1 /* Kerberos-based RxRPC security 2 * 3 * Copyright (C) 2007 Red Hat, Inc. All Rights Reserved. 4 * Written by David Howells (dhowells@redhat.com) 5 * 6 * This program is free software; you can redistribute it and/or 7 * modify it under the terms of the GNU General Public License 8 * as published by the Free Software Foundation; either version 9 * 2 of the License, or (at your option) any later version. 10 */ 11 12 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 13 14 #include <crypto/skcipher.h> 15 #include <linux/module.h> 16 #include <linux/net.h> 17 #include <linux/skbuff.h> 18 #include <linux/udp.h> 19 #include <linux/scatterlist.h> 20 #include <linux/ctype.h> 21 #include <linux/slab.h> 22 #include <net/sock.h> 23 #include <net/af_rxrpc.h> 24 #include <keys/rxrpc-type.h> 25 #include "ar-internal.h" 26 27 #define RXKAD_VERSION 2 28 #define MAXKRB5TICKETLEN 1024 29 #define RXKAD_TKT_TYPE_KERBEROS_V5 256 30 #define ANAME_SZ 40 /* size of authentication name */ 31 #define INST_SZ 40 /* size of principal's instance */ 32 #define REALM_SZ 40 /* size of principal's auth domain */ 33 #define SNAME_SZ 40 /* size of service name */ 34 35 struct rxkad_level1_hdr { 36 __be32 data_size; /* true data size (excluding padding) */ 37 }; 38 39 struct rxkad_level2_hdr { 40 __be32 data_size; /* true data size (excluding padding) */ 41 __be32 checksum; /* decrypted data checksum */ 42 }; 43 44 /* 45 * this holds a pinned cipher so that keventd doesn't get called by the cipher 46 * alloc routine, but since we have it to hand, we use it to decrypt RESPONSE 47 * packets 48 */ 49 static struct crypto_skcipher *rxkad_ci; 50 static DEFINE_MUTEX(rxkad_ci_mutex); 51 52 /* 53 * initialise connection security 54 */ 55 static int rxkad_init_connection_security(struct rxrpc_connection *conn) 56 { 57 struct crypto_skcipher *ci; 58 struct rxrpc_key_token *token; 59 int ret; 60 61 _enter("{%d},{%x}", conn->debug_id, key_serial(conn->params.key)); 62 63 token = conn->params.key->payload.data[0]; 64 conn->security_ix = token->security_index; 65 66 ci = crypto_alloc_skcipher("pcbc(fcrypt)", 0, CRYPTO_ALG_ASYNC); 67 if (IS_ERR(ci)) { 68 _debug("no cipher"); 69 ret = PTR_ERR(ci); 70 goto error; 71 } 72 73 if (crypto_skcipher_setkey(ci, token->kad->session_key, 74 sizeof(token->kad->session_key)) < 0) 75 BUG(); 76 77 switch (conn->params.security_level) { 78 case RXRPC_SECURITY_PLAIN: 79 break; 80 case RXRPC_SECURITY_AUTH: 81 conn->size_align = 8; 82 conn->security_size = sizeof(struct rxkad_level1_hdr); 83 break; 84 case RXRPC_SECURITY_ENCRYPT: 85 conn->size_align = 8; 86 conn->security_size = sizeof(struct rxkad_level2_hdr); 87 break; 88 default: 89 ret = -EKEYREJECTED; 90 goto error; 91 } 92 93 conn->cipher = ci; 94 ret = 0; 95 error: 96 _leave(" = %d", ret); 97 return ret; 98 } 99 100 /* 101 * prime the encryption state with the invariant parts of a connection's 102 * description 103 */ 104 static int rxkad_prime_packet_security(struct rxrpc_connection *conn) 105 { 106 struct rxrpc_key_token *token; 107 SKCIPHER_REQUEST_ON_STACK(req, conn->cipher); 108 struct scatterlist sg; 109 struct rxrpc_crypt iv; 110 __be32 *tmpbuf; 111 size_t tmpsize = 4 * sizeof(__be32); 112 113 _enter(""); 114 115 if (!conn->params.key) 116 return 0; 117 118 tmpbuf = kmalloc(tmpsize, GFP_KERNEL); 119 if (!tmpbuf) 120 return -ENOMEM; 121 122 token = conn->params.key->payload.data[0]; 123 memcpy(&iv, token->kad->session_key, sizeof(iv)); 124 125 tmpbuf[0] = htonl(conn->proto.epoch); 126 tmpbuf[1] = htonl(conn->proto.cid); 127 tmpbuf[2] = 0; 128 tmpbuf[3] = htonl(conn->security_ix); 129 130 sg_init_one(&sg, tmpbuf, tmpsize); 131 skcipher_request_set_tfm(req, conn->cipher); 132 skcipher_request_set_callback(req, 0, NULL, NULL); 133 skcipher_request_set_crypt(req, &sg, &sg, tmpsize, iv.x); 134 crypto_skcipher_encrypt(req); 135 skcipher_request_zero(req); 136 137 memcpy(&conn->csum_iv, tmpbuf + 2, sizeof(conn->csum_iv)); 138 kfree(tmpbuf); 139 _leave(" = 0"); 140 return 0; 141 } 142 143 /* 144 * partially encrypt a packet (level 1 security) 145 */ 146 static int rxkad_secure_packet_auth(const struct rxrpc_call *call, 147 struct sk_buff *skb, 148 u32 data_size, 149 void *sechdr) 150 { 151 struct rxrpc_skb_priv *sp = rxrpc_skb(skb); 152 SKCIPHER_REQUEST_ON_STACK(req, call->conn->cipher); 153 struct rxkad_level1_hdr hdr; 154 struct rxrpc_crypt iv; 155 struct scatterlist sg; 156 u16 check; 157 158 _enter(""); 159 160 check = sp->hdr.seq ^ call->call_id; 161 data_size |= (u32)check << 16; 162 163 hdr.data_size = htonl(data_size); 164 memcpy(sechdr, &hdr, sizeof(hdr)); 165 166 /* start the encryption afresh */ 167 memset(&iv, 0, sizeof(iv)); 168 169 sg_init_one(&sg, sechdr, 8); 170 skcipher_request_set_tfm(req, call->conn->cipher); 171 skcipher_request_set_callback(req, 0, NULL, NULL); 172 skcipher_request_set_crypt(req, &sg, &sg, 8, iv.x); 173 crypto_skcipher_encrypt(req); 174 skcipher_request_zero(req); 175 176 _leave(" = 0"); 177 return 0; 178 } 179 180 /* 181 * wholly encrypt a packet (level 2 security) 182 */ 183 static int rxkad_secure_packet_encrypt(const struct rxrpc_call *call, 184 struct sk_buff *skb, 185 u32 data_size, 186 void *sechdr) 187 { 188 const struct rxrpc_key_token *token; 189 struct rxkad_level2_hdr rxkhdr; 190 struct rxrpc_skb_priv *sp; 191 SKCIPHER_REQUEST_ON_STACK(req, call->conn->cipher); 192 struct rxrpc_crypt iv; 193 struct scatterlist sg[16]; 194 struct sk_buff *trailer; 195 unsigned int len; 196 u16 check; 197 int nsg; 198 int err; 199 200 sp = rxrpc_skb(skb); 201 202 _enter(""); 203 204 check = sp->hdr.seq ^ call->call_id; 205 206 rxkhdr.data_size = htonl(data_size | (u32)check << 16); 207 rxkhdr.checksum = 0; 208 memcpy(sechdr, &rxkhdr, sizeof(rxkhdr)); 209 210 /* encrypt from the session key */ 211 token = call->conn->params.key->payload.data[0]; 212 memcpy(&iv, token->kad->session_key, sizeof(iv)); 213 214 sg_init_one(&sg[0], sechdr, sizeof(rxkhdr)); 215 skcipher_request_set_tfm(req, call->conn->cipher); 216 skcipher_request_set_callback(req, 0, NULL, NULL); 217 skcipher_request_set_crypt(req, &sg[0], &sg[0], sizeof(rxkhdr), iv.x); 218 crypto_skcipher_encrypt(req); 219 220 /* we want to encrypt the skbuff in-place */ 221 nsg = skb_cow_data(skb, 0, &trailer); 222 err = -ENOMEM; 223 if (nsg < 0 || nsg > 16) 224 goto out; 225 226 len = data_size + call->conn->size_align - 1; 227 len &= ~(call->conn->size_align - 1); 228 229 sg_init_table(sg, nsg); 230 err = skb_to_sgvec(skb, sg, 0, len); 231 if (unlikely(err < 0)) 232 goto out; 233 skcipher_request_set_crypt(req, sg, sg, len, iv.x); 234 crypto_skcipher_encrypt(req); 235 236 _leave(" = 0"); 237 err = 0; 238 239 out: 240 skcipher_request_zero(req); 241 return err; 242 } 243 244 /* 245 * checksum an RxRPC packet header 246 */ 247 static int rxkad_secure_packet(struct rxrpc_call *call, 248 struct sk_buff *skb, 249 size_t data_size, 250 void *sechdr) 251 { 252 struct rxrpc_skb_priv *sp; 253 SKCIPHER_REQUEST_ON_STACK(req, call->conn->cipher); 254 struct rxrpc_crypt iv; 255 struct scatterlist sg; 256 u32 x, y; 257 int ret; 258 259 sp = rxrpc_skb(skb); 260 261 _enter("{%d{%x}},{#%u},%zu,", 262 call->debug_id, key_serial(call->conn->params.key), 263 sp->hdr.seq, data_size); 264 265 if (!call->conn->cipher) 266 return 0; 267 268 ret = key_validate(call->conn->params.key); 269 if (ret < 0) 270 return ret; 271 272 /* continue encrypting from where we left off */ 273 memcpy(&iv, call->conn->csum_iv.x, sizeof(iv)); 274 275 /* calculate the security checksum */ 276 x = (call->cid & RXRPC_CHANNELMASK) << (32 - RXRPC_CIDSHIFT); 277 x |= sp->hdr.seq & 0x3fffffff; 278 call->crypto_buf[0] = htonl(call->call_id); 279 call->crypto_buf[1] = htonl(x); 280 281 sg_init_one(&sg, call->crypto_buf, 8); 282 skcipher_request_set_tfm(req, call->conn->cipher); 283 skcipher_request_set_callback(req, 0, NULL, NULL); 284 skcipher_request_set_crypt(req, &sg, &sg, 8, iv.x); 285 crypto_skcipher_encrypt(req); 286 skcipher_request_zero(req); 287 288 y = ntohl(call->crypto_buf[1]); 289 y = (y >> 16) & 0xffff; 290 if (y == 0) 291 y = 1; /* zero checksums are not permitted */ 292 sp->hdr.cksum = y; 293 294 switch (call->conn->params.security_level) { 295 case RXRPC_SECURITY_PLAIN: 296 ret = 0; 297 break; 298 case RXRPC_SECURITY_AUTH: 299 ret = rxkad_secure_packet_auth(call, skb, data_size, sechdr); 300 break; 301 case RXRPC_SECURITY_ENCRYPT: 302 ret = rxkad_secure_packet_encrypt(call, skb, data_size, 303 sechdr); 304 break; 305 default: 306 ret = -EPERM; 307 break; 308 } 309 310 _leave(" = %d [set %hx]", ret, y); 311 return ret; 312 } 313 314 /* 315 * decrypt partial encryption on a packet (level 1 security) 316 */ 317 static int rxkad_verify_packet_1(struct rxrpc_call *call, struct sk_buff *skb, 318 unsigned int offset, unsigned int len, 319 rxrpc_seq_t seq) 320 { 321 struct rxkad_level1_hdr sechdr; 322 SKCIPHER_REQUEST_ON_STACK(req, call->conn->cipher); 323 struct rxrpc_crypt iv; 324 struct scatterlist sg[16]; 325 struct sk_buff *trailer; 326 bool aborted; 327 u32 data_size, buf; 328 u16 check; 329 int nsg, ret; 330 331 _enter(""); 332 333 if (len < 8) { 334 aborted = rxrpc_abort_eproto(call, skb, "rxkad_1_hdr", "V1H", 335 RXKADSEALEDINCON); 336 goto protocol_error; 337 } 338 339 /* Decrypt the skbuff in-place. TODO: We really want to decrypt 340 * directly into the target buffer. 341 */ 342 nsg = skb_cow_data(skb, 0, &trailer); 343 if (nsg < 0 || nsg > 16) 344 goto nomem; 345 346 sg_init_table(sg, nsg); 347 ret = skb_to_sgvec(skb, sg, offset, 8); 348 if (unlikely(ret < 0)) 349 return ret; 350 351 /* start the decryption afresh */ 352 memset(&iv, 0, sizeof(iv)); 353 354 skcipher_request_set_tfm(req, call->conn->cipher); 355 skcipher_request_set_callback(req, 0, NULL, NULL); 356 skcipher_request_set_crypt(req, sg, sg, 8, iv.x); 357 crypto_skcipher_decrypt(req); 358 skcipher_request_zero(req); 359 360 /* Extract the decrypted packet length */ 361 if (skb_copy_bits(skb, offset, &sechdr, sizeof(sechdr)) < 0) { 362 aborted = rxrpc_abort_eproto(call, skb, "rxkad_1_len", "XV1", 363 RXKADDATALEN); 364 goto protocol_error; 365 } 366 offset += sizeof(sechdr); 367 len -= sizeof(sechdr); 368 369 buf = ntohl(sechdr.data_size); 370 data_size = buf & 0xffff; 371 372 check = buf >> 16; 373 check ^= seq ^ call->call_id; 374 check &= 0xffff; 375 if (check != 0) { 376 aborted = rxrpc_abort_eproto(call, skb, "rxkad_1_check", "V1C", 377 RXKADSEALEDINCON); 378 goto protocol_error; 379 } 380 381 if (data_size > len) { 382 aborted = rxrpc_abort_eproto(call, skb, "rxkad_1_datalen", "V1L", 383 RXKADDATALEN); 384 goto protocol_error; 385 } 386 387 _leave(" = 0 [dlen=%x]", data_size); 388 return 0; 389 390 protocol_error: 391 if (aborted) 392 rxrpc_send_abort_packet(call); 393 return -EPROTO; 394 395 nomem: 396 _leave(" = -ENOMEM"); 397 return -ENOMEM; 398 } 399 400 /* 401 * wholly decrypt a packet (level 2 security) 402 */ 403 static int rxkad_verify_packet_2(struct rxrpc_call *call, struct sk_buff *skb, 404 unsigned int offset, unsigned int len, 405 rxrpc_seq_t seq) 406 { 407 const struct rxrpc_key_token *token; 408 struct rxkad_level2_hdr sechdr; 409 SKCIPHER_REQUEST_ON_STACK(req, call->conn->cipher); 410 struct rxrpc_crypt iv; 411 struct scatterlist _sg[4], *sg; 412 struct sk_buff *trailer; 413 bool aborted; 414 u32 data_size, buf; 415 u16 check; 416 int nsg, ret; 417 418 _enter(",{%d}", skb->len); 419 420 if (len < 8) { 421 aborted = rxrpc_abort_eproto(call, skb, "rxkad_2_hdr", "V2H", 422 RXKADSEALEDINCON); 423 goto protocol_error; 424 } 425 426 /* Decrypt the skbuff in-place. TODO: We really want to decrypt 427 * directly into the target buffer. 428 */ 429 nsg = skb_cow_data(skb, 0, &trailer); 430 if (nsg < 0) 431 goto nomem; 432 433 sg = _sg; 434 if (unlikely(nsg > 4)) { 435 sg = kmalloc(sizeof(*sg) * nsg, GFP_NOIO); 436 if (!sg) 437 goto nomem; 438 } 439 440 sg_init_table(sg, nsg); 441 ret = skb_to_sgvec(skb, sg, offset, len); 442 if (unlikely(ret < 0)) { 443 if (sg != _sg) 444 kfree(sg); 445 return ret; 446 } 447 448 /* decrypt from the session key */ 449 token = call->conn->params.key->payload.data[0]; 450 memcpy(&iv, token->kad->session_key, sizeof(iv)); 451 452 skcipher_request_set_tfm(req, call->conn->cipher); 453 skcipher_request_set_callback(req, 0, NULL, NULL); 454 skcipher_request_set_crypt(req, sg, sg, len, iv.x); 455 crypto_skcipher_decrypt(req); 456 skcipher_request_zero(req); 457 if (sg != _sg) 458 kfree(sg); 459 460 /* Extract the decrypted packet length */ 461 if (skb_copy_bits(skb, offset, &sechdr, sizeof(sechdr)) < 0) { 462 aborted = rxrpc_abort_eproto(call, skb, "rxkad_2_len", "XV2", 463 RXKADDATALEN); 464 goto protocol_error; 465 } 466 offset += sizeof(sechdr); 467 len -= sizeof(sechdr); 468 469 buf = ntohl(sechdr.data_size); 470 data_size = buf & 0xffff; 471 472 check = buf >> 16; 473 check ^= seq ^ call->call_id; 474 check &= 0xffff; 475 if (check != 0) { 476 aborted = rxrpc_abort_eproto(call, skb, "rxkad_2_check", "V2C", 477 RXKADSEALEDINCON); 478 goto protocol_error; 479 } 480 481 if (data_size > len) { 482 aborted = rxrpc_abort_eproto(call, skb, "rxkad_2_datalen", "V2L", 483 RXKADDATALEN); 484 goto protocol_error; 485 } 486 487 _leave(" = 0 [dlen=%x]", data_size); 488 return 0; 489 490 protocol_error: 491 if (aborted) 492 rxrpc_send_abort_packet(call); 493 return -EPROTO; 494 495 nomem: 496 _leave(" = -ENOMEM"); 497 return -ENOMEM; 498 } 499 500 /* 501 * Verify the security on a received packet or subpacket (if part of a 502 * jumbo packet). 503 */ 504 static int rxkad_verify_packet(struct rxrpc_call *call, struct sk_buff *skb, 505 unsigned int offset, unsigned int len, 506 rxrpc_seq_t seq, u16 expected_cksum) 507 { 508 SKCIPHER_REQUEST_ON_STACK(req, call->conn->cipher); 509 struct rxrpc_crypt iv; 510 struct scatterlist sg; 511 bool aborted; 512 u16 cksum; 513 u32 x, y; 514 515 _enter("{%d{%x}},{#%u}", 516 call->debug_id, key_serial(call->conn->params.key), seq); 517 518 if (!call->conn->cipher) 519 return 0; 520 521 /* continue encrypting from where we left off */ 522 memcpy(&iv, call->conn->csum_iv.x, sizeof(iv)); 523 524 /* validate the security checksum */ 525 x = (call->cid & RXRPC_CHANNELMASK) << (32 - RXRPC_CIDSHIFT); 526 x |= seq & 0x3fffffff; 527 call->crypto_buf[0] = htonl(call->call_id); 528 call->crypto_buf[1] = htonl(x); 529 530 sg_init_one(&sg, call->crypto_buf, 8); 531 skcipher_request_set_tfm(req, call->conn->cipher); 532 skcipher_request_set_callback(req, 0, NULL, NULL); 533 skcipher_request_set_crypt(req, &sg, &sg, 8, iv.x); 534 crypto_skcipher_encrypt(req); 535 skcipher_request_zero(req); 536 537 y = ntohl(call->crypto_buf[1]); 538 cksum = (y >> 16) & 0xffff; 539 if (cksum == 0) 540 cksum = 1; /* zero checksums are not permitted */ 541 542 if (cksum != expected_cksum) { 543 aborted = rxrpc_abort_eproto(call, skb, "rxkad_csum", "VCK", 544 RXKADSEALEDINCON); 545 goto protocol_error; 546 } 547 548 switch (call->conn->params.security_level) { 549 case RXRPC_SECURITY_PLAIN: 550 return 0; 551 case RXRPC_SECURITY_AUTH: 552 return rxkad_verify_packet_1(call, skb, offset, len, seq); 553 case RXRPC_SECURITY_ENCRYPT: 554 return rxkad_verify_packet_2(call, skb, offset, len, seq); 555 default: 556 return -ENOANO; 557 } 558 559 protocol_error: 560 if (aborted) 561 rxrpc_send_abort_packet(call); 562 return -EPROTO; 563 } 564 565 /* 566 * Locate the data contained in a packet that was partially encrypted. 567 */ 568 static void rxkad_locate_data_1(struct rxrpc_call *call, struct sk_buff *skb, 569 unsigned int *_offset, unsigned int *_len) 570 { 571 struct rxkad_level1_hdr sechdr; 572 573 if (skb_copy_bits(skb, *_offset, &sechdr, sizeof(sechdr)) < 0) 574 BUG(); 575 *_offset += sizeof(sechdr); 576 *_len = ntohl(sechdr.data_size) & 0xffff; 577 } 578 579 /* 580 * Locate the data contained in a packet that was completely encrypted. 581 */ 582 static void rxkad_locate_data_2(struct rxrpc_call *call, struct sk_buff *skb, 583 unsigned int *_offset, unsigned int *_len) 584 { 585 struct rxkad_level2_hdr sechdr; 586 587 if (skb_copy_bits(skb, *_offset, &sechdr, sizeof(sechdr)) < 0) 588 BUG(); 589 *_offset += sizeof(sechdr); 590 *_len = ntohl(sechdr.data_size) & 0xffff; 591 } 592 593 /* 594 * Locate the data contained in an already decrypted packet. 595 */ 596 static void rxkad_locate_data(struct rxrpc_call *call, struct sk_buff *skb, 597 unsigned int *_offset, unsigned int *_len) 598 { 599 switch (call->conn->params.security_level) { 600 case RXRPC_SECURITY_AUTH: 601 rxkad_locate_data_1(call, skb, _offset, _len); 602 return; 603 case RXRPC_SECURITY_ENCRYPT: 604 rxkad_locate_data_2(call, skb, _offset, _len); 605 return; 606 default: 607 return; 608 } 609 } 610 611 /* 612 * issue a challenge 613 */ 614 static int rxkad_issue_challenge(struct rxrpc_connection *conn) 615 { 616 struct rxkad_challenge challenge; 617 struct rxrpc_wire_header whdr; 618 struct msghdr msg; 619 struct kvec iov[2]; 620 size_t len; 621 u32 serial; 622 int ret; 623 624 _enter("{%d,%x}", conn->debug_id, key_serial(conn->params.key)); 625 626 ret = key_validate(conn->params.key); 627 if (ret < 0) 628 return ret; 629 630 get_random_bytes(&conn->security_nonce, sizeof(conn->security_nonce)); 631 632 challenge.version = htonl(2); 633 challenge.nonce = htonl(conn->security_nonce); 634 challenge.min_level = htonl(0); 635 challenge.__padding = 0; 636 637 msg.msg_name = &conn->params.peer->srx.transport; 638 msg.msg_namelen = conn->params.peer->srx.transport_len; 639 msg.msg_control = NULL; 640 msg.msg_controllen = 0; 641 msg.msg_flags = 0; 642 643 whdr.epoch = htonl(conn->proto.epoch); 644 whdr.cid = htonl(conn->proto.cid); 645 whdr.callNumber = 0; 646 whdr.seq = 0; 647 whdr.type = RXRPC_PACKET_TYPE_CHALLENGE; 648 whdr.flags = conn->out_clientflag; 649 whdr.userStatus = 0; 650 whdr.securityIndex = conn->security_ix; 651 whdr._rsvd = 0; 652 whdr.serviceId = htons(conn->service_id); 653 654 iov[0].iov_base = &whdr; 655 iov[0].iov_len = sizeof(whdr); 656 iov[1].iov_base = &challenge; 657 iov[1].iov_len = sizeof(challenge); 658 659 len = iov[0].iov_len + iov[1].iov_len; 660 661 serial = atomic_inc_return(&conn->serial); 662 whdr.serial = htonl(serial); 663 _proto("Tx CHALLENGE %%%u", serial); 664 665 ret = kernel_sendmsg(conn->params.local->socket, &msg, iov, 2, len); 666 if (ret < 0) { 667 _debug("sendmsg failed: %d", ret); 668 return -EAGAIN; 669 } 670 671 conn->params.peer->last_tx_at = ktime_get_real(); 672 _leave(" = 0"); 673 return 0; 674 } 675 676 /* 677 * send a Kerberos security response 678 */ 679 static int rxkad_send_response(struct rxrpc_connection *conn, 680 struct rxrpc_host_header *hdr, 681 struct rxkad_response *resp, 682 const struct rxkad_key *s2) 683 { 684 struct rxrpc_wire_header whdr; 685 struct msghdr msg; 686 struct kvec iov[3]; 687 size_t len; 688 u32 serial; 689 int ret; 690 691 _enter(""); 692 693 msg.msg_name = &conn->params.peer->srx.transport; 694 msg.msg_namelen = conn->params.peer->srx.transport_len; 695 msg.msg_control = NULL; 696 msg.msg_controllen = 0; 697 msg.msg_flags = 0; 698 699 memset(&whdr, 0, sizeof(whdr)); 700 whdr.epoch = htonl(hdr->epoch); 701 whdr.cid = htonl(hdr->cid); 702 whdr.type = RXRPC_PACKET_TYPE_RESPONSE; 703 whdr.flags = conn->out_clientflag; 704 whdr.securityIndex = hdr->securityIndex; 705 whdr.serviceId = htons(hdr->serviceId); 706 707 iov[0].iov_base = &whdr; 708 iov[0].iov_len = sizeof(whdr); 709 iov[1].iov_base = resp; 710 iov[1].iov_len = sizeof(*resp); 711 iov[2].iov_base = (void *)s2->ticket; 712 iov[2].iov_len = s2->ticket_len; 713 714 len = iov[0].iov_len + iov[1].iov_len + iov[2].iov_len; 715 716 serial = atomic_inc_return(&conn->serial); 717 whdr.serial = htonl(serial); 718 _proto("Tx RESPONSE %%%u", serial); 719 720 ret = kernel_sendmsg(conn->params.local->socket, &msg, iov, 3, len); 721 if (ret < 0) { 722 _debug("sendmsg failed: %d", ret); 723 return -EAGAIN; 724 } 725 726 conn->params.peer->last_tx_at = ktime_get_real(); 727 _leave(" = 0"); 728 return 0; 729 } 730 731 /* 732 * calculate the response checksum 733 */ 734 static void rxkad_calc_response_checksum(struct rxkad_response *response) 735 { 736 u32 csum = 1000003; 737 int loop; 738 u8 *p = (u8 *) response; 739 740 for (loop = sizeof(*response); loop > 0; loop--) 741 csum = csum * 0x10204081 + *p++; 742 743 response->encrypted.checksum = htonl(csum); 744 } 745 746 /* 747 * encrypt the response packet 748 */ 749 static void rxkad_encrypt_response(struct rxrpc_connection *conn, 750 struct rxkad_response *resp, 751 const struct rxkad_key *s2) 752 { 753 SKCIPHER_REQUEST_ON_STACK(req, conn->cipher); 754 struct rxrpc_crypt iv; 755 struct scatterlist sg[1]; 756 757 /* continue encrypting from where we left off */ 758 memcpy(&iv, s2->session_key, sizeof(iv)); 759 760 sg_init_table(sg, 1); 761 sg_set_buf(sg, &resp->encrypted, sizeof(resp->encrypted)); 762 skcipher_request_set_tfm(req, conn->cipher); 763 skcipher_request_set_callback(req, 0, NULL, NULL); 764 skcipher_request_set_crypt(req, sg, sg, sizeof(resp->encrypted), iv.x); 765 crypto_skcipher_encrypt(req); 766 skcipher_request_zero(req); 767 } 768 769 /* 770 * respond to a challenge packet 771 */ 772 static int rxkad_respond_to_challenge(struct rxrpc_connection *conn, 773 struct sk_buff *skb, 774 u32 *_abort_code) 775 { 776 const struct rxrpc_key_token *token; 777 struct rxkad_challenge challenge; 778 struct rxkad_response *resp; 779 struct rxrpc_skb_priv *sp = rxrpc_skb(skb); 780 const char *eproto; 781 u32 version, nonce, min_level, abort_code; 782 int ret; 783 784 _enter("{%d,%x}", conn->debug_id, key_serial(conn->params.key)); 785 786 eproto = tracepoint_string("chall_no_key"); 787 abort_code = RX_PROTOCOL_ERROR; 788 if (!conn->params.key) 789 goto protocol_error; 790 791 abort_code = RXKADEXPIRED; 792 ret = key_validate(conn->params.key); 793 if (ret < 0) 794 goto other_error; 795 796 eproto = tracepoint_string("chall_short"); 797 abort_code = RXKADPACKETSHORT; 798 if (skb_copy_bits(skb, sizeof(struct rxrpc_wire_header), 799 &challenge, sizeof(challenge)) < 0) 800 goto protocol_error; 801 802 version = ntohl(challenge.version); 803 nonce = ntohl(challenge.nonce); 804 min_level = ntohl(challenge.min_level); 805 806 _proto("Rx CHALLENGE %%%u { v=%u n=%u ml=%u }", 807 sp->hdr.serial, version, nonce, min_level); 808 809 eproto = tracepoint_string("chall_ver"); 810 abort_code = RXKADINCONSISTENCY; 811 if (version != RXKAD_VERSION) 812 goto protocol_error; 813 814 abort_code = RXKADLEVELFAIL; 815 ret = -EACCES; 816 if (conn->params.security_level < min_level) 817 goto other_error; 818 819 token = conn->params.key->payload.data[0]; 820 821 /* build the response packet */ 822 resp = kzalloc(sizeof(struct rxkad_response), GFP_NOFS); 823 if (!resp) 824 return -ENOMEM; 825 826 resp->version = htonl(RXKAD_VERSION); 827 resp->encrypted.epoch = htonl(conn->proto.epoch); 828 resp->encrypted.cid = htonl(conn->proto.cid); 829 resp->encrypted.securityIndex = htonl(conn->security_ix); 830 resp->encrypted.inc_nonce = htonl(nonce + 1); 831 resp->encrypted.level = htonl(conn->params.security_level); 832 resp->kvno = htonl(token->kad->kvno); 833 resp->ticket_len = htonl(token->kad->ticket_len); 834 resp->encrypted.call_id[0] = htonl(conn->channels[0].call_counter); 835 resp->encrypted.call_id[1] = htonl(conn->channels[1].call_counter); 836 resp->encrypted.call_id[2] = htonl(conn->channels[2].call_counter); 837 resp->encrypted.call_id[3] = htonl(conn->channels[3].call_counter); 838 839 /* calculate the response checksum and then do the encryption */ 840 rxkad_calc_response_checksum(resp); 841 rxkad_encrypt_response(conn, resp, token->kad); 842 ret = rxkad_send_response(conn, &sp->hdr, resp, token->kad); 843 kfree(resp); 844 return ret; 845 846 protocol_error: 847 trace_rxrpc_rx_eproto(NULL, sp->hdr.serial, eproto); 848 ret = -EPROTO; 849 other_error: 850 *_abort_code = abort_code; 851 return ret; 852 } 853 854 /* 855 * decrypt the kerberos IV ticket in the response 856 */ 857 static int rxkad_decrypt_ticket(struct rxrpc_connection *conn, 858 struct sk_buff *skb, 859 void *ticket, size_t ticket_len, 860 struct rxrpc_crypt *_session_key, 861 time64_t *_expiry, 862 u32 *_abort_code) 863 { 864 struct skcipher_request *req; 865 struct rxrpc_skb_priv *sp = rxrpc_skb(skb); 866 struct rxrpc_crypt iv, key; 867 struct scatterlist sg[1]; 868 struct in_addr addr; 869 unsigned int life; 870 const char *eproto; 871 time64_t issue, now; 872 bool little_endian; 873 int ret; 874 u32 abort_code; 875 u8 *p, *q, *name, *end; 876 877 _enter("{%d},{%x}", conn->debug_id, key_serial(conn->server_key)); 878 879 *_expiry = 0; 880 881 ret = key_validate(conn->server_key); 882 if (ret < 0) { 883 switch (ret) { 884 case -EKEYEXPIRED: 885 abort_code = RXKADEXPIRED; 886 goto other_error; 887 default: 888 abort_code = RXKADNOAUTH; 889 goto other_error; 890 } 891 } 892 893 ASSERT(conn->server_key->payload.data[0] != NULL); 894 ASSERTCMP((unsigned long) ticket & 7UL, ==, 0); 895 896 memcpy(&iv, &conn->server_key->payload.data[2], sizeof(iv)); 897 898 ret = -ENOMEM; 899 req = skcipher_request_alloc(conn->server_key->payload.data[0], 900 GFP_NOFS); 901 if (!req) 902 goto temporary_error; 903 904 sg_init_one(&sg[0], ticket, ticket_len); 905 skcipher_request_set_callback(req, 0, NULL, NULL); 906 skcipher_request_set_crypt(req, sg, sg, ticket_len, iv.x); 907 crypto_skcipher_decrypt(req); 908 skcipher_request_free(req); 909 910 p = ticket; 911 end = p + ticket_len; 912 913 #define Z(field) \ 914 ({ \ 915 u8 *__str = p; \ 916 eproto = tracepoint_string("rxkad_bad_"#field); \ 917 q = memchr(p, 0, end - p); \ 918 if (!q || q - p > (field##_SZ)) \ 919 goto bad_ticket; \ 920 for (; p < q; p++) \ 921 if (!isprint(*p)) \ 922 goto bad_ticket; \ 923 p++; \ 924 __str; \ 925 }) 926 927 /* extract the ticket flags */ 928 _debug("KIV FLAGS: %x", *p); 929 little_endian = *p & 1; 930 p++; 931 932 /* extract the authentication name */ 933 name = Z(ANAME); 934 _debug("KIV ANAME: %s", name); 935 936 /* extract the principal's instance */ 937 name = Z(INST); 938 _debug("KIV INST : %s", name); 939 940 /* extract the principal's authentication domain */ 941 name = Z(REALM); 942 _debug("KIV REALM: %s", name); 943 944 eproto = tracepoint_string("rxkad_bad_len"); 945 if (end - p < 4 + 8 + 4 + 2) 946 goto bad_ticket; 947 948 /* get the IPv4 address of the entity that requested the ticket */ 949 memcpy(&addr, p, sizeof(addr)); 950 p += 4; 951 _debug("KIV ADDR : %pI4", &addr); 952 953 /* get the session key from the ticket */ 954 memcpy(&key, p, sizeof(key)); 955 p += 8; 956 _debug("KIV KEY : %08x %08x", ntohl(key.n[0]), ntohl(key.n[1])); 957 memcpy(_session_key, &key, sizeof(key)); 958 959 /* get the ticket's lifetime */ 960 life = *p++ * 5 * 60; 961 _debug("KIV LIFE : %u", life); 962 963 /* get the issue time of the ticket */ 964 if (little_endian) { 965 __le32 stamp; 966 memcpy(&stamp, p, 4); 967 issue = rxrpc_u32_to_time64(le32_to_cpu(stamp)); 968 } else { 969 __be32 stamp; 970 memcpy(&stamp, p, 4); 971 issue = rxrpc_u32_to_time64(be32_to_cpu(stamp)); 972 } 973 p += 4; 974 now = ktime_get_real_seconds(); 975 _debug("KIV ISSUE: %llx [%llx]", issue, now); 976 977 /* check the ticket is in date */ 978 if (issue > now) { 979 abort_code = RXKADNOAUTH; 980 ret = -EKEYREJECTED; 981 goto other_error; 982 } 983 984 if (issue < now - life) { 985 abort_code = RXKADEXPIRED; 986 ret = -EKEYEXPIRED; 987 goto other_error; 988 } 989 990 *_expiry = issue + life; 991 992 /* get the service name */ 993 name = Z(SNAME); 994 _debug("KIV SNAME: %s", name); 995 996 /* get the service instance name */ 997 name = Z(INST); 998 _debug("KIV SINST: %s", name); 999 return 0; 1000 1001 bad_ticket: 1002 trace_rxrpc_rx_eproto(NULL, sp->hdr.serial, eproto); 1003 abort_code = RXKADBADTICKET; 1004 ret = -EPROTO; 1005 other_error: 1006 *_abort_code = abort_code; 1007 return ret; 1008 temporary_error: 1009 return ret; 1010 } 1011 1012 /* 1013 * decrypt the response packet 1014 */ 1015 static void rxkad_decrypt_response(struct rxrpc_connection *conn, 1016 struct rxkad_response *resp, 1017 const struct rxrpc_crypt *session_key) 1018 { 1019 SKCIPHER_REQUEST_ON_STACK(req, rxkad_ci); 1020 struct scatterlist sg[1]; 1021 struct rxrpc_crypt iv; 1022 1023 _enter(",,%08x%08x", 1024 ntohl(session_key->n[0]), ntohl(session_key->n[1])); 1025 1026 ASSERT(rxkad_ci != NULL); 1027 1028 mutex_lock(&rxkad_ci_mutex); 1029 if (crypto_skcipher_setkey(rxkad_ci, session_key->x, 1030 sizeof(*session_key)) < 0) 1031 BUG(); 1032 1033 memcpy(&iv, session_key, sizeof(iv)); 1034 1035 sg_init_table(sg, 1); 1036 sg_set_buf(sg, &resp->encrypted, sizeof(resp->encrypted)); 1037 skcipher_request_set_tfm(req, rxkad_ci); 1038 skcipher_request_set_callback(req, 0, NULL, NULL); 1039 skcipher_request_set_crypt(req, sg, sg, sizeof(resp->encrypted), iv.x); 1040 crypto_skcipher_decrypt(req); 1041 skcipher_request_zero(req); 1042 1043 mutex_unlock(&rxkad_ci_mutex); 1044 1045 _leave(""); 1046 } 1047 1048 /* 1049 * verify a response 1050 */ 1051 static int rxkad_verify_response(struct rxrpc_connection *conn, 1052 struct sk_buff *skb, 1053 u32 *_abort_code) 1054 { 1055 struct rxkad_response *response; 1056 struct rxrpc_skb_priv *sp = rxrpc_skb(skb); 1057 struct rxrpc_crypt session_key; 1058 const char *eproto; 1059 time64_t expiry; 1060 void *ticket; 1061 u32 abort_code, version, kvno, ticket_len, level; 1062 __be32 csum; 1063 int ret, i; 1064 1065 _enter("{%d,%x}", conn->debug_id, key_serial(conn->server_key)); 1066 1067 ret = -ENOMEM; 1068 response = kzalloc(sizeof(struct rxkad_response), GFP_NOFS); 1069 if (!response) 1070 goto temporary_error; 1071 1072 eproto = tracepoint_string("rxkad_rsp_short"); 1073 abort_code = RXKADPACKETSHORT; 1074 if (skb_copy_bits(skb, sizeof(struct rxrpc_wire_header), 1075 response, sizeof(*response)) < 0) 1076 goto protocol_error; 1077 if (!pskb_pull(skb, sizeof(*response))) 1078 BUG(); 1079 1080 version = ntohl(response->version); 1081 ticket_len = ntohl(response->ticket_len); 1082 kvno = ntohl(response->kvno); 1083 _proto("Rx RESPONSE %%%u { v=%u kv=%u tl=%u }", 1084 sp->hdr.serial, version, kvno, ticket_len); 1085 1086 eproto = tracepoint_string("rxkad_rsp_ver"); 1087 abort_code = RXKADINCONSISTENCY; 1088 if (version != RXKAD_VERSION) 1089 goto protocol_error; 1090 1091 eproto = tracepoint_string("rxkad_rsp_tktlen"); 1092 abort_code = RXKADTICKETLEN; 1093 if (ticket_len < 4 || ticket_len > MAXKRB5TICKETLEN) 1094 goto protocol_error; 1095 1096 eproto = tracepoint_string("rxkad_rsp_unkkey"); 1097 abort_code = RXKADUNKNOWNKEY; 1098 if (kvno >= RXKAD_TKT_TYPE_KERBEROS_V5) 1099 goto protocol_error; 1100 1101 /* extract the kerberos ticket and decrypt and decode it */ 1102 ret = -ENOMEM; 1103 ticket = kmalloc(ticket_len, GFP_NOFS); 1104 if (!ticket) 1105 goto temporary_error; 1106 1107 eproto = tracepoint_string("rxkad_tkt_short"); 1108 abort_code = RXKADPACKETSHORT; 1109 if (skb_copy_bits(skb, sizeof(struct rxrpc_wire_header), 1110 ticket, ticket_len) < 0) 1111 goto protocol_error_free; 1112 1113 ret = rxkad_decrypt_ticket(conn, skb, ticket, ticket_len, &session_key, 1114 &expiry, _abort_code); 1115 if (ret < 0) 1116 goto temporary_error_free_resp; 1117 1118 /* use the session key from inside the ticket to decrypt the 1119 * response */ 1120 rxkad_decrypt_response(conn, response, &session_key); 1121 1122 eproto = tracepoint_string("rxkad_rsp_param"); 1123 abort_code = RXKADSEALEDINCON; 1124 if (ntohl(response->encrypted.epoch) != conn->proto.epoch) 1125 goto protocol_error_free; 1126 if (ntohl(response->encrypted.cid) != conn->proto.cid) 1127 goto protocol_error_free; 1128 if (ntohl(response->encrypted.securityIndex) != conn->security_ix) 1129 goto protocol_error_free; 1130 csum = response->encrypted.checksum; 1131 response->encrypted.checksum = 0; 1132 rxkad_calc_response_checksum(response); 1133 eproto = tracepoint_string("rxkad_rsp_csum"); 1134 if (response->encrypted.checksum != csum) 1135 goto protocol_error_free; 1136 1137 spin_lock(&conn->channel_lock); 1138 for (i = 0; i < RXRPC_MAXCALLS; i++) { 1139 struct rxrpc_call *call; 1140 u32 call_id = ntohl(response->encrypted.call_id[i]); 1141 1142 eproto = tracepoint_string("rxkad_rsp_callid"); 1143 if (call_id > INT_MAX) 1144 goto protocol_error_unlock; 1145 1146 eproto = tracepoint_string("rxkad_rsp_callctr"); 1147 if (call_id < conn->channels[i].call_counter) 1148 goto protocol_error_unlock; 1149 1150 eproto = tracepoint_string("rxkad_rsp_callst"); 1151 if (call_id > conn->channels[i].call_counter) { 1152 call = rcu_dereference_protected( 1153 conn->channels[i].call, 1154 lockdep_is_held(&conn->channel_lock)); 1155 if (call && call->state < RXRPC_CALL_COMPLETE) 1156 goto protocol_error_unlock; 1157 conn->channels[i].call_counter = call_id; 1158 } 1159 } 1160 spin_unlock(&conn->channel_lock); 1161 1162 eproto = tracepoint_string("rxkad_rsp_seq"); 1163 abort_code = RXKADOUTOFSEQUENCE; 1164 if (ntohl(response->encrypted.inc_nonce) != conn->security_nonce + 1) 1165 goto protocol_error_free; 1166 1167 eproto = tracepoint_string("rxkad_rsp_level"); 1168 abort_code = RXKADLEVELFAIL; 1169 level = ntohl(response->encrypted.level); 1170 if (level > RXRPC_SECURITY_ENCRYPT) 1171 goto protocol_error_free; 1172 conn->params.security_level = level; 1173 1174 /* create a key to hold the security data and expiration time - after 1175 * this the connection security can be handled in exactly the same way 1176 * as for a client connection */ 1177 ret = rxrpc_get_server_data_key(conn, &session_key, expiry, kvno); 1178 if (ret < 0) 1179 goto temporary_error_free_ticket; 1180 1181 kfree(ticket); 1182 kfree(response); 1183 _leave(" = 0"); 1184 return 0; 1185 1186 protocol_error_unlock: 1187 spin_unlock(&conn->channel_lock); 1188 protocol_error_free: 1189 kfree(ticket); 1190 protocol_error: 1191 kfree(response); 1192 trace_rxrpc_rx_eproto(NULL, sp->hdr.serial, eproto); 1193 *_abort_code = abort_code; 1194 return -EPROTO; 1195 1196 temporary_error_free_ticket: 1197 kfree(ticket); 1198 temporary_error_free_resp: 1199 kfree(response); 1200 temporary_error: 1201 /* Ignore the response packet if we got a temporary error such as 1202 * ENOMEM. We just want to send the challenge again. Note that we 1203 * also come out this way if the ticket decryption fails. 1204 */ 1205 return ret; 1206 } 1207 1208 /* 1209 * clear the connection security 1210 */ 1211 static void rxkad_clear(struct rxrpc_connection *conn) 1212 { 1213 _enter(""); 1214 1215 if (conn->cipher) 1216 crypto_free_skcipher(conn->cipher); 1217 } 1218 1219 /* 1220 * Initialise the rxkad security service. 1221 */ 1222 static int rxkad_init(void) 1223 { 1224 /* pin the cipher we need so that the crypto layer doesn't invoke 1225 * keventd to go get it */ 1226 rxkad_ci = crypto_alloc_skcipher("pcbc(fcrypt)", 0, CRYPTO_ALG_ASYNC); 1227 return PTR_ERR_OR_ZERO(rxkad_ci); 1228 } 1229 1230 /* 1231 * Clean up the rxkad security service. 1232 */ 1233 static void rxkad_exit(void) 1234 { 1235 if (rxkad_ci) 1236 crypto_free_skcipher(rxkad_ci); 1237 } 1238 1239 /* 1240 * RxRPC Kerberos-based security 1241 */ 1242 const struct rxrpc_security rxkad = { 1243 .name = "rxkad", 1244 .security_index = RXRPC_SECURITY_RXKAD, 1245 .init = rxkad_init, 1246 .exit = rxkad_exit, 1247 .init_connection_security = rxkad_init_connection_security, 1248 .prime_packet_security = rxkad_prime_packet_security, 1249 .secure_packet = rxkad_secure_packet, 1250 .verify_packet = rxkad_verify_packet, 1251 .locate_data = rxkad_locate_data, 1252 .issue_challenge = rxkad_issue_challenge, 1253 .respond_to_challenge = rxkad_respond_to_challenge, 1254 .verify_response = rxkad_verify_response, 1255 .clear = rxkad_clear, 1256 }; 1257