1 #include <linux/string.h>
2 #include <linux/kernel.h>
4 #include <linux/init.h>
5 #include <linux/module.h>
6 #include <linux/mod_devicetable.h>
7 #include <linux/slab.h>
8 #include <linux/errno.h>
10 #include <linux/of_device.h>
11 #include <linux/of_platform.h>
13 #include "of_device_common.h"
15 void __iomem
*of_ioremap(struct resource
*res
, unsigned long offset
, unsigned long size
, char *name
)
17 unsigned long ret
= res
->start
+ offset
;
20 if (res
->flags
& IORESOURCE_MEM
)
21 r
= request_mem_region(ret
, size
, name
);
23 r
= request_region(ret
, size
, name
);
27 return (void __iomem
*) ret
;
29 EXPORT_SYMBOL(of_ioremap
);
31 void of_iounmap(struct resource
*res
, void __iomem
*base
, unsigned long size
)
33 if (res
->flags
& IORESOURCE_MEM
)
34 release_mem_region((unsigned long) base
, size
);
36 release_region((unsigned long) base
, size
);
38 EXPORT_SYMBOL(of_iounmap
);
41 * PCI bus specific translator
44 static int of_bus_pci_match(struct device_node
*np
)
46 if (!strcmp(np
->name
, "pci")) {
47 const char *model
= of_get_property(np
, "model", NULL
);
49 if (model
&& !strcmp(model
, "SUNW,simba"))
52 /* Do not do PCI specific frobbing if the
53 * PCI bridge lacks a ranges property. We
54 * want to pass it through up to the next
55 * parent as-is, not with the PCI translate
56 * method which chops off the top address cell.
58 if (!of_find_property(np
, "ranges", NULL
))
67 static int of_bus_simba_match(struct device_node
*np
)
69 const char *model
= of_get_property(np
, "model", NULL
);
71 if (model
&& !strcmp(model
, "SUNW,simba"))
74 /* Treat PCI busses lacking ranges property just like
77 if (!strcmp(np
->name
, "pci")) {
78 if (!of_find_property(np
, "ranges", NULL
))
85 static int of_bus_simba_map(u32
*addr
, const u32
*range
,
86 int na
, int ns
, int pna
)
91 static void of_bus_pci_count_cells(struct device_node
*np
,
92 int *addrc
, int *sizec
)
100 static int of_bus_pci_map(u32
*addr
, const u32
*range
,
101 int na
, int ns
, int pna
)
103 u32 result
[OF_MAX_ADDR_CELLS
];
106 /* Check address type match */
107 if ((addr
[0] ^ range
[0]) & 0x03000000)
110 if (of_out_of_range(addr
+ 1, range
+ 1, range
+ na
+ pna
,
114 /* Start with the parent range base. */
115 memcpy(result
, range
+ na
, pna
* 4);
117 /* Add in the child address offset, skipping high cell. */
118 for (i
= 0; i
< na
- 1; i
++)
119 result
[pna
- 1 - i
] +=
123 memcpy(addr
, result
, pna
* 4);
128 static unsigned long of_bus_pci_get_flags(const u32
*addr
, unsigned long flags
)
132 /* For PCI, we override whatever child busses may have used. */
134 switch((w
>> 24) & 0x03) {
136 flags
|= IORESOURCE_IO
;
139 case 0x02: /* 32 bits */
140 case 0x03: /* 64 bits */
141 flags
|= IORESOURCE_MEM
;
145 flags
|= IORESOURCE_PREFETCH
;
150 * FHC/Central bus specific translator.
152 * This is just needed to hard-code the address and size cell
153 * counts. 'fhc' and 'central' nodes lack the #address-cells and
154 * #size-cells properties, and if you walk to the root on such
155 * Enterprise boxes all you'll get is a #size-cells of 2 which is
156 * not what we want to use.
158 static int of_bus_fhc_match(struct device_node
*np
)
160 return !strcmp(np
->name
, "fhc") ||
161 !strcmp(np
->name
, "central");
164 #define of_bus_fhc_count_cells of_bus_sbus_count_cells
167 * Array of bus specific translators
170 static struct of_bus of_busses
[] = {
174 .addr_prop_name
= "assigned-addresses",
175 .match
= of_bus_pci_match
,
176 .count_cells
= of_bus_pci_count_cells
,
177 .map
= of_bus_pci_map
,
178 .get_flags
= of_bus_pci_get_flags
,
183 .addr_prop_name
= "assigned-addresses",
184 .match
= of_bus_simba_match
,
185 .count_cells
= of_bus_pci_count_cells
,
186 .map
= of_bus_simba_map
,
187 .get_flags
= of_bus_pci_get_flags
,
192 .addr_prop_name
= "reg",
193 .match
= of_bus_sbus_match
,
194 .count_cells
= of_bus_sbus_count_cells
,
195 .map
= of_bus_default_map
,
196 .get_flags
= of_bus_default_get_flags
,
201 .addr_prop_name
= "reg",
202 .match
= of_bus_fhc_match
,
203 .count_cells
= of_bus_fhc_count_cells
,
204 .map
= of_bus_default_map
,
205 .get_flags
= of_bus_default_get_flags
,
210 .addr_prop_name
= "reg",
212 .count_cells
= of_bus_default_count_cells
,
213 .map
= of_bus_default_map
,
214 .get_flags
= of_bus_default_get_flags
,
218 static struct of_bus
*of_match_bus(struct device_node
*np
)
222 for (i
= 0; i
< ARRAY_SIZE(of_busses
); i
++)
223 if (!of_busses
[i
].match
|| of_busses
[i
].match(np
))
224 return &of_busses
[i
];
229 static int __init
build_one_resource(struct device_node
*parent
,
233 int na
, int ns
, int pna
)
238 ranges
= of_get_property(parent
, "ranges", &rlen
);
239 if (ranges
== NULL
|| rlen
== 0) {
240 u32 result
[OF_MAX_ADDR_CELLS
];
243 memset(result
, 0, pna
* 4);
244 for (i
= 0; i
< na
; i
++)
245 result
[pna
- 1 - i
] =
248 memcpy(addr
, result
, pna
* 4);
252 /* Now walk through the ranges */
254 rone
= na
+ pna
+ ns
;
255 for (; rlen
>= rone
; rlen
-= rone
, ranges
+= rone
) {
256 if (!bus
->map(addr
, ranges
, na
, ns
, pna
))
260 /* When we miss an I/O space match on PCI, just pass it up
261 * to the next PCI bridge and/or controller.
263 if (!strcmp(bus
->name
, "pci") &&
264 (addr
[0] & 0x03000000) == 0x01000000)
270 static int __init
use_1to1_mapping(struct device_node
*pp
)
272 /* If we have a ranges property in the parent, use it. */
273 if (of_find_property(pp
, "ranges", NULL
) != NULL
)
276 /* If the parent is the dma node of an ISA bus, pass
277 * the translation up to the root.
279 * Some SBUS devices use intermediate nodes to express
280 * hierarchy within the device itself. These aren't
281 * real bus nodes, and don't have a 'ranges' property.
282 * But, we should still pass the translation work up
283 * to the SBUS itself.
285 if (!strcmp(pp
->name
, "dma") ||
286 !strcmp(pp
->name
, "espdma") ||
287 !strcmp(pp
->name
, "ledma") ||
288 !strcmp(pp
->name
, "lebuffer"))
291 /* Similarly for all PCI bridges, if we get this far
292 * it lacks a ranges property, and this will include
295 if (!strcmp(pp
->name
, "pci"))
301 static int of_resource_verbose
;
303 static void __init
build_device_resources(struct of_device
*op
,
304 struct device
*parent
)
306 struct of_device
*p_op
;
315 p_op
= to_of_device(parent
);
316 bus
= of_match_bus(p_op
->node
);
317 bus
->count_cells(op
->node
, &na
, &ns
);
319 preg
= of_get_property(op
->node
, bus
->addr_prop_name
, &num_reg
);
320 if (!preg
|| num_reg
== 0)
323 /* Convert to num-cells. */
326 /* Convert to num-entries. */
329 /* Prevent overrunning the op->resources[] array. */
330 if (num_reg
> PROMREG_MAX
) {
331 printk(KERN_WARNING
"%s: Too many regs (%d), "
333 op
->node
->full_name
, num_reg
, PROMREG_MAX
);
334 num_reg
= PROMREG_MAX
;
337 for (index
= 0; index
< num_reg
; index
++) {
338 struct resource
*r
= &op
->resource
[index
];
339 u32 addr
[OF_MAX_ADDR_CELLS
];
340 const u32
*reg
= (preg
+ (index
* ((na
+ ns
) * 4)));
341 struct device_node
*dp
= op
->node
;
342 struct device_node
*pp
= p_op
->node
;
343 struct of_bus
*pbus
, *dbus
;
344 u64 size
, result
= OF_BAD_ADDR
;
349 size
= of_read_addr(reg
+ na
, ns
);
350 memcpy(addr
, reg
, na
* 4);
352 flags
= bus
->get_flags(addr
, 0);
354 if (use_1to1_mapping(pp
)) {
355 result
= of_read_addr(addr
, na
);
367 result
= of_read_addr(addr
, dna
);
371 pbus
= of_match_bus(pp
);
372 pbus
->count_cells(dp
, &pna
, &pns
);
374 if (build_one_resource(dp
, dbus
, pbus
, addr
,
378 flags
= pbus
->get_flags(addr
, flags
);
386 memset(r
, 0, sizeof(*r
));
388 if (of_resource_verbose
)
389 printk("%s reg[%d] -> %llx\n",
390 op
->node
->full_name
, index
,
393 if (result
!= OF_BAD_ADDR
) {
394 if (tlb_type
== hypervisor
)
395 result
&= 0x0fffffffffffffffUL
;
398 r
->end
= result
+ size
- 1;
401 r
->name
= op
->node
->name
;
405 static struct device_node
* __init
406 apply_interrupt_map(struct device_node
*dp
, struct device_node
*pp
,
407 const u32
*imap
, int imlen
, const u32
*imask
,
410 struct device_node
*cp
;
411 unsigned int irq
= *irq_p
;
417 bus
= of_match_bus(pp
);
418 bus
->count_cells(dp
, &na
, NULL
);
420 reg
= of_get_property(dp
, "reg", &num_reg
);
421 if (!reg
|| !num_reg
)
424 imlen
/= ((na
+ 3) * 4);
426 for (i
= 0; i
< imlen
; i
++) {
429 for (j
= 0; j
< na
; j
++) {
430 if ((reg
[j
] & imask
[j
]) != imap
[j
])
433 if (imap
[na
] == irq
) {
434 handle
= imap
[na
+ 1];
443 /* Psycho and Sabre PCI controllers can have 'interrupt-map'
444 * properties that do not include the on-board device
445 * interrupts. Instead, the device's 'interrupts' property
446 * is already a fully specified INO value.
448 * Handle this by deciding that, if we didn't get a
449 * match in the parent's 'interrupt-map', and the
450 * parent is an IRQ translater, then use the parent as
451 * our IRQ controller.
460 cp
= of_find_node_by_phandle(handle
);
465 static unsigned int __init
pci_irq_swizzle(struct device_node
*dp
,
466 struct device_node
*pp
,
469 const struct linux_prom_pci_registers
*regs
;
470 unsigned int bus
, devfn
, slot
, ret
;
472 if (irq
< 1 || irq
> 4)
475 regs
= of_get_property(dp
, "reg", NULL
);
479 bus
= (regs
->phys_hi
>> 16) & 0xff;
480 devfn
= (regs
->phys_hi
>> 8) & 0xff;
481 slot
= (devfn
>> 3) & 0x1f;
484 /* Derived from Table 8-3, U2P User's Manual. This branch
485 * is handling a PCI controller that lacks a proper set of
486 * interrupt-map and interrupt-map-mask properties. The
487 * Ultra-E450 is one example.
489 * The bit layout is BSSLL, where:
490 * B: 0 on bus A, 1 on bus B
491 * D: 2-bit slot number, derived from PCI device number as
492 * (dev - 1) for bus A, or (dev - 2) for bus B
493 * L: 2-bit line number
498 slot
= (slot
- 1) << 2;
502 slot
= (slot
- 2) << 2;
506 ret
= (bus
| slot
| irq
);
508 /* Going through a PCI-PCI bridge that lacks a set of
509 * interrupt-map and interrupt-map-mask properties.
511 ret
= ((irq
- 1 + (slot
& 3)) & 3) + 1;
517 static int of_irq_verbose
;
519 static unsigned int __init
build_one_device_irq(struct of_device
*op
,
520 struct device
*parent
,
523 struct device_node
*dp
= op
->node
;
524 struct device_node
*pp
, *ip
;
525 unsigned int orig_irq
= irq
;
528 if (irq
== 0xffffffff)
532 irq
= dp
->irq_trans
->irq_build(dp
, irq
,
533 dp
->irq_trans
->data
);
536 printk("%s: direct translate %x --> %x\n",
537 dp
->full_name
, orig_irq
, irq
);
542 /* Something more complicated. Walk up to the root, applying
543 * interrupt-map or bus specific translations, until we hit
546 * If we hit a bus type or situation we cannot handle, we
547 * stop and assume that the original IRQ number was in a
548 * format which has special meaning to it's immediate parent.
553 const void *imap
, *imsk
;
556 imap
= of_get_property(pp
, "interrupt-map", &imlen
);
557 imsk
= of_get_property(pp
, "interrupt-map-mask", NULL
);
559 struct device_node
*iret
;
560 int this_orig_irq
= irq
;
562 iret
= apply_interrupt_map(dp
, pp
,
567 printk("%s: Apply [%s:%x] imap --> [%s:%x]\n",
569 pp
->full_name
, this_orig_irq
,
570 (iret
? iret
->full_name
: "NULL"), irq
);
575 if (iret
->irq_trans
) {
580 if (!strcmp(pp
->name
, "pci")) {
581 unsigned int this_orig_irq
= irq
;
583 irq
= pci_irq_swizzle(dp
, pp
, irq
);
585 printk("%s: PCI swizzle [%s] "
588 pp
->full_name
, this_orig_irq
,
604 irq
= ip
->irq_trans
->irq_build(op
->node
, irq
,
605 ip
->irq_trans
->data
);
607 printk("%s: Apply IRQ trans [%s] %x --> %x\n",
608 op
->node
->full_name
, ip
->full_name
, orig_irq
, irq
);
611 nid
= of_node_to_nid(dp
);
613 cpumask_t numa_mask
= *cpumask_of_node(nid
);
615 irq_set_affinity(irq
, &numa_mask
);
621 static struct of_device
* __init
scan_one_device(struct device_node
*dp
,
622 struct device
*parent
)
624 struct of_device
*op
= kzalloc(sizeof(*op
), GFP_KERNEL
);
625 const unsigned int *irq
;
626 struct dev_archdata
*sd
;
632 sd
= &op
->dev
.archdata
;
638 op
->clock_freq
= of_getintprop_default(dp
, "clock-frequency",
640 op
->portid
= of_getintprop_default(dp
, "upa-portid", -1);
641 if (op
->portid
== -1)
642 op
->portid
= of_getintprop_default(dp
, "portid", -1);
644 irq
= of_get_property(dp
, "interrupts", &len
);
646 op
->num_irqs
= len
/ 4;
648 /* Prevent overrunning the op->irqs[] array. */
649 if (op
->num_irqs
> PROMINTR_MAX
) {
650 printk(KERN_WARNING
"%s: Too many irqs (%d), "
652 dp
->full_name
, op
->num_irqs
, PROMINTR_MAX
);
653 op
->num_irqs
= PROMINTR_MAX
;
655 memcpy(op
->irqs
, irq
, op
->num_irqs
* 4);
660 build_device_resources(op
, parent
);
661 for (i
= 0; i
< op
->num_irqs
; i
++)
662 op
->irqs
[i
] = build_one_device_irq(op
, parent
, op
->irqs
[i
]);
664 op
->dev
.parent
= parent
;
665 op
->dev
.bus
= &of_platform_bus_type
;
667 dev_set_name(&op
->dev
, "root");
669 dev_set_name(&op
->dev
, "%08x", dp
->node
);
671 if (of_device_register(op
)) {
672 printk("%s: Could not register of device.\n",
681 static void __init
scan_tree(struct device_node
*dp
, struct device
*parent
)
684 struct of_device
*op
= scan_one_device(dp
, parent
);
687 scan_tree(dp
->child
, &op
->dev
);
693 static void __init
scan_of_devices(void)
695 struct device_node
*root
= of_find_node_by_path("/");
696 struct of_device
*parent
;
698 parent
= scan_one_device(root
, NULL
);
702 scan_tree(root
->child
, &parent
->dev
);
705 static int __init
of_bus_driver_init(void)
709 err
= of_bus_type_init(&of_platform_bus_type
, "of");
716 postcore_initcall(of_bus_driver_init
);
718 static int __init
of_debug(char *str
)
722 get_option(&str
, &val
);
724 of_resource_verbose
= 1;
730 __setup("of_debug=", of_debug
);