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1/*
2 * Procedures for interfacing to Open Firmware.
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 * 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.
14 */
15
16#undef DEBUG_PROM
17
18#include <stdarg.h>
19#include <linux/config.h>
20#include <linux/kernel.h>
21#include <linux/string.h>
22#include <linux/init.h>
23#include <linux/threads.h>
24#include <linux/spinlock.h>
25#include <linux/types.h>
26#include <linux/pci.h>
27#include <linux/proc_fs.h>
28#include <linux/stringify.h>
29#include <linux/delay.h>
30#include <linux/initrd.h>
31#include <linux/bitops.h>
32#include <asm/prom.h>
33#include <asm/rtas.h>
34#include <asm/page.h>
35#include <asm/processor.h>
36#include <asm/irq.h>
37#include <asm/io.h>
38#include <asm/smp.h>
39#include <asm/system.h>
40#include <asm/mmu.h>
41#include <asm/pgtable.h>
42#include <asm/pci.h>
43#include <asm/iommu.h>
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44#include <asm/btext.h>
45#include <asm/sections.h>
46#include <asm/machdep.h>
47
48#ifdef CONFIG_LOGO_LINUX_CLUT224
49#include <linux/linux_logo.h>
50extern const struct linux_logo logo_linux_clut224;
51#endif
52
53/*
54 * Properties whose value is longer than this get excluded from our
55 * copy of the device tree. This value does need to be big enough to
56 * ensure that we don't lose things like the interrupt-map property
57 * on a PCI-PCI bridge.
58 */
59#define MAX_PROPERTY_LENGTH (1UL * 1024 * 1024)
60
61/*
62 * Eventually bump that one up
63 */
64#define DEVTREE_CHUNK_SIZE 0x100000
65
66/*
67 * This is the size of the local memory reserve map that gets copied
68 * into the boot params passed to the kernel. That size is totally
69 * flexible as the kernel just reads the list until it encounters an
70 * entry with size 0, so it can be changed without breaking binary
71 * compatibility
72 */
73#define MEM_RESERVE_MAP_SIZE 8
74
75/*
76 * prom_init() is called very early on, before the kernel text
77 * and data have been mapped to KERNELBASE. At this point the code
78 * is running at whatever address it has been loaded at.
79 * On ppc32 we compile with -mrelocatable, which means that references
80 * to extern and static variables get relocated automatically.
81 * On ppc64 we have to relocate the references explicitly with
82 * RELOC. (Note that strings count as static variables.)
83 *
84 * Because OF may have mapped I/O devices into the area starting at
85 * KERNELBASE, particularly on CHRP machines, we can't safely call
86 * OF once the kernel has been mapped to KERNELBASE. Therefore all
87 * OF calls must be done within prom_init().
88 *
89 * ADDR is used in calls to call_prom. The 4th and following
90 * arguments to call_prom should be 32-bit values.
91 * On ppc64, 64 bit values are truncated to 32 bits (and
92 * fortunately don't get interpreted as two arguments).
93 */
94#ifdef CONFIG_PPC64
95#define RELOC(x) (*PTRRELOC(&(x)))
96#define ADDR(x) (u32) add_reloc_offset((unsigned long)(x))
a23414be 97#define OF_WORKAROUNDS 0
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98#else
99#define RELOC(x) (x)
100#define ADDR(x) (u32) (x)
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101#define OF_WORKAROUNDS of_workarounds
102int of_workarounds;
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103#endif
104
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105#define OF_WA_CLAIM 1 /* do phys/virt claim separately, then map */
106#define OF_WA_LONGTRAIL 2 /* work around longtrail bugs */
107
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108#define PROM_BUG() do { \
109 prom_printf("kernel BUG at %s line 0x%x!\n", \
110 RELOC(__FILE__), __LINE__); \
111 __asm__ __volatile__(".long " BUG_ILLEGAL_INSTR); \
112} while (0)
113
114#ifdef DEBUG_PROM
115#define prom_debug(x...) prom_printf(x)
116#else
117#define prom_debug(x...)
118#endif
119
120#ifdef CONFIG_PPC32
121#define PLATFORM_POWERMAC _MACH_Pmac
122#define PLATFORM_CHRP _MACH_chrp
123#endif
124
125
126typedef u32 prom_arg_t;
127
128struct prom_args {
129 u32 service;
130 u32 nargs;
131 u32 nret;
132 prom_arg_t args[10];
133};
134
135struct prom_t {
136 ihandle root;
a23414be 137 phandle chosen;
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138 int cpu;
139 ihandle stdout;
a575b807 140 ihandle mmumap;
a23414be 141 ihandle memory;
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142};
143
144struct mem_map_entry {
145 unsigned long base;
146 unsigned long size;
147};
148
149typedef u32 cell_t;
150
151extern void __start(unsigned long r3, unsigned long r4, unsigned long r5);
152
153#ifdef CONFIG_PPC64
c4988820 154extern int enter_prom(struct prom_args *args, unsigned long entry);
9b6b563c 155#else
c4988820 156static inline int enter_prom(struct prom_args *args, unsigned long entry)
9b6b563c 157{
c4988820 158 return ((int (*)(struct prom_args *))entry)(args);
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159}
160#endif
161
162extern void copy_and_flush(unsigned long dest, unsigned long src,
163 unsigned long size, unsigned long offset);
164
165/* prom structure */
166static struct prom_t __initdata prom;
167
168static unsigned long prom_entry __initdata;
169
170#define PROM_SCRATCH_SIZE 256
171
172static char __initdata of_stdout_device[256];
173static char __initdata prom_scratch[PROM_SCRATCH_SIZE];
174
175static unsigned long __initdata dt_header_start;
176static unsigned long __initdata dt_struct_start, dt_struct_end;
177static unsigned long __initdata dt_string_start, dt_string_end;
178
179static unsigned long __initdata prom_initrd_start, prom_initrd_end;
180
181#ifdef CONFIG_PPC64
182static int __initdata iommu_force_on;
183static int __initdata ppc64_iommu_off;
184static unsigned long __initdata prom_tce_alloc_start;
185static unsigned long __initdata prom_tce_alloc_end;
186#endif
187
188static int __initdata of_platform;
189
190static char __initdata prom_cmd_line[COMMAND_LINE_SIZE];
191
192static unsigned long __initdata prom_memory_limit;
193
194static unsigned long __initdata alloc_top;
195static unsigned long __initdata alloc_top_high;
196static unsigned long __initdata alloc_bottom;
197static unsigned long __initdata rmo_top;
198static unsigned long __initdata ram_top;
199
200static struct mem_map_entry __initdata mem_reserve_map[MEM_RESERVE_MAP_SIZE];
201static int __initdata mem_reserve_cnt;
202
203static cell_t __initdata regbuf[1024];
204
205
206#define MAX_CPU_THREADS 2
207
208/* TO GO */
209#ifdef CONFIG_HMT
210struct {
211 unsigned int pir;
212 unsigned int threadid;
213} hmt_thread_data[NR_CPUS];
214#endif /* CONFIG_HMT */
215
216/*
217 * Error results ... some OF calls will return "-1" on error, some
218 * will return 0, some will return either. To simplify, here are
219 * macros to use with any ihandle or phandle return value to check if
220 * it is valid
221 */
222
223#define PROM_ERROR (-1u)
224#define PHANDLE_VALID(p) ((p) != 0 && (p) != PROM_ERROR)
225#define IHANDLE_VALID(i) ((i) != 0 && (i) != PROM_ERROR)
226
227
228/* This is the one and *ONLY* place where we actually call open
229 * firmware.
230 */
231
232static int __init call_prom(const char *service, int nargs, int nret, ...)
233{
234 int i;
235 struct prom_args args;
236 va_list list;
237
238 args.service = ADDR(service);
239 args.nargs = nargs;
240 args.nret = nret;
241
242 va_start(list, nret);
243 for (i = 0; i < nargs; i++)
244 args.args[i] = va_arg(list, prom_arg_t);
245 va_end(list);
246
247 for (i = 0; i < nret; i++)
248 args.args[nargs+i] = 0;
249
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250 if (enter_prom(&args, RELOC(prom_entry)) < 0)
251 return PROM_ERROR;
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252
253 return (nret > 0) ? args.args[nargs] : 0;
254}
255
256static int __init call_prom_ret(const char *service, int nargs, int nret,
257 prom_arg_t *rets, ...)
258{
259 int i;
260 struct prom_args args;
261 va_list list;
262
263 args.service = ADDR(service);
264 args.nargs = nargs;
265 args.nret = nret;
266
267 va_start(list, rets);
268 for (i = 0; i < nargs; i++)
269 args.args[i] = va_arg(list, prom_arg_t);
270 va_end(list);
271
272 for (i = 0; i < nret; i++)
273 rets[nargs+i] = 0;
274
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275 if (enter_prom(&args, RELOC(prom_entry)) < 0)
276 return PROM_ERROR;
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277
278 if (rets != NULL)
279 for (i = 1; i < nret; ++i)
c5200c90 280 rets[i-1] = args.args[nargs+i];
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281
282 return (nret > 0) ? args.args[nargs] : 0;
283}
284
285
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286static void __init prom_print(const char *msg)
287{
288 const char *p, *q;
289 struct prom_t *_prom = &RELOC(prom);
290
291 if (_prom->stdout == 0)
292 return;
293
294 for (p = msg; *p != 0; p = q) {
295 for (q = p; *q != 0 && *q != '\n'; ++q)
296 ;
297 if (q > p)
298 call_prom("write", 3, 1, _prom->stdout, p, q - p);
299 if (*q == 0)
300 break;
301 ++q;
302 call_prom("write", 3, 1, _prom->stdout, ADDR("\r\n"), 2);
303 }
304}
305
306
307static void __init prom_print_hex(unsigned long val)
308{
309 int i, nibbles = sizeof(val)*2;
310 char buf[sizeof(val)*2+1];
311 struct prom_t *_prom = &RELOC(prom);
312
313 for (i = nibbles-1; i >= 0; i--) {
314 buf[i] = (val & 0xf) + '0';
315 if (buf[i] > '9')
316 buf[i] += ('a'-'0'-10);
317 val >>= 4;
318 }
319 buf[nibbles] = '\0';
320 call_prom("write", 3, 1, _prom->stdout, buf, nibbles);
321}
322
323
324static void __init prom_printf(const char *format, ...)
325{
326 const char *p, *q, *s;
327 va_list args;
328 unsigned long v;
329 struct prom_t *_prom = &RELOC(prom);
330
331 va_start(args, format);
332#ifdef CONFIG_PPC64
333 format = PTRRELOC(format);
334#endif
335 for (p = format; *p != 0; p = q) {
336 for (q = p; *q != 0 && *q != '\n' && *q != '%'; ++q)
337 ;
338 if (q > p)
339 call_prom("write", 3, 1, _prom->stdout, p, q - p);
340 if (*q == 0)
341 break;
342 if (*q == '\n') {
343 ++q;
344 call_prom("write", 3, 1, _prom->stdout,
345 ADDR("\r\n"), 2);
346 continue;
347 }
348 ++q;
349 if (*q == 0)
350 break;
351 switch (*q) {
352 case 's':
353 ++q;
354 s = va_arg(args, const char *);
355 prom_print(s);
356 break;
357 case 'x':
358 ++q;
359 v = va_arg(args, unsigned long);
360 prom_print_hex(v);
361 break;
362 }
363 }
364}
365
366
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367static unsigned int __init prom_claim(unsigned long virt, unsigned long size,
368 unsigned long align)
369{
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370 struct prom_t *_prom = &RELOC(prom);
371
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372 if (align == 0 && (OF_WORKAROUNDS & OF_WA_CLAIM)) {
373 /*
374 * Old OF requires we claim physical and virtual separately
375 * and then map explicitly (assuming virtual mode)
376 */
377 int ret;
378 prom_arg_t result;
379
380 ret = call_prom_ret("call-method", 5, 2, &result,
381 ADDR("claim"), _prom->memory,
382 align, size, virt);
383 if (ret != 0 || result == -1)
384 return -1;
385 ret = call_prom_ret("call-method", 5, 2, &result,
386 ADDR("claim"), _prom->mmumap,
387 align, size, virt);
388 if (ret != 0) {
389 call_prom("call-method", 4, 1, ADDR("release"),
390 _prom->memory, size, virt);
391 return -1;
392 }
393 /* the 0x12 is M (coherence) + PP == read/write */
a575b807 394 call_prom("call-method", 6, 1,
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395 ADDR("map"), _prom->mmumap, 0x12, size, virt, virt);
396 return virt;
397 }
398 return call_prom("claim", 3, 1, (prom_arg_t)virt, (prom_arg_t)size,
399 (prom_arg_t)align);
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400}
401
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402static void __init __attribute__((noreturn)) prom_panic(const char *reason)
403{
404#ifdef CONFIG_PPC64
405 reason = PTRRELOC(reason);
406#endif
407 prom_print(reason);
408 /* ToDo: should put up an SRC here on p/iSeries */
409 call_prom("exit", 0, 0);
410
411 for (;;) /* should never get here */
412 ;
413}
414
415
416static int __init prom_next_node(phandle *nodep)
417{
418 phandle node;
419
420 if ((node = *nodep) != 0
421 && (*nodep = call_prom("child", 1, 1, node)) != 0)
422 return 1;
423 if ((*nodep = call_prom("peer", 1, 1, node)) != 0)
424 return 1;
425 for (;;) {
426 if ((node = call_prom("parent", 1, 1, node)) == 0)
427 return 0;
428 if ((*nodep = call_prom("peer", 1, 1, node)) != 0)
429 return 1;
430 }
431}
432
21fe3301 433static int inline prom_getprop(phandle node, const char *pname,
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434 void *value, size_t valuelen)
435{
436 return call_prom("getprop", 4, 1, node, ADDR(pname),
437 (u32)(unsigned long) value, (u32) valuelen);
438}
439
21fe3301 440static int inline prom_getproplen(phandle node, const char *pname)
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441{
442 return call_prom("getproplen", 2, 1, node, ADDR(pname));
443}
444
a23414be 445static void add_string(char **str, const char *q)
9b6b563c 446{
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447 char *p = *str;
448
449 while (*q)
450 *p++ = *q++;
451 *p++ = ' ';
452 *str = p;
453}
454
455static char *tohex(unsigned int x)
456{
457 static char digits[] = "0123456789abcdef";
458 static char result[9];
459 int i;
460
461 result[8] = 0;
462 i = 8;
463 do {
464 --i;
465 result[i] = digits[x & 0xf];
466 x >>= 4;
467 } while (x != 0 && i > 0);
468 return &result[i];
469}
470
471static int __init prom_setprop(phandle node, const char *nodename,
472 const char *pname, void *value, size_t valuelen)
473{
474 char cmd[256], *p;
475
476 if (!(OF_WORKAROUNDS & OF_WA_LONGTRAIL))
477 return call_prom("setprop", 4, 1, node, ADDR(pname),
478 (u32)(unsigned long) value, (u32) valuelen);
479
480 /* gah... setprop doesn't work on longtrail, have to use interpret */
481 p = cmd;
482 add_string(&p, "dev");
483 add_string(&p, nodename);
484 add_string(&p, tohex((u32)(unsigned long) value));
485 add_string(&p, tohex(valuelen));
486 add_string(&p, tohex(ADDR(pname)));
487 add_string(&p, tohex(strlen(RELOC(pname))));
488 add_string(&p, "property");
489 *p = 0;
490 return call_prom("interpret", 1, 1, (u32)(unsigned long) cmd);
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491}
492
493/* We can't use the standard versions because of RELOC headaches. */
494#define isxdigit(c) (('0' <= (c) && (c) <= '9') \
495 || ('a' <= (c) && (c) <= 'f') \
496 || ('A' <= (c) && (c) <= 'F'))
497
498#define isdigit(c) ('0' <= (c) && (c) <= '9')
499#define islower(c) ('a' <= (c) && (c) <= 'z')
500#define toupper(c) (islower(c) ? ((c) - 'a' + 'A') : (c))
501
502unsigned long prom_strtoul(const char *cp, const char **endp)
503{
504 unsigned long result = 0, base = 10, value;
505
506 if (*cp == '0') {
507 base = 8;
508 cp++;
509 if (toupper(*cp) == 'X') {
510 cp++;
511 base = 16;
512 }
513 }
514
515 while (isxdigit(*cp) &&
516 (value = isdigit(*cp) ? *cp - '0' : toupper(*cp) - 'A' + 10) < base) {
517 result = result * base + value;
518 cp++;
519 }
520
521 if (endp)
522 *endp = cp;
523
524 return result;
525}
526
527unsigned long prom_memparse(const char *ptr, const char **retptr)
528{
529 unsigned long ret = prom_strtoul(ptr, retptr);
530 int shift = 0;
531
532 /*
533 * We can't use a switch here because GCC *may* generate a
534 * jump table which won't work, because we're not running at
535 * the address we're linked at.
536 */
537 if ('G' == **retptr || 'g' == **retptr)
538 shift = 30;
539
540 if ('M' == **retptr || 'm' == **retptr)
541 shift = 20;
542
543 if ('K' == **retptr || 'k' == **retptr)
544 shift = 10;
545
546 if (shift) {
547 ret <<= shift;
548 (*retptr)++;
549 }
550
551 return ret;
552}
553
554/*
555 * Early parsing of the command line passed to the kernel, used for
556 * "mem=x" and the options that affect the iommu
557 */
558static void __init early_cmdline_parse(void)
559{
560 struct prom_t *_prom = &RELOC(prom);
561 char *opt, *p;
562 int l = 0;
563
564 RELOC(prom_cmd_line[0]) = 0;
565 p = RELOC(prom_cmd_line);
566 if ((long)_prom->chosen > 0)
567 l = prom_getprop(_prom->chosen, "bootargs", p, COMMAND_LINE_SIZE-1);
568#ifdef CONFIG_CMDLINE
569 if (l == 0) /* dbl check */
570 strlcpy(RELOC(prom_cmd_line),
571 RELOC(CONFIG_CMDLINE), sizeof(prom_cmd_line));
572#endif /* CONFIG_CMDLINE */
573 prom_printf("command line: %s\n", RELOC(prom_cmd_line));
574
575#ifdef CONFIG_PPC64
576 opt = strstr(RELOC(prom_cmd_line), RELOC("iommu="));
577 if (opt) {
578 prom_printf("iommu opt is: %s\n", opt);
579 opt += 6;
580 while (*opt && *opt == ' ')
581 opt++;
582 if (!strncmp(opt, RELOC("off"), 3))
583 RELOC(ppc64_iommu_off) = 1;
584 else if (!strncmp(opt, RELOC("force"), 5))
585 RELOC(iommu_force_on) = 1;
586 }
587#endif
588
589 opt = strstr(RELOC(prom_cmd_line), RELOC("mem="));
590 if (opt) {
591 opt += 4;
592 RELOC(prom_memory_limit) = prom_memparse(opt, (const char **)&opt);
593#ifdef CONFIG_PPC64
594 /* Align to 16 MB == size of ppc64 large page */
595 RELOC(prom_memory_limit) = ALIGN(RELOC(prom_memory_limit), 0x1000000);
596#endif
597 }
598}
599
600#ifdef CONFIG_PPC_PSERIES
601/*
602 * To tell the firmware what our capabilities are, we have to pass
603 * it a fake 32-bit ELF header containing a couple of PT_NOTE sections
604 * that contain structures that contain the actual values.
605 */
606static struct fake_elf {
607 Elf32_Ehdr elfhdr;
608 Elf32_Phdr phdr[2];
609 struct chrpnote {
610 u32 namesz;
611 u32 descsz;
612 u32 type;
613 char name[8]; /* "PowerPC" */
614 struct chrpdesc {
615 u32 real_mode;
616 u32 real_base;
617 u32 real_size;
618 u32 virt_base;
619 u32 virt_size;
620 u32 load_base;
621 } chrpdesc;
622 } chrpnote;
623 struct rpanote {
624 u32 namesz;
625 u32 descsz;
626 u32 type;
627 char name[24]; /* "IBM,RPA-Client-Config" */
628 struct rpadesc {
629 u32 lpar_affinity;
630 u32 min_rmo_size;
631 u32 min_rmo_percent;
632 u32 max_pft_size;
633 u32 splpar;
634 u32 min_load;
635 u32 new_mem_def;
636 u32 ignore_me;
637 } rpadesc;
638 } rpanote;
639} fake_elf = {
640 .elfhdr = {
641 .e_ident = { 0x7f, 'E', 'L', 'F',
642 ELFCLASS32, ELFDATA2MSB, EV_CURRENT },
643 .e_type = ET_EXEC, /* yeah right */
644 .e_machine = EM_PPC,
645 .e_version = EV_CURRENT,
646 .e_phoff = offsetof(struct fake_elf, phdr),
647 .e_phentsize = sizeof(Elf32_Phdr),
648 .e_phnum = 2
649 },
650 .phdr = {
651 [0] = {
652 .p_type = PT_NOTE,
653 .p_offset = offsetof(struct fake_elf, chrpnote),
654 .p_filesz = sizeof(struct chrpnote)
655 }, [1] = {
656 .p_type = PT_NOTE,
657 .p_offset = offsetof(struct fake_elf, rpanote),
658 .p_filesz = sizeof(struct rpanote)
659 }
660 },
661 .chrpnote = {
662 .namesz = sizeof("PowerPC"),
663 .descsz = sizeof(struct chrpdesc),
664 .type = 0x1275,
665 .name = "PowerPC",
666 .chrpdesc = {
667 .real_mode = ~0U, /* ~0 means "don't care" */
668 .real_base = ~0U,
669 .real_size = ~0U,
670 .virt_base = ~0U,
671 .virt_size = ~0U,
672 .load_base = ~0U
673 },
674 },
675 .rpanote = {
676 .namesz = sizeof("IBM,RPA-Client-Config"),
677 .descsz = sizeof(struct rpadesc),
678 .type = 0x12759999,
679 .name = "IBM,RPA-Client-Config",
680 .rpadesc = {
681 .lpar_affinity = 0,
682 .min_rmo_size = 64, /* in megabytes */
683 .min_rmo_percent = 0,
684 .max_pft_size = 48, /* 2^48 bytes max PFT size */
685 .splpar = 1,
686 .min_load = ~0U,
687 .new_mem_def = 0
688 }
689 }
690};
691
692static void __init prom_send_capabilities(void)
693{
694 ihandle elfloader;
695
696 elfloader = call_prom("open", 1, 1, ADDR("/packages/elf-loader"));
697 if (elfloader == 0) {
698 prom_printf("couldn't open /packages/elf-loader\n");
699 return;
700 }
701 call_prom("call-method", 3, 1, ADDR("process-elf-header"),
702 elfloader, ADDR(&fake_elf));
703 call_prom("close", 1, 0, elfloader);
704}
705#endif
706
707/*
708 * Memory allocation strategy... our layout is normally:
709 *
710 * at 14Mb or more we have vmlinux, then a gap and initrd. In some
711 * rare cases, initrd might end up being before the kernel though.
712 * We assume this won't override the final kernel at 0, we have no
713 * provision to handle that in this version, but it should hopefully
714 * never happen.
715 *
716 * alloc_top is set to the top of RMO, eventually shrink down if the
717 * TCEs overlap
718 *
719 * alloc_bottom is set to the top of kernel/initrd
720 *
721 * from there, allocations are done this way : rtas is allocated
722 * topmost, and the device-tree is allocated from the bottom. We try
723 * to grow the device-tree allocation as we progress. If we can't,
724 * then we fail, we don't currently have a facility to restart
725 * elsewhere, but that shouldn't be necessary.
726 *
727 * Note that calls to reserve_mem have to be done explicitly, memory
728 * allocated with either alloc_up or alloc_down isn't automatically
729 * reserved.
730 */
731
732
733/*
734 * Allocates memory in the RMO upward from the kernel/initrd
735 *
736 * When align is 0, this is a special case, it means to allocate in place
737 * at the current location of alloc_bottom or fail (that is basically
738 * extending the previous allocation). Used for the device-tree flattening
739 */
740static unsigned long __init alloc_up(unsigned long size, unsigned long align)
741{
c4988820 742 unsigned long base = RELOC(alloc_bottom);
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743 unsigned long addr = 0;
744
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745 if (align)
746 base = _ALIGN_UP(base, align);
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747 prom_debug("alloc_up(%x, %x)\n", size, align);
748 if (RELOC(ram_top) == 0)
749 prom_panic("alloc_up() called with mem not initialized\n");
750
751 if (align)
752 base = _ALIGN_UP(RELOC(alloc_bottom), align);
753 else
754 base = RELOC(alloc_bottom);
755
756 for(; (base + size) <= RELOC(alloc_top);
757 base = _ALIGN_UP(base + 0x100000, align)) {
758 prom_debug(" trying: 0x%x\n\r", base);
759 addr = (unsigned long)prom_claim(base, size, 0);
c4988820 760 if (addr != PROM_ERROR && addr != 0)
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761 break;
762 addr = 0;
763 if (align == 0)
764 break;
765 }
766 if (addr == 0)
767 return 0;
768 RELOC(alloc_bottom) = addr;
769
770 prom_debug(" -> %x\n", addr);
771 prom_debug(" alloc_bottom : %x\n", RELOC(alloc_bottom));
772 prom_debug(" alloc_top : %x\n", RELOC(alloc_top));
773 prom_debug(" alloc_top_hi : %x\n", RELOC(alloc_top_high));
774 prom_debug(" rmo_top : %x\n", RELOC(rmo_top));
775 prom_debug(" ram_top : %x\n", RELOC(ram_top));
776
777 return addr;
778}
779
780/*
781 * Allocates memory downward, either from top of RMO, or if highmem
782 * is set, from the top of RAM. Note that this one doesn't handle
783 * failures. It does claim memory if highmem is not set.
784 */
785static unsigned long __init alloc_down(unsigned long size, unsigned long align,
786 int highmem)
787{
788 unsigned long base, addr = 0;
789
790 prom_debug("alloc_down(%x, %x, %s)\n", size, align,
791 highmem ? RELOC("(high)") : RELOC("(low)"));
792 if (RELOC(ram_top) == 0)
793 prom_panic("alloc_down() called with mem not initialized\n");
794
795 if (highmem) {
796 /* Carve out storage for the TCE table. */
797 addr = _ALIGN_DOWN(RELOC(alloc_top_high) - size, align);
798 if (addr <= RELOC(alloc_bottom))
799 return 0;
800 /* Will we bump into the RMO ? If yes, check out that we
801 * didn't overlap existing allocations there, if we did,
802 * we are dead, we must be the first in town !
803 */
804 if (addr < RELOC(rmo_top)) {
805 /* Good, we are first */
806 if (RELOC(alloc_top) == RELOC(rmo_top))
807 RELOC(alloc_top) = RELOC(rmo_top) = addr;
808 else
809 return 0;
810 }
811 RELOC(alloc_top_high) = addr;
812 goto bail;
813 }
814
815 base = _ALIGN_DOWN(RELOC(alloc_top) - size, align);
816 for (; base > RELOC(alloc_bottom);
817 base = _ALIGN_DOWN(base - 0x100000, align)) {
818 prom_debug(" trying: 0x%x\n\r", base);
819 addr = (unsigned long)prom_claim(base, size, 0);
c4988820 820 if (addr != PROM_ERROR && addr != 0)
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821 break;
822 addr = 0;
823 }
824 if (addr == 0)
825 return 0;
826 RELOC(alloc_top) = addr;
827
828 bail:
829 prom_debug(" -> %x\n", addr);
830 prom_debug(" alloc_bottom : %x\n", RELOC(alloc_bottom));
831 prom_debug(" alloc_top : %x\n", RELOC(alloc_top));
832 prom_debug(" alloc_top_hi : %x\n", RELOC(alloc_top_high));
833 prom_debug(" rmo_top : %x\n", RELOC(rmo_top));
834 prom_debug(" ram_top : %x\n", RELOC(ram_top));
835
836 return addr;
837}
838
839/*
840 * Parse a "reg" cell
841 */
842static unsigned long __init prom_next_cell(int s, cell_t **cellp)
843{
844 cell_t *p = *cellp;
845 unsigned long r = 0;
846
847 /* Ignore more than 2 cells */
848 while (s > sizeof(unsigned long) / 4) {
849 p++;
850 s--;
851 }
852 r = *p++;
853#ifdef CONFIG_PPC64
35499c01 854 if (s > 1) {
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855 r <<= 32;
856 r |= *(p++);
857 }
858#endif
859 *cellp = p;
860 return r;
861}
862
863/*
864 * Very dumb function for adding to the memory reserve list, but
865 * we don't need anything smarter at this point
866 *
867 * XXX Eventually check for collisions. They should NEVER happen.
868 * If problems seem to show up, it would be a good start to track
869 * them down.
870 */
871static void reserve_mem(unsigned long base, unsigned long size)
872{
873 unsigned long top = base + size;
874 unsigned long cnt = RELOC(mem_reserve_cnt);
875
876 if (size == 0)
877 return;
878
879 /* We need to always keep one empty entry so that we
880 * have our terminator with "size" set to 0 since we are
881 * dumb and just copy this entire array to the boot params
882 */
883 base = _ALIGN_DOWN(base, PAGE_SIZE);
884 top = _ALIGN_UP(top, PAGE_SIZE);
885 size = top - base;
886
887 if (cnt >= (MEM_RESERVE_MAP_SIZE - 1))
888 prom_panic("Memory reserve map exhausted !\n");
889 RELOC(mem_reserve_map)[cnt].base = base;
890 RELOC(mem_reserve_map)[cnt].size = size;
891 RELOC(mem_reserve_cnt) = cnt + 1;
892}
893
894/*
895 * Initialize memory allocation mecanism, parse "memory" nodes and
896 * obtain that way the top of memory and RMO to setup out local allocator
897 */
898static void __init prom_init_mem(void)
899{
900 phandle node;
901 char *path, type[64];
902 unsigned int plen;
903 cell_t *p, *endp;
904 struct prom_t *_prom = &RELOC(prom);
905 u32 rac, rsc;
906
907 /*
908 * We iterate the memory nodes to find
909 * 1) top of RMO (first node)
910 * 2) top of memory
911 */
912 rac = 2;
913 prom_getprop(_prom->root, "#address-cells", &rac, sizeof(rac));
914 rsc = 1;
915 prom_getprop(_prom->root, "#size-cells", &rsc, sizeof(rsc));
916 prom_debug("root_addr_cells: %x\n", (unsigned long) rac);
917 prom_debug("root_size_cells: %x\n", (unsigned long) rsc);
918
919 prom_debug("scanning memory:\n");
920 path = RELOC(prom_scratch);
921
922 for (node = 0; prom_next_node(&node); ) {
923 type[0] = 0;
924 prom_getprop(node, "device_type", type, sizeof(type));
925
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926 if (type[0] == 0) {
927 /*
928 * CHRP Longtrail machines have no device_type
929 * on the memory node, so check the name instead...
930 */
931 prom_getprop(node, "name", type, sizeof(type));
932 }
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933 if (strcmp(type, RELOC("memory")))
934 continue;
c4988820 935
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936 plen = prom_getprop(node, "reg", RELOC(regbuf), sizeof(regbuf));
937 if (plen > sizeof(regbuf)) {
938 prom_printf("memory node too large for buffer !\n");
939 plen = sizeof(regbuf);
940 }
941 p = RELOC(regbuf);
942 endp = p + (plen / sizeof(cell_t));
943
944#ifdef DEBUG_PROM
945 memset(path, 0, PROM_SCRATCH_SIZE);
946 call_prom("package-to-path", 3, 1, node, path, PROM_SCRATCH_SIZE-1);
947 prom_debug(" node %s :\n", path);
948#endif /* DEBUG_PROM */
949
950 while ((endp - p) >= (rac + rsc)) {
951 unsigned long base, size;
952
953 base = prom_next_cell(rac, &p);
954 size = prom_next_cell(rsc, &p);
955
956 if (size == 0)
957 continue;
958 prom_debug(" %x %x\n", base, size);
959 if (base == 0)
960 RELOC(rmo_top) = size;
961 if ((base + size) > RELOC(ram_top))
962 RELOC(ram_top) = base + size;
963 }
964 }
965
966 RELOC(alloc_bottom) = PAGE_ALIGN((unsigned long)&RELOC(_end) + 0x4000);
967
968 /* Check if we have an initrd after the kernel, if we do move our bottom
969 * point to after it
970 */
971 if (RELOC(prom_initrd_start)) {
972 if (RELOC(prom_initrd_end) > RELOC(alloc_bottom))
973 RELOC(alloc_bottom) = PAGE_ALIGN(RELOC(prom_initrd_end));
974 }
975
976 /*
977 * If prom_memory_limit is set we reduce the upper limits *except* for
978 * alloc_top_high. This must be the real top of RAM so we can put
979 * TCE's up there.
980 */
981
982 RELOC(alloc_top_high) = RELOC(ram_top);
983
984 if (RELOC(prom_memory_limit)) {
985 if (RELOC(prom_memory_limit) <= RELOC(alloc_bottom)) {
986 prom_printf("Ignoring mem=%x <= alloc_bottom.\n",
987 RELOC(prom_memory_limit));
988 RELOC(prom_memory_limit) = 0;
989 } else if (RELOC(prom_memory_limit) >= RELOC(ram_top)) {
990 prom_printf("Ignoring mem=%x >= ram_top.\n",
991 RELOC(prom_memory_limit));
992 RELOC(prom_memory_limit) = 0;
993 } else {
994 RELOC(ram_top) = RELOC(prom_memory_limit);
995 RELOC(rmo_top) = min(RELOC(rmo_top), RELOC(prom_memory_limit));
996 }
997 }
998
999 /*
1000 * Setup our top alloc point, that is top of RMO or top of
1001 * segment 0 when running non-LPAR.
1002 * Some RS64 machines have buggy firmware where claims up at
1003 * 1GB fail. Cap at 768MB as a workaround.
1004 * Since 768MB is plenty of room, and we need to cap to something
1005 * reasonable on 32-bit, cap at 768MB on all machines.
1006 */
1007 if (!RELOC(rmo_top))
1008 RELOC(rmo_top) = RELOC(ram_top);
1009 RELOC(rmo_top) = min(0x30000000ul, RELOC(rmo_top));
1010 RELOC(alloc_top) = RELOC(rmo_top);
1011
1012 prom_printf("memory layout at init:\n");
1013 prom_printf(" memory_limit : %x (16 MB aligned)\n", RELOC(prom_memory_limit));
1014 prom_printf(" alloc_bottom : %x\n", RELOC(alloc_bottom));
1015 prom_printf(" alloc_top : %x\n", RELOC(alloc_top));
1016 prom_printf(" alloc_top_hi : %x\n", RELOC(alloc_top_high));
1017 prom_printf(" rmo_top : %x\n", RELOC(rmo_top));
1018 prom_printf(" ram_top : %x\n", RELOC(ram_top));
1019}
1020
1021
1022/*
1023 * Allocate room for and instantiate RTAS
1024 */
1025static void __init prom_instantiate_rtas(void)
1026{
1027 phandle rtas_node;
1028 ihandle rtas_inst;
1029 u32 base, entry = 0;
1030 u32 size = 0;
1031
1032 prom_debug("prom_instantiate_rtas: start...\n");
1033
1034 rtas_node = call_prom("finddevice", 1, 1, ADDR("/rtas"));
1035 prom_debug("rtas_node: %x\n", rtas_node);
1036 if (!PHANDLE_VALID(rtas_node))
1037 return;
1038
1039 prom_getprop(rtas_node, "rtas-size", &size, sizeof(size));
1040 if (size == 0)
1041 return;
1042
1043 base = alloc_down(size, PAGE_SIZE, 0);
1044 if (base == 0) {
1045 prom_printf("RTAS allocation failed !\n");
1046 return;
1047 }
1048
1049 rtas_inst = call_prom("open", 1, 1, ADDR("/rtas"));
1050 if (!IHANDLE_VALID(rtas_inst)) {
a23414be 1051 prom_printf("opening rtas package failed (%x)\n", rtas_inst);
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1052 return;
1053 }
1054
1055 prom_printf("instantiating rtas at 0x%x ...", base);
1056
1057 if (call_prom_ret("call-method", 3, 2, &entry,
1058 ADDR("instantiate-rtas"),
a23414be 1059 rtas_inst, base) != 0
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1060 || entry == 0) {
1061 prom_printf(" failed\n");
1062 return;
1063 }
1064 prom_printf(" done\n");
1065
1066 reserve_mem(base, size);
1067
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1068 prom_setprop(rtas_node, "/rtas", "linux,rtas-base",
1069 &base, sizeof(base));
1070 prom_setprop(rtas_node, "/rtas", "linux,rtas-entry",
1071 &entry, sizeof(entry));
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1072
1073 prom_debug("rtas base = 0x%x\n", base);
1074 prom_debug("rtas entry = 0x%x\n", entry);
1075 prom_debug("rtas size = 0x%x\n", (long)size);
1076
1077 prom_debug("prom_instantiate_rtas: end...\n");
1078}
1079
1080#ifdef CONFIG_PPC64
1081/*
1082 * Allocate room for and initialize TCE tables
1083 */
1084static void __init prom_initialize_tce_table(void)
1085{
1086 phandle node;
1087 ihandle phb_node;
1088 char compatible[64], type[64], model[64];
1089 char *path = RELOC(prom_scratch);
1090 u64 base, align;
1091 u32 minalign, minsize;
1092 u64 tce_entry, *tce_entryp;
1093 u64 local_alloc_top, local_alloc_bottom;
1094 u64 i;
1095
1096 if (RELOC(ppc64_iommu_off))
1097 return;
1098
1099 prom_debug("starting prom_initialize_tce_table\n");
1100
1101 /* Cache current top of allocs so we reserve a single block */
1102 local_alloc_top = RELOC(alloc_top_high);
1103 local_alloc_bottom = local_alloc_top;
1104
1105 /* Search all nodes looking for PHBs. */
1106 for (node = 0; prom_next_node(&node); ) {
1107 compatible[0] = 0;
1108 type[0] = 0;
1109 model[0] = 0;
1110 prom_getprop(node, "compatible",
1111 compatible, sizeof(compatible));
1112 prom_getprop(node, "device_type", type, sizeof(type));
1113 prom_getprop(node, "model", model, sizeof(model));
1114
1115 if ((type[0] == 0) || (strstr(type, RELOC("pci")) == NULL))
1116 continue;
1117
1118 /* Keep the old logic in tack to avoid regression. */
1119 if (compatible[0] != 0) {
1120 if ((strstr(compatible, RELOC("python")) == NULL) &&
1121 (strstr(compatible, RELOC("Speedwagon")) == NULL) &&
1122 (strstr(compatible, RELOC("Winnipeg")) == NULL))
1123 continue;
1124 } else if (model[0] != 0) {
1125 if ((strstr(model, RELOC("ython")) == NULL) &&
1126 (strstr(model, RELOC("peedwagon")) == NULL) &&
1127 (strstr(model, RELOC("innipeg")) == NULL))
1128 continue;
1129 }
1130
1131 if (prom_getprop(node, "tce-table-minalign", &minalign,
1132 sizeof(minalign)) == PROM_ERROR)
1133 minalign = 0;
1134 if (prom_getprop(node, "tce-table-minsize", &minsize,
1135 sizeof(minsize)) == PROM_ERROR)
1136 minsize = 4UL << 20;
1137
1138 /*
1139 * Even though we read what OF wants, we just set the table
1140 * size to 4 MB. This is enough to map 2GB of PCI DMA space.
1141 * By doing this, we avoid the pitfalls of trying to DMA to
1142 * MMIO space and the DMA alias hole.
1143 *
1144 * On POWER4, firmware sets the TCE region by assuming
1145 * each TCE table is 8MB. Using this memory for anything
1146 * else will impact performance, so we always allocate 8MB.
1147 * Anton
1148 */
1149 if (__is_processor(PV_POWER4) || __is_processor(PV_POWER4p))
1150 minsize = 8UL << 20;
1151 else
1152 minsize = 4UL << 20;
1153
1154 /* Align to the greater of the align or size */
1155 align = max(minalign, minsize);
1156 base = alloc_down(minsize, align, 1);
1157 if (base == 0)
1158 prom_panic("ERROR, cannot find space for TCE table.\n");
1159 if (base < local_alloc_bottom)
1160 local_alloc_bottom = base;
1161
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1162 /* It seems OF doesn't null-terminate the path :-( */
1163 memset(path, 0, sizeof(path));
1164 /* Call OF to setup the TCE hardware */
1165 if (call_prom("package-to-path", 3, 1, node,
1166 path, PROM_SCRATCH_SIZE-1) == PROM_ERROR) {
1167 prom_printf("package-to-path failed\n");
1168 }
1169
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1170 /* Save away the TCE table attributes for later use. */
1171 prom_setprop(node, path, "linux,tce-base", &base, sizeof(base));
1172 prom_setprop(node, path, "linux,tce-size", &minsize, sizeof(minsize));
1173
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1174 prom_debug("TCE table: %s\n", path);
1175 prom_debug("\tnode = 0x%x\n", node);
1176 prom_debug("\tbase = 0x%x\n", base);
1177 prom_debug("\tsize = 0x%x\n", minsize);
1178
1179 /* Initialize the table to have a one-to-one mapping
1180 * over the allocated size.
1181 */
1182 tce_entryp = (unsigned long *)base;
1183 for (i = 0; i < (minsize >> 3) ;tce_entryp++, i++) {
1184 tce_entry = (i << PAGE_SHIFT);
1185 tce_entry |= 0x3;
1186 *tce_entryp = tce_entry;
1187 }
1188
1189 prom_printf("opening PHB %s", path);
1190 phb_node = call_prom("open", 1, 1, path);
1191 if (phb_node == 0)
1192 prom_printf("... failed\n");
1193 else
1194 prom_printf("... done\n");
1195
1196 call_prom("call-method", 6, 0, ADDR("set-64-bit-addressing"),
1197 phb_node, -1, minsize,
1198 (u32) base, (u32) (base >> 32));
1199 call_prom("close", 1, 0, phb_node);
1200 }
1201
1202 reserve_mem(local_alloc_bottom, local_alloc_top - local_alloc_bottom);
1203
1204 if (RELOC(prom_memory_limit)) {
1205 /*
1206 * We align the start to a 16MB boundary so we can map
1207 * the TCE area using large pages if possible.
1208 * The end should be the top of RAM so no need to align it.
1209 */
1210 RELOC(prom_tce_alloc_start) = _ALIGN_DOWN(local_alloc_bottom,
1211 0x1000000);
1212 RELOC(prom_tce_alloc_end) = local_alloc_top;
1213 }
1214
1215 /* Flag the first invalid entry */
1216 prom_debug("ending prom_initialize_tce_table\n");
1217}
1218#endif
1219
1220/*
1221 * With CHRP SMP we need to use the OF to start the other processors.
1222 * We can't wait until smp_boot_cpus (the OF is trashed by then)
1223 * so we have to put the processors into a holding pattern controlled
1224 * by the kernel (not OF) before we destroy the OF.
1225 *
1226 * This uses a chunk of low memory, puts some holding pattern
1227 * code there and sends the other processors off to there until
1228 * smp_boot_cpus tells them to do something. The holding pattern
1229 * checks that address until its cpu # is there, when it is that
1230 * cpu jumps to __secondary_start(). smp_boot_cpus() takes care
1231 * of setting those values.
1232 *
1233 * We also use physical address 0x4 here to tell when a cpu
1234 * is in its holding pattern code.
1235 *
1236 * -- Cort
1237 */
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1238extern void __secondary_hold(void);
1239extern unsigned long __secondary_hold_spinloop;
1240extern unsigned long __secondary_hold_acknowledge;
1241
1242/*
1243 * We want to reference the copy of __secondary_hold_* in the
1244 * 0 - 0x100 address range
1245 */
1246#define LOW_ADDR(x) (((unsigned long) &(x)) & 0xff)
1247
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1248static void __init prom_hold_cpus(void)
1249{
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1250 unsigned long i;
1251 unsigned int reg;
1252 phandle node;
1253 char type[64];
1254 int cpuid = 0;
1255 unsigned int interrupt_server[MAX_CPU_THREADS];
1256 unsigned int cpu_threads, hw_cpu_num;
1257 int propsize;
bbd0abda 1258 struct prom_t *_prom = &RELOC(prom);
9b6b563c 1259 unsigned long *spinloop
bbd0abda 1260 = (void *) LOW_ADDR(__secondary_hold_spinloop);
9b6b563c 1261 unsigned long *acknowledge
bbd0abda 1262 = (void *) LOW_ADDR(__secondary_hold_acknowledge);
9b6b563c 1263#ifdef CONFIG_PPC64
bbd0abda 1264 /* __secondary_hold is actually a descriptor, not the text address */
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1265 unsigned long secondary_hold
1266 = __pa(*PTRRELOC((unsigned long *)__secondary_hold));
1267#else
bbd0abda 1268 unsigned long secondary_hold = LOW_ADDR(__secondary_hold);
9b6b563c 1269#endif
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1270
1271 prom_debug("prom_hold_cpus: start...\n");
1272 prom_debug(" 1) spinloop = 0x%x\n", (unsigned long)spinloop);
1273 prom_debug(" 1) *spinloop = 0x%x\n", *spinloop);
1274 prom_debug(" 1) acknowledge = 0x%x\n",
1275 (unsigned long)acknowledge);
1276 prom_debug(" 1) *acknowledge = 0x%x\n", *acknowledge);
1277 prom_debug(" 1) secondary_hold = 0x%x\n", secondary_hold);
1278
1279 /* Set the common spinloop variable, so all of the secondary cpus
1280 * will block when they are awakened from their OF spinloop.
1281 * This must occur for both SMP and non SMP kernels, since OF will
1282 * be trashed when we move the kernel.
1283 */
1284 *spinloop = 0;
1285
1286#ifdef CONFIG_HMT
bbd0abda 1287 for (i = 0; i < NR_CPUS; i++)
9b6b563c 1288 RELOC(hmt_thread_data)[i].pir = 0xdeadbeef;
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1289#endif
1290 /* look for cpus */
1291 for (node = 0; prom_next_node(&node); ) {
1292 type[0] = 0;
1293 prom_getprop(node, "device_type", type, sizeof(type));
1294 if (strcmp(type, RELOC("cpu")) != 0)
1295 continue;
1296
1297 /* Skip non-configured cpus. */
1298 if (prom_getprop(node, "status", type, sizeof(type)) > 0)
1299 if (strcmp(type, RELOC("okay")) != 0)
1300 continue;
1301
1302 reg = -1;
1303 prom_getprop(node, "reg", &reg, sizeof(reg));
1304
1305 prom_debug("\ncpuid = 0x%x\n", cpuid);
1306 prom_debug("cpu hw idx = 0x%x\n", reg);
1307
1308 /* Init the acknowledge var which will be reset by
1309 * the secondary cpu when it awakens from its OF
1310 * spinloop.
1311 */
1312 *acknowledge = (unsigned long)-1;
1313
1314 propsize = prom_getprop(node, "ibm,ppc-interrupt-server#s",
1315 &interrupt_server,
1316 sizeof(interrupt_server));
1317 if (propsize < 0) {
1318 /* no property. old hardware has no SMT */
1319 cpu_threads = 1;
1320 interrupt_server[0] = reg; /* fake it with phys id */
1321 } else {
1322 /* We have a threaded processor */
1323 cpu_threads = propsize / sizeof(u32);
1324 if (cpu_threads > MAX_CPU_THREADS) {
1325 prom_printf("SMT: too many threads!\n"
1326 "SMT: found %x, max is %x\n",
1327 cpu_threads, MAX_CPU_THREADS);
1328 cpu_threads = 1; /* ToDo: panic? */
1329 }
1330 }
1331
1332 hw_cpu_num = interrupt_server[0];
1333 if (hw_cpu_num != _prom->cpu) {
1334 /* Primary Thread of non-boot cpu */
1335 prom_printf("%x : starting cpu hw idx %x... ", cpuid, reg);
1336 call_prom("start-cpu", 3, 0, node,
1337 secondary_hold, reg);
1338
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1339 for (i = 0; (i < 100000000) &&
1340 (*acknowledge == ((unsigned long)-1)); i++ )
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1341 mb();
1342
bbd0abda 1343 if (*acknowledge == reg)
9b6b563c 1344 prom_printf("done\n");
bbd0abda 1345 else
9b6b563c 1346 prom_printf("failed: %x\n", *acknowledge);
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1347 }
1348#ifdef CONFIG_SMP
1349 else
1350 prom_printf("%x : boot cpu %x\n", cpuid, reg);
9b6b563c 1351#endif /* CONFIG_SMP */
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1352
1353 /* Reserve cpu #s for secondary threads. They start later. */
1354 cpuid += cpu_threads;
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1355 }
1356#ifdef CONFIG_HMT
1357 /* Only enable HMT on processors that provide support. */
1358 if (__is_processor(PV_PULSAR) ||
1359 __is_processor(PV_ICESTAR) ||
1360 __is_processor(PV_SSTAR)) {
1361 prom_printf(" starting secondary threads\n");
1362
1363 for (i = 0; i < NR_CPUS; i += 2) {
1364 if (!cpu_online(i))
1365 continue;
1366
1367 if (i == 0) {
1368 unsigned long pir = mfspr(SPRN_PIR);
1369 if (__is_processor(PV_PULSAR)) {
1370 RELOC(hmt_thread_data)[i].pir =
1371 pir & 0x1f;
1372 } else {
1373 RELOC(hmt_thread_data)[i].pir =
1374 pir & 0x3ff;
1375 }
1376 }
1377 }
1378 } else {
1379 prom_printf("Processor is not HMT capable\n");
1380 }
1381#endif
1382
1383 if (cpuid > NR_CPUS)
1384 prom_printf("WARNING: maximum CPUs (" __stringify(NR_CPUS)
1385 ") exceeded: ignoring extras\n");
1386
1387 prom_debug("prom_hold_cpus: end...\n");
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1388}
1389
1390
1391static void __init prom_init_client_services(unsigned long pp)
1392{
1393 struct prom_t *_prom = &RELOC(prom);
1394
1395 /* Get a handle to the prom entry point before anything else */
1396 RELOC(prom_entry) = pp;
1397
1398 /* get a handle for the stdout device */
1399 _prom->chosen = call_prom("finddevice", 1, 1, ADDR("/chosen"));
1400 if (!PHANDLE_VALID(_prom->chosen))
1401 prom_panic("cannot find chosen"); /* msg won't be printed :( */
1402
1403 /* get device tree root */
1404 _prom->root = call_prom("finddevice", 1, 1, ADDR("/"));
1405 if (!PHANDLE_VALID(_prom->root))
1406 prom_panic("cannot find device tree root"); /* msg won't be printed :( */
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1407
1408 _prom->mmumap = 0;
1409}
1410
1411#ifdef CONFIG_PPC32
1412/*
1413 * For really old powermacs, we need to map things we claim.
1414 * For that, we need the ihandle of the mmu.
a23414be 1415 * Also, on the longtrail, we need to work around other bugs.
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1416 */
1417static void __init prom_find_mmu(void)
1418{
1419 struct prom_t *_prom = &RELOC(prom);
1420 phandle oprom;
1421 char version[64];
1422
1423 oprom = call_prom("finddevice", 1, 1, ADDR("/openprom"));
1424 if (!PHANDLE_VALID(oprom))
1425 return;
1426 if (prom_getprop(oprom, "model", version, sizeof(version)) <= 0)
1427 return;
1428 version[sizeof(version) - 1] = 0;
a575b807 1429 /* XXX might need to add other versions here */
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1430 if (strcmp(version, "Open Firmware, 1.0.5") == 0)
1431 of_workarounds = OF_WA_CLAIM;
1432 else if (strncmp(version, "FirmWorks,3.", 12) == 0) {
1433 of_workarounds = OF_WA_CLAIM | OF_WA_LONGTRAIL;
1434 call_prom("interpret", 1, 1, "dev /memory 0 to allow-reclaim");
1435 } else
a575b807 1436 return;
a23414be 1437 _prom->memory = call_prom("open", 1, 1, ADDR("/memory"));
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1438 prom_getprop(_prom->chosen, "mmu", &_prom->mmumap,
1439 sizeof(_prom->mmumap));
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1440 if (!IHANDLE_VALID(_prom->memory) || !IHANDLE_VALID(_prom->mmumap))
1441 of_workarounds &= ~OF_WA_CLAIM; /* hmmm */
9b6b563c 1442}
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1443#else
1444#define prom_find_mmu()
1445#endif
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1446
1447static void __init prom_init_stdout(void)
1448{
1449 struct prom_t *_prom = &RELOC(prom);
1450 char *path = RELOC(of_stdout_device);
1451 char type[16];
1452 u32 val;
1453
1454 if (prom_getprop(_prom->chosen, "stdout", &val, sizeof(val)) <= 0)
1455 prom_panic("cannot find stdout");
1456
1457 _prom->stdout = val;
1458
1459 /* Get the full OF pathname of the stdout device */
1460 memset(path, 0, 256);
1461 call_prom("instance-to-path", 3, 1, _prom->stdout, path, 255);
1462 val = call_prom("instance-to-package", 1, 1, _prom->stdout);
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1463 prom_setprop(_prom->chosen, "/chosen", "linux,stdout-package",
1464 &val, sizeof(val));
9b6b563c 1465 prom_printf("OF stdout device is: %s\n", RELOC(of_stdout_device));
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1466 prom_setprop(_prom->chosen, "/chosen", "linux,stdout-path",
1467 path, strlen(path) + 1);
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1468
1469 /* If it's a display, note it */
1470 memset(type, 0, sizeof(type));
1471 prom_getprop(val, "device_type", type, sizeof(type));
1472 if (strcmp(type, RELOC("display")) == 0)
a23414be 1473 prom_setprop(val, path, "linux,boot-display", NULL, 0);
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1474}
1475
1476static void __init prom_close_stdin(void)
1477{
1478 struct prom_t *_prom = &RELOC(prom);
1479 ihandle val;
1480
1481 if (prom_getprop(_prom->chosen, "stdin", &val, sizeof(val)) > 0)
1482 call_prom("close", 1, 0, val);
1483}
1484
1485static int __init prom_find_machine_type(void)
1486{
1487 struct prom_t *_prom = &RELOC(prom);
1488 char compat[256];
1489 int len, i = 0;
21fe3301 1490#ifdef CONFIG_PPC64
9b6b563c 1491 phandle rtas;
21fe3301 1492#endif
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1493 len = prom_getprop(_prom->root, "compatible",
1494 compat, sizeof(compat)-1);
1495 if (len > 0) {
1496 compat[len] = 0;
1497 while (i < len) {
1498 char *p = &compat[i];
1499 int sl = strlen(p);
1500 if (sl == 0)
1501 break;
1502 if (strstr(p, RELOC("Power Macintosh")) ||
a575b807 1503 strstr(p, RELOC("MacRISC")))
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1504 return PLATFORM_POWERMAC;
1505#ifdef CONFIG_PPC64
1506 if (strstr(p, RELOC("Momentum,Maple")))
1507 return PLATFORM_MAPLE;
1508#endif
1509 i += sl + 1;
1510 }
1511 }
1512#ifdef CONFIG_PPC64
1513 /* Default to pSeries. We need to know if we are running LPAR */
1514 rtas = call_prom("finddevice", 1, 1, ADDR("/rtas"));
1515 if (PHANDLE_VALID(rtas)) {
1516 int x = prom_getproplen(rtas, "ibm,hypertas-functions");
1517 if (x != PROM_ERROR) {
1518 prom_printf("Hypertas detected, assuming LPAR !\n");
1519 return PLATFORM_PSERIES_LPAR;
1520 }
1521 }
1522 return PLATFORM_PSERIES;
1523#else
1524 return PLATFORM_CHRP;
1525#endif
1526}
1527
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1528static int __init prom_set_color(ihandle ih, int i, int r, int g, int b)
1529{
1530 return call_prom("call-method", 6, 1, ADDR("color!"), ih, i, b, g, r);
1531}
1532
1533/*
1534 * If we have a display that we don't know how to drive,
1535 * we will want to try to execute OF's open method for it
1536 * later. However, OF will probably fall over if we do that
1537 * we've taken over the MMU.
1538 * So we check whether we will need to open the display,
1539 * and if so, open it now.
1540 */
1541static void __init prom_check_displays(void)
1542{
1543 char type[16], *path;
1544 phandle node;
1545 ihandle ih;
1546 int i;
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1547
1548 static unsigned char default_colors[] = {
1549 0x00, 0x00, 0x00,
1550 0x00, 0x00, 0xaa,
1551 0x00, 0xaa, 0x00,
1552 0x00, 0xaa, 0xaa,
1553 0xaa, 0x00, 0x00,
1554 0xaa, 0x00, 0xaa,
1555 0xaa, 0xaa, 0x00,
1556 0xaa, 0xaa, 0xaa,
1557 0x55, 0x55, 0x55,
1558 0x55, 0x55, 0xff,
1559 0x55, 0xff, 0x55,
1560 0x55, 0xff, 0xff,
1561 0xff, 0x55, 0x55,
1562 0xff, 0x55, 0xff,
1563 0xff, 0xff, 0x55,
1564 0xff, 0xff, 0xff
1565 };
1566 const unsigned char *clut;
1567
1568 prom_printf("Looking for displays\n");
1569 for (node = 0; prom_next_node(&node); ) {
1570 memset(type, 0, sizeof(type));
1571 prom_getprop(node, "device_type", type, sizeof(type));
1572 if (strcmp(type, RELOC("display")) != 0)
1573 continue;
1574
1575 /* It seems OF doesn't null-terminate the path :-( */
1576 path = RELOC(prom_scratch);
1577 memset(path, 0, PROM_SCRATCH_SIZE);
1578
1579 /*
1580 * leave some room at the end of the path for appending extra
1581 * arguments
1582 */
1583 if (call_prom("package-to-path", 3, 1, node, path,
1584 PROM_SCRATCH_SIZE-10) == PROM_ERROR)
1585 continue;
1586 prom_printf("found display : %s, opening ... ", path);
1587
1588 ih = call_prom("open", 1, 1, path);
1589 if (ih == 0) {
1590 prom_printf("failed\n");
1591 continue;
1592 }
1593
1594 /* Success */
1595 prom_printf("done\n");
a23414be 1596 prom_setprop(node, path, "linux,opened", NULL, 0);
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1597
1598 /* Setup a usable color table when the appropriate
1599 * method is available. Should update this to set-colors */
1600 clut = RELOC(default_colors);
1601 for (i = 0; i < 32; i++, clut += 3)
1602 if (prom_set_color(ih, i, clut[0], clut[1],
1603 clut[2]) != 0)
1604 break;
1605
1606#ifdef CONFIG_LOGO_LINUX_CLUT224
1607 clut = PTRRELOC(RELOC(logo_linux_clut224.clut));
1608 for (i = 0; i < RELOC(logo_linux_clut224.clutsize); i++, clut += 3)
1609 if (prom_set_color(ih, i + 32, clut[0], clut[1],
1610 clut[2]) != 0)
1611 break;
1612#endif /* CONFIG_LOGO_LINUX_CLUT224 */
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1613 }
1614}
1615
1616
1617/* Return (relocated) pointer to this much memory: moves initrd if reqd. */
1618static void __init *make_room(unsigned long *mem_start, unsigned long *mem_end,
1619 unsigned long needed, unsigned long align)
1620{
1621 void *ret;
1622
1623 *mem_start = _ALIGN(*mem_start, align);
1624 while ((*mem_start + needed) > *mem_end) {
1625 unsigned long room, chunk;
1626
1627 prom_debug("Chunk exhausted, claiming more at %x...\n",
1628 RELOC(alloc_bottom));
1629 room = RELOC(alloc_top) - RELOC(alloc_bottom);
1630 if (room > DEVTREE_CHUNK_SIZE)
1631 room = DEVTREE_CHUNK_SIZE;
1632 if (room < PAGE_SIZE)
1633 prom_panic("No memory for flatten_device_tree (no room)");
1634 chunk = alloc_up(room, 0);
1635 if (chunk == 0)
1636 prom_panic("No memory for flatten_device_tree (claim failed)");
1637 *mem_end = RELOC(alloc_top);
1638 }
1639
1640 ret = (void *)*mem_start;
1641 *mem_start += needed;
1642
1643 return ret;
1644}
1645
1646#define dt_push_token(token, mem_start, mem_end) \
1647 do { *((u32 *)make_room(mem_start, mem_end, 4, 4)) = token; } while(0)
1648
1649static unsigned long __init dt_find_string(char *str)
1650{
1651 char *s, *os;
1652
1653 s = os = (char *)RELOC(dt_string_start);
1654 s += 4;
1655 while (s < (char *)RELOC(dt_string_end)) {
1656 if (strcmp(s, str) == 0)
1657 return s - os;
1658 s += strlen(s) + 1;
1659 }
1660 return 0;
1661}
1662
1663/*
1664 * The Open Firmware 1275 specification states properties must be 31 bytes or
1665 * less, however not all firmwares obey this. Make it 64 bytes to be safe.
1666 */
1667#define MAX_PROPERTY_NAME 64
1668
1669static void __init scan_dt_build_strings(phandle node,
1670 unsigned long *mem_start,
1671 unsigned long *mem_end)
1672{
1673 char *prev_name, *namep, *sstart;
1674 unsigned long soff;
1675 phandle child;
1676
1677 sstart = (char *)RELOC(dt_string_start);
1678
1679 /* get and store all property names */
1680 prev_name = RELOC("");
1681 for (;;) {
1682 /* 64 is max len of name including nul. */
1683 namep = make_room(mem_start, mem_end, MAX_PROPERTY_NAME, 1);
1684 if (call_prom("nextprop", 3, 1, node, prev_name, namep) != 1) {
1685 /* No more nodes: unwind alloc */
1686 *mem_start = (unsigned long)namep;
1687 break;
1688 }
1689
1690 /* skip "name" */
1691 if (strcmp(namep, RELOC("name")) == 0) {
1692 *mem_start = (unsigned long)namep;
1693 prev_name = RELOC("name");
1694 continue;
1695 }
1696 /* get/create string entry */
1697 soff = dt_find_string(namep);
1698 if (soff != 0) {
1699 *mem_start = (unsigned long)namep;
1700 namep = sstart + soff;
1701 } else {
1702 /* Trim off some if we can */
1703 *mem_start = (unsigned long)namep + strlen(namep) + 1;
1704 RELOC(dt_string_end) = *mem_start;
1705 }
1706 prev_name = namep;
1707 }
1708
1709 /* do all our children */
1710 child = call_prom("child", 1, 1, node);
1711 while (child != 0) {
1712 scan_dt_build_strings(child, mem_start, mem_end);
1713 child = call_prom("peer", 1, 1, child);
1714 }
1715}
1716
1717static void __init scan_dt_build_struct(phandle node, unsigned long *mem_start,
1718 unsigned long *mem_end)
1719{
1720 phandle child;
1721 char *namep, *prev_name, *sstart, *p, *ep, *lp, *path;
1722 unsigned long soff;
1723 unsigned char *valp;
1724 static char pname[MAX_PROPERTY_NAME];
c4988820 1725 int l, room;
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1726
1727 dt_push_token(OF_DT_BEGIN_NODE, mem_start, mem_end);
1728
1729 /* get the node's full name */
1730 namep = (char *)*mem_start;
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1731 room = *mem_end - *mem_start;
1732 if (room > 255)
1733 room = 255;
1734 l = call_prom("package-to-path", 3, 1, node, namep, room);
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1735 if (l >= 0) {
1736 /* Didn't fit? Get more room. */
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1737 if (l >= room) {
1738 if (l >= *mem_end - *mem_start)
1739 namep = make_room(mem_start, mem_end, l+1, 1);
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1740 call_prom("package-to-path", 3, 1, node, namep, l);
1741 }
1742 namep[l] = '\0';
1743
1744 /* Fixup an Apple bug where they have bogus \0 chars in the
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1745 * middle of the path in some properties, and extract
1746 * the unit name (everything after the last '/').
9b6b563c 1747 */
a575b807 1748 for (lp = p = namep, ep = namep + l; p < ep; p++) {
9b6b563c 1749 if (*p == '/')
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1750 lp = namep;
1751 else if (*p != 0)
1752 *lp++ = *p;
1753 }
1754 *lp = 0;
1755 *mem_start = _ALIGN((unsigned long)lp + 1, 4);
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1756 }
1757
1758 /* get it again for debugging */
1759 path = RELOC(prom_scratch);
1760 memset(path, 0, PROM_SCRATCH_SIZE);
1761 call_prom("package-to-path", 3, 1, node, path, PROM_SCRATCH_SIZE-1);
1762
1763 /* get and store all properties */
1764 prev_name = RELOC("");
1765 sstart = (char *)RELOC(dt_string_start);
1766 for (;;) {
1767 if (call_prom("nextprop", 3, 1, node, prev_name,
1768 RELOC(pname)) != 1)
1769 break;
1770
1771 /* skip "name" */
1772 if (strcmp(RELOC(pname), RELOC("name")) == 0) {
1773 prev_name = RELOC("name");
1774 continue;
1775 }
1776
1777 /* find string offset */
1778 soff = dt_find_string(RELOC(pname));
1779 if (soff == 0) {
1780 prom_printf("WARNING: Can't find string index for"
1781 " <%s>, node %s\n", RELOC(pname), path);
1782 break;
1783 }
1784 prev_name = sstart + soff;
1785
1786 /* get length */
1787 l = call_prom("getproplen", 2, 1, node, RELOC(pname));
1788
1789 /* sanity checks */
1790 if (l == PROM_ERROR)
1791 continue;
1792 if (l > MAX_PROPERTY_LENGTH) {
1793 prom_printf("WARNING: ignoring large property ");
1794 /* It seems OF doesn't null-terminate the path :-( */
1795 prom_printf("[%s] ", path);
1796 prom_printf("%s length 0x%x\n", RELOC(pname), l);
1797 continue;
1798 }
1799
1800 /* push property head */
1801 dt_push_token(OF_DT_PROP, mem_start, mem_end);
1802 dt_push_token(l, mem_start, mem_end);
1803 dt_push_token(soff, mem_start, mem_end);
1804
1805 /* push property content */
1806 valp = make_room(mem_start, mem_end, l, 4);
1807 call_prom("getprop", 4, 1, node, RELOC(pname), valp, l);
1808 *mem_start = _ALIGN(*mem_start, 4);
1809 }
1810
1811 /* Add a "linux,phandle" property. */
1812 soff = dt_find_string(RELOC("linux,phandle"));
1813 if (soff == 0)
1814 prom_printf("WARNING: Can't find string index for"
1815 " <linux-phandle> node %s\n", path);
1816 else {
1817 dt_push_token(OF_DT_PROP, mem_start, mem_end);
1818 dt_push_token(4, mem_start, mem_end);
1819 dt_push_token(soff, mem_start, mem_end);
1820 valp = make_room(mem_start, mem_end, 4, 4);
1821 *(u32 *)valp = node;
1822 }
1823
1824 /* do all our children */
1825 child = call_prom("child", 1, 1, node);
1826 while (child != 0) {
1827 scan_dt_build_struct(child, mem_start, mem_end);
1828 child = call_prom("peer", 1, 1, child);
1829 }
1830
1831 dt_push_token(OF_DT_END_NODE, mem_start, mem_end);
1832}
1833
1834static void __init flatten_device_tree(void)
1835{
1836 phandle root;
1837 unsigned long mem_start, mem_end, room;
1838 struct boot_param_header *hdr;
1839 struct prom_t *_prom = &RELOC(prom);
1840 char *namep;
1841 u64 *rsvmap;
1842
1843 /*
1844 * Check how much room we have between alloc top & bottom (+/- a
1845 * few pages), crop to 4Mb, as this is our "chuck" size
1846 */
1847 room = RELOC(alloc_top) - RELOC(alloc_bottom) - 0x4000;
1848 if (room > DEVTREE_CHUNK_SIZE)
1849 room = DEVTREE_CHUNK_SIZE;
1850 prom_debug("starting device tree allocs at %x\n", RELOC(alloc_bottom));
1851
1852 /* Now try to claim that */
1853 mem_start = (unsigned long)alloc_up(room, PAGE_SIZE);
1854 if (mem_start == 0)
1855 prom_panic("Can't allocate initial device-tree chunk\n");
1856 mem_end = RELOC(alloc_top);
1857
1858 /* Get root of tree */
1859 root = call_prom("peer", 1, 1, (phandle)0);
1860 if (root == (phandle)0)
1861 prom_panic ("couldn't get device tree root\n");
1862
1863 /* Build header and make room for mem rsv map */
1864 mem_start = _ALIGN(mem_start, 4);
1865 hdr = make_room(&mem_start, &mem_end,
1866 sizeof(struct boot_param_header), 4);
1867 RELOC(dt_header_start) = (unsigned long)hdr;
1868 rsvmap = make_room(&mem_start, &mem_end, sizeof(mem_reserve_map), 8);
1869
1870 /* Start of strings */
1871 mem_start = PAGE_ALIGN(mem_start);
1872 RELOC(dt_string_start) = mem_start;
1873 mem_start += 4; /* hole */
1874
1875 /* Add "linux,phandle" in there, we'll need it */
1876 namep = make_room(&mem_start, &mem_end, 16, 1);
1877 strcpy(namep, RELOC("linux,phandle"));
1878 mem_start = (unsigned long)namep + strlen(namep) + 1;
1879
1880 /* Build string array */
1881 prom_printf("Building dt strings...\n");
1882 scan_dt_build_strings(root, &mem_start, &mem_end);
1883 RELOC(dt_string_end) = mem_start;
1884
1885 /* Build structure */
1886 mem_start = PAGE_ALIGN(mem_start);
1887 RELOC(dt_struct_start) = mem_start;
1888 prom_printf("Building dt structure...\n");
1889 scan_dt_build_struct(root, &mem_start, &mem_end);
1890 dt_push_token(OF_DT_END, &mem_start, &mem_end);
1891 RELOC(dt_struct_end) = PAGE_ALIGN(mem_start);
1892
1893 /* Finish header */
1894 hdr->boot_cpuid_phys = _prom->cpu;
1895 hdr->magic = OF_DT_HEADER;
1896 hdr->totalsize = RELOC(dt_struct_end) - RELOC(dt_header_start);
1897 hdr->off_dt_struct = RELOC(dt_struct_start) - RELOC(dt_header_start);
1898 hdr->off_dt_strings = RELOC(dt_string_start) - RELOC(dt_header_start);
1899 hdr->dt_strings_size = RELOC(dt_string_end) - RELOC(dt_string_start);
1900 hdr->off_mem_rsvmap = ((unsigned long)rsvmap) - RELOC(dt_header_start);
1901 hdr->version = OF_DT_VERSION;
1902 /* Version 16 is not backward compatible */
1903 hdr->last_comp_version = 0x10;
1904
1905 /* Reserve the whole thing and copy the reserve map in, we
1906 * also bump mem_reserve_cnt to cause further reservations to
1907 * fail since it's too late.
1908 */
1909 reserve_mem(RELOC(dt_header_start), hdr->totalsize);
1910 memcpy(rsvmap, RELOC(mem_reserve_map), sizeof(mem_reserve_map));
1911
1912#ifdef DEBUG_PROM
1913 {
1914 int i;
1915 prom_printf("reserved memory map:\n");
1916 for (i = 0; i < RELOC(mem_reserve_cnt); i++)
1917 prom_printf(" %x - %x\n",
1918 RELOC(mem_reserve_map)[i].base,
1919 RELOC(mem_reserve_map)[i].size);
1920 }
1921#endif
1922 RELOC(mem_reserve_cnt) = MEM_RESERVE_MAP_SIZE;
1923
1924 prom_printf("Device tree strings 0x%x -> 0x%x\n",
1925 RELOC(dt_string_start), RELOC(dt_string_end));
1926 prom_printf("Device tree struct 0x%x -> 0x%x\n",
1927 RELOC(dt_struct_start), RELOC(dt_struct_end));
1928
1929}
1930
1931
1932static void __init fixup_device_tree(void)
1933{
1934#if defined(CONFIG_PPC64) && defined(CONFIG_PPC_PMAC)
1935 phandle u3, i2c, mpic;
1936 u32 u3_rev;
1937 u32 interrupts[2];
1938 u32 parent;
1939
1940 /* Some G5s have a missing interrupt definition, fix it up here */
1941 u3 = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000"));
1942 if (!PHANDLE_VALID(u3))
1943 return;
1944 i2c = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000/i2c@f8001000"));
1945 if (!PHANDLE_VALID(i2c))
1946 return;
1947 mpic = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000/mpic@f8040000"));
1948 if (!PHANDLE_VALID(mpic))
1949 return;
1950
1951 /* check if proper rev of u3 */
1952 if (prom_getprop(u3, "device-rev", &u3_rev, sizeof(u3_rev))
1953 == PROM_ERROR)
1954 return;
7d49697e 1955 if (u3_rev < 0x35 || u3_rev > 0x39)
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1956 return;
1957 /* does it need fixup ? */
1958 if (prom_getproplen(i2c, "interrupts") > 0)
1959 return;
1960
1961 prom_printf("fixing up bogus interrupts for u3 i2c...\n");
1962
1963 /* interrupt on this revision of u3 is number 0 and level */
1964 interrupts[0] = 0;
1965 interrupts[1] = 1;
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1966 prom_setprop(i2c, "/u3@0,f8000000/i2c@f8001000", "interrupts",
1967 &interrupts, sizeof(interrupts));
9b6b563c 1968 parent = (u32)mpic;
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1969 prom_setprop(i2c, "/u3@0,f8000000/i2c@f8001000", "interrupt-parent",
1970 &parent, sizeof(parent));
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1971#endif
1972}
1973
1974
1975static void __init prom_find_boot_cpu(void)
1976{
1977 struct prom_t *_prom = &RELOC(prom);
1978 u32 getprop_rval;
1979 ihandle prom_cpu;
1980 phandle cpu_pkg;
1981
a575b807 1982 _prom->cpu = 0;
9b6b563c 1983 if (prom_getprop(_prom->chosen, "cpu", &prom_cpu, sizeof(prom_cpu)) <= 0)
a575b807 1984 return;
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1985
1986 cpu_pkg = call_prom("instance-to-package", 1, 1, prom_cpu);
1987
1988 prom_getprop(cpu_pkg, "reg", &getprop_rval, sizeof(getprop_rval));
1989 _prom->cpu = getprop_rval;
1990
1991 prom_debug("Booting CPU hw index = 0x%x\n", _prom->cpu);
1992}
1993
1994static void __init prom_check_initrd(unsigned long r3, unsigned long r4)
1995{
1996#ifdef CONFIG_BLK_DEV_INITRD
1997 struct prom_t *_prom = &RELOC(prom);
1998
1999 if (r3 && r4 && r4 != 0xdeadbeef) {
2000 unsigned long val;
2001
2002 RELOC(prom_initrd_start) = (r3 >= KERNELBASE) ? __pa(r3) : r3;
2003 RELOC(prom_initrd_end) = RELOC(prom_initrd_start) + r4;
2004
2005 val = RELOC(prom_initrd_start);
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2006 prom_setprop(_prom->chosen, "/chosen", "linux,initrd-start",
2007 &val, sizeof(val));
9b6b563c 2008 val = RELOC(prom_initrd_end);
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2009 prom_setprop(_prom->chosen, "/chosen", "linux,initrd-end",
2010 &val, sizeof(val));
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2011
2012 reserve_mem(RELOC(prom_initrd_start),
2013 RELOC(prom_initrd_end) - RELOC(prom_initrd_start));
2014
2015 prom_debug("initrd_start=0x%x\n", RELOC(prom_initrd_start));
2016 prom_debug("initrd_end=0x%x\n", RELOC(prom_initrd_end));
2017 }
2018#endif /* CONFIG_BLK_DEV_INITRD */
2019}
2020
2021/*
2022 * We enter here early on, when the Open Firmware prom is still
2023 * handling exceptions and the MMU hash table for us.
2024 */
2025
2026unsigned long __init prom_init(unsigned long r3, unsigned long r4,
2027 unsigned long pp,
2028 unsigned long r6, unsigned long r7)
2029{
2030 struct prom_t *_prom;
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2031 unsigned long hdr;
2032 u32 getprop_rval;
b42b6617 2033 unsigned long offset = reloc_offset();
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2034
2035#ifdef CONFIG_PPC32
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2036 reloc_got2(offset);
2037#endif
2038
2039 _prom = &RELOC(prom);
2040
2041 /*
2042 * First zero the BSS
2043 */
2044 memset(&RELOC(__bss_start), 0, __bss_stop - __bss_start);
2045
2046 /*
2047 * Init interface to Open Firmware, get some node references,
2048 * like /chosen
2049 */
2050 prom_init_client_services(pp);
2051
2052 /*
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2053 * See if this OF is old enough that we need to do explicit maps
2054 * and other workarounds
9b6b563c 2055 */
a23414be 2056 prom_find_mmu();
9b6b563c 2057
a575b807 2058 /*
a23414be 2059 * Init prom stdout device
a575b807 2060 */
a23414be 2061 prom_init_stdout();
a575b807 2062
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2063 /*
2064 * Check for an initrd
2065 */
2066 prom_check_initrd(r3, r4);
2067
2068 /*
2069 * Get default machine type. At this point, we do not differentiate
2070 * between pSeries SMP and pSeries LPAR
2071 */
2072 RELOC(of_platform) = prom_find_machine_type();
2073 getprop_rval = RELOC(of_platform);
a23414be 2074 prom_setprop(_prom->chosen, "/chosen", "linux,platform",
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2075 &getprop_rval, sizeof(getprop_rval));
2076
2077#ifdef CONFIG_PPC_PSERIES
2078 /*
2079 * On pSeries, inform the firmware about our capabilities
2080 */
2081 if (RELOC(of_platform) & PLATFORM_PSERIES)
2082 prom_send_capabilities();
2083#endif
2084
9b6b563c 2085 /*
f3f66f59 2086 * Copy the CPU hold code
9b6b563c 2087 */
55d36339 2088 if (RELOC(of_platform) != PLATFORM_POWERMAC)
5a408329 2089 copy_and_flush(0, KERNELBASE + offset, 0x100, 0);
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2090
2091 /*
2092 * Do early parsing of command line
2093 */
2094 early_cmdline_parse();
2095
2096 /*
2097 * Initialize memory management within prom_init
2098 */
2099 prom_init_mem();
2100
2101 /*
2102 * Determine which cpu is actually running right _now_
2103 */
2104 prom_find_boot_cpu();
2105
2106 /*
2107 * Initialize display devices
2108 */
2109 prom_check_displays();
2110
2111#ifdef CONFIG_PPC64
2112 /*
2113 * Initialize IOMMU (TCE tables) on pSeries. Do that before anything else
2114 * that uses the allocator, we need to make sure we get the top of memory
2115 * available for us here...
2116 */
2117 if (RELOC(of_platform) == PLATFORM_PSERIES)
2118 prom_initialize_tce_table();
2119#endif
2120
2121 /*
2122 * On non-powermacs, try to instantiate RTAS and puts all CPUs
2123 * in spin-loops. PowerMacs don't have a working RTAS and use
2124 * a different way to spin CPUs
2125 */
2126 if (RELOC(of_platform) != PLATFORM_POWERMAC) {
2127 prom_instantiate_rtas();
2128 prom_hold_cpus();
2129 }
2130
2131 /*
2132 * Fill in some infos for use by the kernel later on
2133 */
2134 if (RELOC(prom_memory_limit))
a23414be 2135 prom_setprop(_prom->chosen, "/chosen", "linux,memory-limit",
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2136 &RELOC(prom_memory_limit),
2137 sizeof(prom_memory_limit));
2138#ifdef CONFIG_PPC64
2139 if (RELOC(ppc64_iommu_off))
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2140 prom_setprop(_prom->chosen, "/chosen", "linux,iommu-off",
2141 NULL, 0);
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2142
2143 if (RELOC(iommu_force_on))
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2144 prom_setprop(_prom->chosen, "/chosen", "linux,iommu-force-on",
2145 NULL, 0);
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2146
2147 if (RELOC(prom_tce_alloc_start)) {
a23414be 2148 prom_setprop(_prom->chosen, "/chosen", "linux,tce-alloc-start",
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2149 &RELOC(prom_tce_alloc_start),
2150 sizeof(prom_tce_alloc_start));
a23414be 2151 prom_setprop(_prom->chosen, "/chosen", "linux,tce-alloc-end",
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2152 &RELOC(prom_tce_alloc_end),
2153 sizeof(prom_tce_alloc_end));
2154 }
2155#endif
2156
2157 /*
2158 * Fixup any known bugs in the device-tree
2159 */
2160 fixup_device_tree();
2161
2162 /*
2163 * Now finally create the flattened device-tree
2164 */
2165 prom_printf("copying OF device tree ...\n");
2166 flatten_device_tree();
2167
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2168 /*
2169 * in case stdin is USB and still active on IBM machines...
2170 * Unfortunately quiesce crashes on some powermacs if we have
2171 * closed stdin already (in particular the powerbook 101).
2172 */
2173 if (RELOC(of_platform) != PLATFORM_POWERMAC)
2174 prom_close_stdin();
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2175
2176 /*
2177 * Call OF "quiesce" method to shut down pending DMA's from
2178 * devices etc...
2179 */
2180 prom_printf("Calling quiesce ...\n");
2181 call_prom("quiesce", 0, 0);
2182
2183 /*
2184 * And finally, call the kernel passing it the flattened device
2185 * tree and NULL as r5, thus triggering the new entry point which
2186 * is common to us and kexec
2187 */
2188 hdr = RELOC(dt_header_start);
2189 prom_printf("returning from prom_init\n");
2190 prom_debug("->dt_header_start=0x%x\n", hdr);
2191
2192#ifdef CONFIG_PPC32
2193 reloc_got2(-offset);
2194#endif
2195
35499c01 2196 __start(hdr, KERNELBASE + offset, 0);
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2197
2198 return 0;
2199}