1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * net/dsa/dsa2.c - Hardware switch handling, binding version 2
4  * Copyright (c) 2008-2009 Marvell Semiconductor
5  * Copyright (c) 2013 Florian Fainelli <florian@openwrt.org>
6  * Copyright (c) 2016 Andrew Lunn <andrew@lunn.ch>
7  */
8 
9 #include <linux/device.h>
10 #include <linux/err.h>
11 #include <linux/list.h>
12 #include <linux/netdevice.h>
13 #include <linux/slab.h>
14 #include <linux/rtnetlink.h>
15 #include <linux/of.h>
16 #include <linux/of_mdio.h>
17 #include <linux/of_net.h>
18 #include <net/devlink.h>
19 #include <net/sch_generic.h>
20 
21 #include "dsa_priv.h"
22 
23 static DEFINE_MUTEX(dsa2_mutex);
24 LIST_HEAD(dsa_tree_list);
25 
26 /* Track the bridges with forwarding offload enabled */
27 static unsigned long dsa_fwd_offloading_bridges;
28 
29 /**
30  * dsa_tree_notify - Execute code for all switches in a DSA switch tree.
31  * @dst: collection of struct dsa_switch devices to notify.
32  * @e: event, must be of type DSA_NOTIFIER_*
33  * @v: event-specific value.
34  *
35  * Given a struct dsa_switch_tree, this can be used to run a function once for
36  * each member DSA switch. The other alternative of traversing the tree is only
37  * through its ports list, which does not uniquely list the switches.
38  */
dsa_tree_notify(struct dsa_switch_tree * dst,unsigned long e,void * v)39 int dsa_tree_notify(struct dsa_switch_tree *dst, unsigned long e, void *v)
40 {
41 	struct raw_notifier_head *nh = &dst->nh;
42 	int err;
43 
44 	err = raw_notifier_call_chain(nh, e, v);
45 
46 	return notifier_to_errno(err);
47 }
48 
49 /**
50  * dsa_broadcast - Notify all DSA trees in the system.
51  * @e: event, must be of type DSA_NOTIFIER_*
52  * @v: event-specific value.
53  *
54  * Can be used to notify the switching fabric of events such as cross-chip
55  * bridging between disjoint trees (such as islands of tagger-compatible
56  * switches bridged by an incompatible middle switch).
57  *
58  * WARNING: this function is not reliable during probe time, because probing
59  * between trees is asynchronous and not all DSA trees might have probed.
60  */
dsa_broadcast(unsigned long e,void * v)61 int dsa_broadcast(unsigned long e, void *v)
62 {
63 	struct dsa_switch_tree *dst;
64 	int err = 0;
65 
66 	list_for_each_entry(dst, &dsa_tree_list, list) {
67 		err = dsa_tree_notify(dst, e, v);
68 		if (err)
69 			break;
70 	}
71 
72 	return err;
73 }
74 
75 /**
76  * dsa_lag_map() - Map LAG structure to a linear LAG array
77  * @dst: Tree in which to record the mapping.
78  * @lag: LAG structure that is to be mapped to the tree's array.
79  *
80  * dsa_lag_id/dsa_lag_by_id can then be used to translate between the
81  * two spaces. The size of the mapping space is determined by the
82  * driver by setting ds->num_lag_ids. It is perfectly legal to leave
83  * it unset if it is not needed, in which case these functions become
84  * no-ops.
85  */
dsa_lag_map(struct dsa_switch_tree * dst,struct dsa_lag * lag)86 void dsa_lag_map(struct dsa_switch_tree *dst, struct dsa_lag *lag)
87 {
88 	unsigned int id;
89 
90 	for (id = 1; id <= dst->lags_len; id++) {
91 		if (!dsa_lag_by_id(dst, id)) {
92 			dst->lags[id - 1] = lag;
93 			lag->id = id;
94 			return;
95 		}
96 	}
97 
98 	/* No IDs left, which is OK. Some drivers do not need it. The
99 	 * ones that do, e.g. mv88e6xxx, will discover that dsa_lag_id
100 	 * returns an error for this device when joining the LAG. The
101 	 * driver can then return -EOPNOTSUPP back to DSA, which will
102 	 * fall back to a software LAG.
103 	 */
104 }
105 
106 /**
107  * dsa_lag_unmap() - Remove a LAG ID mapping
108  * @dst: Tree in which the mapping is recorded.
109  * @lag: LAG structure that was mapped.
110  *
111  * As there may be multiple users of the mapping, it is only removed
112  * if there are no other references to it.
113  */
dsa_lag_unmap(struct dsa_switch_tree * dst,struct dsa_lag * lag)114 void dsa_lag_unmap(struct dsa_switch_tree *dst, struct dsa_lag *lag)
115 {
116 	unsigned int id;
117 
118 	dsa_lags_foreach_id(id, dst) {
119 		if (dsa_lag_by_id(dst, id) == lag) {
120 			dst->lags[id - 1] = NULL;
121 			lag->id = 0;
122 			break;
123 		}
124 	}
125 }
126 
dsa_tree_lag_find(struct dsa_switch_tree * dst,const struct net_device * lag_dev)127 struct dsa_lag *dsa_tree_lag_find(struct dsa_switch_tree *dst,
128 				  const struct net_device *lag_dev)
129 {
130 	struct dsa_port *dp;
131 
132 	list_for_each_entry(dp, &dst->ports, list)
133 		if (dsa_port_lag_dev_get(dp) == lag_dev)
134 			return dp->lag;
135 
136 	return NULL;
137 }
138 
dsa_tree_bridge_find(struct dsa_switch_tree * dst,const struct net_device * br)139 struct dsa_bridge *dsa_tree_bridge_find(struct dsa_switch_tree *dst,
140 					const struct net_device *br)
141 {
142 	struct dsa_port *dp;
143 
144 	list_for_each_entry(dp, &dst->ports, list)
145 		if (dsa_port_bridge_dev_get(dp) == br)
146 			return dp->bridge;
147 
148 	return NULL;
149 }
150 
dsa_bridge_num_find(const struct net_device * bridge_dev)151 static int dsa_bridge_num_find(const struct net_device *bridge_dev)
152 {
153 	struct dsa_switch_tree *dst;
154 
155 	list_for_each_entry(dst, &dsa_tree_list, list) {
156 		struct dsa_bridge *bridge;
157 
158 		bridge = dsa_tree_bridge_find(dst, bridge_dev);
159 		if (bridge)
160 			return bridge->num;
161 	}
162 
163 	return 0;
164 }
165 
dsa_bridge_num_get(const struct net_device * bridge_dev,int max)166 unsigned int dsa_bridge_num_get(const struct net_device *bridge_dev, int max)
167 {
168 	unsigned int bridge_num = dsa_bridge_num_find(bridge_dev);
169 
170 	/* Switches without FDB isolation support don't get unique
171 	 * bridge numbering
172 	 */
173 	if (!max)
174 		return 0;
175 
176 	if (!bridge_num) {
177 		/* First port that requests FDB isolation or TX forwarding
178 		 * offload for this bridge
179 		 */
180 		bridge_num = find_next_zero_bit(&dsa_fwd_offloading_bridges,
181 						DSA_MAX_NUM_OFFLOADING_BRIDGES,
182 						1);
183 		if (bridge_num >= max)
184 			return 0;
185 
186 		set_bit(bridge_num, &dsa_fwd_offloading_bridges);
187 	}
188 
189 	return bridge_num;
190 }
191 
dsa_bridge_num_put(const struct net_device * bridge_dev,unsigned int bridge_num)192 void dsa_bridge_num_put(const struct net_device *bridge_dev,
193 			unsigned int bridge_num)
194 {
195 	/* Since we refcount bridges, we know that when we call this function
196 	 * it is no longer in use, so we can just go ahead and remove it from
197 	 * the bit mask.
198 	 */
199 	clear_bit(bridge_num, &dsa_fwd_offloading_bridges);
200 }
201 
dsa_switch_find(int tree_index,int sw_index)202 struct dsa_switch *dsa_switch_find(int tree_index, int sw_index)
203 {
204 	struct dsa_switch_tree *dst;
205 	struct dsa_port *dp;
206 
207 	list_for_each_entry(dst, &dsa_tree_list, list) {
208 		if (dst->index != tree_index)
209 			continue;
210 
211 		list_for_each_entry(dp, &dst->ports, list) {
212 			if (dp->ds->index != sw_index)
213 				continue;
214 
215 			return dp->ds;
216 		}
217 	}
218 
219 	return NULL;
220 }
221 EXPORT_SYMBOL_GPL(dsa_switch_find);
222 
dsa_tree_find(int index)223 static struct dsa_switch_tree *dsa_tree_find(int index)
224 {
225 	struct dsa_switch_tree *dst;
226 
227 	list_for_each_entry(dst, &dsa_tree_list, list)
228 		if (dst->index == index)
229 			return dst;
230 
231 	return NULL;
232 }
233 
dsa_tree_alloc(int index)234 static struct dsa_switch_tree *dsa_tree_alloc(int index)
235 {
236 	struct dsa_switch_tree *dst;
237 
238 	dst = kzalloc(sizeof(*dst), GFP_KERNEL);
239 	if (!dst)
240 		return NULL;
241 
242 	dst->index = index;
243 
244 	INIT_LIST_HEAD(&dst->rtable);
245 
246 	INIT_LIST_HEAD(&dst->ports);
247 
248 	INIT_LIST_HEAD(&dst->list);
249 	list_add_tail(&dst->list, &dsa_tree_list);
250 
251 	kref_init(&dst->refcount);
252 
253 	return dst;
254 }
255 
dsa_tree_free(struct dsa_switch_tree * dst)256 static void dsa_tree_free(struct dsa_switch_tree *dst)
257 {
258 	if (dst->tag_ops)
259 		dsa_tag_driver_put(dst->tag_ops);
260 	list_del(&dst->list);
261 	kfree(dst);
262 }
263 
dsa_tree_get(struct dsa_switch_tree * dst)264 static struct dsa_switch_tree *dsa_tree_get(struct dsa_switch_tree *dst)
265 {
266 	if (dst)
267 		kref_get(&dst->refcount);
268 
269 	return dst;
270 }
271 
dsa_tree_touch(int index)272 static struct dsa_switch_tree *dsa_tree_touch(int index)
273 {
274 	struct dsa_switch_tree *dst;
275 
276 	dst = dsa_tree_find(index);
277 	if (dst)
278 		return dsa_tree_get(dst);
279 	else
280 		return dsa_tree_alloc(index);
281 }
282 
dsa_tree_release(struct kref * ref)283 static void dsa_tree_release(struct kref *ref)
284 {
285 	struct dsa_switch_tree *dst;
286 
287 	dst = container_of(ref, struct dsa_switch_tree, refcount);
288 
289 	dsa_tree_free(dst);
290 }
291 
dsa_tree_put(struct dsa_switch_tree * dst)292 static void dsa_tree_put(struct dsa_switch_tree *dst)
293 {
294 	if (dst)
295 		kref_put(&dst->refcount, dsa_tree_release);
296 }
297 
dsa_tree_find_port_by_node(struct dsa_switch_tree * dst,struct device_node * dn)298 static struct dsa_port *dsa_tree_find_port_by_node(struct dsa_switch_tree *dst,
299 						   struct device_node *dn)
300 {
301 	struct dsa_port *dp;
302 
303 	list_for_each_entry(dp, &dst->ports, list)
304 		if (dp->dn == dn)
305 			return dp;
306 
307 	return NULL;
308 }
309 
dsa_link_touch(struct dsa_port * dp,struct dsa_port * link_dp)310 static struct dsa_link *dsa_link_touch(struct dsa_port *dp,
311 				       struct dsa_port *link_dp)
312 {
313 	struct dsa_switch *ds = dp->ds;
314 	struct dsa_switch_tree *dst;
315 	struct dsa_link *dl;
316 
317 	dst = ds->dst;
318 
319 	list_for_each_entry(dl, &dst->rtable, list)
320 		if (dl->dp == dp && dl->link_dp == link_dp)
321 			return dl;
322 
323 	dl = kzalloc(sizeof(*dl), GFP_KERNEL);
324 	if (!dl)
325 		return NULL;
326 
327 	dl->dp = dp;
328 	dl->link_dp = link_dp;
329 
330 	INIT_LIST_HEAD(&dl->list);
331 	list_add_tail(&dl->list, &dst->rtable);
332 
333 	return dl;
334 }
335 
dsa_port_setup_routing_table(struct dsa_port * dp)336 static bool dsa_port_setup_routing_table(struct dsa_port *dp)
337 {
338 	struct dsa_switch *ds = dp->ds;
339 	struct dsa_switch_tree *dst = ds->dst;
340 	struct device_node *dn = dp->dn;
341 	struct of_phandle_iterator it;
342 	struct dsa_port *link_dp;
343 	struct dsa_link *dl;
344 	int err;
345 
346 	of_for_each_phandle(&it, err, dn, "link", NULL, 0) {
347 		link_dp = dsa_tree_find_port_by_node(dst, it.node);
348 		if (!link_dp) {
349 			of_node_put(it.node);
350 			return false;
351 		}
352 
353 		dl = dsa_link_touch(dp, link_dp);
354 		if (!dl) {
355 			of_node_put(it.node);
356 			return false;
357 		}
358 	}
359 
360 	return true;
361 }
362 
dsa_tree_setup_routing_table(struct dsa_switch_tree * dst)363 static bool dsa_tree_setup_routing_table(struct dsa_switch_tree *dst)
364 {
365 	bool complete = true;
366 	struct dsa_port *dp;
367 
368 	list_for_each_entry(dp, &dst->ports, list) {
369 		if (dsa_port_is_dsa(dp)) {
370 			complete = dsa_port_setup_routing_table(dp);
371 			if (!complete)
372 				break;
373 		}
374 	}
375 
376 	return complete;
377 }
378 
dsa_tree_find_first_cpu(struct dsa_switch_tree * dst)379 static struct dsa_port *dsa_tree_find_first_cpu(struct dsa_switch_tree *dst)
380 {
381 	struct dsa_port *dp;
382 
383 	list_for_each_entry(dp, &dst->ports, list)
384 		if (dsa_port_is_cpu(dp))
385 			return dp;
386 
387 	return NULL;
388 }
389 
390 /* Assign the default CPU port (the first one in the tree) to all ports of the
391  * fabric which don't already have one as part of their own switch.
392  */
dsa_tree_setup_default_cpu(struct dsa_switch_tree * dst)393 static int dsa_tree_setup_default_cpu(struct dsa_switch_tree *dst)
394 {
395 	struct dsa_port *cpu_dp, *dp;
396 
397 	cpu_dp = dsa_tree_find_first_cpu(dst);
398 	if (!cpu_dp) {
399 		pr_err("DSA: tree %d has no CPU port\n", dst->index);
400 		return -EINVAL;
401 	}
402 
403 	list_for_each_entry(dp, &dst->ports, list) {
404 		if (dp->cpu_dp)
405 			continue;
406 
407 		if (dsa_port_is_user(dp) || dsa_port_is_dsa(dp))
408 			dp->cpu_dp = cpu_dp;
409 	}
410 
411 	return 0;
412 }
413 
414 /* Perform initial assignment of CPU ports to user ports and DSA links in the
415  * fabric, giving preference to CPU ports local to each switch. Default to
416  * using the first CPU port in the switch tree if the port does not have a CPU
417  * port local to this switch.
418  */
dsa_tree_setup_cpu_ports(struct dsa_switch_tree * dst)419 static int dsa_tree_setup_cpu_ports(struct dsa_switch_tree *dst)
420 {
421 	struct dsa_port *cpu_dp, *dp;
422 
423 	list_for_each_entry(cpu_dp, &dst->ports, list) {
424 		if (!dsa_port_is_cpu(cpu_dp))
425 			continue;
426 
427 		/* Prefer a local CPU port */
428 		dsa_switch_for_each_port(dp, cpu_dp->ds) {
429 			/* Prefer the first local CPU port found */
430 			if (dp->cpu_dp)
431 				continue;
432 
433 			if (dsa_port_is_user(dp) || dsa_port_is_dsa(dp))
434 				dp->cpu_dp = cpu_dp;
435 		}
436 	}
437 
438 	return dsa_tree_setup_default_cpu(dst);
439 }
440 
dsa_tree_teardown_cpu_ports(struct dsa_switch_tree * dst)441 static void dsa_tree_teardown_cpu_ports(struct dsa_switch_tree *dst)
442 {
443 	struct dsa_port *dp;
444 
445 	list_for_each_entry(dp, &dst->ports, list)
446 		if (dsa_port_is_user(dp) || dsa_port_is_dsa(dp))
447 			dp->cpu_dp = NULL;
448 }
449 
dsa_port_setup(struct dsa_port * dp)450 static int dsa_port_setup(struct dsa_port *dp)
451 {
452 	struct devlink_port *dlp = &dp->devlink_port;
453 	bool dsa_port_link_registered = false;
454 	struct dsa_switch *ds = dp->ds;
455 	bool dsa_port_enabled = false;
456 	int err = 0;
457 
458 	if (dp->setup)
459 		return 0;
460 
461 	if (ds->ops->port_setup) {
462 		err = ds->ops->port_setup(ds, dp->index);
463 		if (err)
464 			return err;
465 	}
466 
467 	switch (dp->type) {
468 	case DSA_PORT_TYPE_UNUSED:
469 		dsa_port_disable(dp);
470 		break;
471 	case DSA_PORT_TYPE_CPU:
472 		err = dsa_port_link_register_of(dp);
473 		if (err)
474 			break;
475 		dsa_port_link_registered = true;
476 
477 		err = dsa_port_enable(dp, NULL);
478 		if (err)
479 			break;
480 		dsa_port_enabled = true;
481 
482 		break;
483 	case DSA_PORT_TYPE_DSA:
484 		err = dsa_port_link_register_of(dp);
485 		if (err)
486 			break;
487 		dsa_port_link_registered = true;
488 
489 		err = dsa_port_enable(dp, NULL);
490 		if (err)
491 			break;
492 		dsa_port_enabled = true;
493 
494 		break;
495 	case DSA_PORT_TYPE_USER:
496 		of_get_mac_address(dp->dn, dp->mac);
497 		err = dsa_slave_create(dp);
498 		if (err)
499 			break;
500 
501 		devlink_port_type_eth_set(dlp, dp->slave);
502 		break;
503 	}
504 
505 	if (err && dsa_port_enabled)
506 		dsa_port_disable(dp);
507 	if (err && dsa_port_link_registered)
508 		dsa_port_link_unregister_of(dp);
509 	if (err) {
510 		if (ds->ops->port_teardown)
511 			ds->ops->port_teardown(ds, dp->index);
512 		return err;
513 	}
514 
515 	dp->setup = true;
516 
517 	return 0;
518 }
519 
dsa_port_devlink_setup(struct dsa_port * dp)520 static int dsa_port_devlink_setup(struct dsa_port *dp)
521 {
522 	struct devlink_port *dlp = &dp->devlink_port;
523 	struct dsa_switch_tree *dst = dp->ds->dst;
524 	struct devlink_port_attrs attrs = {};
525 	struct devlink *dl = dp->ds->devlink;
526 	const unsigned char *id;
527 	unsigned char len;
528 	int err;
529 
530 	id = (const unsigned char *)&dst->index;
531 	len = sizeof(dst->index);
532 
533 	attrs.phys.port_number = dp->index;
534 	memcpy(attrs.switch_id.id, id, len);
535 	attrs.switch_id.id_len = len;
536 	memset(dlp, 0, sizeof(*dlp));
537 
538 	switch (dp->type) {
539 	case DSA_PORT_TYPE_UNUSED:
540 		attrs.flavour = DEVLINK_PORT_FLAVOUR_UNUSED;
541 		break;
542 	case DSA_PORT_TYPE_CPU:
543 		attrs.flavour = DEVLINK_PORT_FLAVOUR_CPU;
544 		break;
545 	case DSA_PORT_TYPE_DSA:
546 		attrs.flavour = DEVLINK_PORT_FLAVOUR_DSA;
547 		break;
548 	case DSA_PORT_TYPE_USER:
549 		attrs.flavour = DEVLINK_PORT_FLAVOUR_PHYSICAL;
550 		break;
551 	}
552 
553 	devlink_port_attrs_set(dlp, &attrs);
554 	err = devlink_port_register(dl, dlp, dp->index);
555 
556 	if (!err)
557 		dp->devlink_port_setup = true;
558 
559 	return err;
560 }
561 
dsa_port_teardown(struct dsa_port * dp)562 static void dsa_port_teardown(struct dsa_port *dp)
563 {
564 	struct devlink_port *dlp = &dp->devlink_port;
565 	struct dsa_switch *ds = dp->ds;
566 
567 	if (!dp->setup)
568 		return;
569 
570 	if (ds->ops->port_teardown)
571 		ds->ops->port_teardown(ds, dp->index);
572 
573 	devlink_port_type_clear(dlp);
574 
575 	switch (dp->type) {
576 	case DSA_PORT_TYPE_UNUSED:
577 		break;
578 	case DSA_PORT_TYPE_CPU:
579 		dsa_port_disable(dp);
580 		dsa_port_link_unregister_of(dp);
581 		break;
582 	case DSA_PORT_TYPE_DSA:
583 		dsa_port_disable(dp);
584 		dsa_port_link_unregister_of(dp);
585 		break;
586 	case DSA_PORT_TYPE_USER:
587 		if (dp->slave) {
588 			dsa_slave_destroy(dp->slave);
589 			dp->slave = NULL;
590 		}
591 		break;
592 	}
593 
594 	dp->setup = false;
595 }
596 
dsa_port_devlink_teardown(struct dsa_port * dp)597 static void dsa_port_devlink_teardown(struct dsa_port *dp)
598 {
599 	struct devlink_port *dlp = &dp->devlink_port;
600 
601 	if (dp->devlink_port_setup)
602 		devlink_port_unregister(dlp);
603 	dp->devlink_port_setup = false;
604 }
605 
606 /* Destroy the current devlink port, and create a new one which has the UNUSED
607  * flavour. At this point, any call to ds->ops->port_setup has been already
608  * balanced out by a call to ds->ops->port_teardown, so we know that any
609  * devlink port regions the driver had are now unregistered. We then call its
610  * ds->ops->port_setup again, in order for the driver to re-create them on the
611  * new devlink port.
612  */
dsa_port_reinit_as_unused(struct dsa_port * dp)613 static int dsa_port_reinit_as_unused(struct dsa_port *dp)
614 {
615 	struct dsa_switch *ds = dp->ds;
616 	int err;
617 
618 	dsa_port_devlink_teardown(dp);
619 	dp->type = DSA_PORT_TYPE_UNUSED;
620 	err = dsa_port_devlink_setup(dp);
621 	if (err)
622 		return err;
623 
624 	if (ds->ops->port_setup) {
625 		/* On error, leave the devlink port registered,
626 		 * dsa_switch_teardown will clean it up later.
627 		 */
628 		err = ds->ops->port_setup(ds, dp->index);
629 		if (err)
630 			return err;
631 	}
632 
633 	return 0;
634 }
635 
dsa_devlink_info_get(struct devlink * dl,struct devlink_info_req * req,struct netlink_ext_ack * extack)636 static int dsa_devlink_info_get(struct devlink *dl,
637 				struct devlink_info_req *req,
638 				struct netlink_ext_ack *extack)
639 {
640 	struct dsa_switch *ds = dsa_devlink_to_ds(dl);
641 
642 	if (ds->ops->devlink_info_get)
643 		return ds->ops->devlink_info_get(ds, req, extack);
644 
645 	return -EOPNOTSUPP;
646 }
647 
dsa_devlink_sb_pool_get(struct devlink * dl,unsigned int sb_index,u16 pool_index,struct devlink_sb_pool_info * pool_info)648 static int dsa_devlink_sb_pool_get(struct devlink *dl,
649 				   unsigned int sb_index, u16 pool_index,
650 				   struct devlink_sb_pool_info *pool_info)
651 {
652 	struct dsa_switch *ds = dsa_devlink_to_ds(dl);
653 
654 	if (!ds->ops->devlink_sb_pool_get)
655 		return -EOPNOTSUPP;
656 
657 	return ds->ops->devlink_sb_pool_get(ds, sb_index, pool_index,
658 					    pool_info);
659 }
660 
dsa_devlink_sb_pool_set(struct devlink * dl,unsigned int sb_index,u16 pool_index,u32 size,enum devlink_sb_threshold_type threshold_type,struct netlink_ext_ack * extack)661 static int dsa_devlink_sb_pool_set(struct devlink *dl, unsigned int sb_index,
662 				   u16 pool_index, u32 size,
663 				   enum devlink_sb_threshold_type threshold_type,
664 				   struct netlink_ext_ack *extack)
665 {
666 	struct dsa_switch *ds = dsa_devlink_to_ds(dl);
667 
668 	if (!ds->ops->devlink_sb_pool_set)
669 		return -EOPNOTSUPP;
670 
671 	return ds->ops->devlink_sb_pool_set(ds, sb_index, pool_index, size,
672 					    threshold_type, extack);
673 }
674 
dsa_devlink_sb_port_pool_get(struct devlink_port * dlp,unsigned int sb_index,u16 pool_index,u32 * p_threshold)675 static int dsa_devlink_sb_port_pool_get(struct devlink_port *dlp,
676 					unsigned int sb_index, u16 pool_index,
677 					u32 *p_threshold)
678 {
679 	struct dsa_switch *ds = dsa_devlink_port_to_ds(dlp);
680 	int port = dsa_devlink_port_to_port(dlp);
681 
682 	if (!ds->ops->devlink_sb_port_pool_get)
683 		return -EOPNOTSUPP;
684 
685 	return ds->ops->devlink_sb_port_pool_get(ds, port, sb_index,
686 						 pool_index, p_threshold);
687 }
688 
dsa_devlink_sb_port_pool_set(struct devlink_port * dlp,unsigned int sb_index,u16 pool_index,u32 threshold,struct netlink_ext_ack * extack)689 static int dsa_devlink_sb_port_pool_set(struct devlink_port *dlp,
690 					unsigned int sb_index, u16 pool_index,
691 					u32 threshold,
692 					struct netlink_ext_ack *extack)
693 {
694 	struct dsa_switch *ds = dsa_devlink_port_to_ds(dlp);
695 	int port = dsa_devlink_port_to_port(dlp);
696 
697 	if (!ds->ops->devlink_sb_port_pool_set)
698 		return -EOPNOTSUPP;
699 
700 	return ds->ops->devlink_sb_port_pool_set(ds, port, sb_index,
701 						 pool_index, threshold, extack);
702 }
703 
704 static int
dsa_devlink_sb_tc_pool_bind_get(struct devlink_port * dlp,unsigned int sb_index,u16 tc_index,enum devlink_sb_pool_type pool_type,u16 * p_pool_index,u32 * p_threshold)705 dsa_devlink_sb_tc_pool_bind_get(struct devlink_port *dlp,
706 				unsigned int sb_index, u16 tc_index,
707 				enum devlink_sb_pool_type pool_type,
708 				u16 *p_pool_index, u32 *p_threshold)
709 {
710 	struct dsa_switch *ds = dsa_devlink_port_to_ds(dlp);
711 	int port = dsa_devlink_port_to_port(dlp);
712 
713 	if (!ds->ops->devlink_sb_tc_pool_bind_get)
714 		return -EOPNOTSUPP;
715 
716 	return ds->ops->devlink_sb_tc_pool_bind_get(ds, port, sb_index,
717 						    tc_index, pool_type,
718 						    p_pool_index, p_threshold);
719 }
720 
721 static int
dsa_devlink_sb_tc_pool_bind_set(struct devlink_port * dlp,unsigned int sb_index,u16 tc_index,enum devlink_sb_pool_type pool_type,u16 pool_index,u32 threshold,struct netlink_ext_ack * extack)722 dsa_devlink_sb_tc_pool_bind_set(struct devlink_port *dlp,
723 				unsigned int sb_index, u16 tc_index,
724 				enum devlink_sb_pool_type pool_type,
725 				u16 pool_index, u32 threshold,
726 				struct netlink_ext_ack *extack)
727 {
728 	struct dsa_switch *ds = dsa_devlink_port_to_ds(dlp);
729 	int port = dsa_devlink_port_to_port(dlp);
730 
731 	if (!ds->ops->devlink_sb_tc_pool_bind_set)
732 		return -EOPNOTSUPP;
733 
734 	return ds->ops->devlink_sb_tc_pool_bind_set(ds, port, sb_index,
735 						    tc_index, pool_type,
736 						    pool_index, threshold,
737 						    extack);
738 }
739 
dsa_devlink_sb_occ_snapshot(struct devlink * dl,unsigned int sb_index)740 static int dsa_devlink_sb_occ_snapshot(struct devlink *dl,
741 				       unsigned int sb_index)
742 {
743 	struct dsa_switch *ds = dsa_devlink_to_ds(dl);
744 
745 	if (!ds->ops->devlink_sb_occ_snapshot)
746 		return -EOPNOTSUPP;
747 
748 	return ds->ops->devlink_sb_occ_snapshot(ds, sb_index);
749 }
750 
dsa_devlink_sb_occ_max_clear(struct devlink * dl,unsigned int sb_index)751 static int dsa_devlink_sb_occ_max_clear(struct devlink *dl,
752 					unsigned int sb_index)
753 {
754 	struct dsa_switch *ds = dsa_devlink_to_ds(dl);
755 
756 	if (!ds->ops->devlink_sb_occ_max_clear)
757 		return -EOPNOTSUPP;
758 
759 	return ds->ops->devlink_sb_occ_max_clear(ds, sb_index);
760 }
761 
dsa_devlink_sb_occ_port_pool_get(struct devlink_port * dlp,unsigned int sb_index,u16 pool_index,u32 * p_cur,u32 * p_max)762 static int dsa_devlink_sb_occ_port_pool_get(struct devlink_port *dlp,
763 					    unsigned int sb_index,
764 					    u16 pool_index, u32 *p_cur,
765 					    u32 *p_max)
766 {
767 	struct dsa_switch *ds = dsa_devlink_port_to_ds(dlp);
768 	int port = dsa_devlink_port_to_port(dlp);
769 
770 	if (!ds->ops->devlink_sb_occ_port_pool_get)
771 		return -EOPNOTSUPP;
772 
773 	return ds->ops->devlink_sb_occ_port_pool_get(ds, port, sb_index,
774 						     pool_index, p_cur, p_max);
775 }
776 
777 static int
dsa_devlink_sb_occ_tc_port_bind_get(struct devlink_port * dlp,unsigned int sb_index,u16 tc_index,enum devlink_sb_pool_type pool_type,u32 * p_cur,u32 * p_max)778 dsa_devlink_sb_occ_tc_port_bind_get(struct devlink_port *dlp,
779 				    unsigned int sb_index, u16 tc_index,
780 				    enum devlink_sb_pool_type pool_type,
781 				    u32 *p_cur, u32 *p_max)
782 {
783 	struct dsa_switch *ds = dsa_devlink_port_to_ds(dlp);
784 	int port = dsa_devlink_port_to_port(dlp);
785 
786 	if (!ds->ops->devlink_sb_occ_tc_port_bind_get)
787 		return -EOPNOTSUPP;
788 
789 	return ds->ops->devlink_sb_occ_tc_port_bind_get(ds, port,
790 							sb_index, tc_index,
791 							pool_type, p_cur,
792 							p_max);
793 }
794 
795 static const struct devlink_ops dsa_devlink_ops = {
796 	.info_get			= dsa_devlink_info_get,
797 	.sb_pool_get			= dsa_devlink_sb_pool_get,
798 	.sb_pool_set			= dsa_devlink_sb_pool_set,
799 	.sb_port_pool_get		= dsa_devlink_sb_port_pool_get,
800 	.sb_port_pool_set		= dsa_devlink_sb_port_pool_set,
801 	.sb_tc_pool_bind_get		= dsa_devlink_sb_tc_pool_bind_get,
802 	.sb_tc_pool_bind_set		= dsa_devlink_sb_tc_pool_bind_set,
803 	.sb_occ_snapshot		= dsa_devlink_sb_occ_snapshot,
804 	.sb_occ_max_clear		= dsa_devlink_sb_occ_max_clear,
805 	.sb_occ_port_pool_get		= dsa_devlink_sb_occ_port_pool_get,
806 	.sb_occ_tc_port_bind_get	= dsa_devlink_sb_occ_tc_port_bind_get,
807 };
808 
dsa_switch_setup_tag_protocol(struct dsa_switch * ds)809 static int dsa_switch_setup_tag_protocol(struct dsa_switch *ds)
810 {
811 	const struct dsa_device_ops *tag_ops = ds->dst->tag_ops;
812 	struct dsa_switch_tree *dst = ds->dst;
813 	int err;
814 
815 	if (tag_ops->proto == dst->default_proto)
816 		goto connect;
817 
818 	rtnl_lock();
819 	err = ds->ops->change_tag_protocol(ds, tag_ops->proto);
820 	rtnl_unlock();
821 	if (err) {
822 		dev_err(ds->dev, "Unable to use tag protocol \"%s\": %pe\n",
823 			tag_ops->name, ERR_PTR(err));
824 		return err;
825 	}
826 
827 connect:
828 	if (tag_ops->connect) {
829 		err = tag_ops->connect(ds);
830 		if (err)
831 			return err;
832 	}
833 
834 	if (ds->ops->connect_tag_protocol) {
835 		err = ds->ops->connect_tag_protocol(ds, tag_ops->proto);
836 		if (err) {
837 			dev_err(ds->dev,
838 				"Unable to connect to tag protocol \"%s\": %pe\n",
839 				tag_ops->name, ERR_PTR(err));
840 			goto disconnect;
841 		}
842 	}
843 
844 	return 0;
845 
846 disconnect:
847 	if (tag_ops->disconnect)
848 		tag_ops->disconnect(ds);
849 
850 	return err;
851 }
852 
dsa_switch_setup(struct dsa_switch * ds)853 static int dsa_switch_setup(struct dsa_switch *ds)
854 {
855 	struct dsa_devlink_priv *dl_priv;
856 	struct device_node *dn;
857 	struct dsa_port *dp;
858 	int err;
859 
860 	if (ds->setup)
861 		return 0;
862 
863 	/* Initialize ds->phys_mii_mask before registering the slave MDIO bus
864 	 * driver and before ops->setup() has run, since the switch drivers and
865 	 * the slave MDIO bus driver rely on these values for probing PHY
866 	 * devices or not
867 	 */
868 	ds->phys_mii_mask |= dsa_user_ports(ds);
869 
870 	/* Add the switch to devlink before calling setup, so that setup can
871 	 * add dpipe tables
872 	 */
873 	ds->devlink =
874 		devlink_alloc(&dsa_devlink_ops, sizeof(*dl_priv), ds->dev);
875 	if (!ds->devlink)
876 		return -ENOMEM;
877 	dl_priv = devlink_priv(ds->devlink);
878 	dl_priv->ds = ds;
879 
880 	/* Setup devlink port instances now, so that the switch
881 	 * setup() can register regions etc, against the ports
882 	 */
883 	dsa_switch_for_each_port(dp, ds) {
884 		err = dsa_port_devlink_setup(dp);
885 		if (err)
886 			goto unregister_devlink_ports;
887 	}
888 
889 	err = dsa_switch_register_notifier(ds);
890 	if (err)
891 		goto unregister_devlink_ports;
892 
893 	ds->configure_vlan_while_not_filtering = true;
894 
895 	err = ds->ops->setup(ds);
896 	if (err < 0)
897 		goto unregister_notifier;
898 
899 	err = dsa_switch_setup_tag_protocol(ds);
900 	if (err)
901 		goto teardown;
902 
903 	if (!ds->slave_mii_bus && ds->ops->phy_read) {
904 		ds->slave_mii_bus = mdiobus_alloc();
905 		if (!ds->slave_mii_bus) {
906 			err = -ENOMEM;
907 			goto teardown;
908 		}
909 
910 		dsa_slave_mii_bus_init(ds);
911 
912 		dn = of_get_child_by_name(ds->dev->of_node, "mdio");
913 
914 		err = of_mdiobus_register(ds->slave_mii_bus, dn);
915 		of_node_put(dn);
916 		if (err < 0)
917 			goto free_slave_mii_bus;
918 	}
919 
920 	ds->setup = true;
921 	devlink_register(ds->devlink);
922 	return 0;
923 
924 free_slave_mii_bus:
925 	if (ds->slave_mii_bus && ds->ops->phy_read)
926 		mdiobus_free(ds->slave_mii_bus);
927 teardown:
928 	if (ds->ops->teardown)
929 		ds->ops->teardown(ds);
930 unregister_notifier:
931 	dsa_switch_unregister_notifier(ds);
932 unregister_devlink_ports:
933 	dsa_switch_for_each_port(dp, ds)
934 		dsa_port_devlink_teardown(dp);
935 	devlink_free(ds->devlink);
936 	ds->devlink = NULL;
937 	return err;
938 }
939 
dsa_switch_teardown(struct dsa_switch * ds)940 static void dsa_switch_teardown(struct dsa_switch *ds)
941 {
942 	struct dsa_port *dp;
943 
944 	if (!ds->setup)
945 		return;
946 
947 	if (ds->devlink)
948 		devlink_unregister(ds->devlink);
949 
950 	if (ds->slave_mii_bus && ds->ops->phy_read) {
951 		mdiobus_unregister(ds->slave_mii_bus);
952 		mdiobus_free(ds->slave_mii_bus);
953 		ds->slave_mii_bus = NULL;
954 	}
955 
956 	if (ds->ops->teardown)
957 		ds->ops->teardown(ds);
958 
959 	dsa_switch_unregister_notifier(ds);
960 
961 	if (ds->devlink) {
962 		dsa_switch_for_each_port(dp, ds)
963 			dsa_port_devlink_teardown(dp);
964 		devlink_free(ds->devlink);
965 		ds->devlink = NULL;
966 	}
967 
968 	ds->setup = false;
969 }
970 
971 /* First tear down the non-shared, then the shared ports. This ensures that
972  * all work items scheduled by our switchdev handlers for user ports have
973  * completed before we destroy the refcounting kept on the shared ports.
974  */
dsa_tree_teardown_ports(struct dsa_switch_tree * dst)975 static void dsa_tree_teardown_ports(struct dsa_switch_tree *dst)
976 {
977 	struct dsa_port *dp;
978 
979 	list_for_each_entry(dp, &dst->ports, list)
980 		if (dsa_port_is_user(dp) || dsa_port_is_unused(dp))
981 			dsa_port_teardown(dp);
982 
983 	dsa_flush_workqueue();
984 
985 	list_for_each_entry(dp, &dst->ports, list)
986 		if (dsa_port_is_dsa(dp) || dsa_port_is_cpu(dp))
987 			dsa_port_teardown(dp);
988 }
989 
dsa_tree_teardown_switches(struct dsa_switch_tree * dst)990 static void dsa_tree_teardown_switches(struct dsa_switch_tree *dst)
991 {
992 	struct dsa_port *dp;
993 
994 	list_for_each_entry(dp, &dst->ports, list)
995 		dsa_switch_teardown(dp->ds);
996 }
997 
998 /* Bring shared ports up first, then non-shared ports */
dsa_tree_setup_ports(struct dsa_switch_tree * dst)999 static int dsa_tree_setup_ports(struct dsa_switch_tree *dst)
1000 {
1001 	struct dsa_port *dp;
1002 	int err = 0;
1003 
1004 	list_for_each_entry(dp, &dst->ports, list) {
1005 		if (dsa_port_is_dsa(dp) || dsa_port_is_cpu(dp)) {
1006 			err = dsa_port_setup(dp);
1007 			if (err)
1008 				goto teardown;
1009 		}
1010 	}
1011 
1012 	list_for_each_entry(dp, &dst->ports, list) {
1013 		if (dsa_port_is_user(dp) || dsa_port_is_unused(dp)) {
1014 			err = dsa_port_setup(dp);
1015 			if (err) {
1016 				err = dsa_port_reinit_as_unused(dp);
1017 				if (err)
1018 					goto teardown;
1019 			}
1020 		}
1021 	}
1022 
1023 	return 0;
1024 
1025 teardown:
1026 	dsa_tree_teardown_ports(dst);
1027 
1028 	return err;
1029 }
1030 
dsa_tree_setup_switches(struct dsa_switch_tree * dst)1031 static int dsa_tree_setup_switches(struct dsa_switch_tree *dst)
1032 {
1033 	struct dsa_port *dp;
1034 	int err = 0;
1035 
1036 	list_for_each_entry(dp, &dst->ports, list) {
1037 		err = dsa_switch_setup(dp->ds);
1038 		if (err) {
1039 			dsa_tree_teardown_switches(dst);
1040 			break;
1041 		}
1042 	}
1043 
1044 	return err;
1045 }
1046 
dsa_tree_setup_master(struct dsa_switch_tree * dst)1047 static int dsa_tree_setup_master(struct dsa_switch_tree *dst)
1048 {
1049 	struct dsa_port *dp;
1050 	int err = 0;
1051 
1052 	rtnl_lock();
1053 
1054 	list_for_each_entry(dp, &dst->ports, list) {
1055 		if (dsa_port_is_cpu(dp)) {
1056 			struct net_device *master = dp->master;
1057 			bool admin_up = (master->flags & IFF_UP) &&
1058 					!qdisc_tx_is_noop(master);
1059 
1060 			err = dsa_master_setup(master, dp);
1061 			if (err)
1062 				break;
1063 
1064 			/* Replay master state event */
1065 			dsa_tree_master_admin_state_change(dst, master, admin_up);
1066 			dsa_tree_master_oper_state_change(dst, master,
1067 							  netif_oper_up(master));
1068 		}
1069 	}
1070 
1071 	rtnl_unlock();
1072 
1073 	return err;
1074 }
1075 
dsa_tree_teardown_master(struct dsa_switch_tree * dst)1076 static void dsa_tree_teardown_master(struct dsa_switch_tree *dst)
1077 {
1078 	struct dsa_port *dp;
1079 
1080 	rtnl_lock();
1081 
1082 	list_for_each_entry(dp, &dst->ports, list) {
1083 		if (dsa_port_is_cpu(dp)) {
1084 			struct net_device *master = dp->master;
1085 
1086 			/* Synthesizing an "admin down" state is sufficient for
1087 			 * the switches to get a notification if the master is
1088 			 * currently up and running.
1089 			 */
1090 			dsa_tree_master_admin_state_change(dst, master, false);
1091 
1092 			dsa_master_teardown(master);
1093 		}
1094 	}
1095 
1096 	rtnl_unlock();
1097 }
1098 
dsa_tree_setup_lags(struct dsa_switch_tree * dst)1099 static int dsa_tree_setup_lags(struct dsa_switch_tree *dst)
1100 {
1101 	unsigned int len = 0;
1102 	struct dsa_port *dp;
1103 
1104 	list_for_each_entry(dp, &dst->ports, list) {
1105 		if (dp->ds->num_lag_ids > len)
1106 			len = dp->ds->num_lag_ids;
1107 	}
1108 
1109 	if (!len)
1110 		return 0;
1111 
1112 	dst->lags = kcalloc(len, sizeof(*dst->lags), GFP_KERNEL);
1113 	if (!dst->lags)
1114 		return -ENOMEM;
1115 
1116 	dst->lags_len = len;
1117 	return 0;
1118 }
1119 
dsa_tree_teardown_lags(struct dsa_switch_tree * dst)1120 static void dsa_tree_teardown_lags(struct dsa_switch_tree *dst)
1121 {
1122 	kfree(dst->lags);
1123 }
1124 
dsa_tree_setup(struct dsa_switch_tree * dst)1125 static int dsa_tree_setup(struct dsa_switch_tree *dst)
1126 {
1127 	bool complete;
1128 	int err;
1129 
1130 	if (dst->setup) {
1131 		pr_err("DSA: tree %d already setup! Disjoint trees?\n",
1132 		       dst->index);
1133 		return -EEXIST;
1134 	}
1135 
1136 	complete = dsa_tree_setup_routing_table(dst);
1137 	if (!complete)
1138 		return 0;
1139 
1140 	err = dsa_tree_setup_cpu_ports(dst);
1141 	if (err)
1142 		return err;
1143 
1144 	err = dsa_tree_setup_switches(dst);
1145 	if (err)
1146 		goto teardown_cpu_ports;
1147 
1148 	err = dsa_tree_setup_ports(dst);
1149 	if (err)
1150 		goto teardown_switches;
1151 
1152 	err = dsa_tree_setup_master(dst);
1153 	if (err)
1154 		goto teardown_ports;
1155 
1156 	err = dsa_tree_setup_lags(dst);
1157 	if (err)
1158 		goto teardown_master;
1159 
1160 	dst->setup = true;
1161 
1162 	pr_info("DSA: tree %d setup\n", dst->index);
1163 
1164 	return 0;
1165 
1166 teardown_master:
1167 	dsa_tree_teardown_master(dst);
1168 teardown_ports:
1169 	dsa_tree_teardown_ports(dst);
1170 teardown_switches:
1171 	dsa_tree_teardown_switches(dst);
1172 teardown_cpu_ports:
1173 	dsa_tree_teardown_cpu_ports(dst);
1174 
1175 	return err;
1176 }
1177 
dsa_tree_teardown(struct dsa_switch_tree * dst)1178 static void dsa_tree_teardown(struct dsa_switch_tree *dst)
1179 {
1180 	struct dsa_link *dl, *next;
1181 
1182 	if (!dst->setup)
1183 		return;
1184 
1185 	dsa_tree_teardown_lags(dst);
1186 
1187 	dsa_tree_teardown_master(dst);
1188 
1189 	dsa_tree_teardown_ports(dst);
1190 
1191 	dsa_tree_teardown_switches(dst);
1192 
1193 	dsa_tree_teardown_cpu_ports(dst);
1194 
1195 	list_for_each_entry_safe(dl, next, &dst->rtable, list) {
1196 		list_del(&dl->list);
1197 		kfree(dl);
1198 	}
1199 
1200 	pr_info("DSA: tree %d torn down\n", dst->index);
1201 
1202 	dst->setup = false;
1203 }
1204 
dsa_tree_bind_tag_proto(struct dsa_switch_tree * dst,const struct dsa_device_ops * tag_ops)1205 static int dsa_tree_bind_tag_proto(struct dsa_switch_tree *dst,
1206 				   const struct dsa_device_ops *tag_ops)
1207 {
1208 	const struct dsa_device_ops *old_tag_ops = dst->tag_ops;
1209 	struct dsa_notifier_tag_proto_info info;
1210 	int err;
1211 
1212 	dst->tag_ops = tag_ops;
1213 
1214 	/* Notify the switches from this tree about the connection
1215 	 * to the new tagger
1216 	 */
1217 	info.tag_ops = tag_ops;
1218 	err = dsa_tree_notify(dst, DSA_NOTIFIER_TAG_PROTO_CONNECT, &info);
1219 	if (err && err != -EOPNOTSUPP)
1220 		goto out_disconnect;
1221 
1222 	/* Notify the old tagger about the disconnection from this tree */
1223 	info.tag_ops = old_tag_ops;
1224 	dsa_tree_notify(dst, DSA_NOTIFIER_TAG_PROTO_DISCONNECT, &info);
1225 
1226 	return 0;
1227 
1228 out_disconnect:
1229 	info.tag_ops = tag_ops;
1230 	dsa_tree_notify(dst, DSA_NOTIFIER_TAG_PROTO_DISCONNECT, &info);
1231 	dst->tag_ops = old_tag_ops;
1232 
1233 	return err;
1234 }
1235 
1236 /* Since the dsa/tagging sysfs device attribute is per master, the assumption
1237  * is that all DSA switches within a tree share the same tagger, otherwise
1238  * they would have formed disjoint trees (different "dsa,member" values).
1239  */
dsa_tree_change_tag_proto(struct dsa_switch_tree * dst,struct net_device * master,const struct dsa_device_ops * tag_ops,const struct dsa_device_ops * old_tag_ops)1240 int dsa_tree_change_tag_proto(struct dsa_switch_tree *dst,
1241 			      struct net_device *master,
1242 			      const struct dsa_device_ops *tag_ops,
1243 			      const struct dsa_device_ops *old_tag_ops)
1244 {
1245 	struct dsa_notifier_tag_proto_info info;
1246 	struct dsa_port *dp;
1247 	int err = -EBUSY;
1248 
1249 	if (!rtnl_trylock())
1250 		return restart_syscall();
1251 
1252 	/* At the moment we don't allow changing the tag protocol under
1253 	 * traffic. The rtnl_mutex also happens to serialize concurrent
1254 	 * attempts to change the tagging protocol. If we ever lift the IFF_UP
1255 	 * restriction, there needs to be another mutex which serializes this.
1256 	 */
1257 	if (master->flags & IFF_UP)
1258 		goto out_unlock;
1259 
1260 	list_for_each_entry(dp, &dst->ports, list) {
1261 		if (!dsa_port_is_user(dp))
1262 			continue;
1263 
1264 		if (dp->slave->flags & IFF_UP)
1265 			goto out_unlock;
1266 	}
1267 
1268 	/* Notify the tag protocol change */
1269 	info.tag_ops = tag_ops;
1270 	err = dsa_tree_notify(dst, DSA_NOTIFIER_TAG_PROTO, &info);
1271 	if (err)
1272 		goto out_unwind_tagger;
1273 
1274 	err = dsa_tree_bind_tag_proto(dst, tag_ops);
1275 	if (err)
1276 		goto out_unwind_tagger;
1277 
1278 	rtnl_unlock();
1279 
1280 	return 0;
1281 
1282 out_unwind_tagger:
1283 	info.tag_ops = old_tag_ops;
1284 	dsa_tree_notify(dst, DSA_NOTIFIER_TAG_PROTO, &info);
1285 out_unlock:
1286 	rtnl_unlock();
1287 	return err;
1288 }
1289 
dsa_tree_master_state_change(struct dsa_switch_tree * dst,struct net_device * master)1290 static void dsa_tree_master_state_change(struct dsa_switch_tree *dst,
1291 					 struct net_device *master)
1292 {
1293 	struct dsa_notifier_master_state_info info;
1294 	struct dsa_port *cpu_dp = master->dsa_ptr;
1295 
1296 	info.master = master;
1297 	info.operational = dsa_port_master_is_operational(cpu_dp);
1298 
1299 	dsa_tree_notify(dst, DSA_NOTIFIER_MASTER_STATE_CHANGE, &info);
1300 }
1301 
dsa_tree_master_admin_state_change(struct dsa_switch_tree * dst,struct net_device * master,bool up)1302 void dsa_tree_master_admin_state_change(struct dsa_switch_tree *dst,
1303 					struct net_device *master,
1304 					bool up)
1305 {
1306 	struct dsa_port *cpu_dp = master->dsa_ptr;
1307 	bool notify = false;
1308 
1309 	if ((dsa_port_master_is_operational(cpu_dp)) !=
1310 	    (up && cpu_dp->master_oper_up))
1311 		notify = true;
1312 
1313 	cpu_dp->master_admin_up = up;
1314 
1315 	if (notify)
1316 		dsa_tree_master_state_change(dst, master);
1317 }
1318 
dsa_tree_master_oper_state_change(struct dsa_switch_tree * dst,struct net_device * master,bool up)1319 void dsa_tree_master_oper_state_change(struct dsa_switch_tree *dst,
1320 				       struct net_device *master,
1321 				       bool up)
1322 {
1323 	struct dsa_port *cpu_dp = master->dsa_ptr;
1324 	bool notify = false;
1325 
1326 	if ((dsa_port_master_is_operational(cpu_dp)) !=
1327 	    (cpu_dp->master_admin_up && up))
1328 		notify = true;
1329 
1330 	cpu_dp->master_oper_up = up;
1331 
1332 	if (notify)
1333 		dsa_tree_master_state_change(dst, master);
1334 }
1335 
dsa_port_touch(struct dsa_switch * ds,int index)1336 static struct dsa_port *dsa_port_touch(struct dsa_switch *ds, int index)
1337 {
1338 	struct dsa_switch_tree *dst = ds->dst;
1339 	struct dsa_port *dp;
1340 
1341 	dsa_switch_for_each_port(dp, ds)
1342 		if (dp->index == index)
1343 			return dp;
1344 
1345 	dp = kzalloc(sizeof(*dp), GFP_KERNEL);
1346 	if (!dp)
1347 		return NULL;
1348 
1349 	dp->ds = ds;
1350 	dp->index = index;
1351 
1352 	mutex_init(&dp->addr_lists_lock);
1353 	mutex_init(&dp->vlans_lock);
1354 	INIT_LIST_HEAD(&dp->fdbs);
1355 	INIT_LIST_HEAD(&dp->mdbs);
1356 	INIT_LIST_HEAD(&dp->vlans);
1357 	INIT_LIST_HEAD(&dp->list);
1358 	list_add_tail(&dp->list, &dst->ports);
1359 
1360 	return dp;
1361 }
1362 
dsa_port_parse_user(struct dsa_port * dp,const char * name)1363 static int dsa_port_parse_user(struct dsa_port *dp, const char *name)
1364 {
1365 	if (!name)
1366 		name = "eth%d";
1367 
1368 	dp->type = DSA_PORT_TYPE_USER;
1369 	dp->name = name;
1370 
1371 	return 0;
1372 }
1373 
dsa_port_parse_dsa(struct dsa_port * dp)1374 static int dsa_port_parse_dsa(struct dsa_port *dp)
1375 {
1376 	dp->type = DSA_PORT_TYPE_DSA;
1377 
1378 	return 0;
1379 }
1380 
dsa_get_tag_protocol(struct dsa_port * dp,struct net_device * master)1381 static enum dsa_tag_protocol dsa_get_tag_protocol(struct dsa_port *dp,
1382 						  struct net_device *master)
1383 {
1384 	enum dsa_tag_protocol tag_protocol = DSA_TAG_PROTO_NONE;
1385 	struct dsa_switch *mds, *ds = dp->ds;
1386 	unsigned int mdp_upstream;
1387 	struct dsa_port *mdp;
1388 
1389 	/* It is possible to stack DSA switches onto one another when that
1390 	 * happens the switch driver may want to know if its tagging protocol
1391 	 * is going to work in such a configuration.
1392 	 */
1393 	if (dsa_slave_dev_check(master)) {
1394 		mdp = dsa_slave_to_port(master);
1395 		mds = mdp->ds;
1396 		mdp_upstream = dsa_upstream_port(mds, mdp->index);
1397 		tag_protocol = mds->ops->get_tag_protocol(mds, mdp_upstream,
1398 							  DSA_TAG_PROTO_NONE);
1399 	}
1400 
1401 	/* If the master device is not itself a DSA slave in a disjoint DSA
1402 	 * tree, then return immediately.
1403 	 */
1404 	return ds->ops->get_tag_protocol(ds, dp->index, tag_protocol);
1405 }
1406 
dsa_port_parse_cpu(struct dsa_port * dp,struct net_device * master,const char * user_protocol)1407 static int dsa_port_parse_cpu(struct dsa_port *dp, struct net_device *master,
1408 			      const char *user_protocol)
1409 {
1410 	struct dsa_switch *ds = dp->ds;
1411 	struct dsa_switch_tree *dst = ds->dst;
1412 	const struct dsa_device_ops *tag_ops;
1413 	enum dsa_tag_protocol default_proto;
1414 
1415 	/* Find out which protocol the switch would prefer. */
1416 	default_proto = dsa_get_tag_protocol(dp, master);
1417 	if (dst->default_proto) {
1418 		if (dst->default_proto != default_proto) {
1419 			dev_err(ds->dev,
1420 				"A DSA switch tree can have only one tagging protocol\n");
1421 			return -EINVAL;
1422 		}
1423 	} else {
1424 		dst->default_proto = default_proto;
1425 	}
1426 
1427 	/* See if the user wants to override that preference. */
1428 	if (user_protocol) {
1429 		if (!ds->ops->change_tag_protocol) {
1430 			dev_err(ds->dev, "Tag protocol cannot be modified\n");
1431 			return -EINVAL;
1432 		}
1433 
1434 		tag_ops = dsa_find_tagger_by_name(user_protocol);
1435 	} else {
1436 		tag_ops = dsa_tag_driver_get(default_proto);
1437 	}
1438 
1439 	if (IS_ERR(tag_ops)) {
1440 		if (PTR_ERR(tag_ops) == -ENOPROTOOPT)
1441 			return -EPROBE_DEFER;
1442 
1443 		dev_warn(ds->dev, "No tagger for this switch\n");
1444 		return PTR_ERR(tag_ops);
1445 	}
1446 
1447 	if (dst->tag_ops) {
1448 		if (dst->tag_ops != tag_ops) {
1449 			dev_err(ds->dev,
1450 				"A DSA switch tree can have only one tagging protocol\n");
1451 
1452 			dsa_tag_driver_put(tag_ops);
1453 			return -EINVAL;
1454 		}
1455 
1456 		/* In the case of multiple CPU ports per switch, the tagging
1457 		 * protocol is still reference-counted only per switch tree.
1458 		 */
1459 		dsa_tag_driver_put(tag_ops);
1460 	} else {
1461 		dst->tag_ops = tag_ops;
1462 	}
1463 
1464 	dp->master = master;
1465 	dp->type = DSA_PORT_TYPE_CPU;
1466 	dsa_port_set_tag_protocol(dp, dst->tag_ops);
1467 	dp->dst = dst;
1468 
1469 	/* At this point, the tree may be configured to use a different
1470 	 * tagger than the one chosen by the switch driver during
1471 	 * .setup, in the case when a user selects a custom protocol
1472 	 * through the DT.
1473 	 *
1474 	 * This is resolved by syncing the driver with the tree in
1475 	 * dsa_switch_setup_tag_protocol once .setup has run and the
1476 	 * driver is ready to accept calls to .change_tag_protocol. If
1477 	 * the driver does not support the custom protocol at that
1478 	 * point, the tree is wholly rejected, thereby ensuring that the
1479 	 * tree and driver are always in agreement on the protocol to
1480 	 * use.
1481 	 */
1482 	return 0;
1483 }
1484 
dsa_port_parse_of(struct dsa_port * dp,struct device_node * dn)1485 static int dsa_port_parse_of(struct dsa_port *dp, struct device_node *dn)
1486 {
1487 	struct device_node *ethernet = of_parse_phandle(dn, "ethernet", 0);
1488 	const char *name = of_get_property(dn, "label", NULL);
1489 	bool link = of_property_read_bool(dn, "link");
1490 
1491 	dp->dn = dn;
1492 
1493 	if (ethernet) {
1494 		struct net_device *master;
1495 		const char *user_protocol;
1496 
1497 		master = of_find_net_device_by_node(ethernet);
1498 		of_node_put(ethernet);
1499 		if (!master)
1500 			return -EPROBE_DEFER;
1501 
1502 		user_protocol = of_get_property(dn, "dsa-tag-protocol", NULL);
1503 		return dsa_port_parse_cpu(dp, master, user_protocol);
1504 	}
1505 
1506 	if (link)
1507 		return dsa_port_parse_dsa(dp);
1508 
1509 	return dsa_port_parse_user(dp, name);
1510 }
1511 
dsa_switch_parse_ports_of(struct dsa_switch * ds,struct device_node * dn)1512 static int dsa_switch_parse_ports_of(struct dsa_switch *ds,
1513 				     struct device_node *dn)
1514 {
1515 	struct device_node *ports, *port;
1516 	struct dsa_port *dp;
1517 	int err = 0;
1518 	u32 reg;
1519 
1520 	ports = of_get_child_by_name(dn, "ports");
1521 	if (!ports) {
1522 		/* The second possibility is "ethernet-ports" */
1523 		ports = of_get_child_by_name(dn, "ethernet-ports");
1524 		if (!ports) {
1525 			dev_err(ds->dev, "no ports child node found\n");
1526 			return -EINVAL;
1527 		}
1528 	}
1529 
1530 	for_each_available_child_of_node(ports, port) {
1531 		err = of_property_read_u32(port, "reg", &reg);
1532 		if (err) {
1533 			of_node_put(port);
1534 			goto out_put_node;
1535 		}
1536 
1537 		if (reg >= ds->num_ports) {
1538 			dev_err(ds->dev, "port %pOF index %u exceeds num_ports (%u)\n",
1539 				port, reg, ds->num_ports);
1540 			of_node_put(port);
1541 			err = -EINVAL;
1542 			goto out_put_node;
1543 		}
1544 
1545 		dp = dsa_to_port(ds, reg);
1546 
1547 		err = dsa_port_parse_of(dp, port);
1548 		if (err) {
1549 			of_node_put(port);
1550 			goto out_put_node;
1551 		}
1552 	}
1553 
1554 out_put_node:
1555 	of_node_put(ports);
1556 	return err;
1557 }
1558 
dsa_switch_parse_member_of(struct dsa_switch * ds,struct device_node * dn)1559 static int dsa_switch_parse_member_of(struct dsa_switch *ds,
1560 				      struct device_node *dn)
1561 {
1562 	u32 m[2] = { 0, 0 };
1563 	int sz;
1564 
1565 	/* Don't error out if this optional property isn't found */
1566 	sz = of_property_read_variable_u32_array(dn, "dsa,member", m, 2, 2);
1567 	if (sz < 0 && sz != -EINVAL)
1568 		return sz;
1569 
1570 	ds->index = m[1];
1571 
1572 	ds->dst = dsa_tree_touch(m[0]);
1573 	if (!ds->dst)
1574 		return -ENOMEM;
1575 
1576 	if (dsa_switch_find(ds->dst->index, ds->index)) {
1577 		dev_err(ds->dev,
1578 			"A DSA switch with index %d already exists in tree %d\n",
1579 			ds->index, ds->dst->index);
1580 		return -EEXIST;
1581 	}
1582 
1583 	if (ds->dst->last_switch < ds->index)
1584 		ds->dst->last_switch = ds->index;
1585 
1586 	return 0;
1587 }
1588 
dsa_switch_touch_ports(struct dsa_switch * ds)1589 static int dsa_switch_touch_ports(struct dsa_switch *ds)
1590 {
1591 	struct dsa_port *dp;
1592 	int port;
1593 
1594 	for (port = 0; port < ds->num_ports; port++) {
1595 		dp = dsa_port_touch(ds, port);
1596 		if (!dp)
1597 			return -ENOMEM;
1598 	}
1599 
1600 	return 0;
1601 }
1602 
dsa_switch_parse_of(struct dsa_switch * ds,struct device_node * dn)1603 static int dsa_switch_parse_of(struct dsa_switch *ds, struct device_node *dn)
1604 {
1605 	int err;
1606 
1607 	err = dsa_switch_parse_member_of(ds, dn);
1608 	if (err)
1609 		return err;
1610 
1611 	err = dsa_switch_touch_ports(ds);
1612 	if (err)
1613 		return err;
1614 
1615 	return dsa_switch_parse_ports_of(ds, dn);
1616 }
1617 
dsa_port_parse(struct dsa_port * dp,const char * name,struct device * dev)1618 static int dsa_port_parse(struct dsa_port *dp, const char *name,
1619 			  struct device *dev)
1620 {
1621 	if (!strcmp(name, "cpu")) {
1622 		struct net_device *master;
1623 
1624 		master = dsa_dev_to_net_device(dev);
1625 		if (!master)
1626 			return -EPROBE_DEFER;
1627 
1628 		dev_put(master);
1629 
1630 		return dsa_port_parse_cpu(dp, master, NULL);
1631 	}
1632 
1633 	if (!strcmp(name, "dsa"))
1634 		return dsa_port_parse_dsa(dp);
1635 
1636 	return dsa_port_parse_user(dp, name);
1637 }
1638 
dsa_switch_parse_ports(struct dsa_switch * ds,struct dsa_chip_data * cd)1639 static int dsa_switch_parse_ports(struct dsa_switch *ds,
1640 				  struct dsa_chip_data *cd)
1641 {
1642 	bool valid_name_found = false;
1643 	struct dsa_port *dp;
1644 	struct device *dev;
1645 	const char *name;
1646 	unsigned int i;
1647 	int err;
1648 
1649 	for (i = 0; i < DSA_MAX_PORTS; i++) {
1650 		name = cd->port_names[i];
1651 		dev = cd->netdev[i];
1652 		dp = dsa_to_port(ds, i);
1653 
1654 		if (!name)
1655 			continue;
1656 
1657 		err = dsa_port_parse(dp, name, dev);
1658 		if (err)
1659 			return err;
1660 
1661 		valid_name_found = true;
1662 	}
1663 
1664 	if (!valid_name_found && i == DSA_MAX_PORTS)
1665 		return -EINVAL;
1666 
1667 	return 0;
1668 }
1669 
dsa_switch_parse(struct dsa_switch * ds,struct dsa_chip_data * cd)1670 static int dsa_switch_parse(struct dsa_switch *ds, struct dsa_chip_data *cd)
1671 {
1672 	int err;
1673 
1674 	ds->cd = cd;
1675 
1676 	/* We don't support interconnected switches nor multiple trees via
1677 	 * platform data, so this is the unique switch of the tree.
1678 	 */
1679 	ds->index = 0;
1680 	ds->dst = dsa_tree_touch(0);
1681 	if (!ds->dst)
1682 		return -ENOMEM;
1683 
1684 	err = dsa_switch_touch_ports(ds);
1685 	if (err)
1686 		return err;
1687 
1688 	return dsa_switch_parse_ports(ds, cd);
1689 }
1690 
dsa_switch_release_ports(struct dsa_switch * ds)1691 static void dsa_switch_release_ports(struct dsa_switch *ds)
1692 {
1693 	struct dsa_port *dp, *next;
1694 
1695 	dsa_switch_for_each_port_safe(dp, next, ds) {
1696 		WARN_ON(!list_empty(&dp->fdbs));
1697 		WARN_ON(!list_empty(&dp->mdbs));
1698 		WARN_ON(!list_empty(&dp->vlans));
1699 		list_del(&dp->list);
1700 		kfree(dp);
1701 	}
1702 }
1703 
dsa_switch_probe(struct dsa_switch * ds)1704 static int dsa_switch_probe(struct dsa_switch *ds)
1705 {
1706 	struct dsa_switch_tree *dst;
1707 	struct dsa_chip_data *pdata;
1708 	struct device_node *np;
1709 	int err;
1710 
1711 	if (!ds->dev)
1712 		return -ENODEV;
1713 
1714 	pdata = ds->dev->platform_data;
1715 	np = ds->dev->of_node;
1716 
1717 	if (!ds->num_ports)
1718 		return -EINVAL;
1719 
1720 	if (np) {
1721 		err = dsa_switch_parse_of(ds, np);
1722 		if (err)
1723 			dsa_switch_release_ports(ds);
1724 	} else if (pdata) {
1725 		err = dsa_switch_parse(ds, pdata);
1726 		if (err)
1727 			dsa_switch_release_ports(ds);
1728 	} else {
1729 		err = -ENODEV;
1730 	}
1731 
1732 	if (err)
1733 		return err;
1734 
1735 	dst = ds->dst;
1736 	dsa_tree_get(dst);
1737 	err = dsa_tree_setup(dst);
1738 	if (err) {
1739 		dsa_switch_release_ports(ds);
1740 		dsa_tree_put(dst);
1741 	}
1742 
1743 	return err;
1744 }
1745 
dsa_register_switch(struct dsa_switch * ds)1746 int dsa_register_switch(struct dsa_switch *ds)
1747 {
1748 	int err;
1749 
1750 	mutex_lock(&dsa2_mutex);
1751 	err = dsa_switch_probe(ds);
1752 	dsa_tree_put(ds->dst);
1753 	mutex_unlock(&dsa2_mutex);
1754 
1755 	return err;
1756 }
1757 EXPORT_SYMBOL_GPL(dsa_register_switch);
1758 
dsa_switch_remove(struct dsa_switch * ds)1759 static void dsa_switch_remove(struct dsa_switch *ds)
1760 {
1761 	struct dsa_switch_tree *dst = ds->dst;
1762 
1763 	dsa_tree_teardown(dst);
1764 	dsa_switch_release_ports(ds);
1765 	dsa_tree_put(dst);
1766 }
1767 
dsa_unregister_switch(struct dsa_switch * ds)1768 void dsa_unregister_switch(struct dsa_switch *ds)
1769 {
1770 	mutex_lock(&dsa2_mutex);
1771 	dsa_switch_remove(ds);
1772 	mutex_unlock(&dsa2_mutex);
1773 }
1774 EXPORT_SYMBOL_GPL(dsa_unregister_switch);
1775 
1776 /* If the DSA master chooses to unregister its net_device on .shutdown, DSA is
1777  * blocking that operation from completion, due to the dev_hold taken inside
1778  * netdev_upper_dev_link. Unlink the DSA slave interfaces from being uppers of
1779  * the DSA master, so that the system can reboot successfully.
1780  */
dsa_switch_shutdown(struct dsa_switch * ds)1781 void dsa_switch_shutdown(struct dsa_switch *ds)
1782 {
1783 	struct net_device *master, *slave_dev;
1784 	struct dsa_port *dp;
1785 
1786 	mutex_lock(&dsa2_mutex);
1787 
1788 	if (!ds->setup)
1789 		goto out;
1790 
1791 	rtnl_lock();
1792 
1793 	dsa_switch_for_each_user_port(dp, ds) {
1794 		master = dp->cpu_dp->master;
1795 		slave_dev = dp->slave;
1796 
1797 		netdev_upper_dev_unlink(master, slave_dev);
1798 	}
1799 
1800 	/* Disconnect from further netdevice notifiers on the master,
1801 	 * since netdev_uses_dsa() will now return false.
1802 	 */
1803 	dsa_switch_for_each_cpu_port(dp, ds)
1804 		dp->master->dsa_ptr = NULL;
1805 
1806 	rtnl_unlock();
1807 out:
1808 	mutex_unlock(&dsa2_mutex);
1809 }
1810 EXPORT_SYMBOL_GPL(dsa_switch_shutdown);
1811