clients.cpp 20 KB

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  1. #include <iostream>
  2. #include <functional>
  3. #include "../App/appconfig.hpp"
  4. // The next line suppresses a deprecation warning within boost
  5. #define BOOST_BIND_GLOBAL_PLACEHOLDERS
  6. #include "boost/property_tree/ptree.hpp"
  7. #include "boost/property_tree/json_parser.hpp"
  8. #include <boost/asio.hpp>
  9. #include <thread>
  10. #include "gcm.h"
  11. #include "sgx_tcrypto.h"
  12. #include "clients.hpp"
  13. #define CEILDIV(x,y) (((x)+(y)-1)/(y))
  14. // Split a hostport string like "127.0.0.1:12000" at the rightmost colon
  15. // into a host part "127.0.0.1" and a port part "12000".
  16. static bool split_host_port(std::string &host, std::string &port,
  17. const std::string &hostport)
  18. {
  19. size_t colon = hostport.find_last_of(':');
  20. if (colon == std::string::npos) {
  21. std::cerr << "Cannot parse \"" << hostport << "\" as host:port\n";
  22. return false;
  23. }
  24. host = hostport.substr(0, colon);
  25. port = hostport.substr(colon+1);
  26. return true;
  27. }
  28. // Convert a single hex character into its value from 0 to 15. Return
  29. // true on success, false if it wasn't a hex character.
  30. static inline bool hextoval(unsigned char &val, char hex)
  31. {
  32. if (hex >= '0' && hex <= '9') {
  33. val = ((unsigned char)hex)-'0';
  34. } else if (hex >= 'a' && hex <= 'f') {
  35. val = ((unsigned char)hex)-'a'+10;
  36. } else if (hex >= 'A' && hex <= 'F') {
  37. val = ((unsigned char)hex)-'A'+10;
  38. } else {
  39. return false;
  40. }
  41. return true;
  42. }
  43. // Convert a 2*len hex character string into a len-byte buffer. Return
  44. // true on success, false on failure.
  45. static bool hextobuf(unsigned char *buf, const char *str, size_t len)
  46. {
  47. if (strlen(str) != 2*len) {
  48. std::cerr << "Hex string was not the expected size\n";
  49. return false;
  50. }
  51. for (size_t i=0;i<len;++i) {
  52. unsigned char hi, lo;
  53. if (!hextoval(hi, str[2*i]) || !hextoval(lo, str[2*i+1])) {
  54. std::cerr << "Cannot parse string as hex\n";
  55. return false;
  56. }
  57. buf[i] = (unsigned char)((hi << 4) + lo);
  58. }
  59. return true;
  60. }
  61. void displayMessage(unsigned char *msg, uint16_t msg_size) {
  62. clientid_t sid, rid;
  63. unsigned char *ptr = msg;
  64. sid = *((clientid_t*) ptr);
  65. ptr+=sizeof(sid);
  66. rid = *((clientid_t*) ptr);
  67. ptr+=sizeof(sid);
  68. printf("Sender ID: %d, Receiver ID: %d, Token: N/A\n", sid, rid );
  69. printf("Message: ");
  70. for(int j = 0; j<msg_size - sizeof(sid)*2; j++) {
  71. printf("%x", (*ptr));
  72. ptr++;
  73. }
  74. printf("\n");
  75. }
  76. void displayPtMessageBundle(unsigned char *bundle, uint16_t priv_out, uint16_t msg_size) {
  77. unsigned char *ptr = bundle;
  78. for(int i=0; i<priv_out; i++) {
  79. displayMessage(ptr, msg_size);
  80. printf("\n");
  81. ptr+=msg_size;
  82. }
  83. printf("\n");
  84. }
  85. void displayEncMessageBundle(unsigned char *bundle, uint16_t priv_out, uint16_t msg_size) {
  86. unsigned char *ptr = bundle;
  87. uint64_t header = *((uint64_t*) ptr);
  88. ptr+=sizeof(uint64_t);
  89. printf("IV: ");
  90. for(int i=0; i<SGX_AESGCM_IV_SIZE; i++) {
  91. printf("%x", ptr[i]);
  92. }
  93. printf("\n");
  94. ptr+= SGX_AESGCM_IV_SIZE;
  95. for(int i=0; i<priv_out; i++) {
  96. displayMessage(ptr, msg_size);
  97. ptr+=msg_size;
  98. }
  99. printf("MAC: ");
  100. for(int i=0; i<SGX_AESGCM_MAC_SIZE; i++) {
  101. printf("%x", ptr[i]);
  102. }
  103. printf("\n");
  104. }
  105. static inline uint32_t encMsgBundleSize(uint16_t priv_out, uint16_t msg_size) {
  106. return(SGX_AESGCM_IV_SIZE + (priv_out * msg_size) + SGX_AESGCM_MAC_SIZE);
  107. }
  108. static inline uint32_t ptMsgBundleSize(uint16_t priv_out, uint16_t msg_size) {
  109. return((priv_out * msg_size));
  110. }
  111. bool config_parse(Config &config, const std::string configstr,
  112. std::vector<NodeConfig> &ingestion_nodes,
  113. std::vector<NodeConfig> &storage_nodes,
  114. std::vector<uint16_t> &storage_map)
  115. {
  116. bool found_params = false;
  117. bool ret = true;
  118. std::istringstream configstream(configstr);
  119. boost::property_tree::ptree conftree;
  120. read_json(configstream, conftree);
  121. uint16_t node_num = 0;
  122. for (auto & entry : conftree) {
  123. if (!entry.first.compare("params")) {
  124. for (auto & pentry : entry.second) {
  125. if (!pentry.first.compare("msg_size")) {
  126. config.msg_size = pentry.second.get_value<uint16_t>();
  127. } else if (!pentry.first.compare("user_count")) {
  128. config.user_count = pentry.second.get_value<uint32_t>();
  129. } else if (!pentry.first.compare("priv_out")) {
  130. config.m_priv_out = pentry.second.get_value<uint8_t>();
  131. } else if (!pentry.first.compare("priv_in")) {
  132. config.m_priv_in = pentry.second.get_value<uint8_t>();
  133. } else if (!pentry.first.compare("pub_out")) {
  134. config.m_pub_out = pentry.second.get_value<uint8_t>();
  135. } else if (!pentry.first.compare("pub_in")) {
  136. config.m_pub_in = pentry.second.get_value<uint8_t>();
  137. // Currently hardcoding an AES key for client -> server communication
  138. } else if (!pentry.first.compare("master_secret")) {
  139. std::string hex_key = pentry.second.data();
  140. memcpy(config.master_secret, hex_key.c_str(), SGX_AESGCM_KEY_SIZE);
  141. } else {
  142. std::cerr << "Unknown field in params: " <<
  143. pentry.first << "\n";
  144. ret = false;
  145. }
  146. }
  147. found_params = true;
  148. } else if (!entry.first.compare("nodes")) {
  149. for (auto & node : entry.second) {
  150. NodeConfig nc;
  151. // All nodes need to be assigned their role in manifest.yaml
  152. nc.roles = 0;
  153. for (auto & nentry : node.second) {
  154. if (!nentry.first.compare("name")) {
  155. nc.name = nentry.second.get_value<std::string>();
  156. } else if (!nentry.first.compare("pubkey")) {
  157. ret &= hextobuf((unsigned char *)&nc.pubkey,
  158. nentry.second.get_value<std::string>().c_str(),
  159. sizeof(nc.pubkey));
  160. } else if (!nentry.first.compare("weight")) {
  161. nc.weight = nentry.second.get_value<std::uint8_t>();
  162. } else if (!nentry.first.compare("listen")) {
  163. ret &= split_host_port(nc.listenhost, nc.listenport,
  164. nentry.second.get_value<std::string>());
  165. } else if (!nentry.first.compare("clisten")) {
  166. ret &= split_host_port(nc.clistenhost, nc.clistenport,
  167. nentry.second.get_value<std::string>());
  168. } else if (!nentry.first.compare("roles")) {
  169. nc.roles = nentry.second.get_value<std::uint8_t>();
  170. } else {
  171. std::cerr << "Unknown field in host config: " <<
  172. nentry.first << "\n";
  173. ret = false;
  174. }
  175. }
  176. if(nc.roles & ROLE_INGESTION) {
  177. ingestion_nodes.push_back(std::move(nc));
  178. }
  179. if(nc.roles & ROLE_STORAGE) {
  180. storage_nodes.push_back(std::move(nc));
  181. storage_map.push_back(node_num);
  182. }
  183. node_num++;
  184. }
  185. } else {
  186. std::cerr << "Unknown key in config: " <<
  187. entry.first << "\n";
  188. ret = false;
  189. }
  190. }
  191. if (!found_params) {
  192. std::cerr << "Could not find params in config\n";
  193. ret = false;
  194. }
  195. return ret;
  196. }
  197. static void usage(const char *argv0)
  198. {
  199. fprintf(stderr, "%s [-t nthreads] < config.json\n",
  200. argv0);
  201. exit(1);
  202. }
  203. /*
  204. Generate EMK (Encryption master Secret Key) and TMK (Token master Secret Key)
  205. */
  206. int generateMasterKeys(sgx_aes_gcm_128bit_key_t master_secret,
  207. aes_key &EMK, aes_key &TMK )
  208. {
  209. unsigned char zeroes[SGX_AESGCM_KEY_SIZE];
  210. unsigned char iv[SGX_AESGCM_IV_SIZE];
  211. unsigned char mac[SGX_AESGCM_MAC_SIZE];
  212. memset(iv, 0, SGX_AESGCM_IV_SIZE);
  213. memset(zeroes, 0, SGX_AESGCM_KEY_SIZE);
  214. memcpy(iv, "Encryption", sizeof("Encryption"));
  215. if (sizeof(zeroes) != gcm_encrypt(zeroes, SGX_AESGCM_KEY_SIZE, NULL, 0,
  216. master_secret, iv, SGX_AESGCM_IV_SIZE, EMK, mac)) {
  217. printf("Client: generateMasterKeys FAIL\n");
  218. return -1;
  219. }
  220. printf("\n\nEncryption Master Key: ");
  221. for(int i=0;i<SGX_AESGCM_KEY_SIZE;i++) {
  222. printf("%x", EMK[i]);
  223. }
  224. printf("\n");
  225. memset(iv, 0, SGX_AESGCM_IV_SIZE);
  226. memcpy(iv, "Token", sizeof("Token"));
  227. if (sizeof(zeroes) != gcm_encrypt(zeroes, SGX_AESGCM_KEY_SIZE, NULL, 0,
  228. master_secret, iv, SGX_AESGCM_IV_SIZE, TMK, mac)) {
  229. printf("generateMasterKeys failed\n");
  230. return -1;
  231. }
  232. printf("Token Master Key: ");
  233. for(int i=0;i<SGX_AESGCM_KEY_SIZE;i++) {
  234. printf("%x", TMK[i]);
  235. }
  236. printf("\n\n");
  237. return 1;
  238. }
  239. /*
  240. Takes the client_number, the master aes_key for generating client encryption keys,
  241. and the client aes_key to be generated.
  242. */
  243. int generateClientEncryptionKey(clientid_t client_number, aes_key &EMK, aes_key &client_key)
  244. {
  245. unsigned char zeroes[SGX_AESGCM_KEY_SIZE];
  246. unsigned char iv[SGX_AESGCM_IV_SIZE];
  247. unsigned char tag[SGX_AESGCM_MAC_SIZE];
  248. memset(iv, 0, SGX_AESGCM_IV_SIZE);
  249. memset(zeroes, 0, SGX_AESGCM_KEY_SIZE);
  250. memset(tag, 0, SGX_AESGCM_KEY_SIZE);
  251. memcpy(iv, &client_number, sizeof(client_number));
  252. /*
  253. printf("Client Key: (before Gen) ");
  254. for(int i=0;i<SGX_AESGCM_KEY_SIZE;i++) {
  255. printf("%x", client_key[i]);
  256. }
  257. printf("\n");
  258. */
  259. if (sizeof(zeroes) != gcm_encrypt(zeroes, SGX_AESGCM_KEY_SIZE, NULL, 0, EMK,
  260. iv, SGX_AESGCM_IV_SIZE, client_key, tag)) {
  261. printf("generateClientEncryptionKey failed\n");
  262. return -1;
  263. }
  264. /*
  265. printf("Client Key: (after Gen) ");
  266. for(int i=0;i<SGX_AESGCM_KEY_SIZE;i++) {
  267. printf("%x", client_key[i]);
  268. }
  269. printf("\n");
  270. */
  271. return 1;
  272. }
  273. void Client::initializeSocket(boost::asio::io_context &ioc,
  274. NodeConfig &ing_server) {
  275. boost::system::error_code err;
  276. boost::asio::ip::tcp::resolver resolver(ioc);
  277. while(1) {
  278. #ifdef VERBOSE_NET
  279. std::cerr << "Connecting to " << ing_server.name << "...\n";
  280. std::cout << ing_server.clistenhost << ":" << ing_server.clistenport;
  281. #endif
  282. // ingestion_sock needs io_context
  283. ingestion_sock = new boost::asio::ip::tcp::socket(ioc);
  284. boost::asio::connect(*ingestion_sock,
  285. resolver.resolve(ing_server.clistenhost,
  286. ing_server.clistenport), err);
  287. if (!err) break;
  288. std::cerr << "Connection to " << ing_server.name <<
  289. " refused, will , epoch_noretry.\n";
  290. sleep(1);
  291. }
  292. }
  293. /*
  294. Populates the buffer pt_msgbundle with a valid message pt_msgbundle.
  295. Assumes that it is supplied with a pt_msgbundle buffer of the correct length
  296. Correct length for pt_msgbundle = 8 + (priv_out)*(msg_size) + 16 bytes
  297. */
  298. void Client::generateMessageBundle(uint8_t priv_out, uint32_t msg_size,
  299. unsigned char *pt_msgbundle)
  300. {
  301. unsigned char *ptr = pt_msgbundle;
  302. // Setup message pt_msgbundle
  303. for(uint32_t i = 0; i < priv_out; i++) {
  304. memcpy(ptr, &id, sizeof(id));
  305. ptr+=(sizeof(id));
  306. memcpy(ptr, &id, sizeof(id));
  307. ptr+=(sizeof(id));
  308. uint32_t remaining_message_size = msg_size - (sizeof(id)*2);
  309. memset(ptr, 0, remaining_message_size);
  310. ptr+=(remaining_message_size);
  311. }
  312. }
  313. bool Client::encryptMessageBundle(uint32_t enc_bundle_size, unsigned char *pt_msgbundle,
  314. unsigned char *enc_msgbundle)
  315. {
  316. // Encrypt the pt_msgbundle
  317. unsigned char *pt_msgbundle_start = pt_msgbundle;
  318. unsigned char *enc_msgbundle_start = enc_msgbundle + SGX_AESGCM_IV_SIZE;
  319. unsigned char *enc_tag = enc_msgbundle + enc_bundle_size - SGX_AESGCM_MAC_SIZE;
  320. size_t bytes_to_encrypt = enc_bundle_size - SGX_AESGCM_MAC_SIZE - SGX_AESGCM_IV_SIZE;
  321. if (bytes_to_encrypt != gcm_encrypt(pt_msgbundle_start, bytes_to_encrypt,
  322. NULL, 0, key, iv, SGX_AESGCM_IV_SIZE, enc_msgbundle_start, enc_tag)) {
  323. printf("Client: encryptMessageBundle FAIL\n");
  324. return 0;
  325. }
  326. // Copy IV into the bundle
  327. memcpy(enc_msgbundle, iv, SGX_AESGCM_IV_SIZE);
  328. // Update IV
  329. uint64_t *iv_ctr = (uint64_t*) iv;
  330. (*iv_ctr)+=1;
  331. return 1;
  332. }
  333. /*
  334. Assumes pt_msgbundle is a buffer of size messageBundleSize(priv_out, msg_size)
  335. */
  336. void Client::sendMessageBundle(uint16_t priv_out, uint16_t msg_size,
  337. unsigned char *pt_msgbundle, unsigned char *enc_msgbundle)
  338. {
  339. uint32_t enc_bundle_size = encMsgBundleSize(priv_out, msg_size);
  340. generateMessageBundle(priv_out, msg_size, pt_msgbundle);
  341. encryptMessageBundle(enc_bundle_size, pt_msgbundle, enc_msgbundle);
  342. #ifdef VERBOSE_CLIENT
  343. displayPtMessageBundle(pt_msgbundle, priv_out, msg_size);
  344. #endif
  345. boost::asio::write(*ingestion_sock,
  346. boost::asio::buffer(enc_msgbundle, enc_bundle_size));
  347. }
  348. int Client::sendAuthMessage(unsigned long epoch_no)
  349. {
  350. uint32_t auth_size = sizeof(clientid_t) + sizeof(unsigned long) + SGX_AESGCM_KEY_SIZE;
  351. unsigned char *auth_message = (unsigned char*) malloc(auth_size);
  352. unsigned char *am_ptr = auth_message;
  353. memcpy(am_ptr, &sim_id, sizeof(sim_id));
  354. am_ptr+=sizeof(sim_id);
  355. memcpy(am_ptr, &epoch_no, sizeof(unsigned long));
  356. am_ptr+=sizeof(unsigned long);
  357. unsigned char zeroes[SGX_AESGCM_KEY_SIZE] = {0};
  358. unsigned char tag[SGX_AESGCM_MAC_SIZE] = {0};
  359. unsigned char epoch_iv[SGX_AESGCM_IV_SIZE] = {0};
  360. memcpy(epoch_iv, &epoch_no, sizeof(epoch_no));
  361. if (sizeof(zeroes) != gcm_encrypt(zeroes, SGX_AESGCM_KEY_SIZE, NULL, 0, key,
  362. epoch_iv, SGX_AESGCM_IV_SIZE, am_ptr, tag)) {
  363. printf("generateClientEncryptionKey failed\n");
  364. return -1;
  365. }
  366. // Update IV
  367. uint64_t *iv_ctr = (uint64_t*) iv;
  368. (*iv_ctr)+=1;
  369. #ifdef VERBOSE_CLIENT
  370. printf("Client %d auth_message: \n", id);
  371. for(int i=0; i<auth_size; i++) {
  372. printf("%x", auth_message[i]);
  373. }
  374. printf("\n");
  375. #endif
  376. boost::asio::write(*ingestion_sock,
  377. boost::asio::buffer(auth_message, auth_size));
  378. return 1;
  379. }
  380. void generateClients(boost::asio::io_context &io_context,
  381. uint32_t cstart, uint32_t cstop, Client* &clients,
  382. aes_key &EMK, Config &config, std::vector<NodeConfig> &ingestion_nodes,
  383. std::vector<NodeConfig> &storage_nodes, std::vector<uint16_t> &storage_map,
  384. uint32_t num_clients_total, uint32_t clients_per_ing,
  385. uint32_t ing_with_additional)
  386. {
  387. aes_key client_key;
  388. uint16_t num_stg_nodes = storage_nodes.size();
  389. uint16_t *stg_map = new uint16_t[num_stg_nodes];
  390. for(uint32_t i=cstart; i<cstop; i++) {
  391. uint16_t ing_node_this_client = i/clients_per_ing;
  392. if(ing_node_this_client > ing_with_additional && ing_with_additional!=0) {
  393. uint16_t leftover = num_clients_total - (ing_with_additional * clients_per_ing);
  394. ing_node_this_client = ing_with_additional + (leftover / (clients_per_ing-1));
  395. }
  396. int ret = generateClientEncryptionKey(i, EMK, client_key);
  397. clients[i].initClient(i, client_key, num_stg_nodes, storage_map);
  398. clients[i].initializeSocket(io_context, ingestion_nodes[ing_node_this_client]);
  399. /*
  400. // Test that the keys generated match those generated within
  401. // enclave config
  402. unsigned char *ckey;
  403. ckey = clients[i].getKey();
  404. printf("Client %d, id = %d, key: ", i, clients[i].getid());
  405. for(int j=0;j<SGX_AESGCM_KEY_SIZE;j++) {
  406. printf("%x", ckey[j]);
  407. }
  408. printf("\n\n");
  409. */
  410. }
  411. struct timespec ep;
  412. clock_gettime(CLOCK_REALTIME_COARSE, &ep);
  413. unsigned long ep_time = ep.tv_sec * 1000000 + ep.tv_nsec/1000;
  414. unsigned long epoch_no = CEILDIV(ep_time, EPOCH_INTERVAL);
  415. for(uint32_t i=cstart; i<cstop; i++) {
  416. clients[i].sendAuthMessage(epoch_no);
  417. }
  418. }
  419. void sendMessageBundles(uint32_t cstart, uint32_t cstop, Client* &clients,
  420. Config &config)
  421. {
  422. uint16_t priv_out = config.m_priv_out;
  423. uint16_t msg_size = config.msg_size;
  424. uint32_t pt_bundle_size = ptMsgBundleSize(priv_out, msg_size);
  425. uint32_t enc_bundle_size = encMsgBundleSize(priv_out, msg_size);
  426. unsigned char *pt_msgbundle = (unsigned char*) malloc (pt_bundle_size);
  427. unsigned char *enc_msgbundle = (unsigned char*) malloc (enc_bundle_size);
  428. for(uint32_t i=cstart; i<cstop; i++) {
  429. clients[i].sendMessageBundle(priv_out, msg_size, pt_msgbundle, enc_msgbundle);
  430. }
  431. free(pt_msgbundle);
  432. free(enc_msgbundle);
  433. }
  434. /*
  435. Spin config.user_client actual clients. Each client:
  436. 1) Retrieve messages and tokens from their storage server
  437. 2) Send all their messages to the ingestion server
  438. 3) Wait for a predetermined EPOCH_DURATION time
  439. 4) Repeat from 1)
  440. */
  441. int main(int argc, char **argv)
  442. {
  443. // Unbuffer stdout
  444. setbuf(stdout, NULL);
  445. uint16_t nthreads = 1;
  446. const char *progname = argv[0];
  447. std::vector<NodeConfig> ingestion_nodes, storage_nodes;
  448. std::vector<uint16_t> storage_map;
  449. ++argv;
  450. // Parse options
  451. while (*argv && (*argv)[0] == '-') {
  452. if (!strcmp(*argv, "-t")) {
  453. if (argv[1] == NULL) {
  454. usage(progname);
  455. }
  456. nthreads = uint16_t(atoi(argv[1]));
  457. argv += 2;
  458. } else {
  459. usage(progname);
  460. }
  461. }
  462. printf("nthreads = %d\n", nthreads);
  463. // Read the config.json from the first line of stdin. We have to do
  464. // this before outputting anything to avoid potential deadlock with
  465. // the launch program.
  466. std::string configstr;
  467. std::getline(std::cin, configstr);
  468. Config config;
  469. aes_key EMK, TMK;
  470. boost::asio::io_context io_context;
  471. boost::asio::ip::tcp::resolver resolver(io_context);
  472. if (!config_parse(config, configstr, ingestion_nodes,
  473. storage_nodes, storage_map)) {
  474. exit(1);
  475. }
  476. Client *clients = new Client[config.user_count];
  477. printf("Number of ingestion_nodes = %ld, Number of storage_node = %ld\n",
  478. ingestion_nodes.size(), storage_nodes.size());
  479. generateMasterKeys(config.master_secret, EMK, TMK);
  480. uint32_t num_clients_total = config.user_count;
  481. uint16_t num_ing_nodes = ingestion_nodes.size();
  482. uint32_t clients_per_ing = CEILDIV(num_clients_total, num_ing_nodes);
  483. uint32_t clients_per_thread = CEILDIV(num_clients_total, nthreads);
  484. uint16_t ing_with_additional = num_clients_total % num_ing_nodes;
  485. std::thread threads[nthreads];
  486. // Generate all the clients for the experiment
  487. for(int i=0; i<nthreads; i++) {
  488. uint32_t cstart, cstop;
  489. cstart = i * clients_per_thread;
  490. cstop = (i==nthreads-1)? num_clients_total: (i+1) * clients_per_thread;
  491. printf("Thread %d, cstart = %d, cstop = %d\n", i, cstart, cstop);
  492. threads[i] = std::thread(generateClients, std::ref(io_context),
  493. cstart, cstop, std::ref(clients), std::ref(EMK), std::ref(config),
  494. std::ref(ingestion_nodes), std::ref(storage_nodes),
  495. std::ref(storage_map), num_clients_total,
  496. clients_per_ing, ing_with_additional);
  497. }
  498. for(int i=0; i<nthreads; i++) {
  499. threads[i].join();
  500. }
  501. // Multithreaded client message bundle generation and send
  502. uint32_t epoch = 1;
  503. while(epoch <= 3) {
  504. struct timespec tp;
  505. clock_gettime(CLOCK_REALTIME_COARSE, &tp);
  506. unsigned long start = tp.tv_sec * 1000000 + tp.tv_nsec/1000;
  507. for(int i=0; i<nthreads; i++) {
  508. uint32_t cstart, cstop;
  509. cstart = i * clients_per_thread;
  510. cstop = (i==nthreads-1)? num_clients_total: (i+1) * clients_per_thread;
  511. threads[i] = std::thread(sendMessageBundles, cstart, cstop,
  512. std::ref(clients), std::ref(config));
  513. }
  514. for(int i=0; i<nthreads; i++) {
  515. threads[i].join();
  516. }
  517. clock_gettime(CLOCK_REALTIME_COARSE, &tp);
  518. unsigned long end = tp.tv_sec * 1000000 + tp.tv_nsec/1000;
  519. unsigned long time_diff = end - start;
  520. // Sleep for the rest of the epoch interval
  521. printf("Done with submissions for Epoch %d\n", epoch);
  522. if (time_diff < EPOCH_INTERVAL) {
  523. unsigned long time_to_sleep_in_us = (useconds_t) EPOCH_INTERVAL - (useconds_t) time_diff;
  524. //printf("tts_us = %ld\n", time_to_sleep_in_us);
  525. usleep(time_to_sleep_in_us);
  526. }
  527. epoch++;
  528. }
  529. delete [] clients;
  530. }