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    /*
     * (C) Copyright 2001
     * Gerald Van Baren, Custom IDEAS, vanbaren@cideas.com.
     *
     * See file CREDITS for list of people who contributed to this
     * project.
     *
     * This program is free software; you can redistribute it and/or
     * modify it under the terms of the GNU General Public License as
     * published by the Free Software Foundation; either version 2 of
     * the License, or (at your option) any later version.
     *
     * 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
     */
    
    /*
     * I2C Functions similar to the standard memory functions.
     *
     * There are several parameters in many of the commands that bear further
     * explanations:
     *
     * Two of the commands (imm and imw) take a byte/word/long modifier
     * (e.g. imm.w specifies the word-length modifier).  This was done to
     * allow manipulating word-length registers.  It was not done on any other
     * commands because it was not deemed useful.
     *
     * {i2c_chip} is the I2C chip address (the first byte sent on the bus).
     *   Each I2C chip on the bus has a unique address.  On the I2C data bus,
     *   the address is the upper seven bits and the LSB is the "read/write"
     *   bit.  Note that the {i2c_chip} address specified on the command
     *   line is not shifted up: e.g. a typical EEPROM memory chip may have
     *   an I2C address of 0x50, but the data put on the bus will be 0xA0
     *   for write and 0xA1 for read.  This "non shifted" address notation
     *   matches at least half of the data sheets :-/.
     *
     * {addr} is the address (or offset) within the chip.  Small memory
     *   chips have 8 bit addresses.  Large memory chips have 16 bit
     *   addresses.  Other memory chips have 9, 10, or 11 bit addresses.
     *   Many non-memory chips have multiple registers and {addr} is used
     *   as the register index.  Some non-memory chips have only one register
     *   and therefore don't need any {addr} parameter.
     *
     *   The default {addr} parameter is one byte (.1) which works well for
     *   memories and registers with 8 bits of address space.
     *
     *   You can specify the length of the {addr} field with the optional .0,
     *   .1, or .2 modifier (similar to the .b, .w, .l modifier).  If you are
     *   manipulating a single register device which doesn't use an address
     *   field, use "0.0" for the address and the ".0" length field will
     *   suppress the address in the I2C data stream.  This also works for
     *   successive reads using the I2C auto-incrementing memory pointer.
     *
     *   If you are manipulating a large memory with 2-byte addresses, use
     *   the .2 address modifier, e.g. 210.2 addresses location 528 (decimal).
     *
     *   Then there are the unfortunate memory chips that spill the most
     *   significant 1, 2, or 3 bits of address into the chip address byte.
     *   This effectively makes one chip (logically) look like 2, 4, or
     *   8 chips.  This is handled (awkwardly) by #defining
     *   CFG_I2C_EEPROM_ADDR_OVERFLOW and using the .1 modifier on the
     *   {addr} field (since .1 is the default, it doesn't actually have to
     *   be specified).  Examples: given a memory chip at I2C chip address
     *   0x50, the following would happen...
     *     imd 50 0 10      display 16 bytes starting at 0x000
     *                      On the bus: <S> A0 00 <E> <S> A1 <rd> ... <rd>
     *     imd 50 100 10    display 16 bytes starting at 0x100
     *                      On the bus: <S> A2 00 <E> <S> A3 <rd> ... <rd>
     *     imd 50 210 10    display 16 bytes starting at 0x210
     *                      On the bus: <S> A4 10 <E> <S> A5 <rd> ... <rd>
     *   This is awfully ugly.  It would be nice if someone would think up
     *   a better way of handling this.
     *
     * Adapted from cmd_mem.c which is copyright Wolfgang Denk (wd@denx.de).
     */
    
    #include <common.h>
    #include <command.h>
    #include <i2c.h>
    #include <asm/byteorder.h>
    
    /* Display values from last command.
     * Memory modify remembered values are different from display memory.
     */
    static uchar	i2c_dp_last_chip;
    static uint	i2c_dp_last_addr;
    static uint	i2c_dp_last_alen;
    static uint	i2c_dp_last_length = 0x10;
    
    static uchar	i2c_mm_last_chip;
    static uint	i2c_mm_last_addr;
    static uint	i2c_mm_last_alen;
    
    
    /* If only one I2C bus is present, the list of devices to ignore when
     * the probe command is issued is represented by a 1D array of addresses.
     * When multiple buses are present, the list is an array of bus-address
     * pairs.  The following macros take care of this */
    
    
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    #if defined(CFG_I2C_NOPROBES)
    
    #if defined(CONFIG_I2C_MULTI_BUS)
    static struct
    {
    	uchar	bus;
    	uchar	addr;
    } i2c_no_probes[] = CFG_I2C_NOPROBES;
    #define GET_BUS_NUM	i2c_get_bus_num()
    #define COMPARE_BUS(b,i)	(i2c_no_probes[(i)].bus == (b))
    #define COMPARE_ADDR(a,i)	(i2c_no_probes[(i)].addr == (a))
    #define NO_PROBE_ADDR(i)	i2c_no_probes[(i)].addr
    #else		/* single bus */
    
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    static uchar i2c_no_probes[] = CFG_I2C_NOPROBES;
    
    #define GET_BUS_NUM	0
    #define COMPARE_BUS(b,i)	((b) == 0)	/* Make compiler happy */
    #define COMPARE_ADDR(a,i)	(i2c_no_probes[(i)] == (a))
    #define NO_PROBE_ADDR(i)	i2c_no_probes[(i)]
    #endif	/* CONFIG_MULTI_BUS */
    
    #define NUM_ELEMENTS_NOPROBE (sizeof(i2c_no_probes)/sizeof(i2c_no_probes[0]))
    
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    #endif
    
    static int
    mod_i2c_mem(cmd_tbl_t *cmdtp, int incrflag, int flag, int argc, char *argv[]);
    
    /*
     * Syntax:
     *	imd {i2c_chip} {addr}{.0, .1, .2} {len}
     */
    #define DISP_LINE_LEN	16
    
    int do_i2c_md ( cmd_tbl_t *cmdtp, int flag, int argc, char *argv[])
    {
    	u_char	chip;
    	uint	addr, alen, length;
    	int	j, nbytes, linebytes;
    
    	/* We use the last specified parameters, unless new ones are
    	 * entered.
    	 */
    	chip   = i2c_dp_last_chip;
    	addr   = i2c_dp_last_addr;
    	alen   = i2c_dp_last_alen;
    	length = i2c_dp_last_length;
    
    	if (argc < 3) {
    		printf ("Usage:\n%s\n", cmdtp->usage);
    		return 1;
    	}
    
    	if ((flag & CMD_FLAG_REPEAT) == 0) {
    		/*
    		 * New command specified.
    		 */
    		alen = 1;
    
    		/*
    		 * I2C chip address
    		 */
    		chip = simple_strtoul(argv[1], NULL, 16);
    
    		/*
    		 * I2C data address within the chip.  This can be 1 or
    		 * 2 bytes long.  Some day it might be 3 bytes long :-).
    		 */
    		addr = simple_strtoul(argv[2], NULL, 16);
    		alen = 1;
    
    		for (j = 0; j < 8; j++) {
    
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    			if (argv[2][j] == '.') {
    				alen = argv[2][j+1] - '0';
    				if (alen > 4) {
    					printf ("Usage:\n%s\n", cmdtp->usage);
    					return 1;
    				}
    				break;
    
    			} else if (argv[2][j] == '\0')
    
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    				break;
    		}
    
    		/*
    		 * If another parameter, it is the length to display.
    		 * Length is the number of objects, not number of bytes.
    		 */
    		if (argc > 3)
    			length = simple_strtoul(argv[3], NULL, 16);
    	}
    
    	/*
    	 * Print the lines.
    	 *
    	 * We buffer all read data, so we can make sure data is read only
    	 * once.
    	 */
    	nbytes = length;
    	do {
    		unsigned char	linebuf[DISP_LINE_LEN];
    		unsigned char	*cp;
    
    		linebytes = (nbytes > DISP_LINE_LEN) ? DISP_LINE_LEN : nbytes;
    
    
    		if (i2c_read(chip, addr, alen, linebuf, linebytes) != 0)
    
    			puts ("Error reading the chip.\n");
    
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    			printf("%04x:", addr);
    			cp = linebuf;
    			for (j=0; j<linebytes; j++) {
    				printf(" %02x", *cp++);
    				addr++;
    			}
    
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    			cp = linebuf;
    			for (j=0; j<linebytes; j++) {
    				if ((*cp < 0x20) || (*cp > 0x7e))
    
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    				else
    					printf("%c", *cp);
    				cp++;
    			}
    
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    		}
    		nbytes -= linebytes;
    	} while (nbytes > 0);
    
    	i2c_dp_last_chip   = chip;
    	i2c_dp_last_addr   = addr;
    	i2c_dp_last_alen   = alen;
    	i2c_dp_last_length = length;
    
    	return 0;
    }
    
    int do_i2c_mm ( cmd_tbl_t *cmdtp, int flag, int argc, char *argv[])
    {
    	return mod_i2c_mem (cmdtp, 1, flag, argc, argv);
    }
    
    
    int do_i2c_nm ( cmd_tbl_t *cmdtp, int flag, int argc, char *argv[])
    {
    	return mod_i2c_mem (cmdtp, 0, flag, argc, argv);
    }
    
    /* Write (fill) memory
     *
     * Syntax:
     *	imw {i2c_chip} {addr}{.0, .1, .2} {data} [{count}]
     */
    int do_i2c_mw ( cmd_tbl_t *cmdtp, int flag, int argc, char *argv[])
    {
    	uchar	chip;
    	ulong	addr;
    	uint	alen;
    	uchar	byte;
    	int	count;
    	int	j;
    
    	if ((argc < 4) || (argc > 5)) {
    		printf ("Usage:\n%s\n", cmdtp->usage);
    		return 1;
    	}
    
    	/*
    
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    	 * Chip is always specified.
    	 */
    
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    	chip = simple_strtoul(argv[1], NULL, 16);
    
    	/*
    	 * Address is always specified.
    	 */
    	addr = simple_strtoul(argv[2], NULL, 16);
    	alen = 1;
    
    	for (j = 0; j < 8; j++) {
    
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    		if (argv[2][j] == '.') {
    			alen = argv[2][j+1] - '0';
    
    			if (alen > 4) {
    
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    				printf ("Usage:\n%s\n", cmdtp->usage);
    				return 1;
    			}
    			break;
    
    		} else if (argv[2][j] == '\0')
    
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    			break;
    	}
    
    	/*
    	 * Value to write is always specified.
    	 */
    	byte = simple_strtoul(argv[3], NULL, 16);
    
    	/*
    	 * Optional count
    	 */
    
    	if (argc == 5)
    
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    		count = simple_strtoul(argv[4], NULL, 16);
    
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    		count = 1;
    
    	while (count-- > 0) {
    
    		if (i2c_write(chip, addr++, alen, &byte, 1) != 0)
    
    			puts ("Error writing the chip.\n");
    
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    		/*
    		 * Wait for the write to complete.  The write can take
    		 * up to 10mSec (we allow a little more time).
    		 *
    		 * On some chips, while the write is in progress, the
    		 * chip doesn't respond.  This apparently isn't a
    		 * universal feature so we don't take advantage of it.
    		 */
    
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    /*
     * No write delay with FRAM devices.
     */
    #if !defined(CFG_I2C_FRAM)
    
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    		udelay(11000);
    
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    #endif
    
    
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    #if 0
    
    		for (timeout = 0; timeout < 10; timeout++) {
    
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    			udelay(2000);
    
    			if (i2c_probe(chip) == 0)
    
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    				break;
    		}
    #endif
    	}
    
    	return (0);
    }
    
    
    /* Calculate a CRC on memory
     *
     * Syntax:
     *	icrc32 {i2c_chip} {addr}{.0, .1, .2} {count}
     */
    int do_i2c_crc (cmd_tbl_t *cmdtp, int flag, int argc, char *argv[])
    {
    	uchar	chip;
    	ulong	addr;
    	uint	alen;
    	int	count;
    	uchar	byte;
    	ulong	crc;
    	ulong	err;
    	int	j;
    
    	if (argc < 4) {
    		printf ("Usage:\n%s\n", cmdtp->usage);
    		return 1;
    	}
    
    	/*
    
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    	 * Chip is always specified.
    	 */
    
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    	chip = simple_strtoul(argv[1], NULL, 16);
    
    	/*
    	 * Address is always specified.
    	 */
    	addr = simple_strtoul(argv[2], NULL, 16);
    	alen = 1;
    
    	for (j = 0; j < 8; j++) {
    
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    		if (argv[2][j] == '.') {
    			alen = argv[2][j+1] - '0';
    
    			if (alen > 4) {
    
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    				printf ("Usage:\n%s\n", cmdtp->usage);
    				return 1;
    			}
    			break;
    
    		} else if (argv[2][j] == '\0')
    
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    			break;
    	}
    
    	/*
    	 * Count is always specified
    	 */
    	count = simple_strtoul(argv[3], NULL, 16);
    
    	printf ("CRC32 for %08lx ... %08lx ==> ", addr, addr + count - 1);
    	/*
    	 * CRC a byte at a time.  This is going to be slooow, but hey, the
    	 * memories are small and slow too so hopefully nobody notices.
    	 */
    	crc = 0;
    	err = 0;
    
    	while (count-- > 0) {
    		if (i2c_read(chip, addr, alen, &byte, 1) != 0)
    
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    			err++;
    		crc = crc32 (crc, &byte, 1);
    		addr++;
    	}
    
    	if (err > 0)
    
    		puts ("Error reading the chip,\n");
    
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    		printf ("%08lx\n", crc);
    
    	return 0;
    }
    
    
    /* Modify memory.
     *
     * Syntax:
     *	imm{.b, .w, .l} {i2c_chip} {addr}{.0, .1, .2}
     *	inm{.b, .w, .l} {i2c_chip} {addr}{.0, .1, .2}
     */
    
    static int
    mod_i2c_mem(cmd_tbl_t *cmdtp, int incrflag, int flag, int argc, char *argv[])
    {
    	uchar	chip;
    	ulong	addr;
    	uint	alen;
    	ulong	data;
    	int	size = 1;
    	int	nbytes;
    	int	j;
    	extern char console_buffer[];
    
    	if (argc != 3) {
    		printf ("Usage:\n%s\n", cmdtp->usage);
    		return 1;
    	}
    
    #ifdef CONFIG_BOOT_RETRY_TIME
    	reset_cmd_timeout();	/* got a good command to get here */
    #endif
    	/*
    	 * We use the last specified parameters, unless new ones are
    	 * entered.
    	 */
    	chip = i2c_mm_last_chip;
    	addr = i2c_mm_last_addr;
    	alen = i2c_mm_last_alen;
    
    	if ((flag & CMD_FLAG_REPEAT) == 0) {
    		/*
    		 * New command specified.  Check for a size specification.
    		 * Defaults to byte if no or incorrect specification.
    		 */
    		size = cmd_get_data_size(argv[0], 1);
    
    		/*
    
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    		 * Chip is always specified.
    		 */
    
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    		chip = simple_strtoul(argv[1], NULL, 16);
    
    		/*
    		 * Address is always specified.
    		 */
    		addr = simple_strtoul(argv[2], NULL, 16);
    		alen = 1;
    
    		for (j = 0; j < 8; j++) {
    
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    			if (argv[2][j] == '.') {
    				alen = argv[2][j+1] - '0';
    
    				if (alen > 4) {
    
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    					printf ("Usage:\n%s\n", cmdtp->usage);
    					return 1;
    				}
    				break;
    
    			} else if (argv[2][j] == '\0')
    
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    				break;
    		}
    	}
    
    	/*
    	 * Print the address, followed by value.  Then accept input for
    	 * the next value.  A non-converted value exits.
    	 */
    	do {
    		printf("%08lx:", addr);
    
    		if (i2c_read(chip, addr, alen, (uchar *)&data, size) != 0)
    
    			puts ("\nError reading the chip,\n");
    
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    			data = cpu_to_be32(data);
    
    			if (size == 1)
    
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    				printf(" %02lx", (data >> 24) & 0x000000FF);
    
    			else if (size == 2)
    
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    				printf(" %04lx", (data >> 16) & 0x0000FFFF);
    
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    				printf(" %08lx", data);
    		}
    
    		nbytes = readline (" ? ");
    		if (nbytes == 0) {
    			/*
    			 * <CR> pressed as only input, don't modify current
    			 * location and move to next.
    			 */
    			if (incrflag)
    				addr += size;
    			nbytes = size;
    #ifdef CONFIG_BOOT_RETRY_TIME
    			reset_cmd_timeout(); /* good enough to not time out */
    #endif
    		}
    #ifdef CONFIG_BOOT_RETRY_TIME
    
    		else if (nbytes == -2)
    
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    			break;	/* timed out, exit the command	*/
    #endif
    		else {
    			char *endp;
    
    			data = simple_strtoul(console_buffer, &endp, 16);
    
    			if (size == 1)
    
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    				data = data << 24;
    
    			else if (size == 2)
    
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    				data = data << 16;
    			data = be32_to_cpu(data);
    			nbytes = endp - console_buffer;
    			if (nbytes) {
    #ifdef CONFIG_BOOT_RETRY_TIME
    				/*
    				 * good enough to not time out
    				 */
    				reset_cmd_timeout();
    #endif
    
    				if (i2c_write(chip, addr, alen, (uchar *)&data, size) != 0)
    
    					puts ("Error writing the chip.\n");
    
    #ifdef CFG_EEPROM_PAGE_WRITE_DELAY_MS
    				udelay(CFG_EEPROM_PAGE_WRITE_DELAY_MS * 1000);
    #endif
    
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    				if (incrflag)
    					addr += size;
    			}
    		}
    	} while (nbytes);
    
    
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    	i2c_mm_last_chip = chip;
    	i2c_mm_last_addr = addr;
    	i2c_mm_last_alen = alen;
    
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    	return 0;
    }
    
    /*
     * Syntax:
     *	iprobe {addr}{.0, .1, .2}
     */
    int do_i2c_probe (cmd_tbl_t *cmdtp, int flag, int argc, char *argv[])
    {
    	int j;
    #if defined(CFG_I2C_NOPROBES)
    	int k, skip;
    
    	uchar bus = GET_BUS_NUM;
    #endif	/* NOPROBES */
    
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    	puts ("Valid chip addresses:");
    
    	for (j = 0; j < 128; j++) {
    
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    #if defined(CFG_I2C_NOPROBES)
    		skip = 0;
    
    		for (k=0; k < NUM_ELEMENTS_NOPROBE; k++) {
    			if (COMPARE_BUS(bus, k) && COMPARE_ADDR(j, k)) {
    
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    				skip = 1;
    				break;
    			}
    		}
    		if (skip)
    			continue;
    #endif
    
    		if (i2c_probe(j) == 0)
    
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    			printf(" %02X", j);
    	}
    
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    #if defined(CFG_I2C_NOPROBES)
    	puts ("Excluded chip addresses:");
    
    	for (k=0; k < NUM_ELEMENTS_NOPROBE; k++) {
    		if (COMPARE_BUS(bus,k))
    
    			printf(" %02X", NO_PROBE_ADDR(k));
    	}
    
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    #endif
    
    	return 0;
    }
    
    
    /*
     * Syntax:
     *	iloop {i2c_chip} {addr}{.0, .1, .2} [{length}] [{delay}]
     *	{length} - Number of bytes to read
     *	{delay}  - A DECIMAL number and defaults to 1000 uSec
     */
    int do_i2c_loop(cmd_tbl_t *cmdtp, int flag, int argc, char *argv[])
    {
    	u_char	chip;
    	ulong	alen;
    	uint	addr;
    	uint	length;
    	u_char	bytes[16];
    	int	delay;
    	int	j;
    
    	if (argc < 3) {
    		printf ("Usage:\n%s\n", cmdtp->usage);
    		return 1;
    	}
    
    	/*
    	 * Chip is always specified.
    	 */
    	chip = simple_strtoul(argv[1], NULL, 16);
    
    	/*
    	 * Address is always specified.
    	 */
    	addr = simple_strtoul(argv[2], NULL, 16);
    	alen = 1;
    
    	for (j = 0; j < 8; j++) {
    
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    		if (argv[2][j] == '.') {
    			alen = argv[2][j+1] - '0';
    			if (alen > 4) {
    				printf ("Usage:\n%s\n", cmdtp->usage);
    				return 1;
    			}
    			break;
    
    		} else if (argv[2][j] == '\0')
    
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    			break;
    	}
    
    	/*
    	 * Length is the number of objects, not number of bytes.
    	 */
    	length = 1;
    	length = simple_strtoul(argv[3], NULL, 16);
    
    	if (length > sizeof(bytes))
    
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    		length = sizeof(bytes);
    
    	/*
    	 * The delay time (uSec) is optional.
    	 */
    	delay = 1000;
    
    	if (argc > 3)
    
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    		delay = simple_strtoul(argv[4], NULL, 10);
    	/*
    	 * Run the loop...
    	 */
    
    	while (1) {
    		if (i2c_read(chip, addr, alen, bytes, length) != 0)
    
    			puts ("Error reading the chip.\n");
    
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    		udelay(delay);
    	}
    
    	/* NOTREACHED */
    	return 0;
    }
    
    
    /*
     * The SDRAM command is separately configured because many
     * (most?) embedded boards don't use SDRAM DIMMs.
     */
    
    #if defined(CONFIG_CMD_SDRAM)
    
    static void print_ddr2_tcyc (u_char const b)
    {
    	printf ("%d.", (b >> 4) & 0x0F);
    	switch (b & 0x0F) {
    	case 0x0:
    	case 0x1:
    	case 0x2:
    	case 0x3:
    	case 0x4:
    	case 0x5:
    	case 0x6:
    	case 0x7:
    	case 0x8:
    	case 0x9:
    		printf ("%d ns\n", b & 0x0F);
    		break;
    	case 0xA:
    		puts ("25 ns\n");
    		break;
    	case 0xB:
    		puts ("33 ns\n");
    		break;
    	case 0xC:
    		puts ("66 ns\n");
    		break;
    	case 0xD:
    		puts ("75 ns\n");
    		break;
    	default:
    		puts ("?? ns\n");
    		break;
    	}
    }
    
    static void decode_bits (u_char const b, char const *str[], int const do_once)
    {
    	u_char mask;
    
    	for (mask = 0x80; mask != 0x00; mask >>= 1, ++str) {
    		if (b & mask) {
    			puts (*str);
    			if (do_once)
    				return;
    		}
    	}
    }
    
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    /*
     * Syntax:
     *	sdram {i2c_chip}
     */
    
    int do_sdram (cmd_tbl_t * cmdtp, int flag, int argc, char *argv[])
    
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    {
    
    	enum { unknown, EDO, SDRAM, DDR2 } type;
    
    
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    	u_char	chip;
    	u_char	data[128];
    	u_char	cksum;
    	int	j;
    
    
    	static const char *decode_CAS_DDR2[] = {
    		" TBD", " 6", " 5", " 4", " 3", " 2", " TBD", " TBD"
    	};
    
    	static const char *decode_CAS_default[] = {
    		" TBD", " 7", " 6", " 5", " 4", " 3", " 2", " 1"
    	};
    
    	static const char *decode_CS_WE_default[] = {
    		" TBD", " 6", " 5", " 4", " 3", " 2", " 1", " 0"
    	};
    
    	static const char *decode_byte21_default[] = {
    		"  TBD (bit 7)\n",
    		"  Redundant row address\n",
    		"  Differential clock input\n",
    		"  Registerd DQMB inputs\n",
    		"  Buffered DQMB inputs\n",
    		"  On-card PLL\n",
    		"  Registered address/control lines\n",
    		"  Buffered address/control lines\n"
    	};
    
    	static const char *decode_byte22_DDR2[] = {
    		"  TBD (bit 7)\n",
    		"  TBD (bit 6)\n",
    		"  TBD (bit 5)\n",
    		"  TBD (bit 4)\n",
    		"  TBD (bit 3)\n",
    		"  Supports partial array self refresh\n",
    		"  Supports 50 ohm ODT\n",
    		"  Supports weak driver\n"
    	};
    
    	static const char *decode_row_density_DDR2[] = {
    		"512 MiB", "256 MiB", "128 MiB", "16 GiB",
    		"8 GiB", "4 GiB", "2 GiB", "1 GiB"
    	};
    
    	static const char *decode_row_density_default[] = {
    		"512 MiB", "256 MiB", "128 MiB", "64 MiB",
    		"32 MiB", "16 MiB", "8 MiB", "4 MiB"
    	};
    
    
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    	if (argc < 2) {
    		printf ("Usage:\n%s\n", cmdtp->usage);
    		return 1;
    	}
    	/*
    	 * Chip is always specified.
    
    	 */
    	chip = simple_strtoul (argv[1], NULL, 16);
    
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    	if (i2c_read (chip, 0, 1, data, sizeof (data)) != 0) {
    
    		puts ("No SDRAM Serial Presence Detect found.\n");
    
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    		return 1;
    	}
    
    	cksum = 0;
    	for (j = 0; j < 63; j++) {
    		cksum += data[j];
    	}
    
    	if (cksum != data[63]) {
    
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    		printf ("WARNING: Configuration data checksum failure:\n"
    
    			"  is 0x%02x, calculated 0x%02x\n", data[63], cksum);
    
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    	}
    
    	printf ("SPD data revision            %d.%d\n",
    
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    		(data[62] >> 4) & 0x0F, data[62] & 0x0F);
    
    	printf ("Bytes used                   0x%02X\n", data[0]);
    	printf ("Serial memory size           0x%02X\n", 1 << data[1]);
    
    
    	puts ("Memory type                  ");
    
    	switch (data[2]) {
    
    	case 2:
    		type = EDO;
    		puts ("EDO\n");
    		break;
    	case 4:
    		type = SDRAM;
    		puts ("SDRAM\n");
    		break;
    	case 8:
    		type = DDR2;
    		puts ("DDR2\n");
    		break;
    	default:
    		type = unknown;
    		puts ("unknown\n");
    		break;
    
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    	}
    
    	puts ("Row address bits             ");
    
    	if ((data[3] & 0x00F0) == 0)
    
    		printf ("%d\n", data[3] & 0x0F);
    
    		printf ("%d/%d\n", data[3] & 0x0F, (data[3] >> 4) & 0x0F);
    
    
    	puts ("Column address bits          ");
    
    	if ((data[4] & 0x00F0) == 0)
    
    		printf ("%d\n", data[4] & 0x0F);
    
    		printf ("%d/%d\n", data[4] & 0x0F, (data[4] >> 4) & 0x0F);
    
    
    	switch (type) {
    	case DDR2:
    
    		printf ("Number of ranks              %d\n",
    			(data[5] & 0x07) + 1);
    
    		printf ("Module rows                  %d\n", data[5]);
    
    		break;
    	}
    
    	switch (type) {
    	case DDR2:
    
    		printf ("Module data width            %d bits\n", data[6]);
    
    		printf ("Module data width            %d bits\n",
    			(data[7] << 8) | data[6]);
    
    	puts ("Interface signal levels      ");
    
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    	switch(data[8]) {
    
    		case 0:  puts ("TTL 5.0 V\n");	break;
    
    		case 1:  puts ("LVTTL\n");	break;
    
    		case 2:  puts ("HSTL 1.5 V\n");	break;
    		case 3:  puts ("SSTL 3.3 V\n");	break;
    		case 4:  puts ("SSTL 2.5 V\n");	break;
    		case 5:  puts ("SSTL 1.8 V\n");	break;
    
    		default: puts ("unknown\n");	break;
    
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    	}
    
    
    	switch (type) {
    	case DDR2:
    
    		printf ("SDRAM cycle time             ");
    		print_ddr2_tcyc (data[9]);
    
    		printf ("SDRAM cycle time             %d.%d ns\n",
    			(data[9] >> 4) & 0x0F, data[9] & 0x0F);
    
    		break;
    	}
    
    	switch (type) {
    	case DDR2:
    
    		printf ("SDRAM access time            0.%d%d ns\n",
    			(data[10] >> 4) & 0x0F, data[10] & 0x0F);
    
    		printf ("SDRAM access time            %d.%d ns\n",
    			(data[10] >> 4) & 0x0F, data[10] & 0x0F);
    
    	puts ("EDC configuration            ");
    
    	switch (data[11]) {
    
    		case 0:  puts ("None\n");	break;
    		case 1:  puts ("Parity\n");	break;
    		case 2:  puts ("ECC\n");	break;
    		default: puts ("unknown\n");	break;
    
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    	}
    
    	if ((data[12] & 0x80) == 0)
    
    		puts ("No self refresh, rate        ");
    
    		puts ("Self refresh, rate           ");
    
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    	switch(data[12] & 0x7F) {
    
    		case 0:  puts ("15.625 us\n");	break;
    		case 1:  puts ("3.9 us\n");	break;
    		case 2:  puts ("7.8 us\n");	break;
    		case 3:  puts ("31.3 us\n");	break;
    		case 4:  puts ("62.5 us\n");	break;
    		case 5:  puts ("125 us\n");	break;
    
    		default: puts ("unknown\n");	break;
    
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    	}
    
    
    	switch (type) {
    	case DDR2:
    
    		printf ("SDRAM width (primary)        %d\n", data[13]);
    
    		printf ("SDRAM width (primary)        %d\n", data[13] & 0x7F);
    
    		if ((data[13] & 0x80) != 0) {
    
    			printf ("  (second bank)              %d\n",
    				2 * (data[13] & 0x7F));
    
    		}
    		break;
    	}
    
    	switch (type) {
    	case DDR2:
    		if (data[14] != 0)
    
    			printf ("EDC width                    %d\n", data[14]);
    
    		break;
    	default:
    		if (data[14] != 0) {
    
    			printf ("EDC width                    %d\n",
    				data[14] & 0x7F);
    
    
    			if ((data[14] & 0x80) != 0) {
    
    				printf ("  (second bank)              %d\n",
    					2 * (data[14] & 0x7F));
    
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    	}
    
    	if (DDR2 != type) {
    		printf ("Min clock delay, back-to-back random column addresses "
    			"%d\n", data[15]);
    
    	puts ("Burst length(s)             ");
    	if (data[16] & 0x80) puts (" Page");
    	if (data[16] & 0x08) puts (" 8");
    	if (data[16] & 0x04) puts (" 4");
    	if (data[16] & 0x02) puts (" 2");
    	if (data[16] & 0x01) puts (" 1");
    	putc ('\n');
    
    	printf ("Number of banks              %d\n", data[17]);
    
    
    	switch (type) {
    	case DDR2:
    		puts ("CAS latency(s)              ");
    
    		decode_bits (data[18], decode_CAS_DDR2, 0);
    
    		putc ('\n');
    		break;
    	default:
    		puts ("CAS latency(s)              ");
    
    		decode_bits (data[18], decode_CAS_default, 0);
    
    		putc ('\n');
    		break;
    	}
    
    	if (DDR2 != type) {
    		puts ("CS latency(s)               ");
    
    		decode_bits (data[19], decode_CS_WE_default, 0);
    
    		putc ('\n');
    	}
    
    	if (DDR2 != type) {
    		puts ("WE latency(s)               ");
    
    		decode_bits (data[20], decode_CS_WE_default, 0);
    
    		putc ('\n');
    	}
    
    	switch (type) {
    	case DDR2:
    		puts ("Module attributes:\n");
    		if (data[21] & 0x80)
    			puts ("  TBD (bit 7)\n");
    		if (data[21] & 0x40)
    			puts ("  Analysis probe installed\n");
    		if (data[21] & 0x20)
    			puts ("  TBD (bit 5)\n");
    		if (data[21] & 0x10)
    			puts ("  FET switch external enable\n");
    
    		printf ("  %d PLLs on DIMM\n", (data[21] >> 2) & 0x03);
    
    		if (data[20] & 0x11) {
    
    			printf ("  %d active registers on DIMM\n",
    				(data[21] & 0x03) + 1);
    
    		}
    		break;
    	default:
    		puts ("Module attributes:\n");
    		if (!data[21])
    			puts ("  (none)\n");
    
    		else
    			decode_bits (data[21], decode_byte21_default, 0);
    
    		break;
    	}
    
    	switch (type) {
    	case DDR2:
    
    		decode_bits (data[22], decode_byte22_DDR2, 0);
    
    		break;
    	default:
    		puts ("Device attributes:\n");
    		if (data[22] & 0x80) puts ("  TBD (bit 7)\n");
    		if (data[22] & 0x40) puts ("  TBD (bit 6)\n");
    		if (data[22] & 0x20) puts ("  Upper Vcc tolerance 5%\n");