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1 /*
2 * This file is subject to the terms and conditions of the GNU General Public
3 * License. See the file "COPYING" in the main directory of this archive
4 * for more details.
5 *
6 * Copyright (C) 1995 Linus Torvalds
7 * Copyright (C) 1995 Waldorf Electronics
8 * Copyright (C) 1994, 95, 96, 97, 98, 99, 2000, 01, 02, 03 Ralf Baechle
9 * Copyright (C) 1996 Stoned Elipot
10 * Copyright (C) 1999 Silicon Graphics, Inc.
11 * Copyright (C) 2000, 2001, 2002, 2007 Maciej W. Rozycki
12 */
13 #include <linux/init.h>
14 #include <linux/ioport.h>
15 #include <linux/export.h>
16 #include <linux/screen_info.h>
17 #include <linux/memblock.h>
18 #include <linux/bootmem.h>
19 #include <linux/initrd.h>
20 #include <linux/root_dev.h>
21 #include <linux/highmem.h>
22 #include <linux/console.h>
23 #include <linux/pfn.h>
24 #include <linux/debugfs.h>
25 #include <linux/kexec.h>
26 #include <linux/sizes.h>
27 #include <linux/device.h>
28 #include <linux/dma-contiguous.h>
29
30 #include <asm/addrspace.h>
31 #include <asm/bootinfo.h>
32 #include <asm/bugs.h>
33 #include <asm/cache.h>
34 #include <asm/cdmm.h>
35 #include <asm/cpu.h>
36 #include <asm/sections.h>
37 #include <asm/setup.h>
38 #include <asm/smp-ops.h>
39 #include <asm/prom.h>
40
41 struct cpuinfo_mips cpu_data[NR_CPUS] __read_mostly;
42
43 EXPORT_SYMBOL(cpu_data);
44
45 #ifdef CONFIG_VT
46 struct screen_info screen_info;
47 #endif
48
49 /*
50 * Despite it's name this variable is even if we don't have PCI
51 */
52 unsigned int PCI_DMA_BUS_IS_PHYS;
53
54 EXPORT_SYMBOL(PCI_DMA_BUS_IS_PHYS);
55
56 /*
57 * Setup information
58 *
59 * These are initialized so they are in the .data section
60 */
61 unsigned long mips_machtype __read_mostly = MACH_UNKNOWN;
62
63 EXPORT_SYMBOL(mips_machtype);
64
65 struct boot_mem_map boot_mem_map;
66
67 static char __initdata command_line[COMMAND_LINE_SIZE];
68 char __initdata arcs_cmdline[COMMAND_LINE_SIZE];
69
70 #ifdef CONFIG_CMDLINE_BOOL
71 static char __initdata builtin_cmdline[COMMAND_LINE_SIZE] = CONFIG_CMDLINE;
72 #endif
73
74 /*
75 * mips_io_port_base is the begin of the address space to which x86 style
76 * I/O ports are mapped.
77 */
78 const unsigned long mips_io_port_base = -1;
79 EXPORT_SYMBOL(mips_io_port_base);
80
81 static struct resource code_resource = { .name = "Kernel code", };
82 static struct resource data_resource = { .name = "Kernel data", };
83
84 static void *detect_magic __initdata = detect_memory_region;
85
86 void __init add_memory_region(phys_addr_t start, phys_addr_t size, long type)
87 {
88 int x = boot_mem_map.nr_map;
89 int i;
90
91 /* Sanity check */
92 if (start + size < start) {
93 pr_warn("Trying to add an invalid memory region, skipped\n");
94 return;
95 }
96
97 /*
98 * Try to merge with existing entry, if any.
99 */
100 for (i = 0; i < boot_mem_map.nr_map; i++) {
101 struct boot_mem_map_entry *entry = boot_mem_map.map + i;
102 unsigned long top;
103
104 if (entry->type != type)
105 continue;
106
107 if (start + size < entry->addr)
108 continue; /* no overlap */
109
110 if (entry->addr + entry->size < start)
111 continue; /* no overlap */
112
113 top = max(entry->addr + entry->size, start + size);
114 entry->addr = min(entry->addr, start);
115 entry->size = top - entry->addr;
116
117 return;
118 }
119
120 if (boot_mem_map.nr_map == BOOT_MEM_MAP_MAX) {
121 pr_err("Ooops! Too many entries in the memory map!\n");
122 return;
123 }
124
125 boot_mem_map.map[x].addr = start;
126 boot_mem_map.map[x].size = size;
127 boot_mem_map.map[x].type = type;
128 boot_mem_map.nr_map++;
129 }
130
131 void __init detect_memory_region(phys_addr_t start, phys_addr_t sz_min, phys_addr_t sz_max)
132 {
133 void *dm = &detect_magic;
134 phys_addr_t size;
135
136 for (size = sz_min; size < sz_max; size <<= 1) {
137 if (!memcmp(dm, dm + size, sizeof(detect_magic)))
138 break;
139 }
140
141 pr_debug("Memory: %lluMB of RAM detected at 0x%llx (min: %lluMB, max: %lluMB)\n",
142 ((unsigned long long) size) / SZ_1M,
143 (unsigned long long) start,
144 ((unsigned long long) sz_min) / SZ_1M,
145 ((unsigned long long) sz_max) / SZ_1M);
146
147 add_memory_region(start, size, BOOT_MEM_RAM);
148 }
149
150 static void __init print_memory_map(void)
151 {
152 int i;
153 const int field = 2 * sizeof(unsigned long);
154
155 for (i = 0; i < boot_mem_map.nr_map; i++) {
156 printk(KERN_INFO " memory: %0*Lx @ %0*Lx ",
157 field, (unsigned long long) boot_mem_map.map[i].size,
158 field, (unsigned long long) boot_mem_map.map[i].addr);
159
160 switch (boot_mem_map.map[i].type) {
161 case BOOT_MEM_RAM:
162 printk(KERN_CONT "(usable)\n");
163 break;
164 case BOOT_MEM_INIT_RAM:
165 printk(KERN_CONT "(usable after init)\n");
166 break;
167 case BOOT_MEM_ROM_DATA:
168 printk(KERN_CONT "(ROM data)\n");
169 break;
170 case BOOT_MEM_RESERVED:
171 printk(KERN_CONT "(reserved)\n");
172 break;
173 default:
174 printk(KERN_CONT "type %lu\n", boot_mem_map.map[i].type);
175 break;
176 }
177 }
178 }
179
180 /*
181 * Manage initrd
182 */
183 #ifdef CONFIG_BLK_DEV_INITRD
184
185 static int __init rd_start_early(char *p)
186 {
187 unsigned long start = memparse(p, &p);
188
189 #ifdef CONFIG_64BIT
190 /* Guess if the sign extension was forgotten by bootloader */
191 if (start < XKPHYS)
192 start = (int)start;
193 #endif
194 initrd_start = start;
195 initrd_end += start;
196 return 0;
197 }
198 early_param("rd_start", rd_start_early);
199
200 static int __init rd_size_early(char *p)
201 {
202 initrd_end += memparse(p, &p);
203 return 0;
204 }
205 early_param("rd_size", rd_size_early);
206
207 /* it returns the next free pfn after initrd */
208 static unsigned long __init init_initrd(void)
209 {
210 unsigned long end;
211
212 /*
213 * Board specific code or command line parser should have
214 * already set up initrd_start and initrd_end. In these cases
215 * perfom sanity checks and use them if all looks good.
216 */
217 if (!initrd_start || initrd_end <= initrd_start)
218 goto disable;
219
220 if (initrd_start & ~PAGE_MASK) {
221 pr_err("initrd start must be page aligned\n");
222 goto disable;
223 }
224 if (initrd_start < PAGE_OFFSET) {
225 pr_err("initrd start < PAGE_OFFSET\n");
226 goto disable;
227 }
228
229 /*
230 * Sanitize initrd addresses. For example firmware
231 * can't guess if they need to pass them through
232 * 64-bits values if the kernel has been built in pure
233 * 32-bit. We need also to switch from KSEG0 to XKPHYS
234 * addresses now, so the code can now safely use __pa().
235 */
236 end = __pa(initrd_end);
237 initrd_end = (unsigned long)__va(end);
238 initrd_start = (unsigned long)__va(__pa(initrd_start));
239
240 ROOT_DEV = Root_RAM0;
241 return PFN_UP(end);
242 disable:
243 initrd_start = 0;
244 initrd_end = 0;
245 return 0;
246 }
247
248 static void __init finalize_initrd(void)
249 {
250 unsigned long size = initrd_end - initrd_start;
251
252 if (size == 0) {
253 printk(KERN_INFO "Initrd not found or empty");
254 goto disable;
255 }
256 if (__pa(initrd_end) > PFN_PHYS(max_low_pfn)) {
257 printk(KERN_ERR "Initrd extends beyond end of memory");
258 goto disable;
259 }
260
261 reserve_bootmem(__pa(initrd_start), size, BOOTMEM_DEFAULT);
262 initrd_below_start_ok = 1;
263
264 pr_info("Initial ramdisk at: 0x%lx (%lu bytes)\n",
265 initrd_start, size);
266 return;
267 disable:
268 printk(KERN_CONT " - disabling initrd\n");
269 initrd_start = 0;
270 initrd_end = 0;
271 }
272
273 #else /* !CONFIG_BLK_DEV_INITRD */
274
275 static unsigned long __init init_initrd(void)
276 {
277 return 0;
278 }
279
280 #define finalize_initrd() do {} while (0)
281
282 #endif
283
284 /*
285 * Initialize the bootmem allocator. It also setup initrd related data
286 * if needed.
287 */
288 #if defined(CONFIG_SGI_IP27) || (defined(CONFIG_CPU_LOONGSON3) && defined(CONFIG_NUMA))
289
290 static void __init bootmem_init(void)
291 {
292 init_initrd();
293 finalize_initrd();
294 }
295
296 #else /* !CONFIG_SGI_IP27 */
297
298 static void __init bootmem_init(void)
299 {
300 unsigned long reserved_end;
301 unsigned long mapstart = ~0UL;
302 unsigned long bootmap_size;
303 int i;
304
305 /*
306 * Sanity check any INITRD first. We don't take it into account
307 * for bootmem setup initially, rely on the end-of-kernel-code
308 * as our memory range starting point. Once bootmem is inited we
309 * will reserve the area used for the initrd.
310 */
311 init_initrd();
312 reserved_end = (unsigned long) PFN_UP(__pa_symbol(&_end));
313
314 /*
315 * max_low_pfn is not a number of pages. The number of pages
316 * of the system is given by 'max_low_pfn - min_low_pfn'.
317 */
318 min_low_pfn = ~0UL;
319 max_low_pfn = 0;
320
321 /*
322 * Find the highest page frame number we have available.
323 */
324 for (i = 0; i < boot_mem_map.nr_map; i++) {
325 unsigned long start, end;
326
327 if (boot_mem_map.map[i].type != BOOT_MEM_RAM)
328 continue;
329
330 start = PFN_UP(boot_mem_map.map[i].addr);
331 end = PFN_DOWN(boot_mem_map.map[i].addr
332 + boot_mem_map.map[i].size);
333
334 if (end > max_low_pfn)
335 max_low_pfn = end;
336 if (start < min_low_pfn)
337 min_low_pfn = start;
338 if (end <= reserved_end)
339 continue;
340 #ifdef CONFIG_BLK_DEV_INITRD
341 /* Skip zones before initrd and initrd itself */
342 if (initrd_end && end <= (unsigned long)PFN_UP(__pa(initrd_end)))
343 continue;
344 #endif
345 if (start >= mapstart)
346 continue;
347 mapstart = max(reserved_end, start);
348 }
349
350 if (min_low_pfn >= max_low_pfn)
351 panic("Incorrect memory mapping !!!");
352 if (min_low_pfn > ARCH_PFN_OFFSET) {
353 pr_info("Wasting %lu bytes for tracking %lu unused pages\n",
354 (min_low_pfn - ARCH_PFN_OFFSET) * sizeof(struct page),
355 min_low_pfn - ARCH_PFN_OFFSET);
356 } else if (min_low_pfn < ARCH_PFN_OFFSET) {
357 pr_info("%lu free pages won't be used\n",
358 ARCH_PFN_OFFSET - min_low_pfn);
359 }
360 min_low_pfn = ARCH_PFN_OFFSET;
361
362 /*
363 * Determine low and high memory ranges
364 */
365 max_pfn = max_low_pfn;
366 if (max_low_pfn > PFN_DOWN(HIGHMEM_START)) {
367 #ifdef CONFIG_HIGHMEM
368 highstart_pfn = PFN_DOWN(HIGHMEM_START);
369 highend_pfn = max_low_pfn;
370 #endif
371 max_low_pfn = PFN_DOWN(HIGHMEM_START);
372 }
373
374 #ifdef CONFIG_BLK_DEV_INITRD
375 /*
376 * mapstart should be after initrd_end
377 */
378 if (initrd_end)
379 mapstart = max(mapstart, (unsigned long)PFN_UP(__pa(initrd_end)));
380 #endif
381
382 /*
383 * Initialize the boot-time allocator with low memory only.
384 */
385 bootmap_size = init_bootmem_node(NODE_DATA(0), mapstart,
386 min_low_pfn, max_low_pfn);
387
388
389 for (i = 0; i < boot_mem_map.nr_map; i++) {
390 unsigned long start, end;
391
392 start = PFN_UP(boot_mem_map.map[i].addr);
393 end = PFN_DOWN(boot_mem_map.map[i].addr
394 + boot_mem_map.map[i].size);
395
396 if (start <= min_low_pfn)
397 start = min_low_pfn;
398 if (start >= end)
399 continue;
400
401 #ifndef CONFIG_HIGHMEM
402 if (end > max_low_pfn)
403 end = max_low_pfn;
404
405 /*
406 * ... finally, is the area going away?
407 */
408 if (end <= start)
409 continue;
410 #endif
411
412 memblock_add_node(PFN_PHYS(start), PFN_PHYS(end - start), 0);
413 }
414
415 /*
416 * Register fully available low RAM pages with the bootmem allocator.
417 */
418 for (i = 0; i < boot_mem_map.nr_map; i++) {
419 unsigned long start, end, size;
420
421 start = PFN_UP(boot_mem_map.map[i].addr);
422 end = PFN_DOWN(boot_mem_map.map[i].addr
423 + boot_mem_map.map[i].size);
424
425 /*
426 * Reserve usable memory.
427 */
428 switch (boot_mem_map.map[i].type) {
429 case BOOT_MEM_RAM:
430 break;
431 case BOOT_MEM_INIT_RAM:
432 memory_present(0, start, end);
433 continue;
434 default:
435 /* Not usable memory */
436 continue;
437 }
438
439 /*
440 * We are rounding up the start address of usable memory
441 * and at the end of the usable range downwards.
442 */
443 if (start >= max_low_pfn)
444 continue;
445 if (start < reserved_end)
446 start = reserved_end;
447 if (end > max_low_pfn)
448 end = max_low_pfn;
449
450 /*
451 * ... finally, is the area going away?
452 */
453 if (end <= start)
454 continue;
455 size = end - start;
456
457 /* Register lowmem ranges */
458 free_bootmem(PFN_PHYS(start), size << PAGE_SHIFT);
459 memory_present(0, start, end);
460 }
461
462 /*
463 * Reserve the bootmap memory.
464 */
465 reserve_bootmem(PFN_PHYS(mapstart), bootmap_size, BOOTMEM_DEFAULT);
466
467 /*
468 * Reserve initrd memory if needed.
469 */
470 finalize_initrd();
471 }
472
473 #endif /* CONFIG_SGI_IP27 */
474
475 /*
476 * arch_mem_init - initialize memory management subsystem
477 *
478 * o plat_mem_setup() detects the memory configuration and will record detected
479 * memory areas using add_memory_region.
480 *
481 * At this stage the memory configuration of the system is known to the
482 * kernel but generic memory management system is still entirely uninitialized.
483 *
484 * o bootmem_init()
485 * o sparse_init()
486 * o paging_init()
487 * o dma_contiguous_reserve()
488 *
489 * At this stage the bootmem allocator is ready to use.
490 *
491 * NOTE: historically plat_mem_setup did the entire platform initialization.
492 * This was rather impractical because it meant plat_mem_setup had to
493 * get away without any kind of memory allocator. To keep old code from
494 * breaking plat_setup was just renamed to plat_mem_setup and a second platform
495 * initialization hook for anything else was introduced.
496 */
497
498 static int usermem __initdata;
499
500 static int __init early_parse_mem(char *p)
501 {
502 phys_addr_t start, size;
503
504 /*
505 * If a user specifies memory size, we
506 * blow away any automatically generated
507 * size.
508 */
509 if (usermem == 0) {
510 boot_mem_map.nr_map = 0;
511 usermem = 1;
512 }
513 start = 0;
514 size = memparse(p, &p);
515 if (*p == '@')
516 start = memparse(p + 1, &p);
517
518 add_memory_region(start, size, BOOT_MEM_RAM);
519 return 0;
520 }
521 early_param("mem", early_parse_mem);
522
523 #ifdef CONFIG_PROC_VMCORE
524 unsigned long setup_elfcorehdr, setup_elfcorehdr_size;
525 static int __init early_parse_elfcorehdr(char *p)
526 {
527 int i;
528
529 setup_elfcorehdr = memparse(p, &p);
530
531 for (i = 0; i < boot_mem_map.nr_map; i++) {
532 unsigned long start = boot_mem_map.map[i].addr;
533 unsigned long end = (boot_mem_map.map[i].addr +
534 boot_mem_map.map[i].size);
535 if (setup_elfcorehdr >= start && setup_elfcorehdr < end) {
536 /*
537 * Reserve from the elf core header to the end of
538 * the memory segment, that should all be kdump
539 * reserved memory.
540 */
541 setup_elfcorehdr_size = end - setup_elfcorehdr;
542 break;
543 }
544 }
545 /*
546 * If we don't find it in the memory map, then we shouldn't
547 * have to worry about it, as the new kernel won't use it.
548 */
549 return 0;
550 }
551 early_param("elfcorehdr", early_parse_elfcorehdr);
552 #endif
553
554 static void __init arch_mem_addpart(phys_addr_t mem, phys_addr_t end, int type)
555 {
556 phys_addr_t size;
557 int i;
558
559 size = end - mem;
560 if (!size)
561 return;
562
563 /* Make sure it is in the boot_mem_map */
564 for (i = 0; i < boot_mem_map.nr_map; i++) {
565 if (mem >= boot_mem_map.map[i].addr &&
566 mem < (boot_mem_map.map[i].addr +
567 boot_mem_map.map[i].size))
568 return;
569 }
570 add_memory_region(mem, size, type);
571 }
572
573 #ifdef CONFIG_KEXEC
574 static inline unsigned long long get_total_mem(void)
575 {
576 unsigned long long total;
577
578 total = max_pfn - min_low_pfn;
579 return total << PAGE_SHIFT;
580 }
581
582 static void __init mips_parse_crashkernel(void)
583 {
584 unsigned long long total_mem;
585 unsigned long long crash_size, crash_base;
586 int ret;
587
588 total_mem = get_total_mem();
589 ret = parse_crashkernel(boot_command_line, total_mem,
590 &crash_size, &crash_base);
591 if (ret != 0 || crash_size <= 0)
592 return;
593
594 crashk_res.start = crash_base;
595 crashk_res.end = crash_base + crash_size - 1;
596 }
597
598 static void __init request_crashkernel(struct resource *res)
599 {
600 int ret;
601
602 ret = request_resource(res, &crashk_res);
603 if (!ret)
604 pr_info("Reserving %ldMB of memory at %ldMB for crashkernel\n",
605 (unsigned long)((crashk_res.end -
606 crashk_res.start + 1) >> 20),
607 (unsigned long)(crashk_res.start >> 20));
608 }
609 #else /* !defined(CONFIG_KEXEC) */
610 static void __init mips_parse_crashkernel(void)
611 {
612 }
613
614 static void __init request_crashkernel(struct resource *res)
615 {
616 }
617 #endif /* !defined(CONFIG_KEXEC) */
618
619 static void __init arch_mem_init(char **cmdline_p)
620 {
621 struct memblock_region *reg;
622 extern void plat_mem_setup(void);
623
624 /* call board setup routine */
625 plat_mem_setup();
626
627 /*
628 * Make sure all kernel memory is in the maps. The "UP" and
629 * "DOWN" are opposite for initdata since if it crosses over
630 * into another memory section you don't want that to be
631 * freed when the initdata is freed.
632 */
633 arch_mem_addpart(PFN_DOWN(__pa_symbol(&_text)) << PAGE_SHIFT,
634 PFN_UP(__pa_symbol(&_edata)) << PAGE_SHIFT,
635 BOOT_MEM_RAM);
636 arch_mem_addpart(PFN_UP(__pa_symbol(&__init_begin)) << PAGE_SHIFT,
637 PFN_DOWN(__pa_symbol(&__init_end)) << PAGE_SHIFT,
638 BOOT_MEM_INIT_RAM);
639
640 pr_info("Determined physical RAM map:\n");
641 print_memory_map();
642
643 #ifdef CONFIG_CMDLINE_BOOL
644 #ifdef CONFIG_CMDLINE_OVERRIDE
645 strlcpy(boot_command_line, builtin_cmdline, COMMAND_LINE_SIZE);
646 #else
647 if (builtin_cmdline[0]) {
648 strlcat(arcs_cmdline, " ", COMMAND_LINE_SIZE);
649 strlcat(arcs_cmdline, builtin_cmdline, COMMAND_LINE_SIZE);
650 }
651 strlcpy(boot_command_line, arcs_cmdline, COMMAND_LINE_SIZE);
652 #endif
653 #else
654 strlcpy(boot_command_line, arcs_cmdline, COMMAND_LINE_SIZE);
655 #endif
656 strlcpy(command_line, boot_command_line, COMMAND_LINE_SIZE);
657
658 *cmdline_p = command_line;
659
660 parse_early_param();
661
662 if (usermem) {
663 pr_info("User-defined physical RAM map:\n");
664 print_memory_map();
665 }
666
667 bootmem_init();
668 #ifdef CONFIG_PROC_VMCORE
669 if (setup_elfcorehdr && setup_elfcorehdr_size) {
670 printk(KERN_INFO "kdump reserved memory at %lx-%lx\n",
671 setup_elfcorehdr, setup_elfcorehdr_size);
672 reserve_bootmem(setup_elfcorehdr, setup_elfcorehdr_size,
673 BOOTMEM_DEFAULT);
674 }
675 #endif
676
677 mips_parse_crashkernel();
678 #ifdef CONFIG_KEXEC
679 if (crashk_res.start != crashk_res.end)
680 reserve_bootmem(crashk_res.start,
681 crashk_res.end - crashk_res.start + 1,
682 BOOTMEM_DEFAULT);
683 #endif
684 device_tree_init();
685 sparse_init();
686 plat_swiotlb_setup();
687 paging_init();
688
689 dma_contiguous_reserve(PFN_PHYS(max_low_pfn));
690 /* Tell bootmem about cma reserved memblock section */
691 for_each_memblock(reserved, reg)
692 if (reg->size != 0)
693 reserve_bootmem(reg->base, reg->size, BOOTMEM_DEFAULT);
694 }
695
696 static void __init resource_init(void)
697 {
698 int i;
699
700 if (UNCAC_BASE != IO_BASE)
701 return;
702
703 code_resource.start = __pa_symbol(&_text);
704 code_resource.end = __pa_symbol(&_etext) - 1;
705 data_resource.start = __pa_symbol(&_etext);
706 data_resource.end = __pa_symbol(&_edata) - 1;
707
708 for (i = 0; i < boot_mem_map.nr_map; i++) {
709 struct resource *res;
710 unsigned long start, end;
711
712 start = boot_mem_map.map[i].addr;
713 end = boot_mem_map.map[i].addr + boot_mem_map.map[i].size - 1;
714 if (start >= HIGHMEM_START)
715 continue;
716 if (end >= HIGHMEM_START)
717 end = HIGHMEM_START - 1;
718
719 res = alloc_bootmem(sizeof(struct resource));
720 switch (boot_mem_map.map[i].type) {
721 case BOOT_MEM_RAM:
722 case BOOT_MEM_INIT_RAM:
723 case BOOT_MEM_ROM_DATA:
724 res->name = "System RAM";
725 break;
726 case BOOT_MEM_RESERVED:
727 default:
728 res->name = "reserved";
729 }
730
731 res->start = start;
732 res->end = end;
733
734 res->flags = IORESOURCE_MEM | IORESOURCE_BUSY;
735 request_resource(&iomem_resource, res);
736
737 /*
738 * We don't know which RAM region contains kernel data,
739 * so we try it repeatedly and let the resource manager
740 * test it.
741 */
742 request_resource(res, &code_resource);
743 request_resource(res, &data_resource);
744 request_crashkernel(res);
745 }
746 }
747
748 #ifdef CONFIG_SMP
749 static void __init prefill_possible_map(void)
750 {
751 int i, possible = num_possible_cpus();
752
753 if (possible > nr_cpu_ids)
754 possible = nr_cpu_ids;
755
756 for (i = 0; i < possible; i++)
757 set_cpu_possible(i, true);
758 for (; i < NR_CPUS; i++)
759 set_cpu_possible(i, false);
760
761 nr_cpu_ids = possible;
762 }
763 #else
764 static inline void prefill_possible_map(void) {}
765 #endif
766
767 void __init setup_arch(char **cmdline_p)
768 {
769 cpu_probe();
770 prom_init();
771
772 setup_early_fdc_console();
773 #ifdef CONFIG_EARLY_PRINTK
774 setup_early_printk();
775 #endif
776 cpu_report();
777 check_bugs_early();
778
779 #if defined(CONFIG_VT)
780 #if defined(CONFIG_VGA_CONSOLE)
781 conswitchp = &vga_con;
782 #elif defined(CONFIG_DUMMY_CONSOLE)
783 conswitchp = &dummy_con;
784 #endif
785 #endif
786
787 arch_mem_init(cmdline_p);
788
789 resource_init();
790 plat_smp_setup();
791 prefill_possible_map();
792
793 cpu_cache_init();
794 }
795
796 unsigned long kernelsp[NR_CPUS];
797 unsigned long fw_arg0, fw_arg1, fw_arg2, fw_arg3;
798
799 #ifdef CONFIG_DEBUG_FS
800 struct dentry *mips_debugfs_dir;
801 static int __init debugfs_mips(void)
802 {
803 struct dentry *d;
804
805 d = debugfs_create_dir("mips", NULL);
806 if (!d)
807 return -ENOMEM;
808 mips_debugfs_dir = d;
809 return 0;
810 }
811 arch_initcall(debugfs_mips);
812 #endif