mt_boot.c 59 KB

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  1. /* Copyright Statement:
  2. *
  3. * This software/firmware and related documentation ("MediaTek Software") are
  4. * protected under relevant copyright laws. The information contained herein
  5. * is confidential and proprietary to MediaTek Inc. and/or its licensors.
  6. * Without the prior written permission of MediaTek inc. and/or its licensors,
  7. * any reproduction, modification, use or disclosure of MediaTek Software,
  8. * and information contained herein, in whole or in part, shall be strictly prohibited.
  9. */
  10. /* MediaTek Inc. (C) 2015. All rights reserved.
  11. *
  12. * BY OPENING THIS FILE, RECEIVER HEREBY UNEQUIVOCALLY ACKNOWLEDGES AND AGREES
  13. * THAT THE SOFTWARE/FIRMWARE AND ITS DOCUMENTATIONS ("MEDIATEK SOFTWARE")
  14. * RECEIVED FROM MEDIATEK AND/OR ITS REPRESENTATIVES ARE PROVIDED TO RECEIVER ON
  15. * AN "AS-IS" BASIS ONLY. MEDIATEK EXPRESSLY DISCLAIMS ANY AND ALL WARRANTIES,
  16. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE IMPLIED WARRANTIES OF
  17. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NONINFRINGEMENT.
  18. * NEITHER DOES MEDIATEK PROVIDE ANY WARRANTY WHATSOEVER WITH RESPECT TO THE
  19. * SOFTWARE OF ANY THIRD PARTY WHICH MAY BE USED BY, INCORPORATED IN, OR
  20. * SUPPLIED WITH THE MEDIATEK SOFTWARE, AND RECEIVER AGREES TO LOOK ONLY TO SUCH
  21. * THIRD PARTY FOR ANY WARRANTY CLAIM RELATING THERETO. RECEIVER EXPRESSLY ACKNOWLEDGES
  22. * THAT IT IS RECEIVER'S SOLE RESPONSIBILITY TO OBTAIN FROM ANY THIRD PARTY ALL PROPER LICENSES
  23. * CONTAINED IN MEDIATEK SOFTWARE. MEDIATEK SHALL ALSO NOT BE RESPONSIBLE FOR ANY MEDIATEK
  24. * SOFTWARE RELEASES MADE TO RECEIVER'S SPECIFICATION OR TO CONFORM TO A PARTICULAR
  25. * STANDARD OR OPEN FORUM. RECEIVER'S SOLE AND EXCLUSIVE REMEDY AND MEDIATEK'S ENTIRE AND
  26. * CUMULATIVE LIABILITY WITH RESPECT TO THE MEDIATEK SOFTWARE RELEASED HEREUNDER WILL BE,
  27. * AT MEDIATEK'S OPTION, TO REVISE OR REPLACE THE MEDIATEK SOFTWARE AT ISSUE,
  28. * OR REFUND ANY SOFTWARE LICENSE FEES OR SERVICE CHARGE PAID BY RECEIVER TO
  29. * MEDIATEK FOR SUCH MEDIATEK SOFTWARE AT ISSUE.
  30. */
  31. #include <atags.h> // for target_atag_masp_data()
  32. #include <app.h>
  33. #include <debug.h>
  34. #include <arch.h>
  35. #include <arch/arm.h>
  36. #include <arch/arm/mmu.h>
  37. #include <dev/udc.h>
  38. #include <reg.h>
  39. #include <string.h>
  40. #include <stdlib.h>
  41. #include <kernel/thread.h>
  42. #include <arch/ops.h>
  43. #include <ctype.h>
  44. #include <target.h>
  45. #include <platform.h>
  46. #include <platform/mt_reg_base.h>
  47. #include <platform/boot_mode.h>
  48. #include <load_vfy_boot.h>
  49. #include <boot_opt.h>
  50. #include <bootimg.h>
  51. #include <boot_info.h>
  52. #ifdef MTK_GPT_SCHEME_SUPPORT
  53. #include <platform/partition.h>
  54. #else
  55. #include <mt_partition.h>
  56. #endif
  57. #include <platform/mt_disp_drv.h>
  58. #ifdef MTK_PARTITION_COMMON
  59. #include <env.h>
  60. #else
  61. #include <platform/env.h>
  62. #endif
  63. #include <target/cust_usb.h>
  64. #include <platform/mt_gpt.h>
  65. #if defined(MTK_SECURITY_SW_SUPPORT)
  66. #include "oemkey.h"
  67. #endif
  68. #include <video.h> // for video_printf()
  69. #ifdef CFG_MTK_WDT_COMMON
  70. #include <mtk_wdt.h>
  71. #else
  72. #include <platform/mtk_wdt.h> // for mtk_wdt_disable()
  73. #endif
  74. #include <mt_boot.h>
  75. #include <libfdt.h>
  76. #include <ufdt_overlay.h> // for ufdt_install_blob(), ufdt_apply_overlay()
  77. #include <mt_rtc.h> // for Check_RTC_Recovery_Mode()
  78. #include <part_interface.h> // for partition_read()
  79. #include <dev/mrdump.h> // for mrdump_init()
  80. #include <iothread.h>
  81. #include <RoT.h>
  82. #include <odm_mdtbo.h> // for load_overlay_dtbo()
  83. #include <profiling.h>
  84. #include <rnd.h>
  85. #include <verified_boot_common.h>
  86. #include <platform/ram_console.h>
  87. #include <lk_load_md_wrapper.h> // for ccci load modem image relate
  88. #include <pal_assert.h>
  89. #include <pal_typedefs.h>
  90. #include <pal_log.h>
  91. #include <memory_layout.h>
  92. #ifdef MTK_RECOVERY_RAMDISK_SPLIT
  93. #include <load_vfy_ramdisk.h>
  94. #endif
  95. #include <bootargs.h>
  96. #include <platform/mtk_wdt.h>
  97. #include <error.h>
  98. #include <chip_id.h>
  99. #include <img_workbuf.h>
  100. #ifndef LK_RAMDISK_MAX_SIZE
  101. #define LK_RAMDISK_MAX_SIZE (16*1024*1024)
  102. #endif /* LK_RAMDISK_MAX_SIZE */
  103. #define TMPBUF_SIZE 200
  104. //#define MTK_DEBUG_SHELL
  105. #ifdef MBLOCK_LIB_SUPPORT
  106. #include <mblock.h>
  107. #endif
  108. #ifdef MTK_AB_OTA_UPDATER
  109. #include "bootctrl.h"
  110. #endif
  111. #include <dev/uart.h>
  112. #include <sec_hrid.h>
  113. #include <sec_devinfo.h>
  114. #include <log_store_lk.h>
  115. #include <lib/heap.h>
  116. extern u32 current_lk_buf_addr_get(void) __attribute__((weak));
  117. extern u32 current_buf_addr_get(void) __attribute__((weak));
  118. extern u32 current_buf_pl_lk_log_size_get(void) __attribute__((weak));
  119. enum {
  120. RUNTIME_LOG_DEACTIVATED = 0,
  121. RUNTIME_LOG_ACTIVATED
  122. };
  123. u8 g_lk_final_log = RUNTIME_LOG_ACTIVATED;
  124. // FIXME!!! The following function declaration should not exist, and appropriate
  125. // header files instead should be included.
  126. void write_protect_flow(void) __attribute__((weak));
  127. int mboot_recovery_load_raw_part(char *part_name, unsigned long *addr,
  128. unsigned int size);
  129. extern int kernel_charging_boot(void) __attribute__((weak));
  130. extern int pmic_detect_powerkey(void);
  131. extern void mt65xx_backlight_off(void);
  132. extern void jumparch64_smc(u32 addr, u32 arg1, u32 arg2, u32 arg3);
  133. extern u32 memory_size(void);
  134. extern unsigned *target_atag_devinfo_data(unsigned *ptr);
  135. extern unsigned *target_atag_videolfb(unsigned *ptr, size_t buf_size);
  136. extern unsigned *target_atag_mdinfo(unsigned *ptr);
  137. extern unsigned *target_atag_ptp(unsigned *ptr);
  138. extern void platform_uninit(void);
  139. extern void custom_port_in_kernel(BOOTMODE boot_mode, char *command);
  140. extern const char *mt_disp_get_lcm_id(void);
  141. extern unsigned int DISP_GetVRamSize(void);
  142. extern int mt_disp_is_lcm_connected(void);
  143. extern int disp_lcm_fill_lcm_dts_phandle(void* fdt, int idx) __attribute__((weak));
  144. extern int disp_lcm_get_dts_panel_index(void) __attribute__((weak));
  145. extern int fastboot_init(void *base, unsigned size);
  146. extern int sec_boot_check(int try_lock);
  147. extern int seclib_set_oemkey(u8 *key, u32 key_size);
  148. extern BI_DRAM bi_dram[MAX_NR_BANK];
  149. #ifdef DEVICE_TREE_SUPPORT
  150. #include <libfdt.h>
  151. extern unsigned int *device_tree, device_tree_size;
  152. #endif
  153. extern unsigned int g_boot_state;
  154. extern int platform_skip_hibernation(void) __attribute__((weak));
  155. extern int is_meta_log_disable(void)__attribute__((weak));
  156. extern int g_is_64bit_kernel;
  157. u32 g_64bit_dtb_size = 0;
  158. #if defined(MBLOCK_LIB_SUPPORT) && defined(MTK_3LEVEL_PAGETABLE)
  159. #define ALLOCATE_FROM_MBLOCK
  160. #endif
  161. #ifdef ALLOCATE_FROM_MBLOCK
  162. /* Occupy dtb/kernel/randisk from mblock */
  163. u32 dtb_kernel_addr_mb = 0;
  164. u32 kernel_addr_mb = 0;
  165. u32 ramdisk_addr_mb = 0;
  166. u32 kernel_sz_mb = 0;
  167. u32 ramdisk_sz_mb = 0;
  168. u32 lk_addr_mb = 0;
  169. u32 scratch_addr_mb = 0;
  170. static u32 kernel_align = PAGE_SIZE;
  171. #endif
  172. #if defined(MTK_SECURITY_SW_SUPPORT)
  173. u8 g_oemkey[OEM_PUBK_SZ] = {OEM_PUBK};
  174. #endif
  175. /* battery driver related */
  176. signed int fg_swocv_v;
  177. signed int fg_swocv_i;
  178. int shutdown_time;
  179. int boot_voltage;
  180. int two_sec_reboot;
  181. #ifdef MTK_AB_OTA_UPDATER
  182. const char *p_AB_suffix;
  183. static uint8_t AB_retry_count;
  184. #endif /* MTK_AB_OTA_UPDATER */
  185. /* Please define SN_BUF_LEN in cust_usb.h */
  186. #ifndef SN_BUF_LEN
  187. #define SN_BUF_LEN 19 /* fastboot use 13 bytes as default, max is 19 */
  188. #endif
  189. #define FDT_BUFF_SIZE (2048) //must align with CMDLINE_LEN
  190. #define FDT_CHECKER_SIZE (8)
  191. #define FDT_SPARE_SIZE (FDT_BUFF_SIZE + FDT_CHECKER_SIZE)
  192. #define FDT_BUFF_END "BUFFEND"
  193. #define DEFAULT_SERIAL_NUM "0123456789ABCDEF"
  194. #define KERNEL_64BITS 1
  195. #define KERNEL_32BITS 0
  196. #define VIDEOLFB_PRE_HEADER_LENGTH (5)
  197. /* define meta init.rc path */
  198. #if defined (MTK_RC_TO_VENDOR)
  199. #define META_INIT_RC "/vendor/etc/init/hw/meta_init.rc"
  200. #define FACTORY_INIT_RC "/vendor/etc/init/hw/factory_init.rc"
  201. #else
  202. #define META_INIT_RC "/meta_init.rc"
  203. #define FACTORY_INIT_RC "/factory_init.rc"
  204. #endif
  205. /*
  206. * Support read barcode from /dev/pro_info to be serial number.
  207. * Then pass the serial number from cmdline to kernel.
  208. */
  209. /* The following option should be defined in project make file. */
  210. #define SERIAL_NUM_FROM_BARCODE
  211. #if defined(CONFIG_MTK_USB_UNIQUE_SERIAL) || (defined(MTK_SECURITY_SW_SUPPORT) && defined(MTK_SEC_FASTBOOT_UNLOCK_SUPPORT))
  212. #define SERIALNO_LEN 38 /* from preloader */
  213. char sn_buf[SN_BUF_LEN + 1] = ""; /* will read from EFUSE_CTR_BASE */
  214. #else
  215. #define SERIALNO_LEN 38
  216. char sn_buf[SN_BUF_LEN + 1] = FASTBOOT_DEVNAME;
  217. #endif
  218. static struct udc_device surf_udc_device = {
  219. .vendor_id = USB_VENDORID,
  220. .product_id = USB_PRODUCTID,
  221. .version_id = USB_VERSIONID,
  222. .manufacturer = USB_MANUFACTURER,
  223. .product = USB_PRODUCT_NAME,
  224. };
  225. typedef enum BUILD_TYPE {
  226. BUILD_TYPE_USER = 0,
  227. BUILD_TYPE_USERDEBUG = 1,
  228. BUILD_TYPE_ENG = 2
  229. } BUILD_TYPE_T;
  230. /****************************************************************************
  231. * Note that userdebug build defines both USERDEBUG_BUILD and USER_BUILD for
  232. * backward compatibility for now. Therefore, it is important to check
  233. * USERDEBUG_BUILD before checking USER_BUILD.
  234. ****************************************************************************/
  235. #ifdef USERDEBUG_BUILD
  236. static BUILD_TYPE_T eBuildType = BUILD_TYPE_USERDEBUG;
  237. #elif defined(USER_BUILD)
  238. static BUILD_TYPE_T eBuildType = BUILD_TYPE_USER;
  239. #elif defined(ENG_BUILD)
  240. static BUILD_TYPE_T eBuildType = BUILD_TYPE_ENG;
  241. #else
  242. static BUILD_TYPE_T eBuildType = BUILD_TYPE_USER;
  243. #endif
  244. void msg_header_error(char *img_name)
  245. {
  246. pal_log_err("[MBOOT] Load '%s' partition Error\n", img_name);
  247. pal_log_err(
  248. "\n*******************************************************\n");
  249. pal_log_err("ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR\n");
  250. pal_log_err("*******************************************************\n");
  251. pal_log_err("> If you use NAND boot\n");
  252. pal_log_err("> (1) %s is wrong !!!! \n", img_name);
  253. pal_log_err(
  254. "> (2) please make sure the image you've downloaded is correct\n");
  255. pal_log_err("\n> If you use MSDC boot\n");
  256. pal_log_err("> (1) %s is not founded in SD card !!!! \n", img_name);
  257. pal_log_err("> (2) please make sure the image is put in SD card\n");
  258. pal_log_err("*******************************************************\n");
  259. pal_log_err("ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR\n");
  260. pal_log_err("*******************************************************\n");
  261. mtk_wdt_disable();
  262. mdelay(8000);
  263. mtk_arch_reset(1);
  264. }
  265. void msg_img_error(char *img_name)
  266. {
  267. pal_log_err("[MBOOT] Load '%s' partition Error\n", img_name);
  268. pal_log_err(
  269. "\n*******************************************************\n");
  270. pal_log_err("ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR\n");
  271. pal_log_err("*******************************************************\n");
  272. pal_log_err("> Please check kernel and rootfs in %s are both correct.\n",
  273. img_name);
  274. pal_log_err("*******************************************************\n");
  275. pal_log_err("ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR.ERROR\n");
  276. pal_log_err("*******************************************************\n");
  277. mtk_wdt_disable();
  278. mdelay(8000);
  279. mtk_arch_reset(1);
  280. }
  281. //*********
  282. //* Notice : it's kernel start addr (and not include any debug header)
  283. extern unsigned int g_kmem_off;
  284. //*********
  285. //* Notice : it's rootfs start addr (and not include any debug header)
  286. extern int g_nr_bank;
  287. extern unsigned int boot_time;
  288. extern BOOT_ARGUMENT *g_boot_arg;
  289. extern bool g_boot_reason_change __attribute__((weak));
  290. extern int has_set_p2u;
  291. extern unsigned int g_fb_base;
  292. extern unsigned int g_fb_size;
  293. unsigned int logo_lk_t = 0;
  294. bool boot_ftrace = false;
  295. static int boot_time_via_dt(void *fdt, unsigned int *lk_boot_time)
  296. {
  297. int offset, nodeoffset, ret = 0;
  298. unsigned int pl_t = 0, i;
  299. const char *boot_names[] = {"pl_t","lk_t","lk_logo_t"};
  300. const char *main_boot_name;
  301. offset = fdt_path_offset(fdt, "/");
  302. if (offset < 0) {
  303. dprintf(CRITICAL,"Warning: can't search root node in device tree\n");
  304. }
  305. nodeoffset = fdt_add_subnode(fdt, offset, "bootprof");
  306. if (nodeoffset < 0) {
  307. dprintf(CRITICAL,"Warning: can't add bootprof node in device tree\n");
  308. return -1;
  309. } else {
  310. pl_t = g_boot_arg->boot_time;
  311. *lk_boot_time = (unsigned int)get_timer(boot_time);
  312. int boot_times[] = {cpu_to_fdt32(pl_t), cpu_to_fdt32(*lk_boot_time),
  313. cpu_to_fdt32(logo_lk_t)};
  314. for (i = 0; i < sizeof(boot_times)/sizeof(boot_times[0]); i++) {
  315. main_boot_name = boot_names[i];
  316. ret = fdt_setprop(fdt, nodeoffset, main_boot_name, &boot_times[i],
  317. sizeof(unsigned int));
  318. if (ret) {
  319. dprintf(CRITICAL,"Warning: can't add %s property in device tree\n",
  320. main_boot_name);
  321. return -1;
  322. }
  323. }
  324. }
  325. return ret;
  326. }
  327. void __attribute__((weak)) send_root_of_trust_info(void){}
  328. static void mboot_free_lk_scratch_from_mblock()
  329. {
  330. #ifdef ALLOCATE_FROM_MBLOCK
  331. /* when mrdump is enabled, kernel should*/
  332. /* not use any memory which may be corrupt */
  333. /* before lk start dump in case those memory*/
  334. /* has important data but be corrupted before dump*/
  335. /* Free before stepping into kernel */
  336. if (lk_addr_mb != 0) {
  337. mblock_create(&g_boot_arg->mblock_info,
  338. &g_boot_arg->orig_dram_info,
  339. (u64)lk_addr_mb, (u64)MEMSIZE);
  340. }
  341. if (scratch_addr_mb != 0) {
  342. mblock_create(&g_boot_arg->mblock_info,
  343. &g_boot_arg->orig_dram_info,
  344. (u64)scratch_addr_mb, (u64)(SCRATCH_SIZE));
  345. }
  346. #endif
  347. }
  348. void mboot_allocate_lk_scratch_from_mblock()
  349. {
  350. #ifdef ALLOCATE_FROM_MBLOCK
  351. /* never allocate mb more than once */
  352. if ((lk_addr_mb == MEMBASE)||(scratch_addr_mb == SCRATCH_ADDR))
  353. return;
  354. // Claim the LK MEMBASE from mblock during its life time
  355. lk_addr_mb = (u32)mblock_reserve_ext(&g_boot_arg->mblock_info,
  356. MEMSIZE, SECTION_SIZE, (MEMBASE + MEMSIZE),
  357. 0, "lk_addr_mb");
  358. // Claim the LK SCRATCH from mblock during its life time (including logo)
  359. scratch_addr_mb = (u32)mblock_reserve_ext(&g_boot_arg->mblock_info,
  360. SCRATCH_SIZE, PAGE_SIZE, (SCRATCH_ADDR + SCRATCH_SIZE),
  361. 0, "scratch_addr_mb");
  362. /* Check if the clarmed mb address the same as predefined one */
  363. if ((!lk_addr_mb) || (lk_addr_mb != MEMBASE)) {
  364. pal_log_err("Warning! MEMBASE (0x%x) is not taken from mb (0x%x)\n", MEMBASE, lk_addr_mb);
  365. assert(0);
  366. }
  367. if ((!scratch_addr_mb) || (scratch_addr_mb != SCRATCH_ADDR)) {
  368. pal_log_err("Warning! SCRATCH (0x%x) is not taken from mb (0x%x)\n", SCRATCH_ADDR, scratch_addr_mb);
  369. assert(0);
  370. }
  371. #endif
  372. }
  373. static void mboot_free_bootimg_from_mblock()
  374. {
  375. #ifdef ALLOCATE_FROM_MBLOCK
  376. /* when mrdump is enabled, kernel should*/
  377. /* not use any memory which may be corrupt */
  378. /* before lk start dump in case those memory*/
  379. /* has important data but be corrupted before dump*/
  380. /* Return the bootimg mb before stepping into kernel */
  381. if (dtb_kernel_addr_mb != 0) {
  382. mblock_create(&g_boot_arg->mblock_info,
  383. &g_boot_arg->orig_dram_info,
  384. (u64)dtb_kernel_addr_mb, (u64)DTB_MAX_SIZE);
  385. }
  386. if (kernel_addr_mb != 0) {
  387. mblock_create(&g_boot_arg->mblock_info,
  388. &g_boot_arg->orig_dram_info,
  389. (u64)kernel_addr_mb, (u64)kernel_sz_mb);
  390. }
  391. if (ramdisk_addr_mb != 0) {
  392. mblock_create(&g_boot_arg->mblock_info,
  393. &g_boot_arg->orig_dram_info,
  394. (u64)ramdisk_addr_mb, (u64)ramdisk_sz_mb);
  395. }
  396. #endif
  397. }
  398. void mboot_allocate_bootimg_from_mblock(struct bootimg_hdr *p_boot_hdr)
  399. {
  400. #ifdef ALLOCATE_FROM_MBLOCK
  401. int skip_ramdisk_check = 0;
  402. /* never allocate mb more than once */
  403. if ((kernel_addr_mb == p_boot_hdr->kernel_addr)||
  404. (ramdisk_addr_mb == p_boot_hdr->ramdisk_addr)||
  405. (dtb_kernel_addr_mb == p_boot_hdr->tags_addr))
  406. return;
  407. #ifdef LK_KERNEL_64_MAX_SIZE
  408. /* use dynamic kernel laoding when
  409. * p_boot_hdr->kernel_addr = KERNEL_MBLOCK_LIMIT - LK_DYNAMIC_KERNEL_64_MAX_SIZE
  410. */
  411. #ifdef LK_DYNAMIC_KERNEL_64_MAX_SIZE
  412. if (p_boot_hdr->kernel_addr == KERNEL_MBLOCK_LIMIT - LK_DYNAMIC_KERNEL_64_MAX_SIZE)
  413. kernel_sz_mb = LK_DYNAMIC_KERNEL_64_MAX_SIZE;
  414. else
  415. #endif
  416. kernel_sz_mb = LK_KERNEL_64_MAX_SIZE;
  417. if (g_is_64bit_kernel)
  418. kernel_align = 0x80000;
  419. else
  420. kernel_align = 0x8000;
  421. #else
  422. kernel_sz_mb = 0x03200000;
  423. #endif
  424. ramdisk_sz_mb = ROUNDUP(LK_RAMDISK_MAX_SIZE, PAGE_SIZE);
  425. if (ramdisk_sz_mb == 0)
  426. skip_ramdisk_check = 1;
  427. /* To avoid dtb being corrupted, use mblock to claim it now */
  428. dtb_kernel_addr_mb = (u32)mblock_reserve_ext(&g_boot_arg->mblock_info,
  429. DTB_MAX_SIZE, DTB_MAX_SIZE, (p_boot_hdr->tags_addr+DTB_MAX_SIZE),
  430. 1, "dtb_kernel_addr_mb");
  431. kernel_addr_mb = (u32)mblock_reserve_ext(&g_boot_arg->mblock_info,
  432. kernel_sz_mb, kernel_align,(p_boot_hdr->kernel_addr+kernel_sz_mb),
  433. 0, "kernel_addr_mb");
  434. if (!skip_ramdisk_check) {
  435. ramdisk_addr_mb = (u32)mblock_reserve_ext(&g_boot_arg->mblock_info,
  436. ramdisk_sz_mb, PAGE_SIZE,(p_boot_hdr->ramdisk_addr+ramdisk_sz_mb),
  437. 0, "ramdisk_addr_mb");
  438. }
  439. /* Check if the claimed mb address the same as predefined one
  440. * For Dynamic Kernel Loading
  441. * return address != NULL
  442. * predefined address for ASAN project
  443. * p_boot_hdr->tags_addr = KERNEL_MBLOCK_LIMIT - DTB_MAX_SIZE
  444. * p_boot_hdr->kernel_addr = KERNEL_MBLOCK_LIMIT - LK_DYNAMIC_KERNEL_64_MAX_SIZE
  445. * p_boot_hdr->ramdisk_addr = KERNEL_MBLOCK_LIMIT - ROUNDUP(LK_RAMDISK_MAX_SIZE, PAGE_SIZE)
  446. * For Static Kernel Loading
  447. * return value != predefined address
  448. * return address != NULL
  449. */
  450. if ((!dtb_kernel_addr_mb) || ((dtb_kernel_addr_mb!=p_boot_hdr->tags_addr) && (p_boot_hdr->tags_addr != KERNEL_MBLOCK_LIMIT - DTB_MAX_SIZE))) {
  451. pal_log_err("Warning! dtb_kernel_addr (0x%x) is not taken from mb (0x%x)\n", p_boot_hdr->tags_addr, dtb_kernel_addr_mb);
  452. assert(0);
  453. }
  454. if ((!kernel_addr_mb) || ((kernel_addr_mb!=p_boot_hdr->kernel_addr) && (p_boot_hdr->kernel_addr != KERNEL_MBLOCK_LIMIT - kernel_sz_mb))) {
  455. pal_log_err("Warning! kernel_addr (0x%x) is not taken from mb (0x%x)\n", p_boot_hdr->kernel_addr, kernel_addr_mb);
  456. assert(0);
  457. }
  458. if (!skip_ramdisk_check) {
  459. if ((!ramdisk_addr_mb) || ((ramdisk_addr_mb!=p_boot_hdr->ramdisk_addr) && (p_boot_hdr->ramdisk_addr != KERNEL_MBLOCK_LIMIT - ROUNDUP(LK_RAMDISK_MAX_SIZE, PAGE_SIZE)))) {
  460. pal_log_err("Warning! ramdisk_addr (0x%x) is not taken from mb (0x%x)\n", p_boot_hdr->ramdisk_addr, ramdisk_addr_mb);
  461. assert(0);
  462. }
  463. }
  464. #ifndef DUMMY_MEMORY_LAYOUT
  465. /* Use memory_layout.h to check if overlap
  466. * Only need to check address with memory layout when p_boot_hdr->tags/ramdisk_addr is not 0
  467. */
  468. if ((dtb_kernel_addr_mb!=LK_DT_BASE) && (p_boot_hdr->tags_addr != KERNEL_MBLOCK_LIMIT - DTB_MAX_SIZE)) {
  469. pal_log_err("Warning! compare memory_layout.h with bootimg about DT\n");
  470. assert(0);
  471. }
  472. if (!skip_ramdisk_check) {
  473. if (((ramdisk_addr_mb!=LK_RAMDISK_BASE) && (p_boot_hdr->ramdisk_addr != KERNEL_MBLOCK_LIMIT - ramdisk_sz_mb)) || (ramdisk_sz_mb > LK_RAMDISK_MAX_SIZE)) {
  474. pal_log_err("Warning! compare memory_layout.h with bootimg about ramdisk\n");
  475. assert(0);
  476. }
  477. }
  478. #endif
  479. /* update boot_hdr kernel/tags/ramdisk address */
  480. p_boot_hdr->kernel_addr = kernel_addr_mb;
  481. p_boot_hdr->tags_addr = dtb_kernel_addr_mb;
  482. p_boot_hdr->ramdisk_addr = ramdisk_addr_mb;
  483. #endif
  484. }
  485. static void check_hibernation()
  486. {
  487. int hibboot = 0;
  488. char tmpbuf[TMPBUF_SIZE];
  489. hibboot = get_env("hibboot") == NULL ? 0 : atoi(get_env("hibboot"));
  490. switch (g_boot_mode) {
  491. case RECOVERY_BOOT:
  492. case FACTORY_BOOT:
  493. case ALARM_BOOT:
  494. #if defined(MTK_KERNEL_POWER_OFF_CHARGING) || defined(MTK_CHARGER_NEW_ARCH)
  495. case KERNEL_POWER_OFF_CHARGING_BOOT:
  496. case LOW_POWER_OFF_CHARGING_BOOT:
  497. #endif
  498. goto SKIP_HIB_BOOT;
  499. default:
  500. break;
  501. }
  502. if (platform_skip_hibernation && platform_skip_hibernation())
  503. goto SKIP_HIB_BOOT;
  504. if (get_env("resume") != NULL) {
  505. if (1 == hibboot) {
  506. snprintf(tmpbuf, TMPBUF_SIZE, "%s%s", " resume=", get_env("resume"));
  507. cmdline_append(tmpbuf);
  508. #if defined(MTK_MLC_NAND_SUPPORT)
  509. snprintf(tmpbuf, TMPBUF_SIZE, "%s%s", " ubi.mtd=", get_env("ubi_data_mtd"));
  510. cmdline_append(tmpbuf);
  511. #endif
  512. //cmdline_append(" no_console_suspend");
  513. } else if (0 != hibboot)
  514. pal_log_err("resume = %s but hibboot = %s\n", get_env("resume"),
  515. get_env("hibboot"));
  516. } else
  517. pal_log_err("resume = NULL \n");
  518. return;
  519. SKIP_HIB_BOOT:
  520. if (hibboot != 0)
  521. if (set_env("hibboot", "0") != 0)
  522. pal_log_err("lk_env hibboot set failed!!!\n");
  523. if (get_env("resume") != NULL)
  524. if (set_env("resume", '\0') != 0)
  525. pal_log_err("lk_evn resume set resume failed!!!\n");
  526. }
  527. #ifdef DEVICE_TREE_SUPPORT
  528. void lk_jump64(u32 addr, u32 arg1, u32 arg2, u32 arg3)
  529. {
  530. pal_log_err("\n[LK]jump to K64 0x%x\n", addr);
  531. pal_log_info("smc jump\n");
  532. jumparch64_smc(addr, arg1, arg2, arg3);
  533. panic("%s Fail to enter EL1\n", __func__);
  534. }
  535. void memcpy_u8(unsigned char *dest, unsigned char *src, unsigned int size)
  536. {
  537. unsigned int i;
  538. for (i = 0; i < size; i++)
  539. *(dest + i) = *(src + i);
  540. }
  541. extern bool decompress_kernel(unsigned char *in, void *out, int inlen,
  542. int outlen);
  543. #if defined(MTK_GOOGLE_TRUSTY_SUPPORT)
  544. int trusty_dts_append(void *fdt)
  545. {
  546. int offset, ret = 0;
  547. int nodeoffset = 0;
  548. unsigned int trusty_reserved_mem[4] = {0};
  549. offset = fdt_path_offset(fdt, "/reserved-memory");
  550. nodeoffset = fdt_add_subnode(fdt, offset, "trusty-reserved-memory");
  551. if (nodeoffset < 0) {
  552. dprintf(CRITICAL,
  553. "Warning: can't add trusty-reserved-memory node in device tree\n");
  554. return 1;
  555. }
  556. ret = fdt_setprop_string(fdt, nodeoffset, "compatible",
  557. "mediatek,trusty-reserved-memory");
  558. if (ret) {
  559. dprintf(CRITICAL,
  560. "Warning: can't add trusty compatible property in device tree\n");
  561. return 1;
  562. }
  563. ret = fdt_setprop(fdt, nodeoffset, "no-map", NULL, 0);
  564. if (ret) {
  565. dprintf(CRITICAL, "Warning: can't add trusty no-map property in device tree\n");
  566. return 1;
  567. }
  568. trusty_reserved_mem[0] = 0;
  569. trusty_reserved_mem[1] = (u32)cpu_to_fdt32(g_boot_arg->tee_reserved_mem.start);
  570. trusty_reserved_mem[2] = 0;
  571. trusty_reserved_mem[3] = (u32)cpu_to_fdt32(g_boot_arg->tee_reserved_mem.size);
  572. ret = fdt_setprop(fdt, nodeoffset, "reg", trusty_reserved_mem,
  573. sizeof(unsigned int) * 4);
  574. if (ret) {
  575. dprintf(CRITICAL, "Warning: can't add trusty reg property in device tree\n");
  576. return 1;
  577. }
  578. dprintf(CRITICAL, "trusty-reserved-memory is appended (0x%llx, 0x%llx)\n",
  579. g_boot_arg->tee_reserved_mem.start, g_boot_arg->tee_reserved_mem.size);
  580. return ret;
  581. }
  582. #endif
  583. void get_reboot_reason(unsigned int boot_reason)
  584. {
  585. unsigned int rc_wdt_status;
  586. unsigned int rc_exp_type;
  587. switch (boot_reason) {
  588. case BR_WDT_BY_PASS_PWK: /*by pass mode have more detail reboot reason*/
  589. if (ram_console_get_wdt_status(&rc_wdt_status) && ram_console_get_exp_type(&rc_exp_type)) {
  590. pal_log_err("rc_wdt_status = %d, rc_exp_type = %d\n", rc_wdt_status, rc_exp_type);
  591. switch (rc_exp_type) { /* first check exception type*/
  592. case AEE_EXP_TYPE_HWT:
  593. cmdline_append("androidboot.bootreason=Watchdog");
  594. return;
  595. case AEE_EXP_TYPE_KE:
  596. case AEE_EXP_TYPE_NESTED_PANIC:
  597. cmdline_append("androidboot.bootreason=kernel_panic");
  598. return;
  599. case AEE_EXP_TYPE_HANG_DETECT:
  600. cmdline_append("androidboot.bootreason=hang_detect");
  601. return;
  602. case AEE_EXP_TYPE_SMART_RESET:
  603. cmdline_append("androidboot.bootreason=mrdump");
  604. return;
  605. case AEE_EXP_TYPE_LK_CRASH:
  606. cmdline_append("androidboot.bootreason=lk_crash");
  607. return;
  608. default: /* check wdt status */
  609. if ((rc_wdt_status & 0x01) == 0x01) {
  610. cmdline_append("androidboot.bootreason=HW_reboot");
  611. return;
  612. } else if ((rc_wdt_status & 0x08) == 0x08) {
  613. cmdline_append("androidboot.bootreason=SPM_Thermal_reboot");
  614. return;
  615. } else if ((rc_wdt_status & 0x10) == 0x10) {
  616. cmdline_append("androidboot.bootreason=SPM_reboot");
  617. return;
  618. } else if ((rc_wdt_status & 0x20) == 0x20) {
  619. cmdline_append("androidboot.bootreason=Thermal_reboot");
  620. return;
  621. } else if ((rc_wdt_status & 0x80) == 0x80) {
  622. cmdline_append("androidboot.bootreason=security_reboot");
  623. return;
  624. } else if ((rc_wdt_status & 0x400) == 0x400) {
  625. cmdline_append("androidboot.bootreason=SSPM_reboot");
  626. return;
  627. } else if ((rc_wdt_status & 0x800) == 0x800) {
  628. cmdline_append("androidboot.bootreason=PMIC_cold_reboot");
  629. return;
  630. }
  631. }
  632. } /* else to default reboot reason */
  633. break;
  634. case BR_2SEC_REBOOT:
  635. cmdline_append("androidboot.bootreason=2sec_reboot");
  636. return;
  637. case BR_USB:
  638. cmdline_append("androidboot.bootreason=usb");
  639. return;
  640. case BR_POWER_EXC:
  641. cmdline_append("androidboot.bootreason=ocp");
  642. return;
  643. case BR_LONG_POWKEY:
  644. cmdline_append("androidboot.bootreason=reboot_longkey");
  645. return;
  646. case BR_RTC:
  647. cmdline_append("androidboot.bootreason=rtc");
  648. return;
  649. case BR_POWER_LOSS:
  650. cmdline_append("androidboot.bootreason=power_loss");
  651. return;
  652. case BR_WDT:
  653. cmdline_append("androidboot.bootreason=wdt");
  654. return;
  655. case BR_TOOL_BY_PASS_PWK:
  656. cmdline_append("androidboot.bootreason=tool_by_pass_pwk");
  657. return;
  658. case BR_WDT_SW:
  659. cmdline_append("androidboot.bootreason=wdt_sw");
  660. return;
  661. case BR_WDT_HW:
  662. cmdline_append("androidboot.bootreason=wdt_hw");
  663. return;
  664. case BR_UNKNOWN:
  665. cmdline_append("androidboot.bootreason=unknow_reboot");
  666. return;
  667. case BR_POWER_KEY:
  668. cmdline_append("androidboot.bootreason=PowerKey");
  669. return;
  670. case BR_REBOOT_EXCEPTION:
  671. cmdline_append("androidboot.bootreason=RebootException");
  672. return;
  673. }
  674. /* default is soft reboot*/
  675. cmdline_append("androidboot.bootreason=reboot");
  676. }
  677. int boot_linux_fdt(void *kernel, unsigned *tags,
  678. unsigned machtype,
  679. void *ramdisk, unsigned ramdisk_sz)
  680. {
  681. void *fdt = tags;
  682. int ret;
  683. int offset;
  684. char tmpbuf[TMPBUF_SIZE];
  685. dt_dram_info mem_reg_property[128];
  686. int i;
  687. void (*entry)(unsigned, unsigned, unsigned *) = kernel;
  688. void *kernel_target_addr = kernel;
  689. unsigned int lk_t = 0;
  690. unsigned int boot_reason = 0;
  691. char *ptr;
  692. char spare[FDT_SPARE_SIZE], /* SPARE_SIZE = BUFF_SIZE + CHCKER_SIZE */
  693. *buf = spare,
  694. *checker = (spare + FDT_BUFF_SIZE);
  695. unsigned int zimage_size = 0;
  696. u32 seed[2];
  697. const void *seedp, *kaslr_status;
  698. const void *kmemleak_status;
  699. int seed_len, status_len;
  700. uint32_t kernel_load_addr;
  701. #ifdef ALLOCATE_FROM_MBLOCK
  702. if (!kernel_sz_mb)
  703. panic("kernel_sz_mb should not be zero\n");
  704. #else
  705. u32 kernel_sz_mb = LK_KERNEL_64_MAX_SIZE;
  706. #endif
  707. kernel_load_addr = get_kernel_addr();
  708. if (g_is_64bit_kernel) {
  709. zimage_size = get_kernel_real_sz();
  710. pal_log_info("64 bits kernel\n");
  711. pal_log_err("kernel real kernel_sz=0x%08x\n", zimage_size);
  712. if ((uint32_t)kernel_target_addr & 0x7FFFF) {
  713. panic("64 bit kernel can't boot at 0x%08x\n",
  714. (uint32_t)kernel_target_addr);
  715. }
  716. pal_log_info("zimage_size=0x%08x, zimage_size=0x%08x\n",
  717. zimage_size, zimage_size);
  718. pal_log_info("decompress kernel image...\n");
  719. /* for 64bit decompreesed size.
  720. * LK start: 0x41E00000, Kernel Start: 0x40080000
  721. * Max is 0x41E00000 - 0x40080000 = 0x1D80000.
  722. * using 0x1C00000=28MB for decompressed kernel image size */
  723. if (decompress_kernel((unsigned char *)(kernel_load_addr),
  724. (void *)kernel_target_addr, (int)zimage_size,
  725. (int)kernel_sz_mb)) {
  726. panic("decompress kernel image fail!!!\n");
  727. }
  728. } else {
  729. pal_log_info("32 bits kernel\n");
  730. zimage_size = get_kernel_real_sz();
  731. memcpy(kernel_target_addr, (void *)kernel_load_addr, zimage_size);
  732. wake_up_iothread();
  733. wait_for_iothread();
  734. }
  735. strncpy(checker, FDT_BUFF_END, FDT_CHECKER_SIZE - 1);
  736. checker[FDT_CHECKER_SIZE - 1] = '\0';
  737. extern int target_fdt_jtag(void *fdt)__attribute__((weak));
  738. if (target_fdt_jtag)
  739. target_fdt_jtag(fdt);
  740. extern int target_fdt_model(void *fdt)__attribute__((weak));
  741. if (target_fdt_model)
  742. target_fdt_model(fdt);
  743. extern int target_fdt_cpus(void *fdt)__attribute__((weak));
  744. if (target_fdt_cpus)
  745. target_fdt_cpus(fdt);
  746. load_images(g_boot_mode);
  747. #ifdef MTK_SECURITY_ANTI_ROLLBACK
  748. #ifdef MTK_OTP_FRAMEWORK_V2
  749. if (g_boot_mode == NORMAL_BOOT || g_boot_mode == RECOVERY_BOOT) {
  750. ret = sec_otp_ver_update(g_boot_mode);
  751. }
  752. #else
  753. if (g_boot_mode == NORMAL_BOOT) {
  754. ret = sec_otp_ver_update(g_boot_mode);
  755. imgver_not_sync_warning(g_boot_arg->pl_imgver_status, ret);
  756. }
  757. #endif
  758. #endif
  759. extern int setup_mem_property_use_mblock_info(dt_dram_info *,
  760. size_t) __attribute__((weak));
  761. if (setup_mem_property_use_mblock_info) {
  762. ret = setup_mem_property_use_mblock_info(
  763. &mem_reg_property[0],
  764. sizeof(mem_reg_property) / sizeof(dt_dram_info));
  765. if (ret) {
  766. PAL_ASSERT(0);
  767. return FALSE;
  768. }
  769. } else {
  770. for (i = 0; i < g_nr_bank; ++i) {
  771. unsigned int fb_size = (i == g_nr_bank - 1) ? g_fb_size : 0;
  772. #ifndef MTK_LM_MODE
  773. mem_reg_property[i].start_hi = cpu_to_fdt32(0);
  774. mem_reg_property[i].start_lo = cpu_to_fdt32(bi_dram[i].start);
  775. mem_reg_property[i].size_hi = cpu_to_fdt32(0);
  776. mem_reg_property[i].size_lo = cpu_to_fdt32(bi_dram[i].size - fb_size);
  777. #else
  778. mem_reg_property[i].start_hi = cpu_to_fdt32(bi_dram[i].start >> 32);
  779. mem_reg_property[i].start_lo = cpu_to_fdt32(bi_dram[i].start);
  780. mem_reg_property[i].size_hi = cpu_to_fdt32((bi_dram[i].size - fb_size) >> 32);
  781. mem_reg_property[i].size_lo = cpu_to_fdt32(bi_dram[i].size - fb_size);
  782. #endif
  783. pal_log_info(" mem_reg_property[%d].start_hi = 0x%08X\n", i,
  784. mem_reg_property[i].start_hi);
  785. pal_log_info(" mem_reg_property[%d].start_lo = 0x%08X\n", i,
  786. mem_reg_property[i].start_lo);
  787. pal_log_info(" mem_reg_property[%d].size_hi = 0x%08X\n", i,
  788. mem_reg_property[i].size_hi);
  789. pal_log_info(" mem_reg_property[%d].size_lo = 0x%08X\n", i,
  790. mem_reg_property[i].size_lo);
  791. }
  792. }
  793. extern int set_fdt_emi_info(void *fdt)__attribute((weak));
  794. if (set_fdt_emi_info) {
  795. ret = set_fdt_emi_info(fdt);
  796. if (ret)
  797. pal_log_err("ERROR: EMI info incorrect\n");
  798. }
  799. extern int set_fdt_dramc(void *fdt)__attribute((weak));
  800. if (set_fdt_dramc) {
  801. ret = set_fdt_dramc(fdt);
  802. if (ret)
  803. pal_log_err("ERROR: DRAMC info incorrect\n");
  804. }
  805. extern int set_fdt_pll(void *fdt)__attribute((weak));
  806. if (set_fdt_pll) {
  807. ret = set_fdt_pll(fdt);
  808. if (ret)
  809. pal_log_err("ERROR: PLL info incorrect\n");
  810. }
  811. extern int target_fdt_dram_dummy_read(void *fdt,
  812. unsigned int rank_num)__attribute__((weak));
  813. if (target_fdt_dram_dummy_read) {
  814. ret = target_fdt_dram_dummy_read(fdt, g_nr_bank);
  815. if (ret)
  816. pal_log_err("ERROR: DRAM dummy read address incorrect\n");
  817. }
  818. extern int set_fdt_dbg_info(void *fdt)__attribute__((weak));
  819. if (set_fdt_dbg_info) {
  820. ret = set_fdt_dbg_info(fdt);
  821. if (ret)
  822. pal_log_err("ERROR: debug info base and size incorrect\n");
  823. }
  824. /*
  825. * if there is no memory node exist
  826. * we will create a new one
  827. */
  828. #if defined(MBLOCK_LIB_SUPPORT) || defined(NEW_MEMORY_RESERVED_MODEL)
  829. {
  830. int nodeoffset;
  831. offset = fdt_path_offset(fdt, "/memory");
  832. if (offset < 0) {
  833. offset = fdt_path_offset(fdt, "/");
  834. if (offset < 0) {
  835. panic("ERROR: root node search failed , while(1)\n");
  836. }
  837. nodeoffset = fdt_add_subnode(fdt, offset, "memory");
  838. if (nodeoffset < 0) {
  839. panic("ERROR: add subnode memory failed, while(1)\n");
  840. } else {
  841. ret = fdt_setprop_string(fdt, nodeoffset, "device_type", "memory");
  842. pal_log_err("DTS:/memory node is not found create new memory node\n");
  843. }
  844. }
  845. }
  846. offset = fdt_path_offset(fdt, "/memory");
  847. if (offset < 0) {
  848. panic("ERROR: /memory node not exist, while(1)\n");
  849. }
  850. #endif
  851. extern int get_mblock_num(void) __attribute__((weak));
  852. #if defined(MBLOCK_LIB_SUPPORT)
  853. #if defined(MBLOCK_LIB_SUPPORT) && (MBLOCK_EXPAND(MBLOCK_LIB_SUPPORT) == MBLOCK_EXPAND(2))
  854. pal_log_err("PASS memory DTS node\n");
  855. ret = fdt_setprop(fdt, offset, "reg", mem_reg_property, sizeof(dt_dram_info));
  856. #else
  857. pal_log_err("PASS memory DTS node\n");
  858. ret = fdt_setprop(fdt, offset, "reg", mem_reg_property,
  859. ((int)get_mblock_num ? get_mblock_num() : g_nr_bank) * sizeof(dt_dram_info));
  860. #endif
  861. #else
  862. #if defined(NEW_MEMORY_RESERVED_MODEL)
  863. pal_log_err("PASS memory DTS node\n");
  864. ret = fdt_setprop(fdt, offset, "reg", mem_reg_property,
  865. ((int)get_mblock_num ? get_mblock_num() : g_nr_bank) * sizeof(dt_dram_info));
  866. #endif
  867. #endif
  868. if (ret) {
  869. assert(0);
  870. return FALSE;
  871. }
  872. if (platform_atag_append) {
  873. ret = platform_atag_append(fdt);
  874. if (ret) {
  875. assert(0);
  876. return FALSE;
  877. }
  878. }
  879. #ifdef MBLOCK_LIB_SUPPORT
  880. ret = fdt_memory_append(fdt);
  881. if (ret) {
  882. assert(0);
  883. return FALSE;
  884. }
  885. #endif
  886. #if defined(MTK_GOOGLE_TRUSTY_SUPPORT)
  887. ret = trusty_dts_append(fdt);
  888. if (ret) {
  889. assert(0);
  890. return FALSE;
  891. }
  892. #endif
  893. offset = fdt_path_offset(fdt, "/chosen");
  894. if (offset < 0) {
  895. pal_log_err("Error: can't search chosen node in device tree\n");
  896. }
  897. kmemleak_status = fdt_getprop(fdt, offset,
  898. "kmemleak-status", &status_len);
  899. if (kmemleak_status && !strcmp(kmemleak_status, "okay"))
  900. cmdline_append("kmemleak=on");
  901. ret = fdt_setprop_cell(fdt, offset, "linux,initrd-start",
  902. (unsigned int) ramdisk);
  903. if (ret) {
  904. assert(0);
  905. return FALSE;
  906. }
  907. ret = fdt_setprop_cell(fdt, offset, "linux,initrd-end",
  908. (unsigned int)ramdisk + ramdisk_sz);
  909. if (ret) {
  910. assert(0);
  911. return FALSE;
  912. }
  913. ptr = (char *)target_atag_boot((unsigned *)buf);
  914. ret = fdt_setprop(fdt, offset, "atag,boot", buf, ptr - buf);
  915. if (ret) {
  916. assert(0);
  917. return FALSE;
  918. }
  919. seedp = fdt_getprop(fdt, offset, "kaslr-seed", &seed_len);
  920. /* get random kaslr-seed if it is defined in the dtb */
  921. if (seedp) {
  922. if (seed_len != sizeof(u64)) {
  923. pal_log_err("incorrect kaslr-seed length=%d\n",
  924. seed_len);
  925. assert(0);
  926. return FALSE;
  927. }
  928. #ifdef MTK_SECURITY_SW_SUPPORT
  929. get_rnd(&seed[0]);
  930. get_rnd(&seed[1]);
  931. #else
  932. seed[0] = seed[1] = 0;
  933. cmdline_append("nokaslr");
  934. #endif
  935. ret = fdt_setprop(fdt, offset, "kaslr-seed", seed, seed_len);
  936. if (ret) {
  937. assert(0);
  938. return FALSE;
  939. }
  940. kaslr_status = fdt_getprop(fdt, offset,
  941. "kaslr-status", &status_len);
  942. if (kaslr_status && !strcmp(kaslr_status, "disabled"))
  943. cmdline_append("nokaslr");
  944. }
  945. #if defined(MTK_DLPT_SUPPORT)
  946. ptr = (char *)target_atag_imix_r((unsigned *)buf);
  947. ret = fdt_setprop(fdt, offset, "atag,imix_r", buf, ptr - buf);
  948. if (ret) {
  949. assert(0);
  950. return FALSE;
  951. }
  952. #endif
  953. snprintf(buf, FDT_BUFF_SIZE, "%d", fg_swocv_v);
  954. ptr = buf + strlen(buf);
  955. ret = fdt_setprop(fdt, offset, "atag,fg_swocv_v", buf, ptr - buf);
  956. if (ret) {
  957. assert(0);
  958. return FALSE;
  959. }
  960. pal_log_err("fg_swocv_v buf [%s], [0x%x:0x%x:%d]\n", buf, (unsigned)buf,
  961. (unsigned)ptr, ptr - buf);
  962. snprintf(buf, FDT_BUFF_SIZE, "%d", fg_swocv_i);
  963. ptr = buf + strlen(buf);
  964. ret = fdt_setprop(fdt, offset, "atag,fg_swocv_i", buf, ptr - buf);
  965. if (ret) {
  966. assert(0);
  967. return FALSE;
  968. }
  969. pal_log_err("fg_swocv_i buf [%s], [0x%x:0x%x:%d]\n", buf, (unsigned)buf,
  970. (unsigned)ptr, ptr - buf);
  971. snprintf(buf, FDT_BUFF_SIZE, "%d", shutdown_time);
  972. ptr = buf + strlen(buf);
  973. ret = fdt_setprop(fdt, offset, "atag,shutdown_time", buf, ptr - buf);
  974. if (ret) {
  975. assert(0);
  976. return FALSE;
  977. }
  978. pal_log_err("shutdown_time buf [%s], [0x%x:0x%x:%d]\n", buf,
  979. (unsigned)buf, (unsigned)ptr, ptr - buf);
  980. ram_console_dts_written(fdt);
  981. snprintf(buf, FDT_BUFF_SIZE, "%d", boot_voltage);
  982. ptr = buf + strlen(buf);
  983. ret = fdt_setprop(fdt, offset, "atag,boot_voltage", buf, ptr - buf);
  984. if (ret) {
  985. assert(0);
  986. return FALSE;
  987. }
  988. pal_log_err("boot_voltage buf [%s], [0x%x:0x%x:%d]\n", buf, (unsigned)buf,
  989. (unsigned)ptr, ptr - buf);
  990. snprintf(buf, FDT_BUFF_SIZE, "%d", two_sec_reboot);
  991. ptr = buf + strlen(buf);
  992. ret = fdt_setprop(fdt, offset, "atag,two_sec_reboot", buf, ptr - buf);
  993. if (ret) {
  994. assert(0);
  995. return FALSE;
  996. }
  997. pal_log_err("boot_voltage buf [%s], [0x%x:0x%x:%d]\n", buf, (unsigned)buf,
  998. (unsigned)ptr, ptr - buf);
  999. ptr = (char *)target_atag_mem((unsigned *)buf);
  1000. ret = fdt_setprop(fdt, offset, "atag,mem", buf, ptr - buf);
  1001. if (ret) {
  1002. assert(0);
  1003. return FALSE;
  1004. }
  1005. if (target_atag_partition_data) {
  1006. ptr = (char *)target_atag_partition_data((unsigned *)buf);
  1007. if (ptr != buf) {
  1008. ret = fdt_setprop(fdt, offset, "atag,mem", buf, ptr - buf);
  1009. if (ret) {
  1010. assert(0);
  1011. return FALSE;
  1012. }
  1013. }
  1014. }
  1015. #if !(defined(MTK_UFS_SUPPORT) || defined(MTK_EMMC_SUPPORT))
  1016. if (target_atag_nand_data) {
  1017. ptr = (char *)target_atag_nand_data((unsigned *)buf);
  1018. if (ptr != buf) {
  1019. ret = fdt_setprop(fdt, offset, "atag,mem", buf, ptr - buf);
  1020. if (ret) {
  1021. assert(0);
  1022. return FALSE;
  1023. }
  1024. }
  1025. }
  1026. #endif
  1027. extern int spislv_write_param_to_dt(void *fdt)__attribute__((weak));
  1028. spislv_write_param_to_dt(fdt);
  1029. extern unsigned int *target_atag_vcore_dvfs(unsigned * ptr)__attribute__((
  1030. weak));
  1031. if (target_atag_vcore_dvfs) {
  1032. ptr = (char *)target_atag_vcore_dvfs((unsigned *)buf);
  1033. ret = fdt_setprop(fdt, offset, "atag,vcore_dvfs", buf, ptr - buf);
  1034. if (ret) {
  1035. assert(0);
  1036. return FALSE;
  1037. }
  1038. } else
  1039. pal_log_err("Not Support VCORE DVFS\n");
  1040. //some platform might not have this function, use weak reference for
  1041. extern unsigned *target_atag_dfo(unsigned * ptr)__attribute__((weak));
  1042. if (target_atag_dfo) {
  1043. ptr = (char *)target_atag_dfo((unsigned *)buf);
  1044. ret = fdt_setprop(fdt, offset, "atag,dfo", buf, ptr - buf);
  1045. if (ret) {
  1046. assert(0);
  1047. return FALSE;
  1048. }
  1049. }
  1050. if (g_boot_mode == META_BOOT || g_boot_mode == ADVMETA_BOOT ||
  1051. g_boot_mode == ATE_FACTORY_BOOT || g_boot_mode == FACTORY_BOOT) {
  1052. ptr = (char *)target_atag_meta((unsigned *)buf);
  1053. ret = fdt_setprop(fdt, offset, "atag,meta", buf, ptr - buf);
  1054. if (ret) {
  1055. assert(0);
  1056. return FALSE;
  1057. }
  1058. unsigned int meta_com_id = g_boot_arg->meta_com_id;
  1059. if (g_boot_mode == META_BOOT) {
  1060. int adb = !(meta_com_id & 0x0001);
  1061. int elt = !!(meta_com_id & 0x0004);
  1062. if (!adb && !elt) {
  1063. /*only META*/
  1064. cmdline_append("androidboot.usbconfig=1");
  1065. } else if (adb && !elt) {
  1066. /*META + ADB*/
  1067. cmdline_append("androidboot.usbconfig=0");
  1068. } else if (!adb && elt) {
  1069. /*META + ELT*/
  1070. cmdline_append("androidboot.usbconfig=2");
  1071. } else {
  1072. /*META + ELT + ADB*/
  1073. cmdline_append("androidboot.usbconfig=3");
  1074. }
  1075. } else {
  1076. int adb = !(meta_com_id & 0x0001);
  1077. if (!adb) {
  1078. cmdline_append("androidboot.usbconfig=1");
  1079. } else {
  1080. cmdline_append("androidboot.usbconfig=0");
  1081. }
  1082. }
  1083. if (g_boot_mode == META_BOOT || g_boot_mode == ADVMETA_BOOT) {
  1084. snprintf(tmpbuf, TMPBUF_SIZE, "androidboot.init_rc=%s", META_INIT_RC);
  1085. cmdline_append(tmpbuf);
  1086. if ((meta_com_id & 0x0002) != 0)
  1087. cmdline_append("androidboot.mblogenable=0");
  1088. else
  1089. cmdline_append("androidboot.mblogenable=1");
  1090. } else {
  1091. snprintf(tmpbuf, TMPBUF_SIZE, "androidboot.init_rc=%s", FACTORY_INIT_RC);
  1092. cmdline_append(tmpbuf);
  1093. }
  1094. }
  1095. ptr = (char *)target_atag_devinfo_data((unsigned *)buf);
  1096. ret = fdt_setprop(fdt, offset, "atag,devinfo", buf, ptr - buf);
  1097. if (ret) {
  1098. assert(0);
  1099. return FALSE;
  1100. }
  1101. #ifndef MACH_FPGA_NO_DISPLAY
  1102. ptr = (char *)target_atag_videolfb((unsigned *)buf, FDT_BUFF_SIZE);
  1103. ret = fdt_setprop(fdt, offset, "atag,videolfb", buf, ptr - buf);
  1104. if (ret) {
  1105. assert(0);
  1106. return FALSE;
  1107. }
  1108. #if (MTK_DUAL_DISPLAY_SUPPORT == 2)
  1109. ptr = (char *)target_atag_ext_videolfb((unsigned *)buf);
  1110. ret = fdt_setprop(fdt, offset, "atag,ext_videolfb", buf, ptr - buf);
  1111. if (ret) {
  1112. assert(0);
  1113. return FALSE;
  1114. }
  1115. #endif
  1116. #else
  1117. extern int mt_disp_config_frame_buffer(void *fdt)__attribute__((weak));
  1118. if (mt_disp_config_frame_buffer)
  1119. ret = mt_disp_config_frame_buffer(fdt);
  1120. #endif
  1121. extern int lastpc_decode(void *fdt)__attribute__((weak));
  1122. if (lastpc_decode) {
  1123. ret = lastpc_decode(fdt);
  1124. if (ret) {
  1125. assert(0);
  1126. return FALSE;
  1127. }
  1128. }
  1129. if (target_atag_mdinfo) {
  1130. ptr = (char *)target_atag_mdinfo((unsigned *)buf);
  1131. ret = fdt_setprop(fdt, offset, "atag,mdinfo", buf, ptr - buf);
  1132. if (ret) {
  1133. assert(0);
  1134. return FALSE;
  1135. }
  1136. } else
  1137. pal_log_err("DFO_MODEN_INFO Only support in MT6582/MT6592\n");
  1138. ccci_update_lk_arg_info_to_dt(buf, fdt, offset);
  1139. extern unsigned int *target_atag_ptp(unsigned * ptr)__attribute__((weak));
  1140. if (target_atag_ptp) {
  1141. ptr = (char *)target_atag_ptp((unsigned *)buf);
  1142. ret = fdt_setprop(fdt, offset, "atag,ptp", buf, ptr - buf);
  1143. if (ret) {
  1144. assert(0);
  1145. return FALSE;
  1146. } else
  1147. pal_log_err("Create PTP DT OK\n");
  1148. } else
  1149. pal_log_err("PTP_INFO Only support in MT6795\n");
  1150. if (target_atag_masp_data) {
  1151. ptr = (char *)target_atag_masp_data((unsigned *)buf);
  1152. ret = fdt_setprop(fdt, offset, "atag,masp", buf, ptr - buf);
  1153. if (ret) {
  1154. assert(0);
  1155. return FALSE;
  1156. } else
  1157. pal_log_err("create masp atag OK\n");
  1158. } else
  1159. pal_log_err("masp atag not support in this platform\n");
  1160. extern unsigned int *target_atag_tee(unsigned * ptr)__attribute__((weak));
  1161. if (target_atag_tee) {
  1162. ptr = (char *)target_atag_tee((unsigned *)buf);
  1163. ret = fdt_setprop(fdt, offset, "tee_reserved_mem", buf, ptr - buf);
  1164. if (ret) {
  1165. assert(0);
  1166. return FALSE;
  1167. }
  1168. } else
  1169. pal_log_err("tee_reserved_mem not supported\n");
  1170. extern unsigned int *target_atag_isram(unsigned * ptr)__attribute__((weak));
  1171. if (target_atag_isram) {
  1172. ptr = (char *)target_atag_isram((unsigned *)buf);
  1173. ret = fdt_setprop(fdt, offset, "non_secure_sram", buf, ptr - buf);
  1174. if (ret) {
  1175. assert(0);
  1176. return FALSE;
  1177. }
  1178. } else
  1179. pal_log_err("non_secure_sram not supported\n");
  1180. if(disp_lcm_fill_lcm_dts_phandle) {
  1181. int panel_index = disp_lcm_get_dts_panel_index();
  1182. if(disp_lcm_fill_lcm_dts_phandle(fdt, panel_index) != 0) {
  1183. pal_log_err("set dsi panel index to dtb failed.");
  1184. }
  1185. }
  1186. if (!has_set_p2u) {
  1187. switch (eBuildType) {
  1188. case BUILD_TYPE_USER:
  1189. if (((g_boot_mode == META_BOOT) && is_meta_log_disable &&
  1190. #ifdef LOG_STORE_SUPPORT
  1191. (is_meta_log_disable() == 0)) || g_boot_arg->log_dynamic_switch)
  1192. #else
  1193. (is_meta_log_disable() == 0)))
  1194. #endif
  1195. cmdline_append("mtk_printk_ctrl.disable_uart=0");
  1196. else
  1197. cmdline_append("mtk_printk_ctrl.disable_uart=1");
  1198. break;
  1199. case BUILD_TYPE_USERDEBUG:
  1200. if ((g_boot_mode == META_BOOT) && is_meta_log_disable &&
  1201. #ifdef LOG_STORE_SUPPORT
  1202. (is_meta_log_disable() == 1) && (g_boot_arg->log_dynamic_switch == 0))
  1203. #else
  1204. (is_meta_log_disable() == 1))
  1205. #endif
  1206. cmdline_append("mtk_printk_ctrl.disable_uart=1 slub_debug=O");
  1207. #ifdef LOG_STORE_SUPPORT
  1208. else if (boot_ftrace && g_boot_arg->log_dynamic_switch == 0)
  1209. #else
  1210. else if (boot_ftrace)
  1211. #endif
  1212. cmdline_append("mtk_printk_ctrl.disable_uart=1 slub_debug=-");
  1213. else
  1214. cmdline_append("mtk_printk_ctrl.disable_uart=0");
  1215. break;
  1216. case BUILD_TYPE_ENG:
  1217. if ((g_boot_mode == META_BOOT) && is_meta_log_disable &&
  1218. (is_meta_log_disable() == 1))
  1219. cmdline_append("mtk_printk_ctrl.disable_uart=1 slub_debug=O");
  1220. else
  1221. cmdline_append("mtk_printk_ctrl.disable_uart=0 ddebug_query=\"file *mediatek* +p ; file *gpu* =_\"");
  1222. break;
  1223. default:
  1224. assert(0);
  1225. break;
  1226. }
  1227. }
  1228. /*Append pre-loader boot reason to kernel command line*/
  1229. #ifdef MTK_KERNEL_POWER_OFF_CHARGING
  1230. if (g_boot_reason_change)
  1231. boot_reason = BR_WDT_BY_PASS_PWK;
  1232. else
  1233. #endif
  1234. {
  1235. boot_reason = g_boot_arg->boot_reason;
  1236. }
  1237. /* Append androidboot.serialno=xxxxyyyyzzzz in cmdline */
  1238. snprintf(tmpbuf, TMPBUF_SIZE, "%s%s", "androidboot.serialno=", sn_buf);
  1239. cmdline_append(tmpbuf);
  1240. get_reboot_reason(boot_reason);
  1241. extern unsigned int *target_commandline_force_gpt(char *cmd)__attribute__((
  1242. weak));
  1243. if (target_commandline_force_gpt)
  1244. target_commandline_force_gpt((char *)cmdline_get());
  1245. extern void ccci_append_tel_fo_setting(char *cmdline)__attribute__((weak));
  1246. if (ccci_append_tel_fo_setting)
  1247. ccci_append_tel_fo_setting((char *)cmdline_get());
  1248. if (eBuildType == BUILD_TYPE_ENG)
  1249. cmdline_append("initcall_debug=1");
  1250. extern int dfd_set_base_addr(void *fdt)__attribute__((weak));
  1251. if (dfd_set_base_addr) {
  1252. ret = dfd_set_base_addr(fdt);
  1253. if (ret)
  1254. pal_log_err("[DFD] failed to get base address (%d)\n", ret);
  1255. }
  1256. extern unsigned int get_usb2jtag(void) __attribute__((weak));
  1257. extern unsigned int set_usb2jtag(unsigned int en) __attribute__((weak));
  1258. if (get_usb2jtag) {
  1259. if (get_usb2jtag() == 1)
  1260. cmdline_append("usb2jtag_mode=1");
  1261. else
  1262. cmdline_append("usb2jtag_mode=0");
  1263. }
  1264. check_hibernation();
  1265. /*DTS memory will be modified during lk boot process
  1266. * so we need to put the cmdline in the last mile*/
  1267. mrdump_init(fdt);
  1268. #if 0
  1269. ptr = (char *)target_atag_commandline((u8 *)buf, FDT_BUFF_SIZE,
  1270. (const char *)cmdline_get());
  1271. ret = fdt_setprop(fdt, offset, "atag,cmdline", buf, ptr - buf);
  1272. if (ret) {
  1273. assert(0);
  1274. return FALSE;
  1275. }
  1276. #else
  1277. dprintf(INFO, "target_atag_commandline skip for not used\n"); //skip copy atag for kernel not used
  1278. #endif
  1279. /* send kernel the dtbo_idx upon overlay success */
  1280. snprintf(tmpbuf, TMPBUF_SIZE, "androidboot.dtb_idx=0 androidboot.dtbo_idx=%d", get_dtbo_index());
  1281. cmdline_append(tmpbuf);
  1282. ret = fdt_setprop_string(fdt, offset, "bootargs", (char *)cmdline_get());
  1283. if (ret) {
  1284. assert(0);
  1285. return FALSE;
  1286. }
  1287. ptr = (char *)target_atag_chipid((unsigned *)buf);
  1288. if (ptr != NULL) {
  1289. ret = fdt_setprop(fdt, offset, "atag,chipid", buf, ptr - buf);
  1290. if (ret) {
  1291. dprintf(CRITICAL, "fail to set property chip id in fdt!\n");
  1292. }
  1293. } else
  1294. dprintf(CRITICAL, "target_atag_chipid return NULL pointer!\n");
  1295. extern int *target_fdt_firmware(void *fdt, char *serialno)__attribute__((weak));
  1296. if (target_fdt_firmware)
  1297. target_fdt_firmware(fdt, sn_buf);
  1298. /* This depends on target_fdt_firmware, must after target_fdt_firmware */
  1299. ccci_update_md_opt_to_fdt_firmware(fdt);
  1300. /* Return the mb before stepping into kernel */
  1301. mboot_free_bootimg_from_mblock();
  1302. mboot_free_lk_scratch_from_mblock();
  1303. free_bootimgs();
  1304. mt_free_logo_from_mblock();
  1305. mrdump_reserve_memory();
  1306. heap_deinit();
  1307. #if defined(MBLOCK_LIB_SUPPORT)
  1308. #if defined(MBLOCK_LIB_SUPPORT) && (MBLOCK_EXPAND(MBLOCK_LIB_SUPPORT) == MBLOCK_EXPAND(2))
  1309. /* this should be proper place for mblock memory santiy check*/
  1310. ret = mblock_sanity_check(fdt, &g_boot_arg->mblock_info,
  1311. &g_boot_arg->orig_dram_info);
  1312. if (ret) {
  1313. assert(0);
  1314. return FALSE;
  1315. }
  1316. ret = mblock_reserved_append(fdt);
  1317. if (ret) {
  1318. assert(0);
  1319. return FALSE;
  1320. }
  1321. #endif
  1322. #endif
  1323. ccci_create_MD_attr_dt_node(fdt);
  1324. /* bootprof: pl/lk/logo_lk_t boot time via Device Tree */
  1325. /* Last execution time of LK */
  1326. ret = boot_time_via_dt(fdt, &lk_t);
  1327. if (ret) {
  1328. assert(0);
  1329. return FALSE;
  1330. }
  1331. PROFILING_PRINTF("1st logo takes %d ms", logo_lk_t);
  1332. PROFILING_PRINTF("boot_time takes %d ms", lk_t);
  1333. ret = fdt_pack(fdt);
  1334. if (ret) {
  1335. assert(0);
  1336. return FALSE;
  1337. }
  1338. pal_log_err("booting linux @ %p, ramdisk @ %p (%d)\n",
  1339. kernel, ramdisk, ramdisk_sz);
  1340. if (strncmp(checker, FDT_BUFF_END, FDT_CHECKER_SIZE) != 0) {
  1341. pal_log_err("ERROR: fdt buff overflow\n");
  1342. assert(0);
  1343. return FALSE;
  1344. }
  1345. /*Prevent the system jumps to Kernel if we unplugged Charger/USB before*/
  1346. if (kernel_charging_boot) {
  1347. if (kernel_charging_boot() == -1) {
  1348. pal_log_err(
  1349. "[%s] Unplugged Usb/Charger in Kernel Charging Mode Before Jumping to Kernel, Power Off\n",
  1350. __func__);
  1351. #ifndef NO_POWER_OFF
  1352. #ifdef MTK_PMIC_POWER_OFF
  1353. mt_power_off();
  1354. #else
  1355. mt6575_power_off();
  1356. #endif
  1357. #endif
  1358. }
  1359. if (kernel_charging_boot() == 1) {
  1360. if (pmic_detect_powerkey()) {
  1361. pal_log_err(
  1362. "[%s] PowerKey Pressed in Kernel Charging Mode Before Jumping to Kernel, Reboot Os\n",
  1363. __func__);
  1364. //mt65xx_backlight_off();
  1365. //mt_disp_power(0);
  1366. mtk_arch_reset(1);
  1367. }
  1368. }
  1369. }
  1370. enter_critical_section();
  1371. /* do any platform specific cleanup before kernel entry */
  1372. platform_uninit();
  1373. #ifdef HAVE_CACHE_PL310
  1374. l2_disable();
  1375. #endif
  1376. arch_disable_cache(UCACHE);
  1377. arch_disable_mmu();
  1378. #ifndef MACH_FPGA
  1379. extern void platform_sec_post_init(void)__attribute__((weak));
  1380. if (platform_sec_post_init)
  1381. platform_sec_post_init();
  1382. #endif
  1383. pal_log_err("DRAM Rank :%d\n", g_nr_bank);
  1384. for (i = 0; i < g_nr_bank; i++) {
  1385. #ifndef MTK_LM_MODE
  1386. pal_log_err("DRAM Rank[%d] Start = 0x%x, Size = 0x%x\n", i,
  1387. (unsigned int)bi_dram[i].start, (unsigned int)bi_dram[i].size);
  1388. #else
  1389. pal_log_err("DRAM Rank[%d] Start = 0x%llx, Size = 0x%llx\n", i,
  1390. bi_dram[i].start, bi_dram[i].size);
  1391. #endif
  1392. }
  1393. #ifdef MBLOCK_LIB_SUPPORT
  1394. mblock_show_info();
  1395. #endif
  1396. cmdline_print();
  1397. pal_log_err("lk boot mode = %d\n", g_boot_mode);
  1398. pal_log_err("lk boot reason = %d\n", boot_reason);
  1399. pal_log_err("lk finished --> jump to linux kernel %s\n\n",
  1400. g_is_64bit_kernel ? "64Bit" : "32Bit");
  1401. /*
  1402. * Kick watchdog before leaving lk to avoid watchdog reset if
  1403. * kernel initialization has longer execution time.
  1404. *
  1405. * Of course watchdog will still be triggered if kernel hangs
  1406. * because watchdog is still alive.
  1407. */
  1408. mtk_timer_deinit();
  1409. mtk_wdt_set_time_out_value(30);
  1410. mtk_wdt_restart();
  1411. #ifdef USER_LOAD
  1412. //For not intruding user load, print LK log in a whole here, when triggered.
  1413. if (g_lk_final_log == RUNTIME_LOG_DEACTIVATED) {
  1414. g_lk_final_log = RUNTIME_LOG_ACTIVATED;
  1415. if (current_lk_buf_addr_get && current_buf_addr_get && current_buf_pl_lk_log_size_get) {
  1416. *(u8 *)(current_buf_addr_get() + current_buf_pl_lk_log_size_get() - 1) = '\0';
  1417. uart_puts((char *)current_lk_buf_addr_get());
  1418. }
  1419. }
  1420. #endif
  1421. if (Debug_log_EMI_MPU)
  1422. Debug_log_EMI_MPU();
  1423. if (g_is_64bit_kernel) {
  1424. lk_jump64((u32)entry, (u32)tags, 0, KERNEL_64BITS);
  1425. } else {
  1426. #ifdef MTK_SMC_K32_SUPPORT
  1427. lk_jump64((u32)entry, (u32)machtype, (u32)tags, KERNEL_32BITS);
  1428. #else
  1429. entry(0, machtype, tags);
  1430. #endif
  1431. }
  1432. panic("%s Fail to enter EL1\n", __func__);
  1433. return 0;
  1434. }
  1435. #endif // DEVICE_TREE_SUPPORT
  1436. void boot_linux(void *kernel, unsigned *tags,
  1437. unsigned machtype,
  1438. void *ramdisk, unsigned ramdisk_sz)
  1439. {
  1440. #ifdef DEVICE_TREE_SUPPORT
  1441. boot_linux_fdt((void *)kernel, (unsigned *)tags,
  1442. machtype,
  1443. (void *)ramdisk, ramdisk_sz);
  1444. panic("%s Fail to enter EL1\n", __func__);
  1445. #endif
  1446. }
  1447. #ifdef MTK_AB_OTA_UPDATER
  1448. void get_AB_OTA_param(void)
  1449. {
  1450. p_AB_suffix = get_suffix();
  1451. AB_retry_count = get_retry_count(p_AB_suffix);
  1452. pal_log_err("[%s:%d] p_AB_suffix: %s, AB_retry_count: %d\n", __func__,
  1453. __LINE__, p_AB_suffix, AB_retry_count);
  1454. }
  1455. void get_AB_OTA_name(char *part_name, int size)
  1456. {
  1457. int ret;
  1458. if (!p_AB_suffix)
  1459. get_AB_OTA_param();
  1460. ret = snprintf(part_name, size, "%s%s", part_name, p_AB_suffix);
  1461. if (ret <= 0)
  1462. pal_log_err("[%s:%d] %s get part_name fail\n", __func__,
  1463. __LINE__, part_name);
  1464. }
  1465. #endif /* MTK_AB_OTA_UPDATER */
  1466. int boot_linux_from_storage(void)
  1467. {
  1468. int ret = 0;
  1469. uint32_t kernel_target_addr = 0;
  1470. uint32_t ramdisk_target_addr = 0;
  1471. uint32_t tags_target_addr = 0;
  1472. uint32_t ramdisk_real_sz = 0;
  1473. #if defined(CFG_NAND_BOOT)
  1474. #define CMDLINE_TMP_CONCAT_SIZE 110
  1475. char cmdline_tmpbuf[CMDLINE_TMP_CONCAT_SIZE];
  1476. #endif
  1477. switch (g_boot_mode) {
  1478. case NORMAL_BOOT:
  1479. case META_BOOT:
  1480. case ADVMETA_BOOT:
  1481. case SW_REBOOT:
  1482. case ALARM_BOOT:
  1483. #ifdef MTK_KERNEL_POWER_OFF_CHARGING
  1484. case KERNEL_POWER_OFF_CHARGING_BOOT:
  1485. case LOW_POWER_OFF_CHARGING_BOOT:
  1486. #endif
  1487. PROFILING_START("load boot image");
  1488. #if defined(CFG_NAND_BOOT)
  1489. snprintf(cmdline_tmpbuf, CMDLINE_TMP_CONCAT_SIZE, "%s%x%s%x",
  1490. NAND_MANF_CMDLINE, nand_flash_man_code, NAND_DEV_CMDLINE, nand_flash_dev_id);
  1491. cmdline_append(cmdline_tmpbuf);
  1492. #endif
  1493. ret = load_vfy_boot(BOOTIMG_TYPE_BOOT, CFG_BOOTIMG_LOAD_ADDR);
  1494. ret = (int)handle_vboot_state(BOOTIMG_TYPE_BOOT);
  1495. if (ret != STATUS_OK)
  1496. mtk_arch_reset(1);
  1497. PAL_ASSERT(ret >= 0);
  1498. PROFILING_END();
  1499. break;
  1500. case RECOVERY_BOOT:
  1501. /* it's boot.img when system as root is enabled, and is *
  1502. * recovery.img when system as root is disabled. *
  1503. */
  1504. PROFILING_START("load recovery image");
  1505. if (!get_recovery_img_loaded()) {
  1506. ret = load_vfy_boot(BOOTIMG_TYPE_RECOVERY, CFG_BOOTIMG_LOAD_ADDR);
  1507. ret = (int)handle_vboot_state(BOOTIMG_TYPE_RECOVERY);
  1508. if (ret != STATUS_OK)
  1509. mtk_arch_reset(1);
  1510. PAL_ASSERT(ret >= 0);
  1511. }
  1512. PROFILING_END();
  1513. break;
  1514. case FACTORY_BOOT:
  1515. case ATE_FACTORY_BOOT:
  1516. /* it's boot.img, we don't have standalone factory image now */
  1517. PROFILING_START("load factory image");
  1518. #if defined(CFG_NAND_BOOT)
  1519. snprintf(cmdline_tmpbuf, CMDLINE_TMP_CONCAT_SIZE, "%s%x%s%x",
  1520. NAND_MANF_CMDLINE, nand_flash_man_code, NAND_DEV_CMDLINE, nand_flash_dev_id);
  1521. cmdline_append(cmdline_tmpbuf);
  1522. #endif
  1523. ret = load_vfy_boot(BOOTIMG_TYPE_BOOT, CFG_BOOTIMG_LOAD_ADDR);
  1524. ret = (int)handle_vboot_state(BOOTIMG_TYPE_BOOT);
  1525. if (ret != STATUS_OK)
  1526. mtk_arch_reset(1);
  1527. PAL_ASSERT(ret >= 0);
  1528. PROFILING_END();
  1529. break;
  1530. case FASTBOOT:
  1531. case DOWNLOAD_BOOT:
  1532. case UNKNOWN_BOOT:
  1533. break;
  1534. }
  1535. kernel_target_addr = get_kernel_target_addr();
  1536. tags_target_addr = get_tags_addr();
  1537. PAL_ASSERT(kernel_target_addr != 0);
  1538. #ifdef MTK_RECOVERY_RAMDISK_SPLIT
  1539. if (g_boot_mode == RECOVERY_BOOT) {
  1540. uint32_t ramdisk_compressed_sz;
  1541. load_vfy_ramdisk(&ramdisk_compressed_sz);
  1542. ramdisk_real_sz = ramdisk_compressed_sz;
  1543. }
  1544. else
  1545. #endif /* MTK_RECOVERY_RAMDISK_SPLIT */
  1546. {
  1547. relocate_ramdisk(&ramdisk_target_addr, &ramdisk_real_sz);
  1548. }
  1549. /*
  1550. * merge dtb's bootargs with customized cmdline
  1551. * as early as possible
  1552. */
  1553. bootargs_init((void *)tags_target_addr);
  1554. custom_port_in_kernel(g_boot_mode, cmdline_get());
  1555. #ifdef SELINUX_STATUS
  1556. #if SELINUX_STATUS == 1
  1557. cmdline_append("androidboot.selinux=disabled");
  1558. #elif SELINUX_STATUS == 2
  1559. cmdline_append("androidboot.selinux=permissive");
  1560. #endif
  1561. #endif
  1562. /* This is patch for Android Test Mode(ATM). */
  1563. /* 1. Sets kernel cmdline for ATM only in normal mode
  1564. * 2. Bypass write protect in boot mode "normal" when ATM is enabled.
  1565. * Background:
  1566. * "proinfo" partition is write protected in boot mode "normal". When ATM is enabled,
  1567. * we bypass write protection since we needs to write to proinfo. Whether device is in ATM
  1568. * should also be passed to kernel through cmdline, only seen in normal mode
  1569. */
  1570. if (g_boot_mode == NORMAL_BOOT) {
  1571. if (true == get_atm_enable_status()) {
  1572. cmdline_append("androidboot.atm=enable");
  1573. } else if (false == get_atm_enable_status()) {
  1574. write_protect_flow();
  1575. cmdline_append("androidboot.atm=disabled");
  1576. }
  1577. }
  1578. // MTK read printk ratelimit config
  1579. read_ratelimit_config();
  1580. #if !defined(SYSTEM_AS_ROOT) && defined(RECOVERY_AS_BOOT)
  1581. /*
  1582. * In Q, if RECOVERY_AS_BOOT is enabled, normal boot and recovery
  1583. * ramdisk is in the same boot partition.
  1584. * Recovery ramdisk is in root folder and normal boot ramdisk in another subfolder.
  1585. * If MTK_RECOVERY_RAMDISK_SPLIT is enabled, we do not indicate init process to
  1586. * switch root to /first_stage_mount since RECOVERY_AS_BOOT only
  1587. * enabled in A/B system.
  1588. */
  1589. #if !defined(MTK_RECOVERY_RAMDISK_SPLIT)
  1590. if (g_boot_mode != RECOVERY_BOOT)
  1591. cmdline_append("androidboot.force_normal_boot=1");
  1592. #endif
  1593. #endif
  1594. /* pass the meta_log_disable to user space logger, default is enable */
  1595. if (is_meta_log_disable && (is_meta_log_disable() == 1)) {
  1596. cmdline_append("androidboot.meta_log_disable=1");
  1597. } else {
  1598. cmdline_append("androidboot.meta_log_disable=0");
  1599. }
  1600. /* pass related root of trust info via SMC call */
  1601. send_root_of_trust_info();
  1602. set_boot_phase(BOOT_PHASE_KERNEL);
  1603. boot_linux((void *)kernel_target_addr,
  1604. (unsigned *)tags_target_addr,
  1605. board_machtype(),
  1606. (void *)ramdisk_target_addr,
  1607. ramdisk_real_sz);
  1608. return 0;
  1609. }
  1610. #if defined(CONFIG_MTK_USB_UNIQUE_SERIAL) || (defined(MTK_SECURITY_SW_SUPPORT) && defined(MTK_SEC_FASTBOOT_UNLOCK_SUPPORT))
  1611. static char udc_chr[32] = {"ABCDEFGHIJKLMNOPQRSTUVWXYZ456789"};
  1612. int get_serial(u64 hwkey, u32 chipid, char ser[SERIALNO_LEN])
  1613. {
  1614. u16 hashkey[4];
  1615. u32 idx, ser_idx;
  1616. u32 digit, id;
  1617. u64 tmp = hwkey;
  1618. memset(ser, 0x00, SERIALNO_LEN);
  1619. /* split to 4 key with 16-bit width each */
  1620. tmp = hwkey;
  1621. for (idx = 0; idx < ARRAY_SIZE(hashkey); idx++) {
  1622. hashkey[idx] = (u16)(tmp & 0xffff);
  1623. tmp >>= 16;
  1624. }
  1625. /* hash the key with chip id */
  1626. id = chipid;
  1627. for (idx = 0; idx < ARRAY_SIZE(hashkey); idx++) {
  1628. digit = (id % 10);
  1629. hashkey[idx] = (hashkey[idx] >> digit) | (hashkey[idx] << (16 - digit));
  1630. id = (id / 10);
  1631. }
  1632. /* generate serail using hashkey */
  1633. ser_idx = 0;
  1634. for (idx = 0; idx < ARRAY_SIZE(hashkey); idx++) {
  1635. ser[ser_idx++] = (hashkey[idx] & 0x001f);
  1636. ser[ser_idx++] = (hashkey[idx] & 0x00f8) >> 3;
  1637. ser[ser_idx++] = (hashkey[idx] & 0x1f00) >> 8;
  1638. ser[ser_idx++] = (hashkey[idx] & 0xf800) >> 11;
  1639. }
  1640. for (idx = 0; idx < ser_idx; idx++)
  1641. ser[idx] = udc_chr[(int)ser[idx]];
  1642. ser[ser_idx] = 0x00;
  1643. return 0;
  1644. }
  1645. #endif /* CONFIG_MTK_USB_UNIQUE_SERIAL */
  1646. #ifdef SERIAL_NUM_FROM_BARCODE
  1647. static inline int read_product_info(char *buf)
  1648. {
  1649. #define PROINFO_OFFSET 116 // barcode:64 + imei:40 + bt:6 + wifi:6
  1650. #define BLK_SIZE 512
  1651. int tmp = 0;
  1652. char * buf_blk = (char *)0;
  1653. if (!buf) return 0;
  1654. buf_blk = malloc(BLK_SIZE);
  1655. if (!buf_blk)
  1656. {
  1657. dprintf(CRITICAL, "[error] alloc proinfo buffer fail.\n");
  1658. return 0;
  1659. }
  1660. memset(buf_blk, 0, BLK_SIZE);
  1661. dprintf(CRITICAL, "begin read proinfo\n");
  1662. tmp = mboot_recovery_load_raw_part("proinfo", buf_blk, BLK_SIZE);
  1663. if (tmp != BLK_SIZE)
  1664. {
  1665. dprintf(CRITICAL, "[error] read proinfo fail, only read size %d, block size %d.\n", tmp, BLK_SIZE);
  1666. free(buf_blk);
  1667. return 0;
  1668. }
  1669. memcpy(buf, buf_blk + PROINFO_OFFSET, SN_BUF_LEN);
  1670. buf[SN_BUF_LEN] = '\0';
  1671. dprintf(CRITICAL, "get serialno from proinfo: \"%s\"\n", buf);
  1672. free(buf_blk);
  1673. for (tmp = 0; tmp < SN_BUF_LEN; tmp++) {
  1674. if ( (buf[tmp] == 0 || buf[tmp] == 0x20) && tmp > 0) {
  1675. break;
  1676. } else if ( !isalpha(buf[tmp]) && !isdigit(buf[tmp]))
  1677. return 0;
  1678. }
  1679. return tmp;
  1680. }
  1681. #endif
  1682. #ifdef CONFIG_MTK_USB_UNIQUE_SERIAL
  1683. static inline int read_product_usbid(char *serialno)
  1684. {
  1685. u64 key;
  1686. u32 hrid_size, ser_len;
  1687. u32 i, chip_code, errcode = 0;
  1688. char *cur_serialp = serialno;
  1689. char serial_num[SERIALNO_LEN];
  1690. /* read machine type */
  1691. chip_code = board_machtype();
  1692. /* read hrid */
  1693. hrid_size = get_hrid_size();
  1694. /* check ser_buf len. if need 128bit id, should defined into cust_usb.h */
  1695. if (SN_BUF_LEN < hrid_size * 8) {
  1696. hrid_size = 2;
  1697. errcode = 1;
  1698. }
  1699. for (i = 0; i < hrid_size / 2; i++) {
  1700. key = get_devinfo_with_index(13 + i * 2); /* 13, 15 */
  1701. key = (key << 32) | (unsigned int)get_devinfo_with_index(
  1702. 12 + i * 2); /* 12, 14 */
  1703. if (key != 0) {
  1704. get_serial(key, chip_code, serial_num);
  1705. ser_len = strlen(serial_num);
  1706. } else {
  1707. ser_len = strlen(DEFAULT_SERIAL_NUM);
  1708. memcpy(serial_num, DEFAULT_SERIAL_NUM, ser_len);
  1709. errcode = 2;
  1710. }
  1711. /* copy serial from serial_num to sn_buf */
  1712. memcpy(cur_serialp, serial_num, ser_len);
  1713. cur_serialp += ser_len;
  1714. }
  1715. cur_serialp = '\0';
  1716. return errcode;
  1717. }
  1718. #endif
  1719. /******************************************************************************
  1720. ******************************************************************************/
  1721. static void set_serial_num(void)
  1722. {
  1723. unsigned int len;
  1724. char *id_tmp = get_env("MTK_DEVICE_ID");
  1725. if (!id_tmp) {
  1726. pal_log_info("Set serial # to default value.\n");
  1727. len = strlen(DEFAULT_SERIAL_NUM);
  1728. len = (len < SN_BUF_LEN) ? len : SN_BUF_LEN;
  1729. strncpy(sn_buf, DEFAULT_SERIAL_NUM, len);
  1730. sn_buf[len] = '\0';
  1731. } else {
  1732. pal_log_info("Set serial # from para.\n");
  1733. len = strlen(id_tmp);
  1734. len = (len < SN_BUF_LEN) ? len : SN_BUF_LEN;
  1735. strncpy(sn_buf, id_tmp, len);
  1736. sn_buf[len] = '\0';
  1737. }
  1738. if (strncmp(sn_buf, DEFAULT_SERIAL_NUM, SN_BUF_LEN) != 0) {
  1739. goto set_serialno;
  1740. }
  1741. #ifdef CONFIG_MTK_USB_UNIQUE_SERIAL
  1742. int errcode = read_product_usbid(sn_buf);
  1743. if (errcode)
  1744. pal_log_err("Set serial # from efuse. error: %d\n", errcode);
  1745. len = strlen(sn_buf);
  1746. len = (len < SN_BUF_LEN) ? len : SN_BUF_LEN;
  1747. sn_buf[len] = '\0';
  1748. #endif // CONFIG_MTK_USB_UNIQUE_SERIAL
  1749. if (strncmp(sn_buf, DEFAULT_SERIAL_NUM, SN_BUF_LEN) != 0) {
  1750. goto set_serialno;
  1751. }
  1752. #ifdef SERIAL_NUM_FROM_BARCODE
  1753. len = (unsigned int)read_product_info(sn_buf); // sn_buf[] may be changed.
  1754. if (len == 0) {
  1755. len = strlen(DEFAULT_SERIAL_NUM);
  1756. len = (len < SN_BUF_LEN) ? len : SN_BUF_LEN;
  1757. strncpy(sn_buf, DEFAULT_SERIAL_NUM, len);
  1758. } else
  1759. len = (len < SN_BUF_LEN) ? len : SN_BUF_LEN;
  1760. sn_buf[len] = '\0';
  1761. #endif // SERIAL_NUM_FROM_BARCODE
  1762. set_serialno:
  1763. //pal_log_err("Serial #: \"%s\"\n", sn_buf);
  1764. surf_udc_device.serialno = sn_buf;
  1765. }
  1766. void mt_boot_init(const struct app_descriptor *app)
  1767. {
  1768. unsigned usb_init = 0;
  1769. unsigned sz = 0;
  1770. set_serial_num();
  1771. #ifdef MTK_DEBUG_SHELL
  1772. if (app != NULL)
  1773. goto lk_debug;
  1774. #endif
  1775. if (g_boot_mode == FASTBOOT)
  1776. goto fastboot;
  1777. #ifdef MTK_SECURITY_SW_SUPPORT
  1778. #if MTK_FORCE_VERIFIED_BOOT_SIG_VFY
  1779. /* verify oem image with android verified boot signature instead of mediatek proprietary signature */
  1780. /* verification is postponed to boot image loading stage */
  1781. /* note in this case, boot/recovery image will be verified even when secure boot is disabled */
  1782. g_boot_state = BOOT_STATE_RED;
  1783. #else
  1784. if (0 != sec_boot_check(0))
  1785. g_boot_state = BOOT_STATE_RED;
  1786. #endif
  1787. #endif
  1788. /* Will not return */
  1789. boot_linux_from_storage();
  1790. fastboot:
  1791. target_fastboot_init();
  1792. if (!usb_init)
  1793. udc_init(&surf_udc_device);
  1794. mt_part_dump();
  1795. sz = target_get_max_flash_size();
  1796. fastboot_init(target_get_scratch_address(), sz);
  1797. udc_start();
  1798. #ifdef MTK_DEBUG_SHELL
  1799. lk_debug:
  1800. mtk_wdt_disable();
  1801. dprintf(INFO, "mt_boot_init not go to kernel and disable wdt !!\n");
  1802. #endif
  1803. }
  1804. APP_START(mt_boot)
  1805. .init = mt_boot_init,
  1806. APP_END