nandsim.c 67.2 KB
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/*
 * NAND flash simulator.
 *
 * Author: Artem B. Bityuckiy <dedekind@oktetlabs.ru>, <dedekind@infradead.org>
 *
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 * Copyright (C) 2004 Nokia Corporation
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 *
 * Note: NS means "NAND Simulator".
 * Note: Input means input TO flash chip, output means output FROM chip.
 *
 * This program is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License as published by the
 * Free Software Foundation; either version 2, or (at your option) any later
 * version.
 *
 * This program is distributed in the hope that it will be useful, but
 * WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General
 * Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307, USA
 */

#include <linux/init.h>
#include <linux/types.h>
#include <linux/module.h>
#include <linux/moduleparam.h>
#include <linux/vmalloc.h>
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#include <linux/math64.h>
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#include <linux/slab.h>
#include <linux/errno.h>
#include <linux/string.h>
#include <linux/mtd/mtd.h>
#include <linux/mtd/nand.h>
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#include <linux/mtd/nand_bch.h>
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#include <linux/mtd/partitions.h>
#include <linux/delay.h>
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#include <linux/list.h>
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#include <linux/random.h>
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#include <linux/sched.h>
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#include <linux/fs.h>
#include <linux/pagemap.h>
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#include <linux/seq_file.h>
#include <linux/debugfs.h>
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/* Default simulator parameters values */
#if !defined(CONFIG_NANDSIM_FIRST_ID_BYTE)  || \
    !defined(CONFIG_NANDSIM_SECOND_ID_BYTE) || \
    !defined(CONFIG_NANDSIM_THIRD_ID_BYTE)  || \
    !defined(CONFIG_NANDSIM_FOURTH_ID_BYTE)
#define CONFIG_NANDSIM_FIRST_ID_BYTE  0x98
#define CONFIG_NANDSIM_SECOND_ID_BYTE 0x39
#define CONFIG_NANDSIM_THIRD_ID_BYTE  0xFF /* No byte */
#define CONFIG_NANDSIM_FOURTH_ID_BYTE 0xFF /* No byte */
#endif

#ifndef CONFIG_NANDSIM_ACCESS_DELAY
#define CONFIG_NANDSIM_ACCESS_DELAY 25
#endif
#ifndef CONFIG_NANDSIM_PROGRAMM_DELAY
#define CONFIG_NANDSIM_PROGRAMM_DELAY 200
#endif
#ifndef CONFIG_NANDSIM_ERASE_DELAY
#define CONFIG_NANDSIM_ERASE_DELAY 2
#endif
#ifndef CONFIG_NANDSIM_OUTPUT_CYCLE
#define CONFIG_NANDSIM_OUTPUT_CYCLE 40
#endif
#ifndef CONFIG_NANDSIM_INPUT_CYCLE
#define CONFIG_NANDSIM_INPUT_CYCLE  50
#endif
#ifndef CONFIG_NANDSIM_BUS_WIDTH
#define CONFIG_NANDSIM_BUS_WIDTH  8
#endif
#ifndef CONFIG_NANDSIM_DO_DELAYS
#define CONFIG_NANDSIM_DO_DELAYS  0
#endif
#ifndef CONFIG_NANDSIM_LOG
#define CONFIG_NANDSIM_LOG        0
#endif
#ifndef CONFIG_NANDSIM_DBG
#define CONFIG_NANDSIM_DBG        0
#endif
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#ifndef CONFIG_NANDSIM_MAX_PARTS
#define CONFIG_NANDSIM_MAX_PARTS  32
#endif
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static uint first_id_byte  = CONFIG_NANDSIM_FIRST_ID_BYTE;
static uint second_id_byte = CONFIG_NANDSIM_SECOND_ID_BYTE;
static uint third_id_byte  = CONFIG_NANDSIM_THIRD_ID_BYTE;
static uint fourth_id_byte = CONFIG_NANDSIM_FOURTH_ID_BYTE;
static uint access_delay   = CONFIG_NANDSIM_ACCESS_DELAY;
static uint programm_delay = CONFIG_NANDSIM_PROGRAMM_DELAY;
static uint erase_delay    = CONFIG_NANDSIM_ERASE_DELAY;
static uint output_cycle   = CONFIG_NANDSIM_OUTPUT_CYCLE;
static uint input_cycle    = CONFIG_NANDSIM_INPUT_CYCLE;
static uint bus_width      = CONFIG_NANDSIM_BUS_WIDTH;
static uint do_delays      = CONFIG_NANDSIM_DO_DELAYS;
static uint log            = CONFIG_NANDSIM_LOG;
static uint dbg            = CONFIG_NANDSIM_DBG;
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static unsigned long parts[CONFIG_NANDSIM_MAX_PARTS];
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static unsigned int parts_num;
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static char *badblocks = NULL;
static char *weakblocks = NULL;
static char *weakpages = NULL;
static unsigned int bitflips = 0;
static char *gravepages = NULL;
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static unsigned int overridesize = 0;
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static char *cache_file = NULL;
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static unsigned int bbt;
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static unsigned int bch;
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module_param(first_id_byte,  uint, 0400);
module_param(second_id_byte, uint, 0400);
module_param(third_id_byte,  uint, 0400);
module_param(fourth_id_byte, uint, 0400);
module_param(access_delay,   uint, 0400);
module_param(programm_delay, uint, 0400);
module_param(erase_delay,    uint, 0400);
module_param(output_cycle,   uint, 0400);
module_param(input_cycle,    uint, 0400);
module_param(bus_width,      uint, 0400);
module_param(do_delays,      uint, 0400);
module_param(log,            uint, 0400);
module_param(dbg,            uint, 0400);
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module_param_array(parts, ulong, &parts_num, 0400);
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module_param(badblocks,      charp, 0400);
module_param(weakblocks,     charp, 0400);
module_param(weakpages,      charp, 0400);
module_param(bitflips,       uint, 0400);
module_param(gravepages,     charp, 0400);
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module_param(overridesize,   uint, 0400);
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module_param(cache_file,     charp, 0400);
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module_param(bbt,	     uint, 0400);
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module_param(bch,	     uint, 0400);
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MODULE_PARM_DESC(first_id_byte,  "The first byte returned by NAND Flash 'read ID' command (manufacturer ID)");
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MODULE_PARM_DESC(second_id_byte, "The second byte returned by NAND Flash 'read ID' command (chip ID)");
MODULE_PARM_DESC(third_id_byte,  "The third byte returned by NAND Flash 'read ID' command");
MODULE_PARM_DESC(fourth_id_byte, "The fourth byte returned by NAND Flash 'read ID' command");
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MODULE_PARM_DESC(access_delay,   "Initial page access delay (microseconds)");
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MODULE_PARM_DESC(programm_delay, "Page programm delay (microseconds");
MODULE_PARM_DESC(erase_delay,    "Sector erase delay (milliseconds)");
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MODULE_PARM_DESC(output_cycle,   "Word output (from flash) time (nanoseconds)");
MODULE_PARM_DESC(input_cycle,    "Word input (to flash) time (nanoseconds)");
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MODULE_PARM_DESC(bus_width,      "Chip's bus width (8- or 16-bit)");
MODULE_PARM_DESC(do_delays,      "Simulate NAND delays using busy-waits if not zero");
MODULE_PARM_DESC(log,            "Perform logging if not zero");
MODULE_PARM_DESC(dbg,            "Output debug information if not zero");
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MODULE_PARM_DESC(parts,          "Partition sizes (in erase blocks) separated by commas");
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/* Page and erase block positions for the following parameters are independent of any partitions */
MODULE_PARM_DESC(badblocks,      "Erase blocks that are initially marked bad, separated by commas");
MODULE_PARM_DESC(weakblocks,     "Weak erase blocks [: remaining erase cycles (defaults to 3)]"
				 " separated by commas e.g. 113:2 means eb 113"
				 " can be erased only twice before failing");
MODULE_PARM_DESC(weakpages,      "Weak pages [: maximum writes (defaults to 3)]"
				 " separated by commas e.g. 1401:2 means page 1401"
				 " can be written only twice before failing");
MODULE_PARM_DESC(bitflips,       "Maximum number of random bit flips per page (zero by default)");
MODULE_PARM_DESC(gravepages,     "Pages that lose data [: maximum reads (defaults to 3)]"
				 " separated by commas e.g. 1401:2 means page 1401"
				 " can be read only twice before failing");
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MODULE_PARM_DESC(overridesize,   "Specifies the NAND Flash size overriding the ID bytes. "
				 "The size is specified in erase blocks and as the exponent of a power of two"
				 " e.g. 5 means a size of 32 erase blocks");
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MODULE_PARM_DESC(cache_file,     "File to use to cache nand pages instead of memory");
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MODULE_PARM_DESC(bbt,		 "0 OOB, 1 BBT with marker in OOB, 2 BBT with marker in data area");
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MODULE_PARM_DESC(bch,		 "Enable BCH ecc and set how many bits should "
				 "be correctable in 512-byte blocks");
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/* The largest possible page size */
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#define NS_LARGEST_PAGE_SIZE	4096
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/* The prefix for simulator output */
#define NS_OUTPUT_PREFIX "[nandsim]"

/* Simulator's output macros (logging, debugging, warning, error) */
#define NS_LOG(args...) \
	do { if (log) printk(KERN_DEBUG NS_OUTPUT_PREFIX " log: " args); } while(0)
#define NS_DBG(args...) \
	do { if (dbg) printk(KERN_DEBUG NS_OUTPUT_PREFIX " debug: " args); } while(0)
#define NS_WARN(args...) \
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	do { printk(KERN_WARNING NS_OUTPUT_PREFIX " warning: " args); } while(0)
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#define NS_ERR(args...) \
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	do { printk(KERN_ERR NS_OUTPUT_PREFIX " error: " args); } while(0)
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#define NS_INFO(args...) \
	do { printk(KERN_INFO NS_OUTPUT_PREFIX " " args); } while(0)
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/* Busy-wait delay macros (microseconds, milliseconds) */
#define NS_UDELAY(us) \
        do { if (do_delays) udelay(us); } while(0)
#define NS_MDELAY(us) \
        do { if (do_delays) mdelay(us); } while(0)
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/* Is the nandsim structure initialized ? */
#define NS_IS_INITIALIZED(ns) ((ns)->geom.totsz != 0)

/* Good operation completion status */
#define NS_STATUS_OK(ns) (NAND_STATUS_READY | (NAND_STATUS_WP * ((ns)->lines.wp == 0)))

/* Operation failed completion status */
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#define NS_STATUS_FAILED(ns) (NAND_STATUS_FAIL | NS_STATUS_OK(ns))
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/* Calculate the page offset in flash RAM image by (row, column) address */
#define NS_RAW_OFFSET(ns) \
	(((ns)->regs.row << (ns)->geom.pgshift) + ((ns)->regs.row * (ns)->geom.oobsz) + (ns)->regs.column)
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/* Calculate the OOB offset in flash RAM image by (row, column) address */
#define NS_RAW_OFFSET_OOB(ns) (NS_RAW_OFFSET(ns) + ns->geom.pgsz)

/* After a command is input, the simulator goes to one of the following states */
#define STATE_CMD_READ0        0x00000001 /* read data from the beginning of page */
#define STATE_CMD_READ1        0x00000002 /* read data from the second half of page */
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#define STATE_CMD_READSTART    0x00000003 /* read data second command (large page devices) */
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#define STATE_CMD_PAGEPROG     0x00000004 /* start page program */
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#define STATE_CMD_READOOB      0x00000005 /* read OOB area */
#define STATE_CMD_ERASE1       0x00000006 /* sector erase first command */
#define STATE_CMD_STATUS       0x00000007 /* read status */
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#define STATE_CMD_SEQIN        0x00000009 /* sequential data input */
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#define STATE_CMD_READID       0x0000000A /* read ID */
#define STATE_CMD_ERASE2       0x0000000B /* sector erase second command */
#define STATE_CMD_RESET        0x0000000C /* reset */
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#define STATE_CMD_RNDOUT       0x0000000D /* random output command */
#define STATE_CMD_RNDOUTSTART  0x0000000E /* random output start command */
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#define STATE_CMD_MASK         0x0000000F /* command states mask */

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/* After an address is input, the simulator goes to one of these states */
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#define STATE_ADDR_PAGE        0x00000010 /* full (row, column) address is accepted */
#define STATE_ADDR_SEC         0x00000020 /* sector address was accepted */
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#define STATE_ADDR_COLUMN      0x00000030 /* column address was accepted */
#define STATE_ADDR_ZERO        0x00000040 /* one byte zero address was accepted */
#define STATE_ADDR_MASK        0x00000070 /* address states mask */
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/* During data input/output the simulator is in these states */
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#define STATE_DATAIN           0x00000100 /* waiting for data input */
#define STATE_DATAIN_MASK      0x00000100 /* data input states mask */

#define STATE_DATAOUT          0x00001000 /* waiting for page data output */
#define STATE_DATAOUT_ID       0x00002000 /* waiting for ID bytes output */
#define STATE_DATAOUT_STATUS   0x00003000 /* waiting for status output */
#define STATE_DATAOUT_STATUS_M 0x00004000 /* waiting for multi-plane status output */
#define STATE_DATAOUT_MASK     0x00007000 /* data output states mask */

/* Previous operation is done, ready to accept new requests */
#define STATE_READY            0x00000000

/* This state is used to mark that the next state isn't known yet */
#define STATE_UNKNOWN          0x10000000

/* Simulator's actions bit masks */
#define ACTION_CPY       0x00100000 /* copy page/OOB to the internal buffer */
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#define ACTION_PRGPAGE   0x00200000 /* program the internal buffer to flash */
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#define ACTION_SECERASE  0x00300000 /* erase sector */
#define ACTION_ZEROOFF   0x00400000 /* don't add any offset to address */
#define ACTION_HALFOFF   0x00500000 /* add to address half of page */
#define ACTION_OOBOFF    0x00600000 /* add to address OOB offset */
#define ACTION_MASK      0x00700000 /* action mask */

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#define NS_OPER_NUM      13 /* Number of operations supported by the simulator */
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#define NS_OPER_STATES   6  /* Maximum number of states in operation */

#define OPT_ANY          0xFFFFFFFF /* any chip supports this operation */
#define OPT_PAGE512      0x00000002 /* 512-byte  page chips */
#define OPT_PAGE2048     0x00000008 /* 2048-byte page chips */
#define OPT_SMARTMEDIA   0x00000010 /* SmartMedia technology chips */
#define OPT_PAGE512_8BIT 0x00000040 /* 512-byte page chips with 8-bit bus width */
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#define OPT_PAGE4096     0x00000080 /* 4096-byte page chips */
#define OPT_LARGEPAGE    (OPT_PAGE2048 | OPT_PAGE4096) /* 2048 & 4096-byte page chips */
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#define OPT_SMALLPAGE    (OPT_PAGE512) /* 512-byte page chips */
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/* Remove action bits from state */
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#define NS_STATE(x) ((x) & ~ACTION_MASK)
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/*
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 * Maximum previous states which need to be saved. Currently saving is
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 * only needed for page program operation with preceded read command
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 * (which is only valid for 512-byte pages).
 */
#define NS_MAX_PREVSTATES 1

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/* Maximum page cache pages needed to read or write a NAND page to the cache_file */
#define NS_MAX_HELD_PAGES 16

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struct nandsim_debug_info {
	struct dentry *dfs_root;
	struct dentry *dfs_wear_report;
};

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/*
 * A union to represent flash memory contents and flash buffer.
 */
union ns_mem {
	u_char *byte;    /* for byte access */
	uint16_t *word;  /* for 16-bit word access */
};

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/*
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 * The structure which describes all the internal simulator data.
 */
struct nandsim {
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	struct mtd_partition partitions[CONFIG_NANDSIM_MAX_PARTS];
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	unsigned int nbparts;
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	uint busw;              /* flash chip bus width (8 or 16) */
	u_char ids[4];          /* chip's ID bytes */
	uint32_t options;       /* chip's characteristic bits */
	uint32_t state;         /* current chip state */
	uint32_t nxstate;       /* next expected state */
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	uint32_t *op;           /* current operation, NULL operations isn't known yet  */
	uint32_t pstates[NS_MAX_PREVSTATES]; /* previous states */
	uint16_t npstates;      /* number of previous states saved */
	uint16_t stateidx;      /* current state index */

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	/* The simulated NAND flash pages array */
	union ns_mem *pages;
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	/* Slab allocator for nand pages */
	struct kmem_cache *nand_pages_slab;

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	/* Internal buffer of page + OOB size bytes */
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	union ns_mem buf;
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	/* NAND flash "geometry" */
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	struct {
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		uint64_t totsz;     /* total flash size, bytes */
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		uint32_t secsz;     /* flash sector (erase block) size, bytes */
		uint pgsz;          /* NAND flash page size, bytes */
		uint oobsz;         /* page OOB area size, bytes */
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		uint64_t totszoob;  /* total flash size including OOB, bytes */
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		uint pgszoob;       /* page size including OOB , bytes*/
		uint secszoob;      /* sector size including OOB, bytes */
		uint pgnum;         /* total number of pages */
		uint pgsec;         /* number of pages per sector */
		uint secshift;      /* bits number in sector size */
		uint pgshift;       /* bits number in page size */
		uint oobshift;      /* bits number in OOB size */
		uint pgaddrbytes;   /* bytes per page address */
		uint secaddrbytes;  /* bytes per sector address */
		uint idbytes;       /* the number ID bytes that this chip outputs */
	} geom;

	/* NAND flash internal registers */
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	struct {
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		unsigned command; /* the command register */
		u_char   status;  /* the status register */
		uint     row;     /* the page number */
		uint     column;  /* the offset within page */
		uint     count;   /* internal counter */
		uint     num;     /* number of bytes which must be processed */
		uint     off;     /* fixed page offset */
	} regs;

	/* NAND flash lines state */
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        struct {
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                int ce;  /* chip Enable */
                int cle; /* command Latch Enable */
                int ale; /* address Latch Enable */
                int wp;  /* write Protect */
        } lines;
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	/* Fields needed when using a cache file */
	struct file *cfile; /* Open file */
	unsigned char *pages_written; /* Which pages have been written */
	void *file_buf;
	struct page *held_pages[NS_MAX_HELD_PAGES];
	int held_cnt;
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	struct nandsim_debug_info dbg;
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};

/*
 * Operations array. To perform any operation the simulator must pass
 * through the correspondent states chain.
 */
static struct nandsim_operations {
	uint32_t reqopts;  /* options which are required to perform the operation */
	uint32_t states[NS_OPER_STATES]; /* operation's states */
} ops[NS_OPER_NUM] = {
	/* Read page + OOB from the beginning */
	{OPT_SMALLPAGE, {STATE_CMD_READ0 | ACTION_ZEROOFF, STATE_ADDR_PAGE | ACTION_CPY,
			STATE_DATAOUT, STATE_READY}},
	/* Read page + OOB from the second half */
	{OPT_PAGE512_8BIT, {STATE_CMD_READ1 | ACTION_HALFOFF, STATE_ADDR_PAGE | ACTION_CPY,
			STATE_DATAOUT, STATE_READY}},
	/* Read OOB */
	{OPT_SMALLPAGE, {STATE_CMD_READOOB | ACTION_OOBOFF, STATE_ADDR_PAGE | ACTION_CPY,
			STATE_DATAOUT, STATE_READY}},
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	/* Program page starting from the beginning */
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	{OPT_ANY, {STATE_CMD_SEQIN, STATE_ADDR_PAGE, STATE_DATAIN,
			STATE_CMD_PAGEPROG | ACTION_PRGPAGE, STATE_READY}},
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	/* Program page starting from the beginning */
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	{OPT_SMALLPAGE, {STATE_CMD_READ0, STATE_CMD_SEQIN | ACTION_ZEROOFF, STATE_ADDR_PAGE,
			      STATE_DATAIN, STATE_CMD_PAGEPROG | ACTION_PRGPAGE, STATE_READY}},
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	/* Program page starting from the second half */
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	{OPT_PAGE512, {STATE_CMD_READ1, STATE_CMD_SEQIN | ACTION_HALFOFF, STATE_ADDR_PAGE,
			      STATE_DATAIN, STATE_CMD_PAGEPROG | ACTION_PRGPAGE, STATE_READY}},
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	/* Program OOB */
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	{OPT_SMALLPAGE, {STATE_CMD_READOOB, STATE_CMD_SEQIN | ACTION_OOBOFF, STATE_ADDR_PAGE,
			      STATE_DATAIN, STATE_CMD_PAGEPROG | ACTION_PRGPAGE, STATE_READY}},
	/* Erase sector */
	{OPT_ANY, {STATE_CMD_ERASE1, STATE_ADDR_SEC, STATE_CMD_ERASE2 | ACTION_SECERASE, STATE_READY}},
	/* Read status */
	{OPT_ANY, {STATE_CMD_STATUS, STATE_DATAOUT_STATUS, STATE_READY}},
	/* Read ID */
	{OPT_ANY, {STATE_CMD_READID, STATE_ADDR_ZERO, STATE_DATAOUT_ID, STATE_READY}},
	/* Large page devices read page */
	{OPT_LARGEPAGE, {STATE_CMD_READ0, STATE_ADDR_PAGE, STATE_CMD_READSTART | ACTION_CPY,
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			       STATE_DATAOUT, STATE_READY}},
	/* Large page devices random page read */
	{OPT_LARGEPAGE, {STATE_CMD_RNDOUT, STATE_ADDR_COLUMN, STATE_CMD_RNDOUTSTART | ACTION_CPY,
			       STATE_DATAOUT, STATE_READY}},
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};

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struct weak_block {
	struct list_head list;
	unsigned int erase_block_no;
	unsigned int max_erases;
	unsigned int erases_done;
};

static LIST_HEAD(weak_blocks);

struct weak_page {
	struct list_head list;
	unsigned int page_no;
	unsigned int max_writes;
	unsigned int writes_done;
};

static LIST_HEAD(weak_pages);

struct grave_page {
	struct list_head list;
	unsigned int page_no;
	unsigned int max_reads;
	unsigned int reads_done;
};

static LIST_HEAD(grave_pages);

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static unsigned long *erase_block_wear = NULL;
static unsigned int wear_eb_count = 0;
static unsigned long total_wear = 0;

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/* MTD structure for NAND controller */
static struct mtd_info *nsmtd;

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static int nandsim_debugfs_show(struct seq_file *m, void *private)
{
	unsigned long wmin = -1, wmax = 0, avg;
	unsigned long deciles[10], decile_max[10], tot = 0;
	unsigned int i;

	/* Calc wear stats */
	for (i = 0; i < wear_eb_count; ++i) {
		unsigned long wear = erase_block_wear[i];
		if (wear < wmin)
			wmin = wear;
		if (wear > wmax)
			wmax = wear;
		tot += wear;
	}

	for (i = 0; i < 9; ++i) {
		deciles[i] = 0;
		decile_max[i] = (wmax * (i + 1) + 5) / 10;
	}
	deciles[9] = 0;
	decile_max[9] = wmax;
	for (i = 0; i < wear_eb_count; ++i) {
		int d;
		unsigned long wear = erase_block_wear[i];
		for (d = 0; d < 10; ++d)
			if (wear <= decile_max[d]) {
				deciles[d] += 1;
				break;
			}
	}
	avg = tot / wear_eb_count;

	/* Output wear report */
	seq_printf(m, "Total numbers of erases:  %lu\n", tot);
	seq_printf(m, "Number of erase blocks:   %u\n", wear_eb_count);
	seq_printf(m, "Average number of erases: %lu\n", avg);
	seq_printf(m, "Maximum number of erases: %lu\n", wmax);
	seq_printf(m, "Minimum number of erases: %lu\n", wmin);
	for (i = 0; i < 10; ++i) {
		unsigned long from = (i ? decile_max[i - 1] + 1 : 0);
		if (from > decile_max[i])
			continue;
		seq_printf(m, "Number of ebs with erase counts from %lu to %lu : %lu\n",
			from,
			decile_max[i],
			deciles[i]);
	}

	return 0;
}

static int nandsim_debugfs_open(struct inode *inode, struct file *file)
{
	return single_open(file, nandsim_debugfs_show, inode->i_private);
}

static const struct file_operations dfs_fops = {
	.open		= nandsim_debugfs_open,
	.read		= seq_read,
	.llseek		= seq_lseek,
	.release	= single_release,
};

/**
 * nandsim_debugfs_create - initialize debugfs
 * @dev: nandsim device description object
 *
 * This function creates all debugfs files for UBI device @ubi. Returns zero in
 * case of success and a negative error code in case of failure.
 */
static int nandsim_debugfs_create(struct nandsim *dev)
{
	struct nandsim_debug_info *dbg = &dev->dbg;
	struct dentry *dent;
	int err;

	if (!IS_ENABLED(CONFIG_DEBUG_FS))
		return 0;

	dent = debugfs_create_dir("nandsim", NULL);
	if (IS_ERR_OR_NULL(dent)) {
		int err = dent ? -ENODEV : PTR_ERR(dent);

		NS_ERR("cannot create \"nandsim\" debugfs directory, err %d\n",
			err);
		return err;
	}
	dbg->dfs_root = dent;

	dent = debugfs_create_file("wear_report", S_IRUSR,
				   dbg->dfs_root, dev, &dfs_fops);
	if (IS_ERR_OR_NULL(dent))
		goto out_remove;
	dbg->dfs_wear_report = dent;

	return 0;

out_remove:
	debugfs_remove_recursive(dbg->dfs_root);
	err = dent ? PTR_ERR(dent) : -ENODEV;
	return err;
}

/**
 * nandsim_debugfs_remove - destroy all debugfs files
 */
static void nandsim_debugfs_remove(struct nandsim *ns)
{
	if (IS_ENABLED(CONFIG_DEBUG_FS))
		debugfs_remove_recursive(ns->dbg.dfs_root);
}

564
/*
A
Alexey Korolev 已提交
565 566
 * Allocate array of page pointers, create slab allocation for an array
 * and initialize the array by NULL pointers.
567 568 569
 *
 * RETURNS: 0 if success, -ENOMEM if memory alloc fails.
 */
V
Vijay Kumar 已提交
570
static int alloc_device(struct nandsim *ns)
571
{
572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588
	struct file *cfile;
	int i, err;

	if (cache_file) {
		cfile = filp_open(cache_file, O_CREAT | O_RDWR | O_LARGEFILE, 0600);
		if (IS_ERR(cfile))
			return PTR_ERR(cfile);
		if (!cfile->f_op || (!cfile->f_op->read && !cfile->f_op->aio_read)) {
			NS_ERR("alloc_device: cache file not readable\n");
			err = -EINVAL;
			goto err_close;
		}
		if (!cfile->f_op->write && !cfile->f_op->aio_write) {
			NS_ERR("alloc_device: cache file not writeable\n");
			err = -EINVAL;
			goto err_close;
		}
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Joe Perches 已提交
589
		ns->pages_written = vzalloc(ns->geom.pgnum);
590 591 592 593 594 595 596 597 598 599 600 601 602 603
		if (!ns->pages_written) {
			NS_ERR("alloc_device: unable to allocate pages written array\n");
			err = -ENOMEM;
			goto err_close;
		}
		ns->file_buf = kmalloc(ns->geom.pgszoob, GFP_KERNEL);
		if (!ns->file_buf) {
			NS_ERR("alloc_device: unable to allocate file buf\n");
			err = -ENOMEM;
			goto err_free;
		}
		ns->cfile = cfile;
		return 0;
	}
604 605 606

	ns->pages = vmalloc(ns->geom.pgnum * sizeof(union ns_mem));
	if (!ns->pages) {
607
		NS_ERR("alloc_device: unable to allocate page array\n");
608 609 610 611 612
		return -ENOMEM;
	}
	for (i = 0; i < ns->geom.pgnum; i++) {
		ns->pages[i].byte = NULL;
	}
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Alexey Korolev 已提交
613 614 615 616 617 618
	ns->nand_pages_slab = kmem_cache_create("nandsim",
						ns->geom.pgszoob, 0, 0, NULL);
	if (!ns->nand_pages_slab) {
		NS_ERR("cache_create: unable to create kmem_cache\n");
		return -ENOMEM;
	}
619 620

	return 0;
621 622 623 624 625 626

err_free:
	vfree(ns->pages_written);
err_close:
	filp_close(cfile, NULL);
	return err;
627 628 629 630 631
}

/*
 * Free any allocated pages, and free the array of page pointers.
 */
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Vijay Kumar 已提交
632
static void free_device(struct nandsim *ns)
633 634 635
{
	int i;

636 637 638 639 640 641 642
	if (ns->cfile) {
		kfree(ns->file_buf);
		vfree(ns->pages_written);
		filp_close(ns->cfile, NULL);
		return;
	}

643 644 645
	if (ns->pages) {
		for (i = 0; i < ns->geom.pgnum; i++) {
			if (ns->pages[i].byte)
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Alexey Korolev 已提交
646 647
				kmem_cache_free(ns->nand_pages_slab,
						ns->pages[i].byte);
648
		}
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Alexey Korolev 已提交
649
		kmem_cache_destroy(ns->nand_pages_slab);
650 651 652 653
		vfree(ns->pages);
	}
}

654 655 656 657 658 659 660
static char *get_partition_name(int i)
{
	char buf[64];
	sprintf(buf, "NAND simulator partition %d", i);
	return kstrdup(buf, GFP_KERNEL);
}

L
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/*
 * Initialize the nandsim structure.
 *
 * RETURNS: 0 if success, -ERRNO if failure.
 */
V
Vijay Kumar 已提交
666
static int init_nandsim(struct mtd_info *mtd)
L
Linus Torvalds 已提交
667
{
668 669
	struct nand_chip *chip = mtd->priv;
	struct nandsim   *ns   = chip->priv;
670
	int i, ret = 0;
671 672
	uint64_t remains;
	uint64_t next_offset;
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Linus Torvalds 已提交
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	if (NS_IS_INITIALIZED(ns)) {
		NS_ERR("init_nandsim: nandsim is already initialized\n");
		return -EIO;
	}

	/* Force mtd to not do delays */
	chip->chip_delay = 0;

	/* Initialize the NAND flash parameters */
	ns->busw = chip->options & NAND_BUSWIDTH_16 ? 16 : 8;
	ns->geom.totsz    = mtd->size;
J
Joern Engel 已提交
685
	ns->geom.pgsz     = mtd->writesize;
L
Linus Torvalds 已提交
686 687 688
	ns->geom.oobsz    = mtd->oobsize;
	ns->geom.secsz    = mtd->erasesize;
	ns->geom.pgszoob  = ns->geom.pgsz + ns->geom.oobsz;
689
	ns->geom.pgnum    = div_u64(ns->geom.totsz, ns->geom.pgsz);
690
	ns->geom.totszoob = ns->geom.totsz + (uint64_t)ns->geom.pgnum * ns->geom.oobsz;
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Linus Torvalds 已提交
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	ns->geom.secshift = ffs(ns->geom.secsz) - 1;
	ns->geom.pgshift  = chip->page_shift;
	ns->geom.oobshift = ffs(ns->geom.oobsz) - 1;
	ns->geom.pgsec    = ns->geom.secsz / ns->geom.pgsz;
	ns->geom.secszoob = ns->geom.secsz + ns->geom.oobsz * ns->geom.pgsec;
	ns->options = 0;

698
	if (ns->geom.pgsz == 512) {
699
		ns->options |= OPT_PAGE512;
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		if (ns->busw == 8)
			ns->options |= OPT_PAGE512_8BIT;
	} else if (ns->geom.pgsz == 2048) {
		ns->options |= OPT_PAGE2048;
704 705
	} else if (ns->geom.pgsz == 4096) {
		ns->options |= OPT_PAGE4096;
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	} else {
		NS_ERR("init_nandsim: unknown page size %u\n", ns->geom.pgsz);
		return -EIO;
	}

	if (ns->options & OPT_SMALLPAGE) {
712
		if (ns->geom.totsz <= (32 << 20)) {
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			ns->geom.pgaddrbytes  = 3;
			ns->geom.secaddrbytes = 2;
		} else {
			ns->geom.pgaddrbytes  = 4;
			ns->geom.secaddrbytes = 3;
		}
	} else {
		if (ns->geom.totsz <= (128 << 20)) {
721
			ns->geom.pgaddrbytes  = 4;
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			ns->geom.secaddrbytes = 2;
		} else {
			ns->geom.pgaddrbytes  = 5;
			ns->geom.secaddrbytes = 3;
		}
	}
728

729 730 731 732 733 734 735 736 737
	/* Fill the partition_info structure */
	if (parts_num > ARRAY_SIZE(ns->partitions)) {
		NS_ERR("too many partitions.\n");
		ret = -EINVAL;
		goto error;
	}
	remains = ns->geom.totsz;
	next_offset = 0;
	for (i = 0; i < parts_num; ++i) {
738
		uint64_t part_sz = (uint64_t)parts[i] * ns->geom.secsz;
739 740

		if (!part_sz || part_sz > remains) {
741 742 743 744 745 746
			NS_ERR("bad partition size.\n");
			ret = -EINVAL;
			goto error;
		}
		ns->partitions[i].name   = get_partition_name(i);
		ns->partitions[i].offset = next_offset;
747
		ns->partitions[i].size   = part_sz;
748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763
		next_offset += ns->partitions[i].size;
		remains -= ns->partitions[i].size;
	}
	ns->nbparts = parts_num;
	if (remains) {
		if (parts_num + 1 > ARRAY_SIZE(ns->partitions)) {
			NS_ERR("too many partitions.\n");
			ret = -EINVAL;
			goto error;
		}
		ns->partitions[i].name   = get_partition_name(i);
		ns->partitions[i].offset = next_offset;
		ns->partitions[i].size   = remains;
		ns->nbparts += 1;
	}

L
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	/* Detect how many ID bytes the NAND chip outputs */
765 766 767
	for (i = 0; nand_flash_ids[i].name != NULL; i++) {
		if (second_id_byte != nand_flash_ids[i].dev_id)
			continue;
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	}

	if (ns->busw == 16)
		NS_WARN("16-bit flashes support wasn't tested\n");

773 774
	printk("flash size: %llu MiB\n",
			(unsigned long long)ns->geom.totsz >> 20);
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	printk("page size: %u bytes\n",         ns->geom.pgsz);
	printk("OOB area size: %u bytes\n",     ns->geom.oobsz);
	printk("sector size: %u KiB\n",         ns->geom.secsz >> 10);
	printk("pages number: %u\n",            ns->geom.pgnum);
	printk("pages per sector: %u\n",        ns->geom.pgsec);
	printk("bus width: %u\n",               ns->busw);
	printk("bits in sector size: %u\n",     ns->geom.secshift);
	printk("bits in page size: %u\n",       ns->geom.pgshift);
783 784 785
	printk("bits in OOB size: %u\n",	ns->geom.oobshift);
	printk("flash size with OOB: %llu KiB\n",
			(unsigned long long)ns->geom.totszoob >> 10);
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	printk("page address bytes: %u\n",      ns->geom.pgaddrbytes);
	printk("sector address bytes: %u\n",    ns->geom.secaddrbytes);
	printk("options: %#x\n",                ns->options);

790
	if ((ret = alloc_device(ns)) != 0)
791
		goto error;
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792 793 794 795 796 797

	/* Allocate / initialize the internal buffer */
	ns->buf.byte = kmalloc(ns->geom.pgszoob, GFP_KERNEL);
	if (!ns->buf.byte) {
		NS_ERR("init_nandsim: unable to allocate %u bytes for the internal buffer\n",
			ns->geom.pgszoob);
798
		ret = -ENOMEM;
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		goto error;
	}
	memset(ns->buf.byte, 0xFF, ns->geom.pgszoob);

	return 0;

error:
806
	free_device(ns);
L
Linus Torvalds 已提交
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808
	return ret;
L
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}

/*
 * Free the nandsim structure.
 */
V
Vijay Kumar 已提交
814
static void free_nandsim(struct nandsim *ns)
L
Linus Torvalds 已提交
815 816
{
	kfree(ns->buf.byte);
817
	free_device(ns);
L
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818 819 820 821

	return;
}

822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839
static int parse_badblocks(struct nandsim *ns, struct mtd_info *mtd)
{
	char *w;
	int zero_ok;
	unsigned int erase_block_no;
	loff_t offset;

	if (!badblocks)
		return 0;
	w = badblocks;
	do {
		zero_ok = (*w == '0' ? 1 : 0);
		erase_block_no = simple_strtoul(w, &w, 0);
		if (!zero_ok && !erase_block_no) {
			NS_ERR("invalid badblocks.\n");
			return -EINVAL;
		}
		offset = erase_block_no * ns->geom.secsz;
840
		if (mtd_block_markbad(mtd, offset)) {
841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017
			NS_ERR("invalid badblocks.\n");
			return -EINVAL;
		}
		if (*w == ',')
			w += 1;
	} while (*w);
	return 0;
}

static int parse_weakblocks(void)
{
	char *w;
	int zero_ok;
	unsigned int erase_block_no;
	unsigned int max_erases;
	struct weak_block *wb;

	if (!weakblocks)
		return 0;
	w = weakblocks;
	do {
		zero_ok = (*w == '0' ? 1 : 0);
		erase_block_no = simple_strtoul(w, &w, 0);
		if (!zero_ok && !erase_block_no) {
			NS_ERR("invalid weakblocks.\n");
			return -EINVAL;
		}
		max_erases = 3;
		if (*w == ':') {
			w += 1;
			max_erases = simple_strtoul(w, &w, 0);
		}
		if (*w == ',')
			w += 1;
		wb = kzalloc(sizeof(*wb), GFP_KERNEL);
		if (!wb) {
			NS_ERR("unable to allocate memory.\n");
			return -ENOMEM;
		}
		wb->erase_block_no = erase_block_no;
		wb->max_erases = max_erases;
		list_add(&wb->list, &weak_blocks);
	} while (*w);
	return 0;
}

static int erase_error(unsigned int erase_block_no)
{
	struct weak_block *wb;

	list_for_each_entry(wb, &weak_blocks, list)
		if (wb->erase_block_no == erase_block_no) {
			if (wb->erases_done >= wb->max_erases)
				return 1;
			wb->erases_done += 1;
			return 0;
		}
	return 0;
}

static int parse_weakpages(void)
{
	char *w;
	int zero_ok;
	unsigned int page_no;
	unsigned int max_writes;
	struct weak_page *wp;

	if (!weakpages)
		return 0;
	w = weakpages;
	do {
		zero_ok = (*w == '0' ? 1 : 0);
		page_no = simple_strtoul(w, &w, 0);
		if (!zero_ok && !page_no) {
			NS_ERR("invalid weakpagess.\n");
			return -EINVAL;
		}
		max_writes = 3;
		if (*w == ':') {
			w += 1;
			max_writes = simple_strtoul(w, &w, 0);
		}
		if (*w == ',')
			w += 1;
		wp = kzalloc(sizeof(*wp), GFP_KERNEL);
		if (!wp) {
			NS_ERR("unable to allocate memory.\n");
			return -ENOMEM;
		}
		wp->page_no = page_no;
		wp->max_writes = max_writes;
		list_add(&wp->list, &weak_pages);
	} while (*w);
	return 0;
}

static int write_error(unsigned int page_no)
{
	struct weak_page *wp;

	list_for_each_entry(wp, &weak_pages, list)
		if (wp->page_no == page_no) {
			if (wp->writes_done >= wp->max_writes)
				return 1;
			wp->writes_done += 1;
			return 0;
		}
	return 0;
}

static int parse_gravepages(void)
{
	char *g;
	int zero_ok;
	unsigned int page_no;
	unsigned int max_reads;
	struct grave_page *gp;

	if (!gravepages)
		return 0;
	g = gravepages;
	do {
		zero_ok = (*g == '0' ? 1 : 0);
		page_no = simple_strtoul(g, &g, 0);
		if (!zero_ok && !page_no) {
			NS_ERR("invalid gravepagess.\n");
			return -EINVAL;
		}
		max_reads = 3;
		if (*g == ':') {
			g += 1;
			max_reads = simple_strtoul(g, &g, 0);
		}
		if (*g == ',')
			g += 1;
		gp = kzalloc(sizeof(*gp), GFP_KERNEL);
		if (!gp) {
			NS_ERR("unable to allocate memory.\n");
			return -ENOMEM;
		}
		gp->page_no = page_no;
		gp->max_reads = max_reads;
		list_add(&gp->list, &grave_pages);
	} while (*g);
	return 0;
}

static int read_error(unsigned int page_no)
{
	struct grave_page *gp;

	list_for_each_entry(gp, &grave_pages, list)
		if (gp->page_no == page_no) {
			if (gp->reads_done >= gp->max_reads)
				return 1;
			gp->reads_done += 1;
			return 0;
		}
	return 0;
}

static void free_lists(void)
{
	struct list_head *pos, *n;
	list_for_each_safe(pos, n, &weak_blocks) {
		list_del(pos);
		kfree(list_entry(pos, struct weak_block, list));
	}
	list_for_each_safe(pos, n, &weak_pages) {
		list_del(pos);
		kfree(list_entry(pos, struct weak_page, list));
	}
	list_for_each_safe(pos, n, &grave_pages) {
		list_del(pos);
		kfree(list_entry(pos, struct grave_page, list));
	}
1018 1019 1020 1021 1022 1023 1024
	kfree(erase_block_wear);
}

static int setup_wear_reporting(struct mtd_info *mtd)
{
	size_t mem;

1025
	wear_eb_count = div_u64(mtd->size, mtd->erasesize);
1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043
	mem = wear_eb_count * sizeof(unsigned long);
	if (mem / sizeof(unsigned long) != wear_eb_count) {
		NS_ERR("Too many erase blocks for wear reporting\n");
		return -ENOMEM;
	}
	erase_block_wear = kzalloc(mem, GFP_KERNEL);
	if (!erase_block_wear) {
		NS_ERR("Too many erase blocks for wear reporting\n");
		return -ENOMEM;
	}
	return 0;
}

static void update_wear(unsigned int erase_block_no)
{
	if (!erase_block_wear)
		return;
	total_wear += 1;
1044 1045 1046 1047
	/*
	 * TODO: Notify this through a debugfs entry,
	 * instead of showing an error message.
	 */
1048 1049 1050 1051 1052
	if (total_wear == 0)
		NS_ERR("Erase counter total overflow\n");
	erase_block_wear[erase_block_no] += 1;
	if (erase_block_wear[erase_block_no] == 0)
		NS_ERR("Erase counter overflow for erase block %u\n", erase_block_no);
1053 1054
}

L
Linus Torvalds 已提交
1055 1056 1057
/*
 * Returns the string representation of 'state' state.
 */
V
Vijay Kumar 已提交
1058
static char *get_state_name(uint32_t state)
L
Linus Torvalds 已提交
1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082
{
	switch (NS_STATE(state)) {
		case STATE_CMD_READ0:
			return "STATE_CMD_READ0";
		case STATE_CMD_READ1:
			return "STATE_CMD_READ1";
		case STATE_CMD_PAGEPROG:
			return "STATE_CMD_PAGEPROG";
		case STATE_CMD_READOOB:
			return "STATE_CMD_READOOB";
		case STATE_CMD_READSTART:
			return "STATE_CMD_READSTART";
		case STATE_CMD_ERASE1:
			return "STATE_CMD_ERASE1";
		case STATE_CMD_STATUS:
			return "STATE_CMD_STATUS";
		case STATE_CMD_SEQIN:
			return "STATE_CMD_SEQIN";
		case STATE_CMD_READID:
			return "STATE_CMD_READID";
		case STATE_CMD_ERASE2:
			return "STATE_CMD_ERASE2";
		case STATE_CMD_RESET:
			return "STATE_CMD_RESET";
1083 1084 1085 1086
		case STATE_CMD_RNDOUT:
			return "STATE_CMD_RNDOUT";
		case STATE_CMD_RNDOUTSTART:
			return "STATE_CMD_RNDOUTSTART";
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		case STATE_ADDR_PAGE:
			return "STATE_ADDR_PAGE";
		case STATE_ADDR_SEC:
			return "STATE_ADDR_SEC";
		case STATE_ADDR_ZERO:
			return "STATE_ADDR_ZERO";
1093 1094
		case STATE_ADDR_COLUMN:
			return "STATE_ADDR_COLUMN";
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		case STATE_DATAIN:
			return "STATE_DATAIN";
		case STATE_DATAOUT:
			return "STATE_DATAOUT";
		case STATE_DATAOUT_ID:
			return "STATE_DATAOUT_ID";
		case STATE_DATAOUT_STATUS:
			return "STATE_DATAOUT_STATUS";
		case STATE_DATAOUT_STATUS_M:
			return "STATE_DATAOUT_STATUS_M";
		case STATE_READY:
			return "STATE_READY";
		case STATE_UNKNOWN:
			return "STATE_UNKNOWN";
	}

	NS_ERR("get_state_name: unknown state, BUG\n");
	return NULL;
}

/*
 * Check if command is valid.
 *
 * RETURNS: 1 if wrong command, 0 if right.
 */
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static int check_command(int cmd)
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{
	switch (cmd) {
1123

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	case NAND_CMD_READ0:
1125
	case NAND_CMD_READ1:
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	case NAND_CMD_READSTART:
	case NAND_CMD_PAGEPROG:
	case NAND_CMD_READOOB:
	case NAND_CMD_ERASE1:
	case NAND_CMD_STATUS:
	case NAND_CMD_SEQIN:
	case NAND_CMD_READID:
	case NAND_CMD_ERASE2:
	case NAND_CMD_RESET:
1135 1136
	case NAND_CMD_RNDOUT:
	case NAND_CMD_RNDOUTSTART:
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		return 0;
1138

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	default:
		return 1;
	}
}

/*
 * Returns state after command is accepted by command number.
 */
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static uint32_t get_state_by_command(unsigned command)
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{
	switch (command) {
		case NAND_CMD_READ0:
			return STATE_CMD_READ0;
		case NAND_CMD_READ1:
			return STATE_CMD_READ1;
		case NAND_CMD_PAGEPROG:
			return STATE_CMD_PAGEPROG;
		case NAND_CMD_READSTART:
			return STATE_CMD_READSTART;
		case NAND_CMD_READOOB:
			return STATE_CMD_READOOB;
		case NAND_CMD_ERASE1:
			return STATE_CMD_ERASE1;
		case NAND_CMD_STATUS:
			return STATE_CMD_STATUS;
		case NAND_CMD_SEQIN:
			return STATE_CMD_SEQIN;
		case NAND_CMD_READID:
			return STATE_CMD_READID;
		case NAND_CMD_ERASE2:
			return STATE_CMD_ERASE2;
		case NAND_CMD_RESET:
			return STATE_CMD_RESET;
1172 1173 1174 1175
		case NAND_CMD_RNDOUT:
			return STATE_CMD_RNDOUT;
		case NAND_CMD_RNDOUTSTART:
			return STATE_CMD_RNDOUTSTART;
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	}

	NS_ERR("get_state_by_command: unknown command, BUG\n");
	return 0;
}

/*
 * Move an address byte to the correspondent internal register.
 */
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static inline void accept_addr_byte(struct nandsim *ns, u_char bt)
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{
	uint byte = (uint)bt;
1188

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	if (ns->regs.count < (ns->geom.pgaddrbytes - ns->geom.secaddrbytes))
		ns->regs.column |= (byte << 8 * ns->regs.count);
	else {
		ns->regs.row |= (byte << 8 * (ns->regs.count -
						ns->geom.pgaddrbytes +
						ns->geom.secaddrbytes));
	}

	return;
}
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/*
 * Switch to STATE_READY state.
 */
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static inline void switch_to_ready_state(struct nandsim *ns, u_char status)
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{
	NS_DBG("switch_to_ready_state: switch to %s state\n", get_state_name(STATE_READY));

	ns->state       = STATE_READY;
	ns->nxstate     = STATE_UNKNOWN;
	ns->op          = NULL;
	ns->npstates    = 0;
	ns->stateidx    = 0;
	ns->regs.num    = 0;
	ns->regs.count  = 0;
	ns->regs.off    = 0;
	ns->regs.row    = 0;
	ns->regs.column = 0;
	ns->regs.status = status;
}

/*
 * If the operation isn't known yet, try to find it in the global array
 * of supported operations.
 *
 * Operation can be unknown because of the following.
1225
 *   1. New command was accepted and this is the first call to find the
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 *      correspondent states chain. In this case ns->npstates = 0;
1227
 *   2. There are several operations which begin with the same command(s)
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 *      (for example program from the second half and read from the
 *      second half operations both begin with the READ1 command). In this
 *      case the ns->pstates[] array contains previous states.
1231
 *
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 * Thus, the function tries to find operation containing the following
 * states (if the 'flag' parameter is 0):
 *    ns->pstates[0], ... ns->pstates[ns->npstates], ns->state
 *
 * If (one and only one) matching operation is found, it is accepted (
 * ns->ops, ns->state, ns->nxstate are initialized, ns->npstate is
 * zeroed).
1239
 *
1240
 * If there are several matches, the current state is pushed to the
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 * ns->pstates.
 *
 * The operation can be unknown only while commands are input to the chip.
 * As soon as address command is accepted, the operation must be known.
 * In such situation the function is called with 'flag' != 0, and the
 * operation is searched using the following pattern:
 *     ns->pstates[0], ... ns->pstates[ns->npstates], <address input>
1248
 *
1249
 * It is supposed that this pattern must either match one operation or
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 * none. There can't be ambiguity in that case.
 *
1252
 * If no matches found, the function does the following:
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 *   1. if there are saved states present, try to ignore them and search
 *      again only using the last command. If nothing was found, switch
 *      to the STATE_READY state.
 *   2. if there are no saved states, switch to the STATE_READY state.
 *
 * RETURNS: -2 - no matched operations found.
 *          -1 - several matches.
 *           0 - operation is found.
 */
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static int find_operation(struct nandsim *ns, uint32_t flag)
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{
	int opsfound = 0;
	int i, j, idx = 0;
1266

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	for (i = 0; i < NS_OPER_NUM; i++) {

		int found = 1;
1270

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		if (!(ns->options & ops[i].reqopts))
			/* Ignore operations we can't perform */
			continue;
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		if (flag) {
			if (!(ops[i].states[ns->npstates] & STATE_ADDR_MASK))
				continue;
		} else {
			if (NS_STATE(ns->state) != NS_STATE(ops[i].states[ns->npstates]))
				continue;
		}

1283
		for (j = 0; j < ns->npstates; j++)
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			if (NS_STATE(ops[i].states[j]) != NS_STATE(ns->pstates[j])
				&& (ns->options & ops[idx].reqopts)) {
				found = 0;
				break;
			}

		if (found) {
			idx = i;
			opsfound += 1;
		}
	}

	if (opsfound == 1) {
		/* Exact match */
		ns->op = &ops[idx].states[0];
		if (flag) {
1300
			/*
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			 * In this case the find_operation function was
			 * called when address has just began input. But it isn't
			 * yet fully input and the current state must
			 * not be one of STATE_ADDR_*, but the STATE_ADDR_*
			 * state must be the next state (ns->nxstate).
			 */
			ns->stateidx = ns->npstates - 1;
		} else {
			ns->stateidx = ns->npstates;
		}
		ns->npstates = 0;
		ns->state = ns->op[ns->stateidx];
		ns->nxstate = ns->op[ns->stateidx + 1];
		NS_DBG("find_operation: operation found, index: %d, state: %s, nxstate %s\n",
				idx, get_state_name(ns->state), get_state_name(ns->nxstate));
		return 0;
	}
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	if (opsfound == 0) {
		/* Nothing was found. Try to ignore previous commands (if any) and search again */
		if (ns->npstates != 0) {
			NS_DBG("find_operation: no operation found, try again with state %s\n",
					get_state_name(ns->state));
			ns->npstates = 0;
			return find_operation(ns, 0);

		}
		NS_DBG("find_operation: no operations found\n");
		switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
		return -2;
	}
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	if (flag) {
		/* This shouldn't happen */
		NS_DBG("find_operation: BUG, operation must be known if address is input\n");
		return -2;
	}
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	NS_DBG("find_operation: there is still ambiguity\n");

	ns->pstates[ns->npstates++] = ns->state;

	return -1;
}

1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398
static void put_pages(struct nandsim *ns)
{
	int i;

	for (i = 0; i < ns->held_cnt; i++)
		page_cache_release(ns->held_pages[i]);
}

/* Get page cache pages in advance to provide NOFS memory allocation */
static int get_pages(struct nandsim *ns, struct file *file, size_t count, loff_t pos)
{
	pgoff_t index, start_index, end_index;
	struct page *page;
	struct address_space *mapping = file->f_mapping;

	start_index = pos >> PAGE_CACHE_SHIFT;
	end_index = (pos + count - 1) >> PAGE_CACHE_SHIFT;
	if (end_index - start_index + 1 > NS_MAX_HELD_PAGES)
		return -EINVAL;
	ns->held_cnt = 0;
	for (index = start_index; index <= end_index; index++) {
		page = find_get_page(mapping, index);
		if (page == NULL) {
			page = find_or_create_page(mapping, index, GFP_NOFS);
			if (page == NULL) {
				write_inode_now(mapping->host, 1);
				page = find_or_create_page(mapping, index, GFP_NOFS);
			}
			if (page == NULL) {
				put_pages(ns);
				return -ENOMEM;
			}
			unlock_page(page);
		}
		ns->held_pages[ns->held_cnt++] = page;
	}
	return 0;
}

static int set_memalloc(void)
{
	if (current->flags & PF_MEMALLOC)
		return 0;
	current->flags |= PF_MEMALLOC;
	return 1;
}

static void clear_memalloc(int memalloc)
{
	if (memalloc)
		current->flags &= ~PF_MEMALLOC;
}

1399
static ssize_t read_file(struct nandsim *ns, struct file *file, void *buf, size_t count, loff_t pos)
1400 1401 1402 1403
{
	ssize_t tx;
	int err, memalloc;

1404
	err = get_pages(ns, file, count, pos);
1405 1406 1407
	if (err)
		return err;
	memalloc = set_memalloc();
1408
	tx = kernel_read(file, pos, buf, count);
1409 1410 1411 1412 1413
	clear_memalloc(memalloc);
	put_pages(ns);
	return tx;
}

1414
static ssize_t write_file(struct nandsim *ns, struct file *file, void *buf, size_t count, loff_t pos)
1415 1416 1417 1418
{
	ssize_t tx;
	int err, memalloc;

1419
	err = get_pages(ns, file, count, pos);
1420 1421 1422
	if (err)
		return err;
	memalloc = set_memalloc();
1423
	tx = kernel_write(file, buf, count, pos);
1424 1425 1426 1427 1428
	clear_memalloc(memalloc);
	put_pages(ns);
	return tx;
}

1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444
/*
 * Returns a pointer to the current page.
 */
static inline union ns_mem *NS_GET_PAGE(struct nandsim *ns)
{
	return &(ns->pages[ns->regs.row]);
}

/*
 * Retuns a pointer to the current byte, within the current page.
 */
static inline u_char *NS_PAGE_BYTE_OFF(struct nandsim *ns)
{
	return NS_GET_PAGE(ns)->byte + ns->regs.column + ns->regs.off;
}

1445 1446 1447 1448 1449
int do_read_error(struct nandsim *ns, int num)
{
	unsigned int page_no = ns->regs.row;

	if (read_error(page_no)) {
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		prandom_bytes(ns->buf.byte, num);
1451 1452 1453 1454 1455 1456 1457 1458
		NS_WARN("simulating read error in page %u\n", page_no);
		return 1;
	}
	return 0;
}

void do_bit_flips(struct nandsim *ns, int num)
{
1459
	if (bitflips && prandom_u32() < (1 << 22)) {
1460 1461
		int flips = 1;
		if (bitflips > 1)
1462
			flips = (prandom_u32() % (int) bitflips) + 1;
1463
		while (flips--) {
1464
			int pos = prandom_u32() % (num * 8);
1465 1466 1467 1468 1469 1470 1471 1472 1473
			ns->buf.byte[pos / 8] ^= (1 << (pos % 8));
			NS_WARN("read_page: flipping bit %d in page %d "
				"reading from %d ecc: corrected=%u failed=%u\n",
				pos, ns->regs.row, ns->regs.column + ns->regs.off,
				nsmtd->ecc_stats.corrected, nsmtd->ecc_stats.failed);
		}
	}
}

1474 1475 1476 1477 1478 1479 1480
/*
 * Fill the NAND buffer with data read from the specified page.
 */
static void read_page(struct nandsim *ns, int num)
{
	union ns_mem *mypage;

1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493
	if (ns->cfile) {
		if (!ns->pages_written[ns->regs.row]) {
			NS_DBG("read_page: page %d not written\n", ns->regs.row);
			memset(ns->buf.byte, 0xFF, num);
		} else {
			loff_t pos;
			ssize_t tx;

			NS_DBG("read_page: page %d written, reading from %d\n",
				ns->regs.row, ns->regs.column + ns->regs.off);
			if (do_read_error(ns, num))
				return;
			pos = (loff_t)ns->regs.row * ns->geom.pgszoob + ns->regs.column + ns->regs.off;
1494
			tx = read_file(ns, ns->cfile, ns->buf.byte, num, pos);
1495 1496 1497 1498 1499 1500 1501 1502 1503
			if (tx != num) {
				NS_ERR("read_page: read error for page %d ret %ld\n", ns->regs.row, (long)tx);
				return;
			}
			do_bit_flips(ns, num);
		}
		return;
	}

1504 1505 1506 1507 1508 1509 1510
	mypage = NS_GET_PAGE(ns);
	if (mypage->byte == NULL) {
		NS_DBG("read_page: page %d not allocated\n", ns->regs.row);
		memset(ns->buf.byte, 0xFF, num);
	} else {
		NS_DBG("read_page: page %d allocated, reading from %d\n",
			ns->regs.row, ns->regs.column + ns->regs.off);
1511
		if (do_read_error(ns, num))
1512
			return;
1513
		memcpy(ns->buf.byte, NS_PAGE_BYTE_OFF(ns), num);
1514
		do_bit_flips(ns, num);
1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525
	}
}

/*
 * Erase all pages in the specified sector.
 */
static void erase_sector(struct nandsim *ns)
{
	union ns_mem *mypage;
	int i;

1526 1527 1528 1529 1530 1531 1532 1533 1534
	if (ns->cfile) {
		for (i = 0; i < ns->geom.pgsec; i++)
			if (ns->pages_written[ns->regs.row + i]) {
				NS_DBG("erase_sector: freeing page %d\n", ns->regs.row + i);
				ns->pages_written[ns->regs.row + i] = 0;
			}
		return;
	}

1535 1536 1537 1538
	mypage = NS_GET_PAGE(ns);
	for (i = 0; i < ns->geom.pgsec; i++) {
		if (mypage->byte != NULL) {
			NS_DBG("erase_sector: freeing page %d\n", ns->regs.row+i);
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			kmem_cache_free(ns->nand_pages_slab, mypage->byte);
1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550
			mypage->byte = NULL;
		}
		mypage++;
	}
}

/*
 * Program the specified page with the contents from the NAND buffer.
 */
static int prog_page(struct nandsim *ns, int num)
{
1551
	int i;
1552 1553 1554
	union ns_mem *mypage;
	u_char *pg_off;

1555
	if (ns->cfile) {
1556
		loff_t off;
1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567
		ssize_t tx;
		int all;

		NS_DBG("prog_page: writing page %d\n", ns->regs.row);
		pg_off = ns->file_buf + ns->regs.column + ns->regs.off;
		off = (loff_t)ns->regs.row * ns->geom.pgszoob + ns->regs.column + ns->regs.off;
		if (!ns->pages_written[ns->regs.row]) {
			all = 1;
			memset(ns->file_buf, 0xff, ns->geom.pgszoob);
		} else {
			all = 0;
1568
			tx = read_file(ns, ns->cfile, pg_off, num, off);
1569 1570 1571 1572 1573 1574 1575 1576
			if (tx != num) {
				NS_ERR("prog_page: read error for page %d ret %ld\n", ns->regs.row, (long)tx);
				return -1;
			}
		}
		for (i = 0; i < num; i++)
			pg_off[i] &= ns->buf.byte[i];
		if (all) {
1577 1578
			loff_t pos = (loff_t)ns->regs.row * ns->geom.pgszoob;
			tx = write_file(ns, ns->cfile, ns->file_buf, ns->geom.pgszoob, pos);
1579 1580 1581 1582 1583 1584
			if (tx != ns->geom.pgszoob) {
				NS_ERR("prog_page: write error for page %d ret %ld\n", ns->regs.row, (long)tx);
				return -1;
			}
			ns->pages_written[ns->regs.row] = 1;
		} else {
1585
			tx = write_file(ns, ns->cfile, pg_off, num, off);
1586 1587 1588 1589 1590 1591 1592 1593
			if (tx != num) {
				NS_ERR("prog_page: write error for page %d ret %ld\n", ns->regs.row, (long)tx);
				return -1;
			}
		}
		return 0;
	}

1594 1595 1596
	mypage = NS_GET_PAGE(ns);
	if (mypage->byte == NULL) {
		NS_DBG("prog_page: allocating page %d\n", ns->regs.row);
1597 1598 1599
		/*
		 * We allocate memory with GFP_NOFS because a flash FS may
		 * utilize this. If it is holding an FS lock, then gets here,
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		 * then kernel memory alloc runs writeback which goes to the FS
		 * again and deadlocks. This was seen in practice.
1602
		 */
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		mypage->byte = kmem_cache_alloc(ns->nand_pages_slab, GFP_NOFS);
1604 1605 1606 1607 1608 1609 1610 1611
		if (mypage->byte == NULL) {
			NS_ERR("prog_page: error allocating memory for page %d\n", ns->regs.row);
			return -1;
		}
		memset(mypage->byte, 0xFF, ns->geom.pgszoob);
	}

	pg_off = NS_PAGE_BYTE_OFF(ns);
1612 1613
	for (i = 0; i < num; i++)
		pg_off[i] &= ns->buf.byte[i];
1614 1615 1616 1617

	return 0;
}

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/*
 * If state has any action bit, perform this action.
 *
 * RETURNS: 0 if success, -1 if error.
 */
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static int do_state_action(struct nandsim *ns, uint32_t action)
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{
1625
	int num;
L
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	int busdiv = ns->busw == 8 ? 1 : 2;
1627
	unsigned int erase_block_no, page_no;
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	action &= ACTION_MASK;
1630

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	/* Check that page address input is correct */
	if (action != ACTION_SECERASE && ns->regs.row >= ns->geom.pgnum) {
		NS_WARN("do_state_action: wrong page number (%#x)\n", ns->regs.row);
		return -1;
	}

	switch (action) {

	case ACTION_CPY:
		/*
		 * Copy page data to the internal buffer.
		 */

		/* Column shouldn't be very large */
		if (ns->regs.column >= (ns->geom.pgszoob - ns->regs.off)) {
			NS_ERR("do_state_action: column number is too large\n");
			break;
		}
		num = ns->geom.pgszoob - ns->regs.off - ns->regs.column;
1650
		read_page(ns, num);
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		NS_DBG("do_state_action: (ACTION_CPY:) copy %d bytes to int buf, raw offset %d\n",
			num, NS_RAW_OFFSET(ns) + ns->regs.off);
1654

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		if (ns->regs.off == 0)
			NS_LOG("read page %d\n", ns->regs.row);
		else if (ns->regs.off < ns->geom.pgsz)
			NS_LOG("read page %d (second half)\n", ns->regs.row);
		else
			NS_LOG("read OOB of page %d\n", ns->regs.row);
1661

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		NS_UDELAY(access_delay);
		NS_UDELAY(input_cycle * ns->geom.pgsz / 1000 / busdiv);

		break;

	case ACTION_SECERASE:
		/*
		 * Erase sector.
		 */
1671

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		if (ns->lines.wp) {
			NS_ERR("do_state_action: device is write-protected, ignore sector erase\n");
			return -1;
		}
1676

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		if (ns->regs.row >= ns->geom.pgnum - ns->geom.pgsec
			|| (ns->regs.row & ~(ns->geom.secsz - 1))) {
			NS_ERR("do_state_action: wrong sector address (%#x)\n", ns->regs.row);
			return -1;
		}
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		ns->regs.row = (ns->regs.row <<
				8 * (ns->geom.pgaddrbytes - ns->geom.secaddrbytes)) | ns->regs.column;
		ns->regs.column = 0;
1686

1687 1688
		erase_block_no = ns->regs.row >> (ns->geom.secshift - ns->geom.pgshift);

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		NS_DBG("do_state_action: erase sector at address %#x, off = %d\n",
				ns->regs.row, NS_RAW_OFFSET(ns));
1691
		NS_LOG("erase sector %u\n", erase_block_no);
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1693
		erase_sector(ns);
1694

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		NS_MDELAY(erase_delay);
1696

1697 1698 1699
		if (erase_block_wear)
			update_wear(erase_block_no);

1700 1701 1702 1703 1704
		if (erase_error(erase_block_no)) {
			NS_WARN("simulating erase failure in erase block %u\n", erase_block_no);
			return -1;
		}

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		break;

	case ACTION_PRGPAGE:
		/*
1709
		 * Program page - move internal buffer data to the page.
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		 */

		if (ns->lines.wp) {
			NS_WARN("do_state_action: device is write-protected, programm\n");
			return -1;
		}

		num = ns->geom.pgszoob - ns->regs.off - ns->regs.column;
		if (num != ns->regs.count) {
			NS_ERR("do_state_action: too few bytes were input (%d instead of %d)\n",
					ns->regs.count, num);
			return -1;
		}

1724 1725
		if (prog_page(ns, num) == -1)
			return -1;
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1727 1728
		page_no = ns->regs.row;

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		NS_DBG("do_state_action: copy %d bytes from int buf to (%#x, %#x), raw off = %d\n",
			num, ns->regs.row, ns->regs.column, NS_RAW_OFFSET(ns) + ns->regs.off);
		NS_LOG("programm page %d\n", ns->regs.row);
1732

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		NS_UDELAY(programm_delay);
		NS_UDELAY(output_cycle * ns->geom.pgsz / 1000 / busdiv);
1735

1736 1737 1738 1739 1740
		if (write_error(page_no)) {
			NS_WARN("simulating write failure in page %u\n", page_no);
			return -1;
		}

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		break;
1742

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	case ACTION_ZEROOFF:
		NS_DBG("do_state_action: set internal offset to 0\n");
		ns->regs.off = 0;
		break;

	case ACTION_HALFOFF:
		if (!(ns->options & OPT_PAGE512_8BIT)) {
			NS_ERR("do_state_action: BUG! can't skip half of page for non-512"
				"byte page size 8x chips\n");
			return -1;
		}
		NS_DBG("do_state_action: set internal offset to %d\n", ns->geom.pgsz/2);
		ns->regs.off = ns->geom.pgsz/2;
		break;

	case ACTION_OOBOFF:
		NS_DBG("do_state_action: set internal offset to %d\n", ns->geom.pgsz);
		ns->regs.off = ns->geom.pgsz;
		break;
1762

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	default:
		NS_DBG("do_state_action: BUG! unknown action\n");
	}

	return 0;
}

/*
 * Switch simulator's state.
 */
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static void switch_state(struct nandsim *ns)
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{
	if (ns->op) {
		/*
		 * The current operation have already been identified.
		 * Just follow the states chain.
		 */
1780

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		ns->stateidx += 1;
		ns->state = ns->nxstate;
		ns->nxstate = ns->op[ns->stateidx + 1];

		NS_DBG("switch_state: operation is known, switch to the next state, "
			"state: %s, nxstate: %s\n",
			get_state_name(ns->state), get_state_name(ns->nxstate));

		/* See, whether we need to do some action */
		if ((ns->state & ACTION_MASK) && do_state_action(ns, ns->state) < 0) {
			switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
			return;
		}
1794

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	} else {
		/*
		 * We don't yet know which operation we perform.
		 * Try to identify it.
		 */

1801
		/*
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		 *  The only event causing the switch_state function to
		 *  be called with yet unknown operation is new command.
		 */
		ns->state = get_state_by_command(ns->regs.command);

		NS_DBG("switch_state: operation is unknown, try to find it\n");

		if (find_operation(ns, 0) != 0)
			return;

		if ((ns->state & ACTION_MASK) && do_state_action(ns, ns->state) < 0) {
			switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
			return;
		}
	}

	/* For 16x devices column means the page offset in words */
	if ((ns->nxstate & STATE_ADDR_MASK) && ns->busw == 16) {
		NS_DBG("switch_state: double the column number for 16x device\n");
		ns->regs.column <<= 1;
	}

	if (NS_STATE(ns->nxstate) == STATE_READY) {
		/*
		 * The current state is the last. Return to STATE_READY
		 */

		u_char status = NS_STATUS_OK(ns);
1830

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		/* In case of data states, see if all bytes were input/output */
		if ((ns->state & (STATE_DATAIN_MASK | STATE_DATAOUT_MASK))
			&& ns->regs.count != ns->regs.num) {
			NS_WARN("switch_state: not all bytes were processed, %d left\n",
					ns->regs.num - ns->regs.count);
			status = NS_STATUS_FAILED(ns);
		}
1838

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		NS_DBG("switch_state: operation complete, switch to STATE_READY state\n");

		switch_to_ready_state(ns, status);

		return;
	} else if (ns->nxstate & (STATE_DATAIN_MASK | STATE_DATAOUT_MASK)) {
1845
		/*
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		 * If the next state is data input/output, switch to it now
		 */
1848

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		ns->state      = ns->nxstate;
		ns->nxstate    = ns->op[++ns->stateidx + 1];
		ns->regs.num   = ns->regs.count = 0;

		NS_DBG("switch_state: the next state is data I/O, switch, "
			"state: %s, nxstate: %s\n",
			get_state_name(ns->state), get_state_name(ns->nxstate));

		/*
		 * Set the internal register to the count of bytes which
		 * are expected to be input or output
		 */
		switch (NS_STATE(ns->state)) {
			case STATE_DATAIN:
			case STATE_DATAOUT:
				ns->regs.num = ns->geom.pgszoob - ns->regs.off - ns->regs.column;
				break;
1866

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			case STATE_DATAOUT_ID:
				ns->regs.num = ns->geom.idbytes;
				break;
1870

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			case STATE_DATAOUT_STATUS:
			case STATE_DATAOUT_STATUS_M:
				ns->regs.count = ns->regs.num = 0;
				break;
1875

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			default:
				NS_ERR("switch_state: BUG! unknown data state\n");
		}

	} else if (ns->nxstate & STATE_ADDR_MASK) {
		/*
		 * If the next state is address input, set the internal
		 * register to the number of expected address bytes
		 */

		ns->regs.count = 0;
1887

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		switch (NS_STATE(ns->nxstate)) {
			case STATE_ADDR_PAGE:
				ns->regs.num = ns->geom.pgaddrbytes;
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				break;
			case STATE_ADDR_SEC:
				ns->regs.num = ns->geom.secaddrbytes;
				break;
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			case STATE_ADDR_ZERO:
				ns->regs.num = 1;
				break;

1901 1902 1903 1904 1905
			case STATE_ADDR_COLUMN:
				/* Column address is always 2 bytes */
				ns->regs.num = ns->geom.pgaddrbytes - ns->geom.secaddrbytes;
				break;

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			default:
				NS_ERR("switch_state: BUG! unknown address state\n");
		}
	} else {
1910
		/*
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		 * Just reset internal counters.
		 */

		ns->regs.num = 0;
		ns->regs.count = 0;
	}
}

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static u_char ns_nand_read_byte(struct mtd_info *mtd)
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{
1921
	struct nandsim *ns = ((struct nand_chip *)mtd->priv)->priv;
L
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	u_char outb = 0x00;

	/* Sanity and correctness checks */
	if (!ns->lines.ce) {
		NS_ERR("read_byte: chip is disabled, return %#x\n", (uint)outb);
		return outb;
	}
	if (ns->lines.ale || ns->lines.cle) {
		NS_ERR("read_byte: ALE or CLE pin is high, return %#x\n", (uint)outb);
		return outb;
	}
	if (!(ns->state & STATE_DATAOUT_MASK)) {
		NS_WARN("read_byte: unexpected data output cycle, state is %s "
			"return %#x\n", get_state_name(ns->state), (uint)outb);
		return outb;
	}

	/* Status register may be read as many times as it is wanted */
	if (NS_STATE(ns->state) == STATE_DATAOUT_STATUS) {
		NS_DBG("read_byte: return %#x status\n", ns->regs.status);
		return ns->regs.status;
	}

	/* Check if there is any data in the internal buffer which may be read */
	if (ns->regs.count == ns->regs.num) {
		NS_WARN("read_byte: no more data to output, return %#x\n", (uint)outb);
		return outb;
	}

	switch (NS_STATE(ns->state)) {
		case STATE_DATAOUT:
			if (ns->busw == 8) {
				outb = ns->buf.byte[ns->regs.count];
				ns->regs.count += 1;
			} else {
				outb = (u_char)cpu_to_le16(ns->buf.word[ns->regs.count >> 1]);
				ns->regs.count += 2;
			}
			break;
		case STATE_DATAOUT_ID:
			NS_DBG("read_byte: read ID byte %d, total = %d\n", ns->regs.count, ns->regs.num);
			outb = ns->ids[ns->regs.count];
			ns->regs.count += 1;
			break;
		default:
			BUG();
	}
1969

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	if (ns->regs.count == ns->regs.num) {
		NS_DBG("read_byte: all bytes were read\n");

1973
		if (NS_STATE(ns->nxstate) == STATE_READY)
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			switch_state(ns);
	}
1976

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	return outb;
}

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static void ns_nand_write_byte(struct mtd_info *mtd, u_char byte)
L
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1981
{
1982
	struct nandsim *ns = ((struct nand_chip *)mtd->priv)->priv;
1983

L
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	/* Sanity and correctness checks */
	if (!ns->lines.ce) {
		NS_ERR("write_byte: chip is disabled, ignore write\n");
		return;
	}
	if (ns->lines.ale && ns->lines.cle) {
		NS_ERR("write_byte: ALE and CLE pins are high simultaneously, ignore write\n");
		return;
	}
1993

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	if (ns->lines.cle == 1) {
		/*
		 * The byte written is a command.
		 */

		if (byte == NAND_CMD_RESET) {
			NS_LOG("reset chip\n");
			switch_to_ready_state(ns, NS_STATUS_OK(ns));
			return;
		}

2005 2006 2007 2008 2009 2010
		/* Check that the command byte is correct */
		if (check_command(byte)) {
			NS_ERR("write_byte: unknown command %#x\n", (uint)byte);
			return;
		}

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		if (NS_STATE(ns->state) == STATE_DATAOUT_STATUS
			|| NS_STATE(ns->state) == STATE_DATAOUT_STATUS_M
2013 2014 2015
			|| NS_STATE(ns->state) == STATE_DATAOUT) {
			int row = ns->regs.row;

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			switch_state(ns);
2017 2018 2019
			if (byte == NAND_CMD_RNDOUT)
				ns->regs.row = row;
		}
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		/* Check if chip is expecting command */
		if (NS_STATE(ns->nxstate) != STATE_UNKNOWN && !(ns->nxstate & STATE_CMD_MASK)) {
2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033
			/* Do not warn if only 2 id bytes are read */
			if (!(ns->regs.command == NAND_CMD_READID &&
			    NS_STATE(ns->state) == STATE_DATAOUT_ID && ns->regs.count == 2)) {
				/*
				 * We are in situation when something else (not command)
				 * was expected but command was input. In this case ignore
				 * previous command(s)/state(s) and accept the last one.
				 */
				NS_WARN("write_byte: command (%#x) wasn't expected, expected state is %s, "
					"ignore previous states\n", (uint)byte, get_state_name(ns->nxstate));
			}
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			switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
		}
2036

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		NS_DBG("command byte corresponding to %s state accepted\n",
			get_state_name(get_state_by_command(byte)));
		ns->regs.command = byte;
		switch_state(ns);

	} else if (ns->lines.ale == 1) {
		/*
		 * The byte written is an address.
		 */

		if (NS_STATE(ns->nxstate) == STATE_UNKNOWN) {

			NS_DBG("write_byte: operation isn't known yet, identify it\n");

			if (find_operation(ns, 1) < 0)
				return;
2053

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			if ((ns->state & ACTION_MASK) && do_state_action(ns, ns->state) < 0) {
				switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
				return;
			}
2058

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			ns->regs.count = 0;
			switch (NS_STATE(ns->nxstate)) {
				case STATE_ADDR_PAGE:
					ns->regs.num = ns->geom.pgaddrbytes;
					break;
				case STATE_ADDR_SEC:
					ns->regs.num = ns->geom.secaddrbytes;
					break;
				case STATE_ADDR_ZERO:
					ns->regs.num = 1;
					break;
				default:
					BUG();
			}
		}

		/* Check that chip is expecting address */
		if (!(ns->nxstate & STATE_ADDR_MASK)) {
			NS_ERR("write_byte: address (%#x) isn't expected, expected state is %s, "
				"switch to STATE_READY\n", (uint)byte, get_state_name(ns->nxstate));
			switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
			return;
		}
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		/* Check if this is expected byte */
		if (ns->regs.count == ns->regs.num) {
			NS_ERR("write_byte: no more address bytes expected\n");
			switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
			return;
		}

		accept_addr_byte(ns, byte);

		ns->regs.count += 1;

		NS_DBG("write_byte: address byte %#x was accepted (%d bytes input, %d expected)\n",
				(uint)byte, ns->regs.count, ns->regs.num);

		if (ns->regs.count == ns->regs.num) {
			NS_DBG("address (%#x, %#x) is accepted\n", ns->regs.row, ns->regs.column);
			switch_state(ns);
		}
2101

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	} else {
		/*
		 * The byte written is an input data.
		 */
2106

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		/* Check that chip is expecting data input */
		if (!(ns->state & STATE_DATAIN_MASK)) {
			NS_ERR("write_byte: data input (%#x) isn't expected, state is %s, "
				"switch to %s\n", (uint)byte,
				get_state_name(ns->state), get_state_name(STATE_READY));
			switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
			return;
		}

		/* Check if this is expected byte */
		if (ns->regs.count == ns->regs.num) {
			NS_WARN("write_byte: %u input bytes has already been accepted, ignore write\n",
					ns->regs.num);
			return;
		}

		if (ns->busw == 8) {
			ns->buf.byte[ns->regs.count] = byte;
			ns->regs.count += 1;
		} else {
			ns->buf.word[ns->regs.count >> 1] = cpu_to_le16((uint16_t)byte);
			ns->regs.count += 2;
		}
	}

	return;
}

2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146
static void ns_hwcontrol(struct mtd_info *mtd, int cmd, unsigned int bitmask)
{
	struct nandsim *ns = ((struct nand_chip *)mtd->priv)->priv;

	ns->lines.cle = bitmask & NAND_CLE ? 1 : 0;
	ns->lines.ale = bitmask & NAND_ALE ? 1 : 0;
	ns->lines.ce = bitmask & NAND_NCE ? 1 : 0;

	if (cmd != NAND_CMD_NONE)
		ns_nand_write_byte(mtd, cmd);
}

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static int ns_device_ready(struct mtd_info *mtd)
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{
	NS_DBG("device_ready\n");
	return 1;
}

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static uint16_t ns_nand_read_word(struct mtd_info *mtd)
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{
	struct nand_chip *chip = (struct nand_chip *)mtd->priv;

	NS_DBG("read_word\n");
2158

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	return chip->read_byte(mtd) | (chip->read_byte(mtd) << 8);
}

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2162
static void ns_nand_write_buf(struct mtd_info *mtd, const u_char *buf, int len)
L
Linus Torvalds 已提交
2163
{
2164
	struct nandsim *ns = ((struct nand_chip *)mtd->priv)->priv;
L
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2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182

	/* Check that chip is expecting data input */
	if (!(ns->state & STATE_DATAIN_MASK)) {
		NS_ERR("write_buf: data input isn't expected, state is %s, "
			"switch to STATE_READY\n", get_state_name(ns->state));
		switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
		return;
	}

	/* Check if these are expected bytes */
	if (ns->regs.count + len > ns->regs.num) {
		NS_ERR("write_buf: too many input bytes\n");
		switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
		return;
	}

	memcpy(ns->buf.byte + ns->regs.count, buf, len);
	ns->regs.count += len;
2183

L
Linus Torvalds 已提交
2184 2185 2186 2187 2188
	if (ns->regs.count == ns->regs.num) {
		NS_DBG("write_buf: %d bytes were written\n", ns->regs.count);
	}
}

V
Vijay Kumar 已提交
2189
static void ns_nand_read_buf(struct mtd_info *mtd, u_char *buf, int len)
L
Linus Torvalds 已提交
2190
{
2191
	struct nandsim *ns = ((struct nand_chip *)mtd->priv)->priv;
L
Linus Torvalds 已提交
2192 2193 2194 2195 2196 2197 2198 2199 2200 2201 2202 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225

	/* Sanity and correctness checks */
	if (!ns->lines.ce) {
		NS_ERR("read_buf: chip is disabled\n");
		return;
	}
	if (ns->lines.ale || ns->lines.cle) {
		NS_ERR("read_buf: ALE or CLE pin is high\n");
		return;
	}
	if (!(ns->state & STATE_DATAOUT_MASK)) {
		NS_WARN("read_buf: unexpected data output cycle, current state is %s\n",
			get_state_name(ns->state));
		return;
	}

	if (NS_STATE(ns->state) != STATE_DATAOUT) {
		int i;

		for (i = 0; i < len; i++)
			buf[i] = ((struct nand_chip *)mtd->priv)->read_byte(mtd);

		return;
	}

	/* Check if these are expected bytes */
	if (ns->regs.count + len > ns->regs.num) {
		NS_ERR("read_buf: too many bytes to read\n");
		switch_to_ready_state(ns, NS_STATUS_FAILED(ns));
		return;
	}

	memcpy(buf, ns->buf.byte + ns->regs.count, len);
	ns->regs.count += len;
2226

L
Linus Torvalds 已提交
2227
	if (ns->regs.count == ns->regs.num) {
2228
		if (NS_STATE(ns->nxstate) == STATE_READY)
L
Linus Torvalds 已提交
2229 2230
			switch_state(ns);
	}
2231

L
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2232 2233 2234 2235 2236 2237
	return;
}

/*
 * Module initialization function
 */
2238
static int __init ns_init_module(void)
L
Linus Torvalds 已提交
2239 2240 2241
{
	struct nand_chip *chip;
	struct nandsim *nand;
2242
	int retval = -ENOMEM, i;
L
Linus Torvalds 已提交
2243 2244 2245 2246 2247

	if (bus_width != 8 && bus_width != 16) {
		NS_ERR("wrong bus width (%d), use only 8 or 16\n", bus_width);
		return -EINVAL;
	}
2248

L
Linus Torvalds 已提交
2249
	/* Allocate and initialize mtd_info, nand_chip and nandsim structures */
2250
	nsmtd = kzalloc(sizeof(struct mtd_info) + sizeof(struct nand_chip)
L
Linus Torvalds 已提交
2251 2252 2253 2254 2255 2256 2257 2258
				+ sizeof(struct nandsim), GFP_KERNEL);
	if (!nsmtd) {
		NS_ERR("unable to allocate core structures.\n");
		return -ENOMEM;
	}
	chip        = (struct nand_chip *)(nsmtd + 1);
        nsmtd->priv = (void *)chip;
	nand        = (struct nandsim *)(chip + 1);
2259
	chip->priv  = (void *)nand;
L
Linus Torvalds 已提交
2260 2261 2262 2263

	/*
	 * Register simulator's callbacks.
	 */
2264
	chip->cmd_ctrl	 = ns_hwcontrol;
L
Linus Torvalds 已提交
2265 2266 2267 2268 2269
	chip->read_byte  = ns_nand_read_byte;
	chip->dev_ready  = ns_device_ready;
	chip->write_buf  = ns_nand_write_buf;
	chip->read_buf   = ns_nand_read_buf;
	chip->read_word  = ns_nand_read_word;
T
Thomas Gleixner 已提交
2270
	chip->ecc.mode   = NAND_ECC_SOFT;
2271 2272
	/* The NAND_SKIP_BBTSCAN option is necessary for 'overridesize' */
	/* and 'badblocks' parameters to work */
2273
	chip->options   |= NAND_SKIP_BBTSCAN;
L
Linus Torvalds 已提交
2274

2275 2276
	switch (bbt) {
	case 2:
2277
		 chip->bbt_options |= NAND_BBT_NO_OOB;
2278
	case 1:
2279
		 chip->bbt_options |= NAND_BBT_USE_FLASH;
2280 2281 2282 2283 2284 2285 2286
	case 0:
		break;
	default:
		NS_ERR("bbt has to be 0..2\n");
		retval = -EINVAL;
		goto error;
	}
2287
	/*
L
Linus Torvalds 已提交
2288
	 * Perform minimum nandsim structure initialization to handle
2289
	 * the initial ID read command correctly
L
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2290 2291 2292 2293 2294 2295 2296
	 */
	if (third_id_byte != 0xFF || fourth_id_byte != 0xFF)
		nand->geom.idbytes = 4;
	else
		nand->geom.idbytes = 2;
	nand->regs.status = NS_STATUS_OK(nand);
	nand->nxstate = STATE_UNKNOWN;
2297
	nand->options |= OPT_PAGE512; /* temporary value */
L
Linus Torvalds 已提交
2298 2299 2300 2301 2302 2303 2304 2305 2306
	nand->ids[0] = first_id_byte;
	nand->ids[1] = second_id_byte;
	nand->ids[2] = third_id_byte;
	nand->ids[3] = fourth_id_byte;
	if (bus_width == 16) {
		nand->busw = 16;
		chip->options |= NAND_BUSWIDTH_16;
	}

2307 2308
	nsmtd->owner = THIS_MODULE;

2309 2310 2311 2312 2313 2314 2315 2316 2317
	if ((retval = parse_weakblocks()) != 0)
		goto error;

	if ((retval = parse_weakpages()) != 0)
		goto error;

	if ((retval = parse_gravepages()) != 0)
		goto error;

2318 2319 2320 2321 2322 2323 2324 2325 2326 2327 2328 2329 2330 2331 2332 2333 2334 2335 2336 2337 2338 2339 2340 2341 2342 2343 2344 2345 2346 2347 2348 2349 2350 2351 2352 2353 2354
	retval = nand_scan_ident(nsmtd, 1, NULL);
	if (retval) {
		NS_ERR("cannot scan NAND Simulator device\n");
		if (retval > 0)
			retval = -ENXIO;
		goto error;
	}

	if (bch) {
		unsigned int eccsteps, eccbytes;
		if (!mtd_nand_has_bch()) {
			NS_ERR("BCH ECC support is disabled\n");
			retval = -EINVAL;
			goto error;
		}
		/* use 512-byte ecc blocks */
		eccsteps = nsmtd->writesize/512;
		eccbytes = (bch*13+7)/8;
		/* do not bother supporting small page devices */
		if ((nsmtd->oobsize < 64) || !eccsteps) {
			NS_ERR("bch not available on small page devices\n");
			retval = -EINVAL;
			goto error;
		}
		if ((eccbytes*eccsteps+2) > nsmtd->oobsize) {
			NS_ERR("invalid bch value %u\n", bch);
			retval = -EINVAL;
			goto error;
		}
		chip->ecc.mode = NAND_ECC_SOFT_BCH;
		chip->ecc.size = 512;
		chip->ecc.bytes = eccbytes;
		NS_INFO("using %u-bit/%u bytes BCH ECC\n", bch, chip->ecc.size);
	}

	retval = nand_scan_tail(nsmtd);
	if (retval) {
L
Linus Torvalds 已提交
2355 2356 2357 2358 2359 2360
		NS_ERR("can't register NAND Simulator\n");
		if (retval > 0)
			retval = -ENXIO;
		goto error;
	}

2361
	if (overridesize) {
2362
		uint64_t new_size = (uint64_t)nsmtd->erasesize << overridesize;
2363 2364
		if (new_size >> overridesize != nsmtd->erasesize) {
			NS_ERR("overridesize is too big\n");
2365
			retval = -EINVAL;
2366 2367 2368 2369 2370
			goto err_exit;
		}
		/* N.B. This relies on nand_scan not doing anything with the size before we change it */
		nsmtd->size = new_size;
		chip->chipsize = new_size;
2371
		chip->chip_shift = ffs(nsmtd->erasesize) + overridesize - 1;
2372
		chip->pagemask = (chip->chipsize >> chip->page_shift) - 1;
2373 2374
	}

2375 2376 2377
	if ((retval = setup_wear_reporting(nsmtd)) != 0)
		goto err_exit;

2378 2379 2380
	if ((retval = nandsim_debugfs_create(nand)) != 0)
		goto err_exit;

2381 2382
	if ((retval = init_nandsim(nsmtd)) != 0)
		goto err_exit;
2383

2384
	if ((retval = nand_default_bbt(nsmtd)) != 0)
2385 2386
		goto err_exit;

2387
	if ((retval = parse_badblocks(nand, nsmtd)) != 0)
2388
		goto err_exit;
2389

2390
	/* Register NAND partitions */
2391 2392 2393
	retval = mtd_device_register(nsmtd, &nand->partitions[0],
				     nand->nbparts);
	if (retval != 0)
2394
		goto err_exit;
L
Linus Torvalds 已提交
2395 2396 2397

        return 0;

2398 2399 2400 2401 2402
err_exit:
	free_nandsim(nand);
	nand_release(nsmtd);
	for (i = 0;i < ARRAY_SIZE(nand->partitions); ++i)
		kfree(nand->partitions[i].name);
L
Linus Torvalds 已提交
2403 2404
error:
	kfree(nsmtd);
2405
	free_lists();
L
Linus Torvalds 已提交
2406 2407 2408 2409 2410 2411 2412 2413 2414 2415 2416

	return retval;
}

module_init(ns_init_module);

/*
 * Module clean-up function
 */
static void __exit ns_cleanup_module(void)
{
2417
	struct nandsim *ns = ((struct nand_chip *)nsmtd->priv)->priv;
2418
	int i;
L
Linus Torvalds 已提交
2419

2420
	nandsim_debugfs_remove(ns);
L
Linus Torvalds 已提交
2421
	free_nandsim(ns);    /* Free nandsim private resources */
2422 2423 2424
	nand_release(nsmtd); /* Unregister driver */
	for (i = 0;i < ARRAY_SIZE(ns->partitions); ++i)
		kfree(ns->partitions[i].name);
L
Linus Torvalds 已提交
2425
	kfree(nsmtd);        /* Free other structures */
2426
	free_lists();
L
Linus Torvalds 已提交
2427 2428 2429 2430 2431 2432 2433
}

module_exit(ns_cleanup_module);

MODULE_LICENSE ("GPL");
MODULE_AUTHOR ("Artem B. Bityuckiy");
MODULE_DESCRIPTION ("The NAND flash simulator");