start > map_start) {
  577. unsigned long start;
  578. if (last_start > step_size) {
  579. start = round_down(last_start - 1, step_size);
  580. if (start < map_start)
  581. start = map_start;
  582. } else
  583. start = map_start;
  584. mapped_ram_size += init_range_memory_mapping(start,
  585. last_start);
  586. last_start = start;
  587. min_pfn_mapped = last_start >> PAGE_SHIFT;
  588. if (mapped_ram_size >= step_size)
  589. step_size = get_new_step_size(step_size);
  590. }
  591. if (real_end < map_end)
  592. init_range_memory_mapping(real_end, map_end);
  593. }
  594. /**
  595. * memory_map_bottom_up - Map [map_start, map_end) bottom up
  596. * @map_start: start address of the target memory range
  597. * @map_end: end address of the target memory range
  598. *
  599. * This function will setup direct mapping for memory range
  600. * [map_start, map_end) in bottom-up. Since we have limited the
  601. * bottom-up allocation above the kernel, the page tables will
  602. * be allocated just above the kernel and we map the memory
  603. * in [map_start, map_end) in bottom-up.
  604. */
  605. static void __init memory_map_bottom_up(unsigned long map_start,
  606. unsigned long map_end)
  607. {
  608. unsigned long next, start;
  609. unsigned long mapped_ram_size = 0;
  610. /* step_size need to be small so pgt_buf from BRK could cover it */
  611. unsigned long step_size = PMD_SIZE;
  612. start = map_start;
  613. min_pfn_mapped = start >> PAGE_SHIFT;
  614. /*
  615. * We start from the bottom (@map_start) and go to the top (@map_end).
  616. * The memblock_find_in_range() gets us a block of RAM from the
  617. * end of RAM in [min_pfn_mapped, max_pfn_mapped) used as new pages
  618. * for page table.
  619. */
  620. while (start < map_end) {
  621. if (step_size && map_end - start > step_size) {
  622. next = round_up(start + 1, step_size);
  623. if (next > map_end)
  624. next = map_end;
  625. } else {
  626. next = map_end;
  627. }
  628. mapped_ram_size += init_range_memory_mapping(start, next);
  629. start = next;
  630. if (mapped_ram_size >= step_size)
  631. step_size = get_new_step_size(step_size);
  632. }
  633. }
  634. /*
  635. * The real mode trampoline, which is required for bootstrapping CPUs
  636. * occupies only a small area under the low 1MB. See reserve_real_mode()
  637. * for details.
  638. *
  639. * If KASLR is disabled the first PGD entry of the direct mapping is copied
  640. * to map the real mode trampoline.
  641. *
  642. * If KASLR is enabled, copy only the PUD which covers the low 1MB
  643. * area. This limits the randomization granularity to 1GB for both 4-level
  644. * and 5-level paging.
  645. */
  646. static void __init init_trampoline(void)
  647. {
  648. #ifdef CONFIG_X86_64
  649. /*
  650. * The code below will alias kernel page-tables in the user-range of the
  651. * address space, including the Global bit. So global TLB entries will
  652. * be created when using the trampoline page-table.
  653. */
  654. if (!kaslr_memory_enabled())
  655. trampoline_pgd_entry = init_top_pgt[pgd_index(__PAGE_OFFSET)];
  656. else
  657. init_trampoline_kaslr();
  658. #endif
  659. }
  660. void __init init_mem_mapping(void)
  661. {
  662. unsigned long end;
  663. pti_check_boottime_disable();
  664. probe_page_size_mask();
  665. setup_pcid();
  666. #ifdef CONFIG_X86_64
  667. end = max_pfn << PAGE_SHIFT;
  668. #else
  669. end = max_low_pfn << PAGE_SHIFT;
  670. #endif
  671. /* the ISA range is always mapped regardless of memory holes */
  672. init_memory_mapping(0, ISA_END_ADDRESS, PAGE_KERNEL);
  673. /* Init the trampoline, possibly with KASLR memory offset */
  674. init_trampoline();
  675. /*
  676. * If the allocation is in bottom-up direction, we setup direct mapping
  677. * in bottom-up, otherwise we setup direct mapping in top-down.
  678. */
  679. if (memblock_bottom_up()) {
  680. unsigned long kernel_end = __pa_symbol(_end);
  681. /*
  682. * we need two separate calls here. This is because we want to
  683. * allocate page tables above the kernel. So we first map
  684. * [kernel_end, end) to make memory above the kernel be mapped
  685. * as soon as possible. And then use page tables allocated above
  686. * the kernel to map [ISA_END_ADDRESS, kernel_end).
  687. */
  688. memory_map_bottom_up(kernel_end, end);
  689. memory_map_bottom_up(ISA_END_ADDRESS, kernel_end);
  690. } else {
  691. memory_map_top_down(ISA_END_ADDRESS, end);
  692. }
  693. #ifdef CONFIG_X86_64
  694. if (max_pfn > max_low_pfn) {
  695. /* can we preserve max_low_pfn ?*/
  696. max_low_pfn = max_pfn;
  697. }
  698. #else
  699. early_ioremap_page_table_range_init();
  700. #endif
  701. load_cr3(swapper_pg_dir);
  702. __flush_tlb_all();
  703. x86_init.hyper.init_mem_mapping();
  704. early_memtest(0, max_pfn_mapped << PAGE_SHIFT);
  705. }
  706. /*
  707. * Initialize an mm_struct to be used during poking and a pointer to be used
  708. * during patching.
  709. */
  710. void __init poking_init(void)
  711. {
  712. spinlock_t *ptl;
  713. pte_t *ptep;
  714. poking_mm = mm_alloc();
  715. BUG_ON(!poking_mm);
  716. /* Xen PV guests need the PGD to be pinned. */
  717. paravirt_enter_mmap(poking_mm);
  718. /*
  719. * Randomize the poking address, but make sure that the following page
  720. * will be mapped at the same PMD. We need 2 pages, so find space for 3,
  721. * and adjust the address if the PMD ends after the first one.
  722. */
  723. poking_addr = TASK_UNMAPPED_BASE;
  724. if (IS_ENABLED(CONFIG_RANDOMIZE_BASE))
  725. poking_addr += (kaslr_get_random_long("Poking") & PAGE_MASK) %
  726. (TASK_SIZE - TASK_UNMAPPED_BASE - 3 * PAGE_SIZE);
  727. if (((poking_addr + PAGE_SIZE) & ~PMD_MASK) == 0)
  728. poking_addr += PAGE_SIZE;
  729. /*
  730. * We need to trigger the allocation of the page-tables that will be
  731. * needed for poking now. Later, poking may be performed in an atomic
  732. * section, which might cause allocation to fail.
  733. */
  734. ptep = get_locked_pte(poking_mm, poking_addr, &ptl);
  735. BUG_ON(!ptep);
  736. pte_unmap_unlock(ptep, ptl);
  737. }
  738. /*
  739. * devmem_is_allowed() checks to see if /dev/mem access to a certain address
  740. * is valid. The argument is a physical page number.
  741. *
  742. * On x86, access has to be given to the first megabyte of RAM because that
  743. * area traditionally contains BIOS code and data regions used by X, dosemu,
  744. * and similar apps. Since they map the entire memory range, the whole range
  745. * must be allowed (for mapping), but any areas that would otherwise be
  746. * disallowed are flagged as being "zero filled" instead of rejected.
  747. * Access has to be given to non-kernel-ram areas as well, these contain the
  748. * PCI mmio resources as well as potential bios/acpi data regions.
  749. */
  750. int devmem_is_allowed(unsigned long pagenr)
  751. {
  752. if (region_intersects(PFN_PHYS(pagenr), PAGE_SIZE,
  753. IORESOURCE_SYSTEM_RAM, IORES_DESC_NONE)
  754. != REGION_DISJOINT) {
  755. /*
  756. * For disallowed memory regions in the low 1MB range,
  757. * request that the page be shown as all zeros.
  758. */
  759. if (pagenr < 256)
  760. return 2;
  761. return 0;
  762. }
  763. /*
  764. * This must follow RAM test, since System RAM is considered a
  765. * restricted resource under CONFIG_STRICT_DEVMEM.
  766. */
  767. if (iomem_is_exclusive(pagenr << PAGE_SHIFT)) {
  768. /* Low 1MB bypasses iomem restrictions. */
  769. if (pagenr < 256)
  770. return 1;
  771. return 0;
  772. }
  773. return 1;
  774. }
  775. void free_init_pages(const char *what, unsigned long begin, unsigned long end)
  776. {
  777. unsigned long begin_aligned, end_aligned;
  778. /* Make sure boundaries are page aligned */
  779. begin_aligned = PAGE_ALIGN(begin);
  780. end_aligned = end & PAGE_MASK;
  781. if (WARN_ON(begin_aligned != begin || end_aligned != end)) {
  782. begin = begin_aligned;
  783. end = end_aligned;
  784. }
  785. if (begin >= end)
  786. return;
  787. /*
  788. * If debugging page accesses then do not free this memory but
  789. * mark them not present - any buggy init-section access will
  790. * create a kernel page fault:
  791. */
  792. if (debug_pagealloc_enabled()) {
  793. pr_info("debug: unmapping init [mem %#010lx-%#010lx]\n",
  794. begin, end - 1);
  795. /*
  796. * Inform kmemleak about the hole in the memory since the
  797. * corresponding pages will be unmapped.
  798. */
  799. kmemleak_free_part((void *)begin, end - begin);
  800. set_memory_np(begin, (end - begin) >> PAGE_SHIFT);
  801. } else {
  802. /*
  803. * We just marked the kernel text read only above, now that
  804. * we are going to free part of that, we need to make that
  805. * writeable and non-executable first.
  806. */
  807. set_memory_nx(begin, (end - begin) >> PAGE_SHIFT);
  808. set_memory_rw(begin, (end - begin) >> PAGE_SHIFT);
  809. free_reserved_area((void *)begin, (void *)end,
  810. POISON_FREE_INITMEM, what);
  811. }
  812. }
  813. /*
  814. * begin/end can be in the direct map or the "high kernel mapping"
  815. * used for the kernel image only. free_init_pages() will do the
  816. * right thing for either kind of address.
  817. */
  818. void free_kernel_image_pages(const char *what, void *begin, void *end)
  819. {
  820. unsigned long begin_ul = (unsigned long)begin;
  821. unsigned long end_ul = (unsigned long)end;
  822. unsigned long len_pages = (end_ul - begin_ul) >> PAGE_SHIFT;
  823. free_init_pages(what, begin_ul, end_ul);
  824. /*
  825. * PTI maps some of the kernel into userspace. For performance,
  826. * this includes some kernel areas that do not contain secrets.
  827. * Those areas might be adjacent to the parts of the kernel image
  828. * being freed, which may contain secrets. Remove the "high kernel
  829. * image mapping" for these freed areas, ensuring they are not even
  830. * potentially vulnerable to Meltdown regardless of the specific
  831. * optimizations PTI is currently using.
  832. *
  833. * The "noalias" prevents unmapping the direct map alias which is
  834. * needed to access the freed pages.
  835. *
  836. * This is only valid for 64bit kernels. 32bit has only one mapping
  837. * which can't be treated in this way for obvious reasons.
  838. */
  839. if (IS_ENABLED(CONFIG_X86_64) && cpu_feature_enabled(X86_FEATURE_PTI))
  840. set_memory_np_noalias(begin_ul, len_pages);
  841. }
  842. void __ref free_initmem(void)
  843. {
  844. e820__reallocate_tables();
  845. mem_encrypt_free_decrypted_mem();
  846. free_kernel_image_pages("unused kernel image (initmem)",
  847. &__init_begin, &__init_end);
  848. }
  849. #ifdef CONFIG_BLK_DEV_INITRD
  850. void __init free_initrd_mem(unsigned long start, unsigned long end)
  851. {
  852. /*
  853. * end could be not aligned, and We can not align that,
  854. * decompressor could be confused by aligned initrd_end
  855. * We already reserve the end partial page before in
  856. * - i386_start_kernel()
  857. * - x86_64_start_kernel()
  858. * - relocate_initrd()
  859. * So here We can do PAGE_ALIGN() safely to get partial page to be freed
  860. */
  861. free_init_pages("initrd", start, PAGE_ALIGN(end));
  862. }
  863. #endif
  864. void __init zone_sizes_init(void)
  865. {
  866. unsigned long max_zone_pfns[MAX_NR_ZONES];
  867. memset(max_zone_pfns, 0, sizeof(max_zone_pfns));
  868. #ifdef CONFIG_ZONE_DMA
  869. max_zone_pfns[ZONE_DMA] = min(MAX_DMA_PFN, max_low_pfn);
  870. #endif
  871. #ifdef CONFIG_ZONE_DMA32
  872. max_zone_pfns[ZONE_DMA32] = min(MAX_DMA32_PFN, max_low_pfn);
  873. #endif
  874. max_zone_pfns[ZONE_NORMAL] = max_low_pfn;
  875. #ifdef CONFIG_HIGHMEM
  876. max_zone_pfns[ZONE_HIGHMEM] = max_pfn;
  877. #endif
  878. free_area_init(max_zone_pfns);
  879. }
  880. __visible DEFINE_PER_CPU_ALIGNED(struct tlb_state, cpu_tlbstate) = {
  881. .loaded_mm = &init_mm,
  882. .next_asid = 1,
  883. .cr4 = ~0UL, /* fail hard if we screw up cr4 shadow initialization */
  884. };
  885. #ifdef CONFIG_ADDRESS_MASKING
  886. DEFINE_PER_CPU(u64, tlbstate_untag_mask);
  887. EXPORT_PER_CPU_SYMBOL(tlbstate_untag_mask);
  888. #endif
  889. void update_cache_mode_entry(unsigned entry, enum page_cache_mode cache)
  890. {
  891. /* entry 0 MUST be WB (hardwired to speed up translations) */
  892. BUG_ON(!entry && cache != _PAGE_CACHE_MODE_WB);
  893. __cachemode2pte_tbl[cache] = __cm_idx2pte(entry);
  894. __pte2cachemode_tbl[entry] = cache;
  895. }
  896. #ifdef CONFIG_SWAP
  897. unsigned long arch_max_swapfile_size(void)
  898. {
  899. unsigned long pages;
  900. pages = generic_max_swapfile_size();
  901. if (boot_cpu_has_bug(X86_BUG_L1TF) && l1tf_mitigation != L1TF_MITIGATION_OFF) {
  902. /* Limit the swap file size to MAX_PA/2 for L1TF workaround */
  903. unsigned long long l1tf_limit = l1tf_pfn_limit();
  904. /*
  905. * We encode swap offsets also with 3 bits below those for pfn
  906. * which makes the usable limit higher.
  907. */
  908. #if CONFIG_PGTABLE_LEVELS > 2
  909. l1tf_limit <<= PAGE_SHIFT - SWP_OFFSET_FIRST_BIT;
  910. #endif
  911. pages = min_t(unsigned long long, l1tf_limit, pages);
  912. }
  913. return pages;
  914. }
  915. #endif
  916. #ifdef CONFIG_EXECMEM
  917. static struct execmem_info execmem_info __ro_after_init;
  918. struct execmem_info __init *execmem_arch_setup(void)
  919. {
  920. unsigned long start, offset = 0;
  921. if (kaslr_enabled())
  922. offset = get_random_u32_inclusive(1, 1024) * PAGE_SIZE;
  923. start = MODULES_VADDR + offset;
  924. execmem_info = (struct execmem_info){
  925. .ranges = {
  926. [EXECMEM_DEFAULT] = {
  927. .flags = EXECMEM_KASAN_SHADOW,
  928. .start = start,
  929. .end = MODULES_END,
  930. .pgprot = PAGE_KERNEL,
  931. .alignment = MODULE_ALIGN,
  932. },
  933. },
  934. };
  935. return &execmem_info;
  936. }
  937. #endif /* CONFIG_EXECMEM */