1/*
2 * Functions for working with the Flattened Device Tree data format
3 *
4 * Copyright 2009 Benjamin Herrenschmidt, IBM Corp
5 * benh@kernel.crashing.org
6 *
7 * This program is free software; you can redistribute it and/or
8 * modify it under the terms of the GNU General Public License
9 * version 2 as published by the Free Software Foundation.
10 */
11
12#include <linux/crc32.h>
13#include <linux/kernel.h>
14#include <linux/initrd.h>
15#include <linux/memblock.h>
16#include <linux/mutex.h>
17#include <linux/of.h>
18#include <linux/of_fdt.h>
19#include <linux/of_reserved_mem.h>
20#include <linux/sizes.h>
21#include <linux/string.h>
22#include <linux/errno.h>
23#include <linux/slab.h>
24#include <linux/libfdt.h>
25#include <linux/debugfs.h>
26#include <linux/serial_core.h>
27#include <linux/sysfs.h>
28
29#include <asm/setup.h>  /* for COMMAND_LINE_SIZE */
30#include <asm/page.h>
31
32/*
33 * of_fdt_limit_memory - limit the number of regions in the /memory node
34 * @limit: maximum entries
35 *
36 * Adjust the flattened device tree to have at most 'limit' number of
37 * memory entries in the /memory node. This function may be called
38 * any time after initial_boot_param is set.
39 */
40void of_fdt_limit_memory(int limit)
41{
42	int memory;
43	int len;
44	const void *val;
45	int nr_address_cells = OF_ROOT_NODE_ADDR_CELLS_DEFAULT;
46	int nr_size_cells = OF_ROOT_NODE_SIZE_CELLS_DEFAULT;
47	const uint32_t *addr_prop;
48	const uint32_t *size_prop;
49	int root_offset;
50	int cell_size;
51
52	root_offset = fdt_path_offset(initial_boot_params, "/");
53	if (root_offset < 0)
54		return;
55
56	addr_prop = fdt_getprop(initial_boot_params, root_offset,
57				"#address-cells", NULL);
58	if (addr_prop)
59		nr_address_cells = fdt32_to_cpu(*addr_prop);
60
61	size_prop = fdt_getprop(initial_boot_params, root_offset,
62				"#size-cells", NULL);
63	if (size_prop)
64		nr_size_cells = fdt32_to_cpu(*size_prop);
65
66	cell_size = sizeof(uint32_t)*(nr_address_cells + nr_size_cells);
67
68	memory = fdt_path_offset(initial_boot_params, "/memory");
69	if (memory > 0) {
70		val = fdt_getprop(initial_boot_params, memory, "reg", &len);
71		if (len > limit*cell_size) {
72			len = limit*cell_size;
73			pr_debug("Limiting number of entries to %d\n", limit);
74			fdt_setprop(initial_boot_params, memory, "reg", val,
75					len);
76		}
77	}
78}
79
80/**
81 * of_fdt_is_compatible - Return true if given node from the given blob has
82 * compat in its compatible list
83 * @blob: A device tree blob
84 * @node: node to test
85 * @compat: compatible string to compare with compatible list.
86 *
87 * On match, returns a non-zero value with smaller values returned for more
88 * specific compatible values.
89 */
90int of_fdt_is_compatible(const void *blob,
91		      unsigned long node, const char *compat)
92{
93	const char *cp;
94	int cplen;
95	unsigned long l, score = 0;
96
97	cp = fdt_getprop(blob, node, "compatible", &cplen);
98	if (cp == NULL)
99		return 0;
100	while (cplen > 0) {
101		score++;
102		if (of_compat_cmp(cp, compat, strlen(compat)) == 0)
103			return score;
104		l = strlen(cp) + 1;
105		cp += l;
106		cplen -= l;
107	}
108
109	return 0;
110}
111
112/**
113 * of_fdt_is_big_endian - Return true if given node needs BE MMIO accesses
114 * @blob: A device tree blob
115 * @node: node to test
116 *
117 * Returns true if the node has a "big-endian" property, or if the kernel
118 * was compiled for BE *and* the node has a "native-endian" property.
119 * Returns false otherwise.
120 */
121bool of_fdt_is_big_endian(const void *blob, unsigned long node)
122{
123	if (fdt_getprop(blob, node, "big-endian", NULL))
124		return true;
125	if (IS_ENABLED(CONFIG_CPU_BIG_ENDIAN) &&
126	    fdt_getprop(blob, node, "native-endian", NULL))
127		return true;
128	return false;
129}
130
131/**
132 * of_fdt_match - Return true if node matches a list of compatible values
133 */
134int of_fdt_match(const void *blob, unsigned long node,
135                 const char *const *compat)
136{
137	unsigned int tmp, score = 0;
138
139	if (!compat)
140		return 0;
141
142	while (*compat) {
143		tmp = of_fdt_is_compatible(blob, node, *compat);
144		if (tmp && (score == 0 || (tmp < score)))
145			score = tmp;
146		compat++;
147	}
148
149	return score;
150}
151
152static void *unflatten_dt_alloc(void **mem, unsigned long size,
153				       unsigned long align)
154{
155	void *res;
156
157	*mem = PTR_ALIGN(*mem, align);
158	res = *mem;
159	*mem += size;
160
161	return res;
162}
163
164/**
165 * unflatten_dt_node - Alloc and populate a device_node from the flat tree
166 * @blob: The parent device tree blob
167 * @mem: Memory chunk to use for allocating device nodes and properties
168 * @poffset: pointer to node in flat tree
169 * @dad: Parent struct device_node
170 * @nodepp: The device_node tree created by the call
171 * @fpsize: Size of the node path up at the current depth.
172 * @dryrun: If true, do not allocate device nodes but still calculate needed
173 * memory size
174 */
175static void * unflatten_dt_node(const void *blob,
176				void *mem,
177				int *poffset,
178				struct device_node *dad,
179				struct device_node **nodepp,
180				unsigned long fpsize,
181				bool dryrun)
182{
183	const __be32 *p;
184	struct device_node *np;
185	struct property *pp, **prev_pp = NULL;
186	const char *pathp;
187	unsigned int l, allocl;
188	static int depth;
189	int old_depth;
190	int offset;
191	int has_name = 0;
192	int new_format = 0;
193
194	pathp = fdt_get_name(blob, *poffset, &l);
195	if (!pathp)
196		return mem;
197
198	allocl = ++l;
199
200	/* version 0x10 has a more compact unit name here instead of the full
201	 * path. we accumulate the full path size using "fpsize", we'll rebuild
202	 * it later. We detect this because the first character of the name is
203	 * not '/'.
204	 */
205	if ((*pathp) != '/') {
206		new_format = 1;
207		if (fpsize == 0) {
208			/* root node: special case. fpsize accounts for path
209			 * plus terminating zero. root node only has '/', so
210			 * fpsize should be 2, but we want to avoid the first
211			 * level nodes to have two '/' so we use fpsize 1 here
212			 */
213			fpsize = 1;
214			allocl = 2;
215			l = 1;
216			pathp = "";
217		} else {
218			/* account for '/' and path size minus terminal 0
219			 * already in 'l'
220			 */
221			fpsize += l;
222			allocl = fpsize;
223		}
224	}
225
226	np = unflatten_dt_alloc(&mem, sizeof(struct device_node) + allocl,
227				__alignof__(struct device_node));
228	if (!dryrun) {
229		char *fn;
230		of_node_init(np);
231		np->full_name = fn = ((char *)np) + sizeof(*np);
232		if (new_format) {
233			/* rebuild full path for new format */
234			if (dad && dad->parent) {
235				strcpy(fn, dad->full_name);
236#ifdef DEBUG
237				if ((strlen(fn) + l + 1) != allocl) {
238					pr_debug("%s: p: %d, l: %d, a: %d\n",
239						pathp, (int)strlen(fn),
240						l, allocl);
241				}
242#endif
243				fn += strlen(fn);
244			}
245			*(fn++) = '/';
246		}
247		memcpy(fn, pathp, l);
248
249		prev_pp = &np->properties;
250		if (dad != NULL) {
251			np->parent = dad;
252			np->sibling = dad->child;
253			dad->child = np;
254		}
255	}
256	/* process properties */
257	for (offset = fdt_first_property_offset(blob, *poffset);
258	     (offset >= 0);
259	     (offset = fdt_next_property_offset(blob, offset))) {
260		const char *pname;
261		u32 sz;
262
263		if (!(p = fdt_getprop_by_offset(blob, offset, &pname, &sz))) {
264			offset = -FDT_ERR_INTERNAL;
265			break;
266		}
267
268		if (pname == NULL) {
269			pr_info("Can't find property name in list !\n");
270			break;
271		}
272		if (strcmp(pname, "name") == 0)
273			has_name = 1;
274		pp = unflatten_dt_alloc(&mem, sizeof(struct property),
275					__alignof__(struct property));
276		if (!dryrun) {
277			/* We accept flattened tree phandles either in
278			 * ePAPR-style "phandle" properties, or the
279			 * legacy "linux,phandle" properties.  If both
280			 * appear and have different values, things
281			 * will get weird.  Don't do that. */
282			if ((strcmp(pname, "phandle") == 0) ||
283			    (strcmp(pname, "linux,phandle") == 0)) {
284				if (np->phandle == 0)
285					np->phandle = be32_to_cpup(p);
286			}
287			/* And we process the "ibm,phandle" property
288			 * used in pSeries dynamic device tree
289			 * stuff */
290			if (strcmp(pname, "ibm,phandle") == 0)
291				np->phandle = be32_to_cpup(p);
292			pp->name = (char *)pname;
293			pp->length = sz;
294			pp->value = (__be32 *)p;
295			*prev_pp = pp;
296			prev_pp = &pp->next;
297		}
298	}
299	/* with version 0x10 we may not have the name property, recreate
300	 * it here from the unit name if absent
301	 */
302	if (!has_name) {
303		const char *p1 = pathp, *ps = pathp, *pa = NULL;
304		int sz;
305
306		while (*p1) {
307			if ((*p1) == '@')
308				pa = p1;
309			if ((*p1) == '/')
310				ps = p1 + 1;
311			p1++;
312		}
313		if (pa < ps)
314			pa = p1;
315		sz = (pa - ps) + 1;
316		pp = unflatten_dt_alloc(&mem, sizeof(struct property) + sz,
317					__alignof__(struct property));
318		if (!dryrun) {
319			pp->name = "name";
320			pp->length = sz;
321			pp->value = pp + 1;
322			*prev_pp = pp;
323			prev_pp = &pp->next;
324			memcpy(pp->value, ps, sz - 1);
325			((char *)pp->value)[sz - 1] = 0;
326			pr_debug("fixed up name for %s -> %s\n", pathp,
327				(char *)pp->value);
328		}
329	}
330	if (!dryrun) {
331		*prev_pp = NULL;
332		np->name = of_get_property(np, "name", NULL);
333		np->type = of_get_property(np, "device_type", NULL);
334
335		if (!np->name)
336			np->name = "<NULL>";
337		if (!np->type)
338			np->type = "<NULL>";
339	}
340
341	old_depth = depth;
342	*poffset = fdt_next_node(blob, *poffset, &depth);
343	if (depth < 0)
344		depth = 0;
345	while (*poffset > 0 && depth > old_depth)
346		mem = unflatten_dt_node(blob, mem, poffset, np, NULL,
347					fpsize, dryrun);
348
349	if (*poffset < 0 && *poffset != -FDT_ERR_NOTFOUND)
350		pr_err("unflatten: error %d processing FDT\n", *poffset);
351
352	/*
353	 * Reverse the child list. Some drivers assumes node order matches .dts
354	 * node order
355	 */
356	if (!dryrun && np->child) {
357		struct device_node *child = np->child;
358		np->child = NULL;
359		while (child) {
360			struct device_node *next = child->sibling;
361			child->sibling = np->child;
362			np->child = child;
363			child = next;
364		}
365	}
366
367	if (nodepp)
368		*nodepp = np;
369
370	return mem;
371}
372
373/**
374 * __unflatten_device_tree - create tree of device_nodes from flat blob
375 *
376 * unflattens a device-tree, creating the
377 * tree of struct device_node. It also fills the "name" and "type"
378 * pointers of the nodes so the normal device-tree walking functions
379 * can be used.
380 * @blob: The blob to expand
381 * @mynodes: The device_node tree created by the call
382 * @dt_alloc: An allocator that provides a virtual address to memory
383 * for the resulting tree
384 */
385static void __unflatten_device_tree(const void *blob,
386			     struct device_node **mynodes,
387			     void * (*dt_alloc)(u64 size, u64 align))
388{
389	unsigned long size;
390	int start;
391	void *mem;
392
393	pr_debug(" -> unflatten_device_tree()\n");
394
395	if (!blob) {
396		pr_debug("No device tree pointer\n");
397		return;
398	}
399
400	pr_debug("Unflattening device tree:\n");
401	pr_debug("magic: %08x\n", fdt_magic(blob));
402	pr_debug("size: %08x\n", fdt_totalsize(blob));
403	pr_debug("version: %08x\n", fdt_version(blob));
404
405	if (fdt_check_header(blob)) {
406		pr_err("Invalid device tree blob header\n");
407		return;
408	}
409
410	/* First pass, scan for size */
411	start = 0;
412	size = (unsigned long)unflatten_dt_node(blob, NULL, &start, NULL, NULL, 0, true);
413	size = ALIGN(size, 4);
414
415	pr_debug("  size is %lx, allocating...\n", size);
416
417	/* Allocate memory for the expanded device tree */
418	mem = dt_alloc(size + 4, __alignof__(struct device_node));
419	memset(mem, 0, size);
420
421	*(__be32 *)(mem + size) = cpu_to_be32(0xdeadbeef);
422
423	pr_debug("  unflattening %p...\n", mem);
424
425	/* Second pass, do actual unflattening */
426	start = 0;
427	unflatten_dt_node(blob, mem, &start, NULL, mynodes, 0, false);
428	if (be32_to_cpup(mem + size) != 0xdeadbeef)
429		pr_warning("End of tree marker overwritten: %08x\n",
430			   be32_to_cpup(mem + size));
431
432	pr_debug(" <- unflatten_device_tree()\n");
433}
434
435static void *kernel_tree_alloc(u64 size, u64 align)
436{
437	return kzalloc(size, GFP_KERNEL);
438}
439
440static DEFINE_MUTEX(of_fdt_unflatten_mutex);
441
442/**
443 * of_fdt_unflatten_tree - create tree of device_nodes from flat blob
444 *
445 * unflattens the device-tree passed by the firmware, creating the
446 * tree of struct device_node. It also fills the "name" and "type"
447 * pointers of the nodes so the normal device-tree walking functions
448 * can be used.
449 */
450void of_fdt_unflatten_tree(const unsigned long *blob,
451			struct device_node **mynodes)
452{
453	mutex_lock(&of_fdt_unflatten_mutex);
454	__unflatten_device_tree(blob, mynodes, &kernel_tree_alloc);
455	mutex_unlock(&of_fdt_unflatten_mutex);
456}
457EXPORT_SYMBOL_GPL(of_fdt_unflatten_tree);
458
459/* Everything below here references initial_boot_params directly. */
460int __initdata dt_root_addr_cells;
461int __initdata dt_root_size_cells;
462
463void *initial_boot_params;
464
465#ifdef CONFIG_OF_EARLY_FLATTREE
466
467static u32 of_fdt_crc32;
468
469/**
470 * res_mem_reserve_reg() - reserve all memory described in 'reg' property
471 */
472static int __init __reserved_mem_reserve_reg(unsigned long node,
473					     const char *uname)
474{
475	int t_len = (dt_root_addr_cells + dt_root_size_cells) * sizeof(__be32);
476	phys_addr_t base, size;
477	int len;
478	const __be32 *prop;
479	int nomap, first = 1;
480
481	prop = of_get_flat_dt_prop(node, "reg", &len);
482	if (!prop)
483		return -ENOENT;
484
485	if (len && len % t_len != 0) {
486		pr_err("Reserved memory: invalid reg property in '%s', skipping node.\n",
487		       uname);
488		return -EINVAL;
489	}
490
491	nomap = of_get_flat_dt_prop(node, "no-map", NULL) != NULL;
492
493	while (len >= t_len) {
494		base = dt_mem_next_cell(dt_root_addr_cells, &prop);
495		size = dt_mem_next_cell(dt_root_size_cells, &prop);
496
497		if (size &&
498		    early_init_dt_reserve_memory_arch(base, size, nomap) == 0)
499			pr_debug("Reserved memory: reserved region for node '%s': base %pa, size %ld MiB\n",
500				uname, &base, (unsigned long)size / SZ_1M);
501		else
502			pr_info("Reserved memory: failed to reserve memory for node '%s': base %pa, size %ld MiB\n",
503				uname, &base, (unsigned long)size / SZ_1M);
504
505		len -= t_len;
506		if (first) {
507			fdt_reserved_mem_save_node(node, uname, base, size);
508			first = 0;
509		}
510	}
511	return 0;
512}
513
514/**
515 * __reserved_mem_check_root() - check if #size-cells, #address-cells provided
516 * in /reserved-memory matches the values supported by the current implementation,
517 * also check if ranges property has been provided
518 */
519static int __init __reserved_mem_check_root(unsigned long node)
520{
521	const __be32 *prop;
522
523	prop = of_get_flat_dt_prop(node, "#size-cells", NULL);
524	if (!prop || be32_to_cpup(prop) != dt_root_size_cells)
525		return -EINVAL;
526
527	prop = of_get_flat_dt_prop(node, "#address-cells", NULL);
528	if (!prop || be32_to_cpup(prop) != dt_root_addr_cells)
529		return -EINVAL;
530
531	prop = of_get_flat_dt_prop(node, "ranges", NULL);
532	if (!prop)
533		return -EINVAL;
534	return 0;
535}
536
537/**
538 * fdt_scan_reserved_mem() - scan a single FDT node for reserved memory
539 */
540static int __init __fdt_scan_reserved_mem(unsigned long node, const char *uname,
541					  int depth, void *data)
542{
543	static int found;
544	const char *status;
545	int err;
546
547	if (!found && depth == 1 && strcmp(uname, "reserved-memory") == 0) {
548		if (__reserved_mem_check_root(node) != 0) {
549			pr_err("Reserved memory: unsupported node format, ignoring\n");
550			/* break scan */
551			return 1;
552		}
553		found = 1;
554		/* scan next node */
555		return 0;
556	} else if (!found) {
557		/* scan next node */
558		return 0;
559	} else if (found && depth < 2) {
560		/* scanning of /reserved-memory has been finished */
561		return 1;
562	}
563
564	status = of_get_flat_dt_prop(node, "status", NULL);
565	if (status && strcmp(status, "okay") != 0 && strcmp(status, "ok") != 0)
566		return 0;
567
568	err = __reserved_mem_reserve_reg(node, uname);
569	if (err == -ENOENT && of_get_flat_dt_prop(node, "size", NULL))
570		fdt_reserved_mem_save_node(node, uname, 0, 0);
571
572	/* scan next node */
573	return 0;
574}
575
576/**
577 * early_init_fdt_scan_reserved_mem() - create reserved memory regions
578 *
579 * This function grabs memory from early allocator for device exclusive use
580 * defined in device tree structures. It should be called by arch specific code
581 * once the early allocator (i.e. memblock) has been fully activated.
582 */
583void __init early_init_fdt_scan_reserved_mem(void)
584{
585	int n;
586	u64 base, size;
587
588	if (!initial_boot_params)
589		return;
590
591	/* Process header /memreserve/ fields */
592	for (n = 0; ; n++) {
593		fdt_get_mem_rsv(initial_boot_params, n, &base, &size);
594		if (!size)
595			break;
596		early_init_dt_reserve_memory_arch(base, size, 0);
597	}
598
599	of_scan_flat_dt(__fdt_scan_reserved_mem, NULL);
600	fdt_init_reserved_mem();
601}
602
603/**
604 * early_init_fdt_reserve_self() - reserve the memory used by the FDT blob
605 */
606void __init early_init_fdt_reserve_self(void)
607{
608	if (!initial_boot_params)
609		return;
610
611	/* Reserve the dtb region */
612	early_init_dt_reserve_memory_arch(__pa(initial_boot_params),
613					  fdt_totalsize(initial_boot_params),
614					  0);
615}
616
617/**
618 * of_scan_flat_dt - scan flattened tree blob and call callback on each.
619 * @it: callback function
620 * @data: context data pointer
621 *
622 * This function is used to scan the flattened device-tree, it is
623 * used to extract the memory information at boot before we can
624 * unflatten the tree
625 */
626int __init of_scan_flat_dt(int (*it)(unsigned long node,
627				     const char *uname, int depth,
628				     void *data),
629			   void *data)
630{
631	const void *blob = initial_boot_params;
632	const char *pathp;
633	int offset, rc = 0, depth = -1;
634
635        for (offset = fdt_next_node(blob, -1, &depth);
636             offset >= 0 && depth >= 0 && !rc;
637             offset = fdt_next_node(blob, offset, &depth)) {
638
639		pathp = fdt_get_name(blob, offset, NULL);
640		if (*pathp == '/')
641			pathp = kbasename(pathp);
642		rc = it(offset, pathp, depth, data);
643	}
644	return rc;
645}
646
647/**
648 * of_get_flat_dt_root - find the root node in the flat blob
649 */
650unsigned long __init of_get_flat_dt_root(void)
651{
652	return 0;
653}
654
655/**
656 * of_get_flat_dt_size - Return the total size of the FDT
657 */
658int __init of_get_flat_dt_size(void)
659{
660	return fdt_totalsize(initial_boot_params);
661}
662
663/**
664 * of_get_flat_dt_prop - Given a node in the flat blob, return the property ptr
665 *
666 * This function can be used within scan_flattened_dt callback to get
667 * access to properties
668 */
669const void *__init of_get_flat_dt_prop(unsigned long node, const char *name,
670				       int *size)
671{
672	return fdt_getprop(initial_boot_params, node, name, size);
673}
674
675/**
676 * of_flat_dt_is_compatible - Return true if given node has compat in compatible list
677 * @node: node to test
678 * @compat: compatible string to compare with compatible list.
679 */
680int __init of_flat_dt_is_compatible(unsigned long node, const char *compat)
681{
682	return of_fdt_is_compatible(initial_boot_params, node, compat);
683}
684
685/**
686 * of_flat_dt_match - Return true if node matches a list of compatible values
687 */
688int __init of_flat_dt_match(unsigned long node, const char *const *compat)
689{
690	return of_fdt_match(initial_boot_params, node, compat);
691}
692
693struct fdt_scan_status {
694	const char *name;
695	int namelen;
696	int depth;
697	int found;
698	int (*iterator)(unsigned long node, const char *uname, int depth, void *data);
699	void *data;
700};
701
702const char * __init of_flat_dt_get_machine_name(void)
703{
704	const char *name;
705	unsigned long dt_root = of_get_flat_dt_root();
706
707	name = of_get_flat_dt_prop(dt_root, "model", NULL);
708	if (!name)
709		name = of_get_flat_dt_prop(dt_root, "compatible", NULL);
710	return name;
711}
712
713/**
714 * of_flat_dt_match_machine - Iterate match tables to find matching machine.
715 *
716 * @default_match: A machine specific ptr to return in case of no match.
717 * @get_next_compat: callback function to return next compatible match table.
718 *
719 * Iterate through machine match tables to find the best match for the machine
720 * compatible string in the FDT.
721 */
722const void * __init of_flat_dt_match_machine(const void *default_match,
723		const void * (*get_next_compat)(const char * const**))
724{
725	const void *data = NULL;
726	const void *best_data = default_match;
727	const char *const *compat;
728	unsigned long dt_root;
729	unsigned int best_score = ~1, score = 0;
730
731	dt_root = of_get_flat_dt_root();
732	while ((data = get_next_compat(&compat))) {
733		score = of_flat_dt_match(dt_root, compat);
734		if (score > 0 && score < best_score) {
735			best_data = data;
736			best_score = score;
737		}
738	}
739	if (!best_data) {
740		const char *prop;
741		int size;
742
743		pr_err("\n unrecognized device tree list:\n[ ");
744
745		prop = of_get_flat_dt_prop(dt_root, "compatible", &size);
746		if (prop) {
747			while (size > 0) {
748				printk("'%s' ", prop);
749				size -= strlen(prop) + 1;
750				prop += strlen(prop) + 1;
751			}
752		}
753		printk("]\n\n");
754		return NULL;
755	}
756
757	pr_info("Machine model: %s\n", of_flat_dt_get_machine_name());
758
759	return best_data;
760}
761
762#ifdef CONFIG_BLK_DEV_INITRD
763/**
764 * early_init_dt_check_for_initrd - Decode initrd location from flat tree
765 * @node: reference to node containing initrd location ('chosen')
766 */
767static void __init early_init_dt_check_for_initrd(unsigned long node)
768{
769	u64 start, end;
770	int len;
771	const __be32 *prop;
772
773	pr_debug("Looking for initrd properties... ");
774
775	prop = of_get_flat_dt_prop(node, "linux,initrd-start", &len);
776	if (!prop)
777		return;
778	start = of_read_number(prop, len/4);
779
780	prop = of_get_flat_dt_prop(node, "linux,initrd-end", &len);
781	if (!prop)
782		return;
783	end = of_read_number(prop, len/4);
784
785	initrd_start = (unsigned long)__va(start);
786	initrd_end = (unsigned long)__va(end);
787	initrd_below_start_ok = 1;
788
789	pr_debug("initrd_start=0x%llx  initrd_end=0x%llx\n",
790		 (unsigned long long)start, (unsigned long long)end);
791}
792#else
793static inline void early_init_dt_check_for_initrd(unsigned long node)
794{
795}
796#endif /* CONFIG_BLK_DEV_INITRD */
797
798#ifdef CONFIG_SERIAL_EARLYCON
799extern struct of_device_id __earlycon_of_table[];
800
801static int __init early_init_dt_scan_chosen_serial(void)
802{
803	int offset;
804	const char *p;
805	int l;
806	const struct of_device_id *match = __earlycon_of_table;
807	const void *fdt = initial_boot_params;
808
809	offset = fdt_path_offset(fdt, "/chosen");
810	if (offset < 0)
811		offset = fdt_path_offset(fdt, "/chosen@0");
812	if (offset < 0)
813		return -ENOENT;
814
815	p = fdt_getprop(fdt, offset, "stdout-path", &l);
816	if (!p)
817		p = fdt_getprop(fdt, offset, "linux,stdout-path", &l);
818	if (!p || !l)
819		return -ENOENT;
820
821	/* Remove console options if present */
822	l = strchrnul(p, ':') - p;
823
824	/* Get the node specified by stdout-path */
825	offset = fdt_path_offset_namelen(fdt, p, l);
826	if (offset < 0)
827		return -ENODEV;
828
829	while (match->compatible[0]) {
830		u64 addr;
831
832		if (fdt_node_check_compatible(fdt, offset, match->compatible)) {
833			match++;
834			continue;
835		}
836
837		addr = fdt_translate_address(fdt, offset);
838		if (addr == OF_BAD_ADDR)
839			return -ENXIO;
840
841		of_setup_earlycon(addr, match->data);
842		return 0;
843	}
844	return -ENODEV;
845}
846
847static int __init setup_of_earlycon(char *buf)
848{
849	if (buf)
850		return 0;
851
852	return early_init_dt_scan_chosen_serial();
853}
854early_param("earlycon", setup_of_earlycon);
855#endif
856
857/**
858 * early_init_dt_scan_root - fetch the top level address and size cells
859 */
860int __init early_init_dt_scan_root(unsigned long node, const char *uname,
861				   int depth, void *data)
862{
863	const __be32 *prop;
864
865	if (depth != 0)
866		return 0;
867
868	dt_root_size_cells = OF_ROOT_NODE_SIZE_CELLS_DEFAULT;
869	dt_root_addr_cells = OF_ROOT_NODE_ADDR_CELLS_DEFAULT;
870
871	prop = of_get_flat_dt_prop(node, "#size-cells", NULL);
872	if (prop)
873		dt_root_size_cells = be32_to_cpup(prop);
874	pr_debug("dt_root_size_cells = %x\n", dt_root_size_cells);
875
876	prop = of_get_flat_dt_prop(node, "#address-cells", NULL);
877	if (prop)
878		dt_root_addr_cells = be32_to_cpup(prop);
879	pr_debug("dt_root_addr_cells = %x\n", dt_root_addr_cells);
880
881	/* break now */
882	return 1;
883}
884
885u64 __init dt_mem_next_cell(int s, const __be32 **cellp)
886{
887	const __be32 *p = *cellp;
888
889	*cellp = p + s;
890	return of_read_number(p, s);
891}
892
893/**
894 * early_init_dt_scan_memory - Look for an parse memory nodes
895 */
896int __init early_init_dt_scan_memory(unsigned long node, const char *uname,
897				     int depth, void *data)
898{
899	const char *type = of_get_flat_dt_prop(node, "device_type", NULL);
900	const __be32 *reg, *endp;
901	int l;
902
903	/* We are scanning "memory" nodes only */
904	if (type == NULL) {
905		/*
906		 * The longtrail doesn't have a device_type on the
907		 * /memory node, so look for the node called /memory@0.
908		 */
909		if (!IS_ENABLED(CONFIG_PPC32) || depth != 1 || strcmp(uname, "memory@0") != 0)
910			return 0;
911	} else if (strcmp(type, "memory") != 0)
912		return 0;
913
914	reg = of_get_flat_dt_prop(node, "linux,usable-memory", &l);
915	if (reg == NULL)
916		reg = of_get_flat_dt_prop(node, "reg", &l);
917	if (reg == NULL)
918		return 0;
919
920	endp = reg + (l / sizeof(__be32));
921
922	pr_debug("memory scan node %s, reg size %d,\n", uname, l);
923
924	while ((endp - reg) >= (dt_root_addr_cells + dt_root_size_cells)) {
925		u64 base, size;
926
927		base = dt_mem_next_cell(dt_root_addr_cells, &reg);
928		size = dt_mem_next_cell(dt_root_size_cells, &reg);
929
930		if (size == 0)
931			continue;
932		pr_debug(" - %llx ,  %llx\n", (unsigned long long)base,
933		    (unsigned long long)size);
934
935		early_init_dt_add_memory_arch(base, size);
936	}
937
938	return 0;
939}
940
941int __init early_init_dt_scan_chosen(unsigned long node, const char *uname,
942				     int depth, void *data)
943{
944	int l;
945	const char *p;
946
947	pr_debug("search \"chosen\", depth: %d, uname: %s\n", depth, uname);
948
949	if (depth != 1 || !data ||
950	    (strcmp(uname, "chosen") != 0 && strcmp(uname, "chosen@0") != 0))
951		return 0;
952
953	early_init_dt_check_for_initrd(node);
954
955	/* Retrieve command line */
956	p = of_get_flat_dt_prop(node, "bootargs", &l);
957	if (p != NULL && l > 0)
958		strlcpy(data, p, min((int)l, COMMAND_LINE_SIZE));
959
960	/*
961	 * CONFIG_CMDLINE is meant to be a default in case nothing else
962	 * managed to set the command line, unless CONFIG_CMDLINE_FORCE
963	 * is set in which case we override whatever was found earlier.
964	 */
965#ifdef CONFIG_CMDLINE
966#ifndef CONFIG_CMDLINE_FORCE
967	if (!((char *)data)[0])
968#endif
969		strlcpy(data, CONFIG_CMDLINE, COMMAND_LINE_SIZE);
970#endif /* CONFIG_CMDLINE */
971
972	pr_debug("Command line is: %s\n", (char*)data);
973
974	/* break now */
975	return 1;
976}
977
978#ifdef CONFIG_HAVE_MEMBLOCK
979#ifndef MAX_MEMBLOCK_ADDR
980#define MAX_MEMBLOCK_ADDR	((phys_addr_t)~0)
981#endif
982
983void __init __weak early_init_dt_add_memory_arch(u64 base, u64 size)
984{
985	const u64 phys_offset = __pa(PAGE_OFFSET);
986
987	if (!PAGE_ALIGNED(base)) {
988		if (size < PAGE_SIZE - (base & ~PAGE_MASK)) {
989			pr_warn("Ignoring memory block 0x%llx - 0x%llx\n",
990				base, base + size);
991			return;
992		}
993		size -= PAGE_SIZE - (base & ~PAGE_MASK);
994		base = PAGE_ALIGN(base);
995	}
996	size &= PAGE_MASK;
997
998	if (base > MAX_MEMBLOCK_ADDR) {
999		pr_warning("Ignoring memory block 0x%llx - 0x%llx\n",
1000				base, base + size);
1001		return;
1002	}
1003
1004	if (base + size - 1 > MAX_MEMBLOCK_ADDR) {
1005		pr_warning("Ignoring memory range 0x%llx - 0x%llx\n",
1006				((u64)MAX_MEMBLOCK_ADDR) + 1, base + size);
1007		size = MAX_MEMBLOCK_ADDR - base + 1;
1008	}
1009
1010	if (base + size < phys_offset) {
1011		pr_warning("Ignoring memory block 0x%llx - 0x%llx\n",
1012			   base, base + size);
1013		return;
1014	}
1015	if (base < phys_offset) {
1016		pr_warning("Ignoring memory range 0x%llx - 0x%llx\n",
1017			   base, phys_offset);
1018		size -= phys_offset - base;
1019		base = phys_offset;
1020	}
1021	memblock_add(base, size);
1022}
1023
1024int __init __weak early_init_dt_reserve_memory_arch(phys_addr_t base,
1025					phys_addr_t size, bool nomap)
1026{
1027	if (nomap)
1028		return memblock_remove(base, size);
1029	return memblock_reserve(base, size);
1030}
1031
1032/*
1033 * called from unflatten_device_tree() to bootstrap devicetree itself
1034 * Architectures can override this definition if memblock isn't used
1035 */
1036void * __init __weak early_init_dt_alloc_memory_arch(u64 size, u64 align)
1037{
1038	return __va(memblock_alloc(size, align));
1039}
1040#else
1041void __init __weak early_init_dt_add_memory_arch(u64 base, u64 size)
1042{
1043	WARN_ON(1);
1044}
1045
1046int __init __weak early_init_dt_reserve_memory_arch(phys_addr_t base,
1047					phys_addr_t size, bool nomap)
1048{
1049	pr_err("Reserved memory not supported, ignoring range %pa - %pa%s\n",
1050		  &base, &size, nomap ? " (nomap)" : "");
1051	return -ENOSYS;
1052}
1053
1054void * __init __weak early_init_dt_alloc_memory_arch(u64 size, u64 align)
1055{
1056	WARN_ON(1);
1057	return NULL;
1058}
1059#endif
1060
1061bool __init early_init_dt_verify(void *params)
1062{
1063	if (!params)
1064		return false;
1065
1066	/* check device tree validity */
1067	if (fdt_check_header(params))
1068		return false;
1069
1070	/* Setup flat device-tree pointer */
1071	initial_boot_params = params;
1072	of_fdt_crc32 = crc32_be(~0, initial_boot_params,
1073				fdt_totalsize(initial_boot_params));
1074	return true;
1075}
1076
1077
1078void __init early_init_dt_scan_nodes(void)
1079{
1080	/* Retrieve various information from the /chosen node */
1081	of_scan_flat_dt(early_init_dt_scan_chosen, boot_command_line);
1082
1083	/* Initialize {size,address}-cells info */
1084	of_scan_flat_dt(early_init_dt_scan_root, NULL);
1085
1086	/* Setup memory, calling early_init_dt_add_memory_arch */
1087	of_scan_flat_dt(early_init_dt_scan_memory, NULL);
1088}
1089
1090bool __init early_init_dt_scan(void *params)
1091{
1092	bool status;
1093
1094	status = early_init_dt_verify(params);
1095	if (!status)
1096		return false;
1097
1098	early_init_dt_scan_nodes();
1099	return true;
1100}
1101
1102/**
1103 * unflatten_device_tree - create tree of device_nodes from flat blob
1104 *
1105 * unflattens the device-tree passed by the firmware, creating the
1106 * tree of struct device_node. It also fills the "name" and "type"
1107 * pointers of the nodes so the normal device-tree walking functions
1108 * can be used.
1109 */
1110void __init unflatten_device_tree(void)
1111{
1112	__unflatten_device_tree(initial_boot_params, &of_root,
1113				early_init_dt_alloc_memory_arch);
1114
1115	/* Get pointer to "/chosen" and "/aliases" nodes for use everywhere */
1116	of_alias_scan(early_init_dt_alloc_memory_arch);
1117}
1118
1119/**
1120 * unflatten_and_copy_device_tree - copy and create tree of device_nodes from flat blob
1121 *
1122 * Copies and unflattens the device-tree passed by the firmware, creating the
1123 * tree of struct device_node. It also fills the "name" and "type"
1124 * pointers of the nodes so the normal device-tree walking functions
1125 * can be used. This should only be used when the FDT memory has not been
1126 * reserved such is the case when the FDT is built-in to the kernel init
1127 * section. If the FDT memory is reserved already then unflatten_device_tree
1128 * should be used instead.
1129 */
1130void __init unflatten_and_copy_device_tree(void)
1131{
1132	int size;
1133	void *dt;
1134
1135	if (!initial_boot_params) {
1136		pr_warn("No valid device tree found, continuing without\n");
1137		return;
1138	}
1139
1140	size = fdt_totalsize(initial_boot_params);
1141	dt = early_init_dt_alloc_memory_arch(size,
1142					     roundup_pow_of_two(FDT_V17_SIZE));
1143
1144	if (dt) {
1145		memcpy(dt, initial_boot_params, size);
1146		initial_boot_params = dt;
1147	}
1148	unflatten_device_tree();
1149}
1150
1151#ifdef CONFIG_SYSFS
1152static ssize_t of_fdt_raw_read(struct file *filp, struct kobject *kobj,
1153			       struct bin_attribute *bin_attr,
1154			       char *buf, loff_t off, size_t count)
1155{
1156	memcpy(buf, initial_boot_params + off, count);
1157	return count;
1158}
1159
1160static int __init of_fdt_raw_init(void)
1161{
1162	static struct bin_attribute of_fdt_raw_attr =
1163		__BIN_ATTR(fdt, S_IRUSR, of_fdt_raw_read, NULL, 0);
1164
1165	if (!initial_boot_params)
1166		return 0;
1167
1168	if (of_fdt_crc32 != crc32_be(~0, initial_boot_params,
1169				     fdt_totalsize(initial_boot_params))) {
1170		pr_warn("fdt: not creating '/sys/firmware/fdt': CRC check failed\n");
1171		return 0;
1172	}
1173	of_fdt_raw_attr.size = fdt_totalsize(initial_boot_params);
1174	return sysfs_create_bin_file(firmware_kobj, &of_fdt_raw_attr);
1175}
1176late_initcall(of_fdt_raw_init);
1177#endif
1178
1179#endif /* CONFIG_OF_EARLY_FLATTREE */
1180