prom_init.c 78.7 KB
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/*
 * Procedures for interfacing to Open Firmware.
 *
 * Paul Mackerras	August 1996.
 * Copyright (C) 1996-2005 Paul Mackerras.
 * 
 *  Adapted for 64bit PowerPC by Dave Engebretsen and Peter Bergner.
 *    {engebret|bergner}@us.ibm.com 
 *
 *      This program is free software; you can redistribute it and/or
 *      modify it under the terms of the GNU General Public License
 *      as published by the Free Software Foundation; either version
 *      2 of the License, or (at your option) any later version.
 */

#undef DEBUG_PROM

#include <stdarg.h>
#include <linux/kernel.h>
#include <linux/string.h>
#include <linux/init.h>
#include <linux/threads.h>
#include <linux/spinlock.h>
#include <linux/types.h>
#include <linux/pci.h>
#include <linux/proc_fs.h>
#include <linux/stringify.h>
#include <linux/delay.h>
#include <linux/initrd.h>
#include <linux/bitops.h>
#include <asm/prom.h>
#include <asm/rtas.h>
#include <asm/page.h>
#include <asm/processor.h>
#include <asm/irq.h>
#include <asm/io.h>
#include <asm/smp.h>
#include <asm/mmu.h>
#include <asm/pgtable.h>
#include <asm/pci.h>
#include <asm/iommu.h>
#include <asm/btext.h>
#include <asm/sections.h>
#include <asm/machdep.h>
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#include <asm/opal.h>
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#include <linux/linux_logo.h>

/*
 * Eventually bump that one up
 */
#define DEVTREE_CHUNK_SIZE	0x100000

/*
 * This is the size of the local memory reserve map that gets copied
 * into the boot params passed to the kernel. That size is totally
 * flexible as the kernel just reads the list until it encounters an
 * entry with size 0, so it can be changed without breaking binary
 * compatibility
 */
#define MEM_RESERVE_MAP_SIZE	8

/*
 * prom_init() is called very early on, before the kernel text
 * and data have been mapped to KERNELBASE.  At this point the code
 * is running at whatever address it has been loaded at.
 * On ppc32 we compile with -mrelocatable, which means that references
 * to extern and static variables get relocated automatically.
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 * ppc64 objects are always relocatable, we just need to relocate the
 * TOC.
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 *
 * Because OF may have mapped I/O devices into the area starting at
 * KERNELBASE, particularly on CHRP machines, we can't safely call
 * OF once the kernel has been mapped to KERNELBASE.  Therefore all
 * OF calls must be done within prom_init().
 *
 * ADDR is used in calls to call_prom.  The 4th and following
 * arguments to call_prom should be 32-bit values.
 * On ppc64, 64 bit values are truncated to 32 bits (and
 * fortunately don't get interpreted as two arguments).
 */
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#define ADDR(x)		(u32)(unsigned long)(x)

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#ifdef CONFIG_PPC64
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#define OF_WORKAROUNDS	0
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#else
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#define OF_WORKAROUNDS	of_workarounds
int of_workarounds;
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#endif

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#define OF_WA_CLAIM	1	/* do phys/virt claim separately, then map */
#define OF_WA_LONGTRAIL	2	/* work around longtrail bugs */

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#define PROM_BUG() do {						\
        prom_printf("kernel BUG at %s line 0x%x!\n",		\
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		    __FILE__, __LINE__);			\
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        __asm__ __volatile__(".long " BUG_ILLEGAL_INSTR);	\
} while (0)

#ifdef DEBUG_PROM
#define prom_debug(x...)	prom_printf(x)
#else
#define prom_debug(x...)
#endif


typedef u32 prom_arg_t;

struct prom_args {
        u32 service;
        u32 nargs;
        u32 nret;
        prom_arg_t args[10];
};

struct prom_t {
	ihandle root;
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	phandle chosen;
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	int cpu;
	ihandle stdout;
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	ihandle mmumap;
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	ihandle memory;
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};

struct mem_map_entry {
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	u64	base;
	u64	size;
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};

typedef u32 cell_t;

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extern void __start(unsigned long r3, unsigned long r4, unsigned long r5,
		    unsigned long r6, unsigned long r7, unsigned long r8,
		    unsigned long r9);
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#ifdef CONFIG_PPC64
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extern int enter_prom(struct prom_args *args, unsigned long entry);
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#else
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static inline int enter_prom(struct prom_args *args, unsigned long entry)
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{
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	return ((int (*)(struct prom_args *))entry)(args);
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}
#endif

extern void copy_and_flush(unsigned long dest, unsigned long src,
			   unsigned long size, unsigned long offset);

/* prom structure */
static struct prom_t __initdata prom;

static unsigned long prom_entry __initdata;

#define PROM_SCRATCH_SIZE 256

static char __initdata of_stdout_device[256];
static char __initdata prom_scratch[PROM_SCRATCH_SIZE];

static unsigned long __initdata dt_header_start;
static unsigned long __initdata dt_struct_start, dt_struct_end;
static unsigned long __initdata dt_string_start, dt_string_end;

static unsigned long __initdata prom_initrd_start, prom_initrd_end;

#ifdef CONFIG_PPC64
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static int __initdata prom_iommu_force_on;
static int __initdata prom_iommu_off;
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static unsigned long __initdata prom_tce_alloc_start;
static unsigned long __initdata prom_tce_alloc_end;
#endif

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/* Platforms codes are now obsolete in the kernel. Now only used within this
 * file and ultimately gone too. Feel free to change them if you need, they
 * are not shared with anything outside of this file anymore
 */
#define PLATFORM_PSERIES	0x0100
#define PLATFORM_PSERIES_LPAR	0x0101
#define PLATFORM_LPAR		0x0001
#define PLATFORM_POWERMAC	0x0400
#define PLATFORM_GENERIC	0x0500
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#define PLATFORM_OPAL		0x0600
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static int __initdata of_platform;

static char __initdata prom_cmd_line[COMMAND_LINE_SIZE];

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static unsigned long __initdata prom_memory_limit;

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static unsigned long __initdata alloc_top;
static unsigned long __initdata alloc_top_high;
static unsigned long __initdata alloc_bottom;
static unsigned long __initdata rmo_top;
static unsigned long __initdata ram_top;

static struct mem_map_entry __initdata mem_reserve_map[MEM_RESERVE_MAP_SIZE];
static int __initdata mem_reserve_cnt;

static cell_t __initdata regbuf[1024];


/*
 * Error results ... some OF calls will return "-1" on error, some
 * will return 0, some will return either. To simplify, here are
 * macros to use with any ihandle or phandle return value to check if
 * it is valid
 */

#define PROM_ERROR		(-1u)
#define PHANDLE_VALID(p)	((p) != 0 && (p) != PROM_ERROR)
#define IHANDLE_VALID(i)	((i) != 0 && (i) != PROM_ERROR)


/* This is the one and *ONLY* place where we actually call open
 * firmware.
 */

static int __init call_prom(const char *service, int nargs, int nret, ...)
{
	int i;
	struct prom_args args;
	va_list list;

	args.service = ADDR(service);
	args.nargs = nargs;
	args.nret = nret;

	va_start(list, nret);
	for (i = 0; i < nargs; i++)
		args.args[i] = va_arg(list, prom_arg_t);
	va_end(list);

	for (i = 0; i < nret; i++)
		args.args[nargs+i] = 0;

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	if (enter_prom(&args, prom_entry) < 0)
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		return PROM_ERROR;
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	return (nret > 0) ? args.args[nargs] : 0;
}

static int __init call_prom_ret(const char *service, int nargs, int nret,
				prom_arg_t *rets, ...)
{
	int i;
	struct prom_args args;
	va_list list;

	args.service = ADDR(service);
	args.nargs = nargs;
	args.nret = nret;

	va_start(list, rets);
	for (i = 0; i < nargs; i++)
		args.args[i] = va_arg(list, prom_arg_t);
	va_end(list);

	for (i = 0; i < nret; i++)
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		args.args[nargs+i] = 0;
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	if (enter_prom(&args, prom_entry) < 0)
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		return PROM_ERROR;
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	if (rets != NULL)
		for (i = 1; i < nret; ++i)
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			rets[i-1] = args.args[nargs+i];
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	return (nret > 0) ? args.args[nargs] : 0;
}


static void __init prom_print(const char *msg)
{
	const char *p, *q;

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	if (prom.stdout == 0)
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		return;

	for (p = msg; *p != 0; p = q) {
		for (q = p; *q != 0 && *q != '\n'; ++q)
			;
		if (q > p)
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			call_prom("write", 3, 1, prom.stdout, p, q - p);
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		if (*q == 0)
			break;
		++q;
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		call_prom("write", 3, 1, prom.stdout, ADDR("\r\n"), 2);
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	}
}


static void __init prom_print_hex(unsigned long val)
{
	int i, nibbles = sizeof(val)*2;
	char buf[sizeof(val)*2+1];

	for (i = nibbles-1;  i >= 0;  i--) {
		buf[i] = (val & 0xf) + '0';
		if (buf[i] > '9')
			buf[i] += ('a'-'0'-10);
		val >>= 4;
	}
	buf[nibbles] = '\0';
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	call_prom("write", 3, 1, prom.stdout, buf, nibbles);
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}

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/* max number of decimal digits in an unsigned long */
#define UL_DIGITS 21
static void __init prom_print_dec(unsigned long val)
{
	int i, size;
	char buf[UL_DIGITS+1];

	for (i = UL_DIGITS-1; i >= 0;  i--) {
		buf[i] = (val % 10) + '0';
		val = val/10;
		if (val == 0)
			break;
	}
	/* shift stuff down */
	size = UL_DIGITS - i;
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	call_prom("write", 3, 1, prom.stdout, buf+i, size);
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}
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static void __init prom_printf(const char *format, ...)
{
	const char *p, *q, *s;
	va_list args;
	unsigned long v;
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	long vs;
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	va_start(args, format);
	for (p = format; *p != 0; p = q) {
		for (q = p; *q != 0 && *q != '\n' && *q != '%'; ++q)
			;
		if (q > p)
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			call_prom("write", 3, 1, prom.stdout, p, q - p);
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		if (*q == 0)
			break;
		if (*q == '\n') {
			++q;
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			call_prom("write", 3, 1, prom.stdout,
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				  ADDR("\r\n"), 2);
			continue;
		}
		++q;
		if (*q == 0)
			break;
		switch (*q) {
		case 's':
			++q;
			s = va_arg(args, const char *);
			prom_print(s);
			break;
		case 'x':
			++q;
			v = va_arg(args, unsigned long);
			prom_print_hex(v);
			break;
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		case 'd':
			++q;
			vs = va_arg(args, int);
			if (vs < 0) {
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				prom_print("-");
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				vs = -vs;
			}
			prom_print_dec(vs);
			break;
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		case 'l':
			++q;
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			if (*q == 0)
				break;
			else if (*q == 'x') {
				++q;
				v = va_arg(args, unsigned long);
				prom_print_hex(v);
			} else if (*q == 'u') { /* '%lu' */
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				++q;
				v = va_arg(args, unsigned long);
				prom_print_dec(v);
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			} else if (*q == 'd') { /* %ld */
				++q;
				vs = va_arg(args, long);
				if (vs < 0) {
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					prom_print("-");
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					vs = -vs;
				}
				prom_print_dec(vs);
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			}
			break;
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		}
	}
}


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static unsigned int __init prom_claim(unsigned long virt, unsigned long size,
				unsigned long align)
{

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	if (align == 0 && (OF_WORKAROUNDS & OF_WA_CLAIM)) {
		/*
		 * Old OF requires we claim physical and virtual separately
		 * and then map explicitly (assuming virtual mode)
		 */
		int ret;
		prom_arg_t result;

		ret = call_prom_ret("call-method", 5, 2, &result,
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				    ADDR("claim"), prom.memory,
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				    align, size, virt);
		if (ret != 0 || result == -1)
			return -1;
		ret = call_prom_ret("call-method", 5, 2, &result,
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				    ADDR("claim"), prom.mmumap,
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				    align, size, virt);
		if (ret != 0) {
			call_prom("call-method", 4, 1, ADDR("release"),
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				  prom.memory, size, virt);
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			return -1;
		}
		/* the 0x12 is M (coherence) + PP == read/write */
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		call_prom("call-method", 6, 1,
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			  ADDR("map"), prom.mmumap, 0x12, size, virt, virt);
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		return virt;
	}
	return call_prom("claim", 3, 1, (prom_arg_t)virt, (prom_arg_t)size,
			 (prom_arg_t)align);
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}

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static void __init __attribute__((noreturn)) prom_panic(const char *reason)
{
	prom_print(reason);
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	/* Do not call exit because it clears the screen on pmac
	 * it also causes some sort of double-fault on early pmacs */
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	if (of_platform == PLATFORM_POWERMAC)
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		asm("trap\n");

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	/* ToDo: should put up an SRC here on pSeries */
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	call_prom("exit", 0, 0);

	for (;;)			/* should never get here */
		;
}


static int __init prom_next_node(phandle *nodep)
{
	phandle node;

	if ((node = *nodep) != 0
	    && (*nodep = call_prom("child", 1, 1, node)) != 0)
		return 1;
	if ((*nodep = call_prom("peer", 1, 1, node)) != 0)
		return 1;
	for (;;) {
		if ((node = call_prom("parent", 1, 1, node)) == 0)
			return 0;
		if ((*nodep = call_prom("peer", 1, 1, node)) != 0)
			return 1;
	}
}

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static int inline prom_getprop(phandle node, const char *pname,
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			       void *value, size_t valuelen)
{
	return call_prom("getprop", 4, 1, node, ADDR(pname),
			 (u32)(unsigned long) value, (u32) valuelen);
}

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static int inline prom_getproplen(phandle node, const char *pname)
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{
	return call_prom("getproplen", 2, 1, node, ADDR(pname));
}

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static void add_string(char **str, const char *q)
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{
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	char *p = *str;

	while (*q)
		*p++ = *q++;
	*p++ = ' ';
	*str = p;
}

static char *tohex(unsigned int x)
{
	static char digits[] = "0123456789abcdef";
	static char result[9];
	int i;

	result[8] = 0;
	i = 8;
	do {
		--i;
		result[i] = digits[x & 0xf];
		x >>= 4;
	} while (x != 0 && i > 0);
	return &result[i];
}

static int __init prom_setprop(phandle node, const char *nodename,
			       const char *pname, void *value, size_t valuelen)
{
	char cmd[256], *p;

	if (!(OF_WORKAROUNDS & OF_WA_LONGTRAIL))
		return call_prom("setprop", 4, 1, node, ADDR(pname),
				 (u32)(unsigned long) value, (u32) valuelen);

	/* gah... setprop doesn't work on longtrail, have to use interpret */
	p = cmd;
	add_string(&p, "dev");
	add_string(&p, nodename);
	add_string(&p, tohex((u32)(unsigned long) value));
	add_string(&p, tohex(valuelen));
	add_string(&p, tohex(ADDR(pname)));
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	add_string(&p, tohex(strlen(pname)));
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	add_string(&p, "property");
	*p = 0;
	return call_prom("interpret", 1, 1, (u32)(unsigned long) cmd);
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}

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/* We can't use the standard versions because of relocation headaches. */
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#define isxdigit(c)	(('0' <= (c) && (c) <= '9') \
			 || ('a' <= (c) && (c) <= 'f') \
			 || ('A' <= (c) && (c) <= 'F'))

#define isdigit(c)	('0' <= (c) && (c) <= '9')
#define islower(c)	('a' <= (c) && (c) <= 'z')
#define toupper(c)	(islower(c) ? ((c) - 'a' + 'A') : (c))

unsigned long prom_strtoul(const char *cp, const char **endp)
{
	unsigned long result = 0, base = 10, value;

	if (*cp == '0') {
		base = 8;
		cp++;
		if (toupper(*cp) == 'X') {
			cp++;
			base = 16;
		}
	}

	while (isxdigit(*cp) &&
	       (value = isdigit(*cp) ? *cp - '0' : toupper(*cp) - 'A' + 10) < base) {
		result = result * base + value;
		cp++;
	}

	if (endp)
		*endp = cp;

	return result;
}

unsigned long prom_memparse(const char *ptr, const char **retptr)
{
	unsigned long ret = prom_strtoul(ptr, retptr);
	int shift = 0;

	/*
	 * We can't use a switch here because GCC *may* generate a
	 * jump table which won't work, because we're not running at
	 * the address we're linked at.
	 */
	if ('G' == **retptr || 'g' == **retptr)
		shift = 30;

	if ('M' == **retptr || 'm' == **retptr)
		shift = 20;

	if ('K' == **retptr || 'k' == **retptr)
		shift = 10;

	if (shift) {
		ret <<= shift;
		(*retptr)++;
	}

	return ret;
}

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/*
 * Early parsing of the command line passed to the kernel, used for
 * "mem=x" and the options that affect the iommu
 */
static void __init early_cmdline_parse(void)
{
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	const char *opt;
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	char *p;
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	int l = 0;

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	prom_cmd_line[0] = 0;
	p = prom_cmd_line;
	if ((long)prom.chosen > 0)
		l = prom_getprop(prom.chosen, "bootargs", p, COMMAND_LINE_SIZE-1);
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#ifdef CONFIG_CMDLINE
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	if (l <= 0 || p[0] == '\0') /* dbl check */
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		strlcpy(prom_cmd_line,
			CONFIG_CMDLINE, sizeof(prom_cmd_line));
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#endif /* CONFIG_CMDLINE */
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	prom_printf("command line: %s\n", prom_cmd_line);
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#ifdef CONFIG_PPC64
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	opt = strstr(prom_cmd_line, "iommu=");
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	if (opt) {
		prom_printf("iommu opt is: %s\n", opt);
		opt += 6;
		while (*opt && *opt == ' ')
			opt++;
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		if (!strncmp(opt, "off", 3))
			prom_iommu_off = 1;
		else if (!strncmp(opt, "force", 5))
			prom_iommu_force_on = 1;
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	}
#endif
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	opt = strstr(prom_cmd_line, "mem=");
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	if (opt) {
		opt += 4;
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		prom_memory_limit = prom_memparse(opt, (const char **)&opt);
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#ifdef CONFIG_PPC64
		/* Align to 16 MB == size of ppc64 large page */
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		prom_memory_limit = ALIGN(prom_memory_limit, 0x1000000);
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#endif
	}
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}

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#if defined(CONFIG_PPC_PSERIES) || defined(CONFIG_PPC_POWERNV)
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/*
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 * The architecture vector has an array of PVR mask/value pairs,
 * followed by # option vectors - 1, followed by the option vectors.
 *
 * See prom.h for the definition of the bits specified in the
 * architecture vector.
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 *
 * Because the description vector contains a mix of byte and word
 * values, we declare it as an unsigned char array, and use this
 * macro to put word values in.
 */
#define W(x)	((x) >> 24) & 0xff, ((x) >> 16) & 0xff, \
		((x) >> 8) & 0xff, (x) & 0xff

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unsigned char ibm_architecture_vec[] = {
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	W(0xfffe0000), W(0x003a0000),	/* POWER5/POWER5+ */
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	W(0xffff0000), W(0x003e0000),	/* POWER6 */
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	W(0xffff0000), W(0x003f0000),	/* POWER7 */
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	W(0xffff0000), W(0x004b0000),	/* POWER8E */
	W(0xffff0000), W(0x004d0000),	/* POWER8 */
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	W(0xffffffff), W(0x0f000004),	/* all 2.07-compliant */
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	W(0xffffffff), W(0x0f000003),	/* all 2.06-compliant */
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	W(0xffffffff), W(0x0f000002),	/* all 2.05-compliant */
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	W(0xfffffffe), W(0x0f000001),	/* all 2.04-compliant and earlier */
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	6 - 1,				/* 6 option vectors */
654 655

	/* option vector 1: processor architectures supported */
656
	3 - 2,				/* length */
657 658
	0,				/* don't ignore, don't halt */
	OV1_PPC_2_00 | OV1_PPC_2_01 | OV1_PPC_2_02 | OV1_PPC_2_03 |
659
	OV1_PPC_2_04 | OV1_PPC_2_05 | OV1_PPC_2_06 | OV1_PPC_2_07,
660 661

	/* option vector 2: Open Firmware options supported */
662
	34 - 2,				/* length */
663 664 665 666 667 668 669
	OV2_REAL_MODE,
	0, 0,
	W(0xffffffff),			/* real_base */
	W(0xffffffff),			/* real_size */
	W(0xffffffff),			/* virt_base */
	W(0xffffffff),			/* virt_size */
	W(0xffffffff),			/* load_base */
670
	W(256),				/* 256MB min RMA */
671 672 673 674 675
	W(0xffffffff),			/* full client load */
	0,				/* min RMA percentage of total RAM */
	48,				/* max log_2(hash table size) */

	/* option vector 3: processor options supported */
676
	3 - 2,				/* length */
677
	0,				/* don't ignore, don't halt */
678
	OV3_FP | OV3_VMX | OV3_DFP,
679 680

	/* option vector 4: IBM PAPR implementation */
681
	3 - 2,				/* length */
682
	0,				/* don't halt */
683
	OV4_MIN_ENT_CAP,		/* minimum VP entitled capacity */
684 685

	/* option vector 5: PAPR/OF options */
686
	19 - 2,				/* length */
687
	0,				/* don't ignore, don't halt */
688 689 690 691 692 693 694 695
	OV5_FEAT(OV5_LPAR) | OV5_FEAT(OV5_SPLPAR) | OV5_FEAT(OV5_LARGE_PAGES) |
	OV5_FEAT(OV5_DRCONF_MEMORY) | OV5_FEAT(OV5_DONATE_DEDICATE_CPU) |
#ifdef CONFIG_PCI_MSI
	/* PCIe/MSI support.  Without MSI full PCIe is not supported */
	OV5_FEAT(OV5_MSI),
#else
	0,
#endif
696
	0,
697 698 699 700 701
#ifdef CONFIG_PPC_SMLPAR
	OV5_FEAT(OV5_CMO) | OV5_FEAT(OV5_XCMO),
#else
	0,
#endif
702
	OV5_FEAT(OV5_TYPE1_AFFINITY) | OV5_FEAT(OV5_PRRN),
703 704 705
	0,
	0,
	0,
706 707 708 709
	/* WARNING: The offset of the "number of cores" field below
	 * must match by the macro below. Update the definition if
	 * the structure layout changes.
	 */
710
#define IBM_ARCH_VEC_NRCORES_OFFSET	125
711
	W(NR_CPUS),			/* number of cores supported */
712 713 714 715
	0,
	0,
	0,
	0,
716 717 718
	OV5_FEAT(OV5_PFO_HW_RNG) | OV5_FEAT(OV5_PFO_HW_ENCR) |
	OV5_FEAT(OV5_PFO_HW_842),
	OV5_FEAT(OV5_SUB_PROCESSORS),
719 720 721 722 723 724
	/* option vector 6: IBM PAPR hints */
	4 - 2,				/* length */
	0,
	0,
	OV6_LINUX,

725 726 727
};

/* Old method - ELF header with PT_NOTE sections */
728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760
static struct fake_elf {
	Elf32_Ehdr	elfhdr;
	Elf32_Phdr	phdr[2];
	struct chrpnote {
		u32	namesz;
		u32	descsz;
		u32	type;
		char	name[8];	/* "PowerPC" */
		struct chrpdesc {
			u32	real_mode;
			u32	real_base;
			u32	real_size;
			u32	virt_base;
			u32	virt_size;
			u32	load_base;
		} chrpdesc;
	} chrpnote;
	struct rpanote {
		u32	namesz;
		u32	descsz;
		u32	type;
		char	name[24];	/* "IBM,RPA-Client-Config" */
		struct rpadesc {
			u32	lpar_affinity;
			u32	min_rmo_size;
			u32	min_rmo_percent;
			u32	max_pft_size;
			u32	splpar;
			u32	min_load;
			u32	new_mem_def;
			u32	ignore_me;
		} rpadesc;
	} rpanote;
761
} fake_elf = {
762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802
	.elfhdr = {
		.e_ident = { 0x7f, 'E', 'L', 'F',
			     ELFCLASS32, ELFDATA2MSB, EV_CURRENT },
		.e_type = ET_EXEC,	/* yeah right */
		.e_machine = EM_PPC,
		.e_version = EV_CURRENT,
		.e_phoff = offsetof(struct fake_elf, phdr),
		.e_phentsize = sizeof(Elf32_Phdr),
		.e_phnum = 2
	},
	.phdr = {
		[0] = {
			.p_type = PT_NOTE,
			.p_offset = offsetof(struct fake_elf, chrpnote),
			.p_filesz = sizeof(struct chrpnote)
		}, [1] = {
			.p_type = PT_NOTE,
			.p_offset = offsetof(struct fake_elf, rpanote),
			.p_filesz = sizeof(struct rpanote)
		}
	},
	.chrpnote = {
		.namesz = sizeof("PowerPC"),
		.descsz = sizeof(struct chrpdesc),
		.type = 0x1275,
		.name = "PowerPC",
		.chrpdesc = {
			.real_mode = ~0U,	/* ~0 means "don't care" */
			.real_base = ~0U,
			.real_size = ~0U,
			.virt_base = ~0U,
			.virt_size = ~0U,
			.load_base = ~0U
		},
	},
	.rpanote = {
		.namesz = sizeof("IBM,RPA-Client-Config"),
		.descsz = sizeof(struct rpadesc),
		.type = 0x12759999,
		.name = "IBM,RPA-Client-Config",
		.rpadesc = {
803 804
			.lpar_affinity = 0,
			.min_rmo_size = 64,	/* in megabytes */
805
			.min_rmo_percent = 0,
806
			.max_pft_size = 48,	/* 2^48 bytes max PFT size */
807 808
			.splpar = 1,
			.min_load = ~0U,
809
			.new_mem_def = 0
810 811 812 813
		}
	}
};

814 815 816 817 818 819 820 821 822 823 824
static int __init prom_count_smt_threads(void)
{
	phandle node;
	char type[64];
	unsigned int plen;

	/* Pick up th first CPU node we can find */
	for (node = 0; prom_next_node(&node); ) {
		type[0] = 0;
		prom_getprop(node, "device_type", type, sizeof(type));

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		if (strcmp(type, "cpu"))
826 827 828 829 830 831 832 833 834 835
			continue;
		/*
		 * There is an entry for each smt thread, each entry being
		 * 4 bytes long.  All cpus should have the same number of
		 * smt threads, so return after finding the first.
		 */
		plen = prom_getproplen(node, "ibm,ppc-interrupt-server#s");
		if (plen == PROM_ERROR)
			break;
		plen >>= 2;
836
		prom_debug("Found %lu smt threads per core\n", (unsigned long)plen);
837 838 839

		/* Sanity check */
		if (plen < 1 || plen > 64) {
840
			prom_printf("Threads per core %lu out of bounds, assuming 1\n",
841 842 843 844 845 846 847 848 849 850 851 852
				    (unsigned long)plen);
			return 1;
		}
		return plen;
	}
	prom_debug("No threads found, assuming 1 per core\n");

	return 1;

}


853 854
static void __init prom_send_capabilities(void)
{
855 856
	ihandle elfloader, root;
	prom_arg_t ret;
857
	u32 *cores;
858 859 860

	root = call_prom("open", 1, 1, ADDR("/"));
	if (root != 0) {
861 862 863 864 865 866
		/* We need to tell the FW about the number of cores we support.
		 *
		 * To do that, we count the number of threads on the first core
		 * (we assume this is the same for all cores) and use it to
		 * divide NR_CPUS.
		 */
867
		cores = (u32 *)&ibm_architecture_vec[IBM_ARCH_VEC_NRCORES_OFFSET];
868 869
		if (*cores != NR_CPUS) {
			prom_printf("WARNING ! "
870
				    "ibm_architecture_vec structure inconsistent: %lu!\n",
871 872
				    *cores);
		} else {
873
			*cores = DIV_ROUND_UP(NR_CPUS, prom_count_smt_threads());
874 875
			prom_printf("Max number of cores passed to firmware: %lu (NR_CPUS = %lu)\n",
				    *cores, NR_CPUS);
876 877
		}

878
		/* try calling the ibm,client-architecture-support method */
879
		prom_printf("Calling ibm,client-architecture-support...");
880 881
		if (call_prom_ret("call-method", 3, 2, &ret,
				  ADDR("ibm,client-architecture-support"),
882
				  root,
883 884 885
				  ADDR(ibm_architecture_vec)) == 0) {
			/* the call exists... */
			if (ret)
886
				prom_printf("\nWARNING: ibm,client-architecture"
887 888
					    "-support call FAILED!\n");
			call_prom("close", 1, 0, root);
889
			prom_printf(" done\n");
890 891 892
			return;
		}
		call_prom("close", 1, 0, root);
893
		prom_printf(" not implemented\n");
894
	}
895

896
	/* no ibm,client-architecture-support call, try the old way */
897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942
	elfloader = call_prom("open", 1, 1, ADDR("/packages/elf-loader"));
	if (elfloader == 0) {
		prom_printf("couldn't open /packages/elf-loader\n");
		return;
	}
	call_prom("call-method", 3, 1, ADDR("process-elf-header"),
			elfloader, ADDR(&fake_elf));
	call_prom("close", 1, 0, elfloader);
}
#endif

/*
 * Memory allocation strategy... our layout is normally:
 *
 *  at 14Mb or more we have vmlinux, then a gap and initrd.  In some
 *  rare cases, initrd might end up being before the kernel though.
 *  We assume this won't override the final kernel at 0, we have no
 *  provision to handle that in this version, but it should hopefully
 *  never happen.
 *
 *  alloc_top is set to the top of RMO, eventually shrink down if the
 *  TCEs overlap
 *
 *  alloc_bottom is set to the top of kernel/initrd
 *
 *  from there, allocations are done this way : rtas is allocated
 *  topmost, and the device-tree is allocated from the bottom. We try
 *  to grow the device-tree allocation as we progress. If we can't,
 *  then we fail, we don't currently have a facility to restart
 *  elsewhere, but that shouldn't be necessary.
 *
 *  Note that calls to reserve_mem have to be done explicitly, memory
 *  allocated with either alloc_up or alloc_down isn't automatically
 *  reserved.
 */


/*
 * Allocates memory in the RMO upward from the kernel/initrd
 *
 * When align is 0, this is a special case, it means to allocate in place
 * at the current location of alloc_bottom or fail (that is basically
 * extending the previous allocation). Used for the device-tree flattening
 */
static unsigned long __init alloc_up(unsigned long size, unsigned long align)
{
A
Anton Blanchard 已提交
943
	unsigned long base = alloc_bottom;
944 945
	unsigned long addr = 0;

946 947
	if (align)
		base = _ALIGN_UP(base, align);
948
	prom_debug("alloc_up(%x, %x)\n", size, align);
A
Anton Blanchard 已提交
949
	if (ram_top == 0)
950 951 952
		prom_panic("alloc_up() called with mem not initialized\n");

	if (align)
A
Anton Blanchard 已提交
953
		base = _ALIGN_UP(alloc_bottom, align);
954
	else
A
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955
		base = alloc_bottom;
956

A
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957
	for(; (base + size) <= alloc_top; 
958 959 960
	    base = _ALIGN_UP(base + 0x100000, align)) {
		prom_debug("    trying: 0x%x\n\r", base);
		addr = (unsigned long)prom_claim(base, size, 0);
961
		if (addr != PROM_ERROR && addr != 0)
962 963 964 965 966 967 968
			break;
		addr = 0;
		if (align == 0)
			break;
	}
	if (addr == 0)
		return 0;
A
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969
	alloc_bottom = addr + size;
970 971

	prom_debug(" -> %x\n", addr);
A
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972 973 974 975 976
	prom_debug("  alloc_bottom : %x\n", alloc_bottom);
	prom_debug("  alloc_top    : %x\n", alloc_top);
	prom_debug("  alloc_top_hi : %x\n", alloc_top_high);
	prom_debug("  rmo_top      : %x\n", rmo_top);
	prom_debug("  ram_top      : %x\n", ram_top);
977 978 979 980 981 982 983 984 985 986 987 988 989 990 991

	return addr;
}

/*
 * Allocates memory downward, either from top of RMO, or if highmem
 * is set, from the top of RAM.  Note that this one doesn't handle
 * failures.  It does claim memory if highmem is not set.
 */
static unsigned long __init alloc_down(unsigned long size, unsigned long align,
				       int highmem)
{
	unsigned long base, addr = 0;

	prom_debug("alloc_down(%x, %x, %s)\n", size, align,
A
Anton Blanchard 已提交
992 993
		   highmem ? "(high)" : "(low)");
	if (ram_top == 0)
994 995 996 997
		prom_panic("alloc_down() called with mem not initialized\n");

	if (highmem) {
		/* Carve out storage for the TCE table. */
A
Anton Blanchard 已提交
998 999
		addr = _ALIGN_DOWN(alloc_top_high - size, align);
		if (addr <= alloc_bottom)
1000 1001 1002 1003 1004
			return 0;
		/* Will we bump into the RMO ? If yes, check out that we
		 * didn't overlap existing allocations there, if we did,
		 * we are dead, we must be the first in town !
		 */
A
Anton Blanchard 已提交
1005
		if (addr < rmo_top) {
1006
			/* Good, we are first */
A
Anton Blanchard 已提交
1007 1008
			if (alloc_top == rmo_top)
				alloc_top = rmo_top = addr;
1009 1010 1011
			else
				return 0;
		}
A
Anton Blanchard 已提交
1012
		alloc_top_high = addr;
1013 1014 1015
		goto bail;
	}

A
Anton Blanchard 已提交
1016 1017
	base = _ALIGN_DOWN(alloc_top - size, align);
	for (; base > alloc_bottom;
1018 1019 1020
	     base = _ALIGN_DOWN(base - 0x100000, align))  {
		prom_debug("    trying: 0x%x\n\r", base);
		addr = (unsigned long)prom_claim(base, size, 0);
1021
		if (addr != PROM_ERROR && addr != 0)
1022 1023 1024 1025 1026
			break;
		addr = 0;
	}
	if (addr == 0)
		return 0;
A
Anton Blanchard 已提交
1027
	alloc_top = addr;
1028 1029 1030

 bail:
	prom_debug(" -> %x\n", addr);
A
Anton Blanchard 已提交
1031 1032 1033 1034 1035
	prom_debug("  alloc_bottom : %x\n", alloc_bottom);
	prom_debug("  alloc_top    : %x\n", alloc_top);
	prom_debug("  alloc_top_hi : %x\n", alloc_top_high);
	prom_debug("  rmo_top      : %x\n", rmo_top);
	prom_debug("  ram_top      : %x\n", ram_top);
1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054

	return addr;
}

/*
 * Parse a "reg" cell
 */
static unsigned long __init prom_next_cell(int s, cell_t **cellp)
{
	cell_t *p = *cellp;
	unsigned long r = 0;

	/* Ignore more than 2 cells */
	while (s > sizeof(unsigned long) / 4) {
		p++;
		s--;
	}
	r = *p++;
#ifdef CONFIG_PPC64
1055
	if (s > 1) {
1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071
		r <<= 32;
		r |= *(p++);
	}
#endif
	*cellp = p;
	return r;
}

/*
 * Very dumb function for adding to the memory reserve list, but
 * we don't need anything smarter at this point
 *
 * XXX Eventually check for collisions.  They should NEVER happen.
 * If problems seem to show up, it would be a good start to track
 * them down.
 */
1072
static void __init reserve_mem(u64 base, u64 size)
1073
{
1074
	u64 top = base + size;
A
Anton Blanchard 已提交
1075
	unsigned long cnt = mem_reserve_cnt;
1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089

	if (size == 0)
		return;

	/* We need to always keep one empty entry so that we
	 * have our terminator with "size" set to 0 since we are
	 * dumb and just copy this entire array to the boot params
	 */
	base = _ALIGN_DOWN(base, PAGE_SIZE);
	top = _ALIGN_UP(top, PAGE_SIZE);
	size = top - base;

	if (cnt >= (MEM_RESERVE_MAP_SIZE - 1))
		prom_panic("Memory reserve map exhausted !\n");
A
Anton Blanchard 已提交
1090 1091 1092
	mem_reserve_map[cnt].base = base;
	mem_reserve_map[cnt].size = size;
	mem_reserve_cnt = cnt + 1;
1093 1094 1095
}

/*
A
Adrian Bunk 已提交
1096
 * Initialize memory allocation mechanism, parse "memory" nodes and
1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112
 * obtain that way the top of memory and RMO to setup out local allocator
 */
static void __init prom_init_mem(void)
{
	phandle node;
	char *path, type[64];
	unsigned int plen;
	cell_t *p, *endp;
	u32 rac, rsc;

	/*
	 * We iterate the memory nodes to find
	 * 1) top of RMO (first node)
	 * 2) top of memory
	 */
	rac = 2;
A
Anton Blanchard 已提交
1113
	prom_getprop(prom.root, "#address-cells", &rac, sizeof(rac));
1114
	rsc = 1;
A
Anton Blanchard 已提交
1115
	prom_getprop(prom.root, "#size-cells", &rsc, sizeof(rsc));
1116 1117 1118 1119
	prom_debug("root_addr_cells: %x\n", (unsigned long) rac);
	prom_debug("root_size_cells: %x\n", (unsigned long) rsc);

	prom_debug("scanning memory:\n");
A
Anton Blanchard 已提交
1120
	path = prom_scratch;
1121 1122 1123 1124 1125

	for (node = 0; prom_next_node(&node); ) {
		type[0] = 0;
		prom_getprop(node, "device_type", type, sizeof(type));

1126 1127 1128 1129 1130 1131 1132
		if (type[0] == 0) {
			/*
			 * CHRP Longtrail machines have no device_type
			 * on the memory node, so check the name instead...
			 */
			prom_getprop(node, "name", type, sizeof(type));
		}
A
Anton Blanchard 已提交
1133
		if (strcmp(type, "memory"))
1134
			continue;
1135

A
Anton Blanchard 已提交
1136
		plen = prom_getprop(node, "reg", regbuf, sizeof(regbuf));
1137 1138 1139 1140
		if (plen > sizeof(regbuf)) {
			prom_printf("memory node too large for buffer !\n");
			plen = sizeof(regbuf);
		}
A
Anton Blanchard 已提交
1141
		p = regbuf;
1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158
		endp = p + (plen / sizeof(cell_t));

#ifdef DEBUG_PROM
		memset(path, 0, PROM_SCRATCH_SIZE);
		call_prom("package-to-path", 3, 1, node, path, PROM_SCRATCH_SIZE-1);
		prom_debug("  node %s :\n", path);
#endif /* DEBUG_PROM */

		while ((endp - p) >= (rac + rsc)) {
			unsigned long base, size;

			base = prom_next_cell(rac, &p);
			size = prom_next_cell(rsc, &p);

			if (size == 0)
				continue;
			prom_debug("    %x %x\n", base, size);
A
Anton Blanchard 已提交
1159 1160 1161 1162
			if (base == 0 && (of_platform & PLATFORM_LPAR))
				rmo_top = size;
			if ((base + size) > ram_top)
				ram_top = base + size;
1163 1164 1165
		}
	}

A
Anton Blanchard 已提交
1166
	alloc_bottom = PAGE_ALIGN((unsigned long)&_end + 0x4000);
1167

1168 1169 1170 1171 1172 1173
	/*
	 * If prom_memory_limit is set we reduce the upper limits *except* for
	 * alloc_top_high. This must be the real top of RAM so we can put
	 * TCE's up there.
	 */

A
Anton Blanchard 已提交
1174
	alloc_top_high = ram_top;
1175

A
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1176 1177
	if (prom_memory_limit) {
		if (prom_memory_limit <= alloc_bottom) {
1178
			prom_printf("Ignoring mem=%x <= alloc_bottom.\n",
A
Anton Blanchard 已提交
1179 1180 1181
				prom_memory_limit);
			prom_memory_limit = 0;
		} else if (prom_memory_limit >= ram_top) {
1182
			prom_printf("Ignoring mem=%x >= ram_top.\n",
A
Anton Blanchard 已提交
1183 1184
				prom_memory_limit);
			prom_memory_limit = 0;
1185
		} else {
A
Anton Blanchard 已提交
1186 1187
			ram_top = prom_memory_limit;
			rmo_top = min(rmo_top, prom_memory_limit);
1188 1189 1190
		}
	}

1191 1192 1193 1194 1195 1196 1197 1198
	/*
	 * Setup our top alloc point, that is top of RMO or top of
	 * segment 0 when running non-LPAR.
	 * Some RS64 machines have buggy firmware where claims up at
	 * 1GB fail.  Cap at 768MB as a workaround.
	 * Since 768MB is plenty of room, and we need to cap to something
	 * reasonable on 32-bit, cap at 768MB on all machines.
	 */
A
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1199 1200 1201 1202 1203
	if (!rmo_top)
		rmo_top = ram_top;
	rmo_top = min(0x30000000ul, rmo_top);
	alloc_top = rmo_top;
	alloc_top_high = ram_top;
1204

1205 1206 1207 1208
	/*
	 * Check if we have an initrd after the kernel but still inside
	 * the RMO.  If we do move our bottom point to after it.
	 */
A
Anton Blanchard 已提交
1209 1210 1211 1212
	if (prom_initrd_start &&
	    prom_initrd_start < rmo_top &&
	    prom_initrd_end > alloc_bottom)
		alloc_bottom = PAGE_ALIGN(prom_initrd_end);
1213

1214
	prom_printf("memory layout at init:\n");
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	prom_printf("  memory_limit : %x (16 MB aligned)\n", prom_memory_limit);
	prom_printf("  alloc_bottom : %x\n", alloc_bottom);
	prom_printf("  alloc_top    : %x\n", alloc_top);
	prom_printf("  alloc_top_hi : %x\n", alloc_top_high);
	prom_printf("  rmo_top      : %x\n", rmo_top);
	prom_printf("  ram_top      : %x\n", ram_top);
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}

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static void __init prom_close_stdin(void)
{
	ihandle val;

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	if (prom_getprop(prom.chosen, "stdin", &val, sizeof(val)) > 0)
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		call_prom("close", 1, 0, val);
}

#ifdef CONFIG_PPC_POWERNV

static u64 __initdata prom_opal_size;
static u64 __initdata prom_opal_align;
static int __initdata prom_rtas_start_cpu;
static u64 __initdata prom_rtas_data;
static u64 __initdata prom_rtas_entry;

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#ifdef CONFIG_PPC_EARLY_DEBUG_OPAL
static u64 __initdata prom_opal_base;
static u64 __initdata prom_opal_entry;
#endif

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/* XXX Don't change this structure without updating opal-takeover.S */
static struct opal_secondary_data {
	s64				ack;	/*  0 */
	u64				go;	/*  8 */
	struct opal_takeover_args	args;	/* 16 */
} opal_secondary_data;

extern char opal_secondary_entry;

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static void __init prom_query_opal(void)
1254 1255 1256
{
	long rc;

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	/* We must not query for OPAL presence on a machine that
	 * supports TNK takeover (970 blades), as this uses the same
	 * h-call with different arguments and will crash
	 */
	if (PHANDLE_VALID(call_prom("finddevice", 1, 1,
				    ADDR("/tnk-memory-map")))) {
		prom_printf("TNK takeover detected, skipping OPAL check\n");
		return;
	}

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	prom_printf("Querying for OPAL presence... ");
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	rc = opal_query_takeover(&prom_opal_size,
				 &prom_opal_align);
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	prom_debug("(rc = %ld) ", rc);
	if (rc != 0) {
		prom_printf("not there.\n");
		return;
	}
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	of_platform = PLATFORM_OPAL;
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	prom_printf(" there !\n");
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	prom_debug("  opal_size  = 0x%lx\n", prom_opal_size);
	prom_debug("  opal_align = 0x%lx\n", prom_opal_align);
	if (prom_opal_align < 0x10000)
		prom_opal_align = 0x10000;
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}

static int prom_rtas_call(int token, int nargs, int nret, int *outputs, ...)
{
	struct rtas_args rtas_args;
	va_list list;
	int i;

	rtas_args.token = token;
	rtas_args.nargs = nargs;
	rtas_args.nret  = nret;
	rtas_args.rets  = (rtas_arg_t *)&(rtas_args.args[nargs]);
	va_start(list, outputs);
	for (i = 0; i < nargs; ++i)
		rtas_args.args[i] = va_arg(list, rtas_arg_t);
	va_end(list);

	for (i = 0; i < nret; ++i)
		rtas_args.rets[i] = 0;

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	opal_enter_rtas(&rtas_args, prom_rtas_data,
			prom_rtas_entry);
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	if (nret > 1 && outputs != NULL)
		for (i = 0; i < nret-1; ++i)
			outputs[i] = rtas_args.rets[i+1];
	return (nret > 0)? rtas_args.rets[0]: 0;
}

static void __init prom_opal_hold_cpus(void)
{
	int i, cnt, cpu, rc;
	long j;
	phandle node;
	char type[64];
	u32 servers[8];
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	void *entry = (unsigned long *)&opal_secondary_entry;
	struct opal_secondary_data *data = &opal_secondary_data;
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	prom_debug("prom_opal_hold_cpus: start...\n");
	prom_debug("    - entry       = 0x%x\n", entry);
	prom_debug("    - data        = 0x%x\n", data);

	data->ack = -1;
	data->go = 0;

	/* look for cpus */
	for (node = 0; prom_next_node(&node); ) {
		type[0] = 0;
		prom_getprop(node, "device_type", type, sizeof(type));
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		if (strcmp(type, "cpu") != 0)
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			continue;

		/* Skip non-configured cpus. */
		if (prom_getprop(node, "status", type, sizeof(type)) > 0)
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			if (strcmp(type, "okay") != 0)
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				continue;

		cnt = prom_getprop(node, "ibm,ppc-interrupt-server#s", servers,
			     sizeof(servers));
		if (cnt == PROM_ERROR)
			break;
		cnt >>= 2;
		for (i = 0; i < cnt; i++) {
			cpu = servers[i];
			prom_debug("CPU %d ... ", cpu);
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			if (cpu == prom.cpu) {
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				prom_debug("booted !\n");
				continue;
			}
			prom_debug("starting ... ");

			/* Init the acknowledge var which will be reset by
			 * the secondary cpu when it awakens from its OF
			 * spinloop.
			 */
			data->ack = -1;
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			rc = prom_rtas_call(prom_rtas_start_cpu, 3, 1,
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					    NULL, cpu, entry, data);
			prom_debug("rtas rc=%d ...", rc);

			for (j = 0; j < 100000000 && data->ack == -1; j++) {
				HMT_low();
				mb();
			}
			HMT_medium();
			if (data->ack != -1)
				prom_debug("done, PIR=0x%x\n", data->ack);
			else
				prom_debug("timeout !\n");
		}
	}
	prom_debug("prom_opal_hold_cpus: end...\n");
}

1376
static void __init prom_opal_takeover(void)
1377
{
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	struct opal_secondary_data *data = &opal_secondary_data;
1379
	struct opal_takeover_args *args = &data->args;
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	u64 align = prom_opal_align;
1381 1382
	u64 top_addr, opal_addr;

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	args->k_image	= (u64)_stext;
1384 1385 1386 1387 1388 1389
	args->k_size	= _end - _stext;
	args->k_entry	= 0;
	args->k_entry2	= 0x60;

	top_addr = _ALIGN_UP(args->k_size, align);

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	if (prom_initrd_start != 0) {
		args->rd_image = prom_initrd_start;
		args->rd_size = prom_initrd_end - args->rd_image;
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		args->rd_loc = top_addr;
		top_addr = _ALIGN_UP(args->rd_loc + args->rd_size, align);
	}

	/* Pickup an address for the HAL. We want to go really high
	 * up to avoid problem with future kexecs. On the other hand
	 * we don't want to be all over the TCEs on P5IOC2 machines
	 * which are going to be up there too. We assume the machine
	 * has plenty of memory, and we ask for the HAL for now to
	 * be just below the 1G point, or above the initrd
	 */
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	opal_addr = _ALIGN_DOWN(0x40000000 - prom_opal_size, align);
1405 1406 1407 1408
	if (opal_addr < top_addr)
		opal_addr = top_addr;
	args->hal_addr = opal_addr;

1409
	/* Copy the command line to the kernel image */
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	strlcpy(boot_command_line, prom_cmd_line,
1411 1412
		COMMAND_LINE_SIZE);

1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427
	prom_debug("  k_image    = 0x%lx\n", args->k_image);
	prom_debug("  k_size     = 0x%lx\n", args->k_size);
	prom_debug("  k_entry    = 0x%lx\n", args->k_entry);
	prom_debug("  k_entry2   = 0x%lx\n", args->k_entry2);
	prom_debug("  hal_addr   = 0x%lx\n", args->hal_addr);
	prom_debug("  rd_image   = 0x%lx\n", args->rd_image);
	prom_debug("  rd_size    = 0x%lx\n", args->rd_size);
	prom_debug("  rd_loc     = 0x%lx\n", args->rd_loc);
	prom_printf("Performing OPAL takeover,this can take a few minutes..\n");
	prom_close_stdin();
	mb();
	data->go = 1;
	for (;;)
		opal_do_takeover(args);
}
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/*
 * Allocate room for and instantiate OPAL
 */
static void __init prom_instantiate_opal(void)
{
	phandle opal_node;
	ihandle opal_inst;
	u64 base, entry;
	u64 size = 0, align = 0x10000;
	u32 rets[2];

	prom_debug("prom_instantiate_opal: start...\n");

	opal_node = call_prom("finddevice", 1, 1, ADDR("/ibm,opal"));
	prom_debug("opal_node: %x\n", opal_node);
	if (!PHANDLE_VALID(opal_node))
		return;

	prom_getprop(opal_node, "opal-runtime-size", &size, sizeof(size));
	if (size == 0)
		return;
	prom_getprop(opal_node, "opal-runtime-alignment", &align,
		     sizeof(align));

	base = alloc_down(size, align, 0);
	if (base == 0) {
		prom_printf("OPAL allocation failed !\n");
		return;
	}

	opal_inst = call_prom("open", 1, 1, ADDR("/ibm,opal"));
	if (!IHANDLE_VALID(opal_inst)) {
		prom_printf("opening opal package failed (%x)\n", opal_inst);
		return;
	}

	prom_printf("instantiating opal at 0x%x...", base);

	if (call_prom_ret("call-method", 4, 3, rets,
			  ADDR("load-opal-runtime"),
			  opal_inst,
			  base >> 32, base & 0xffffffff) != 0
	    || (rets[0] == 0 && rets[1] == 0)) {
		prom_printf(" failed\n");
		return;
	}
	entry = (((u64)rets[0]) << 32) | rets[1];

	prom_printf(" done\n");

	reserve_mem(base, size);

	prom_debug("opal base     = 0x%x\n", base);
	prom_debug("opal align    = 0x%x\n", align);
	prom_debug("opal entry    = 0x%x\n", entry);
	prom_debug("opal size     = 0x%x\n", (long)size);

	prom_setprop(opal_node, "/ibm,opal", "opal-base-address",
		     &base, sizeof(base));
	prom_setprop(opal_node, "/ibm,opal", "opal-entry-address",
		     &entry, sizeof(entry));

#ifdef CONFIG_PPC_EARLY_DEBUG_OPAL
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	prom_opal_base = base;
	prom_opal_entry = entry;
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#endif
	prom_debug("prom_instantiate_opal: end...\n");
}

1498
#endif /* CONFIG_PPC_POWERNV */
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/*
 * Allocate room for and instantiate RTAS
 */
static void __init prom_instantiate_rtas(void)
{
	phandle rtas_node;
	ihandle rtas_inst;
	u32 base, entry = 0;
	u32 size = 0;

	prom_debug("prom_instantiate_rtas: start...\n");

	rtas_node = call_prom("finddevice", 1, 1, ADDR("/rtas"));
	prom_debug("rtas_node: %x\n", rtas_node);
	if (!PHANDLE_VALID(rtas_node))
		return;

	prom_getprop(rtas_node, "rtas-size", &size, sizeof(size));
	if (size == 0)
		return;

	base = alloc_down(size, PAGE_SIZE, 0);
1522 1523
	if (base == 0)
		prom_panic("Could not allocate memory for RTAS\n");
1524 1525 1526

	rtas_inst = call_prom("open", 1, 1, ADDR("/rtas"));
	if (!IHANDLE_VALID(rtas_inst)) {
1527
		prom_printf("opening rtas package failed (%x)\n", rtas_inst);
1528 1529 1530
		return;
	}

1531
	prom_printf("instantiating rtas at 0x%x...", base);
1532 1533 1534

	if (call_prom_ret("call-method", 3, 2, &entry,
			  ADDR("instantiate-rtas"),
1535
			  rtas_inst, base) != 0
1536 1537 1538 1539 1540 1541 1542 1543
	    || entry == 0) {
		prom_printf(" failed\n");
		return;
	}
	prom_printf(" done\n");

	reserve_mem(base, size);

1544 1545 1546 1547
	prom_setprop(rtas_node, "/rtas", "linux,rtas-base",
		     &base, sizeof(base));
	prom_setprop(rtas_node, "/rtas", "linux,rtas-entry",
		     &entry, sizeof(entry));
1548

1549 1550
#ifdef CONFIG_PPC_POWERNV
	/* PowerVN takeover hack */
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	prom_rtas_data = base;
	prom_rtas_entry = entry;
	prom_getprop(rtas_node, "start-cpu", &prom_rtas_start_cpu, 4);
1554
#endif
1555 1556 1557 1558 1559 1560 1561 1562
	prom_debug("rtas base     = 0x%x\n", base);
	prom_debug("rtas entry    = 0x%x\n", entry);
	prom_debug("rtas size     = 0x%x\n", (long)size);

	prom_debug("prom_instantiate_rtas: end...\n");
}

#ifdef CONFIG_PPC64
1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619
/*
 * Allocate room for and instantiate Stored Measurement Log (SML)
 */
static void __init prom_instantiate_sml(void)
{
	phandle ibmvtpm_node;
	ihandle ibmvtpm_inst;
	u32 entry = 0, size = 0;
	u64 base;

	prom_debug("prom_instantiate_sml: start...\n");

	ibmvtpm_node = call_prom("finddevice", 1, 1, ADDR("/ibm,vtpm"));
	prom_debug("ibmvtpm_node: %x\n", ibmvtpm_node);
	if (!PHANDLE_VALID(ibmvtpm_node))
		return;

	ibmvtpm_inst = call_prom("open", 1, 1, ADDR("/ibm,vtpm"));
	if (!IHANDLE_VALID(ibmvtpm_inst)) {
		prom_printf("opening vtpm package failed (%x)\n", ibmvtpm_inst);
		return;
	}

	if (call_prom_ret("call-method", 2, 2, &size,
			  ADDR("sml-get-handover-size"),
			  ibmvtpm_inst) != 0 || size == 0) {
		prom_printf("SML get handover size failed\n");
		return;
	}

	base = alloc_down(size, PAGE_SIZE, 0);
	if (base == 0)
		prom_panic("Could not allocate memory for sml\n");

	prom_printf("instantiating sml at 0x%x...", base);

	if (call_prom_ret("call-method", 4, 2, &entry,
			  ADDR("sml-handover"),
			  ibmvtpm_inst, size, base) != 0 || entry == 0) {
		prom_printf("SML handover failed\n");
		return;
	}
	prom_printf(" done\n");

	reserve_mem(base, size);

	prom_setprop(ibmvtpm_node, "/ibm,vtpm", "linux,sml-base",
		     &base, sizeof(base));
	prom_setprop(ibmvtpm_node, "/ibm,vtpm", "linux,sml-size",
		     &size, sizeof(size));

	prom_debug("sml base     = 0x%x\n", base);
	prom_debug("sml size     = 0x%x\n", (long)size);

	prom_debug("prom_instantiate_sml: end...\n");
}

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/*
 * Allocate room for and initialize TCE tables
 */
static void __init prom_initialize_tce_table(void)
{
	phandle node;
	ihandle phb_node;
	char compatible[64], type[64], model[64];
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	char *path = prom_scratch;
1629 1630 1631 1632 1633 1634
	u64 base, align;
	u32 minalign, minsize;
	u64 tce_entry, *tce_entryp;
	u64 local_alloc_top, local_alloc_bottom;
	u64 i;

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	if (prom_iommu_off)
1636 1637 1638 1639 1640
		return;

	prom_debug("starting prom_initialize_tce_table\n");

	/* Cache current top of allocs so we reserve a single block */
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	local_alloc_top = alloc_top_high;
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	local_alloc_bottom = local_alloc_top;

	/* Search all nodes looking for PHBs. */
	for (node = 0; prom_next_node(&node); ) {
		compatible[0] = 0;
		type[0] = 0;
		model[0] = 0;
		prom_getprop(node, "compatible",
			     compatible, sizeof(compatible));
		prom_getprop(node, "device_type", type, sizeof(type));
		prom_getprop(node, "model", model, sizeof(model));

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		if ((type[0] == 0) || (strstr(type, "pci") == NULL))
1655 1656
			continue;

1657
		/* Keep the old logic intact to avoid regression. */
1658
		if (compatible[0] != 0) {
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			if ((strstr(compatible, "python") == NULL) &&
			    (strstr(compatible, "Speedwagon") == NULL) &&
			    (strstr(compatible, "Winnipeg") == NULL))
1662 1663
				continue;
		} else if (model[0] != 0) {
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			if ((strstr(model, "ython") == NULL) &&
			    (strstr(model, "peedwagon") == NULL) &&
			    (strstr(model, "innipeg") == NULL))
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				continue;
		}

		if (prom_getprop(node, "tce-table-minalign", &minalign,
				 sizeof(minalign)) == PROM_ERROR)
			minalign = 0;
		if (prom_getprop(node, "tce-table-minsize", &minsize,
				 sizeof(minsize)) == PROM_ERROR)
			minsize = 4UL << 20;

		/*
		 * Even though we read what OF wants, we just set the table
		 * size to 4 MB.  This is enough to map 2GB of PCI DMA space.
		 * By doing this, we avoid the pitfalls of trying to DMA to
		 * MMIO space and the DMA alias hole.
		 *
		 * On POWER4, firmware sets the TCE region by assuming
		 * each TCE table is 8MB. Using this memory for anything
		 * else will impact performance, so we always allocate 8MB.
		 * Anton
		 */
1688
		if (pvr_version_is(PVR_POWER4) || pvr_version_is(PVR_POWER4p))
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			minsize = 8UL << 20;
		else
			minsize = 4UL << 20;

		/* Align to the greater of the align or size */
		align = max(minalign, minsize);
		base = alloc_down(minsize, align, 1);
		if (base == 0)
			prom_panic("ERROR, cannot find space for TCE table.\n");
		if (base < local_alloc_bottom)
			local_alloc_bottom = base;

		/* It seems OF doesn't null-terminate the path :-( */
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		memset(path, 0, PROM_SCRATCH_SIZE);
1703 1704 1705 1706 1707 1708
		/* Call OF to setup the TCE hardware */
		if (call_prom("package-to-path", 3, 1, node,
			      path, PROM_SCRATCH_SIZE-1) == PROM_ERROR) {
			prom_printf("package-to-path failed\n");
		}

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		/* Save away the TCE table attributes for later use. */
		prom_setprop(node, path, "linux,tce-base", &base, sizeof(base));
		prom_setprop(node, path, "linux,tce-size", &minsize, sizeof(minsize));

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		prom_debug("TCE table: %s\n", path);
		prom_debug("\tnode = 0x%x\n", node);
		prom_debug("\tbase = 0x%x\n", base);
		prom_debug("\tsize = 0x%x\n", minsize);

		/* Initialize the table to have a one-to-one mapping
		 * over the allocated size.
		 */
1721
		tce_entryp = (u64 *)base;
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		for (i = 0; i < (minsize >> 3) ;tce_entryp++, i++) {
			tce_entry = (i << PAGE_SHIFT);
			tce_entry |= 0x3;
			*tce_entryp = tce_entry;
		}

		prom_printf("opening PHB %s", path);
		phb_node = call_prom("open", 1, 1, path);
		if (phb_node == 0)
			prom_printf("... failed\n");
		else
			prom_printf("... done\n");

		call_prom("call-method", 6, 0, ADDR("set-64-bit-addressing"),
			  phb_node, -1, minsize,
			  (u32) base, (u32) (base >> 32));
		call_prom("close", 1, 0, phb_node);
	}

	reserve_mem(local_alloc_bottom, local_alloc_top - local_alloc_bottom);

1743 1744
	/* These are only really needed if there is a memory limit in
	 * effect, but we don't know so export them always. */
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	prom_tce_alloc_start = local_alloc_bottom;
	prom_tce_alloc_end = local_alloc_top;
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	/* Flag the first invalid entry */
	prom_debug("ending prom_initialize_tce_table\n");
}
#endif

/*
 * With CHRP SMP we need to use the OF to start the other processors.
 * We can't wait until smp_boot_cpus (the OF is trashed by then)
 * so we have to put the processors into a holding pattern controlled
 * by the kernel (not OF) before we destroy the OF.
 *
 * This uses a chunk of low memory, puts some holding pattern
 * code there and sends the other processors off to there until
 * smp_boot_cpus tells them to do something.  The holding pattern
 * checks that address until its cpu # is there, when it is that
 * cpu jumps to __secondary_start().  smp_boot_cpus() takes care
 * of setting those values.
 *
 * We also use physical address 0x4 here to tell when a cpu
 * is in its holding pattern code.
 *
 * -- Cort
 */
1771 1772 1773 1774 1775 1776
/*
 * We want to reference the copy of __secondary_hold_* in the
 * 0 - 0x100 address range
 */
#define LOW_ADDR(x)	(((unsigned long) &(x)) & 0xff)

1777 1778 1779 1780 1781 1782 1783
static void __init prom_hold_cpus(void)
{
	unsigned long i;
	unsigned int reg;
	phandle node;
	char type[64];
	unsigned long *spinloop
1784
		= (void *) LOW_ADDR(__secondary_hold_spinloop);
1785
	unsigned long *acknowledge
1786 1787
		= (void *) LOW_ADDR(__secondary_hold_acknowledge);
	unsigned long secondary_hold = LOW_ADDR(__secondary_hold);
1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807

	prom_debug("prom_hold_cpus: start...\n");
	prom_debug("    1) spinloop       = 0x%x\n", (unsigned long)spinloop);
	prom_debug("    1) *spinloop      = 0x%x\n", *spinloop);
	prom_debug("    1) acknowledge    = 0x%x\n",
		   (unsigned long)acknowledge);
	prom_debug("    1) *acknowledge   = 0x%x\n", *acknowledge);
	prom_debug("    1) secondary_hold = 0x%x\n", secondary_hold);

	/* Set the common spinloop variable, so all of the secondary cpus
	 * will block when they are awakened from their OF spinloop.
	 * This must occur for both SMP and non SMP kernels, since OF will
	 * be trashed when we move the kernel.
	 */
	*spinloop = 0;

	/* look for cpus */
	for (node = 0; prom_next_node(&node); ) {
		type[0] = 0;
		prom_getprop(node, "device_type", type, sizeof(type));
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		if (strcmp(type, "cpu") != 0)
1809 1810 1811 1812
			continue;

		/* Skip non-configured cpus. */
		if (prom_getprop(node, "status", type, sizeof(type)) > 0)
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			if (strcmp(type, "okay") != 0)
1814 1815 1816 1817 1818
				continue;

		reg = -1;
		prom_getprop(node, "reg", &reg, sizeof(reg));

1819
		prom_debug("cpu hw idx   = %lu\n", reg);
1820 1821 1822 1823 1824 1825 1826

		/* Init the acknowledge var which will be reset by
		 * the secondary cpu when it awakens from its OF
		 * spinloop.
		 */
		*acknowledge = (unsigned long)-1;

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		if (reg != prom.cpu) {
1828
			/* Primary Thread of non-boot cpu or any thread */
1829
			prom_printf("starting cpu hw idx %lu... ", reg);
1830 1831 1832
			call_prom("start-cpu", 3, 0, node,
				  secondary_hold, reg);

1833 1834
			for (i = 0; (i < 100000000) && 
			     (*acknowledge == ((unsigned long)-1)); i++ )
1835 1836
				mb();

1837
			if (*acknowledge == reg)
1838
				prom_printf("done\n");
1839
			else
1840 1841 1842 1843
				prom_printf("failed: %x\n", *acknowledge);
		}
#ifdef CONFIG_SMP
		else
1844
			prom_printf("boot cpu hw idx %lu\n", reg);
1845 1846 1847 1848 1849 1850 1851 1852 1853 1854
#endif /* CONFIG_SMP */
	}

	prom_debug("prom_hold_cpus: end...\n");
}


static void __init prom_init_client_services(unsigned long pp)
{
	/* Get a handle to the prom entry point before anything else */
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	prom_entry = pp;
1856 1857

	/* get a handle for the stdout device */
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1858 1859
	prom.chosen = call_prom("finddevice", 1, 1, ADDR("/chosen"));
	if (!PHANDLE_VALID(prom.chosen))
1860 1861 1862
		prom_panic("cannot find chosen"); /* msg won't be printed :( */

	/* get device tree root */
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	prom.root = call_prom("finddevice", 1, 1, ADDR("/"));
	if (!PHANDLE_VALID(prom.root))
1865
		prom_panic("cannot find device tree root"); /* msg won't be printed :( */
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	prom.mmumap = 0;
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}

#ifdef CONFIG_PPC32
/*
 * For really old powermacs, we need to map things we claim.
 * For that, we need the ihandle of the mmu.
1874
 * Also, on the longtrail, we need to work around other bugs.
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 */
static void __init prom_find_mmu(void)
{
	phandle oprom;
	char version[64];

	oprom = call_prom("finddevice", 1, 1, ADDR("/openprom"));
	if (!PHANDLE_VALID(oprom))
		return;
	if (prom_getprop(oprom, "model", version, sizeof(version)) <= 0)
		return;
	version[sizeof(version) - 1] = 0;
	/* XXX might need to add other versions here */
1888 1889 1890 1891 1892 1893
	if (strcmp(version, "Open Firmware, 1.0.5") == 0)
		of_workarounds = OF_WA_CLAIM;
	else if (strncmp(version, "FirmWorks,3.", 12) == 0) {
		of_workarounds = OF_WA_CLAIM | OF_WA_LONGTRAIL;
		call_prom("interpret", 1, 1, "dev /memory 0 to allow-reclaim");
	} else
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		return;
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	prom.memory = call_prom("open", 1, 1, ADDR("/memory"));
	prom_getprop(prom.chosen, "mmu", &prom.mmumap,
		     sizeof(prom.mmumap));
	if (!IHANDLE_VALID(prom.memory) || !IHANDLE_VALID(prom.mmumap))
1899
		of_workarounds &= ~OF_WA_CLAIM;		/* hmmm */
1900
}
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#else
#define prom_find_mmu()
#endif
1904 1905 1906

static void __init prom_init_stdout(void)
{
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	char *path = of_stdout_device;
1908 1909 1910
	char type[16];
	u32 val;

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	if (prom_getprop(prom.chosen, "stdout", &val, sizeof(val)) <= 0)
1912 1913
		prom_panic("cannot find stdout");

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	prom.stdout = val;
1915 1916 1917

	/* Get the full OF pathname of the stdout device */
	memset(path, 0, 256);
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	call_prom("instance-to-path", 3, 1, prom.stdout, path, 255);
	val = call_prom("instance-to-package", 1, 1, prom.stdout);
	prom_setprop(prom.chosen, "/chosen", "linux,stdout-package",
1921
		     &val, sizeof(val));
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	prom_printf("OF stdout device is: %s\n", of_stdout_device);
	prom_setprop(prom.chosen, "/chosen", "linux,stdout-path",
1924
		     path, strlen(path) + 1);
1925 1926 1927 1928

	/* If it's a display, note it */
	memset(type, 0, sizeof(type));
	prom_getprop(val, "device_type", type, sizeof(type));
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	if (strcmp(type, "display") == 0)
1930
		prom_setprop(val, path, "linux,boot-display", NULL, 0);
1931 1932 1933 1934 1935 1936
}

static int __init prom_find_machine_type(void)
{
	char compat[256];
	int len, i = 0;
1937
#ifdef CONFIG_PPC64
1938
	phandle rtas;
1939
	int x;
1940
#endif
1941

1942
	/* Look for a PowerMac or a Cell */
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	len = prom_getprop(prom.root, "compatible",
1944 1945 1946 1947 1948 1949 1950 1951
			   compat, sizeof(compat)-1);
	if (len > 0) {
		compat[len] = 0;
		while (i < len) {
			char *p = &compat[i];
			int sl = strlen(p);
			if (sl == 0)
				break;
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			if (strstr(p, "Power Macintosh") ||
			    strstr(p, "MacRISC"))
1954
				return PLATFORM_POWERMAC;
1955 1956 1957 1958 1959
#ifdef CONFIG_PPC64
			/* We must make sure we don't detect the IBM Cell
			 * blades as pSeries due to some firmware issues,
			 * so we do it here.
			 */
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			if (strstr(p, "IBM,CBEA") ||
			    strstr(p, "IBM,CPBW-1.0"))
1962 1963
				return PLATFORM_GENERIC;
#endif /* CONFIG_PPC64 */
1964 1965 1966 1967
			i += sl + 1;
		}
	}
#ifdef CONFIG_PPC64
1968 1969 1970 1971 1972
	/* Try to detect OPAL */
	if (PHANDLE_VALID(call_prom("finddevice", 1, 1, ADDR("/ibm,opal"))))
		return PLATFORM_OPAL;

	/* Try to figure out if it's an IBM pSeries or any other
1973 1974 1975 1976 1977
	 * PAPR compliant platform. We assume it is if :
	 *  - /device_type is "chrp" (please, do NOT use that for future
	 *    non-IBM designs !
	 *  - it has /rtas
	 */
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	len = prom_getprop(prom.root, "device_type",
1979 1980 1981
			   compat, sizeof(compat)-1);
	if (len <= 0)
		return PLATFORM_GENERIC;
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1982
	if (strcmp(compat, "chrp"))
1983 1984
		return PLATFORM_GENERIC;

1985 1986
	/* Default to pSeries. We need to know if we are running LPAR */
	rtas = call_prom("finddevice", 1, 1, ADDR("/rtas"));
1987 1988 1989 1990
	if (!PHANDLE_VALID(rtas))
		return PLATFORM_GENERIC;
	x = prom_getproplen(rtas, "ibm,hypertas-functions");
	if (x != PROM_ERROR) {
1991
		prom_debug("Hypertas detected, assuming LPAR !\n");
1992
		return PLATFORM_PSERIES_LPAR;
1993 1994 1995
	}
	return PLATFORM_PSERIES;
#else
1996
	return PLATFORM_GENERIC;
1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039
#endif
}

static int __init prom_set_color(ihandle ih, int i, int r, int g, int b)
{
	return call_prom("call-method", 6, 1, ADDR("color!"), ih, i, b, g, r);
}

/*
 * If we have a display that we don't know how to drive,
 * we will want to try to execute OF's open method for it
 * later.  However, OF will probably fall over if we do that
 * we've taken over the MMU.
 * So we check whether we will need to open the display,
 * and if so, open it now.
 */
static void __init prom_check_displays(void)
{
	char type[16], *path;
	phandle node;
	ihandle ih;
	int i;

	static unsigned char default_colors[] = {
		0x00, 0x00, 0x00,
		0x00, 0x00, 0xaa,
		0x00, 0xaa, 0x00,
		0x00, 0xaa, 0xaa,
		0xaa, 0x00, 0x00,
		0xaa, 0x00, 0xaa,
		0xaa, 0xaa, 0x00,
		0xaa, 0xaa, 0xaa,
		0x55, 0x55, 0x55,
		0x55, 0x55, 0xff,
		0x55, 0xff, 0x55,
		0x55, 0xff, 0xff,
		0xff, 0x55, 0x55,
		0xff, 0x55, 0xff,
		0xff, 0xff, 0x55,
		0xff, 0xff, 0xff
	};
	const unsigned char *clut;

2040
	prom_debug("Looking for displays\n");
2041 2042 2043
	for (node = 0; prom_next_node(&node); ) {
		memset(type, 0, sizeof(type));
		prom_getprop(node, "device_type", type, sizeof(type));
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		if (strcmp(type, "display") != 0)
2045 2046 2047
			continue;

		/* It seems OF doesn't null-terminate the path :-( */
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2048
		path = prom_scratch;
2049 2050 2051 2052 2053 2054 2055 2056 2057
		memset(path, 0, PROM_SCRATCH_SIZE);

		/*
		 * leave some room at the end of the path for appending extra
		 * arguments
		 */
		if (call_prom("package-to-path", 3, 1, node, path,
			      PROM_SCRATCH_SIZE-10) == PROM_ERROR)
			continue;
2058
		prom_printf("found display   : %s, opening... ", path);
2059 2060 2061 2062 2063 2064 2065 2066 2067
		
		ih = call_prom("open", 1, 1, path);
		if (ih == 0) {
			prom_printf("failed\n");
			continue;
		}

		/* Success */
		prom_printf("done\n");
2068
		prom_setprop(node, path, "linux,opened", NULL, 0);
2069 2070 2071

		/* Setup a usable color table when the appropriate
		 * method is available. Should update this to set-colors */
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		clut = default_colors;
2073
		for (i = 0; i < 16; i++, clut += 3)
2074 2075 2076 2077 2078
			if (prom_set_color(ih, i, clut[0], clut[1],
					   clut[2]) != 0)
				break;

#ifdef CONFIG_LOGO_LINUX_CLUT224
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2079 2080
		clut = PTRRELOC(logo_linux_clut224.clut);
		for (i = 0; i < logo_linux_clut224.clutsize; i++, clut += 3)
2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099
			if (prom_set_color(ih, i + 32, clut[0], clut[1],
					   clut[2]) != 0)
				break;
#endif /* CONFIG_LOGO_LINUX_CLUT224 */
	}
}


/* Return (relocated) pointer to this much memory: moves initrd if reqd. */
static void __init *make_room(unsigned long *mem_start, unsigned long *mem_end,
			      unsigned long needed, unsigned long align)
{
	void *ret;

	*mem_start = _ALIGN(*mem_start, align);
	while ((*mem_start + needed) > *mem_end) {
		unsigned long room, chunk;

		prom_debug("Chunk exhausted, claiming more at %x...\n",
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2100 2101
			   alloc_bottom);
		room = alloc_top - alloc_bottom;
2102 2103 2104
		if (room > DEVTREE_CHUNK_SIZE)
			room = DEVTREE_CHUNK_SIZE;
		if (room < PAGE_SIZE)
2105 2106
			prom_panic("No memory for flatten_device_tree "
				   "(no room)\n");
2107 2108
		chunk = alloc_up(room, 0);
		if (chunk == 0)
2109 2110
			prom_panic("No memory for flatten_device_tree "
				   "(claim failed)\n");
2111
		*mem_end = chunk + room;
2112 2113 2114 2115 2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126
	}

	ret = (void *)*mem_start;
	*mem_start += needed;

	return ret;
}

#define dt_push_token(token, mem_start, mem_end) \
	do { *((u32 *)make_room(mem_start, mem_end, 4, 4)) = token; } while(0)

static unsigned long __init dt_find_string(char *str)
{
	char *s, *os;

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2127
	s = os = (char *)dt_string_start;
2128
	s += 4;
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2129
	while (s <  (char *)dt_string_end) {
2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150
		if (strcmp(s, str) == 0)
			return s - os;
		s += strlen(s) + 1;
	}
	return 0;
}

/*
 * The Open Firmware 1275 specification states properties must be 31 bytes or
 * less, however not all firmwares obey this. Make it 64 bytes to be safe.
 */
#define MAX_PROPERTY_NAME 64

static void __init scan_dt_build_strings(phandle node,
					 unsigned long *mem_start,
					 unsigned long *mem_end)
{
	char *prev_name, *namep, *sstart;
	unsigned long soff;
	phandle child;

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2151
	sstart =  (char *)dt_string_start;
2152 2153

	/* get and store all property names */
A
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2154
	prev_name = "";
2155 2156 2157 2158 2159 2160 2161 2162 2163 2164
	for (;;) {
		/* 64 is max len of name including nul. */
		namep = make_room(mem_start, mem_end, MAX_PROPERTY_NAME, 1);
		if (call_prom("nextprop", 3, 1, node, prev_name, namep) != 1) {
			/* No more nodes: unwind alloc */
			*mem_start = (unsigned long)namep;
			break;
		}

 		/* skip "name" */
A
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2165
 		if (strcmp(namep, "name") == 0) {
2166
 			*mem_start = (unsigned long)namep;
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2167
 			prev_name = "name";
2168 2169 2170 2171 2172 2173 2174 2175 2176 2177
 			continue;
 		}
		/* get/create string entry */
		soff = dt_find_string(namep);
		if (soff != 0) {
			*mem_start = (unsigned long)namep;
			namep = sstart + soff;
		} else {
			/* Trim off some if we can */
			*mem_start = (unsigned long)namep + strlen(namep) + 1;
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2178
			dt_string_end = *mem_start;
2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191 2192 2193 2194 2195 2196 2197 2198
		}
		prev_name = namep;
	}

	/* do all our children */
	child = call_prom("child", 1, 1, node);
	while (child != 0) {
		scan_dt_build_strings(child, mem_start, mem_end);
		child = call_prom("peer", 1, 1, child);
	}
}

static void __init scan_dt_build_struct(phandle node, unsigned long *mem_start,
					unsigned long *mem_end)
{
	phandle child;
	char *namep, *prev_name, *sstart, *p, *ep, *lp, *path;
	unsigned long soff;
	unsigned char *valp;
	static char pname[MAX_PROPERTY_NAME];
2199
	int l, room, has_phandle = 0;
2200 2201 2202 2203 2204

	dt_push_token(OF_DT_BEGIN_NODE, mem_start, mem_end);

	/* get the node's full name */
	namep = (char *)*mem_start;
2205 2206 2207 2208
	room = *mem_end - *mem_start;
	if (room > 255)
		room = 255;
	l = call_prom("package-to-path", 3, 1, node, namep, room);
2209 2210
	if (l >= 0) {
		/* Didn't fit?  Get more room. */
2211 2212 2213
		if (l >= room) {
			if (l >= *mem_end - *mem_start)
				namep = make_room(mem_start, mem_end, l+1, 1);
2214 2215 2216 2217 2218
			call_prom("package-to-path", 3, 1, node, namep, l);
		}
		namep[l] = '\0';

		/* Fixup an Apple bug where they have bogus \0 chars in the
P
Paul Mackerras 已提交
2219 2220
		 * middle of the path in some properties, and extract
		 * the unit name (everything after the last '/').
2221
		 */
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2222
		for (lp = p = namep, ep = namep + l; p < ep; p++) {
2223
			if (*p == '/')
P
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2224 2225 2226 2227 2228 2229
				lp = namep;
			else if (*p != 0)
				*lp++ = *p;
		}
		*lp = 0;
		*mem_start = _ALIGN((unsigned long)lp + 1, 4);
2230 2231 2232
	}

	/* get it again for debugging */
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2233
	path = prom_scratch;
2234 2235 2236 2237
	memset(path, 0, PROM_SCRATCH_SIZE);
	call_prom("package-to-path", 3, 1, node, path, PROM_SCRATCH_SIZE-1);

	/* get and store all properties */
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2238 2239
	prev_name = "";
	sstart = (char *)dt_string_start;
2240 2241
	for (;;) {
		if (call_prom("nextprop", 3, 1, node, prev_name,
A
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2242
			      pname) != 1)
2243 2244 2245
			break;

 		/* skip "name" */
A
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2246 2247
 		if (strcmp(pname, "name") == 0) {
 			prev_name = "name";
2248 2249 2250 2251
 			continue;
 		}

		/* find string offset */
A
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2252
		soff = dt_find_string(pname);
2253 2254
		if (soff == 0) {
			prom_printf("WARNING: Can't find string index for"
A
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2255
				    " <%s>, node %s\n", pname, path);
2256 2257 2258 2259 2260
			break;
		}
		prev_name = sstart + soff;

		/* get length */
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2261
		l = call_prom("getproplen", 2, 1, node, pname);
2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273

		/* sanity checks */
		if (l == PROM_ERROR)
			continue;

		/* push property head */
		dt_push_token(OF_DT_PROP, mem_start, mem_end);
		dt_push_token(l, mem_start, mem_end);
		dt_push_token(soff, mem_start, mem_end);

		/* push property content */
		valp = make_room(mem_start, mem_end, l, 4);
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2274
		call_prom("getprop", 4, 1, node, pname, valp, l);
2275
		*mem_start = _ALIGN(*mem_start, 4);
2276

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2277
		if (!strcmp(pname, "phandle"))
2278
			has_phandle = 1;
2279 2280
	}

2281 2282 2283 2284
	/* Add a "linux,phandle" property if no "phandle" property already
	 * existed (can happen with OPAL)
	 */
	if (!has_phandle) {
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2285
		soff = dt_find_string("linux,phandle");
2286 2287 2288 2289 2290 2291 2292 2293 2294 2295
		if (soff == 0)
			prom_printf("WARNING: Can't find string index for"
				    " <linux-phandle> node %s\n", path);
		else {
			dt_push_token(OF_DT_PROP, mem_start, mem_end);
			dt_push_token(4, mem_start, mem_end);
			dt_push_token(soff, mem_start, mem_end);
			valp = make_room(mem_start, mem_end, 4, 4);
			*(u32 *)valp = node;
		}
2296 2297 2298 2299 2300 2301 2302 2303 2304 2305 2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317
	}

	/* do all our children */
	child = call_prom("child", 1, 1, node);
	while (child != 0) {
		scan_dt_build_struct(child, mem_start, mem_end);
		child = call_prom("peer", 1, 1, child);
	}

	dt_push_token(OF_DT_END_NODE, mem_start, mem_end);
}

static void __init flatten_device_tree(void)
{
	phandle root;
	unsigned long mem_start, mem_end, room;
	struct boot_param_header *hdr;
	char *namep;
	u64 *rsvmap;

	/*
	 * Check how much room we have between alloc top & bottom (+/- a
2318
	 * few pages), crop to 1MB, as this is our "chunk" size
2319
	 */
A
Anton Blanchard 已提交
2320
	room = alloc_top - alloc_bottom - 0x4000;
2321 2322
	if (room > DEVTREE_CHUNK_SIZE)
		room = DEVTREE_CHUNK_SIZE;
A
Anton Blanchard 已提交
2323
	prom_debug("starting device tree allocs at %x\n", alloc_bottom);
2324 2325 2326 2327 2328

	/* Now try to claim that */
	mem_start = (unsigned long)alloc_up(room, PAGE_SIZE);
	if (mem_start == 0)
		prom_panic("Can't allocate initial device-tree chunk\n");
2329
	mem_end = mem_start + room;
2330 2331 2332 2333 2334 2335 2336 2337 2338 2339

	/* Get root of tree */
	root = call_prom("peer", 1, 1, (phandle)0);
	if (root == (phandle)0)
		prom_panic ("couldn't get device tree root\n");

	/* Build header and make room for mem rsv map */ 
	mem_start = _ALIGN(mem_start, 4);
	hdr = make_room(&mem_start, &mem_end,
			sizeof(struct boot_param_header), 4);
A
Anton Blanchard 已提交
2340
	dt_header_start = (unsigned long)hdr;
2341 2342 2343 2344
	rsvmap = make_room(&mem_start, &mem_end, sizeof(mem_reserve_map), 8);

	/* Start of strings */
	mem_start = PAGE_ALIGN(mem_start);
A
Anton Blanchard 已提交
2345
	dt_string_start = mem_start;
2346 2347 2348 2349
	mem_start += 4; /* hole */

	/* Add "linux,phandle" in there, we'll need it */
	namep = make_room(&mem_start, &mem_end, 16, 1);
A
Anton Blanchard 已提交
2350
	strcpy(namep, "linux,phandle");
2351 2352 2353 2354 2355
	mem_start = (unsigned long)namep + strlen(namep) + 1;

	/* Build string array */
	prom_printf("Building dt strings...\n"); 
	scan_dt_build_strings(root, &mem_start, &mem_end);
A
Anton Blanchard 已提交
2356
	dt_string_end = mem_start;
2357 2358 2359

	/* Build structure */
	mem_start = PAGE_ALIGN(mem_start);
A
Anton Blanchard 已提交
2360
	dt_struct_start = mem_start;
2361 2362 2363
	prom_printf("Building dt structure...\n"); 
	scan_dt_build_struct(root, &mem_start, &mem_end);
	dt_push_token(OF_DT_END, &mem_start, &mem_end);
A
Anton Blanchard 已提交
2364
	dt_struct_end = PAGE_ALIGN(mem_start);
2365 2366

	/* Finish header */
A
Anton Blanchard 已提交
2367
	hdr->boot_cpuid_phys = prom.cpu;
2368
	hdr->magic = OF_DT_HEADER;
A
Anton Blanchard 已提交
2369 2370 2371 2372 2373
	hdr->totalsize = dt_struct_end - dt_header_start;
	hdr->off_dt_struct = dt_struct_start - dt_header_start;
	hdr->off_dt_strings = dt_string_start - dt_header_start;
	hdr->dt_strings_size = dt_string_end - dt_string_start;
	hdr->off_mem_rsvmap = ((unsigned long)rsvmap) - dt_header_start;
2374 2375 2376 2377
	hdr->version = OF_DT_VERSION;
	/* Version 16 is not backward compatible */
	hdr->last_comp_version = 0x10;

2378
	/* Copy the reserve map in */
A
Anton Blanchard 已提交
2379
	memcpy(rsvmap, mem_reserve_map, sizeof(mem_reserve_map));
2380 2381 2382 2383 2384

#ifdef DEBUG_PROM
	{
		int i;
		prom_printf("reserved memory map:\n");
A
Anton Blanchard 已提交
2385
		for (i = 0; i < mem_reserve_cnt; i++)
2386
			prom_printf("  %x - %x\n",
A
Anton Blanchard 已提交
2387 2388
				    mem_reserve_map[i].base,
				    mem_reserve_map[i].size);
2389 2390
	}
#endif
2391 2392 2393
	/* Bump mem_reserve_cnt to cause further reservations to fail
	 * since it's too late.
	 */
A
Anton Blanchard 已提交
2394
	mem_reserve_cnt = MEM_RESERVE_MAP_SIZE;
2395 2396

	prom_printf("Device tree strings 0x%x -> 0x%x\n",
A
Anton Blanchard 已提交
2397
		    dt_string_start, dt_string_end);
2398
	prom_printf("Device tree struct  0x%x -> 0x%x\n",
A
Anton Blanchard 已提交
2399
		    dt_struct_start, dt_struct_end);
2400 2401 2402

}

2403 2404 2405 2406
#ifdef CONFIG_PPC_MAPLE
/* PIBS Version 1.05.0000 04/26/2005 has an incorrect /ht/isa/ranges property.
 * The values are bad, and it doesn't even have the right number of cells. */
static void __init fixup_device_tree_maple(void)
2407
{
2408
	phandle isa;
2409
	u32 rloc = 0x01002000; /* IO space; PCI device = 4 */
2410
	u32 isa_ranges[6];
2411 2412 2413 2414 2415 2416 2417 2418 2419
	char *name;

	name = "/ht@0/isa@4";
	isa = call_prom("finddevice", 1, 1, ADDR(name));
	if (!PHANDLE_VALID(isa)) {
		name = "/ht@0/isa@6";
		isa = call_prom("finddevice", 1, 1, ADDR(name));
		rloc = 0x01003000; /* IO space; PCI device = 6 */
	}
2420 2421 2422
	if (!PHANDLE_VALID(isa))
		return;

2423 2424
	if (prom_getproplen(isa, "ranges") != 12)
		return;
2425 2426 2427 2428 2429 2430 2431 2432 2433
	if (prom_getprop(isa, "ranges", isa_ranges, sizeof(isa_ranges))
		== PROM_ERROR)
		return;

	if (isa_ranges[0] != 0x1 ||
		isa_ranges[1] != 0xf4000000 ||
		isa_ranges[2] != 0x00010000)
		return;

2434
	prom_printf("Fixing up bogus ISA range on Maple/Apache...\n");
2435 2436 2437

	isa_ranges[0] = 0x1;
	isa_ranges[1] = 0x0;
2438
	isa_ranges[2] = rloc;
2439 2440 2441
	isa_ranges[3] = 0x0;
	isa_ranges[4] = 0x0;
	isa_ranges[5] = 0x00010000;
2442
	prom_setprop(isa, name, "ranges",
2443 2444
			isa_ranges, sizeof(isa_ranges));
}
2445 2446 2447 2448 2449 2450 2451 2452 2453 2454 2455 2456 2457 2458 2459 2460 2461 2462

#define CPC925_MC_START		0xf8000000
#define CPC925_MC_LENGTH	0x1000000
/* The values for memory-controller don't have right number of cells */
static void __init fixup_device_tree_maple_memory_controller(void)
{
	phandle mc;
	u32 mc_reg[4];
	char *name = "/hostbridge@f8000000";
	u32 ac, sc;

	mc = call_prom("finddevice", 1, 1, ADDR(name));
	if (!PHANDLE_VALID(mc))
		return;

	if (prom_getproplen(mc, "reg") != 8)
		return;

A
Anton Blanchard 已提交
2463 2464
	prom_getprop(prom.root, "#address-cells", &ac, sizeof(ac));
	prom_getprop(prom.root, "#size-cells", &sc, sizeof(sc));
2465 2466 2467 2468 2469 2470 2471 2472 2473 2474 2475 2476 2477 2478 2479 2480 2481
	if ((ac != 2) || (sc != 2))
		return;

	if (prom_getprop(mc, "reg", mc_reg, sizeof(mc_reg)) == PROM_ERROR)
		return;

	if (mc_reg[0] != CPC925_MC_START || mc_reg[1] != CPC925_MC_LENGTH)
		return;

	prom_printf("Fixing up bogus hostbridge on Maple...\n");

	mc_reg[0] = 0x0;
	mc_reg[1] = CPC925_MC_START;
	mc_reg[2] = 0x0;
	mc_reg[3] = CPC925_MC_LENGTH;
	prom_setprop(mc, name, "reg", mc_reg, sizeof(mc_reg));
}
2482 2483
#else
#define fixup_device_tree_maple()
2484
#define fixup_device_tree_maple_memory_controller()
2485 2486
#endif

2487
#ifdef CONFIG_PPC_CHRP
2488 2489 2490
/*
 * Pegasos and BriQ lacks the "ranges" property in the isa node
 * Pegasos needs decimal IRQ 14/15, not hexadecimal
2491
 * Pegasos has the IDE configured in legacy mode, but advertised as native
2492
 */
2493 2494
static void __init fixup_device_tree_chrp(void)
{
2495 2496
	phandle ph;
	u32 prop[6];
2497
	u32 rloc = 0x01006000; /* IO space; PCI device = 12 */
2498 2499 2500 2501
	char *name;
	int rc;

	name = "/pci@80000000/isa@c";
2502 2503
	ph = call_prom("finddevice", 1, 1, ADDR(name));
	if (!PHANDLE_VALID(ph)) {
2504
		name = "/pci@ff500000/isa@6";
2505
		ph = call_prom("finddevice", 1, 1, ADDR(name));
2506 2507
		rloc = 0x01003000; /* IO space; PCI device = 6 */
	}
2508 2509 2510 2511 2512 2513 2514 2515 2516 2517 2518 2519 2520 2521
	if (PHANDLE_VALID(ph)) {
		rc = prom_getproplen(ph, "ranges");
		if (rc == 0 || rc == PROM_ERROR) {
			prom_printf("Fixing up missing ISA range on Pegasos...\n");

			prop[0] = 0x1;
			prop[1] = 0x0;
			prop[2] = rloc;
			prop[3] = 0x0;
			prop[4] = 0x0;
			prop[5] = 0x00010000;
			prom_setprop(ph, name, "ranges", prop, sizeof(prop));
		}
	}
2522

2523 2524 2525 2526 2527 2528
	name = "/pci@80000000/ide@C,1";
	ph = call_prom("finddevice", 1, 1, ADDR(name));
	if (PHANDLE_VALID(ph)) {
		prom_printf("Fixing up IDE interrupt on Pegasos...\n");
		prop[0] = 14;
		prop[1] = 0x0;
2529 2530 2531 2532 2533 2534 2535
		prom_setprop(ph, name, "interrupts", prop, 2*sizeof(u32));
		prom_printf("Fixing up IDE class-code on Pegasos...\n");
		rc = prom_getprop(ph, "class-code", prop, sizeof(u32));
		if (rc == sizeof(u32)) {
			prop[0] &= ~0x5;
			prom_setprop(ph, name, "class-code", prop, sizeof(u32));
		}
2536
	}
2537 2538 2539 2540 2541
}
#else
#define fixup_device_tree_chrp()
#endif

2542
#if defined(CONFIG_PPC64) && defined(CONFIG_PPC_PMAC)
2543 2544
static void __init fixup_device_tree_pmac(void)
{
2545 2546 2547 2548 2549 2550 2551 2552 2553 2554 2555 2556 2557 2558 2559 2560 2561 2562 2563 2564
	phandle u3, i2c, mpic;
	u32 u3_rev;
	u32 interrupts[2];
	u32 parent;

	/* Some G5s have a missing interrupt definition, fix it up here */
	u3 = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000"));
	if (!PHANDLE_VALID(u3))
		return;
	i2c = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000/i2c@f8001000"));
	if (!PHANDLE_VALID(i2c))
		return;
	mpic = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000/mpic@f8040000"));
	if (!PHANDLE_VALID(mpic))
		return;

	/* check if proper rev of u3 */
	if (prom_getprop(u3, "device-rev", &u3_rev, sizeof(u3_rev))
	    == PROM_ERROR)
		return;
2565
	if (u3_rev < 0x35 || u3_rev > 0x39)
2566 2567 2568 2569 2570 2571 2572 2573 2574 2575
		return;
	/* does it need fixup ? */
	if (prom_getproplen(i2c, "interrupts") > 0)
		return;

	prom_printf("fixing up bogus interrupts for u3 i2c...\n");

	/* interrupt on this revision of u3 is number 0 and level */
	interrupts[0] = 0;
	interrupts[1] = 1;
2576 2577
	prom_setprop(i2c, "/u3@0,f8000000/i2c@f8001000", "interrupts",
		     &interrupts, sizeof(interrupts));
2578
	parent = (u32)mpic;
2579 2580
	prom_setprop(i2c, "/u3@0,f8000000/i2c@f8001000", "interrupt-parent",
		     &parent, sizeof(parent));
2581
}
2582 2583 2584
#else
#define fixup_device_tree_pmac()
#endif
2585

2586
#ifdef CONFIG_PPC_EFIKA
2587 2588 2589 2590 2591 2592 2593
/*
 * The MPC5200 FEC driver requires an phy-handle property to tell it how
 * to talk to the phy.  If the phy-handle property is missing, then this
 * function is called to add the appropriate nodes and link it to the
 * ethernet node.
 */
static void __init fixup_device_tree_efika_add_phy(void)
2594 2595 2596
{
	u32 node;
	char prop[64];
2597
	int rv;
2598

2599 2600
	/* Check if /builtin/ethernet exists - bail if it doesn't */
	node = call_prom("finddevice", 1, 1, ADDR("/builtin/ethernet"));
2601 2602 2603
	if (!PHANDLE_VALID(node))
		return;

2604 2605 2606
	/* Check if the phy-handle property exists - bail if it does */
	rv = prom_getprop(node, "phy-handle", prop, sizeof(prop));
	if (!rv)
2607 2608
		return;

2609 2610 2611 2612
	/*
	 * At this point the ethernet device doesn't have a phy described.
	 * Now we need to add the missing phy node and linkage
	 */
2613

2614
	/* Check for an MDIO bus node - if missing then create one */
2615 2616 2617 2618 2619 2620 2621 2622
	node = call_prom("finddevice", 1, 1, ADDR("/builtin/mdio"));
	if (!PHANDLE_VALID(node)) {
		prom_printf("Adding Ethernet MDIO node\n");
		call_prom("interpret", 1, 1,
			" s\" /builtin\" find-device"
			" new-device"
				" 1 encode-int s\" #address-cells\" property"
				" 0 encode-int s\" #size-cells\" property"
2623 2624
				" s\" mdio\" device-name"
				" s\" fsl,mpc5200b-mdio\" encode-string"
2625 2626 2627 2628 2629 2630 2631 2632 2633
				" s\" compatible\" property"
				" 0xf0003000 0x400 reg"
				" 0x2 encode-int"
				" 0x5 encode-int encode+"
				" 0x3 encode-int encode+"
				" s\" interrupts\" property"
			" finish-device");
	};

2634 2635 2636 2637
	/* Check for a PHY device node - if missing then create one and
	 * give it's phandle to the ethernet node */
	node = call_prom("finddevice", 1, 1,
			 ADDR("/builtin/mdio/ethernet-phy"));
2638 2639 2640 2641 2642 2643 2644 2645 2646 2647 2648 2649 2650 2651 2652
	if (!PHANDLE_VALID(node)) {
		prom_printf("Adding Ethernet PHY node\n");
		call_prom("interpret", 1, 1,
			" s\" /builtin/mdio\" find-device"
			" new-device"
				" s\" ethernet-phy\" device-name"
				" 0x10 encode-int s\" reg\" property"
				" my-self"
				" ihandle>phandle"
			" finish-device"
			" s\" /builtin/ethernet\" find-device"
				" encode-int"
				" s\" phy-handle\" property"
			" device-end");
	}
2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665 2666 2667 2668 2669 2670 2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682 2683 2684
}

static void __init fixup_device_tree_efika(void)
{
	int sound_irq[3] = { 2, 2, 0 };
	int bcomm_irq[3*16] = { 3,0,0, 3,1,0, 3,2,0, 3,3,0,
				3,4,0, 3,5,0, 3,6,0, 3,7,0,
				3,8,0, 3,9,0, 3,10,0, 3,11,0,
				3,12,0, 3,13,0, 3,14,0, 3,15,0 };
	u32 node;
	char prop[64];
	int rv, len;

	/* Check if we're really running on a EFIKA */
	node = call_prom("finddevice", 1, 1, ADDR("/"));
	if (!PHANDLE_VALID(node))
		return;

	rv = prom_getprop(node, "model", prop, sizeof(prop));
	if (rv == PROM_ERROR)
		return;
	if (strcmp(prop, "EFIKA5K2"))
		return;

	prom_printf("Applying EFIKA device tree fixups\n");

	/* Claiming to be 'chrp' is death */
	node = call_prom("finddevice", 1, 1, ADDR("/"));
	rv = prom_getprop(node, "device_type", prop, sizeof(prop));
	if (rv != PROM_ERROR && (strcmp(prop, "chrp") == 0))
		prom_setprop(node, "/", "device_type", "efika", sizeof("efika"));

2685 2686 2687 2688 2689 2690 2691 2692
	/* CODEGEN,description is exposed in /proc/cpuinfo so
	   fix that too */
	rv = prom_getprop(node, "CODEGEN,description", prop, sizeof(prop));
	if (rv != PROM_ERROR && (strstr(prop, "CHRP")))
		prom_setprop(node, "/", "CODEGEN,description",
			     "Efika 5200B PowerPC System",
			     sizeof("Efika 5200B PowerPC System"));

2693 2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713
	/* Fixup bestcomm interrupts property */
	node = call_prom("finddevice", 1, 1, ADDR("/builtin/bestcomm"));
	if (PHANDLE_VALID(node)) {
		len = prom_getproplen(node, "interrupts");
		if (len == 12) {
			prom_printf("Fixing bestcomm interrupts property\n");
			prom_setprop(node, "/builtin/bestcom", "interrupts",
				     bcomm_irq, sizeof(bcomm_irq));
		}
	}

	/* Fixup sound interrupts property */
	node = call_prom("finddevice", 1, 1, ADDR("/builtin/sound"));
	if (PHANDLE_VALID(node)) {
		rv = prom_getprop(node, "interrupts", prop, sizeof(prop));
		if (rv == PROM_ERROR) {
			prom_printf("Adding sound interrupts property\n");
			prom_setprop(node, "/builtin/sound", "interrupts",
				     sound_irq, sizeof(sound_irq));
		}
	}
2714

2715 2716
	/* Make sure ethernet phy-handle property exists */
	fixup_device_tree_efika_add_phy();
2717 2718 2719 2720 2721
}
#else
#define fixup_device_tree_efika()
#endif

2722 2723 2724
static void __init fixup_device_tree(void)
{
	fixup_device_tree_maple();
2725
	fixup_device_tree_maple_memory_controller();
2726
	fixup_device_tree_chrp();
2727
	fixup_device_tree_pmac();
2728
	fixup_device_tree_efika();
2729
}
2730 2731 2732 2733 2734 2735 2736

static void __init prom_find_boot_cpu(void)
{
	u32 getprop_rval;
	ihandle prom_cpu;
	phandle cpu_pkg;

A
Anton Blanchard 已提交
2737 2738
	prom.cpu = 0;
	if (prom_getprop(prom.chosen, "cpu", &prom_cpu, sizeof(prom_cpu)) <= 0)
P
Paul Mackerras 已提交
2739
		return;
2740 2741 2742 2743

	cpu_pkg = call_prom("instance-to-package", 1, 1, prom_cpu);

	prom_getprop(cpu_pkg, "reg", &getprop_rval, sizeof(getprop_rval));
A
Anton Blanchard 已提交
2744
	prom.cpu = getprop_rval;
2745

A
Anton Blanchard 已提交
2746
	prom_debug("Booting CPU hw index = %lu\n", prom.cpu);
2747 2748 2749 2750 2751 2752 2753 2754
}

static void __init prom_check_initrd(unsigned long r3, unsigned long r4)
{
#ifdef CONFIG_BLK_DEV_INITRD
	if (r3 && r4 && r4 != 0xdeadbeef) {
		unsigned long val;

A
Anton Blanchard 已提交
2755 2756
		prom_initrd_start = is_kernel_addr(r3) ? __pa(r3) : r3;
		prom_initrd_end = prom_initrd_start + r4;
2757

A
Anton Blanchard 已提交
2758 2759
		val = prom_initrd_start;
		prom_setprop(prom.chosen, "/chosen", "linux,initrd-start",
2760
			     &val, sizeof(val));
A
Anton Blanchard 已提交
2761 2762
		val = prom_initrd_end;
		prom_setprop(prom.chosen, "/chosen", "linux,initrd-end",
2763
			     &val, sizeof(val));
2764

A
Anton Blanchard 已提交
2765 2766
		reserve_mem(prom_initrd_start,
			    prom_initrd_end - prom_initrd_start);
2767

A
Anton Blanchard 已提交
2768 2769
		prom_debug("initrd_start=0x%x\n", prom_initrd_start);
		prom_debug("initrd_end=0x%x\n", prom_initrd_end);
2770 2771 2772 2773
	}
#endif /* CONFIG_BLK_DEV_INITRD */
}

2774 2775 2776 2777 2778 2779 2780 2781 2782 2783
#ifdef CONFIG_PPC64
#ifdef CONFIG_RELOCATABLE
static void reloc_toc(void)
{
}

static void unreloc_toc(void)
{
}
#else
2784
static void __reloc_toc(unsigned long offset, unsigned long nr_entries)
2785 2786
{
	unsigned long i;
2787 2788 2789 2790
	unsigned long *toc_entry;

	/* Get the start of the TOC by using r2 directly. */
	asm volatile("addi %0,2,-0x8000" : "=b" (toc_entry));
2791 2792 2793 2794 2795 2796 2797 2798 2799 2800 2801 2802 2803

	for (i = 0; i < nr_entries; i++) {
		*toc_entry = *toc_entry + offset;
		toc_entry++;
	}
}

static void reloc_toc(void)
{
	unsigned long offset = reloc_offset();
	unsigned long nr_entries =
		(__prom_init_toc_end - __prom_init_toc_start) / sizeof(long);

2804
	__reloc_toc(offset, nr_entries);
2805 2806 2807 2808 2809 2810 2811 2812 2813 2814 2815 2816

	mb();
}

static void unreloc_toc(void)
{
	unsigned long offset = reloc_offset();
	unsigned long nr_entries =
		(__prom_init_toc_end - __prom_init_toc_start) / sizeof(long);

	mb();

2817
	__reloc_toc(-offset, nr_entries);
2818 2819 2820
}
#endif
#endif
2821

2822 2823 2824 2825 2826 2827 2828
/*
 * We enter here early on, when the Open Firmware prom is still
 * handling exceptions and the MMU hash table for us.
 */

unsigned long __init prom_init(unsigned long r3, unsigned long r4,
			       unsigned long pp,
2829 2830
			       unsigned long r6, unsigned long r7,
			       unsigned long kbase)
2831 2832 2833 2834
{	
	unsigned long hdr;

#ifdef CONFIG_PPC32
2835
	unsigned long offset = reloc_offset();
2836
	reloc_got2(offset);
2837 2838
#else
	reloc_toc();
2839 2840 2841 2842 2843
#endif

	/*
	 * First zero the BSS
	 */
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	memset(&__bss_start, 0, __bss_stop - __bss_start);
2845 2846 2847 2848 2849 2850 2851 2852

	/*
	 * Init interface to Open Firmware, get some node references,
	 * like /chosen
	 */
	prom_init_client_services(pp);

	/*
2853 2854
	 * See if this OF is old enough that we need to do explicit maps
	 * and other workarounds
2855
	 */
2856
	prom_find_mmu();
2857

P
Paul Mackerras 已提交
2858
	/*
2859
	 * Init prom stdout device
P
Paul Mackerras 已提交
2860
	 */
2861
	prom_init_stdout();
P
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2862

A
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2863
	prom_printf("Preparing to boot %s", linux_banner);
2864

2865 2866 2867 2868
	/*
	 * Get default machine type. At this point, we do not differentiate
	 * between pSeries SMP and pSeries LPAR
	 */
A
Anton Blanchard 已提交
2869 2870
	of_platform = prom_find_machine_type();
	prom_printf("Detected machine type: %x\n", of_platform);
2871

2872
#ifndef CONFIG_NONSTATIC_KERNEL
2873 2874 2875
	/* Bail if this is a kdump kernel. */
	if (PHYSICAL_START > 0)
		prom_panic("Error: You can't boot a kdump kernel from OF!\n");
2876
#endif
2877 2878 2879 2880 2881 2882

	/*
	 * Check for an initrd
	 */
	prom_check_initrd(r3, r4);

2883
#if defined(CONFIG_PPC_PSERIES) || defined(CONFIG_PPC_POWERNV)
2884 2885 2886
	/*
	 * On pSeries, inform the firmware about our capabilities
	 */
A
Anton Blanchard 已提交
2887 2888
	if (of_platform == PLATFORM_PSERIES ||
	    of_platform == PLATFORM_PSERIES_LPAR)
2889 2890 2891 2892
		prom_send_capabilities();
#endif

	/*
2893
	 * Copy the CPU hold code
2894
	 */
A
Anton Blanchard 已提交
2895
	if (of_platform != PLATFORM_POWERMAC)
2896
		copy_and_flush(0, kbase, 0x100, 0);
2897 2898 2899 2900 2901 2902 2903 2904 2905 2906 2907 2908 2909 2910 2911 2912 2913 2914 2915 2916 2917 2918 2919 2920 2921 2922 2923

	/*
	 * Do early parsing of command line
	 */
	early_cmdline_parse();

	/*
	 * Initialize memory management within prom_init
	 */
	prom_init_mem();

	/*
	 * Determine which cpu is actually running right _now_
	 */
	prom_find_boot_cpu();

	/* 
	 * Initialize display devices
	 */
	prom_check_displays();

#ifdef CONFIG_PPC64
	/*
	 * Initialize IOMMU (TCE tables) on pSeries. Do that before anything else
	 * that uses the allocator, we need to make sure we get the top of memory
	 * available for us here...
	 */
A
Anton Blanchard 已提交
2924
	if (of_platform == PLATFORM_PSERIES)
2925 2926 2927 2928
		prom_initialize_tce_table();
#endif

	/*
2929 2930
	 * On non-powermacs, try to instantiate RTAS. PowerMacs don't
	 * have a usable RTAS implementation.
2931
	 */
A
Anton Blanchard 已提交
2932 2933
	if (of_platform != PLATFORM_POWERMAC &&
	    of_platform != PLATFORM_OPAL)
2934
		prom_instantiate_rtas();
2935 2936 2937

#ifdef CONFIG_PPC_POWERNV
	/* Detect HAL and try instanciating it & doing takeover */
A
Anton Blanchard 已提交
2938
	if (of_platform == PLATFORM_PSERIES_LPAR) {
2939
		prom_query_opal();
A
Anton Blanchard 已提交
2940
		if (of_platform == PLATFORM_OPAL) {
2941 2942 2943
			prom_opal_hold_cpus();
			prom_opal_takeover();
		}
A
Anton Blanchard 已提交
2944
	} else if (of_platform == PLATFORM_OPAL)
2945
		prom_instantiate_opal();
2946 2947
#endif

2948 2949 2950 2951 2952
#ifdef CONFIG_PPC64
	/* instantiate sml */
	prom_instantiate_sml();
#endif

2953 2954 2955 2956 2957
	/*
	 * On non-powermacs, put all CPUs in spin-loops.
	 *
	 * PowerMacs use a different mechanism to spin CPUs
	 */
A
Anton Blanchard 已提交
2958 2959
	if (of_platform != PLATFORM_POWERMAC &&
	    of_platform != PLATFORM_OPAL)
2960
		prom_hold_cpus();
2961 2962 2963 2964

	/*
	 * Fill in some infos for use by the kernel later on
	 */
A
Anton Blanchard 已提交
2965 2966 2967
	if (prom_memory_limit)
		prom_setprop(prom.chosen, "/chosen", "linux,memory-limit",
			     &prom_memory_limit,
2968
			     sizeof(prom_memory_limit));
2969
#ifdef CONFIG_PPC64
A
Anton Blanchard 已提交
2970 2971
	if (prom_iommu_off)
		prom_setprop(prom.chosen, "/chosen", "linux,iommu-off",
2972
			     NULL, 0);
2973

A
Anton Blanchard 已提交
2974 2975
	if (prom_iommu_force_on)
		prom_setprop(prom.chosen, "/chosen", "linux,iommu-force-on",
2976
			     NULL, 0);
2977

A
Anton Blanchard 已提交
2978 2979 2980
	if (prom_tce_alloc_start) {
		prom_setprop(prom.chosen, "/chosen", "linux,tce-alloc-start",
			     &prom_tce_alloc_start,
2981
			     sizeof(prom_tce_alloc_start));
A
Anton Blanchard 已提交
2982 2983
		prom_setprop(prom.chosen, "/chosen", "linux,tce-alloc-end",
			     &prom_tce_alloc_end,
2984 2985 2986 2987 2988 2989 2990 2991 2992 2993 2994 2995
			     sizeof(prom_tce_alloc_end));
	}
#endif

	/*
	 * Fixup any known bugs in the device-tree
	 */
	fixup_device_tree();

	/*
	 * Now finally create the flattened device-tree
	 */
2996
	prom_printf("copying OF device tree...\n");
2997 2998
	flatten_device_tree();

2999 3000 3001
	/*
	 * in case stdin is USB and still active on IBM machines...
	 * Unfortunately quiesce crashes on some powermacs if we have
3002 3003
	 * closed stdin already (in particular the powerbook 101). It
	 * appears that the OPAL version of OFW doesn't like it either.
3004
	 */
A
Anton Blanchard 已提交
3005 3006
	if (of_platform != PLATFORM_POWERMAC &&
	    of_platform != PLATFORM_OPAL)
3007
		prom_close_stdin();
3008 3009 3010 3011 3012

	/*
	 * Call OF "quiesce" method to shut down pending DMA's from
	 * devices etc...
	 */
3013
	prom_printf("Calling quiesce...\n");
3014 3015 3016 3017 3018 3019 3020
	call_prom("quiesce", 0, 0);

	/*
	 * And finally, call the kernel passing it the flattened device
	 * tree and NULL as r5, thus triggering the new entry point which
	 * is common to us and kexec
	 */
A
Anton Blanchard 已提交
3021
	hdr = dt_header_start;
3022 3023

	/* Don't print anything after quiesce under OPAL, it crashes OFW */
A
Anton Blanchard 已提交
3024
	if (of_platform != PLATFORM_OPAL) {
3025 3026 3027
		prom_printf("returning from prom_init\n");
		prom_debug("->dt_header_start=0x%x\n", hdr);
	}
3028 3029 3030

#ifdef CONFIG_PPC32
	reloc_got2(-offset);
3031 3032
#else
	unreloc_toc();
3033 3034
#endif

3035 3036 3037
#ifdef CONFIG_PPC_EARLY_DEBUG_OPAL
	/* OPAL early debug gets the OPAL base & entry in r8 and r9 */
	__start(hdr, kbase, 0, 0, 0,
A
Anton Blanchard 已提交
3038
		prom_opal_base, prom_opal_entry);
3039 3040 3041
#else
	__start(hdr, kbase, 0, 0, 0, 0, 0);
#endif
3042 3043 3044

	return 0;
}