flashrom.c 48.2 KB
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/*
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 * This file is part of the flashrom project.
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 *
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 * Copyright (C) 2000 Silicon Integrated System Corporation
 * Copyright (C) 2004 Tyan Corp <yhlu@tyan.com>
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 * Copyright (C) 2005-2008 coresystems GmbH
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 * Copyright (C) 2008,2009 Carl-Daniel Hailfinger
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 *
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 * 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.
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 *
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 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
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 *
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 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA  02110-1301 USA
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 */

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#include <stdio.h>
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#include <sys/types.h>
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#ifndef __LIBPAYLOAD__
#include <fcntl.h>
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#include <sys/stat.h>
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#endif
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#include <string.h>
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#include <stdlib.h>
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#include <ctype.h>
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#include <getopt.h>
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#if HAVE_UTSNAME == 1
#include <sys/utsname.h>
#endif
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#include "flash.h"
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#include "flashchips.h"
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#include "programmer.h"
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const char flashrom_version[] = FLASHROM_VERSION;
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char *chip_to_probe = NULL;
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int verbose = 0;
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static enum programmer programmer = PROGRAMMER_INVALID;
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static char *programmer_param = NULL;
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/* Supported buses for the current programmer. */
enum chipbustype buses_supported;
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/*
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 * Programmers supporting multiple buses can have differing size limits on
 * each bus. Store the limits for each bus in a common struct.
 */
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struct decode_sizes max_rom_decode;

/* If nonzero, used as the start address of bottom-aligned flash. */
unsigned long flashbase;
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/* Is writing allowed with this programmer? */
int programmer_may_write;

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const struct programmer_entry programmer_table[] = {
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#if CONFIG_INTERNAL == 1
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	{
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		.name			= "internal",
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		.init			= internal_init,
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		.map_flash_region	= physmap,
		.unmap_flash_region	= physunmap,
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		.delay			= internal_delay,
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	},
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#endif
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#if CONFIG_DUMMY == 1
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	{
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		.name			= "dummy",
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		.init			= dummy_init,
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		.map_flash_region	= dummy_map,
		.unmap_flash_region	= dummy_unmap,
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		.delay			= internal_delay,
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	},
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#endif
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#if CONFIG_NIC3COM == 1
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	{
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		.name			= "nic3com",
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		.init			= nic3com_init,
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		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
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		.delay			= internal_delay,
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	},
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#endif
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#if CONFIG_NICREALTEK == 1
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	{
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		/* This programmer works for Realtek RTL8139 and SMC 1211. */
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		.name			= "nicrealtek",
		//.name			= "nicsmc1211",
		.init			= nicrealtek_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
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	},
#endif

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#if CONFIG_NICNATSEMI == 1
	{
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		.name			= "nicnatsemi",
		.init			= nicnatsemi_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
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	},
#endif
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#if CONFIG_GFXNVIDIA == 1
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	{
		.name			= "gfxnvidia",
		.init			= gfxnvidia_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
#endif

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#if CONFIG_DRKAISER == 1
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	{
		.name			= "drkaiser",
		.init			= drkaiser_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
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#endif
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#if CONFIG_SATASII == 1
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	{
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		.name			= "satasii",
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		.init			= satasii_init,
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		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
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		.delay			= internal_delay,
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	},
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#endif
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#if CONFIG_ATAHPT == 1
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	{
		.name			= "atahpt",
		.init			= atahpt_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
#endif

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#if CONFIG_FT2232_SPI == 1
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	{
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		.name			= "ft2232_spi",
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		.init			= ft2232_spi_init,
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		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
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		.delay			= internal_delay,
	},
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#endif
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#if CONFIG_SERPROG == 1
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	{
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		.name			= "serprog",
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		.init			= serprog_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= serprog_delay,
	},
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#endif
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#if CONFIG_BUSPIRATE_SPI == 1
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	{
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		.name			= "buspirate_spi",
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		.init			= buspirate_spi_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
#endif

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#if CONFIG_DEDIPROG == 1
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	{
		.name			= "dediprog",
		.init			= dediprog_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
#endif

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#if CONFIG_RAYER_SPI == 1
	{
		.name			= "rayer_spi",
		.init			= rayer_spi_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
#endif

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#if CONFIG_NICINTEL == 1
	{
		.name			= "nicintel",
		.init			= nicintel_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
#endif

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#if CONFIG_NICINTEL_SPI == 1
	{
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		.name			= "nicintel_spi",
		.init			= nicintel_spi_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
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	},
#endif

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#if CONFIG_OGP_SPI == 1
	{
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		.name			= "ogp_spi",
		.init			= ogp_spi_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
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	},
#endif

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#if CONFIG_SATAMV == 1
	{
		.name			= "satamv",
		.init			= satamv_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
#endif

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#if CONFIG_LINUX_SPI == 1
	{
		.name			= "linux_spi",
		.init			= linux_spi_init,
		.map_flash_region	= fallback_map,
		.unmap_flash_region	= fallback_unmap,
		.delay			= internal_delay,
	},
#endif

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	{}, /* This entry corresponds to PROGRAMMER_INVALID. */
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};
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#define SHUTDOWN_MAXFN 32
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static int shutdown_fn_count = 0;
struct shutdown_func_data {
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	int (*func) (void *data);
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	void *data;
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} static shutdown_fn[SHUTDOWN_MAXFN];
/* Initialize to 0 to make sure nobody registers a shutdown function before
 * programmer init.
 */
static int may_register_shutdown = 0;
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static int check_block_eraser(const struct flashchip *flash, int k, int log);

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/* Register a function to be executed on programmer shutdown.
 * The advantage over atexit() is that you can supply a void pointer which will
 * be used as parameter to the registered function upon programmer shutdown.
 * This pointer can point to arbitrary data used by said function, e.g. undo
 * information for GPIO settings etc. If unneeded, set data=NULL.
 * Please note that the first (void *data) belongs to the function signature of
 * the function passed as first parameter.
 */
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int register_shutdown(int (*function) (void *data), void *data)
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{
	if (shutdown_fn_count >= SHUTDOWN_MAXFN) {
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		msg_perr("Tried to register more than %i shutdown functions.\n",
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			 SHUTDOWN_MAXFN);
		return 1;
	}
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	if (!may_register_shutdown) {
		msg_perr("Tried to register a shutdown function before "
			 "programmer init.\n");
		return 1;
	}
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	shutdown_fn[shutdown_fn_count].func = function;
	shutdown_fn[shutdown_fn_count].data = data;
	shutdown_fn_count++;

	return 0;
}

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int programmer_init(enum programmer prog, char *param)
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{
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	int ret;
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	if (prog >= PROGRAMMER_INVALID) {
		msg_perr("Invalid programmer specified!\n");
		return -1;
	}
	programmer = prog;
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	/* Initialize all programmer specific data. */
	/* Default to unlimited decode sizes. */
	max_rom_decode = (const struct decode_sizes) {
		.parallel	= 0xffffffff,
		.lpc		= 0xffffffff,
		.fwh		= 0xffffffff,
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		.spi		= 0xffffffff,
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	};
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	buses_supported = BUS_NONE;
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	/* Default to top aligned flash at 4 GB. */
	flashbase = 0;
	/* Registering shutdown functions is now allowed. */
	may_register_shutdown = 1;
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	/* Default to allowing writes. Broken programmers set this to 0. */
	programmer_may_write = 1;
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	programmer_param = param;
	msg_pdbg("Initializing %s programmer\n",
		 programmer_table[programmer].name);
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	ret = programmer_table[programmer].init();
	if (programmer_param && strlen(programmer_param)) {
		msg_perr("Unhandled programmer parameters: %s\n",
			 programmer_param);
		/* Do not error out here, the init itself was successful. */
	}
	return ret;
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}

int programmer_shutdown(void)
{
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	int ret = 0;

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	/* Registering shutdown functions is no longer allowed. */
	may_register_shutdown = 0;
	while (shutdown_fn_count > 0) {
		int i = --shutdown_fn_count;
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		ret |= shutdown_fn[i].func(shutdown_fn[i].data);
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	}
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	return ret;
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}

void *programmer_map_flash_region(const char *descr, unsigned long phys_addr,
				  size_t len)
{
	return programmer_table[programmer].map_flash_region(descr,
							     phys_addr, len);
}

void programmer_unmap_flash_region(void *virt_addr, size_t len)
{
	programmer_table[programmer].unmap_flash_region(virt_addr, len);
}

void chip_writeb(uint8_t val, chipaddr addr)
{
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	par_programmer->chip_writeb(val, addr);
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}

void chip_writew(uint16_t val, chipaddr addr)
{
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	par_programmer->chip_writew(val, addr);
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}

void chip_writel(uint32_t val, chipaddr addr)
{
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	par_programmer->chip_writel(val, addr);
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}

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void chip_writen(uint8_t *buf, chipaddr addr, size_t len)
{
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	par_programmer->chip_writen(buf, addr, len);
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}

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uint8_t chip_readb(const chipaddr addr)
{
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	return par_programmer->chip_readb(addr);
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}

uint16_t chip_readw(const chipaddr addr)
{
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	return par_programmer->chip_readw(addr);
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}

uint32_t chip_readl(const chipaddr addr)
{
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	return par_programmer->chip_readl(addr);
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}

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void chip_readn(uint8_t *buf, chipaddr addr, size_t len)
{
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	par_programmer->chip_readn(buf, addr, len);
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}

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void programmer_delay(int usecs)
{
	programmer_table[programmer].delay(usecs);
}

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void map_flash_registers(struct flashchip *flash)
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{
	size_t size = flash->total_size * 1024;
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	/* Flash registers live 4 MByte below the flash. */
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	/* FIXME: This is incorrect for nonstandard flashbase. */
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	flash->virtual_registers = (chipaddr)programmer_map_flash_region("flash chip registers", (0xFFFFFFFF - 0x400000 - size + 1), size);
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}

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int read_memmapped(struct flashchip *flash, uint8_t *buf, unsigned int start, int unsigned len)
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{
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	chip_readn(buf, flash->virtual_memory + start, len);
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	return 0;
}

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int min(int a, int b)
{
	return (a < b) ? a : b;
}

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int max(int a, int b)
{
	return (a > b) ? a : b;
}

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int bitcount(unsigned long a)
{
	int i = 0;
	for (; a != 0; a >>= 1)
		if (a & 1)
			i++;
	return i;
}

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void tolower_string(char *str)
{
	for (; *str != '\0'; str++)
		*str = (char)tolower((unsigned char)*str);
}

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char *strcat_realloc(char *dest, const char *src)
{
	dest = realloc(dest, strlen(dest) + strlen(src) + 1);
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	if (!dest) {
		msg_gerr("Out of memory!\n");
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		return NULL;
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	}
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	strcat(dest, src);
	return dest;
}

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/* This is a somewhat hacked function similar in some ways to strtok().
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 * It will look for needle with a subsequent '=' in haystack, return a copy of
 * needle and remove everything from the first occurrence of needle to the next
 * delimiter from haystack.
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 */
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char *extract_param(char **haystack, const char *needle, const char *delim)
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{
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	char *param_pos, *opt_pos, *rest;
	char *opt = NULL;
	int optlen;
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	int needlelen;
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	needlelen = strlen(needle);
	if (!needlelen) {
		msg_gerr("%s: empty needle! Please report a bug at "
			 "flashrom@flashrom.org\n", __func__);
		return NULL;
	}
	/* No programmer parameters given. */
	if (*haystack == NULL)
		return NULL;
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	param_pos = strstr(*haystack, needle);
	do {
		if (!param_pos)
			return NULL;
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		/* Needle followed by '='? */
		if (param_pos[needlelen] == '=') {
			
			/* Beginning of the string? */
			if (param_pos == *haystack)
				break;
			/* After a delimiter? */
			if (strchr(delim, *(param_pos - 1)))
				break;
		}
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		/* Continue searching. */
		param_pos++;
		param_pos = strstr(param_pos, needle);
	} while (1);
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	if (param_pos) {
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		/* Get the string after needle and '='. */
		opt_pos = param_pos + needlelen + 1;
		optlen = strcspn(opt_pos, delim);
		/* Return an empty string if the parameter was empty. */
		opt = malloc(optlen + 1);
		if (!opt) {
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			msg_gerr("Out of memory!\n");
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			exit(1);
		}
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		strncpy(opt, opt_pos, optlen);
		opt[optlen] = '\0';
		rest = opt_pos + optlen;
		/* Skip all delimiters after the current parameter. */
		rest += strspn(rest, delim);
		memmove(param_pos, rest, strlen(rest) + 1);
		/* We could shrink haystack, but the effort is not worth it. */
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	}

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	return opt;
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}

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char *extract_programmer_param(const char *param_name)
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{
	return extract_param(&programmer_param, param_name, ",");
}

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/* Returns the number of well-defined erasers for a chip. */
static unsigned int count_usable_erasers(const struct flashchip *flash)
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{
	unsigned int usable_erasefunctions = 0;
	int k;
	for (k = 0; k < NUM_ERASEFUNCTIONS; k++) {
		if (!check_block_eraser(flash, k, 0))
			usable_erasefunctions++;
	}
	return usable_erasefunctions;
}

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/* start is an offset to the base address of the flash chip */
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int check_erased_range(struct flashchip *flash, unsigned int start, unsigned int len)
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{
	int ret;
	uint8_t *cmpbuf = malloc(len);

	if (!cmpbuf) {
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		msg_gerr("Could not allocate memory!\n");
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		exit(1);
	}
	memset(cmpbuf, 0xff, len);
	ret = verify_range(flash, cmpbuf, start, len, "ERASE");
	free(cmpbuf);
	return ret;
}

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/*
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 * @cmpbuf	buffer to compare against, cmpbuf[0] is expected to match the
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 *		flash content at location start
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 * @start	offset to the base address of the flash chip
 * @len		length of the verified area
 * @message	string to print in the "FAILED" message
 * @return	0 for success, -1 for failure
 */
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int verify_range(struct flashchip *flash, uint8_t *cmpbuf, unsigned int start, unsigned int len,
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		 const char *message)
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{
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	unsigned int i;
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	uint8_t *readbuf = malloc(len);
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	int ret = 0, failcount = 0;
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	if (!len)
		goto out_free;

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	if (!flash->read) {
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		msg_cerr("ERROR: flashrom has no read function for this flash chip.\n");
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		return 1;
	}
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	if (!readbuf) {
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		msg_gerr("Could not allocate memory!\n");
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		exit(1);
	}

	if (start + len > flash->total_size * 1024) {
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		msg_gerr("Error: %s called with start 0x%x + len 0x%x >"
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			" total_size 0x%x\n", __func__, start, len,
			flash->total_size * 1024);
		ret = -1;
		goto out_free;
	}
	if (!message)
		message = "VERIFY";
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	ret = flash->read(flash, readbuf, start, len);
	if (ret) {
		msg_gerr("Verification impossible because read failed "
			 "at 0x%x (len 0x%x)\n", start, len);
		return ret;
	}

	for (i = 0; i < len; i++) {
		if (cmpbuf[i] != readbuf[i]) {
			/* Only print the first failure. */
			if (!failcount++)
				msg_cerr("%s FAILED at 0x%08x! "
					 "Expected=0x%02x, Read=0x%02x,",
					 message, start + i, cmpbuf[i],
					 readbuf[i]);
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		}
	}
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	if (failcount) {
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		msg_cerr(" failed byte count from 0x%08x-0x%08x: 0x%x\n",
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			 start, start + len - 1, failcount);
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		ret = -1;
	}
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out_free:
	free(readbuf);
	return ret;
}

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/*
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 * Check if the buffer @have can be programmed to the content of @want without
 * erasing. This is only possible if all chunks of size @gran are either kept
 * as-is or changed from an all-ones state to any other state.
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 *
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 * The following write granularities (enum @gran) are known:
 * - 1 bit. Each bit can be cleared individually.
 * - 1 byte. A byte can be written once. Further writes to an already written
 *   byte cause the contents to be either undefined or to stay unchanged.
 * - 128 bytes. If less than 128 bytes are written, the rest will be
 *   erased. Each write to a 128-byte region will trigger an automatic erase
 *   before anything is written. Very uncommon behaviour and unsupported by
 *   this function.
 * - 256 bytes. If less than 256 bytes are written, the contents of the
 *   unwritten bytes are undefined.
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 * Warning: This function assumes that @have and @want point to naturally
 * aligned regions.
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 *
 * @have        buffer with current content
 * @want        buffer with desired content
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 * @len		length of the checked area
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 * @gran	write granularity (enum, not count)
 * @return      0 if no erase is needed, 1 otherwise
 */
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int need_erase(uint8_t *have, uint8_t *want, unsigned int len, enum write_granularity gran)
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{
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	int result = 0;
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	unsigned int i, j, limit;
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	switch (gran) {
	case write_gran_1bit:
		for (i = 0; i < len; i++)
			if ((have[i] & want[i]) != want[i]) {
				result = 1;
				break;
			}
		break;
	case write_gran_1byte:
		for (i = 0; i < len; i++)
			if ((have[i] != want[i]) && (have[i] != 0xff)) {
				result = 1;
				break;
			}
		break;
	case write_gran_256bytes:
		for (j = 0; j < len / 256; j++) {
			limit = min (256, len - j * 256);
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			/* Are 'have' and 'want' identical? */
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			if (!memcmp(have + j * 256, want + j * 256, limit))
				continue;
			/* have needs to be in erased state. */
			for (i = 0; i < limit; i++)
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				if (have[j * 256 + i] != 0xff) {
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					result = 1;
					break;
				}
			if (result)
				break;
		}
		break;
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	default:
		msg_cerr("%s: Unsupported granularity! Please report a bug at "
			 "flashrom@flashrom.org\n", __func__);
	}
	return result;
}

/**
 * Check if the buffer @have needs to be programmed to get the content of @want.
 * If yes, return 1 and fill in first_start with the start address of the
 * write operation and first_len with the length of the first to-be-written
 * chunk. If not, return 0 and leave first_start and first_len undefined.
 *
 * Warning: This function assumes that @have and @want point to naturally
 * aligned regions.
 *
 * @have	buffer with current content
 * @want	buffer with desired content
 * @len		length of the checked area
 * @gran	write granularity (enum, not count)
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 * @first_start	offset of the first byte which needs to be written (passed in
 *		value is increased by the offset of the first needed write
 *		relative to have/want or unchanged if no write is needed)
 * @return	length of the first contiguous area which needs to be written
 *		0 if no write is needed
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 *
 * FIXME: This function needs a parameter which tells it about coalescing
 * in relation to the max write length of the programmer and the max write
 * length of the chip.
 */
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static unsigned int get_next_write(uint8_t *have, uint8_t *want, unsigned int len,
			  unsigned int *first_start,
			  enum write_granularity gran)
711
{
712 713 714
	int need_write = 0;
	unsigned int rel_start = 0, first_len = 0;
	unsigned int i, limit, stride;
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	switch (gran) {
	case write_gran_1bit:
	case write_gran_1byte:
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		stride = 1;
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		break;
	case write_gran_256bytes:
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		stride = 256;
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		break;
	default:
		msg_cerr("%s: Unsupported granularity! Please report a bug at "
			 "flashrom@flashrom.org\n", __func__);
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		/* Claim that no write was needed. A write with unknown
		 * granularity is too dangerous to try.
		 */
		return 0;
731
	}
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	for (i = 0; i < len / stride; i++) {
		limit = min(stride, len - i * stride);
		/* Are 'have' and 'want' identical? */
		if (memcmp(have + i * stride, want + i * stride, limit)) {
			if (!need_write) {
				/* First location where have and want differ. */
				need_write = 1;
				rel_start = i * stride;
			}
		} else {
			if (need_write) {
				/* First location where have and want
				 * do not differ anymore.
				 */
				break;
			}
		}
	}
750
	if (need_write)
751
		first_len = min(i * stride - rel_start, len);
752
	*first_start += rel_start;
753
	return first_len;
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}

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/* This function generates various test patterns useful for testing controller
 * and chip communication as well as chip behaviour.
 *
 * If a byte can be written multiple times, each time keeping 0-bits at 0
 * and changing 1-bits to 0 if the new value for that bit is 0, the effect
 * is essentially an AND operation. That's also the reason why this function
 * provides the result of AND between various patterns.
 *
 * Below is a list of patterns (and their block length).
 * Pattern 0 is 05 15 25 35 45 55 65 75 85 95 a5 b5 c5 d5 e5 f5 (16 Bytes)
 * Pattern 1 is 0a 1a 2a 3a 4a 5a 6a 7a 8a 9a aa ba ca da ea fa (16 Bytes)
 * Pattern 2 is 50 51 52 53 54 55 56 57 58 59 5a 5b 5c 5d 5e 5f (16 Bytes)
 * Pattern 3 is a0 a1 a2 a3 a4 a5 a6 a7 a8 a9 aa ab ac ad ae af (16 Bytes)
 * Pattern 4 is 00 10 20 30 40 50 60 70 80 90 a0 b0 c0 d0 e0 f0 (16 Bytes)
 * Pattern 5 is 00 01 02 03 04 05 06 07 08 09 0a 0b 0c 0d 0e 0f (16 Bytes)
 * Pattern 6 is 00 (1 Byte)
 * Pattern 7 is ff (1 Byte)
 * Patterns 0-7 have a big-endian block number in the last 2 bytes of each 256
 * byte block.
 *
 * Pattern 8 is 00 01 02 03 04 05 06 07 08 09 0a 0b 0c 0d 0e 0f 10 11... (256 B)
 * Pattern 9 is ff fe fd fc fb fa f9 f8 f7 f6 f5 f4 f3 f2 f1 f0 ef ee... (256 B)
 * Pattern 10 is 00 00 00 01 00 02 00 03 00 04... (128 kB big-endian counter)
 * Pattern 11 is ff ff ff fe ff fd ff fc ff fb... (128 kB big-endian downwards)
 * Pattern 12 is 00 (1 Byte)
 * Pattern 13 is ff (1 Byte)
 * Patterns 8-13 have no block number.
 *
 * Patterns 0-3 are created to detect and efficiently diagnose communication
 * slips like missed bits or bytes and their repetitive nature gives good visual
 * cues to the person inspecting the results. In addition, the following holds:
 * AND Pattern 0/1 == Pattern 4
 * AND Pattern 2/3 == Pattern 5
 * AND Pattern 0/1/2/3 == AND Pattern 4/5 == Pattern 6
 * A weakness of pattern 0-5 is the inability to detect swaps/copies between
 * any two 16-byte blocks except for the last 16-byte block in a 256-byte bloc.
 * They work perfectly for detecting any swaps/aliasing of blocks >= 256 bytes.
 * 0x5 and 0xa were picked because they are 0101 and 1010 binary.
 * Patterns 8-9 are best for detecting swaps/aliasing of blocks < 256 bytes.
 * Besides that, they provide for bit testing of the last two bytes of every
 * 256 byte block which contains the block number for patterns 0-6.
 * Patterns 10-11 are special purpose for detecting subblock aliasing with
 * block sizes >256 bytes (some Dataflash chips etc.)
 * AND Pattern 8/9 == Pattern 12
 * AND Pattern 10/11 == Pattern 12
 * Pattern 13 is the completely erased state.
 * None of the patterns can detect aliasing at boundaries which are a multiple
 * of 16 MBytes (but such chips do not exist anyway for Parallel/LPC/FWH/SPI).
 */
int generate_testpattern(uint8_t *buf, uint32_t size, int variant)
{
	int i;

	if (!buf) {
810
		msg_gerr("Invalid buffer!\n");
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		return 1;
	}

	switch (variant) {
	case 0:
		for (i = 0; i < size; i++)
			buf[i] = (i & 0xf) << 4 | 0x5;
		break;
	case 1:
		for (i = 0; i < size; i++)
			buf[i] = (i & 0xf) << 4 | 0xa;
		break;
	case 2:
		for (i = 0; i < size; i++)
			buf[i] = 0x50 | (i & 0xf);
		break;
	case 3:
		for (i = 0; i < size; i++)
			buf[i] = 0xa0 | (i & 0xf);
		break;
	case 4:
		for (i = 0; i < size; i++)
			buf[i] = (i & 0xf) << 4;
		break;
	case 5:
		for (i = 0; i < size; i++)
			buf[i] = i & 0xf;
		break;
	case 6:
		memset(buf, 0x00, size);
		break;
	case 7:
		memset(buf, 0xff, size);
		break;
	case 8:
		for (i = 0; i < size; i++)
			buf[i] = i & 0xff;
		break;
	case 9:
		for (i = 0; i < size; i++)
			buf[i] = ~(i & 0xff);
		break;
	case 10:
		for (i = 0; i < size % 2; i++) {
			buf[i * 2] = (i >> 8) & 0xff;
			buf[i * 2 + 1] = i & 0xff;
		}
		if (size & 0x1)
			buf[i * 2] = (i >> 8) & 0xff;
		break;
	case 11:
		for (i = 0; i < size % 2; i++) {
			buf[i * 2] = ~((i >> 8) & 0xff);
			buf[i * 2 + 1] = ~(i & 0xff);
		}
		if (size & 0x1)
			buf[i * 2] = ~((i >> 8) & 0xff);
		break;
	case 12:
		memset(buf, 0x00, size);
		break;
	case 13:
		memset(buf, 0xff, size);
		break;
	}

	if ((variant >= 0) && (variant <= 7)) {
		/* Write block number in the last two bytes of each 256-byte
		 * block, big endian for easier reading of the hexdump.
		 * Note that this wraps around for chips larger than 2^24 bytes
		 * (16 MB).
		 */
		for (i = 0; i < size / 256; i++) {
			buf[i * 256 + 254] = (i >> 8) & 0xff;
			buf[i * 256 + 255] = i & 0xff;
		}
	}

	return 0;
}

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int check_max_decode(enum chipbustype buses, uint32_t size)
{
	int limitexceeded = 0;
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	if ((buses & BUS_PARALLEL) && (max_rom_decode.parallel < size)) {
897
		limitexceeded++;
898
		msg_pdbg("Chip size %u kB is bigger than supported "
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			 "size %u kB of chipset/board/programmer "
			 "for %s interface, "
			 "probe/read/erase/write may fail. ", size / 1024,
			 max_rom_decode.parallel / 1024, "Parallel");
903
	}
904
	if ((buses & BUS_LPC) && (max_rom_decode.lpc < size)) {
905
		limitexceeded++;
906
		msg_pdbg("Chip size %u kB is bigger than supported "
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			 "size %u kB of chipset/board/programmer "
			 "for %s interface, "
			 "probe/read/erase/write may fail. ", size / 1024,
			 max_rom_decode.lpc / 1024, "LPC");
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	}
912
	if ((buses & BUS_FWH) && (max_rom_decode.fwh < size)) {
913
		limitexceeded++;
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		msg_pdbg("Chip size %u kB is bigger than supported "
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			 "size %u kB of chipset/board/programmer "
			 "for %s interface, "
			 "probe/read/erase/write may fail. ", size / 1024,
			 max_rom_decode.fwh / 1024, "FWH");
919
	}
920
	if ((buses & BUS_SPI) && (max_rom_decode.spi < size)) {
921
		limitexceeded++;
922
		msg_pdbg("Chip size %u kB is bigger than supported "
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			 "size %u kB of chipset/board/programmer "
			 "for %s interface, "
			 "probe/read/erase/write may fail. ", size / 1024,
			 max_rom_decode.spi / 1024, "SPI");
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	}
	if (!limitexceeded)
		return 0;
	/* Sometimes chip and programmer have more than one bus in common,
	 * and the limit is not exceeded on all buses. Tell the user.
	 */
	if (bitcount(buses) > limitexceeded)
934
		/* FIXME: This message is designed towards CLI users. */
935
		msg_pdbg("There is at least one common chip/programmer "
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			 "interface which can support a chip of this size. "
			 "You can try --force at your own risk.\n");
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	return 1;
}

941
int probe_flash(int startchip, struct flashchip *fill_flash, int force)
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942
{
943
	const struct flashchip *flash;
944
	unsigned long base = 0;
945
	char location[64];
946 947
	uint32_t size;
	enum chipbustype buses_common;
948
	char *tmp;
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949

950
	for (flash = flashchips + startchip; flash && flash->name; flash++) {
951
		if (chip_to_probe && strcmp(flash->name, chip_to_probe) != 0)
952
			continue;
953 954
		buses_common = buses_supported & flash->bustype;
		if (!buses_common) {
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			msg_gspew("Probing for %s %s, %d kB: skipped. ",
			         flash->vendor, flash->name, flash->total_size);
957
			tmp = flashbuses_to_text(buses_supported);
958
			msg_gspew("Host bus type %s ", tmp);
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			free(tmp);
			tmp = flashbuses_to_text(flash->bustype);
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			msg_gspew("and chip bus type %s are incompatible.",
				  tmp);
963
			free(tmp);
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			msg_gspew("\n");
			continue;
		}
		msg_gdbg("Probing for %s %s, %d kB: ",
			     flash->vendor, flash->name, flash->total_size);
		if (!flash->probe && !force) {
			msg_gdbg("failed! flashrom has no probe function for "
				 "this flash chip.\n");
972 973
			continue;
		}
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975
		size = flash->total_size * 1024;
976
		check_max_decode(buses_common, size);
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977

978 979 980
		/* Start filling in the dynamic data. */
		*fill_flash = *flash;

981
		base = flashbase ? flashbase : (0xffffffff - size + 1);
982
		fill_flash->virtual_memory = (chipaddr)programmer_map_flash_region("flash chip", base, size);
983

984 985 986
		if (force)
			break;

987
		if (fill_flash->probe(fill_flash) != 1)
988 989
			goto notfound;

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		/* If this is the first chip found, accept it.
		 * If this is not the first chip found, accept it only if it is
		 * a non-generic match.
		 * We could either make chipcount global or provide it as
		 * parameter, or we assume that startchip==0 means this call to
		 * probe_flash() is the first one and thus no chip has been
		 * found before.
		 */
		if (startchip == 0 || fill_flash->model_id != GENERIC_DEVICE_ID)
999
			break;
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1001
notfound:
1002
		programmer_unmap_flash_region((void *)fill_flash->virtual_memory, size);
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	}
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1004

1005
	if (!flash || !flash->name)
1006
		return -1;
1007

1008 1009
#if CONFIG_INTERNAL == 1
	if (programmer_table[programmer].map_flash_region == physmap)
1010
		snprintf(location, sizeof(location), "at physical address 0x%lx", base);
1011 1012
	else
#endif
1013 1014
		snprintf(location, sizeof(location), "on %s", programmer_table[programmer].name);

1015
	tmp = flashbuses_to_text(flash->bustype);
1016
	msg_cinfo("%s %s flash chip \"%s\" (%d kB, %s) %s.\n",
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		  force ? "Assuming" : "Found", fill_flash->vendor,
		  fill_flash->name, fill_flash->total_size, tmp, location);
	free(tmp);
1020

1021 1022 1023 1024
	/* Flash registers will not be mapped if the chip was forced. Lock info
	 * may be stored in registers, so avoid lock info printing.
	 */
	if (!force)
1025 1026
		if (fill_flash->printlock)
			fill_flash->printlock(fill_flash);
1027

1028 1029
	/* Return position of matching chip. */
	return flash - flashchips;
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}

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1032
int verify_flash(struct flashchip *flash, uint8_t *buf)
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{
1034
	int ret;
1035
	unsigned int total_size = flash->total_size * 1024;
1036

1037
	msg_cinfo("Verifying flash... ");
1038

1039
	ret = verify_range(flash, buf, 0, total_size, NULL);
1040

1041
	if (!ret)
1042
		msg_cinfo("VERIFIED.          \n");
1043

1044
	return ret;
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1045 1046
}

1047 1048
int read_buf_from_file(unsigned char *buf, unsigned long size,
		       const char *filename)
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1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080
{
	unsigned long numbytes;
	FILE *image;
	struct stat image_stat;

	if ((image = fopen(filename, "rb")) == NULL) {
		perror(filename);
		return 1;
	}
	if (fstat(fileno(image), &image_stat) != 0) {
		perror(filename);
		fclose(image);
		return 1;
	}
	if (image_stat.st_size != size) {
		msg_gerr("Error: Image size doesn't match\n");
		fclose(image);
		return 1;
	}
	numbytes = fread(buf, 1, size, image);
	if (fclose(image)) {
		perror(filename);
		return 1;
	}
	if (numbytes != size) {
		msg_gerr("Error: Failed to read complete file. Got %ld bytes, "
			 "wanted %ld!\n", numbytes, size);
		return 1;
	}
	return 0;
}

1081 1082
int write_buf_to_file(unsigned char *buf, unsigned long size,
		      const char *filename)
1083 1084 1085
{
	unsigned long numbytes;
	FILE *image;
1086 1087

	if (!filename) {
1088
		msg_gerr("No filename specified.\n");
1089 1090
		return 1;
	}
1091
	if ((image = fopen(filename, "wb")) == NULL) {
1092
		perror(filename);
1093
		return 1;
1094
	}
1095 1096 1097

	numbytes = fwrite(buf, 1, size, image);
	fclose(image);
1098 1099 1100
	if (numbytes != size) {
		msg_gerr("File %s could not be written completely.\n",
			 filename);
1101
		return 1;
1102
	}
1103 1104 1105
	return 0;
}

1106
int read_flash_to_file(struct flashchip *flash, const char *filename)
1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128
{
	unsigned long size = flash->total_size * 1024;
	unsigned char *buf = calloc(size, sizeof(char));
	int ret = 0;

	msg_cinfo("Reading flash... ");
	if (!buf) {
		msg_gerr("Memory allocation failed!\n");
		msg_cinfo("FAILED.\n");
		return 1;
	}
	if (!flash->read) {
		msg_cerr("No read function available for this flash chip.\n");
		ret = 1;
		goto out_free;
	}
	if (flash->read(flash, buf, 0, size)) {
		msg_cerr("Read operation failed!\n");
		ret = 1;
		goto out_free;
	}

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1129
	ret = write_buf_to_file(buf, size, filename);
1130 1131 1132 1133 1134 1135
out_free:
	free(buf);
	msg_cinfo("%s.\n", ret ? "FAILED" : "done");
	return ret;
}

1136 1137
/* This function shares a lot of its structure with erase_and_write_flash() and
 * walk_eraseregions().
1138 1139
 * Even if an error is found, the function will keep going and check the rest.
 */
1140
static int selfcheck_eraseblocks(const struct flashchip *flash)
1141
{
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1142 1143
	int i, j, k;
	int ret = 0;
1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156

	for (k = 0; k < NUM_ERASEFUNCTIONS; k++) {
		unsigned int done = 0;
		struct block_eraser eraser = flash->block_erasers[k];

		for (i = 0; i < NUM_ERASEREGIONS; i++) {
			/* Blocks with zero size are bugs in flashchips.c. */
			if (eraser.eraseblocks[i].count &&
			    !eraser.eraseblocks[i].size) {
				msg_gerr("ERROR: Flash chip %s erase function "
					"%i region %i has size 0. Please report"
					" a bug at flashrom@flashrom.org\n",
					flash->name, k, i);
1157
				ret = 1;
1158 1159 1160 1161 1162 1163 1164 1165
			}
			/* Blocks with zero count are bugs in flashchips.c. */
			if (!eraser.eraseblocks[i].count &&
			    eraser.eraseblocks[i].size) {
				msg_gerr("ERROR: Flash chip %s erase function "
					"%i region %i has count 0. Please report"
					" a bug at flashrom@flashrom.org\n",
					flash->name, k, i);
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				ret = 1;
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			}
			done += eraser.eraseblocks[i].count *
				eraser.eraseblocks[i].size;
		}
1171 1172
		/* Empty eraseblock definition with erase function.  */
		if (!done && eraser.block_erase)
1173
			msg_gspew("Strange: Empty eraseblock definition with "
1174
				  "non-empty erase function. Not an error.\n");
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		if (!done)
			continue;
		if (done != flash->total_size * 1024) {
			msg_gerr("ERROR: Flash chip %s erase function %i "
				"region walking resulted in 0x%06x bytes total,"
				" expected 0x%06x bytes. Please report a bug at"
				" flashrom@flashrom.org\n", flash->name, k,
				done, flash->total_size * 1024);
1183
			ret = 1;
1184
		}
1185 1186 1187 1188 1189 1190
		if (!eraser.block_erase)
			continue;
		/* Check if there are identical erase functions for different
		 * layouts. That would imply "magic" erase functions. The
		 * easiest way to check this is with function pointers.
		 */
1191
		for (j = k + 1; j < NUM_ERASEFUNCTIONS; j++) {
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			if (eraser.block_erase ==
			    flash->block_erasers[j].block_erase) {
				msg_gerr("ERROR: Flash chip %s erase function "
					"%i and %i are identical. Please report"
					" a bug at flashrom@flashrom.org\n",
					flash->name, k, j);
				ret = 1;
			}
1200
		}
1201
	}
1202
	return ret;
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}

1205 1206
static int erase_and_write_block_helper(struct flashchip *flash,
					unsigned int start, unsigned int len,
1207
					uint8_t *curcontents,
1208 1209 1210 1211 1212
					uint8_t *newcontents,
					int (*erasefn) (struct flashchip *flash,
							unsigned int addr,
							unsigned int len))
{
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	unsigned int starthere = 0, lenhere = 0;
	int ret = 0, skip = 1, writecount = 0;
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	enum write_granularity gran = write_gran_256bytes; /* FIXME */

1217
	/* curcontents and newcontents are opaque to walk_eraseregions, and
1218 1219
	 * need to be adjusted here to keep the impression of proper abstraction
	 */
1220
	curcontents += start;
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	newcontents += start;
	msg_cdbg(":");
	/* FIXME: Assume 256 byte granularity for now to play it safe. */
1224
	if (need_erase(curcontents, newcontents, len, gran)) {
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		msg_cdbg("E");
		ret = erasefn(flash, start, len);
		if (ret)
			return ret;
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		if (check_erased_range(flash, start, len)) {
			msg_cerr("ERASE FAILED!\n");
			return -1;
		}
1233 1234
		/* Erase was successful. Adjust curcontents. */
		memset(curcontents, 0xff, len);
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		skip = 0;
	}
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	/* get_next_write() sets starthere to a new value after the call. */
	while ((lenhere = get_next_write(curcontents + starthere,
					 newcontents + starthere,
					 len - starthere, &starthere, gran))) {
1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255
		if (!writecount++)
			msg_cdbg("W");
		/* Needs the partial write function signature. */
		ret = flash->write(flash, newcontents + starthere,
				   start + starthere, lenhere);
		if (ret)
			return ret;
		starthere += lenhere;
		skip = 0;
	}
	if (skip)
		msg_cdbg("S");
	return ret;
}

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static int walk_eraseregions(struct flashchip *flash, int erasefunction,
			     int (*do_something) (struct flashchip *flash,
						  unsigned int addr,
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						  unsigned int len,
						  uint8_t *param1,
						  uint8_t *param2,
						  int (*erasefn) (
							struct flashchip *flash,
							unsigned int addr,
							unsigned int len)),
			     void *param1, void *param2)
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{
	int i, j;
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	unsigned int start = 0;
	unsigned int len;
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	struct block_eraser eraser = flash->block_erasers[erasefunction];
1272

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	for (i = 0; i < NUM_ERASEREGIONS; i++) {
		/* count==0 for all automatically initialized array
		 * members so the loop below won't be executed for them.
		 */
		len = eraser.eraseblocks[i].size;
		for (j = 0; j < eraser.eraseblocks[i].count; j++) {
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			/* Print this for every block except the first one. */
			if (i || j)
				msg_cdbg(", ");
			msg_cdbg("0x%06x-0x%06x", start,
1283
				     start + len - 1);
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			if (do_something(flash, start, len, param1, param2,
					 eraser.block_erase)) {
1286
				return 1;
1287
			}
1288 1289 1290
			start += len;
		}
	}
1291
	msg_cdbg("\n");
1292 1293 1294
	return 0;
}

1295
static int check_block_eraser(const struct flashchip *flash, int k, int log)
1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306
{
	struct block_eraser eraser = flash->block_erasers[k];

	if (!eraser.block_erase && !eraser.eraseblocks[0].count) {
		if (log)
			msg_cdbg("not defined. ");
		return 1;
	}
	if (!eraser.block_erase && eraser.eraseblocks[0].count) {
		if (log)
			msg_cdbg("eraseblock layout is known, but matching "
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1307
				 "block erase function is not implemented. ");
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		return 1;
	}
	if (eraser.block_erase && !eraser.eraseblocks[0].count) {
		if (log)
			msg_cdbg("block erase function found, but "
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1313
				 "eraseblock layout is not defined. ");
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		return 1;
	}
	return 0;
}

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int erase_and_write_flash(struct flashchip *flash, uint8_t *oldcontents,
			  uint8_t *newcontents)
1321
{
1322
	int k, ret = 1;
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	uint8_t *curcontents;
	unsigned long size = flash->total_size * 1024;
1325
	unsigned int usable_erasefunctions = count_usable_erasers(flash);
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	msg_cinfo("Erasing and writing flash chip... ");
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	curcontents = malloc(size);
	if (!curcontents) {
		msg_gerr("Out of memory!\n");
		exit(1);
	}
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	/* Copy oldcontents to curcontents to avoid clobbering oldcontents. */
	memcpy(curcontents, oldcontents, size);
1335 1336

	for (k = 0; k < NUM_ERASEFUNCTIONS; k++) {
1337 1338
		if (k != 0)
			msg_cdbg("Looking for another erase function.\n");
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		if (!usable_erasefunctions) {
			msg_cdbg("No usable erase functions left.\n");
			break;
		}
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		msg_cdbg("Trying erase function %i... ", k);
		if (check_block_eraser(flash, k, 1))
1345
			continue;
1346
		usable_erasefunctions--;
1347 1348
		ret = walk_eraseregions(flash, k, &erase_and_write_block_helper,
					curcontents, newcontents);
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		/* If everything is OK, don't try another erase function. */
		if (!ret)
			break;
1352
		/* Write/erase failed, so try to find out what the current chip
1353 1354
		 * contents are. If no usable erase functions remain, we can
		 * skip this: the next iteration will break immediately anyway.
1355
		 */
1356 1357
		if (!usable_erasefunctions)
			continue;
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		/* Reading the whole chip may take a while, inform the user even
		 * in non-verbose mode.
		 */
		msg_cinfo("Reading current flash chip contents... ");
1362 1363
		if (flash->read(flash, curcontents, 0, size)) {
			/* Now we are truly screwed. Read failed as well. */
1364
			msg_cerr("Can't read anymore! Aborting.\n");
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			/* We have no idea about the flash chip contents, so
			 * retrying with another erase function is pointless.
			 */
			break;
		}
1370
		msg_cinfo("done. ");
1371
	}
1372 1373
	/* Free the scratchpad. */
	free(curcontents);
1374

1375
	if (ret) {
1376
		msg_cerr("FAILED!\n");
1377
	} else {
1378
		msg_cinfo("Erase/write done.\n");
1379 1380
	}
	return ret;
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}

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void nonfatal_help_message(void)
{
	msg_gerr("Writing to the flash chip apparently didn't do anything.\n"
		"This means we have to add special support for your board, "
		  "programmer or flash chip.\n"
		"Please report this on IRC at irc.freenode.net (channel "
		  "#flashrom) or\n"
		"mail flashrom@flashrom.org!\n"
		"-------------------------------------------------------------"
		  "------------------\n"
		"You may now reboot or simply leave the machine running.\n");
}

1396
void emergency_help_message(void)
1397
{
1398
	msg_gerr("Your flash chip is in an unknown state.\n"
1399
		"Get help on IRC at irc.freenode.net (channel #flashrom) or\n"
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		"mail flashrom@flashrom.org with FAILED: your board name in "
		  "the subject line!\n"
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		"-------------------------------------------------------------"
		  "------------------\n"
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		"DO NOT REBOOT OR POWEROFF!\n");
}

1407
/* The way to go if you want a delimited list of programmers */
1408
void list_programmers(const char *delim)
1409 1410 1411
{
	enum programmer p;
	for (p = 0; p < PROGRAMMER_INVALID; p++) {
1412
		msg_ginfo("%s", programmer_table[p].name);
1413
		if (p < PROGRAMMER_INVALID - 1)
1414
			msg_ginfo("%s", delim);
1415
	}
1416
	msg_ginfo("\n");	
1417 1418
}

1419 1420 1421
void list_programmers_linebreak(int startcol, int cols, int paren)
{
	const char *pname;
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	int pnamelen;
	int remaining = 0, firstline = 1;
1424
	enum programmer p;
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	int i;
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	for (p = 0; p < PROGRAMMER_INVALID; p++) {
		pname = programmer_table[p].name;
		pnamelen = strlen(pname);
		if (remaining - pnamelen - 2 < 0) {
			if (firstline)
				firstline = 0;
			else
				printf("\n");
			for (i = 0; i < startcol; i++)
				printf(" ");
			remaining = cols - startcol;
		} else {
			printf(" ");
			remaining--;
		}
		if (paren && (p == 0)) {
			printf("(");
			remaining--;
		}
		printf("%s", pname);
		remaining -= pnamelen;
		if (p < PROGRAMMER_INVALID - 1) {
			printf(",");
			remaining--;
		} else {
			if (paren)
				printf(")");
			printf("\n");
		}
	}
}

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void print_sysinfo(void)
{
#if HAVE_UTSNAME == 1
	struct utsname osinfo;
	uname(&osinfo);

	msg_ginfo(" on %s %s (%s)", osinfo.sysname, osinfo.release,
		  osinfo.machine);
#else
	msg_ginfo(" on unknown machine");
#endif
	msg_ginfo(", built with");
#if NEED_PCI == 1
#ifdef PCILIB_VERSION
	msg_ginfo(" libpci %s,", PCILIB_VERSION);
#else
	msg_ginfo(" unknown PCI library,");
#endif
#endif
#ifdef __clang__
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	msg_ginfo(" LLVM Clang");
#ifdef __clang_version__
	msg_ginfo(" %s,", __clang_version__);
#else
	msg_ginfo(" unknown version (before r102686),");
#endif
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#elif defined(__GNUC__)
	msg_ginfo(" GCC");
#ifdef __VERSION__
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	msg_ginfo(" %s,", __VERSION__);
#else
	msg_ginfo(" unknown version,");
#endif
1492
#else
1493
	msg_ginfo(" unknown compiler,");
1494
#endif
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#if defined (__FLASHROM_LITTLE_ENDIAN__)
	msg_ginfo(" little endian");
1497
#else
1498
	msg_ginfo(" big endian");
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#endif
	msg_ginfo("\n");
}

1503 1504
void print_version(void)
{
1505
	msg_ginfo("flashrom v%s", flashrom_version);
1506
	print_sysinfo();
1507 1508
}

1509 1510 1511
void print_banner(void)
{
	msg_ginfo("flashrom is free software, get the source code at "
1512
		  "http://www.flashrom.org\n");
1513 1514 1515
	msg_ginfo("\n");
}

1516 1517
int selfcheck(void)
{
1518
	int ret = 0;
1519
	const struct flashchip *flash;
1520 1521 1522 1523

	/* Safety check. Instead of aborting after the first error, check
	 * if more errors exist.
	 */
1524
	if (ARRAY_SIZE(programmer_table) - 1 != PROGRAMMER_INVALID) {
1525
		msg_gerr("Programmer table miscompilation!\n");
1526
		ret = 1;
1527
	}
1528
	/* It would be favorable if we could also check for correct termination
1529
	 * of the following arrays, but we don't know their sizes in here...
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	 * For 'flashchips' we check the first element to be non-null. In the
	 * other cases there exist use cases where the first element can be
	 * null. */
	if (flashchips == NULL || flashchips[0].vendor == NULL) {
		msg_gerr("Flashchips table miscompilation!\n");
		ret = 1;
	}
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	for (flash = flashchips; flash && flash->name; flash++)
		if (selfcheck_eraseblocks(flash))
			ret = 1;
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#if CONFIG_INTERNAL == 1
	if (chipset_enables == NULL) {
		msg_gerr("Chipset enables table does not exist!\n");
		ret = 1;
	}
1546
	if (board_matches == NULL) {
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		msg_gerr("Board enables table does not exist!\n");
		ret = 1;
	}
	if (boards_known == NULL) {
		msg_gerr("Known boards table does not exist!\n");
		ret = 1;
	}
	if (laptops_known == NULL) {
		msg_gerr("Known laptops table does not exist!\n");
		ret = 1;
	}
1558
#endif
1559
	return ret;
1560 1561
}

1562
void check_chip_supported(const struct flashchip *flash)
1563 1564
{
	if (TEST_OK_MASK != (flash->tested & TEST_OK_MASK)) {
1565
		msg_cinfo("===\n");
1566
		if (flash->tested & TEST_BAD_MASK) {
1567
			msg_cinfo("This flash part has status NOT WORKING for operations:");
1568
			if (flash->tested & TEST_BAD_PROBE)
1569
				msg_cinfo(" PROBE");
1570
			if (flash->tested & TEST_BAD_READ)
1571
				msg_cinfo(" READ");
1572
			if (flash->tested & TEST_BAD_ERASE)
1573
				msg_cinfo(" ERASE");
1574
			if (flash->tested & TEST_BAD_WRITE)
1575 1576
				msg_cinfo(" WRITE");
			msg_cinfo("\n");
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		}
		if ((!(flash->tested & TEST_BAD_PROBE) && !(flash->tested & TEST_OK_PROBE)) ||
		    (!(flash->tested & TEST_BAD_READ) && !(flash->tested & TEST_OK_READ)) ||
		    (!(flash->tested & TEST_BAD_ERASE) && !(flash->tested & TEST_OK_ERASE)) ||
		    (!(flash->tested & TEST_BAD_WRITE) && !(flash->tested & TEST_OK_WRITE))) {
1582
			msg_cinfo("This flash part has status UNTESTED for operations:");
1583
			if (!(flash->tested & TEST_BAD_PROBE) && !(flash->tested & TEST_OK_PROBE))
1584
				msg_cinfo(" PROBE");
1585
			if (!(flash->tested & TEST_BAD_READ) && !(flash->tested & TEST_OK_READ))
1586
				msg_cinfo(" READ");
1587
			if (!(flash->tested & TEST_BAD_ERASE) && !(flash->tested & TEST_OK_ERASE))
1588
				msg_cinfo(" ERASE");
1589
			if (!(flash->tested & TEST_BAD_WRITE) && !(flash->tested & TEST_OK_WRITE))
1590 1591
				msg_cinfo(" WRITE");
			msg_cinfo("\n");
1592
		}
1593
		/* FIXME: This message is designed towards CLI users. */
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		msg_cinfo("The test status of this chip may have been updated "
			    "in the latest development\n"
			  "version of flashrom. If you are running the latest "
			    "development version,\n"
			  "please email a report to flashrom@flashrom.org if "
			    "any of the above operations\n"
			  "work correctly for you with this flash part. Please "
			    "include the flashrom\n"
			  "output with the additional -V option for all "
			    "operations you tested (-V, -Vr,\n"
			  "-Vw, -VE), and mention which mainboard or "
			    "programmer you tested.\n"
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			  "Please mention your board in the subject line. "
			    "Thanks for your help!\n");
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	}
}

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/* FIXME: This function signature needs to be improved once doit() has a better
 * function signature.
1613
 */
1614
int chip_safety_check(struct flashchip *flash, int force, int read_it, int write_it, int erase_it, int verify_it)
1615
{
1616 1617 1618 1619 1620 1621
	if (!programmer_may_write && (write_it || erase_it)) {
		msg_perr("Write/erase is not working yet on your programmer in "
			 "its current configuration.\n");
		/* --force is the wrong approach, but it's the best we can do
		 * until the generic programmer parameter parser is merged.
		 */
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1622
		if (!force)
1623
			return 1;
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1624
		msg_cerr("Continuing anyway.\n");
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	}

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	if (read_it || erase_it || write_it || verify_it) {
		/* Everything needs read. */
		if (flash->tested & TEST_BAD_READ) {
			msg_cerr("Read is not working on this chip. ");
			if (!force)
1632
				return 1;
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			msg_cerr("Continuing anyway.\n");
1634
		}
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		if (!flash->read) {
			msg_cerr("flashrom has no read function for this "
				 "flash chip.\n");
1638
			return 1;
1639
		}
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	}
	if (erase_it || write_it) {
		/* Write needs erase. */
1643
		if (flash->tested & TEST_BAD_ERASE) {
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			msg_cerr("Erase is not working on this chip. ");
			if (!force)
1646
				return 1;
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1647
			msg_cerr("Continuing anyway.\n");
1648
		}
1649
		if(count_usable_erasers(flash) == 0) {
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			msg_cerr("flashrom has no erase function for this "
				 "flash chip.\n");
			return 1;
		}
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	}
	if (write_it) {
1656
		if (flash->tested & TEST_BAD_WRITE) {
1657
			msg_cerr("Write is not working on this chip. ");
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1658
			if (!force)
1659
				return 1;
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1660
			msg_cerr("Continuing anyway.\n");
1661
		}
1662
		if (!flash->write) {
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			msg_cerr("flashrom has no write function for this "
				 "flash chip.\n");
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			return 1;
		}
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	}
	return 0;
}

/* This function signature is horrible. We need to design a better interface,
 * but right now it allows us to split off the CLI code.
 * Besides that, the function itself is a textbook example of abysmal code flow.
 */
1675
int doit(struct flashchip *flash, int force, const char *filename, int read_it, int write_it, int erase_it, int verify_it)
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{
1677 1678
	uint8_t *oldcontents;
	uint8_t *newcontents;
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1679
	int ret = 0;
1680
	unsigned long size = flash->total_size * 1024;
1681

1682
	if (chip_safety_check(flash, force, read_it, write_it, erase_it, verify_it)) {
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		msg_cerr("Aborting.\n");
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		ret = 1;
		goto out_nofree;
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	}

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	/* Given the existence of read locks, we want to unlock for read,
	 * erase and write.
	 */
	if (flash->unlock)
		flash->unlock(flash);

	if (read_it) {
		ret = read_flash_to_file(flash, filename);
1696
		goto out_nofree;
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1697
	}
1698

1699 1700 1701 1702 1703
	oldcontents = malloc(size);
	if (!oldcontents) {
		msg_gerr("Out of memory!\n");
		exit(1);
	}
1704 1705
	/* Assume worst case: All bits are 0. */
	memset(oldcontents, 0x00, size);
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	newcontents = malloc(size);
	if (!newcontents) {
		msg_gerr("Out of memory!\n");
		exit(1);
	}
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	/* Assume best case: All bits should be 1. */
	memset(newcontents, 0xff, size);
	/* Side effect of the assumptions above: Default write action is erase
	 * because newcontents looks like a completely erased chip, and
	 * oldcontents being completely 0x00 means we have to erase everything
	 * before we can write.
	 */

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	if (erase_it) {
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		/* FIXME: Do we really want the scary warning if erase failed?
		 * After all, after erase the chip is either blank or partially
		 * blank or it has the old contents. A blank chip won't boot,
		 * so if the user wanted erase and reboots afterwards, the user
		 * knows very well that booting won't work.
		 */
1726
		if (erase_and_write_flash(flash, oldcontents, newcontents)) {
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1727
			emergency_help_message();
1728
			ret = 1;
1729
		}
1730
		goto out;
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	}

	if (write_it || verify_it) {
1734
		if (read_buf_from_file(newcontents, size, filename)) {
1735 1736
			ret = 1;
			goto out;
1737 1738
		}

1739
#if CONFIG_INTERNAL == 1
1740 1741
		if (programmer == PROGRAMMER_INTERNAL)
			show_id(newcontents, size, force);
1742
#endif
1743
	}
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1744

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	/* Read the whole chip to be able to check whether regions need to be
	 * erased and to give better diagnostics in case write fails.
	 * The alternative would be to read only the regions which are to be
	 * preserved, but in that case we might perform unneeded erase which
	 * takes time as well.
	 */
1751
	msg_cinfo("Reading old flash chip contents... ");
1752
	if (flash->read(flash, oldcontents, 0, size)) {
1753
		ret = 1;
1754
		msg_cinfo("FAILED.\n");
1755
		goto out;
1756
	}
1757
	msg_cinfo("done.\n");
1758

1759 1760
	// This should be moved into each flash part's code to do it 
	// cleanly. This does the job.
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	handle_romentries(flash, oldcontents, newcontents);
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	// ////////////////////////////////////////////////////////////
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	if (write_it) {
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		if (erase_and_write_flash(flash, oldcontents, newcontents)) {
			msg_cerr("Uh oh. Erase/write failed. Checking if "
				 "anything changed.\n");
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			if (!flash->read(flash, newcontents, 0, size)) {
				if (!memcmp(oldcontents, newcontents, size)) {
					msg_cinfo("Good. It seems nothing was "
						  "changed.\n");
					nonfatal_help_message();
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					ret = 1;
					goto out;
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				}
			}
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			emergency_help_message();
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			ret = 1;
			goto out;
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		}
	}
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	if (verify_it) {
		/* Work around chips which need some time to calm down. */
		if (write_it)
			programmer_delay(1000*1000);
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		ret = verify_flash(flash, newcontents);
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		/* If we tried to write, and verification now fails, we
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		 * might have an emergency situation.
		 */
		if (ret && write_it)
			emergency_help_message();
	}
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out:
	free(oldcontents);
	free(newcontents);
out_nofree:
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	programmer_shutdown();
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Stefan Reinauer committed
1801
	return ret;
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Dammit  
Ronald G. Minnich committed
1802
}