mirror of
https://github.com/AsahiLinux/u-boot
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b99ed2766a
This patch fixes conflict between PHY pins becoming outputs after reset and imx6 still driving the pins. It also fixes the reset timing as recommended by the PHY datasheet. Signed-off-by: Nikolay Dimitrov <picmaster@mail.bg> Cc: Stefano Babic <sbabic@denx.de> Cc: Sean Cross <xobs@kosagi.com> Cc: Marek Vasut <marex@denx.de> Reviewed-by: Fabio Estevam <fabio.estevam@freescale.com>
340 lines
7.1 KiB
C
340 lines
7.1 KiB
C
/*
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* Novena board support
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*
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* Copyright (C) 2014 Marek Vasut <marex@denx.de>
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*
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* SPDX-License-Identifier: GPL-2.0+
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*/
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#include <common.h>
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#include <asm/errno.h>
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#include <asm/gpio.h>
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#include <asm/io.h>
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#include <asm/arch/clock.h>
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#include <asm/arch/crm_regs.h>
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#include <asm/arch/imx-regs.h>
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#include <asm/arch/iomux.h>
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#include <asm/arch/mxc_hdmi.h>
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#include <asm/arch/sys_proto.h>
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#include <asm/imx-common/boot_mode.h>
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#include <asm/imx-common/iomux-v3.h>
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#include <asm/imx-common/mxc_i2c.h>
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#include <asm/imx-common/sata.h>
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#include <asm/imx-common/video.h>
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#include <fsl_esdhc.h>
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#include <i2c.h>
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#include <input.h>
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#include <ipu_pixfmt.h>
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#include <linux/fb.h>
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#include <linux/input.h>
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#include <malloc.h>
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#include <micrel.h>
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#include <miiphy.h>
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#include <mmc.h>
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#include <netdev.h>
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#include <power/pmic.h>
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#include <power/pfuze100_pmic.h>
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#include <stdio_dev.h>
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DECLARE_GLOBAL_DATA_PTR;
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#define NOVENA_BUTTON_GPIO IMX_GPIO_NR(4, 14)
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#define NOVENA_SD_WP IMX_GPIO_NR(1, 2)
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#define NOVENA_SD_CD IMX_GPIO_NR(1, 4)
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/*
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* GPIO button
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*/
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#ifdef CONFIG_KEYBOARD
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static struct input_config button_input;
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static int novena_gpio_button_read_keys(struct input_config *input)
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{
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int key = KEY_ENTER;
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if (gpio_get_value(NOVENA_BUTTON_GPIO))
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return 0;
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input_send_keycodes(&button_input, &key, 1);
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return 1;
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}
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static int novena_gpio_button_getc(struct stdio_dev *dev)
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{
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return input_getc(&button_input);
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}
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static int novena_gpio_button_tstc(struct stdio_dev *dev)
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{
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return input_tstc(&button_input);
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}
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static int novena_gpio_button_init(struct stdio_dev *dev)
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{
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gpio_direction_input(NOVENA_BUTTON_GPIO);
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input_set_delays(&button_input, 250, 250);
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return 0;
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}
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int drv_keyboard_init(void)
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{
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int error;
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struct stdio_dev dev = {
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.name = "button",
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.flags = DEV_FLAGS_INPUT | DEV_FLAGS_SYSTEM,
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.start = novena_gpio_button_init,
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.getc = novena_gpio_button_getc,
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.tstc = novena_gpio_button_tstc,
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};
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error = input_init(&button_input, 0);
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if (error) {
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debug("%s: Cannot set up input\n", __func__);
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return -1;
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}
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button_input.read_keys = novena_gpio_button_read_keys;
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error = input_stdio_register(&dev);
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if (error)
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return error;
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return 0;
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}
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#endif
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/*
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* SDHC
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*/
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#ifdef CONFIG_FSL_ESDHC
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static struct fsl_esdhc_cfg usdhc_cfg[] = {
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{ USDHC3_BASE_ADDR, 0, 4 }, /* Micro SD */
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{ USDHC2_BASE_ADDR, 0, 4 }, /* Big SD */
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};
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int board_mmc_getcd(struct mmc *mmc)
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{
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struct fsl_esdhc_cfg *cfg = (struct fsl_esdhc_cfg *)mmc->priv;
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/* There is no CD for a microSD card, assume always present. */
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if (cfg->esdhc_base == USDHC3_BASE_ADDR)
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return 1;
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else
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return !gpio_get_value(NOVENA_SD_CD);
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}
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int board_mmc_getwp(struct mmc *mmc)
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{
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struct fsl_esdhc_cfg *cfg = (struct fsl_esdhc_cfg *)mmc->priv;
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/* There is no WP for a microSD card, assume always read-write. */
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if (cfg->esdhc_base == USDHC3_BASE_ADDR)
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return 0;
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else
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return gpio_get_value(NOVENA_SD_WP);
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}
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int board_mmc_init(bd_t *bis)
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{
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s32 status = 0;
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int index;
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usdhc_cfg[0].sdhc_clk = mxc_get_clock(MXC_ESDHC3_CLK);
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usdhc_cfg[1].sdhc_clk = mxc_get_clock(MXC_ESDHC2_CLK);
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/* Big SD write-protect and card-detect */
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gpio_direction_input(NOVENA_SD_WP);
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gpio_direction_input(NOVENA_SD_CD);
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for (index = 0; index < ARRAY_SIZE(usdhc_cfg); index++) {
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status = fsl_esdhc_initialize(bis, &usdhc_cfg[index]);
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if (status)
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return status;
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}
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return status;
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}
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#endif
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/*
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* Video over HDMI
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*/
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#if defined(CONFIG_VIDEO_IPUV3)
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static void enable_hdmi(struct display_info_t const *dev)
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{
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imx_enable_hdmi_phy();
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}
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struct display_info_t const displays[] = {
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{
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/* HDMI Output */
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.bus = -1,
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.addr = 0,
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.pixfmt = IPU_PIX_FMT_RGB24,
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.detect = detect_hdmi,
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.enable = enable_hdmi,
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.mode = {
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.name = "HDMI",
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.refresh = 60,
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.xres = 1024,
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.yres = 768,
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.pixclock = 15385,
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.left_margin = 220,
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.right_margin = 40,
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.upper_margin = 21,
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.lower_margin = 7,
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.hsync_len = 60,
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.vsync_len = 10,
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.sync = FB_SYNC_EXT,
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.vmode = FB_VMODE_NONINTERLACED
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}
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}
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};
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size_t display_count = ARRAY_SIZE(displays);
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static void setup_display(void)
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{
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struct mxc_ccm_reg *mxc_ccm = (struct mxc_ccm_reg *)CCM_BASE_ADDR;
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struct iomuxc *iomux = (struct iomuxc *)IOMUXC_BASE_ADDR;
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enable_ipu_clock();
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imx_setup_hdmi();
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/* Turn on LDB0,IPU,IPU DI0 clocks */
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setbits_le32(&mxc_ccm->CCGR3, MXC_CCM_CCGR3_LDB_DI0_MASK);
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/* set LDB0, LDB1 clk select to 011/011 */
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clrsetbits_le32(&mxc_ccm->cs2cdr,
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MXC_CCM_CS2CDR_LDB_DI0_CLK_SEL_MASK |
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MXC_CCM_CS2CDR_LDB_DI1_CLK_SEL_MASK,
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(3 << MXC_CCM_CS2CDR_LDB_DI0_CLK_SEL_OFFSET) |
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(3 << MXC_CCM_CS2CDR_LDB_DI1_CLK_SEL_OFFSET));
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setbits_le32(&mxc_ccm->cscmr2, MXC_CCM_CSCMR2_LDB_DI0_IPU_DIV);
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setbits_le32(&mxc_ccm->chsccdr, CHSCCDR_CLK_SEL_LDB_DI0 <<
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MXC_CCM_CHSCCDR_IPU1_DI0_CLK_SEL_OFFSET);
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writel(IOMUXC_GPR2_BGREF_RRMODE_EXTERNAL_RES |
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IOMUXC_GPR2_DI1_VS_POLARITY_ACTIVE_HIGH |
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IOMUXC_GPR2_DI0_VS_POLARITY_ACTIVE_LOW |
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IOMUXC_GPR2_BIT_MAPPING_CH1_SPWG |
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IOMUXC_GPR2_DATA_WIDTH_CH1_18BIT |
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IOMUXC_GPR2_BIT_MAPPING_CH0_SPWG |
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IOMUXC_GPR2_DATA_WIDTH_CH0_18BIT |
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IOMUXC_GPR2_LVDS_CH1_MODE_DISABLED |
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IOMUXC_GPR2_LVDS_CH0_MODE_ENABLED_DI0,
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&iomux->gpr[2]);
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clrsetbits_le32(&iomux->gpr[3], IOMUXC_GPR3_LVDS0_MUX_CTL_MASK,
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IOMUXC_GPR3_MUX_SRC_IPU1_DI0 <<
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IOMUXC_GPR3_LVDS0_MUX_CTL_OFFSET);
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}
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#endif
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int board_early_init_f(void)
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{
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#if defined(CONFIG_VIDEO_IPUV3)
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setup_display();
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#endif
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return 0;
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}
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int board_init(void)
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{
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/* address of boot parameters */
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gd->bd->bi_boot_params = PHYS_SDRAM + 0x100;
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#ifdef CONFIG_CMD_SATA
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setup_sata();
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#endif
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return 0;
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}
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int checkboard(void)
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{
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puts("Board: Novena 4x\n");
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return 0;
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}
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int dram_init(void)
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{
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gd->ram_size = imx_ddr_size();
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return 0;
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}
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/* setup board specific PMIC */
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int power_init_board(void)
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{
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struct pmic *p;
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u32 reg;
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int ret;
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power_pfuze100_init(1);
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p = pmic_get("PFUZE100");
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if (!p)
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return -EINVAL;
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ret = pmic_probe(p);
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if (ret)
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return ret;
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pmic_reg_read(p, PFUZE100_DEVICEID, ®);
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printf("PMIC: PFUZE100 ID=0x%02x\n", reg);
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/* Set SWBST to 5.0V and enable (for USB) */
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pmic_reg_read(p, PFUZE100_SWBSTCON1, ®);
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reg &= ~(SWBST_MODE_MASK | SWBST_VOL_MASK);
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reg |= (SWBST_5_00V | SWBST_MODE_AUTO);
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pmic_reg_write(p, PFUZE100_SWBSTCON1, reg);
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return 0;
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}
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/* EEPROM configuration data */
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struct novena_eeprom_data {
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uint8_t signature[6];
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uint8_t version;
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uint8_t reserved;
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uint32_t serial;
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uint8_t mac[6];
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uint16_t features;
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};
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int misc_init_r(void)
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{
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struct novena_eeprom_data data;
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uchar *datap = (uchar *)&data;
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const char *signature = "Novena";
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int ret;
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/* If 'ethaddr' is already set, do nothing. */
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if (getenv("ethaddr"))
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return 0;
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/* EEPROM is at bus 2. */
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ret = i2c_set_bus_num(2);
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if (ret) {
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puts("Cannot select EEPROM I2C bus.\n");
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return 0;
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}
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/* EEPROM is at address 0x56. */
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ret = eeprom_read(0x56, 0, datap, sizeof(data));
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if (ret) {
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puts("Cannot read I2C EEPROM.\n");
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return 0;
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}
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/* Check EEPROM signature. */
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if (memcmp(data.signature, signature, 6)) {
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puts("Invalid I2C EEPROM signature.\n");
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return 0;
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}
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/* Set ethernet address from EEPROM. */
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eth_setenv_enetaddr("ethaddr", data.mac);
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return ret;
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}
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