cmd_i2c.c 36.6 KB
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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:
 *
 * {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
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 *   CONFIG_SYS_I2C_EEPROM_ADDR_OVERFLOW and using the .1 modifier on the
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 *   {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...
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 *     i2c md 50 0 10   display 16 bytes starting at 0x000
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 *                      On the bus: <S> A0 00 <E> <S> A1 <rd> ... <rd>
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 *     i2c md 50 100 10 display 16 bytes starting at 0x100
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 *                      On the bus: <S> A2 00 <E> <S> A3 <rd> ... <rd>
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 *     i2c md 50 210 10 display 16 bytes starting at 0x210
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 *                      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>
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#include <environment.h>
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#include <i2c.h>
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#include <malloc.h>
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#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;

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/* 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(CONFIG_SYS_I2C_NOPROBES)
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#if defined(CONFIG_I2C_MULTI_BUS)
static struct
{
	uchar	bus;
	uchar	addr;
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} i2c_no_probes[] = CONFIG_SYS_I2C_NOPROBES;
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#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[] = CONFIG_SYS_I2C_NOPROBES;
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#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

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#if defined(CONFIG_I2C_MUX)
static I2C_MUX_DEVICE	*i2c_mux_devices = NULL;
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static	int	i2c_mux_busid = CONFIG_SYS_MAX_I2C_BUS;
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DECLARE_GLOBAL_DATA_PTR;

#endif

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#define DISP_LINE_LEN	16

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/* TODO: Implement architecture-specific get/set functions */
unsigned int __def_i2c_get_bus_speed(void)
{
	return CONFIG_SYS_I2C_SPEED;
}
unsigned int i2c_get_bus_speed(void)
	__attribute__((weak, alias("__def_i2c_get_bus_speed")));

int __def_i2c_set_bus_speed(unsigned int speed)
{
	if (speed != CONFIG_SYS_I2C_SPEED)
		return -1;

	return 0;
}
int i2c_set_bus_speed(unsigned int)
	__attribute__((weak, alias("__def_i2c_set_bus_speed")));

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/*
 * get_alen: small parser helper function to get address length
 * returns the address length,or 0 on error
 */
static uint get_alen(char *arg)
{
	int	j;
	int	alen;

	alen = 1;
	for (j = 0; j < 8; j++) {
		if (arg[j] == '.') {
			alen = arg[j+1] - '0';
			if (alen > 3) {
				return 0;
			}
			break;
		} else if (arg[j] == '\0')
			break;
	}
	return alen;
}

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/*
 * Syntax:
 *	i2c read {i2c_chip} {devaddr}{.0, .1, .2} {len} {memaddr}
 */

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static int do_i2c_read ( cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
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{
	u_char	chip;
	uint	devaddr, alen, length;
	u_char  *memaddr;

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	if (argc != 5)
		return cmd_usage(cmdtp);
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	/*
	 * 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 :-).
	 */
	devaddr = simple_strtoul(argv[2], NULL, 16);
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	alen = get_alen(argv[2]);
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	if (alen == 0)
		return cmd_usage(cmdtp);
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	/*
	 * Length is the number of objects, not number of bytes.
	 */
	length = simple_strtoul(argv[3], NULL, 16);

	/*
	 * memaddr is the address where to store things in memory
	 */
	memaddr = (u_char *)simple_strtoul(argv[4], NULL, 16);

	if (i2c_read(chip, devaddr, alen, memaddr, length) != 0) {
		puts ("Error reading the chip.\n");
		return 1;
	}
	return 0;
}

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/*
 * Syntax:
 *	i2c md {i2c_chip} {addr}{.0, .1, .2} {len}
 */
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static int do_i2c_md ( cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
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{
	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;

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	if (argc < 3)
		return cmd_usage(cmdtp);
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	if ((flag & CMD_FLAG_REPEAT) == 0) {
		/*
		 * New command specified.
		 */

		/*
		 * 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);
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		alen = get_alen(argv[2]);
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		if (alen == 0)
			return cmd_usage(cmdtp);
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		/*
		 * 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;

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		if (i2c_read(chip, addr, alen, linebuf, linebytes) != 0)
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			puts ("Error reading the chip.\n");
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		else {
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			printf("%04x:", addr);
			cp = linebuf;
			for (j=0; j<linebytes; j++) {
				printf(" %02x", *cp++);
				addr++;
			}
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			puts ("    ");
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			cp = linebuf;
			for (j=0; j<linebytes; j++) {
				if ((*cp < 0x20) || (*cp > 0x7e))
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					puts (".");
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				else
					printf("%c", *cp);
				cp++;
			}
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			putc ('\n');
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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;
}


/* Write (fill) memory
 *
 * Syntax:
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 *	i2c mw {i2c_chip} {addr}{.0, .1, .2} {data} [{count}]
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 */
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static int do_i2c_mw ( cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
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{
	uchar	chip;
	ulong	addr;
	uint	alen;
	uchar	byte;
	int	count;

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	if ((argc < 4) || (argc > 5))
		return cmd_usage(cmdtp);
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	/*
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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);
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	alen = get_alen(argv[2]);
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	if (alen == 0)
		return cmd_usage(cmdtp);
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	/*
	 * Value to write is always specified.
	 */
	byte = simple_strtoul(argv[3], NULL, 16);

	/*
	 * Optional count
	 */
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	if (argc == 5)
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		count = simple_strtoul(argv[4], NULL, 16);
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	else
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		count = 1;

	while (count-- > 0) {
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		if (i2c_write(chip, addr++, alen, &byte, 1) != 0)
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			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).
		 */
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/*
 * No write delay with FRAM devices.
 */
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#if !defined(CONFIG_SYS_I2C_FRAM)
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		udelay(11000);
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#endif
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	}

	return (0);
}

/* Calculate a CRC on memory
 *
 * Syntax:
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 *	i2c crc32 {i2c_chip} {addr}{.0, .1, .2} {count}
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 */
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static int do_i2c_crc (cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
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{
	uchar	chip;
	ulong	addr;
	uint	alen;
	int	count;
	uchar	byte;
	ulong	crc;
	ulong	err;

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	if (argc < 4)
		return cmd_usage(cmdtp);
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	/*
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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);
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	alen = get_alen(argv[2]);
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	if (alen == 0)
		return cmd_usage(cmdtp);
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	/*
	 * 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;
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	while (count-- > 0) {
		if (i2c_read(chip, addr, alen, &byte, 1) != 0)
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			err++;
		crc = crc32 (crc, &byte, 1);
		addr++;
	}
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	if (err > 0)
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		puts ("Error reading the chip,\n");
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	else
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		printf ("%08lx\n", crc);

	return 0;
}

/* Modify memory.
 *
 * Syntax:
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 *	i2c mm{.b, .w, .l} {i2c_chip} {addr}{.0, .1, .2}
 *	i2c nm{.b, .w, .l} {i2c_chip} {addr}{.0, .1, .2}
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 */

static int
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mod_i2c_mem(cmd_tbl_t *cmdtp, int incrflag, int flag, int argc, char * const argv[])
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{
	uchar	chip;
	ulong	addr;
	uint	alen;
	ulong	data;
	int	size = 1;
	int	nbytes;
	extern char console_buffer[];

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	if (argc != 3)
		return cmd_usage(cmdtp);
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#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);
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		alen = get_alen(argv[2]);
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		if (alen == 0)
			return cmd_usage(cmdtp);
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	}

	/*
	 * Print the address, followed by value.  Then accept input for
	 * the next value.  A non-converted value exits.
	 */
	do {
		printf("%08lx:", addr);
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		if (i2c_read(chip, addr, alen, (uchar *)&data, size) != 0)
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			puts ("\nError reading the chip,\n");
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		else {
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			data = cpu_to_be32(data);
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			if (size == 1)
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				printf(" %02lx", (data >> 24) & 0x000000FF);
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			else if (size == 2)
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				printf(" %04lx", (data >> 16) & 0x0000FFFF);
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			else
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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
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		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);
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			if (size == 1)
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				data = data << 24;
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			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
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				if (i2c_write(chip, addr, alen, (uchar *)&data, size) != 0)
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					puts ("Error writing the chip.\n");
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#ifdef CONFIG_SYS_EEPROM_PAGE_WRITE_DELAY_MS
				udelay(CONFIG_SYS_EEPROM_PAGE_WRITE_DELAY_MS * 1000);
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#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:
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 *	i2c probe {addr}{.0, .1, .2}
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 */
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static int do_i2c_probe (cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
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{
	int j;
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#if defined(CONFIG_SYS_I2C_NOPROBES)
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	int k, skip;
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	uchar bus = GET_BUS_NUM;
#endif	/* NOPROBES */
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	puts ("Valid chip addresses:");
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	for (j = 0; j < 128; j++) {
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#if defined(CONFIG_SYS_I2C_NOPROBES)
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		skip = 0;
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		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
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		if (i2c_probe(j) == 0)
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			printf(" %02X", j);
	}
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	putc ('\n');
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#if defined(CONFIG_SYS_I2C_NOPROBES)
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	puts ("Excluded chip addresses:");
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	for (k=0; k < NUM_ELEMENTS_NOPROBE; k++) {
		if (COMPARE_BUS(bus,k))
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			printf(" %02X", NO_PROBE_ADDR(k));
	}
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	putc ('\n');
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#endif

	return 0;
}

/*
 * Syntax:
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 *	i2c loop {i2c_chip} {addr}{.0, .1, .2} [{length}] [{delay}]
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 *	{length} - Number of bytes to read
 *	{delay}  - A DECIMAL number and defaults to 1000 uSec
 */
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static int do_i2c_loop(cmd_tbl_t *cmdtp, int flag, int argc, char * const argv[])
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{
	u_char	chip;
	ulong	alen;
	uint	addr;
	uint	length;
	u_char	bytes[16];
	int	delay;

611 612
	if (argc < 3)
		return cmd_usage(cmdtp);
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	/*
	 * Chip is always specified.
	 */
	chip = simple_strtoul(argv[1], NULL, 16);

	/*
	 * Address is always specified.
	 */
	addr = simple_strtoul(argv[2], NULL, 16);
623
	alen = get_alen(argv[2]);
624 625
	if (alen == 0)
		return cmd_usage(cmdtp);
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	/*
	 * Length is the number of objects, not number of bytes.
	 */
	length = 1;
	length = simple_strtoul(argv[3], NULL, 16);
632
	if (length > sizeof(bytes))
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		length = sizeof(bytes);

	/*
	 * The delay time (uSec) is optional.
	 */
	delay = 1000;
639
	if (argc > 3)
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		delay = simple_strtoul(argv[4], NULL, 10);
	/*
	 * Run the loop...
	 */
644 645
	while (1) {
		if (i2c_read(chip, addr, alen, bytes, length) != 0)
646
			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.
 */
658
#if defined(CONFIG_CMD_SDRAM)
659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704
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:
708
 *	i2c sdram {i2c_chip}
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 */
710
static int do_sdram (cmd_tbl_t * cmdtp, int flag, int argc, char * const argv[])
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{
712 713
	enum { unknown, EDO, SDRAM, DDR2 } type;

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	u_char	chip;
	u_char	data[128];
	u_char	cksum;
	int	j;

719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762
	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"
	};

763 764 765
	if (argc < 2)
		return cmd_usage(cmdtp);

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766 767
	/*
	 * Chip is always specified.
768 769
	 */
	chip = simple_strtoul (argv[1], NULL, 16);
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771
	if (i2c_read (chip, 0, 1, data, sizeof (data)) != 0) {
772
		puts ("No SDRAM Serial Presence Detect found.\n");
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773 774 775 776 777 778 779
		return 1;
	}

	cksum = 0;
	for (j = 0; j < 63; j++) {
		cksum += data[j];
	}
780
	if (cksum != data[63]) {
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		printf ("WARNING: Configuration data checksum failure:\n"
782
			"  is 0x%02x, calculated 0x%02x\n", data[63], cksum);
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783
	}
784
	printf ("SPD data revision            %d.%d\n",
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		(data[62] >> 4) & 0x0F, data[62] & 0x0F);
786 787 788
	printf ("Bytes used                   0x%02X\n", data[0]);
	printf ("Serial memory size           0x%02X\n", 1 << data[1]);

789
	puts ("Memory type                  ");
790
	switch (data[2]) {
791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806
	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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	}
808

809
	puts ("Row address bits             ");
810
	if ((data[3] & 0x00F0) == 0)
811
		printf ("%d\n", data[3] & 0x0F);
812
	else
813 814
		printf ("%d/%d\n", data[3] & 0x0F, (data[3] >> 4) & 0x0F);

815
	puts ("Column address bits          ");
816
	if ((data[4] & 0x00F0) == 0)
817
		printf ("%d\n", data[4] & 0x0F);
818
	else
819
		printf ("%d/%d\n", data[4] & 0x0F, (data[4] >> 4) & 0x0F);
820 821 822

	switch (type) {
	case DDR2:
823 824
		printf ("Number of ranks              %d\n",
			(data[5] & 0x07) + 1);
825 826
		break;
	default:
827
		printf ("Module rows                  %d\n", data[5]);
828 829 830 831 832
		break;
	}

	switch (type) {
	case DDR2:
833
		printf ("Module data width            %d bits\n", data[6]);
834 835
		break;
	default:
836 837
		printf ("Module data width            %d bits\n",
			(data[7] << 8) | data[6]);
838 839 840
		break;
	}

841
	puts ("Interface signal levels      ");
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	switch(data[8]) {
843
		case 0:  puts ("TTL 5.0 V\n");	break;
844
		case 1:  puts ("LVTTL\n");	break;
845 846 847 848
		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;
849
		default: puts ("unknown\n");	break;
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850
	}
851 852 853

	switch (type) {
	case DDR2:
854 855
		printf ("SDRAM cycle time             ");
		print_ddr2_tcyc (data[9]);
856 857
		break;
	default:
858 859
		printf ("SDRAM cycle time             %d.%d ns\n",
			(data[9] >> 4) & 0x0F, data[9] & 0x0F);
860 861 862 863 864
		break;
	}

	switch (type) {
	case DDR2:
865 866
		printf ("SDRAM access time            0.%d%d ns\n",
			(data[10] >> 4) & 0x0F, data[10] & 0x0F);
867 868
		break;
	default:
869 870
		printf ("SDRAM access time            %d.%d ns\n",
			(data[10] >> 4) & 0x0F, data[10] & 0x0F);
871 872 873
		break;
	}

874
	puts ("EDC configuration            ");
875
	switch (data[11]) {
876 877 878 879
		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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	}
881

882
	if ((data[12] & 0x80) == 0)
883
		puts ("No self refresh, rate        ");
884
	else
885
		puts ("Self refresh, rate           ");
886

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	switch(data[12] & 0x7F) {
888 889 890 891 892 893
		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;
894
		default: puts ("unknown\n");	break;
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	}
896 897 898

	switch (type) {
	case DDR2:
899
		printf ("SDRAM width (primary)        %d\n", data[13]);
900 901
		break;
	default:
902
		printf ("SDRAM width (primary)        %d\n", data[13] & 0x7F);
903
		if ((data[13] & 0x80) != 0) {
904 905
			printf ("  (second bank)              %d\n",
				2 * (data[13] & 0x7F));
906 907 908 909 910 911 912
		}
		break;
	}

	switch (type) {
	case DDR2:
		if (data[14] != 0)
913
			printf ("EDC width                    %d\n", data[14]);
914 915 916
		break;
	default:
		if (data[14] != 0) {
917 918
			printf ("EDC width                    %d\n",
				data[14] & 0x7F);
919 920

			if ((data[14] & 0x80) != 0) {
921 922
				printf ("  (second bank)              %d\n",
					2 * (data[14] & 0x7F));
923 924 925
			}
		}
		break;
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	}
927

928 929 930
	if (DDR2 != type) {
		printf ("Min clock delay, back-to-back random column addresses "
			"%d\n", data[15]);
931 932
	}

933 934 935 936 937 938 939
	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');
940
	printf ("Number of banks              %d\n", data[17]);
941 942 943 944

	switch (type) {
	case DDR2:
		puts ("CAS latency(s)              ");
945
		decode_bits (data[18], decode_CAS_DDR2, 0);
946 947 948 949
		putc ('\n');
		break;
	default:
		puts ("CAS latency(s)              ");
950
		decode_bits (data[18], decode_CAS_default, 0);
951 952 953 954 955 956
		putc ('\n');
		break;
	}

	if (DDR2 != type) {
		puts ("CS latency(s)               ");
957
		decode_bits (data[19], decode_CS_WE_default, 0);
958 959 960 961 962
		putc ('\n');
	}

	if (DDR2 != type) {
		puts ("WE latency(s)               ");
963
		decode_bits (data[20], decode_CS_WE_default, 0);
964 965 966 967 968 969 970 971 972 973 974 975 976 977
		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");
978
		printf ("  %d PLLs on DIMM\n", (data[21] >> 2) & 0x03);
979
		if (data[20] & 0x11) {
980 981
			printf ("  %d active registers on DIMM\n",
				(data[21] & 0x03) + 1);
982 983 984 985 986 987
		}
		break;
	default:
		puts ("Module attributes:\n");
		if (!data[21])
			puts ("  (none)\n");
988 989
		else
			decode_bits (data[21], decode_byte21_default, 0);
990 991 992 993 994
		break;
	}

	switch (type) {
	case DDR2:
995
		decode_bits (data[22], decode_byte22_DDR2, 0);
996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013
		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");
		else                 puts ("  Upper Vcc tolerance 10%\n");
		if (data[22] & 0x10) puts ("  Lower Vcc tolerance 5%\n");
		else                 puts ("  Lower Vcc tolerance 10%\n");
		if (data[22] & 0x08) puts ("  Supports write1/read burst\n");
		if (data[22] & 0x04) puts ("  Supports precharge all\n");
		if (data[22] & 0x02) puts ("  Supports auto precharge\n");
		if (data[22] & 0x01) puts ("  Supports early RAS# precharge\n");
		break;
	}

	switch (type) {
	case DDR2:
1014 1015
		printf ("SDRAM cycle time (2nd highest CAS latency)        ");
		print_ddr2_tcyc (data[23]);
1016 1017
		break;
	default:
1018 1019
		printf ("SDRAM cycle time (2nd highest CAS latency)        %d."
			"%d ns\n", (data[23] >> 4) & 0x0F, data[23] & 0x0F);
1020 1021 1022 1023 1024
		break;
	}

	switch (type) {
	case DDR2:
1025 1026
		printf ("SDRAM access from clock (2nd highest CAS latency) 0."
			"%d%d ns\n", (data[24] >> 4) & 0x0F, data[24] & 0x0F);
1027 1028
		break;
	default:
1029 1030
		printf ("SDRAM access from clock (2nd highest CAS latency) %d."
			"%d ns\n", (data[24] >> 4) & 0x0F, data[24] & 0x0F);
1031 1032 1033 1034 1035
		break;
	}

	switch (type) {
	case DDR2:
1036 1037
		printf ("SDRAM cycle time (3rd highest CAS latency)        ");
		print_ddr2_tcyc (data[25]);
1038 1039
		break;
	default:
1040 1041
		printf ("SDRAM cycle time (3rd highest CAS latency)        %d."
			"%d ns\n", (data[25] >> 4) & 0x0F, data[25] & 0x0F);
1042 1043 1044 1045 1046
		break;
	}

	switch (type) {
	case DDR2:
1047 1048
		printf ("SDRAM access from clock (3rd highest CAS latency) 0."
			"%d%d ns\n", (data[26] >> 4) & 0x0F, data[26] & 0x0F);
1049 1050
		break;
	default:
1051 1052
		printf ("SDRAM access from clock (3rd highest CAS latency) %d."
			"%d ns\n", (data[26] >> 4) & 0x0F, data[26] & 0x0F);
1053 1054 1055 1056 1057
		break;
	}

	switch (type) {
	case DDR2:
1058 1059
		printf ("Minimum row precharge        %d.%02d ns\n",
			(data[27] >> 2) & 0x3F, 25 * (data[27] & 0x03));
1060 1061
		break;
	default:
1062
		printf ("Minimum row precharge        %d ns\n", data[27]);
1063 1064 1065 1066 1067
		break;
	}

	switch (type) {
	case DDR2:
1068 1069
		printf ("Row active to row active min %d.%02d ns\n",
			(data[28] >> 2) & 0x3F, 25 * (data[28] & 0x03));
1070 1071
		break;
	default:
1072
		printf ("Row active to row active min %d ns\n", data[28]);
1073 1074 1075 1076 1077
		break;
	}

	switch (type) {
	case DDR2:
1078 1079
		printf ("RAS to CAS delay min         %d.%02d ns\n",
			(data[29] >> 2) & 0x3F, 25 * (data[29] & 0x03));
1080 1081
		break;
	default:
1082
		printf ("RAS to CAS delay min         %d ns\n", data[29]);
1083 1084 1085
		break;
	}

1086
	printf ("Minimum RAS pulse width      %d ns\n", data[30]);
1087 1088 1089

	switch (type) {
	case DDR2:
1090 1091 1092
		puts ("Density of each row          ");
		decode_bits (data[31], decode_row_density_DDR2, 1);
		putc ('\n');
1093 1094
		break;
	default:
1095 1096 1097
		puts ("Density of each row          ");
		decode_bits (data[31], decode_row_density_default, 1);
		putc ('\n');
1098 1099 1100 1101 1102
		break;
	}

	switch (type) {
	case DDR2:
1103
		puts ("Command and Address setup    ");
1104
		if (data[32] >= 0xA0) {
1105 1106
			printf ("1.%d%d ns\n",
				((data[32] >> 4) & 0x0F) - 10, data[32] & 0x0F);
1107
		} else {
1108 1109
			printf ("0.%d%d ns\n",
				((data[32] >> 4) & 0x0F), data[32] & 0x0F);
1110 1111 1112
		}
		break;
	default:
1113 1114 1115
		printf ("Command and Address setup    %c%d.%d ns\n",
			(data[32] & 0x80) ? '-' : '+',
			(data[32] >> 4) & 0x07, data[32] & 0x0F);
1116 1117 1118 1119 1120
		break;
	}

	switch (type) {
	case DDR2:
1121
		puts ("Command and Address hold     ");
1122
		if (data[33] >= 0xA0) {
1123 1124
			printf ("1.%d%d ns\n",
				((data[33] >> 4) & 0x0F) - 10, data[33] & 0x0F);
1125
		} else {
1126 1127
			printf ("0.%d%d ns\n",
				((data[33] >> 4) & 0x0F), data[33] & 0x0F);
1128 1129 1130
		}
		break;
	default:
1131 1132 1133
		printf ("Command and Address hold     %c%d.%d ns\n",
			(data[33] & 0x80) ? '-' : '+',
			(data[33] >> 4) & 0x07, data[33] & 0x0F);
1134 1135 1136 1137 1138
		break;
	}

	switch (type) {
	case DDR2:
1139 1140
		printf ("Data signal input setup      0.%d%d ns\n",
			(data[34] >> 4) & 0x0F, data[34] & 0x0F);
1141 1142
		break;
	default:
1143 1144 1145
		printf ("Data signal input setup      %c%d.%d ns\n",
			(data[34] & 0x80) ? '-' : '+',
			(data[34] >> 4) & 0x07, data[34] & 0x0F);
1146 1147 1148 1149 1150
		break;
	}

	switch (type) {
	case DDR2:
1151 1152
		printf ("Data signal input hold       0.%d%d ns\n",
			(data[35] >> 4) & 0x0F, data[35] & 0x0F);
1153 1154
		break;
	default:
1155 1156 1157
		printf ("Data signal input hold       %c%d.%d ns\n",
			(data[35] & 0x80) ? '-' : '+',
			(data[35] >> 4) & 0x07, data[35] & 0x0F);
1158 1159 1160
		break;
	}

1161
	puts ("Manufacturer's JEDEC ID      ");
1162
	for (j = 64; j <= 71; j++)
1163
		printf ("%02X ", data[j]);
1164
	putc ('\n');
1165
	printf ("Manufacturing Location       %02X\n", data[72]);
1166
	puts ("Manufacturer's Part Number   ");
1167
	for (j = 73; j <= 90; j++)
1168
		printf ("%02X ", data[j]);
1169
	putc ('\n');
1170 1171
	printf ("Revision Code                %02X %02X\n", data[91], data[92]);
	printf ("Manufacturing Date           %02X %02X\n", data[93], data[94]);
1172
	puts ("Assembly Serial Number       ");
1173
	for (j = 95; j <= 98; j++)
1174
		printf ("%02X ", data[j]);
1175
	putc ('\n');
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wdenk 已提交
1176

1177
	if (DDR2 != type) {
1178 1179
		printf ("Speed rating                 PC%d\n",
			data[126] == 0x66 ? 66 : data[126]);
1180
	}
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1181 1182
	return 0;
}
1183
#endif
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1184

1185
#if defined(CONFIG_I2C_MUX)
1186
static int do_i2c_add_bus(cmd_tbl_t * cmdtp, int flag, int argc, char * const argv[])
1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215
{
	int ret=0;

	if (argc == 1) {
		/* show all busses */
		I2C_MUX		*mux;
		I2C_MUX_DEVICE	*device = i2c_mux_devices;

		printf ("Busses reached over muxes:\n");
		while (device != NULL) {
			printf ("Bus ID: %x\n", device->busid);
			printf ("  reached over Mux(es):\n");
			mux = device->mux;
			while (mux != NULL) {
				printf ("    %s@%x ch: %x\n", mux->name, mux->chip, mux->channel);
				mux = mux->next;
			}
			device = device->next;
		}
	} else {
		I2C_MUX_DEVICE *dev;

		dev = i2c_mux_ident_muxstring ((uchar *)argv[1]);
		ret = 0;
	}
	return ret;
}
#endif  /* CONFIG_I2C_MUX */

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1216
#if defined(CONFIG_I2C_MULTI_BUS)
1217
static int do_i2c_bus_num(cmd_tbl_t * cmdtp, int flag, int argc, char * const argv[])
B
Ben Warren 已提交
1218 1219 1220
{
	int bus_idx, ret=0;

1221 1222
	if (argc == 1)
		/* querying current setting */
B
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1223
		printf("Current bus is %d\n", i2c_get_bus_num());
1224
	else {
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1225 1226 1227
		bus_idx = simple_strtoul(argv[1], NULL, 10);
		printf("Setting bus to %d\n", bus_idx);
		ret = i2c_set_bus_num(bus_idx);
1228
		if (ret)
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1229 1230 1231 1232 1233 1234
			printf("Failure changing bus number (%d)\n", ret);
	}
	return ret;
}
#endif  /* CONFIG_I2C_MULTI_BUS */

1235
static int do_i2c_bus_speed(cmd_tbl_t * cmdtp, int flag, int argc, char * const argv[])
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Ben Warren 已提交
1236 1237 1238
{
	int speed, ret=0;

1239 1240
	if (argc == 1)
		/* querying current speed */
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1241
		printf("Current bus speed=%d\n", i2c_get_bus_speed());
1242
	else {
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1243 1244 1245
		speed = simple_strtoul(argv[1], NULL, 10);
		printf("Setting bus speed to %d Hz\n", speed);
		ret = i2c_set_bus_speed(speed);
1246
		if (ret)
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			printf("Failure changing bus speed (%d)\n", ret);
	}
	return ret;
}

1252
static int do_i2c_mm(cmd_tbl_t * cmdtp, int flag, int argc, char * const argv[])
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Ben Warren 已提交
1253
{
1254 1255 1256
	return mod_i2c_mem (cmdtp, 1, flag, argc, argv);
}

1257
static int do_i2c_nm(cmd_tbl_t * cmdtp, int flag, int argc, char * const argv[])
1258 1259 1260
{
	return mod_i2c_mem (cmdtp, 0, flag, argc, argv);
}
1261

1262
static int do_i2c_reset(cmd_tbl_t * cmdtp, int flag, int argc, char * const argv[])
1263 1264 1265 1266 1267 1268
{
	i2c_init(CONFIG_SYS_I2C_SPEED, CONFIG_SYS_I2C_SLAVE);
	return 0;
}

static cmd_tbl_t cmd_i2c_sub[] = {
1269
#if defined(CONFIG_I2C_MUX)
1270
	U_BOOT_CMD_MKENT(bus, 1, 1, do_i2c_add_bus, "", ""),
1271
#endif  /* CONFIG_I2C_MUX */
1272
	U_BOOT_CMD_MKENT(crc32, 3, 1, do_i2c_crc, "", ""),
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1273
#if defined(CONFIG_I2C_MULTI_BUS)
1274
	U_BOOT_CMD_MKENT(dev, 1, 1, do_i2c_bus_num, "", ""),
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Ben Warren 已提交
1275
#endif  /* CONFIG_I2C_MULTI_BUS */
1276 1277 1278 1279 1280 1281
	U_BOOT_CMD_MKENT(loop, 3, 1, do_i2c_loop, "", ""),
	U_BOOT_CMD_MKENT(md, 3, 1, do_i2c_md, "", ""),
	U_BOOT_CMD_MKENT(mm, 2, 1, do_i2c_mm, "", ""),
	U_BOOT_CMD_MKENT(mw, 3, 1, do_i2c_mw, "", ""),
	U_BOOT_CMD_MKENT(nm, 2, 1, do_i2c_nm, "", ""),
	U_BOOT_CMD_MKENT(probe, 0, 1, do_i2c_probe, "", ""),
1282
	U_BOOT_CMD_MKENT(read, 5, 1, do_i2c_read, "", ""),
1283
	U_BOOT_CMD_MKENT(reset, 0, 1, do_i2c_reset, "", ""),
1284
#if defined(CONFIG_CMD_SDRAM)
1285
	U_BOOT_CMD_MKENT(sdram, 1, 1, do_sdram, "", ""),
1286
#endif
1287 1288 1289
	U_BOOT_CMD_MKENT(speed, 1, 1, do_i2c_bus_speed, "", ""),
};

1290
static int do_i2c(cmd_tbl_t * cmdtp, int flag, int argc, char * const argv[])
1291 1292 1293 1294 1295 1296 1297 1298 1299
{
	cmd_tbl_t *c;

	/* Strip off leading 'i2c' command argument */
	argc--;
	argv++;

	c = find_cmd_tbl(argv[0], &cmd_i2c_sub[0], ARRAY_SIZE(cmd_i2c_sub));

1300
	if (c)
1301
		return  c->cmd(cmdtp, flag, argc, argv);
1302 1303
	else
		return cmd_usage(cmdtp);
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1304
}
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/***************************************************/

1308 1309
U_BOOT_CMD(
	i2c, 6, 1, do_i2c,
P
Peter Tyser 已提交
1310
	"I2C sub-system",
1311
#if defined(CONFIG_I2C_MUX)
1312
	"bus [muxtype:muxaddr:muxchannel] - add a new bus reached over muxes\ni2c "
1313
#endif  /* CONFIG_I2C_MUX */
1314
	"crc32 chip address[.0, .1, .2] count - compute CRC32 checksum\n"
1315
#if defined(CONFIG_I2C_MULTI_BUS)
1316
	"i2c dev [dev] - show or set current I2C bus\n"
1317
#endif  /* CONFIG_I2C_MULTI_BUS */
1318
	"i2c loop chip address[.0, .1, .2] [# of objects] - looping read of device\n"
1319 1320 1321 1322 1323
	"i2c md chip address[.0, .1, .2] [# of objects] - read from I2C device\n"
	"i2c mm chip address[.0, .1, .2] - write to I2C device (auto-incrementing)\n"
	"i2c mw chip address[.0, .1, .2] value [count] - write to I2C device (fill)\n"
	"i2c nm chip address[.0, .1, .2] - write to I2C device (constant address)\n"
	"i2c probe - show devices on the I2C bus\n"
1324
	"i2c read chip address[.0, .1, .2] length memaddress - read to memory \n"
H
Heiko Schocher 已提交
1325
	"i2c reset - re-init the I2C Controller\n"
1326
#if defined(CONFIG_CMD_SDRAM)
1327
	"i2c sdram chip - print SDRAM configuration information\n"
1328
#endif
1329
	"i2c speed [speed] - show or set I2C bus speed"
1330
);
1331 1332

#if defined(CONFIG_I2C_MUX)
1333
static int i2c_mux_add_device(I2C_MUX_DEVICE *dev)
1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 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 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519
{
	I2C_MUX_DEVICE	*devtmp = i2c_mux_devices;

	if (i2c_mux_devices == NULL) {
		i2c_mux_devices = dev;
		return 0;
	}
	while (devtmp->next != NULL)
		devtmp = devtmp->next;

	devtmp->next = dev;
	return 0;
}

I2C_MUX_DEVICE	*i2c_mux_search_device(int id)
{
	I2C_MUX_DEVICE	*device = i2c_mux_devices;

	while (device != NULL) {
		if (device->busid == id)
			return device;
		device = device->next;
	}
	return NULL;
}

/* searches in the buf from *pos the next ':'.
 * returns:
 *     0 if found (with *pos = where)
 *   < 0 if an error occured
 *   > 0 if the end of buf is reached
 */
static int i2c_mux_search_next (int *pos, uchar	*buf, int len)
{
	while ((buf[*pos] != ':') && (*pos < len)) {
		*pos += 1;
	}
	if (*pos >= len)
		return 1;
	if (buf[*pos] != ':')
		return -1;
	return 0;
}

static int i2c_mux_get_busid (void)
{
	int	tmp = i2c_mux_busid;

	i2c_mux_busid ++;
	return tmp;
}

/* Analyses a Muxstring and sends immediately the
   Commands to the Muxes. Runs from Flash.
 */
int i2c_mux_ident_muxstring_f (uchar *buf)
{
	int	pos = 0;
	int	oldpos;
	int	ret = 0;
	int	len = strlen((char *)buf);
	int	chip;
	uchar	channel;
	int	was = 0;

	while (ret == 0) {
		oldpos = pos;
		/* search name */
		ret = i2c_mux_search_next(&pos, buf, len);
		if (ret != 0)
			printf ("ERROR\n");
		/* search address */
		pos ++;
		oldpos = pos;
		ret = i2c_mux_search_next(&pos, buf, len);
		if (ret != 0)
			printf ("ERROR\n");
		buf[pos] = 0;
		chip = simple_strtoul((char *)&buf[oldpos], NULL, 16);
		buf[pos] = ':';
		/* search channel */
		pos ++;
		oldpos = pos;
		ret = i2c_mux_search_next(&pos, buf, len);
		if (ret < 0)
			printf ("ERROR\n");
		was = 0;
		if (buf[pos] != 0) {
			buf[pos] = 0;
			was = 1;
		}
		channel = simple_strtoul((char *)&buf[oldpos], NULL, 16);
		if (was)
			buf[pos] = ':';
		if (i2c_write(chip, 0, 0, &channel, 1) != 0) {
			printf ("Error setting Mux: chip:%x channel: \
				%x\n", chip, channel);
			return -1;
		}
		pos ++;
		oldpos = pos;

	}

	return 0;
}

/* Analyses a Muxstring and if this String is correct
 * adds a new I2C Bus.
 */
I2C_MUX_DEVICE *i2c_mux_ident_muxstring (uchar *buf)
{
	I2C_MUX_DEVICE	*device;
	I2C_MUX		*mux;
	int	pos = 0;
	int	oldpos;
	int	ret = 0;
	int	len = strlen((char *)buf);
	int	was = 0;

	device = (I2C_MUX_DEVICE *)malloc (sizeof(I2C_MUX_DEVICE));
	device->mux = NULL;
	device->busid = i2c_mux_get_busid ();
	device->next = NULL;
	while (ret == 0) {
		mux = (I2C_MUX *)malloc (sizeof(I2C_MUX));
		mux->next = NULL;
		/* search name of mux */
		oldpos = pos;
		ret = i2c_mux_search_next(&pos, buf, len);
		if (ret != 0)
			printf ("%s no name.\n", __FUNCTION__);
		mux->name = (char *)malloc (pos - oldpos + 1);
		memcpy (mux->name, &buf[oldpos], pos - oldpos);
		mux->name[pos - oldpos] = 0;
		/* search address */
		pos ++;
		oldpos = pos;
		ret = i2c_mux_search_next(&pos, buf, len);
		if (ret != 0)
			printf ("%s no mux address.\n", __FUNCTION__);
		buf[pos] = 0;
		mux->chip = simple_strtoul((char *)&buf[oldpos], NULL, 16);
		buf[pos] = ':';
		/* search channel */
		pos ++;
		oldpos = pos;
		ret = i2c_mux_search_next(&pos, buf, len);
		if (ret < 0)
			printf ("%s no mux channel.\n", __FUNCTION__);
		was = 0;
		if (buf[pos] != 0) {
			buf[pos] = 0;
			was = 1;
		}
		mux->channel = simple_strtoul((char *)&buf[oldpos], NULL, 16);
		if (was)
			buf[pos] = ':';
		if (device->mux == NULL)
			device->mux = mux;
		else {
			I2C_MUX		*muxtmp = device->mux;
			while (muxtmp->next != NULL) {
				muxtmp = muxtmp->next;
			}
			muxtmp->next = mux;
		}
		pos ++;
		oldpos = pos;
	}
	if (ret > 0) {
		/* Add Device */
		i2c_mux_add_device (device);
		return device;
	}

	return NULL;
}

int i2x_mux_select_mux(int bus)
{
	I2C_MUX_DEVICE  *dev;
	I2C_MUX		*mux;

	if ((gd->flags & GD_FLG_RELOC) != GD_FLG_RELOC) {
		/* select Default Mux Bus */
1520 1521
#if defined(CONFIG_SYS_I2C_IVM_BUS)
		i2c_mux_ident_muxstring_f ((uchar *)CONFIG_SYS_I2C_IVM_BUS);
1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547
#else
		{
		unsigned char *buf;
		buf = (unsigned char *) getenv("EEprom_ivm");
		if (buf != NULL)
			i2c_mux_ident_muxstring_f (buf);
		}
#endif
		return 0;
	}
	dev = i2c_mux_search_device(bus);
	if (dev == NULL)
		return -1;

	mux = dev->mux;
	while (mux != NULL) {
		if (i2c_write(mux->chip, 0, 0, &mux->channel, 1) != 0) {
			printf ("Error setting Mux: chip:%x channel: \
				%x\n", mux->chip, mux->channel);
			return -1;
		}
		mux = mux->next;
	}
	return 0;
}
#endif /* CONFIG_I2C_MUX */