1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (c) 2012, The Linux Foundation. All rights reserved.
4 */
5
6 #include <linux/acpi.h>
7 #include <linux/bitfield.h>
8 #include <linux/build_bug.h>
9 #include <linux/kernel.h>
10 #include <linux/init.h>
11 #include <linux/types.h>
12 #include <linux/device.h>
13 #include <linux/io.h>
14 #include <linux/err.h>
15 #include <linux/export.h>
16 #include <linux/slab.h>
17 #include <linux/stringhash.h>
18 #include <linux/mutex.h>
19 #include <linux/clk.h>
20 #include <linux/coresight.h>
21 #include <linux/property.h>
22 #include <linux/delay.h>
23 #include <linux/pm_runtime.h>
24 #include <linux/panic_notifier.h>
25
26 #include "coresight-etm-perf.h"
27 #include "coresight-priv.h"
28 #include "coresight-syscfg.h"
29 #include "coresight-trace-id.h"
30
31 /*
32 * Mutex used to lock all sysfs enable and disable actions and loading and
33 * unloading devices by the Coresight core.
34 */
35 DEFINE_MUTEX(coresight_mutex);
36 static DEFINE_PER_CPU(struct coresight_device *, csdev_sink);
37
38 /**
39 * struct coresight_node - elements of a path, from source to sink
40 * @csdev: Address of an element.
41 * @link: hook to the list.
42 */
43 struct coresight_node {
44 struct coresight_device *csdev;
45 struct list_head link;
46 };
47
48 /*
49 * When losing synchronisation a new barrier packet needs to be inserted at the
50 * beginning of the data collected in a buffer. That way the decoder knows that
51 * it needs to look for another sync sequence.
52 */
53 const u32 coresight_barrier_pkt[4] = {0x7fffffff, 0x7fffffff, 0x7fffffff, 0x7fffffff};
54 EXPORT_SYMBOL_GPL(coresight_barrier_pkt);
55
56 static const struct cti_assoc_op *cti_assoc_ops;
57
coresight_set_cti_ops(const struct cti_assoc_op * cti_op)58 void coresight_set_cti_ops(const struct cti_assoc_op *cti_op)
59 {
60 cti_assoc_ops = cti_op;
61 }
62 EXPORT_SYMBOL_GPL(coresight_set_cti_ops);
63
coresight_remove_cti_ops(void)64 void coresight_remove_cti_ops(void)
65 {
66 cti_assoc_ops = NULL;
67 }
68 EXPORT_SYMBOL_GPL(coresight_remove_cti_ops);
69
coresight_set_percpu_sink(int cpu,struct coresight_device * csdev)70 void coresight_set_percpu_sink(int cpu, struct coresight_device *csdev)
71 {
72 per_cpu(csdev_sink, cpu) = csdev;
73 }
74 EXPORT_SYMBOL_GPL(coresight_set_percpu_sink);
75
coresight_get_percpu_sink(int cpu)76 struct coresight_device *coresight_get_percpu_sink(int cpu)
77 {
78 return per_cpu(csdev_sink, cpu);
79 }
80 EXPORT_SYMBOL_GPL(coresight_get_percpu_sink);
81
coresight_get_source(struct coresight_path * path)82 static struct coresight_device *coresight_get_source(struct coresight_path *path)
83 {
84 struct coresight_device *csdev;
85
86 if (!path)
87 return NULL;
88
89 csdev = list_first_entry(&path->path_list, struct coresight_node, link)->csdev;
90 if (!coresight_is_device_source(csdev))
91 return NULL;
92
93 return csdev;
94 }
95
96 /**
97 * coresight_blocks_source - checks whether the connection matches the source
98 * of path if connection is bound to specific source.
99 * @src: The source device of the trace path
100 * @conn: The connection of one outport
101 *
102 * Return false if the connection doesn't have a source binded or source of the
103 * path matches the source binds to connection.
104 */
coresight_blocks_source(struct coresight_device * src,struct coresight_connection * conn)105 static bool coresight_blocks_source(struct coresight_device *src,
106 struct coresight_connection *conn)
107 {
108 return conn->filter_src_fwnode && (conn->filter_src_dev != src);
109 }
110
111 static struct coresight_connection *
coresight_find_out_connection(struct coresight_device * csdev,struct coresight_device * out_dev,struct coresight_device * trace_src)112 coresight_find_out_connection(struct coresight_device *csdev,
113 struct coresight_device *out_dev,
114 struct coresight_device *trace_src)
115 {
116 int i;
117 struct coresight_connection *conn;
118
119 for (i = 0; i < csdev->pdata->nr_outconns; i++) {
120 conn = csdev->pdata->out_conns[i];
121 if (coresight_blocks_source(trace_src, conn))
122 continue;
123 if (conn->dest_dev == out_dev)
124 return conn;
125 }
126
127 dev_err(&csdev->dev,
128 "couldn't find output connection, csdev: %s, out_dev: %s\n",
129 dev_name(&csdev->dev), dev_name(&out_dev->dev));
130
131 return ERR_PTR(-ENODEV);
132 }
133
coresight_read_claim_tags_unlocked(struct coresight_device * csdev)134 static u32 coresight_read_claim_tags_unlocked(struct coresight_device *csdev)
135 {
136 return FIELD_GET(CORESIGHT_CLAIM_MASK,
137 csdev_access_relaxed_read32(&csdev->access, CORESIGHT_CLAIMCLR));
138 }
139
coresight_set_self_claim_tag_unlocked(struct coresight_device * csdev)140 static void coresight_set_self_claim_tag_unlocked(struct coresight_device *csdev)
141 {
142 csdev_access_relaxed_write32(&csdev->access, CORESIGHT_CLAIM_SELF_HOSTED,
143 CORESIGHT_CLAIMSET);
144 isb();
145 }
146
coresight_clear_self_claim_tag(struct csdev_access * csa)147 void coresight_clear_self_claim_tag(struct csdev_access *csa)
148 {
149 if (csa->io_mem)
150 CS_UNLOCK(csa->base);
151 coresight_clear_self_claim_tag_unlocked(csa);
152 if (csa->io_mem)
153 CS_LOCK(csa->base);
154 }
155 EXPORT_SYMBOL_GPL(coresight_clear_self_claim_tag);
156
coresight_clear_self_claim_tag_unlocked(struct csdev_access * csa)157 void coresight_clear_self_claim_tag_unlocked(struct csdev_access *csa)
158 {
159 csdev_access_relaxed_write32(csa, CORESIGHT_CLAIM_SELF_HOSTED,
160 CORESIGHT_CLAIMCLR);
161 isb();
162 }
163 EXPORT_SYMBOL_GPL(coresight_clear_self_claim_tag_unlocked);
164
165 /*
166 * coresight_claim_device_unlocked : Claim the device for self-hosted usage
167 * to prevent an external tool from touching this device. As per PSCI
168 * standards, section "Preserving the execution context" => "Debug and Trace
169 * save and Restore", DBGCLAIM[1] is reserved for Self-hosted debug/trace and
170 * DBGCLAIM[0] is reserved for external tools.
171 *
172 * Called with CS_UNLOCKed for the component.
173 * Returns : 0 on success
174 */
coresight_claim_device_unlocked(struct coresight_device * csdev)175 int coresight_claim_device_unlocked(struct coresight_device *csdev)
176 {
177 int tag;
178 struct csdev_access *csa;
179
180 if (WARN_ON(!csdev))
181 return -EINVAL;
182
183 csa = &csdev->access;
184 tag = coresight_read_claim_tags_unlocked(csdev);
185
186 switch (tag) {
187 case CORESIGHT_CLAIM_FREE:
188 coresight_set_self_claim_tag_unlocked(csdev);
189 if (coresight_read_claim_tags_unlocked(csdev) == CORESIGHT_CLAIM_SELF_HOSTED)
190 return 0;
191
192 /* There was a race setting the tag, clean up and fail */
193 coresight_clear_self_claim_tag_unlocked(csa);
194 dev_dbg(&csdev->dev, "Busy: Couldn't set self claim tag");
195 return -EBUSY;
196
197 case CORESIGHT_CLAIM_EXTERNAL:
198 /* External debug is an expected state, so log and report BUSY */
199 dev_dbg(&csdev->dev, "Busy: Claimed by external debugger");
200 return -EBUSY;
201
202 default:
203 case CORESIGHT_CLAIM_SELF_HOSTED:
204 case CORESIGHT_CLAIM_INVALID:
205 /*
206 * Warn here because we clear a lingering self hosted tag
207 * on probe, so other tag combinations are impossible.
208 */
209 dev_err_once(&csdev->dev, "Invalid claim tag state: %x", tag);
210 return -EBUSY;
211 }
212 }
213 EXPORT_SYMBOL_GPL(coresight_claim_device_unlocked);
214
coresight_claim_device(struct coresight_device * csdev)215 int coresight_claim_device(struct coresight_device *csdev)
216 {
217 int rc;
218
219 if (WARN_ON(!csdev))
220 return -EINVAL;
221
222 CS_UNLOCK(csdev->access.base);
223 rc = coresight_claim_device_unlocked(csdev);
224 CS_LOCK(csdev->access.base);
225
226 return rc;
227 }
228 EXPORT_SYMBOL_GPL(coresight_claim_device);
229
230 /*
231 * coresight_disclaim_device_unlocked : Clear the claim tag for the device.
232 * Called with CS_UNLOCKed for the component.
233 */
coresight_disclaim_device_unlocked(struct coresight_device * csdev)234 void coresight_disclaim_device_unlocked(struct coresight_device *csdev)
235 {
236
237 if (WARN_ON(!csdev))
238 return;
239
240 if (coresight_read_claim_tags_unlocked(csdev) == CORESIGHT_CLAIM_SELF_HOSTED)
241 coresight_clear_self_claim_tag_unlocked(&csdev->access);
242 else
243 /*
244 * The external agent may have not honoured our claim
245 * and has manipulated it. Or something else has seriously
246 * gone wrong in our driver.
247 */
248 dev_WARN_ONCE(&csdev->dev, 1, "External agent took claim tag");
249 }
250 EXPORT_SYMBOL_GPL(coresight_disclaim_device_unlocked);
251
coresight_disclaim_device(struct coresight_device * csdev)252 void coresight_disclaim_device(struct coresight_device *csdev)
253 {
254 if (WARN_ON(!csdev))
255 return;
256
257 CS_UNLOCK(csdev->access.base);
258 coresight_disclaim_device_unlocked(csdev);
259 CS_LOCK(csdev->access.base);
260 }
261 EXPORT_SYMBOL_GPL(coresight_disclaim_device);
262
263 /*
264 * Add a helper as an output device. This function takes the @coresight_mutex
265 * because it's assumed that it's called from the helper device, outside of the
266 * core code where the mutex would already be held. Don't add new calls to this
267 * from inside the core code, instead try to add the new helper to the DT and
268 * ACPI where it will be picked up and linked automatically.
269 */
coresight_add_helper(struct coresight_device * csdev,struct coresight_device * helper)270 void coresight_add_helper(struct coresight_device *csdev,
271 struct coresight_device *helper)
272 {
273 int i;
274 struct coresight_connection conn = {};
275 struct coresight_connection *new_conn;
276
277 mutex_lock(&coresight_mutex);
278 conn.dest_fwnode = fwnode_handle_get(dev_fwnode(&helper->dev));
279 conn.dest_dev = helper;
280 conn.dest_port = conn.src_port = -1;
281 conn.src_dev = csdev;
282
283 /*
284 * Check for duplicates because this is called every time a helper
285 * device is re-loaded. Existing connections will get re-linked
286 * automatically.
287 */
288 for (i = 0; i < csdev->pdata->nr_outconns; ++i)
289 if (csdev->pdata->out_conns[i]->dest_fwnode == conn.dest_fwnode)
290 goto unlock;
291
292 new_conn = coresight_add_out_conn(csdev->dev.parent, csdev->pdata,
293 &conn);
294 if (!IS_ERR(new_conn))
295 coresight_add_in_conn(new_conn);
296
297 unlock:
298 mutex_unlock(&coresight_mutex);
299 }
300 EXPORT_SYMBOL_GPL(coresight_add_helper);
301
coresight_enable_sink(struct coresight_device * csdev,enum cs_mode mode,struct coresight_path * path)302 static int coresight_enable_sink(struct coresight_device *csdev,
303 enum cs_mode mode,
304 struct coresight_path *path)
305 {
306 return sink_ops(csdev)->enable(csdev, mode, path);
307 }
308
coresight_disable_sink(struct coresight_device * csdev)309 static void coresight_disable_sink(struct coresight_device *csdev)
310 {
311 sink_ops(csdev)->disable(csdev);
312 }
313
coresight_enable_link(struct coresight_device * csdev,struct coresight_device * parent,struct coresight_device * child,struct coresight_device * source)314 static int coresight_enable_link(struct coresight_device *csdev,
315 struct coresight_device *parent,
316 struct coresight_device *child,
317 struct coresight_device *source)
318 {
319 int link_subtype;
320 struct coresight_connection *inconn, *outconn;
321
322 if (!parent || !child)
323 return -EINVAL;
324
325 inconn = coresight_find_out_connection(parent, csdev, source);
326 outconn = coresight_find_out_connection(csdev, child, source);
327 link_subtype = csdev->subtype.link_subtype;
328
329 if (link_subtype == CORESIGHT_DEV_SUBTYPE_LINK_MERG && IS_ERR(inconn))
330 return PTR_ERR(inconn);
331 if (link_subtype == CORESIGHT_DEV_SUBTYPE_LINK_SPLIT && IS_ERR(outconn))
332 return PTR_ERR(outconn);
333
334 return link_ops(csdev)->enable(csdev, inconn, outconn);
335 }
336
coresight_disable_link(struct coresight_device * csdev,struct coresight_device * parent,struct coresight_device * child,struct coresight_device * source)337 static void coresight_disable_link(struct coresight_device *csdev,
338 struct coresight_device *parent,
339 struct coresight_device *child,
340 struct coresight_device *source)
341 {
342 struct coresight_connection *inconn, *outconn;
343
344 if (!parent || !child)
345 return;
346
347 inconn = coresight_find_out_connection(parent, csdev, source);
348 outconn = coresight_find_out_connection(csdev, child, source);
349
350 link_ops(csdev)->disable(csdev, inconn, outconn);
351 }
352
coresight_is_helper(struct coresight_device * csdev)353 static bool coresight_is_helper(struct coresight_device *csdev)
354 {
355 return csdev->type == CORESIGHT_DEV_TYPE_HELPER;
356 }
357
coresight_enable_helper(struct coresight_device * csdev,enum cs_mode mode,struct coresight_path * path)358 static int coresight_enable_helper(struct coresight_device *csdev,
359 enum cs_mode mode,
360 struct coresight_path *path)
361 {
362 return helper_ops(csdev)->enable(csdev, mode, path);
363 }
364
coresight_disable_helper(struct coresight_device * csdev,struct coresight_path * path)365 static void coresight_disable_helper(struct coresight_device *csdev,
366 struct coresight_path *path)
367 {
368 helper_ops(csdev)->disable(csdev, path);
369 }
370
coresight_disable_helpers(struct coresight_device * csdev,struct coresight_path * path)371 static void coresight_disable_helpers(struct coresight_device *csdev,
372 struct coresight_path *path)
373 {
374 int i;
375 struct coresight_device *helper;
376
377 for (i = 0; i < csdev->pdata->nr_outconns; ++i) {
378 helper = csdev->pdata->out_conns[i]->dest_dev;
379 if (helper && coresight_is_helper(helper))
380 coresight_disable_helper(helper, path);
381 }
382 }
383
384 /*
385 * Helper function to call source_ops(csdev)->disable and also disable the
386 * helpers.
387 *
388 * There is an imbalance between coresight_enable_path() and
389 * coresight_disable_path(). Enabling also enables the source's helpers as part
390 * of the path, but disabling always skips the first item in the path (which is
391 * the source), so sources and their helpers don't get disabled as part of that
392 * function and we need the extra step here.
393 */
coresight_disable_source(struct coresight_device * csdev,void * data)394 void coresight_disable_source(struct coresight_device *csdev, void *data)
395 {
396 source_ops(csdev)->disable(csdev, data);
397 coresight_disable_helpers(csdev, NULL);
398 }
399 EXPORT_SYMBOL_GPL(coresight_disable_source);
400
coresight_pause_source(struct coresight_device * csdev)401 void coresight_pause_source(struct coresight_device *csdev)
402 {
403 if (!coresight_is_percpu_source(csdev))
404 return;
405
406 if (source_ops(csdev)->pause_perf)
407 source_ops(csdev)->pause_perf(csdev);
408 }
409 EXPORT_SYMBOL_GPL(coresight_pause_source);
410
coresight_resume_source(struct coresight_device * csdev)411 int coresight_resume_source(struct coresight_device *csdev)
412 {
413 if (!coresight_is_percpu_source(csdev))
414 return -EOPNOTSUPP;
415
416 if (!source_ops(csdev)->resume_perf)
417 return -EOPNOTSUPP;
418
419 return source_ops(csdev)->resume_perf(csdev);
420 }
421 EXPORT_SYMBOL_GPL(coresight_resume_source);
422
423 /*
424 * coresight_disable_path_from : Disable components in the given path beyond
425 * @nd in the list. If @nd is NULL, all the components, except the SOURCE are
426 * disabled.
427 */
coresight_disable_path_from(struct coresight_path * path,struct coresight_node * nd)428 static void coresight_disable_path_from(struct coresight_path *path,
429 struct coresight_node *nd)
430 {
431 u32 type;
432 struct coresight_device *csdev, *parent, *child;
433
434 if (!nd)
435 nd = list_first_entry(&path->path_list, struct coresight_node, link);
436
437 list_for_each_entry_continue(nd, &path->path_list, link) {
438 csdev = nd->csdev;
439 type = csdev->type;
440
441 /*
442 * ETF devices are tricky... They can be a link or a sink,
443 * depending on how they are configured. If an ETF has been
444 * selected as a sink it will be configured as a sink, otherwise
445 * go ahead with the link configuration.
446 */
447 if (type == CORESIGHT_DEV_TYPE_LINKSINK)
448 type = (csdev == coresight_get_sink(path)) ?
449 CORESIGHT_DEV_TYPE_SINK :
450 CORESIGHT_DEV_TYPE_LINK;
451
452 switch (type) {
453 case CORESIGHT_DEV_TYPE_SINK:
454 coresight_disable_sink(csdev);
455 break;
456 case CORESIGHT_DEV_TYPE_SOURCE:
457 /*
458 * We skip the first node in the path assuming that it
459 * is the source. So we don't expect a source device in
460 * the middle of a path.
461 */
462 WARN_ON(1);
463 break;
464 case CORESIGHT_DEV_TYPE_LINK:
465 parent = list_prev_entry(nd, link)->csdev;
466 child = list_next_entry(nd, link)->csdev;
467 coresight_disable_link(csdev, parent, child,
468 coresight_get_source(path));
469 break;
470 default:
471 break;
472 }
473
474 /* Disable all helpers adjacent along the path last */
475 coresight_disable_helpers(csdev, path);
476 }
477 }
478
coresight_disable_path(struct coresight_path * path)479 void coresight_disable_path(struct coresight_path *path)
480 {
481 coresight_disable_path_from(path, NULL);
482 }
483 EXPORT_SYMBOL_GPL(coresight_disable_path);
484
coresight_enable_helpers(struct coresight_device * csdev,enum cs_mode mode,struct coresight_path * path)485 static int coresight_enable_helpers(struct coresight_device *csdev,
486 enum cs_mode mode,
487 struct coresight_path *path)
488 {
489 int i, ret = 0;
490 struct coresight_device *helper;
491
492 for (i = 0; i < csdev->pdata->nr_outconns; ++i) {
493 helper = csdev->pdata->out_conns[i]->dest_dev;
494 if (!helper || !coresight_is_helper(helper))
495 continue;
496
497 ret = coresight_enable_helper(helper, mode, path);
498 if (ret)
499 return ret;
500 }
501
502 return 0;
503 }
504
coresight_enable_path(struct coresight_path * path,enum cs_mode mode)505 int coresight_enable_path(struct coresight_path *path, enum cs_mode mode)
506 {
507 int ret = 0;
508 u32 type;
509 struct coresight_node *nd;
510 struct coresight_device *csdev, *parent, *child;
511 struct coresight_device *source;
512
513 source = coresight_get_source(path);
514 list_for_each_entry_reverse(nd, &path->path_list, link) {
515 csdev = nd->csdev;
516 type = csdev->type;
517
518 /* Enable all helpers adjacent to the path first */
519 ret = coresight_enable_helpers(csdev, mode, path);
520 if (ret)
521 goto err_disable_path;
522 /*
523 * ETF devices are tricky... They can be a link or a sink,
524 * depending on how they are configured. If an ETF has been
525 * selected as a sink it will be configured as a sink, otherwise
526 * go ahead with the link configuration.
527 */
528 if (type == CORESIGHT_DEV_TYPE_LINKSINK)
529 type = (csdev == coresight_get_sink(path)) ?
530 CORESIGHT_DEV_TYPE_SINK :
531 CORESIGHT_DEV_TYPE_LINK;
532
533 switch (type) {
534 case CORESIGHT_DEV_TYPE_SINK:
535 ret = coresight_enable_sink(csdev, mode, path);
536 /*
537 * Sink is the first component turned on. If we
538 * failed to enable the sink, there are no components
539 * that need disabling. Disabling the path here
540 * would mean we could disrupt an existing session.
541 */
542 if (ret) {
543 coresight_disable_helpers(csdev, path);
544 goto out;
545 }
546 break;
547 case CORESIGHT_DEV_TYPE_SOURCE:
548 /* sources are enabled from either sysFS or Perf */
549 break;
550 case CORESIGHT_DEV_TYPE_LINK:
551 parent = list_prev_entry(nd, link)->csdev;
552 child = list_next_entry(nd, link)->csdev;
553 ret = coresight_enable_link(csdev, parent, child, source);
554 if (ret)
555 goto err_disable_helpers;
556 break;
557 default:
558 ret = -EINVAL;
559 goto err_disable_helpers;
560 }
561 }
562
563 out:
564 return ret;
565 err_disable_helpers:
566 coresight_disable_helpers(csdev, path);
567 err_disable_path:
568 coresight_disable_path_from(path, nd);
569 goto out;
570 }
571
coresight_get_sink(struct coresight_path * path)572 struct coresight_device *coresight_get_sink(struct coresight_path *path)
573 {
574 struct coresight_device *csdev;
575
576 if (!path)
577 return NULL;
578
579 csdev = list_last_entry(&path->path_list, struct coresight_node, link)->csdev;
580 if (csdev->type != CORESIGHT_DEV_TYPE_SINK &&
581 csdev->type != CORESIGHT_DEV_TYPE_LINKSINK)
582 return NULL;
583
584 return csdev;
585 }
586 EXPORT_SYMBOL_GPL(coresight_get_sink);
587
coresight_get_sink_id(struct coresight_device * csdev)588 u32 coresight_get_sink_id(struct coresight_device *csdev)
589 {
590 if (!csdev->ea)
591 return 0;
592
593 /*
594 * See function etm_perf_add_symlink_sink() to know where
595 * this comes from.
596 */
597 return (u32) (unsigned long) csdev->ea->var;
598 }
599
coresight_sink_by_id(struct device * dev,const void * data)600 static int coresight_sink_by_id(struct device *dev, const void *data)
601 {
602 struct coresight_device *csdev = to_coresight_device(dev);
603
604 if (csdev->type == CORESIGHT_DEV_TYPE_SINK ||
605 csdev->type == CORESIGHT_DEV_TYPE_LINKSINK) {
606 if (coresight_get_sink_id(csdev) == *(u32 *)data)
607 return 1;
608 }
609
610 return 0;
611 }
612
613 /**
614 * coresight_get_sink_by_id - returns the sink that matches the id
615 * @id: Id of the sink to match
616 *
617 * The name of a sink is unique, whether it is found on the AMBA bus or
618 * otherwise. As such the hash of that name can easily be used to identify
619 * a sink.
620 */
coresight_get_sink_by_id(u32 id)621 struct coresight_device *coresight_get_sink_by_id(u32 id)
622 {
623 struct device *dev = NULL;
624
625 dev = bus_find_device(&coresight_bustype, NULL, &id,
626 coresight_sink_by_id);
627
628 return dev ? to_coresight_device(dev) : NULL;
629 }
630
631 /**
632 * coresight_get_ref- Helper function to increase reference count to module
633 * and device.
634 *
635 * @csdev: The coresight device to get a reference on.
636 *
637 * Return true in successful case and power up the device.
638 * Return false when failed to get reference of module.
639 */
coresight_get_ref(struct coresight_device * csdev)640 static bool coresight_get_ref(struct coresight_device *csdev)
641 {
642 struct device *dev = csdev->dev.parent;
643
644 /* Make sure the driver can't be removed */
645 if (!try_module_get(dev->driver->owner))
646 return false;
647 /* Make sure the device can't go away */
648 get_device(dev);
649 pm_runtime_get_sync(dev);
650 return true;
651 }
652
653 /**
654 * coresight_put_ref- Helper function to decrease reference count to module
655 * and device. Power off the device.
656 *
657 * @csdev: The coresight device to decrement a reference from.
658 */
coresight_put_ref(struct coresight_device * csdev)659 static void coresight_put_ref(struct coresight_device *csdev)
660 {
661 struct device *dev = csdev->dev.parent;
662
663 pm_runtime_put(dev);
664 put_device(dev);
665 module_put(dev->driver->owner);
666 }
667
668 /*
669 * coresight_grab_device - Power up this device and any of the helper
670 * devices connected to it for trace operation. Since the helper devices
671 * don't appear on the trace path, they should be handled along with the
672 * master device.
673 */
coresight_grab_device(struct coresight_device * csdev)674 static int coresight_grab_device(struct coresight_device *csdev)
675 {
676 int i;
677
678 for (i = 0; i < csdev->pdata->nr_outconns; i++) {
679 struct coresight_device *child;
680
681 child = csdev->pdata->out_conns[i]->dest_dev;
682 if (child && coresight_is_helper(child))
683 if (!coresight_get_ref(child))
684 goto err;
685 }
686 if (coresight_get_ref(csdev))
687 return 0;
688 err:
689 for (i--; i >= 0; i--) {
690 struct coresight_device *child;
691
692 child = csdev->pdata->out_conns[i]->dest_dev;
693 if (child && coresight_is_helper(child))
694 coresight_put_ref(child);
695 }
696 return -ENODEV;
697 }
698
699 /*
700 * coresight_drop_device - Release this device and any of the helper
701 * devices connected to it.
702 */
coresight_drop_device(struct coresight_device * csdev)703 static void coresight_drop_device(struct coresight_device *csdev)
704 {
705 int i;
706
707 coresight_put_ref(csdev);
708 for (i = 0; i < csdev->pdata->nr_outconns; i++) {
709 struct coresight_device *child;
710
711 child = csdev->pdata->out_conns[i]->dest_dev;
712 if (child && coresight_is_helper(child))
713 coresight_put_ref(child);
714 }
715 }
716
717 /*
718 * coresight device will read their existing or alloc a trace ID, if their trace_id
719 * callback is set.
720 *
721 * Return 0 if the trace_id callback is not set.
722 * Return the result of the trace_id callback if it is set. The return value
723 * will be the trace_id if successful, and an error number if it fails.
724 */
coresight_get_trace_id(struct coresight_device * csdev,enum cs_mode mode,struct coresight_device * sink)725 static int coresight_get_trace_id(struct coresight_device *csdev,
726 enum cs_mode mode,
727 struct coresight_device *sink)
728 {
729 if (coresight_ops(csdev)->trace_id)
730 return coresight_ops(csdev)->trace_id(csdev, mode, sink);
731
732 return 0;
733 }
734
735 /*
736 * Call this after creating the path and before enabling it. This leaves
737 * the trace ID set on the path, or it remains 0 if it couldn't be assigned.
738 */
coresight_path_assign_trace_id(struct coresight_path * path,enum cs_mode mode)739 void coresight_path_assign_trace_id(struct coresight_path *path,
740 enum cs_mode mode)
741 {
742 struct coresight_device *sink = coresight_get_sink(path);
743 struct coresight_node *nd;
744 int trace_id;
745
746 list_for_each_entry(nd, &path->path_list, link) {
747 /* Assign a trace ID to the path for the first device that wants to do it */
748 trace_id = coresight_get_trace_id(nd->csdev, mode, sink);
749
750 /*
751 * 0 in this context is that it didn't want to assign so keep searching.
752 * Non 0 is either success or fail.
753 */
754 if (trace_id != 0) {
755 path->trace_id = trace_id;
756 return;
757 }
758 }
759 }
760
761 /**
762 * _coresight_build_path - recursively build a path from a @csdev to a sink.
763 * @csdev: The device to start from.
764 * @source: The trace source device of the path.
765 * @sink: The final sink we want in this path.
766 * @path: The list to add devices to.
767 *
768 * The tree of Coresight device is traversed until @sink is found.
769 * From there the sink is added to the list along with all the devices that led
770 * to that point - the end result is a list from source to sink. In that list
771 * the source is the first device and the sink the last one.
772 */
_coresight_build_path(struct coresight_device * csdev,struct coresight_device * source,struct coresight_device * sink,struct coresight_path * path)773 static int _coresight_build_path(struct coresight_device *csdev,
774 struct coresight_device *source,
775 struct coresight_device *sink,
776 struct coresight_path *path)
777 {
778 int i, ret;
779 bool found = false;
780 struct coresight_node *node;
781
782 /* The sink has been found. Enqueue the element */
783 if (csdev == sink)
784 goto out;
785
786 if (coresight_is_percpu_source(csdev) && coresight_is_percpu_sink(sink) &&
787 sink == per_cpu(csdev_sink, source_ops(csdev)->cpu_id(csdev))) {
788 if (_coresight_build_path(sink, source, sink, path) == 0) {
789 found = true;
790 goto out;
791 }
792 }
793
794 /* Not a sink - recursively explore each port found on this element */
795 for (i = 0; i < csdev->pdata->nr_outconns; i++) {
796 struct coresight_device *child_dev;
797
798 child_dev = csdev->pdata->out_conns[i]->dest_dev;
799
800 if (coresight_blocks_source(source, csdev->pdata->out_conns[i]))
801 continue;
802
803 if (child_dev &&
804 _coresight_build_path(child_dev, source, sink, path) == 0) {
805 found = true;
806 break;
807 }
808 }
809
810 if (!found)
811 return -ENODEV;
812
813 out:
814 /*
815 * A path from this element to a sink has been found. The elements
816 * leading to the sink are already enqueued, all that is left to do
817 * is tell the PM runtime core we need this element and add a node
818 * for it.
819 */
820 ret = coresight_grab_device(csdev);
821 if (ret)
822 return ret;
823
824 node = kzalloc(sizeof(struct coresight_node), GFP_KERNEL);
825 if (!node)
826 return -ENOMEM;
827
828 node->csdev = csdev;
829 list_add(&node->link, &path->path_list);
830
831 return 0;
832 }
833
coresight_build_path(struct coresight_device * source,struct coresight_device * sink)834 struct coresight_path *coresight_build_path(struct coresight_device *source,
835 struct coresight_device *sink)
836 {
837 struct coresight_path *path;
838 int rc;
839
840 if (!sink)
841 return ERR_PTR(-EINVAL);
842
843 path = kzalloc(sizeof(struct coresight_path), GFP_KERNEL);
844 if (!path)
845 return ERR_PTR(-ENOMEM);
846
847 INIT_LIST_HEAD(&path->path_list);
848
849 rc = _coresight_build_path(source, source, sink, path);
850 if (rc) {
851 kfree(path);
852 return ERR_PTR(rc);
853 }
854
855 return path;
856 }
857
858 /**
859 * coresight_release_path - release a previously built path.
860 * @path: the path to release.
861 *
862 * Go through all the elements of a path and 1) removed it from the list and
863 * 2) free the memory allocated for each node.
864 */
coresight_release_path(struct coresight_path * path)865 void coresight_release_path(struct coresight_path *path)
866 {
867 struct coresight_device *csdev;
868 struct coresight_node *nd, *next;
869
870 list_for_each_entry_safe(nd, next, &path->path_list, link) {
871 csdev = nd->csdev;
872
873 coresight_drop_device(csdev);
874 list_del(&nd->link);
875 kfree(nd);
876 }
877
878 kfree(path);
879 }
880
881 /* return true if the device is a suitable type for a default sink */
coresight_is_def_sink_type(struct coresight_device * csdev)882 static bool coresight_is_def_sink_type(struct coresight_device *csdev)
883 {
884 /* sink & correct subtype */
885 if (((csdev->type == CORESIGHT_DEV_TYPE_SINK) ||
886 (csdev->type == CORESIGHT_DEV_TYPE_LINKSINK)) &&
887 (csdev->subtype.sink_subtype >= CORESIGHT_DEV_SUBTYPE_SINK_BUFFER))
888 return true;
889 return false;
890 }
891
892 /**
893 * coresight_select_best_sink - return the best sink for use as default from
894 * the two provided.
895 *
896 * @sink: current best sink.
897 * @depth: search depth where current sink was found.
898 * @new_sink: new sink for comparison with current sink.
899 * @new_depth: search depth where new sink was found.
900 *
901 * Sinks prioritised according to coresight_dev_subtype_sink, with only
902 * subtypes CORESIGHT_DEV_SUBTYPE_SINK_BUFFER or higher being used.
903 *
904 * Where two sinks of equal priority are found, the sink closest to the
905 * source is used (smallest search depth).
906 *
907 * return @new_sink & update @depth if better than @sink, else return @sink.
908 */
909 static struct coresight_device *
coresight_select_best_sink(struct coresight_device * sink,int * depth,struct coresight_device * new_sink,int new_depth)910 coresight_select_best_sink(struct coresight_device *sink, int *depth,
911 struct coresight_device *new_sink, int new_depth)
912 {
913 bool update = false;
914
915 if (!sink) {
916 /* first found at this level */
917 update = true;
918 } else if (new_sink->subtype.sink_subtype >
919 sink->subtype.sink_subtype) {
920 /* found better sink */
921 update = true;
922 } else if ((new_sink->subtype.sink_subtype ==
923 sink->subtype.sink_subtype) &&
924 (*depth > new_depth)) {
925 /* found same but closer sink */
926 update = true;
927 }
928
929 if (update)
930 *depth = new_depth;
931 return update ? new_sink : sink;
932 }
933
934 /**
935 * coresight_find_sink - recursive function to walk trace connections from
936 * source to find a suitable default sink.
937 *
938 * @csdev: source / current device to check.
939 * @depth: [in] search depth of calling dev, [out] depth of found sink.
940 *
941 * This will walk the connection path from a source (ETM) till a suitable
942 * sink is encountered and return that sink to the original caller.
943 *
944 * If current device is a plain sink return that & depth, otherwise recursively
945 * call child connections looking for a sink. Select best possible using
946 * coresight_select_best_sink.
947 *
948 * return best sink found, or NULL if not found at this node or child nodes.
949 */
950 static struct coresight_device *
coresight_find_sink(struct coresight_device * csdev,int * depth)951 coresight_find_sink(struct coresight_device *csdev, int *depth)
952 {
953 int i, curr_depth = *depth + 1, found_depth = 0;
954 struct coresight_device *found_sink = NULL;
955
956 if (coresight_is_def_sink_type(csdev)) {
957 found_depth = curr_depth;
958 found_sink = csdev;
959 if (csdev->type == CORESIGHT_DEV_TYPE_SINK)
960 goto return_def_sink;
961 /* look past LINKSINK for something better */
962 }
963
964 /*
965 * Not a sink we want - or possible child sink may be better.
966 * recursively explore each port found on this element.
967 */
968 for (i = 0; i < csdev->pdata->nr_outconns; i++) {
969 struct coresight_device *child_dev, *sink = NULL;
970 int child_depth = curr_depth;
971
972 child_dev = csdev->pdata->out_conns[i]->dest_dev;
973 if (child_dev)
974 sink = coresight_find_sink(child_dev, &child_depth);
975
976 if (sink)
977 found_sink = coresight_select_best_sink(found_sink,
978 &found_depth,
979 sink,
980 child_depth);
981 }
982
983 return_def_sink:
984 /* return found sink and depth */
985 if (found_sink)
986 *depth = found_depth;
987 return found_sink;
988 }
989
990 /**
991 * coresight_find_default_sink: Find a sink suitable for use as a
992 * default sink.
993 *
994 * @csdev: starting source to find a connected sink.
995 *
996 * Walks connections graph looking for a suitable sink to enable for the
997 * supplied source. Uses CoreSight device subtypes and distance from source
998 * to select the best sink.
999 *
1000 * If a sink is found, then the default sink for this device is set and
1001 * will be automatically used in future.
1002 *
1003 * Used in cases where the CoreSight user (perf / sysfs) has not selected a
1004 * sink.
1005 */
1006 struct coresight_device *
coresight_find_default_sink(struct coresight_device * csdev)1007 coresight_find_default_sink(struct coresight_device *csdev)
1008 {
1009 int depth = 0;
1010
1011 /* look for a default sink if we have not found for this device */
1012 if (!csdev->def_sink) {
1013 if (coresight_is_percpu_source(csdev))
1014 csdev->def_sink = per_cpu(csdev_sink, source_ops(csdev)->cpu_id(csdev));
1015 if (!csdev->def_sink)
1016 csdev->def_sink = coresight_find_sink(csdev, &depth);
1017 }
1018 return csdev->def_sink;
1019 }
1020 EXPORT_SYMBOL_GPL(coresight_find_default_sink);
1021
coresight_remove_sink_ref(struct device * dev,void * data)1022 static int coresight_remove_sink_ref(struct device *dev, void *data)
1023 {
1024 struct coresight_device *sink = data;
1025 struct coresight_device *source = to_coresight_device(dev);
1026
1027 if (source->def_sink == sink)
1028 source->def_sink = NULL;
1029 return 0;
1030 }
1031
1032 /**
1033 * coresight_clear_default_sink: Remove all default sink references to the
1034 * supplied sink.
1035 *
1036 * If supplied device is a sink, then check all the bus devices and clear
1037 * out all the references to this sink from the coresight_device def_sink
1038 * parameter.
1039 *
1040 * @csdev: coresight sink - remove references to this from all sources.
1041 */
coresight_clear_default_sink(struct coresight_device * csdev)1042 static void coresight_clear_default_sink(struct coresight_device *csdev)
1043 {
1044 if ((csdev->type == CORESIGHT_DEV_TYPE_SINK) ||
1045 (csdev->type == CORESIGHT_DEV_TYPE_LINKSINK)) {
1046 bus_for_each_dev(&coresight_bustype, NULL, csdev,
1047 coresight_remove_sink_ref);
1048 }
1049 }
1050
coresight_device_release(struct device * dev)1051 static void coresight_device_release(struct device *dev)
1052 {
1053 struct coresight_device *csdev = to_coresight_device(dev);
1054
1055 fwnode_handle_put(csdev->dev.fwnode);
1056 free_percpu(csdev->perf_sink_id_map.cpu_map);
1057 kfree(csdev);
1058 }
1059
coresight_orphan_match(struct device * dev,void * data)1060 static int coresight_orphan_match(struct device *dev, void *data)
1061 {
1062 int i, ret = 0;
1063 bool still_orphan = false;
1064 struct coresight_device *dst_csdev = data;
1065 struct coresight_device *src_csdev = to_coresight_device(dev);
1066 struct coresight_connection *conn;
1067 bool fixup_self = (src_csdev == dst_csdev);
1068
1069 /* Move on to another component if no connection is orphan */
1070 if (!src_csdev->orphan)
1071 return 0;
1072 /*
1073 * Circle through all the connections of that component. If we find
1074 * an orphan connection whose name matches @dst_csdev, link it.
1075 */
1076 for (i = 0; i < src_csdev->pdata->nr_outconns; i++) {
1077 conn = src_csdev->pdata->out_conns[i];
1078
1079 /* Fix filter source device before skip the port */
1080 if (conn->filter_src_fwnode && !conn->filter_src_dev) {
1081 if (dst_csdev &&
1082 (conn->filter_src_fwnode == dst_csdev->dev.fwnode) &&
1083 !WARN_ON_ONCE(!coresight_is_device_source(dst_csdev)))
1084 conn->filter_src_dev = dst_csdev;
1085 else
1086 still_orphan = true;
1087 }
1088
1089 /* Skip the port if it's already connected. */
1090 if (conn->dest_dev)
1091 continue;
1092
1093 /*
1094 * If we are at the "new" device, which triggered this search,
1095 * we must find the remote device from the fwnode in the
1096 * connection.
1097 */
1098 if (fixup_self)
1099 dst_csdev = coresight_find_csdev_by_fwnode(
1100 conn->dest_fwnode);
1101
1102 /* Does it match this newly added device? */
1103 if (dst_csdev && conn->dest_fwnode == dst_csdev->dev.fwnode) {
1104 ret = coresight_make_links(src_csdev, conn, dst_csdev);
1105 if (ret)
1106 return ret;
1107
1108 /*
1109 * Install the device connection. This also indicates that
1110 * the links are operational on both ends.
1111 */
1112 conn->dest_dev = dst_csdev;
1113 conn->src_dev = src_csdev;
1114
1115 ret = coresight_add_in_conn(conn);
1116 if (ret)
1117 return ret;
1118 } else {
1119 /* This component still has an orphan */
1120 still_orphan = true;
1121 }
1122 }
1123
1124 src_csdev->orphan = still_orphan;
1125
1126 /*
1127 * Returning '0' in case we didn't encounter any error,
1128 * ensures that all known component on the bus will be checked.
1129 */
1130 return 0;
1131 }
1132
coresight_fixup_orphan_conns(struct coresight_device * csdev)1133 static int coresight_fixup_orphan_conns(struct coresight_device *csdev)
1134 {
1135 return bus_for_each_dev(&coresight_bustype, NULL,
1136 csdev, coresight_orphan_match);
1137 }
1138
coresight_clear_filter_source(struct device * dev,void * data)1139 static int coresight_clear_filter_source(struct device *dev, void *data)
1140 {
1141 int i;
1142 struct coresight_device *source = data;
1143 struct coresight_device *csdev = to_coresight_device(dev);
1144
1145 for (i = 0; i < csdev->pdata->nr_outconns; ++i) {
1146 if (csdev->pdata->out_conns[i]->filter_src_dev == source)
1147 csdev->pdata->out_conns[i]->filter_src_dev = NULL;
1148 }
1149 return 0;
1150 }
1151
1152 /* coresight_remove_conns - Remove other device's references to this device */
coresight_remove_conns(struct coresight_device * csdev)1153 static void coresight_remove_conns(struct coresight_device *csdev)
1154 {
1155 int i, j;
1156 struct coresight_connection *conn;
1157
1158 if (coresight_is_device_source(csdev))
1159 bus_for_each_dev(&coresight_bustype, NULL, csdev,
1160 coresight_clear_filter_source);
1161
1162 /*
1163 * Remove the input connection references from the destination device
1164 * for each output connection.
1165 */
1166 for (i = 0; i < csdev->pdata->nr_outconns; i++) {
1167 conn = csdev->pdata->out_conns[i];
1168 if (conn->filter_src_fwnode) {
1169 conn->filter_src_dev = NULL;
1170 fwnode_handle_put(conn->filter_src_fwnode);
1171 }
1172
1173 if (!conn->dest_dev)
1174 continue;
1175
1176 for (j = 0; j < conn->dest_dev->pdata->nr_inconns; ++j)
1177 if (conn->dest_dev->pdata->in_conns[j] == conn) {
1178 conn->dest_dev->pdata->in_conns[j] = NULL;
1179 break;
1180 }
1181 }
1182
1183 /*
1184 * For all input connections, remove references to this device.
1185 * Connection objects are shared so modifying this device's input
1186 * connections affects the other device's output connection.
1187 */
1188 for (i = 0; i < csdev->pdata->nr_inconns; ++i) {
1189 conn = csdev->pdata->in_conns[i];
1190 /* Input conns array is sparse */
1191 if (!conn)
1192 continue;
1193
1194 conn->src_dev->orphan = true;
1195 coresight_remove_links(conn->src_dev, conn);
1196 conn->dest_dev = NULL;
1197 }
1198 }
1199
1200 /**
1201 * coresight_timeout_action - loop until a bit has changed to a specific register
1202 * state, with a callback after every trial.
1203 * @csa: coresight device access for the device
1204 * @offset: Offset of the register from the base of the device.
1205 * @position: the position of the bit of interest.
1206 * @value: the value the bit should have.
1207 * @cb: Call back after each trial.
1208 *
1209 * Return: 0 as soon as the bit has taken the desired state or -EAGAIN if
1210 * TIMEOUT_US has elapsed, which ever happens first.
1211 */
coresight_timeout_action(struct csdev_access * csa,u32 offset,int position,int value,coresight_timeout_cb_t cb)1212 int coresight_timeout_action(struct csdev_access *csa, u32 offset,
1213 int position, int value,
1214 coresight_timeout_cb_t cb)
1215 {
1216 int i;
1217 u32 val;
1218
1219 for (i = TIMEOUT_US; i > 0; i--) {
1220 val = csdev_access_read32(csa, offset);
1221 /* waiting on the bit to go from 0 to 1 */
1222 if (value) {
1223 if (val & BIT(position))
1224 return 0;
1225 /* waiting on the bit to go from 1 to 0 */
1226 } else {
1227 if (!(val & BIT(position)))
1228 return 0;
1229 }
1230 if (cb)
1231 cb(csa, offset, position, value);
1232 /*
1233 * Delay is arbitrary - the specification doesn't say how long
1234 * we are expected to wait. Extra check required to make sure
1235 * we don't wait needlessly on the last iteration.
1236 */
1237 if (i - 1)
1238 udelay(1);
1239 }
1240
1241 return -EAGAIN;
1242 }
1243 EXPORT_SYMBOL_GPL(coresight_timeout_action);
1244
coresight_timeout(struct csdev_access * csa,u32 offset,int position,int value)1245 int coresight_timeout(struct csdev_access *csa, u32 offset,
1246 int position, int value)
1247 {
1248 return coresight_timeout_action(csa, offset, position, value, NULL);
1249 }
1250 EXPORT_SYMBOL_GPL(coresight_timeout);
1251
coresight_relaxed_read32(struct coresight_device * csdev,u32 offset)1252 u32 coresight_relaxed_read32(struct coresight_device *csdev, u32 offset)
1253 {
1254 return csdev_access_relaxed_read32(&csdev->access, offset);
1255 }
1256
coresight_read32(struct coresight_device * csdev,u32 offset)1257 u32 coresight_read32(struct coresight_device *csdev, u32 offset)
1258 {
1259 return csdev_access_read32(&csdev->access, offset);
1260 }
1261
coresight_relaxed_write32(struct coresight_device * csdev,u32 val,u32 offset)1262 void coresight_relaxed_write32(struct coresight_device *csdev,
1263 u32 val, u32 offset)
1264 {
1265 csdev_access_relaxed_write32(&csdev->access, val, offset);
1266 }
1267
coresight_write32(struct coresight_device * csdev,u32 val,u32 offset)1268 void coresight_write32(struct coresight_device *csdev, u32 val, u32 offset)
1269 {
1270 csdev_access_write32(&csdev->access, val, offset);
1271 }
1272
coresight_relaxed_read64(struct coresight_device * csdev,u32 offset)1273 u64 coresight_relaxed_read64(struct coresight_device *csdev, u32 offset)
1274 {
1275 return csdev_access_relaxed_read64(&csdev->access, offset);
1276 }
1277
coresight_read64(struct coresight_device * csdev,u32 offset)1278 u64 coresight_read64(struct coresight_device *csdev, u32 offset)
1279 {
1280 return csdev_access_read64(&csdev->access, offset);
1281 }
1282
coresight_relaxed_write64(struct coresight_device * csdev,u64 val,u32 offset)1283 void coresight_relaxed_write64(struct coresight_device *csdev,
1284 u64 val, u32 offset)
1285 {
1286 csdev_access_relaxed_write64(&csdev->access, val, offset);
1287 }
1288
coresight_write64(struct coresight_device * csdev,u64 val,u32 offset)1289 void coresight_write64(struct coresight_device *csdev, u64 val, u32 offset)
1290 {
1291 csdev_access_write64(&csdev->access, val, offset);
1292 }
1293
1294 /*
1295 * coresight_release_platform_data: Release references to the devices connected
1296 * to the output port of this device.
1297 */
coresight_release_platform_data(struct coresight_device * csdev,struct device * dev,struct coresight_platform_data * pdata)1298 void coresight_release_platform_data(struct coresight_device *csdev,
1299 struct device *dev,
1300 struct coresight_platform_data *pdata)
1301 {
1302 int i;
1303 struct coresight_connection **conns = pdata->out_conns;
1304
1305 for (i = 0; i < pdata->nr_outconns; i++) {
1306 /* If we have made the links, remove them now */
1307 if (csdev && conns[i]->dest_dev)
1308 coresight_remove_links(csdev, conns[i]);
1309 /*
1310 * Drop the refcount and clear the handle as this device
1311 * is going away
1312 */
1313 fwnode_handle_put(conns[i]->dest_fwnode);
1314 conns[i]->dest_fwnode = NULL;
1315 devm_kfree(dev, conns[i]);
1316 }
1317 devm_kfree(dev, pdata->out_conns);
1318 devm_kfree(dev, pdata->in_conns);
1319 devm_kfree(dev, pdata);
1320 if (csdev)
1321 coresight_remove_conns_sysfs_group(csdev);
1322 }
1323
coresight_register(struct coresight_desc * desc)1324 struct coresight_device *coresight_register(struct coresight_desc *desc)
1325 {
1326 int ret;
1327 struct coresight_device *csdev;
1328 bool registered = false;
1329
1330 csdev = kzalloc(sizeof(*csdev), GFP_KERNEL);
1331 if (!csdev) {
1332 ret = -ENOMEM;
1333 goto err_out;
1334 }
1335
1336 csdev->pdata = desc->pdata;
1337
1338 csdev->type = desc->type;
1339 csdev->subtype = desc->subtype;
1340 csdev->ops = desc->ops;
1341 csdev->access = desc->access;
1342 csdev->orphan = true;
1343
1344 csdev->dev.type = &coresight_dev_type[desc->type];
1345 csdev->dev.groups = desc->groups;
1346 csdev->dev.parent = desc->dev;
1347 csdev->dev.release = coresight_device_release;
1348 csdev->dev.bus = &coresight_bustype;
1349 /*
1350 * Hold the reference to our parent device. This will be
1351 * dropped only in coresight_device_release().
1352 */
1353 csdev->dev.fwnode = fwnode_handle_get(dev_fwnode(desc->dev));
1354 dev_set_name(&csdev->dev, "%s", desc->name);
1355
1356 if (csdev->type == CORESIGHT_DEV_TYPE_SINK ||
1357 csdev->type == CORESIGHT_DEV_TYPE_LINKSINK) {
1358 raw_spin_lock_init(&csdev->perf_sink_id_map.lock);
1359 csdev->perf_sink_id_map.cpu_map = alloc_percpu(atomic_t);
1360 if (!csdev->perf_sink_id_map.cpu_map) {
1361 kfree(csdev);
1362 ret = -ENOMEM;
1363 goto err_out;
1364 }
1365 }
1366 /*
1367 * Make sure the device registration and the connection fixup
1368 * are synchronised, so that we don't see uninitialised devices
1369 * on the coresight bus while trying to resolve the connections.
1370 */
1371 mutex_lock(&coresight_mutex);
1372
1373 ret = device_register(&csdev->dev);
1374 if (ret) {
1375 put_device(&csdev->dev);
1376 /*
1377 * All resources are free'd explicitly via
1378 * coresight_device_release(), triggered from put_device().
1379 */
1380 goto out_unlock;
1381 }
1382
1383 if ((csdev->type == CORESIGHT_DEV_TYPE_SINK ||
1384 csdev->type == CORESIGHT_DEV_TYPE_LINKSINK) &&
1385 sink_ops(csdev)->alloc_buffer) {
1386 ret = etm_perf_add_symlink_sink(csdev);
1387
1388 if (ret) {
1389 device_unregister(&csdev->dev);
1390 /*
1391 * As with the above, all resources are free'd
1392 * explicitly via coresight_device_release() triggered
1393 * from put_device(), which is in turn called from
1394 * function device_unregister().
1395 */
1396 goto out_unlock;
1397 }
1398 }
1399 /* Device is now registered */
1400 registered = true;
1401
1402 ret = coresight_create_conns_sysfs_group(csdev);
1403 if (!ret)
1404 ret = coresight_fixup_orphan_conns(csdev);
1405
1406 out_unlock:
1407 mutex_unlock(&coresight_mutex);
1408 /* Success */
1409 if (!ret) {
1410 if (cti_assoc_ops && cti_assoc_ops->add)
1411 cti_assoc_ops->add(csdev);
1412 return csdev;
1413 }
1414
1415 /* Unregister the device if needed */
1416 if (registered) {
1417 coresight_unregister(csdev);
1418 return ERR_PTR(ret);
1419 }
1420
1421 err_out:
1422 /* Cleanup the connection information */
1423 coresight_release_platform_data(NULL, desc->dev, desc->pdata);
1424 return ERR_PTR(ret);
1425 }
1426 EXPORT_SYMBOL_GPL(coresight_register);
1427
coresight_unregister(struct coresight_device * csdev)1428 void coresight_unregister(struct coresight_device *csdev)
1429 {
1430 etm_perf_del_symlink_sink(csdev);
1431 /* Remove references of that device in the topology */
1432 if (cti_assoc_ops && cti_assoc_ops->remove)
1433 cti_assoc_ops->remove(csdev);
1434 coresight_remove_conns(csdev);
1435 coresight_clear_default_sink(csdev);
1436 coresight_release_platform_data(csdev, csdev->dev.parent, csdev->pdata);
1437 device_unregister(&csdev->dev);
1438 }
1439 EXPORT_SYMBOL_GPL(coresight_unregister);
1440
1441
1442 /*
1443 * coresight_search_device_idx - Search the fwnode handle of a device
1444 * in the given dev_idx list. Must be called with the coresight_mutex held.
1445 *
1446 * Returns the index of the entry, when found. Otherwise, -ENOENT.
1447 */
coresight_search_device_idx(struct coresight_dev_list * dict,struct fwnode_handle * fwnode)1448 static int coresight_search_device_idx(struct coresight_dev_list *dict,
1449 struct fwnode_handle *fwnode)
1450 {
1451 int i;
1452
1453 for (i = 0; i < dict->nr_idx; i++)
1454 if (dict->fwnode_list[i] == fwnode)
1455 return i;
1456 return -ENOENT;
1457 }
1458
coresight_compare_type(enum coresight_dev_type type_a,union coresight_dev_subtype subtype_a,enum coresight_dev_type type_b,union coresight_dev_subtype subtype_b)1459 static bool coresight_compare_type(enum coresight_dev_type type_a,
1460 union coresight_dev_subtype subtype_a,
1461 enum coresight_dev_type type_b,
1462 union coresight_dev_subtype subtype_b)
1463 {
1464 if (type_a != type_b)
1465 return false;
1466
1467 switch (type_a) {
1468 case CORESIGHT_DEV_TYPE_SINK:
1469 return subtype_a.sink_subtype == subtype_b.sink_subtype;
1470 case CORESIGHT_DEV_TYPE_LINK:
1471 return subtype_a.link_subtype == subtype_b.link_subtype;
1472 case CORESIGHT_DEV_TYPE_LINKSINK:
1473 return subtype_a.link_subtype == subtype_b.link_subtype &&
1474 subtype_a.sink_subtype == subtype_b.sink_subtype;
1475 case CORESIGHT_DEV_TYPE_SOURCE:
1476 return subtype_a.source_subtype == subtype_b.source_subtype;
1477 case CORESIGHT_DEV_TYPE_HELPER:
1478 return subtype_a.helper_subtype == subtype_b.helper_subtype;
1479 default:
1480 return false;
1481 }
1482 }
1483
1484 struct coresight_device *
coresight_find_input_type(struct coresight_platform_data * pdata,enum coresight_dev_type type,union coresight_dev_subtype subtype)1485 coresight_find_input_type(struct coresight_platform_data *pdata,
1486 enum coresight_dev_type type,
1487 union coresight_dev_subtype subtype)
1488 {
1489 int i;
1490 struct coresight_connection *conn;
1491
1492 for (i = 0; i < pdata->nr_inconns; ++i) {
1493 conn = pdata->in_conns[i];
1494 if (conn &&
1495 coresight_compare_type(type, subtype, conn->src_dev->type,
1496 conn->src_dev->subtype))
1497 return conn->src_dev;
1498 }
1499 return NULL;
1500 }
1501 EXPORT_SYMBOL_GPL(coresight_find_input_type);
1502
1503 struct coresight_device *
coresight_find_output_type(struct coresight_platform_data * pdata,enum coresight_dev_type type,union coresight_dev_subtype subtype)1504 coresight_find_output_type(struct coresight_platform_data *pdata,
1505 enum coresight_dev_type type,
1506 union coresight_dev_subtype subtype)
1507 {
1508 int i;
1509 struct coresight_connection *conn;
1510
1511 for (i = 0; i < pdata->nr_outconns; ++i) {
1512 conn = pdata->out_conns[i];
1513 if (conn->dest_dev &&
1514 coresight_compare_type(type, subtype, conn->dest_dev->type,
1515 conn->dest_dev->subtype))
1516 return conn->dest_dev;
1517 }
1518 return NULL;
1519 }
1520 EXPORT_SYMBOL_GPL(coresight_find_output_type);
1521
coresight_loses_context_with_cpu(struct device * dev)1522 bool coresight_loses_context_with_cpu(struct device *dev)
1523 {
1524 return fwnode_property_present(dev_fwnode(dev),
1525 "arm,coresight-loses-context-with-cpu");
1526 }
1527 EXPORT_SYMBOL_GPL(coresight_loses_context_with_cpu);
1528
1529 /*
1530 * coresight_alloc_device_name - Get an index for a given device in the
1531 * device index list specific to a driver. An index is allocated for a
1532 * device and is tracked with the fwnode_handle to prevent allocating
1533 * duplicate indices for the same device (e.g, if we defer probing of
1534 * a device due to dependencies), in case the index is requested again.
1535 */
coresight_alloc_device_name(struct coresight_dev_list * dict,struct device * dev)1536 char *coresight_alloc_device_name(struct coresight_dev_list *dict,
1537 struct device *dev)
1538 {
1539 int idx;
1540 char *name = NULL;
1541 struct fwnode_handle **list;
1542
1543 mutex_lock(&coresight_mutex);
1544
1545 idx = coresight_search_device_idx(dict, dev_fwnode(dev));
1546 if (idx < 0) {
1547 /* Make space for the new entry */
1548 idx = dict->nr_idx;
1549 list = krealloc_array(dict->fwnode_list,
1550 idx + 1, sizeof(*dict->fwnode_list),
1551 GFP_KERNEL);
1552 if (ZERO_OR_NULL_PTR(list)) {
1553 idx = -ENOMEM;
1554 goto done;
1555 }
1556
1557 list[idx] = dev_fwnode(dev);
1558 dict->fwnode_list = list;
1559 dict->nr_idx = idx + 1;
1560 }
1561
1562 name = devm_kasprintf(dev, GFP_KERNEL, "%s%d", dict->pfx, idx);
1563 done:
1564 mutex_unlock(&coresight_mutex);
1565 return name;
1566 }
1567 EXPORT_SYMBOL_GPL(coresight_alloc_device_name);
1568
1569 const struct bus_type coresight_bustype = {
1570 .name = "coresight",
1571 };
1572
coresight_panic_sync(struct device * dev,void * data)1573 static int coresight_panic_sync(struct device *dev, void *data)
1574 {
1575 int mode;
1576 struct coresight_device *csdev;
1577
1578 /* Run through panic sync handlers for all enabled devices */
1579 csdev = container_of(dev, struct coresight_device, dev);
1580 mode = coresight_get_mode(csdev);
1581
1582 if ((mode == CS_MODE_SYSFS) || (mode == CS_MODE_PERF)) {
1583 if (panic_ops(csdev))
1584 panic_ops(csdev)->sync(csdev);
1585 }
1586
1587 return 0;
1588 }
1589
coresight_panic_cb(struct notifier_block * self,unsigned long v,void * p)1590 static int coresight_panic_cb(struct notifier_block *self,
1591 unsigned long v, void *p)
1592 {
1593 bus_for_each_dev(&coresight_bustype, NULL, NULL,
1594 coresight_panic_sync);
1595
1596 return 0;
1597 }
1598
1599 static struct notifier_block coresight_notifier = {
1600 .notifier_call = coresight_panic_cb,
1601 };
1602
coresight_init(void)1603 static int __init coresight_init(void)
1604 {
1605 int ret;
1606
1607 ret = bus_register(&coresight_bustype);
1608 if (ret)
1609 return ret;
1610
1611 ret = etm_perf_init();
1612 if (ret)
1613 goto exit_bus_unregister;
1614
1615 /* Register function to be called for panic */
1616 ret = atomic_notifier_chain_register(&panic_notifier_list,
1617 &coresight_notifier);
1618 if (ret)
1619 goto exit_perf;
1620
1621 /* initialise the coresight syscfg API */
1622 ret = cscfg_init();
1623 if (!ret)
1624 return 0;
1625
1626 atomic_notifier_chain_unregister(&panic_notifier_list,
1627 &coresight_notifier);
1628 exit_perf:
1629 etm_perf_exit();
1630 exit_bus_unregister:
1631 bus_unregister(&coresight_bustype);
1632 return ret;
1633 }
1634
coresight_exit(void)1635 static void __exit coresight_exit(void)
1636 {
1637 cscfg_exit();
1638 atomic_notifier_chain_unregister(&panic_notifier_list,
1639 &coresight_notifier);
1640 etm_perf_exit();
1641 bus_unregister(&coresight_bustype);
1642 }
1643
1644 module_init(coresight_init);
1645 module_exit(coresight_exit);
1646
coresight_init_driver(const char * drv,struct amba_driver * amba_drv,struct platform_driver * pdev_drv,struct module * owner)1647 int coresight_init_driver(const char *drv, struct amba_driver *amba_drv,
1648 struct platform_driver *pdev_drv, struct module *owner)
1649 {
1650 int ret;
1651
1652 ret = __amba_driver_register(amba_drv, owner);
1653 if (ret) {
1654 pr_err("%s: error registering AMBA driver\n", drv);
1655 return ret;
1656 }
1657
1658 ret = __platform_driver_register(pdev_drv, owner);
1659 if (!ret)
1660 return 0;
1661
1662 pr_err("%s: error registering platform driver\n", drv);
1663 amba_driver_unregister(amba_drv);
1664 return ret;
1665 }
1666 EXPORT_SYMBOL_GPL(coresight_init_driver);
1667
coresight_remove_driver(struct amba_driver * amba_drv,struct platform_driver * pdev_drv)1668 void coresight_remove_driver(struct amba_driver *amba_drv,
1669 struct platform_driver *pdev_drv)
1670 {
1671 amba_driver_unregister(amba_drv);
1672 platform_driver_unregister(pdev_drv);
1673 }
1674 EXPORT_SYMBOL_GPL(coresight_remove_driver);
1675
coresight_etm_get_trace_id(struct coresight_device * csdev,enum cs_mode mode,struct coresight_device * sink)1676 int coresight_etm_get_trace_id(struct coresight_device *csdev, enum cs_mode mode,
1677 struct coresight_device *sink)
1678 {
1679 int cpu, trace_id;
1680
1681 if (csdev->type != CORESIGHT_DEV_TYPE_SOURCE || !source_ops(csdev)->cpu_id)
1682 return -EINVAL;
1683
1684 cpu = source_ops(csdev)->cpu_id(csdev);
1685 switch (mode) {
1686 case CS_MODE_SYSFS:
1687 trace_id = coresight_trace_id_get_cpu_id(cpu);
1688 break;
1689 case CS_MODE_PERF:
1690 if (WARN_ON(!sink))
1691 return -EINVAL;
1692
1693 trace_id = coresight_trace_id_get_cpu_id_map(cpu, &sink->perf_sink_id_map);
1694 break;
1695 default:
1696 trace_id = -EINVAL;
1697 break;
1698 }
1699
1700 if (!IS_VALID_CS_TRACE_ID(trace_id))
1701 dev_err(&csdev->dev,
1702 "Failed to allocate trace ID on CPU%d\n", cpu);
1703
1704 return trace_id;
1705 }
1706 EXPORT_SYMBOL_GPL(coresight_etm_get_trace_id);
1707
1708 /*
1709 * Attempt to find and enable programming clock (pclk) and trace clock (atclk)
1710 * for the given device.
1711 *
1712 * For ACPI devices, clocks are controlled by firmware, so bail out early in
1713 * this case. Also, skip enabling pclk if the clock is managed by the AMBA
1714 * bus driver instead.
1715 *
1716 * atclk is an optional clock, it will be only enabled when it is existed.
1717 * Otherwise, a NULL pointer will be returned to caller.
1718 *
1719 * Returns: '0' on Success; Error code otherwise.
1720 */
coresight_get_enable_clocks(struct device * dev,struct clk ** pclk,struct clk ** atclk)1721 int coresight_get_enable_clocks(struct device *dev, struct clk **pclk,
1722 struct clk **atclk)
1723 {
1724 WARN_ON(!pclk);
1725
1726 if (has_acpi_companion(dev))
1727 return 0;
1728
1729 if (!dev_is_amba(dev)) {
1730 /*
1731 * "apb_pclk" is the default clock name for an Arm Primecell
1732 * peripheral, while "apb" is used only by the CTCU driver.
1733 *
1734 * For easier maintenance, CoreSight drivers should use
1735 * "apb_pclk" as the programming clock name.
1736 */
1737 *pclk = devm_clk_get_optional_enabled(dev, "apb_pclk");
1738 if (!*pclk)
1739 *pclk = devm_clk_get_optional_enabled(dev, "apb");
1740 if (IS_ERR(*pclk))
1741 return PTR_ERR(*pclk);
1742 }
1743
1744 /* Initialization of atclk is skipped if it is a NULL pointer. */
1745 if (atclk) {
1746 *atclk = devm_clk_get_optional_enabled(dev, "atclk");
1747 if (IS_ERR(*atclk))
1748 return PTR_ERR(*atclk);
1749 }
1750
1751 return 0;
1752 }
1753 EXPORT_SYMBOL_GPL(coresight_get_enable_clocks);
1754
1755 MODULE_LICENSE("GPL v2");
1756 MODULE_AUTHOR("Pratik Patel <pratikp@codeaurora.org>");
1757 MODULE_AUTHOR("Mathieu Poirier <mathieu.poirier@linaro.org>");
1758 MODULE_DESCRIPTION("Arm CoreSight tracer driver");
1759