sde_dbg.c 81 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright (c) 2021-2022 Qualcomm Innovation Center, Inc. All rights reserved.
  4. * Copyright (c) 2009-2021, The Linux Foundation. All rights reserved.
  5. */
  6. #define pr_fmt(fmt) "[drm:%s:%d] " fmt, __func__, __LINE__
  7. #include <linux/delay.h>
  8. #include <linux/spinlock.h>
  9. #include <linux/ktime.h>
  10. #include <linux/debugfs.h>
  11. #include <linux/uaccess.h>
  12. #include <linux/dma-buf.h>
  13. #include <linux/slab.h>
  14. #include <linux/list_sort.h>
  15. #include <linux/pm.h>
  16. #include <linux/pm_runtime.h>
  17. #include <linux/devcoredump.h>
  18. #include "sde_dbg.h"
  19. #include "sde/sde_hw_catalog.h"
  20. #include "sde/sde_kms.h"
  21. #include "sde/sde_hw_util.h"
  22. #define SDE_DBG_BASE_MAX 10
  23. #define DEFAULT_PANIC 1
  24. #define DEFAULT_BASE_REG_CNT DEFAULT_MDSS_HW_BLOCK_SIZE
  25. #define GROUP_BYTES 4
  26. #define ROW_BYTES 16
  27. #define RANGE_NAME_LEN 40
  28. #define REG_BASE_NAME_LEN 80
  29. #define DBGBUS_NAME_SDE "sde"
  30. #define DBGBUS_NAME_VBIF_RT "vbif_rt"
  31. #define DBGBUS_NAME_DSI "dsi"
  32. #define DBGBUS_NAME_RSC "sde_rsc_wrapper"
  33. #define DBGBUS_NAME_LUTDMA "reg_dma"
  34. #define DBGBUS_NAME_DP "dp_ahb"
  35. /* offsets from LUTDMA top address for the debug buses */
  36. #define LUTDMA_0_DEBUG_BUS_CTRL 0x1e8
  37. #define LUTDMA_0_DEBUG_BUS_STATUS 0x1ec
  38. #define LUTDMA_1_DEBUG_BUS_CTRL 0x5e8
  39. #define LUTDMA_1_DEBUG_BUS_STATUS 0x5ec
  40. /* offsets from sde top address for the debug buses */
  41. #define DBGBUS_SSPP0 0x188
  42. #define DBGBUS_AXI_INTF 0x194
  43. #define DBGBUS_SSPP1 0x298
  44. #define DBGBUS_DSPP 0x348
  45. #define DBGBUS_DSPP_STATUS 0x34C
  46. #define DBGBUS_PERIPH 0x418
  47. /* offsets from DSI CTRL base address for the DSI debug buses */
  48. #define DSI_DEBUG_BUS_CTRL 0x0124
  49. #define DSI_DEBUG_BUS 0x0128
  50. #define TEST_MASK(id, tp) ((id << 4) | (tp << 1) | BIT(0))
  51. #define TEST_EXT_MASK(id, tp) (((tp >> 3) << 24) | (id << 4) \
  52. | ((tp & 0x7) << 1) | BIT(0))
  53. /* following offsets are with respect to MDP VBIF base for DBG BUS access */
  54. #define MMSS_VBIF_CLKON 0x4
  55. #define MMSS_VBIF_TEST_BUS_OUT_CTRL 0x210
  56. #define MMSS_VBIF_TEST_BUS1_CTRL0 0x214
  57. #define MMSS_VBIF_TEST_BUS2_CTRL0 0x21c
  58. #define MMSS_VBIF_TEST_BUS_OUT 0x230
  59. /* Vbif error info */
  60. #define MMSS_VBIF_PND_ERR 0x190
  61. #define MMSS_VBIF_SRC_ERR 0x194
  62. #define MMSS_VBIF_XIN_HALT_CTRL1 0x204
  63. #define MMSS_VBIF_ERR_INFO 0X1a0
  64. #define MMSS_VBIF_ERR_INFO_1 0x1a4
  65. #define MMSS_VBIF_CLIENT_NUM 14
  66. #define RSC_WRAPPER_DEBUG_BUS 0x010
  67. #define RSC_WRAPPER_DEBUG_BUS_DATA 0x014
  68. /* offsets from DP AHB base address for DP debug bus */
  69. #define DPTX_DEBUG_BUS_CTRL 0x88
  70. #define DPTX_DEBUG_BUS_OUTPUT 0x8c
  71. /* print debug ranges in groups of 4 u32s */
  72. #define REG_DUMP_ALIGN 16
  73. #define RSC_DEBUG_MUX_SEL_SDM845 9
  74. #define DBG_CTRL_STOP_FTRACE BIT(0)
  75. #define DBG_CTRL_PANIC_UNDERRUN BIT(1)
  76. #define DBG_CTRL_RESET_HW_PANIC BIT(2)
  77. #define DBG_CTRL_MAX BIT(3)
  78. #define DUMP_BUF_SIZE (4096 * 512)
  79. #define DUMP_CLMN_COUNT 4
  80. #define DUMP_LINE_SIZE 256
  81. #define DUMP_MAX_LINES_PER_BLK 512
  82. #define EXT_TEST_GROUP_SEL_EN 0x7
  83. #define DSPP_DEBUGBUS_CTRL_EN 0x7001
  84. #define SDE_HW_REV_MAJOR(rev) ((rev) >> 28)
  85. #define SDE_DBG_LOG_START "start"
  86. #define SDE_DBG_LOG_END "end"
  87. #define SDE_DBG_LOG_MARKER(name, marker, log) \
  88. if (log) \
  89. dev_info(sde_dbg_base.dev, "======== %s %s dump =========\n", marker, name)
  90. #define SDE_DBG_LOG_ENTRY(off, x0, x4, x8, xc, log) \
  91. if (log) \
  92. dev_info(sde_dbg_base.dev, "0x%08x| %08x %08x %08x %08x\n", off, x0, x4, x8, xc)
  93. #define SDE_DBG_LOG_DUMP_ADDR(name, addr, size, off, log) \
  94. if (log) \
  95. dev_info(sde_dbg_base.dev, "%s: start_addr:0x%pK len:0x%x offset=0x%lx\n", \
  96. name, addr, size, off)
  97. #define SDE_DBG_LOG_DEBUGBUS(name, addr, block_id, test_id, val) \
  98. dev_err(sde_dbg_base.dev, "%s 0x%x %d %d 0x%x\n", name, addr, block_id, test_id, val)
  99. /**
  100. * struct sde_dbg_reg_offset - tracking for start and end of region
  101. * @start: start offset
  102. * @start: end offset
  103. */
  104. struct sde_dbg_reg_offset {
  105. u32 start;
  106. u32 end;
  107. };
  108. /**
  109. * struct sde_dbg_reg_range - register dumping named sub-range
  110. * @head: head of this node
  111. * @reg_dump: address for the mem dump
  112. * @range_name: name of this range
  113. * @offset: offsets for range to dump
  114. * @xin_id: client xin id
  115. */
  116. struct sde_dbg_reg_range {
  117. struct list_head head;
  118. u32 *reg_dump;
  119. char range_name[RANGE_NAME_LEN];
  120. struct sde_dbg_reg_offset offset;
  121. uint32_t xin_id;
  122. };
  123. /**
  124. * struct sde_dbg_reg_base - register region base.
  125. * may sub-ranges: sub-ranges are used for dumping
  126. * or may not have sub-ranges: dumping is base -> max_offset
  127. * @reg_base_head: head of this node
  128. * @sub_range_list: head to the list with dump ranges
  129. * @name: register base name
  130. * @base: base pointer
  131. * @phys_addr: block physical address
  132. * @off: cached offset of region for manual register dumping
  133. * @cnt: cached range of region for manual register dumping
  134. * @max_offset: length of region
  135. * @buf: buffer used for manual register dumping
  136. * @buf_len: buffer length used for manual register dumping
  137. * @reg_dump: address for the mem dump if no ranges used
  138. * @cb: callback for external dump function, null if not defined
  139. * @cb_ptr: private pointer to callback function
  140. * @blk_id: id indicate the HW block
  141. */
  142. struct sde_dbg_reg_base {
  143. struct list_head reg_base_head;
  144. struct list_head sub_range_list;
  145. char name[REG_BASE_NAME_LEN];
  146. void __iomem *base;
  147. unsigned long phys_addr;
  148. size_t off;
  149. size_t cnt;
  150. size_t max_offset;
  151. char *buf;
  152. size_t buf_len;
  153. u32 *reg_dump;
  154. void (*cb)(void *ptr);
  155. void *cb_ptr;
  156. u64 blk_id;
  157. };
  158. struct sde_debug_bus_entry {
  159. u32 wr_addr;
  160. u32 rd_addr;
  161. u32 block_id;
  162. u32 block_id_max;
  163. u32 test_id;
  164. u32 test_id_max;
  165. void (*analyzer)(u32 wr_addr, u32 block_id, u32 test_id, u32 val);
  166. };
  167. struct sde_dbg_dsi_ctrl_list_entry {
  168. const char *name;
  169. void __iomem *base;
  170. struct list_head list;
  171. };
  172. struct sde_dbg_debug_bus_common {
  173. char *name;
  174. u32 entries_size;
  175. u32 limited_entries_size;
  176. u32 *dumped_content;
  177. u32 content_idx;
  178. u32 content_size;
  179. u64 blk_id;
  180. };
  181. struct sde_dbg_sde_debug_bus {
  182. struct sde_dbg_debug_bus_common cmn;
  183. struct sde_debug_bus_entry *entries;
  184. struct sde_debug_bus_entry *limited_entries;
  185. u32 top_blk_off;
  186. u32 (*read_tp)(void __iomem *mem_base, u32 wr_addr, u32 rd_addr, u32 block_id, u32 test_id);
  187. void (*clear_tp)(void __iomem *mem_base, u32 wr_addr);
  188. void (*disable_block)(void __iomem *mem_base, u32 wr_addr);
  189. };
  190. /**
  191. * struct sde_dbg_regbuf - wraps buffer and tracking params for register dumps
  192. * @buf: pointer to allocated memory for storing register dumps in hw recovery
  193. * @buf_size: size of the memory allocated
  194. * @len: size of the dump data valid in the buffer
  195. * @rpos: cursor points to the buffer position read by client
  196. * @dump_done: to indicate if dumping to user memory is complete
  197. * @cur_blk: points to the current sde_dbg_reg_base block
  198. */
  199. struct sde_dbg_regbuf {
  200. char *buf;
  201. int buf_size;
  202. int len;
  203. int rpos;
  204. int dump_done;
  205. struct sde_dbg_reg_base *cur_blk;
  206. };
  207. /**
  208. * struct sde_dbg_base - global sde debug base structure
  209. * @evtlog: event log instance
  210. * @reglog: reg log instance
  211. * @reg_base_list: list of register dumping regions
  212. * @reg_dump_base: base address of register dump region
  213. * @reg_dump_addr: register dump address for a block/range
  214. * @dev: device pointer
  215. * @mutex: mutex to serialize access to serialze dumps, debugfs access
  216. * @req_dump_blks: list of blocks requested for dumping
  217. * @panic_on_err: whether to kernel panic after triggering dump via debugfs
  218. * @dump_work: work struct for deferring register dump work to separate thread
  219. * @work_panic: panic after dump if internal user passed "panic" special region
  220. * @dump_option: whether to dump registers and dbgbus into memory, kernel log, or both
  221. * @coredump_pending: coredump is pending read from userspace
  222. * @coredump_reading: coredump is in reading stage
  223. * @dbgbus_sde: debug bus structure for the sde
  224. * @dbgbus_vbif_rt: debug bus structure for the realtime vbif
  225. * @dbgbus_dsi: debug bus structure for the dsi
  226. * @dbgbus_rsc: debug bus structure for rscc
  227. * @dbgbus_lutdma: debug bus structure for the lutdma hw
  228. * @dbgbus_dp: debug bus structure for dp
  229. * @dump_blk_mask: mask of all the hw blk-ids that has to be dumped
  230. * @dump_secure: dump entries excluding few as it is in secure-session
  231. * @regbuf: buffer data to track the register dumping in hw recovery
  232. * @sde_dbg_printer: drm printer handle used to print sde_dbg info in devcoredump device
  233. * @cur_evt_index: index used for tracking event logs dump in hw recovery
  234. * @cur_reglog_index: index used for tracking register logs dump in hw recovery
  235. * @dbgbus_dump_idx: index used for tracking dbg-bus dump in hw recovery
  236. * @vbif_dbgbus_dump_idx: index for tracking vbif dumps in hw recovery
  237. * @hw_ownership: indicates if the VM owns the HW resources
  238. */
  239. struct sde_dbg_base {
  240. struct sde_dbg_evtlog *evtlog;
  241. struct sde_dbg_reglog *reglog;
  242. struct list_head reg_base_list;
  243. void *reg_dump_base;
  244. void *reg_dump_addr;
  245. struct device *dev;
  246. struct mutex mutex;
  247. struct sde_dbg_reg_base *req_dump_blks[SDE_DBG_BASE_MAX];
  248. u32 panic_on_err;
  249. struct work_struct dump_work;
  250. bool work_panic;
  251. u32 dump_option;
  252. bool coredump_pending;
  253. bool coredump_reading;
  254. struct sde_dbg_sde_debug_bus dbgbus_sde;
  255. struct sde_dbg_sde_debug_bus dbgbus_vbif_rt;
  256. struct sde_dbg_sde_debug_bus dbgbus_dsi;
  257. struct sde_dbg_sde_debug_bus dbgbus_rsc;
  258. struct sde_dbg_sde_debug_bus dbgbus_lutdma;
  259. struct sde_dbg_sde_debug_bus dbgbus_dp;
  260. u64 dump_blk_mask;
  261. bool dump_secure;
  262. u32 debugfs_ctrl;
  263. struct drm_printer *sde_dbg_printer;
  264. struct sde_dbg_regbuf regbuf;
  265. u32 cur_evt_index;
  266. u32 cur_reglog_index;
  267. enum sde_dbg_dump_context dump_mode;
  268. bool hw_ownership;
  269. char *read_buf;
  270. bool is_dumped;
  271. } sde_dbg_base;
  272. static LIST_HEAD(sde_dbg_dsi_list);
  273. static DEFINE_MUTEX(sde_dbg_dsi_mutex);
  274. /* sde_dbg_base_evtlog - global pointer to main sde event log for macro use */
  275. struct sde_dbg_evtlog *sde_dbg_base_evtlog;
  276. /* sde_dbg_base_reglog - global pointer to main sde reg log for macro use */
  277. struct sde_dbg_reglog *sde_dbg_base_reglog;
  278. static void _sde_debug_bus_xbar_dump(u32 wr_addr, u32 block_id, u32 test_id, u32 val)
  279. {
  280. SDE_DBG_LOG_DEBUGBUS("xbar", wr_addr, block_id, test_id, val);
  281. }
  282. static void _sde_debug_bus_lm_dump(u32 wr_addr, u32 block_id, u32 test_id, u32 val)
  283. {
  284. if (!(val & 0xFFF000))
  285. return;
  286. SDE_DBG_LOG_DEBUGBUS("lm", wr_addr, block_id, test_id, val);
  287. }
  288. static void _sde_debug_bus_ppb0_dump(u32 wr_addr, u32 block_id, u32 test_id, u32 val)
  289. {
  290. if (!(val & BIT(15)))
  291. return;
  292. SDE_DBG_LOG_DEBUGBUS("pp0", wr_addr, block_id, test_id, val);
  293. }
  294. static void _sde_debug_bus_ppb1_dump(u32 wr_addr, u32 block_id, u32 test_id, u32 val)
  295. {
  296. if (!(val & BIT(15)))
  297. return;
  298. SDE_DBG_LOG_DEBUGBUS("pp1", wr_addr, block_id, test_id, val);
  299. }
  300. static u32 dsi_block_offset[] = {0x4000, 0x6000};
  301. static struct sde_debug_bus_entry dbg_bus_sde_limited[] = {
  302. { DBGBUS_SSPP0, DBGBUS_DSPP_STATUS, 0, 9, 0, 8 },
  303. { DBGBUS_SSPP0, DBGBUS_DSPP_STATUS, 20, 34, 0, 8 },
  304. { DBGBUS_SSPP0, DBGBUS_DSPP_STATUS, 60, 4, 0, 8 },
  305. { DBGBUS_SSPP0, DBGBUS_DSPP_STATUS, 70, 4, 0, 8 },
  306. { DBGBUS_SSPP1, DBGBUS_DSPP_STATUS, 0, 9, 0, 8 },
  307. { DBGBUS_SSPP1, DBGBUS_DSPP_STATUS, 20, 34, 0, 8 },
  308. { DBGBUS_SSPP1, DBGBUS_DSPP_STATUS, 60, 4, 0, 8 },
  309. { DBGBUS_SSPP1, DBGBUS_DSPP_STATUS, 70, 4, 0, 8 },
  310. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 0, 1, 0, 8 },
  311. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 9, 1, 0, 8 },
  312. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 13, 2, 0, 8 },
  313. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 19, 2, 0, 8 },
  314. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 24, 2, 0, 8 },
  315. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 31, 8, 0, 8 },
  316. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 42, 12, 0, 8 },
  317. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 54, 2, 0, 32 },
  318. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 56, 2, 0, 8 },
  319. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 63, 73, 0, 8 },
  320. { DBGBUS_PERIPH, DBGBUS_DSPP_STATUS, 0, 1, 0, 8 },
  321. { DBGBUS_PERIPH, DBGBUS_DSPP_STATUS, 47, 7, 0, 8 },
  322. { DBGBUS_PERIPH, DBGBUS_DSPP_STATUS, 60, 14, 0, 8 },
  323. { DBGBUS_PERIPH, DBGBUS_DSPP_STATUS, 80, 3, 0, 8 },
  324. };
  325. static struct sde_debug_bus_entry dbg_bus_sde[] = {
  326. { DBGBUS_SSPP0, DBGBUS_DSPP_STATUS, 0, 74, 0, 32 },
  327. { DBGBUS_SSPP1, DBGBUS_DSPP_STATUS, 0, 74, 0, 32 },
  328. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 0, 137, 0, 32 },
  329. { DBGBUS_PERIPH, DBGBUS_DSPP_STATUS, 0, 78, 0, 32 },
  330. { DBGBUS_AXI_INTF, DBGBUS_DSPP_STATUS, 0, 63, 0, 32 },
  331. /* ppb_0 */
  332. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 31, 1, 0, 1, _sde_debug_bus_ppb0_dump },
  333. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 33, 1, 0, 1, _sde_debug_bus_ppb0_dump },
  334. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 35, 1, 0, 1, _sde_debug_bus_ppb0_dump },
  335. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 42, 1, 0, 1, _sde_debug_bus_ppb0_dump },
  336. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 47, 1, 0, 1, _sde_debug_bus_ppb0_dump },
  337. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 49, 1, 0, 1, _sde_debug_bus_ppb0_dump },
  338. /* ppb_1 */
  339. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 32, 1, 0, 1, _sde_debug_bus_ppb1_dump },
  340. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 34, 1, 0, 1, _sde_debug_bus_ppb1_dump },
  341. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 36, 1, 0, 1, _sde_debug_bus_ppb1_dump },
  342. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 43, 1, 0, 1, _sde_debug_bus_ppb1_dump },
  343. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 48, 1, 0, 1, _sde_debug_bus_ppb1_dump },
  344. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 50, 1, 0, 1, _sde_debug_bus_ppb1_dump },
  345. /* crossbar */
  346. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 0, 1, 0, 1, _sde_debug_bus_xbar_dump },
  347. /* blend */
  348. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 63, 1, 7, 1, _sde_debug_bus_lm_dump },
  349. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 70, 1, 7, 1, _sde_debug_bus_lm_dump },
  350. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 77, 1, 7, 1, _sde_debug_bus_lm_dump },
  351. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 110, 1, 7, 1, _sde_debug_bus_lm_dump },
  352. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 96, 1, 7, 1, _sde_debug_bus_lm_dump },
  353. { DBGBUS_DSPP, DBGBUS_DSPP_STATUS, 124, 1, 7, 1, _sde_debug_bus_lm_dump }
  354. };
  355. static struct sde_debug_bus_entry vbif_dbg_bus_limited[] = {
  356. { MMSS_VBIF_TEST_BUS1_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 0, 2, 0, 12},
  357. { MMSS_VBIF_TEST_BUS1_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 4, 6, 0, 12},
  358. { MMSS_VBIF_TEST_BUS1_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 12, 2, 0, 12},
  359. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 0, 2, 0, 16},
  360. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 0, 2, 128, 208},
  361. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 4, 6, 0, 16},
  362. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 4, 6, 128, 208},
  363. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 12, 2, 0, 16},
  364. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 12, 2, 128, 208},
  365. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 16, 2, 0, 16},
  366. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 16, 2, 128, 208},
  367. };
  368. static struct sde_debug_bus_entry vbif_dbg_bus[] = {
  369. { MMSS_VBIF_TEST_BUS1_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 0, 15, 0, 512},
  370. { MMSS_VBIF_TEST_BUS2_CTRL0, MMSS_VBIF_TEST_BUS_OUT, 0, 18, 0, 512},
  371. };
  372. static struct sde_debug_bus_entry dsi_dbg_bus[] = {
  373. {DSI_DEBUG_BUS_CTRL, DSI_DEBUG_BUS, 0, 4, 0, 64},
  374. };
  375. static struct sde_debug_bus_entry rsc_dbg_bus[] = {
  376. {RSC_WRAPPER_DEBUG_BUS, RSC_WRAPPER_DEBUG_BUS_DATA, 0, 1, 0, 16},
  377. };
  378. static struct sde_debug_bus_entry dbg_bus_lutdma[] = {
  379. { LUTDMA_0_DEBUG_BUS_CTRL, LUTDMA_0_DEBUG_BUS_STATUS, 0, 1, 0, 12 },
  380. { LUTDMA_0_DEBUG_BUS_CTRL, LUTDMA_0_DEBUG_BUS_STATUS, 0, 1, 256, 1 },
  381. { LUTDMA_0_DEBUG_BUS_CTRL, LUTDMA_0_DEBUG_BUS_STATUS, 0, 1, 512, 4 },
  382. { LUTDMA_0_DEBUG_BUS_CTRL, LUTDMA_0_DEBUG_BUS_STATUS, 0, 1, 768, 1 },
  383. { LUTDMA_0_DEBUG_BUS_CTRL, LUTDMA_0_DEBUG_BUS_STATUS, 0, 1, 8192, 2 },
  384. { LUTDMA_0_DEBUG_BUS_CTRL, LUTDMA_0_DEBUG_BUS_STATUS, 0, 1, 8448, 1 },
  385. { LUTDMA_0_DEBUG_BUS_CTRL, LUTDMA_0_DEBUG_BUS_STATUS, 0, 1, 8704, 1 },
  386. { LUTDMA_0_DEBUG_BUS_CTRL, LUTDMA_0_DEBUG_BUS_STATUS, 0, 1, 8960, 1 },
  387. { LUTDMA_1_DEBUG_BUS_CTRL, LUTDMA_1_DEBUG_BUS_STATUS, 0, 1, 0, 12 },
  388. { LUTDMA_1_DEBUG_BUS_CTRL, LUTDMA_1_DEBUG_BUS_STATUS, 0, 1, 256, 1 },
  389. { LUTDMA_1_DEBUG_BUS_CTRL, LUTDMA_1_DEBUG_BUS_STATUS, 0, 1, 512, 4 },
  390. { LUTDMA_1_DEBUG_BUS_CTRL, LUTDMA_1_DEBUG_BUS_STATUS, 0, 1, 768, 1 },
  391. { LUTDMA_1_DEBUG_BUS_CTRL, LUTDMA_1_DEBUG_BUS_STATUS, 0, 1, 8192, 2 },
  392. { LUTDMA_1_DEBUG_BUS_CTRL, LUTDMA_1_DEBUG_BUS_STATUS, 0, 1, 8448, 1 },
  393. { LUTDMA_1_DEBUG_BUS_CTRL, LUTDMA_1_DEBUG_BUS_STATUS, 0, 1, 8704, 1 },
  394. { LUTDMA_1_DEBUG_BUS_CTRL, LUTDMA_1_DEBUG_BUS_STATUS, 0, 1, 8960, 1 },
  395. };
  396. static struct sde_debug_bus_entry dp_dbg_bus[] = {
  397. {DPTX_DEBUG_BUS_CTRL, DPTX_DEBUG_BUS_OUTPUT, 0, 1, 0, 145},
  398. };
  399. /**
  400. * _sde_dump_reg - helper function for dumping rotator register set content
  401. * @dump_name: register set name
  402. * @reg_dump_flag: dumping flag controlling in-log/memory dump location
  403. * @base_addr: starting address of io region for calculating offsets to print
  404. * @addr: starting address offset for dumping
  405. * @len_bytes: range of the register set
  406. * @dump_mem: output buffer for memory dump location option
  407. * @from_isr: whether being called from isr context
  408. */
  409. static void _sde_dump_reg(const char *dump_name, u32 reg_dump_flag,
  410. char *base_addr, char *addr, size_t len_bytes, u32 **dump_mem)
  411. {
  412. u32 in_log, in_mem, in_dump, len_align, len_padded;
  413. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  414. u32 *dump_addr = NULL;
  415. char *end_addr;
  416. int i;
  417. if (!len_bytes || !dump_mem)
  418. return;
  419. in_log = (reg_dump_flag & (SDE_DBG_DUMP_IN_LOG | SDE_DBG_DUMP_IN_LOG_LIMITED));
  420. in_mem = (reg_dump_flag & SDE_DBG_DUMP_IN_MEM);
  421. in_dump = (reg_dump_flag & SDE_DBG_DUMP_IN_COREDUMP);
  422. pr_debug("%s: reg_dump_flag=%d in_log=%d in_mem=%d\n",
  423. dump_name, reg_dump_flag, in_log, in_mem);
  424. if (!in_log && !in_mem && !in_dump)
  425. return;
  426. len_align = (len_bytes + REG_DUMP_ALIGN - 1) / REG_DUMP_ALIGN;
  427. len_padded = len_align * REG_DUMP_ALIGN;
  428. end_addr = addr + len_bytes;
  429. *dump_mem = dbg_base->reg_dump_addr;
  430. dbg_base->reg_dump_addr += len_padded;
  431. dump_addr = *dump_mem;
  432. SDE_DBG_LOG_DUMP_ADDR(dump_name, dump_addr, len_padded,
  433. (unsigned long)(addr - base_addr), in_log);
  434. if (in_dump && sde_dbg_base.coredump_reading)
  435. drm_printf(sde_dbg_base.sde_dbg_printer,
  436. "%s: start_addr:0x%pK len:0x%x reg_offset=0x%lx\n",
  437. dump_name, dump_addr, len_padded, (unsigned long)(addr - base_addr));
  438. for (i = 0; i < len_align; i++) {
  439. u32 x0, x4, x8, xc;
  440. x0 = (addr < end_addr) ? readl_relaxed(addr + 0x0) : 0;
  441. x4 = (addr + 0x4 < end_addr) ? readl_relaxed(addr + 0x4) : 0;
  442. x8 = (addr + 0x8 < end_addr) ? readl_relaxed(addr + 0x8) : 0;
  443. xc = (addr + 0xc < end_addr) ? readl_relaxed(addr + 0xc) : 0;
  444. SDE_DBG_LOG_ENTRY((unsigned long)(addr - base_addr), x0, x4, x8, xc, in_log);
  445. if (dump_addr && (in_mem || in_dump) && (!sde_dbg_base.coredump_reading)) {
  446. dump_addr[i * 4] = x0;
  447. dump_addr[i * 4 + 1] = x4;
  448. dump_addr[i * 4 + 2] = x8;
  449. dump_addr[i * 4 + 3] = xc;
  450. }
  451. if (dump_addr && in_dump && sde_dbg_base.coredump_reading)
  452. drm_printf(sde_dbg_base.sde_dbg_printer,
  453. "0x%08x| %08x %08x %08x %08x\n",
  454. (unsigned long)(addr - base_addr),
  455. dump_addr[i * 4],
  456. dump_addr[i * 4 + 1],
  457. dump_addr[i * 4 + 2],
  458. dump_addr[i * 4 + 3]);
  459. addr += REG_DUMP_ALIGN;
  460. }
  461. }
  462. /**
  463. * _sde_dbg_get_dump_range - helper to retrieve dump length for a range node
  464. * @range_node: range node to dump
  465. * @max_offset: max offset of the register base
  466. * @Return: length
  467. */
  468. static u32 _sde_dbg_get_dump_range(struct sde_dbg_reg_offset *range_node,
  469. size_t max_offset)
  470. {
  471. u32 length = 0;
  472. if (range_node->start == 0 && range_node->end == 0) {
  473. length = max_offset;
  474. } else if (range_node->start < max_offset) {
  475. if (range_node->end > max_offset)
  476. length = max_offset - range_node->start;
  477. else if (range_node->start < range_node->end)
  478. length = range_node->end - range_node->start;
  479. }
  480. return length;
  481. }
  482. static u32 _sde_dbg_get_reg_blk_size(struct sde_dbg_reg_base *dbg)
  483. {
  484. u32 len, len_align, len_padded;
  485. u32 size = 0;
  486. struct sde_dbg_reg_range *range_node;
  487. if (!dbg || !dbg->base) {
  488. pr_err("dbg base is null!\n");
  489. return 0;
  490. }
  491. if (!list_empty(&dbg->sub_range_list)) {
  492. list_for_each_entry(range_node, &dbg->sub_range_list, head) {
  493. len = _sde_dbg_get_dump_range(&range_node->offset,
  494. dbg->max_offset);
  495. len_align = (len + REG_DUMP_ALIGN - 1) / REG_DUMP_ALIGN;
  496. len_padded = len_align * REG_DUMP_ALIGN;
  497. size += REG_BASE_NAME_LEN + RANGE_NAME_LEN + len_padded;
  498. }
  499. } else {
  500. len = dbg->max_offset;
  501. len_align = (len + REG_DUMP_ALIGN - 1) / REG_DUMP_ALIGN;
  502. len_padded = len_align * REG_DUMP_ALIGN;
  503. size += REG_BASE_NAME_LEN + RANGE_NAME_LEN + len_padded;
  504. }
  505. return size;
  506. }
  507. static u32 _sde_dbg_get_reg_dump_size(void)
  508. {
  509. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  510. struct sde_dbg_reg_base *blk_base;
  511. u32 size = 0;
  512. list_for_each_entry(blk_base, &dbg_base->reg_base_list, reg_base_head)
  513. size += _sde_dbg_get_reg_blk_size(blk_base);
  514. return size;
  515. }
  516. #if IS_ENABLED(CONFIG_QCOM_VA_MINIDUMP)
  517. static void sde_dbg_add_dbg_buses_to_minidump_va(void)
  518. {
  519. static struct sde_dbg_base *dbg = &sde_dbg_base;
  520. sde_mini_dump_add_va_region("sde_dbgbus", dbg->dbgbus_sde.cmn.content_size*sizeof(u32),
  521. dbg->dbgbus_sde.cmn.dumped_content);
  522. sde_mini_dump_add_va_region("vbif_dbgbus", dbg->dbgbus_vbif_rt.cmn.content_size*sizeof(u32),
  523. dbg->dbgbus_vbif_rt.cmn.dumped_content);
  524. sde_mini_dump_add_va_region("dsi_dbgbus", dbg->dbgbus_dsi.cmn.content_size*sizeof(u32),
  525. dbg->dbgbus_dsi.cmn.dumped_content);
  526. sde_mini_dump_add_va_region("lutdma_dbgbus",
  527. dbg->dbgbus_lutdma.cmn.content_size*sizeof(u32),
  528. dbg->dbgbus_lutdma.cmn.dumped_content);
  529. sde_mini_dump_add_va_region("rsc_dbgbus", dbg->dbgbus_rsc.cmn.content_size*sizeof(u32),
  530. dbg->dbgbus_rsc.cmn.dumped_content);
  531. sde_mini_dump_add_va_region("dp_dbgbus", dbg->dbgbus_dp.cmn.content_size*sizeof(u32),
  532. dbg->dbgbus_dp.cmn.dumped_content);
  533. }
  534. static int sde_md_notify_handler(struct notifier_block *this,
  535. unsigned long event, void *ptr)
  536. {
  537. struct device *dev = sde_dbg_base.dev;
  538. struct platform_device *pdev = to_platform_device(dev);
  539. struct drm_device *ddev = platform_get_drvdata(pdev);
  540. struct msm_drm_private *priv = ddev->dev_private;
  541. struct sde_kms *sde_kms = to_sde_kms(priv->kms);
  542. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  543. u32 reg_dump_size = _sde_dbg_get_reg_dump_size();
  544. sde_mini_dump_add_va_region("msm_drm_priv", sizeof(*priv), priv);
  545. sde_mini_dump_add_va_region("sde_evtlog",
  546. sizeof(*sde_dbg_base_evtlog), sde_dbg_base_evtlog);
  547. sde_mini_dump_add_va_region("sde_reglog",
  548. sizeof(*sde_dbg_base_reglog), sde_dbg_base_reglog);
  549. sde_mini_dump_add_va_region("sde_reg_dump", reg_dump_size, dbg_base->reg_dump_base);
  550. sde_dbg_add_dbg_buses_to_minidump_va();
  551. sde_kms_add_data_to_minidump_va(sde_kms);
  552. return 0;
  553. }
  554. static struct notifier_block sde_md_notify_blk = {
  555. .notifier_call = sde_md_notify_handler,
  556. .priority = INT_MAX,
  557. };
  558. static int sde_register_md_panic_notifer()
  559. {
  560. qcom_va_md_register("display", &sde_md_notify_blk);
  561. return 0;
  562. }
  563. void sde_mini_dump_add_va_region(const char *name, u32 size, void *virt_addr)
  564. {
  565. struct va_md_entry md_entry;
  566. int ret;
  567. strlcpy(md_entry.owner, name, sizeof(md_entry.owner));
  568. md_entry.vaddr = (uintptr_t)virt_addr;
  569. md_entry.size = size;
  570. ret = qcom_va_md_add_region(&md_entry);
  571. if (ret < 0)
  572. SDE_ERROR("va minudmp add entry failed for %s, returned %d\n",
  573. name, ret);
  574. return;
  575. }
  576. #else
  577. static int sde_register_md_panic_notifer()
  578. {
  579. return 0;
  580. }
  581. void sde_mini_dump_add_va_region(const char *name, u32 size, void *virt_addr)
  582. {
  583. return;
  584. }
  585. #endif
  586. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(5, 15, 0))
  587. static int _sde_dump_reg_range_cmp(void *priv, const struct list_head *a,
  588. const struct list_head *b)
  589. #else
  590. static int _sde_dump_reg_range_cmp(void *priv, struct list_head *a,
  591. struct list_head *b)
  592. #endif
  593. {
  594. struct sde_dbg_reg_range *ar, *br;
  595. if (!a || !b)
  596. return 0;
  597. ar = container_of(a, struct sde_dbg_reg_range, head);
  598. br = container_of(b, struct sde_dbg_reg_range, head);
  599. return ar->offset.start - br->offset.start;
  600. }
  601. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(5, 15, 0))
  602. static int _sde_dump_blk_phys_addr_cmp(void *priv, const struct list_head *a,
  603. const struct list_head *b)
  604. #else
  605. static int _sde_dump_blk_phys_addr_cmp(void *priv, struct list_head *a,
  606. struct list_head *b)
  607. #endif
  608. {
  609. struct sde_dbg_reg_base *ar, *br;
  610. if (!a || !b)
  611. return 0;
  612. ar = container_of(a, struct sde_dbg_reg_base, reg_base_head);
  613. br = container_of(b, struct sde_dbg_reg_base, reg_base_head);
  614. return ar->phys_addr - br->phys_addr;
  615. }
  616. static const char *const exclude_modules[] = {
  617. "vbif_rt",
  618. "vbif_nrt",
  619. "wb_2",
  620. NULL
  621. };
  622. static bool is_block_exclude(char **modules, char *name)
  623. {
  624. char **ptr = modules;
  625. while (*ptr != NULL) {
  626. if (!strcmp(name, *ptr))
  627. return true;
  628. ++ptr;
  629. }
  630. return false;
  631. }
  632. /**
  633. * _sde_dump_reg_by_ranges - dump ranges or full range of the register blk base
  634. * @dbg: register blk base structure
  635. * @reg_dump_flag: dump target, memory, kernel log, or both
  636. */
  637. static void _sde_dump_reg_by_ranges(struct sde_dbg_reg_base *dbg, u32 reg_dump_flag)
  638. {
  639. char *addr;
  640. size_t len;
  641. struct sde_dbg_reg_range *range_node;
  642. bool in_log;
  643. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  644. if (!dbg || !(dbg->base || dbg->cb)) {
  645. pr_err("dbg base is null!\n");
  646. return;
  647. }
  648. in_log = (reg_dump_flag & (SDE_DBG_DUMP_IN_LOG | SDE_DBG_DUMP_IN_LOG_LIMITED));
  649. SDE_DBG_LOG_MARKER(dbg->name, SDE_DBG_LOG_START, in_log);
  650. if ((reg_dump_flag & SDE_DBG_DUMP_IN_COREDUMP) && sde_dbg_base.coredump_reading)
  651. drm_printf(sde_dbg_base.sde_dbg_printer,
  652. "%s:=========%s DUMP=========\n", __func__, dbg->name);
  653. if (dbg->cb) {
  654. dbg->cb(dbg->cb_ptr);
  655. /* If there is a list to dump the registers by ranges, use the ranges */
  656. } else if (!list_empty(&dbg->sub_range_list)) {
  657. /* sort the list by start address first */
  658. list_sort(NULL, &dbg->sub_range_list, _sde_dump_reg_range_cmp);
  659. list_for_each_entry(range_node, &dbg->sub_range_list, head) {
  660. len = _sde_dbg_get_dump_range(&range_node->offset, dbg->max_offset);
  661. addr = dbg->base + range_node->offset.start;
  662. pr_debug("%s: range_base=0x%pK start=0x%x end=0x%x\n",
  663. range_node->range_name, addr, range_node->offset.start,
  664. range_node->offset.end);
  665. scnprintf(dbg_base->reg_dump_addr, REG_BASE_NAME_LEN, dbg->name);
  666. dbg_base->reg_dump_addr += REG_BASE_NAME_LEN;
  667. scnprintf(dbg_base->reg_dump_addr, RANGE_NAME_LEN,
  668. range_node->range_name);
  669. dbg_base->reg_dump_addr += RANGE_NAME_LEN;
  670. _sde_dump_reg(range_node->range_name, reg_dump_flag,
  671. dbg->base, addr, len, &range_node->reg_dump);
  672. }
  673. } else {
  674. /* If there is no list to dump ranges, dump all registers */
  675. SDE_DBG_LOG_DUMP_ADDR("base", dbg->base, dbg->max_offset, 0, in_log);
  676. addr = dbg->base;
  677. len = dbg->max_offset;
  678. scnprintf(dbg_base->reg_dump_addr, REG_BASE_NAME_LEN, dbg->name);
  679. dbg_base->reg_dump_addr += REG_BASE_NAME_LEN;
  680. dbg_base->reg_dump_addr += RANGE_NAME_LEN;
  681. _sde_dump_reg(dbg->name, reg_dump_flag, dbg->base, addr, len, &dbg->reg_dump);
  682. }
  683. }
  684. /**
  685. * _sde_dump_reg_mask - dump register regions based on mask
  686. * @dump_blk_mask: mask of all the hw blk-ids that has to be dumped
  687. * @dump_secure: flag to indicate dumping in secure-session
  688. */
  689. static void _sde_dump_reg_mask(u64 dump_blk_mask, bool dump_secure)
  690. {
  691. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  692. struct sde_dbg_reg_base *blk_base;
  693. if (!dump_blk_mask)
  694. return;
  695. list_sort(NULL, &dbg_base->reg_base_list, _sde_dump_blk_phys_addr_cmp);
  696. list_for_each_entry(blk_base, &dbg_base->reg_base_list, reg_base_head) {
  697. if ((!(blk_base->blk_id & dump_blk_mask)) || (!strlen(blk_base->name)))
  698. continue;
  699. if (dump_secure && is_block_exclude((char **)exclude_modules, blk_base->name))
  700. continue;
  701. _sde_dump_reg_by_ranges(blk_base, dbg_base->dump_option);
  702. }
  703. }
  704. /**
  705. * _sde_dump_get_blk_addr - retrieve register block address by name
  706. * @blk_name: register blk name
  707. * @Return: register blk base, or NULL
  708. */
  709. static struct sde_dbg_reg_base *_sde_dump_get_blk_addr(const char *blk_name)
  710. {
  711. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  712. struct sde_dbg_reg_base *blk_base;
  713. list_for_each_entry(blk_base, &dbg_base->reg_base_list, reg_base_head)
  714. if (strlen(blk_base->name) && !strcmp(blk_base->name, blk_name))
  715. return blk_base;
  716. return NULL;
  717. }
  718. static u32 _sde_dbg_cmn_read_test_point(void __iomem *mem_base, u32 wr_addr, u32 rd_addr, u32 val)
  719. {
  720. writel_relaxed(val, mem_base + wr_addr);
  721. wmb(); /* make sure debug-bus test point is enabled */
  722. return readl_relaxed(mem_base + rd_addr);
  723. }
  724. static void _sde_dbg_cmn_clear_test_point(void __iomem *mem_base, u32 wr_addr)
  725. {
  726. writel_relaxed(0, mem_base + wr_addr);
  727. }
  728. static u32 _sde_dbg_dp_read_test_point(void __iomem *mem_base, u32 wr_addr, u32 rd_addr,
  729. u32 block_id, u32 test_id)
  730. {
  731. u32 val = (test_id << 4) | BIT(0);
  732. return _sde_dbg_cmn_read_test_point(mem_base, wr_addr, rd_addr, val);
  733. }
  734. static u32 _sde_dbg_rsc_read_test_point(void __iomem *mem_base, u32 wr_addr, u32 rd_addr,
  735. u32 block_id, u32 test_id)
  736. {
  737. u32 val = ((test_id & 0xf) << 1) | BIT(0);
  738. return _sde_dbg_cmn_read_test_point(mem_base, wr_addr, rd_addr, val);
  739. }
  740. static u32 _sde_dbg_lutdma_read_test_point(void __iomem *mem_base, u32 wr_addr, u32 rd_addr,
  741. u32 block_id, u32 test_id)
  742. {
  743. u32 val = (BIT(0) | (test_id << 1)) & 0xFFFF;
  744. return _sde_dbg_cmn_read_test_point(mem_base, wr_addr, rd_addr, val);
  745. }
  746. static u32 _sde_dbg_dsi_read_test_point(void __iomem *mem_base, u32 wr_addr, u32 rd_addr,
  747. u32 block_id, u32 test_id)
  748. {
  749. u32 val = (((block_id & 0x3) << 12) | ((test_id & 0x3f) << 4) | BIT(0));
  750. return _sde_dbg_cmn_read_test_point(mem_base, wr_addr, rd_addr, val);
  751. }
  752. static void _sde_dbg_vbif_disable_block(void __iomem *mem_base, u32 wr_addr)
  753. {
  754. u32 disable_addr;
  755. /* make sure that other bus is off */
  756. disable_addr = (wr_addr == MMSS_VBIF_TEST_BUS1_CTRL0) ?
  757. MMSS_VBIF_TEST_BUS2_CTRL0 : MMSS_VBIF_TEST_BUS1_CTRL0;
  758. writel_relaxed(0, mem_base + disable_addr);
  759. writel_relaxed(BIT(0), mem_base + MMSS_VBIF_TEST_BUS_OUT_CTRL);
  760. wmb(); /* update test bus */
  761. }
  762. static u32 _sde_dbg_vbif_read_test_point(void __iomem *mem_base, u32 wr_addr, u32 rd_addr,
  763. u32 block_id, u32 test_id)
  764. {
  765. writel_relaxed((1 << block_id), mem_base + wr_addr);
  766. writel_relaxed(test_id, mem_base + wr_addr + 0x4);
  767. wmb(); /* make sure debug-bus test point is enabled */
  768. return readl_relaxed(mem_base + rd_addr);
  769. }
  770. static void _sde_dbg_vbif_clear_test_point(void __iomem *mem_base, u32 wr_addr)
  771. {
  772. writel_relaxed(0, mem_base + wr_addr);
  773. writel_relaxed(0, mem_base + wr_addr + 0x4);
  774. wmb(); /* update test point clear */
  775. }
  776. static u32 _sde_dbg_sde_read_test_point(void __iomem *mem_base, u32 wr_addr, u32 rd_addr,
  777. u32 block_id, u32 test_id)
  778. {
  779. if (block_id > EXT_TEST_GROUP_SEL_EN)
  780. writel_relaxed(TEST_EXT_MASK(block_id, test_id), mem_base + wr_addr);
  781. else
  782. writel_relaxed(TEST_MASK(block_id, test_id), mem_base + wr_addr);
  783. /* keep DSPP test point enabled */
  784. if (wr_addr != DBGBUS_DSPP)
  785. writel_relaxed(DSPP_DEBUGBUS_CTRL_EN, mem_base + DBGBUS_DSPP);
  786. wmb(); /* make sure test bits were written */
  787. return readl_relaxed(mem_base + rd_addr);
  788. }
  789. static void _sde_dbg_sde_clear_test_point(void __iomem *mem_base, u32 wr_addr)
  790. {
  791. writel_relaxed(0x0, mem_base + wr_addr);
  792. if (wr_addr != DBGBUS_DSPP)
  793. writel_relaxed(0x0, mem_base + DBGBUS_DSPP);
  794. }
  795. static void _sde_dbg_dump_vbif_err_info(void __iomem *mem_base)
  796. {
  797. u32 value, d0, d1;
  798. unsigned long reg, reg1, reg2;
  799. int i;
  800. value = readl_relaxed(mem_base + MMSS_VBIF_CLKON);
  801. writel_relaxed(value | BIT(1), mem_base + MMSS_VBIF_CLKON);
  802. wmb(); /* make sure that vbif core is on */
  803. /*
  804. * Extract VBIF error info based on XIN halt and error status.
  805. * If the XIN client is not in HALT state, or an error is detected,
  806. * then retrieve the VBIF error info for it.
  807. */
  808. reg = readl_relaxed(mem_base + MMSS_VBIF_XIN_HALT_CTRL1);
  809. reg1 = readl_relaxed(mem_base + MMSS_VBIF_PND_ERR);
  810. reg2 = readl_relaxed(mem_base + MMSS_VBIF_SRC_ERR);
  811. dev_err(sde_dbg_base.dev, "xin halt:0x%lx, pnd err:0x%lx, src err:0x%lx\n",
  812. reg, reg1, reg2);
  813. reg >>= 16;
  814. reg &= ~(reg1 | reg2);
  815. for (i = 0; i < MMSS_VBIF_CLIENT_NUM; i++) {
  816. if (!test_bit(0, &reg)) {
  817. writel_relaxed(i, mem_base + MMSS_VBIF_ERR_INFO);
  818. wmb(); /* make sure reg write goes through */
  819. d0 = readl_relaxed(mem_base + MMSS_VBIF_ERR_INFO);
  820. d1 = readl_relaxed(mem_base + MMSS_VBIF_ERR_INFO_1);
  821. dev_err(sde_dbg_base.dev, "Client:%d, errinfo=0x%x, errinfo1=0x%x\n",
  822. i, d0, d1);
  823. }
  824. reg >>= 1;
  825. }
  826. }
  827. static bool _is_dbg_bus_limited_valid(struct sde_dbg_sde_debug_bus *bus,
  828. u32 wr_addr, u32 block_id, u32 test_id)
  829. {
  830. struct sde_debug_bus_entry *entry;
  831. u32 block_id_max, test_id_max;
  832. int i;
  833. if (!bus->limited_entries || !bus->cmn.limited_entries_size)
  834. return true;
  835. for (i = 0; i < bus->cmn.limited_entries_size; i++) {
  836. entry = bus->limited_entries + i;
  837. block_id_max = entry->block_id + entry->block_id_max;
  838. test_id_max = entry->test_id + entry->test_id_max;
  839. if ((wr_addr == entry->wr_addr)
  840. && ((block_id >= entry->block_id) && (block_id < block_id_max))
  841. && ((test_id >= entry->test_id) && (test_id < test_id_max)))
  842. return true;
  843. }
  844. return false;
  845. }
  846. static void _sde_dbg_dump_bus_entry(struct sde_dbg_sde_debug_bus *bus,
  847. struct sde_debug_bus_entry *entries, u32 bus_size,
  848. void __iomem *mem_base, u32 *dump_addr, u32 enable_mask, u32 hw_idx)
  849. {
  850. u32 status = 0;
  851. int i, j, k;
  852. bool in_mem, in_log, in_dump, in_log_limited;
  853. struct sde_debug_bus_entry *entry;
  854. u32 test_id, block_id, wr_addr;
  855. if (!bus->read_tp || !bus->clear_tp)
  856. return;
  857. in_mem = (enable_mask & SDE_DBG_DUMP_IN_MEM);
  858. in_log = (enable_mask & SDE_DBG_DUMP_IN_LOG);
  859. in_log_limited = (enable_mask & SDE_DBG_DUMP_IN_LOG_LIMITED);
  860. in_dump = (enable_mask & SDE_DBG_DUMP_IN_COREDUMP);
  861. for (k = 0; k < bus_size; k++) {
  862. entry = entries + k;
  863. if (bus->disable_block)
  864. bus->disable_block(mem_base, entry->wr_addr);
  865. for (i = entry->block_id; i < (entry->block_id + entry->block_id_max); i++) {
  866. for (j = entry->test_id; j < (entry->test_id + entry->test_id_max); j++) {
  867. status = bus->read_tp(mem_base, entry->wr_addr,
  868. entry->rd_addr, i, j);
  869. wr_addr = entry->wr_addr;
  870. block_id = i;
  871. test_id = j;
  872. if (!strcmp(bus->cmn.name, DBGBUS_NAME_VBIF_RT))
  873. block_id = 1 << block_id;
  874. else if (!strcmp(bus->cmn.name, DBGBUS_NAME_DSI) &&
  875. (hw_idx < ARRAY_SIZE(dsi_block_offset)))
  876. wr_addr = entry->wr_addr + dsi_block_offset[hw_idx];
  877. if (!entry->analyzer && (in_log || (in_log_limited &&
  878. _is_dbg_bus_limited_valid(
  879. bus, entry->wr_addr, block_id, test_id))))
  880. SDE_DBG_LOG_ENTRY(0, wr_addr, block_id,
  881. test_id, status, true);
  882. if (dump_addr && (in_mem || in_dump)
  883. && (!sde_dbg_base.coredump_reading)) {
  884. *dump_addr++ = wr_addr;
  885. *dump_addr++ = block_id;
  886. *dump_addr++ = test_id;
  887. *dump_addr++ = status;
  888. }
  889. if (dump_addr && in_dump && sde_dbg_base.coredump_reading) {
  890. drm_printf(sde_dbg_base.sde_dbg_printer,
  891. "0x%08x| %08x %08x %08x %08x\n", 0,
  892. *dump_addr, *(dump_addr + 1),
  893. *(dump_addr + 2), *(dump_addr + 3));
  894. dump_addr += 4;
  895. }
  896. if (entry->analyzer)
  897. entry->analyzer(entry->wr_addr, i, j, status);
  898. }
  899. }
  900. /* Disable debug bus once we are done */
  901. bus->clear_tp(mem_base, entry->wr_addr);
  902. }
  903. }
  904. static void _sde_dbg_dump_sde_dbg_bus(struct sde_dbg_sde_debug_bus *bus, u32 enable_mask)
  905. {
  906. bool in_mem, in_dump, in_log;
  907. u32 **dump_mem = NULL;
  908. u32 *dump_addr = NULL;
  909. int i, list_size = 0;
  910. void __iomem *mem_base = NULL;
  911. struct sde_dbg_reg_base *reg_base;
  912. struct sde_debug_bus_entry *entries;
  913. u32 bus_size;
  914. char name[20];
  915. reg_base = _sde_dump_get_blk_addr(bus->cmn.name);
  916. if (!reg_base || !reg_base->base) {
  917. pr_err("unable to find mem_base for %s\n", bus->cmn.name);
  918. return;
  919. }
  920. in_mem = (enable_mask & SDE_DBG_DUMP_IN_MEM);
  921. in_dump = (enable_mask & SDE_DBG_DUMP_IN_COREDUMP);
  922. in_log = (enable_mask & (SDE_DBG_DUMP_IN_LOG | SDE_DBG_DUMP_IN_LOG_LIMITED));
  923. mem_base = reg_base->base;
  924. if (!strcmp(bus->cmn.name, DBGBUS_NAME_SDE))
  925. mem_base += bus->top_blk_off;
  926. if (!strcmp(bus->cmn.name, DBGBUS_NAME_VBIF_RT))
  927. _sde_dbg_dump_vbif_err_info(mem_base);
  928. entries = bus->entries;
  929. bus_size = bus->cmn.entries_size;
  930. dump_mem = &bus->cmn.dumped_content;
  931. if (!dump_mem || !entries || !bus_size)
  932. return;
  933. /* allocate memory for each test id */
  934. for (i = 0; i < bus_size; i++)
  935. list_size += (entries[i].block_id_max * entries[i].test_id_max);
  936. list_size *= sizeof(u32) * DUMP_CLMN_COUNT;
  937. snprintf(name, sizeof(name), "%s-debugbus", bus->cmn.name);
  938. SDE_DBG_LOG_MARKER(name, SDE_DBG_LOG_START, in_log);
  939. if ((in_mem || in_dump) && (!(*dump_mem))) {
  940. *dump_mem = vzalloc(list_size);
  941. bus->cmn.content_size = list_size / sizeof(u32);
  942. }
  943. dump_addr = *dump_mem;
  944. SDE_DBG_LOG_DUMP_ADDR(bus->cmn.name, dump_addr, list_size, 0, in_log);
  945. _sde_dbg_dump_bus_entry(bus, entries, bus_size, mem_base, dump_addr, enable_mask, 0);
  946. }
  947. static void _sde_dbg_dump_dsi_dbg_bus(struct sde_dbg_sde_debug_bus *bus, u32 enable_mask)
  948. {
  949. struct sde_dbg_dsi_ctrl_list_entry *ctl_entry;
  950. struct list_head *list;
  951. int list_size = 0;
  952. bool in_mem, in_dump, in_log;
  953. u32 i, dsi_count = 0;
  954. u32 **dump_mem = NULL;
  955. u32 *dump_addr = NULL;
  956. struct sde_debug_bus_entry *entries;
  957. u32 bus_size;
  958. char name[20];
  959. entries = bus->entries;
  960. bus_size = bus->cmn.entries_size;
  961. dump_mem = &bus->cmn.dumped_content;
  962. if (!dump_mem || !entries || !bus_size || list_empty(&sde_dbg_dsi_list))
  963. return;
  964. in_mem = (enable_mask & SDE_DBG_DUMP_IN_MEM);
  965. in_dump = (enable_mask & SDE_DBG_DUMP_IN_COREDUMP);
  966. in_log = (enable_mask & (SDE_DBG_DUMP_IN_LOG | SDE_DBG_DUMP_IN_LOG_LIMITED));
  967. list_for_each(list, &sde_dbg_dsi_list)
  968. dsi_count++;
  969. for (i = 0; i < bus_size; i++)
  970. list_size += (entries[i].block_id_max * entries[i].test_id_max);
  971. list_size *= sizeof(u32) * DUMP_CLMN_COUNT * dsi_count;
  972. snprintf(name, sizeof(name), "%s-debugbus", bus->cmn.name);
  973. SDE_DBG_LOG_MARKER(name, SDE_DBG_LOG_START, in_log);
  974. mutex_lock(&sde_dbg_dsi_mutex);
  975. if ((in_mem || in_dump) && (!(*dump_mem))) {
  976. *dump_mem = vzalloc(list_size);
  977. bus->cmn.content_size = list_size / sizeof(u32);
  978. }
  979. dump_addr = *dump_mem;
  980. i = 0;
  981. list_for_each_entry(ctl_entry, &sde_dbg_dsi_list, list) {
  982. SDE_DBG_LOG_DUMP_ADDR(ctl_entry->name, dump_addr, list_size / dsi_count, 0, in_log);
  983. _sde_dbg_dump_bus_entry(bus, entries, bus_size, ctl_entry->base,
  984. dump_addr, enable_mask, i);
  985. if (dump_addr)
  986. dump_addr += list_size / (sizeof(u32) * dsi_count);
  987. i++;
  988. }
  989. mutex_unlock(&sde_dbg_dsi_mutex);
  990. }
  991. void sde_evtlog_dump_all(struct sde_dbg_evtlog *evtlog)
  992. {
  993. char buf[SDE_EVTLOG_BUF_MAX];
  994. bool update_last_entry = true;
  995. u32 in_log, in_mem, in_dump;
  996. u32 log_size = 0;
  997. char *dump_addr = NULL;
  998. int i;
  999. if (!evtlog )
  1000. return;
  1001. in_log = evtlog->dump_mode & (SDE_DBG_DUMP_IN_LOG | SDE_DBG_DUMP_IN_LOG_LIMITED);
  1002. in_mem = evtlog->dump_mode & SDE_DBG_DUMP_IN_MEM;
  1003. in_dump = evtlog->dump_mode & SDE_DBG_DUMP_IN_COREDUMP;
  1004. log_size = sde_evtlog_count(evtlog);
  1005. if (!log_size)
  1006. return;
  1007. if (!evtlog->dumped_evtlog) {
  1008. if (in_mem)
  1009. log_size = SDE_EVTLOG_ENTRY;
  1010. evtlog->dumped_evtlog = kvzalloc((log_size * SDE_EVTLOG_BUF_MAX), GFP_KERNEL);
  1011. evtlog->log_size = log_size;
  1012. }
  1013. dump_addr = evtlog->dumped_evtlog;
  1014. if ((in_mem || in_dump) && dump_addr && (!sde_dbg_base.coredump_reading)) {
  1015. while (sde_evtlog_dump_to_buffer(evtlog, dump_addr, SDE_EVTLOG_BUF_MAX,
  1016. update_last_entry, true)) {
  1017. dump_addr += SDE_EVTLOG_BUF_MAX;
  1018. update_last_entry = false;
  1019. }
  1020. }
  1021. if (in_dump && dump_addr && sde_dbg_base.coredump_reading) {
  1022. drm_printf(sde_dbg_base.sde_dbg_printer, "===================evtlog================\n");
  1023. for (i = 0; i < evtlog->log_size; i++) {
  1024. drm_printf(sde_dbg_base.sde_dbg_printer, "%s", dump_addr);
  1025. dump_addr += SDE_EVTLOG_BUF_MAX;
  1026. }
  1027. drm_printf(sde_dbg_base.sde_dbg_printer, "\n");
  1028. }
  1029. if (in_log) {
  1030. while (sde_evtlog_dump_to_buffer(evtlog, buf, sizeof(buf),
  1031. update_last_entry, false)) {
  1032. pr_info("%s\n", buf);
  1033. update_last_entry = false;
  1034. }
  1035. }
  1036. }
  1037. /**
  1038. * _sde_dump_array - dump array of register bases
  1039. * @do_panic: whether to trigger a panic after dumping
  1040. * @name: string indicating origin of dump
  1041. * @dump_secure: flag to indicate dumping in secure-session
  1042. * @dump_blk_mask: mask of all the hw blk-ids that has to be dumped
  1043. */
  1044. static void _sde_dump_array(bool do_panic, const char *name, bool dump_secure, u64 dump_blk_mask)
  1045. {
  1046. int rc;
  1047. ktime_t start, end;
  1048. u32 reg_dump_size;
  1049. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  1050. bool skip_power;
  1051. bool coredump_reading;
  1052. u32 in_dump;
  1053. mutex_lock(&dbg_base->mutex);
  1054. reg_dump_size = _sde_dbg_get_reg_dump_size();
  1055. if (!dbg_base->reg_dump_base)
  1056. dbg_base->reg_dump_base = vzalloc(reg_dump_size);
  1057. dbg_base->reg_dump_addr = dbg_base->reg_dump_base;
  1058. /*
  1059. * sde power resources are expected to be enabled in this context and might
  1060. * result in deadlock if its called again.
  1061. */
  1062. skip_power = (dbg_base->dump_mode == SDE_DBG_DUMP_CLK_ENABLED_CTX);
  1063. if (sde_evtlog_is_enabled(dbg_base->evtlog, SDE_EVTLOG_ALWAYS))
  1064. sde_evtlog_dump_all(dbg_base->evtlog);
  1065. if (!skip_power) {
  1066. rc = pm_runtime_resume_and_get(dbg_base->dev);
  1067. if (rc < 0) {
  1068. pr_err("failed to enable power resource %d\n", rc);
  1069. return;
  1070. }
  1071. }
  1072. in_dump = (dbg_base->dump_option & SDE_DBG_DUMP_IN_COREDUMP);
  1073. coredump_reading = sde_dbg_base.coredump_reading;
  1074. start = ktime_get();
  1075. _sde_dump_reg_mask(dump_blk_mask, dump_secure);
  1076. end = ktime_get();
  1077. dev_info(dbg_base->dev,
  1078. "ctx:%d, reg-dump logging time start_us:%llu, end_us:%llu , duration_us:%llu\n",
  1079. dbg_base->dump_mode, ktime_to_us(start), ktime_to_us(end),
  1080. ktime_us_delta(end, start));
  1081. start = ktime_get();
  1082. if (in_dump && coredump_reading)
  1083. drm_printf(dbg_base->sde_dbg_printer, "============== dump dbgbus_sde ==============\n");
  1084. if (dump_blk_mask & SDE_DBG_SDE_DBGBUS)
  1085. _sde_dbg_dump_sde_dbg_bus(&dbg_base->dbgbus_sde, dbg_base->dump_option);
  1086. if (in_dump && coredump_reading)
  1087. drm_printf(dbg_base->sde_dbg_printer, "============== dump dbgbus_lutdma ==============\n");
  1088. if (dump_blk_mask & SDE_DBG_LUTDMA_DBGBUS)
  1089. _sde_dbg_dump_sde_dbg_bus(&dbg_base->dbgbus_lutdma, dbg_base->dump_option);
  1090. if (in_dump && coredump_reading)
  1091. drm_printf(dbg_base->sde_dbg_printer, "============== dump dbgbus_rsc ==============\n");
  1092. if (dump_blk_mask & SDE_DBG_RSC_DBGBUS)
  1093. _sde_dbg_dump_sde_dbg_bus(&dbg_base->dbgbus_rsc, dbg_base->dump_option);
  1094. if (in_dump && coredump_reading)
  1095. drm_printf(dbg_base->sde_dbg_printer, "============== dump dbgbus_vbif_rt ==============\n");
  1096. if (dump_blk_mask & SDE_DBG_VBIF_RT_DBGBUS)
  1097. _sde_dbg_dump_sde_dbg_bus(&dbg_base->dbgbus_vbif_rt, dbg_base->dump_option);
  1098. if (in_dump && coredump_reading)
  1099. drm_printf(dbg_base->sde_dbg_printer, "============== dump dbgbus_dsi ==============\n");
  1100. if (dump_blk_mask & SDE_DBG_DSI_DBGBUS)
  1101. _sde_dbg_dump_dsi_dbg_bus(&dbg_base->dbgbus_dsi, dbg_base->dump_option);
  1102. if (in_dump && coredump_reading)
  1103. drm_printf(dbg_base->sde_dbg_printer, "============== dump dbgbus_dp ==============\n");
  1104. if (dump_blk_mask & SDE_DBG_DP_DBGBUS)
  1105. _sde_dbg_dump_sde_dbg_bus(&dbg_base->dbgbus_dp, dbg_base->dump_option);
  1106. end = ktime_get();
  1107. dev_info(dbg_base->dev,
  1108. "debug-bus logging time start_us:%llu, end_us:%llu , duration_us:%llu\n",
  1109. ktime_to_us(start), ktime_to_us(end), ktime_us_delta(end, start));
  1110. if (!skip_power)
  1111. pm_runtime_put_sync(dbg_base->dev);
  1112. if (do_panic && dbg_base->panic_on_err && (!in_dump))
  1113. panic(name);
  1114. mutex_unlock(&dbg_base->mutex);
  1115. }
  1116. #ifdef CONFIG_DEV_COREDUMP
  1117. #define MAX_BUFF_SIZE ((3072 - 256) * 1024)
  1118. static ssize_t sde_devcoredump_drm_read(char *buffer, size_t size)
  1119. {
  1120. struct drm_print_iterator iter;
  1121. struct drm_printer p;
  1122. iter.data = buffer;
  1123. iter.start = 0;
  1124. iter.remain = size;
  1125. p = drm_coredump_printer(&iter);
  1126. drm_printf(&p, "---\n");
  1127. drm_printf(&p, "module: " KBUILD_MODNAME "\n");
  1128. drm_printf(&p, "sde devcoredump\n");
  1129. sde_dbg_base.sde_dbg_printer = &p;
  1130. sde_dbg_base.coredump_reading = true;
  1131. _sde_dump_array(false, "devcoredump", sde_dbg_base.dump_secure,
  1132. sde_dbg_base.dump_blk_mask);
  1133. return size - iter.remain;
  1134. }
  1135. static ssize_t sde_devcoredump_read(char *buffer, loff_t offset,
  1136. size_t count, void *data, size_t datalen)
  1137. {
  1138. static u32 read_size;
  1139. if (!sde_dbg_base.read_buf) {
  1140. sde_dbg_base.read_buf = kvzalloc(MAX_BUFF_SIZE, GFP_KERNEL);
  1141. if (!sde_dbg_base.read_buf)
  1142. return -ENOMEM;
  1143. sde_dbg_base.is_dumped = false;
  1144. }
  1145. if (!sde_dbg_base.is_dumped) {
  1146. read_size = sde_devcoredump_drm_read(sde_dbg_base.read_buf, MAX_BUFF_SIZE);
  1147. sde_dbg_base.is_dumped = true;
  1148. }
  1149. if (read_size > offset) {
  1150. memcpy(buffer, sde_dbg_base.read_buf + offset,
  1151. min(count, (size_t)(read_size - offset)));
  1152. } else {
  1153. return 0;
  1154. }
  1155. return min(count, (size_t)(read_size - offset));
  1156. }
  1157. static void sde_devcoredump_free(void *data)
  1158. {
  1159. if (sde_dbg_base.evtlog->dumped_evtlog) {
  1160. kvfree(sde_dbg_base.evtlog->dumped_evtlog);
  1161. sde_dbg_base.evtlog->dumped_evtlog = NULL;
  1162. }
  1163. if (sde_dbg_base.read_buf) {
  1164. kvfree(sde_dbg_base.read_buf);
  1165. sde_dbg_base.read_buf = NULL;
  1166. }
  1167. sde_dbg_base.coredump_reading = false;
  1168. sde_dbg_base.coredump_pending = false;
  1169. }
  1170. void sde_dbg_update_dump_mode(bool enable_coredump)
  1171. {
  1172. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  1173. u32 new_mode = SDE_DBG_DEFAULT_DUMP_MODE;
  1174. if (enable_coredump)
  1175. new_mode = SDE_DBG_DUMP_IN_COREDUMP;
  1176. dbg_base->dump_option = new_mode;
  1177. dbg_base->evtlog->dump_mode = new_mode;
  1178. }
  1179. #else
  1180. void sde_dbg_update_dump_mode(bool enable_coredump)
  1181. {
  1182. }
  1183. #endif /* CONFIG_DEV_COREDUMP */
  1184. /**
  1185. * _sde_dump_work - deferred dump work function
  1186. * @work: work structure
  1187. */
  1188. static void _sde_dump_work(struct work_struct *work)
  1189. {
  1190. _sde_dump_array(sde_dbg_base.work_panic, "evtlog_workitem",
  1191. sde_dbg_base.dump_secure, sde_dbg_base.dump_blk_mask);
  1192. #ifdef CONFIG_DEV_COREDUMP
  1193. if (sde_dbg_base.dump_option & SDE_DBG_DUMP_IN_COREDUMP) {
  1194. dev_coredumpm(sde_dbg_base.dev, THIS_MODULE, &sde_dbg_base, 0, GFP_KERNEL,
  1195. sde_devcoredump_read, sde_devcoredump_free);
  1196. sde_dbg_base.coredump_pending = true;
  1197. }
  1198. #endif
  1199. }
  1200. void sde_dbg_dump(enum sde_dbg_dump_context dump_mode, const char *name, u64 dump_blk_mask, ...)
  1201. {
  1202. int i = 0;
  1203. bool do_panic = false;
  1204. bool dump_secure = false;
  1205. va_list args;
  1206. char *str = NULL;
  1207. if (!sde_evtlog_is_enabled(sde_dbg_base.evtlog, SDE_EVTLOG_ALWAYS))
  1208. return;
  1209. /*
  1210. * if dump work is pending
  1211. * if there is a coredump pending return immediately till dump
  1212. * if read by userspace or timeout happens
  1213. */
  1214. if (((dump_mode == SDE_DBG_DUMP_IRQ_CTX) && work_pending(&sde_dbg_base.dump_work)) ||
  1215. sde_dbg_base.coredump_pending) {
  1216. pr_debug("dump is pending, dump flag: %d\n", sde_dbg_base.dump_option);
  1217. return;
  1218. }
  1219. sde_dbg_base.dump_mode = dump_mode;
  1220. va_start(args, dump_blk_mask);
  1221. while ((str = va_arg(args, char*))) {
  1222. if (i++ >= SDE_EVTLOG_MAX_DATA) {
  1223. pr_err("could not parse all dump arguments\n");
  1224. break;
  1225. }
  1226. if (!strcmp(str, "panic"))
  1227. do_panic = true;
  1228. else if (!strcmp(str, "secure"))
  1229. dump_secure = true;
  1230. }
  1231. va_end(args);
  1232. if (dump_mode == SDE_DBG_DUMP_IRQ_CTX) {
  1233. /* schedule work to dump later */
  1234. sde_dbg_base.work_panic = do_panic;
  1235. sde_dbg_base.dump_blk_mask = dump_blk_mask;
  1236. schedule_work(&sde_dbg_base.dump_work);
  1237. } else {
  1238. _sde_dump_array(do_panic, name, dump_secure, dump_blk_mask);
  1239. #ifdef CONFIG_DEV_COREDUMP
  1240. if (sde_dbg_base.dump_option & SDE_DBG_DUMP_IN_COREDUMP) {
  1241. dev_coredumpm(sde_dbg_base.dev, THIS_MODULE, &sde_dbg_base, 0, GFP_KERNEL,
  1242. sde_devcoredump_read, sde_devcoredump_free);
  1243. sde_dbg_base.coredump_pending = true;
  1244. }
  1245. #endif
  1246. }
  1247. }
  1248. void sde_dbg_ctrl(const char *name, ...)
  1249. {
  1250. int i = 0;
  1251. va_list args;
  1252. char *blk_name = NULL;
  1253. /* no debugfs controlled events are enabled, just return */
  1254. if (!sde_dbg_base.debugfs_ctrl)
  1255. return;
  1256. va_start(args, name);
  1257. while ((blk_name = va_arg(args, char*))) {
  1258. if (i++ >= SDE_EVTLOG_MAX_DATA) {
  1259. pr_err("could not parse all dbg arguments\n");
  1260. break;
  1261. }
  1262. if (IS_ERR_OR_NULL(blk_name))
  1263. break;
  1264. if (!strcmp(blk_name, "stop_ftrace") &&
  1265. sde_dbg_base.debugfs_ctrl & DBG_CTRL_STOP_FTRACE) {
  1266. pr_debug("tracing off\n");
  1267. tracing_off();
  1268. }
  1269. if (!strcmp(blk_name, "panic_underrun") &&
  1270. sde_dbg_base.debugfs_ctrl & DBG_CTRL_PANIC_UNDERRUN) {
  1271. pr_err("panic underrun\n");
  1272. SDE_DBG_DUMP_WQ(SDE_DBG_BUILT_IN_ALL, "panic");
  1273. }
  1274. if (!strcmp(blk_name, "reset_hw_panic") &&
  1275. sde_dbg_base.debugfs_ctrl & DBG_CTRL_RESET_HW_PANIC) {
  1276. pr_debug("reset hw panic\n");
  1277. panic("reset_hw");
  1278. }
  1279. }
  1280. va_end(args);
  1281. }
  1282. #if IS_ENABLED(CONFIG_DEBUG_FS)
  1283. /*
  1284. * sde_dbg_debugfs_open - debugfs open handler for evtlog dump
  1285. * @inode: debugfs inode
  1286. * @file: file handle
  1287. */
  1288. static int sde_dbg_debugfs_open(struct inode *inode, struct file *file)
  1289. {
  1290. if (!inode || !file)
  1291. return -EINVAL;
  1292. /* non-seekable */
  1293. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1294. file->private_data = inode->i_private;
  1295. mutex_lock(&sde_dbg_base.mutex);
  1296. sde_dbg_base.cur_evt_index = 0;
  1297. sde_dbg_base.evtlog->first = (u32)atomic_add_return(0, &sde_dbg_base.evtlog->curr) + 1;
  1298. sde_dbg_base.evtlog->last =
  1299. sde_dbg_base.evtlog->first + SDE_EVTLOG_ENTRY;
  1300. mutex_unlock(&sde_dbg_base.mutex);
  1301. return 0;
  1302. }
  1303. /*
  1304. * sde_dbg_reg_base_open - debugfs open handler for reg base
  1305. * @inode: debugfs inode
  1306. * @file: file handle
  1307. */
  1308. static int sde_dbg_reg_base_open(struct inode *inode, struct file *file)
  1309. {
  1310. char base_name[64] = {0};
  1311. struct sde_dbg_reg_base *reg_base = NULL;
  1312. if (!inode || !file)
  1313. return -EINVAL;
  1314. snprintf(base_name, sizeof(base_name), "%s",
  1315. file->f_path.dentry->d_iname);
  1316. base_name[strlen(file->f_path.dentry->d_iname) - 4] = '\0';
  1317. reg_base = _sde_dump_get_blk_addr(base_name);
  1318. if (!reg_base) {
  1319. pr_err("error: unable to locate base %s\n",
  1320. base_name);
  1321. return -EINVAL;
  1322. }
  1323. /* non-seekable */
  1324. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1325. file->private_data = reg_base;
  1326. return 0;
  1327. }
  1328. /**
  1329. * sde_evtlog_dump_read - debugfs read handler for evtlog dump
  1330. * @file: file handler
  1331. * @buff: user buffer content for debugfs
  1332. * @count: size of user buffer
  1333. * @ppos: position offset of user buffer
  1334. */
  1335. static ssize_t sde_evtlog_dump_read(struct file *file, char __user *buff,
  1336. size_t count, loff_t *ppos)
  1337. {
  1338. ssize_t len = 0;
  1339. char evtlog_buf[SDE_EVTLOG_BUF_MAX];
  1340. if (!buff || !ppos)
  1341. return -EINVAL;
  1342. mutex_lock(&sde_dbg_base.mutex);
  1343. len = sde_evtlog_dump_to_buffer(sde_dbg_base.evtlog,
  1344. evtlog_buf, SDE_EVTLOG_BUF_MAX,
  1345. !sde_dbg_base.cur_evt_index, true);
  1346. sde_dbg_base.cur_evt_index++;
  1347. mutex_unlock(&sde_dbg_base.mutex);
  1348. if (len < 0 || len > count) {
  1349. pr_err("len is more than user buffer size\n");
  1350. return 0;
  1351. }
  1352. if (copy_to_user(buff, evtlog_buf, len))
  1353. return -EFAULT;
  1354. *ppos += len;
  1355. return len;
  1356. }
  1357. /**
  1358. * sde_evtlog_dump_write - debugfs write handler for evtlog dump
  1359. * @file: file handler
  1360. * @user_buf: user buffer content from debugfs
  1361. * @count: size of user buffer
  1362. * @ppos: position offset of user buffer
  1363. */
  1364. static ssize_t sde_evtlog_dump_write(struct file *file,
  1365. const char __user *user_buf, size_t count, loff_t *ppos)
  1366. {
  1367. _sde_dump_array(sde_dbg_base.panic_on_err, "dump_debugfs", false,
  1368. sde_dbg_base.dump_blk_mask);
  1369. return count;
  1370. }
  1371. static const struct file_operations sde_evtlog_fops = {
  1372. .open = sde_dbg_debugfs_open,
  1373. .read = sde_evtlog_dump_read,
  1374. .write = sde_evtlog_dump_write,
  1375. };
  1376. /**
  1377. * sde_dbg_ctrl_read - debugfs read handler for debug ctrl read
  1378. * @file: file handler
  1379. * @buff: user buffer content for debugfs
  1380. * @count: size of user buffer
  1381. * @ppos: position offset of user buffer
  1382. */
  1383. static ssize_t sde_dbg_ctrl_read(struct file *file, char __user *buff,
  1384. size_t count, loff_t *ppos)
  1385. {
  1386. ssize_t len = 0;
  1387. char buf[24] = {'\0'};
  1388. if (!buff || !ppos)
  1389. return -EINVAL;
  1390. if (*ppos)
  1391. return 0; /* the end */
  1392. len = snprintf(buf, sizeof(buf), "0x%x\n", sde_dbg_base.debugfs_ctrl);
  1393. pr_debug("%s: ctrl:0x%x len:0x%zx\n",
  1394. __func__, sde_dbg_base.debugfs_ctrl, len);
  1395. if (len < 0 || len >= sizeof(buf))
  1396. return 0;
  1397. if ((count < sizeof(buf)) || copy_to_user(buff, buf, len)) {
  1398. pr_err("error copying the buffer! count:0x%zx\n", count);
  1399. return -EFAULT;
  1400. }
  1401. *ppos += len; /* increase offset */
  1402. return len;
  1403. }
  1404. /**
  1405. * sde_dbg_ctrl_write - debugfs read handler for debug ctrl write
  1406. * @file: file handler
  1407. * @user_buf: user buffer content from debugfs
  1408. * @count: size of user buffer
  1409. * @ppos: position offset of user buffer
  1410. */
  1411. static ssize_t sde_dbg_ctrl_write(struct file *file,
  1412. const char __user *user_buf, size_t count, loff_t *ppos)
  1413. {
  1414. u32 dbg_ctrl = 0;
  1415. char buf[24];
  1416. if (!file) {
  1417. pr_err("DbgDbg: %s: error no file --\n", __func__);
  1418. return -EINVAL;
  1419. }
  1420. if (count >= sizeof(buf))
  1421. return -EFAULT;
  1422. if (copy_from_user(buf, user_buf, count))
  1423. return -EFAULT;
  1424. buf[count] = 0; /* end of string */
  1425. if (kstrtouint(buf, 0, &dbg_ctrl)) {
  1426. pr_err("%s: error in the number of bytes\n", __func__);
  1427. return -EFAULT;
  1428. }
  1429. pr_debug("dbg_ctrl_read:0x%x\n", dbg_ctrl);
  1430. sde_dbg_base.debugfs_ctrl = dbg_ctrl;
  1431. return count;
  1432. }
  1433. static const struct file_operations sde_dbg_ctrl_fops = {
  1434. .open = sde_dbg_debugfs_open,
  1435. .read = sde_dbg_ctrl_read,
  1436. .write = sde_dbg_ctrl_write,
  1437. };
  1438. static int sde_recovery_regdump_open(struct inode *inode, struct file *file)
  1439. {
  1440. if (!inode || !file)
  1441. return -EINVAL;
  1442. /* non-seekable */
  1443. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1444. file->private_data = inode->i_private;
  1445. /* initialize to start position */
  1446. sde_dbg_base.regbuf.rpos = 0;
  1447. sde_dbg_base.regbuf.cur_blk = NULL;
  1448. sde_dbg_base.regbuf.dump_done = false;
  1449. return 0;
  1450. }
  1451. static ssize_t _sde_dbg_dump_reg_rows(u32 reg_start,
  1452. void *start, int count, char *buf, int buflen)
  1453. {
  1454. int i;
  1455. int len = 0;
  1456. u32 *addr;
  1457. u32 reg_offset = 0;
  1458. int rows = min(count / DUMP_CLMN_COUNT, DUMP_MAX_LINES_PER_BLK);
  1459. if (!start || !buf) {
  1460. pr_err("invalid address for dump\n");
  1461. return len;
  1462. }
  1463. if (buflen < PAGE_SIZE) {
  1464. pr_err("buffer too small for dump\n");
  1465. return len;
  1466. }
  1467. for (i = 0; i < rows; i++) {
  1468. addr = start + (i * DUMP_CLMN_COUNT * sizeof(u32));
  1469. reg_offset = reg_start + (i * DUMP_CLMN_COUNT * sizeof(u32));
  1470. if (buflen < (len + DUMP_LINE_SIZE))
  1471. break;
  1472. len += snprintf(buf + len, DUMP_LINE_SIZE,
  1473. "0x%.8X | %.8X %.8X %.8X %.8X\n",
  1474. reg_offset, addr[0], addr[1], addr[2], addr[3]);
  1475. }
  1476. return len;
  1477. }
  1478. static int _sde_dbg_recovery_dump_sub_blk(struct sde_dbg_reg_range *sub_blk,
  1479. char *buf, int buflen)
  1480. {
  1481. int count = 0;
  1482. int len = 0;
  1483. if (!sub_blk || (buflen < PAGE_SIZE)) {
  1484. pr_err("invalid params buflen:%d subblk valid:%d\n",
  1485. buflen, sub_blk != NULL);
  1486. return len;
  1487. }
  1488. count = (sub_blk->offset.end - sub_blk->offset.start) / (sizeof(u32));
  1489. if (count < DUMP_CLMN_COUNT) {
  1490. pr_err("invalid count for register dumps :%d\n", count);
  1491. return len;
  1492. }
  1493. len += snprintf(buf + len, DUMP_LINE_SIZE,
  1494. "------------------------------------------\n");
  1495. len += snprintf(buf + len, DUMP_LINE_SIZE,
  1496. "**** sub block [%s] - size:%d ****\n",
  1497. sub_blk->range_name, count);
  1498. len += _sde_dbg_dump_reg_rows(sub_blk->offset.start, sub_blk->reg_dump,
  1499. count, buf + len, buflen - len);
  1500. return len;
  1501. }
  1502. static int _sde_dbg_recovery_dump_reg_blk(struct sde_dbg_reg_base *blk,
  1503. char *buf, int buf_size, int *out_len)
  1504. {
  1505. int ret = 0;
  1506. int len = 0;
  1507. struct sde_dbg_reg_range *sub_blk;
  1508. if (buf_size < PAGE_SIZE) {
  1509. pr_err("buffer too small for dump\n");
  1510. return len;
  1511. }
  1512. if (!blk || !strlen(blk->name)) {
  1513. len += snprintf(buf + len, DUMP_LINE_SIZE,
  1514. "Found one invalid block - skip dump\n");
  1515. *out_len = len;
  1516. return len;
  1517. }
  1518. len += snprintf(buf + len, DUMP_LINE_SIZE,
  1519. "******************************************\n");
  1520. len += snprintf(buf + len, DUMP_LINE_SIZE,
  1521. "==========================================\n");
  1522. len += snprintf(buf + len, DUMP_LINE_SIZE,
  1523. "****** DUMP of %s block (0x%08x) ******\n",
  1524. blk->name, blk->phys_addr);
  1525. len += snprintf(buf + len, DUMP_LINE_SIZE,
  1526. "count:%ld max-off:0x%lx has_sub_blk:%d\n",
  1527. blk->cnt, blk->max_offset,
  1528. !list_empty(&blk->sub_range_list));
  1529. if (list_empty(&blk->sub_range_list)) {
  1530. len += _sde_dbg_dump_reg_rows(0, blk->reg_dump,
  1531. blk->max_offset / sizeof(u32), buf + len,
  1532. buf_size - len);
  1533. } else {
  1534. list_for_each_entry(sub_blk, &blk->sub_range_list, head)
  1535. len += _sde_dbg_recovery_dump_sub_blk(sub_blk,
  1536. buf + len, buf_size - len);
  1537. }
  1538. *out_len = len;
  1539. return ret;
  1540. }
  1541. static ssize_t sde_recovery_regdump_read(struct file *file, char __user *ubuf,
  1542. size_t count, loff_t *ppos)
  1543. {
  1544. ssize_t len = 0;
  1545. int usize = 0;
  1546. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  1547. struct sde_dbg_regbuf *rbuf = &dbg_base->regbuf;
  1548. mutex_lock(&sde_dbg_base.mutex);
  1549. if (!sde_dbg_base.hw_ownership) {
  1550. pr_debug("op not supported due to HW unavailablity\n");
  1551. len = -EOPNOTSUPP;
  1552. goto err;
  1553. }
  1554. if (!rbuf->dump_done && !rbuf->cur_blk) {
  1555. if (!rbuf->buf)
  1556. rbuf->buf = vzalloc(DUMP_BUF_SIZE);
  1557. if (!rbuf->buf) {
  1558. len = -ENOMEM;
  1559. goto err;
  1560. }
  1561. rbuf->rpos = 0;
  1562. rbuf->len = 0;
  1563. rbuf->buf_size = DUMP_BUF_SIZE;
  1564. rbuf->cur_blk = list_first_entry(&dbg_base->reg_base_list,
  1565. struct sde_dbg_reg_base, reg_base_head);
  1566. if (rbuf->cur_blk)
  1567. _sde_dbg_recovery_dump_reg_blk(rbuf->cur_blk,
  1568. rbuf->buf,
  1569. rbuf->buf_size,
  1570. &rbuf->len);
  1571. pr_debug("dumping done for blk:%s len:%d\n", rbuf->cur_blk ?
  1572. rbuf->cur_blk->name : "unknown", rbuf->len);
  1573. } else if (rbuf->len == rbuf->rpos && rbuf->cur_blk) {
  1574. rbuf->rpos = 0;
  1575. rbuf->len = 0;
  1576. rbuf->buf_size = DUMP_BUF_SIZE;
  1577. if (rbuf->cur_blk == list_last_entry(&dbg_base->reg_base_list,
  1578. struct sde_dbg_reg_base, reg_base_head))
  1579. rbuf->cur_blk = NULL;
  1580. else
  1581. rbuf->cur_blk = list_next_entry(rbuf->cur_blk,
  1582. reg_base_head);
  1583. if (rbuf->cur_blk)
  1584. _sde_dbg_recovery_dump_reg_blk(rbuf->cur_blk,
  1585. rbuf->buf,
  1586. rbuf->buf_size,
  1587. &rbuf->len);
  1588. pr_debug("dumping done for blk:%s len:%d\n", rbuf->cur_blk ?
  1589. rbuf->cur_blk->name : "unknown", rbuf->len);
  1590. }
  1591. if ((rbuf->len - rbuf->rpos) > 0) {
  1592. usize = ((rbuf->len - rbuf->rpos) > count) ?
  1593. count : rbuf->len - rbuf->rpos;
  1594. if (copy_to_user(ubuf, rbuf->buf + rbuf->rpos, usize)) {
  1595. len = -EFAULT;
  1596. goto err;
  1597. }
  1598. len = usize;
  1599. rbuf->rpos += usize;
  1600. *ppos += usize;
  1601. }
  1602. if (!len && rbuf->buf)
  1603. rbuf->dump_done = true;
  1604. err:
  1605. mutex_unlock(&sde_dbg_base.mutex);
  1606. return len;
  1607. }
  1608. static const struct file_operations sde_recovery_reg_fops = {
  1609. .open = sde_recovery_regdump_open,
  1610. .read = sde_recovery_regdump_read,
  1611. };
  1612. #ifndef CONFIG_DEV_COREDUMP
  1613. static ssize_t sde_recovery_dbgbus_dump_read(struct file *file,
  1614. char __user *buff,
  1615. size_t count, loff_t *ppos)
  1616. {
  1617. ssize_t len = 0;
  1618. char log_buf[SDE_EVTLOG_BUF_MAX];
  1619. u32 *data;
  1620. struct sde_dbg_debug_bus_common *cmn = file->private_data;
  1621. u32 entry_size = DUMP_CLMN_COUNT;
  1622. u32 max_size = min_t(size_t, count, SDE_EVTLOG_BUF_MAX);
  1623. memset(log_buf, 0, sizeof(log_buf));
  1624. mutex_lock(&sde_dbg_base.mutex);
  1625. if (!sde_dbg_base.hw_ownership) {
  1626. pr_debug("op not supported due to HW unavailablity\n");
  1627. len = -EOPNOTSUPP;
  1628. goto dump_done;
  1629. }
  1630. if (!cmn->dumped_content || !cmn->entries_size)
  1631. goto dump_done;
  1632. if (cmn->content_idx < cmn->content_size) {
  1633. data = &cmn->dumped_content[cmn->content_idx];
  1634. len = scnprintf(log_buf, max_size,
  1635. "0x%.8lX | %.8X %.8X %.8X %.8X\n",
  1636. cmn->content_idx * sizeof(*data),
  1637. data[0], data[1], data[2], data[3]);
  1638. cmn->content_idx += entry_size;
  1639. if (copy_to_user(buff, log_buf, len)) {
  1640. len = -EFAULT;
  1641. goto dump_done;
  1642. }
  1643. *ppos += len;
  1644. }
  1645. dump_done:
  1646. mutex_unlock(&sde_dbg_base.mutex);
  1647. return len;
  1648. }
  1649. static int sde_recovery_dbgbus_dump_open(struct inode *inode, struct file *file)
  1650. {
  1651. if (!inode || !file)
  1652. return -EINVAL;
  1653. /* non-seekable */
  1654. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1655. file->private_data = (void *)&sde_dbg_base.dbgbus_sde.cmn;
  1656. mutex_lock(&sde_dbg_base.mutex);
  1657. sde_dbg_base.dbgbus_sde.cmn.content_idx = 0;
  1658. mutex_unlock(&sde_dbg_base.mutex);
  1659. return 0;
  1660. }
  1661. static const struct file_operations sde_recovery_dbgbus_fops = {
  1662. .open = sde_recovery_dbgbus_dump_open,
  1663. .read = sde_recovery_dbgbus_dump_read,
  1664. };
  1665. static int sde_recovery_vbif_dbgbus_dump_open(struct inode *inode,
  1666. struct file *file)
  1667. {
  1668. if (!inode || !file)
  1669. return -EINVAL;
  1670. /* non-seekable */
  1671. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1672. file->private_data = (void *)&sde_dbg_base.dbgbus_vbif_rt.cmn;
  1673. mutex_lock(&sde_dbg_base.mutex);
  1674. sde_dbg_base.dbgbus_vbif_rt.cmn.content_idx = 0;
  1675. mutex_unlock(&sde_dbg_base.mutex);
  1676. return 0;
  1677. }
  1678. static const struct file_operations sde_recovery_vbif_dbgbus_fops = {
  1679. .open = sde_recovery_vbif_dbgbus_dump_open,
  1680. .read = sde_recovery_dbgbus_dump_read,
  1681. };
  1682. static int sde_recovery_dsi_dbgbus_dump_open(struct inode *inode,
  1683. struct file *file)
  1684. {
  1685. if (!inode || !file)
  1686. return -EINVAL;
  1687. /* non-seekable */
  1688. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1689. file->private_data = (void *)&sde_dbg_base.dbgbus_dsi.cmn;
  1690. mutex_lock(&sde_dbg_base.mutex);
  1691. sde_dbg_base.dbgbus_dsi.cmn.content_idx = 0;
  1692. mutex_unlock(&sde_dbg_base.mutex);
  1693. return 0;
  1694. }
  1695. static const struct file_operations sde_recovery_dsi_dbgbus_fops = {
  1696. .open = sde_recovery_dsi_dbgbus_dump_open,
  1697. .read = sde_recovery_dbgbus_dump_read,
  1698. };
  1699. static int sde_recovery_rsc_dbgbus_dump_open(struct inode *inode,
  1700. struct file *file)
  1701. {
  1702. if (!inode || !file)
  1703. return -EINVAL;
  1704. /* non-seekable */
  1705. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1706. file->private_data = (void *)&sde_dbg_base.dbgbus_rsc.cmn;
  1707. mutex_lock(&sde_dbg_base.mutex);
  1708. sde_dbg_base.dbgbus_rsc.cmn.content_idx = 0;
  1709. mutex_unlock(&sde_dbg_base.mutex);
  1710. return 0;
  1711. }
  1712. static const struct file_operations sde_recovery_rsc_dbgbus_fops = {
  1713. .open = sde_recovery_rsc_dbgbus_dump_open,
  1714. .read = sde_recovery_dbgbus_dump_read,
  1715. };
  1716. static int sde_recovery_lutdma_dbgbus_dump_open(struct inode *inode,
  1717. struct file *file)
  1718. {
  1719. if (!inode || !file)
  1720. return -EINVAL;
  1721. /* non-seekable */
  1722. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1723. file->private_data = (void *)&sde_dbg_base.dbgbus_lutdma.cmn;
  1724. mutex_lock(&sde_dbg_base.mutex);
  1725. sde_dbg_base.dbgbus_lutdma.cmn.content_idx = 0;
  1726. mutex_unlock(&sde_dbg_base.mutex);
  1727. return 0;
  1728. }
  1729. static const struct file_operations sde_recovery_lutdma_dbgbus_fops = {
  1730. .open = sde_recovery_lutdma_dbgbus_dump_open,
  1731. .read = sde_recovery_dbgbus_dump_read,
  1732. };
  1733. static int sde_recovery_dp_dbgbus_dump_open(struct inode *inode,
  1734. struct file *file)
  1735. {
  1736. if (!inode || !file)
  1737. return -EINVAL;
  1738. /* non-seekable */
  1739. file->f_mode &= ~(FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE);
  1740. file->private_data = (void *)&sde_dbg_base.dbgbus_dp.cmn;
  1741. mutex_lock(&sde_dbg_base.mutex);
  1742. sde_dbg_base.dbgbus_dp.cmn.content_idx = 0;
  1743. mutex_unlock(&sde_dbg_base.mutex);
  1744. return 0;
  1745. }
  1746. static const struct file_operations sde_recovery_dp_dbgbus_fops = {
  1747. .open = sde_recovery_dp_dbgbus_dump_open,
  1748. .read = sde_recovery_dbgbus_dump_read,
  1749. };
  1750. #endif
  1751. /**
  1752. * sde_dbg_reg_base_release - release allocated reg dump file private data
  1753. * @inode: debugfs inode
  1754. * @file: file handle
  1755. * @Return: 0 on success
  1756. */
  1757. static int sde_dbg_reg_base_release(struct inode *inode, struct file *file)
  1758. {
  1759. struct sde_dbg_reg_base *dbg;
  1760. if (!file)
  1761. return -EINVAL;
  1762. dbg = file->private_data;
  1763. if (!dbg)
  1764. return -ENODEV;
  1765. mutex_lock(&sde_dbg_base.mutex);
  1766. if (dbg && dbg->buf) {
  1767. kfree(dbg->buf);
  1768. dbg->buf_len = 0;
  1769. dbg->buf = NULL;
  1770. }
  1771. mutex_unlock(&sde_dbg_base.mutex);
  1772. return 0;
  1773. }
  1774. /**
  1775. * sde_dbg_reg_base_is_valid_range - verify if requested memory range is valid
  1776. * @off: address offset in bytes
  1777. * @cnt: memory size in bytes
  1778. * Return: true if valid; false otherwise
  1779. */
  1780. static bool sde_dbg_reg_base_is_valid_range(
  1781. struct sde_dbg_reg_base *base,
  1782. u32 off, u32 cnt)
  1783. {
  1784. struct sde_dbg_reg_range *node;
  1785. pr_debug("check offset=0x%x cnt=0x%x\n", off, cnt);
  1786. list_for_each_entry(node, &base->sub_range_list, head) {
  1787. pr_debug("%s: start=0x%x end=0x%x\n", node->range_name,
  1788. node->offset.start, node->offset.end);
  1789. if (node->offset.start <= off
  1790. && off <= node->offset.end
  1791. && off + cnt <= node->offset.end) {
  1792. pr_debug("valid range requested\n");
  1793. return true;
  1794. }
  1795. }
  1796. pr_err("invalid range requested\n");
  1797. return false;
  1798. }
  1799. /**
  1800. * sde_dbg_reg_base_offset_write - set new offset and len to debugfs reg base
  1801. * @file: file handler
  1802. * @user_buf: user buffer content from debugfs
  1803. * @count: size of user buffer
  1804. * @ppos: position offset of user buffer
  1805. */
  1806. static ssize_t sde_dbg_reg_base_offset_write(struct file *file,
  1807. const char __user *user_buf, size_t count, loff_t *ppos)
  1808. {
  1809. struct sde_dbg_reg_base *dbg;
  1810. u32 off = 0;
  1811. u32 cnt = DEFAULT_BASE_REG_CNT;
  1812. char buf[24];
  1813. int rc;
  1814. if (!file)
  1815. return -EINVAL;
  1816. dbg = file->private_data;
  1817. if (!dbg)
  1818. return -ENODEV;
  1819. if (count >= sizeof(buf))
  1820. return -EFAULT;
  1821. if (copy_from_user(buf, user_buf, count))
  1822. return -EFAULT;
  1823. buf[count] = 0; /* end of string */
  1824. if (sscanf(buf, "%5x %x", &off, &cnt) != 2)
  1825. return -EFAULT;
  1826. if (off > dbg->max_offset)
  1827. return -EINVAL;
  1828. if (off % sizeof(u32))
  1829. return -EINVAL;
  1830. if (cnt > (dbg->max_offset - off))
  1831. cnt = dbg->max_offset - off;
  1832. if (cnt == 0)
  1833. return -EINVAL;
  1834. if (!list_empty(&dbg->sub_range_list)) {
  1835. rc = sde_dbg_reg_base_is_valid_range(dbg, off, cnt);
  1836. if (!rc)
  1837. return -EINVAL;
  1838. }
  1839. mutex_lock(&sde_dbg_base.mutex);
  1840. dbg->off = off;
  1841. dbg->cnt = cnt;
  1842. mutex_unlock(&sde_dbg_base.mutex);
  1843. pr_debug("offset=%x cnt=%x\n", off, cnt);
  1844. return count;
  1845. }
  1846. /**
  1847. * sde_dbg_reg_base_offset_read - read current offset and len of register base
  1848. * @file: file handler
  1849. * @user_buf: user buffer content from debugfs
  1850. * @count: size of user buffer
  1851. * @ppos: position offset of user buffer
  1852. */
  1853. static ssize_t sde_dbg_reg_base_offset_read(struct file *file,
  1854. char __user *buff, size_t count, loff_t *ppos)
  1855. {
  1856. struct sde_dbg_reg_base *dbg;
  1857. int len = 0;
  1858. char buf[24] = {'\0'};
  1859. if (!file)
  1860. return -EINVAL;
  1861. dbg = file->private_data;
  1862. if (!dbg)
  1863. return -ENODEV;
  1864. if (!ppos)
  1865. return -EINVAL;
  1866. if (*ppos)
  1867. return 0; /* the end */
  1868. mutex_lock(&sde_dbg_base.mutex);
  1869. if (dbg->off % sizeof(u32)) {
  1870. mutex_unlock(&sde_dbg_base.mutex);
  1871. return -EFAULT;
  1872. }
  1873. len = snprintf(buf, sizeof(buf), "0x%08zx %zx\n", dbg->off, dbg->cnt);
  1874. if (len < 0 || len >= sizeof(buf)) {
  1875. mutex_unlock(&sde_dbg_base.mutex);
  1876. return 0;
  1877. }
  1878. if ((count < sizeof(buf)) || copy_to_user(buff, buf, len)) {
  1879. mutex_unlock(&sde_dbg_base.mutex);
  1880. return -EFAULT;
  1881. }
  1882. *ppos += len; /* increase offset */
  1883. mutex_unlock(&sde_dbg_base.mutex);
  1884. return len;
  1885. }
  1886. #if IS_ENABLED(CONFIG_DYNAMIC_DEBUG)
  1887. /**
  1888. * sde_dbg_reg_base_reg_write - write to reg base hw at offset a given value
  1889. * @file: file handler
  1890. * @user_buf: user buffer content from debugfs
  1891. * @count: size of user buffer
  1892. * @ppos: position offset of user buffer
  1893. */
  1894. static ssize_t sde_dbg_reg_base_reg_write(struct file *file,
  1895. const char __user *user_buf, size_t count, loff_t *ppos)
  1896. {
  1897. struct sde_dbg_reg_base *dbg;
  1898. size_t off;
  1899. u32 data, cnt;
  1900. char buf[24];
  1901. int rc;
  1902. struct sde_hw_blk_reg_map c = {0};
  1903. if (!file)
  1904. return -EINVAL;
  1905. dbg = file->private_data;
  1906. if (!dbg)
  1907. return -ENODEV;
  1908. if (count >= sizeof(buf))
  1909. return -EFAULT;
  1910. if (copy_from_user(buf, user_buf, count))
  1911. return -EFAULT;
  1912. buf[count] = 0; /* end of string */
  1913. cnt = sscanf(buf, "%zx %x", &off, &data);
  1914. if (cnt < 2)
  1915. return -EFAULT;
  1916. if (off % sizeof(u32))
  1917. return -EFAULT;
  1918. mutex_lock(&sde_dbg_base.mutex);
  1919. if (!sde_dbg_base.hw_ownership) {
  1920. pr_debug("op not supported due to hw unavailablity\n");
  1921. count = -EOPNOTSUPP;
  1922. goto end;
  1923. }
  1924. if (off >= dbg->max_offset) {
  1925. count = -EFAULT;
  1926. goto end;
  1927. }
  1928. if (!list_empty(&dbg->sub_range_list)) {
  1929. rc = sde_dbg_reg_base_is_valid_range(dbg, off, cnt);
  1930. if (!rc) {
  1931. count = -EINVAL;
  1932. goto end;
  1933. }
  1934. }
  1935. rc = pm_runtime_resume_and_get(sde_dbg_base.dev);
  1936. if (rc < 0) {
  1937. pr_err("failed to enable power resource %d\n", rc);
  1938. count = rc;
  1939. goto end;
  1940. }
  1941. c.base_off = dbg->base;
  1942. SDE_REG_WRITE(&c, off, data);
  1943. pm_runtime_put_sync(sde_dbg_base.dev);
  1944. pr_debug("addr=%zx data=%x\n", off, data);
  1945. end:
  1946. mutex_unlock(&sde_dbg_base.mutex);
  1947. return count;
  1948. }
  1949. #endif /* CONFIG_DYNAMIC_DEBUG */
  1950. /**
  1951. * sde_dbg_reg_base_reg_read - read len from reg base hw at current offset
  1952. * @file: file handler
  1953. * @user_buf: user buffer content from debugfs
  1954. * @count: size of user buffer
  1955. * @ppos: position offset of user buffer
  1956. */
  1957. static ssize_t sde_dbg_reg_base_reg_read(struct file *file,
  1958. char __user *user_buf, size_t count, loff_t *ppos)
  1959. {
  1960. struct sde_dbg_reg_base *dbg;
  1961. size_t len;
  1962. int rc;
  1963. if (!file)
  1964. return -EINVAL;
  1965. dbg = file->private_data;
  1966. if (!dbg) {
  1967. pr_err("invalid handle\n");
  1968. return -ENODEV;
  1969. }
  1970. if (!ppos)
  1971. return -EINVAL;
  1972. mutex_lock(&sde_dbg_base.mutex);
  1973. if (!sde_dbg_base.hw_ownership) {
  1974. pr_debug("op not supported due to hw unavailablity\n");
  1975. len = -EOPNOTSUPP;
  1976. goto end;
  1977. }
  1978. if (!dbg->buf) {
  1979. struct sde_hw_blk_reg_map c = {0};
  1980. char dump_buf[64];
  1981. u32 cur_offset = 0, tot = 0;
  1982. dbg->buf_len = sizeof(dump_buf) *
  1983. DIV_ROUND_UP(dbg->cnt, ROW_BYTES);
  1984. dbg->buf = kzalloc(dbg->buf_len, GFP_KERNEL);
  1985. if (!dbg->buf) {
  1986. len = -ENOMEM;
  1987. goto end;
  1988. }
  1989. if (dbg->off % sizeof(u32)) {
  1990. len = -EFAULT;
  1991. goto end;
  1992. }
  1993. rc = pm_runtime_resume_and_get(sde_dbg_base.dev);
  1994. if (rc < 0) {
  1995. pr_err("failed to enable power resource %d\n", rc);
  1996. len = rc;
  1997. goto end;
  1998. }
  1999. c.base_off = dbg->base;
  2000. c.blk_off = dbg->off;
  2001. while (cur_offset < dbg->cnt) {
  2002. u32 reg_val;
  2003. if (cur_offset == 0) {
  2004. tot += scnprintf(dbg->buf + tot, dbg->buf_len - tot,
  2005. "0x%08x:", ((int) dbg->off) - cur_offset);
  2006. } else if (!(cur_offset % ROW_BYTES)) { // Header
  2007. tot += scnprintf(dbg->buf + tot, dbg->buf_len - tot,
  2008. "\n0x%08x:", ((int) dbg->off) - cur_offset);
  2009. }
  2010. reg_val = SDE_REG_READ(&c, cur_offset);
  2011. cur_offset += sizeof(reg_val);
  2012. tot += scnprintf(dbg->buf + tot, dbg->buf_len - tot,
  2013. " %08x", reg_val);
  2014. if (tot >= dbg->buf_len)
  2015. break;
  2016. }
  2017. tot += scnprintf(dbg->buf + tot, dbg->buf_len - tot, "\n");
  2018. pm_runtime_put_sync(sde_dbg_base.dev);
  2019. dbg->buf_len = tot;
  2020. }
  2021. if (*ppos >= dbg->buf_len) {
  2022. len = 0; /* done reading */
  2023. goto end;
  2024. }
  2025. len = min(count, dbg->buf_len - (size_t) *ppos);
  2026. if (copy_to_user(user_buf, dbg->buf + *ppos, len)) {
  2027. pr_err("failed to copy to user\n");
  2028. len = -EFAULT;
  2029. goto end;
  2030. }
  2031. *ppos += len; /* increase offset */
  2032. end:
  2033. mutex_unlock(&sde_dbg_base.mutex);
  2034. return len;
  2035. }
  2036. static const struct file_operations sde_off_fops = {
  2037. .open = sde_dbg_reg_base_open,
  2038. .release = sde_dbg_reg_base_release,
  2039. .read = sde_dbg_reg_base_offset_read,
  2040. .write = sde_dbg_reg_base_offset_write,
  2041. };
  2042. static const struct file_operations sde_reg_fops = {
  2043. .open = sde_dbg_reg_base_open,
  2044. .release = sde_dbg_reg_base_release,
  2045. .read = sde_dbg_reg_base_reg_read,
  2046. #ifdef CONFIG_DYNAMIC_DEBUG
  2047. .write = sde_dbg_reg_base_reg_write,
  2048. #endif
  2049. };
  2050. int sde_dbg_debugfs_register(struct device *dev)
  2051. {
  2052. static struct sde_dbg_base *dbg = &sde_dbg_base;
  2053. struct sde_dbg_reg_base *blk_base;
  2054. char debug_name[80] = "";
  2055. struct dentry *debugfs_root = NULL;
  2056. struct platform_device *pdev = to_platform_device(dev);
  2057. struct drm_device *ddev = platform_get_drvdata(pdev);
  2058. struct msm_drm_private *priv = NULL;
  2059. if (!ddev || !ddev->dev_private) {
  2060. pr_err("Invalid drm device node\n");
  2061. return -EINVAL;
  2062. }
  2063. priv = ddev->dev_private;
  2064. debugfs_root = debugfs_create_dir("debug", ddev->primary->debugfs_root);
  2065. if (IS_ERR_OR_NULL(debugfs_root)) {
  2066. pr_err("debugfs_root create_dir fail, error %ld\n", PTR_ERR(debugfs_root));
  2067. priv->debug_root = NULL;
  2068. return -EINVAL;
  2069. }
  2070. priv->debug_root = debugfs_root;
  2071. debugfs_create_file("dbg_ctrl", 0600, debugfs_root, NULL, &sde_dbg_ctrl_fops);
  2072. debugfs_create_file("dump", 0600, debugfs_root, NULL, &sde_evtlog_fops);
  2073. debugfs_create_file("recovery_reg", 0400, debugfs_root, NULL, &sde_recovery_reg_fops);
  2074. debugfs_create_u32("enable", 0600, debugfs_root, &(sde_dbg_base.evtlog->enable));
  2075. debugfs_create_u32("panic", 0600, debugfs_root, &sde_dbg_base.panic_on_err);
  2076. debugfs_create_u32("dump_mode", 0600, debugfs_root, &sde_dbg_base.dump_option);
  2077. debugfs_create_u64("reg_dump_blk_mask", 0600, debugfs_root, &sde_dbg_base.dump_blk_mask);
  2078. debugfs_create_u32("evtlog_dump", 0600, debugfs_root, &(sde_dbg_base.evtlog->dump_mode));
  2079. #ifndef CONFIG_DEV_COREDUMP
  2080. if (dbg->dbgbus_sde.entries)
  2081. debugfs_create_file("recovery_dbgbus", 0400, debugfs_root, NULL,
  2082. &sde_recovery_dbgbus_fops);
  2083. if (dbg->dbgbus_vbif_rt.entries)
  2084. debugfs_create_file("recovery_vbif_dbgbus", 0400, debugfs_root,
  2085. NULL, &sde_recovery_vbif_dbgbus_fops);
  2086. if (dbg->dbgbus_dsi.entries)
  2087. debugfs_create_file("recovery_dsi_dbgbus", 0400, debugfs_root,
  2088. NULL, &sde_recovery_dsi_dbgbus_fops);
  2089. if (dbg->dbgbus_rsc.entries)
  2090. debugfs_create_file("recovery_rsc_dbgbus", 0400, debugfs_root,
  2091. NULL, &sde_recovery_rsc_dbgbus_fops);
  2092. if (dbg->dbgbus_lutdma.entries)
  2093. debugfs_create_file("recovery_lutdma_dbgbus", 0400, debugfs_root,
  2094. NULL, &sde_recovery_lutdma_dbgbus_fops);
  2095. if (dbg->dbgbus_dp.entries)
  2096. debugfs_create_file("recovery_dp_dbgbus", 0400, debugfs_root,
  2097. NULL, &sde_recovery_dp_dbgbus_fops);
  2098. #endif
  2099. list_for_each_entry(blk_base, &dbg->reg_base_list, reg_base_head) {
  2100. snprintf(debug_name, sizeof(debug_name), "%s_off", blk_base->name);
  2101. debugfs_create_file(debug_name, 0600, debugfs_root, blk_base, &sde_off_fops);
  2102. snprintf(debug_name, sizeof(debug_name), "%s_reg", blk_base->name);
  2103. debugfs_create_file(debug_name, 0400, debugfs_root, blk_base, &sde_reg_fops);
  2104. }
  2105. return 0;
  2106. }
  2107. #else
  2108. int sde_dbg_debugfs_register(struct device *dev)
  2109. {
  2110. return 0;
  2111. }
  2112. #endif /* CONFIG_DEBUG_FS */
  2113. static void _sde_dbg_debugfs_destroy(void)
  2114. {
  2115. }
  2116. void sde_dbg_init_dbg_buses(u32 hw_rev)
  2117. {
  2118. static struct sde_dbg_base *dbg = &sde_dbg_base;
  2119. memset(&dbg->dbgbus_sde, 0, sizeof(dbg->dbgbus_sde));
  2120. memset(&dbg->dbgbus_vbif_rt, 0, sizeof(dbg->dbgbus_vbif_rt));
  2121. memset(&dbg->dbgbus_dsi, 0, sizeof(dbg->dbgbus_dsi));
  2122. memset(&dbg->dbgbus_rsc, 0, sizeof(dbg->dbgbus_rsc));
  2123. memset(&dbg->dbgbus_dp, 0, sizeof(dbg->dbgbus_dp));
  2124. dbg->dbgbus_sde.entries = dbg_bus_sde;
  2125. dbg->dbgbus_sde.cmn.entries_size = ARRAY_SIZE(dbg_bus_sde);
  2126. dbg->dbgbus_sde.limited_entries = dbg_bus_sde_limited;
  2127. dbg->dbgbus_sde.cmn.limited_entries_size = ARRAY_SIZE(dbg_bus_sde_limited);
  2128. dbg->dbgbus_sde.cmn.name = DBGBUS_NAME_SDE;
  2129. dbg->dbgbus_sde.cmn.blk_id = SDE_DBG_SDE_DBGBUS;
  2130. dbg->dbgbus_sde.read_tp = _sde_dbg_sde_read_test_point;
  2131. dbg->dbgbus_sde.clear_tp = _sde_dbg_sde_clear_test_point;
  2132. dbg->dbgbus_vbif_rt.entries = vbif_dbg_bus;
  2133. dbg->dbgbus_vbif_rt.cmn.entries_size = ARRAY_SIZE(vbif_dbg_bus);
  2134. dbg->dbgbus_vbif_rt.limited_entries = vbif_dbg_bus_limited;
  2135. dbg->dbgbus_vbif_rt.cmn.limited_entries_size = ARRAY_SIZE(vbif_dbg_bus_limited);
  2136. dbg->dbgbus_vbif_rt.cmn.name = DBGBUS_NAME_VBIF_RT;
  2137. dbg->dbgbus_vbif_rt.cmn.blk_id = SDE_DBG_VBIF_RT_DBGBUS;
  2138. dbg->dbgbus_vbif_rt.read_tp = _sde_dbg_vbif_read_test_point;
  2139. dbg->dbgbus_vbif_rt.clear_tp = _sde_dbg_vbif_clear_test_point;
  2140. dbg->dbgbus_vbif_rt.disable_block = _sde_dbg_vbif_disable_block;
  2141. dbg->dbgbus_dsi.entries = dsi_dbg_bus;
  2142. dbg->dbgbus_dsi.cmn.entries_size = ARRAY_SIZE(dsi_dbg_bus);
  2143. dbg->dbgbus_dsi.cmn.name = DBGBUS_NAME_DSI;
  2144. dbg->dbgbus_dsi.cmn.blk_id = SDE_DBG_DSI_DBGBUS;
  2145. dbg->dbgbus_dsi.read_tp = _sde_dbg_dsi_read_test_point;
  2146. dbg->dbgbus_dsi.clear_tp = _sde_dbg_cmn_clear_test_point;
  2147. dbg->dbgbus_rsc.entries = rsc_dbg_bus;
  2148. dbg->dbgbus_rsc.cmn.entries_size = ARRAY_SIZE(rsc_dbg_bus);
  2149. dbg->dbgbus_rsc.cmn.name = DBGBUS_NAME_RSC;
  2150. dbg->dbgbus_rsc.cmn.blk_id = SDE_DBG_RSC_DBGBUS;
  2151. dbg->dbgbus_rsc.read_tp = _sde_dbg_rsc_read_test_point;
  2152. dbg->dbgbus_rsc.clear_tp = _sde_dbg_cmn_clear_test_point;
  2153. dbg->dbgbus_dp.entries = dp_dbg_bus;
  2154. dbg->dbgbus_dp.cmn.entries_size = ARRAY_SIZE(dp_dbg_bus);
  2155. dbg->dbgbus_dp.cmn.name = DBGBUS_NAME_DP;
  2156. dbg->dbgbus_dp.cmn.blk_id = SDE_DBG_DP_DBGBUS;
  2157. dbg->dbgbus_dp.read_tp = _sde_dbg_dp_read_test_point;
  2158. dbg->dbgbus_dp.clear_tp = _sde_dbg_cmn_clear_test_point;
  2159. dbg->dbgbus_lutdma.entries = dbg_bus_lutdma;
  2160. dbg->dbgbus_lutdma.cmn.name = DBGBUS_NAME_LUTDMA;
  2161. dbg->dbgbus_lutdma.cmn.blk_id = SDE_DBG_LUTDMA_DBGBUS;
  2162. dbg->dbgbus_lutdma.cmn.entries_size = ARRAY_SIZE(dbg_bus_lutdma);
  2163. dbg->dbgbus_lutdma.read_tp = _sde_dbg_lutdma_read_test_point;
  2164. dbg->dbgbus_lutdma.clear_tp = _sde_dbg_cmn_clear_test_point;
  2165. }
  2166. int sde_dbg_init(struct device *dev)
  2167. {
  2168. if (!dev) {
  2169. pr_err("invalid params\n");
  2170. return -EINVAL;
  2171. }
  2172. mutex_init(&sde_dbg_base.mutex);
  2173. INIT_LIST_HEAD(&sde_dbg_base.reg_base_list);
  2174. sde_dbg_base.dev = dev;
  2175. sde_dbg_base.evtlog = sde_evtlog_init();
  2176. if (IS_ERR_OR_NULL(sde_dbg_base.evtlog))
  2177. return PTR_ERR(sde_dbg_base.evtlog);
  2178. sde_dbg_base_evtlog = sde_dbg_base.evtlog;
  2179. sde_dbg_base.reglog = sde_reglog_init();
  2180. if (IS_ERR_OR_NULL(sde_dbg_base.reglog))
  2181. return PTR_ERR(sde_dbg_base.reglog);
  2182. sde_dbg_base_reglog = sde_dbg_base.reglog;
  2183. INIT_WORK(&sde_dbg_base.dump_work, _sde_dump_work);
  2184. sde_dbg_base.work_panic = false;
  2185. sde_dbg_base.coredump_reading = false;
  2186. sde_dbg_base.panic_on_err = DEFAULT_PANIC;
  2187. sde_dbg_base.dump_option = SDE_DBG_DEFAULT_DUMP_MODE;
  2188. sde_dbg_base.dump_blk_mask = SDE_DBG_BUILT_IN_ALL;
  2189. memset(&sde_dbg_base.regbuf, 0, sizeof(sde_dbg_base.regbuf));
  2190. sde_register_md_panic_notifer();
  2191. pr_info("evtlog_status: enable:%d, panic:%d, dump:%d\n",
  2192. sde_dbg_base.evtlog->enable, sde_dbg_base.panic_on_err,
  2193. sde_dbg_base.dump_option);
  2194. return 0;
  2195. }
  2196. static void sde_dbg_reg_base_destroy(void)
  2197. {
  2198. struct sde_dbg_reg_range *range_node, *range_tmp;
  2199. struct sde_dbg_reg_base *blk_base, *blk_tmp;
  2200. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  2201. if (!dbg_base)
  2202. return;
  2203. list_for_each_entry_safe(blk_base, blk_tmp, &dbg_base->reg_base_list,
  2204. reg_base_head) {
  2205. list_for_each_entry_safe(range_node, range_tmp,
  2206. &blk_base->sub_range_list, head) {
  2207. list_del(&range_node->head);
  2208. kfree(range_node);
  2209. }
  2210. list_del(&blk_base->reg_base_head);
  2211. kfree(blk_base);
  2212. }
  2213. vfree(dbg_base->reg_dump_base);
  2214. }
  2215. static void sde_dbg_dsi_ctrl_destroy(void)
  2216. {
  2217. struct sde_dbg_dsi_ctrl_list_entry *entry, *tmp;
  2218. mutex_lock(&sde_dbg_dsi_mutex);
  2219. list_for_each_entry_safe(entry, tmp, &sde_dbg_dsi_list, list) {
  2220. list_del(&entry->list);
  2221. kfree(entry);
  2222. }
  2223. mutex_unlock(&sde_dbg_dsi_mutex);
  2224. }
  2225. static void sde_dbg_buses_destroy(void)
  2226. {
  2227. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  2228. vfree(dbg_base->dbgbus_sde.cmn.dumped_content);
  2229. vfree(dbg_base->dbgbus_vbif_rt.cmn.dumped_content);
  2230. vfree(dbg_base->dbgbus_dsi.cmn.dumped_content);
  2231. vfree(dbg_base->dbgbus_lutdma.cmn.dumped_content);
  2232. vfree(dbg_base->dbgbus_rsc.cmn.dumped_content);
  2233. vfree(dbg_base->dbgbus_dp.cmn.dumped_content);
  2234. }
  2235. /**
  2236. * sde_dbg_destroy - destroy sde debug facilities
  2237. */
  2238. void sde_dbg_destroy(void)
  2239. {
  2240. vfree(sde_dbg_base.regbuf.buf);
  2241. memset(&sde_dbg_base.regbuf, 0, sizeof(sde_dbg_base.regbuf));
  2242. _sde_dbg_debugfs_destroy();
  2243. sde_dbg_base_evtlog = NULL;
  2244. sde_evtlog_destroy(sde_dbg_base.evtlog);
  2245. sde_dbg_base.evtlog = NULL;
  2246. sde_reglog_destroy(sde_dbg_base.reglog);
  2247. sde_dbg_base.reglog = NULL;
  2248. sde_dbg_reg_base_destroy();
  2249. sde_dbg_dsi_ctrl_destroy();
  2250. sde_dbg_buses_destroy();
  2251. mutex_destroy(&sde_dbg_base.mutex);
  2252. }
  2253. int sde_dbg_dsi_ctrl_register(void __iomem *base, const char *name)
  2254. {
  2255. struct sde_dbg_dsi_ctrl_list_entry *entry;
  2256. entry = kzalloc(sizeof(*entry), GFP_KERNEL);
  2257. if (!entry)
  2258. return -ENOMEM;
  2259. entry->name = name;
  2260. entry->base = base;
  2261. mutex_lock(&sde_dbg_dsi_mutex);
  2262. list_add_tail(&entry->list, &sde_dbg_dsi_list);
  2263. mutex_unlock(&sde_dbg_dsi_mutex);
  2264. pr_debug("registered DSI CTRL %s for debugbus support\n", entry->name);
  2265. return 0;
  2266. }
  2267. int sde_dbg_reg_register_base(const char *name, void __iomem *base, size_t max_offset,
  2268. unsigned long phys_addr, u64 blk_id)
  2269. {
  2270. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  2271. struct sde_dbg_reg_base *reg_base;
  2272. if (!name || !strlen(name)) {
  2273. pr_err("no debug name provided\n");
  2274. return -EINVAL;
  2275. }
  2276. reg_base = kzalloc(sizeof(*reg_base), GFP_KERNEL);
  2277. if (!reg_base)
  2278. return -ENOMEM;
  2279. strlcpy(reg_base->name, name, sizeof(reg_base->name));
  2280. reg_base->base = base;
  2281. reg_base->phys_addr = phys_addr;
  2282. reg_base->max_offset = max_offset;
  2283. reg_base->off = 0;
  2284. reg_base->cnt = DEFAULT_BASE_REG_CNT;
  2285. reg_base->reg_dump = NULL;
  2286. reg_base->blk_id = blk_id;
  2287. /* Initialize list to make sure check for null list will be valid */
  2288. INIT_LIST_HEAD(&reg_base->sub_range_list);
  2289. pr_debug("%s base: %pK max_offset 0x%zX\n", reg_base->name,
  2290. reg_base->base, reg_base->max_offset);
  2291. list_add(&reg_base->reg_base_head, &dbg_base->reg_base_list);
  2292. return 0;
  2293. }
  2294. int sde_dbg_reg_register_cb(const char *name, void (*cb)(void *), void *ptr)
  2295. {
  2296. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  2297. struct sde_dbg_reg_base *reg_base;
  2298. if (!name || !strlen(name)) {
  2299. pr_err("no debug name provided\n");
  2300. return -EINVAL;
  2301. }
  2302. reg_base = kzalloc(sizeof(*reg_base), GFP_KERNEL);
  2303. if (!reg_base)
  2304. return -ENOMEM;
  2305. strlcpy(reg_base->name, name, sizeof(reg_base->name));
  2306. reg_base->base = NULL;
  2307. reg_base->max_offset = 0;
  2308. reg_base->off = 0;
  2309. reg_base->cnt = DEFAULT_BASE_REG_CNT;
  2310. reg_base->reg_dump = NULL;
  2311. reg_base->cb = cb;
  2312. reg_base->cb_ptr = ptr;
  2313. /* Initialize list to make sure check for null list will be valid */
  2314. INIT_LIST_HEAD(&reg_base->sub_range_list);
  2315. pr_debug("%s cb: %pK cb_ptr: %pK\n", reg_base->name,
  2316. reg_base->cb, reg_base->cb_ptr);
  2317. list_add(&reg_base->reg_base_head, &dbg_base->reg_base_list);
  2318. return 0;
  2319. }
  2320. void sde_dbg_reg_unregister_cb(const char *name, void (*cb)(void *), void *ptr)
  2321. {
  2322. struct sde_dbg_base *dbg_base = &sde_dbg_base;
  2323. struct sde_dbg_reg_base *reg_base;
  2324. if (!dbg_base)
  2325. return;
  2326. list_for_each_entry(reg_base, &dbg_base->reg_base_list, reg_base_head) {
  2327. if (strlen(reg_base->name) &&
  2328. !strcmp(reg_base->name, name)) {
  2329. pr_debug("%s cb: %pK cb_ptr: %pK\n", reg_base->name,
  2330. reg_base->cb, reg_base->cb_ptr);
  2331. list_del(&reg_base->reg_base_head);
  2332. kfree(reg_base);
  2333. break;
  2334. }
  2335. }
  2336. }
  2337. void sde_dbg_reg_register_dump_range(const char *base_name,
  2338. const char *range_name, u32 offset_start, u32 offset_end,
  2339. uint32_t xin_id)
  2340. {
  2341. struct sde_dbg_reg_base *reg_base;
  2342. struct sde_dbg_reg_range *range;
  2343. reg_base = _sde_dump_get_blk_addr(base_name);
  2344. if (!reg_base) {
  2345. pr_err("error: for range %s unable to locate base %s\n",
  2346. range_name, base_name);
  2347. return;
  2348. }
  2349. if (!range_name || strlen(range_name) == 0) {
  2350. pr_err("%pS: bad range name, base_name %s, offset_start 0x%X, end 0x%X\n",
  2351. __builtin_return_address(0), base_name,
  2352. offset_start, offset_end);
  2353. return;
  2354. }
  2355. if (offset_start > offset_end) {
  2356. pr_err("%pS: bad range, base_name %s, range_name %s, offset_start 0x%X, end 0x%X\n",
  2357. __builtin_return_address(0), base_name,
  2358. range_name, offset_start, offset_end);
  2359. return;
  2360. }
  2361. range = kzalloc(sizeof(*range), GFP_KERNEL);
  2362. if (!range)
  2363. return;
  2364. strlcpy(range->range_name, range_name, sizeof(range->range_name));
  2365. range->offset.start = offset_start;
  2366. range->offset.end = offset_end;
  2367. range->xin_id = xin_id;
  2368. list_add_tail(&range->head, &reg_base->sub_range_list);
  2369. pr_debug("base %s, range %s, start 0x%X, end 0x%X\n",
  2370. base_name, range->range_name,
  2371. range->offset.start, range->offset.end);
  2372. }
  2373. void sde_dbg_set_hw_ownership_status(bool enable)
  2374. {
  2375. mutex_lock(&sde_dbg_base.mutex);
  2376. sde_dbg_base.hw_ownership = enable;
  2377. mutex_unlock(&sde_dbg_base.mutex);
  2378. }
  2379. void sde_dbg_set_sde_top_offset(u32 blk_off)
  2380. {
  2381. sde_dbg_base.dbgbus_sde.top_blk_off = blk_off;
  2382. }