ipanic_rom.c 18 KB

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  1. #include <linux/kernel.h>
  2. #include <linux/slab.h>
  3. #include <linux/mm.h>
  4. #include <asm/memory.h>
  5. #include <asm/cacheflush.h>
  6. #include <linux/kdebug.h>
  7. #include <linux/module.h>
  8. #include <mrdump.h>
  9. #include <mt-plat/mtk_ram_console.h>
  10. #include <mach/wd_api.h>
  11. #include <linux/reboot.h>
  12. #include "ipanic.h"
  13. #include <asm/system_misc.h>
  14. static u32 ipanic_iv = 0xaabbccdd;
  15. static spinlock_t ipanic_lock;
  16. struct ipanic_ops *ipanic_ops;
  17. typedef int (*fn_next) (void *data, unsigned char *buffer, size_t sz_buf);
  18. static bool ipanic_enable = 1;
  19. int __weak ipanic_atflog_buffer(void *data, unsigned char *buffer, size_t sz_buf)
  20. {
  21. return 0;
  22. }
  23. int __weak panic_dump_android_log(char *buffer, size_t sz_buf, int type)
  24. {
  25. return 0;
  26. }
  27. int __weak has_mt_dump_support(void)
  28. {
  29. pr_notice("%s: no mt_dump support!\n", __func__);
  30. return 0;
  31. }
  32. int __weak panic_dump_disp_log(void *data, unsigned char *buffer, size_t sz_buf)
  33. {
  34. pr_notice("%s: weak function\n", __func__);
  35. return 0;
  36. }
  37. #if 1
  38. void ipanic_block_scramble(u8 *buf, int buflen)
  39. {
  40. int i;
  41. u32 *p = (u32 *) buf;
  42. for (i = 0; i < buflen; i += 4, p++)
  43. *p = *p ^ ipanic_iv;
  44. }
  45. #else
  46. void ipanic_block_scramble(u8 *buf, int buflen)
  47. {
  48. }
  49. #endif
  50. static void ipanic_kick_wdt(void)
  51. {
  52. int res = 0;
  53. struct wd_api *wd_api = NULL;
  54. res = get_wd_api(&wd_api);
  55. if (res == 0)
  56. wd_api->wd_restart(WD_TYPE_NOLOCK);
  57. }
  58. void register_ipanic_ops(struct ipanic_ops *ops)
  59. {
  60. #ifndef IPANIC_USERSPACE_READ
  61. ipanic_ops = ops;
  62. #endif
  63. }
  64. struct aee_oops *ipanic_oops_copy(void)
  65. {
  66. if (ipanic_ops)
  67. return ipanic_ops->oops_copy();
  68. else
  69. return NULL;
  70. }
  71. EXPORT_SYMBOL(ipanic_oops_copy);
  72. void ipanic_oops_free(struct aee_oops *oops, int erase)
  73. {
  74. if (ipanic_ops)
  75. ipanic_ops->oops_free(oops, erase);
  76. }
  77. EXPORT_SYMBOL(ipanic_oops_free);
  78. static int ipanic_alog_buffer(void *data, unsigned char *buffer, size_t sz_buf);
  79. static int ipanic_current_task_info(void *data, unsigned char *buffer, size_t sz_buf)
  80. {
  81. return mrdump_task_info(buffer, sz_buf);
  82. }
  83. /*#ifdef CONFIG_MTK_MMPROFILE_SUPPORT*/
  84. #ifdef CONFIG_MMPROFILE
  85. static int ipanic_mmprofile(void *data, unsigned char *buffer, size_t sz_buf)
  86. {
  87. int errno = 0;
  88. static unsigned int index;
  89. static unsigned int mmprofile_dump_size;
  90. unsigned long pbuf = 0;
  91. unsigned int bufsize = 0;
  92. if (mmprofile_dump_size == 0) {
  93. mmprofile_dump_size = MMProfileGetDumpSize();
  94. if (mmprofile_dump_size == 0 || mmprofile_dump_size > IPANIC_MMPROFILE_LIMIT) {
  95. LOGE("%s: INVALID MMProfile size[%x]", __func__, mmprofile_dump_size);
  96. return -3;
  97. }
  98. }
  99. MMProfileGetDumpBuffer(index, (unsigned int *)&pbuf, &bufsize);
  100. if (bufsize == 0) {
  101. errno = 0;
  102. } else if (bufsize > sz_buf) {
  103. errno = -4;
  104. } else {
  105. memcpy(buffer, (void *)pbuf, bufsize);
  106. index += bufsize;
  107. errno = bufsize;
  108. }
  109. return errno;
  110. }
  111. #endif
  112. const struct ipanic_dt_op ipanic_dt_ops[] = {
  113. {"IPANIC_HEADER", 0, NULL},
  114. {"SYS_KERNEL_LOG", __LOG_BUF_LEN, ipanic_klog_buffer},
  115. {"SYS_WDT_LOG", WDT_LOG_LEN, ipanic_klog_buffer},
  116. {"SYS_WQ_LOG", 0, NULL},
  117. {"reserved", 0, NULL},
  118. {"reserved", 0, NULL},
  119. {"PROC_CUR_TSK", sizeof(struct aee_process_info), ipanic_current_task_info},
  120. {"_exp_detail.txt", OOPS_LOG_LEN, ipanic_klog_buffer},
  121. {"SYS_MINI_RDUMP", MRDUMP_MINI_BUF_SIZE, NULL}, /* 8 */
  122. /*#ifdef CONFIG_MTK_MMPROFILE_SUPPORT*/
  123. #ifdef CONFIG_MMPROFILE
  124. {"SYS_MMPROFILE", IPANIC_MMPROFILE_LIMIT, ipanic_mmprofile},
  125. #else
  126. {"SYS_MMPROFILE", 0, NULL},
  127. #endif
  128. {"SYS_MAIN_LOG_RAW", __MAIN_BUF_SIZE, ipanic_alog_buffer},
  129. {"SYS_SYSTEM_LOG_RAW", __SYSTEM_BUF_SIZE, ipanic_alog_buffer},
  130. {"SYS_EVENTS_LOG_RAW", __EVENTS_BUF_SIZE, ipanic_alog_buffer},
  131. {"SYS_RADIO_LOG_RAW", __RADIO_BUF_SIZE, ipanic_alog_buffer},
  132. {"SYS_LAST_LOG", LAST_LOG_LEN, ipanic_klog_buffer},
  133. {"SYS_ATF_LOG", ATF_LOG_SIZE, ipanic_atflog_buffer},
  134. {"SYS_DISP_LOG", DISP_LOG_SIZE, panic_dump_disp_log}, /* 16 */
  135. {"reserved", 0, NULL},
  136. {"reserved", 0, NULL},
  137. {"reserved", 0, NULL},
  138. {"reserved", 0, NULL},
  139. {"reserved", 0, NULL},
  140. {"reserved", 0, NULL},
  141. {"reserved", 0, NULL},
  142. {"reserved", 0, NULL}, /* 24 */
  143. {"reserved", 0, NULL},
  144. {"reserved", 0, NULL},
  145. {"reserved", 0, NULL},
  146. {"reserved", 0, NULL},
  147. {"reserved", 0, NULL},
  148. {"reserved", 0, NULL},
  149. {"reserved", 0, NULL},
  150. };
  151. static const char IPANIC_DT_STR[][16] = {"XXXXXXXXX", "XXXXXXXXXX",
  152. "XXXXXXXX", "XXXXXXXXXX", "XXXXXXXXX" };
  153. static const char IPANIC_ERR_MSG[][16] = { "unaligned", "blk alignment" };
  154. static struct ipanic_header ipanic_hdr, *iheader;
  155. /* data: indicate dump scope; buffer: dump to; sz_buf: buffer size;
  156. return: real size dumped */
  157. static int ipanic_memory_buffer(void *data, unsigned char *buffer, size_t sz_buf)
  158. {
  159. unsigned long sz_real;
  160. struct ipanic_memory_block *mem = (struct ipanic_memory_block *)data;
  161. unsigned long start = mem->kstart;
  162. unsigned long end = mem->kend;
  163. unsigned long pos = mem->pos;
  164. if (pos > end || pos < start)
  165. return -1;
  166. sz_real = (end - pos) > sz_buf ? sz_buf : (end - pos);
  167. memcpy(buffer, (void *)pos, sz_real);
  168. mem->pos += sz_real;
  169. return sz_real;
  170. }
  171. static int ipanic_alog_buffer(void *data, unsigned char *buffer, size_t sz_buf)
  172. {
  173. int rc;
  174. rc = panic_dump_android_log(buffer, sz_buf, (unsigned long)data);
  175. if (rc < 0)
  176. rc = -1;
  177. return rc;
  178. }
  179. inline int ipanic_func_write(fn_next next, void *data, int off, int total, int encrypt)
  180. {
  181. int errno = 0;
  182. size_t size;
  183. int start = off;
  184. struct ipanic_header *iheader = ipanic_header();
  185. unsigned char *ipanic_buffer = (unsigned char *)(unsigned long)iheader->buf;
  186. size_t sz_ipanic_buffer = iheader->bufsize;
  187. size_t blksize = iheader->blksize;
  188. int many = total > iheader->bufsize;
  189. LOGV("off[%x], encrypt[%d]\n", off, encrypt);
  190. if (off & (blksize - 1))
  191. return -2; /*invalid offset, not block aligned */
  192. do {
  193. errno = next(data, ipanic_buffer, sz_ipanic_buffer);
  194. if (IS_ERR(ERR_PTR(errno)))
  195. break;
  196. size = (size_t) errno;
  197. if (size == 0)
  198. return (off - start);
  199. if ((off - start + size) > total) {
  200. LOGE("%s: data oversize(%zx>%x@%x)\n", __func__, off - start + size, total,
  201. start);
  202. errno = -EFBIG;
  203. break;
  204. }
  205. if (encrypt)
  206. ipanic_block_scramble(ipanic_buffer, size);
  207. if (size != sz_ipanic_buffer)
  208. memset(ipanic_buffer + size, 0, sz_ipanic_buffer - size);
  209. LOGV("%x@%x\n", size, off);
  210. if (ipanic_enable)
  211. errno = ipanic_write_size(ipanic_buffer, off, ALIGN(size, blksize));
  212. else
  213. errno = -10;
  214. if (IS_ERR(ERR_PTR(errno)))
  215. break;
  216. off += size;
  217. if (many == 0)
  218. return size;
  219. } while (many);
  220. return errno;
  221. }
  222. inline int ipanic_next_write(fn_next next, void *data, int off, int total, int encrypt)
  223. {
  224. return ipanic_func_write(next, data, off, total, encrypt);
  225. }
  226. inline int ipanic_mem_write(void *buf, int off, int len, int encrypt)
  227. {
  228. struct ipanic_memory_block mem_info = {
  229. .kstart = (unsigned long)buf,
  230. .kend = (unsigned long)buf + len,
  231. .pos = (unsigned long)buf,
  232. };
  233. return ipanic_next_write(ipanic_memory_buffer, &mem_info, off, len, encrypt);
  234. }
  235. static int ipanic_header_to_sd(struct ipanic_data_header *header)
  236. {
  237. int errno = 0;
  238. int first_write = 0;
  239. struct ipanic_header *ipanic_hdr = ipanic_header();
  240. if (!ipanic_hdr->datas)
  241. first_write = 1;
  242. if (header) {
  243. ipanic_hdr->datas |= (0x1 < header->type);
  244. header->valid = 1;
  245. }
  246. if (ipanic_hdr->dhblk == 0 || header == NULL || first_write == 1)
  247. errno = ipanic_mem_write(ipanic_hdr, 0, sizeof(struct ipanic_header), 0);
  248. if (ipanic_hdr->dhblk && header)
  249. errno =
  250. ipanic_mem_write(header, header->offset - ipanic_hdr->dhblk,
  251. sizeof(struct ipanic_data_header), 0);
  252. if (IS_ERR(ERR_PTR(errno)))
  253. LOGW("%s: failed[%x-%d]\n", __func__, header ? header->type : 0, errno);
  254. return errno;
  255. }
  256. static int ipanic_data_is_valid(int dt)
  257. {
  258. struct ipanic_header *ipanic_hdr = ipanic_header();
  259. struct ipanic_data_header *dheader = &ipanic_hdr->data_hdr[dt];
  260. return (dheader->valid == 1);
  261. }
  262. int ipanic_data_to_sd(int dt, void *data)
  263. {
  264. int errno = 0;
  265. int (*next)(void *data, unsigned char *buffer, size_t sz_buf);
  266. struct ipanic_header *ipanic_hdr = ipanic_header();
  267. struct ipanic_data_header *dheader = &ipanic_hdr->data_hdr[dt];
  268. if (!ipanic_dt_active(dt) || dheader->valid == 1)
  269. return -4;
  270. next = ipanic_dt_ops[dt].next;
  271. if (next == NULL) {
  272. errno = -3;
  273. } else {
  274. errno =
  275. ipanic_next_write(next, data, dheader->offset, dheader->total,
  276. dheader->encrypt);
  277. }
  278. if (IS_ERR(ERR_PTR(errno))) {
  279. LOGW("%s: dump %s failed[%d]\n", __func__, dheader->name, errno);
  280. if (errno == -EFBIG)
  281. dheader->used = dheader->total;
  282. else
  283. return errno;
  284. } else {
  285. dheader->used = (size_t) errno;
  286. }
  287. ipanic_header_to_sd(dheader);
  288. return errno;
  289. }
  290. void ipanic_mrdump_mini(AEE_REBOOT_MODE reboot_mode, const char *msg, ...)
  291. {
  292. int ret;
  293. struct ipanic_header *ipanic_hdr;
  294. loff_t sd_offset;
  295. struct ipanic_data_header *dheader;
  296. va_list ap;
  297. /* write sd is unreliable, so gen mrdump header first */
  298. if (ipanic_data_is_valid(IPANIC_DT_MINI_RDUMP))
  299. return;
  300. va_start(ap, msg);
  301. ipanic_hdr = ipanic_header();
  302. sd_offset = ipanic_hdr->data_hdr[IPANIC_DT_MINI_RDUMP].offset;
  303. dheader = &ipanic_hdr->data_hdr[IPANIC_DT_MINI_RDUMP];
  304. ret = mrdump_mini_create_oops_dump(reboot_mode, ipanic_mem_write, sd_offset, msg, ap);
  305. va_end(ap);
  306. if (!IS_ERR(ERR_PTR(ret))) {
  307. dheader->used = ret;
  308. ipanic_header_to_sd(dheader);
  309. }
  310. }
  311. void *ipanic_data_from_sd(struct ipanic_data_header *dheader, int encrypt)
  312. {
  313. void *data;
  314. data = expdb_read_size(dheader->offset, dheader->used);
  315. /* data = ipanic_read_size(dheader->offset, dheader->used); */
  316. if (data != 0 && encrypt != 0)
  317. ipanic_block_scramble((unsigned char *)data, dheader->used);
  318. return data;
  319. }
  320. struct ipanic_header *ipanic_header_from_sd(unsigned int offset, unsigned int magic)
  321. {
  322. struct ipanic_data_header *dheader;
  323. int dt;
  324. char str[256];
  325. size_t size = 0;
  326. struct ipanic_header *header;
  327. struct ipanic_data_header dheader_header = {
  328. .type = IPANIC_DT_HEADER,
  329. .offset = offset,
  330. .used = sizeof(struct ipanic_header),
  331. };
  332. header = (struct ipanic_header *)ipanic_data_from_sd(&dheader_header, 0);
  333. if (IS_ERR_OR_NULL((void *)header)) {
  334. LOGD("read header failed[%ld]\n", PTR_ERR((void *)header));
  335. header = NULL;
  336. } else if (header->magic != magic) {
  337. LOGD("no ipanic data[%x]\n", header->magic);
  338. kfree(header);
  339. header = NULL;
  340. ipanic_erase();
  341. } else {
  342. for (dt = IPANIC_DT_HEADER + 1; dt < IPANIC_DT_RESERVED31; dt++) {
  343. dheader = &header->data_hdr[dt];
  344. if (dheader->valid) {
  345. size += snprintf(str + size, 256 - size, "%s[%x@%x],",
  346. dheader->name, dheader->used, dheader->offset);
  347. }
  348. }
  349. LOGD("ipanic data available^v^%s^v^\n", str);
  350. }
  351. return header;
  352. }
  353. struct aee_oops *ipanic_oops_from_sd(void)
  354. {
  355. struct aee_oops *oops = NULL;
  356. struct ipanic_header *hdr = NULL;
  357. struct ipanic_data_header *dheader;
  358. char *data;
  359. int i;
  360. hdr = ipanic_header_from_sd(0, AEE_IPANIC_MAGIC);
  361. if (hdr == NULL)
  362. return NULL;
  363. oops = aee_oops_create(AE_DEFECT_FATAL, AE_KE, IPANIC_MODULE_TAG);
  364. if (oops == NULL) {
  365. LOGE("%s: can not allocate buffer\n", __func__);
  366. return NULL;
  367. }
  368. for (i = IPANIC_DT_HEADER + 1; i < IPANIC_DT_RESERVED31; i++) {
  369. dheader = &hdr->data_hdr[i];
  370. if (dheader->valid == 0)
  371. continue;
  372. data = ipanic_data_from_sd(dheader, 1);
  373. if (data) {
  374. switch (i) {
  375. case IPANIC_DT_KERNEL_LOG:
  376. oops->console = data;
  377. oops->console_len = dheader->used;
  378. break;
  379. case IPANIC_DT_MINI_RDUMP:
  380. oops->mini_rdump = data;
  381. oops->mini_rdump_len = dheader->used;
  382. break;
  383. case IPANIC_DT_MAIN_LOG:
  384. oops->android_main = data;
  385. oops->android_main_len = dheader->used;
  386. break;
  387. case IPANIC_DT_SYSTEM_LOG:
  388. oops->android_system = data;
  389. oops->android_system_len = dheader->used;
  390. break;
  391. case IPANIC_DT_EVENTS_LOG:
  392. /* Todo .. */
  393. break;
  394. case IPANIC_DT_RADIO_LOG:
  395. oops->android_radio = data;
  396. oops->android_radio_len = dheader->used;
  397. break;
  398. case IPANIC_DT_CURRENT_TSK:
  399. memcpy(oops->process_path, data, AEE_PROCESS_NAME_LENGTH - 1);
  400. break;
  401. case IPANIC_DT_MMPROFILE:
  402. oops->mmprofile = data;
  403. oops->mmprofile_len = dheader->used;
  404. break;
  405. default:
  406. LOGI("%s: [%d] NOT USED.\n", __func__, i);
  407. }
  408. } else {
  409. LOGW("%s: read %s failed, %x@%x\n", __func__,
  410. dheader->name, dheader->used, dheader->offset);
  411. }
  412. }
  413. return oops;
  414. }
  415. int ipanic(struct notifier_block *this, unsigned long event, void *ptr)
  416. {
  417. struct ipanic_data_header *dheader;
  418. struct kmsg_dumper dumper;
  419. struct ipanic_atf_log_rec atf_log = { ATF_LOG_SIZE, 0, 0 };
  420. void *data = NULL;
  421. int dt;
  422. int errno;
  423. struct ipanic_header *ipanic_hdr;
  424. memset(&dumper, 0x0, sizeof(struct kmsg_dumper));
  425. aee_rr_rec_fiq_step(AEE_FIQ_STEP_KE_IPANIC_START);
  426. aee_rr_rec_exp_type(2);
  427. bust_spinlocks(1);
  428. spin_lock_irq(&ipanic_lock);
  429. aee_disable_api();
  430. mrdump_mini_ke_cpu_regs(NULL);
  431. ipanic_mrdump_mini(AEE_REBOOT_MODE_KERNEL_PANIC, "kernel PANIC");
  432. if (!ipanic_data_is_valid(IPANIC_DT_KERNEL_LOG)) {
  433. ipanic_klog_region(&dumper);
  434. errno = ipanic_data_to_sd(IPANIC_DT_KERNEL_LOG, &dumper);
  435. if (errno == -1)
  436. aee_nested_printf("$");
  437. }
  438. ipanic_klog_region(&dumper);
  439. errno = ipanic_data_to_sd(IPANIC_DT_OOPS_LOG, &dumper);
  440. if (errno == -1)
  441. aee_nested_printf("$");
  442. ipanic_data_to_sd(IPANIC_DT_CURRENT_TSK, 0);
  443. /* kick wdt after save the most critical infos */
  444. ipanic_kick_wdt();
  445. ipanic_data_to_sd(IPANIC_DT_MAIN_LOG, (void *)1);
  446. ipanic_data_to_sd(IPANIC_DT_SYSTEM_LOG, (void *)4);
  447. ipanic_data_to_sd(IPANIC_DT_EVENTS_LOG, (void *)2);
  448. ipanic_data_to_sd(IPANIC_DT_RADIO_LOG, (void *)3);
  449. aee_wdt_dump_info();
  450. ipanic_klog_region(&dumper);
  451. ipanic_data_to_sd(IPANIC_DT_WDT_LOG, &dumper);
  452. ipanic_klog_region(&dumper);
  453. ipanic_data_to_sd(IPANIC_DT_WQ_LOG, &dumper);
  454. ipanic_data_to_sd(IPANIC_DT_MMPROFILE, 0);
  455. ipanic_data_to_sd(IPANIC_DT_ATF_LOG, &atf_log);
  456. ipanic_data_to_sd(IPANIC_DT_DISP_LOG, data);
  457. errno = ipanic_header_to_sd(0);
  458. if (!IS_ERR(ERR_PTR(errno)))
  459. mrdump_mini_ipanic_done();
  460. ipanic_klog_region(&dumper);
  461. ipanic_data_to_sd(IPANIC_DT_LAST_LOG, &dumper);
  462. LOGD("ipanic done^_^");
  463. ipanic_hdr = ipanic_header();
  464. for (dt = IPANIC_DT_HEADER + 1; dt < IPANIC_DT_RESERVED31; dt++) {
  465. dheader = &ipanic_hdr->data_hdr[dt];
  466. if (dheader->valid)
  467. LOGD("%s[%x@%x],", dheader->name, dheader->used, dheader->offset);
  468. }
  469. LOGD("^_^\n");
  470. aee_rr_rec_fiq_step(AEE_FIQ_STEP_KE_IPANIC_DONE);
  471. return NOTIFY_DONE;
  472. }
  473. void ipanic_recursive_ke(struct pt_regs *regs, struct pt_regs *excp_regs, int cpu)
  474. {
  475. int errno;
  476. struct kmsg_dumper dumper;
  477. aee_nested_printf("minidump\n");
  478. aee_rr_rec_exp_type(3);
  479. bust_spinlocks(1);
  480. flush_cache_all();
  481. #ifdef __aarch64__
  482. cpu_cache_off();
  483. #else
  484. cpu_proc_fin();
  485. #endif
  486. mrdump_mini_ke_cpu_regs(excp_regs);
  487. mrdump_mini_per_cpu_regs(cpu, regs);
  488. flush_cache_all();
  489. ipanic_mrdump_mini(AEE_REBOOT_MODE_NESTED_EXCEPTION, "Nested Panic");
  490. ipanic_data_to_sd(IPANIC_DT_CURRENT_TSK, 0);
  491. ipanic_kick_wdt();
  492. memset(&dumper, 0x0, sizeof(struct kmsg_dumper));
  493. ipanic_klog_region(&dumper);
  494. ipanic_data_to_sd(IPANIC_DT_KERNEL_LOG, &dumper);
  495. errno = ipanic_header_to_sd(0);
  496. if (!IS_ERR(ERR_PTR(errno)))
  497. mrdump_mini_ipanic_done();
  498. if (ipanic_dt_active(IPANIC_DT_RAM_DUMP)) {
  499. aee_nested_printf("RAMDUMP.\n");
  500. __mrdump_create_oops_dump(AEE_REBOOT_MODE_NESTED_EXCEPTION, excp_regs,
  501. "Nested Panic");
  502. }
  503. bust_spinlocks(0);
  504. }
  505. EXPORT_SYMBOL(ipanic_recursive_ke);
  506. struct ipanic_header *ipanic_header(void)
  507. {
  508. int i;
  509. struct ipanic_data_header *dheader;
  510. int next_offset;
  511. if (iheader)
  512. return iheader;
  513. iheader = &ipanic_hdr;
  514. iheader->magic = AEE_IPANIC_MAGIC;
  515. iheader->version = AEE_IPANIC_PHDR_VERSION;
  516. if (ipanic_msdc_info(iheader)) {
  517. LOGE("ipanic initialize msdc fail.");
  518. aee_nested_printf("$");
  519. return NULL;
  520. }
  521. iheader->size = sizeof(struct ipanic_header);
  522. iheader->datas = 0;
  523. #if 1
  524. iheader->dhblk = ALIGN(sizeof(struct ipanic_data_header), iheader->blksize);
  525. #else
  526. iheader->dhblk = 0;
  527. #endif
  528. next_offset = ALIGN(sizeof(struct ipanic_header), iheader->blksize);
  529. for (i = IPANIC_DT_HEADER + 1; i < IPANIC_DT_RESERVED31; i++) {
  530. dheader = &iheader->data_hdr[i];
  531. dheader->type = i;
  532. dheader->valid = 0;
  533. dheader->used = 0;
  534. strncpy(dheader->name, ipanic_dt_ops[i].string, 31);
  535. if (ipanic_dt_active(i) && ipanic_dt_ops[i].size) {
  536. dheader->encrypt = ipanic_dt_encrypt(i);
  537. dheader->offset = next_offset + iheader->dhblk;
  538. dheader->total = ALIGN(ipanic_dt_ops[i].size, iheader->blksize);
  539. if (iheader->partsize < (dheader->offset + dheader->total)) {
  540. LOGW("skip %s[%x@%x>%x]\n", dheader->name, dheader->total,
  541. dheader->offset, iheader->partsize);
  542. dheader->offset = INT_MAX;
  543. dheader->total = 0;
  544. continue;
  545. }
  546. next_offset += dheader->total + iheader->dhblk;
  547. } else {
  548. dheader->offset = INT_MAX;
  549. dheader->total = 0;
  550. }
  551. }
  552. return iheader;
  553. }
  554. EXPORT_SYMBOL(ipanic_header);
  555. static void ipanic_oops_done(struct aee_oops *oops, int erase)
  556. {
  557. if (oops)
  558. aee_oops_free(oops);
  559. if (erase)
  560. ipanic_erase();
  561. }
  562. static int ipanic_die(struct notifier_block *self, unsigned long cmd, void *ptr)
  563. {
  564. struct kmsg_dumper dumper;
  565. struct die_args *dargs = (struct die_args *)ptr;
  566. aee_disable_api();
  567. __show_regs(dargs->regs);
  568. dump_stack();
  569. #ifdef CONFIG_SCHED_DEBUG
  570. if (aee_rr_curr_exp_type() == 1)
  571. sysrq_sched_debug_show_at_AEE();
  572. #endif
  573. aee_rr_rec_fiq_step(AEE_FIQ_STEP_KE_IPANIC_DIE);
  574. aee_rr_rec_exp_type(2);
  575. mrdump_mini_ke_cpu_regs(dargs->regs);
  576. flush_cache_all();
  577. #if defined(CONFIG_MTK_MLC_NAND_SUPPORT) || defined(CONFIG_MTK_TLC_NAND_SUPPORT)
  578. LOGE("MLC/TLC project, disable ipanic flow\n");
  579. ipanic_enable = 0; /*for mlc/tlc nand project, only enable lk flow*/
  580. #endif
  581. if (aee_rr_curr_exp_type() == 2)
  582. /* No return if mrdump is enable */
  583. __mrdump_create_oops_dump(AEE_REBOOT_MODE_KERNEL_OOPS, dargs->regs, "Kernel Oops");
  584. if (!has_mt_dump_support())
  585. emergency_restart();
  586. smp_send_stop();
  587. ipanic_mrdump_mini(AEE_REBOOT_MODE_KERNEL_PANIC, "kernel Oops");
  588. memset(&dumper, 0x0, sizeof(struct kmsg_dumper));
  589. ipanic_klog_region(&dumper);
  590. ipanic_data_to_sd(IPANIC_DT_KERNEL_LOG, &dumper);
  591. ipanic_data_to_sd(IPANIC_DT_CURRENT_TSK, dargs->regs);
  592. return NOTIFY_DONE;
  593. }
  594. static struct notifier_block panic_blk = {
  595. .notifier_call = ipanic,
  596. };
  597. static struct ipanic_ops ipanic_oops_ops = {
  598. .oops_copy = ipanic_oops_from_sd,
  599. .oops_free = ipanic_oops_done,
  600. };
  601. static struct notifier_block die_blk = {
  602. .notifier_call = ipanic_die,
  603. };
  604. int __init aee_ipanic_init(void)
  605. {
  606. spin_lock_init(&ipanic_lock);
  607. atomic_notifier_chain_register(&panic_notifier_list, &panic_blk);
  608. register_die_notifier(&die_blk);
  609. register_ipanic_ops(&ipanic_oops_ops);
  610. ipanic_log_temp_init();
  611. ipanic_msdc_init();
  612. LOGI("ipanic: startup, partition assgined %s\n", AEE_IPANIC_PLABEL);
  613. return 0;
  614. }
  615. module_init(aee_ipanic_init);
  616. module_param(ipanic_enable, bool, S_IRUGO | S_IWUSR);