proc_stat.c 43 KB

1234567891011121314151617181920212223242526272829303132333435363738394041424344454647484950515253545556575859606162636465666768697071727374757677787980818283848586878889909192939495969798991001011021031041051061071081091101111121131141151161171181191201211221231241251261271281291301311321331341351361371381391401411421431441451461471481491501511521531541551561571581591601611621631641651661671681691701711721731741751761771781791801811821831841851861871881891901911921931941951961971981992002012022032042052062072082092102112122132142152162172182192202212222232242252262272282292302312322332342352362372382392402412422432442452462472482492502512522532542552562572582592602612622632642652662672682692702712722732742752762772782792802812822832842852862872882892902912922932942952962972982993003013023033043053063073083093103113123133143153163173183193203213223233243253263273283293303313323333343353363373383393403413423433443453463473483493503513523533543553563573583593603613623633643653663673683693703713723733743753763773783793803813823833843853863873883893903913923933943953963973983994004014024034044054064074084094104114124134144154164174184194204214224234244254264274284294304314324334344354364374384394404414424434444454464474484494504514524534544554564574584594604614624634644654664674684694704714724734744754764774784794804814824834844854864874884894904914924934944954964974984995005015025035045055065075085095105115125135145155165175185195205215225235245255265275285295305315325335345355365375385395405415425435445455465475485495505515525535545555565575585595605615625635645655665675685695705715725735745755765775785795805815825835845855865875885895905915925935945955965975985996006016026036046056066076086096106116126136146156166176186196206216226236246256266276286296306316326336346356366376386396406416426436446456466476486496506516526536546556566576586596606616626636646656666676686696706716726736746756766776786796806816826836846856866876886896906916926936946956966976986997007017027037047057067077087097107117127137147157167177187197207217227237247257267277287297307317327337347357367377387397407417427437447457467477487497507517527537547557567577587597607617627637647657667677687697707717727737747757767777787797807817827837847857867877887897907917927937947957967977987998008018028038048058068078088098108118128138148158168178188198208218228238248258268278288298308318328338348358368378388398408418428438448458468478488498508518528538548558568578588598608618628638648658668678688698708718728738748758768778788798808818828838848858868878888898908918928938948958968978988999009019029039049059069079089099109119129139149159169179189199209219229239249259269279289299309319329339349359369379389399409419429439449459469479489499509519529539549559569579589599609619629639649659669679689699709719729739749759769779789799809819829839849859869879889899909919929939949959969979989991000100110021003100410051006100710081009101010111012101310141015101610171018101910201021102210231024102510261027102810291030103110321033103410351036103710381039
  1. // SPDX-License-Identifier: GPL-3.0-or-later
  2. #include "plugin_proc.h"
  3. #define PLUGIN_PROC_MODULE_STAT_NAME "/proc/stat"
  4. struct per_core_single_number_file {
  5. unsigned char found:1;
  6. const char *filename;
  7. int fd;
  8. collected_number value;
  9. RRDDIM *rd;
  10. };
  11. struct last_ticks {
  12. collected_number frequency;
  13. collected_number ticks;
  14. };
  15. // This is an extension of struct per_core_single_number_file at CPU_FREQ_INDEX.
  16. // Either scaling_cur_freq or time_in_state file is used at one time.
  17. struct per_core_time_in_state_file {
  18. const char *filename;
  19. procfile *ff;
  20. size_t last_ticks_len;
  21. struct last_ticks *last_ticks;
  22. };
  23. #define CORE_THROTTLE_COUNT_INDEX 0
  24. #define PACKAGE_THROTTLE_COUNT_INDEX 1
  25. #define CPU_FREQ_INDEX 2
  26. #define PER_CORE_FILES 3
  27. struct cpu_chart {
  28. const char *id;
  29. RRDSET *st;
  30. RRDDIM *rd_user;
  31. RRDDIM *rd_nice;
  32. RRDDIM *rd_system;
  33. RRDDIM *rd_idle;
  34. RRDDIM *rd_iowait;
  35. RRDDIM *rd_irq;
  36. RRDDIM *rd_softirq;
  37. RRDDIM *rd_steal;
  38. RRDDIM *rd_guest;
  39. RRDDIM *rd_guest_nice;
  40. struct per_core_single_number_file files[PER_CORE_FILES];
  41. struct per_core_time_in_state_file time_in_state_files;
  42. };
  43. static int keep_per_core_fds_open = CONFIG_BOOLEAN_YES;
  44. static int keep_cpuidle_fds_open = CONFIG_BOOLEAN_YES;
  45. static int read_per_core_files(struct cpu_chart *all_cpu_charts, size_t len, size_t index) {
  46. char buf[50 + 1];
  47. size_t x, files_read = 0, files_nonzero = 0;
  48. for(x = 0; x < len ; x++) {
  49. struct per_core_single_number_file *f = &all_cpu_charts[x].files[index];
  50. f->found = 0;
  51. if(unlikely(!f->filename))
  52. continue;
  53. if(unlikely(f->fd == -1)) {
  54. f->fd = open(f->filename, O_RDONLY);
  55. if (unlikely(f->fd == -1)) {
  56. error("Cannot open file '%s'", f->filename);
  57. continue;
  58. }
  59. }
  60. ssize_t ret = read(f->fd, buf, 50);
  61. if(unlikely(ret < 0)) {
  62. // cannot read that file
  63. error("Cannot read file '%s'", f->filename);
  64. close(f->fd);
  65. f->fd = -1;
  66. continue;
  67. }
  68. else {
  69. // successful read
  70. // terminate the buffer
  71. buf[ret] = '\0';
  72. if(unlikely(keep_per_core_fds_open != CONFIG_BOOLEAN_YES)) {
  73. close(f->fd);
  74. f->fd = -1;
  75. }
  76. else if(lseek(f->fd, 0, SEEK_SET) == -1) {
  77. error("Cannot seek in file '%s'", f->filename);
  78. close(f->fd);
  79. f->fd = -1;
  80. }
  81. }
  82. files_read++;
  83. f->found = 1;
  84. f->value = str2ll(buf, NULL);
  85. if(likely(f->value != 0))
  86. files_nonzero++;
  87. }
  88. if(files_read == 0)
  89. return -1;
  90. if(files_nonzero == 0)
  91. return 0;
  92. return (int)files_nonzero;
  93. }
  94. static int read_per_core_time_in_state_files(struct cpu_chart *all_cpu_charts, size_t len, size_t index) {
  95. size_t x, files_read = 0, files_nonzero = 0;
  96. for(x = 0; x < len ; x++) {
  97. struct per_core_single_number_file *f = &all_cpu_charts[x].files[index];
  98. struct per_core_time_in_state_file *tsf = &all_cpu_charts[x].time_in_state_files;
  99. f->found = 0;
  100. if(unlikely(!tsf->filename))
  101. continue;
  102. if(unlikely(!tsf->ff)) {
  103. tsf->ff = procfile_open(tsf->filename, " \t:", PROCFILE_FLAG_DEFAULT);
  104. if(unlikely(!tsf->ff))
  105. {
  106. error("Cannot open file '%s'", tsf->filename);
  107. continue;
  108. }
  109. }
  110. tsf->ff = procfile_readall(tsf->ff);
  111. if(unlikely(!tsf->ff)) {
  112. error("Cannot read file '%s'", tsf->filename);
  113. procfile_close(tsf->ff);
  114. tsf->ff = NULL;
  115. continue;
  116. }
  117. else {
  118. // successful read
  119. size_t lines = procfile_lines(tsf->ff), l;
  120. size_t words;
  121. unsigned long long total_ticks_since_last = 0, avg_freq = 0;
  122. // Check if there is at least one frequency in time_in_state
  123. if (procfile_word(tsf->ff, 0)[0] == '\0') {
  124. if(unlikely(keep_per_core_fds_open != CONFIG_BOOLEAN_YES)) {
  125. procfile_close(tsf->ff);
  126. tsf->ff = NULL;
  127. }
  128. // TODO: Is there a better way to avoid spikes than calculating the average over
  129. // the whole period under schedutil governor?
  130. // freez(tsf->last_ticks);
  131. // tsf->last_ticks = NULL;
  132. // tsf->last_ticks_len = 0;
  133. continue;
  134. }
  135. if (unlikely(tsf->last_ticks_len < lines || tsf->last_ticks == NULL)) {
  136. tsf->last_ticks = reallocz(tsf->last_ticks, sizeof(struct last_ticks) * lines);
  137. memset(tsf->last_ticks, 0, sizeof(struct last_ticks) * lines);
  138. tsf->last_ticks_len = lines;
  139. }
  140. f->value = 0;
  141. for(l = 0; l < lines - 1 ;l++) {
  142. unsigned long long frequency = 0, ticks = 0, ticks_since_last = 0;
  143. words = procfile_linewords(tsf->ff, l);
  144. if(unlikely(words < 2)) {
  145. error("Cannot read time_in_state line. Expected 2 params, read %zu.", words);
  146. continue;
  147. }
  148. frequency = str2ull(procfile_lineword(tsf->ff, l, 0));
  149. ticks = str2ull(procfile_lineword(tsf->ff, l, 1));
  150. // It is assumed that frequencies are static and sorted
  151. ticks_since_last = ticks - tsf->last_ticks[l].ticks;
  152. tsf->last_ticks[l].frequency = frequency;
  153. tsf->last_ticks[l].ticks = ticks;
  154. total_ticks_since_last += ticks_since_last;
  155. avg_freq += frequency * ticks_since_last;
  156. }
  157. if (likely(total_ticks_since_last)) {
  158. avg_freq /= total_ticks_since_last;
  159. f->value = avg_freq;
  160. }
  161. if(unlikely(keep_per_core_fds_open != CONFIG_BOOLEAN_YES)) {
  162. procfile_close(tsf->ff);
  163. tsf->ff = NULL;
  164. }
  165. }
  166. files_read++;
  167. f->found = 1;
  168. if(likely(f->value != 0))
  169. files_nonzero++;
  170. }
  171. if(unlikely(files_read == 0))
  172. return -1;
  173. if(unlikely(files_nonzero == 0))
  174. return 0;
  175. return (int)files_nonzero;
  176. }
  177. static void chart_per_core_files(struct cpu_chart *all_cpu_charts, size_t len, size_t index, RRDSET *st, collected_number multiplier, collected_number divisor, RRD_ALGORITHM algorithm) {
  178. size_t x;
  179. for(x = 0; x < len ; x++) {
  180. struct per_core_single_number_file *f = &all_cpu_charts[x].files[index];
  181. if(unlikely(!f->found))
  182. continue;
  183. if(unlikely(!f->rd))
  184. f->rd = rrddim_add(st, all_cpu_charts[x].id, NULL, multiplier, divisor, algorithm);
  185. rrddim_set_by_pointer(st, f->rd, f->value);
  186. }
  187. }
  188. struct cpuidle_state {
  189. char *name;
  190. char *time_filename;
  191. int time_fd;
  192. collected_number value;
  193. RRDDIM *rd;
  194. };
  195. struct per_core_cpuidle_chart {
  196. RRDSET *st;
  197. RRDDIM *active_time_rd;
  198. collected_number active_time;
  199. collected_number last_active_time;
  200. struct cpuidle_state *cpuidle_state;
  201. size_t cpuidle_state_len;
  202. int rescan_cpu_states;
  203. };
  204. static void* wake_cpu_thread(void* core) {
  205. pthread_t thread;
  206. cpu_set_t cpu_set;
  207. static size_t cpu_wakeups = 0;
  208. CPU_ZERO(&cpu_set);
  209. CPU_SET(*(int*)core, &cpu_set);
  210. thread = pthread_self();
  211. if(unlikely(pthread_setaffinity_np(thread, sizeof(cpu_set_t), &cpu_set)))
  212. error("Cannot set CPU affinity");
  213. // Make the CPU core do something
  214. cpu_wakeups++;
  215. return 0;
  216. }
  217. static int read_schedstat(char* schedstat_filename, struct per_core_cpuidle_chart **cpuidle_charts_address, size_t cores_found) {
  218. static size_t cpuidle_charts_len = 0;
  219. static procfile *ff = NULL;
  220. struct per_core_cpuidle_chart *cpuidle_charts = *cpuidle_charts_address;
  221. if(unlikely(!ff)) {
  222. ff = procfile_open(schedstat_filename, " \t:", PROCFILE_FLAG_DEFAULT);
  223. if(unlikely(!ff)) return 1;
  224. }
  225. ff = procfile_readall(ff);
  226. if(unlikely(!ff)) return 1;
  227. size_t lines = procfile_lines(ff), l;
  228. size_t words;
  229. if(unlikely(cpuidle_charts_len < cores_found)) {
  230. cpuidle_charts = reallocz(cpuidle_charts, sizeof(struct per_core_cpuidle_chart) * cores_found);
  231. *cpuidle_charts_address = cpuidle_charts;
  232. memset(cpuidle_charts + cpuidle_charts_len, 0, sizeof(struct per_core_cpuidle_chart) * (cores_found - cpuidle_charts_len));
  233. cpuidle_charts_len = cores_found;
  234. }
  235. for(l = 0; l < lines ;l++) {
  236. char *row_key = procfile_lineword(ff, l, 0);
  237. // faster strncmp(row_key, "cpu", 3) == 0
  238. if(likely(row_key[0] == 'c' && row_key[1] == 'p' && row_key[2] == 'u')) {
  239. words = procfile_linewords(ff, l);
  240. if(unlikely(words < 10)) {
  241. error("Cannot read /proc/schedstat cpu line. Expected 9 params, read %zu.", words);
  242. return 1;
  243. }
  244. size_t core = str2ul(&row_key[3]);
  245. if(unlikely(core >= cores_found)) {
  246. // Temporary workaround for issue 3945
  247. // error("Core %zu found but no more than %zu cores were expected.", core, cores_found);
  248. return 1;
  249. }
  250. cpuidle_charts[core].active_time = str2ull(procfile_lineword(ff, l, 7)) / 1000;
  251. }
  252. }
  253. return 0;
  254. }
  255. static int read_one_state(char *buf, const char *filename, int *fd) {
  256. ssize_t ret = read(*fd, buf, 50);
  257. if(unlikely(ret <= 0)) {
  258. // cannot read that file
  259. error("Cannot read file '%s'", filename);
  260. close(*fd);
  261. *fd = -1;
  262. return 0;
  263. }
  264. else {
  265. // successful read
  266. // terminate the buffer
  267. buf[ret - 1] = '\0';
  268. if(unlikely(keep_cpuidle_fds_open != CONFIG_BOOLEAN_YES)) {
  269. close(*fd);
  270. *fd = -1;
  271. }
  272. else if(lseek(*fd, 0, SEEK_SET) == -1) {
  273. error("Cannot seek in file '%s'", filename);
  274. close(*fd);
  275. *fd = -1;
  276. }
  277. }
  278. return 1;
  279. }
  280. static int read_cpuidle_states(char *cpuidle_name_filename , char *cpuidle_time_filename, struct per_core_cpuidle_chart *cpuidle_charts, size_t core) {
  281. char filename[FILENAME_MAX + 1];
  282. static char next_state_filename[FILENAME_MAX + 1];
  283. struct stat stbuf;
  284. struct per_core_cpuidle_chart *cc = &cpuidle_charts[core];
  285. size_t state;
  286. if(unlikely(!cc->cpuidle_state_len || cc->rescan_cpu_states)) {
  287. int state_file_found = 1; // check at least one state
  288. if(cc->cpuidle_state_len) {
  289. for(state = 0; state < cc->cpuidle_state_len; state++) {
  290. freez(cc->cpuidle_state[state].name);
  291. freez(cc->cpuidle_state[state].time_filename);
  292. close(cc->cpuidle_state[state].time_fd);
  293. cc->cpuidle_state[state].time_fd = -1;
  294. }
  295. freez(cc->cpuidle_state);
  296. cc->cpuidle_state = NULL;
  297. cc->cpuidle_state_len = 0;
  298. cc->active_time_rd = NULL;
  299. cc->st = NULL;
  300. }
  301. while(likely(state_file_found)) {
  302. snprintfz(filename, FILENAME_MAX, cpuidle_name_filename, core, cc->cpuidle_state_len);
  303. if (stat(filename, &stbuf) == 0)
  304. cc->cpuidle_state_len++;
  305. else
  306. state_file_found = 0;
  307. }
  308. snprintfz(next_state_filename, FILENAME_MAX, cpuidle_name_filename, core, cc->cpuidle_state_len);
  309. cc->cpuidle_state = callocz(cc->cpuidle_state_len, sizeof(struct cpuidle_state));
  310. memset(cc->cpuidle_state, 0, sizeof(struct cpuidle_state) * cc->cpuidle_state_len);
  311. for(state = 0; state < cc->cpuidle_state_len; state++) {
  312. char name_buf[50 + 1];
  313. snprintfz(filename, FILENAME_MAX, cpuidle_name_filename, core, state);
  314. int fd = open(filename, O_RDONLY, 0666);
  315. if(unlikely(fd == -1)) {
  316. error("Cannot open file '%s'", filename);
  317. cc->rescan_cpu_states = 1;
  318. return 1;
  319. }
  320. ssize_t r = read(fd, name_buf, 50);
  321. if(unlikely(r < 1)) {
  322. error("Cannot read file '%s'", filename);
  323. close(fd);
  324. cc->rescan_cpu_states = 1;
  325. return 1;
  326. }
  327. name_buf[r - 1] = '\0'; // erase extra character
  328. cc->cpuidle_state[state].name = strdupz(name_buf);
  329. close(fd);
  330. snprintfz(filename, FILENAME_MAX, cpuidle_time_filename, core, state);
  331. cc->cpuidle_state[state].time_filename = strdupz(filename);
  332. cc->cpuidle_state[state].time_fd = -1;
  333. }
  334. cc->rescan_cpu_states = 0;
  335. }
  336. for(state = 0; state < cc->cpuidle_state_len; state++) {
  337. struct cpuidle_state *cs = &cc->cpuidle_state[state];
  338. if(unlikely(cs->time_fd == -1)) {
  339. cs->time_fd = open(cs->time_filename, O_RDONLY);
  340. if (unlikely(cs->time_fd == -1)) {
  341. error("Cannot open file '%s'", cs->time_filename);
  342. cc->rescan_cpu_states = 1;
  343. return 1;
  344. }
  345. }
  346. char time_buf[50 + 1];
  347. if(likely(read_one_state(time_buf, cs->time_filename, &cs->time_fd))) {
  348. cs->value = str2ll(time_buf, NULL);
  349. }
  350. else {
  351. cc->rescan_cpu_states = 1;
  352. return 1;
  353. }
  354. }
  355. // check if the number of states was increased
  356. if(unlikely(stat(next_state_filename, &stbuf) == 0)) {
  357. cc->rescan_cpu_states = 1;
  358. return 1;
  359. }
  360. return 0;
  361. }
  362. int do_proc_stat(int update_every, usec_t dt) {
  363. (void)dt;
  364. static struct cpu_chart *all_cpu_charts = NULL;
  365. static size_t all_cpu_charts_size = 0;
  366. static procfile *ff = NULL;
  367. static int do_cpu = -1, do_cpu_cores = -1, do_interrupts = -1, do_context = -1, do_forks = -1, do_processes = -1,
  368. do_core_throttle_count = -1, do_package_throttle_count = -1, do_cpu_freq = -1, do_cpuidle = -1;
  369. static uint32_t hash_intr, hash_ctxt, hash_processes, hash_procs_running, hash_procs_blocked;
  370. static char *core_throttle_count_filename = NULL, *package_throttle_count_filename = NULL, *scaling_cur_freq_filename = NULL,
  371. *time_in_state_filename = NULL, *schedstat_filename = NULL, *cpuidle_name_filename = NULL, *cpuidle_time_filename = NULL;
  372. static RRDVAR *cpus_var = NULL;
  373. static int accurate_freq_avail = 0, accurate_freq_is_used = 0;
  374. size_t cores_found = (size_t)processors;
  375. if(unlikely(do_cpu == -1)) {
  376. do_cpu = config_get_boolean("plugin:proc:/proc/stat", "cpu utilization", CONFIG_BOOLEAN_YES);
  377. do_cpu_cores = config_get_boolean("plugin:proc:/proc/stat", "per cpu core utilization", CONFIG_BOOLEAN_YES);
  378. do_interrupts = config_get_boolean("plugin:proc:/proc/stat", "cpu interrupts", CONFIG_BOOLEAN_YES);
  379. do_context = config_get_boolean("plugin:proc:/proc/stat", "context switches", CONFIG_BOOLEAN_YES);
  380. do_forks = config_get_boolean("plugin:proc:/proc/stat", "processes started", CONFIG_BOOLEAN_YES);
  381. do_processes = config_get_boolean("plugin:proc:/proc/stat", "processes running", CONFIG_BOOLEAN_YES);
  382. // give sane defaults based on the number of processors
  383. if(unlikely(processors > 50)) {
  384. // the system has too many processors
  385. keep_per_core_fds_open = CONFIG_BOOLEAN_NO;
  386. do_core_throttle_count = CONFIG_BOOLEAN_NO;
  387. do_package_throttle_count = CONFIG_BOOLEAN_NO;
  388. do_cpu_freq = CONFIG_BOOLEAN_NO;
  389. do_cpuidle = CONFIG_BOOLEAN_NO;
  390. }
  391. else {
  392. // the system has a reasonable number of processors
  393. keep_per_core_fds_open = CONFIG_BOOLEAN_YES;
  394. do_core_throttle_count = CONFIG_BOOLEAN_AUTO;
  395. do_package_throttle_count = CONFIG_BOOLEAN_NO;
  396. do_cpu_freq = CONFIG_BOOLEAN_YES;
  397. do_cpuidle = CONFIG_BOOLEAN_YES;
  398. }
  399. if(unlikely(processors > 24)) {
  400. // the system has too many processors
  401. keep_cpuidle_fds_open = CONFIG_BOOLEAN_NO;
  402. }
  403. else {
  404. // the system has a reasonable number of processors
  405. keep_cpuidle_fds_open = CONFIG_BOOLEAN_YES;
  406. }
  407. keep_per_core_fds_open = config_get_boolean("plugin:proc:/proc/stat", "keep per core files open", keep_per_core_fds_open);
  408. keep_cpuidle_fds_open = config_get_boolean("plugin:proc:/proc/stat", "keep cpuidle files open", keep_cpuidle_fds_open);
  409. do_core_throttle_count = config_get_boolean_ondemand("plugin:proc:/proc/stat", "core_throttle_count", do_core_throttle_count);
  410. do_package_throttle_count = config_get_boolean_ondemand("plugin:proc:/proc/stat", "package_throttle_count", do_package_throttle_count);
  411. do_cpu_freq = config_get_boolean_ondemand("plugin:proc:/proc/stat", "cpu frequency", do_cpu_freq);
  412. do_cpuidle = config_get_boolean_ondemand("plugin:proc:/proc/stat", "cpu idle states", do_cpuidle);
  413. hash_intr = simple_hash("intr");
  414. hash_ctxt = simple_hash("ctxt");
  415. hash_processes = simple_hash("processes");
  416. hash_procs_running = simple_hash("procs_running");
  417. hash_procs_blocked = simple_hash("procs_blocked");
  418. char filename[FILENAME_MAX + 1];
  419. snprintfz(filename, FILENAME_MAX, "%s%s", netdata_configured_host_prefix, "/sys/devices/system/cpu/%s/thermal_throttle/core_throttle_count");
  420. core_throttle_count_filename = config_get("plugin:proc:/proc/stat", "core_throttle_count filename to monitor", filename);
  421. snprintfz(filename, FILENAME_MAX, "%s%s", netdata_configured_host_prefix, "/sys/devices/system/cpu/%s/thermal_throttle/package_throttle_count");
  422. package_throttle_count_filename = config_get("plugin:proc:/proc/stat", "package_throttle_count filename to monitor", filename);
  423. snprintfz(filename, FILENAME_MAX, "%s%s", netdata_configured_host_prefix, "/sys/devices/system/cpu/%s/cpufreq/scaling_cur_freq");
  424. scaling_cur_freq_filename = config_get("plugin:proc:/proc/stat", "scaling_cur_freq filename to monitor", filename);
  425. snprintfz(filename, FILENAME_MAX, "%s%s", netdata_configured_host_prefix, "/sys/devices/system/cpu/%s/cpufreq/stats/time_in_state");
  426. time_in_state_filename = config_get("plugin:proc:/proc/stat", "time_in_state filename to monitor", filename);
  427. snprintfz(filename, FILENAME_MAX, "%s%s", netdata_configured_host_prefix, "/proc/schedstat");
  428. schedstat_filename = config_get("plugin:proc:/proc/stat", "schedstat filename to monitor", filename);
  429. snprintfz(filename, FILENAME_MAX, "%s%s", netdata_configured_host_prefix, "/sys/devices/system/cpu/cpu%zu/cpuidle/state%zu/name");
  430. cpuidle_name_filename = config_get("plugin:proc:/proc/stat", "cpuidle name filename to monitor", filename);
  431. snprintfz(filename, FILENAME_MAX, "%s%s", netdata_configured_host_prefix, "/sys/devices/system/cpu/cpu%zu/cpuidle/state%zu/time");
  432. cpuidle_time_filename = config_get("plugin:proc:/proc/stat", "cpuidle time filename to monitor", filename);
  433. }
  434. if(unlikely(!ff)) {
  435. char filename[FILENAME_MAX + 1];
  436. snprintfz(filename, FILENAME_MAX, "%s%s", netdata_configured_host_prefix, "/proc/stat");
  437. ff = procfile_open(config_get("plugin:proc:/proc/stat", "filename to monitor", filename), " \t:", PROCFILE_FLAG_DEFAULT);
  438. if(unlikely(!ff)) return 1;
  439. }
  440. ff = procfile_readall(ff);
  441. if(unlikely(!ff)) return 0; // we return 0, so that we will retry to open it next time
  442. size_t lines = procfile_lines(ff), l;
  443. size_t words;
  444. unsigned long long processes = 0, running = 0 , blocked = 0;
  445. for(l = 0; l < lines ;l++) {
  446. char *row_key = procfile_lineword(ff, l, 0);
  447. uint32_t hash = simple_hash(row_key);
  448. // faster strncmp(row_key, "cpu", 3) == 0
  449. if(likely(row_key[0] == 'c' && row_key[1] == 'p' && row_key[2] == 'u')) {
  450. words = procfile_linewords(ff, l);
  451. if(unlikely(words < 9)) {
  452. error("Cannot read /proc/stat cpu line. Expected 9 params, read %zu.", words);
  453. continue;
  454. }
  455. size_t core = (row_key[3] == '\0') ? 0 : str2ul(&row_key[3]) + 1;
  456. if(likely(core > 0)) cores_found = core;
  457. if(likely((core == 0 && do_cpu) || (core > 0 && do_cpu_cores))) {
  458. char *id;
  459. unsigned long long user = 0, nice = 0, system = 0, idle = 0, iowait = 0, irq = 0, softirq = 0, steal = 0, guest = 0, guest_nice = 0;
  460. id = row_key;
  461. user = str2ull(procfile_lineword(ff, l, 1));
  462. nice = str2ull(procfile_lineword(ff, l, 2));
  463. system = str2ull(procfile_lineword(ff, l, 3));
  464. idle = str2ull(procfile_lineword(ff, l, 4));
  465. iowait = str2ull(procfile_lineword(ff, l, 5));
  466. irq = str2ull(procfile_lineword(ff, l, 6));
  467. softirq = str2ull(procfile_lineword(ff, l, 7));
  468. steal = str2ull(procfile_lineword(ff, l, 8));
  469. guest = str2ull(procfile_lineword(ff, l, 9));
  470. user -= guest;
  471. guest_nice = str2ull(procfile_lineword(ff, l, 10));
  472. nice -= guest_nice;
  473. char *title, *type, *context, *family;
  474. long priority;
  475. if(unlikely(core >= all_cpu_charts_size)) {
  476. size_t old_cpu_charts_size = all_cpu_charts_size;
  477. all_cpu_charts_size = core + 1;
  478. all_cpu_charts = reallocz(all_cpu_charts, sizeof(struct cpu_chart) * all_cpu_charts_size);
  479. memset(&all_cpu_charts[old_cpu_charts_size], 0, sizeof(struct cpu_chart) * (all_cpu_charts_size - old_cpu_charts_size));
  480. }
  481. struct cpu_chart *cpu_chart = &all_cpu_charts[core];
  482. if(unlikely(!cpu_chart->st)) {
  483. cpu_chart->id = strdupz(id);
  484. if(unlikely(core == 0)) {
  485. title = "Total CPU utilization";
  486. type = "system";
  487. context = "system.cpu";
  488. family = id;
  489. priority = NETDATA_CHART_PRIO_SYSTEM_CPU;
  490. }
  491. else {
  492. title = "Core utilization";
  493. type = "cpu";
  494. context = "cpu.cpu";
  495. family = "utilization";
  496. priority = NETDATA_CHART_PRIO_CPU_PER_CORE;
  497. char filename[FILENAME_MAX + 1];
  498. struct stat stbuf;
  499. if(do_core_throttle_count != CONFIG_BOOLEAN_NO) {
  500. snprintfz(filename, FILENAME_MAX, core_throttle_count_filename, id);
  501. if (stat(filename, &stbuf) == 0) {
  502. cpu_chart->files[CORE_THROTTLE_COUNT_INDEX].filename = strdupz(filename);
  503. cpu_chart->files[CORE_THROTTLE_COUNT_INDEX].fd = -1;
  504. do_core_throttle_count = CONFIG_BOOLEAN_YES;
  505. }
  506. }
  507. if(do_package_throttle_count != CONFIG_BOOLEAN_NO) {
  508. snprintfz(filename, FILENAME_MAX, package_throttle_count_filename, id);
  509. if (stat(filename, &stbuf) == 0) {
  510. cpu_chart->files[PACKAGE_THROTTLE_COUNT_INDEX].filename = strdupz(filename);
  511. cpu_chart->files[PACKAGE_THROTTLE_COUNT_INDEX].fd = -1;
  512. do_package_throttle_count = CONFIG_BOOLEAN_YES;
  513. }
  514. }
  515. if(do_cpu_freq != CONFIG_BOOLEAN_NO) {
  516. snprintfz(filename, FILENAME_MAX, scaling_cur_freq_filename, id);
  517. if (stat(filename, &stbuf) == 0) {
  518. cpu_chart->files[CPU_FREQ_INDEX].filename = strdupz(filename);
  519. cpu_chart->files[CPU_FREQ_INDEX].fd = -1;
  520. do_cpu_freq = CONFIG_BOOLEAN_YES;
  521. }
  522. snprintfz(filename, FILENAME_MAX, time_in_state_filename, id);
  523. if (stat(filename, &stbuf) == 0) {
  524. cpu_chart->time_in_state_files.filename = strdupz(filename);
  525. cpu_chart->time_in_state_files.ff = NULL;
  526. do_cpu_freq = CONFIG_BOOLEAN_YES;
  527. accurate_freq_avail = 1;
  528. }
  529. }
  530. }
  531. cpu_chart->st = rrdset_create_localhost(
  532. type
  533. , id
  534. , NULL
  535. , family
  536. , context
  537. , title
  538. , "percentage"
  539. , PLUGIN_PROC_NAME
  540. , PLUGIN_PROC_MODULE_STAT_NAME
  541. , priority + core
  542. , update_every
  543. , RRDSET_TYPE_STACKED
  544. );
  545. long multiplier = 1;
  546. long divisor = 1; // sysconf(_SC_CLK_TCK);
  547. cpu_chart->rd_guest_nice = rrddim_add(cpu_chart->st, "guest_nice", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  548. cpu_chart->rd_guest = rrddim_add(cpu_chart->st, "guest", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  549. cpu_chart->rd_steal = rrddim_add(cpu_chart->st, "steal", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  550. cpu_chart->rd_softirq = rrddim_add(cpu_chart->st, "softirq", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  551. cpu_chart->rd_irq = rrddim_add(cpu_chart->st, "irq", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  552. cpu_chart->rd_user = rrddim_add(cpu_chart->st, "user", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  553. cpu_chart->rd_system = rrddim_add(cpu_chart->st, "system", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  554. cpu_chart->rd_nice = rrddim_add(cpu_chart->st, "nice", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  555. cpu_chart->rd_iowait = rrddim_add(cpu_chart->st, "iowait", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  556. cpu_chart->rd_idle = rrddim_add(cpu_chart->st, "idle", NULL, multiplier, divisor, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  557. rrddim_hide(cpu_chart->st, "idle");
  558. if(unlikely(core == 0 && cpus_var == NULL))
  559. cpus_var = rrdvar_custom_host_variable_create(localhost, "active_processors");
  560. }
  561. else rrdset_next(cpu_chart->st);
  562. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_user, user);
  563. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_nice, nice);
  564. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_system, system);
  565. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_idle, idle);
  566. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_iowait, iowait);
  567. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_irq, irq);
  568. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_softirq, softirq);
  569. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_steal, steal);
  570. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_guest, guest);
  571. rrddim_set_by_pointer(cpu_chart->st, cpu_chart->rd_guest_nice, guest_nice);
  572. rrdset_done(cpu_chart->st);
  573. }
  574. }
  575. else if(unlikely(hash == hash_intr && strcmp(row_key, "intr") == 0)) {
  576. if(likely(do_interrupts)) {
  577. static RRDSET *st_intr = NULL;
  578. static RRDDIM *rd_interrupts = NULL;
  579. unsigned long long value = str2ull(procfile_lineword(ff, l, 1));
  580. if(unlikely(!st_intr)) {
  581. st_intr = rrdset_create_localhost(
  582. "system"
  583. , "intr"
  584. , NULL
  585. , "interrupts"
  586. , NULL
  587. , "CPU Interrupts"
  588. , "interrupts/s"
  589. , PLUGIN_PROC_NAME
  590. , PLUGIN_PROC_MODULE_STAT_NAME
  591. , NETDATA_CHART_PRIO_SYSTEM_INTR
  592. , update_every
  593. , RRDSET_TYPE_LINE
  594. );
  595. rrdset_flag_set(st_intr, RRDSET_FLAG_DETAIL);
  596. rd_interrupts = rrddim_add(st_intr, "interrupts", NULL, 1, 1, RRD_ALGORITHM_INCREMENTAL);
  597. }
  598. else rrdset_next(st_intr);
  599. rrddim_set_by_pointer(st_intr, rd_interrupts, value);
  600. rrdset_done(st_intr);
  601. }
  602. }
  603. else if(unlikely(hash == hash_ctxt && strcmp(row_key, "ctxt") == 0)) {
  604. if(likely(do_context)) {
  605. static RRDSET *st_ctxt = NULL;
  606. static RRDDIM *rd_switches = NULL;
  607. unsigned long long value = str2ull(procfile_lineword(ff, l, 1));
  608. if(unlikely(!st_ctxt)) {
  609. st_ctxt = rrdset_create_localhost(
  610. "system"
  611. , "ctxt"
  612. , NULL
  613. , "processes"
  614. , NULL
  615. , "CPU Context Switches"
  616. , "context switches/s"
  617. , PLUGIN_PROC_NAME
  618. , PLUGIN_PROC_MODULE_STAT_NAME
  619. , NETDATA_CHART_PRIO_SYSTEM_CTXT
  620. , update_every
  621. , RRDSET_TYPE_LINE
  622. );
  623. rd_switches = rrddim_add(st_ctxt, "switches", NULL, 1, 1, RRD_ALGORITHM_INCREMENTAL);
  624. }
  625. else rrdset_next(st_ctxt);
  626. rrddim_set_by_pointer(st_ctxt, rd_switches, value);
  627. rrdset_done(st_ctxt);
  628. }
  629. }
  630. else if(unlikely(hash == hash_processes && !processes && strcmp(row_key, "processes") == 0)) {
  631. processes = str2ull(procfile_lineword(ff, l, 1));
  632. }
  633. else if(unlikely(hash == hash_procs_running && !running && strcmp(row_key, "procs_running") == 0)) {
  634. running = str2ull(procfile_lineword(ff, l, 1));
  635. }
  636. else if(unlikely(hash == hash_procs_blocked && !blocked && strcmp(row_key, "procs_blocked") == 0)) {
  637. blocked = str2ull(procfile_lineword(ff, l, 1));
  638. }
  639. }
  640. // --------------------------------------------------------------------
  641. if(likely(do_forks)) {
  642. static RRDSET *st_forks = NULL;
  643. static RRDDIM *rd_started = NULL;
  644. if(unlikely(!st_forks)) {
  645. st_forks = rrdset_create_localhost(
  646. "system"
  647. , "forks"
  648. , NULL
  649. , "processes"
  650. , NULL
  651. , "Started Processes"
  652. , "processes/s"
  653. , PLUGIN_PROC_NAME
  654. , PLUGIN_PROC_MODULE_STAT_NAME
  655. , NETDATA_CHART_PRIO_SYSTEM_FORKS
  656. , update_every
  657. , RRDSET_TYPE_LINE
  658. );
  659. rrdset_flag_set(st_forks, RRDSET_FLAG_DETAIL);
  660. rd_started = rrddim_add(st_forks, "started", NULL, 1, 1, RRD_ALGORITHM_INCREMENTAL);
  661. }
  662. else rrdset_next(st_forks);
  663. rrddim_set_by_pointer(st_forks, rd_started, processes);
  664. rrdset_done(st_forks);
  665. }
  666. // --------------------------------------------------------------------
  667. if(likely(do_processes)) {
  668. static RRDSET *st_processes = NULL;
  669. static RRDDIM *rd_running = NULL;
  670. static RRDDIM *rd_blocked = NULL;
  671. if(unlikely(!st_processes)) {
  672. st_processes = rrdset_create_localhost(
  673. "system"
  674. , "processes"
  675. , NULL
  676. , "processes"
  677. , NULL
  678. , "System Processes"
  679. , "processes"
  680. , PLUGIN_PROC_NAME
  681. , PLUGIN_PROC_MODULE_STAT_NAME
  682. , NETDATA_CHART_PRIO_SYSTEM_PROCESSES
  683. , update_every
  684. , RRDSET_TYPE_LINE
  685. );
  686. rd_running = rrddim_add(st_processes, "running", NULL, 1, 1, RRD_ALGORITHM_ABSOLUTE);
  687. rd_blocked = rrddim_add(st_processes, "blocked", NULL, -1, 1, RRD_ALGORITHM_ABSOLUTE);
  688. }
  689. else rrdset_next(st_processes);
  690. rrddim_set_by_pointer(st_processes, rd_running, running);
  691. rrddim_set_by_pointer(st_processes, rd_blocked, blocked);
  692. rrdset_done(st_processes);
  693. }
  694. if(likely(all_cpu_charts_size > 1)) {
  695. if(likely(do_core_throttle_count != CONFIG_BOOLEAN_NO)) {
  696. int r = read_per_core_files(&all_cpu_charts[1], all_cpu_charts_size - 1, CORE_THROTTLE_COUNT_INDEX);
  697. if(likely(r != -1 && (do_core_throttle_count == CONFIG_BOOLEAN_YES || r > 0))) {
  698. do_core_throttle_count = CONFIG_BOOLEAN_YES;
  699. static RRDSET *st_core_throttle_count = NULL;
  700. if (unlikely(!st_core_throttle_count))
  701. st_core_throttle_count = rrdset_create_localhost(
  702. "cpu"
  703. , "core_throttling"
  704. , NULL
  705. , "throttling"
  706. , "cpu.core_throttling"
  707. , "Core Thermal Throttling Events"
  708. , "events/s"
  709. , PLUGIN_PROC_NAME
  710. , PLUGIN_PROC_MODULE_STAT_NAME
  711. , NETDATA_CHART_PRIO_CORE_THROTTLING
  712. , update_every
  713. , RRDSET_TYPE_LINE
  714. );
  715. else
  716. rrdset_next(st_core_throttle_count);
  717. chart_per_core_files(&all_cpu_charts[1], all_cpu_charts_size - 1, CORE_THROTTLE_COUNT_INDEX, st_core_throttle_count, 1, 1, RRD_ALGORITHM_INCREMENTAL);
  718. rrdset_done(st_core_throttle_count);
  719. }
  720. }
  721. if(likely(do_package_throttle_count != CONFIG_BOOLEAN_NO)) {
  722. int r = read_per_core_files(&all_cpu_charts[1], all_cpu_charts_size - 1, PACKAGE_THROTTLE_COUNT_INDEX);
  723. if(likely(r != -1 && (do_package_throttle_count == CONFIG_BOOLEAN_YES || r > 0))) {
  724. do_package_throttle_count = CONFIG_BOOLEAN_YES;
  725. static RRDSET *st_package_throttle_count = NULL;
  726. if(unlikely(!st_package_throttle_count))
  727. st_package_throttle_count = rrdset_create_localhost(
  728. "cpu"
  729. , "package_throttling"
  730. , NULL
  731. , "throttling"
  732. , "cpu.package_throttling"
  733. , "Package Thermal Throttling Events"
  734. , "events/s"
  735. , PLUGIN_PROC_NAME
  736. , PLUGIN_PROC_MODULE_STAT_NAME
  737. , NETDATA_CHART_PRIO_PACKAGE_THROTTLING
  738. , update_every
  739. , RRDSET_TYPE_LINE
  740. );
  741. else
  742. rrdset_next(st_package_throttle_count);
  743. chart_per_core_files(&all_cpu_charts[1], all_cpu_charts_size - 1, PACKAGE_THROTTLE_COUNT_INDEX, st_package_throttle_count, 1, 1, RRD_ALGORITHM_INCREMENTAL);
  744. rrdset_done(st_package_throttle_count);
  745. }
  746. }
  747. if(likely(do_cpu_freq != CONFIG_BOOLEAN_NO)) {
  748. char filename[FILENAME_MAX + 1];
  749. int r = 0;
  750. if (accurate_freq_avail) {
  751. r = read_per_core_time_in_state_files(&all_cpu_charts[1], all_cpu_charts_size - 1, CPU_FREQ_INDEX);
  752. if(r > 0 && !accurate_freq_is_used) {
  753. accurate_freq_is_used = 1;
  754. snprintfz(filename, FILENAME_MAX, time_in_state_filename, "cpu*");
  755. info("cpufreq is using %s", filename);
  756. }
  757. }
  758. if (r < 1) {
  759. r = read_per_core_files(&all_cpu_charts[1], all_cpu_charts_size - 1, CPU_FREQ_INDEX);
  760. if(accurate_freq_is_used) {
  761. accurate_freq_is_used = 0;
  762. snprintfz(filename, FILENAME_MAX, scaling_cur_freq_filename, "cpu*");
  763. info("cpufreq fell back to %s", filename);
  764. }
  765. }
  766. if(likely(r != -1 && (do_cpu_freq == CONFIG_BOOLEAN_YES || r > 0))) {
  767. do_cpu_freq = CONFIG_BOOLEAN_YES;
  768. static RRDSET *st_scaling_cur_freq = NULL;
  769. if(unlikely(!st_scaling_cur_freq))
  770. st_scaling_cur_freq = rrdset_create_localhost(
  771. "cpu"
  772. , "cpufreq"
  773. , NULL
  774. , "cpufreq"
  775. , "cpufreq.cpufreq"
  776. , "Current CPU Frequency"
  777. , "MHz"
  778. , PLUGIN_PROC_NAME
  779. , PLUGIN_PROC_MODULE_STAT_NAME
  780. , NETDATA_CHART_PRIO_CPUFREQ_SCALING_CUR_FREQ
  781. , update_every
  782. , RRDSET_TYPE_LINE
  783. );
  784. else
  785. rrdset_next(st_scaling_cur_freq);
  786. chart_per_core_files(&all_cpu_charts[1], all_cpu_charts_size - 1, CPU_FREQ_INDEX, st_scaling_cur_freq, 1, 1000, RRD_ALGORITHM_ABSOLUTE);
  787. rrdset_done(st_scaling_cur_freq);
  788. }
  789. }
  790. }
  791. // --------------------------------------------------------------------
  792. static struct per_core_cpuidle_chart *cpuidle_charts = NULL;
  793. if(likely(do_cpuidle != CONFIG_BOOLEAN_NO && !read_schedstat(schedstat_filename, &cpuidle_charts, cores_found))) {
  794. int cpu_states_updated = 0;
  795. size_t core, state;
  796. // proc.plugin runs on Linux systems only. Multi-platform compatibility is not needed here,
  797. // so bare pthread functions are used to avoid unneeded overheads.
  798. for(core = 0; core < cores_found; core++) {
  799. if(unlikely(!(cpuidle_charts[core].active_time - cpuidle_charts[core].last_active_time))) {
  800. pthread_t thread;
  801. if(unlikely(pthread_create(&thread, NULL, wake_cpu_thread, (void *)&core)))
  802. error("Cannot create wake_cpu_thread");
  803. else if(unlikely(pthread_join(thread, NULL)))
  804. error("Cannot join wake_cpu_thread");
  805. cpu_states_updated = 1;
  806. }
  807. }
  808. if(unlikely(!cpu_states_updated || !read_schedstat(schedstat_filename, &cpuidle_charts, cores_found))) {
  809. for(core = 0; core < cores_found; core++) {
  810. cpuidle_charts[core].last_active_time = cpuidle_charts[core].active_time;
  811. int r = read_cpuidle_states(cpuidle_name_filename, cpuidle_time_filename, cpuidle_charts, core);
  812. if(likely(r != -1 && (do_cpuidle == CONFIG_BOOLEAN_YES || r > 0))) {
  813. do_cpuidle = CONFIG_BOOLEAN_YES;
  814. char cpuidle_chart_id[RRD_ID_LENGTH_MAX + 1];
  815. snprintfz(cpuidle_chart_id, RRD_ID_LENGTH_MAX, "cpu%zu_cpuidle", core);
  816. if(unlikely(!cpuidle_charts[core].st)) {
  817. cpuidle_charts[core].st = rrdset_create_localhost(
  818. "cpu"
  819. , cpuidle_chart_id
  820. , NULL
  821. , "cpuidle"
  822. , "cpuidle.cpuidle"
  823. , "C-state residency"
  824. , "time%"
  825. , PLUGIN_PROC_NAME
  826. , PLUGIN_PROC_MODULE_STAT_NAME
  827. , NETDATA_CHART_PRIO_CPUIDLE + core
  828. , update_every
  829. , RRDSET_TYPE_STACKED
  830. );
  831. char cpuidle_dim_id[RRD_ID_LENGTH_MAX + 1];
  832. snprintfz(cpuidle_dim_id, RRD_ID_LENGTH_MAX, "cpu%zu_active_time", core);
  833. cpuidle_charts[core].active_time_rd = rrddim_add(cpuidle_charts[core].st, cpuidle_dim_id, "C0 (active)", 1, 1, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  834. for(state = 0; state < cpuidle_charts[core].cpuidle_state_len; state++) {
  835. snprintfz(cpuidle_dim_id, RRD_ID_LENGTH_MAX, "cpu%zu_cpuidle_state%zu_time", core, state);
  836. cpuidle_charts[core].cpuidle_state[state].rd = rrddim_add(cpuidle_charts[core].st, cpuidle_dim_id,
  837. cpuidle_charts[core].cpuidle_state[state].name,
  838. 1, 1, RRD_ALGORITHM_PCENT_OVER_DIFF_TOTAL);
  839. }
  840. }
  841. else
  842. rrdset_next(cpuidle_charts[core].st);
  843. rrddim_set_by_pointer(cpuidle_charts[core].st, cpuidle_charts[core].active_time_rd, cpuidle_charts[core].active_time);
  844. for(state = 0; state < cpuidle_charts[core].cpuidle_state_len; state++) {
  845. rrddim_set_by_pointer(cpuidle_charts[core].st, cpuidle_charts[core].cpuidle_state[state].rd, cpuidle_charts[core].cpuidle_state[state].value);
  846. }
  847. rrdset_done(cpuidle_charts[core].st);
  848. }
  849. }
  850. }
  851. }
  852. if(cpus_var)
  853. rrdvar_custom_host_variable_set(localhost, cpus_var, cores_found);
  854. return 0;
  855. }