7dcb483de3
Signed-off-by: Mariusz Kozlowski <m.kozlowski@tuxland.pl> Signed-off-by: Andrew Morton <akpm@osdl.org> Signed-off-by: David Woodhouse <dwmw2@infradead.org>
618 lines
18 KiB
C
618 lines
18 KiB
C
/*
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* drivers/mtd/nand/rtc_from4.c
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*
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* Copyright (C) 2004 Red Hat, Inc.
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*
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* Derived from drivers/mtd/nand/spia.c
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* Copyright (C) 2000 Steven J. Hill (sjhill@realitydiluted.com)
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*
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* $Id: rtc_from4.c,v 1.10 2005/11/07 11:14:31 gleixner Exp $
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License version 2 as
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* published by the Free Software Foundation.
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*
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* Overview:
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* This is a device driver for the AG-AND flash device found on the
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* Renesas Technology Corp. Flash ROM 4-slot interface board (FROM_BOARD4),
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* which utilizes the Renesas HN29V1G91T-30 part.
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* This chip is a 1 GBibit (128MiB x 8 bits) AG-AND flash device.
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*/
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#include <linux/delay.h>
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#include <linux/kernel.h>
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#include <linux/init.h>
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#include <linux/slab.h>
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#include <linux/rslib.h>
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#include <linux/bitrev.h>
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#include <linux/module.h>
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#include <linux/mtd/compatmac.h>
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#include <linux/mtd/mtd.h>
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#include <linux/mtd/nand.h>
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#include <linux/mtd/partitions.h>
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#include <asm/io.h>
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/*
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* MTD structure for Renesas board
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*/
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static struct mtd_info *rtc_from4_mtd = NULL;
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#define RTC_FROM4_MAX_CHIPS 2
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/* HS77x9 processor register defines */
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#define SH77X9_BCR1 ((volatile unsigned short *)(0xFFFFFF60))
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#define SH77X9_BCR2 ((volatile unsigned short *)(0xFFFFFF62))
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#define SH77X9_WCR1 ((volatile unsigned short *)(0xFFFFFF64))
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#define SH77X9_WCR2 ((volatile unsigned short *)(0xFFFFFF66))
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#define SH77X9_MCR ((volatile unsigned short *)(0xFFFFFF68))
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#define SH77X9_PCR ((volatile unsigned short *)(0xFFFFFF6C))
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#define SH77X9_FRQCR ((volatile unsigned short *)(0xFFFFFF80))
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/*
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* Values specific to the Renesas Technology Corp. FROM_BOARD4 (used with HS77x9 processor)
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*/
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/* Address where flash is mapped */
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#define RTC_FROM4_FIO_BASE 0x14000000
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/* CLE and ALE are tied to address lines 5 & 4, respectively */
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#define RTC_FROM4_CLE (1 << 5)
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#define RTC_FROM4_ALE (1 << 4)
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/* address lines A24-A22 used for chip selection */
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#define RTC_FROM4_NAND_ADDR_SLOT3 (0x00800000)
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#define RTC_FROM4_NAND_ADDR_SLOT4 (0x00C00000)
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#define RTC_FROM4_NAND_ADDR_FPGA (0x01000000)
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/* mask address lines A24-A22 used for chip selection */
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#define RTC_FROM4_NAND_ADDR_MASK (RTC_FROM4_NAND_ADDR_SLOT3 | RTC_FROM4_NAND_ADDR_SLOT4 | RTC_FROM4_NAND_ADDR_FPGA)
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/* FPGA status register for checking device ready (bit zero) */
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#define RTC_FROM4_FPGA_SR (RTC_FROM4_NAND_ADDR_FPGA | 0x00000002)
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#define RTC_FROM4_DEVICE_READY 0x0001
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/* FPGA Reed-Solomon ECC Control register */
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#define RTC_FROM4_RS_ECC_CTL (RTC_FROM4_NAND_ADDR_FPGA | 0x00000050)
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#define RTC_FROM4_RS_ECC_CTL_CLR (1 << 7)
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#define RTC_FROM4_RS_ECC_CTL_GEN (1 << 6)
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#define RTC_FROM4_RS_ECC_CTL_FD_E (1 << 5)
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/* FPGA Reed-Solomon ECC code base */
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#define RTC_FROM4_RS_ECC (RTC_FROM4_NAND_ADDR_FPGA | 0x00000060)
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#define RTC_FROM4_RS_ECCN (RTC_FROM4_NAND_ADDR_FPGA | 0x00000080)
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/* FPGA Reed-Solomon ECC check register */
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#define RTC_FROM4_RS_ECC_CHK (RTC_FROM4_NAND_ADDR_FPGA | 0x00000070)
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#define RTC_FROM4_RS_ECC_CHK_ERROR (1 << 7)
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#define ERR_STAT_ECC_AVAILABLE 0x20
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/* Undefine for software ECC */
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#define RTC_FROM4_HWECC 1
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/* Define as 1 for no virtual erase blocks (in JFFS2) */
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#define RTC_FROM4_NO_VIRTBLOCKS 0
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/*
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* Module stuff
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*/
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static void __iomem *rtc_from4_fio_base = (void *)P2SEGADDR(RTC_FROM4_FIO_BASE);
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static const struct mtd_partition partition_info[] = {
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{
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.name = "Renesas flash partition 1",
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.offset = 0,
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.size = MTDPART_SIZ_FULL},
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};
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#define NUM_PARTITIONS 1
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/*
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* hardware specific flash bbt decriptors
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* Note: this is to allow debugging by disabling
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* NAND_BBT_CREATE and/or NAND_BBT_WRITE
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*
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*/
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static uint8_t bbt_pattern[] = { 'B', 'b', 't', '0' };
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static uint8_t mirror_pattern[] = { '1', 't', 'b', 'B' };
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static struct nand_bbt_descr rtc_from4_bbt_main_descr = {
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.options = NAND_BBT_LASTBLOCK | NAND_BBT_CREATE | NAND_BBT_WRITE
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| NAND_BBT_2BIT | NAND_BBT_VERSION | NAND_BBT_PERCHIP,
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.offs = 40,
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.len = 4,
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.veroffs = 44,
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.maxblocks = 4,
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.pattern = bbt_pattern
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};
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static struct nand_bbt_descr rtc_from4_bbt_mirror_descr = {
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.options = NAND_BBT_LASTBLOCK | NAND_BBT_CREATE | NAND_BBT_WRITE
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| NAND_BBT_2BIT | NAND_BBT_VERSION | NAND_BBT_PERCHIP,
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.offs = 40,
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.len = 4,
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.veroffs = 44,
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.maxblocks = 4,
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.pattern = mirror_pattern
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};
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#ifdef RTC_FROM4_HWECC
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/* the Reed Solomon control structure */
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static struct rs_control *rs_decoder;
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/*
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* hardware specific Out Of Band information
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*/
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static struct nand_ecclayout rtc_from4_nand_oobinfo = {
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.eccbytes = 32,
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.eccpos = {
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0, 1, 2, 3, 4, 5, 6, 7,
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8, 9, 10, 11, 12, 13, 14, 15,
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16, 17, 18, 19, 20, 21, 22, 23,
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24, 25, 26, 27, 28, 29, 30, 31},
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.oobfree = {{32, 32}}
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};
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#endif
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/*
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* rtc_from4_hwcontrol - hardware specific access to control-lines
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* @mtd: MTD device structure
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* @cmd: hardware control command
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*
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* Address lines (A5 and A4) are used to control Command and Address Latch
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* Enable on this board, so set the read/write address appropriately.
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*
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* Chip Enable is also controlled by the Chip Select (CS5) and
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* Address lines (A24-A22), so no action is required here.
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*
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*/
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static void rtc_from4_hwcontrol(struct mtd_info *mtd, int cmd,
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unsigned int ctrl)
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{
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struct nand_chip *chip = (mtd->priv);
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if (cmd == NAND_CMD_NONE)
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return;
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if (ctrl & NAND_CLE)
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writeb(cmd, chip->IO_ADDR_W | RTC_FROM4_CLE);
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else
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writeb(cmd, chip->IO_ADDR_W | RTC_FROM4_ALE);
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}
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/*
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* rtc_from4_nand_select_chip - hardware specific chip select
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* @mtd: MTD device structure
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* @chip: Chip to select (0 == slot 3, 1 == slot 4)
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*
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* The chip select is based on address lines A24-A22.
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* This driver uses flash slots 3 and 4 (A23-A22).
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*
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*/
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static void rtc_from4_nand_select_chip(struct mtd_info *mtd, int chip)
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{
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struct nand_chip *this = mtd->priv;
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this->IO_ADDR_R = (void __iomem *)((unsigned long)this->IO_ADDR_R & ~RTC_FROM4_NAND_ADDR_MASK);
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this->IO_ADDR_W = (void __iomem *)((unsigned long)this->IO_ADDR_W & ~RTC_FROM4_NAND_ADDR_MASK);
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switch (chip) {
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case 0: /* select slot 3 chip */
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this->IO_ADDR_R = (void __iomem *)((unsigned long)this->IO_ADDR_R | RTC_FROM4_NAND_ADDR_SLOT3);
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this->IO_ADDR_W = (void __iomem *)((unsigned long)this->IO_ADDR_W | RTC_FROM4_NAND_ADDR_SLOT3);
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break;
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case 1: /* select slot 4 chip */
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this->IO_ADDR_R = (void __iomem *)((unsigned long)this->IO_ADDR_R | RTC_FROM4_NAND_ADDR_SLOT4);
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this->IO_ADDR_W = (void __iomem *)((unsigned long)this->IO_ADDR_W | RTC_FROM4_NAND_ADDR_SLOT4);
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break;
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}
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}
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/*
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* rtc_from4_nand_device_ready - hardware specific ready/busy check
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* @mtd: MTD device structure
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*
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* This board provides the Ready/Busy state in the status register
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* of the FPGA. Bit zero indicates the RDY(1)/BSY(0) signal.
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*
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*/
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static int rtc_from4_nand_device_ready(struct mtd_info *mtd)
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{
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unsigned short status;
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status = *((volatile unsigned short *)(rtc_from4_fio_base + RTC_FROM4_FPGA_SR));
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return (status & RTC_FROM4_DEVICE_READY);
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}
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/*
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* deplete - code to perform device recovery in case there was a power loss
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* @mtd: MTD device structure
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* @chip: Chip to select (0 == slot 3, 1 == slot 4)
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*
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* If there was a sudden loss of power during an erase operation, a
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* "device recovery" operation must be performed when power is restored
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* to ensure correct operation. This routine performs the required steps
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* for the requested chip.
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*
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* See page 86 of the data sheet for details.
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*
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*/
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static void deplete(struct mtd_info *mtd, int chip)
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{
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struct nand_chip *this = mtd->priv;
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/* wait until device is ready */
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while (!this->dev_ready(mtd)) ;
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this->select_chip(mtd, chip);
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/* Send the commands for device recovery, phase 1 */
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this->cmdfunc(mtd, NAND_CMD_DEPLETE1, 0x0000, 0x0000);
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this->cmdfunc(mtd, NAND_CMD_DEPLETE2, -1, -1);
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/* Send the commands for device recovery, phase 2 */
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this->cmdfunc(mtd, NAND_CMD_DEPLETE1, 0x0000, 0x0004);
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this->cmdfunc(mtd, NAND_CMD_DEPLETE2, -1, -1);
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}
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#ifdef RTC_FROM4_HWECC
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/*
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* rtc_from4_enable_hwecc - hardware specific hardware ECC enable function
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* @mtd: MTD device structure
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* @mode: I/O mode; read or write
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*
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* enable hardware ECC for data read or write
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*
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*/
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static void rtc_from4_enable_hwecc(struct mtd_info *mtd, int mode)
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{
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volatile unsigned short *rs_ecc_ctl = (volatile unsigned short *)(rtc_from4_fio_base + RTC_FROM4_RS_ECC_CTL);
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unsigned short status;
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switch (mode) {
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case NAND_ECC_READ:
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status = RTC_FROM4_RS_ECC_CTL_CLR | RTC_FROM4_RS_ECC_CTL_FD_E;
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*rs_ecc_ctl = status;
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break;
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case NAND_ECC_READSYN:
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status = 0x00;
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*rs_ecc_ctl = status;
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break;
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case NAND_ECC_WRITE:
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status = RTC_FROM4_RS_ECC_CTL_CLR | RTC_FROM4_RS_ECC_CTL_GEN | RTC_FROM4_RS_ECC_CTL_FD_E;
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*rs_ecc_ctl = status;
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break;
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default:
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BUG();
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break;
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}
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}
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/*
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* rtc_from4_calculate_ecc - hardware specific code to read ECC code
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* @mtd: MTD device structure
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* @dat: buffer containing the data to generate ECC codes
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* @ecc_code ECC codes calculated
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*
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* The ECC code is calculated by the FPGA. All we have to do is read the values
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* from the FPGA registers.
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*
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* Note: We read from the inverted registers, since data is inverted before
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* the code is calculated. So all 0xff data (blank page) results in all 0xff rs code
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*
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*/
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static void rtc_from4_calculate_ecc(struct mtd_info *mtd, const u_char *dat, u_char *ecc_code)
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{
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volatile unsigned short *rs_eccn = (volatile unsigned short *)(rtc_from4_fio_base + RTC_FROM4_RS_ECCN);
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unsigned short value;
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int i;
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for (i = 0; i < 8; i++) {
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value = *rs_eccn;
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ecc_code[i] = (unsigned char)value;
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rs_eccn++;
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}
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ecc_code[7] |= 0x0f; /* set the last four bits (not used) */
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}
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/*
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* rtc_from4_correct_data - hardware specific code to correct data using ECC code
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* @mtd: MTD device structure
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* @buf: buffer containing the data to generate ECC codes
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* @ecc1 ECC codes read
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* @ecc2 ECC codes calculated
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*
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* The FPGA tells us fast, if there's an error or not. If no, we go back happy
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* else we read the ecc results from the fpga and call the rs library to decode
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* and hopefully correct the error.
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*
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*/
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static int rtc_from4_correct_data(struct mtd_info *mtd, const u_char *buf, u_char *ecc1, u_char *ecc2)
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{
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int i, j, res;
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unsigned short status;
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uint16_t par[6], syn[6];
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uint8_t ecc[8];
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volatile unsigned short *rs_ecc;
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status = *((volatile unsigned short *)(rtc_from4_fio_base + RTC_FROM4_RS_ECC_CHK));
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if (!(status & RTC_FROM4_RS_ECC_CHK_ERROR)) {
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return 0;
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}
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/* Read the syndrom pattern from the FPGA and correct the bitorder */
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rs_ecc = (volatile unsigned short *)(rtc_from4_fio_base + RTC_FROM4_RS_ECC);
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for (i = 0; i < 8; i++) {
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ecc[i] = bitrev8(*rs_ecc);
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rs_ecc++;
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}
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/* convert into 6 10bit syndrome fields */
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par[5] = rs_decoder->index_of[(((uint16_t) ecc[0] >> 0) & 0x0ff) | (((uint16_t) ecc[1] << 8) & 0x300)];
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par[4] = rs_decoder->index_of[(((uint16_t) ecc[1] >> 2) & 0x03f) | (((uint16_t) ecc[2] << 6) & 0x3c0)];
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par[3] = rs_decoder->index_of[(((uint16_t) ecc[2] >> 4) & 0x00f) | (((uint16_t) ecc[3] << 4) & 0x3f0)];
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par[2] = rs_decoder->index_of[(((uint16_t) ecc[3] >> 6) & 0x003) | (((uint16_t) ecc[4] << 2) & 0x3fc)];
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par[1] = rs_decoder->index_of[(((uint16_t) ecc[5] >> 0) & 0x0ff) | (((uint16_t) ecc[6] << 8) & 0x300)];
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par[0] = (((uint16_t) ecc[6] >> 2) & 0x03f) | (((uint16_t) ecc[7] << 6) & 0x3c0);
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/* Convert to computable syndrome */
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for (i = 0; i < 6; i++) {
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syn[i] = par[0];
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for (j = 1; j < 6; j++)
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if (par[j] != rs_decoder->nn)
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syn[i] ^= rs_decoder->alpha_to[rs_modnn(rs_decoder, par[j] + i * j)];
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/* Convert to index form */
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syn[i] = rs_decoder->index_of[syn[i]];
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}
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/* Let the library code do its magic. */
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res = decode_rs8(rs_decoder, (uint8_t *) buf, par, 512, syn, 0, NULL, 0xff, NULL);
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if (res > 0) {
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DEBUG(MTD_DEBUG_LEVEL0, "rtc_from4_correct_data: " "ECC corrected %d errors on read\n", res);
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}
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return res;
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}
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/**
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* rtc_from4_errstat - perform additional error status checks
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* @mtd: MTD device structure
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* @this: NAND chip structure
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* @state: state or the operation
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* @status: status code returned from read status
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* @page: startpage inside the chip, must be called with (page & this->pagemask)
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*
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* Perform additional error status checks on erase and write failures
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* to determine if errors are correctable. For this device, correctable
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* 1-bit errors on erase and write are considered acceptable.
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*
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* note: see pages 34..37 of data sheet for details.
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*
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*/
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static int rtc_from4_errstat(struct mtd_info *mtd, struct nand_chip *this,
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int state, int status, int page)
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{
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int er_stat = 0;
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int rtn, retlen;
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size_t len;
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uint8_t *buf;
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int i;
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this->cmdfunc(mtd, NAND_CMD_STATUS_CLEAR, -1, -1);
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if (state == FL_ERASING) {
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for (i = 0; i < 4; i++) {
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if (!(status & 1 << (i + 1)))
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continue;
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this->cmdfunc(mtd, (NAND_CMD_STATUS_ERROR + i + 1),
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-1, -1);
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rtn = this->read_byte(mtd);
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this->cmdfunc(mtd, NAND_CMD_STATUS_RESET, -1, -1);
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/* err_ecc_not_avail */
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if (!(rtn & ERR_STAT_ECC_AVAILABLE))
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er_stat |= 1 << (i + 1);
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}
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} else if (state == FL_WRITING) {
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unsigned long corrected = mtd->ecc_stats.corrected;
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/* single bank write logic */
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this->cmdfunc(mtd, NAND_CMD_STATUS_ERROR, -1, -1);
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rtn = this->read_byte(mtd);
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this->cmdfunc(mtd, NAND_CMD_STATUS_RESET, -1, -1);
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if (!(rtn & ERR_STAT_ECC_AVAILABLE)) {
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/* err_ecc_not_avail */
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er_stat |= 1 << 1;
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goto out;
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}
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len = mtd->writesize;
|
|
buf = kmalloc(len, GFP_KERNEL);
|
|
if (!buf) {
|
|
printk(KERN_ERR "rtc_from4_errstat: Out of memory!\n");
|
|
er_stat = 1;
|
|
goto out;
|
|
}
|
|
|
|
/* recovery read */
|
|
rtn = nand_do_read(mtd, page, len, &retlen, buf);
|
|
|
|
/* if read failed or > 1-bit error corrected */
|
|
if (rtn || (mtd->ecc_stats.corrected - corrected) > 1)
|
|
er_stat |= 1 << 1;
|
|
kfree(buf);
|
|
}
|
|
|
|
rtn = status;
|
|
if (er_stat == 0) { /* if ECC is available */
|
|
rtn = (status & ~NAND_STATUS_FAIL); /* clear the error bit */
|
|
}
|
|
|
|
return rtn;
|
|
}
|
|
#endif
|
|
|
|
/*
|
|
* Main initialization routine
|
|
*/
|
|
static int __init rtc_from4_init(void)
|
|
{
|
|
struct nand_chip *this;
|
|
unsigned short bcr1, bcr2, wcr2;
|
|
int i;
|
|
|
|
/* Allocate memory for MTD device structure and private data */
|
|
rtc_from4_mtd = kmalloc(sizeof(struct mtd_info) + sizeof(struct nand_chip), GFP_KERNEL);
|
|
if (!rtc_from4_mtd) {
|
|
printk("Unable to allocate Renesas NAND MTD device structure.\n");
|
|
return -ENOMEM;
|
|
}
|
|
|
|
/* Get pointer to private data */
|
|
this = (struct nand_chip *)(&rtc_from4_mtd[1]);
|
|
|
|
/* Initialize structures */
|
|
memset(rtc_from4_mtd, 0, sizeof(struct mtd_info));
|
|
memset(this, 0, sizeof(struct nand_chip));
|
|
|
|
/* Link the private data with the MTD structure */
|
|
rtc_from4_mtd->priv = this;
|
|
rtc_from4_mtd->owner = THIS_MODULE;
|
|
|
|
/* set area 5 as PCMCIA mode to clear the spec of tDH(Data hold time;9ns min) */
|
|
bcr1 = *SH77X9_BCR1 & ~0x0002;
|
|
bcr1 |= 0x0002;
|
|
*SH77X9_BCR1 = bcr1;
|
|
|
|
/* set */
|
|
bcr2 = *SH77X9_BCR2 & ~0x0c00;
|
|
bcr2 |= 0x0800;
|
|
*SH77X9_BCR2 = bcr2;
|
|
|
|
/* set area 5 wait states */
|
|
wcr2 = *SH77X9_WCR2 & ~0x1c00;
|
|
wcr2 |= 0x1c00;
|
|
*SH77X9_WCR2 = wcr2;
|
|
|
|
/* Set address of NAND IO lines */
|
|
this->IO_ADDR_R = rtc_from4_fio_base;
|
|
this->IO_ADDR_W = rtc_from4_fio_base;
|
|
/* Set address of hardware control function */
|
|
this->cmd_ctrl = rtc_from4_hwcontrol;
|
|
/* Set address of chip select function */
|
|
this->select_chip = rtc_from4_nand_select_chip;
|
|
/* command delay time (in us) */
|
|
this->chip_delay = 100;
|
|
/* return the status of the Ready/Busy line */
|
|
this->dev_ready = rtc_from4_nand_device_ready;
|
|
|
|
#ifdef RTC_FROM4_HWECC
|
|
printk(KERN_INFO "rtc_from4_init: using hardware ECC detection.\n");
|
|
|
|
this->ecc.mode = NAND_ECC_HW_SYNDROME;
|
|
this->ecc.size = 512;
|
|
this->ecc.bytes = 8;
|
|
/* return the status of extra status and ECC checks */
|
|
this->errstat = rtc_from4_errstat;
|
|
/* set the nand_oobinfo to support FPGA H/W error detection */
|
|
this->ecc.layout = &rtc_from4_nand_oobinfo;
|
|
this->ecc.hwctl = rtc_from4_enable_hwecc;
|
|
this->ecc.calculate = rtc_from4_calculate_ecc;
|
|
this->ecc.correct = rtc_from4_correct_data;
|
|
#else
|
|
printk(KERN_INFO "rtc_from4_init: using software ECC detection.\n");
|
|
|
|
this->ecc.mode = NAND_ECC_SOFT;
|
|
#endif
|
|
|
|
/* set the bad block tables to support debugging */
|
|
this->bbt_td = &rtc_from4_bbt_main_descr;
|
|
this->bbt_md = &rtc_from4_bbt_mirror_descr;
|
|
|
|
/* Scan to find existence of the device */
|
|
if (nand_scan(rtc_from4_mtd, RTC_FROM4_MAX_CHIPS)) {
|
|
kfree(rtc_from4_mtd);
|
|
return -ENXIO;
|
|
}
|
|
|
|
/* Perform 'device recovery' for each chip in case there was a power loss. */
|
|
for (i = 0; i < this->numchips; i++) {
|
|
deplete(rtc_from4_mtd, i);
|
|
}
|
|
|
|
#if RTC_FROM4_NO_VIRTBLOCKS
|
|
/* use a smaller erase block to minimize wasted space when a block is bad */
|
|
/* note: this uses eight times as much RAM as using the default and makes */
|
|
/* mounts take four times as long. */
|
|
rtc_from4_mtd->flags |= MTD_NO_VIRTBLOCKS;
|
|
#endif
|
|
|
|
/* Register the partitions */
|
|
add_mtd_partitions(rtc_from4_mtd, partition_info, NUM_PARTITIONS);
|
|
|
|
#ifdef RTC_FROM4_HWECC
|
|
/* We could create the decoder on demand, if memory is a concern.
|
|
* This way we have it handy, if an error happens
|
|
*
|
|
* Symbolsize is 10 (bits)
|
|
* Primitve polynomial is x^10+x^3+1
|
|
* first consecutive root is 0
|
|
* primitve element to generate roots = 1
|
|
* generator polinomial degree = 6
|
|
*/
|
|
rs_decoder = init_rs(10, 0x409, 0, 1, 6);
|
|
if (!rs_decoder) {
|
|
printk(KERN_ERR "Could not create a RS decoder\n");
|
|
nand_release(rtc_from4_mtd);
|
|
kfree(rtc_from4_mtd);
|
|
return -ENOMEM;
|
|
}
|
|
#endif
|
|
/* Return happy */
|
|
return 0;
|
|
}
|
|
|
|
module_init(rtc_from4_init);
|
|
|
|
/*
|
|
* Clean up routine
|
|
*/
|
|
static void __exit rtc_from4_cleanup(void)
|
|
{
|
|
/* Release resource, unregister partitions */
|
|
nand_release(rtc_from4_mtd);
|
|
|
|
/* Free the MTD device structure */
|
|
kfree(rtc_from4_mtd);
|
|
|
|
#ifdef RTC_FROM4_HWECC
|
|
/* Free the reed solomon resources */
|
|
if (rs_decoder) {
|
|
free_rs(rs_decoder);
|
|
}
|
|
#endif
|
|
}
|
|
|
|
module_exit(rtc_from4_cleanup);
|
|
|
|
MODULE_LICENSE("GPL");
|
|
MODULE_AUTHOR("d.marlin <dmarlin@redhat.com");
|
|
MODULE_DESCRIPTION("Board-specific glue layer for AG-AND flash on Renesas FROM_BOARD4");
|