blob: 86cdbd4dbad576af598c7d96a0c592ea9045683b [file] [log] [blame]
David S. Miller372b07b2006-06-21 15:35:28 -07001/*
2 * Procedures for creating, accessing and interpreting the device tree.
3 *
4 * Paul Mackerras August 1996.
5 * Copyright (C) 1996-2005 Paul Mackerras.
6 *
7 * Adapted for 64bit PowerPC by Dave Engebretsen and Peter Bergner.
8 * {engebret|bergner}@us.ibm.com
9 *
10 * Adapted for sparc64 by David S. Miller davem@davemloft.net
11 *
12 * This program is free software; you can redistribute it and/or
13 * modify it under the terms of the GNU General Public License
14 * as published by the Free Software Foundation; either version
15 * 2 of the License, or (at your option) any later version.
16 */
17
David S. Miller2b1e5972006-06-29 15:07:37 -070018#include <linux/config.h>
David S. Miller372b07b2006-06-21 15:35:28 -070019#include <linux/kernel.h>
20#include <linux/types.h>
21#include <linux/string.h>
22#include <linux/mm.h>
23#include <linux/bootmem.h>
David S. Millerde8d28b2006-06-22 16:18:54 -070024#include <linux/module.h>
David S. Miller372b07b2006-06-21 15:35:28 -070025
26#include <asm/prom.h>
David S. Miller2b1e5972006-06-29 15:07:37 -070027#include <asm/of_device.h>
David S. Miller372b07b2006-06-21 15:35:28 -070028#include <asm/oplib.h>
David S. Miller2b1e5972006-06-29 15:07:37 -070029#include <asm/irq.h>
30#include <asm/asi.h>
31#include <asm/upa.h>
David S. Miller372b07b2006-06-21 15:35:28 -070032
33static struct device_node *allnodes;
34
David S. Millerfb7cd9d2006-06-25 23:18:36 -070035/* use when traversing tree through the allnext, child, sibling,
36 * or parent members of struct device_node.
37 */
38static DEFINE_RWLOCK(devtree_lock);
39
David S. Miller8cd24ed2006-06-22 22:08:58 -070040int of_device_is_compatible(struct device_node *device, const char *compat)
41{
42 const char* cp;
43 int cplen, l;
44
45 cp = (char *) of_get_property(device, "compatible", &cplen);
46 if (cp == NULL)
47 return 0;
48 while (cplen > 0) {
49 if (strncmp(cp, compat, strlen(compat)) == 0)
50 return 1;
51 l = strlen(cp) + 1;
52 cp += l;
53 cplen -= l;
54 }
55
56 return 0;
57}
58EXPORT_SYMBOL(of_device_is_compatible);
59
David S. Miller372b07b2006-06-21 15:35:28 -070060struct device_node *of_get_parent(const struct device_node *node)
61{
62 struct device_node *np;
63
64 if (!node)
65 return NULL;
66
67 np = node->parent;
68
69 return np;
70}
David S. Miller8cd24ed2006-06-22 22:08:58 -070071EXPORT_SYMBOL(of_get_parent);
David S. Miller372b07b2006-06-21 15:35:28 -070072
73struct device_node *of_get_next_child(const struct device_node *node,
74 struct device_node *prev)
75{
76 struct device_node *next;
77
78 next = prev ? prev->sibling : node->child;
79 for (; next != 0; next = next->sibling) {
80 break;
81 }
82
83 return next;
84}
David S. Miller8cd24ed2006-06-22 22:08:58 -070085EXPORT_SYMBOL(of_get_next_child);
David S. Miller372b07b2006-06-21 15:35:28 -070086
87struct device_node *of_find_node_by_path(const char *path)
88{
89 struct device_node *np = allnodes;
90
91 for (; np != 0; np = np->allnext) {
92 if (np->full_name != 0 && strcmp(np->full_name, path) == 0)
93 break;
94 }
95
96 return np;
97}
David S. Miller690c8fd2006-06-22 19:12:03 -070098EXPORT_SYMBOL(of_find_node_by_path);
David S. Miller372b07b2006-06-21 15:35:28 -070099
David S. Millerde8d28b2006-06-22 16:18:54 -0700100struct device_node *of_find_node_by_phandle(phandle handle)
101{
102 struct device_node *np;
103
104 for (np = allnodes; np != 0; np = np->allnext)
105 if (np->node == handle)
106 break;
107
108 return np;
109}
David S. Miller8cd24ed2006-06-22 22:08:58 -0700110EXPORT_SYMBOL(of_find_node_by_phandle);
David S. Millerde8d28b2006-06-22 16:18:54 -0700111
David S. Milleraaf7cec2006-06-21 16:33:54 -0700112struct device_node *of_find_node_by_name(struct device_node *from,
113 const char *name)
114{
115 struct device_node *np;
116
117 np = from ? from->allnext : allnodes;
118 for (; np != NULL; np = np->allnext)
119 if (np->name != NULL && strcmp(np->name, name) == 0)
120 break;
121
122 return np;
123}
David S. Miller8cd24ed2006-06-22 22:08:58 -0700124EXPORT_SYMBOL(of_find_node_by_name);
David S. Milleraaf7cec2006-06-21 16:33:54 -0700125
126struct device_node *of_find_node_by_type(struct device_node *from,
127 const char *type)
128{
129 struct device_node *np;
130
131 np = from ? from->allnext : allnodes;
132 for (; np != 0; np = np->allnext)
133 if (np->type != 0 && strcmp(np->type, type) == 0)
134 break;
135
136 return np;
137}
David S. Miller8cd24ed2006-06-22 22:08:58 -0700138EXPORT_SYMBOL(of_find_node_by_type);
139
140struct device_node *of_find_compatible_node(struct device_node *from,
141 const char *type, const char *compatible)
142{
143 struct device_node *np;
144
145 np = from ? from->allnext : allnodes;
146 for (; np != 0; np = np->allnext) {
147 if (type != NULL
148 && !(np->type != 0 && strcmp(np->type, type) == 0))
149 continue;
150 if (of_device_is_compatible(np, compatible))
151 break;
152 }
153
154 return np;
155}
156EXPORT_SYMBOL(of_find_compatible_node);
David S. Milleraaf7cec2006-06-21 16:33:54 -0700157
David S. Miller372b07b2006-06-21 15:35:28 -0700158struct property *of_find_property(struct device_node *np, const char *name,
159 int *lenp)
160{
161 struct property *pp;
162
163 for (pp = np->properties; pp != 0; pp = pp->next) {
164 if (strcmp(pp->name, name) == 0) {
165 if (lenp != 0)
166 *lenp = pp->length;
167 break;
168 }
169 }
170 return pp;
171}
David S. Millerde8d28b2006-06-22 16:18:54 -0700172EXPORT_SYMBOL(of_find_property);
173
174/*
175 * Find a property with a given name for a given node
176 * and return the value.
177 */
178void *of_get_property(struct device_node *np, const char *name, int *lenp)
179{
180 struct property *pp = of_find_property(np,name,lenp);
181 return pp ? pp->value : NULL;
182}
183EXPORT_SYMBOL(of_get_property);
David S. Miller372b07b2006-06-21 15:35:28 -0700184
David S. Miller6d307722006-06-21 23:07:29 -0700185int of_getintprop_default(struct device_node *np, const char *name, int def)
186{
187 struct property *prop;
188 int len;
189
190 prop = of_find_property(np, name, &len);
191 if (!prop || len != 4)
192 return def;
193
194 return *(int *) prop->value;
195}
David S. Millerde8d28b2006-06-22 16:18:54 -0700196EXPORT_SYMBOL(of_getintprop_default);
David S. Miller6d307722006-06-21 23:07:29 -0700197
David S. Miller3ae9a3482006-06-29 14:34:12 -0700198int of_n_addr_cells(struct device_node *np)
199{
200 int* ip;
201 do {
202 if (np->parent)
203 np = np->parent;
204 ip = of_get_property(np, "#address-cells", NULL);
205 if (ip != NULL)
206 return *ip;
207 } while (np->parent);
208 /* No #address-cells property for the root node, default to 2 */
209 return 2;
210}
211EXPORT_SYMBOL(of_n_addr_cells);
212
213int of_n_size_cells(struct device_node *np)
214{
215 int* ip;
216 do {
217 if (np->parent)
218 np = np->parent;
219 ip = of_get_property(np, "#size-cells", NULL);
220 if (ip != NULL)
221 return *ip;
222 } while (np->parent);
223 /* No #size-cells property for the root node, default to 1 */
224 return 1;
225}
226EXPORT_SYMBOL(of_n_size_cells);
227
David S. Millerfb7cd9d2006-06-25 23:18:36 -0700228int of_set_property(struct device_node *dp, const char *name, void *val, int len)
229{
230 struct property **prevp;
231 void *new_val;
232 int err;
233
234 new_val = kmalloc(len, GFP_KERNEL);
235 if (!new_val)
236 return -ENOMEM;
237
238 memcpy(new_val, val, len);
239
240 err = -ENODEV;
241
242 write_lock(&devtree_lock);
243 prevp = &dp->properties;
244 while (*prevp) {
245 struct property *prop = *prevp;
246
247 if (!strcmp(prop->name, name)) {
248 void *old_val = prop->value;
249 int ret;
250
251 ret = prom_setprop(dp->node, name, val, len);
252 err = -EINVAL;
253 if (ret >= 0) {
254 prop->value = new_val;
255 prop->length = len;
256
257 if (OF_IS_DYNAMIC(prop))
258 kfree(old_val);
259
260 OF_MARK_DYNAMIC(prop);
261
262 err = 0;
263 }
264 break;
265 }
266 prevp = &(*prevp)->next;
267 }
268 write_unlock(&devtree_lock);
269
270 /* XXX Upate procfs if necessary... */
271
272 return err;
273}
274EXPORT_SYMBOL(of_set_property);
275
David S. Miller372b07b2006-06-21 15:35:28 -0700276static unsigned int prom_early_allocated;
277
278static void * __init prom_early_alloc(unsigned long size)
279{
280 void *ret;
281
282 ret = __alloc_bootmem(size, SMP_CACHE_BYTES, 0UL);
283 if (ret != NULL)
284 memset(ret, 0, size);
285
286 prom_early_allocated += size;
287
288 return ret;
289}
290
David S. Miller2b1e5972006-06-29 15:07:37 -0700291#ifdef CONFIG_PCI
292/* PSYCHO interrupt mapping support. */
293#define PSYCHO_IMAP_A_SLOT0 0x0c00UL
294#define PSYCHO_IMAP_B_SLOT0 0x0c20UL
295static unsigned long psycho_pcislot_imap_offset(unsigned long ino)
296{
297 unsigned int bus = (ino & 0x10) >> 4;
298 unsigned int slot = (ino & 0x0c) >> 2;
299
300 if (bus == 0)
301 return PSYCHO_IMAP_A_SLOT0 + (slot * 8);
302 else
303 return PSYCHO_IMAP_B_SLOT0 + (slot * 8);
304}
305
306#define PSYCHO_IMAP_SCSI 0x1000UL
307#define PSYCHO_IMAP_ETH 0x1008UL
308#define PSYCHO_IMAP_BPP 0x1010UL
309#define PSYCHO_IMAP_AU_REC 0x1018UL
310#define PSYCHO_IMAP_AU_PLAY 0x1020UL
311#define PSYCHO_IMAP_PFAIL 0x1028UL
312#define PSYCHO_IMAP_KMS 0x1030UL
313#define PSYCHO_IMAP_FLPY 0x1038UL
314#define PSYCHO_IMAP_SHW 0x1040UL
315#define PSYCHO_IMAP_KBD 0x1048UL
316#define PSYCHO_IMAP_MS 0x1050UL
317#define PSYCHO_IMAP_SER 0x1058UL
318#define PSYCHO_IMAP_TIM0 0x1060UL
319#define PSYCHO_IMAP_TIM1 0x1068UL
320#define PSYCHO_IMAP_UE 0x1070UL
321#define PSYCHO_IMAP_CE 0x1078UL
322#define PSYCHO_IMAP_A_ERR 0x1080UL
323#define PSYCHO_IMAP_B_ERR 0x1088UL
324#define PSYCHO_IMAP_PMGMT 0x1090UL
325#define PSYCHO_IMAP_GFX 0x1098UL
326#define PSYCHO_IMAP_EUPA 0x10a0UL
327
328static unsigned long __psycho_onboard_imap_off[] = {
329/*0x20*/ PSYCHO_IMAP_SCSI,
330/*0x21*/ PSYCHO_IMAP_ETH,
331/*0x22*/ PSYCHO_IMAP_BPP,
332/*0x23*/ PSYCHO_IMAP_AU_REC,
333/*0x24*/ PSYCHO_IMAP_AU_PLAY,
334/*0x25*/ PSYCHO_IMAP_PFAIL,
335/*0x26*/ PSYCHO_IMAP_KMS,
336/*0x27*/ PSYCHO_IMAP_FLPY,
337/*0x28*/ PSYCHO_IMAP_SHW,
338/*0x29*/ PSYCHO_IMAP_KBD,
339/*0x2a*/ PSYCHO_IMAP_MS,
340/*0x2b*/ PSYCHO_IMAP_SER,
341/*0x2c*/ PSYCHO_IMAP_TIM0,
342/*0x2d*/ PSYCHO_IMAP_TIM1,
343/*0x2e*/ PSYCHO_IMAP_UE,
344/*0x2f*/ PSYCHO_IMAP_CE,
345/*0x30*/ PSYCHO_IMAP_A_ERR,
346/*0x31*/ PSYCHO_IMAP_B_ERR,
347/*0x32*/ PSYCHO_IMAP_PMGMT
348};
349#define PSYCHO_ONBOARD_IRQ_BASE 0x20
350#define PSYCHO_ONBOARD_IRQ_LAST 0x32
351#define psycho_onboard_imap_offset(__ino) \
352 __psycho_onboard_imap_off[(__ino) - PSYCHO_ONBOARD_IRQ_BASE]
353
354#define PSYCHO_ICLR_A_SLOT0 0x1400UL
355#define PSYCHO_ICLR_SCSI 0x1800UL
356
357#define psycho_iclr_offset(ino) \
358 ((ino & 0x20) ? (PSYCHO_ICLR_SCSI + (((ino) & 0x1f) << 3)) : \
359 (PSYCHO_ICLR_A_SLOT0 + (((ino) & 0x1f)<<3)))
360
361static unsigned int psycho_irq_build(struct device_node *dp,
362 unsigned int ino,
363 void *_data)
364{
365 unsigned long controller_regs = (unsigned long) _data;
366 unsigned long imap, iclr;
367 unsigned long imap_off, iclr_off;
368 int inofixup = 0;
369
370 ino &= 0x3f;
371 if (ino < PSYCHO_ONBOARD_IRQ_BASE) {
372 /* PCI slot */
373 imap_off = psycho_pcislot_imap_offset(ino);
374 } else {
375 /* Onboard device */
376 if (ino > PSYCHO_ONBOARD_IRQ_LAST) {
377 prom_printf("psycho_irq_build: Wacky INO [%x]\n", ino);
378 prom_halt();
379 }
380 imap_off = psycho_onboard_imap_offset(ino);
381 }
382
383 /* Now build the IRQ bucket. */
384 imap = controller_regs + imap_off;
385 imap += 4;
386
387 iclr_off = psycho_iclr_offset(ino);
388 iclr = controller_regs + iclr_off;
389 iclr += 4;
390
391 if ((ino & 0x20) == 0)
392 inofixup = ino & 0x03;
393
394 return build_irq(inofixup, iclr, imap);
395}
396
397static void psycho_irq_trans_init(struct device_node *dp)
398{
399 struct linux_prom64_registers *regs;
400
401 dp->irq_trans = prom_early_alloc(sizeof(struct of_irq_controller));
402 dp->irq_trans->irq_build = psycho_irq_build;
403
404 regs = of_get_property(dp, "reg", NULL);
405 dp->irq_trans->data = (void *) regs[2].phys_addr;
406}
407
408#define sabre_read(__reg) \
409({ u64 __ret; \
410 __asm__ __volatile__("ldxa [%1] %2, %0" \
411 : "=r" (__ret) \
412 : "r" (__reg), "i" (ASI_PHYS_BYPASS_EC_E) \
413 : "memory"); \
414 __ret; \
415})
416
417struct sabre_irq_data {
418 unsigned long controller_regs;
419 unsigned int pci_first_busno;
420};
421#define SABRE_CONFIGSPACE 0x001000000UL
422#define SABRE_WRSYNC 0x1c20UL
423
424#define SABRE_CONFIG_BASE(CONFIG_SPACE) \
425 (CONFIG_SPACE | (1UL << 24))
426#define SABRE_CONFIG_ENCODE(BUS, DEVFN, REG) \
427 (((unsigned long)(BUS) << 16) | \
428 ((unsigned long)(DEVFN) << 8) | \
429 ((unsigned long)(REG)))
430
431/* When a device lives behind a bridge deeper in the PCI bus topology
432 * than APB, a special sequence must run to make sure all pending DMA
433 * transfers at the time of IRQ delivery are visible in the coherency
434 * domain by the cpu. This sequence is to perform a read on the far
435 * side of the non-APB bridge, then perform a read of Sabre's DMA
436 * write-sync register.
437 */
438static void sabre_wsync_handler(unsigned int ino, void *_arg1, void *_arg2)
439{
440 unsigned int phys_hi = (unsigned int) (unsigned long) _arg1;
441 struct sabre_irq_data *irq_data = _arg2;
442 unsigned long controller_regs = irq_data->controller_regs;
443 unsigned long sync_reg = controller_regs + SABRE_WRSYNC;
444 unsigned long config_space = controller_regs + SABRE_CONFIGSPACE;
445 unsigned int bus, devfn;
446 u16 _unused;
447
448 config_space = SABRE_CONFIG_BASE(config_space);
449
450 bus = (phys_hi >> 16) & 0xff;
451 devfn = (phys_hi >> 8) & 0xff;
452
453 config_space |= SABRE_CONFIG_ENCODE(bus, devfn, 0x00);
454
455 __asm__ __volatile__("membar #Sync\n\t"
456 "lduha [%1] %2, %0\n\t"
457 "membar #Sync"
458 : "=r" (_unused)
459 : "r" ((u16 *) config_space),
460 "i" (ASI_PHYS_BYPASS_EC_E_L)
461 : "memory");
462
463 sabre_read(sync_reg);
464}
465
466#define SABRE_IMAP_A_SLOT0 0x0c00UL
467#define SABRE_IMAP_B_SLOT0 0x0c20UL
468#define SABRE_IMAP_SCSI 0x1000UL
469#define SABRE_IMAP_ETH 0x1008UL
470#define SABRE_IMAP_BPP 0x1010UL
471#define SABRE_IMAP_AU_REC 0x1018UL
472#define SABRE_IMAP_AU_PLAY 0x1020UL
473#define SABRE_IMAP_PFAIL 0x1028UL
474#define SABRE_IMAP_KMS 0x1030UL
475#define SABRE_IMAP_FLPY 0x1038UL
476#define SABRE_IMAP_SHW 0x1040UL
477#define SABRE_IMAP_KBD 0x1048UL
478#define SABRE_IMAP_MS 0x1050UL
479#define SABRE_IMAP_SER 0x1058UL
480#define SABRE_IMAP_UE 0x1070UL
481#define SABRE_IMAP_CE 0x1078UL
482#define SABRE_IMAP_PCIERR 0x1080UL
483#define SABRE_IMAP_GFX 0x1098UL
484#define SABRE_IMAP_EUPA 0x10a0UL
485#define SABRE_ICLR_A_SLOT0 0x1400UL
486#define SABRE_ICLR_B_SLOT0 0x1480UL
487#define SABRE_ICLR_SCSI 0x1800UL
488#define SABRE_ICLR_ETH 0x1808UL
489#define SABRE_ICLR_BPP 0x1810UL
490#define SABRE_ICLR_AU_REC 0x1818UL
491#define SABRE_ICLR_AU_PLAY 0x1820UL
492#define SABRE_ICLR_PFAIL 0x1828UL
493#define SABRE_ICLR_KMS 0x1830UL
494#define SABRE_ICLR_FLPY 0x1838UL
495#define SABRE_ICLR_SHW 0x1840UL
496#define SABRE_ICLR_KBD 0x1848UL
497#define SABRE_ICLR_MS 0x1850UL
498#define SABRE_ICLR_SER 0x1858UL
499#define SABRE_ICLR_UE 0x1870UL
500#define SABRE_ICLR_CE 0x1878UL
501#define SABRE_ICLR_PCIERR 0x1880UL
502
503static unsigned long sabre_pcislot_imap_offset(unsigned long ino)
504{
505 unsigned int bus = (ino & 0x10) >> 4;
506 unsigned int slot = (ino & 0x0c) >> 2;
507
508 if (bus == 0)
509 return SABRE_IMAP_A_SLOT0 + (slot * 8);
510 else
511 return SABRE_IMAP_B_SLOT0 + (slot * 8);
512}
513
514static unsigned long __sabre_onboard_imap_off[] = {
515/*0x20*/ SABRE_IMAP_SCSI,
516/*0x21*/ SABRE_IMAP_ETH,
517/*0x22*/ SABRE_IMAP_BPP,
518/*0x23*/ SABRE_IMAP_AU_REC,
519/*0x24*/ SABRE_IMAP_AU_PLAY,
520/*0x25*/ SABRE_IMAP_PFAIL,
521/*0x26*/ SABRE_IMAP_KMS,
522/*0x27*/ SABRE_IMAP_FLPY,
523/*0x28*/ SABRE_IMAP_SHW,
524/*0x29*/ SABRE_IMAP_KBD,
525/*0x2a*/ SABRE_IMAP_MS,
526/*0x2b*/ SABRE_IMAP_SER,
527/*0x2c*/ 0 /* reserved */,
528/*0x2d*/ 0 /* reserved */,
529/*0x2e*/ SABRE_IMAP_UE,
530/*0x2f*/ SABRE_IMAP_CE,
531/*0x30*/ SABRE_IMAP_PCIERR,
532};
533#define SABRE_ONBOARD_IRQ_BASE 0x20
534#define SABRE_ONBOARD_IRQ_LAST 0x30
535#define sabre_onboard_imap_offset(__ino) \
536 __sabre_onboard_imap_off[(__ino) - SABRE_ONBOARD_IRQ_BASE]
537
538#define sabre_iclr_offset(ino) \
539 ((ino & 0x20) ? (SABRE_ICLR_SCSI + (((ino) & 0x1f) << 3)) : \
540 (SABRE_ICLR_A_SLOT0 + (((ino) & 0x1f)<<3)))
541
David S. Millera23c3a82006-07-12 15:59:53 -0700542static int parent_is_sabre_or_simba(struct device_node *dp)
543{
544 char *parent_model, *parent_compat;
545
546 parent_model = of_get_property(dp->parent, "model", NULL);
547 if (parent_model &&
548 (!strcmp(parent_model, "SUNW,sabre") ||
549 !strcmp(parent_model, "SUNW,simba")))
550 return 1;
551
552 parent_compat = of_get_property(dp->parent, "compatible", NULL);
553 if (parent_compat &&
554 (!strcmp(parent_compat, "pci108e,a000") ||
555 !strcmp(parent_compat, "pci108e,a001")))
556 return 1;
557
558 return 0;
559}
560
David S. Miller2b1e5972006-06-29 15:07:37 -0700561static unsigned int sabre_irq_build(struct device_node *dp,
562 unsigned int ino,
563 void *_data)
564{
565 struct sabre_irq_data *irq_data = _data;
566 unsigned long controller_regs = irq_data->controller_regs;
567 struct linux_prom_pci_registers *regs;
568 unsigned long imap, iclr;
569 unsigned long imap_off, iclr_off;
570 int inofixup = 0;
571 int virt_irq;
572
573 ino &= 0x3f;
574 if (ino < SABRE_ONBOARD_IRQ_BASE) {
575 /* PCI slot */
576 imap_off = sabre_pcislot_imap_offset(ino);
577 } else {
578 /* onboard device */
579 if (ino > SABRE_ONBOARD_IRQ_LAST) {
580 prom_printf("sabre_irq_build: Wacky INO [%x]\n", ino);
581 prom_halt();
582 }
583 imap_off = sabre_onboard_imap_offset(ino);
584 }
585
586 /* Now build the IRQ bucket. */
587 imap = controller_regs + imap_off;
588 imap += 4;
589
590 iclr_off = sabre_iclr_offset(ino);
591 iclr = controller_regs + iclr_off;
592 iclr += 4;
593
594 if ((ino & 0x20) == 0)
595 inofixup = ino & 0x03;
596
597 virt_irq = build_irq(inofixup, iclr, imap);
598
David S. Millera23c3a82006-07-12 15:59:53 -0700599 /* If the parent device is a PCI<->PCI bridge other than
600 * APB, we have to install a pre-handler to ensure that
601 * all pending DMA is drained before the interrupt handler
602 * is run.
603 */
David S. Miller2b1e5972006-06-29 15:07:37 -0700604 regs = of_get_property(dp, "reg", NULL);
605 if (regs &&
David S. Millera23c3a82006-07-12 15:59:53 -0700606 !parent_is_sabre_or_simba(dp)) {
David S. Miller2b1e5972006-06-29 15:07:37 -0700607 irq_install_pre_handler(virt_irq,
608 sabre_wsync_handler,
609 (void *) (long) regs->phys_hi,
David S. Millera23c3a82006-07-12 15:59:53 -0700610 (void *) irq_data);
David S. Miller2b1e5972006-06-29 15:07:37 -0700611 }
612
613 return virt_irq;
614}
615
616static void sabre_irq_trans_init(struct device_node *dp)
617{
618 struct linux_prom64_registers *regs;
619 struct sabre_irq_data *irq_data;
620 u32 *busrange;
621
622 dp->irq_trans = prom_early_alloc(sizeof(struct of_irq_controller));
623 dp->irq_trans->irq_build = sabre_irq_build;
624
625 irq_data = prom_early_alloc(sizeof(struct sabre_irq_data));
626
627 regs = of_get_property(dp, "reg", NULL);
628 irq_data->controller_regs = regs[0].phys_addr;
629
630 busrange = of_get_property(dp, "bus-range", NULL);
631 irq_data->pci_first_busno = busrange[0];
632
633 dp->irq_trans->data = irq_data;
634}
635
636/* SCHIZO interrupt mapping support. Unlike Psycho, for this controller the
637 * imap/iclr registers are per-PBM.
638 */
639#define SCHIZO_IMAP_BASE 0x1000UL
640#define SCHIZO_ICLR_BASE 0x1400UL
641
642static unsigned long schizo_imap_offset(unsigned long ino)
643{
644 return SCHIZO_IMAP_BASE + (ino * 8UL);
645}
646
647static unsigned long schizo_iclr_offset(unsigned long ino)
648{
649 return SCHIZO_ICLR_BASE + (ino * 8UL);
650}
651
652static unsigned long schizo_ino_to_iclr(unsigned long pbm_regs,
653 unsigned int ino)
654{
655 return pbm_regs + schizo_iclr_offset(ino) + 4;
656}
657
658static unsigned long schizo_ino_to_imap(unsigned long pbm_regs,
659 unsigned int ino)
660{
661 return pbm_regs + schizo_imap_offset(ino) + 4;
662}
663
664#define schizo_read(__reg) \
665({ u64 __ret; \
666 __asm__ __volatile__("ldxa [%1] %2, %0" \
667 : "=r" (__ret) \
668 : "r" (__reg), "i" (ASI_PHYS_BYPASS_EC_E) \
669 : "memory"); \
670 __ret; \
671})
672#define schizo_write(__reg, __val) \
673 __asm__ __volatile__("stxa %0, [%1] %2" \
674 : /* no outputs */ \
675 : "r" (__val), "r" (__reg), \
676 "i" (ASI_PHYS_BYPASS_EC_E) \
677 : "memory")
678
679static void tomatillo_wsync_handler(unsigned int ino, void *_arg1, void *_arg2)
680{
681 unsigned long sync_reg = (unsigned long) _arg2;
682 u64 mask = 1UL << (ino & IMAP_INO);
683 u64 val;
684 int limit;
685
686 schizo_write(sync_reg, mask);
687
688 limit = 100000;
689 val = 0;
690 while (--limit) {
691 val = schizo_read(sync_reg);
692 if (!(val & mask))
693 break;
694 }
695 if (limit <= 0) {
696 printk("tomatillo_wsync_handler: DMA won't sync [%lx:%lx]\n",
697 val, mask);
698 }
699
700 if (_arg1) {
701 static unsigned char cacheline[64]
702 __attribute__ ((aligned (64)));
703
704 __asm__ __volatile__("rd %%fprs, %0\n\t"
705 "or %0, %4, %1\n\t"
706 "wr %1, 0x0, %%fprs\n\t"
707 "stda %%f0, [%5] %6\n\t"
708 "wr %0, 0x0, %%fprs\n\t"
709 "membar #Sync"
710 : "=&r" (mask), "=&r" (val)
711 : "0" (mask), "1" (val),
712 "i" (FPRS_FEF), "r" (&cacheline[0]),
713 "i" (ASI_BLK_COMMIT_P));
714 }
715}
716
717struct schizo_irq_data {
718 unsigned long pbm_regs;
719 unsigned long sync_reg;
720 u32 portid;
721 int chip_version;
722};
723
724static unsigned int schizo_irq_build(struct device_node *dp,
725 unsigned int ino,
726 void *_data)
727{
728 struct schizo_irq_data *irq_data = _data;
729 unsigned long pbm_regs = irq_data->pbm_regs;
730 unsigned long imap, iclr;
731 int ign_fixup;
732 int virt_irq;
733 int is_tomatillo;
734
735 ino &= 0x3f;
736
737 /* Now build the IRQ bucket. */
738 imap = schizo_ino_to_imap(pbm_regs, ino);
739 iclr = schizo_ino_to_iclr(pbm_regs, ino);
740
741 /* On Schizo, no inofixup occurs. This is because each
742 * INO has it's own IMAP register. On Psycho and Sabre
743 * there is only one IMAP register for each PCI slot even
744 * though four different INOs can be generated by each
745 * PCI slot.
746 *
747 * But, for JBUS variants (essentially, Tomatillo), we have
748 * to fixup the lowest bit of the interrupt group number.
749 */
750 ign_fixup = 0;
751
752 is_tomatillo = (irq_data->sync_reg != 0UL);
753
754 if (is_tomatillo) {
755 if (irq_data->portid & 1)
756 ign_fixup = (1 << 6);
757 }
758
759 virt_irq = build_irq(ign_fixup, iclr, imap);
760
761 if (is_tomatillo) {
762 irq_install_pre_handler(virt_irq,
763 tomatillo_wsync_handler,
764 ((irq_data->chip_version <= 4) ?
765 (void *) 1 : (void *) 0),
766 (void *) irq_data->sync_reg);
767 }
768
769 return virt_irq;
770}
771
772static void schizo_irq_trans_init(struct device_node *dp)
773{
774 struct linux_prom64_registers *regs;
775 struct schizo_irq_data *irq_data;
776
777 dp->irq_trans = prom_early_alloc(sizeof(struct of_irq_controller));
778 dp->irq_trans->irq_build = schizo_irq_build;
779
780 irq_data = prom_early_alloc(sizeof(struct schizo_irq_data));
781
782 regs = of_get_property(dp, "reg", NULL);
783 dp->irq_trans->data = irq_data;
784
785 irq_data->pbm_regs = regs[0].phys_addr;
786 irq_data->sync_reg = regs[3].phys_addr + 0x1a18UL;
787 irq_data->portid = of_getintprop_default(dp, "portid", 0);
788 irq_data->chip_version = of_getintprop_default(dp, "version#", 0);
789}
790
791static unsigned int pci_sun4v_irq_build(struct device_node *dp,
792 unsigned int devino,
793 void *_data)
794{
795 u32 devhandle = (u32) (unsigned long) _data;
796
797 return sun4v_build_irq(devhandle, devino);
798}
799
800static void pci_sun4v_irq_trans_init(struct device_node *dp)
801{
802 struct linux_prom64_registers *regs;
803
804 dp->irq_trans = prom_early_alloc(sizeof(struct of_irq_controller));
805 dp->irq_trans->irq_build = pci_sun4v_irq_build;
806
807 regs = of_get_property(dp, "reg", NULL);
808 dp->irq_trans->data = (void *) (unsigned long)
809 ((regs->phys_addr >> 32UL) & 0x0fffffff);
810}
811#endif /* CONFIG_PCI */
812
813#ifdef CONFIG_SBUS
814/* INO number to IMAP register offset for SYSIO external IRQ's.
815 * This should conform to both Sunfire/Wildfire server and Fusion
816 * desktop designs.
817 */
818#define SYSIO_IMAP_SLOT0 0x2c04UL
819#define SYSIO_IMAP_SLOT1 0x2c0cUL
820#define SYSIO_IMAP_SLOT2 0x2c14UL
821#define SYSIO_IMAP_SLOT3 0x2c1cUL
822#define SYSIO_IMAP_SCSI 0x3004UL
823#define SYSIO_IMAP_ETH 0x300cUL
824#define SYSIO_IMAP_BPP 0x3014UL
825#define SYSIO_IMAP_AUDIO 0x301cUL
826#define SYSIO_IMAP_PFAIL 0x3024UL
827#define SYSIO_IMAP_KMS 0x302cUL
828#define SYSIO_IMAP_FLPY 0x3034UL
829#define SYSIO_IMAP_SHW 0x303cUL
830#define SYSIO_IMAP_KBD 0x3044UL
831#define SYSIO_IMAP_MS 0x304cUL
832#define SYSIO_IMAP_SER 0x3054UL
833#define SYSIO_IMAP_TIM0 0x3064UL
834#define SYSIO_IMAP_TIM1 0x306cUL
835#define SYSIO_IMAP_UE 0x3074UL
836#define SYSIO_IMAP_CE 0x307cUL
837#define SYSIO_IMAP_SBERR 0x3084UL
838#define SYSIO_IMAP_PMGMT 0x308cUL
839#define SYSIO_IMAP_GFX 0x3094UL
840#define SYSIO_IMAP_EUPA 0x309cUL
841
842#define bogon ((unsigned long) -1)
843static unsigned long sysio_irq_offsets[] = {
844 /* SBUS Slot 0 --> 3, level 1 --> 7 */
845 SYSIO_IMAP_SLOT0, SYSIO_IMAP_SLOT0, SYSIO_IMAP_SLOT0, SYSIO_IMAP_SLOT0,
846 SYSIO_IMAP_SLOT0, SYSIO_IMAP_SLOT0, SYSIO_IMAP_SLOT0, SYSIO_IMAP_SLOT0,
847 SYSIO_IMAP_SLOT1, SYSIO_IMAP_SLOT1, SYSIO_IMAP_SLOT1, SYSIO_IMAP_SLOT1,
848 SYSIO_IMAP_SLOT1, SYSIO_IMAP_SLOT1, SYSIO_IMAP_SLOT1, SYSIO_IMAP_SLOT1,
849 SYSIO_IMAP_SLOT2, SYSIO_IMAP_SLOT2, SYSIO_IMAP_SLOT2, SYSIO_IMAP_SLOT2,
850 SYSIO_IMAP_SLOT2, SYSIO_IMAP_SLOT2, SYSIO_IMAP_SLOT2, SYSIO_IMAP_SLOT2,
851 SYSIO_IMAP_SLOT3, SYSIO_IMAP_SLOT3, SYSIO_IMAP_SLOT3, SYSIO_IMAP_SLOT3,
852 SYSIO_IMAP_SLOT3, SYSIO_IMAP_SLOT3, SYSIO_IMAP_SLOT3, SYSIO_IMAP_SLOT3,
853
854 /* Onboard devices (not relevant/used on SunFire). */
855 SYSIO_IMAP_SCSI,
856 SYSIO_IMAP_ETH,
857 SYSIO_IMAP_BPP,
858 bogon,
859 SYSIO_IMAP_AUDIO,
860 SYSIO_IMAP_PFAIL,
861 bogon,
862 bogon,
863 SYSIO_IMAP_KMS,
864 SYSIO_IMAP_FLPY,
865 SYSIO_IMAP_SHW,
866 SYSIO_IMAP_KBD,
867 SYSIO_IMAP_MS,
868 SYSIO_IMAP_SER,
869 bogon,
870 bogon,
871 SYSIO_IMAP_TIM0,
872 SYSIO_IMAP_TIM1,
873 bogon,
874 bogon,
875 SYSIO_IMAP_UE,
876 SYSIO_IMAP_CE,
877 SYSIO_IMAP_SBERR,
878 SYSIO_IMAP_PMGMT,
879};
880
881#undef bogon
882
883#define NUM_SYSIO_OFFSETS ARRAY_SIZE(sysio_irq_offsets)
884
885/* Convert Interrupt Mapping register pointer to associated
886 * Interrupt Clear register pointer, SYSIO specific version.
887 */
888#define SYSIO_ICLR_UNUSED0 0x3400UL
889#define SYSIO_ICLR_SLOT0 0x340cUL
890#define SYSIO_ICLR_SLOT1 0x344cUL
891#define SYSIO_ICLR_SLOT2 0x348cUL
892#define SYSIO_ICLR_SLOT3 0x34ccUL
893static unsigned long sysio_imap_to_iclr(unsigned long imap)
894{
895 unsigned long diff = SYSIO_ICLR_UNUSED0 - SYSIO_IMAP_SLOT0;
896 return imap + diff;
897}
898
899static unsigned int sbus_of_build_irq(struct device_node *dp,
900 unsigned int ino,
901 void *_data)
902{
903 unsigned long reg_base = (unsigned long) _data;
904 struct linux_prom_registers *regs;
905 unsigned long imap, iclr;
906 int sbus_slot = 0;
907 int sbus_level = 0;
908
909 ino &= 0x3f;
910
911 regs = of_get_property(dp, "reg", NULL);
912 if (regs)
913 sbus_slot = regs->which_io;
914
915 if (ino < 0x20)
916 ino += (sbus_slot * 8);
917
918 imap = sysio_irq_offsets[ino];
919 if (imap == ((unsigned long)-1)) {
920 prom_printf("get_irq_translations: Bad SYSIO INO[%x]\n",
921 ino);
922 prom_halt();
923 }
924 imap += reg_base;
925
926 /* SYSIO inconsistency. For external SLOTS, we have to select
927 * the right ICLR register based upon the lower SBUS irq level
928 * bits.
929 */
930 if (ino >= 0x20) {
931 iclr = sysio_imap_to_iclr(imap);
932 } else {
933 sbus_level = ino & 0x7;
934
935 switch(sbus_slot) {
936 case 0:
937 iclr = reg_base + SYSIO_ICLR_SLOT0;
938 break;
939 case 1:
940 iclr = reg_base + SYSIO_ICLR_SLOT1;
941 break;
942 case 2:
943 iclr = reg_base + SYSIO_ICLR_SLOT2;
944 break;
945 default:
946 case 3:
947 iclr = reg_base + SYSIO_ICLR_SLOT3;
948 break;
949 };
950
951 iclr += ((unsigned long)sbus_level - 1UL) * 8UL;
952 }
953 return build_irq(sbus_level, iclr, imap);
954}
955
956static void sbus_irq_trans_init(struct device_node *dp)
957{
958 struct linux_prom64_registers *regs;
959
960 dp->irq_trans = prom_early_alloc(sizeof(struct of_irq_controller));
961 dp->irq_trans->irq_build = sbus_of_build_irq;
962
963 regs = of_get_property(dp, "reg", NULL);
964 dp->irq_trans->data = (void *) (unsigned long) regs->phys_addr;
965}
966#endif /* CONFIG_SBUS */
967
968
969static unsigned int central_build_irq(struct device_node *dp,
970 unsigned int ino,
971 void *_data)
972{
973 struct device_node *central_dp = _data;
974 struct of_device *central_op = of_find_device_by_node(central_dp);
975 struct resource *res;
976 unsigned long imap, iclr;
977 u32 tmp;
978
979 if (!strcmp(dp->name, "eeprom")) {
980 res = &central_op->resource[5];
981 } else if (!strcmp(dp->name, "zs")) {
982 res = &central_op->resource[4];
983 } else if (!strcmp(dp->name, "clock-board")) {
984 res = &central_op->resource[3];
985 } else {
986 return ino;
987 }
988
989 imap = res->start + 0x00UL;
990 iclr = res->start + 0x10UL;
991
992 /* Set the INO state to idle, and disable. */
993 upa_writel(0, iclr);
994 upa_readl(iclr);
995
996 tmp = upa_readl(imap);
997 tmp &= ~0x80000000;
998 upa_writel(tmp, imap);
999
1000 return build_irq(0, iclr, imap);
1001}
1002
1003static void central_irq_trans_init(struct device_node *dp)
1004{
1005 dp->irq_trans = prom_early_alloc(sizeof(struct of_irq_controller));
1006 dp->irq_trans->irq_build = central_build_irq;
1007
1008 dp->irq_trans->data = dp;
1009}
1010
1011struct irq_trans {
1012 const char *name;
1013 void (*init)(struct device_node *);
1014};
1015
1016#ifdef CONFIG_PCI
1017static struct irq_trans pci_irq_trans_table[] = {
1018 { "SUNW,sabre", sabre_irq_trans_init },
1019 { "pci108e,a000", sabre_irq_trans_init },
1020 { "pci108e,a001", sabre_irq_trans_init },
1021 { "SUNW,psycho", psycho_irq_trans_init },
1022 { "pci108e,8000", psycho_irq_trans_init },
1023 { "SUNW,schizo", schizo_irq_trans_init },
1024 { "pci108e,8001", schizo_irq_trans_init },
1025 { "SUNW,schizo+", schizo_irq_trans_init },
1026 { "pci108e,8002", schizo_irq_trans_init },
1027 { "SUNW,tomatillo", schizo_irq_trans_init },
1028 { "pci108e,a801", schizo_irq_trans_init },
1029 { "SUNW,sun4v-pci", pci_sun4v_irq_trans_init },
1030};
1031#endif
1032
David S. Miller6e990b52006-06-30 00:07:40 -07001033static unsigned int sun4v_vdev_irq_build(struct device_node *dp,
1034 unsigned int devino,
1035 void *_data)
1036{
1037 u32 devhandle = (u32) (unsigned long) _data;
1038
1039 return sun4v_build_irq(devhandle, devino);
1040}
1041
1042static void sun4v_vdev_irq_trans_init(struct device_node *dp)
1043{
1044 struct linux_prom64_registers *regs;
1045
1046 dp->irq_trans = prom_early_alloc(sizeof(struct of_irq_controller));
1047 dp->irq_trans->irq_build = sun4v_vdev_irq_build;
1048
1049 regs = of_get_property(dp, "reg", NULL);
1050 dp->irq_trans->data = (void *) (unsigned long)
1051 ((regs->phys_addr >> 32UL) & 0x0fffffff);
1052}
1053
David S. Miller2b1e5972006-06-29 15:07:37 -07001054static void irq_trans_init(struct device_node *dp)
1055{
1056 const char *model;
Randy Dunlap72335892006-07-05 20:18:39 -07001057#ifdef CONFIG_PCI
David S. Miller2b1e5972006-06-29 15:07:37 -07001058 int i;
Randy Dunlap72335892006-07-05 20:18:39 -07001059#endif
David S. Miller2b1e5972006-06-29 15:07:37 -07001060
1061 model = of_get_property(dp, "model", NULL);
1062 if (!model)
1063 model = of_get_property(dp, "compatible", NULL);
1064 if (!model)
1065 return;
1066
1067#ifdef CONFIG_PCI
1068 for (i = 0; i < ARRAY_SIZE(pci_irq_trans_table); i++) {
1069 struct irq_trans *t = &pci_irq_trans_table[i];
1070
1071 if (!strcmp(model, t->name))
1072 return t->init(dp);
1073 }
1074#endif
1075#ifdef CONFIG_SBUS
1076 if (!strcmp(dp->name, "sbus") ||
1077 !strcmp(dp->name, "sbi"))
1078 return sbus_irq_trans_init(dp);
1079#endif
1080 if (!strcmp(dp->name, "central"))
1081 return central_irq_trans_init(dp->child);
David S. Miller6e990b52006-06-30 00:07:40 -07001082 if (!strcmp(dp->name, "virtual-devices"))
1083 return sun4v_vdev_irq_trans_init(dp);
David S. Miller2b1e5972006-06-29 15:07:37 -07001084}
1085
David S. Miller372b07b2006-06-21 15:35:28 -07001086static int is_root_node(const struct device_node *dp)
1087{
1088 if (!dp)
1089 return 0;
1090
1091 return (dp->parent == NULL);
1092}
1093
1094/* The following routines deal with the black magic of fully naming a
1095 * node.
1096 *
1097 * Certain well known named nodes are just the simple name string.
1098 *
1099 * Actual devices have an address specifier appended to the base name
1100 * string, like this "foo@addr". The "addr" can be in any number of
1101 * formats, and the platform plus the type of the node determine the
1102 * format and how it is constructed.
1103 *
1104 * For children of the ROOT node, the naming convention is fixed and
1105 * determined by whether this is a sun4u or sun4v system.
1106 *
1107 * For children of other nodes, it is bus type specific. So
1108 * we walk up the tree until we discover a "device_type" property
1109 * we recognize and we go from there.
1110 *
1111 * As an example, the boot device on my workstation has a full path:
1112 *
1113 * /pci@1e,600000/ide@d/disk@0,0:c
1114 */
1115static void __init sun4v_path_component(struct device_node *dp, char *tmp_buf)
1116{
1117 struct linux_prom64_registers *regs;
1118 struct property *rprop;
1119 u32 high_bits, low_bits, type;
1120
1121 rprop = of_find_property(dp, "reg", NULL);
1122 if (!rprop)
1123 return;
1124
1125 regs = rprop->value;
1126 if (!is_root_node(dp->parent)) {
1127 sprintf(tmp_buf, "%s@%x,%x",
1128 dp->name,
1129 (unsigned int) (regs->phys_addr >> 32UL),
1130 (unsigned int) (regs->phys_addr & 0xffffffffUL));
1131 return;
1132 }
1133
1134 type = regs->phys_addr >> 60UL;
1135 high_bits = (regs->phys_addr >> 32UL) & 0x0fffffffUL;
1136 low_bits = (regs->phys_addr & 0xffffffffUL);
1137
1138 if (type == 0 || type == 8) {
1139 const char *prefix = (type == 0) ? "m" : "i";
1140
1141 if (low_bits)
1142 sprintf(tmp_buf, "%s@%s%x,%x",
1143 dp->name, prefix,
1144 high_bits, low_bits);
1145 else
1146 sprintf(tmp_buf, "%s@%s%x",
1147 dp->name,
1148 prefix,
1149 high_bits);
1150 } else if (type == 12) {
1151 sprintf(tmp_buf, "%s@%x",
1152 dp->name, high_bits);
1153 }
1154}
1155
1156static void __init sun4u_path_component(struct device_node *dp, char *tmp_buf)
1157{
1158 struct linux_prom64_registers *regs;
1159 struct property *prop;
1160
1161 prop = of_find_property(dp, "reg", NULL);
1162 if (!prop)
1163 return;
1164
1165 regs = prop->value;
1166 if (!is_root_node(dp->parent)) {
1167 sprintf(tmp_buf, "%s@%x,%x",
1168 dp->name,
1169 (unsigned int) (regs->phys_addr >> 32UL),
1170 (unsigned int) (regs->phys_addr & 0xffffffffUL));
1171 return;
1172 }
1173
1174 prop = of_find_property(dp, "upa-portid", NULL);
1175 if (!prop)
1176 prop = of_find_property(dp, "portid", NULL);
1177 if (prop) {
1178 unsigned long mask = 0xffffffffUL;
1179
1180 if (tlb_type >= cheetah)
1181 mask = 0x7fffff;
1182
1183 sprintf(tmp_buf, "%s@%x,%x",
1184 dp->name,
1185 *(u32 *)prop->value,
1186 (unsigned int) (regs->phys_addr & mask));
1187 }
1188}
1189
1190/* "name@slot,offset" */
1191static void __init sbus_path_component(struct device_node *dp, char *tmp_buf)
1192{
1193 struct linux_prom_registers *regs;
1194 struct property *prop;
1195
1196 prop = of_find_property(dp, "reg", NULL);
1197 if (!prop)
1198 return;
1199
1200 regs = prop->value;
1201 sprintf(tmp_buf, "%s@%x,%x",
1202 dp->name,
1203 regs->which_io,
1204 regs->phys_addr);
1205}
1206
1207/* "name@devnum[,func]" */
1208static void __init pci_path_component(struct device_node *dp, char *tmp_buf)
1209{
1210 struct linux_prom_pci_registers *regs;
1211 struct property *prop;
1212 unsigned int devfn;
1213
1214 prop = of_find_property(dp, "reg", NULL);
1215 if (!prop)
1216 return;
1217
1218 regs = prop->value;
1219 devfn = (regs->phys_hi >> 8) & 0xff;
1220 if (devfn & 0x07) {
1221 sprintf(tmp_buf, "%s@%x,%x",
1222 dp->name,
1223 devfn >> 3,
1224 devfn & 0x07);
1225 } else {
1226 sprintf(tmp_buf, "%s@%x",
1227 dp->name,
1228 devfn >> 3);
1229 }
1230}
1231
1232/* "name@UPA_PORTID,offset" */
1233static void __init upa_path_component(struct device_node *dp, char *tmp_buf)
1234{
1235 struct linux_prom64_registers *regs;
1236 struct property *prop;
1237
1238 prop = of_find_property(dp, "reg", NULL);
1239 if (!prop)
1240 return;
1241
1242 regs = prop->value;
1243
1244 prop = of_find_property(dp, "upa-portid", NULL);
1245 if (!prop)
1246 return;
1247
1248 sprintf(tmp_buf, "%s@%x,%x",
1249 dp->name,
1250 *(u32 *) prop->value,
1251 (unsigned int) (regs->phys_addr & 0xffffffffUL));
1252}
1253
1254/* "name@reg" */
1255static void __init vdev_path_component(struct device_node *dp, char *tmp_buf)
1256{
1257 struct property *prop;
1258 u32 *regs;
1259
1260 prop = of_find_property(dp, "reg", NULL);
1261 if (!prop)
1262 return;
1263
1264 regs = prop->value;
1265
1266 sprintf(tmp_buf, "%s@%x", dp->name, *regs);
1267}
1268
1269/* "name@addrhi,addrlo" */
1270static void __init ebus_path_component(struct device_node *dp, char *tmp_buf)
1271{
1272 struct linux_prom64_registers *regs;
1273 struct property *prop;
1274
1275 prop = of_find_property(dp, "reg", NULL);
1276 if (!prop)
1277 return;
1278
1279 regs = prop->value;
1280
1281 sprintf(tmp_buf, "%s@%x,%x",
1282 dp->name,
1283 (unsigned int) (regs->phys_addr >> 32UL),
1284 (unsigned int) (regs->phys_addr & 0xffffffffUL));
1285}
1286
1287/* "name@bus,addr" */
1288static void __init i2c_path_component(struct device_node *dp, char *tmp_buf)
1289{
1290 struct property *prop;
1291 u32 *regs;
1292
1293 prop = of_find_property(dp, "reg", NULL);
1294 if (!prop)
1295 return;
1296
1297 regs = prop->value;
1298
1299 /* This actually isn't right... should look at the #address-cells
1300 * property of the i2c bus node etc. etc.
1301 */
1302 sprintf(tmp_buf, "%s@%x,%x",
1303 dp->name, regs[0], regs[1]);
1304}
1305
1306/* "name@reg0[,reg1]" */
1307static void __init usb_path_component(struct device_node *dp, char *tmp_buf)
1308{
1309 struct property *prop;
1310 u32 *regs;
1311
1312 prop = of_find_property(dp, "reg", NULL);
1313 if (!prop)
1314 return;
1315
1316 regs = prop->value;
1317
1318 if (prop->length == sizeof(u32) || regs[1] == 1) {
1319 sprintf(tmp_buf, "%s@%x",
1320 dp->name, regs[0]);
1321 } else {
1322 sprintf(tmp_buf, "%s@%x,%x",
1323 dp->name, regs[0], regs[1]);
1324 }
1325}
1326
1327/* "name@reg0reg1[,reg2reg3]" */
1328static void __init ieee1394_path_component(struct device_node *dp, char *tmp_buf)
1329{
1330 struct property *prop;
1331 u32 *regs;
1332
1333 prop = of_find_property(dp, "reg", NULL);
1334 if (!prop)
1335 return;
1336
1337 regs = prop->value;
1338
1339 if (regs[2] || regs[3]) {
1340 sprintf(tmp_buf, "%s@%08x%08x,%04x%08x",
1341 dp->name, regs[0], regs[1], regs[2], regs[3]);
1342 } else {
1343 sprintf(tmp_buf, "%s@%08x%08x",
1344 dp->name, regs[0], regs[1]);
1345 }
1346}
1347
1348static void __init __build_path_component(struct device_node *dp, char *tmp_buf)
1349{
1350 struct device_node *parent = dp->parent;
1351
1352 if (parent != NULL) {
1353 if (!strcmp(parent->type, "pci") ||
1354 !strcmp(parent->type, "pciex"))
1355 return pci_path_component(dp, tmp_buf);
1356 if (!strcmp(parent->type, "sbus"))
1357 return sbus_path_component(dp, tmp_buf);
1358 if (!strcmp(parent->type, "upa"))
1359 return upa_path_component(dp, tmp_buf);
1360 if (!strcmp(parent->type, "ebus"))
1361 return ebus_path_component(dp, tmp_buf);
1362 if (!strcmp(parent->name, "usb") ||
1363 !strcmp(parent->name, "hub"))
1364 return usb_path_component(dp, tmp_buf);
1365 if (!strcmp(parent->type, "i2c"))
1366 return i2c_path_component(dp, tmp_buf);
1367 if (!strcmp(parent->type, "firewire"))
1368 return ieee1394_path_component(dp, tmp_buf);
1369 if (!strcmp(parent->type, "virtual-devices"))
1370 return vdev_path_component(dp, tmp_buf);
1371
1372 /* "isa" is handled with platform naming */
1373 }
1374
1375 /* Use platform naming convention. */
1376 if (tlb_type == hypervisor)
1377 return sun4v_path_component(dp, tmp_buf);
1378 else
1379 return sun4u_path_component(dp, tmp_buf);
1380}
1381
1382static char * __init build_path_component(struct device_node *dp)
1383{
1384 char tmp_buf[64], *n;
1385
1386 tmp_buf[0] = '\0';
1387 __build_path_component(dp, tmp_buf);
1388 if (tmp_buf[0] == '\0')
1389 strcpy(tmp_buf, dp->name);
1390
1391 n = prom_early_alloc(strlen(tmp_buf) + 1);
1392 strcpy(n, tmp_buf);
1393
1394 return n;
1395}
1396
1397static char * __init build_full_name(struct device_node *dp)
1398{
1399 int len, ourlen, plen;
1400 char *n;
1401
1402 plen = strlen(dp->parent->full_name);
1403 ourlen = strlen(dp->path_component_name);
1404 len = ourlen + plen + 2;
1405
1406 n = prom_early_alloc(len);
1407 strcpy(n, dp->parent->full_name);
1408 if (!is_root_node(dp->parent)) {
1409 strcpy(n + plen, "/");
1410 plen++;
1411 }
1412 strcpy(n + plen, dp->path_component_name);
1413
1414 return n;
1415}
1416
David S. Miller87b385d2006-06-25 23:18:57 -07001417static unsigned int unique_id;
1418
1419static struct property * __init build_one_prop(phandle node, char *prev, char *special_name, void *special_val, int special_len)
David S. Miller372b07b2006-06-21 15:35:28 -07001420{
1421 static struct property *tmp = NULL;
1422 struct property *p;
1423
1424 if (tmp) {
1425 p = tmp;
1426 memset(p, 0, sizeof(*p) + 32);
1427 tmp = NULL;
David S. Miller87b385d2006-06-25 23:18:57 -07001428 } else {
David S. Miller372b07b2006-06-21 15:35:28 -07001429 p = prom_early_alloc(sizeof(struct property) + 32);
David S. Miller87b385d2006-06-25 23:18:57 -07001430 p->unique_id = unique_id++;
1431 }
David S. Miller372b07b2006-06-21 15:35:28 -07001432
1433 p->name = (char *) (p + 1);
David S. Miller87b385d2006-06-25 23:18:57 -07001434 if (special_name) {
1435 strcpy(p->name, special_name);
1436 p->length = special_len;
1437 p->value = prom_early_alloc(special_len);
1438 memcpy(p->value, special_val, special_len);
David S. Miller372b07b2006-06-21 15:35:28 -07001439 } else {
David S. Miller87b385d2006-06-25 23:18:57 -07001440 if (prev == NULL) {
1441 prom_firstprop(node, p->name);
1442 } else {
1443 prom_nextprop(node, prev, p->name);
1444 }
1445 if (strlen(p->name) == 0) {
1446 tmp = p;
1447 return NULL;
1448 }
1449 p->length = prom_getproplen(node, p->name);
1450 if (p->length <= 0) {
1451 p->length = 0;
1452 } else {
1453 p->value = prom_early_alloc(p->length + 1);
1454 prom_getproperty(node, p->name, p->value, p->length);
1455 ((unsigned char *)p->value)[p->length] = '\0';
1456 }
David S. Miller372b07b2006-06-21 15:35:28 -07001457 }
1458 return p;
1459}
1460
1461static struct property * __init build_prop_list(phandle node)
1462{
1463 struct property *head, *tail;
1464
David S. Miller87b385d2006-06-25 23:18:57 -07001465 head = tail = build_one_prop(node, NULL,
1466 ".node", &node, sizeof(node));
1467
1468 tail->next = build_one_prop(node, NULL, NULL, NULL, 0);
1469 tail = tail->next;
David S. Miller372b07b2006-06-21 15:35:28 -07001470 while(tail) {
David S. Miller87b385d2006-06-25 23:18:57 -07001471 tail->next = build_one_prop(node, tail->name,
1472 NULL, NULL, 0);
David S. Miller372b07b2006-06-21 15:35:28 -07001473 tail = tail->next;
1474 }
1475
1476 return head;
1477}
1478
1479static char * __init get_one_property(phandle node, const char *name)
1480{
1481 char *buf = "<NULL>";
1482 int len;
1483
1484 len = prom_getproplen(node, name);
1485 if (len > 0) {
1486 buf = prom_early_alloc(len);
1487 prom_getproperty(node, name, buf, len);
1488 }
1489
1490 return buf;
1491}
1492
1493static struct device_node * __init create_node(phandle node)
1494{
1495 struct device_node *dp;
1496
1497 if (!node)
1498 return NULL;
1499
1500 dp = prom_early_alloc(sizeof(*dp));
David S. Miller87b385d2006-06-25 23:18:57 -07001501 dp->unique_id = unique_id++;
David S. Miller372b07b2006-06-21 15:35:28 -07001502
1503 kref_init(&dp->kref);
1504
1505 dp->name = get_one_property(node, "name");
1506 dp->type = get_one_property(node, "device_type");
1507 dp->node = node;
1508
David S. Miller372b07b2006-06-21 15:35:28 -07001509 dp->properties = build_prop_list(node);
1510
David S. Miller2b1e5972006-06-29 15:07:37 -07001511 irq_trans_init(dp);
1512
David S. Miller372b07b2006-06-21 15:35:28 -07001513 return dp;
1514}
1515
1516static struct device_node * __init build_tree(struct device_node *parent, phandle node, struct device_node ***nextp)
1517{
1518 struct device_node *dp;
1519
1520 dp = create_node(node);
1521 if (dp) {
1522 *(*nextp) = dp;
1523 *nextp = &dp->allnext;
1524
1525 dp->parent = parent;
1526 dp->path_component_name = build_path_component(dp);
1527 dp->full_name = build_full_name(dp);
1528
1529 dp->child = build_tree(dp, prom_getchild(node), nextp);
1530
1531 dp->sibling = build_tree(parent, prom_getsibling(node), nextp);
1532 }
1533
1534 return dp;
1535}
1536
1537void __init prom_build_devicetree(void)
1538{
1539 struct device_node **nextp;
1540
1541 allnodes = create_node(prom_root_node);
1542 allnodes->path_component_name = "";
1543 allnodes->full_name = "/";
1544
1545 nextp = &allnodes->allnext;
1546 allnodes->child = build_tree(allnodes,
1547 prom_getchild(allnodes->node),
1548 &nextp);
1549 printk("PROM: Built device tree with %u bytes of memory.\n",
1550 prom_early_allocated);
1551}