1 /* Copyright (c) 2018, Mellanox Technologies All rights reserved. 2 * 3 * This software is available to you under a choice of one of two 4 * licenses. You may choose to be licensed under the terms of the GNU 5 * General Public License (GPL) Version 2, available from the file 6 * COPYING in the main directory of this source tree, or the 7 * OpenIB.org BSD license below: 8 * 9 * Redistribution and use in source and binary forms, with or 10 * without modification, are permitted provided that the following 11 * conditions are met: 12 * 13 * - Redistributions of source code must retain the above 14 * copyright notice, this list of conditions and the following 15 * disclaimer. 16 * 17 * - Redistributions in binary form must reproduce the above 18 * copyright notice, this list of conditions and the following 19 * disclaimer in the documentation and/or other materials 20 * provided with the distribution. 21 * 22 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, 23 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF 24 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND 25 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS 26 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN 27 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN 28 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE 29 * SOFTWARE. 30 */ 31 32 #include <crypto/aead.h> 33 #include <linux/highmem.h> 34 #include <linux/module.h> 35 #include <linux/netdevice.h> 36 #include <net/dst.h> 37 #include <net/inet_connection_sock.h> 38 #include <net/tcp.h> 39 #include <net/tls.h> 40 #include <linux/skbuff_ref.h> 41 42 #include "tls.h" 43 #include "trace.h" 44 45 /* device_offload_lock is used to synchronize tls_dev_add 46 * against NETDEV_DOWN notifications. 47 */ 48 static DECLARE_RWSEM(device_offload_lock); 49 50 static struct workqueue_struct *destruct_wq __read_mostly; 51 52 static LIST_HEAD(tls_device_list); 53 static LIST_HEAD(tls_device_down_list); 54 static DEFINE_SPINLOCK(tls_device_lock); 55 56 static struct page *dummy_page; 57 58 static void tls_device_free_ctx(struct tls_context *ctx) 59 { 60 if (ctx->tx_conf == TLS_HW) 61 kfree(tls_offload_ctx_tx(ctx)); 62 63 if (ctx->rx_conf == TLS_HW) 64 kfree(tls_offload_ctx_rx(ctx)); 65 66 tls_ctx_free(NULL, ctx); 67 } 68 69 static void tls_device_tx_del_task(struct work_struct *work) 70 { 71 struct tls_offload_context_tx *offload_ctx = 72 container_of(work, struct tls_offload_context_tx, destruct_work); 73 struct tls_context *ctx = offload_ctx->ctx; 74 struct net_device *netdev; 75 76 /* Safe, because this is the destroy flow, refcount is 0, so 77 * tls_device_down can't store this field in parallel. 78 */ 79 netdev = rcu_dereference_protected(ctx->netdev, 80 !refcount_read(&ctx->refcount)); 81 82 netdev->tlsdev_ops->tls_dev_del(netdev, ctx, TLS_OFFLOAD_CTX_DIR_TX); 83 dev_put(netdev); 84 ctx->netdev = NULL; 85 tls_device_free_ctx(ctx); 86 } 87 88 static void tls_device_queue_ctx_destruction(struct tls_context *ctx) 89 { 90 struct net_device *netdev; 91 unsigned long flags; 92 bool async_cleanup; 93 94 spin_lock_irqsave(&tls_device_lock, flags); 95 if (unlikely(!refcount_dec_and_test(&ctx->refcount))) { 96 spin_unlock_irqrestore(&tls_device_lock, flags); 97 return; 98 } 99 100 list_del(&ctx->list); /* Remove from tls_device_list / tls_device_down_list */ 101 102 /* Safe, because this is the destroy flow, refcount is 0, so 103 * tls_device_down can't store this field in parallel. 104 */ 105 netdev = rcu_dereference_protected(ctx->netdev, 106 !refcount_read(&ctx->refcount)); 107 108 async_cleanup = netdev && ctx->tx_conf == TLS_HW; 109 if (async_cleanup) { 110 struct tls_offload_context_tx *offload_ctx = tls_offload_ctx_tx(ctx); 111 112 /* queue_work inside the spinlock 113 * to make sure tls_device_down waits for that work. 114 */ 115 queue_work(destruct_wq, &offload_ctx->destruct_work); 116 } 117 spin_unlock_irqrestore(&tls_device_lock, flags); 118 119 if (!async_cleanup) 120 tls_device_free_ctx(ctx); 121 } 122 123 /* We assume that the socket is already connected */ 124 static struct net_device *get_netdev_for_sock(struct sock *sk) 125 { 126 struct net_device *dev, *lowest_dev = NULL; 127 struct dst_entry *dst; 128 129 rcu_read_lock(); 130 dst = __sk_dst_get(sk); 131 dev = dst ? dst_dev_rcu(dst) : NULL; 132 if (likely(dev)) { 133 lowest_dev = netdev_sk_get_lowest_dev(dev, sk); 134 dev_hold(lowest_dev); 135 } 136 rcu_read_unlock(); 137 138 return lowest_dev; 139 } 140 141 static void destroy_record(struct tls_record_info *record) 142 { 143 int i; 144 145 for (i = 0; i < record->num_frags; i++) 146 __skb_frag_unref(&record->frags[i], false); 147 kfree(record); 148 } 149 150 static void delete_all_records(struct tls_offload_context_tx *offload_ctx) 151 { 152 struct tls_record_info *info, *temp; 153 154 list_for_each_entry_safe(info, temp, &offload_ctx->records_list, list) { 155 list_del(&info->list); 156 destroy_record(info); 157 } 158 159 offload_ctx->retransmit_hint = NULL; 160 } 161 162 static void tls_tcp_clean_acked(struct sock *sk, u32 acked_seq) 163 { 164 struct tls_context *tls_ctx = tls_get_ctx(sk); 165 struct tls_record_info *info, *temp; 166 struct tls_offload_context_tx *ctx; 167 u64 deleted_records = 0; 168 unsigned long flags; 169 170 if (!tls_ctx) 171 return; 172 173 ctx = tls_offload_ctx_tx(tls_ctx); 174 175 spin_lock_irqsave(&ctx->lock, flags); 176 info = ctx->retransmit_hint; 177 if (info && !before(acked_seq, info->end_seq)) 178 ctx->retransmit_hint = NULL; 179 180 list_for_each_entry_safe(info, temp, &ctx->records_list, list) { 181 if (before(acked_seq, info->end_seq)) 182 break; 183 list_del(&info->list); 184 185 destroy_record(info); 186 deleted_records++; 187 } 188 189 ctx->unacked_record_sn += deleted_records; 190 spin_unlock_irqrestore(&ctx->lock, flags); 191 } 192 193 /* At this point, there should be no references on this 194 * socket and no in-flight SKBs associated with this 195 * socket, so it is safe to free all the resources. 196 */ 197 void tls_device_sk_destruct(struct sock *sk) 198 { 199 struct tls_context *tls_ctx = tls_get_ctx(sk); 200 struct tls_offload_context_tx *ctx = tls_offload_ctx_tx(tls_ctx); 201 202 tls_ctx->sk_destruct(sk); 203 204 if (tls_ctx->tx_conf == TLS_HW) { 205 if (ctx->open_record) 206 destroy_record(ctx->open_record); 207 delete_all_records(ctx); 208 crypto_free_aead(ctx->aead_send); 209 clean_acked_data_disable(tcp_sk(sk)); 210 } 211 212 tls_device_queue_ctx_destruction(tls_ctx); 213 } 214 EXPORT_SYMBOL_GPL(tls_device_sk_destruct); 215 216 void tls_device_free_resources_tx(struct sock *sk) 217 { 218 struct tls_context *tls_ctx = tls_get_ctx(sk); 219 220 tls_free_partial_record(sk, tls_ctx); 221 } 222 223 void tls_offload_tx_resync_request(struct sock *sk, u32 got_seq, u32 exp_seq) 224 { 225 struct tls_context *tls_ctx = tls_get_ctx(sk); 226 227 trace_tls_device_tx_resync_req(sk, got_seq, exp_seq); 228 WARN_ON(test_and_set_bit(TLS_TX_SYNC_SCHED, &tls_ctx->flags)); 229 } 230 EXPORT_SYMBOL_GPL(tls_offload_tx_resync_request); 231 232 static void tls_device_resync_tx(struct sock *sk, struct tls_context *tls_ctx, 233 u32 seq) 234 { 235 struct net_device *netdev; 236 int err = 0; 237 u8 *rcd_sn; 238 239 tcp_write_collapse_fence(sk); 240 rcd_sn = tls_ctx->tx.rec_seq; 241 242 trace_tls_device_tx_resync_send(sk, seq, rcd_sn); 243 down_read(&device_offload_lock); 244 netdev = rcu_dereference_protected(tls_ctx->netdev, 245 lockdep_is_held(&device_offload_lock)); 246 if (netdev) 247 err = netdev->tlsdev_ops->tls_dev_resync(netdev, sk, seq, 248 rcd_sn, 249 TLS_OFFLOAD_CTX_DIR_TX); 250 up_read(&device_offload_lock); 251 if (err) 252 return; 253 254 clear_bit_unlock(TLS_TX_SYNC_SCHED, &tls_ctx->flags); 255 } 256 257 static void tls_append_frag(struct tls_record_info *record, 258 struct page_frag *pfrag, 259 int size) 260 { 261 skb_frag_t *frag; 262 263 frag = &record->frags[record->num_frags - 1]; 264 if (skb_frag_page(frag) == pfrag->page && 265 skb_frag_off(frag) + skb_frag_size(frag) == pfrag->offset) { 266 skb_frag_size_add(frag, size); 267 } else { 268 ++frag; 269 skb_frag_fill_page_desc(frag, pfrag->page, pfrag->offset, 270 size); 271 ++record->num_frags; 272 get_page(pfrag->page); 273 } 274 275 pfrag->offset += size; 276 record->len += size; 277 } 278 279 static int tls_push_record(struct sock *sk, 280 struct tls_context *ctx, 281 struct tls_offload_context_tx *offload_ctx, 282 struct tls_record_info *record, 283 int flags) 284 { 285 struct tls_prot_info *prot = &ctx->prot_info; 286 struct tcp_sock *tp = tcp_sk(sk); 287 skb_frag_t *frag; 288 int i; 289 290 record->end_seq = tp->write_seq + record->len; 291 list_add_tail_rcu(&record->list, &offload_ctx->records_list); 292 offload_ctx->open_record = NULL; 293 294 if (test_bit(TLS_TX_SYNC_SCHED, &ctx->flags)) 295 tls_device_resync_tx(sk, ctx, tp->write_seq); 296 297 tls_advance_record_sn(sk, prot, &ctx->tx); 298 299 for (i = 0; i < record->num_frags; i++) { 300 frag = &record->frags[i]; 301 sg_unmark_end(&offload_ctx->sg_tx_data[i]); 302 sg_set_page(&offload_ctx->sg_tx_data[i], skb_frag_page(frag), 303 skb_frag_size(frag), skb_frag_off(frag)); 304 sk_mem_charge(sk, skb_frag_size(frag)); 305 get_page(skb_frag_page(frag)); 306 } 307 sg_mark_end(&offload_ctx->sg_tx_data[record->num_frags - 1]); 308 309 /* all ready, send */ 310 return tls_push_sg(sk, ctx, offload_ctx->sg_tx_data, 0, flags); 311 } 312 313 static void tls_device_record_close(struct sock *sk, 314 struct tls_context *ctx, 315 struct tls_record_info *record, 316 struct page_frag *pfrag, 317 unsigned char record_type) 318 { 319 struct tls_prot_info *prot = &ctx->prot_info; 320 struct page_frag dummy_tag_frag; 321 322 /* append tag 323 * device will fill in the tag, we just need to append a placeholder 324 * use socket memory to improve coalescing (re-using a single buffer 325 * increases frag count) 326 * if we can't allocate memory now use the dummy page 327 */ 328 if (unlikely(pfrag->size - pfrag->offset < prot->tag_size) && 329 !skb_page_frag_refill(prot->tag_size, pfrag, sk->sk_allocation)) { 330 dummy_tag_frag.page = dummy_page; 331 dummy_tag_frag.offset = 0; 332 pfrag = &dummy_tag_frag; 333 } 334 tls_append_frag(record, pfrag, prot->tag_size); 335 336 /* fill prepend */ 337 tls_fill_prepend(ctx, skb_frag_address(&record->frags[0]), 338 record->len - prot->overhead_size, 339 record_type); 340 } 341 342 static int tls_create_new_record(struct tls_offload_context_tx *offload_ctx, 343 struct page_frag *pfrag, 344 size_t prepend_size) 345 { 346 struct tls_record_info *record; 347 skb_frag_t *frag; 348 349 record = kmalloc_obj(*record); 350 if (!record) 351 return -ENOMEM; 352 353 frag = &record->frags[0]; 354 skb_frag_fill_page_desc(frag, pfrag->page, pfrag->offset, 355 prepend_size); 356 357 get_page(pfrag->page); 358 pfrag->offset += prepend_size; 359 360 record->num_frags = 1; 361 record->len = prepend_size; 362 offload_ctx->open_record = record; 363 return 0; 364 } 365 366 static int tls_do_allocation(struct sock *sk, 367 struct tls_offload_context_tx *offload_ctx, 368 struct page_frag *pfrag, 369 size_t prepend_size) 370 { 371 int ret; 372 373 if (!offload_ctx->open_record) { 374 if (unlikely(!skb_page_frag_refill(prepend_size, pfrag, 375 sk->sk_allocation))) { 376 if (!sk->sk_bypass_prot_mem) 377 READ_ONCE(sk->sk_prot)->enter_memory_pressure(sk); 378 sk_stream_moderate_sndbuf(sk); 379 return -ENOMEM; 380 } 381 382 ret = tls_create_new_record(offload_ctx, pfrag, prepend_size); 383 if (ret) 384 return ret; 385 386 if (pfrag->size > pfrag->offset) 387 return 0; 388 } 389 390 if (!sk_page_frag_refill(sk, pfrag)) 391 return -ENOMEM; 392 393 return 0; 394 } 395 396 static int tls_device_copy_data(void *addr, size_t bytes, struct iov_iter *i) 397 { 398 size_t pre_copy, nocache; 399 400 pre_copy = ~((unsigned long)addr - 1) & (SMP_CACHE_BYTES - 1); 401 if (pre_copy) { 402 pre_copy = min(pre_copy, bytes); 403 if (copy_from_iter(addr, pre_copy, i) != pre_copy) 404 return -EFAULT; 405 bytes -= pre_copy; 406 addr += pre_copy; 407 } 408 409 nocache = round_down(bytes, SMP_CACHE_BYTES); 410 if (copy_from_iter_nocache(addr, nocache, i) != nocache) 411 return -EFAULT; 412 bytes -= nocache; 413 addr += nocache; 414 415 if (bytes && copy_from_iter(addr, bytes, i) != bytes) 416 return -EFAULT; 417 418 return 0; 419 } 420 421 static int tls_push_data(struct sock *sk, 422 struct iov_iter *iter, 423 size_t size, int flags, 424 unsigned char record_type) 425 { 426 struct tls_context *tls_ctx = tls_get_ctx(sk); 427 struct tls_prot_info *prot = &tls_ctx->prot_info; 428 struct tls_offload_context_tx *ctx = tls_offload_ctx_tx(tls_ctx); 429 struct tls_record_info *record; 430 int tls_push_record_flags; 431 struct page_frag *pfrag; 432 size_t orig_size = size; 433 u32 max_open_record_len; 434 bool more = false; 435 bool done = false; 436 int copy, rc = 0; 437 long timeo; 438 439 if (flags & 440 ~(MSG_MORE | MSG_DONTWAIT | MSG_NOSIGNAL | 441 MSG_SPLICE_PAGES | MSG_EOR)) 442 return -EOPNOTSUPP; 443 444 if ((flags & (MSG_MORE | MSG_EOR)) == (MSG_MORE | MSG_EOR)) 445 return -EINVAL; 446 447 if (unlikely(sk->sk_err)) 448 return -sk->sk_err; 449 450 flags |= MSG_SENDPAGE_DECRYPTED; 451 tls_push_record_flags = flags | MSG_MORE; 452 453 timeo = sock_sndtimeo(sk, flags & MSG_DONTWAIT); 454 if (tls_is_partially_sent_record(tls_ctx)) { 455 rc = tls_push_partial_record(sk, tls_ctx, flags); 456 if (rc < 0) 457 return rc; 458 } 459 460 pfrag = sk_page_frag(sk); 461 462 /* TLS_HEADER_SIZE is not counted as part of the TLS record, and 463 * we need to leave room for an authentication tag. 464 */ 465 max_open_record_len = tls_ctx->tx_max_payload_len + 466 prot->prepend_size; 467 do { 468 rc = tls_do_allocation(sk, ctx, pfrag, prot->prepend_size); 469 if (unlikely(rc)) { 470 rc = sk_stream_wait_memory(sk, &timeo); 471 if (!rc) 472 continue; 473 474 record = ctx->open_record; 475 if (!record) 476 break; 477 handle_error: 478 if (record_type != TLS_RECORD_TYPE_DATA) { 479 /* avoid sending partial 480 * record with type != 481 * application_data 482 */ 483 size = orig_size; 484 destroy_record(record); 485 ctx->open_record = NULL; 486 } else if (record->len > prot->prepend_size) { 487 goto last_record; 488 } 489 490 break; 491 } 492 493 record = ctx->open_record; 494 495 copy = min_t(size_t, size, max_open_record_len - record->len); 496 if (copy && (flags & MSG_SPLICE_PAGES)) { 497 struct page_frag zc_pfrag; 498 struct page **pages = &zc_pfrag.page; 499 size_t off; 500 501 rc = iov_iter_extract_pages(iter, &pages, 502 copy, 1, 0, &off); 503 if (rc <= 0) { 504 if (rc == 0) 505 rc = -EIO; 506 goto handle_error; 507 } 508 copy = rc; 509 510 if (WARN_ON_ONCE(!sendpage_ok(zc_pfrag.page))) { 511 iov_iter_revert(iter, copy); 512 rc = -EIO; 513 goto handle_error; 514 } 515 516 zc_pfrag.offset = off; 517 zc_pfrag.size = copy; 518 tls_append_frag(record, &zc_pfrag, copy); 519 } else if (copy) { 520 copy = min_t(size_t, copy, pfrag->size - pfrag->offset); 521 522 rc = tls_device_copy_data(page_address(pfrag->page) + 523 pfrag->offset, copy, 524 iter); 525 if (rc) 526 goto handle_error; 527 tls_append_frag(record, pfrag, copy); 528 } 529 530 size -= copy; 531 if (!size) { 532 last_record: 533 tls_push_record_flags = flags; 534 if ((flags & MSG_MORE) && 535 record->num_frags < MAX_SKB_FRAGS - 1) { 536 more = true; 537 break; 538 } 539 540 done = true; 541 } 542 543 if (done || record->len >= max_open_record_len || 544 (record->num_frags >= MAX_SKB_FRAGS - 1)) { 545 tls_device_record_close(sk, tls_ctx, record, 546 pfrag, record_type); 547 548 rc = tls_push_record(sk, 549 tls_ctx, 550 ctx, 551 record, 552 tls_push_record_flags); 553 if (rc < 0) 554 break; 555 } 556 } while (!done); 557 558 tls_ctx->pending_open_record_frags = more; 559 560 if (orig_size - size > 0) 561 rc = orig_size - size; 562 563 return rc; 564 } 565 566 int tls_device_sendmsg(struct sock *sk, struct msghdr *msg, size_t size) 567 { 568 unsigned char record_type = TLS_RECORD_TYPE_DATA; 569 struct tls_context *tls_ctx = tls_get_ctx(sk); 570 int rc; 571 572 if (!tls_ctx->zerocopy_sendfile) 573 msg->msg_flags &= ~MSG_SPLICE_PAGES; 574 575 mutex_lock(&tls_ctx->tx_lock); 576 lock_sock(sk); 577 578 if (unlikely(msg->msg_controllen)) { 579 rc = tls_process_cmsg(sk, msg, &record_type); 580 if (rc) 581 goto out; 582 } 583 584 rc = tls_push_data(sk, &msg->msg_iter, size, msg->msg_flags, 585 record_type); 586 587 out: 588 release_sock(sk); 589 mutex_unlock(&tls_ctx->tx_lock); 590 return rc; 591 } 592 593 void tls_device_splice_eof(struct socket *sock) 594 { 595 struct sock *sk = sock->sk; 596 struct tls_context *tls_ctx = tls_get_ctx(sk); 597 struct iov_iter iter = {}; 598 599 if (!tls_is_partially_sent_record(tls_ctx) && 600 !tls_is_pending_open_record(tls_ctx)) 601 return; 602 603 mutex_lock(&tls_ctx->tx_lock); 604 lock_sock(sk); 605 606 if (tls_is_partially_sent_record(tls_ctx) || 607 tls_is_pending_open_record(tls_ctx)) { 608 iov_iter_bvec(&iter, ITER_SOURCE, NULL, 0, 0); 609 tls_push_data(sk, &iter, 0, 0, TLS_RECORD_TYPE_DATA); 610 } 611 612 release_sock(sk); 613 mutex_unlock(&tls_ctx->tx_lock); 614 } 615 616 struct tls_record_info *tls_get_record(struct tls_offload_context_tx *context, 617 u32 seq, u64 *p_record_sn) 618 { 619 u64 record_sn = context->hint_record_sn; 620 struct tls_record_info *info, *last; 621 622 info = context->retransmit_hint; 623 if (!info || 624 before(seq, info->end_seq - info->len)) { 625 /* if retransmit_hint is irrelevant start 626 * from the beginning of the list 627 */ 628 info = list_first_entry_or_null(&context->records_list, 629 struct tls_record_info, list); 630 if (!info) 631 return NULL; 632 /* send the start_marker record if seq number is before the 633 * tls offload start marker sequence number. This record is 634 * required to handle TCP packets which are before TLS offload 635 * started. 636 * And if it's not start marker, look if this seq number 637 * belongs to the list. 638 */ 639 if (likely(!tls_record_is_start_marker(info))) { 640 /* we have the first record, get the last record to see 641 * if this seq number belongs to the list. 642 */ 643 last = list_last_entry(&context->records_list, 644 struct tls_record_info, list); 645 646 if (!between(seq, tls_record_start_seq(info), 647 last->end_seq)) 648 return NULL; 649 } 650 record_sn = context->unacked_record_sn; 651 } 652 653 /* We just need the _rcu for the READ_ONCE() */ 654 rcu_read_lock(); 655 list_for_each_entry_from_rcu(info, &context->records_list, list) { 656 if (before(seq, info->end_seq)) { 657 if (!context->retransmit_hint || 658 after(info->end_seq, 659 context->retransmit_hint->end_seq)) { 660 context->hint_record_sn = record_sn; 661 context->retransmit_hint = info; 662 } 663 *p_record_sn = record_sn; 664 goto exit_rcu_unlock; 665 } 666 record_sn++; 667 } 668 info = NULL; 669 670 exit_rcu_unlock: 671 rcu_read_unlock(); 672 return info; 673 } 674 EXPORT_SYMBOL(tls_get_record); 675 676 static int tls_device_push_pending_record(struct sock *sk, int flags) 677 { 678 struct iov_iter iter; 679 680 iov_iter_kvec(&iter, ITER_SOURCE, NULL, 0, 0); 681 return tls_push_data(sk, &iter, 0, flags, TLS_RECORD_TYPE_DATA); 682 } 683 684 void tls_device_write_space(struct sock *sk, struct tls_context *ctx) 685 { 686 if (tls_is_partially_sent_record(ctx)) { 687 gfp_t sk_allocation = sk->sk_allocation; 688 689 WARN_ON_ONCE(sk->sk_write_pending); 690 691 sk->sk_allocation = GFP_ATOMIC; 692 tls_push_partial_record(sk, ctx, 693 MSG_DONTWAIT | MSG_NOSIGNAL | 694 MSG_SENDPAGE_DECRYPTED); 695 sk->sk_allocation = sk_allocation; 696 } 697 } 698 699 static void tls_device_resync_rx(struct tls_context *tls_ctx, 700 struct sock *sk, u32 seq, u8 *rcd_sn) 701 { 702 struct tls_offload_context_rx *rx_ctx = tls_offload_ctx_rx(tls_ctx); 703 struct net_device *netdev; 704 705 trace_tls_device_rx_resync_send(sk, seq, rcd_sn, rx_ctx->resync_type); 706 rcu_read_lock(); 707 netdev = rcu_dereference(tls_ctx->netdev); 708 if (netdev) 709 netdev->tlsdev_ops->tls_dev_resync(netdev, sk, seq, rcd_sn, 710 TLS_OFFLOAD_CTX_DIR_RX); 711 rcu_read_unlock(); 712 TLS_INC_STATS(sock_net(sk), LINUX_MIB_TLSRXDEVICERESYNC); 713 } 714 715 static bool 716 tls_device_rx_resync_async(struct tls_offload_resync_async *resync_async, 717 s64 resync_req, u32 *seq, u16 *rcd_delta) 718 { 719 u32 is_async = resync_req & RESYNC_REQ_ASYNC; 720 u32 req_seq = resync_req >> 32; 721 u32 req_end = req_seq + ((resync_req >> 16) & 0xffff); 722 u16 i; 723 724 *rcd_delta = 0; 725 726 if (is_async) { 727 /* shouldn't get to wraparound: 728 * too long in async stage, something bad happened 729 */ 730 if (WARN_ON_ONCE(resync_async->rcd_delta == USHRT_MAX)) { 731 tls_offload_rx_resync_async_request_cancel(resync_async); 732 return false; 733 } 734 735 /* asynchronous stage: log all headers seq such that 736 * req_seq <= seq <= end_seq, and wait for real resync request 737 */ 738 if (before(*seq, req_seq)) 739 return false; 740 if (!after(*seq, req_end) && 741 resync_async->loglen < TLS_DEVICE_RESYNC_ASYNC_LOGMAX) 742 resync_async->log[resync_async->loglen++] = *seq; 743 744 resync_async->rcd_delta++; 745 746 return false; 747 } 748 749 /* synchronous stage: check against the logged entries and 750 * proceed to check the next entries if no match was found 751 */ 752 for (i = 0; i < resync_async->loglen; i++) 753 if (req_seq == resync_async->log[i] && 754 atomic64_try_cmpxchg(&resync_async->req, &resync_req, 0)) { 755 *rcd_delta = resync_async->rcd_delta - i; 756 *seq = req_seq; 757 resync_async->loglen = 0; 758 resync_async->rcd_delta = 0; 759 return true; 760 } 761 762 resync_async->loglen = 0; 763 resync_async->rcd_delta = 0; 764 765 if (req_seq == *seq && 766 atomic64_try_cmpxchg(&resync_async->req, 767 &resync_req, 0)) 768 return true; 769 770 return false; 771 } 772 773 void tls_device_rx_resync_new_rec(struct sock *sk, u32 rcd_len, u32 seq) 774 { 775 struct tls_context *tls_ctx = tls_get_ctx(sk); 776 struct tls_offload_context_rx *rx_ctx; 777 u8 rcd_sn[TLS_MAX_REC_SEQ_SIZE]; 778 u32 sock_data, is_req_pending; 779 struct tls_prot_info *prot; 780 s64 resync_req; 781 u16 rcd_delta; 782 u32 req_seq; 783 784 if (tls_ctx->rx_conf != TLS_HW) 785 return; 786 if (unlikely(test_bit(TLS_RX_DEV_DEGRADED, &tls_ctx->flags))) 787 return; 788 789 prot = &tls_ctx->prot_info; 790 rx_ctx = tls_offload_ctx_rx(tls_ctx); 791 memcpy(rcd_sn, tls_ctx->rx.rec_seq, prot->rec_seq_size); 792 793 switch (rx_ctx->resync_type) { 794 case TLS_OFFLOAD_SYNC_TYPE_DRIVER_REQ: 795 resync_req = atomic64_read(&rx_ctx->resync_req); 796 req_seq = resync_req >> 32; 797 seq += TLS_HEADER_SIZE - 1; 798 is_req_pending = resync_req; 799 800 if (likely(!is_req_pending) || req_seq != seq || 801 !atomic64_try_cmpxchg(&rx_ctx->resync_req, &resync_req, 0)) 802 return; 803 break; 804 case TLS_OFFLOAD_SYNC_TYPE_CORE_NEXT_HINT: 805 if (likely(!rx_ctx->resync_nh_do_now)) 806 return; 807 808 /* head of next rec is already in, note that the sock_inq will 809 * include the currently parsed message when called from parser 810 */ 811 sock_data = tcp_inq(sk); 812 if (sock_data > rcd_len) { 813 trace_tls_device_rx_resync_nh_delay(sk, sock_data, 814 rcd_len); 815 return; 816 } 817 818 rx_ctx->resync_nh_do_now = 0; 819 seq += rcd_len; 820 tls_bigint_increment(rcd_sn, prot->rec_seq_size); 821 break; 822 case TLS_OFFLOAD_SYNC_TYPE_DRIVER_REQ_ASYNC: 823 resync_req = atomic64_read(&rx_ctx->resync_async->req); 824 is_req_pending = resync_req; 825 if (likely(!is_req_pending)) 826 return; 827 828 if (!tls_device_rx_resync_async(rx_ctx->resync_async, 829 resync_req, &seq, &rcd_delta)) 830 return; 831 tls_bigint_subtract(rcd_sn, rcd_delta); 832 break; 833 } 834 835 tls_device_resync_rx(tls_ctx, sk, seq, rcd_sn); 836 } 837 838 static void tls_device_core_ctrl_rx_resync(struct tls_context *tls_ctx, 839 struct tls_offload_context_rx *ctx, 840 struct sock *sk, struct sk_buff *skb) 841 { 842 struct strp_msg *rxm; 843 844 /* device will request resyncs by itself based on stream scan */ 845 if (ctx->resync_type != TLS_OFFLOAD_SYNC_TYPE_CORE_NEXT_HINT) 846 return; 847 /* already scheduled */ 848 if (ctx->resync_nh_do_now) 849 return; 850 /* seen decrypted fragments since last fully-failed record */ 851 if (ctx->resync_nh_reset) { 852 ctx->resync_nh_reset = 0; 853 ctx->resync_nh.decrypted_failed = 1; 854 ctx->resync_nh.decrypted_tgt = TLS_DEVICE_RESYNC_NH_START_IVAL; 855 return; 856 } 857 858 if (++ctx->resync_nh.decrypted_failed <= ctx->resync_nh.decrypted_tgt) 859 return; 860 861 /* doing resync, bump the next target in case it fails */ 862 if (ctx->resync_nh.decrypted_tgt < TLS_DEVICE_RESYNC_NH_MAX_IVAL) 863 ctx->resync_nh.decrypted_tgt *= 2; 864 else 865 ctx->resync_nh.decrypted_tgt += TLS_DEVICE_RESYNC_NH_MAX_IVAL; 866 867 rxm = strp_msg(skb); 868 869 /* head of next rec is already in, parser will sync for us */ 870 if (tcp_inq(sk) > rxm->full_len) { 871 trace_tls_device_rx_resync_nh_schedule(sk); 872 ctx->resync_nh_do_now = 1; 873 } else { 874 struct tls_prot_info *prot = &tls_ctx->prot_info; 875 u8 rcd_sn[TLS_MAX_REC_SEQ_SIZE]; 876 877 memcpy(rcd_sn, tls_ctx->rx.rec_seq, prot->rec_seq_size); 878 tls_bigint_increment(rcd_sn, prot->rec_seq_size); 879 880 tls_device_resync_rx(tls_ctx, sk, tcp_sk(sk)->copied_seq, 881 rcd_sn); 882 } 883 } 884 885 static int 886 tls_device_reencrypt(struct sock *sk, struct tls_context *tls_ctx) 887 { 888 struct tls_sw_context_rx *sw_ctx = tls_sw_ctx_rx(tls_ctx); 889 const struct tls_cipher_desc *cipher_desc; 890 int err, offset, copy, data_len, pos; 891 struct sk_buff *skb, *skb_iter; 892 struct scatterlist sg[1]; 893 struct strp_msg *rxm; 894 char *orig_buf, *buf; 895 896 cipher_desc = get_cipher_desc(tls_ctx->crypto_recv.info.cipher_type); 897 DEBUG_NET_WARN_ON_ONCE(!cipher_desc || !cipher_desc->offloadable); 898 899 rxm = strp_msg(tls_strp_msg(sw_ctx)); 900 orig_buf = kmalloc(rxm->full_len + TLS_HEADER_SIZE + cipher_desc->iv, 901 sk->sk_allocation); 902 if (!orig_buf) 903 return -ENOMEM; 904 buf = orig_buf; 905 906 err = tls_strp_msg_cow(sw_ctx); 907 if (unlikely(err)) 908 goto free_buf; 909 910 skb = tls_strp_msg(sw_ctx); 911 rxm = strp_msg(skb); 912 offset = rxm->offset; 913 914 sg_init_table(sg, 1); 915 sg_set_buf(&sg[0], buf, 916 rxm->full_len + TLS_HEADER_SIZE + cipher_desc->iv); 917 err = skb_copy_bits(skb, offset, buf, TLS_HEADER_SIZE + cipher_desc->iv); 918 if (err) 919 goto free_buf; 920 921 /* We are interested only in the decrypted data not the auth */ 922 err = decrypt_skb(sk, sg); 923 if (err != -EBADMSG) 924 goto free_buf; 925 else 926 err = 0; 927 928 data_len = rxm->full_len - cipher_desc->tag; 929 930 if (skb_pagelen(skb) > offset) { 931 copy = min_t(int, skb_pagelen(skb) - offset, data_len); 932 933 if (skb->decrypted) { 934 err = skb_store_bits(skb, offset, buf, copy); 935 if (err) 936 goto free_buf; 937 } 938 939 offset += copy; 940 buf += copy; 941 } 942 943 pos = skb_pagelen(skb); 944 skb_walk_frags(skb, skb_iter) { 945 int frag_pos; 946 947 /* Practically all frags must belong to msg if reencrypt 948 * is needed with current strparser and coalescing logic, 949 * but strparser may "get optimized", so let's be safe. 950 */ 951 if (pos + skb_iter->len <= offset) 952 goto done_with_frag; 953 if (pos >= data_len + rxm->offset) 954 break; 955 956 frag_pos = offset - pos; 957 copy = min_t(int, skb_iter->len - frag_pos, 958 data_len + rxm->offset - offset); 959 960 if (skb_iter->decrypted) { 961 err = skb_store_bits(skb_iter, frag_pos, buf, copy); 962 if (err) 963 goto free_buf; 964 } 965 966 offset += copy; 967 buf += copy; 968 done_with_frag: 969 pos += skb_iter->len; 970 } 971 972 free_buf: 973 kfree(orig_buf); 974 return err; 975 } 976 977 int tls_device_decrypted(struct sock *sk, struct tls_context *tls_ctx) 978 { 979 struct tls_offload_context_rx *ctx = tls_offload_ctx_rx(tls_ctx); 980 struct tls_sw_context_rx *sw_ctx = tls_sw_ctx_rx(tls_ctx); 981 struct sk_buff *skb = tls_strp_msg(sw_ctx); 982 struct strp_msg *rxm = strp_msg(skb); 983 int is_decrypted, is_encrypted; 984 985 if (!tls_strp_msg_mixed_decrypted(sw_ctx)) { 986 is_decrypted = skb->decrypted; 987 is_encrypted = !is_decrypted; 988 } else { 989 is_decrypted = 0; 990 is_encrypted = 0; 991 } 992 993 trace_tls_device_decrypted(sk, tcp_sk(sk)->copied_seq - rxm->full_len, 994 tls_ctx->rx.rec_seq, rxm->full_len, 995 is_encrypted, is_decrypted); 996 997 if (unlikely(test_bit(TLS_RX_DEV_DEGRADED, &tls_ctx->flags))) { 998 if (likely(is_encrypted || is_decrypted)) 999 return is_decrypted; 1000 1001 /* After tls_device_down disables the offload, the next SKB will 1002 * likely have initial fragments decrypted, and final ones not 1003 * decrypted. We need to reencrypt that single SKB. 1004 */ 1005 return tls_device_reencrypt(sk, tls_ctx); 1006 } 1007 1008 /* Return immediately if the record is either entirely plaintext or 1009 * entirely ciphertext. Otherwise handle reencrypt partially decrypted 1010 * record. 1011 */ 1012 if (is_decrypted) { 1013 ctx->resync_nh_reset = 1; 1014 return is_decrypted; 1015 } 1016 if (is_encrypted) { 1017 tls_device_core_ctrl_rx_resync(tls_ctx, ctx, sk, skb); 1018 return 0; 1019 } 1020 1021 ctx->resync_nh_reset = 1; 1022 return tls_device_reencrypt(sk, tls_ctx); 1023 } 1024 1025 static void tls_device_attach(struct tls_context *ctx, struct sock *sk, 1026 struct net_device *netdev) 1027 { 1028 if (sk->sk_destruct != tls_device_sk_destruct) { 1029 refcount_set(&ctx->refcount, 1); 1030 dev_hold(netdev); 1031 RCU_INIT_POINTER(ctx->netdev, netdev); 1032 spin_lock_irq(&tls_device_lock); 1033 list_add_tail(&ctx->list, &tls_device_list); 1034 spin_unlock_irq(&tls_device_lock); 1035 1036 ctx->sk_destruct = sk->sk_destruct; 1037 smp_store_release(&sk->sk_destruct, tls_device_sk_destruct); 1038 } 1039 } 1040 1041 static struct tls_offload_context_tx *alloc_offload_ctx_tx(struct tls_context *ctx) 1042 { 1043 struct tls_offload_context_tx *offload_ctx; 1044 __be64 rcd_sn; 1045 1046 offload_ctx = kzalloc_obj(*offload_ctx); 1047 if (!offload_ctx) 1048 return NULL; 1049 1050 INIT_WORK(&offload_ctx->destruct_work, tls_device_tx_del_task); 1051 INIT_LIST_HEAD(&offload_ctx->records_list); 1052 spin_lock_init(&offload_ctx->lock); 1053 sg_init_table(offload_ctx->sg_tx_data, 1054 ARRAY_SIZE(offload_ctx->sg_tx_data)); 1055 1056 /* start at rec_seq - 1 to account for the start marker record */ 1057 memcpy(&rcd_sn, ctx->tx.rec_seq, sizeof(rcd_sn)); 1058 offload_ctx->unacked_record_sn = be64_to_cpu(rcd_sn) - 1; 1059 1060 offload_ctx->ctx = ctx; 1061 1062 return offload_ctx; 1063 } 1064 1065 int tls_set_device_offload(struct sock *sk) 1066 { 1067 struct tls_record_info *start_marker_record; 1068 struct tls_offload_context_tx *offload_ctx; 1069 const struct tls_cipher_desc *cipher_desc; 1070 struct tls_crypto_info *crypto_info; 1071 struct tls_prot_info *prot; 1072 struct net_device *netdev; 1073 struct tls_context *ctx; 1074 char *iv, *rec_seq; 1075 int rc; 1076 1077 ctx = tls_get_ctx(sk); 1078 prot = &ctx->prot_info; 1079 1080 if (ctx->priv_ctx_tx) 1081 return -EEXIST; 1082 1083 netdev = get_netdev_for_sock(sk); 1084 if (!netdev) { 1085 pr_err_ratelimited("%s: netdev not found\n", __func__); 1086 return -EINVAL; 1087 } 1088 1089 if (!(netdev->features & NETIF_F_HW_TLS_TX)) { 1090 rc = -EOPNOTSUPP; 1091 goto release_netdev; 1092 } 1093 1094 crypto_info = &ctx->crypto_send.info; 1095 if (crypto_info->version != TLS_1_2_VERSION) { 1096 rc = -EOPNOTSUPP; 1097 goto release_netdev; 1098 } 1099 1100 cipher_desc = get_cipher_desc(crypto_info->cipher_type); 1101 if (!cipher_desc || !cipher_desc->offloadable) { 1102 rc = -EINVAL; 1103 goto release_netdev; 1104 } 1105 1106 rc = init_prot_info(prot, crypto_info, cipher_desc); 1107 if (rc) 1108 goto release_netdev; 1109 1110 iv = crypto_info_iv(crypto_info, cipher_desc); 1111 rec_seq = crypto_info_rec_seq(crypto_info, cipher_desc); 1112 1113 memcpy(ctx->tx.iv + cipher_desc->salt, iv, cipher_desc->iv); 1114 memcpy(ctx->tx.rec_seq, rec_seq, cipher_desc->rec_seq); 1115 1116 start_marker_record = kmalloc_obj(*start_marker_record); 1117 if (!start_marker_record) { 1118 rc = -ENOMEM; 1119 goto release_netdev; 1120 } 1121 1122 offload_ctx = alloc_offload_ctx_tx(ctx); 1123 if (!offload_ctx) { 1124 rc = -ENOMEM; 1125 goto free_marker_record; 1126 } 1127 1128 rc = tls_sw_fallback_init(sk, offload_ctx, crypto_info); 1129 if (rc) 1130 goto free_offload_ctx; 1131 1132 start_marker_record->end_seq = tcp_sk(sk)->write_seq; 1133 start_marker_record->len = 0; 1134 start_marker_record->num_frags = 0; 1135 list_add_tail(&start_marker_record->list, &offload_ctx->records_list); 1136 1137 clean_acked_data_enable(tcp_sk(sk), &tls_tcp_clean_acked); 1138 ctx->push_pending_record = tls_device_push_pending_record; 1139 1140 /* TLS offload is greatly simplified if we don't send 1141 * SKBs where only part of the payload needs to be encrypted. 1142 * So mark the last skb in the write queue as end of record. 1143 */ 1144 tcp_write_collapse_fence(sk); 1145 1146 /* Avoid offloading if the device is down 1147 * We don't want to offload new flows after 1148 * the NETDEV_DOWN event 1149 * 1150 * device_offload_lock is taken in tls_devices's NETDEV_DOWN 1151 * handler thus protecting from the device going down before 1152 * ctx was added to tls_device_list. 1153 */ 1154 down_read(&device_offload_lock); 1155 if (!(netdev->flags & IFF_UP)) { 1156 rc = -EINVAL; 1157 goto release_lock; 1158 } 1159 1160 ctx->priv_ctx_tx = offload_ctx; 1161 rc = netdev->tlsdev_ops->tls_dev_add(netdev, sk, TLS_OFFLOAD_CTX_DIR_TX, 1162 &ctx->crypto_send.info, 1163 tcp_sk(sk)->write_seq); 1164 trace_tls_device_offload_set(sk, TLS_OFFLOAD_CTX_DIR_TX, 1165 tcp_sk(sk)->write_seq, rec_seq, rc); 1166 if (rc) 1167 goto release_lock; 1168 1169 tls_device_attach(ctx, sk, netdev); 1170 up_read(&device_offload_lock); 1171 1172 /* following this assignment tls_is_skb_tx_device_offloaded 1173 * will return true and the context might be accessed 1174 * by the netdev's xmit function. 1175 */ 1176 smp_store_release(&sk->sk_validate_xmit_skb, tls_validate_xmit_skb); 1177 dev_put(netdev); 1178 1179 return 0; 1180 1181 release_lock: 1182 up_read(&device_offload_lock); 1183 clean_acked_data_disable(tcp_sk(sk)); 1184 crypto_free_aead(offload_ctx->aead_send); 1185 free_offload_ctx: 1186 kfree(offload_ctx); 1187 ctx->priv_ctx_tx = NULL; 1188 free_marker_record: 1189 kfree(start_marker_record); 1190 release_netdev: 1191 dev_put(netdev); 1192 return rc; 1193 } 1194 1195 int tls_set_device_offload_rx(struct sock *sk, struct tls_context *ctx) 1196 { 1197 struct tls12_crypto_info_aes_gcm_128 *info; 1198 struct tls_offload_context_rx *context; 1199 struct net_device *netdev; 1200 int rc = 0; 1201 1202 if (ctx->crypto_recv.info.version != TLS_1_2_VERSION) 1203 return -EOPNOTSUPP; 1204 1205 netdev = get_netdev_for_sock(sk); 1206 if (!netdev) { 1207 pr_err_ratelimited("%s: netdev not found\n", __func__); 1208 return -EINVAL; 1209 } 1210 1211 if (!(netdev->features & NETIF_F_HW_TLS_RX)) { 1212 rc = -EOPNOTSUPP; 1213 goto release_netdev; 1214 } 1215 1216 /* Avoid offloading if the device is down 1217 * We don't want to offload new flows after 1218 * the NETDEV_DOWN event 1219 * 1220 * device_offload_lock is taken in tls_devices's NETDEV_DOWN 1221 * handler thus protecting from the device going down before 1222 * ctx was added to tls_device_list. 1223 */ 1224 down_read(&device_offload_lock); 1225 if (!(netdev->flags & IFF_UP)) { 1226 rc = -EINVAL; 1227 goto release_lock; 1228 } 1229 1230 context = kzalloc_obj(*context); 1231 if (!context) { 1232 rc = -ENOMEM; 1233 goto release_lock; 1234 } 1235 context->resync_nh_reset = 1; 1236 1237 ctx->priv_ctx_rx = context; 1238 rc = tls_set_sw_offload(sk, 0, NULL); 1239 if (rc) 1240 goto release_ctx; 1241 1242 rc = netdev->tlsdev_ops->tls_dev_add(netdev, sk, TLS_OFFLOAD_CTX_DIR_RX, 1243 &ctx->crypto_recv.info, 1244 tcp_sk(sk)->copied_seq); 1245 info = (void *)&ctx->crypto_recv.info; 1246 trace_tls_device_offload_set(sk, TLS_OFFLOAD_CTX_DIR_RX, 1247 tcp_sk(sk)->copied_seq, info->rec_seq, rc); 1248 if (rc) 1249 goto free_sw_resources; 1250 1251 tls_device_attach(ctx, sk, netdev); 1252 up_read(&device_offload_lock); 1253 1254 dev_put(netdev); 1255 1256 return 0; 1257 1258 free_sw_resources: 1259 up_read(&device_offload_lock); 1260 tls_sw_free_resources_rx(sk); 1261 down_read(&device_offload_lock); 1262 release_ctx: 1263 ctx->priv_ctx_rx = NULL; 1264 release_lock: 1265 up_read(&device_offload_lock); 1266 release_netdev: 1267 dev_put(netdev); 1268 return rc; 1269 } 1270 1271 void tls_device_offload_cleanup_rx(struct sock *sk) 1272 { 1273 struct tls_context *tls_ctx = tls_get_ctx(sk); 1274 struct net_device *netdev; 1275 1276 down_read(&device_offload_lock); 1277 netdev = rcu_dereference_protected(tls_ctx->netdev, 1278 lockdep_is_held(&device_offload_lock)); 1279 if (!netdev) 1280 goto out; 1281 1282 netdev->tlsdev_ops->tls_dev_del(netdev, tls_ctx, 1283 TLS_OFFLOAD_CTX_DIR_RX); 1284 1285 if (tls_ctx->tx_conf != TLS_HW) { 1286 dev_put(netdev); 1287 rcu_assign_pointer(tls_ctx->netdev, NULL); 1288 } else { 1289 set_bit(TLS_RX_DEV_CLOSED, &tls_ctx->flags); 1290 } 1291 out: 1292 up_read(&device_offload_lock); 1293 tls_sw_release_resources_rx(sk); 1294 } 1295 1296 static int tls_device_down(struct net_device *netdev) 1297 { 1298 struct tls_context *ctx, *tmp; 1299 unsigned long flags; 1300 LIST_HEAD(list); 1301 1302 /* Request a write lock to block new offload attempts */ 1303 down_write(&device_offload_lock); 1304 1305 spin_lock_irqsave(&tls_device_lock, flags); 1306 list_for_each_entry_safe(ctx, tmp, &tls_device_list, list) { 1307 struct net_device *ctx_netdev = 1308 rcu_dereference_protected(ctx->netdev, 1309 lockdep_is_held(&device_offload_lock)); 1310 1311 if (ctx_netdev != netdev || 1312 !refcount_inc_not_zero(&ctx->refcount)) 1313 continue; 1314 1315 list_move(&ctx->list, &list); 1316 } 1317 spin_unlock_irqrestore(&tls_device_lock, flags); 1318 1319 list_for_each_entry_safe(ctx, tmp, &list, list) { 1320 /* Stop offloaded TX and switch to the fallback. 1321 * tls_is_skb_tx_device_offloaded will return false. 1322 */ 1323 WRITE_ONCE(ctx->sk->sk_validate_xmit_skb, tls_validate_xmit_skb_sw); 1324 1325 /* Stop the RX and TX resync. 1326 * tls_dev_resync must not be called after tls_dev_del. 1327 */ 1328 rcu_assign_pointer(ctx->netdev, NULL); 1329 1330 /* Start skipping the RX resync logic completely. */ 1331 set_bit(TLS_RX_DEV_DEGRADED, &ctx->flags); 1332 1333 /* Sync with inflight packets. After this point: 1334 * TX: no non-encrypted packets will be passed to the driver. 1335 * RX: resync requests from the driver will be ignored. 1336 */ 1337 synchronize_net(); 1338 1339 /* Release the offload context on the driver side. */ 1340 if (ctx->tx_conf == TLS_HW) 1341 netdev->tlsdev_ops->tls_dev_del(netdev, ctx, 1342 TLS_OFFLOAD_CTX_DIR_TX); 1343 if (ctx->rx_conf == TLS_HW && 1344 !test_bit(TLS_RX_DEV_CLOSED, &ctx->flags)) 1345 netdev->tlsdev_ops->tls_dev_del(netdev, ctx, 1346 TLS_OFFLOAD_CTX_DIR_RX); 1347 1348 dev_put(netdev); 1349 1350 /* Move the context to a separate list for two reasons: 1351 * 1. When the context is deallocated, list_del is called. 1352 * 2. It's no longer an offloaded context, so we don't want to 1353 * run offload-specific code on this context. 1354 */ 1355 spin_lock_irqsave(&tls_device_lock, flags); 1356 list_move_tail(&ctx->list, &tls_device_down_list); 1357 spin_unlock_irqrestore(&tls_device_lock, flags); 1358 1359 /* Device contexts for RX and TX will be freed in on sk_destruct 1360 * by tls_device_free_ctx. rx_conf and tx_conf stay in TLS_HW. 1361 * Now release the ref taken above. 1362 */ 1363 if (refcount_dec_and_test(&ctx->refcount)) { 1364 /* sk_destruct ran after tls_device_down took a ref, and 1365 * it returned early. Complete the destruction here. 1366 */ 1367 list_del(&ctx->list); 1368 tls_device_free_ctx(ctx); 1369 } 1370 } 1371 1372 up_write(&device_offload_lock); 1373 1374 flush_workqueue(destruct_wq); 1375 1376 return NOTIFY_DONE; 1377 } 1378 1379 static int tls_dev_event(struct notifier_block *this, unsigned long event, 1380 void *ptr) 1381 { 1382 struct net_device *dev = netdev_notifier_info_to_dev(ptr); 1383 1384 if (!dev->tlsdev_ops && 1385 !(dev->features & (NETIF_F_HW_TLS_RX | NETIF_F_HW_TLS_TX))) 1386 return NOTIFY_DONE; 1387 1388 switch (event) { 1389 case NETDEV_REGISTER: 1390 case NETDEV_FEAT_CHANGE: 1391 if (netif_is_bond_master(dev)) 1392 return NOTIFY_DONE; 1393 if (!dev->tlsdev_ops || 1394 !dev->tlsdev_ops->tls_dev_add || 1395 !dev->tlsdev_ops->tls_dev_del) 1396 return NOTIFY_BAD; 1397 if ((dev->features & NETIF_F_HW_TLS_RX) && 1398 !dev->tlsdev_ops->tls_dev_resync) 1399 return NOTIFY_BAD; 1400 1401 return NOTIFY_DONE; 1402 case NETDEV_DOWN: 1403 return tls_device_down(dev); 1404 } 1405 return NOTIFY_DONE; 1406 } 1407 1408 static struct notifier_block tls_dev_notifier = { 1409 .notifier_call = tls_dev_event, 1410 }; 1411 1412 int __init tls_device_init(void) 1413 { 1414 int err; 1415 1416 dummy_page = alloc_page(GFP_KERNEL); 1417 if (!dummy_page) 1418 return -ENOMEM; 1419 1420 destruct_wq = alloc_workqueue("ktls_device_destruct", WQ_PERCPU, 0); 1421 if (!destruct_wq) { 1422 err = -ENOMEM; 1423 goto err_free_dummy; 1424 } 1425 1426 err = register_netdevice_notifier(&tls_dev_notifier); 1427 if (err) 1428 goto err_destroy_wq; 1429 1430 return 0; 1431 1432 err_destroy_wq: 1433 destroy_workqueue(destruct_wq); 1434 err_free_dummy: 1435 put_page(dummy_page); 1436 return err; 1437 } 1438 1439 void __exit tls_device_cleanup(void) 1440 { 1441 unregister_netdevice_notifier(&tls_dev_notifier); 1442 destroy_workqueue(destruct_wq); 1443 clean_acked_data_flush(); 1444 put_page(dummy_page); 1445 } 1446