1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * System Control and Management Interface (SCMI) Notification support
4 *
5 * Copyright (C) 2020-2021 ARM Ltd.
6 */
7 /**
8 * DOC: Theory of operation
9 *
10 * SCMI Protocol specification allows the platform to signal events to
11 * interested agents via notification messages: this is an implementation
12 * of the dispatch and delivery of such notifications to the interested users
13 * inside the Linux kernel.
14 *
15 * An SCMI Notification core instance is initialized for each active platform
16 * instance identified by the means of the usual &struct scmi_handle.
17 *
18 * Each SCMI Protocol implementation, during its initialization, registers with
19 * this core its set of supported events using scmi_register_protocol_events():
20 * all the needed descriptors are stored in the &struct registered_protocols and
21 * &struct registered_events arrays.
22 *
23 * Kernel users interested in some specific event can register their callbacks
24 * providing the usual notifier_block descriptor, since this core implements
25 * events' delivery using the standard Kernel notification chains machinery.
26 *
27 * Given the number of possible events defined by SCMI and the extensibility
28 * of the SCMI Protocol itself, the underlying notification chains are created
29 * and destroyed dynamically on demand depending on the number of users
30 * effectively registered for an event, so that no support structures or chains
31 * are allocated until at least one user has registered a notifier_block for
32 * such event. Similarly, events' generation itself is enabled at the platform
33 * level only after at least one user has registered, and it is shutdown after
34 * the last user for that event has gone.
35 *
36 * All users provided callbacks and allocated notification-chains are stored in
37 * the @registered_events_handlers hashtable. Callbacks' registration requests
38 * for still to be registered events are instead kept in the dedicated common
39 * hashtable @pending_events_handlers.
40 *
41 * An event is identified univocally by the tuple (proto_id, evt_id, src_id)
42 * and is served by its own dedicated notification chain; information contained
43 * in such tuples is used, in a few different ways, to generate the needed
44 * hash-keys.
45 *
46 * Here proto_id and evt_id are simply the protocol_id and message_id numbers
47 * as described in the SCMI Protocol specification, while src_id represents an
48 * optional, protocol dependent, source identifier (like domain_id, perf_id
49 * or sensor_id and so forth).
50 *
51 * Upon reception of a notification message from the platform the SCMI RX ISR
52 * passes the received message payload and some ancillary information (including
53 * an arrival timestamp in nanoseconds) to the core via @scmi_notify() which
54 * pushes the event-data itself on a protocol-dedicated kfifo queue for further
55 * deferred processing as specified in @scmi_events_dispatcher().
56 *
57 * Each protocol has it own dedicated work_struct and worker which, once kicked
58 * by the ISR, takes care to empty its own dedicated queue, deliverying the
59 * queued items into the proper notification-chain: notifications processing can
60 * proceed concurrently on distinct workers only between events belonging to
61 * different protocols while delivery of events within the same protocol is
62 * still strictly sequentially ordered by time of arrival.
63 *
64 * Events' information is then extracted from the SCMI Notification messages and
65 * conveyed, converted into a custom per-event report struct, as the void *data
66 * param to the user callback provided by the registered notifier_block, so that
67 * from the user perspective his callback will look invoked like:
68 *
69 * int user_cb(struct notifier_block *nb, unsigned long event_id, void *report)
70 *
71 */
72
73 #define dev_fmt(fmt) "SCMI Notifications - " fmt
74 #define pr_fmt(fmt) "SCMI Notifications - " fmt
75
76 #include <linux/bitfield.h>
77 #include <linux/bug.h>
78 #include <linux/compiler.h>
79 #include <linux/device.h>
80 #include <linux/err.h>
81 #include <linux/hashtable.h>
82 #include <linux/kernel.h>
83 #include <linux/ktime.h>
84 #include <linux/kfifo.h>
85 #include <linux/list.h>
86 #include <linux/mutex.h>
87 #include <linux/notifier.h>
88 #include <linux/refcount.h>
89 #include <linux/scmi_protocol.h>
90 #include <linux/slab.h>
91 #include <linux/types.h>
92 #include <linux/workqueue.h>
93
94 #include "common.h"
95 #include "notify.h"
96
97 #define SCMI_MAX_PROTO 256
98
99 #define PROTO_ID_MASK GENMASK(31, 24)
100 #define EVT_ID_MASK GENMASK(23, 16)
101 #define SRC_ID_MASK GENMASK(15, 0)
102 #define NOTIF_UNSUPP -1
103
104 /*
105 * Builds an unsigned 32bit key from the given input tuple to be used
106 * as a key in hashtables.
107 */
108 #define MAKE_HASH_KEY(p, e, s) \
109 (FIELD_PREP(PROTO_ID_MASK, (p)) | \
110 FIELD_PREP(EVT_ID_MASK, (e)) | \
111 FIELD_PREP(SRC_ID_MASK, (s)))
112
113 #define MAKE_ALL_SRCS_KEY(p, e) MAKE_HASH_KEY((p), (e), SRC_ID_MASK)
114
115 /*
116 * Assumes that the stored obj includes its own hash-key in a field named 'key':
117 * with this simplification this macro can be equally used for all the objects'
118 * types hashed by this implementation.
119 *
120 * @__ht: The hashtable name
121 * @__obj: A pointer to the object type to be retrieved from the hashtable;
122 * it will be used as a cursor while scanning the hastable and it will
123 * be possibly left as NULL when @__k is not found
124 * @__k: The key to search for
125 */
126 #define KEY_FIND(__ht, __obj, __k) \
127 ({ \
128 typeof(__k) k_ = __k; \
129 typeof(__obj) obj_; \
130 \
131 hash_for_each_possible((__ht), obj_, hash, k_) \
132 if (obj_->key == k_) \
133 break; \
134 __obj = obj_; \
135 })
136
137 #define KEY_XTRACT_PROTO_ID(key) FIELD_GET(PROTO_ID_MASK, (key))
138 #define KEY_XTRACT_EVT_ID(key) FIELD_GET(EVT_ID_MASK, (key))
139 #define KEY_XTRACT_SRC_ID(key) FIELD_GET(SRC_ID_MASK, (key))
140
141 /*
142 * A set of macros used to access safely @registered_protocols and
143 * @registered_events arrays; these are fixed in size and each entry is possibly
144 * populated at protocols' registration time and then only read but NEVER
145 * modified or removed.
146 */
147 #define SCMI_GET_PROTO(__ni, __pid) \
148 ({ \
149 typeof(__ni) ni_ = __ni; \
150 struct scmi_registered_events_desc *__pd = NULL; \
151 \
152 if (ni_) \
153 __pd = READ_ONCE(ni_->registered_protocols[(__pid)]); \
154 __pd; \
155 })
156
157 #define SCMI_GET_REVT_FROM_PD(__pd, __eid) \
158 ({ \
159 typeof(__pd) pd_ = __pd; \
160 typeof(__eid) eid_ = __eid; \
161 struct scmi_registered_event *__revt = NULL; \
162 \
163 if (pd_ && eid_ < pd_->num_events) \
164 __revt = READ_ONCE(pd_->registered_events[eid_]); \
165 __revt; \
166 })
167
168 #define SCMI_GET_REVT(__ni, __pid, __eid) \
169 ({ \
170 struct scmi_registered_event *__revt; \
171 struct scmi_registered_events_desc *__pd; \
172 \
173 __pd = SCMI_GET_PROTO((__ni), (__pid)); \
174 __revt = SCMI_GET_REVT_FROM_PD(__pd, (__eid)); \
175 __revt; \
176 })
177
178 /* A couple of utility macros to limit cruft when calling protocols' helpers */
179 #define REVT_NOTIFY_SET_STATUS(revt, eid, sid, state) \
180 ({ \
181 typeof(revt) r = revt; \
182 r->proto->ops->set_notify_enabled(r->proto->ph, \
183 (eid), (sid), (state)); \
184 })
185
186 #define REVT_NOTIFY_ENABLE(revt, eid, sid) \
187 REVT_NOTIFY_SET_STATUS((revt), (eid), (sid), true)
188
189 #define REVT_NOTIFY_DISABLE(revt, eid, sid) \
190 REVT_NOTIFY_SET_STATUS((revt), (eid), (sid), false)
191
192 #define REVT_FILL_REPORT(revt, ...) \
193 ({ \
194 typeof(revt) r = revt; \
195 r->proto->ops->fill_custom_report(r->proto->ph, \
196 __VA_ARGS__); \
197 })
198
199 #define SCMI_PENDING_HASH_SZ 4
200 #define SCMI_REGISTERED_HASH_SZ 6
201
202 struct scmi_registered_events_desc;
203
204 /**
205 * struct scmi_notify_instance - Represents an instance of the notification
206 * core
207 * @gid: GroupID used for devres
208 * @handle: A reference to the platform instance
209 * @init_work: A work item to perform final initializations of pending handlers
210 * @notify_wq: A reference to the allocated Kernel cmwq
211 * @pending_mtx: A mutex to protect @pending_events_handlers
212 * @pending_events_handlers: An hashtable containing all pending events'
213 * handlers descriptors
214 * @registered_protocols: A statically allocated array containing pointers to
215 * all the registered protocol-level specific information
216 * related to events' handling
217 *
218 * Each platform instance, represented by a handle, has its own instance of
219 * the notification subsystem represented by this structure.
220 */
221 struct scmi_notify_instance {
222 void *gid;
223 struct scmi_handle *handle;
224 struct work_struct init_work;
225 struct workqueue_struct *notify_wq;
226 /* lock to protect pending_events_handlers */
227 struct mutex pending_mtx;
228 DECLARE_HASHTABLE(pending_events_handlers, SCMI_PENDING_HASH_SZ);
229 struct scmi_registered_events_desc *registered_protocols[SCMI_MAX_PROTO];
230 };
231
232 /**
233 * struct events_queue - Describes a queue and its associated worker
234 * @sz: Size in bytes of the related kfifo
235 * @kfifo: A dedicated Kernel kfifo descriptor
236 * @notify_work: A custom work item bound to this queue
237 * @wq: A reference to the associated workqueue
238 *
239 * Each protocol has its own dedicated events_queue descriptor.
240 */
241 struct events_queue {
242 size_t sz;
243 struct kfifo kfifo;
244 struct work_struct notify_work;
245 struct workqueue_struct *wq;
246 };
247
248 /**
249 * struct scmi_event_header - A utility header
250 * @timestamp: The timestamp, in nanoseconds (boottime), which was associated
251 * to this event as soon as it entered the SCMI RX ISR
252 * @payld_sz: Effective size of the embedded message payload which follows
253 * @evt_id: Event ID (corresponds to the Event MsgID for this Protocol)
254 * @payld: A reference to the embedded event payload
255 *
256 * This header is prepended to each received event message payload before
257 * queueing it on the related &struct events_queue.
258 */
259 struct scmi_event_header {
260 ktime_t timestamp;
261 size_t payld_sz;
262 unsigned char evt_id;
263 unsigned char payld[];
264 };
265
266 struct scmi_registered_event;
267
268 /**
269 * struct scmi_registered_events_desc - Protocol Specific information
270 * @id: Protocol ID
271 * @ops: Protocol specific and event-related operations
272 * @equeue: The embedded per-protocol events_queue
273 * @ni: A reference to the initialized instance descriptor
274 * @eh: A reference to pre-allocated buffer to be used as a scratch area by the
275 * deferred worker when fetching data from the kfifo
276 * @eh_sz: Size of the pre-allocated buffer @eh
277 * @in_flight: A reference to an in flight &struct scmi_registered_event
278 * @num_events: Number of events in @registered_events
279 * @registered_mtx: A mutex to protect @registered_events_handlers
280 * @ph: SCMI protocol handle reference
281 * @registered_events_handlers: An hashtable containing all events' handlers
282 * descriptors registered for this protocol
283 * @registered_events: A dynamically allocated array holding all the registered
284 * events' descriptors, whose fixed-size is determined at
285 * compile time.
286 *
287 * All protocols that register at least one event have their protocol-specific
288 * information stored here, together with the embedded allocated events_queue.
289 * These descriptors are stored in the @registered_protocols array at protocol
290 * registration time.
291 *
292 * Once these descriptors are successfully registered, they are NEVER again
293 * removed or modified since protocols do not unregister ever, so that, once
294 * we safely grab a NON-NULL reference from the array we can keep it and use it.
295 */
296 struct scmi_registered_events_desc {
297 u8 id;
298 const struct scmi_event_ops *ops;
299 struct events_queue equeue;
300 struct scmi_notify_instance *ni;
301 struct scmi_event_header *eh;
302 size_t eh_sz;
303 void *in_flight;
304 int num_events;
305 /* mutex to protect registered_events_handlers */
306 struct mutex registered_mtx;
307 const struct scmi_protocol_handle *ph;
308 DECLARE_HASHTABLE(registered_events_handlers, SCMI_REGISTERED_HASH_SZ);
309 struct scmi_registered_event *registered_events[] __counted_by(num_events);
310 };
311
312 /**
313 * struct scmi_registered_event - Event Specific Information
314 * @proto: A reference to the associated protocol descriptor
315 * @evt: A reference to the associated event descriptor (as provided at
316 * registration time)
317 * @report: A pre-allocated buffer used by the deferred worker to fill a
318 * customized event report
319 * @num_sources: The number of possible sources for this event as stated at
320 * events' registration time
321 * @not_supported_by_platform: A flag to indicate that not even one source was
322 * found to be supported by the platform for this
323 * event
324 * @sources: A reference to a dynamically allocated array used to refcount the
325 * events' enable requests for all the existing sources
326 * @sources_mtx: A mutex to serialize the access to @sources
327 *
328 * All registered events are represented by one of these structures that are
329 * stored in the @registered_events array at protocol registration time.
330 *
331 * Once these descriptors are successfully registered, they are NEVER again
332 * removed or modified since protocols do not unregister ever, so that once we
333 * safely grab a NON-NULL reference from the table we can keep it and use it.
334 */
335 struct scmi_registered_event {
336 struct scmi_registered_events_desc *proto;
337 const struct scmi_event *evt;
338 void *report;
339 u32 num_sources;
340 bool not_supported_by_platform;
341 /* locking to serialize the access to sources */
342 struct mutex sources_mtx;
343 refcount_t sources[] __counted_by(num_sources);
344 };
345
346 /**
347 * struct scmi_event_handler - Event handler information
348 * @key: The used hashkey
349 * @users: A reference count for number of active users for this handler
350 * @r_evt: A reference to the associated registered event; when this is NULL
351 * this handler is pending, which means that identifies a set of
352 * callbacks intended to be attached to an event which is still not
353 * known nor registered by any protocol at that point in time
354 * @chain: The notification chain dedicated to this specific event tuple
355 * @hash: The hlist_node used for collision handling
356 * @enabled: A boolean which records if event's generation has been already
357 * enabled for this handler as a whole
358 *
359 * This structure collects all the information needed to process a received
360 * event identified by the tuple (proto_id, evt_id, src_id).
361 * These descriptors are stored in a per-protocol @registered_events_handlers
362 * table using as a key a value derived from that tuple.
363 */
364 struct scmi_event_handler {
365 u32 key;
366 refcount_t users;
367 struct scmi_registered_event *r_evt;
368 struct blocking_notifier_head chain;
369 struct hlist_node hash;
370 bool enabled;
371 };
372
373 #define IS_HNDL_PENDING(hndl) (!(hndl)->r_evt)
374
375 static struct scmi_event_handler *
376 scmi_get_active_handler(struct scmi_notify_instance *ni, u32 evt_key);
377 static void scmi_put_active_handler(struct scmi_notify_instance *ni,
378 struct scmi_event_handler *hndl);
379 static bool scmi_put_handler_unlocked(struct scmi_notify_instance *ni,
380 struct scmi_event_handler *hndl);
381
382 /**
383 * scmi_lookup_and_call_event_chain() - Lookup the proper chain and call it
384 * @ni: A reference to the notification instance to use
385 * @evt_key: The key to use to lookup the related notification chain
386 * @report: The customized event-specific report to pass down to the callbacks
387 * as their *data parameter.
388 */
389 static inline void
scmi_lookup_and_call_event_chain(struct scmi_notify_instance * ni,u32 evt_key,void * report)390 scmi_lookup_and_call_event_chain(struct scmi_notify_instance *ni,
391 u32 evt_key, void *report)
392 {
393 int ret;
394 struct scmi_event_handler *hndl;
395
396 /*
397 * Here ensure the event handler cannot vanish while using it.
398 * It is legitimate, though, for an handler not to be found at all here,
399 * e.g. when it has been unregistered by the user after some events had
400 * already been queued.
401 */
402 hndl = scmi_get_active_handler(ni, evt_key);
403 if (!hndl)
404 return;
405
406 ret = blocking_notifier_call_chain(&hndl->chain,
407 KEY_XTRACT_EVT_ID(evt_key),
408 report);
409 /* Notifiers are NOT supposed to cut the chain ... */
410 WARN_ON_ONCE(ret & NOTIFY_STOP_MASK);
411
412 scmi_put_active_handler(ni, hndl);
413 }
414
415 /**
416 * scmi_process_event_header() - Dequeue and process an event header
417 * @eq: The queue to use
418 * @pd: The protocol descriptor to use
419 *
420 * Read an event header from the protocol queue into the dedicated scratch
421 * buffer and looks for a matching registered event; in case an anomalously
422 * sized read is detected just flush the queue.
423 *
424 * Return:
425 * * a reference to the matching registered event when found
426 * * ERR_PTR(-EINVAL) when NO registered event could be found
427 * * NULL when the queue is empty
428 */
429 static inline struct scmi_registered_event *
scmi_process_event_header(struct events_queue * eq,struct scmi_registered_events_desc * pd)430 scmi_process_event_header(struct events_queue *eq,
431 struct scmi_registered_events_desc *pd)
432 {
433 unsigned int outs;
434 struct scmi_registered_event *r_evt;
435
436 outs = kfifo_out(&eq->kfifo, pd->eh,
437 sizeof(struct scmi_event_header));
438 if (!outs)
439 return NULL;
440 if (outs != sizeof(struct scmi_event_header)) {
441 dev_err(pd->ni->handle->dev, "corrupted EVT header. Flush.\n");
442 kfifo_reset_out(&eq->kfifo);
443 return NULL;
444 }
445
446 r_evt = SCMI_GET_REVT_FROM_PD(pd, pd->eh->evt_id);
447 if (!r_evt)
448 r_evt = ERR_PTR(-EINVAL);
449
450 return r_evt;
451 }
452
453 /**
454 * scmi_process_event_payload() - Dequeue and process an event payload
455 * @eq: The queue to use
456 * @pd: The protocol descriptor to use
457 * @r_evt: The registered event descriptor to use
458 *
459 * Read an event payload from the protocol queue into the dedicated scratch
460 * buffer, fills a custom report and then look for matching event handlers and
461 * call them; skip any unknown event (as marked by scmi_process_event_header())
462 * and in case an anomalously sized read is detected just flush the queue.
463 *
464 * Return: False when the queue is empty
465 */
466 static inline bool
scmi_process_event_payload(struct events_queue * eq,struct scmi_registered_events_desc * pd,struct scmi_registered_event * r_evt)467 scmi_process_event_payload(struct events_queue *eq,
468 struct scmi_registered_events_desc *pd,
469 struct scmi_registered_event *r_evt)
470 {
471 u32 src_id, key;
472 unsigned int outs;
473 void *report = NULL;
474
475 outs = kfifo_out(&eq->kfifo, pd->eh->payld, pd->eh->payld_sz);
476 if (!outs)
477 return false;
478
479 /* Any in-flight event has now been officially processed */
480 pd->in_flight = NULL;
481
482 if (outs != pd->eh->payld_sz) {
483 dev_err(pd->ni->handle->dev, "corrupted EVT Payload. Flush.\n");
484 kfifo_reset_out(&eq->kfifo);
485 return false;
486 }
487
488 if (IS_ERR(r_evt)) {
489 dev_warn(pd->ni->handle->dev,
490 "SKIP UNKNOWN EVT - proto:%X evt:%d\n",
491 pd->id, pd->eh->evt_id);
492 return true;
493 }
494
495 report = REVT_FILL_REPORT(r_evt, pd->eh->evt_id, pd->eh->timestamp,
496 pd->eh->payld, pd->eh->payld_sz,
497 r_evt->report, &src_id);
498 if (!report) {
499 dev_err(pd->ni->handle->dev,
500 "report not available - proto:%X evt:%d\n",
501 pd->id, pd->eh->evt_id);
502 return true;
503 }
504
505 /* At first search for a generic ALL src_ids handler... */
506 key = MAKE_ALL_SRCS_KEY(pd->id, pd->eh->evt_id);
507 scmi_lookup_and_call_event_chain(pd->ni, key, report);
508
509 /* ...then search for any specific src_id */
510 key = MAKE_HASH_KEY(pd->id, pd->eh->evt_id, src_id);
511 scmi_lookup_and_call_event_chain(pd->ni, key, report);
512
513 return true;
514 }
515
516 /**
517 * scmi_events_dispatcher() - Common worker logic for all work items.
518 * @work: The work item to use, which is associated to a dedicated events_queue
519 *
520 * Logic:
521 * 1. dequeue one pending RX notification (queued in SCMI RX ISR context)
522 * 2. generate a custom event report from the received event message
523 * 3. lookup for any registered ALL_SRC_IDs handler:
524 * - > call the related notification chain passing in the report
525 * 4. lookup for any registered specific SRC_ID handler:
526 * - > call the related notification chain passing in the report
527 *
528 * Note that:
529 * * a dedicated per-protocol kfifo queue is used: in this way an anomalous
530 * flood of events cannot saturate other protocols' queues.
531 * * each per-protocol queue is associated to a distinct work_item, which
532 * means, in turn, that:
533 * + all protocols can process their dedicated queues concurrently
534 * (since notify_wq:max_active != 1)
535 * + anyway at most one worker instance is allowed to run on the same queue
536 * concurrently: this ensures that we can have only one concurrent
537 * reader/writer on the associated kfifo, so that we can use it lock-less
538 *
539 * Context: Process context.
540 */
scmi_events_dispatcher(struct work_struct * work)541 static void scmi_events_dispatcher(struct work_struct *work)
542 {
543 struct events_queue *eq;
544 struct scmi_registered_events_desc *pd;
545 struct scmi_registered_event *r_evt;
546
547 eq = container_of(work, struct events_queue, notify_work);
548 pd = container_of(eq, struct scmi_registered_events_desc, equeue);
549 /*
550 * In order to keep the queue lock-less and the number of memcopies
551 * to the bare minimum needed, the dispatcher accounts for the
552 * possibility of per-protocol in-flight events: i.e. an event whose
553 * reception could end up being split across two subsequent runs of this
554 * worker, first the header, then the payload.
555 */
556 do {
557 if (!pd->in_flight) {
558 r_evt = scmi_process_event_header(eq, pd);
559 if (!r_evt)
560 break;
561 pd->in_flight = r_evt;
562 } else {
563 r_evt = pd->in_flight;
564 }
565 } while (scmi_process_event_payload(eq, pd, r_evt));
566 }
567
568 /**
569 * scmi_notify() - Queues a notification for further deferred processing
570 * @handle: The handle identifying the platform instance from which the
571 * dispatched event is generated
572 * @proto_id: Protocol ID
573 * @evt_id: Event ID (msgID)
574 * @buf: Event Message Payload (without the header)
575 * @len: Event Message Payload size
576 * @ts: RX Timestamp in nanoseconds (boottime)
577 *
578 * Context: Called in interrupt context to queue a received event for
579 * deferred processing.
580 *
581 * Return: 0 on Success
582 */
scmi_notify(const struct scmi_handle * handle,u8 proto_id,u8 evt_id,const void * buf,size_t len,ktime_t ts)583 int scmi_notify(const struct scmi_handle *handle, u8 proto_id, u8 evt_id,
584 const void *buf, size_t len, ktime_t ts)
585 {
586 struct scmi_registered_event *r_evt;
587 struct scmi_event_header eh;
588 struct scmi_notify_instance *ni;
589
590 ni = scmi_notification_instance_data_get(handle);
591 if (!ni)
592 return 0;
593
594 r_evt = SCMI_GET_REVT(ni, proto_id, evt_id);
595 if (!r_evt)
596 return -EINVAL;
597
598 if (len > r_evt->evt->max_payld_sz) {
599 dev_err(handle->dev, "discard badly sized message\n");
600 return -EINVAL;
601 }
602 if (kfifo_avail(&r_evt->proto->equeue.kfifo) < sizeof(eh) + len) {
603 dev_warn_ratelimited(handle->dev,
604 "queue full, dropping proto_id:%d evt_id:%d ts:%lld\n",
605 proto_id, evt_id, ktime_to_ns(ts));
606 return -ENOMEM;
607 }
608
609 eh.timestamp = ts;
610 eh.evt_id = evt_id;
611 eh.payld_sz = len;
612 /*
613 * Header and payload are enqueued with two distinct kfifo_in() (so non
614 * atomic), but this situation is handled properly on the consumer side
615 * with in-flight events tracking.
616 */
617 kfifo_in(&r_evt->proto->equeue.kfifo, &eh, sizeof(eh));
618 kfifo_in(&r_evt->proto->equeue.kfifo, buf, len);
619 /*
620 * Don't care about return value here since we just want to ensure that
621 * a work is queued all the times whenever some items have been pushed
622 * on the kfifo:
623 * - if work was already queued it will simply fail to queue a new one
624 * since it is not needed
625 * - if work was not queued already it will be now, even in case work
626 * was in fact already running: this behavior avoids any possible race
627 * when this function pushes new items onto the kfifos after the
628 * related executing worker had already determined the kfifo to be
629 * empty and it was terminating.
630 */
631 queue_work(r_evt->proto->equeue.wq,
632 &r_evt->proto->equeue.notify_work);
633
634 return 0;
635 }
636
637 /**
638 * scmi_kfifo_free() - Devres action helper to free the kfifo
639 * @kfifo: The kfifo to free
640 */
scmi_kfifo_free(void * kfifo)641 static void scmi_kfifo_free(void *kfifo)
642 {
643 kfifo_free((struct kfifo *)kfifo);
644 }
645
646 /**
647 * scmi_initialize_events_queue() - Allocate/Initialize a kfifo buffer
648 * @ni: A reference to the notification instance to use
649 * @equeue: The events_queue to initialize
650 * @sz: Size of the kfifo buffer to allocate
651 *
652 * Allocate a buffer for the kfifo and initialize it.
653 *
654 * Return: 0 on Success
655 */
scmi_initialize_events_queue(struct scmi_notify_instance * ni,struct events_queue * equeue,size_t sz)656 static int scmi_initialize_events_queue(struct scmi_notify_instance *ni,
657 struct events_queue *equeue, size_t sz)
658 {
659 int ret;
660
661 if (kfifo_alloc(&equeue->kfifo, sz, GFP_KERNEL))
662 return -ENOMEM;
663 /* Size could have been roundup to power-of-two */
664 equeue->sz = kfifo_size(&equeue->kfifo);
665
666 ret = devm_add_action_or_reset(ni->handle->dev, scmi_kfifo_free,
667 &equeue->kfifo);
668 if (ret)
669 return ret;
670
671 INIT_WORK(&equeue->notify_work, scmi_events_dispatcher);
672 equeue->wq = ni->notify_wq;
673
674 return ret;
675 }
676
677 /**
678 * scmi_allocate_registered_events_desc() - Allocate a registered events'
679 * descriptor
680 * @ni: A reference to the &struct scmi_notify_instance notification instance
681 * to use
682 * @proto_id: Protocol ID
683 * @queue_sz: Size of the associated queue to allocate
684 * @eh_sz: Size of the event header scratch area to pre-allocate
685 * @num_events: Number of events to support (size of @registered_events)
686 * @ops: Pointer to a struct holding references to protocol specific helpers
687 * needed during events handling
688 *
689 * It is supposed to be called only once for each protocol at protocol
690 * initialization time, so it warns if the requested protocol is found already
691 * registered.
692 *
693 * Return: The allocated and registered descriptor on Success
694 */
695 static struct scmi_registered_events_desc *
scmi_allocate_registered_events_desc(struct scmi_notify_instance * ni,u8 proto_id,size_t queue_sz,size_t eh_sz,int num_events,const struct scmi_event_ops * ops)696 scmi_allocate_registered_events_desc(struct scmi_notify_instance *ni,
697 u8 proto_id, size_t queue_sz, size_t eh_sz,
698 int num_events,
699 const struct scmi_event_ops *ops)
700 {
701 int ret;
702 struct scmi_registered_events_desc *pd;
703
704 /* Ensure protocols are up to date */
705 smp_rmb();
706 if (WARN_ON(ni->registered_protocols[proto_id]))
707 return ERR_PTR(-EINVAL);
708
709 pd = devm_kzalloc(ni->handle->dev,
710 struct_size(pd, registered_events, num_events),
711 GFP_KERNEL);
712 if (!pd)
713 return ERR_PTR(-ENOMEM);
714
715 pd->num_events = num_events;
716 pd->id = proto_id;
717 pd->ops = ops;
718 pd->ni = ni;
719
720 ret = scmi_initialize_events_queue(ni, &pd->equeue, queue_sz);
721 if (ret)
722 return ERR_PTR(ret);
723
724 pd->eh = devm_kzalloc(ni->handle->dev, eh_sz, GFP_KERNEL);
725 if (!pd->eh)
726 return ERR_PTR(-ENOMEM);
727 pd->eh_sz = eh_sz;
728
729 /* Initialize per protocol handlers table */
730 mutex_init(&pd->registered_mtx);
731 hash_init(pd->registered_events_handlers);
732
733 return pd;
734 }
735
736 /**
737 * scmi_register_protocol_events() - Register Protocol Events with the core
738 * @handle: The handle identifying the platform instance against which the
739 * protocol's events are registered
740 * @proto_id: Protocol ID
741 * @ph: SCMI protocol handle.
742 * @ee: A structure describing the events supported by this protocol.
743 *
744 * Used by SCMI Protocols initialization code to register with the notification
745 * core the list of supported events and their descriptors: takes care to
746 * pre-allocate and store all needed descriptors, scratch buffers and event
747 * queues.
748 *
749 * Return: 0 on Success
750 */
scmi_register_protocol_events(const struct scmi_handle * handle,u8 proto_id,const struct scmi_protocol_handle * ph,const struct scmi_protocol_events * ee)751 int scmi_register_protocol_events(const struct scmi_handle *handle, u8 proto_id,
752 const struct scmi_protocol_handle *ph,
753 const struct scmi_protocol_events *ee)
754 {
755 int i;
756 unsigned int num_sources;
757 size_t payld_sz = 0;
758 struct scmi_registered_events_desc *pd;
759 struct scmi_notify_instance *ni;
760 const struct scmi_event *evt;
761
762 if (!ee || !ee->ops || !ee->evts || !ph ||
763 (!ee->num_sources && !ee->ops->get_num_sources))
764 return -EINVAL;
765
766 ni = scmi_notification_instance_data_get(handle);
767 if (!ni)
768 return -ENOMEM;
769
770 /* num_sources cannot be <= 0 */
771 if (ee->num_sources) {
772 num_sources = ee->num_sources;
773 } else {
774 int nsrc = ee->ops->get_num_sources(ph);
775
776 if (nsrc <= 0)
777 return -EINVAL;
778 num_sources = nsrc;
779 }
780
781 evt = ee->evts;
782 for (i = 0; i < ee->num_events; i++)
783 payld_sz = max_t(size_t, payld_sz, evt[i].max_payld_sz);
784 payld_sz += sizeof(struct scmi_event_header);
785
786 pd = scmi_allocate_registered_events_desc(ni, proto_id, ee->queue_sz,
787 payld_sz, ee->num_events,
788 ee->ops);
789 if (IS_ERR(pd))
790 return PTR_ERR(pd);
791
792 pd->ph = ph;
793 for (i = 0; i < ee->num_events; i++, evt++) {
794 int id;
795 struct scmi_registered_event *r_evt;
796
797 r_evt = devm_kzalloc(ni->handle->dev,
798 struct_size(r_evt, sources, num_sources),
799 GFP_KERNEL);
800 if (!r_evt)
801 return -ENOMEM;
802
803 r_evt->num_sources = num_sources;
804 r_evt->proto = pd;
805 r_evt->evt = evt;
806
807 mutex_init(&r_evt->sources_mtx);
808
809 r_evt->report = devm_kzalloc(ni->handle->dev,
810 evt->max_report_sz, GFP_KERNEL);
811 if (!r_evt->report)
812 return -ENOMEM;
813
814 if (ee->ops->is_notify_supported) {
815 int supported = 0;
816
817 for (id = 0; id < r_evt->num_sources; id++) {
818 if (!ee->ops->is_notify_supported(ph, r_evt->evt->id, id))
819 refcount_set(&r_evt->sources[id], NOTIF_UNSUPP);
820 else
821 supported++;
822 }
823
824 /* Not even one source has been found to be supported */
825 r_evt->not_supported_by_platform = !supported;
826 }
827
828 pd->registered_events[i] = r_evt;
829 /* Ensure events are updated */
830 smp_wmb();
831 dev_dbg(handle->dev, "registered event - %lX\n",
832 MAKE_ALL_SRCS_KEY(r_evt->proto->id, r_evt->evt->id));
833 }
834
835 /* Register protocol and events...it will never be removed */
836 ni->registered_protocols[proto_id] = pd;
837 /* Ensure protocols are updated */
838 smp_wmb();
839
840 /*
841 * Finalize any pending events' handler which could have been waiting
842 * for this protocol's events registration.
843 */
844 schedule_work(&ni->init_work);
845
846 return 0;
847 }
848
849 /**
850 * scmi_deregister_protocol_events - Deregister protocol events with the core
851 * @handle: The handle identifying the platform instance against which the
852 * protocol's events are registered
853 * @proto_id: Protocol ID
854 */
scmi_deregister_protocol_events(const struct scmi_handle * handle,u8 proto_id)855 void scmi_deregister_protocol_events(const struct scmi_handle *handle,
856 u8 proto_id)
857 {
858 struct scmi_notify_instance *ni;
859 struct scmi_registered_events_desc *pd;
860
861 ni = scmi_notification_instance_data_get(handle);
862 if (!ni)
863 return;
864
865 pd = ni->registered_protocols[proto_id];
866 if (!pd)
867 return;
868
869 ni->registered_protocols[proto_id] = NULL;
870 /* Ensure protocols are updated */
871 smp_wmb();
872
873 cancel_work_sync(&pd->equeue.notify_work);
874 }
875
876 /**
877 * scmi_allocate_event_handler() - Allocate Event handler
878 * @ni: A reference to the notification instance to use
879 * @evt_key: 32bit key uniquely bind to the event identified by the tuple
880 * (proto_id, evt_id, src_id)
881 *
882 * Allocate an event handler and related notification chain associated with
883 * the provided event handler key.
884 * Note that, at this point, a related registered_event is still to be
885 * associated to this handler descriptor (hndl->r_evt == NULL), so the handler
886 * is initialized as pending.
887 *
888 * Context: Assumes to be called with @pending_mtx already acquired.
889 * Return: the freshly allocated structure on Success
890 */
891 static struct scmi_event_handler *
scmi_allocate_event_handler(struct scmi_notify_instance * ni,u32 evt_key)892 scmi_allocate_event_handler(struct scmi_notify_instance *ni, u32 evt_key)
893 {
894 struct scmi_event_handler *hndl;
895
896 hndl = kzalloc_obj(*hndl);
897 if (!hndl)
898 return NULL;
899 hndl->key = evt_key;
900 BLOCKING_INIT_NOTIFIER_HEAD(&hndl->chain);
901 refcount_set(&hndl->users, 1);
902 /* New handlers are created pending */
903 hash_add(ni->pending_events_handlers, &hndl->hash, hndl->key);
904
905 return hndl;
906 }
907
908 /**
909 * scmi_free_event_handler() - Free the provided Event handler
910 * @hndl: The event handler structure to free
911 *
912 * Context: Assumes to be called with proper locking acquired depending
913 * on the situation.
914 */
scmi_free_event_handler(struct scmi_event_handler * hndl)915 static void scmi_free_event_handler(struct scmi_event_handler *hndl)
916 {
917 hash_del(&hndl->hash);
918 kfree(hndl);
919 }
920
921 /**
922 * scmi_bind_event_handler() - Helper to attempt binding an handler to an event
923 * @ni: A reference to the notification instance to use
924 * @hndl: The event handler to bind
925 *
926 * If an associated registered event is found, move the handler from the pending
927 * into the registered table.
928 *
929 * Context: Assumes to be called with @pending_mtx already acquired.
930 *
931 * Return: 0 on Success
932 */
scmi_bind_event_handler(struct scmi_notify_instance * ni,struct scmi_event_handler * hndl)933 static inline int scmi_bind_event_handler(struct scmi_notify_instance *ni,
934 struct scmi_event_handler *hndl)
935 {
936 struct scmi_registered_event *r_evt;
937
938 r_evt = SCMI_GET_REVT(ni, KEY_XTRACT_PROTO_ID(hndl->key),
939 KEY_XTRACT_EVT_ID(hndl->key));
940 if (!r_evt)
941 return -EINVAL;
942
943 /*
944 * Remove from pending and insert into registered while getting hold
945 * of protocol instance.
946 */
947 hash_del(&hndl->hash);
948
949 /* Bailout if event is not supported at all */
950 if (r_evt->not_supported_by_platform)
951 return -EOPNOTSUPP;
952
953 /*
954 * Acquire protocols only for NON pending handlers, so as NOT to trigger
955 * protocol initialization when a notifier is registered against a still
956 * not registered protocol, since it would make little sense to force init
957 * protocols for which still no SCMI driver user exists: they wouldn't
958 * emit any event anyway till some SCMI driver starts using it.
959 */
960 scmi_protocol_acquire(ni->handle, KEY_XTRACT_PROTO_ID(hndl->key));
961 hndl->r_evt = r_evt;
962
963 mutex_lock(&r_evt->proto->registered_mtx);
964 hash_add(r_evt->proto->registered_events_handlers,
965 &hndl->hash, hndl->key);
966 mutex_unlock(&r_evt->proto->registered_mtx);
967
968 return 0;
969 }
970
971 /**
972 * scmi_valid_pending_handler() - Helper to check pending status of handlers
973 * @ni: A reference to the notification instance to use
974 * @hndl: The event handler to check
975 *
976 * An handler is considered pending when its r_evt == NULL, because the related
977 * event was still unknown at handler's registration time; anyway, since all
978 * protocols register their supported events once for all at protocols'
979 * initialization time, a pending handler cannot be considered valid anymore if
980 * the underlying event (which it is waiting for), belongs to an already
981 * initialized and registered protocol.
982 *
983 * Return: 0 on Success
984 */
scmi_valid_pending_handler(struct scmi_notify_instance * ni,struct scmi_event_handler * hndl)985 static inline int scmi_valid_pending_handler(struct scmi_notify_instance *ni,
986 struct scmi_event_handler *hndl)
987 {
988 struct scmi_registered_events_desc *pd;
989
990 if (!IS_HNDL_PENDING(hndl))
991 return -EINVAL;
992
993 pd = SCMI_GET_PROTO(ni, KEY_XTRACT_PROTO_ID(hndl->key));
994 if (pd)
995 return -EINVAL;
996
997 return 0;
998 }
999
1000 /**
1001 * scmi_register_event_handler() - Register whenever possible an Event handler
1002 * @ni: A reference to the notification instance to use
1003 * @hndl: The event handler to register
1004 *
1005 * At first try to bind an event handler to its associated event, then check if
1006 * it was at least a valid pending handler: if it was not bound nor valid return
1007 * false.
1008 *
1009 * Valid pending incomplete bindings will be periodically retried by a dedicated
1010 * worker which is kicked each time a new protocol completes its own
1011 * registration phase.
1012 *
1013 * Context: Assumes to be called with @pending_mtx acquired.
1014 *
1015 * Return: 0 on Success
1016 */
scmi_register_event_handler(struct scmi_notify_instance * ni,struct scmi_event_handler * hndl)1017 static int scmi_register_event_handler(struct scmi_notify_instance *ni,
1018 struct scmi_event_handler *hndl)
1019 {
1020 int ret;
1021
1022 ret = scmi_bind_event_handler(ni, hndl);
1023 if (!ret) {
1024 dev_dbg(ni->handle->dev, "registered NEW handler - key:%X\n",
1025 hndl->key);
1026 } else {
1027 ret = scmi_valid_pending_handler(ni, hndl);
1028 if (!ret)
1029 dev_dbg(ni->handle->dev,
1030 "registered PENDING handler - key:%X\n",
1031 hndl->key);
1032 }
1033
1034 return ret;
1035 }
1036
1037 /**
1038 * __scmi_event_handler_get_ops() - Utility to get or create an event handler
1039 * @ni: A reference to the notification instance to use
1040 * @evt_key: The event key to use
1041 * @create: A boolean flag to specify if a handler must be created when
1042 * not already existent
1043 *
1044 * Search for the desired handler matching the key in both the per-protocol
1045 * registered table and the common pending table:
1046 * * if found adjust users refcount
1047 * * if not found and @create is true, create and register the new handler:
1048 * handler could end up being registered as pending if no matching event
1049 * could be found.
1050 *
1051 * An handler is guaranteed to reside in one and only one of the tables at
1052 * any one time; to ensure this the whole search and create is performed
1053 * holding the @pending_mtx lock, with @registered_mtx additionally acquired
1054 * if needed.
1055 *
1056 * Note that when a nested acquisition of these mutexes is needed the locking
1057 * order is always (same as in @init_work):
1058 * 1. pending_mtx
1059 * 2. registered_mtx
1060 *
1061 * Events generation is NOT enabled right after creation within this routine
1062 * since at creation time we usually want to have all setup and ready before
1063 * events really start flowing.
1064 *
1065 * Return: A properly refcounted handler on Success, ERR_PTR on Failure
1066 */
1067 static inline struct scmi_event_handler *
__scmi_event_handler_get_ops(struct scmi_notify_instance * ni,u32 evt_key,bool create)1068 __scmi_event_handler_get_ops(struct scmi_notify_instance *ni,
1069 u32 evt_key, bool create)
1070 {
1071 struct scmi_registered_event *r_evt;
1072 struct scmi_event_handler *hndl = NULL;
1073
1074 r_evt = SCMI_GET_REVT(ni, KEY_XTRACT_PROTO_ID(evt_key),
1075 KEY_XTRACT_EVT_ID(evt_key));
1076
1077 if (r_evt && r_evt->not_supported_by_platform)
1078 return ERR_PTR(-EOPNOTSUPP);
1079
1080 mutex_lock(&ni->pending_mtx);
1081 /* Search registered events at first ... if possible at all */
1082 if (r_evt) {
1083 mutex_lock(&r_evt->proto->registered_mtx);
1084 hndl = KEY_FIND(r_evt->proto->registered_events_handlers,
1085 hndl, evt_key);
1086 if (hndl)
1087 refcount_inc(&hndl->users);
1088 mutex_unlock(&r_evt->proto->registered_mtx);
1089 }
1090
1091 /* ...then amongst pending. */
1092 if (!hndl) {
1093 hndl = KEY_FIND(ni->pending_events_handlers, hndl, evt_key);
1094 if (hndl)
1095 refcount_inc(&hndl->users);
1096 }
1097
1098 /* Create if still not found and required */
1099 if (!hndl && create) {
1100 hndl = scmi_allocate_event_handler(ni, evt_key);
1101 if (hndl && scmi_register_event_handler(ni, hndl)) {
1102 dev_dbg(ni->handle->dev,
1103 "purging UNKNOWN handler - key:%X\n",
1104 hndl->key);
1105 /* this hndl can be only a pending one */
1106 scmi_put_handler_unlocked(ni, hndl);
1107 hndl = ERR_PTR(-EINVAL);
1108 }
1109 }
1110 mutex_unlock(&ni->pending_mtx);
1111
1112 return hndl ?: ERR_PTR(-ENODEV);
1113 }
1114
1115 static struct scmi_event_handler *
scmi_get_handler(struct scmi_notify_instance * ni,u32 evt_key)1116 scmi_get_handler(struct scmi_notify_instance *ni, u32 evt_key)
1117 {
1118 return __scmi_event_handler_get_ops(ni, evt_key, false);
1119 }
1120
1121 static struct scmi_event_handler *
scmi_get_or_create_handler(struct scmi_notify_instance * ni,u32 evt_key)1122 scmi_get_or_create_handler(struct scmi_notify_instance *ni, u32 evt_key)
1123 {
1124 return __scmi_event_handler_get_ops(ni, evt_key, true);
1125 }
1126
1127 /**
1128 * scmi_get_active_handler() - Helper to get active handlers only
1129 * @ni: A reference to the notification instance to use
1130 * @evt_key: The event key to use
1131 *
1132 * Search for the desired handler matching the key only in the per-protocol
1133 * table of registered handlers: this is called only from the dispatching path
1134 * so want to be as quick as possible and do not care about pending.
1135 *
1136 * Return: A properly refcounted active handler
1137 */
1138 static struct scmi_event_handler *
scmi_get_active_handler(struct scmi_notify_instance * ni,u32 evt_key)1139 scmi_get_active_handler(struct scmi_notify_instance *ni, u32 evt_key)
1140 {
1141 struct scmi_registered_event *r_evt;
1142 struct scmi_event_handler *hndl = NULL;
1143
1144 r_evt = SCMI_GET_REVT(ni, KEY_XTRACT_PROTO_ID(evt_key),
1145 KEY_XTRACT_EVT_ID(evt_key));
1146 if (r_evt) {
1147 mutex_lock(&r_evt->proto->registered_mtx);
1148 hndl = KEY_FIND(r_evt->proto->registered_events_handlers,
1149 hndl, evt_key);
1150 if (hndl)
1151 refcount_inc(&hndl->users);
1152 mutex_unlock(&r_evt->proto->registered_mtx);
1153 }
1154
1155 return hndl;
1156 }
1157
1158 /**
1159 * __scmi_enable_evt() - Enable/disable events generation
1160 * @r_evt: The registered event to act upon
1161 * @src_id: The src_id to act upon
1162 * @enable: The action to perform: true->Enable, false->Disable
1163 *
1164 * Takes care of proper refcounting while performing enable/disable: handles
1165 * the special case of ALL sources requests by itself.
1166 * Returns successfully if at least one of the required src_id has been
1167 * successfully enabled/disabled.
1168 *
1169 * Return: 0 on Success
1170 */
__scmi_enable_evt(struct scmi_registered_event * r_evt,u32 src_id,bool enable)1171 static inline int __scmi_enable_evt(struct scmi_registered_event *r_evt,
1172 u32 src_id, bool enable)
1173 {
1174 int retvals = 0;
1175 u32 num_sources;
1176 refcount_t *sid;
1177
1178 if (src_id == SRC_ID_MASK) {
1179 src_id = 0;
1180 num_sources = r_evt->num_sources;
1181 } else if (src_id < r_evt->num_sources) {
1182 num_sources = 1;
1183 } else {
1184 return -EINVAL;
1185 }
1186
1187 mutex_lock(&r_evt->sources_mtx);
1188 if (enable) {
1189 for (; num_sources; src_id++, num_sources--) {
1190 int ret = 0;
1191
1192 sid = &r_evt->sources[src_id];
1193 if (refcount_read(sid) == NOTIF_UNSUPP) {
1194 dev_dbg(r_evt->proto->ph->dev,
1195 "Notification NOT supported - proto_id:%d evt_id:%d src_id:%d",
1196 r_evt->proto->id, r_evt->evt->id,
1197 src_id);
1198 ret = -EOPNOTSUPP;
1199 } else if (refcount_read(sid) == 0) {
1200 ret = REVT_NOTIFY_ENABLE(r_evt, r_evt->evt->id,
1201 src_id);
1202 if (!ret)
1203 refcount_set(sid, 1);
1204 } else {
1205 refcount_inc(sid);
1206 }
1207 retvals += !ret;
1208 }
1209 } else {
1210 for (; num_sources; src_id++, num_sources--) {
1211 sid = &r_evt->sources[src_id];
1212 if (refcount_read(sid) == NOTIF_UNSUPP)
1213 continue;
1214 if (refcount_dec_and_test(sid))
1215 REVT_NOTIFY_DISABLE(r_evt,
1216 r_evt->evt->id, src_id);
1217 }
1218 retvals = 1;
1219 }
1220 mutex_unlock(&r_evt->sources_mtx);
1221
1222 return retvals ? 0 : -EINVAL;
1223 }
1224
scmi_enable_events(struct scmi_event_handler * hndl)1225 static int scmi_enable_events(struct scmi_event_handler *hndl)
1226 {
1227 int ret = 0;
1228
1229 if (!hndl->enabled) {
1230 ret = __scmi_enable_evt(hndl->r_evt,
1231 KEY_XTRACT_SRC_ID(hndl->key), true);
1232 if (!ret)
1233 hndl->enabled = true;
1234 }
1235
1236 return ret;
1237 }
1238
scmi_disable_events(struct scmi_event_handler * hndl)1239 static int scmi_disable_events(struct scmi_event_handler *hndl)
1240 {
1241 int ret = 0;
1242
1243 if (hndl->enabled) {
1244 ret = __scmi_enable_evt(hndl->r_evt,
1245 KEY_XTRACT_SRC_ID(hndl->key), false);
1246 if (!ret)
1247 hndl->enabled = false;
1248 }
1249
1250 return ret;
1251 }
1252
1253 /**
1254 * scmi_put_handler_unlocked() - Put an event handler
1255 * @ni: A reference to the notification instance to use
1256 * @hndl: The event handler to act upon
1257 *
1258 * After having got exclusive access to the registered handlers hashtable,
1259 * update the refcount and if @hndl is no more in use by anyone:
1260 * * ask for events' generation disabling
1261 * * unregister and free the handler itself
1262 *
1263 * Context: Assumes all the proper locking has been managed by the caller.
1264 *
1265 * Return: True if handler was freed (users dropped to zero)
1266 */
scmi_put_handler_unlocked(struct scmi_notify_instance * ni,struct scmi_event_handler * hndl)1267 static bool scmi_put_handler_unlocked(struct scmi_notify_instance *ni,
1268 struct scmi_event_handler *hndl)
1269 {
1270 bool freed = false;
1271
1272 if (refcount_dec_and_test(&hndl->users)) {
1273 if (!IS_HNDL_PENDING(hndl))
1274 scmi_disable_events(hndl);
1275 scmi_free_event_handler(hndl);
1276 freed = true;
1277 }
1278
1279 return freed;
1280 }
1281
scmi_put_handler(struct scmi_notify_instance * ni,struct scmi_event_handler * hndl)1282 static void scmi_put_handler(struct scmi_notify_instance *ni,
1283 struct scmi_event_handler *hndl)
1284 {
1285 bool freed;
1286 u8 protocol_id;
1287 struct scmi_registered_event *r_evt = hndl->r_evt;
1288
1289 mutex_lock(&ni->pending_mtx);
1290 if (r_evt) {
1291 protocol_id = r_evt->proto->id;
1292 mutex_lock(&r_evt->proto->registered_mtx);
1293 }
1294
1295 freed = scmi_put_handler_unlocked(ni, hndl);
1296
1297 if (r_evt) {
1298 mutex_unlock(&r_evt->proto->registered_mtx);
1299 /*
1300 * Only registered handler acquired protocol; must be here
1301 * released only AFTER unlocking registered_mtx, since
1302 * releasing a protocol can trigger its de-initialization
1303 * (ie. including r_evt and registered_mtx)
1304 */
1305 if (freed)
1306 scmi_protocol_release(ni->handle, protocol_id);
1307 }
1308 mutex_unlock(&ni->pending_mtx);
1309 }
1310
scmi_put_active_handler(struct scmi_notify_instance * ni,struct scmi_event_handler * hndl)1311 static void scmi_put_active_handler(struct scmi_notify_instance *ni,
1312 struct scmi_event_handler *hndl)
1313 {
1314 bool freed;
1315 struct scmi_registered_event *r_evt = hndl->r_evt;
1316 u8 protocol_id = r_evt->proto->id;
1317
1318 mutex_lock(&r_evt->proto->registered_mtx);
1319 freed = scmi_put_handler_unlocked(ni, hndl);
1320 mutex_unlock(&r_evt->proto->registered_mtx);
1321 if (freed)
1322 scmi_protocol_release(ni->handle, protocol_id);
1323 }
1324
1325 /**
1326 * scmi_event_handler_enable_events() - Enable events associated to an handler
1327 * @hndl: The Event handler to act upon
1328 *
1329 * Return: 0 on Success
1330 */
scmi_event_handler_enable_events(struct scmi_event_handler * hndl)1331 static int scmi_event_handler_enable_events(struct scmi_event_handler *hndl)
1332 {
1333 if (scmi_enable_events(hndl)) {
1334 pr_err("Failed to ENABLE events for key:%X !\n", hndl->key);
1335 return -EINVAL;
1336 }
1337
1338 return 0;
1339 }
1340
1341 /**
1342 * scmi_notifier_register() - Register a notifier_block for an event
1343 * @handle: The handle identifying the platform instance against which the
1344 * callback is registered
1345 * @proto_id: Protocol ID
1346 * @evt_id: Event ID
1347 * @src_id: Source ID, when NULL register for events coming form ALL possible
1348 * sources
1349 * @nb: A standard notifier block to register for the specified event
1350 *
1351 * Generic helper to register a notifier_block against a protocol event.
1352 *
1353 * A notifier_block @nb will be registered for each distinct event identified
1354 * by the tuple (proto_id, evt_id, src_id) on a dedicated notification chain
1355 * so that:
1356 *
1357 * (proto_X, evt_Y, src_Z) --> chain_X_Y_Z
1358 *
1359 * @src_id meaning is protocol specific and identifies the origin of the event
1360 * (like domain_id, sensor_id and so forth).
1361 *
1362 * @src_id can be NULL to signify that the caller is interested in receiving
1363 * notifications from ALL the available sources for that protocol OR simply that
1364 * the protocol does not support distinct sources.
1365 *
1366 * As soon as one user for the specified tuple appears, an handler is created,
1367 * and that specific event's generation is enabled at the platform level, unless
1368 * an associated registered event is found missing, meaning that the needed
1369 * protocol is still to be initialized and the handler has just been registered
1370 * as still pending.
1371 *
1372 * Return: 0 on Success
1373 */
scmi_notifier_register(const struct scmi_handle * handle,u8 proto_id,u8 evt_id,const u32 * src_id,struct notifier_block * nb)1374 static int scmi_notifier_register(const struct scmi_handle *handle,
1375 u8 proto_id, u8 evt_id, const u32 *src_id,
1376 struct notifier_block *nb)
1377 {
1378 int ret = 0;
1379 u32 evt_key;
1380 struct scmi_event_handler *hndl;
1381 struct scmi_notify_instance *ni;
1382
1383 ni = scmi_notification_instance_data_get(handle);
1384 if (!ni)
1385 return -ENODEV;
1386
1387 evt_key = MAKE_HASH_KEY(proto_id, evt_id,
1388 src_id ? *src_id : SRC_ID_MASK);
1389 hndl = scmi_get_or_create_handler(ni, evt_key);
1390 if (IS_ERR(hndl))
1391 return PTR_ERR(hndl);
1392
1393 blocking_notifier_chain_register(&hndl->chain, nb);
1394
1395 /* Enable events for not pending handlers */
1396 if (!IS_HNDL_PENDING(hndl)) {
1397 ret = scmi_event_handler_enable_events(hndl);
1398 if (ret)
1399 scmi_put_handler(ni, hndl);
1400 }
1401
1402 return ret;
1403 }
1404
1405 /**
1406 * scmi_notifier_unregister() - Unregister a notifier_block for an event
1407 * @handle: The handle identifying the platform instance against which the
1408 * callback is unregistered
1409 * @proto_id: Protocol ID
1410 * @evt_id: Event ID
1411 * @src_id: Source ID
1412 * @nb: The notifier_block to unregister
1413 *
1414 * Takes care to unregister the provided @nb from the notification chain
1415 * associated to the specified event and, if there are no more users for the
1416 * event handler, frees also the associated event handler structures.
1417 * (this could possibly cause disabling of event's generation at platform level)
1418 *
1419 * Return: 0 on Success
1420 */
scmi_notifier_unregister(const struct scmi_handle * handle,u8 proto_id,u8 evt_id,const u32 * src_id,struct notifier_block * nb)1421 static int scmi_notifier_unregister(const struct scmi_handle *handle,
1422 u8 proto_id, u8 evt_id, const u32 *src_id,
1423 struct notifier_block *nb)
1424 {
1425 u32 evt_key;
1426 struct scmi_event_handler *hndl;
1427 struct scmi_notify_instance *ni;
1428
1429 ni = scmi_notification_instance_data_get(handle);
1430 if (!ni)
1431 return -ENODEV;
1432
1433 evt_key = MAKE_HASH_KEY(proto_id, evt_id,
1434 src_id ? *src_id : SRC_ID_MASK);
1435 hndl = scmi_get_handler(ni, evt_key);
1436 if (IS_ERR(hndl))
1437 return PTR_ERR(hndl);
1438
1439 /*
1440 * Note that this chain unregistration call is safe on its own
1441 * being internally protected by an rwsem.
1442 */
1443 blocking_notifier_chain_unregister(&hndl->chain, nb);
1444 scmi_put_handler(ni, hndl);
1445
1446 /*
1447 * This balances the initial get issued in @scmi_notifier_register.
1448 * If this notifier_block happened to be the last known user callback
1449 * for this event, the handler is here freed and the event's generation
1450 * stopped.
1451 *
1452 * Note that, an ongoing concurrent lookup on the delivery workqueue
1453 * path could still hold the refcount to 1 even after this routine
1454 * completes: in such a case it will be the final put on the delivery
1455 * path which will finally free this unused handler.
1456 */
1457 scmi_put_handler(ni, hndl);
1458
1459 return 0;
1460 }
1461
1462 struct scmi_notifier_devres {
1463 const struct scmi_handle *handle;
1464 u8 proto_id;
1465 u8 evt_id;
1466 u32 __src_id;
1467 u32 *src_id;
1468 struct notifier_block *nb;
1469 };
1470
scmi_devm_release_notifier(struct device * dev,void * res)1471 static void scmi_devm_release_notifier(struct device *dev, void *res)
1472 {
1473 struct scmi_notifier_devres *dres = res;
1474
1475 scmi_notifier_unregister(dres->handle, dres->proto_id, dres->evt_id,
1476 dres->src_id, dres->nb);
1477 }
1478
1479 /**
1480 * scmi_devm_notifier_register() - Managed registration of a notifier_block
1481 * for an event
1482 * @sdev: A reference to an scmi_device whose embedded struct device is to
1483 * be used for devres accounting.
1484 * @proto_id: Protocol ID
1485 * @evt_id: Event ID
1486 * @src_id: Source ID, when NULL register for events coming form ALL possible
1487 * sources
1488 * @nb: A standard notifier block to register for the specified event
1489 *
1490 * Generic devres managed helper to register a notifier_block against a
1491 * protocol event.
1492 *
1493 * Return: 0 on Success
1494 */
scmi_devm_notifier_register(struct scmi_device * sdev,u8 proto_id,u8 evt_id,const u32 * src_id,struct notifier_block * nb)1495 static int scmi_devm_notifier_register(struct scmi_device *sdev,
1496 u8 proto_id, u8 evt_id,
1497 const u32 *src_id,
1498 struct notifier_block *nb)
1499 {
1500 int ret;
1501 struct scmi_notifier_devres *dres;
1502
1503 dres = devres_alloc(scmi_devm_release_notifier,
1504 sizeof(*dres), GFP_KERNEL);
1505 if (!dres)
1506 return -ENOMEM;
1507
1508 ret = scmi_notifier_register(sdev->handle, proto_id,
1509 evt_id, src_id, nb);
1510 if (ret) {
1511 devres_free(dres);
1512 return ret;
1513 }
1514
1515 dres->handle = sdev->handle;
1516 dres->proto_id = proto_id;
1517 dres->evt_id = evt_id;
1518 dres->nb = nb;
1519 if (src_id) {
1520 dres->__src_id = *src_id;
1521 dres->src_id = &dres->__src_id;
1522 } else {
1523 dres->src_id = NULL;
1524 }
1525 devres_add(&sdev->dev, dres);
1526
1527 return ret;
1528 }
1529
scmi_devm_notifier_match(struct device * dev,void * res,void * data)1530 static int scmi_devm_notifier_match(struct device *dev, void *res, void *data)
1531 {
1532 struct scmi_notifier_devres *dres = res;
1533 struct notifier_block *nb = data;
1534
1535 if (WARN_ON(!dres || !nb))
1536 return 0;
1537
1538 return dres->nb == nb;
1539 }
1540
1541 /**
1542 * scmi_devm_notifier_unregister() - Managed un-registration of a
1543 * notifier_block for an event
1544 * @sdev: A reference to an scmi_device whose embedded struct device is to
1545 * be used for devres accounting.
1546 * @nb: A standard notifier block to register for the specified event
1547 *
1548 * Generic devres managed helper to explicitly un-register a notifier_block
1549 * against a protocol event, which was previously registered using the above
1550 * @scmi_devm_notifier_register.
1551 *
1552 * Return: 0 on Success
1553 */
scmi_devm_notifier_unregister(struct scmi_device * sdev,struct notifier_block * nb)1554 static int scmi_devm_notifier_unregister(struct scmi_device *sdev,
1555 struct notifier_block *nb)
1556 {
1557 int ret;
1558
1559 ret = devres_release(&sdev->dev, scmi_devm_release_notifier,
1560 scmi_devm_notifier_match, nb);
1561
1562 WARN_ON(ret);
1563
1564 return ret;
1565 }
1566
1567 /**
1568 * scmi_protocols_late_init() - Worker for late initialization
1569 * @work: The work item to use associated to the proper SCMI instance
1570 *
1571 * This kicks in whenever a new protocol has completed its own registration via
1572 * scmi_register_protocol_events(): it is in charge of scanning the table of
1573 * pending handlers (registered by users while the related protocol was still
1574 * not initialized) and finalizing their initialization whenever possible;
1575 * invalid pending handlers are purged at this point in time.
1576 */
scmi_protocols_late_init(struct work_struct * work)1577 static void scmi_protocols_late_init(struct work_struct *work)
1578 {
1579 int bkt;
1580 struct scmi_event_handler *hndl;
1581 struct scmi_notify_instance *ni;
1582 struct hlist_node *tmp;
1583
1584 ni = container_of(work, struct scmi_notify_instance, init_work);
1585
1586 /* Ensure protocols and events are up to date */
1587 smp_rmb();
1588
1589 mutex_lock(&ni->pending_mtx);
1590 hash_for_each_safe(ni->pending_events_handlers, bkt, tmp, hndl, hash) {
1591 int ret;
1592
1593 ret = scmi_bind_event_handler(ni, hndl);
1594 if (!ret) {
1595 dev_dbg(ni->handle->dev,
1596 "finalized PENDING handler - key:%X\n",
1597 hndl->key);
1598 ret = scmi_event_handler_enable_events(hndl);
1599 if (ret) {
1600 dev_dbg(ni->handle->dev,
1601 "purging INVALID handler - key:%X\n",
1602 hndl->key);
1603 scmi_put_active_handler(ni, hndl);
1604 }
1605 } else {
1606 ret = scmi_valid_pending_handler(ni, hndl);
1607 if (ret) {
1608 dev_dbg(ni->handle->dev,
1609 "purging PENDING handler - key:%X\n",
1610 hndl->key);
1611 /* this hndl can be only a pending one */
1612 scmi_put_handler_unlocked(ni, hndl);
1613 }
1614 }
1615 }
1616 mutex_unlock(&ni->pending_mtx);
1617 }
1618
1619 /*
1620 * notify_ops are attached to the handle so that can be accessed
1621 * directly from an scmi_driver to register its own notifiers.
1622 */
1623 static const struct scmi_notify_ops notify_ops = {
1624 .devm_event_notifier_register = scmi_devm_notifier_register,
1625 .devm_event_notifier_unregister = scmi_devm_notifier_unregister,
1626 .event_notifier_register = scmi_notifier_register,
1627 .event_notifier_unregister = scmi_notifier_unregister,
1628 };
1629
1630 /**
1631 * scmi_notification_init() - Initializes Notification Core Support
1632 * @handle: The handle identifying the platform instance to initialize
1633 *
1634 * This function lays out all the basic resources needed by the notification
1635 * core instance identified by the provided handle: once done, all of the
1636 * SCMI Protocols can register their events with the core during their own
1637 * initializations.
1638 *
1639 * Note that failing to initialize the core notifications support does not
1640 * cause the whole SCMI Protocols stack to fail its initialization.
1641 *
1642 * SCMI Notification Initialization happens in 2 steps:
1643 * * initialization: basic common allocations (this function)
1644 * * registration: protocols asynchronously come into life and registers their
1645 * own supported list of events with the core; this causes
1646 * further per-protocol allocations
1647 *
1648 * Any user's callback registration attempt, referring a still not registered
1649 * event, will be registered as pending and finalized later (if possible)
1650 * by scmi_protocols_late_init() work.
1651 * This allows for lazy initialization of SCMI Protocols due to late (or
1652 * missing) SCMI drivers' modules loading.
1653 *
1654 * Return: 0 on Success
1655 */
scmi_notification_init(struct scmi_handle * handle)1656 int scmi_notification_init(struct scmi_handle *handle)
1657 {
1658 void *gid;
1659 struct scmi_notify_instance *ni;
1660
1661 gid = devres_open_group(handle->dev, NULL, GFP_KERNEL);
1662 if (!gid)
1663 return -ENOMEM;
1664
1665 ni = devm_kzalloc(handle->dev, sizeof(*ni), GFP_KERNEL);
1666 if (!ni)
1667 goto err;
1668
1669 ni->gid = gid;
1670 ni->handle = handle;
1671
1672 ni->notify_wq = alloc_workqueue(dev_name(handle->dev),
1673 WQ_UNBOUND | WQ_FREEZABLE | WQ_SYSFS,
1674 0);
1675 if (!ni->notify_wq)
1676 goto err;
1677
1678 mutex_init(&ni->pending_mtx);
1679 hash_init(ni->pending_events_handlers);
1680
1681 INIT_WORK(&ni->init_work, scmi_protocols_late_init);
1682
1683 scmi_notification_instance_data_set(handle, ni);
1684 handle->notify_ops = ¬ify_ops;
1685 /* Ensure handle is up to date */
1686 smp_wmb();
1687
1688 dev_info(handle->dev, "Core Enabled.\n");
1689
1690 devres_close_group(handle->dev, ni->gid);
1691
1692 return 0;
1693
1694 err:
1695 dev_warn(handle->dev, "Initialization Failed.\n");
1696 devres_release_group(handle->dev, gid);
1697 return -ENOMEM;
1698 }
1699
1700 /**
1701 * scmi_notification_quiesce() - Stop notification late initialization
1702 * @handle: The handle identifying the platform instance to quiesce
1703 *
1704 * Prevent new late-init work from being queued and wait for any already queued
1705 * or running late-init work to complete before transport channels are torn
1706 * down.
1707 */
scmi_notification_quiesce(struct scmi_handle * handle)1708 void scmi_notification_quiesce(struct scmi_handle *handle)
1709 {
1710 struct scmi_notify_instance *ni;
1711
1712 ni = scmi_notification_instance_data_get(handle);
1713 if (!ni)
1714 return;
1715
1716 disable_work_sync(&ni->init_work);
1717 }
1718
1719 /**
1720 * scmi_notification_exit() - Shutdown and clean Notification core
1721 * @handle: The handle identifying the platform instance to shutdown
1722 */
scmi_notification_exit(struct scmi_handle * handle)1723 void scmi_notification_exit(struct scmi_handle *handle)
1724 {
1725 struct scmi_notify_instance *ni;
1726
1727 ni = scmi_notification_instance_data_get(handle);
1728 if (!ni)
1729 return;
1730
1731 scmi_notification_quiesce(handle);
1732 scmi_notification_instance_data_set(handle, NULL);
1733
1734 /* Destroy while letting pending work complete */
1735 destroy_workqueue(ni->notify_wq);
1736
1737 devres_release_group(ni->handle->dev, ni->gid);
1738 }
1739