xref: /linux/drivers/interconnect/core.c (revision 8c04c1292dca29a57ea82c6a44348be49749fc22)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Interconnect framework core driver
4  *
5  * Copyright (c) 2017-2019, Linaro Ltd.
6  * Author: Georgi Djakov <georgi.djakov@linaro.org>
7  */
8 
9 #include <linux/debugfs.h>
10 #include <linux/device.h>
11 #include <linux/idr.h>
12 #include <linux/init.h>
13 #include <linux/interconnect.h>
14 #include <linux/interconnect-provider.h>
15 #include <linux/list.h>
16 #include <linux/mutex.h>
17 #include <linux/slab.h>
18 #include <linux/of.h>
19 #include <linux/overflow.h>
20 
21 #include "internal.h"
22 
23 #define ICC_DYN_ID_START 100000
24 
25 #define CREATE_TRACE_POINTS
26 #include "trace.h"
27 
28 static DEFINE_IDR(icc_idr);
29 static LIST_HEAD(icc_providers);
30 static int providers_count;
31 static bool synced_state;
32 static DEFINE_MUTEX(icc_lock);
33 static DEFINE_MUTEX(icc_bw_lock);
34 static struct dentry *icc_debugfs_dir;
35 
36 static void icc_summary_show_one(struct seq_file *s, struct icc_node *n)
37 {
38 	if (!n)
39 		return;
40 
41 	seq_printf(s, "%-42s %12u %12u\n",
42 		   n->name, n->avg_bw, n->peak_bw);
43 }
44 
45 static int icc_summary_show(struct seq_file *s, void *data)
46 {
47 	struct icc_provider *provider;
48 
49 	seq_puts(s, " node                                  tag          avg         peak\n");
50 	seq_puts(s, "--------------------------------------------------------------------\n");
51 
52 	mutex_lock(&icc_lock);
53 
54 	list_for_each_entry(provider, &icc_providers, provider_list) {
55 		struct icc_node *n;
56 
57 		list_for_each_entry(n, &provider->nodes, node_list) {
58 			struct icc_req *r;
59 
60 			icc_summary_show_one(s, n);
61 			hlist_for_each_entry(r, &n->req_list, req_node) {
62 				u32 avg_bw = 0, peak_bw = 0;
63 
64 				if (!r->dev)
65 					continue;
66 
67 				if (r->enabled) {
68 					avg_bw = r->avg_bw;
69 					peak_bw = r->peak_bw;
70 				}
71 
72 				seq_printf(s, "  %-27s %12u %12u %12u\n",
73 					   dev_name(r->dev), r->tag, avg_bw, peak_bw);
74 			}
75 		}
76 	}
77 
78 	mutex_unlock(&icc_lock);
79 
80 	return 0;
81 }
82 DEFINE_SHOW_ATTRIBUTE(icc_summary);
83 
84 static void icc_graph_show_link(struct seq_file *s, int level,
85 				struct icc_node *n, struct icc_node *m)
86 {
87 	seq_printf(s, "%s\"%d:%s\" -> \"%d:%s\"\n",
88 		   level == 2 ? "\t\t" : "\t",
89 		   n->id, n->name, m->id, m->name);
90 }
91 
92 static void icc_graph_show_node(struct seq_file *s, struct icc_node *n)
93 {
94 	seq_printf(s, "\t\t\"%d:%s\" [label=\"%d:%s",
95 		   n->id, n->name, n->id, n->name);
96 	seq_printf(s, "\n\t\t\t|avg_bw=%ukBps", n->avg_bw);
97 	seq_printf(s, "\n\t\t\t|peak_bw=%ukBps", n->peak_bw);
98 	seq_puts(s, "\"]\n");
99 }
100 
101 static int icc_graph_show(struct seq_file *s, void *data)
102 {
103 	struct icc_provider *provider;
104 	struct icc_node *n;
105 	int cluster_index = 0;
106 	int i;
107 
108 	seq_puts(s, "digraph {\n\trankdir = LR\n\tnode [shape = record]\n");
109 	mutex_lock(&icc_lock);
110 
111 	/* draw providers as cluster subgraphs */
112 	cluster_index = 0;
113 	list_for_each_entry(provider, &icc_providers, provider_list) {
114 		seq_printf(s, "\tsubgraph cluster_%d {\n", ++cluster_index);
115 		if (provider->dev)
116 			seq_printf(s, "\t\tlabel = \"%s\"\n",
117 				   dev_name(provider->dev));
118 
119 		/* draw nodes */
120 		list_for_each_entry(n, &provider->nodes, node_list)
121 			icc_graph_show_node(s, n);
122 
123 		/* draw internal links */
124 		list_for_each_entry(n, &provider->nodes, node_list)
125 			for (i = 0; i < n->num_links; ++i)
126 				if (n->provider == n->links[i]->provider)
127 					icc_graph_show_link(s, 2, n,
128 							    n->links[i]);
129 
130 		seq_puts(s, "\t}\n");
131 	}
132 
133 	/* draw external links */
134 	list_for_each_entry(provider, &icc_providers, provider_list)
135 		list_for_each_entry(n, &provider->nodes, node_list)
136 			for (i = 0; i < n->num_links; ++i)
137 				if (n->provider != n->links[i]->provider)
138 					icc_graph_show_link(s, 1, n,
139 							    n->links[i]);
140 
141 	mutex_unlock(&icc_lock);
142 	seq_puts(s, "}");
143 
144 	return 0;
145 }
146 DEFINE_SHOW_ATTRIBUTE(icc_graph);
147 
148 static struct icc_node *node_find(const int id)
149 {
150 	return idr_find(&icc_idr, id);
151 }
152 
153 static struct icc_node *node_find_by_name(const char *name)
154 {
155 	struct icc_provider *provider;
156 	struct icc_node *n;
157 
158 	list_for_each_entry(provider, &icc_providers, provider_list) {
159 		list_for_each_entry(n, &provider->nodes, node_list) {
160 			if (!strcmp(n->name, name))
161 				return n;
162 		}
163 	}
164 
165 	return NULL;
166 }
167 
168 static struct icc_path *path_init(struct device *dev, struct icc_node *dst,
169 				  ssize_t num_nodes)
170 {
171 	struct icc_node *node = dst;
172 	struct icc_path *path;
173 	int i;
174 
175 	path = kzalloc_flex(*path, reqs, num_nodes);
176 	if (!path)
177 		return ERR_PTR(-ENOMEM);
178 
179 	path->num_nodes = num_nodes;
180 
181 	mutex_lock(&icc_bw_lock);
182 
183 	for (i = num_nodes - 1; i >= 0; i--) {
184 		node->provider->users++;
185 		hlist_add_head(&path->reqs[i].req_node, &node->req_list);
186 		path->reqs[i].node = node;
187 		path->reqs[i].dev = dev;
188 		path->reqs[i].enabled = true;
189 		/* reference to previous node was saved during path traversal */
190 		node = node->reverse;
191 	}
192 
193 	mutex_unlock(&icc_bw_lock);
194 
195 	return path;
196 }
197 
198 static struct icc_path *path_find(struct device *dev, struct icc_node *src,
199 				  struct icc_node *dst)
200 {
201 	struct icc_path *path = ERR_PTR(-EPROBE_DEFER);
202 	struct icc_node *n, *node = NULL;
203 	struct list_head traverse_list;
204 	struct list_head edge_list;
205 	struct list_head visited_list;
206 	size_t i, depth = 1;
207 	bool found = false;
208 
209 	INIT_LIST_HEAD(&traverse_list);
210 	INIT_LIST_HEAD(&edge_list);
211 	INIT_LIST_HEAD(&visited_list);
212 
213 	list_add(&src->search_list, &traverse_list);
214 	src->reverse = NULL;
215 
216 	do {
217 		list_for_each_entry_safe(node, n, &traverse_list, search_list) {
218 			if (node == dst) {
219 				found = true;
220 				list_splice_init(&edge_list, &visited_list);
221 				list_splice_init(&traverse_list, &visited_list);
222 				break;
223 			}
224 			for (i = 0; i < node->num_links; i++) {
225 				struct icc_node *tmp = node->links[i];
226 
227 				if (!tmp) {
228 					path = ERR_PTR(-ENOENT);
229 					goto out;
230 				}
231 
232 				if (tmp->is_traversed)
233 					continue;
234 
235 				tmp->is_traversed = true;
236 				tmp->reverse = node;
237 				list_add_tail(&tmp->search_list, &edge_list);
238 			}
239 		}
240 
241 		if (found)
242 			break;
243 
244 		list_splice_init(&traverse_list, &visited_list);
245 		list_splice_init(&edge_list, &traverse_list);
246 
247 		/* count the hops including the source */
248 		depth++;
249 
250 	} while (!list_empty(&traverse_list));
251 
252 out:
253 
254 	/* reset the traversed state */
255 	list_for_each_entry_reverse(n, &visited_list, search_list)
256 		n->is_traversed = false;
257 
258 	if (found)
259 		path = path_init(dev, dst, depth);
260 
261 	return path;
262 }
263 
264 /*
265  * We want the path to honor all bandwidth requests, so the average and peak
266  * bandwidth requirements from each consumer are aggregated at each node.
267  * The aggregation is platform specific, so each platform can customize it by
268  * implementing its own aggregate() function.
269  */
270 
271 static int aggregate_requests(struct icc_node *node)
272 {
273 	struct icc_provider *p = node->provider;
274 	struct icc_req *r;
275 	u32 avg_bw, peak_bw;
276 
277 	node->avg_bw = 0;
278 	node->peak_bw = 0;
279 
280 	if (p->pre_aggregate)
281 		p->pre_aggregate(node);
282 
283 	hlist_for_each_entry(r, &node->req_list, req_node) {
284 		if (r->enabled) {
285 			avg_bw = r->avg_bw;
286 			peak_bw = r->peak_bw;
287 		} else {
288 			avg_bw = 0;
289 			peak_bw = 0;
290 		}
291 		p->aggregate(node, r->tag, avg_bw, peak_bw,
292 			     &node->avg_bw, &node->peak_bw);
293 
294 		/* during boot use the initial bandwidth as a floor value */
295 		if (!synced_state) {
296 			node->avg_bw = max(node->avg_bw, node->init_avg);
297 			node->peak_bw = max(node->peak_bw, node->init_peak);
298 		}
299 	}
300 
301 	return 0;
302 }
303 
304 static int apply_constraints(struct icc_path *path)
305 {
306 	struct icc_node *next, *prev = NULL;
307 	struct icc_provider *p;
308 	int ret = -EINVAL;
309 	int i;
310 
311 	for (i = 0; i < path->num_nodes; i++) {
312 		next = path->reqs[i].node;
313 		p = next->provider;
314 
315 		/* both endpoints should be valid master-slave pairs */
316 		if (!prev || (p != prev->provider && !p->inter_set)) {
317 			prev = next;
318 			continue;
319 		}
320 
321 		/* set the constraints */
322 		ret = p->set(prev, next);
323 		if (ret)
324 			goto out;
325 
326 		prev = next;
327 	}
328 out:
329 	return ret;
330 }
331 
332 int icc_std_aggregate(struct icc_node *node, u32 tag, u32 avg_bw,
333 		      u32 peak_bw, u32 *agg_avg, u32 *agg_peak)
334 {
335 	*agg_avg += avg_bw;
336 	*agg_peak = max(*agg_peak, peak_bw);
337 
338 	return 0;
339 }
340 EXPORT_SYMBOL_GPL(icc_std_aggregate);
341 
342 /* of_icc_xlate_onecell() - Translate function using a single index.
343  * @spec: OF phandle args to map into an interconnect node.
344  * @data: private data (pointer to struct icc_onecell_data)
345  *
346  * This is a generic translate function that can be used to model simple
347  * interconnect providers that have one device tree node and provide
348  * multiple interconnect nodes. A single cell is used as an index into
349  * an array of icc nodes specified in the icc_onecell_data struct when
350  * registering the provider.
351  */
352 struct icc_node *of_icc_xlate_onecell(const struct of_phandle_args *spec,
353 				      void *data)
354 {
355 	struct icc_onecell_data *icc_data = data;
356 	unsigned int idx = spec->args[0];
357 
358 	if (idx >= icc_data->num_nodes) {
359 		pr_err("%s: invalid index %u\n", __func__, idx);
360 		return ERR_PTR(-EINVAL);
361 	}
362 
363 	return icc_data->nodes[idx];
364 }
365 EXPORT_SYMBOL_GPL(of_icc_xlate_onecell);
366 
367 /**
368  * of_icc_get_from_provider() - Look-up interconnect node
369  * @spec: OF phandle args to use for look-up
370  *
371  * Looks for interconnect provider under the node specified by @spec and if
372  * found, uses xlate function of the provider to map phandle args to node.
373  *
374  * Returns a valid pointer to struct icc_node_data on success or ERR_PTR()
375  * on failure.
376  */
377 struct icc_node_data *of_icc_get_from_provider(const struct of_phandle_args *spec)
378 {
379 	struct icc_node *node = ERR_PTR(-EPROBE_DEFER);
380 	struct icc_node_data *data = NULL;
381 	struct icc_provider *provider;
382 
383 	if (!spec)
384 		return ERR_PTR(-EINVAL);
385 
386 	mutex_lock(&icc_lock);
387 	list_for_each_entry(provider, &icc_providers, provider_list) {
388 		if (device_match_of_node(provider->dev, spec->np)) {
389 			if (provider->xlate_extended) {
390 				data = provider->xlate_extended(spec, provider->data);
391 				if (!IS_ERR(data)) {
392 					node = data->node;
393 					break;
394 				}
395 			} else {
396 				node = provider->xlate(spec, provider->data);
397 				if (!IS_ERR(node))
398 					break;
399 			}
400 		}
401 	}
402 	mutex_unlock(&icc_lock);
403 
404 	if (!node)
405 		return ERR_PTR(-EINVAL);
406 
407 	if (IS_ERR(node))
408 		return ERR_CAST(node);
409 
410 	if (!data) {
411 		data = kzalloc_obj(*data);
412 		if (!data)
413 			return ERR_PTR(-ENOMEM);
414 		data->node = node;
415 	}
416 
417 	return data;
418 }
419 EXPORT_SYMBOL_GPL(of_icc_get_from_provider);
420 
421 static void devm_icc_release(struct device *dev, void *res)
422 {
423 	icc_put(*(struct icc_path **)res);
424 }
425 
426 struct icc_path *devm_of_icc_get(struct device *dev, const char *name)
427 {
428 	struct icc_path **ptr, *path;
429 
430 	ptr = devres_alloc(devm_icc_release, sizeof(*ptr), GFP_KERNEL);
431 	if (!ptr)
432 		return ERR_PTR(-ENOMEM);
433 
434 	path = of_icc_get(dev, name);
435 	if (!IS_ERR_OR_NULL(path)) {
436 		*ptr = path;
437 		devres_add(dev, ptr);
438 	} else {
439 		devres_free(ptr);
440 	}
441 
442 	return path;
443 }
444 EXPORT_SYMBOL_GPL(devm_of_icc_get);
445 
446 struct icc_path *devm_of_icc_get_by_index(struct device *dev, int idx)
447 {
448 	struct icc_path **ptr, *path;
449 
450 	ptr = devres_alloc(devm_icc_release, sizeof(*ptr), GFP_KERNEL);
451 	if (!ptr)
452 		return ERR_PTR(-ENOMEM);
453 
454 	path = of_icc_get_by_index(dev, idx);
455 	if (!IS_ERR(path)) {
456 		*ptr = path;
457 		devres_add(dev, ptr);
458 	} else {
459 		devres_free(ptr);
460 	}
461 
462 	return path;
463 }
464 EXPORT_SYMBOL_GPL(devm_of_icc_get_by_index);
465 
466 /**
467  * of_icc_get_by_index() - get a path handle from a DT node based on index
468  * @dev: device pointer for the consumer device
469  * @idx: interconnect path index
470  *
471  * This function will search for a path between two endpoints and return an
472  * icc_path handle on success. Use icc_put() to release constraints when they
473  * are not needed anymore.
474  * If the interconnect API is disabled, NULL is returned and the consumer
475  * drivers will still build. Drivers are free to handle this specifically,
476  * but they don't have to.
477  *
478  * Return: icc_path pointer on success or ERR_PTR() on error. NULL is returned
479  * when the API is disabled or the "interconnects" DT property is missing.
480  */
481 struct icc_path *of_icc_get_by_index(struct device *dev, int idx)
482 {
483 	struct icc_path *path;
484 	struct icc_node_data *src_data, *dst_data;
485 	struct device_node *np;
486 	struct of_phandle_args src_args, dst_args;
487 	int ret;
488 
489 	if (!dev || !dev->of_node)
490 		return ERR_PTR(-ENODEV);
491 
492 	np = dev->of_node;
493 
494 	/*
495 	 * When the consumer DT node do not have "interconnects" property
496 	 * return a NULL path to skip setting constraints.
497 	 */
498 	if (!of_property_present(np, "interconnects"))
499 		return NULL;
500 
501 	/*
502 	 * We use a combination of phandle and specifier for endpoint. For now
503 	 * lets support only global ids and extend this in the future if needed
504 	 * without breaking DT compatibility.
505 	 */
506 	ret = of_parse_phandle_with_args(np, "interconnects",
507 					 "#interconnect-cells", idx * 2,
508 					 &src_args);
509 	if (ret)
510 		return ERR_PTR(ret);
511 
512 	of_node_put(src_args.np);
513 
514 	ret = of_parse_phandle_with_args(np, "interconnects",
515 					 "#interconnect-cells", idx * 2 + 1,
516 					 &dst_args);
517 	if (ret)
518 		return ERR_PTR(ret);
519 
520 	of_node_put(dst_args.np);
521 
522 	src_data = of_icc_get_from_provider(&src_args);
523 
524 	if (IS_ERR(src_data)) {
525 		dev_err_probe(dev, PTR_ERR(src_data), "error finding src node\n");
526 		return ERR_CAST(src_data);
527 	}
528 
529 	dst_data = of_icc_get_from_provider(&dst_args);
530 
531 	if (IS_ERR(dst_data)) {
532 		dev_err_probe(dev, PTR_ERR(dst_data), "error finding dst node\n");
533 		kfree(src_data);
534 		return ERR_CAST(dst_data);
535 	}
536 
537 	mutex_lock(&icc_lock);
538 	path = path_find(dev, src_data->node, dst_data->node);
539 	mutex_unlock(&icc_lock);
540 	if (IS_ERR(path)) {
541 		dev_err(dev, "%s: invalid path=%ld\n", __func__, PTR_ERR(path));
542 		goto free_icc_data;
543 	}
544 
545 	if (src_data->tag && src_data->tag == dst_data->tag)
546 		icc_set_tag(path, src_data->tag);
547 
548 	path->name = kasprintf(GFP_KERNEL, "%s-%s",
549 			       src_data->node->name, dst_data->node->name);
550 	if (!path->name) {
551 		kfree(path);
552 		path = ERR_PTR(-ENOMEM);
553 	}
554 
555 free_icc_data:
556 	kfree(src_data);
557 	kfree(dst_data);
558 	return path;
559 }
560 EXPORT_SYMBOL_GPL(of_icc_get_by_index);
561 
562 /**
563  * of_icc_get() - get a path handle from a DT node based on name
564  * @dev: device pointer for the consumer device
565  * @name: interconnect path name
566  *
567  * This function will search for a path between two endpoints and return an
568  * icc_path handle on success. Use icc_put() to release constraints when they
569  * are not needed anymore.
570  * If the interconnect API is disabled, NULL is returned and the consumer
571  * drivers will still build. Drivers are free to handle this specifically,
572  * but they don't have to.
573  *
574  * Return: icc_path pointer on success or ERR_PTR() on error. NULL is returned
575  * when the API is disabled or the "interconnects" DT property is missing.
576  */
577 struct icc_path *of_icc_get(struct device *dev, const char *name)
578 {
579 	struct device_node *np;
580 	int idx = 0;
581 
582 	if (!dev || !dev->of_node)
583 		return ERR_PTR(-ENODEV);
584 
585 	np = dev->of_node;
586 
587 	/*
588 	 * When the consumer DT node do not have "interconnects" property
589 	 * return a NULL path to skip setting constraints.
590 	 */
591 	if (!of_property_present(np, "interconnects"))
592 		return NULL;
593 
594 	/*
595 	 * We use a combination of phandle and specifier for endpoint. For now
596 	 * lets support only global ids and extend this in the future if needed
597 	 * without breaking DT compatibility.
598 	 */
599 	if (name) {
600 		idx = of_property_match_string(np, "interconnect-names", name);
601 		if (idx < 0)
602 			return ERR_PTR(idx);
603 	}
604 
605 	return of_icc_get_by_index(dev, idx);
606 }
607 EXPORT_SYMBOL_GPL(of_icc_get);
608 
609 /**
610  * icc_get() - get a path handle between two endpoints
611  * @dev: device pointer for the consumer device
612  * @src: source node name
613  * @dst: destination node name
614  *
615  * This function will search for a path between two endpoints and return an
616  * icc_path handle on success. Use icc_put() to release constraints when they
617  * are not needed anymore.
618  *
619  * Return: icc_path pointer on success or ERR_PTR() on error. NULL is returned
620  * when the API is disabled.
621  */
622 struct icc_path *icc_get(struct device *dev, const char *src, const char *dst)
623 {
624 	struct icc_node *src_node, *dst_node;
625 	struct icc_path *path = ERR_PTR(-EPROBE_DEFER);
626 
627 	mutex_lock(&icc_lock);
628 
629 	src_node = node_find_by_name(src);
630 	if (!src_node) {
631 		dev_err(dev, "%s: invalid src=%s\n", __func__, src);
632 		goto out;
633 	}
634 
635 	dst_node = node_find_by_name(dst);
636 	if (!dst_node) {
637 		dev_err(dev, "%s: invalid dst=%s\n", __func__, dst);
638 		goto out;
639 	}
640 
641 	path = path_find(dev, src_node, dst_node);
642 	if (IS_ERR(path)) {
643 		dev_err(dev, "%s: invalid path=%ld\n", __func__, PTR_ERR(path));
644 		goto out;
645 	}
646 
647 	path->name = kasprintf(GFP_KERNEL, "%s-%s", src_node->name, dst_node->name);
648 	if (!path->name) {
649 		kfree(path);
650 		path = ERR_PTR(-ENOMEM);
651 	}
652 out:
653 	mutex_unlock(&icc_lock);
654 	return path;
655 }
656 
657 /**
658  * icc_set_tag() - set an optional tag on a path
659  * @path: the path we want to tag
660  * @tag: the tag value
661  *
662  * This function allows consumers to append a tag to the requests associated
663  * with a path, so that a different aggregation could be done based on this tag.
664  */
665 void icc_set_tag(struct icc_path *path, u32 tag)
666 {
667 	int i;
668 
669 	if (!path)
670 		return;
671 
672 	mutex_lock(&icc_lock);
673 
674 	for (i = 0; i < path->num_nodes; i++)
675 		path->reqs[i].tag = tag;
676 
677 	mutex_unlock(&icc_lock);
678 }
679 EXPORT_SYMBOL_GPL(icc_set_tag);
680 
681 /**
682  * icc_get_name() - Get name of the icc path
683  * @path: interconnect path
684  *
685  * This function is used by an interconnect consumer to get the name of the icc
686  * path.
687  *
688  * Returns a valid pointer on success, or NULL otherwise.
689  */
690 const char *icc_get_name(struct icc_path *path)
691 {
692 	if (!path)
693 		return NULL;
694 
695 	return path->name;
696 }
697 EXPORT_SYMBOL_GPL(icc_get_name);
698 
699 /**
700  * icc_set_bw() - set bandwidth constraints on an interconnect path
701  * @path: interconnect path
702  * @avg_bw: average bandwidth in kilobytes per second
703  * @peak_bw: peak bandwidth in kilobytes per second
704  *
705  * This function is used by an interconnect consumer to express its own needs
706  * in terms of bandwidth for a previously requested path between two endpoints.
707  * The requests are aggregated and each node is updated accordingly. The entire
708  * path is locked by a mutex to ensure that the set() is completed.
709  * The @path can be NULL when the "interconnects" DT properties is missing,
710  * which will mean that no constraints will be set.
711  *
712  * Returns 0 on success, or an appropriate error code otherwise.
713  */
714 int icc_set_bw(struct icc_path *path, u32 avg_bw, u32 peak_bw)
715 {
716 	struct icc_node *node;
717 	u32 old_avg, old_peak;
718 	size_t i;
719 	int ret;
720 
721 	if (!path)
722 		return 0;
723 
724 	if (WARN_ON(IS_ERR(path) || !path->num_nodes))
725 		return -EINVAL;
726 
727 	mutex_lock(&icc_bw_lock);
728 
729 	old_avg = path->reqs[0].avg_bw;
730 	old_peak = path->reqs[0].peak_bw;
731 
732 	for (i = 0; i < path->num_nodes; i++) {
733 		node = path->reqs[i].node;
734 
735 		/* update the consumer request for this path */
736 		path->reqs[i].avg_bw = avg_bw;
737 		path->reqs[i].peak_bw = peak_bw;
738 
739 		/* aggregate requests for this node */
740 		aggregate_requests(node);
741 
742 		trace_icc_set_bw(path, node, i, avg_bw, peak_bw);
743 	}
744 
745 	ret = apply_constraints(path);
746 	if (ret) {
747 		pr_debug("interconnect: error applying constraints (%d)\n",
748 			 ret);
749 
750 		for (i = 0; i < path->num_nodes; i++) {
751 			node = path->reqs[i].node;
752 			path->reqs[i].avg_bw = old_avg;
753 			path->reqs[i].peak_bw = old_peak;
754 			aggregate_requests(node);
755 		}
756 		apply_constraints(path);
757 	}
758 
759 	mutex_unlock(&icc_bw_lock);
760 
761 	trace_icc_set_bw_end(path, ret);
762 
763 	return ret;
764 }
765 EXPORT_SYMBOL_GPL(icc_set_bw);
766 
767 static int __icc_enable(struct icc_path *path, bool enable)
768 {
769 	int i;
770 
771 	if (!path)
772 		return 0;
773 
774 	if (WARN_ON(IS_ERR(path) || !path->num_nodes))
775 		return -EINVAL;
776 
777 	mutex_lock(&icc_lock);
778 
779 	for (i = 0; i < path->num_nodes; i++)
780 		path->reqs[i].enabled = enable;
781 
782 	mutex_unlock(&icc_lock);
783 
784 	return icc_set_bw(path, path->reqs[0].avg_bw,
785 			  path->reqs[0].peak_bw);
786 }
787 
788 int icc_enable(struct icc_path *path)
789 {
790 	return __icc_enable(path, true);
791 }
792 EXPORT_SYMBOL_GPL(icc_enable);
793 
794 int icc_disable(struct icc_path *path)
795 {
796 	return __icc_enable(path, false);
797 }
798 EXPORT_SYMBOL_GPL(icc_disable);
799 
800 /**
801  * icc_put() - release the reference to the icc_path
802  * @path: interconnect path
803  *
804  * Use this function to release the constraints on a path when the path is
805  * no longer needed. The constraints will be re-aggregated.
806  */
807 void icc_put(struct icc_path *path)
808 {
809 	struct icc_node *node;
810 	size_t i;
811 	int ret;
812 
813 	if (!path || WARN_ON(IS_ERR(path)))
814 		return;
815 
816 	ret = icc_set_bw(path, 0, 0);
817 	if (ret)
818 		pr_err("%s: error (%d)\n", __func__, ret);
819 
820 	mutex_lock(&icc_lock);
821 	mutex_lock(&icc_bw_lock);
822 
823 	for (i = 0; i < path->num_nodes; i++) {
824 		node = path->reqs[i].node;
825 		hlist_del(&path->reqs[i].req_node);
826 		if (!WARN_ON(!node->provider->users))
827 			node->provider->users--;
828 	}
829 
830 	mutex_unlock(&icc_bw_lock);
831 	mutex_unlock(&icc_lock);
832 
833 	kfree(path->name);
834 	kfree(path);
835 }
836 EXPORT_SYMBOL_GPL(icc_put);
837 
838 static struct icc_node *icc_node_create_nolock(int id)
839 {
840 	struct icc_node *node;
841 
842 	if (id >= ICC_DYN_ID_START)
843 		return ERR_PTR(-EINVAL);
844 
845 	/* check if node already exists */
846 	node = node_find(id);
847 	if (node)
848 		return node;
849 
850 	node = kzalloc_obj(*node);
851 	if (!node)
852 		return ERR_PTR(-ENOMEM);
853 
854 	/* dynamic id allocation */
855 	if (id == ICC_ALLOC_DYN_ID)
856 		id = idr_alloc(&icc_idr, node, ICC_DYN_ID_START, 0, GFP_KERNEL);
857 	else
858 		id = idr_alloc(&icc_idr, node, id, id + 1, GFP_KERNEL);
859 
860 	if (id < 0) {
861 		WARN(1, "%s: couldn't get idr\n", __func__);
862 		kfree(node);
863 		return ERR_PTR(id);
864 	}
865 
866 	node->id = id;
867 
868 	return node;
869 }
870 
871 /**
872  * icc_node_create_dyn() - create a node with dynamic id
873  *
874  * Return: icc_node pointer on success, or ERR_PTR() on error
875  */
876 struct icc_node *icc_node_create_dyn(void)
877 {
878 	struct icc_node *node;
879 
880 	mutex_lock(&icc_lock);
881 
882 	node = icc_node_create_nolock(ICC_ALLOC_DYN_ID);
883 
884 	mutex_unlock(&icc_lock);
885 
886 	return node;
887 }
888 EXPORT_SYMBOL_GPL(icc_node_create_dyn);
889 
890 /**
891  * icc_node_create() - create a node
892  * @id: node id
893  *
894  * Return: icc_node pointer on success, or ERR_PTR() on error
895  */
896 struct icc_node *icc_node_create(int id)
897 {
898 	struct icc_node *node;
899 
900 	mutex_lock(&icc_lock);
901 
902 	node = icc_node_create_nolock(id);
903 
904 	mutex_unlock(&icc_lock);
905 
906 	return node;
907 }
908 EXPORT_SYMBOL_GPL(icc_node_create);
909 
910 /**
911  * icc_node_destroy() - destroy a node
912  * @id: node id
913  */
914 void icc_node_destroy(int id)
915 {
916 	struct icc_node *node;
917 
918 	mutex_lock(&icc_lock);
919 
920 	node = node_find(id);
921 	if (node) {
922 		idr_remove(&icc_idr, node->id);
923 		WARN_ON(!hlist_empty(&node->req_list));
924 	}
925 
926 	mutex_unlock(&icc_lock);
927 
928 	if (!node)
929 		return;
930 
931 	kfree(node->links);
932 	if (node->id >= ICC_DYN_ID_START)
933 		kfree(node->name);
934 	kfree(node);
935 }
936 EXPORT_SYMBOL_GPL(icc_node_destroy);
937 
938 /**
939  * icc_node_set_name() - set node name
940  * @node: node
941  * @provider: node provider
942  * @name: node name
943  *
944  * Return: 0 on success, or -ENOMEM on allocation failure
945  */
946 int icc_node_set_name(struct icc_node *node, const struct icc_provider *provider, const char *name)
947 {
948 	if (node->id >= ICC_DYN_ID_START) {
949 		node->name = kasprintf(GFP_KERNEL, "%s@%s", name,
950 				       dev_name(provider->dev));
951 		if (!node->name)
952 			return -ENOMEM;
953 	} else {
954 		node->name = name;
955 	}
956 
957 	return 0;
958 }
959 EXPORT_SYMBOL_GPL(icc_node_set_name);
960 
961 /**
962  * icc_link_nodes() - create link between two nodes
963  * @src_node: source node
964  * @dst_node: destination node
965  *
966  * Create a link between two nodes. The nodes might belong to different
967  * interconnect providers and the @dst_node might not exist (if the
968  * provider driver has not probed yet). So just create the @dst_node
969  * and when the actual provider driver is probed, the rest of the node
970  * data is filled.
971  *
972  * Return: 0 on success, or an error code otherwise
973  */
974 int icc_link_nodes(struct icc_node *src_node, struct icc_node **dst_node)
975 {
976 	struct icc_node **new;
977 	int ret = 0;
978 
979 	if (!src_node->provider)
980 		return -EINVAL;
981 
982 	mutex_lock(&icc_lock);
983 
984 	if (!*dst_node) {
985 		*dst_node = icc_node_create_nolock(ICC_ALLOC_DYN_ID);
986 
987 		if (IS_ERR(*dst_node)) {
988 			ret = PTR_ERR(*dst_node);
989 			goto out;
990 		}
991 	}
992 
993 	new = krealloc(src_node->links,
994 		       (src_node->num_links + 1) * sizeof(*src_node->links),
995 		       GFP_KERNEL);
996 	if (!new) {
997 		ret = -ENOMEM;
998 		goto out;
999 	}
1000 
1001 	src_node->links = new;
1002 	src_node->links[src_node->num_links++] = *dst_node;
1003 
1004 out:
1005 	mutex_unlock(&icc_lock);
1006 
1007 	return ret;
1008 }
1009 EXPORT_SYMBOL_GPL(icc_link_nodes);
1010 
1011 /**
1012  * icc_link_create() - create a link between two nodes
1013  * @node: source node id
1014  * @dst_id: destination node id
1015  *
1016  * Create a link between two nodes. The nodes might belong to different
1017  * interconnect providers and the @dst_id node might not exist (if the
1018  * provider driver has not probed yet). So just create the @dst_id node
1019  * and when the actual provider driver is probed, the rest of the node
1020  * data is filled.
1021  *
1022  * Return: 0 on success, or an error code otherwise
1023  */
1024 int icc_link_create(struct icc_node *node, const int dst_id)
1025 {
1026 	struct icc_node *dst;
1027 	struct icc_node **new;
1028 	int ret = 0;
1029 
1030 	if (!node->provider)
1031 		return -EINVAL;
1032 
1033 	mutex_lock(&icc_lock);
1034 
1035 	dst = node_find(dst_id);
1036 	if (!dst) {
1037 		dst = icc_node_create_nolock(dst_id);
1038 
1039 		if (IS_ERR(dst)) {
1040 			ret = PTR_ERR(dst);
1041 			goto out;
1042 		}
1043 	}
1044 
1045 	new = krealloc(node->links,
1046 		       (node->num_links + 1) * sizeof(*node->links),
1047 		       GFP_KERNEL);
1048 	if (!new) {
1049 		ret = -ENOMEM;
1050 		goto out;
1051 	}
1052 
1053 	node->links = new;
1054 	node->links[node->num_links++] = dst;
1055 
1056 out:
1057 	mutex_unlock(&icc_lock);
1058 
1059 	return ret;
1060 }
1061 EXPORT_SYMBOL_GPL(icc_link_create);
1062 
1063 /**
1064  * icc_node_add() - add interconnect node to interconnect provider
1065  * @node: pointer to the interconnect node
1066  * @provider: pointer to the interconnect provider
1067  */
1068 void icc_node_add(struct icc_node *node, struct icc_provider *provider)
1069 {
1070 	if (WARN_ON(node->provider))
1071 		return;
1072 
1073 	mutex_lock(&icc_lock);
1074 	mutex_lock(&icc_bw_lock);
1075 
1076 	node->provider = provider;
1077 	list_add_tail(&node->node_list, &provider->nodes);
1078 
1079 	/* get the initial bandwidth values and sync them with hardware */
1080 	if (provider->get_bw) {
1081 		provider->get_bw(node, &node->init_avg, &node->init_peak);
1082 	} else {
1083 		node->init_avg = INT_MAX;
1084 		node->init_peak = INT_MAX;
1085 	}
1086 	node->avg_bw = node->init_avg;
1087 	node->peak_bw = node->init_peak;
1088 
1089 	if (node->avg_bw || node->peak_bw) {
1090 		if (provider->pre_aggregate)
1091 			provider->pre_aggregate(node);
1092 
1093 		if (provider->aggregate)
1094 			provider->aggregate(node, 0, node->init_avg, node->init_peak,
1095 					    &node->avg_bw, &node->peak_bw);
1096 		if (provider->set)
1097 			provider->set(node, node);
1098 	}
1099 
1100 	node->avg_bw = 0;
1101 	node->peak_bw = 0;
1102 
1103 	mutex_unlock(&icc_bw_lock);
1104 	mutex_unlock(&icc_lock);
1105 }
1106 EXPORT_SYMBOL_GPL(icc_node_add);
1107 
1108 /**
1109  * icc_node_del() - delete interconnect node from interconnect provider
1110  * @node: pointer to the interconnect node
1111  */
1112 void icc_node_del(struct icc_node *node)
1113 {
1114 	mutex_lock(&icc_lock);
1115 
1116 	list_del(&node->node_list);
1117 
1118 	mutex_unlock(&icc_lock);
1119 }
1120 EXPORT_SYMBOL_GPL(icc_node_del);
1121 
1122 /**
1123  * icc_nodes_remove() - remove all previously added nodes from provider
1124  * @provider: the interconnect provider we are removing nodes from
1125  *
1126  * Return: 0 on success, or an error code otherwise
1127  */
1128 int icc_nodes_remove(struct icc_provider *provider)
1129 {
1130 	struct icc_node *n, *tmp;
1131 
1132 	if (WARN_ON(IS_ERR_OR_NULL(provider)))
1133 		return -EINVAL;
1134 
1135 	list_for_each_entry_safe_reverse(n, tmp, &provider->nodes, node_list) {
1136 		icc_node_del(n);
1137 		icc_node_destroy(n->id);
1138 	}
1139 
1140 	return 0;
1141 }
1142 EXPORT_SYMBOL_GPL(icc_nodes_remove);
1143 
1144 /**
1145  * icc_provider_init() - initialize a new interconnect provider
1146  * @provider: the interconnect provider to initialize
1147  *
1148  * Must be called before adding nodes to the provider.
1149  */
1150 void icc_provider_init(struct icc_provider *provider)
1151 {
1152 	WARN_ON(!provider->set);
1153 
1154 	INIT_LIST_HEAD(&provider->nodes);
1155 }
1156 EXPORT_SYMBOL_GPL(icc_provider_init);
1157 
1158 /**
1159  * icc_provider_register() - register a new interconnect provider
1160  * @provider: the interconnect provider to register
1161  *
1162  * Return: 0 on success, or an error code otherwise
1163  */
1164 int icc_provider_register(struct icc_provider *provider)
1165 {
1166 	if (WARN_ON(!provider->xlate && !provider->xlate_extended))
1167 		return -EINVAL;
1168 
1169 	mutex_lock(&icc_lock);
1170 	list_add_tail(&provider->provider_list, &icc_providers);
1171 	mutex_unlock(&icc_lock);
1172 
1173 	dev_dbg(provider->dev, "interconnect provider registered\n");
1174 
1175 	return 0;
1176 }
1177 EXPORT_SYMBOL_GPL(icc_provider_register);
1178 
1179 /**
1180  * icc_provider_deregister() - deregister an interconnect provider
1181  * @provider: the interconnect provider to deregister
1182  */
1183 void icc_provider_deregister(struct icc_provider *provider)
1184 {
1185 	mutex_lock(&icc_lock);
1186 	WARN_ON(provider->users);
1187 
1188 	list_del(&provider->provider_list);
1189 	mutex_unlock(&icc_lock);
1190 }
1191 EXPORT_SYMBOL_GPL(icc_provider_deregister);
1192 
1193 static const struct of_device_id __maybe_unused ignore_list[] = {
1194 	{ .compatible = "qcom,sc7180-ipa-virt" },
1195 	{ .compatible = "qcom,sc8180x-ipa-virt" },
1196 	{ .compatible = "qcom,sdx55-ipa-virt" },
1197 	{ .compatible = "qcom,sm8150-ipa-virt" },
1198 	{ .compatible = "qcom,sm8250-ipa-virt" },
1199 	{}
1200 };
1201 
1202 static int of_count_icc_providers(struct device_node *np)
1203 {
1204 	struct device_node *child;
1205 	int count = 0;
1206 
1207 	for_each_available_child_of_node(np, child) {
1208 		if (of_property_present(child, "#interconnect-cells") &&
1209 		    likely(!of_match_node(ignore_list, child)))
1210 			count++;
1211 		count += of_count_icc_providers(child);
1212 	}
1213 
1214 	return count;
1215 }
1216 
1217 void icc_sync_state(struct device *dev)
1218 {
1219 	struct icc_provider *p;
1220 	struct icc_node *n;
1221 	static int count;
1222 
1223 	count++;
1224 
1225 	if (count < providers_count)
1226 		return;
1227 
1228 	mutex_lock(&icc_lock);
1229 	mutex_lock(&icc_bw_lock);
1230 	synced_state = true;
1231 	list_for_each_entry(p, &icc_providers, provider_list) {
1232 		dev_dbg(p->dev, "interconnect provider is in synced state\n");
1233 		list_for_each_entry(n, &p->nodes, node_list) {
1234 			if (n->init_avg || n->init_peak) {
1235 				n->init_avg = 0;
1236 				n->init_peak = 0;
1237 				aggregate_requests(n);
1238 				p->set(n, n);
1239 			}
1240 		}
1241 	}
1242 	mutex_unlock(&icc_bw_lock);
1243 	mutex_unlock(&icc_lock);
1244 }
1245 EXPORT_SYMBOL_GPL(icc_sync_state);
1246 
1247 static int __init icc_init(void)
1248 {
1249 	struct device_node *root;
1250 
1251 	/* Teach lockdep about lock ordering wrt. shrinker: */
1252 	fs_reclaim_acquire(GFP_KERNEL);
1253 	might_lock(&icc_bw_lock);
1254 	fs_reclaim_release(GFP_KERNEL);
1255 
1256 	root = of_find_node_by_path("/");
1257 
1258 	providers_count = of_count_icc_providers(root);
1259 	of_node_put(root);
1260 
1261 	icc_debugfs_dir = debugfs_create_dir("interconnect", NULL);
1262 	debugfs_create_file("interconnect_summary", 0444,
1263 			    icc_debugfs_dir, NULL, &icc_summary_fops);
1264 	debugfs_create_file("interconnect_graph", 0444,
1265 			    icc_debugfs_dir, NULL, &icc_graph_fops);
1266 
1267 	icc_debugfs_client_init(icc_debugfs_dir);
1268 
1269 	return 0;
1270 }
1271 
1272 device_initcall(icc_init);
1273