1 /*
2 * Copyright (c) 2004 Topspin Communications. All rights reserved.
3 * Copyright (c) 2005 Sun Microsystems, Inc. All rights reserved.
4 *
5 * This software is available to you under a choice of one of two
6 * licenses. You may choose to be licensed under the terms of the GNU
7 * General Public License (GPL) Version 2, available from the file
8 * COPYING in the main directory of this source tree, or the
9 * OpenIB.org BSD license below:
10 *
11 * Redistribution and use in source and binary forms, with or
12 * without modification, are permitted provided that the following
13 * conditions are met:
14 *
15 * - Redistributions of source code must retain the above
16 * copyright notice, this list of conditions and the following
17 * disclaimer.
18 *
19 * - Redistributions in binary form must reproduce the above
20 * copyright notice, this list of conditions and the following
21 * disclaimer in the documentation and/or other materials
22 * provided with the distribution.
23 *
24 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
25 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
26 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
27 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
28 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
29 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
30 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
31 * SOFTWARE.
32 */
33
34 #include <linux/module.h>
35 #include <linux/string.h>
36 #include <linux/errno.h>
37 #include <linux/kernel.h>
38 #include <linux/slab.h>
39 #include <linux/init.h>
40 #include <linux/netdevice.h>
41 #include <net/net_namespace.h>
42 #include <linux/security.h>
43 #include <linux/notifier.h>
44 #include <linux/hashtable.h>
45 #include <rdma/rdma_netlink.h>
46 #include <rdma/ib_addr.h>
47 #include <rdma/ib_cache.h>
48 #include <rdma/rdma_counter.h>
49
50 #include "core_priv.h"
51 #include "restrack.h"
52
53 MODULE_AUTHOR("Roland Dreier");
54 MODULE_DESCRIPTION("core kernel InfiniBand API");
55 MODULE_LICENSE("Dual BSD/GPL");
56
57 struct workqueue_struct *ib_comp_wq;
58 struct workqueue_struct *ib_comp_unbound_wq;
59 struct workqueue_struct *ib_wq;
60 EXPORT_SYMBOL_GPL(ib_wq);
61 static struct workqueue_struct *ib_unreg_wq;
62
63 /*
64 * Each of the three rwsem locks (devices, clients, client_data) protects the
65 * xarray of the same name. Specifically it allows the caller to assert that
66 * the MARK will/will not be changing under the lock, and for devices and
67 * clients, that the value in the xarray is still a valid pointer. Change of
68 * the MARK is linked to the object state, so holding the lock and testing the
69 * MARK also asserts that the contained object is in a certain state.
70 *
71 * This is used to build a two stage register/unregister flow where objects
72 * can continue to be in the xarray even though they are still in progress to
73 * register/unregister.
74 *
75 * The xarray itself provides additional locking, and restartable iteration,
76 * which is also relied on.
77 *
78 * Locks should not be nested, with the exception of client_data, which is
79 * allowed to nest under the read side of the other two locks.
80 *
81 * The devices_rwsem also protects the device name list, any change or
82 * assignment of device name must also hold the write side to guarantee unique
83 * names.
84 */
85
86 /*
87 * devices contains devices that have had their names assigned. The
88 * devices may not be registered. Users that care about the registration
89 * status need to call ib_device_try_get() on the device to ensure it is
90 * registered, and keep it registered, for the required duration.
91 *
92 */
93 static DEFINE_XARRAY_FLAGS(devices, XA_FLAGS_ALLOC);
94 static DECLARE_RWSEM(devices_rwsem);
95 #define DEVICE_REGISTERED XA_MARK_1
96
97 static u32 highest_client_id;
98 #define CLIENT_REGISTERED XA_MARK_1
99 static DEFINE_XARRAY_FLAGS(clients, XA_FLAGS_ALLOC);
100 static DECLARE_RWSEM(clients_rwsem);
101
ib_client_put(struct ib_client * client)102 static void ib_client_put(struct ib_client *client)
103 {
104 if (refcount_dec_and_test(&client->uses))
105 complete(&client->uses_zero);
106 }
107
108 /*
109 * If client_data is registered then the corresponding client must also still
110 * be registered.
111 */
112 #define CLIENT_DATA_REGISTERED XA_MARK_1
113
114 unsigned int rdma_dev_net_id;
115
116 /*
117 * A list of net namespaces is maintained in an xarray. This is necessary
118 * because we can't get the locking right using the existing net ns list. We
119 * would require a init_net callback after the list is updated.
120 */
121 static DEFINE_XARRAY_FLAGS(rdma_nets, XA_FLAGS_ALLOC);
122 /*
123 * rwsem to protect accessing the rdma_nets xarray entries.
124 */
125 static DECLARE_RWSEM(rdma_nets_rwsem);
126
127 bool ib_devices_shared_netns = true;
128 module_param_named(netns_mode, ib_devices_shared_netns, bool, 0444);
129 MODULE_PARM_DESC(netns_mode,
130 "Share device among net namespaces; default=1 (shared)");
131 /**
132 * rdma_dev_access_netns() - Return whether an rdma device can be accessed
133 * from a specified net namespace or not.
134 * @dev: Pointer to rdma device which needs to be checked
135 * @net: Pointer to net namesapce for which access to be checked
136 *
137 * When the rdma device is in shared mode, it ignores the net namespace.
138 * When the rdma device is exclusive to a net namespace, rdma device net
139 * namespace is checked against the specified one.
140 */
rdma_dev_access_netns(const struct ib_device * dev,const struct net * net)141 bool rdma_dev_access_netns(const struct ib_device *dev, const struct net *net)
142 {
143 return (ib_devices_shared_netns ||
144 net_eq(read_pnet(&dev->coredev.rdma_net), net));
145 }
146 EXPORT_SYMBOL(rdma_dev_access_netns);
147
148 /**
149 * rdma_dev_has_raw_cap() - Returns whether a specified rdma device has
150 * CAP_NET_RAW capability or not.
151 *
152 * @dev: Pointer to rdma device whose capability to be checked
153 *
154 * Returns true if a rdma device's owning user namespace has CAP_NET_RAW
155 * capability, otherwise false. When rdma subsystem is in legacy shared network,
156 * namespace mode, the default net namespace is considered.
157 */
rdma_dev_has_raw_cap(const struct ib_device * dev)158 bool rdma_dev_has_raw_cap(const struct ib_device *dev)
159 {
160 const struct net *net;
161
162 /* Network namespace is the resource whose user namespace
163 * to be considered. When in shared mode, there is no reliable
164 * network namespace resource, so consider the default net namespace.
165 */
166 if (ib_devices_shared_netns)
167 net = &init_net;
168 else
169 net = read_pnet(&dev->coredev.rdma_net);
170
171 return ns_capable(net->user_ns, CAP_NET_RAW);
172 }
173 EXPORT_SYMBOL(rdma_dev_has_raw_cap);
174
175 /*
176 * xarray has this behavior where it won't iterate over NULL values stored in
177 * allocated arrays. So we need our own iterator to see all values stored in
178 * the array. This does the same thing as xa_for_each except that it also
179 * returns NULL valued entries if the array is allocating. Simplified to only
180 * work on simple xarrays.
181 */
xan_find_marked(struct xarray * xa,unsigned long * indexp,xa_mark_t filter)182 static void *xan_find_marked(struct xarray *xa, unsigned long *indexp,
183 xa_mark_t filter)
184 {
185 XA_STATE(xas, xa, *indexp);
186 void *entry;
187
188 rcu_read_lock();
189 do {
190 entry = xas_find_marked(&xas, ULONG_MAX, filter);
191 if (xa_is_zero(entry))
192 break;
193 } while (xas_retry(&xas, entry));
194 rcu_read_unlock();
195
196 if (entry) {
197 *indexp = xas.xa_index;
198 if (xa_is_zero(entry))
199 return NULL;
200 return entry;
201 }
202 return XA_ERROR(-ENOENT);
203 }
204 #define xan_for_each_marked(xa, index, entry, filter) \
205 for (index = 0, entry = xan_find_marked(xa, &(index), filter); \
206 !xa_is_err(entry); \
207 (index)++, entry = xan_find_marked(xa, &(index), filter))
208
209 /* RCU hash table mapping netdevice pointers to struct ib_port_data */
210 static DEFINE_SPINLOCK(ndev_hash_lock);
211 static DECLARE_HASHTABLE(ndev_hash, 5);
212
213 static void free_netdevs(struct ib_device *ib_dev);
214 static void ib_unregister_work(struct work_struct *work);
215 static void __ib_unregister_device(struct ib_device *device);
216 static int ib_security_change(struct notifier_block *nb, unsigned long event,
217 void *lsm_data);
218 static void ib_policy_change_task(struct work_struct *work);
219 static DECLARE_WORK(ib_policy_change_work, ib_policy_change_task);
220
__ibdev_printk(const char * level,const struct ib_device * ibdev,struct va_format * vaf)221 static void __ibdev_printk(const char *level, const struct ib_device *ibdev,
222 struct va_format *vaf)
223 {
224 if (ibdev && ibdev->dev.parent)
225 dev_printk_emit(level[1] - '0',
226 ibdev->dev.parent,
227 "%s %s %s: %pV",
228 dev_driver_string(ibdev->dev.parent),
229 dev_name(ibdev->dev.parent),
230 dev_name(&ibdev->dev),
231 vaf);
232 else if (ibdev)
233 printk("%s%s: %pV",
234 level, dev_name(&ibdev->dev), vaf);
235 else
236 printk("%s(NULL ib_device): %pV", level, vaf);
237 }
238
239 #define define_ibdev_printk_level(func, level) \
240 void func(const struct ib_device *ibdev, const char *fmt, ...) \
241 { \
242 struct va_format vaf; \
243 va_list args; \
244 \
245 va_start(args, fmt); \
246 \
247 vaf.fmt = fmt; \
248 vaf.va = &args; \
249 \
250 __ibdev_printk(level, ibdev, &vaf); \
251 \
252 va_end(args); \
253 } \
254 EXPORT_SYMBOL(func);
255
256 define_ibdev_printk_level(ibdev_emerg, KERN_EMERG);
257 define_ibdev_printk_level(ibdev_alert, KERN_ALERT);
258 define_ibdev_printk_level(ibdev_crit, KERN_CRIT);
259 define_ibdev_printk_level(ibdev_err, KERN_ERR);
260 define_ibdev_printk_level(ibdev_warn, KERN_WARNING);
261 define_ibdev_printk_level(ibdev_notice, KERN_NOTICE);
262 define_ibdev_printk_level(ibdev_info, KERN_INFO);
263
264 static struct notifier_block ibdev_lsm_nb = {
265 .notifier_call = ib_security_change,
266 };
267
268 static int rdma_dev_change_netns(struct ib_device *device, struct net *cur_net,
269 struct net *net);
270
271 /* Pointer to the RCU head at the start of the ib_port_data array */
272 struct ib_port_data_rcu {
273 struct rcu_head rcu_head;
274 struct ib_port_data pdata[];
275 };
276
ib_device_check_mandatory(struct ib_device * device)277 static void ib_device_check_mandatory(struct ib_device *device)
278 {
279 #define IB_MANDATORY_FUNC(x) { offsetof(struct ib_device_ops, x), #x }
280 static const struct {
281 size_t offset;
282 char *name;
283 } mandatory_table[] = {
284 IB_MANDATORY_FUNC(query_device),
285 IB_MANDATORY_FUNC(query_port),
286 IB_MANDATORY_FUNC(alloc_pd),
287 IB_MANDATORY_FUNC(dealloc_pd),
288 IB_MANDATORY_FUNC(create_qp),
289 IB_MANDATORY_FUNC(modify_qp),
290 IB_MANDATORY_FUNC(destroy_qp),
291 IB_MANDATORY_FUNC(post_send),
292 IB_MANDATORY_FUNC(post_recv),
293 IB_MANDATORY_FUNC(create_cq),
294 IB_MANDATORY_FUNC(destroy_cq),
295 IB_MANDATORY_FUNC(poll_cq),
296 IB_MANDATORY_FUNC(req_notify_cq),
297 IB_MANDATORY_FUNC(get_dma_mr),
298 IB_MANDATORY_FUNC(reg_user_mr),
299 IB_MANDATORY_FUNC(dereg_mr),
300 IB_MANDATORY_FUNC(get_port_immutable)
301 };
302 int i;
303
304 device->kverbs_provider = true;
305 for (i = 0; i < ARRAY_SIZE(mandatory_table); ++i) {
306 if (!*(void **) ((void *) &device->ops +
307 mandatory_table[i].offset)) {
308 device->kverbs_provider = false;
309 break;
310 }
311 }
312 }
313
314 /*
315 * Caller must perform ib_device_put() to return the device reference count
316 * when ib_device_get_by_index() returns valid device pointer.
317 */
ib_device_get_by_index(const struct net * net,u32 index)318 struct ib_device *ib_device_get_by_index(const struct net *net, u32 index)
319 {
320 struct ib_device *device;
321
322 down_read(&devices_rwsem);
323 device = xa_load(&devices, index);
324 if (device) {
325 if (!rdma_dev_access_netns(device, net)) {
326 device = NULL;
327 goto out;
328 }
329
330 if (!ib_device_try_get(device))
331 device = NULL;
332 }
333 out:
334 up_read(&devices_rwsem);
335 return device;
336 }
337
338 /**
339 * ib_device_put - Release IB device reference
340 * @device: device whose reference to be released
341 *
342 * ib_device_put() releases reference to the IB device to allow it to be
343 * unregistered and eventually free.
344 */
ib_device_put(struct ib_device * device)345 void ib_device_put(struct ib_device *device)
346 {
347 if (refcount_dec_and_test(&device->refcount))
348 complete(&device->unreg_completion);
349 }
350 EXPORT_SYMBOL(ib_device_put);
351
__ib_device_get_by_name(const char * name)352 static struct ib_device *__ib_device_get_by_name(const char *name)
353 {
354 struct ib_device *device;
355 unsigned long index;
356
357 xa_for_each (&devices, index, device)
358 if (!strcmp(name, dev_name(&device->dev)))
359 return device;
360
361 return NULL;
362 }
363
rename_compat_devs(struct ib_device * device)364 static int rename_compat_devs(struct ib_device *device)
365 {
366 struct ib_core_device *cdev;
367 unsigned long index;
368 int ret = 0;
369
370 mutex_lock(&device->compat_devs_mutex);
371 xa_for_each (&device->compat_devs, index, cdev) {
372 ret = device_rename(&cdev->dev, dev_name(&device->dev));
373 if (ret) {
374 dev_warn(&cdev->dev,
375 "Fail to rename compatdev to new name %s\n",
376 dev_name(&device->dev));
377 break;
378 }
379 }
380 mutex_unlock(&device->compat_devs_mutex);
381 return ret;
382 }
383
ib_device_rename(struct ib_device * ibdev,const char * name)384 int ib_device_rename(struct ib_device *ibdev, const char *name)
385 {
386 unsigned long index;
387 void *client_data;
388 int ret;
389
390 down_write(&devices_rwsem);
391 if (!strcmp(name, dev_name(&ibdev->dev))) {
392 up_write(&devices_rwsem);
393 return 0;
394 }
395
396 if (__ib_device_get_by_name(name)) {
397 up_write(&devices_rwsem);
398 return -EEXIST;
399 }
400
401 ret = device_rename(&ibdev->dev, name);
402 if (ret) {
403 up_write(&devices_rwsem);
404 return ret;
405 }
406
407 strscpy(ibdev->name, name, IB_DEVICE_NAME_MAX);
408 ret = rename_compat_devs(ibdev);
409
410 downgrade_write(&devices_rwsem);
411 down_read(&ibdev->client_data_rwsem);
412 xan_for_each_marked(&ibdev->client_data, index, client_data,
413 CLIENT_DATA_REGISTERED) {
414 struct ib_client *client = xa_load(&clients, index);
415
416 if (!client || !client->rename)
417 continue;
418
419 client->rename(ibdev, client_data);
420 }
421 up_read(&ibdev->client_data_rwsem);
422 rdma_nl_notify_event(ibdev, 0, RDMA_RENAME_EVENT);
423 up_read(&devices_rwsem);
424 return 0;
425 }
426
ib_device_set_dim(struct ib_device * ibdev,u8 use_dim)427 int ib_device_set_dim(struct ib_device *ibdev, u8 use_dim)
428 {
429 if (use_dim > 1)
430 return -EINVAL;
431 ibdev->use_cq_dim = use_dim;
432
433 return 0;
434 }
435
alloc_name(struct ib_device * ibdev,const char * name)436 static int alloc_name(struct ib_device *ibdev, const char *name)
437 {
438 struct ib_device *device;
439 unsigned long index;
440 struct ida inuse;
441 int rc;
442 int i;
443
444 lockdep_assert_held_write(&devices_rwsem);
445 ida_init(&inuse);
446 xa_for_each (&devices, index, device) {
447 char buf[IB_DEVICE_NAME_MAX];
448
449 if (sscanf(dev_name(&device->dev), name, &i) != 1)
450 continue;
451 if (i < 0 || i >= INT_MAX)
452 continue;
453 snprintf(buf, sizeof buf, name, i);
454 if (strcmp(buf, dev_name(&device->dev)) != 0)
455 continue;
456
457 rc = ida_alloc_range(&inuse, i, i, GFP_KERNEL);
458 if (rc < 0)
459 goto out;
460 }
461
462 rc = ida_alloc(&inuse, GFP_KERNEL);
463 if (rc < 0)
464 goto out;
465
466 rc = dev_set_name(&ibdev->dev, name, rc);
467 out:
468 ida_destroy(&inuse);
469 return rc;
470 }
471
ib_device_release(struct device * device)472 static void ib_device_release(struct device *device)
473 {
474 struct ib_device *dev = container_of(device, struct ib_device, dev);
475
476 free_netdevs(dev);
477 WARN_ON(refcount_read(&dev->refcount));
478 if (dev->hw_stats_data)
479 ib_device_release_hw_stats(dev->hw_stats_data);
480 if (dev->port_data) {
481 ib_cache_release_one(dev);
482 ib_security_release_port_pkey_list(dev);
483 rdma_counter_release(dev);
484 kfree_rcu(container_of(dev->port_data, struct ib_port_data_rcu,
485 pdata[0]),
486 rcu_head);
487 }
488
489 mutex_destroy(&dev->subdev_lock);
490 mutex_destroy(&dev->unregistration_lock);
491 mutex_destroy(&dev->compat_devs_mutex);
492
493 xa_destroy(&dev->compat_devs);
494 xa_destroy(&dev->client_data);
495 kfree_rcu(dev, rcu_head);
496 }
497
ib_device_uevent(const struct device * device,struct kobj_uevent_env * env)498 static int ib_device_uevent(const struct device *device,
499 struct kobj_uevent_env *env)
500 {
501 if (add_uevent_var(env, "NAME=%s", dev_name(device)))
502 return -ENOMEM;
503
504 /*
505 * It would be nice to pass the node GUID with the event...
506 */
507
508 return 0;
509 }
510
net_namespace(const struct device * d)511 static const void *net_namespace(const struct device *d)
512 {
513 const struct ib_core_device *coredev =
514 container_of(d, struct ib_core_device, dev);
515
516 return read_pnet(&coredev->rdma_net);
517 }
518
519 static struct class ib_class = {
520 .name = "infiniband",
521 .dev_release = ib_device_release,
522 .dev_uevent = ib_device_uevent,
523 .ns_type = &net_ns_type_operations,
524 .namespace = net_namespace,
525 };
526
rdma_init_coredev(struct ib_core_device * coredev,struct ib_device * dev,struct net * net)527 static void rdma_init_coredev(struct ib_core_device *coredev,
528 struct ib_device *dev, struct net *net)
529 {
530 bool is_full_dev = &dev->coredev == coredev;
531
532 /* This BUILD_BUG_ON is intended to catch layout change
533 * of union of ib_core_device and device.
534 * dev must be the first element as ib_core and providers
535 * driver uses it. Adding anything in ib_core_device before
536 * device will break this assumption.
537 */
538 BUILD_BUG_ON(offsetof(struct ib_device, coredev.dev) !=
539 offsetof(struct ib_device, dev));
540
541 coredev->dev.class = &ib_class;
542 coredev->dev.groups = dev->groups;
543
544 /*
545 * Don't expose hw counters outside of the init namespace.
546 */
547 if (!is_full_dev && dev->hw_stats_attr_index)
548 coredev->dev.groups[dev->hw_stats_attr_index] = NULL;
549
550 device_initialize(&coredev->dev);
551 coredev->owner = dev;
552 INIT_LIST_HEAD(&coredev->port_list);
553 write_pnet(&coredev->rdma_net, net);
554 }
555
556 /**
557 * _ib_alloc_device - allocate an IB device struct
558 * @size:size of structure to allocate
559 * @net: network namespace device should be located in, namespace
560 * must stay valid until ib_register_device() is completed.
561 *
562 * Low-level drivers should use ib_alloc_device() to allocate &struct
563 * ib_device. @size is the size of the structure to be allocated,
564 * including any private data used by the low-level driver.
565 * ib_dealloc_device() must be used to free structures allocated with
566 * ib_alloc_device().
567 */
_ib_alloc_device(size_t size,struct net * net)568 struct ib_device *_ib_alloc_device(size_t size, struct net *net)
569 {
570 struct ib_device *device;
571 unsigned int i;
572
573 if (WARN_ON(size < sizeof(struct ib_device)))
574 return NULL;
575
576 device = kzalloc(size, GFP_KERNEL);
577 if (!device)
578 return NULL;
579
580 if (rdma_restrack_init(device)) {
581 kfree(device);
582 return NULL;
583 }
584
585 /* ib_devices_shared_netns can't change while we have active namespaces
586 * in the system which means either init_net is passed or the user has
587 * no idea what they are doing.
588 *
589 * To avoid breaking backward compatibility, when in shared mode,
590 * force to init the device in the init_net.
591 */
592 net = ib_devices_shared_netns ? &init_net : net;
593 rdma_init_coredev(&device->coredev, device, net);
594
595 INIT_LIST_HEAD(&device->event_handler_list);
596 spin_lock_init(&device->qp_open_list_lock);
597 init_rwsem(&device->event_handler_rwsem);
598 mutex_init(&device->unregistration_lock);
599 /*
600 * client_data needs to be alloc because we don't want our mark to be
601 * destroyed if the user stores NULL in the client data.
602 */
603 xa_init_flags(&device->client_data, XA_FLAGS_ALLOC);
604 init_rwsem(&device->client_data_rwsem);
605 xa_init_flags(&device->compat_devs, XA_FLAGS_ALLOC);
606 mutex_init(&device->compat_devs_mutex);
607 init_completion(&device->unreg_completion);
608 INIT_WORK(&device->unregistration_work, ib_unregister_work);
609
610 spin_lock_init(&device->cq_pools_lock);
611 for (i = 0; i < ARRAY_SIZE(device->cq_pools); i++)
612 INIT_LIST_HEAD(&device->cq_pools[i]);
613
614 rwlock_init(&device->cache_lock);
615
616 device->uverbs_cmd_mask =
617 BIT_ULL(IB_USER_VERBS_CMD_ALLOC_MW) |
618 BIT_ULL(IB_USER_VERBS_CMD_ALLOC_PD) |
619 BIT_ULL(IB_USER_VERBS_CMD_ATTACH_MCAST) |
620 BIT_ULL(IB_USER_VERBS_CMD_CLOSE_XRCD) |
621 BIT_ULL(IB_USER_VERBS_CMD_CREATE_AH) |
622 BIT_ULL(IB_USER_VERBS_CMD_CREATE_COMP_CHANNEL) |
623 BIT_ULL(IB_USER_VERBS_CMD_CREATE_CQ) |
624 BIT_ULL(IB_USER_VERBS_CMD_CREATE_QP) |
625 BIT_ULL(IB_USER_VERBS_CMD_CREATE_SRQ) |
626 BIT_ULL(IB_USER_VERBS_CMD_CREATE_XSRQ) |
627 BIT_ULL(IB_USER_VERBS_CMD_DEALLOC_MW) |
628 BIT_ULL(IB_USER_VERBS_CMD_DEALLOC_PD) |
629 BIT_ULL(IB_USER_VERBS_CMD_DEREG_MR) |
630 BIT_ULL(IB_USER_VERBS_CMD_DESTROY_AH) |
631 BIT_ULL(IB_USER_VERBS_CMD_DESTROY_CQ) |
632 BIT_ULL(IB_USER_VERBS_CMD_DESTROY_QP) |
633 BIT_ULL(IB_USER_VERBS_CMD_DESTROY_SRQ) |
634 BIT_ULL(IB_USER_VERBS_CMD_DETACH_MCAST) |
635 BIT_ULL(IB_USER_VERBS_CMD_GET_CONTEXT) |
636 BIT_ULL(IB_USER_VERBS_CMD_MODIFY_QP) |
637 BIT_ULL(IB_USER_VERBS_CMD_MODIFY_SRQ) |
638 BIT_ULL(IB_USER_VERBS_CMD_OPEN_QP) |
639 BIT_ULL(IB_USER_VERBS_CMD_OPEN_XRCD) |
640 BIT_ULL(IB_USER_VERBS_CMD_QUERY_DEVICE) |
641 BIT_ULL(IB_USER_VERBS_CMD_QUERY_PORT) |
642 BIT_ULL(IB_USER_VERBS_CMD_QUERY_QP) |
643 BIT_ULL(IB_USER_VERBS_CMD_QUERY_SRQ) |
644 BIT_ULL(IB_USER_VERBS_CMD_REG_MR) |
645 BIT_ULL(IB_USER_VERBS_CMD_REREG_MR) |
646 BIT_ULL(IB_USER_VERBS_CMD_RESIZE_CQ);
647
648 mutex_init(&device->subdev_lock);
649 INIT_LIST_HEAD(&device->subdev_list_head);
650 INIT_LIST_HEAD(&device->subdev_list);
651
652 return device;
653 }
654 EXPORT_SYMBOL(_ib_alloc_device);
655
656 /**
657 * ib_dealloc_device - free an IB device struct
658 * @device:structure to free
659 *
660 * Free a structure allocated with ib_alloc_device().
661 */
ib_dealloc_device(struct ib_device * device)662 void ib_dealloc_device(struct ib_device *device)
663 {
664 if (device->ops.dealloc_driver)
665 device->ops.dealloc_driver(device);
666
667 /*
668 * ib_unregister_driver() requires all devices to remain in the xarray
669 * while their ops are callable. The last op we call is dealloc_driver
670 * above. This is needed to create a fence on op callbacks prior to
671 * allowing the driver module to unload.
672 */
673 down_write(&devices_rwsem);
674 if (xa_load(&devices, device->index) == device)
675 xa_erase(&devices, device->index);
676 up_write(&devices_rwsem);
677
678 /* Expedite releasing netdev references */
679 free_netdevs(device);
680
681 WARN_ON(!xa_empty(&device->compat_devs));
682 WARN_ON(!xa_empty(&device->client_data));
683 WARN_ON(refcount_read(&device->refcount));
684 rdma_restrack_clean(device);
685 /* Balances with device_initialize */
686 put_device(&device->dev);
687 }
688 EXPORT_SYMBOL(ib_dealloc_device);
689
690 /*
691 * add_client_context() and remove_client_context() must be safe against
692 * parallel calls on the same device - registration/unregistration of both the
693 * device and client can be occurring in parallel.
694 *
695 * The routines need to be a fence, any caller must not return until the add
696 * or remove is fully completed.
697 */
add_client_context(struct ib_device * device,struct ib_client * client)698 static int add_client_context(struct ib_device *device,
699 struct ib_client *client)
700 {
701 int ret = 0;
702
703 if (!device->kverbs_provider && !client->no_kverbs_req)
704 return 0;
705
706 down_write(&device->client_data_rwsem);
707 /*
708 * So long as the client is registered hold both the client and device
709 * unregistration locks.
710 */
711 if (!refcount_inc_not_zero(&client->uses))
712 goto out_unlock;
713 refcount_inc(&device->refcount);
714
715 /*
716 * Another caller to add_client_context got here first and has already
717 * completely initialized context.
718 */
719 if (xa_get_mark(&device->client_data, client->client_id,
720 CLIENT_DATA_REGISTERED))
721 goto out;
722
723 ret = xa_err(xa_store(&device->client_data, client->client_id, NULL,
724 GFP_KERNEL));
725 if (ret)
726 goto out;
727 downgrade_write(&device->client_data_rwsem);
728 if (client->add) {
729 if (client->add(device)) {
730 /*
731 * If a client fails to add then the error code is
732 * ignored, but we won't call any more ops on this
733 * client.
734 */
735 xa_erase(&device->client_data, client->client_id);
736 up_read(&device->client_data_rwsem);
737 ib_device_put(device);
738 ib_client_put(client);
739 return 0;
740 }
741 }
742
743 /* Readers shall not see a client until add has been completed */
744 xa_set_mark(&device->client_data, client->client_id,
745 CLIENT_DATA_REGISTERED);
746 up_read(&device->client_data_rwsem);
747 return 0;
748
749 out:
750 ib_device_put(device);
751 ib_client_put(client);
752 out_unlock:
753 up_write(&device->client_data_rwsem);
754 return ret;
755 }
756
remove_client_context(struct ib_device * device,unsigned int client_id)757 static void remove_client_context(struct ib_device *device,
758 unsigned int client_id)
759 {
760 struct ib_client *client;
761 void *client_data;
762
763 down_write(&device->client_data_rwsem);
764 if (!xa_get_mark(&device->client_data, client_id,
765 CLIENT_DATA_REGISTERED)) {
766 up_write(&device->client_data_rwsem);
767 return;
768 }
769 client_data = xa_load(&device->client_data, client_id);
770 xa_clear_mark(&device->client_data, client_id, CLIENT_DATA_REGISTERED);
771 client = xa_load(&clients, client_id);
772 up_write(&device->client_data_rwsem);
773
774 /*
775 * Notice we cannot be holding any exclusive locks when calling the
776 * remove callback as the remove callback can recurse back into any
777 * public functions in this module and thus try for any locks those
778 * functions take.
779 *
780 * For this reason clients and drivers should not call the
781 * unregistration functions will holdling any locks.
782 */
783 if (client->remove)
784 client->remove(device, client_data);
785
786 xa_erase(&device->client_data, client_id);
787 ib_device_put(device);
788 ib_client_put(client);
789 }
790
alloc_port_data(struct ib_device * device)791 static int alloc_port_data(struct ib_device *device)
792 {
793 struct ib_port_data_rcu *pdata_rcu;
794 u32 port;
795
796 if (device->port_data)
797 return 0;
798
799 /* This can only be called once the physical port range is defined */
800 if (WARN_ON(!device->phys_port_cnt))
801 return -EINVAL;
802
803 /* Reserve U32_MAX so the logic to go over all the ports is sane */
804 if (WARN_ON(device->phys_port_cnt == U32_MAX))
805 return -EINVAL;
806
807 /*
808 * device->port_data is indexed directly by the port number to make
809 * access to this data as efficient as possible.
810 *
811 * Therefore port_data is declared as a 1 based array with potential
812 * empty slots at the beginning.
813 */
814 pdata_rcu = kzalloc_flex(*pdata_rcu, pdata,
815 size_add(rdma_end_port(device), 1));
816 if (!pdata_rcu)
817 return -ENOMEM;
818 /*
819 * The rcu_head is put in front of the port data array and the stored
820 * pointer is adjusted since we never need to see that member until
821 * kfree_rcu.
822 */
823 device->port_data = pdata_rcu->pdata;
824
825 rdma_for_each_port (device, port) {
826 struct ib_port_data *pdata = &device->port_data[port];
827
828 pdata->ib_dev = device;
829 spin_lock_init(&pdata->pkey_list_lock);
830 INIT_LIST_HEAD(&pdata->pkey_list);
831 spin_lock_init(&pdata->netdev_lock);
832 INIT_HLIST_NODE(&pdata->ndev_hash_link);
833 }
834 return 0;
835 }
836
verify_immutable(const struct ib_device * dev,u32 port)837 static int verify_immutable(const struct ib_device *dev, u32 port)
838 {
839 return WARN_ON(!rdma_cap_ib_mad(dev, port) &&
840 rdma_max_mad_size(dev, port) != 0);
841 }
842
setup_port_data(struct ib_device * device)843 static int setup_port_data(struct ib_device *device)
844 {
845 u32 port;
846 int ret;
847
848 ret = alloc_port_data(device);
849 if (ret)
850 return ret;
851
852 rdma_for_each_port (device, port) {
853 struct ib_port_data *pdata = &device->port_data[port];
854
855 ret = device->ops.get_port_immutable(device, port,
856 &pdata->immutable);
857 if (ret)
858 return ret;
859
860 if (verify_immutable(device, port))
861 return -EINVAL;
862 }
863 return 0;
864 }
865
866 /**
867 * ib_port_immutable_read() - Read rdma port's immutable data
868 * @dev: IB device
869 * @port: port number whose immutable data to read. It starts with index 1 and
870 * valid upto including rdma_end_port().
871 */
872 const struct ib_port_immutable*
ib_port_immutable_read(struct ib_device * dev,unsigned int port)873 ib_port_immutable_read(struct ib_device *dev, unsigned int port)
874 {
875 WARN_ON(!rdma_is_port_valid(dev, port));
876 return &dev->port_data[port].immutable;
877 }
878 EXPORT_SYMBOL(ib_port_immutable_read);
879
ib_get_device_fw_str(struct ib_device * dev,char * str)880 void ib_get_device_fw_str(struct ib_device *dev, char *str)
881 {
882 if (dev->ops.get_dev_fw_str)
883 dev->ops.get_dev_fw_str(dev, str);
884 else
885 str[0] = '\0';
886 }
887 EXPORT_SYMBOL(ib_get_device_fw_str);
888
ib_policy_change_task(struct work_struct * work)889 static void ib_policy_change_task(struct work_struct *work)
890 {
891 struct ib_device *dev;
892 unsigned long index;
893
894 down_read(&devices_rwsem);
895 xa_for_each_marked (&devices, index, dev, DEVICE_REGISTERED) {
896 unsigned int i;
897
898 rdma_for_each_port (dev, i) {
899 u64 sp;
900 ib_get_cached_subnet_prefix(dev, i, &sp);
901 ib_security_cache_change(dev, i, sp);
902 }
903 }
904 up_read(&devices_rwsem);
905 }
906
ib_security_change(struct notifier_block * nb,unsigned long event,void * lsm_data)907 static int ib_security_change(struct notifier_block *nb, unsigned long event,
908 void *lsm_data)
909 {
910 if (event != LSM_POLICY_CHANGE)
911 return NOTIFY_DONE;
912
913 schedule_work(&ib_policy_change_work);
914 ib_mad_agent_security_change();
915
916 return NOTIFY_OK;
917 }
918
compatdev_release(struct device * dev)919 static void compatdev_release(struct device *dev)
920 {
921 struct ib_core_device *cdev =
922 container_of(dev, struct ib_core_device, dev);
923
924 kfree(cdev);
925 }
926
add_one_compat_dev(struct ib_device * device,struct rdma_dev_net * rnet)927 static int add_one_compat_dev(struct ib_device *device,
928 struct rdma_dev_net *rnet)
929 {
930 struct ib_core_device *cdev;
931 int ret;
932
933 lockdep_assert_held(&rdma_nets_rwsem);
934 if (!ib_devices_shared_netns)
935 return 0;
936
937 /*
938 * Create and add compat device in all namespaces other than where it
939 * is currently bound to.
940 */
941 if (net_eq(read_pnet(&rnet->net),
942 read_pnet(&device->coredev.rdma_net)))
943 return 0;
944
945 /*
946 * The first of init_net() or ib_register_device() to take the
947 * compat_devs_mutex wins and gets to add the device. Others will wait
948 * for completion here.
949 */
950 mutex_lock(&device->compat_devs_mutex);
951 cdev = xa_load(&device->compat_devs, rnet->id);
952 if (cdev) {
953 ret = 0;
954 goto done;
955 }
956 ret = xa_reserve(&device->compat_devs, rnet->id, GFP_KERNEL);
957 if (ret)
958 goto done;
959
960 cdev = kzalloc_obj(*cdev);
961 if (!cdev) {
962 ret = -ENOMEM;
963 goto cdev_err;
964 }
965
966 cdev->dev.parent = device->dev.parent;
967 rdma_init_coredev(cdev, device, read_pnet(&rnet->net));
968 cdev->dev.release = compatdev_release;
969 ret = dev_set_name(&cdev->dev, "%s", dev_name(&device->dev));
970 if (ret)
971 goto add_err;
972
973 ret = device_add(&cdev->dev);
974 if (ret)
975 goto add_err;
976 ret = ib_setup_port_attrs(cdev);
977 if (ret)
978 goto port_err;
979
980 ret = xa_err(xa_store(&device->compat_devs, rnet->id,
981 cdev, GFP_KERNEL));
982 if (ret)
983 goto insert_err;
984
985 mutex_unlock(&device->compat_devs_mutex);
986 return 0;
987
988 insert_err:
989 ib_free_port_attrs(cdev);
990 port_err:
991 device_del(&cdev->dev);
992 add_err:
993 put_device(&cdev->dev);
994 cdev_err:
995 xa_release(&device->compat_devs, rnet->id);
996 done:
997 mutex_unlock(&device->compat_devs_mutex);
998 return ret;
999 }
1000
remove_one_compat_dev(struct ib_device * device,u32 id)1001 static void remove_one_compat_dev(struct ib_device *device, u32 id)
1002 {
1003 struct ib_core_device *cdev;
1004
1005 mutex_lock(&device->compat_devs_mutex);
1006 cdev = xa_erase(&device->compat_devs, id);
1007 mutex_unlock(&device->compat_devs_mutex);
1008 if (cdev) {
1009 ib_free_port_attrs(cdev);
1010 device_del(&cdev->dev);
1011 put_device(&cdev->dev);
1012 }
1013 }
1014
remove_compat_devs(struct ib_device * device)1015 static void remove_compat_devs(struct ib_device *device)
1016 {
1017 struct ib_core_device *cdev;
1018 unsigned long index;
1019
1020 xa_for_each (&device->compat_devs, index, cdev)
1021 remove_one_compat_dev(device, index);
1022 }
1023
add_compat_devs(struct ib_device * device)1024 static int add_compat_devs(struct ib_device *device)
1025 {
1026 struct rdma_dev_net *rnet;
1027 unsigned long index;
1028 int ret = 0;
1029
1030 lockdep_assert_held(&devices_rwsem);
1031
1032 down_read(&rdma_nets_rwsem);
1033 xa_for_each (&rdma_nets, index, rnet) {
1034 ret = add_one_compat_dev(device, rnet);
1035 if (ret)
1036 break;
1037 }
1038 up_read(&rdma_nets_rwsem);
1039 return ret;
1040 }
1041
remove_all_compat_devs(void)1042 static void remove_all_compat_devs(void)
1043 {
1044 struct ib_compat_device *cdev;
1045 struct ib_device *dev;
1046 unsigned long index;
1047
1048 down_read(&devices_rwsem);
1049 xa_for_each (&devices, index, dev) {
1050 unsigned long c_index = 0;
1051
1052 /* Hold nets_rwsem so that any other thread modifying this
1053 * system param can sync with this thread.
1054 */
1055 down_read(&rdma_nets_rwsem);
1056 xa_for_each (&dev->compat_devs, c_index, cdev)
1057 remove_one_compat_dev(dev, c_index);
1058 up_read(&rdma_nets_rwsem);
1059 }
1060 up_read(&devices_rwsem);
1061 }
1062
add_all_compat_devs(void)1063 static int add_all_compat_devs(void)
1064 {
1065 struct rdma_dev_net *rnet;
1066 struct ib_device *dev;
1067 unsigned long index;
1068 int ret = 0;
1069
1070 down_read(&devices_rwsem);
1071 xa_for_each_marked (&devices, index, dev, DEVICE_REGISTERED) {
1072 unsigned long net_index = 0;
1073
1074 /* Hold nets_rwsem so that any other thread modifying this
1075 * system param can sync with this thread.
1076 */
1077 down_read(&rdma_nets_rwsem);
1078 xa_for_each (&rdma_nets, net_index, rnet) {
1079 ret = add_one_compat_dev(dev, rnet);
1080 if (ret)
1081 break;
1082 }
1083 up_read(&rdma_nets_rwsem);
1084 }
1085 up_read(&devices_rwsem);
1086 if (ret)
1087 remove_all_compat_devs();
1088 return ret;
1089 }
1090
rdma_compatdev_set(u8 enable)1091 int rdma_compatdev_set(u8 enable)
1092 {
1093 struct rdma_dev_net *rnet;
1094 unsigned long index;
1095 int ret = 0;
1096
1097 down_write(&rdma_nets_rwsem);
1098 if (ib_devices_shared_netns == enable) {
1099 up_write(&rdma_nets_rwsem);
1100 return 0;
1101 }
1102
1103 /* enable/disable of compat devices is not supported
1104 * when more than default init_net exists.
1105 */
1106 xa_for_each (&rdma_nets, index, rnet) {
1107 ret++;
1108 break;
1109 }
1110 if (!ret)
1111 ib_devices_shared_netns = enable;
1112 up_write(&rdma_nets_rwsem);
1113 if (ret)
1114 return -EBUSY;
1115
1116 if (enable)
1117 ret = add_all_compat_devs();
1118 else
1119 remove_all_compat_devs();
1120 return ret;
1121 }
1122
rdma_dev_exit_net(struct net * net)1123 static void rdma_dev_exit_net(struct net *net)
1124 {
1125 struct rdma_dev_net *rnet = rdma_net_to_dev_net(net);
1126 struct ib_device *dev;
1127 unsigned long index;
1128 int ret;
1129
1130 down_write(&rdma_nets_rwsem);
1131 /*
1132 * Prevent the ID from being re-used and hide the id from xa_for_each.
1133 */
1134 ret = xa_err(xa_store(&rdma_nets, rnet->id, NULL, GFP_KERNEL));
1135 WARN_ON(ret);
1136 up_write(&rdma_nets_rwsem);
1137
1138 down_read(&devices_rwsem);
1139 xa_for_each (&devices, index, dev) {
1140 get_device(&dev->dev);
1141 /*
1142 * Release the devices_rwsem so that pontentially blocking
1143 * device_del, doesn't hold the devices_rwsem for too long.
1144 */
1145 up_read(&devices_rwsem);
1146
1147 remove_one_compat_dev(dev, rnet->id);
1148
1149 /*
1150 * If the real device is in the NS then move it back to init.
1151 */
1152 rdma_dev_change_netns(dev, net, &init_net);
1153
1154 put_device(&dev->dev);
1155 down_read(&devices_rwsem);
1156 }
1157 up_read(&devices_rwsem);
1158
1159 rdma_nl_net_exit(rnet);
1160 xa_erase(&rdma_nets, rnet->id);
1161 }
1162
rdma_dev_init_net(struct net * net)1163 static __net_init int rdma_dev_init_net(struct net *net)
1164 {
1165 struct rdma_dev_net *rnet = rdma_net_to_dev_net(net);
1166 unsigned long index;
1167 struct ib_device *dev;
1168 int ret;
1169
1170 write_pnet(&rnet->net, net);
1171
1172 ret = rdma_nl_net_init(rnet);
1173 if (ret)
1174 return ret;
1175
1176 /* No need to create any compat devices in default init_net. */
1177 if (net_eq(net, &init_net))
1178 return 0;
1179
1180 ret = xa_alloc(&rdma_nets, &rnet->id, rnet, xa_limit_32b, GFP_KERNEL);
1181 if (ret) {
1182 rdma_nl_net_exit(rnet);
1183 return ret;
1184 }
1185
1186 down_read(&devices_rwsem);
1187 xa_for_each_marked (&devices, index, dev, DEVICE_REGISTERED) {
1188 /* Hold nets_rwsem so that netlink command cannot change
1189 * system configuration for device sharing mode.
1190 */
1191 down_read(&rdma_nets_rwsem);
1192 ret = add_one_compat_dev(dev, rnet);
1193 up_read(&rdma_nets_rwsem);
1194 if (ret)
1195 break;
1196 }
1197 up_read(&devices_rwsem);
1198
1199 if (ret)
1200 rdma_dev_exit_net(net);
1201
1202 return ret;
1203 }
1204
1205 /*
1206 * Assign the unique string device name and the unique device index. This is
1207 * undone by ib_dealloc_device.
1208 */
assign_name(struct ib_device * device,const char * name)1209 static int assign_name(struct ib_device *device, const char *name)
1210 {
1211 static u32 last_id;
1212 int ret;
1213
1214 down_write(&devices_rwsem);
1215 /* Assign a unique name to the device */
1216 if (strchr(name, '%'))
1217 ret = alloc_name(device, name);
1218 else
1219 ret = dev_set_name(&device->dev, name);
1220 if (ret)
1221 goto out;
1222
1223 if (__ib_device_get_by_name(dev_name(&device->dev))) {
1224 ret = -ENFILE;
1225 goto out;
1226 }
1227 strscpy(device->name, dev_name(&device->dev), IB_DEVICE_NAME_MAX);
1228
1229 ret = xa_alloc_cyclic(&devices, &device->index, device, xa_limit_31b,
1230 &last_id, GFP_KERNEL);
1231 if (ret > 0)
1232 ret = 0;
1233
1234 out:
1235 up_write(&devices_rwsem);
1236 return ret;
1237 }
1238
1239 /*
1240 * setup_device() allocates memory and sets up data that requires calling the
1241 * device ops, this is the only reason these actions are not done during
1242 * ib_alloc_device. It is undone by ib_dealloc_device().
1243 */
setup_device(struct ib_device * device)1244 static int setup_device(struct ib_device *device)
1245 {
1246 struct ib_udata uhw = {.outlen = 0, .inlen = 0};
1247 int ret;
1248
1249 ib_device_check_mandatory(device);
1250
1251 ret = setup_port_data(device);
1252 if (ret) {
1253 dev_warn(&device->dev, "Couldn't create per-port data\n");
1254 return ret;
1255 }
1256
1257 memset(&device->attrs, 0, sizeof(device->attrs));
1258 ret = device->ops.query_device(device, &device->attrs, &uhw);
1259 if (ret) {
1260 dev_warn(&device->dev,
1261 "Couldn't query the device attributes\n");
1262 return ret;
1263 }
1264
1265 return 0;
1266 }
1267
disable_device(struct ib_device * device)1268 static void disable_device(struct ib_device *device)
1269 {
1270 u32 cid;
1271
1272 WARN_ON(!refcount_read(&device->refcount));
1273
1274 down_write(&devices_rwsem);
1275 xa_clear_mark(&devices, device->index, DEVICE_REGISTERED);
1276 up_write(&devices_rwsem);
1277
1278 /*
1279 * Remove clients in LIFO order, see assign_client_id. This could be
1280 * more efficient if xarray learns to reverse iterate. Since no new
1281 * clients can be added to this ib_device past this point we only need
1282 * the maximum possible client_id value here.
1283 */
1284 down_read(&clients_rwsem);
1285 cid = highest_client_id;
1286 up_read(&clients_rwsem);
1287 while (cid) {
1288 cid--;
1289 remove_client_context(device, cid);
1290 }
1291
1292 ib_cq_pool_cleanup(device);
1293
1294 /* Pairs with refcount_set in enable_device */
1295 ib_device_put(device);
1296 wait_for_completion(&device->unreg_completion);
1297
1298 /*
1299 * compat devices must be removed after device refcount drops to zero.
1300 * Otherwise init_net() may add more compatdevs after removing compat
1301 * devices and before device is disabled.
1302 */
1303 remove_compat_devs(device);
1304 }
1305
1306 /*
1307 * An enabled device is visible to all clients and to all the public facing
1308 * APIs that return a device pointer. This always returns with a new get, even
1309 * if it fails.
1310 */
enable_device_and_get(struct ib_device * device)1311 static int enable_device_and_get(struct ib_device *device)
1312 {
1313 struct ib_client *client;
1314 unsigned long index;
1315 int ret = 0;
1316
1317 /*
1318 * One ref belongs to the xa and the other belongs to this
1319 * thread. This is needed to guard against parallel unregistration.
1320 */
1321 refcount_set(&device->refcount, 2);
1322 down_write(&devices_rwsem);
1323 xa_set_mark(&devices, device->index, DEVICE_REGISTERED);
1324
1325 /*
1326 * By using downgrade_write() we ensure that no other thread can clear
1327 * DEVICE_REGISTERED while we are completing the client setup.
1328 */
1329 downgrade_write(&devices_rwsem);
1330
1331 if (device->ops.enable_driver) {
1332 ret = device->ops.enable_driver(device);
1333 if (ret)
1334 goto out;
1335 }
1336
1337 down_read(&clients_rwsem);
1338 xa_for_each_marked (&clients, index, client, CLIENT_REGISTERED) {
1339 ret = add_client_context(device, client);
1340 if (ret)
1341 break;
1342 }
1343 up_read(&clients_rwsem);
1344 if (!ret)
1345 ret = add_compat_devs(device);
1346 out:
1347 up_read(&devices_rwsem);
1348 return ret;
1349 }
1350
prevent_dealloc_device(struct ib_device * ib_dev)1351 static void prevent_dealloc_device(struct ib_device *ib_dev)
1352 {
1353 }
1354
ib_device_notify_register(struct ib_device * device)1355 static void ib_device_notify_register(struct ib_device *device)
1356 {
1357 struct net_device *netdev;
1358 u32 port;
1359 int ret;
1360
1361 down_read(&devices_rwsem);
1362
1363 /* Mark for userspace that device is ready */
1364 kobject_uevent(&device->dev.kobj, KOBJ_ADD);
1365
1366 ret = rdma_nl_notify_event(device, 0, RDMA_REGISTER_EVENT);
1367 if (ret)
1368 goto out;
1369
1370 rdma_for_each_port(device, port) {
1371 netdev = ib_device_get_netdev(device, port);
1372 if (!netdev)
1373 continue;
1374
1375 ret = rdma_nl_notify_event(device, port,
1376 RDMA_NETDEV_ATTACH_EVENT);
1377 dev_put(netdev);
1378 if (ret)
1379 goto out;
1380 }
1381
1382 out:
1383 up_read(&devices_rwsem);
1384 }
1385
1386 /**
1387 * ib_register_device - Register an IB device with IB core
1388 * @device: Device to register
1389 * @name: unique string device name. This may include a '%' which will
1390 * cause a unique index to be added to the passed device name.
1391 * @dma_device: pointer to a DMA-capable device. If %NULL, then the IB
1392 * device will be used. In this case the caller should fully
1393 * setup the ibdev for DMA. This usually means using dma_virt_ops.
1394 *
1395 * Low-level drivers use ib_register_device() to register their
1396 * devices with the IB core. All registered clients will receive a
1397 * callback for each device that is added. @device must be allocated
1398 * with ib_alloc_device().
1399 *
1400 * If the driver uses ops.dealloc_driver and calls any ib_unregister_device()
1401 * asynchronously then the device pointer may become freed as soon as this
1402 * function returns.
1403 */
ib_register_device(struct ib_device * device,const char * name,struct device * dma_device)1404 int ib_register_device(struct ib_device *device, const char *name,
1405 struct device *dma_device)
1406 {
1407 int ret;
1408
1409 ret = assign_name(device, name);
1410 if (ret)
1411 return ret;
1412
1413 /*
1414 * If the caller does not provide a DMA capable device then the IB core
1415 * will set up ib_sge and scatterlist structures that stash the kernel
1416 * virtual address into the address field.
1417 */
1418 WARN_ON(dma_device && !dma_device->dma_parms);
1419 device->dma_device = dma_device;
1420
1421 ret = setup_device(device);
1422 if (ret)
1423 return ret;
1424
1425 ret = ib_cache_setup_one(device);
1426 if (ret) {
1427 dev_warn(&device->dev,
1428 "Couldn't set up InfiniBand P_Key/GID cache\n");
1429 return ret;
1430 }
1431
1432 device->groups[0] = &ib_dev_attr_group;
1433 device->groups[1] = device->ops.device_group;
1434 ret = ib_setup_device_attrs(device);
1435 if (ret)
1436 goto cache_cleanup;
1437
1438 ib_device_register_rdmacg(device);
1439
1440 rdma_counter_init(device);
1441
1442 /*
1443 * Ensure that ADD uevent is not fired because it
1444 * is too early amd device is not initialized yet.
1445 */
1446 dev_set_uevent_suppress(&device->dev, true);
1447 ret = device_add(&device->dev);
1448 if (ret)
1449 goto cg_cleanup;
1450
1451 ret = ib_setup_port_attrs(&device->coredev);
1452 if (ret) {
1453 dev_warn(&device->dev,
1454 "Couldn't register device with driver model\n");
1455 goto dev_cleanup;
1456 }
1457
1458 ret = enable_device_and_get(device);
1459 if (ret) {
1460 void (*dealloc_fn)(struct ib_device *);
1461
1462 /*
1463 * If we hit this error flow then we don't want to
1464 * automatically dealloc the device since the caller is
1465 * expected to call ib_dealloc_device() after
1466 * ib_register_device() fails. This is tricky due to the
1467 * possibility for a parallel unregistration along with this
1468 * error flow. Since we have a refcount here we know any
1469 * parallel flow is stopped in disable_device and will see the
1470 * special dealloc_driver pointer, causing the responsibility to
1471 * ib_dealloc_device() to revert back to this thread.
1472 */
1473 dealloc_fn = device->ops.dealloc_driver;
1474 device->ops.dealloc_driver = prevent_dealloc_device;
1475 ib_device_put(device);
1476 __ib_unregister_device(device);
1477 device->ops.dealloc_driver = dealloc_fn;
1478 dev_set_uevent_suppress(&device->dev, false);
1479 return ret;
1480 }
1481 dev_set_uevent_suppress(&device->dev, false);
1482
1483 ib_device_notify_register(device);
1484
1485 ib_device_put(device);
1486
1487 return 0;
1488
1489 dev_cleanup:
1490 device_del(&device->dev);
1491 cg_cleanup:
1492 dev_set_uevent_suppress(&device->dev, false);
1493 ib_device_unregister_rdmacg(device);
1494 cache_cleanup:
1495 ib_cache_cleanup_one(device);
1496 return ret;
1497 }
1498 EXPORT_SYMBOL(ib_register_device);
1499
1500 /* Callers must hold a get on the device. */
__ib_unregister_device(struct ib_device * ib_dev)1501 static void __ib_unregister_device(struct ib_device *ib_dev)
1502 {
1503 struct ib_device *sub, *tmp;
1504
1505 mutex_lock(&ib_dev->subdev_lock);
1506 list_for_each_entry_safe_reverse(sub, tmp,
1507 &ib_dev->subdev_list_head,
1508 subdev_list) {
1509 list_del(&sub->subdev_list);
1510 ib_dev->ops.del_sub_dev(sub);
1511 ib_device_put(ib_dev);
1512 }
1513 mutex_unlock(&ib_dev->subdev_lock);
1514
1515 /*
1516 * We have a registration lock so that all the calls to unregister are
1517 * fully fenced, once any unregister returns the device is truly
1518 * unregistered even if multiple callers are unregistering it at the
1519 * same time. This also interacts with the registration flow and
1520 * provides sane semantics if register and unregister are racing.
1521 */
1522 mutex_lock(&ib_dev->unregistration_lock);
1523 if (!refcount_read(&ib_dev->refcount))
1524 goto out;
1525
1526 disable_device(ib_dev);
1527 rdma_nl_notify_event(ib_dev, 0, RDMA_UNREGISTER_EVENT);
1528
1529 /* Expedite removing unregistered pointers from the hash table */
1530 free_netdevs(ib_dev);
1531
1532 ib_free_port_attrs(&ib_dev->coredev);
1533 device_del(&ib_dev->dev);
1534 ib_device_unregister_rdmacg(ib_dev);
1535 ib_cache_cleanup_one(ib_dev);
1536
1537 /*
1538 * Drivers using the new flow may not call ib_dealloc_device except
1539 * in error unwind prior to registration success.
1540 */
1541 if (ib_dev->ops.dealloc_driver &&
1542 ib_dev->ops.dealloc_driver != prevent_dealloc_device) {
1543 WARN_ON(kref_read(&ib_dev->dev.kobj.kref) <= 1);
1544 ib_dealloc_device(ib_dev);
1545 }
1546 out:
1547 mutex_unlock(&ib_dev->unregistration_lock);
1548 }
1549
1550 /**
1551 * ib_unregister_device - Unregister an IB device
1552 * @ib_dev: The device to unregister
1553 *
1554 * Unregister an IB device. All clients will receive a remove callback.
1555 *
1556 * Callers should call this routine only once, and protect against races with
1557 * registration. Typically it should only be called as part of a remove
1558 * callback in an implementation of driver core's struct device_driver and
1559 * related.
1560 *
1561 * If ops.dealloc_driver is used then ib_dev will be freed upon return from
1562 * this function.
1563 */
ib_unregister_device(struct ib_device * ib_dev)1564 void ib_unregister_device(struct ib_device *ib_dev)
1565 {
1566 get_device(&ib_dev->dev);
1567 __ib_unregister_device(ib_dev);
1568 put_device(&ib_dev->dev);
1569 }
1570 EXPORT_SYMBOL(ib_unregister_device);
1571
1572 /**
1573 * ib_unregister_device_and_put - Unregister a device while holding a 'get'
1574 * @ib_dev: The device to unregister
1575 *
1576 * This is the same as ib_unregister_device(), except it includes an internal
1577 * ib_device_put() that should match a 'get' obtained by the caller.
1578 *
1579 * It is safe to call this routine concurrently from multiple threads while
1580 * holding the 'get'. When the function returns the device is fully
1581 * unregistered.
1582 *
1583 * Drivers using this flow MUST use the driver_unregister callback to clean up
1584 * their resources associated with the device and dealloc it.
1585 */
ib_unregister_device_and_put(struct ib_device * ib_dev)1586 void ib_unregister_device_and_put(struct ib_device *ib_dev)
1587 {
1588 WARN_ON(!ib_dev->ops.dealloc_driver);
1589 get_device(&ib_dev->dev);
1590 ib_device_put(ib_dev);
1591 __ib_unregister_device(ib_dev);
1592 put_device(&ib_dev->dev);
1593 }
1594 EXPORT_SYMBOL(ib_unregister_device_and_put);
1595
1596 /**
1597 * ib_unregister_driver - Unregister all IB devices for a driver
1598 * @driver_id: The driver to unregister
1599 *
1600 * This implements a fence for device unregistration. It only returns once all
1601 * devices associated with the driver_id have fully completed their
1602 * unregistration and returned from ib_unregister_device*().
1603 *
1604 * If device's are not yet unregistered it goes ahead and starts unregistering
1605 * them.
1606 *
1607 * This does not block creation of new devices with the given driver_id, that
1608 * is the responsibility of the caller.
1609 */
ib_unregister_driver(enum rdma_driver_id driver_id)1610 void ib_unregister_driver(enum rdma_driver_id driver_id)
1611 {
1612 struct ib_device *ib_dev;
1613 unsigned long index;
1614
1615 down_read(&devices_rwsem);
1616 xa_for_each (&devices, index, ib_dev) {
1617 if (ib_dev->ops.driver_id != driver_id)
1618 continue;
1619
1620 get_device(&ib_dev->dev);
1621 up_read(&devices_rwsem);
1622
1623 WARN_ON(!ib_dev->ops.dealloc_driver);
1624 __ib_unregister_device(ib_dev);
1625
1626 put_device(&ib_dev->dev);
1627 down_read(&devices_rwsem);
1628 }
1629 up_read(&devices_rwsem);
1630 }
1631 EXPORT_SYMBOL(ib_unregister_driver);
1632
ib_unregister_work(struct work_struct * work)1633 static void ib_unregister_work(struct work_struct *work)
1634 {
1635 struct ib_device *ib_dev =
1636 container_of(work, struct ib_device, unregistration_work);
1637
1638 __ib_unregister_device(ib_dev);
1639 put_device(&ib_dev->dev);
1640 }
1641
1642 /**
1643 * ib_unregister_device_queued - Unregister a device using a work queue
1644 * @ib_dev: The device to unregister
1645 *
1646 * This schedules an asynchronous unregistration using a WQ for the device. A
1647 * driver should use this to avoid holding locks while doing unregistration,
1648 * such as holding the RTNL lock.
1649 *
1650 * Drivers using this API must use ib_unregister_driver before module unload
1651 * to ensure that all scheduled unregistrations have completed.
1652 */
ib_unregister_device_queued(struct ib_device * ib_dev)1653 void ib_unregister_device_queued(struct ib_device *ib_dev)
1654 {
1655 WARN_ON(!refcount_read(&ib_dev->refcount));
1656 WARN_ON(!ib_dev->ops.dealloc_driver);
1657 get_device(&ib_dev->dev);
1658 if (!queue_work(ib_unreg_wq, &ib_dev->unregistration_work))
1659 put_device(&ib_dev->dev);
1660 }
1661 EXPORT_SYMBOL(ib_unregister_device_queued);
1662
1663 /*
1664 * The caller must pass in a device that has the kref held and the refcount
1665 * released. If the device is in cur_net and still registered then it is moved
1666 * into net.
1667 */
rdma_dev_change_netns(struct ib_device * device,struct net * cur_net,struct net * net)1668 static int rdma_dev_change_netns(struct ib_device *device, struct net *cur_net,
1669 struct net *net)
1670 {
1671 int ret2 = -EINVAL;
1672 int ret;
1673
1674 mutex_lock(&device->unregistration_lock);
1675
1676 /*
1677 * If a device not under ib_device_get() or if the unregistration_lock
1678 * is not held, the namespace can be changed, or it can be unregistered.
1679 * Check again under the lock.
1680 */
1681 if (refcount_read(&device->refcount) == 0 ||
1682 !net_eq(cur_net, read_pnet(&device->coredev.rdma_net))) {
1683 ret = -ENODEV;
1684 goto out;
1685 }
1686
1687 kobject_uevent(&device->dev.kobj, KOBJ_REMOVE);
1688 disable_device(device);
1689
1690 /*
1691 * At this point no one can be using the device, so it is safe to
1692 * change the namespace.
1693 */
1694 write_pnet(&device->coredev.rdma_net, net);
1695
1696 down_read(&devices_rwsem);
1697 /*
1698 * Currently rdma devices are system wide unique. So the device name
1699 * is guaranteed free in the new namespace. Publish the new namespace
1700 * at the sysfs level.
1701 */
1702 ret = device_rename(&device->dev, dev_name(&device->dev));
1703 up_read(&devices_rwsem);
1704 if (ret) {
1705 dev_warn(&device->dev,
1706 "%s: Couldn't rename device after namespace change\n",
1707 __func__);
1708 /* Try and put things back and re-enable the device */
1709 write_pnet(&device->coredev.rdma_net, cur_net);
1710 }
1711
1712 ret2 = enable_device_and_get(device);
1713 if (ret2) {
1714 /*
1715 * This shouldn't really happen, but if it does, let the user
1716 * retry at later point. So don't disable the device.
1717 */
1718 dev_warn(&device->dev,
1719 "%s: Couldn't re-enable device after namespace change\n",
1720 __func__);
1721 }
1722 kobject_uevent(&device->dev.kobj, KOBJ_ADD);
1723
1724 ib_device_put(device);
1725 out:
1726 mutex_unlock(&device->unregistration_lock);
1727 if (ret)
1728 return ret;
1729 return ret2;
1730 }
1731
ib_device_set_netns_put(struct sk_buff * skb,struct ib_device * dev,u32 ns_fd)1732 int ib_device_set_netns_put(struct sk_buff *skb,
1733 struct ib_device *dev, u32 ns_fd)
1734 {
1735 struct net *net;
1736 int ret;
1737
1738 net = get_net_ns_by_fd(ns_fd);
1739 if (IS_ERR(net)) {
1740 ret = PTR_ERR(net);
1741 goto net_err;
1742 }
1743
1744 if (!netlink_ns_capable(skb, net->user_ns, CAP_NET_ADMIN)) {
1745 ret = -EPERM;
1746 goto ns_err;
1747 }
1748
1749 /*
1750 * All the ib_clients, including uverbs, are reset when the namespace is
1751 * changed and this cannot be blocked waiting for userspace to do
1752 * something, so disassociation is mandatory.
1753 */
1754 if (!dev->ops.disassociate_ucontext || ib_devices_shared_netns) {
1755 ret = -EOPNOTSUPP;
1756 goto ns_err;
1757 }
1758
1759 get_device(&dev->dev);
1760 ib_device_put(dev);
1761 ret = rdma_dev_change_netns(dev, current->nsproxy->net_ns, net);
1762 put_device(&dev->dev);
1763
1764 put_net(net);
1765 return ret;
1766
1767 ns_err:
1768 put_net(net);
1769 net_err:
1770 ib_device_put(dev);
1771 return ret;
1772 }
1773
1774 static struct pernet_operations rdma_dev_net_ops = {
1775 .init = rdma_dev_init_net,
1776 .exit = rdma_dev_exit_net,
1777 .id = &rdma_dev_net_id,
1778 .size = sizeof(struct rdma_dev_net),
1779 };
1780
assign_client_id(struct ib_client * client)1781 static int assign_client_id(struct ib_client *client)
1782 {
1783 int ret;
1784
1785 lockdep_assert_held(&clients_rwsem);
1786 /*
1787 * The add/remove callbacks must be called in FIFO/LIFO order. To
1788 * achieve this we assign client_ids so they are sorted in
1789 * registration order.
1790 */
1791 client->client_id = highest_client_id;
1792 ret = xa_insert(&clients, client->client_id, client, GFP_KERNEL);
1793 if (ret)
1794 return ret;
1795
1796 highest_client_id++;
1797 xa_set_mark(&clients, client->client_id, CLIENT_REGISTERED);
1798 return 0;
1799 }
1800
remove_client_id(struct ib_client * client)1801 static void remove_client_id(struct ib_client *client)
1802 {
1803 down_write(&clients_rwsem);
1804 xa_erase(&clients, client->client_id);
1805 for (; highest_client_id; highest_client_id--)
1806 if (xa_load(&clients, highest_client_id - 1))
1807 break;
1808 up_write(&clients_rwsem);
1809 }
1810
1811 /**
1812 * ib_register_client - Register an IB client
1813 * @client:Client to register
1814 *
1815 * Upper level users of the IB drivers can use ib_register_client() to
1816 * register callbacks for IB device addition and removal. When an IB
1817 * device is added, each registered client's add method will be called
1818 * (in the order the clients were registered), and when a device is
1819 * removed, each client's remove method will be called (in the reverse
1820 * order that clients were registered). In addition, when
1821 * ib_register_client() is called, the client will receive an add
1822 * callback for all devices already registered.
1823 */
ib_register_client(struct ib_client * client)1824 int ib_register_client(struct ib_client *client)
1825 {
1826 struct ib_device *device;
1827 unsigned long index;
1828 bool need_unreg = false;
1829 int ret;
1830
1831 refcount_set(&client->uses, 1);
1832 init_completion(&client->uses_zero);
1833
1834 /*
1835 * The devices_rwsem is held in write mode to ensure that a racing
1836 * ib_register_device() sees a consisent view of clients and devices.
1837 */
1838 down_write(&devices_rwsem);
1839 down_write(&clients_rwsem);
1840 ret = assign_client_id(client);
1841 if (ret)
1842 goto out;
1843
1844 need_unreg = true;
1845 xa_for_each_marked (&devices, index, device, DEVICE_REGISTERED) {
1846 ret = add_client_context(device, client);
1847 if (ret)
1848 goto out;
1849 }
1850 ret = 0;
1851 out:
1852 up_write(&clients_rwsem);
1853 up_write(&devices_rwsem);
1854 if (need_unreg && ret)
1855 ib_unregister_client(client);
1856 return ret;
1857 }
1858 EXPORT_SYMBOL(ib_register_client);
1859
1860 /**
1861 * ib_unregister_client - Unregister an IB client
1862 * @client:Client to unregister
1863 *
1864 * Upper level users use ib_unregister_client() to remove their client
1865 * registration. When ib_unregister_client() is called, the client
1866 * will receive a remove callback for each IB device still registered.
1867 *
1868 * This is a full fence, once it returns no client callbacks will be called,
1869 * or are running in another thread.
1870 */
ib_unregister_client(struct ib_client * client)1871 void ib_unregister_client(struct ib_client *client)
1872 {
1873 struct ib_device *device;
1874 unsigned long index;
1875
1876 down_write(&clients_rwsem);
1877 ib_client_put(client);
1878 xa_clear_mark(&clients, client->client_id, CLIENT_REGISTERED);
1879 up_write(&clients_rwsem);
1880
1881 /* We do not want to have locks while calling client->remove() */
1882 rcu_read_lock();
1883 xa_for_each (&devices, index, device) {
1884 if (!ib_device_try_get(device))
1885 continue;
1886 rcu_read_unlock();
1887
1888 remove_client_context(device, client->client_id);
1889
1890 ib_device_put(device);
1891 rcu_read_lock();
1892 }
1893 rcu_read_unlock();
1894
1895 /*
1896 * remove_client_context() is not a fence, it can return even though a
1897 * removal is ongoing. Wait until all removals are completed.
1898 */
1899 wait_for_completion(&client->uses_zero);
1900 remove_client_id(client);
1901 }
1902 EXPORT_SYMBOL(ib_unregister_client);
1903
__ib_get_global_client_nl_info(const char * client_name,struct ib_client_nl_info * res)1904 static int __ib_get_global_client_nl_info(const char *client_name,
1905 struct ib_client_nl_info *res)
1906 {
1907 struct ib_client *client;
1908 unsigned long index;
1909 int ret = -ENOENT;
1910
1911 down_read(&clients_rwsem);
1912 xa_for_each_marked (&clients, index, client, CLIENT_REGISTERED) {
1913 if (strcmp(client->name, client_name) != 0)
1914 continue;
1915 if (!client->get_global_nl_info) {
1916 ret = -EOPNOTSUPP;
1917 break;
1918 }
1919 ret = client->get_global_nl_info(res);
1920 if (WARN_ON(ret == -ENOENT))
1921 ret = -EINVAL;
1922 if (!ret && res->cdev)
1923 get_device(res->cdev);
1924 break;
1925 }
1926 up_read(&clients_rwsem);
1927 return ret;
1928 }
1929
__ib_get_client_nl_info(struct ib_device * ibdev,const char * client_name,struct ib_client_nl_info * res)1930 static int __ib_get_client_nl_info(struct ib_device *ibdev,
1931 const char *client_name,
1932 struct ib_client_nl_info *res)
1933 {
1934 unsigned long index;
1935 void *client_data;
1936 int ret = -ENOENT;
1937
1938 down_read(&ibdev->client_data_rwsem);
1939 xan_for_each_marked (&ibdev->client_data, index, client_data,
1940 CLIENT_DATA_REGISTERED) {
1941 struct ib_client *client = xa_load(&clients, index);
1942
1943 if (!client || strcmp(client->name, client_name) != 0)
1944 continue;
1945 if (!client->get_nl_info) {
1946 ret = -EOPNOTSUPP;
1947 break;
1948 }
1949 ret = client->get_nl_info(ibdev, client_data, res);
1950 if (WARN_ON(ret == -ENOENT))
1951 ret = -EINVAL;
1952
1953 /*
1954 * The cdev is guaranteed valid as long as we are inside the
1955 * client_data_rwsem as remove_one can't be called. Keep it
1956 * valid for the caller.
1957 */
1958 if (!ret && res->cdev)
1959 get_device(res->cdev);
1960 break;
1961 }
1962 up_read(&ibdev->client_data_rwsem);
1963
1964 return ret;
1965 }
1966
1967 /**
1968 * ib_get_client_nl_info - Fetch the nl_info from a client
1969 * @ibdev: IB device
1970 * @client_name: Name of the client
1971 * @res: Result of the query
1972 */
ib_get_client_nl_info(struct ib_device * ibdev,const char * client_name,struct ib_client_nl_info * res)1973 int ib_get_client_nl_info(struct ib_device *ibdev, const char *client_name,
1974 struct ib_client_nl_info *res)
1975 {
1976 int ret;
1977
1978 if (ibdev)
1979 ret = __ib_get_client_nl_info(ibdev, client_name, res);
1980 else
1981 ret = __ib_get_global_client_nl_info(client_name, res);
1982 #ifdef CONFIG_MODULES
1983 if (ret == -ENOENT) {
1984 request_module("rdma-client-%s", client_name);
1985 if (ibdev)
1986 ret = __ib_get_client_nl_info(ibdev, client_name, res);
1987 else
1988 ret = __ib_get_global_client_nl_info(client_name, res);
1989 }
1990 #endif
1991 if (ret) {
1992 if (ret == -ENOENT)
1993 return -EOPNOTSUPP;
1994 return ret;
1995 }
1996
1997 if (WARN_ON(!res->cdev))
1998 return -EINVAL;
1999 return 0;
2000 }
2001
2002 /**
2003 * ib_set_client_data - Set IB client context
2004 * @device:Device to set context for
2005 * @client:Client to set context for
2006 * @data:Context to set
2007 *
2008 * ib_set_client_data() sets client context data that can be retrieved with
2009 * ib_get_client_data(). This can only be called while the client is
2010 * registered to the device, once the ib_client remove() callback returns this
2011 * cannot be called.
2012 */
ib_set_client_data(struct ib_device * device,struct ib_client * client,void * data)2013 void ib_set_client_data(struct ib_device *device, struct ib_client *client,
2014 void *data)
2015 {
2016 void *rc;
2017
2018 if (WARN_ON(IS_ERR(data)))
2019 data = NULL;
2020
2021 rc = xa_store(&device->client_data, client->client_id, data,
2022 GFP_KERNEL);
2023 WARN_ON(xa_is_err(rc));
2024 }
2025 EXPORT_SYMBOL(ib_set_client_data);
2026
2027 /**
2028 * ib_register_event_handler - Register an IB event handler
2029 * @event_handler:Handler to register
2030 *
2031 * ib_register_event_handler() registers an event handler that will be
2032 * called back when asynchronous IB events occur (as defined in
2033 * chapter 11 of the InfiniBand Architecture Specification). This
2034 * callback occurs in workqueue context.
2035 */
ib_register_event_handler(struct ib_event_handler * event_handler)2036 void ib_register_event_handler(struct ib_event_handler *event_handler)
2037 {
2038 down_write(&event_handler->device->event_handler_rwsem);
2039 list_add_tail(&event_handler->list,
2040 &event_handler->device->event_handler_list);
2041 up_write(&event_handler->device->event_handler_rwsem);
2042 }
2043 EXPORT_SYMBOL(ib_register_event_handler);
2044
2045 /**
2046 * ib_unregister_event_handler - Unregister an event handler
2047 * @event_handler:Handler to unregister
2048 *
2049 * Unregister an event handler registered with
2050 * ib_register_event_handler().
2051 */
ib_unregister_event_handler(struct ib_event_handler * event_handler)2052 void ib_unregister_event_handler(struct ib_event_handler *event_handler)
2053 {
2054 down_write(&event_handler->device->event_handler_rwsem);
2055 list_del(&event_handler->list);
2056 up_write(&event_handler->device->event_handler_rwsem);
2057 }
2058 EXPORT_SYMBOL(ib_unregister_event_handler);
2059
ib_dispatch_event_clients(struct ib_event * event)2060 void ib_dispatch_event_clients(struct ib_event *event)
2061 {
2062 struct ib_event_handler *handler;
2063
2064 down_read(&event->device->event_handler_rwsem);
2065
2066 list_for_each_entry(handler, &event->device->event_handler_list, list)
2067 handler->handler(handler, event);
2068
2069 up_read(&event->device->event_handler_rwsem);
2070 }
2071
iw_query_port(struct ib_device * device,u32 port_num,struct ib_port_attr * port_attr)2072 static int iw_query_port(struct ib_device *device,
2073 u32 port_num,
2074 struct ib_port_attr *port_attr)
2075 {
2076 struct in_device *inetdev;
2077 struct net_device *netdev;
2078
2079 memset(port_attr, 0, sizeof(*port_attr));
2080
2081 netdev = ib_device_get_netdev(device, port_num);
2082 if (!netdev)
2083 return -ENODEV;
2084
2085 port_attr->max_mtu = IB_MTU_4096;
2086 port_attr->active_mtu = ib_mtu_int_to_enum(netdev->mtu);
2087
2088 if (!netif_carrier_ok(netdev)) {
2089 port_attr->state = IB_PORT_DOWN;
2090 port_attr->phys_state = IB_PORT_PHYS_STATE_DISABLED;
2091 } else {
2092 rcu_read_lock();
2093 inetdev = __in_dev_get_rcu(netdev);
2094
2095 if (inetdev && inetdev->ifa_list) {
2096 port_attr->state = IB_PORT_ACTIVE;
2097 port_attr->phys_state = IB_PORT_PHYS_STATE_LINK_UP;
2098 } else {
2099 port_attr->state = IB_PORT_INIT;
2100 port_attr->phys_state =
2101 IB_PORT_PHYS_STATE_PORT_CONFIGURATION_TRAINING;
2102 }
2103
2104 rcu_read_unlock();
2105 }
2106
2107 dev_put(netdev);
2108 return device->ops.query_port(device, port_num, port_attr);
2109 }
2110
__ib_query_port(struct ib_device * device,u32 port_num,struct ib_port_attr * port_attr)2111 static int __ib_query_port(struct ib_device *device,
2112 u32 port_num,
2113 struct ib_port_attr *port_attr)
2114 {
2115 int err;
2116
2117 memset(port_attr, 0, sizeof(*port_attr));
2118
2119 err = device->ops.query_port(device, port_num, port_attr);
2120 if (err || port_attr->subnet_prefix)
2121 return err;
2122
2123 if (rdma_port_get_link_layer(device, port_num) !=
2124 IB_LINK_LAYER_INFINIBAND)
2125 return 0;
2126
2127 ib_get_cached_subnet_prefix(device, port_num,
2128 &port_attr->subnet_prefix);
2129 return 0;
2130 }
2131
2132 /**
2133 * ib_query_port - Query IB port attributes
2134 * @device:Device to query
2135 * @port_num:Port number to query
2136 * @port_attr:Port attributes
2137 *
2138 * ib_query_port() returns the attributes of a port through the
2139 * @port_attr pointer.
2140 */
ib_query_port(struct ib_device * device,u32 port_num,struct ib_port_attr * port_attr)2141 int ib_query_port(struct ib_device *device,
2142 u32 port_num,
2143 struct ib_port_attr *port_attr)
2144 {
2145 if (!rdma_is_port_valid(device, port_num))
2146 return -EINVAL;
2147
2148 if (rdma_protocol_iwarp(device, port_num))
2149 return iw_query_port(device, port_num, port_attr);
2150 else
2151 return __ib_query_port(device, port_num, port_attr);
2152 }
2153 EXPORT_SYMBOL(ib_query_port);
2154
add_ndev_hash(struct ib_port_data * pdata)2155 static void add_ndev_hash(struct ib_port_data *pdata)
2156 {
2157 unsigned long flags;
2158
2159 might_sleep();
2160
2161 spin_lock_irqsave(&ndev_hash_lock, flags);
2162 if (hash_hashed(&pdata->ndev_hash_link)) {
2163 hash_del_rcu(&pdata->ndev_hash_link);
2164 spin_unlock_irqrestore(&ndev_hash_lock, flags);
2165 /*
2166 * We cannot do hash_add_rcu after a hash_del_rcu until the
2167 * grace period
2168 */
2169 synchronize_rcu();
2170 spin_lock_irqsave(&ndev_hash_lock, flags);
2171 }
2172 if (pdata->netdev)
2173 hash_add_rcu(ndev_hash, &pdata->ndev_hash_link,
2174 (uintptr_t)pdata->netdev);
2175 spin_unlock_irqrestore(&ndev_hash_lock, flags);
2176 }
2177
2178 /**
2179 * ib_device_set_netdev - Associate the ib_dev with an underlying net_device
2180 * @ib_dev: Device to modify
2181 * @ndev: net_device to affiliate, may be NULL
2182 * @port: IB port the net_device is connected to
2183 *
2184 * Drivers should use this to link the ib_device to a netdev so the netdev
2185 * shows up in interfaces like ib_enum_roce_netdev. Only one netdev may be
2186 * affiliated with any port.
2187 *
2188 * The caller must ensure that the given ndev is not unregistered or
2189 * unregistering, and that either the ib_device is unregistered or
2190 * ib_device_set_netdev() is called with NULL when the ndev sends a
2191 * NETDEV_UNREGISTER event.
2192 */
ib_device_set_netdev(struct ib_device * ib_dev,struct net_device * ndev,u32 port)2193 int ib_device_set_netdev(struct ib_device *ib_dev, struct net_device *ndev,
2194 u32 port)
2195 {
2196 enum rdma_nl_notify_event_type etype;
2197 struct net_device *old_ndev;
2198 struct ib_port_data *pdata;
2199 unsigned long flags;
2200 int ret;
2201
2202 if (!rdma_is_port_valid(ib_dev, port))
2203 return -EINVAL;
2204
2205 /*
2206 * Drivers wish to call this before ib_register_driver, so we have to
2207 * setup the port data early.
2208 */
2209 ret = alloc_port_data(ib_dev);
2210 if (ret)
2211 return ret;
2212
2213 pdata = &ib_dev->port_data[port];
2214 spin_lock_irqsave(&pdata->netdev_lock, flags);
2215 old_ndev = rcu_dereference_protected(
2216 pdata->netdev, lockdep_is_held(&pdata->netdev_lock));
2217 if (old_ndev == ndev) {
2218 spin_unlock_irqrestore(&pdata->netdev_lock, flags);
2219 return 0;
2220 }
2221
2222 rcu_assign_pointer(pdata->netdev, ndev);
2223 netdev_put(old_ndev, &pdata->netdev_tracker);
2224 netdev_hold(ndev, &pdata->netdev_tracker, GFP_ATOMIC);
2225 spin_unlock_irqrestore(&pdata->netdev_lock, flags);
2226
2227 add_ndev_hash(pdata);
2228
2229 /* Make sure that the device is registered before we send events */
2230 if (xa_load(&devices, ib_dev->index) != ib_dev)
2231 return 0;
2232
2233 etype = ndev ? RDMA_NETDEV_ATTACH_EVENT : RDMA_NETDEV_DETACH_EVENT;
2234 rdma_nl_notify_event(ib_dev, port, etype);
2235
2236 return 0;
2237 }
2238 EXPORT_SYMBOL(ib_device_set_netdev);
2239
free_netdevs(struct ib_device * ib_dev)2240 static void free_netdevs(struct ib_device *ib_dev)
2241 {
2242 unsigned long flags;
2243 u32 port;
2244
2245 if (!ib_dev->port_data)
2246 return;
2247
2248 rdma_for_each_port (ib_dev, port) {
2249 struct ib_port_data *pdata = &ib_dev->port_data[port];
2250 struct net_device *ndev;
2251
2252 spin_lock_irqsave(&pdata->netdev_lock, flags);
2253 ndev = rcu_dereference_protected(
2254 pdata->netdev, lockdep_is_held(&pdata->netdev_lock));
2255 if (ndev) {
2256 spin_lock(&ndev_hash_lock);
2257 hash_del_rcu(&pdata->ndev_hash_link);
2258 spin_unlock(&ndev_hash_lock);
2259
2260 /*
2261 * If this is the last dev_put there is still a
2262 * synchronize_rcu before the netdev is kfreed, so we
2263 * can continue to rely on unlocked pointer
2264 * comparisons after the put
2265 */
2266 rcu_assign_pointer(pdata->netdev, NULL);
2267 netdev_put(ndev, &pdata->netdev_tracker);
2268 }
2269 spin_unlock_irqrestore(&pdata->netdev_lock, flags);
2270 }
2271 }
2272
ib_device_get_netdev(struct ib_device * ib_dev,u32 port)2273 struct net_device *ib_device_get_netdev(struct ib_device *ib_dev,
2274 u32 port)
2275 {
2276 struct ib_port_data *pdata;
2277 struct net_device *res;
2278
2279 if (!rdma_is_port_valid(ib_dev, port))
2280 return NULL;
2281
2282 if (!ib_dev->port_data)
2283 return NULL;
2284
2285 pdata = &ib_dev->port_data[port];
2286
2287 /*
2288 * New drivers should use ib_device_set_netdev() not the legacy
2289 * get_netdev().
2290 */
2291 if (ib_dev->ops.get_netdev)
2292 res = ib_dev->ops.get_netdev(ib_dev, port);
2293 else {
2294 spin_lock(&pdata->netdev_lock);
2295 res = rcu_dereference_protected(
2296 pdata->netdev, lockdep_is_held(&pdata->netdev_lock));
2297 dev_hold(res);
2298 spin_unlock(&pdata->netdev_lock);
2299 }
2300
2301 return res;
2302 }
2303 EXPORT_SYMBOL(ib_device_get_netdev);
2304
2305 /**
2306 * ib_query_netdev_port - Query the port number of a net_device
2307 * associated with an ibdev
2308 * @ibdev: IB device
2309 * @ndev: Network device
2310 * @port: IB port the net_device is connected to
2311 */
ib_query_netdev_port(struct ib_device * ibdev,struct net_device * ndev,u32 * port)2312 int ib_query_netdev_port(struct ib_device *ibdev, struct net_device *ndev,
2313 u32 *port)
2314 {
2315 struct net_device *ib_ndev;
2316 u32 port_num;
2317
2318 rdma_for_each_port(ibdev, port_num) {
2319 ib_ndev = ib_device_get_netdev(ibdev, port_num);
2320 if (ndev == ib_ndev) {
2321 *port = port_num;
2322 dev_put(ib_ndev);
2323 return 0;
2324 }
2325 dev_put(ib_ndev);
2326 }
2327
2328 return -ENOENT;
2329 }
2330 EXPORT_SYMBOL(ib_query_netdev_port);
2331
2332 /**
2333 * ib_device_get_by_netdev - Find an IB device associated with a netdev
2334 * @ndev: netdev to locate
2335 * @driver_id: The driver ID that must match (RDMA_DRIVER_UNKNOWN matches all)
2336 *
2337 * Find and hold an ib_device that is associated with a netdev via
2338 * ib_device_set_netdev(). The caller must call ib_device_put() on the
2339 * returned pointer.
2340 */
ib_device_get_by_netdev(struct net_device * ndev,enum rdma_driver_id driver_id)2341 struct ib_device *ib_device_get_by_netdev(struct net_device *ndev,
2342 enum rdma_driver_id driver_id)
2343 {
2344 struct ib_device *res = NULL;
2345 struct ib_port_data *cur;
2346
2347 rcu_read_lock();
2348 hash_for_each_possible_rcu (ndev_hash, cur, ndev_hash_link,
2349 (uintptr_t)ndev) {
2350 if (rcu_access_pointer(cur->netdev) == ndev &&
2351 (driver_id == RDMA_DRIVER_UNKNOWN ||
2352 cur->ib_dev->ops.driver_id == driver_id) &&
2353 ib_device_try_get(cur->ib_dev)) {
2354 res = cur->ib_dev;
2355 break;
2356 }
2357 }
2358 rcu_read_unlock();
2359
2360 return res;
2361 }
2362 EXPORT_SYMBOL(ib_device_get_by_netdev);
2363
2364 /**
2365 * ib_enum_roce_netdev - enumerate all RoCE ports
2366 * @ib_dev : IB device we want to query
2367 * @filter: Should we call the callback?
2368 * @filter_cookie: Cookie passed to filter
2369 * @cb: Callback to call for each found RoCE ports
2370 * @cookie: Cookie passed back to the callback
2371 *
2372 * Enumerates all of the physical RoCE ports of ib_dev
2373 * which are related to netdevice and calls callback() on each
2374 * device for which filter() function returns non zero.
2375 */
ib_enum_roce_netdev(struct ib_device * ib_dev,roce_netdev_filter filter,void * filter_cookie,roce_netdev_callback cb,void * cookie)2376 void ib_enum_roce_netdev(struct ib_device *ib_dev,
2377 roce_netdev_filter filter,
2378 void *filter_cookie,
2379 roce_netdev_callback cb,
2380 void *cookie)
2381 {
2382 u32 port;
2383
2384 rdma_for_each_port (ib_dev, port)
2385 if (rdma_protocol_roce(ib_dev, port)) {
2386 struct net_device *idev =
2387 ib_device_get_netdev(ib_dev, port);
2388
2389 if (filter(ib_dev, port, idev, filter_cookie))
2390 cb(ib_dev, port, idev, cookie);
2391 dev_put(idev);
2392 }
2393 }
2394
2395 /**
2396 * ib_enum_all_roce_netdevs - enumerate all RoCE devices
2397 * @filter: Should we call the callback?
2398 * @filter_cookie: Cookie passed to filter
2399 * @cb: Callback to call for each found RoCE ports
2400 * @cookie: Cookie passed back to the callback
2401 *
2402 * Enumerates all RoCE devices' physical ports which are related
2403 * to netdevices and calls callback() on each device for which
2404 * filter() function returns non zero.
2405 */
ib_enum_all_roce_netdevs(roce_netdev_filter filter,void * filter_cookie,roce_netdev_callback cb,void * cookie)2406 void ib_enum_all_roce_netdevs(roce_netdev_filter filter,
2407 void *filter_cookie,
2408 roce_netdev_callback cb,
2409 void *cookie)
2410 {
2411 struct ib_device *dev;
2412 unsigned long index;
2413
2414 down_read(&devices_rwsem);
2415 xa_for_each_marked (&devices, index, dev, DEVICE_REGISTERED)
2416 ib_enum_roce_netdev(dev, filter, filter_cookie, cb, cookie);
2417 up_read(&devices_rwsem);
2418 }
2419
2420 /*
2421 * ib_enum_all_devs - enumerate all ib_devices
2422 * @cb: Callback to call for each found ib_device
2423 *
2424 * Enumerates all ib_devices and calls callback() on each device.
2425 */
ib_enum_all_devs(nldev_callback nldev_cb,struct sk_buff * skb,struct netlink_callback * cb)2426 int ib_enum_all_devs(nldev_callback nldev_cb, struct sk_buff *skb,
2427 struct netlink_callback *cb)
2428 {
2429 unsigned long index;
2430 struct ib_device *dev;
2431 unsigned int idx = 0;
2432 int ret = 0;
2433
2434 down_read(&devices_rwsem);
2435 xa_for_each_marked (&devices, index, dev, DEVICE_REGISTERED) {
2436 if (!rdma_dev_access_netns(dev, sock_net(skb->sk)))
2437 continue;
2438
2439 ret = nldev_cb(dev, skb, cb, idx);
2440 if (ret)
2441 break;
2442 idx++;
2443 }
2444 up_read(&devices_rwsem);
2445 return ret;
2446 }
2447
2448 /**
2449 * ib_query_pkey - Get P_Key table entry
2450 * @device:Device to query
2451 * @port_num:Port number to query
2452 * @index:P_Key table index to query
2453 * @pkey:Returned P_Key
2454 *
2455 * ib_query_pkey() fetches the specified P_Key table entry.
2456 */
ib_query_pkey(struct ib_device * device,u32 port_num,u16 index,u16 * pkey)2457 int ib_query_pkey(struct ib_device *device,
2458 u32 port_num, u16 index, u16 *pkey)
2459 {
2460 if (!rdma_is_port_valid(device, port_num))
2461 return -EINVAL;
2462
2463 if (!device->ops.query_pkey)
2464 return -EOPNOTSUPP;
2465
2466 return device->ops.query_pkey(device, port_num, index, pkey);
2467 }
2468 EXPORT_SYMBOL(ib_query_pkey);
2469
2470 /**
2471 * ib_modify_device - Change IB device attributes
2472 * @device:Device to modify
2473 * @device_modify_mask:Mask of attributes to change
2474 * @device_modify:New attribute values
2475 *
2476 * ib_modify_device() changes a device's attributes as specified by
2477 * the @device_modify_mask and @device_modify structure.
2478 */
ib_modify_device(struct ib_device * device,int device_modify_mask,struct ib_device_modify * device_modify)2479 int ib_modify_device(struct ib_device *device,
2480 int device_modify_mask,
2481 struct ib_device_modify *device_modify)
2482 {
2483 if (!device->ops.modify_device)
2484 return -EOPNOTSUPP;
2485
2486 return device->ops.modify_device(device, device_modify_mask,
2487 device_modify);
2488 }
2489 EXPORT_SYMBOL(ib_modify_device);
2490
2491 /**
2492 * ib_modify_port - Modifies the attributes for the specified port.
2493 * @device: The device to modify.
2494 * @port_num: The number of the port to modify.
2495 * @port_modify_mask: Mask used to specify which attributes of the port
2496 * to change.
2497 * @port_modify: New attribute values for the port.
2498 *
2499 * ib_modify_port() changes a port's attributes as specified by the
2500 * @port_modify_mask and @port_modify structure.
2501 */
ib_modify_port(struct ib_device * device,u32 port_num,int port_modify_mask,struct ib_port_modify * port_modify)2502 int ib_modify_port(struct ib_device *device,
2503 u32 port_num, int port_modify_mask,
2504 struct ib_port_modify *port_modify)
2505 {
2506 int rc;
2507
2508 if (!rdma_is_port_valid(device, port_num))
2509 return -EINVAL;
2510
2511 if (device->ops.modify_port)
2512 rc = device->ops.modify_port(device, port_num,
2513 port_modify_mask,
2514 port_modify);
2515 else if (rdma_protocol_roce(device, port_num) &&
2516 ((port_modify->set_port_cap_mask & ~IB_PORT_CM_SUP) == 0 ||
2517 (port_modify->clr_port_cap_mask & ~IB_PORT_CM_SUP) == 0))
2518 rc = 0;
2519 else
2520 rc = -EOPNOTSUPP;
2521 return rc;
2522 }
2523 EXPORT_SYMBOL(ib_modify_port);
2524
2525 /**
2526 * ib_find_gid - Returns the port number and GID table index where
2527 * a specified GID value occurs. Its searches only for IB link layer.
2528 * @device: The device to query.
2529 * @gid: The GID value to search for.
2530 * @port_num: The port number of the device where the GID value was found.
2531 * @index: The index into the GID table where the GID was found. This
2532 * parameter may be NULL.
2533 */
ib_find_gid(struct ib_device * device,union ib_gid * gid,u32 * port_num,u16 * index)2534 int ib_find_gid(struct ib_device *device, union ib_gid *gid,
2535 u32 *port_num, u16 *index)
2536 {
2537 union ib_gid tmp_gid;
2538 u32 port;
2539 int ret, i;
2540
2541 rdma_for_each_port (device, port) {
2542 if (!rdma_protocol_ib(device, port))
2543 continue;
2544
2545 for (i = 0; i < device->port_data[port].immutable.gid_tbl_len;
2546 ++i) {
2547 ret = rdma_query_gid(device, port, i, &tmp_gid);
2548 if (ret)
2549 continue;
2550
2551 if (!memcmp(&tmp_gid, gid, sizeof *gid)) {
2552 *port_num = port;
2553 if (index)
2554 *index = i;
2555 return 0;
2556 }
2557 }
2558 }
2559
2560 return -ENOENT;
2561 }
2562 EXPORT_SYMBOL(ib_find_gid);
2563
2564 /**
2565 * ib_find_pkey - Returns the PKey table index where a specified
2566 * PKey value occurs.
2567 * @device: The device to query.
2568 * @port_num: The port number of the device to search for the PKey.
2569 * @pkey: The PKey value to search for.
2570 * @index: The index into the PKey table where the PKey was found.
2571 */
ib_find_pkey(struct ib_device * device,u32 port_num,u16 pkey,u16 * index)2572 int ib_find_pkey(struct ib_device *device,
2573 u32 port_num, u16 pkey, u16 *index)
2574 {
2575 int ret, i;
2576 u16 tmp_pkey;
2577 int partial_ix = -1;
2578
2579 for (i = 0; i < device->port_data[port_num].immutable.pkey_tbl_len;
2580 ++i) {
2581 ret = ib_query_pkey(device, port_num, i, &tmp_pkey);
2582 if (ret)
2583 return ret;
2584 if ((pkey & 0x7fff) == (tmp_pkey & 0x7fff)) {
2585 /* if there is full-member pkey take it.*/
2586 if (tmp_pkey & 0x8000) {
2587 *index = i;
2588 return 0;
2589 }
2590 if (partial_ix < 0)
2591 partial_ix = i;
2592 }
2593 }
2594
2595 /*no full-member, if exists take the limited*/
2596 if (partial_ix >= 0) {
2597 *index = partial_ix;
2598 return 0;
2599 }
2600 return -ENOENT;
2601 }
2602 EXPORT_SYMBOL(ib_find_pkey);
2603
2604 /**
2605 * ib_get_net_dev_by_params() - Return the appropriate net_dev
2606 * for a received CM request
2607 * @dev: An RDMA device on which the request has been received.
2608 * @port: Port number on the RDMA device.
2609 * @pkey: The Pkey the request came on.
2610 * @gid: A GID that the net_dev uses to communicate.
2611 * @addr: Contains the IP address that the request specified as its
2612 * destination.
2613 *
2614 */
ib_get_net_dev_by_params(struct ib_device * dev,u32 port,u16 pkey,const union ib_gid * gid,const struct sockaddr * addr)2615 struct net_device *ib_get_net_dev_by_params(struct ib_device *dev,
2616 u32 port,
2617 u16 pkey,
2618 const union ib_gid *gid,
2619 const struct sockaddr *addr)
2620 {
2621 struct net_device *net_dev = NULL;
2622 unsigned long index;
2623 void *client_data;
2624
2625 if (!rdma_protocol_ib(dev, port))
2626 return NULL;
2627
2628 /*
2629 * Holding the read side guarantees that the client will not become
2630 * unregistered while we are calling get_net_dev_by_params()
2631 */
2632 down_read(&dev->client_data_rwsem);
2633 xan_for_each_marked (&dev->client_data, index, client_data,
2634 CLIENT_DATA_REGISTERED) {
2635 struct ib_client *client = xa_load(&clients, index);
2636
2637 if (!client || !client->get_net_dev_by_params)
2638 continue;
2639
2640 net_dev = client->get_net_dev_by_params(dev, port, pkey, gid,
2641 addr, client_data);
2642 if (net_dev)
2643 break;
2644 }
2645 up_read(&dev->client_data_rwsem);
2646
2647 return net_dev;
2648 }
2649 EXPORT_SYMBOL(ib_get_net_dev_by_params);
2650
ib_set_device_ops(struct ib_device * dev,const struct ib_device_ops * ops)2651 void ib_set_device_ops(struct ib_device *dev, const struct ib_device_ops *ops)
2652 {
2653 struct ib_device_ops *dev_ops = &dev->ops;
2654 #define SET_DEVICE_OP(ptr, name) \
2655 do { \
2656 if (ops->name) \
2657 if (!((ptr)->name)) \
2658 (ptr)->name = ops->name; \
2659 } while (0)
2660
2661 #define SET_OBJ_SIZE(ptr, name) SET_DEVICE_OP(ptr, size_##name)
2662
2663 if (ops->driver_id != RDMA_DRIVER_UNKNOWN) {
2664 WARN_ON(dev_ops->driver_id != RDMA_DRIVER_UNKNOWN &&
2665 dev_ops->driver_id != ops->driver_id);
2666 dev_ops->driver_id = ops->driver_id;
2667 }
2668 if (ops->owner) {
2669 WARN_ON(dev_ops->owner && dev_ops->owner != ops->owner);
2670 dev_ops->owner = ops->owner;
2671 }
2672 if (ops->uverbs_abi_ver)
2673 dev_ops->uverbs_abi_ver = ops->uverbs_abi_ver;
2674
2675 dev_ops->uverbs_no_driver_id_binding |=
2676 ops->uverbs_no_driver_id_binding;
2677
2678 SET_DEVICE_OP(dev_ops, add_gid);
2679 SET_DEVICE_OP(dev_ops, add_sub_dev);
2680 SET_DEVICE_OP(dev_ops, advise_mr);
2681 SET_DEVICE_OP(dev_ops, alloc_dm);
2682 SET_DEVICE_OP(dev_ops, alloc_dmah);
2683 SET_DEVICE_OP(dev_ops, alloc_hw_device_stats);
2684 SET_DEVICE_OP(dev_ops, alloc_hw_port_stats);
2685 SET_DEVICE_OP(dev_ops, alloc_mr);
2686 SET_DEVICE_OP(dev_ops, alloc_mr_integrity);
2687 SET_DEVICE_OP(dev_ops, alloc_mw);
2688 SET_DEVICE_OP(dev_ops, alloc_pd);
2689 SET_DEVICE_OP(dev_ops, alloc_rdma_netdev);
2690 SET_DEVICE_OP(dev_ops, alloc_ucontext);
2691 SET_DEVICE_OP(dev_ops, alloc_xrcd);
2692 SET_DEVICE_OP(dev_ops, attach_mcast);
2693 SET_DEVICE_OP(dev_ops, check_mr_status);
2694 SET_DEVICE_OP(dev_ops, counter_alloc_stats);
2695 SET_DEVICE_OP(dev_ops, counter_bind_qp);
2696 SET_DEVICE_OP(dev_ops, counter_dealloc);
2697 SET_DEVICE_OP(dev_ops, counter_init);
2698 SET_DEVICE_OP(dev_ops, counter_unbind_qp);
2699 SET_DEVICE_OP(dev_ops, counter_update_stats);
2700 SET_DEVICE_OP(dev_ops, create_ah);
2701 SET_DEVICE_OP(dev_ops, create_counters);
2702 SET_DEVICE_OP(dev_ops, create_cq);
2703 SET_DEVICE_OP(dev_ops, create_cq_umem);
2704 SET_DEVICE_OP(dev_ops, create_flow);
2705 SET_DEVICE_OP(dev_ops, create_qp);
2706 SET_DEVICE_OP(dev_ops, create_rwq_ind_table);
2707 SET_DEVICE_OP(dev_ops, create_srq);
2708 SET_DEVICE_OP(dev_ops, create_user_ah);
2709 SET_DEVICE_OP(dev_ops, create_wq);
2710 SET_DEVICE_OP(dev_ops, dealloc_dm);
2711 SET_DEVICE_OP(dev_ops, dealloc_dmah);
2712 SET_DEVICE_OP(dev_ops, dealloc_driver);
2713 SET_DEVICE_OP(dev_ops, dealloc_mw);
2714 SET_DEVICE_OP(dev_ops, dealloc_pd);
2715 SET_DEVICE_OP(dev_ops, dealloc_ucontext);
2716 SET_DEVICE_OP(dev_ops, dealloc_xrcd);
2717 SET_DEVICE_OP(dev_ops, del_gid);
2718 SET_DEVICE_OP(dev_ops, del_sub_dev);
2719 SET_DEVICE_OP(dev_ops, dereg_mr);
2720 SET_DEVICE_OP(dev_ops, destroy_ah);
2721 SET_DEVICE_OP(dev_ops, destroy_counters);
2722 SET_DEVICE_OP(dev_ops, destroy_cq);
2723 SET_DEVICE_OP(dev_ops, destroy_flow);
2724 SET_DEVICE_OP(dev_ops, destroy_flow_action);
2725 SET_DEVICE_OP(dev_ops, destroy_qp);
2726 SET_DEVICE_OP(dev_ops, destroy_rwq_ind_table);
2727 SET_DEVICE_OP(dev_ops, destroy_srq);
2728 SET_DEVICE_OP(dev_ops, destroy_wq);
2729 SET_DEVICE_OP(dev_ops, device_group);
2730 SET_DEVICE_OP(dev_ops, detach_mcast);
2731 SET_DEVICE_OP(dev_ops, disassociate_ucontext);
2732 SET_DEVICE_OP(dev_ops, drain_rq);
2733 SET_DEVICE_OP(dev_ops, drain_sq);
2734 SET_DEVICE_OP(dev_ops, enable_driver);
2735 SET_DEVICE_OP(dev_ops, fill_res_cm_id_entry);
2736 SET_DEVICE_OP(dev_ops, fill_res_cq_entry);
2737 SET_DEVICE_OP(dev_ops, fill_res_cq_entry_raw);
2738 SET_DEVICE_OP(dev_ops, fill_res_mr_entry);
2739 SET_DEVICE_OP(dev_ops, fill_res_mr_entry_raw);
2740 SET_DEVICE_OP(dev_ops, fill_res_qp_entry);
2741 SET_DEVICE_OP(dev_ops, fill_res_qp_entry_raw);
2742 SET_DEVICE_OP(dev_ops, fill_res_srq_entry);
2743 SET_DEVICE_OP(dev_ops, fill_res_srq_entry_raw);
2744 SET_DEVICE_OP(dev_ops, fill_stat_mr_entry);
2745 SET_DEVICE_OP(dev_ops, get_dev_fw_str);
2746 SET_DEVICE_OP(dev_ops, get_dma_mr);
2747 SET_DEVICE_OP(dev_ops, get_hw_stats);
2748 SET_DEVICE_OP(dev_ops, get_link_layer);
2749 SET_DEVICE_OP(dev_ops, get_netdev);
2750 SET_DEVICE_OP(dev_ops, get_numa_node);
2751 SET_DEVICE_OP(dev_ops, get_port_immutable);
2752 SET_DEVICE_OP(dev_ops, get_vector_affinity);
2753 SET_DEVICE_OP(dev_ops, get_vf_config);
2754 SET_DEVICE_OP(dev_ops, get_vf_guid);
2755 SET_DEVICE_OP(dev_ops, get_vf_stats);
2756 SET_DEVICE_OP(dev_ops, iw_accept);
2757 SET_DEVICE_OP(dev_ops, iw_add_ref);
2758 SET_DEVICE_OP(dev_ops, iw_connect);
2759 SET_DEVICE_OP(dev_ops, iw_create_listen);
2760 SET_DEVICE_OP(dev_ops, iw_destroy_listen);
2761 SET_DEVICE_OP(dev_ops, iw_get_qp);
2762 SET_DEVICE_OP(dev_ops, iw_reject);
2763 SET_DEVICE_OP(dev_ops, iw_rem_ref);
2764 SET_DEVICE_OP(dev_ops, map_mr_sg);
2765 SET_DEVICE_OP(dev_ops, map_mr_sg_pi);
2766 SET_DEVICE_OP(dev_ops, mmap);
2767 SET_DEVICE_OP(dev_ops, mmap_get_pfns);
2768 SET_DEVICE_OP(dev_ops, mmap_free);
2769 SET_DEVICE_OP(dev_ops, modify_ah);
2770 SET_DEVICE_OP(dev_ops, modify_cq);
2771 SET_DEVICE_OP(dev_ops, modify_device);
2772 SET_DEVICE_OP(dev_ops, modify_hw_stat);
2773 SET_DEVICE_OP(dev_ops, modify_port);
2774 SET_DEVICE_OP(dev_ops, modify_qp);
2775 SET_DEVICE_OP(dev_ops, modify_srq);
2776 SET_DEVICE_OP(dev_ops, modify_wq);
2777 SET_DEVICE_OP(dev_ops, peek_cq);
2778 SET_DEVICE_OP(dev_ops, pgoff_to_mmap_entry);
2779 SET_DEVICE_OP(dev_ops, pre_destroy_cq);
2780 SET_DEVICE_OP(dev_ops, poll_cq);
2781 SET_DEVICE_OP(dev_ops, port_groups);
2782 SET_DEVICE_OP(dev_ops, post_destroy_cq);
2783 SET_DEVICE_OP(dev_ops, post_recv);
2784 SET_DEVICE_OP(dev_ops, post_send);
2785 SET_DEVICE_OP(dev_ops, post_srq_recv);
2786 SET_DEVICE_OP(dev_ops, process_mad);
2787 SET_DEVICE_OP(dev_ops, query_ah);
2788 SET_DEVICE_OP(dev_ops, query_device);
2789 SET_DEVICE_OP(dev_ops, query_gid);
2790 SET_DEVICE_OP(dev_ops, query_pkey);
2791 SET_DEVICE_OP(dev_ops, query_port);
2792 SET_DEVICE_OP(dev_ops, query_port_speed);
2793 SET_DEVICE_OP(dev_ops, query_qp);
2794 SET_DEVICE_OP(dev_ops, query_srq);
2795 SET_DEVICE_OP(dev_ops, query_ucontext);
2796 SET_DEVICE_OP(dev_ops, rdma_netdev_get_params);
2797 SET_DEVICE_OP(dev_ops, read_counters);
2798 SET_DEVICE_OP(dev_ops, reg_dm_mr);
2799 SET_DEVICE_OP(dev_ops, reg_user_mr);
2800 SET_DEVICE_OP(dev_ops, reg_user_mr_dmabuf);
2801 SET_DEVICE_OP(dev_ops, req_notify_cq);
2802 SET_DEVICE_OP(dev_ops, rereg_user_mr);
2803 SET_DEVICE_OP(dev_ops, resize_cq);
2804 SET_DEVICE_OP(dev_ops, set_vf_guid);
2805 SET_DEVICE_OP(dev_ops, set_vf_link_state);
2806 SET_DEVICE_OP(dev_ops, ufile_hw_cleanup);
2807 SET_DEVICE_OP(dev_ops, report_port_event);
2808
2809 SET_OBJ_SIZE(dev_ops, ib_ah);
2810 SET_OBJ_SIZE(dev_ops, ib_counters);
2811 SET_OBJ_SIZE(dev_ops, ib_cq);
2812 SET_OBJ_SIZE(dev_ops, ib_dmah);
2813 SET_OBJ_SIZE(dev_ops, ib_mw);
2814 SET_OBJ_SIZE(dev_ops, ib_pd);
2815 SET_OBJ_SIZE(dev_ops, ib_qp);
2816 SET_OBJ_SIZE(dev_ops, ib_rwq_ind_table);
2817 SET_OBJ_SIZE(dev_ops, ib_srq);
2818 SET_OBJ_SIZE(dev_ops, ib_ucontext);
2819 SET_OBJ_SIZE(dev_ops, ib_xrcd);
2820 SET_OBJ_SIZE(dev_ops, rdma_counter);
2821 }
2822 EXPORT_SYMBOL(ib_set_device_ops);
2823
ib_add_sub_device(struct ib_device * parent,enum rdma_nl_dev_type type,const char * name)2824 int ib_add_sub_device(struct ib_device *parent,
2825 enum rdma_nl_dev_type type,
2826 const char *name)
2827 {
2828 struct ib_device *sub;
2829 int ret = 0;
2830
2831 if (!parent->ops.add_sub_dev || !parent->ops.del_sub_dev)
2832 return -EOPNOTSUPP;
2833
2834 if (!ib_device_try_get(parent))
2835 return -EINVAL;
2836
2837 sub = parent->ops.add_sub_dev(parent, type, name);
2838 if (IS_ERR(sub)) {
2839 ib_device_put(parent);
2840 return PTR_ERR(sub);
2841 }
2842
2843 sub->type = type;
2844 sub->parent = parent;
2845
2846 mutex_lock(&parent->subdev_lock);
2847 list_add_tail(&parent->subdev_list_head, &sub->subdev_list);
2848 mutex_unlock(&parent->subdev_lock);
2849
2850 return ret;
2851 }
2852
ib_del_sub_device_and_put(struct ib_device * sub)2853 int ib_del_sub_device_and_put(struct ib_device *sub)
2854 {
2855 struct ib_device *parent = sub->parent;
2856
2857 if (!parent) {
2858 ib_device_put(sub);
2859 return -EOPNOTSUPP;
2860 }
2861
2862 mutex_lock(&parent->subdev_lock);
2863 list_del(&sub->subdev_list);
2864 mutex_unlock(&parent->subdev_lock);
2865
2866 ib_device_put(sub);
2867 parent->ops.del_sub_dev(sub);
2868 ib_device_put(parent);
2869
2870 return 0;
2871 }
2872
2873 #ifdef CONFIG_INFINIBAND_VIRT_DMA
ib_dma_virt_map_sg(struct ib_device * dev,struct scatterlist * sg,int nents)2874 int ib_dma_virt_map_sg(struct ib_device *dev, struct scatterlist *sg, int nents)
2875 {
2876 struct scatterlist *s;
2877 int i;
2878
2879 for_each_sg(sg, s, nents, i) {
2880 sg_dma_address(s) = (uintptr_t)sg_virt(s);
2881 sg_dma_len(s) = s->length;
2882 }
2883 return nents;
2884 }
2885 EXPORT_SYMBOL(ib_dma_virt_map_sg);
2886 #endif /* CONFIG_INFINIBAND_VIRT_DMA */
2887
2888 static const struct rdma_nl_cbs ibnl_ls_cb_table[RDMA_NL_LS_NUM_OPS] = {
2889 [RDMA_NL_LS_OP_RESOLVE] = {
2890 .doit = ib_nl_handle_resolve_resp,
2891 .flags = RDMA_NL_ADMIN_PERM,
2892 },
2893 [RDMA_NL_LS_OP_SET_TIMEOUT] = {
2894 .doit = ib_nl_handle_set_timeout,
2895 .flags = RDMA_NL_ADMIN_PERM,
2896 },
2897 [RDMA_NL_LS_OP_IP_RESOLVE] = {
2898 .doit = ib_nl_handle_ip_res_resp,
2899 .flags = RDMA_NL_ADMIN_PERM,
2900 },
2901 };
2902
ib_dispatch_port_state_event(struct ib_device * ibdev,struct net_device * ndev)2903 void ib_dispatch_port_state_event(struct ib_device *ibdev, struct net_device *ndev)
2904 {
2905 enum ib_port_state curr_state;
2906 struct ib_event ibevent = {};
2907 u32 port;
2908
2909 if (ib_query_netdev_port(ibdev, ndev, &port))
2910 return;
2911
2912 curr_state = ib_get_curr_port_state(ndev);
2913
2914 write_lock_irq(&ibdev->cache_lock);
2915 if (ibdev->port_data[port].cache.last_port_state == curr_state) {
2916 write_unlock_irq(&ibdev->cache_lock);
2917 return;
2918 }
2919 ibdev->port_data[port].cache.last_port_state = curr_state;
2920 write_unlock_irq(&ibdev->cache_lock);
2921
2922 ibevent.event = (curr_state == IB_PORT_DOWN) ?
2923 IB_EVENT_PORT_ERR : IB_EVENT_PORT_ACTIVE;
2924 ibevent.device = ibdev;
2925 ibevent.element.port_num = port;
2926 ib_dispatch_event(&ibevent);
2927 }
2928 EXPORT_SYMBOL(ib_dispatch_port_state_event);
2929
handle_port_event(struct net_device * ndev,unsigned long event)2930 static void handle_port_event(struct net_device *ndev, unsigned long event)
2931 {
2932 struct ib_device *ibdev;
2933
2934 /* Currently, link events in bonding scenarios are still
2935 * reported by drivers that support bonding.
2936 */
2937 if (netif_is_lag_master(ndev) || netif_is_lag_port(ndev))
2938 return;
2939
2940 ibdev = ib_device_get_by_netdev(ndev, RDMA_DRIVER_UNKNOWN);
2941 if (!ibdev)
2942 return;
2943
2944 if (ibdev->ops.report_port_event) {
2945 ibdev->ops.report_port_event(ibdev, ndev, event);
2946 goto put_ibdev;
2947 }
2948
2949 ib_dispatch_port_state_event(ibdev, ndev);
2950
2951 put_ibdev:
2952 ib_device_put(ibdev);
2953 };
2954
ib_netdevice_event(struct notifier_block * this,unsigned long event,void * ptr)2955 static int ib_netdevice_event(struct notifier_block *this,
2956 unsigned long event, void *ptr)
2957 {
2958 struct net_device *ndev = netdev_notifier_info_to_dev(ptr);
2959 struct ib_device *ibdev;
2960 u32 port;
2961
2962 switch (event) {
2963 case NETDEV_CHANGENAME:
2964 ibdev = ib_device_get_by_netdev(ndev, RDMA_DRIVER_UNKNOWN);
2965 if (!ibdev)
2966 return NOTIFY_DONE;
2967
2968 if (ib_query_netdev_port(ibdev, ndev, &port)) {
2969 ib_device_put(ibdev);
2970 break;
2971 }
2972
2973 rdma_nl_notify_event(ibdev, port, RDMA_NETDEV_RENAME_EVENT);
2974 ib_device_put(ibdev);
2975 break;
2976
2977 case NETDEV_UP:
2978 case NETDEV_CHANGE:
2979 case NETDEV_DOWN:
2980 handle_port_event(ndev, event);
2981 break;
2982
2983 default:
2984 break;
2985 }
2986
2987 return NOTIFY_DONE;
2988 }
2989
2990 static struct notifier_block nb_netdevice = {
2991 .notifier_call = ib_netdevice_event,
2992 };
2993
ib_core_init(void)2994 static int __init ib_core_init(void)
2995 {
2996 int ret = -ENOMEM;
2997
2998 ib_wq = alloc_workqueue("infiniband", WQ_PERCPU, 0);
2999 if (!ib_wq)
3000 return -ENOMEM;
3001
3002 ib_unreg_wq = alloc_workqueue("ib-unreg-wq", WQ_UNBOUND,
3003 WQ_UNBOUND_MAX_ACTIVE);
3004 if (!ib_unreg_wq)
3005 goto err;
3006
3007 ib_comp_wq = alloc_workqueue("ib-comp-wq",
3008 WQ_HIGHPRI | WQ_MEM_RECLAIM | WQ_SYSFS | WQ_PERCPU, 0);
3009 if (!ib_comp_wq)
3010 goto err_unbound;
3011
3012 ib_comp_unbound_wq =
3013 alloc_workqueue("ib-comp-unb-wq",
3014 WQ_UNBOUND | WQ_HIGHPRI | WQ_MEM_RECLAIM |
3015 WQ_SYSFS, WQ_UNBOUND_MAX_ACTIVE);
3016 if (!ib_comp_unbound_wq)
3017 goto err_comp;
3018
3019 ret = class_register(&ib_class);
3020 if (ret) {
3021 pr_warn("Couldn't create InfiniBand device class\n");
3022 goto err_comp_unbound;
3023 }
3024
3025 rdma_nl_init();
3026
3027 ret = addr_init();
3028 if (ret) {
3029 pr_warn("Couldn't init IB address resolution\n");
3030 goto err_ibnl;
3031 }
3032
3033 ret = ib_mad_init();
3034 if (ret) {
3035 pr_warn("Couldn't init IB MAD\n");
3036 goto err_addr;
3037 }
3038
3039 ret = ib_sa_init();
3040 if (ret) {
3041 pr_warn("Couldn't init SA\n");
3042 goto err_mad;
3043 }
3044
3045 ret = register_blocking_lsm_notifier(&ibdev_lsm_nb);
3046 if (ret) {
3047 pr_warn("Couldn't register LSM notifier. ret %d\n", ret);
3048 goto err_sa;
3049 }
3050
3051 ret = register_pernet_device(&rdma_dev_net_ops);
3052 if (ret) {
3053 pr_warn("Couldn't init compat dev. ret %d\n", ret);
3054 goto err_compat;
3055 }
3056
3057 nldev_init();
3058 rdma_nl_register(RDMA_NL_LS, ibnl_ls_cb_table);
3059 ret = roce_gid_mgmt_init();
3060 if (ret) {
3061 pr_warn("Couldn't init RoCE GID management\n");
3062 goto err_parent;
3063 }
3064
3065 register_netdevice_notifier(&nb_netdevice);
3066
3067 return 0;
3068
3069 err_parent:
3070 rdma_nl_unregister(RDMA_NL_LS);
3071 nldev_exit();
3072 unregister_pernet_device(&rdma_dev_net_ops);
3073 err_compat:
3074 unregister_blocking_lsm_notifier(&ibdev_lsm_nb);
3075 err_sa:
3076 ib_sa_cleanup();
3077 err_mad:
3078 ib_mad_cleanup();
3079 err_addr:
3080 addr_cleanup();
3081 err_ibnl:
3082 class_unregister(&ib_class);
3083 err_comp_unbound:
3084 destroy_workqueue(ib_comp_unbound_wq);
3085 err_comp:
3086 destroy_workqueue(ib_comp_wq);
3087 err_unbound:
3088 destroy_workqueue(ib_unreg_wq);
3089 err:
3090 destroy_workqueue(ib_wq);
3091 return ret;
3092 }
3093
ib_core_cleanup(void)3094 static void __exit ib_core_cleanup(void)
3095 {
3096 unregister_netdevice_notifier(&nb_netdevice);
3097 roce_gid_mgmt_cleanup();
3098 rdma_nl_unregister(RDMA_NL_LS);
3099 nldev_exit();
3100 unregister_pernet_device(&rdma_dev_net_ops);
3101 unregister_blocking_lsm_notifier(&ibdev_lsm_nb);
3102 ib_sa_cleanup();
3103 ib_mad_cleanup();
3104 addr_cleanup();
3105 rdma_nl_exit();
3106 class_unregister(&ib_class);
3107 destroy_workqueue(ib_comp_unbound_wq);
3108 destroy_workqueue(ib_comp_wq);
3109 /* Make sure that any pending umem accounting work is done. */
3110 destroy_workqueue(ib_wq);
3111 destroy_workqueue(ib_unreg_wq);
3112 WARN_ON(!xa_empty(&clients));
3113 WARN_ON(!xa_empty(&devices));
3114 }
3115
3116 MODULE_ALIAS_RDMA_NETLINK(RDMA_NL_LS, 4);
3117
3118 /* ib core relies on netdev stack to first register net_ns_type_operations
3119 * ns kobject type before ib_core initialization.
3120 */
3121 fs_initcall(ib_core_init);
3122 module_exit(ib_core_cleanup);
3123