log.c 14 KB

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  1. // Copyright 2015-2016 Espressif Systems (Shanghai) PTE LTD
  2. //
  3. // Licensed under the Apache License, Version 2.0 (the "License");
  4. // you may not use this file except in compliance with the License.
  5. // You may obtain a copy of the License at
  6. // http://www.apache.org/licenses/LICENSE-2.0
  7. //
  8. // Unless required by applicable law or agreed to in writing, software
  9. // distributed under the License is distributed on an "AS IS" BASIS,
  10. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  11. // See the License for the specific language governing permissions and
  12. // limitations under the License.
  13. /*
  14. * Log library implementation notes.
  15. *
  16. * Log library stores all tags provided to esp_log_level_set as a linked
  17. * list. See uncached_tag_entry_t structure.
  18. *
  19. * To avoid looking up log level for given tag each time message is
  20. * printed, this library caches pointers to tags. Because the suggested
  21. * way of creating tags uses one 'TAG' constant per file, this caching
  22. * should be effective. Cache is a binary min-heap of cached_tag_entry_t
  23. * items, ordering is done on 'generation' member. In this context,
  24. * generation is an integer which is incremented each time an operation
  25. * with cache is performed. When cache is full, new item is inserted in
  26. * place of an oldest item (that is, with smallest 'generation' value).
  27. * After that, bubble-down operation is performed to fix ordering in the
  28. * min-heap.
  29. *
  30. * The potential problem with wrap-around of cache generation counter is
  31. * ignored for now. This will happen if someone happens to output more
  32. * than 4 billion log entries, at which point wrap-around will not be
  33. * the biggest problem.
  34. *
  35. */
  36. #ifndef BOOTLOADER_BUILD
  37. #include <freertos/FreeRTOS.h>
  38. #include <freertos/FreeRTOSConfig.h>
  39. #include <freertos/task.h>
  40. #include <freertos/semphr.h>
  41. #endif
  42. #include "esp_attr.h"
  43. #include "xtensa/hal.h"
  44. #include "soc/soc.h"
  45. #include <stdbool.h>
  46. #include <stdarg.h>
  47. #include <string.h>
  48. #include <stdlib.h>
  49. #include <stdio.h>
  50. #include <assert.h>
  51. #include <ctype.h>
  52. #include "esp_log.h"
  53. #include "rom/queue.h"
  54. #include "soc/soc_memory_layout.h"
  55. //print number of bytes per line for esp_log_buffer_char and esp_log_buffer_hex
  56. #define BYTES_PER_LINE 16
  57. #ifndef BOOTLOADER_BUILD
  58. // Number of tags to be cached. Must be 2**n - 1, n >= 2.
  59. #define TAG_CACHE_SIZE 31
  60. // Maximum time to wait for the mutex in a logging statement.
  61. #define MAX_MUTEX_WAIT_MS 10
  62. #define MAX_MUTEX_WAIT_TICKS ((MAX_MUTEX_WAIT_MS + portTICK_PERIOD_MS - 1) / portTICK_PERIOD_MS)
  63. // Uncomment this to enable consistency checks and cache statistics in this file.
  64. // #define LOG_BUILTIN_CHECKS
  65. typedef struct {
  66. const char* tag;
  67. uint32_t level : 3;
  68. uint32_t generation : 29;
  69. } cached_tag_entry_t;
  70. typedef struct uncached_tag_entry_{
  71. SLIST_ENTRY(uncached_tag_entry_) entries;
  72. uint8_t level; // esp_log_level_t as uint8_t
  73. char tag[0]; // beginning of a zero-terminated string
  74. } uncached_tag_entry_t;
  75. static esp_log_level_t s_log_default_level = ESP_LOG_VERBOSE;
  76. static SLIST_HEAD(log_tags_head , uncached_tag_entry_) s_log_tags = SLIST_HEAD_INITIALIZER(s_log_tags);
  77. static cached_tag_entry_t s_log_cache[TAG_CACHE_SIZE];
  78. static uint32_t s_log_cache_max_generation = 0;
  79. static uint32_t s_log_cache_entry_count = 0;
  80. static vprintf_like_t s_log_print_func = &vprintf;
  81. static SemaphoreHandle_t s_log_mutex = NULL;
  82. #ifdef LOG_BUILTIN_CHECKS
  83. static uint32_t s_log_cache_misses = 0;
  84. #endif
  85. static inline bool get_cached_log_level(const char* tag, esp_log_level_t* level);
  86. static inline bool get_uncached_log_level(const char* tag, esp_log_level_t* level);
  87. static inline void add_to_cache(const char* tag, esp_log_level_t level);
  88. static void heap_bubble_down(int index);
  89. static inline void heap_swap(int i, int j);
  90. static inline bool should_output(esp_log_level_t level_for_message, esp_log_level_t level_for_tag);
  91. static inline void clear_log_level_list();
  92. void esp_log_set_vprintf(vprintf_like_t func)
  93. {
  94. s_log_print_func = func;
  95. }
  96. void esp_log_level_set(const char* tag, esp_log_level_t level)
  97. {
  98. if (!s_log_mutex) {
  99. s_log_mutex = xSemaphoreCreateMutex();
  100. }
  101. xSemaphoreTake(s_log_mutex, portMAX_DELAY);
  102. // for wildcard tag, remove all linked list items and clear the cache
  103. if (strcmp(tag, "*") == 0) {
  104. s_log_default_level = level;
  105. clear_log_level_list();
  106. xSemaphoreGive(s_log_mutex);
  107. return;
  108. }
  109. //searching exist tag
  110. uncached_tag_entry_t *it = NULL;
  111. SLIST_FOREACH( it, &s_log_tags, entries ) {
  112. if ( strcmp(it->tag, tag)==0 ) {
  113. //one tag in the linked list match, update the level
  114. it->level = level;
  115. //quit with it != NULL
  116. break;
  117. }
  118. }
  119. //no exist tag, append new one
  120. if ( it == NULL ) {
  121. // allocate new linked list entry and append it to the head of the list
  122. size_t entry_size = offsetof(uncached_tag_entry_t, tag) + strlen(tag) + 1;
  123. uncached_tag_entry_t* new_entry = (uncached_tag_entry_t*) malloc(entry_size);
  124. if (!new_entry) {
  125. xSemaphoreGive(s_log_mutex);
  126. return;
  127. }
  128. new_entry->level = (uint8_t) level;
  129. strcpy(new_entry->tag, tag);
  130. SLIST_INSERT_HEAD( &s_log_tags, new_entry, entries );
  131. }
  132. //search in the cache and update it if exist
  133. for (int i = 0; i < s_log_cache_entry_count; ++i) {
  134. #ifdef LOG_BUILTIN_CHECKS
  135. assert(i == 0 || s_log_cache[(i - 1) / 2].generation < s_log_cache[i].generation);
  136. #endif
  137. if (s_log_cache[i].tag == tag) {
  138. s_log_cache[i].level = level;
  139. break;
  140. }
  141. }
  142. xSemaphoreGive(s_log_mutex);
  143. }
  144. void clear_log_level_list()
  145. {
  146. while( !SLIST_EMPTY(&s_log_tags)) {
  147. SLIST_REMOVE_HEAD(&s_log_tags, entries );
  148. }
  149. s_log_cache_entry_count = 0;
  150. s_log_cache_max_generation = 0;
  151. #ifdef LOG_BUILTIN_CHECKS
  152. s_log_cache_misses = 0;
  153. #endif
  154. }
  155. void IRAM_ATTR esp_log_write(esp_log_level_t level,
  156. const char* tag,
  157. const char* format, ...)
  158. {
  159. if (!s_log_mutex) {
  160. s_log_mutex = xSemaphoreCreateMutex();
  161. }
  162. if (xSemaphoreTake(s_log_mutex, MAX_MUTEX_WAIT_TICKS) == pdFALSE) {
  163. return;
  164. }
  165. esp_log_level_t level_for_tag;
  166. // Look for the tag in cache first, then in the linked list of all tags
  167. if (!get_cached_log_level(tag, &level_for_tag)) {
  168. if (!get_uncached_log_level(tag, &level_for_tag)) {
  169. level_for_tag = s_log_default_level;
  170. }
  171. add_to_cache(tag, level_for_tag);
  172. #ifdef LOG_BUILTIN_CHECKS
  173. ++s_log_cache_misses;
  174. #endif
  175. }
  176. xSemaphoreGive(s_log_mutex);
  177. if (!should_output(level, level_for_tag)) {
  178. return;
  179. }
  180. va_list list;
  181. va_start(list, format);
  182. (*s_log_print_func)(format, list);
  183. va_end(list);
  184. }
  185. static inline bool get_cached_log_level(const char* tag, esp_log_level_t* level)
  186. {
  187. // Look for `tag` in cache
  188. int i;
  189. for (i = 0; i < s_log_cache_entry_count; ++i) {
  190. #ifdef LOG_BUILTIN_CHECKS
  191. assert(i == 0 || s_log_cache[(i - 1) / 2].generation < s_log_cache[i].generation);
  192. #endif
  193. if (s_log_cache[i].tag == tag) {
  194. break;
  195. }
  196. }
  197. if (i == s_log_cache_entry_count) { // Not found in cache
  198. return false;
  199. }
  200. // Return level from cache
  201. *level = (esp_log_level_t) s_log_cache[i].level;
  202. // If cache has been filled, start taking ordering into account
  203. // (other options are: dynamically resize cache, add "dummy" entries
  204. // to the cache; this option was chosen because code is much simpler,
  205. // and the unfair behavior of cache will show it self at most once, when
  206. // it has just been filled)
  207. if (s_log_cache_entry_count == TAG_CACHE_SIZE) {
  208. // Update item generation
  209. s_log_cache[i].generation = s_log_cache_max_generation++;
  210. // Restore heap ordering
  211. heap_bubble_down(i);
  212. }
  213. return true;
  214. }
  215. static inline void add_to_cache(const char* tag, esp_log_level_t level)
  216. {
  217. uint32_t generation = s_log_cache_max_generation++;
  218. // First consider the case when cache is not filled yet.
  219. // In this case, just add new entry at the end.
  220. // This happens to satisfy binary min-heap ordering.
  221. if (s_log_cache_entry_count < TAG_CACHE_SIZE) {
  222. s_log_cache[s_log_cache_entry_count] = (cached_tag_entry_t) {
  223. .generation = generation,
  224. .level = level,
  225. .tag = tag
  226. };
  227. ++s_log_cache_entry_count;
  228. return;
  229. }
  230. // Cache is full, so we replace the oldest entry (which is at index 0
  231. // because this is a min-heap) with the new one, and do bubble-down
  232. // operation to restore min-heap ordering.
  233. s_log_cache[0] = (cached_tag_entry_t) {
  234. .tag = tag,
  235. .level = level,
  236. .generation = generation
  237. };
  238. heap_bubble_down(0);
  239. }
  240. static inline bool get_uncached_log_level(const char* tag, esp_log_level_t* level)
  241. {
  242. // Walk the linked list of all tags and see if given tag is present in the list.
  243. // This is slow because tags are compared as strings.
  244. uncached_tag_entry_t *it;
  245. SLIST_FOREACH( it, &s_log_tags, entries ) {
  246. if (strcmp(tag, it->tag) == 0) {
  247. *level = it->level;
  248. return true;
  249. }
  250. }
  251. return false;
  252. }
  253. static inline bool should_output(esp_log_level_t level_for_message, esp_log_level_t level_for_tag)
  254. {
  255. return level_for_message <= level_for_tag;
  256. }
  257. static void heap_bubble_down(int index)
  258. {
  259. while (index < TAG_CACHE_SIZE / 2) {
  260. int left_index = index * 2 + 1;
  261. int right_index = left_index + 1;
  262. int next = (s_log_cache[left_index].generation < s_log_cache[right_index].generation) ? left_index : right_index;
  263. heap_swap(index, next);
  264. index = next;
  265. }
  266. }
  267. static inline void heap_swap(int i, int j)
  268. {
  269. cached_tag_entry_t tmp = s_log_cache[i];
  270. s_log_cache[i] = s_log_cache[j];
  271. s_log_cache[j] = tmp;
  272. }
  273. #endif //BOOTLOADER_BUILD
  274. #ifndef BOOTLOADER_BUILD
  275. #define ATTR IRAM_ATTR
  276. #else
  277. #define ATTR
  278. #endif // BOOTLOADER_BUILD
  279. //the variable defined in ROM is the cpu frequency in MHz.
  280. //as a workaround before the interface for this variable
  281. extern uint32_t g_ticks_per_us_pro;
  282. uint32_t ATTR esp_log_early_timestamp()
  283. {
  284. return xthal_get_ccount() / (g_ticks_per_us_pro * 1000);
  285. }
  286. #ifndef BOOTLOADER_BUILD
  287. uint32_t IRAM_ATTR esp_log_timestamp()
  288. {
  289. if (xTaskGetSchedulerState() == taskSCHEDULER_NOT_STARTED) {
  290. return esp_log_early_timestamp();
  291. }
  292. static uint32_t base = 0;
  293. if (base == 0 && xPortGetCoreID() == 0) {
  294. base = esp_log_early_timestamp();
  295. }
  296. return base + xTaskGetTickCount() * (1000 / configTICK_RATE_HZ);
  297. }
  298. #else
  299. uint32_t esp_log_timestamp() __attribute__((alias("esp_log_early_timestamp")));
  300. #endif //BOOTLOADER_BUILD
  301. void esp_log_buffer_hex_internal(const char *tag, const void *buffer, uint16_t buff_len,
  302. esp_log_level_t log_level)
  303. {
  304. if ( buff_len == 0 ) return;
  305. char temp_buffer[BYTES_PER_LINE+3]; //for not-byte-accessible memory
  306. char hex_buffer[3*BYTES_PER_LINE+1];
  307. const char *ptr_line;
  308. int bytes_cur_line;
  309. do {
  310. if ( buff_len > BYTES_PER_LINE ) {
  311. bytes_cur_line = BYTES_PER_LINE;
  312. } else {
  313. bytes_cur_line = buff_len;
  314. }
  315. if ( !esp_ptr_byte_accessible(buffer) ) {
  316. //use memcpy to get around alignment issue
  317. memcpy( temp_buffer, buffer, (bytes_cur_line+3)/4*4 );
  318. ptr_line = temp_buffer;
  319. } else {
  320. ptr_line = buffer;
  321. }
  322. for( int i = 0; i < bytes_cur_line; i ++ ) {
  323. sprintf( hex_buffer + 3*i, "%02x ", ptr_line[i] );
  324. }
  325. ESP_LOG_LEVEL( log_level, tag, "%s", hex_buffer );
  326. buffer += bytes_cur_line;
  327. buff_len -= bytes_cur_line;
  328. } while( buff_len );
  329. }
  330. void esp_log_buffer_char_internal(const char *tag, const void *buffer, uint16_t buff_len,
  331. esp_log_level_t log_level)
  332. {
  333. if ( buff_len == 0 ) return;
  334. char temp_buffer[BYTES_PER_LINE+3]; //for not-byte-accessible memory
  335. char char_buffer[BYTES_PER_LINE+1];
  336. const char *ptr_line;
  337. int bytes_cur_line;
  338. do {
  339. if ( buff_len > BYTES_PER_LINE ) {
  340. bytes_cur_line = BYTES_PER_LINE;
  341. } else {
  342. bytes_cur_line = buff_len;
  343. }
  344. if ( !esp_ptr_byte_accessible(buffer) ) {
  345. //use memcpy to get around alignment issue
  346. memcpy( temp_buffer, buffer, (bytes_cur_line+3)/4*4 );
  347. ptr_line = temp_buffer;
  348. } else {
  349. ptr_line = buffer;
  350. }
  351. for( int i = 0; i < bytes_cur_line; i ++ ) {
  352. sprintf( char_buffer + i, "%c", ptr_line[i] );
  353. }
  354. ESP_LOG_LEVEL( log_level, tag, "%s", char_buffer );
  355. buffer += bytes_cur_line;
  356. buff_len -= bytes_cur_line;
  357. } while( buff_len );
  358. }
  359. void esp_log_buffer_hexdump_internal( const char *tag, const void *buffer, uint16_t buff_len, esp_log_level_t log_level)
  360. {
  361. if ( buff_len == 0 ) return;
  362. char temp_buffer[BYTES_PER_LINE+3]; //for not-byte-accessible memory
  363. const char *ptr_line;
  364. //format: field[length]
  365. // ADDR[10]+" "+DATA_HEX[8*3]+" "+DATA_HEX[8*3]+" |"+DATA_CHAR[8]+"|"
  366. char hd_buffer[10+2+BYTES_PER_LINE*3+3+BYTES_PER_LINE+1+1];
  367. char *ptr_hd;
  368. int bytes_cur_line;
  369. do {
  370. if ( buff_len > BYTES_PER_LINE ) {
  371. bytes_cur_line = BYTES_PER_LINE;
  372. } else {
  373. bytes_cur_line = buff_len;
  374. }
  375. if ( !esp_ptr_byte_accessible(buffer) ) {
  376. //use memcpy to get around alignment issue
  377. memcpy( temp_buffer, buffer, (bytes_cur_line+3)/4*4 );
  378. ptr_line = temp_buffer;
  379. } else {
  380. ptr_line = buffer;
  381. }
  382. ptr_hd = hd_buffer;
  383. ptr_hd += sprintf( ptr_hd, "%p ", buffer );
  384. for( int i = 0; i < BYTES_PER_LINE; i ++ ) {
  385. if ( (i&7)==0 ) {
  386. ptr_hd += sprintf( ptr_hd, " " );
  387. }
  388. if ( i < bytes_cur_line ) {
  389. ptr_hd += sprintf( ptr_hd, " %02x", ptr_line[i] );
  390. } else {
  391. ptr_hd += sprintf( ptr_hd, " " );
  392. }
  393. }
  394. ptr_hd += sprintf( ptr_hd, " |" );
  395. for( int i = 0; i < bytes_cur_line; i ++ ) {
  396. if ( isprint((int)ptr_line[i]) ) {
  397. ptr_hd += sprintf( ptr_hd, "%c", ptr_line[i] );
  398. } else {
  399. ptr_hd += sprintf( ptr_hd, "." );
  400. }
  401. }
  402. ptr_hd += sprintf( ptr_hd, "|" );
  403. ESP_LOG_LEVEL( log_level, tag, "%s", hd_buffer );
  404. buffer += bytes_cur_line;
  405. buff_len -= bytes_cur_line;
  406. } while( buff_len );
  407. }