e820.c 37 KB

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  1. /*
  2. * Handle the memory map.
  3. * The functions here do the job until bootmem takes over.
  4. *
  5. * Getting sanitize_e820_map() in sync with i386 version by applying change:
  6. * - Provisions for empty E820 memory regions (reported by certain BIOSes).
  7. * Alex Achenbach <xela@slit.de>, December 2002.
  8. * Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>
  9. *
  10. */
  11. #include <linux/kernel.h>
  12. #include <linux/types.h>
  13. #include <linux/init.h>
  14. #include <linux/bootmem.h>
  15. #include <linux/ioport.h>
  16. #include <linux/string.h>
  17. #include <linux/kexec.h>
  18. #include <linux/module.h>
  19. #include <linux/mm.h>
  20. #include <linux/pfn.h>
  21. #include <linux/suspend.h>
  22. #include <linux/firmware-map.h>
  23. #include <asm/pgtable.h>
  24. #include <asm/page.h>
  25. #include <asm/e820.h>
  26. #include <asm/proto.h>
  27. #include <asm/setup.h>
  28. #include <asm/trampoline.h>
  29. /*
  30. * The e820 map is the map that gets modified e.g. with command line parameters
  31. * and that is also registered with modifications in the kernel resource tree
  32. * with the iomem_resource as parent.
  33. *
  34. * The e820_saved is directly saved after the BIOS-provided memory map is
  35. * copied. It doesn't get modified afterwards. It's registered for the
  36. * /sys/firmware/memmap interface.
  37. *
  38. * That memory map is not modified and is used as base for kexec. The kexec'd
  39. * kernel should get the same memory map as the firmware provides. Then the
  40. * user can e.g. boot the original kernel with mem=1G while still booting the
  41. * next kernel with full memory.
  42. */
  43. struct e820map e820;
  44. struct e820map e820_saved;
  45. /* For PCI or other memory-mapped resources */
  46. unsigned long pci_mem_start = 0xaeedbabe;
  47. #ifdef CONFIG_PCI
  48. EXPORT_SYMBOL(pci_mem_start);
  49. #endif
  50. /*
  51. * This function checks if any part of the range <start,end> is mapped
  52. * with type.
  53. */
  54. int
  55. e820_any_mapped(u64 start, u64 end, unsigned type)
  56. {
  57. int i;
  58. for (i = 0; i < e820.nr_map; i++) {
  59. struct e820entry *ei = &e820.map[i];
  60. if (type && ei->type != type)
  61. continue;
  62. if (ei->addr >= end || ei->addr + ei->size <= start)
  63. continue;
  64. return 1;
  65. }
  66. return 0;
  67. }
  68. EXPORT_SYMBOL_GPL(e820_any_mapped);
  69. /*
  70. * This function checks if the entire range <start,end> is mapped with type.
  71. *
  72. * Note: this function only works correct if the e820 table is sorted and
  73. * not-overlapping, which is the case
  74. */
  75. int __init e820_all_mapped(u64 start, u64 end, unsigned type)
  76. {
  77. int i;
  78. for (i = 0; i < e820.nr_map; i++) {
  79. struct e820entry *ei = &e820.map[i];
  80. if (type && ei->type != type)
  81. continue;
  82. /* is the region (part) in overlap with the current region ?*/
  83. if (ei->addr >= end || ei->addr + ei->size <= start)
  84. continue;
  85. /* if the region is at the beginning of <start,end> we move
  86. * start to the end of the region since it's ok until there
  87. */
  88. if (ei->addr <= start)
  89. start = ei->addr + ei->size;
  90. /*
  91. * if start is now at or beyond end, we're done, full
  92. * coverage
  93. */
  94. if (start >= end)
  95. return 1;
  96. }
  97. return 0;
  98. }
  99. /*
  100. * Add a memory region to the kernel e820 map.
  101. */
  102. static void __init __e820_add_region(struct e820map *e820x, u64 start, u64 size,
  103. int type)
  104. {
  105. int x = e820x->nr_map;
  106. if (x >= ARRAY_SIZE(e820x->map)) {
  107. printk(KERN_ERR "Ooops! Too many entries in the memory map!\n");
  108. return;
  109. }
  110. e820x->map[x].addr = start;
  111. e820x->map[x].size = size;
  112. e820x->map[x].type = type;
  113. e820x->nr_map++;
  114. }
  115. void __init e820_add_region(u64 start, u64 size, int type)
  116. {
  117. __e820_add_region(&e820, start, size, type);
  118. }
  119. static void __init e820_print_type(u32 type)
  120. {
  121. switch (type) {
  122. case E820_RAM:
  123. case E820_RESERVED_KERN:
  124. printk(KERN_CONT "(usable)");
  125. break;
  126. case E820_RESERVED:
  127. printk(KERN_CONT "(reserved)");
  128. break;
  129. case E820_ACPI:
  130. printk(KERN_CONT "(ACPI data)");
  131. break;
  132. case E820_NVS:
  133. printk(KERN_CONT "(ACPI NVS)");
  134. break;
  135. case E820_UNUSABLE:
  136. printk(KERN_CONT "(unusable)");
  137. break;
  138. default:
  139. printk(KERN_CONT "type %u", type);
  140. break;
  141. }
  142. }
  143. void __init e820_print_map(char *who)
  144. {
  145. int i;
  146. for (i = 0; i < e820.nr_map; i++) {
  147. printk(KERN_INFO " %s: %016Lx - %016Lx ", who,
  148. (unsigned long long) e820.map[i].addr,
  149. (unsigned long long)
  150. (e820.map[i].addr + e820.map[i].size));
  151. e820_print_type(e820.map[i].type);
  152. printk(KERN_CONT "\n");
  153. }
  154. }
  155. /*
  156. * Sanitize the BIOS e820 map.
  157. *
  158. * Some e820 responses include overlapping entries. The following
  159. * replaces the original e820 map with a new one, removing overlaps,
  160. * and resolving conflicting memory types in favor of highest
  161. * numbered type.
  162. *
  163. * The input parameter biosmap points to an array of 'struct
  164. * e820entry' which on entry has elements in the range [0, *pnr_map)
  165. * valid, and which has space for up to max_nr_map entries.
  166. * On return, the resulting sanitized e820 map entries will be in
  167. * overwritten in the same location, starting at biosmap.
  168. *
  169. * The integer pointed to by pnr_map must be valid on entry (the
  170. * current number of valid entries located at biosmap) and will
  171. * be updated on return, with the new number of valid entries
  172. * (something no more than max_nr_map.)
  173. *
  174. * The return value from sanitize_e820_map() is zero if it
  175. * successfully 'sanitized' the map entries passed in, and is -1
  176. * if it did nothing, which can happen if either of (1) it was
  177. * only passed one map entry, or (2) any of the input map entries
  178. * were invalid (start + size < start, meaning that the size was
  179. * so big the described memory range wrapped around through zero.)
  180. *
  181. * Visually we're performing the following
  182. * (1,2,3,4 = memory types)...
  183. *
  184. * Sample memory map (w/overlaps):
  185. * ____22__________________
  186. * ______________________4_
  187. * ____1111________________
  188. * _44_____________________
  189. * 11111111________________
  190. * ____________________33__
  191. * ___________44___________
  192. * __________33333_________
  193. * ______________22________
  194. * ___________________2222_
  195. * _________111111111______
  196. * _____________________11_
  197. * _________________4______
  198. *
  199. * Sanitized equivalent (no overlap):
  200. * 1_______________________
  201. * _44_____________________
  202. * ___1____________________
  203. * ____22__________________
  204. * ______11________________
  205. * _________1______________
  206. * __________3_____________
  207. * ___________44___________
  208. * _____________33_________
  209. * _______________2________
  210. * ________________1_______
  211. * _________________4______
  212. * ___________________2____
  213. * ____________________33__
  214. * ______________________4_
  215. */
  216. int __init sanitize_e820_map(struct e820entry *biosmap, int max_nr_map,
  217. u32 *pnr_map)
  218. {
  219. struct change_member {
  220. struct e820entry *pbios; /* pointer to original bios entry */
  221. unsigned long long addr; /* address for this change point */
  222. };
  223. static struct change_member change_point_list[2*E820_X_MAX] __initdata;
  224. static struct change_member *change_point[2*E820_X_MAX] __initdata;
  225. static struct e820entry *overlap_list[E820_X_MAX] __initdata;
  226. static struct e820entry new_bios[E820_X_MAX] __initdata;
  227. struct change_member *change_tmp;
  228. unsigned long current_type, last_type;
  229. unsigned long long last_addr;
  230. int chgidx, still_changing;
  231. int overlap_entries;
  232. int new_bios_entry;
  233. int old_nr, new_nr, chg_nr;
  234. int i;
  235. /* if there's only one memory region, don't bother */
  236. if (*pnr_map < 2)
  237. return -1;
  238. old_nr = *pnr_map;
  239. BUG_ON(old_nr > max_nr_map);
  240. /* bail out if we find any unreasonable addresses in bios map */
  241. for (i = 0; i < old_nr; i++)
  242. if (biosmap[i].addr + biosmap[i].size < biosmap[i].addr)
  243. return -1;
  244. /* create pointers for initial change-point information (for sorting) */
  245. for (i = 0; i < 2 * old_nr; i++)
  246. change_point[i] = &change_point_list[i];
  247. /* record all known change-points (starting and ending addresses),
  248. omitting those that are for empty memory regions */
  249. chgidx = 0;
  250. for (i = 0; i < old_nr; i++) {
  251. if (biosmap[i].size != 0) {
  252. change_point[chgidx]->addr = biosmap[i].addr;
  253. change_point[chgidx++]->pbios = &biosmap[i];
  254. change_point[chgidx]->addr = biosmap[i].addr +
  255. biosmap[i].size;
  256. change_point[chgidx++]->pbios = &biosmap[i];
  257. }
  258. }
  259. chg_nr = chgidx;
  260. /* sort change-point list by memory addresses (low -> high) */
  261. still_changing = 1;
  262. while (still_changing) {
  263. still_changing = 0;
  264. for (i = 1; i < chg_nr; i++) {
  265. unsigned long long curaddr, lastaddr;
  266. unsigned long long curpbaddr, lastpbaddr;
  267. curaddr = change_point[i]->addr;
  268. lastaddr = change_point[i - 1]->addr;
  269. curpbaddr = change_point[i]->pbios->addr;
  270. lastpbaddr = change_point[i - 1]->pbios->addr;
  271. /*
  272. * swap entries, when:
  273. *
  274. * curaddr > lastaddr or
  275. * curaddr == lastaddr and curaddr == curpbaddr and
  276. * lastaddr != lastpbaddr
  277. */
  278. if (curaddr < lastaddr ||
  279. (curaddr == lastaddr && curaddr == curpbaddr &&
  280. lastaddr != lastpbaddr)) {
  281. change_tmp = change_point[i];
  282. change_point[i] = change_point[i-1];
  283. change_point[i-1] = change_tmp;
  284. still_changing = 1;
  285. }
  286. }
  287. }
  288. /* create a new bios memory map, removing overlaps */
  289. overlap_entries = 0; /* number of entries in the overlap table */
  290. new_bios_entry = 0; /* index for creating new bios map entries */
  291. last_type = 0; /* start with undefined memory type */
  292. last_addr = 0; /* start with 0 as last starting address */
  293. /* loop through change-points, determining affect on the new bios map */
  294. for (chgidx = 0; chgidx < chg_nr; chgidx++) {
  295. /* keep track of all overlapping bios entries */
  296. if (change_point[chgidx]->addr ==
  297. change_point[chgidx]->pbios->addr) {
  298. /*
  299. * add map entry to overlap list (> 1 entry
  300. * implies an overlap)
  301. */
  302. overlap_list[overlap_entries++] =
  303. change_point[chgidx]->pbios;
  304. } else {
  305. /*
  306. * remove entry from list (order independent,
  307. * so swap with last)
  308. */
  309. for (i = 0; i < overlap_entries; i++) {
  310. if (overlap_list[i] ==
  311. change_point[chgidx]->pbios)
  312. overlap_list[i] =
  313. overlap_list[overlap_entries-1];
  314. }
  315. overlap_entries--;
  316. }
  317. /*
  318. * if there are overlapping entries, decide which
  319. * "type" to use (larger value takes precedence --
  320. * 1=usable, 2,3,4,4+=unusable)
  321. */
  322. current_type = 0;
  323. for (i = 0; i < overlap_entries; i++)
  324. if (overlap_list[i]->type > current_type)
  325. current_type = overlap_list[i]->type;
  326. /*
  327. * continue building up new bios map based on this
  328. * information
  329. */
  330. if (current_type != last_type) {
  331. if (last_type != 0) {
  332. new_bios[new_bios_entry].size =
  333. change_point[chgidx]->addr - last_addr;
  334. /*
  335. * move forward only if the new size
  336. * was non-zero
  337. */
  338. if (new_bios[new_bios_entry].size != 0)
  339. /*
  340. * no more space left for new
  341. * bios entries ?
  342. */
  343. if (++new_bios_entry >= max_nr_map)
  344. break;
  345. }
  346. if (current_type != 0) {
  347. new_bios[new_bios_entry].addr =
  348. change_point[chgidx]->addr;
  349. new_bios[new_bios_entry].type = current_type;
  350. last_addr = change_point[chgidx]->addr;
  351. }
  352. last_type = current_type;
  353. }
  354. }
  355. /* retain count for new bios entries */
  356. new_nr = new_bios_entry;
  357. /* copy new bios mapping into original location */
  358. memcpy(biosmap, new_bios, new_nr * sizeof(struct e820entry));
  359. *pnr_map = new_nr;
  360. return 0;
  361. }
  362. static int __init __append_e820_map(struct e820entry *biosmap, int nr_map)
  363. {
  364. while (nr_map) {
  365. u64 start = biosmap->addr;
  366. u64 size = biosmap->size;
  367. u64 end = start + size;
  368. u32 type = biosmap->type;
  369. /* Overflow in 64 bits? Ignore the memory map. */
  370. if (start > end)
  371. return -1;
  372. e820_add_region(start, size, type);
  373. biosmap++;
  374. nr_map--;
  375. }
  376. return 0;
  377. }
  378. /*
  379. * Copy the BIOS e820 map into a safe place.
  380. *
  381. * Sanity-check it while we're at it..
  382. *
  383. * If we're lucky and live on a modern system, the setup code
  384. * will have given us a memory map that we can use to properly
  385. * set up memory. If we aren't, we'll fake a memory map.
  386. */
  387. static int __init append_e820_map(struct e820entry *biosmap, int nr_map)
  388. {
  389. /* Only one memory region (or negative)? Ignore it */
  390. if (nr_map < 2)
  391. return -1;
  392. return __append_e820_map(biosmap, nr_map);
  393. }
  394. static u64 __init __e820_update_range(struct e820map *e820x, u64 start,
  395. u64 size, unsigned old_type,
  396. unsigned new_type)
  397. {
  398. u64 end;
  399. unsigned int i;
  400. u64 real_updated_size = 0;
  401. BUG_ON(old_type == new_type);
  402. if (size > (ULLONG_MAX - start))
  403. size = ULLONG_MAX - start;
  404. end = start + size;
  405. printk(KERN_DEBUG "e820 update range: %016Lx - %016Lx ",
  406. (unsigned long long) start,
  407. (unsigned long long) end);
  408. e820_print_type(old_type);
  409. printk(KERN_CONT " ==> ");
  410. e820_print_type(new_type);
  411. printk(KERN_CONT "\n");
  412. for (i = 0; i < e820x->nr_map; i++) {
  413. struct e820entry *ei = &e820x->map[i];
  414. u64 final_start, final_end;
  415. u64 ei_end;
  416. if (ei->type != old_type)
  417. continue;
  418. ei_end = ei->addr + ei->size;
  419. /* totally covered by new range? */
  420. if (ei->addr >= start && ei_end <= end) {
  421. ei->type = new_type;
  422. real_updated_size += ei->size;
  423. continue;
  424. }
  425. /* new range is totally covered? */
  426. if (ei->addr < start && ei_end > end) {
  427. __e820_add_region(e820x, start, size, new_type);
  428. __e820_add_region(e820x, end, ei_end - end, ei->type);
  429. ei->size = start - ei->addr;
  430. real_updated_size += size;
  431. continue;
  432. }
  433. /* partially covered */
  434. final_start = max(start, ei->addr);
  435. final_end = min(end, ei_end);
  436. if (final_start >= final_end)
  437. continue;
  438. __e820_add_region(e820x, final_start, final_end - final_start,
  439. new_type);
  440. real_updated_size += final_end - final_start;
  441. /*
  442. * left range could be head or tail, so need to update
  443. * size at first.
  444. */
  445. ei->size -= final_end - final_start;
  446. if (ei->addr < final_start)
  447. continue;
  448. ei->addr = final_end;
  449. }
  450. return real_updated_size;
  451. }
  452. u64 __init e820_update_range(u64 start, u64 size, unsigned old_type,
  453. unsigned new_type)
  454. {
  455. return __e820_update_range(&e820, start, size, old_type, new_type);
  456. }
  457. static u64 __init e820_update_range_saved(u64 start, u64 size,
  458. unsigned old_type, unsigned new_type)
  459. {
  460. return __e820_update_range(&e820_saved, start, size, old_type,
  461. new_type);
  462. }
  463. /* make e820 not cover the range */
  464. u64 __init e820_remove_range(u64 start, u64 size, unsigned old_type,
  465. int checktype)
  466. {
  467. int i;
  468. u64 end;
  469. u64 real_removed_size = 0;
  470. if (size > (ULLONG_MAX - start))
  471. size = ULLONG_MAX - start;
  472. end = start + size;
  473. printk(KERN_DEBUG "e820 remove range: %016Lx - %016Lx ",
  474. (unsigned long long) start,
  475. (unsigned long long) end);
  476. e820_print_type(old_type);
  477. printk(KERN_CONT "\n");
  478. for (i = 0; i < e820.nr_map; i++) {
  479. struct e820entry *ei = &e820.map[i];
  480. u64 final_start, final_end;
  481. if (checktype && ei->type != old_type)
  482. continue;
  483. /* totally covered? */
  484. if (ei->addr >= start &&
  485. (ei->addr + ei->size) <= (start + size)) {
  486. real_removed_size += ei->size;
  487. memset(ei, 0, sizeof(struct e820entry));
  488. continue;
  489. }
  490. /* partially covered */
  491. final_start = max(start, ei->addr);
  492. final_end = min(start + size, ei->addr + ei->size);
  493. if (final_start >= final_end)
  494. continue;
  495. real_removed_size += final_end - final_start;
  496. ei->size -= final_end - final_start;
  497. if (ei->addr < final_start)
  498. continue;
  499. ei->addr = final_end;
  500. }
  501. return real_removed_size;
  502. }
  503. void __init update_e820(void)
  504. {
  505. u32 nr_map;
  506. nr_map = e820.nr_map;
  507. if (sanitize_e820_map(e820.map, ARRAY_SIZE(e820.map), &nr_map))
  508. return;
  509. e820.nr_map = nr_map;
  510. printk(KERN_INFO "modified physical RAM map:\n");
  511. e820_print_map("modified");
  512. }
  513. static void __init update_e820_saved(void)
  514. {
  515. u32 nr_map;
  516. nr_map = e820_saved.nr_map;
  517. if (sanitize_e820_map(e820_saved.map, ARRAY_SIZE(e820_saved.map), &nr_map))
  518. return;
  519. e820_saved.nr_map = nr_map;
  520. }
  521. #define MAX_GAP_END 0x100000000ull
  522. /*
  523. * Search for a gap in the e820 memory space from start_addr to end_addr.
  524. */
  525. __init int e820_search_gap(unsigned long *gapstart, unsigned long *gapsize,
  526. unsigned long start_addr, unsigned long long end_addr)
  527. {
  528. unsigned long long last;
  529. int i = e820.nr_map;
  530. int found = 0;
  531. last = (end_addr && end_addr < MAX_GAP_END) ? end_addr : MAX_GAP_END;
  532. while (--i >= 0) {
  533. unsigned long long start = e820.map[i].addr;
  534. unsigned long long end = start + e820.map[i].size;
  535. if (end < start_addr)
  536. continue;
  537. /*
  538. * Since "last" is at most 4GB, we know we'll
  539. * fit in 32 bits if this condition is true
  540. */
  541. if (last > end) {
  542. unsigned long gap = last - end;
  543. if (gap >= *gapsize) {
  544. *gapsize = gap;
  545. *gapstart = end;
  546. found = 1;
  547. }
  548. }
  549. if (start < last)
  550. last = start;
  551. }
  552. return found;
  553. }
  554. /*
  555. * Search for the biggest gap in the low 32 bits of the e820
  556. * memory space. We pass this space to PCI to assign MMIO resources
  557. * for hotplug or unconfigured devices in.
  558. * Hopefully the BIOS let enough space left.
  559. */
  560. __init void e820_setup_gap(void)
  561. {
  562. unsigned long gapstart, gapsize;
  563. int found;
  564. gapstart = 0x10000000;
  565. gapsize = 0x400000;
  566. found = e820_search_gap(&gapstart, &gapsize, 0, MAX_GAP_END);
  567. #ifdef CONFIG_X86_64
  568. if (!found) {
  569. gapstart = (max_pfn << PAGE_SHIFT) + 1024*1024;
  570. printk(KERN_ERR
  571. "PCI: Warning: Cannot find a gap in the 32bit address range\n"
  572. "PCI: Unassigned devices with 32bit resource registers may break!\n");
  573. }
  574. #endif
  575. /*
  576. * e820_reserve_resources_late protect stolen RAM already
  577. */
  578. pci_mem_start = gapstart;
  579. printk(KERN_INFO
  580. "Allocating PCI resources starting at %lx (gap: %lx:%lx)\n",
  581. pci_mem_start, gapstart, gapsize);
  582. }
  583. /**
  584. * Because of the size limitation of struct boot_params, only first
  585. * 128 E820 memory entries are passed to kernel via
  586. * boot_params.e820_map, others are passed via SETUP_E820_EXT node of
  587. * linked list of struct setup_data, which is parsed here.
  588. */
  589. void __init parse_e820_ext(struct setup_data *sdata, unsigned long pa_data)
  590. {
  591. u32 map_len;
  592. int entries;
  593. struct e820entry *extmap;
  594. entries = sdata->len / sizeof(struct e820entry);
  595. map_len = sdata->len + sizeof(struct setup_data);
  596. if (map_len > PAGE_SIZE)
  597. sdata = early_ioremap(pa_data, map_len);
  598. extmap = (struct e820entry *)(sdata->data);
  599. __append_e820_map(extmap, entries);
  600. sanitize_e820_map(e820.map, ARRAY_SIZE(e820.map), &e820.nr_map);
  601. if (map_len > PAGE_SIZE)
  602. early_iounmap(sdata, map_len);
  603. printk(KERN_INFO "extended physical RAM map:\n");
  604. e820_print_map("extended");
  605. }
  606. #if defined(CONFIG_X86_64) || \
  607. (defined(CONFIG_X86_32) && defined(CONFIG_HIBERNATION))
  608. /**
  609. * Find the ranges of physical addresses that do not correspond to
  610. * e820 RAM areas and mark the corresponding pages as nosave for
  611. * hibernation (32 bit) or software suspend and suspend to RAM (64 bit).
  612. *
  613. * This function requires the e820 map to be sorted and without any
  614. * overlapping entries and assumes the first e820 area to be RAM.
  615. */
  616. void __init e820_mark_nosave_regions(unsigned long limit_pfn)
  617. {
  618. int i;
  619. unsigned long pfn;
  620. pfn = PFN_DOWN(e820.map[0].addr + e820.map[0].size);
  621. for (i = 1; i < e820.nr_map; i++) {
  622. struct e820entry *ei = &e820.map[i];
  623. if (pfn < PFN_UP(ei->addr))
  624. register_nosave_region(pfn, PFN_UP(ei->addr));
  625. pfn = PFN_DOWN(ei->addr + ei->size);
  626. if (ei->type != E820_RAM && ei->type != E820_RESERVED_KERN)
  627. register_nosave_region(PFN_UP(ei->addr), pfn);
  628. if (pfn >= limit_pfn)
  629. break;
  630. }
  631. }
  632. #endif
  633. #ifdef CONFIG_HIBERNATION
  634. /**
  635. * Mark ACPI NVS memory region, so that we can save/restore it during
  636. * hibernation and the subsequent resume.
  637. */
  638. static int __init e820_mark_nvs_memory(void)
  639. {
  640. int i;
  641. for (i = 0; i < e820.nr_map; i++) {
  642. struct e820entry *ei = &e820.map[i];
  643. if (ei->type == E820_NVS)
  644. hibernate_nvs_register(ei->addr, ei->size);
  645. }
  646. return 0;
  647. }
  648. core_initcall(e820_mark_nvs_memory);
  649. #endif
  650. /*
  651. * Early reserved memory areas.
  652. */
  653. #define MAX_EARLY_RES 32
  654. struct early_res {
  655. u64 start, end;
  656. char name[16];
  657. char overlap_ok;
  658. };
  659. static struct early_res early_res[MAX_EARLY_RES] __initdata = {
  660. { 0, PAGE_SIZE, "BIOS data page", 1 }, /* BIOS data page */
  661. #if defined(CONFIG_X86_32) && defined(CONFIG_X86_TRAMPOLINE)
  662. /*
  663. * But first pinch a few for the stack/trampoline stuff
  664. * FIXME: Don't need the extra page at 4K, but need to fix
  665. * trampoline before removing it. (see the GDT stuff)
  666. */
  667. { PAGE_SIZE, PAGE_SIZE + PAGE_SIZE, "EX TRAMPOLINE", 1 },
  668. #endif
  669. {}
  670. };
  671. static int __init find_overlapped_early(u64 start, u64 end)
  672. {
  673. int i;
  674. struct early_res *r;
  675. for (i = 0; i < MAX_EARLY_RES && early_res[i].end; i++) {
  676. r = &early_res[i];
  677. if (end > r->start && start < r->end)
  678. break;
  679. }
  680. return i;
  681. }
  682. /*
  683. * Drop the i-th range from the early reservation map,
  684. * by copying any higher ranges down one over it, and
  685. * clearing what had been the last slot.
  686. */
  687. static void __init drop_range(int i)
  688. {
  689. int j;
  690. for (j = i + 1; j < MAX_EARLY_RES && early_res[j].end; j++)
  691. ;
  692. memmove(&early_res[i], &early_res[i + 1],
  693. (j - 1 - i) * sizeof(struct early_res));
  694. early_res[j - 1].end = 0;
  695. }
  696. /*
  697. * Split any existing ranges that:
  698. * 1) are marked 'overlap_ok', and
  699. * 2) overlap with the stated range [start, end)
  700. * into whatever portion (if any) of the existing range is entirely
  701. * below or entirely above the stated range. Drop the portion
  702. * of the existing range that overlaps with the stated range,
  703. * which will allow the caller of this routine to then add that
  704. * stated range without conflicting with any existing range.
  705. */
  706. static void __init drop_overlaps_that_are_ok(u64 start, u64 end)
  707. {
  708. int i;
  709. struct early_res *r;
  710. u64 lower_start, lower_end;
  711. u64 upper_start, upper_end;
  712. char name[16];
  713. for (i = 0; i < MAX_EARLY_RES && early_res[i].end; i++) {
  714. r = &early_res[i];
  715. /* Continue past non-overlapping ranges */
  716. if (end <= r->start || start >= r->end)
  717. continue;
  718. /*
  719. * Leave non-ok overlaps as is; let caller
  720. * panic "Overlapping early reservations"
  721. * when it hits this overlap.
  722. */
  723. if (!r->overlap_ok)
  724. return;
  725. /*
  726. * We have an ok overlap. We will drop it from the early
  727. * reservation map, and add back in any non-overlapping
  728. * portions (lower or upper) as separate, overlap_ok,
  729. * non-overlapping ranges.
  730. */
  731. /* 1. Note any non-overlapping (lower or upper) ranges. */
  732. strncpy(name, r->name, sizeof(name) - 1);
  733. lower_start = lower_end = 0;
  734. upper_start = upper_end = 0;
  735. if (r->start < start) {
  736. lower_start = r->start;
  737. lower_end = start;
  738. }
  739. if (r->end > end) {
  740. upper_start = end;
  741. upper_end = r->end;
  742. }
  743. /* 2. Drop the original ok overlapping range */
  744. drop_range(i);
  745. i--; /* resume for-loop on copied down entry */
  746. /* 3. Add back in any non-overlapping ranges. */
  747. if (lower_end)
  748. reserve_early_overlap_ok(lower_start, lower_end, name);
  749. if (upper_end)
  750. reserve_early_overlap_ok(upper_start, upper_end, name);
  751. }
  752. }
  753. static void __init __reserve_early(u64 start, u64 end, char *name,
  754. int overlap_ok)
  755. {
  756. int i;
  757. struct early_res *r;
  758. i = find_overlapped_early(start, end);
  759. if (i >= MAX_EARLY_RES)
  760. panic("Too many early reservations");
  761. r = &early_res[i];
  762. if (r->end)
  763. panic("Overlapping early reservations "
  764. "%llx-%llx %s to %llx-%llx %s\n",
  765. start, end - 1, name?name:"", r->start,
  766. r->end - 1, r->name);
  767. r->start = start;
  768. r->end = end;
  769. r->overlap_ok = overlap_ok;
  770. if (name)
  771. strncpy(r->name, name, sizeof(r->name) - 1);
  772. }
  773. /*
  774. * A few early reservtations come here.
  775. *
  776. * The 'overlap_ok' in the name of this routine does -not- mean it
  777. * is ok for these reservations to overlap an earlier reservation.
  778. * Rather it means that it is ok for subsequent reservations to
  779. * overlap this one.
  780. *
  781. * Use this entry point to reserve early ranges when you are doing
  782. * so out of "Paranoia", reserving perhaps more memory than you need,
  783. * just in case, and don't mind a subsequent overlapping reservation
  784. * that is known to be needed.
  785. *
  786. * The drop_overlaps_that_are_ok() call here isn't really needed.
  787. * It would be needed if we had two colliding 'overlap_ok'
  788. * reservations, so that the second such would not panic on the
  789. * overlap with the first. We don't have any such as of this
  790. * writing, but might as well tolerate such if it happens in
  791. * the future.
  792. */
  793. void __init reserve_early_overlap_ok(u64 start, u64 end, char *name)
  794. {
  795. drop_overlaps_that_are_ok(start, end);
  796. __reserve_early(start, end, name, 1);
  797. }
  798. /*
  799. * Most early reservations come here.
  800. *
  801. * We first have drop_overlaps_that_are_ok() drop any pre-existing
  802. * 'overlap_ok' ranges, so that we can then reserve this memory
  803. * range without risk of panic'ing on an overlapping overlap_ok
  804. * early reservation.
  805. */
  806. void __init reserve_early(u64 start, u64 end, char *name)
  807. {
  808. if (start >= end)
  809. return;
  810. drop_overlaps_that_are_ok(start, end);
  811. __reserve_early(start, end, name, 0);
  812. }
  813. void __init free_early(u64 start, u64 end)
  814. {
  815. struct early_res *r;
  816. int i;
  817. i = find_overlapped_early(start, end);
  818. r = &early_res[i];
  819. if (i >= MAX_EARLY_RES || r->end != end || r->start != start)
  820. panic("free_early on not reserved area: %llx-%llx!",
  821. start, end - 1);
  822. drop_range(i);
  823. }
  824. void __init early_res_to_bootmem(u64 start, u64 end)
  825. {
  826. int i, count;
  827. u64 final_start, final_end;
  828. count = 0;
  829. for (i = 0; i < MAX_EARLY_RES && early_res[i].end; i++)
  830. count++;
  831. printk(KERN_INFO "(%d early reservations) ==> bootmem [%010llx - %010llx]\n",
  832. count, start, end);
  833. for (i = 0; i < count; i++) {
  834. struct early_res *r = &early_res[i];
  835. printk(KERN_INFO " #%d [%010llx - %010llx] %16s", i,
  836. r->start, r->end, r->name);
  837. final_start = max(start, r->start);
  838. final_end = min(end, r->end);
  839. if (final_start >= final_end) {
  840. printk(KERN_CONT "\n");
  841. continue;
  842. }
  843. printk(KERN_CONT " ==> [%010llx - %010llx]\n",
  844. final_start, final_end);
  845. reserve_bootmem_generic(final_start, final_end - final_start,
  846. BOOTMEM_DEFAULT);
  847. }
  848. }
  849. /* Check for already reserved areas */
  850. static inline int __init bad_addr(u64 *addrp, u64 size, u64 align)
  851. {
  852. int i;
  853. u64 addr = *addrp;
  854. int changed = 0;
  855. struct early_res *r;
  856. again:
  857. i = find_overlapped_early(addr, addr + size);
  858. r = &early_res[i];
  859. if (i < MAX_EARLY_RES && r->end) {
  860. *addrp = addr = round_up(r->end, align);
  861. changed = 1;
  862. goto again;
  863. }
  864. return changed;
  865. }
  866. /* Check for already reserved areas */
  867. static inline int __init bad_addr_size(u64 *addrp, u64 *sizep, u64 align)
  868. {
  869. int i;
  870. u64 addr = *addrp, last;
  871. u64 size = *sizep;
  872. int changed = 0;
  873. again:
  874. last = addr + size;
  875. for (i = 0; i < MAX_EARLY_RES && early_res[i].end; i++) {
  876. struct early_res *r = &early_res[i];
  877. if (last > r->start && addr < r->start) {
  878. size = r->start - addr;
  879. changed = 1;
  880. goto again;
  881. }
  882. if (last > r->end && addr < r->end) {
  883. addr = round_up(r->end, align);
  884. size = last - addr;
  885. changed = 1;
  886. goto again;
  887. }
  888. if (last <= r->end && addr >= r->start) {
  889. (*sizep)++;
  890. return 0;
  891. }
  892. }
  893. if (changed) {
  894. *addrp = addr;
  895. *sizep = size;
  896. }
  897. return changed;
  898. }
  899. /*
  900. * Find a free area with specified alignment in a specific range.
  901. */
  902. u64 __init find_e820_area(u64 start, u64 end, u64 size, u64 align)
  903. {
  904. int i;
  905. for (i = 0; i < e820.nr_map; i++) {
  906. struct e820entry *ei = &e820.map[i];
  907. u64 addr, last;
  908. u64 ei_last;
  909. if (ei->type != E820_RAM)
  910. continue;
  911. addr = round_up(ei->addr, align);
  912. ei_last = ei->addr + ei->size;
  913. if (addr < start)
  914. addr = round_up(start, align);
  915. if (addr >= ei_last)
  916. continue;
  917. while (bad_addr(&addr, size, align) && addr+size <= ei_last)
  918. ;
  919. last = addr + size;
  920. if (last > ei_last)
  921. continue;
  922. if (last > end)
  923. continue;
  924. return addr;
  925. }
  926. return -1ULL;
  927. }
  928. /*
  929. * Find next free range after *start
  930. */
  931. u64 __init find_e820_area_size(u64 start, u64 *sizep, u64 align)
  932. {
  933. int i;
  934. for (i = 0; i < e820.nr_map; i++) {
  935. struct e820entry *ei = &e820.map[i];
  936. u64 addr, last;
  937. u64 ei_last;
  938. if (ei->type != E820_RAM)
  939. continue;
  940. addr = round_up(ei->addr, align);
  941. ei_last = ei->addr + ei->size;
  942. if (addr < start)
  943. addr = round_up(start, align);
  944. if (addr >= ei_last)
  945. continue;
  946. *sizep = ei_last - addr;
  947. while (bad_addr_size(&addr, sizep, align) &&
  948. addr + *sizep <= ei_last)
  949. ;
  950. last = addr + *sizep;
  951. if (last > ei_last)
  952. continue;
  953. return addr;
  954. }
  955. return -1ULL;
  956. }
  957. /*
  958. * pre allocated 4k and reserved it in e820
  959. */
  960. u64 __init early_reserve_e820(u64 startt, u64 sizet, u64 align)
  961. {
  962. u64 size = 0;
  963. u64 addr;
  964. u64 start;
  965. for (start = startt; ; start += size) {
  966. start = find_e820_area_size(start, &size, align);
  967. if (!(start + 1))
  968. return 0;
  969. if (size >= sizet)
  970. break;
  971. }
  972. #ifdef CONFIG_X86_32
  973. if (start >= MAXMEM)
  974. return 0;
  975. if (start + size > MAXMEM)
  976. size = MAXMEM - start;
  977. #endif
  978. addr = round_down(start + size - sizet, align);
  979. if (addr < start)
  980. return 0;
  981. e820_update_range(addr, sizet, E820_RAM, E820_RESERVED);
  982. e820_update_range_saved(addr, sizet, E820_RAM, E820_RESERVED);
  983. printk(KERN_INFO "update e820 for early_reserve_e820\n");
  984. update_e820();
  985. update_e820_saved();
  986. return addr;
  987. }
  988. #ifdef CONFIG_X86_32
  989. # ifdef CONFIG_X86_PAE
  990. # define MAX_ARCH_PFN (1ULL<<(36-PAGE_SHIFT))
  991. # else
  992. # define MAX_ARCH_PFN (1ULL<<(32-PAGE_SHIFT))
  993. # endif
  994. #else /* CONFIG_X86_32 */
  995. # define MAX_ARCH_PFN MAXMEM>>PAGE_SHIFT
  996. #endif
  997. /*
  998. * Find the highest page frame number we have available
  999. */
  1000. static unsigned long __init e820_end_pfn(unsigned long limit_pfn, unsigned type)
  1001. {
  1002. int i;
  1003. unsigned long last_pfn = 0;
  1004. unsigned long max_arch_pfn = MAX_ARCH_PFN;
  1005. for (i = 0; i < e820.nr_map; i++) {
  1006. struct e820entry *ei = &e820.map[i];
  1007. unsigned long start_pfn;
  1008. unsigned long end_pfn;
  1009. if (ei->type != type)
  1010. continue;
  1011. start_pfn = ei->addr >> PAGE_SHIFT;
  1012. end_pfn = (ei->addr + ei->size) >> PAGE_SHIFT;
  1013. if (start_pfn >= limit_pfn)
  1014. continue;
  1015. if (end_pfn > limit_pfn) {
  1016. last_pfn = limit_pfn;
  1017. break;
  1018. }
  1019. if (end_pfn > last_pfn)
  1020. last_pfn = end_pfn;
  1021. }
  1022. if (last_pfn > max_arch_pfn)
  1023. last_pfn = max_arch_pfn;
  1024. printk(KERN_INFO "last_pfn = %#lx max_arch_pfn = %#lx\n",
  1025. last_pfn, max_arch_pfn);
  1026. return last_pfn;
  1027. }
  1028. unsigned long __init e820_end_of_ram_pfn(void)
  1029. {
  1030. return e820_end_pfn(MAX_ARCH_PFN, E820_RAM);
  1031. }
  1032. unsigned long __init e820_end_of_low_ram_pfn(void)
  1033. {
  1034. return e820_end_pfn(1UL<<(32 - PAGE_SHIFT), E820_RAM);
  1035. }
  1036. /*
  1037. * Finds an active region in the address range from start_pfn to last_pfn and
  1038. * returns its range in ei_startpfn and ei_endpfn for the e820 entry.
  1039. */
  1040. int __init e820_find_active_region(const struct e820entry *ei,
  1041. unsigned long start_pfn,
  1042. unsigned long last_pfn,
  1043. unsigned long *ei_startpfn,
  1044. unsigned long *ei_endpfn)
  1045. {
  1046. u64 align = PAGE_SIZE;
  1047. *ei_startpfn = round_up(ei->addr, align) >> PAGE_SHIFT;
  1048. *ei_endpfn = round_down(ei->addr + ei->size, align) >> PAGE_SHIFT;
  1049. /* Skip map entries smaller than a page */
  1050. if (*ei_startpfn >= *ei_endpfn)
  1051. return 0;
  1052. /* Skip if map is outside the node */
  1053. if (ei->type != E820_RAM || *ei_endpfn <= start_pfn ||
  1054. *ei_startpfn >= last_pfn)
  1055. return 0;
  1056. /* Check for overlaps */
  1057. if (*ei_startpfn < start_pfn)
  1058. *ei_startpfn = start_pfn;
  1059. if (*ei_endpfn > last_pfn)
  1060. *ei_endpfn = last_pfn;
  1061. return 1;
  1062. }
  1063. /* Walk the e820 map and register active regions within a node */
  1064. void __init e820_register_active_regions(int nid, unsigned long start_pfn,
  1065. unsigned long last_pfn)
  1066. {
  1067. unsigned long ei_startpfn;
  1068. unsigned long ei_endpfn;
  1069. int i;
  1070. for (i = 0; i < e820.nr_map; i++)
  1071. if (e820_find_active_region(&e820.map[i],
  1072. start_pfn, last_pfn,
  1073. &ei_startpfn, &ei_endpfn))
  1074. add_active_range(nid, ei_startpfn, ei_endpfn);
  1075. }
  1076. /*
  1077. * Find the hole size (in bytes) in the memory range.
  1078. * @start: starting address of the memory range to scan
  1079. * @end: ending address of the memory range to scan
  1080. */
  1081. u64 __init e820_hole_size(u64 start, u64 end)
  1082. {
  1083. unsigned long start_pfn = start >> PAGE_SHIFT;
  1084. unsigned long last_pfn = end >> PAGE_SHIFT;
  1085. unsigned long ei_startpfn, ei_endpfn, ram = 0;
  1086. int i;
  1087. for (i = 0; i < e820.nr_map; i++) {
  1088. if (e820_find_active_region(&e820.map[i],
  1089. start_pfn, last_pfn,
  1090. &ei_startpfn, &ei_endpfn))
  1091. ram += ei_endpfn - ei_startpfn;
  1092. }
  1093. return end - start - ((u64)ram << PAGE_SHIFT);
  1094. }
  1095. static void early_panic(char *msg)
  1096. {
  1097. early_printk(msg);
  1098. panic(msg);
  1099. }
  1100. static int userdef __initdata;
  1101. /* "mem=nopentium" disables the 4MB page tables. */
  1102. static int __init parse_memopt(char *p)
  1103. {
  1104. u64 mem_size;
  1105. if (!p)
  1106. return -EINVAL;
  1107. #ifdef CONFIG_X86_32
  1108. if (!strcmp(p, "nopentium")) {
  1109. setup_clear_cpu_cap(X86_FEATURE_PSE);
  1110. return 0;
  1111. }
  1112. #endif
  1113. userdef = 1;
  1114. mem_size = memparse(p, &p);
  1115. e820_remove_range(mem_size, ULLONG_MAX - mem_size, E820_RAM, 1);
  1116. return 0;
  1117. }
  1118. early_param("mem", parse_memopt);
  1119. static int __init parse_memmap_opt(char *p)
  1120. {
  1121. char *oldp;
  1122. u64 start_at, mem_size;
  1123. if (!p)
  1124. return -EINVAL;
  1125. if (!strncmp(p, "exactmap", 8)) {
  1126. #ifdef CONFIG_CRASH_DUMP
  1127. /*
  1128. * If we are doing a crash dump, we still need to know
  1129. * the real mem size before original memory map is
  1130. * reset.
  1131. */
  1132. saved_max_pfn = e820_end_of_ram_pfn();
  1133. #endif
  1134. e820.nr_map = 0;
  1135. userdef = 1;
  1136. return 0;
  1137. }
  1138. oldp = p;
  1139. mem_size = memparse(p, &p);
  1140. if (p == oldp)
  1141. return -EINVAL;
  1142. userdef = 1;
  1143. if (*p == '@') {
  1144. start_at = memparse(p+1, &p);
  1145. e820_add_region(start_at, mem_size, E820_RAM);
  1146. } else if (*p == '#') {
  1147. start_at = memparse(p+1, &p);
  1148. e820_add_region(start_at, mem_size, E820_ACPI);
  1149. } else if (*p == '$') {
  1150. start_at = memparse(p+1, &p);
  1151. e820_add_region(start_at, mem_size, E820_RESERVED);
  1152. } else
  1153. e820_remove_range(mem_size, ULLONG_MAX - mem_size, E820_RAM, 1);
  1154. return *p == '\0' ? 0 : -EINVAL;
  1155. }
  1156. early_param("memmap", parse_memmap_opt);
  1157. void __init finish_e820_parsing(void)
  1158. {
  1159. if (userdef) {
  1160. u32 nr = e820.nr_map;
  1161. if (sanitize_e820_map(e820.map, ARRAY_SIZE(e820.map), &nr) < 0)
  1162. early_panic("Invalid user supplied memory map");
  1163. e820.nr_map = nr;
  1164. printk(KERN_INFO "user-defined physical RAM map:\n");
  1165. e820_print_map("user");
  1166. }
  1167. }
  1168. static inline const char *e820_type_to_string(int e820_type)
  1169. {
  1170. switch (e820_type) {
  1171. case E820_RESERVED_KERN:
  1172. case E820_RAM: return "System RAM";
  1173. case E820_ACPI: return "ACPI Tables";
  1174. case E820_NVS: return "ACPI Non-volatile Storage";
  1175. case E820_UNUSABLE: return "Unusable memory";
  1176. default: return "reserved";
  1177. }
  1178. }
  1179. /*
  1180. * Mark e820 reserved areas as busy for the resource manager.
  1181. */
  1182. static struct resource __initdata *e820_res;
  1183. void __init e820_reserve_resources(void)
  1184. {
  1185. int i;
  1186. struct resource *res;
  1187. u64 end;
  1188. res = alloc_bootmem(sizeof(struct resource) * e820.nr_map);
  1189. e820_res = res;
  1190. for (i = 0; i < e820.nr_map; i++) {
  1191. end = e820.map[i].addr + e820.map[i].size - 1;
  1192. if (end != (resource_size_t)end) {
  1193. res++;
  1194. continue;
  1195. }
  1196. res->name = e820_type_to_string(e820.map[i].type);
  1197. res->start = e820.map[i].addr;
  1198. res->end = end;
  1199. res->flags = IORESOURCE_MEM;
  1200. /*
  1201. * don't register the region that could be conflicted with
  1202. * pci device BAR resource and insert them later in
  1203. * pcibios_resource_survey()
  1204. */
  1205. if (e820.map[i].type != E820_RESERVED || res->start < (1ULL<<20)) {
  1206. res->flags |= IORESOURCE_BUSY;
  1207. insert_resource(&iomem_resource, res);
  1208. }
  1209. res++;
  1210. }
  1211. for (i = 0; i < e820_saved.nr_map; i++) {
  1212. struct e820entry *entry = &e820_saved.map[i];
  1213. firmware_map_add_early(entry->addr,
  1214. entry->addr + entry->size - 1,
  1215. e820_type_to_string(entry->type));
  1216. }
  1217. }
  1218. /* How much should we pad RAM ending depending on where it is? */
  1219. static unsigned long ram_alignment(resource_size_t pos)
  1220. {
  1221. unsigned long mb = pos >> 20;
  1222. /* To 64kB in the first megabyte */
  1223. if (!mb)
  1224. return 64*1024;
  1225. /* To 1MB in the first 16MB */
  1226. if (mb < 16)
  1227. return 1024*1024;
  1228. /* To 64MB for anything above that */
  1229. return 64*1024*1024;
  1230. }
  1231. #define MAX_RESOURCE_SIZE ((resource_size_t)-1)
  1232. void __init e820_reserve_resources_late(void)
  1233. {
  1234. int i;
  1235. struct resource *res;
  1236. res = e820_res;
  1237. for (i = 0; i < e820.nr_map; i++) {
  1238. if (!res->parent && res->end)
  1239. insert_resource_expand_to_fit(&iomem_resource, res);
  1240. res++;
  1241. }
  1242. /*
  1243. * Try to bump up RAM regions to reasonable boundaries to
  1244. * avoid stolen RAM:
  1245. */
  1246. for (i = 0; i < e820.nr_map; i++) {
  1247. struct e820entry *entry = &e820.map[i];
  1248. u64 start, end;
  1249. if (entry->type != E820_RAM)
  1250. continue;
  1251. start = entry->addr + entry->size;
  1252. end = round_up(start, ram_alignment(start)) - 1;
  1253. if (end > MAX_RESOURCE_SIZE)
  1254. end = MAX_RESOURCE_SIZE;
  1255. if (start >= end)
  1256. continue;
  1257. reserve_region_with_split(&iomem_resource, start, end,
  1258. "RAM buffer");
  1259. }
  1260. }
  1261. char *__init default_machine_specific_memory_setup(void)
  1262. {
  1263. char *who = "BIOS-e820";
  1264. u32 new_nr;
  1265. /*
  1266. * Try to copy the BIOS-supplied E820-map.
  1267. *
  1268. * Otherwise fake a memory map; one section from 0k->640k,
  1269. * the next section from 1mb->appropriate_mem_k
  1270. */
  1271. new_nr = boot_params.e820_entries;
  1272. sanitize_e820_map(boot_params.e820_map,
  1273. ARRAY_SIZE(boot_params.e820_map),
  1274. &new_nr);
  1275. boot_params.e820_entries = new_nr;
  1276. if (append_e820_map(boot_params.e820_map, boot_params.e820_entries)
  1277. < 0) {
  1278. u64 mem_size;
  1279. /* compare results from other methods and take the greater */
  1280. if (boot_params.alt_mem_k
  1281. < boot_params.screen_info.ext_mem_k) {
  1282. mem_size = boot_params.screen_info.ext_mem_k;
  1283. who = "BIOS-88";
  1284. } else {
  1285. mem_size = boot_params.alt_mem_k;
  1286. who = "BIOS-e801";
  1287. }
  1288. e820.nr_map = 0;
  1289. e820_add_region(0, LOWMEMSIZE(), E820_RAM);
  1290. e820_add_region(HIGH_MEMORY, mem_size << 10, E820_RAM);
  1291. }
  1292. /* In case someone cares... */
  1293. return who;
  1294. }
  1295. void __init setup_memory_map(void)
  1296. {
  1297. char *who;
  1298. who = x86_init.resources.memory_setup();
  1299. memcpy(&e820_saved, &e820, sizeof(struct e820map));
  1300. printk(KERN_INFO "BIOS-provided physical RAM map:\n");
  1301. e820_print_map(who);
  1302. }