fdt_common.c revision 273675
1/*-
2 * Copyright (c) 2009-2010 The FreeBSD Foundation
3 * All rights reserved.
4 *
5 * This software was developed by Semihalf under sponsorship from
6 * the FreeBSD Foundation.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 *    notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 *    notice, this list of conditions and the following disclaimer in the
15 *    documentation and/or other materials provided with the distribution.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
18 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
19 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
20 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
21 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
22 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
23 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
24 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
25 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
26 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
27 * SUCH DAMAGE.
28 */
29
30#include <sys/cdefs.h>
31__FBSDID("$FreeBSD: stable/10/sys/dev/fdt/fdt_common.c 273675 2014-10-26 04:01:57Z ian $");
32
33#include <sys/param.h>
34#include <sys/systm.h>
35#include <sys/kernel.h>
36#include <sys/module.h>
37#include <sys/bus.h>
38#include <sys/limits.h>
39
40#include <machine/resource.h>
41
42#include <dev/fdt/fdt_common.h>
43#include <dev/ofw/ofw_bus.h>
44#include <dev/ofw/ofw_bus_subr.h>
45#include <dev/ofw/openfirm.h>
46
47#include "ofw_bus_if.h"
48
49#ifdef DEBUG
50#define debugf(fmt, args...) do { printf("%s(): ", __func__);	\
51    printf(fmt,##args); } while (0)
52#else
53#define debugf(fmt, args...)
54#endif
55
56#define FDT_COMPAT_LEN	255
57#define FDT_TYPE_LEN	64
58
59#define FDT_REG_CELLS	4
60
61vm_paddr_t fdt_immr_pa;
62vm_offset_t fdt_immr_va;
63vm_offset_t fdt_immr_size;
64
65struct fdt_ic_list fdt_ic_list_head = SLIST_HEAD_INITIALIZER(fdt_ic_list_head);
66
67int
68fdt_get_range(phandle_t node, int range_id, u_long *base, u_long *size)
69{
70	pcell_t ranges[6], *rangesptr;
71	pcell_t addr_cells, size_cells, par_addr_cells;
72	int len, tuple_size, tuples;
73
74	if ((fdt_addrsize_cells(node, &addr_cells, &size_cells)) != 0)
75		return (ENXIO);
76	/*
77	 * Process 'ranges' property.
78	 */
79	par_addr_cells = fdt_parent_addr_cells(node);
80	if (par_addr_cells > 2)
81		return (ERANGE);
82
83	len = OF_getproplen(node, "ranges");
84	if (len > sizeof(ranges))
85		return (ENOMEM);
86	if (len == 0) {
87		*base = 0;
88		*size = ULONG_MAX;
89		return (0);
90	}
91
92	if (!(range_id < len))
93		return (ERANGE);
94
95	if (OF_getprop(node, "ranges", ranges, sizeof(ranges)) <= 0)
96		return (EINVAL);
97
98	tuple_size = sizeof(pcell_t) * (addr_cells + par_addr_cells +
99	    size_cells);
100	tuples = len / tuple_size;
101
102	if (fdt_ranges_verify(ranges, tuples, par_addr_cells,
103	    addr_cells, size_cells)) {
104		return (ERANGE);
105	}
106	*base = 0;
107	*size = 0;
108	rangesptr = &ranges[range_id];
109
110	*base = fdt_data_get((void *)rangesptr, addr_cells);
111	rangesptr += addr_cells;
112	*base += fdt_data_get((void *)rangesptr, par_addr_cells);
113	rangesptr += par_addr_cells;
114	*size = fdt_data_get((void *)rangesptr, size_cells);
115	return (0);
116}
117
118int
119fdt_immr_addr(vm_offset_t immr_va)
120{
121	phandle_t node;
122	u_long base, size;
123	int r;
124
125	/*
126	 * Try to access the SOC node directly i.e. through /aliases/.
127	 */
128	if ((node = OF_finddevice("soc")) != 0)
129		if (fdt_is_compatible_strict(node, "simple-bus"))
130			goto moveon;
131	/*
132	 * Find the node the long way.
133	 */
134	if ((node = OF_finddevice("/")) == 0)
135		return (ENXIO);
136
137	if ((node = fdt_find_compatible(node, "simple-bus", 1)) == 0)
138		return (ENXIO);
139
140moveon:
141	if ((r = fdt_get_range(node, 0, &base, &size)) == 0) {
142		fdt_immr_pa = base;
143		fdt_immr_va = immr_va;
144		fdt_immr_size = size;
145	}
146
147	return (r);
148}
149
150/*
151 * This routine is an early-usage version of the ofw_bus_is_compatible() when
152 * the ofw_bus I/F is not available (like early console routines and similar).
153 * Note the buffer has to be on the stack since malloc() is usually not
154 * available in such cases either.
155 */
156int
157fdt_is_compatible(phandle_t node, const char *compatstr)
158{
159	char buf[FDT_COMPAT_LEN];
160	char *compat;
161	int len, onelen, l, rv;
162
163	if ((len = OF_getproplen(node, "compatible")) <= 0)
164		return (0);
165
166	compat = (char *)&buf;
167	bzero(compat, FDT_COMPAT_LEN);
168
169	if (OF_getprop(node, "compatible", compat, FDT_COMPAT_LEN) < 0)
170		return (0);
171
172	onelen = strlen(compatstr);
173	rv = 0;
174	while (len > 0) {
175		if (strncasecmp(compat, compatstr, onelen) == 0) {
176			/* Found it. */
177			rv = 1;
178			break;
179		}
180		/* Slide to the next sub-string. */
181		l = strlen(compat) + 1;
182		compat += l;
183		len -= l;
184	}
185
186	return (rv);
187}
188
189int
190fdt_is_compatible_strict(phandle_t node, const char *compatible)
191{
192	char compat[FDT_COMPAT_LEN];
193
194	if (OF_getproplen(node, "compatible") <= 0)
195		return (0);
196
197	if (OF_getprop(node, "compatible", compat, FDT_COMPAT_LEN) < 0)
198		return (0);
199
200	if (strncasecmp(compat, compatible, FDT_COMPAT_LEN) == 0)
201		/* This fits. */
202		return (1);
203
204	return (0);
205}
206
207phandle_t
208fdt_find_compatible(phandle_t start, const char *compat, int strict)
209{
210	phandle_t child;
211
212	/*
213	 * Traverse all children of 'start' node, and find first with
214	 * matching 'compatible' property.
215	 */
216	for (child = OF_child(start); child != 0; child = OF_peer(child))
217		if (fdt_is_compatible(child, compat)) {
218			if (strict)
219				if (!fdt_is_compatible_strict(child, compat))
220					continue;
221			return (child);
222		}
223	return (0);
224}
225
226phandle_t
227fdt_depth_search_compatible(phandle_t start, const char *compat, int strict)
228{
229	phandle_t child, node;
230
231	/*
232	 * Depth-search all descendants of 'start' node, and find first with
233	 * matching 'compatible' property.
234	 */
235	for (node = OF_child(start); node != 0; node = OF_peer(node)) {
236		if (fdt_is_compatible(node, compat) &&
237		    (strict == 0 || fdt_is_compatible_strict(node, compat))) {
238			return (node);
239		}
240		child = fdt_depth_search_compatible(node, compat, strict);
241		if (child != 0)
242			return (child);
243	}
244	return (0);
245}
246
247int
248fdt_is_enabled(phandle_t node)
249{
250	char *stat;
251	int ena, len;
252
253	len = OF_getprop_alloc(node, "status", sizeof(char),
254	    (void **)&stat);
255
256	if (len <= 0)
257		/* It is OK if no 'status' property. */
258		return (1);
259
260	/* Anything other than 'okay' means disabled. */
261	ena = 0;
262	if (strncmp((char *)stat, "okay", len) == 0)
263		ena = 1;
264
265	free(stat, M_OFWPROP);
266	return (ena);
267}
268
269int
270fdt_is_type(phandle_t node, const char *typestr)
271{
272	char type[FDT_TYPE_LEN];
273
274	if (OF_getproplen(node, "device_type") <= 0)
275		return (0);
276
277	if (OF_getprop(node, "device_type", type, FDT_TYPE_LEN) < 0)
278		return (0);
279
280	if (strncasecmp(type, typestr, FDT_TYPE_LEN) == 0)
281		/* This fits. */
282		return (1);
283
284	return (0);
285}
286
287int
288fdt_parent_addr_cells(phandle_t node)
289{
290	pcell_t addr_cells;
291
292	/* Find out #address-cells of the superior bus. */
293	if (OF_searchprop(OF_parent(node), "#address-cells", &addr_cells,
294	    sizeof(addr_cells)) <= 0)
295		addr_cells = 2;
296
297	return ((int)fdt32_to_cpu(addr_cells));
298}
299
300int
301fdt_data_verify(void *data, int cells)
302{
303	uint64_t d64;
304
305	if (cells > 1) {
306		d64 = fdt64_to_cpu(*((uint64_t *)data));
307		if (((d64 >> 32) & 0xffffffffull) != 0 || cells > 2)
308			return (ERANGE);
309	}
310
311	return (0);
312}
313
314int
315fdt_pm_is_enabled(phandle_t node)
316{
317	int ret;
318
319	ret = 1;
320
321#if defined(SOC_MV_KIRKWOOD) || defined(SOC_MV_DISCOVERY)
322	ret = fdt_pm(node);
323#endif
324	return (ret);
325}
326
327u_long
328fdt_data_get(void *data, int cells)
329{
330
331	if (cells == 1)
332		return (fdt32_to_cpu(*((uint32_t *)data)));
333
334	return (fdt64_to_cpu(*((uint64_t *)data)));
335}
336
337int
338fdt_addrsize_cells(phandle_t node, int *addr_cells, int *size_cells)
339{
340	pcell_t cell;
341	int cell_size;
342
343	/*
344	 * Retrieve #{address,size}-cells.
345	 */
346	cell_size = sizeof(cell);
347	if (OF_getprop(node, "#address-cells", &cell, cell_size) < cell_size)
348		cell = 2;
349	*addr_cells = fdt32_to_cpu((int)cell);
350
351	if (OF_getprop(node, "#size-cells", &cell, cell_size) < cell_size)
352		cell = 1;
353	*size_cells = fdt32_to_cpu((int)cell);
354
355	if (*addr_cells > 3 || *size_cells > 2)
356		return (ERANGE);
357	return (0);
358}
359
360int
361fdt_ranges_verify(pcell_t *ranges, int tuples, int par_addr_cells,
362    int this_addr_cells, int this_size_cells)
363{
364	int i, rv, ulsz;
365
366	if (par_addr_cells > 2 || this_addr_cells > 2 || this_size_cells > 2)
367		return (ERANGE);
368
369	/*
370	 * This is the max size the resource manager can handle for addresses
371	 * and sizes.
372	 */
373	ulsz = sizeof(u_long);
374	if (par_addr_cells <= ulsz && this_addr_cells <= ulsz &&
375	    this_size_cells <= ulsz)
376		/* We can handle everything */
377		return (0);
378
379	rv = 0;
380	for (i = 0; i < tuples; i++) {
381
382		if (fdt_data_verify((void *)ranges, par_addr_cells))
383			goto err;
384		ranges += par_addr_cells;
385
386		if (fdt_data_verify((void *)ranges, this_addr_cells))
387			goto err;
388		ranges += this_addr_cells;
389
390		if (fdt_data_verify((void *)ranges, this_size_cells))
391			goto err;
392		ranges += this_size_cells;
393	}
394
395	return (0);
396
397err:
398	debugf("using address range >%d-bit not supported\n", ulsz * 8);
399	return (ERANGE);
400}
401
402int
403fdt_data_to_res(pcell_t *data, int addr_cells, int size_cells, u_long *start,
404    u_long *count)
405{
406
407	/* Address portion. */
408	if (fdt_data_verify((void *)data, addr_cells))
409		return (ERANGE);
410
411	*start = fdt_data_get((void *)data, addr_cells);
412	data += addr_cells;
413
414	/* Size portion. */
415	if (fdt_data_verify((void *)data, size_cells))
416		return (ERANGE);
417
418	*count = fdt_data_get((void *)data, size_cells);
419	return (0);
420}
421
422int
423fdt_regsize(phandle_t node, u_long *base, u_long *size)
424{
425	pcell_t reg[4];
426	int addr_cells, len, size_cells;
427
428	if (fdt_addrsize_cells(OF_parent(node), &addr_cells, &size_cells))
429		return (ENXIO);
430
431	if ((sizeof(pcell_t) * (addr_cells + size_cells)) > sizeof(reg))
432		return (ENOMEM);
433
434	len = OF_getprop(node, "reg", &reg, sizeof(reg));
435	if (len <= 0)
436		return (EINVAL);
437
438	*base = fdt_data_get(&reg[0], addr_cells);
439	*size = fdt_data_get(&reg[addr_cells], size_cells);
440	return (0);
441}
442
443int
444fdt_reg_to_rl(phandle_t node, struct resource_list *rl)
445{
446	u_long end, count, start;
447	pcell_t *reg, *regptr;
448	pcell_t addr_cells, size_cells;
449	int tuple_size, tuples;
450	int i, rv;
451	long busaddr, bussize;
452
453	if (fdt_addrsize_cells(OF_parent(node), &addr_cells, &size_cells) != 0)
454		return (ENXIO);
455	if (fdt_get_range(OF_parent(node), 0, &busaddr, &bussize)) {
456		busaddr = 0;
457		bussize = 0;
458	}
459
460	tuple_size = sizeof(pcell_t) * (addr_cells + size_cells);
461	tuples = OF_getprop_alloc(node, "reg", tuple_size, (void **)&reg);
462	debugf("addr_cells = %d, size_cells = %d\n", addr_cells, size_cells);
463	debugf("tuples = %d, tuple size = %d\n", tuples, tuple_size);
464	if (tuples <= 0)
465		/* No 'reg' property in this node. */
466		return (0);
467
468	regptr = reg;
469	for (i = 0; i < tuples; i++) {
470
471		rv = fdt_data_to_res(reg, addr_cells, size_cells, &start,
472		    &count);
473		if (rv != 0) {
474			resource_list_free(rl);
475			goto out;
476		}
477		reg += addr_cells + size_cells;
478
479		/* Calculate address range relative to base. */
480		start += busaddr;
481		end = start + count - 1;
482
483		debugf("reg addr start = %lx, end = %lx, count = %lx\n", start,
484		    end, count);
485
486		resource_list_add(rl, SYS_RES_MEMORY, i, start, end,
487		    count);
488	}
489	rv = 0;
490
491out:
492	free(regptr, M_OFWPROP);
493	return (rv);
494}
495
496int
497fdt_get_phyaddr(phandle_t node, device_t dev, int *phy_addr, void **phy_sc)
498{
499	phandle_t phy_node;
500	pcell_t phy_handle, phy_reg;
501	uint32_t i;
502	device_t parent, child;
503
504	if (OF_getencprop(node, "phy-handle", (void *)&phy_handle,
505	    sizeof(phy_handle)) <= 0)
506		return (ENXIO);
507
508	phy_node = OF_node_from_xref(phy_handle);
509
510	if (OF_getprop(phy_node, "reg", (void *)&phy_reg,
511	    sizeof(phy_reg)) <= 0)
512		return (ENXIO);
513
514	*phy_addr = fdt32_to_cpu(phy_reg);
515
516	/*
517	 * Search for softc used to communicate with phy.
518	 */
519
520	/*
521	 * Step 1: Search for ancestor of the phy-node with a "phy-handle"
522	 * property set.
523	 */
524	phy_node = OF_parent(phy_node);
525	while (phy_node != 0) {
526		if (OF_getprop(phy_node, "phy-handle", (void *)&phy_handle,
527		    sizeof(phy_handle)) > 0)
528			break;
529		phy_node = OF_parent(phy_node);
530	}
531	if (phy_node == 0)
532		return (ENXIO);
533
534	/*
535	 * Step 2: For each device with the same parent and name as ours
536	 * compare its node with the one found in step 1, ancestor of phy
537	 * node (stored in phy_node).
538	 */
539	parent = device_get_parent(dev);
540	i = 0;
541	child = device_find_child(parent, device_get_name(dev), i);
542	while (child != NULL) {
543		if (ofw_bus_get_node(child) == phy_node)
544			break;
545		i++;
546		child = device_find_child(parent, device_get_name(dev), i);
547	}
548	if (child == NULL)
549		return (ENXIO);
550
551	/*
552	 * Use softc of the device found.
553	 */
554	*phy_sc = (void *)device_get_softc(child);
555
556	return (0);
557}
558
559int
560fdt_get_reserved_regions(struct mem_region *mr, int *mrcnt)
561{
562	pcell_t reserve[FDT_REG_CELLS * FDT_MEM_REGIONS];
563	pcell_t *reservep;
564	phandle_t memory, root;
565	uint32_t memory_size;
566	int addr_cells, size_cells;
567	int i, max_size, res_len, rv, tuple_size, tuples;
568
569	max_size = sizeof(reserve);
570	root = OF_finddevice("/");
571	memory = OF_finddevice("/memory");
572	if (memory == -1) {
573		rv = ENXIO;
574		goto out;
575	}
576
577	if ((rv = fdt_addrsize_cells(OF_parent(memory), &addr_cells,
578	    &size_cells)) != 0)
579		goto out;
580
581	if (addr_cells > 2) {
582		rv = ERANGE;
583		goto out;
584	}
585
586	tuple_size = sizeof(pcell_t) * (addr_cells + size_cells);
587
588	res_len = OF_getproplen(root, "memreserve");
589	if (res_len <= 0 || res_len > sizeof(reserve)) {
590		rv = ERANGE;
591		goto out;
592	}
593
594	if (OF_getprop(root, "memreserve", reserve, res_len) <= 0) {
595		rv = ENXIO;
596		goto out;
597	}
598
599	memory_size = 0;
600	tuples = res_len / tuple_size;
601	reservep = (pcell_t *)&reserve;
602	for (i = 0; i < tuples; i++) {
603
604		rv = fdt_data_to_res(reservep, addr_cells, size_cells,
605			(u_long *)&mr[i].mr_start, (u_long *)&mr[i].mr_size);
606
607		if (rv != 0)
608			goto out;
609
610		reservep += addr_cells + size_cells;
611	}
612
613	*mrcnt = i;
614	rv = 0;
615out:
616	return (rv);
617}
618
619int
620fdt_get_mem_regions(struct mem_region *mr, int *mrcnt, uint32_t *memsize)
621{
622	pcell_t reg[FDT_REG_CELLS * FDT_MEM_REGIONS];
623	pcell_t *regp;
624	phandle_t memory;
625	uint32_t memory_size;
626	int addr_cells, size_cells;
627	int i, max_size, reg_len, rv, tuple_size, tuples;
628
629	max_size = sizeof(reg);
630	memory = OF_finddevice("/memory");
631	if (memory == -1) {
632		rv = ENXIO;
633		goto out;
634	}
635
636	if ((rv = fdt_addrsize_cells(OF_parent(memory), &addr_cells,
637	    &size_cells)) != 0)
638		goto out;
639
640	if (addr_cells > 2) {
641		rv = ERANGE;
642		goto out;
643	}
644
645	tuple_size = sizeof(pcell_t) * (addr_cells + size_cells);
646	reg_len = OF_getproplen(memory, "reg");
647	if (reg_len <= 0 || reg_len > sizeof(reg)) {
648		rv = ERANGE;
649		goto out;
650	}
651
652	if (OF_getprop(memory, "reg", reg, reg_len) <= 0) {
653		rv = ENXIO;
654		goto out;
655	}
656
657	memory_size = 0;
658	tuples = reg_len / tuple_size;
659	regp = (pcell_t *)&reg;
660	for (i = 0; i < tuples; i++) {
661
662		rv = fdt_data_to_res(regp, addr_cells, size_cells,
663			(u_long *)&mr[i].mr_start, (u_long *)&mr[i].mr_size);
664
665		if (rv != 0)
666			goto out;
667
668		regp += addr_cells + size_cells;
669		memory_size += mr[i].mr_size;
670	}
671
672	if (memory_size == 0) {
673		rv = ERANGE;
674		goto out;
675	}
676
677	*mrcnt = i;
678	*memsize = memory_size;
679	rv = 0;
680out:
681	return (rv);
682}
683
684int
685fdt_get_unit(device_t dev)
686{
687	const char * name;
688
689	name = ofw_bus_get_name(dev);
690	name = strchr(name, '@') + 1;
691
692	return (strtol(name,NULL,0));
693}
694