check_ntp.c 30 KB

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  1. /*****************************************************************************
  2. *
  3. * Nagios check_ntp plugin
  4. *
  5. * License: GPL
  6. * Copyright (c) 2006 Sean Finney <seanius@seanius.net>
  7. * Copyright (c) 2006-2014 Nagios Plugins Development Team
  8. *
  9. * Description:
  10. *
  11. * This file contains the check_ntp plugin
  12. *
  13. * This plugin to check ntp servers independent of any commandline
  14. * programs or external libraries.
  15. *
  16. *
  17. * This program is free software: you can redistribute it and/or modify
  18. * it under the terms of the GNU General Public License as published by
  19. * the Free Software Foundation, either version 3 of the License, or
  20. * (at your option) any later version.
  21. *
  22. * This program is distributed in the hope that it will be useful,
  23. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  24. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  25. * GNU General Public License for more details.
  26. *
  27. * You should have received a copy of the GNU General Public License
  28. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  29. *
  30. *
  31. *****************************************************************************/
  32. const char *progname = "check_ntp";
  33. const char *copyright = "2006-2014";
  34. const char *email = "devel@nagios-plugins.org";
  35. #include "common.h"
  36. #include "netutils.h"
  37. #include "utils.h"
  38. static char *server_address=NULL;
  39. static int verbose=0;
  40. static short do_offset=0;
  41. static char *owarn="60";
  42. static char *ocrit="120";
  43. static short do_jitter=0;
  44. static char *jwarn="5000";
  45. static char *jcrit="10000";
  46. int process_arguments (int, char **);
  47. thresholds *offset_thresholds = NULL;
  48. thresholds *jitter_thresholds = NULL;
  49. void print_help (void);
  50. void print_usage (void);
  51. /* number of times to perform each request to get a good average. */
  52. #ifndef AVG_NUM
  53. #define AVG_NUM 4
  54. #endif
  55. /* max size of control message data */
  56. #define MAX_CM_SIZE 468
  57. /* this structure holds everything in an ntp request/response as per rfc1305 */
  58. typedef struct {
  59. uint8_t flags; /* byte with leapindicator,vers,mode. see macros */
  60. uint8_t stratum; /* clock stratum */
  61. int8_t poll; /* polling interval */
  62. int8_t precision; /* precision of the local clock */
  63. int32_t rtdelay; /* total rt delay, as a fixed point num. see macros */
  64. uint32_t rtdisp; /* like above, but for max err to primary src */
  65. uint32_t refid; /* ref clock identifier */
  66. uint64_t refts; /* reference timestamp. local time local clock */
  67. uint64_t origts; /* time at which request departed client */
  68. uint64_t rxts; /* time at which request arrived at server */
  69. uint64_t txts; /* time at which request departed server */
  70. } ntp_message;
  71. /* this structure holds data about results from querying offset from a peer */
  72. typedef struct {
  73. time_t waiting; /* ts set when we started waiting for a response */
  74. int num_responses; /* number of successfully received responses */
  75. uint8_t stratum; /* copied verbatim from the ntp_message */
  76. double rtdelay; /* converted from the ntp_message */
  77. double rtdisp; /* converted from the ntp_message */
  78. double offset[AVG_NUM]; /* offsets from each response */
  79. uint8_t flags; /* byte with leapindicator,vers,mode. see macros */
  80. } ntp_server_results;
  81. /* this structure holds everything in an ntp control message as per rfc1305 */
  82. typedef struct {
  83. uint8_t flags; /* byte with leapindicator,vers,mode. see macros */
  84. uint8_t op; /* R,E,M bits and Opcode */
  85. uint16_t seq; /* Packet sequence */
  86. uint16_t status; /* Clock status */
  87. uint16_t assoc; /* Association */
  88. uint16_t offset; /* Similar to TCP sequence # */
  89. uint16_t count; /* # bytes of data */
  90. char data[MAX_CM_SIZE]; /* ASCII data of the request */
  91. /* NB: not necessarily NULL terminated! */
  92. } ntp_control_message;
  93. /* this is an association/status-word pair found in control packet responses */
  94. typedef struct {
  95. uint16_t assoc;
  96. uint16_t status;
  97. } ntp_assoc_status_pair;
  98. static int allow_zero_stratum = 0;
  99. /* bits 1,2 are the leap indicator */
  100. #define LI_MASK 0xc0
  101. #define LI(x) ((x&LI_MASK)>>6)
  102. #define LI_SET(x,y) do{ x |= ((y<<6)&LI_MASK); }while(0)
  103. /* and these are the values of the leap indicator */
  104. #define LI_NOWARNING 0x00
  105. #define LI_EXTRASEC 0x01
  106. #define LI_MISSINGSEC 0x02
  107. #define LI_ALARM 0x03
  108. /* bits 3,4,5 are the ntp version */
  109. #define VN_MASK 0x38
  110. #define VN(x) ((x&VN_MASK)>>3)
  111. #define VN_SET(x,y) do{ x |= ((y<<3)&VN_MASK); }while(0)
  112. #define VN_RESERVED 0x02
  113. /* bits 6,7,8 are the ntp mode */
  114. #define MODE_MASK 0x07
  115. #define MODE(x) (x&MODE_MASK)
  116. #define MODE_SET(x,y) do{ x |= (y&MODE_MASK); }while(0)
  117. /* here are some values */
  118. #define MODE_CLIENT 0x03
  119. #define MODE_CONTROLMSG 0x06
  120. /* In control message, bits 8-10 are R,E,M bits */
  121. #define REM_MASK 0xe0
  122. #define REM_RESP 0x80
  123. #define REM_ERROR 0x40
  124. #define REM_MORE 0x20
  125. /* In control message, bits 11 - 15 are opcode */
  126. #define OP_MASK 0x1f
  127. #define OP_SET(x,y) do{ x |= (y&OP_MASK); }while(0)
  128. #define OP_READSTAT 0x01
  129. #define OP_READVAR 0x02
  130. /* In peer status bytes, bits 6,7,8 determine clock selection status */
  131. #define PEER_SEL(x) ((ntohs(x)>>8)&0x07)
  132. #define PEER_INCLUDED 0x04
  133. #define PEER_SYNCSOURCE 0x06
  134. /**
  135. ** a note about the 32-bit "fixed point" numbers:
  136. **
  137. they are divided into halves, each being a 16-bit int in network byte order:
  138. - the first 16 bits are an int on the left side of a decimal point.
  139. - the second 16 bits represent a fraction n/(2^16)
  140. likewise for the 64-bit "fixed point" numbers with everything doubled :)
  141. **/
  142. /* macros to access the left/right 16 bits of a 32-bit ntp "fixed point"
  143. number. note that these can be used as lvalues too */
  144. #define L16(x) (((uint16_t*)&x)[0])
  145. #define R16(x) (((uint16_t*)&x)[1])
  146. /* macros to access the left/right 32 bits of a 64-bit ntp "fixed point"
  147. number. these too can be used as lvalues */
  148. #define L32(x) (((uint32_t*)&x)[0])
  149. #define R32(x) (((uint32_t*)&x)[1])
  150. /* ntp wants seconds since 1/1/00, epoch is 1/1/70. this is the difference */
  151. #define EPOCHDIFF 0x83aa7e80UL
  152. /* extract a 32-bit ntp fixed point number into a double */
  153. #define NTP32asDOUBLE(x) (ntohs(L16(x)) + (double)ntohs(R16(x))/65536.0)
  154. /* likewise for a 64-bit ntp fp number */
  155. #define NTP64asDOUBLE(n) (double)(((uint64_t)n)?\
  156. (ntohl(L32(n))-EPOCHDIFF) + \
  157. (.00000001*(0.5+(double)(ntohl(R32(n))/42.94967296))):\
  158. 0)
  159. /* convert a struct timeval to a double */
  160. #define TVasDOUBLE(x) (double)(x.tv_sec+(0.000001*x.tv_usec))
  161. /* convert an ntp 64-bit fp number to a struct timeval */
  162. #define NTP64toTV(n,t) \
  163. do{ if(!n) t.tv_sec = t.tv_usec = 0; \
  164. else { \
  165. t.tv_sec=ntohl(L32(n))-EPOCHDIFF; \
  166. t.tv_usec=(int)(0.5+(double)(ntohl(R32(n))/4294.967296)); \
  167. } \
  168. }while(0)
  169. /* convert a struct timeval to an ntp 64-bit fp number */
  170. #define TVtoNTP64(t,n) \
  171. do{ if(!t.tv_usec && !t.tv_sec) n=0x0UL; \
  172. else { \
  173. L32(n)=htonl(t.tv_sec + EPOCHDIFF); \
  174. R32(n)=htonl((uint64_t)((4294.967296*t.tv_usec)+.5)); \
  175. } \
  176. } while(0)
  177. /* NTP control message header is 12 bytes, plus any data in the data
  178. * field, plus null padding to the nearest 32-bit boundary per rfc.
  179. */
  180. #define SIZEOF_NTPCM(m) (12+ntohs(m.count)+((ntohs(m.count)%4)?4-(ntohs(m.count)%4):0))
  181. /* finally, a little helper or two for debugging: */
  182. #define DBG(x) do{if(verbose>1){ x; }}while(0);
  183. #define PRINTSOCKADDR(x) \
  184. do{ \
  185. printf("%u.%u.%u.%u", (x>>24)&0xff, (x>>16)&0xff, (x>>8)&0xff, x&0xff);\
  186. }while(0);
  187. /* calculate the offset of the local clock */
  188. static inline double calc_offset(const ntp_message *m, const struct timeval *t){
  189. double client_tx, peer_rx, peer_tx, client_rx;
  190. client_tx = NTP64asDOUBLE(m->origts);
  191. peer_rx = NTP64asDOUBLE(m->rxts);
  192. peer_tx = NTP64asDOUBLE(m->txts);
  193. client_rx=TVasDOUBLE((*t));
  194. return (.5*((peer_tx-client_rx)+(peer_rx-client_tx)));
  195. }
  196. /* print out a ntp packet in human readable/debuggable format */
  197. void print_ntp_message(const ntp_message *p){
  198. struct timeval ref, orig, rx, tx;
  199. NTP64toTV(p->refts,ref);
  200. NTP64toTV(p->origts,orig);
  201. NTP64toTV(p->rxts,rx);
  202. NTP64toTV(p->txts,tx);
  203. printf("packet contents:\n");
  204. printf("\tflags: 0x%.2x\n", p->flags);
  205. printf("\t li=%d (0x%.2x)\n", LI(p->flags), p->flags&LI_MASK);
  206. printf("\t vn=%d (0x%.2x)\n", VN(p->flags), p->flags&VN_MASK);
  207. printf("\t mode=%d (0x%.2x)\n", MODE(p->flags), p->flags&MODE_MASK);
  208. printf("\tstratum = %d\n", p->stratum);
  209. printf("\tpoll = %g\n", pow(2, p->poll));
  210. printf("\tprecision = %g\n", pow(2, p->precision));
  211. printf("\trtdelay = %-.16g\n", NTP32asDOUBLE(p->rtdelay));
  212. printf("\trtdisp = %-.16g\n", NTP32asDOUBLE(p->rtdisp));
  213. printf("\trefid = %x\n", p->refid);
  214. printf("\trefts = %-.16g\n", NTP64asDOUBLE(p->refts));
  215. printf("\torigts = %-.16g\n", NTP64asDOUBLE(p->origts));
  216. printf("\trxts = %-.16g\n", NTP64asDOUBLE(p->rxts));
  217. printf("\ttxts = %-.16g\n", NTP64asDOUBLE(p->txts));
  218. }
  219. void print_ntp_control_message(const ntp_control_message *p){
  220. int i=0, numpeers=0;
  221. const ntp_assoc_status_pair *peer=NULL;
  222. printf("control packet contents:\n");
  223. printf("\tflags: 0x%.2x , 0x%.2x\n", p->flags, p->op);
  224. printf("\t li=%d (0x%.2x)\n", LI(p->flags), p->flags&LI_MASK);
  225. printf("\t vn=%d (0x%.2x)\n", VN(p->flags), p->flags&VN_MASK);
  226. printf("\t mode=%d (0x%.2x)\n", MODE(p->flags), p->flags&MODE_MASK);
  227. printf("\t response=%d (0x%.2x)\n", (p->op&REM_RESP)>0, p->op&REM_RESP);
  228. printf("\t more=%d (0x%.2x)\n", (p->op&REM_MORE)>0, p->op&REM_MORE);
  229. printf("\t error=%d (0x%.2x)\n", (p->op&REM_ERROR)>0, p->op&REM_ERROR);
  230. printf("\t op=%d (0x%.2x)\n", p->op&OP_MASK, p->op&OP_MASK);
  231. printf("\tsequence: %d (0x%.2x)\n", ntohs(p->seq), ntohs(p->seq));
  232. printf("\tstatus: %d (0x%.2x)\n", ntohs(p->status), ntohs(p->status));
  233. printf("\tassoc: %d (0x%.2x)\n", ntohs(p->assoc), ntohs(p->assoc));
  234. printf("\toffset: %d (0x%.2x)\n", ntohs(p->offset), ntohs(p->offset));
  235. printf("\tcount: %d (0x%.2x)\n", ntohs(p->count), ntohs(p->count));
  236. numpeers=ntohs(p->count)/(sizeof(ntp_assoc_status_pair));
  237. if(p->op&REM_RESP && p->op&OP_READSTAT){
  238. peer=(ntp_assoc_status_pair*)p->data;
  239. for(i=0;i<numpeers;i++){
  240. printf("\tpeer id %.2x status %.2x",
  241. ntohs(peer[i].assoc), ntohs(peer[i].status));
  242. if (PEER_SEL(peer[i].status) >= PEER_INCLUDED){
  243. if(PEER_SEL(peer[i].status) >= PEER_SYNCSOURCE){
  244. printf(" <-- current sync source");
  245. } else {
  246. printf(" <-- current sync candidate");
  247. }
  248. }
  249. printf("\n");
  250. }
  251. }
  252. }
  253. void setup_request(ntp_message *p){
  254. struct timeval t;
  255. memset(p, 0, sizeof(ntp_message));
  256. LI_SET(p->flags, LI_ALARM);
  257. VN_SET(p->flags, 4);
  258. MODE_SET(p->flags, MODE_CLIENT);
  259. p->poll=4;
  260. p->precision=(int8_t)0xfa;
  261. L16(p->rtdelay)=htons(1);
  262. L16(p->rtdisp)=htons(1);
  263. gettimeofday(&t, NULL);
  264. TVtoNTP64(t,p->txts);
  265. }
  266. /* select the "best" server from a list of servers, and return its index.
  267. * this is done by filtering servers based on stratum, dispersion, and
  268. * finally round-trip delay. */
  269. int best_offset_server(const ntp_server_results *slist, int nservers){
  270. int i=0, cserver=0, best_server=-1;
  271. /* for each server */
  272. for(cserver=0; cserver<nservers; cserver++){
  273. /* We don't want any servers that fails these tests */
  274. /* Sort out servers that didn't respond or responede with a 0 stratum;
  275. * stratum 0 is for reference clocks so no NTP server should ever report
  276. * a stratum 0 */
  277. if ( slist[cserver].stratum == 0 && !allow_zero_stratum){
  278. if (verbose) printf("discarding peer %d: stratum=%d\n", cserver, slist[cserver].stratum);
  279. continue;
  280. }
  281. /* Sort out servers with error flags */
  282. if ( LI(slist[cserver].flags) == LI_ALARM ){
  283. if (verbose) printf("discarding peer %d: flags=%d\n", cserver, LI(slist[cserver].flags));
  284. continue;
  285. }
  286. /* If we don't have a server yet, use the first one */
  287. if (best_server == -1) {
  288. best_server = cserver;
  289. DBG(printf("using peer %d as our first candidate\n", best_server));
  290. continue;
  291. }
  292. /* compare the server to the best one we've seen so far */
  293. /* does it have an equal or better stratum? */
  294. DBG(printf("comparing peer %d with peer %d\n", cserver, best_server));
  295. if(slist[cserver].stratum <= slist[best_server].stratum){
  296. DBG(printf("stratum for peer %d <= peer %d\n", cserver, best_server));
  297. /* does it have an equal or better dispersion? */
  298. if(slist[cserver].rtdisp <= slist[best_server].rtdisp){
  299. DBG(printf("dispersion for peer %d <= peer %d\n", cserver, best_server));
  300. /* does it have a better rtdelay? */
  301. if(slist[cserver].rtdelay < slist[best_server].rtdelay){
  302. DBG(printf("rtdelay for peer %d < peer %d\n", cserver, best_server));
  303. best_server = cserver;
  304. DBG(printf("peer %d is now our best candidate\n", best_server));
  305. }
  306. }
  307. }
  308. }
  309. if(best_server >= 0) {
  310. DBG(printf("best server selected: peer %d\n", best_server));
  311. return best_server;
  312. } else {
  313. DBG(printf("no peers meeting synchronization criteria :(\n"));
  314. return -1;
  315. }
  316. }
  317. /* do everything we need to get the total average offset
  318. * - we use a certain amount of parallelization with poll() to ensure
  319. * we don't waste time sitting around waiting for single packets.
  320. * - we also "manually" handle resolving host names and connecting, because
  321. * we have to do it in a way that our lazy macros don't handle currently :( */
  322. double offset_request(const char *host, int *status){
  323. int i=0, j=0, ga_result=0, num_hosts=0, *socklist=NULL, respnum=0;
  324. int servers_completed=0, one_read=0, servers_readable=0, best_index=-1;
  325. time_t now_time=0, start_ts=0;
  326. ntp_message *req=NULL;
  327. double avg_offset=0.;
  328. struct timeval recv_time;
  329. struct addrinfo *ai=NULL, *ai_tmp=NULL, hints;
  330. struct pollfd *ufds=NULL;
  331. ntp_server_results *servers=NULL;
  332. /* setup hints to only return results from getaddrinfo that we'd like */
  333. memset(&hints, 0, sizeof(struct addrinfo));
  334. hints.ai_family = address_family;
  335. hints.ai_protocol = IPPROTO_UDP;
  336. hints.ai_socktype = SOCK_DGRAM;
  337. /* fill in ai with the list of hosts resolved by the host name */
  338. ga_result = getaddrinfo(host, "123", &hints, &ai);
  339. if(ga_result!=0){
  340. die(STATE_UNKNOWN, "error getting address for %s: %s\n",
  341. host, gai_strerror(ga_result));
  342. }
  343. /* count the number of returned hosts, and allocate stuff accordingly */
  344. for(ai_tmp=ai; ai_tmp!=NULL; ai_tmp=ai_tmp->ai_next){ num_hosts++; }
  345. req=(ntp_message*)malloc(sizeof(ntp_message)*num_hosts);
  346. if(req==NULL) die(STATE_UNKNOWN, "can not allocate ntp message array");
  347. socklist=(int*)malloc(sizeof(int)*num_hosts);
  348. if(socklist==NULL) die(STATE_UNKNOWN, "can not allocate socket array");
  349. ufds=(struct pollfd*)malloc(sizeof(struct pollfd)*num_hosts);
  350. if(ufds==NULL) die(STATE_UNKNOWN, "can not allocate socket array");
  351. servers=(ntp_server_results*)malloc(sizeof(ntp_server_results)*num_hosts);
  352. if(servers==NULL) die(STATE_UNKNOWN, "can not allocate server array");
  353. memset(servers, 0, sizeof(ntp_server_results)*num_hosts);
  354. DBG(printf("Found %d peers to check\n", num_hosts));
  355. /* setup each socket for writing, and the corresponding struct pollfd */
  356. ai_tmp=ai;
  357. for(i=0;ai_tmp;i++){
  358. socklist[i]=socket(ai_tmp->ai_family, SOCK_DGRAM, IPPROTO_UDP);
  359. if(socklist[i] == -1) {
  360. perror(NULL);
  361. die(STATE_UNKNOWN, "can not create new socket");
  362. }
  363. if(connect(socklist[i], ai_tmp->ai_addr, ai_tmp->ai_addrlen)){
  364. /* don't die here, because it is enough if there is one server
  365. answering in time. This also would break for dual ipv4/6 stacked
  366. ntp servers when the client only supports on of them.
  367. */
  368. DBG(printf("can't create socket connection on peer %i: %s\n", i, strerror(errno)));
  369. } else {
  370. ufds[i].fd=socklist[i];
  371. ufds[i].events=POLLIN;
  372. ufds[i].revents=0;
  373. }
  374. ai_tmp = ai_tmp->ai_next;
  375. }
  376. /* now do AVG_NUM checks to each host. we stop before timeout/2 seconds
  377. * have passed in order to ensure post-processing and jitter time. */
  378. now_time=start_ts=time(NULL);
  379. while(servers_completed<num_hosts && now_time-start_ts <= timeout_interval/2){
  380. /* loop through each server and find each one which hasn't
  381. * been touched in the past second or so and is still lacking
  382. * some responses. for each of these servers, send a new request,
  383. * and update the "waiting" timestamp with the current time. */
  384. now_time=time(NULL);
  385. for(i=0; i<num_hosts; i++){
  386. if(servers[i].waiting<now_time && servers[i].num_responses<AVG_NUM){
  387. if(verbose && servers[i].waiting != 0) printf("re-");
  388. if(verbose) printf("sending request to peer %d\n", i);
  389. setup_request(&req[i]);
  390. write(socklist[i], &req[i], sizeof(ntp_message));
  391. if(servers[i].waiting == 0) now_time++;
  392. servers[i].waiting=now_time;
  393. break;
  394. }
  395. }
  396. /* quickly poll for any sockets with pending data */
  397. servers_readable=poll(ufds, num_hosts, 100);
  398. if(servers_readable==-1){
  399. perror("polling ntp sockets");
  400. die(STATE_UNKNOWN, "communication errors");
  401. }
  402. /* read from any sockets with pending data */
  403. for(i=0; servers_readable && i<num_hosts; i++){
  404. if(ufds[i].revents&POLLIN && servers[i].num_responses < AVG_NUM){
  405. if(verbose) {
  406. printf("response from peer %d: ", i);
  407. }
  408. read(ufds[i].fd, &req[i], sizeof(ntp_message));
  409. gettimeofday(&recv_time, NULL);
  410. DBG(print_ntp_message(&req[i]));
  411. respnum=servers[i].num_responses++;
  412. servers[i].offset[respnum]=calc_offset(&req[i], &recv_time);
  413. if(verbose) {
  414. printf("offset %.10g\n", servers[i].offset[respnum]);
  415. }
  416. servers[i].stratum=req[i].stratum;
  417. servers[i].rtdisp=NTP32asDOUBLE(req[i].rtdisp);
  418. servers[i].rtdelay=NTP32asDOUBLE(req[i].rtdelay);
  419. servers[i].flags=req[i].flags;
  420. servers_readable--;
  421. one_read = 1;
  422. if(servers[i].num_responses==AVG_NUM) servers_completed++;
  423. }
  424. }
  425. /* lather, rinse, repeat. */
  426. }
  427. if (one_read == 0) {
  428. die(timeout_state, "%s: No response from NTP server\n", state_text(timeout_state));
  429. }
  430. /* now, pick the best server from the list */
  431. best_index=best_offset_server(servers, num_hosts);
  432. if(best_index < 0){
  433. *status=STATE_UNKNOWN;
  434. } else {
  435. /* finally, calculate the average offset */
  436. for(i=0; i<servers[best_index].num_responses;i++){
  437. avg_offset+=servers[best_index].offset[i];
  438. }
  439. avg_offset/=servers[best_index].num_responses;
  440. }
  441. /* cleanup */
  442. /* FIXME: Not closing the socket to avoid re-use of the local port
  443. * which can cause old NTP packets to be read instead of NTP control
  444. * pactets in jitter_request(). THERE MUST BE ANOTHER WAY...
  445. * for(j=0; j<num_hosts; j++){ close(socklist[j]); } */
  446. free(socklist);
  447. free(ufds);
  448. free(servers);
  449. free(req);
  450. freeaddrinfo(ai);
  451. if(verbose) printf("overall average offset: %.10g\n", avg_offset);
  452. return avg_offset;
  453. }
  454. void
  455. setup_control_request(ntp_control_message *p, uint8_t opcode, uint16_t seq){
  456. memset(p, 0, sizeof(ntp_control_message));
  457. LI_SET(p->flags, LI_NOWARNING);
  458. VN_SET(p->flags, VN_RESERVED);
  459. MODE_SET(p->flags, MODE_CONTROLMSG);
  460. OP_SET(p->op, opcode);
  461. p->seq = htons(seq);
  462. /* Remaining fields are zero for requests */
  463. }
  464. /* XXX handle responses with the error bit set */
  465. double jitter_request(const char *host, int *status){
  466. int conn=-1, i, npeers=0, num_candidates=0, syncsource_found=0;
  467. int run=0, min_peer_sel=PEER_INCLUDED, num_selected=0, num_valid=0;
  468. int peers_size=0, peer_offset=0;
  469. ntp_assoc_status_pair *peers=NULL;
  470. ntp_control_message req;
  471. const char *getvar = "jitter";
  472. double rval = 0.0, jitter = -1.0;
  473. char *startofvalue=NULL, *nptr=NULL;
  474. void *tmp;
  475. /* Long-winded explanation:
  476. * Getting the jitter requires a number of steps:
  477. * 1) Send a READSTAT request.
  478. * 2) Interpret the READSTAT reply
  479. * a) The data section contains a list of peer identifiers (16 bits)
  480. * and associated status words (16 bits)
  481. * b) We want the value of 0x06 in the SEL (peer selection) value,
  482. * which means "current synchronizatin source". If that's missing,
  483. * we take anything better than 0x04 (see the rfc for details) but
  484. * set a minimum of warning.
  485. * 3) Send a READVAR request for information on each peer identified
  486. * in 2b greater than the minimum selection value.
  487. * 4) Extract the jitter value from the data[] (it's ASCII)
  488. */
  489. my_udp_connect(server_address, 123, &conn);
  490. /* keep sending requests until the server stops setting the
  491. * REM_MORE bit, though usually this is only 1 packet. */
  492. do{
  493. setup_control_request(&req, OP_READSTAT, 1);
  494. DBG(printf("sending READSTAT request"));
  495. write(conn, &req, SIZEOF_NTPCM(req));
  496. DBG(print_ntp_control_message(&req));
  497. /* Attempt to read the largest size packet possible */
  498. req.count=htons(MAX_CM_SIZE);
  499. DBG(printf("receiving READSTAT response"))
  500. read(conn, &req, SIZEOF_NTPCM(req));
  501. DBG(print_ntp_control_message(&req));
  502. /* Each peer identifier is 4 bytes in the data section, which
  503. * we represent as a ntp_assoc_status_pair datatype.
  504. */
  505. peers_size+=ntohs(req.count);
  506. if((tmp=realloc(peers, peers_size)) == NULL)
  507. free(peers), die(STATE_UNKNOWN, "can not (re)allocate 'peers' buffer\n");
  508. peers=tmp;
  509. memcpy((void*)((ptrdiff_t)peers+peer_offset), (void*)req.data, ntohs(req.count));
  510. npeers=peers_size/sizeof(ntp_assoc_status_pair);
  511. peer_offset+=ntohs(req.count);
  512. } while(req.op&REM_MORE);
  513. /* first, let's find out if we have a sync source, or if there are
  514. * at least some candidates. in the case of the latter we'll issue
  515. * a warning but go ahead with the check on them. */
  516. for (i = 0; i < npeers; i++){
  517. if (PEER_SEL(peers[i].status) >= PEER_INCLUDED){
  518. num_candidates++;
  519. if(PEER_SEL(peers[i].status) >= PEER_SYNCSOURCE){
  520. syncsource_found=1;
  521. min_peer_sel=PEER_SYNCSOURCE;
  522. }
  523. }
  524. }
  525. if(verbose) printf("%d candidate peers available\n", num_candidates);
  526. if(verbose && syncsource_found) printf("synchronization source found\n");
  527. if(! syncsource_found){
  528. *status = STATE_UNKNOWN;
  529. if(verbose) printf("warning: no synchronization source found\n");
  530. }
  531. for (run=0; run<AVG_NUM; run++){
  532. if(verbose) printf("jitter run %d of %d\n", run+1, AVG_NUM);
  533. for (i = 0; i < npeers; i++){
  534. /* Only query this server if it is the current sync source */
  535. if (PEER_SEL(peers[i].status) >= min_peer_sel){
  536. char jitter_data[MAX_CM_SIZE+1];
  537. size_t jitter_data_count;
  538. num_selected++;
  539. setup_control_request(&req, OP_READVAR, 2);
  540. req.assoc = peers[i].assoc;
  541. /* By spec, putting the variable name "jitter" in the request
  542. * should cause the server to provide _only_ the jitter value.
  543. * thus reducing net traffic, guaranteeing us only a single
  544. * datagram in reply, and making interpretation much simpler
  545. */
  546. /* Older servers doesn't know what jitter is, so if we get an
  547. * error on the first pass we redo it with "dispersion" */
  548. strncpy(req.data, getvar, MAX_CM_SIZE-1);
  549. req.count = htons(strlen(getvar));
  550. DBG(printf("sending READVAR request...\n"));
  551. write(conn, &req, SIZEOF_NTPCM(req));
  552. DBG(print_ntp_control_message(&req));
  553. req.count = htons(MAX_CM_SIZE);
  554. DBG(printf("receiving READVAR response...\n"));
  555. read(conn, &req, SIZEOF_NTPCM(req));
  556. DBG(print_ntp_control_message(&req));
  557. if(req.op&REM_ERROR && strstr(getvar, "jitter")) {
  558. if(verbose) printf("The 'jitter' command failed (old ntp server?)\nRestarting with 'dispersion'...\n");
  559. getvar = "dispersion";
  560. num_selected--;
  561. i--;
  562. continue;
  563. }
  564. /* get to the float value */
  565. if(verbose) {
  566. printf("parsing jitter from peer %.2x: ", ntohs(peers[i].assoc));
  567. }
  568. if((jitter_data_count = ntohs(req.count)) >= sizeof(jitter_data)){
  569. die(STATE_UNKNOWN,
  570. _("jitter response too large (%lu bytes)\n"),
  571. (unsigned long)jitter_data_count);
  572. }
  573. memcpy(jitter_data, req.data, jitter_data_count);
  574. jitter_data[jitter_data_count] = '\0';
  575. startofvalue = strchr(jitter_data, '=');
  576. if(startofvalue != NULL) {
  577. startofvalue++;
  578. jitter = strtod(startofvalue, &nptr);
  579. }
  580. if(startofvalue == NULL || startofvalue==nptr){
  581. printf("warning: unable to read server jitter response.\n");
  582. *status = STATE_UNKNOWN;
  583. } else {
  584. if(verbose) printf("%g\n", jitter);
  585. num_valid++;
  586. rval += jitter;
  587. }
  588. }
  589. }
  590. if(verbose){
  591. printf("jitter parsed from %d/%d peers\n", num_valid, num_selected);
  592. }
  593. }
  594. rval = num_valid ? rval / num_valid : -1.0;
  595. close(conn);
  596. if(peers!=NULL) free(peers);
  597. /* If we return -1.0, it means no synchronization source was found */
  598. return rval;
  599. }
  600. int process_arguments(int argc, char **argv){
  601. int c;
  602. int option=0;
  603. static struct option longopts[] = {
  604. {"version", no_argument, 0, 'V'},
  605. {"help", no_argument, 0, 'h'},
  606. {"verbose", no_argument, 0, 'v'},
  607. {"use-ipv4", no_argument, 0, '4'},
  608. {"use-ipv6", no_argument, 0, '6'},
  609. {"warning", required_argument, 0, 'w'},
  610. {"critical", required_argument, 0, 'c'},
  611. {"jwarn", required_argument, 0, 'j'},
  612. {"jcrit", required_argument, 0, 'k'},
  613. {"timeout", required_argument, 0, 't'},
  614. {"hostname", required_argument, 0, 'H'},
  615. {"allow-zero-stratum", no_argument, 0, 'z'},
  616. {0, 0, 0, 0}
  617. };
  618. if (argc < 2)
  619. usage ("\n");
  620. while (1) {
  621. c = getopt_long (argc, argv, "Vhv46w:c:j:k:t:H:", longopts, &option);
  622. if (c == -1 || c == EOF || c == 1)
  623. break;
  624. switch (c) {
  625. case 'h':
  626. print_help();
  627. exit(STATE_OK);
  628. break;
  629. case 'V':
  630. print_revision(progname, NP_VERSION);
  631. exit(STATE_OK);
  632. break;
  633. case 'v':
  634. verbose++;
  635. break;
  636. case 'w':
  637. do_offset=1;
  638. owarn = optarg;
  639. break;
  640. case 'c':
  641. do_offset=1;
  642. ocrit = optarg;
  643. break;
  644. case 'j':
  645. do_jitter=1;
  646. jwarn = optarg;
  647. break;
  648. case 'k':
  649. do_jitter=1;
  650. jcrit = optarg;
  651. break;
  652. case 'H':
  653. if(is_host(optarg) == FALSE)
  654. usage2(_("Invalid hostname/address"), optarg);
  655. server_address = strdup(optarg);
  656. break;
  657. case 't':
  658. timeout_interval = parse_timeout_string(optarg);
  659. break;
  660. case 'z':
  661. allow_zero_stratum = 1;
  662. break;
  663. case '4':
  664. address_family = AF_INET;
  665. break;
  666. case '6':
  667. #ifdef USE_IPV6
  668. address_family = AF_INET6;
  669. #else
  670. usage4 (_("IPv6 support not available"));
  671. #endif
  672. break;
  673. case '?':
  674. /* print short usage statement if args not parsable */
  675. usage5 ();
  676. break;
  677. }
  678. }
  679. if(server_address == NULL){
  680. usage4(_("Hostname was not supplied"));
  681. }
  682. return 0;
  683. }
  684. char *perfd_offset (double offset)
  685. {
  686. return fperfdata ("offset", offset, "s",
  687. TRUE, offset_thresholds->warning->end,
  688. TRUE, offset_thresholds->critical->end,
  689. FALSE, 0, FALSE, 0);
  690. }
  691. char *perfd_jitter (double jitter)
  692. {
  693. return fperfdata ("jitter", jitter, "s",
  694. do_jitter, jitter_thresholds->warning->end,
  695. do_jitter, jitter_thresholds->critical->end,
  696. TRUE, 0, FALSE, 0);
  697. }
  698. int main(int argc, char *argv[]){
  699. int result, offset_result, jitter_result;
  700. double offset=0, jitter=0;
  701. char *result_line, *perfdata_line;
  702. setlocale (LC_ALL, "");
  703. bindtextdomain (PACKAGE, LOCALEDIR);
  704. textdomain (PACKAGE);
  705. offset_result = jitter_result = STATE_OK;
  706. /* Parse extra opts if any */
  707. argv=np_extra_opts (&argc, argv, progname);
  708. if (process_arguments (argc, argv) == ERROR)
  709. usage4 (_("Could not parse arguments"));
  710. set_thresholds(&offset_thresholds, owarn, ocrit);
  711. set_thresholds(&jitter_thresholds, jwarn, jcrit);
  712. /* initialize alarm signal handling */
  713. signal (SIGALRM, socket_timeout_alarm_handler);
  714. /* set socket timeout */
  715. alarm (timeout_interval);
  716. offset = offset_request(server_address, &offset_result);
  717. /* check_ntp used to always return CRITICAL if offset_result == STATE_UNKNOWN.
  718. * Now we'll only do that is the offset thresholds were set */
  719. if (do_offset && offset_result == STATE_UNKNOWN) {
  720. result = STATE_CRITICAL;
  721. } else {
  722. result = get_status(fabs(offset), offset_thresholds);
  723. }
  724. /* If not told to check the jitter, we don't even send packets.
  725. * jitter is checked using NTP control packets, which not all
  726. * servers recognize. Trying to check the jitter on OpenNTPD
  727. * (for example) will result in an error
  728. */
  729. if(do_jitter){
  730. jitter=jitter_request(server_address, &jitter_result);
  731. result = max_state_alt(result, get_status(jitter, jitter_thresholds));
  732. /* -1 indicates that we couldn't calculate the jitter
  733. * Only overrides STATE_OK from the offset */
  734. if(jitter == -1.0 && result == STATE_OK)
  735. result = STATE_UNKNOWN;
  736. }
  737. result = max_state_alt(result, jitter_result);
  738. switch (result) {
  739. case STATE_CRITICAL :
  740. xasprintf(&result_line, _("NTP CRITICAL:"));
  741. break;
  742. case STATE_WARNING :
  743. xasprintf(&result_line, _("NTP WARNING:"));
  744. break;
  745. case STATE_OK :
  746. xasprintf(&result_line, _("NTP OK:"));
  747. break;
  748. default :
  749. xasprintf(&result_line, _("NTP UNKNOWN:"));
  750. break;
  751. }
  752. if(offset_result == STATE_UNKNOWN){
  753. xasprintf(&result_line, "%s %s", result_line, _("Offset unknown"));
  754. xasprintf(&perfdata_line, "");
  755. } else {
  756. xasprintf(&result_line, "%s %s %.10g secs", result_line, _("Offset"), offset);
  757. xasprintf(&perfdata_line, "%s", perfd_offset(offset));
  758. }
  759. if (do_jitter) {
  760. xasprintf(&result_line, "%s, jitter=%f", result_line, jitter);
  761. xasprintf(&perfdata_line, "%s %s", perfdata_line, perfd_jitter(jitter));
  762. }
  763. printf("%s|%s\n", result_line, perfdata_line);
  764. if(server_address!=NULL) free(server_address);
  765. return result;
  766. }
  767. void print_help(void){
  768. print_revision(progname, NP_VERSION);
  769. printf ("Copyright (c) 2006 Sean Finney\n");
  770. printf (COPYRIGHT, copyright, email);
  771. printf ("%s\n", _("This plugin checks the selected ntp server"));
  772. printf ("\n\n");
  773. print_usage();
  774. printf (UT_HELP_VRSN);
  775. printf (UT_EXTRA_OPTS);
  776. printf (UT_HOST_PORT, 'p', "123");
  777. printf (UT_IPv46);
  778. printf (" %s\n", "-w, --warning=THRESHOLD");
  779. printf (" %s\n", _("Offset to result in warning status (seconds)"));
  780. printf (" %s\n", "-c, --critical=THRESHOLD");
  781. printf (" %s\n", _("Offset to result in critical status (seconds)"));
  782. printf (" %s\n", "-j, --jwarn=THRESHOLD");
  783. printf (" %s\n", _("Warning threshold for jitter"));
  784. printf (" %s\n", "-k, --jcrit=THRESHOLD");
  785. printf (" %s\n", _("Critical threshold for jitter"));
  786. printf (" %s\n", "-z, --allow-zero-stratum");
  787. printf (" %s\n", _("Do not discard DNS servers which report a stratum of zero (0)"));
  788. printf (UT_CONN_TIMEOUT, DEFAULT_SOCKET_TIMEOUT);
  789. printf (UT_VERBOSE);
  790. printf("\n");
  791. printf("%s\n", _("Notes:"));
  792. printf(UT_THRESHOLDS_NOTES);
  793. printf("\n");
  794. printf("%s\n", _("Examples:"));
  795. printf(" %s\n", _("Normal offset check:"));
  796. printf(" %s\n", ("./check_ntp -H ntpserv -w 0.5 -c 1"));
  797. printf("\n");
  798. printf(" %s\n", _("Check jitter too, avoiding critical notifications if jitter isn't available"));
  799. printf(" %s\n", _("(See Notes above for more details on thresholds formats):"));
  800. printf(" %s\n", ("./check_ntp -H ntpserv -w 0.5 -c 1 -j -1:100 -k -1:200"));
  801. printf (UT_SUPPORT);
  802. printf ("%s\n", _("WARNING: check_ntp is deprecated. Please use check_ntp_peer or"));
  803. printf ("%s\n\n", _("check_ntp_time instead."));
  804. }
  805. void
  806. print_usage(void)
  807. {
  808. printf ("%s\n", _("WARNING: check_ntp is deprecated. Please use check_ntp_peer or"));
  809. printf ("%s\n\n", _("check_ntp_time instead."));
  810. printf ("%s\n", _("Usage:"));
  811. printf(" %s -H <host> [-w <warn>] [-c <crit>] [-j <warn>] [-k <crit>] [-4|-6] [-v verbose]\n", progname);
  812. }