esp4.c 24 KB

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  1. #define pr_fmt(fmt) "IPsec: " fmt
  2. #include <crypto/aead.h>
  3. #include <crypto/authenc.h>
  4. #include <linux/err.h>
  5. #include <linux/module.h>
  6. #include <net/ip.h>
  7. #include <net/xfrm.h>
  8. #include <net/esp.h>
  9. #include <linux/scatterlist.h>
  10. #include <linux/kernel.h>
  11. #include <linux/pfkeyv2.h>
  12. #include <linux/rtnetlink.h>
  13. #include <linux/slab.h>
  14. #include <linux/spinlock.h>
  15. #include <linux/in6.h>
  16. #include <net/icmp.h>
  17. #include <net/protocol.h>
  18. #include <net/udp.h>
  19. #include <linux/highmem.h>
  20. struct esp_skb_cb {
  21. struct xfrm_skb_cb xfrm;
  22. void *tmp;
  23. };
  24. struct esp_output_extra {
  25. __be32 seqhi;
  26. u32 esphoff;
  27. };
  28. #define ESP_SKB_CB(__skb) ((struct esp_skb_cb *)&((__skb)->cb[0]))
  29. static u32 esp4_get_mtu(struct xfrm_state *x, int mtu);
  30. /*
  31. * Allocate an AEAD request structure with extra space for SG and IV.
  32. *
  33. * For alignment considerations the IV is placed at the front, followed
  34. * by the request and finally the SG list.
  35. *
  36. * TODO: Use spare space in skb for this where possible.
  37. */
  38. static void *esp_alloc_tmp(struct crypto_aead *aead, int nfrags, int extralen)
  39. {
  40. unsigned int len;
  41. len = extralen;
  42. len += crypto_aead_ivsize(aead);
  43. if (len) {
  44. len += crypto_aead_alignmask(aead) &
  45. ~(crypto_tfm_ctx_alignment() - 1);
  46. len = ALIGN(len, crypto_tfm_ctx_alignment());
  47. }
  48. len += sizeof(struct aead_request) + crypto_aead_reqsize(aead);
  49. len = ALIGN(len, __alignof__(struct scatterlist));
  50. len += sizeof(struct scatterlist) * nfrags;
  51. return kmalloc(len, GFP_ATOMIC);
  52. }
  53. static inline void *esp_tmp_extra(void *tmp)
  54. {
  55. return PTR_ALIGN(tmp, __alignof__(struct esp_output_extra));
  56. }
  57. static inline u8 *esp_tmp_iv(struct crypto_aead *aead, void *tmp, int extralen)
  58. {
  59. return crypto_aead_ivsize(aead) ?
  60. PTR_ALIGN((u8 *)tmp + extralen,
  61. crypto_aead_alignmask(aead) + 1) : tmp + extralen;
  62. }
  63. static inline struct aead_request *esp_tmp_req(struct crypto_aead *aead, u8 *iv)
  64. {
  65. struct aead_request *req;
  66. req = (void *)PTR_ALIGN(iv + crypto_aead_ivsize(aead),
  67. crypto_tfm_ctx_alignment());
  68. aead_request_set_tfm(req, aead);
  69. return req;
  70. }
  71. static inline struct scatterlist *esp_req_sg(struct crypto_aead *aead,
  72. struct aead_request *req)
  73. {
  74. return (void *)ALIGN((unsigned long)(req + 1) +
  75. crypto_aead_reqsize(aead),
  76. __alignof__(struct scatterlist));
  77. }
  78. static void esp_ssg_unref(struct xfrm_state *x, void *tmp)
  79. {
  80. struct esp_output_extra *extra = esp_tmp_extra(tmp);
  81. struct crypto_aead *aead = x->data;
  82. int extralen = 0;
  83. u8 *iv;
  84. struct aead_request *req;
  85. struct scatterlist *sg;
  86. if (x->props.flags & XFRM_STATE_ESN)
  87. extralen += sizeof(*extra);
  88. extra = esp_tmp_extra(tmp);
  89. iv = esp_tmp_iv(aead, tmp, extralen);
  90. req = esp_tmp_req(aead, iv);
  91. /* Unref skb_frag_pages in the src scatterlist if necessary.
  92. * Skip the first sg which comes from skb->data.
  93. */
  94. if (req->src != req->dst)
  95. for (sg = sg_next(req->src); sg; sg = sg_next(sg))
  96. put_page(sg_page(sg));
  97. }
  98. static void esp_output_done(struct crypto_async_request *base, int err)
  99. {
  100. struct sk_buff *skb = base->data;
  101. void *tmp;
  102. struct dst_entry *dst = skb_dst(skb);
  103. struct xfrm_state *x = dst->xfrm;
  104. tmp = ESP_SKB_CB(skb)->tmp;
  105. esp_ssg_unref(x, tmp);
  106. kfree(tmp);
  107. xfrm_output_resume(skb, err);
  108. }
  109. /* Move ESP header back into place. */
  110. static void esp_restore_header(struct sk_buff *skb, unsigned int offset)
  111. {
  112. struct ip_esp_hdr *esph = (void *)(skb->data + offset);
  113. void *tmp = ESP_SKB_CB(skb)->tmp;
  114. __be32 *seqhi = esp_tmp_extra(tmp);
  115. esph->seq_no = esph->spi;
  116. esph->spi = *seqhi;
  117. }
  118. static void esp_output_restore_header(struct sk_buff *skb)
  119. {
  120. void *tmp = ESP_SKB_CB(skb)->tmp;
  121. struct esp_output_extra *extra = esp_tmp_extra(tmp);
  122. esp_restore_header(skb, skb_transport_offset(skb) + extra->esphoff -
  123. sizeof(__be32));
  124. }
  125. static struct ip_esp_hdr *esp_output_set_extra(struct sk_buff *skb,
  126. struct xfrm_state *x,
  127. struct ip_esp_hdr *esph,
  128. struct esp_output_extra *extra)
  129. {
  130. /* For ESN we move the header forward by 4 bytes to
  131. * accomodate the high bits. We will move it back after
  132. * encryption.
  133. */
  134. if ((x->props.flags & XFRM_STATE_ESN)) {
  135. __u32 seqhi;
  136. struct xfrm_offload *xo = xfrm_offload(skb);
  137. if (xo)
  138. seqhi = xo->seq.hi;
  139. else
  140. seqhi = XFRM_SKB_CB(skb)->seq.output.hi;
  141. extra->esphoff = (unsigned char *)esph -
  142. skb_transport_header(skb);
  143. esph = (struct ip_esp_hdr *)((unsigned char *)esph - 4);
  144. extra->seqhi = esph->spi;
  145. esph->seq_no = htonl(seqhi);
  146. }
  147. esph->spi = x->id.spi;
  148. return esph;
  149. }
  150. static void esp_output_done_esn(struct crypto_async_request *base, int err)
  151. {
  152. struct sk_buff *skb = base->data;
  153. esp_output_restore_header(skb);
  154. esp_output_done(base, err);
  155. }
  156. static void esp_output_fill_trailer(u8 *tail, int tfclen, int plen, __u8 proto)
  157. {
  158. /* Fill padding... */
  159. if (tfclen) {
  160. memset(tail, 0, tfclen);
  161. tail += tfclen;
  162. }
  163. do {
  164. int i;
  165. for (i = 0; i < plen - 2; i++)
  166. tail[i] = i + 1;
  167. } while (0);
  168. tail[plen - 2] = plen - 2;
  169. tail[plen - 1] = proto;
  170. }
  171. static void esp_output_udp_encap(struct xfrm_state *x, struct sk_buff *skb, struct esp_info *esp)
  172. {
  173. int encap_type;
  174. struct udphdr *uh;
  175. __be32 *udpdata32;
  176. __be16 sport, dport;
  177. struct xfrm_encap_tmpl *encap = x->encap;
  178. struct ip_esp_hdr *esph = esp->esph;
  179. spin_lock_bh(&x->lock);
  180. sport = encap->encap_sport;
  181. dport = encap->encap_dport;
  182. encap_type = encap->encap_type;
  183. spin_unlock_bh(&x->lock);
  184. uh = (struct udphdr *)esph;
  185. uh->source = sport;
  186. uh->dest = dport;
  187. uh->len = htons(skb->len + esp->tailen
  188. - skb_transport_offset(skb));
  189. uh->check = 0;
  190. switch (encap_type) {
  191. default:
  192. case UDP_ENCAP_ESPINUDP:
  193. esph = (struct ip_esp_hdr *)(uh + 1);
  194. break;
  195. case UDP_ENCAP_ESPINUDP_NON_IKE:
  196. udpdata32 = (__be32 *)(uh + 1);
  197. udpdata32[0] = udpdata32[1] = 0;
  198. esph = (struct ip_esp_hdr *)(udpdata32 + 2);
  199. break;
  200. }
  201. *skb_mac_header(skb) = IPPROTO_UDP;
  202. esp->esph = esph;
  203. }
  204. int esp_output_head(struct xfrm_state *x, struct sk_buff *skb, struct esp_info *esp)
  205. {
  206. u8 *tail;
  207. u8 *vaddr;
  208. int nfrags;
  209. int esph_offset;
  210. struct page *page;
  211. struct sk_buff *trailer;
  212. int tailen = esp->tailen;
  213. /* this is non-NULL only with UDP Encapsulation */
  214. if (x->encap)
  215. esp_output_udp_encap(x, skb, esp);
  216. if (!skb_cloned(skb)) {
  217. if (tailen <= skb_tailroom(skb)) {
  218. nfrags = 1;
  219. trailer = skb;
  220. tail = skb_tail_pointer(trailer);
  221. goto skip_cow;
  222. } else if ((skb_shinfo(skb)->nr_frags < MAX_SKB_FRAGS)
  223. && !skb_has_frag_list(skb)) {
  224. int allocsize;
  225. struct sock *sk = skb->sk;
  226. struct page_frag *pfrag = &x->xfrag;
  227. esp->inplace = false;
  228. allocsize = ALIGN(tailen, L1_CACHE_BYTES);
  229. spin_lock_bh(&x->lock);
  230. if (unlikely(!skb_page_frag_refill(allocsize, pfrag, GFP_ATOMIC))) {
  231. spin_unlock_bh(&x->lock);
  232. goto cow;
  233. }
  234. page = pfrag->page;
  235. get_page(page);
  236. vaddr = kmap_atomic(page);
  237. tail = vaddr + pfrag->offset;
  238. esp_output_fill_trailer(tail, esp->tfclen, esp->plen, esp->proto);
  239. kunmap_atomic(vaddr);
  240. nfrags = skb_shinfo(skb)->nr_frags;
  241. __skb_fill_page_desc(skb, nfrags, page, pfrag->offset,
  242. tailen);
  243. skb_shinfo(skb)->nr_frags = ++nfrags;
  244. pfrag->offset = pfrag->offset + allocsize;
  245. spin_unlock_bh(&x->lock);
  246. nfrags++;
  247. skb->len += tailen;
  248. skb->data_len += tailen;
  249. skb->truesize += tailen;
  250. if (sk)
  251. refcount_add(tailen, &sk->sk_wmem_alloc);
  252. goto out;
  253. }
  254. }
  255. cow:
  256. esph_offset = (unsigned char *)esp->esph - skb_transport_header(skb);
  257. nfrags = skb_cow_data(skb, tailen, &trailer);
  258. if (nfrags < 0)
  259. goto out;
  260. tail = skb_tail_pointer(trailer);
  261. esp->esph = (struct ip_esp_hdr *)(skb_transport_header(skb) + esph_offset);
  262. skip_cow:
  263. esp_output_fill_trailer(tail, esp->tfclen, esp->plen, esp->proto);
  264. pskb_put(skb, trailer, tailen);
  265. out:
  266. return nfrags;
  267. }
  268. EXPORT_SYMBOL_GPL(esp_output_head);
  269. int esp_output_tail(struct xfrm_state *x, struct sk_buff *skb, struct esp_info *esp)
  270. {
  271. u8 *iv;
  272. int alen;
  273. void *tmp;
  274. int ivlen;
  275. int assoclen;
  276. int extralen;
  277. struct page *page;
  278. struct ip_esp_hdr *esph;
  279. struct crypto_aead *aead;
  280. struct aead_request *req;
  281. struct scatterlist *sg, *dsg;
  282. struct esp_output_extra *extra;
  283. int err = -ENOMEM;
  284. assoclen = sizeof(struct ip_esp_hdr);
  285. extralen = 0;
  286. if (x->props.flags & XFRM_STATE_ESN) {
  287. extralen += sizeof(*extra);
  288. assoclen += sizeof(__be32);
  289. }
  290. aead = x->data;
  291. alen = crypto_aead_authsize(aead);
  292. ivlen = crypto_aead_ivsize(aead);
  293. tmp = esp_alloc_tmp(aead, esp->nfrags + 2, extralen);
  294. if (!tmp)
  295. goto error;
  296. extra = esp_tmp_extra(tmp);
  297. iv = esp_tmp_iv(aead, tmp, extralen);
  298. req = esp_tmp_req(aead, iv);
  299. sg = esp_req_sg(aead, req);
  300. if (esp->inplace)
  301. dsg = sg;
  302. else
  303. dsg = &sg[esp->nfrags];
  304. esph = esp_output_set_extra(skb, x, esp->esph, extra);
  305. esp->esph = esph;
  306. sg_init_table(sg, esp->nfrags);
  307. err = skb_to_sgvec(skb, sg,
  308. (unsigned char *)esph - skb->data,
  309. assoclen + ivlen + esp->clen + alen);
  310. if (unlikely(err < 0))
  311. goto error_free;
  312. if (!esp->inplace) {
  313. int allocsize;
  314. struct page_frag *pfrag = &x->xfrag;
  315. allocsize = ALIGN(skb->data_len, L1_CACHE_BYTES);
  316. spin_lock_bh(&x->lock);
  317. if (unlikely(!skb_page_frag_refill(allocsize, pfrag, GFP_ATOMIC))) {
  318. spin_unlock_bh(&x->lock);
  319. goto error_free;
  320. }
  321. skb_shinfo(skb)->nr_frags = 1;
  322. page = pfrag->page;
  323. get_page(page);
  324. /* replace page frags in skb with new page */
  325. __skb_fill_page_desc(skb, 0, page, pfrag->offset, skb->data_len);
  326. pfrag->offset = pfrag->offset + allocsize;
  327. spin_unlock_bh(&x->lock);
  328. sg_init_table(dsg, skb_shinfo(skb)->nr_frags + 1);
  329. err = skb_to_sgvec(skb, dsg,
  330. (unsigned char *)esph - skb->data,
  331. assoclen + ivlen + esp->clen + alen);
  332. if (unlikely(err < 0))
  333. goto error_free;
  334. }
  335. if ((x->props.flags & XFRM_STATE_ESN))
  336. aead_request_set_callback(req, 0, esp_output_done_esn, skb);
  337. else
  338. aead_request_set_callback(req, 0, esp_output_done, skb);
  339. aead_request_set_crypt(req, sg, dsg, ivlen + esp->clen, iv);
  340. aead_request_set_ad(req, assoclen);
  341. memset(iv, 0, ivlen);
  342. memcpy(iv + ivlen - min(ivlen, 8), (u8 *)&esp->seqno + 8 - min(ivlen, 8),
  343. min(ivlen, 8));
  344. ESP_SKB_CB(skb)->tmp = tmp;
  345. err = crypto_aead_encrypt(req);
  346. switch (err) {
  347. case -EINPROGRESS:
  348. goto error;
  349. case -EBUSY:
  350. err = NET_XMIT_DROP;
  351. break;
  352. case 0:
  353. if ((x->props.flags & XFRM_STATE_ESN))
  354. esp_output_restore_header(skb);
  355. }
  356. if (sg != dsg)
  357. esp_ssg_unref(x, tmp);
  358. error_free:
  359. kfree(tmp);
  360. error:
  361. return err;
  362. }
  363. EXPORT_SYMBOL_GPL(esp_output_tail);
  364. static int esp_output(struct xfrm_state *x, struct sk_buff *skb)
  365. {
  366. int alen;
  367. int blksize;
  368. struct ip_esp_hdr *esph;
  369. struct crypto_aead *aead;
  370. struct esp_info esp;
  371. esp.inplace = true;
  372. esp.proto = *skb_mac_header(skb);
  373. *skb_mac_header(skb) = IPPROTO_ESP;
  374. /* skb is pure payload to encrypt */
  375. aead = x->data;
  376. alen = crypto_aead_authsize(aead);
  377. esp.tfclen = 0;
  378. if (x->tfcpad) {
  379. struct xfrm_dst *dst = (struct xfrm_dst *)skb_dst(skb);
  380. u32 padto;
  381. padto = min(x->tfcpad, esp4_get_mtu(x, dst->child_mtu_cached));
  382. if (skb->len < padto)
  383. esp.tfclen = padto - skb->len;
  384. }
  385. blksize = ALIGN(crypto_aead_blocksize(aead), 4);
  386. esp.clen = ALIGN(skb->len + 2 + esp.tfclen, blksize);
  387. esp.plen = esp.clen - skb->len - esp.tfclen;
  388. esp.tailen = esp.tfclen + esp.plen + alen;
  389. esp.esph = ip_esp_hdr(skb);
  390. esp.nfrags = esp_output_head(x, skb, &esp);
  391. if (esp.nfrags < 0)
  392. return esp.nfrags;
  393. esph = esp.esph;
  394. esph->spi = x->id.spi;
  395. esph->seq_no = htonl(XFRM_SKB_CB(skb)->seq.output.low);
  396. esp.seqno = cpu_to_be64(XFRM_SKB_CB(skb)->seq.output.low +
  397. ((u64)XFRM_SKB_CB(skb)->seq.output.hi << 32));
  398. skb_push(skb, -skb_network_offset(skb));
  399. return esp_output_tail(x, skb, &esp);
  400. }
  401. static inline int esp_remove_trailer(struct sk_buff *skb)
  402. {
  403. struct xfrm_state *x = xfrm_input_state(skb);
  404. struct xfrm_offload *xo = xfrm_offload(skb);
  405. struct crypto_aead *aead = x->data;
  406. int alen, hlen, elen;
  407. int padlen, trimlen;
  408. __wsum csumdiff;
  409. u8 nexthdr[2];
  410. int ret;
  411. alen = crypto_aead_authsize(aead);
  412. hlen = sizeof(struct ip_esp_hdr) + crypto_aead_ivsize(aead);
  413. elen = skb->len - hlen;
  414. if (xo && (xo->flags & XFRM_ESP_NO_TRAILER)) {
  415. ret = xo->proto;
  416. goto out;
  417. }
  418. if (skb_copy_bits(skb, skb->len - alen - 2, nexthdr, 2))
  419. BUG();
  420. ret = -EINVAL;
  421. padlen = nexthdr[0];
  422. if (padlen + 2 + alen >= elen) {
  423. net_dbg_ratelimited("ipsec esp packet is garbage padlen=%d, elen=%d\n",
  424. padlen + 2, elen - alen);
  425. goto out;
  426. }
  427. trimlen = alen + padlen + 2;
  428. if (skb->ip_summed == CHECKSUM_COMPLETE) {
  429. csumdiff = skb_checksum(skb, skb->len - trimlen, trimlen, 0);
  430. skb->csum = csum_block_sub(skb->csum, csumdiff,
  431. skb->len - trimlen);
  432. }
  433. pskb_trim(skb, skb->len - trimlen);
  434. ret = nexthdr[1];
  435. out:
  436. return ret;
  437. }
  438. int esp_input_done2(struct sk_buff *skb, int err)
  439. {
  440. const struct iphdr *iph;
  441. struct xfrm_state *x = xfrm_input_state(skb);
  442. struct xfrm_offload *xo = xfrm_offload(skb);
  443. struct crypto_aead *aead = x->data;
  444. int hlen = sizeof(struct ip_esp_hdr) + crypto_aead_ivsize(aead);
  445. int ihl;
  446. if (!xo || (xo && !(xo->flags & CRYPTO_DONE)))
  447. kfree(ESP_SKB_CB(skb)->tmp);
  448. if (unlikely(err))
  449. goto out;
  450. err = esp_remove_trailer(skb);
  451. if (unlikely(err < 0))
  452. goto out;
  453. iph = ip_hdr(skb);
  454. ihl = iph->ihl * 4;
  455. if (x->encap) {
  456. struct xfrm_encap_tmpl *encap = x->encap;
  457. struct udphdr *uh = (void *)(skb_network_header(skb) + ihl);
  458. /*
  459. * 1) if the NAT-T peer's IP or port changed then
  460. * advertize the change to the keying daemon.
  461. * This is an inbound SA, so just compare
  462. * SRC ports.
  463. */
  464. if (iph->saddr != x->props.saddr.a4 ||
  465. uh->source != encap->encap_sport) {
  466. xfrm_address_t ipaddr;
  467. ipaddr.a4 = iph->saddr;
  468. km_new_mapping(x, &ipaddr, uh->source);
  469. /* XXX: perhaps add an extra
  470. * policy check here, to see
  471. * if we should allow or
  472. * reject a packet from a
  473. * different source
  474. * address/port.
  475. */
  476. }
  477. /*
  478. * 2) ignore UDP/TCP checksums in case
  479. * of NAT-T in Transport Mode, or
  480. * perform other post-processing fixes
  481. * as per draft-ietf-ipsec-udp-encaps-06,
  482. * section 3.1.2
  483. */
  484. if (x->props.mode == XFRM_MODE_TRANSPORT)
  485. skb->ip_summed = CHECKSUM_UNNECESSARY;
  486. }
  487. skb_pull_rcsum(skb, hlen);
  488. if (x->props.mode == XFRM_MODE_TUNNEL)
  489. skb_reset_transport_header(skb);
  490. else
  491. skb_set_transport_header(skb, -ihl);
  492. /* RFC4303: Drop dummy packets without any error */
  493. if (err == IPPROTO_NONE)
  494. err = -EINVAL;
  495. out:
  496. return err;
  497. }
  498. EXPORT_SYMBOL_GPL(esp_input_done2);
  499. static void esp_input_done(struct crypto_async_request *base, int err)
  500. {
  501. struct sk_buff *skb = base->data;
  502. xfrm_input_resume(skb, esp_input_done2(skb, err));
  503. }
  504. static void esp_input_restore_header(struct sk_buff *skb)
  505. {
  506. esp_restore_header(skb, 0);
  507. __skb_pull(skb, 4);
  508. }
  509. static void esp_input_set_header(struct sk_buff *skb, __be32 *seqhi)
  510. {
  511. struct xfrm_state *x = xfrm_input_state(skb);
  512. struct ip_esp_hdr *esph = (struct ip_esp_hdr *)skb->data;
  513. /* For ESN we move the header forward by 4 bytes to
  514. * accomodate the high bits. We will move it back after
  515. * decryption.
  516. */
  517. if ((x->props.flags & XFRM_STATE_ESN)) {
  518. esph = skb_push(skb, 4);
  519. *seqhi = esph->spi;
  520. esph->spi = esph->seq_no;
  521. esph->seq_no = XFRM_SKB_CB(skb)->seq.input.hi;
  522. }
  523. }
  524. static void esp_input_done_esn(struct crypto_async_request *base, int err)
  525. {
  526. struct sk_buff *skb = base->data;
  527. esp_input_restore_header(skb);
  528. esp_input_done(base, err);
  529. }
  530. /*
  531. * Note: detecting truncated vs. non-truncated authentication data is very
  532. * expensive, so we only support truncated data, which is the recommended
  533. * and common case.
  534. */
  535. static int esp_input(struct xfrm_state *x, struct sk_buff *skb)
  536. {
  537. struct ip_esp_hdr *esph;
  538. struct crypto_aead *aead = x->data;
  539. struct aead_request *req;
  540. struct sk_buff *trailer;
  541. int ivlen = crypto_aead_ivsize(aead);
  542. int elen = skb->len - sizeof(*esph) - ivlen;
  543. int nfrags;
  544. int assoclen;
  545. int seqhilen;
  546. __be32 *seqhi;
  547. void *tmp;
  548. u8 *iv;
  549. struct scatterlist *sg;
  550. int err = -EINVAL;
  551. if (!pskb_may_pull(skb, sizeof(*esph) + ivlen))
  552. goto out;
  553. if (elen <= 0)
  554. goto out;
  555. assoclen = sizeof(*esph);
  556. seqhilen = 0;
  557. if (x->props.flags & XFRM_STATE_ESN) {
  558. seqhilen += sizeof(__be32);
  559. assoclen += seqhilen;
  560. }
  561. if (!skb_cloned(skb)) {
  562. if (!skb_is_nonlinear(skb)) {
  563. nfrags = 1;
  564. goto skip_cow;
  565. } else if (!skb_has_frag_list(skb)) {
  566. nfrags = skb_shinfo(skb)->nr_frags;
  567. nfrags++;
  568. goto skip_cow;
  569. }
  570. }
  571. err = skb_cow_data(skb, 0, &trailer);
  572. if (err < 0)
  573. goto out;
  574. nfrags = err;
  575. skip_cow:
  576. err = -ENOMEM;
  577. tmp = esp_alloc_tmp(aead, nfrags, seqhilen);
  578. if (!tmp)
  579. goto out;
  580. ESP_SKB_CB(skb)->tmp = tmp;
  581. seqhi = esp_tmp_extra(tmp);
  582. iv = esp_tmp_iv(aead, tmp, seqhilen);
  583. req = esp_tmp_req(aead, iv);
  584. sg = esp_req_sg(aead, req);
  585. esp_input_set_header(skb, seqhi);
  586. sg_init_table(sg, nfrags);
  587. err = skb_to_sgvec(skb, sg, 0, skb->len);
  588. if (unlikely(err < 0)) {
  589. kfree(tmp);
  590. goto out;
  591. }
  592. skb->ip_summed = CHECKSUM_NONE;
  593. if ((x->props.flags & XFRM_STATE_ESN))
  594. aead_request_set_callback(req, 0, esp_input_done_esn, skb);
  595. else
  596. aead_request_set_callback(req, 0, esp_input_done, skb);
  597. aead_request_set_crypt(req, sg, sg, elen + ivlen, iv);
  598. aead_request_set_ad(req, assoclen);
  599. err = crypto_aead_decrypt(req);
  600. if (err == -EINPROGRESS)
  601. goto out;
  602. if ((x->props.flags & XFRM_STATE_ESN))
  603. esp_input_restore_header(skb);
  604. err = esp_input_done2(skb, err);
  605. out:
  606. return err;
  607. }
  608. static u32 esp4_get_mtu(struct xfrm_state *x, int mtu)
  609. {
  610. struct crypto_aead *aead = x->data;
  611. u32 blksize = ALIGN(crypto_aead_blocksize(aead), 4);
  612. unsigned int net_adj;
  613. switch (x->props.mode) {
  614. case XFRM_MODE_TRANSPORT:
  615. case XFRM_MODE_BEET:
  616. net_adj = sizeof(struct iphdr);
  617. break;
  618. case XFRM_MODE_TUNNEL:
  619. net_adj = 0;
  620. break;
  621. default:
  622. BUG();
  623. }
  624. return ((mtu - x->props.header_len - crypto_aead_authsize(aead) -
  625. net_adj) & ~(blksize - 1)) + net_adj - 2;
  626. }
  627. static int esp4_err(struct sk_buff *skb, u32 info)
  628. {
  629. struct net *net = dev_net(skb->dev);
  630. const struct iphdr *iph = (const struct iphdr *)skb->data;
  631. struct ip_esp_hdr *esph = (struct ip_esp_hdr *)(skb->data+(iph->ihl<<2));
  632. struct xfrm_state *x;
  633. switch (icmp_hdr(skb)->type) {
  634. case ICMP_DEST_UNREACH:
  635. if (icmp_hdr(skb)->code != ICMP_FRAG_NEEDED)
  636. return 0;
  637. case ICMP_REDIRECT:
  638. break;
  639. default:
  640. return 0;
  641. }
  642. x = xfrm_state_lookup(net, skb->mark, (const xfrm_address_t *)&iph->daddr,
  643. esph->spi, IPPROTO_ESP, AF_INET);
  644. if (!x)
  645. return 0;
  646. if (icmp_hdr(skb)->type == ICMP_DEST_UNREACH)
  647. ipv4_update_pmtu(skb, net, info, 0, 0, IPPROTO_ESP, 0);
  648. else
  649. ipv4_redirect(skb, net, 0, 0, IPPROTO_ESP, 0);
  650. xfrm_state_put(x);
  651. return 0;
  652. }
  653. static void esp_destroy(struct xfrm_state *x)
  654. {
  655. struct crypto_aead *aead = x->data;
  656. if (!aead)
  657. return;
  658. crypto_free_aead(aead);
  659. }
  660. static int esp_init_aead(struct xfrm_state *x)
  661. {
  662. char aead_name[CRYPTO_MAX_ALG_NAME];
  663. struct crypto_aead *aead;
  664. int err;
  665. u32 mask = 0;
  666. err = -ENAMETOOLONG;
  667. if (snprintf(aead_name, CRYPTO_MAX_ALG_NAME, "%s(%s)",
  668. x->geniv, x->aead->alg_name) >= CRYPTO_MAX_ALG_NAME)
  669. goto error;
  670. if (x->xso.offload_handle)
  671. mask |= CRYPTO_ALG_ASYNC;
  672. aead = crypto_alloc_aead(aead_name, 0, mask);
  673. err = PTR_ERR(aead);
  674. if (IS_ERR(aead))
  675. goto error;
  676. x->data = aead;
  677. err = crypto_aead_setkey(aead, x->aead->alg_key,
  678. (x->aead->alg_key_len + 7) / 8);
  679. if (err)
  680. goto error;
  681. err = crypto_aead_setauthsize(aead, x->aead->alg_icv_len / 8);
  682. if (err)
  683. goto error;
  684. error:
  685. return err;
  686. }
  687. static int esp_init_authenc(struct xfrm_state *x)
  688. {
  689. struct crypto_aead *aead;
  690. struct crypto_authenc_key_param *param;
  691. struct rtattr *rta;
  692. char *key;
  693. char *p;
  694. char authenc_name[CRYPTO_MAX_ALG_NAME];
  695. unsigned int keylen;
  696. int err;
  697. u32 mask = 0;
  698. err = -EINVAL;
  699. if (!x->ealg)
  700. goto error;
  701. err = -ENAMETOOLONG;
  702. if ((x->props.flags & XFRM_STATE_ESN)) {
  703. if (snprintf(authenc_name, CRYPTO_MAX_ALG_NAME,
  704. "%s%sauthencesn(%s,%s)%s",
  705. x->geniv ?: "", x->geniv ? "(" : "",
  706. x->aalg ? x->aalg->alg_name : "digest_null",
  707. x->ealg->alg_name,
  708. x->geniv ? ")" : "") >= CRYPTO_MAX_ALG_NAME)
  709. goto error;
  710. } else {
  711. if (snprintf(authenc_name, CRYPTO_MAX_ALG_NAME,
  712. "%s%sauthenc(%s,%s)%s",
  713. x->geniv ?: "", x->geniv ? "(" : "",
  714. x->aalg ? x->aalg->alg_name : "digest_null",
  715. x->ealg->alg_name,
  716. x->geniv ? ")" : "") >= CRYPTO_MAX_ALG_NAME)
  717. goto error;
  718. }
  719. if (x->xso.offload_handle)
  720. mask |= CRYPTO_ALG_ASYNC;
  721. aead = crypto_alloc_aead(authenc_name, 0, mask);
  722. err = PTR_ERR(aead);
  723. if (IS_ERR(aead))
  724. goto error;
  725. x->data = aead;
  726. keylen = (x->aalg ? (x->aalg->alg_key_len + 7) / 8 : 0) +
  727. (x->ealg->alg_key_len + 7) / 8 + RTA_SPACE(sizeof(*param));
  728. err = -ENOMEM;
  729. key = kmalloc(keylen, GFP_KERNEL);
  730. if (!key)
  731. goto error;
  732. p = key;
  733. rta = (void *)p;
  734. rta->rta_type = CRYPTO_AUTHENC_KEYA_PARAM;
  735. rta->rta_len = RTA_LENGTH(sizeof(*param));
  736. param = RTA_DATA(rta);
  737. p += RTA_SPACE(sizeof(*param));
  738. if (x->aalg) {
  739. struct xfrm_algo_desc *aalg_desc;
  740. memcpy(p, x->aalg->alg_key, (x->aalg->alg_key_len + 7) / 8);
  741. p += (x->aalg->alg_key_len + 7) / 8;
  742. aalg_desc = xfrm_aalg_get_byname(x->aalg->alg_name, 0);
  743. BUG_ON(!aalg_desc);
  744. err = -EINVAL;
  745. if (aalg_desc->uinfo.auth.icv_fullbits / 8 !=
  746. crypto_aead_authsize(aead)) {
  747. pr_info("ESP: %s digestsize %u != %hu\n",
  748. x->aalg->alg_name,
  749. crypto_aead_authsize(aead),
  750. aalg_desc->uinfo.auth.icv_fullbits / 8);
  751. goto free_key;
  752. }
  753. err = crypto_aead_setauthsize(
  754. aead, x->aalg->alg_trunc_len / 8);
  755. if (err)
  756. goto free_key;
  757. }
  758. param->enckeylen = cpu_to_be32((x->ealg->alg_key_len + 7) / 8);
  759. memcpy(p, x->ealg->alg_key, (x->ealg->alg_key_len + 7) / 8);
  760. err = crypto_aead_setkey(aead, key, keylen);
  761. free_key:
  762. kfree(key);
  763. error:
  764. return err;
  765. }
  766. static int esp_init_state(struct xfrm_state *x)
  767. {
  768. struct crypto_aead *aead;
  769. u32 align;
  770. int err;
  771. x->data = NULL;
  772. if (x->aead)
  773. err = esp_init_aead(x);
  774. else
  775. err = esp_init_authenc(x);
  776. if (err)
  777. goto error;
  778. aead = x->data;
  779. x->props.header_len = sizeof(struct ip_esp_hdr) +
  780. crypto_aead_ivsize(aead);
  781. if (x->props.mode == XFRM_MODE_TUNNEL)
  782. x->props.header_len += sizeof(struct iphdr);
  783. else if (x->props.mode == XFRM_MODE_BEET && x->sel.family != AF_INET6)
  784. x->props.header_len += IPV4_BEET_PHMAXLEN;
  785. if (x->encap) {
  786. struct xfrm_encap_tmpl *encap = x->encap;
  787. switch (encap->encap_type) {
  788. default:
  789. goto error;
  790. case UDP_ENCAP_ESPINUDP:
  791. x->props.header_len += sizeof(struct udphdr);
  792. break;
  793. case UDP_ENCAP_ESPINUDP_NON_IKE:
  794. x->props.header_len += sizeof(struct udphdr) + 2 * sizeof(u32);
  795. break;
  796. }
  797. }
  798. align = ALIGN(crypto_aead_blocksize(aead), 4);
  799. x->props.trailer_len = align + 1 + crypto_aead_authsize(aead);
  800. error:
  801. return err;
  802. }
  803. static int esp4_rcv_cb(struct sk_buff *skb, int err)
  804. {
  805. return 0;
  806. }
  807. static const struct xfrm_type esp_type =
  808. {
  809. .description = "ESP4",
  810. .owner = THIS_MODULE,
  811. .proto = IPPROTO_ESP,
  812. .flags = XFRM_TYPE_REPLAY_PROT,
  813. .init_state = esp_init_state,
  814. .destructor = esp_destroy,
  815. .get_mtu = esp4_get_mtu,
  816. .input = esp_input,
  817. .output = esp_output,
  818. };
  819. static struct xfrm4_protocol esp4_protocol = {
  820. .handler = xfrm4_rcv,
  821. .input_handler = xfrm_input,
  822. .cb_handler = esp4_rcv_cb,
  823. .err_handler = esp4_err,
  824. .priority = 0,
  825. };
  826. static int __init esp4_init(void)
  827. {
  828. if (xfrm_register_type(&esp_type, AF_INET) < 0) {
  829. pr_info("%s: can't add xfrm type\n", __func__);
  830. return -EAGAIN;
  831. }
  832. if (xfrm4_protocol_register(&esp4_protocol, IPPROTO_ESP) < 0) {
  833. pr_info("%s: can't add protocol\n", __func__);
  834. xfrm_unregister_type(&esp_type, AF_INET);
  835. return -EAGAIN;
  836. }
  837. return 0;
  838. }
  839. static void __exit esp4_fini(void)
  840. {
  841. if (xfrm4_protocol_deregister(&esp4_protocol, IPPROTO_ESP) < 0)
  842. pr_info("%s: can't remove protocol\n", __func__);
  843. if (xfrm_unregister_type(&esp_type, AF_INET) < 0)
  844. pr_info("%s: can't remove xfrm type\n", __func__);
  845. }
  846. module_init(esp4_init);
  847. module_exit(esp4_fini);
  848. MODULE_LICENSE("GPL");
  849. MODULE_ALIAS_XFRM_TYPE(AF_INET, XFRM_PROTO_ESP);