xref: /kernel/linux/linux-6.6/drivers/acpi/property.c (revision 62306a36)
1// SPDX-License-Identifier: GPL-2.0-only
2/*
3 * ACPI device specific properties support.
4 *
5 * Copyright (C) 2014, Intel Corporation
6 * All rights reserved.
7 *
8 * Authors: Mika Westerberg <mika.westerberg@linux.intel.com>
9 *          Darren Hart <dvhart@linux.intel.com>
10 *          Rafael J. Wysocki <rafael.j.wysocki@intel.com>
11 */
12
13#include <linux/acpi.h>
14#include <linux/device.h>
15#include <linux/export.h>
16
17#include "internal.h"
18
19static int acpi_data_get_property_array(const struct acpi_device_data *data,
20					const char *name,
21					acpi_object_type type,
22					const union acpi_object **obj);
23
24/*
25 * The GUIDs here are made equivalent to each other in order to avoid extra
26 * complexity in the properties handling code, with the caveat that the
27 * kernel will accept certain combinations of GUID and properties that are
28 * not defined without a warning. For instance if any of the properties
29 * from different GUID appear in a property list of another, it will be
30 * accepted by the kernel. Firmware validation tools should catch these.
31 */
32static const guid_t prp_guids[] = {
33	/* ACPI _DSD device properties GUID: daffd814-6eba-4d8c-8a91-bc9bbf4aa301 */
34	GUID_INIT(0xdaffd814, 0x6eba, 0x4d8c,
35		  0x8a, 0x91, 0xbc, 0x9b, 0xbf, 0x4a, 0xa3, 0x01),
36	/* Hotplug in D3 GUID: 6211e2c0-58a3-4af3-90e1-927a4e0c55a4 */
37	GUID_INIT(0x6211e2c0, 0x58a3, 0x4af3,
38		  0x90, 0xe1, 0x92, 0x7a, 0x4e, 0x0c, 0x55, 0xa4),
39	/* External facing port GUID: efcc06cc-73ac-4bc3-bff0-76143807c389 */
40	GUID_INIT(0xefcc06cc, 0x73ac, 0x4bc3,
41		  0xbf, 0xf0, 0x76, 0x14, 0x38, 0x07, 0xc3, 0x89),
42	/* Thunderbolt GUID for IMR_VALID: c44d002f-69f9-4e7d-a904-a7baabdf43f7 */
43	GUID_INIT(0xc44d002f, 0x69f9, 0x4e7d,
44		  0xa9, 0x04, 0xa7, 0xba, 0xab, 0xdf, 0x43, 0xf7),
45	/* Thunderbolt GUID for WAKE_SUPPORTED: 6c501103-c189-4296-ba72-9bf5a26ebe5d */
46	GUID_INIT(0x6c501103, 0xc189, 0x4296,
47		  0xba, 0x72, 0x9b, 0xf5, 0xa2, 0x6e, 0xbe, 0x5d),
48	/* Storage device needs D3 GUID: 5025030f-842f-4ab4-a561-99a5189762d0 */
49	GUID_INIT(0x5025030f, 0x842f, 0x4ab4,
50		  0xa5, 0x61, 0x99, 0xa5, 0x18, 0x97, 0x62, 0xd0),
51};
52
53/* ACPI _DSD data subnodes GUID: dbb8e3e6-5886-4ba6-8795-1319f52a966b */
54static const guid_t ads_guid =
55	GUID_INIT(0xdbb8e3e6, 0x5886, 0x4ba6,
56		  0x87, 0x95, 0x13, 0x19, 0xf5, 0x2a, 0x96, 0x6b);
57
58static const guid_t buffer_prop_guid =
59	GUID_INIT(0xedb12dd0, 0x363d, 0x4085,
60		  0xa3, 0xd2, 0x49, 0x52, 0x2c, 0xa1, 0x60, 0xc4);
61
62static bool acpi_enumerate_nondev_subnodes(acpi_handle scope,
63					   union acpi_object *desc,
64					   struct acpi_device_data *data,
65					   struct fwnode_handle *parent);
66static bool acpi_extract_properties(acpi_handle handle,
67				    union acpi_object *desc,
68				    struct acpi_device_data *data);
69
70static bool acpi_nondev_subnode_extract(union acpi_object *desc,
71					acpi_handle handle,
72					const union acpi_object *link,
73					struct list_head *list,
74					struct fwnode_handle *parent)
75{
76	struct acpi_data_node *dn;
77	bool result;
78
79	dn = kzalloc(sizeof(*dn), GFP_KERNEL);
80	if (!dn)
81		return false;
82
83	dn->name = link->package.elements[0].string.pointer;
84	fwnode_init(&dn->fwnode, &acpi_data_fwnode_ops);
85	dn->parent = parent;
86	INIT_LIST_HEAD(&dn->data.properties);
87	INIT_LIST_HEAD(&dn->data.subnodes);
88
89	result = acpi_extract_properties(handle, desc, &dn->data);
90
91	if (handle) {
92		acpi_handle scope;
93		acpi_status status;
94
95		/*
96		 * The scope for the subnode object lookup is the one of the
97		 * namespace node (device) containing the object that has
98		 * returned the package.  That is, it's the scope of that
99		 * object's parent.
100		 */
101		status = acpi_get_parent(handle, &scope);
102		if (ACPI_SUCCESS(status)
103		    && acpi_enumerate_nondev_subnodes(scope, desc, &dn->data,
104						      &dn->fwnode))
105			result = true;
106	} else if (acpi_enumerate_nondev_subnodes(NULL, desc, &dn->data,
107						  &dn->fwnode)) {
108		result = true;
109	}
110
111	if (result) {
112		dn->handle = handle;
113		dn->data.pointer = desc;
114		list_add_tail(&dn->sibling, list);
115		return true;
116	}
117
118	kfree(dn);
119	acpi_handle_debug(handle, "Invalid properties/subnodes data, skipping\n");
120	return false;
121}
122
123static bool acpi_nondev_subnode_data_ok(acpi_handle handle,
124					const union acpi_object *link,
125					struct list_head *list,
126					struct fwnode_handle *parent)
127{
128	struct acpi_buffer buf = { ACPI_ALLOCATE_BUFFER };
129	acpi_status status;
130
131	status = acpi_evaluate_object_typed(handle, NULL, NULL, &buf,
132					    ACPI_TYPE_PACKAGE);
133	if (ACPI_FAILURE(status))
134		return false;
135
136	if (acpi_nondev_subnode_extract(buf.pointer, handle, link, list,
137					parent))
138		return true;
139
140	ACPI_FREE(buf.pointer);
141	return false;
142}
143
144static bool acpi_nondev_subnode_ok(acpi_handle scope,
145				   const union acpi_object *link,
146				   struct list_head *list,
147				   struct fwnode_handle *parent)
148{
149	acpi_handle handle;
150	acpi_status status;
151
152	if (!scope)
153		return false;
154
155	status = acpi_get_handle(scope, link->package.elements[1].string.pointer,
156				 &handle);
157	if (ACPI_FAILURE(status))
158		return false;
159
160	return acpi_nondev_subnode_data_ok(handle, link, list, parent);
161}
162
163static bool acpi_add_nondev_subnodes(acpi_handle scope,
164				     union acpi_object *links,
165				     struct list_head *list,
166				     struct fwnode_handle *parent)
167{
168	bool ret = false;
169	int i;
170
171	for (i = 0; i < links->package.count; i++) {
172		union acpi_object *link, *desc;
173		acpi_handle handle;
174		bool result;
175
176		link = &links->package.elements[i];
177		/* Only two elements allowed. */
178		if (link->package.count != 2)
179			continue;
180
181		/* The first one must be a string. */
182		if (link->package.elements[0].type != ACPI_TYPE_STRING)
183			continue;
184
185		/* The second one may be a string, a reference or a package. */
186		switch (link->package.elements[1].type) {
187		case ACPI_TYPE_STRING:
188			result = acpi_nondev_subnode_ok(scope, link, list,
189							 parent);
190			break;
191		case ACPI_TYPE_LOCAL_REFERENCE:
192			handle = link->package.elements[1].reference.handle;
193			result = acpi_nondev_subnode_data_ok(handle, link, list,
194							     parent);
195			break;
196		case ACPI_TYPE_PACKAGE:
197			desc = &link->package.elements[1];
198			result = acpi_nondev_subnode_extract(desc, NULL, link,
199							     list, parent);
200			break;
201		default:
202			result = false;
203			break;
204		}
205		ret = ret || result;
206	}
207
208	return ret;
209}
210
211static bool acpi_enumerate_nondev_subnodes(acpi_handle scope,
212					   union acpi_object *desc,
213					   struct acpi_device_data *data,
214					   struct fwnode_handle *parent)
215{
216	int i;
217
218	/* Look for the ACPI data subnodes GUID. */
219	for (i = 0; i < desc->package.count; i += 2) {
220		const union acpi_object *guid;
221		union acpi_object *links;
222
223		guid = &desc->package.elements[i];
224		links = &desc->package.elements[i + 1];
225
226		/*
227		 * The first element must be a GUID and the second one must be
228		 * a package.
229		 */
230		if (guid->type != ACPI_TYPE_BUFFER ||
231		    guid->buffer.length != 16 ||
232		    links->type != ACPI_TYPE_PACKAGE)
233			break;
234
235		if (!guid_equal((guid_t *)guid->buffer.pointer, &ads_guid))
236			continue;
237
238		return acpi_add_nondev_subnodes(scope, links, &data->subnodes,
239						parent);
240	}
241
242	return false;
243}
244
245static bool acpi_property_value_ok(const union acpi_object *value)
246{
247	int j;
248
249	/*
250	 * The value must be an integer, a string, a reference, or a package
251	 * whose every element must be an integer, a string, or a reference.
252	 */
253	switch (value->type) {
254	case ACPI_TYPE_INTEGER:
255	case ACPI_TYPE_STRING:
256	case ACPI_TYPE_LOCAL_REFERENCE:
257		return true;
258
259	case ACPI_TYPE_PACKAGE:
260		for (j = 0; j < value->package.count; j++)
261			switch (value->package.elements[j].type) {
262			case ACPI_TYPE_INTEGER:
263			case ACPI_TYPE_STRING:
264			case ACPI_TYPE_LOCAL_REFERENCE:
265				continue;
266
267			default:
268				return false;
269			}
270
271		return true;
272	}
273	return false;
274}
275
276static bool acpi_properties_format_valid(const union acpi_object *properties)
277{
278	int i;
279
280	for (i = 0; i < properties->package.count; i++) {
281		const union acpi_object *property;
282
283		property = &properties->package.elements[i];
284		/*
285		 * Only two elements allowed, the first one must be a string and
286		 * the second one has to satisfy certain conditions.
287		 */
288		if (property->package.count != 2
289		    || property->package.elements[0].type != ACPI_TYPE_STRING
290		    || !acpi_property_value_ok(&property->package.elements[1]))
291			return false;
292	}
293	return true;
294}
295
296static void acpi_init_of_compatible(struct acpi_device *adev)
297{
298	const union acpi_object *of_compatible;
299	int ret;
300
301	ret = acpi_data_get_property_array(&adev->data, "compatible",
302					   ACPI_TYPE_STRING, &of_compatible);
303	if (ret) {
304		ret = acpi_dev_get_property(adev, "compatible",
305					    ACPI_TYPE_STRING, &of_compatible);
306		if (ret) {
307			struct acpi_device *parent;
308
309			parent = acpi_dev_parent(adev);
310			if (parent && parent->flags.of_compatible_ok)
311				goto out;
312
313			return;
314		}
315	}
316	adev->data.of_compatible = of_compatible;
317
318 out:
319	adev->flags.of_compatible_ok = 1;
320}
321
322static bool acpi_is_property_guid(const guid_t *guid)
323{
324	int i;
325
326	for (i = 0; i < ARRAY_SIZE(prp_guids); i++) {
327		if (guid_equal(guid, &prp_guids[i]))
328			return true;
329	}
330
331	return false;
332}
333
334struct acpi_device_properties *
335acpi_data_add_props(struct acpi_device_data *data, const guid_t *guid,
336		    union acpi_object *properties)
337{
338	struct acpi_device_properties *props;
339
340	props = kzalloc(sizeof(*props), GFP_KERNEL);
341	if (props) {
342		INIT_LIST_HEAD(&props->list);
343		props->guid = guid;
344		props->properties = properties;
345		list_add_tail(&props->list, &data->properties);
346	}
347
348	return props;
349}
350
351static void acpi_nondev_subnode_tag(acpi_handle handle, void *context)
352{
353}
354
355static void acpi_untie_nondev_subnodes(struct acpi_device_data *data)
356{
357	struct acpi_data_node *dn;
358
359	list_for_each_entry(dn, &data->subnodes, sibling) {
360		acpi_detach_data(dn->handle, acpi_nondev_subnode_tag);
361
362		acpi_untie_nondev_subnodes(&dn->data);
363	}
364}
365
366static bool acpi_tie_nondev_subnodes(struct acpi_device_data *data)
367{
368	struct acpi_data_node *dn;
369
370	list_for_each_entry(dn, &data->subnodes, sibling) {
371		acpi_status status;
372		bool ret;
373
374		status = acpi_attach_data(dn->handle, acpi_nondev_subnode_tag, dn);
375		if (ACPI_FAILURE(status) && status != AE_ALREADY_EXISTS) {
376			acpi_handle_err(dn->handle, "Can't tag data node\n");
377			return false;
378		}
379
380		ret = acpi_tie_nondev_subnodes(&dn->data);
381		if (!ret)
382			return ret;
383	}
384
385	return true;
386}
387
388static void acpi_data_add_buffer_props(acpi_handle handle,
389				       struct acpi_device_data *data,
390				       union acpi_object *properties)
391{
392	struct acpi_device_properties *props;
393	union acpi_object *package;
394	size_t alloc_size;
395	unsigned int i;
396	u32 *count;
397
398	if (check_mul_overflow((size_t)properties->package.count,
399			       sizeof(*package) + sizeof(void *),
400			       &alloc_size) ||
401	    check_add_overflow(sizeof(*props) + sizeof(*package), alloc_size,
402			       &alloc_size)) {
403		acpi_handle_warn(handle,
404				 "can't allocate memory for %u buffer props",
405				 properties->package.count);
406		return;
407	}
408
409	props = kvzalloc(alloc_size, GFP_KERNEL);
410	if (!props)
411		return;
412
413	props->guid = &buffer_prop_guid;
414	props->bufs = (void *)(props + 1);
415	props->properties = (void *)(props->bufs + properties->package.count);
416
417	/* Outer package */
418	package = props->properties;
419	package->type = ACPI_TYPE_PACKAGE;
420	package->package.elements = package + 1;
421	count = &package->package.count;
422	*count = 0;
423
424	/* Inner packages */
425	package++;
426
427	for (i = 0; i < properties->package.count; i++) {
428		struct acpi_buffer buf = { ACPI_ALLOCATE_BUFFER };
429		union acpi_object *property = &properties->package.elements[i];
430		union acpi_object *prop, *obj, *buf_obj;
431		acpi_status status;
432
433		if (property->type != ACPI_TYPE_PACKAGE ||
434		    property->package.count != 2) {
435			acpi_handle_warn(handle,
436					 "buffer property %u has %u entries\n",
437					 i, property->package.count);
438			continue;
439		}
440
441		prop = &property->package.elements[0];
442		obj = &property->package.elements[1];
443
444		if (prop->type != ACPI_TYPE_STRING ||
445		    obj->type != ACPI_TYPE_STRING) {
446			acpi_handle_warn(handle,
447					 "wrong object types %u and %u\n",
448					 prop->type, obj->type);
449			continue;
450		}
451
452		status = acpi_evaluate_object_typed(handle, obj->string.pointer,
453						    NULL, &buf,
454						    ACPI_TYPE_BUFFER);
455		if (ACPI_FAILURE(status)) {
456			acpi_handle_warn(handle,
457					 "can't evaluate \"%*pE\" as buffer\n",
458					 obj->string.length,
459					 obj->string.pointer);
460			continue;
461		}
462
463		package->type = ACPI_TYPE_PACKAGE;
464		package->package.elements = prop;
465		package->package.count = 2;
466
467		buf_obj = buf.pointer;
468
469		/* Replace the string object with a buffer object */
470		obj->type = ACPI_TYPE_BUFFER;
471		obj->buffer.length = buf_obj->buffer.length;
472		obj->buffer.pointer = buf_obj->buffer.pointer;
473
474		props->bufs[i] = buf.pointer;
475		package++;
476		(*count)++;
477	}
478
479	if (*count)
480		list_add(&props->list, &data->properties);
481	else
482		kvfree(props);
483}
484
485static bool acpi_extract_properties(acpi_handle scope, union acpi_object *desc,
486				    struct acpi_device_data *data)
487{
488	int i;
489
490	if (desc->package.count % 2)
491		return false;
492
493	/* Look for the device properties GUID. */
494	for (i = 0; i < desc->package.count; i += 2) {
495		const union acpi_object *guid;
496		union acpi_object *properties;
497
498		guid = &desc->package.elements[i];
499		properties = &desc->package.elements[i + 1];
500
501		/*
502		 * The first element must be a GUID and the second one must be
503		 * a package.
504		 */
505		if (guid->type != ACPI_TYPE_BUFFER ||
506		    guid->buffer.length != 16 ||
507		    properties->type != ACPI_TYPE_PACKAGE)
508			break;
509
510		if (guid_equal((guid_t *)guid->buffer.pointer,
511			       &buffer_prop_guid)) {
512			acpi_data_add_buffer_props(scope, data, properties);
513			continue;
514		}
515
516		if (!acpi_is_property_guid((guid_t *)guid->buffer.pointer))
517			continue;
518
519		/*
520		 * We found the matching GUID. Now validate the format of the
521		 * package immediately following it.
522		 */
523		if (!acpi_properties_format_valid(properties))
524			continue;
525
526		acpi_data_add_props(data, (const guid_t *)guid->buffer.pointer,
527				    properties);
528	}
529
530	return !list_empty(&data->properties);
531}
532
533void acpi_init_properties(struct acpi_device *adev)
534{
535	struct acpi_buffer buf = { ACPI_ALLOCATE_BUFFER };
536	struct acpi_hardware_id *hwid;
537	acpi_status status;
538	bool acpi_of = false;
539
540	INIT_LIST_HEAD(&adev->data.properties);
541	INIT_LIST_HEAD(&adev->data.subnodes);
542
543	if (!adev->handle)
544		return;
545
546	/*
547	 * Check if ACPI_DT_NAMESPACE_HID is present and inthat case we fill in
548	 * Device Tree compatible properties for this device.
549	 */
550	list_for_each_entry(hwid, &adev->pnp.ids, list) {
551		if (!strcmp(hwid->id, ACPI_DT_NAMESPACE_HID)) {
552			acpi_of = true;
553			break;
554		}
555	}
556
557	status = acpi_evaluate_object_typed(adev->handle, "_DSD", NULL, &buf,
558					    ACPI_TYPE_PACKAGE);
559	if (ACPI_FAILURE(status))
560		goto out;
561
562	if (acpi_extract_properties(adev->handle, buf.pointer, &adev->data)) {
563		adev->data.pointer = buf.pointer;
564		if (acpi_of)
565			acpi_init_of_compatible(adev);
566	}
567	if (acpi_enumerate_nondev_subnodes(adev->handle, buf.pointer,
568					&adev->data, acpi_fwnode_handle(adev)))
569		adev->data.pointer = buf.pointer;
570
571	if (!adev->data.pointer) {
572		acpi_handle_debug(adev->handle, "Invalid _DSD data, skipping\n");
573		ACPI_FREE(buf.pointer);
574	} else {
575		if (!acpi_tie_nondev_subnodes(&adev->data))
576			acpi_untie_nondev_subnodes(&adev->data);
577	}
578
579 out:
580	if (acpi_of && !adev->flags.of_compatible_ok)
581		acpi_handle_info(adev->handle,
582			 ACPI_DT_NAMESPACE_HID " requires 'compatible' property\n");
583
584	if (!adev->data.pointer)
585		acpi_extract_apple_properties(adev);
586}
587
588static void acpi_free_device_properties(struct list_head *list)
589{
590	struct acpi_device_properties *props, *tmp;
591
592	list_for_each_entry_safe(props, tmp, list, list) {
593		u32 i;
594
595		list_del(&props->list);
596		/* Buffer data properties were separately allocated */
597		if (props->bufs)
598			for (i = 0; i < props->properties->package.count; i++)
599				ACPI_FREE(props->bufs[i]);
600		kvfree(props);
601	}
602}
603
604static void acpi_destroy_nondev_subnodes(struct list_head *list)
605{
606	struct acpi_data_node *dn, *next;
607
608	if (list_empty(list))
609		return;
610
611	list_for_each_entry_safe_reverse(dn, next, list, sibling) {
612		acpi_destroy_nondev_subnodes(&dn->data.subnodes);
613		wait_for_completion(&dn->kobj_done);
614		list_del(&dn->sibling);
615		ACPI_FREE((void *)dn->data.pointer);
616		acpi_free_device_properties(&dn->data.properties);
617		kfree(dn);
618	}
619}
620
621void acpi_free_properties(struct acpi_device *adev)
622{
623	acpi_untie_nondev_subnodes(&adev->data);
624	acpi_destroy_nondev_subnodes(&adev->data.subnodes);
625	ACPI_FREE((void *)adev->data.pointer);
626	adev->data.of_compatible = NULL;
627	adev->data.pointer = NULL;
628	acpi_free_device_properties(&adev->data.properties);
629}
630
631/**
632 * acpi_data_get_property - return an ACPI property with given name
633 * @data: ACPI device deta object to get the property from
634 * @name: Name of the property
635 * @type: Expected property type
636 * @obj: Location to store the property value (if not %NULL)
637 *
638 * Look up a property with @name and store a pointer to the resulting ACPI
639 * object at the location pointed to by @obj if found.
640 *
641 * Callers must not attempt to free the returned objects.  These objects will be
642 * freed by the ACPI core automatically during the removal of @data.
643 *
644 * Return: %0 if property with @name has been found (success),
645 *         %-EINVAL if the arguments are invalid,
646 *         %-EINVAL if the property doesn't exist,
647 *         %-EPROTO if the property value type doesn't match @type.
648 */
649static int acpi_data_get_property(const struct acpi_device_data *data,
650				  const char *name, acpi_object_type type,
651				  const union acpi_object **obj)
652{
653	const struct acpi_device_properties *props;
654
655	if (!data || !name)
656		return -EINVAL;
657
658	if (!data->pointer || list_empty(&data->properties))
659		return -EINVAL;
660
661	list_for_each_entry(props, &data->properties, list) {
662		const union acpi_object *properties;
663		unsigned int i;
664
665		properties = props->properties;
666		for (i = 0; i < properties->package.count; i++) {
667			const union acpi_object *propname, *propvalue;
668			const union acpi_object *property;
669
670			property = &properties->package.elements[i];
671
672			propname = &property->package.elements[0];
673			propvalue = &property->package.elements[1];
674
675			if (!strcmp(name, propname->string.pointer)) {
676				if (type != ACPI_TYPE_ANY &&
677				    propvalue->type != type)
678					return -EPROTO;
679				if (obj)
680					*obj = propvalue;
681
682				return 0;
683			}
684		}
685	}
686	return -EINVAL;
687}
688
689/**
690 * acpi_dev_get_property - return an ACPI property with given name.
691 * @adev: ACPI device to get the property from.
692 * @name: Name of the property.
693 * @type: Expected property type.
694 * @obj: Location to store the property value (if not %NULL).
695 */
696int acpi_dev_get_property(const struct acpi_device *adev, const char *name,
697			  acpi_object_type type, const union acpi_object **obj)
698{
699	return adev ? acpi_data_get_property(&adev->data, name, type, obj) : -EINVAL;
700}
701EXPORT_SYMBOL_GPL(acpi_dev_get_property);
702
703static const struct acpi_device_data *
704acpi_device_data_of_node(const struct fwnode_handle *fwnode)
705{
706	if (is_acpi_device_node(fwnode)) {
707		const struct acpi_device *adev = to_acpi_device_node(fwnode);
708		return &adev->data;
709	}
710	if (is_acpi_data_node(fwnode)) {
711		const struct acpi_data_node *dn = to_acpi_data_node(fwnode);
712		return &dn->data;
713	}
714	return NULL;
715}
716
717/**
718 * acpi_node_prop_get - return an ACPI property with given name.
719 * @fwnode: Firmware node to get the property from.
720 * @propname: Name of the property.
721 * @valptr: Location to store a pointer to the property value (if not %NULL).
722 */
723int acpi_node_prop_get(const struct fwnode_handle *fwnode,
724		       const char *propname, void **valptr)
725{
726	return acpi_data_get_property(acpi_device_data_of_node(fwnode),
727				      propname, ACPI_TYPE_ANY,
728				      (const union acpi_object **)valptr);
729}
730
731/**
732 * acpi_data_get_property_array - return an ACPI array property with given name
733 * @data: ACPI data object to get the property from
734 * @name: Name of the property
735 * @type: Expected type of array elements
736 * @obj: Location to store a pointer to the property value (if not NULL)
737 *
738 * Look up an array property with @name and store a pointer to the resulting
739 * ACPI object at the location pointed to by @obj if found.
740 *
741 * Callers must not attempt to free the returned objects.  Those objects will be
742 * freed by the ACPI core automatically during the removal of @data.
743 *
744 * Return: %0 if array property (package) with @name has been found (success),
745 *         %-EINVAL if the arguments are invalid,
746 *         %-EINVAL if the property doesn't exist,
747 *         %-EPROTO if the property is not a package or the type of its elements
748 *           doesn't match @type.
749 */
750static int acpi_data_get_property_array(const struct acpi_device_data *data,
751					const char *name,
752					acpi_object_type type,
753					const union acpi_object **obj)
754{
755	const union acpi_object *prop;
756	int ret, i;
757
758	ret = acpi_data_get_property(data, name, ACPI_TYPE_PACKAGE, &prop);
759	if (ret)
760		return ret;
761
762	if (type != ACPI_TYPE_ANY) {
763		/* Check that all elements are of correct type. */
764		for (i = 0; i < prop->package.count; i++)
765			if (prop->package.elements[i].type != type)
766				return -EPROTO;
767	}
768	if (obj)
769		*obj = prop;
770
771	return 0;
772}
773
774static struct fwnode_handle *
775acpi_fwnode_get_named_child_node(const struct fwnode_handle *fwnode,
776				 const char *childname)
777{
778	struct fwnode_handle *child;
779
780	fwnode_for_each_child_node(fwnode, child) {
781		if (is_acpi_data_node(child)) {
782			if (acpi_data_node_match(child, childname))
783				return child;
784			continue;
785		}
786
787		if (!strncmp(acpi_device_bid(to_acpi_device_node(child)),
788			     childname, ACPI_NAMESEG_SIZE))
789			return child;
790	}
791
792	return NULL;
793}
794
795static int acpi_get_ref_args(struct fwnode_reference_args *args,
796			     struct fwnode_handle *ref_fwnode,
797			     const union acpi_object **element,
798			     const union acpi_object *end, size_t num_args)
799{
800	u32 nargs = 0, i;
801
802	/*
803	 * Find the referred data extension node under the
804	 * referred device node.
805	 */
806	for (; *element < end && (*element)->type == ACPI_TYPE_STRING;
807	     (*element)++) {
808		const char *child_name = (*element)->string.pointer;
809
810		ref_fwnode = acpi_fwnode_get_named_child_node(ref_fwnode, child_name);
811		if (!ref_fwnode)
812			return -EINVAL;
813	}
814
815	/*
816	 * Assume the following integer elements are all args. Stop counting on
817	 * the first reference or end of the package arguments. In case of
818	 * neither reference, nor integer, return an error, we can't parse it.
819	 */
820	for (i = 0; (*element) + i < end && i < num_args; i++) {
821		acpi_object_type type = (*element)[i].type;
822
823		if (type == ACPI_TYPE_LOCAL_REFERENCE)
824			break;
825
826		if (type == ACPI_TYPE_INTEGER)
827			nargs++;
828		else
829			return -EINVAL;
830	}
831
832	if (nargs > NR_FWNODE_REFERENCE_ARGS)
833		return -EINVAL;
834
835	if (args) {
836		args->fwnode = ref_fwnode;
837		args->nargs = nargs;
838		for (i = 0; i < nargs; i++)
839			args->args[i] = (*element)[i].integer.value;
840	}
841
842	(*element) += nargs;
843
844	return 0;
845}
846
847/**
848 * __acpi_node_get_property_reference - returns handle to the referenced object
849 * @fwnode: Firmware node to get the property from
850 * @propname: Name of the property
851 * @index: Index of the reference to return
852 * @num_args: Maximum number of arguments after each reference
853 * @args: Location to store the returned reference with optional arguments
854 *	  (may be NULL)
855 *
856 * Find property with @name, verifify that it is a package containing at least
857 * one object reference and if so, store the ACPI device object pointer to the
858 * target object in @args->adev.  If the reference includes arguments, store
859 * them in the @args->args[] array.
860 *
861 * If there's more than one reference in the property value package, @index is
862 * used to select the one to return.
863 *
864 * It is possible to leave holes in the property value set like in the
865 * example below:
866 *
867 * Package () {
868 *     "cs-gpios",
869 *     Package () {
870 *        ^GPIO, 19, 0, 0,
871 *        ^GPIO, 20, 0, 0,
872 *        0,
873 *        ^GPIO, 21, 0, 0,
874 *     }
875 * }
876 *
877 * Calling this function with index %2 or index %3 return %-ENOENT. If the
878 * property does not contain any more values %-ENOENT is returned. The NULL
879 * entry must be single integer and preferably contain value %0.
880 *
881 * Return: %0 on success, negative error code on failure.
882 */
883int __acpi_node_get_property_reference(const struct fwnode_handle *fwnode,
884	const char *propname, size_t index, size_t num_args,
885	struct fwnode_reference_args *args)
886{
887	const union acpi_object *element, *end;
888	const union acpi_object *obj;
889	const struct acpi_device_data *data;
890	struct acpi_device *device;
891	int ret, idx = 0;
892
893	data = acpi_device_data_of_node(fwnode);
894	if (!data)
895		return -ENOENT;
896
897	ret = acpi_data_get_property(data, propname, ACPI_TYPE_ANY, &obj);
898	if (ret)
899		return ret == -EINVAL ? -ENOENT : -EINVAL;
900
901	switch (obj->type) {
902	case ACPI_TYPE_LOCAL_REFERENCE:
903		/* Plain single reference without arguments. */
904		if (index)
905			return -ENOENT;
906
907		device = acpi_fetch_acpi_dev(obj->reference.handle);
908		if (!device)
909			return -EINVAL;
910
911		if (!args)
912			return 0;
913
914		args->fwnode = acpi_fwnode_handle(device);
915		args->nargs = 0;
916		return 0;
917	case ACPI_TYPE_PACKAGE:
918		/*
919		 * If it is not a single reference, then it is a package of
920		 * references followed by number of ints as follows:
921		 *
922		 *  Package () { REF, INT, REF, INT, INT }
923		 *
924		 * The index argument is then used to determine which reference
925		 * the caller wants (along with the arguments).
926		 */
927		break;
928	default:
929		return -EINVAL;
930	}
931
932	if (index >= obj->package.count)
933		return -ENOENT;
934
935	element = obj->package.elements;
936	end = element + obj->package.count;
937
938	while (element < end) {
939		switch (element->type) {
940		case ACPI_TYPE_LOCAL_REFERENCE:
941			device = acpi_fetch_acpi_dev(element->reference.handle);
942			if (!device)
943				return -EINVAL;
944
945			element++;
946
947			ret = acpi_get_ref_args(idx == index ? args : NULL,
948						acpi_fwnode_handle(device),
949						&element, end, num_args);
950			if (ret < 0)
951				return ret;
952
953			if (idx == index)
954				return 0;
955
956			break;
957		case ACPI_TYPE_INTEGER:
958			if (idx == index)
959				return -ENOENT;
960			element++;
961			break;
962		default:
963			return -EINVAL;
964		}
965
966		idx++;
967	}
968
969	return -ENOENT;
970}
971EXPORT_SYMBOL_GPL(__acpi_node_get_property_reference);
972
973static int acpi_data_prop_read_single(const struct acpi_device_data *data,
974				      const char *propname,
975				      enum dev_prop_type proptype, void *val)
976{
977	const union acpi_object *obj;
978	int ret = 0;
979
980	if (proptype >= DEV_PROP_U8 && proptype <= DEV_PROP_U64)
981		ret = acpi_data_get_property(data, propname, ACPI_TYPE_INTEGER, &obj);
982	else if (proptype == DEV_PROP_STRING)
983		ret = acpi_data_get_property(data, propname, ACPI_TYPE_STRING, &obj);
984	if (ret)
985		return ret;
986
987	switch (proptype) {
988	case DEV_PROP_U8:
989		if (obj->integer.value > U8_MAX)
990			return -EOVERFLOW;
991		if (val)
992			*(u8 *)val = obj->integer.value;
993		break;
994	case DEV_PROP_U16:
995		if (obj->integer.value > U16_MAX)
996			return -EOVERFLOW;
997		if (val)
998			*(u16 *)val = obj->integer.value;
999		break;
1000	case DEV_PROP_U32:
1001		if (obj->integer.value > U32_MAX)
1002			return -EOVERFLOW;
1003		if (val)
1004			*(u32 *)val = obj->integer.value;
1005		break;
1006	case DEV_PROP_U64:
1007		if (val)
1008			*(u64 *)val = obj->integer.value;
1009		break;
1010	case DEV_PROP_STRING:
1011		if (val)
1012			*(char **)val = obj->string.pointer;
1013		return 1;
1014	default:
1015		return -EINVAL;
1016	}
1017
1018	/* When no storage provided return number of available values */
1019	return val ? 0 : 1;
1020}
1021
1022#define acpi_copy_property_array_uint(items, val, nval)			\
1023	({								\
1024		typeof(items) __items = items;				\
1025		typeof(val) __val = val;				\
1026		typeof(nval) __nval = nval;				\
1027		size_t i;						\
1028		int ret = 0;						\
1029									\
1030		for (i = 0; i < __nval; i++) {				\
1031			if (__items->type == ACPI_TYPE_BUFFER) {	\
1032				__val[i] = __items->buffer.pointer[i];	\
1033				continue;				\
1034			}						\
1035			if (__items[i].type != ACPI_TYPE_INTEGER) {	\
1036				ret = -EPROTO;				\
1037				break;					\
1038			}						\
1039			if (__items[i].integer.value > _Generic(__val,	\
1040								u8 *: U8_MAX, \
1041								u16 *: U16_MAX, \
1042								u32 *: U32_MAX, \
1043								u64 *: U64_MAX)) { \
1044				ret = -EOVERFLOW;			\
1045				break;					\
1046			}						\
1047									\
1048			__val[i] = __items[i].integer.value;		\
1049		}							\
1050		ret;							\
1051	})
1052
1053static int acpi_copy_property_array_string(const union acpi_object *items,
1054					   char **val, size_t nval)
1055{
1056	int i;
1057
1058	for (i = 0; i < nval; i++) {
1059		if (items[i].type != ACPI_TYPE_STRING)
1060			return -EPROTO;
1061
1062		val[i] = items[i].string.pointer;
1063	}
1064	return nval;
1065}
1066
1067static int acpi_data_prop_read(const struct acpi_device_data *data,
1068			       const char *propname,
1069			       enum dev_prop_type proptype,
1070			       void *val, size_t nval)
1071{
1072	const union acpi_object *obj;
1073	const union acpi_object *items;
1074	int ret;
1075
1076	if (nval == 1 || !val) {
1077		ret = acpi_data_prop_read_single(data, propname, proptype, val);
1078		/*
1079		 * The overflow error means that the property is there and it is
1080		 * single-value, but its type does not match, so return.
1081		 */
1082		if (ret >= 0 || ret == -EOVERFLOW)
1083			return ret;
1084
1085		/*
1086		 * Reading this property as a single-value one failed, but its
1087		 * value may still be represented as one-element array, so
1088		 * continue.
1089		 */
1090	}
1091
1092	ret = acpi_data_get_property_array(data, propname, ACPI_TYPE_ANY, &obj);
1093	if (ret && proptype >= DEV_PROP_U8 && proptype <= DEV_PROP_U64)
1094		ret = acpi_data_get_property(data, propname, ACPI_TYPE_BUFFER,
1095					     &obj);
1096	if (ret)
1097		return ret;
1098
1099	if (!val) {
1100		if (obj->type == ACPI_TYPE_BUFFER)
1101			return obj->buffer.length;
1102
1103		return obj->package.count;
1104	}
1105
1106	switch (proptype) {
1107	case DEV_PROP_STRING:
1108		break;
1109	default:
1110		if (obj->type == ACPI_TYPE_BUFFER) {
1111			if (nval > obj->buffer.length)
1112				return -EOVERFLOW;
1113		} else {
1114			if (nval > obj->package.count)
1115				return -EOVERFLOW;
1116		}
1117		break;
1118	}
1119	if (nval == 0)
1120		return -EINVAL;
1121
1122	if (obj->type == ACPI_TYPE_BUFFER) {
1123		if (proptype != DEV_PROP_U8)
1124			return -EPROTO;
1125		items = obj;
1126	} else {
1127		items = obj->package.elements;
1128	}
1129
1130	switch (proptype) {
1131	case DEV_PROP_U8:
1132		ret = acpi_copy_property_array_uint(items, (u8 *)val, nval);
1133		break;
1134	case DEV_PROP_U16:
1135		ret = acpi_copy_property_array_uint(items, (u16 *)val, nval);
1136		break;
1137	case DEV_PROP_U32:
1138		ret = acpi_copy_property_array_uint(items, (u32 *)val, nval);
1139		break;
1140	case DEV_PROP_U64:
1141		ret = acpi_copy_property_array_uint(items, (u64 *)val, nval);
1142		break;
1143	case DEV_PROP_STRING:
1144		ret = acpi_copy_property_array_string(
1145			items, (char **)val,
1146			min_t(u32, nval, obj->package.count));
1147		break;
1148	default:
1149		ret = -EINVAL;
1150		break;
1151	}
1152	return ret;
1153}
1154
1155/**
1156 * acpi_node_prop_read - retrieve the value of an ACPI property with given name.
1157 * @fwnode: Firmware node to get the property from.
1158 * @propname: Name of the property.
1159 * @proptype: Expected property type.
1160 * @val: Location to store the property value (if not %NULL).
1161 * @nval: Size of the array pointed to by @val.
1162 *
1163 * If @val is %NULL, return the number of array elements comprising the value
1164 * of the property.  Otherwise, read at most @nval values to the array at the
1165 * location pointed to by @val.
1166 */
1167static int acpi_node_prop_read(const struct fwnode_handle *fwnode,
1168			       const char *propname, enum dev_prop_type proptype,
1169			       void *val, size_t nval)
1170{
1171	return acpi_data_prop_read(acpi_device_data_of_node(fwnode),
1172				   propname, proptype, val, nval);
1173}
1174
1175static int stop_on_next(struct acpi_device *adev, void *data)
1176{
1177	struct acpi_device **ret_p = data;
1178
1179	if (!*ret_p) {
1180		*ret_p = adev;
1181		return 1;
1182	}
1183
1184	/* Skip until the "previous" object is found. */
1185	if (*ret_p == adev)
1186		*ret_p = NULL;
1187
1188	return 0;
1189}
1190
1191/**
1192 * acpi_get_next_subnode - Return the next child node handle for a fwnode
1193 * @fwnode: Firmware node to find the next child node for.
1194 * @child: Handle to one of the device's child nodes or a null handle.
1195 */
1196struct fwnode_handle *acpi_get_next_subnode(const struct fwnode_handle *fwnode,
1197					    struct fwnode_handle *child)
1198{
1199	struct acpi_device *adev = to_acpi_device_node(fwnode);
1200
1201	if ((!child || is_acpi_device_node(child)) && adev) {
1202		struct acpi_device *child_adev = to_acpi_device_node(child);
1203
1204		acpi_dev_for_each_child(adev, stop_on_next, &child_adev);
1205		if (child_adev)
1206			return acpi_fwnode_handle(child_adev);
1207
1208		child = NULL;
1209	}
1210
1211	if (!child || is_acpi_data_node(child)) {
1212		const struct acpi_data_node *data = to_acpi_data_node(fwnode);
1213		const struct list_head *head;
1214		struct list_head *next;
1215		struct acpi_data_node *dn;
1216
1217		/*
1218		 * We can have a combination of device and data nodes, e.g. with
1219		 * hierarchical _DSD properties. Make sure the adev pointer is
1220		 * restored before going through data nodes, otherwise we will
1221		 * be looking for data_nodes below the last device found instead
1222		 * of the common fwnode shared by device_nodes and data_nodes.
1223		 */
1224		adev = to_acpi_device_node(fwnode);
1225		if (adev)
1226			head = &adev->data.subnodes;
1227		else if (data)
1228			head = &data->data.subnodes;
1229		else
1230			return NULL;
1231
1232		if (list_empty(head))
1233			return NULL;
1234
1235		if (child) {
1236			dn = to_acpi_data_node(child);
1237			next = dn->sibling.next;
1238			if (next == head)
1239				return NULL;
1240
1241			dn = list_entry(next, struct acpi_data_node, sibling);
1242		} else {
1243			dn = list_first_entry(head, struct acpi_data_node, sibling);
1244		}
1245		return &dn->fwnode;
1246	}
1247	return NULL;
1248}
1249
1250/**
1251 * acpi_node_get_parent - Return parent fwnode of this fwnode
1252 * @fwnode: Firmware node whose parent to get
1253 *
1254 * Returns parent node of an ACPI device or data firmware node or %NULL if
1255 * not available.
1256 */
1257static struct fwnode_handle *
1258acpi_node_get_parent(const struct fwnode_handle *fwnode)
1259{
1260	if (is_acpi_data_node(fwnode)) {
1261		/* All data nodes have parent pointer so just return that */
1262		return to_acpi_data_node(fwnode)->parent;
1263	}
1264	if (is_acpi_device_node(fwnode)) {
1265		struct acpi_device *parent;
1266
1267		parent = acpi_dev_parent(to_acpi_device_node(fwnode));
1268		if (parent)
1269			return acpi_fwnode_handle(parent);
1270	}
1271
1272	return NULL;
1273}
1274
1275/*
1276 * Return true if the node is an ACPI graph node. Called on either ports
1277 * or endpoints.
1278 */
1279static bool is_acpi_graph_node(struct fwnode_handle *fwnode,
1280			       const char *str)
1281{
1282	unsigned int len = strlen(str);
1283	const char *name;
1284
1285	if (!len || !is_acpi_data_node(fwnode))
1286		return false;
1287
1288	name = to_acpi_data_node(fwnode)->name;
1289
1290	return (fwnode_property_present(fwnode, "reg") &&
1291		!strncmp(name, str, len) && name[len] == '@') ||
1292		fwnode_property_present(fwnode, str);
1293}
1294
1295/**
1296 * acpi_graph_get_next_endpoint - Get next endpoint ACPI firmware node
1297 * @fwnode: Pointer to the parent firmware node
1298 * @prev: Previous endpoint node or %NULL to get the first
1299 *
1300 * Looks up next endpoint ACPI firmware node below a given @fwnode. Returns
1301 * %NULL if there is no next endpoint or in case of error. In case of success
1302 * the next endpoint is returned.
1303 */
1304static struct fwnode_handle *acpi_graph_get_next_endpoint(
1305	const struct fwnode_handle *fwnode, struct fwnode_handle *prev)
1306{
1307	struct fwnode_handle *port = NULL;
1308	struct fwnode_handle *endpoint;
1309
1310	if (!prev) {
1311		do {
1312			port = fwnode_get_next_child_node(fwnode, port);
1313			/*
1314			 * The names of the port nodes begin with "port@"
1315			 * followed by the number of the port node and they also
1316			 * have a "reg" property that also has the number of the
1317			 * port node. For compatibility reasons a node is also
1318			 * recognised as a port node from the "port" property.
1319			 */
1320			if (is_acpi_graph_node(port, "port"))
1321				break;
1322		} while (port);
1323	} else {
1324		port = fwnode_get_parent(prev);
1325	}
1326
1327	if (!port)
1328		return NULL;
1329
1330	endpoint = fwnode_get_next_child_node(port, prev);
1331	while (!endpoint) {
1332		port = fwnode_get_next_child_node(fwnode, port);
1333		if (!port)
1334			break;
1335		if (is_acpi_graph_node(port, "port"))
1336			endpoint = fwnode_get_next_child_node(port, NULL);
1337	}
1338
1339	/*
1340	 * The names of the endpoint nodes begin with "endpoint@" followed by
1341	 * the number of the endpoint node and they also have a "reg" property
1342	 * that also has the number of the endpoint node. For compatibility
1343	 * reasons a node is also recognised as an endpoint node from the
1344	 * "endpoint" property.
1345	 */
1346	if (!is_acpi_graph_node(endpoint, "endpoint"))
1347		return NULL;
1348
1349	return endpoint;
1350}
1351
1352/**
1353 * acpi_graph_get_child_prop_value - Return a child with a given property value
1354 * @fwnode: device fwnode
1355 * @prop_name: The name of the property to look for
1356 * @val: the desired property value
1357 *
1358 * Return the port node corresponding to a given port number. Returns
1359 * the child node on success, NULL otherwise.
1360 */
1361static struct fwnode_handle *acpi_graph_get_child_prop_value(
1362	const struct fwnode_handle *fwnode, const char *prop_name,
1363	unsigned int val)
1364{
1365	struct fwnode_handle *child;
1366
1367	fwnode_for_each_child_node(fwnode, child) {
1368		u32 nr;
1369
1370		if (fwnode_property_read_u32(child, prop_name, &nr))
1371			continue;
1372
1373		if (val == nr)
1374			return child;
1375	}
1376
1377	return NULL;
1378}
1379
1380
1381/**
1382 * acpi_graph_get_remote_endpoint - Parses and returns remote end of an endpoint
1383 * @__fwnode: Endpoint firmware node pointing to a remote device
1384 *
1385 * Returns the remote endpoint corresponding to @__fwnode. NULL on error.
1386 */
1387static struct fwnode_handle *
1388acpi_graph_get_remote_endpoint(const struct fwnode_handle *__fwnode)
1389{
1390	struct fwnode_handle *fwnode;
1391	unsigned int port_nr, endpoint_nr;
1392	struct fwnode_reference_args args;
1393	int ret;
1394
1395	memset(&args, 0, sizeof(args));
1396	ret = acpi_node_get_property_reference(__fwnode, "remote-endpoint", 0,
1397					       &args);
1398	if (ret)
1399		return NULL;
1400
1401	/* Direct endpoint reference? */
1402	if (!is_acpi_device_node(args.fwnode))
1403		return args.nargs ? NULL : args.fwnode;
1404
1405	/*
1406	 * Always require two arguments with the reference: port and
1407	 * endpoint indices.
1408	 */
1409	if (args.nargs != 2)
1410		return NULL;
1411
1412	fwnode = args.fwnode;
1413	port_nr = args.args[0];
1414	endpoint_nr = args.args[1];
1415
1416	fwnode = acpi_graph_get_child_prop_value(fwnode, "port", port_nr);
1417
1418	return acpi_graph_get_child_prop_value(fwnode, "endpoint", endpoint_nr);
1419}
1420
1421static bool acpi_fwnode_device_is_available(const struct fwnode_handle *fwnode)
1422{
1423	if (!is_acpi_device_node(fwnode))
1424		return false;
1425
1426	return acpi_device_is_present(to_acpi_device_node(fwnode));
1427}
1428
1429static const void *
1430acpi_fwnode_device_get_match_data(const struct fwnode_handle *fwnode,
1431				  const struct device *dev)
1432{
1433	return acpi_device_get_match_data(dev);
1434}
1435
1436static bool acpi_fwnode_device_dma_supported(const struct fwnode_handle *fwnode)
1437{
1438	return acpi_dma_supported(to_acpi_device_node(fwnode));
1439}
1440
1441static enum dev_dma_attr
1442acpi_fwnode_device_get_dma_attr(const struct fwnode_handle *fwnode)
1443{
1444	return acpi_get_dma_attr(to_acpi_device_node(fwnode));
1445}
1446
1447static bool acpi_fwnode_property_present(const struct fwnode_handle *fwnode,
1448					 const char *propname)
1449{
1450	return !acpi_node_prop_get(fwnode, propname, NULL);
1451}
1452
1453static int
1454acpi_fwnode_property_read_int_array(const struct fwnode_handle *fwnode,
1455				    const char *propname,
1456				    unsigned int elem_size, void *val,
1457				    size_t nval)
1458{
1459	enum dev_prop_type type;
1460
1461	switch (elem_size) {
1462	case sizeof(u8):
1463		type = DEV_PROP_U8;
1464		break;
1465	case sizeof(u16):
1466		type = DEV_PROP_U16;
1467		break;
1468	case sizeof(u32):
1469		type = DEV_PROP_U32;
1470		break;
1471	case sizeof(u64):
1472		type = DEV_PROP_U64;
1473		break;
1474	default:
1475		return -ENXIO;
1476	}
1477
1478	return acpi_node_prop_read(fwnode, propname, type, val, nval);
1479}
1480
1481static int
1482acpi_fwnode_property_read_string_array(const struct fwnode_handle *fwnode,
1483				       const char *propname, const char **val,
1484				       size_t nval)
1485{
1486	return acpi_node_prop_read(fwnode, propname, DEV_PROP_STRING,
1487				   val, nval);
1488}
1489
1490static int
1491acpi_fwnode_get_reference_args(const struct fwnode_handle *fwnode,
1492			       const char *prop, const char *nargs_prop,
1493			       unsigned int args_count, unsigned int index,
1494			       struct fwnode_reference_args *args)
1495{
1496	return __acpi_node_get_property_reference(fwnode, prop, index,
1497						  args_count, args);
1498}
1499
1500static const char *acpi_fwnode_get_name(const struct fwnode_handle *fwnode)
1501{
1502	const struct acpi_device *adev;
1503	struct fwnode_handle *parent;
1504
1505	/* Is this the root node? */
1506	parent = fwnode_get_parent(fwnode);
1507	if (!parent)
1508		return "\\";
1509
1510	fwnode_handle_put(parent);
1511
1512	if (is_acpi_data_node(fwnode)) {
1513		const struct acpi_data_node *dn = to_acpi_data_node(fwnode);
1514
1515		return dn->name;
1516	}
1517
1518	adev = to_acpi_device_node(fwnode);
1519	if (WARN_ON(!adev))
1520		return NULL;
1521
1522	return acpi_device_bid(adev);
1523}
1524
1525static const char *
1526acpi_fwnode_get_name_prefix(const struct fwnode_handle *fwnode)
1527{
1528	struct fwnode_handle *parent;
1529
1530	/* Is this the root node? */
1531	parent = fwnode_get_parent(fwnode);
1532	if (!parent)
1533		return "";
1534
1535	/* Is this 2nd node from the root? */
1536	parent = fwnode_get_next_parent(parent);
1537	if (!parent)
1538		return "";
1539
1540	fwnode_handle_put(parent);
1541
1542	/* ACPI device or data node. */
1543	return ".";
1544}
1545
1546static struct fwnode_handle *
1547acpi_fwnode_get_parent(struct fwnode_handle *fwnode)
1548{
1549	return acpi_node_get_parent(fwnode);
1550}
1551
1552static int acpi_fwnode_graph_parse_endpoint(const struct fwnode_handle *fwnode,
1553					    struct fwnode_endpoint *endpoint)
1554{
1555	struct fwnode_handle *port_fwnode = fwnode_get_parent(fwnode);
1556
1557	endpoint->local_fwnode = fwnode;
1558
1559	if (fwnode_property_read_u32(port_fwnode, "reg", &endpoint->port))
1560		fwnode_property_read_u32(port_fwnode, "port", &endpoint->port);
1561	if (fwnode_property_read_u32(fwnode, "reg", &endpoint->id))
1562		fwnode_property_read_u32(fwnode, "endpoint", &endpoint->id);
1563
1564	return 0;
1565}
1566
1567static int acpi_fwnode_irq_get(const struct fwnode_handle *fwnode,
1568			       unsigned int index)
1569{
1570	struct resource res;
1571	int ret;
1572
1573	ret = acpi_irq_get(ACPI_HANDLE_FWNODE(fwnode), index, &res);
1574	if (ret)
1575		return ret;
1576
1577	return res.start;
1578}
1579
1580#define DECLARE_ACPI_FWNODE_OPS(ops) \
1581	const struct fwnode_operations ops = {				\
1582		.device_is_available = acpi_fwnode_device_is_available, \
1583		.device_get_match_data = acpi_fwnode_device_get_match_data, \
1584		.device_dma_supported =				\
1585			acpi_fwnode_device_dma_supported,		\
1586		.device_get_dma_attr = acpi_fwnode_device_get_dma_attr,	\
1587		.property_present = acpi_fwnode_property_present,	\
1588		.property_read_int_array =				\
1589			acpi_fwnode_property_read_int_array,		\
1590		.property_read_string_array =				\
1591			acpi_fwnode_property_read_string_array,		\
1592		.get_parent = acpi_node_get_parent,			\
1593		.get_next_child_node = acpi_get_next_subnode,		\
1594		.get_named_child_node = acpi_fwnode_get_named_child_node, \
1595		.get_name = acpi_fwnode_get_name,			\
1596		.get_name_prefix = acpi_fwnode_get_name_prefix,		\
1597		.get_reference_args = acpi_fwnode_get_reference_args,	\
1598		.graph_get_next_endpoint =				\
1599			acpi_graph_get_next_endpoint,			\
1600		.graph_get_remote_endpoint =				\
1601			acpi_graph_get_remote_endpoint,			\
1602		.graph_get_port_parent = acpi_fwnode_get_parent,	\
1603		.graph_parse_endpoint = acpi_fwnode_graph_parse_endpoint, \
1604		.irq_get = acpi_fwnode_irq_get,				\
1605	};								\
1606	EXPORT_SYMBOL_GPL(ops)
1607
1608DECLARE_ACPI_FWNODE_OPS(acpi_device_fwnode_ops);
1609DECLARE_ACPI_FWNODE_OPS(acpi_data_fwnode_ops);
1610const struct fwnode_operations acpi_static_fwnode_ops;
1611
1612bool is_acpi_device_node(const struct fwnode_handle *fwnode)
1613{
1614	return !IS_ERR_OR_NULL(fwnode) &&
1615		fwnode->ops == &acpi_device_fwnode_ops;
1616}
1617EXPORT_SYMBOL(is_acpi_device_node);
1618
1619bool is_acpi_data_node(const struct fwnode_handle *fwnode)
1620{
1621	return !IS_ERR_OR_NULL(fwnode) && fwnode->ops == &acpi_data_fwnode_ops;
1622}
1623EXPORT_SYMBOL(is_acpi_data_node);
1624