af_key.c 103 KB

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  1. /*
  2. * net/key/af_key.c An implementation of PF_KEYv2 sockets.
  3. *
  4. * This program is free software; you can redistribute it and/or
  5. * modify it under the terms of the GNU General Public License
  6. * as published by the Free Software Foundation; either version
  7. * 2 of the License, or (at your option) any later version.
  8. *
  9. * Authors: Maxim Giryaev <gem@asplinux.ru>
  10. * David S. Miller <davem@redhat.com>
  11. * Alexey Kuznetsov <kuznet@ms2.inr.ac.ru>
  12. * Kunihiro Ishiguro <kunihiro@ipinfusion.com>
  13. * Kazunori MIYAZAWA / USAGI Project <miyazawa@linux-ipv6.org>
  14. * Derek Atkins <derek@ihtfp.com>
  15. */
  16. #include <linux/capability.h>
  17. #include <linux/module.h>
  18. #include <linux/kernel.h>
  19. #include <linux/socket.h>
  20. #include <linux/pfkeyv2.h>
  21. #include <linux/ipsec.h>
  22. #include <linux/skbuff.h>
  23. #include <linux/rtnetlink.h>
  24. #include <linux/in.h>
  25. #include <linux/in6.h>
  26. #include <linux/proc_fs.h>
  27. #include <linux/init.h>
  28. #include <net/net_namespace.h>
  29. #include <net/xfrm.h>
  30. #include <net/sock.h>
  31. #define _X2KEY(x) ((x) == XFRM_INF ? 0 : (x))
  32. #define _KEY2X(x) ((x) == 0 ? XFRM_INF : (x))
  33. /* List of all pfkey sockets. */
  34. static HLIST_HEAD(pfkey_table);
  35. static DECLARE_WAIT_QUEUE_HEAD(pfkey_table_wait);
  36. static DEFINE_RWLOCK(pfkey_table_lock);
  37. static atomic_t pfkey_table_users = ATOMIC_INIT(0);
  38. static atomic_t pfkey_socks_nr = ATOMIC_INIT(0);
  39. struct pfkey_sock {
  40. /* struct sock must be the first member of struct pfkey_sock */
  41. struct sock sk;
  42. int registered;
  43. int promisc;
  44. struct {
  45. uint8_t msg_version;
  46. uint32_t msg_pid;
  47. int (*dump)(struct pfkey_sock *sk);
  48. void (*done)(struct pfkey_sock *sk);
  49. union {
  50. struct xfrm_policy_walk policy;
  51. struct xfrm_state_walk state;
  52. } u;
  53. } dump;
  54. };
  55. static inline struct pfkey_sock *pfkey_sk(struct sock *sk)
  56. {
  57. return (struct pfkey_sock *)sk;
  58. }
  59. static int pfkey_can_dump(struct sock *sk)
  60. {
  61. if (3 * atomic_read(&sk->sk_rmem_alloc) <= 2 * sk->sk_rcvbuf)
  62. return 1;
  63. return 0;
  64. }
  65. static int pfkey_do_dump(struct pfkey_sock *pfk)
  66. {
  67. int rc;
  68. rc = pfk->dump.dump(pfk);
  69. if (rc == -ENOBUFS)
  70. return 0;
  71. pfk->dump.done(pfk);
  72. pfk->dump.dump = NULL;
  73. pfk->dump.done = NULL;
  74. return rc;
  75. }
  76. static void pfkey_sock_destruct(struct sock *sk)
  77. {
  78. skb_queue_purge(&sk->sk_receive_queue);
  79. if (!sock_flag(sk, SOCK_DEAD)) {
  80. printk("Attempt to release alive pfkey socket: %p\n", sk);
  81. return;
  82. }
  83. BUG_TRAP(!atomic_read(&sk->sk_rmem_alloc));
  84. BUG_TRAP(!atomic_read(&sk->sk_wmem_alloc));
  85. atomic_dec(&pfkey_socks_nr);
  86. }
  87. static void pfkey_table_grab(void)
  88. {
  89. write_lock_bh(&pfkey_table_lock);
  90. if (atomic_read(&pfkey_table_users)) {
  91. DECLARE_WAITQUEUE(wait, current);
  92. add_wait_queue_exclusive(&pfkey_table_wait, &wait);
  93. for(;;) {
  94. set_current_state(TASK_UNINTERRUPTIBLE);
  95. if (atomic_read(&pfkey_table_users) == 0)
  96. break;
  97. write_unlock_bh(&pfkey_table_lock);
  98. schedule();
  99. write_lock_bh(&pfkey_table_lock);
  100. }
  101. __set_current_state(TASK_RUNNING);
  102. remove_wait_queue(&pfkey_table_wait, &wait);
  103. }
  104. }
  105. static __inline__ void pfkey_table_ungrab(void)
  106. {
  107. write_unlock_bh(&pfkey_table_lock);
  108. wake_up(&pfkey_table_wait);
  109. }
  110. static __inline__ void pfkey_lock_table(void)
  111. {
  112. /* read_lock() synchronizes us to pfkey_table_grab */
  113. read_lock(&pfkey_table_lock);
  114. atomic_inc(&pfkey_table_users);
  115. read_unlock(&pfkey_table_lock);
  116. }
  117. static __inline__ void pfkey_unlock_table(void)
  118. {
  119. if (atomic_dec_and_test(&pfkey_table_users))
  120. wake_up(&pfkey_table_wait);
  121. }
  122. static const struct proto_ops pfkey_ops;
  123. static void pfkey_insert(struct sock *sk)
  124. {
  125. pfkey_table_grab();
  126. sk_add_node(sk, &pfkey_table);
  127. pfkey_table_ungrab();
  128. }
  129. static void pfkey_remove(struct sock *sk)
  130. {
  131. pfkey_table_grab();
  132. sk_del_node_init(sk);
  133. pfkey_table_ungrab();
  134. }
  135. static struct proto key_proto = {
  136. .name = "KEY",
  137. .owner = THIS_MODULE,
  138. .obj_size = sizeof(struct pfkey_sock),
  139. };
  140. static int pfkey_create(struct net *net, struct socket *sock, int protocol)
  141. {
  142. struct sock *sk;
  143. int err;
  144. if (net != &init_net)
  145. return -EAFNOSUPPORT;
  146. if (!capable(CAP_NET_ADMIN))
  147. return -EPERM;
  148. if (sock->type != SOCK_RAW)
  149. return -ESOCKTNOSUPPORT;
  150. if (protocol != PF_KEY_V2)
  151. return -EPROTONOSUPPORT;
  152. err = -ENOMEM;
  153. sk = sk_alloc(net, PF_KEY, GFP_KERNEL, &key_proto);
  154. if (sk == NULL)
  155. goto out;
  156. sock->ops = &pfkey_ops;
  157. sock_init_data(sock, sk);
  158. sk->sk_family = PF_KEY;
  159. sk->sk_destruct = pfkey_sock_destruct;
  160. atomic_inc(&pfkey_socks_nr);
  161. pfkey_insert(sk);
  162. return 0;
  163. out:
  164. return err;
  165. }
  166. static int pfkey_release(struct socket *sock)
  167. {
  168. struct sock *sk = sock->sk;
  169. if (!sk)
  170. return 0;
  171. pfkey_remove(sk);
  172. sock_orphan(sk);
  173. sock->sk = NULL;
  174. skb_queue_purge(&sk->sk_write_queue);
  175. sock_put(sk);
  176. return 0;
  177. }
  178. static int pfkey_broadcast_one(struct sk_buff *skb, struct sk_buff **skb2,
  179. gfp_t allocation, struct sock *sk)
  180. {
  181. int err = -ENOBUFS;
  182. sock_hold(sk);
  183. if (*skb2 == NULL) {
  184. if (atomic_read(&skb->users) != 1) {
  185. *skb2 = skb_clone(skb, allocation);
  186. } else {
  187. *skb2 = skb;
  188. atomic_inc(&skb->users);
  189. }
  190. }
  191. if (*skb2 != NULL) {
  192. if (atomic_read(&sk->sk_rmem_alloc) <= sk->sk_rcvbuf) {
  193. skb_orphan(*skb2);
  194. skb_set_owner_r(*skb2, sk);
  195. skb_queue_tail(&sk->sk_receive_queue, *skb2);
  196. sk->sk_data_ready(sk, (*skb2)->len);
  197. *skb2 = NULL;
  198. err = 0;
  199. }
  200. }
  201. sock_put(sk);
  202. return err;
  203. }
  204. /* Send SKB to all pfkey sockets matching selected criteria. */
  205. #define BROADCAST_ALL 0
  206. #define BROADCAST_ONE 1
  207. #define BROADCAST_REGISTERED 2
  208. #define BROADCAST_PROMISC_ONLY 4
  209. static int pfkey_broadcast(struct sk_buff *skb, gfp_t allocation,
  210. int broadcast_flags, struct sock *one_sk)
  211. {
  212. struct sock *sk;
  213. struct hlist_node *node;
  214. struct sk_buff *skb2 = NULL;
  215. int err = -ESRCH;
  216. /* XXX Do we need something like netlink_overrun? I think
  217. * XXX PF_KEY socket apps will not mind current behavior.
  218. */
  219. if (!skb)
  220. return -ENOMEM;
  221. pfkey_lock_table();
  222. sk_for_each(sk, node, &pfkey_table) {
  223. struct pfkey_sock *pfk = pfkey_sk(sk);
  224. int err2;
  225. /* Yes, it means that if you are meant to receive this
  226. * pfkey message you receive it twice as promiscuous
  227. * socket.
  228. */
  229. if (pfk->promisc)
  230. pfkey_broadcast_one(skb, &skb2, allocation, sk);
  231. /* the exact target will be processed later */
  232. if (sk == one_sk)
  233. continue;
  234. if (broadcast_flags != BROADCAST_ALL) {
  235. if (broadcast_flags & BROADCAST_PROMISC_ONLY)
  236. continue;
  237. if ((broadcast_flags & BROADCAST_REGISTERED) &&
  238. !pfk->registered)
  239. continue;
  240. if (broadcast_flags & BROADCAST_ONE)
  241. continue;
  242. }
  243. err2 = pfkey_broadcast_one(skb, &skb2, allocation, sk);
  244. /* Error is cleare after succecful sending to at least one
  245. * registered KM */
  246. if ((broadcast_flags & BROADCAST_REGISTERED) && err)
  247. err = err2;
  248. }
  249. pfkey_unlock_table();
  250. if (one_sk != NULL)
  251. err = pfkey_broadcast_one(skb, &skb2, allocation, one_sk);
  252. if (skb2)
  253. kfree_skb(skb2);
  254. kfree_skb(skb);
  255. return err;
  256. }
  257. static inline void pfkey_hdr_dup(struct sadb_msg *new, struct sadb_msg *orig)
  258. {
  259. *new = *orig;
  260. }
  261. static int pfkey_error(struct sadb_msg *orig, int err, struct sock *sk)
  262. {
  263. struct sk_buff *skb = alloc_skb(sizeof(struct sadb_msg) + 16, GFP_KERNEL);
  264. struct sadb_msg *hdr;
  265. if (!skb)
  266. return -ENOBUFS;
  267. /* Woe be to the platform trying to support PFKEY yet
  268. * having normal errnos outside the 1-255 range, inclusive.
  269. */
  270. err = -err;
  271. if (err == ERESTARTSYS ||
  272. err == ERESTARTNOHAND ||
  273. err == ERESTARTNOINTR)
  274. err = EINTR;
  275. if (err >= 512)
  276. err = EINVAL;
  277. BUG_ON(err <= 0 || err >= 256);
  278. hdr = (struct sadb_msg *) skb_put(skb, sizeof(struct sadb_msg));
  279. pfkey_hdr_dup(hdr, orig);
  280. hdr->sadb_msg_errno = (uint8_t) err;
  281. hdr->sadb_msg_len = (sizeof(struct sadb_msg) /
  282. sizeof(uint64_t));
  283. pfkey_broadcast(skb, GFP_KERNEL, BROADCAST_ONE, sk);
  284. return 0;
  285. }
  286. static u8 sadb_ext_min_len[] = {
  287. [SADB_EXT_RESERVED] = (u8) 0,
  288. [SADB_EXT_SA] = (u8) sizeof(struct sadb_sa),
  289. [SADB_EXT_LIFETIME_CURRENT] = (u8) sizeof(struct sadb_lifetime),
  290. [SADB_EXT_LIFETIME_HARD] = (u8) sizeof(struct sadb_lifetime),
  291. [SADB_EXT_LIFETIME_SOFT] = (u8) sizeof(struct sadb_lifetime),
  292. [SADB_EXT_ADDRESS_SRC] = (u8) sizeof(struct sadb_address),
  293. [SADB_EXT_ADDRESS_DST] = (u8) sizeof(struct sadb_address),
  294. [SADB_EXT_ADDRESS_PROXY] = (u8) sizeof(struct sadb_address),
  295. [SADB_EXT_KEY_AUTH] = (u8) sizeof(struct sadb_key),
  296. [SADB_EXT_KEY_ENCRYPT] = (u8) sizeof(struct sadb_key),
  297. [SADB_EXT_IDENTITY_SRC] = (u8) sizeof(struct sadb_ident),
  298. [SADB_EXT_IDENTITY_DST] = (u8) sizeof(struct sadb_ident),
  299. [SADB_EXT_SENSITIVITY] = (u8) sizeof(struct sadb_sens),
  300. [SADB_EXT_PROPOSAL] = (u8) sizeof(struct sadb_prop),
  301. [SADB_EXT_SUPPORTED_AUTH] = (u8) sizeof(struct sadb_supported),
  302. [SADB_EXT_SUPPORTED_ENCRYPT] = (u8) sizeof(struct sadb_supported),
  303. [SADB_EXT_SPIRANGE] = (u8) sizeof(struct sadb_spirange),
  304. [SADB_X_EXT_KMPRIVATE] = (u8) sizeof(struct sadb_x_kmprivate),
  305. [SADB_X_EXT_POLICY] = (u8) sizeof(struct sadb_x_policy),
  306. [SADB_X_EXT_SA2] = (u8) sizeof(struct sadb_x_sa2),
  307. [SADB_X_EXT_NAT_T_TYPE] = (u8) sizeof(struct sadb_x_nat_t_type),
  308. [SADB_X_EXT_NAT_T_SPORT] = (u8) sizeof(struct sadb_x_nat_t_port),
  309. [SADB_X_EXT_NAT_T_DPORT] = (u8) sizeof(struct sadb_x_nat_t_port),
  310. [SADB_X_EXT_NAT_T_OA] = (u8) sizeof(struct sadb_address),
  311. [SADB_X_EXT_SEC_CTX] = (u8) sizeof(struct sadb_x_sec_ctx),
  312. };
  313. /* Verify sadb_address_{len,prefixlen} against sa_family. */
  314. static int verify_address_len(void *p)
  315. {
  316. struct sadb_address *sp = p;
  317. struct sockaddr *addr = (struct sockaddr *)(sp + 1);
  318. struct sockaddr_in *sin;
  319. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  320. struct sockaddr_in6 *sin6;
  321. #endif
  322. int len;
  323. switch (addr->sa_family) {
  324. case AF_INET:
  325. len = DIV_ROUND_UP(sizeof(*sp) + sizeof(*sin), sizeof(uint64_t));
  326. if (sp->sadb_address_len != len ||
  327. sp->sadb_address_prefixlen > 32)
  328. return -EINVAL;
  329. break;
  330. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  331. case AF_INET6:
  332. len = DIV_ROUND_UP(sizeof(*sp) + sizeof(*sin6), sizeof(uint64_t));
  333. if (sp->sadb_address_len != len ||
  334. sp->sadb_address_prefixlen > 128)
  335. return -EINVAL;
  336. break;
  337. #endif
  338. default:
  339. /* It is user using kernel to keep track of security
  340. * associations for another protocol, such as
  341. * OSPF/RSVP/RIPV2/MIP. It is user's job to verify
  342. * lengths.
  343. *
  344. * XXX Actually, association/policy database is not yet
  345. * XXX able to cope with arbitrary sockaddr families.
  346. * XXX When it can, remove this -EINVAL. -DaveM
  347. */
  348. return -EINVAL;
  349. break;
  350. }
  351. return 0;
  352. }
  353. static inline int pfkey_sec_ctx_len(struct sadb_x_sec_ctx *sec_ctx)
  354. {
  355. return DIV_ROUND_UP(sizeof(struct sadb_x_sec_ctx) +
  356. sec_ctx->sadb_x_ctx_len,
  357. sizeof(uint64_t));
  358. }
  359. static inline int verify_sec_ctx_len(void *p)
  360. {
  361. struct sadb_x_sec_ctx *sec_ctx = (struct sadb_x_sec_ctx *)p;
  362. int len = sec_ctx->sadb_x_ctx_len;
  363. if (len > PAGE_SIZE)
  364. return -EINVAL;
  365. len = pfkey_sec_ctx_len(sec_ctx);
  366. if (sec_ctx->sadb_x_sec_len != len)
  367. return -EINVAL;
  368. return 0;
  369. }
  370. static inline struct xfrm_user_sec_ctx *pfkey_sadb2xfrm_user_sec_ctx(struct sadb_x_sec_ctx *sec_ctx)
  371. {
  372. struct xfrm_user_sec_ctx *uctx = NULL;
  373. int ctx_size = sec_ctx->sadb_x_ctx_len;
  374. uctx = kmalloc((sizeof(*uctx)+ctx_size), GFP_KERNEL);
  375. if (!uctx)
  376. return NULL;
  377. uctx->len = pfkey_sec_ctx_len(sec_ctx);
  378. uctx->exttype = sec_ctx->sadb_x_sec_exttype;
  379. uctx->ctx_doi = sec_ctx->sadb_x_ctx_doi;
  380. uctx->ctx_alg = sec_ctx->sadb_x_ctx_alg;
  381. uctx->ctx_len = sec_ctx->sadb_x_ctx_len;
  382. memcpy(uctx + 1, sec_ctx + 1,
  383. uctx->ctx_len);
  384. return uctx;
  385. }
  386. static int present_and_same_family(struct sadb_address *src,
  387. struct sadb_address *dst)
  388. {
  389. struct sockaddr *s_addr, *d_addr;
  390. if (!src || !dst)
  391. return 0;
  392. s_addr = (struct sockaddr *)(src + 1);
  393. d_addr = (struct sockaddr *)(dst + 1);
  394. if (s_addr->sa_family != d_addr->sa_family)
  395. return 0;
  396. if (s_addr->sa_family != AF_INET
  397. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  398. && s_addr->sa_family != AF_INET6
  399. #endif
  400. )
  401. return 0;
  402. return 1;
  403. }
  404. static int parse_exthdrs(struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  405. {
  406. char *p = (char *) hdr;
  407. int len = skb->len;
  408. len -= sizeof(*hdr);
  409. p += sizeof(*hdr);
  410. while (len > 0) {
  411. struct sadb_ext *ehdr = (struct sadb_ext *) p;
  412. uint16_t ext_type;
  413. int ext_len;
  414. ext_len = ehdr->sadb_ext_len;
  415. ext_len *= sizeof(uint64_t);
  416. ext_type = ehdr->sadb_ext_type;
  417. if (ext_len < sizeof(uint64_t) ||
  418. ext_len > len ||
  419. ext_type == SADB_EXT_RESERVED)
  420. return -EINVAL;
  421. if (ext_type <= SADB_EXT_MAX) {
  422. int min = (int) sadb_ext_min_len[ext_type];
  423. if (ext_len < min)
  424. return -EINVAL;
  425. if (ext_hdrs[ext_type-1] != NULL)
  426. return -EINVAL;
  427. if (ext_type == SADB_EXT_ADDRESS_SRC ||
  428. ext_type == SADB_EXT_ADDRESS_DST ||
  429. ext_type == SADB_EXT_ADDRESS_PROXY ||
  430. ext_type == SADB_X_EXT_NAT_T_OA) {
  431. if (verify_address_len(p))
  432. return -EINVAL;
  433. }
  434. if (ext_type == SADB_X_EXT_SEC_CTX) {
  435. if (verify_sec_ctx_len(p))
  436. return -EINVAL;
  437. }
  438. ext_hdrs[ext_type-1] = p;
  439. }
  440. p += ext_len;
  441. len -= ext_len;
  442. }
  443. return 0;
  444. }
  445. static uint16_t
  446. pfkey_satype2proto(uint8_t satype)
  447. {
  448. switch (satype) {
  449. case SADB_SATYPE_UNSPEC:
  450. return IPSEC_PROTO_ANY;
  451. case SADB_SATYPE_AH:
  452. return IPPROTO_AH;
  453. case SADB_SATYPE_ESP:
  454. return IPPROTO_ESP;
  455. case SADB_X_SATYPE_IPCOMP:
  456. return IPPROTO_COMP;
  457. break;
  458. default:
  459. return 0;
  460. }
  461. /* NOTREACHED */
  462. }
  463. static uint8_t
  464. pfkey_proto2satype(uint16_t proto)
  465. {
  466. switch (proto) {
  467. case IPPROTO_AH:
  468. return SADB_SATYPE_AH;
  469. case IPPROTO_ESP:
  470. return SADB_SATYPE_ESP;
  471. case IPPROTO_COMP:
  472. return SADB_X_SATYPE_IPCOMP;
  473. break;
  474. default:
  475. return 0;
  476. }
  477. /* NOTREACHED */
  478. }
  479. /* BTW, this scheme means that there is no way with PFKEY2 sockets to
  480. * say specifically 'just raw sockets' as we encode them as 255.
  481. */
  482. static uint8_t pfkey_proto_to_xfrm(uint8_t proto)
  483. {
  484. return (proto == IPSEC_PROTO_ANY ? 0 : proto);
  485. }
  486. static uint8_t pfkey_proto_from_xfrm(uint8_t proto)
  487. {
  488. return (proto ? proto : IPSEC_PROTO_ANY);
  489. }
  490. static inline int pfkey_sockaddr_len(sa_family_t family)
  491. {
  492. switch (family) {
  493. case AF_INET:
  494. return sizeof(struct sockaddr_in);
  495. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  496. case AF_INET6:
  497. return sizeof(struct sockaddr_in6);
  498. #endif
  499. }
  500. return 0;
  501. }
  502. static int pfkey_sadb_addr2xfrm_addr(struct sadb_address *addr,
  503. xfrm_address_t *xaddr)
  504. {
  505. switch (((struct sockaddr*)(addr + 1))->sa_family) {
  506. case AF_INET:
  507. xaddr->a4 =
  508. ((struct sockaddr_in *)(addr + 1))->sin_addr.s_addr;
  509. return AF_INET;
  510. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  511. case AF_INET6:
  512. memcpy(xaddr->a6,
  513. &((struct sockaddr_in6 *)(addr + 1))->sin6_addr,
  514. sizeof(struct in6_addr));
  515. return AF_INET6;
  516. #endif
  517. default:
  518. return 0;
  519. }
  520. /* NOTREACHED */
  521. }
  522. static struct xfrm_state *pfkey_xfrm_state_lookup(struct sadb_msg *hdr, void **ext_hdrs)
  523. {
  524. struct sadb_sa *sa;
  525. struct sadb_address *addr;
  526. uint16_t proto;
  527. unsigned short family;
  528. xfrm_address_t *xaddr;
  529. sa = (struct sadb_sa *) ext_hdrs[SADB_EXT_SA-1];
  530. if (sa == NULL)
  531. return NULL;
  532. proto = pfkey_satype2proto(hdr->sadb_msg_satype);
  533. if (proto == 0)
  534. return NULL;
  535. /* sadb_address_len should be checked by caller */
  536. addr = (struct sadb_address *) ext_hdrs[SADB_EXT_ADDRESS_DST-1];
  537. if (addr == NULL)
  538. return NULL;
  539. family = ((struct sockaddr *)(addr + 1))->sa_family;
  540. switch (family) {
  541. case AF_INET:
  542. xaddr = (xfrm_address_t *)&((struct sockaddr_in *)(addr + 1))->sin_addr;
  543. break;
  544. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  545. case AF_INET6:
  546. xaddr = (xfrm_address_t *)&((struct sockaddr_in6 *)(addr + 1))->sin6_addr;
  547. break;
  548. #endif
  549. default:
  550. xaddr = NULL;
  551. }
  552. if (!xaddr)
  553. return NULL;
  554. return xfrm_state_lookup(xaddr, sa->sadb_sa_spi, proto, family);
  555. }
  556. #define PFKEY_ALIGN8(a) (1 + (((a) - 1) | (8 - 1)))
  557. static int
  558. pfkey_sockaddr_size(sa_family_t family)
  559. {
  560. return PFKEY_ALIGN8(pfkey_sockaddr_len(family));
  561. }
  562. static inline int pfkey_mode_from_xfrm(int mode)
  563. {
  564. switch(mode) {
  565. case XFRM_MODE_TRANSPORT:
  566. return IPSEC_MODE_TRANSPORT;
  567. case XFRM_MODE_TUNNEL:
  568. return IPSEC_MODE_TUNNEL;
  569. case XFRM_MODE_BEET:
  570. return IPSEC_MODE_BEET;
  571. default:
  572. return -1;
  573. }
  574. }
  575. static inline int pfkey_mode_to_xfrm(int mode)
  576. {
  577. switch(mode) {
  578. case IPSEC_MODE_ANY: /*XXX*/
  579. case IPSEC_MODE_TRANSPORT:
  580. return XFRM_MODE_TRANSPORT;
  581. case IPSEC_MODE_TUNNEL:
  582. return XFRM_MODE_TUNNEL;
  583. case IPSEC_MODE_BEET:
  584. return XFRM_MODE_BEET;
  585. default:
  586. return -1;
  587. }
  588. }
  589. static struct sk_buff *__pfkey_xfrm_state2msg(struct xfrm_state *x,
  590. int add_keys, int hsc)
  591. {
  592. struct sk_buff *skb;
  593. struct sadb_msg *hdr;
  594. struct sadb_sa *sa;
  595. struct sadb_lifetime *lifetime;
  596. struct sadb_address *addr;
  597. struct sadb_key *key;
  598. struct sadb_x_sa2 *sa2;
  599. struct sockaddr_in *sin;
  600. struct sadb_x_sec_ctx *sec_ctx;
  601. struct xfrm_sec_ctx *xfrm_ctx;
  602. int ctx_size = 0;
  603. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  604. struct sockaddr_in6 *sin6;
  605. #endif
  606. int size;
  607. int auth_key_size = 0;
  608. int encrypt_key_size = 0;
  609. int sockaddr_size;
  610. struct xfrm_encap_tmpl *natt = NULL;
  611. int mode;
  612. /* address family check */
  613. sockaddr_size = pfkey_sockaddr_size(x->props.family);
  614. if (!sockaddr_size)
  615. return ERR_PTR(-EINVAL);
  616. /* base, SA, (lifetime (HSC),) address(SD), (address(P),)
  617. key(AE), (identity(SD),) (sensitivity)> */
  618. size = sizeof(struct sadb_msg) +sizeof(struct sadb_sa) +
  619. sizeof(struct sadb_lifetime) +
  620. ((hsc & 1) ? sizeof(struct sadb_lifetime) : 0) +
  621. ((hsc & 2) ? sizeof(struct sadb_lifetime) : 0) +
  622. sizeof(struct sadb_address)*2 +
  623. sockaddr_size*2 +
  624. sizeof(struct sadb_x_sa2);
  625. if ((xfrm_ctx = x->security)) {
  626. ctx_size = PFKEY_ALIGN8(xfrm_ctx->ctx_len);
  627. size += sizeof(struct sadb_x_sec_ctx) + ctx_size;
  628. }
  629. /* identity & sensitivity */
  630. if ((x->props.family == AF_INET &&
  631. x->sel.saddr.a4 != x->props.saddr.a4)
  632. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  633. || (x->props.family == AF_INET6 &&
  634. memcmp (x->sel.saddr.a6, x->props.saddr.a6, sizeof (struct in6_addr)))
  635. #endif
  636. )
  637. size += sizeof(struct sadb_address) + sockaddr_size;
  638. if (add_keys) {
  639. if (x->aalg && x->aalg->alg_key_len) {
  640. auth_key_size =
  641. PFKEY_ALIGN8((x->aalg->alg_key_len + 7) / 8);
  642. size += sizeof(struct sadb_key) + auth_key_size;
  643. }
  644. if (x->ealg && x->ealg->alg_key_len) {
  645. encrypt_key_size =
  646. PFKEY_ALIGN8((x->ealg->alg_key_len+7) / 8);
  647. size += sizeof(struct sadb_key) + encrypt_key_size;
  648. }
  649. }
  650. if (x->encap)
  651. natt = x->encap;
  652. if (natt && natt->encap_type) {
  653. size += sizeof(struct sadb_x_nat_t_type);
  654. size += sizeof(struct sadb_x_nat_t_port);
  655. size += sizeof(struct sadb_x_nat_t_port);
  656. }
  657. skb = alloc_skb(size + 16, GFP_ATOMIC);
  658. if (skb == NULL)
  659. return ERR_PTR(-ENOBUFS);
  660. /* call should fill header later */
  661. hdr = (struct sadb_msg *) skb_put(skb, sizeof(struct sadb_msg));
  662. memset(hdr, 0, size); /* XXX do we need this ? */
  663. hdr->sadb_msg_len = size / sizeof(uint64_t);
  664. /* sa */
  665. sa = (struct sadb_sa *) skb_put(skb, sizeof(struct sadb_sa));
  666. sa->sadb_sa_len = sizeof(struct sadb_sa)/sizeof(uint64_t);
  667. sa->sadb_sa_exttype = SADB_EXT_SA;
  668. sa->sadb_sa_spi = x->id.spi;
  669. sa->sadb_sa_replay = x->props.replay_window;
  670. switch (x->km.state) {
  671. case XFRM_STATE_VALID:
  672. sa->sadb_sa_state = x->km.dying ?
  673. SADB_SASTATE_DYING : SADB_SASTATE_MATURE;
  674. break;
  675. case XFRM_STATE_ACQ:
  676. sa->sadb_sa_state = SADB_SASTATE_LARVAL;
  677. break;
  678. default:
  679. sa->sadb_sa_state = SADB_SASTATE_DEAD;
  680. break;
  681. }
  682. sa->sadb_sa_auth = 0;
  683. if (x->aalg) {
  684. struct xfrm_algo_desc *a = xfrm_aalg_get_byname(x->aalg->alg_name, 0);
  685. sa->sadb_sa_auth = a ? a->desc.sadb_alg_id : 0;
  686. }
  687. sa->sadb_sa_encrypt = 0;
  688. BUG_ON(x->ealg && x->calg);
  689. if (x->ealg) {
  690. struct xfrm_algo_desc *a = xfrm_ealg_get_byname(x->ealg->alg_name, 0);
  691. sa->sadb_sa_encrypt = a ? a->desc.sadb_alg_id : 0;
  692. }
  693. /* KAME compatible: sadb_sa_encrypt is overloaded with calg id */
  694. if (x->calg) {
  695. struct xfrm_algo_desc *a = xfrm_calg_get_byname(x->calg->alg_name, 0);
  696. sa->sadb_sa_encrypt = a ? a->desc.sadb_alg_id : 0;
  697. }
  698. sa->sadb_sa_flags = 0;
  699. if (x->props.flags & XFRM_STATE_NOECN)
  700. sa->sadb_sa_flags |= SADB_SAFLAGS_NOECN;
  701. if (x->props.flags & XFRM_STATE_DECAP_DSCP)
  702. sa->sadb_sa_flags |= SADB_SAFLAGS_DECAP_DSCP;
  703. if (x->props.flags & XFRM_STATE_NOPMTUDISC)
  704. sa->sadb_sa_flags |= SADB_SAFLAGS_NOPMTUDISC;
  705. /* hard time */
  706. if (hsc & 2) {
  707. lifetime = (struct sadb_lifetime *) skb_put(skb,
  708. sizeof(struct sadb_lifetime));
  709. lifetime->sadb_lifetime_len =
  710. sizeof(struct sadb_lifetime)/sizeof(uint64_t);
  711. lifetime->sadb_lifetime_exttype = SADB_EXT_LIFETIME_HARD;
  712. lifetime->sadb_lifetime_allocations = _X2KEY(x->lft.hard_packet_limit);
  713. lifetime->sadb_lifetime_bytes = _X2KEY(x->lft.hard_byte_limit);
  714. lifetime->sadb_lifetime_addtime = x->lft.hard_add_expires_seconds;
  715. lifetime->sadb_lifetime_usetime = x->lft.hard_use_expires_seconds;
  716. }
  717. /* soft time */
  718. if (hsc & 1) {
  719. lifetime = (struct sadb_lifetime *) skb_put(skb,
  720. sizeof(struct sadb_lifetime));
  721. lifetime->sadb_lifetime_len =
  722. sizeof(struct sadb_lifetime)/sizeof(uint64_t);
  723. lifetime->sadb_lifetime_exttype = SADB_EXT_LIFETIME_SOFT;
  724. lifetime->sadb_lifetime_allocations = _X2KEY(x->lft.soft_packet_limit);
  725. lifetime->sadb_lifetime_bytes = _X2KEY(x->lft.soft_byte_limit);
  726. lifetime->sadb_lifetime_addtime = x->lft.soft_add_expires_seconds;
  727. lifetime->sadb_lifetime_usetime = x->lft.soft_use_expires_seconds;
  728. }
  729. /* current time */
  730. lifetime = (struct sadb_lifetime *) skb_put(skb,
  731. sizeof(struct sadb_lifetime));
  732. lifetime->sadb_lifetime_len =
  733. sizeof(struct sadb_lifetime)/sizeof(uint64_t);
  734. lifetime->sadb_lifetime_exttype = SADB_EXT_LIFETIME_CURRENT;
  735. lifetime->sadb_lifetime_allocations = x->curlft.packets;
  736. lifetime->sadb_lifetime_bytes = x->curlft.bytes;
  737. lifetime->sadb_lifetime_addtime = x->curlft.add_time;
  738. lifetime->sadb_lifetime_usetime = x->curlft.use_time;
  739. /* src address */
  740. addr = (struct sadb_address*) skb_put(skb,
  741. sizeof(struct sadb_address)+sockaddr_size);
  742. addr->sadb_address_len =
  743. (sizeof(struct sadb_address)+sockaddr_size)/
  744. sizeof(uint64_t);
  745. addr->sadb_address_exttype = SADB_EXT_ADDRESS_SRC;
  746. /* "if the ports are non-zero, then the sadb_address_proto field,
  747. normally zero, MUST be filled in with the transport
  748. protocol's number." - RFC2367 */
  749. addr->sadb_address_proto = 0;
  750. addr->sadb_address_reserved = 0;
  751. if (x->props.family == AF_INET) {
  752. addr->sadb_address_prefixlen = 32;
  753. sin = (struct sockaddr_in *) (addr + 1);
  754. sin->sin_family = AF_INET;
  755. sin->sin_addr.s_addr = x->props.saddr.a4;
  756. sin->sin_port = 0;
  757. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  758. }
  759. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  760. else if (x->props.family == AF_INET6) {
  761. addr->sadb_address_prefixlen = 128;
  762. sin6 = (struct sockaddr_in6 *) (addr + 1);
  763. sin6->sin6_family = AF_INET6;
  764. sin6->sin6_port = 0;
  765. sin6->sin6_flowinfo = 0;
  766. memcpy(&sin6->sin6_addr, x->props.saddr.a6,
  767. sizeof(struct in6_addr));
  768. sin6->sin6_scope_id = 0;
  769. }
  770. #endif
  771. else
  772. BUG();
  773. /* dst address */
  774. addr = (struct sadb_address*) skb_put(skb,
  775. sizeof(struct sadb_address)+sockaddr_size);
  776. addr->sadb_address_len =
  777. (sizeof(struct sadb_address)+sockaddr_size)/
  778. sizeof(uint64_t);
  779. addr->sadb_address_exttype = SADB_EXT_ADDRESS_DST;
  780. addr->sadb_address_proto = 0;
  781. addr->sadb_address_prefixlen = 32; /* XXX */
  782. addr->sadb_address_reserved = 0;
  783. if (x->props.family == AF_INET) {
  784. sin = (struct sockaddr_in *) (addr + 1);
  785. sin->sin_family = AF_INET;
  786. sin->sin_addr.s_addr = x->id.daddr.a4;
  787. sin->sin_port = 0;
  788. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  789. if (x->sel.saddr.a4 != x->props.saddr.a4) {
  790. addr = (struct sadb_address*) skb_put(skb,
  791. sizeof(struct sadb_address)+sockaddr_size);
  792. addr->sadb_address_len =
  793. (sizeof(struct sadb_address)+sockaddr_size)/
  794. sizeof(uint64_t);
  795. addr->sadb_address_exttype = SADB_EXT_ADDRESS_PROXY;
  796. addr->sadb_address_proto =
  797. pfkey_proto_from_xfrm(x->sel.proto);
  798. addr->sadb_address_prefixlen = x->sel.prefixlen_s;
  799. addr->sadb_address_reserved = 0;
  800. sin = (struct sockaddr_in *) (addr + 1);
  801. sin->sin_family = AF_INET;
  802. sin->sin_addr.s_addr = x->sel.saddr.a4;
  803. sin->sin_port = x->sel.sport;
  804. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  805. }
  806. }
  807. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  808. else if (x->props.family == AF_INET6) {
  809. addr->sadb_address_prefixlen = 128;
  810. sin6 = (struct sockaddr_in6 *) (addr + 1);
  811. sin6->sin6_family = AF_INET6;
  812. sin6->sin6_port = 0;
  813. sin6->sin6_flowinfo = 0;
  814. memcpy(&sin6->sin6_addr, x->id.daddr.a6, sizeof(struct in6_addr));
  815. sin6->sin6_scope_id = 0;
  816. if (memcmp (x->sel.saddr.a6, x->props.saddr.a6,
  817. sizeof(struct in6_addr))) {
  818. addr = (struct sadb_address *) skb_put(skb,
  819. sizeof(struct sadb_address)+sockaddr_size);
  820. addr->sadb_address_len =
  821. (sizeof(struct sadb_address)+sockaddr_size)/
  822. sizeof(uint64_t);
  823. addr->sadb_address_exttype = SADB_EXT_ADDRESS_PROXY;
  824. addr->sadb_address_proto =
  825. pfkey_proto_from_xfrm(x->sel.proto);
  826. addr->sadb_address_prefixlen = x->sel.prefixlen_s;
  827. addr->sadb_address_reserved = 0;
  828. sin6 = (struct sockaddr_in6 *) (addr + 1);
  829. sin6->sin6_family = AF_INET6;
  830. sin6->sin6_port = x->sel.sport;
  831. sin6->sin6_flowinfo = 0;
  832. memcpy(&sin6->sin6_addr, x->sel.saddr.a6,
  833. sizeof(struct in6_addr));
  834. sin6->sin6_scope_id = 0;
  835. }
  836. }
  837. #endif
  838. else
  839. BUG();
  840. /* auth key */
  841. if (add_keys && auth_key_size) {
  842. key = (struct sadb_key *) skb_put(skb,
  843. sizeof(struct sadb_key)+auth_key_size);
  844. key->sadb_key_len = (sizeof(struct sadb_key) + auth_key_size) /
  845. sizeof(uint64_t);
  846. key->sadb_key_exttype = SADB_EXT_KEY_AUTH;
  847. key->sadb_key_bits = x->aalg->alg_key_len;
  848. key->sadb_key_reserved = 0;
  849. memcpy(key + 1, x->aalg->alg_key, (x->aalg->alg_key_len+7)/8);
  850. }
  851. /* encrypt key */
  852. if (add_keys && encrypt_key_size) {
  853. key = (struct sadb_key *) skb_put(skb,
  854. sizeof(struct sadb_key)+encrypt_key_size);
  855. key->sadb_key_len = (sizeof(struct sadb_key) +
  856. encrypt_key_size) / sizeof(uint64_t);
  857. key->sadb_key_exttype = SADB_EXT_KEY_ENCRYPT;
  858. key->sadb_key_bits = x->ealg->alg_key_len;
  859. key->sadb_key_reserved = 0;
  860. memcpy(key + 1, x->ealg->alg_key,
  861. (x->ealg->alg_key_len+7)/8);
  862. }
  863. /* sa */
  864. sa2 = (struct sadb_x_sa2 *) skb_put(skb, sizeof(struct sadb_x_sa2));
  865. sa2->sadb_x_sa2_len = sizeof(struct sadb_x_sa2)/sizeof(uint64_t);
  866. sa2->sadb_x_sa2_exttype = SADB_X_EXT_SA2;
  867. if ((mode = pfkey_mode_from_xfrm(x->props.mode)) < 0) {
  868. kfree_skb(skb);
  869. return ERR_PTR(-EINVAL);
  870. }
  871. sa2->sadb_x_sa2_mode = mode;
  872. sa2->sadb_x_sa2_reserved1 = 0;
  873. sa2->sadb_x_sa2_reserved2 = 0;
  874. sa2->sadb_x_sa2_sequence = 0;
  875. sa2->sadb_x_sa2_reqid = x->props.reqid;
  876. if (natt && natt->encap_type) {
  877. struct sadb_x_nat_t_type *n_type;
  878. struct sadb_x_nat_t_port *n_port;
  879. /* type */
  880. n_type = (struct sadb_x_nat_t_type*) skb_put(skb, sizeof(*n_type));
  881. n_type->sadb_x_nat_t_type_len = sizeof(*n_type)/sizeof(uint64_t);
  882. n_type->sadb_x_nat_t_type_exttype = SADB_X_EXT_NAT_T_TYPE;
  883. n_type->sadb_x_nat_t_type_type = natt->encap_type;
  884. n_type->sadb_x_nat_t_type_reserved[0] = 0;
  885. n_type->sadb_x_nat_t_type_reserved[1] = 0;
  886. n_type->sadb_x_nat_t_type_reserved[2] = 0;
  887. /* source port */
  888. n_port = (struct sadb_x_nat_t_port*) skb_put(skb, sizeof (*n_port));
  889. n_port->sadb_x_nat_t_port_len = sizeof(*n_port)/sizeof(uint64_t);
  890. n_port->sadb_x_nat_t_port_exttype = SADB_X_EXT_NAT_T_SPORT;
  891. n_port->sadb_x_nat_t_port_port = natt->encap_sport;
  892. n_port->sadb_x_nat_t_port_reserved = 0;
  893. /* dest port */
  894. n_port = (struct sadb_x_nat_t_port*) skb_put(skb, sizeof (*n_port));
  895. n_port->sadb_x_nat_t_port_len = sizeof(*n_port)/sizeof(uint64_t);
  896. n_port->sadb_x_nat_t_port_exttype = SADB_X_EXT_NAT_T_DPORT;
  897. n_port->sadb_x_nat_t_port_port = natt->encap_dport;
  898. n_port->sadb_x_nat_t_port_reserved = 0;
  899. }
  900. /* security context */
  901. if (xfrm_ctx) {
  902. sec_ctx = (struct sadb_x_sec_ctx *) skb_put(skb,
  903. sizeof(struct sadb_x_sec_ctx) + ctx_size);
  904. sec_ctx->sadb_x_sec_len =
  905. (sizeof(struct sadb_x_sec_ctx) + ctx_size) / sizeof(uint64_t);
  906. sec_ctx->sadb_x_sec_exttype = SADB_X_EXT_SEC_CTX;
  907. sec_ctx->sadb_x_ctx_doi = xfrm_ctx->ctx_doi;
  908. sec_ctx->sadb_x_ctx_alg = xfrm_ctx->ctx_alg;
  909. sec_ctx->sadb_x_ctx_len = xfrm_ctx->ctx_len;
  910. memcpy(sec_ctx + 1, xfrm_ctx->ctx_str,
  911. xfrm_ctx->ctx_len);
  912. }
  913. return skb;
  914. }
  915. static inline struct sk_buff *pfkey_xfrm_state2msg(struct xfrm_state *x)
  916. {
  917. struct sk_buff *skb;
  918. skb = __pfkey_xfrm_state2msg(x, 1, 3);
  919. return skb;
  920. }
  921. static inline struct sk_buff *pfkey_xfrm_state2msg_expire(struct xfrm_state *x,
  922. int hsc)
  923. {
  924. return __pfkey_xfrm_state2msg(x, 0, hsc);
  925. }
  926. static struct xfrm_state * pfkey_msg2xfrm_state(struct sadb_msg *hdr,
  927. void **ext_hdrs)
  928. {
  929. struct xfrm_state *x;
  930. struct sadb_lifetime *lifetime;
  931. struct sadb_sa *sa;
  932. struct sadb_key *key;
  933. struct sadb_x_sec_ctx *sec_ctx;
  934. uint16_t proto;
  935. int err;
  936. sa = (struct sadb_sa *) ext_hdrs[SADB_EXT_SA-1];
  937. if (!sa ||
  938. !present_and_same_family(ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  939. ext_hdrs[SADB_EXT_ADDRESS_DST-1]))
  940. return ERR_PTR(-EINVAL);
  941. if (hdr->sadb_msg_satype == SADB_SATYPE_ESP &&
  942. !ext_hdrs[SADB_EXT_KEY_ENCRYPT-1])
  943. return ERR_PTR(-EINVAL);
  944. if (hdr->sadb_msg_satype == SADB_SATYPE_AH &&
  945. !ext_hdrs[SADB_EXT_KEY_AUTH-1])
  946. return ERR_PTR(-EINVAL);
  947. if (!!ext_hdrs[SADB_EXT_LIFETIME_HARD-1] !=
  948. !!ext_hdrs[SADB_EXT_LIFETIME_SOFT-1])
  949. return ERR_PTR(-EINVAL);
  950. proto = pfkey_satype2proto(hdr->sadb_msg_satype);
  951. if (proto == 0)
  952. return ERR_PTR(-EINVAL);
  953. /* default error is no buffer space */
  954. err = -ENOBUFS;
  955. /* RFC2367:
  956. Only SADB_SASTATE_MATURE SAs may be submitted in an SADB_ADD message.
  957. SADB_SASTATE_LARVAL SAs are created by SADB_GETSPI and it is not
  958. sensible to add a new SA in the DYING or SADB_SASTATE_DEAD state.
  959. Therefore, the sadb_sa_state field of all submitted SAs MUST be
  960. SADB_SASTATE_MATURE and the kernel MUST return an error if this is
  961. not true.
  962. However, KAME setkey always uses SADB_SASTATE_LARVAL.
  963. Hence, we have to _ignore_ sadb_sa_state, which is also reasonable.
  964. */
  965. if (sa->sadb_sa_auth > SADB_AALG_MAX ||
  966. (hdr->sadb_msg_satype == SADB_X_SATYPE_IPCOMP &&
  967. sa->sadb_sa_encrypt > SADB_X_CALG_MAX) ||
  968. sa->sadb_sa_encrypt > SADB_EALG_MAX)
  969. return ERR_PTR(-EINVAL);
  970. key = (struct sadb_key*) ext_hdrs[SADB_EXT_KEY_AUTH-1];
  971. if (key != NULL &&
  972. sa->sadb_sa_auth != SADB_X_AALG_NULL &&
  973. ((key->sadb_key_bits+7) / 8 == 0 ||
  974. (key->sadb_key_bits+7) / 8 > key->sadb_key_len * sizeof(uint64_t)))
  975. return ERR_PTR(-EINVAL);
  976. key = ext_hdrs[SADB_EXT_KEY_ENCRYPT-1];
  977. if (key != NULL &&
  978. sa->sadb_sa_encrypt != SADB_EALG_NULL &&
  979. ((key->sadb_key_bits+7) / 8 == 0 ||
  980. (key->sadb_key_bits+7) / 8 > key->sadb_key_len * sizeof(uint64_t)))
  981. return ERR_PTR(-EINVAL);
  982. x = xfrm_state_alloc();
  983. if (x == NULL)
  984. return ERR_PTR(-ENOBUFS);
  985. x->id.proto = proto;
  986. x->id.spi = sa->sadb_sa_spi;
  987. x->props.replay_window = sa->sadb_sa_replay;
  988. if (sa->sadb_sa_flags & SADB_SAFLAGS_NOECN)
  989. x->props.flags |= XFRM_STATE_NOECN;
  990. if (sa->sadb_sa_flags & SADB_SAFLAGS_DECAP_DSCP)
  991. x->props.flags |= XFRM_STATE_DECAP_DSCP;
  992. if (sa->sadb_sa_flags & SADB_SAFLAGS_NOPMTUDISC)
  993. x->props.flags |= XFRM_STATE_NOPMTUDISC;
  994. lifetime = (struct sadb_lifetime*) ext_hdrs[SADB_EXT_LIFETIME_HARD-1];
  995. if (lifetime != NULL) {
  996. x->lft.hard_packet_limit = _KEY2X(lifetime->sadb_lifetime_allocations);
  997. x->lft.hard_byte_limit = _KEY2X(lifetime->sadb_lifetime_bytes);
  998. x->lft.hard_add_expires_seconds = lifetime->sadb_lifetime_addtime;
  999. x->lft.hard_use_expires_seconds = lifetime->sadb_lifetime_usetime;
  1000. }
  1001. lifetime = (struct sadb_lifetime*) ext_hdrs[SADB_EXT_LIFETIME_SOFT-1];
  1002. if (lifetime != NULL) {
  1003. x->lft.soft_packet_limit = _KEY2X(lifetime->sadb_lifetime_allocations);
  1004. x->lft.soft_byte_limit = _KEY2X(lifetime->sadb_lifetime_bytes);
  1005. x->lft.soft_add_expires_seconds = lifetime->sadb_lifetime_addtime;
  1006. x->lft.soft_use_expires_seconds = lifetime->sadb_lifetime_usetime;
  1007. }
  1008. sec_ctx = (struct sadb_x_sec_ctx *) ext_hdrs[SADB_X_EXT_SEC_CTX-1];
  1009. if (sec_ctx != NULL) {
  1010. struct xfrm_user_sec_ctx *uctx = pfkey_sadb2xfrm_user_sec_ctx(sec_ctx);
  1011. if (!uctx)
  1012. goto out;
  1013. err = security_xfrm_state_alloc(x, uctx);
  1014. kfree(uctx);
  1015. if (err)
  1016. goto out;
  1017. }
  1018. key = (struct sadb_key*) ext_hdrs[SADB_EXT_KEY_AUTH-1];
  1019. if (sa->sadb_sa_auth) {
  1020. int keysize = 0;
  1021. struct xfrm_algo_desc *a = xfrm_aalg_get_byid(sa->sadb_sa_auth);
  1022. if (!a) {
  1023. err = -ENOSYS;
  1024. goto out;
  1025. }
  1026. if (key)
  1027. keysize = (key->sadb_key_bits + 7) / 8;
  1028. x->aalg = kmalloc(sizeof(*x->aalg) + keysize, GFP_KERNEL);
  1029. if (!x->aalg)
  1030. goto out;
  1031. strcpy(x->aalg->alg_name, a->name);
  1032. x->aalg->alg_key_len = 0;
  1033. if (key) {
  1034. x->aalg->alg_key_len = key->sadb_key_bits;
  1035. memcpy(x->aalg->alg_key, key+1, keysize);
  1036. }
  1037. x->props.aalgo = sa->sadb_sa_auth;
  1038. /* x->algo.flags = sa->sadb_sa_flags; */
  1039. }
  1040. if (sa->sadb_sa_encrypt) {
  1041. if (hdr->sadb_msg_satype == SADB_X_SATYPE_IPCOMP) {
  1042. struct xfrm_algo_desc *a = xfrm_calg_get_byid(sa->sadb_sa_encrypt);
  1043. if (!a) {
  1044. err = -ENOSYS;
  1045. goto out;
  1046. }
  1047. x->calg = kmalloc(sizeof(*x->calg), GFP_KERNEL);
  1048. if (!x->calg)
  1049. goto out;
  1050. strcpy(x->calg->alg_name, a->name);
  1051. x->props.calgo = sa->sadb_sa_encrypt;
  1052. } else {
  1053. int keysize = 0;
  1054. struct xfrm_algo_desc *a = xfrm_ealg_get_byid(sa->sadb_sa_encrypt);
  1055. if (!a) {
  1056. err = -ENOSYS;
  1057. goto out;
  1058. }
  1059. key = (struct sadb_key*) ext_hdrs[SADB_EXT_KEY_ENCRYPT-1];
  1060. if (key)
  1061. keysize = (key->sadb_key_bits + 7) / 8;
  1062. x->ealg = kmalloc(sizeof(*x->ealg) + keysize, GFP_KERNEL);
  1063. if (!x->ealg)
  1064. goto out;
  1065. strcpy(x->ealg->alg_name, a->name);
  1066. x->ealg->alg_key_len = 0;
  1067. if (key) {
  1068. x->ealg->alg_key_len = key->sadb_key_bits;
  1069. memcpy(x->ealg->alg_key, key+1, keysize);
  1070. }
  1071. x->props.ealgo = sa->sadb_sa_encrypt;
  1072. }
  1073. }
  1074. /* x->algo.flags = sa->sadb_sa_flags; */
  1075. x->props.family = pfkey_sadb_addr2xfrm_addr((struct sadb_address *) ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  1076. &x->props.saddr);
  1077. if (!x->props.family) {
  1078. err = -EAFNOSUPPORT;
  1079. goto out;
  1080. }
  1081. pfkey_sadb_addr2xfrm_addr((struct sadb_address *) ext_hdrs[SADB_EXT_ADDRESS_DST-1],
  1082. &x->id.daddr);
  1083. if (ext_hdrs[SADB_X_EXT_SA2-1]) {
  1084. struct sadb_x_sa2 *sa2 = (void*)ext_hdrs[SADB_X_EXT_SA2-1];
  1085. int mode = pfkey_mode_to_xfrm(sa2->sadb_x_sa2_mode);
  1086. if (mode < 0) {
  1087. err = -EINVAL;
  1088. goto out;
  1089. }
  1090. x->props.mode = mode;
  1091. x->props.reqid = sa2->sadb_x_sa2_reqid;
  1092. }
  1093. if (ext_hdrs[SADB_EXT_ADDRESS_PROXY-1]) {
  1094. struct sadb_address *addr = ext_hdrs[SADB_EXT_ADDRESS_PROXY-1];
  1095. /* Nobody uses this, but we try. */
  1096. x->sel.family = pfkey_sadb_addr2xfrm_addr(addr, &x->sel.saddr);
  1097. x->sel.prefixlen_s = addr->sadb_address_prefixlen;
  1098. }
  1099. if (!x->sel.family)
  1100. x->sel.family = x->props.family;
  1101. if (ext_hdrs[SADB_X_EXT_NAT_T_TYPE-1]) {
  1102. struct sadb_x_nat_t_type* n_type;
  1103. struct xfrm_encap_tmpl *natt;
  1104. x->encap = kmalloc(sizeof(*x->encap), GFP_KERNEL);
  1105. if (!x->encap)
  1106. goto out;
  1107. natt = x->encap;
  1108. n_type = ext_hdrs[SADB_X_EXT_NAT_T_TYPE-1];
  1109. natt->encap_type = n_type->sadb_x_nat_t_type_type;
  1110. if (ext_hdrs[SADB_X_EXT_NAT_T_SPORT-1]) {
  1111. struct sadb_x_nat_t_port* n_port =
  1112. ext_hdrs[SADB_X_EXT_NAT_T_SPORT-1];
  1113. natt->encap_sport = n_port->sadb_x_nat_t_port_port;
  1114. }
  1115. if (ext_hdrs[SADB_X_EXT_NAT_T_DPORT-1]) {
  1116. struct sadb_x_nat_t_port* n_port =
  1117. ext_hdrs[SADB_X_EXT_NAT_T_DPORT-1];
  1118. natt->encap_dport = n_port->sadb_x_nat_t_port_port;
  1119. }
  1120. }
  1121. err = xfrm_init_state(x);
  1122. if (err)
  1123. goto out;
  1124. x->km.seq = hdr->sadb_msg_seq;
  1125. return x;
  1126. out:
  1127. x->km.state = XFRM_STATE_DEAD;
  1128. xfrm_state_put(x);
  1129. return ERR_PTR(err);
  1130. }
  1131. static int pfkey_reserved(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1132. {
  1133. return -EOPNOTSUPP;
  1134. }
  1135. static int pfkey_getspi(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1136. {
  1137. struct sk_buff *resp_skb;
  1138. struct sadb_x_sa2 *sa2;
  1139. struct sadb_address *saddr, *daddr;
  1140. struct sadb_msg *out_hdr;
  1141. struct sadb_spirange *range;
  1142. struct xfrm_state *x = NULL;
  1143. int mode;
  1144. int err;
  1145. u32 min_spi, max_spi;
  1146. u32 reqid;
  1147. u8 proto;
  1148. unsigned short family;
  1149. xfrm_address_t *xsaddr = NULL, *xdaddr = NULL;
  1150. if (!present_and_same_family(ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  1151. ext_hdrs[SADB_EXT_ADDRESS_DST-1]))
  1152. return -EINVAL;
  1153. proto = pfkey_satype2proto(hdr->sadb_msg_satype);
  1154. if (proto == 0)
  1155. return -EINVAL;
  1156. if ((sa2 = ext_hdrs[SADB_X_EXT_SA2-1]) != NULL) {
  1157. mode = pfkey_mode_to_xfrm(sa2->sadb_x_sa2_mode);
  1158. if (mode < 0)
  1159. return -EINVAL;
  1160. reqid = sa2->sadb_x_sa2_reqid;
  1161. } else {
  1162. mode = 0;
  1163. reqid = 0;
  1164. }
  1165. saddr = ext_hdrs[SADB_EXT_ADDRESS_SRC-1];
  1166. daddr = ext_hdrs[SADB_EXT_ADDRESS_DST-1];
  1167. family = ((struct sockaddr *)(saddr + 1))->sa_family;
  1168. switch (family) {
  1169. case AF_INET:
  1170. xdaddr = (xfrm_address_t *)&((struct sockaddr_in *)(daddr + 1))->sin_addr.s_addr;
  1171. xsaddr = (xfrm_address_t *)&((struct sockaddr_in *)(saddr + 1))->sin_addr.s_addr;
  1172. break;
  1173. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  1174. case AF_INET6:
  1175. xdaddr = (xfrm_address_t *)&((struct sockaddr_in6 *)(daddr + 1))->sin6_addr;
  1176. xsaddr = (xfrm_address_t *)&((struct sockaddr_in6 *)(saddr + 1))->sin6_addr;
  1177. break;
  1178. #endif
  1179. }
  1180. if (hdr->sadb_msg_seq) {
  1181. x = xfrm_find_acq_byseq(hdr->sadb_msg_seq);
  1182. if (x && xfrm_addr_cmp(&x->id.daddr, xdaddr, family)) {
  1183. xfrm_state_put(x);
  1184. x = NULL;
  1185. }
  1186. }
  1187. if (!x)
  1188. x = xfrm_find_acq(mode, reqid, proto, xdaddr, xsaddr, 1, family);
  1189. if (x == NULL)
  1190. return -ENOENT;
  1191. min_spi = 0x100;
  1192. max_spi = 0x0fffffff;
  1193. range = ext_hdrs[SADB_EXT_SPIRANGE-1];
  1194. if (range) {
  1195. min_spi = range->sadb_spirange_min;
  1196. max_spi = range->sadb_spirange_max;
  1197. }
  1198. err = xfrm_alloc_spi(x, min_spi, max_spi);
  1199. resp_skb = err ? ERR_PTR(err) : pfkey_xfrm_state2msg(x);
  1200. if (IS_ERR(resp_skb)) {
  1201. xfrm_state_put(x);
  1202. return PTR_ERR(resp_skb);
  1203. }
  1204. out_hdr = (struct sadb_msg *) resp_skb->data;
  1205. out_hdr->sadb_msg_version = hdr->sadb_msg_version;
  1206. out_hdr->sadb_msg_type = SADB_GETSPI;
  1207. out_hdr->sadb_msg_satype = pfkey_proto2satype(proto);
  1208. out_hdr->sadb_msg_errno = 0;
  1209. out_hdr->sadb_msg_reserved = 0;
  1210. out_hdr->sadb_msg_seq = hdr->sadb_msg_seq;
  1211. out_hdr->sadb_msg_pid = hdr->sadb_msg_pid;
  1212. xfrm_state_put(x);
  1213. pfkey_broadcast(resp_skb, GFP_KERNEL, BROADCAST_ONE, sk);
  1214. return 0;
  1215. }
  1216. static int pfkey_acquire(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1217. {
  1218. struct xfrm_state *x;
  1219. if (hdr->sadb_msg_len != sizeof(struct sadb_msg)/8)
  1220. return -EOPNOTSUPP;
  1221. if (hdr->sadb_msg_seq == 0 || hdr->sadb_msg_errno == 0)
  1222. return 0;
  1223. x = xfrm_find_acq_byseq(hdr->sadb_msg_seq);
  1224. if (x == NULL)
  1225. return 0;
  1226. spin_lock_bh(&x->lock);
  1227. if (x->km.state == XFRM_STATE_ACQ) {
  1228. x->km.state = XFRM_STATE_ERROR;
  1229. wake_up(&km_waitq);
  1230. }
  1231. spin_unlock_bh(&x->lock);
  1232. xfrm_state_put(x);
  1233. return 0;
  1234. }
  1235. static inline int event2poltype(int event)
  1236. {
  1237. switch (event) {
  1238. case XFRM_MSG_DELPOLICY:
  1239. return SADB_X_SPDDELETE;
  1240. case XFRM_MSG_NEWPOLICY:
  1241. return SADB_X_SPDADD;
  1242. case XFRM_MSG_UPDPOLICY:
  1243. return SADB_X_SPDUPDATE;
  1244. case XFRM_MSG_POLEXPIRE:
  1245. // return SADB_X_SPDEXPIRE;
  1246. default:
  1247. printk("pfkey: Unknown policy event %d\n", event);
  1248. break;
  1249. }
  1250. return 0;
  1251. }
  1252. static inline int event2keytype(int event)
  1253. {
  1254. switch (event) {
  1255. case XFRM_MSG_DELSA:
  1256. return SADB_DELETE;
  1257. case XFRM_MSG_NEWSA:
  1258. return SADB_ADD;
  1259. case XFRM_MSG_UPDSA:
  1260. return SADB_UPDATE;
  1261. case XFRM_MSG_EXPIRE:
  1262. return SADB_EXPIRE;
  1263. default:
  1264. printk("pfkey: Unknown SA event %d\n", event);
  1265. break;
  1266. }
  1267. return 0;
  1268. }
  1269. /* ADD/UPD/DEL */
  1270. static int key_notify_sa(struct xfrm_state *x, struct km_event *c)
  1271. {
  1272. struct sk_buff *skb;
  1273. struct sadb_msg *hdr;
  1274. skb = pfkey_xfrm_state2msg(x);
  1275. if (IS_ERR(skb))
  1276. return PTR_ERR(skb);
  1277. hdr = (struct sadb_msg *) skb->data;
  1278. hdr->sadb_msg_version = PF_KEY_V2;
  1279. hdr->sadb_msg_type = event2keytype(c->event);
  1280. hdr->sadb_msg_satype = pfkey_proto2satype(x->id.proto);
  1281. hdr->sadb_msg_errno = 0;
  1282. hdr->sadb_msg_reserved = 0;
  1283. hdr->sadb_msg_seq = c->seq;
  1284. hdr->sadb_msg_pid = c->pid;
  1285. pfkey_broadcast(skb, GFP_ATOMIC, BROADCAST_ALL, NULL);
  1286. return 0;
  1287. }
  1288. static int pfkey_add(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1289. {
  1290. struct xfrm_state *x;
  1291. int err;
  1292. struct km_event c;
  1293. x = pfkey_msg2xfrm_state(hdr, ext_hdrs);
  1294. if (IS_ERR(x))
  1295. return PTR_ERR(x);
  1296. xfrm_state_hold(x);
  1297. if (hdr->sadb_msg_type == SADB_ADD)
  1298. err = xfrm_state_add(x);
  1299. else
  1300. err = xfrm_state_update(x);
  1301. xfrm_audit_state_add(x, err ? 0 : 1,
  1302. audit_get_loginuid(current),
  1303. audit_get_sessionid(current), 0);
  1304. if (err < 0) {
  1305. x->km.state = XFRM_STATE_DEAD;
  1306. __xfrm_state_put(x);
  1307. goto out;
  1308. }
  1309. if (hdr->sadb_msg_type == SADB_ADD)
  1310. c.event = XFRM_MSG_NEWSA;
  1311. else
  1312. c.event = XFRM_MSG_UPDSA;
  1313. c.seq = hdr->sadb_msg_seq;
  1314. c.pid = hdr->sadb_msg_pid;
  1315. km_state_notify(x, &c);
  1316. out:
  1317. xfrm_state_put(x);
  1318. return err;
  1319. }
  1320. static int pfkey_delete(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1321. {
  1322. struct xfrm_state *x;
  1323. struct km_event c;
  1324. int err;
  1325. if (!ext_hdrs[SADB_EXT_SA-1] ||
  1326. !present_and_same_family(ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  1327. ext_hdrs[SADB_EXT_ADDRESS_DST-1]))
  1328. return -EINVAL;
  1329. x = pfkey_xfrm_state_lookup(hdr, ext_hdrs);
  1330. if (x == NULL)
  1331. return -ESRCH;
  1332. if ((err = security_xfrm_state_delete(x)))
  1333. goto out;
  1334. if (xfrm_state_kern(x)) {
  1335. err = -EPERM;
  1336. goto out;
  1337. }
  1338. err = xfrm_state_delete(x);
  1339. if (err < 0)
  1340. goto out;
  1341. c.seq = hdr->sadb_msg_seq;
  1342. c.pid = hdr->sadb_msg_pid;
  1343. c.event = XFRM_MSG_DELSA;
  1344. km_state_notify(x, &c);
  1345. out:
  1346. xfrm_audit_state_delete(x, err ? 0 : 1,
  1347. audit_get_loginuid(current),
  1348. audit_get_sessionid(current), 0);
  1349. xfrm_state_put(x);
  1350. return err;
  1351. }
  1352. static int pfkey_get(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1353. {
  1354. __u8 proto;
  1355. struct sk_buff *out_skb;
  1356. struct sadb_msg *out_hdr;
  1357. struct xfrm_state *x;
  1358. if (!ext_hdrs[SADB_EXT_SA-1] ||
  1359. !present_and_same_family(ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  1360. ext_hdrs[SADB_EXT_ADDRESS_DST-1]))
  1361. return -EINVAL;
  1362. x = pfkey_xfrm_state_lookup(hdr, ext_hdrs);
  1363. if (x == NULL)
  1364. return -ESRCH;
  1365. out_skb = pfkey_xfrm_state2msg(x);
  1366. proto = x->id.proto;
  1367. xfrm_state_put(x);
  1368. if (IS_ERR(out_skb))
  1369. return PTR_ERR(out_skb);
  1370. out_hdr = (struct sadb_msg *) out_skb->data;
  1371. out_hdr->sadb_msg_version = hdr->sadb_msg_version;
  1372. out_hdr->sadb_msg_type = SADB_GET;
  1373. out_hdr->sadb_msg_satype = pfkey_proto2satype(proto);
  1374. out_hdr->sadb_msg_errno = 0;
  1375. out_hdr->sadb_msg_reserved = 0;
  1376. out_hdr->sadb_msg_seq = hdr->sadb_msg_seq;
  1377. out_hdr->sadb_msg_pid = hdr->sadb_msg_pid;
  1378. pfkey_broadcast(out_skb, GFP_ATOMIC, BROADCAST_ONE, sk);
  1379. return 0;
  1380. }
  1381. static struct sk_buff *compose_sadb_supported(struct sadb_msg *orig,
  1382. gfp_t allocation)
  1383. {
  1384. struct sk_buff *skb;
  1385. struct sadb_msg *hdr;
  1386. int len, auth_len, enc_len, i;
  1387. auth_len = xfrm_count_auth_supported();
  1388. if (auth_len) {
  1389. auth_len *= sizeof(struct sadb_alg);
  1390. auth_len += sizeof(struct sadb_supported);
  1391. }
  1392. enc_len = xfrm_count_enc_supported();
  1393. if (enc_len) {
  1394. enc_len *= sizeof(struct sadb_alg);
  1395. enc_len += sizeof(struct sadb_supported);
  1396. }
  1397. len = enc_len + auth_len + sizeof(struct sadb_msg);
  1398. skb = alloc_skb(len + 16, allocation);
  1399. if (!skb)
  1400. goto out_put_algs;
  1401. hdr = (struct sadb_msg *) skb_put(skb, sizeof(*hdr));
  1402. pfkey_hdr_dup(hdr, orig);
  1403. hdr->sadb_msg_errno = 0;
  1404. hdr->sadb_msg_len = len / sizeof(uint64_t);
  1405. if (auth_len) {
  1406. struct sadb_supported *sp;
  1407. struct sadb_alg *ap;
  1408. sp = (struct sadb_supported *) skb_put(skb, auth_len);
  1409. ap = (struct sadb_alg *) (sp + 1);
  1410. sp->sadb_supported_len = auth_len / sizeof(uint64_t);
  1411. sp->sadb_supported_exttype = SADB_EXT_SUPPORTED_AUTH;
  1412. for (i = 0; ; i++) {
  1413. struct xfrm_algo_desc *aalg = xfrm_aalg_get_byidx(i);
  1414. if (!aalg)
  1415. break;
  1416. if (aalg->available)
  1417. *ap++ = aalg->desc;
  1418. }
  1419. }
  1420. if (enc_len) {
  1421. struct sadb_supported *sp;
  1422. struct sadb_alg *ap;
  1423. sp = (struct sadb_supported *) skb_put(skb, enc_len);
  1424. ap = (struct sadb_alg *) (sp + 1);
  1425. sp->sadb_supported_len = enc_len / sizeof(uint64_t);
  1426. sp->sadb_supported_exttype = SADB_EXT_SUPPORTED_ENCRYPT;
  1427. for (i = 0; ; i++) {
  1428. struct xfrm_algo_desc *ealg = xfrm_ealg_get_byidx(i);
  1429. if (!ealg)
  1430. break;
  1431. if (ealg->available)
  1432. *ap++ = ealg->desc;
  1433. }
  1434. }
  1435. out_put_algs:
  1436. return skb;
  1437. }
  1438. static int pfkey_register(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1439. {
  1440. struct pfkey_sock *pfk = pfkey_sk(sk);
  1441. struct sk_buff *supp_skb;
  1442. if (hdr->sadb_msg_satype > SADB_SATYPE_MAX)
  1443. return -EINVAL;
  1444. if (hdr->sadb_msg_satype != SADB_SATYPE_UNSPEC) {
  1445. if (pfk->registered&(1<<hdr->sadb_msg_satype))
  1446. return -EEXIST;
  1447. pfk->registered |= (1<<hdr->sadb_msg_satype);
  1448. }
  1449. xfrm_probe_algs();
  1450. supp_skb = compose_sadb_supported(hdr, GFP_KERNEL);
  1451. if (!supp_skb) {
  1452. if (hdr->sadb_msg_satype != SADB_SATYPE_UNSPEC)
  1453. pfk->registered &= ~(1<<hdr->sadb_msg_satype);
  1454. return -ENOBUFS;
  1455. }
  1456. pfkey_broadcast(supp_skb, GFP_KERNEL, BROADCAST_REGISTERED, sk);
  1457. return 0;
  1458. }
  1459. static int key_notify_sa_flush(struct km_event *c)
  1460. {
  1461. struct sk_buff *skb;
  1462. struct sadb_msg *hdr;
  1463. skb = alloc_skb(sizeof(struct sadb_msg) + 16, GFP_ATOMIC);
  1464. if (!skb)
  1465. return -ENOBUFS;
  1466. hdr = (struct sadb_msg *) skb_put(skb, sizeof(struct sadb_msg));
  1467. hdr->sadb_msg_satype = pfkey_proto2satype(c->data.proto);
  1468. hdr->sadb_msg_type = SADB_FLUSH;
  1469. hdr->sadb_msg_seq = c->seq;
  1470. hdr->sadb_msg_pid = c->pid;
  1471. hdr->sadb_msg_version = PF_KEY_V2;
  1472. hdr->sadb_msg_errno = (uint8_t) 0;
  1473. hdr->sadb_msg_len = (sizeof(struct sadb_msg) / sizeof(uint64_t));
  1474. pfkey_broadcast(skb, GFP_ATOMIC, BROADCAST_ALL, NULL);
  1475. return 0;
  1476. }
  1477. static int pfkey_flush(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1478. {
  1479. unsigned proto;
  1480. struct km_event c;
  1481. struct xfrm_audit audit_info;
  1482. int err;
  1483. proto = pfkey_satype2proto(hdr->sadb_msg_satype);
  1484. if (proto == 0)
  1485. return -EINVAL;
  1486. audit_info.loginuid = audit_get_loginuid(current);
  1487. audit_info.sessionid = audit_get_sessionid(current);
  1488. audit_info.secid = 0;
  1489. err = xfrm_state_flush(proto, &audit_info);
  1490. if (err)
  1491. return err;
  1492. c.data.proto = proto;
  1493. c.seq = hdr->sadb_msg_seq;
  1494. c.pid = hdr->sadb_msg_pid;
  1495. c.event = XFRM_MSG_FLUSHSA;
  1496. km_state_notify(NULL, &c);
  1497. return 0;
  1498. }
  1499. static int dump_sa(struct xfrm_state *x, int count, void *ptr)
  1500. {
  1501. struct pfkey_sock *pfk = ptr;
  1502. struct sk_buff *out_skb;
  1503. struct sadb_msg *out_hdr;
  1504. if (!pfkey_can_dump(&pfk->sk))
  1505. return -ENOBUFS;
  1506. out_skb = pfkey_xfrm_state2msg(x);
  1507. if (IS_ERR(out_skb))
  1508. return PTR_ERR(out_skb);
  1509. out_hdr = (struct sadb_msg *) out_skb->data;
  1510. out_hdr->sadb_msg_version = pfk->dump.msg_version;
  1511. out_hdr->sadb_msg_type = SADB_DUMP;
  1512. out_hdr->sadb_msg_satype = pfkey_proto2satype(x->id.proto);
  1513. out_hdr->sadb_msg_errno = 0;
  1514. out_hdr->sadb_msg_reserved = 0;
  1515. out_hdr->sadb_msg_seq = count;
  1516. out_hdr->sadb_msg_pid = pfk->dump.msg_pid;
  1517. pfkey_broadcast(out_skb, GFP_ATOMIC, BROADCAST_ONE, &pfk->sk);
  1518. return 0;
  1519. }
  1520. static int pfkey_dump_sa(struct pfkey_sock *pfk)
  1521. {
  1522. return xfrm_state_walk(&pfk->dump.u.state, dump_sa, (void *) pfk);
  1523. }
  1524. static void pfkey_dump_sa_done(struct pfkey_sock *pfk)
  1525. {
  1526. xfrm_state_walk_done(&pfk->dump.u.state);
  1527. }
  1528. static int pfkey_dump(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1529. {
  1530. u8 proto;
  1531. struct pfkey_sock *pfk = pfkey_sk(sk);
  1532. if (pfk->dump.dump != NULL)
  1533. return -EBUSY;
  1534. proto = pfkey_satype2proto(hdr->sadb_msg_satype);
  1535. if (proto == 0)
  1536. return -EINVAL;
  1537. pfk->dump.msg_version = hdr->sadb_msg_version;
  1538. pfk->dump.msg_pid = hdr->sadb_msg_pid;
  1539. pfk->dump.dump = pfkey_dump_sa;
  1540. pfk->dump.done = pfkey_dump_sa_done;
  1541. xfrm_state_walk_init(&pfk->dump.u.state, proto);
  1542. return pfkey_do_dump(pfk);
  1543. }
  1544. static int pfkey_promisc(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1545. {
  1546. struct pfkey_sock *pfk = pfkey_sk(sk);
  1547. int satype = hdr->sadb_msg_satype;
  1548. if (hdr->sadb_msg_len == (sizeof(*hdr) / sizeof(uint64_t))) {
  1549. /* XXX we mangle packet... */
  1550. hdr->sadb_msg_errno = 0;
  1551. if (satype != 0 && satype != 1)
  1552. return -EINVAL;
  1553. pfk->promisc = satype;
  1554. }
  1555. pfkey_broadcast(skb_clone(skb, GFP_KERNEL), GFP_KERNEL, BROADCAST_ALL, NULL);
  1556. return 0;
  1557. }
  1558. static int check_reqid(struct xfrm_policy *xp, int dir, int count, void *ptr)
  1559. {
  1560. int i;
  1561. u32 reqid = *(u32*)ptr;
  1562. for (i=0; i<xp->xfrm_nr; i++) {
  1563. if (xp->xfrm_vec[i].reqid == reqid)
  1564. return -EEXIST;
  1565. }
  1566. return 0;
  1567. }
  1568. static u32 gen_reqid(void)
  1569. {
  1570. struct xfrm_policy_walk walk;
  1571. u32 start;
  1572. int rc;
  1573. static u32 reqid = IPSEC_MANUAL_REQID_MAX;
  1574. start = reqid;
  1575. do {
  1576. ++reqid;
  1577. if (reqid == 0)
  1578. reqid = IPSEC_MANUAL_REQID_MAX+1;
  1579. xfrm_policy_walk_init(&walk, XFRM_POLICY_TYPE_MAIN);
  1580. rc = xfrm_policy_walk(&walk, check_reqid, (void*)&reqid);
  1581. xfrm_policy_walk_done(&walk);
  1582. if (rc != -EEXIST)
  1583. return reqid;
  1584. } while (reqid != start);
  1585. return 0;
  1586. }
  1587. static int
  1588. parse_ipsecrequest(struct xfrm_policy *xp, struct sadb_x_ipsecrequest *rq)
  1589. {
  1590. struct xfrm_tmpl *t = xp->xfrm_vec + xp->xfrm_nr;
  1591. struct sockaddr_in *sin;
  1592. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  1593. struct sockaddr_in6 *sin6;
  1594. #endif
  1595. int mode;
  1596. if (xp->xfrm_nr >= XFRM_MAX_DEPTH)
  1597. return -ELOOP;
  1598. if (rq->sadb_x_ipsecrequest_mode == 0)
  1599. return -EINVAL;
  1600. t->id.proto = rq->sadb_x_ipsecrequest_proto; /* XXX check proto */
  1601. if ((mode = pfkey_mode_to_xfrm(rq->sadb_x_ipsecrequest_mode)) < 0)
  1602. return -EINVAL;
  1603. t->mode = mode;
  1604. if (rq->sadb_x_ipsecrequest_level == IPSEC_LEVEL_USE)
  1605. t->optional = 1;
  1606. else if (rq->sadb_x_ipsecrequest_level == IPSEC_LEVEL_UNIQUE) {
  1607. t->reqid = rq->sadb_x_ipsecrequest_reqid;
  1608. if (t->reqid > IPSEC_MANUAL_REQID_MAX)
  1609. t->reqid = 0;
  1610. if (!t->reqid && !(t->reqid = gen_reqid()))
  1611. return -ENOBUFS;
  1612. }
  1613. /* addresses present only in tunnel mode */
  1614. if (t->mode == XFRM_MODE_TUNNEL) {
  1615. struct sockaddr *sa;
  1616. sa = (struct sockaddr *)(rq+1);
  1617. switch(sa->sa_family) {
  1618. case AF_INET:
  1619. sin = (struct sockaddr_in*)sa;
  1620. t->saddr.a4 = sin->sin_addr.s_addr;
  1621. sin++;
  1622. if (sin->sin_family != AF_INET)
  1623. return -EINVAL;
  1624. t->id.daddr.a4 = sin->sin_addr.s_addr;
  1625. break;
  1626. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  1627. case AF_INET6:
  1628. sin6 = (struct sockaddr_in6*)sa;
  1629. memcpy(t->saddr.a6, &sin6->sin6_addr, sizeof(struct in6_addr));
  1630. sin6++;
  1631. if (sin6->sin6_family != AF_INET6)
  1632. return -EINVAL;
  1633. memcpy(t->id.daddr.a6, &sin6->sin6_addr, sizeof(struct in6_addr));
  1634. break;
  1635. #endif
  1636. default:
  1637. return -EINVAL;
  1638. }
  1639. t->encap_family = sa->sa_family;
  1640. } else
  1641. t->encap_family = xp->family;
  1642. /* No way to set this via kame pfkey */
  1643. t->allalgs = 1;
  1644. xp->xfrm_nr++;
  1645. return 0;
  1646. }
  1647. static int
  1648. parse_ipsecrequests(struct xfrm_policy *xp, struct sadb_x_policy *pol)
  1649. {
  1650. int err;
  1651. int len = pol->sadb_x_policy_len*8 - sizeof(struct sadb_x_policy);
  1652. struct sadb_x_ipsecrequest *rq = (void*)(pol+1);
  1653. while (len >= sizeof(struct sadb_x_ipsecrequest)) {
  1654. if ((err = parse_ipsecrequest(xp, rq)) < 0)
  1655. return err;
  1656. len -= rq->sadb_x_ipsecrequest_len;
  1657. rq = (void*)((u8*)rq + rq->sadb_x_ipsecrequest_len);
  1658. }
  1659. return 0;
  1660. }
  1661. static inline int pfkey_xfrm_policy2sec_ctx_size(struct xfrm_policy *xp)
  1662. {
  1663. struct xfrm_sec_ctx *xfrm_ctx = xp->security;
  1664. if (xfrm_ctx) {
  1665. int len = sizeof(struct sadb_x_sec_ctx);
  1666. len += xfrm_ctx->ctx_len;
  1667. return PFKEY_ALIGN8(len);
  1668. }
  1669. return 0;
  1670. }
  1671. static int pfkey_xfrm_policy2msg_size(struct xfrm_policy *xp)
  1672. {
  1673. struct xfrm_tmpl *t;
  1674. int sockaddr_size = pfkey_sockaddr_size(xp->family);
  1675. int socklen = 0;
  1676. int i;
  1677. for (i=0; i<xp->xfrm_nr; i++) {
  1678. t = xp->xfrm_vec + i;
  1679. socklen += pfkey_sockaddr_len(t->encap_family);
  1680. }
  1681. return sizeof(struct sadb_msg) +
  1682. (sizeof(struct sadb_lifetime) * 3) +
  1683. (sizeof(struct sadb_address) * 2) +
  1684. (sockaddr_size * 2) +
  1685. sizeof(struct sadb_x_policy) +
  1686. (xp->xfrm_nr * sizeof(struct sadb_x_ipsecrequest)) +
  1687. (socklen * 2) +
  1688. pfkey_xfrm_policy2sec_ctx_size(xp);
  1689. }
  1690. static struct sk_buff * pfkey_xfrm_policy2msg_prep(struct xfrm_policy *xp)
  1691. {
  1692. struct sk_buff *skb;
  1693. int size;
  1694. size = pfkey_xfrm_policy2msg_size(xp);
  1695. skb = alloc_skb(size + 16, GFP_ATOMIC);
  1696. if (skb == NULL)
  1697. return ERR_PTR(-ENOBUFS);
  1698. return skb;
  1699. }
  1700. static int pfkey_xfrm_policy2msg(struct sk_buff *skb, struct xfrm_policy *xp, int dir)
  1701. {
  1702. struct sadb_msg *hdr;
  1703. struct sadb_address *addr;
  1704. struct sadb_lifetime *lifetime;
  1705. struct sadb_x_policy *pol;
  1706. struct sockaddr_in *sin;
  1707. struct sadb_x_sec_ctx *sec_ctx;
  1708. struct xfrm_sec_ctx *xfrm_ctx;
  1709. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  1710. struct sockaddr_in6 *sin6;
  1711. #endif
  1712. int i;
  1713. int size;
  1714. int sockaddr_size = pfkey_sockaddr_size(xp->family);
  1715. int socklen = pfkey_sockaddr_len(xp->family);
  1716. size = pfkey_xfrm_policy2msg_size(xp);
  1717. /* call should fill header later */
  1718. hdr = (struct sadb_msg *) skb_put(skb, sizeof(struct sadb_msg));
  1719. memset(hdr, 0, size); /* XXX do we need this ? */
  1720. /* src address */
  1721. addr = (struct sadb_address*) skb_put(skb,
  1722. sizeof(struct sadb_address)+sockaddr_size);
  1723. addr->sadb_address_len =
  1724. (sizeof(struct sadb_address)+sockaddr_size)/
  1725. sizeof(uint64_t);
  1726. addr->sadb_address_exttype = SADB_EXT_ADDRESS_SRC;
  1727. addr->sadb_address_proto = pfkey_proto_from_xfrm(xp->selector.proto);
  1728. addr->sadb_address_prefixlen = xp->selector.prefixlen_s;
  1729. addr->sadb_address_reserved = 0;
  1730. /* src address */
  1731. if (xp->family == AF_INET) {
  1732. sin = (struct sockaddr_in *) (addr + 1);
  1733. sin->sin_family = AF_INET;
  1734. sin->sin_addr.s_addr = xp->selector.saddr.a4;
  1735. sin->sin_port = xp->selector.sport;
  1736. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  1737. }
  1738. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  1739. else if (xp->family == AF_INET6) {
  1740. sin6 = (struct sockaddr_in6 *) (addr + 1);
  1741. sin6->sin6_family = AF_INET6;
  1742. sin6->sin6_port = xp->selector.sport;
  1743. sin6->sin6_flowinfo = 0;
  1744. memcpy(&sin6->sin6_addr, xp->selector.saddr.a6,
  1745. sizeof(struct in6_addr));
  1746. sin6->sin6_scope_id = 0;
  1747. }
  1748. #endif
  1749. else
  1750. BUG();
  1751. /* dst address */
  1752. addr = (struct sadb_address*) skb_put(skb,
  1753. sizeof(struct sadb_address)+sockaddr_size);
  1754. addr->sadb_address_len =
  1755. (sizeof(struct sadb_address)+sockaddr_size)/
  1756. sizeof(uint64_t);
  1757. addr->sadb_address_exttype = SADB_EXT_ADDRESS_DST;
  1758. addr->sadb_address_proto = pfkey_proto_from_xfrm(xp->selector.proto);
  1759. addr->sadb_address_prefixlen = xp->selector.prefixlen_d;
  1760. addr->sadb_address_reserved = 0;
  1761. if (xp->family == AF_INET) {
  1762. sin = (struct sockaddr_in *) (addr + 1);
  1763. sin->sin_family = AF_INET;
  1764. sin->sin_addr.s_addr = xp->selector.daddr.a4;
  1765. sin->sin_port = xp->selector.dport;
  1766. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  1767. }
  1768. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  1769. else if (xp->family == AF_INET6) {
  1770. sin6 = (struct sockaddr_in6 *) (addr + 1);
  1771. sin6->sin6_family = AF_INET6;
  1772. sin6->sin6_port = xp->selector.dport;
  1773. sin6->sin6_flowinfo = 0;
  1774. memcpy(&sin6->sin6_addr, xp->selector.daddr.a6,
  1775. sizeof(struct in6_addr));
  1776. sin6->sin6_scope_id = 0;
  1777. }
  1778. #endif
  1779. else
  1780. BUG();
  1781. /* hard time */
  1782. lifetime = (struct sadb_lifetime *) skb_put(skb,
  1783. sizeof(struct sadb_lifetime));
  1784. lifetime->sadb_lifetime_len =
  1785. sizeof(struct sadb_lifetime)/sizeof(uint64_t);
  1786. lifetime->sadb_lifetime_exttype = SADB_EXT_LIFETIME_HARD;
  1787. lifetime->sadb_lifetime_allocations = _X2KEY(xp->lft.hard_packet_limit);
  1788. lifetime->sadb_lifetime_bytes = _X2KEY(xp->lft.hard_byte_limit);
  1789. lifetime->sadb_lifetime_addtime = xp->lft.hard_add_expires_seconds;
  1790. lifetime->sadb_lifetime_usetime = xp->lft.hard_use_expires_seconds;
  1791. /* soft time */
  1792. lifetime = (struct sadb_lifetime *) skb_put(skb,
  1793. sizeof(struct sadb_lifetime));
  1794. lifetime->sadb_lifetime_len =
  1795. sizeof(struct sadb_lifetime)/sizeof(uint64_t);
  1796. lifetime->sadb_lifetime_exttype = SADB_EXT_LIFETIME_SOFT;
  1797. lifetime->sadb_lifetime_allocations = _X2KEY(xp->lft.soft_packet_limit);
  1798. lifetime->sadb_lifetime_bytes = _X2KEY(xp->lft.soft_byte_limit);
  1799. lifetime->sadb_lifetime_addtime = xp->lft.soft_add_expires_seconds;
  1800. lifetime->sadb_lifetime_usetime = xp->lft.soft_use_expires_seconds;
  1801. /* current time */
  1802. lifetime = (struct sadb_lifetime *) skb_put(skb,
  1803. sizeof(struct sadb_lifetime));
  1804. lifetime->sadb_lifetime_len =
  1805. sizeof(struct sadb_lifetime)/sizeof(uint64_t);
  1806. lifetime->sadb_lifetime_exttype = SADB_EXT_LIFETIME_CURRENT;
  1807. lifetime->sadb_lifetime_allocations = xp->curlft.packets;
  1808. lifetime->sadb_lifetime_bytes = xp->curlft.bytes;
  1809. lifetime->sadb_lifetime_addtime = xp->curlft.add_time;
  1810. lifetime->sadb_lifetime_usetime = xp->curlft.use_time;
  1811. pol = (struct sadb_x_policy *) skb_put(skb, sizeof(struct sadb_x_policy));
  1812. pol->sadb_x_policy_len = sizeof(struct sadb_x_policy)/sizeof(uint64_t);
  1813. pol->sadb_x_policy_exttype = SADB_X_EXT_POLICY;
  1814. pol->sadb_x_policy_type = IPSEC_POLICY_DISCARD;
  1815. if (xp->action == XFRM_POLICY_ALLOW) {
  1816. if (xp->xfrm_nr)
  1817. pol->sadb_x_policy_type = IPSEC_POLICY_IPSEC;
  1818. else
  1819. pol->sadb_x_policy_type = IPSEC_POLICY_NONE;
  1820. }
  1821. pol->sadb_x_policy_dir = dir+1;
  1822. pol->sadb_x_policy_id = xp->index;
  1823. pol->sadb_x_policy_priority = xp->priority;
  1824. for (i=0; i<xp->xfrm_nr; i++) {
  1825. struct sadb_x_ipsecrequest *rq;
  1826. struct xfrm_tmpl *t = xp->xfrm_vec + i;
  1827. int req_size;
  1828. int mode;
  1829. req_size = sizeof(struct sadb_x_ipsecrequest);
  1830. if (t->mode == XFRM_MODE_TUNNEL)
  1831. req_size += pfkey_sockaddr_len(t->encap_family) * 2;
  1832. else
  1833. size -= 2*socklen;
  1834. rq = (void*)skb_put(skb, req_size);
  1835. pol->sadb_x_policy_len += req_size/8;
  1836. memset(rq, 0, sizeof(*rq));
  1837. rq->sadb_x_ipsecrequest_len = req_size;
  1838. rq->sadb_x_ipsecrequest_proto = t->id.proto;
  1839. if ((mode = pfkey_mode_from_xfrm(t->mode)) < 0)
  1840. return -EINVAL;
  1841. rq->sadb_x_ipsecrequest_mode = mode;
  1842. rq->sadb_x_ipsecrequest_level = IPSEC_LEVEL_REQUIRE;
  1843. if (t->reqid)
  1844. rq->sadb_x_ipsecrequest_level = IPSEC_LEVEL_UNIQUE;
  1845. if (t->optional)
  1846. rq->sadb_x_ipsecrequest_level = IPSEC_LEVEL_USE;
  1847. rq->sadb_x_ipsecrequest_reqid = t->reqid;
  1848. if (t->mode == XFRM_MODE_TUNNEL) {
  1849. switch (t->encap_family) {
  1850. case AF_INET:
  1851. sin = (void*)(rq+1);
  1852. sin->sin_family = AF_INET;
  1853. sin->sin_addr.s_addr = t->saddr.a4;
  1854. sin->sin_port = 0;
  1855. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  1856. sin++;
  1857. sin->sin_family = AF_INET;
  1858. sin->sin_addr.s_addr = t->id.daddr.a4;
  1859. sin->sin_port = 0;
  1860. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  1861. break;
  1862. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  1863. case AF_INET6:
  1864. sin6 = (void*)(rq+1);
  1865. sin6->sin6_family = AF_INET6;
  1866. sin6->sin6_port = 0;
  1867. sin6->sin6_flowinfo = 0;
  1868. memcpy(&sin6->sin6_addr, t->saddr.a6,
  1869. sizeof(struct in6_addr));
  1870. sin6->sin6_scope_id = 0;
  1871. sin6++;
  1872. sin6->sin6_family = AF_INET6;
  1873. sin6->sin6_port = 0;
  1874. sin6->sin6_flowinfo = 0;
  1875. memcpy(&sin6->sin6_addr, t->id.daddr.a6,
  1876. sizeof(struct in6_addr));
  1877. sin6->sin6_scope_id = 0;
  1878. break;
  1879. #endif
  1880. default:
  1881. break;
  1882. }
  1883. }
  1884. }
  1885. /* security context */
  1886. if ((xfrm_ctx = xp->security)) {
  1887. int ctx_size = pfkey_xfrm_policy2sec_ctx_size(xp);
  1888. sec_ctx = (struct sadb_x_sec_ctx *) skb_put(skb, ctx_size);
  1889. sec_ctx->sadb_x_sec_len = ctx_size / sizeof(uint64_t);
  1890. sec_ctx->sadb_x_sec_exttype = SADB_X_EXT_SEC_CTX;
  1891. sec_ctx->sadb_x_ctx_doi = xfrm_ctx->ctx_doi;
  1892. sec_ctx->sadb_x_ctx_alg = xfrm_ctx->ctx_alg;
  1893. sec_ctx->sadb_x_ctx_len = xfrm_ctx->ctx_len;
  1894. memcpy(sec_ctx + 1, xfrm_ctx->ctx_str,
  1895. xfrm_ctx->ctx_len);
  1896. }
  1897. hdr->sadb_msg_len = size / sizeof(uint64_t);
  1898. hdr->sadb_msg_reserved = atomic_read(&xp->refcnt);
  1899. return 0;
  1900. }
  1901. static int key_notify_policy(struct xfrm_policy *xp, int dir, struct km_event *c)
  1902. {
  1903. struct sk_buff *out_skb;
  1904. struct sadb_msg *out_hdr;
  1905. int err;
  1906. out_skb = pfkey_xfrm_policy2msg_prep(xp);
  1907. if (IS_ERR(out_skb)) {
  1908. err = PTR_ERR(out_skb);
  1909. goto out;
  1910. }
  1911. err = pfkey_xfrm_policy2msg(out_skb, xp, dir);
  1912. if (err < 0)
  1913. return err;
  1914. out_hdr = (struct sadb_msg *) out_skb->data;
  1915. out_hdr->sadb_msg_version = PF_KEY_V2;
  1916. if (c->data.byid && c->event == XFRM_MSG_DELPOLICY)
  1917. out_hdr->sadb_msg_type = SADB_X_SPDDELETE2;
  1918. else
  1919. out_hdr->sadb_msg_type = event2poltype(c->event);
  1920. out_hdr->sadb_msg_errno = 0;
  1921. out_hdr->sadb_msg_seq = c->seq;
  1922. out_hdr->sadb_msg_pid = c->pid;
  1923. pfkey_broadcast(out_skb, GFP_ATOMIC, BROADCAST_ALL, NULL);
  1924. out:
  1925. return 0;
  1926. }
  1927. static int pfkey_spdadd(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  1928. {
  1929. int err = 0;
  1930. struct sadb_lifetime *lifetime;
  1931. struct sadb_address *sa;
  1932. struct sadb_x_policy *pol;
  1933. struct xfrm_policy *xp;
  1934. struct km_event c;
  1935. struct sadb_x_sec_ctx *sec_ctx;
  1936. if (!present_and_same_family(ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  1937. ext_hdrs[SADB_EXT_ADDRESS_DST-1]) ||
  1938. !ext_hdrs[SADB_X_EXT_POLICY-1])
  1939. return -EINVAL;
  1940. pol = ext_hdrs[SADB_X_EXT_POLICY-1];
  1941. if (pol->sadb_x_policy_type > IPSEC_POLICY_IPSEC)
  1942. return -EINVAL;
  1943. if (!pol->sadb_x_policy_dir || pol->sadb_x_policy_dir >= IPSEC_DIR_MAX)
  1944. return -EINVAL;
  1945. xp = xfrm_policy_alloc(GFP_KERNEL);
  1946. if (xp == NULL)
  1947. return -ENOBUFS;
  1948. xp->action = (pol->sadb_x_policy_type == IPSEC_POLICY_DISCARD ?
  1949. XFRM_POLICY_BLOCK : XFRM_POLICY_ALLOW);
  1950. xp->priority = pol->sadb_x_policy_priority;
  1951. sa = ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  1952. xp->family = pfkey_sadb_addr2xfrm_addr(sa, &xp->selector.saddr);
  1953. if (!xp->family) {
  1954. err = -EINVAL;
  1955. goto out;
  1956. }
  1957. xp->selector.family = xp->family;
  1958. xp->selector.prefixlen_s = sa->sadb_address_prefixlen;
  1959. xp->selector.proto = pfkey_proto_to_xfrm(sa->sadb_address_proto);
  1960. xp->selector.sport = ((struct sockaddr_in *)(sa+1))->sin_port;
  1961. if (xp->selector.sport)
  1962. xp->selector.sport_mask = htons(0xffff);
  1963. sa = ext_hdrs[SADB_EXT_ADDRESS_DST-1],
  1964. pfkey_sadb_addr2xfrm_addr(sa, &xp->selector.daddr);
  1965. xp->selector.prefixlen_d = sa->sadb_address_prefixlen;
  1966. /* Amusing, we set this twice. KAME apps appear to set same value
  1967. * in both addresses.
  1968. */
  1969. xp->selector.proto = pfkey_proto_to_xfrm(sa->sadb_address_proto);
  1970. xp->selector.dport = ((struct sockaddr_in *)(sa+1))->sin_port;
  1971. if (xp->selector.dport)
  1972. xp->selector.dport_mask = htons(0xffff);
  1973. sec_ctx = (struct sadb_x_sec_ctx *) ext_hdrs[SADB_X_EXT_SEC_CTX-1];
  1974. if (sec_ctx != NULL) {
  1975. struct xfrm_user_sec_ctx *uctx = pfkey_sadb2xfrm_user_sec_ctx(sec_ctx);
  1976. if (!uctx) {
  1977. err = -ENOBUFS;
  1978. goto out;
  1979. }
  1980. err = security_xfrm_policy_alloc(&xp->security, uctx);
  1981. kfree(uctx);
  1982. if (err)
  1983. goto out;
  1984. }
  1985. xp->lft.soft_byte_limit = XFRM_INF;
  1986. xp->lft.hard_byte_limit = XFRM_INF;
  1987. xp->lft.soft_packet_limit = XFRM_INF;
  1988. xp->lft.hard_packet_limit = XFRM_INF;
  1989. if ((lifetime = ext_hdrs[SADB_EXT_LIFETIME_HARD-1]) != NULL) {
  1990. xp->lft.hard_packet_limit = _KEY2X(lifetime->sadb_lifetime_allocations);
  1991. xp->lft.hard_byte_limit = _KEY2X(lifetime->sadb_lifetime_bytes);
  1992. xp->lft.hard_add_expires_seconds = lifetime->sadb_lifetime_addtime;
  1993. xp->lft.hard_use_expires_seconds = lifetime->sadb_lifetime_usetime;
  1994. }
  1995. if ((lifetime = ext_hdrs[SADB_EXT_LIFETIME_SOFT-1]) != NULL) {
  1996. xp->lft.soft_packet_limit = _KEY2X(lifetime->sadb_lifetime_allocations);
  1997. xp->lft.soft_byte_limit = _KEY2X(lifetime->sadb_lifetime_bytes);
  1998. xp->lft.soft_add_expires_seconds = lifetime->sadb_lifetime_addtime;
  1999. xp->lft.soft_use_expires_seconds = lifetime->sadb_lifetime_usetime;
  2000. }
  2001. xp->xfrm_nr = 0;
  2002. if (pol->sadb_x_policy_type == IPSEC_POLICY_IPSEC &&
  2003. (err = parse_ipsecrequests(xp, pol)) < 0)
  2004. goto out;
  2005. err = xfrm_policy_insert(pol->sadb_x_policy_dir-1, xp,
  2006. hdr->sadb_msg_type != SADB_X_SPDUPDATE);
  2007. xfrm_audit_policy_add(xp, err ? 0 : 1,
  2008. audit_get_loginuid(current),
  2009. audit_get_sessionid(current), 0);
  2010. if (err)
  2011. goto out;
  2012. if (hdr->sadb_msg_type == SADB_X_SPDUPDATE)
  2013. c.event = XFRM_MSG_UPDPOLICY;
  2014. else
  2015. c.event = XFRM_MSG_NEWPOLICY;
  2016. c.seq = hdr->sadb_msg_seq;
  2017. c.pid = hdr->sadb_msg_pid;
  2018. km_policy_notify(xp, pol->sadb_x_policy_dir-1, &c);
  2019. xfrm_pol_put(xp);
  2020. return 0;
  2021. out:
  2022. xp->dead = 1;
  2023. xfrm_policy_destroy(xp);
  2024. return err;
  2025. }
  2026. static int pfkey_spddelete(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  2027. {
  2028. int err;
  2029. struct sadb_address *sa;
  2030. struct sadb_x_policy *pol;
  2031. struct xfrm_policy *xp;
  2032. struct xfrm_selector sel;
  2033. struct km_event c;
  2034. struct sadb_x_sec_ctx *sec_ctx;
  2035. struct xfrm_sec_ctx *pol_ctx = NULL;
  2036. if (!present_and_same_family(ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  2037. ext_hdrs[SADB_EXT_ADDRESS_DST-1]) ||
  2038. !ext_hdrs[SADB_X_EXT_POLICY-1])
  2039. return -EINVAL;
  2040. pol = ext_hdrs[SADB_X_EXT_POLICY-1];
  2041. if (!pol->sadb_x_policy_dir || pol->sadb_x_policy_dir >= IPSEC_DIR_MAX)
  2042. return -EINVAL;
  2043. memset(&sel, 0, sizeof(sel));
  2044. sa = ext_hdrs[SADB_EXT_ADDRESS_SRC-1],
  2045. sel.family = pfkey_sadb_addr2xfrm_addr(sa, &sel.saddr);
  2046. sel.prefixlen_s = sa->sadb_address_prefixlen;
  2047. sel.proto = pfkey_proto_to_xfrm(sa->sadb_address_proto);
  2048. sel.sport = ((struct sockaddr_in *)(sa+1))->sin_port;
  2049. if (sel.sport)
  2050. sel.sport_mask = htons(0xffff);
  2051. sa = ext_hdrs[SADB_EXT_ADDRESS_DST-1],
  2052. pfkey_sadb_addr2xfrm_addr(sa, &sel.daddr);
  2053. sel.prefixlen_d = sa->sadb_address_prefixlen;
  2054. sel.proto = pfkey_proto_to_xfrm(sa->sadb_address_proto);
  2055. sel.dport = ((struct sockaddr_in *)(sa+1))->sin_port;
  2056. if (sel.dport)
  2057. sel.dport_mask = htons(0xffff);
  2058. sec_ctx = (struct sadb_x_sec_ctx *) ext_hdrs[SADB_X_EXT_SEC_CTX-1];
  2059. if (sec_ctx != NULL) {
  2060. struct xfrm_user_sec_ctx *uctx = pfkey_sadb2xfrm_user_sec_ctx(sec_ctx);
  2061. if (!uctx)
  2062. return -ENOMEM;
  2063. err = security_xfrm_policy_alloc(&pol_ctx, uctx);
  2064. kfree(uctx);
  2065. if (err)
  2066. return err;
  2067. }
  2068. xp = xfrm_policy_bysel_ctx(XFRM_POLICY_TYPE_MAIN,
  2069. pol->sadb_x_policy_dir - 1, &sel, pol_ctx,
  2070. 1, &err);
  2071. security_xfrm_policy_free(pol_ctx);
  2072. if (xp == NULL)
  2073. return -ENOENT;
  2074. xfrm_audit_policy_delete(xp, err ? 0 : 1,
  2075. audit_get_loginuid(current),
  2076. audit_get_sessionid(current), 0);
  2077. if (err)
  2078. goto out;
  2079. c.seq = hdr->sadb_msg_seq;
  2080. c.pid = hdr->sadb_msg_pid;
  2081. c.event = XFRM_MSG_DELPOLICY;
  2082. km_policy_notify(xp, pol->sadb_x_policy_dir-1, &c);
  2083. out:
  2084. xfrm_pol_put(xp);
  2085. return err;
  2086. }
  2087. static int key_pol_get_resp(struct sock *sk, struct xfrm_policy *xp, struct sadb_msg *hdr, int dir)
  2088. {
  2089. int err;
  2090. struct sk_buff *out_skb;
  2091. struct sadb_msg *out_hdr;
  2092. err = 0;
  2093. out_skb = pfkey_xfrm_policy2msg_prep(xp);
  2094. if (IS_ERR(out_skb)) {
  2095. err = PTR_ERR(out_skb);
  2096. goto out;
  2097. }
  2098. err = pfkey_xfrm_policy2msg(out_skb, xp, dir);
  2099. if (err < 0)
  2100. goto out;
  2101. out_hdr = (struct sadb_msg *) out_skb->data;
  2102. out_hdr->sadb_msg_version = hdr->sadb_msg_version;
  2103. out_hdr->sadb_msg_type = hdr->sadb_msg_type;
  2104. out_hdr->sadb_msg_satype = 0;
  2105. out_hdr->sadb_msg_errno = 0;
  2106. out_hdr->sadb_msg_seq = hdr->sadb_msg_seq;
  2107. out_hdr->sadb_msg_pid = hdr->sadb_msg_pid;
  2108. pfkey_broadcast(out_skb, GFP_ATOMIC, BROADCAST_ONE, sk);
  2109. err = 0;
  2110. out:
  2111. return err;
  2112. }
  2113. #ifdef CONFIG_NET_KEY_MIGRATE
  2114. static int pfkey_sockaddr_pair_size(sa_family_t family)
  2115. {
  2116. return PFKEY_ALIGN8(pfkey_sockaddr_len(family) * 2);
  2117. }
  2118. static int parse_sockaddr_pair(struct sadb_x_ipsecrequest *rq,
  2119. xfrm_address_t *saddr, xfrm_address_t *daddr,
  2120. u16 *family)
  2121. {
  2122. struct sockaddr *sa = (struct sockaddr *)(rq + 1);
  2123. if (rq->sadb_x_ipsecrequest_len <
  2124. pfkey_sockaddr_pair_size(sa->sa_family))
  2125. return -EINVAL;
  2126. switch (sa->sa_family) {
  2127. case AF_INET:
  2128. {
  2129. struct sockaddr_in *sin;
  2130. sin = (struct sockaddr_in *)sa;
  2131. if ((sin+1)->sin_family != AF_INET)
  2132. return -EINVAL;
  2133. memcpy(&saddr->a4, &sin->sin_addr, sizeof(saddr->a4));
  2134. sin++;
  2135. memcpy(&daddr->a4, &sin->sin_addr, sizeof(daddr->a4));
  2136. *family = AF_INET;
  2137. break;
  2138. }
  2139. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2140. case AF_INET6:
  2141. {
  2142. struct sockaddr_in6 *sin6;
  2143. sin6 = (struct sockaddr_in6 *)sa;
  2144. if ((sin6+1)->sin6_family != AF_INET6)
  2145. return -EINVAL;
  2146. memcpy(&saddr->a6, &sin6->sin6_addr,
  2147. sizeof(saddr->a6));
  2148. sin6++;
  2149. memcpy(&daddr->a6, &sin6->sin6_addr,
  2150. sizeof(daddr->a6));
  2151. *family = AF_INET6;
  2152. break;
  2153. }
  2154. #endif
  2155. default:
  2156. return -EINVAL;
  2157. }
  2158. return 0;
  2159. }
  2160. static int ipsecrequests_to_migrate(struct sadb_x_ipsecrequest *rq1, int len,
  2161. struct xfrm_migrate *m)
  2162. {
  2163. int err;
  2164. struct sadb_x_ipsecrequest *rq2;
  2165. int mode;
  2166. if (len <= sizeof(struct sadb_x_ipsecrequest) ||
  2167. len < rq1->sadb_x_ipsecrequest_len)
  2168. return -EINVAL;
  2169. /* old endoints */
  2170. err = parse_sockaddr_pair(rq1, &m->old_saddr, &m->old_daddr,
  2171. &m->old_family);
  2172. if (err)
  2173. return err;
  2174. rq2 = (struct sadb_x_ipsecrequest *)((u8 *)rq1 + rq1->sadb_x_ipsecrequest_len);
  2175. len -= rq1->sadb_x_ipsecrequest_len;
  2176. if (len <= sizeof(struct sadb_x_ipsecrequest) ||
  2177. len < rq2->sadb_x_ipsecrequest_len)
  2178. return -EINVAL;
  2179. /* new endpoints */
  2180. err = parse_sockaddr_pair(rq2, &m->new_saddr, &m->new_daddr,
  2181. &m->new_family);
  2182. if (err)
  2183. return err;
  2184. if (rq1->sadb_x_ipsecrequest_proto != rq2->sadb_x_ipsecrequest_proto ||
  2185. rq1->sadb_x_ipsecrequest_mode != rq2->sadb_x_ipsecrequest_mode ||
  2186. rq1->sadb_x_ipsecrequest_reqid != rq2->sadb_x_ipsecrequest_reqid)
  2187. return -EINVAL;
  2188. m->proto = rq1->sadb_x_ipsecrequest_proto;
  2189. if ((mode = pfkey_mode_to_xfrm(rq1->sadb_x_ipsecrequest_mode)) < 0)
  2190. return -EINVAL;
  2191. m->mode = mode;
  2192. m->reqid = rq1->sadb_x_ipsecrequest_reqid;
  2193. return ((int)(rq1->sadb_x_ipsecrequest_len +
  2194. rq2->sadb_x_ipsecrequest_len));
  2195. }
  2196. static int pfkey_migrate(struct sock *sk, struct sk_buff *skb,
  2197. struct sadb_msg *hdr, void **ext_hdrs)
  2198. {
  2199. int i, len, ret, err = -EINVAL;
  2200. u8 dir;
  2201. struct sadb_address *sa;
  2202. struct sadb_x_policy *pol;
  2203. struct sadb_x_ipsecrequest *rq;
  2204. struct xfrm_selector sel;
  2205. struct xfrm_migrate m[XFRM_MAX_DEPTH];
  2206. if (!present_and_same_family(ext_hdrs[SADB_EXT_ADDRESS_SRC - 1],
  2207. ext_hdrs[SADB_EXT_ADDRESS_DST - 1]) ||
  2208. !ext_hdrs[SADB_X_EXT_POLICY - 1]) {
  2209. err = -EINVAL;
  2210. goto out;
  2211. }
  2212. pol = ext_hdrs[SADB_X_EXT_POLICY - 1];
  2213. if (!pol) {
  2214. err = -EINVAL;
  2215. goto out;
  2216. }
  2217. if (pol->sadb_x_policy_dir >= IPSEC_DIR_MAX) {
  2218. err = -EINVAL;
  2219. goto out;
  2220. }
  2221. dir = pol->sadb_x_policy_dir - 1;
  2222. memset(&sel, 0, sizeof(sel));
  2223. /* set source address info of selector */
  2224. sa = ext_hdrs[SADB_EXT_ADDRESS_SRC - 1];
  2225. sel.family = pfkey_sadb_addr2xfrm_addr(sa, &sel.saddr);
  2226. sel.prefixlen_s = sa->sadb_address_prefixlen;
  2227. sel.proto = pfkey_proto_to_xfrm(sa->sadb_address_proto);
  2228. sel.sport = ((struct sockaddr_in *)(sa + 1))->sin_port;
  2229. if (sel.sport)
  2230. sel.sport_mask = htons(0xffff);
  2231. /* set destination address info of selector */
  2232. sa = ext_hdrs[SADB_EXT_ADDRESS_DST - 1],
  2233. pfkey_sadb_addr2xfrm_addr(sa, &sel.daddr);
  2234. sel.prefixlen_d = sa->sadb_address_prefixlen;
  2235. sel.proto = pfkey_proto_to_xfrm(sa->sadb_address_proto);
  2236. sel.dport = ((struct sockaddr_in *)(sa + 1))->sin_port;
  2237. if (sel.dport)
  2238. sel.dport_mask = htons(0xffff);
  2239. rq = (struct sadb_x_ipsecrequest *)(pol + 1);
  2240. /* extract ipsecrequests */
  2241. i = 0;
  2242. len = pol->sadb_x_policy_len * 8 - sizeof(struct sadb_x_policy);
  2243. while (len > 0 && i < XFRM_MAX_DEPTH) {
  2244. ret = ipsecrequests_to_migrate(rq, len, &m[i]);
  2245. if (ret < 0) {
  2246. err = ret;
  2247. goto out;
  2248. } else {
  2249. rq = (struct sadb_x_ipsecrequest *)((u8 *)rq + ret);
  2250. len -= ret;
  2251. i++;
  2252. }
  2253. }
  2254. if (!i || len > 0) {
  2255. err = -EINVAL;
  2256. goto out;
  2257. }
  2258. return xfrm_migrate(&sel, dir, XFRM_POLICY_TYPE_MAIN, m, i);
  2259. out:
  2260. return err;
  2261. }
  2262. #else
  2263. static int pfkey_migrate(struct sock *sk, struct sk_buff *skb,
  2264. struct sadb_msg *hdr, void **ext_hdrs)
  2265. {
  2266. return -ENOPROTOOPT;
  2267. }
  2268. #endif
  2269. static int pfkey_spdget(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  2270. {
  2271. unsigned int dir;
  2272. int err = 0, delete;
  2273. struct sadb_x_policy *pol;
  2274. struct xfrm_policy *xp;
  2275. struct km_event c;
  2276. if ((pol = ext_hdrs[SADB_X_EXT_POLICY-1]) == NULL)
  2277. return -EINVAL;
  2278. dir = xfrm_policy_id2dir(pol->sadb_x_policy_id);
  2279. if (dir >= XFRM_POLICY_MAX)
  2280. return -EINVAL;
  2281. delete = (hdr->sadb_msg_type == SADB_X_SPDDELETE2);
  2282. xp = xfrm_policy_byid(XFRM_POLICY_TYPE_MAIN, dir, pol->sadb_x_policy_id,
  2283. delete, &err);
  2284. if (xp == NULL)
  2285. return -ENOENT;
  2286. if (delete) {
  2287. xfrm_audit_policy_delete(xp, err ? 0 : 1,
  2288. audit_get_loginuid(current),
  2289. audit_get_sessionid(current), 0);
  2290. if (err)
  2291. goto out;
  2292. c.seq = hdr->sadb_msg_seq;
  2293. c.pid = hdr->sadb_msg_pid;
  2294. c.data.byid = 1;
  2295. c.event = XFRM_MSG_DELPOLICY;
  2296. km_policy_notify(xp, dir, &c);
  2297. } else {
  2298. err = key_pol_get_resp(sk, xp, hdr, dir);
  2299. }
  2300. out:
  2301. xfrm_pol_put(xp);
  2302. return err;
  2303. }
  2304. static int dump_sp(struct xfrm_policy *xp, int dir, int count, void *ptr)
  2305. {
  2306. struct pfkey_sock *pfk = ptr;
  2307. struct sk_buff *out_skb;
  2308. struct sadb_msg *out_hdr;
  2309. int err;
  2310. if (!pfkey_can_dump(&pfk->sk))
  2311. return -ENOBUFS;
  2312. out_skb = pfkey_xfrm_policy2msg_prep(xp);
  2313. if (IS_ERR(out_skb))
  2314. return PTR_ERR(out_skb);
  2315. err = pfkey_xfrm_policy2msg(out_skb, xp, dir);
  2316. if (err < 0)
  2317. return err;
  2318. out_hdr = (struct sadb_msg *) out_skb->data;
  2319. out_hdr->sadb_msg_version = pfk->dump.msg_version;
  2320. out_hdr->sadb_msg_type = SADB_X_SPDDUMP;
  2321. out_hdr->sadb_msg_satype = SADB_SATYPE_UNSPEC;
  2322. out_hdr->sadb_msg_errno = 0;
  2323. out_hdr->sadb_msg_seq = count;
  2324. out_hdr->sadb_msg_pid = pfk->dump.msg_pid;
  2325. pfkey_broadcast(out_skb, GFP_ATOMIC, BROADCAST_ONE, &pfk->sk);
  2326. return 0;
  2327. }
  2328. static int pfkey_dump_sp(struct pfkey_sock *pfk)
  2329. {
  2330. return xfrm_policy_walk(&pfk->dump.u.policy, dump_sp, (void *) pfk);
  2331. }
  2332. static void pfkey_dump_sp_done(struct pfkey_sock *pfk)
  2333. {
  2334. xfrm_policy_walk_done(&pfk->dump.u.policy);
  2335. }
  2336. static int pfkey_spddump(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  2337. {
  2338. struct pfkey_sock *pfk = pfkey_sk(sk);
  2339. if (pfk->dump.dump != NULL)
  2340. return -EBUSY;
  2341. pfk->dump.msg_version = hdr->sadb_msg_version;
  2342. pfk->dump.msg_pid = hdr->sadb_msg_pid;
  2343. pfk->dump.dump = pfkey_dump_sp;
  2344. pfk->dump.done = pfkey_dump_sp_done;
  2345. xfrm_policy_walk_init(&pfk->dump.u.policy, XFRM_POLICY_TYPE_MAIN);
  2346. return pfkey_do_dump(pfk);
  2347. }
  2348. static int key_notify_policy_flush(struct km_event *c)
  2349. {
  2350. struct sk_buff *skb_out;
  2351. struct sadb_msg *hdr;
  2352. skb_out = alloc_skb(sizeof(struct sadb_msg) + 16, GFP_ATOMIC);
  2353. if (!skb_out)
  2354. return -ENOBUFS;
  2355. hdr = (struct sadb_msg *) skb_put(skb_out, sizeof(struct sadb_msg));
  2356. hdr->sadb_msg_type = SADB_X_SPDFLUSH;
  2357. hdr->sadb_msg_seq = c->seq;
  2358. hdr->sadb_msg_pid = c->pid;
  2359. hdr->sadb_msg_version = PF_KEY_V2;
  2360. hdr->sadb_msg_errno = (uint8_t) 0;
  2361. hdr->sadb_msg_len = (sizeof(struct sadb_msg) / sizeof(uint64_t));
  2362. pfkey_broadcast(skb_out, GFP_ATOMIC, BROADCAST_ALL, NULL);
  2363. return 0;
  2364. }
  2365. static int pfkey_spdflush(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr, void **ext_hdrs)
  2366. {
  2367. struct km_event c;
  2368. struct xfrm_audit audit_info;
  2369. int err;
  2370. audit_info.loginuid = audit_get_loginuid(current);
  2371. audit_info.sessionid = audit_get_sessionid(current);
  2372. audit_info.secid = 0;
  2373. err = xfrm_policy_flush(XFRM_POLICY_TYPE_MAIN, &audit_info);
  2374. if (err)
  2375. return err;
  2376. c.data.type = XFRM_POLICY_TYPE_MAIN;
  2377. c.event = XFRM_MSG_FLUSHPOLICY;
  2378. c.pid = hdr->sadb_msg_pid;
  2379. c.seq = hdr->sadb_msg_seq;
  2380. km_policy_notify(NULL, 0, &c);
  2381. return 0;
  2382. }
  2383. typedef int (*pfkey_handler)(struct sock *sk, struct sk_buff *skb,
  2384. struct sadb_msg *hdr, void **ext_hdrs);
  2385. static pfkey_handler pfkey_funcs[SADB_MAX + 1] = {
  2386. [SADB_RESERVED] = pfkey_reserved,
  2387. [SADB_GETSPI] = pfkey_getspi,
  2388. [SADB_UPDATE] = pfkey_add,
  2389. [SADB_ADD] = pfkey_add,
  2390. [SADB_DELETE] = pfkey_delete,
  2391. [SADB_GET] = pfkey_get,
  2392. [SADB_ACQUIRE] = pfkey_acquire,
  2393. [SADB_REGISTER] = pfkey_register,
  2394. [SADB_EXPIRE] = NULL,
  2395. [SADB_FLUSH] = pfkey_flush,
  2396. [SADB_DUMP] = pfkey_dump,
  2397. [SADB_X_PROMISC] = pfkey_promisc,
  2398. [SADB_X_PCHANGE] = NULL,
  2399. [SADB_X_SPDUPDATE] = pfkey_spdadd,
  2400. [SADB_X_SPDADD] = pfkey_spdadd,
  2401. [SADB_X_SPDDELETE] = pfkey_spddelete,
  2402. [SADB_X_SPDGET] = pfkey_spdget,
  2403. [SADB_X_SPDACQUIRE] = NULL,
  2404. [SADB_X_SPDDUMP] = pfkey_spddump,
  2405. [SADB_X_SPDFLUSH] = pfkey_spdflush,
  2406. [SADB_X_SPDSETIDX] = pfkey_spdadd,
  2407. [SADB_X_SPDDELETE2] = pfkey_spdget,
  2408. [SADB_X_MIGRATE] = pfkey_migrate,
  2409. };
  2410. static int pfkey_process(struct sock *sk, struct sk_buff *skb, struct sadb_msg *hdr)
  2411. {
  2412. void *ext_hdrs[SADB_EXT_MAX];
  2413. int err;
  2414. pfkey_broadcast(skb_clone(skb, GFP_KERNEL), GFP_KERNEL,
  2415. BROADCAST_PROMISC_ONLY, NULL);
  2416. memset(ext_hdrs, 0, sizeof(ext_hdrs));
  2417. err = parse_exthdrs(skb, hdr, ext_hdrs);
  2418. if (!err) {
  2419. err = -EOPNOTSUPP;
  2420. if (pfkey_funcs[hdr->sadb_msg_type])
  2421. err = pfkey_funcs[hdr->sadb_msg_type](sk, skb, hdr, ext_hdrs);
  2422. }
  2423. return err;
  2424. }
  2425. static struct sadb_msg *pfkey_get_base_msg(struct sk_buff *skb, int *errp)
  2426. {
  2427. struct sadb_msg *hdr = NULL;
  2428. if (skb->len < sizeof(*hdr)) {
  2429. *errp = -EMSGSIZE;
  2430. } else {
  2431. hdr = (struct sadb_msg *) skb->data;
  2432. if (hdr->sadb_msg_version != PF_KEY_V2 ||
  2433. hdr->sadb_msg_reserved != 0 ||
  2434. (hdr->sadb_msg_type <= SADB_RESERVED ||
  2435. hdr->sadb_msg_type > SADB_MAX)) {
  2436. hdr = NULL;
  2437. *errp = -EINVAL;
  2438. } else if (hdr->sadb_msg_len != (skb->len /
  2439. sizeof(uint64_t)) ||
  2440. hdr->sadb_msg_len < (sizeof(struct sadb_msg) /
  2441. sizeof(uint64_t))) {
  2442. hdr = NULL;
  2443. *errp = -EMSGSIZE;
  2444. } else {
  2445. *errp = 0;
  2446. }
  2447. }
  2448. return hdr;
  2449. }
  2450. static inline int aalg_tmpl_set(struct xfrm_tmpl *t, struct xfrm_algo_desc *d)
  2451. {
  2452. unsigned int id = d->desc.sadb_alg_id;
  2453. if (id >= sizeof(t->aalgos) * 8)
  2454. return 0;
  2455. return (t->aalgos >> id) & 1;
  2456. }
  2457. static inline int ealg_tmpl_set(struct xfrm_tmpl *t, struct xfrm_algo_desc *d)
  2458. {
  2459. unsigned int id = d->desc.sadb_alg_id;
  2460. if (id >= sizeof(t->ealgos) * 8)
  2461. return 0;
  2462. return (t->ealgos >> id) & 1;
  2463. }
  2464. static int count_ah_combs(struct xfrm_tmpl *t)
  2465. {
  2466. int i, sz = 0;
  2467. for (i = 0; ; i++) {
  2468. struct xfrm_algo_desc *aalg = xfrm_aalg_get_byidx(i);
  2469. if (!aalg)
  2470. break;
  2471. if (aalg_tmpl_set(t, aalg) && aalg->available)
  2472. sz += sizeof(struct sadb_comb);
  2473. }
  2474. return sz + sizeof(struct sadb_prop);
  2475. }
  2476. static int count_esp_combs(struct xfrm_tmpl *t)
  2477. {
  2478. int i, k, sz = 0;
  2479. for (i = 0; ; i++) {
  2480. struct xfrm_algo_desc *ealg = xfrm_ealg_get_byidx(i);
  2481. if (!ealg)
  2482. break;
  2483. if (!(ealg_tmpl_set(t, ealg) && ealg->available))
  2484. continue;
  2485. for (k = 1; ; k++) {
  2486. struct xfrm_algo_desc *aalg = xfrm_aalg_get_byidx(k);
  2487. if (!aalg)
  2488. break;
  2489. if (aalg_tmpl_set(t, aalg) && aalg->available)
  2490. sz += sizeof(struct sadb_comb);
  2491. }
  2492. }
  2493. return sz + sizeof(struct sadb_prop);
  2494. }
  2495. static void dump_ah_combs(struct sk_buff *skb, struct xfrm_tmpl *t)
  2496. {
  2497. struct sadb_prop *p;
  2498. int i;
  2499. p = (struct sadb_prop*)skb_put(skb, sizeof(struct sadb_prop));
  2500. p->sadb_prop_len = sizeof(struct sadb_prop)/8;
  2501. p->sadb_prop_exttype = SADB_EXT_PROPOSAL;
  2502. p->sadb_prop_replay = 32;
  2503. memset(p->sadb_prop_reserved, 0, sizeof(p->sadb_prop_reserved));
  2504. for (i = 0; ; i++) {
  2505. struct xfrm_algo_desc *aalg = xfrm_aalg_get_byidx(i);
  2506. if (!aalg)
  2507. break;
  2508. if (aalg_tmpl_set(t, aalg) && aalg->available) {
  2509. struct sadb_comb *c;
  2510. c = (struct sadb_comb*)skb_put(skb, sizeof(struct sadb_comb));
  2511. memset(c, 0, sizeof(*c));
  2512. p->sadb_prop_len += sizeof(struct sadb_comb)/8;
  2513. c->sadb_comb_auth = aalg->desc.sadb_alg_id;
  2514. c->sadb_comb_auth_minbits = aalg->desc.sadb_alg_minbits;
  2515. c->sadb_comb_auth_maxbits = aalg->desc.sadb_alg_maxbits;
  2516. c->sadb_comb_hard_addtime = 24*60*60;
  2517. c->sadb_comb_soft_addtime = 20*60*60;
  2518. c->sadb_comb_hard_usetime = 8*60*60;
  2519. c->sadb_comb_soft_usetime = 7*60*60;
  2520. }
  2521. }
  2522. }
  2523. static void dump_esp_combs(struct sk_buff *skb, struct xfrm_tmpl *t)
  2524. {
  2525. struct sadb_prop *p;
  2526. int i, k;
  2527. p = (struct sadb_prop*)skb_put(skb, sizeof(struct sadb_prop));
  2528. p->sadb_prop_len = sizeof(struct sadb_prop)/8;
  2529. p->sadb_prop_exttype = SADB_EXT_PROPOSAL;
  2530. p->sadb_prop_replay = 32;
  2531. memset(p->sadb_prop_reserved, 0, sizeof(p->sadb_prop_reserved));
  2532. for (i=0; ; i++) {
  2533. struct xfrm_algo_desc *ealg = xfrm_ealg_get_byidx(i);
  2534. if (!ealg)
  2535. break;
  2536. if (!(ealg_tmpl_set(t, ealg) && ealg->available))
  2537. continue;
  2538. for (k = 1; ; k++) {
  2539. struct sadb_comb *c;
  2540. struct xfrm_algo_desc *aalg = xfrm_aalg_get_byidx(k);
  2541. if (!aalg)
  2542. break;
  2543. if (!(aalg_tmpl_set(t, aalg) && aalg->available))
  2544. continue;
  2545. c = (struct sadb_comb*)skb_put(skb, sizeof(struct sadb_comb));
  2546. memset(c, 0, sizeof(*c));
  2547. p->sadb_prop_len += sizeof(struct sadb_comb)/8;
  2548. c->sadb_comb_auth = aalg->desc.sadb_alg_id;
  2549. c->sadb_comb_auth_minbits = aalg->desc.sadb_alg_minbits;
  2550. c->sadb_comb_auth_maxbits = aalg->desc.sadb_alg_maxbits;
  2551. c->sadb_comb_encrypt = ealg->desc.sadb_alg_id;
  2552. c->sadb_comb_encrypt_minbits = ealg->desc.sadb_alg_minbits;
  2553. c->sadb_comb_encrypt_maxbits = ealg->desc.sadb_alg_maxbits;
  2554. c->sadb_comb_hard_addtime = 24*60*60;
  2555. c->sadb_comb_soft_addtime = 20*60*60;
  2556. c->sadb_comb_hard_usetime = 8*60*60;
  2557. c->sadb_comb_soft_usetime = 7*60*60;
  2558. }
  2559. }
  2560. }
  2561. static int key_notify_policy_expire(struct xfrm_policy *xp, struct km_event *c)
  2562. {
  2563. return 0;
  2564. }
  2565. static int key_notify_sa_expire(struct xfrm_state *x, struct km_event *c)
  2566. {
  2567. struct sk_buff *out_skb;
  2568. struct sadb_msg *out_hdr;
  2569. int hard;
  2570. int hsc;
  2571. hard = c->data.hard;
  2572. if (hard)
  2573. hsc = 2;
  2574. else
  2575. hsc = 1;
  2576. out_skb = pfkey_xfrm_state2msg_expire(x, hsc);
  2577. if (IS_ERR(out_skb))
  2578. return PTR_ERR(out_skb);
  2579. out_hdr = (struct sadb_msg *) out_skb->data;
  2580. out_hdr->sadb_msg_version = PF_KEY_V2;
  2581. out_hdr->sadb_msg_type = SADB_EXPIRE;
  2582. out_hdr->sadb_msg_satype = pfkey_proto2satype(x->id.proto);
  2583. out_hdr->sadb_msg_errno = 0;
  2584. out_hdr->sadb_msg_reserved = 0;
  2585. out_hdr->sadb_msg_seq = 0;
  2586. out_hdr->sadb_msg_pid = 0;
  2587. pfkey_broadcast(out_skb, GFP_ATOMIC, BROADCAST_REGISTERED, NULL);
  2588. return 0;
  2589. }
  2590. static int pfkey_send_notify(struct xfrm_state *x, struct km_event *c)
  2591. {
  2592. switch (c->event) {
  2593. case XFRM_MSG_EXPIRE:
  2594. return key_notify_sa_expire(x, c);
  2595. case XFRM_MSG_DELSA:
  2596. case XFRM_MSG_NEWSA:
  2597. case XFRM_MSG_UPDSA:
  2598. return key_notify_sa(x, c);
  2599. case XFRM_MSG_FLUSHSA:
  2600. return key_notify_sa_flush(c);
  2601. case XFRM_MSG_NEWAE: /* not yet supported */
  2602. break;
  2603. default:
  2604. printk("pfkey: Unknown SA event %d\n", c->event);
  2605. break;
  2606. }
  2607. return 0;
  2608. }
  2609. static int pfkey_send_policy_notify(struct xfrm_policy *xp, int dir, struct km_event *c)
  2610. {
  2611. if (xp && xp->type != XFRM_POLICY_TYPE_MAIN)
  2612. return 0;
  2613. switch (c->event) {
  2614. case XFRM_MSG_POLEXPIRE:
  2615. return key_notify_policy_expire(xp, c);
  2616. case XFRM_MSG_DELPOLICY:
  2617. case XFRM_MSG_NEWPOLICY:
  2618. case XFRM_MSG_UPDPOLICY:
  2619. return key_notify_policy(xp, dir, c);
  2620. case XFRM_MSG_FLUSHPOLICY:
  2621. if (c->data.type != XFRM_POLICY_TYPE_MAIN)
  2622. break;
  2623. return key_notify_policy_flush(c);
  2624. default:
  2625. printk("pfkey: Unknown policy event %d\n", c->event);
  2626. break;
  2627. }
  2628. return 0;
  2629. }
  2630. static u32 get_acqseq(void)
  2631. {
  2632. u32 res;
  2633. static u32 acqseq;
  2634. static DEFINE_SPINLOCK(acqseq_lock);
  2635. spin_lock_bh(&acqseq_lock);
  2636. res = (++acqseq ? : ++acqseq);
  2637. spin_unlock_bh(&acqseq_lock);
  2638. return res;
  2639. }
  2640. static int pfkey_send_acquire(struct xfrm_state *x, struct xfrm_tmpl *t, struct xfrm_policy *xp, int dir)
  2641. {
  2642. struct sk_buff *skb;
  2643. struct sadb_msg *hdr;
  2644. struct sadb_address *addr;
  2645. struct sadb_x_policy *pol;
  2646. struct sockaddr_in *sin;
  2647. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2648. struct sockaddr_in6 *sin6;
  2649. #endif
  2650. int sockaddr_size;
  2651. int size;
  2652. struct sadb_x_sec_ctx *sec_ctx;
  2653. struct xfrm_sec_ctx *xfrm_ctx;
  2654. int ctx_size = 0;
  2655. sockaddr_size = pfkey_sockaddr_size(x->props.family);
  2656. if (!sockaddr_size)
  2657. return -EINVAL;
  2658. size = sizeof(struct sadb_msg) +
  2659. (sizeof(struct sadb_address) * 2) +
  2660. (sockaddr_size * 2) +
  2661. sizeof(struct sadb_x_policy);
  2662. if (x->id.proto == IPPROTO_AH)
  2663. size += count_ah_combs(t);
  2664. else if (x->id.proto == IPPROTO_ESP)
  2665. size += count_esp_combs(t);
  2666. if ((xfrm_ctx = x->security)) {
  2667. ctx_size = PFKEY_ALIGN8(xfrm_ctx->ctx_len);
  2668. size += sizeof(struct sadb_x_sec_ctx) + ctx_size;
  2669. }
  2670. skb = alloc_skb(size + 16, GFP_ATOMIC);
  2671. if (skb == NULL)
  2672. return -ENOMEM;
  2673. hdr = (struct sadb_msg *) skb_put(skb, sizeof(struct sadb_msg));
  2674. hdr->sadb_msg_version = PF_KEY_V2;
  2675. hdr->sadb_msg_type = SADB_ACQUIRE;
  2676. hdr->sadb_msg_satype = pfkey_proto2satype(x->id.proto);
  2677. hdr->sadb_msg_len = size / sizeof(uint64_t);
  2678. hdr->sadb_msg_errno = 0;
  2679. hdr->sadb_msg_reserved = 0;
  2680. hdr->sadb_msg_seq = x->km.seq = get_acqseq();
  2681. hdr->sadb_msg_pid = 0;
  2682. /* src address */
  2683. addr = (struct sadb_address*) skb_put(skb,
  2684. sizeof(struct sadb_address)+sockaddr_size);
  2685. addr->sadb_address_len =
  2686. (sizeof(struct sadb_address)+sockaddr_size)/
  2687. sizeof(uint64_t);
  2688. addr->sadb_address_exttype = SADB_EXT_ADDRESS_SRC;
  2689. addr->sadb_address_proto = 0;
  2690. addr->sadb_address_reserved = 0;
  2691. if (x->props.family == AF_INET) {
  2692. addr->sadb_address_prefixlen = 32;
  2693. sin = (struct sockaddr_in *) (addr + 1);
  2694. sin->sin_family = AF_INET;
  2695. sin->sin_addr.s_addr = x->props.saddr.a4;
  2696. sin->sin_port = 0;
  2697. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  2698. }
  2699. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2700. else if (x->props.family == AF_INET6) {
  2701. addr->sadb_address_prefixlen = 128;
  2702. sin6 = (struct sockaddr_in6 *) (addr + 1);
  2703. sin6->sin6_family = AF_INET6;
  2704. sin6->sin6_port = 0;
  2705. sin6->sin6_flowinfo = 0;
  2706. memcpy(&sin6->sin6_addr,
  2707. x->props.saddr.a6, sizeof(struct in6_addr));
  2708. sin6->sin6_scope_id = 0;
  2709. }
  2710. #endif
  2711. else
  2712. BUG();
  2713. /* dst address */
  2714. addr = (struct sadb_address*) skb_put(skb,
  2715. sizeof(struct sadb_address)+sockaddr_size);
  2716. addr->sadb_address_len =
  2717. (sizeof(struct sadb_address)+sockaddr_size)/
  2718. sizeof(uint64_t);
  2719. addr->sadb_address_exttype = SADB_EXT_ADDRESS_DST;
  2720. addr->sadb_address_proto = 0;
  2721. addr->sadb_address_reserved = 0;
  2722. if (x->props.family == AF_INET) {
  2723. addr->sadb_address_prefixlen = 32;
  2724. sin = (struct sockaddr_in *) (addr + 1);
  2725. sin->sin_family = AF_INET;
  2726. sin->sin_addr.s_addr = x->id.daddr.a4;
  2727. sin->sin_port = 0;
  2728. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  2729. }
  2730. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2731. else if (x->props.family == AF_INET6) {
  2732. addr->sadb_address_prefixlen = 128;
  2733. sin6 = (struct sockaddr_in6 *) (addr + 1);
  2734. sin6->sin6_family = AF_INET6;
  2735. sin6->sin6_port = 0;
  2736. sin6->sin6_flowinfo = 0;
  2737. memcpy(&sin6->sin6_addr,
  2738. x->id.daddr.a6, sizeof(struct in6_addr));
  2739. sin6->sin6_scope_id = 0;
  2740. }
  2741. #endif
  2742. else
  2743. BUG();
  2744. pol = (struct sadb_x_policy *) skb_put(skb, sizeof(struct sadb_x_policy));
  2745. pol->sadb_x_policy_len = sizeof(struct sadb_x_policy)/sizeof(uint64_t);
  2746. pol->sadb_x_policy_exttype = SADB_X_EXT_POLICY;
  2747. pol->sadb_x_policy_type = IPSEC_POLICY_IPSEC;
  2748. pol->sadb_x_policy_dir = dir+1;
  2749. pol->sadb_x_policy_id = xp->index;
  2750. /* Set sadb_comb's. */
  2751. if (x->id.proto == IPPROTO_AH)
  2752. dump_ah_combs(skb, t);
  2753. else if (x->id.proto == IPPROTO_ESP)
  2754. dump_esp_combs(skb, t);
  2755. /* security context */
  2756. if (xfrm_ctx) {
  2757. sec_ctx = (struct sadb_x_sec_ctx *) skb_put(skb,
  2758. sizeof(struct sadb_x_sec_ctx) + ctx_size);
  2759. sec_ctx->sadb_x_sec_len =
  2760. (sizeof(struct sadb_x_sec_ctx) + ctx_size) / sizeof(uint64_t);
  2761. sec_ctx->sadb_x_sec_exttype = SADB_X_EXT_SEC_CTX;
  2762. sec_ctx->sadb_x_ctx_doi = xfrm_ctx->ctx_doi;
  2763. sec_ctx->sadb_x_ctx_alg = xfrm_ctx->ctx_alg;
  2764. sec_ctx->sadb_x_ctx_len = xfrm_ctx->ctx_len;
  2765. memcpy(sec_ctx + 1, xfrm_ctx->ctx_str,
  2766. xfrm_ctx->ctx_len);
  2767. }
  2768. return pfkey_broadcast(skb, GFP_ATOMIC, BROADCAST_REGISTERED, NULL);
  2769. }
  2770. static struct xfrm_policy *pfkey_compile_policy(struct sock *sk, int opt,
  2771. u8 *data, int len, int *dir)
  2772. {
  2773. struct xfrm_policy *xp;
  2774. struct sadb_x_policy *pol = (struct sadb_x_policy*)data;
  2775. struct sadb_x_sec_ctx *sec_ctx;
  2776. switch (sk->sk_family) {
  2777. case AF_INET:
  2778. if (opt != IP_IPSEC_POLICY) {
  2779. *dir = -EOPNOTSUPP;
  2780. return NULL;
  2781. }
  2782. break;
  2783. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2784. case AF_INET6:
  2785. if (opt != IPV6_IPSEC_POLICY) {
  2786. *dir = -EOPNOTSUPP;
  2787. return NULL;
  2788. }
  2789. break;
  2790. #endif
  2791. default:
  2792. *dir = -EINVAL;
  2793. return NULL;
  2794. }
  2795. *dir = -EINVAL;
  2796. if (len < sizeof(struct sadb_x_policy) ||
  2797. pol->sadb_x_policy_len*8 > len ||
  2798. pol->sadb_x_policy_type > IPSEC_POLICY_BYPASS ||
  2799. (!pol->sadb_x_policy_dir || pol->sadb_x_policy_dir > IPSEC_DIR_OUTBOUND))
  2800. return NULL;
  2801. xp = xfrm_policy_alloc(GFP_ATOMIC);
  2802. if (xp == NULL) {
  2803. *dir = -ENOBUFS;
  2804. return NULL;
  2805. }
  2806. xp->action = (pol->sadb_x_policy_type == IPSEC_POLICY_DISCARD ?
  2807. XFRM_POLICY_BLOCK : XFRM_POLICY_ALLOW);
  2808. xp->lft.soft_byte_limit = XFRM_INF;
  2809. xp->lft.hard_byte_limit = XFRM_INF;
  2810. xp->lft.soft_packet_limit = XFRM_INF;
  2811. xp->lft.hard_packet_limit = XFRM_INF;
  2812. xp->family = sk->sk_family;
  2813. xp->xfrm_nr = 0;
  2814. if (pol->sadb_x_policy_type == IPSEC_POLICY_IPSEC &&
  2815. (*dir = parse_ipsecrequests(xp, pol)) < 0)
  2816. goto out;
  2817. /* security context too */
  2818. if (len >= (pol->sadb_x_policy_len*8 +
  2819. sizeof(struct sadb_x_sec_ctx))) {
  2820. char *p = (char *)pol;
  2821. struct xfrm_user_sec_ctx *uctx;
  2822. p += pol->sadb_x_policy_len*8;
  2823. sec_ctx = (struct sadb_x_sec_ctx *)p;
  2824. if (len < pol->sadb_x_policy_len*8 +
  2825. sec_ctx->sadb_x_sec_len) {
  2826. *dir = -EINVAL;
  2827. goto out;
  2828. }
  2829. if ((*dir = verify_sec_ctx_len(p)))
  2830. goto out;
  2831. uctx = pfkey_sadb2xfrm_user_sec_ctx(sec_ctx);
  2832. *dir = security_xfrm_policy_alloc(&xp->security, uctx);
  2833. kfree(uctx);
  2834. if (*dir)
  2835. goto out;
  2836. }
  2837. *dir = pol->sadb_x_policy_dir-1;
  2838. return xp;
  2839. out:
  2840. xfrm_policy_destroy(xp);
  2841. return NULL;
  2842. }
  2843. static int pfkey_send_new_mapping(struct xfrm_state *x, xfrm_address_t *ipaddr, __be16 sport)
  2844. {
  2845. struct sk_buff *skb;
  2846. struct sadb_msg *hdr;
  2847. struct sadb_sa *sa;
  2848. struct sadb_address *addr;
  2849. struct sadb_x_nat_t_port *n_port;
  2850. struct sockaddr_in *sin;
  2851. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2852. struct sockaddr_in6 *sin6;
  2853. #endif
  2854. int sockaddr_size;
  2855. int size;
  2856. __u8 satype = (x->id.proto == IPPROTO_ESP ? SADB_SATYPE_ESP : 0);
  2857. struct xfrm_encap_tmpl *natt = NULL;
  2858. sockaddr_size = pfkey_sockaddr_size(x->props.family);
  2859. if (!sockaddr_size)
  2860. return -EINVAL;
  2861. if (!satype)
  2862. return -EINVAL;
  2863. if (!x->encap)
  2864. return -EINVAL;
  2865. natt = x->encap;
  2866. /* Build an SADB_X_NAT_T_NEW_MAPPING message:
  2867. *
  2868. * HDR | SA | ADDRESS_SRC (old addr) | NAT_T_SPORT (old port) |
  2869. * ADDRESS_DST (new addr) | NAT_T_DPORT (new port)
  2870. */
  2871. size = sizeof(struct sadb_msg) +
  2872. sizeof(struct sadb_sa) +
  2873. (sizeof(struct sadb_address) * 2) +
  2874. (sockaddr_size * 2) +
  2875. (sizeof(struct sadb_x_nat_t_port) * 2);
  2876. skb = alloc_skb(size + 16, GFP_ATOMIC);
  2877. if (skb == NULL)
  2878. return -ENOMEM;
  2879. hdr = (struct sadb_msg *) skb_put(skb, sizeof(struct sadb_msg));
  2880. hdr->sadb_msg_version = PF_KEY_V2;
  2881. hdr->sadb_msg_type = SADB_X_NAT_T_NEW_MAPPING;
  2882. hdr->sadb_msg_satype = satype;
  2883. hdr->sadb_msg_len = size / sizeof(uint64_t);
  2884. hdr->sadb_msg_errno = 0;
  2885. hdr->sadb_msg_reserved = 0;
  2886. hdr->sadb_msg_seq = x->km.seq = get_acqseq();
  2887. hdr->sadb_msg_pid = 0;
  2888. /* SA */
  2889. sa = (struct sadb_sa *) skb_put(skb, sizeof(struct sadb_sa));
  2890. sa->sadb_sa_len = sizeof(struct sadb_sa)/sizeof(uint64_t);
  2891. sa->sadb_sa_exttype = SADB_EXT_SA;
  2892. sa->sadb_sa_spi = x->id.spi;
  2893. sa->sadb_sa_replay = 0;
  2894. sa->sadb_sa_state = 0;
  2895. sa->sadb_sa_auth = 0;
  2896. sa->sadb_sa_encrypt = 0;
  2897. sa->sadb_sa_flags = 0;
  2898. /* ADDRESS_SRC (old addr) */
  2899. addr = (struct sadb_address*)
  2900. skb_put(skb, sizeof(struct sadb_address)+sockaddr_size);
  2901. addr->sadb_address_len =
  2902. (sizeof(struct sadb_address)+sockaddr_size)/
  2903. sizeof(uint64_t);
  2904. addr->sadb_address_exttype = SADB_EXT_ADDRESS_SRC;
  2905. addr->sadb_address_proto = 0;
  2906. addr->sadb_address_reserved = 0;
  2907. if (x->props.family == AF_INET) {
  2908. addr->sadb_address_prefixlen = 32;
  2909. sin = (struct sockaddr_in *) (addr + 1);
  2910. sin->sin_family = AF_INET;
  2911. sin->sin_addr.s_addr = x->props.saddr.a4;
  2912. sin->sin_port = 0;
  2913. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  2914. }
  2915. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2916. else if (x->props.family == AF_INET6) {
  2917. addr->sadb_address_prefixlen = 128;
  2918. sin6 = (struct sockaddr_in6 *) (addr + 1);
  2919. sin6->sin6_family = AF_INET6;
  2920. sin6->sin6_port = 0;
  2921. sin6->sin6_flowinfo = 0;
  2922. memcpy(&sin6->sin6_addr,
  2923. x->props.saddr.a6, sizeof(struct in6_addr));
  2924. sin6->sin6_scope_id = 0;
  2925. }
  2926. #endif
  2927. else
  2928. BUG();
  2929. /* NAT_T_SPORT (old port) */
  2930. n_port = (struct sadb_x_nat_t_port*) skb_put(skb, sizeof (*n_port));
  2931. n_port->sadb_x_nat_t_port_len = sizeof(*n_port)/sizeof(uint64_t);
  2932. n_port->sadb_x_nat_t_port_exttype = SADB_X_EXT_NAT_T_SPORT;
  2933. n_port->sadb_x_nat_t_port_port = natt->encap_sport;
  2934. n_port->sadb_x_nat_t_port_reserved = 0;
  2935. /* ADDRESS_DST (new addr) */
  2936. addr = (struct sadb_address*)
  2937. skb_put(skb, sizeof(struct sadb_address)+sockaddr_size);
  2938. addr->sadb_address_len =
  2939. (sizeof(struct sadb_address)+sockaddr_size)/
  2940. sizeof(uint64_t);
  2941. addr->sadb_address_exttype = SADB_EXT_ADDRESS_DST;
  2942. addr->sadb_address_proto = 0;
  2943. addr->sadb_address_reserved = 0;
  2944. if (x->props.family == AF_INET) {
  2945. addr->sadb_address_prefixlen = 32;
  2946. sin = (struct sockaddr_in *) (addr + 1);
  2947. sin->sin_family = AF_INET;
  2948. sin->sin_addr.s_addr = ipaddr->a4;
  2949. sin->sin_port = 0;
  2950. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  2951. }
  2952. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2953. else if (x->props.family == AF_INET6) {
  2954. addr->sadb_address_prefixlen = 128;
  2955. sin6 = (struct sockaddr_in6 *) (addr + 1);
  2956. sin6->sin6_family = AF_INET6;
  2957. sin6->sin6_port = 0;
  2958. sin6->sin6_flowinfo = 0;
  2959. memcpy(&sin6->sin6_addr, &ipaddr->a6, sizeof(struct in6_addr));
  2960. sin6->sin6_scope_id = 0;
  2961. }
  2962. #endif
  2963. else
  2964. BUG();
  2965. /* NAT_T_DPORT (new port) */
  2966. n_port = (struct sadb_x_nat_t_port*) skb_put(skb, sizeof (*n_port));
  2967. n_port->sadb_x_nat_t_port_len = sizeof(*n_port)/sizeof(uint64_t);
  2968. n_port->sadb_x_nat_t_port_exttype = SADB_X_EXT_NAT_T_DPORT;
  2969. n_port->sadb_x_nat_t_port_port = sport;
  2970. n_port->sadb_x_nat_t_port_reserved = 0;
  2971. return pfkey_broadcast(skb, GFP_ATOMIC, BROADCAST_REGISTERED, NULL);
  2972. }
  2973. #ifdef CONFIG_NET_KEY_MIGRATE
  2974. static int set_sadb_address(struct sk_buff *skb, int sasize, int type,
  2975. struct xfrm_selector *sel)
  2976. {
  2977. struct sadb_address *addr;
  2978. struct sockaddr_in *sin;
  2979. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2980. struct sockaddr_in6 *sin6;
  2981. #endif
  2982. addr = (struct sadb_address *)skb_put(skb, sizeof(struct sadb_address) + sasize);
  2983. addr->sadb_address_len = (sizeof(struct sadb_address) + sasize)/8;
  2984. addr->sadb_address_exttype = type;
  2985. addr->sadb_address_proto = sel->proto;
  2986. addr->sadb_address_reserved = 0;
  2987. switch (type) {
  2988. case SADB_EXT_ADDRESS_SRC:
  2989. if (sel->family == AF_INET) {
  2990. addr->sadb_address_prefixlen = sel->prefixlen_s;
  2991. sin = (struct sockaddr_in *)(addr + 1);
  2992. sin->sin_family = AF_INET;
  2993. memcpy(&sin->sin_addr.s_addr, &sel->saddr,
  2994. sizeof(sin->sin_addr.s_addr));
  2995. sin->sin_port = 0;
  2996. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  2997. }
  2998. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  2999. else if (sel->family == AF_INET6) {
  3000. addr->sadb_address_prefixlen = sel->prefixlen_s;
  3001. sin6 = (struct sockaddr_in6 *)(addr + 1);
  3002. sin6->sin6_family = AF_INET6;
  3003. sin6->sin6_port = 0;
  3004. sin6->sin6_flowinfo = 0;
  3005. sin6->sin6_scope_id = 0;
  3006. memcpy(&sin6->sin6_addr.s6_addr, &sel->saddr,
  3007. sizeof(sin6->sin6_addr.s6_addr));
  3008. }
  3009. #endif
  3010. break;
  3011. case SADB_EXT_ADDRESS_DST:
  3012. if (sel->family == AF_INET) {
  3013. addr->sadb_address_prefixlen = sel->prefixlen_d;
  3014. sin = (struct sockaddr_in *)(addr + 1);
  3015. sin->sin_family = AF_INET;
  3016. memcpy(&sin->sin_addr.s_addr, &sel->daddr,
  3017. sizeof(sin->sin_addr.s_addr));
  3018. sin->sin_port = 0;
  3019. memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
  3020. }
  3021. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  3022. else if (sel->family == AF_INET6) {
  3023. addr->sadb_address_prefixlen = sel->prefixlen_d;
  3024. sin6 = (struct sockaddr_in6 *)(addr + 1);
  3025. sin6->sin6_family = AF_INET6;
  3026. sin6->sin6_port = 0;
  3027. sin6->sin6_flowinfo = 0;
  3028. sin6->sin6_scope_id = 0;
  3029. memcpy(&sin6->sin6_addr.s6_addr, &sel->daddr,
  3030. sizeof(sin6->sin6_addr.s6_addr));
  3031. }
  3032. #endif
  3033. break;
  3034. default:
  3035. return -EINVAL;
  3036. }
  3037. return 0;
  3038. }
  3039. static int set_ipsecrequest(struct sk_buff *skb,
  3040. uint8_t proto, uint8_t mode, int level,
  3041. uint32_t reqid, uint8_t family,
  3042. xfrm_address_t *src, xfrm_address_t *dst)
  3043. {
  3044. struct sadb_x_ipsecrequest *rq;
  3045. struct sockaddr_in *sin;
  3046. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  3047. struct sockaddr_in6 *sin6;
  3048. #endif
  3049. int size_req;
  3050. size_req = sizeof(struct sadb_x_ipsecrequest) +
  3051. pfkey_sockaddr_pair_size(family);
  3052. rq = (struct sadb_x_ipsecrequest *)skb_put(skb, size_req);
  3053. memset(rq, 0, size_req);
  3054. rq->sadb_x_ipsecrequest_len = size_req;
  3055. rq->sadb_x_ipsecrequest_proto = proto;
  3056. rq->sadb_x_ipsecrequest_mode = mode;
  3057. rq->sadb_x_ipsecrequest_level = level;
  3058. rq->sadb_x_ipsecrequest_reqid = reqid;
  3059. switch (family) {
  3060. case AF_INET:
  3061. sin = (struct sockaddr_in *)(rq + 1);
  3062. sin->sin_family = AF_INET;
  3063. memcpy(&sin->sin_addr.s_addr, src,
  3064. sizeof(sin->sin_addr.s_addr));
  3065. sin++;
  3066. sin->sin_family = AF_INET;
  3067. memcpy(&sin->sin_addr.s_addr, dst,
  3068. sizeof(sin->sin_addr.s_addr));
  3069. break;
  3070. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  3071. case AF_INET6:
  3072. sin6 = (struct sockaddr_in6 *)(rq + 1);
  3073. sin6->sin6_family = AF_INET6;
  3074. sin6->sin6_port = 0;
  3075. sin6->sin6_flowinfo = 0;
  3076. sin6->sin6_scope_id = 0;
  3077. memcpy(&sin6->sin6_addr.s6_addr, src,
  3078. sizeof(sin6->sin6_addr.s6_addr));
  3079. sin6++;
  3080. sin6->sin6_family = AF_INET6;
  3081. sin6->sin6_port = 0;
  3082. sin6->sin6_flowinfo = 0;
  3083. sin6->sin6_scope_id = 0;
  3084. memcpy(&sin6->sin6_addr.s6_addr, dst,
  3085. sizeof(sin6->sin6_addr.s6_addr));
  3086. break;
  3087. #endif
  3088. default:
  3089. return -EINVAL;
  3090. }
  3091. return 0;
  3092. }
  3093. #endif
  3094. #ifdef CONFIG_NET_KEY_MIGRATE
  3095. static int pfkey_send_migrate(struct xfrm_selector *sel, u8 dir, u8 type,
  3096. struct xfrm_migrate *m, int num_bundles)
  3097. {
  3098. int i;
  3099. int sasize_sel;
  3100. int size = 0;
  3101. int size_pol = 0;
  3102. struct sk_buff *skb;
  3103. struct sadb_msg *hdr;
  3104. struct sadb_x_policy *pol;
  3105. struct xfrm_migrate *mp;
  3106. if (type != XFRM_POLICY_TYPE_MAIN)
  3107. return 0;
  3108. if (num_bundles <= 0 || num_bundles > XFRM_MAX_DEPTH)
  3109. return -EINVAL;
  3110. /* selector */
  3111. sasize_sel = pfkey_sockaddr_size(sel->family);
  3112. if (!sasize_sel)
  3113. return -EINVAL;
  3114. size += (sizeof(struct sadb_address) + sasize_sel) * 2;
  3115. /* policy info */
  3116. size_pol += sizeof(struct sadb_x_policy);
  3117. /* ipsecrequests */
  3118. for (i = 0, mp = m; i < num_bundles; i++, mp++) {
  3119. /* old locator pair */
  3120. size_pol += sizeof(struct sadb_x_ipsecrequest) +
  3121. pfkey_sockaddr_pair_size(mp->old_family);
  3122. /* new locator pair */
  3123. size_pol += sizeof(struct sadb_x_ipsecrequest) +
  3124. pfkey_sockaddr_pair_size(mp->new_family);
  3125. }
  3126. size += sizeof(struct sadb_msg) + size_pol;
  3127. /* alloc buffer */
  3128. skb = alloc_skb(size, GFP_ATOMIC);
  3129. if (skb == NULL)
  3130. return -ENOMEM;
  3131. hdr = (struct sadb_msg *)skb_put(skb, sizeof(struct sadb_msg));
  3132. hdr->sadb_msg_version = PF_KEY_V2;
  3133. hdr->sadb_msg_type = SADB_X_MIGRATE;
  3134. hdr->sadb_msg_satype = pfkey_proto2satype(m->proto);
  3135. hdr->sadb_msg_len = size / 8;
  3136. hdr->sadb_msg_errno = 0;
  3137. hdr->sadb_msg_reserved = 0;
  3138. hdr->sadb_msg_seq = 0;
  3139. hdr->sadb_msg_pid = 0;
  3140. /* selector src */
  3141. set_sadb_address(skb, sasize_sel, SADB_EXT_ADDRESS_SRC, sel);
  3142. /* selector dst */
  3143. set_sadb_address(skb, sasize_sel, SADB_EXT_ADDRESS_DST, sel);
  3144. /* policy information */
  3145. pol = (struct sadb_x_policy *)skb_put(skb, sizeof(struct sadb_x_policy));
  3146. pol->sadb_x_policy_len = size_pol / 8;
  3147. pol->sadb_x_policy_exttype = SADB_X_EXT_POLICY;
  3148. pol->sadb_x_policy_type = IPSEC_POLICY_IPSEC;
  3149. pol->sadb_x_policy_dir = dir + 1;
  3150. pol->sadb_x_policy_id = 0;
  3151. pol->sadb_x_policy_priority = 0;
  3152. for (i = 0, mp = m; i < num_bundles; i++, mp++) {
  3153. /* old ipsecrequest */
  3154. int mode = pfkey_mode_from_xfrm(mp->mode);
  3155. if (mode < 0)
  3156. goto err;
  3157. if (set_ipsecrequest(skb, mp->proto, mode,
  3158. (mp->reqid ? IPSEC_LEVEL_UNIQUE : IPSEC_LEVEL_REQUIRE),
  3159. mp->reqid, mp->old_family,
  3160. &mp->old_saddr, &mp->old_daddr) < 0)
  3161. goto err;
  3162. /* new ipsecrequest */
  3163. if (set_ipsecrequest(skb, mp->proto, mode,
  3164. (mp->reqid ? IPSEC_LEVEL_UNIQUE : IPSEC_LEVEL_REQUIRE),
  3165. mp->reqid, mp->new_family,
  3166. &mp->new_saddr, &mp->new_daddr) < 0)
  3167. goto err;
  3168. }
  3169. /* broadcast migrate message to sockets */
  3170. pfkey_broadcast(skb, GFP_ATOMIC, BROADCAST_ALL, NULL);
  3171. return 0;
  3172. err:
  3173. kfree_skb(skb);
  3174. return -EINVAL;
  3175. }
  3176. #else
  3177. static int pfkey_send_migrate(struct xfrm_selector *sel, u8 dir, u8 type,
  3178. struct xfrm_migrate *m, int num_bundles)
  3179. {
  3180. return -ENOPROTOOPT;
  3181. }
  3182. #endif
  3183. static int pfkey_sendmsg(struct kiocb *kiocb,
  3184. struct socket *sock, struct msghdr *msg, size_t len)
  3185. {
  3186. struct sock *sk = sock->sk;
  3187. struct sk_buff *skb = NULL;
  3188. struct sadb_msg *hdr = NULL;
  3189. int err;
  3190. err = -EOPNOTSUPP;
  3191. if (msg->msg_flags & MSG_OOB)
  3192. goto out;
  3193. err = -EMSGSIZE;
  3194. if ((unsigned)len > sk->sk_sndbuf - 32)
  3195. goto out;
  3196. err = -ENOBUFS;
  3197. skb = alloc_skb(len, GFP_KERNEL);
  3198. if (skb == NULL)
  3199. goto out;
  3200. err = -EFAULT;
  3201. if (memcpy_fromiovec(skb_put(skb,len), msg->msg_iov, len))
  3202. goto out;
  3203. hdr = pfkey_get_base_msg(skb, &err);
  3204. if (!hdr)
  3205. goto out;
  3206. mutex_lock(&xfrm_cfg_mutex);
  3207. err = pfkey_process(sk, skb, hdr);
  3208. mutex_unlock(&xfrm_cfg_mutex);
  3209. out:
  3210. if (err && hdr && pfkey_error(hdr, err, sk) == 0)
  3211. err = 0;
  3212. if (skb)
  3213. kfree_skb(skb);
  3214. return err ? : len;
  3215. }
  3216. static int pfkey_recvmsg(struct kiocb *kiocb,
  3217. struct socket *sock, struct msghdr *msg, size_t len,
  3218. int flags)
  3219. {
  3220. struct sock *sk = sock->sk;
  3221. struct pfkey_sock *pfk = pfkey_sk(sk);
  3222. struct sk_buff *skb;
  3223. int copied, err;
  3224. err = -EINVAL;
  3225. if (flags & ~(MSG_PEEK|MSG_DONTWAIT|MSG_TRUNC|MSG_CMSG_COMPAT))
  3226. goto out;
  3227. msg->msg_namelen = 0;
  3228. skb = skb_recv_datagram(sk, flags, flags & MSG_DONTWAIT, &err);
  3229. if (skb == NULL)
  3230. goto out;
  3231. copied = skb->len;
  3232. if (copied > len) {
  3233. msg->msg_flags |= MSG_TRUNC;
  3234. copied = len;
  3235. }
  3236. skb_reset_transport_header(skb);
  3237. err = skb_copy_datagram_iovec(skb, 0, msg->msg_iov, copied);
  3238. if (err)
  3239. goto out_free;
  3240. sock_recv_timestamp(msg, sk, skb);
  3241. err = (flags & MSG_TRUNC) ? skb->len : copied;
  3242. if (pfk->dump.dump != NULL &&
  3243. 3 * atomic_read(&sk->sk_rmem_alloc) <= sk->sk_rcvbuf)
  3244. pfkey_do_dump(pfk);
  3245. out_free:
  3246. skb_free_datagram(sk, skb);
  3247. out:
  3248. return err;
  3249. }
  3250. static const struct proto_ops pfkey_ops = {
  3251. .family = PF_KEY,
  3252. .owner = THIS_MODULE,
  3253. /* Operations that make no sense on pfkey sockets. */
  3254. .bind = sock_no_bind,
  3255. .connect = sock_no_connect,
  3256. .socketpair = sock_no_socketpair,
  3257. .accept = sock_no_accept,
  3258. .getname = sock_no_getname,
  3259. .ioctl = sock_no_ioctl,
  3260. .listen = sock_no_listen,
  3261. .shutdown = sock_no_shutdown,
  3262. .setsockopt = sock_no_setsockopt,
  3263. .getsockopt = sock_no_getsockopt,
  3264. .mmap = sock_no_mmap,
  3265. .sendpage = sock_no_sendpage,
  3266. /* Now the operations that really occur. */
  3267. .release = pfkey_release,
  3268. .poll = datagram_poll,
  3269. .sendmsg = pfkey_sendmsg,
  3270. .recvmsg = pfkey_recvmsg,
  3271. };
  3272. static struct net_proto_family pfkey_family_ops = {
  3273. .family = PF_KEY,
  3274. .create = pfkey_create,
  3275. .owner = THIS_MODULE,
  3276. };
  3277. #ifdef CONFIG_PROC_FS
  3278. static int pfkey_seq_show(struct seq_file *f, void *v)
  3279. {
  3280. struct sock *s;
  3281. s = (struct sock *)v;
  3282. if (v == SEQ_START_TOKEN)
  3283. seq_printf(f ,"sk RefCnt Rmem Wmem User Inode\n");
  3284. else
  3285. seq_printf(f ,"%p %-6d %-6u %-6u %-6u %-6lu\n",
  3286. s,
  3287. atomic_read(&s->sk_refcnt),
  3288. atomic_read(&s->sk_rmem_alloc),
  3289. atomic_read(&s->sk_wmem_alloc),
  3290. sock_i_uid(s),
  3291. sock_i_ino(s)
  3292. );
  3293. return 0;
  3294. }
  3295. static void *pfkey_seq_start(struct seq_file *f, loff_t *ppos)
  3296. {
  3297. struct sock *s;
  3298. struct hlist_node *node;
  3299. loff_t pos = *ppos;
  3300. read_lock(&pfkey_table_lock);
  3301. if (pos == 0)
  3302. return SEQ_START_TOKEN;
  3303. sk_for_each(s, node, &pfkey_table)
  3304. if (pos-- == 1)
  3305. return s;
  3306. return NULL;
  3307. }
  3308. static void *pfkey_seq_next(struct seq_file *f, void *v, loff_t *ppos)
  3309. {
  3310. ++*ppos;
  3311. return (v == SEQ_START_TOKEN) ?
  3312. sk_head(&pfkey_table) :
  3313. sk_next((struct sock *)v);
  3314. }
  3315. static void pfkey_seq_stop(struct seq_file *f, void *v)
  3316. {
  3317. read_unlock(&pfkey_table_lock);
  3318. }
  3319. static struct seq_operations pfkey_seq_ops = {
  3320. .start = pfkey_seq_start,
  3321. .next = pfkey_seq_next,
  3322. .stop = pfkey_seq_stop,
  3323. .show = pfkey_seq_show,
  3324. };
  3325. static int pfkey_seq_open(struct inode *inode, struct file *file)
  3326. {
  3327. return seq_open(file, &pfkey_seq_ops);
  3328. }
  3329. static struct file_operations pfkey_proc_ops = {
  3330. .open = pfkey_seq_open,
  3331. .read = seq_read,
  3332. .llseek = seq_lseek,
  3333. .release = seq_release,
  3334. };
  3335. static int pfkey_init_proc(void)
  3336. {
  3337. struct proc_dir_entry *e;
  3338. e = proc_net_fops_create(&init_net, "pfkey", 0, &pfkey_proc_ops);
  3339. if (e == NULL)
  3340. return -ENOMEM;
  3341. return 0;
  3342. }
  3343. static void pfkey_exit_proc(void)
  3344. {
  3345. proc_net_remove(&init_net, "pfkey");
  3346. }
  3347. #else
  3348. static inline int pfkey_init_proc(void)
  3349. {
  3350. return 0;
  3351. }
  3352. static inline void pfkey_exit_proc(void)
  3353. {
  3354. }
  3355. #endif
  3356. static struct xfrm_mgr pfkeyv2_mgr =
  3357. {
  3358. .id = "pfkeyv2",
  3359. .notify = pfkey_send_notify,
  3360. .acquire = pfkey_send_acquire,
  3361. .compile_policy = pfkey_compile_policy,
  3362. .new_mapping = pfkey_send_new_mapping,
  3363. .notify_policy = pfkey_send_policy_notify,
  3364. .migrate = pfkey_send_migrate,
  3365. };
  3366. static void __exit ipsec_pfkey_exit(void)
  3367. {
  3368. xfrm_unregister_km(&pfkeyv2_mgr);
  3369. pfkey_exit_proc();
  3370. sock_unregister(PF_KEY);
  3371. proto_unregister(&key_proto);
  3372. }
  3373. static int __init ipsec_pfkey_init(void)
  3374. {
  3375. int err = proto_register(&key_proto, 0);
  3376. if (err != 0)
  3377. goto out;
  3378. err = sock_register(&pfkey_family_ops);
  3379. if (err != 0)
  3380. goto out_unregister_key_proto;
  3381. err = pfkey_init_proc();
  3382. if (err != 0)
  3383. goto out_sock_unregister;
  3384. err = xfrm_register_km(&pfkeyv2_mgr);
  3385. if (err != 0)
  3386. goto out_remove_proc_entry;
  3387. out:
  3388. return err;
  3389. out_remove_proc_entry:
  3390. pfkey_exit_proc();
  3391. out_sock_unregister:
  3392. sock_unregister(PF_KEY);
  3393. out_unregister_key_proto:
  3394. proto_unregister(&key_proto);
  3395. goto out;
  3396. }
  3397. module_init(ipsec_pfkey_init);
  3398. module_exit(ipsec_pfkey_exit);
  3399. MODULE_LICENSE("GPL");
  3400. MODULE_ALIAS_NETPROTO(PF_KEY);