sde_rotator_debug.c 35 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright (c) 2015-2019, The Linux Foundation. All rights reserved.
  4. */
  5. #define pr_fmt(fmt) "%s: " fmt, __func__
  6. #include <linux/types.h>
  7. #include <linux/kernel.h>
  8. #include <linux/slab.h>
  9. #include <linux/uaccess.h>
  10. #include <linux/debugfs.h>
  11. #include "sde_rotator_debug.h"
  12. #include "sde_rotator_base.h"
  13. #include "sde_rotator_core.h"
  14. #include "sde_rotator_dev.h"
  15. #include "sde_rotator_trace.h"
  16. #ifdef CONFIG_MSM_SDE_ROTATOR_EVTLOG_DEBUG
  17. #define SDE_EVTLOG_DEFAULT_ENABLE 1
  18. #else
  19. #define SDE_EVTLOG_DEFAULT_ENABLE 0
  20. #endif
  21. #define SDE_EVTLOG_DEFAULT_PANIC 1
  22. #define SDE_EVTLOG_DEFAULT_REGDUMP SDE_ROT_DBG_DUMP_IN_MEM
  23. #define SDE_EVTLOG_DEFAULT_VBIF_DBGBUSDUMP SDE_ROT_DBG_DUMP_IN_MEM
  24. #define SDE_EVTLOG_DEFAULT_ROT_DBGBUSDUMP SDE_ROT_DBG_DUMP_IN_MEM
  25. /*
  26. * evtlog will print this number of entries when it is called through
  27. * sysfs node or panic. This prevents kernel log from evtlog message
  28. * flood.
  29. */
  30. #define SDE_ROT_EVTLOG_PRINT_ENTRY 256
  31. /*
  32. * evtlog keeps this number of entries in memory for debug purpose. This
  33. * number must be greater than print entry to prevent out of bound evtlog
  34. * entry array access.
  35. */
  36. #define SDE_ROT_EVTLOG_ENTRY (SDE_ROT_EVTLOG_PRINT_ENTRY * 4)
  37. #define SDE_ROT_EVTLOG_MAX_DATA 15
  38. #define SDE_ROT_EVTLOG_BUF_MAX 512
  39. #define SDE_ROT_EVTLOG_BUF_ALIGN 32
  40. #define SDE_ROT_DEBUG_BASE_MAX 10
  41. #define SDE_ROT_DEFAULT_BASE_REG_CNT 0x100
  42. #define GROUP_BYTES 4
  43. #define ROW_BYTES 16
  44. #define SDE_ROT_TEST_MASK(id, tp) ((id << 4) | (tp << 1) | BIT(0))
  45. static DEFINE_SPINLOCK(sde_rot_xlock);
  46. /*
  47. * tlog - EVTLOG entry structure
  48. * @counter - EVTLOG entriy counter
  49. * @time - timestamp of EVTLOG entry
  50. * @name - function name of EVTLOG entry
  51. * @line - line number of EVTLOG entry
  52. * @data - EVTLOG data contents
  53. * @data_cnt - number of data contents
  54. * @pid - pid of current calling thread
  55. */
  56. struct tlog {
  57. u32 counter;
  58. s64 time;
  59. const char *name;
  60. int line;
  61. u32 data[SDE_ROT_EVTLOG_MAX_DATA];
  62. u32 data_cnt;
  63. int pid;
  64. };
  65. /*
  66. * sde_rot_dbg_evtlog - EVTLOG debug data structure
  67. * @logs - EVTLOG entries
  68. * @first - first entry index in the EVTLOG
  69. * @last - last entry index in the EVTLOG
  70. * @curr - curr entry index in the EVTLOG
  71. * @evtlog - EVTLOG debugfs handle
  72. * @evtlog_enable - boolean indicates EVTLOG enable/disable
  73. * @panic_on_err - boolean indicates issue panic after EVTLOG dump
  74. * @enable_reg_dump - control in-log/memory dump for rotator registers
  75. * @enable_vbif_dbgbus_dump - control in-log/memory dump for VBIF debug bus
  76. * @enable_rot_dbgbus_dump - control in-log/memroy dump for rotator debug bus
  77. * @evtlog_dump_work - schedule work strucutre for timeout handler
  78. * @work_dump_reg - storage for register dump control in schedule work
  79. * @work_panic - storage for panic control in schedule work
  80. * @work_vbif_dbgbus - storage for VBIF debug bus control in schedule work
  81. * @work_rot_dbgbus - storage for rotator debug bus control in schedule work
  82. * @nrt_vbif_dbgbus_dump - memory buffer for VBIF debug bus dumping
  83. * @rot_dbgbus_dump - memory buffer for rotator debug bus dumping
  84. * @reg_dump_array - memory buffer for rotator registers dumping
  85. */
  86. struct sde_rot_dbg_evtlog {
  87. struct tlog logs[SDE_ROT_EVTLOG_ENTRY];
  88. u32 first;
  89. u32 last;
  90. u32 curr;
  91. struct dentry *evtlog;
  92. u32 evtlog_enable;
  93. u32 panic_on_err;
  94. u32 enable_reg_dump;
  95. u32 enable_vbif_dbgbus_dump;
  96. u32 enable_rot_dbgbus_dump;
  97. struct work_struct evtlog_dump_work;
  98. bool work_dump_reg;
  99. bool work_panic;
  100. bool work_vbif_dbgbus;
  101. bool work_rot_dbgbus;
  102. u32 *nrt_vbif_dbgbus_dump; /* address for the nrt vbif debug bus dump */
  103. u32 *rot_dbgbus_dump;
  104. u32 *reg_dump_array[SDE_ROT_DEBUG_BASE_MAX];
  105. } sde_rot_dbg_evtlog;
  106. static void sde_rot_dump_debug_bus(u32 bus_dump_flag, u32 **dump_mem)
  107. {
  108. struct sde_rot_data_type *mdata = sde_rot_get_mdata();
  109. bool in_log, in_mem;
  110. u32 *dump_addr = NULL;
  111. u32 status = 0;
  112. struct sde_rot_debug_bus *head;
  113. phys_addr_t phys = 0;
  114. int i;
  115. u32 offset;
  116. void __iomem *base;
  117. in_log = (bus_dump_flag & SDE_ROT_DBG_DUMP_IN_LOG);
  118. in_mem = (bus_dump_flag & SDE_ROT_DBG_DUMP_IN_MEM);
  119. base = mdata->sde_io.base;
  120. if (!base || !mdata->rot_dbg_bus || !mdata->rot_dbg_bus_size)
  121. return;
  122. pr_info("======== SDE Rotator Debug bus DUMP =========\n");
  123. if (in_mem) {
  124. if (!(*dump_mem))
  125. *dump_mem = dma_alloc_coherent(&mdata->pdev->dev,
  126. mdata->rot_dbg_bus_size * 4 * sizeof(u32),
  127. &phys, GFP_KERNEL);
  128. if (*dump_mem) {
  129. dump_addr = *dump_mem;
  130. pr_info("%s: start_addr:0x%pK end_addr:0x%pK\n",
  131. __func__, dump_addr,
  132. dump_addr + (u32)mdata->rot_dbg_bus_size * 16);
  133. } else {
  134. in_mem = false;
  135. pr_err("dump_mem: allocation fails\n");
  136. }
  137. }
  138. sde_smmu_ctrl(1);
  139. for (i = 0; i < mdata->rot_dbg_bus_size; i++) {
  140. head = mdata->rot_dbg_bus + i;
  141. writel_relaxed(SDE_ROT_TEST_MASK(head->block_id, head->test_id),
  142. base + head->wr_addr);
  143. wmb(); /* make sure test bits were written */
  144. offset = head->wr_addr + 0x4;
  145. status = readl_relaxed(base + offset);
  146. if (in_log)
  147. pr_err("waddr=0x%x blk=%d tst=%d val=0x%x\n",
  148. head->wr_addr, head->block_id, head->test_id,
  149. status);
  150. if (dump_addr && in_mem) {
  151. dump_addr[i*4] = head->wr_addr;
  152. dump_addr[i*4 + 1] = head->block_id;
  153. dump_addr[i*4 + 2] = head->test_id;
  154. dump_addr[i*4 + 3] = status;
  155. }
  156. /* Disable debug bus once we are done */
  157. writel_relaxed(0, base + head->wr_addr);
  158. }
  159. sde_smmu_ctrl(0);
  160. pr_info("========End Debug bus=========\n");
  161. }
  162. /*
  163. * sde_rot_evtlog_is_enabled - helper function for checking EVTLOG
  164. * enable/disable
  165. * @flag - EVTLOG option flag
  166. */
  167. static inline bool sde_rot_evtlog_is_enabled(u32 flag)
  168. {
  169. return (flag & sde_rot_dbg_evtlog.evtlog_enable) ||
  170. (flag == SDE_ROT_EVTLOG_ALL &&
  171. sde_rot_dbg_evtlog.evtlog_enable);
  172. }
  173. /*
  174. * __vbif_debug_bus - helper function for VBIF debug bus dump
  175. * @head - VBIF debug bus data structure
  176. * @vbif_base - VBIF IO mapped address
  177. * @dump_addr - output buffer for memory dump option
  178. * @in_log - boolean indicates in-log dump option
  179. */
  180. static void __vbif_debug_bus(struct sde_rot_vbif_debug_bus *head,
  181. void __iomem *vbif_base, u32 *dump_addr, bool in_log)
  182. {
  183. int i, j;
  184. u32 val;
  185. if (!dump_addr && !in_log)
  186. return;
  187. for (i = 0; i < head->block_cnt; i++) {
  188. writel_relaxed(1 << (i + head->bit_offset),
  189. vbif_base + head->block_bus_addr);
  190. /* make sure that current bus blcok enable */
  191. wmb();
  192. for (j = 0; j < head->test_pnt_cnt; j++) {
  193. writel_relaxed(j, vbif_base + head->block_bus_addr + 4);
  194. /* make sure that test point is enabled */
  195. wmb();
  196. val = readl_relaxed(vbif_base + MMSS_VBIF_TEST_BUS_OUT);
  197. if (dump_addr) {
  198. *dump_addr++ = head->block_bus_addr;
  199. *dump_addr++ = i;
  200. *dump_addr++ = j;
  201. *dump_addr++ = val;
  202. }
  203. if (in_log)
  204. pr_err("testpoint:%x arb/xin id=%d index=%d val=0x%x\n",
  205. head->block_bus_addr, i, j, val);
  206. }
  207. }
  208. }
  209. /*
  210. * sde_rot_dump_vbif_debug_bus - VBIF debug bus dump
  211. * @bus_dump_flag - dump flag controlling in-log/memory dump option
  212. * @dump_mem - output buffer for memory dump location
  213. */
  214. static void sde_rot_dump_vbif_debug_bus(u32 bus_dump_flag,
  215. u32 **dump_mem)
  216. {
  217. struct sde_rot_data_type *mdata = sde_rot_get_mdata();
  218. bool in_log, in_mem;
  219. u32 *dump_addr = NULL;
  220. u32 value;
  221. struct sde_rot_vbif_debug_bus *head;
  222. phys_addr_t phys = 0;
  223. int i, list_size = 0;
  224. void __iomem *vbif_base;
  225. struct sde_rot_vbif_debug_bus *dbg_bus;
  226. u32 bus_size;
  227. pr_info("======== NRT VBIF Debug bus DUMP =========\n");
  228. vbif_base = mdata->vbif_nrt_io.base;
  229. dbg_bus = mdata->nrt_vbif_dbg_bus;
  230. bus_size = mdata->nrt_vbif_dbg_bus_size;
  231. if (!vbif_base || !dbg_bus || !bus_size)
  232. return;
  233. /* allocate memory for each test point */
  234. for (i = 0; i < bus_size; i++) {
  235. head = dbg_bus + i;
  236. list_size += (head->block_cnt * head->test_pnt_cnt);
  237. }
  238. /* 4 bytes * 4 entries for each test point*/
  239. list_size *= 16;
  240. in_log = (bus_dump_flag & SDE_ROT_DBG_DUMP_IN_LOG);
  241. in_mem = (bus_dump_flag & SDE_ROT_DBG_DUMP_IN_MEM);
  242. if (in_mem) {
  243. if (!(*dump_mem))
  244. *dump_mem = dma_alloc_coherent(&mdata->pdev->dev,
  245. list_size, &phys, GFP_KERNEL);
  246. if (*dump_mem) {
  247. dump_addr = *dump_mem;
  248. pr_info("%s: start_addr:0x%pK end_addr:0x%pK\n",
  249. __func__, dump_addr, dump_addr + list_size);
  250. } else {
  251. in_mem = false;
  252. pr_err("dump_mem: allocation fails\n");
  253. }
  254. }
  255. sde_smmu_ctrl(1);
  256. value = readl_relaxed(vbif_base + MMSS_VBIF_CLKON);
  257. writel_relaxed(value | BIT(1), vbif_base + MMSS_VBIF_CLKON);
  258. /* make sure that vbif core is on */
  259. wmb();
  260. for (i = 0; i < bus_size; i++) {
  261. head = dbg_bus + i;
  262. writel_relaxed(0, vbif_base + head->disable_bus_addr);
  263. writel_relaxed(BIT(0), vbif_base + MMSS_VBIF_TEST_BUS_OUT_CTRL);
  264. /* make sure that other bus is off */
  265. wmb();
  266. __vbif_debug_bus(head, vbif_base, dump_addr, in_log);
  267. if (dump_addr)
  268. dump_addr += (head->block_cnt * head->test_pnt_cnt * 4);
  269. }
  270. sde_smmu_ctrl(0);
  271. pr_info("========End VBIF Debug bus=========\n");
  272. }
  273. /*
  274. * sde_rot_dump_reg - helper function for dumping rotator register set content
  275. * @dump_name - register set name
  276. * @reg_dump_flag - dumping flag controlling in-log/memory dump location
  277. * @access - access type, sde registers or vbif registers
  278. * @addr - starting address offset for dumping
  279. * @len - range of the register set
  280. * @dump_mem - output buffer for memory dump location option
  281. */
  282. void sde_rot_dump_reg(const char *dump_name, u32 reg_dump_flag,
  283. enum sde_rot_regdump_access access, u32 addr,
  284. int len, u32 **dump_mem)
  285. {
  286. struct sde_rot_data_type *mdata = sde_rot_get_mdata();
  287. bool in_log, in_mem;
  288. u32 *dump_addr = NULL;
  289. phys_addr_t phys = 0;
  290. int i;
  291. void __iomem *base;
  292. in_log = (reg_dump_flag & SDE_ROT_DBG_DUMP_IN_LOG);
  293. in_mem = (reg_dump_flag & SDE_ROT_DBG_DUMP_IN_MEM);
  294. pr_debug("reg_dump_flag=%d in_log=%d in_mem=%d\n",
  295. reg_dump_flag, in_log, in_mem);
  296. if (len % 16)
  297. len += 16;
  298. len /= 16;
  299. if (in_mem) {
  300. if (!(*dump_mem))
  301. *dump_mem = dma_alloc_coherent(&mdata->pdev->dev,
  302. len * 16, &phys, GFP_KERNEL);
  303. if (*dump_mem) {
  304. dump_addr = *dump_mem;
  305. pr_info("%s: start_addr:0x%pK end_addr:0x%pK reg_addr=0x%X\n",
  306. dump_name, dump_addr, dump_addr + (u32)len * 16,
  307. addr);
  308. } else {
  309. in_mem = false;
  310. pr_err("dump_mem: kzalloc fails!\n");
  311. }
  312. }
  313. base = mdata->sde_io.base;
  314. /*
  315. * VBIF NRT base handling
  316. */
  317. if (access == SDE_ROT_REGDUMP_VBIF)
  318. base = mdata->vbif_nrt_io.base;
  319. for (i = 0; i < len; i++) {
  320. u32 x0, x4, x8, xc;
  321. x0 = readl_relaxed(base + addr+0x0);
  322. x4 = readl_relaxed(base + addr+0x4);
  323. x8 = readl_relaxed(base + addr+0x8);
  324. xc = readl_relaxed(base + addr+0xc);
  325. if (in_log)
  326. pr_info("0x%08X : %08x %08x %08x %08x\n",
  327. addr, x0, x4, x8, xc);
  328. if (dump_addr && in_mem) {
  329. dump_addr[i*4] = x0;
  330. dump_addr[i*4 + 1] = x4;
  331. dump_addr[i*4 + 2] = x8;
  332. dump_addr[i*4 + 3] = xc;
  333. }
  334. addr += 16;
  335. }
  336. }
  337. /*
  338. * sde_rot_dump_reg_all - dumping all SDE rotator registers
  339. */
  340. static void sde_rot_dump_reg_all(void)
  341. {
  342. struct sde_rot_data_type *mdata = sde_rot_get_mdata();
  343. struct sde_rot_regdump *head, *regdump;
  344. u32 regdump_size;
  345. int i;
  346. regdump = mdata->regdump;
  347. regdump_size = mdata->regdump_size;
  348. if (!regdump || !regdump_size)
  349. return;
  350. /* Enable clock to rotator if not yet enabled */
  351. sde_smmu_ctrl(1);
  352. for (i = 0; (i < regdump_size) && (i < SDE_ROT_DEBUG_BASE_MAX); i++) {
  353. head = &regdump[i];
  354. if (head->access == SDE_ROT_REGDUMP_WRITE) {
  355. if (head->len != 1) {
  356. SDEROT_ERR("invalid write len %u\n", head->len);
  357. continue;
  358. }
  359. writel_relaxed(head->value,
  360. mdata->sde_io.base + head->offset);
  361. /* Make sure write go through */
  362. wmb();
  363. } else {
  364. sde_rot_dump_reg(head->name,
  365. sde_rot_dbg_evtlog.enable_reg_dump,
  366. head->access,
  367. head->offset, head->len,
  368. &sde_rot_dbg_evtlog.reg_dump_array[i]);
  369. }
  370. }
  371. /* Disable rotator clock */
  372. sde_smmu_ctrl(0);
  373. }
  374. /*
  375. * __sde_rot_evtlog_dump_calc_range - calculate dump range for EVTLOG
  376. */
  377. static bool __sde_rot_evtlog_dump_calc_range(void)
  378. {
  379. static u32 next;
  380. bool need_dump = true;
  381. unsigned long flags;
  382. struct sde_rot_dbg_evtlog *evtlog = &sde_rot_dbg_evtlog;
  383. spin_lock_irqsave(&sde_rot_xlock, flags);
  384. evtlog->first = next;
  385. if (evtlog->last == evtlog->first) {
  386. need_dump = false;
  387. goto dump_exit;
  388. }
  389. if (evtlog->last < evtlog->first) {
  390. evtlog->first %= SDE_ROT_EVTLOG_ENTRY;
  391. if (evtlog->last < evtlog->first)
  392. evtlog->last += SDE_ROT_EVTLOG_ENTRY;
  393. }
  394. if ((evtlog->last - evtlog->first) > SDE_ROT_EVTLOG_PRINT_ENTRY) {
  395. pr_warn("evtlog buffer overflow before dump: %d\n",
  396. evtlog->last - evtlog->first);
  397. evtlog->first = evtlog->last - SDE_ROT_EVTLOG_PRINT_ENTRY;
  398. }
  399. next = evtlog->first + 1;
  400. dump_exit:
  401. spin_unlock_irqrestore(&sde_rot_xlock, flags);
  402. return need_dump;
  403. }
  404. /*
  405. * sde_rot_evtlog_dump_entry - helper function for EVTLOG content dumping
  406. * @evtlog_buf: EVTLOG dump output buffer
  407. * @evtlog_buf_size: EVTLOG output buffer size
  408. */
  409. static ssize_t sde_rot_evtlog_dump_entry(char *evtlog_buf,
  410. ssize_t evtlog_buf_size)
  411. {
  412. int i;
  413. ssize_t off = 0;
  414. struct tlog *log, *prev_log;
  415. unsigned long flags;
  416. spin_lock_irqsave(&sde_rot_xlock, flags);
  417. log = &sde_rot_dbg_evtlog.logs[sde_rot_dbg_evtlog.first %
  418. SDE_ROT_EVTLOG_ENTRY];
  419. prev_log = &sde_rot_dbg_evtlog.logs[(sde_rot_dbg_evtlog.first - 1) %
  420. SDE_ROT_EVTLOG_ENTRY];
  421. off = snprintf((evtlog_buf + off), (evtlog_buf_size - off), "%s:%-4d",
  422. log->name, log->line);
  423. if (off < SDE_ROT_EVTLOG_BUF_ALIGN) {
  424. memset((evtlog_buf + off), 0x20,
  425. (SDE_ROT_EVTLOG_BUF_ALIGN - off));
  426. off = SDE_ROT_EVTLOG_BUF_ALIGN;
  427. }
  428. off += snprintf((evtlog_buf + off), (evtlog_buf_size - off),
  429. "=>[%-8d:%-11llu:%9llu][%-4d]:", sde_rot_dbg_evtlog.first,
  430. log->time, (log->time - prev_log->time), log->pid);
  431. for (i = 0; i < log->data_cnt; i++)
  432. off += snprintf((evtlog_buf + off), (evtlog_buf_size - off),
  433. "%x ", log->data[i]);
  434. off += snprintf((evtlog_buf + off), (evtlog_buf_size - off), "\n");
  435. spin_unlock_irqrestore(&sde_rot_xlock, flags);
  436. return off;
  437. }
  438. /*
  439. * sde_rot_evtlog_dump_all - Dumping all content in EVTLOG buffer
  440. */
  441. static void sde_rot_evtlog_dump_all(void)
  442. {
  443. char evtlog_buf[SDE_ROT_EVTLOG_BUF_MAX];
  444. while (__sde_rot_evtlog_dump_calc_range()) {
  445. sde_rot_evtlog_dump_entry(evtlog_buf, SDE_ROT_EVTLOG_BUF_MAX);
  446. pr_info("%s\n", evtlog_buf);
  447. }
  448. }
  449. /*
  450. * sde_rot_evtlog_dump_open - debugfs open handler for evtlog dump
  451. * @inode: debugfs inode
  452. * @file: file handler
  453. */
  454. static int sde_rot_evtlog_dump_open(struct inode *inode, struct file *file)
  455. {
  456. /* non-seekable */
  457. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  458. file->private_data = inode->i_private;
  459. return 0;
  460. }
  461. /*
  462. * sde_rot_evtlog_dump_read - debugfs read handler for evtlog dump
  463. * @file: file handler
  464. * @buff: user buffer content for debugfs
  465. * @count: size of user buffer
  466. * @ppos: position offset of user buffer
  467. */
  468. static ssize_t sde_rot_evtlog_dump_read(struct file *file, char __user *buff,
  469. size_t count, loff_t *ppos)
  470. {
  471. ssize_t len = 0;
  472. char evtlog_buf[SDE_ROT_EVTLOG_BUF_MAX];
  473. if (__sde_rot_evtlog_dump_calc_range()) {
  474. len = sde_rot_evtlog_dump_entry(evtlog_buf,
  475. SDE_ROT_EVTLOG_BUF_MAX);
  476. if (len < 0 || len > count) {
  477. pr_err("len is more than the user buffer size\n");
  478. return 0;
  479. }
  480. if (copy_to_user(buff, evtlog_buf, len))
  481. return -EFAULT;
  482. *ppos += len;
  483. }
  484. return len;
  485. }
  486. /*
  487. * sde_rot_evtlog_dump_helper - helper function for evtlog dump
  488. * @dead: boolean indicates panic after dump
  489. * @panic_name: Panic signature name show up in log
  490. * @dump_rot: boolean indicates rotator register dump
  491. * @dump_vbif_debug_bus: boolean indicates VBIF debug bus dump
  492. */
  493. static void sde_rot_evtlog_dump_helper(bool dead, const char *panic_name,
  494. bool dump_rot, bool dump_vbif_debug_bus, bool dump_rot_debug_bus)
  495. {
  496. sde_rot_evtlog_dump_all();
  497. if (dump_rot_debug_bus)
  498. sde_rot_dump_debug_bus(
  499. sde_rot_dbg_evtlog.enable_rot_dbgbus_dump,
  500. &sde_rot_dbg_evtlog.rot_dbgbus_dump);
  501. if (dump_vbif_debug_bus)
  502. sde_rot_dump_vbif_debug_bus(
  503. sde_rot_dbg_evtlog.enable_vbif_dbgbus_dump,
  504. &sde_rot_dbg_evtlog.nrt_vbif_dbgbus_dump);
  505. /*
  506. * Rotator registers always dump last
  507. */
  508. if (dump_rot)
  509. sde_rot_dump_reg_all();
  510. if (dead)
  511. panic(panic_name);
  512. }
  513. /*
  514. * sde_rot_evtlog_debug_work - schedule work function for evtlog dump
  515. * @work: schedule work structure
  516. */
  517. static void sde_rot_evtlog_debug_work(struct work_struct *work)
  518. {
  519. sde_rot_evtlog_dump_helper(
  520. sde_rot_dbg_evtlog.work_panic,
  521. "evtlog_workitem",
  522. sde_rot_dbg_evtlog.work_dump_reg,
  523. sde_rot_dbg_evtlog.work_vbif_dbgbus,
  524. sde_rot_dbg_evtlog.work_rot_dbgbus);
  525. }
  526. /*
  527. * sde_rot_evtlog_tout_handler - log dump timeout handler
  528. * @queue: boolean indicate putting log dump into queue
  529. * @name: function name having timeout
  530. */
  531. void sde_rot_evtlog_tout_handler(bool queue, const char *name, ...)
  532. {
  533. int i;
  534. bool dead = false;
  535. bool dump_rot = false;
  536. bool dump_vbif_dbgbus = false;
  537. bool dump_rot_dbgbus = false;
  538. char *blk_name = NULL;
  539. va_list args;
  540. if (!sde_rot_evtlog_is_enabled(SDE_ROT_EVTLOG_DEFAULT))
  541. return;
  542. if (queue && work_pending(&sde_rot_dbg_evtlog.evtlog_dump_work))
  543. return;
  544. va_start(args, name);
  545. for (i = 0; i < SDE_ROT_EVTLOG_MAX_DATA; i++) {
  546. blk_name = va_arg(args, char*);
  547. if (IS_ERR_OR_NULL(blk_name))
  548. break;
  549. if (!strcmp(blk_name, "rot"))
  550. dump_rot = true;
  551. if (!strcmp(blk_name, "vbif_dbg_bus"))
  552. dump_vbif_dbgbus = true;
  553. if (!strcmp(blk_name, "rot_dbg_bus"))
  554. dump_rot_dbgbus = true;
  555. if (!strcmp(blk_name, "panic"))
  556. dead = true;
  557. }
  558. va_end(args);
  559. if (queue) {
  560. /* schedule work to dump later */
  561. sde_rot_dbg_evtlog.work_panic = dead;
  562. sde_rot_dbg_evtlog.work_dump_reg = dump_rot;
  563. sde_rot_dbg_evtlog.work_vbif_dbgbus = dump_vbif_dbgbus;
  564. sde_rot_dbg_evtlog.work_rot_dbgbus = dump_rot_dbgbus;
  565. schedule_work(&sde_rot_dbg_evtlog.evtlog_dump_work);
  566. } else {
  567. sde_rot_evtlog_dump_helper(dead, name, dump_rot,
  568. dump_vbif_dbgbus, dump_rot_dbgbus);
  569. }
  570. }
  571. /*
  572. * sde_rot_evtlog - log contents into memory for dump analysis
  573. * @name: Name of function calling evtlog
  574. * @line: line number of calling function
  575. * @flag: Log control flag
  576. */
  577. void sde_rot_evtlog(const char *name, int line, int flag, ...)
  578. {
  579. unsigned long flags;
  580. int i, val = 0;
  581. va_list args;
  582. struct tlog *log;
  583. if (!sde_rot_evtlog_is_enabled(flag))
  584. return;
  585. spin_lock_irqsave(&sde_rot_xlock, flags);
  586. log = &sde_rot_dbg_evtlog.logs[sde_rot_dbg_evtlog.curr];
  587. log->time = ktime_to_us(ktime_get());
  588. log->name = name;
  589. log->line = line;
  590. log->data_cnt = 0;
  591. log->pid = current->pid;
  592. va_start(args, flag);
  593. for (i = 0; i < SDE_ROT_EVTLOG_MAX_DATA; i++) {
  594. val = va_arg(args, int);
  595. if (val == SDE_ROT_DATA_LIMITER)
  596. break;
  597. log->data[i] = val;
  598. }
  599. va_end(args);
  600. log->data_cnt = i;
  601. sde_rot_dbg_evtlog.curr =
  602. (sde_rot_dbg_evtlog.curr + 1) % SDE_ROT_EVTLOG_ENTRY;
  603. sde_rot_dbg_evtlog.last++;
  604. trace_sde_rot_evtlog(name, line, log->data_cnt, log->data);
  605. spin_unlock_irqrestore(&sde_rot_xlock, flags);
  606. }
  607. /*
  608. * sde_rotator_stat_show - Show statistics on read to this debugfs file
  609. * @s: Pointer to sequence file structure
  610. * @data: Pointer to private data structure
  611. */
  612. static int sde_rotator_stat_show(struct seq_file *s, void *data)
  613. {
  614. int i, offset;
  615. struct sde_rotator_device *rot_dev = s->private;
  616. struct sde_rotator_statistics *stats = &rot_dev->stats;
  617. u64 count = stats->count;
  618. int num_events;
  619. s64 proc_max, proc_min, proc_avg;
  620. s64 swoh_max, swoh_min, swoh_avg;
  621. proc_max = 0;
  622. proc_min = S64_MAX;
  623. proc_avg = 0;
  624. swoh_max = 0;
  625. swoh_min = S64_MAX;
  626. swoh_avg = 0;
  627. if (count > SDE_ROTATOR_NUM_EVENTS) {
  628. num_events = SDE_ROTATOR_NUM_EVENTS;
  629. offset = count % SDE_ROTATOR_NUM_EVENTS;
  630. } else {
  631. num_events = count;
  632. offset = 0;
  633. }
  634. for (i = 0; i < num_events; i++) {
  635. int k = (offset + i) % SDE_ROTATOR_NUM_EVENTS;
  636. ktime_t *ts = stats->ts[k];
  637. ktime_t start_time =
  638. ktime_before(ts[SDE_ROTATOR_TS_SRCQB],
  639. ts[SDE_ROTATOR_TS_DSTQB]) ?
  640. ts[SDE_ROTATOR_TS_SRCQB] :
  641. ts[SDE_ROTATOR_TS_DSTQB];
  642. s64 proc_time =
  643. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_RETIRE],
  644. start_time));
  645. s64 sw_overhead_time =
  646. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_FLUSH],
  647. start_time));
  648. seq_printf(s,
  649. "s:%d sq:%lld dq:%lld fe:%lld q:%lld c:%lld st:%lld fl:%lld d:%lld sdq:%lld ddq:%lld t:%lld oht:%lld\n",
  650. i,
  651. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_FENCE],
  652. ts[SDE_ROTATOR_TS_SRCQB])),
  653. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_FENCE],
  654. ts[SDE_ROTATOR_TS_DSTQB])),
  655. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_QUEUE],
  656. ts[SDE_ROTATOR_TS_FENCE])),
  657. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_COMMIT],
  658. ts[SDE_ROTATOR_TS_QUEUE])),
  659. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_START],
  660. ts[SDE_ROTATOR_TS_COMMIT])),
  661. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_FLUSH],
  662. ts[SDE_ROTATOR_TS_START])),
  663. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_DONE],
  664. ts[SDE_ROTATOR_TS_FLUSH])),
  665. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_RETIRE],
  666. ts[SDE_ROTATOR_TS_DONE])),
  667. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_SRCDQB],
  668. ts[SDE_ROTATOR_TS_RETIRE])),
  669. ktime_to_us(ktime_sub(ts[SDE_ROTATOR_TS_DSTDQB],
  670. ts[SDE_ROTATOR_TS_RETIRE])),
  671. proc_time, sw_overhead_time);
  672. proc_max = max(proc_max, proc_time);
  673. proc_min = min(proc_min, proc_time);
  674. proc_avg += proc_time;
  675. swoh_max = max(swoh_max, sw_overhead_time);
  676. swoh_min = min(swoh_min, sw_overhead_time);
  677. swoh_avg += sw_overhead_time;
  678. }
  679. proc_avg = (num_events) ?
  680. DIV_ROUND_CLOSEST_ULL(proc_avg, num_events) : 0;
  681. swoh_avg = (num_events) ?
  682. DIV_ROUND_CLOSEST_ULL(swoh_avg, num_events) : 0;
  683. seq_printf(s, "count:%llu\n", count);
  684. seq_printf(s, "fai1:%llu\n", stats->fail_count);
  685. seq_printf(s, "t_max:%lld\n", proc_max);
  686. seq_printf(s, "t_min:%lld\n", proc_min);
  687. seq_printf(s, "t_avg:%lld\n", proc_avg);
  688. seq_printf(s, "swoh_max:%lld\n", swoh_max);
  689. seq_printf(s, "swoh_min:%lld\n", swoh_min);
  690. seq_printf(s, "swoh_avg:%lld\n", swoh_avg);
  691. return 0;
  692. }
  693. /*
  694. * sde_rotator_raw_show - Show raw statistics on read from this debugfs file
  695. * @s: Pointer to sequence file structure
  696. * @data: Pointer to private data structure
  697. */
  698. static int sde_rotator_raw_show(struct seq_file *s, void *data)
  699. {
  700. int i, j, offset;
  701. struct sde_rotator_device *rot_dev = s->private;
  702. struct sde_rotator_statistics *stats = &rot_dev->stats;
  703. u64 count = stats->count;
  704. int num_events;
  705. if (count > SDE_ROTATOR_NUM_EVENTS) {
  706. num_events = SDE_ROTATOR_NUM_EVENTS;
  707. offset = count % SDE_ROTATOR_NUM_EVENTS;
  708. } else {
  709. num_events = count;
  710. offset = 0;
  711. }
  712. for (i = 0; i < num_events; i++) {
  713. int k = (offset + i) % SDE_ROTATOR_NUM_EVENTS;
  714. ktime_t *ts = stats->ts[k];
  715. seq_printf(s, "%d ", i);
  716. for (j = 0; j < SDE_ROTATOR_NUM_TIMESTAMPS; j++)
  717. seq_printf(s, "%lld ", ktime_to_us(ts[j]));
  718. seq_puts(s, "\n");
  719. }
  720. return 0;
  721. }
  722. /*
  723. * sde_rotator_dbg_open - Processed statistics debugfs file open function
  724. * @inode:
  725. * @file:
  726. */
  727. static int sde_rotator_stat_open(struct inode *inode, struct file *file)
  728. {
  729. return single_open(file, sde_rotator_stat_show, inode->i_private);
  730. }
  731. /*
  732. * sde_rotator_dbg_open - Raw statistics debugfs file open function
  733. * @inode:
  734. * @file:
  735. */
  736. static int sde_rotator_raw_open(struct inode *inode, struct file *file)
  737. {
  738. return single_open(file, sde_rotator_raw_show, inode->i_private);
  739. }
  740. /*
  741. * sde_rotator_dbg_open - Raw statistics debugfs file open function
  742. * @mdata: Pointer to rotator global data
  743. * @debugfs_root: Pointer to parent debugfs node
  744. */
  745. static int sde_rotator_base_create_debugfs(
  746. struct sde_rot_data_type *mdata,
  747. struct dentry *debugfs_root)
  748. {
  749. if (!debugfs_create_u32("iommu_ref_cnt", 0444,
  750. debugfs_root, &mdata->iommu_ref_cnt)) {
  751. SDEROT_WARN("failed to create debugfs iommu ref cnt\n");
  752. return -EINVAL;
  753. }
  754. mdata->clk_always_on = false;
  755. if (!debugfs_create_bool("clk_always_on", 0644,
  756. debugfs_root, &mdata->clk_always_on)) {
  757. SDEROT_WARN("failed to create debugfs clk_always_on\n");
  758. return -EINVAL;
  759. }
  760. return 0;
  761. }
  762. /*
  763. * sde_rotator_dbg_open - Raw statistics debugfs file open function
  764. * @mgr: Pointer to rotator manager structure
  765. * @debugfs_root: Pointer to parent debugfs node
  766. */
  767. static int sde_rotator_core_create_debugfs(
  768. struct sde_rot_mgr *mgr,
  769. struct dentry *debugfs_root)
  770. {
  771. int ret;
  772. if (!debugfs_create_u32("hwacquire_timeout", 0400,
  773. debugfs_root, &mgr->hwacquire_timeout)) {
  774. SDEROT_WARN("failed to create debugfs hw acquire timeout\n");
  775. return -EINVAL;
  776. }
  777. if (!debugfs_create_u32("ppc_numer", 0644,
  778. debugfs_root, &mgr->pixel_per_clk.numer)) {
  779. SDEROT_WARN("failed to create debugfs ppc numerator\n");
  780. return -EINVAL;
  781. }
  782. if (!debugfs_create_u32("ppc_denom", 0600,
  783. debugfs_root, &mgr->pixel_per_clk.denom)) {
  784. SDEROT_WARN("failed to create debugfs ppc denominator\n");
  785. return -EINVAL;
  786. }
  787. if (!debugfs_create_u64("enable_bw_vote", 0644,
  788. debugfs_root, &mgr->enable_bw_vote)) {
  789. SDEROT_WARN("failed to create enable_bw_vote\n");
  790. return -EINVAL;
  791. }
  792. if (mgr->ops_hw_create_debugfs) {
  793. ret = mgr->ops_hw_create_debugfs(mgr, debugfs_root);
  794. if (ret)
  795. return ret;
  796. }
  797. return 0;
  798. }
  799. static const struct file_operations sde_rot_evtlog_fops = {
  800. .open = sde_rot_evtlog_dump_open,
  801. .read = sde_rot_evtlog_dump_read,
  802. };
  803. static int sde_rotator_evtlog_create_debugfs(
  804. struct sde_rot_mgr *mgr,
  805. struct dentry *debugfs_root)
  806. {
  807. int i;
  808. sde_rot_dbg_evtlog.evtlog = debugfs_create_dir("evtlog", debugfs_root);
  809. if (IS_ERR_OR_NULL(sde_rot_dbg_evtlog.evtlog)) {
  810. pr_err("debugfs_create_dir fail, error %ld\n",
  811. PTR_ERR(sde_rot_dbg_evtlog.evtlog));
  812. sde_rot_dbg_evtlog.evtlog = NULL;
  813. return -ENODEV;
  814. }
  815. INIT_WORK(&sde_rot_dbg_evtlog.evtlog_dump_work,
  816. sde_rot_evtlog_debug_work);
  817. sde_rot_dbg_evtlog.work_panic = false;
  818. for (i = 0; i < SDE_ROT_EVTLOG_ENTRY; i++)
  819. sde_rot_dbg_evtlog.logs[i].counter = i;
  820. debugfs_create_file("dump", 0644, sde_rot_dbg_evtlog.evtlog, NULL,
  821. &sde_rot_evtlog_fops);
  822. debugfs_create_u32("enable", 0644, sde_rot_dbg_evtlog.evtlog,
  823. &sde_rot_dbg_evtlog.evtlog_enable);
  824. debugfs_create_u32("panic", 0644, sde_rot_dbg_evtlog.evtlog,
  825. &sde_rot_dbg_evtlog.panic_on_err);
  826. debugfs_create_u32("reg_dump", 0644, sde_rot_dbg_evtlog.evtlog,
  827. &sde_rot_dbg_evtlog.enable_reg_dump);
  828. debugfs_create_u32("vbif_dbgbus_dump", 0644, sde_rot_dbg_evtlog.evtlog,
  829. &sde_rot_dbg_evtlog.enable_vbif_dbgbus_dump);
  830. debugfs_create_u32("rot_dbgbus_dump", 0644, sde_rot_dbg_evtlog.evtlog,
  831. &sde_rot_dbg_evtlog.enable_rot_dbgbus_dump);
  832. sde_rot_dbg_evtlog.evtlog_enable = SDE_EVTLOG_DEFAULT_ENABLE;
  833. sde_rot_dbg_evtlog.panic_on_err = SDE_EVTLOG_DEFAULT_PANIC;
  834. sde_rot_dbg_evtlog.enable_reg_dump = SDE_EVTLOG_DEFAULT_REGDUMP;
  835. sde_rot_dbg_evtlog.enable_vbif_dbgbus_dump =
  836. SDE_EVTLOG_DEFAULT_VBIF_DBGBUSDUMP;
  837. sde_rot_dbg_evtlog.enable_rot_dbgbus_dump =
  838. SDE_EVTLOG_DEFAULT_ROT_DBGBUSDUMP;
  839. pr_info("evtlog_status: enable:%d, panic:%d, dump:%d\n",
  840. sde_rot_dbg_evtlog.evtlog_enable,
  841. sde_rot_dbg_evtlog.panic_on_err,
  842. sde_rot_dbg_evtlog.enable_reg_dump);
  843. return 0;
  844. }
  845. /*
  846. * struct sde_rotator_stat_ops - processed statistics file operations
  847. */
  848. static const struct file_operations sde_rotator_stat_ops = {
  849. .open = sde_rotator_stat_open,
  850. .read = seq_read,
  851. .llseek = seq_lseek,
  852. .release = single_release
  853. };
  854. /*
  855. * struct sde_rotator_raw_ops - raw statistics file operations
  856. */
  857. static const struct file_operations sde_rotator_raw_ops = {
  858. .open = sde_rotator_raw_open,
  859. .read = seq_read,
  860. .llseek = seq_lseek,
  861. .release = single_release
  862. };
  863. static int sde_rotator_debug_base_open(struct inode *inode, struct file *file)
  864. {
  865. /* non-seekable */
  866. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  867. file->private_data = inode->i_private;
  868. return 0;
  869. }
  870. static int sde_rotator_debug_base_release(struct inode *inode,
  871. struct file *file)
  872. {
  873. struct sde_rotator_debug_base *dbg = file->private_data;
  874. if (dbg) {
  875. mutex_lock(&dbg->buflock);
  876. kfree(dbg->buf);
  877. dbg->buf_len = 0;
  878. dbg->buf = NULL;
  879. mutex_unlock(&dbg->buflock);
  880. }
  881. return 0;
  882. }
  883. static ssize_t sde_rotator_debug_base_offset_write(struct file *file,
  884. const char __user *user_buf, size_t count, loff_t *ppos)
  885. {
  886. struct sde_rotator_debug_base *dbg = file->private_data;
  887. u32 off = 0;
  888. u32 cnt = SDE_ROT_DEFAULT_BASE_REG_CNT;
  889. char buf[24];
  890. if (!dbg)
  891. return -ENODEV;
  892. if (count >= sizeof(buf))
  893. return -EFAULT;
  894. if (copy_from_user(buf, user_buf, count))
  895. return -EFAULT;
  896. buf[count] = 0;
  897. if (sscanf(buf, "%5x %x", &off, &cnt) < 2)
  898. return -EINVAL;
  899. if (off % sizeof(u32))
  900. return -EINVAL;
  901. if (off > dbg->max_offset)
  902. return -EINVAL;
  903. if (cnt > (dbg->max_offset - off))
  904. cnt = dbg->max_offset - off;
  905. mutex_lock(&dbg->buflock);
  906. dbg->off = off;
  907. dbg->cnt = cnt;
  908. mutex_unlock(&dbg->buflock);
  909. SDEROT_DBG("offset=%x cnt=%x\n", off, cnt);
  910. return count;
  911. }
  912. static ssize_t sde_rotator_debug_base_offset_read(struct file *file,
  913. char __user *buff, size_t count, loff_t *ppos)
  914. {
  915. struct sde_rotator_debug_base *dbg = file->private_data;
  916. int len = 0;
  917. char buf[24] = {'\0'};
  918. if (!dbg)
  919. return -ENODEV;
  920. if (*ppos)
  921. return 0; /* the end */
  922. mutex_lock(&dbg->buflock);
  923. len = snprintf(buf, sizeof(buf), "0x%08zx %zx\n", dbg->off, dbg->cnt);
  924. mutex_unlock(&dbg->buflock);
  925. if (len < 0 || len >= sizeof(buf))
  926. return 0;
  927. if ((count < sizeof(buf)) || copy_to_user(buff, buf, len))
  928. return -EFAULT;
  929. *ppos += len; /* increase offset */
  930. return len;
  931. }
  932. static ssize_t sde_rotator_debug_base_reg_write(struct file *file,
  933. const char __user *user_buf, size_t count, loff_t *ppos)
  934. {
  935. struct sde_rotator_debug_base *dbg = file->private_data;
  936. size_t off;
  937. u32 data, cnt;
  938. char buf[24];
  939. if (!dbg)
  940. return -ENODEV;
  941. if (count >= sizeof(buf))
  942. return -EFAULT;
  943. if (copy_from_user(buf, user_buf, count))
  944. return -EFAULT;
  945. buf[count] = 0;
  946. cnt = sscanf(buf, "%zx %x", &off, &data);
  947. if (cnt < 2)
  948. return -EFAULT;
  949. if (off % sizeof(u32))
  950. return -EFAULT;
  951. if (off >= dbg->max_offset)
  952. return -EFAULT;
  953. mutex_lock(&dbg->buflock);
  954. /* Enable Clock for register access */
  955. sde_rot_mgr_lock(dbg->mgr);
  956. if (!sde_rotator_resource_ctrl_enabled(dbg->mgr)) {
  957. SDEROT_WARN("resource ctrl is not enabled\n");
  958. sde_rot_mgr_unlock(dbg->mgr);
  959. goto debug_write_error;
  960. }
  961. sde_rotator_clk_ctrl(dbg->mgr, true);
  962. writel_relaxed(data, dbg->base + off);
  963. /* Disable Clock after register access */
  964. sde_rotator_clk_ctrl(dbg->mgr, false);
  965. sde_rot_mgr_unlock(dbg->mgr);
  966. mutex_unlock(&dbg->buflock);
  967. SDEROT_DBG("addr=%zx data=%x\n", off, data);
  968. return count;
  969. debug_write_error:
  970. mutex_unlock(&dbg->buflock);
  971. return 0;
  972. }
  973. static ssize_t sde_rotator_debug_base_reg_read(struct file *file,
  974. char __user *user_buf, size_t count, loff_t *ppos)
  975. {
  976. struct sde_rotator_debug_base *dbg = file->private_data;
  977. size_t len;
  978. int rc = 0;
  979. if (!dbg) {
  980. SDEROT_ERR("invalid handle\n");
  981. return -ENODEV;
  982. }
  983. mutex_lock(&dbg->buflock);
  984. if (!dbg->buf) {
  985. char dump_buf[64];
  986. char *ptr;
  987. int cnt, tot;
  988. dbg->buf_len = sizeof(dump_buf) *
  989. DIV_ROUND_UP(dbg->cnt, ROW_BYTES);
  990. dbg->buf = kzalloc(dbg->buf_len, GFP_KERNEL);
  991. if (!dbg->buf) {
  992. SDEROT_ERR("not enough memory to hold reg dump\n");
  993. rc = -ENOMEM;
  994. goto debug_read_error;
  995. }
  996. if (dbg->off % sizeof(u32)) {
  997. rc = -EFAULT;
  998. goto debug_read_error;
  999. }
  1000. ptr = dbg->base + dbg->off;
  1001. tot = 0;
  1002. /* Enable clock for register access */
  1003. sde_rot_mgr_lock(dbg->mgr);
  1004. if (!sde_rotator_resource_ctrl_enabled(dbg->mgr)) {
  1005. SDEROT_WARN("resource ctrl is not enabled\n");
  1006. sde_rot_mgr_unlock(dbg->mgr);
  1007. goto debug_read_error;
  1008. }
  1009. sde_rotator_clk_ctrl(dbg->mgr, true);
  1010. for (cnt = dbg->cnt; cnt > 0; cnt -= ROW_BYTES) {
  1011. hex_dump_to_buffer(ptr, min(cnt, ROW_BYTES),
  1012. ROW_BYTES, GROUP_BYTES, dump_buf,
  1013. sizeof(dump_buf), false);
  1014. len = scnprintf(dbg->buf + tot, dbg->buf_len - tot,
  1015. "0x%08x: %s\n",
  1016. ((int) (unsigned long) ptr) -
  1017. ((int) (unsigned long) dbg->base),
  1018. dump_buf);
  1019. ptr += ROW_BYTES;
  1020. tot += len;
  1021. if (tot >= dbg->buf_len)
  1022. break;
  1023. }
  1024. /* Disable clock after register access */
  1025. sde_rotator_clk_ctrl(dbg->mgr, false);
  1026. sde_rot_mgr_unlock(dbg->mgr);
  1027. dbg->buf_len = tot;
  1028. }
  1029. if (*ppos >= dbg->buf_len) {
  1030. rc = 0; /* done reading */
  1031. goto debug_read_error;
  1032. }
  1033. len = min(count, dbg->buf_len - (size_t) *ppos);
  1034. if (copy_to_user(user_buf, dbg->buf + *ppos, len)) {
  1035. SDEROT_ERR("failed to copy to user\n");
  1036. rc = -EFAULT;
  1037. goto debug_read_error;
  1038. }
  1039. *ppos += len; /* increase offset */
  1040. mutex_unlock(&dbg->buflock);
  1041. return len;
  1042. debug_read_error:
  1043. mutex_unlock(&dbg->buflock);
  1044. return rc;
  1045. }
  1046. static const struct file_operations sde_rotator_off_fops = {
  1047. .open = sde_rotator_debug_base_open,
  1048. .release = sde_rotator_debug_base_release,
  1049. .read = sde_rotator_debug_base_offset_read,
  1050. .write = sde_rotator_debug_base_offset_write,
  1051. };
  1052. static const struct file_operations sde_rotator_reg_fops = {
  1053. .open = sde_rotator_debug_base_open,
  1054. .release = sde_rotator_debug_base_release,
  1055. .read = sde_rotator_debug_base_reg_read,
  1056. .write = sde_rotator_debug_base_reg_write,
  1057. };
  1058. /*
  1059. * sde_rotator_create_debugfs - Setup rotator debugfs directory structure.
  1060. * @rot_dev: Pointer to rotator device
  1061. */
  1062. struct dentry *sde_rotator_create_debugfs(
  1063. struct sde_rotator_device *rot_dev)
  1064. {
  1065. struct dentry *debugfs_root;
  1066. char dirname[32] = {0};
  1067. snprintf(dirname, sizeof(dirname), "%s%d",
  1068. SDE_ROTATOR_DRV_NAME, rot_dev->dev->id);
  1069. debugfs_root = debugfs_create_dir(dirname, NULL);
  1070. if (!debugfs_root) {
  1071. SDEROT_ERR("fail create debugfs root\n");
  1072. return NULL;
  1073. }
  1074. if (!debugfs_create_file("stats", 0400,
  1075. debugfs_root, rot_dev, &sde_rotator_stat_ops)) {
  1076. SDEROT_ERR("fail create debugfs stats\n");
  1077. debugfs_remove_recursive(debugfs_root);
  1078. return NULL;
  1079. }
  1080. if (!debugfs_create_file("raw", 0400,
  1081. debugfs_root, rot_dev, &sde_rotator_raw_ops)) {
  1082. SDEROT_ERR("fail create debugfs raw\n");
  1083. debugfs_remove_recursive(debugfs_root);
  1084. return NULL;
  1085. }
  1086. if (!debugfs_create_u32("fence_timeout", 0400,
  1087. debugfs_root, &rot_dev->fence_timeout)) {
  1088. SDEROT_ERR("fail create fence_timeout\n");
  1089. debugfs_remove_recursive(debugfs_root);
  1090. return NULL;
  1091. }
  1092. if (!debugfs_create_u32("open_timeout", 0400,
  1093. debugfs_root, &rot_dev->open_timeout)) {
  1094. SDEROT_ERR("fail create open_timeout\n");
  1095. debugfs_remove_recursive(debugfs_root);
  1096. return NULL;
  1097. }
  1098. if (!debugfs_create_u32("disable_syscache", 0400,
  1099. debugfs_root, &rot_dev->disable_syscache)) {
  1100. SDEROT_ERR("fail create disable_syscache\n");
  1101. debugfs_remove_recursive(debugfs_root);
  1102. return NULL;
  1103. }
  1104. if (!debugfs_create_u32("streamoff_timeout", 0400,
  1105. debugfs_root, &rot_dev->streamoff_timeout)) {
  1106. SDEROT_ERR("fail create streamoff_timeout\n");
  1107. debugfs_remove_recursive(debugfs_root);
  1108. return NULL;
  1109. }
  1110. if (!debugfs_create_u32("early_submit", 0400,
  1111. debugfs_root, &rot_dev->early_submit)) {
  1112. SDEROT_ERR("fail create early_submit\n");
  1113. debugfs_remove_recursive(debugfs_root);
  1114. return NULL;
  1115. }
  1116. if (sde_rotator_base_create_debugfs(rot_dev->mdata, debugfs_root)) {
  1117. SDEROT_ERR("fail create base debugfs\n");
  1118. debugfs_remove_recursive(debugfs_root);
  1119. return NULL;
  1120. }
  1121. if (sde_rotator_core_create_debugfs(rot_dev->mgr, debugfs_root)) {
  1122. SDEROT_ERR("fail create core debugfs\n");
  1123. debugfs_remove_recursive(debugfs_root);
  1124. return NULL;
  1125. }
  1126. if (sde_rotator_evtlog_create_debugfs(rot_dev->mgr, debugfs_root)) {
  1127. SDEROT_ERR("fail create evtlog debugfs\n");
  1128. debugfs_remove_recursive(debugfs_root);
  1129. return NULL;
  1130. }
  1131. return debugfs_root;
  1132. }
  1133. /*
  1134. * sde_rotator_destroy_debugfs - Destroy rotator debugfs directory structure.
  1135. * @rot_dev: Pointer to rotator debugfs
  1136. */
  1137. void sde_rotator_destroy_debugfs(struct dentry *debugfs)
  1138. {
  1139. debugfs_remove_recursive(debugfs);
  1140. }