1 // SPDX-License-Identifier: GPL-2.0+
3 * Procedures for creating, accessing and interpreting the device tree.
5 * Paul Mackerras August 1996.
6 * Copyright (C) 1996-2005 Paul Mackerras.
8 * Adapted for 64bit PowerPC by Dave Engebretsen and Peter Bergner.
9 * {engebret|bergner}@us.ibm.com
11 * Adapted for sparc and sparc64 by David S. Miller davem@davemloft.net
13 * Reconsolidated from arch/x/kernel/prom.c by Stephen Rothwell and
17 #define pr_fmt(fmt) "OF: " fmt
19 #include <linux/console.h>
20 #include <linux/ctype.h>
21 #include <linux/cpu.h>
22 #include <linux/module.h>
24 #include <linux/of_device.h>
25 #include <linux/of_graph.h>
26 #include <linux/spinlock.h>
27 #include <linux/slab.h>
28 #include <linux/string.h>
29 #include <linux/proc_fs.h>
31 #include "of_private.h"
33 LIST_HEAD(aliases_lookup);
35 struct device_node *of_root;
36 EXPORT_SYMBOL(of_root);
37 struct device_node *of_chosen;
38 EXPORT_SYMBOL(of_chosen);
39 struct device_node *of_aliases;
40 struct device_node *of_stdout;
41 static const char *of_stdout_options;
46 * Used to protect the of_aliases, to hold off addition of nodes to sysfs.
47 * This mutex must be held whenever modifications are being made to the
48 * device tree. The of_{attach,detach}_node() and
49 * of_{add,remove,update}_property() helpers make sure this happens.
51 DEFINE_MUTEX(of_mutex);
53 /* use when traversing tree through the child, sibling,
54 * or parent members of struct device_node.
56 DEFINE_RAW_SPINLOCK(devtree_lock);
58 bool of_node_name_eq(const struct device_node *np, const char *name)
60 const char *node_name;
66 node_name = kbasename(np->full_name);
67 len = strchrnul(node_name, '@') - node_name;
69 return (strlen(name) == len) && (strncmp(node_name, name, len) == 0);
71 EXPORT_SYMBOL(of_node_name_eq);
73 bool of_node_name_prefix(const struct device_node *np, const char *prefix)
78 return strncmp(kbasename(np->full_name), prefix, strlen(prefix)) == 0;
80 EXPORT_SYMBOL(of_node_name_prefix);
82 static bool __of_node_is_type(const struct device_node *np, const char *type)
84 const char *match = __of_get_property(np, "device_type", NULL);
86 return np && match && type && !strcmp(match, type);
89 int of_bus_n_addr_cells(struct device_node *np)
93 for (; np; np = np->parent)
94 if (!of_property_read_u32(np, "#address-cells", &cells))
97 /* No #address-cells property for the root node */
98 return OF_ROOT_NODE_ADDR_CELLS_DEFAULT;
101 int of_n_addr_cells(struct device_node *np)
106 return of_bus_n_addr_cells(np);
108 EXPORT_SYMBOL(of_n_addr_cells);
110 int of_bus_n_size_cells(struct device_node *np)
114 for (; np; np = np->parent)
115 if (!of_property_read_u32(np, "#size-cells", &cells))
118 /* No #size-cells property for the root node */
119 return OF_ROOT_NODE_SIZE_CELLS_DEFAULT;
122 int of_n_size_cells(struct device_node *np)
127 return of_bus_n_size_cells(np);
129 EXPORT_SYMBOL(of_n_size_cells);
132 int __weak of_node_to_nid(struct device_node *np)
138 #define OF_PHANDLE_CACHE_BITS 7
139 #define OF_PHANDLE_CACHE_SZ BIT(OF_PHANDLE_CACHE_BITS)
141 static struct device_node *phandle_cache[OF_PHANDLE_CACHE_SZ];
143 static u32 of_phandle_cache_hash(phandle handle)
145 return hash_32(handle, OF_PHANDLE_CACHE_BITS);
149 * Caller must hold devtree_lock.
151 void __of_phandle_cache_inv_entry(phandle handle)
154 struct device_node *np;
159 handle_hash = of_phandle_cache_hash(handle);
161 np = phandle_cache[handle_hash];
162 if (np && handle == np->phandle)
163 phandle_cache[handle_hash] = NULL;
166 void __init of_core_init(void)
168 struct device_node *np;
170 of_platform_register_reconfig_notifier();
172 /* Create the kset, and register existing nodes */
173 mutex_lock(&of_mutex);
174 of_kset = kset_create_and_add("devicetree", NULL, firmware_kobj);
176 mutex_unlock(&of_mutex);
177 pr_err("failed to register existing nodes\n");
180 for_each_of_allnodes(np) {
181 __of_attach_node_sysfs(np);
182 if (np->phandle && !phandle_cache[of_phandle_cache_hash(np->phandle)])
183 phandle_cache[of_phandle_cache_hash(np->phandle)] = np;
185 mutex_unlock(&of_mutex);
187 /* Symlink in /proc as required by userspace ABI */
189 proc_symlink("device-tree", NULL, "/sys/firmware/devicetree/base");
192 static struct property *__of_find_property(const struct device_node *np,
193 const char *name, int *lenp)
200 for (pp = np->properties; pp; pp = pp->next) {
201 if (of_prop_cmp(pp->name, name) == 0) {
211 struct property *of_find_property(const struct device_node *np,
218 raw_spin_lock_irqsave(&devtree_lock, flags);
219 pp = __of_find_property(np, name, lenp);
220 raw_spin_unlock_irqrestore(&devtree_lock, flags);
224 EXPORT_SYMBOL(of_find_property);
226 struct device_node *__of_find_all_nodes(struct device_node *prev)
228 struct device_node *np;
231 } else if (prev->child) {
234 /* Walk back up looking for a sibling, or the end of the structure */
236 while (np->parent && !np->sibling)
238 np = np->sibling; /* Might be null at the end of the tree */
244 * of_find_all_nodes - Get next node in global list
245 * @prev: Previous node or NULL to start iteration
246 * of_node_put() will be called on it
248 * Return: A node pointer with refcount incremented, use
249 * of_node_put() on it when done.
251 struct device_node *of_find_all_nodes(struct device_node *prev)
253 struct device_node *np;
256 raw_spin_lock_irqsave(&devtree_lock, flags);
257 np = __of_find_all_nodes(prev);
260 raw_spin_unlock_irqrestore(&devtree_lock, flags);
263 EXPORT_SYMBOL(of_find_all_nodes);
266 * Find a property with a given name for a given node
267 * and return the value.
269 const void *__of_get_property(const struct device_node *np,
270 const char *name, int *lenp)
272 struct property *pp = __of_find_property(np, name, lenp);
274 return pp ? pp->value : NULL;
278 * Find a property with a given name for a given node
279 * and return the value.
281 const void *of_get_property(const struct device_node *np, const char *name,
284 struct property *pp = of_find_property(np, name, lenp);
286 return pp ? pp->value : NULL;
288 EXPORT_SYMBOL(of_get_property);
291 * __of_device_is_compatible() - Check if the node matches given constraints
292 * @device: pointer to node
293 * @compat: required compatible string, NULL or "" for any match
294 * @type: required device_type value, NULL or "" for any match
295 * @name: required node name, NULL or "" for any match
297 * Checks if the given @compat, @type and @name strings match the
298 * properties of the given @device. A constraints can be skipped by
299 * passing NULL or an empty string as the constraint.
301 * Returns 0 for no match, and a positive integer on match. The return
302 * value is a relative score with larger values indicating better
303 * matches. The score is weighted for the most specific compatible value
304 * to get the highest score. Matching type is next, followed by matching
305 * name. Practically speaking, this results in the following priority
308 * 1. specific compatible && type && name
309 * 2. specific compatible && type
310 * 3. specific compatible && name
311 * 4. specific compatible
312 * 5. general compatible && type && name
313 * 6. general compatible && type
314 * 7. general compatible && name
315 * 8. general compatible
320 static int __of_device_is_compatible(const struct device_node *device,
321 const char *compat, const char *type, const char *name)
323 struct property *prop;
325 int index = 0, score = 0;
327 /* Compatible match has highest priority */
328 if (compat && compat[0]) {
329 prop = __of_find_property(device, "compatible", NULL);
330 for (cp = of_prop_next_string(prop, NULL); cp;
331 cp = of_prop_next_string(prop, cp), index++) {
332 if (of_compat_cmp(cp, compat, strlen(compat)) == 0) {
333 score = INT_MAX/2 - (index << 2);
341 /* Matching type is better than matching name */
342 if (type && type[0]) {
343 if (!__of_node_is_type(device, type))
348 /* Matching name is a bit better than not */
349 if (name && name[0]) {
350 if (!of_node_name_eq(device, name))
358 /** Checks if the given "compat" string matches one of the strings in
359 * the device's "compatible" property
361 int of_device_is_compatible(const struct device_node *device,
367 raw_spin_lock_irqsave(&devtree_lock, flags);
368 res = __of_device_is_compatible(device, compat, NULL, NULL);
369 raw_spin_unlock_irqrestore(&devtree_lock, flags);
372 EXPORT_SYMBOL(of_device_is_compatible);
374 /** Checks if the device is compatible with any of the entries in
375 * a NULL terminated array of strings. Returns the best match
378 int of_device_compatible_match(const struct device_node *device,
379 const char *const *compat)
381 unsigned int tmp, score = 0;
387 tmp = of_device_is_compatible(device, *compat);
395 EXPORT_SYMBOL_GPL(of_device_compatible_match);
398 * of_machine_is_compatible - Test root of device tree for a given compatible value
399 * @compat: compatible string to look for in root node's compatible property.
401 * Return: A positive integer if the root node has the given value in its
402 * compatible property.
404 int of_machine_is_compatible(const char *compat)
406 struct device_node *root;
409 root = of_find_node_by_path("/");
411 rc = of_device_is_compatible(root, compat);
416 EXPORT_SYMBOL(of_machine_is_compatible);
419 * __of_device_is_available - check if a device is available for use
421 * @device: Node to check for availability, with locks already held
423 * Return: True if the status property is absent or set to "okay" or "ok",
426 static bool __of_device_is_available(const struct device_node *device)
434 status = __of_get_property(device, "status", &statlen);
439 if (!strcmp(status, "okay") || !strcmp(status, "ok"))
447 * of_device_is_available - check if a device is available for use
449 * @device: Node to check for availability
451 * Return: True if the status property is absent or set to "okay" or "ok",
454 bool of_device_is_available(const struct device_node *device)
459 raw_spin_lock_irqsave(&devtree_lock, flags);
460 res = __of_device_is_available(device);
461 raw_spin_unlock_irqrestore(&devtree_lock, flags);
465 EXPORT_SYMBOL(of_device_is_available);
468 * __of_device_is_fail - check if a device has status "fail" or "fail-..."
470 * @device: Node to check status for, with locks already held
472 * Return: True if the status property is set to "fail" or "fail-..." (for any
473 * error code suffix), false otherwise
475 static bool __of_device_is_fail(const struct device_node *device)
482 status = __of_get_property(device, "status", NULL);
486 return !strcmp(status, "fail") || !strncmp(status, "fail-", 5);
490 * of_device_is_big_endian - check if a device has BE registers
492 * @device: Node to check for endianness
494 * Return: True if the device has a "big-endian" property, or if the kernel
495 * was compiled for BE *and* the device has a "native-endian" property.
496 * Returns false otherwise.
498 * Callers would nominally use ioread32be/iowrite32be if
499 * of_device_is_big_endian() == true, or readl/writel otherwise.
501 bool of_device_is_big_endian(const struct device_node *device)
503 if (of_property_read_bool(device, "big-endian"))
505 if (IS_ENABLED(CONFIG_CPU_BIG_ENDIAN) &&
506 of_property_read_bool(device, "native-endian"))
510 EXPORT_SYMBOL(of_device_is_big_endian);
513 * of_get_parent - Get a node's parent if any
514 * @node: Node to get parent
516 * Return: A node pointer with refcount incremented, use
517 * of_node_put() on it when done.
519 struct device_node *of_get_parent(const struct device_node *node)
521 struct device_node *np;
527 raw_spin_lock_irqsave(&devtree_lock, flags);
528 np = of_node_get(node->parent);
529 raw_spin_unlock_irqrestore(&devtree_lock, flags);
532 EXPORT_SYMBOL(of_get_parent);
535 * of_get_next_parent - Iterate to a node's parent
536 * @node: Node to get parent of
538 * This is like of_get_parent() except that it drops the
539 * refcount on the passed node, making it suitable for iterating
540 * through a node's parents.
542 * Return: A node pointer with refcount incremented, use
543 * of_node_put() on it when done.
545 struct device_node *of_get_next_parent(struct device_node *node)
547 struct device_node *parent;
553 raw_spin_lock_irqsave(&devtree_lock, flags);
554 parent = of_node_get(node->parent);
556 raw_spin_unlock_irqrestore(&devtree_lock, flags);
559 EXPORT_SYMBOL(of_get_next_parent);
561 static struct device_node *__of_get_next_child(const struct device_node *node,
562 struct device_node *prev)
564 struct device_node *next;
569 next = prev ? prev->sibling : node->child;
574 #define __for_each_child_of_node(parent, child) \
575 for (child = __of_get_next_child(parent, NULL); child != NULL; \
576 child = __of_get_next_child(parent, child))
579 * of_get_next_child - Iterate a node childs
581 * @prev: previous child of the parent node, or NULL to get first
583 * Return: A node pointer with refcount incremented, use of_node_put() on
584 * it when done. Returns NULL when prev is the last child. Decrements the
587 struct device_node *of_get_next_child(const struct device_node *node,
588 struct device_node *prev)
590 struct device_node *next;
593 raw_spin_lock_irqsave(&devtree_lock, flags);
594 next = __of_get_next_child(node, prev);
595 raw_spin_unlock_irqrestore(&devtree_lock, flags);
598 EXPORT_SYMBOL(of_get_next_child);
601 * of_get_next_available_child - Find the next available child node
603 * @prev: previous child of the parent node, or NULL to get first
605 * This function is like of_get_next_child(), except that it
606 * automatically skips any disabled nodes (i.e. status = "disabled").
608 struct device_node *of_get_next_available_child(const struct device_node *node,
609 struct device_node *prev)
611 struct device_node *next;
617 raw_spin_lock_irqsave(&devtree_lock, flags);
618 next = prev ? prev->sibling : node->child;
619 for (; next; next = next->sibling) {
620 if (!__of_device_is_available(next))
622 if (of_node_get(next))
626 raw_spin_unlock_irqrestore(&devtree_lock, flags);
629 EXPORT_SYMBOL(of_get_next_available_child);
632 * of_get_next_cpu_node - Iterate on cpu nodes
633 * @prev: previous child of the /cpus node, or NULL to get first
635 * Unusable CPUs (those with the status property set to "fail" or "fail-...")
638 * Return: A cpu node pointer with refcount incremented, use of_node_put()
639 * on it when done. Returns NULL when prev is the last child. Decrements
640 * the refcount of prev.
642 struct device_node *of_get_next_cpu_node(struct device_node *prev)
644 struct device_node *next = NULL;
646 struct device_node *node;
649 node = of_find_node_by_path("/cpus");
651 raw_spin_lock_irqsave(&devtree_lock, flags);
653 next = prev->sibling;
658 for (; next; next = next->sibling) {
659 if (__of_device_is_fail(next))
661 if (!(of_node_name_eq(next, "cpu") ||
662 __of_node_is_type(next, "cpu")))
664 if (of_node_get(next))
668 raw_spin_unlock_irqrestore(&devtree_lock, flags);
671 EXPORT_SYMBOL(of_get_next_cpu_node);
674 * of_get_compatible_child - Find compatible child node
675 * @parent: parent node
676 * @compatible: compatible string
678 * Lookup child node whose compatible property contains the given compatible
681 * Return: a node pointer with refcount incremented, use of_node_put() on it
682 * when done; or NULL if not found.
684 struct device_node *of_get_compatible_child(const struct device_node *parent,
685 const char *compatible)
687 struct device_node *child;
689 for_each_child_of_node(parent, child) {
690 if (of_device_is_compatible(child, compatible))
696 EXPORT_SYMBOL(of_get_compatible_child);
699 * of_get_child_by_name - Find the child node by name for a given parent
701 * @name: child name to look for.
703 * This function looks for child node for given matching name
705 * Return: A node pointer if found, with refcount incremented, use
706 * of_node_put() on it when done.
707 * Returns NULL if node is not found.
709 struct device_node *of_get_child_by_name(const struct device_node *node,
712 struct device_node *child;
714 for_each_child_of_node(node, child)
715 if (of_node_name_eq(child, name))
719 EXPORT_SYMBOL(of_get_child_by_name);
721 struct device_node *__of_find_node_by_path(struct device_node *parent,
724 struct device_node *child;
727 len = strcspn(path, "/:");
731 __for_each_child_of_node(parent, child) {
732 const char *name = kbasename(child->full_name);
733 if (strncmp(path, name, len) == 0 && (strlen(name) == len))
739 struct device_node *__of_find_node_by_full_path(struct device_node *node,
742 const char *separator = strchr(path, ':');
744 while (node && *path == '/') {
745 struct device_node *tmp = node;
747 path++; /* Increment past '/' delimiter */
748 node = __of_find_node_by_path(node, path);
750 path = strchrnul(path, '/');
751 if (separator && separator < path)
758 * of_find_node_opts_by_path - Find a node matching a full OF path
759 * @path: Either the full path to match, or if the path does not
760 * start with '/', the name of a property of the /aliases
761 * node (an alias). In the case of an alias, the node
762 * matching the alias' value will be returned.
763 * @opts: Address of a pointer into which to store the start of
764 * an options string appended to the end of the path with
768 * * /foo/bar Full path
770 * * foo/bar Valid alias + relative path
772 * Return: A node pointer with refcount incremented, use
773 * of_node_put() on it when done.
775 struct device_node *of_find_node_opts_by_path(const char *path, const char **opts)
777 struct device_node *np = NULL;
780 const char *separator = strchr(path, ':');
783 *opts = separator ? separator + 1 : NULL;
785 if (strcmp(path, "/") == 0)
786 return of_node_get(of_root);
788 /* The path could begin with an alias */
791 const char *p = separator;
794 p = strchrnul(path, '/');
797 /* of_aliases must not be NULL */
801 for_each_property_of_node(of_aliases, pp) {
802 if (strlen(pp->name) == len && !strncmp(pp->name, path, len)) {
803 np = of_find_node_by_path(pp->value);
812 /* Step down the tree matching path components */
813 raw_spin_lock_irqsave(&devtree_lock, flags);
815 np = of_node_get(of_root);
816 np = __of_find_node_by_full_path(np, path);
817 raw_spin_unlock_irqrestore(&devtree_lock, flags);
820 EXPORT_SYMBOL(of_find_node_opts_by_path);
823 * of_find_node_by_name - Find a node by its "name" property
824 * @from: The node to start searching from or NULL; the node
825 * you pass will not be searched, only the next one
826 * will. Typically, you pass what the previous call
827 * returned. of_node_put() will be called on @from.
828 * @name: The name string to match against
830 * Return: A node pointer with refcount incremented, use
831 * of_node_put() on it when done.
833 struct device_node *of_find_node_by_name(struct device_node *from,
836 struct device_node *np;
839 raw_spin_lock_irqsave(&devtree_lock, flags);
840 for_each_of_allnodes_from(from, np)
841 if (of_node_name_eq(np, name) && of_node_get(np))
844 raw_spin_unlock_irqrestore(&devtree_lock, flags);
847 EXPORT_SYMBOL(of_find_node_by_name);
850 * of_find_node_by_type - Find a node by its "device_type" property
851 * @from: The node to start searching from, or NULL to start searching
852 * the entire device tree. The node you pass will not be
853 * searched, only the next one will; typically, you pass
854 * what the previous call returned. of_node_put() will be
855 * called on from for you.
856 * @type: The type string to match against
858 * Return: A node pointer with refcount incremented, use
859 * of_node_put() on it when done.
861 struct device_node *of_find_node_by_type(struct device_node *from,
864 struct device_node *np;
867 raw_spin_lock_irqsave(&devtree_lock, flags);
868 for_each_of_allnodes_from(from, np)
869 if (__of_node_is_type(np, type) && of_node_get(np))
872 raw_spin_unlock_irqrestore(&devtree_lock, flags);
875 EXPORT_SYMBOL(of_find_node_by_type);
878 * of_find_compatible_node - Find a node based on type and one of the
879 * tokens in its "compatible" property
880 * @from: The node to start searching from or NULL, the node
881 * you pass will not be searched, only the next one
882 * will; typically, you pass what the previous call
883 * returned. of_node_put() will be called on it
884 * @type: The type string to match "device_type" or NULL to ignore
885 * @compatible: The string to match to one of the tokens in the device
888 * Return: A node pointer with refcount incremented, use
889 * of_node_put() on it when done.
891 struct device_node *of_find_compatible_node(struct device_node *from,
892 const char *type, const char *compatible)
894 struct device_node *np;
897 raw_spin_lock_irqsave(&devtree_lock, flags);
898 for_each_of_allnodes_from(from, np)
899 if (__of_device_is_compatible(np, compatible, type, NULL) &&
903 raw_spin_unlock_irqrestore(&devtree_lock, flags);
906 EXPORT_SYMBOL(of_find_compatible_node);
909 * of_find_node_with_property - Find a node which has a property with
911 * @from: The node to start searching from or NULL, the node
912 * you pass will not be searched, only the next one
913 * will; typically, you pass what the previous call
914 * returned. of_node_put() will be called on it
915 * @prop_name: The name of the property to look for.
917 * Return: A node pointer with refcount incremented, use
918 * of_node_put() on it when done.
920 struct device_node *of_find_node_with_property(struct device_node *from,
921 const char *prop_name)
923 struct device_node *np;
927 raw_spin_lock_irqsave(&devtree_lock, flags);
928 for_each_of_allnodes_from(from, np) {
929 for (pp = np->properties; pp; pp = pp->next) {
930 if (of_prop_cmp(pp->name, prop_name) == 0) {
938 raw_spin_unlock_irqrestore(&devtree_lock, flags);
941 EXPORT_SYMBOL(of_find_node_with_property);
944 const struct of_device_id *__of_match_node(const struct of_device_id *matches,
945 const struct device_node *node)
947 const struct of_device_id *best_match = NULL;
948 int score, best_score = 0;
953 for (; matches->name[0] || matches->type[0] || matches->compatible[0]; matches++) {
954 score = __of_device_is_compatible(node, matches->compatible,
955 matches->type, matches->name);
956 if (score > best_score) {
957 best_match = matches;
966 * of_match_node - Tell if a device_node has a matching of_match structure
967 * @matches: array of of device match structures to search in
968 * @node: the of device structure to match against
970 * Low level utility function used by device matching.
972 const struct of_device_id *of_match_node(const struct of_device_id *matches,
973 const struct device_node *node)
975 const struct of_device_id *match;
978 raw_spin_lock_irqsave(&devtree_lock, flags);
979 match = __of_match_node(matches, node);
980 raw_spin_unlock_irqrestore(&devtree_lock, flags);
983 EXPORT_SYMBOL(of_match_node);
986 * of_find_matching_node_and_match - Find a node based on an of_device_id
988 * @from: The node to start searching from or NULL, the node
989 * you pass will not be searched, only the next one
990 * will; typically, you pass what the previous call
991 * returned. of_node_put() will be called on it
992 * @matches: array of of device match structures to search in
993 * @match: Updated to point at the matches entry which matched
995 * Return: A node pointer with refcount incremented, use
996 * of_node_put() on it when done.
998 struct device_node *of_find_matching_node_and_match(struct device_node *from,
999 const struct of_device_id *matches,
1000 const struct of_device_id **match)
1002 struct device_node *np;
1003 const struct of_device_id *m;
1004 unsigned long flags;
1009 raw_spin_lock_irqsave(&devtree_lock, flags);
1010 for_each_of_allnodes_from(from, np) {
1011 m = __of_match_node(matches, np);
1012 if (m && of_node_get(np)) {
1019 raw_spin_unlock_irqrestore(&devtree_lock, flags);
1022 EXPORT_SYMBOL(of_find_matching_node_and_match);
1025 * of_alias_from_compatible - Lookup appropriate alias for a device node
1026 * depending on compatible
1027 * @node: pointer to a device tree node
1028 * @alias: Pointer to buffer that alias value will be copied into
1029 * @len: Length of alias value
1031 * Based on the value of the compatible property, this routine will attempt
1032 * to choose an appropriate alias value for a particular device tree node.
1033 * It does this by stripping the manufacturer prefix (as delimited by a ',')
1034 * from the first entry in the compatible list property.
1036 * Note: The matching on just the "product" side of the compatible is a relic
1037 * from I2C and SPI. Please do not add any new user.
1039 * Return: This routine returns 0 on success, <0 on failure.
1041 int of_alias_from_compatible(const struct device_node *node, char *alias, int len)
1043 const char *compatible, *p;
1046 compatible = of_get_property(node, "compatible", &cplen);
1047 if (!compatible || strlen(compatible) > cplen)
1049 p = strchr(compatible, ',');
1050 strscpy(alias, p ? p + 1 : compatible, len);
1053 EXPORT_SYMBOL_GPL(of_alias_from_compatible);
1056 * of_find_node_by_phandle - Find a node given a phandle
1057 * @handle: phandle of the node to find
1059 * Return: A node pointer with refcount incremented, use
1060 * of_node_put() on it when done.
1062 struct device_node *of_find_node_by_phandle(phandle handle)
1064 struct device_node *np = NULL;
1065 unsigned long flags;
1071 handle_hash = of_phandle_cache_hash(handle);
1073 raw_spin_lock_irqsave(&devtree_lock, flags);
1075 if (phandle_cache[handle_hash] &&
1076 handle == phandle_cache[handle_hash]->phandle)
1077 np = phandle_cache[handle_hash];
1080 for_each_of_allnodes(np)
1081 if (np->phandle == handle &&
1082 !of_node_check_flag(np, OF_DETACHED)) {
1083 phandle_cache[handle_hash] = np;
1089 raw_spin_unlock_irqrestore(&devtree_lock, flags);
1092 EXPORT_SYMBOL(of_find_node_by_phandle);
1094 void of_print_phandle_args(const char *msg, const struct of_phandle_args *args)
1097 printk("%s %pOF", msg, args->np);
1098 for (i = 0; i < args->args_count; i++) {
1099 const char delim = i ? ',' : ':';
1101 pr_cont("%c%08x", delim, args->args[i]);
1106 int of_phandle_iterator_init(struct of_phandle_iterator *it,
1107 const struct device_node *np,
1108 const char *list_name,
1109 const char *cells_name,
1115 memset(it, 0, sizeof(*it));
1118 * one of cell_count or cells_name must be provided to determine the
1121 if (cell_count < 0 && !cells_name)
1124 list = of_get_property(np, list_name, &size);
1128 it->cells_name = cells_name;
1129 it->cell_count = cell_count;
1131 it->list_end = list + size / sizeof(*list);
1132 it->phandle_end = list;
1137 EXPORT_SYMBOL_GPL(of_phandle_iterator_init);
1139 int of_phandle_iterator_next(struct of_phandle_iterator *it)
1144 of_node_put(it->node);
1148 if (!it->cur || it->phandle_end >= it->list_end)
1151 it->cur = it->phandle_end;
1153 /* If phandle is 0, then it is an empty entry with no arguments. */
1154 it->phandle = be32_to_cpup(it->cur++);
1159 * Find the provider node and parse the #*-cells property to
1160 * determine the argument length.
1162 it->node = of_find_node_by_phandle(it->phandle);
1164 if (it->cells_name) {
1166 pr_err("%pOF: could not find phandle %d\n",
1167 it->parent, it->phandle);
1171 if (of_property_read_u32(it->node, it->cells_name,
1174 * If both cell_count and cells_name is given,
1175 * fall back to cell_count in absence
1176 * of the cells_name property
1178 if (it->cell_count >= 0) {
1179 count = it->cell_count;
1181 pr_err("%pOF: could not get %s for %pOF\n",
1189 count = it->cell_count;
1193 * Make sure that the arguments actually fit in the remaining
1194 * property data length
1196 if (it->cur + count > it->list_end) {
1198 pr_err("%pOF: %s = %d found %td\n",
1199 it->parent, it->cells_name,
1200 count, it->list_end - it->cur);
1202 pr_err("%pOF: phandle %s needs %d, found %td\n",
1203 it->parent, of_node_full_name(it->node),
1204 count, it->list_end - it->cur);
1209 it->phandle_end = it->cur + count;
1210 it->cur_count = count;
1216 of_node_put(it->node);
1222 EXPORT_SYMBOL_GPL(of_phandle_iterator_next);
1224 int of_phandle_iterator_args(struct of_phandle_iterator *it,
1230 count = it->cur_count;
1232 if (WARN_ON(size < count))
1235 for (i = 0; i < count; i++)
1236 args[i] = be32_to_cpup(it->cur++);
1241 int __of_parse_phandle_with_args(const struct device_node *np,
1242 const char *list_name,
1243 const char *cells_name,
1244 int cell_count, int index,
1245 struct of_phandle_args *out_args)
1247 struct of_phandle_iterator it;
1248 int rc, cur_index = 0;
1253 /* Loop over the phandles until all the requested entry is found */
1254 of_for_each_phandle(&it, rc, np, list_name, cells_name, cell_count) {
1256 * All of the error cases bail out of the loop, so at
1257 * this point, the parsing is successful. If the requested
1258 * index matches, then fill the out_args structure and return,
1259 * or return -ENOENT for an empty entry.
1262 if (cur_index == index) {
1269 c = of_phandle_iterator_args(&it,
1272 out_args->np = it.node;
1273 out_args->args_count = c;
1275 of_node_put(it.node);
1278 /* Found it! return success */
1286 * Unlock node before returning result; will be one of:
1287 * -ENOENT : index is for empty phandle
1288 * -EINVAL : parsing error on data
1292 of_node_put(it.node);
1295 EXPORT_SYMBOL(__of_parse_phandle_with_args);
1298 * of_parse_phandle_with_args_map() - Find a node pointed by phandle in a list and remap it
1299 * @np: pointer to a device tree node containing a list
1300 * @list_name: property name that contains a list
1301 * @stem_name: stem of property names that specify phandles' arguments count
1302 * @index: index of a phandle to parse out
1303 * @out_args: optional pointer to output arguments structure (will be filled)
1305 * This function is useful to parse lists of phandles and their arguments.
1306 * Returns 0 on success and fills out_args, on error returns appropriate errno
1307 * value. The difference between this function and of_parse_phandle_with_args()
1308 * is that this API remaps a phandle if the node the phandle points to has
1309 * a <@stem_name>-map property.
1311 * Caller is responsible to call of_node_put() on the returned out_args->np
1317 * #list-cells = <2>;
1321 * #list-cells = <1>;
1325 * #list-cells = <1>;
1326 * list-map = <0 &phandle2 3>,
1328 * <2 &phandle1 5 1>;
1329 * list-map-mask = <0x3>;
1333 * list = <&phandle1 1 2 &phandle3 0>;
1336 * To get a device_node of the ``node2`` node you may call this:
1337 * of_parse_phandle_with_args(node4, "list", "list", 1, &args);
1339 int of_parse_phandle_with_args_map(const struct device_node *np,
1340 const char *list_name,
1341 const char *stem_name,
1342 int index, struct of_phandle_args *out_args)
1344 char *cells_name, *map_name = NULL, *mask_name = NULL;
1345 char *pass_name = NULL;
1346 struct device_node *cur, *new = NULL;
1347 const __be32 *map, *mask, *pass;
1348 static const __be32 dummy_mask[] = { [0 ... MAX_PHANDLE_ARGS] = ~0 };
1349 static const __be32 dummy_pass[] = { [0 ... MAX_PHANDLE_ARGS] = 0 };
1350 __be32 initial_match_array[MAX_PHANDLE_ARGS];
1351 const __be32 *match_array = initial_match_array;
1352 int i, ret, map_len, match;
1353 u32 list_size, new_size;
1358 cells_name = kasprintf(GFP_KERNEL, "#%s-cells", stem_name);
1363 map_name = kasprintf(GFP_KERNEL, "%s-map", stem_name);
1367 mask_name = kasprintf(GFP_KERNEL, "%s-map-mask", stem_name);
1371 pass_name = kasprintf(GFP_KERNEL, "%s-map-pass-thru", stem_name);
1375 ret = __of_parse_phandle_with_args(np, list_name, cells_name, -1, index,
1380 /* Get the #<list>-cells property */
1382 ret = of_property_read_u32(cur, cells_name, &list_size);
1386 /* Precalculate the match array - this simplifies match loop */
1387 for (i = 0; i < list_size; i++)
1388 initial_match_array[i] = cpu_to_be32(out_args->args[i]);
1392 /* Get the <list>-map property */
1393 map = of_get_property(cur, map_name, &map_len);
1398 map_len /= sizeof(u32);
1400 /* Get the <list>-map-mask property (optional) */
1401 mask = of_get_property(cur, mask_name, NULL);
1404 /* Iterate through <list>-map property */
1406 while (map_len > (list_size + 1) && !match) {
1407 /* Compare specifiers */
1409 for (i = 0; i < list_size; i++, map_len--)
1410 match &= !((match_array[i] ^ *map++) & mask[i]);
1413 new = of_find_node_by_phandle(be32_to_cpup(map));
1417 /* Check if not found */
1421 if (!of_device_is_available(new))
1424 ret = of_property_read_u32(new, cells_name, &new_size);
1428 /* Check for malformed properties */
1429 if (WARN_ON(new_size > MAX_PHANDLE_ARGS))
1431 if (map_len < new_size)
1434 /* Move forward by new node's #<list>-cells amount */
1436 map_len -= new_size;
1441 /* Get the <list>-map-pass-thru property (optional) */
1442 pass = of_get_property(cur, pass_name, NULL);
1447 * Successfully parsed a <list>-map translation; copy new
1448 * specifier into the out_args structure, keeping the
1449 * bits specified in <list>-map-pass-thru.
1451 match_array = map - new_size;
1452 for (i = 0; i < new_size; i++) {
1453 __be32 val = *(map - new_size + i);
1455 if (i < list_size) {
1457 val |= cpu_to_be32(out_args->args[i]) & pass[i];
1460 out_args->args[i] = be32_to_cpu(val);
1462 out_args->args_count = list_size = new_size;
1463 /* Iterate again with new provider */
1479 EXPORT_SYMBOL(of_parse_phandle_with_args_map);
1482 * of_count_phandle_with_args() - Find the number of phandles references in a property
1483 * @np: pointer to a device tree node containing a list
1484 * @list_name: property name that contains a list
1485 * @cells_name: property name that specifies phandles' arguments count
1487 * Return: The number of phandle + argument tuples within a property. It
1488 * is a typical pattern to encode a list of phandle and variable
1489 * arguments into a single property. The number of arguments is encoded
1490 * by a property in the phandle-target node. For example, a gpios
1491 * property would contain a list of GPIO specifies consisting of a
1492 * phandle and 1 or more arguments. The number of arguments are
1493 * determined by the #gpio-cells property in the node pointed to by the
1496 int of_count_phandle_with_args(const struct device_node *np, const char *list_name,
1497 const char *cells_name)
1499 struct of_phandle_iterator it;
1500 int rc, cur_index = 0;
1503 * If cells_name is NULL we assume a cell count of 0. This makes
1504 * counting the phandles trivial as each 32bit word in the list is a
1505 * phandle and no arguments are to consider. So we don't iterate through
1506 * the list but just use the length to determine the phandle count.
1512 list = of_get_property(np, list_name, &size);
1516 return size / sizeof(*list);
1519 rc = of_phandle_iterator_init(&it, np, list_name, cells_name, -1);
1523 while ((rc = of_phandle_iterator_next(&it)) == 0)
1531 EXPORT_SYMBOL(of_count_phandle_with_args);
1533 static struct property *__of_remove_property_from_list(struct property **list, struct property *prop)
1535 struct property **next;
1537 for (next = list; *next; next = &(*next)->next) {
1538 if (*next == prop) {
1548 * __of_add_property - Add a property to a node without lock operations
1549 * @np: Caller's Device Node
1550 * @prop: Property to add
1552 int __of_add_property(struct device_node *np, struct property *prop)
1555 unsigned long flags;
1556 struct property **next;
1558 raw_spin_lock_irqsave(&devtree_lock, flags);
1560 __of_remove_property_from_list(&np->deadprops, prop);
1563 next = &np->properties;
1565 if (strcmp(prop->name, (*next)->name) == 0) {
1566 /* duplicate ! don't insert it */
1570 next = &(*next)->next;
1575 raw_spin_unlock_irqrestore(&devtree_lock, flags);
1579 __of_add_property_sysfs(np, prop);
1584 * of_add_property - Add a property to a node
1585 * @np: Caller's Device Node
1586 * @prop: Property to add
1588 int of_add_property(struct device_node *np, struct property *prop)
1592 mutex_lock(&of_mutex);
1593 rc = __of_add_property(np, prop);
1594 mutex_unlock(&of_mutex);
1597 of_property_notify(OF_RECONFIG_ADD_PROPERTY, np, prop, NULL);
1601 EXPORT_SYMBOL_GPL(of_add_property);
1603 int __of_remove_property(struct device_node *np, struct property *prop)
1605 unsigned long flags;
1608 raw_spin_lock_irqsave(&devtree_lock, flags);
1610 if (__of_remove_property_from_list(&np->properties, prop)) {
1611 /* Found the property, add it to deadprops list */
1612 prop->next = np->deadprops;
1613 np->deadprops = prop;
1617 raw_spin_unlock_irqrestore(&devtree_lock, flags);
1621 __of_remove_property_sysfs(np, prop);
1626 * of_remove_property - Remove a property from a node.
1627 * @np: Caller's Device Node
1628 * @prop: Property to remove
1630 * Note that we don't actually remove it, since we have given out
1631 * who-knows-how-many pointers to the data using get-property.
1632 * Instead we just move the property to the "dead properties"
1633 * list, so it won't be found any more.
1635 int of_remove_property(struct device_node *np, struct property *prop)
1642 mutex_lock(&of_mutex);
1643 rc = __of_remove_property(np, prop);
1644 mutex_unlock(&of_mutex);
1647 of_property_notify(OF_RECONFIG_REMOVE_PROPERTY, np, prop, NULL);
1651 EXPORT_SYMBOL_GPL(of_remove_property);
1653 int __of_update_property(struct device_node *np, struct property *newprop,
1654 struct property **oldpropp)
1656 struct property **next, *oldprop;
1657 unsigned long flags;
1659 raw_spin_lock_irqsave(&devtree_lock, flags);
1661 __of_remove_property_from_list(&np->deadprops, newprop);
1663 for (next = &np->properties; *next; next = &(*next)->next) {
1664 if (of_prop_cmp((*next)->name, newprop->name) == 0)
1667 *oldpropp = oldprop = *next;
1670 /* replace the node */
1671 newprop->next = oldprop->next;
1673 oldprop->next = np->deadprops;
1674 np->deadprops = oldprop;
1677 newprop->next = NULL;
1681 raw_spin_unlock_irqrestore(&devtree_lock, flags);
1683 __of_update_property_sysfs(np, newprop, oldprop);
1689 * of_update_property - Update a property in a node, if the property does
1690 * not exist, add it.
1692 * Note that we don't actually remove it, since we have given out
1693 * who-knows-how-many pointers to the data using get-property.
1694 * Instead we just move the property to the "dead properties" list,
1695 * and add the new property to the property list
1697 int of_update_property(struct device_node *np, struct property *newprop)
1699 struct property *oldprop;
1705 mutex_lock(&of_mutex);
1706 rc = __of_update_property(np, newprop, &oldprop);
1707 mutex_unlock(&of_mutex);
1710 of_property_notify(OF_RECONFIG_UPDATE_PROPERTY, np, newprop, oldprop);
1715 static void of_alias_add(struct alias_prop *ap, struct device_node *np,
1716 int id, const char *stem, int stem_len)
1720 strscpy(ap->stem, stem, stem_len + 1);
1721 list_add_tail(&ap->link, &aliases_lookup);
1722 pr_debug("adding DT alias:%s: stem=%s id=%i node=%pOF\n",
1723 ap->alias, ap->stem, ap->id, np);
1727 * of_alias_scan - Scan all properties of the 'aliases' node
1728 * @dt_alloc: An allocator that provides a virtual address to memory
1729 * for storing the resulting tree
1731 * The function scans all the properties of the 'aliases' node and populates
1732 * the global lookup table with the properties. It returns the
1733 * number of alias properties found, or an error code in case of failure.
1735 void of_alias_scan(void * (*dt_alloc)(u64 size, u64 align))
1737 struct property *pp;
1739 of_aliases = of_find_node_by_path("/aliases");
1740 of_chosen = of_find_node_by_path("/chosen");
1741 if (of_chosen == NULL)
1742 of_chosen = of_find_node_by_path("/chosen@0");
1745 /* linux,stdout-path and /aliases/stdout are for legacy compatibility */
1746 const char *name = NULL;
1748 if (of_property_read_string(of_chosen, "stdout-path", &name))
1749 of_property_read_string(of_chosen, "linux,stdout-path",
1751 if (IS_ENABLED(CONFIG_PPC) && !name)
1752 of_property_read_string(of_aliases, "stdout", &name);
1754 of_stdout = of_find_node_opts_by_path(name, &of_stdout_options);
1756 of_stdout->fwnode.flags |= FWNODE_FLAG_BEST_EFFORT;
1762 for_each_property_of_node(of_aliases, pp) {
1763 const char *start = pp->name;
1764 const char *end = start + strlen(start);
1765 struct device_node *np;
1766 struct alias_prop *ap;
1769 /* Skip those we do not want to proceed */
1770 if (!strcmp(pp->name, "name") ||
1771 !strcmp(pp->name, "phandle") ||
1772 !strcmp(pp->name, "linux,phandle"))
1775 np = of_find_node_by_path(pp->value);
1779 /* walk the alias backwards to extract the id and work out
1780 * the 'stem' string */
1781 while (isdigit(*(end-1)) && end > start)
1785 if (kstrtoint(end, 10, &id) < 0)
1788 /* Allocate an alias_prop with enough space for the stem */
1789 ap = dt_alloc(sizeof(*ap) + len + 1, __alignof__(*ap));
1792 memset(ap, 0, sizeof(*ap) + len + 1);
1794 of_alias_add(ap, np, id, start, len);
1799 * of_alias_get_id - Get alias id for the given device_node
1800 * @np: Pointer to the given device_node
1801 * @stem: Alias stem of the given device_node
1803 * The function travels the lookup table to get the alias id for the given
1804 * device_node and alias stem.
1806 * Return: The alias id if found.
1808 int of_alias_get_id(struct device_node *np, const char *stem)
1810 struct alias_prop *app;
1813 mutex_lock(&of_mutex);
1814 list_for_each_entry(app, &aliases_lookup, link) {
1815 if (strcmp(app->stem, stem) != 0)
1818 if (np == app->np) {
1823 mutex_unlock(&of_mutex);
1827 EXPORT_SYMBOL_GPL(of_alias_get_id);
1830 * of_alias_get_highest_id - Get highest alias id for the given stem
1831 * @stem: Alias stem to be examined
1833 * The function travels the lookup table to get the highest alias id for the
1834 * given alias stem. It returns the alias id if found.
1836 int of_alias_get_highest_id(const char *stem)
1838 struct alias_prop *app;
1841 mutex_lock(&of_mutex);
1842 list_for_each_entry(app, &aliases_lookup, link) {
1843 if (strcmp(app->stem, stem) != 0)
1849 mutex_unlock(&of_mutex);
1853 EXPORT_SYMBOL_GPL(of_alias_get_highest_id);
1856 * of_console_check() - Test and setup console for DT setup
1857 * @dn: Pointer to device node
1858 * @name: Name to use for preferred console without index. ex. "ttyS"
1859 * @index: Index to use for preferred console.
1861 * Check if the given device node matches the stdout-path property in the
1862 * /chosen node. If it does then register it as the preferred console.
1864 * Return: TRUE if console successfully setup. Otherwise return FALSE.
1866 bool of_console_check(struct device_node *dn, char *name, int index)
1868 if (!dn || dn != of_stdout || console_set_on_cmdline)
1872 * XXX: cast `options' to char pointer to suppress complication
1873 * warnings: printk, UART and console drivers expect char pointer.
1875 return !add_preferred_console(name, index, (char *)of_stdout_options);
1877 EXPORT_SYMBOL_GPL(of_console_check);
1880 * of_find_next_cache_node - Find a node's subsidiary cache
1881 * @np: node of type "cpu" or "cache"
1883 * Return: A node pointer with refcount incremented, use
1884 * of_node_put() on it when done. Caller should hold a reference
1887 struct device_node *of_find_next_cache_node(const struct device_node *np)
1889 struct device_node *child, *cache_node;
1891 cache_node = of_parse_phandle(np, "l2-cache", 0);
1893 cache_node = of_parse_phandle(np, "next-level-cache", 0);
1898 /* OF on pmac has nodes instead of properties named "l2-cache"
1899 * beneath CPU nodes.
1901 if (IS_ENABLED(CONFIG_PPC_PMAC) && of_node_is_type(np, "cpu"))
1902 for_each_child_of_node(np, child)
1903 if (of_node_is_type(child, "cache"))
1910 * of_find_last_cache_level - Find the level at which the last cache is
1911 * present for the given logical cpu
1913 * @cpu: cpu number(logical index) for which the last cache level is needed
1915 * Return: The level at which the last cache is present. It is exactly
1916 * same as the total number of cache levels for the given logical cpu.
1918 int of_find_last_cache_level(unsigned int cpu)
1920 u32 cache_level = 0;
1921 struct device_node *prev = NULL, *np = of_cpu_device_node_get(cpu);
1926 np = of_find_next_cache_node(np);
1929 of_property_read_u32(prev, "cache-level", &cache_level);
1936 * of_map_id - Translate an ID through a downstream mapping.
1937 * @np: root complex device node.
1938 * @id: device ID to map.
1939 * @map_name: property name of the map to use.
1940 * @map_mask_name: optional property name of the mask to use.
1941 * @target: optional pointer to a target device node.
1942 * @id_out: optional pointer to receive the translated ID.
1944 * Given a device ID, look up the appropriate implementation-defined
1945 * platform ID and/or the target device which receives transactions on that
1946 * ID, as per the "iommu-map" and "msi-map" bindings. Either of @target or
1947 * @id_out may be NULL if only the other is required. If @target points to
1948 * a non-NULL device node pointer, only entries targeting that node will be
1949 * matched; if it points to a NULL value, it will receive the device node of
1950 * the first matching target phandle, with a reference held.
1952 * Return: 0 on success or a standard error code on failure.
1954 int of_map_id(struct device_node *np, u32 id,
1955 const char *map_name, const char *map_mask_name,
1956 struct device_node **target, u32 *id_out)
1958 u32 map_mask, masked_id;
1960 const __be32 *map = NULL;
1962 if (!np || !map_name || (!target && !id_out))
1965 map = of_get_property(np, map_name, &map_len);
1969 /* Otherwise, no map implies no translation */
1974 if (!map_len || map_len % (4 * sizeof(*map))) {
1975 pr_err("%pOF: Error: Bad %s length: %d\n", np,
1980 /* The default is to select all bits. */
1981 map_mask = 0xffffffff;
1984 * Can be overridden by "{iommu,msi}-map-mask" property.
1985 * If of_property_read_u32() fails, the default is used.
1988 of_property_read_u32(np, map_mask_name, &map_mask);
1990 masked_id = map_mask & id;
1991 for ( ; map_len > 0; map_len -= 4 * sizeof(*map), map += 4) {
1992 struct device_node *phandle_node;
1993 u32 id_base = be32_to_cpup(map + 0);
1994 u32 phandle = be32_to_cpup(map + 1);
1995 u32 out_base = be32_to_cpup(map + 2);
1996 u32 id_len = be32_to_cpup(map + 3);
1998 if (id_base & ~map_mask) {
1999 pr_err("%pOF: Invalid %s translation - %s-mask (0x%x) ignores id-base (0x%x)\n",
2000 np, map_name, map_name,
2005 if (masked_id < id_base || masked_id >= id_base + id_len)
2008 phandle_node = of_find_node_by_phandle(phandle);
2014 of_node_put(phandle_node);
2016 *target = phandle_node;
2018 if (*target != phandle_node)
2023 *id_out = masked_id - id_base + out_base;
2025 pr_debug("%pOF: %s, using mask %08x, id-base: %08x, out-base: %08x, length: %08x, id: %08x -> %08x\n",
2026 np, map_name, map_mask, id_base, out_base,
2027 id_len, id, masked_id - id_base + out_base);
2031 pr_info("%pOF: no %s translation for id 0x%x on %pOF\n", np, map_name,
2032 id, target && *target ? *target : NULL);
2034 /* Bypasses translation */
2039 EXPORT_SYMBOL_GPL(of_map_id);