jedec.c 13.7 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) 2006 Giampiero Giancipoli <gianci@email.it>
 * Copyright (C) 2006 coresystems GmbH <info@coresystems.de>
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 * Copyright (C) 2007 Carl-Daniel Hailfinger
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 * Copyright (C) 2009 Sean Nelson <audiohacked@gmail.com>
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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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 */

#include "flash.h"
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#include "chipdrivers.h"
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#define MAX_REFLASH_TRIES 0x10
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#define MASK_FULL 0xffff
#define MASK_2AA 0x7ff
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#define MASK_AAA 0xfff
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/* Check one byte for odd parity */
uint8_t oddparity(uint8_t val)
{
	val = (val ^ (val >> 4)) & 0xf;
	val = (val ^ (val >> 2)) & 0x3;
	return (val ^ (val >> 1)) & 0x1;
}

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static void toggle_ready_jedec_common(chipaddr dst, int delay)
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{
	unsigned int i = 0;
	uint8_t tmp1, tmp2;

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	tmp1 = chip_readb(dst) & 0x40;
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	while (i++ < 0xFFFFFFF) {
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		if (delay)
			programmer_delay(delay);
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		tmp2 = chip_readb(dst) & 0x40;
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		if (tmp1 == tmp2) {
			break;
		}
		tmp1 = tmp2;
	}
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	if (i > 0x100000)
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		msg_cdbg("%s: excessive loops, i=0x%x\n", __func__, i);
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}

void toggle_ready_jedec(chipaddr dst)
{
	toggle_ready_jedec_common(dst, 0);
}

/* Some chips require a minimum delay between toggle bit reads.
 * The Winbond W39V040C wants 50 ms between reads on sector erase toggle,
 * but experiments show that 2 ms are already enough. Pick a safety factor
 * of 4 and use an 8 ms delay.
 * Given that erase is slow on all chips, it is recommended to use 
 * toggle_ready_jedec_slow in erase functions.
 */
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static void toggle_ready_jedec_slow(chipaddr dst)
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{
	toggle_ready_jedec_common(dst, 8 * 1000);
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}

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void data_polling_jedec(chipaddr dst, uint8_t data)
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{
	unsigned int i = 0;
	uint8_t tmp;

	data &= 0x80;

	while (i++ < 0xFFFFFFF) {
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		tmp = chip_readb(dst) & 0x80;
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		if (tmp == data) {
			break;
		}
	}
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	if (i > 0x100000)
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		msg_cdbg("%s: excessive loops, i=0x%x\n", __func__, i);
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}

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static int getaddrmask(struct flashchip *flash)
{
	switch (flash->feature_bits & FEATURE_ADDR_MASK) {
	case FEATURE_ADDR_FULL:
		return MASK_FULL;
		break;
	case FEATURE_ADDR_2AA:
		return MASK_2AA;
		break;
	case FEATURE_ADDR_AAA:
		return MASK_AAA;
		break;
	default:
		msg_cerr("%s called with unknown mask\n", __func__);
		return 0;
		break;
	}
}

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static void start_program_jedec_common(struct flashchip *flash, unsigned int mask)
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{
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	chipaddr bios = flash->virtual_memory;
	chip_writeb(0xAA, bios + (0x5555 & mask));
	chip_writeb(0x55, bios + (0x2AAA & mask));
	chip_writeb(0xA0, bios + (0x5555 & mask));
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}

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static int probe_jedec_common(struct flashchip *flash, unsigned int mask)
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{
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	chipaddr bios = flash->virtual_memory;
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	uint8_t id1, id2;
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	uint32_t largeid1, largeid2;
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	uint32_t flashcontent1, flashcontent2;
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	int probe_timing_enter, probe_timing_exit;

	if (flash->probe_timing > 0) 
		probe_timing_enter = probe_timing_exit = flash->probe_timing;
	else if (flash->probe_timing == TIMING_ZERO) { /* No delay. */
		probe_timing_enter = probe_timing_exit = 0;
	} else if (flash->probe_timing == TIMING_FIXME) { /* == _IGNORED */
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		msg_cdbg("Chip lacks correct probe timing information, "
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			     "using default 10mS/40uS. ");
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		probe_timing_enter = 10000;
		probe_timing_exit = 40;
	} else {
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		msg_cerr("Chip has negative value in probe_timing, failing "
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		       "without chip access\n");
		return 0;
	}
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	/* Earlier probes might have been too fast for the chip to enter ID
	 * mode completely. Allow the chip to finish this before seeing a
	 * reset command.
	 */
	if (probe_timing_enter)
		programmer_delay(probe_timing_enter);
	/* Reset chip to a clean slate */
	if ((flash->feature_bits & FEATURE_RESET_MASK) == FEATURE_LONG_RESET)
	{
		chip_writeb(0xAA, bios + (0x5555 & mask));
		if (probe_timing_exit)
			programmer_delay(10);
		chip_writeb(0x55, bios + (0x2AAA & mask));
		if (probe_timing_exit)
			programmer_delay(10);
	}
	chip_writeb(0xF0, bios + (0x5555 & mask));
	if (probe_timing_exit)
		programmer_delay(probe_timing_exit);

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	/* Issue JEDEC Product ID Entry command */
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	chip_writeb(0xAA, bios + (0x5555 & mask));
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	if (probe_timing_enter)
		programmer_delay(10);
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	chip_writeb(0x55, bios + (0x2AAA & mask));
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	if (probe_timing_enter)
		programmer_delay(10);
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	chip_writeb(0x90, bios + (0x5555 & mask));
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	if (probe_timing_enter)
		programmer_delay(probe_timing_enter);
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	/* Read product ID */
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	id1 = chip_readb(bios);
	id2 = chip_readb(bios + 0x01);
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	largeid1 = id1;
	largeid2 = id2;

	/* Check if it is a continuation ID, this should be a while loop. */
	if (id1 == 0x7F) {
		largeid1 <<= 8;
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		id1 = chip_readb(bios + 0x100);
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		largeid1 |= id1;
	}
	if (id2 == 0x7F) {
		largeid2 <<= 8;
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		id2 = chip_readb(bios + 0x101);
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		largeid2 |= id2;
	}
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	/* Issue JEDEC Product ID Exit command */
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	if ((flash->feature_bits & FEATURE_RESET_MASK) == FEATURE_LONG_RESET)
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	{
		chip_writeb(0xAA, bios + (0x5555 & mask));
		if (probe_timing_exit)
			programmer_delay(10);
		chip_writeb(0x55, bios + (0x2AAA & mask));
		if (probe_timing_exit)
			programmer_delay(10);
	}
	chip_writeb(0xF0, bios + (0x5555 & mask));
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	if (probe_timing_exit)
		programmer_delay(probe_timing_exit);
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	msg_cdbg("%s: id1 0x%02x, id2 0x%02x", __func__, largeid1, largeid2);
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	if (!oddparity(id1))
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		msg_cdbg(", id1 parity violation");
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	/* Read the product ID location again. We should now see normal flash contents. */
	flashcontent1 = chip_readb(bios);
	flashcontent2 = chip_readb(bios + 0x01);

	/* Check if it is a continuation ID, this should be a while loop. */
	if (flashcontent1 == 0x7F) {
		flashcontent1 <<= 8;
		flashcontent1 |= chip_readb(bios + 0x100);
	}
	if (flashcontent2 == 0x7F) {
		flashcontent2 <<= 8;
		flashcontent2 |= chip_readb(bios + 0x101);
	}

	if (largeid1 == flashcontent1)
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		msg_cdbg(", id1 is normal flash content");
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	if (largeid2 == flashcontent2)
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		msg_cdbg(", id2 is normal flash content");
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	msg_cdbg("\n");
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	if (largeid1 != flash->manufacture_id || largeid2 != flash->model_id)
		return 0;
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	if (flash->feature_bits & FEATURE_REGISTERMAP)
		map_flash_registers(flash);

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	return 1;
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}
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static int erase_sector_jedec_common(struct flashchip *flash, unsigned int page,
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			      unsigned int pagesize, unsigned int mask)
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{
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	chipaddr bios = flash->virtual_memory;
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	int delay_us = 0;
	if(flash->probe_timing != TIMING_ZERO)
	        delay_us = 10;
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	/*  Issue the Sector Erase command   */
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	chip_writeb(0xAA, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x55, bios + (0x2AAA & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x80, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0xAA, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x55, bios + (0x2AAA & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x30, bios + page);
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	programmer_delay(delay_us);
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	/* wait for Toggle bit ready         */
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	toggle_ready_jedec_slow(bios);
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	if (check_erased_range(flash, page, pagesize)) {
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		msg_cerr("ERASE FAILED!\n");
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		return -1;
	}
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	return 0;
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}
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static int erase_block_jedec_common(struct flashchip *flash, unsigned int block,
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			     unsigned int blocksize, unsigned int mask)
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{
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	chipaddr bios = flash->virtual_memory;
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	int delay_us = 0;
	if(flash->probe_timing != TIMING_ZERO)
	        delay_us = 10;
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	/*  Issue the Sector Erase command   */
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	chip_writeb(0xAA, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x55, bios + (0x2AAA & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x80, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0xAA, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x55, bios + (0x2AAA & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x50, bios + block);
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	programmer_delay(delay_us);
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	/* wait for Toggle bit ready         */
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	toggle_ready_jedec_slow(bios);
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	if (check_erased_range(flash, block, blocksize)) {
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		msg_cerr("ERASE FAILED!\n");
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		return -1;
	}
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	return 0;
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}

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static int erase_chip_jedec_common(struct flashchip *flash, unsigned int mask)
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{
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	int total_size = flash->total_size * 1024;
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	chipaddr bios = flash->virtual_memory;
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	int delay_us = 0;
	if(flash->probe_timing != TIMING_ZERO)
	        delay_us = 10;
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	/*  Issue the JEDEC Chip Erase command   */
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	chip_writeb(0xAA, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x55, bios + (0x2AAA & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x80, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0xAA, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x55, bios + (0x2AAA & mask));
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	programmer_delay(delay_us);
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	chip_writeb(0x10, bios + (0x5555 & mask));
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	programmer_delay(delay_us);
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	toggle_ready_jedec_slow(bios);
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	if (check_erased_range(flash, 0, total_size)) {
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		msg_cerr("ERASE FAILED!\n");
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		return -1;
	}
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	return 0;
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}

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static int write_byte_program_jedec_common(struct flashchip *flash, uint8_t *src,
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			     chipaddr dst, unsigned int mask)
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{
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	int tried = 0, failed = 0;
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	chipaddr bios = flash->virtual_memory;
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	/* If the data is 0xFF, don't program it and don't complain. */
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	if (*src == 0xFF) {
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		return 0;
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	}
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retry:
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	/* Issue JEDEC Byte Program command */
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	start_program_jedec_common(flash, mask);
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	/* transfer data from source to destination */
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	chip_writeb(*src, dst);
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	toggle_ready_jedec(bios);
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	if (chip_readb(dst) != *src && tried++ < MAX_REFLASH_TRIES) {
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		goto retry;
	}
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	if (tried >= MAX_REFLASH_TRIES)
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		failed = 1;
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	return failed;
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}

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/* chunksize is 1 */
int write_jedec_1(struct flashchip *flash, uint8_t *src, int start, int len)
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{
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	int i, failed = 0;
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	chipaddr dst = flash->virtual_memory + start;
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	chipaddr olddst;
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	int mask;

	mask = getaddrmask(flash);
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	olddst = dst;
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	for (i = 0; i < len; i++) {
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		if (write_byte_program_jedec_common(flash, src, dst, mask))
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			failed = 1;
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		dst++, src++;
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	}
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	if (failed)
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		msg_cerr(" writing sector at 0x%lx failed!\n", olddst);
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	return failed;
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}

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int write_page_write_jedec_common(struct flashchip *flash, uint8_t *src, int start, int page_size)
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{
	int i, tried = 0, failed;
	uint8_t *s = src;
	chipaddr bios = flash->virtual_memory;
	chipaddr dst = bios + start;
	chipaddr d = dst;
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	int mask;

	mask = getaddrmask(flash);
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retry:
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	/* Issue JEDEC Start Program command */
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	start_program_jedec_common(flash, mask);

	/* transfer data from source to destination */
	for (i = 0; i < page_size; i++) {
		/* If the data is 0xFF, don't program it */
		if (*src != 0xFF)
			chip_writeb(*src, dst);
		dst++;
		src++;
	}

	toggle_ready_jedec(dst - 1);

	dst = d;
	src = s;
	failed = verify_range(flash, src, start, page_size, NULL);

	if (failed && tried++ < MAX_REFLASH_TRIES) {
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		msg_cerr("retrying.\n");
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		goto retry;
	}
	if (failed) {
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		msg_cerr(" page 0x%lx failed!\n",
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			(d - bios) / page_size);
	}
	return failed;
}

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/* chunksize is page_size */
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/*
 * Write a part of the flash chip.
 * FIXME: Use the chunk code from Michael Karcher instead.
 * This function is a slightly modified copy of spi_write_chunked.
 * Each page is written separately in chunks with a maximum size of chunksize.
 */
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int write_jedec(struct flashchip *flash, uint8_t *buf, int start, int len)
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{
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	int i, starthere, lenhere;
	/* FIXME: page_size is the wrong variable. We need max_writechunk_size
	 * in struct flashchip to do this properly. All chips using
	 * write_jedec have page_size set to max_writechunk_size, so
	 * we're OK for now.
	 */
	int page_size = flash->page_size;

	/* Warning: This loop has a very unusual condition and body.
	 * The loop needs to go through each page with at least one affected
	 * byte. The lowest page number is (start / page_size) since that
	 * division rounds down. The highest page number we want is the page
	 * where the last byte of the range lives. That last byte has the
	 * address (start + len - 1), thus the highest page number is
	 * (start + len - 1) / page_size. Since we want to include that last
	 * page as well, the loop condition uses <=.
	 */
	for (i = start / page_size; i <= (start + len - 1) / page_size; i++) {
		/* Byte position of the first byte in the range in this page. */
		/* starthere is an offset to the base address of the chip. */
		starthere = max(start, i * page_size);
		/* Length of bytes in the range in this page. */
		lenhere = min(start + len, (i + 1) * page_size) - starthere;

		if (write_page_write_jedec_common(flash, buf + starthere - start, starthere, lenhere))
			return 1;
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	}
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	return 0;
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}

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/* erase chip with block_erase() prototype */
int erase_chip_block_jedec(struct flashchip *flash, unsigned int addr,
			   unsigned int blocksize)
{
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	int mask;

	mask = getaddrmask(flash);
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	if ((addr != 0) || (blocksize != flash->total_size * 1024)) {
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		msg_cerr("%s called with incorrect arguments\n",
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			__func__);
		return -1;
	}
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	return erase_chip_jedec_common(flash, mask);
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}

int probe_jedec(struct flashchip *flash)
{
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	int mask;

	mask = getaddrmask(flash);
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	return probe_jedec_common(flash, mask);
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}

int erase_sector_jedec(struct flashchip *flash, unsigned int page, unsigned int size)
{
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	int mask;

	mask = getaddrmask(flash);
	return erase_sector_jedec_common(flash, page, size, mask);
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}

int erase_block_jedec(struct flashchip *flash, unsigned int page, unsigned int size)
{
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	int mask;

	mask = getaddrmask(flash);
	return erase_block_jedec_common(flash, page, size, mask);
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}

int erase_chip_jedec(struct flashchip *flash)
{
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	int mask;

	mask = getaddrmask(flash);
	return erase_chip_jedec_common(flash, mask);
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}