rtas.c 28.7 KB
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/*
 *
 * Procedures for interfacing to the RTAS on CHRP machines.
 *
 * Peter Bergner, IBM	March 2001.
 * Copyright (C) 2001 IBM.
 *
 *      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.
 */

#include <stdarg.h>
#include <linux/kernel.h>
#include <linux/types.h>
#include <linux/spinlock.h>
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#include <linux/export.h>
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#include <linux/init.h>
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#include <linux/capability.h>
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#include <linux/delay.h>
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#include <linux/cpu.h>
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#include <linux/smp.h>
#include <linux/completion.h>
#include <linux/cpumask.h>
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#include <linux/memblock.h>
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#include <linux/slab.h>
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#include <linux/reboot.h>
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#include <asm/prom.h>
#include <asm/rtas.h>
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#include <asm/hvcall.h>
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#include <asm/machdep.h>
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#include <asm/firmware.h>
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#include <asm/page.h>
#include <asm/param.h>
#include <asm/delay.h>
#include <asm/uaccess.h>
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#include <asm/udbg.h>
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#include <asm/syscalls.h>
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#include <asm/smp.h>
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#include <linux/atomic.h>
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#include <asm/time.h>
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#include <asm/mmu.h>
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#include <asm/topology.h>
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struct rtas_t rtas = {
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	.lock = __ARCH_SPIN_LOCK_UNLOCKED
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};
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EXPORT_SYMBOL(rtas);
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DEFINE_SPINLOCK(rtas_data_buf_lock);
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EXPORT_SYMBOL(rtas_data_buf_lock);

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char rtas_data_buf[RTAS_DATA_BUF_SIZE] __cacheline_aligned;
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EXPORT_SYMBOL(rtas_data_buf);

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unsigned long rtas_rmo_buf;

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/*
 * If non-NULL, this gets called when the kernel terminates.
 * This is done like this so rtas_flash can be a module.
 */
void (*rtas_flash_term_hook)(int);
EXPORT_SYMBOL(rtas_flash_term_hook);

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/* RTAS use home made raw locking instead of spin_lock_irqsave
 * because those can be called from within really nasty contexts
 * such as having the timebase stopped which would lockup with
 * normal locks and spinlock debugging enabled
 */
static unsigned long lock_rtas(void)
{
	unsigned long flags;

	local_irq_save(flags);
	preempt_disable();
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	arch_spin_lock_flags(&rtas.lock, flags);
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	return flags;
}

static void unlock_rtas(unsigned long flags)
{
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	arch_spin_unlock(&rtas.lock);
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	local_irq_restore(flags);
	preempt_enable();
}

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/*
 * call_rtas_display_status and call_rtas_display_status_delay
 * are designed only for very early low-level debugging, which
 * is why the token is hard-coded to 10.
 */
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static void call_rtas_display_status(unsigned char c)
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{
	struct rtas_args *args = &rtas.args;
	unsigned long s;

	if (!rtas.base)
		return;
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	s = lock_rtas();
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	args->token = cpu_to_be32(10);
	args->nargs = cpu_to_be32(1);
	args->nret  = cpu_to_be32(1);
	args->rets  = &(args->args[1]);
	args->args[0] = cpu_to_be32(c);
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	enter_rtas(__pa(args));

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	unlock_rtas(s);
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}

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static void call_rtas_display_status_delay(char c)
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{
	static int pending_newline = 0;  /* did last write end with unprinted newline? */
	static int width = 16;

	if (c == '\n') {	
		while (width-- > 0)
			call_rtas_display_status(' ');
		width = 16;
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		mdelay(500);
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		pending_newline = 1;
	} else {
		if (pending_newline) {
			call_rtas_display_status('\r');
			call_rtas_display_status('\n');
		} 
		pending_newline = 0;
		if (width--) {
			call_rtas_display_status(c);
			udelay(10000);
		}
	}
}

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void __init udbg_init_rtas_panel(void)
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{
	udbg_putc = call_rtas_display_status_delay;
}

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#ifdef CONFIG_UDBG_RTAS_CONSOLE

/* If you think you're dying before early_init_dt_scan_rtas() does its
 * work, you can hard code the token values for your firmware here and
 * hardcode rtas.base/entry etc.
 */
static unsigned int rtas_putchar_token = RTAS_UNKNOWN_SERVICE;
static unsigned int rtas_getchar_token = RTAS_UNKNOWN_SERVICE;

static void udbg_rtascon_putc(char c)
{
	int tries;

	if (!rtas.base)
		return;

	/* Add CRs before LFs */
	if (c == '\n')
		udbg_rtascon_putc('\r');

	/* if there is more than one character to be displayed, wait a bit */
	for (tries = 0; tries < 16; tries++) {
		if (rtas_call(rtas_putchar_token, 1, 1, NULL, c) == 0)
			break;
		udelay(1000);
	}
}

static int udbg_rtascon_getc_poll(void)
{
	int c;

	if (!rtas.base)
		return -1;

	if (rtas_call(rtas_getchar_token, 0, 2, &c))
		return -1;

	return c;
}

static int udbg_rtascon_getc(void)
{
	int c;

	while ((c = udbg_rtascon_getc_poll()) == -1)
		;

	return c;
}


void __init udbg_init_rtas_console(void)
{
	udbg_putc = udbg_rtascon_putc;
	udbg_getc = udbg_rtascon_getc;
	udbg_getc_poll = udbg_rtascon_getc_poll;
}
#endif /* CONFIG_UDBG_RTAS_CONSOLE */

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void rtas_progress(char *s, unsigned short hex)
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{
	struct device_node *root;
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	int width;
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	const __be32 *p;
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	char *os;
	static int display_character, set_indicator;
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	static int display_width, display_lines, form_feed;
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	static const int *row_width;
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	static DEFINE_SPINLOCK(progress_lock);
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	static int current_line;
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	static int pending_newline = 0;  /* did last write end with unprinted newline? */

	if (!rtas.base)
		return;

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	if (display_width == 0) {
		display_width = 0x10;
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		if ((root = of_find_node_by_path("/rtas"))) {
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			if ((p = of_get_property(root,
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					"ibm,display-line-length", NULL)))
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				display_width = be32_to_cpu(*p);
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			if ((p = of_get_property(root,
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					"ibm,form-feed", NULL)))
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				form_feed = be32_to_cpu(*p);
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			if ((p = of_get_property(root,
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					"ibm,display-number-of-lines", NULL)))
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				display_lines = be32_to_cpu(*p);
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			row_width = of_get_property(root,
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					"ibm,display-truncation-length", NULL);
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			of_node_put(root);
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		}
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		display_character = rtas_token("display-character");
		set_indicator = rtas_token("set-indicator");
	}

	if (display_character == RTAS_UNKNOWN_SERVICE) {
		/* use hex display if available */
		if (set_indicator != RTAS_UNKNOWN_SERVICE)
			rtas_call(set_indicator, 3, 1, NULL, 6, 0, hex);
		return;
	}

	spin_lock(&progress_lock);

	/*
	 * Last write ended with newline, but we didn't print it since
	 * it would just clear the bottom line of output. Print it now
	 * instead.
	 *
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	 * If no newline is pending and form feed is supported, clear the
	 * display with a form feed; otherwise, print a CR to start output
	 * at the beginning of the line.
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	 */
	if (pending_newline) {
		rtas_call(display_character, 1, 1, NULL, '\r');
		rtas_call(display_character, 1, 1, NULL, '\n');
		pending_newline = 0;
	} else {
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		current_line = 0;
		if (form_feed)
			rtas_call(display_character, 1, 1, NULL,
				  (char)form_feed);
		else
			rtas_call(display_character, 1, 1, NULL, '\r');
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	}
 
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	if (row_width)
		width = row_width[current_line];
	else
		width = display_width;
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	os = s;
	while (*os) {
		if (*os == '\n' || *os == '\r') {
			/* If newline is the last character, save it
			 * until next call to avoid bumping up the
			 * display output.
			 */
			if (*os == '\n' && !os[1]) {
				pending_newline = 1;
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				current_line++;
				if (current_line > display_lines-1)
					current_line = display_lines-1;
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				spin_unlock(&progress_lock);
				return;
			}
 
			/* RTAS wants CR-LF, not just LF */
 
			if (*os == '\n') {
				rtas_call(display_character, 1, 1, NULL, '\r');
				rtas_call(display_character, 1, 1, NULL, '\n');
			} else {
				/* CR might be used to re-draw a line, so we'll
				 * leave it alone and not add LF.
				 */
				rtas_call(display_character, 1, 1, NULL, *os);
			}
 
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			if (row_width)
				width = row_width[current_line];
			else
				width = display_width;
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		} else {
			width--;
			rtas_call(display_character, 1, 1, NULL, *os);
		}
 
		os++;
 
		/* if we overwrite the screen length */
		if (width <= 0)
			while ((*os != 0) && (*os != '\n') && (*os != '\r'))
				os++;
	}
 
	spin_unlock(&progress_lock);
}
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EXPORT_SYMBOL(rtas_progress);		/* needed by rtas_flash module */
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int rtas_token(const char *service)
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{
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	const __be32 *tokp;
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	if (rtas.dev == NULL)
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		return RTAS_UNKNOWN_SERVICE;
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	tokp = of_get_property(rtas.dev, service, NULL);
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	return tokp ? be32_to_cpu(*tokp) : RTAS_UNKNOWN_SERVICE;
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}
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EXPORT_SYMBOL(rtas_token);
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int rtas_service_present(const char *service)
{
	return rtas_token(service) != RTAS_UNKNOWN_SERVICE;
}
EXPORT_SYMBOL(rtas_service_present);

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#ifdef CONFIG_RTAS_ERROR_LOGGING
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/*
 * Return the firmware-specified size of the error log buffer
 *  for all rtas calls that require an error buffer argument.
 *  This includes 'check-exception' and 'rtas-last-error'.
 */
int rtas_get_error_log_max(void)
{
	static int rtas_error_log_max;
	if (rtas_error_log_max)
		return rtas_error_log_max;

	rtas_error_log_max = rtas_token ("rtas-error-log-max");
	if ((rtas_error_log_max == RTAS_UNKNOWN_SERVICE) ||
	    (rtas_error_log_max > RTAS_ERROR_LOG_MAX)) {
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		printk (KERN_WARNING "RTAS: bad log buffer size %d\n",
			rtas_error_log_max);
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		rtas_error_log_max = RTAS_ERROR_LOG_MAX;
	}
	return rtas_error_log_max;
}
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EXPORT_SYMBOL(rtas_get_error_log_max);
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static char rtas_err_buf[RTAS_ERROR_LOG_MAX];
static int rtas_last_error_token;
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/** Return a copy of the detailed error text associated with the
 *  most recent failed call to rtas.  Because the error text
 *  might go stale if there are any other intervening rtas calls,
 *  this routine must be called atomically with whatever produced
 *  the error (i.e. with rtas.lock still held from the previous call).
 */
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static char *__fetch_rtas_last_error(char *altbuf)
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{
	struct rtas_args err_args, save_args;
	u32 bufsz;
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	char *buf = NULL;

	if (rtas_last_error_token == -1)
		return NULL;
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	bufsz = rtas_get_error_log_max();

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	err_args.token = cpu_to_be32(rtas_last_error_token);
	err_args.nargs = cpu_to_be32(2);
	err_args.nret = cpu_to_be32(1);
	err_args.args[0] = cpu_to_be32(__pa(rtas_err_buf));
	err_args.args[1] = cpu_to_be32(bufsz);
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	err_args.args[2] = 0;

	save_args = rtas.args;
	rtas.args = err_args;

	enter_rtas(__pa(&rtas.args));

	err_args = rtas.args;
	rtas.args = save_args;

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	/* Log the error in the unlikely case that there was one. */
	if (unlikely(err_args.args[2] == 0)) {
		if (altbuf) {
			buf = altbuf;
		} else {
			buf = rtas_err_buf;
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			if (slab_is_available())
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				buf = kmalloc(RTAS_ERROR_LOG_MAX, GFP_ATOMIC);
		}
		if (buf)
			memcpy(buf, rtas_err_buf, RTAS_ERROR_LOG_MAX);
	}

	return buf;
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}

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#define get_errorlog_buffer()	kmalloc(RTAS_ERROR_LOG_MAX, GFP_KERNEL)

#else /* CONFIG_RTAS_ERROR_LOGGING */
#define __fetch_rtas_last_error(x)	NULL
#define get_errorlog_buffer()		NULL
#endif

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int rtas_call(int token, int nargs, int nret, int *outputs, ...)
{
	va_list list;
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	int i;
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	unsigned long s;
	struct rtas_args *rtas_args;
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	char *buff_copy = NULL;
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	int ret;

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	if (!rtas.entry || token == RTAS_UNKNOWN_SERVICE)
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		return -1;

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	s = lock_rtas();
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	rtas_args = &rtas.args;

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	rtas_args->token = cpu_to_be32(token);
	rtas_args->nargs = cpu_to_be32(nargs);
	rtas_args->nret  = cpu_to_be32(nret);
	rtas_args->rets  = &(rtas_args->args[nargs]);
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	va_start(list, outputs);
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	for (i = 0; i < nargs; ++i)
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		rtas_args->args[i] = cpu_to_be32(va_arg(list, __u32));
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	va_end(list);

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

	enter_rtas(__pa(rtas_args));

	/* A -1 return code indicates that the last command couldn't
	   be completed due to a hardware error. */
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	if (be32_to_cpu(rtas_args->rets[0]) == -1)
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		buff_copy = __fetch_rtas_last_error(NULL);
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	if (nret > 1 && outputs != NULL)
		for (i = 0; i < nret-1; ++i)
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			outputs[i] = be32_to_cpu(rtas_args->rets[i+1]);
	ret = (nret > 0)? be32_to_cpu(rtas_args->rets[0]): 0;
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	unlock_rtas(s);
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	if (buff_copy) {
		log_error(buff_copy, ERR_TYPE_RTAS_LOG, 0);
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		if (slab_is_available())
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			kfree(buff_copy);
	}
	return ret;
}
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EXPORT_SYMBOL(rtas_call);
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/* For RTAS_BUSY (-2), delay for 1 millisecond.  For an extended busy status
 * code of 990n, perform the hinted delay of 10^n (last digit) milliseconds.
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 */
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unsigned int rtas_busy_delay_time(int status)
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{
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	int order;
	unsigned int ms = 0;

	if (status == RTAS_BUSY) {
		ms = 1;
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	} else if (status >= RTAS_EXTENDED_DELAY_MIN &&
		   status <= RTAS_EXTENDED_DELAY_MAX) {
		order = status - RTAS_EXTENDED_DELAY_MIN;
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		for (ms = 1; order > 0; order--)
			ms *= 10;
	}
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	return ms;
}
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EXPORT_SYMBOL(rtas_busy_delay_time);
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/* For an RTAS busy status code, perform the hinted delay. */
unsigned int rtas_busy_delay(int status)
{
	unsigned int ms;
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	might_sleep();
	ms = rtas_busy_delay_time(status);
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	if (ms && need_resched())
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		msleep(ms);

	return ms;
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}
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EXPORT_SYMBOL(rtas_busy_delay);
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static int rtas_error_rc(int rtas_rc)
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{
	int rc;

	switch (rtas_rc) {
		case -1: 		/* Hardware Error */
			rc = -EIO;
			break;
		case -3:		/* Bad indicator/domain/etc */
			rc = -EINVAL;
			break;
		case -9000:		/* Isolation error */
			rc = -EFAULT;
			break;
		case -9001:		/* Outstanding TCE/PTE */
			rc = -EEXIST;
			break;
		case -9002:		/* No usable slot */
			rc = -ENODEV;
			break;
		default:
			printk(KERN_ERR "%s: unexpected RTAS error %d\n",
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					__func__, rtas_rc);
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			rc = -ERANGE;
			break;
	}
	return rc;
}

int rtas_get_power_level(int powerdomain, int *level)
{
	int token = rtas_token("get-power-level");
	int rc;

	if (token == RTAS_UNKNOWN_SERVICE)
		return -ENOENT;

	while ((rc = rtas_call(token, 1, 2, level, powerdomain)) == RTAS_BUSY)
		udelay(1);

	if (rc < 0)
		return rtas_error_rc(rc);
	return rc;
}
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EXPORT_SYMBOL(rtas_get_power_level);
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int rtas_set_power_level(int powerdomain, int level, int *setlevel)
{
	int token = rtas_token("set-power-level");
	int rc;

	if (token == RTAS_UNKNOWN_SERVICE)
		return -ENOENT;

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	do {
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		rc = rtas_call(token, 2, 2, setlevel, powerdomain, level);
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	} while (rtas_busy_delay(rc));
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	if (rc < 0)
		return rtas_error_rc(rc);
	return rc;
}
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EXPORT_SYMBOL(rtas_set_power_level);
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int rtas_get_sensor(int sensor, int index, int *state)
{
	int token = rtas_token("get-sensor-state");
	int rc;

	if (token == RTAS_UNKNOWN_SERVICE)
		return -ENOENT;

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	do {
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		rc = rtas_call(token, 2, 2, state, sensor, index);
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	} while (rtas_busy_delay(rc));
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	if (rc < 0)
		return rtas_error_rc(rc);
	return rc;
}
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EXPORT_SYMBOL(rtas_get_sensor);
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int rtas_get_sensor_fast(int sensor, int index, int *state)
{
	int token = rtas_token("get-sensor-state");
	int rc;

	if (token == RTAS_UNKNOWN_SERVICE)
		return -ENOENT;

	rc = rtas_call(token, 2, 2, state, sensor, index);
	WARN_ON(rc == RTAS_BUSY || (rc >= RTAS_EXTENDED_DELAY_MIN &&
				    rc <= RTAS_EXTENDED_DELAY_MAX));

	if (rc < 0)
		return rtas_error_rc(rc);
	return rc;
}

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bool rtas_indicator_present(int token, int *maxindex)
{
	int proplen, count, i;
	const struct indicator_elem {
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		__be32 token;
		__be32 maxindex;
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	} *indicators;

	indicators = of_get_property(rtas.dev, "rtas-indicators", &proplen);
	if (!indicators)
		return false;

	count = proplen / sizeof(struct indicator_elem);

	for (i = 0; i < count; i++) {
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		if (__be32_to_cpu(indicators[i].token) != token)
621 622
			continue;
		if (maxindex)
623
			*maxindex = __be32_to_cpu(indicators[i].maxindex);
624 625 626 627 628 629 630
		return true;
	}

	return false;
}
EXPORT_SYMBOL(rtas_indicator_present);

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int rtas_set_indicator(int indicator, int index, int new_value)
{
	int token = rtas_token("set-indicator");
	int rc;

	if (token == RTAS_UNKNOWN_SERVICE)
		return -ENOENT;

639
	do {
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640
		rc = rtas_call(token, 3, 1, NULL, indicator, index, new_value);
641
	} while (rtas_busy_delay(rc));
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642 643 644 645 646

	if (rc < 0)
		return rtas_error_rc(rc);
	return rc;
}
647
EXPORT_SYMBOL(rtas_set_indicator);
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648

649 650 651 652 653 654 655 656 657 658 659 660 661
/*
 * Ignoring RTAS extended delay
 */
int rtas_set_indicator_fast(int indicator, int index, int new_value)
{
	int rc;
	int token = rtas_token("set-indicator");

	if (token == RTAS_UNKNOWN_SERVICE)
		return -ENOENT;

	rc = rtas_call(token, 3, 1, NULL, indicator, index, new_value);

662 663
	WARN_ON(rc == RTAS_BUSY || (rc >= RTAS_EXTENDED_DELAY_MIN &&
				    rc <= RTAS_EXTENDED_DELAY_MAX));
664 665 666 667 668 669 670

	if (rc < 0)
		return rtas_error_rc(rc);

	return rc;
}

671
void rtas_restart(char *cmd)
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672
{
673 674
	if (rtas_flash_term_hook)
		rtas_flash_term_hook(SYS_RESTART);
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675 676 677 678 679
	printk("RTAS system-reboot returned %d\n",
	       rtas_call(rtas_token("system-reboot"), 0, 1, NULL));
	for (;;);
}

680
void rtas_power_off(void)
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681
{
682 683
	if (rtas_flash_term_hook)
		rtas_flash_term_hook(SYS_POWER_OFF);
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	/* allow power on only with power button press */
	printk("RTAS power-off returned %d\n",
	       rtas_call(rtas_token("power-off"), 2, 1, NULL, -1, -1));
	for (;;);
}

690
void rtas_halt(void)
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691
{
692 693 694 695 696 697
	if (rtas_flash_term_hook)
		rtas_flash_term_hook(SYS_HALT);
	/* allow power on only with power button press */
	printk("RTAS power-off returned %d\n",
	       rtas_call(rtas_token("power-off"), 2, 1, NULL, -1, -1));
	for (;;);
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}

/* Must be in the RMO region, so we place it here */
static char rtas_os_term_buf[2048];

703
void rtas_os_term(char *str)
704 705
{
	int status;
706

707 708 709 710 711 712 713 714
	/*
	 * Firmware with the ibm,extended-os-term property is guaranteed
	 * to always return from an ibm,os-term call. Earlier versions without
	 * this property may terminate the partition which we want to avoid
	 * since it interferes with panic_timeout.
	 */
	if (RTAS_UNKNOWN_SERVICE == rtas_token("ibm,os-term") ||
	    RTAS_UNKNOWN_SERVICE == rtas_token("ibm,extended-os-term"))
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		return;

717 718
	snprintf(rtas_os_term_buf, 2048, "OS panic: %s", str);

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	do {
		status = rtas_call(rtas_token("ibm,os-term"), 1, 1, NULL,
				   __pa(rtas_os_term_buf));
722
	} while (rtas_busy_delay(status));
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724
	if (status != 0)
725
		printk(KERN_EMERG "ibm,os-term call failed %d\n", status);
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}

728 729
static int ibm_suspend_me_token = RTAS_UNKNOWN_SERVICE;
#ifdef CONFIG_PPC_PSERIES
730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751
static int __rtas_suspend_last_cpu(struct rtas_suspend_me_data *data, int wake_when_done)
{
	u16 slb_size = mmu_slb_size;
	int rc = H_MULTI_THREADS_ACTIVE;
	int cpu;

	slb_set_size(SLB_MIN_SIZE);
	printk(KERN_DEBUG "calling ibm,suspend-me on cpu %i\n", smp_processor_id());

	while (rc == H_MULTI_THREADS_ACTIVE && !atomic_read(&data->done) &&
	       !atomic_read(&data->error))
		rc = rtas_call(data->token, 0, 1, NULL);

	if (rc || atomic_read(&data->error)) {
		printk(KERN_DEBUG "ibm,suspend-me returned %d\n", rc);
		slb_set_size(slb_size);
	}

	if (atomic_read(&data->error))
		rc = atomic_read(&data->error);

	atomic_set(&data->error, rc);
752
	pSeries_coalesce_init();
753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773

	if (wake_when_done) {
		atomic_set(&data->done, 1);

		for_each_online_cpu(cpu)
			plpar_hcall_norets(H_PROD, get_hard_smp_processor_id(cpu));
	}

	if (atomic_dec_return(&data->working) == 0)
		complete(data->complete);

	return rc;
}

int rtas_suspend_last_cpu(struct rtas_suspend_me_data *data)
{
	atomic_inc(&data->working);
	return __rtas_suspend_last_cpu(data, 0);
}

static int __rtas_suspend_cpu(struct rtas_suspend_me_data *data, int wake_when_done)
774
{
775
	long rc = H_SUCCESS;
776 777
	unsigned long msr_save;
	int cpu;
778

779 780 781 782 783 784
	atomic_inc(&data->working);

	/* really need to ensure MSR.EE is off for H_JOIN */
	msr_save = mfmsr();
	mtmsr(msr_save & ~(MSR_EE));

785
	while (rc == H_SUCCESS && !atomic_read(&data->done) && !atomic_read(&data->error))
786
		rc = plpar_hcall_norets(H_JOIN);
787 788

	mtmsr(msr_save);
789

790 791 792 793 794 795 796
	if (rc == H_SUCCESS) {
		/* This cpu was prodded and the suspend is complete. */
		goto out;
	} else if (rc == H_CONTINUE) {
		/* All other cpus are in H_JOIN, this cpu does
		 * the suspend.
		 */
797
		return __rtas_suspend_last_cpu(data, wake_when_done);
798
	} else {
799 800
		printk(KERN_ERR "H_JOIN on cpu %i failed with rc = %ld\n",
		       smp_processor_id(), rc);
801
		atomic_set(&data->error, rc);
802
	}
803

804 805
	if (wake_when_done) {
		atomic_set(&data->done, 1);
806

807 808 809 810 811 812 813
		/* This cpu did the suspend or got an error; in either case,
		 * we need to prod all other other cpus out of join state.
		 * Extra prods are harmless.
		 */
		for_each_online_cpu(cpu)
			plpar_hcall_norets(H_PROD, get_hard_smp_processor_id(cpu));
	}
814
out:
815 816
	if (atomic_dec_return(&data->working) == 0)
		complete(data->complete);
817 818 819 820 821 822 823 824 825 826 827
	return rc;
}

int rtas_suspend_cpu(struct rtas_suspend_me_data *data)
{
	return __rtas_suspend_cpu(data, 0);
}

static void rtas_percpu_suspend_me(void *info)
{
	__rtas_suspend_cpu((struct rtas_suspend_me_data *)info, 1);
828 829
}

830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918
enum rtas_cpu_state {
	DOWN,
	UP,
};

#ifndef CONFIG_SMP
static int rtas_cpu_state_change_mask(enum rtas_cpu_state state,
				cpumask_var_t cpus)
{
	if (!cpumask_empty(cpus)) {
		cpumask_clear(cpus);
		return -EINVAL;
	} else
		return 0;
}
#else
/* On return cpumask will be altered to indicate CPUs changed.
 * CPUs with states changed will be set in the mask,
 * CPUs with status unchanged will be unset in the mask. */
static int rtas_cpu_state_change_mask(enum rtas_cpu_state state,
				cpumask_var_t cpus)
{
	int cpu;
	int cpuret = 0;
	int ret = 0;

	if (cpumask_empty(cpus))
		return 0;

	for_each_cpu(cpu, cpus) {
		switch (state) {
		case DOWN:
			cpuret = cpu_down(cpu);
			break;
		case UP:
			cpuret = cpu_up(cpu);
			break;
		}
		if (cpuret) {
			pr_debug("%s: cpu_%s for cpu#%d returned %d.\n",
					__func__,
					((state == UP) ? "up" : "down"),
					cpu, cpuret);
			if (!ret)
				ret = cpuret;
			if (state == UP) {
				/* clear bits for unchanged cpus, return */
				cpumask_shift_right(cpus, cpus, cpu);
				cpumask_shift_left(cpus, cpus, cpu);
				break;
			} else {
				/* clear bit for unchanged cpu, continue */
				cpumask_clear_cpu(cpu, cpus);
			}
		}
	}

	return ret;
}
#endif

int rtas_online_cpus_mask(cpumask_var_t cpus)
{
	int ret;

	ret = rtas_cpu_state_change_mask(UP, cpus);

	if (ret) {
		cpumask_var_t tmp_mask;

		if (!alloc_cpumask_var(&tmp_mask, GFP_TEMPORARY))
			return ret;

		/* Use tmp_mask to preserve cpus mask from first failure */
		cpumask_copy(tmp_mask, cpus);
		rtas_offline_cpus_mask(tmp_mask);
		free_cpumask_var(tmp_mask);
	}

	return ret;
}
EXPORT_SYMBOL(rtas_online_cpus_mask);

int rtas_offline_cpus_mask(cpumask_var_t cpus)
{
	return rtas_cpu_state_change_mask(DOWN, cpus);
}
EXPORT_SYMBOL(rtas_offline_cpus_mask);

919
int rtas_ibm_suspend_me(u64 handle)
920
{
921 922
	long state;
	long rc;
923
	unsigned long retbuf[PLPAR_HCALL_BUFSIZE];
924
	struct rtas_suspend_me_data data;
925
	DECLARE_COMPLETION_ONSTACK(done);
926 927
	cpumask_var_t offline_mask;
	int cpuret;
928 929 930

	if (!rtas_service_present("ibm,suspend-me"))
		return -ENOSYS;
931

932
	/* Make sure the state is valid */
933
	rc = plpar_hcall(H_VASI_STATE, retbuf, handle);
934 935

	state = retbuf[0];
936 937 938 939 940

	if (rc) {
		printk(KERN_ERR "rtas_ibm_suspend_me: vasi_state returned %ld\n",rc);
		return rc;
	} else if (state == H_VASI_ENABLED) {
941
		return -EAGAIN;
942 943 944
	} else if (state != H_VASI_SUSPENDING) {
		printk(KERN_ERR "rtas_ibm_suspend_me: vasi_state returned state %ld\n",
		       state);
945
		return -EIO;
946 947
	}

948 949 950
	if (!alloc_cpumask_var(&offline_mask, GFP_TEMPORARY))
		return -ENOMEM;

951
	atomic_set(&data.working, 0);
952
	atomic_set(&data.done, 0);
953
	atomic_set(&data.error, 0);
954 955
	data.token = rtas_token("ibm,suspend-me");
	data.complete = &done;
956 957 958 959 960 961 962 963 964 965

	/* All present CPUs must be online */
	cpumask_andnot(offline_mask, cpu_present_mask, cpu_online_mask);
	cpuret = rtas_online_cpus_mask(offline_mask);
	if (cpuret) {
		pr_err("%s: Could not bring present CPUs online.\n", __func__);
		atomic_set(&data.error, cpuret);
		goto out;
	}

966
	stop_topology_update();
967 968 969 970

	/* Call function on all CPUs.  One of us will make the
	 * rtas call
	 */
971
	if (on_each_cpu(rtas_percpu_suspend_me, &data, 0))
972
		atomic_set(&data.error, -EINVAL);
973

974
	wait_for_completion(&done);
975

976
	if (atomic_read(&data.error) != 0)
977
		printk(KERN_ERR "Error doing global join\n");
978

979 980
	start_topology_update();

981 982 983 984 985 986 987 988
	/* Take down CPUs not online prior to suspend */
	cpuret = rtas_offline_cpus_mask(offline_mask);
	if (cpuret)
		pr_warn("%s: Could not restore CPUs to offline state.\n",
				__func__);

out:
	free_cpumask_var(offline_mask);
989
	return atomic_read(&data.error);
990 991
}
#else /* CONFIG_PPC_PSERIES */
992
int rtas_ibm_suspend_me(u64 handle)
993 994 995 996
{
	return -ENOSYS;
}
#endif
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Linus Torvalds 已提交
997

998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011
/**
 * Find a specific pseries error log in an RTAS extended event log.
 * @log: RTAS error/event log
 * @section_id: two character section identifier
 *
 * Returns a pointer to the specified errorlog or NULL if not found.
 */
struct pseries_errorlog *get_pseries_errorlog(struct rtas_error_log *log,
					      uint16_t section_id)
{
	struct rtas_ext_event_log_v6 *ext_log =
		(struct rtas_ext_event_log_v6 *)log->buffer;
	struct pseries_errorlog *sect;
	unsigned char *p, *log_end;
1012 1013 1014
	uint32_t ext_log_length = rtas_error_extended_log_length(log);
	uint8_t log_format = rtas_ext_event_log_format(ext_log);
	uint32_t company_id = rtas_ext_event_company_id(ext_log);
1015 1016

	/* Check that we understand the format */
1017 1018 1019
	if (ext_log_length < sizeof(struct rtas_ext_event_log_v6) ||
	    log_format != RTAS_V6EXT_LOG_FORMAT_EVENT_LOG ||
	    company_id != RTAS_V6EXT_COMPANY_ID_IBM)
1020 1021
		return NULL;

1022
	log_end = log->buffer + ext_log_length;
1023 1024 1025 1026
	p = ext_log->vendor_log;

	while (p < log_end) {
		sect = (struct pseries_errorlog *)p;
1027
		if (pseries_errorlog_id(sect) == section_id)
1028
			return sect;
1029
		p += pseries_errorlog_length(sect);
1030 1031 1032 1033 1034
	}

	return NULL;
}

1035
/* We assume to be passed big endian arguments */
L
Linus Torvalds 已提交
1036 1037 1038 1039
asmlinkage int ppc_rtas(struct rtas_args __user *uargs)
{
	struct rtas_args args;
	unsigned long flags;
1040
	char *buff_copy, *errbuf = NULL;
1041
	int nargs, nret, token;
L
Linus Torvalds 已提交
1042 1043 1044 1045 1046 1047 1048

	if (!capable(CAP_SYS_ADMIN))
		return -EPERM;

	if (copy_from_user(&args, uargs, 3 * sizeof(u32)) != 0)
		return -EFAULT;

1049 1050 1051 1052
	nargs = be32_to_cpu(args.nargs);
	nret  = be32_to_cpu(args.nret);
	token = be32_to_cpu(args.token);

L
Linus Torvalds 已提交
1053
	if (nargs > ARRAY_SIZE(args.args)
1054 1055
	    || nret > ARRAY_SIZE(args.args)
	    || nargs + nret > ARRAY_SIZE(args.args))
L
Linus Torvalds 已提交
1056 1057 1058 1059 1060 1061 1062
		return -EINVAL;

	/* Copy in args. */
	if (copy_from_user(args.args, uargs->args,
			   nargs * sizeof(rtas_arg_t)) != 0)
		return -EFAULT;

1063
	if (token == RTAS_UNKNOWN_SERVICE)
1064 1065
		return -EINVAL;

1066
	args.rets = &args.args[nargs];
1067
	memset(args.rets, 0, nret * sizeof(rtas_arg_t));
1068

1069
	/* Need to handle ibm,suspend_me call specially */
1070
	if (token == ibm_suspend_me_token) {
1071 1072

		/*
1073 1074
		 * rtas_ibm_suspend_me assumes the streamid handle is in cpu
		 * endian, or at least the hcall within it requires it.
1075
		 */
1076
		int rc = 0;
1077 1078
		u64 handle = ((u64)be32_to_cpu(args.args[0]) << 32)
		              | be32_to_cpu(args.args[1]);
1079 1080 1081 1082 1083 1084
		rc = rtas_ibm_suspend_me(handle);
		if (rc == -EAGAIN)
			args.rets[0] = cpu_to_be32(RTAS_NOT_SUSPENDABLE);
		else if (rc == -EIO)
			args.rets[0] = cpu_to_be32(-1);
		else if (rc)
1085 1086 1087 1088
			return rc;
		goto copy_return;
	}

1089
	buff_copy = get_errorlog_buffer();
L
Linus Torvalds 已提交
1090

1091
	flags = lock_rtas();
L
Linus Torvalds 已提交
1092 1093 1094 1095 1096 1097 1098

	rtas.args = args;
	enter_rtas(__pa(&rtas.args));
	args = rtas.args;

	/* A -1 return code indicates that the last command couldn't
	   be completed due to a hardware error. */
1099
	if (be32_to_cpu(args.rets[0]) == -1)
1100
		errbuf = __fetch_rtas_last_error(buff_copy);
L
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1101

1102
	unlock_rtas(flags);
L
Linus Torvalds 已提交
1103 1104

	if (buff_copy) {
1105 1106
		if (errbuf)
			log_error(errbuf, ERR_TYPE_RTAS_LOG, 0);
L
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1107 1108 1109
		kfree(buff_copy);
	}

1110
 copy_return:
L
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1111 1112 1113
	/* Copy out args. */
	if (copy_to_user(uargs->args + nargs,
			 args.args + nargs,
1114
			 nret * sizeof(rtas_arg_t)) != 0)
L
Linus Torvalds 已提交
1115 1116 1117 1118 1119 1120
		return -EFAULT;

	return 0;
}

/*
1121 1122
 * Call early during boot, before mem init, to retrieve the RTAS
 * information from the device-tree and allocate the RMO buffer for userland
L
Linus Torvalds 已提交
1123 1124 1125 1126
 * accesses.
 */
void __init rtas_initialize(void)
{
1127 1128
	unsigned long rtas_region = RTAS_INSTANTIATE_MAX;

L
Linus Torvalds 已提交
1129 1130 1131 1132 1133
	/* Get RTAS dev node and fill up our "rtas" structure with infos
	 * about it.
	 */
	rtas.dev = of_find_node_by_name(NULL, "rtas");
	if (rtas.dev) {
1134
		const __be32 *basep, *entryp, *sizep;
L
Linus Torvalds 已提交
1135

1136 1137
		basep = of_get_property(rtas.dev, "linux,rtas-base", NULL);
		sizep = of_get_property(rtas.dev, "rtas-size", NULL);
L
Linus Torvalds 已提交
1138
		if (basep != NULL && sizep != NULL) {
1139 1140
			rtas.base = __be32_to_cpu(*basep);
			rtas.size = __be32_to_cpu(*sizep);
1141
			entryp = of_get_property(rtas.dev,
1142
					"linux,rtas-entry", NULL);
L
Linus Torvalds 已提交
1143 1144 1145
			if (entryp == NULL) /* Ugh */
				rtas.entry = rtas.base;
			else
1146
				rtas.entry = __be32_to_cpu(*entryp);
L
Linus Torvalds 已提交
1147 1148 1149
		} else
			rtas.dev = NULL;
	}
1150 1151 1152
	if (!rtas.dev)
		return;

L
Linus Torvalds 已提交
1153 1154 1155
	/* If RTAS was found, allocate the RMO buffer for it and look for
	 * the stop-self token if any
	 */
1156
#ifdef CONFIG_PPC64
1157
	if (machine_is(pseries) && firmware_has_feature(FW_FEATURE_LPAR)) {
1158
		rtas_region = min(ppc64_rma_size, RTAS_INSTANTIATE_MAX);
1159 1160
		ibm_suspend_me_token = rtas_token("ibm,suspend-me");
	}
1161
#endif
Y
Yinghai Lu 已提交
1162
	rtas_rmo_buf = memblock_alloc_base(RTAS_RMOBUF_MAX, PAGE_SIZE, rtas_region);
L
Linus Torvalds 已提交
1163

1164 1165 1166
#ifdef CONFIG_RTAS_ERROR_LOGGING
	rtas_last_error_token = rtas_token("rtas-last-error");
#endif
L
Linus Torvalds 已提交
1167
}
1168 1169 1170 1171

int __init early_init_dt_scan_rtas(unsigned long node,
		const char *uname, int depth, void *data)
{
1172
	const u32 *basep, *entryp, *sizep;
1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186

	if (depth != 1 || strcmp(uname, "rtas") != 0)
		return 0;

	basep  = of_get_flat_dt_prop(node, "linux,rtas-base", NULL);
	entryp = of_get_flat_dt_prop(node, "linux,rtas-entry", NULL);
	sizep  = of_get_flat_dt_prop(node, "rtas-size", NULL);

	if (basep && entryp && sizep) {
		rtas.base = *basep;
		rtas.entry = *entryp;
		rtas.size = *sizep;
	}

1187 1188 1189 1190 1191 1192 1193 1194
#ifdef CONFIG_UDBG_RTAS_CONSOLE
	basep = of_get_flat_dt_prop(node, "put-term-char", NULL);
	if (basep)
		rtas_putchar_token = *basep;

	basep = of_get_flat_dt_prop(node, "get-term-char", NULL);
	if (basep)
		rtas_getchar_token = *basep;
1195 1196 1197 1198 1199

	if (rtas_putchar_token != RTAS_UNKNOWN_SERVICE &&
	    rtas_getchar_token != RTAS_UNKNOWN_SERVICE)
		udbg_init_rtas_console();

1200 1201
#endif

1202 1203 1204
	/* break now */
	return 1;
}
1205

1206
static arch_spinlock_t timebase_lock;
1207 1208
static u64 timebase = 0;

1209
void rtas_give_timebase(void)
1210 1211 1212 1213 1214
{
	unsigned long flags;

	local_irq_save(flags);
	hard_irq_disable();
1215
	arch_spin_lock(&timebase_lock);
1216 1217
	rtas_call(rtas_token("freeze-time-base"), 0, 1, NULL);
	timebase = get_tb();
1218
	arch_spin_unlock(&timebase_lock);
1219 1220 1221 1222 1223 1224 1225

	while (timebase)
		barrier();
	rtas_call(rtas_token("thaw-time-base"), 0, 1, NULL);
	local_irq_restore(flags);
}

1226
void rtas_take_timebase(void)
1227 1228 1229
{
	while (!timebase)
		barrier();
1230
	arch_spin_lock(&timebase_lock);
1231 1232
	set_tb(timebase >> 32, timebase & 0xffffffff);
	timebase = 0;
1233
	arch_spin_unlock(&timebase_lock);
1234
}