gmi.c 104 KB

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  1. /*
  2. * Copyright (c) 2003-2004 MontaVista Software, Inc.
  3. *
  4. * All rights reserved.
  5. *
  6. * Author: Steven Dake (sdake@mvista.com)
  7. *
  8. * This software licensed under BSD license, the text of which follows:
  9. *
  10. * Redistribution and use in source and binary forms, with or without
  11. * modification, are permitted provided that the following conditions are met:
  12. *
  13. * - Redistributions of source code must retain the above copyright notice,
  14. * this list of conditions and the following disclaimer.
  15. * - Redistributions in binary form must reproduce the above copyright notice,
  16. * this list of conditions and the following disclaimer in the documentation
  17. * and/or other materials provided with the distribution.
  18. * - Neither the name of the MontaVista Software, Inc. nor the names of its
  19. * contributors may be used to endorse or promote products derived from this
  20. * software without specific prior written permission.
  21. *
  22. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
  23. * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  24. * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  25. * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
  26. * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
  27. * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
  28. * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
  29. * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
  30. * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
  31. * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
  32. * THE POSSIBILITY OF SUCH DAMAGE.
  33. */
  34. /*
  35. * This code implements the ring protocol specified in Yair Amir's PhD thesis:
  36. * http://www.cs.jhu.edu/~yairamir/phd.ps) (ch4,5).
  37. *
  38. * Some changes have been made to the design to support things like fragmentation,
  39. * multiple I/O queues, encryption, and authentication.
  40. *
  41. * Fragmentation Assembly Algorithm:
  42. * Messages are read from the rtr list and stored in assembly queues
  43. * identified by the ip address of the source of the mcast message. Every
  44. * time a fragmented message has been fully assembled, it is added to the
  45. * pending delivery queue.
  46. * Every time an item is added to the pending delivery queue:
  47. * The pending delivery queue with the smallest starting sequence number
  48. * is found. If a message is waiting on that pending delivery queue, it will
  49. * be delivered. This process will be repeated until the pending delivery queue
  50. * with the smallest sequence number has no pending messages.
  51. * This ensures VS semantics because an assembled message is ordered vs other
  52. * assembled messages based upon the first sequence number of the collection of
  53. * packets.
  54. */
  55. #include <assert.h>
  56. #include <sys/mman.h>
  57. #include <sys/types.h>
  58. #include <sys/socket.h>
  59. #include <netdb.h>
  60. #include <sys/un.h>
  61. #include <sys/sysinfo.h>
  62. #include <sys/ioctl.h>
  63. #include <netinet/in.h>
  64. #include <arpa/inet.h>
  65. #include <linux/if.h>
  66. #include <linux/sockios.h>
  67. #include <unistd.h>
  68. #include <fcntl.h>
  69. #include <stdlib.h>
  70. #include <stdio.h>
  71. #include <errno.h>
  72. #include <signal.h>
  73. #include <sched.h>
  74. #include <time.h>
  75. #include <sys/time.h>
  76. #include <sys/poll.h>
  77. #include "aispoll.h"
  78. #include "gmi.h"
  79. #include "../include/queue.h"
  80. #include "../include/sq.h"
  81. #include "../include/list.h"
  82. #include "hdb.h"
  83. #include "crypto.h"
  84. #define AUTHENTICATION 1 /* use authentication */
  85. #define ENCRYPTION 1 /* use encryption */
  86. #define LOCALHOST_IP inet_addr("127.0.0.1")
  87. #define QUEUE_PEND_SIZE_MAX 100 /* TODO identify what this value should be, number of pending assembled messages per processor */
  88. #define QUEUE_ASSEMBLY_SIZE_MAX ((MESSAGE_SIZE_MAX / 1472) + 1)
  89. #define QUEUE_RTR_ITEMS_SIZE_MAX 256
  90. #define QUEUE_PEND_TRANS_SIZE_MAX ((MESSAGE_SIZE_MAX / 1472) + 1)
  91. #define MAXIOVS 4
  92. #define RETRANSMIT_ENTRIES_MAX 50
  93. #define MISSING_MCAST_WINDOW 64
  94. #define TIMEOUT_STATE_GATHER 100
  95. #define TIMEOUT_TOKEN 1500
  96. #define TIMEOUT_TOKEN_RETRANSMIT 750
  97. #define TIMEOUT_STATE_COMMIT 100
  98. #define MAX_MEMBERS 16
  99. #define HOLE_LIST_MAX MISSING_MCAST_WINDOW
  100. #define PRIORITY_MAX 4
  101. #define PACKET_SIZE_MAX 1500
  102. /*
  103. * Authentication of messages
  104. */
  105. hmac_state gmi_hmac_state;
  106. prng_state gmi_prng_state;
  107. unsigned char gmi_private_key[1024];
  108. unsigned int gmi_private_key_len;
  109. enum plug_state {
  110. GMI_PLUG_PROCESSOR_PLUGGED, /* this processor is waiting for recovery */
  111. GMI_PLUG_PROCESSOR_REQUEST_UNPLUG, /* this processor should be unplugged at next token posession */
  112. GMI_PLUG_PROCESSOR_UNPLUGGED, /* this processor is done with recovery waiting for group */
  113. GMI_PLUG_GROUP_UNPLUGGED /* all processors in group have recovered */
  114. };
  115. enum plug_state plug_state;
  116. int stats_sent = 0;
  117. int stats_recv = 0;
  118. int stats_delv = 0;
  119. int stats_remcasts = 0;
  120. int stats_orf_token = 0;
  121. int stats_form_token = 0;
  122. struct timeval stats_tv_start = { 0, 0 };
  123. /*
  124. * Flow control mcasts and remcasts on last and current orf_token
  125. */
  126. int fcc_remcast_last = 0;
  127. int fcc_mcast_last = 0;
  128. int fcc_mcast_current = 0;
  129. int fcc_remcast_current = 0;
  130. enum message_type {
  131. MESSAGE_TYPE_ORF_TOKEN = 0, /* Ordering, Reliability, Flow (ORF) control Token */
  132. MESSAGE_TYPE_MCAST = 1, /* ring ordered multicast message */
  133. MESSAGE_TYPE_MEMB_ATTEMPT_JOIN = 2, /* membership join attempt message */
  134. MESSAGE_TYPE_MEMB_JOIN = 3, /* membership join message */
  135. MESSAGE_TYPE_MEMB_FORM_TOKEN = 4 /* membership FORM token */
  136. };
  137. /*
  138. * In-order pending transmit queue
  139. */
  140. struct queue queues_pend_trans[PRIORITY_MAX];
  141. struct reftwo {
  142. int refcount;
  143. };
  144. struct token_callback_instance {
  145. struct list_head list;
  146. int (*callback_fn) (void *);
  147. void *data;
  148. };
  149. /*
  150. * In-order pending delivery queue
  151. */
  152. struct assembly_queue_item {
  153. struct iovec iovec[MAXIOVS];
  154. int iov_len;
  155. struct reftwo *reftwo;
  156. };
  157. struct assembly_queue {
  158. int seqid;
  159. int first_delivery;
  160. struct queue queue;
  161. };
  162. struct pend_queue_msg_item {
  163. struct reftwo *reftwo;
  164. char *iov_base[MAXIOVS];
  165. int iovec_entries;
  166. };
  167. struct pend_queue_item {
  168. int seqid;
  169. struct iovec iovec[QUEUE_PEND_SIZE_MAX * MAXIOVS];
  170. int iov_len;
  171. struct pend_queue_msg_item pend_queue_msg_items[QUEUE_PEND_SIZE_MAX];
  172. int pend_queue_msg_item_count;
  173. };
  174. struct queue_frag {
  175. int seqid;
  176. struct in_addr source_addr;
  177. struct assembly_queue assembly;
  178. struct queue pend_queue;
  179. };
  180. struct queue_frag queues_frag[MAX_MEMBERS];
  181. /*
  182. * Sorted delivery/retransmit queue
  183. */
  184. struct sq queue_rtr_items;
  185. /*
  186. * Multicast address
  187. */
  188. struct sockaddr_in sockaddr_in_mcast;
  189. struct gmi_socket {
  190. int mcast;
  191. int token;
  192. };
  193. /*
  194. * File descriptors in use by GMI
  195. */
  196. struct gmi_socket gmi_sockets[2];
  197. /*
  198. * Received up to and including
  199. */
  200. int gmi_arut = 0;
  201. struct plug_instance {
  202. int plugged;
  203. struct list_head list;
  204. };
  205. /*
  206. * All instances in one database
  207. */
  208. static struct saHandleDatabase plug_instance_database = {
  209. .handleCount = 0,
  210. .handles = 0,
  211. .handleInstanceDestructor = 0
  212. };
  213. DECLARE_LIST_INIT (plug_listhead);
  214. DECLARE_LIST_INIT (token_callback_listhead);
  215. /*
  216. * Delivered up to and including
  217. */
  218. int gmi_original_arut = 0;
  219. int gmi_highest_seq = 0;
  220. int gmi_highest_seq_old = 0;
  221. int gmi_barrier_seq = 0;
  222. int gmi_last_seqid = 0;
  223. int gmi_fragment = 0;
  224. int gmi_pend_queue_priority = 0;
  225. char orf_token_retransmit[PACKET_SIZE_MAX];
  226. int orf_token_retransmit_size;
  227. int gmi_token_seqid = 0;
  228. /*
  229. * Timers
  230. */
  231. poll_timer_handle timer_orf_token_timeout = 0;
  232. poll_timer_handle timer_orf_token_retransmit_timeout = 0;
  233. poll_timer_handle timer_form_token_timeout = 0;
  234. poll_timer_handle timer_memb_state_gather_timeout = 0;
  235. poll_timer_handle timer_memb_state_commit_timeout = 0;
  236. poll_timer_handle timer_single_member = 0;
  237. /*
  238. * Function called when new message received
  239. */
  240. int (*gmi_recv) (char *group, struct iovec *iovec, int iov_len);
  241. /*
  242. * Function and data used to log messages
  243. */
  244. static void (*gmi_log_printf) (int level, char *format, ...);
  245. int gmi_log_level_security;
  246. int gmi_log_level_error;
  247. int gmi_log_level_warning;
  248. int gmi_log_level_notice;
  249. int gmi_log_level_debug;
  250. #define HMAC_HASH_SIZE 20
  251. struct security_header {
  252. unsigned char hash_digest[HMAC_HASH_SIZE]; /* The hash *MUST* be first in the data structure */
  253. unsigned char salt[16]; /* random number */
  254. };
  255. struct message_header {
  256. struct security_header security_header;
  257. int type;
  258. int seqid;
  259. };
  260. struct memb_conf_id {
  261. struct in_addr rep;
  262. struct timeval tv;
  263. };
  264. struct mcast {
  265. struct message_header header;
  266. char priority;
  267. struct memb_conf_id memb_conf_id;
  268. short packet_number;
  269. short packet_count;
  270. int packet_seq;
  271. struct in_addr source;
  272. struct gmi_groupname groupname;
  273. };
  274. /*
  275. * MTU - multicast message header - IP header - UDP header
  276. *
  277. * On lossy switches, making use of the DF UDP flag can lead to loss of
  278. * forward progress. So the packets must be fragmented by the algorithm
  279. * and reassembled at the receiver.
  280. */
  281. #define FRAGMENT_SIZE (PACKET_SIZE_MAX - sizeof (struct mcast) - 20 - 8)
  282. struct rtr_item {
  283. struct memb_conf_id conf_id;
  284. int seqid;
  285. };
  286. struct orf_token {
  287. struct message_header header;
  288. int token_seqid;
  289. int group_arut;
  290. struct in_addr addr_arut;
  291. short int fcc;
  292. int rtr_list_entries;
  293. int bitmap_bytes;
  294. /* struct rtr_item rtr_list[0] goes here */
  295. /* bitmap_bytes goes here */
  296. };
  297. struct conf_desc {
  298. struct memb_conf_id conf_id;
  299. int highest_seq;
  300. int arut;
  301. #ifdef COMPLIE_OUT
  302. int hole_list[HOLE_LIST_MAX];
  303. int hole_list_entries;
  304. #endif
  305. };
  306. struct memb_form_token {
  307. struct message_header header;
  308. struct memb_conf_id conf_id;
  309. struct conf_desc conf_desc_list[MAX_MEMBERS]; /* SHOULD BE MAX_MEMBERS */
  310. int conf_desc_list_entries;
  311. struct in_addr member_list[MAX_MEMBERS];
  312. int member_list_entries;
  313. struct in_addr rep_list[MAX_MEMBERS];
  314. int rep_list_entries;
  315. };
  316. struct memb_attempt_join {
  317. struct message_header header;
  318. };
  319. struct memb_join {
  320. struct message_header header;
  321. struct in_addr active_rep_list[MAX_MEMBERS];
  322. int active_rep_list_entries;
  323. struct in_addr failed_rep_list[MAX_MEMBERS];
  324. int failed_rep_list_entries;
  325. };
  326. struct gmi_pend_trans_item {
  327. struct mcast *mcast;
  328. struct iovec iovec[MAXIOVS];
  329. int iov_len;
  330. struct reftwo *reftwo;
  331. };
  332. struct gmi_rtr_item {
  333. struct iovec iovec[MAXIOVS+2]; /* +2 is for mcast msg + group name TODO is this right */
  334. int iov_len;
  335. struct reftwo *reftwo;
  336. };
  337. enum memb_state {
  338. MEMB_STATE_OPERATIONAL,
  339. MEMB_STATE_GATHER,
  340. MEMB_STATE_COMMIT,
  341. MEMB_STATE_FORM,
  342. MEMB_STATE_EVS
  343. };
  344. static enum memb_state memb_state = MEMB_STATE_GATHER;
  345. static struct sockaddr_in gmi_bound_to;
  346. static struct sockaddr_in memb_list[MAX_MEMBERS];
  347. static int memb_list_entries = 1;
  348. static int memb_list_entries_confchg = 1;
  349. struct sockaddr_in memb_next;
  350. struct in_addr memb_gather_set[MAX_MEMBERS];
  351. int memb_gather_set_entries = 0;
  352. struct memb_commit_set {
  353. struct sockaddr_in rep;
  354. struct in_addr join_rep_list[MAX_MEMBERS];
  355. int join_rep_list_entries;
  356. struct in_addr member_list[MAX_MEMBERS];
  357. int member_list_entries;
  358. };
  359. static struct memb_commit_set memb_commit_set[MAX_MEMBERS];
  360. static int memb_commit_set_entries = 0;
  361. static struct in_addr memb_failed_list[MAX_MEMBERS];
  362. static int memb_failed_list_entries = 0;
  363. static struct sockaddr_in memb_local_sockaddr_in;
  364. static struct memb_conf_id memb_conf_id;
  365. static struct memb_conf_id memb_form_token_conf_id;
  366. static struct memb_join memb_join;
  367. static struct memb_form_token memb_form_token;
  368. static char iov_buffer[PACKET_SIZE_MAX];
  369. static struct iovec gmi_iov_recv = {
  370. .iov_base = iov_buffer,
  371. .iov_len = sizeof (iov_buffer)
  372. };
  373. static char iov_encrypted_buffer[PACKET_SIZE_MAX];
  374. static struct iovec iov_encrypted = {
  375. .iov_base = iov_encrypted_buffer,
  376. .iov_len = sizeof (iov_encrypted_buffer)
  377. };
  378. struct message_handlers {
  379. int count;
  380. int (*handler_functions[5]) (struct sockaddr_in *, struct iovec *, int, int);
  381. };
  382. poll_handle *gmi_poll_handle;
  383. void (*gmi_deliver_fn) (
  384. struct gmi_groupname *groupname,
  385. struct in_addr source_addr,
  386. struct iovec *iovec,
  387. int iov_len) = 0;
  388. void (*gmi_confchg_fn) (
  389. enum gmi_configuration_type configuration_type,
  390. struct sockaddr_in *member_list, int member_list_entries,
  391. struct sockaddr_in *left_list, int left_list_entries,
  392. struct sockaddr_in *joined_list, int joined_list_entries) = 0;
  393. /*
  394. * forward decls
  395. */
  396. static int message_handler_orf_token (struct sockaddr_in *, struct iovec *, int, int);
  397. static int message_handler_mcast (struct sockaddr_in *, struct iovec *, int, int);
  398. static int message_handler_memb_attempt_join (struct sockaddr_in *, struct iovec *, int, int);
  399. static int message_handler_memb_join (struct sockaddr_in *, struct iovec *, int, int);
  400. static int message_handler_memb_form_token (struct sockaddr_in *, struct iovec *, int, int);
  401. static void memb_conf_id_build (struct memb_conf_id *, struct in_addr);
  402. static int recv_handler (poll_handle handle, int fd, int revents, void *data, unsigned int *prio);
  403. static int netif_determine (struct sockaddr_in *bindnet, struct sockaddr_in *bound_to);
  404. static int gmi_build_sockets (struct sockaddr_in *sockaddr_mcast,
  405. struct sockaddr_in *sockaddr_bindnet,
  406. struct gmi_socket *sockets,
  407. struct sockaddr_in *bound_to);
  408. static int memb_state_gather_enter (void);
  409. static void pending_queues_deliver (void);
  410. static int orf_token_mcast (struct orf_token *orf_token,
  411. int fcc_mcasts_allowed, struct sockaddr_in *system_from);
  412. static void queues_queue_frag_memb_new ();
  413. static void calculate_group_arut (struct orf_token *orf_token);
  414. static int messages_free (int group_arut);
  415. static int orf_token_send (struct orf_token *orf_token, struct rtr_item *rtr_list, unsigned char *plug_bitmap, int reset_timer);
  416. static void encrypt_and_sign (struct iovec *iovec, int iov_len);
  417. static int authenticate_and_decrypt (struct iovec *iov);
  418. static int recv_handler (poll_handle handle, int fd, int revents, void *data, unsigned int *prio);
  419. struct message_handlers gmi_message_handlers = {
  420. 5,
  421. {
  422. message_handler_orf_token,
  423. message_handler_mcast,
  424. message_handler_memb_attempt_join,
  425. message_handler_memb_join,
  426. message_handler_memb_form_token
  427. }
  428. };
  429. void gmi_log_printf_init (
  430. void (*log_printf) (int , char *, ...),
  431. int log_level_security,
  432. int log_level_error,
  433. int log_level_warning,
  434. int log_level_notice,
  435. int log_level_debug)
  436. {
  437. gmi_log_level_security = log_level_security;
  438. gmi_log_level_error = log_level_error;
  439. gmi_log_level_warning = log_level_warning;
  440. gmi_log_level_notice = log_level_notice;
  441. gmi_log_level_debug = log_level_debug;
  442. gmi_log_printf = log_printf;
  443. }
  444. #ifdef PRINTDIGESTS
  445. void print_digest (char *where, unsigned char *digest)
  446. {
  447. int i;
  448. printf ("DIGEST %s:\n", where);
  449. for (i = 0; i < 16; i++) {
  450. printf ("%x ", digest[i]);
  451. }
  452. printf ("\n");
  453. }
  454. #endif
  455. /*
  456. * Exported interfaces
  457. */
  458. int gmi_init (
  459. struct sockaddr_in *sockaddr_mcast,
  460. struct gmi_interface *interfaces,
  461. int interface_count,
  462. poll_handle *poll_handle,
  463. unsigned char *private_key,
  464. int private_key_len)
  465. {
  466. int i;
  467. int res;
  468. int interface_no;
  469. /*
  470. * Initialize random number generator for later use to generate salt
  471. */
  472. memcpy (gmi_private_key, private_key, private_key_len);
  473. gmi_private_key_len = private_key_len;
  474. rng_make_prng (128, PRNG_SOBER, &gmi_prng_state, NULL);
  475. /*
  476. * Initialize local variables for gmi
  477. */
  478. memcpy (&sockaddr_in_mcast, sockaddr_mcast, sizeof (struct sockaddr_in));
  479. memset (&memb_next, 0, sizeof (struct sockaddr_in));
  480. memset (iov_buffer, 0, PACKET_SIZE_MAX);
  481. for (i = 0; i < PRIORITY_MAX; i++) {
  482. queue_init (&queues_pend_trans[i], QUEUE_PEND_TRANS_SIZE_MAX,
  483. sizeof (struct gmi_pend_trans_item));
  484. }
  485. sq_init (&queue_rtr_items, QUEUE_RTR_ITEMS_SIZE_MAX, sizeof (struct gmi_rtr_item), 0);
  486. /*
  487. * Build sockets for every interface
  488. */
  489. for (interface_no = 0; interface_no < interface_count; interface_no++) {
  490. /*
  491. * Create and bind the multicast and unicast sockets
  492. */
  493. res = gmi_build_sockets (sockaddr_mcast,
  494. &interfaces[interface_no].bindnet,
  495. &gmi_sockets[interface_no],
  496. &interfaces[interface_no].boundto);
  497. if (res == -1) {
  498. return (res);
  499. }
  500. gmi_poll_handle = poll_handle;
  501. poll_dispatch_add (*gmi_poll_handle, gmi_sockets[interface_no].mcast,
  502. POLLIN, 0, recv_handler, UINT_MAX);
  503. poll_dispatch_add (*gmi_poll_handle, gmi_sockets[interface_no].token,
  504. POLLIN, 0, recv_handler, UINT_MAX);
  505. }
  506. memcpy (&gmi_bound_to, &interfaces->boundto, sizeof (struct sockaddr_in));
  507. /*
  508. * This stuff depends on gmi_build_sockets
  509. */
  510. memcpy (&memb_list[0], &interfaces->boundto, sizeof (struct sockaddr_in));
  511. memb_conf_id_build (&memb_conf_id, interfaces->boundto.sin_addr);
  512. memcpy (&memb_form_token_conf_id, &memb_conf_id, sizeof (struct memb_conf_id));
  513. memb_state_gather_enter ();
  514. memset (&memb_next, 0, sizeof (struct sockaddr_in));
  515. queues_queue_frag_memb_new ();
  516. return (0);
  517. }
  518. int gmi_join (
  519. struct gmi_groupname *groupname,
  520. void (*deliver_fn) (
  521. struct gmi_groupname *groupname,
  522. struct in_addr source_addr,
  523. struct iovec *iovec,
  524. int iov_len),
  525. void (*confchg_fn) (
  526. enum gmi_configuration_type configuration_type,
  527. struct sockaddr_in *member_list, int member_list_entries,
  528. struct sockaddr_in *left_list, int left_list_entries,
  529. struct sockaddr_in *joined_list, int joined_list_entries),
  530. gmi_join_handle *handle_out) {
  531. gmi_deliver_fn = deliver_fn;
  532. gmi_confchg_fn = confchg_fn;
  533. *handle_out = 0;
  534. return (0);
  535. }
  536. int local_host_seq_count = 0;
  537. int gmi_leave (
  538. gmi_join_handle handle_join);
  539. static int gmi_pend_trans_item_store (
  540. struct gmi_groupname *groupname,
  541. struct iovec *iovec,
  542. int iov_len,
  543. int priority,
  544. short packet_number, short packet_count)
  545. {
  546. int i, j;
  547. struct gmi_pend_trans_item gmi_pend_trans_item;
  548. memset (&gmi_pend_trans_item, 0, sizeof (struct gmi_pend_trans_item));
  549. /*
  550. * Store pending item
  551. */
  552. gmi_pend_trans_item.mcast = malloc (sizeof (struct mcast));
  553. if (gmi_pend_trans_item.mcast == 0) {
  554. goto error_mcast;
  555. }
  556. gmi_pend_trans_item.reftwo = malloc (sizeof (struct reftwo));
  557. if (gmi_pend_trans_item.reftwo == 0) {
  558. goto error_reftwo;
  559. }
  560. gmi_pend_trans_item.reftwo->refcount = 2;
  561. /*
  562. * Set mcast header
  563. */
  564. gmi_pend_trans_item.mcast->header.type = MESSAGE_TYPE_MCAST;
  565. gmi_pend_trans_item.mcast->priority = priority;
  566. gmi_pend_trans_item.mcast->packet_number = packet_number;
  567. gmi_pend_trans_item.mcast->packet_count = packet_count;
  568. gmi_pend_trans_item.mcast->packet_seq = local_host_seq_count++;
  569. gmi_pend_trans_item.mcast->source.s_addr = gmi_bound_to.sin_addr.s_addr;
  570. memcpy (&gmi_pend_trans_item.mcast->groupname, groupname,
  571. sizeof (struct gmi_groupname));
  572. for (i = 0; i < iov_len; i++) {
  573. gmi_pend_trans_item.iovec[i].iov_base = malloc (iovec[i].iov_len);
  574. if (gmi_pend_trans_item.iovec[i].iov_base == 0) {
  575. goto error_iovec;
  576. }
  577. memset (gmi_pend_trans_item.iovec[i].iov_base, 0, iovec[i].iov_len);
  578. memcpy (gmi_pend_trans_item.iovec[i].iov_base, iovec[i].iov_base,
  579. iovec[i].iov_len);
  580. gmi_pend_trans_item.iovec[i].iov_len = iovec[i].iov_len;
  581. }
  582. gmi_pend_trans_item.iov_len = iov_len;
  583. gmi_log_printf (gmi_log_level_debug, "mcasted message added to pending queue\n");
  584. queue_item_add (&queues_pend_trans[priority], &gmi_pend_trans_item);
  585. return (0);
  586. error_iovec:
  587. for (j = 0; j < i; j++) {
  588. free (gmi_pend_trans_item.iovec[j].iov_base);
  589. }
  590. return (-1);
  591. error_reftwo:
  592. free (gmi_pend_trans_item.mcast);
  593. error_mcast:
  594. return (0);
  595. }
  596. static void release_reftwo_char (struct reftwo *reftwo,
  597. char **iovec,
  598. int iovec_entries)
  599. {
  600. int i;
  601. assert (reftwo > 0);
  602. if ((--reftwo->refcount) == 0) {
  603. for (i = 0; i < iovec_entries; i++) {
  604. free (iovec[i]);
  605. iovec[i] = (char *)0xdeadbeef;
  606. }
  607. reftwo->refcount = -1;
  608. free (reftwo);
  609. }
  610. }
  611. static void release_reftwo_iovec (struct reftwo *reftwo,
  612. struct iovec *iovec,
  613. int iovec_entries)
  614. {
  615. int i;
  616. assert (reftwo > 0);
  617. if ((--reftwo->refcount) == 0) {
  618. for (i = 0; i < iovec_entries; i++) {
  619. free (iovec[i].iov_base);
  620. iovec[i].iov_base = (char *)0xdeadbeef;
  621. }
  622. reftwo->refcount = -1;
  623. free (reftwo);
  624. }
  625. }
  626. static void encrypt_and_sign (struct iovec *iovec, int iov_len)
  627. {
  628. char *addr = iov_encrypted.iov_base + sizeof (struct security_header);
  629. int i;
  630. iov_encrypted.iov_len = 0;
  631. char keys[48];
  632. struct security_header *header = iov_encrypted.iov_base;
  633. prng_state keygen_prng_state;
  634. prng_state stream_prng_state;
  635. char *hmac_key = &keys[32];
  636. char *cipher_key = &keys[16];
  637. char *initial_vector = &keys[0];
  638. unsigned long len;
  639. memset (keys, 0, sizeof (keys));
  640. memset (header->salt, 0, sizeof (header->salt));
  641. #if (defined(ENCRYPTION) || defined(AUTHENITCATION))
  642. /*
  643. * Generate MAC, CIPHER, IV keys from private key
  644. */
  645. sober128_read (header->salt, sizeof (header->salt), &gmi_prng_state);
  646. sober128_start (&keygen_prng_state);
  647. sober128_add_entropy (gmi_private_key, gmi_private_key_len, &keygen_prng_state);
  648. sober128_add_entropy (header->salt, sizeof (header->salt), &keygen_prng_state);
  649. sober128_read (keys, sizeof (keys), &keygen_prng_state);
  650. #endif
  651. #ifdef ENCRYPTION
  652. /*
  653. * Setup stream cipher
  654. */
  655. sober128_start (&stream_prng_state);
  656. sober128_add_entropy (cipher_key, 16, &stream_prng_state);
  657. sober128_add_entropy (initial_vector, 16, &stream_prng_state);
  658. #endif
  659. #ifdef PRINTDIGESTS
  660. printf ("New encryption\n");
  661. print_digest ("salt", header->salt);
  662. print_digest ("initial_vector", initial_vector);
  663. print_digest ("cipher_key", cipher_key);
  664. print_digest ("hmac_key", hmac_key);
  665. #endif
  666. /*
  667. * Copy header of message, then remainder of message, then encrypt it
  668. */
  669. memcpy (addr, iovec[0].iov_base + sizeof (struct security_header),
  670. iovec[0].iov_len - sizeof (struct security_header));
  671. addr += iovec[0].iov_len - sizeof (struct security_header);
  672. iov_encrypted.iov_len += iovec[0].iov_len;
  673. for (i = 1; i < iov_len; i++) {
  674. memcpy (addr, iovec[i].iov_base, iovec[i].iov_len);
  675. addr += iovec[i].iov_len;
  676. iov_encrypted.iov_len += iovec[i].iov_len;
  677. }
  678. /*
  679. * Encrypt message by XORing stream cipher data
  680. */
  681. #ifdef ENCRYPTION
  682. sober128_read (iov_encrypted.iov_base + sizeof (struct security_header),
  683. iov_encrypted.iov_len - sizeof (struct security_header),
  684. &stream_prng_state);
  685. #endif
  686. #ifdef AUTHENTICATION
  687. memset (&gmi_hmac_state, 0, sizeof (hmac_state));
  688. /*
  689. * Sign the contents of the message with the hmac key and store signature in message
  690. */
  691. hmac_init (&gmi_hmac_state, DIGEST_SHA1, hmac_key, 16);
  692. hmac_process (&gmi_hmac_state,
  693. iov_encrypted.iov_base + HMAC_HASH_SIZE,
  694. iov_encrypted.iov_len - HMAC_HASH_SIZE);
  695. len = hash_descriptor[DIGEST_SHA1]->hashsize;
  696. hmac_done (&gmi_hmac_state, header->hash_digest, &len);
  697. #endif
  698. }
  699. /*
  700. * Only designed to work with a message with one iov
  701. */
  702. static int authenticate_and_decrypt (struct iovec *iov)
  703. {
  704. iov_encrypted.iov_len = 0;
  705. char keys[48];
  706. struct security_header *header = iov[0].iov_base;
  707. prng_state keygen_prng_state;
  708. prng_state stream_prng_state;
  709. char *hmac_key = &keys[32];
  710. char *cipher_key = &keys[16];
  711. char *initial_vector = &keys[0];
  712. char digest_comparison[HMAC_HASH_SIZE];
  713. unsigned long len;
  714. #if (defined(ENCRYPTION) || defined(AUTHENITCATION))
  715. /*
  716. * Generate MAC, CIPHER, IV keys from private key
  717. */
  718. memset (keys, 0, sizeof (keys));
  719. sober128_start (&keygen_prng_state);
  720. sober128_add_entropy (gmi_private_key, gmi_private_key_len, &keygen_prng_state);
  721. sober128_add_entropy (header->salt, sizeof (header->salt), &keygen_prng_state);
  722. sober128_read (keys, sizeof (keys), &keygen_prng_state);
  723. #endif
  724. #ifdef ENCRYPTION
  725. /*
  726. * Setup stream cipher
  727. */
  728. sober128_start (&stream_prng_state);
  729. sober128_add_entropy (cipher_key, 16, &stream_prng_state);
  730. sober128_add_entropy (initial_vector, 16, &stream_prng_state);
  731. #endif
  732. #ifdef PRINTDIGESTS
  733. printf ("New decryption\n");
  734. print_digest ("salt", header->salt);
  735. print_digest ("initial_vector", initial_vector);
  736. print_digest ("cipher_key", cipher_key);
  737. print_digest ("hmac_key", hmac_key);
  738. #endif
  739. #ifdef AUTHENTICATION
  740. /*
  741. * Authenticate contents of message
  742. */
  743. hmac_init (&gmi_hmac_state, DIGEST_SHA1, hmac_key, 16);
  744. hmac_process (&gmi_hmac_state,
  745. iov->iov_base + HMAC_HASH_SIZE,
  746. iov->iov_len - HMAC_HASH_SIZE);
  747. len = hash_descriptor[DIGEST_SHA1]->hashsize;
  748. assert (HMAC_HASH_SIZE >= len);
  749. hmac_done (&gmi_hmac_state, digest_comparison, &len);
  750. #ifdef PRINTDIGESTS
  751. print_digest ("sent digest", header->hash_digest);
  752. print_digest ("calculated digest", digest_comparison);
  753. #endif
  754. if (memcmp (digest_comparison, header->hash_digest, len) != 0) {
  755. gmi_log_printf (gmi_log_level_security, "Received message has invalid digest... ignoring.\n");
  756. return (-1);
  757. }
  758. #endif /* AUTHENTICATION */
  759. /*
  760. * Decrypt the contents of the message with the cipher key
  761. */
  762. #ifdef ENCRYPTION
  763. sober128_read (iov->iov_base + sizeof (struct security_header),
  764. iov->iov_len - sizeof (struct security_header),
  765. &stream_prng_state);
  766. #endif
  767. return (0);
  768. }
  769. static void timer_function_single_member (void *data);
  770. /*
  771. * With only a single member, multicast messages as if an orf token was
  772. * delivered. This is done as part of the main event loop by specifying
  773. * a timer with an immediate expiration. This is a little suboptimal
  774. * since poll starts afresh. If more messages are waiting to be
  775. * self-delivered, queue the timer function again until there are no
  776. * more waiting messages.
  777. */
  778. static void single_member_deliver (void)
  779. {
  780. poll_timer_delete (*gmi_poll_handle, timer_single_member);
  781. timer_single_member = 0;
  782. poll_timer_add (*gmi_poll_handle, 0, 0,
  783. timer_function_single_member, &timer_single_member);
  784. }
  785. static void timer_function_single_member (void *data)
  786. {
  787. struct orf_token orf_token;
  788. int more_messages;
  789. memset (&orf_token, 0, sizeof (struct orf_token));
  790. orf_token.header.seqid = gmi_arut;
  791. orf_token.header.type = MESSAGE_TYPE_ORF_TOKEN;
  792. orf_token.group_arut = gmi_arut;
  793. orf_token.rtr_list_entries = 0;
  794. more_messages = orf_token_mcast (&orf_token, 99, &memb_local_sockaddr_in);
  795. calculate_group_arut (&orf_token);
  796. messages_free (gmi_arut);
  797. /*
  798. * Queue delivery again if more messages are available
  799. */
  800. if (more_messages) {
  801. single_member_deliver ();
  802. }
  803. }
  804. int gmi_mcast (
  805. struct gmi_groupname *groupname,
  806. struct iovec *iovec,
  807. int iov_len,
  808. int priority)
  809. {
  810. int res;
  811. struct iovec copied_iovec;
  812. struct iovec pending_iovecs[MAXIOVS];
  813. int pending_iovec_entries = 0;
  814. int iovec_entry = 0;
  815. int total_size;
  816. int packet_size;
  817. int i;
  818. int packet_number = 0;
  819. int packet_count = 0;
  820. packet_size = FRAGMENT_SIZE;
  821. gmi_log_printf (gmi_log_level_debug, "MCASTING MESSAGE\n");
  822. memset (pending_iovecs, 0, sizeof (struct iovec) * MAXIOVS);
  823. /*
  824. * Determine size of total message
  825. */
  826. total_size = 0;
  827. for (i = 0; i < iov_len; i++) {
  828. total_size += iovec[i].iov_len;
  829. assert (iovec[i].iov_len < MESSAGE_SIZE_MAX);
  830. }
  831. if (!gmi_send_ok(priority, total_size)) {
  832. return -1;
  833. }
  834. packet_count = (total_size / packet_size);
  835. gmi_log_printf (gmi_log_level_debug, "Message size is %d\n", total_size);
  836. /*
  837. * Break message up into individual packets and publish them
  838. */
  839. copied_iovec.iov_base = iovec[0].iov_base;
  840. copied_iovec.iov_len = iovec[0].iov_len;
  841. packet_size = 0;
  842. pending_iovec_entries = 0;
  843. iovec_entry = 0;
  844. do {
  845. if (copied_iovec.iov_len + packet_size > FRAGMENT_SIZE) {
  846. pending_iovecs[pending_iovec_entries].iov_base = copied_iovec.iov_base;
  847. pending_iovecs[pending_iovec_entries].iov_len = FRAGMENT_SIZE - packet_size;
  848. copied_iovec.iov_base += FRAGMENT_SIZE - packet_size;
  849. copied_iovec.iov_len -= FRAGMENT_SIZE - packet_size;
  850. packet_size += pending_iovecs[pending_iovec_entries].iov_len;
  851. } else {
  852. pending_iovecs[pending_iovec_entries].iov_base = copied_iovec.iov_base;
  853. pending_iovecs[pending_iovec_entries].iov_len = copied_iovec.iov_len;
  854. packet_size += copied_iovec.iov_len;
  855. iovec_entry += 1; /* this must be before copied_iovec */
  856. copied_iovec.iov_base = iovec[iovec_entry].iov_base;
  857. copied_iovec.iov_len = iovec[iovec_entry].iov_len;
  858. }
  859. pending_iovec_entries += 1;
  860. if (packet_size >= FRAGMENT_SIZE || packet_size == total_size) {
  861. #ifdef DEBUGa
  862. for (i = 0; i < pending_iovec_entries; i++) {
  863. assert (pending_iovecs[i].iov_len < MESSAGE_SIZE_MAX);
  864. assert (pending_iovecs[i].iov_len >= 0);
  865. printf ("iovecs[%d] %x %d\n", i, pending_iovecs[i].iov_base, pending_iovecs[i].iov_len);
  866. calced_total += pending_iovecs[i].iov_len;
  867. }
  868. printf ("CALCULATED TOTAL is %d\n", calced_total);
  869. #endif
  870. total_size -= packet_size;
  871. assert (total_size >= 0);
  872. res = gmi_pend_trans_item_store (groupname, pending_iovecs,
  873. pending_iovec_entries, priority, packet_number, packet_count);
  874. pending_iovec_entries = 0;
  875. iovec_entry = 0;
  876. packet_size = 0;
  877. packet_number += 1;
  878. }
  879. } while (total_size > 0);
  880. /*
  881. * The queued messages are sent in orf_token_mcast, not this function
  882. * But if this processor is the only node, it must deliver the messages
  883. * for self-delivery requirements because orf_token_mcast is only called
  884. * on reception of a token
  885. */
  886. if (memb_list_entries == 1) {
  887. single_member_deliver ();
  888. }
  889. return (0);
  890. }
  891. /*
  892. * Determine if there is room to queue a message for transmission
  893. */
  894. int gmi_send_ok (
  895. int priority,
  896. int msg_size)
  897. {
  898. int avail;
  899. queue_avail (&queues_pend_trans[priority], &avail);
  900. if (avail <= (msg_size / FRAGMENT_SIZE)) {
  901. return (0);
  902. }
  903. return (1);
  904. }
  905. int gmi_recovery_plug_create (
  906. gmi_recovery_plug_handle *handle_plug)
  907. {
  908. struct plug_instance *plug_instance;
  909. SaErrorT error;
  910. error = saHandleCreate (&plug_instance_database,
  911. sizeof (struct plug_instance), handle_plug);
  912. if (error != SA_OK) {
  913. goto error_exit;
  914. }
  915. error = saHandleInstanceGet (&plug_instance_database,
  916. *handle_plug,
  917. (void *)&plug_instance);
  918. if (error != SA_OK) {
  919. goto error_destroy;
  920. }
  921. list_add (&plug_instance->list, &plug_listhead);
  922. plug_instance->plugged = 0;
  923. saHandleInstancePut (&plug_instance_database, *handle_plug);
  924. return (0);
  925. error_destroy:
  926. saHandleDestroy (&plug_instance_database, *handle_plug);
  927. error_exit:
  928. return (-1);
  929. }
  930. int gmi_recovery_plug_destroy (
  931. gmi_recovery_plug_handle handle_plug)
  932. {
  933. struct plug_instance *plug_instance;
  934. SaErrorT error;
  935. error = saHandleInstanceGet (&plug_instance_database,
  936. handle_plug, (void *)&plug_instance);
  937. if (error != SA_OK) {
  938. goto error_exit;
  939. }
  940. list_del (&plug_instance->list);
  941. saHandleDestroy (&plug_instance_database, handle_plug);
  942. saHandleInstancePut (&plug_instance_database, handle_plug);
  943. return (0);
  944. error_exit:
  945. return (-1);
  946. }
  947. int gmi_recovery_plug_unplug (
  948. gmi_recovery_plug_handle handle_plug)
  949. {
  950. SaErrorT error;
  951. struct plug_instance *plug_instance;
  952. struct list_head *list;
  953. int plugged = 0;
  954. error = saHandleInstanceGet (&plug_instance_database,
  955. handle_plug, (void *)&plug_instance);
  956. if (error != SA_OK) {
  957. goto error_exit;
  958. }
  959. plug_instance->plugged = 0;
  960. saHandleInstancePut (&plug_instance_database, handle_plug);
  961. /*
  962. * Determine if all plugs have been unplugged
  963. */
  964. for (list = plug_listhead.next; list != &plug_listhead;
  965. list = list->next) {
  966. plug_instance = list_entry (list, struct plug_instance, list);
  967. if (plug_instance->plugged) {
  968. plugged = 1;
  969. }
  970. }
  971. if (plugged == 0) {
  972. gmi_log_printf (gmi_log_level_notice, "All services unplugged, unplugging processor\n");
  973. if (memb_list_entries == 1) {
  974. plug_state = GMI_PLUG_GROUP_UNPLUGGED;
  975. gmi_log_printf (gmi_log_level_notice, "All processors unplugged, allowing messages to be transmitted.\n");
  976. } else {
  977. plug_state = GMI_PLUG_PROCESSOR_REQUEST_UNPLUG;
  978. }
  979. }
  980. error_exit:
  981. return (0);
  982. }
  983. void recovery_plug_set (void)
  984. {
  985. struct list_head *list;
  986. struct plug_instance *plug_instance;
  987. /*
  988. * Determine if all plugs have been unplugged
  989. */
  990. for (list = plug_listhead.next; list != &plug_listhead;
  991. list = list->next) {
  992. plug_instance = list_entry (list, struct plug_instance, list);
  993. plug_instance->plugged = 1;
  994. }
  995. plug_state = GMI_PLUG_PROCESSOR_PLUGGED;
  996. }
  997. static int netif_determine (struct sockaddr_in *bindnet,
  998. struct sockaddr_in *bound_to)
  999. {
  1000. struct sockaddr_in *sockaddr_in;
  1001. int id_fd;
  1002. struct ifconf ifc;
  1003. int numreqs = 0;
  1004. int res;
  1005. int i;
  1006. in_addr_t mask_addr;
  1007. /*
  1008. * Generate list of local interfaces in ifc.ifc_req structure
  1009. */
  1010. id_fd = socket (AF_INET, SOCK_STREAM, 0);
  1011. ifc.ifc_buf = 0;
  1012. do {
  1013. numreqs += 32;
  1014. ifc.ifc_len = sizeof (struct ifreq) * numreqs;
  1015. ifc.ifc_buf = (void *)realloc(ifc.ifc_buf, ifc.ifc_len);
  1016. res = ioctl (id_fd, SIOCGIFCONF, &ifc);
  1017. if (res < 0) {
  1018. close (id_fd);
  1019. return -1;
  1020. }
  1021. } while (ifc.ifc_len == sizeof (struct ifreq) * numreqs);
  1022. res = -1;
  1023. /*
  1024. * Find interface address to bind to
  1025. */
  1026. for (i = 0; i < ifc.ifc_len / sizeof (struct ifreq); i++) {
  1027. sockaddr_in = (struct sockaddr_in *)&ifc.ifc_ifcu.ifcu_req[i].ifr_ifru.ifru_addr;
  1028. mask_addr = inet_addr ("255.255.255.0");
  1029. if ((sockaddr_in->sin_family == AF_INET) &&
  1030. (sockaddr_in->sin_addr.s_addr & mask_addr) ==
  1031. (bindnet->sin_addr.s_addr & mask_addr)) {
  1032. bound_to->sin_addr.s_addr = sockaddr_in->sin_addr.s_addr;
  1033. res = i;
  1034. break; /* for */
  1035. }
  1036. }
  1037. free (ifc.ifc_buf);
  1038. close (id_fd);
  1039. return (res);
  1040. }
  1041. static int gmi_build_sockets (struct sockaddr_in *sockaddr_mcast,
  1042. struct sockaddr_in *sockaddr_bindnet,
  1043. struct gmi_socket *sockets,
  1044. struct sockaddr_in *bound_to)
  1045. {
  1046. struct ip_mreq mreq;
  1047. struct sockaddr_in sockaddr_in;
  1048. char flag;
  1049. int res;
  1050. memset (&mreq, 0, sizeof (struct ip_mreq));
  1051. /*
  1052. * Determine the ip address bound to and the interface name
  1053. */
  1054. res = netif_determine (sockaddr_bindnet,
  1055. bound_to);
  1056. if (res == -1) {
  1057. return (-1);
  1058. }
  1059. /* TODO this should be somewhere else */
  1060. memb_local_sockaddr_in.sin_addr.s_addr = bound_to->sin_addr.s_addr;
  1061. memb_local_sockaddr_in.sin_family = AF_INET;
  1062. memb_local_sockaddr_in.sin_port = sockaddr_mcast->sin_port;
  1063. /*
  1064. * Create multicast socket
  1065. */
  1066. sockets->mcast = socket (AF_INET, SOCK_DGRAM, 0);
  1067. if (sockets->mcast == -1) {
  1068. perror ("socket");
  1069. return (-1);
  1070. }
  1071. if (setsockopt (sockets->mcast, SOL_IP, IP_MULTICAST_IF,
  1072. &bound_to->sin_addr, sizeof (struct in_addr)) < 0) {
  1073. gmi_log_printf (gmi_log_level_warning, "Could not bind to device for multicast, group messaging may not work properly. (%s)\n", strerror (errno));
  1074. }
  1075. /*
  1076. * Bind to multicast socket used for multicast send/receives
  1077. */
  1078. sockaddr_in.sin_family = AF_INET;
  1079. sockaddr_in.sin_addr.s_addr = sockaddr_mcast->sin_addr.s_addr;
  1080. sockaddr_in.sin_port = sockaddr_mcast->sin_port;
  1081. res = bind (sockets->mcast, (struct sockaddr *)&sockaddr_in,
  1082. sizeof (struct sockaddr_in));
  1083. if (res == -1) {
  1084. perror ("bind failed");
  1085. return (-1);
  1086. }
  1087. /*
  1088. * Setup unicast socket
  1089. */
  1090. sockets->token = socket (AF_INET, SOCK_DGRAM, 0);
  1091. if (sockets->token == -1) {
  1092. perror ("socket2");
  1093. return (-1);
  1094. }
  1095. /*
  1096. * Bind to unicast socket used for token send/receives
  1097. * This has the side effect of binding to the correct interface
  1098. */
  1099. sockaddr_in.sin_addr.s_addr = bound_to->sin_addr.s_addr;
  1100. res = bind (sockets->token, (struct sockaddr *)&sockaddr_in,
  1101. sizeof (struct sockaddr_in));
  1102. if (res == -1) {
  1103. perror ("bind2 failed");
  1104. return (-1);
  1105. }
  1106. #ifdef CONFIG_USE_BROADCAST
  1107. /* This config option doesn't work */
  1108. {
  1109. int on = 1;
  1110. setsockopt (sockets->mcast, SOL_SOCKET, SO_BROADCAST, (char *)&on, sizeof (on));
  1111. }
  1112. #else
  1113. /*
  1114. * Join group membership on socket
  1115. */
  1116. mreq.imr_multiaddr.s_addr = sockaddr_mcast->sin_addr.s_addr;
  1117. mreq.imr_interface.s_addr = bound_to->sin_addr.s_addr;
  1118. res = setsockopt (sockets->mcast, IPPROTO_IP, IP_ADD_MEMBERSHIP,
  1119. &mreq, sizeof (mreq));
  1120. if (res == -1) {
  1121. perror ("join multicast group failed");
  1122. return (-1);
  1123. }
  1124. #endif
  1125. /*
  1126. * Turn off multicast loopback since we know what messages we have sent
  1127. */
  1128. flag = 0;
  1129. res = setsockopt (sockets->mcast, IPPROTO_IP, IP_MULTICAST_LOOP,
  1130. &flag, sizeof (flag));
  1131. if (res == -1) {
  1132. perror ("turn off loopback");
  1133. return (-1);
  1134. }
  1135. return (0);
  1136. }
  1137. /*
  1138. * Misc Management
  1139. */
  1140. int in_addr_compare (const void *a, const void *b) {
  1141. struct in_addr *in_addr_a = (struct in_addr *)a;
  1142. struct in_addr *in_addr_b = (struct in_addr *)b;
  1143. return (in_addr_a->s_addr > in_addr_b->s_addr);
  1144. }
  1145. /*
  1146. * ORF Token Management
  1147. */
  1148. /*
  1149. * Recast message to mcast group if it is available
  1150. */
  1151. int orf_token_remcast (int seqid) {
  1152. struct msghdr msg_mcast;
  1153. struct gmi_rtr_item *gmi_rtr_item;
  1154. int res;
  1155. struct mcast *mcast;
  1156. #ifdef DEBUG
  1157. printf ("remulticasting %d\n", seqid);
  1158. #endif
  1159. /*
  1160. * Get RTR item at seqid, if not available, return
  1161. */
  1162. res = sq_item_get (&queue_rtr_items, seqid, (void **)&gmi_rtr_item);
  1163. if (res != 0) {
  1164. return -1;
  1165. }
  1166. mcast = (struct mcast *)gmi_rtr_item->iovec[0].iov_base;
  1167. encrypt_and_sign (gmi_rtr_item->iovec, gmi_rtr_item->iov_len);
  1168. /*
  1169. * Build multicast message
  1170. */
  1171. msg_mcast.msg_name = (caddr_t)&sockaddr_in_mcast;
  1172. msg_mcast.msg_namelen = sizeof (struct sockaddr_in);
  1173. msg_mcast.msg_iov = &iov_encrypted;
  1174. msg_mcast.msg_iovlen = 1;
  1175. msg_mcast.msg_control = 0;
  1176. msg_mcast.msg_controllen = 0;
  1177. msg_mcast.msg_flags = 0;
  1178. /*
  1179. * Multicast message
  1180. */
  1181. res = sendmsg (gmi_sockets[0].mcast, &msg_mcast, MSG_NOSIGNAL | MSG_DONTWAIT);
  1182. if (res == -1) {
  1183. printf ("error during remulticast %d %d %d\n", seqid, errno, gmi_rtr_item->iov_len);
  1184. return (-1);
  1185. }
  1186. stats_sent += res;
  1187. return (0);
  1188. }
  1189. int last_group_arut = 0;
  1190. int last_released = 0;
  1191. int set_arut = -1;
  1192. /*
  1193. * Brake output multicasts if the missing window is too large
  1194. */
  1195. int gmi_brake;
  1196. static int messages_free (int group_arut)
  1197. {
  1198. struct gmi_rtr_item *gmi_rtr_item_p;
  1199. int i;
  1200. int res;
  1201. int lesser;
  1202. // TODO printf ("group arut %d last_group-arut %d gmi_dut %d barrier %d\n", group_arut, last_group_arut, gmi_dut, gmi_barrier_seq);
  1203. /*
  1204. * Determine braking value (when messages + MISSING_MCAST_WINDOW, stop sending messages)
  1205. */
  1206. gmi_brake = group_arut;
  1207. if (gmi_brake > last_group_arut) {
  1208. gmi_brake = last_group_arut;
  1209. }
  1210. lesser = gmi_brake;
  1211. //printf ("Freeing lesser %d %d %d\n", lesser, group_arut, last_group_arut);
  1212. //printf ("lesser %d gropu arut %d last group arut %d\n", lesser, group_arut, last_group_arut);
  1213. /*
  1214. * return early if no messages can be freed
  1215. */
  1216. /*
  1217. if (last_released + 1 == lesser) {
  1218. return (0);
  1219. }
  1220. */
  1221. /*
  1222. * Release retransmit list items if group arut indicates they are transmitted
  1223. */
  1224. for (i = last_released; i <= lesser; i++) {
  1225. res = sq_item_get (&queue_rtr_items, i, (void **)&gmi_rtr_item_p);
  1226. if (res == 0) {
  1227. release_reftwo_iovec (gmi_rtr_item_p->reftwo,
  1228. gmi_rtr_item_p->iovec,
  1229. gmi_rtr_item_p->iov_len);
  1230. }
  1231. sq_items_release (&queue_rtr_items, i);
  1232. last_released = i + 1;
  1233. }
  1234. gmi_log_printf (gmi_log_level_debug, "releasing messages up to and including %d\n", lesser);
  1235. return (0);
  1236. }
  1237. /*
  1238. * Multicasts pending messages onto the ring (requires orf_token possession)
  1239. */
  1240. static int orf_token_mcast (
  1241. struct orf_token *orf_token,
  1242. int fcc_mcasts_allowed,
  1243. struct sockaddr_in *system_from)
  1244. {
  1245. struct msghdr msg_mcast;
  1246. struct gmi_rtr_item gmi_rtr_item;
  1247. struct gmi_pend_trans_item *gmi_pend_trans_item = 0;
  1248. int res = 0;
  1249. int orf_token_seqid;
  1250. struct mcast *mcast;
  1251. int last_packet = 1;
  1252. struct queue *queue_pend_trans;
  1253. /*
  1254. * Disallow multicasts unless state is operational
  1255. */
  1256. if (memb_state != MEMB_STATE_OPERATIONAL) {
  1257. return (0);
  1258. }
  1259. /*
  1260. * If received a token with a higher sequence number,
  1261. * set highest seq so retransmits can happen at end of
  1262. * message stream
  1263. */
  1264. if (orf_token->header.seqid > gmi_highest_seq) {
  1265. gmi_highest_seq = orf_token->header.seqid;
  1266. }
  1267. orf_token_seqid = orf_token->header.seqid;
  1268. queue_pend_trans = &queues_pend_trans[gmi_pend_queue_priority];
  1269. for (fcc_mcast_current = 0; fcc_mcast_current < fcc_mcasts_allowed; fcc_mcast_current++) {
  1270. /*
  1271. * determine which pending queue to take message
  1272. * from if this is not a message fragment
  1273. */
  1274. if (gmi_fragment == 0) {
  1275. gmi_pend_queue_priority = GMI_PRIO_RECOVERY;
  1276. do {
  1277. queue_pend_trans = &queues_pend_trans[gmi_pend_queue_priority];
  1278. if (queue_is_empty (queue_pend_trans)) {
  1279. gmi_pend_queue_priority++;
  1280. } else {
  1281. break; /* from do - found first queue with data */
  1282. }
  1283. } while (gmi_pend_queue_priority < PRIORITY_MAX);
  1284. }
  1285. if (gmi_pend_queue_priority == PRIORITY_MAX) {
  1286. break; /* all queues are empty, break from for */
  1287. }
  1288. if (plug_state != GMI_PLUG_GROUP_UNPLUGGED &&
  1289. gmi_pend_queue_priority != GMI_PRIO_RECOVERY) {
  1290. break; /* group isn't unplugged and this isn't a recovery message */
  1291. }
  1292. // printf ("selecting pending queue %d\n", gmi_pend_queue_priority);
  1293. gmi_pend_trans_item = (struct gmi_pend_trans_item *)queue_item_get (queue_pend_trans);
  1294. /* preincrement required by algo */
  1295. gmi_pend_trans_item->mcast->header.seqid = ++orf_token->header.seqid;
  1296. // UNDO printf ("multicasting seqid %d\n", gmi_pend_trans_item->mcast->header.seqid);
  1297. last_packet = (gmi_pend_trans_item->mcast->packet_number ==
  1298. gmi_pend_trans_item->mcast->packet_count);
  1299. //printf ("last packet is %d current mcast %d\n", last_packet, fcc_mcast_current);
  1300. /*
  1301. * Build IO vector
  1302. */
  1303. memset (&gmi_rtr_item, 0, sizeof (struct gmi_rtr_item));
  1304. gmi_rtr_item.reftwo = gmi_pend_trans_item->reftwo;
  1305. gmi_rtr_item.iovec[0].iov_base = gmi_pend_trans_item->mcast;
  1306. gmi_rtr_item.iovec[0].iov_len = sizeof (struct mcast);
  1307. mcast = gmi_rtr_item.iovec[0].iov_base;
  1308. /*
  1309. * Is this a fragment of a message
  1310. */
  1311. if (mcast->packet_number == mcast->packet_count) {
  1312. gmi_fragment = 0;
  1313. } else {
  1314. gmi_fragment = 1;
  1315. }
  1316. memcpy (&mcast->memb_conf_id, &memb_form_token_conf_id,
  1317. sizeof (struct memb_conf_id));
  1318. memcpy (&gmi_rtr_item.iovec[1], gmi_pend_trans_item->iovec,
  1319. gmi_pend_trans_item->iov_len * sizeof (struct iovec));
  1320. gmi_rtr_item.iov_len = gmi_pend_trans_item->iov_len + 1;
  1321. assert (gmi_rtr_item.iov_len < 16);
  1322. /*
  1323. * Add message to retransmit queue
  1324. */
  1325. sq_item_add (&queue_rtr_items,
  1326. &gmi_rtr_item, gmi_pend_trans_item->mcast->header.seqid);
  1327. /*
  1328. * Delete item from pending queue
  1329. */
  1330. queue_item_remove (queue_pend_trans);
  1331. /*
  1332. * Encrypt and digest the message
  1333. */
  1334. encrypt_and_sign (gmi_rtr_item.iovec, gmi_rtr_item.iov_len);
  1335. /*
  1336. * Build multicast message
  1337. */
  1338. msg_mcast.msg_name = &sockaddr_in_mcast;
  1339. msg_mcast.msg_namelen = sizeof (struct sockaddr_in);
  1340. msg_mcast.msg_iov = &iov_encrypted;
  1341. msg_mcast.msg_iovlen = 1;
  1342. msg_mcast.msg_control = 0;
  1343. msg_mcast.msg_controllen = 0;
  1344. msg_mcast.msg_flags = 0;
  1345. /*
  1346. * Multicast message
  1347. */
  1348. res = sendmsg (gmi_sockets[0].mcast, &msg_mcast, MSG_NOSIGNAL | MSG_DONTWAIT);
  1349. iov_encrypted.iov_len = PACKET_SIZE_MAX;
  1350. /*
  1351. * An error here is recovered by the multicast algorithm
  1352. */
  1353. // TODO stats_sent isn't right below
  1354. stats_sent += res;
  1355. }
  1356. assert (fcc_mcast_current < 100);
  1357. #ifdef OUTA
  1358. if (fcc_mcast_current > fcc_mcasts_allowed) {
  1359. fcc_mcast_current = fcc_mcasts_allowed;
  1360. }
  1361. #endif
  1362. /*
  1363. * If messages mcasted, deliver any new messages to pending queues
  1364. */
  1365. if (fcc_mcast_current) {
  1366. if (gmi_pend_trans_item->mcast->header.seqid > gmi_highest_seq) {
  1367. gmi_highest_seq = gmi_pend_trans_item->mcast->header.seqid;
  1368. }
  1369. pending_queues_deliver ();
  1370. //printf ("orf Token seqid is %d group %d\n", orf_token_seqid, orf_token->group_arut);
  1371. #ifdef COMPILE_OUT
  1372. if (orf_token_seqid == orf_token->group_arut) {
  1373. //printf ("previous group arut #1 %d\n", orf_token->group_arut);
  1374. orf_token->group_arut = orf_token_seqid + fcc_mcast_current;
  1375. orf_token->addr_arut.s_addr = 0;
  1376. }
  1377. //printf ("reasing group arut to %d\n", orf_token->group_arut);
  1378. #endif
  1379. }
  1380. /*
  1381. * Return 1 if more messages are available for single node clusters
  1382. */
  1383. return (fcc_mcast_current == fcc_mcasts_allowed);
  1384. }
  1385. /*
  1386. * Remulticasts messages in orf_token's retransmit list (requires orf_token)
  1387. * Modify's orf_token's rtr to include retransmits required by this process
  1388. */
  1389. static void orf_token_rtr (
  1390. struct orf_token *orf_token,
  1391. struct rtr_item *rtr_list_new,
  1392. int *fcc_allowed)
  1393. {
  1394. int res;
  1395. int i, j;
  1396. int found;
  1397. int index_old = 0;
  1398. int index_new = 0;
  1399. struct rtr_item *rtr_list_old;
  1400. int total_entries;
  1401. rtr_list_old = (struct rtr_item *)(((char *)orf_token) + sizeof (struct orf_token));
  1402. /*
  1403. if (orf_token->rtr_list_entries) {
  1404. printf ("Retransmit List %d\n", orf_token->rtr_list_entries);
  1405. for (i = 0; i < orf_token->rtr_list_entries; i++) {
  1406. printf ("%d ", rtr_list_old[i].seqid);
  1407. }
  1408. printf ("\n");
  1409. }
  1410. */
  1411. total_entries = orf_token->rtr_list_entries;
  1412. /*
  1413. * Retransmit messages on orf_token's RTR list from RTR queue
  1414. */
  1415. for (fcc_remcast_current = 0, index_old = 0;
  1416. fcc_remcast_current <= *fcc_allowed &&
  1417. index_old < total_entries;) {
  1418. assert (index_new < RETRANSMIT_ENTRIES_MAX);
  1419. #ifdef COMPILE_OUT
  1420. printf ("%d.%d.%d vs %d.%d.%d\n",
  1421. rtr_list_old[index_old].conf_id.rep.s_addr,
  1422. rtr_list_old[index_old].conf_id.tv.tv_sec,
  1423. rtr_list_old[index_old].conf_id.tv.tv_usec,
  1424. memb_form_token_conf_id.rep.s_addr,
  1425. memb_form_token_conf_id.tv.tv_sec,
  1426. memb_form_token_conf_id.tv.tv_usec);
  1427. #endif
  1428. /*
  1429. * If this retransmit request isn't from this configuration,
  1430. * try next rtr entry
  1431. */
  1432. if (memcmp (&rtr_list_old[index_old].conf_id, &memb_form_token_conf_id,
  1433. sizeof (struct memb_conf_id)) != 0) {
  1434. /*
  1435. * Copy retransmit request to new retransmit list because its a
  1436. * retransmit request for another configuration
  1437. */
  1438. memcpy (&rtr_list_new[index_new],
  1439. &rtr_list_old[index_old],
  1440. sizeof (struct rtr_item));
  1441. index_old += 1;
  1442. index_new += 1;
  1443. continue;
  1444. }
  1445. assert (rtr_list_old[index_old].seqid > 0);
  1446. res = orf_token_remcast (rtr_list_old[index_old].seqid);
  1447. if (res == 0) {
  1448. /*
  1449. * Multicasted message, so no need to copy to new retransmit list
  1450. */
  1451. orf_token->rtr_list_entries -= 1;
  1452. assert (orf_token->rtr_list_entries >= 0);
  1453. index_old += 1;
  1454. fcc_remcast_current++;
  1455. stats_remcasts++;
  1456. } else {
  1457. /*
  1458. * Couldn't remulticast, so copy request to new retransmit list
  1459. */
  1460. memcpy (&rtr_list_new[index_new],
  1461. &rtr_list_old[index_old],
  1462. sizeof (struct rtr_item));
  1463. index_old += 1;
  1464. index_new += 1;
  1465. }
  1466. }
  1467. *fcc_allowed = *fcc_allowed - fcc_remcast_current - 1;
  1468. /*
  1469. * Copy unsent requests because flow control limit was reached
  1470. */
  1471. if (orf_token->rtr_list_entries - index_new) {
  1472. memcpy (&rtr_list_new[index_new],
  1473. &rtr_list_old[index_old],
  1474. sizeof (struct rtr_item) * (orf_token->rtr_list_entries - index_new));
  1475. index_new += orf_token->rtr_list_entries - index_new;
  1476. }
  1477. #ifdef COMPILE_OUT
  1478. for (i = 0; i < orf_token->rtr_list_entries; i++) {
  1479. assert (rtr_list_old[index_old].seqid != -1);
  1480. }
  1481. #endif
  1482. /*
  1483. * Add messages to retransmit to RTR list
  1484. * but only retry if there is room in the retransmit list
  1485. */
  1486. for (i = gmi_arut + 1;
  1487. orf_token->rtr_list_entries < RETRANSMIT_ENTRIES_MAX &&
  1488. i <= gmi_highest_seq;
  1489. i++) {
  1490. /*
  1491. * Find if a message is missing from this processor
  1492. */
  1493. res = sq_item_inuse (&queue_rtr_items, i);
  1494. if (res == 0) {
  1495. /*
  1496. * Determine if missing message is already in retransmit list
  1497. */
  1498. found = 0;
  1499. for (j = 0; j < orf_token->rtr_list_entries; j++) {
  1500. if (i == rtr_list_new[j].seqid) {
  1501. found = 1;
  1502. }
  1503. }
  1504. if (found == 0) {
  1505. /*
  1506. * Missing message not found in current retransmit list so add it
  1507. */
  1508. memcpy (&rtr_list_new[orf_token->rtr_list_entries].conf_id,
  1509. &memb_form_token_conf_id, sizeof (struct memb_conf_id));
  1510. rtr_list_new[orf_token->rtr_list_entries].seqid = i;
  1511. orf_token->rtr_list_entries++;
  1512. }
  1513. }
  1514. }
  1515. }
  1516. static void orf_token_plug_calculate (
  1517. struct orf_token *orf_token,
  1518. unsigned char *plug_bitmap_new)
  1519. {
  1520. unsigned char *plug_bitmap_old;
  1521. int bitmap_reps;
  1522. int i;
  1523. int set_unplugged = 1;
  1524. /*
  1525. * If the group is already unplugged, do nothing
  1526. */
  1527. if (plug_state == GMI_PLUG_GROUP_UNPLUGGED) {
  1528. return;
  1529. }
  1530. plug_bitmap_old = (((char *)orf_token) +
  1531. sizeof (struct orf_token) +
  1532. (sizeof (struct rtr_item) * orf_token->rtr_list_entries));
  1533. memcpy (plug_bitmap_new, plug_bitmap_old, orf_token->bitmap_bytes);
  1534. /*
  1535. * Unplug this processor if an unplug request is pending and
  1536. * no further messages are pending in the pending queue
  1537. */
  1538. if (queue_is_empty (&queues_pend_trans[GMI_PRIO_RECOVERY]) &&
  1539. plug_state == GMI_PLUG_PROCESSOR_REQUEST_UNPLUG) {
  1540. plug_state = GMI_PLUG_PROCESSOR_UNPLUGGED;
  1541. for (i = 0; i < memb_list_entries; i++) {
  1542. if (memb_list[i].sin_addr.s_addr == memb_local_sockaddr_in.sin_addr.s_addr) {
  1543. plug_bitmap_new[i / 8] |= 1 << (i % 8);
  1544. break;
  1545. }
  1546. }
  1547. }
  1548. /*
  1549. * Determine if group is unplugged
  1550. */
  1551. if (plug_state == GMI_PLUG_PROCESSOR_UNPLUGGED) {
  1552. bitmap_reps = (1 << (memb_list_entries % 8)) - 1;
  1553. if ((bitmap_reps & plug_bitmap_new[memb_list_entries / 8]) == bitmap_reps) {
  1554. /*
  1555. * If bits 0..(1<<memb_list_entries/8) not set, don't unplug
  1556. */
  1557. for (i = 0; i < (memb_list_entries / 8); i++) {
  1558. if (plug_bitmap_new[i] != 0xff) {
  1559. set_unplugged = 0;
  1560. break;
  1561. }
  1562. }
  1563. if (set_unplugged) {
  1564. plug_state = GMI_PLUG_GROUP_UNPLUGGED;
  1565. gmi_log_printf (gmi_log_level_notice, "All processors unplugged, allowing messages to be transmitted.\n");
  1566. }
  1567. }
  1568. }
  1569. }
  1570. /*
  1571. * Calculate flow control count
  1572. */
  1573. static void orf_token_fcc (
  1574. struct orf_token *orf_token)
  1575. {
  1576. orf_token->fcc = orf_token->fcc - fcc_mcast_last - fcc_remcast_last
  1577. + fcc_mcast_current + fcc_remcast_current;
  1578. //printf ("orf token fcc is %d %d %d %d %d\n", orf_token->fcc, fcc_mcast_last,
  1579. // fcc_remcast_last, fcc_mcast_current, fcc_remcast_current);
  1580. fcc_mcast_last = fcc_mcast_current;
  1581. fcc_remcast_last = fcc_remcast_current;
  1582. fcc_mcast_current = 0;
  1583. fcc_remcast_current = 0;
  1584. }
  1585. static void queues_queue_frag_memb_new (void)
  1586. {
  1587. struct queue_frag queues_frag_new[MAX_MEMBERS];
  1588. int item_index = 0;
  1589. int i, j;
  1590. int found;
  1591. memset (queues_frag_new, 0, sizeof (struct queue_frag) * MAX_MEMBERS);
  1592. /*
  1593. * Free queues that are no longer part of the configuration
  1594. */
  1595. for (i = 0; i < MAX_MEMBERS; i++) {
  1596. found = 0;
  1597. for (j = 0; j < memb_list_entries_confchg; j++) {
  1598. if (memb_list[j].sin_addr.s_addr == queues_frag[i].source_addr.s_addr) {
  1599. found = 1;
  1600. break;
  1601. }
  1602. }
  1603. if (found == 0) {
  1604. queue_free (&queues_frag[i].assembly.queue);
  1605. queue_free (&queues_frag[i].pend_queue);
  1606. }
  1607. }
  1608. /*
  1609. * Build new pending list
  1610. */
  1611. for (i = 0; i < memb_list_entries_confchg; i++) {
  1612. found = 0;
  1613. for (j = 0; j < MAX_MEMBERS; j++) {
  1614. /*
  1615. * If membership item in queues pending delivery list, copy it
  1616. */
  1617. if (memb_list[i].sin_addr.s_addr == queues_frag[j].source_addr.s_addr) {
  1618. memcpy (&queues_frag_new[item_index], &queues_frag[j],
  1619. sizeof (struct queue_frag));
  1620. item_index += 1;
  1621. found = 1;
  1622. break; /* for j = */
  1623. }
  1624. }
  1625. /*
  1626. * If membership item not found in pending delivery list, make new entry
  1627. */
  1628. if (found == 0) {
  1629. queue_init (&queues_frag_new[item_index].assembly.queue,
  1630. QUEUE_ASSEMBLY_SIZE_MAX,
  1631. sizeof (struct assembly_queue_item));
  1632. queue_init (&queues_frag_new[item_index].pend_queue,
  1633. QUEUE_PEND_SIZE_MAX, sizeof (struct pend_queue_item));
  1634. queues_frag_new[item_index].assembly.seqid = 0;
  1635. queues_frag_new[item_index].source_addr.s_addr =
  1636. memb_list[i].sin_addr.s_addr;
  1637. printf ("New queue for ip %s\n", inet_ntoa (queues_frag_new[item_index].source_addr));
  1638. item_index += 1;
  1639. }
  1640. }
  1641. /*
  1642. * Copy new list into system list
  1643. */
  1644. memcpy (queues_frag, queues_frag_new,
  1645. sizeof (struct queue_frag) * MAX_MEMBERS);
  1646. for (i = 0; i < memb_list_entries_confchg; i++) {
  1647. queues_frag[i].seqid = 0;
  1648. queues_frag[i].assembly.seqid = 0;
  1649. }
  1650. #ifdef TODO
  1651. for (i = 0; i < memb_list_entries_confchg; i++) {
  1652. /*
  1653. * If queue not empty, mark it for first delivery
  1654. * otherwise reset seqno
  1655. */
  1656. if (queue_is_empty (&queues_pend_delv[i].queue) == 0) {
  1657. queues_pend_delv[i].first_delivery = 1;
  1658. } else {
  1659. queues_pend_delv[i].seqid = 0;
  1660. }
  1661. }
  1662. #endif
  1663. }
  1664. static int orf_token_evs (
  1665. struct orf_token *orf_token,
  1666. int starting_group_arut)
  1667. {
  1668. int i, j;
  1669. struct sockaddr_in trans_memb_list[MAX_MEMBERS];
  1670. struct sockaddr_in left_list[MAX_MEMBERS];
  1671. struct sockaddr_in joined_list[MAX_MEMBERS];
  1672. int trans_memb_list_entries = 0;
  1673. int left_list_entries = 0;
  1674. int joined_list_entries = 0;
  1675. int found;
  1676. //printf ("group arut is %d %d %d %d\n", orf_token->header.seqid, orf_token->group_arut, gmi_arut, gmi_highest_seq);
  1677. /*
  1678. * We should only execute this function if we are in EVS membership state
  1679. */
  1680. if (memb_state != MEMB_STATE_EVS) {
  1681. return (0);
  1682. }
  1683. memset (trans_memb_list, 0, sizeof (struct sockaddr_in) * MAX_MEMBERS);
  1684. /*
  1685. * Delete form token timer since the token has been swallowed
  1686. */
  1687. poll_timer_delete (*gmi_poll_handle, timer_form_token_timeout);
  1688. timer_form_token_timeout = 0;
  1689. printf ("EVS STATE group arut %d gmi arut %d highest %d barrier %d starting group arut %d\n", orf_token->group_arut, gmi_arut, gmi_highest_seq, gmi_barrier_seq, starting_group_arut);
  1690. /*
  1691. * This node has reached highest seq, set local arut to barrier
  1692. */
  1693. if (gmi_arut == gmi_highest_seq) {
  1694. //printf ("setting arut to barrier %d\n", gmi_barrier_seq);
  1695. gmi_arut = gmi_barrier_seq;
  1696. }
  1697. /*
  1698. * Determine when EVS recovery has completed
  1699. */
  1700. //printf ("group arut is %d %d %d\n", orf_token->group_arut, gmi_arut, gmi_highest_seq);
  1701. // TODO
  1702. if (memb_state == MEMB_STATE_EVS && gmi_arut == gmi_barrier_seq && orf_token->group_arut == gmi_barrier_seq) {
  1703. gmi_log_printf (gmi_log_level_notice, "EVS recovery of messages complete, transitioning to operational.\n");
  1704. messages_free (gmi_barrier_seq - 1);
  1705. /*
  1706. * EVS recovery complete, reset local variables
  1707. */
  1708. gmi_arut = 0;
  1709. // gmi_token_seqid = 0;
  1710. gmi_highest_seq_old = gmi_highest_seq;
  1711. gmi_highest_seq = 0;
  1712. last_group_arut = 0;
  1713. last_released = 0;
  1714. sq_reinit (&queue_rtr_items, 0);
  1715. memb_failed_list_entries = 0;
  1716. memb_state = MEMB_STATE_OPERATIONAL;
  1717. qsort (memb_form_token.member_list, memb_form_token.member_list_entries,
  1718. sizeof (struct in_addr), in_addr_compare);
  1719. printf ("CONFCHG ENTRIES %d\n", memb_list_entries_confchg);
  1720. /*
  1721. * Determine transitional configuration
  1722. */
  1723. for (i = 0; i < memb_list_entries_confchg; i++) {
  1724. for (found = 0, j = 0; j < memb_form_token.member_list_entries; j++) {
  1725. if (memb_list[i].sin_addr.s_addr == memb_form_token.member_list[j].s_addr) {
  1726. found = 1;
  1727. break;
  1728. }
  1729. }
  1730. if (found == 1) {
  1731. trans_memb_list[trans_memb_list_entries].sin_addr.s_addr = memb_list[i].sin_addr.s_addr;
  1732. trans_memb_list[trans_memb_list_entries].sin_family = AF_INET;
  1733. trans_memb_list[trans_memb_list_entries].sin_port = sockaddr_in_mcast.sin_port;
  1734. trans_memb_list_entries += 1;
  1735. }
  1736. }
  1737. /*
  1738. * Determine nodes that left the configuration
  1739. */
  1740. for (i = 0; i < memb_list_entries_confchg; i++) {
  1741. for (found = 0, j = 0; j < memb_form_token.member_list_entries; j++) {
  1742. if (memb_list[i].sin_addr.s_addr == memb_form_token.member_list[j].s_addr) {
  1743. found = 1;
  1744. break; /* for j = 0 */
  1745. }
  1746. }
  1747. /*
  1748. * Node left membership, add it to list
  1749. */
  1750. if (found == 0) {
  1751. left_list[left_list_entries].sin_addr.s_addr = memb_list[i].sin_addr.s_addr;
  1752. left_list[left_list_entries].sin_family = AF_INET;
  1753. left_list[left_list_entries].sin_port = sockaddr_in_mcast.sin_port;
  1754. left_list_entries += 1;
  1755. }
  1756. }
  1757. /*
  1758. * Disallow all but RECOVERY priority messages
  1759. */
  1760. printf ("calling recovery\n");
  1761. recovery_plug_set ();
  1762. /*
  1763. * MAIN STEP:
  1764. * Deliver transitional configuration
  1765. */
  1766. if (gmi_confchg_fn &&
  1767. (trans_memb_list_entries != memb_list_entries ||
  1768. (memcmp (trans_memb_list, memb_list, sizeof (struct sockaddr_in) * memb_list_entries) != 0))) {
  1769. gmi_confchg_fn (GMI_CONFIGURATION_TRANSITIONAL, trans_memb_list, trans_memb_list_entries,
  1770. left_list, left_list_entries,
  1771. 0, 0);
  1772. }
  1773. /*
  1774. * Determine nodes that joined the configuration
  1775. */
  1776. for (i = 0; i < memb_form_token.member_list_entries; i++) {
  1777. for (found = 0, j = 0; j < memb_list_entries_confchg; j++) {
  1778. if (memb_form_token.member_list[i].s_addr == memb_list[j].sin_addr.s_addr) {
  1779. found = 1;
  1780. break; /* for j = 0 */
  1781. }
  1782. }
  1783. /*
  1784. * Node joined membership, add it to list
  1785. */
  1786. if (found == 0) {
  1787. joined_list[joined_list_entries].sin_addr.s_addr = memb_form_token.member_list[i].s_addr;
  1788. joined_list[joined_list_entries].sin_family = AF_INET;
  1789. joined_list[joined_list_entries].sin_port = sockaddr_in_mcast.sin_port;
  1790. joined_list_entries += 1;
  1791. }
  1792. }
  1793. /*
  1794. * Install the form token's configuration into the local membership
  1795. */
  1796. for (i = 0; i < memb_form_token.member_list_entries; i++) {
  1797. memb_list[i].sin_addr.s_addr = memb_form_token.member_list[i].s_addr;
  1798. memb_list[i].sin_family = AF_INET;
  1799. memb_list[i].sin_port = sockaddr_in_mcast.sin_port;
  1800. }
  1801. /*
  1802. * Install pending delivery queues
  1803. */
  1804. memb_list_entries = memb_form_token.member_list_entries;
  1805. memb_list_entries_confchg = memb_list_entries;
  1806. queues_queue_frag_memb_new ();
  1807. /*
  1808. * Install new conf id
  1809. */
  1810. memcpy (&memb_conf_id, &memb_form_token.conf_id,
  1811. sizeof (struct memb_conf_id));
  1812. memcpy (&memb_form_token_conf_id, &memb_form_token.conf_id,
  1813. sizeof (struct memb_conf_id));
  1814. /*
  1815. * Deliver regular configuration
  1816. */
  1817. if (gmi_confchg_fn) {
  1818. gmi_confchg_fn (GMI_CONFIGURATION_REGULAR, memb_list, memb_list_entries,
  1819. left_list, 0,
  1820. joined_list, joined_list_entries);
  1821. }
  1822. }
  1823. return (0);
  1824. }
  1825. int gwin = 80;
  1826. int pwin = 20;
  1827. static int orf_fcc_allowed (struct orf_token *token)
  1828. {
  1829. int allowed;
  1830. if (memb_state != MEMB_STATE_OPERATIONAL) {
  1831. return (0);
  1832. }
  1833. allowed = gwin + pwin - token->fcc;
  1834. if (allowed < 0) {
  1835. allowed = 0;
  1836. }
  1837. if (allowed > gwin) {
  1838. allowed = gwin;
  1839. }
  1840. if (allowed > pwin) {
  1841. allowed = pwin;
  1842. }
  1843. return (allowed);
  1844. }
  1845. /*
  1846. * Retransmit the regular token if no mcast or token has
  1847. * been received in retransmit token period retransmit
  1848. * the token to the next processor
  1849. */
  1850. void timer_function_token_retransmit_timeout (void *data)
  1851. {
  1852. struct iovec iovec;
  1853. struct msghdr msg_orf_token;
  1854. int res;
  1855. gmi_log_printf (gmi_log_level_warning, "Token being retransmitted.\n");
  1856. iovec.iov_base = orf_token_retransmit;
  1857. iovec.iov_len = orf_token_retransmit_size;
  1858. msg_orf_token.msg_name = (caddr_t)&memb_next;
  1859. msg_orf_token.msg_namelen = sizeof (struct sockaddr_in);
  1860. msg_orf_token.msg_iov = &iovec;
  1861. msg_orf_token.msg_iovlen = 1;
  1862. msg_orf_token.msg_control = 0;
  1863. msg_orf_token.msg_controllen = 0;
  1864. msg_orf_token.msg_flags = 0;
  1865. res = sendmsg (gmi_sockets[0].token, &msg_orf_token, MSG_NOSIGNAL);
  1866. assert (res != -1);
  1867. }
  1868. void timer_function_form_token_timeout (void *data)
  1869. {
  1870. gmi_log_printf (gmi_log_level_warning, "Token loss in FORM state\n");
  1871. memb_list_entries = 1;
  1872. /*
  1873. * Add highest rep to failed list to ensure termination
  1874. */
  1875. memb_failed_list[memb_failed_list_entries++].s_addr =
  1876. memb_form_token.rep_list[memb_form_token.rep_list_entries].s_addr;
  1877. memb_state_gather_enter ();
  1878. }
  1879. void orf_timer_function_token_timeout (void *data)
  1880. {
  1881. switch (memb_state) {
  1882. case MEMB_STATE_OPERATIONAL:
  1883. gmi_log_printf (gmi_log_level_warning, "Token loss in OPERATIONAL.\n");
  1884. memb_conf_id.rep.s_addr = memb_local_sockaddr_in.sin_addr.s_addr;
  1885. memb_list_entries = 1;
  1886. memb_state_gather_enter ();
  1887. break;
  1888. case MEMB_STATE_GATHER:
  1889. case MEMB_STATE_COMMIT:
  1890. gmi_log_printf (gmi_log_level_warning, "Token loss in GATHER or COMMIT.\n");
  1891. memb_conf_id.rep.s_addr = memb_local_sockaddr_in.sin_addr.s_addr;
  1892. memb_list_entries = 1;
  1893. break;
  1894. case MEMB_STATE_EVS:
  1895. gmi_log_printf (gmi_log_level_warning, "Token loss in EVS state\n");
  1896. memb_list_entries = 1;
  1897. memb_state_gather_enter ();
  1898. break;
  1899. default:
  1900. printf ("token loss in form state doesn't make sense here\n");
  1901. break;
  1902. }
  1903. }
  1904. /*
  1905. * Send orf_token to next member (requires orf_token)
  1906. */
  1907. static int orf_token_send (
  1908. struct orf_token *orf_token,
  1909. struct rtr_item *rtr_list,
  1910. unsigned char *plug_bitmap,
  1911. int reset_timer)
  1912. {
  1913. struct msghdr msg_orf_token;
  1914. struct iovec iovec_orf_token[3];
  1915. int iov_len;
  1916. int res;
  1917. if (reset_timer) {
  1918. poll_timer_delete (*gmi_poll_handle, timer_orf_token_timeout);
  1919. poll_timer_add (*gmi_poll_handle, TIMEOUT_TOKEN, 0,
  1920. orf_timer_function_token_timeout, &timer_orf_token_timeout);
  1921. }
  1922. iovec_orf_token[0].iov_base = (char *)orf_token;
  1923. iovec_orf_token[0].iov_len = sizeof (struct orf_token);
  1924. iovec_orf_token[1].iov_base = (char *)rtr_list;
  1925. iovec_orf_token[1].iov_len = sizeof (struct rtr_item) * orf_token->rtr_list_entries;
  1926. iov_len = 2;
  1927. if (plug_bitmap) {
  1928. iovec_orf_token[2].iov_base = (char *)plug_bitmap;
  1929. iovec_orf_token[2].iov_len = sizeof (unsigned char) * (MAX_MEMBERS / 8);
  1930. iov_len = 3;
  1931. }
  1932. encrypt_and_sign (iovec_orf_token, iov_len);
  1933. /*
  1934. * Keep an encrypted copy in case the token retransmit timer expires
  1935. */
  1936. memcpy (orf_token_retransmit, iov_encrypted.iov_base, iov_encrypted.iov_len);
  1937. orf_token_retransmit_size = iov_encrypted.iov_len;
  1938. /*
  1939. * Send the message
  1940. */
  1941. msg_orf_token.msg_name = (caddr_t)&memb_next;
  1942. msg_orf_token.msg_namelen = sizeof (struct sockaddr_in);
  1943. msg_orf_token.msg_iov = &iov_encrypted;
  1944. msg_orf_token.msg_iovlen = 1;
  1945. msg_orf_token.msg_control = 0;
  1946. msg_orf_token.msg_controllen = 0;
  1947. msg_orf_token.msg_flags = 0;
  1948. // THIS IS FOR TESTING ERRORS IN THE EVS STATE
  1949. //if ((memb_state == MEMB_STATE_EVS) && ((random () % 3) == 0)) {
  1950. //gmi_log_printf (gmi_log_level_debug, "CAUSING TOKEN LOSS AT EVS STATE\n");
  1951. // return (1);
  1952. //}
  1953. res = sendmsg (gmi_sockets[0].token, &msg_orf_token, MSG_NOSIGNAL);
  1954. assert (res != -1);
  1955. /*
  1956. * res not used here errors are handled by algorithm
  1957. */
  1958. // TODO do we need a test here of some sort
  1959. gmi_last_seqid = orf_token->header.seqid;
  1960. stats_sent += res;
  1961. return (res);
  1962. }
  1963. int orf_token_send_initial (void)
  1964. {
  1965. struct orf_token orf_token;
  1966. int res;
  1967. unsigned char bitmap[MAX_MEMBERS / 8];
  1968. orf_token.header.seqid = 0;
  1969. orf_token.header.type = MESSAGE_TYPE_ORF_TOKEN;
  1970. orf_token.token_seqid = 0;
  1971. orf_token.group_arut = gmi_highest_seq;
  1972. orf_token.addr_arut.s_addr = gmi_bound_to.sin_addr.s_addr;
  1973. orf_token.bitmap_bytes = MAX_MEMBERS / 8;
  1974. orf_token.fcc = 0;
  1975. memset (bitmap, 0, sizeof (bitmap));
  1976. orf_token.rtr_list_entries = 0;
  1977. res = orf_token_send (&orf_token, 0, bitmap, 1);
  1978. return (res);
  1979. }
  1980. /*
  1981. * Membership Management
  1982. */
  1983. static int memb_join_send (void)
  1984. {
  1985. struct msghdr msghdr_join;
  1986. struct iovec iovec_join;
  1987. int res;
  1988. memb_join.header.seqid = 0;
  1989. memb_join.header.type = MESSAGE_TYPE_MEMB_JOIN;
  1990. /*
  1991. * copy current gather list to representatives list
  1992. */
  1993. if ((memb_gather_set_entries == memb_join.active_rep_list_entries) &&
  1994. (memcmp (memb_join.active_rep_list, memb_gather_set,
  1995. sizeof (struct in_addr) * memb_gather_set_entries) == 0) &&
  1996. (memb_failed_list_entries == memb_join.failed_rep_list_entries) &&
  1997. (memcmp (memb_join.failed_rep_list, memb_failed_list,
  1998. sizeof (struct in_addr) * memb_failed_list_entries) == 0)) {
  1999. return (0);
  2000. }
  2001. /*
  2002. * Copy active reps
  2003. */
  2004. memcpy (memb_join.active_rep_list, memb_gather_set,
  2005. sizeof (struct in_addr) * memb_gather_set_entries);
  2006. memb_join.active_rep_list_entries = memb_gather_set_entries;
  2007. /*
  2008. * Copy failed reps
  2009. */
  2010. memcpy (memb_join.failed_rep_list, memb_failed_list,
  2011. sizeof (struct in_addr) * memb_failed_list_entries);
  2012. memb_join.failed_rep_list_entries = memb_failed_list_entries;
  2013. iovec_join.iov_base = (char *)&memb_join;
  2014. iovec_join.iov_len = sizeof (struct memb_join);
  2015. encrypt_and_sign (&iovec_join, 1);
  2016. msghdr_join.msg_name = (caddr_t)&sockaddr_in_mcast;
  2017. msghdr_join.msg_namelen = sizeof (struct sockaddr_in);
  2018. msghdr_join.msg_iov = &iov_encrypted;
  2019. msghdr_join.msg_iovlen = 1;
  2020. msghdr_join.msg_control = 0;
  2021. msghdr_join.msg_controllen = 0;
  2022. msghdr_join.msg_flags = 0;
  2023. res = sendmsg (gmi_sockets[0].mcast, &msghdr_join, MSG_NOSIGNAL | MSG_DONTWAIT);
  2024. return (res);
  2025. }
  2026. static int memb_state_commit_enter (void);
  2027. /*
  2028. * Update gather_set[0].join_reps with list of failed members
  2029. */
  2030. void memb_gather_set_update_failed (struct in_addr *list, int list_entries)
  2031. {
  2032. int i;
  2033. int j;
  2034. /*
  2035. * Remove failed members from gather set
  2036. */
  2037. for (i = 0; i < list_entries; i++) {
  2038. for (j = 0; j < memb_gather_set_entries; j++) {
  2039. if (list[i].s_addr == memb_gather_set[j].s_addr) {
  2040. memb_gather_set_entries -= 1;
  2041. memcpy (&memb_gather_set[j],
  2042. &memb_gather_set[j + 1],
  2043. memb_gather_set_entries * sizeof (struct in_addr));
  2044. break; /* for j = 0 */
  2045. }
  2046. }
  2047. }
  2048. }
  2049. static void memb_timer_function_state_commit_timeout (void *data)
  2050. {
  2051. int i;
  2052. int j;
  2053. int k;
  2054. int found;
  2055. int add_to_failed = 1;
  2056. struct sockaddr_in left_list[MAX_MEMBERS];
  2057. int left_list_entries = 0;
  2058. memb_failed_list_entries = 0;
  2059. /*
  2060. * No entries responded in commit timeout period
  2061. */
  2062. if (memb_commit_set_entries == 0) {
  2063. /*
  2064. * memb_list_entries only set to 0 when token times out, in which case
  2065. * send a configuration change because no messages can be recovered in EVS
  2066. */
  2067. if (memb_list_entries == 1) {
  2068. gmi_log_printf (gmi_log_level_notice, "I am the only member.\n");
  2069. /*
  2070. * Disallow all but RECOVERY priority messages
  2071. */
  2072. recovery_plug_set ();
  2073. if (gmi_confchg_fn) {
  2074. /*
  2075. * Determine nodes that left the configuration
  2076. */
  2077. for (i = 0; i < memb_list_entries_confchg; i++) {
  2078. if (memb_local_sockaddr_in.sin_addr.s_addr != memb_list[i].sin_addr.s_addr) {
  2079. left_list[left_list_entries].sin_addr.s_addr = memb_list[i].sin_addr.s_addr;
  2080. left_list[left_list_entries].sin_family = AF_INET;
  2081. left_list[left_list_entries].sin_port = sockaddr_in_mcast.sin_port;
  2082. left_list_entries += 1;
  2083. }
  2084. }
  2085. gmi_confchg_fn (GMI_CONFIGURATION_TRANSITIONAL,
  2086. &memb_local_sockaddr_in, 1,
  2087. left_list, left_list_entries,
  2088. 0, 0);
  2089. gmi_confchg_fn (GMI_CONFIGURATION_REGULAR,
  2090. &memb_local_sockaddr_in, 1,
  2091. 0, 0,
  2092. 0, 0);
  2093. memb_list_entries_confchg = 1;
  2094. memb_list[0].sin_addr.s_addr = memb_local_sockaddr_in.sin_addr.s_addr;
  2095. }
  2096. queues_queue_frag_memb_new ();
  2097. poll_timer_delete (*gmi_poll_handle, timer_single_member);
  2098. timer_single_member = 0;
  2099. poll_timer_add (*gmi_poll_handle, 0, 0,
  2100. timer_function_single_member, &timer_single_member);
  2101. } else {
  2102. gmi_log_printf (gmi_log_level_notice, "No members sent join, keeping old ring and transitioning to operational.\n");
  2103. }
  2104. memb_state = MEMB_STATE_OPERATIONAL;
  2105. return;
  2106. }
  2107. /*
  2108. * Find all failed members
  2109. */
  2110. for (i = 0; i < memb_gather_set_entries; i++) {
  2111. add_to_failed = 1;
  2112. for (j = 0; j < memb_commit_set_entries; j++) {
  2113. /*
  2114. * If gather entry not in commit rep list, add to failed
  2115. */
  2116. if (memb_gather_set[i].s_addr == memb_commit_set[j].rep.sin_addr.s_addr) {
  2117. add_to_failed = 0;
  2118. break; /* for found = 0 */
  2119. }
  2120. }
  2121. /*
  2122. * If gather entry not in commit set, add to failed set
  2123. */
  2124. for (found = 0, j = 0; j < memb_commit_set_entries; j++) {
  2125. for (k = 0; k < memb_commit_set[j].join_rep_list_entries; k++) {
  2126. if (memb_gather_set[i].s_addr == memb_commit_set[j].join_rep_list[k].s_addr) {
  2127. found = 1;
  2128. break;
  2129. }
  2130. }
  2131. if (found == 0) {
  2132. add_to_failed = 1;
  2133. break;
  2134. }
  2135. }
  2136. /*
  2137. * If local address, item found
  2138. */
  2139. if (memb_gather_set[i].s_addr == memb_local_sockaddr_in.sin_addr.s_addr) {
  2140. add_to_failed = 0;
  2141. }
  2142. if (add_to_failed == 1) {
  2143. memb_failed_list[memb_failed_list_entries++].s_addr =
  2144. memb_gather_set[i].s_addr;
  2145. }
  2146. }
  2147. memb_gather_set_update_failed (memb_failed_list, memb_failed_list_entries);
  2148. memb_state_commit_enter ();
  2149. }
  2150. static int memb_state_commit_enter (void)
  2151. {
  2152. int res;
  2153. memb_state = MEMB_STATE_COMMIT;
  2154. memb_commit_set_entries = 0;
  2155. res = memb_join_send();
  2156. poll_timer_delete (*gmi_poll_handle, timer_memb_state_gather_timeout);
  2157. timer_memb_state_gather_timeout = 0;
  2158. poll_timer_add (*gmi_poll_handle, TIMEOUT_STATE_COMMIT, 0,
  2159. memb_timer_function_state_commit_timeout, &timer_memb_state_commit_timeout);
  2160. return (res);
  2161. }
  2162. static void memb_timer_function_state_gather (void *data)
  2163. {
  2164. int i;
  2165. /*
  2166. * GATHER period expired, sort gather sets and send JOIN
  2167. */
  2168. memb_state_commit_enter ();
  2169. gmi_log_printf (gmi_log_level_debug, "GATHER timeout:\n");
  2170. for (i = 0; i < memb_gather_set_entries; i++) {
  2171. gmi_log_printf (gmi_log_level_debug, "host %d attempted to join %s\n", i, inet_ntoa (memb_gather_set[i]));
  2172. }
  2173. }
  2174. static void memb_print_commit_set (void)
  2175. {
  2176. int i, j;
  2177. gmi_log_printf (gmi_log_level_debug, "Gather list\n");
  2178. for (i = 0; i < memb_gather_set_entries; i++) {
  2179. gmi_log_printf (gmi_log_level_debug, "\tmember %d %s\n", i, inet_ntoa (memb_gather_set[i]));
  2180. }
  2181. for (i = 0; i < memb_commit_set_entries; i++) {
  2182. gmi_log_printf (gmi_log_level_debug, "Join from rep %d %s\n", i, inet_ntoa (memb_commit_set[i].rep.sin_addr));
  2183. for (j = 0; j < memb_commit_set[i].join_rep_list_entries; j++) {
  2184. gmi_log_printf (gmi_log_level_debug, "\tmember %d %s\n", j, inet_ntoa (memb_commit_set[i].join_rep_list[j]));
  2185. }
  2186. }
  2187. }
  2188. /*
  2189. * Determine if the commit phase has reached consensus
  2190. */
  2191. static int memb_state_consensus_commit (void)
  2192. {
  2193. int found;
  2194. int res;
  2195. int i, j;
  2196. /*
  2197. * Determine consensus
  2198. */
  2199. /*
  2200. * If all commit sets don't match gather set, no consensus
  2201. */
  2202. for (i = 0; i < memb_commit_set_entries; i++) {
  2203. /*
  2204. * If not same number of entries, no consensus
  2205. */
  2206. res = memb_gather_set_entries - memb_commit_set[i].join_rep_list_entries;
  2207. if (res != 0) {
  2208. return (0); /* no consensus */
  2209. }
  2210. /*
  2211. * If entries dont match, no consensus
  2212. */
  2213. res = memcmp (memb_gather_set, memb_commit_set[i].join_rep_list,
  2214. memb_gather_set_entries * sizeof (struct in_addr));
  2215. if (res != 0) {
  2216. return (0); /* no consensus */
  2217. }
  2218. }
  2219. /*
  2220. * If all reps from gather set represented in commit set, consensus
  2221. */
  2222. for (i = 0; i < memb_gather_set_entries; i++) {
  2223. found = 0;
  2224. for (j = 0; j < memb_commit_set_entries; j++) {
  2225. if (memb_gather_set[i].s_addr == memb_local_sockaddr_in.sin_addr.s_addr) {
  2226. found = 1;
  2227. break;
  2228. }
  2229. if (memb_gather_set[i].s_addr == memb_commit_set[j].rep.sin_addr.s_addr) {
  2230. found = 1;
  2231. break;
  2232. }
  2233. }
  2234. if (found == 0) {
  2235. return (0); /* no consensus, rep not found from gather set */
  2236. }
  2237. }
  2238. return (1); /* got consensus! */
  2239. }
  2240. /*
  2241. * Union commit_set_entry into gather set
  2242. */
  2243. static void memb_state_commit_union (int commit_set_entry)
  2244. {
  2245. int found;
  2246. int i, j;
  2247. for (i = 0; i < memb_commit_set[commit_set_entry].join_rep_list_entries; i++) {
  2248. for (found = 0, j = 0; j < memb_gather_set_entries; j++) {
  2249. if (memb_commit_set[commit_set_entry].join_rep_list[i].s_addr ==
  2250. memb_gather_set[j].s_addr) {
  2251. found = 1;
  2252. break;
  2253. }
  2254. }
  2255. if (found == 0) {
  2256. memb_gather_set[memb_gather_set_entries++].s_addr =
  2257. memb_commit_set[commit_set_entry].join_rep_list[i].s_addr;
  2258. /*
  2259. * Sort gather set
  2260. */
  2261. qsort (memb_gather_set, memb_gather_set_entries,
  2262. sizeof (struct in_addr), in_addr_compare);
  2263. }
  2264. }
  2265. }
  2266. static void memb_conf_id_build (
  2267. struct memb_conf_id *memb_conf_id,
  2268. struct in_addr memb_local_rep)
  2269. {
  2270. gettimeofday (&memb_conf_id->tv, NULL);
  2271. memb_conf_id->rep.s_addr = memb_local_rep.s_addr;
  2272. }
  2273. static void memb_form_token_update_highest_seq (
  2274. struct memb_form_token *form_token)
  2275. {
  2276. struct conf_desc *conf_desc;
  2277. int entry;
  2278. int found = 0;
  2279. for (entry = 0; entry < form_token->conf_desc_list_entries; entry++) {
  2280. if (memcmp (&form_token->conf_desc_list[entry].conf_id,
  2281. &memb_form_token_conf_id, sizeof (struct memb_conf_id)) == 0) {
  2282. found = 1;
  2283. break;
  2284. }
  2285. }
  2286. conf_desc = &form_token->conf_desc_list[entry];
  2287. if (found && gmi_highest_seq < conf_desc->highest_seq) {
  2288. gmi_highest_seq = conf_desc->highest_seq;
  2289. }
  2290. }
  2291. static void memb_form_token_conf_desc_build (
  2292. struct memb_form_token *form_token)
  2293. {
  2294. struct conf_desc *conf_desc;
  2295. int found = 0;
  2296. int entry = 0;
  2297. /*
  2298. * Determine if local configuration id is already present in form token
  2299. */
  2300. for (entry = 0; entry < form_token->conf_desc_list_entries; entry++) {
  2301. if (memcmp (&form_token->conf_desc_list[entry].conf_id,
  2302. &memb_form_token_conf_id, sizeof (struct memb_conf_id)) == 0) {
  2303. found = 1;
  2304. break;
  2305. }
  2306. }
  2307. conf_desc = &form_token->conf_desc_list[entry];
  2308. if (found == 0) {
  2309. /*
  2310. * Item not present, add item
  2311. */
  2312. conf_desc->highest_seq = gmi_highest_seq;
  2313. conf_desc->arut = gmi_arut;
  2314. // TODO holes not currently implemented conf_desc->hole_list_entries = 0;
  2315. memcpy (&conf_desc->conf_id,
  2316. &memb_form_token_conf_id, sizeof (struct memb_conf_id));
  2317. form_token->conf_desc_list_entries += 1;
  2318. } else {
  2319. /*
  2320. * Item already present, update arut, highest seq
  2321. */
  2322. if (conf_desc->arut > gmi_arut) {
  2323. conf_desc->arut = gmi_arut;
  2324. }
  2325. if (gmi_highest_seq > conf_desc->highest_seq) {
  2326. conf_desc->highest_seq = gmi_highest_seq;
  2327. }
  2328. }
  2329. #ifdef COMPILE_OUT
  2330. /*
  2331. * Build conf_desc->hole_list
  2332. */
  2333. printf ("conf desc build %d %d\n", gmi_arut, gmi_highest_seq);
  2334. conf_desc->hole_list_entries = 0;
  2335. for (i = gmi_arut; i < gmi_highest_seq; i++) {
  2336. assert (conf_desc->hole_list_entries < HOLE_LIST_MAX);
  2337. res = sq_item_get (&queue_rtr_items, i, (void **)&gmi_rtr_item_p);
  2338. if (res == 0) {
  2339. /*
  2340. * If item present, delete from hole list if it exists
  2341. */
  2342. for (j = 0; j < conf_desc->hole_list_entries; j++) {
  2343. if (conf_desc->hole_list[j] == i) {
  2344. memmove (&conf_desc->hole_list[j], &conf_desc->hole_list[j + 1],
  2345. sizeof (int) * (conf_desc->hole_list_entries - j - 1));
  2346. conf_desc->hole_list_entries -= 1;
  2347. printf ("reducing setting desc entries to %d\n", conf_desc->hole_list_entries);
  2348. break; /* from for (j = ... ) */
  2349. }
  2350. }
  2351. } else {
  2352. /*
  2353. * If item not present, add to hole list
  2354. */
  2355. conf_desc->hole_list[conf_desc->hole_list_entries] = i;
  2356. conf_desc->hole_list_entries += 1;
  2357. printf ("increasing setting desc entries to %d %d\n", conf_desc->hole_list_entries, i);
  2358. }
  2359. }
  2360. printf ("Conf desc build done\n");
  2361. #endif
  2362. }
  2363. static int memb_form_token_send (
  2364. struct memb_form_token *form_token)
  2365. {
  2366. struct msghdr msg_form_token;
  2367. struct iovec iovec_form_token;
  2368. int res;
  2369. /*
  2370. * Build message for sendmsg
  2371. */
  2372. iovec_form_token.iov_base = (char *)form_token;
  2373. iovec_form_token.iov_len = sizeof (struct memb_form_token);
  2374. encrypt_and_sign (&iovec_form_token, 1);
  2375. msg_form_token.msg_name = (caddr_t)&memb_next;
  2376. msg_form_token.msg_namelen = sizeof (struct sockaddr_in);
  2377. msg_form_token.msg_iov = &iov_encrypted;
  2378. msg_form_token.msg_iovlen = 1;
  2379. msg_form_token.msg_control = 0;
  2380. msg_form_token.msg_controllen = 0;
  2381. msg_form_token.msg_flags = 0;
  2382. res = sendmsg (gmi_sockets[0].token, &msg_form_token, MSG_NOSIGNAL | MSG_DONTWAIT);
  2383. /*
  2384. * res not used here, because orf token errors are handled by algorithm
  2385. */
  2386. stats_sent += res;
  2387. poll_timer_delete (*gmi_poll_handle, timer_orf_token_timeout);
  2388. timer_orf_token_timeout = 0;
  2389. /*
  2390. * Delete retransmit timer since a new
  2391. * membership is in progress
  2392. */
  2393. poll_timer_delete (*gmi_poll_handle, timer_orf_token_retransmit_timeout);
  2394. timer_orf_token_retransmit_timeout = 0;
  2395. poll_timer_delete (*gmi_poll_handle, timer_form_token_timeout);
  2396. poll_timer_add (*gmi_poll_handle, TIMEOUT_TOKEN, 0,
  2397. timer_function_form_token_timeout, &timer_form_token_timeout);
  2398. return (res);
  2399. }
  2400. int memb_form_token_send_initial (void)
  2401. {
  2402. struct memb_form_token form_token;
  2403. int res;
  2404. int i;
  2405. memset (&form_token, 0x00, sizeof (struct memb_form_token));
  2406. memb_state = MEMB_STATE_FORM;
  2407. /*
  2408. * Build form token
  2409. */
  2410. form_token.header.type = MESSAGE_TYPE_MEMB_FORM_TOKEN;
  2411. memcpy (form_token.rep_list,
  2412. memb_gather_set,
  2413. memb_gather_set_entries * sizeof (struct in_addr));
  2414. form_token.rep_list_entries = memb_gather_set_entries;
  2415. /*
  2416. * Add local member to entry
  2417. */
  2418. form_token.member_list[0].s_addr =
  2419. memb_local_sockaddr_in.sin_addr.s_addr;
  2420. form_token.member_list_entries = 1;
  2421. memb_conf_id_build (&form_token.conf_id, memb_local_sockaddr_in.sin_addr);
  2422. form_token.conf_desc_list_entries = 0;
  2423. memb_form_token_conf_desc_build (&form_token);
  2424. /*
  2425. * Send FORM to next member, or if no members in this configuration
  2426. * to next representative
  2427. */
  2428. if (memb_list_entries <= 1) {
  2429. memb_next.sin_addr.s_addr = memb_gather_set[1].s_addr;
  2430. } else {
  2431. for (i = 0; i < memb_list_entries; i++) {
  2432. if (memb_list[i].sin_addr.s_addr == memb_local_sockaddr_in.sin_addr.s_addr) {
  2433. memb_next.sin_addr.s_addr =
  2434. memb_list[i + 1].sin_addr.s_addr;
  2435. break;
  2436. }
  2437. }
  2438. }
  2439. // TODO assertion here about the 1 value
  2440. memb_next.sin_family = AF_INET;
  2441. memb_next.sin_port = sockaddr_in_mcast.sin_port;
  2442. res = memb_form_token_send (&form_token);
  2443. return (res);
  2444. }
  2445. void print_stats (void)
  2446. {
  2447. struct timeval tv_end;
  2448. gettimeofday (&tv_end, NULL);
  2449. gmi_log_printf (gmi_log_level_notice, "Bytes recv %d\n", stats_recv);
  2450. gmi_log_printf (gmi_log_level_notice, "Bytes sent %d\n", stats_sent);
  2451. gmi_log_printf (gmi_log_level_notice, "Messages delivered %d\n", stats_delv);
  2452. gmi_log_printf (gmi_log_level_notice, "Re-Mcasts %d\n", stats_remcasts);
  2453. gmi_log_printf (gmi_log_level_notice, "Tokens process %d\n", stats_orf_token);
  2454. }
  2455. int last_lowered = 1;
  2456. static void calculate_group_arut (struct orf_token *orf_token)
  2457. {
  2458. //printf ("group arut %d local arut %d gmi_gmi_highest seq %d\n", orf_token->group_arut, gmi_arut, gmi_highest_seq);
  2459. //printf ("last %d group arut %d last arut %d arut %d\n", last_lowered, orf_token->group_arut, last_group_arut, gmi_arut);
  2460. /*
  2461. * increase the group arut if we got back the same group
  2462. * because everyone has these messages
  2463. */
  2464. messages_free (orf_token->group_arut);
  2465. if (orf_token->addr_arut.s_addr == gmi_bound_to.sin_addr.s_addr) {
  2466. orf_token->group_arut = gmi_arut;
  2467. }
  2468. if (gmi_arut < orf_token->group_arut) {
  2469. orf_token->group_arut = gmi_arut;
  2470. orf_token->addr_arut.s_addr = gmi_bound_to.sin_addr.s_addr;
  2471. }
  2472. last_group_arut = orf_token->group_arut;
  2473. }
  2474. int gmi_token_callback_create (void **handle_out, int (*callback_fn) (void *), void *data)
  2475. {
  2476. struct token_callback_instance *handle;
  2477. handle = (struct token_callback_instance *)malloc (sizeof (struct token_callback_instance));
  2478. if (handle == 0) {
  2479. return (-1);
  2480. }
  2481. *handle_out = (void *)handle;
  2482. list_init (&handle->list);
  2483. handle->callback_fn = callback_fn;
  2484. handle->data = data;
  2485. list_add (&handle->list, &token_callback_listhead);
  2486. return (0);
  2487. }
  2488. void gmi_token_callback_destroy (void *handle)
  2489. {
  2490. struct token_callback_instance *token_callback_instance = (struct token_callback_instance *)handle;
  2491. list_del (&token_callback_instance->list);
  2492. free (token_callback_instance);
  2493. }
  2494. void token_callbacks_execute (void)
  2495. {
  2496. struct list_head *list;
  2497. struct list_head *list_next;
  2498. struct token_callback_instance *token_callback_instance;
  2499. int res;
  2500. for (list = token_callback_listhead.next; list != &token_callback_listhead;
  2501. list = list_next) {
  2502. token_callback_instance = list_entry (list, struct token_callback_instance, list);
  2503. list_next = list->next;
  2504. list_del (list);
  2505. res = token_callback_instance->callback_fn (token_callback_instance->data);
  2506. /*
  2507. * This callback failed to execute, try it again on the next token
  2508. */
  2509. if (res == -1) {
  2510. list_add (list, &token_callback_listhead);
  2511. break;
  2512. }
  2513. free (token_callback_instance);
  2514. }
  2515. }
  2516. /*
  2517. * Message Handlers
  2518. */
  2519. /*
  2520. * message handler called when TOKEN message type received
  2521. */
  2522. static int message_handler_orf_token (
  2523. struct sockaddr_in *system_from,
  2524. struct iovec *iovec,
  2525. int iov_len,
  2526. int bytes_received)
  2527. {
  2528. struct orf_token *orf_token = (struct orf_token *)orf_token_retransmit;
  2529. int transmits_allowed;
  2530. int starting_group_arut;
  2531. int prio = UINT_MAX;
  2532. struct pollfd ufd;
  2533. int nfds;
  2534. struct rtr_item rtr_list[RETRANSMIT_ENTRIES_MAX];
  2535. struct orf_token *orf_token_ref = (struct orf_token *)iovec->iov_base;
  2536. unsigned char plug_bitmap[MAX_MEMBERS / 8];
  2537. #ifdef RANDOMDROP
  2538. if (random () % 100 < 20) {
  2539. return (0);
  2540. }
  2541. #endif
  2542. assert (bytes_received >= sizeof (struct orf_token));
  2543. assert (bytes_received == sizeof (struct orf_token) +
  2544. (sizeof (struct rtr_item) * orf_token_ref->rtr_list_entries) +
  2545. (sizeof (unsigned char) * orf_token_ref->bitmap_bytes));
  2546. memcpy (orf_token, iovec->iov_base,
  2547. sizeof (struct orf_token) +
  2548. (sizeof (struct rtr_item) * orf_token_ref->rtr_list_entries) +
  2549. (sizeof (unsigned char) * orf_token_ref->bitmap_bytes));
  2550. /*
  2551. * flush multicast messages
  2552. */
  2553. do {
  2554. ufd.fd = gmi_sockets[0].mcast;
  2555. ufd.events = POLLIN;
  2556. nfds = poll (&ufd, 1, 0);
  2557. if (nfds == 1 && ufd.revents & POLLIN) {
  2558. gmi_iov_recv.iov_len = PACKET_SIZE_MAX;
  2559. recv_handler (0, gmi_sockets[0].mcast, ufd.revents, 0,
  2560. &prio);
  2561. }
  2562. } while (nfds == 1);
  2563. #ifdef TESTTOKENRETRANSMIT
  2564. if ((random() % 500) == 0) {
  2565. printf ("randomly dropping token to test token retransmit.\n");
  2566. return (0);
  2567. }
  2568. #endif
  2569. /*
  2570. * Already received this token, but it was retransmitted
  2571. * to this processor because the retransmit timer on a previous
  2572. * processor timed out, so ignore the token
  2573. */
  2574. if (orf_token->token_seqid > 0 && gmi_token_seqid >= orf_token->token_seqid) {
  2575. printf ("already received token %d %d\n", orf_token->token_seqid, gmi_token_seqid);
  2576. //exit(1);
  2577. return (0);
  2578. }
  2579. gmi_token_seqid = orf_token->token_seqid;
  2580. poll_timer_delete (*gmi_poll_handle, timer_orf_token_retransmit_timeout);
  2581. timer_orf_token_retransmit_timeout = 0;
  2582. #ifdef PRINT_STATS
  2583. if (orf_token->header.seqid > 10000) {
  2584. print_stats ();
  2585. }
  2586. #endif
  2587. if (memb_state == MEMB_STATE_FORM) {
  2588. gmi_log_printf (gmi_log_level_notice, "swallowing ORF token %d.\n", stats_orf_token);
  2589. poll_timer_delete (*gmi_poll_handle, timer_orf_token_timeout);
  2590. timer_orf_token_timeout = 0;
  2591. /*
  2592. * Delete retransmit timer since a new
  2593. * membership is in progress
  2594. */
  2595. poll_timer_delete (*gmi_poll_handle, timer_orf_token_retransmit_timeout);
  2596. timer_orf_token_retransmit_timeout = 0;
  2597. return (0);
  2598. }
  2599. /*
  2600. * Determine if the processor should be unplugged,
  2601. * and if the entire group has been unplugged
  2602. */
  2603. orf_token_plug_calculate (orf_token, plug_bitmap);
  2604. //printf ("Got orf token from %s\n", inet_ntoa (system_from->sin_addr));
  2605. starting_group_arut = orf_token->group_arut;
  2606. stats_orf_token++;
  2607. transmits_allowed = orf_fcc_allowed (orf_token);
  2608. //printf ("retransmit allowed %d\n", transmits_allowed);
  2609. /*
  2610. * Retransmit failed messages and request retransmissions
  2611. */
  2612. orf_token_rtr (orf_token, rtr_list, &transmits_allowed);
  2613. /*
  2614. * TODO Ok this is ugly and I dont like it.
  2615. *
  2616. * Flow control to limit number of missing multicast messages
  2617. * on lossy switches, this could cause a large window between
  2618. * what is delivered locally and what is delivered remotely.
  2619. * This window could cause the hole list of the form token to
  2620. * be overrun or cause the form token to be large.
  2621. */
  2622. if ((gmi_brake + MISSING_MCAST_WINDOW) < orf_token->header.seqid) {
  2623. transmits_allowed = 0;
  2624. }
  2625. /*
  2626. * Set the group arut and free any messages that can be freed
  2627. */
  2628. if (memb_state != MEMB_STATE_EVS) {
  2629. calculate_group_arut (orf_token);
  2630. }
  2631. /*
  2632. * Multicast queued messages
  2633. */
  2634. orf_token_mcast (orf_token, transmits_allowed, system_from);
  2635. /*
  2636. * Calculate flow control count
  2637. */
  2638. orf_token_fcc (orf_token);
  2639. /*
  2640. * Deliver membership and messages required by EVS
  2641. */
  2642. orf_token_evs (orf_token, starting_group_arut);
  2643. if (memb_state == MEMB_STATE_EVS) {
  2644. calculate_group_arut (orf_token);
  2645. }
  2646. /*
  2647. * Increment the token seqid and store for later retransmit
  2648. */
  2649. orf_token->token_seqid += 1;
  2650. poll_timer_delete (*gmi_poll_handle, timer_orf_token_retransmit_timeout);
  2651. poll_timer_add (*gmi_poll_handle, TIMEOUT_TOKEN_RETRANSMIT, 0,
  2652. timer_function_token_retransmit_timeout,
  2653. &timer_orf_token_retransmit_timeout);
  2654. /*
  2655. * Transmit orf_token to next member
  2656. */
  2657. orf_token_send (orf_token, rtr_list, plug_bitmap, 1);
  2658. token_callbacks_execute ();
  2659. return (0);
  2660. }
  2661. static int memb_state_gather_enter (void) {
  2662. struct msghdr msghdr_attempt_join;
  2663. struct iovec iovec_attempt_join;
  2664. struct memb_attempt_join memb_attempt_join;
  2665. int res = 0;
  2666. gmi_log_printf (gmi_log_level_notice, "entering GATHER state.\n");
  2667. memb_state = MEMB_STATE_GATHER;
  2668. /*
  2669. * Join message starts with no entries
  2670. */
  2671. memb_join.active_rep_list_entries = 0;
  2672. memb_join.failed_rep_list_entries = 0;
  2673. /*
  2674. * Copy local host info
  2675. */
  2676. memb_gather_set[0].s_addr = memb_local_sockaddr_in.sin_addr.s_addr;
  2677. memb_gather_set_entries = 1;
  2678. /*
  2679. * If this node is the representative, send attempt join
  2680. */
  2681. if (memb_local_sockaddr_in.sin_addr.s_addr == memb_conf_id.rep.s_addr) {
  2682. gmi_log_printf (gmi_log_level_notice, "SENDING attempt join because this node is ring rep.\n");
  2683. memb_attempt_join.header.seqid = 0;
  2684. memb_attempt_join.header.type = MESSAGE_TYPE_MEMB_ATTEMPT_JOIN;
  2685. iovec_attempt_join.iov_base = &memb_attempt_join;
  2686. iovec_attempt_join.iov_len = sizeof (struct memb_attempt_join);
  2687. encrypt_and_sign (&iovec_attempt_join, 1);
  2688. msghdr_attempt_join.msg_name = &sockaddr_in_mcast;
  2689. msghdr_attempt_join.msg_namelen = sizeof (struct sockaddr_in);
  2690. msghdr_attempt_join.msg_iov = &iov_encrypted;
  2691. msghdr_attempt_join.msg_iovlen = 1;
  2692. msghdr_attempt_join.msg_control = 0;
  2693. msghdr_attempt_join.msg_controllen = 0;
  2694. msghdr_attempt_join.msg_flags = 0;
  2695. res = sendmsg (gmi_sockets[0].mcast, &msghdr_attempt_join, MSG_NOSIGNAL | MSG_DONTWAIT);
  2696. /*
  2697. * res not checked here, there is nothing that can be done
  2698. * instead rely on the algorithm to recover from faults
  2699. */
  2700. }
  2701. poll_timer_delete (*gmi_poll_handle, timer_memb_state_gather_timeout);
  2702. poll_timer_add (*gmi_poll_handle, TIMEOUT_STATE_GATHER, 0,
  2703. memb_timer_function_state_gather, &timer_memb_state_gather_timeout);
  2704. return (res);
  2705. }
  2706. struct queue_frag *queue_frag_delivery_find (void)
  2707. {
  2708. struct queue_frag *queue_frag = 0;
  2709. int i;
  2710. #ifdef ABBA
  2711. /*
  2712. * Find first_delivery queue that is not empty
  2713. * this sets the first pend_delv
  2714. */
  2715. for (i = 0; i < memb_list_entries_confchg; i++) {
  2716. if (queues_frag[i].first_delivery &&
  2717. queue_is_empty (&queues_pend_delv[i].queue) == 0) {
  2718. pend_delv = &queues_pend_delv[i];
  2719. // printf ("Selecting first queue %s\n", inet_ntoa (pend_delv->ip));
  2720. break;
  2721. }
  2722. }
  2723. /*
  2724. * Search remaining pend_delv for first deliveries with
  2725. * smaller sequence numbers
  2726. */
  2727. for (++i; i < memb_list_entries_confchg; i++) {
  2728. assert (pend_delv);
  2729. if (queues_frag[i].first_delivery &&
  2730. (queue_is_empty (&queues_frag[i].queue) == 0) &&
  2731. (queues_pend_delv[i].seqid < pend_delv->seqid)) {
  2732. pend_delv = &queues_pend_delv[i];
  2733. // printf ("Selecting first from %d in second phase %s\n", i, inet_ntoa (pend_delv->ip));
  2734. }
  2735. }
  2736. /*
  2737. * Found first_delivery queue that wasn't empty, return it
  2738. */
  2739. if (pend_delv) {
  2740. return (pend_delv);
  2741. }
  2742. #endif
  2743. /*
  2744. * No first delivery queues, repeat same
  2745. * process looking for any queue
  2746. */
  2747. for (i = 0; i < memb_list_entries_confchg; i++) {
  2748. #ifdef DEBUG
  2749. printf ("Queue empty[%d] %d queues seqid %d\n", i,
  2750. queue_is_empty (&queues_frag[i].pend_queue),
  2751. queues_frag[i].seqid);
  2752. #endif
  2753. if (queue_is_empty (&queues_frag[i].pend_queue) == 0 ||
  2754. queue_is_empty (&queues_frag[i].assembly.queue) == 0) {
  2755. queue_frag = &queues_frag[i];
  2756. break;
  2757. }
  2758. }
  2759. /*
  2760. * Find lowest sequence number queue
  2761. */
  2762. for (++i; i < memb_list_entries_confchg; i++) {
  2763. assert (queue_frag);
  2764. #ifdef DEBUG
  2765. printf ("Queue empty[%d] %d queues seqid %d lowest so far %d\n", i,
  2766. queue_is_empty (&queues_frag[i].pend_queue),
  2767. queues_frag[i].seqid, queues_frag->seqid);
  2768. #endif
  2769. if (queue_is_empty (&queues_frag[i].pend_queue) == 0 &&
  2770. (queues_frag[i].seqid < queue_frag->seqid)) {
  2771. queue_frag = &queues_frag[i];
  2772. }
  2773. if (queue_is_empty (&queues_frag[i].assembly.queue) == 0 &&
  2774. (queues_frag[i].assembly.seqid < queue_frag->seqid)) {
  2775. //printf ("assembly seqid is %d\n",
  2776. // queues_frag[i].assembly.seqid);
  2777. queue_frag = &queues_frag[i];
  2778. }
  2779. }
  2780. return (queue_frag);
  2781. }
  2782. /*
  2783. * This delivers all available messages that can be delivered in VS semantics
  2784. * from the fragmentation pend queue to the registered deliver function
  2785. */
  2786. static void app_deliver (void) {
  2787. struct queue_frag *queue_frag;
  2788. struct pend_queue_item *pend_queue_item;
  2789. int i;
  2790. do {
  2791. queue_frag = queue_frag_delivery_find ();
  2792. if (queue_frag == 0) {
  2793. break;
  2794. }
  2795. assert (queue_frag);
  2796. /*
  2797. * There is an assembly taking place that was selected but its not completed
  2798. */
  2799. if (queue_is_empty (&queue_frag->pend_queue) == 1) {
  2800. break;
  2801. }
  2802. //printf ("Delivering from pending queue %s seq id %d\n", inet_ntoa (queue_frag->source_addr), queue_frag->seqid);
  2803. pend_queue_item = queue_item_get (&queue_frag->pend_queue);
  2804. assert (pend_queue_item);
  2805. queue_item_remove (&queue_frag->pend_queue);
  2806. //&mcast->groupname, /* TODO figure out how to pass this from the frag queue */
  2807. gmi_deliver_fn (
  2808. 0,
  2809. queue_frag->source_addr,
  2810. pend_queue_item->iovec,
  2811. pend_queue_item->iov_len);
  2812. /*
  2813. * Reduce ref count on these delivered messages and free them if their
  2814. * reference count is zero
  2815. */
  2816. for (i = 0; i < pend_queue_item->pend_queue_msg_item_count; i++) {
  2817. release_reftwo_char (pend_queue_item->pend_queue_msg_items[i].reftwo,
  2818. pend_queue_item->pend_queue_msg_items[i].iov_base,
  2819. pend_queue_item->pend_queue_msg_items[i].iovec_entries);
  2820. }
  2821. /*
  2822. * Reset lowest seqid for this pending queue from next assembled message
  2823. */
  2824. if (queue_is_empty (&queue_frag->pend_queue) == 0) {
  2825. pend_queue_item = queue_item_get (&queue_frag->pend_queue);
  2826. queue_frag->seqid = pend_queue_item->seqid;
  2827. }
  2828. } while (queue_frag);
  2829. }
  2830. /*
  2831. * This delivers an assembled message into the fragmentation pend queue
  2832. * This must only be called once the full message has been assembled
  2833. */
  2834. static void assembly_deliver (struct queue_frag *queue_frag)
  2835. {
  2836. struct assembly_queue_item *assembly_queue_item;
  2837. struct pend_queue_item pend_queue_item;
  2838. int res = 0;
  2839. struct iovec iovec_delv[QUEUE_PEND_SIZE_MAX * MAXIOVS];
  2840. int iov_len_delv = 0;
  2841. struct mcast *mcast = 0;
  2842. int pend_queue_msg_item_count;
  2843. int i;
  2844. memset (iovec_delv, 0, sizeof (iovec_delv));
  2845. queue_item_iterator_init (&queue_frag->assembly.queue);
  2846. assert (queue_is_empty (&queue_frag->assembly.queue) == 0);
  2847. assembly_queue_item = queue_item_iterator_get (&queue_frag->assembly.queue);
  2848. /*
  2849. * Assemble all of the message iovectors into one iovector for delivery
  2850. */
  2851. pend_queue_msg_item_count = 0;
  2852. do {
  2853. assembly_queue_item = queue_item_iterator_get (&queue_frag->assembly.queue);
  2854. /*
  2855. * Assemble the refcounting structure to free the messages if appropriate
  2856. */
  2857. for (i = 0; i < assembly_queue_item->iov_len; i++) {
  2858. pend_queue_item.pend_queue_msg_items[pend_queue_msg_item_count].iov_base[i] =
  2859. assembly_queue_item->iovec[i].iov_base;
  2860. }
  2861. pend_queue_item.pend_queue_msg_items[pend_queue_msg_item_count].iovec_entries = i;
  2862. pend_queue_item.pend_queue_msg_items[pend_queue_msg_item_count].reftwo = assembly_queue_item->reftwo;
  2863. pend_queue_msg_item_count++;
  2864. assert (pend_queue_msg_item_count < QUEUE_PEND_SIZE_MAX);
  2865. /*
  2866. * Assemble io vector
  2867. */
  2868. if (assembly_queue_item->iov_len != 1 &&
  2869. assembly_queue_item->iovec[0].iov_len == sizeof (struct mcast)) {
  2870. /*
  2871. * Copy iovec from second iovec if this is self-delivered
  2872. */
  2873. memcpy (&iovec_delv[iov_len_delv],
  2874. &assembly_queue_item->iovec[1],
  2875. sizeof (struct iovec) * assembly_queue_item->iov_len - 1);
  2876. iov_len_delv += assembly_queue_item->iov_len - 1;
  2877. } else {
  2878. /*
  2879. * Copy iovec from first iovec if this is an external message
  2880. */
  2881. iovec_delv[iov_len_delv].iov_base =
  2882. assembly_queue_item->iovec[0].iov_base + sizeof (struct mcast);
  2883. iovec_delv[iov_len_delv].iov_len =
  2884. assembly_queue_item->iovec[0].iov_len - sizeof (struct mcast);
  2885. assert (iovec_delv[iov_len_delv].iov_len < MESSAGE_SIZE_MAX);
  2886. iov_len_delv += 1;
  2887. if (assembly_queue_item->iov_len > 1) {
  2888. memcpy (&iovec_delv[iov_len_delv],
  2889. &assembly_queue_item->iovec[1],
  2890. sizeof (struct iovec) * assembly_queue_item->iov_len - 1);
  2891. iov_len_delv += assembly_queue_item->iov_len - 1;
  2892. }
  2893. }
  2894. assert (iov_len_delv < 256);
  2895. assert (iov_len_delv > 0);
  2896. res = queue_item_iterator_next (&queue_frag->assembly.queue);
  2897. } while (res == 0);
  2898. pend_queue_item.pend_queue_msg_item_count = pend_queue_msg_item_count;
  2899. /*
  2900. * assert that this really is the end of the packet
  2901. */
  2902. mcast = assembly_queue_item->iovec[0].iov_base;
  2903. assert (mcast->packet_number == mcast->packet_count);
  2904. memcpy (pend_queue_item.iovec, iovec_delv,
  2905. sizeof (pend_queue_item.iovec));
  2906. pend_queue_item.iov_len = iov_len_delv;
  2907. pend_queue_item.seqid = queue_frag->assembly.seqid;
  2908. /*
  2909. * Add IO vector to pend queue
  2910. */
  2911. //printf ("assembling message for %s\n", inet_ntoa (queue_frag->source_addr));
  2912. queue_item_add (&queue_frag->pend_queue, &pend_queue_item);
  2913. queue_reinit (&queue_frag->assembly.queue);
  2914. app_deliver ();
  2915. }
  2916. struct queue_frag *pend_delv_find (struct in_addr source)
  2917. {
  2918. struct queue_frag *queue_frag = 0;
  2919. int i;
  2920. for (i = 0; i < memb_list_entries_confchg; i++) {
  2921. if (source.s_addr == queues_frag[i].source_addr.s_addr) {
  2922. queue_frag = &queues_frag[i];
  2923. break;
  2924. }
  2925. }
  2926. return (queue_frag);
  2927. }
  2928. static void pending_queues_deliver (void)
  2929. {
  2930. struct gmi_rtr_item *gmi_rtr_item_p;
  2931. int i;
  2932. int res;
  2933. struct mcast *mcast;
  2934. struct assembly_queue_item assembly_queue_item;
  2935. struct queue_frag *queue_frag;
  2936. //printf ("Delivering messages to pending queues\n");
  2937. /*
  2938. * Deliver messages in order from rtr queue to pending delivery queue
  2939. */
  2940. for (i = gmi_arut + 1; i <= gmi_highest_seq; i++) {
  2941. res = sq_item_get (&queue_rtr_items, i, (void **)&gmi_rtr_item_p);
  2942. /*
  2943. * If hole, stop assembly
  2944. */
  2945. if (res != 0) {
  2946. break;
  2947. }
  2948. assert (gmi_rtr_item_p->iovec[0].iov_len < MESSAGE_SIZE_MAX);
  2949. mcast = gmi_rtr_item_p->iovec[0].iov_base;
  2950. if (mcast == (struct mcast *)0xdeadbeef) {
  2951. printf ("seqid %d\n", gmi_rtr_item_p->iovec[0].iov_len);
  2952. }
  2953. assert (mcast != (struct mcast *)0xdeadbeef);
  2954. /*
  2955. * Message found
  2956. */
  2957. gmi_log_printf (gmi_log_level_debug,
  2958. "Delivering MCAST message with seqid %d to pending delivery queue\n",
  2959. mcast->header.seqid);
  2960. gmi_arut = i;
  2961. /*
  2962. * Create pending delivery item
  2963. */
  2964. assembly_queue_item.reftwo = gmi_rtr_item_p->reftwo;
  2965. assembly_queue_item.iov_len = gmi_rtr_item_p->iov_len;
  2966. memcpy (&assembly_queue_item.iovec, gmi_rtr_item_p->iovec,
  2967. sizeof (struct iovec) * gmi_rtr_item_p->iov_len);
  2968. assert (gmi_rtr_item_p->iov_len <= MAXIOVS);
  2969. assert (mcast->source.s_addr != 0);
  2970. queue_frag = pend_delv_find (mcast->source);
  2971. /*
  2972. * Setup sequence id numbers for use in assembly and delivery
  2973. */
  2974. if (mcast->packet_number == 0) {
  2975. queue_frag->assembly.seqid = mcast->header.seqid;
  2976. // printf ("Setting %s assembly seqid to %d\n",
  2977. // inet_ntoa (queue_frag->source_addr), queue_frag->assembly.seqid);
  2978. if (queue_is_empty (&queue_frag->pend_queue) == 1) {
  2979. queue_frag->seqid = mcast->header.seqid;
  2980. }
  2981. }
  2982. /*
  2983. * Add pending delivery item to assembly queue
  2984. */
  2985. queue_item_add (&queue_frag->assembly.queue, &assembly_queue_item);
  2986. /*
  2987. * If message is complete, deliver to user the pending delivery message
  2988. */
  2989. if (mcast->packet_number == mcast->packet_count) {
  2990. assembly_deliver (queue_frag);
  2991. }
  2992. }
  2993. //printf ("Done delivering messages to pending queues\n");
  2994. }
  2995. /*
  2996. * recv message handler called when MCAST message type received
  2997. */
  2998. static int message_handler_mcast (
  2999. struct sockaddr_in *system_from,
  3000. struct iovec *iovec,
  3001. int iov_len,
  3002. int bytes_received)
  3003. {
  3004. struct gmi_rtr_item gmi_rtr_item;
  3005. struct mcast *mcast;
  3006. mcast = iovec[0].iov_base;
  3007. #ifdef RANDOMDROP
  3008. if (random()%100 < 70) {
  3009. return (0);
  3010. }
  3011. #endif
  3012. /*
  3013. * Ignore multicasts for other configurations
  3014. * TODO shouldn't we enter gather here?
  3015. */
  3016. if (memcmp (&mcast->memb_conf_id,
  3017. &memb_form_token_conf_id, sizeof (struct memb_conf_id)) != 0) {
  3018. return (0);
  3019. }
  3020. poll_timer_delete (*gmi_poll_handle, timer_orf_token_retransmit_timeout);
  3021. timer_orf_token_retransmit_timeout = 0;
  3022. /*
  3023. * Add mcast message to rtr queue if not already in rtr queue
  3024. * otherwise free io vectors
  3025. */
  3026. if (bytes_received > 0 && bytes_received < MESSAGE_SIZE_MAX &&
  3027. sq_item_inuse (&queue_rtr_items, mcast->header.seqid) == 0) {
  3028. /*
  3029. * Allocate new multicast memory block
  3030. * TODO we need to free this somewhere
  3031. */
  3032. gmi_rtr_item.iovec[0].iov_base = malloc (bytes_received);
  3033. if (gmi_rtr_item.iovec[0].iov_base == 0) {
  3034. return (-1); /* error here is corrected by the algorithm */
  3035. }
  3036. gmi_rtr_item.reftwo = malloc (sizeof (struct reftwo));
  3037. if (gmi_rtr_item.reftwo == 0) {
  3038. free (gmi_rtr_item.iovec[0].iov_base);
  3039. return (-1);
  3040. }
  3041. gmi_rtr_item.reftwo->refcount = 2;
  3042. memcpy (gmi_rtr_item.iovec[0].iov_base, mcast, bytes_received);
  3043. gmi_rtr_item.iovec[0].iov_len = bytes_received;
  3044. assert (gmi_rtr_item.iovec[0].iov_len > 0);
  3045. assert (gmi_rtr_item.iovec[0].iov_len < MESSAGE_SIZE_MAX);
  3046. gmi_rtr_item.iov_len = 1;
  3047. if (mcast->header.seqid > gmi_highest_seq) {
  3048. gmi_highest_seq = mcast->header.seqid;
  3049. }
  3050. sq_item_add (&queue_rtr_items, &gmi_rtr_item, mcast->header.seqid);
  3051. }
  3052. pending_queues_deliver ();
  3053. return (0);
  3054. }
  3055. static int message_handler_memb_attempt_join (
  3056. struct sockaddr_in *system_from,
  3057. struct iovec *iov,
  3058. int iov_len,
  3059. int bytes_received)
  3060. {
  3061. int found;
  3062. int i;
  3063. gmi_log_printf (gmi_log_level_notice, "Got attempt join from %s\n", inet_ntoa (system_from->sin_addr));
  3064. /*
  3065. * Not representative
  3066. */
  3067. if (memb_conf_id.rep.s_addr != memb_local_sockaddr_in.sin_addr.s_addr) {
  3068. gmi_log_printf (gmi_log_level_notice, "rep is %s, not handling attempt join.\n",
  3069. inet_ntoa (memb_conf_id.rep));
  3070. return (0);
  3071. }
  3072. switch (memb_state) {
  3073. case MEMB_STATE_OPERATIONAL:
  3074. case MEMB_STATE_COMMIT:
  3075. memb_state_gather_enter ();
  3076. /*
  3077. * Do NOT place break here, immediately execute gather attempt join
  3078. */
  3079. case MEMB_STATE_GATHER:
  3080. gmi_log_printf (gmi_log_level_debug, "ATTEMPT JOIN: state gather\n");
  3081. for (found = 0, i = 0; i < memb_gather_set_entries; i++) {
  3082. if (memb_gather_set[i].s_addr == system_from->sin_addr.s_addr) {
  3083. found = 1;
  3084. }
  3085. }
  3086. if (found == 0) {
  3087. memb_gather_set[memb_gather_set_entries++].s_addr = system_from->sin_addr.s_addr;
  3088. /*
  3089. * Sort gather set
  3090. */
  3091. qsort (memb_gather_set, memb_gather_set_entries,
  3092. sizeof (struct in_addr), in_addr_compare);
  3093. }
  3094. break;
  3095. default:
  3096. // TODO what about other states
  3097. gmi_log_printf (gmi_log_level_error, "memb_attempt_join: EVS or FORM state attempt join occured %d\n", memb_state);
  3098. }
  3099. return (0);
  3100. }
  3101. static int message_handler_memb_join (
  3102. struct sockaddr_in *system_from,
  3103. struct iovec *iovec,
  3104. int iov_len,
  3105. int bytes_received)
  3106. {
  3107. struct memb_join *memb_join;
  3108. int commit_entry;
  3109. int found;
  3110. int consensus;
  3111. /*
  3112. * Not representative
  3113. */
  3114. if (memb_conf_id.rep.s_addr != memb_local_sockaddr_in.sin_addr.s_addr) {
  3115. gmi_log_printf (gmi_log_level_debug, "not the rep for this ring, not handling join.\n");
  3116. return (0);
  3117. }
  3118. switch (memb_state) {
  3119. case MEMB_STATE_OPERATIONAL:
  3120. case MEMB_STATE_GATHER:
  3121. memb_state_commit_enter ();
  3122. /*
  3123. * do not place break in this case, immediately enter COMMIT state
  3124. */
  3125. case MEMB_STATE_COMMIT:
  3126. gmi_log_printf (gmi_log_level_debug, "JOIN in commit\n");
  3127. memb_join = (struct memb_join *)iovec[0].iov_base;
  3128. /*
  3129. * Find gather set that matches the system message was from
  3130. */
  3131. for (found = 0, commit_entry = 0; commit_entry < memb_commit_set_entries; commit_entry++) {
  3132. if (system_from->sin_addr.s_addr == memb_commit_set[commit_entry].rep.sin_addr.s_addr) {
  3133. found = 1;
  3134. break;
  3135. }
  3136. }
  3137. /*
  3138. * Add system from to commit sets if not currently in commit set
  3139. */
  3140. if (found == 0) {
  3141. memcpy (&memb_commit_set[commit_entry].rep, system_from, sizeof (struct sockaddr_in));
  3142. memb_commit_set_entries++;
  3143. }
  3144. /*
  3145. * Set gather join data
  3146. */
  3147. memcpy (memb_commit_set[commit_entry].join_rep_list, memb_join->active_rep_list,
  3148. sizeof (struct in_addr) * memb_join->active_rep_list_entries);
  3149. memb_commit_set[commit_entry].join_rep_list_entries = memb_join->active_rep_list_entries;
  3150. /*
  3151. * Union all entries into the gather set (join_rep_list[0])
  3152. */
  3153. memb_state_commit_union (commit_entry);
  3154. /*
  3155. * Send JOIN message, but only if gather set has changed
  3156. */
  3157. memb_join_send ();
  3158. /*
  3159. * If consensus, transition to FORM
  3160. */
  3161. memb_print_commit_set ();
  3162. consensus = memb_state_consensus_commit ();
  3163. if (consensus) {
  3164. gmi_log_printf (gmi_log_level_notice, "CONSENSUS reached!\n");
  3165. if (memb_local_sockaddr_in.sin_addr.s_addr == memb_gather_set[0].s_addr) {
  3166. gmi_log_printf (gmi_log_level_debug, "This node responsible for sending the FORM token.\n");
  3167. poll_timer_delete (*gmi_poll_handle, timer_memb_state_commit_timeout);
  3168. timer_memb_state_commit_timeout = 0;
  3169. memb_form_token_send_initial ();
  3170. }
  3171. }
  3172. break;
  3173. /*
  3174. * All other cases are ignored on JOINs
  3175. */
  3176. case MEMB_STATE_FORM:
  3177. gmi_log_printf (gmi_log_level_warning, "JOIN in form, ignoring since consensus reached in state machine.\n");
  3178. break;
  3179. default:
  3180. // TODO HANDLE THIS CASE
  3181. gmi_log_printf (gmi_log_level_debug, "memb_join: DEFAULT case %d, shouldn't happen!!\n", memb_state);
  3182. break;
  3183. }
  3184. return (0);
  3185. }
  3186. static int message_handler_memb_form_token (
  3187. struct sockaddr_in *system_from,
  3188. struct iovec *iovec,
  3189. int iov_len,
  3190. int bytes_received)
  3191. {
  3192. int i;
  3193. int local = 0;
  3194. int res = 0;
  3195. printf ("Got membership form token\n");
  3196. memcpy (&memb_form_token, iovec->iov_base, sizeof (struct memb_form_token));
  3197. poll_timer_delete (*gmi_poll_handle, timer_form_token_timeout);
  3198. timer_form_token_timeout = 0;
  3199. switch (memb_state) {
  3200. case MEMB_STATE_OPERATIONAL:
  3201. case MEMB_STATE_COMMIT:
  3202. memb_state = MEMB_STATE_FORM;
  3203. poll_timer_delete (*gmi_poll_handle, timer_memb_state_commit_timeout);
  3204. timer_memb_state_commit_timeout = 0;
  3205. /*
  3206. * Add member to entry
  3207. */
  3208. memb_form_token.member_list[memb_form_token.member_list_entries].s_addr =
  3209. memb_local_sockaddr_in.sin_addr.s_addr;
  3210. memb_form_token.member_list_entries++;
  3211. /*
  3212. * Modify the conf_id as necessary
  3213. */
  3214. memb_form_token_conf_desc_build (&memb_form_token);
  3215. /*
  3216. * Stop token timeout timer from firing
  3217. * If we are in FORM state, a previous FORM state member
  3218. * may have captured the ORF token and swallowed it
  3219. */
  3220. poll_timer_delete (*gmi_poll_handle, timer_orf_token_timeout);
  3221. timer_orf_token_timeout = 0;
  3222. /*
  3223. * Delete retransmit timer since a new
  3224. * membership is in progress
  3225. */
  3226. poll_timer_delete (*gmi_poll_handle, timer_orf_token_retransmit_timeout);
  3227. timer_orf_token_retransmit_timeout = 0;
  3228. /*
  3229. * Find next member
  3230. */
  3231. for (i = 0; i < memb_list_entries; i++) {
  3232. if (memb_list[i].sin_addr.s_addr == memb_local_sockaddr_in.sin_addr.s_addr) {
  3233. local = 1;
  3234. break;
  3235. }
  3236. }
  3237. if (memb_list_entries == 0) { /* 0 or 1 members and we are local */
  3238. local = 1;
  3239. }
  3240. if (local && (i + 1 < memb_list_entries)) {
  3241. memb_next.sin_addr.s_addr = memb_list[i + 1].sin_addr.s_addr;
  3242. } else {
  3243. /*
  3244. * Find next representative
  3245. */
  3246. for (i = 0; i < memb_form_token.rep_list_entries; i++) {
  3247. if (memb_conf_id.rep.s_addr ==
  3248. memb_form_token.rep_list[i].s_addr) {
  3249. break;
  3250. }
  3251. }
  3252. memb_next.sin_addr.s_addr =
  3253. memb_form_token.rep_list[(i + 1) % memb_form_token.rep_list_entries].s_addr;
  3254. }
  3255. memb_next.sin_family = AF_INET;
  3256. memb_next.sin_port = sockaddr_in_mcast.sin_port;
  3257. break;
  3258. case MEMB_STATE_FORM:
  3259. gmi_token_seqid = 0;
  3260. memb_state = MEMB_STATE_EVS;
  3261. memb_form_token_update_highest_seq (&memb_form_token);
  3262. /*
  3263. * Reset flow control local variables since we are starting a new token
  3264. */
  3265. fcc_mcast_current = 0;
  3266. fcc_remcast_current = 0;
  3267. fcc_mcast_last = 0;
  3268. fcc_remcast_last = 0;
  3269. /*
  3270. * FORM token has rotated once, now install local variables
  3271. *
  3272. * Set barrier sequence number
  3273. * Set original arut
  3274. */
  3275. gmi_barrier_seq = 0;
  3276. printf ("conf_desc_list %d\n", memb_form_token.conf_desc_list_entries);
  3277. for (i = 0; i < memb_form_token.conf_desc_list_entries; i++) {
  3278. printf ("highest seq %d %d\n", i, memb_form_token.conf_desc_list[i].highest_seq);
  3279. if (gmi_barrier_seq < memb_form_token.conf_desc_list[i].highest_seq) {
  3280. gmi_barrier_seq = memb_form_token.conf_desc_list[i].highest_seq;
  3281. printf ("setting barrier seq to %d\n", gmi_barrier_seq);
  3282. }
  3283. }
  3284. gmi_barrier_seq += 1;
  3285. printf ("setting barrier seq to %d\n", gmi_barrier_seq);
  3286. gmi_original_arut = gmi_arut;
  3287. break;
  3288. case MEMB_STATE_EVS:
  3289. gmi_log_printf (gmi_log_level_debug, "Swallowing FORM token in EVS state.\n");
  3290. printf ("FORM CONF ENTRIES %d\n", memb_form_token.conf_desc_list_entries);
  3291. orf_token_send_initial();
  3292. return (0);
  3293. default:
  3294. // TODO
  3295. gmi_log_printf (gmi_log_level_error, "memb_form_token: default case, shouldn't happen.\n");
  3296. return (0);
  3297. }
  3298. res = memb_form_token_send (&memb_form_token);
  3299. return (res);
  3300. }
  3301. static int recv_handler (poll_handle handle, int fd, int revents, void *data, unsigned int *prio)
  3302. {
  3303. struct msghdr msg_recv;
  3304. struct message_header *message_header;
  3305. struct sockaddr_in system_from;
  3306. int res = 0;
  3307. int bytes_received;
  3308. *prio = UINT_MAX;
  3309. /*
  3310. * Receive datagram
  3311. */
  3312. msg_recv.msg_name = &system_from;
  3313. msg_recv.msg_namelen = sizeof (struct sockaddr_in);
  3314. msg_recv.msg_iov = &gmi_iov_recv;
  3315. msg_recv.msg_iovlen = 1;
  3316. msg_recv.msg_control = 0;
  3317. msg_recv.msg_controllen = 0;
  3318. msg_recv.msg_flags = 0;
  3319. bytes_received = recvmsg (fd, &msg_recv, MSG_NOSIGNAL | MSG_DONTWAIT);
  3320. if (bytes_received == -1) {
  3321. return (0);
  3322. } else {
  3323. stats_recv += bytes_received;
  3324. }
  3325. if (bytes_received < sizeof (struct message_header)) {
  3326. gmi_log_printf (gmi_log_level_security, "Received message is too short... ignoring.\n");
  3327. return (0);
  3328. }
  3329. message_header = (struct message_header *)msg_recv.msg_iov[0].iov_base;
  3330. /*
  3331. * Authenticate and if authenticated, decrypt datagram
  3332. */
  3333. gmi_iov_recv.iov_len = bytes_received;
  3334. res = authenticate_and_decrypt (&gmi_iov_recv);
  3335. if (res == -1) {
  3336. gmi_iov_recv.iov_len = PACKET_SIZE_MAX;
  3337. return 0;
  3338. }
  3339. if (stats_tv_start.tv_usec == 0) {
  3340. gettimeofday (&stats_tv_start, NULL);
  3341. }
  3342. /*
  3343. * Handle incoming message
  3344. */
  3345. message_header = (struct message_header *)msg_recv.msg_iov[0].iov_base;
  3346. gmi_message_handlers.handler_functions[message_header->type] (
  3347. &system_from,
  3348. msg_recv.msg_iov,
  3349. msg_recv.msg_iovlen,
  3350. bytes_received);
  3351. gmi_iov_recv.iov_len = PACKET_SIZE_MAX;
  3352. return (0);
  3353. }