hab.c 15 KB

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  1. /*
  2. * Copyright (C) 2010-2015 Freescale Semiconductor, Inc.
  3. *
  4. * SPDX-License-Identifier: GPL-2.0+
  5. */
  6. #include <common.h>
  7. #include <config.h>
  8. #include <fuse.h>
  9. #include <asm/io.h>
  10. #include <asm/system.h>
  11. #include <asm/arch/clock.h>
  12. #include <asm/arch/sys_proto.h>
  13. #include <asm/mach-imx/hab.h>
  14. /* -------- start of HAB API updates ------------*/
  15. #define hab_rvt_report_event_p \
  16. ( \
  17. (is_mx6dqp()) ? \
  18. ((hab_rvt_report_event_t *)HAB_RVT_REPORT_EVENT_NEW) : \
  19. (is_mx6dq() && (soc_rev() >= CHIP_REV_1_5)) ? \
  20. ((hab_rvt_report_event_t *)HAB_RVT_REPORT_EVENT_NEW) : \
  21. (is_mx6sdl() && (soc_rev() >= CHIP_REV_1_2)) ? \
  22. ((hab_rvt_report_event_t *)HAB_RVT_REPORT_EVENT_NEW) : \
  23. ((hab_rvt_report_event_t *)HAB_RVT_REPORT_EVENT) \
  24. )
  25. #define hab_rvt_report_status_p \
  26. ( \
  27. (is_mx6dqp()) ? \
  28. ((hab_rvt_report_status_t *)HAB_RVT_REPORT_STATUS_NEW) :\
  29. (is_mx6dq() && (soc_rev() >= CHIP_REV_1_5)) ? \
  30. ((hab_rvt_report_status_t *)HAB_RVT_REPORT_STATUS_NEW) :\
  31. (is_mx6sdl() && (soc_rev() >= CHIP_REV_1_2)) ? \
  32. ((hab_rvt_report_status_t *)HAB_RVT_REPORT_STATUS_NEW) :\
  33. ((hab_rvt_report_status_t *)HAB_RVT_REPORT_STATUS) \
  34. )
  35. #define hab_rvt_authenticate_image_p \
  36. ( \
  37. (is_mx6dqp()) ? \
  38. ((hab_rvt_authenticate_image_t *)HAB_RVT_AUTHENTICATE_IMAGE_NEW) : \
  39. (is_mx6dq() && (soc_rev() >= CHIP_REV_1_5)) ? \
  40. ((hab_rvt_authenticate_image_t *)HAB_RVT_AUTHENTICATE_IMAGE_NEW) : \
  41. (is_mx6sdl() && (soc_rev() >= CHIP_REV_1_2)) ? \
  42. ((hab_rvt_authenticate_image_t *)HAB_RVT_AUTHENTICATE_IMAGE_NEW) : \
  43. ((hab_rvt_authenticate_image_t *)HAB_RVT_AUTHENTICATE_IMAGE) \
  44. )
  45. #define hab_rvt_entry_p \
  46. ( \
  47. (is_mx6dqp()) ? \
  48. ((hab_rvt_entry_t *)HAB_RVT_ENTRY_NEW) : \
  49. (is_mx6dq() && (soc_rev() >= CHIP_REV_1_5)) ? \
  50. ((hab_rvt_entry_t *)HAB_RVT_ENTRY_NEW) : \
  51. (is_mx6sdl() && (soc_rev() >= CHIP_REV_1_2)) ? \
  52. ((hab_rvt_entry_t *)HAB_RVT_ENTRY_NEW) : \
  53. ((hab_rvt_entry_t *)HAB_RVT_ENTRY) \
  54. )
  55. #define hab_rvt_exit_p \
  56. ( \
  57. (is_mx6dqp()) ? \
  58. ((hab_rvt_exit_t *)HAB_RVT_EXIT_NEW) : \
  59. (is_mx6dq() && (soc_rev() >= CHIP_REV_1_5)) ? \
  60. ((hab_rvt_exit_t *)HAB_RVT_EXIT_NEW) : \
  61. (is_mx6sdl() && (soc_rev() >= CHIP_REV_1_2)) ? \
  62. ((hab_rvt_exit_t *)HAB_RVT_EXIT_NEW) : \
  63. ((hab_rvt_exit_t *)HAB_RVT_EXIT) \
  64. )
  65. static inline void hab_rvt_failsafe_new(void)
  66. {
  67. }
  68. #define hab_rvt_failsafe_p \
  69. ( \
  70. (is_mx6dqp()) ? \
  71. ((hab_rvt_failsafe_t *)hab_rvt_failsafe_new) : \
  72. (is_mx6dq() && (soc_rev() >= CHIP_REV_1_5)) ? \
  73. ((hab_rvt_failsafe_t *)hab_rvt_failsafe_new) : \
  74. (is_mx6sdl() && (soc_rev() >= CHIP_REV_1_2)) ? \
  75. ((hab_rvt_failsafe_t *)hab_rvt_failsafe_new) : \
  76. ((hab_rvt_failsafe_t *)HAB_RVT_FAILSAFE) \
  77. )
  78. static inline enum hab_status hab_rvt_check_target_new(enum hab_target target,
  79. const void *start,
  80. size_t bytes)
  81. {
  82. return HAB_SUCCESS;
  83. }
  84. #define hab_rvt_check_target_p \
  85. ( \
  86. (is_mx6dqp()) ? \
  87. ((hab_rvt_check_target_t *)hab_rvt_check_target_new) : \
  88. (is_mx6dq() && (soc_rev() >= CHIP_REV_1_5)) ? \
  89. ((hab_rvt_check_target_t *)hab_rvt_check_target_new) : \
  90. (is_mx6sdl() && (soc_rev() >= CHIP_REV_1_2)) ? \
  91. ((hab_rvt_check_target_t *)hab_rvt_check_target_new) : \
  92. ((hab_rvt_check_target_t *)HAB_RVT_CHECK_TARGET) \
  93. )
  94. #define ALIGN_SIZE 0x1000
  95. #define MX6DQ_PU_IROM_MMU_EN_VAR 0x009024a8
  96. #define MX6DLS_PU_IROM_MMU_EN_VAR 0x00901dd0
  97. #define MX6SL_PU_IROM_MMU_EN_VAR 0x00900a18
  98. #define IS_HAB_ENABLED_BIT \
  99. (is_soc_type(MXC_SOC_MX7ULP) ? 0x80000000 : \
  100. (is_soc_type(MXC_SOC_MX7) ? 0x2000000 : 0x2))
  101. static int ivt_header_error(const char *err_str, struct ivt_header *ivt_hdr)
  102. {
  103. printf("%s magic=0x%x length=0x%02x version=0x%x\n", err_str,
  104. ivt_hdr->magic, ivt_hdr->length, ivt_hdr->version);
  105. return 1;
  106. }
  107. static int verify_ivt_header(struct ivt_header *ivt_hdr)
  108. {
  109. int result = 0;
  110. if (ivt_hdr->magic != IVT_HEADER_MAGIC)
  111. result = ivt_header_error("bad magic", ivt_hdr);
  112. if (be16_to_cpu(ivt_hdr->length) != IVT_TOTAL_LENGTH)
  113. result = ivt_header_error("bad length", ivt_hdr);
  114. if (ivt_hdr->version != IVT_HEADER_V1 &&
  115. ivt_hdr->version != IVT_HEADER_V2)
  116. result = ivt_header_error("bad version", ivt_hdr);
  117. return result;
  118. }
  119. #if !defined(CONFIG_SPL_BUILD)
  120. #define MAX_RECORD_BYTES (8*1024) /* 4 kbytes */
  121. struct record {
  122. uint8_t tag; /* Tag */
  123. uint8_t len[2]; /* Length */
  124. uint8_t par; /* Version */
  125. uint8_t contents[MAX_RECORD_BYTES];/* Record Data */
  126. bool any_rec_flag;
  127. };
  128. static char *rsn_str[] = {
  129. "RSN = HAB_RSN_ANY (0x00)\n",
  130. "RSN = HAB_ENG_FAIL (0x30)\n",
  131. "RSN = HAB_INV_ADDRESS (0x22)\n",
  132. "RSN = HAB_INV_ASSERTION (0x0C)\n",
  133. "RSN = HAB_INV_CALL (0x28)\n",
  134. "RSN = HAB_INV_CERTIFICATE (0x21)\n",
  135. "RSN = HAB_INV_COMMAND (0x06)\n",
  136. "RSN = HAB_INV_CSF (0x11)\n",
  137. "RSN = HAB_INV_DCD (0x27)\n",
  138. "RSN = HAB_INV_INDEX (0x0F)\n",
  139. "RSN = HAB_INV_IVT (0x05)\n",
  140. "RSN = HAB_INV_KEY (0x1D)\n",
  141. "RSN = HAB_INV_RETURN (0x1E)\n",
  142. "RSN = HAB_INV_SIGNATURE (0x18)\n",
  143. "RSN = HAB_INV_SIZE (0x17)\n",
  144. "RSN = HAB_MEM_FAIL (0x2E)\n",
  145. "RSN = HAB_OVR_COUNT (0x2B)\n",
  146. "RSN = HAB_OVR_STORAGE (0x2D)\n",
  147. "RSN = HAB_UNS_ALGORITHM (0x12)\n",
  148. "RSN = HAB_UNS_COMMAND (0x03)\n",
  149. "RSN = HAB_UNS_ENGINE (0x0A)\n",
  150. "RSN = HAB_UNS_ITEM (0x24)\n",
  151. "RSN = HAB_UNS_KEY (0x1B)\n",
  152. "RSN = HAB_UNS_PROTOCOL (0x14)\n",
  153. "RSN = HAB_UNS_STATE (0x09)\n",
  154. "RSN = INVALID\n",
  155. NULL
  156. };
  157. static char *sts_str[] = {
  158. "STS = HAB_SUCCESS (0xF0)\n",
  159. "STS = HAB_FAILURE (0x33)\n",
  160. "STS = HAB_WARNING (0x69)\n",
  161. "STS = INVALID\n",
  162. NULL
  163. };
  164. static char *eng_str[] = {
  165. "ENG = HAB_ENG_ANY (0x00)\n",
  166. "ENG = HAB_ENG_SCC (0x03)\n",
  167. "ENG = HAB_ENG_RTIC (0x05)\n",
  168. "ENG = HAB_ENG_SAHARA (0x06)\n",
  169. "ENG = HAB_ENG_CSU (0x0A)\n",
  170. "ENG = HAB_ENG_SRTC (0x0C)\n",
  171. "ENG = HAB_ENG_DCP (0x1B)\n",
  172. "ENG = HAB_ENG_CAAM (0x1D)\n",
  173. "ENG = HAB_ENG_SNVS (0x1E)\n",
  174. "ENG = HAB_ENG_OCOTP (0x21)\n",
  175. "ENG = HAB_ENG_DTCP (0x22)\n",
  176. "ENG = HAB_ENG_ROM (0x36)\n",
  177. "ENG = HAB_ENG_HDCP (0x24)\n",
  178. "ENG = HAB_ENG_RTL (0x77)\n",
  179. "ENG = HAB_ENG_SW (0xFF)\n",
  180. "ENG = INVALID\n",
  181. NULL
  182. };
  183. static char *ctx_str[] = {
  184. "CTX = HAB_CTX_ANY(0x00)\n",
  185. "CTX = HAB_CTX_FAB (0xFF)\n",
  186. "CTX = HAB_CTX_ENTRY (0xE1)\n",
  187. "CTX = HAB_CTX_TARGET (0x33)\n",
  188. "CTX = HAB_CTX_AUTHENTICATE (0x0A)\n",
  189. "CTX = HAB_CTX_DCD (0xDD)\n",
  190. "CTX = HAB_CTX_CSF (0xCF)\n",
  191. "CTX = HAB_CTX_COMMAND (0xC0)\n",
  192. "CTX = HAB_CTX_AUT_DAT (0xDB)\n",
  193. "CTX = HAB_CTX_ASSERT (0xA0)\n",
  194. "CTX = HAB_CTX_EXIT (0xEE)\n",
  195. "CTX = INVALID\n",
  196. NULL
  197. };
  198. static uint8_t hab_statuses[5] = {
  199. HAB_STS_ANY,
  200. HAB_FAILURE,
  201. HAB_WARNING,
  202. HAB_SUCCESS,
  203. -1
  204. };
  205. static uint8_t hab_reasons[26] = {
  206. HAB_RSN_ANY,
  207. HAB_ENG_FAIL,
  208. HAB_INV_ADDRESS,
  209. HAB_INV_ASSERTION,
  210. HAB_INV_CALL,
  211. HAB_INV_CERTIFICATE,
  212. HAB_INV_COMMAND,
  213. HAB_INV_CSF,
  214. HAB_INV_DCD,
  215. HAB_INV_INDEX,
  216. HAB_INV_IVT,
  217. HAB_INV_KEY,
  218. HAB_INV_RETURN,
  219. HAB_INV_SIGNATURE,
  220. HAB_INV_SIZE,
  221. HAB_MEM_FAIL,
  222. HAB_OVR_COUNT,
  223. HAB_OVR_STORAGE,
  224. HAB_UNS_ALGORITHM,
  225. HAB_UNS_COMMAND,
  226. HAB_UNS_ENGINE,
  227. HAB_UNS_ITEM,
  228. HAB_UNS_KEY,
  229. HAB_UNS_PROTOCOL,
  230. HAB_UNS_STATE,
  231. -1
  232. };
  233. static uint8_t hab_contexts[12] = {
  234. HAB_CTX_ANY,
  235. HAB_CTX_FAB,
  236. HAB_CTX_ENTRY,
  237. HAB_CTX_TARGET,
  238. HAB_CTX_AUTHENTICATE,
  239. HAB_CTX_DCD,
  240. HAB_CTX_CSF,
  241. HAB_CTX_COMMAND,
  242. HAB_CTX_AUT_DAT,
  243. HAB_CTX_ASSERT,
  244. HAB_CTX_EXIT,
  245. -1
  246. };
  247. static uint8_t hab_engines[16] = {
  248. HAB_ENG_ANY,
  249. HAB_ENG_SCC,
  250. HAB_ENG_RTIC,
  251. HAB_ENG_SAHARA,
  252. HAB_ENG_CSU,
  253. HAB_ENG_SRTC,
  254. HAB_ENG_DCP,
  255. HAB_ENG_CAAM,
  256. HAB_ENG_SNVS,
  257. HAB_ENG_OCOTP,
  258. HAB_ENG_DTCP,
  259. HAB_ENG_ROM,
  260. HAB_ENG_HDCP,
  261. HAB_ENG_RTL,
  262. HAB_ENG_SW,
  263. -1
  264. };
  265. static inline uint8_t get_idx(uint8_t *list, uint8_t tgt)
  266. {
  267. uint8_t idx = 0;
  268. uint8_t element = list[idx];
  269. while (element != -1) {
  270. if (element == tgt)
  271. return idx;
  272. element = list[++idx];
  273. }
  274. return -1;
  275. }
  276. static void process_event_record(uint8_t *event_data, size_t bytes)
  277. {
  278. struct record *rec = (struct record *)event_data;
  279. printf("\n\n%s", sts_str[get_idx(hab_statuses, rec->contents[0])]);
  280. printf("%s", rsn_str[get_idx(hab_reasons, rec->contents[1])]);
  281. printf("%s", ctx_str[get_idx(hab_contexts, rec->contents[2])]);
  282. printf("%s", eng_str[get_idx(hab_engines, rec->contents[3])]);
  283. }
  284. static void display_event(uint8_t *event_data, size_t bytes)
  285. {
  286. uint32_t i;
  287. if (!(event_data && bytes > 0))
  288. return;
  289. for (i = 0; i < bytes; i++) {
  290. if (i == 0)
  291. printf("\t0x%02x", event_data[i]);
  292. else if ((i % 8) == 0)
  293. printf("\n\t0x%02x", event_data[i]);
  294. else
  295. printf(" 0x%02x", event_data[i]);
  296. }
  297. process_event_record(event_data, bytes);
  298. }
  299. static int get_hab_status(void)
  300. {
  301. uint32_t index = 0; /* Loop index */
  302. uint8_t event_data[128]; /* Event data buffer */
  303. size_t bytes = sizeof(event_data); /* Event size in bytes */
  304. enum hab_config config = 0;
  305. enum hab_state state = 0;
  306. hab_rvt_report_event_t *hab_rvt_report_event;
  307. hab_rvt_report_status_t *hab_rvt_report_status;
  308. hab_rvt_report_event = hab_rvt_report_event_p;
  309. hab_rvt_report_status = hab_rvt_report_status_p;
  310. if (imx_hab_is_enabled())
  311. puts("\nSecure boot enabled\n");
  312. else
  313. puts("\nSecure boot disabled\n");
  314. /* Check HAB status */
  315. if (hab_rvt_report_status(&config, &state) != HAB_SUCCESS) {
  316. printf("\nHAB Configuration: 0x%02x, HAB State: 0x%02x\n",
  317. config, state);
  318. /* Display HAB Error events */
  319. while (hab_rvt_report_event(HAB_FAILURE, index, event_data,
  320. &bytes) == HAB_SUCCESS) {
  321. puts("\n");
  322. printf("--------- HAB Event %d -----------------\n",
  323. index + 1);
  324. puts("event data:\n");
  325. display_event(event_data, bytes);
  326. puts("\n");
  327. bytes = sizeof(event_data);
  328. index++;
  329. }
  330. }
  331. /* Display message if no HAB events are found */
  332. else {
  333. printf("\nHAB Configuration: 0x%02x, HAB State: 0x%02x\n",
  334. config, state);
  335. puts("No HAB Events Found!\n\n");
  336. }
  337. return 0;
  338. }
  339. static int do_hab_status(cmd_tbl_t *cmdtp, int flag, int argc,
  340. char * const argv[])
  341. {
  342. if ((argc != 1)) {
  343. cmd_usage(cmdtp);
  344. return 1;
  345. }
  346. get_hab_status();
  347. return 0;
  348. }
  349. static int do_authenticate_image(cmd_tbl_t *cmdtp, int flag, int argc,
  350. char * const argv[])
  351. {
  352. ulong addr, length, ivt_offset;
  353. int rcode = 0;
  354. if (argc < 4)
  355. return CMD_RET_USAGE;
  356. addr = simple_strtoul(argv[1], NULL, 16);
  357. length = simple_strtoul(argv[2], NULL, 16);
  358. ivt_offset = simple_strtoul(argv[3], NULL, 16);
  359. rcode = imx_hab_authenticate_image(addr, length, ivt_offset);
  360. if (rcode == 0)
  361. rcode = CMD_RET_SUCCESS;
  362. else
  363. rcode = CMD_RET_FAILURE;
  364. return rcode;
  365. }
  366. static int do_hab_failsafe(cmd_tbl_t *cmdtp, int flag, int argc,
  367. char * const argv[])
  368. {
  369. hab_rvt_failsafe_t *hab_rvt_failsafe;
  370. if (argc != 1) {
  371. cmd_usage(cmdtp);
  372. return 1;
  373. }
  374. hab_rvt_failsafe = hab_rvt_failsafe_p;
  375. hab_rvt_failsafe();
  376. return 0;
  377. }
  378. U_BOOT_CMD(
  379. hab_status, CONFIG_SYS_MAXARGS, 1, do_hab_status,
  380. "display HAB status",
  381. ""
  382. );
  383. U_BOOT_CMD(
  384. hab_auth_img, 4, 0, do_authenticate_image,
  385. "authenticate image via HAB",
  386. "addr length ivt_offset\n"
  387. "addr - image hex address\n"
  388. "length - image hex length\n"
  389. "ivt_offset - hex offset of IVT in the image"
  390. );
  391. U_BOOT_CMD(
  392. hab_failsafe, CONFIG_SYS_MAXARGS, 1, do_hab_failsafe,
  393. "run BootROM failsafe routine",
  394. ""
  395. );
  396. #endif /* !defined(CONFIG_SPL_BUILD) */
  397. bool imx_hab_is_enabled(void)
  398. {
  399. struct imx_sec_config_fuse_t *fuse =
  400. (struct imx_sec_config_fuse_t *)&imx_sec_config_fuse;
  401. uint32_t reg;
  402. int ret;
  403. ret = fuse_read(fuse->bank, fuse->word, &reg);
  404. if (ret) {
  405. puts("\nSecure boot fuse read error\n");
  406. return ret;
  407. }
  408. return (reg & IS_HAB_ENABLED_BIT) == IS_HAB_ENABLED_BIT;
  409. }
  410. int imx_hab_authenticate_image(uint32_t ddr_start, uint32_t image_size,
  411. uint32_t ivt_offset)
  412. {
  413. uint32_t load_addr = 0;
  414. size_t bytes;
  415. uint32_t ivt_addr = 0;
  416. int result = 1;
  417. ulong start;
  418. hab_rvt_authenticate_image_t *hab_rvt_authenticate_image;
  419. hab_rvt_entry_t *hab_rvt_entry;
  420. hab_rvt_exit_t *hab_rvt_exit;
  421. hab_rvt_check_target_t *hab_rvt_check_target;
  422. struct ivt *ivt;
  423. struct ivt_header *ivt_hdr;
  424. enum hab_status status;
  425. hab_rvt_authenticate_image = hab_rvt_authenticate_image_p;
  426. hab_rvt_entry = hab_rvt_entry_p;
  427. hab_rvt_exit = hab_rvt_exit_p;
  428. hab_rvt_check_target = hab_rvt_check_target_p;
  429. if (!imx_hab_is_enabled()) {
  430. puts("hab fuse not enabled\n");
  431. return 0;
  432. }
  433. printf("\nAuthenticate image from DDR location 0x%x...\n",
  434. ddr_start);
  435. hab_caam_clock_enable(1);
  436. /* Calculate IVT address header */
  437. ivt_addr = ddr_start + ivt_offset;
  438. ivt = (struct ivt *)ivt_addr;
  439. ivt_hdr = &ivt->hdr;
  440. /* Verify IVT header bugging out on error */
  441. if (verify_ivt_header(ivt_hdr))
  442. goto hab_authentication_exit;
  443. /* Verify IVT body */
  444. if (ivt->self != ivt_addr) {
  445. printf("ivt->self 0x%08x pointer is 0x%08x\n",
  446. ivt->self, ivt_addr);
  447. goto hab_authentication_exit;
  448. }
  449. /* Verify if IVT DCD pointer is NULL */
  450. if (ivt->dcd) {
  451. puts("Error: DCD pointer must be NULL\n");
  452. goto hab_authentication_exit;
  453. }
  454. start = ddr_start;
  455. bytes = image_size;
  456. if (hab_rvt_entry() != HAB_SUCCESS) {
  457. puts("hab entry function fail\n");
  458. goto hab_exit_failure_print_status;
  459. }
  460. status = hab_rvt_check_target(HAB_TGT_MEMORY, (void *)ddr_start, bytes);
  461. if (status != HAB_SUCCESS) {
  462. printf("HAB check target 0x%08x-0x%08x fail\n",
  463. ddr_start, ddr_start + bytes);
  464. goto hab_exit_failure_print_status;
  465. }
  466. #ifdef DEBUG
  467. printf("\nivt_offset = 0x%x, ivt addr = 0x%x\n", ivt_offset, ivt_addr);
  468. printf("ivt entry = 0x%08x, dcd = 0x%08x, csf = 0x%08x\n", ivt->entry,
  469. ivt->dcd, ivt->csf);
  470. puts("Dumping IVT\n");
  471. print_buffer(ivt_addr, (void *)(ivt_addr), 4, 0x8, 0);
  472. puts("Dumping CSF Header\n");
  473. print_buffer(ivt->csf, (void *)(ivt->csf), 4, 0x10, 0);
  474. #if !defined(CONFIG_SPL_BUILD)
  475. get_hab_status();
  476. #endif
  477. puts("\nCalling authenticate_image in ROM\n");
  478. printf("\tivt_offset = 0x%x\n", ivt_offset);
  479. printf("\tstart = 0x%08lx\n", start);
  480. printf("\tbytes = 0x%x\n", bytes);
  481. #endif
  482. /*
  483. * If the MMU is enabled, we have to notify the ROM
  484. * code, or it won't flush the caches when needed.
  485. * This is done, by setting the "pu_irom_mmu_enabled"
  486. * word to 1. You can find its address by looking in
  487. * the ROM map. This is critical for
  488. * authenticate_image(). If MMU is enabled, without
  489. * setting this bit, authentication will fail and may
  490. * crash.
  491. */
  492. /* Check MMU enabled */
  493. if (is_soc_type(MXC_SOC_MX6) && get_cr() & CR_M) {
  494. if (is_mx6dq()) {
  495. /*
  496. * This won't work on Rev 1.0.0 of
  497. * i.MX6Q/D, since their ROM doesn't
  498. * do cache flushes. don't think any
  499. * exist, so we ignore them.
  500. */
  501. if (!is_mx6dqp())
  502. writel(1, MX6DQ_PU_IROM_MMU_EN_VAR);
  503. } else if (is_mx6sdl()) {
  504. writel(1, MX6DLS_PU_IROM_MMU_EN_VAR);
  505. } else if (is_mx6sl()) {
  506. writel(1, MX6SL_PU_IROM_MMU_EN_VAR);
  507. }
  508. }
  509. load_addr = (uint32_t)hab_rvt_authenticate_image(
  510. HAB_CID_UBOOT,
  511. ivt_offset, (void **)&start,
  512. (size_t *)&bytes, NULL);
  513. if (hab_rvt_exit() != HAB_SUCCESS) {
  514. puts("hab exit function fail\n");
  515. load_addr = 0;
  516. }
  517. hab_exit_failure_print_status:
  518. #if !defined(CONFIG_SPL_BUILD)
  519. get_hab_status();
  520. #endif
  521. hab_authentication_exit:
  522. if (load_addr != 0)
  523. result = 0;
  524. return result;
  525. }