shim_ipc_nsimpl.h 49 KB

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  1. /* -*- mode:c; c-file-style:"k&r"; c-basic-offset: 4; tab-width:4; indent-tabs-mode:nil; mode:auto-fill; fill-column:78; -*- */
  2. /* vim: set ts=4 sw=4 et tw=78 fo=cqt wm=0: */
  3. /* Copyright (C) 2014 Stony Brook University
  4. This file is part of Graphene Library OS.
  5. Graphene Library OS is free software: you can redistribute it and/or
  6. modify it under the terms of the GNU Lesser General Public License
  7. as published by the Free Software Foundation, either version 3 of the
  8. License, or (at your option) any later version.
  9. Graphene Library OS is distributed in the hope that it will be useful,
  10. but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. GNU Lesser General Public License for more details.
  13. You should have received a copy of the GNU Lesser General Public License
  14. along with this program. If not, see <http://www.gnu.org/licenses/>. */
  15. /*
  16. * shim_ipc_nsimpl.h
  17. *
  18. * This file contains a template for generic functions and callbacks to
  19. * implement a namespace.
  20. */
  21. #include <shim_internal.h>
  22. #include <shim_ipc.h>
  23. #include <shim_utils.h>
  24. #include <shim_profile.h>
  25. #include <errno.h>
  26. #warning "be sure before including this file"
  27. #if !defined(NS) || !defined(NS_CAP)
  28. # error "NS or NS_CAP is not defined"
  29. #endif
  30. #define NS_STR XSTRINGIFY(NS)
  31. #define NS_CAP_STR XSTRINGIFY(NS_CAP)
  32. #define RANGE_SIZE CONCAT2(NS_CAP, RANGE_SIZE)
  33. #define BITS (sizeof(unsigned char) * 8)
  34. struct idx_bitmap {
  35. unsigned char map[RANGE_SIZE / BITS];
  36. };
  37. struct subrange {
  38. struct shim_ipc_info * owner;
  39. LEASETYPE lease;
  40. };
  41. struct sub_map {
  42. struct subrange * map[RANGE_SIZE];
  43. };
  44. DEFINE_LIST(range);
  45. struct range {
  46. LIST_TYPE(range) hlist;
  47. LIST_TYPE(range) list;
  48. int offset;
  49. struct shim_ipc_info * owner;
  50. LEASETYPE lease;
  51. struct idx_bitmap * used;
  52. struct sub_map * subranges;
  53. };
  54. struct range_bitmap {
  55. int map_size;
  56. unsigned char map[];
  57. };
  58. static struct range_bitmap * range_map;
  59. static LOCKTYPE range_map_lock;
  60. #define RANGE_HASH_LEN 6
  61. #define RANGE_HASH_NUM (1 << RANGE_HASH_LEN)
  62. #define RANGE_HASH_MASK (RANGE_HASH_NUM - 1)
  63. #define RANGE_HASH(off) (((off - 1) / RANGE_SIZE) & RANGE_HASH_MASK)
  64. /* This hash table organizes range structs by hlist */
  65. DEFINE_LISTP(range);
  66. static LISTP_TYPE(range) range_table [RANGE_HASH_NUM];
  67. /* These lists organizes range structs by list
  68. */
  69. static LISTP_TYPE(range) owned_ranges;
  70. static LISTP_TYPE(range) offered_ranges;
  71. static int nowned = 0;
  72. static int noffered = 0;
  73. static int nsubed = 0;
  74. DEFINE_LIST(ns_query);
  75. struct ns_query {
  76. IDTYPE dest;
  77. unsigned long seq;
  78. struct shim_ipc_port * port;
  79. LIST_TYPE(ns_query) list;
  80. };
  81. DEFINE_LISTP(ns_query);
  82. static LISTP_TYPE(ns_query) ns_queries;
  83. static inline LEASETYPE get_lease (void)
  84. {
  85. return DkSystemTimeQuery() + CONCAT2(NS_CAP, LEASE_TIME);
  86. }
  87. void CONCAT3(debug_print, NS, ranges) (void)
  88. {
  89. lock(range_map_lock);
  90. sys_printf(NS_STR " ranges in process %010u:\n", cur_process.vmid);
  91. if (!range_map) {
  92. unlock(range_map_lock);
  93. return;
  94. }
  95. for (int i = 0 ; i < range_map->map_size ; i++) {
  96. unsigned char map = range_map->map[i];
  97. if (!map)
  98. continue;
  99. for (int j = 0 ; j < BITS ; map >>= 1, j++) {
  100. if (!(map & 1))
  101. continue;
  102. int off = i * BITS + j;
  103. LISTP_TYPE(range) * head = range_table + RANGE_HASH(off);
  104. struct range * tmp, * r = NULL;
  105. listp_for_each_entry(tmp, head, hlist)
  106. if (tmp->offset == off) {
  107. r = tmp;
  108. break;
  109. }
  110. assert(r);
  111. IDTYPE base = RANGE_SIZE * off + 1;
  112. struct shim_ipc_info * p = r->owner;
  113. sys_printf("%04u - %04u: owner %010u, port \"%s\" lease %u\n",
  114. base, base + RANGE_SIZE - 1,
  115. p->vmid, qstrgetstr(&p->uri), r->lease);
  116. if (!r->subranges)
  117. continue;
  118. for (int k = 0 ; k < RANGE_SIZE ; k++) {
  119. struct subrange * s = r->subranges->map[j];
  120. if (!s)
  121. continue;
  122. p = s->owner;
  123. sys_printf(" %04u: owner %010u, port \"%s\" lease %u\n",
  124. base + k, p->vmid,
  125. qstrgetstr(&p->uri), s->lease);
  126. }
  127. }
  128. }
  129. unlock(range_map_lock);
  130. }
  131. #define INIT_RANGE_MAP_SIZE 32
  132. static int __extend_range_bitmap (int expected)
  133. {
  134. int size = INIT_RANGE_MAP_SIZE;
  135. if (range_map)
  136. size = range_map->map_size;
  137. while (size <= expected)
  138. size *= 2;
  139. struct range_bitmap * new_map = malloc(sizeof(struct range_bitmap) +
  140. size / BITS);
  141. if (!new_map)
  142. return -ENOMEM;
  143. if (range_map) {
  144. memcpy(new_map->map, range_map->map, range_map->map_size / BITS);
  145. memset(new_map->map + range_map->map_size / BITS, 0,
  146. (size - range_map->map_size) / BITS);
  147. free(range_map);
  148. } else {
  149. memset(new_map->map, 0, size / BITS);
  150. }
  151. new_map->map_size = size;
  152. range_map = new_map;
  153. return 0;
  154. }
  155. static int __set_range_bitmap (int off, bool unset)
  156. {
  157. int i = off / BITS;
  158. int j = off - i * BITS;
  159. unsigned char * m = range_map->map + i;
  160. unsigned char f = 1U << j;
  161. if (unset) {
  162. if (!((*m) & f))
  163. return -ENOENT;
  164. (*m) &= ~f;
  165. } else {
  166. if ((*m) & f)
  167. return -EEXIST;
  168. (*m) |= f;
  169. }
  170. return 0;
  171. }
  172. static bool __check_range_bitmap (int off)
  173. {
  174. int i = off / BITS;
  175. int j = off - i * BITS;
  176. unsigned char * m = range_map->map + i;
  177. unsigned char f = 1U << j;
  178. return (*m) && ((*m) & f);
  179. }
  180. static struct range * __get_range (int off)
  181. {
  182. LISTP_TYPE(range) * head = range_table + RANGE_HASH(off);
  183. if (!range_map || off >= range_map->map_size)
  184. return NULL;
  185. if (!__check_range_bitmap(off))
  186. return NULL;
  187. struct range * r;
  188. listp_for_each_entry(r, head, hlist)
  189. if (r->offset == off)
  190. return r;
  191. return NULL;
  192. }
  193. static int __add_range (struct range * r, int off, IDTYPE owner,
  194. const char * uri, LEASETYPE lease)
  195. {
  196. LISTP_TYPE(range) * head = range_table + RANGE_HASH(off);
  197. int ret = 0;
  198. if (!range_map || range_map->map_size <= off) {
  199. ret = __extend_range_bitmap(off);
  200. if (ret < 0)
  201. return ret;
  202. }
  203. r->owner = NULL;
  204. r->offset = off;
  205. r->lease = lease;
  206. r->used = NULL;
  207. r->subranges = NULL;
  208. if (owner) {
  209. r->owner = lookup_and_alloc_client(owner, uri);
  210. if (!r->owner)
  211. return -ENOMEM;
  212. }
  213. ret = __set_range_bitmap(off, false);
  214. if (ret == -EEXIST) {
  215. struct range * tmp;
  216. listp_for_each_entry(tmp, head, hlist)
  217. if (tmp->offset == off) {
  218. listp_del(tmp, head, hlist);
  219. /* Chia-Che Tsai 10/17/17: only when tmp->owner is non-NULL,
  220. * and tmp->owner->vmid == cur_process.vmid, tmp is on the
  221. * owned list, otherwise it is an offered. */
  222. if (tmp->owner && tmp->owner->vmid == cur_process.vmid)
  223. listp_del(tmp, &owned_ranges, list);
  224. else
  225. listp_del(tmp, &offered_ranges, list);
  226. if (tmp->owner)
  227. put_client(tmp->owner);
  228. r->used = tmp->used;
  229. r->subranges = tmp->subranges;
  230. free(tmp);
  231. break;
  232. }
  233. }
  234. INIT_LIST_HEAD(r, hlist);
  235. listp_add(r, head, hlist);
  236. INIT_LIST_HEAD(r, list);
  237. LISTP_TYPE(range)* list = (owner == cur_process.vmid) ? &owned_ranges
  238. : &offered_ranges;
  239. struct range * prev = listp_first_entry(list, range, list);
  240. struct range * tmp;
  241. listp_for_each_entry(tmp, list, list) {
  242. if (tmp->offset >= off)
  243. break;
  244. prev = tmp;
  245. }
  246. listp_add_after(r, prev, list, list);
  247. if (owner == cur_process.vmid)
  248. nowned++;
  249. else
  250. noffered++;
  251. return 0;
  252. }
  253. int CONCAT3(add, NS, range) (IDTYPE base, IDTYPE owner,
  254. const char * uri, LEASETYPE lease)
  255. {
  256. int off = (base - 1) / RANGE_SIZE;
  257. int ret;
  258. struct range * r = malloc(sizeof(struct range));
  259. if (!r)
  260. return -ENOMEM;
  261. lock(range_map_lock);
  262. r->owner = NULL;
  263. ret = __add_range(r, off, owner, uri, lease);
  264. if (ret < 0)
  265. free(r);
  266. unlock(range_map_lock);
  267. return ret;
  268. }
  269. static void CONCAT3(__del, NS, subrange) (struct subrange ** ptr)
  270. {
  271. struct subrange * s = *ptr;
  272. *ptr = NULL;
  273. put_ipc_info(s->owner);
  274. free(s);
  275. nsubed--;
  276. }
  277. int CONCAT3(add, NS, subrange) (IDTYPE idx, IDTYPE owner,
  278. const char * uri, LEASETYPE * lease)
  279. {
  280. int off = (idx - 1) / RANGE_SIZE, err = 0;
  281. IDTYPE base = off * RANGE_SIZE + 1;
  282. struct subrange * s = malloc(sizeof(struct subrange));
  283. if (!s)
  284. return -ENOMEM;
  285. assert(owner);
  286. lock(range_map_lock);
  287. s->owner = lookup_and_alloc_client(owner, uri);
  288. if (!s->owner) {
  289. err = -ENOMEM;
  290. goto failed;
  291. }
  292. s->lease = (lease && (*lease)) ? (*lease) : get_lease();
  293. struct range * r = __get_range(off);
  294. if (!r) {
  295. r = malloc(sizeof(struct range));
  296. if (!r) {
  297. err = -ENOMEM;
  298. goto failed;
  299. }
  300. if ((err = __add_range(r, off, 0, NULL, 0)) < 0) {
  301. free(r);
  302. goto failed;
  303. }
  304. }
  305. if (!r->subranges) {
  306. r->subranges = calloc(1, sizeof(struct sub_map));
  307. if (!r->subranges) {
  308. err = -ENOMEM;
  309. goto failed;
  310. }
  311. }
  312. struct subrange ** m = &r->subranges->map[idx - base];
  313. if (*m)
  314. CONCAT3(__del, NS, subrange)(m);
  315. (*m) = s;
  316. nsubed++;
  317. if (lease)
  318. *lease = s->lease;
  319. unlock(range_map_lock);
  320. return 0;
  321. failed:
  322. if (s->owner)
  323. put_ipc_info(s->owner);
  324. unlock(range_map_lock);
  325. free(s);
  326. return err;
  327. }
  328. int CONCAT3(alloc, NS, range) (IDTYPE owner, const char * uri,
  329. IDTYPE * base, LEASETYPE * lease)
  330. {
  331. struct range * r = malloc(sizeof(struct range));
  332. if (!r)
  333. return -ENOMEM;
  334. int ret = 0;
  335. lock(range_map_lock);
  336. r->owner = NULL;
  337. int i = 0, j = 0;
  338. if (range_map)
  339. for (i = 0 ; i < range_map->map_size ; i++) {
  340. unsigned char map = range_map->map[i];
  341. if (map < 255U) {
  342. for (j = 0 ; j < BITS ; map >>= 1, j++)
  343. if (!(map & 1U))
  344. break;
  345. assert(j < BITS);
  346. break;
  347. }
  348. }
  349. LEASETYPE l = get_lease();
  350. ret = __add_range(r, i * BITS + j, owner, uri, l);
  351. if (ret < 0) {
  352. if (r->owner)
  353. put_ipc_info(r->owner);
  354. free(r);
  355. goto out;
  356. }
  357. if (base)
  358. *base = (i * BITS + j) * RANGE_SIZE + 1;
  359. if (lease)
  360. *lease = l;
  361. out:
  362. unlock(range_map_lock);
  363. return ret;
  364. }
  365. int CONCAT3(get, NS, range) (IDTYPE idx,
  366. struct CONCAT2(NS, range) * range,
  367. struct shim_ipc_info ** info)
  368. {
  369. int off = (idx - 1) / RANGE_SIZE;
  370. lock(range_map_lock);
  371. struct range * r = __get_range(off);
  372. if (!r) {
  373. unlock(range_map_lock);
  374. return -ESRCH;
  375. }
  376. IDTYPE base = r->offset * RANGE_SIZE + 1;
  377. IDTYPE sz = RANGE_SIZE;
  378. LEASETYPE l = r->lease;
  379. struct shim_ipc_info * p = r->owner;
  380. if (r->subranges && r->subranges->map[idx - base]) {
  381. struct subrange * s = r->subranges->map[idx - base];
  382. base = idx;
  383. sz = 1;
  384. l = s->lease;
  385. p = s->owner;
  386. }
  387. if (!p) {
  388. unlock(range_map_lock);
  389. return -ESRCH;
  390. }
  391. if (p->port)
  392. get_ipc_port(p->port);
  393. range->base = base;
  394. range->size = sz;
  395. range->lease = l;
  396. range->owner = p->vmid;
  397. qstrcopy(&range->uri, &p->uri);
  398. range->port = p->port;
  399. if (info) {
  400. get_ipc_info(p);
  401. *info = p;
  402. }
  403. unlock(range_map_lock);
  404. return 0;
  405. }
  406. int CONCAT3(del, NS, range) (IDTYPE idx)
  407. {
  408. int off = (idx - 1) / RANGE_SIZE;
  409. int ret = -ESRCH;
  410. lock(range_map_lock);
  411. struct range * r = __get_range(off);
  412. if (!r)
  413. goto failed;
  414. ret = __set_range_bitmap(off, true);
  415. if (ret < 0)
  416. goto failed;
  417. if (r->subranges) {
  418. for (int i = 0 ; i < RANGE_SIZE ; i++)
  419. if (r->subranges->map[i]) {
  420. ret = -EBUSY;
  421. goto failed;
  422. }
  423. free(r->subranges);
  424. }
  425. if (r->owner->vmid == cur_process.vmid)
  426. nowned--;
  427. else
  428. noffered--;
  429. if (r->used)
  430. free(r->used);
  431. // Re-acquire the head; kind of ugly
  432. LISTP_TYPE(range) * head = range_table + RANGE_HASH(off);
  433. listp_del(r, head, hlist);
  434. /* Chia-Che Tsai 10/17/17: only when r->owner is non-NULL,
  435. * and r->owner->vmid == cur_process.vmid, r is on the
  436. * owned list, otherwise it is an offered. */
  437. if (r->owner && r->owner->vmid == cur_process.vmid)
  438. listp_del(r, &owned_ranges, list);
  439. else
  440. listp_del(r, &offered_ranges, list);
  441. put_ipc_info(r->owner);
  442. free(r);
  443. ret = 0;
  444. failed:
  445. unlock(range_map_lock);
  446. return ret;
  447. }
  448. int CONCAT3(del, NS, subrange) (IDTYPE idx)
  449. {
  450. int off = (idx - 1) / RANGE_SIZE;
  451. IDTYPE base = off * RANGE_SIZE + 1;
  452. int ret = -ESRCH;
  453. lock(range_map_lock);
  454. struct range * r = __get_range(off);
  455. if (!r)
  456. goto failed;
  457. if (!r->subranges || !r->subranges->map[idx - base])
  458. goto failed;
  459. CONCAT3(__del, NS, subrange) (&r->subranges->map[idx - base]);
  460. ret = 0;
  461. failed:
  462. unlock(range_map_lock);
  463. return ret;
  464. }
  465. int CONCAT3(renew, NS, range) (IDTYPE idx, LEASETYPE * lease)
  466. {
  467. int off = (idx - 1) / RANGE_SIZE;
  468. lock(range_map_lock);
  469. struct range * r = __get_range(off);
  470. if (!r) {
  471. unlock(range_map_lock);
  472. return -ESRCH;
  473. }
  474. r->lease = get_lease();
  475. if (lease)
  476. *lease = r->lease;
  477. unlock(range_map_lock);
  478. return 0;
  479. }
  480. int CONCAT3(renew, NS, subrange) (IDTYPE idx, LEASETYPE * lease)
  481. {
  482. int off = (idx - 1) / RANGE_SIZE;
  483. IDTYPE base = off * RANGE_SIZE + 1;
  484. lock(range_map_lock);
  485. struct range * r = __get_range(off);
  486. if (!r) {
  487. unlock(range_map_lock);
  488. return -ESRCH;
  489. }
  490. if (!r->subranges || !r->subranges->map[idx - base]) {
  491. unlock(range_map_lock);
  492. return -ESRCH;
  493. }
  494. struct subrange * s = r->subranges->map[idx - base];
  495. s->lease = get_lease();
  496. if (lease)
  497. *lease = s->lease;
  498. unlock(range_map_lock);
  499. return 0;
  500. }
  501. IDTYPE CONCAT2(allocate, NS) (IDTYPE min, IDTYPE max)
  502. {
  503. IDTYPE idx = min;
  504. struct range * r;
  505. lock(range_map_lock);
  506. listp_for_each_entry (r, &owned_ranges, list) {
  507. if (max && idx >= max)
  508. break;
  509. IDTYPE base = r->offset * RANGE_SIZE + 1;
  510. if (idx >= base + RANGE_SIZE)
  511. continue;
  512. if (idx < base)
  513. idx = base;
  514. if (!r->used) {
  515. r->used = calloc(1, sizeof(struct idx_bitmap));
  516. if (!r->used)
  517. continue;
  518. }
  519. int i = (idx - base) / BITS;
  520. int j = (idx - base) - i * BITS;
  521. unsigned char * m = r->used->map + i;
  522. unsigned char f = 1U << j;
  523. for ( ; i < RANGE_SIZE / BITS ; i++, j = 0, f = 1U, m++) {
  524. unsigned char map = (*m) ^ (f - 1);
  525. if (map < 255U) {
  526. for ( ; j < BITS ; f <<= 1, j++)
  527. if (!(map & f)) {
  528. (*m) |= f;
  529. idx = base + i * BITS + j;
  530. debug("allocated " NS_STR ": %u\n", idx);
  531. goto out;
  532. }
  533. }
  534. }
  535. }
  536. idx = 0;
  537. out:
  538. unlock(range_map_lock);
  539. return idx;
  540. }
  541. void CONCAT2(release, NS) (IDTYPE idx)
  542. {
  543. int off = (idx - 1) / RANGE_SIZE;
  544. IDTYPE base = off * RANGE_SIZE + 1;
  545. lock(range_map_lock);
  546. struct range * r = __get_range(off);
  547. if (!r)
  548. goto out;
  549. if (r->subranges && r->subranges->map[idx - base])
  550. CONCAT3(__del, NS, subrange) (&r->subranges->map[idx - base]);
  551. if (!r->used)
  552. goto out;
  553. if (idx < base || idx >= base + RANGE_SIZE)
  554. goto out;
  555. int i = (idx - base) / BITS;
  556. int j = (idx - base) - i * BITS;
  557. unsigned char * m = r->used->map + i;
  558. unsigned char f = 1U << j;
  559. if ((*m) & f) {
  560. debug("released " NS_STR ": %u\n", idx);
  561. (*m) &= ~f;
  562. }
  563. out:
  564. unlock(range_map_lock);
  565. }
  566. static inline void init_namespace (void)
  567. {
  568. create_lock(range_map_lock);
  569. }
  570. #define _NS_ID(ns) __NS_ID(ns)
  571. #define __NS_ID(ns) ns##_NS
  572. #define NS_ID _NS_ID(NS_CAP)
  573. #define NS_LEADER cur_process.ns[NS_ID]
  574. #define NS_SEND(t) CONCAT3(ipc, NS, t##_send)
  575. #define NS_CALLBACK(t) CONCAT3(ipc, NS, t##_callback)
  576. #define NS_CODE(t) CONCAT3(IPC, NS_CAP, t)
  577. #define NS_CODE_STR(t) "IPC_" NS_CAP_STR "_" #t
  578. #define NS_MSG_TYPE(t) struct CONCAT3(shim_ipc, NS, t)
  579. #define PORT(ns, t) __PORT(ns, t)
  580. #define __PORT(ns, t) IPC_PORT_##ns##t
  581. #define IPC_PORT_CLT PORT(NS_CAP, CLT)
  582. #define IPC_PORT_LDR PORT(NS_CAP, LDR)
  583. #define IPC_PORT_CON PORT(NS_CAP, CON)
  584. #define IPC_PORT_OWN PORT(NS_CAP, OWN)
  585. static void ipc_leader_exit (struct shim_ipc_port * port, IDTYPE vmid,
  586. unsigned int exitcode)
  587. {
  588. lock(cur_process.lock);
  589. if (!NS_LEADER || NS_LEADER->port != port) {
  590. unlock(cur_process.lock);
  591. return;
  592. }
  593. struct shim_ipc_info * info = NS_LEADER;
  594. NS_LEADER = NULL;
  595. unlock(cur_process.lock);
  596. debug("ipc port %p of process %u closed suggests " NS_STR " leader exits\n",
  597. port, vmid);
  598. put_ipc_info(info);
  599. }
  600. static void __discover_ns (bool block, bool need_connect, bool need_locate)
  601. {
  602. if (NS_LEADER) {
  603. if (NS_LEADER->vmid == cur_process.vmid) {
  604. if (need_locate && qstrempty(&NS_LEADER->uri)) {
  605. struct shim_ipc_info * info = create_ipc_port(cur_process.vmid,
  606. true);
  607. if (info) {
  608. put_ipc_info(NS_LEADER);
  609. NS_LEADER = info;
  610. add_ipc_port(info->port, 0, IPC_PORT_CLT,
  611. &ipc_leader_exit);
  612. }
  613. }
  614. return;
  615. }
  616. if ((need_connect || need_locate) && !qstrempty(&NS_LEADER->uri))
  617. return;
  618. }
  619. unlock(cur_process.lock);
  620. /* now we have to discover the leader */
  621. if (!NS_SEND(findns)(block))
  622. return;
  623. lock(cur_process.lock);
  624. if (NS_LEADER && (!need_locate || !qstrempty(&NS_LEADER->uri)))
  625. return;
  626. /* if all other ways failed, the process become a manager */
  627. if (!need_locate) {
  628. NS_LEADER = get_new_ipc_info(cur_process.vmid, NULL, 0);
  629. return;
  630. }
  631. if (NS_LEADER)
  632. put_ipc_info(NS_LEADER);
  633. if (!(NS_LEADER = create_ipc_port(cur_process.vmid, true)))
  634. return;
  635. add_ipc_port(NS_LEADER->port, NS_LEADER->vmid, IPC_PORT_CLT,
  636. &ipc_leader_exit);
  637. }
  638. static int connect_ns (IDTYPE * vmid, struct shim_ipc_port ** portptr)
  639. {
  640. lock(cur_process.lock);
  641. __discover_ns(true, true, false);
  642. if (!NS_LEADER) {
  643. unlock(cur_process.lock);
  644. return -ESRCH;
  645. }
  646. if (NS_LEADER->vmid == cur_process.vmid) {
  647. if (vmid)
  648. *vmid = NS_LEADER->vmid;
  649. unlock(cur_process.lock);
  650. return 0;
  651. }
  652. if (!NS_LEADER->port) {
  653. if (qstrempty(&NS_LEADER->uri)) {
  654. unlock(cur_process.lock);
  655. return -ESRCH;
  656. }
  657. PAL_HANDLE pal_handle = DkStreamOpen(qstrgetstr(&NS_LEADER->uri),
  658. 0, 0, 0, 0);
  659. if (!pal_handle) {
  660. unlock(cur_process.lock);
  661. return -PAL_ERRNO;
  662. }
  663. add_ipc_port_by_id(NS_LEADER->vmid, pal_handle,
  664. IPC_PORT_LDR|IPC_PORT_LISTEN, &ipc_leader_exit,
  665. &NS_LEADER->port);
  666. }
  667. if (vmid)
  668. *vmid = NS_LEADER->vmid;
  669. if (portptr) {
  670. if (NS_LEADER->port)
  671. get_ipc_port(NS_LEADER->port);
  672. *portptr = NS_LEADER->port;
  673. }
  674. unlock(cur_process.lock);
  675. return 0;
  676. }
  677. static int disconnect_ns(struct shim_ipc_port * port)
  678. {
  679. lock(cur_process.lock);
  680. if (NS_LEADER && NS_LEADER->port == port) {
  681. NS_LEADER->port = NULL;
  682. put_ipc_port(port);
  683. }
  684. unlock(cur_process.lock);
  685. del_ipc_port(port, IPC_PORT_LDR);
  686. return 0;
  687. }
  688. int CONCAT3(prepare, NS, leader) (void)
  689. {
  690. lock(cur_process.lock);
  691. if (!NS_LEADER) {
  692. unlock(cur_process.lock);
  693. return 0;
  694. }
  695. __discover_ns(true, true, true);
  696. unlock(cur_process.lock);
  697. return 0;
  698. }
  699. static int connect_owner (IDTYPE idx, struct shim_ipc_port ** portptr,
  700. IDTYPE * owner)
  701. {
  702. struct shim_ipc_info * info = NULL;
  703. struct CONCAT2(NS, range) range;
  704. memset(&range, 0, sizeof(struct CONCAT2(NS, range)));
  705. int ret = CONCAT3(get, NS, range) (idx, &range, &info);
  706. if (ret == -ESRCH) {
  707. if ((ret = NS_SEND(query)(idx)) < 0)
  708. return -ESRCH;
  709. ret = CONCAT3(get, NS, range) (idx, &range, &info);
  710. }
  711. if (ret < 0)
  712. goto out;
  713. if (range.owner == cur_process.vmid) {
  714. ret = -ESRCH;
  715. assert(!range.port);
  716. goto out;
  717. }
  718. if (range.port)
  719. goto success;
  720. int type = IPC_PORT_OWN|IPC_PORT_LISTEN;
  721. if (!range.port) {
  722. PAL_HANDLE pal_handle = DkStreamOpen(qstrgetstr(&range.uri),
  723. 0, 0, 0, 0);
  724. if (!pal_handle) {
  725. ret = -PAL_ERRNO ? : -EACCES;
  726. goto out;
  727. }
  728. add_ipc_port_by_id(range.owner, pal_handle, type, NULL, &range.port);
  729. assert(range.port);
  730. }
  731. lock(range_map_lock);
  732. if (info->port)
  733. put_ipc_port(info->port);
  734. get_ipc_port(range.port);
  735. info->port = range.port;
  736. unlock(range_map_lock);
  737. success:
  738. if (portptr)
  739. *portptr = range.port;
  740. else
  741. put_ipc_port(range.port);
  742. if (owner)
  743. *owner = range.owner;
  744. out:
  745. if (info)
  746. put_ipc_info(info);
  747. assert(ret || range.port);
  748. return ret;
  749. }
  750. DEFINE_PROFILE_INTERVAL(NS_SEND(findns), ipc);
  751. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(findns), ipc);
  752. int NS_SEND(findns) (bool block)
  753. {
  754. BEGIN_PROFILE_INTERVAL();
  755. int ret = -ESRCH;
  756. lock(cur_process.lock);
  757. if (!cur_process.parent || !cur_process.parent->port) {
  758. unlock(cur_process.lock);
  759. goto out;
  760. }
  761. IDTYPE dest = cur_process.parent->vmid;
  762. struct shim_ipc_port * port = cur_process.parent->port;
  763. get_ipc_port(port);
  764. unlock(cur_process.lock);
  765. if (block) {
  766. struct shim_ipc_msg_obj * msg =
  767. create_ipc_msg_duplex_on_stack(NS_CODE(FINDNS), 0, dest);
  768. debug("ipc send to %u: " NS_CODE_STR(FINDNS) "\n", dest);
  769. ret = do_ipc_duplex(msg, port, NULL, NULL);
  770. goto out_port;
  771. }
  772. struct shim_ipc_msg * msg =
  773. create_ipc_msg_on_stack(NS_CODE(FINDNS), 0, dest);
  774. debug("ipc send to %u: " NS_CODE_STR(FINDNS) "\n", dest);
  775. ret = send_ipc_message(msg, port);
  776. out_port:
  777. put_ipc_port(port);
  778. out:
  779. SAVE_PROFILE_INTERVAL(NS_SEND(findns));
  780. return ret;
  781. }
  782. int NS_CALLBACK(findns) (IPC_CALLBACK_ARGS)
  783. {
  784. BEGIN_PROFILE_INTERVAL();
  785. debug("ipc callback from %u: " NS_CODE_STR(FINDNS) "\n",
  786. msg->src);
  787. int ret = 0;
  788. lock(cur_process.lock);
  789. __discover_ns(false, true, true);
  790. if (NS_LEADER) {
  791. /* After __discover_ns, the leader should has its own port */
  792. assert(!qstrempty(&NS_LEADER->uri));
  793. ret = NS_SEND(tellns)(port, msg->src, NS_LEADER, msg->seq);
  794. } else {
  795. struct ns_query * query = malloc(sizeof(struct ns_query));
  796. if (query) {
  797. query->dest = msg->src;
  798. query->seq = msg->seq;
  799. get_ipc_port(port);
  800. query->port = port;
  801. INIT_LIST_HEAD(query, list);
  802. listp_add_tail(query, &ns_queries, list);
  803. } else {
  804. ret = -ENOMEM;
  805. }
  806. }
  807. unlock(cur_process.lock);
  808. SAVE_PROFILE_INTERVAL(NS_CALLBACK(findns));
  809. return ret;
  810. }
  811. DEFINE_PROFILE_INTERVAL(NS_SEND(tellns), ipc);
  812. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(tellns), ipc);
  813. int NS_SEND(tellns) (struct shim_ipc_port * port, IDTYPE dest,
  814. struct shim_ipc_info * leader, unsigned long seq)
  815. {
  816. BEGIN_PROFILE_INTERVAL();
  817. struct shim_ipc_msg * msg =
  818. create_ipc_msg_on_stack(NS_CODE(TELLNS),
  819. leader->uri.len + sizeof(NS_MSG_TYPE(tellns)),
  820. dest);
  821. NS_MSG_TYPE(tellns) * msgin = (void *) &msg->msg;
  822. msgin->vmid = leader->vmid;
  823. memcpy(msgin->uri, qstrgetstr(&leader->uri), leader->uri.len + 1);
  824. msg->seq = seq;
  825. debug("ipc send to %u: " NS_CODE_STR(TELLNS) "(%u, %s)\n", dest,
  826. leader->vmid, msgin->uri);
  827. int ret = send_ipc_message(msg, port);
  828. SAVE_PROFILE_INTERVAL(NS_SEND(tellns));
  829. return ret;
  830. }
  831. int NS_CALLBACK(tellns) (IPC_CALLBACK_ARGS)
  832. {
  833. BEGIN_PROFILE_INTERVAL();
  834. NS_MSG_TYPE(tellns) * msgin = (void *) &msg->msg;
  835. int ret = 0;
  836. debug("ipc callback from %u: " NS_CODE_STR(TELLNS) "(%u, %s)\n",
  837. msg->src, msgin->vmid, msgin->uri);
  838. lock(cur_process.lock);
  839. if (NS_LEADER) {
  840. NS_LEADER->vmid = msgin->vmid;
  841. qstrsetstr(&NS_LEADER->uri, msgin->uri, strlen(msgin->uri));
  842. } else {
  843. NS_LEADER = get_new_ipc_info(msgin->vmid, msgin->uri,
  844. strlen(msgin->uri));
  845. if (!NS_LEADER) {
  846. ret = -ENOMEM;
  847. goto out;
  848. }
  849. }
  850. struct ns_query * query, * pos;
  851. listp_for_each_entry_safe(query, pos, &ns_queries, list) {
  852. listp_del(query, &ns_queries, list);
  853. NS_SEND(tellns)(query->port, query->dest, NS_LEADER, query->seq);
  854. put_ipc_port(query->port);
  855. free(query);
  856. }
  857. struct shim_ipc_msg_obj * obj = find_ipc_msg_duplex(port, msg->seq);
  858. if (obj && obj->thread)
  859. thread_wakeup(obj->thread);
  860. out:
  861. unlock(cur_process.lock);
  862. SAVE_PROFILE_INTERVAL(NS_CALLBACK(tellns));
  863. return ret;
  864. }
  865. DEFINE_PROFILE_INTERVAL(NS_SEND(lease), ipc);
  866. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(lease), ipc);
  867. int NS_SEND(lease) (LEASETYPE * lease)
  868. {
  869. BEGIN_PROFILE_INTERVAL();
  870. IDTYPE leader;
  871. struct shim_ipc_port * port = NULL;
  872. struct shim_ipc_info * self = NULL;
  873. int ret = 0;
  874. if ((ret = connect_ns(&leader, &port)) < 0)
  875. goto out;
  876. if ((ret = create_ipc_location(&self)) < 0)
  877. goto out;
  878. if (leader == cur_process.vmid) {
  879. ret = CONCAT3(alloc, NS, range)(cur_process.vmid,
  880. qstrgetstr(&self->uri),
  881. NULL, NULL);
  882. put_ipc_info(self);
  883. goto out;
  884. }
  885. int len = self->uri.len;
  886. struct shim_ipc_msg_obj * msg = create_ipc_msg_duplex_on_stack(
  887. NS_CODE(LEASE),
  888. len + sizeof(NS_MSG_TYPE(lease)),
  889. leader);
  890. NS_MSG_TYPE(lease) * msgin = (void *) &msg->msg.msg;
  891. assert(!qstrempty(&self->uri));
  892. memcpy(msgin->uri, qstrgetstr(&self->uri), len + 1);
  893. put_ipc_info(self);
  894. debug("ipc send to %u: " NS_CODE_STR(LEASE) "(%s)\n", leader,
  895. msgin->uri);
  896. ret = do_ipc_duplex(msg, port, NULL, lease);
  897. out:
  898. if (port)
  899. put_ipc_port(port);
  900. SAVE_PROFILE_INTERVAL(NS_SEND(lease));
  901. return ret;
  902. }
  903. int NS_CALLBACK(lease) (IPC_CALLBACK_ARGS)
  904. {
  905. BEGIN_PROFILE_INTERVAL();
  906. NS_MSG_TYPE(lease) * msgin = (void *) &msg->msg;
  907. debug("ipc callback from %u: " NS_CODE_STR(LEASE) "(%s)\n",
  908. msg->src, msgin->uri);
  909. IDTYPE base = 0;
  910. LEASETYPE lease = 0;
  911. int ret = CONCAT3(alloc, NS, range)(msg->src, msgin->uri, &base, &lease);
  912. if (ret < 0)
  913. goto out;
  914. ret = NS_SEND(offer)(port, msg->src, base, RANGE_SIZE, lease, msg->seq);
  915. out:
  916. SAVE_PROFILE_INTERVAL(NS_CALLBACK(lease));
  917. return ret;
  918. }
  919. DEFINE_PROFILE_INTERVAL(NS_SEND(offer), ipc);
  920. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(offer), ipc);
  921. int NS_SEND(offer) (struct shim_ipc_port * port, IDTYPE dest, IDTYPE base,
  922. IDTYPE size, LEASETYPE lease, unsigned long seq)
  923. {
  924. BEGIN_PROFILE_INTERVAL();
  925. int ret = 0;
  926. struct shim_ipc_msg * msg = create_ipc_msg_on_stack(NS_CODE(OFFER),
  927. sizeof(NS_MSG_TYPE(offer)), dest);
  928. NS_MSG_TYPE(offer) * msgin = (void *) &msg->msg;
  929. msgin->base = base;
  930. msgin->size = size;
  931. msgin->lease = lease;
  932. msg->seq = seq;
  933. debug("ipc send to %u: " NS_CODE_STR(OFFER) "(%u, %u, %lu)\n",
  934. port->info.vmid, base, size, lease);
  935. ret = send_ipc_message(msg, port);
  936. SAVE_PROFILE_INTERVAL(NS_SEND(offer));
  937. return ret;
  938. }
  939. int NS_CALLBACK(offer) (IPC_CALLBACK_ARGS)
  940. {
  941. BEGIN_PROFILE_INTERVAL();
  942. NS_MSG_TYPE(offer) * msgin = (void *) &msg->msg;
  943. debug("ipc callback from %u: " NS_CODE_STR(OFFER) "(%u, %u, %lu)\n",
  944. msg->src, msgin->base, msgin->size, msgin->lease);
  945. struct shim_ipc_msg_obj * obj = find_ipc_msg_duplex(port, msg->seq);
  946. switch (msgin->size) {
  947. case RANGE_SIZE:
  948. CONCAT3(add, NS, range)(msgin->base, cur_process.vmid,
  949. qstrgetstr(&cur_process.self->uri),
  950. msgin->lease);
  951. LEASETYPE * priv = obj ? obj->private : NULL;
  952. if (priv)
  953. *priv = msgin->lease;
  954. break;
  955. case 1:
  956. if (obj) {
  957. NS_MSG_TYPE(sublease) * s = (void *) &obj->msg.msg;
  958. CONCAT3(add, NS, subrange)(s->idx, s->tenant, s->uri,
  959. &msgin->lease);
  960. LEASETYPE * priv = obj->private;
  961. if (priv)
  962. *priv = msgin->lease;
  963. }
  964. break;
  965. default:
  966. goto out;
  967. }
  968. if (obj && obj->thread)
  969. thread_wakeup(obj->thread);
  970. out:
  971. SAVE_PROFILE_INTERVAL(NS_CALLBACK(offer));
  972. return 0;
  973. }
  974. DEFINE_PROFILE_INTERVAL(NS_SEND(renew), ipc);
  975. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(renew), ipc);
  976. int NS_SEND(renew) (IDTYPE base, IDTYPE size)
  977. {
  978. BEGIN_PROFILE_INTERVAL();
  979. IDTYPE leader;
  980. struct shim_ipc_port * port = NULL;
  981. int ret = 0;
  982. if ((ret = connect_ns(&leader, &port)) < 0)
  983. goto out;
  984. struct shim_ipc_msg * msg =
  985. create_ipc_msg_on_stack(NS_CODE(RENEW),
  986. sizeof(NS_MSG_TYPE(renew)), leader);
  987. NS_MSG_TYPE(renew) * msgin = (void *) &msg->msg;
  988. msgin->base = base;
  989. msgin->size = size;
  990. debug("ipc send to %u: " NS_CODE_STR(RENEW) "(%u, %u)\n", base, size);
  991. ret = send_ipc_message(msg, port);
  992. put_ipc_port(port);
  993. out:
  994. SAVE_PROFILE_INTERVAL(NS_SEND(renew));
  995. return ret;
  996. }
  997. int NS_CALLBACK(renew) (IPC_CALLBACK_ARGS)
  998. {
  999. BEGIN_PROFILE_INTERVAL();
  1000. NS_MSG_TYPE(renew) * msgin = (void *) &msg->msg;
  1001. int ret = 0;
  1002. debug("ipc callback from %u: " NS_CODE_STR(RENEW) "(%u, %u)\n",
  1003. msg->src, msgin->base, msgin->size);
  1004. if (msgin->size != 1 && msgin->size != RANGE_SIZE) {
  1005. ret = -EINVAL;
  1006. goto out;
  1007. }
  1008. LEASETYPE lease = 0;
  1009. switch (msgin->size) {
  1010. case RANGE_SIZE:
  1011. ret = CONCAT3(renew, NS, range) (msgin->base, &lease);
  1012. break;
  1013. case 1:
  1014. ret = CONCAT3(renew, NS, subrange) (msgin->size, &lease);
  1015. break;
  1016. default:
  1017. ret = -EINVAL;
  1018. break;
  1019. }
  1020. if (ret < 0)
  1021. goto out;
  1022. ret = NS_SEND(offer)(port, msg->src, msgin->base, msgin->size, lease,
  1023. msg->seq);
  1024. out:
  1025. SAVE_PROFILE_INTERVAL(NS_CALLBACK(renew));
  1026. return ret;
  1027. }
  1028. DEFINE_PROFILE_INTERVAL(NS_SEND(revoke), ipc);
  1029. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(revoke), ipc);
  1030. int NS_SEND(revoke) (IDTYPE base, IDTYPE size)
  1031. {
  1032. BEGIN_PROFILE_INTERVAL();
  1033. IDTYPE leader;
  1034. struct shim_ipc_port * port = NULL;
  1035. int ret = 0;
  1036. if ((ret = connect_ns(&leader, &port)) < 0)
  1037. goto out;
  1038. struct shim_ipc_msg * msg =
  1039. create_ipc_msg_on_stack(NS_CODE(REVOKE),
  1040. sizeof(NS_MSG_TYPE(revoke)), leader);
  1041. NS_MSG_TYPE(revoke) * msgin = (void *) &msg->msg;
  1042. msgin->base = base;
  1043. msgin->size = size;
  1044. debug("ipc send to %u: " NS_CODE_STR(REVOKE) "(%u, %u)\n",
  1045. leader, base, size);
  1046. ret = send_ipc_message(msg, port);
  1047. put_ipc_port(port);
  1048. out:
  1049. SAVE_PROFILE_INTERVAL(NS_SEND(revoke));
  1050. return ret;
  1051. }
  1052. int NS_CALLBACK(revoke) (IPC_CALLBACK_ARGS)
  1053. {
  1054. BEGIN_PROFILE_INTERVAL();
  1055. NS_MSG_TYPE(revoke) * msgin = (void *) &msg->msg;
  1056. int ret = 0;
  1057. debug("ipc callback from %u: " NS_CODE_STR(REVOKE) "(%u, %u)\n",
  1058. msg->src, msgin->base, msgin->size);
  1059. switch (msgin->size) {
  1060. case RANGE_SIZE:
  1061. ret = CONCAT3(del, NS, range)(msgin->base);
  1062. break;
  1063. case 1:
  1064. ret = CONCAT3(del, NS, subrange)(msgin->size);
  1065. break;
  1066. default:
  1067. ret = -EINVAL;
  1068. break;
  1069. }
  1070. SAVE_PROFILE_INTERVAL(NS_CALLBACK(revoke));
  1071. return ret;
  1072. }
  1073. DEFINE_PROFILE_INTERVAL(NS_SEND(sublease), ipc);
  1074. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(sublease), ipc);
  1075. int NS_SEND(sublease) (IDTYPE tenant, IDTYPE idx, const char * uri,
  1076. LEASETYPE * lease)
  1077. {
  1078. BEGIN_PROFILE_INTERVAL();
  1079. IDTYPE leader;
  1080. struct shim_ipc_port * port = NULL;
  1081. int ret = 0;
  1082. if ((ret = connect_ns(&leader, &port)) < 0)
  1083. goto out;
  1084. if (leader == cur_process.vmid) {
  1085. ret = CONCAT3(add, NS, subrange)(idx, tenant, uri, NULL);
  1086. goto out;
  1087. }
  1088. int len = strlen(uri);
  1089. struct shim_ipc_msg_obj * msg = create_ipc_msg_duplex_on_stack(
  1090. NS_CODE(SUBLEASE),
  1091. len + sizeof(NS_MSG_TYPE(sublease)),
  1092. leader);
  1093. NS_MSG_TYPE(sublease) * msgin = (void *) &msg->msg.msg;
  1094. msgin->tenant = tenant;
  1095. msgin->idx = idx;
  1096. memcpy(msgin->uri, uri, len + 1);
  1097. debug("ipc send to %u: " NS_CODE_STR(SUBLEASE) "(%u, %u, %s)\n",
  1098. leader, tenant, idx, msgin->uri);
  1099. ret = do_ipc_duplex(msg, port, NULL, lease);
  1100. out:
  1101. if (port)
  1102. put_ipc_port(port);
  1103. SAVE_PROFILE_INTERVAL(NS_SEND(sublease));
  1104. return ret;
  1105. }
  1106. int NS_CALLBACK(sublease) (IPC_CALLBACK_ARGS)
  1107. {
  1108. BEGIN_PROFILE_INTERVAL();
  1109. NS_MSG_TYPE(sublease) * msgin = (void *) &msg->msg;
  1110. debug("ipc callback from %u: " NS_CODE_STR(SUBLEASE) "(%u, %u, %s)\n",
  1111. msg->src, msgin->idx, msgin->tenant, msgin->uri);
  1112. LEASETYPE lease = 0;
  1113. int ret = CONCAT3(add, NS, subrange)(msgin->idx, msgin->tenant, msgin->uri,
  1114. &lease);
  1115. ret = NS_SEND(offer)(port, msg->src, msgin->idx, 1, lease, msg->seq);
  1116. SAVE_PROFILE_INTERVAL(NS_CALLBACK(sublease));
  1117. return ret;
  1118. }
  1119. DEFINE_PROFILE_INTERVAL(NS_SEND(query), ipc);
  1120. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(query), ipc);
  1121. int NS_SEND(query) (IDTYPE idx)
  1122. {
  1123. BEGIN_PROFILE_INTERVAL();
  1124. struct CONCAT2(NS, range) range;
  1125. IDTYPE leader;
  1126. struct shim_ipc_port * port = NULL;
  1127. int ret = 0;
  1128. memset(&range, 0, sizeof(struct CONCAT2(NS, range)));
  1129. if (!CONCAT3(get, NS, range)(idx, &range, NULL))
  1130. goto out;
  1131. if ((ret = connect_ns(&leader, &port)) < 0)
  1132. goto out;
  1133. if (cur_process.vmid == leader) {
  1134. ret = -ESRCH;
  1135. goto out;
  1136. }
  1137. struct shim_ipc_msg_obj * msg = create_ipc_msg_duplex_on_stack(
  1138. NS_CODE(QUERY),
  1139. sizeof(NS_MSG_TYPE(query)),
  1140. leader);
  1141. NS_MSG_TYPE(query) * msgin = (void *) &msg->msg.msg;
  1142. msgin->idx = idx;
  1143. debug("ipc send to %u: " NS_CODE_STR(QUERY) "(%u)\n", leader, idx);
  1144. ret = do_ipc_duplex(msg, port, NULL, NULL);
  1145. out:
  1146. if (port)
  1147. put_ipc_port(port);
  1148. SAVE_PROFILE_INTERVAL(NS_SEND(query));
  1149. return ret;
  1150. }
  1151. int NS_CALLBACK(query) (IPC_CALLBACK_ARGS)
  1152. {
  1153. BEGIN_PROFILE_INTERVAL();
  1154. NS_MSG_TYPE(query) * msgin = (void *) &msg->msg;
  1155. debug("ipc callback from %u: " NS_CODE_STR(QUERY) "(%u)\n",
  1156. msg->src, msgin->idx);
  1157. struct CONCAT2(NS, range) range;
  1158. int ret = 0;
  1159. memset(&range, 0, sizeof(struct CONCAT2(NS, range)));
  1160. ret = CONCAT3(get, NS, range)(msgin->idx, &range, NULL);
  1161. if (ret < 0)
  1162. goto out;
  1163. assert(msgin->idx >= range.base && msgin->idx < range.base + range.size);
  1164. assert(range.owner);
  1165. assert(!qstrempty(&range.uri));
  1166. struct ipc_ns_offered ans;
  1167. ans.base = range.base;
  1168. ans.size = range.size;
  1169. ans.lease = range.lease;
  1170. ans.owner_offset = 0;
  1171. int ownerdatasz = sizeof(struct ipc_ns_client) + range.uri.len;
  1172. struct ipc_ns_client * owner = __alloca(ownerdatasz);
  1173. owner->vmid = range.owner;
  1174. assert(!qstrempty(&range.uri));
  1175. memcpy(owner->uri, qstrgetstr(&range.uri), range.uri.len + 1);
  1176. ret = NS_SEND(answer)(port, msg->src, 1, &ans, 1, &owner, &ownerdatasz,
  1177. msg->seq);
  1178. out:
  1179. SAVE_PROFILE_INTERVAL(NS_CALLBACK(query));
  1180. return ret;
  1181. }
  1182. DEFINE_PROFILE_INTERVAL(NS_SEND(queryall), ipc);
  1183. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(queryall), ipc);
  1184. int NS_SEND(queryall) (void)
  1185. {
  1186. BEGIN_PROFILE_INTERVAL();
  1187. IDTYPE leader;
  1188. struct shim_ipc_port * port = NULL;
  1189. int ret = 0;
  1190. if ((ret = connect_ns(&leader, &port)) < 0)
  1191. goto out;
  1192. if (cur_process.vmid == leader)
  1193. goto out;
  1194. struct shim_ipc_msg_obj * msg = create_ipc_msg_duplex_on_stack(
  1195. NS_CODE(QUERYALL), 0, leader);
  1196. debug("ipc send to %u: " NS_CODE_STR(QUERYALL) "\n", leader);
  1197. ret = do_ipc_duplex(msg, port, NULL, NULL);
  1198. put_ipc_port(port);
  1199. out:
  1200. SAVE_PROFILE_INTERVAL(NS_SEND(queryall));
  1201. return ret;
  1202. }
  1203. int NS_CALLBACK(queryall) (IPC_CALLBACK_ARGS)
  1204. {
  1205. BEGIN_PROFILE_INTERVAL();
  1206. debug("ipc callback from %u: " NS_CODE_STR(QUERYALL) "\n", msg->src);
  1207. LISTP_TYPE(range) * list = &offered_ranges;
  1208. struct range * r;
  1209. int ret;
  1210. lock(range_map_lock);
  1211. int maxanswers = nowned + noffered + nsubed;
  1212. int nanswers = 0, nowners = 0, i;
  1213. struct ipc_ns_offered * answers =
  1214. __alloca(sizeof(struct ipc_ns_offered) * maxanswers);
  1215. struct ipc_ns_client ** ownerdata =
  1216. __alloca(sizeof(struct ipc_ns_client *) * maxanswers);
  1217. int * ownerdatasz = __alloca(sizeof(int) * maxanswers);
  1218. int owner_offset = 0;
  1219. retry:
  1220. listp_for_each_entry (r, list, list) {
  1221. struct shim_ipc_info * p = r->owner;
  1222. int datasz = sizeof(struct ipc_ns_client) + p->uri.len;
  1223. struct ipc_ns_client * owner = __alloca(datasz);
  1224. assert(!qstrempty(&p->uri));
  1225. owner->vmid = p->vmid;
  1226. memcpy(owner->uri, qstrgetstr(&p->uri), p->uri.len + 1);
  1227. IDTYPE base = r->offset * RANGE_SIZE + 1;
  1228. answers[nanswers].base = base;
  1229. answers[nanswers].size = RANGE_SIZE;
  1230. answers[nanswers].lease = r->lease;
  1231. answers[nanswers].owner_offset = owner_offset;
  1232. nanswers++;
  1233. ownerdata[nowners] = owner;
  1234. ownerdatasz[nowners] = datasz;
  1235. nowners++;
  1236. owner_offset += datasz;
  1237. if (!r->subranges)
  1238. continue;
  1239. for (i = 0 ; i < RANGE_SIZE ; i++) {
  1240. if (!r->subranges->map[i])
  1241. continue;
  1242. struct subrange * s = r->subranges->map[i];
  1243. p = s->owner;
  1244. datasz = sizeof(struct ipc_ns_client) + p->uri.len;
  1245. owner = __alloca(datasz);
  1246. assert(!qstrempty(&p->uri));
  1247. owner->vmid = p->vmid;
  1248. memcpy(owner->uri, qstrgetstr(&p->uri), p->uri.len + 1);
  1249. answers[nanswers].base = base + i;
  1250. answers[nanswers].size = 1;
  1251. answers[nanswers].lease = s->lease;
  1252. answers[nanswers].owner_offset = owner_offset;
  1253. nanswers++;
  1254. ownerdata[nowners] = owner;
  1255. ownerdatasz[nowners] = datasz;
  1256. nowners++;
  1257. owner_offset += datasz;
  1258. }
  1259. }
  1260. if (list == &offered_ranges) {
  1261. list = &owned_ranges;
  1262. goto retry;
  1263. }
  1264. unlock(range_map_lock);
  1265. ret = NS_SEND(answer)(port, msg->src, nanswers, answers, nowners,
  1266. ownerdata, ownerdatasz, msg->seq);
  1267. SAVE_PROFILE_INTERVAL(NS_CALLBACK(queryall));
  1268. return ret;
  1269. }
  1270. DEFINE_PROFILE_INTERVAL(NS_SEND(answer), ipc);
  1271. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(answer), ipc);
  1272. int NS_SEND(answer) (struct shim_ipc_port * port, IDTYPE dest,
  1273. int nanswers, struct ipc_ns_offered * answers,
  1274. int nowners, struct ipc_ns_client ** ownerdata,
  1275. int * ownerdatasz, unsigned long seq)
  1276. {
  1277. BEGIN_PROFILE_INTERVAL();
  1278. int owner_offset = sizeof(NS_MSG_TYPE(answer)) +
  1279. sizeof(struct ipc_ns_offered) * nanswers;
  1280. int total_ownerdatasz = 0;
  1281. for (int i = 0 ; i < nowners ; i++)
  1282. total_ownerdatasz += ownerdatasz[i];
  1283. struct shim_ipc_msg * msg =
  1284. create_ipc_msg_on_stack(NS_CODE(ANSWER),
  1285. owner_offset + total_ownerdatasz, dest);
  1286. NS_MSG_TYPE(answer) * msgin = (void *) &msg->msg;
  1287. msgin->nanswers = nanswers;
  1288. for (int i = 0 ; i < nanswers ; i++) {
  1289. msgin->answers[i] = answers[i];
  1290. msgin->answers[i].owner_offset += owner_offset;
  1291. }
  1292. for (int i = 0 ; i < nowners ; i++) {
  1293. memcpy((void *) msgin + owner_offset, ownerdata[i], ownerdatasz[i]);
  1294. owner_offset += ownerdatasz[i];
  1295. }
  1296. msg->seq = seq;
  1297. if (nanswers == 1)
  1298. debug("ipc send to %u: " NS_CODE_STR(ANSWER) "([%u, %u])\n", dest,
  1299. answers[0].base, answers[0].size);
  1300. else if (nanswers)
  1301. debug("ipc send to %u: " NS_CODE_STR(ANSWER) "([%u, %u], ...)\n", dest,
  1302. answers[0].base, answers[0].size);
  1303. int ret = send_ipc_message(msg, port);
  1304. SAVE_PROFILE_INTERVAL(NS_SEND(answer));
  1305. return ret;
  1306. }
  1307. int NS_CALLBACK(answer) (IPC_CALLBACK_ARGS)
  1308. {
  1309. BEGIN_PROFILE_INTERVAL();
  1310. NS_MSG_TYPE(answer) * msgin = (void *) &msg->msg;
  1311. if (msgin->nanswers == 1)
  1312. debug("ipc callback from %u: " NS_CODE_STR(ANSWER) "([%u, %u])\n",
  1313. msg->src, msgin->answers[0].base, msgin->answers[0].size);
  1314. else if (msgin->nanswers)
  1315. debug("ipc callback from %u: " NS_CODE_STR(ANSWER) "([%u, %u], ...)\n",
  1316. msg->src, msgin->answers[0].base, msgin->answers[0].size);
  1317. for (int i = 0 ; i < msgin->nanswers ; i++) {
  1318. struct ipc_ns_offered * ans = &msgin->answers[i];
  1319. struct ipc_ns_client * owner = (void *) msgin + ans->owner_offset;
  1320. switch (ans->size) {
  1321. case RANGE_SIZE:
  1322. CONCAT3(add, NS, range)(ans->base, owner->vmid, owner->uri,
  1323. ans->lease);
  1324. break;
  1325. case 1:
  1326. CONCAT3(add, NS, subrange)(ans->base, owner->vmid, owner->uri,
  1327. &ans->lease);
  1328. break;
  1329. default:
  1330. break;
  1331. }
  1332. }
  1333. struct shim_ipc_msg_obj * obj = find_ipc_msg_duplex(port, msg->seq);
  1334. if (obj && obj->thread)
  1335. thread_wakeup(obj->thread);
  1336. SAVE_PROFILE_INTERVAL(NS_CALLBACK(answer));
  1337. return 0;
  1338. }
  1339. #ifdef NS_KEY
  1340. #define KEY_HASH_LEN 8
  1341. #define KEY_HASH_NUM (1 << KEY_HASH_LEN)
  1342. #define KEY_HASH_MASK (KEY_HASH_NUM - 1)
  1343. DEFINE_LIST(key);
  1344. struct key {
  1345. NS_KEY key;
  1346. IDTYPE id;
  1347. LIST_TYPE(key) hlist;
  1348. };
  1349. DEFINE_LISTP(key);
  1350. static LISTP_TYPE(key) key_map [KEY_HASH_NUM];
  1351. int CONCAT2(NS, add_key) (NS_KEY * key, IDTYPE id)
  1352. {
  1353. LISTP_TYPE(key) * head = &key_map[KEY_HASH(key) & KEY_HASH_MASK];
  1354. struct key * k;
  1355. int ret = -EEXIST;
  1356. lock(range_map_lock);
  1357. listp_for_each_entry(k, head, hlist)
  1358. if (!KEY_COMP(&k->key, key))
  1359. goto out;
  1360. k = malloc(sizeof(struct key));
  1361. if (!k) {
  1362. ret = -ENOMEM;
  1363. goto out;
  1364. }
  1365. KEY_COPY(&k->key, key);
  1366. k->id = id;
  1367. INIT_LIST_HEAD(k, hlist);
  1368. listp_add(k, head, hlist);
  1369. debug("add key/id pair (%u, %u) to hash list: %p\n",
  1370. KEY_HASH(key), id, head);
  1371. ret = 0;
  1372. out:
  1373. unlock(range_map_lock);
  1374. return ret;
  1375. }
  1376. int CONCAT2(NS, get_key) (NS_KEY * key, bool delete)
  1377. {
  1378. LISTP_TYPE(key) * head = &key_map[KEY_HASH(key) & KEY_HASH_MASK];
  1379. struct key * k;
  1380. int id = -ENOENT;
  1381. lock(range_map_lock);
  1382. listp_for_each_entry(k, head, hlist)
  1383. if (!KEY_COMP(&k->key, key)) {
  1384. id = k->id;
  1385. if (delete) {
  1386. listp_del(k, head, hlist);
  1387. free(k);
  1388. }
  1389. break;
  1390. }
  1391. unlock(range_map_lock);
  1392. return id;
  1393. }
  1394. DEFINE_PROFILE_INTERVAL(NS_SEND(findkey), ipc);
  1395. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(findkey), ipc);
  1396. int NS_SEND(findkey) (NS_KEY * key)
  1397. {
  1398. BEGIN_PROFILE_INTERVAL();
  1399. int ret = 0;
  1400. ret = CONCAT2(NS, get_key) (key, false);
  1401. if (!ret)
  1402. goto out;
  1403. IDTYPE dest;
  1404. struct shim_ipc_port * port = NULL;
  1405. if ((ret = connect_ns(&dest, &port)) < 0)
  1406. goto out;
  1407. if (dest == cur_process.vmid) {
  1408. ret = -ENOENT;
  1409. goto out;
  1410. }
  1411. struct shim_ipc_msg_obj * msg = create_ipc_msg_duplex_on_stack(
  1412. NS_CODE(FINDKEY),
  1413. sizeof(NS_MSG_TYPE(findkey)),
  1414. dest);
  1415. NS_MSG_TYPE(findkey) * msgin = (void *) &msg->msg.msg;
  1416. KEY_COPY(&msgin->key, key);
  1417. debug("ipc send to %u: " NS_CODE_STR(FINDKEY) "(%u)\n",
  1418. dest, KEY_HASH(key));
  1419. ret = do_ipc_duplex(msg, port, NULL, NULL);
  1420. put_ipc_port(port);
  1421. if (!ret)
  1422. ret = CONCAT2(NS, get_key) (key, false);
  1423. out:
  1424. SAVE_PROFILE_INTERVAL(NS_SEND(findkey));
  1425. return ret;
  1426. }
  1427. int NS_CALLBACK(findkey) (IPC_CALLBACK_ARGS)
  1428. {
  1429. BEGIN_PROFILE_INTERVAL();
  1430. int ret = 0;
  1431. NS_MSG_TYPE(findkey) * msgin = (void *) &msg->msg;
  1432. debug("ipc callback from %u: " NS_CODE_STR(FINDKEY) "(%u)\n",
  1433. msg->src, KEY_HASH(&msgin->key));
  1434. ret = CONCAT2(NS, get_key)(&msgin->key, false);
  1435. if (ret < 0)
  1436. goto out;
  1437. ret = NS_SEND(tellkey)(port, msg->src, &msgin->key, ret, msg->seq);
  1438. out:
  1439. SAVE_PROFILE_INTERVAL(NS_CALLBACK(findkey));
  1440. return ret;
  1441. }
  1442. DEFINE_PROFILE_INTERVAL(NS_SEND(tellkey), ipc);
  1443. DEFINE_PROFILE_INTERVAL(NS_CALLBACK(tellkey), ipc);
  1444. int NS_SEND(tellkey) (struct shim_ipc_port * port, IDTYPE dest, NS_KEY * key,
  1445. IDTYPE id, unsigned long seq)
  1446. {
  1447. BEGIN_PROFILE_INTERVAL();
  1448. bool owned = true;
  1449. int ret = 0;
  1450. if (!dest) {
  1451. if ((ret = CONCAT2(NS, add_key)(key, id)) < 0)
  1452. goto out;
  1453. if ((ret = connect_ns(&dest, &port)) < 0)
  1454. goto out;
  1455. if (dest == cur_process.vmid)
  1456. goto out;
  1457. owned = false;
  1458. }
  1459. if (owned) {
  1460. struct shim_ipc_msg * msg = create_ipc_msg_on_stack(
  1461. NS_CODE(TELLKEY),
  1462. sizeof(NS_MSG_TYPE(tellkey)),
  1463. dest);
  1464. NS_MSG_TYPE(tellkey) * msgin = (void *) &msg->msg;
  1465. KEY_COPY(&msgin->key, key);
  1466. msgin->id = id;
  1467. msg->seq = seq;
  1468. debug("ipc send to %u: IPC_SYSV_TELLKEY(%u, %u)\n", dest,
  1469. KEY_HASH(key), id);
  1470. ret = send_ipc_message(msg, port);
  1471. goto out;
  1472. }
  1473. struct shim_ipc_msg_obj * msg = create_ipc_msg_duplex_on_stack(
  1474. NS_CODE(TELLKEY),
  1475. sizeof(NS_MSG_TYPE(tellkey)),
  1476. dest);
  1477. NS_MSG_TYPE(tellkey) * msgin = (void *) &msg->msg.msg;
  1478. KEY_COPY(&msgin->key, key);
  1479. msgin->id = id;
  1480. debug("ipc send to %u: IPC_SYSV_TELLKEY(%u, %u)\n", dest,
  1481. KEY_HASH(key), id);
  1482. ret = do_ipc_duplex(msg, port, NULL, NULL);
  1483. put_ipc_port(port);
  1484. out:
  1485. SAVE_PROFILE_INTERVAL(NS_SEND(tellkey));
  1486. return ret;
  1487. }
  1488. int NS_CALLBACK(tellkey) (IPC_CALLBACK_ARGS)
  1489. {
  1490. BEGIN_PROFILE_INTERVAL();
  1491. int ret = 0;
  1492. NS_MSG_TYPE(tellkey) * msgin = (void *) &msg->msg;
  1493. debug("ipc callback from %u: " NS_CODE_STR(TELLKEY) "(%u, %u)\n",
  1494. msg->src, KEY_HASH(&msgin->key), msgin->id);
  1495. ret = CONCAT2(NS, add_key)(&msgin->key, msgin->id);
  1496. struct shim_ipc_msg_obj * obj = find_ipc_msg_duplex(port, msg->seq);
  1497. if (!obj) {
  1498. ret = RESPONSE_CALLBACK;
  1499. goto out;
  1500. }
  1501. if (obj->thread)
  1502. thread_wakeup(obj->thread);
  1503. out:
  1504. SAVE_PROFILE_INTERVAL(ipc_sysv_tellkey_callback);
  1505. return ret;
  1506. }
  1507. #endif /* NS_KEY */