1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright (c) 2015, Sony Mobile Communications Inc.
4  * Copyright (c) 2013, The Linux Foundation. All rights reserved.
5  */
6 #include <linux/module.h>
7 #include <linux/netlink.h>
8 #include <linux/qrtr.h>
9 #include <linux/termios.h>	/* For TIOCINQ/OUTQ */
10 #include <linux/spinlock.h>
11 #include <linux/wait.h>
12 
13 #include <net/sock.h>
14 
15 #include "qrtr.h"
16 
17 #define QRTR_PROTO_VER_1 1
18 #define QRTR_PROTO_VER_2 3
19 
20 /* auto-bind range */
21 #define QRTR_MIN_EPH_SOCKET 0x4000
22 #define QRTR_MAX_EPH_SOCKET 0x7fff
23 #define QRTR_EPH_PORT_RANGE \
24 		XA_LIMIT(QRTR_MIN_EPH_SOCKET, QRTR_MAX_EPH_SOCKET)
25 
26 /**
27  * struct qrtr_hdr_v1 - (I|R)PCrouter packet header version 1
28  * @version: protocol version
29  * @type: packet type; one of QRTR_TYPE_*
30  * @src_node_id: source node
31  * @src_port_id: source port
32  * @confirm_rx: boolean; whether a resume-tx packet should be send in reply
33  * @size: length of packet, excluding this header
34  * @dst_node_id: destination node
35  * @dst_port_id: destination port
36  */
37 struct qrtr_hdr_v1 {
38 	__le32 version;
39 	__le32 type;
40 	__le32 src_node_id;
41 	__le32 src_port_id;
42 	__le32 confirm_rx;
43 	__le32 size;
44 	__le32 dst_node_id;
45 	__le32 dst_port_id;
46 } __packed;
47 
48 /**
49  * struct qrtr_hdr_v2 - (I|R)PCrouter packet header later versions
50  * @version: protocol version
51  * @type: packet type; one of QRTR_TYPE_*
52  * @flags: bitmask of QRTR_FLAGS_*
53  * @optlen: length of optional header data
54  * @size: length of packet, excluding this header and optlen
55  * @src_node_id: source node
56  * @src_port_id: source port
57  * @dst_node_id: destination node
58  * @dst_port_id: destination port
59  */
60 struct qrtr_hdr_v2 {
61 	u8 version;
62 	u8 type;
63 	u8 flags;
64 	u8 optlen;
65 	__le32 size;
66 	__le16 src_node_id;
67 	__le16 src_port_id;
68 	__le16 dst_node_id;
69 	__le16 dst_port_id;
70 };
71 
72 #define QRTR_FLAGS_CONFIRM_RX	BIT(0)
73 
74 struct qrtr_cb {
75 	u32 src_node;
76 	u32 src_port;
77 	u32 dst_node;
78 	u32 dst_port;
79 
80 	u8 type;
81 	u8 confirm_rx;
82 };
83 
84 #define QRTR_HDR_MAX_SIZE max_t(size_t, sizeof(struct qrtr_hdr_v1), \
85 					sizeof(struct qrtr_hdr_v2))
86 
87 struct qrtr_sock {
88 	/* WARNING: sk must be the first member */
89 	struct sock sk;
90 	struct sockaddr_qrtr us;
91 	struct sockaddr_qrtr peer;
92 };
93 
qrtr_sk(struct sock * sk)94 static inline struct qrtr_sock *qrtr_sk(struct sock *sk)
95 {
96 	BUILD_BUG_ON(offsetof(struct qrtr_sock, sk) != 0);
97 	return container_of(sk, struct qrtr_sock, sk);
98 }
99 
100 static unsigned int qrtr_local_nid = 1;
101 
102 /* for node ids */
103 static RADIX_TREE(qrtr_nodes, GFP_ATOMIC);
104 static DEFINE_SPINLOCK(qrtr_nodes_lock);
105 /* broadcast list */
106 static LIST_HEAD(qrtr_all_nodes);
107 /* lock for qrtr_all_nodes and node reference */
108 static DEFINE_MUTEX(qrtr_node_lock);
109 
110 /* local port allocation management */
111 static DEFINE_XARRAY_ALLOC(qrtr_ports);
112 
113 /**
114  * struct qrtr_node - endpoint node
115  * @ep_lock: lock for endpoint management and callbacks
116  * @ep: endpoint
117  * @ref: reference count for node
118  * @nid: node id
119  * @qrtr_tx_flow: tree of qrtr_tx_flow, keyed by node << 32 | port
120  * @qrtr_tx_lock: lock for qrtr_tx_flow inserts
121  * @rx_queue: receive queue
122  * @item: list item for broadcast list
123  */
124 struct qrtr_node {
125 	struct mutex ep_lock;
126 	struct qrtr_endpoint *ep;
127 	struct kref ref;
128 	unsigned int nid;
129 
130 	struct radix_tree_root qrtr_tx_flow;
131 	struct mutex qrtr_tx_lock; /* for qrtr_tx_flow */
132 
133 	struct sk_buff_head rx_queue;
134 	struct list_head item;
135 };
136 
137 /**
138  * struct qrtr_tx_flow - tx flow control
139  * @resume_tx: waiters for a resume tx from the remote
140  * @pending: number of waiting senders
141  * @tx_failed: indicates that a message with confirm_rx flag was lost
142  */
143 struct qrtr_tx_flow {
144 	struct wait_queue_head resume_tx;
145 	int pending;
146 	int tx_failed;
147 };
148 
149 #define QRTR_TX_FLOW_HIGH	10
150 #define QRTR_TX_FLOW_LOW	5
151 
152 static int qrtr_local_enqueue(struct qrtr_node *node, struct sk_buff *skb,
153 			      int type, struct sockaddr_qrtr *from,
154 			      struct sockaddr_qrtr *to);
155 static int qrtr_bcast_enqueue(struct qrtr_node *node, struct sk_buff *skb,
156 			      int type, struct sockaddr_qrtr *from,
157 			      struct sockaddr_qrtr *to);
158 static struct qrtr_sock *qrtr_port_lookup(int port);
159 static void qrtr_port_put(struct qrtr_sock *ipc);
160 
161 /* Release node resources and free the node.
162  *
163  * Do not call directly, use qrtr_node_release.  To be used with
164  * kref_put_mutex.  As such, the node mutex is expected to be locked on call.
165  */
__qrtr_node_release(struct kref * kref)166 static void __qrtr_node_release(struct kref *kref)
167 {
168 	struct qrtr_node *node = container_of(kref, struct qrtr_node, ref);
169 	struct radix_tree_iter iter;
170 	struct qrtr_tx_flow *flow;
171 	unsigned long flags;
172 	void __rcu **slot;
173 
174 	spin_lock_irqsave(&qrtr_nodes_lock, flags);
175 	/* If the node is a bridge for other nodes, there are possibly
176 	 * multiple entries pointing to our released node, delete them all.
177 	 */
178 	radix_tree_for_each_slot(slot, &qrtr_nodes, &iter, 0) {
179 		if (*slot == node)
180 			radix_tree_iter_delete(&qrtr_nodes, &iter, slot);
181 	}
182 	spin_unlock_irqrestore(&qrtr_nodes_lock, flags);
183 
184 	list_del(&node->item);
185 	mutex_unlock(&qrtr_node_lock);
186 
187 	skb_queue_purge(&node->rx_queue);
188 
189 	/* Free tx flow counters */
190 	radix_tree_for_each_slot(slot, &node->qrtr_tx_flow, &iter, 0) {
191 		flow = *slot;
192 		radix_tree_iter_delete(&node->qrtr_tx_flow, &iter, slot);
193 		kfree(flow);
194 	}
195 	kfree(node);
196 }
197 
198 /* Increment reference to node. */
qrtr_node_acquire(struct qrtr_node * node)199 static struct qrtr_node *qrtr_node_acquire(struct qrtr_node *node)
200 {
201 	if (node)
202 		kref_get(&node->ref);
203 	return node;
204 }
205 
206 /* Decrement reference to node and release as necessary. */
qrtr_node_release(struct qrtr_node * node)207 static void qrtr_node_release(struct qrtr_node *node)
208 {
209 	if (!node)
210 		return;
211 	kref_put_mutex(&node->ref, __qrtr_node_release, &qrtr_node_lock);
212 }
213 
214 /**
215  * qrtr_tx_resume() - reset flow control counter
216  * @node:	qrtr_node that the QRTR_TYPE_RESUME_TX packet arrived on
217  * @skb:	resume_tx packet
218  */
qrtr_tx_resume(struct qrtr_node * node,struct sk_buff * skb)219 static void qrtr_tx_resume(struct qrtr_node *node, struct sk_buff *skb)
220 {
221 	struct qrtr_ctrl_pkt *pkt = (struct qrtr_ctrl_pkt *)skb->data;
222 	u64 remote_node = le32_to_cpu(pkt->client.node);
223 	u32 remote_port = le32_to_cpu(pkt->client.port);
224 	struct qrtr_tx_flow *flow;
225 	unsigned long key;
226 
227 	key = remote_node << 32 | remote_port;
228 
229 	rcu_read_lock();
230 	flow = radix_tree_lookup(&node->qrtr_tx_flow, key);
231 	rcu_read_unlock();
232 	if (flow) {
233 		spin_lock(&flow->resume_tx.lock);
234 		flow->pending = 0;
235 		spin_unlock(&flow->resume_tx.lock);
236 		wake_up_interruptible_all(&flow->resume_tx);
237 	}
238 
239 	consume_skb(skb);
240 }
241 
242 /**
243  * qrtr_tx_wait() - flow control for outgoing packets
244  * @node:	qrtr_node that the packet is to be send to
245  * @dest_node:	node id of the destination
246  * @dest_port:	port number of the destination
247  * @type:	type of message
248  *
249  * The flow control scheme is based around the low and high "watermarks". When
250  * the low watermark is passed the confirm_rx flag is set on the outgoing
251  * message, which will trigger the remote to send a control message of the type
252  * QRTR_TYPE_RESUME_TX to reset the counter. If the high watermark is hit
253  * further transmision should be paused.
254  *
255  * Return: 1 if confirm_rx should be set, 0 otherwise or errno failure
256  */
qrtr_tx_wait(struct qrtr_node * node,int dest_node,int dest_port,int type)257 static int qrtr_tx_wait(struct qrtr_node *node, int dest_node, int dest_port,
258 			int type)
259 {
260 	unsigned long key = (u64)dest_node << 32 | dest_port;
261 	struct qrtr_tx_flow *flow;
262 	int confirm_rx = 0;
263 	int ret;
264 
265 	/* Never set confirm_rx on non-data packets */
266 	if (type != QRTR_TYPE_DATA)
267 		return 0;
268 
269 	mutex_lock(&node->qrtr_tx_lock);
270 	flow = radix_tree_lookup(&node->qrtr_tx_flow, key);
271 	if (!flow) {
272 		flow = kzalloc(sizeof(*flow), GFP_KERNEL);
273 		if (flow) {
274 			init_waitqueue_head(&flow->resume_tx);
275 			if (radix_tree_insert(&node->qrtr_tx_flow, key, flow)) {
276 				kfree(flow);
277 				flow = NULL;
278 			}
279 		}
280 	}
281 	mutex_unlock(&node->qrtr_tx_lock);
282 
283 	/* Set confirm_rx if we where unable to find and allocate a flow */
284 	if (!flow)
285 		return 1;
286 
287 	spin_lock_irq(&flow->resume_tx.lock);
288 	ret = wait_event_interruptible_locked_irq(flow->resume_tx,
289 						  flow->pending < QRTR_TX_FLOW_HIGH ||
290 						  flow->tx_failed ||
291 						  !node->ep);
292 	if (ret < 0) {
293 		confirm_rx = ret;
294 	} else if (!node->ep) {
295 		confirm_rx = -EPIPE;
296 	} else if (flow->tx_failed) {
297 		flow->tx_failed = 0;
298 		confirm_rx = 1;
299 	} else {
300 		flow->pending++;
301 		confirm_rx = flow->pending == QRTR_TX_FLOW_LOW;
302 	}
303 	spin_unlock_irq(&flow->resume_tx.lock);
304 
305 	return confirm_rx;
306 }
307 
308 /**
309  * qrtr_tx_flow_failed() - flag that tx of confirm_rx flagged messages failed
310  * @node:	qrtr_node that the packet is to be send to
311  * @dest_node:	node id of the destination
312  * @dest_port:	port number of the destination
313  *
314  * Signal that the transmission of a message with confirm_rx flag failed. The
315  * flow's "pending" counter will keep incrementing towards QRTR_TX_FLOW_HIGH,
316  * at which point transmission would stall forever waiting for the resume TX
317  * message associated with the dropped confirm_rx message.
318  * Work around this by marking the flow as having a failed transmission and
319  * cause the next transmission attempt to be sent with the confirm_rx.
320  */
qrtr_tx_flow_failed(struct qrtr_node * node,int dest_node,int dest_port)321 static void qrtr_tx_flow_failed(struct qrtr_node *node, int dest_node,
322 				int dest_port)
323 {
324 	unsigned long key = (u64)dest_node << 32 | dest_port;
325 	struct qrtr_tx_flow *flow;
326 
327 	rcu_read_lock();
328 	flow = radix_tree_lookup(&node->qrtr_tx_flow, key);
329 	rcu_read_unlock();
330 	if (flow) {
331 		spin_lock_irq(&flow->resume_tx.lock);
332 		flow->tx_failed = 1;
333 		spin_unlock_irq(&flow->resume_tx.lock);
334 	}
335 }
336 
337 /* Pass an outgoing packet socket buffer to the endpoint driver. */
qrtr_node_enqueue(struct qrtr_node * node,struct sk_buff * skb,int type,struct sockaddr_qrtr * from,struct sockaddr_qrtr * to)338 static int qrtr_node_enqueue(struct qrtr_node *node, struct sk_buff *skb,
339 			     int type, struct sockaddr_qrtr *from,
340 			     struct sockaddr_qrtr *to)
341 {
342 	struct qrtr_hdr_v1 *hdr;
343 	size_t len = skb->len;
344 	int rc, confirm_rx;
345 
346 	confirm_rx = qrtr_tx_wait(node, to->sq_node, to->sq_port, type);
347 	if (confirm_rx < 0) {
348 		kfree_skb(skb);
349 		return confirm_rx;
350 	}
351 
352 	hdr = skb_push(skb, sizeof(*hdr));
353 	hdr->version = cpu_to_le32(QRTR_PROTO_VER_1);
354 	hdr->type = cpu_to_le32(type);
355 	hdr->src_node_id = cpu_to_le32(from->sq_node);
356 	hdr->src_port_id = cpu_to_le32(from->sq_port);
357 	if (to->sq_port == QRTR_PORT_CTRL) {
358 		hdr->dst_node_id = cpu_to_le32(node->nid);
359 		hdr->dst_port_id = cpu_to_le32(QRTR_PORT_CTRL);
360 	} else {
361 		hdr->dst_node_id = cpu_to_le32(to->sq_node);
362 		hdr->dst_port_id = cpu_to_le32(to->sq_port);
363 	}
364 
365 	hdr->size = cpu_to_le32(len);
366 	hdr->confirm_rx = !!confirm_rx;
367 
368 	rc = skb_put_padto(skb, ALIGN(len, 4) + sizeof(*hdr));
369 
370 	if (!rc) {
371 		mutex_lock(&node->ep_lock);
372 		rc = -ENODEV;
373 		if (node->ep)
374 			rc = node->ep->xmit(node->ep, skb);
375 		else
376 			kfree_skb(skb);
377 		mutex_unlock(&node->ep_lock);
378 	}
379 	/* Need to ensure that a subsequent message carries the otherwise lost
380 	 * confirm_rx flag if we dropped this one */
381 	if (rc && confirm_rx)
382 		qrtr_tx_flow_failed(node, to->sq_node, to->sq_port);
383 
384 	return rc;
385 }
386 
387 /* Lookup node by id.
388  *
389  * callers must release with qrtr_node_release()
390  */
qrtr_node_lookup(unsigned int nid)391 static struct qrtr_node *qrtr_node_lookup(unsigned int nid)
392 {
393 	struct qrtr_node *node;
394 	unsigned long flags;
395 
396 	spin_lock_irqsave(&qrtr_nodes_lock, flags);
397 	node = radix_tree_lookup(&qrtr_nodes, nid);
398 	node = qrtr_node_acquire(node);
399 	spin_unlock_irqrestore(&qrtr_nodes_lock, flags);
400 
401 	return node;
402 }
403 
404 /* Assign node id to node.
405  *
406  * This is mostly useful for automatic node id assignment, based on
407  * the source id in the incoming packet.
408  */
qrtr_node_assign(struct qrtr_node * node,unsigned int nid)409 static void qrtr_node_assign(struct qrtr_node *node, unsigned int nid)
410 {
411 	unsigned long flags;
412 
413 	if (nid == QRTR_EP_NID_AUTO)
414 		return;
415 
416 	spin_lock_irqsave(&qrtr_nodes_lock, flags);
417 	radix_tree_insert(&qrtr_nodes, nid, node);
418 	if (node->nid == QRTR_EP_NID_AUTO)
419 		node->nid = nid;
420 	spin_unlock_irqrestore(&qrtr_nodes_lock, flags);
421 }
422 
423 /**
424  * qrtr_endpoint_post() - post incoming data
425  * @ep: endpoint handle
426  * @data: data pointer
427  * @len: size of data in bytes
428  *
429  * Return: 0 on success; negative error code on failure
430  */
qrtr_endpoint_post(struct qrtr_endpoint * ep,const void * data,size_t len)431 int qrtr_endpoint_post(struct qrtr_endpoint *ep, const void *data, size_t len)
432 {
433 	struct qrtr_node *node = ep->node;
434 	const struct qrtr_hdr_v1 *v1;
435 	const struct qrtr_hdr_v2 *v2;
436 	struct qrtr_sock *ipc;
437 	struct sk_buff *skb;
438 	struct qrtr_cb *cb;
439 	unsigned int size;
440 	unsigned int ver;
441 	size_t hdrlen;
442 
443 	if (len == 0 || len & 3)
444 		return -EINVAL;
445 
446 	skb = __netdev_alloc_skb(NULL, len, GFP_ATOMIC | __GFP_NOWARN);
447 	if (!skb)
448 		return -ENOMEM;
449 
450 	cb = (struct qrtr_cb *)skb->cb;
451 
452 	/* Version field in v1 is little endian, so this works for both cases */
453 	ver = *(u8*)data;
454 
455 	switch (ver) {
456 	case QRTR_PROTO_VER_1:
457 		if (len < sizeof(*v1))
458 			goto err;
459 		v1 = data;
460 		hdrlen = sizeof(*v1);
461 
462 		cb->type = le32_to_cpu(v1->type);
463 		cb->src_node = le32_to_cpu(v1->src_node_id);
464 		cb->src_port = le32_to_cpu(v1->src_port_id);
465 		cb->confirm_rx = !!v1->confirm_rx;
466 		cb->dst_node = le32_to_cpu(v1->dst_node_id);
467 		cb->dst_port = le32_to_cpu(v1->dst_port_id);
468 
469 		size = le32_to_cpu(v1->size);
470 		break;
471 	case QRTR_PROTO_VER_2:
472 		if (len < sizeof(*v2))
473 			goto err;
474 		v2 = data;
475 		hdrlen = sizeof(*v2) + v2->optlen;
476 
477 		cb->type = v2->type;
478 		cb->confirm_rx = !!(v2->flags & QRTR_FLAGS_CONFIRM_RX);
479 		cb->src_node = le16_to_cpu(v2->src_node_id);
480 		cb->src_port = le16_to_cpu(v2->src_port_id);
481 		cb->dst_node = le16_to_cpu(v2->dst_node_id);
482 		cb->dst_port = le16_to_cpu(v2->dst_port_id);
483 
484 		if (cb->src_port == (u16)QRTR_PORT_CTRL)
485 			cb->src_port = QRTR_PORT_CTRL;
486 		if (cb->dst_port == (u16)QRTR_PORT_CTRL)
487 			cb->dst_port = QRTR_PORT_CTRL;
488 
489 		size = le32_to_cpu(v2->size);
490 		break;
491 	default:
492 		pr_err("qrtr: Invalid version %d\n", ver);
493 		goto err;
494 	}
495 
496 	if (len != ALIGN(size, 4) + hdrlen)
497 		goto err;
498 
499 	if (cb->dst_port != QRTR_PORT_CTRL && cb->type != QRTR_TYPE_DATA &&
500 	    cb->type != QRTR_TYPE_RESUME_TX)
501 		goto err;
502 
503 	skb_put_data(skb, data + hdrlen, size);
504 
505 	qrtr_node_assign(node, cb->src_node);
506 
507 	if (cb->type == QRTR_TYPE_NEW_SERVER) {
508 		/* Remote node endpoint can bridge other distant nodes */
509 		const struct qrtr_ctrl_pkt *pkt = data + hdrlen;
510 
511 		qrtr_node_assign(node, le32_to_cpu(pkt->server.node));
512 	}
513 
514 	if (cb->type == QRTR_TYPE_RESUME_TX) {
515 		qrtr_tx_resume(node, skb);
516 	} else {
517 		ipc = qrtr_port_lookup(cb->dst_port);
518 		if (!ipc)
519 			goto err;
520 
521 		if (sock_queue_rcv_skb(&ipc->sk, skb))
522 			goto err;
523 
524 		qrtr_port_put(ipc);
525 	}
526 
527 	return 0;
528 
529 err:
530 	kfree_skb(skb);
531 	return -EINVAL;
532 
533 }
534 EXPORT_SYMBOL_GPL(qrtr_endpoint_post);
535 
536 /**
537  * qrtr_alloc_ctrl_packet() - allocate control packet skb
538  * @pkt: reference to qrtr_ctrl_pkt pointer
539  * @flags: the type of memory to allocate
540  *
541  * Returns newly allocated sk_buff, or NULL on failure
542  *
543  * This function allocates a sk_buff large enough to carry a qrtr_ctrl_pkt and
544  * on success returns a reference to the control packet in @pkt.
545  */
qrtr_alloc_ctrl_packet(struct qrtr_ctrl_pkt ** pkt,gfp_t flags)546 static struct sk_buff *qrtr_alloc_ctrl_packet(struct qrtr_ctrl_pkt **pkt,
547 					      gfp_t flags)
548 {
549 	const int pkt_len = sizeof(struct qrtr_ctrl_pkt);
550 	struct sk_buff *skb;
551 
552 	skb = alloc_skb(QRTR_HDR_MAX_SIZE + pkt_len, flags);
553 	if (!skb)
554 		return NULL;
555 
556 	skb_reserve(skb, QRTR_HDR_MAX_SIZE);
557 	*pkt = skb_put_zero(skb, pkt_len);
558 
559 	return skb;
560 }
561 
562 /**
563  * qrtr_endpoint_register() - register a new endpoint
564  * @ep: endpoint to register
565  * @nid: desired node id; may be QRTR_EP_NID_AUTO for auto-assignment
566  * Return: 0 on success; negative error code on failure
567  *
568  * The specified endpoint must have the xmit function pointer set on call.
569  */
qrtr_endpoint_register(struct qrtr_endpoint * ep,unsigned int nid)570 int qrtr_endpoint_register(struct qrtr_endpoint *ep, unsigned int nid)
571 {
572 	struct qrtr_node *node;
573 
574 	if (!ep || !ep->xmit)
575 		return -EINVAL;
576 
577 	node = kzalloc(sizeof(*node), GFP_KERNEL);
578 	if (!node)
579 		return -ENOMEM;
580 
581 	kref_init(&node->ref);
582 	mutex_init(&node->ep_lock);
583 	skb_queue_head_init(&node->rx_queue);
584 	node->nid = QRTR_EP_NID_AUTO;
585 	node->ep = ep;
586 
587 	INIT_RADIX_TREE(&node->qrtr_tx_flow, GFP_KERNEL);
588 	mutex_init(&node->qrtr_tx_lock);
589 
590 	qrtr_node_assign(node, nid);
591 
592 	mutex_lock(&qrtr_node_lock);
593 	list_add(&node->item, &qrtr_all_nodes);
594 	mutex_unlock(&qrtr_node_lock);
595 	ep->node = node;
596 
597 	return 0;
598 }
599 EXPORT_SYMBOL_GPL(qrtr_endpoint_register);
600 
601 /**
602  * qrtr_endpoint_unregister - unregister endpoint
603  * @ep: endpoint to unregister
604  */
qrtr_endpoint_unregister(struct qrtr_endpoint * ep)605 void qrtr_endpoint_unregister(struct qrtr_endpoint *ep)
606 {
607 	struct qrtr_node *node = ep->node;
608 	struct sockaddr_qrtr src = {AF_QIPCRTR, node->nid, QRTR_PORT_CTRL};
609 	struct sockaddr_qrtr dst = {AF_QIPCRTR, qrtr_local_nid, QRTR_PORT_CTRL};
610 	struct radix_tree_iter iter;
611 	struct qrtr_ctrl_pkt *pkt;
612 	struct qrtr_tx_flow *flow;
613 	struct sk_buff *skb;
614 	unsigned long flags;
615 	void __rcu **slot;
616 
617 	mutex_lock(&node->ep_lock);
618 	node->ep = NULL;
619 	mutex_unlock(&node->ep_lock);
620 
621 	/* Notify the local controller about the event */
622 	spin_lock_irqsave(&qrtr_nodes_lock, flags);
623 	radix_tree_for_each_slot(slot, &qrtr_nodes, &iter, 0) {
624 		if (*slot != node)
625 			continue;
626 		src.sq_node = iter.index;
627 		skb = qrtr_alloc_ctrl_packet(&pkt, GFP_ATOMIC);
628 		if (skb) {
629 			pkt->cmd = cpu_to_le32(QRTR_TYPE_BYE);
630 			qrtr_local_enqueue(NULL, skb, QRTR_TYPE_BYE, &src, &dst);
631 		}
632 	}
633 	spin_unlock_irqrestore(&qrtr_nodes_lock, flags);
634 
635 	/* Wake up any transmitters waiting for resume-tx from the node */
636 	mutex_lock(&node->qrtr_tx_lock);
637 	radix_tree_for_each_slot(slot, &node->qrtr_tx_flow, &iter, 0) {
638 		flow = *slot;
639 		wake_up_interruptible_all(&flow->resume_tx);
640 	}
641 	mutex_unlock(&node->qrtr_tx_lock);
642 
643 	qrtr_node_release(node);
644 	ep->node = NULL;
645 }
646 EXPORT_SYMBOL_GPL(qrtr_endpoint_unregister);
647 
648 /* Lookup socket by port.
649  *
650  * Callers must release with qrtr_port_put()
651  */
qrtr_port_lookup(int port)652 static struct qrtr_sock *qrtr_port_lookup(int port)
653 {
654 	struct qrtr_sock *ipc;
655 
656 	if (port == QRTR_PORT_CTRL)
657 		port = 0;
658 
659 	rcu_read_lock();
660 	ipc = xa_load(&qrtr_ports, port);
661 	if (ipc)
662 		sock_hold(&ipc->sk);
663 	rcu_read_unlock();
664 
665 	return ipc;
666 }
667 
668 /* Release acquired socket. */
qrtr_port_put(struct qrtr_sock * ipc)669 static void qrtr_port_put(struct qrtr_sock *ipc)
670 {
671 	sock_put(&ipc->sk);
672 }
673 
674 /* Remove port assignment. */
qrtr_port_remove(struct qrtr_sock * ipc)675 static void qrtr_port_remove(struct qrtr_sock *ipc)
676 {
677 	struct qrtr_ctrl_pkt *pkt;
678 	struct sk_buff *skb;
679 	int port = ipc->us.sq_port;
680 	struct sockaddr_qrtr to;
681 
682 	to.sq_family = AF_QIPCRTR;
683 	to.sq_node = QRTR_NODE_BCAST;
684 	to.sq_port = QRTR_PORT_CTRL;
685 
686 	skb = qrtr_alloc_ctrl_packet(&pkt, GFP_KERNEL);
687 	if (skb) {
688 		pkt->cmd = cpu_to_le32(QRTR_TYPE_DEL_CLIENT);
689 		pkt->client.node = cpu_to_le32(ipc->us.sq_node);
690 		pkt->client.port = cpu_to_le32(ipc->us.sq_port);
691 
692 		skb_set_owner_w(skb, &ipc->sk);
693 		qrtr_bcast_enqueue(NULL, skb, QRTR_TYPE_DEL_CLIENT, &ipc->us,
694 				   &to);
695 	}
696 
697 	if (port == QRTR_PORT_CTRL)
698 		port = 0;
699 
700 	__sock_put(&ipc->sk);
701 
702 	xa_erase(&qrtr_ports, port);
703 
704 	/* Ensure that if qrtr_port_lookup() did enter the RCU read section we
705 	 * wait for it to up increment the refcount */
706 	synchronize_rcu();
707 }
708 
709 /* Assign port number to socket.
710  *
711  * Specify port in the integer pointed to by port, and it will be adjusted
712  * on return as necesssary.
713  *
714  * Port may be:
715  *   0: Assign ephemeral port in [QRTR_MIN_EPH_SOCKET, QRTR_MAX_EPH_SOCKET]
716  *   <QRTR_MIN_EPH_SOCKET: Specified; requires CAP_NET_ADMIN
717  *   >QRTR_MIN_EPH_SOCKET: Specified; available to all
718  */
qrtr_port_assign(struct qrtr_sock * ipc,int * port)719 static int qrtr_port_assign(struct qrtr_sock *ipc, int *port)
720 {
721 	int rc;
722 
723 	if (!*port) {
724 		rc = xa_alloc(&qrtr_ports, port, ipc, QRTR_EPH_PORT_RANGE,
725 				GFP_KERNEL);
726 	} else if (*port < QRTR_MIN_EPH_SOCKET && !capable(CAP_NET_ADMIN)) {
727 		rc = -EACCES;
728 	} else if (*port == QRTR_PORT_CTRL) {
729 		rc = xa_insert(&qrtr_ports, 0, ipc, GFP_KERNEL);
730 	} else {
731 		rc = xa_insert(&qrtr_ports, *port, ipc, GFP_KERNEL);
732 	}
733 
734 	if (rc == -EBUSY)
735 		return -EADDRINUSE;
736 	else if (rc < 0)
737 		return rc;
738 
739 	sock_hold(&ipc->sk);
740 
741 	return 0;
742 }
743 
744 /* Reset all non-control ports */
qrtr_reset_ports(void)745 static void qrtr_reset_ports(void)
746 {
747 	struct qrtr_sock *ipc;
748 	unsigned long index;
749 
750 	rcu_read_lock();
751 	xa_for_each_start(&qrtr_ports, index, ipc, 1) {
752 		sock_hold(&ipc->sk);
753 		ipc->sk.sk_err = ENETRESET;
754 		ipc->sk.sk_error_report(&ipc->sk);
755 		sock_put(&ipc->sk);
756 	}
757 	rcu_read_unlock();
758 }
759 
760 /* Bind socket to address.
761  *
762  * Socket should be locked upon call.
763  */
__qrtr_bind(struct socket * sock,const struct sockaddr_qrtr * addr,int zapped)764 static int __qrtr_bind(struct socket *sock,
765 		       const struct sockaddr_qrtr *addr, int zapped)
766 {
767 	struct qrtr_sock *ipc = qrtr_sk(sock->sk);
768 	struct sock *sk = sock->sk;
769 	int port;
770 	int rc;
771 
772 	/* rebinding ok */
773 	if (!zapped && addr->sq_port == ipc->us.sq_port)
774 		return 0;
775 
776 	port = addr->sq_port;
777 	rc = qrtr_port_assign(ipc, &port);
778 	if (rc)
779 		return rc;
780 
781 	/* unbind previous, if any */
782 	if (!zapped)
783 		qrtr_port_remove(ipc);
784 	ipc->us.sq_port = port;
785 
786 	sock_reset_flag(sk, SOCK_ZAPPED);
787 
788 	/* Notify all open ports about the new controller */
789 	if (port == QRTR_PORT_CTRL)
790 		qrtr_reset_ports();
791 
792 	return 0;
793 }
794 
795 /* Auto bind to an ephemeral port. */
qrtr_autobind(struct socket * sock)796 static int qrtr_autobind(struct socket *sock)
797 {
798 	struct sock *sk = sock->sk;
799 	struct sockaddr_qrtr addr;
800 
801 	if (!sock_flag(sk, SOCK_ZAPPED))
802 		return 0;
803 
804 	addr.sq_family = AF_QIPCRTR;
805 	addr.sq_node = qrtr_local_nid;
806 	addr.sq_port = 0;
807 
808 	return __qrtr_bind(sock, &addr, 1);
809 }
810 
811 /* Bind socket to specified sockaddr. */
qrtr_bind(struct socket * sock,struct sockaddr * saddr,int len)812 static int qrtr_bind(struct socket *sock, struct sockaddr *saddr, int len)
813 {
814 	DECLARE_SOCKADDR(struct sockaddr_qrtr *, addr, saddr);
815 	struct qrtr_sock *ipc = qrtr_sk(sock->sk);
816 	struct sock *sk = sock->sk;
817 	int rc;
818 
819 	if (len < sizeof(*addr) || addr->sq_family != AF_QIPCRTR)
820 		return -EINVAL;
821 
822 	if (addr->sq_node != ipc->us.sq_node)
823 		return -EINVAL;
824 
825 	lock_sock(sk);
826 	rc = __qrtr_bind(sock, addr, sock_flag(sk, SOCK_ZAPPED));
827 	release_sock(sk);
828 
829 	return rc;
830 }
831 
832 /* Queue packet to local peer socket. */
qrtr_local_enqueue(struct qrtr_node * node,struct sk_buff * skb,int type,struct sockaddr_qrtr * from,struct sockaddr_qrtr * to)833 static int qrtr_local_enqueue(struct qrtr_node *node, struct sk_buff *skb,
834 			      int type, struct sockaddr_qrtr *from,
835 			      struct sockaddr_qrtr *to)
836 {
837 	struct qrtr_sock *ipc;
838 	struct qrtr_cb *cb;
839 
840 	ipc = qrtr_port_lookup(to->sq_port);
841 	if (!ipc || &ipc->sk == skb->sk) { /* do not send to self */
842 		kfree_skb(skb);
843 		return -ENODEV;
844 	}
845 
846 	cb = (struct qrtr_cb *)skb->cb;
847 	cb->src_node = from->sq_node;
848 	cb->src_port = from->sq_port;
849 
850 	if (sock_queue_rcv_skb(&ipc->sk, skb)) {
851 		qrtr_port_put(ipc);
852 		kfree_skb(skb);
853 		return -ENOSPC;
854 	}
855 
856 	qrtr_port_put(ipc);
857 
858 	return 0;
859 }
860 
861 /* Queue packet for broadcast. */
qrtr_bcast_enqueue(struct qrtr_node * node,struct sk_buff * skb,int type,struct sockaddr_qrtr * from,struct sockaddr_qrtr * to)862 static int qrtr_bcast_enqueue(struct qrtr_node *node, struct sk_buff *skb,
863 			      int type, struct sockaddr_qrtr *from,
864 			      struct sockaddr_qrtr *to)
865 {
866 	struct sk_buff *skbn;
867 
868 	mutex_lock(&qrtr_node_lock);
869 	list_for_each_entry(node, &qrtr_all_nodes, item) {
870 		skbn = skb_clone(skb, GFP_KERNEL);
871 		if (!skbn)
872 			break;
873 		skb_set_owner_w(skbn, skb->sk);
874 		qrtr_node_enqueue(node, skbn, type, from, to);
875 	}
876 	mutex_unlock(&qrtr_node_lock);
877 
878 	qrtr_local_enqueue(NULL, skb, type, from, to);
879 
880 	return 0;
881 }
882 
qrtr_sendmsg(struct socket * sock,struct msghdr * msg,size_t len)883 static int qrtr_sendmsg(struct socket *sock, struct msghdr *msg, size_t len)
884 {
885 	DECLARE_SOCKADDR(struct sockaddr_qrtr *, addr, msg->msg_name);
886 	int (*enqueue_fn)(struct qrtr_node *, struct sk_buff *, int,
887 			  struct sockaddr_qrtr *, struct sockaddr_qrtr *);
888 	__le32 qrtr_type = cpu_to_le32(QRTR_TYPE_DATA);
889 	struct qrtr_sock *ipc = qrtr_sk(sock->sk);
890 	struct sock *sk = sock->sk;
891 	struct qrtr_node *node;
892 	struct sk_buff *skb;
893 	size_t plen;
894 	u32 type;
895 	int rc;
896 
897 	if (msg->msg_flags & ~(MSG_DONTWAIT))
898 		return -EINVAL;
899 
900 	if (len > 65535)
901 		return -EMSGSIZE;
902 
903 	lock_sock(sk);
904 
905 	if (addr) {
906 		if (msg->msg_namelen < sizeof(*addr)) {
907 			release_sock(sk);
908 			return -EINVAL;
909 		}
910 
911 		if (addr->sq_family != AF_QIPCRTR) {
912 			release_sock(sk);
913 			return -EINVAL;
914 		}
915 
916 		rc = qrtr_autobind(sock);
917 		if (rc) {
918 			release_sock(sk);
919 			return rc;
920 		}
921 	} else if (sk->sk_state == TCP_ESTABLISHED) {
922 		addr = &ipc->peer;
923 	} else {
924 		release_sock(sk);
925 		return -ENOTCONN;
926 	}
927 
928 	node = NULL;
929 	if (addr->sq_node == QRTR_NODE_BCAST) {
930 		if (addr->sq_port != QRTR_PORT_CTRL &&
931 		    qrtr_local_nid != QRTR_NODE_BCAST) {
932 			release_sock(sk);
933 			return -ENOTCONN;
934 		}
935 		enqueue_fn = qrtr_bcast_enqueue;
936 	} else if (addr->sq_node == ipc->us.sq_node) {
937 		enqueue_fn = qrtr_local_enqueue;
938 	} else {
939 		node = qrtr_node_lookup(addr->sq_node);
940 		if (!node) {
941 			release_sock(sk);
942 			return -ECONNRESET;
943 		}
944 		enqueue_fn = qrtr_node_enqueue;
945 	}
946 
947 	plen = (len + 3) & ~3;
948 	skb = sock_alloc_send_skb(sk, plen + QRTR_HDR_MAX_SIZE,
949 				  msg->msg_flags & MSG_DONTWAIT, &rc);
950 	if (!skb) {
951 		rc = -ENOMEM;
952 		goto out_node;
953 	}
954 
955 	skb_reserve(skb, QRTR_HDR_MAX_SIZE);
956 
957 	rc = memcpy_from_msg(skb_put(skb, len), msg, len);
958 	if (rc) {
959 		kfree_skb(skb);
960 		goto out_node;
961 	}
962 
963 	if (ipc->us.sq_port == QRTR_PORT_CTRL) {
964 		if (len < 4) {
965 			rc = -EINVAL;
966 			kfree_skb(skb);
967 			goto out_node;
968 		}
969 
970 		/* control messages already require the type as 'command' */
971 		skb_copy_bits(skb, 0, &qrtr_type, 4);
972 	}
973 
974 	type = le32_to_cpu(qrtr_type);
975 	rc = enqueue_fn(node, skb, type, &ipc->us, addr);
976 	if (rc >= 0)
977 		rc = len;
978 
979 out_node:
980 	qrtr_node_release(node);
981 	release_sock(sk);
982 
983 	return rc;
984 }
985 
qrtr_send_resume_tx(struct qrtr_cb * cb)986 static int qrtr_send_resume_tx(struct qrtr_cb *cb)
987 {
988 	struct sockaddr_qrtr remote = { AF_QIPCRTR, cb->src_node, cb->src_port };
989 	struct sockaddr_qrtr local = { AF_QIPCRTR, cb->dst_node, cb->dst_port };
990 	struct qrtr_ctrl_pkt *pkt;
991 	struct qrtr_node *node;
992 	struct sk_buff *skb;
993 	int ret;
994 
995 	node = qrtr_node_lookup(remote.sq_node);
996 	if (!node)
997 		return -EINVAL;
998 
999 	skb = qrtr_alloc_ctrl_packet(&pkt, GFP_KERNEL);
1000 	if (!skb)
1001 		return -ENOMEM;
1002 
1003 	pkt->cmd = cpu_to_le32(QRTR_TYPE_RESUME_TX);
1004 	pkt->client.node = cpu_to_le32(cb->dst_node);
1005 	pkt->client.port = cpu_to_le32(cb->dst_port);
1006 
1007 	ret = qrtr_node_enqueue(node, skb, QRTR_TYPE_RESUME_TX, &local, &remote);
1008 
1009 	qrtr_node_release(node);
1010 
1011 	return ret;
1012 }
1013 
qrtr_recvmsg(struct socket * sock,struct msghdr * msg,size_t size,int flags)1014 static int qrtr_recvmsg(struct socket *sock, struct msghdr *msg,
1015 			size_t size, int flags)
1016 {
1017 	DECLARE_SOCKADDR(struct sockaddr_qrtr *, addr, msg->msg_name);
1018 	struct sock *sk = sock->sk;
1019 	struct sk_buff *skb;
1020 	struct qrtr_cb *cb;
1021 	int copied, rc;
1022 
1023 	lock_sock(sk);
1024 
1025 	if (sock_flag(sk, SOCK_ZAPPED)) {
1026 		release_sock(sk);
1027 		return -EADDRNOTAVAIL;
1028 	}
1029 
1030 	skb = skb_recv_datagram(sk, flags & ~MSG_DONTWAIT,
1031 				flags & MSG_DONTWAIT, &rc);
1032 	if (!skb) {
1033 		release_sock(sk);
1034 		return rc;
1035 	}
1036 	cb = (struct qrtr_cb *)skb->cb;
1037 
1038 	copied = skb->len;
1039 	if (copied > size) {
1040 		copied = size;
1041 		msg->msg_flags |= MSG_TRUNC;
1042 	}
1043 
1044 	rc = skb_copy_datagram_msg(skb, 0, msg, copied);
1045 	if (rc < 0)
1046 		goto out;
1047 	rc = copied;
1048 
1049 	if (addr) {
1050 		/* There is an anonymous 2-byte hole after sq_family,
1051 		 * make sure to clear it.
1052 		 */
1053 		memset(addr, 0, sizeof(*addr));
1054 
1055 		addr->sq_family = AF_QIPCRTR;
1056 		addr->sq_node = cb->src_node;
1057 		addr->sq_port = cb->src_port;
1058 		msg->msg_namelen = sizeof(*addr);
1059 	}
1060 
1061 out:
1062 	if (cb->confirm_rx)
1063 		qrtr_send_resume_tx(cb);
1064 
1065 	skb_free_datagram(sk, skb);
1066 	release_sock(sk);
1067 
1068 	return rc;
1069 }
1070 
qrtr_connect(struct socket * sock,struct sockaddr * saddr,int len,int flags)1071 static int qrtr_connect(struct socket *sock, struct sockaddr *saddr,
1072 			int len, int flags)
1073 {
1074 	DECLARE_SOCKADDR(struct sockaddr_qrtr *, addr, saddr);
1075 	struct qrtr_sock *ipc = qrtr_sk(sock->sk);
1076 	struct sock *sk = sock->sk;
1077 	int rc;
1078 
1079 	if (len < sizeof(*addr) || addr->sq_family != AF_QIPCRTR)
1080 		return -EINVAL;
1081 
1082 	lock_sock(sk);
1083 
1084 	sk->sk_state = TCP_CLOSE;
1085 	sock->state = SS_UNCONNECTED;
1086 
1087 	rc = qrtr_autobind(sock);
1088 	if (rc) {
1089 		release_sock(sk);
1090 		return rc;
1091 	}
1092 
1093 	ipc->peer = *addr;
1094 	sock->state = SS_CONNECTED;
1095 	sk->sk_state = TCP_ESTABLISHED;
1096 
1097 	release_sock(sk);
1098 
1099 	return 0;
1100 }
1101 
qrtr_getname(struct socket * sock,struct sockaddr * saddr,int peer)1102 static int qrtr_getname(struct socket *sock, struct sockaddr *saddr,
1103 			int peer)
1104 {
1105 	struct qrtr_sock *ipc = qrtr_sk(sock->sk);
1106 	struct sockaddr_qrtr qaddr;
1107 	struct sock *sk = sock->sk;
1108 
1109 	lock_sock(sk);
1110 	if (peer) {
1111 		if (sk->sk_state != TCP_ESTABLISHED) {
1112 			release_sock(sk);
1113 			return -ENOTCONN;
1114 		}
1115 
1116 		qaddr = ipc->peer;
1117 	} else {
1118 		qaddr = ipc->us;
1119 	}
1120 	release_sock(sk);
1121 
1122 	qaddr.sq_family = AF_QIPCRTR;
1123 
1124 	memcpy(saddr, &qaddr, sizeof(qaddr));
1125 
1126 	return sizeof(qaddr);
1127 }
1128 
qrtr_ioctl(struct socket * sock,unsigned int cmd,unsigned long arg)1129 static int qrtr_ioctl(struct socket *sock, unsigned int cmd, unsigned long arg)
1130 {
1131 	void __user *argp = (void __user *)arg;
1132 	struct qrtr_sock *ipc = qrtr_sk(sock->sk);
1133 	struct sock *sk = sock->sk;
1134 	struct sockaddr_qrtr *sq;
1135 	struct sk_buff *skb;
1136 	struct ifreq ifr;
1137 	long len = 0;
1138 	int rc = 0;
1139 
1140 	lock_sock(sk);
1141 
1142 	switch (cmd) {
1143 	case TIOCOUTQ:
1144 		len = sk->sk_sndbuf - sk_wmem_alloc_get(sk);
1145 		if (len < 0)
1146 			len = 0;
1147 		rc = put_user(len, (int __user *)argp);
1148 		break;
1149 	case TIOCINQ:
1150 		skb = skb_peek(&sk->sk_receive_queue);
1151 		if (skb)
1152 			len = skb->len;
1153 		rc = put_user(len, (int __user *)argp);
1154 		break;
1155 	case SIOCGIFADDR:
1156 		if (copy_from_user(&ifr, argp, sizeof(ifr))) {
1157 			rc = -EFAULT;
1158 			break;
1159 		}
1160 
1161 		sq = (struct sockaddr_qrtr *)&ifr.ifr_addr;
1162 		*sq = ipc->us;
1163 		if (copy_to_user(argp, &ifr, sizeof(ifr))) {
1164 			rc = -EFAULT;
1165 			break;
1166 		}
1167 		break;
1168 	case SIOCADDRT:
1169 	case SIOCDELRT:
1170 	case SIOCSIFADDR:
1171 	case SIOCGIFDSTADDR:
1172 	case SIOCSIFDSTADDR:
1173 	case SIOCGIFBRDADDR:
1174 	case SIOCSIFBRDADDR:
1175 	case SIOCGIFNETMASK:
1176 	case SIOCSIFNETMASK:
1177 		rc = -EINVAL;
1178 		break;
1179 	default:
1180 		rc = -ENOIOCTLCMD;
1181 		break;
1182 	}
1183 
1184 	release_sock(sk);
1185 
1186 	return rc;
1187 }
1188 
qrtr_release(struct socket * sock)1189 static int qrtr_release(struct socket *sock)
1190 {
1191 	struct sock *sk = sock->sk;
1192 	struct qrtr_sock *ipc;
1193 
1194 	if (!sk)
1195 		return 0;
1196 
1197 	lock_sock(sk);
1198 
1199 	ipc = qrtr_sk(sk);
1200 	sk->sk_shutdown = SHUTDOWN_MASK;
1201 	if (!sock_flag(sk, SOCK_DEAD))
1202 		sk->sk_state_change(sk);
1203 
1204 	sock_set_flag(sk, SOCK_DEAD);
1205 	sock_orphan(sk);
1206 	sock->sk = NULL;
1207 
1208 	if (!sock_flag(sk, SOCK_ZAPPED))
1209 		qrtr_port_remove(ipc);
1210 
1211 	skb_queue_purge(&sk->sk_receive_queue);
1212 
1213 	release_sock(sk);
1214 	sock_put(sk);
1215 
1216 	return 0;
1217 }
1218 
1219 static const struct proto_ops qrtr_proto_ops = {
1220 	.owner		= THIS_MODULE,
1221 	.family		= AF_QIPCRTR,
1222 	.bind		= qrtr_bind,
1223 	.connect	= qrtr_connect,
1224 	.socketpair	= sock_no_socketpair,
1225 	.accept		= sock_no_accept,
1226 	.listen		= sock_no_listen,
1227 	.sendmsg	= qrtr_sendmsg,
1228 	.recvmsg	= qrtr_recvmsg,
1229 	.getname	= qrtr_getname,
1230 	.ioctl		= qrtr_ioctl,
1231 	.gettstamp	= sock_gettstamp,
1232 	.poll		= datagram_poll,
1233 	.shutdown	= sock_no_shutdown,
1234 	.release	= qrtr_release,
1235 	.mmap		= sock_no_mmap,
1236 	.sendpage	= sock_no_sendpage,
1237 };
1238 
1239 static struct proto qrtr_proto = {
1240 	.name		= "QIPCRTR",
1241 	.owner		= THIS_MODULE,
1242 	.obj_size	= sizeof(struct qrtr_sock),
1243 };
1244 
qrtr_create(struct net * net,struct socket * sock,int protocol,int kern)1245 static int qrtr_create(struct net *net, struct socket *sock,
1246 		       int protocol, int kern)
1247 {
1248 	struct qrtr_sock *ipc;
1249 	struct sock *sk;
1250 
1251 	if (sock->type != SOCK_DGRAM)
1252 		return -EPROTOTYPE;
1253 
1254 	sk = sk_alloc(net, AF_QIPCRTR, GFP_KERNEL, &qrtr_proto, kern);
1255 	if (!sk)
1256 		return -ENOMEM;
1257 
1258 	sock_set_flag(sk, SOCK_ZAPPED);
1259 
1260 	sock_init_data(sock, sk);
1261 	sock->ops = &qrtr_proto_ops;
1262 
1263 	ipc = qrtr_sk(sk);
1264 	ipc->us.sq_family = AF_QIPCRTR;
1265 	ipc->us.sq_node = qrtr_local_nid;
1266 	ipc->us.sq_port = 0;
1267 
1268 	return 0;
1269 }
1270 
1271 static const struct net_proto_family qrtr_family = {
1272 	.owner	= THIS_MODULE,
1273 	.family	= AF_QIPCRTR,
1274 	.create	= qrtr_create,
1275 };
1276 
qrtr_proto_init(void)1277 static int __init qrtr_proto_init(void)
1278 {
1279 	int rc;
1280 
1281 	rc = proto_register(&qrtr_proto, 1);
1282 	if (rc)
1283 		return rc;
1284 
1285 	rc = sock_register(&qrtr_family);
1286 	if (rc)
1287 		goto err_proto;
1288 
1289 	rc = qrtr_ns_init();
1290 	if (rc)
1291 		goto err_sock;
1292 
1293 	return 0;
1294 
1295 err_sock:
1296 	sock_unregister(qrtr_family.family);
1297 err_proto:
1298 	proto_unregister(&qrtr_proto);
1299 	return rc;
1300 }
1301 postcore_initcall(qrtr_proto_init);
1302 
qrtr_proto_fini(void)1303 static void __exit qrtr_proto_fini(void)
1304 {
1305 	qrtr_ns_remove();
1306 	sock_unregister(qrtr_family.family);
1307 	proto_unregister(&qrtr_proto);
1308 }
1309 module_exit(qrtr_proto_fini);
1310 
1311 MODULE_DESCRIPTION("Qualcomm IPC-router driver");
1312 MODULE_LICENSE("GPL v2");
1313 MODULE_ALIAS_NETPROTO(PF_QIPCRTR);
1314