2 * Procedures for interfacing to Open Firmware.
4 * Paul Mackerras August 1996.
5 * Copyright (C) 1996-2005 Paul Mackerras.
7 * Adapted for 64bit PowerPC by Dave Engebretsen and Peter Bergner.
8 * {engebret|bergner}@us.ibm.com
10 * This program is free software; you can redistribute it and/or
11 * modify it under the terms of the GNU General Public License
12 * as published by the Free Software Foundation; either version
13 * 2 of the License, or (at your option) any later version.
19 #include <linux/kernel.h>
20 #include <linux/string.h>
21 #include <linux/init.h>
22 #include <linux/threads.h>
23 #include <linux/spinlock.h>
24 #include <linux/types.h>
25 #include <linux/pci.h>
26 #include <linux/proc_fs.h>
27 #include <linux/stringify.h>
28 #include <linux/delay.h>
29 #include <linux/initrd.h>
30 #include <linux/bitops.h>
34 #include <asm/processor.h>
38 #include <asm/system.h>
40 #include <asm/pgtable.h>
42 #include <asm/iommu.h>
43 #include <asm/btext.h>
44 #include <asm/sections.h>
45 #include <asm/machdep.h>
47 #include <linux/linux_logo.h>
50 * Properties whose value is longer than this get excluded from our
51 * copy of the device tree. This value does need to be big enough to
52 * ensure that we don't lose things like the interrupt-map property
53 * on a PCI-PCI bridge.
55 #define MAX_PROPERTY_LENGTH (1UL * 1024 * 1024)
58 * Eventually bump that one up
60 #define DEVTREE_CHUNK_SIZE 0x100000
63 * This is the size of the local memory reserve map that gets copied
64 * into the boot params passed to the kernel. That size is totally
65 * flexible as the kernel just reads the list until it encounters an
66 * entry with size 0, so it can be changed without breaking binary
69 #define MEM_RESERVE_MAP_SIZE 8
72 * prom_init() is called very early on, before the kernel text
73 * and data have been mapped to KERNELBASE. At this point the code
74 * is running at whatever address it has been loaded at.
75 * On ppc32 we compile with -mrelocatable, which means that references
76 * to extern and static variables get relocated automatically.
77 * On ppc64 we have to relocate the references explicitly with
78 * RELOC. (Note that strings count as static variables.)
80 * Because OF may have mapped I/O devices into the area starting at
81 * KERNELBASE, particularly on CHRP machines, we can't safely call
82 * OF once the kernel has been mapped to KERNELBASE. Therefore all
83 * OF calls must be done within prom_init().
85 * ADDR is used in calls to call_prom. The 4th and following
86 * arguments to call_prom should be 32-bit values.
87 * On ppc64, 64 bit values are truncated to 32 bits (and
88 * fortunately don't get interpreted as two arguments).
91 #define RELOC(x) (*PTRRELOC(&(x)))
92 #define ADDR(x) (u32) add_reloc_offset((unsigned long)(x))
93 #define OF_WORKAROUNDS 0
96 #define ADDR(x) (u32) (x)
97 #define OF_WORKAROUNDS of_workarounds
101 #define OF_WA_CLAIM 1 /* do phys/virt claim separately, then map */
102 #define OF_WA_LONGTRAIL 2 /* work around longtrail bugs */
104 #define PROM_BUG() do { \
105 prom_printf("kernel BUG at %s line 0x%x!\n", \
106 RELOC(__FILE__), __LINE__); \
107 __asm__ __volatile__(".long " BUG_ILLEGAL_INSTR); \
111 #define prom_debug(x...) prom_printf(x)
113 #define prom_debug(x...)
117 typedef u32 prom_arg_t
;
135 struct mem_map_entry
{
142 extern void __start(unsigned long r3
, unsigned long r4
, unsigned long r5
);
145 extern int enter_prom(struct prom_args
*args
, unsigned long entry
);
147 static inline int enter_prom(struct prom_args
*args
, unsigned long entry
)
149 return ((int (*)(struct prom_args
*))entry
)(args
);
153 extern void copy_and_flush(unsigned long dest
, unsigned long src
,
154 unsigned long size
, unsigned long offset
);
157 static struct prom_t __initdata prom
;
159 static unsigned long prom_entry __initdata
;
161 #define PROM_SCRATCH_SIZE 256
163 static char __initdata of_stdout_device
[256];
164 static char __initdata prom_scratch
[PROM_SCRATCH_SIZE
];
166 static unsigned long __initdata dt_header_start
;
167 static unsigned long __initdata dt_struct_start
, dt_struct_end
;
168 static unsigned long __initdata dt_string_start
, dt_string_end
;
170 static unsigned long __initdata prom_initrd_start
, prom_initrd_end
;
173 static int __initdata prom_iommu_force_on
;
174 static int __initdata prom_iommu_off
;
175 static unsigned long __initdata prom_tce_alloc_start
;
176 static unsigned long __initdata prom_tce_alloc_end
;
179 /* Platforms codes are now obsolete in the kernel. Now only used within this
180 * file and ultimately gone too. Feel free to change them if you need, they
181 * are not shared with anything outside of this file anymore
183 #define PLATFORM_PSERIES 0x0100
184 #define PLATFORM_PSERIES_LPAR 0x0101
185 #define PLATFORM_LPAR 0x0001
186 #define PLATFORM_POWERMAC 0x0400
187 #define PLATFORM_GENERIC 0x0500
189 static int __initdata of_platform
;
191 static char __initdata prom_cmd_line
[COMMAND_LINE_SIZE
];
193 static unsigned long __initdata prom_memory_limit
;
195 static unsigned long __initdata alloc_top
;
196 static unsigned long __initdata alloc_top_high
;
197 static unsigned long __initdata alloc_bottom
;
198 static unsigned long __initdata rmo_top
;
199 static unsigned long __initdata ram_top
;
201 static struct mem_map_entry __initdata mem_reserve_map
[MEM_RESERVE_MAP_SIZE
];
202 static int __initdata mem_reserve_cnt
;
204 static cell_t __initdata regbuf
[1024];
208 * Error results ... some OF calls will return "-1" on error, some
209 * will return 0, some will return either. To simplify, here are
210 * macros to use with any ihandle or phandle return value to check if
214 #define PROM_ERROR (-1u)
215 #define PHANDLE_VALID(p) ((p) != 0 && (p) != PROM_ERROR)
216 #define IHANDLE_VALID(i) ((i) != 0 && (i) != PROM_ERROR)
219 /* This is the one and *ONLY* place where we actually call open
223 static int __init
call_prom(const char *service
, int nargs
, int nret
, ...)
226 struct prom_args args
;
229 args
.service
= ADDR(service
);
233 va_start(list
, nret
);
234 for (i
= 0; i
< nargs
; i
++)
235 args
.args
[i
] = va_arg(list
, prom_arg_t
);
238 for (i
= 0; i
< nret
; i
++)
239 args
.args
[nargs
+i
] = 0;
241 if (enter_prom(&args
, RELOC(prom_entry
)) < 0)
244 return (nret
> 0) ? args
.args
[nargs
] : 0;
247 static int __init
call_prom_ret(const char *service
, int nargs
, int nret
,
248 prom_arg_t
*rets
, ...)
251 struct prom_args args
;
254 args
.service
= ADDR(service
);
258 va_start(list
, rets
);
259 for (i
= 0; i
< nargs
; i
++)
260 args
.args
[i
] = va_arg(list
, prom_arg_t
);
263 for (i
= 0; i
< nret
; i
++)
264 args
.args
[nargs
+i
] = 0;
266 if (enter_prom(&args
, RELOC(prom_entry
)) < 0)
270 for (i
= 1; i
< nret
; ++i
)
271 rets
[i
-1] = args
.args
[nargs
+i
];
273 return (nret
> 0) ? args
.args
[nargs
] : 0;
277 static void __init
prom_print(const char *msg
)
280 struct prom_t
*_prom
= &RELOC(prom
);
282 if (_prom
->stdout
== 0)
285 for (p
= msg
; *p
!= 0; p
= q
) {
286 for (q
= p
; *q
!= 0 && *q
!= '\n'; ++q
)
289 call_prom("write", 3, 1, _prom
->stdout
, p
, q
- p
);
293 call_prom("write", 3, 1, _prom
->stdout
, ADDR("\r\n"), 2);
298 static void __init
prom_print_hex(unsigned long val
)
300 int i
, nibbles
= sizeof(val
)*2;
301 char buf
[sizeof(val
)*2+1];
302 struct prom_t
*_prom
= &RELOC(prom
);
304 for (i
= nibbles
-1; i
>= 0; i
--) {
305 buf
[i
] = (val
& 0xf) + '0';
307 buf
[i
] += ('a'-'0'-10);
311 call_prom("write", 3, 1, _prom
->stdout
, buf
, nibbles
);
315 static void __init
prom_printf(const char *format
, ...)
317 const char *p
, *q
, *s
;
320 struct prom_t
*_prom
= &RELOC(prom
);
322 va_start(args
, format
);
324 format
= PTRRELOC(format
);
326 for (p
= format
; *p
!= 0; p
= q
) {
327 for (q
= p
; *q
!= 0 && *q
!= '\n' && *q
!= '%'; ++q
)
330 call_prom("write", 3, 1, _prom
->stdout
, p
, q
- p
);
335 call_prom("write", 3, 1, _prom
->stdout
,
345 s
= va_arg(args
, const char *);
350 v
= va_arg(args
, unsigned long);
358 static unsigned int __init
prom_claim(unsigned long virt
, unsigned long size
,
361 struct prom_t
*_prom
= &RELOC(prom
);
363 if (align
== 0 && (OF_WORKAROUNDS
& OF_WA_CLAIM
)) {
365 * Old OF requires we claim physical and virtual separately
366 * and then map explicitly (assuming virtual mode)
371 ret
= call_prom_ret("call-method", 5, 2, &result
,
372 ADDR("claim"), _prom
->memory
,
374 if (ret
!= 0 || result
== -1)
376 ret
= call_prom_ret("call-method", 5, 2, &result
,
377 ADDR("claim"), _prom
->mmumap
,
380 call_prom("call-method", 4, 1, ADDR("release"),
381 _prom
->memory
, size
, virt
);
384 /* the 0x12 is M (coherence) + PP == read/write */
385 call_prom("call-method", 6, 1,
386 ADDR("map"), _prom
->mmumap
, 0x12, size
, virt
, virt
);
389 return call_prom("claim", 3, 1, (prom_arg_t
)virt
, (prom_arg_t
)size
,
393 static void __init
__attribute__((noreturn
)) prom_panic(const char *reason
)
396 reason
= PTRRELOC(reason
);
399 /* Do not call exit because it clears the screen on pmac
400 * it also causes some sort of double-fault on early pmacs */
401 if (RELOC(of_platform
) == PLATFORM_POWERMAC
)
404 /* ToDo: should put up an SRC here on p/iSeries */
405 call_prom("exit", 0, 0);
407 for (;;) /* should never get here */
412 static int __init
prom_next_node(phandle
*nodep
)
416 if ((node
= *nodep
) != 0
417 && (*nodep
= call_prom("child", 1, 1, node
)) != 0)
419 if ((*nodep
= call_prom("peer", 1, 1, node
)) != 0)
422 if ((node
= call_prom("parent", 1, 1, node
)) == 0)
424 if ((*nodep
= call_prom("peer", 1, 1, node
)) != 0)
429 static int inline prom_getprop(phandle node
, const char *pname
,
430 void *value
, size_t valuelen
)
432 return call_prom("getprop", 4, 1, node
, ADDR(pname
),
433 (u32
)(unsigned long) value
, (u32
) valuelen
);
436 static int inline prom_getproplen(phandle node
, const char *pname
)
438 return call_prom("getproplen", 2, 1, node
, ADDR(pname
));
441 static void add_string(char **str
, const char *q
)
451 static char *tohex(unsigned int x
)
453 static char digits
[] = "0123456789abcdef";
454 static char result
[9];
461 result
[i
] = digits
[x
& 0xf];
463 } while (x
!= 0 && i
> 0);
467 static int __init
prom_setprop(phandle node
, const char *nodename
,
468 const char *pname
, void *value
, size_t valuelen
)
472 if (!(OF_WORKAROUNDS
& OF_WA_LONGTRAIL
))
473 return call_prom("setprop", 4, 1, node
, ADDR(pname
),
474 (u32
)(unsigned long) value
, (u32
) valuelen
);
476 /* gah... setprop doesn't work on longtrail, have to use interpret */
478 add_string(&p
, "dev");
479 add_string(&p
, nodename
);
480 add_string(&p
, tohex((u32
)(unsigned long) value
));
481 add_string(&p
, tohex(valuelen
));
482 add_string(&p
, tohex(ADDR(pname
)));
483 add_string(&p
, tohex(strlen(RELOC(pname
))));
484 add_string(&p
, "property");
486 return call_prom("interpret", 1, 1, (u32
)(unsigned long) cmd
);
489 /* We can't use the standard versions because of RELOC headaches. */
490 #define isxdigit(c) (('0' <= (c) && (c) <= '9') \
491 || ('a' <= (c) && (c) <= 'f') \
492 || ('A' <= (c) && (c) <= 'F'))
494 #define isdigit(c) ('0' <= (c) && (c) <= '9')
495 #define islower(c) ('a' <= (c) && (c) <= 'z')
496 #define toupper(c) (islower(c) ? ((c) - 'a' + 'A') : (c))
498 unsigned long prom_strtoul(const char *cp
, const char **endp
)
500 unsigned long result
= 0, base
= 10, value
;
505 if (toupper(*cp
) == 'X') {
511 while (isxdigit(*cp
) &&
512 (value
= isdigit(*cp
) ? *cp
- '0' : toupper(*cp
) - 'A' + 10) < base
) {
513 result
= result
* base
+ value
;
523 unsigned long prom_memparse(const char *ptr
, const char **retptr
)
525 unsigned long ret
= prom_strtoul(ptr
, retptr
);
529 * We can't use a switch here because GCC *may* generate a
530 * jump table which won't work, because we're not running at
531 * the address we're linked at.
533 if ('G' == **retptr
|| 'g' == **retptr
)
536 if ('M' == **retptr
|| 'm' == **retptr
)
539 if ('K' == **retptr
|| 'k' == **retptr
)
551 * Early parsing of the command line passed to the kernel, used for
552 * "mem=x" and the options that affect the iommu
554 static void __init
early_cmdline_parse(void)
556 struct prom_t
*_prom
= &RELOC(prom
);
562 RELOC(prom_cmd_line
[0]) = 0;
563 p
= RELOC(prom_cmd_line
);
564 if ((long)_prom
->chosen
> 0)
565 l
= prom_getprop(_prom
->chosen
, "bootargs", p
, COMMAND_LINE_SIZE
-1);
566 #ifdef CONFIG_CMDLINE
567 if (l
<= 0 || p
[0] == '\0') /* dbl check */
568 strlcpy(RELOC(prom_cmd_line
),
569 RELOC(CONFIG_CMDLINE
), sizeof(prom_cmd_line
));
570 #endif /* CONFIG_CMDLINE */
571 prom_printf("command line: %s\n", RELOC(prom_cmd_line
));
574 opt
= strstr(RELOC(prom_cmd_line
), RELOC("iommu="));
576 prom_printf("iommu opt is: %s\n", opt
);
578 while (*opt
&& *opt
== ' ')
580 if (!strncmp(opt
, RELOC("off"), 3))
581 RELOC(prom_iommu_off
) = 1;
582 else if (!strncmp(opt
, RELOC("force"), 5))
583 RELOC(prom_iommu_force_on
) = 1;
586 opt
= strstr(RELOC(prom_cmd_line
), RELOC("mem="));
589 RELOC(prom_memory_limit
) = prom_memparse(opt
, (const char **)&opt
);
591 /* Align to 16 MB == size of ppc64 large page */
592 RELOC(prom_memory_limit
) = ALIGN(RELOC(prom_memory_limit
), 0x1000000);
597 #ifdef CONFIG_PPC_PSERIES
599 * There are two methods for telling firmware what our capabilities are.
600 * Newer machines have an "ibm,client-architecture-support" method on the
601 * root node. For older machines, we have to call the "process-elf-header"
602 * method in the /packages/elf-loader node, passing it a fake 32-bit
603 * ELF header containing a couple of PT_NOTE sections that contain
604 * structures that contain various information.
608 * New method - extensible architecture description vector.
610 * Because the description vector contains a mix of byte and word
611 * values, we declare it as an unsigned char array, and use this
612 * macro to put word values in.
614 #define W(x) ((x) >> 24) & 0xff, ((x) >> 16) & 0xff, \
615 ((x) >> 8) & 0xff, (x) & 0xff
617 /* Option vector bits - generic bits in byte 1 */
618 #define OV_IGNORE 0x80 /* ignore this vector */
619 #define OV_CESSATION_POLICY 0x40 /* halt if unsupported option present*/
621 /* Option vector 1: processor architectures supported */
622 #define OV1_PPC_2_00 0x80 /* set if we support PowerPC 2.00 */
623 #define OV1_PPC_2_01 0x40 /* set if we support PowerPC 2.01 */
624 #define OV1_PPC_2_02 0x20 /* set if we support PowerPC 2.02 */
625 #define OV1_PPC_2_03 0x10 /* set if we support PowerPC 2.03 */
626 #define OV1_PPC_2_04 0x08 /* set if we support PowerPC 2.04 */
627 #define OV1_PPC_2_05 0x04 /* set if we support PowerPC 2.05 */
628 #define OV1_PPC_2_06 0x02 /* set if we support PowerPC 2.06 */
630 /* Option vector 2: Open Firmware options supported */
631 #define OV2_REAL_MODE 0x20 /* set if we want OF in real mode */
633 /* Option vector 3: processor options supported */
634 #define OV3_FP 0x80 /* floating point */
635 #define OV3_VMX 0x40 /* VMX/Altivec */
636 #define OV3_DFP 0x20 /* decimal FP */
638 /* Option vector 5: PAPR/OF options supported */
639 #define OV5_LPAR 0x80 /* logical partitioning supported */
640 #define OV5_SPLPAR 0x40 /* shared-processor LPAR supported */
641 /* ibm,dynamic-reconfiguration-memory property supported */
642 #define OV5_DRCONF_MEMORY 0x20
643 #define OV5_LARGE_PAGES 0x10 /* large pages supported */
644 #define OV5_DONATE_DEDICATE_CPU 0x02 /* donate dedicated CPU support */
645 /* PCIe/MSI support. Without MSI full PCIe is not supported */
646 #ifdef CONFIG_PCI_MSI
647 #define OV5_MSI 0x01 /* PCIe/MSI support */
650 #endif /* CONFIG_PCI_MSI */
651 #ifdef CONFIG_PPC_SMLPAR
652 #define OV5_CMO 0x80 /* Cooperative Memory Overcommitment */
656 #define OV5_TYPE1_AFFINITY 0x80 /* Type 1 NUMA affinity */
658 /* Option Vector 6: IBM PAPR hints */
659 #define OV6_LINUX 0x02 /* Linux is our OS */
662 * The architecture vector has an array of PVR mask/value pairs,
663 * followed by # option vectors - 1, followed by the option vectors.
665 static unsigned char ibm_architecture_vec
[] = {
666 W(0xfffe0000), W(0x003a0000), /* POWER5/POWER5+ */
667 W(0xffff0000), W(0x003e0000), /* POWER6 */
668 W(0xffff0000), W(0x003f0000), /* POWER7 */
669 W(0xffffffff), W(0x0f000003), /* all 2.06-compliant */
670 W(0xffffffff), W(0x0f000002), /* all 2.05-compliant */
671 W(0xfffffffe), W(0x0f000001), /* all 2.04-compliant and earlier */
672 6 - 1, /* 6 option vectors */
674 /* option vector 1: processor architectures supported */
676 0, /* don't ignore, don't halt */
677 OV1_PPC_2_00
| OV1_PPC_2_01
| OV1_PPC_2_02
| OV1_PPC_2_03
|
678 OV1_PPC_2_04
| OV1_PPC_2_05
| OV1_PPC_2_06
,
680 /* option vector 2: Open Firmware options supported */
684 W(0xffffffff), /* real_base */
685 W(0xffffffff), /* real_size */
686 W(0xffffffff), /* virt_base */
687 W(0xffffffff), /* virt_size */
688 W(0xffffffff), /* load_base */
689 W(64), /* 64MB min RMA */
690 W(0xffffffff), /* full client load */
691 0, /* min RMA percentage of total RAM */
692 48, /* max log_2(hash table size) */
694 /* option vector 3: processor options supported */
696 0, /* don't ignore, don't halt */
697 OV3_FP
| OV3_VMX
| OV3_DFP
,
699 /* option vector 4: IBM PAPR implementation */
703 /* option vector 5: PAPR/OF options */
705 0, /* don't ignore, don't halt */
706 OV5_LPAR
| OV5_SPLPAR
| OV5_LARGE_PAGES
| OV5_DRCONF_MEMORY
|
707 OV5_DONATE_DEDICATE_CPU
| OV5_MSI
,
714 /* WARNING: The offset of the "number of cores" field below
715 * must match by the macro below. Update the definition if
716 * the structure layout changes.
718 #define IBM_ARCH_VEC_NRCORES_OFFSET 100
719 W(NR_CPUS
), /* number of cores supported */
721 /* option vector 6: IBM PAPR hints */
729 /* Old method - ELF header with PT_NOTE sections */
730 static struct fake_elf
{
737 char name
[8]; /* "PowerPC" */
751 char name
[24]; /* "IBM,RPA-Client-Config" */
765 .e_ident
= { 0x7f, 'E', 'L', 'F',
766 ELFCLASS32
, ELFDATA2MSB
, EV_CURRENT
},
767 .e_type
= ET_EXEC
, /* yeah right */
769 .e_version
= EV_CURRENT
,
770 .e_phoff
= offsetof(struct fake_elf
, phdr
),
771 .e_phentsize
= sizeof(Elf32_Phdr
),
777 .p_offset
= offsetof(struct fake_elf
, chrpnote
),
778 .p_filesz
= sizeof(struct chrpnote
)
781 .p_offset
= offsetof(struct fake_elf
, rpanote
),
782 .p_filesz
= sizeof(struct rpanote
)
786 .namesz
= sizeof("PowerPC"),
787 .descsz
= sizeof(struct chrpdesc
),
791 .real_mode
= ~0U, /* ~0 means "don't care" */
800 .namesz
= sizeof("IBM,RPA-Client-Config"),
801 .descsz
= sizeof(struct rpadesc
),
803 .name
= "IBM,RPA-Client-Config",
806 .min_rmo_size
= 64, /* in megabytes */
807 .min_rmo_percent
= 0,
808 .max_pft_size
= 48, /* 2^48 bytes max PFT size */
816 static int __init
prom_count_smt_threads(void)
822 /* Pick up th first CPU node we can find */
823 for (node
= 0; prom_next_node(&node
); ) {
825 prom_getprop(node
, "device_type", type
, sizeof(type
));
827 if (strcmp(type
, RELOC("cpu")))
830 * There is an entry for each smt thread, each entry being
831 * 4 bytes long. All cpus should have the same number of
832 * smt threads, so return after finding the first.
834 plen
= prom_getproplen(node
, "ibm,ppc-interrupt-server#s");
835 if (plen
== PROM_ERROR
)
838 prom_debug("Found 0x%x smt threads per core\n", (unsigned long)plen
);
841 if (plen
< 1 || plen
> 64) {
842 prom_printf("Threads per core 0x%x out of bounds, assuming 1\n",
843 (unsigned long)plen
);
848 prom_debug("No threads found, assuming 1 per core\n");
855 static void __init
prom_send_capabilities(void)
857 ihandle elfloader
, root
;
861 root
= call_prom("open", 1, 1, ADDR("/"));
863 /* We need to tell the FW about the number of cores we support.
865 * To do that, we count the number of threads on the first core
866 * (we assume this is the same for all cores) and use it to
869 cores
= (u32
*)PTRRELOC(&ibm_architecture_vec
[IBM_ARCH_VEC_NRCORES_OFFSET
]);
870 if (*cores
!= NR_CPUS
) {
871 prom_printf("WARNING ! "
872 "ibm_architecture_vec structure inconsistent: 0x%x !\n",
875 *cores
= NR_CPUS
/ prom_count_smt_threads();
876 prom_printf("Max number of cores passed to firmware: 0x%x\n",
877 (unsigned long)*cores
);
880 /* try calling the ibm,client-architecture-support method */
881 prom_printf("Calling ibm,client-architecture-support...");
882 if (call_prom_ret("call-method", 3, 2, &ret
,
883 ADDR("ibm,client-architecture-support"),
885 ADDR(ibm_architecture_vec
)) == 0) {
886 /* the call exists... */
888 prom_printf("\nWARNING: ibm,client-architecture"
889 "-support call FAILED!\n");
890 call_prom("close", 1, 0, root
);
891 prom_printf(" done\n");
894 call_prom("close", 1, 0, root
);
895 prom_printf(" not implemented\n");
898 /* no ibm,client-architecture-support call, try the old way */
899 elfloader
= call_prom("open", 1, 1, ADDR("/packages/elf-loader"));
900 if (elfloader
== 0) {
901 prom_printf("couldn't open /packages/elf-loader\n");
904 call_prom("call-method", 3, 1, ADDR("process-elf-header"),
905 elfloader
, ADDR(&fake_elf
));
906 call_prom("close", 1, 0, elfloader
);
911 * Memory allocation strategy... our layout is normally:
913 * at 14Mb or more we have vmlinux, then a gap and initrd. In some
914 * rare cases, initrd might end up being before the kernel though.
915 * We assume this won't override the final kernel at 0, we have no
916 * provision to handle that in this version, but it should hopefully
919 * alloc_top is set to the top of RMO, eventually shrink down if the
922 * alloc_bottom is set to the top of kernel/initrd
924 * from there, allocations are done this way : rtas is allocated
925 * topmost, and the device-tree is allocated from the bottom. We try
926 * to grow the device-tree allocation as we progress. If we can't,
927 * then we fail, we don't currently have a facility to restart
928 * elsewhere, but that shouldn't be necessary.
930 * Note that calls to reserve_mem have to be done explicitly, memory
931 * allocated with either alloc_up or alloc_down isn't automatically
937 * Allocates memory in the RMO upward from the kernel/initrd
939 * When align is 0, this is a special case, it means to allocate in place
940 * at the current location of alloc_bottom or fail (that is basically
941 * extending the previous allocation). Used for the device-tree flattening
943 static unsigned long __init
alloc_up(unsigned long size
, unsigned long align
)
945 unsigned long base
= RELOC(alloc_bottom
);
946 unsigned long addr
= 0;
949 base
= _ALIGN_UP(base
, align
);
950 prom_debug("alloc_up(%x, %x)\n", size
, align
);
951 if (RELOC(ram_top
) == 0)
952 prom_panic("alloc_up() called with mem not initialized\n");
955 base
= _ALIGN_UP(RELOC(alloc_bottom
), align
);
957 base
= RELOC(alloc_bottom
);
959 for(; (base
+ size
) <= RELOC(alloc_top
);
960 base
= _ALIGN_UP(base
+ 0x100000, align
)) {
961 prom_debug(" trying: 0x%x\n\r", base
);
962 addr
= (unsigned long)prom_claim(base
, size
, 0);
963 if (addr
!= PROM_ERROR
&& addr
!= 0)
971 RELOC(alloc_bottom
) = addr
;
973 prom_debug(" -> %x\n", addr
);
974 prom_debug(" alloc_bottom : %x\n", RELOC(alloc_bottom
));
975 prom_debug(" alloc_top : %x\n", RELOC(alloc_top
));
976 prom_debug(" alloc_top_hi : %x\n", RELOC(alloc_top_high
));
977 prom_debug(" rmo_top : %x\n", RELOC(rmo_top
));
978 prom_debug(" ram_top : %x\n", RELOC(ram_top
));
984 * Allocates memory downward, either from top of RMO, or if highmem
985 * is set, from the top of RAM. Note that this one doesn't handle
986 * failures. It does claim memory if highmem is not set.
988 static unsigned long __init
alloc_down(unsigned long size
, unsigned long align
,
991 unsigned long base
, addr
= 0;
993 prom_debug("alloc_down(%x, %x, %s)\n", size
, align
,
994 highmem
? RELOC("(high)") : RELOC("(low)"));
995 if (RELOC(ram_top
) == 0)
996 prom_panic("alloc_down() called with mem not initialized\n");
999 /* Carve out storage for the TCE table. */
1000 addr
= _ALIGN_DOWN(RELOC(alloc_top_high
) - size
, align
);
1001 if (addr
<= RELOC(alloc_bottom
))
1003 /* Will we bump into the RMO ? If yes, check out that we
1004 * didn't overlap existing allocations there, if we did,
1005 * we are dead, we must be the first in town !
1007 if (addr
< RELOC(rmo_top
)) {
1008 /* Good, we are first */
1009 if (RELOC(alloc_top
) == RELOC(rmo_top
))
1010 RELOC(alloc_top
) = RELOC(rmo_top
) = addr
;
1014 RELOC(alloc_top_high
) = addr
;
1018 base
= _ALIGN_DOWN(RELOC(alloc_top
) - size
, align
);
1019 for (; base
> RELOC(alloc_bottom
);
1020 base
= _ALIGN_DOWN(base
- 0x100000, align
)) {
1021 prom_debug(" trying: 0x%x\n\r", base
);
1022 addr
= (unsigned long)prom_claim(base
, size
, 0);
1023 if (addr
!= PROM_ERROR
&& addr
!= 0)
1029 RELOC(alloc_top
) = addr
;
1032 prom_debug(" -> %x\n", addr
);
1033 prom_debug(" alloc_bottom : %x\n", RELOC(alloc_bottom
));
1034 prom_debug(" alloc_top : %x\n", RELOC(alloc_top
));
1035 prom_debug(" alloc_top_hi : %x\n", RELOC(alloc_top_high
));
1036 prom_debug(" rmo_top : %x\n", RELOC(rmo_top
));
1037 prom_debug(" ram_top : %x\n", RELOC(ram_top
));
1043 * Parse a "reg" cell
1045 static unsigned long __init
prom_next_cell(int s
, cell_t
**cellp
)
1048 unsigned long r
= 0;
1050 /* Ignore more than 2 cells */
1051 while (s
> sizeof(unsigned long) / 4) {
1067 * Very dumb function for adding to the memory reserve list, but
1068 * we don't need anything smarter at this point
1070 * XXX Eventually check for collisions. They should NEVER happen.
1071 * If problems seem to show up, it would be a good start to track
1074 static void __init
reserve_mem(u64 base
, u64 size
)
1076 u64 top
= base
+ size
;
1077 unsigned long cnt
= RELOC(mem_reserve_cnt
);
1082 /* We need to always keep one empty entry so that we
1083 * have our terminator with "size" set to 0 since we are
1084 * dumb and just copy this entire array to the boot params
1086 base
= _ALIGN_DOWN(base
, PAGE_SIZE
);
1087 top
= _ALIGN_UP(top
, PAGE_SIZE
);
1090 if (cnt
>= (MEM_RESERVE_MAP_SIZE
- 1))
1091 prom_panic("Memory reserve map exhausted !\n");
1092 RELOC(mem_reserve_map
)[cnt
].base
= base
;
1093 RELOC(mem_reserve_map
)[cnt
].size
= size
;
1094 RELOC(mem_reserve_cnt
) = cnt
+ 1;
1098 * Initialize memory allocation mechanism, parse "memory" nodes and
1099 * obtain that way the top of memory and RMO to setup out local allocator
1101 static void __init
prom_init_mem(void)
1104 char *path
, type
[64];
1107 struct prom_t
*_prom
= &RELOC(prom
);
1111 * We iterate the memory nodes to find
1112 * 1) top of RMO (first node)
1116 prom_getprop(_prom
->root
, "#address-cells", &rac
, sizeof(rac
));
1118 prom_getprop(_prom
->root
, "#size-cells", &rsc
, sizeof(rsc
));
1119 prom_debug("root_addr_cells: %x\n", (unsigned long) rac
);
1120 prom_debug("root_size_cells: %x\n", (unsigned long) rsc
);
1122 prom_debug("scanning memory:\n");
1123 path
= RELOC(prom_scratch
);
1125 for (node
= 0; prom_next_node(&node
); ) {
1127 prom_getprop(node
, "device_type", type
, sizeof(type
));
1131 * CHRP Longtrail machines have no device_type
1132 * on the memory node, so check the name instead...
1134 prom_getprop(node
, "name", type
, sizeof(type
));
1136 if (strcmp(type
, RELOC("memory")))
1139 plen
= prom_getprop(node
, "reg", RELOC(regbuf
), sizeof(regbuf
));
1140 if (plen
> sizeof(regbuf
)) {
1141 prom_printf("memory node too large for buffer !\n");
1142 plen
= sizeof(regbuf
);
1145 endp
= p
+ (plen
/ sizeof(cell_t
));
1148 memset(path
, 0, PROM_SCRATCH_SIZE
);
1149 call_prom("package-to-path", 3, 1, node
, path
, PROM_SCRATCH_SIZE
-1);
1150 prom_debug(" node %s :\n", path
);
1151 #endif /* DEBUG_PROM */
1153 while ((endp
- p
) >= (rac
+ rsc
)) {
1154 unsigned long base
, size
;
1156 base
= prom_next_cell(rac
, &p
);
1157 size
= prom_next_cell(rsc
, &p
);
1161 prom_debug(" %x %x\n", base
, size
);
1162 if (base
== 0 && (RELOC(of_platform
) & PLATFORM_LPAR
))
1163 RELOC(rmo_top
) = size
;
1164 if ((base
+ size
) > RELOC(ram_top
))
1165 RELOC(ram_top
) = base
+ size
;
1169 RELOC(alloc_bottom
) = PAGE_ALIGN((unsigned long)&RELOC(_end
) + 0x4000);
1171 /* Check if we have an initrd after the kernel, if we do move our bottom
1174 if (RELOC(prom_initrd_start
)) {
1175 if (RELOC(prom_initrd_end
) > RELOC(alloc_bottom
))
1176 RELOC(alloc_bottom
) = PAGE_ALIGN(RELOC(prom_initrd_end
));
1180 * If prom_memory_limit is set we reduce the upper limits *except* for
1181 * alloc_top_high. This must be the real top of RAM so we can put
1185 RELOC(alloc_top_high
) = RELOC(ram_top
);
1187 if (RELOC(prom_memory_limit
)) {
1188 if (RELOC(prom_memory_limit
) <= RELOC(alloc_bottom
)) {
1189 prom_printf("Ignoring mem=%x <= alloc_bottom.\n",
1190 RELOC(prom_memory_limit
));
1191 RELOC(prom_memory_limit
) = 0;
1192 } else if (RELOC(prom_memory_limit
) >= RELOC(ram_top
)) {
1193 prom_printf("Ignoring mem=%x >= ram_top.\n",
1194 RELOC(prom_memory_limit
));
1195 RELOC(prom_memory_limit
) = 0;
1197 RELOC(ram_top
) = RELOC(prom_memory_limit
);
1198 RELOC(rmo_top
) = min(RELOC(rmo_top
), RELOC(prom_memory_limit
));
1203 * Setup our top alloc point, that is top of RMO or top of
1204 * segment 0 when running non-LPAR.
1205 * Some RS64 machines have buggy firmware where claims up at
1206 * 1GB fail. Cap at 768MB as a workaround.
1207 * Since 768MB is plenty of room, and we need to cap to something
1208 * reasonable on 32-bit, cap at 768MB on all machines.
1210 if (!RELOC(rmo_top
))
1211 RELOC(rmo_top
) = RELOC(ram_top
);
1212 RELOC(rmo_top
) = min(0x30000000ul
, RELOC(rmo_top
));
1213 RELOC(alloc_top
) = RELOC(rmo_top
);
1214 RELOC(alloc_top_high
) = RELOC(ram_top
);
1216 prom_printf("memory layout at init:\n");
1217 prom_printf(" memory_limit : %x (16 MB aligned)\n", RELOC(prom_memory_limit
));
1218 prom_printf(" alloc_bottom : %x\n", RELOC(alloc_bottom
));
1219 prom_printf(" alloc_top : %x\n", RELOC(alloc_top
));
1220 prom_printf(" alloc_top_hi : %x\n", RELOC(alloc_top_high
));
1221 prom_printf(" rmo_top : %x\n", RELOC(rmo_top
));
1222 prom_printf(" ram_top : %x\n", RELOC(ram_top
));
1227 * Allocate room for and instantiate RTAS
1229 static void __init
prom_instantiate_rtas(void)
1233 u32 base
, entry
= 0;
1236 prom_debug("prom_instantiate_rtas: start...\n");
1238 rtas_node
= call_prom("finddevice", 1, 1, ADDR("/rtas"));
1239 prom_debug("rtas_node: %x\n", rtas_node
);
1240 if (!PHANDLE_VALID(rtas_node
))
1243 prom_getprop(rtas_node
, "rtas-size", &size
, sizeof(size
));
1247 base
= alloc_down(size
, PAGE_SIZE
, 0);
1249 prom_printf("RTAS allocation failed !\n");
1253 rtas_inst
= call_prom("open", 1, 1, ADDR("/rtas"));
1254 if (!IHANDLE_VALID(rtas_inst
)) {
1255 prom_printf("opening rtas package failed (%x)\n", rtas_inst
);
1259 prom_printf("instantiating rtas at 0x%x...", base
);
1261 if (call_prom_ret("call-method", 3, 2, &entry
,
1262 ADDR("instantiate-rtas"),
1263 rtas_inst
, base
) != 0
1265 prom_printf(" failed\n");
1268 prom_printf(" done\n");
1270 reserve_mem(base
, size
);
1272 prom_setprop(rtas_node
, "/rtas", "linux,rtas-base",
1273 &base
, sizeof(base
));
1274 prom_setprop(rtas_node
, "/rtas", "linux,rtas-entry",
1275 &entry
, sizeof(entry
));
1277 prom_debug("rtas base = 0x%x\n", base
);
1278 prom_debug("rtas entry = 0x%x\n", entry
);
1279 prom_debug("rtas size = 0x%x\n", (long)size
);
1281 prom_debug("prom_instantiate_rtas: end...\n");
1286 * Allocate room for and initialize TCE tables
1288 static void __init
prom_initialize_tce_table(void)
1292 char compatible
[64], type
[64], model
[64];
1293 char *path
= RELOC(prom_scratch
);
1295 u32 minalign
, minsize
;
1296 u64 tce_entry
, *tce_entryp
;
1297 u64 local_alloc_top
, local_alloc_bottom
;
1300 if (RELOC(prom_iommu_off
))
1303 prom_debug("starting prom_initialize_tce_table\n");
1305 /* Cache current top of allocs so we reserve a single block */
1306 local_alloc_top
= RELOC(alloc_top_high
);
1307 local_alloc_bottom
= local_alloc_top
;
1309 /* Search all nodes looking for PHBs. */
1310 for (node
= 0; prom_next_node(&node
); ) {
1314 prom_getprop(node
, "compatible",
1315 compatible
, sizeof(compatible
));
1316 prom_getprop(node
, "device_type", type
, sizeof(type
));
1317 prom_getprop(node
, "model", model
, sizeof(model
));
1319 if ((type
[0] == 0) || (strstr(type
, RELOC("pci")) == NULL
))
1322 /* Keep the old logic intact to avoid regression. */
1323 if (compatible
[0] != 0) {
1324 if ((strstr(compatible
, RELOC("python")) == NULL
) &&
1325 (strstr(compatible
, RELOC("Speedwagon")) == NULL
) &&
1326 (strstr(compatible
, RELOC("Winnipeg")) == NULL
))
1328 } else if (model
[0] != 0) {
1329 if ((strstr(model
, RELOC("ython")) == NULL
) &&
1330 (strstr(model
, RELOC("peedwagon")) == NULL
) &&
1331 (strstr(model
, RELOC("innipeg")) == NULL
))
1335 if (prom_getprop(node
, "tce-table-minalign", &minalign
,
1336 sizeof(minalign
)) == PROM_ERROR
)
1338 if (prom_getprop(node
, "tce-table-minsize", &minsize
,
1339 sizeof(minsize
)) == PROM_ERROR
)
1340 minsize
= 4UL << 20;
1343 * Even though we read what OF wants, we just set the table
1344 * size to 4 MB. This is enough to map 2GB of PCI DMA space.
1345 * By doing this, we avoid the pitfalls of trying to DMA to
1346 * MMIO space and the DMA alias hole.
1348 * On POWER4, firmware sets the TCE region by assuming
1349 * each TCE table is 8MB. Using this memory for anything
1350 * else will impact performance, so we always allocate 8MB.
1353 if (__is_processor(PV_POWER4
) || __is_processor(PV_POWER4p
))
1354 minsize
= 8UL << 20;
1356 minsize
= 4UL << 20;
1358 /* Align to the greater of the align or size */
1359 align
= max(minalign
, minsize
);
1360 base
= alloc_down(minsize
, align
, 1);
1362 prom_panic("ERROR, cannot find space for TCE table.\n");
1363 if (base
< local_alloc_bottom
)
1364 local_alloc_bottom
= base
;
1366 /* It seems OF doesn't null-terminate the path :-( */
1367 memset(path
, 0, PROM_SCRATCH_SIZE
);
1368 /* Call OF to setup the TCE hardware */
1369 if (call_prom("package-to-path", 3, 1, node
,
1370 path
, PROM_SCRATCH_SIZE
-1) == PROM_ERROR
) {
1371 prom_printf("package-to-path failed\n");
1374 /* Save away the TCE table attributes for later use. */
1375 prom_setprop(node
, path
, "linux,tce-base", &base
, sizeof(base
));
1376 prom_setprop(node
, path
, "linux,tce-size", &minsize
, sizeof(minsize
));
1378 prom_debug("TCE table: %s\n", path
);
1379 prom_debug("\tnode = 0x%x\n", node
);
1380 prom_debug("\tbase = 0x%x\n", base
);
1381 prom_debug("\tsize = 0x%x\n", minsize
);
1383 /* Initialize the table to have a one-to-one mapping
1384 * over the allocated size.
1386 tce_entryp
= (u64
*)base
;
1387 for (i
= 0; i
< (minsize
>> 3) ;tce_entryp
++, i
++) {
1388 tce_entry
= (i
<< PAGE_SHIFT
);
1390 *tce_entryp
= tce_entry
;
1393 prom_printf("opening PHB %s", path
);
1394 phb_node
= call_prom("open", 1, 1, path
);
1396 prom_printf("... failed\n");
1398 prom_printf("... done\n");
1400 call_prom("call-method", 6, 0, ADDR("set-64-bit-addressing"),
1401 phb_node
, -1, minsize
,
1402 (u32
) base
, (u32
) (base
>> 32));
1403 call_prom("close", 1, 0, phb_node
);
1406 reserve_mem(local_alloc_bottom
, local_alloc_top
- local_alloc_bottom
);
1408 /* These are only really needed if there is a memory limit in
1409 * effect, but we don't know so export them always. */
1410 RELOC(prom_tce_alloc_start
) = local_alloc_bottom
;
1411 RELOC(prom_tce_alloc_end
) = local_alloc_top
;
1413 /* Flag the first invalid entry */
1414 prom_debug("ending prom_initialize_tce_table\n");
1419 * With CHRP SMP we need to use the OF to start the other processors.
1420 * We can't wait until smp_boot_cpus (the OF is trashed by then)
1421 * so we have to put the processors into a holding pattern controlled
1422 * by the kernel (not OF) before we destroy the OF.
1424 * This uses a chunk of low memory, puts some holding pattern
1425 * code there and sends the other processors off to there until
1426 * smp_boot_cpus tells them to do something. The holding pattern
1427 * checks that address until its cpu # is there, when it is that
1428 * cpu jumps to __secondary_start(). smp_boot_cpus() takes care
1429 * of setting those values.
1431 * We also use physical address 0x4 here to tell when a cpu
1432 * is in its holding pattern code.
1437 * We want to reference the copy of __secondary_hold_* in the
1438 * 0 - 0x100 address range
1440 #define LOW_ADDR(x) (((unsigned long) &(x)) & 0xff)
1442 static void __init
prom_hold_cpus(void)
1448 struct prom_t
*_prom
= &RELOC(prom
);
1449 unsigned long *spinloop
1450 = (void *) LOW_ADDR(__secondary_hold_spinloop
);
1451 unsigned long *acknowledge
1452 = (void *) LOW_ADDR(__secondary_hold_acknowledge
);
1453 unsigned long secondary_hold
= LOW_ADDR(__secondary_hold
);
1455 prom_debug("prom_hold_cpus: start...\n");
1456 prom_debug(" 1) spinloop = 0x%x\n", (unsigned long)spinloop
);
1457 prom_debug(" 1) *spinloop = 0x%x\n", *spinloop
);
1458 prom_debug(" 1) acknowledge = 0x%x\n",
1459 (unsigned long)acknowledge
);
1460 prom_debug(" 1) *acknowledge = 0x%x\n", *acknowledge
);
1461 prom_debug(" 1) secondary_hold = 0x%x\n", secondary_hold
);
1463 /* Set the common spinloop variable, so all of the secondary cpus
1464 * will block when they are awakened from their OF spinloop.
1465 * This must occur for both SMP and non SMP kernels, since OF will
1466 * be trashed when we move the kernel.
1471 for (node
= 0; prom_next_node(&node
); ) {
1473 prom_getprop(node
, "device_type", type
, sizeof(type
));
1474 if (strcmp(type
, RELOC("cpu")) != 0)
1477 /* Skip non-configured cpus. */
1478 if (prom_getprop(node
, "status", type
, sizeof(type
)) > 0)
1479 if (strcmp(type
, RELOC("okay")) != 0)
1483 prom_getprop(node
, "reg", ®
, sizeof(reg
));
1485 prom_debug("cpu hw idx = 0x%x\n", reg
);
1487 /* Init the acknowledge var which will be reset by
1488 * the secondary cpu when it awakens from its OF
1491 *acknowledge
= (unsigned long)-1;
1493 if (reg
!= _prom
->cpu
) {
1494 /* Primary Thread of non-boot cpu */
1495 prom_printf("starting cpu hw idx %x... ", reg
);
1496 call_prom("start-cpu", 3, 0, node
,
1497 secondary_hold
, reg
);
1499 for (i
= 0; (i
< 100000000) &&
1500 (*acknowledge
== ((unsigned long)-1)); i
++ )
1503 if (*acknowledge
== reg
)
1504 prom_printf("done\n");
1506 prom_printf("failed: %x\n", *acknowledge
);
1510 prom_printf("boot cpu hw idx %x\n", reg
);
1511 #endif /* CONFIG_SMP */
1514 prom_debug("prom_hold_cpus: end...\n");
1518 static void __init
prom_init_client_services(unsigned long pp
)
1520 struct prom_t
*_prom
= &RELOC(prom
);
1522 /* Get a handle to the prom entry point before anything else */
1523 RELOC(prom_entry
) = pp
;
1525 /* get a handle for the stdout device */
1526 _prom
->chosen
= call_prom("finddevice", 1, 1, ADDR("/chosen"));
1527 if (!PHANDLE_VALID(_prom
->chosen
))
1528 prom_panic("cannot find chosen"); /* msg won't be printed :( */
1530 /* get device tree root */
1531 _prom
->root
= call_prom("finddevice", 1, 1, ADDR("/"));
1532 if (!PHANDLE_VALID(_prom
->root
))
1533 prom_panic("cannot find device tree root"); /* msg won't be printed :( */
1540 * For really old powermacs, we need to map things we claim.
1541 * For that, we need the ihandle of the mmu.
1542 * Also, on the longtrail, we need to work around other bugs.
1544 static void __init
prom_find_mmu(void)
1546 struct prom_t
*_prom
= &RELOC(prom
);
1550 oprom
= call_prom("finddevice", 1, 1, ADDR("/openprom"));
1551 if (!PHANDLE_VALID(oprom
))
1553 if (prom_getprop(oprom
, "model", version
, sizeof(version
)) <= 0)
1555 version
[sizeof(version
) - 1] = 0;
1556 /* XXX might need to add other versions here */
1557 if (strcmp(version
, "Open Firmware, 1.0.5") == 0)
1558 of_workarounds
= OF_WA_CLAIM
;
1559 else if (strncmp(version
, "FirmWorks,3.", 12) == 0) {
1560 of_workarounds
= OF_WA_CLAIM
| OF_WA_LONGTRAIL
;
1561 call_prom("interpret", 1, 1, "dev /memory 0 to allow-reclaim");
1564 _prom
->memory
= call_prom("open", 1, 1, ADDR("/memory"));
1565 prom_getprop(_prom
->chosen
, "mmu", &_prom
->mmumap
,
1566 sizeof(_prom
->mmumap
));
1567 if (!IHANDLE_VALID(_prom
->memory
) || !IHANDLE_VALID(_prom
->mmumap
))
1568 of_workarounds
&= ~OF_WA_CLAIM
; /* hmmm */
1571 #define prom_find_mmu()
1574 static void __init
prom_init_stdout(void)
1576 struct prom_t
*_prom
= &RELOC(prom
);
1577 char *path
= RELOC(of_stdout_device
);
1581 if (prom_getprop(_prom
->chosen
, "stdout", &val
, sizeof(val
)) <= 0)
1582 prom_panic("cannot find stdout");
1584 _prom
->stdout
= val
;
1586 /* Get the full OF pathname of the stdout device */
1587 memset(path
, 0, 256);
1588 call_prom("instance-to-path", 3, 1, _prom
->stdout
, path
, 255);
1589 val
= call_prom("instance-to-package", 1, 1, _prom
->stdout
);
1590 prom_setprop(_prom
->chosen
, "/chosen", "linux,stdout-package",
1592 prom_printf("OF stdout device is: %s\n", RELOC(of_stdout_device
));
1593 prom_setprop(_prom
->chosen
, "/chosen", "linux,stdout-path",
1594 path
, strlen(path
) + 1);
1596 /* If it's a display, note it */
1597 memset(type
, 0, sizeof(type
));
1598 prom_getprop(val
, "device_type", type
, sizeof(type
));
1599 if (strcmp(type
, RELOC("display")) == 0)
1600 prom_setprop(val
, path
, "linux,boot-display", NULL
, 0);
1603 static void __init
prom_close_stdin(void)
1605 struct prom_t
*_prom
= &RELOC(prom
);
1608 if (prom_getprop(_prom
->chosen
, "stdin", &val
, sizeof(val
)) > 0)
1609 call_prom("close", 1, 0, val
);
1612 static int __init
prom_find_machine_type(void)
1614 struct prom_t
*_prom
= &RELOC(prom
);
1622 /* Look for a PowerMac */
1623 len
= prom_getprop(_prom
->root
, "compatible",
1624 compat
, sizeof(compat
)-1);
1628 char *p
= &compat
[i
];
1632 if (strstr(p
, RELOC("Power Macintosh")) ||
1633 strstr(p
, RELOC("MacRISC")))
1634 return PLATFORM_POWERMAC
;
1636 /* We must make sure we don't detect the IBM Cell
1637 * blades as pSeries due to some firmware issues,
1640 if (strstr(p
, RELOC("IBM,CBEA")) ||
1641 strstr(p
, RELOC("IBM,CPBW-1.0")))
1642 return PLATFORM_GENERIC
;
1643 #endif /* CONFIG_PPC64 */
1648 /* If not a mac, try to figure out if it's an IBM pSeries or any other
1649 * PAPR compliant platform. We assume it is if :
1650 * - /device_type is "chrp" (please, do NOT use that for future
1654 len
= prom_getprop(_prom
->root
, "device_type",
1655 compat
, sizeof(compat
)-1);
1657 return PLATFORM_GENERIC
;
1658 if (strcmp(compat
, RELOC("chrp")))
1659 return PLATFORM_GENERIC
;
1661 /* Default to pSeries. We need to know if we are running LPAR */
1662 rtas
= call_prom("finddevice", 1, 1, ADDR("/rtas"));
1663 if (!PHANDLE_VALID(rtas
))
1664 return PLATFORM_GENERIC
;
1665 x
= prom_getproplen(rtas
, "ibm,hypertas-functions");
1666 if (x
!= PROM_ERROR
) {
1667 prom_debug("Hypertas detected, assuming LPAR !\n");
1668 return PLATFORM_PSERIES_LPAR
;
1670 return PLATFORM_PSERIES
;
1672 return PLATFORM_GENERIC
;
1676 static int __init
prom_set_color(ihandle ih
, int i
, int r
, int g
, int b
)
1678 return call_prom("call-method", 6, 1, ADDR("color!"), ih
, i
, b
, g
, r
);
1682 * If we have a display that we don't know how to drive,
1683 * we will want to try to execute OF's open method for it
1684 * later. However, OF will probably fall over if we do that
1685 * we've taken over the MMU.
1686 * So we check whether we will need to open the display,
1687 * and if so, open it now.
1689 static void __init
prom_check_displays(void)
1691 char type
[16], *path
;
1696 static unsigned char default_colors
[] = {
1714 const unsigned char *clut
;
1716 prom_debug("Looking for displays\n");
1717 for (node
= 0; prom_next_node(&node
); ) {
1718 memset(type
, 0, sizeof(type
));
1719 prom_getprop(node
, "device_type", type
, sizeof(type
));
1720 if (strcmp(type
, RELOC("display")) != 0)
1723 /* It seems OF doesn't null-terminate the path :-( */
1724 path
= RELOC(prom_scratch
);
1725 memset(path
, 0, PROM_SCRATCH_SIZE
);
1728 * leave some room at the end of the path for appending extra
1731 if (call_prom("package-to-path", 3, 1, node
, path
,
1732 PROM_SCRATCH_SIZE
-10) == PROM_ERROR
)
1734 prom_printf("found display : %s, opening... ", path
);
1736 ih
= call_prom("open", 1, 1, path
);
1738 prom_printf("failed\n");
1743 prom_printf("done\n");
1744 prom_setprop(node
, path
, "linux,opened", NULL
, 0);
1746 /* Setup a usable color table when the appropriate
1747 * method is available. Should update this to set-colors */
1748 clut
= RELOC(default_colors
);
1749 for (i
= 0; i
< 32; i
++, clut
+= 3)
1750 if (prom_set_color(ih
, i
, clut
[0], clut
[1],
1754 #ifdef CONFIG_LOGO_LINUX_CLUT224
1755 clut
= PTRRELOC(RELOC(logo_linux_clut224
.clut
));
1756 for (i
= 0; i
< RELOC(logo_linux_clut224
.clutsize
); i
++, clut
+= 3)
1757 if (prom_set_color(ih
, i
+ 32, clut
[0], clut
[1],
1760 #endif /* CONFIG_LOGO_LINUX_CLUT224 */
1765 /* Return (relocated) pointer to this much memory: moves initrd if reqd. */
1766 static void __init
*make_room(unsigned long *mem_start
, unsigned long *mem_end
,
1767 unsigned long needed
, unsigned long align
)
1771 *mem_start
= _ALIGN(*mem_start
, align
);
1772 while ((*mem_start
+ needed
) > *mem_end
) {
1773 unsigned long room
, chunk
;
1775 prom_debug("Chunk exhausted, claiming more at %x...\n",
1776 RELOC(alloc_bottom
));
1777 room
= RELOC(alloc_top
) - RELOC(alloc_bottom
);
1778 if (room
> DEVTREE_CHUNK_SIZE
)
1779 room
= DEVTREE_CHUNK_SIZE
;
1780 if (room
< PAGE_SIZE
)
1781 prom_panic("No memory for flatten_device_tree (no room)");
1782 chunk
= alloc_up(room
, 0);
1784 prom_panic("No memory for flatten_device_tree (claim failed)");
1785 *mem_end
= RELOC(alloc_top
);
1788 ret
= (void *)*mem_start
;
1789 *mem_start
+= needed
;
1794 #define dt_push_token(token, mem_start, mem_end) \
1795 do { *((u32 *)make_room(mem_start, mem_end, 4, 4)) = token; } while(0)
1797 static unsigned long __init
dt_find_string(char *str
)
1801 s
= os
= (char *)RELOC(dt_string_start
);
1803 while (s
< (char *)RELOC(dt_string_end
)) {
1804 if (strcmp(s
, str
) == 0)
1812 * The Open Firmware 1275 specification states properties must be 31 bytes or
1813 * less, however not all firmwares obey this. Make it 64 bytes to be safe.
1815 #define MAX_PROPERTY_NAME 64
1817 static void __init
scan_dt_build_strings(phandle node
,
1818 unsigned long *mem_start
,
1819 unsigned long *mem_end
)
1821 char *prev_name
, *namep
, *sstart
;
1825 sstart
= (char *)RELOC(dt_string_start
);
1827 /* get and store all property names */
1828 prev_name
= RELOC("");
1830 /* 64 is max len of name including nul. */
1831 namep
= make_room(mem_start
, mem_end
, MAX_PROPERTY_NAME
, 1);
1832 if (call_prom("nextprop", 3, 1, node
, prev_name
, namep
) != 1) {
1833 /* No more nodes: unwind alloc */
1834 *mem_start
= (unsigned long)namep
;
1839 if (strcmp(namep
, RELOC("name")) == 0) {
1840 *mem_start
= (unsigned long)namep
;
1841 prev_name
= RELOC("name");
1844 /* get/create string entry */
1845 soff
= dt_find_string(namep
);
1847 *mem_start
= (unsigned long)namep
;
1848 namep
= sstart
+ soff
;
1850 /* Trim off some if we can */
1851 *mem_start
= (unsigned long)namep
+ strlen(namep
) + 1;
1852 RELOC(dt_string_end
) = *mem_start
;
1857 /* do all our children */
1858 child
= call_prom("child", 1, 1, node
);
1859 while (child
!= 0) {
1860 scan_dt_build_strings(child
, mem_start
, mem_end
);
1861 child
= call_prom("peer", 1, 1, child
);
1865 static void __init
scan_dt_build_struct(phandle node
, unsigned long *mem_start
,
1866 unsigned long *mem_end
)
1869 char *namep
, *prev_name
, *sstart
, *p
, *ep
, *lp
, *path
;
1871 unsigned char *valp
;
1872 static char pname
[MAX_PROPERTY_NAME
];
1875 dt_push_token(OF_DT_BEGIN_NODE
, mem_start
, mem_end
);
1877 /* get the node's full name */
1878 namep
= (char *)*mem_start
;
1879 room
= *mem_end
- *mem_start
;
1882 l
= call_prom("package-to-path", 3, 1, node
, namep
, room
);
1884 /* Didn't fit? Get more room. */
1886 if (l
>= *mem_end
- *mem_start
)
1887 namep
= make_room(mem_start
, mem_end
, l
+1, 1);
1888 call_prom("package-to-path", 3, 1, node
, namep
, l
);
1892 /* Fixup an Apple bug where they have bogus \0 chars in the
1893 * middle of the path in some properties, and extract
1894 * the unit name (everything after the last '/').
1896 for (lp
= p
= namep
, ep
= namep
+ l
; p
< ep
; p
++) {
1903 *mem_start
= _ALIGN((unsigned long)lp
+ 1, 4);
1906 /* get it again for debugging */
1907 path
= RELOC(prom_scratch
);
1908 memset(path
, 0, PROM_SCRATCH_SIZE
);
1909 call_prom("package-to-path", 3, 1, node
, path
, PROM_SCRATCH_SIZE
-1);
1911 /* get and store all properties */
1912 prev_name
= RELOC("");
1913 sstart
= (char *)RELOC(dt_string_start
);
1915 if (call_prom("nextprop", 3, 1, node
, prev_name
,
1920 if (strcmp(RELOC(pname
), RELOC("name")) == 0) {
1921 prev_name
= RELOC("name");
1925 /* find string offset */
1926 soff
= dt_find_string(RELOC(pname
));
1928 prom_printf("WARNING: Can't find string index for"
1929 " <%s>, node %s\n", RELOC(pname
), path
);
1932 prev_name
= sstart
+ soff
;
1935 l
= call_prom("getproplen", 2, 1, node
, RELOC(pname
));
1938 if (l
== PROM_ERROR
)
1940 if (l
> MAX_PROPERTY_LENGTH
) {
1941 prom_printf("WARNING: ignoring large property ");
1942 /* It seems OF doesn't null-terminate the path :-( */
1943 prom_printf("[%s] ", path
);
1944 prom_printf("%s length 0x%x\n", RELOC(pname
), l
);
1948 /* push property head */
1949 dt_push_token(OF_DT_PROP
, mem_start
, mem_end
);
1950 dt_push_token(l
, mem_start
, mem_end
);
1951 dt_push_token(soff
, mem_start
, mem_end
);
1953 /* push property content */
1954 valp
= make_room(mem_start
, mem_end
, l
, 4);
1955 call_prom("getprop", 4, 1, node
, RELOC(pname
), valp
, l
);
1956 *mem_start
= _ALIGN(*mem_start
, 4);
1959 /* Add a "linux,phandle" property. */
1960 soff
= dt_find_string(RELOC("linux,phandle"));
1962 prom_printf("WARNING: Can't find string index for"
1963 " <linux-phandle> node %s\n", path
);
1965 dt_push_token(OF_DT_PROP
, mem_start
, mem_end
);
1966 dt_push_token(4, mem_start
, mem_end
);
1967 dt_push_token(soff
, mem_start
, mem_end
);
1968 valp
= make_room(mem_start
, mem_end
, 4, 4);
1969 *(u32
*)valp
= node
;
1972 /* do all our children */
1973 child
= call_prom("child", 1, 1, node
);
1974 while (child
!= 0) {
1975 scan_dt_build_struct(child
, mem_start
, mem_end
);
1976 child
= call_prom("peer", 1, 1, child
);
1979 dt_push_token(OF_DT_END_NODE
, mem_start
, mem_end
);
1982 static void __init
flatten_device_tree(void)
1985 unsigned long mem_start
, mem_end
, room
;
1986 struct boot_param_header
*hdr
;
1987 struct prom_t
*_prom
= &RELOC(prom
);
1992 * Check how much room we have between alloc top & bottom (+/- a
1993 * few pages), crop to 4Mb, as this is our "chuck" size
1995 room
= RELOC(alloc_top
) - RELOC(alloc_bottom
) - 0x4000;
1996 if (room
> DEVTREE_CHUNK_SIZE
)
1997 room
= DEVTREE_CHUNK_SIZE
;
1998 prom_debug("starting device tree allocs at %x\n", RELOC(alloc_bottom
));
2000 /* Now try to claim that */
2001 mem_start
= (unsigned long)alloc_up(room
, PAGE_SIZE
);
2003 prom_panic("Can't allocate initial device-tree chunk\n");
2004 mem_end
= RELOC(alloc_top
);
2006 /* Get root of tree */
2007 root
= call_prom("peer", 1, 1, (phandle
)0);
2008 if (root
== (phandle
)0)
2009 prom_panic ("couldn't get device tree root\n");
2011 /* Build header and make room for mem rsv map */
2012 mem_start
= _ALIGN(mem_start
, 4);
2013 hdr
= make_room(&mem_start
, &mem_end
,
2014 sizeof(struct boot_param_header
), 4);
2015 RELOC(dt_header_start
) = (unsigned long)hdr
;
2016 rsvmap
= make_room(&mem_start
, &mem_end
, sizeof(mem_reserve_map
), 8);
2018 /* Start of strings */
2019 mem_start
= PAGE_ALIGN(mem_start
);
2020 RELOC(dt_string_start
) = mem_start
;
2021 mem_start
+= 4; /* hole */
2023 /* Add "linux,phandle" in there, we'll need it */
2024 namep
= make_room(&mem_start
, &mem_end
, 16, 1);
2025 strcpy(namep
, RELOC("linux,phandle"));
2026 mem_start
= (unsigned long)namep
+ strlen(namep
) + 1;
2028 /* Build string array */
2029 prom_printf("Building dt strings...\n");
2030 scan_dt_build_strings(root
, &mem_start
, &mem_end
);
2031 RELOC(dt_string_end
) = mem_start
;
2033 /* Build structure */
2034 mem_start
= PAGE_ALIGN(mem_start
);
2035 RELOC(dt_struct_start
) = mem_start
;
2036 prom_printf("Building dt structure...\n");
2037 scan_dt_build_struct(root
, &mem_start
, &mem_end
);
2038 dt_push_token(OF_DT_END
, &mem_start
, &mem_end
);
2039 RELOC(dt_struct_end
) = PAGE_ALIGN(mem_start
);
2042 hdr
->boot_cpuid_phys
= _prom
->cpu
;
2043 hdr
->magic
= OF_DT_HEADER
;
2044 hdr
->totalsize
= RELOC(dt_struct_end
) - RELOC(dt_header_start
);
2045 hdr
->off_dt_struct
= RELOC(dt_struct_start
) - RELOC(dt_header_start
);
2046 hdr
->off_dt_strings
= RELOC(dt_string_start
) - RELOC(dt_header_start
);
2047 hdr
->dt_strings_size
= RELOC(dt_string_end
) - RELOC(dt_string_start
);
2048 hdr
->off_mem_rsvmap
= ((unsigned long)rsvmap
) - RELOC(dt_header_start
);
2049 hdr
->version
= OF_DT_VERSION
;
2050 /* Version 16 is not backward compatible */
2051 hdr
->last_comp_version
= 0x10;
2053 /* Copy the reserve map in */
2054 memcpy(rsvmap
, RELOC(mem_reserve_map
), sizeof(mem_reserve_map
));
2059 prom_printf("reserved memory map:\n");
2060 for (i
= 0; i
< RELOC(mem_reserve_cnt
); i
++)
2061 prom_printf(" %x - %x\n",
2062 RELOC(mem_reserve_map
)[i
].base
,
2063 RELOC(mem_reserve_map
)[i
].size
);
2066 /* Bump mem_reserve_cnt to cause further reservations to fail
2067 * since it's too late.
2069 RELOC(mem_reserve_cnt
) = MEM_RESERVE_MAP_SIZE
;
2071 prom_printf("Device tree strings 0x%x -> 0x%x\n",
2072 RELOC(dt_string_start
), RELOC(dt_string_end
));
2073 prom_printf("Device tree struct 0x%x -> 0x%x\n",
2074 RELOC(dt_struct_start
), RELOC(dt_struct_end
));
2078 #ifdef CONFIG_PPC_MAPLE
2079 /* PIBS Version 1.05.0000 04/26/2005 has an incorrect /ht/isa/ranges property.
2080 * The values are bad, and it doesn't even have the right number of cells. */
2081 static void __init
fixup_device_tree_maple(void)
2084 u32 rloc
= 0x01002000; /* IO space; PCI device = 4 */
2088 name
= "/ht@0/isa@4";
2089 isa
= call_prom("finddevice", 1, 1, ADDR(name
));
2090 if (!PHANDLE_VALID(isa
)) {
2091 name
= "/ht@0/isa@6";
2092 isa
= call_prom("finddevice", 1, 1, ADDR(name
));
2093 rloc
= 0x01003000; /* IO space; PCI device = 6 */
2095 if (!PHANDLE_VALID(isa
))
2098 if (prom_getproplen(isa
, "ranges") != 12)
2100 if (prom_getprop(isa
, "ranges", isa_ranges
, sizeof(isa_ranges
))
2104 if (isa_ranges
[0] != 0x1 ||
2105 isa_ranges
[1] != 0xf4000000 ||
2106 isa_ranges
[2] != 0x00010000)
2109 prom_printf("Fixing up bogus ISA range on Maple/Apache...\n");
2111 isa_ranges
[0] = 0x1;
2112 isa_ranges
[1] = 0x0;
2113 isa_ranges
[2] = rloc
;
2114 isa_ranges
[3] = 0x0;
2115 isa_ranges
[4] = 0x0;
2116 isa_ranges
[5] = 0x00010000;
2117 prom_setprop(isa
, name
, "ranges",
2118 isa_ranges
, sizeof(isa_ranges
));
2121 #define CPC925_MC_START 0xf8000000
2122 #define CPC925_MC_LENGTH 0x1000000
2123 /* The values for memory-controller don't have right number of cells */
2124 static void __init
fixup_device_tree_maple_memory_controller(void)
2128 char *name
= "/hostbridge@f8000000";
2129 struct prom_t
*_prom
= &RELOC(prom
);
2132 mc
= call_prom("finddevice", 1, 1, ADDR(name
));
2133 if (!PHANDLE_VALID(mc
))
2136 if (prom_getproplen(mc
, "reg") != 8)
2139 prom_getprop(_prom
->root
, "#address-cells", &ac
, sizeof(ac
));
2140 prom_getprop(_prom
->root
, "#size-cells", &sc
, sizeof(sc
));
2141 if ((ac
!= 2) || (sc
!= 2))
2144 if (prom_getprop(mc
, "reg", mc_reg
, sizeof(mc_reg
)) == PROM_ERROR
)
2147 if (mc_reg
[0] != CPC925_MC_START
|| mc_reg
[1] != CPC925_MC_LENGTH
)
2150 prom_printf("Fixing up bogus hostbridge on Maple...\n");
2153 mc_reg
[1] = CPC925_MC_START
;
2155 mc_reg
[3] = CPC925_MC_LENGTH
;
2156 prom_setprop(mc
, name
, "reg", mc_reg
, sizeof(mc_reg
));
2159 #define fixup_device_tree_maple()
2160 #define fixup_device_tree_maple_memory_controller()
2163 #ifdef CONFIG_PPC_CHRP
2165 * Pegasos and BriQ lacks the "ranges" property in the isa node
2166 * Pegasos needs decimal IRQ 14/15, not hexadecimal
2167 * Pegasos has the IDE configured in legacy mode, but advertised as native
2169 static void __init
fixup_device_tree_chrp(void)
2173 u32 rloc
= 0x01006000; /* IO space; PCI device = 12 */
2177 name
= "/pci@80000000/isa@c";
2178 ph
= call_prom("finddevice", 1, 1, ADDR(name
));
2179 if (!PHANDLE_VALID(ph
)) {
2180 name
= "/pci@ff500000/isa@6";
2181 ph
= call_prom("finddevice", 1, 1, ADDR(name
));
2182 rloc
= 0x01003000; /* IO space; PCI device = 6 */
2184 if (PHANDLE_VALID(ph
)) {
2185 rc
= prom_getproplen(ph
, "ranges");
2186 if (rc
== 0 || rc
== PROM_ERROR
) {
2187 prom_printf("Fixing up missing ISA range on Pegasos...\n");
2194 prop
[5] = 0x00010000;
2195 prom_setprop(ph
, name
, "ranges", prop
, sizeof(prop
));
2199 name
= "/pci@80000000/ide@C,1";
2200 ph
= call_prom("finddevice", 1, 1, ADDR(name
));
2201 if (PHANDLE_VALID(ph
)) {
2202 prom_printf("Fixing up IDE interrupt on Pegasos...\n");
2205 prom_setprop(ph
, name
, "interrupts", prop
, 2*sizeof(u32
));
2206 prom_printf("Fixing up IDE class-code on Pegasos...\n");
2207 rc
= prom_getprop(ph
, "class-code", prop
, sizeof(u32
));
2208 if (rc
== sizeof(u32
)) {
2210 prom_setprop(ph
, name
, "class-code", prop
, sizeof(u32
));
2215 #define fixup_device_tree_chrp()
2218 #if defined(CONFIG_PPC64) && defined(CONFIG_PPC_PMAC)
2219 static void __init
fixup_device_tree_pmac(void)
2221 phandle u3
, i2c
, mpic
;
2226 /* Some G5s have a missing interrupt definition, fix it up here */
2227 u3
= call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000"));
2228 if (!PHANDLE_VALID(u3
))
2230 i2c
= call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000/i2c@f8001000"));
2231 if (!PHANDLE_VALID(i2c
))
2233 mpic
= call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000/mpic@f8040000"));
2234 if (!PHANDLE_VALID(mpic
))
2237 /* check if proper rev of u3 */
2238 if (prom_getprop(u3
, "device-rev", &u3_rev
, sizeof(u3_rev
))
2241 if (u3_rev
< 0x35 || u3_rev
> 0x39)
2243 /* does it need fixup ? */
2244 if (prom_getproplen(i2c
, "interrupts") > 0)
2247 prom_printf("fixing up bogus interrupts for u3 i2c...\n");
2249 /* interrupt on this revision of u3 is number 0 and level */
2252 prom_setprop(i2c
, "/u3@0,f8000000/i2c@f8001000", "interrupts",
2253 &interrupts
, sizeof(interrupts
));
2255 prom_setprop(i2c
, "/u3@0,f8000000/i2c@f8001000", "interrupt-parent",
2256 &parent
, sizeof(parent
));
2259 #define fixup_device_tree_pmac()
2262 #ifdef CONFIG_PPC_EFIKA
2264 * The MPC5200 FEC driver requires an phy-handle property to tell it how
2265 * to talk to the phy. If the phy-handle property is missing, then this
2266 * function is called to add the appropriate nodes and link it to the
2269 static void __init
fixup_device_tree_efika_add_phy(void)
2275 /* Check if /builtin/ethernet exists - bail if it doesn't */
2276 node
= call_prom("finddevice", 1, 1, ADDR("/builtin/ethernet"));
2277 if (!PHANDLE_VALID(node
))
2280 /* Check if the phy-handle property exists - bail if it does */
2281 rv
= prom_getprop(node
, "phy-handle", prop
, sizeof(prop
));
2286 * At this point the ethernet device doesn't have a phy described.
2287 * Now we need to add the missing phy node and linkage
2290 /* Check for an MDIO bus node - if missing then create one */
2291 node
= call_prom("finddevice", 1, 1, ADDR("/builtin/mdio"));
2292 if (!PHANDLE_VALID(node
)) {
2293 prom_printf("Adding Ethernet MDIO node\n");
2294 call_prom("interpret", 1, 1,
2295 " s\" /builtin\" find-device"
2297 " 1 encode-int s\" #address-cells\" property"
2298 " 0 encode-int s\" #size-cells\" property"
2299 " s\" mdio\" device-name"
2300 " s\" fsl,mpc5200b-mdio\" encode-string"
2301 " s\" compatible\" property"
2302 " 0xf0003000 0x400 reg"
2304 " 0x5 encode-int encode+"
2305 " 0x3 encode-int encode+"
2306 " s\" interrupts\" property"
2310 /* Check for a PHY device node - if missing then create one and
2311 * give it's phandle to the ethernet node */
2312 node
= call_prom("finddevice", 1, 1,
2313 ADDR("/builtin/mdio/ethernet-phy"));
2314 if (!PHANDLE_VALID(node
)) {
2315 prom_printf("Adding Ethernet PHY node\n");
2316 call_prom("interpret", 1, 1,
2317 " s\" /builtin/mdio\" find-device"
2319 " s\" ethernet-phy\" device-name"
2320 " 0x10 encode-int s\" reg\" property"
2324 " s\" /builtin/ethernet\" find-device"
2326 " s\" phy-handle\" property"
2331 static void __init
fixup_device_tree_efika(void)
2333 int sound_irq
[3] = { 2, 2, 0 };
2334 int bcomm_irq
[3*16] = { 3,0,0, 3,1,0, 3,2,0, 3,3,0,
2335 3,4,0, 3,5,0, 3,6,0, 3,7,0,
2336 3,8,0, 3,9,0, 3,10,0, 3,11,0,
2337 3,12,0, 3,13,0, 3,14,0, 3,15,0 };
2342 /* Check if we're really running on a EFIKA */
2343 node
= call_prom("finddevice", 1, 1, ADDR("/"));
2344 if (!PHANDLE_VALID(node
))
2347 rv
= prom_getprop(node
, "model", prop
, sizeof(prop
));
2348 if (rv
== PROM_ERROR
)
2350 if (strcmp(prop
, "EFIKA5K2"))
2353 prom_printf("Applying EFIKA device tree fixups\n");
2355 /* Claiming to be 'chrp' is death */
2356 node
= call_prom("finddevice", 1, 1, ADDR("/"));
2357 rv
= prom_getprop(node
, "device_type", prop
, sizeof(prop
));
2358 if (rv
!= PROM_ERROR
&& (strcmp(prop
, "chrp") == 0))
2359 prom_setprop(node
, "/", "device_type", "efika", sizeof("efika"));
2361 /* CODEGEN,description is exposed in /proc/cpuinfo so
2363 rv
= prom_getprop(node
, "CODEGEN,description", prop
, sizeof(prop
));
2364 if (rv
!= PROM_ERROR
&& (strstr(prop
, "CHRP")))
2365 prom_setprop(node
, "/", "CODEGEN,description",
2366 "Efika 5200B PowerPC System",
2367 sizeof("Efika 5200B PowerPC System"));
2369 /* Fixup bestcomm interrupts property */
2370 node
= call_prom("finddevice", 1, 1, ADDR("/builtin/bestcomm"));
2371 if (PHANDLE_VALID(node
)) {
2372 len
= prom_getproplen(node
, "interrupts");
2374 prom_printf("Fixing bestcomm interrupts property\n");
2375 prom_setprop(node
, "/builtin/bestcom", "interrupts",
2376 bcomm_irq
, sizeof(bcomm_irq
));
2380 /* Fixup sound interrupts property */
2381 node
= call_prom("finddevice", 1, 1, ADDR("/builtin/sound"));
2382 if (PHANDLE_VALID(node
)) {
2383 rv
= prom_getprop(node
, "interrupts", prop
, sizeof(prop
));
2384 if (rv
== PROM_ERROR
) {
2385 prom_printf("Adding sound interrupts property\n");
2386 prom_setprop(node
, "/builtin/sound", "interrupts",
2387 sound_irq
, sizeof(sound_irq
));
2391 /* Make sure ethernet phy-handle property exists */
2392 fixup_device_tree_efika_add_phy();
2395 #define fixup_device_tree_efika()
2398 static void __init
fixup_device_tree(void)
2400 fixup_device_tree_maple();
2401 fixup_device_tree_maple_memory_controller();
2402 fixup_device_tree_chrp();
2403 fixup_device_tree_pmac();
2404 fixup_device_tree_efika();
2407 static void __init
prom_find_boot_cpu(void)
2409 struct prom_t
*_prom
= &RELOC(prom
);
2415 if (prom_getprop(_prom
->chosen
, "cpu", &prom_cpu
, sizeof(prom_cpu
)) <= 0)
2418 cpu_pkg
= call_prom("instance-to-package", 1, 1, prom_cpu
);
2420 prom_getprop(cpu_pkg
, "reg", &getprop_rval
, sizeof(getprop_rval
));
2421 _prom
->cpu
= getprop_rval
;
2423 prom_debug("Booting CPU hw index = 0x%x\n", _prom
->cpu
);
2426 static void __init
prom_check_initrd(unsigned long r3
, unsigned long r4
)
2428 #ifdef CONFIG_BLK_DEV_INITRD
2429 struct prom_t
*_prom
= &RELOC(prom
);
2431 if (r3
&& r4
&& r4
!= 0xdeadbeef) {
2434 RELOC(prom_initrd_start
) = is_kernel_addr(r3
) ? __pa(r3
) : r3
;
2435 RELOC(prom_initrd_end
) = RELOC(prom_initrd_start
) + r4
;
2437 val
= RELOC(prom_initrd_start
);
2438 prom_setprop(_prom
->chosen
, "/chosen", "linux,initrd-start",
2440 val
= RELOC(prom_initrd_end
);
2441 prom_setprop(_prom
->chosen
, "/chosen", "linux,initrd-end",
2444 reserve_mem(RELOC(prom_initrd_start
),
2445 RELOC(prom_initrd_end
) - RELOC(prom_initrd_start
));
2447 prom_debug("initrd_start=0x%x\n", RELOC(prom_initrd_start
));
2448 prom_debug("initrd_end=0x%x\n", RELOC(prom_initrd_end
));
2450 #endif /* CONFIG_BLK_DEV_INITRD */
2454 * We enter here early on, when the Open Firmware prom is still
2455 * handling exceptions and the MMU hash table for us.
2458 unsigned long __init
prom_init(unsigned long r3
, unsigned long r4
,
2460 unsigned long r6
, unsigned long r7
,
2461 unsigned long kbase
)
2463 struct prom_t
*_prom
;
2467 unsigned long offset
= reloc_offset();
2471 _prom
= &RELOC(prom
);
2474 * First zero the BSS
2476 memset(&RELOC(__bss_start
), 0, __bss_stop
- __bss_start
);
2479 * Init interface to Open Firmware, get some node references,
2482 prom_init_client_services(pp
);
2485 * See if this OF is old enough that we need to do explicit maps
2486 * and other workarounds
2491 * Init prom stdout device
2495 prom_printf("Preparing to boot %s", RELOC(linux_banner
));
2498 * Get default machine type. At this point, we do not differentiate
2499 * between pSeries SMP and pSeries LPAR
2501 RELOC(of_platform
) = prom_find_machine_type();
2503 #ifndef CONFIG_RELOCATABLE
2504 /* Bail if this is a kdump kernel. */
2505 if (PHYSICAL_START
> 0)
2506 prom_panic("Error: You can't boot a kdump kernel from OF!\n");
2510 * Check for an initrd
2512 prom_check_initrd(r3
, r4
);
2514 #ifdef CONFIG_PPC_PSERIES
2516 * On pSeries, inform the firmware about our capabilities
2518 if (RELOC(of_platform
) == PLATFORM_PSERIES
||
2519 RELOC(of_platform
) == PLATFORM_PSERIES_LPAR
)
2520 prom_send_capabilities();
2524 * Copy the CPU hold code
2526 if (RELOC(of_platform
) != PLATFORM_POWERMAC
)
2527 copy_and_flush(0, kbase
, 0x100, 0);
2530 * Do early parsing of command line
2532 early_cmdline_parse();
2535 * Initialize memory management within prom_init
2540 * Determine which cpu is actually running right _now_
2542 prom_find_boot_cpu();
2545 * Initialize display devices
2547 prom_check_displays();
2551 * Initialize IOMMU (TCE tables) on pSeries. Do that before anything else
2552 * that uses the allocator, we need to make sure we get the top of memory
2553 * available for us here...
2555 if (RELOC(of_platform
) == PLATFORM_PSERIES
)
2556 prom_initialize_tce_table();
2560 * On non-powermacs, try to instantiate RTAS and puts all CPUs
2561 * in spin-loops. PowerMacs don't have a working RTAS and use
2562 * a different way to spin CPUs
2564 if (RELOC(of_platform
) != PLATFORM_POWERMAC
) {
2565 prom_instantiate_rtas();
2570 * Fill in some infos for use by the kernel later on
2572 if (RELOC(prom_memory_limit
))
2573 prom_setprop(_prom
->chosen
, "/chosen", "linux,memory-limit",
2574 &RELOC(prom_memory_limit
),
2575 sizeof(prom_memory_limit
));
2577 if (RELOC(prom_iommu_off
))
2578 prom_setprop(_prom
->chosen
, "/chosen", "linux,iommu-off",
2581 if (RELOC(prom_iommu_force_on
))
2582 prom_setprop(_prom
->chosen
, "/chosen", "linux,iommu-force-on",
2585 if (RELOC(prom_tce_alloc_start
)) {
2586 prom_setprop(_prom
->chosen
, "/chosen", "linux,tce-alloc-start",
2587 &RELOC(prom_tce_alloc_start
),
2588 sizeof(prom_tce_alloc_start
));
2589 prom_setprop(_prom
->chosen
, "/chosen", "linux,tce-alloc-end",
2590 &RELOC(prom_tce_alloc_end
),
2591 sizeof(prom_tce_alloc_end
));
2596 * Fixup any known bugs in the device-tree
2598 fixup_device_tree();
2601 * Now finally create the flattened device-tree
2603 prom_printf("copying OF device tree...\n");
2604 flatten_device_tree();
2607 * in case stdin is USB and still active on IBM machines...
2608 * Unfortunately quiesce crashes on some powermacs if we have
2609 * closed stdin already (in particular the powerbook 101).
2611 if (RELOC(of_platform
) != PLATFORM_POWERMAC
)
2615 * Call OF "quiesce" method to shut down pending DMA's from
2618 prom_printf("Calling quiesce...\n");
2619 call_prom("quiesce", 0, 0);
2622 * And finally, call the kernel passing it the flattened device
2623 * tree and NULL as r5, thus triggering the new entry point which
2624 * is common to us and kexec
2626 hdr
= RELOC(dt_header_start
);
2627 prom_printf("returning from prom_init\n");
2628 prom_debug("->dt_header_start=0x%x\n", hdr
);
2631 reloc_got2(-offset
);
2634 __start(hdr
, kbase
, 0);