diskonchip.c 46.9 KB
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/*
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 * (C) 2003 Red Hat, Inc.
 * (C) 2004 Dan Brown <dan_brown@ieee.org>
 * (C) 2004 Kalev Lember <kalev@smartlink.ee>
 *
 * Author: David Woodhouse <dwmw2@infradead.org>
 * Additional Diskonchip 2000 and Millennium support by Dan Brown <dan_brown@ieee.org>
 * Diskonchip Millennium Plus support by Kalev Lember <kalev@smartlink.ee>
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 *
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 * Error correction code lifted from the old docecc code
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 * Author: Fabrice Bellard (fabrice.bellard@netgem.com)
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 * Copyright (C) 2000 Netgem S.A.
 * converted to the generic Reed-Solomon library by Thomas Gleixner <tglx@linutronix.de>
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 *
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 * Interface to generic NAND code for M-Systems DiskOnChip devices
 */

#include <linux/kernel.h>
#include <linux/init.h>
#include <linux/sched.h>
#include <linux/delay.h>
#include <linux/rslib.h>
#include <linux/moduleparam.h>
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#include <linux/slab.h>
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#include <linux/io.h>
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#include <linux/mtd/mtd.h>
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#include <linux/mtd/rawnand.h>
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#include <linux/mtd/doc2000.h>
#include <linux/mtd/partitions.h>
#include <linux/mtd/inftl.h>
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#include <linux/module.h>
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/* Where to look for the devices? */
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#ifndef CONFIG_MTD_NAND_DISKONCHIP_PROBE_ADDRESS
#define CONFIG_MTD_NAND_DISKONCHIP_PROBE_ADDRESS 0
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#endif

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static unsigned long doc_locations[] __initdata = {
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#if defined (__alpha__) || defined(__i386__) || defined(__x86_64__)
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#ifdef CONFIG_MTD_NAND_DISKONCHIP_PROBE_HIGH
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	0xfffc8000, 0xfffca000, 0xfffcc000, 0xfffce000,
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	0xfffd0000, 0xfffd2000, 0xfffd4000, 0xfffd6000,
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	0xfffd8000, 0xfffda000, 0xfffdc000, 0xfffde000,
	0xfffe0000, 0xfffe2000, 0xfffe4000, 0xfffe6000,
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	0xfffe8000, 0xfffea000, 0xfffec000, 0xfffee000,
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#else
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	0xc8000, 0xca000, 0xcc000, 0xce000,
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	0xd0000, 0xd2000, 0xd4000, 0xd6000,
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	0xd8000, 0xda000, 0xdc000, 0xde000,
	0xe0000, 0xe2000, 0xe4000, 0xe6000,
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	0xe8000, 0xea000, 0xec000, 0xee000,
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#endif
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#endif
	0xffffffff };

static struct mtd_info *doclist = NULL;

struct doc_priv {
	void __iomem *virtadr;
	unsigned long physadr;
	u_char ChipID;
	u_char CDSNControl;
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	int chips_per_floor;	/* The number of chips detected on each floor */
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	int curfloor;
	int curchip;
	int mh0_page;
	int mh1_page;
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	struct rs_control *rs_decoder;
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	struct mtd_info *nextdoc;
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	/* Handle the last stage of initialization (BBT scan, partitioning) */
	int (*late_init)(struct mtd_info *mtd);
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};

/* This is the ecc value computed by the HW ecc generator upon writing an empty
   page, one with all 0xff for data. */
static u_char empty_write_ecc[6] = { 0x4b, 0x00, 0xe2, 0x0e, 0x93, 0xf7 };

#define INFTL_BBT_RESERVED_BLOCKS 4

#define DoC_is_MillenniumPlus(doc) ((doc)->ChipID == DOC_ChipID_DocMilPlus16 || (doc)->ChipID == DOC_ChipID_DocMilPlus32)
#define DoC_is_Millennium(doc) ((doc)->ChipID == DOC_ChipID_DocMil)
#define DoC_is_2000(doc) ((doc)->ChipID == DOC_ChipID_Doc2k)

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static void doc200x_hwcontrol(struct mtd_info *mtd, int cmd,
			      unsigned int bitmask);
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static void doc200x_select_chip(struct nand_chip *this, int chip);
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static int debug = 0;
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module_param(debug, int, 0);

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static int try_dword = 1;
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module_param(try_dword, int, 0);

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static int no_ecc_failures = 0;
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module_param(no_ecc_failures, int, 0);

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static int no_autopart = 0;
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module_param(no_autopart, int, 0);
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static int show_firmware_partition = 0;
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module_param(show_firmware_partition, int, 0);
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#ifdef CONFIG_MTD_NAND_DISKONCHIP_BBTWRITE
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static int inftl_bbt_write = 1;
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#else
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static int inftl_bbt_write = 0;
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#endif
module_param(inftl_bbt_write, int, 0);

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static unsigned long doc_config_location = CONFIG_MTD_NAND_DISKONCHIP_PROBE_ADDRESS;
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module_param(doc_config_location, ulong, 0);
MODULE_PARM_DESC(doc_config_location, "Physical memory address at which to probe for DiskOnChip");

/* Sector size for HW ECC */
#define SECTOR_SIZE 512
/* The sector bytes are packed into NB_DATA 10 bit words */
#define NB_DATA (((SECTOR_SIZE + 1) * 8 + 6) / 10)
/* Number of roots */
#define NROOTS 4
/* First consective root */
#define FCR 510
/* Number of symbols */
#define NN 1023

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/*
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 * The HW decoder in the DoC ASIC's provides us a error syndrome,
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 * which we must convert to a standard syndrome usable by the generic
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 * Reed-Solomon library code.
 *
 * Fabrice Bellard figured this out in the old docecc code. I added
 * some comments, improved a minor bit and converted it to make use
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 * of the generic Reed-Solomon library. tglx
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 */
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static int doc_ecc_decode(struct rs_control *rs, uint8_t *data, uint8_t *ecc)
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{
	int i, j, nerr, errpos[8];
	uint8_t parity;
	uint16_t ds[4], s[5], tmp, errval[8], syn[4];
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	struct rs_codec *cd = rs->codec;
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	memset(syn, 0, sizeof(syn));
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	/* Convert the ecc bytes into words */
	ds[0] = ((ecc[4] & 0xff) >> 0) | ((ecc[5] & 0x03) << 8);
	ds[1] = ((ecc[5] & 0xfc) >> 2) | ((ecc[2] & 0x0f) << 6);
	ds[2] = ((ecc[2] & 0xf0) >> 4) | ((ecc[3] & 0x3f) << 4);
	ds[3] = ((ecc[3] & 0xc0) >> 6) | ((ecc[0] & 0xff) << 2);
	parity = ecc[1];

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	/* Initialize the syndrome buffer */
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	for (i = 0; i < NROOTS; i++)
		s[i] = ds[0];
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	/*
	 *  Evaluate
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	 *  s[i] = ds[3]x^3 + ds[2]x^2 + ds[1]x^1 + ds[0]
	 *  where x = alpha^(FCR + i)
	 */
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	for (j = 1; j < NROOTS; j++) {
		if (ds[j] == 0)
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			continue;
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		tmp = cd->index_of[ds[j]];
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		for (i = 0; i < NROOTS; i++)
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			s[i] ^= cd->alpha_to[rs_modnn(cd, tmp + (FCR + i) * j)];
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	}

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	/* Calc syn[i] = s[i] / alpha^(v + i) */
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	for (i = 0; i < NROOTS; i++) {
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		if (s[i])
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			syn[i] = rs_modnn(cd, cd->index_of[s[i]] + (NN - FCR - i));
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	}
	/* Call the decoder library */
	nerr = decode_rs16(rs, NULL, NULL, 1019, syn, 0, errpos, 0, errval);

	/* Incorrectable errors ? */
	if (nerr < 0)
		return nerr;

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	/*
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	 * Correct the errors. The bitpositions are a bit of magic,
	 * but they are given by the design of the de/encoder circuit
	 * in the DoC ASIC's.
	 */
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	for (i = 0; i < nerr; i++) {
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		int index, bitpos, pos = 1015 - errpos[i];
		uint8_t val;
		if (pos >= NB_DATA && pos < 1019)
			continue;
		if (pos < NB_DATA) {
			/* extract bit position (MSB first) */
			pos = 10 * (NB_DATA - 1 - pos) - 6;
			/* now correct the following 10 bits. At most two bytes
			   can be modified since pos is even */
			index = (pos >> 3) ^ 1;
			bitpos = pos & 7;
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			if ((index >= 0 && index < SECTOR_SIZE) || index == (SECTOR_SIZE + 1)) {
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				val = (uint8_t) (errval[i] >> (2 + bitpos));
				parity ^= val;
				if (index < SECTOR_SIZE)
					data[index] ^= val;
			}
			index = ((pos >> 3) + 1) ^ 1;
			bitpos = (bitpos + 10) & 7;
			if (bitpos == 0)
				bitpos = 8;
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			if ((index >= 0 && index < SECTOR_SIZE) || index == (SECTOR_SIZE + 1)) {
				val = (uint8_t) (errval[i] << (8 - bitpos));
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				parity ^= val;
				if (index < SECTOR_SIZE)
					data[index] ^= val;
			}
		}
	}
	/* If the parity is wrong, no rescue possible */
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	return parity ? -EBADMSG : nerr;
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}

static void DoC_Delay(struct doc_priv *doc, unsigned short cycles)
{
	volatile char dummy;
	int i;
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	for (i = 0; i < cycles; i++) {
		if (DoC_is_Millennium(doc))
			dummy = ReadDOC(doc->virtadr, NOP);
		else if (DoC_is_MillenniumPlus(doc))
			dummy = ReadDOC(doc->virtadr, Mplus_NOP);
		else
			dummy = ReadDOC(doc->virtadr, DOCStatus);
	}
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}

#define CDSN_CTRL_FR_B_MASK	(CDSN_CTRL_FR_B0 | CDSN_CTRL_FR_B1)

/* DOC_WaitReady: Wait for RDY line to be asserted by the flash chip */
static int _DoC_WaitReady(struct doc_priv *doc)
{
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	void __iomem *docptr = doc->virtadr;
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	unsigned long timeo = jiffies + (HZ * 10);

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	if (debug)
		printk("_DoC_WaitReady...\n");
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	/* Out-of-line routine to wait for chip response */
	if (DoC_is_MillenniumPlus(doc)) {
		while ((ReadDOC(docptr, Mplus_FlashControl) & CDSN_CTRL_FR_B_MASK) != CDSN_CTRL_FR_B_MASK) {
			if (time_after(jiffies, timeo)) {
				printk("_DoC_WaitReady timed out.\n");
				return -EIO;
			}
			udelay(1);
			cond_resched();
		}
	} else {
		while (!(ReadDOC(docptr, CDSNControl) & CDSN_CTRL_FR_B)) {
			if (time_after(jiffies, timeo)) {
				printk("_DoC_WaitReady timed out.\n");
				return -EIO;
			}
			udelay(1);
			cond_resched();
		}
	}

	return 0;
}

static inline int DoC_WaitReady(struct doc_priv *doc)
{
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	void __iomem *docptr = doc->virtadr;
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	int ret = 0;

	if (DoC_is_MillenniumPlus(doc)) {
		DoC_Delay(doc, 4);

		if ((ReadDOC(docptr, Mplus_FlashControl) & CDSN_CTRL_FR_B_MASK) != CDSN_CTRL_FR_B_MASK)
			/* Call the out-of-line routine to wait */
			ret = _DoC_WaitReady(doc);
	} else {
		DoC_Delay(doc, 4);

		if (!(ReadDOC(docptr, CDSNControl) & CDSN_CTRL_FR_B))
			/* Call the out-of-line routine to wait */
			ret = _DoC_WaitReady(doc);
		DoC_Delay(doc, 2);
	}

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	if (debug)
		printk("DoC_WaitReady OK\n");
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	return ret;
}

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static void doc2000_write_byte(struct nand_chip *this, u_char datum)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
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	if (debug)
		printk("write_byte %02x\n", datum);
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	WriteDOC(datum, docptr, CDSNSlowIO);
	WriteDOC(datum, docptr, 2k_CDSN_IO);
}

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static u_char doc2000_read_byte(struct nand_chip *this)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
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	u_char ret;

	ReadDOC(docptr, CDSNSlowIO);
	DoC_Delay(doc, 2);
	ret = ReadDOC(docptr, 2k_CDSN_IO);
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	if (debug)
		printk("read_byte returns %02x\n", ret);
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	return ret;
}

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static void doc2000_writebuf(struct nand_chip *this, const u_char *buf,
			     int len)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
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	int i;
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	if (debug)
		printk("writebuf of %d bytes: ", len);
	for (i = 0; i < len; i++) {
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		WriteDOC_(buf[i], docptr, DoC_2k_CDSN_IO + i);
		if (debug && i < 16)
			printk("%02x ", buf[i]);
	}
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	if (debug)
		printk("\n");
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}

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static void doc2000_readbuf(struct nand_chip *this, u_char *buf, int len)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
	int i;
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	if (debug)
		printk("readbuf of %d bytes: ", len);
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	for (i = 0; i < len; i++)
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		buf[i] = ReadDOC(docptr, 2k_CDSN_IO + i);
}

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static void doc2000_readbuf_dword(struct nand_chip *this, u_char *buf, int len)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
	int i;
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	if (debug)
		printk("readbuf_dword of %d bytes: ", len);
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	if (unlikely((((unsigned long)buf) | len) & 3)) {
		for (i = 0; i < len; i++) {
			*(uint8_t *) (&buf[i]) = ReadDOC(docptr, 2k_CDSN_IO + i);
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		}
	} else {
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		for (i = 0; i < len; i += 4) {
			*(uint32_t *) (&buf[i]) = readl(docptr + DoC_2k_CDSN_IO + i);
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		}
	}
}

static uint16_t __init doc200x_ident_chip(struct mtd_info *mtd, int nr)
{
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	struct nand_chip *this = mtd_to_nand(mtd);
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	struct doc_priv *doc = nand_get_controller_data(this);
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	uint16_t ret;

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	doc200x_select_chip(this, nr);
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	doc200x_hwcontrol(mtd, NAND_CMD_READID,
			  NAND_CTRL_CLE | NAND_CTRL_CHANGE);
	doc200x_hwcontrol(mtd, 0, NAND_CTRL_ALE | NAND_CTRL_CHANGE);
	doc200x_hwcontrol(mtd, NAND_CMD_NONE, NAND_NCE | NAND_CTRL_CHANGE);
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	/* We can't use dev_ready here, but at least we wait for the
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	 * command to complete
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	 */
	udelay(50);
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	ret = this->read_byte(this) << 8;
	ret |= this->read_byte(this);
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	if (doc->ChipID == DOC_ChipID_Doc2k && try_dword && !nr) {
		/* First chip probe. See if we get same results by 32-bit access */
		union {
			uint32_t dword;
			uint8_t byte[4];
		} ident;
		void __iomem *docptr = doc->virtadr;

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		doc200x_hwcontrol(mtd, NAND_CMD_READID,
				  NAND_CTRL_CLE | NAND_CTRL_CHANGE);
		doc200x_hwcontrol(mtd, 0, NAND_CTRL_ALE | NAND_CTRL_CHANGE);
		doc200x_hwcontrol(mtd, NAND_CMD_NONE,
				  NAND_NCE | NAND_CTRL_CHANGE);
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		udelay(50);

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		ident.dword = readl(docptr + DoC_2k_CDSN_IO);
		if (((ident.byte[0] << 8) | ident.byte[1]) == ret) {
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			pr_info("DiskOnChip 2000 responds to DWORD access\n");
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			this->read_buf = &doc2000_readbuf_dword;
		}
	}
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	return ret;
}

static void __init doc2000_count_chips(struct mtd_info *mtd)
{
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	struct nand_chip *this = mtd_to_nand(mtd);
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	struct doc_priv *doc = nand_get_controller_data(this);
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	uint16_t mfrid;
	int i;

	/* Max 4 chips per floor on DiskOnChip 2000 */
	doc->chips_per_floor = 4;

	/* Find out what the first chip is */
	mfrid = doc200x_ident_chip(mtd, 0);

	/* Find how many chips in each floor. */
	for (i = 1; i < 4; i++) {
		if (doc200x_ident_chip(mtd, i) != mfrid)
			break;
	}
	doc->chips_per_floor = i;
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	pr_debug("Detected %d chips per floor.\n", i);
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}

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static int doc200x_wait(struct mtd_info *mtd, struct nand_chip *this)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	int status;
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	DoC_WaitReady(doc);
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	nand_status_op(this, NULL);
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	DoC_WaitReady(doc);
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	status = (int)this->read_byte(this);
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	return status;
}

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static void doc2001_write_byte(struct nand_chip *this, u_char datum)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
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	WriteDOC(datum, docptr, CDSNSlowIO);
	WriteDOC(datum, docptr, Mil_CDSN_IO);
	WriteDOC(datum, docptr, WritePipeTerm);
}

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static u_char doc2001_read_byte(struct nand_chip *this)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
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	//ReadDOC(docptr, CDSNSlowIO);
	/* 11.4.5 -- delay twice to allow extended length cycle */
	DoC_Delay(doc, 2);
	ReadDOC(docptr, ReadPipeInit);
	//return ReadDOC(docptr, Mil_CDSN_IO);
	return ReadDOC(docptr, LastDataRead);
}

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static void doc2001_writebuf(struct nand_chip *this, const u_char *buf, int len)
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{
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
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	int i;

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	for (i = 0; i < len; i++)
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		WriteDOC_(buf[i], docptr, DoC_Mil_CDSN_IO + i);
	/* Terminate write pipeline */
	WriteDOC(0x00, docptr, WritePipeTerm);
}

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static void doc2001_readbuf(struct nand_chip *this, u_char *buf, int len)
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{
487
	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
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	int i;

	/* Start read pipeline */
	ReadDOC(docptr, ReadPipeInit);

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	for (i = 0; i < len - 1; i++)
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		buf[i] = ReadDOC(docptr, Mil_CDSN_IO + (i & 0xff));

	/* Terminate read pipeline */
	buf[i] = ReadDOC(docptr, LastDataRead);
}

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static u_char doc2001plus_read_byte(struct nand_chip *this)
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{
503
	struct doc_priv *doc = nand_get_controller_data(this);
504
	void __iomem *docptr = doc->virtadr;
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	u_char ret;

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	ReadDOC(docptr, Mplus_ReadPipeInit);
	ReadDOC(docptr, Mplus_ReadPipeInit);
	ret = ReadDOC(docptr, Mplus_LastDataRead);
	if (debug)
		printk("read_byte returns %02x\n", ret);
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	return ret;
}

515
static void doc2001plus_writebuf(struct nand_chip *this, const u_char *buf, int len)
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{
517
	struct doc_priv *doc = nand_get_controller_data(this);
518
	void __iomem *docptr = doc->virtadr;
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	int i;

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	if (debug)
		printk("writebuf of %d bytes: ", len);
	for (i = 0; i < len; i++) {
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		WriteDOC_(buf[i], docptr, DoC_Mil_CDSN_IO + i);
		if (debug && i < 16)
			printk("%02x ", buf[i]);
	}
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	if (debug)
		printk("\n");
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}

532
static void doc2001plus_readbuf(struct nand_chip *this, u_char *buf, int len)
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{
534
	struct doc_priv *doc = nand_get_controller_data(this);
535
	void __iomem *docptr = doc->virtadr;
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	int i;

538 539
	if (debug)
		printk("readbuf of %d bytes: ", len);
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	/* Start read pipeline */
	ReadDOC(docptr, Mplus_ReadPipeInit);
	ReadDOC(docptr, Mplus_ReadPipeInit);

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	for (i = 0; i < len - 2; i++) {
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		buf[i] = ReadDOC(docptr, Mil_CDSN_IO);
		if (debug && i < 16)
			printk("%02x ", buf[i]);
	}

	/* Terminate read pipeline */
552
	buf[len - 2] = ReadDOC(docptr, Mplus_LastDataRead);
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	if (debug && i < 16)
554 555
		printk("%02x ", buf[len - 2]);
	buf[len - 1] = ReadDOC(docptr, Mplus_LastDataRead);
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	if (debug && i < 16)
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		printk("%02x ", buf[len - 1]);
	if (debug)
		printk("\n");
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}

562
static void doc2001plus_select_chip(struct nand_chip *this, int chip)
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{
564
	struct doc_priv *doc = nand_get_controller_data(this);
565
	void __iomem *docptr = doc->virtadr;
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	int floor = 0;

568 569
	if (debug)
		printk("select chip (%d)\n", chip);
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	if (chip == -1) {
		/* Disable flash internally */
		WriteDOC(0, docptr, Mplus_FlashSelect);
		return;
	}

	floor = chip / doc->chips_per_floor;
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	chip -= (floor * doc->chips_per_floor);
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	/* Assert ChipEnable and deassert WriteProtect */
	WriteDOC((DOC_FLASH_CE), docptr, Mplus_FlashSelect);
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	nand_reset_op(this);
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	doc->curchip = chip;
	doc->curfloor = floor;
}

588
static void doc200x_select_chip(struct nand_chip *this, int chip)
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{
590
	struct mtd_info *mtd = nand_to_mtd(this);
591
	struct doc_priv *doc = nand_get_controller_data(this);
592
	void __iomem *docptr = doc->virtadr;
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	int floor = 0;

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	if (debug)
		printk("select chip (%d)\n", chip);
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	if (chip == -1)
		return;

	floor = chip / doc->chips_per_floor;
602
	chip -= (floor * doc->chips_per_floor);
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	/* 11.4.4 -- deassert CE before changing chip */
605
	doc200x_hwcontrol(mtd, NAND_CMD_NONE, 0 | NAND_CTRL_CHANGE);
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	WriteDOC(floor, docptr, FloorSelect);
	WriteDOC(chip, docptr, CDSNDeviceSelect);

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	doc200x_hwcontrol(mtd, NAND_CMD_NONE, NAND_NCE | NAND_CTRL_CHANGE);
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	doc->curchip = chip;
	doc->curfloor = floor;
}

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#define CDSN_CTRL_MSK (CDSN_CTRL_CE | CDSN_CTRL_CLE | CDSN_CTRL_ALE)

static void doc200x_hwcontrol(struct mtd_info *mtd, int cmd,
			      unsigned int ctrl)
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{
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	struct nand_chip *this = mtd_to_nand(mtd);
622
	struct doc_priv *doc = nand_get_controller_data(this);
623
	void __iomem *docptr = doc->virtadr;
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625 626 627 628 629 630 631 632
	if (ctrl & NAND_CTRL_CHANGE) {
		doc->CDSNControl &= ~CDSN_CTRL_MSK;
		doc->CDSNControl |= ctrl & CDSN_CTRL_MSK;
		if (debug)
			printk("hwcontrol(%d): %02x\n", cmd, doc->CDSNControl);
		WriteDOC(doc->CDSNControl, docptr, CDSNControl);
		/* 11.4.3 -- 4 NOPs after CSDNControl write */
		DoC_Delay(doc, 4);
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	}
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	if (cmd != NAND_CMD_NONE) {
		if (DoC_is_2000(doc))
636
			doc2000_write_byte(this, cmd);
637
		else
638
			doc2001_write_byte(this, cmd);
639
	}
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}

642
static void doc2001plus_command(struct mtd_info *mtd, unsigned command, int column, int page_addr)
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{
644
	struct nand_chip *this = mtd_to_nand(mtd);
645
	struct doc_priv *doc = nand_get_controller_data(this);
646
	void __iomem *docptr = doc->virtadr;
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	/*
	 * Must terminate write pipeline before sending any commands
	 * to the device.
	 */
	if (command == NAND_CMD_PAGEPROG) {
		WriteDOC(0x00, docptr, Mplus_WritePipeTerm);
		WriteDOC(0x00, docptr, Mplus_WritePipeTerm);
	}

	/*
	 * Write out the command to the device.
	 */
	if (command == NAND_CMD_SEQIN) {
		int readcmd;

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		if (column >= mtd->writesize) {
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			/* OOB area */
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			column -= mtd->writesize;
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			readcmd = NAND_CMD_READOOB;
		} else if (column < 256) {
			/* First 256 bytes --> READ0 */
			readcmd = NAND_CMD_READ0;
		} else {
			column -= 256;
			readcmd = NAND_CMD_READ1;
		}
		WriteDOC(readcmd, docptr, Mplus_FlashCmd);
	}
	WriteDOC(command, docptr, Mplus_FlashCmd);
	WriteDOC(0, docptr, Mplus_WritePipeTerm);
	WriteDOC(0, docptr, Mplus_WritePipeTerm);

	if (column != -1 || page_addr != -1) {
		/* Serially input address */
		if (column != -1) {
			/* Adjust columns for 16 bit buswidth */
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			if (this->options & NAND_BUSWIDTH_16 &&
					!nand_opcode_8bits(command))
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				column >>= 1;
			WriteDOC(column, docptr, Mplus_FlashAddress);
		}
		if (page_addr != -1) {
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			WriteDOC((unsigned char)(page_addr & 0xff), docptr, Mplus_FlashAddress);
			WriteDOC((unsigned char)((page_addr >> 8) & 0xff), docptr, Mplus_FlashAddress);
692
			if (this->options & NAND_ROW_ADDR_3) {
693
				WriteDOC((unsigned char)((page_addr >> 16) & 0x0f), docptr, Mplus_FlashAddress);
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				printk("high density\n");
			}
		}
		WriteDOC(0, docptr, Mplus_WritePipeTerm);
		WriteDOC(0, docptr, Mplus_WritePipeTerm);
		/* deassert ALE */
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		if (command == NAND_CMD_READ0 || command == NAND_CMD_READ1 ||
		    command == NAND_CMD_READOOB || command == NAND_CMD_READID)
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			WriteDOC(0, docptr, Mplus_FlashControl);
	}

705
	/*
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	 * program and erase have their own busy handlers
	 * status and sequential in needs no delay
708
	 */
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	switch (command) {

	case NAND_CMD_PAGEPROG:
	case NAND_CMD_ERASE1:
	case NAND_CMD_ERASE2:
	case NAND_CMD_SEQIN:
	case NAND_CMD_STATUS:
		return;

	case NAND_CMD_RESET:
		if (this->dev_ready)
			break;
		udelay(this->chip_delay);
		WriteDOC(NAND_CMD_STATUS, docptr, Mplus_FlashCmd);
		WriteDOC(0, docptr, Mplus_WritePipeTerm);
		WriteDOC(0, docptr, Mplus_WritePipeTerm);
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		while (!(this->read_byte(this) & 0x40)) ;
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		return;

728
		/* This applies to read commands */
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	default:
730
		/*
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		 * If we don't have access to the busy pin, we apply the given
		 * command delay
733
		 */
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		if (!this->dev_ready) {
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			udelay(this->chip_delay);
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			return;
		}
	}

	/* Apply this short delay always to ensure that we do wait tWB in
	 * any case on any machine. */
742
	ndelay(100);
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	/* wait until command is processed */
744
	while (!this->dev_ready(mtd)) ;
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}

static int doc200x_dev_ready(struct mtd_info *mtd)
{
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	struct nand_chip *this = mtd_to_nand(mtd);
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	struct doc_priv *doc = nand_get_controller_data(this);
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	void __iomem *docptr = doc->virtadr;
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	if (DoC_is_MillenniumPlus(doc)) {
		/* 11.4.2 -- must NOP four times before checking FR/B# */
		DoC_Delay(doc, 4);
		if ((ReadDOC(docptr, Mplus_FlashControl) & CDSN_CTRL_FR_B_MASK) != CDSN_CTRL_FR_B_MASK) {
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			if (debug)
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				printk("not ready\n");
			return 0;
		}
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		if (debug)
			printk("was ready\n");
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		return 1;
	} else {
		/* 11.4.2 -- must NOP four times before checking FR/B# */
		DoC_Delay(doc, 4);
		if (!(ReadDOC(docptr, CDSNControl) & CDSN_CTRL_FR_B)) {
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			if (debug)
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				printk("not ready\n");
			return 0;
		}
		/* 11.4.2 -- Must NOP twice if it's ready */
		DoC_Delay(doc, 2);
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		if (debug)
			printk("was ready\n");
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		return 1;
	}
}

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static int doc200x_block_bad(struct nand_chip *this, loff_t ofs)
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{
	/* This is our last resort if we couldn't find or create a BBT.  Just
	   pretend all blocks are good. */
	return 0;
}

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static void doc200x_enable_hwecc(struct nand_chip *this, int mode)
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{
789
	struct doc_priv *doc = nand_get_controller_data(this);
790
	void __iomem *docptr = doc->virtadr;
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	/* Prime the ECC engine */
793
	switch (mode) {
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	case NAND_ECC_READ:
		WriteDOC(DOC_ECC_RESET, docptr, ECCConf);
		WriteDOC(DOC_ECC_EN, docptr, ECCConf);
		break;
	case NAND_ECC_WRITE:
		WriteDOC(DOC_ECC_RESET, docptr, ECCConf);
		WriteDOC(DOC_ECC_EN | DOC_ECC_RW, docptr, ECCConf);
		break;
	}
}

805
static void doc2001plus_enable_hwecc(struct nand_chip *this, int mode)
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{
807
	struct doc_priv *doc = nand_get_controller_data(this);
808
	void __iomem *docptr = doc->virtadr;
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	/* Prime the ECC engine */
811
	switch (mode) {
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	case NAND_ECC_READ:
		WriteDOC(DOC_ECC_RESET, docptr, Mplus_ECCConf);
		WriteDOC(DOC_ECC_EN, docptr, Mplus_ECCConf);
		break;
	case NAND_ECC_WRITE:
		WriteDOC(DOC_ECC_RESET, docptr, Mplus_ECCConf);
		WriteDOC(DOC_ECC_EN | DOC_ECC_RW, docptr, Mplus_ECCConf);
		break;
	}
}

/* This code is only called on write */
824 825
static int doc200x_calculate_ecc(struct nand_chip *this, const u_char *dat,
				 unsigned char *ecc_code)
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{
827
	struct doc_priv *doc = nand_get_controller_data(this);
828
	void __iomem *docptr = doc->virtadr;
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	int i;
	int emptymatch = 1;

	/* flush the pipeline */
	if (DoC_is_2000(doc)) {
		WriteDOC(doc->CDSNControl & ~CDSN_CTRL_FLASH_IO, docptr, CDSNControl);
		WriteDOC(0, docptr, 2k_CDSN_IO);
		WriteDOC(0, docptr, 2k_CDSN_IO);
		WriteDOC(0, docptr, 2k_CDSN_IO);
		WriteDOC(doc->CDSNControl, docptr, CDSNControl);
	} else if (DoC_is_MillenniumPlus(doc)) {
		WriteDOC(0, docptr, Mplus_NOP);
		WriteDOC(0, docptr, Mplus_NOP);
		WriteDOC(0, docptr, Mplus_NOP);
	} else {
		WriteDOC(0, docptr, NOP);
		WriteDOC(0, docptr, NOP);
		WriteDOC(0, docptr, NOP);
	}

	for (i = 0; i < 6; i++) {
		if (DoC_is_MillenniumPlus(doc))
			ecc_code[i] = ReadDOC_(docptr, DoC_Mplus_ECCSyndrome0 + i);
852
		else
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			ecc_code[i] = ReadDOC_(docptr, DoC_ECCSyndrome0 + i);
		if (ecc_code[i] != empty_write_ecc[i])
			emptymatch = 0;
	}
	if (DoC_is_MillenniumPlus(doc))
		WriteDOC(DOC_ECC_DIS, docptr, Mplus_ECCConf);
	else
		WriteDOC(DOC_ECC_DIS, docptr, ECCConf);
#if 0
	/* If emptymatch=1, we might have an all-0xff data buffer.  Check. */
	if (emptymatch) {
		/* Note: this somewhat expensive test should not be triggered
		   often.  It could be optimized away by examining the data in
		   the writebuf routine, and remembering the result. */
		for (i = 0; i < 512; i++) {
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			if (dat[i] == 0xff)
				continue;
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			emptymatch = 0;
			break;
		}
	}
	/* If emptymatch still =1, we do have an all-0xff data buffer.
	   Return all-0xff ecc value instead of the computed one, so
	   it'll look just like a freshly-erased page. */
877 878
	if (emptymatch)
		memset(ecc_code, 0xff, 6);
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#endif
	return 0;
}

883
static int doc200x_correct_data(struct nand_chip *this, u_char *dat,
884
				u_char *read_ecc, u_char *isnull)
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{
	int i, ret = 0;
887
	struct doc_priv *doc = nand_get_controller_data(this);
888
	void __iomem *docptr = doc->virtadr;
889
	uint8_t calc_ecc[6];
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	volatile u_char dummy;
891

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	/* flush the pipeline */
	if (DoC_is_2000(doc)) {
		dummy = ReadDOC(docptr, 2k_ECCStatus);
		dummy = ReadDOC(docptr, 2k_ECCStatus);
		dummy = ReadDOC(docptr, 2k_ECCStatus);
	} else if (DoC_is_MillenniumPlus(doc)) {
		dummy = ReadDOC(docptr, Mplus_ECCConf);
		dummy = ReadDOC(docptr, Mplus_ECCConf);
		dummy = ReadDOC(docptr, Mplus_ECCConf);
	} else {
		dummy = ReadDOC(docptr, ECCConf);
		dummy = ReadDOC(docptr, ECCConf);
		dummy = ReadDOC(docptr, ECCConf);
	}
906

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	/* Error occurred ? */
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	if (dummy & 0x80) {
		for (i = 0; i < 6; i++) {
			if (DoC_is_MillenniumPlus(doc))
				calc_ecc[i] = ReadDOC_(docptr, DoC_Mplus_ECCSyndrome0 + i);
			else
				calc_ecc[i] = ReadDOC_(docptr, DoC_ECCSyndrome0 + i);
		}
915

916
		ret = doc_ecc_decode(doc->rs_decoder, dat, calc_ecc);
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		if (ret > 0)
918 919
			pr_err("doc200x_correct_data corrected %d errors\n",
			       ret);
920
	}
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	if (DoC_is_MillenniumPlus(doc))
		WriteDOC(DOC_ECC_DIS, docptr, Mplus_ECCConf);
	else
		WriteDOC(DOC_ECC_DIS, docptr, ECCConf);
925
	if (no_ecc_failures && mtd_is_eccerr(ret)) {
926
		pr_err("suppressing ECC failure\n");
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		ret = 0;
	}
	return ret;
}
931

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//u_char mydatabuf[528];

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static int doc200x_ooblayout_ecc(struct mtd_info *mtd, int section,
				 struct mtd_oob_region *oobregion)
{
	if (section)
		return -ERANGE;

	oobregion->offset = 0;
	oobregion->length = 6;

	return 0;
}

static int doc200x_ooblayout_free(struct mtd_info *mtd, int section,
				  struct mtd_oob_region *oobregion)
{
	if (section > 1)
		return -ERANGE;

	/*
	 * The strange out-of-order free bytes definition is a (possibly
	 * unneeded) attempt to retain compatibility.  It used to read:
	 *	.oobfree = { {8, 8} }
	 * Since that leaves two bytes unusable, it was changed.  But the
	 * following scheme might affect existing jffs2 installs by moving the
	 * cleanmarker:
	 *	.oobfree = { {6, 10} }
	 * jffs2 seems to handle the above gracefully, but the current scheme
	 * seems safer. The only problem with it is that any code retrieving
	 * free bytes position must be able to handle out-of-order segments.
	 */
	if (!section) {
		oobregion->offset = 8;
		oobregion->length = 8;
	} else {
		oobregion->offset = 6;
		oobregion->length = 2;
	}

	return 0;
}

static const struct mtd_ooblayout_ops doc200x_ooblayout_ops = {
	.ecc = doc200x_ooblayout_ecc,
	.free = doc200x_ooblayout_free,
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};
979

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/* Find the (I)NFTL Media Header, and optionally also the mirror media header.
981
   On successful return, buf will contain a copy of the media header for
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   further processing.  id is the string to scan for, and will presumably be
   either "ANAND" or "BNAND".  If findmirror=1, also look for the mirror media
   header.  The page #s of the found media headers are placed in mh0_page and
   mh1_page in the DOC private structure. */
986
static int __init find_media_headers(struct mtd_info *mtd, u_char *buf, const char *id, int findmirror)
L
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987
{
988
	struct nand_chip *this = mtd_to_nand(mtd);
989
	struct doc_priv *doc = nand_get_controller_data(this);
990
	unsigned offs;
L
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991 992 993
	int ret;
	size_t retlen;

994
	for (offs = 0; offs < mtd->size; offs += mtd->erasesize) {
995
		ret = mtd_read(mtd, offs, mtd->writesize, &retlen, buf);
J
Joern Engel 已提交
996
		if (retlen != mtd->writesize)
997
			continue;
L
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998
		if (ret) {
999
			pr_warn("ECC error scanning DOC at 0x%x\n", offs);
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1000
		}
1001 1002
		if (memcmp(buf, id, 6))
			continue;
1003
		pr_info("Found DiskOnChip %s Media Header at 0x%x\n", id, offs);
L
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1004 1005
		if (doc->mh0_page == -1) {
			doc->mh0_page = offs >> this->page_shift;
1006 1007
			if (!findmirror)
				return 1;
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			continue;
		}
		doc->mh1_page = offs >> this->page_shift;
		return 2;
	}
	if (doc->mh0_page == -1) {
1014
		pr_warn("DiskOnChip %s Media Header not found.\n", id);
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1015 1016 1017 1018 1019
		return 0;
	}
	/* Only one mediaheader was found.  We want buf to contain a
	   mediaheader on return, so we'll have to re-read the one we found. */
	offs = doc->mh0_page << this->page_shift;
1020
	ret = mtd_read(mtd, offs, mtd->writesize, &retlen, buf);
J
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1021
	if (retlen != mtd->writesize) {
L
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1022
		/* Insanity.  Give up. */
1023
		pr_err("Read DiskOnChip Media Header once, but can't reread it???\n");
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1024 1025 1026 1027 1028
		return 0;
	}
	return 1;
}

1029
static inline int __init nftl_partscan(struct mtd_info *mtd, struct mtd_partition *parts)
L
Linus Torvalds 已提交
1030
{
1031
	struct nand_chip *this = mtd_to_nand(mtd);
1032
	struct doc_priv *doc = nand_get_controller_data(this);
L
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1033 1034 1035 1036
	int ret = 0;
	u_char *buf;
	struct NFTLMediaHeader *mh;
	const unsigned psize = 1 << this->page_shift;
1037
	int numparts = 0;
L
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1038 1039 1040
	unsigned blocks, maxblocks;
	int offs, numheaders;

J
Joern Engel 已提交
1041
	buf = kmalloc(mtd->writesize, GFP_KERNEL);
L
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1042 1043 1044
	if (!buf) {
		return 0;
	}
1045 1046 1047
	if (!(numheaders = find_media_headers(mtd, buf, "ANAND", 1)))
		goto out;
	mh = (struct NFTLMediaHeader *)buf;
L
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1048

1049 1050 1051
	le16_to_cpus(&mh->NumEraseUnits);
	le16_to_cpus(&mh->FirstPhysicalEUN);
	le32_to_cpus(&mh->FormattedSize);
1052

1053 1054 1055 1056 1057
	pr_info("    DataOrgID        = %s\n"
		"    NumEraseUnits    = %d\n"
		"    FirstPhysicalEUN = %d\n"
		"    FormattedSize    = %d\n"
		"    UnitSizeFactor   = %d\n",
L
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1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068
		mh->DataOrgID, mh->NumEraseUnits,
		mh->FirstPhysicalEUN, mh->FormattedSize,
		mh->UnitSizeFactor);

	blocks = mtd->size >> this->phys_erase_shift;
	maxblocks = min(32768U, mtd->erasesize - psize);

	if (mh->UnitSizeFactor == 0x00) {
		/* Auto-determine UnitSizeFactor.  The constraints are:
		   - There can be at most 32768 virtual blocks.
		   - There can be at most (virtual block size - page size)
1069 1070
		   virtual blocks (because MediaHeader+BBT must fit in 1).
		 */
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		mh->UnitSizeFactor = 0xff;
		while (blocks > maxblocks) {
			blocks >>= 1;
			maxblocks = min(32768U, (maxblocks << 1) + psize);
			mh->UnitSizeFactor--;
		}
1077
		pr_warn("UnitSizeFactor=0x00 detected.  Correct value is assumed to be 0x%02x.\n", mh->UnitSizeFactor);
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1078 1079 1080 1081 1082
	}

	/* NOTE: The lines below modify internal variables of the NAND and MTD
	   layers; variables with have already been configured by nand_scan.
	   Unfortunately, we didn't know before this point what these values
L
Lucas De Marchi 已提交
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	   should be.  Thus, this code is somewhat dependent on the exact
L
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	   implementation of the NAND layer.  */
	if (mh->UnitSizeFactor != 0xff) {
		this->bbt_erase_shift += (0xff - mh->UnitSizeFactor);
		mtd->erasesize <<= (0xff - mh->UnitSizeFactor);
1088
		pr_info("Setting virtual erase size to %d\n", mtd->erasesize);
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		blocks = mtd->size >> this->bbt_erase_shift;
		maxblocks = min(32768U, mtd->erasesize - psize);
	}

	if (blocks > maxblocks) {
1094
		pr_err("UnitSizeFactor of 0x%02x is inconsistent with device size.  Aborting.\n", mh->UnitSizeFactor);
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		goto out;
	}

	/* Skip past the media headers. */
	offs = max(doc->mh0_page, doc->mh1_page);
	offs <<= this->page_shift;
	offs += mtd->erasesize;

1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115
	if (show_firmware_partition == 1) {
		parts[0].name = " DiskOnChip Firmware / Media Header partition";
		parts[0].offset = 0;
		parts[0].size = offs;
		numparts = 1;
	}

	parts[numparts].name = " DiskOnChip BDTL partition";
	parts[numparts].offset = offs;
	parts[numparts].size = (mh->NumEraseUnits - numheaders) << this->bbt_erase_shift;

	offs += parts[numparts].size;
	numparts++;
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1116 1117

	if (offs < mtd->size) {
1118 1119 1120 1121
		parts[numparts].name = " DiskOnChip Remainder partition";
		parts[numparts].offset = offs;
		parts[numparts].size = mtd->size - offs;
		numparts++;
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1122
	}
1123 1124

	ret = numparts;
1125
 out:
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	kfree(buf);
	return ret;
}

/* This is a stripped-down copy of the code in inftlmount.c */
1131
static inline int __init inftl_partscan(struct mtd_info *mtd, struct mtd_partition *parts)
L
Linus Torvalds 已提交
1132
{
1133
	struct nand_chip *this = mtd_to_nand(mtd);
1134
	struct doc_priv *doc = nand_get_controller_data(this);
L
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	int ret = 0;
	u_char *buf;
	struct INFTLMediaHeader *mh;
	struct INFTLPartition *ip;
	int numparts = 0;
	int blocks;
	int vshift, lastvunit = 0;
	int i;
	int end = mtd->size;

	if (inftl_bbt_write)
		end -= (INFTL_BBT_RESERVED_BLOCKS << this->phys_erase_shift);

J
Joern Engel 已提交
1148
	buf = kmalloc(mtd->writesize, GFP_KERNEL);
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1149 1150 1151 1152
	if (!buf) {
		return 0;
	}

1153 1154
	if (!find_media_headers(mtd, buf, "BNAND", 0))
		goto out;
L
Linus Torvalds 已提交
1155
	doc->mh1_page = doc->mh0_page + (4096 >> this->page_shift);
1156
	mh = (struct INFTLMediaHeader *)buf;
L
Linus Torvalds 已提交
1157

1158 1159 1160 1161 1162 1163
	le32_to_cpus(&mh->NoOfBootImageBlocks);
	le32_to_cpus(&mh->NoOfBinaryPartitions);
	le32_to_cpus(&mh->NoOfBDTLPartitions);
	le32_to_cpus(&mh->BlockMultiplierBits);
	le32_to_cpus(&mh->FormatFlags);
	le32_to_cpus(&mh->PercentUsed);
1164

1165 1166 1167 1168 1169 1170 1171 1172
	pr_info("    bootRecordID          = %s\n"
		"    NoOfBootImageBlocks   = %d\n"
		"    NoOfBinaryPartitions  = %d\n"
		"    NoOfBDTLPartitions    = %d\n"
		"    BlockMultiplerBits    = %d\n"
		"    FormatFlgs            = %d\n"
		"    OsakVersion           = %d.%d.%d.%d\n"
		"    PercentUsed           = %d\n",
L
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1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186
		mh->bootRecordID, mh->NoOfBootImageBlocks,
		mh->NoOfBinaryPartitions,
		mh->NoOfBDTLPartitions,
		mh->BlockMultiplierBits, mh->FormatFlags,
		((unsigned char *) &mh->OsakVersion)[0] & 0xf,
		((unsigned char *) &mh->OsakVersion)[1] & 0xf,
		((unsigned char *) &mh->OsakVersion)[2] & 0xf,
		((unsigned char *) &mh->OsakVersion)[3] & 0xf,
		mh->PercentUsed);

	vshift = this->phys_erase_shift + mh->BlockMultiplierBits;

	blocks = mtd->size >> vshift;
	if (blocks > 32768) {
1187
		pr_err("BlockMultiplierBits=%d is inconsistent with device size.  Aborting.\n", mh->BlockMultiplierBits);
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		goto out;
	}

	blocks = doc->chips_per_floor << (this->chip_shift - this->phys_erase_shift);
	if (inftl_bbt_write && (blocks > mtd->erasesize)) {
1193
		pr_err("Writeable BBTs spanning more than one erase block are not yet supported.  FIX ME!\n");
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		goto out;
	}

	/* Scan the partitions */
	for (i = 0; (i < 4); i++) {
		ip = &(mh->Partitions[i]);
1200 1201 1202 1203 1204 1205
		le32_to_cpus(&ip->virtualUnits);
		le32_to_cpus(&ip->firstUnit);
		le32_to_cpus(&ip->lastUnit);
		le32_to_cpus(&ip->flags);
		le32_to_cpus(&ip->spareUnits);
		le32_to_cpus(&ip->Reserved0);
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1206

1207
		pr_info("    PARTITION[%d] ->\n"
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1208 1209 1210 1211 1212 1213 1214 1215 1216
			"        virtualUnits    = %d\n"
			"        firstUnit       = %d\n"
			"        lastUnit        = %d\n"
			"        flags           = 0x%x\n"
			"        spareUnits      = %d\n",
			i, ip->virtualUnits, ip->firstUnit,
			ip->lastUnit, ip->flags,
			ip->spareUnits);

1217 1218
		if ((show_firmware_partition == 1) &&
		    (i == 0) && (ip->firstUnit > 0)) {
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1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231
			parts[0].name = " DiskOnChip IPL / Media Header partition";
			parts[0].offset = 0;
			parts[0].size = mtd->erasesize * ip->firstUnit;
			numparts = 1;
		}

		if (ip->flags & INFTL_BINARY)
			parts[numparts].name = " DiskOnChip BDK partition";
		else
			parts[numparts].name = " DiskOnChip BDTL partition";
		parts[numparts].offset = ip->firstUnit << vshift;
		parts[numparts].size = (1 + ip->lastUnit - ip->firstUnit) << vshift;
		numparts++;
1232 1233 1234 1235
		if (ip->lastUnit > lastvunit)
			lastvunit = ip->lastUnit;
		if (ip->flags & INFTL_LAST)
			break;
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1236 1237 1238 1239 1240 1241 1242 1243 1244
	}
	lastvunit++;
	if ((lastvunit << vshift) < end) {
		parts[numparts].name = " DiskOnChip Remainder partition";
		parts[numparts].offset = lastvunit << vshift;
		parts[numparts].size = end - parts[numparts].offset;
		numparts++;
	}
	ret = numparts;
1245
 out:
L
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1246 1247 1248 1249 1250 1251 1252
	kfree(buf);
	return ret;
}

static int __init nftl_scan_bbt(struct mtd_info *mtd)
{
	int ret, numparts;
1253
	struct nand_chip *this = mtd_to_nand(mtd);
1254
	struct doc_priv *doc = nand_get_controller_data(this);
L
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1255 1256
	struct mtd_partition parts[2];

1257
	memset((char *)parts, 0, sizeof(parts));
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1258 1259 1260
	/* On NFTL, we have to find the media headers before we can read the
	   BBTs, since they're stored in the media header eraseblocks. */
	numparts = nftl_partscan(mtd, parts);
1261 1262
	if (!numparts)
		return -EIO;
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1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277
	this->bbt_td->options = NAND_BBT_ABSPAGE | NAND_BBT_8BIT |
				NAND_BBT_SAVECONTENT | NAND_BBT_WRITE |
				NAND_BBT_VERSION;
	this->bbt_td->veroffs = 7;
	this->bbt_td->pages[0] = doc->mh0_page + 1;
	if (doc->mh1_page != -1) {
		this->bbt_md->options = NAND_BBT_ABSPAGE | NAND_BBT_8BIT |
					NAND_BBT_SAVECONTENT | NAND_BBT_WRITE |
					NAND_BBT_VERSION;
		this->bbt_md->veroffs = 7;
		this->bbt_md->pages[0] = doc->mh1_page + 1;
	} else {
		this->bbt_md = NULL;
	}

1278
	ret = nand_create_bbt(this);
1279
	if (ret)
L
Linus Torvalds 已提交
1280
		return ret;
1281

1282
	return mtd_device_register(mtd, parts, no_autopart ? 0 : numparts);
L
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1283 1284 1285 1286 1287
}

static int __init inftl_scan_bbt(struct mtd_info *mtd)
{
	int ret, numparts;
1288
	struct nand_chip *this = mtd_to_nand(mtd);
1289
	struct doc_priv *doc = nand_get_controller_data(this);
L
Linus Torvalds 已提交
1290 1291 1292
	struct mtd_partition parts[5];

	if (this->numchips > doc->chips_per_floor) {
1293
		pr_err("Multi-floor INFTL devices not yet supported.\n");
L
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1294 1295 1296 1297 1298 1299 1300 1301 1302 1303
		return -EIO;
	}

	if (DoC_is_MillenniumPlus(doc)) {
		this->bbt_td->options = NAND_BBT_2BIT | NAND_BBT_ABSPAGE;
		if (inftl_bbt_write)
			this->bbt_td->options |= NAND_BBT_WRITE;
		this->bbt_td->pages[0] = 2;
		this->bbt_md = NULL;
	} else {
1304
		this->bbt_td->options = NAND_BBT_LASTBLOCK | NAND_BBT_8BIT | NAND_BBT_VERSION;
L
Linus Torvalds 已提交
1305 1306 1307 1308 1309 1310 1311 1312 1313
		if (inftl_bbt_write)
			this->bbt_td->options |= NAND_BBT_WRITE;
		this->bbt_td->offs = 8;
		this->bbt_td->len = 8;
		this->bbt_td->veroffs = 7;
		this->bbt_td->maxblocks = INFTL_BBT_RESERVED_BLOCKS;
		this->bbt_td->reserved_block_code = 0x01;
		this->bbt_td->pattern = "MSYS_BBT";

1314
		this->bbt_md->options = NAND_BBT_LASTBLOCK | NAND_BBT_8BIT | NAND_BBT_VERSION;
L
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1315 1316 1317 1318 1319 1320 1321 1322 1323 1324
		if (inftl_bbt_write)
			this->bbt_md->options |= NAND_BBT_WRITE;
		this->bbt_md->offs = 8;
		this->bbt_md->len = 8;
		this->bbt_md->veroffs = 7;
		this->bbt_md->maxblocks = INFTL_BBT_RESERVED_BLOCKS;
		this->bbt_md->reserved_block_code = 0x01;
		this->bbt_md->pattern = "TBB_SYSM";
	}

1325
	ret = nand_create_bbt(this);
1326
	if (ret)
L
Linus Torvalds 已提交
1327
		return ret;
1328

1329
	memset((char *)parts, 0, sizeof(parts));
L
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1330 1331 1332 1333
	numparts = inftl_partscan(mtd, parts);
	/* At least for now, require the INFTL Media Header.  We could probably
	   do without it for non-INFTL use, since all it gives us is
	   autopartitioning, but I want to give it more thought. */
1334 1335
	if (!numparts)
		return -EIO;
1336
	return mtd_device_register(mtd, parts, no_autopart ? 0 : numparts);
L
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1337 1338 1339 1340
}

static inline int __init doc2000_init(struct mtd_info *mtd)
{
1341
	struct nand_chip *this = mtd_to_nand(mtd);
1342
	struct doc_priv *doc = nand_get_controller_data(this);
L
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1343 1344 1345 1346

	this->read_byte = doc2000_read_byte;
	this->write_buf = doc2000_writebuf;
	this->read_buf = doc2000_readbuf;
1347
	doc->late_init = nftl_scan_bbt;
L
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1348 1349 1350 1351 1352 1353 1354 1355 1356

	doc->CDSNControl = CDSN_CTRL_FLASH_IO | CDSN_CTRL_ECC_IO;
	doc2000_count_chips(mtd);
	mtd->name = "DiskOnChip 2000 (NFTL Model)";
	return (4 * doc->chips_per_floor);
}

static inline int __init doc2001_init(struct mtd_info *mtd)
{
1357
	struct nand_chip *this = mtd_to_nand(mtd);
1358
	struct doc_priv *doc = nand_get_controller_data(this);
L
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1359 1360 1361 1362 1363 1364 1365 1366 1367 1368

	this->read_byte = doc2001_read_byte;
	this->write_buf = doc2001_writebuf;
	this->read_buf = doc2001_readbuf;

	ReadDOC(doc->virtadr, ChipID);
	ReadDOC(doc->virtadr, ChipID);
	ReadDOC(doc->virtadr, ChipID);
	if (ReadDOC(doc->virtadr, ChipID) != DOC_ChipID_DocMil) {
		/* It's not a Millennium; it's one of the newer
1369
		   DiskOnChip 2000 units with a similar ASIC.
L
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1370 1371 1372 1373
		   Treat it like a Millennium, except that it
		   can have multiple chips. */
		doc2000_count_chips(mtd);
		mtd->name = "DiskOnChip 2000 (INFTL Model)";
1374
		doc->late_init = inftl_scan_bbt;
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1375 1376 1377 1378 1379
		return (4 * doc->chips_per_floor);
	} else {
		/* Bog-standard Millennium */
		doc->chips_per_floor = 1;
		mtd->name = "DiskOnChip Millennium";
1380
		doc->late_init = nftl_scan_bbt;
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1381 1382 1383 1384 1385 1386
		return 1;
	}
}

static inline int __init doc2001plus_init(struct mtd_info *mtd)
{
1387
	struct nand_chip *this = mtd_to_nand(mtd);
1388
	struct doc_priv *doc = nand_get_controller_data(this);
L
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1389 1390 1391 1392

	this->read_byte = doc2001plus_read_byte;
	this->write_buf = doc2001plus_writebuf;
	this->read_buf = doc2001plus_readbuf;
1393
	doc->late_init = inftl_scan_bbt;
1394
	this->cmd_ctrl = NULL;
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1395 1396
	this->select_chip = doc2001plus_select_chip;
	this->cmdfunc = doc2001plus_command;
1397
	this->ecc.hwctl = doc2001plus_enable_hwecc;
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	doc->chips_per_floor = 1;
	mtd->name = "DiskOnChip Millennium Plus";

	return 1;
}

1405
static int __init doc_probe(unsigned long physadr)
L
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1406
{
1407 1408
	struct nand_chip *nand = NULL;
	struct doc_priv *doc = NULL;
L
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1409 1410 1411 1412 1413 1414 1415 1416
	unsigned char ChipID;
	struct mtd_info *mtd;
	void __iomem *virtadr;
	unsigned char save_control;
	unsigned char tmp, tmpb, tmpc;
	int reg, len, numchips;
	int ret = 0;

1417
	if (!request_mem_region(physadr, DOC_IOREMAP_LEN, "DiskOnChip"))
1418
		return -EBUSY;
L
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1419 1420
	virtadr = ioremap(physadr, DOC_IOREMAP_LEN);
	if (!virtadr) {
1421 1422
		pr_err("Diskonchip ioremap failed: 0x%x bytes at 0x%lx\n",
		       DOC_IOREMAP_LEN, physadr);
1423 1424
		ret = -EIO;
		goto error_ioremap;
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1425 1426 1427 1428 1429 1430 1431 1432
	}

	/* It's not possible to cleanly detect the DiskOnChip - the
	 * bootup procedure will put the device into reset mode, and
	 * it's not possible to talk to it without actually writing
	 * to the DOCControl register. So we store the current contents
	 * of the DOCControl register's location, in case we later decide
	 * that it's not a DiskOnChip, and want to put it back how we
1433
	 * found it.
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1434 1435 1436 1437
	 */
	save_control = ReadDOC(virtadr, DOCControl);

	/* Reset the DiskOnChip ASIC */
1438 1439
	WriteDOC(DOC_MODE_CLR_ERR | DOC_MODE_MDWREN | DOC_MODE_RESET, virtadr, DOCControl);
	WriteDOC(DOC_MODE_CLR_ERR | DOC_MODE_MDWREN | DOC_MODE_RESET, virtadr, DOCControl);
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Linus Torvalds 已提交
1440 1441

	/* Enable the DiskOnChip ASIC */
1442 1443
	WriteDOC(DOC_MODE_CLR_ERR | DOC_MODE_MDWREN | DOC_MODE_NORMAL, virtadr, DOCControl);
	WriteDOC(DOC_MODE_CLR_ERR | DOC_MODE_MDWREN | DOC_MODE_NORMAL, virtadr, DOCControl);
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1444 1445 1446

	ChipID = ReadDOC(virtadr, ChipID);

1447
	switch (ChipID) {
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	case DOC_ChipID_Doc2k:
		reg = DoC_2k_ECCStatus;
		break;
	case DOC_ChipID_DocMil:
		reg = DoC_ECCConf;
		break;
	case DOC_ChipID_DocMilPlus16:
	case DOC_ChipID_DocMilPlus32:
	case 0:
		/* Possible Millennium Plus, need to do more checks */
		/* Possibly release from power down mode */
		for (tmp = 0; (tmp < 4); tmp++)
			ReadDOC(virtadr, Mplus_Power);

		/* Reset the Millennium Plus ASIC */
1463
		tmp = DOC_MODE_RESET | DOC_MODE_MDWREN | DOC_MODE_RST_LAT | DOC_MODE_BDECT;
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		WriteDOC(tmp, virtadr, Mplus_DOCControl);
		WriteDOC(~tmp, virtadr, Mplus_CtrlConfirm);

1467
		usleep_range(1000, 2000);
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1468
		/* Enable the Millennium Plus ASIC */
1469
		tmp = DOC_MODE_NORMAL | DOC_MODE_MDWREN | DOC_MODE_RST_LAT | DOC_MODE_BDECT;
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		WriteDOC(tmp, virtadr, Mplus_DOCControl);
		WriteDOC(~tmp, virtadr, Mplus_CtrlConfirm);
1472
		usleep_range(1000, 2000);
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		ChipID = ReadDOC(virtadr, ChipID);

		switch (ChipID) {
		case DOC_ChipID_DocMilPlus16:
			reg = DoC_Mplus_Toggle;
			break;
		case DOC_ChipID_DocMilPlus32:
1481
			pr_err("DiskOnChip Millennium Plus 32MB is not supported, ignoring.\n");
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		default:
			ret = -ENODEV;
			goto notfound;
		}
		break;

	default:
		ret = -ENODEV;
		goto notfound;
	}
	/* Check the TOGGLE bit in the ECC register */
1493
	tmp = ReadDOC_(virtadr, reg) & DOC_TOGGLE_BIT;
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	tmpb = ReadDOC_(virtadr, reg) & DOC_TOGGLE_BIT;
	tmpc = ReadDOC_(virtadr, reg) & DOC_TOGGLE_BIT;
	if ((tmp == tmpb) || (tmp != tmpc)) {
1497
		pr_warn("Possible DiskOnChip at 0x%lx failed TOGGLE test, dropping.\n", physadr);
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		ret = -ENODEV;
		goto notfound;
	}

	for (mtd = doclist; mtd; mtd = doc->nextdoc) {
		unsigned char oldval;
		unsigned char newval;
1505
		nand = mtd_to_nand(mtd);
1506
		doc = nand_get_controller_data(nand);
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		/* Use the alias resolution register to determine if this is
		   in fact the same DOC aliased to a new address.  If writes
		   to one chip's alias resolution register change the value on
		   the other chip, they're the same chip. */
		if (ChipID == DOC_ChipID_DocMilPlus16) {
			oldval = ReadDOC(doc->virtadr, Mplus_AliasResolution);
			newval = ReadDOC(virtadr, Mplus_AliasResolution);
		} else {
			oldval = ReadDOC(doc->virtadr, AliasResolution);
			newval = ReadDOC(virtadr, AliasResolution);
		}
		if (oldval != newval)
			continue;
		if (ChipID == DOC_ChipID_DocMilPlus16) {
			WriteDOC(~newval, virtadr, Mplus_AliasResolution);
			oldval = ReadDOC(doc->virtadr, Mplus_AliasResolution);
1523
			WriteDOC(newval, virtadr, Mplus_AliasResolution);	// restore it
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		} else {
			WriteDOC(~newval, virtadr, AliasResolution);
			oldval = ReadDOC(doc->virtadr, AliasResolution);
1527
			WriteDOC(newval, virtadr, AliasResolution);	// restore it
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		}
		newval = ~newval;
		if (oldval == newval) {
1531 1532
			pr_debug("Found alias of DOC at 0x%lx to 0x%lx\n",
				 doc->physadr, physadr);
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			goto notfound;
		}
	}

1537
	pr_notice("DiskOnChip found at 0x%lx\n", physadr);
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1538

1539 1540 1541 1542
	len = sizeof(struct nand_chip) + sizeof(struct doc_priv) +
	      (2 * sizeof(struct nand_bbt_descr));
	nand = kzalloc(len, GFP_KERNEL);
	if (!nand) {
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		ret = -ENOMEM;
		goto fail;
	}

1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564

	/*
	 * Allocate a RS codec instance
	 *
	 * Symbolsize is 10 (bits)
	 * Primitve polynomial is x^10+x^3+1
	 * First consecutive root is 510
	 * Primitve element to generate roots = 1
	 * Generator polinomial degree = 4
	 */
	doc = (struct doc_priv *) (nand + 1);
	doc->rs_decoder = init_rs(10, 0x409, FCR, 1, NROOTS);
	if (!doc->rs_decoder) {
		pr_err("DiskOnChip: Could not create a RS codec\n");
		ret = -ENOMEM;
		goto fail;
	}

1565
	mtd			= nand_to_mtd(nand);
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	nand->bbt_td		= (struct nand_bbt_descr *) (doc + 1);
	nand->bbt_md		= nand->bbt_td + 1;

	mtd->owner		= THIS_MODULE;
1570
	mtd_set_ooblayout(mtd, &doc200x_ooblayout_ops);
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1571

1572
	nand_set_controller_data(nand, doc);
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	nand->select_chip	= doc200x_select_chip;
1574
	nand->cmd_ctrl		= doc200x_hwcontrol;
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	nand->dev_ready		= doc200x_dev_ready;
	nand->waitfunc		= doc200x_wait;
	nand->block_bad		= doc200x_block_bad;
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	nand->ecc.hwctl		= doc200x_enable_hwecc;
	nand->ecc.calculate	= doc200x_calculate_ecc;
	nand->ecc.correct	= doc200x_correct_data;
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Linus Torvalds 已提交
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T
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	nand->ecc.mode		= NAND_ECC_HW_SYNDROME;
	nand->ecc.size		= 512;
	nand->ecc.bytes		= 6;
M
Mike Dunn 已提交
1585
	nand->ecc.strength	= 2;
1586
	nand->ecc.options	= NAND_ECC_GENERIC_ERASED_CHECK;
1587
	nand->bbt_options	= NAND_BBT_USE_FLASH;
1588 1589
	/* Skip the automatic BBT scan so we can run it manually */
	nand->options		|= NAND_SKIP_BBTSCAN;
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	doc->physadr		= physadr;
	doc->virtadr		= virtadr;
	doc->ChipID		= ChipID;
	doc->curfloor		= -1;
	doc->curchip		= -1;
	doc->mh0_page		= -1;
	doc->mh1_page		= -1;
	doc->nextdoc		= doclist;

	if (ChipID == DOC_ChipID_Doc2k)
		numchips = doc2000_init(mtd);
	else if (ChipID == DOC_ChipID_DocMilPlus16)
		numchips = doc2001plus_init(mtd);
	else
		numchips = doc2001_init(mtd);

1607
	if ((ret = nand_scan(nand, numchips)) || (ret = doc->late_init(mtd))) {
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		/* DBB note: i believe nand_release is necessary here, as
		   buffers may have been allocated in nand_base.  Check with
		   Thomas. FIX ME! */
1611 1612 1613
		/* nand_release will call mtd_device_unregister, but we
		   haven't yet added it.  This is handled without incident by
		   mtd_device_unregister, as far as I can tell. */
1614
		nand_release(nand);
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		goto fail;
	}

	/* Success! */
	doclist = mtd;
	return 0;

1622
 notfound:
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Linus Torvalds 已提交
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	/* Put back the contents of the DOCControl register, in case it's not
	   actually a DiskOnChip.  */
	WriteDOC(save_control, virtadr, DOCControl);
1626
 fail:
1627 1628 1629
	if (doc)
		free_rs(doc->rs_decoder);
	kfree(nand);
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1630
	iounmap(virtadr);
1631 1632 1633 1634

error_ioremap:
	release_mem_region(physadr, DOC_IOREMAP_LEN);

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	return ret;
}

static void release_nanddoc(void)
{
1640
	struct mtd_info *mtd, *nextmtd;
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	struct nand_chip *nand;
	struct doc_priv *doc;

	for (mtd = doclist; mtd; mtd = nextmtd) {
1645
		nand = mtd_to_nand(mtd);
1646
		doc = nand_get_controller_data(nand);
L
Linus Torvalds 已提交
1647 1648

		nextmtd = doc->nextdoc;
1649
		nand_release(nand);
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1650
		iounmap(doc->virtadr);
1651
		release_mem_region(doc->physadr, DOC_IOREMAP_LEN);
1652
		free_rs(doc->rs_decoder);
1653
		kfree(nand);
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	}
}

static int __init init_nanddoc(void)
{
	int i, ret = 0;

	if (doc_config_location) {
1662 1663
		pr_info("Using configured DiskOnChip probe address 0x%lx\n",
			doc_config_location);
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		ret = doc_probe(doc_config_location);
		if (ret < 0)
1666
			return ret;
L
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1667
	} else {
1668
		for (i = 0; (doc_locations[i] != 0xffffffff); i++) {
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			doc_probe(doc_locations[i]);
		}
	}
	/* No banner message any more. Print a message if no DiskOnChip
	   found, so the user knows we at least tried. */
	if (!doclist) {
1675
		pr_info("No valid DiskOnChip devices found\n");
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		ret = -ENODEV;
	}
	return ret;
}

static void __exit cleanup_nanddoc(void)
{
	/* Cleanup the nand/DoC resources */
	release_nanddoc();
}

module_init(init_nanddoc);
module_exit(cleanup_nanddoc);

MODULE_LICENSE("GPL");
MODULE_AUTHOR("David Woodhouse <dwmw2@infradead.org>");
1692
MODULE_DESCRIPTION("M-Systems DiskOnChip 2000, Millennium and Millennium Plus device driver");