db_main.c 18 KB

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  1. /* Copyright (C) 2014 Stony Brook University
  2. This file is part of Graphene Library OS.
  3. Graphene Library OS is free software: you can redistribute it and/or
  4. modify it under the terms of the GNU Lesser General Public License
  5. as published by the Free Software Foundation, either version 3 of the
  6. License, or (at your option) any later version.
  7. Graphene Library OS is distributed in the hope that it will be useful,
  8. but WITHOUT ANY WARRANTY; without even the implied warranty of
  9. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  10. GNU Lesser General Public License for more details.
  11. You should have received a copy of the GNU Lesser General Public License
  12. along with this program. If not, see <http://www.gnu.org/licenses/>. */
  13. /*
  14. * db_main.c
  15. *
  16. * This file contains the main function of the PAL loader, which loads and
  17. * processes environment, arguments and manifest.
  18. */
  19. #include "api.h"
  20. #include "bogomips.h"
  21. #include "pal.h"
  22. #include "pal_debug.h"
  23. #include "pal_defs.h"
  24. #include "pal_error.h"
  25. #include "pal_internal.h"
  26. #include "pal_linux.h"
  27. #include "pal_linux_defs.h"
  28. #include "pal_security.h"
  29. #include <asm/ioctls.h>
  30. #include <asm/mman.h>
  31. #include <elf/elf.h>
  32. #include <sysdeps/generic/ldsodefs.h>
  33. #include "ecall_types.h"
  34. #include "enclave_pages.h"
  35. #define RTLD_BOOTSTRAP
  36. #define _ENTRY enclave_entry
  37. struct pal_linux_state linux_state;
  38. struct pal_sec pal_sec;
  39. size_t g_page_size = PRESET_PAGESIZE;
  40. unsigned long _DkGetPagesize (void)
  41. {
  42. return g_page_size;
  43. }
  44. unsigned long _DkGetAllocationAlignment (void)
  45. {
  46. return g_page_size;
  47. }
  48. void _DkGetAvailableUserAddressRange (PAL_PTR * start, PAL_PTR * end,
  49. PAL_PTR * hole_start, PAL_PTR * hole_end)
  50. {
  51. *start = (PAL_PTR) pal_sec.heap_min;
  52. *end = (PAL_PTR) get_enclave_pages(NULL, g_page_size);
  53. *hole_start = SATURATED_P_SUB(pal_sec.exec_addr, MEMORY_GAP, *start);
  54. *hole_end = SATURATED_P_ADD(pal_sec.exec_addr + pal_sec.exec_size, MEMORY_GAP, *end);
  55. }
  56. PAL_NUM _DkGetProcessId (void)
  57. {
  58. return linux_state.process_id;
  59. }
  60. PAL_NUM _DkGetHostId (void)
  61. {
  62. return 0;
  63. }
  64. #include "elf-x86_64.h"
  65. #include "dynamic_link.h"
  66. #include <asm/errno.h>
  67. void setup_pal_map (struct link_map * map);
  68. static struct link_map pal_map;
  69. void init_untrusted_slab_mgr(void);
  70. int init_enclave(void);
  71. int init_enclave_key(void);
  72. int init_child_process(PAL_HANDLE* parent_handle);
  73. void init_cpuid(void);
  74. /*
  75. * Creates a dummy file handle with the given name.
  76. *
  77. * The handle is not backed by any file. Reads will return EOF and writes will
  78. * fail.
  79. */
  80. static PAL_HANDLE setup_dummy_file_handle (const char * name)
  81. {
  82. if (!strstartswith_static(name, URI_PREFIX_FILE))
  83. return NULL;
  84. name += URI_PREFIX_FILE_LEN;
  85. size_t len = strlen(name) + 1;
  86. PAL_HANDLE handle = malloc(HANDLE_SIZE(file) + len);
  87. SET_HANDLE_TYPE(handle, file);
  88. HANDLE_HDR(handle)->flags |= RFD(0);
  89. handle->file.fd = PAL_IDX_POISON;
  90. char * path = (void *) handle + HANDLE_SIZE(file);
  91. int ret = get_norm_path(name, path, &len);
  92. if (ret < 0) {
  93. SGX_DBG(DBG_E, "Could not normalize path (%s): %s\n", name, pal_strerror(ret));
  94. free(handle);
  95. return NULL;
  96. }
  97. handle->file.realpath = path;
  98. handle->file.total = 0;
  99. handle->file.stubs = NULL;
  100. return handle;
  101. }
  102. static int loader_filter (const char * key, int len)
  103. {
  104. if (len > 7 && key[0] == 'l' && key[1] == 'o' && key[2] == 'a' && key[3] == 'd' &&
  105. key[4] == 'e' && key[5] == 'r' && key[6] == '.')
  106. return 0;
  107. if (len > 4 && key[0] == 's' && key[1] == 'g' && key[2] == 'x' && key[3] == '.')
  108. return 0;
  109. return 1;
  110. }
  111. /*
  112. * Takes a pointer+size to an untrusted memory region containing a
  113. * NUL-separated list of strings. It builds a argv-style list in trusted memory
  114. * with those strings.
  115. *
  116. * It is responsible for handling the access to untrusted memory safely
  117. * (returns NULL on error) and ensures that all strings are properly
  118. * terminated. The content of the strings is NOT further sanitized.
  119. *
  120. * The argv-style list is allocated on the heap and the caller is responsible
  121. * to free it (For argv and envp we rely on auto free on termination in
  122. * practice).
  123. */
  124. static const char** make_argv_list(void * uptr_src, uint64_t src_size) {
  125. const char **argv;
  126. if (src_size == 0) {
  127. argv = malloc(sizeof(char *));
  128. argv[0] = NULL;
  129. return argv;
  130. }
  131. char * data = malloc(src_size);
  132. if (!data) {
  133. return NULL;
  134. }
  135. if (!sgx_copy_to_enclave(data, src_size, uptr_src, src_size)) {
  136. goto free_and_err;
  137. }
  138. data[src_size - 1] = '\0';
  139. uint64_t argc = 0;
  140. for (uint64_t i = 0; i < src_size; i++) {
  141. if (data[i] == '\0') {
  142. argc++;
  143. }
  144. }
  145. size_t argv_size;
  146. if (__builtin_mul_overflow(argc + 1, sizeof(char *), &argv_size)) {
  147. goto free_and_err;
  148. }
  149. argv = malloc(argv_size);
  150. if (!argv) {
  151. goto free_and_err;
  152. }
  153. argv[argc] = NULL;
  154. uint64_t data_i = 0;
  155. for (uint64_t arg_i = 0; arg_i < argc; arg_i++) {
  156. argv[arg_i] = &data[data_i];
  157. while (data[data_i] != '\0') {
  158. data_i++;
  159. }
  160. data_i++;
  161. }
  162. return argv;
  163. free_and_err:
  164. free(data);
  165. return NULL;
  166. }
  167. extern void * enclave_base;
  168. extern void * enclave_top;
  169. void pal_linux_main(char * uptr_args, uint64_t args_size,
  170. char * uptr_env, uint64_t env_size,
  171. struct pal_sec * uptr_sec_info)
  172. {
  173. /*
  174. * Our arguments are comming directly from the urts. We are responsible to
  175. * check them.
  176. */
  177. PAL_HANDLE parent = NULL;
  178. unsigned long start_time = _DkSystemTimeQuery();
  179. int rv;
  180. struct pal_sec sec_info;
  181. if (!sgx_copy_to_enclave(&sec_info, sizeof(sec_info), uptr_sec_info, sizeof(sec_info))) {
  182. return;
  183. }
  184. pal_sec.heap_min = GET_ENCLAVE_TLS(heap_min);
  185. pal_sec.heap_max = GET_ENCLAVE_TLS(heap_max);
  186. pal_sec.exec_addr = GET_ENCLAVE_TLS(exec_addr);
  187. pal_sec.exec_size = GET_ENCLAVE_TLS(exec_size);
  188. /* Zero the heap. We need to take care to not zero the exec area. */
  189. void* zero1_start = pal_sec.heap_min;
  190. void* zero1_end = pal_sec.heap_max;
  191. void* zero2_start = pal_sec.heap_max;
  192. void* zero2_end = pal_sec.heap_max;
  193. if (pal_sec.exec_addr != NULL) {
  194. zero1_end = MIN(zero1_end, SATURATED_P_SUB(pal_sec.exec_addr, MEMORY_GAP, 0));
  195. zero2_start = SATURATED_P_ADD(pal_sec.exec_addr + pal_sec.exec_size, MEMORY_GAP, zero2_end);
  196. }
  197. memset(zero1_start, 0, zero1_end - zero1_start);
  198. memset(zero2_start, 0, zero2_end - zero2_start);
  199. /* relocate PAL itself */
  200. pal_map.l_addr = elf_machine_load_address();
  201. pal_map.l_name = ENCLAVE_PAL_FILENAME;
  202. elf_get_dynamic_info((void *) pal_map.l_addr + elf_machine_dynamic(),
  203. pal_map.l_info, pal_map.l_addr);
  204. ELF_DYNAMIC_RELOCATE(&pal_map);
  205. /*
  206. * We can't verify the following arguments from the urts. So we copy
  207. * them directly but need to be careful when we use them.
  208. */
  209. pal_sec.instance_id = sec_info.instance_id;
  210. COPY_ARRAY(pal_sec.exec_name, sec_info.exec_name);
  211. pal_sec.exec_name[sizeof(pal_sec.exec_name) - 1] = '\0';
  212. COPY_ARRAY(pal_sec.manifest_name, sec_info.manifest_name);
  213. pal_sec.manifest_name[sizeof(pal_sec.manifest_name) - 1] = '\0';
  214. pal_sec.stream_fd = sec_info.stream_fd;
  215. pal_sec.cargo_fd = sec_info.cargo_fd;
  216. COPY_ARRAY(pal_sec.pipe_prefix, sec_info.pipe_prefix);
  217. pal_sec.aesm_targetinfo = sec_info.aesm_targetinfo;
  218. #ifdef DEBUG
  219. pal_sec.in_gdb = sec_info.in_gdb;
  220. #endif
  221. #if PRINT_ENCLAVE_STAT == 1
  222. pal_sec.start_time = sec_info.start_time;
  223. #endif
  224. /* For {p,u,g}ids we can at least do some minimal checking. */
  225. /* ppid should be positive when interpreted as signed. It's 0 if we don't
  226. * have a graphene parent process. */
  227. if (sec_info.ppid > INT32_MAX) {
  228. return;
  229. }
  230. pal_sec.ppid = sec_info.ppid;
  231. /* As ppid but we always have a pid, so 0 is invalid. */
  232. if (sec_info.pid > INT32_MAX || sec_info.pid == 0) {
  233. return;
  234. }
  235. pal_sec.pid = sec_info.pid;
  236. /* -1 is treated as special value for example by chown. */
  237. if (sec_info.uid == (PAL_IDX)-1 || sec_info.gid == (PAL_IDX)-1) {
  238. return;
  239. }
  240. pal_sec.uid = sec_info.uid;
  241. pal_sec.gid = sec_info.gid;
  242. int num_cpus = sec_info.num_cpus;
  243. if (num_cpus >= 1 && num_cpus <= (1 << 16)) {
  244. pal_sec.num_cpus = num_cpus;
  245. } else {
  246. return;
  247. }
  248. /* set up page allocator and slab manager */
  249. init_slab_mgr(g_page_size);
  250. init_untrusted_slab_mgr();
  251. init_enclave_pages();
  252. init_enclave_key();
  253. init_cpuid();
  254. /* now we can add a link map for PAL itself */
  255. setup_pal_map(&pal_map);
  256. /* Set the alignment early */
  257. pal_state.alloc_align = g_page_size;
  258. /* initialize enclave properties */
  259. rv = init_enclave();
  260. if (rv) {
  261. SGX_DBG(DBG_E, "Failed to initialize enclave properties: %d\n", rv);
  262. ocall_exit(rv, /*is_exitgroup=*/true);
  263. }
  264. if (args_size > MAX_ARGS_SIZE || env_size > MAX_ENV_SIZE) {
  265. return;
  266. }
  267. const char ** arguments = make_argv_list(uptr_args, args_size);
  268. if (!arguments) {
  269. return;
  270. }
  271. const char ** environments = make_argv_list(uptr_env, env_size);
  272. if (!environments) {
  273. return;
  274. }
  275. pal_state.start_time = start_time;
  276. linux_state.uid = pal_sec.uid;
  277. linux_state.gid = pal_sec.gid;
  278. linux_state.process_id = (start_time & (~0xffff)) | pal_sec.pid;
  279. SET_ENCLAVE_TLS(ready_for_exceptions, 1UL);
  280. /* if there is a parent, create parent handle */
  281. if (pal_sec.ppid) {
  282. if ((rv = init_child_process(&parent)) < 0) {
  283. SGX_DBG(DBG_E, "Failed to initialize child process: %d\n", rv);
  284. ocall_exit(rv, /*is_exitgroup=*/true);
  285. }
  286. }
  287. /* now let's mark our enclave as initialized */
  288. pal_enclave_state.enclave_flags |= PAL_ENCLAVE_INITIALIZED;
  289. /*
  290. * We create dummy handles for exec and manifest here to make the logic in
  291. * pal_main happy and pass the path of them. The handles can't be used to
  292. * read anything.
  293. */
  294. PAL_HANDLE manifest, exec = NULL;
  295. manifest = setup_dummy_file_handle(pal_sec.manifest_name);
  296. if (pal_sec.exec_name[0] != '\0') {
  297. exec = setup_dummy_file_handle(pal_sec.exec_name);
  298. } else {
  299. SGX_DBG(DBG_I, "Run without executable\n");
  300. }
  301. uint64_t manifest_size = GET_ENCLAVE_TLS(manifest_size);
  302. void* manifest_addr = enclave_top - ALIGN_UP_PTR_POW2(manifest_size, g_page_size);
  303. /* parse manifest data into config storage */
  304. struct config_store * root_config =
  305. malloc(sizeof(struct config_store));
  306. root_config->raw_data = manifest_addr;
  307. root_config->raw_size = manifest_size;
  308. root_config->malloc = malloc;
  309. root_config->free = free;
  310. const char * errstring = NULL;
  311. if ((rv = read_config(root_config, loader_filter, &errstring)) < 0) {
  312. SGX_DBG(DBG_E, "Can't read manifest: %s, error code %d\n", errstring, rv);
  313. ocall_exit(rv, /*is_exitgroup=*/true);
  314. }
  315. pal_state.root_config = root_config;
  316. __pal_control.manifest_preload.start = (PAL_PTR) manifest_addr;
  317. __pal_control.manifest_preload.end = (PAL_PTR) manifest_addr + manifest_size;
  318. if ((rv = init_trusted_platform()) < 0) {
  319. SGX_DBG(DBG_E, "Failed to verify the platform using remote attestation: %d\n", rv);
  320. ocall_exit(rv, true);
  321. }
  322. if ((rv = init_trusted_files()) < 0) {
  323. SGX_DBG(DBG_E, "Failed to load the checksums of trusted files: %d\n", rv);
  324. ocall_exit(rv, true);
  325. }
  326. if ((rv = init_trusted_children()) < 0) {
  327. SGX_DBG(DBG_E, "Failed to load the measurement of trusted child enclaves: %d\n", rv);
  328. ocall_exit(rv, true);
  329. }
  330. if ((rv = init_file_check_policy()) < 0) {
  331. SGX_DBG(DBG_E, "Failed to load the file check policy: %d\n", rv);
  332. ocall_exit(rv, true);
  333. }
  334. #if PRINT_ENCLAVE_STAT == 1
  335. printf(" >>>>>>>> "
  336. "Enclave loading time = %10ld milliseconds\n",
  337. _DkSystemTimeQuery() - pal_sec.start_time);
  338. #endif
  339. /* set up thread handle */
  340. PAL_HANDLE first_thread = malloc(HANDLE_SIZE(thread));
  341. SET_HANDLE_TYPE(first_thread, thread);
  342. first_thread->thread.tcs =
  343. enclave_base + GET_ENCLAVE_TLS(tcs_offset);
  344. __pal_control.first_thread = first_thread;
  345. SET_ENCLAVE_TLS(thread, &first_thread->thread);
  346. /* call main function */
  347. pal_main(pal_sec.instance_id, manifest, exec,
  348. pal_sec.exec_addr, parent, first_thread,
  349. arguments, environments);
  350. }
  351. /* the following code is borrowed from CPUID */
  352. static void cpuid (unsigned int leaf, unsigned int subleaf,
  353. unsigned int words[])
  354. {
  355. _DkCpuIdRetrieve(leaf, subleaf, words);
  356. }
  357. #define FOUR_CHARS_VALUE(s, w) \
  358. (s)[0] = (w) & 0xff; \
  359. (s)[1] = ((w) >> 8) & 0xff; \
  360. (s)[2] = ((w) >> 16) & 0xff; \
  361. (s)[3] = ((w) >> 24) & 0xff;
  362. #define BPI 32
  363. #define POWER2(power) \
  364. (1ULL << (power))
  365. #define RIGHTMASK(width) \
  366. (((unsigned long)(width) >= BPI) ? ~0ULL : POWER2(width) - 1ULL)
  367. #define BIT_EXTRACT_LE(value, start, after) \
  368. (((unsigned long)(value) & RIGHTMASK(after)) >> start)
  369. static char * cpu_flags[]
  370. = { "fpu", // "x87 FPU on chip"
  371. "vme", // "virtual-8086 mode enhancement"
  372. "de", // "debugging extensions"
  373. "pse", // "page size extensions"
  374. "tsc", // "time stamp counter"
  375. "msr", // "RDMSR and WRMSR support"
  376. "pae", // "physical address extensions"
  377. "mce", // "machine check exception"
  378. "cx8", // "CMPXCHG8B inst."
  379. "apic", // "APIC on chip"
  380. NULL,
  381. "sep", // "SYSENTER and SYSEXIT"
  382. "mtrr", // "memory type range registers"
  383. "pge", // "PTE global bit"
  384. "mca", // "machine check architecture"
  385. "cmov", // "conditional move/compare instruction"
  386. "pat", // "page attribute table"
  387. "pse36", // "page size extension"
  388. "pn", // "processor serial number"
  389. "clflush", // "CLFLUSH instruction"
  390. NULL,
  391. "dts", // "debug store"
  392. "acpi", // "Onboard thermal control"
  393. "mmx", // "MMX Technology"
  394. "fxsr", // "FXSAVE/FXRSTOR"
  395. "sse", // "SSE extensions"
  396. "sse2", // "SSE2 extensions"
  397. "ss", // "self snoop"
  398. "ht", // "hyper-threading / multi-core supported"
  399. "tm", // "therm. monitor"
  400. "ia64", // "IA64"
  401. "pbe", // "pending break event"
  402. };
  403. static double get_bogomips(void) {
  404. int fd = -1;
  405. char buf[0x800] = { 0 };
  406. fd = ocall_open("/proc/cpuinfo", O_RDONLY, 0);
  407. if (fd < 0) {
  408. return 0.0;
  409. }
  410. /* Although the whole file might not fit in this size, the first cpu description should. */
  411. int x = ocall_read(fd, buf, sizeof(buf) - 1);
  412. ocall_close(fd);
  413. if (x < 0) {
  414. return 0.0;
  415. }
  416. return sanitize_bogomips_value(get_bogomips_from_cpuinfo_buf(buf, sizeof(buf)));
  417. }
  418. int _DkGetCPUInfo (PAL_CPU_INFO * ci)
  419. {
  420. unsigned int words[PAL_CPUID_WORD_NUM];
  421. int rv = 0;
  422. const size_t VENDOR_ID_SIZE = 13;
  423. char* vendor_id = malloc(VENDOR_ID_SIZE);
  424. cpuid(0, 0, words);
  425. FOUR_CHARS_VALUE(&vendor_id[0], words[PAL_CPUID_WORD_EBX]);
  426. FOUR_CHARS_VALUE(&vendor_id[4], words[PAL_CPUID_WORD_EDX]);
  427. FOUR_CHARS_VALUE(&vendor_id[8], words[PAL_CPUID_WORD_ECX]);
  428. vendor_id[VENDOR_ID_SIZE - 1] = '\0';
  429. ci->cpu_vendor = vendor_id;
  430. // Must be an Intel CPU
  431. if (memcmp(vendor_id, "GenuineIntel", 12)) {
  432. free(vendor_id);
  433. return -PAL_ERROR_INVAL;
  434. }
  435. const size_t BRAND_SIZE = 49;
  436. char* brand = malloc(BRAND_SIZE);
  437. cpuid(0x80000002, 0, words);
  438. memcpy(&brand[ 0], words, sizeof(unsigned int) * PAL_CPUID_WORD_NUM);
  439. cpuid(0x80000003, 0, words);
  440. memcpy(&brand[16], words, sizeof(unsigned int) * PAL_CPUID_WORD_NUM);
  441. cpuid(0x80000004, 0, words);
  442. memcpy(&brand[32], words, sizeof(unsigned int) * PAL_CPUID_WORD_NUM);
  443. brand[BRAND_SIZE - 1] = '\0';
  444. ci->cpu_brand = brand;
  445. /* we cannot use CPUID(0xb) because it counts even disabled-by-BIOS cores (e.g. HT cores);
  446. * instead, this is passed in via pal_sec at start-up time. */
  447. ci->cpu_num = pal_sec.num_cpus;
  448. cpuid(1, 0, words);
  449. ci->cpu_family = BIT_EXTRACT_LE(words[PAL_CPUID_WORD_EAX], 8, 12) +
  450. BIT_EXTRACT_LE(words[PAL_CPUID_WORD_EAX], 20, 28);
  451. ci->cpu_model = BIT_EXTRACT_LE(words[PAL_CPUID_WORD_EAX], 4, 8) +
  452. (BIT_EXTRACT_LE(words[PAL_CPUID_WORD_EAX], 16, 20) << 4);
  453. ci->cpu_stepping = BIT_EXTRACT_LE(words[PAL_CPUID_WORD_EAX], 0, 4);
  454. int flen = 0, fmax = 80;
  455. char * flags = malloc(fmax);
  456. for (int i = 0 ; i < 32 ; i++) {
  457. if (!cpu_flags[i])
  458. continue;
  459. if (BIT_EXTRACT_LE(words[PAL_CPUID_WORD_EDX], i, i + 1)) {
  460. int len = strlen(cpu_flags[i]);
  461. if (flen + len + 1 > fmax) {
  462. char * new_flags = malloc(fmax * 2);
  463. memcpy(new_flags, flags, flen);
  464. free(flags);
  465. fmax *= 2;
  466. flags = new_flags;
  467. }
  468. memcpy(flags + flen, cpu_flags[i], len);
  469. flen += len;
  470. flags[flen++] = ' ';
  471. }
  472. }
  473. flags[flen ? flen - 1 : 0] = 0;
  474. ci->cpu_flags = flags;
  475. ci->cpu_bogomips = get_bogomips();
  476. if (ci->cpu_bogomips == 0.0) {
  477. SGX_DBG(DBG_E, "Warning: bogomips could not be retrieved, passing 0.0 to the application\n");
  478. }
  479. return rv;
  480. }