route.cpp 28 KB

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  1. #include "Enclave_t.h"
  2. #include "config.hpp"
  3. #include "utils.hpp"
  4. #include "sort.hpp"
  5. #include "comms.hpp"
  6. #include "obliv.hpp"
  7. #include "storage.hpp"
  8. #include "route.hpp"
  9. #define PROFILE_ROUTING
  10. enum RouteStep {
  11. ROUTE_NOT_STARTED,
  12. ROUTE_ROUND_1,
  13. ROUTE_ROUND_2
  14. };
  15. // The ingbuf MsgBuffer stores messages an ingestion node ingests while
  16. // waiting for round 1 to start, which will be sorted and sent out in
  17. // round 1. The round1 MsgBuffer stores messages a routing node
  18. // receives in round 1, which will be padded, sorted, and sent out in
  19. // round 2. The round2 MsgBuffer stores messages a storage node
  20. // receives in round 2.
  21. static struct RouteState {
  22. MsgBuffer ingbuf;
  23. MsgBuffer round1;
  24. MsgBuffer round2;
  25. RouteStep step;
  26. uint32_t tot_msg_per_ing;
  27. uint32_t max_msg_to_each_stg;
  28. uint32_t max_round2_msgs;
  29. uint32_t max_stg_msgs;
  30. void *cbpointer;
  31. } route_state;
  32. // Computes ceil(x/y) where x and y are integers, x>=0, y>0.
  33. #define CEILDIV(x,y) (((x)+(y)-1)/(y))
  34. // Call this near the end of ecall_config_load, but before
  35. // comms_init_nodestate. Returns true on success, false on failure.
  36. bool route_init()
  37. {
  38. // Compute the maximum number of messages we could receive by direct
  39. // ingestion
  40. // Each ingestion node will have at most
  41. // ceil(user_count/num_ingestion_nodes) users, and each user will
  42. // send at most m_priv_out messages.
  43. uint32_t users_per_ing = CEILDIV(g_teems_config.user_count,
  44. g_teems_config.num_ingestion_nodes);
  45. uint32_t tot_msg_per_ing = users_per_ing * g_teems_config.m_priv_out;
  46. // Compute the maximum number of messages we could receive in round 1
  47. // Each ingestion node will send us an our_weight/tot_weight
  48. // fraction of the messages they hold
  49. uint32_t max_msg_from_each_ing = CEILDIV(tot_msg_per_ing,
  50. g_teems_config.tot_weight) * g_teems_config.my_weight;
  51. // And the maximum number we can receive in total is that times the
  52. // number of ingestion nodes
  53. uint32_t max_round1_msgs = max_msg_from_each_ing *
  54. g_teems_config.num_ingestion_nodes;
  55. // Compute the maximum number of messages we could send in round 2
  56. // Each storage node has at most this many users
  57. uint32_t users_per_stg = CEILDIV(g_teems_config.user_count,
  58. g_teems_config.num_storage_nodes);
  59. // And so can receive at most this many messages
  60. uint32_t tot_msg_per_stg = users_per_stg *
  61. g_teems_config.m_priv_in;
  62. // Which will be at most this many from us
  63. uint32_t max_msg_to_each_stg = CEILDIV(tot_msg_per_stg,
  64. g_teems_config.tot_weight) * g_teems_config.my_weight;
  65. // But we can't send more messages to each storage server than we
  66. // could receive in total
  67. if (max_msg_to_each_stg > max_round1_msgs) {
  68. max_msg_to_each_stg = max_round1_msgs;
  69. }
  70. // And the max total number of outgoing messages in round 2 is then
  71. uint32_t max_round2_msgs = max_msg_to_each_stg *
  72. g_teems_config.num_storage_nodes;
  73. // In case we have a weird configuration where users can send more
  74. // messages per epoch than they can receive, ensure the round 2
  75. // buffer is large enough to hold the incoming messages as well
  76. if (max_round2_msgs < max_round1_msgs) {
  77. max_round2_msgs = max_round1_msgs;
  78. }
  79. // The max number of messages that can arrive at a storage server
  80. uint32_t max_stg_msgs = tot_msg_per_stg + g_teems_config.tot_weight;
  81. /*
  82. printf("users_per_ing=%u, tot_msg_per_ing=%u, max_msg_from_each_ing=%u, max_round1_msgs=%u, users_per_stg=%u, tot_msg_per_stg=%u, max_msg_to_each_stg=%u, max_round2_msgs=%u, max_stg_msgs=%u\n", users_per_ing, tot_msg_per_ing, max_msg_from_each_ing, max_round1_msgs, users_per_stg, tot_msg_per_stg, max_msg_to_each_stg, max_round2_msgs, max_stg_msgs);
  83. */
  84. // Create the route state
  85. uint8_t my_roles = g_teems_config.roles[g_teems_config.my_node_num];
  86. try {
  87. if (my_roles & ROLE_INGESTION) {
  88. route_state.ingbuf.alloc(tot_msg_per_ing);
  89. }
  90. if (my_roles & ROLE_ROUTING) {
  91. route_state.round1.alloc(max_round2_msgs);
  92. }
  93. if (my_roles & ROLE_STORAGE) {
  94. route_state.round2.alloc(max_stg_msgs);
  95. if (!storage_init(users_per_stg, max_stg_msgs)) {
  96. return false;
  97. }
  98. }
  99. } catch (std::bad_alloc&) {
  100. printf("Memory allocation failed in route_init\n");
  101. return false;
  102. }
  103. route_state.step = ROUTE_NOT_STARTED;
  104. route_state.tot_msg_per_ing = tot_msg_per_ing;
  105. route_state.max_msg_to_each_stg = max_msg_to_each_stg;
  106. route_state.max_round2_msgs = max_round2_msgs;
  107. route_state.max_stg_msgs = max_stg_msgs;
  108. route_state.cbpointer = NULL;
  109. threadid_t nthreads = g_teems_config.nthreads;
  110. #ifdef PROFILE_ROUTING
  111. unsigned long start = printf_with_rtclock("begin precompute evalplans (%u,%hu) (%u,%hu)\n", tot_msg_per_ing, nthreads, max_round2_msgs, nthreads);
  112. #endif
  113. sort_precompute_evalplan(tot_msg_per_ing, nthreads);
  114. sort_precompute_evalplan(max_round2_msgs, nthreads);
  115. #ifdef PROFILE_ROUTING
  116. printf_with_rtclock_diff(start, "end precompute evalplans\n");
  117. #endif
  118. return true;
  119. }
  120. // Precompute the WaksmanNetworks needed for the sorts. If you pass -1,
  121. // it will return the number of different sizes it needs. If you pass
  122. // [0,sizes-1], it will compute one WaksmanNetwork with that size index
  123. // and return the number of available WaksmanNetworks of that size.
  124. size_t ecall_precompute_sort(int sizeidx)
  125. {
  126. size_t ret = 0;
  127. switch(sizeidx) {
  128. case 0:
  129. #ifdef PROFILE_ROUTING
  130. {unsigned long start = printf_with_rtclock("begin precompute WaksmanNetwork (%u)\n", route_state.tot_msg_per_ing);
  131. #endif
  132. ret = sort_precompute(route_state.tot_msg_per_ing);
  133. #ifdef PROFILE_ROUTING
  134. printf_with_rtclock_diff(start, "end precompute Waksman Network (%u)\n", route_state.tot_msg_per_ing);}
  135. #endif
  136. break;
  137. case 1:
  138. #ifdef PROFILE_ROUTING
  139. {unsigned long start = printf_with_rtclock("begin precompute WaksmanNetwork (%u)\n", route_state.max_round2_msgs);
  140. #endif
  141. ret = sort_precompute(route_state.max_round2_msgs);
  142. #ifdef PROFILE_ROUTING
  143. printf_with_rtclock_diff(start, "end precompute Waksman Network (%u)\n", route_state.max_round2_msgs);}
  144. #endif
  145. break;
  146. case 2:
  147. #ifdef PROFILE_ROUTING
  148. {unsigned long start = printf_with_rtclock("begin precompute WaksmanNetwork (%u)\n", route_state.max_stg_msgs);
  149. #endif
  150. ret = sort_precompute(route_state.max_stg_msgs);
  151. #ifdef PROFILE_ROUTING
  152. printf_with_rtclock_diff(start, "end precompute Waksman Network (%u)\n", route_state.max_stg_msgs);}
  153. #endif
  154. break;
  155. default:
  156. ret = 3;
  157. break;
  158. }
  159. return ret;
  160. }
  161. static uint8_t* msgbuffer_get_buf(MsgBuffer &msgbuf,
  162. NodeCommState &, uint32_t tot_enc_chunk_size)
  163. {
  164. uint16_t msg_size = g_teems_config.msg_size;
  165. // Chunks will be encrypted and have a MAC tag attached which will
  166. // not correspond to plaintext bytes, so we can trim them.
  167. // The minimum number of chunks needed to transmit this message
  168. uint32_t min_num_chunks =
  169. (tot_enc_chunk_size + (FRAME_SIZE-1)) / FRAME_SIZE;
  170. // The number of plaintext bytes this message could contain
  171. uint32_t plaintext_bytes = tot_enc_chunk_size -
  172. SGX_AESGCM_MAC_SIZE * min_num_chunks;
  173. assert ((plaintext_bytes % uint32_t(msg_size)) == 0);
  174. uint32_t num_msgs = plaintext_bytes/uint32_t(msg_size);
  175. pthread_mutex_lock(&msgbuf.mutex);
  176. uint32_t start = msgbuf.reserved;
  177. if (start + num_msgs > msgbuf.bufsize) {
  178. pthread_mutex_unlock(&msgbuf.mutex);
  179. printf("Max %u messages exceeded\n", msgbuf.bufsize);
  180. return NULL;
  181. }
  182. msgbuf.reserved += num_msgs;
  183. pthread_mutex_unlock(&msgbuf.mutex);
  184. return msgbuf.buf + start * msg_size;
  185. }
  186. static void round2_received(NodeCommState &nodest,
  187. uint8_t *data, uint32_t plaintext_len, uint32_t);
  188. // A round 1 message was received by a routing node from an ingestion
  189. // node; we put it into the round 2 buffer for processing in round 2
  190. static void round1_received(NodeCommState &nodest,
  191. uint8_t *data, uint32_t plaintext_len, uint32_t)
  192. {
  193. uint16_t msg_size = g_teems_config.msg_size;
  194. assert((plaintext_len % uint32_t(msg_size)) == 0);
  195. uint32_t num_msgs = plaintext_len / uint32_t(msg_size);
  196. uint8_t our_roles = g_teems_config.roles[g_teems_config.my_node_num];
  197. uint8_t their_roles = g_teems_config.roles[nodest.node_num];
  198. pthread_mutex_lock(&route_state.round1.mutex);
  199. route_state.round1.inserted += num_msgs;
  200. route_state.round1.nodes_received += 1;
  201. nodenum_t nodes_received = route_state.round1.nodes_received;
  202. bool completed_prev_round = route_state.round1.completed_prev_round;
  203. pthread_mutex_unlock(&route_state.round1.mutex);
  204. // What is the next message we expect from this node?
  205. if ((our_roles & ROLE_STORAGE) && (their_roles & ROLE_ROUTING)) {
  206. nodest.in_msg_get_buf = [&](NodeCommState &commst,
  207. uint32_t tot_enc_chunk_size) {
  208. return msgbuffer_get_buf(route_state.round2, commst,
  209. tot_enc_chunk_size);
  210. };
  211. nodest.in_msg_received = round2_received;
  212. }
  213. // Otherwise, it's just the next round 1 message, so don't change
  214. // the handlers.
  215. if (nodes_received == g_teems_config.num_ingestion_nodes &&
  216. completed_prev_round) {
  217. route_state.step = ROUTE_ROUND_1;
  218. void *cbpointer = route_state.cbpointer;
  219. route_state.cbpointer = NULL;
  220. ocall_routing_round_complete(cbpointer, 1);
  221. }
  222. }
  223. // A round 2 message was received by a storage node from a routing node
  224. static void round2_received(NodeCommState &nodest,
  225. uint8_t *data, uint32_t plaintext_len, uint32_t)
  226. {
  227. uint16_t msg_size = g_teems_config.msg_size;
  228. assert((plaintext_len % uint32_t(msg_size)) == 0);
  229. uint32_t num_msgs = plaintext_len / uint32_t(msg_size);
  230. uint8_t our_roles = g_teems_config.roles[g_teems_config.my_node_num];
  231. uint8_t their_roles = g_teems_config.roles[nodest.node_num];
  232. pthread_mutex_lock(&route_state.round2.mutex);
  233. route_state.round2.inserted += num_msgs;
  234. route_state.round2.nodes_received += 1;
  235. nodenum_t nodes_received = route_state.round2.nodes_received;
  236. bool completed_prev_round = route_state.round2.completed_prev_round;
  237. pthread_mutex_unlock(&route_state.round2.mutex);
  238. // What is the next message we expect from this node?
  239. if ((our_roles & ROLE_ROUTING) && (their_roles & ROLE_INGESTION)) {
  240. nodest.in_msg_get_buf = [&](NodeCommState &commst,
  241. uint32_t tot_enc_chunk_size) {
  242. return msgbuffer_get_buf(route_state.round1, commst,
  243. tot_enc_chunk_size);
  244. };
  245. nodest.in_msg_received = round1_received;
  246. }
  247. // Otherwise, it's just the next round 2 message, so don't change
  248. // the handlers.
  249. if (nodes_received == g_teems_config.num_routing_nodes &&
  250. completed_prev_round) {
  251. route_state.step = ROUTE_ROUND_2;
  252. void *cbpointer = route_state.cbpointer;
  253. route_state.cbpointer = NULL;
  254. ocall_routing_round_complete(cbpointer, 2);
  255. }
  256. }
  257. // For a given other node, set the received message handler to the first
  258. // message we would expect from them, given their roles and our roles.
  259. void route_init_msg_handler(nodenum_t node_num)
  260. {
  261. // Our roles and their roles
  262. uint8_t our_roles = g_teems_config.roles[g_teems_config.my_node_num];
  263. uint8_t their_roles = g_teems_config.roles[node_num];
  264. // The node communication state
  265. NodeCommState &nodest = g_commstates[node_num];
  266. // If we are a routing node (possibly among other roles) and they
  267. // are an ingestion node (possibly among other roles), a round 1
  268. // routing message is the first thing we expect from them. We put
  269. // these messages into the round1 buffer for processing.
  270. if ((our_roles & ROLE_ROUTING) && (their_roles & ROLE_INGESTION)) {
  271. nodest.in_msg_get_buf = [&](NodeCommState &commst,
  272. uint32_t tot_enc_chunk_size) {
  273. return msgbuffer_get_buf(route_state.round1, commst,
  274. tot_enc_chunk_size);
  275. };
  276. nodest.in_msg_received = round1_received;
  277. }
  278. // Otherwise, if we are a storage node (possibly among other roles)
  279. // and they are a routing node (possibly among other roles), a round
  280. // 2 routing message is the first thing we expect from them
  281. else if ((our_roles & ROLE_STORAGE) && (their_roles & ROLE_ROUTING)) {
  282. nodest.in_msg_get_buf = [&](NodeCommState &commst,
  283. uint32_t tot_enc_chunk_size) {
  284. return msgbuffer_get_buf(route_state.round2, commst,
  285. tot_enc_chunk_size);
  286. };
  287. nodest.in_msg_received = round2_received;
  288. }
  289. // Otherwise, we don't expect a message from this node. Set the
  290. // unknown message handler.
  291. else {
  292. nodest.in_msg_get_buf = default_in_msg_get_buf;
  293. nodest.in_msg_received = unknown_in_msg_received;
  294. }
  295. }
  296. // Directly ingest a buffer of num_msgs messages into the ingbuf buffer.
  297. // Return true on success, false on failure.
  298. bool ecall_ingest_raw(uint8_t *msgs, uint32_t num_msgs)
  299. {
  300. uint16_t msg_size = g_teems_config.msg_size;
  301. MsgBuffer &ingbuf = route_state.ingbuf;
  302. pthread_mutex_lock(&ingbuf.mutex);
  303. uint32_t start = ingbuf.reserved;
  304. if (start + num_msgs > route_state.tot_msg_per_ing) {
  305. pthread_mutex_unlock(&ingbuf.mutex);
  306. printf("Max %u messages exceeded\n",
  307. route_state.tot_msg_per_ing);
  308. return false;
  309. }
  310. ingbuf.reserved += num_msgs;
  311. pthread_mutex_unlock(&ingbuf.mutex);
  312. memmove(ingbuf.buf + start * msg_size,
  313. msgs, num_msgs * msg_size);
  314. pthread_mutex_lock(&ingbuf.mutex);
  315. ingbuf.inserted += num_msgs;
  316. pthread_mutex_unlock(&ingbuf.mutex);
  317. return true;
  318. }
  319. // Send the round 1 messages. Note that N here is not private.
  320. static void send_round1_msgs(const uint8_t *msgs, const UidKey *indices,
  321. uint32_t N)
  322. {
  323. uint16_t msg_size = g_teems_config.msg_size;
  324. uint16_t tot_weight = g_teems_config.tot_weight;
  325. nodenum_t my_node_num = g_teems_config.my_node_num;
  326. uint32_t full_rows = N / uint32_t(tot_weight);
  327. uint32_t last_row = N % uint32_t(tot_weight);
  328. for (auto &routing_node: g_teems_config.routing_nodes) {
  329. uint8_t weight =
  330. g_teems_config.weights[routing_node].weight;
  331. if (weight == 0) {
  332. // This shouldn't happen, but just in case
  333. continue;
  334. }
  335. uint16_t start_weight =
  336. g_teems_config.weights[routing_node].startweight;
  337. // The number of messages headed for this routing node from the
  338. // full rows
  339. uint32_t num_msgs_full_rows = full_rows * uint32_t(weight);
  340. // The number of messages headed for this routing node from the
  341. // incomplete last row is:
  342. // 0 if last_row < start_weight
  343. // last_row-start_weight if start_weight <= last_row < start_weight + weight
  344. // weight if start_weight + weight <= last_row
  345. uint32_t num_msgs_last_row = 0;
  346. if (start_weight <= last_row && last_row < start_weight + weight) {
  347. num_msgs_last_row = last_row-start_weight;
  348. } else if (start_weight + weight <= last_row) {
  349. num_msgs_last_row = weight;
  350. }
  351. // The total number of messages headed for this routing node
  352. uint32_t num_msgs = num_msgs_full_rows + num_msgs_last_row;
  353. if (routing_node == my_node_num) {
  354. // Special case: we're sending to ourselves; just put the
  355. // messages in our own round1 buffer
  356. MsgBuffer &round1 = route_state.round1;
  357. pthread_mutex_lock(&round1.mutex);
  358. uint32_t start = round1.reserved;
  359. if (start + num_msgs > round1.bufsize) {
  360. pthread_mutex_unlock(&round1.mutex);
  361. printf("Max %u messages exceeded\n", round1.bufsize);
  362. return;
  363. }
  364. round1.reserved += num_msgs;
  365. pthread_mutex_unlock(&round1.mutex);
  366. uint8_t *buf = round1.buf + start * msg_size;
  367. for (uint32_t i=0; i<full_rows; ++i) {
  368. const UidKey *idxp = indices + i*tot_weight + start_weight;
  369. for (uint32_t j=0; j<weight; ++j) {
  370. memmove(buf, msgs + idxp[j].index()*msg_size, msg_size);
  371. buf += msg_size;
  372. }
  373. }
  374. const UidKey *idxp = indices + full_rows*tot_weight + start_weight;
  375. for (uint32_t j=0; j<num_msgs_last_row; ++j) {
  376. memmove(buf, msgs + idxp[j].index()*msg_size, msg_size);
  377. buf += msg_size;
  378. }
  379. pthread_mutex_lock(&round1.mutex);
  380. round1.inserted += num_msgs;
  381. round1.nodes_received += 1;
  382. pthread_mutex_unlock(&round1.mutex);
  383. } else {
  384. NodeCommState &nodecom = g_commstates[routing_node];
  385. nodecom.message_start(num_msgs * msg_size);
  386. for (uint32_t i=0; i<full_rows; ++i) {
  387. const UidKey *idxp = indices + i*tot_weight + start_weight;
  388. for (uint32_t j=0; j<weight; ++j) {
  389. nodecom.message_data(msgs + idxp[j].index()*msg_size, msg_size);
  390. }
  391. }
  392. const UidKey *idxp = indices + full_rows*tot_weight + start_weight;
  393. for (uint32_t j=0; j<num_msgs_last_row; ++j) {
  394. nodecom.message_data(msgs + idxp[j].index()*msg_size, msg_size);
  395. }
  396. }
  397. }
  398. }
  399. // Send the round 2 messages from the round 1 buffer, which are already
  400. // padded and shuffled, so this can be done non-obliviously. tot_msgs
  401. // is the total number of messages in the input buffer, which may
  402. // include padding messages added by the shuffle. Those messages are
  403. // not sent anywhere. There are num_msgs_per_stg messages for each
  404. // storage node labelled for that node.
  405. static void send_round2_msgs(uint32_t tot_msgs, uint32_t num_msgs_per_stg)
  406. {
  407. uint16_t msg_size = g_teems_config.msg_size;
  408. MsgBuffer &round1 = route_state.round1;
  409. const uint8_t* buf = round1.buf;
  410. nodenum_t num_storage_nodes = g_teems_config.num_storage_nodes;
  411. nodenum_t my_node_num = g_teems_config.my_node_num;
  412. uint8_t *myself_buf = NULL;
  413. for (nodenum_t i=0; i<num_storage_nodes; ++i) {
  414. nodenum_t node = g_teems_config.storage_nodes[i];
  415. if (node != my_node_num) {
  416. g_commstates[node].message_start(msg_size * num_msgs_per_stg);
  417. } else {
  418. MsgBuffer &round2 = route_state.round2;
  419. pthread_mutex_lock(&round2.mutex);
  420. uint32_t start = round2.reserved;
  421. if (start + num_msgs_per_stg > round2.bufsize) {
  422. pthread_mutex_unlock(&round2.mutex);
  423. printf("Max %u messages exceeded\n", round2.bufsize);
  424. return;
  425. }
  426. round2.reserved += num_msgs_per_stg;
  427. pthread_mutex_unlock(&round2.mutex);
  428. myself_buf = round2.buf + start * msg_size;
  429. }
  430. }
  431. while (tot_msgs) {
  432. nodenum_t storage_node_id =
  433. nodenum_t((*(const uint32_t *)buf)>>DEST_UID_BITS);
  434. if (storage_node_id < num_storage_nodes) {
  435. nodenum_t node = g_teems_config.storage_map[storage_node_id];
  436. if (node == my_node_num) {
  437. memmove(myself_buf, buf, msg_size);
  438. myself_buf += msg_size;
  439. } else {
  440. g_commstates[node].message_data(buf, msg_size);
  441. }
  442. }
  443. buf += msg_size;
  444. --tot_msgs;
  445. }
  446. if (myself_buf) {
  447. MsgBuffer &round2 = route_state.round2;
  448. pthread_mutex_lock(&round2.mutex);
  449. round2.inserted += num_msgs_per_stg;
  450. round2.nodes_received += 1;
  451. pthread_mutex_unlock(&round2.mutex);
  452. }
  453. }
  454. // Perform the next round of routing. The callback pointer will be
  455. // passed to ocall_routing_round_complete when the round is complete.
  456. void ecall_routing_proceed(void *cbpointer)
  457. {
  458. uint8_t my_roles = g_teems_config.roles[g_teems_config.my_node_num];
  459. if (route_state.step == ROUTE_NOT_STARTED) {
  460. if (my_roles & ROLE_INGESTION) {
  461. route_state.cbpointer = cbpointer;
  462. MsgBuffer &ingbuf = route_state.ingbuf;
  463. pthread_mutex_lock(&ingbuf.mutex);
  464. // Ensure there are no pending messages currently being inserted
  465. // into the buffer
  466. while (ingbuf.reserved != ingbuf.inserted) {
  467. pthread_mutex_unlock(&ingbuf.mutex);
  468. pthread_mutex_lock(&ingbuf.mutex);
  469. }
  470. // Sort the messages we've received
  471. #ifdef PROFILE_ROUTING
  472. uint32_t inserted = ingbuf.inserted;
  473. unsigned long start_round1 = printf_with_rtclock("begin round1 processing (%u)\n", inserted);
  474. unsigned long start_sort = printf_with_rtclock("begin oblivious sort (%u,%u)\n", inserted, route_state.tot_msg_per_ing);
  475. #endif
  476. sort_mtobliv<UidKey>(g_teems_config.nthreads, ingbuf.buf,
  477. g_teems_config.msg_size, ingbuf.inserted,
  478. route_state.tot_msg_per_ing, send_round1_msgs);
  479. #ifdef PROFILE_ROUTING
  480. printf_with_rtclock_diff(start_sort, "end oblivious sort (%u,%u)\n", inserted, route_state.tot_msg_per_ing);
  481. printf_with_rtclock_diff(start_round1, "end round1 processing (%u)\n", inserted);
  482. #endif
  483. ingbuf.reset();
  484. pthread_mutex_unlock(&ingbuf.mutex);
  485. }
  486. if (my_roles & ROLE_ROUTING) {
  487. MsgBuffer &round1 = route_state.round1;
  488. pthread_mutex_lock(&round1.mutex);
  489. round1.completed_prev_round = true;
  490. nodenum_t nodes_received = round1.nodes_received;
  491. pthread_mutex_unlock(&round1.mutex);
  492. if (nodes_received == g_teems_config.num_ingestion_nodes) {
  493. route_state.step = ROUTE_ROUND_1;
  494. route_state.cbpointer = NULL;
  495. ocall_routing_round_complete(cbpointer, 1);
  496. }
  497. } else {
  498. route_state.step = ROUTE_ROUND_1;
  499. route_state.round1.completed_prev_round = true;
  500. ocall_routing_round_complete(cbpointer, 1);
  501. }
  502. } else if (route_state.step == ROUTE_ROUND_1) {
  503. if (my_roles & ROLE_ROUTING) {
  504. route_state.cbpointer = cbpointer;
  505. MsgBuffer &round1 = route_state.round1;
  506. pthread_mutex_lock(&round1.mutex);
  507. // Ensure there are no pending messages currently being inserted
  508. // into the buffer
  509. while (round1.reserved != round1.inserted) {
  510. pthread_mutex_unlock(&round1.mutex);
  511. pthread_mutex_lock(&round1.mutex);
  512. }
  513. // If the _total_ number of messages we received in round 1
  514. // is less than the max number of messages we could send to
  515. // _each_ storage node, then cap the number of messages we
  516. // will send to each storage node to that number.
  517. uint32_t msgs_per_stg = route_state.max_msg_to_each_stg;
  518. if (round1.inserted < msgs_per_stg) {
  519. msgs_per_stg = round1.inserted;
  520. }
  521. // Note: at this point, it is required that each message in
  522. // the round1 buffer have a _valid_ storage node id field.
  523. // Obliviously tally the number of messages we received in
  524. // round1 destined for each storage node
  525. #ifdef PROFILE_ROUTING
  526. uint32_t inserted = round1.inserted;
  527. unsigned long start_round2 = printf_with_rtclock("begin round2 processing (%u,%u)\n", inserted, round1.bufsize);
  528. unsigned long start_tally = printf_with_rtclock("begin tally (%u)\n", inserted);
  529. #endif
  530. uint16_t msg_size = g_teems_config.msg_size;
  531. nodenum_t num_storage_nodes = g_teems_config.num_storage_nodes;
  532. std::vector<uint32_t> tally = obliv_tally_stg(
  533. round1.buf, msg_size, round1.inserted, num_storage_nodes);
  534. #ifdef PROFILE_ROUTING
  535. printf_with_rtclock_diff(start_tally, "end tally (%u)\n", inserted);
  536. #endif
  537. // Note: tally contains private values! It's OK to
  538. // non-obliviously check for an error condition, though.
  539. // While we're at it, obliviously change the tally of
  540. // messages received to a tally of padding messages
  541. // required.
  542. uint32_t tot_padding = 0;
  543. for (nodenum_t i=0; i<num_storage_nodes; ++i) {
  544. if (tally[i] > msgs_per_stg) {
  545. printf("Received too many messages for storage node %u\n", i);
  546. assert(tally[i] <= msgs_per_stg);
  547. }
  548. tally[i] = msgs_per_stg - tally[i];
  549. tot_padding += tally[i];
  550. }
  551. round1.reserved += tot_padding;
  552. assert(round1.reserved <= round1.bufsize);
  553. // Obliviously add padding for each storage node according
  554. // to the (private) padding tally.
  555. #ifdef PROFILE_ROUTING
  556. unsigned long start_pad = printf_with_rtclock("begin pad (%u)\n", tot_padding);
  557. #endif
  558. obliv_pad_stg(round1.buf + round1.inserted * msg_size,
  559. msg_size, tally, tot_padding);
  560. #ifdef PROFILE_ROUTING
  561. printf_with_rtclock_diff(start_pad, "end pad (%u)\n", tot_padding);
  562. #endif
  563. round1.inserted += tot_padding;
  564. // Obliviously shuffle the messages
  565. #ifdef PROFILE_ROUTING
  566. unsigned long start_shuffle = printf_with_rtclock("begin shuffle (%u,%u)\n", round1.inserted, round1.bufsize);
  567. #endif
  568. uint32_t num_shuffled = shuffle_mtobliv(g_teems_config.nthreads,
  569. round1.buf, msg_size, round1.inserted, round1.bufsize);
  570. #ifdef PROFILE_ROUTING
  571. printf_with_rtclock_diff(start_shuffle, "end shuffle (%u,%u)\n", round1.inserted, round1.bufsize);
  572. printf_with_rtclock_diff(start_round2, "end round2 processing (%u,%u)\n", inserted, round1.bufsize);
  573. #endif
  574. // Now we can handle the messages non-obliviously, since we
  575. // know there will be exactly msgs_per_stg messages to each
  576. // storage node, and the oblivious shuffle broke the
  577. // connection between where each message came from and where
  578. // it's going.
  579. send_round2_msgs(num_shuffled, msgs_per_stg);
  580. round1.reset();
  581. pthread_mutex_unlock(&round1.mutex);
  582. }
  583. if (my_roles & ROLE_STORAGE) {
  584. route_state.cbpointer = cbpointer;
  585. MsgBuffer &round2 = route_state.round2;
  586. pthread_mutex_lock(&round2.mutex);
  587. round2.completed_prev_round = true;
  588. nodenum_t nodes_received = round2.nodes_received;
  589. pthread_mutex_unlock(&round2.mutex);
  590. if (nodes_received == g_teems_config.num_routing_nodes) {
  591. route_state.step = ROUTE_ROUND_2;
  592. route_state.cbpointer = NULL;
  593. ocall_routing_round_complete(cbpointer, 2);
  594. }
  595. } else {
  596. route_state.step = ROUTE_ROUND_2;
  597. route_state.round2.completed_prev_round = true;
  598. ocall_routing_round_complete(cbpointer, 2);
  599. }
  600. } else if (route_state.step == ROUTE_ROUND_2) {
  601. if (my_roles & ROLE_STORAGE) {
  602. MsgBuffer &round2 = route_state.round2;
  603. pthread_mutex_lock(&round2.mutex);
  604. // Ensure there are no pending messages currently being inserted
  605. // into the buffer
  606. while (round2.reserved != round2.inserted) {
  607. pthread_mutex_unlock(&round2.mutex);
  608. pthread_mutex_lock(&round2.mutex);
  609. }
  610. #ifdef PROFILE_ROUTING
  611. unsigned long start = printf_with_rtclock("begin storage processing (%u)\n", round2.inserted);
  612. #endif
  613. storage_received(round2);
  614. #ifdef PROFILE_ROUTING
  615. printf_with_rtclock_diff(start, "end storage processing (%u)\n", round2.inserted);
  616. #endif
  617. // We're done
  618. route_state.step = ROUTE_NOT_STARTED;
  619. ocall_routing_round_complete(cbpointer, 0);
  620. } else {
  621. // We're done
  622. route_state.step = ROUTE_NOT_STARTED;
  623. ocall_routing_round_complete(cbpointer, 0);
  624. }
  625. }
  626. }