kexec-bzimage64.c 15 KB

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  1. /*
  2. * Kexec bzImage loader
  3. *
  4. * Copyright (C) 2014 Red Hat Inc.
  5. * Authors:
  6. * Vivek Goyal <vgoyal@redhat.com>
  7. *
  8. * This source code is licensed under the GNU General Public License,
  9. * Version 2. See the file COPYING for more details.
  10. */
  11. #define pr_fmt(fmt) "kexec-bzImage64: " fmt
  12. #include <linux/string.h>
  13. #include <linux/printk.h>
  14. #include <linux/errno.h>
  15. #include <linux/slab.h>
  16. #include <linux/kexec.h>
  17. #include <linux/kernel.h>
  18. #include <linux/mm.h>
  19. #include <linux/efi.h>
  20. #include <linux/verify_pefile.h>
  21. #include <keys/system_keyring.h>
  22. #include <asm/bootparam.h>
  23. #include <asm/setup.h>
  24. #include <asm/crash.h>
  25. #include <asm/efi.h>
  26. #define MAX_ELFCOREHDR_STR_LEN 30 /* elfcorehdr=0x<64bit-value> */
  27. /*
  28. * Defines lowest physical address for various segments. Not sure where
  29. * exactly these limits came from. Current bzimage64 loader in kexec-tools
  30. * uses these so I am retaining it. It can be changed over time as we gain
  31. * more insight.
  32. */
  33. #define MIN_PURGATORY_ADDR 0x3000
  34. #define MIN_BOOTPARAM_ADDR 0x3000
  35. #define MIN_KERNEL_LOAD_ADDR 0x100000
  36. #define MIN_INITRD_LOAD_ADDR 0x1000000
  37. /*
  38. * This is a place holder for all boot loader specific data structure which
  39. * gets allocated in one call but gets freed much later during cleanup
  40. * time. Right now there is only one field but it can grow as need be.
  41. */
  42. struct bzimage64_data {
  43. /*
  44. * Temporary buffer to hold bootparams buffer. This should be
  45. * freed once the bootparam segment has been loaded.
  46. */
  47. void *bootparams_buf;
  48. };
  49. static int setup_initrd(struct boot_params *params,
  50. unsigned long initrd_load_addr, unsigned long initrd_len)
  51. {
  52. params->hdr.ramdisk_image = initrd_load_addr & 0xffffffffUL;
  53. params->hdr.ramdisk_size = initrd_len & 0xffffffffUL;
  54. params->ext_ramdisk_image = initrd_load_addr >> 32;
  55. params->ext_ramdisk_size = initrd_len >> 32;
  56. return 0;
  57. }
  58. static int setup_cmdline(struct kimage *image, struct boot_params *params,
  59. unsigned long bootparams_load_addr,
  60. unsigned long cmdline_offset, char *cmdline,
  61. unsigned long cmdline_len)
  62. {
  63. char *cmdline_ptr = ((char *)params) + cmdline_offset;
  64. unsigned long cmdline_ptr_phys, len;
  65. uint32_t cmdline_low_32, cmdline_ext_32;
  66. memcpy(cmdline_ptr, cmdline, cmdline_len);
  67. if (image->type == KEXEC_TYPE_CRASH) {
  68. len = sprintf(cmdline_ptr + cmdline_len - 1,
  69. " elfcorehdr=0x%lx", image->arch.elf_load_addr);
  70. cmdline_len += len;
  71. }
  72. cmdline_ptr[cmdline_len - 1] = '\0';
  73. pr_debug("Final command line is: %s\n", cmdline_ptr);
  74. cmdline_ptr_phys = bootparams_load_addr + cmdline_offset;
  75. cmdline_low_32 = cmdline_ptr_phys & 0xffffffffUL;
  76. cmdline_ext_32 = cmdline_ptr_phys >> 32;
  77. params->hdr.cmd_line_ptr = cmdline_low_32;
  78. if (cmdline_ext_32)
  79. params->ext_cmd_line_ptr = cmdline_ext_32;
  80. return 0;
  81. }
  82. static int setup_e820_entries(struct boot_params *params)
  83. {
  84. unsigned int nr_e820_entries;
  85. nr_e820_entries = e820_saved.nr_map;
  86. /* TODO: Pass entries more than E820MAX in bootparams setup data */
  87. if (nr_e820_entries > E820MAX)
  88. nr_e820_entries = E820MAX;
  89. params->e820_entries = nr_e820_entries;
  90. memcpy(&params->e820_map, &e820_saved.map,
  91. nr_e820_entries * sizeof(struct e820entry));
  92. return 0;
  93. }
  94. #ifdef CONFIG_EFI
  95. static int setup_efi_info_memmap(struct boot_params *params,
  96. unsigned long params_load_addr,
  97. unsigned int efi_map_offset,
  98. unsigned int efi_map_sz)
  99. {
  100. void *efi_map = (void *)params + efi_map_offset;
  101. unsigned long efi_map_phys_addr = params_load_addr + efi_map_offset;
  102. struct efi_info *ei = &params->efi_info;
  103. if (!efi_map_sz)
  104. return 0;
  105. efi_runtime_map_copy(efi_map, efi_map_sz);
  106. ei->efi_memmap = efi_map_phys_addr & 0xffffffff;
  107. ei->efi_memmap_hi = efi_map_phys_addr >> 32;
  108. ei->efi_memmap_size = efi_map_sz;
  109. return 0;
  110. }
  111. static int
  112. prepare_add_efi_setup_data(struct boot_params *params,
  113. unsigned long params_load_addr,
  114. unsigned int efi_setup_data_offset)
  115. {
  116. unsigned long setup_data_phys;
  117. struct setup_data *sd = (void *)params + efi_setup_data_offset;
  118. struct efi_setup_data *esd = (void *)sd + sizeof(struct setup_data);
  119. esd->fw_vendor = efi.fw_vendor;
  120. esd->runtime = efi.runtime;
  121. esd->tables = efi.config_table;
  122. esd->smbios = efi.smbios;
  123. sd->type = SETUP_EFI;
  124. sd->len = sizeof(struct efi_setup_data);
  125. /* Add setup data */
  126. setup_data_phys = params_load_addr + efi_setup_data_offset;
  127. sd->next = params->hdr.setup_data;
  128. params->hdr.setup_data = setup_data_phys;
  129. return 0;
  130. }
  131. static int
  132. setup_efi_state(struct boot_params *params, unsigned long params_load_addr,
  133. unsigned int efi_map_offset, unsigned int efi_map_sz,
  134. unsigned int efi_setup_data_offset)
  135. {
  136. struct efi_info *current_ei = &boot_params.efi_info;
  137. struct efi_info *ei = &params->efi_info;
  138. if (!current_ei->efi_memmap_size)
  139. return 0;
  140. /*
  141. * If 1:1 mapping is not enabled, second kernel can not setup EFI
  142. * and use EFI run time services. User space will have to pass
  143. * acpi_rsdp=<addr> on kernel command line to make second kernel boot
  144. * without efi.
  145. */
  146. if (efi_enabled(EFI_OLD_MEMMAP))
  147. return 0;
  148. ei->efi_loader_signature = current_ei->efi_loader_signature;
  149. ei->efi_systab = current_ei->efi_systab;
  150. ei->efi_systab_hi = current_ei->efi_systab_hi;
  151. ei->efi_memdesc_version = current_ei->efi_memdesc_version;
  152. ei->efi_memdesc_size = efi_get_runtime_map_desc_size();
  153. setup_efi_info_memmap(params, params_load_addr, efi_map_offset,
  154. efi_map_sz);
  155. prepare_add_efi_setup_data(params, params_load_addr,
  156. efi_setup_data_offset);
  157. return 0;
  158. }
  159. #endif /* CONFIG_EFI */
  160. static int
  161. setup_boot_parameters(struct kimage *image, struct boot_params *params,
  162. unsigned long params_load_addr,
  163. unsigned int efi_map_offset, unsigned int efi_map_sz,
  164. unsigned int efi_setup_data_offset)
  165. {
  166. unsigned int nr_e820_entries;
  167. unsigned long long mem_k, start, end;
  168. int i, ret = 0;
  169. /* Get subarch from existing bootparams */
  170. params->hdr.hardware_subarch = boot_params.hdr.hardware_subarch;
  171. /* Copying screen_info will do? */
  172. memcpy(&params->screen_info, &boot_params.screen_info,
  173. sizeof(struct screen_info));
  174. /* Fill in memsize later */
  175. params->screen_info.ext_mem_k = 0;
  176. params->alt_mem_k = 0;
  177. /* Default APM info */
  178. memset(&params->apm_bios_info, 0, sizeof(params->apm_bios_info));
  179. /* Default drive info */
  180. memset(&params->hd0_info, 0, sizeof(params->hd0_info));
  181. memset(&params->hd1_info, 0, sizeof(params->hd1_info));
  182. /* Default sysdesc table */
  183. params->sys_desc_table.length = 0;
  184. if (image->type == KEXEC_TYPE_CRASH) {
  185. ret = crash_setup_memmap_entries(image, params);
  186. if (ret)
  187. return ret;
  188. } else
  189. setup_e820_entries(params);
  190. nr_e820_entries = params->e820_entries;
  191. for (i = 0; i < nr_e820_entries; i++) {
  192. if (params->e820_map[i].type != E820_RAM)
  193. continue;
  194. start = params->e820_map[i].addr;
  195. end = params->e820_map[i].addr + params->e820_map[i].size - 1;
  196. if ((start <= 0x100000) && end > 0x100000) {
  197. mem_k = (end >> 10) - (0x100000 >> 10);
  198. params->screen_info.ext_mem_k = mem_k;
  199. params->alt_mem_k = mem_k;
  200. if (mem_k > 0xfc00)
  201. params->screen_info.ext_mem_k = 0xfc00; /* 64M*/
  202. if (mem_k > 0xffffffff)
  203. params->alt_mem_k = 0xffffffff;
  204. }
  205. }
  206. #ifdef CONFIG_EFI
  207. /* Setup EFI state */
  208. setup_efi_state(params, params_load_addr, efi_map_offset, efi_map_sz,
  209. efi_setup_data_offset);
  210. #endif
  211. /* Setup EDD info */
  212. memcpy(params->eddbuf, boot_params.eddbuf,
  213. EDDMAXNR * sizeof(struct edd_info));
  214. params->eddbuf_entries = boot_params.eddbuf_entries;
  215. memcpy(params->edd_mbr_sig_buffer, boot_params.edd_mbr_sig_buffer,
  216. EDD_MBR_SIG_MAX * sizeof(unsigned int));
  217. return ret;
  218. }
  219. int bzImage64_probe(const char *buf, unsigned long len)
  220. {
  221. int ret = -ENOEXEC;
  222. struct setup_header *header;
  223. /* kernel should be atleast two sectors long */
  224. if (len < 2 * 512) {
  225. pr_err("File is too short to be a bzImage\n");
  226. return ret;
  227. }
  228. header = (struct setup_header *)(buf + offsetof(struct boot_params, hdr));
  229. if (memcmp((char *)&header->header, "HdrS", 4) != 0) {
  230. pr_err("Not a bzImage\n");
  231. return ret;
  232. }
  233. if (header->boot_flag != 0xAA55) {
  234. pr_err("No x86 boot sector present\n");
  235. return ret;
  236. }
  237. if (header->version < 0x020C) {
  238. pr_err("Must be at least protocol version 2.12\n");
  239. return ret;
  240. }
  241. if (!(header->loadflags & LOADED_HIGH)) {
  242. pr_err("zImage not a bzImage\n");
  243. return ret;
  244. }
  245. if (!(header->xloadflags & XLF_KERNEL_64)) {
  246. pr_err("Not a bzImage64. XLF_KERNEL_64 is not set.\n");
  247. return ret;
  248. }
  249. if (!(header->xloadflags & XLF_CAN_BE_LOADED_ABOVE_4G)) {
  250. pr_err("XLF_CAN_BE_LOADED_ABOVE_4G is not set.\n");
  251. return ret;
  252. }
  253. /*
  254. * Can't handle 32bit EFI as it does not allow loading kernel
  255. * above 4G. This should be handled by 32bit bzImage loader
  256. */
  257. if (efi_enabled(EFI_RUNTIME_SERVICES) && !efi_enabled(EFI_64BIT)) {
  258. pr_debug("EFI is 32 bit. Can't load kernel above 4G.\n");
  259. return ret;
  260. }
  261. /* I've got a bzImage */
  262. pr_debug("It's a relocatable bzImage64\n");
  263. ret = 0;
  264. return ret;
  265. }
  266. void *bzImage64_load(struct kimage *image, char *kernel,
  267. unsigned long kernel_len, char *initrd,
  268. unsigned long initrd_len, char *cmdline,
  269. unsigned long cmdline_len)
  270. {
  271. struct setup_header *header;
  272. int setup_sects, kern16_size, ret = 0;
  273. unsigned long setup_header_size, params_cmdline_sz, params_misc_sz;
  274. struct boot_params *params;
  275. unsigned long bootparam_load_addr, kernel_load_addr, initrd_load_addr;
  276. unsigned long purgatory_load_addr;
  277. unsigned long kernel_bufsz, kernel_memsz, kernel_align;
  278. char *kernel_buf;
  279. struct bzimage64_data *ldata;
  280. struct kexec_entry64_regs regs64;
  281. void *stack;
  282. unsigned int setup_hdr_offset = offsetof(struct boot_params, hdr);
  283. unsigned int efi_map_offset, efi_map_sz, efi_setup_data_offset;
  284. header = (struct setup_header *)(kernel + setup_hdr_offset);
  285. setup_sects = header->setup_sects;
  286. if (setup_sects == 0)
  287. setup_sects = 4;
  288. kern16_size = (setup_sects + 1) * 512;
  289. if (kernel_len < kern16_size) {
  290. pr_err("bzImage truncated\n");
  291. return ERR_PTR(-ENOEXEC);
  292. }
  293. if (cmdline_len > header->cmdline_size) {
  294. pr_err("Kernel command line too long\n");
  295. return ERR_PTR(-EINVAL);
  296. }
  297. /*
  298. * In case of crash dump, we will append elfcorehdr=<addr> to
  299. * command line. Make sure it does not overflow
  300. */
  301. if (cmdline_len + MAX_ELFCOREHDR_STR_LEN > header->cmdline_size) {
  302. pr_debug("Appending elfcorehdr=<addr> to command line exceeds maximum allowed length\n");
  303. return ERR_PTR(-EINVAL);
  304. }
  305. /* Allocate and load backup region */
  306. if (image->type == KEXEC_TYPE_CRASH) {
  307. ret = crash_load_segments(image);
  308. if (ret)
  309. return ERR_PTR(ret);
  310. }
  311. /*
  312. * Load purgatory. For 64bit entry point, purgatory code can be
  313. * anywhere.
  314. */
  315. ret = kexec_load_purgatory(image, MIN_PURGATORY_ADDR, ULONG_MAX, 1,
  316. &purgatory_load_addr);
  317. if (ret) {
  318. pr_err("Loading purgatory failed\n");
  319. return ERR_PTR(ret);
  320. }
  321. pr_debug("Loaded purgatory at 0x%lx\n", purgatory_load_addr);
  322. /*
  323. * Load Bootparams and cmdline and space for efi stuff.
  324. *
  325. * Allocate memory together for multiple data structures so
  326. * that they all can go in single area/segment and we don't
  327. * have to create separate segment for each. Keeps things
  328. * little bit simple
  329. */
  330. efi_map_sz = efi_get_runtime_map_size();
  331. efi_map_sz = ALIGN(efi_map_sz, 16);
  332. params_cmdline_sz = sizeof(struct boot_params) + cmdline_len +
  333. MAX_ELFCOREHDR_STR_LEN;
  334. params_cmdline_sz = ALIGN(params_cmdline_sz, 16);
  335. params_misc_sz = params_cmdline_sz + efi_map_sz +
  336. sizeof(struct setup_data) +
  337. sizeof(struct efi_setup_data);
  338. params = kzalloc(params_misc_sz, GFP_KERNEL);
  339. if (!params)
  340. return ERR_PTR(-ENOMEM);
  341. efi_map_offset = params_cmdline_sz;
  342. efi_setup_data_offset = efi_map_offset + efi_map_sz;
  343. /* Copy setup header onto bootparams. Documentation/x86/boot.txt */
  344. setup_header_size = 0x0202 + kernel[0x0201] - setup_hdr_offset;
  345. /* Is there a limit on setup header size? */
  346. memcpy(&params->hdr, (kernel + setup_hdr_offset), setup_header_size);
  347. ret = kexec_add_buffer(image, (char *)params, params_misc_sz,
  348. params_misc_sz, 16, MIN_BOOTPARAM_ADDR,
  349. ULONG_MAX, 1, &bootparam_load_addr);
  350. if (ret)
  351. goto out_free_params;
  352. pr_debug("Loaded boot_param, command line and misc at 0x%lx bufsz=0x%lx memsz=0x%lx\n",
  353. bootparam_load_addr, params_misc_sz, params_misc_sz);
  354. /* Load kernel */
  355. kernel_buf = kernel + kern16_size;
  356. kernel_bufsz = kernel_len - kern16_size;
  357. kernel_memsz = PAGE_ALIGN(header->init_size);
  358. kernel_align = header->kernel_alignment;
  359. ret = kexec_add_buffer(image, kernel_buf,
  360. kernel_bufsz, kernel_memsz, kernel_align,
  361. MIN_KERNEL_LOAD_ADDR, ULONG_MAX, 1,
  362. &kernel_load_addr);
  363. if (ret)
  364. goto out_free_params;
  365. pr_debug("Loaded 64bit kernel at 0x%lx bufsz=0x%lx memsz=0x%lx\n",
  366. kernel_load_addr, kernel_memsz, kernel_memsz);
  367. /* Load initrd high */
  368. if (initrd) {
  369. ret = kexec_add_buffer(image, initrd, initrd_len, initrd_len,
  370. PAGE_SIZE, MIN_INITRD_LOAD_ADDR,
  371. ULONG_MAX, 1, &initrd_load_addr);
  372. if (ret)
  373. goto out_free_params;
  374. pr_debug("Loaded initrd at 0x%lx bufsz=0x%lx memsz=0x%lx\n",
  375. initrd_load_addr, initrd_len, initrd_len);
  376. setup_initrd(params, initrd_load_addr, initrd_len);
  377. }
  378. setup_cmdline(image, params, bootparam_load_addr,
  379. sizeof(struct boot_params), cmdline, cmdline_len);
  380. /* bootloader info. Do we need a separate ID for kexec kernel loader? */
  381. params->hdr.type_of_loader = 0x0D << 4;
  382. params->hdr.loadflags = 0;
  383. /* Setup purgatory regs for entry */
  384. ret = kexec_purgatory_get_set_symbol(image, "entry64_regs", &regs64,
  385. sizeof(regs64), 1);
  386. if (ret)
  387. goto out_free_params;
  388. regs64.rbx = 0; /* Bootstrap Processor */
  389. regs64.rsi = bootparam_load_addr;
  390. regs64.rip = kernel_load_addr + 0x200;
  391. stack = kexec_purgatory_get_symbol_addr(image, "stack_end");
  392. if (IS_ERR(stack)) {
  393. pr_err("Could not find address of symbol stack_end\n");
  394. ret = -EINVAL;
  395. goto out_free_params;
  396. }
  397. regs64.rsp = (unsigned long)stack;
  398. ret = kexec_purgatory_get_set_symbol(image, "entry64_regs", &regs64,
  399. sizeof(regs64), 0);
  400. if (ret)
  401. goto out_free_params;
  402. ret = setup_boot_parameters(image, params, bootparam_load_addr,
  403. efi_map_offset, efi_map_sz,
  404. efi_setup_data_offset);
  405. if (ret)
  406. goto out_free_params;
  407. /* Allocate loader specific data */
  408. ldata = kzalloc(sizeof(struct bzimage64_data), GFP_KERNEL);
  409. if (!ldata) {
  410. ret = -ENOMEM;
  411. goto out_free_params;
  412. }
  413. /*
  414. * Store pointer to params so that it could be freed after loading
  415. * params segment has been loaded and contents have been copied
  416. * somewhere else.
  417. */
  418. ldata->bootparams_buf = params;
  419. return ldata;
  420. out_free_params:
  421. kfree(params);
  422. return ERR_PTR(ret);
  423. }
  424. /* This cleanup function is called after various segments have been loaded */
  425. int bzImage64_cleanup(void *loader_data)
  426. {
  427. struct bzimage64_data *ldata = loader_data;
  428. if (!ldata)
  429. return 0;
  430. kfree(ldata->bootparams_buf);
  431. ldata->bootparams_buf = NULL;
  432. return 0;
  433. }
  434. #ifdef CONFIG_KEXEC_BZIMAGE_VERIFY_SIG
  435. int bzImage64_verify_sig(const char *kernel, unsigned long kernel_len)
  436. {
  437. bool trusted;
  438. int ret;
  439. ret = verify_pefile_signature(kernel, kernel_len,
  440. system_trusted_keyring, &trusted);
  441. if (ret < 0)
  442. return ret;
  443. if (!trusted)
  444. return -EKEYREJECTED;
  445. return 0;
  446. }
  447. #endif
  448. struct kexec_file_ops kexec_bzImage64_ops = {
  449. .probe = bzImage64_probe,
  450. .load = bzImage64_load,
  451. .cleanup = bzImage64_cleanup,
  452. #ifdef CONFIG_KEXEC_BZIMAGE_VERIFY_SIG
  453. .verify_sig = bzImage64_verify_sig,
  454. #endif
  455. };