xref: /linux/net/tls/tls_sw.c (revision ff26a0e8377dec07e4a7230db7675bed1b9a6d03)
1 /*
2  * Copyright (c) 2016-2017, Mellanox Technologies. All rights reserved.
3  * Copyright (c) 2016-2017, Dave Watson <davejwatson@fb.com>. All rights reserved.
4  * Copyright (c) 2016-2017, Lance Chao <lancerchao@fb.com>. All rights reserved.
5  * Copyright (c) 2016, Fridolin Pokorny <fridolin.pokorny@gmail.com>. All rights reserved.
6  * Copyright (c) 2016, Nikos Mavrogiannopoulos <nmav@gnutls.org>. All rights reserved.
7  * Copyright (c) 2018, Covalent IO, Inc. http://covalent.io
8  *
9  * This software is available to you under a choice of one of two
10  * licenses.  You may choose to be licensed under the terms of the GNU
11  * General Public License (GPL) Version 2, available from the file
12  * COPYING in the main directory of this source tree, or the
13  * OpenIB.org BSD license below:
14  *
15  *     Redistribution and use in source and binary forms, with or
16  *     without modification, are permitted provided that the following
17  *     conditions are met:
18  *
19  *      - Redistributions of source code must retain the above
20  *        copyright notice, this list of conditions and the following
21  *        disclaimer.
22  *
23  *      - Redistributions in binary form must reproduce the above
24  *        copyright notice, this list of conditions and the following
25  *        disclaimer in the documentation and/or other materials
26  *        provided with the distribution.
27  *
28  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
29  * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
30  * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
31  * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
32  * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
33  * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
34  * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
35  * SOFTWARE.
36  */
37 
38 #include <linux/bug.h>
39 #include <linux/sched/signal.h>
40 #include <linux/module.h>
41 #include <linux/kernel.h>
42 #include <linux/splice.h>
43 #include <crypto/aead.h>
44 
45 #include <net/strparser.h>
46 #include <net/tls.h>
47 #include <trace/events/sock.h>
48 
49 #include "tls.h"
50 
51 struct tls_decrypt_arg {
52 	struct_group(inargs,
53 	bool zc;
54 	bool async;
55 	bool async_done;
56 	u8 tail;
57 	);
58 
59 	struct sk_buff *skb;
60 };
61 
62 struct tls_decrypt_ctx {
63 	struct sock *sk;
64 	u8 iv[TLS_MAX_IV_SIZE];
65 	u8 aad[TLS_MAX_AAD_SIZE];
66 	u8 tail;
67 	bool free_sgout;
68 	struct scatterlist sg[];
69 };
70 
71 noinline void tls_err_abort(struct sock *sk, int err)
72 {
73 	WARN_ON_ONCE(err >= 0);
74 	/* sk->sk_err should contain a positive error code. */
75 	WRITE_ONCE(sk->sk_err, -err);
76 	/* Paired with smp_rmb() in tcp_poll() */
77 	smp_wmb();
78 	sk_error_report(sk);
79 }
80 
81 static int __skb_nsg(struct sk_buff *skb, int offset, int len,
82                      unsigned int recursion_level)
83 {
84         int start = skb_headlen(skb);
85         int i, chunk = start - offset;
86         struct sk_buff *frag_iter;
87         int elt = 0;
88 
89         if (unlikely(recursion_level >= 24))
90                 return -EMSGSIZE;
91 
92         if (chunk > 0) {
93                 if (chunk > len)
94                         chunk = len;
95                 elt++;
96                 len -= chunk;
97                 if (len == 0)
98                         return elt;
99                 offset += chunk;
100         }
101 
102         for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
103                 int end;
104 
105                 WARN_ON(start > offset + len);
106 
107                 end = start + skb_frag_size(&skb_shinfo(skb)->frags[i]);
108                 chunk = end - offset;
109                 if (chunk > 0) {
110                         if (chunk > len)
111                                 chunk = len;
112                         elt++;
113                         len -= chunk;
114                         if (len == 0)
115                                 return elt;
116                         offset += chunk;
117                 }
118                 start = end;
119         }
120 
121         if (unlikely(skb_has_frag_list(skb))) {
122                 skb_walk_frags(skb, frag_iter) {
123                         int end, ret;
124 
125                         WARN_ON(start > offset + len);
126 
127                         end = start + frag_iter->len;
128                         chunk = end - offset;
129                         if (chunk > 0) {
130                                 if (chunk > len)
131                                         chunk = len;
132                                 ret = __skb_nsg(frag_iter, offset - start, chunk,
133                                                 recursion_level + 1);
134                                 if (unlikely(ret < 0))
135                                         return ret;
136                                 elt += ret;
137                                 len -= chunk;
138                                 if (len == 0)
139                                         return elt;
140                                 offset += chunk;
141                         }
142                         start = end;
143                 }
144         }
145         BUG_ON(len);
146         return elt;
147 }
148 
149 /* Return the number of scatterlist elements required to completely map the
150  * skb, or -EMSGSIZE if the recursion depth is exceeded.
151  */
152 static int skb_nsg(struct sk_buff *skb, int offset, int len)
153 {
154         return __skb_nsg(skb, offset, len, 0);
155 }
156 
157 static int tls_padding_length(struct tls_prot_info *prot, struct sk_buff *skb,
158 			      struct tls_decrypt_arg *darg)
159 {
160 	struct strp_msg *rxm = strp_msg(skb);
161 	struct tls_msg *tlm = tls_msg(skb);
162 	int sub = 0;
163 
164 	/* Determine zero-padding length */
165 	if (prot->version == TLS_1_3_VERSION) {
166 		int offset = rxm->full_len - TLS_TAG_SIZE - 1;
167 		char content_type = darg->zc ? darg->tail : 0;
168 		int err;
169 
170 		while (content_type == 0) {
171 			if (offset < prot->prepend_size)
172 				return -EBADMSG;
173 			err = skb_copy_bits(skb, rxm->offset + offset,
174 					    &content_type, 1);
175 			if (err)
176 				return err;
177 			if (content_type)
178 				break;
179 			sub++;
180 			offset--;
181 		}
182 		tlm->control = content_type;
183 	}
184 	return sub;
185 }
186 
187 static void tls_decrypt_done(void *data, int err)
188 {
189 	struct aead_request *aead_req = data;
190 	struct crypto_aead *aead = crypto_aead_reqtfm(aead_req);
191 	struct scatterlist *sgout = aead_req->dst;
192 	struct tls_sw_context_rx *ctx;
193 	struct tls_decrypt_ctx *dctx;
194 	struct tls_context *tls_ctx;
195 	struct scatterlist *sg;
196 	unsigned int pages;
197 	struct sock *sk;
198 	int aead_size;
199 
200 	/* If requests get too backlogged crypto API returns -EBUSY and calls
201 	 * ->complete(-EINPROGRESS) immediately followed by ->complete(0)
202 	 * to make waiting for backlog to flush with crypto_wait_req() easier.
203 	 * First wait converts -EBUSY -> -EINPROGRESS, and the second one
204 	 * -EINPROGRESS -> 0.
205 	 * We have a single struct crypto_async_request per direction, this
206 	 * scheme doesn't help us, so just ignore the first ->complete().
207 	 */
208 	if (err == -EINPROGRESS)
209 		return;
210 
211 	aead_size = sizeof(*aead_req) + crypto_aead_reqsize(aead);
212 	aead_size = ALIGN(aead_size, __alignof__(*dctx));
213 	dctx = (void *)((u8 *)aead_req + aead_size);
214 
215 	sk = dctx->sk;
216 	tls_ctx = tls_get_ctx(sk);
217 	ctx = tls_sw_ctx_rx(tls_ctx);
218 
219 	/* Propagate if there was an err */
220 	if (err) {
221 		if (err == -EBADMSG)
222 			TLS_INC_STATS(sock_net(sk), LINUX_MIB_TLSDECRYPTERROR);
223 		ctx->async_wait.err = err;
224 		tls_err_abort(sk, err);
225 	}
226 
227 	/* Free the destination pages if skb was not decrypted inplace */
228 	if (dctx->free_sgout) {
229 		/* Skip the first S/G entry as it points to AAD */
230 		for_each_sg(sg_next(sgout), sg, UINT_MAX, pages) {
231 			if (!sg)
232 				break;
233 			put_page(sg_page(sg));
234 		}
235 	}
236 
237 	kfree(aead_req);
238 
239 	if (atomic_dec_and_test(&ctx->decrypt_pending))
240 		complete(&ctx->async_wait.completion);
241 }
242 
243 static int tls_decrypt_async_wait(struct tls_sw_context_rx *ctx)
244 {
245 	if (!atomic_dec_and_test(&ctx->decrypt_pending))
246 		crypto_wait_req(-EINPROGRESS, &ctx->async_wait);
247 	atomic_inc(&ctx->decrypt_pending);
248 
249 	__skb_queue_purge(&ctx->async_hold);
250 	return ctx->async_wait.err;
251 }
252 
253 static int tls_do_decryption(struct sock *sk,
254 			     struct scatterlist *sgin,
255 			     struct scatterlist *sgout,
256 			     char *iv_recv,
257 			     size_t data_len,
258 			     struct aead_request *aead_req,
259 			     struct tls_decrypt_arg *darg)
260 {
261 	struct tls_context *tls_ctx = tls_get_ctx(sk);
262 	struct tls_prot_info *prot = &tls_ctx->prot_info;
263 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
264 	int ret;
265 
266 	aead_request_set_tfm(aead_req, ctx->aead_recv);
267 	aead_request_set_ad(aead_req, prot->aad_size);
268 	aead_request_set_crypt(aead_req, sgin, sgout,
269 			       data_len + prot->tag_size,
270 			       (u8 *)iv_recv);
271 
272 	if (darg->async) {
273 		aead_request_set_callback(aead_req,
274 					  CRYPTO_TFM_REQ_MAY_BACKLOG,
275 					  tls_decrypt_done, aead_req);
276 		DEBUG_NET_WARN_ON_ONCE(atomic_read(&ctx->decrypt_pending) < 1);
277 		atomic_inc(&ctx->decrypt_pending);
278 	} else {
279 		DECLARE_CRYPTO_WAIT(wait);
280 
281 		aead_request_set_callback(aead_req,
282 					  CRYPTO_TFM_REQ_MAY_BACKLOG,
283 					  crypto_req_done, &wait);
284 		ret = crypto_aead_decrypt(aead_req);
285 		if (ret == -EINPROGRESS || ret == -EBUSY)
286 			ret = crypto_wait_req(ret, &wait);
287 		return ret;
288 	}
289 
290 	ret = crypto_aead_decrypt(aead_req);
291 	if (ret == -EINPROGRESS)
292 		return 0;
293 
294 	if (ret == -EBUSY) {
295 		ret = tls_decrypt_async_wait(ctx);
296 		darg->async_done = true;
297 		/* all completions have run, we're not doing async anymore */
298 		darg->async = false;
299 		return ret;
300 	}
301 
302 	atomic_dec(&ctx->decrypt_pending);
303 	darg->async = false;
304 
305 	return ret;
306 }
307 
308 static void tls_trim_both_msgs(struct sock *sk, int target_size)
309 {
310 	struct tls_context *tls_ctx = tls_get_ctx(sk);
311 	struct tls_prot_info *prot = &tls_ctx->prot_info;
312 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
313 	struct tls_rec *rec = ctx->open_rec;
314 
315 	sk_msg_trim(sk, &rec->msg_plaintext, target_size);
316 	if (target_size > 0)
317 		target_size += prot->overhead_size;
318 	sk_msg_trim(sk, &rec->msg_encrypted, target_size);
319 }
320 
321 static int tls_alloc_encrypted_msg(struct sock *sk, int len)
322 {
323 	struct tls_context *tls_ctx = tls_get_ctx(sk);
324 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
325 	struct tls_rec *rec = ctx->open_rec;
326 	struct sk_msg *msg_en = &rec->msg_encrypted;
327 
328 	return sk_msg_alloc(sk, msg_en, len, 0);
329 }
330 
331 static int tls_clone_plaintext_msg(struct sock *sk, int required)
332 {
333 	struct tls_context *tls_ctx = tls_get_ctx(sk);
334 	struct tls_prot_info *prot = &tls_ctx->prot_info;
335 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
336 	struct tls_rec *rec = ctx->open_rec;
337 	struct sk_msg *msg_pl = &rec->msg_plaintext;
338 	struct sk_msg *msg_en = &rec->msg_encrypted;
339 	int skip, len;
340 
341 	/* We add page references worth len bytes from encrypted sg
342 	 * at the end of plaintext sg. It is guaranteed that msg_en
343 	 * has enough required room (ensured by caller).
344 	 */
345 	len = required - msg_pl->sg.size;
346 
347 	/* Skip initial bytes in msg_en's data to be able to use
348 	 * same offset of both plain and encrypted data.
349 	 */
350 	skip = prot->prepend_size + msg_pl->sg.size;
351 
352 	return sk_msg_clone(sk, msg_pl, msg_en, skip, len);
353 }
354 
355 static struct tls_rec *tls_get_rec(struct sock *sk)
356 {
357 	struct tls_context *tls_ctx = tls_get_ctx(sk);
358 	struct tls_prot_info *prot = &tls_ctx->prot_info;
359 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
360 	struct sk_msg *msg_pl, *msg_en;
361 	struct tls_rec *rec;
362 	int mem_size;
363 
364 	mem_size = sizeof(struct tls_rec) + crypto_aead_reqsize(ctx->aead_send);
365 
366 	rec = kzalloc(mem_size, sk->sk_allocation);
367 	if (!rec)
368 		return NULL;
369 
370 	msg_pl = &rec->msg_plaintext;
371 	msg_en = &rec->msg_encrypted;
372 
373 	sk_msg_init(msg_pl);
374 	sk_msg_init(msg_en);
375 
376 	sg_init_table(rec->sg_aead_in, 2);
377 	sg_set_buf(&rec->sg_aead_in[0], rec->aad_space, prot->aad_size);
378 	sg_unmark_end(&rec->sg_aead_in[1]);
379 
380 	sg_init_table(rec->sg_aead_out, 2);
381 	sg_set_buf(&rec->sg_aead_out[0], rec->aad_space, prot->aad_size);
382 	sg_unmark_end(&rec->sg_aead_out[1]);
383 
384 	rec->sk = sk;
385 
386 	return rec;
387 }
388 
389 static void tls_free_rec(struct sock *sk, struct tls_rec *rec)
390 {
391 	sk_msg_free(sk, &rec->msg_encrypted);
392 	sk_msg_free(sk, &rec->msg_plaintext);
393 	kfree(rec);
394 }
395 
396 static void tls_free_open_rec(struct sock *sk)
397 {
398 	struct tls_context *tls_ctx = tls_get_ctx(sk);
399 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
400 	struct tls_rec *rec = ctx->open_rec;
401 
402 	if (rec) {
403 		tls_free_rec(sk, rec);
404 		ctx->open_rec = NULL;
405 	}
406 }
407 
408 int tls_tx_records(struct sock *sk, int flags)
409 {
410 	struct tls_context *tls_ctx = tls_get_ctx(sk);
411 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
412 	struct tls_rec *rec, *tmp;
413 	struct sk_msg *msg_en;
414 	int tx_flags, rc = 0;
415 
416 	if (tls_is_partially_sent_record(tls_ctx)) {
417 		rec = list_first_entry(&ctx->tx_list,
418 				       struct tls_rec, list);
419 
420 		if (flags == -1)
421 			tx_flags = rec->tx_flags;
422 		else
423 			tx_flags = flags;
424 
425 		rc = tls_push_partial_record(sk, tls_ctx, tx_flags);
426 		if (rc)
427 			goto tx_err;
428 
429 		/* Full record has been transmitted.
430 		 * Remove the head of tx_list
431 		 */
432 		list_del(&rec->list);
433 		sk_msg_free(sk, &rec->msg_plaintext);
434 		kfree(rec);
435 	}
436 
437 	/* Tx all ready records */
438 	list_for_each_entry_safe(rec, tmp, &ctx->tx_list, list) {
439 		if (READ_ONCE(rec->tx_ready)) {
440 			if (flags == -1)
441 				tx_flags = rec->tx_flags;
442 			else
443 				tx_flags = flags;
444 
445 			msg_en = &rec->msg_encrypted;
446 			rc = tls_push_sg(sk, tls_ctx,
447 					 &msg_en->sg.data[msg_en->sg.curr],
448 					 0, tx_flags);
449 			if (rc)
450 				goto tx_err;
451 
452 			list_del(&rec->list);
453 			sk_msg_free(sk, &rec->msg_plaintext);
454 			kfree(rec);
455 		} else {
456 			break;
457 		}
458 	}
459 
460 tx_err:
461 	if (rc < 0 && rc != -EAGAIN)
462 		tls_err_abort(sk, rc);
463 
464 	return rc;
465 }
466 
467 static void tls_encrypt_done(void *data, int err)
468 {
469 	struct tls_sw_context_tx *ctx;
470 	struct tls_context *tls_ctx;
471 	struct tls_prot_info *prot;
472 	struct tls_rec *rec = data;
473 	struct scatterlist *sge;
474 	struct sk_msg *msg_en;
475 	struct sock *sk;
476 
477 	if (err == -EINPROGRESS) /* see the comment in tls_decrypt_done() */
478 		return;
479 
480 	msg_en = &rec->msg_encrypted;
481 
482 	sk = rec->sk;
483 	tls_ctx = tls_get_ctx(sk);
484 	prot = &tls_ctx->prot_info;
485 	ctx = tls_sw_ctx_tx(tls_ctx);
486 
487 	sge = sk_msg_elem(msg_en, msg_en->sg.curr);
488 	sge->offset -= prot->prepend_size;
489 	sge->length += prot->prepend_size;
490 
491 	/* Check if error is previously set on socket */
492 	if (err || sk->sk_err) {
493 		rec = NULL;
494 
495 		/* If err is already set on socket, return the same code */
496 		if (sk->sk_err) {
497 			ctx->async_wait.err = -sk->sk_err;
498 		} else {
499 			ctx->async_wait.err = err;
500 			tls_err_abort(sk, err);
501 		}
502 	}
503 
504 	if (rec) {
505 		struct tls_rec *first_rec;
506 
507 		/* Mark the record as ready for transmission */
508 		smp_store_mb(rec->tx_ready, true);
509 
510 		/* If received record is at head of tx_list, schedule tx */
511 		first_rec = list_first_entry(&ctx->tx_list,
512 					     struct tls_rec, list);
513 		if (rec == first_rec) {
514 			/* Schedule the transmission */
515 			if (!test_and_set_bit(BIT_TX_SCHEDULED,
516 					      &ctx->tx_bitmask))
517 				schedule_delayed_work(&ctx->tx_work.work, 1);
518 		}
519 	}
520 
521 	if (atomic_dec_and_test(&ctx->encrypt_pending))
522 		complete(&ctx->async_wait.completion);
523 }
524 
525 static int tls_encrypt_async_wait(struct tls_sw_context_tx *ctx)
526 {
527 	if (!atomic_dec_and_test(&ctx->encrypt_pending))
528 		crypto_wait_req(-EINPROGRESS, &ctx->async_wait);
529 	atomic_inc(&ctx->encrypt_pending);
530 
531 	return ctx->async_wait.err;
532 }
533 
534 static int tls_do_encryption(struct sock *sk,
535 			     struct tls_context *tls_ctx,
536 			     struct tls_sw_context_tx *ctx,
537 			     struct aead_request *aead_req,
538 			     size_t data_len, u32 start)
539 {
540 	struct tls_prot_info *prot = &tls_ctx->prot_info;
541 	struct tls_rec *rec = ctx->open_rec;
542 	struct sk_msg *msg_en = &rec->msg_encrypted;
543 	struct scatterlist *sge = sk_msg_elem(msg_en, start);
544 	int rc, iv_offset = 0;
545 
546 	/* For CCM based ciphers, first byte of IV is a constant */
547 	switch (prot->cipher_type) {
548 	case TLS_CIPHER_AES_CCM_128:
549 		rec->iv_data[0] = TLS_AES_CCM_IV_B0_BYTE;
550 		iv_offset = 1;
551 		break;
552 	case TLS_CIPHER_SM4_CCM:
553 		rec->iv_data[0] = TLS_SM4_CCM_IV_B0_BYTE;
554 		iv_offset = 1;
555 		break;
556 	}
557 
558 	memcpy(&rec->iv_data[iv_offset], tls_ctx->tx.iv,
559 	       prot->iv_size + prot->salt_size);
560 
561 	tls_xor_iv_with_seq(prot, rec->iv_data + iv_offset,
562 			    tls_ctx->tx.rec_seq);
563 
564 	sge->offset += prot->prepend_size;
565 	sge->length -= prot->prepend_size;
566 
567 	msg_en->sg.curr = start;
568 
569 	aead_request_set_tfm(aead_req, ctx->aead_send);
570 	aead_request_set_ad(aead_req, prot->aad_size);
571 	aead_request_set_crypt(aead_req, rec->sg_aead_in,
572 			       rec->sg_aead_out,
573 			       data_len, rec->iv_data);
574 
575 	aead_request_set_callback(aead_req, CRYPTO_TFM_REQ_MAY_BACKLOG,
576 				  tls_encrypt_done, rec);
577 
578 	/* Add the record in tx_list */
579 	list_add_tail((struct list_head *)&rec->list, &ctx->tx_list);
580 	DEBUG_NET_WARN_ON_ONCE(atomic_read(&ctx->encrypt_pending) < 1);
581 	atomic_inc(&ctx->encrypt_pending);
582 
583 	rc = crypto_aead_encrypt(aead_req);
584 	if (rc == -EBUSY) {
585 		rc = tls_encrypt_async_wait(ctx);
586 		rc = rc ?: -EINPROGRESS;
587 		/*
588 		 * The async callback tls_encrypt_done() has already
589 		 * decremented encrypt_pending and restored the sge on
590 		 * both success and error. Skip the synchronous cleanup
591 		 * below on error, just remove the record and return.
592 		 */
593 		if (rc != -EINPROGRESS) {
594 			list_del(&rec->list);
595 			return rc;
596 		}
597 	}
598 	if (!rc || rc != -EINPROGRESS) {
599 		atomic_dec(&ctx->encrypt_pending);
600 		sge->offset -= prot->prepend_size;
601 		sge->length += prot->prepend_size;
602 	}
603 
604 	if (!rc) {
605 		WRITE_ONCE(rec->tx_ready, true);
606 	} else if (rc != -EINPROGRESS) {
607 		list_del(&rec->list);
608 		return rc;
609 	}
610 
611 	/* Unhook the record from context if encryption is not failure */
612 	ctx->open_rec = NULL;
613 	tls_advance_record_sn(sk, prot, &tls_ctx->tx);
614 	return rc;
615 }
616 
617 static int tls_split_open_record(struct sock *sk, struct tls_rec *from,
618 				 struct tls_rec **to, struct sk_msg *msg_opl,
619 				 struct sk_msg *msg_oen, u32 split_point,
620 				 u32 tx_overhead_size, u32 *orig_end)
621 {
622 	u32 i, j, bytes = 0, apply = msg_opl->apply_bytes;
623 	struct scatterlist *sge, *osge, *nsge;
624 	u32 orig_size = msg_opl->sg.size;
625 	struct scatterlist tmp = { };
626 	struct sk_msg *msg_npl;
627 	struct tls_rec *new;
628 	int ret;
629 
630 	new = tls_get_rec(sk);
631 	if (!new)
632 		return -ENOMEM;
633 	ret = sk_msg_alloc(sk, &new->msg_encrypted, msg_opl->sg.size +
634 			   tx_overhead_size, 0);
635 	if (ret < 0) {
636 		tls_free_rec(sk, new);
637 		return ret;
638 	}
639 
640 	*orig_end = msg_opl->sg.end;
641 	i = msg_opl->sg.start;
642 	sge = sk_msg_elem(msg_opl, i);
643 	while (apply && sge->length) {
644 		if (sge->length > apply) {
645 			u32 len = sge->length - apply;
646 
647 			get_page(sg_page(sge));
648 			sg_set_page(&tmp, sg_page(sge), len,
649 				    sge->offset + apply);
650 			sge->length = apply;
651 			bytes += apply;
652 			apply = 0;
653 		} else {
654 			apply -= sge->length;
655 			bytes += sge->length;
656 		}
657 
658 		sk_msg_iter_var_next(i);
659 		if (i == msg_opl->sg.end)
660 			break;
661 		sge = sk_msg_elem(msg_opl, i);
662 	}
663 
664 	msg_opl->sg.end = i;
665 	msg_opl->sg.curr = i;
666 	msg_opl->sg.copybreak = 0;
667 	msg_opl->apply_bytes = 0;
668 	msg_opl->sg.size = bytes;
669 
670 	msg_npl = &new->msg_plaintext;
671 	msg_npl->apply_bytes = apply;
672 	msg_npl->sg.size = orig_size - bytes;
673 
674 	j = msg_npl->sg.start;
675 	nsge = sk_msg_elem(msg_npl, j);
676 	if (tmp.length) {
677 		memcpy(nsge, &tmp, sizeof(*nsge));
678 		sk_msg_iter_var_next(j);
679 		nsge = sk_msg_elem(msg_npl, j);
680 	}
681 
682 	osge = sk_msg_elem(msg_opl, i);
683 	while (osge->length) {
684 		memcpy(nsge, osge, sizeof(*nsge));
685 		sg_unmark_end(nsge);
686 		sk_msg_iter_var_next(i);
687 		sk_msg_iter_var_next(j);
688 		if (i == *orig_end)
689 			break;
690 		osge = sk_msg_elem(msg_opl, i);
691 		nsge = sk_msg_elem(msg_npl, j);
692 	}
693 
694 	msg_npl->sg.end = j;
695 	msg_npl->sg.curr = j;
696 	msg_npl->sg.copybreak = 0;
697 
698 	*to = new;
699 	return 0;
700 }
701 
702 static void tls_merge_open_record(struct sock *sk, struct tls_rec *to,
703 				  struct tls_rec *from, u32 orig_end)
704 {
705 	struct sk_msg *msg_npl = &from->msg_plaintext;
706 	struct sk_msg *msg_opl = &to->msg_plaintext;
707 	struct scatterlist *osge, *nsge;
708 	u32 i, j;
709 
710 	i = msg_opl->sg.end;
711 	sk_msg_iter_var_prev(i);
712 	j = msg_npl->sg.start;
713 
714 	osge = sk_msg_elem(msg_opl, i);
715 	nsge = sk_msg_elem(msg_npl, j);
716 
717 	if (sg_page(osge) == sg_page(nsge) &&
718 	    osge->offset + osge->length == nsge->offset) {
719 		osge->length += nsge->length;
720 		put_page(sg_page(nsge));
721 	}
722 
723 	msg_opl->sg.end = orig_end;
724 	msg_opl->sg.curr = orig_end;
725 	msg_opl->sg.copybreak = 0;
726 	msg_opl->apply_bytes = msg_opl->sg.size + msg_npl->sg.size;
727 	msg_opl->sg.size += msg_npl->sg.size;
728 
729 	sk_msg_free(sk, &to->msg_encrypted);
730 	sk_msg_xfer_full(&to->msg_encrypted, &from->msg_encrypted);
731 
732 	kfree(from);
733 }
734 
735 static int tls_push_record(struct sock *sk, int flags,
736 			   unsigned char record_type)
737 {
738 	struct tls_context *tls_ctx = tls_get_ctx(sk);
739 	struct tls_prot_info *prot = &tls_ctx->prot_info;
740 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
741 	struct tls_rec *rec = ctx->open_rec, *tmp = NULL;
742 	u32 i, split_point, orig_end;
743 	struct sk_msg *msg_pl, *msg_en;
744 	struct aead_request *req;
745 	bool split;
746 	int rc;
747 
748 	if (!rec)
749 		return 0;
750 
751 	msg_pl = &rec->msg_plaintext;
752 	msg_en = &rec->msg_encrypted;
753 
754 	split_point = msg_pl->apply_bytes;
755 	split = split_point && split_point < msg_pl->sg.size;
756 	if (unlikely((!split &&
757 		      msg_pl->sg.size +
758 		      prot->overhead_size > msg_en->sg.size) ||
759 		     (split &&
760 		      split_point +
761 		      prot->overhead_size > msg_en->sg.size))) {
762 		split = true;
763 		split_point = msg_en->sg.size;
764 	}
765 	if (split) {
766 		rc = tls_split_open_record(sk, rec, &tmp, msg_pl, msg_en,
767 					   split_point, prot->overhead_size,
768 					   &orig_end);
769 		if (rc < 0)
770 			return rc;
771 		/* This can happen if above tls_split_open_record allocates
772 		 * a single large encryption buffer instead of two smaller
773 		 * ones. In this case adjust pointers and continue without
774 		 * split.
775 		 */
776 		if (!msg_pl->sg.size) {
777 			tls_merge_open_record(sk, rec, tmp, orig_end);
778 			msg_pl = &rec->msg_plaintext;
779 			msg_en = &rec->msg_encrypted;
780 			split = false;
781 		}
782 		sk_msg_trim(sk, msg_en, msg_pl->sg.size +
783 			    prot->overhead_size);
784 	}
785 
786 	rec->tx_flags = flags;
787 	req = &rec->aead_req;
788 
789 	i = msg_pl->sg.end;
790 	sk_msg_iter_var_prev(i);
791 
792 	/* msg_pl->sg.data is a ring; data[MAX+1] is reserved for the wrap
793 	 * link (frags won't use it). 'i' is now the last filled entry:
794 	 *
795 	 *         i   end              start
796 	 *         v    v                 v            [ rsv ]
797 	 *  [ d ][ d ][   ][   ]...[   ][ d ][ d ][ d ][chain]
798 	 *    ^   END                                     v
799 	 *     `-----------------------------------------'
800 	 *
801 	 * Note that SGL does not allow chain-after-chain, so for TLS 1.3,
802 	 * we must make sure we don't create the wrap entry and then chain
803 	 * link to content_type immediately at index 0.
804 	 */
805 	if (i < msg_pl->sg.start)
806 		sg_chain(msg_pl->sg.data, ARRAY_SIZE(msg_pl->sg.data),
807 			 msg_pl->sg.data);
808 
809 	rec->content_type = record_type;
810 	if (prot->version == TLS_1_3_VERSION) {
811 		/* Add content type to end of message.  No padding added */
812 		sg_set_buf(&rec->sg_content_type, &rec->content_type, 1);
813 		sg_mark_end(&rec->sg_content_type);
814 		sg_chain(msg_pl->sg.data, i + 2, &rec->sg_content_type);
815 	} else {
816 		sg_mark_end(sk_msg_elem(msg_pl, i));
817 	}
818 
819 	i = msg_pl->sg.start;
820 	sg_chain(rec->sg_aead_in, 2, &msg_pl->sg.data[i]);
821 
822 	i = msg_en->sg.end;
823 	sk_msg_iter_var_prev(i);
824 	sg_mark_end(sk_msg_elem(msg_en, i));
825 
826 	i = msg_en->sg.start;
827 	sg_chain(rec->sg_aead_out, 2, &msg_en->sg.data[i]);
828 
829 	tls_make_aad(rec->aad_space, msg_pl->sg.size + prot->tail_size,
830 		     tls_ctx->tx.rec_seq, record_type, prot);
831 
832 	tls_fill_prepend(tls_ctx,
833 			 page_address(sg_page(&msg_en->sg.data[i])) +
834 			 msg_en->sg.data[i].offset,
835 			 msg_pl->sg.size + prot->tail_size,
836 			 record_type);
837 
838 	tls_ctx->pending_open_record_frags = false;
839 
840 	rc = tls_do_encryption(sk, tls_ctx, ctx, req,
841 			       msg_pl->sg.size + prot->tail_size, i);
842 	if (rc < 0) {
843 		if (rc != -EINPROGRESS) {
844 			tls_err_abort(sk, -EBADMSG);
845 			if (split) {
846 				tls_ctx->pending_open_record_frags = true;
847 				tls_merge_open_record(sk, rec, tmp, orig_end);
848 			}
849 		}
850 		ctx->async_capable = 1;
851 		return rc;
852 	} else if (split) {
853 		msg_pl = &tmp->msg_plaintext;
854 		msg_en = &tmp->msg_encrypted;
855 		sk_msg_trim(sk, msg_en, msg_pl->sg.size + prot->overhead_size);
856 		tls_ctx->pending_open_record_frags = true;
857 		ctx->open_rec = tmp;
858 	}
859 
860 	return tls_tx_records(sk, flags);
861 }
862 
863 static int bpf_exec_tx_verdict(struct sk_msg *msg, struct sock *sk,
864 			       bool full_record, u8 record_type,
865 			       ssize_t *copied, int flags)
866 {
867 	struct tls_context *tls_ctx = tls_get_ctx(sk);
868 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
869 	struct sk_msg msg_redir = { };
870 	struct sk_psock *psock;
871 	struct sock *sk_redir;
872 	struct tls_rec *rec;
873 	bool enospc, policy, redir_ingress;
874 	int err = 0, send;
875 	u32 delta = 0;
876 
877 	policy = !(flags & MSG_SENDPAGE_NOPOLICY);
878 	psock = sk_psock_get(sk);
879 	if (!psock || !policy) {
880 		err = tls_push_record(sk, flags, record_type);
881 		if (err && err != -EINPROGRESS && sk->sk_err == EBADMSG) {
882 			*copied -= sk_msg_free(sk, msg);
883 			tls_free_open_rec(sk);
884 			err = -sk->sk_err;
885 		}
886 		if (psock)
887 			sk_psock_put(sk, psock);
888 		return err;
889 	}
890 more_data:
891 	enospc = sk_msg_full(msg);
892 	if (psock->eval == __SK_NONE) {
893 		delta = msg->sg.size;
894 		psock->eval = sk_psock_msg_verdict(sk, psock, msg);
895 		delta -= msg->sg.size;
896 
897 		if ((s32)delta > 0) {
898 			/* It indicates that we executed bpf_msg_pop_data(),
899 			 * causing the plaintext data size to decrease.
900 			 * Therefore the encrypted data size also needs to
901 			 * correspondingly decrease. We only need to subtract
902 			 * delta to calculate the new ciphertext length since
903 			 * ktls does not support block encryption.
904 			 */
905 			struct sk_msg *enc = &ctx->open_rec->msg_encrypted;
906 
907 			sk_msg_trim(sk, enc, enc->sg.size - delta);
908 		}
909 	}
910 	if (msg->cork_bytes && msg->cork_bytes > msg->sg.size &&
911 	    !enospc && !full_record) {
912 		err = -ENOSPC;
913 		goto out_err;
914 	}
915 	msg->cork_bytes = 0;
916 	send = msg->sg.size;
917 	if (msg->apply_bytes && msg->apply_bytes < send)
918 		send = msg->apply_bytes;
919 
920 	switch (psock->eval) {
921 	case __SK_PASS:
922 		err = tls_push_record(sk, flags, record_type);
923 		if (err && err != -EINPROGRESS && sk->sk_err == EBADMSG) {
924 			*copied -= sk_msg_free(sk, msg);
925 			tls_free_open_rec(sk);
926 			err = -sk->sk_err;
927 			goto out_err;
928 		}
929 		break;
930 	case __SK_REDIRECT:
931 		redir_ingress = psock->redir_ingress;
932 		sk_redir = psock->sk_redir;
933 		memcpy(&msg_redir, msg, sizeof(*msg));
934 		if (msg->apply_bytes < send)
935 			msg->apply_bytes = 0;
936 		else
937 			msg->apply_bytes -= send;
938 		sk_msg_return_zero(sk, msg, send);
939 		msg->sg.size -= send;
940 		release_sock(sk);
941 		err = tcp_bpf_sendmsg_redir(sk_redir, redir_ingress,
942 					    &msg_redir, send, flags);
943 		lock_sock(sk);
944 		if (err < 0) {
945 			/* Regardless of whether the data represented by
946 			 * msg_redir is sent successfully, we have already
947 			 * uncharged it via sk_msg_return_zero(). The
948 			 * msg->sg.size represents the remaining unprocessed
949 			 * data, which needs to be uncharged here.
950 			 */
951 			sk_mem_uncharge(sk, msg->sg.size);
952 			*copied -= sk_msg_free_nocharge(sk, &msg_redir);
953 			msg->sg.size = 0;
954 		}
955 		if (msg->sg.size == 0)
956 			tls_free_open_rec(sk);
957 		break;
958 	case __SK_DROP:
959 	default:
960 		sk_msg_free_partial(sk, msg, send);
961 		if (msg->apply_bytes < send)
962 			msg->apply_bytes = 0;
963 		else
964 			msg->apply_bytes -= send;
965 		if (msg->sg.size == 0)
966 			tls_free_open_rec(sk);
967 		*copied -= (send + delta);
968 		err = -EACCES;
969 	}
970 
971 	if (likely(!err)) {
972 		bool reset_eval = !ctx->open_rec;
973 
974 		rec = ctx->open_rec;
975 		if (rec) {
976 			msg = &rec->msg_plaintext;
977 			if (!msg->apply_bytes)
978 				reset_eval = true;
979 		}
980 		if (reset_eval) {
981 			psock->eval = __SK_NONE;
982 			if (psock->sk_redir) {
983 				sock_put(psock->sk_redir);
984 				psock->sk_redir = NULL;
985 			}
986 		}
987 		if (rec)
988 			goto more_data;
989 	}
990  out_err:
991 	sk_psock_put(sk, psock);
992 	return err;
993 }
994 
995 static int tls_sw_push_pending_record(struct sock *sk, int flags)
996 {
997 	struct tls_context *tls_ctx = tls_get_ctx(sk);
998 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
999 	struct tls_rec *rec = ctx->open_rec;
1000 	struct sk_msg *msg_pl;
1001 	size_t copied;
1002 
1003 	if (!rec)
1004 		return 0;
1005 
1006 	msg_pl = &rec->msg_plaintext;
1007 	copied = msg_pl->sg.size;
1008 	if (!copied)
1009 		return 0;
1010 
1011 	return bpf_exec_tx_verdict(msg_pl, sk, true, TLS_RECORD_TYPE_DATA,
1012 				   &copied, flags);
1013 }
1014 
1015 static int tls_sw_sendmsg_splice(struct sock *sk, struct msghdr *msg,
1016 				 struct sk_msg *msg_pl, size_t try_to_copy,
1017 				 ssize_t *copied)
1018 {
1019 	struct page *page = NULL, **pages = &page;
1020 
1021 	do {
1022 		ssize_t part;
1023 		size_t off;
1024 
1025 		part = iov_iter_extract_pages(&msg->msg_iter, &pages,
1026 					      try_to_copy, 1, 0, &off);
1027 		if (part <= 0)
1028 			return part ?: -EIO;
1029 
1030 		if (WARN_ON_ONCE(!sendpage_ok(page))) {
1031 			iov_iter_revert(&msg->msg_iter, part);
1032 			return -EIO;
1033 		}
1034 
1035 		sk_msg_page_add(msg_pl, page, part, off);
1036 		msg_pl->sg.copybreak = 0;
1037 		msg_pl->sg.curr = msg_pl->sg.end;
1038 		sk_mem_charge(sk, part);
1039 		*copied += part;
1040 		try_to_copy -= part;
1041 	} while (try_to_copy && !sk_msg_full(msg_pl));
1042 
1043 	return 0;
1044 }
1045 
1046 static int tls_sw_sendmsg_locked(struct sock *sk, struct msghdr *msg,
1047 				 size_t size)
1048 {
1049 	long timeo = sock_sndtimeo(sk, msg->msg_flags & MSG_DONTWAIT);
1050 	struct tls_context *tls_ctx = tls_get_ctx(sk);
1051 	struct tls_prot_info *prot = &tls_ctx->prot_info;
1052 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
1053 	bool async_capable = ctx->async_capable;
1054 	unsigned char record_type = TLS_RECORD_TYPE_DATA;
1055 	bool is_kvec = iov_iter_is_kvec(&msg->msg_iter);
1056 	bool eor = !(msg->msg_flags & MSG_MORE);
1057 	size_t try_to_copy;
1058 	ssize_t copied = 0;
1059 	struct sk_msg *msg_pl, *msg_en;
1060 	struct tls_rec *rec;
1061 	int required_size;
1062 	int num_async = 0;
1063 	bool full_record;
1064 	int record_room;
1065 	int num_zc = 0;
1066 	int orig_size;
1067 	int ret = 0;
1068 
1069 	if (!eor && (msg->msg_flags & MSG_EOR))
1070 		return -EINVAL;
1071 
1072 	if (unlikely(msg->msg_controllen)) {
1073 		ret = tls_process_cmsg(sk, msg, &record_type);
1074 		if (ret) {
1075 			if (ret == -EINPROGRESS)
1076 				num_async++;
1077 			else if (ret != -EAGAIN)
1078 				goto end;
1079 		}
1080 	}
1081 
1082 	while (msg_data_left(msg)) {
1083 		if (sk->sk_err) {
1084 			ret = -sk->sk_err;
1085 			goto send_end;
1086 		}
1087 
1088 		if (ctx->open_rec)
1089 			rec = ctx->open_rec;
1090 		else
1091 			rec = ctx->open_rec = tls_get_rec(sk);
1092 		if (!rec) {
1093 			ret = -ENOMEM;
1094 			goto send_end;
1095 		}
1096 
1097 		msg_pl = &rec->msg_plaintext;
1098 		msg_en = &rec->msg_encrypted;
1099 
1100 		orig_size = msg_pl->sg.size;
1101 		full_record = false;
1102 		try_to_copy = msg_data_left(msg);
1103 		record_room = tls_ctx->tx_max_payload_len - msg_pl->sg.size;
1104 		if (try_to_copy >= record_room) {
1105 			try_to_copy = record_room;
1106 			full_record = true;
1107 		}
1108 
1109 		required_size = msg_pl->sg.size + try_to_copy +
1110 				prot->overhead_size;
1111 
1112 		if (!sk_stream_memory_free(sk))
1113 			goto wait_for_sndbuf;
1114 
1115 alloc_encrypted:
1116 		ret = tls_alloc_encrypted_msg(sk, required_size);
1117 		if (ret) {
1118 			if (ret != -ENOSPC)
1119 				goto wait_for_memory;
1120 
1121 			/* Adjust try_to_copy according to the amount that was
1122 			 * actually allocated. The difference is due
1123 			 * to max sg elements limit
1124 			 */
1125 			try_to_copy -= required_size - msg_en->sg.size;
1126 			full_record = true;
1127 		}
1128 
1129 		if (try_to_copy && (msg->msg_flags & MSG_SPLICE_PAGES)) {
1130 			ret = tls_sw_sendmsg_splice(sk, msg, msg_pl,
1131 						    try_to_copy, &copied);
1132 			if (ret < 0)
1133 				goto send_end;
1134 			tls_ctx->pending_open_record_frags = true;
1135 
1136 			if (sk_msg_full(msg_pl)) {
1137 				full_record = true;
1138 				sk_msg_trim(sk, msg_en,
1139 					    msg_pl->sg.size + prot->overhead_size);
1140 			}
1141 
1142 			if (full_record || eor)
1143 				goto copied;
1144 			continue;
1145 		}
1146 
1147 		if (!is_kvec && (full_record || eor) && !async_capable) {
1148 			u32 first = msg_pl->sg.end;
1149 
1150 			ret = sk_msg_zerocopy_from_iter(sk, &msg->msg_iter,
1151 							msg_pl, try_to_copy);
1152 			if (ret)
1153 				goto fallback_to_reg_send;
1154 
1155 			num_zc++;
1156 			copied += try_to_copy;
1157 
1158 			sk_msg_sg_copy_set(msg_pl, first);
1159 			ret = bpf_exec_tx_verdict(msg_pl, sk, full_record,
1160 						  record_type, &copied,
1161 						  msg->msg_flags);
1162 			if (ret) {
1163 				if (ret == -EINPROGRESS)
1164 					num_async++;
1165 				else if (ret == -ENOMEM)
1166 					goto wait_for_memory;
1167 				else if (ctx->open_rec && ret == -ENOSPC) {
1168 					if (msg_pl->cork_bytes) {
1169 						ret = 0;
1170 						goto send_end;
1171 					}
1172 					goto rollback_iter;
1173 				} else if (ret != -EAGAIN)
1174 					goto send_end;
1175 			}
1176 
1177 			/* Transmit if any encryptions have completed */
1178 			if (test_and_clear_bit(BIT_TX_SCHEDULED, &ctx->tx_bitmask)) {
1179 				cancel_delayed_work(&ctx->tx_work.work);
1180 				tls_tx_records(sk, msg->msg_flags);
1181 			}
1182 
1183 			continue;
1184 rollback_iter:
1185 			copied -= try_to_copy;
1186 			sk_msg_sg_copy_clear(msg_pl, first);
1187 			iov_iter_revert(&msg->msg_iter,
1188 					msg_pl->sg.size - orig_size);
1189 fallback_to_reg_send:
1190 			sk_msg_trim(sk, msg_pl, orig_size);
1191 		}
1192 
1193 		required_size = msg_pl->sg.size + try_to_copy;
1194 
1195 		ret = tls_clone_plaintext_msg(sk, required_size);
1196 		if (ret) {
1197 			if (ret != -ENOSPC)
1198 				goto send_end;
1199 
1200 			/* Adjust try_to_copy according to the amount that was
1201 			 * actually allocated. The difference is due
1202 			 * to max sg elements limit
1203 			 */
1204 			try_to_copy -= required_size - msg_pl->sg.size;
1205 			full_record = true;
1206 			sk_msg_trim(sk, msg_en,
1207 				    msg_pl->sg.size + prot->overhead_size);
1208 		}
1209 
1210 		if (try_to_copy) {
1211 			ret = sk_msg_memcopy_from_iter(sk, &msg->msg_iter,
1212 						       msg_pl, try_to_copy);
1213 			if (ret < 0)
1214 				goto trim_sgl;
1215 		}
1216 
1217 		/* Open records defined only if successfully copied, otherwise
1218 		 * we would trim the sg but not reset the open record frags.
1219 		 */
1220 		tls_ctx->pending_open_record_frags = true;
1221 		copied += try_to_copy;
1222 copied:
1223 		if (full_record || eor) {
1224 			ret = bpf_exec_tx_verdict(msg_pl, sk, full_record,
1225 						  record_type, &copied,
1226 						  msg->msg_flags);
1227 			if (ret) {
1228 				if (ret == -EINPROGRESS)
1229 					num_async++;
1230 				else if (ret == -ENOMEM)
1231 					goto wait_for_memory;
1232 				else if (ret != -EAGAIN) {
1233 					if (ret == -ENOSPC)
1234 						ret = 0;
1235 					goto send_end;
1236 				}
1237 			}
1238 
1239 			/* Transmit if any encryptions have completed */
1240 			if (test_and_clear_bit(BIT_TX_SCHEDULED, &ctx->tx_bitmask)) {
1241 				cancel_delayed_work(&ctx->tx_work.work);
1242 				tls_tx_records(sk, msg->msg_flags);
1243 			}
1244 		}
1245 
1246 		continue;
1247 
1248 wait_for_sndbuf:
1249 		set_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
1250 wait_for_memory:
1251 		ret = sk_stream_wait_memory(sk, &timeo);
1252 		if (ret) {
1253 trim_sgl:
1254 			if (ctx->open_rec)
1255 				tls_trim_both_msgs(sk, orig_size);
1256 			goto send_end;
1257 		}
1258 
1259 		if (ctx->open_rec && msg_en->sg.size < required_size)
1260 			goto alloc_encrypted;
1261 	}
1262 
1263 send_end:
1264 	if (!num_async) {
1265 		goto end;
1266 	} else if (num_zc || eor) {
1267 		int err;
1268 
1269 		/* Wait for pending encryptions to get completed */
1270 		err = tls_encrypt_async_wait(ctx);
1271 		if (err) {
1272 			ret = err;
1273 			copied = 0;
1274 		}
1275 	}
1276 
1277 	/* Transmit if any encryptions have completed */
1278 	if (test_and_clear_bit(BIT_TX_SCHEDULED, &ctx->tx_bitmask)) {
1279 		cancel_delayed_work(&ctx->tx_work.work);
1280 		tls_tx_records(sk, msg->msg_flags);
1281 	}
1282 
1283 end:
1284 	ret = sk_stream_error(sk, msg->msg_flags, ret);
1285 	return copied > 0 ? copied : ret;
1286 }
1287 
1288 int tls_sw_sendmsg(struct sock *sk, struct msghdr *msg, size_t size)
1289 {
1290 	struct tls_context *tls_ctx = tls_get_ctx(sk);
1291 	int ret;
1292 
1293 	if (msg->msg_flags & ~(MSG_MORE | MSG_DONTWAIT | MSG_NOSIGNAL |
1294 			       MSG_CMSG_COMPAT | MSG_SPLICE_PAGES | MSG_EOR |
1295 			       MSG_SENDPAGE_NOPOLICY))
1296 		return -EOPNOTSUPP;
1297 
1298 	ret = mutex_lock_interruptible(&tls_ctx->tx_lock);
1299 	if (ret)
1300 		return ret;
1301 	lock_sock(sk);
1302 	ret = tls_sw_sendmsg_locked(sk, msg, size);
1303 	release_sock(sk);
1304 	mutex_unlock(&tls_ctx->tx_lock);
1305 	return ret;
1306 }
1307 
1308 /*
1309  * Handle unexpected EOF during splice without SPLICE_F_MORE set.
1310  */
1311 void tls_sw_splice_eof(struct socket *sock)
1312 {
1313 	struct sock *sk = sock->sk;
1314 	struct tls_context *tls_ctx = tls_get_ctx(sk);
1315 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
1316 	struct tls_rec *rec;
1317 	struct sk_msg *msg_pl;
1318 	ssize_t copied = 0;
1319 	bool retrying = false;
1320 	int ret = 0;
1321 
1322 	if (!ctx->open_rec)
1323 		return;
1324 
1325 	mutex_lock(&tls_ctx->tx_lock);
1326 	lock_sock(sk);
1327 
1328 retry:
1329 	/* same checks as in tls_sw_push_pending_record() */
1330 	rec = ctx->open_rec;
1331 	if (!rec)
1332 		goto unlock;
1333 
1334 	msg_pl = &rec->msg_plaintext;
1335 	if (msg_pl->sg.size == 0)
1336 		goto unlock;
1337 
1338 	/* Check the BPF advisor and perform transmission. */
1339 	ret = bpf_exec_tx_verdict(msg_pl, sk, false, TLS_RECORD_TYPE_DATA,
1340 				  &copied, 0);
1341 	switch (ret) {
1342 	case 0:
1343 	case -EAGAIN:
1344 		if (retrying)
1345 			goto unlock;
1346 		retrying = true;
1347 		goto retry;
1348 	case -EINPROGRESS:
1349 		break;
1350 	default:
1351 		goto unlock;
1352 	}
1353 
1354 	/* Wait for pending encryptions to get completed */
1355 	if (tls_encrypt_async_wait(ctx))
1356 		goto unlock;
1357 
1358 	/* Transmit if any encryptions have completed */
1359 	if (test_and_clear_bit(BIT_TX_SCHEDULED, &ctx->tx_bitmask)) {
1360 		cancel_delayed_work(&ctx->tx_work.work);
1361 		tls_tx_records(sk, 0);
1362 	}
1363 
1364 unlock:
1365 	release_sock(sk);
1366 	mutex_unlock(&tls_ctx->tx_lock);
1367 }
1368 
1369 static int
1370 tls_rx_rec_wait(struct sock *sk, struct sk_psock *psock, bool nonblock,
1371 		bool released)
1372 {
1373 	struct tls_context *tls_ctx = tls_get_ctx(sk);
1374 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
1375 	DEFINE_WAIT_FUNC(wait, woken_wake_function);
1376 	int ret = 0;
1377 	long timeo;
1378 
1379 	/* a rekey is pending, let userspace deal with it */
1380 	if (unlikely(ctx->key_update_pending))
1381 		return -EKEYEXPIRED;
1382 
1383 	timeo = sock_rcvtimeo(sk, nonblock);
1384 
1385 	while (!tls_strp_msg_ready(ctx)) {
1386 		if (!sk_psock_queue_empty(psock))
1387 			return 0;
1388 
1389 		if (sk->sk_err)
1390 			return sock_error(sk);
1391 
1392 		if (ret < 0)
1393 			return ret;
1394 
1395 		if (!skb_queue_empty(&sk->sk_receive_queue)) {
1396 			tls_strp_check_rcv(&ctx->strp);
1397 			if (tls_strp_msg_ready(ctx))
1398 				break;
1399 		}
1400 
1401 		if (sk->sk_shutdown & RCV_SHUTDOWN)
1402 			return 0;
1403 
1404 		if (sock_flag(sk, SOCK_DONE))
1405 			return 0;
1406 
1407 		if (!timeo)
1408 			return -EAGAIN;
1409 
1410 		released = true;
1411 		add_wait_queue(sk_sleep(sk), &wait);
1412 		sk_set_bit(SOCKWQ_ASYNC_WAITDATA, sk);
1413 		ret = sk_wait_event(sk, &timeo,
1414 				    tls_strp_msg_ready(ctx) ||
1415 				    !sk_psock_queue_empty(psock),
1416 				    &wait);
1417 		sk_clear_bit(SOCKWQ_ASYNC_WAITDATA, sk);
1418 		remove_wait_queue(sk_sleep(sk), &wait);
1419 
1420 		/* Handle signals */
1421 		if (signal_pending(current))
1422 			return sock_intr_errno(timeo);
1423 	}
1424 
1425 	if (unlikely(!tls_strp_msg_load(&ctx->strp, released)))
1426 		return tls_rx_rec_wait(sk, psock, nonblock, false);
1427 
1428 	return 1;
1429 }
1430 
1431 static int tls_setup_from_iter(struct iov_iter *from,
1432 			       int length, int *pages_used,
1433 			       struct scatterlist *to,
1434 			       int to_max_pages)
1435 {
1436 	int rc = 0, i = 0, num_elem = *pages_used, maxpages;
1437 	struct page *pages[MAX_SKB_FRAGS];
1438 	unsigned int size = 0;
1439 	ssize_t copied, use;
1440 	size_t offset;
1441 
1442 	while (length > 0) {
1443 		i = 0;
1444 		maxpages = to_max_pages - num_elem;
1445 		if (maxpages == 0) {
1446 			rc = -EFAULT;
1447 			goto out;
1448 		}
1449 		copied = iov_iter_get_pages2(from, pages,
1450 					    length,
1451 					    maxpages, &offset);
1452 		if (copied <= 0) {
1453 			rc = -EFAULT;
1454 			goto out;
1455 		}
1456 
1457 		length -= copied;
1458 		size += copied;
1459 		while (copied) {
1460 			use = min_t(int, copied, PAGE_SIZE - offset);
1461 
1462 			sg_set_page(&to[num_elem],
1463 				    pages[i], use, offset);
1464 			sg_unmark_end(&to[num_elem]);
1465 			/* We do not uncharge memory from this API */
1466 
1467 			offset = 0;
1468 			copied -= use;
1469 
1470 			i++;
1471 			num_elem++;
1472 		}
1473 	}
1474 	/* Mark the end in the last sg entry if newly added */
1475 	if (num_elem > *pages_used)
1476 		sg_mark_end(&to[num_elem - 1]);
1477 out:
1478 	if (rc)
1479 		iov_iter_revert(from, size);
1480 	*pages_used = num_elem;
1481 
1482 	return rc;
1483 }
1484 
1485 static struct sk_buff *
1486 tls_alloc_clrtxt_skb(struct sock *sk, struct sk_buff *skb,
1487 		     unsigned int full_len)
1488 {
1489 	struct strp_msg *clr_rxm;
1490 	struct sk_buff *clr_skb;
1491 	int err;
1492 
1493 	clr_skb = alloc_skb_with_frags(0, full_len, TLS_PAGE_ORDER,
1494 				       &err, sk->sk_allocation);
1495 	if (!clr_skb)
1496 		return NULL;
1497 
1498 	skb_copy_header(clr_skb, skb);
1499 	clr_skb->len = full_len;
1500 	clr_skb->data_len = full_len;
1501 
1502 	clr_rxm = strp_msg(clr_skb);
1503 	clr_rxm->offset = 0;
1504 
1505 	return clr_skb;
1506 }
1507 
1508 /* Decrypt handlers
1509  *
1510  * tls_decrypt_sw() and tls_decrypt_device() are decrypt handlers.
1511  * They must transform the darg in/out argument are as follows:
1512  *       |          Input            |         Output
1513  * -------------------------------------------------------------------
1514  *    zc | Zero-copy decrypt allowed | Zero-copy performed
1515  * async | Async decrypt allowed     | Async crypto used / in progress
1516  *   skb |            *              | Output skb
1517  *
1518  * If ZC decryption was performed darg.skb will point to the input skb.
1519  */
1520 
1521 /* This function decrypts the input skb into either out_iov or in out_sg
1522  * or in skb buffers itself. The input parameter 'darg->zc' indicates if
1523  * zero-copy mode needs to be tried or not. With zero-copy mode, either
1524  * out_iov or out_sg must be non-NULL. In case both out_iov and out_sg are
1525  * NULL, then the decryption happens inside skb buffers itself, i.e.
1526  * zero-copy gets disabled and 'darg->zc' is updated.
1527  */
1528 static int tls_decrypt_sg(struct sock *sk, struct iov_iter *out_iov,
1529 			  struct scatterlist *out_sg,
1530 			  struct tls_decrypt_arg *darg)
1531 {
1532 	struct tls_context *tls_ctx = tls_get_ctx(sk);
1533 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
1534 	struct tls_prot_info *prot = &tls_ctx->prot_info;
1535 	int n_sgin, n_sgout, aead_size, err, pages = 0;
1536 	struct sk_buff *skb = tls_strp_msg(ctx);
1537 	const struct strp_msg *rxm = strp_msg(skb);
1538 	const struct tls_msg *tlm = tls_msg(skb);
1539 	struct aead_request *aead_req;
1540 	struct scatterlist *sgin = NULL;
1541 	struct scatterlist *sgout = NULL;
1542 	const int data_len = rxm->full_len - prot->overhead_size;
1543 	int tail_pages = !!prot->tail_size;
1544 	struct tls_decrypt_ctx *dctx;
1545 	struct sk_buff *clear_skb;
1546 	int iv_offset = 0;
1547 	u8 *mem;
1548 
1549 	n_sgin = skb_nsg(skb, rxm->offset + prot->prepend_size,
1550 			 rxm->full_len - prot->prepend_size);
1551 	if (n_sgin < 1)
1552 		return n_sgin ?: -EBADMSG;
1553 
1554 	if (darg->zc && (out_iov || out_sg)) {
1555 		clear_skb = NULL;
1556 
1557 		if (out_iov)
1558 			n_sgout = 1 + tail_pages +
1559 				iov_iter_npages_cap(out_iov, INT_MAX, data_len);
1560 		else
1561 			n_sgout = sg_nents(out_sg);
1562 	} else {
1563 		darg->zc = false;
1564 
1565 		clear_skb = tls_alloc_clrtxt_skb(sk, skb, rxm->full_len);
1566 		if (!clear_skb)
1567 			return -ENOMEM;
1568 
1569 		n_sgout = 1 + skb_shinfo(clear_skb)->nr_frags;
1570 	}
1571 
1572 	/* Increment to accommodate AAD */
1573 	n_sgin = n_sgin + 1;
1574 
1575 	/* Allocate a single block of memory which contains
1576 	 *   aead_req || tls_decrypt_ctx.
1577 	 * Both structs are variable length.
1578 	 */
1579 	aead_size = sizeof(*aead_req) + crypto_aead_reqsize(ctx->aead_recv);
1580 	aead_size = ALIGN(aead_size, __alignof__(*dctx));
1581 	mem = kmalloc(aead_size + struct_size(dctx, sg, size_add(n_sgin, n_sgout)),
1582 		      sk->sk_allocation);
1583 	if (!mem) {
1584 		err = -ENOMEM;
1585 		goto exit_free_skb;
1586 	}
1587 
1588 	/* Segment the allocated memory */
1589 	aead_req = (struct aead_request *)mem;
1590 	dctx = (struct tls_decrypt_ctx *)(mem + aead_size);
1591 	dctx->sk = sk;
1592 	sgin = &dctx->sg[0];
1593 	sgout = &dctx->sg[n_sgin];
1594 
1595 	/* For CCM based ciphers, first byte of nonce+iv is a constant */
1596 	switch (prot->cipher_type) {
1597 	case TLS_CIPHER_AES_CCM_128:
1598 		dctx->iv[0] = TLS_AES_CCM_IV_B0_BYTE;
1599 		iv_offset = 1;
1600 		break;
1601 	case TLS_CIPHER_SM4_CCM:
1602 		dctx->iv[0] = TLS_SM4_CCM_IV_B0_BYTE;
1603 		iv_offset = 1;
1604 		break;
1605 	}
1606 
1607 	/* Prepare IV */
1608 	if (prot->version == TLS_1_3_VERSION ||
1609 	    prot->cipher_type == TLS_CIPHER_CHACHA20_POLY1305) {
1610 		memcpy(&dctx->iv[iv_offset], tls_ctx->rx.iv,
1611 		       prot->iv_size + prot->salt_size);
1612 	} else {
1613 		err = skb_copy_bits(skb, rxm->offset + TLS_HEADER_SIZE,
1614 				    &dctx->iv[iv_offset] + prot->salt_size,
1615 				    prot->iv_size);
1616 		if (err < 0)
1617 			goto exit_free;
1618 		memcpy(&dctx->iv[iv_offset], tls_ctx->rx.iv, prot->salt_size);
1619 	}
1620 	tls_xor_iv_with_seq(prot, &dctx->iv[iv_offset], tls_ctx->rx.rec_seq);
1621 
1622 	/* Prepare AAD */
1623 	tls_make_aad(dctx->aad, rxm->full_len - prot->overhead_size +
1624 		     prot->tail_size,
1625 		     tls_ctx->rx.rec_seq, tlm->control, prot);
1626 
1627 	/* Prepare sgin */
1628 	sg_init_table(sgin, n_sgin);
1629 	sg_set_buf(&sgin[0], dctx->aad, prot->aad_size);
1630 	err = skb_to_sgvec(skb, &sgin[1],
1631 			   rxm->offset + prot->prepend_size,
1632 			   rxm->full_len - prot->prepend_size);
1633 	if (err < 0)
1634 		goto exit_free;
1635 
1636 	if (clear_skb) {
1637 		sg_init_table(sgout, n_sgout);
1638 		sg_set_buf(&sgout[0], dctx->aad, prot->aad_size);
1639 
1640 		err = skb_to_sgvec(clear_skb, &sgout[1], prot->prepend_size,
1641 				   data_len + prot->tail_size);
1642 		if (err < 0)
1643 			goto exit_free;
1644 	} else if (out_iov) {
1645 		sg_init_table(sgout, n_sgout);
1646 		sg_set_buf(&sgout[0], dctx->aad, prot->aad_size);
1647 
1648 		err = tls_setup_from_iter(out_iov, data_len, &pages, &sgout[1],
1649 					  (n_sgout - 1 - tail_pages));
1650 		if (err < 0)
1651 			goto exit_free_pages;
1652 
1653 		if (prot->tail_size) {
1654 			sg_unmark_end(&sgout[pages]);
1655 			sg_set_buf(&sgout[pages + 1], &dctx->tail,
1656 				   prot->tail_size);
1657 			sg_mark_end(&sgout[pages + 1]);
1658 		}
1659 	} else if (out_sg) {
1660 		memcpy(sgout, out_sg, n_sgout * sizeof(*sgout));
1661 	}
1662 	dctx->free_sgout = !!pages;
1663 
1664 	/* Prepare and submit AEAD request */
1665 	err = tls_do_decryption(sk, sgin, sgout, dctx->iv,
1666 				data_len + prot->tail_size, aead_req, darg);
1667 	if (err) {
1668 		if (darg->async_done)
1669 			goto exit_free_skb;
1670 		goto exit_free_pages;
1671 	}
1672 
1673 	darg->skb = clear_skb ?: tls_strp_msg(ctx);
1674 	clear_skb = NULL;
1675 
1676 	if (unlikely(darg->async)) {
1677 		err = tls_strp_msg_hold(&ctx->strp, &ctx->async_hold);
1678 		if (err) {
1679 			err = tls_decrypt_async_wait(ctx);
1680 			darg->async = false;
1681 		}
1682 		return err;
1683 	}
1684 
1685 	if (unlikely(darg->async_done))
1686 		return 0;
1687 
1688 	if (prot->tail_size)
1689 		darg->tail = dctx->tail;
1690 
1691 exit_free_pages:
1692 	/* Release the pages in case iov was mapped to pages */
1693 	for (; pages > 0; pages--)
1694 		put_page(sg_page(&sgout[pages]));
1695 exit_free:
1696 	kfree(mem);
1697 exit_free_skb:
1698 	consume_skb(clear_skb);
1699 	return err;
1700 }
1701 
1702 static int
1703 tls_decrypt_sw(struct sock *sk, struct tls_context *tls_ctx,
1704 	       struct msghdr *msg, struct tls_decrypt_arg *darg)
1705 {
1706 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
1707 	struct tls_prot_info *prot = &tls_ctx->prot_info;
1708 	struct strp_msg *rxm;
1709 	int pad, err;
1710 
1711 	err = tls_decrypt_sg(sk, &msg->msg_iter, NULL, darg);
1712 	if (err < 0) {
1713 		if (err == -EBADMSG)
1714 			TLS_INC_STATS(sock_net(sk), LINUX_MIB_TLSDECRYPTERROR);
1715 		return err;
1716 	}
1717 	/* keep going even for ->async, the code below is TLS 1.3 */
1718 
1719 	/* If opportunistic TLS 1.3 ZC failed retry without ZC */
1720 	if (unlikely(darg->zc && prot->version == TLS_1_3_VERSION &&
1721 		     darg->tail != TLS_RECORD_TYPE_DATA)) {
1722 		darg->zc = false;
1723 		if (!darg->tail)
1724 			TLS_INC_STATS(sock_net(sk), LINUX_MIB_TLSRXNOPADVIOL);
1725 		TLS_INC_STATS(sock_net(sk), LINUX_MIB_TLSDECRYPTRETRY);
1726 		return tls_decrypt_sw(sk, tls_ctx, msg, darg);
1727 	}
1728 
1729 	pad = tls_padding_length(prot, darg->skb, darg);
1730 	if (pad < 0) {
1731 		if (darg->skb != tls_strp_msg(ctx))
1732 			consume_skb(darg->skb);
1733 		return pad;
1734 	}
1735 
1736 	rxm = strp_msg(darg->skb);
1737 	rxm->full_len -= pad;
1738 
1739 	return 0;
1740 }
1741 
1742 static int
1743 tls_decrypt_device(struct sock *sk, struct msghdr *msg,
1744 		   struct tls_context *tls_ctx, struct tls_decrypt_arg *darg)
1745 {
1746 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
1747 	struct tls_prot_info *prot = &tls_ctx->prot_info;
1748 	struct strp_msg *rxm;
1749 	int pad, err;
1750 
1751 	if (tls_ctx->rx_conf != TLS_HW)
1752 		return 0;
1753 
1754 	err = tls_device_decrypted(sk, tls_ctx);
1755 	if (err <= 0)
1756 		return err;
1757 
1758 	pad = tls_padding_length(prot, tls_strp_msg(ctx), darg);
1759 	if (pad < 0)
1760 		return pad;
1761 
1762 	darg->async = false;
1763 	darg->skb = tls_strp_msg(ctx);
1764 	/* ->zc downgrade check, in case TLS 1.3 gets here */
1765 	darg->zc &= !(prot->version == TLS_1_3_VERSION &&
1766 		      tls_msg(darg->skb)->control != TLS_RECORD_TYPE_DATA);
1767 
1768 	rxm = strp_msg(darg->skb);
1769 	rxm->full_len -= pad;
1770 
1771 	if (!darg->zc) {
1772 		/* Non-ZC case needs a real skb */
1773 		darg->skb = tls_strp_msg_detach(ctx);
1774 		if (!darg->skb)
1775 			return -ENOMEM;
1776 	} else {
1777 		unsigned int off, len;
1778 
1779 		/* In ZC case nobody cares about the output skb.
1780 		 * Just copy the data here. Note the skb is not fully trimmed.
1781 		 */
1782 		off = rxm->offset + prot->prepend_size;
1783 		len = rxm->full_len - prot->overhead_size;
1784 
1785 		err = skb_copy_datagram_msg(darg->skb, off, msg, len);
1786 		if (err)
1787 			return err;
1788 	}
1789 	return 1;
1790 }
1791 
1792 static int tls_check_pending_rekey(struct sock *sk, struct tls_context *ctx,
1793 				   struct sk_buff *skb)
1794 {
1795 	const struct strp_msg *rxm = strp_msg(skb);
1796 	const struct tls_msg *tlm = tls_msg(skb);
1797 	char hs_type;
1798 	int err;
1799 
1800 	if (likely(tlm->control != TLS_RECORD_TYPE_HANDSHAKE))
1801 		return 0;
1802 
1803 	if (rxm->full_len < 1)
1804 		return 0;
1805 
1806 	err = skb_copy_bits(skb, rxm->offset, &hs_type, 1);
1807 	if (err < 0) {
1808 		DEBUG_NET_WARN_ON_ONCE(1);
1809 		return err;
1810 	}
1811 
1812 	if (hs_type == TLS_HANDSHAKE_KEYUPDATE) {
1813 		struct tls_sw_context_rx *rx_ctx = ctx->priv_ctx_rx;
1814 
1815 		WRITE_ONCE(rx_ctx->key_update_pending, true);
1816 		TLS_INC_STATS(sock_net(sk), LINUX_MIB_TLSRXREKEYRECEIVED);
1817 	}
1818 
1819 	return 0;
1820 }
1821 
1822 static int tls_rx_one_record(struct sock *sk, struct msghdr *msg,
1823 			     struct tls_decrypt_arg *darg)
1824 {
1825 	struct tls_context *tls_ctx = tls_get_ctx(sk);
1826 	struct tls_prot_info *prot = &tls_ctx->prot_info;
1827 	struct strp_msg *rxm;
1828 	int err;
1829 
1830 	err = tls_decrypt_device(sk, msg, tls_ctx, darg);
1831 	if (!err)
1832 		err = tls_decrypt_sw(sk, tls_ctx, msg, darg);
1833 	if (err < 0)
1834 		return err;
1835 
1836 	rxm = strp_msg(darg->skb);
1837 	rxm->offset += prot->prepend_size;
1838 	rxm->full_len -= prot->overhead_size;
1839 	tls_advance_record_sn(sk, prot, &tls_ctx->rx);
1840 
1841 	return tls_check_pending_rekey(sk, tls_ctx, darg->skb);
1842 }
1843 
1844 int decrypt_skb(struct sock *sk, struct scatterlist *sgout)
1845 {
1846 	struct tls_decrypt_arg darg = { .zc = true, };
1847 
1848 	return tls_decrypt_sg(sk, NULL, sgout, &darg);
1849 }
1850 
1851 /* All records returned from a recvmsg() call must have the same type.
1852  * 0 is not a valid content type. Use it as "no type reported, yet".
1853  */
1854 static int tls_record_content_type(struct msghdr *msg, struct tls_msg *tlm,
1855 				   u8 *control)
1856 {
1857 	int err;
1858 
1859 	if (!*control) {
1860 		*control = tlm->control;
1861 		if (!*control)
1862 			return -EBADMSG;
1863 
1864 		err = put_cmsg(msg, SOL_TLS, TLS_GET_RECORD_TYPE,
1865 			       sizeof(*control), control);
1866 		if (*control != TLS_RECORD_TYPE_DATA) {
1867 			if (err || msg->msg_flags & MSG_CTRUNC)
1868 				return -EIO;
1869 		}
1870 	} else if (*control != tlm->control) {
1871 		return 0;
1872 	}
1873 
1874 	return 1;
1875 }
1876 
1877 static void tls_rx_rec_done(struct tls_sw_context_rx *ctx)
1878 {
1879 	tls_strp_msg_done(&ctx->strp);
1880 }
1881 
1882 /* This function traverses the rx_list in tls receive context to copies the
1883  * decrypted records into the buffer provided by caller zero copy is not
1884  * true. Further, the records are removed from the rx_list if it is not a peek
1885  * case and the record has been consumed completely.
1886  */
1887 static int process_rx_list(struct tls_sw_context_rx *ctx,
1888 			   struct msghdr *msg,
1889 			   u8 *control,
1890 			   size_t skip,
1891 			   size_t len,
1892 			   bool is_peek,
1893 			   bool *more)
1894 {
1895 	struct sk_buff *skb = skb_peek(&ctx->rx_list);
1896 	struct tls_msg *tlm;
1897 	ssize_t copied = 0;
1898 	int err;
1899 
1900 	while (skip && skb) {
1901 		struct strp_msg *rxm = strp_msg(skb);
1902 		tlm = tls_msg(skb);
1903 
1904 		err = tls_record_content_type(msg, tlm, control);
1905 		if (err <= 0)
1906 			goto more;
1907 
1908 		if (skip < rxm->full_len)
1909 			break;
1910 
1911 		skip = skip - rxm->full_len;
1912 		skb = skb_peek_next(skb, &ctx->rx_list);
1913 	}
1914 
1915 	while (len && skb) {
1916 		struct sk_buff *next_skb;
1917 		struct strp_msg *rxm = strp_msg(skb);
1918 		int chunk = min_t(unsigned int, rxm->full_len - skip, len);
1919 
1920 		tlm = tls_msg(skb);
1921 
1922 		err = tls_record_content_type(msg, tlm, control);
1923 		if (err <= 0)
1924 			goto more;
1925 
1926 		err = skb_copy_datagram_msg(skb, rxm->offset + skip,
1927 					    msg, chunk);
1928 		if (err < 0)
1929 			goto more;
1930 
1931 		len = len - chunk;
1932 		copied = copied + chunk;
1933 
1934 		/* Consume the data from record if it is non-peek case*/
1935 		if (!is_peek) {
1936 			rxm->offset = rxm->offset + chunk;
1937 			rxm->full_len = rxm->full_len - chunk;
1938 
1939 			/* Return if there is unconsumed data in the record */
1940 			if (rxm->full_len - skip)
1941 				break;
1942 		}
1943 
1944 		/* The remaining skip-bytes must lie in 1st record in rx_list.
1945 		 * So from the 2nd record, 'skip' should be 0.
1946 		 */
1947 		skip = 0;
1948 
1949 		if (msg)
1950 			msg->msg_flags |= MSG_EOR;
1951 
1952 		next_skb = skb_peek_next(skb, &ctx->rx_list);
1953 
1954 		if (!is_peek) {
1955 			__skb_unlink(skb, &ctx->rx_list);
1956 			consume_skb(skb);
1957 		}
1958 
1959 		skb = next_skb;
1960 	}
1961 	err = 0;
1962 
1963 out:
1964 	return copied ? : err;
1965 more:
1966 	if (more)
1967 		*more = true;
1968 	goto out;
1969 }
1970 
1971 static bool
1972 tls_read_flush_backlog(struct sock *sk, struct tls_prot_info *prot,
1973 		       size_t len_left, size_t decrypted, ssize_t done,
1974 		       size_t *flushed_at)
1975 {
1976 	size_t max_rec;
1977 
1978 	if (len_left <= decrypted)
1979 		return false;
1980 
1981 	max_rec = prot->overhead_size - prot->tail_size + TLS_MAX_PAYLOAD_SIZE;
1982 	if (done - *flushed_at < SZ_128K && tcp_inq(sk) > max_rec)
1983 		return false;
1984 
1985 	*flushed_at = done;
1986 	return sk_flush_backlog(sk);
1987 }
1988 
1989 static int tls_rx_reader_acquire(struct sock *sk, struct tls_sw_context_rx *ctx,
1990 				 bool nonblock)
1991 {
1992 	long timeo;
1993 	int ret;
1994 
1995 	timeo = sock_rcvtimeo(sk, nonblock);
1996 
1997 	while (unlikely(ctx->reader_present)) {
1998 		DEFINE_WAIT_FUNC(wait, woken_wake_function);
1999 
2000 		ctx->reader_contended = 1;
2001 
2002 		add_wait_queue(&ctx->wq, &wait);
2003 		ret = sk_wait_event(sk, &timeo,
2004 				    !READ_ONCE(ctx->reader_present), &wait);
2005 		remove_wait_queue(&ctx->wq, &wait);
2006 
2007 		if (timeo <= 0)
2008 			return -EAGAIN;
2009 		if (signal_pending(current))
2010 			return sock_intr_errno(timeo);
2011 		if (ret < 0)
2012 			return ret;
2013 	}
2014 
2015 	WRITE_ONCE(ctx->reader_present, 1);
2016 
2017 	return 0;
2018 }
2019 
2020 static int tls_rx_reader_lock(struct sock *sk, struct tls_sw_context_rx *ctx,
2021 			      bool nonblock)
2022 {
2023 	int err;
2024 
2025 	lock_sock(sk);
2026 	err = tls_rx_reader_acquire(sk, ctx, nonblock);
2027 	if (err)
2028 		release_sock(sk);
2029 	return err;
2030 }
2031 
2032 static void tls_rx_reader_release(struct sock *sk, struct tls_sw_context_rx *ctx)
2033 {
2034 	if (unlikely(ctx->reader_contended)) {
2035 		if (wq_has_sleeper(&ctx->wq))
2036 			wake_up(&ctx->wq);
2037 		else
2038 			ctx->reader_contended = 0;
2039 
2040 		WARN_ON_ONCE(!ctx->reader_present);
2041 	}
2042 
2043 	WRITE_ONCE(ctx->reader_present, 0);
2044 }
2045 
2046 static void tls_rx_reader_unlock(struct sock *sk, struct tls_sw_context_rx *ctx)
2047 {
2048 	tls_rx_reader_release(sk, ctx);
2049 	release_sock(sk);
2050 }
2051 
2052 int tls_sw_recvmsg(struct sock *sk,
2053 		   struct msghdr *msg,
2054 		   size_t len,
2055 		   int flags)
2056 {
2057 	struct tls_context *tls_ctx = tls_get_ctx(sk);
2058 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
2059 	struct tls_prot_info *prot = &tls_ctx->prot_info;
2060 	ssize_t decrypted = 0, async_copy_bytes = 0;
2061 	struct sk_psock *psock;
2062 	unsigned char control = 0;
2063 	size_t flushed_at = 0;
2064 	struct strp_msg *rxm;
2065 	struct tls_msg *tlm;
2066 	ssize_t copied = 0;
2067 	ssize_t peeked = 0;
2068 	bool async = false;
2069 	int target, err;
2070 	bool is_kvec = iov_iter_is_kvec(&msg->msg_iter);
2071 	bool is_peek = flags & MSG_PEEK;
2072 	bool rx_more = false;
2073 	bool released = true;
2074 	bool bpf_strp_enabled;
2075 	bool zc_capable;
2076 
2077 	if (unlikely(flags & MSG_ERRQUEUE))
2078 		return sock_recv_errqueue(sk, msg, len, SOL_IP, IP_RECVERR);
2079 
2080 	err = tls_rx_reader_lock(sk, ctx, flags & MSG_DONTWAIT);
2081 	if (err < 0)
2082 		return err;
2083 	psock = sk_psock_get(sk);
2084 	bpf_strp_enabled = sk_psock_strp_enabled(psock);
2085 
2086 	/* If crypto failed the connection is broken */
2087 	err = ctx->async_wait.err;
2088 	if (err)
2089 		goto end;
2090 
2091 	/* Process pending decrypted records. It must be non-zero-copy */
2092 	err = process_rx_list(ctx, msg, &control, 0, len, is_peek, &rx_more);
2093 	if (err < 0)
2094 		goto end;
2095 
2096 	/* process_rx_list() will set @control if it processed any records */
2097 	copied = err;
2098 	if (len <= copied || rx_more ||
2099 	    (control && control != TLS_RECORD_TYPE_DATA))
2100 		goto end;
2101 
2102 	target = sock_rcvlowat(sk, flags & MSG_WAITALL, len);
2103 	len = len - copied;
2104 
2105 	zc_capable = !bpf_strp_enabled && !is_kvec && !is_peek &&
2106 		ctx->zc_capable;
2107 	decrypted = 0;
2108 	while (len && (decrypted + copied < target || tls_strp_msg_ready(ctx))) {
2109 		struct tls_decrypt_arg darg;
2110 		int to_decrypt, chunk;
2111 
2112 		err = tls_rx_rec_wait(sk, psock, flags & MSG_DONTWAIT,
2113 				      released);
2114 		if (err <= 0) {
2115 			if (psock) {
2116 				chunk = sk_msg_recvmsg(sk, psock, msg, len,
2117 						       flags);
2118 				if (chunk > 0) {
2119 					decrypted += chunk;
2120 					len -= chunk;
2121 					continue;
2122 				}
2123 			}
2124 			goto recv_end;
2125 		}
2126 
2127 		memset(&darg.inargs, 0, sizeof(darg.inargs));
2128 
2129 		rxm = strp_msg(tls_strp_msg(ctx));
2130 		tlm = tls_msg(tls_strp_msg(ctx));
2131 
2132 		to_decrypt = rxm->full_len - prot->overhead_size;
2133 
2134 		if (zc_capable && to_decrypt <= len &&
2135 		    tlm->control == TLS_RECORD_TYPE_DATA)
2136 			darg.zc = true;
2137 
2138 		/* Do not use async mode if record is non-data */
2139 		if (tlm->control == TLS_RECORD_TYPE_DATA && !bpf_strp_enabled)
2140 			darg.async = ctx->async_capable;
2141 		else
2142 			darg.async = false;
2143 
2144 		err = tls_rx_one_record(sk, msg, &darg);
2145 		if (err < 0) {
2146 			tls_err_abort(sk, -EBADMSG);
2147 			goto recv_end;
2148 		}
2149 
2150 		async |= darg.async;
2151 
2152 		/* If the type of records being processed is not known yet,
2153 		 * set it to record type just dequeued. If it is already known,
2154 		 * but does not match the record type just dequeued, go to end.
2155 		 * We always get record type here since for tls1.2, record type
2156 		 * is known just after record is dequeued from stream parser.
2157 		 * For tls1.3, we disable async.
2158 		 */
2159 		err = tls_record_content_type(msg, tls_msg(darg.skb), &control);
2160 		if (err <= 0) {
2161 			DEBUG_NET_WARN_ON_ONCE(darg.zc);
2162 			tls_rx_rec_done(ctx);
2163 put_on_rx_list_err:
2164 			__skb_queue_tail(&ctx->rx_list, darg.skb);
2165 			goto recv_end;
2166 		}
2167 
2168 		/* periodically flush backlog, and feed strparser */
2169 		released = tls_read_flush_backlog(sk, prot, len, to_decrypt,
2170 						  decrypted + copied,
2171 						  &flushed_at);
2172 
2173 		/* TLS 1.3 may have updated the length by more than overhead */
2174 		rxm = strp_msg(darg.skb);
2175 		chunk = rxm->full_len;
2176 		tls_rx_rec_done(ctx);
2177 
2178 		if (!darg.zc) {
2179 			bool partially_consumed = chunk > len;
2180 			struct sk_buff *skb = darg.skb;
2181 
2182 			DEBUG_NET_WARN_ON_ONCE(darg.skb == ctx->strp.anchor);
2183 
2184 			if (async) {
2185 				/* TLS 1.2-only, to_decrypt must be text len */
2186 				chunk = min_t(int, to_decrypt, len);
2187 				async_copy_bytes += chunk;
2188 put_on_rx_list:
2189 				decrypted += chunk;
2190 				len -= chunk;
2191 				__skb_queue_tail(&ctx->rx_list, skb);
2192 				if (unlikely(control != TLS_RECORD_TYPE_DATA))
2193 					break;
2194 				continue;
2195 			}
2196 
2197 			if (bpf_strp_enabled) {
2198 				released = true;
2199 				err = sk_psock_tls_strp_read(psock, skb);
2200 				if (err != __SK_PASS) {
2201 					rxm->offset = rxm->offset + rxm->full_len;
2202 					rxm->full_len = 0;
2203 					if (err == __SK_DROP)
2204 						consume_skb(skb);
2205 					continue;
2206 				}
2207 			}
2208 
2209 			if (partially_consumed)
2210 				chunk = len;
2211 
2212 			err = skb_copy_datagram_msg(skb, rxm->offset,
2213 						    msg, chunk);
2214 			if (err < 0)
2215 				goto put_on_rx_list_err;
2216 
2217 			if (is_peek) {
2218 				peeked += chunk;
2219 				goto put_on_rx_list;
2220 			}
2221 
2222 			if (partially_consumed) {
2223 				rxm->offset += chunk;
2224 				rxm->full_len -= chunk;
2225 				goto put_on_rx_list;
2226 			}
2227 
2228 			consume_skb(skb);
2229 		}
2230 
2231 		decrypted += chunk;
2232 		len -= chunk;
2233 
2234 		/* Return full control message to userspace before trying
2235 		 * to parse another message type
2236 		 */
2237 		msg->msg_flags |= MSG_EOR;
2238 		if (control != TLS_RECORD_TYPE_DATA)
2239 			break;
2240 	}
2241 
2242 recv_end:
2243 	if (async) {
2244 		int ret;
2245 
2246 		/* Wait for all previously submitted records to be decrypted */
2247 		ret = tls_decrypt_async_wait(ctx);
2248 
2249 		if (ret) {
2250 			if (err >= 0 || err == -EINPROGRESS)
2251 				err = ret;
2252 			goto end;
2253 		}
2254 
2255 		/* Drain records from the rx_list & copy if required */
2256 		if (is_peek)
2257 			err = process_rx_list(ctx, msg, &control, copied + peeked,
2258 					      decrypted - peeked, is_peek, NULL);
2259 		else
2260 			err = process_rx_list(ctx, msg, &control, 0,
2261 					      async_copy_bytes, is_peek, NULL);
2262 
2263 		/* we could have copied less than we wanted, and possibly nothing */
2264 		decrypted += max(err, 0) - async_copy_bytes;
2265 	}
2266 
2267 	copied += decrypted;
2268 
2269 end:
2270 	tls_rx_reader_unlock(sk, ctx);
2271 	if (psock)
2272 		sk_psock_put(sk, psock);
2273 	return copied ? : err;
2274 }
2275 
2276 ssize_t tls_sw_splice_read(struct socket *sock,  loff_t *ppos,
2277 			   struct pipe_inode_info *pipe,
2278 			   size_t len, unsigned int flags)
2279 {
2280 	struct tls_context *tls_ctx = tls_get_ctx(sock->sk);
2281 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
2282 	struct strp_msg *rxm = NULL;
2283 	struct sock *sk = sock->sk;
2284 	struct tls_msg *tlm;
2285 	struct sk_buff *skb;
2286 	ssize_t copied = 0;
2287 	int chunk;
2288 	int err;
2289 
2290 	err = tls_rx_reader_lock(sk, ctx, flags & SPLICE_F_NONBLOCK);
2291 	if (err < 0)
2292 		return err;
2293 
2294 	if (!skb_queue_empty(&ctx->rx_list)) {
2295 		skb = __skb_dequeue(&ctx->rx_list);
2296 	} else {
2297 		struct tls_decrypt_arg darg;
2298 
2299 		err = tls_rx_rec_wait(sk, NULL, flags & SPLICE_F_NONBLOCK,
2300 				      true);
2301 		if (err <= 0)
2302 			goto splice_read_end;
2303 
2304 		memset(&darg.inargs, 0, sizeof(darg.inargs));
2305 
2306 		err = tls_rx_one_record(sk, NULL, &darg);
2307 		if (err < 0) {
2308 			tls_err_abort(sk, -EBADMSG);
2309 			goto splice_read_end;
2310 		}
2311 
2312 		tls_rx_rec_done(ctx);
2313 		skb = darg.skb;
2314 	}
2315 
2316 	rxm = strp_msg(skb);
2317 	tlm = tls_msg(skb);
2318 
2319 	/* splice does not support reading control messages */
2320 	if (tlm->control != TLS_RECORD_TYPE_DATA) {
2321 		err = -EINVAL;
2322 		goto splice_requeue;
2323 	}
2324 
2325 	chunk = min_t(unsigned int, rxm->full_len, len);
2326 	copied = skb_splice_bits(skb, sk, rxm->offset, pipe, chunk, flags);
2327 	if (copied < 0)
2328 		goto splice_requeue;
2329 
2330 	if (copied < rxm->full_len) {
2331 		rxm->offset += copied;
2332 		rxm->full_len -= copied;
2333 		goto splice_requeue;
2334 	}
2335 
2336 	consume_skb(skb);
2337 
2338 splice_read_end:
2339 	tls_rx_reader_unlock(sk, ctx);
2340 	return copied ? : err;
2341 
2342 splice_requeue:
2343 	__skb_queue_head(&ctx->rx_list, skb);
2344 	goto splice_read_end;
2345 }
2346 
2347 int tls_sw_read_sock(struct sock *sk, read_descriptor_t *desc,
2348 		     sk_read_actor_t read_actor)
2349 {
2350 	struct tls_context *tls_ctx = tls_get_ctx(sk);
2351 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
2352 	struct tls_prot_info *prot = &tls_ctx->prot_info;
2353 	struct strp_msg *rxm = NULL;
2354 	struct sk_buff *skb = NULL;
2355 	struct sk_psock *psock;
2356 	size_t flushed_at = 0;
2357 	bool released = true;
2358 	struct tls_msg *tlm;
2359 	ssize_t copied = 0;
2360 	ssize_t decrypted;
2361 	int err, used;
2362 
2363 	psock = sk_psock_get(sk);
2364 	if (psock) {
2365 		sk_psock_put(sk, psock);
2366 		return -EINVAL;
2367 	}
2368 	err = tls_rx_reader_acquire(sk, ctx, true);
2369 	if (err < 0)
2370 		return err;
2371 
2372 	/* If crypto failed the connection is broken */
2373 	err = ctx->async_wait.err;
2374 	if (err)
2375 		goto read_sock_end;
2376 
2377 	decrypted = 0;
2378 	do {
2379 		if (!skb_queue_empty(&ctx->rx_list)) {
2380 			skb = __skb_dequeue(&ctx->rx_list);
2381 			rxm = strp_msg(skb);
2382 			tlm = tls_msg(skb);
2383 		} else {
2384 			struct tls_decrypt_arg darg;
2385 
2386 			err = tls_rx_rec_wait(sk, NULL, true, released);
2387 			if (err <= 0)
2388 				goto read_sock_end;
2389 
2390 			memset(&darg.inargs, 0, sizeof(darg.inargs));
2391 
2392 			err = tls_rx_one_record(sk, NULL, &darg);
2393 			if (err < 0) {
2394 				tls_err_abort(sk, -EBADMSG);
2395 				goto read_sock_end;
2396 			}
2397 
2398 			released = tls_read_flush_backlog(sk, prot, INT_MAX,
2399 							  0, decrypted,
2400 							  &flushed_at);
2401 			skb = darg.skb;
2402 			rxm = strp_msg(skb);
2403 			tlm = tls_msg(skb);
2404 			decrypted += rxm->full_len;
2405 
2406 			tls_rx_rec_done(ctx);
2407 		}
2408 
2409 		/* read_sock does not support reading control messages */
2410 		if (tlm->control != TLS_RECORD_TYPE_DATA) {
2411 			err = -EINVAL;
2412 			goto read_sock_requeue;
2413 		}
2414 
2415 		used = read_actor(desc, skb, rxm->offset, rxm->full_len);
2416 		if (used <= 0) {
2417 			if (!copied)
2418 				err = used;
2419 			goto read_sock_requeue;
2420 		}
2421 		copied += used;
2422 		if (used < rxm->full_len) {
2423 			rxm->offset += used;
2424 			rxm->full_len -= used;
2425 			if (!desc->count)
2426 				goto read_sock_requeue;
2427 		} else {
2428 			consume_skb(skb);
2429 			if (!desc->count)
2430 				skb = NULL;
2431 		}
2432 	} while (skb);
2433 
2434 read_sock_end:
2435 	tls_rx_reader_release(sk, ctx);
2436 	return copied ? : err;
2437 
2438 read_sock_requeue:
2439 	__skb_queue_head(&ctx->rx_list, skb);
2440 	goto read_sock_end;
2441 }
2442 
2443 bool tls_sw_sock_is_readable(struct sock *sk)
2444 {
2445 	struct tls_context *tls_ctx = tls_get_ctx(sk);
2446 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
2447 	bool ingress_empty = true;
2448 	struct sk_psock *psock;
2449 
2450 	rcu_read_lock();
2451 	psock = sk_psock(sk);
2452 	if (psock)
2453 		ingress_empty = list_empty(&psock->ingress_msg);
2454 	rcu_read_unlock();
2455 
2456 	return !ingress_empty || tls_strp_msg_ready(ctx) ||
2457 		!skb_queue_empty(&ctx->rx_list);
2458 }
2459 
2460 int tls_rx_msg_size(struct tls_strparser *strp, struct sk_buff *skb)
2461 {
2462 	struct tls_context *tls_ctx = tls_get_ctx(strp->sk);
2463 	struct tls_prot_info *prot = &tls_ctx->prot_info;
2464 	char header[TLS_HEADER_SIZE + TLS_MAX_IV_SIZE];
2465 	size_t cipher_overhead;
2466 	size_t data_len = 0;
2467 	int ret;
2468 
2469 	/* Verify that we have a full TLS header, or wait for more data */
2470 	if (strp->stm.offset + prot->prepend_size > skb->len)
2471 		return 0;
2472 
2473 	/* Sanity-check size of on-stack buffer. */
2474 	if (WARN_ON(prot->prepend_size > sizeof(header))) {
2475 		ret = -EINVAL;
2476 		goto read_failure;
2477 	}
2478 
2479 	/* Linearize header to local buffer */
2480 	ret = skb_copy_bits(skb, strp->stm.offset, header, prot->prepend_size);
2481 	if (ret < 0)
2482 		goto read_failure;
2483 
2484 	strp->mark = header[0];
2485 
2486 	data_len = ((header[4] & 0xFF) | (header[3] << 8));
2487 
2488 	cipher_overhead = prot->tag_size;
2489 	if (prot->version != TLS_1_3_VERSION &&
2490 	    prot->cipher_type != TLS_CIPHER_CHACHA20_POLY1305)
2491 		cipher_overhead += prot->iv_size;
2492 
2493 	if (data_len > TLS_MAX_PAYLOAD_SIZE + cipher_overhead +
2494 	    prot->tail_size) {
2495 		ret = -EMSGSIZE;
2496 		goto read_failure;
2497 	}
2498 	if (data_len < cipher_overhead) {
2499 		ret = -EBADMSG;
2500 		goto read_failure;
2501 	}
2502 
2503 	/* Note that both TLS1.3 and TLS1.2 use TLS_1_2 version here */
2504 	if (header[1] != TLS_1_2_VERSION_MINOR ||
2505 	    header[2] != TLS_1_2_VERSION_MAJOR) {
2506 		ret = -EINVAL;
2507 		goto read_failure;
2508 	}
2509 
2510 	tls_device_rx_resync_new_rec(strp->sk, data_len + TLS_HEADER_SIZE,
2511 				     TCP_SKB_CB(skb)->seq + strp->stm.offset);
2512 	return data_len + TLS_HEADER_SIZE;
2513 
2514 read_failure:
2515 	tls_strp_abort_strp(strp, ret);
2516 	return ret;
2517 }
2518 
2519 void tls_rx_msg_ready(struct tls_strparser *strp)
2520 {
2521 	struct tls_sw_context_rx *ctx;
2522 
2523 	ctx = container_of(strp, struct tls_sw_context_rx, strp);
2524 	ctx->saved_data_ready(strp->sk);
2525 }
2526 
2527 static void tls_data_ready(struct sock *sk)
2528 {
2529 	struct tls_context *tls_ctx = tls_get_ctx(sk);
2530 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
2531 	struct sk_psock *psock;
2532 	gfp_t alloc_save;
2533 
2534 	trace_sk_data_ready(sk);
2535 
2536 	alloc_save = sk->sk_allocation;
2537 	sk->sk_allocation = GFP_ATOMIC;
2538 	tls_strp_data_ready(&ctx->strp);
2539 	sk->sk_allocation = alloc_save;
2540 
2541 	psock = sk_psock_get(sk);
2542 	if (psock) {
2543 		if (!list_empty(&psock->ingress_msg))
2544 			ctx->saved_data_ready(sk);
2545 		sk_psock_put(sk, psock);
2546 	}
2547 }
2548 
2549 void tls_sw_cancel_work_tx(struct tls_context *tls_ctx)
2550 {
2551 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
2552 
2553 	set_bit(BIT_TX_CLOSING, &ctx->tx_bitmask);
2554 	set_bit(BIT_TX_SCHEDULED, &ctx->tx_bitmask);
2555 	disable_delayed_work_sync(&ctx->tx_work.work);
2556 }
2557 
2558 void tls_sw_release_resources_tx(struct sock *sk)
2559 {
2560 	struct tls_context *tls_ctx = tls_get_ctx(sk);
2561 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
2562 	struct tls_rec *rec, *tmp;
2563 
2564 	/* Wait for any pending async encryptions to complete */
2565 	tls_encrypt_async_wait(ctx);
2566 
2567 	tls_tx_records(sk, -1);
2568 
2569 	/* Free up un-sent records in tx_list. First, free
2570 	 * the partially sent record if any at head of tx_list.
2571 	 */
2572 	if (tls_ctx->partially_sent_record) {
2573 		tls_free_partial_record(sk, tls_ctx);
2574 		rec = list_first_entry(&ctx->tx_list,
2575 				       struct tls_rec, list);
2576 		list_del(&rec->list);
2577 		sk_msg_free(sk, &rec->msg_plaintext);
2578 		kfree(rec);
2579 	}
2580 
2581 	list_for_each_entry_safe(rec, tmp, &ctx->tx_list, list) {
2582 		list_del(&rec->list);
2583 		sk_msg_free(sk, &rec->msg_encrypted);
2584 		sk_msg_free(sk, &rec->msg_plaintext);
2585 		kfree(rec);
2586 	}
2587 
2588 	crypto_free_aead(ctx->aead_send);
2589 	tls_free_open_rec(sk);
2590 }
2591 
2592 void tls_sw_free_ctx_tx(struct tls_context *tls_ctx)
2593 {
2594 	struct tls_sw_context_tx *ctx = tls_sw_ctx_tx(tls_ctx);
2595 
2596 	kfree(ctx);
2597 }
2598 
2599 void tls_sw_release_resources_rx(struct sock *sk)
2600 {
2601 	struct tls_context *tls_ctx = tls_get_ctx(sk);
2602 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
2603 
2604 	if (ctx->aead_recv) {
2605 		__skb_queue_purge(&ctx->rx_list);
2606 		crypto_free_aead(ctx->aead_recv);
2607 		tls_strp_stop(&ctx->strp);
2608 		/* If tls_sw_strparser_arm() was not called (cleanup paths)
2609 		 * we still want to tls_strp_stop(), but sk->sk_data_ready was
2610 		 * never swapped.
2611 		 */
2612 		if (ctx->saved_data_ready) {
2613 			write_lock_bh(&sk->sk_callback_lock);
2614 			sk->sk_data_ready = ctx->saved_data_ready;
2615 			write_unlock_bh(&sk->sk_callback_lock);
2616 		}
2617 	}
2618 }
2619 
2620 void tls_sw_strparser_done(struct tls_context *tls_ctx)
2621 {
2622 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
2623 
2624 	tls_strp_done(&ctx->strp);
2625 }
2626 
2627 void tls_sw_free_ctx_rx(struct tls_context *tls_ctx)
2628 {
2629 	struct tls_sw_context_rx *ctx = tls_sw_ctx_rx(tls_ctx);
2630 
2631 	kfree(ctx);
2632 }
2633 
2634 void tls_sw_free_resources_rx(struct sock *sk)
2635 {
2636 	struct tls_context *tls_ctx = tls_get_ctx(sk);
2637 	struct tls_sw_context_rx *ctx;
2638 
2639 	ctx = tls_sw_ctx_rx(tls_ctx);
2640 
2641 	tls_sw_release_resources_rx(sk);
2642 	__tls_strp_done(&ctx->strp);
2643 	tls_sw_free_ctx_rx(tls_ctx);
2644 }
2645 
2646 /* The work handler to transmitt the encrypted records in tx_list */
2647 static void tx_work_handler(struct work_struct *work)
2648 {
2649 	struct delayed_work *delayed_work = to_delayed_work(work);
2650 	struct tx_work *tx_work = container_of(delayed_work,
2651 					       struct tx_work, work);
2652 	struct sock *sk = tx_work->sk;
2653 	struct tls_context *tls_ctx = tls_get_ctx(sk);
2654 	struct tls_sw_context_tx *ctx;
2655 
2656 	if (unlikely(!tls_ctx))
2657 		return;
2658 
2659 	ctx = tls_sw_ctx_tx(tls_ctx);
2660 	if (test_bit(BIT_TX_CLOSING, &ctx->tx_bitmask))
2661 		return;
2662 
2663 	if (!test_and_clear_bit(BIT_TX_SCHEDULED, &ctx->tx_bitmask))
2664 		return;
2665 
2666 	if (mutex_trylock(&tls_ctx->tx_lock)) {
2667 		lock_sock(sk);
2668 		tls_tx_records(sk, -1);
2669 		release_sock(sk);
2670 		mutex_unlock(&tls_ctx->tx_lock);
2671 	} else if (!test_and_set_bit(BIT_TX_SCHEDULED, &ctx->tx_bitmask)) {
2672 		/* Someone is holding the tx_lock, they will likely run Tx
2673 		 * and cancel the work on their way out of the lock section.
2674 		 * Schedule a long delay just in case.
2675 		 */
2676 		schedule_delayed_work(&ctx->tx_work.work, msecs_to_jiffies(10));
2677 	}
2678 }
2679 
2680 static bool tls_is_tx_ready(struct tls_sw_context_tx *ctx)
2681 {
2682 	struct tls_rec *rec;
2683 
2684 	rec = list_first_entry_or_null(&ctx->tx_list, struct tls_rec, list);
2685 	if (!rec)
2686 		return false;
2687 
2688 	return READ_ONCE(rec->tx_ready);
2689 }
2690 
2691 void tls_sw_write_space(struct sock *sk, struct tls_context *ctx)
2692 {
2693 	struct tls_sw_context_tx *tx_ctx = tls_sw_ctx_tx(ctx);
2694 
2695 	/* Schedule the transmission if tx list is ready */
2696 	if (tls_is_tx_ready(tx_ctx) &&
2697 	    !test_and_set_bit(BIT_TX_SCHEDULED, &tx_ctx->tx_bitmask))
2698 		schedule_delayed_work(&tx_ctx->tx_work.work, 0);
2699 }
2700 
2701 void tls_sw_strparser_arm(struct sock *sk, struct tls_context *tls_ctx)
2702 {
2703 	struct tls_sw_context_rx *rx_ctx = tls_sw_ctx_rx(tls_ctx);
2704 
2705 	write_lock_bh(&sk->sk_callback_lock);
2706 	rx_ctx->saved_data_ready = sk->sk_data_ready;
2707 	sk->sk_data_ready = tls_data_ready;
2708 	write_unlock_bh(&sk->sk_callback_lock);
2709 }
2710 
2711 void tls_update_rx_zc_capable(struct tls_context *tls_ctx)
2712 {
2713 	struct tls_sw_context_rx *rx_ctx = tls_sw_ctx_rx(tls_ctx);
2714 
2715 	rx_ctx->zc_capable = tls_ctx->rx_no_pad ||
2716 		tls_ctx->prot_info.version != TLS_1_3_VERSION;
2717 }
2718 
2719 static struct tls_sw_context_tx *init_ctx_tx(struct tls_context *ctx, struct sock *sk)
2720 {
2721 	struct tls_sw_context_tx *sw_ctx_tx;
2722 
2723 	if (!ctx->priv_ctx_tx) {
2724 		sw_ctx_tx = kzalloc_obj(*sw_ctx_tx);
2725 		if (!sw_ctx_tx)
2726 			return NULL;
2727 	} else {
2728 		sw_ctx_tx = ctx->priv_ctx_tx;
2729 	}
2730 
2731 	crypto_init_wait(&sw_ctx_tx->async_wait);
2732 	atomic_set(&sw_ctx_tx->encrypt_pending, 1);
2733 	INIT_LIST_HEAD(&sw_ctx_tx->tx_list);
2734 	INIT_DELAYED_WORK(&sw_ctx_tx->tx_work.work, tx_work_handler);
2735 	sw_ctx_tx->tx_work.sk = sk;
2736 
2737 	return sw_ctx_tx;
2738 }
2739 
2740 static struct tls_sw_context_rx *init_ctx_rx(struct tls_context *ctx)
2741 {
2742 	struct tls_sw_context_rx *sw_ctx_rx;
2743 
2744 	if (!ctx->priv_ctx_rx) {
2745 		sw_ctx_rx = kzalloc_obj(*sw_ctx_rx);
2746 		if (!sw_ctx_rx)
2747 			return NULL;
2748 	} else {
2749 		sw_ctx_rx = ctx->priv_ctx_rx;
2750 	}
2751 
2752 	crypto_init_wait(&sw_ctx_rx->async_wait);
2753 	atomic_set(&sw_ctx_rx->decrypt_pending, 1);
2754 	init_waitqueue_head(&sw_ctx_rx->wq);
2755 	skb_queue_head_init(&sw_ctx_rx->rx_list);
2756 	skb_queue_head_init(&sw_ctx_rx->async_hold);
2757 
2758 	return sw_ctx_rx;
2759 }
2760 
2761 int init_prot_info(struct tls_prot_info *prot,
2762 		   const struct tls_crypto_info *crypto_info,
2763 		   const struct tls_cipher_desc *cipher_desc)
2764 {
2765 	u16 nonce_size = cipher_desc->nonce;
2766 
2767 	if (crypto_info->version == TLS_1_3_VERSION) {
2768 		nonce_size = 0;
2769 		prot->aad_size = TLS_HEADER_SIZE;
2770 		prot->tail_size = 1;
2771 	} else {
2772 		prot->aad_size = TLS_AAD_SPACE_SIZE;
2773 		prot->tail_size = 0;
2774 	}
2775 
2776 	/* Sanity-check the sizes for stack allocations. */
2777 	if (nonce_size > TLS_MAX_IV_SIZE || prot->aad_size > TLS_MAX_AAD_SIZE)
2778 		return -EINVAL;
2779 
2780 	prot->version = crypto_info->version;
2781 	prot->cipher_type = crypto_info->cipher_type;
2782 	prot->prepend_size = TLS_HEADER_SIZE + nonce_size;
2783 	prot->tag_size = cipher_desc->tag;
2784 	prot->overhead_size = prot->prepend_size + prot->tag_size + prot->tail_size;
2785 	prot->iv_size = cipher_desc->iv;
2786 	prot->salt_size = cipher_desc->salt;
2787 	prot->rec_seq_size = cipher_desc->rec_seq;
2788 
2789 	return 0;
2790 }
2791 
2792 static void tls_finish_key_update(struct sock *sk, struct tls_context *tls_ctx)
2793 {
2794 	struct tls_sw_context_rx *ctx = tls_ctx->priv_ctx_rx;
2795 
2796 	WRITE_ONCE(ctx->key_update_pending, false);
2797 	/* wake-up pre-existing poll() */
2798 	ctx->saved_data_ready(sk);
2799 }
2800 
2801 int tls_set_sw_offload(struct sock *sk, int tx,
2802 		       struct tls_crypto_info *new_crypto_info)
2803 {
2804 	struct tls_crypto_info *crypto_info, *src_crypto_info;
2805 	struct tls_sw_context_tx *sw_ctx_tx = NULL;
2806 	struct tls_sw_context_rx *sw_ctx_rx = NULL;
2807 	const struct tls_cipher_desc *cipher_desc;
2808 	char *iv, *rec_seq, *key, *salt;
2809 	struct cipher_context *cctx;
2810 	struct tls_prot_info *prot;
2811 	struct crypto_aead **aead;
2812 	struct tls_context *ctx;
2813 	struct crypto_tfm *tfm;
2814 	int rc = 0;
2815 
2816 	ctx = tls_get_ctx(sk);
2817 	prot = &ctx->prot_info;
2818 
2819 	/* new_crypto_info != NULL means rekey */
2820 	if (!new_crypto_info) {
2821 		if (tx) {
2822 			ctx->priv_ctx_tx = init_ctx_tx(ctx, sk);
2823 			if (!ctx->priv_ctx_tx)
2824 				return -ENOMEM;
2825 		} else {
2826 			ctx->priv_ctx_rx = init_ctx_rx(ctx);
2827 			if (!ctx->priv_ctx_rx)
2828 				return -ENOMEM;
2829 		}
2830 	}
2831 
2832 	if (tx) {
2833 		sw_ctx_tx = ctx->priv_ctx_tx;
2834 		crypto_info = &ctx->crypto_send.info;
2835 		cctx = &ctx->tx;
2836 		aead = &sw_ctx_tx->aead_send;
2837 	} else {
2838 		sw_ctx_rx = ctx->priv_ctx_rx;
2839 		crypto_info = &ctx->crypto_recv.info;
2840 		cctx = &ctx->rx;
2841 		aead = &sw_ctx_rx->aead_recv;
2842 	}
2843 
2844 	src_crypto_info = new_crypto_info ?: crypto_info;
2845 
2846 	cipher_desc = get_cipher_desc(src_crypto_info->cipher_type);
2847 	if (!cipher_desc) {
2848 		rc = -EINVAL;
2849 		goto free_priv;
2850 	}
2851 
2852 	rc = init_prot_info(prot, src_crypto_info, cipher_desc);
2853 	if (rc)
2854 		goto free_priv;
2855 
2856 	iv = crypto_info_iv(src_crypto_info, cipher_desc);
2857 	key = crypto_info_key(src_crypto_info, cipher_desc);
2858 	salt = crypto_info_salt(src_crypto_info, cipher_desc);
2859 	rec_seq = crypto_info_rec_seq(src_crypto_info, cipher_desc);
2860 
2861 	if (!*aead) {
2862 		*aead = crypto_alloc_aead(cipher_desc->cipher_name, 0, 0);
2863 		if (IS_ERR(*aead)) {
2864 			rc = PTR_ERR(*aead);
2865 			*aead = NULL;
2866 			goto free_priv;
2867 		}
2868 	}
2869 
2870 	ctx->push_pending_record = tls_sw_push_pending_record;
2871 
2872 	/* setkey is the last operation that could fail during a
2873 	 * rekey. if it succeeds, we can start modifying the
2874 	 * context.
2875 	 */
2876 	rc = crypto_aead_setkey(*aead, key, cipher_desc->key);
2877 	if (rc) {
2878 		if (new_crypto_info)
2879 			goto out;
2880 		else
2881 			goto free_aead;
2882 	}
2883 
2884 	if (!new_crypto_info) {
2885 		rc = crypto_aead_setauthsize(*aead, prot->tag_size);
2886 		if (rc)
2887 			goto free_aead;
2888 	}
2889 
2890 	if (!tx && !new_crypto_info) {
2891 		tfm = crypto_aead_tfm(sw_ctx_rx->aead_recv);
2892 
2893 		tls_update_rx_zc_capable(ctx);
2894 		sw_ctx_rx->async_capable =
2895 			src_crypto_info->version != TLS_1_3_VERSION &&
2896 			!!(tfm->__crt_alg->cra_flags & CRYPTO_ALG_ASYNC);
2897 
2898 		rc = tls_strp_init(&sw_ctx_rx->strp, sk);
2899 		if (rc)
2900 			goto free_aead;
2901 	}
2902 
2903 	memcpy(cctx->iv, salt, cipher_desc->salt);
2904 	memcpy(cctx->iv + cipher_desc->salt, iv, cipher_desc->iv);
2905 	memcpy(cctx->rec_seq, rec_seq, cipher_desc->rec_seq);
2906 
2907 	if (new_crypto_info) {
2908 		unsafe_memcpy(crypto_info, new_crypto_info,
2909 			      cipher_desc->crypto_info,
2910 			      /* size was checked in do_tls_setsockopt_conf */);
2911 		memzero_explicit(new_crypto_info, cipher_desc->crypto_info);
2912 		if (!tx)
2913 			tls_finish_key_update(sk, ctx);
2914 	}
2915 
2916 	goto out;
2917 
2918 free_aead:
2919 	crypto_free_aead(*aead);
2920 	*aead = NULL;
2921 free_priv:
2922 	if (!new_crypto_info) {
2923 		if (tx) {
2924 			kfree(ctx->priv_ctx_tx);
2925 			ctx->priv_ctx_tx = NULL;
2926 		} else {
2927 			kfree(ctx->priv_ctx_rx);
2928 			ctx->priv_ctx_rx = NULL;
2929 		}
2930 	}
2931 out:
2932 	return rc;
2933 }
2934