xref: /kernel/linux/linux-5.10/net/kcm/kcmsock.c (revision 8c2ecf20)
1// SPDX-License-Identifier: GPL-2.0-only
2/*
3 * Kernel Connection Multiplexor
4 *
5 * Copyright (c) 2016 Tom Herbert <tom@herbertland.com>
6 */
7
8#include <linux/bpf.h>
9#include <linux/errno.h>
10#include <linux/errqueue.h>
11#include <linux/file.h>
12#include <linux/in.h>
13#include <linux/kernel.h>
14#include <linux/module.h>
15#include <linux/net.h>
16#include <linux/netdevice.h>
17#include <linux/poll.h>
18#include <linux/rculist.h>
19#include <linux/skbuff.h>
20#include <linux/socket.h>
21#include <linux/uaccess.h>
22#include <linux/workqueue.h>
23#include <linux/syscalls.h>
24#include <linux/sched/signal.h>
25
26#include <net/kcm.h>
27#include <net/netns/generic.h>
28#include <net/sock.h>
29#include <uapi/linux/kcm.h>
30
31unsigned int kcm_net_id;
32
33static struct kmem_cache *kcm_psockp __read_mostly;
34static struct kmem_cache *kcm_muxp __read_mostly;
35static struct workqueue_struct *kcm_wq;
36
37static inline struct kcm_sock *kcm_sk(const struct sock *sk)
38{
39	return (struct kcm_sock *)sk;
40}
41
42static inline struct kcm_tx_msg *kcm_tx_msg(struct sk_buff *skb)
43{
44	return (struct kcm_tx_msg *)skb->cb;
45}
46
47static void report_csk_error(struct sock *csk, int err)
48{
49	csk->sk_err = EPIPE;
50	csk->sk_error_report(csk);
51}
52
53static void kcm_abort_tx_psock(struct kcm_psock *psock, int err,
54			       bool wakeup_kcm)
55{
56	struct sock *csk = psock->sk;
57	struct kcm_mux *mux = psock->mux;
58
59	/* Unrecoverable error in transmit */
60
61	spin_lock_bh(&mux->lock);
62
63	if (psock->tx_stopped) {
64		spin_unlock_bh(&mux->lock);
65		return;
66	}
67
68	psock->tx_stopped = 1;
69	KCM_STATS_INCR(psock->stats.tx_aborts);
70
71	if (!psock->tx_kcm) {
72		/* Take off psocks_avail list */
73		list_del(&psock->psock_avail_list);
74	} else if (wakeup_kcm) {
75		/* In this case psock is being aborted while outside of
76		 * write_msgs and psock is reserved. Schedule tx_work
77		 * to handle the failure there. Need to commit tx_stopped
78		 * before queuing work.
79		 */
80		smp_mb();
81
82		queue_work(kcm_wq, &psock->tx_kcm->tx_work);
83	}
84
85	spin_unlock_bh(&mux->lock);
86
87	/* Report error on lower socket */
88	report_csk_error(csk, err);
89}
90
91/* RX mux lock held. */
92static void kcm_update_rx_mux_stats(struct kcm_mux *mux,
93				    struct kcm_psock *psock)
94{
95	STRP_STATS_ADD(mux->stats.rx_bytes,
96		       psock->strp.stats.bytes -
97		       psock->saved_rx_bytes);
98	mux->stats.rx_msgs +=
99		psock->strp.stats.msgs - psock->saved_rx_msgs;
100	psock->saved_rx_msgs = psock->strp.stats.msgs;
101	psock->saved_rx_bytes = psock->strp.stats.bytes;
102}
103
104static void kcm_update_tx_mux_stats(struct kcm_mux *mux,
105				    struct kcm_psock *psock)
106{
107	KCM_STATS_ADD(mux->stats.tx_bytes,
108		      psock->stats.tx_bytes - psock->saved_tx_bytes);
109	mux->stats.tx_msgs +=
110		psock->stats.tx_msgs - psock->saved_tx_msgs;
111	psock->saved_tx_msgs = psock->stats.tx_msgs;
112	psock->saved_tx_bytes = psock->stats.tx_bytes;
113}
114
115static int kcm_queue_rcv_skb(struct sock *sk, struct sk_buff *skb);
116
117/* KCM is ready to receive messages on its queue-- either the KCM is new or
118 * has become unblocked after being blocked on full socket buffer. Queue any
119 * pending ready messages on a psock. RX mux lock held.
120 */
121static void kcm_rcv_ready(struct kcm_sock *kcm)
122{
123	struct kcm_mux *mux = kcm->mux;
124	struct kcm_psock *psock;
125	struct sk_buff *skb;
126
127	if (unlikely(kcm->rx_wait || kcm->rx_psock || kcm->rx_disabled))
128		return;
129
130	while (unlikely((skb = __skb_dequeue(&mux->rx_hold_queue)))) {
131		if (kcm_queue_rcv_skb(&kcm->sk, skb)) {
132			/* Assuming buffer limit has been reached */
133			skb_queue_head(&mux->rx_hold_queue, skb);
134			WARN_ON(!sk_rmem_alloc_get(&kcm->sk));
135			return;
136		}
137	}
138
139	while (!list_empty(&mux->psocks_ready)) {
140		psock = list_first_entry(&mux->psocks_ready, struct kcm_psock,
141					 psock_ready_list);
142
143		if (kcm_queue_rcv_skb(&kcm->sk, psock->ready_rx_msg)) {
144			/* Assuming buffer limit has been reached */
145			WARN_ON(!sk_rmem_alloc_get(&kcm->sk));
146			return;
147		}
148
149		/* Consumed the ready message on the psock. Schedule rx_work to
150		 * get more messages.
151		 */
152		list_del(&psock->psock_ready_list);
153		psock->ready_rx_msg = NULL;
154		/* Commit clearing of ready_rx_msg for queuing work */
155		smp_mb();
156
157		strp_unpause(&psock->strp);
158		strp_check_rcv(&psock->strp);
159	}
160
161	/* Buffer limit is okay now, add to ready list */
162	list_add_tail(&kcm->wait_rx_list,
163		      &kcm->mux->kcm_rx_waiters);
164	/* paired with lockless reads in kcm_rfree() */
165	WRITE_ONCE(kcm->rx_wait, true);
166}
167
168static void kcm_rfree(struct sk_buff *skb)
169{
170	struct sock *sk = skb->sk;
171	struct kcm_sock *kcm = kcm_sk(sk);
172	struct kcm_mux *mux = kcm->mux;
173	unsigned int len = skb->truesize;
174
175	sk_mem_uncharge(sk, len);
176	atomic_sub(len, &sk->sk_rmem_alloc);
177
178	/* For reading rx_wait and rx_psock without holding lock */
179	smp_mb__after_atomic();
180
181	if (!READ_ONCE(kcm->rx_wait) && !READ_ONCE(kcm->rx_psock) &&
182	    sk_rmem_alloc_get(sk) < sk->sk_rcvlowat) {
183		spin_lock_bh(&mux->rx_lock);
184		kcm_rcv_ready(kcm);
185		spin_unlock_bh(&mux->rx_lock);
186	}
187}
188
189static int kcm_queue_rcv_skb(struct sock *sk, struct sk_buff *skb)
190{
191	struct sk_buff_head *list = &sk->sk_receive_queue;
192
193	if (atomic_read(&sk->sk_rmem_alloc) >= sk->sk_rcvbuf)
194		return -ENOMEM;
195
196	if (!sk_rmem_schedule(sk, skb, skb->truesize))
197		return -ENOBUFS;
198
199	skb->dev = NULL;
200
201	skb_orphan(skb);
202	skb->sk = sk;
203	skb->destructor = kcm_rfree;
204	atomic_add(skb->truesize, &sk->sk_rmem_alloc);
205	sk_mem_charge(sk, skb->truesize);
206
207	skb_queue_tail(list, skb);
208
209	if (!sock_flag(sk, SOCK_DEAD))
210		sk->sk_data_ready(sk);
211
212	return 0;
213}
214
215/* Requeue received messages for a kcm socket to other kcm sockets. This is
216 * called with a kcm socket is receive disabled.
217 * RX mux lock held.
218 */
219static void requeue_rx_msgs(struct kcm_mux *mux, struct sk_buff_head *head)
220{
221	struct sk_buff *skb;
222	struct kcm_sock *kcm;
223
224	while ((skb = skb_dequeue(head))) {
225		/* Reset destructor to avoid calling kcm_rcv_ready */
226		skb->destructor = sock_rfree;
227		skb_orphan(skb);
228try_again:
229		if (list_empty(&mux->kcm_rx_waiters)) {
230			skb_queue_tail(&mux->rx_hold_queue, skb);
231			continue;
232		}
233
234		kcm = list_first_entry(&mux->kcm_rx_waiters,
235				       struct kcm_sock, wait_rx_list);
236
237		if (kcm_queue_rcv_skb(&kcm->sk, skb)) {
238			/* Should mean socket buffer full */
239			list_del(&kcm->wait_rx_list);
240			/* paired with lockless reads in kcm_rfree() */
241			WRITE_ONCE(kcm->rx_wait, false);
242
243			/* Commit rx_wait to read in kcm_free */
244			smp_wmb();
245
246			goto try_again;
247		}
248	}
249}
250
251/* Lower sock lock held */
252static struct kcm_sock *reserve_rx_kcm(struct kcm_psock *psock,
253				       struct sk_buff *head)
254{
255	struct kcm_mux *mux = psock->mux;
256	struct kcm_sock *kcm;
257
258	WARN_ON(psock->ready_rx_msg);
259
260	if (psock->rx_kcm)
261		return psock->rx_kcm;
262
263	spin_lock_bh(&mux->rx_lock);
264
265	if (psock->rx_kcm) {
266		spin_unlock_bh(&mux->rx_lock);
267		return psock->rx_kcm;
268	}
269
270	kcm_update_rx_mux_stats(mux, psock);
271
272	if (list_empty(&mux->kcm_rx_waiters)) {
273		psock->ready_rx_msg = head;
274		strp_pause(&psock->strp);
275		list_add_tail(&psock->psock_ready_list,
276			      &mux->psocks_ready);
277		spin_unlock_bh(&mux->rx_lock);
278		return NULL;
279	}
280
281	kcm = list_first_entry(&mux->kcm_rx_waiters,
282			       struct kcm_sock, wait_rx_list);
283	list_del(&kcm->wait_rx_list);
284	/* paired with lockless reads in kcm_rfree() */
285	WRITE_ONCE(kcm->rx_wait, false);
286
287	psock->rx_kcm = kcm;
288	/* paired with lockless reads in kcm_rfree() */
289	WRITE_ONCE(kcm->rx_psock, psock);
290
291	spin_unlock_bh(&mux->rx_lock);
292
293	return kcm;
294}
295
296static void kcm_done(struct kcm_sock *kcm);
297
298static void kcm_done_work(struct work_struct *w)
299{
300	kcm_done(container_of(w, struct kcm_sock, done_work));
301}
302
303/* Lower sock held */
304static void unreserve_rx_kcm(struct kcm_psock *psock,
305			     bool rcv_ready)
306{
307	struct kcm_sock *kcm = psock->rx_kcm;
308	struct kcm_mux *mux = psock->mux;
309
310	if (!kcm)
311		return;
312
313	spin_lock_bh(&mux->rx_lock);
314
315	psock->rx_kcm = NULL;
316	/* paired with lockless reads in kcm_rfree() */
317	WRITE_ONCE(kcm->rx_psock, NULL);
318
319	/* Commit kcm->rx_psock before sk_rmem_alloc_get to sync with
320	 * kcm_rfree
321	 */
322	smp_mb();
323
324	if (unlikely(kcm->done)) {
325		spin_unlock_bh(&mux->rx_lock);
326
327		/* Need to run kcm_done in a task since we need to qcquire
328		 * callback locks which may already be held here.
329		 */
330		INIT_WORK(&kcm->done_work, kcm_done_work);
331		schedule_work(&kcm->done_work);
332		return;
333	}
334
335	if (unlikely(kcm->rx_disabled)) {
336		requeue_rx_msgs(mux, &kcm->sk.sk_receive_queue);
337	} else if (rcv_ready || unlikely(!sk_rmem_alloc_get(&kcm->sk))) {
338		/* Check for degenerative race with rx_wait that all
339		 * data was dequeued (accounted for in kcm_rfree).
340		 */
341		kcm_rcv_ready(kcm);
342	}
343	spin_unlock_bh(&mux->rx_lock);
344}
345
346/* Lower sock lock held */
347static void psock_data_ready(struct sock *sk)
348{
349	struct kcm_psock *psock;
350
351	read_lock_bh(&sk->sk_callback_lock);
352
353	psock = (struct kcm_psock *)sk->sk_user_data;
354	if (likely(psock))
355		strp_data_ready(&psock->strp);
356
357	read_unlock_bh(&sk->sk_callback_lock);
358}
359
360/* Called with lower sock held */
361static void kcm_rcv_strparser(struct strparser *strp, struct sk_buff *skb)
362{
363	struct kcm_psock *psock = container_of(strp, struct kcm_psock, strp);
364	struct kcm_sock *kcm;
365
366try_queue:
367	kcm = reserve_rx_kcm(psock, skb);
368	if (!kcm) {
369		 /* Unable to reserve a KCM, message is held in psock and strp
370		  * is paused.
371		  */
372		return;
373	}
374
375	if (kcm_queue_rcv_skb(&kcm->sk, skb)) {
376		/* Should mean socket buffer full */
377		unreserve_rx_kcm(psock, false);
378		goto try_queue;
379	}
380}
381
382static int kcm_parse_func_strparser(struct strparser *strp, struct sk_buff *skb)
383{
384	struct kcm_psock *psock = container_of(strp, struct kcm_psock, strp);
385	struct bpf_prog *prog = psock->bpf_prog;
386	int res;
387
388	res = bpf_prog_run_pin_on_cpu(prog, skb);
389	return res;
390}
391
392static int kcm_read_sock_done(struct strparser *strp, int err)
393{
394	struct kcm_psock *psock = container_of(strp, struct kcm_psock, strp);
395
396	unreserve_rx_kcm(psock, true);
397
398	return err;
399}
400
401static void psock_state_change(struct sock *sk)
402{
403	/* TCP only does a EPOLLIN for a half close. Do a EPOLLHUP here
404	 * since application will normally not poll with EPOLLIN
405	 * on the TCP sockets.
406	 */
407
408	report_csk_error(sk, EPIPE);
409}
410
411static void psock_write_space(struct sock *sk)
412{
413	struct kcm_psock *psock;
414	struct kcm_mux *mux;
415	struct kcm_sock *kcm;
416
417	read_lock_bh(&sk->sk_callback_lock);
418
419	psock = (struct kcm_psock *)sk->sk_user_data;
420	if (unlikely(!psock))
421		goto out;
422	mux = psock->mux;
423
424	spin_lock_bh(&mux->lock);
425
426	/* Check if the socket is reserved so someone is waiting for sending. */
427	kcm = psock->tx_kcm;
428	if (kcm && !unlikely(kcm->tx_stopped))
429		queue_work(kcm_wq, &kcm->tx_work);
430
431	spin_unlock_bh(&mux->lock);
432out:
433	read_unlock_bh(&sk->sk_callback_lock);
434}
435
436static void unreserve_psock(struct kcm_sock *kcm);
437
438/* kcm sock is locked. */
439static struct kcm_psock *reserve_psock(struct kcm_sock *kcm)
440{
441	struct kcm_mux *mux = kcm->mux;
442	struct kcm_psock *psock;
443
444	psock = kcm->tx_psock;
445
446	smp_rmb(); /* Must read tx_psock before tx_wait */
447
448	if (psock) {
449		WARN_ON(kcm->tx_wait);
450		if (unlikely(psock->tx_stopped))
451			unreserve_psock(kcm);
452		else
453			return kcm->tx_psock;
454	}
455
456	spin_lock_bh(&mux->lock);
457
458	/* Check again under lock to see if psock was reserved for this
459	 * psock via psock_unreserve.
460	 */
461	psock = kcm->tx_psock;
462	if (unlikely(psock)) {
463		WARN_ON(kcm->tx_wait);
464		spin_unlock_bh(&mux->lock);
465		return kcm->tx_psock;
466	}
467
468	if (!list_empty(&mux->psocks_avail)) {
469		psock = list_first_entry(&mux->psocks_avail,
470					 struct kcm_psock,
471					 psock_avail_list);
472		list_del(&psock->psock_avail_list);
473		if (kcm->tx_wait) {
474			list_del(&kcm->wait_psock_list);
475			kcm->tx_wait = false;
476		}
477		kcm->tx_psock = psock;
478		psock->tx_kcm = kcm;
479		KCM_STATS_INCR(psock->stats.reserved);
480	} else if (!kcm->tx_wait) {
481		list_add_tail(&kcm->wait_psock_list,
482			      &mux->kcm_tx_waiters);
483		kcm->tx_wait = true;
484	}
485
486	spin_unlock_bh(&mux->lock);
487
488	return psock;
489}
490
491/* mux lock held */
492static void psock_now_avail(struct kcm_psock *psock)
493{
494	struct kcm_mux *mux = psock->mux;
495	struct kcm_sock *kcm;
496
497	if (list_empty(&mux->kcm_tx_waiters)) {
498		list_add_tail(&psock->psock_avail_list,
499			      &mux->psocks_avail);
500	} else {
501		kcm = list_first_entry(&mux->kcm_tx_waiters,
502				       struct kcm_sock,
503				       wait_psock_list);
504		list_del(&kcm->wait_psock_list);
505		kcm->tx_wait = false;
506		psock->tx_kcm = kcm;
507
508		/* Commit before changing tx_psock since that is read in
509		 * reserve_psock before queuing work.
510		 */
511		smp_mb();
512
513		kcm->tx_psock = psock;
514		KCM_STATS_INCR(psock->stats.reserved);
515		queue_work(kcm_wq, &kcm->tx_work);
516	}
517}
518
519/* kcm sock is locked. */
520static void unreserve_psock(struct kcm_sock *kcm)
521{
522	struct kcm_psock *psock;
523	struct kcm_mux *mux = kcm->mux;
524
525	spin_lock_bh(&mux->lock);
526
527	psock = kcm->tx_psock;
528
529	if (WARN_ON(!psock)) {
530		spin_unlock_bh(&mux->lock);
531		return;
532	}
533
534	smp_rmb(); /* Read tx_psock before tx_wait */
535
536	kcm_update_tx_mux_stats(mux, psock);
537
538	WARN_ON(kcm->tx_wait);
539
540	kcm->tx_psock = NULL;
541	psock->tx_kcm = NULL;
542	KCM_STATS_INCR(psock->stats.unreserved);
543
544	if (unlikely(psock->tx_stopped)) {
545		if (psock->done) {
546			/* Deferred free */
547			list_del(&psock->psock_list);
548			mux->psocks_cnt--;
549			sock_put(psock->sk);
550			fput(psock->sk->sk_socket->file);
551			kmem_cache_free(kcm_psockp, psock);
552		}
553
554		/* Don't put back on available list */
555
556		spin_unlock_bh(&mux->lock);
557
558		return;
559	}
560
561	psock_now_avail(psock);
562
563	spin_unlock_bh(&mux->lock);
564}
565
566static void kcm_report_tx_retry(struct kcm_sock *kcm)
567{
568	struct kcm_mux *mux = kcm->mux;
569
570	spin_lock_bh(&mux->lock);
571	KCM_STATS_INCR(mux->stats.tx_retries);
572	spin_unlock_bh(&mux->lock);
573}
574
575/* Write any messages ready on the kcm socket.  Called with kcm sock lock
576 * held.  Return bytes actually sent or error.
577 */
578static int kcm_write_msgs(struct kcm_sock *kcm)
579{
580	struct sock *sk = &kcm->sk;
581	struct kcm_psock *psock;
582	struct sk_buff *skb, *head;
583	struct kcm_tx_msg *txm;
584	unsigned short fragidx, frag_offset;
585	unsigned int sent, total_sent = 0;
586	int ret = 0;
587
588	kcm->tx_wait_more = false;
589	psock = kcm->tx_psock;
590	if (unlikely(psock && psock->tx_stopped)) {
591		/* A reserved psock was aborted asynchronously. Unreserve
592		 * it and we'll retry the message.
593		 */
594		unreserve_psock(kcm);
595		kcm_report_tx_retry(kcm);
596		if (skb_queue_empty(&sk->sk_write_queue))
597			return 0;
598
599		kcm_tx_msg(skb_peek(&sk->sk_write_queue))->sent = 0;
600
601	} else if (skb_queue_empty(&sk->sk_write_queue)) {
602		return 0;
603	}
604
605	head = skb_peek(&sk->sk_write_queue);
606	txm = kcm_tx_msg(head);
607
608	if (txm->sent) {
609		/* Send of first skbuff in queue already in progress */
610		if (WARN_ON(!psock)) {
611			ret = -EINVAL;
612			goto out;
613		}
614		sent = txm->sent;
615		frag_offset = txm->frag_offset;
616		fragidx = txm->fragidx;
617		skb = txm->frag_skb;
618
619		goto do_frag;
620	}
621
622try_again:
623	psock = reserve_psock(kcm);
624	if (!psock)
625		goto out;
626
627	do {
628		skb = head;
629		txm = kcm_tx_msg(head);
630		sent = 0;
631
632do_frag_list:
633		if (WARN_ON(!skb_shinfo(skb)->nr_frags)) {
634			ret = -EINVAL;
635			goto out;
636		}
637
638		for (fragidx = 0; fragidx < skb_shinfo(skb)->nr_frags;
639		     fragidx++) {
640			skb_frag_t *frag;
641
642			frag_offset = 0;
643do_frag:
644			frag = &skb_shinfo(skb)->frags[fragidx];
645			if (WARN_ON(!skb_frag_size(frag))) {
646				ret = -EINVAL;
647				goto out;
648			}
649
650			ret = kernel_sendpage(psock->sk->sk_socket,
651					      skb_frag_page(frag),
652					      skb_frag_off(frag) + frag_offset,
653					      skb_frag_size(frag) - frag_offset,
654					      MSG_DONTWAIT);
655			if (ret <= 0) {
656				if (ret == -EAGAIN) {
657					/* Save state to try again when there's
658					 * write space on the socket
659					 */
660					txm->sent = sent;
661					txm->frag_offset = frag_offset;
662					txm->fragidx = fragidx;
663					txm->frag_skb = skb;
664
665					ret = 0;
666					goto out;
667				}
668
669				/* Hard failure in sending message, abort this
670				 * psock since it has lost framing
671				 * synchonization and retry sending the
672				 * message from the beginning.
673				 */
674				kcm_abort_tx_psock(psock, ret ? -ret : EPIPE,
675						   true);
676				unreserve_psock(kcm);
677
678				txm->sent = 0;
679				kcm_report_tx_retry(kcm);
680				ret = 0;
681
682				goto try_again;
683			}
684
685			sent += ret;
686			frag_offset += ret;
687			KCM_STATS_ADD(psock->stats.tx_bytes, ret);
688			if (frag_offset < skb_frag_size(frag)) {
689				/* Not finished with this frag */
690				goto do_frag;
691			}
692		}
693
694		if (skb == head) {
695			if (skb_has_frag_list(skb)) {
696				skb = skb_shinfo(skb)->frag_list;
697				goto do_frag_list;
698			}
699		} else if (skb->next) {
700			skb = skb->next;
701			goto do_frag_list;
702		}
703
704		/* Successfully sent the whole packet, account for it. */
705		skb_dequeue(&sk->sk_write_queue);
706		kfree_skb(head);
707		sk->sk_wmem_queued -= sent;
708		total_sent += sent;
709		KCM_STATS_INCR(psock->stats.tx_msgs);
710	} while ((head = skb_peek(&sk->sk_write_queue)));
711out:
712	if (!head) {
713		/* Done with all queued messages. */
714		WARN_ON(!skb_queue_empty(&sk->sk_write_queue));
715		unreserve_psock(kcm);
716	}
717
718	/* Check if write space is available */
719	sk->sk_write_space(sk);
720
721	return total_sent ? : ret;
722}
723
724static void kcm_tx_work(struct work_struct *w)
725{
726	struct kcm_sock *kcm = container_of(w, struct kcm_sock, tx_work);
727	struct sock *sk = &kcm->sk;
728	int err;
729
730	lock_sock(sk);
731
732	/* Primarily for SOCK_DGRAM sockets, also handle asynchronous tx
733	 * aborts
734	 */
735	err = kcm_write_msgs(kcm);
736	if (err < 0) {
737		/* Hard failure in write, report error on KCM socket */
738		pr_warn("KCM: Hard failure on kcm_write_msgs %d\n", err);
739		report_csk_error(&kcm->sk, -err);
740		goto out;
741	}
742
743	/* Primarily for SOCK_SEQPACKET sockets */
744	if (likely(sk->sk_socket) &&
745	    test_bit(SOCK_NOSPACE, &sk->sk_socket->flags)) {
746		clear_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
747		sk->sk_write_space(sk);
748	}
749
750out:
751	release_sock(sk);
752}
753
754static void kcm_push(struct kcm_sock *kcm)
755{
756	if (kcm->tx_wait_more)
757		kcm_write_msgs(kcm);
758}
759
760static ssize_t kcm_sendpage(struct socket *sock, struct page *page,
761			    int offset, size_t size, int flags)
762
763{
764	struct sock *sk = sock->sk;
765	struct kcm_sock *kcm = kcm_sk(sk);
766	struct sk_buff *skb = NULL, *head = NULL;
767	long timeo = sock_sndtimeo(sk, flags & MSG_DONTWAIT);
768	bool eor;
769	int err = 0;
770	int i;
771
772	if (flags & MSG_SENDPAGE_NOTLAST)
773		flags |= MSG_MORE;
774
775	/* No MSG_EOR from splice, only look at MSG_MORE */
776	eor = !(flags & MSG_MORE);
777
778	lock_sock(sk);
779
780	sk_clear_bit(SOCKWQ_ASYNC_NOSPACE, sk);
781
782	err = -EPIPE;
783	if (sk->sk_err)
784		goto out_error;
785
786	if (kcm->seq_skb) {
787		/* Previously opened message */
788		head = kcm->seq_skb;
789		skb = kcm_tx_msg(head)->last_skb;
790		i = skb_shinfo(skb)->nr_frags;
791
792		if (skb_can_coalesce(skb, i, page, offset)) {
793			skb_frag_size_add(&skb_shinfo(skb)->frags[i - 1], size);
794			skb_shinfo(skb)->tx_flags |= SKBTX_SHARED_FRAG;
795			goto coalesced;
796		}
797
798		if (i >= MAX_SKB_FRAGS) {
799			struct sk_buff *tskb;
800
801			tskb = alloc_skb(0, sk->sk_allocation);
802			while (!tskb) {
803				kcm_push(kcm);
804				err = sk_stream_wait_memory(sk, &timeo);
805				if (err)
806					goto out_error;
807			}
808
809			if (head == skb)
810				skb_shinfo(head)->frag_list = tskb;
811			else
812				skb->next = tskb;
813
814			skb = tskb;
815			skb->ip_summed = CHECKSUM_UNNECESSARY;
816			i = 0;
817		}
818	} else {
819		/* Call the sk_stream functions to manage the sndbuf mem. */
820		if (!sk_stream_memory_free(sk)) {
821			kcm_push(kcm);
822			set_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
823			err = sk_stream_wait_memory(sk, &timeo);
824			if (err)
825				goto out_error;
826		}
827
828		head = alloc_skb(0, sk->sk_allocation);
829		while (!head) {
830			kcm_push(kcm);
831			err = sk_stream_wait_memory(sk, &timeo);
832			if (err)
833				goto out_error;
834		}
835
836		skb = head;
837		i = 0;
838	}
839
840	get_page(page);
841	skb_fill_page_desc(skb, i, page, offset, size);
842	skb_shinfo(skb)->tx_flags |= SKBTX_SHARED_FRAG;
843
844coalesced:
845	skb->len += size;
846	skb->data_len += size;
847	skb->truesize += size;
848	sk->sk_wmem_queued += size;
849	sk_mem_charge(sk, size);
850
851	if (head != skb) {
852		head->len += size;
853		head->data_len += size;
854		head->truesize += size;
855	}
856
857	if (eor) {
858		bool not_busy = skb_queue_empty(&sk->sk_write_queue);
859
860		/* Message complete, queue it on send buffer */
861		__skb_queue_tail(&sk->sk_write_queue, head);
862		kcm->seq_skb = NULL;
863		KCM_STATS_INCR(kcm->stats.tx_msgs);
864
865		if (flags & MSG_BATCH) {
866			kcm->tx_wait_more = true;
867		} else if (kcm->tx_wait_more || not_busy) {
868			err = kcm_write_msgs(kcm);
869			if (err < 0) {
870				/* We got a hard error in write_msgs but have
871				 * already queued this message. Report an error
872				 * in the socket, but don't affect return value
873				 * from sendmsg
874				 */
875				pr_warn("KCM: Hard failure on kcm_write_msgs\n");
876				report_csk_error(&kcm->sk, -err);
877			}
878		}
879	} else {
880		/* Message not complete, save state */
881		kcm->seq_skb = head;
882		kcm_tx_msg(head)->last_skb = skb;
883	}
884
885	KCM_STATS_ADD(kcm->stats.tx_bytes, size);
886
887	release_sock(sk);
888	return size;
889
890out_error:
891	kcm_push(kcm);
892
893	err = sk_stream_error(sk, flags, err);
894
895	/* make sure we wake any epoll edge trigger waiter */
896	if (unlikely(skb_queue_len(&sk->sk_write_queue) == 0 && err == -EAGAIN))
897		sk->sk_write_space(sk);
898
899	release_sock(sk);
900	return err;
901}
902
903static int kcm_sendmsg(struct socket *sock, struct msghdr *msg, size_t len)
904{
905	struct sock *sk = sock->sk;
906	struct kcm_sock *kcm = kcm_sk(sk);
907	struct sk_buff *skb = NULL, *head = NULL;
908	size_t copy, copied = 0;
909	long timeo = sock_sndtimeo(sk, msg->msg_flags & MSG_DONTWAIT);
910	int eor = (sock->type == SOCK_DGRAM) ?
911		  !(msg->msg_flags & MSG_MORE) : !!(msg->msg_flags & MSG_EOR);
912	int err = -EPIPE;
913
914	lock_sock(sk);
915
916	/* Per tcp_sendmsg this should be in poll */
917	sk_clear_bit(SOCKWQ_ASYNC_NOSPACE, sk);
918
919	if (sk->sk_err)
920		goto out_error;
921
922	if (kcm->seq_skb) {
923		/* Previously opened message */
924		head = kcm->seq_skb;
925		skb = kcm_tx_msg(head)->last_skb;
926		goto start;
927	}
928
929	/* Call the sk_stream functions to manage the sndbuf mem. */
930	if (!sk_stream_memory_free(sk)) {
931		kcm_push(kcm);
932		set_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
933		err = sk_stream_wait_memory(sk, &timeo);
934		if (err)
935			goto out_error;
936	}
937
938	if (msg_data_left(msg)) {
939		/* New message, alloc head skb */
940		head = alloc_skb(0, sk->sk_allocation);
941		while (!head) {
942			kcm_push(kcm);
943			err = sk_stream_wait_memory(sk, &timeo);
944			if (err)
945				goto out_error;
946
947			head = alloc_skb(0, sk->sk_allocation);
948		}
949
950		skb = head;
951
952		/* Set ip_summed to CHECKSUM_UNNECESSARY to avoid calling
953		 * csum_and_copy_from_iter from skb_do_copy_data_nocache.
954		 */
955		skb->ip_summed = CHECKSUM_UNNECESSARY;
956	}
957
958start:
959	while (msg_data_left(msg)) {
960		bool merge = true;
961		int i = skb_shinfo(skb)->nr_frags;
962		struct page_frag *pfrag = sk_page_frag(sk);
963
964		if (!sk_page_frag_refill(sk, pfrag))
965			goto wait_for_memory;
966
967		if (!skb_can_coalesce(skb, i, pfrag->page,
968				      pfrag->offset)) {
969			if (i == MAX_SKB_FRAGS) {
970				struct sk_buff *tskb;
971
972				tskb = alloc_skb(0, sk->sk_allocation);
973				if (!tskb)
974					goto wait_for_memory;
975
976				if (head == skb)
977					skb_shinfo(head)->frag_list = tskb;
978				else
979					skb->next = tskb;
980
981				skb = tskb;
982				skb->ip_summed = CHECKSUM_UNNECESSARY;
983				continue;
984			}
985			merge = false;
986		}
987
988		copy = min_t(int, msg_data_left(msg),
989			     pfrag->size - pfrag->offset);
990
991		if (!sk_wmem_schedule(sk, copy))
992			goto wait_for_memory;
993
994		err = skb_copy_to_page_nocache(sk, &msg->msg_iter, skb,
995					       pfrag->page,
996					       pfrag->offset,
997					       copy);
998		if (err)
999			goto out_error;
1000
1001		/* Update the skb. */
1002		if (merge) {
1003			skb_frag_size_add(&skb_shinfo(skb)->frags[i - 1], copy);
1004		} else {
1005			skb_fill_page_desc(skb, i, pfrag->page,
1006					   pfrag->offset, copy);
1007			get_page(pfrag->page);
1008		}
1009
1010		pfrag->offset += copy;
1011		copied += copy;
1012		if (head != skb) {
1013			head->len += copy;
1014			head->data_len += copy;
1015		}
1016
1017		continue;
1018
1019wait_for_memory:
1020		kcm_push(kcm);
1021		err = sk_stream_wait_memory(sk, &timeo);
1022		if (err)
1023			goto out_error;
1024	}
1025
1026	if (eor) {
1027		bool not_busy = skb_queue_empty(&sk->sk_write_queue);
1028
1029		if (head) {
1030			/* Message complete, queue it on send buffer */
1031			__skb_queue_tail(&sk->sk_write_queue, head);
1032			kcm->seq_skb = NULL;
1033			KCM_STATS_INCR(kcm->stats.tx_msgs);
1034		}
1035
1036		if (msg->msg_flags & MSG_BATCH) {
1037			kcm->tx_wait_more = true;
1038		} else if (kcm->tx_wait_more || not_busy) {
1039			err = kcm_write_msgs(kcm);
1040			if (err < 0) {
1041				/* We got a hard error in write_msgs but have
1042				 * already queued this message. Report an error
1043				 * in the socket, but don't affect return value
1044				 * from sendmsg
1045				 */
1046				pr_warn("KCM: Hard failure on kcm_write_msgs\n");
1047				report_csk_error(&kcm->sk, -err);
1048			}
1049		}
1050	} else {
1051		/* Message not complete, save state */
1052partial_message:
1053		if (head) {
1054			kcm->seq_skb = head;
1055			kcm_tx_msg(head)->last_skb = skb;
1056		}
1057	}
1058
1059	KCM_STATS_ADD(kcm->stats.tx_bytes, copied);
1060
1061	release_sock(sk);
1062	return copied;
1063
1064out_error:
1065	kcm_push(kcm);
1066
1067	if (sock->type == SOCK_SEQPACKET) {
1068		/* Wrote some bytes before encountering an
1069		 * error, return partial success.
1070		 */
1071		if (copied)
1072			goto partial_message;
1073		if (head != kcm->seq_skb)
1074			kfree_skb(head);
1075	} else {
1076		kfree_skb(head);
1077		kcm->seq_skb = NULL;
1078	}
1079
1080	err = sk_stream_error(sk, msg->msg_flags, err);
1081
1082	/* make sure we wake any epoll edge trigger waiter */
1083	if (unlikely(skb_queue_len(&sk->sk_write_queue) == 0 && err == -EAGAIN))
1084		sk->sk_write_space(sk);
1085
1086	release_sock(sk);
1087	return err;
1088}
1089
1090static int kcm_recvmsg(struct socket *sock, struct msghdr *msg,
1091		       size_t len, int flags)
1092{
1093	int noblock = flags & MSG_DONTWAIT;
1094	struct sock *sk = sock->sk;
1095	struct kcm_sock *kcm = kcm_sk(sk);
1096	int err = 0;
1097	struct strp_msg *stm;
1098	int copied = 0;
1099	struct sk_buff *skb;
1100
1101	skb = skb_recv_datagram(sk, flags, noblock, &err);
1102	if (!skb)
1103		goto out;
1104
1105	/* Okay, have a message on the receive queue */
1106
1107	stm = strp_msg(skb);
1108
1109	if (len > stm->full_len)
1110		len = stm->full_len;
1111
1112	err = skb_copy_datagram_msg(skb, stm->offset, msg, len);
1113	if (err < 0)
1114		goto out;
1115
1116	copied = len;
1117	if (likely(!(flags & MSG_PEEK))) {
1118		KCM_STATS_ADD(kcm->stats.rx_bytes, copied);
1119		if (copied < stm->full_len) {
1120			if (sock->type == SOCK_DGRAM) {
1121				/* Truncated message */
1122				msg->msg_flags |= MSG_TRUNC;
1123				goto msg_finished;
1124			}
1125			stm->offset += copied;
1126			stm->full_len -= copied;
1127		} else {
1128msg_finished:
1129			/* Finished with message */
1130			msg->msg_flags |= MSG_EOR;
1131			KCM_STATS_INCR(kcm->stats.rx_msgs);
1132		}
1133	}
1134
1135out:
1136	skb_free_datagram(sk, skb);
1137	return copied ? : err;
1138}
1139
1140static ssize_t kcm_splice_read(struct socket *sock, loff_t *ppos,
1141			       struct pipe_inode_info *pipe, size_t len,
1142			       unsigned int flags)
1143{
1144	int noblock = flags & MSG_DONTWAIT;
1145	struct sock *sk = sock->sk;
1146	struct kcm_sock *kcm = kcm_sk(sk);
1147	struct strp_msg *stm;
1148	int err = 0;
1149	ssize_t copied;
1150	struct sk_buff *skb;
1151
1152	/* Only support splice for SOCKSEQPACKET */
1153
1154	skb = skb_recv_datagram(sk, flags, noblock, &err);
1155	if (!skb)
1156		goto err_out;
1157
1158	/* Okay, have a message on the receive queue */
1159
1160	stm = strp_msg(skb);
1161
1162	if (len > stm->full_len)
1163		len = stm->full_len;
1164
1165	copied = skb_splice_bits(skb, sk, stm->offset, pipe, len, flags);
1166	if (copied < 0) {
1167		err = copied;
1168		goto err_out;
1169	}
1170
1171	KCM_STATS_ADD(kcm->stats.rx_bytes, copied);
1172
1173	stm->offset += copied;
1174	stm->full_len -= copied;
1175
1176	/* We have no way to return MSG_EOR. If all the bytes have been
1177	 * read we still leave the message in the receive socket buffer.
1178	 * A subsequent recvmsg needs to be done to return MSG_EOR and
1179	 * finish reading the message.
1180	 */
1181
1182	skb_free_datagram(sk, skb);
1183	return copied;
1184
1185err_out:
1186	skb_free_datagram(sk, skb);
1187	return err;
1188}
1189
1190/* kcm sock lock held */
1191static void kcm_recv_disable(struct kcm_sock *kcm)
1192{
1193	struct kcm_mux *mux = kcm->mux;
1194
1195	if (kcm->rx_disabled)
1196		return;
1197
1198	spin_lock_bh(&mux->rx_lock);
1199
1200	kcm->rx_disabled = 1;
1201
1202	/* If a psock is reserved we'll do cleanup in unreserve */
1203	if (!kcm->rx_psock) {
1204		if (kcm->rx_wait) {
1205			list_del(&kcm->wait_rx_list);
1206			/* paired with lockless reads in kcm_rfree() */
1207			WRITE_ONCE(kcm->rx_wait, false);
1208		}
1209
1210		requeue_rx_msgs(mux, &kcm->sk.sk_receive_queue);
1211	}
1212
1213	spin_unlock_bh(&mux->rx_lock);
1214}
1215
1216/* kcm sock lock held */
1217static void kcm_recv_enable(struct kcm_sock *kcm)
1218{
1219	struct kcm_mux *mux = kcm->mux;
1220
1221	if (!kcm->rx_disabled)
1222		return;
1223
1224	spin_lock_bh(&mux->rx_lock);
1225
1226	kcm->rx_disabled = 0;
1227	kcm_rcv_ready(kcm);
1228
1229	spin_unlock_bh(&mux->rx_lock);
1230}
1231
1232static int kcm_setsockopt(struct socket *sock, int level, int optname,
1233			  sockptr_t optval, unsigned int optlen)
1234{
1235	struct kcm_sock *kcm = kcm_sk(sock->sk);
1236	int val, valbool;
1237	int err = 0;
1238
1239	if (level != SOL_KCM)
1240		return -ENOPROTOOPT;
1241
1242	if (optlen < sizeof(int))
1243		return -EINVAL;
1244
1245	if (copy_from_sockptr(&val, optval, sizeof(int)))
1246		return -EFAULT;
1247
1248	valbool = val ? 1 : 0;
1249
1250	switch (optname) {
1251	case KCM_RECV_DISABLE:
1252		lock_sock(&kcm->sk);
1253		if (valbool)
1254			kcm_recv_disable(kcm);
1255		else
1256			kcm_recv_enable(kcm);
1257		release_sock(&kcm->sk);
1258		break;
1259	default:
1260		err = -ENOPROTOOPT;
1261	}
1262
1263	return err;
1264}
1265
1266static int kcm_getsockopt(struct socket *sock, int level, int optname,
1267			  char __user *optval, int __user *optlen)
1268{
1269	struct kcm_sock *kcm = kcm_sk(sock->sk);
1270	int val, len;
1271
1272	if (level != SOL_KCM)
1273		return -ENOPROTOOPT;
1274
1275	if (get_user(len, optlen))
1276		return -EFAULT;
1277
1278	len = min_t(unsigned int, len, sizeof(int));
1279	if (len < 0)
1280		return -EINVAL;
1281
1282	switch (optname) {
1283	case KCM_RECV_DISABLE:
1284		val = kcm->rx_disabled;
1285		break;
1286	default:
1287		return -ENOPROTOOPT;
1288	}
1289
1290	if (put_user(len, optlen))
1291		return -EFAULT;
1292	if (copy_to_user(optval, &val, len))
1293		return -EFAULT;
1294	return 0;
1295}
1296
1297static void init_kcm_sock(struct kcm_sock *kcm, struct kcm_mux *mux)
1298{
1299	struct kcm_sock *tkcm;
1300	struct list_head *head;
1301	int index = 0;
1302
1303	/* For SOCK_SEQPACKET sock type, datagram_poll checks the sk_state, so
1304	 * we set sk_state, otherwise epoll_wait always returns right away with
1305	 * EPOLLHUP
1306	 */
1307	kcm->sk.sk_state = TCP_ESTABLISHED;
1308
1309	/* Add to mux's kcm sockets list */
1310	kcm->mux = mux;
1311	spin_lock_bh(&mux->lock);
1312
1313	head = &mux->kcm_socks;
1314	list_for_each_entry(tkcm, &mux->kcm_socks, kcm_sock_list) {
1315		if (tkcm->index != index)
1316			break;
1317		head = &tkcm->kcm_sock_list;
1318		index++;
1319	}
1320
1321	list_add(&kcm->kcm_sock_list, head);
1322	kcm->index = index;
1323
1324	mux->kcm_socks_cnt++;
1325	spin_unlock_bh(&mux->lock);
1326
1327	INIT_WORK(&kcm->tx_work, kcm_tx_work);
1328
1329	spin_lock_bh(&mux->rx_lock);
1330	kcm_rcv_ready(kcm);
1331	spin_unlock_bh(&mux->rx_lock);
1332}
1333
1334static int kcm_attach(struct socket *sock, struct socket *csock,
1335		      struct bpf_prog *prog)
1336{
1337	struct kcm_sock *kcm = kcm_sk(sock->sk);
1338	struct kcm_mux *mux = kcm->mux;
1339	struct sock *csk;
1340	struct kcm_psock *psock = NULL, *tpsock;
1341	struct list_head *head;
1342	int index = 0;
1343	static const struct strp_callbacks cb = {
1344		.rcv_msg = kcm_rcv_strparser,
1345		.parse_msg = kcm_parse_func_strparser,
1346		.read_sock_done = kcm_read_sock_done,
1347	};
1348	int err = 0;
1349
1350	csk = csock->sk;
1351	if (!csk)
1352		return -EINVAL;
1353
1354	lock_sock(csk);
1355
1356	/* Only allow TCP sockets to be attached for now */
1357	if ((csk->sk_family != AF_INET && csk->sk_family != AF_INET6) ||
1358	    csk->sk_protocol != IPPROTO_TCP) {
1359		err = -EOPNOTSUPP;
1360		goto out;
1361	}
1362
1363	/* Don't allow listeners or closed sockets */
1364	if (csk->sk_state == TCP_LISTEN || csk->sk_state == TCP_CLOSE) {
1365		err = -EOPNOTSUPP;
1366		goto out;
1367	}
1368
1369	psock = kmem_cache_zalloc(kcm_psockp, GFP_KERNEL);
1370	if (!psock) {
1371		err = -ENOMEM;
1372		goto out;
1373	}
1374
1375	psock->mux = mux;
1376	psock->sk = csk;
1377	psock->bpf_prog = prog;
1378
1379	write_lock_bh(&csk->sk_callback_lock);
1380
1381	/* Check if sk_user_data is aready by KCM or someone else.
1382	 * Must be done under lock to prevent race conditions.
1383	 */
1384	if (csk->sk_user_data) {
1385		write_unlock_bh(&csk->sk_callback_lock);
1386		kmem_cache_free(kcm_psockp, psock);
1387		err = -EALREADY;
1388		goto out;
1389	}
1390
1391	err = strp_init(&psock->strp, csk, &cb);
1392	if (err) {
1393		write_unlock_bh(&csk->sk_callback_lock);
1394		kmem_cache_free(kcm_psockp, psock);
1395		goto out;
1396	}
1397
1398	psock->save_data_ready = csk->sk_data_ready;
1399	psock->save_write_space = csk->sk_write_space;
1400	psock->save_state_change = csk->sk_state_change;
1401	csk->sk_user_data = psock;
1402	csk->sk_data_ready = psock_data_ready;
1403	csk->sk_write_space = psock_write_space;
1404	csk->sk_state_change = psock_state_change;
1405
1406	write_unlock_bh(&csk->sk_callback_lock);
1407
1408	sock_hold(csk);
1409
1410	/* Finished initialization, now add the psock to the MUX. */
1411	spin_lock_bh(&mux->lock);
1412	head = &mux->psocks;
1413	list_for_each_entry(tpsock, &mux->psocks, psock_list) {
1414		if (tpsock->index != index)
1415			break;
1416		head = &tpsock->psock_list;
1417		index++;
1418	}
1419
1420	list_add(&psock->psock_list, head);
1421	psock->index = index;
1422
1423	KCM_STATS_INCR(mux->stats.psock_attach);
1424	mux->psocks_cnt++;
1425	psock_now_avail(psock);
1426	spin_unlock_bh(&mux->lock);
1427
1428	/* Schedule RX work in case there are already bytes queued */
1429	strp_check_rcv(&psock->strp);
1430
1431out:
1432	release_sock(csk);
1433
1434	return err;
1435}
1436
1437static int kcm_attach_ioctl(struct socket *sock, struct kcm_attach *info)
1438{
1439	struct socket *csock;
1440	struct bpf_prog *prog;
1441	int err;
1442
1443	csock = sockfd_lookup(info->fd, &err);
1444	if (!csock)
1445		return -ENOENT;
1446
1447	prog = bpf_prog_get_type(info->bpf_fd, BPF_PROG_TYPE_SOCKET_FILTER);
1448	if (IS_ERR(prog)) {
1449		err = PTR_ERR(prog);
1450		goto out;
1451	}
1452
1453	err = kcm_attach(sock, csock, prog);
1454	if (err) {
1455		bpf_prog_put(prog);
1456		goto out;
1457	}
1458
1459	/* Keep reference on file also */
1460
1461	return 0;
1462out:
1463	fput(csock->file);
1464	return err;
1465}
1466
1467static void kcm_unattach(struct kcm_psock *psock)
1468{
1469	struct sock *csk = psock->sk;
1470	struct kcm_mux *mux = psock->mux;
1471
1472	lock_sock(csk);
1473
1474	/* Stop getting callbacks from TCP socket. After this there should
1475	 * be no way to reserve a kcm for this psock.
1476	 */
1477	write_lock_bh(&csk->sk_callback_lock);
1478	csk->sk_user_data = NULL;
1479	csk->sk_data_ready = psock->save_data_ready;
1480	csk->sk_write_space = psock->save_write_space;
1481	csk->sk_state_change = psock->save_state_change;
1482	strp_stop(&psock->strp);
1483
1484	if (WARN_ON(psock->rx_kcm)) {
1485		write_unlock_bh(&csk->sk_callback_lock);
1486		release_sock(csk);
1487		return;
1488	}
1489
1490	spin_lock_bh(&mux->rx_lock);
1491
1492	/* Stop receiver activities. After this point psock should not be
1493	 * able to get onto ready list either through callbacks or work.
1494	 */
1495	if (psock->ready_rx_msg) {
1496		list_del(&psock->psock_ready_list);
1497		kfree_skb(psock->ready_rx_msg);
1498		psock->ready_rx_msg = NULL;
1499		KCM_STATS_INCR(mux->stats.rx_ready_drops);
1500	}
1501
1502	spin_unlock_bh(&mux->rx_lock);
1503
1504	write_unlock_bh(&csk->sk_callback_lock);
1505
1506	/* Call strp_done without sock lock */
1507	release_sock(csk);
1508	strp_done(&psock->strp);
1509	lock_sock(csk);
1510
1511	bpf_prog_put(psock->bpf_prog);
1512
1513	spin_lock_bh(&mux->lock);
1514
1515	aggregate_psock_stats(&psock->stats, &mux->aggregate_psock_stats);
1516	save_strp_stats(&psock->strp, &mux->aggregate_strp_stats);
1517
1518	KCM_STATS_INCR(mux->stats.psock_unattach);
1519
1520	if (psock->tx_kcm) {
1521		/* psock was reserved.  Just mark it finished and we will clean
1522		 * up in the kcm paths, we need kcm lock which can not be
1523		 * acquired here.
1524		 */
1525		KCM_STATS_INCR(mux->stats.psock_unattach_rsvd);
1526		spin_unlock_bh(&mux->lock);
1527
1528		/* We are unattaching a socket that is reserved. Abort the
1529		 * socket since we may be out of sync in sending on it. We need
1530		 * to do this without the mux lock.
1531		 */
1532		kcm_abort_tx_psock(psock, EPIPE, false);
1533
1534		spin_lock_bh(&mux->lock);
1535		if (!psock->tx_kcm) {
1536			/* psock now unreserved in window mux was unlocked */
1537			goto no_reserved;
1538		}
1539		psock->done = 1;
1540
1541		/* Commit done before queuing work to process it */
1542		smp_mb();
1543
1544		/* Queue tx work to make sure psock->done is handled */
1545		queue_work(kcm_wq, &psock->tx_kcm->tx_work);
1546		spin_unlock_bh(&mux->lock);
1547	} else {
1548no_reserved:
1549		if (!psock->tx_stopped)
1550			list_del(&psock->psock_avail_list);
1551		list_del(&psock->psock_list);
1552		mux->psocks_cnt--;
1553		spin_unlock_bh(&mux->lock);
1554
1555		sock_put(csk);
1556		fput(csk->sk_socket->file);
1557		kmem_cache_free(kcm_psockp, psock);
1558	}
1559
1560	release_sock(csk);
1561}
1562
1563static int kcm_unattach_ioctl(struct socket *sock, struct kcm_unattach *info)
1564{
1565	struct kcm_sock *kcm = kcm_sk(sock->sk);
1566	struct kcm_mux *mux = kcm->mux;
1567	struct kcm_psock *psock;
1568	struct socket *csock;
1569	struct sock *csk;
1570	int err;
1571
1572	csock = sockfd_lookup(info->fd, &err);
1573	if (!csock)
1574		return -ENOENT;
1575
1576	csk = csock->sk;
1577	if (!csk) {
1578		err = -EINVAL;
1579		goto out;
1580	}
1581
1582	err = -ENOENT;
1583
1584	spin_lock_bh(&mux->lock);
1585
1586	list_for_each_entry(psock, &mux->psocks, psock_list) {
1587		if (psock->sk != csk)
1588			continue;
1589
1590		/* Found the matching psock */
1591
1592		if (psock->unattaching || WARN_ON(psock->done)) {
1593			err = -EALREADY;
1594			break;
1595		}
1596
1597		psock->unattaching = 1;
1598
1599		spin_unlock_bh(&mux->lock);
1600
1601		/* Lower socket lock should already be held */
1602		kcm_unattach(psock);
1603
1604		err = 0;
1605		goto out;
1606	}
1607
1608	spin_unlock_bh(&mux->lock);
1609
1610out:
1611	fput(csock->file);
1612	return err;
1613}
1614
1615static struct proto kcm_proto = {
1616	.name	= "KCM",
1617	.owner	= THIS_MODULE,
1618	.obj_size = sizeof(struct kcm_sock),
1619};
1620
1621/* Clone a kcm socket. */
1622static struct file *kcm_clone(struct socket *osock)
1623{
1624	struct socket *newsock;
1625	struct sock *newsk;
1626
1627	newsock = sock_alloc();
1628	if (!newsock)
1629		return ERR_PTR(-ENFILE);
1630
1631	newsock->type = osock->type;
1632	newsock->ops = osock->ops;
1633
1634	__module_get(newsock->ops->owner);
1635
1636	newsk = sk_alloc(sock_net(osock->sk), PF_KCM, GFP_KERNEL,
1637			 &kcm_proto, false);
1638	if (!newsk) {
1639		sock_release(newsock);
1640		return ERR_PTR(-ENOMEM);
1641	}
1642	sock_init_data(newsock, newsk);
1643	init_kcm_sock(kcm_sk(newsk), kcm_sk(osock->sk)->mux);
1644
1645	return sock_alloc_file(newsock, 0, osock->sk->sk_prot_creator->name);
1646}
1647
1648static int kcm_ioctl(struct socket *sock, unsigned int cmd, unsigned long arg)
1649{
1650	int err;
1651
1652	switch (cmd) {
1653	case SIOCKCMATTACH: {
1654		struct kcm_attach info;
1655
1656		if (copy_from_user(&info, (void __user *)arg, sizeof(info)))
1657			return -EFAULT;
1658
1659		err = kcm_attach_ioctl(sock, &info);
1660
1661		break;
1662	}
1663	case SIOCKCMUNATTACH: {
1664		struct kcm_unattach info;
1665
1666		if (copy_from_user(&info, (void __user *)arg, sizeof(info)))
1667			return -EFAULT;
1668
1669		err = kcm_unattach_ioctl(sock, &info);
1670
1671		break;
1672	}
1673	case SIOCKCMCLONE: {
1674		struct kcm_clone info;
1675		struct file *file;
1676
1677		info.fd = get_unused_fd_flags(0);
1678		if (unlikely(info.fd < 0))
1679			return info.fd;
1680
1681		file = kcm_clone(sock);
1682		if (IS_ERR(file)) {
1683			put_unused_fd(info.fd);
1684			return PTR_ERR(file);
1685		}
1686		if (copy_to_user((void __user *)arg, &info,
1687				 sizeof(info))) {
1688			put_unused_fd(info.fd);
1689			fput(file);
1690			return -EFAULT;
1691		}
1692		fd_install(info.fd, file);
1693		err = 0;
1694		break;
1695	}
1696	default:
1697		err = -ENOIOCTLCMD;
1698		break;
1699	}
1700
1701	return err;
1702}
1703
1704static void free_mux(struct rcu_head *rcu)
1705{
1706	struct kcm_mux *mux = container_of(rcu,
1707	    struct kcm_mux, rcu);
1708
1709	kmem_cache_free(kcm_muxp, mux);
1710}
1711
1712static void release_mux(struct kcm_mux *mux)
1713{
1714	struct kcm_net *knet = mux->knet;
1715	struct kcm_psock *psock, *tmp_psock;
1716
1717	/* Release psocks */
1718	list_for_each_entry_safe(psock, tmp_psock,
1719				 &mux->psocks, psock_list) {
1720		if (!WARN_ON(psock->unattaching))
1721			kcm_unattach(psock);
1722	}
1723
1724	if (WARN_ON(mux->psocks_cnt))
1725		return;
1726
1727	__skb_queue_purge(&mux->rx_hold_queue);
1728
1729	mutex_lock(&knet->mutex);
1730	aggregate_mux_stats(&mux->stats, &knet->aggregate_mux_stats);
1731	aggregate_psock_stats(&mux->aggregate_psock_stats,
1732			      &knet->aggregate_psock_stats);
1733	aggregate_strp_stats(&mux->aggregate_strp_stats,
1734			     &knet->aggregate_strp_stats);
1735	list_del_rcu(&mux->kcm_mux_list);
1736	knet->count--;
1737	mutex_unlock(&knet->mutex);
1738
1739	call_rcu(&mux->rcu, free_mux);
1740}
1741
1742static void kcm_done(struct kcm_sock *kcm)
1743{
1744	struct kcm_mux *mux = kcm->mux;
1745	struct sock *sk = &kcm->sk;
1746	int socks_cnt;
1747
1748	spin_lock_bh(&mux->rx_lock);
1749	if (kcm->rx_psock) {
1750		/* Cleanup in unreserve_rx_kcm */
1751		WARN_ON(kcm->done);
1752		kcm->rx_disabled = 1;
1753		kcm->done = 1;
1754		spin_unlock_bh(&mux->rx_lock);
1755		return;
1756	}
1757
1758	if (kcm->rx_wait) {
1759		list_del(&kcm->wait_rx_list);
1760		/* paired with lockless reads in kcm_rfree() */
1761		WRITE_ONCE(kcm->rx_wait, false);
1762	}
1763	/* Move any pending receive messages to other kcm sockets */
1764	requeue_rx_msgs(mux, &sk->sk_receive_queue);
1765
1766	spin_unlock_bh(&mux->rx_lock);
1767
1768	if (WARN_ON(sk_rmem_alloc_get(sk)))
1769		return;
1770
1771	/* Detach from MUX */
1772	spin_lock_bh(&mux->lock);
1773
1774	list_del(&kcm->kcm_sock_list);
1775	mux->kcm_socks_cnt--;
1776	socks_cnt = mux->kcm_socks_cnt;
1777
1778	spin_unlock_bh(&mux->lock);
1779
1780	if (!socks_cnt) {
1781		/* We are done with the mux now. */
1782		release_mux(mux);
1783	}
1784
1785	WARN_ON(kcm->rx_wait);
1786
1787	sock_put(&kcm->sk);
1788}
1789
1790/* Called by kcm_release to close a KCM socket.
1791 * If this is the last KCM socket on the MUX, destroy the MUX.
1792 */
1793static int kcm_release(struct socket *sock)
1794{
1795	struct sock *sk = sock->sk;
1796	struct kcm_sock *kcm;
1797	struct kcm_mux *mux;
1798	struct kcm_psock *psock;
1799
1800	if (!sk)
1801		return 0;
1802
1803	kcm = kcm_sk(sk);
1804	mux = kcm->mux;
1805
1806	lock_sock(sk);
1807	sock_orphan(sk);
1808	kfree_skb(kcm->seq_skb);
1809
1810	/* Purge queue under lock to avoid race condition with tx_work trying
1811	 * to act when queue is nonempty. If tx_work runs after this point
1812	 * it will just return.
1813	 */
1814	__skb_queue_purge(&sk->sk_write_queue);
1815
1816	/* Set tx_stopped. This is checked when psock is bound to a kcm and we
1817	 * get a writespace callback. This prevents further work being queued
1818	 * from the callback (unbinding the psock occurs after canceling work.
1819	 */
1820	kcm->tx_stopped = 1;
1821
1822	release_sock(sk);
1823
1824	spin_lock_bh(&mux->lock);
1825	if (kcm->tx_wait) {
1826		/* Take of tx_wait list, after this point there should be no way
1827		 * that a psock will be assigned to this kcm.
1828		 */
1829		list_del(&kcm->wait_psock_list);
1830		kcm->tx_wait = false;
1831	}
1832	spin_unlock_bh(&mux->lock);
1833
1834	/* Cancel work. After this point there should be no outside references
1835	 * to the kcm socket.
1836	 */
1837	cancel_work_sync(&kcm->tx_work);
1838
1839	lock_sock(sk);
1840	psock = kcm->tx_psock;
1841	if (psock) {
1842		/* A psock was reserved, so we need to kill it since it
1843		 * may already have some bytes queued from a message. We
1844		 * need to do this after removing kcm from tx_wait list.
1845		 */
1846		kcm_abort_tx_psock(psock, EPIPE, false);
1847		unreserve_psock(kcm);
1848	}
1849	release_sock(sk);
1850
1851	WARN_ON(kcm->tx_wait);
1852	WARN_ON(kcm->tx_psock);
1853
1854	sock->sk = NULL;
1855
1856	kcm_done(kcm);
1857
1858	return 0;
1859}
1860
1861static const struct proto_ops kcm_dgram_ops = {
1862	.family =	PF_KCM,
1863	.owner =	THIS_MODULE,
1864	.release =	kcm_release,
1865	.bind =		sock_no_bind,
1866	.connect =	sock_no_connect,
1867	.socketpair =	sock_no_socketpair,
1868	.accept =	sock_no_accept,
1869	.getname =	sock_no_getname,
1870	.poll =		datagram_poll,
1871	.ioctl =	kcm_ioctl,
1872	.listen =	sock_no_listen,
1873	.shutdown =	sock_no_shutdown,
1874	.setsockopt =	kcm_setsockopt,
1875	.getsockopt =	kcm_getsockopt,
1876	.sendmsg =	kcm_sendmsg,
1877	.recvmsg =	kcm_recvmsg,
1878	.mmap =		sock_no_mmap,
1879	.sendpage =	kcm_sendpage,
1880};
1881
1882static const struct proto_ops kcm_seqpacket_ops = {
1883	.family =	PF_KCM,
1884	.owner =	THIS_MODULE,
1885	.release =	kcm_release,
1886	.bind =		sock_no_bind,
1887	.connect =	sock_no_connect,
1888	.socketpair =	sock_no_socketpair,
1889	.accept =	sock_no_accept,
1890	.getname =	sock_no_getname,
1891	.poll =		datagram_poll,
1892	.ioctl =	kcm_ioctl,
1893	.listen =	sock_no_listen,
1894	.shutdown =	sock_no_shutdown,
1895	.setsockopt =	kcm_setsockopt,
1896	.getsockopt =	kcm_getsockopt,
1897	.sendmsg =	kcm_sendmsg,
1898	.recvmsg =	kcm_recvmsg,
1899	.mmap =		sock_no_mmap,
1900	.sendpage =	kcm_sendpage,
1901	.splice_read =	kcm_splice_read,
1902};
1903
1904/* Create proto operation for kcm sockets */
1905static int kcm_create(struct net *net, struct socket *sock,
1906		      int protocol, int kern)
1907{
1908	struct kcm_net *knet = net_generic(net, kcm_net_id);
1909	struct sock *sk;
1910	struct kcm_mux *mux;
1911
1912	switch (sock->type) {
1913	case SOCK_DGRAM:
1914		sock->ops = &kcm_dgram_ops;
1915		break;
1916	case SOCK_SEQPACKET:
1917		sock->ops = &kcm_seqpacket_ops;
1918		break;
1919	default:
1920		return -ESOCKTNOSUPPORT;
1921	}
1922
1923	if (protocol != KCMPROTO_CONNECTED)
1924		return -EPROTONOSUPPORT;
1925
1926	sk = sk_alloc(net, PF_KCM, GFP_KERNEL, &kcm_proto, kern);
1927	if (!sk)
1928		return -ENOMEM;
1929
1930	/* Allocate a kcm mux, shared between KCM sockets */
1931	mux = kmem_cache_zalloc(kcm_muxp, GFP_KERNEL);
1932	if (!mux) {
1933		sk_free(sk);
1934		return -ENOMEM;
1935	}
1936
1937	spin_lock_init(&mux->lock);
1938	spin_lock_init(&mux->rx_lock);
1939	INIT_LIST_HEAD(&mux->kcm_socks);
1940	INIT_LIST_HEAD(&mux->kcm_rx_waiters);
1941	INIT_LIST_HEAD(&mux->kcm_tx_waiters);
1942
1943	INIT_LIST_HEAD(&mux->psocks);
1944	INIT_LIST_HEAD(&mux->psocks_ready);
1945	INIT_LIST_HEAD(&mux->psocks_avail);
1946
1947	mux->knet = knet;
1948
1949	/* Add new MUX to list */
1950	mutex_lock(&knet->mutex);
1951	list_add_rcu(&mux->kcm_mux_list, &knet->mux_list);
1952	knet->count++;
1953	mutex_unlock(&knet->mutex);
1954
1955	skb_queue_head_init(&mux->rx_hold_queue);
1956
1957	/* Init KCM socket */
1958	sock_init_data(sock, sk);
1959	init_kcm_sock(kcm_sk(sk), mux);
1960
1961	return 0;
1962}
1963
1964static const struct net_proto_family kcm_family_ops = {
1965	.family = PF_KCM,
1966	.create = kcm_create,
1967	.owner  = THIS_MODULE,
1968};
1969
1970static __net_init int kcm_init_net(struct net *net)
1971{
1972	struct kcm_net *knet = net_generic(net, kcm_net_id);
1973
1974	INIT_LIST_HEAD_RCU(&knet->mux_list);
1975	mutex_init(&knet->mutex);
1976
1977	return 0;
1978}
1979
1980static __net_exit void kcm_exit_net(struct net *net)
1981{
1982	struct kcm_net *knet = net_generic(net, kcm_net_id);
1983
1984	/* All KCM sockets should be closed at this point, which should mean
1985	 * that all multiplexors and psocks have been destroyed.
1986	 */
1987	WARN_ON(!list_empty(&knet->mux_list));
1988
1989	mutex_destroy(&knet->mutex);
1990}
1991
1992static struct pernet_operations kcm_net_ops = {
1993	.init = kcm_init_net,
1994	.exit = kcm_exit_net,
1995	.id   = &kcm_net_id,
1996	.size = sizeof(struct kcm_net),
1997};
1998
1999static int __init kcm_init(void)
2000{
2001	int err = -ENOMEM;
2002
2003	kcm_muxp = kmem_cache_create("kcm_mux_cache",
2004				     sizeof(struct kcm_mux), 0,
2005				     SLAB_HWCACHE_ALIGN, NULL);
2006	if (!kcm_muxp)
2007		goto fail;
2008
2009	kcm_psockp = kmem_cache_create("kcm_psock_cache",
2010				       sizeof(struct kcm_psock), 0,
2011					SLAB_HWCACHE_ALIGN, NULL);
2012	if (!kcm_psockp)
2013		goto fail;
2014
2015	kcm_wq = create_singlethread_workqueue("kkcmd");
2016	if (!kcm_wq)
2017		goto fail;
2018
2019	err = proto_register(&kcm_proto, 1);
2020	if (err)
2021		goto fail;
2022
2023	err = register_pernet_device(&kcm_net_ops);
2024	if (err)
2025		goto net_ops_fail;
2026
2027	err = sock_register(&kcm_family_ops);
2028	if (err)
2029		goto sock_register_fail;
2030
2031	err = kcm_proc_init();
2032	if (err)
2033		goto proc_init_fail;
2034
2035	return 0;
2036
2037proc_init_fail:
2038	sock_unregister(PF_KCM);
2039
2040sock_register_fail:
2041	unregister_pernet_device(&kcm_net_ops);
2042
2043net_ops_fail:
2044	proto_unregister(&kcm_proto);
2045
2046fail:
2047	kmem_cache_destroy(kcm_muxp);
2048	kmem_cache_destroy(kcm_psockp);
2049
2050	if (kcm_wq)
2051		destroy_workqueue(kcm_wq);
2052
2053	return err;
2054}
2055
2056static void __exit kcm_exit(void)
2057{
2058	kcm_proc_exit();
2059	sock_unregister(PF_KCM);
2060	unregister_pernet_device(&kcm_net_ops);
2061	proto_unregister(&kcm_proto);
2062	destroy_workqueue(kcm_wq);
2063
2064	kmem_cache_destroy(kcm_muxp);
2065	kmem_cache_destroy(kcm_psockp);
2066}
2067
2068module_init(kcm_init);
2069module_exit(kcm_exit);
2070
2071MODULE_LICENSE("GPL");
2072MODULE_ALIAS_NETPROTO(PF_KCM);
2073