1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Ceph msgr2 protocol implementation 4 * 5 * Copyright (C) 2020 Ilya Dryomov <idryomov@gmail.com> 6 */ 7 8 #include <linux/ceph/ceph_debug.h> 9 10 #include <crypto/aead.h> 11 #include <crypto/algapi.h> /* for crypto_memneq() */ 12 #include <crypto/hash.h> 13 #include <crypto/sha2.h> 14 #include <linux/bvec.h> 15 #include <linux/crc32c.h> 16 #include <linux/net.h> 17 #include <linux/scatterlist.h> 18 #include <linux/socket.h> 19 #include <linux/sched/mm.h> 20 #include <net/sock.h> 21 #include <net/tcp.h> 22 23 #include <linux/ceph/ceph_features.h> 24 #include <linux/ceph/decode.h> 25 #include <linux/ceph/libceph.h> 26 #include <linux/ceph/messenger.h> 27 28 #include "crypto.h" /* for CEPH_KEY_LEN and CEPH_MAX_CON_SECRET_LEN */ 29 30 #define FRAME_TAG_HELLO 1 31 #define FRAME_TAG_AUTH_REQUEST 2 32 #define FRAME_TAG_AUTH_BAD_METHOD 3 33 #define FRAME_TAG_AUTH_REPLY_MORE 4 34 #define FRAME_TAG_AUTH_REQUEST_MORE 5 35 #define FRAME_TAG_AUTH_DONE 6 36 #define FRAME_TAG_AUTH_SIGNATURE 7 37 #define FRAME_TAG_CLIENT_IDENT 8 38 #define FRAME_TAG_SERVER_IDENT 9 39 #define FRAME_TAG_IDENT_MISSING_FEATURES 10 40 #define FRAME_TAG_SESSION_RECONNECT 11 41 #define FRAME_TAG_SESSION_RESET 12 42 #define FRAME_TAG_SESSION_RETRY 13 43 #define FRAME_TAG_SESSION_RETRY_GLOBAL 14 44 #define FRAME_TAG_SESSION_RECONNECT_OK 15 45 #define FRAME_TAG_WAIT 16 46 #define FRAME_TAG_MESSAGE 17 47 #define FRAME_TAG_KEEPALIVE2 18 48 #define FRAME_TAG_KEEPALIVE2_ACK 19 49 #define FRAME_TAG_ACK 20 50 51 #define FRAME_LATE_STATUS_ABORTED 0x1 52 #define FRAME_LATE_STATUS_COMPLETE 0xe 53 #define FRAME_LATE_STATUS_ABORTED_MASK 0xf 54 55 #define IN_S_HANDLE_PREAMBLE 1 56 #define IN_S_HANDLE_CONTROL 2 57 #define IN_S_HANDLE_CONTROL_REMAINDER 3 58 #define IN_S_PREPARE_READ_DATA 4 59 #define IN_S_PREPARE_READ_DATA_CONT 5 60 #define IN_S_PREPARE_READ_ENC_PAGE 6 61 #define IN_S_HANDLE_EPILOGUE 7 62 #define IN_S_FINISH_SKIP 8 63 64 #define OUT_S_QUEUE_DATA 1 65 #define OUT_S_QUEUE_DATA_CONT 2 66 #define OUT_S_QUEUE_ENC_PAGE 3 67 #define OUT_S_QUEUE_ZEROS 4 68 #define OUT_S_FINISH_MESSAGE 5 69 #define OUT_S_GET_NEXT 6 70 71 #define CTRL_BODY(p) ((void *)(p) + CEPH_PREAMBLE_LEN) 72 #define FRONT_PAD(p) ((void *)(p) + CEPH_EPILOGUE_SECURE_LEN) 73 #define MIDDLE_PAD(p) (FRONT_PAD(p) + CEPH_GCM_BLOCK_LEN) 74 #define DATA_PAD(p) (MIDDLE_PAD(p) + CEPH_GCM_BLOCK_LEN) 75 76 #define CEPH_MSG_FLAGS (MSG_DONTWAIT | MSG_NOSIGNAL) 77 78 static int do_recvmsg(struct socket *sock, struct iov_iter *it) 79 { 80 struct msghdr msg = { .msg_flags = CEPH_MSG_FLAGS }; 81 int ret; 82 83 msg.msg_iter = *it; 84 while (iov_iter_count(it)) { 85 ret = sock_recvmsg(sock, &msg, msg.msg_flags); 86 if (ret <= 0) { 87 if (ret == -EAGAIN) 88 ret = 0; 89 return ret; 90 } 91 92 iov_iter_advance(it, ret); 93 } 94 95 WARN_ON(msg_data_left(&msg)); 96 return 1; 97 } 98 99 /* 100 * Read as much as possible. 101 * 102 * Return: 103 * 1 - done, nothing (else) to read 104 * 0 - socket is empty, need to wait 105 * <0 - error 106 */ 107 static int ceph_tcp_recv(struct ceph_connection *con) 108 { 109 int ret; 110 111 dout("%s con %p %s %zu\n", __func__, con, 112 iov_iter_is_discard(&con->v2.in_iter) ? "discard" : "need", 113 iov_iter_count(&con->v2.in_iter)); 114 ret = do_recvmsg(con->sock, &con->v2.in_iter); 115 dout("%s con %p ret %d left %zu\n", __func__, con, ret, 116 iov_iter_count(&con->v2.in_iter)); 117 return ret; 118 } 119 120 /* 121 * Write as much as possible. The socket is expected to be corked, 122 * so we don't bother with MSG_MORE here. 123 * 124 * Return: 125 * >0 - done, nothing (else) to write 126 * 0 - socket is full, need to wait 127 * <0 - error 128 */ 129 static int ceph_tcp_send(struct ceph_connection *con) 130 { 131 struct msghdr msg = { 132 .msg_iter = con->v2.out_iter, 133 .msg_flags = CEPH_MSG_FLAGS, 134 }; 135 int ret; 136 137 if (WARN_ON(!iov_iter_is_bvec(&con->v2.out_iter))) 138 return -EINVAL; 139 140 if (con->v2.out_iter_sendpage) 141 msg.msg_flags |= MSG_SPLICE_PAGES; 142 143 dout("%s con %p have %zu try_sendpage %d\n", __func__, con, 144 iov_iter_count(&con->v2.out_iter), con->v2.out_iter_sendpage); 145 146 ret = sock_sendmsg(con->sock, &msg); 147 if (ret > 0) 148 iov_iter_advance(&con->v2.out_iter, ret); 149 else if (ret == -EAGAIN) 150 ret = 0; 151 152 dout("%s con %p ret %d left %zu\n", __func__, con, ret, 153 iov_iter_count(&con->v2.out_iter)); 154 return ret; 155 } 156 157 static void add_in_kvec(struct ceph_connection *con, void *buf, int len) 158 { 159 BUG_ON(con->v2.in_kvec_cnt >= ARRAY_SIZE(con->v2.in_kvecs)); 160 WARN_ON(!iov_iter_is_kvec(&con->v2.in_iter)); 161 162 con->v2.in_kvecs[con->v2.in_kvec_cnt].iov_base = buf; 163 con->v2.in_kvecs[con->v2.in_kvec_cnt].iov_len = len; 164 con->v2.in_kvec_cnt++; 165 166 con->v2.in_iter.nr_segs++; 167 con->v2.in_iter.count += len; 168 } 169 170 static void reset_in_kvecs(struct ceph_connection *con) 171 { 172 WARN_ON(iov_iter_count(&con->v2.in_iter)); 173 174 con->v2.in_kvec_cnt = 0; 175 iov_iter_kvec(&con->v2.in_iter, ITER_DEST, con->v2.in_kvecs, 0, 0); 176 } 177 178 static void set_in_bvec(struct ceph_connection *con, const struct bio_vec *bv) 179 { 180 WARN_ON(iov_iter_count(&con->v2.in_iter)); 181 182 con->v2.in_bvec = *bv; 183 iov_iter_bvec(&con->v2.in_iter, ITER_DEST, &con->v2.in_bvec, 1, bv->bv_len); 184 } 185 186 static void set_in_skip(struct ceph_connection *con, int len) 187 { 188 WARN_ON(iov_iter_count(&con->v2.in_iter)); 189 190 dout("%s con %p len %d\n", __func__, con, len); 191 iov_iter_discard(&con->v2.in_iter, ITER_DEST, len); 192 } 193 194 static void add_out_kvec(struct ceph_connection *con, void *buf, int len) 195 { 196 BUG_ON(con->v2.out_kvec_cnt >= ARRAY_SIZE(con->v2.out_kvecs)); 197 WARN_ON(!iov_iter_is_kvec(&con->v2.out_iter)); 198 WARN_ON(con->v2.out_zero); 199 200 con->v2.out_kvecs[con->v2.out_kvec_cnt].iov_base = buf; 201 con->v2.out_kvecs[con->v2.out_kvec_cnt].iov_len = len; 202 con->v2.out_kvec_cnt++; 203 204 con->v2.out_iter.nr_segs++; 205 con->v2.out_iter.count += len; 206 } 207 208 static void reset_out_kvecs(struct ceph_connection *con) 209 { 210 WARN_ON(iov_iter_count(&con->v2.out_iter)); 211 WARN_ON(con->v2.out_zero); 212 213 con->v2.out_kvec_cnt = 0; 214 215 iov_iter_kvec(&con->v2.out_iter, ITER_SOURCE, con->v2.out_kvecs, 0, 0); 216 con->v2.out_iter_sendpage = false; 217 } 218 219 static void set_out_bvec(struct ceph_connection *con, const struct bio_vec *bv, 220 bool zerocopy) 221 { 222 WARN_ON(iov_iter_count(&con->v2.out_iter)); 223 WARN_ON(con->v2.out_zero); 224 225 con->v2.out_bvec = *bv; 226 con->v2.out_iter_sendpage = zerocopy; 227 iov_iter_bvec(&con->v2.out_iter, ITER_SOURCE, &con->v2.out_bvec, 1, 228 con->v2.out_bvec.bv_len); 229 } 230 231 static void set_out_bvec_zero(struct ceph_connection *con) 232 { 233 WARN_ON(iov_iter_count(&con->v2.out_iter)); 234 WARN_ON(!con->v2.out_zero); 235 236 bvec_set_page(&con->v2.out_bvec, ceph_zero_page, 237 min(con->v2.out_zero, (int)PAGE_SIZE), 0); 238 con->v2.out_iter_sendpage = true; 239 iov_iter_bvec(&con->v2.out_iter, ITER_SOURCE, &con->v2.out_bvec, 1, 240 con->v2.out_bvec.bv_len); 241 } 242 243 static void out_zero_add(struct ceph_connection *con, int len) 244 { 245 dout("%s con %p len %d\n", __func__, con, len); 246 con->v2.out_zero += len; 247 } 248 249 static void *alloc_conn_buf(struct ceph_connection *con, int len) 250 { 251 void *buf; 252 253 dout("%s con %p len %d\n", __func__, con, len); 254 255 if (WARN_ON(con->v2.conn_buf_cnt >= ARRAY_SIZE(con->v2.conn_bufs))) 256 return NULL; 257 258 buf = kvmalloc(len, GFP_NOIO); 259 if (!buf) 260 return NULL; 261 262 con->v2.conn_bufs[con->v2.conn_buf_cnt++] = buf; 263 return buf; 264 } 265 266 static void free_conn_bufs(struct ceph_connection *con) 267 { 268 while (con->v2.conn_buf_cnt) 269 kvfree(con->v2.conn_bufs[--con->v2.conn_buf_cnt]); 270 } 271 272 static void add_in_sign_kvec(struct ceph_connection *con, void *buf, int len) 273 { 274 BUG_ON(con->v2.in_sign_kvec_cnt >= ARRAY_SIZE(con->v2.in_sign_kvecs)); 275 276 con->v2.in_sign_kvecs[con->v2.in_sign_kvec_cnt].iov_base = buf; 277 con->v2.in_sign_kvecs[con->v2.in_sign_kvec_cnt].iov_len = len; 278 con->v2.in_sign_kvec_cnt++; 279 } 280 281 static void clear_in_sign_kvecs(struct ceph_connection *con) 282 { 283 con->v2.in_sign_kvec_cnt = 0; 284 } 285 286 static void add_out_sign_kvec(struct ceph_connection *con, void *buf, int len) 287 { 288 BUG_ON(con->v2.out_sign_kvec_cnt >= ARRAY_SIZE(con->v2.out_sign_kvecs)); 289 290 con->v2.out_sign_kvecs[con->v2.out_sign_kvec_cnt].iov_base = buf; 291 con->v2.out_sign_kvecs[con->v2.out_sign_kvec_cnt].iov_len = len; 292 con->v2.out_sign_kvec_cnt++; 293 } 294 295 static void clear_out_sign_kvecs(struct ceph_connection *con) 296 { 297 con->v2.out_sign_kvec_cnt = 0; 298 } 299 300 static bool con_secure(struct ceph_connection *con) 301 { 302 return con->v2.con_mode == CEPH_CON_MODE_SECURE; 303 } 304 305 static int front_len(const struct ceph_msg *msg) 306 { 307 return le32_to_cpu(msg->hdr.front_len); 308 } 309 310 static int middle_len(const struct ceph_msg *msg) 311 { 312 return le32_to_cpu(msg->hdr.middle_len); 313 } 314 315 static int data_len(const struct ceph_msg *msg) 316 { 317 return le32_to_cpu(msg->hdr.data_len); 318 } 319 320 static bool need_padding(int len) 321 { 322 return !IS_ALIGNED(len, CEPH_GCM_BLOCK_LEN); 323 } 324 325 static int padded_len(int len) 326 { 327 return ALIGN(len, CEPH_GCM_BLOCK_LEN); 328 } 329 330 static int padding_len(int len) 331 { 332 return padded_len(len) - len; 333 } 334 335 /* preamble + control segment */ 336 static int head_onwire_len(int ctrl_len, bool secure) 337 { 338 int head_len; 339 int rem_len; 340 341 if (secure) { 342 head_len = CEPH_PREAMBLE_SECURE_LEN; 343 if (ctrl_len > CEPH_PREAMBLE_INLINE_LEN) { 344 rem_len = ctrl_len - CEPH_PREAMBLE_INLINE_LEN; 345 head_len += padded_len(rem_len) + CEPH_GCM_TAG_LEN; 346 } 347 } else { 348 head_len = CEPH_PREAMBLE_PLAIN_LEN; 349 if (ctrl_len) 350 head_len += ctrl_len + CEPH_CRC_LEN; 351 } 352 return head_len; 353 } 354 355 /* front, middle and data segments + epilogue */ 356 static int __tail_onwire_len(int front_len, int middle_len, int data_len, 357 bool secure) 358 { 359 if (!front_len && !middle_len && !data_len) 360 return 0; 361 362 if (!secure) 363 return front_len + middle_len + data_len + 364 CEPH_EPILOGUE_PLAIN_LEN; 365 366 return padded_len(front_len) + padded_len(middle_len) + 367 padded_len(data_len) + CEPH_EPILOGUE_SECURE_LEN; 368 } 369 370 static int tail_onwire_len(const struct ceph_msg *msg, bool secure) 371 { 372 return __tail_onwire_len(front_len(msg), middle_len(msg), 373 data_len(msg), secure); 374 } 375 376 /* head_onwire_len(sizeof(struct ceph_msg_header2), false) */ 377 #define MESSAGE_HEAD_PLAIN_LEN (CEPH_PREAMBLE_PLAIN_LEN + \ 378 sizeof(struct ceph_msg_header2) + \ 379 CEPH_CRC_LEN) 380 381 static const int frame_aligns[] = { 382 sizeof(void *), 383 sizeof(void *), 384 sizeof(void *), 385 PAGE_SIZE 386 }; 387 388 /* 389 * Discards trailing empty segments, unless there is just one segment. 390 * A frame always has at least one (possibly empty) segment. 391 */ 392 static int calc_segment_count(const int *lens, int len_cnt) 393 { 394 int i; 395 396 for (i = len_cnt - 1; i >= 0; i--) { 397 if (lens[i]) 398 return i + 1; 399 } 400 401 return 1; 402 } 403 404 static void init_frame_desc(struct ceph_frame_desc *desc, int tag, 405 const int *lens, int len_cnt) 406 { 407 int i; 408 409 memset(desc, 0, sizeof(*desc)); 410 411 desc->fd_tag = tag; 412 desc->fd_seg_cnt = calc_segment_count(lens, len_cnt); 413 BUG_ON(desc->fd_seg_cnt > CEPH_FRAME_MAX_SEGMENT_COUNT); 414 for (i = 0; i < desc->fd_seg_cnt; i++) { 415 desc->fd_lens[i] = lens[i]; 416 desc->fd_aligns[i] = frame_aligns[i]; 417 } 418 } 419 420 /* 421 * Preamble crc covers everything up to itself (28 bytes) and 422 * is calculated and verified irrespective of the connection mode 423 * (i.e. even if the frame is encrypted). 424 */ 425 static void encode_preamble(const struct ceph_frame_desc *desc, void *p) 426 { 427 void *crcp = p + CEPH_PREAMBLE_LEN - CEPH_CRC_LEN; 428 void *start = p; 429 int i; 430 431 memset(p, 0, CEPH_PREAMBLE_LEN); 432 433 ceph_encode_8(&p, desc->fd_tag); 434 ceph_encode_8(&p, desc->fd_seg_cnt); 435 for (i = 0; i < desc->fd_seg_cnt; i++) { 436 ceph_encode_32(&p, desc->fd_lens[i]); 437 ceph_encode_16(&p, desc->fd_aligns[i]); 438 } 439 440 put_unaligned_le32(crc32c(0, start, crcp - start), crcp); 441 } 442 443 static int decode_preamble(void *p, struct ceph_frame_desc *desc) 444 { 445 void *crcp = p + CEPH_PREAMBLE_LEN - CEPH_CRC_LEN; 446 u32 crc, expected_crc; 447 int i; 448 449 crc = crc32c(0, p, crcp - p); 450 expected_crc = get_unaligned_le32(crcp); 451 if (crc != expected_crc) { 452 pr_err("bad preamble crc, calculated %u, expected %u\n", 453 crc, expected_crc); 454 return -EBADMSG; 455 } 456 457 memset(desc, 0, sizeof(*desc)); 458 459 desc->fd_tag = ceph_decode_8(&p); 460 desc->fd_seg_cnt = ceph_decode_8(&p); 461 if (desc->fd_seg_cnt < 1 || 462 desc->fd_seg_cnt > CEPH_FRAME_MAX_SEGMENT_COUNT) { 463 pr_err("bad segment count %d\n", desc->fd_seg_cnt); 464 return -EINVAL; 465 } 466 for (i = 0; i < desc->fd_seg_cnt; i++) { 467 desc->fd_lens[i] = ceph_decode_32(&p); 468 desc->fd_aligns[i] = ceph_decode_16(&p); 469 } 470 471 /* 472 * This would fire for FRAME_TAG_WAIT (it has one empty 473 * segment), but we should never get it as client. 474 */ 475 if (!desc->fd_lens[desc->fd_seg_cnt - 1]) { 476 pr_err("last segment empty\n"); 477 return -EINVAL; 478 } 479 480 if (desc->fd_lens[0] > CEPH_MSG_MAX_CONTROL_LEN) { 481 pr_err("control segment too big %d\n", desc->fd_lens[0]); 482 return -EINVAL; 483 } 484 if (desc->fd_lens[1] > CEPH_MSG_MAX_FRONT_LEN) { 485 pr_err("front segment too big %d\n", desc->fd_lens[1]); 486 return -EINVAL; 487 } 488 if (desc->fd_lens[2] > CEPH_MSG_MAX_MIDDLE_LEN) { 489 pr_err("middle segment too big %d\n", desc->fd_lens[2]); 490 return -EINVAL; 491 } 492 if (desc->fd_lens[3] > CEPH_MSG_MAX_DATA_LEN) { 493 pr_err("data segment too big %d\n", desc->fd_lens[3]); 494 return -EINVAL; 495 } 496 497 return 0; 498 } 499 500 static void encode_epilogue_plain(struct ceph_connection *con, bool aborted) 501 { 502 con->v2.out_epil.late_status = aborted ? FRAME_LATE_STATUS_ABORTED : 503 FRAME_LATE_STATUS_COMPLETE; 504 cpu_to_le32s(&con->v2.out_epil.front_crc); 505 cpu_to_le32s(&con->v2.out_epil.middle_crc); 506 cpu_to_le32s(&con->v2.out_epil.data_crc); 507 } 508 509 static void encode_epilogue_secure(struct ceph_connection *con, bool aborted) 510 { 511 memset(&con->v2.out_epil, 0, sizeof(con->v2.out_epil)); 512 con->v2.out_epil.late_status = aborted ? FRAME_LATE_STATUS_ABORTED : 513 FRAME_LATE_STATUS_COMPLETE; 514 } 515 516 static int decode_epilogue(void *p, u32 *front_crc, u32 *middle_crc, 517 u32 *data_crc) 518 { 519 u8 late_status; 520 521 late_status = ceph_decode_8(&p); 522 if ((late_status & FRAME_LATE_STATUS_ABORTED_MASK) != 523 FRAME_LATE_STATUS_COMPLETE) { 524 /* we should never get an aborted message as client */ 525 pr_err("bad late_status 0x%x\n", late_status); 526 return -EINVAL; 527 } 528 529 if (front_crc && middle_crc && data_crc) { 530 *front_crc = ceph_decode_32(&p); 531 *middle_crc = ceph_decode_32(&p); 532 *data_crc = ceph_decode_32(&p); 533 } 534 535 return 0; 536 } 537 538 static void fill_header(struct ceph_msg_header *hdr, 539 const struct ceph_msg_header2 *hdr2, 540 int front_len, int middle_len, int data_len, 541 const struct ceph_entity_name *peer_name) 542 { 543 hdr->seq = hdr2->seq; 544 hdr->tid = hdr2->tid; 545 hdr->type = hdr2->type; 546 hdr->priority = hdr2->priority; 547 hdr->version = hdr2->version; 548 hdr->front_len = cpu_to_le32(front_len); 549 hdr->middle_len = cpu_to_le32(middle_len); 550 hdr->data_len = cpu_to_le32(data_len); 551 hdr->data_off = hdr2->data_off; 552 hdr->src = *peer_name; 553 hdr->compat_version = hdr2->compat_version; 554 hdr->reserved = 0; 555 hdr->crc = 0; 556 } 557 558 static void fill_header2(struct ceph_msg_header2 *hdr2, 559 const struct ceph_msg_header *hdr, u64 ack_seq) 560 { 561 hdr2->seq = hdr->seq; 562 hdr2->tid = hdr->tid; 563 hdr2->type = hdr->type; 564 hdr2->priority = hdr->priority; 565 hdr2->version = hdr->version; 566 hdr2->data_pre_padding_len = 0; 567 hdr2->data_off = hdr->data_off; 568 hdr2->ack_seq = cpu_to_le64(ack_seq); 569 hdr2->flags = 0; 570 hdr2->compat_version = hdr->compat_version; 571 hdr2->reserved = 0; 572 } 573 574 static int verify_control_crc(struct ceph_connection *con) 575 { 576 int ctrl_len = con->v2.in_desc.fd_lens[0]; 577 u32 crc, expected_crc; 578 579 WARN_ON(con->v2.in_kvecs[0].iov_len != ctrl_len); 580 WARN_ON(con->v2.in_kvecs[1].iov_len != CEPH_CRC_LEN); 581 582 crc = crc32c(-1, con->v2.in_kvecs[0].iov_base, ctrl_len); 583 expected_crc = get_unaligned_le32(con->v2.in_kvecs[1].iov_base); 584 if (crc != expected_crc) { 585 pr_err("bad control crc, calculated %u, expected %u\n", 586 crc, expected_crc); 587 return -EBADMSG; 588 } 589 590 return 0; 591 } 592 593 static int verify_epilogue_crcs(struct ceph_connection *con, u32 front_crc, 594 u32 middle_crc, u32 data_crc) 595 { 596 if (front_len(con->in_msg)) { 597 con->in_front_crc = crc32c(-1, con->in_msg->front.iov_base, 598 front_len(con->in_msg)); 599 } else { 600 WARN_ON(!middle_len(con->in_msg) && !data_len(con->in_msg)); 601 con->in_front_crc = -1; 602 } 603 604 if (middle_len(con->in_msg)) 605 con->in_middle_crc = crc32c(-1, 606 con->in_msg->middle->vec.iov_base, 607 middle_len(con->in_msg)); 608 else if (data_len(con->in_msg)) 609 con->in_middle_crc = -1; 610 else 611 con->in_middle_crc = 0; 612 613 if (!data_len(con->in_msg)) 614 con->in_data_crc = 0; 615 616 dout("%s con %p msg %p crcs %u %u %u\n", __func__, con, con->in_msg, 617 con->in_front_crc, con->in_middle_crc, con->in_data_crc); 618 619 if (con->in_front_crc != front_crc) { 620 pr_err("bad front crc, calculated %u, expected %u\n", 621 con->in_front_crc, front_crc); 622 return -EBADMSG; 623 } 624 if (con->in_middle_crc != middle_crc) { 625 pr_err("bad middle crc, calculated %u, expected %u\n", 626 con->in_middle_crc, middle_crc); 627 return -EBADMSG; 628 } 629 if (con->in_data_crc != data_crc) { 630 pr_err("bad data crc, calculated %u, expected %u\n", 631 con->in_data_crc, data_crc); 632 return -EBADMSG; 633 } 634 635 return 0; 636 } 637 638 static int setup_crypto(struct ceph_connection *con, 639 const u8 *session_key, int session_key_len, 640 const u8 *con_secret, int con_secret_len) 641 { 642 unsigned int noio_flag; 643 int ret; 644 645 dout("%s con %p con_mode %d session_key_len %d con_secret_len %d\n", 646 __func__, con, con->v2.con_mode, session_key_len, con_secret_len); 647 WARN_ON(con->v2.hmac_tfm || con->v2.gcm_tfm || con->v2.gcm_req); 648 649 if (con->v2.con_mode != CEPH_CON_MODE_CRC && 650 con->v2.con_mode != CEPH_CON_MODE_SECURE) { 651 pr_err("bad con_mode %d\n", con->v2.con_mode); 652 return -EINVAL; 653 } 654 655 if (!session_key_len) { 656 WARN_ON(con->v2.con_mode != CEPH_CON_MODE_CRC); 657 WARN_ON(con_secret_len); 658 return 0; /* auth_none */ 659 } 660 661 noio_flag = memalloc_noio_save(); 662 con->v2.hmac_tfm = crypto_alloc_shash("hmac(sha256)", 0, 0); 663 memalloc_noio_restore(noio_flag); 664 if (IS_ERR(con->v2.hmac_tfm)) { 665 ret = PTR_ERR(con->v2.hmac_tfm); 666 con->v2.hmac_tfm = NULL; 667 pr_err("failed to allocate hmac tfm context: %d\n", ret); 668 return ret; 669 } 670 671 WARN_ON((unsigned long)session_key & 672 crypto_shash_alignmask(con->v2.hmac_tfm)); 673 ret = crypto_shash_setkey(con->v2.hmac_tfm, session_key, 674 session_key_len); 675 if (ret) { 676 pr_err("failed to set hmac key: %d\n", ret); 677 return ret; 678 } 679 680 if (con->v2.con_mode == CEPH_CON_MODE_CRC) { 681 WARN_ON(con_secret_len); 682 return 0; /* auth_x, plain mode */ 683 } 684 685 if (con_secret_len < CEPH_GCM_KEY_LEN + 2 * CEPH_GCM_IV_LEN) { 686 pr_err("con_secret too small %d\n", con_secret_len); 687 return -EINVAL; 688 } 689 690 noio_flag = memalloc_noio_save(); 691 con->v2.gcm_tfm = crypto_alloc_aead("gcm(aes)", 0, 0); 692 memalloc_noio_restore(noio_flag); 693 if (IS_ERR(con->v2.gcm_tfm)) { 694 ret = PTR_ERR(con->v2.gcm_tfm); 695 con->v2.gcm_tfm = NULL; 696 pr_err("failed to allocate gcm tfm context: %d\n", ret); 697 return ret; 698 } 699 700 WARN_ON((unsigned long)con_secret & 701 crypto_aead_alignmask(con->v2.gcm_tfm)); 702 ret = crypto_aead_setkey(con->v2.gcm_tfm, con_secret, CEPH_GCM_KEY_LEN); 703 if (ret) { 704 pr_err("failed to set gcm key: %d\n", ret); 705 return ret; 706 } 707 708 WARN_ON(crypto_aead_ivsize(con->v2.gcm_tfm) != CEPH_GCM_IV_LEN); 709 ret = crypto_aead_setauthsize(con->v2.gcm_tfm, CEPH_GCM_TAG_LEN); 710 if (ret) { 711 pr_err("failed to set gcm tag size: %d\n", ret); 712 return ret; 713 } 714 715 con->v2.gcm_req = aead_request_alloc(con->v2.gcm_tfm, GFP_NOIO); 716 if (!con->v2.gcm_req) { 717 pr_err("failed to allocate gcm request\n"); 718 return -ENOMEM; 719 } 720 721 crypto_init_wait(&con->v2.gcm_wait); 722 aead_request_set_callback(con->v2.gcm_req, CRYPTO_TFM_REQ_MAY_BACKLOG, 723 crypto_req_done, &con->v2.gcm_wait); 724 725 memcpy(&con->v2.in_gcm_nonce, con_secret + CEPH_GCM_KEY_LEN, 726 CEPH_GCM_IV_LEN); 727 memcpy(&con->v2.out_gcm_nonce, 728 con_secret + CEPH_GCM_KEY_LEN + CEPH_GCM_IV_LEN, 729 CEPH_GCM_IV_LEN); 730 return 0; /* auth_x, secure mode */ 731 } 732 733 static int hmac_sha256(struct ceph_connection *con, const struct kvec *kvecs, 734 int kvec_cnt, u8 *hmac) 735 { 736 SHASH_DESC_ON_STACK(desc, con->v2.hmac_tfm); /* tfm arg is ignored */ 737 int ret; 738 int i; 739 740 dout("%s con %p hmac_tfm %p kvec_cnt %d\n", __func__, con, 741 con->v2.hmac_tfm, kvec_cnt); 742 743 if (!con->v2.hmac_tfm) { 744 memset(hmac, 0, SHA256_DIGEST_SIZE); 745 return 0; /* auth_none */ 746 } 747 748 desc->tfm = con->v2.hmac_tfm; 749 ret = crypto_shash_init(desc); 750 if (ret) 751 goto out; 752 753 for (i = 0; i < kvec_cnt; i++) { 754 WARN_ON((unsigned long)kvecs[i].iov_base & 755 crypto_shash_alignmask(con->v2.hmac_tfm)); 756 ret = crypto_shash_update(desc, kvecs[i].iov_base, 757 kvecs[i].iov_len); 758 if (ret) 759 goto out; 760 } 761 762 ret = crypto_shash_final(desc, hmac); 763 764 out: 765 shash_desc_zero(desc); 766 return ret; /* auth_x, both plain and secure modes */ 767 } 768 769 static void gcm_inc_nonce(struct ceph_gcm_nonce *nonce) 770 { 771 u64 counter; 772 773 counter = le64_to_cpu(nonce->counter); 774 nonce->counter = cpu_to_le64(counter + 1); 775 } 776 777 static int gcm_crypt(struct ceph_connection *con, bool encrypt, 778 struct scatterlist *src, struct scatterlist *dst, 779 int src_len) 780 { 781 struct ceph_gcm_nonce *nonce; 782 int ret; 783 784 nonce = encrypt ? &con->v2.out_gcm_nonce : &con->v2.in_gcm_nonce; 785 786 aead_request_set_ad(con->v2.gcm_req, 0); /* no AAD */ 787 aead_request_set_crypt(con->v2.gcm_req, src, dst, src_len, (u8 *)nonce); 788 ret = crypto_wait_req(encrypt ? crypto_aead_encrypt(con->v2.gcm_req) : 789 crypto_aead_decrypt(con->v2.gcm_req), 790 &con->v2.gcm_wait); 791 if (ret) 792 return ret; 793 794 gcm_inc_nonce(nonce); 795 return 0; 796 } 797 798 static void get_bvec_at(struct ceph_msg_data_cursor *cursor, 799 struct bio_vec *bv) 800 { 801 struct page *page; 802 size_t off, len; 803 804 WARN_ON(!cursor->total_resid); 805 806 /* skip zero-length data items */ 807 while (!cursor->resid) 808 ceph_msg_data_advance(cursor, 0); 809 810 /* get a piece of data, cursor isn't advanced */ 811 page = ceph_msg_data_next(cursor, &off, &len); 812 bvec_set_page(bv, page, len, off); 813 } 814 815 static int calc_sg_cnt(void *buf, int buf_len) 816 { 817 int sg_cnt; 818 819 if (!buf_len) 820 return 0; 821 822 sg_cnt = need_padding(buf_len) ? 1 : 0; 823 if (is_vmalloc_addr(buf)) { 824 WARN_ON(offset_in_page(buf)); 825 sg_cnt += PAGE_ALIGN(buf_len) >> PAGE_SHIFT; 826 } else { 827 sg_cnt++; 828 } 829 830 return sg_cnt; 831 } 832 833 static int calc_sg_cnt_cursor(struct ceph_msg_data_cursor *cursor) 834 { 835 int data_len = cursor->total_resid; 836 struct bio_vec bv; 837 int sg_cnt; 838 839 if (!data_len) 840 return 0; 841 842 sg_cnt = need_padding(data_len) ? 1 : 0; 843 do { 844 get_bvec_at(cursor, &bv); 845 sg_cnt++; 846 847 ceph_msg_data_advance(cursor, bv.bv_len); 848 } while (cursor->total_resid); 849 850 return sg_cnt; 851 } 852 853 static void init_sgs(struct scatterlist **sg, void *buf, int buf_len, u8 *pad) 854 { 855 void *end = buf + buf_len; 856 struct page *page; 857 int len; 858 void *p; 859 860 if (!buf_len) 861 return; 862 863 if (is_vmalloc_addr(buf)) { 864 p = buf; 865 do { 866 page = vmalloc_to_page(p); 867 len = min_t(int, end - p, PAGE_SIZE); 868 WARN_ON(!page || !len || offset_in_page(p)); 869 sg_set_page(*sg, page, len, 0); 870 *sg = sg_next(*sg); 871 p += len; 872 } while (p != end); 873 } else { 874 sg_set_buf(*sg, buf, buf_len); 875 *sg = sg_next(*sg); 876 } 877 878 if (need_padding(buf_len)) { 879 sg_set_buf(*sg, pad, padding_len(buf_len)); 880 *sg = sg_next(*sg); 881 } 882 } 883 884 static void init_sgs_cursor(struct scatterlist **sg, 885 struct ceph_msg_data_cursor *cursor, u8 *pad) 886 { 887 int data_len = cursor->total_resid; 888 struct bio_vec bv; 889 890 if (!data_len) 891 return; 892 893 do { 894 get_bvec_at(cursor, &bv); 895 sg_set_page(*sg, bv.bv_page, bv.bv_len, bv.bv_offset); 896 *sg = sg_next(*sg); 897 898 ceph_msg_data_advance(cursor, bv.bv_len); 899 } while (cursor->total_resid); 900 901 if (need_padding(data_len)) { 902 sg_set_buf(*sg, pad, padding_len(data_len)); 903 *sg = sg_next(*sg); 904 } 905 } 906 907 static int setup_message_sgs(struct sg_table *sgt, struct ceph_msg *msg, 908 u8 *front_pad, u8 *middle_pad, u8 *data_pad, 909 void *epilogue, bool add_tag) 910 { 911 struct ceph_msg_data_cursor cursor; 912 struct scatterlist *cur_sg; 913 int sg_cnt; 914 int ret; 915 916 if (!front_len(msg) && !middle_len(msg) && !data_len(msg)) 917 return 0; 918 919 sg_cnt = 1; /* epilogue + [auth tag] */ 920 if (front_len(msg)) 921 sg_cnt += calc_sg_cnt(msg->front.iov_base, 922 front_len(msg)); 923 if (middle_len(msg)) 924 sg_cnt += calc_sg_cnt(msg->middle->vec.iov_base, 925 middle_len(msg)); 926 if (data_len(msg)) { 927 ceph_msg_data_cursor_init(&cursor, msg, data_len(msg)); 928 sg_cnt += calc_sg_cnt_cursor(&cursor); 929 } 930 931 ret = sg_alloc_table(sgt, sg_cnt, GFP_NOIO); 932 if (ret) 933 return ret; 934 935 cur_sg = sgt->sgl; 936 if (front_len(msg)) 937 init_sgs(&cur_sg, msg->front.iov_base, front_len(msg), 938 front_pad); 939 if (middle_len(msg)) 940 init_sgs(&cur_sg, msg->middle->vec.iov_base, middle_len(msg), 941 middle_pad); 942 if (data_len(msg)) { 943 ceph_msg_data_cursor_init(&cursor, msg, data_len(msg)); 944 init_sgs_cursor(&cur_sg, &cursor, data_pad); 945 } 946 947 WARN_ON(!sg_is_last(cur_sg)); 948 sg_set_buf(cur_sg, epilogue, 949 CEPH_GCM_BLOCK_LEN + (add_tag ? CEPH_GCM_TAG_LEN : 0)); 950 return 0; 951 } 952 953 static int decrypt_preamble(struct ceph_connection *con) 954 { 955 struct scatterlist sg; 956 957 sg_init_one(&sg, con->v2.in_buf, CEPH_PREAMBLE_SECURE_LEN); 958 return gcm_crypt(con, false, &sg, &sg, CEPH_PREAMBLE_SECURE_LEN); 959 } 960 961 static int decrypt_control_remainder(struct ceph_connection *con) 962 { 963 int ctrl_len = con->v2.in_desc.fd_lens[0]; 964 int rem_len = ctrl_len - CEPH_PREAMBLE_INLINE_LEN; 965 int pt_len = padding_len(rem_len) + CEPH_GCM_TAG_LEN; 966 struct scatterlist sgs[2]; 967 968 WARN_ON(con->v2.in_kvecs[0].iov_len != rem_len); 969 WARN_ON(con->v2.in_kvecs[1].iov_len != pt_len); 970 971 sg_init_table(sgs, 2); 972 sg_set_buf(&sgs[0], con->v2.in_kvecs[0].iov_base, rem_len); 973 sg_set_buf(&sgs[1], con->v2.in_buf, pt_len); 974 975 return gcm_crypt(con, false, sgs, sgs, 976 padded_len(rem_len) + CEPH_GCM_TAG_LEN); 977 } 978 979 static int decrypt_tail(struct ceph_connection *con) 980 { 981 struct sg_table enc_sgt = {}; 982 struct sg_table sgt = {}; 983 int tail_len; 984 int ret; 985 986 tail_len = tail_onwire_len(con->in_msg, true); 987 ret = sg_alloc_table_from_pages(&enc_sgt, con->v2.in_enc_pages, 988 con->v2.in_enc_page_cnt, 0, tail_len, 989 GFP_NOIO); 990 if (ret) 991 goto out; 992 993 ret = setup_message_sgs(&sgt, con->in_msg, FRONT_PAD(con->v2.in_buf), 994 MIDDLE_PAD(con->v2.in_buf), DATA_PAD(con->v2.in_buf), 995 con->v2.in_buf, true); 996 if (ret) 997 goto out; 998 999 dout("%s con %p msg %p enc_page_cnt %d sg_cnt %d\n", __func__, con, 1000 con->in_msg, con->v2.in_enc_page_cnt, sgt.orig_nents); 1001 ret = gcm_crypt(con, false, enc_sgt.sgl, sgt.sgl, tail_len); 1002 if (ret) 1003 goto out; 1004 1005 WARN_ON(!con->v2.in_enc_page_cnt); 1006 ceph_release_page_vector(con->v2.in_enc_pages, 1007 con->v2.in_enc_page_cnt); 1008 con->v2.in_enc_pages = NULL; 1009 con->v2.in_enc_page_cnt = 0; 1010 1011 out: 1012 sg_free_table(&sgt); 1013 sg_free_table(&enc_sgt); 1014 return ret; 1015 } 1016 1017 static int prepare_banner(struct ceph_connection *con) 1018 { 1019 int buf_len = CEPH_BANNER_V2_LEN + 2 + 8 + 8; 1020 void *buf, *p; 1021 1022 buf = alloc_conn_buf(con, buf_len); 1023 if (!buf) 1024 return -ENOMEM; 1025 1026 p = buf; 1027 ceph_encode_copy(&p, CEPH_BANNER_V2, CEPH_BANNER_V2_LEN); 1028 ceph_encode_16(&p, sizeof(u64) + sizeof(u64)); 1029 ceph_encode_64(&p, CEPH_MSGR2_SUPPORTED_FEATURES); 1030 ceph_encode_64(&p, CEPH_MSGR2_REQUIRED_FEATURES); 1031 WARN_ON(p != buf + buf_len); 1032 1033 add_out_kvec(con, buf, buf_len); 1034 add_out_sign_kvec(con, buf, buf_len); 1035 ceph_con_flag_set(con, CEPH_CON_F_WRITE_PENDING); 1036 return 0; 1037 } 1038 1039 /* 1040 * base: 1041 * preamble 1042 * control body (ctrl_len bytes) 1043 * space for control crc 1044 * 1045 * extdata (optional): 1046 * control body (extdata_len bytes) 1047 * 1048 * Compute control crc and gather base and extdata into: 1049 * 1050 * preamble 1051 * control body (ctrl_len + extdata_len bytes) 1052 * control crc 1053 * 1054 * Preamble should already be encoded at the start of base. 1055 */ 1056 static void prepare_head_plain(struct ceph_connection *con, void *base, 1057 int ctrl_len, void *extdata, int extdata_len, 1058 bool to_be_signed) 1059 { 1060 int base_len = CEPH_PREAMBLE_LEN + ctrl_len + CEPH_CRC_LEN; 1061 void *crcp = base + base_len - CEPH_CRC_LEN; 1062 u32 crc; 1063 1064 crc = crc32c(-1, CTRL_BODY(base), ctrl_len); 1065 if (extdata_len) 1066 crc = crc32c(crc, extdata, extdata_len); 1067 put_unaligned_le32(crc, crcp); 1068 1069 if (!extdata_len) { 1070 add_out_kvec(con, base, base_len); 1071 if (to_be_signed) 1072 add_out_sign_kvec(con, base, base_len); 1073 return; 1074 } 1075 1076 add_out_kvec(con, base, crcp - base); 1077 add_out_kvec(con, extdata, extdata_len); 1078 add_out_kvec(con, crcp, CEPH_CRC_LEN); 1079 if (to_be_signed) { 1080 add_out_sign_kvec(con, base, crcp - base); 1081 add_out_sign_kvec(con, extdata, extdata_len); 1082 add_out_sign_kvec(con, crcp, CEPH_CRC_LEN); 1083 } 1084 } 1085 1086 static int prepare_head_secure_small(struct ceph_connection *con, 1087 void *base, int ctrl_len) 1088 { 1089 struct scatterlist sg; 1090 int ret; 1091 1092 /* inline buffer padding? */ 1093 if (ctrl_len < CEPH_PREAMBLE_INLINE_LEN) 1094 memset(CTRL_BODY(base) + ctrl_len, 0, 1095 CEPH_PREAMBLE_INLINE_LEN - ctrl_len); 1096 1097 sg_init_one(&sg, base, CEPH_PREAMBLE_SECURE_LEN); 1098 ret = gcm_crypt(con, true, &sg, &sg, 1099 CEPH_PREAMBLE_SECURE_LEN - CEPH_GCM_TAG_LEN); 1100 if (ret) 1101 return ret; 1102 1103 add_out_kvec(con, base, CEPH_PREAMBLE_SECURE_LEN); 1104 return 0; 1105 } 1106 1107 /* 1108 * base: 1109 * preamble 1110 * control body (ctrl_len bytes) 1111 * space for padding, if needed 1112 * space for control remainder auth tag 1113 * space for preamble auth tag 1114 * 1115 * Encrypt preamble and the inline portion, then encrypt the remainder 1116 * and gather into: 1117 * 1118 * preamble 1119 * control body (48 bytes) 1120 * preamble auth tag 1121 * control body (ctrl_len - 48 bytes) 1122 * zero padding, if needed 1123 * control remainder auth tag 1124 * 1125 * Preamble should already be encoded at the start of base. 1126 */ 1127 static int prepare_head_secure_big(struct ceph_connection *con, 1128 void *base, int ctrl_len) 1129 { 1130 int rem_len = ctrl_len - CEPH_PREAMBLE_INLINE_LEN; 1131 void *rem = CTRL_BODY(base) + CEPH_PREAMBLE_INLINE_LEN; 1132 void *rem_tag = rem + padded_len(rem_len); 1133 void *pmbl_tag = rem_tag + CEPH_GCM_TAG_LEN; 1134 struct scatterlist sgs[2]; 1135 int ret; 1136 1137 sg_init_table(sgs, 2); 1138 sg_set_buf(&sgs[0], base, rem - base); 1139 sg_set_buf(&sgs[1], pmbl_tag, CEPH_GCM_TAG_LEN); 1140 ret = gcm_crypt(con, true, sgs, sgs, rem - base); 1141 if (ret) 1142 return ret; 1143 1144 /* control remainder padding? */ 1145 if (need_padding(rem_len)) 1146 memset(rem + rem_len, 0, padding_len(rem_len)); 1147 1148 sg_init_one(&sgs[0], rem, pmbl_tag - rem); 1149 ret = gcm_crypt(con, true, sgs, sgs, rem_tag - rem); 1150 if (ret) 1151 return ret; 1152 1153 add_out_kvec(con, base, rem - base); 1154 add_out_kvec(con, pmbl_tag, CEPH_GCM_TAG_LEN); 1155 add_out_kvec(con, rem, pmbl_tag - rem); 1156 return 0; 1157 } 1158 1159 static int __prepare_control(struct ceph_connection *con, int tag, 1160 void *base, int ctrl_len, void *extdata, 1161 int extdata_len, bool to_be_signed) 1162 { 1163 int total_len = ctrl_len + extdata_len; 1164 struct ceph_frame_desc desc; 1165 int ret; 1166 1167 dout("%s con %p tag %d len %d (%d+%d)\n", __func__, con, tag, 1168 total_len, ctrl_len, extdata_len); 1169 1170 /* extdata may be vmalloc'ed but not base */ 1171 if (WARN_ON(is_vmalloc_addr(base) || !ctrl_len)) 1172 return -EINVAL; 1173 1174 init_frame_desc(&desc, tag, &total_len, 1); 1175 encode_preamble(&desc, base); 1176 1177 if (con_secure(con)) { 1178 if (WARN_ON(extdata_len || to_be_signed)) 1179 return -EINVAL; 1180 1181 if (ctrl_len <= CEPH_PREAMBLE_INLINE_LEN) 1182 /* fully inlined, inline buffer may need padding */ 1183 ret = prepare_head_secure_small(con, base, ctrl_len); 1184 else 1185 /* partially inlined, inline buffer is full */ 1186 ret = prepare_head_secure_big(con, base, ctrl_len); 1187 if (ret) 1188 return ret; 1189 } else { 1190 prepare_head_plain(con, base, ctrl_len, extdata, extdata_len, 1191 to_be_signed); 1192 } 1193 1194 ceph_con_flag_set(con, CEPH_CON_F_WRITE_PENDING); 1195 return 0; 1196 } 1197 1198 static int prepare_control(struct ceph_connection *con, int tag, 1199 void *base, int ctrl_len) 1200 { 1201 return __prepare_control(con, tag, base, ctrl_len, NULL, 0, false); 1202 } 1203 1204 static int prepare_hello(struct ceph_connection *con) 1205 { 1206 void *buf, *p; 1207 int ctrl_len; 1208 1209 ctrl_len = 1 + ceph_entity_addr_encoding_len(&con->peer_addr); 1210 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, false)); 1211 if (!buf) 1212 return -ENOMEM; 1213 1214 p = CTRL_BODY(buf); 1215 ceph_encode_8(&p, CEPH_ENTITY_TYPE_CLIENT); 1216 ceph_encode_entity_addr(&p, &con->peer_addr); 1217 WARN_ON(p != CTRL_BODY(buf) + ctrl_len); 1218 1219 return __prepare_control(con, FRAME_TAG_HELLO, buf, ctrl_len, 1220 NULL, 0, true); 1221 } 1222 1223 /* so that head_onwire_len(AUTH_BUF_LEN, false) is 512 */ 1224 #define AUTH_BUF_LEN (512 - CEPH_CRC_LEN - CEPH_PREAMBLE_PLAIN_LEN) 1225 1226 static int prepare_auth_request(struct ceph_connection *con) 1227 { 1228 void *authorizer, *authorizer_copy; 1229 int ctrl_len, authorizer_len; 1230 void *buf; 1231 int ret; 1232 1233 ctrl_len = AUTH_BUF_LEN; 1234 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, false)); 1235 if (!buf) 1236 return -ENOMEM; 1237 1238 mutex_unlock(&con->mutex); 1239 ret = con->ops->get_auth_request(con, CTRL_BODY(buf), &ctrl_len, 1240 &authorizer, &authorizer_len); 1241 mutex_lock(&con->mutex); 1242 if (con->state != CEPH_CON_S_V2_HELLO) { 1243 dout("%s con %p state changed to %d\n", __func__, con, 1244 con->state); 1245 return -EAGAIN; 1246 } 1247 1248 dout("%s con %p get_auth_request ret %d\n", __func__, con, ret); 1249 if (ret) 1250 return ret; 1251 1252 authorizer_copy = alloc_conn_buf(con, authorizer_len); 1253 if (!authorizer_copy) 1254 return -ENOMEM; 1255 1256 memcpy(authorizer_copy, authorizer, authorizer_len); 1257 1258 return __prepare_control(con, FRAME_TAG_AUTH_REQUEST, buf, ctrl_len, 1259 authorizer_copy, authorizer_len, true); 1260 } 1261 1262 static int prepare_auth_request_more(struct ceph_connection *con, 1263 void *reply, int reply_len) 1264 { 1265 int ctrl_len, authorizer_len; 1266 void *authorizer; 1267 void *buf; 1268 int ret; 1269 1270 ctrl_len = AUTH_BUF_LEN; 1271 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, false)); 1272 if (!buf) 1273 return -ENOMEM; 1274 1275 mutex_unlock(&con->mutex); 1276 ret = con->ops->handle_auth_reply_more(con, reply, reply_len, 1277 CTRL_BODY(buf), &ctrl_len, 1278 &authorizer, &authorizer_len); 1279 mutex_lock(&con->mutex); 1280 if (con->state != CEPH_CON_S_V2_AUTH) { 1281 dout("%s con %p state changed to %d\n", __func__, con, 1282 con->state); 1283 return -EAGAIN; 1284 } 1285 1286 dout("%s con %p handle_auth_reply_more ret %d\n", __func__, con, ret); 1287 if (ret) 1288 return ret; 1289 1290 return __prepare_control(con, FRAME_TAG_AUTH_REQUEST_MORE, buf, 1291 ctrl_len, authorizer, authorizer_len, true); 1292 } 1293 1294 static int prepare_auth_signature(struct ceph_connection *con) 1295 { 1296 void *buf; 1297 int ret; 1298 1299 buf = alloc_conn_buf(con, head_onwire_len(SHA256_DIGEST_SIZE, 1300 con_secure(con))); 1301 if (!buf) 1302 return -ENOMEM; 1303 1304 ret = hmac_sha256(con, con->v2.in_sign_kvecs, con->v2.in_sign_kvec_cnt, 1305 CTRL_BODY(buf)); 1306 if (ret) 1307 return ret; 1308 1309 return prepare_control(con, FRAME_TAG_AUTH_SIGNATURE, buf, 1310 SHA256_DIGEST_SIZE); 1311 } 1312 1313 static int prepare_client_ident(struct ceph_connection *con) 1314 { 1315 struct ceph_entity_addr *my_addr = &con->msgr->inst.addr; 1316 struct ceph_client *client = from_msgr(con->msgr); 1317 u64 global_id = ceph_client_gid(client); 1318 void *buf, *p; 1319 int ctrl_len; 1320 1321 WARN_ON(con->v2.server_cookie); 1322 WARN_ON(con->v2.connect_seq); 1323 WARN_ON(con->v2.peer_global_seq); 1324 1325 if (!con->v2.client_cookie) { 1326 do { 1327 get_random_bytes(&con->v2.client_cookie, 1328 sizeof(con->v2.client_cookie)); 1329 } while (!con->v2.client_cookie); 1330 dout("%s con %p generated cookie 0x%llx\n", __func__, con, 1331 con->v2.client_cookie); 1332 } else { 1333 dout("%s con %p cookie already set 0x%llx\n", __func__, con, 1334 con->v2.client_cookie); 1335 } 1336 1337 dout("%s con %p my_addr %s/%u peer_addr %s/%u global_id %llu global_seq %llu features 0x%llx required_features 0x%llx cookie 0x%llx\n", 1338 __func__, con, ceph_pr_addr(my_addr), le32_to_cpu(my_addr->nonce), 1339 ceph_pr_addr(&con->peer_addr), le32_to_cpu(con->peer_addr.nonce), 1340 global_id, con->v2.global_seq, client->supported_features, 1341 client->required_features, con->v2.client_cookie); 1342 1343 ctrl_len = 1 + 4 + ceph_entity_addr_encoding_len(my_addr) + 1344 ceph_entity_addr_encoding_len(&con->peer_addr) + 6 * 8; 1345 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, con_secure(con))); 1346 if (!buf) 1347 return -ENOMEM; 1348 1349 p = CTRL_BODY(buf); 1350 ceph_encode_8(&p, 2); /* addrvec marker */ 1351 ceph_encode_32(&p, 1); /* addr_cnt */ 1352 ceph_encode_entity_addr(&p, my_addr); 1353 ceph_encode_entity_addr(&p, &con->peer_addr); 1354 ceph_encode_64(&p, global_id); 1355 ceph_encode_64(&p, con->v2.global_seq); 1356 ceph_encode_64(&p, client->supported_features); 1357 ceph_encode_64(&p, client->required_features); 1358 ceph_encode_64(&p, 0); /* flags */ 1359 ceph_encode_64(&p, con->v2.client_cookie); 1360 WARN_ON(p != CTRL_BODY(buf) + ctrl_len); 1361 1362 return prepare_control(con, FRAME_TAG_CLIENT_IDENT, buf, ctrl_len); 1363 } 1364 1365 static int prepare_session_reconnect(struct ceph_connection *con) 1366 { 1367 struct ceph_entity_addr *my_addr = &con->msgr->inst.addr; 1368 void *buf, *p; 1369 int ctrl_len; 1370 1371 WARN_ON(!con->v2.client_cookie); 1372 WARN_ON(!con->v2.server_cookie); 1373 WARN_ON(!con->v2.connect_seq); 1374 WARN_ON(!con->v2.peer_global_seq); 1375 1376 dout("%s con %p my_addr %s/%u client_cookie 0x%llx server_cookie 0x%llx global_seq %llu connect_seq %llu in_seq %llu\n", 1377 __func__, con, ceph_pr_addr(my_addr), le32_to_cpu(my_addr->nonce), 1378 con->v2.client_cookie, con->v2.server_cookie, con->v2.global_seq, 1379 con->v2.connect_seq, con->in_seq); 1380 1381 ctrl_len = 1 + 4 + ceph_entity_addr_encoding_len(my_addr) + 5 * 8; 1382 buf = alloc_conn_buf(con, head_onwire_len(ctrl_len, con_secure(con))); 1383 if (!buf) 1384 return -ENOMEM; 1385 1386 p = CTRL_BODY(buf); 1387 ceph_encode_8(&p, 2); /* entity_addrvec_t marker */ 1388 ceph_encode_32(&p, 1); /* my_addrs len */ 1389 ceph_encode_entity_addr(&p, my_addr); 1390 ceph_encode_64(&p, con->v2.client_cookie); 1391 ceph_encode_64(&p, con->v2.server_cookie); 1392 ceph_encode_64(&p, con->v2.global_seq); 1393 ceph_encode_64(&p, con->v2.connect_seq); 1394 ceph_encode_64(&p, con->in_seq); 1395 WARN_ON(p != CTRL_BODY(buf) + ctrl_len); 1396 1397 return prepare_control(con, FRAME_TAG_SESSION_RECONNECT, buf, ctrl_len); 1398 } 1399 1400 static int prepare_keepalive2(struct ceph_connection *con) 1401 { 1402 struct ceph_timespec *ts = CTRL_BODY(con->v2.out_buf); 1403 struct timespec64 now; 1404 1405 ktime_get_real_ts64(&now); 1406 dout("%s con %p timestamp %lld.%09ld\n", __func__, con, now.tv_sec, 1407 now.tv_nsec); 1408 1409 ceph_encode_timespec64(ts, &now); 1410 1411 reset_out_kvecs(con); 1412 return prepare_control(con, FRAME_TAG_KEEPALIVE2, con->v2.out_buf, 1413 sizeof(struct ceph_timespec)); 1414 } 1415 1416 static int prepare_ack(struct ceph_connection *con) 1417 { 1418 void *p; 1419 1420 dout("%s con %p in_seq_acked %llu -> %llu\n", __func__, con, 1421 con->in_seq_acked, con->in_seq); 1422 con->in_seq_acked = con->in_seq; 1423 1424 p = CTRL_BODY(con->v2.out_buf); 1425 ceph_encode_64(&p, con->in_seq_acked); 1426 1427 reset_out_kvecs(con); 1428 return prepare_control(con, FRAME_TAG_ACK, con->v2.out_buf, 8); 1429 } 1430 1431 static void prepare_epilogue_plain(struct ceph_connection *con, bool aborted) 1432 { 1433 dout("%s con %p msg %p aborted %d crcs %u %u %u\n", __func__, con, 1434 con->out_msg, aborted, con->v2.out_epil.front_crc, 1435 con->v2.out_epil.middle_crc, con->v2.out_epil.data_crc); 1436 1437 encode_epilogue_plain(con, aborted); 1438 add_out_kvec(con, &con->v2.out_epil, CEPH_EPILOGUE_PLAIN_LEN); 1439 } 1440 1441 /* 1442 * For "used" empty segments, crc is -1. For unused (trailing) 1443 * segments, crc is 0. 1444 */ 1445 static void prepare_message_plain(struct ceph_connection *con) 1446 { 1447 struct ceph_msg *msg = con->out_msg; 1448 1449 prepare_head_plain(con, con->v2.out_buf, 1450 sizeof(struct ceph_msg_header2), NULL, 0, false); 1451 1452 if (!front_len(msg) && !middle_len(msg)) { 1453 if (!data_len(msg)) { 1454 /* 1455 * Empty message: once the head is written, 1456 * we are done -- there is no epilogue. 1457 */ 1458 con->v2.out_state = OUT_S_FINISH_MESSAGE; 1459 return; 1460 } 1461 1462 con->v2.out_epil.front_crc = -1; 1463 con->v2.out_epil.middle_crc = -1; 1464 con->v2.out_state = OUT_S_QUEUE_DATA; 1465 return; 1466 } 1467 1468 if (front_len(msg)) { 1469 con->v2.out_epil.front_crc = crc32c(-1, msg->front.iov_base, 1470 front_len(msg)); 1471 add_out_kvec(con, msg->front.iov_base, front_len(msg)); 1472 } else { 1473 /* middle (at least) is there, checked above */ 1474 con->v2.out_epil.front_crc = -1; 1475 } 1476 1477 if (middle_len(msg)) { 1478 con->v2.out_epil.middle_crc = 1479 crc32c(-1, msg->middle->vec.iov_base, middle_len(msg)); 1480 add_out_kvec(con, msg->middle->vec.iov_base, middle_len(msg)); 1481 } else { 1482 con->v2.out_epil.middle_crc = data_len(msg) ? -1 : 0; 1483 } 1484 1485 if (data_len(msg)) { 1486 con->v2.out_state = OUT_S_QUEUE_DATA; 1487 } else { 1488 con->v2.out_epil.data_crc = 0; 1489 prepare_epilogue_plain(con, false); 1490 con->v2.out_state = OUT_S_FINISH_MESSAGE; 1491 } 1492 } 1493 1494 /* 1495 * Unfortunately the kernel crypto API doesn't support streaming 1496 * (piecewise) operation for AEAD algorithms, so we can't get away 1497 * with a fixed size buffer and a couple sgs. Instead, we have to 1498 * allocate pages for the entire tail of the message (currently up 1499 * to ~32M) and two sgs arrays (up to ~256K each)... 1500 */ 1501 static int prepare_message_secure(struct ceph_connection *con) 1502 { 1503 void *zerop = page_address(ceph_zero_page); 1504 struct sg_table enc_sgt = {}; 1505 struct sg_table sgt = {}; 1506 struct page **enc_pages; 1507 int enc_page_cnt; 1508 int tail_len; 1509 int ret; 1510 1511 ret = prepare_head_secure_small(con, con->v2.out_buf, 1512 sizeof(struct ceph_msg_header2)); 1513 if (ret) 1514 return ret; 1515 1516 tail_len = tail_onwire_len(con->out_msg, true); 1517 if (!tail_len) { 1518 /* 1519 * Empty message: once the head is written, 1520 * we are done -- there is no epilogue. 1521 */ 1522 con->v2.out_state = OUT_S_FINISH_MESSAGE; 1523 return 0; 1524 } 1525 1526 encode_epilogue_secure(con, false); 1527 ret = setup_message_sgs(&sgt, con->out_msg, zerop, zerop, zerop, 1528 &con->v2.out_epil, false); 1529 if (ret) 1530 goto out; 1531 1532 enc_page_cnt = calc_pages_for(0, tail_len); 1533 enc_pages = ceph_alloc_page_vector(enc_page_cnt, GFP_NOIO); 1534 if (IS_ERR(enc_pages)) { 1535 ret = PTR_ERR(enc_pages); 1536 goto out; 1537 } 1538 1539 WARN_ON(con->v2.out_enc_pages || con->v2.out_enc_page_cnt); 1540 con->v2.out_enc_pages = enc_pages; 1541 con->v2.out_enc_page_cnt = enc_page_cnt; 1542 con->v2.out_enc_resid = tail_len; 1543 con->v2.out_enc_i = 0; 1544 1545 ret = sg_alloc_table_from_pages(&enc_sgt, enc_pages, enc_page_cnt, 1546 0, tail_len, GFP_NOIO); 1547 if (ret) 1548 goto out; 1549 1550 ret = gcm_crypt(con, true, sgt.sgl, enc_sgt.sgl, 1551 tail_len - CEPH_GCM_TAG_LEN); 1552 if (ret) 1553 goto out; 1554 1555 dout("%s con %p msg %p sg_cnt %d enc_page_cnt %d\n", __func__, con, 1556 con->out_msg, sgt.orig_nents, enc_page_cnt); 1557 con->v2.out_state = OUT_S_QUEUE_ENC_PAGE; 1558 1559 out: 1560 sg_free_table(&sgt); 1561 sg_free_table(&enc_sgt); 1562 return ret; 1563 } 1564 1565 static int prepare_message(struct ceph_connection *con) 1566 { 1567 int lens[] = { 1568 sizeof(struct ceph_msg_header2), 1569 front_len(con->out_msg), 1570 middle_len(con->out_msg), 1571 data_len(con->out_msg) 1572 }; 1573 struct ceph_frame_desc desc; 1574 int ret; 1575 1576 dout("%s con %p msg %p logical %d+%d+%d+%d\n", __func__, con, 1577 con->out_msg, lens[0], lens[1], lens[2], lens[3]); 1578 1579 if (con->in_seq > con->in_seq_acked) { 1580 dout("%s con %p in_seq_acked %llu -> %llu\n", __func__, con, 1581 con->in_seq_acked, con->in_seq); 1582 con->in_seq_acked = con->in_seq; 1583 } 1584 1585 reset_out_kvecs(con); 1586 init_frame_desc(&desc, FRAME_TAG_MESSAGE, lens, 4); 1587 encode_preamble(&desc, con->v2.out_buf); 1588 fill_header2(CTRL_BODY(con->v2.out_buf), &con->out_msg->hdr, 1589 con->in_seq_acked); 1590 1591 if (con_secure(con)) { 1592 ret = prepare_message_secure(con); 1593 if (ret) 1594 return ret; 1595 } else { 1596 prepare_message_plain(con); 1597 } 1598 1599 ceph_con_flag_set(con, CEPH_CON_F_WRITE_PENDING); 1600 return 0; 1601 } 1602 1603 static int prepare_read_banner_prefix(struct ceph_connection *con) 1604 { 1605 void *buf; 1606 1607 buf = alloc_conn_buf(con, CEPH_BANNER_V2_PREFIX_LEN); 1608 if (!buf) 1609 return -ENOMEM; 1610 1611 reset_in_kvecs(con); 1612 add_in_kvec(con, buf, CEPH_BANNER_V2_PREFIX_LEN); 1613 add_in_sign_kvec(con, buf, CEPH_BANNER_V2_PREFIX_LEN); 1614 con->state = CEPH_CON_S_V2_BANNER_PREFIX; 1615 return 0; 1616 } 1617 1618 static int prepare_read_banner_payload(struct ceph_connection *con, 1619 int payload_len) 1620 { 1621 void *buf; 1622 1623 buf = alloc_conn_buf(con, payload_len); 1624 if (!buf) 1625 return -ENOMEM; 1626 1627 reset_in_kvecs(con); 1628 add_in_kvec(con, buf, payload_len); 1629 add_in_sign_kvec(con, buf, payload_len); 1630 con->state = CEPH_CON_S_V2_BANNER_PAYLOAD; 1631 return 0; 1632 } 1633 1634 static void prepare_read_preamble(struct ceph_connection *con) 1635 { 1636 reset_in_kvecs(con); 1637 add_in_kvec(con, con->v2.in_buf, 1638 con_secure(con) ? CEPH_PREAMBLE_SECURE_LEN : 1639 CEPH_PREAMBLE_PLAIN_LEN); 1640 con->v2.in_state = IN_S_HANDLE_PREAMBLE; 1641 } 1642 1643 static int prepare_read_control(struct ceph_connection *con) 1644 { 1645 int ctrl_len = con->v2.in_desc.fd_lens[0]; 1646 int head_len; 1647 void *buf; 1648 1649 reset_in_kvecs(con); 1650 if (con->state == CEPH_CON_S_V2_HELLO || 1651 con->state == CEPH_CON_S_V2_AUTH) { 1652 head_len = head_onwire_len(ctrl_len, false); 1653 buf = alloc_conn_buf(con, head_len); 1654 if (!buf) 1655 return -ENOMEM; 1656 1657 /* preserve preamble */ 1658 memcpy(buf, con->v2.in_buf, CEPH_PREAMBLE_LEN); 1659 1660 add_in_kvec(con, CTRL_BODY(buf), ctrl_len); 1661 add_in_kvec(con, CTRL_BODY(buf) + ctrl_len, CEPH_CRC_LEN); 1662 add_in_sign_kvec(con, buf, head_len); 1663 } else { 1664 if (ctrl_len > CEPH_PREAMBLE_INLINE_LEN) { 1665 buf = alloc_conn_buf(con, ctrl_len); 1666 if (!buf) 1667 return -ENOMEM; 1668 1669 add_in_kvec(con, buf, ctrl_len); 1670 } else { 1671 add_in_kvec(con, CTRL_BODY(con->v2.in_buf), ctrl_len); 1672 } 1673 add_in_kvec(con, con->v2.in_buf, CEPH_CRC_LEN); 1674 } 1675 con->v2.in_state = IN_S_HANDLE_CONTROL; 1676 return 0; 1677 } 1678 1679 static int prepare_read_control_remainder(struct ceph_connection *con) 1680 { 1681 int ctrl_len = con->v2.in_desc.fd_lens[0]; 1682 int rem_len = ctrl_len - CEPH_PREAMBLE_INLINE_LEN; 1683 void *buf; 1684 1685 buf = alloc_conn_buf(con, ctrl_len); 1686 if (!buf) 1687 return -ENOMEM; 1688 1689 memcpy(buf, CTRL_BODY(con->v2.in_buf), CEPH_PREAMBLE_INLINE_LEN); 1690 1691 reset_in_kvecs(con); 1692 add_in_kvec(con, buf + CEPH_PREAMBLE_INLINE_LEN, rem_len); 1693 add_in_kvec(con, con->v2.in_buf, 1694 padding_len(rem_len) + CEPH_GCM_TAG_LEN); 1695 con->v2.in_state = IN_S_HANDLE_CONTROL_REMAINDER; 1696 return 0; 1697 } 1698 1699 static int prepare_read_data(struct ceph_connection *con) 1700 { 1701 struct bio_vec bv; 1702 1703 con->in_data_crc = -1; 1704 ceph_msg_data_cursor_init(&con->v2.in_cursor, con->in_msg, 1705 data_len(con->in_msg)); 1706 1707 get_bvec_at(&con->v2.in_cursor, &bv); 1708 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) { 1709 if (unlikely(!con->bounce_page)) { 1710 con->bounce_page = alloc_page(GFP_NOIO); 1711 if (!con->bounce_page) { 1712 pr_err("failed to allocate bounce page\n"); 1713 return -ENOMEM; 1714 } 1715 } 1716 1717 bv.bv_page = con->bounce_page; 1718 bv.bv_offset = 0; 1719 } 1720 set_in_bvec(con, &bv); 1721 con->v2.in_state = IN_S_PREPARE_READ_DATA_CONT; 1722 return 0; 1723 } 1724 1725 static void prepare_read_data_cont(struct ceph_connection *con) 1726 { 1727 struct bio_vec bv; 1728 1729 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) { 1730 con->in_data_crc = crc32c(con->in_data_crc, 1731 page_address(con->bounce_page), 1732 con->v2.in_bvec.bv_len); 1733 1734 get_bvec_at(&con->v2.in_cursor, &bv); 1735 memcpy_to_page(bv.bv_page, bv.bv_offset, 1736 page_address(con->bounce_page), 1737 con->v2.in_bvec.bv_len); 1738 } else { 1739 con->in_data_crc = ceph_crc32c_page(con->in_data_crc, 1740 con->v2.in_bvec.bv_page, 1741 con->v2.in_bvec.bv_offset, 1742 con->v2.in_bvec.bv_len); 1743 } 1744 1745 ceph_msg_data_advance(&con->v2.in_cursor, con->v2.in_bvec.bv_len); 1746 if (con->v2.in_cursor.total_resid) { 1747 get_bvec_at(&con->v2.in_cursor, &bv); 1748 if (ceph_test_opt(from_msgr(con->msgr), RXBOUNCE)) { 1749 bv.bv_page = con->bounce_page; 1750 bv.bv_offset = 0; 1751 } 1752 set_in_bvec(con, &bv); 1753 WARN_ON(con->v2.in_state != IN_S_PREPARE_READ_DATA_CONT); 1754 return; 1755 } 1756 1757 /* 1758 * We've read all data. Prepare to read epilogue. 1759 */ 1760 reset_in_kvecs(con); 1761 add_in_kvec(con, con->v2.in_buf, CEPH_EPILOGUE_PLAIN_LEN); 1762 con->v2.in_state = IN_S_HANDLE_EPILOGUE; 1763 } 1764 1765 static int prepare_read_tail_plain(struct ceph_connection *con) 1766 { 1767 struct ceph_msg *msg = con->in_msg; 1768 1769 if (!front_len(msg) && !middle_len(msg)) { 1770 WARN_ON(!data_len(msg)); 1771 return prepare_read_data(con); 1772 } 1773 1774 reset_in_kvecs(con); 1775 if (front_len(msg)) { 1776 add_in_kvec(con, msg->front.iov_base, front_len(msg)); 1777 WARN_ON(msg->front.iov_len != front_len(msg)); 1778 } 1779 if (middle_len(msg)) { 1780 add_in_kvec(con, msg->middle->vec.iov_base, middle_len(msg)); 1781 WARN_ON(msg->middle->vec.iov_len != middle_len(msg)); 1782 } 1783 1784 if (data_len(msg)) { 1785 con->v2.in_state = IN_S_PREPARE_READ_DATA; 1786 } else { 1787 add_in_kvec(con, con->v2.in_buf, CEPH_EPILOGUE_PLAIN_LEN); 1788 con->v2.in_state = IN_S_HANDLE_EPILOGUE; 1789 } 1790 return 0; 1791 } 1792 1793 static void prepare_read_enc_page(struct ceph_connection *con) 1794 { 1795 struct bio_vec bv; 1796 1797 dout("%s con %p i %d resid %d\n", __func__, con, con->v2.in_enc_i, 1798 con->v2.in_enc_resid); 1799 WARN_ON(!con->v2.in_enc_resid); 1800 1801 bvec_set_page(&bv, con->v2.in_enc_pages[con->v2.in_enc_i], 1802 min(con->v2.in_enc_resid, (int)PAGE_SIZE), 0); 1803 1804 set_in_bvec(con, &bv); 1805 con->v2.in_enc_i++; 1806 con->v2.in_enc_resid -= bv.bv_len; 1807 1808 if (con->v2.in_enc_resid) { 1809 con->v2.in_state = IN_S_PREPARE_READ_ENC_PAGE; 1810 return; 1811 } 1812 1813 /* 1814 * We are set to read the last piece of ciphertext (ending 1815 * with epilogue) + auth tag. 1816 */ 1817 WARN_ON(con->v2.in_enc_i != con->v2.in_enc_page_cnt); 1818 con->v2.in_state = IN_S_HANDLE_EPILOGUE; 1819 } 1820 1821 static int prepare_read_tail_secure(struct ceph_connection *con) 1822 { 1823 struct page **enc_pages; 1824 int enc_page_cnt; 1825 int tail_len; 1826 1827 tail_len = tail_onwire_len(con->in_msg, true); 1828 WARN_ON(!tail_len); 1829 1830 enc_page_cnt = calc_pages_for(0, tail_len); 1831 enc_pages = ceph_alloc_page_vector(enc_page_cnt, GFP_NOIO); 1832 if (IS_ERR(enc_pages)) 1833 return PTR_ERR(enc_pages); 1834 1835 WARN_ON(con->v2.in_enc_pages || con->v2.in_enc_page_cnt); 1836 con->v2.in_enc_pages = enc_pages; 1837 con->v2.in_enc_page_cnt = enc_page_cnt; 1838 con->v2.in_enc_resid = tail_len; 1839 con->v2.in_enc_i = 0; 1840 1841 prepare_read_enc_page(con); 1842 return 0; 1843 } 1844 1845 static void __finish_skip(struct ceph_connection *con) 1846 { 1847 con->in_seq++; 1848 prepare_read_preamble(con); 1849 } 1850 1851 static void prepare_skip_message(struct ceph_connection *con) 1852 { 1853 struct ceph_frame_desc *desc = &con->v2.in_desc; 1854 int tail_len; 1855 1856 dout("%s con %p %d+%d+%d\n", __func__, con, desc->fd_lens[1], 1857 desc->fd_lens[2], desc->fd_lens[3]); 1858 1859 tail_len = __tail_onwire_len(desc->fd_lens[1], desc->fd_lens[2], 1860 desc->fd_lens[3], con_secure(con)); 1861 if (!tail_len) { 1862 __finish_skip(con); 1863 } else { 1864 set_in_skip(con, tail_len); 1865 con->v2.in_state = IN_S_FINISH_SKIP; 1866 } 1867 } 1868 1869 static int process_banner_prefix(struct ceph_connection *con) 1870 { 1871 int payload_len; 1872 void *p; 1873 1874 WARN_ON(con->v2.in_kvecs[0].iov_len != CEPH_BANNER_V2_PREFIX_LEN); 1875 1876 p = con->v2.in_kvecs[0].iov_base; 1877 if (memcmp(p, CEPH_BANNER_V2, CEPH_BANNER_V2_LEN)) { 1878 if (!memcmp(p, CEPH_BANNER, CEPH_BANNER_LEN)) 1879 con->error_msg = "server is speaking msgr1 protocol"; 1880 else 1881 con->error_msg = "protocol error, bad banner"; 1882 return -EINVAL; 1883 } 1884 1885 p += CEPH_BANNER_V2_LEN; 1886 payload_len = ceph_decode_16(&p); 1887 dout("%s con %p payload_len %d\n", __func__, con, payload_len); 1888 1889 return prepare_read_banner_payload(con, payload_len); 1890 } 1891 1892 static int process_banner_payload(struct ceph_connection *con) 1893 { 1894 void *end = con->v2.in_kvecs[0].iov_base + con->v2.in_kvecs[0].iov_len; 1895 u64 feat = CEPH_MSGR2_SUPPORTED_FEATURES; 1896 u64 req_feat = CEPH_MSGR2_REQUIRED_FEATURES; 1897 u64 server_feat, server_req_feat; 1898 void *p; 1899 int ret; 1900 1901 p = con->v2.in_kvecs[0].iov_base; 1902 ceph_decode_64_safe(&p, end, server_feat, bad); 1903 ceph_decode_64_safe(&p, end, server_req_feat, bad); 1904 1905 dout("%s con %p server_feat 0x%llx server_req_feat 0x%llx\n", 1906 __func__, con, server_feat, server_req_feat); 1907 1908 if (req_feat & ~server_feat) { 1909 pr_err("msgr2 feature set mismatch: my required > server's supported 0x%llx, need 0x%llx\n", 1910 server_feat, req_feat & ~server_feat); 1911 con->error_msg = "missing required protocol features"; 1912 return -EINVAL; 1913 } 1914 if (server_req_feat & ~feat) { 1915 pr_err("msgr2 feature set mismatch: server's required > my supported 0x%llx, missing 0x%llx\n", 1916 feat, server_req_feat & ~feat); 1917 con->error_msg = "missing required protocol features"; 1918 return -EINVAL; 1919 } 1920 1921 /* no reset_out_kvecs() as our banner may still be pending */ 1922 ret = prepare_hello(con); 1923 if (ret) { 1924 pr_err("prepare_hello failed: %d\n", ret); 1925 return ret; 1926 } 1927 1928 con->state = CEPH_CON_S_V2_HELLO; 1929 prepare_read_preamble(con); 1930 return 0; 1931 1932 bad: 1933 pr_err("failed to decode banner payload\n"); 1934 return -EINVAL; 1935 } 1936 1937 static int process_hello(struct ceph_connection *con, void *p, void *end) 1938 { 1939 struct ceph_entity_addr *my_addr = &con->msgr->inst.addr; 1940 struct ceph_entity_addr addr_for_me; 1941 u8 entity_type; 1942 int ret; 1943 1944 if (con->state != CEPH_CON_S_V2_HELLO) { 1945 con->error_msg = "protocol error, unexpected hello"; 1946 return -EINVAL; 1947 } 1948 1949 ceph_decode_8_safe(&p, end, entity_type, bad); 1950 ret = ceph_decode_entity_addr(&p, end, &addr_for_me); 1951 if (ret) { 1952 pr_err("failed to decode addr_for_me: %d\n", ret); 1953 return ret; 1954 } 1955 1956 dout("%s con %p entity_type %d addr_for_me %s\n", __func__, con, 1957 entity_type, ceph_pr_addr(&addr_for_me)); 1958 1959 if (entity_type != con->peer_name.type) { 1960 pr_err("bad peer type, want %d, got %d\n", 1961 con->peer_name.type, entity_type); 1962 con->error_msg = "wrong peer at address"; 1963 return -EINVAL; 1964 } 1965 1966 /* 1967 * Set our address to the address our first peer (i.e. monitor) 1968 * sees that we are connecting from. If we are behind some sort 1969 * of NAT and want to be identified by some private (not NATed) 1970 * address, ip option should be used. 1971 */ 1972 if (ceph_addr_is_blank(my_addr)) { 1973 memcpy(&my_addr->in_addr, &addr_for_me.in_addr, 1974 sizeof(my_addr->in_addr)); 1975 ceph_addr_set_port(my_addr, 0); 1976 dout("%s con %p set my addr %s, as seen by peer %s\n", 1977 __func__, con, ceph_pr_addr(my_addr), 1978 ceph_pr_addr(&con->peer_addr)); 1979 } else { 1980 dout("%s con %p my addr already set %s\n", 1981 __func__, con, ceph_pr_addr(my_addr)); 1982 } 1983 1984 WARN_ON(ceph_addr_is_blank(my_addr) || ceph_addr_port(my_addr)); 1985 WARN_ON(my_addr->type != CEPH_ENTITY_ADDR_TYPE_ANY); 1986 WARN_ON(!my_addr->nonce); 1987 1988 /* no reset_out_kvecs() as our hello may still be pending */ 1989 ret = prepare_auth_request(con); 1990 if (ret) { 1991 if (ret != -EAGAIN) 1992 pr_err("prepare_auth_request failed: %d\n", ret); 1993 return ret; 1994 } 1995 1996 con->state = CEPH_CON_S_V2_AUTH; 1997 return 0; 1998 1999 bad: 2000 pr_err("failed to decode hello\n"); 2001 return -EINVAL; 2002 } 2003 2004 static int process_auth_bad_method(struct ceph_connection *con, 2005 void *p, void *end) 2006 { 2007 int allowed_protos[8], allowed_modes[8]; 2008 int allowed_proto_cnt, allowed_mode_cnt; 2009 int used_proto, result; 2010 int ret; 2011 int i; 2012 2013 if (con->state != CEPH_CON_S_V2_AUTH) { 2014 con->error_msg = "protocol error, unexpected auth_bad_method"; 2015 return -EINVAL; 2016 } 2017 2018 ceph_decode_32_safe(&p, end, used_proto, bad); 2019 ceph_decode_32_safe(&p, end, result, bad); 2020 dout("%s con %p used_proto %d result %d\n", __func__, con, used_proto, 2021 result); 2022 2023 ceph_decode_32_safe(&p, end, allowed_proto_cnt, bad); 2024 if (allowed_proto_cnt > ARRAY_SIZE(allowed_protos)) { 2025 pr_err("allowed_protos too big %d\n", allowed_proto_cnt); 2026 return -EINVAL; 2027 } 2028 for (i = 0; i < allowed_proto_cnt; i++) { 2029 ceph_decode_32_safe(&p, end, allowed_protos[i], bad); 2030 dout("%s con %p allowed_protos[%d] %d\n", __func__, con, 2031 i, allowed_protos[i]); 2032 } 2033 2034 ceph_decode_32_safe(&p, end, allowed_mode_cnt, bad); 2035 if (allowed_mode_cnt > ARRAY_SIZE(allowed_modes)) { 2036 pr_err("allowed_modes too big %d\n", allowed_mode_cnt); 2037 return -EINVAL; 2038 } 2039 for (i = 0; i < allowed_mode_cnt; i++) { 2040 ceph_decode_32_safe(&p, end, allowed_modes[i], bad); 2041 dout("%s con %p allowed_modes[%d] %d\n", __func__, con, 2042 i, allowed_modes[i]); 2043 } 2044 2045 mutex_unlock(&con->mutex); 2046 ret = con->ops->handle_auth_bad_method(con, used_proto, result, 2047 allowed_protos, 2048 allowed_proto_cnt, 2049 allowed_modes, 2050 allowed_mode_cnt); 2051 mutex_lock(&con->mutex); 2052 if (con->state != CEPH_CON_S_V2_AUTH) { 2053 dout("%s con %p state changed to %d\n", __func__, con, 2054 con->state); 2055 return -EAGAIN; 2056 } 2057 2058 dout("%s con %p handle_auth_bad_method ret %d\n", __func__, con, ret); 2059 return ret; 2060 2061 bad: 2062 pr_err("failed to decode auth_bad_method\n"); 2063 return -EINVAL; 2064 } 2065 2066 static int process_auth_reply_more(struct ceph_connection *con, 2067 void *p, void *end) 2068 { 2069 int payload_len; 2070 int ret; 2071 2072 if (con->state != CEPH_CON_S_V2_AUTH) { 2073 con->error_msg = "protocol error, unexpected auth_reply_more"; 2074 return -EINVAL; 2075 } 2076 2077 ceph_decode_32_safe(&p, end, payload_len, bad); 2078 ceph_decode_need(&p, end, payload_len, bad); 2079 2080 dout("%s con %p payload_len %d\n", __func__, con, payload_len); 2081 2082 reset_out_kvecs(con); 2083 ret = prepare_auth_request_more(con, p, payload_len); 2084 if (ret) { 2085 if (ret != -EAGAIN) 2086 pr_err("prepare_auth_request_more failed: %d\n", ret); 2087 return ret; 2088 } 2089 2090 return 0; 2091 2092 bad: 2093 pr_err("failed to decode auth_reply_more\n"); 2094 return -EINVAL; 2095 } 2096 2097 /* 2098 * Align session_key and con_secret to avoid GFP_ATOMIC allocation 2099 * inside crypto_shash_setkey() and crypto_aead_setkey() called from 2100 * setup_crypto(). __aligned(16) isn't guaranteed to work for stack 2101 * objects, so do it by hand. 2102 */ 2103 static int process_auth_done(struct ceph_connection *con, void *p, void *end) 2104 { 2105 u8 session_key_buf[CEPH_KEY_LEN + 16]; 2106 u8 con_secret_buf[CEPH_MAX_CON_SECRET_LEN + 16]; 2107 u8 *session_key = PTR_ALIGN(&session_key_buf[0], 16); 2108 u8 *con_secret = PTR_ALIGN(&con_secret_buf[0], 16); 2109 int session_key_len, con_secret_len; 2110 int payload_len; 2111 u64 global_id; 2112 int ret; 2113 2114 if (con->state != CEPH_CON_S_V2_AUTH) { 2115 con->error_msg = "protocol error, unexpected auth_done"; 2116 return -EINVAL; 2117 } 2118 2119 ceph_decode_64_safe(&p, end, global_id, bad); 2120 ceph_decode_32_safe(&p, end, con->v2.con_mode, bad); 2121 ceph_decode_32_safe(&p, end, payload_len, bad); 2122 2123 dout("%s con %p global_id %llu con_mode %d payload_len %d\n", 2124 __func__, con, global_id, con->v2.con_mode, payload_len); 2125 2126 mutex_unlock(&con->mutex); 2127 session_key_len = 0; 2128 con_secret_len = 0; 2129 ret = con->ops->handle_auth_done(con, global_id, p, payload_len, 2130 session_key, &session_key_len, 2131 con_secret, &con_secret_len); 2132 mutex_lock(&con->mutex); 2133 if (con->state != CEPH_CON_S_V2_AUTH) { 2134 dout("%s con %p state changed to %d\n", __func__, con, 2135 con->state); 2136 ret = -EAGAIN; 2137 goto out; 2138 } 2139 2140 dout("%s con %p handle_auth_done ret %d\n", __func__, con, ret); 2141 if (ret) 2142 goto out; 2143 2144 ret = setup_crypto(con, session_key, session_key_len, con_secret, 2145 con_secret_len); 2146 if (ret) 2147 goto out; 2148 2149 reset_out_kvecs(con); 2150 ret = prepare_auth_signature(con); 2151 if (ret) { 2152 pr_err("prepare_auth_signature failed: %d\n", ret); 2153 goto out; 2154 } 2155 2156 con->state = CEPH_CON_S_V2_AUTH_SIGNATURE; 2157 2158 out: 2159 memzero_explicit(session_key_buf, sizeof(session_key_buf)); 2160 memzero_explicit(con_secret_buf, sizeof(con_secret_buf)); 2161 return ret; 2162 2163 bad: 2164 pr_err("failed to decode auth_done\n"); 2165 return -EINVAL; 2166 } 2167 2168 static int process_auth_signature(struct ceph_connection *con, 2169 void *p, void *end) 2170 { 2171 u8 hmac[SHA256_DIGEST_SIZE]; 2172 int ret; 2173 2174 if (con->state != CEPH_CON_S_V2_AUTH_SIGNATURE) { 2175 con->error_msg = "protocol error, unexpected auth_signature"; 2176 return -EINVAL; 2177 } 2178 2179 ret = hmac_sha256(con, con->v2.out_sign_kvecs, 2180 con->v2.out_sign_kvec_cnt, hmac); 2181 if (ret) 2182 return ret; 2183 2184 ceph_decode_need(&p, end, SHA256_DIGEST_SIZE, bad); 2185 if (crypto_memneq(p, hmac, SHA256_DIGEST_SIZE)) { 2186 con->error_msg = "integrity error, bad auth signature"; 2187 return -EBADMSG; 2188 } 2189 2190 dout("%s con %p auth signature ok\n", __func__, con); 2191 2192 /* no reset_out_kvecs() as our auth_signature may still be pending */ 2193 if (!con->v2.server_cookie) { 2194 ret = prepare_client_ident(con); 2195 if (ret) { 2196 pr_err("prepare_client_ident failed: %d\n", ret); 2197 return ret; 2198 } 2199 2200 con->state = CEPH_CON_S_V2_SESSION_CONNECT; 2201 } else { 2202 ret = prepare_session_reconnect(con); 2203 if (ret) { 2204 pr_err("prepare_session_reconnect failed: %d\n", ret); 2205 return ret; 2206 } 2207 2208 con->state = CEPH_CON_S_V2_SESSION_RECONNECT; 2209 } 2210 2211 return 0; 2212 2213 bad: 2214 pr_err("failed to decode auth_signature\n"); 2215 return -EINVAL; 2216 } 2217 2218 static int process_server_ident(struct ceph_connection *con, 2219 void *p, void *end) 2220 { 2221 struct ceph_client *client = from_msgr(con->msgr); 2222 u64 features, required_features; 2223 struct ceph_entity_addr addr; 2224 u64 global_seq; 2225 u64 global_id; 2226 u64 cookie; 2227 u64 flags; 2228 int ret; 2229 2230 if (con->state != CEPH_CON_S_V2_SESSION_CONNECT) { 2231 con->error_msg = "protocol error, unexpected server_ident"; 2232 return -EINVAL; 2233 } 2234 2235 ret = ceph_decode_entity_addrvec(&p, end, true, &addr); 2236 if (ret) { 2237 pr_err("failed to decode server addrs: %d\n", ret); 2238 return ret; 2239 } 2240 2241 ceph_decode_64_safe(&p, end, global_id, bad); 2242 ceph_decode_64_safe(&p, end, global_seq, bad); 2243 ceph_decode_64_safe(&p, end, features, bad); 2244 ceph_decode_64_safe(&p, end, required_features, bad); 2245 ceph_decode_64_safe(&p, end, flags, bad); 2246 ceph_decode_64_safe(&p, end, cookie, bad); 2247 2248 dout("%s con %p addr %s/%u global_id %llu global_seq %llu features 0x%llx required_features 0x%llx flags 0x%llx cookie 0x%llx\n", 2249 __func__, con, ceph_pr_addr(&addr), le32_to_cpu(addr.nonce), 2250 global_id, global_seq, features, required_features, flags, cookie); 2251 2252 /* is this who we intended to talk to? */ 2253 if (memcmp(&addr, &con->peer_addr, sizeof(con->peer_addr))) { 2254 pr_err("bad peer addr/nonce, want %s/%u, got %s/%u\n", 2255 ceph_pr_addr(&con->peer_addr), 2256 le32_to_cpu(con->peer_addr.nonce), 2257 ceph_pr_addr(&addr), le32_to_cpu(addr.nonce)); 2258 con->error_msg = "wrong peer at address"; 2259 return -EINVAL; 2260 } 2261 2262 if (client->required_features & ~features) { 2263 pr_err("RADOS feature set mismatch: my required > server's supported 0x%llx, need 0x%llx\n", 2264 features, client->required_features & ~features); 2265 con->error_msg = "missing required protocol features"; 2266 return -EINVAL; 2267 } 2268 2269 /* 2270 * Both name->type and name->num are set in ceph_con_open() but 2271 * name->num may be bogus in the initial monmap. name->type is 2272 * verified in handle_hello(). 2273 */ 2274 WARN_ON(!con->peer_name.type); 2275 con->peer_name.num = cpu_to_le64(global_id); 2276 con->v2.peer_global_seq = global_seq; 2277 con->peer_features = features; 2278 WARN_ON(required_features & ~client->supported_features); 2279 con->v2.server_cookie = cookie; 2280 2281 if (flags & CEPH_MSG_CONNECT_LOSSY) { 2282 ceph_con_flag_set(con, CEPH_CON_F_LOSSYTX); 2283 WARN_ON(con->v2.server_cookie); 2284 } else { 2285 WARN_ON(!con->v2.server_cookie); 2286 } 2287 2288 clear_in_sign_kvecs(con); 2289 clear_out_sign_kvecs(con); 2290 free_conn_bufs(con); 2291 con->delay = 0; /* reset backoff memory */ 2292 2293 con->state = CEPH_CON_S_OPEN; 2294 con->v2.out_state = OUT_S_GET_NEXT; 2295 return 0; 2296 2297 bad: 2298 pr_err("failed to decode server_ident\n"); 2299 return -EINVAL; 2300 } 2301 2302 static int process_ident_missing_features(struct ceph_connection *con, 2303 void *p, void *end) 2304 { 2305 struct ceph_client *client = from_msgr(con->msgr); 2306 u64 missing_features; 2307 2308 if (con->state != CEPH_CON_S_V2_SESSION_CONNECT) { 2309 con->error_msg = "protocol error, unexpected ident_missing_features"; 2310 return -EINVAL; 2311 } 2312 2313 ceph_decode_64_safe(&p, end, missing_features, bad); 2314 pr_err("RADOS feature set mismatch: server's required > my supported 0x%llx, missing 0x%llx\n", 2315 client->supported_features, missing_features); 2316 con->error_msg = "missing required protocol features"; 2317 return -EINVAL; 2318 2319 bad: 2320 pr_err("failed to decode ident_missing_features\n"); 2321 return -EINVAL; 2322 } 2323 2324 static int process_session_reconnect_ok(struct ceph_connection *con, 2325 void *p, void *end) 2326 { 2327 u64 seq; 2328 2329 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) { 2330 con->error_msg = "protocol error, unexpected session_reconnect_ok"; 2331 return -EINVAL; 2332 } 2333 2334 ceph_decode_64_safe(&p, end, seq, bad); 2335 2336 dout("%s con %p seq %llu\n", __func__, con, seq); 2337 ceph_con_discard_requeued(con, seq); 2338 2339 clear_in_sign_kvecs(con); 2340 clear_out_sign_kvecs(con); 2341 free_conn_bufs(con); 2342 con->delay = 0; /* reset backoff memory */ 2343 2344 con->state = CEPH_CON_S_OPEN; 2345 con->v2.out_state = OUT_S_GET_NEXT; 2346 return 0; 2347 2348 bad: 2349 pr_err("failed to decode session_reconnect_ok\n"); 2350 return -EINVAL; 2351 } 2352 2353 static int process_session_retry(struct ceph_connection *con, 2354 void *p, void *end) 2355 { 2356 u64 connect_seq; 2357 int ret; 2358 2359 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) { 2360 con->error_msg = "protocol error, unexpected session_retry"; 2361 return -EINVAL; 2362 } 2363 2364 ceph_decode_64_safe(&p, end, connect_seq, bad); 2365 2366 dout("%s con %p connect_seq %llu\n", __func__, con, connect_seq); 2367 WARN_ON(connect_seq <= con->v2.connect_seq); 2368 con->v2.connect_seq = connect_seq + 1; 2369 2370 free_conn_bufs(con); 2371 2372 reset_out_kvecs(con); 2373 ret = prepare_session_reconnect(con); 2374 if (ret) { 2375 pr_err("prepare_session_reconnect (cseq) failed: %d\n", ret); 2376 return ret; 2377 } 2378 2379 return 0; 2380 2381 bad: 2382 pr_err("failed to decode session_retry\n"); 2383 return -EINVAL; 2384 } 2385 2386 static int process_session_retry_global(struct ceph_connection *con, 2387 void *p, void *end) 2388 { 2389 u64 global_seq; 2390 int ret; 2391 2392 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) { 2393 con->error_msg = "protocol error, unexpected session_retry_global"; 2394 return -EINVAL; 2395 } 2396 2397 ceph_decode_64_safe(&p, end, global_seq, bad); 2398 2399 dout("%s con %p global_seq %llu\n", __func__, con, global_seq); 2400 WARN_ON(global_seq <= con->v2.global_seq); 2401 con->v2.global_seq = ceph_get_global_seq(con->msgr, global_seq); 2402 2403 free_conn_bufs(con); 2404 2405 reset_out_kvecs(con); 2406 ret = prepare_session_reconnect(con); 2407 if (ret) { 2408 pr_err("prepare_session_reconnect (gseq) failed: %d\n", ret); 2409 return ret; 2410 } 2411 2412 return 0; 2413 2414 bad: 2415 pr_err("failed to decode session_retry_global\n"); 2416 return -EINVAL; 2417 } 2418 2419 static int process_session_reset(struct ceph_connection *con, 2420 void *p, void *end) 2421 { 2422 bool full; 2423 int ret; 2424 2425 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) { 2426 con->error_msg = "protocol error, unexpected session_reset"; 2427 return -EINVAL; 2428 } 2429 2430 ceph_decode_8_safe(&p, end, full, bad); 2431 if (!full) { 2432 con->error_msg = "protocol error, bad session_reset"; 2433 return -EINVAL; 2434 } 2435 2436 pr_info("%s%lld %s session reset\n", ENTITY_NAME(con->peer_name), 2437 ceph_pr_addr(&con->peer_addr)); 2438 ceph_con_reset_session(con); 2439 2440 mutex_unlock(&con->mutex); 2441 if (con->ops->peer_reset) 2442 con->ops->peer_reset(con); 2443 mutex_lock(&con->mutex); 2444 if (con->state != CEPH_CON_S_V2_SESSION_RECONNECT) { 2445 dout("%s con %p state changed to %d\n", __func__, con, 2446 con->state); 2447 return -EAGAIN; 2448 } 2449 2450 free_conn_bufs(con); 2451 2452 reset_out_kvecs(con); 2453 ret = prepare_client_ident(con); 2454 if (ret) { 2455 pr_err("prepare_client_ident (rst) failed: %d\n", ret); 2456 return ret; 2457 } 2458 2459 con->state = CEPH_CON_S_V2_SESSION_CONNECT; 2460 return 0; 2461 2462 bad: 2463 pr_err("failed to decode session_reset\n"); 2464 return -EINVAL; 2465 } 2466 2467 static int process_keepalive2_ack(struct ceph_connection *con, 2468 void *p, void *end) 2469 { 2470 if (con->state != CEPH_CON_S_OPEN) { 2471 con->error_msg = "protocol error, unexpected keepalive2_ack"; 2472 return -EINVAL; 2473 } 2474 2475 ceph_decode_need(&p, end, sizeof(struct ceph_timespec), bad); 2476 ceph_decode_timespec64(&con->last_keepalive_ack, p); 2477 2478 dout("%s con %p timestamp %lld.%09ld\n", __func__, con, 2479 con->last_keepalive_ack.tv_sec, con->last_keepalive_ack.tv_nsec); 2480 2481 return 0; 2482 2483 bad: 2484 pr_err("failed to decode keepalive2_ack\n"); 2485 return -EINVAL; 2486 } 2487 2488 static int process_ack(struct ceph_connection *con, void *p, void *end) 2489 { 2490 u64 seq; 2491 2492 if (con->state != CEPH_CON_S_OPEN) { 2493 con->error_msg = "protocol error, unexpected ack"; 2494 return -EINVAL; 2495 } 2496 2497 ceph_decode_64_safe(&p, end, seq, bad); 2498 2499 dout("%s con %p seq %llu\n", __func__, con, seq); 2500 ceph_con_discard_sent(con, seq); 2501 return 0; 2502 2503 bad: 2504 pr_err("failed to decode ack\n"); 2505 return -EINVAL; 2506 } 2507 2508 static int process_control(struct ceph_connection *con, void *p, void *end) 2509 { 2510 int tag = con->v2.in_desc.fd_tag; 2511 int ret; 2512 2513 dout("%s con %p tag %d len %d\n", __func__, con, tag, (int)(end - p)); 2514 2515 switch (tag) { 2516 case FRAME_TAG_HELLO: 2517 ret = process_hello(con, p, end); 2518 break; 2519 case FRAME_TAG_AUTH_BAD_METHOD: 2520 ret = process_auth_bad_method(con, p, end); 2521 break; 2522 case FRAME_TAG_AUTH_REPLY_MORE: 2523 ret = process_auth_reply_more(con, p, end); 2524 break; 2525 case FRAME_TAG_AUTH_DONE: 2526 ret = process_auth_done(con, p, end); 2527 break; 2528 case FRAME_TAG_AUTH_SIGNATURE: 2529 ret = process_auth_signature(con, p, end); 2530 break; 2531 case FRAME_TAG_SERVER_IDENT: 2532 ret = process_server_ident(con, p, end); 2533 break; 2534 case FRAME_TAG_IDENT_MISSING_FEATURES: 2535 ret = process_ident_missing_features(con, p, end); 2536 break; 2537 case FRAME_TAG_SESSION_RECONNECT_OK: 2538 ret = process_session_reconnect_ok(con, p, end); 2539 break; 2540 case FRAME_TAG_SESSION_RETRY: 2541 ret = process_session_retry(con, p, end); 2542 break; 2543 case FRAME_TAG_SESSION_RETRY_GLOBAL: 2544 ret = process_session_retry_global(con, p, end); 2545 break; 2546 case FRAME_TAG_SESSION_RESET: 2547 ret = process_session_reset(con, p, end); 2548 break; 2549 case FRAME_TAG_KEEPALIVE2_ACK: 2550 ret = process_keepalive2_ack(con, p, end); 2551 break; 2552 case FRAME_TAG_ACK: 2553 ret = process_ack(con, p, end); 2554 break; 2555 default: 2556 pr_err("bad tag %d\n", tag); 2557 con->error_msg = "protocol error, bad tag"; 2558 return -EINVAL; 2559 } 2560 if (ret) { 2561 dout("%s con %p error %d\n", __func__, con, ret); 2562 return ret; 2563 } 2564 2565 prepare_read_preamble(con); 2566 return 0; 2567 } 2568 2569 /* 2570 * Return: 2571 * 1 - con->in_msg set, read message 2572 * 0 - skip message 2573 * <0 - error 2574 */ 2575 static int process_message_header(struct ceph_connection *con, 2576 void *p, void *end) 2577 { 2578 struct ceph_frame_desc *desc = &con->v2.in_desc; 2579 struct ceph_msg_header2 *hdr2 = p; 2580 struct ceph_msg_header hdr; 2581 int skip; 2582 int ret; 2583 u64 seq; 2584 2585 /* verify seq# */ 2586 seq = le64_to_cpu(hdr2->seq); 2587 if ((s64)seq - (s64)con->in_seq < 1) { 2588 pr_info("%s%lld %s skipping old message: seq %llu, expected %llu\n", 2589 ENTITY_NAME(con->peer_name), 2590 ceph_pr_addr(&con->peer_addr), 2591 seq, con->in_seq + 1); 2592 return 0; 2593 } 2594 if ((s64)seq - (s64)con->in_seq > 1) { 2595 pr_err("bad seq %llu, expected %llu\n", seq, con->in_seq + 1); 2596 con->error_msg = "bad message sequence # for incoming message"; 2597 return -EBADE; 2598 } 2599 2600 ceph_con_discard_sent(con, le64_to_cpu(hdr2->ack_seq)); 2601 2602 fill_header(&hdr, hdr2, desc->fd_lens[1], desc->fd_lens[2], 2603 desc->fd_lens[3], &con->peer_name); 2604 ret = ceph_con_in_msg_alloc(con, &hdr, &skip); 2605 if (ret) 2606 return ret; 2607 2608 WARN_ON(!con->in_msg ^ skip); 2609 if (skip) 2610 return 0; 2611 2612 WARN_ON(!con->in_msg); 2613 WARN_ON(con->in_msg->con != con); 2614 return 1; 2615 } 2616 2617 static int process_message(struct ceph_connection *con) 2618 { 2619 ceph_con_process_message(con); 2620 2621 /* 2622 * We could have been closed by ceph_con_close() because 2623 * ceph_con_process_message() temporarily drops con->mutex. 2624 */ 2625 if (con->state != CEPH_CON_S_OPEN) { 2626 dout("%s con %p state changed to %d\n", __func__, con, 2627 con->state); 2628 return -EAGAIN; 2629 } 2630 2631 prepare_read_preamble(con); 2632 return 0; 2633 } 2634 2635 static int __handle_control(struct ceph_connection *con, void *p) 2636 { 2637 void *end = p + con->v2.in_desc.fd_lens[0]; 2638 struct ceph_msg *msg; 2639 int ret; 2640 2641 if (con->v2.in_desc.fd_tag != FRAME_TAG_MESSAGE) 2642 return process_control(con, p, end); 2643 2644 ret = process_message_header(con, p, end); 2645 if (ret < 0) 2646 return ret; 2647 if (ret == 0) { 2648 prepare_skip_message(con); 2649 return 0; 2650 } 2651 2652 msg = con->in_msg; /* set in process_message_header() */ 2653 if (front_len(msg)) { 2654 WARN_ON(front_len(msg) > msg->front_alloc_len); 2655 msg->front.iov_len = front_len(msg); 2656 } else { 2657 msg->front.iov_len = 0; 2658 } 2659 if (middle_len(msg)) { 2660 WARN_ON(middle_len(msg) > msg->middle->alloc_len); 2661 msg->middle->vec.iov_len = middle_len(msg); 2662 } else if (msg->middle) { 2663 msg->middle->vec.iov_len = 0; 2664 } 2665 2666 if (!front_len(msg) && !middle_len(msg) && !data_len(msg)) 2667 return process_message(con); 2668 2669 if (con_secure(con)) 2670 return prepare_read_tail_secure(con); 2671 2672 return prepare_read_tail_plain(con); 2673 } 2674 2675 static int handle_preamble(struct ceph_connection *con) 2676 { 2677 struct ceph_frame_desc *desc = &con->v2.in_desc; 2678 int ret; 2679 2680 if (con_secure(con)) { 2681 ret = decrypt_preamble(con); 2682 if (ret) { 2683 if (ret == -EBADMSG) 2684 con->error_msg = "integrity error, bad preamble auth tag"; 2685 return ret; 2686 } 2687 } 2688 2689 ret = decode_preamble(con->v2.in_buf, desc); 2690 if (ret) { 2691 if (ret == -EBADMSG) 2692 con->error_msg = "integrity error, bad crc"; 2693 else 2694 con->error_msg = "protocol error, bad preamble"; 2695 return ret; 2696 } 2697 2698 dout("%s con %p tag %d seg_cnt %d %d+%d+%d+%d\n", __func__, 2699 con, desc->fd_tag, desc->fd_seg_cnt, desc->fd_lens[0], 2700 desc->fd_lens[1], desc->fd_lens[2], desc->fd_lens[3]); 2701 2702 if (!con_secure(con)) 2703 return prepare_read_control(con); 2704 2705 if (desc->fd_lens[0] > CEPH_PREAMBLE_INLINE_LEN) 2706 return prepare_read_control_remainder(con); 2707 2708 return __handle_control(con, CTRL_BODY(con->v2.in_buf)); 2709 } 2710 2711 static int handle_control(struct ceph_connection *con) 2712 { 2713 int ctrl_len = con->v2.in_desc.fd_lens[0]; 2714 void *buf; 2715 int ret; 2716 2717 WARN_ON(con_secure(con)); 2718 2719 ret = verify_control_crc(con); 2720 if (ret) { 2721 con->error_msg = "integrity error, bad crc"; 2722 return ret; 2723 } 2724 2725 if (con->state == CEPH_CON_S_V2_AUTH) { 2726 buf = alloc_conn_buf(con, ctrl_len); 2727 if (!buf) 2728 return -ENOMEM; 2729 2730 memcpy(buf, con->v2.in_kvecs[0].iov_base, ctrl_len); 2731 return __handle_control(con, buf); 2732 } 2733 2734 return __handle_control(con, con->v2.in_kvecs[0].iov_base); 2735 } 2736 2737 static int handle_control_remainder(struct ceph_connection *con) 2738 { 2739 int ret; 2740 2741 WARN_ON(!con_secure(con)); 2742 2743 ret = decrypt_control_remainder(con); 2744 if (ret) { 2745 if (ret == -EBADMSG) 2746 con->error_msg = "integrity error, bad control remainder auth tag"; 2747 return ret; 2748 } 2749 2750 return __handle_control(con, con->v2.in_kvecs[0].iov_base - 2751 CEPH_PREAMBLE_INLINE_LEN); 2752 } 2753 2754 static int handle_epilogue(struct ceph_connection *con) 2755 { 2756 u32 front_crc, middle_crc, data_crc; 2757 int ret; 2758 2759 if (con_secure(con)) { 2760 ret = decrypt_tail(con); 2761 if (ret) { 2762 if (ret == -EBADMSG) 2763 con->error_msg = "integrity error, bad epilogue auth tag"; 2764 return ret; 2765 } 2766 2767 /* just late_status */ 2768 ret = decode_epilogue(con->v2.in_buf, NULL, NULL, NULL); 2769 if (ret) { 2770 con->error_msg = "protocol error, bad epilogue"; 2771 return ret; 2772 } 2773 } else { 2774 ret = decode_epilogue(con->v2.in_buf, &front_crc, 2775 &middle_crc, &data_crc); 2776 if (ret) { 2777 con->error_msg = "protocol error, bad epilogue"; 2778 return ret; 2779 } 2780 2781 ret = verify_epilogue_crcs(con, front_crc, middle_crc, 2782 data_crc); 2783 if (ret) { 2784 con->error_msg = "integrity error, bad crc"; 2785 return ret; 2786 } 2787 } 2788 2789 return process_message(con); 2790 } 2791 2792 static void finish_skip(struct ceph_connection *con) 2793 { 2794 dout("%s con %p\n", __func__, con); 2795 2796 if (con_secure(con)) 2797 gcm_inc_nonce(&con->v2.in_gcm_nonce); 2798 2799 __finish_skip(con); 2800 } 2801 2802 static int populate_in_iter(struct ceph_connection *con) 2803 { 2804 int ret; 2805 2806 dout("%s con %p state %d in_state %d\n", __func__, con, con->state, 2807 con->v2.in_state); 2808 WARN_ON(iov_iter_count(&con->v2.in_iter)); 2809 2810 if (con->state == CEPH_CON_S_V2_BANNER_PREFIX) { 2811 ret = process_banner_prefix(con); 2812 } else if (con->state == CEPH_CON_S_V2_BANNER_PAYLOAD) { 2813 ret = process_banner_payload(con); 2814 } else if ((con->state >= CEPH_CON_S_V2_HELLO && 2815 con->state <= CEPH_CON_S_V2_SESSION_RECONNECT) || 2816 con->state == CEPH_CON_S_OPEN) { 2817 switch (con->v2.in_state) { 2818 case IN_S_HANDLE_PREAMBLE: 2819 ret = handle_preamble(con); 2820 break; 2821 case IN_S_HANDLE_CONTROL: 2822 ret = handle_control(con); 2823 break; 2824 case IN_S_HANDLE_CONTROL_REMAINDER: 2825 ret = handle_control_remainder(con); 2826 break; 2827 case IN_S_PREPARE_READ_DATA: 2828 ret = prepare_read_data(con); 2829 break; 2830 case IN_S_PREPARE_READ_DATA_CONT: 2831 prepare_read_data_cont(con); 2832 ret = 0; 2833 break; 2834 case IN_S_PREPARE_READ_ENC_PAGE: 2835 prepare_read_enc_page(con); 2836 ret = 0; 2837 break; 2838 case IN_S_HANDLE_EPILOGUE: 2839 ret = handle_epilogue(con); 2840 break; 2841 case IN_S_FINISH_SKIP: 2842 finish_skip(con); 2843 ret = 0; 2844 break; 2845 default: 2846 WARN(1, "bad in_state %d", con->v2.in_state); 2847 return -EINVAL; 2848 } 2849 } else { 2850 WARN(1, "bad state %d", con->state); 2851 return -EINVAL; 2852 } 2853 if (ret) { 2854 dout("%s con %p error %d\n", __func__, con, ret); 2855 return ret; 2856 } 2857 2858 if (WARN_ON(!iov_iter_count(&con->v2.in_iter))) 2859 return -ENODATA; 2860 dout("%s con %p populated %zu\n", __func__, con, 2861 iov_iter_count(&con->v2.in_iter)); 2862 return 1; 2863 } 2864 2865 int ceph_con_v2_try_read(struct ceph_connection *con) 2866 { 2867 int ret; 2868 2869 dout("%s con %p state %d need %zu\n", __func__, con, con->state, 2870 iov_iter_count(&con->v2.in_iter)); 2871 2872 if (con->state == CEPH_CON_S_PREOPEN) 2873 return 0; 2874 2875 /* 2876 * We should always have something pending here. If not, 2877 * avoid calling populate_in_iter() as if we read something 2878 * (ceph_tcp_recv() would immediately return 1). 2879 */ 2880 if (WARN_ON(!iov_iter_count(&con->v2.in_iter))) 2881 return -ENODATA; 2882 2883 for (;;) { 2884 ret = ceph_tcp_recv(con); 2885 if (ret <= 0) 2886 return ret; 2887 2888 ret = populate_in_iter(con); 2889 if (ret <= 0) { 2890 if (ret && ret != -EAGAIN && !con->error_msg) 2891 con->error_msg = "read processing error"; 2892 return ret; 2893 } 2894 } 2895 } 2896 2897 static void queue_data(struct ceph_connection *con) 2898 { 2899 struct bio_vec bv; 2900 2901 con->v2.out_epil.data_crc = -1; 2902 ceph_msg_data_cursor_init(&con->v2.out_cursor, con->out_msg, 2903 data_len(con->out_msg)); 2904 2905 get_bvec_at(&con->v2.out_cursor, &bv); 2906 set_out_bvec(con, &bv, true); 2907 con->v2.out_state = OUT_S_QUEUE_DATA_CONT; 2908 } 2909 2910 static void queue_data_cont(struct ceph_connection *con) 2911 { 2912 struct bio_vec bv; 2913 2914 con->v2.out_epil.data_crc = ceph_crc32c_page( 2915 con->v2.out_epil.data_crc, con->v2.out_bvec.bv_page, 2916 con->v2.out_bvec.bv_offset, con->v2.out_bvec.bv_len); 2917 2918 ceph_msg_data_advance(&con->v2.out_cursor, con->v2.out_bvec.bv_len); 2919 if (con->v2.out_cursor.total_resid) { 2920 get_bvec_at(&con->v2.out_cursor, &bv); 2921 set_out_bvec(con, &bv, true); 2922 WARN_ON(con->v2.out_state != OUT_S_QUEUE_DATA_CONT); 2923 return; 2924 } 2925 2926 /* 2927 * We've written all data. Queue epilogue. Once it's written, 2928 * we are done. 2929 */ 2930 reset_out_kvecs(con); 2931 prepare_epilogue_plain(con, false); 2932 con->v2.out_state = OUT_S_FINISH_MESSAGE; 2933 } 2934 2935 static void queue_enc_page(struct ceph_connection *con) 2936 { 2937 struct bio_vec bv; 2938 2939 dout("%s con %p i %d resid %d\n", __func__, con, con->v2.out_enc_i, 2940 con->v2.out_enc_resid); 2941 WARN_ON(!con->v2.out_enc_resid); 2942 2943 bvec_set_page(&bv, con->v2.out_enc_pages[con->v2.out_enc_i], 2944 min(con->v2.out_enc_resid, (int)PAGE_SIZE), 0); 2945 2946 set_out_bvec(con, &bv, false); 2947 con->v2.out_enc_i++; 2948 con->v2.out_enc_resid -= bv.bv_len; 2949 2950 if (con->v2.out_enc_resid) { 2951 WARN_ON(con->v2.out_state != OUT_S_QUEUE_ENC_PAGE); 2952 return; 2953 } 2954 2955 /* 2956 * We've queued the last piece of ciphertext (ending with 2957 * epilogue) + auth tag. Once it's written, we are done. 2958 */ 2959 WARN_ON(con->v2.out_enc_i != con->v2.out_enc_page_cnt); 2960 con->v2.out_state = OUT_S_FINISH_MESSAGE; 2961 } 2962 2963 static void queue_zeros(struct ceph_connection *con) 2964 { 2965 dout("%s con %p out_zero %d\n", __func__, con, con->v2.out_zero); 2966 2967 if (con->v2.out_zero) { 2968 set_out_bvec_zero(con); 2969 con->v2.out_zero -= con->v2.out_bvec.bv_len; 2970 con->v2.out_state = OUT_S_QUEUE_ZEROS; 2971 return; 2972 } 2973 2974 /* 2975 * We've zero-filled everything up to epilogue. Queue epilogue 2976 * with late_status set to ABORTED and crcs adjusted for zeros. 2977 * Once it's written, we are done patching up for the revoke. 2978 */ 2979 reset_out_kvecs(con); 2980 prepare_epilogue_plain(con, true); 2981 con->v2.out_state = OUT_S_FINISH_MESSAGE; 2982 } 2983 2984 static void finish_message(struct ceph_connection *con) 2985 { 2986 dout("%s con %p msg %p\n", __func__, con, con->out_msg); 2987 2988 /* we end up here both plain and secure modes */ 2989 if (con->v2.out_enc_pages) { 2990 WARN_ON(!con->v2.out_enc_page_cnt); 2991 ceph_release_page_vector(con->v2.out_enc_pages, 2992 con->v2.out_enc_page_cnt); 2993 con->v2.out_enc_pages = NULL; 2994 con->v2.out_enc_page_cnt = 0; 2995 } 2996 /* message may have been revoked */ 2997 if (con->out_msg) { 2998 ceph_msg_put(con->out_msg); 2999 con->out_msg = NULL; 3000 } 3001 3002 con->v2.out_state = OUT_S_GET_NEXT; 3003 } 3004 3005 static int populate_out_iter(struct ceph_connection *con) 3006 { 3007 int ret; 3008 3009 dout("%s con %p state %d out_state %d\n", __func__, con, con->state, 3010 con->v2.out_state); 3011 WARN_ON(iov_iter_count(&con->v2.out_iter)); 3012 3013 if (con->state != CEPH_CON_S_OPEN) { 3014 WARN_ON(con->state < CEPH_CON_S_V2_BANNER_PREFIX || 3015 con->state > CEPH_CON_S_V2_SESSION_RECONNECT); 3016 goto nothing_pending; 3017 } 3018 3019 switch (con->v2.out_state) { 3020 case OUT_S_QUEUE_DATA: 3021 WARN_ON(!con->out_msg); 3022 queue_data(con); 3023 goto populated; 3024 case OUT_S_QUEUE_DATA_CONT: 3025 WARN_ON(!con->out_msg); 3026 queue_data_cont(con); 3027 goto populated; 3028 case OUT_S_QUEUE_ENC_PAGE: 3029 queue_enc_page(con); 3030 goto populated; 3031 case OUT_S_QUEUE_ZEROS: 3032 WARN_ON(con->out_msg); /* revoked */ 3033 queue_zeros(con); 3034 goto populated; 3035 case OUT_S_FINISH_MESSAGE: 3036 finish_message(con); 3037 break; 3038 case OUT_S_GET_NEXT: 3039 break; 3040 default: 3041 WARN(1, "bad out_state %d", con->v2.out_state); 3042 return -EINVAL; 3043 } 3044 3045 WARN_ON(con->v2.out_state != OUT_S_GET_NEXT); 3046 if (ceph_con_flag_test_and_clear(con, CEPH_CON_F_KEEPALIVE_PENDING)) { 3047 ret = prepare_keepalive2(con); 3048 if (ret) { 3049 pr_err("prepare_keepalive2 failed: %d\n", ret); 3050 return ret; 3051 } 3052 } else if (!list_empty(&con->out_queue)) { 3053 ceph_con_get_out_msg(con); 3054 ret = prepare_message(con); 3055 if (ret) { 3056 pr_err("prepare_message failed: %d\n", ret); 3057 return ret; 3058 } 3059 } else if (con->in_seq > con->in_seq_acked) { 3060 ret = prepare_ack(con); 3061 if (ret) { 3062 pr_err("prepare_ack failed: %d\n", ret); 3063 return ret; 3064 } 3065 } else { 3066 goto nothing_pending; 3067 } 3068 3069 populated: 3070 if (WARN_ON(!iov_iter_count(&con->v2.out_iter))) 3071 return -ENODATA; 3072 dout("%s con %p populated %zu\n", __func__, con, 3073 iov_iter_count(&con->v2.out_iter)); 3074 return 1; 3075 3076 nothing_pending: 3077 WARN_ON(iov_iter_count(&con->v2.out_iter)); 3078 dout("%s con %p nothing pending\n", __func__, con); 3079 ceph_con_flag_clear(con, CEPH_CON_F_WRITE_PENDING); 3080 return 0; 3081 } 3082 3083 int ceph_con_v2_try_write(struct ceph_connection *con) 3084 { 3085 int ret; 3086 3087 dout("%s con %p state %d have %zu\n", __func__, con, con->state, 3088 iov_iter_count(&con->v2.out_iter)); 3089 3090 /* open the socket first? */ 3091 if (con->state == CEPH_CON_S_PREOPEN) { 3092 WARN_ON(con->peer_addr.type != CEPH_ENTITY_ADDR_TYPE_MSGR2); 3093 3094 /* 3095 * Always bump global_seq. Bump connect_seq only if 3096 * there is a session (i.e. we are reconnecting and will 3097 * send session_reconnect instead of client_ident). 3098 */ 3099 con->v2.global_seq = ceph_get_global_seq(con->msgr, 0); 3100 if (con->v2.server_cookie) 3101 con->v2.connect_seq++; 3102 3103 ret = prepare_read_banner_prefix(con); 3104 if (ret) { 3105 pr_err("prepare_read_banner_prefix failed: %d\n", ret); 3106 con->error_msg = "connect error"; 3107 return ret; 3108 } 3109 3110 reset_out_kvecs(con); 3111 ret = prepare_banner(con); 3112 if (ret) { 3113 pr_err("prepare_banner failed: %d\n", ret); 3114 con->error_msg = "connect error"; 3115 return ret; 3116 } 3117 3118 ret = ceph_tcp_connect(con); 3119 if (ret) { 3120 pr_err("ceph_tcp_connect failed: %d\n", ret); 3121 con->error_msg = "connect error"; 3122 return ret; 3123 } 3124 } 3125 3126 if (!iov_iter_count(&con->v2.out_iter)) { 3127 ret = populate_out_iter(con); 3128 if (ret <= 0) { 3129 if (ret && ret != -EAGAIN && !con->error_msg) 3130 con->error_msg = "write processing error"; 3131 return ret; 3132 } 3133 } 3134 3135 tcp_sock_set_cork(con->sock->sk, true); 3136 for (;;) { 3137 ret = ceph_tcp_send(con); 3138 if (ret <= 0) 3139 break; 3140 3141 ret = populate_out_iter(con); 3142 if (ret <= 0) { 3143 if (ret && ret != -EAGAIN && !con->error_msg) 3144 con->error_msg = "write processing error"; 3145 break; 3146 } 3147 } 3148 3149 tcp_sock_set_cork(con->sock->sk, false); 3150 return ret; 3151 } 3152 3153 static u32 crc32c_zeros(u32 crc, int zero_len) 3154 { 3155 int len; 3156 3157 while (zero_len) { 3158 len = min(zero_len, (int)PAGE_SIZE); 3159 crc = crc32c(crc, page_address(ceph_zero_page), len); 3160 zero_len -= len; 3161 } 3162 3163 return crc; 3164 } 3165 3166 static void prepare_zero_front(struct ceph_connection *con, int resid) 3167 { 3168 int sent; 3169 3170 WARN_ON(!resid || resid > front_len(con->out_msg)); 3171 sent = front_len(con->out_msg) - resid; 3172 dout("%s con %p sent %d resid %d\n", __func__, con, sent, resid); 3173 3174 if (sent) { 3175 con->v2.out_epil.front_crc = 3176 crc32c(-1, con->out_msg->front.iov_base, sent); 3177 con->v2.out_epil.front_crc = 3178 crc32c_zeros(con->v2.out_epil.front_crc, resid); 3179 } else { 3180 con->v2.out_epil.front_crc = crc32c_zeros(-1, resid); 3181 } 3182 3183 con->v2.out_iter.count -= resid; 3184 out_zero_add(con, resid); 3185 } 3186 3187 static void prepare_zero_middle(struct ceph_connection *con, int resid) 3188 { 3189 int sent; 3190 3191 WARN_ON(!resid || resid > middle_len(con->out_msg)); 3192 sent = middle_len(con->out_msg) - resid; 3193 dout("%s con %p sent %d resid %d\n", __func__, con, sent, resid); 3194 3195 if (sent) { 3196 con->v2.out_epil.middle_crc = 3197 crc32c(-1, con->out_msg->middle->vec.iov_base, sent); 3198 con->v2.out_epil.middle_crc = 3199 crc32c_zeros(con->v2.out_epil.middle_crc, resid); 3200 } else { 3201 con->v2.out_epil.middle_crc = crc32c_zeros(-1, resid); 3202 } 3203 3204 con->v2.out_iter.count -= resid; 3205 out_zero_add(con, resid); 3206 } 3207 3208 static void prepare_zero_data(struct ceph_connection *con) 3209 { 3210 dout("%s con %p\n", __func__, con); 3211 con->v2.out_epil.data_crc = crc32c_zeros(-1, data_len(con->out_msg)); 3212 out_zero_add(con, data_len(con->out_msg)); 3213 } 3214 3215 static void revoke_at_queue_data(struct ceph_connection *con) 3216 { 3217 int boundary; 3218 int resid; 3219 3220 WARN_ON(!data_len(con->out_msg)); 3221 WARN_ON(!iov_iter_is_kvec(&con->v2.out_iter)); 3222 resid = iov_iter_count(&con->v2.out_iter); 3223 3224 boundary = front_len(con->out_msg) + middle_len(con->out_msg); 3225 if (resid > boundary) { 3226 resid -= boundary; 3227 WARN_ON(resid > MESSAGE_HEAD_PLAIN_LEN); 3228 dout("%s con %p was sending head\n", __func__, con); 3229 if (front_len(con->out_msg)) 3230 prepare_zero_front(con, front_len(con->out_msg)); 3231 if (middle_len(con->out_msg)) 3232 prepare_zero_middle(con, middle_len(con->out_msg)); 3233 prepare_zero_data(con); 3234 WARN_ON(iov_iter_count(&con->v2.out_iter) != resid); 3235 con->v2.out_state = OUT_S_QUEUE_ZEROS; 3236 return; 3237 } 3238 3239 boundary = middle_len(con->out_msg); 3240 if (resid > boundary) { 3241 resid -= boundary; 3242 dout("%s con %p was sending front\n", __func__, con); 3243 prepare_zero_front(con, resid); 3244 if (middle_len(con->out_msg)) 3245 prepare_zero_middle(con, middle_len(con->out_msg)); 3246 prepare_zero_data(con); 3247 queue_zeros(con); 3248 return; 3249 } 3250 3251 WARN_ON(!resid); 3252 dout("%s con %p was sending middle\n", __func__, con); 3253 prepare_zero_middle(con, resid); 3254 prepare_zero_data(con); 3255 queue_zeros(con); 3256 } 3257 3258 static void revoke_at_queue_data_cont(struct ceph_connection *con) 3259 { 3260 int sent, resid; /* current piece of data */ 3261 3262 WARN_ON(!data_len(con->out_msg)); 3263 WARN_ON(!iov_iter_is_bvec(&con->v2.out_iter)); 3264 resid = iov_iter_count(&con->v2.out_iter); 3265 WARN_ON(!resid || resid > con->v2.out_bvec.bv_len); 3266 sent = con->v2.out_bvec.bv_len - resid; 3267 dout("%s con %p sent %d resid %d\n", __func__, con, sent, resid); 3268 3269 if (sent) { 3270 con->v2.out_epil.data_crc = ceph_crc32c_page( 3271 con->v2.out_epil.data_crc, con->v2.out_bvec.bv_page, 3272 con->v2.out_bvec.bv_offset, sent); 3273 ceph_msg_data_advance(&con->v2.out_cursor, sent); 3274 } 3275 WARN_ON(resid > con->v2.out_cursor.total_resid); 3276 con->v2.out_epil.data_crc = crc32c_zeros(con->v2.out_epil.data_crc, 3277 con->v2.out_cursor.total_resid); 3278 3279 con->v2.out_iter.count -= resid; 3280 out_zero_add(con, con->v2.out_cursor.total_resid); 3281 queue_zeros(con); 3282 } 3283 3284 static void revoke_at_finish_message(struct ceph_connection *con) 3285 { 3286 int boundary; 3287 int resid; 3288 3289 WARN_ON(!iov_iter_is_kvec(&con->v2.out_iter)); 3290 resid = iov_iter_count(&con->v2.out_iter); 3291 3292 if (!front_len(con->out_msg) && !middle_len(con->out_msg) && 3293 !data_len(con->out_msg)) { 3294 WARN_ON(!resid || resid > MESSAGE_HEAD_PLAIN_LEN); 3295 dout("%s con %p was sending head (empty message) - noop\n", 3296 __func__, con); 3297 return; 3298 } 3299 3300 boundary = front_len(con->out_msg) + middle_len(con->out_msg) + 3301 CEPH_EPILOGUE_PLAIN_LEN; 3302 if (resid > boundary) { 3303 resid -= boundary; 3304 WARN_ON(resid > MESSAGE_HEAD_PLAIN_LEN); 3305 dout("%s con %p was sending head\n", __func__, con); 3306 if (front_len(con->out_msg)) 3307 prepare_zero_front(con, front_len(con->out_msg)); 3308 if (middle_len(con->out_msg)) 3309 prepare_zero_middle(con, middle_len(con->out_msg)); 3310 con->v2.out_iter.count -= CEPH_EPILOGUE_PLAIN_LEN; 3311 WARN_ON(iov_iter_count(&con->v2.out_iter) != resid); 3312 con->v2.out_state = OUT_S_QUEUE_ZEROS; 3313 return; 3314 } 3315 3316 boundary = middle_len(con->out_msg) + CEPH_EPILOGUE_PLAIN_LEN; 3317 if (resid > boundary) { 3318 resid -= boundary; 3319 dout("%s con %p was sending front\n", __func__, con); 3320 prepare_zero_front(con, resid); 3321 if (middle_len(con->out_msg)) 3322 prepare_zero_middle(con, middle_len(con->out_msg)); 3323 con->v2.out_iter.count -= CEPH_EPILOGUE_PLAIN_LEN; 3324 queue_zeros(con); 3325 return; 3326 } 3327 3328 boundary = CEPH_EPILOGUE_PLAIN_LEN; 3329 if (resid > boundary) { 3330 resid -= boundary; 3331 dout("%s con %p was sending middle\n", __func__, con); 3332 prepare_zero_middle(con, resid); 3333 con->v2.out_iter.count -= CEPH_EPILOGUE_PLAIN_LEN; 3334 queue_zeros(con); 3335 return; 3336 } 3337 3338 WARN_ON(!resid); 3339 dout("%s con %p was sending epilogue - noop\n", __func__, con); 3340 } 3341 3342 void ceph_con_v2_revoke(struct ceph_connection *con) 3343 { 3344 WARN_ON(con->v2.out_zero); 3345 3346 if (con_secure(con)) { 3347 WARN_ON(con->v2.out_state != OUT_S_QUEUE_ENC_PAGE && 3348 con->v2.out_state != OUT_S_FINISH_MESSAGE); 3349 dout("%s con %p secure - noop\n", __func__, con); 3350 return; 3351 } 3352 3353 switch (con->v2.out_state) { 3354 case OUT_S_QUEUE_DATA: 3355 revoke_at_queue_data(con); 3356 break; 3357 case OUT_S_QUEUE_DATA_CONT: 3358 revoke_at_queue_data_cont(con); 3359 break; 3360 case OUT_S_FINISH_MESSAGE: 3361 revoke_at_finish_message(con); 3362 break; 3363 default: 3364 WARN(1, "bad out_state %d", con->v2.out_state); 3365 break; 3366 } 3367 } 3368 3369 static void revoke_at_prepare_read_data(struct ceph_connection *con) 3370 { 3371 int remaining; 3372 int resid; 3373 3374 WARN_ON(con_secure(con)); 3375 WARN_ON(!data_len(con->in_msg)); 3376 WARN_ON(!iov_iter_is_kvec(&con->v2.in_iter)); 3377 resid = iov_iter_count(&con->v2.in_iter); 3378 WARN_ON(!resid); 3379 3380 remaining = data_len(con->in_msg) + CEPH_EPILOGUE_PLAIN_LEN; 3381 dout("%s con %p resid %d remaining %d\n", __func__, con, resid, 3382 remaining); 3383 con->v2.in_iter.count -= resid; 3384 set_in_skip(con, resid + remaining); 3385 con->v2.in_state = IN_S_FINISH_SKIP; 3386 } 3387 3388 static void revoke_at_prepare_read_data_cont(struct ceph_connection *con) 3389 { 3390 int recved, resid; /* current piece of data */ 3391 int remaining; 3392 3393 WARN_ON(con_secure(con)); 3394 WARN_ON(!data_len(con->in_msg)); 3395 WARN_ON(!iov_iter_is_bvec(&con->v2.in_iter)); 3396 resid = iov_iter_count(&con->v2.in_iter); 3397 WARN_ON(!resid || resid > con->v2.in_bvec.bv_len); 3398 recved = con->v2.in_bvec.bv_len - resid; 3399 dout("%s con %p recved %d resid %d\n", __func__, con, recved, resid); 3400 3401 if (recved) 3402 ceph_msg_data_advance(&con->v2.in_cursor, recved); 3403 WARN_ON(resid > con->v2.in_cursor.total_resid); 3404 3405 remaining = CEPH_EPILOGUE_PLAIN_LEN; 3406 dout("%s con %p total_resid %zu remaining %d\n", __func__, con, 3407 con->v2.in_cursor.total_resid, remaining); 3408 con->v2.in_iter.count -= resid; 3409 set_in_skip(con, con->v2.in_cursor.total_resid + remaining); 3410 con->v2.in_state = IN_S_FINISH_SKIP; 3411 } 3412 3413 static void revoke_at_prepare_read_enc_page(struct ceph_connection *con) 3414 { 3415 int resid; /* current enc page (not necessarily data) */ 3416 3417 WARN_ON(!con_secure(con)); 3418 WARN_ON(!iov_iter_is_bvec(&con->v2.in_iter)); 3419 resid = iov_iter_count(&con->v2.in_iter); 3420 WARN_ON(!resid || resid > con->v2.in_bvec.bv_len); 3421 3422 dout("%s con %p resid %d enc_resid %d\n", __func__, con, resid, 3423 con->v2.in_enc_resid); 3424 con->v2.in_iter.count -= resid; 3425 set_in_skip(con, resid + con->v2.in_enc_resid); 3426 con->v2.in_state = IN_S_FINISH_SKIP; 3427 } 3428 3429 static void revoke_at_handle_epilogue(struct ceph_connection *con) 3430 { 3431 int resid; 3432 3433 resid = iov_iter_count(&con->v2.in_iter); 3434 WARN_ON(!resid); 3435 3436 dout("%s con %p resid %d\n", __func__, con, resid); 3437 con->v2.in_iter.count -= resid; 3438 set_in_skip(con, resid); 3439 con->v2.in_state = IN_S_FINISH_SKIP; 3440 } 3441 3442 void ceph_con_v2_revoke_incoming(struct ceph_connection *con) 3443 { 3444 switch (con->v2.in_state) { 3445 case IN_S_PREPARE_READ_DATA: 3446 revoke_at_prepare_read_data(con); 3447 break; 3448 case IN_S_PREPARE_READ_DATA_CONT: 3449 revoke_at_prepare_read_data_cont(con); 3450 break; 3451 case IN_S_PREPARE_READ_ENC_PAGE: 3452 revoke_at_prepare_read_enc_page(con); 3453 break; 3454 case IN_S_HANDLE_EPILOGUE: 3455 revoke_at_handle_epilogue(con); 3456 break; 3457 default: 3458 WARN(1, "bad in_state %d", con->v2.in_state); 3459 break; 3460 } 3461 } 3462 3463 bool ceph_con_v2_opened(struct ceph_connection *con) 3464 { 3465 return con->v2.peer_global_seq; 3466 } 3467 3468 void ceph_con_v2_reset_session(struct ceph_connection *con) 3469 { 3470 con->v2.client_cookie = 0; 3471 con->v2.server_cookie = 0; 3472 con->v2.global_seq = 0; 3473 con->v2.connect_seq = 0; 3474 con->v2.peer_global_seq = 0; 3475 } 3476 3477 void ceph_con_v2_reset_protocol(struct ceph_connection *con) 3478 { 3479 iov_iter_truncate(&con->v2.in_iter, 0); 3480 iov_iter_truncate(&con->v2.out_iter, 0); 3481 con->v2.out_zero = 0; 3482 3483 clear_in_sign_kvecs(con); 3484 clear_out_sign_kvecs(con); 3485 free_conn_bufs(con); 3486 3487 if (con->v2.in_enc_pages) { 3488 WARN_ON(!con->v2.in_enc_page_cnt); 3489 ceph_release_page_vector(con->v2.in_enc_pages, 3490 con->v2.in_enc_page_cnt); 3491 con->v2.in_enc_pages = NULL; 3492 con->v2.in_enc_page_cnt = 0; 3493 } 3494 if (con->v2.out_enc_pages) { 3495 WARN_ON(!con->v2.out_enc_page_cnt); 3496 ceph_release_page_vector(con->v2.out_enc_pages, 3497 con->v2.out_enc_page_cnt); 3498 con->v2.out_enc_pages = NULL; 3499 con->v2.out_enc_page_cnt = 0; 3500 } 3501 3502 con->v2.con_mode = CEPH_CON_MODE_UNKNOWN; 3503 memzero_explicit(&con->v2.in_gcm_nonce, CEPH_GCM_IV_LEN); 3504 memzero_explicit(&con->v2.out_gcm_nonce, CEPH_GCM_IV_LEN); 3505 3506 if (con->v2.hmac_tfm) { 3507 crypto_free_shash(con->v2.hmac_tfm); 3508 con->v2.hmac_tfm = NULL; 3509 } 3510 if (con->v2.gcm_req) { 3511 aead_request_free(con->v2.gcm_req); 3512 con->v2.gcm_req = NULL; 3513 } 3514 if (con->v2.gcm_tfm) { 3515 crypto_free_aead(con->v2.gcm_tfm); 3516 con->v2.gcm_tfm = NULL; 3517 } 3518 } 3519