mmci.c 41.5 KB
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/*
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 *  linux/drivers/mmc/host/mmci.c - ARM PrimeCell MMCI PL180/1 driver
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 *
 *  Copyright (C) 2003 Deep Blue Solutions, Ltd, All Rights Reserved.
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 *  Copyright (C) 2010 ST-Ericsson SA
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 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License version 2 as
 * published by the Free Software Foundation.
 */
#include <linux/module.h>
#include <linux/moduleparam.h>
#include <linux/init.h>
#include <linux/ioport.h>
#include <linux/device.h>
#include <linux/interrupt.h>
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#include <linux/kernel.h>
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#include <linux/slab.h>
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#include <linux/delay.h>
#include <linux/err.h>
#include <linux/highmem.h>
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#include <linux/log2.h>
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#include <linux/mmc/pm.h>
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#include <linux/mmc/host.h>
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#include <linux/mmc/card.h>
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#include <linux/amba/bus.h>
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#include <linux/clk.h>
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#include <linux/scatterlist.h>
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#include <linux/gpio.h>
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#include <linux/of_gpio.h>
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#include <linux/regulator/consumer.h>
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#include <linux/dmaengine.h>
#include <linux/dma-mapping.h>
#include <linux/amba/mmci.h>
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#include <linux/pm_runtime.h>
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#include <linux/types.h>
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#include <linux/pinctrl/consumer.h>
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#include <asm/div64.h>
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#include <asm/io.h>
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#include <asm/sizes.h>
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#include "mmci.h"

#define DRIVER_NAME "mmci-pl18x"

static unsigned int fmax = 515633;

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/**
 * struct variant_data - MMCI variant-specific quirks
 * @clkreg: default value for MCICLOCK register
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 * @clkreg_enable: enable value for MMCICLOCK register
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 * @datalength_bits: number of bits in the MMCIDATALENGTH register
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 * @fifosize: number of bytes that can be written when MMCI_TXFIFOEMPTY
 *	      is asserted (likewise for RX)
 * @fifohalfsize: number of bytes that can be written when MCI_TXFIFOHALFEMPTY
 *		  is asserted (likewise for RX)
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 * @sdio: variant supports SDIO
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 * @st_clkdiv: true if using a ST-specific clock divider algorithm
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 * @blksz_datactrl16: true if Block size is at b16..b30 position in datactrl register
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 * @pwrreg_powerup: power up value for MMCIPOWER register
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 * @signal_direction: input/out direction of bus signals can be indicated
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 * @pwrreg_clkgate: MMCIPOWER register must be used to gate the clock
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 */
struct variant_data {
	unsigned int		clkreg;
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	unsigned int		clkreg_enable;
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	unsigned int		datalength_bits;
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	unsigned int		fifosize;
	unsigned int		fifohalfsize;
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	bool			sdio;
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	bool			st_clkdiv;
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	bool			blksz_datactrl16;
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	u32			pwrreg_powerup;
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	bool			signal_direction;
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	bool			pwrreg_clkgate;
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};

static struct variant_data variant_arm = {
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	.fifosize		= 16 * 4,
	.fifohalfsize		= 8 * 4,
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	.datalength_bits	= 16,
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	.pwrreg_powerup		= MCI_PWR_UP,
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};

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static struct variant_data variant_arm_extended_fifo = {
	.fifosize		= 128 * 4,
	.fifohalfsize		= 64 * 4,
	.datalength_bits	= 16,
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	.pwrreg_powerup		= MCI_PWR_UP,
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};

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static struct variant_data variant_arm_extended_fifo_hwfc = {
	.fifosize		= 128 * 4,
	.fifohalfsize		= 64 * 4,
	.clkreg_enable		= MCI_ARM_HWFCEN,
	.datalength_bits	= 16,
	.pwrreg_powerup		= MCI_PWR_UP,
};

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static struct variant_data variant_u300 = {
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	.fifosize		= 16 * 4,
	.fifohalfsize		= 8 * 4,
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	.clkreg_enable		= MCI_ST_U300_HWFCEN,
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	.datalength_bits	= 16,
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	.sdio			= true,
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	.pwrreg_powerup		= MCI_PWR_ON,
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	.signal_direction	= true,
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	.pwrreg_clkgate		= true,
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};

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static struct variant_data variant_nomadik = {
	.fifosize		= 16 * 4,
	.fifohalfsize		= 8 * 4,
	.clkreg			= MCI_CLK_ENABLE,
	.datalength_bits	= 24,
	.sdio			= true,
	.st_clkdiv		= true,
	.pwrreg_powerup		= MCI_PWR_ON,
	.signal_direction	= true,
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	.pwrreg_clkgate		= true,
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};

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static struct variant_data variant_ux500 = {
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	.fifosize		= 30 * 4,
	.fifohalfsize		= 8 * 4,
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	.clkreg			= MCI_CLK_ENABLE,
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	.clkreg_enable		= MCI_ST_UX500_HWFCEN,
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	.datalength_bits	= 24,
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	.sdio			= true,
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	.st_clkdiv		= true,
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	.pwrreg_powerup		= MCI_PWR_ON,
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	.signal_direction	= true,
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	.pwrreg_clkgate		= true,
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};
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static struct variant_data variant_ux500v2 = {
	.fifosize		= 30 * 4,
	.fifohalfsize		= 8 * 4,
	.clkreg			= MCI_CLK_ENABLE,
	.clkreg_enable		= MCI_ST_UX500_HWFCEN,
	.datalength_bits	= 24,
	.sdio			= true,
	.st_clkdiv		= true,
	.blksz_datactrl16	= true,
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	.pwrreg_powerup		= MCI_PWR_ON,
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	.signal_direction	= true,
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	.pwrreg_clkgate		= true,
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};

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/*
 * This must be called with host->lock held
 */
static void mmci_write_clkreg(struct mmci_host *host, u32 clk)
{
	if (host->clk_reg != clk) {
		host->clk_reg = clk;
		writel(clk, host->base + MMCICLOCK);
	}
}

/*
 * This must be called with host->lock held
 */
static void mmci_write_pwrreg(struct mmci_host *host, u32 pwr)
{
	if (host->pwr_reg != pwr) {
		host->pwr_reg = pwr;
		writel(pwr, host->base + MMCIPOWER);
	}
}

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/*
 * This must be called with host->lock held
 */
static void mmci_set_clkreg(struct mmci_host *host, unsigned int desired)
{
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	struct variant_data *variant = host->variant;
	u32 clk = variant->clkreg;
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	if (desired) {
		if (desired >= host->mclk) {
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			clk = MCI_CLK_BYPASS;
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			if (variant->st_clkdiv)
				clk |= MCI_ST_UX500_NEG_EDGE;
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			host->cclk = host->mclk;
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		} else if (variant->st_clkdiv) {
			/*
			 * DB8500 TRM says f = mclk / (clkdiv + 2)
			 * => clkdiv = (mclk / f) - 2
			 * Round the divider up so we don't exceed the max
			 * frequency
			 */
			clk = DIV_ROUND_UP(host->mclk, desired) - 2;
			if (clk >= 256)
				clk = 255;
			host->cclk = host->mclk / (clk + 2);
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		} else {
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			/*
			 * PL180 TRM says f = mclk / (2 * (clkdiv + 1))
			 * => clkdiv = mclk / (2 * f) - 1
			 */
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			clk = host->mclk / (2 * desired) - 1;
			if (clk >= 256)
				clk = 255;
			host->cclk = host->mclk / (2 * (clk + 1));
		}
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		clk |= variant->clkreg_enable;
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		clk |= MCI_CLK_ENABLE;
		/* This hasn't proven to be worthwhile */
		/* clk |= MCI_CLK_PWRSAVE; */
	}

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	if (host->mmc->ios.bus_width == MMC_BUS_WIDTH_4)
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		clk |= MCI_4BIT_BUS;
	if (host->mmc->ios.bus_width == MMC_BUS_WIDTH_8)
		clk |= MCI_ST_8BIT_BUS;
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	if (host->mmc->ios.timing == MMC_TIMING_UHS_DDR50)
		clk |= MCI_ST_UX500_NEG_EDGE;

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	mmci_write_clkreg(host, clk);
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}

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static void
mmci_request_end(struct mmci_host *host, struct mmc_request *mrq)
{
	writel(0, host->base + MMCICOMMAND);

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	BUG_ON(host->data);

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	host->mrq = NULL;
	host->cmd = NULL;

	mmc_request_done(host->mmc, mrq);
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	pm_runtime_mark_last_busy(mmc_dev(host->mmc));
	pm_runtime_put_autosuspend(mmc_dev(host->mmc));
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}

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static void mmci_set_mask1(struct mmci_host *host, unsigned int mask)
{
	void __iomem *base = host->base;

	if (host->singleirq) {
		unsigned int mask0 = readl(base + MMCIMASK0);

		mask0 &= ~MCI_IRQ1MASK;
		mask0 |= mask;

		writel(mask0, base + MMCIMASK0);
	}

	writel(mask, base + MMCIMASK1);
}

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static void mmci_stop_data(struct mmci_host *host)
{
	writel(0, host->base + MMCIDATACTRL);
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	mmci_set_mask1(host, 0);
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	host->data = NULL;
}

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static void mmci_init_sg(struct mmci_host *host, struct mmc_data *data)
{
	unsigned int flags = SG_MITER_ATOMIC;

	if (data->flags & MMC_DATA_READ)
		flags |= SG_MITER_TO_SG;
	else
		flags |= SG_MITER_FROM_SG;

	sg_miter_start(&host->sg_miter, data->sg, data->sg_len, flags);
}

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/*
 * All the DMA operation mode stuff goes inside this ifdef.
 * This assumes that you have a generic DMA device interface,
 * no custom DMA interfaces are supported.
 */
#ifdef CONFIG_DMA_ENGINE
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static void mmci_dma_setup(struct mmci_host *host)
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{
	struct mmci_platform_data *plat = host->plat;
	const char *rxname, *txname;
	dma_cap_mask_t mask;

	if (!plat || !plat->dma_filter) {
		dev_info(mmc_dev(host->mmc), "no DMA platform data\n");
		return;
	}

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	/* initialize pre request cookie */
	host->next_data.cookie = 1;

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	/* Try to acquire a generic DMA engine slave channel */
	dma_cap_zero(mask);
	dma_cap_set(DMA_SLAVE, mask);

	/*
	 * If only an RX channel is specified, the driver will
	 * attempt to use it bidirectionally, however if it is
	 * is specified but cannot be located, DMA will be disabled.
	 */
	if (plat->dma_rx_param) {
		host->dma_rx_channel = dma_request_channel(mask,
							   plat->dma_filter,
							   plat->dma_rx_param);
		/* E.g if no DMA hardware is present */
		if (!host->dma_rx_channel)
			dev_err(mmc_dev(host->mmc), "no RX DMA channel\n");
	}

	if (plat->dma_tx_param) {
		host->dma_tx_channel = dma_request_channel(mask,
							   plat->dma_filter,
							   plat->dma_tx_param);
		if (!host->dma_tx_channel)
			dev_warn(mmc_dev(host->mmc), "no TX DMA channel\n");
	} else {
		host->dma_tx_channel = host->dma_rx_channel;
	}

	if (host->dma_rx_channel)
		rxname = dma_chan_name(host->dma_rx_channel);
	else
		rxname = "none";

	if (host->dma_tx_channel)
		txname = dma_chan_name(host->dma_tx_channel);
	else
		txname = "none";

	dev_info(mmc_dev(host->mmc), "DMA channels RX %s, TX %s\n",
		 rxname, txname);

	/*
	 * Limit the maximum segment size in any SG entry according to
	 * the parameters of the DMA engine device.
	 */
	if (host->dma_tx_channel) {
		struct device *dev = host->dma_tx_channel->device->dev;
		unsigned int max_seg_size = dma_get_max_seg_size(dev);

		if (max_seg_size < host->mmc->max_seg_size)
			host->mmc->max_seg_size = max_seg_size;
	}
	if (host->dma_rx_channel) {
		struct device *dev = host->dma_rx_channel->device->dev;
		unsigned int max_seg_size = dma_get_max_seg_size(dev);

		if (max_seg_size < host->mmc->max_seg_size)
			host->mmc->max_seg_size = max_seg_size;
	}
}

/*
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 * This is used in or so inline it
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 * so it can be discarded.
 */
static inline void mmci_dma_release(struct mmci_host *host)
{
	struct mmci_platform_data *plat = host->plat;

	if (host->dma_rx_channel)
		dma_release_channel(host->dma_rx_channel);
	if (host->dma_tx_channel && plat->dma_tx_param)
		dma_release_channel(host->dma_tx_channel);
	host->dma_rx_channel = host->dma_tx_channel = NULL;
}

static void mmci_dma_unmap(struct mmci_host *host, struct mmc_data *data)
{
	struct dma_chan *chan = host->dma_current;
	enum dma_data_direction dir;
	u32 status;
	int i;

	/* Wait up to 1ms for the DMA to complete */
	for (i = 0; ; i++) {
		status = readl(host->base + MMCISTATUS);
		if (!(status & MCI_RXDATAAVLBLMASK) || i >= 100)
			break;
		udelay(10);
	}

	/*
	 * Check to see whether we still have some data left in the FIFO -
	 * this catches DMA controllers which are unable to monitor the
	 * DMALBREQ and DMALSREQ signals while allowing us to DMA to non-
	 * contiguous buffers.  On TX, we'll get a FIFO underrun error.
	 */
	if (status & MCI_RXDATAAVLBLMASK) {
		dmaengine_terminate_all(chan);
		if (!data->error)
			data->error = -EIO;
	}

	if (data->flags & MMC_DATA_WRITE) {
		dir = DMA_TO_DEVICE;
	} else {
		dir = DMA_FROM_DEVICE;
	}

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	if (!data->host_cookie)
		dma_unmap_sg(chan->device->dev, data->sg, data->sg_len, dir);
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	/*
	 * Use of DMA with scatter-gather is impossible.
	 * Give up with DMA and switch back to PIO mode.
	 */
	if (status & MCI_RXDATAAVLBLMASK) {
		dev_err(mmc_dev(host->mmc), "buggy DMA detected. Taking evasive action.\n");
		mmci_dma_release(host);
	}
}

static void mmci_dma_data_error(struct mmci_host *host)
{
	dev_err(mmc_dev(host->mmc), "error during DMA transfer!\n");
	dmaengine_terminate_all(host->dma_current);
}

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static int mmci_dma_prep_data(struct mmci_host *host, struct mmc_data *data,
			      struct mmci_host_next *next)
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{
	struct variant_data *variant = host->variant;
	struct dma_slave_config conf = {
		.src_addr = host->phybase + MMCIFIFO,
		.dst_addr = host->phybase + MMCIFIFO,
		.src_addr_width = DMA_SLAVE_BUSWIDTH_4_BYTES,
		.dst_addr_width = DMA_SLAVE_BUSWIDTH_4_BYTES,
		.src_maxburst = variant->fifohalfsize >> 2, /* # of words */
		.dst_maxburst = variant->fifohalfsize >> 2, /* # of words */
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		.device_fc = false,
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	};
	struct dma_chan *chan;
	struct dma_device *device;
	struct dma_async_tx_descriptor *desc;
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	enum dma_data_direction buffer_dirn;
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	int nr_sg;

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	/* Check if next job is already prepared */
	if (data->host_cookie && !next &&
	    host->dma_current && host->dma_desc_current)
		return 0;

	if (!next) {
		host->dma_current = NULL;
		host->dma_desc_current = NULL;
	}
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	if (data->flags & MMC_DATA_READ) {
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		conf.direction = DMA_DEV_TO_MEM;
		buffer_dirn = DMA_FROM_DEVICE;
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		chan = host->dma_rx_channel;
	} else {
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		conf.direction = DMA_MEM_TO_DEV;
		buffer_dirn = DMA_TO_DEVICE;
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		chan = host->dma_tx_channel;
	}

	/* If there's no DMA channel, fall back to PIO */
	if (!chan)
		return -EINVAL;

	/* If less than or equal to the fifo size, don't bother with DMA */
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	if (data->blksz * data->blocks <= variant->fifosize)
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		return -EINVAL;

	device = chan->device;
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	nr_sg = dma_map_sg(device->dev, data->sg, data->sg_len, buffer_dirn);
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	if (nr_sg == 0)
		return -EINVAL;

	dmaengine_slave_config(chan, &conf);
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	desc = dmaengine_prep_slave_sg(chan, data->sg, nr_sg,
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					    conf.direction, DMA_CTRL_ACK);
	if (!desc)
		goto unmap_exit;

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	if (next) {
		next->dma_chan = chan;
		next->dma_desc = desc;
	} else {
		host->dma_current = chan;
		host->dma_desc_current = desc;
	}

	return 0;
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 unmap_exit:
	if (!next)
		dmaengine_terminate_all(chan);
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	dma_unmap_sg(device->dev, data->sg, data->sg_len, buffer_dirn);
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	return -ENOMEM;
}

static int mmci_dma_start_data(struct mmci_host *host, unsigned int datactrl)
{
	int ret;
	struct mmc_data *data = host->data;

	ret = mmci_dma_prep_data(host, host->data, NULL);
	if (ret)
		return ret;

	/* Okay, go for it. */
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	dev_vdbg(mmc_dev(host->mmc),
		 "Submit MMCI DMA job, sglen %d blksz %04x blks %04x flags %08x\n",
		 data->sg_len, data->blksz, data->blocks, data->flags);
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	dmaengine_submit(host->dma_desc_current);
	dma_async_issue_pending(host->dma_current);
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	datactrl |= MCI_DPSM_DMAENABLE;

	/* Trigger the DMA transfer */
	writel(datactrl, host->base + MMCIDATACTRL);

	/*
	 * Let the MMCI say when the data is ended and it's time
	 * to fire next DMA request. When that happens, MMCI will
	 * call mmci_data_end()
	 */
	writel(readl(host->base + MMCIMASK0) | MCI_DATAENDMASK,
	       host->base + MMCIMASK0);
	return 0;
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}
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static void mmci_get_next_data(struct mmci_host *host, struct mmc_data *data)
{
	struct mmci_host_next *next = &host->next_data;

	if (data->host_cookie && data->host_cookie != next->cookie) {
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		pr_warning("[%s] invalid cookie: data->host_cookie %d"
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		       " host->next_data.cookie %d\n",
		       __func__, data->host_cookie, host->next_data.cookie);
		data->host_cookie = 0;
	}

	if (!data->host_cookie)
		return;

	host->dma_desc_current = next->dma_desc;
	host->dma_current = next->dma_chan;

	next->dma_desc = NULL;
	next->dma_chan = NULL;
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}
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static void mmci_pre_request(struct mmc_host *mmc, struct mmc_request *mrq,
			     bool is_first_req)
{
	struct mmci_host *host = mmc_priv(mmc);
	struct mmc_data *data = mrq->data;
	struct mmci_host_next *nd = &host->next_data;

	if (!data)
		return;

	if (data->host_cookie) {
		data->host_cookie = 0;
		return;
	}

	/* if config for dma */
	if (((data->flags & MMC_DATA_WRITE) && host->dma_tx_channel) ||
	    ((data->flags & MMC_DATA_READ) && host->dma_rx_channel)) {
		if (mmci_dma_prep_data(host, data, nd))
			data->host_cookie = 0;
		else
			data->host_cookie = ++nd->cookie < 0 ? 1 : nd->cookie;
	}
}

static void mmci_post_request(struct mmc_host *mmc, struct mmc_request *mrq,
			      int err)
{
	struct mmci_host *host = mmc_priv(mmc);
	struct mmc_data *data = mrq->data;
	struct dma_chan *chan;
	enum dma_data_direction dir;

	if (!data)
		return;

	if (data->flags & MMC_DATA_READ) {
		dir = DMA_FROM_DEVICE;
		chan = host->dma_rx_channel;
	} else {
		dir = DMA_TO_DEVICE;
		chan = host->dma_tx_channel;
	}


	/* if config for dma */
	if (chan) {
		if (err)
			dmaengine_terminate_all(chan);
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		if (data->host_cookie)
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			dma_unmap_sg(mmc_dev(host->mmc), data->sg,
				     data->sg_len, dir);
		mrq->data->host_cookie = 0;
	}
}

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#else
/* Blank functions if the DMA engine is not available */
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static void mmci_get_next_data(struct mmci_host *host, struct mmc_data *data)
{
}
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static inline void mmci_dma_setup(struct mmci_host *host)
{
}

static inline void mmci_dma_release(struct mmci_host *host)
{
}

static inline void mmci_dma_unmap(struct mmci_host *host, struct mmc_data *data)
{
}

static inline void mmci_dma_data_error(struct mmci_host *host)
{
}

static inline int mmci_dma_start_data(struct mmci_host *host, unsigned int datactrl)
{
	return -ENOSYS;
}
633 634 635 636

#define mmci_pre_request NULL
#define mmci_post_request NULL

637 638
#endif

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static void mmci_start_data(struct mmci_host *host, struct mmc_data *data)
{
641
	struct variant_data *variant = host->variant;
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	unsigned int datactrl, timeout, irqmask;
643
	unsigned long long clks;
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	void __iomem *base;
645
	int blksz_bits;
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647 648
	dev_dbg(mmc_dev(host->mmc), "blksz %04x blks %04x flags %08x\n",
		data->blksz, data->blocks, data->flags);
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	host->data = data;
651
	host->size = data->blksz * data->blocks;
652
	data->bytes_xfered = 0;
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654 655 656 657
	clks = (unsigned long long)data->timeout_ns * host->cclk;
	do_div(clks, 1000000000UL);

	timeout = data->timeout_clks + (unsigned int)clks;
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	base = host->base;
	writel(timeout, base + MMCIDATATIMER);
	writel(host->size, base + MMCIDATALENGTH);

663 664 665
	blksz_bits = ffs(data->blksz) - 1;
	BUG_ON(1 << blksz_bits != data->blksz);

666 667 668 669
	if (variant->blksz_datactrl16)
		datactrl = MCI_DPSM_ENABLE | (data->blksz << 16);
	else
		datactrl = MCI_DPSM_ENABLE | blksz_bits << 4;
670 671

	if (data->flags & MMC_DATA_READ)
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		datactrl |= MCI_DPSM_DIRECTION;
673

674 675
	/* The ST Micro variants has a special bit to enable SDIO */
	if (variant->sdio && host->mmc->card)
676 677 678 679 680 681 682
		if (mmc_card_sdio(host->mmc->card)) {
			/*
			 * The ST Micro variants has a special bit
			 * to enable SDIO.
			 */
			u32 clk;

683 684
			datactrl |= MCI_ST_DPSM_SDIOEN;

685
			/*
686 687 688 689
			 * The ST Micro variant for SDIO small write transfers
			 * needs to have clock H/W flow control disabled,
			 * otherwise the transfer will not start. The threshold
			 * depends on the rate of MCLK.
690
			 */
691 692 693
			if (data->flags & MMC_DATA_WRITE &&
			    (host->size < 8 ||
			     (host->size <= 8 && host->mclk > 50000000)))
694 695 696 697 698 699 700
				clk = host->clk_reg & ~variant->clkreg_enable;
			else
				clk = host->clk_reg | variant->clkreg_enable;

			mmci_write_clkreg(host, clk);
		}

701 702 703
	if (host->mmc->ios.timing == MMC_TIMING_UHS_DDR50)
		datactrl |= MCI_ST_DPSM_DDRMODE;

704 705 706 707 708 709 710 711 712 713 714
	/*
	 * Attempt to use DMA operation mode, if this
	 * should fail, fall back to PIO mode
	 */
	if (!mmci_dma_start_data(host, datactrl))
		return;

	/* IRQ mode, map the SG list for CPU reading/writing */
	mmci_init_sg(host, data);

	if (data->flags & MMC_DATA_READ) {
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		irqmask = MCI_RXFIFOHALFFULLMASK;
716 717

		/*
718 719 720
		 * If we have less than the fifo 'half-full' threshold to
		 * transfer, trigger a PIO interrupt as soon as any data
		 * is available.
721
		 */
722
		if (host->size < variant->fifohalfsize)
723
			irqmask |= MCI_RXDATAAVLBLMASK;
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	} else {
		/*
		 * We don't actually need to include "FIFO empty" here
		 * since its implicit in "FIFO half empty".
		 */
		irqmask = MCI_TXFIFOHALFEMPTYMASK;
	}

	writel(datactrl, base + MMCIDATACTRL);
	writel(readl(base + MMCIMASK0) & ~MCI_DATAENDMASK, base + MMCIMASK0);
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	mmci_set_mask1(host, irqmask);
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}

static void
mmci_start_command(struct mmci_host *host, struct mmc_command *cmd, u32 c)
{
	void __iomem *base = host->base;

742
	dev_dbg(mmc_dev(host->mmc), "op %02x arg %08x flags %08x\n",
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	    cmd->opcode, cmd->arg, cmd->flags);

	if (readl(base + MMCICOMMAND) & MCI_CPSM_ENABLE) {
		writel(0, base + MMCICOMMAND);
		udelay(1);
	}

	c |= cmd->opcode | MCI_CPSM_ENABLE;
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	if (cmd->flags & MMC_RSP_PRESENT) {
		if (cmd->flags & MMC_RSP_136)
			c |= MCI_CPSM_LONGRSP;
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		c |= MCI_CPSM_RESPONSE;
	}
	if (/*interrupt*/0)
		c |= MCI_CPSM_INTERRUPT;

	host->cmd = cmd;

	writel(cmd->arg, base + MMCIARGUMENT);
	writel(c, base + MMCICOMMAND);
}

static void
mmci_data_irq(struct mmci_host *host, struct mmc_data *data,
	      unsigned int status)
{
769
	/* First check for errors */
770 771
	if (status & (MCI_DATACRCFAIL|MCI_DATATIMEOUT|MCI_STARTBITERR|
		      MCI_TXUNDERRUN|MCI_RXOVERRUN)) {
772
		u32 remain, success;
773

774 775 776
		/* Terminate the DMA transfer */
		if (dma_inprogress(host))
			mmci_dma_data_error(host);
777 778

		/*
779 780 781 782 783
		 * Calculate how far we are into the transfer.  Note that
		 * the data counter gives the number of bytes transferred
		 * on the MMC bus, not on the host side.  On reads, this
		 * can be as much as a FIFO-worth of data ahead.  This
		 * matters for FIFO overruns only.
784
		 */
785
		remain = readl(host->base + MMCIDATACNT);
786 787
		success = data->blksz * data->blocks - remain;

788 789
		dev_dbg(mmc_dev(host->mmc), "MCI ERROR IRQ, status 0x%08x at 0x%08x\n",
			status, success);
790 791
		if (status & MCI_DATACRCFAIL) {
			/* Last block was not successful */
792
			success -= 1;
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			data->error = -EILSEQ;
794
		} else if (status & MCI_DATATIMEOUT) {
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			data->error = -ETIMEDOUT;
796 797
		} else if (status & MCI_STARTBITERR) {
			data->error = -ECOMM;
798 799 800 801 802 803 804
		} else if (status & MCI_TXUNDERRUN) {
			data->error = -EIO;
		} else if (status & MCI_RXOVERRUN) {
			if (success > host->variant->fifosize)
				success -= host->variant->fifosize;
			else
				success = 0;
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			data->error = -EIO;
806
		}
807
		data->bytes_xfered = round_down(success, data->blksz);
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	}
809

810 811
	if (status & MCI_DATABLOCKEND)
		dev_err(mmc_dev(host->mmc), "stray MCI_DATABLOCKEND interrupt\n");
812

813
	if (status & MCI_DATAEND || data->error) {
814 815
		if (dma_inprogress(host))
			mmci_dma_unmap(host, data);
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		mmci_stop_data(host);

818 819
		if (!data->error)
			/* The error clause is handled above, success! */
820
			data->bytes_xfered = data->blksz * data->blocks;
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		if (!data->stop) {
			mmci_request_end(host, data->mrq);
		} else {
			mmci_start_command(host, data->stop, 0);
		}
	}
}

static void
mmci_cmd_irq(struct mmci_host *host, struct mmc_command *cmd,
	     unsigned int status)
{
	void __iomem *base = host->base;

	host->cmd = NULL;

	if (status & MCI_CMDTIMEOUT) {
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		cmd->error = -ETIMEDOUT;
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	} else if (status & MCI_CMDCRCFAIL && cmd->flags & MMC_RSP_CRC) {
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		cmd->error = -EILSEQ;
842 843 844 845 846
	} else {
		cmd->resp[0] = readl(base + MMCIRESPONSE0);
		cmd->resp[1] = readl(base + MMCIRESPONSE1);
		cmd->resp[2] = readl(base + MMCIRESPONSE2);
		cmd->resp[3] = readl(base + MMCIRESPONSE3);
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	}

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	if (!cmd->data || cmd->error) {
850 851 852 853
		if (host->data) {
			/* Terminate the DMA transfer */
			if (dma_inprogress(host))
				mmci_dma_data_error(host);
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			mmci_stop_data(host);
855
		}
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		mmci_request_end(host, cmd->mrq);
	} else if (!(cmd->data->flags & MMC_DATA_READ)) {
		mmci_start_data(host, cmd->data);
	}
}

static int mmci_pio_read(struct mmci_host *host, char *buffer, unsigned int remain)
{
	void __iomem *base = host->base;
	char *ptr = buffer;
	u32 status;
867
	int host_remain = host->size;
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	do {
870
		int count = host_remain - (readl(base + MMCIFIFOCNT) << 2);
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		if (count > remain)
			count = remain;

		if (count <= 0)
			break;

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		/*
		 * SDIO especially may want to send something that is
		 * not divisible by 4 (as opposed to card sectors
		 * etc). Therefore make sure to always read the last bytes
		 * while only doing full 32-bit reads towards the FIFO.
		 */
		if (unlikely(count & 0x3)) {
			if (count < 4) {
				unsigned char buf[4];
887
				ioread32_rep(base + MMCIFIFO, buf, 1);
888 889
				memcpy(ptr, buf, count);
			} else {
890
				ioread32_rep(base + MMCIFIFO, ptr, count >> 2);
891 892 893
				count &= ~0x3;
			}
		} else {
894
			ioread32_rep(base + MMCIFIFO, ptr, count >> 2);
895
		}
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		ptr += count;
		remain -= count;
899
		host_remain -= count;
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		if (remain == 0)
			break;

		status = readl(base + MMCISTATUS);
	} while (status & MCI_RXDATAAVLBL);

	return ptr - buffer;
}

static int mmci_pio_write(struct mmci_host *host, char *buffer, unsigned int remain, u32 status)
{
912
	struct variant_data *variant = host->variant;
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	void __iomem *base = host->base;
	char *ptr = buffer;

	do {
		unsigned int count, maxcnt;

919 920
		maxcnt = status & MCI_TXFIFOEMPTY ?
			 variant->fifosize : variant->fifohalfsize;
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		count = min(remain, maxcnt);

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		/*
		 * SDIO especially may want to send something that is
		 * not divisible by 4 (as opposed to card sectors
		 * etc), and the FIFO only accept full 32-bit writes.
		 * So compensate by adding +3 on the count, a single
		 * byte become a 32bit write, 7 bytes will be two
		 * 32bit writes etc.
		 */
931
		iowrite32_rep(base + MMCIFIFO, ptr, (count + 3) >> 2);
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		ptr += count;
		remain -= count;

		if (remain == 0)
			break;

		status = readl(base + MMCISTATUS);
	} while (status & MCI_TXFIFOHALFEMPTY);

	return ptr - buffer;
}

/*
 * PIO data transfer IRQ handler.
 */
948
static irqreturn_t mmci_pio_irq(int irq, void *dev_id)
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{
	struct mmci_host *host = dev_id;
951
	struct sg_mapping_iter *sg_miter = &host->sg_miter;
952
	struct variant_data *variant = host->variant;
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	void __iomem *base = host->base;
954
	unsigned long flags;
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	u32 status;

	status = readl(base + MMCISTATUS);

959
	dev_dbg(mmc_dev(host->mmc), "irq1 (pio) %08x\n", status);
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961 962
	local_irq_save(flags);

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	do {
		unsigned int remain, len;
		char *buffer;

		/*
		 * For write, we only need to test the half-empty flag
		 * here - if the FIFO is completely empty, then by
		 * definition it is more than half empty.
		 *
		 * For read, check for data available.
		 */
		if (!(status & (MCI_TXFIFOHALFEMPTY|MCI_RXDATAAVLBL)))
			break;

977 978 979 980 981
		if (!sg_miter_next(sg_miter))
			break;

		buffer = sg_miter->addr;
		remain = sg_miter->length;
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		len = 0;
		if (status & MCI_RXACTIVE)
			len = mmci_pio_read(host, buffer, remain);
		if (status & MCI_TXACTIVE)
			len = mmci_pio_write(host, buffer, remain, status);

989
		sg_miter->consumed = len;
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		host->size -= len;
		remain -= len;

		if (remain)
			break;

		status = readl(base + MMCISTATUS);
	} while (1);

1000 1001 1002 1003
	sg_miter_stop(sg_miter);

	local_irq_restore(flags);

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	/*
1005 1006
	 * If we have less than the fifo 'half-full' threshold to transfer,
	 * trigger a PIO interrupt as soon as any data is available.
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	 */
1008
	if (status & MCI_RXACTIVE && host->size < variant->fifohalfsize)
1009
		mmci_set_mask1(host, MCI_RXDATAAVLBLMASK);
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	/*
	 * If we run out of data, disable the data IRQs; this
	 * prevents a race where the FIFO becomes empty before
	 * the chip itself has disabled the data path, and
	 * stops us racing with our data end IRQ.
	 */
	if (host->size == 0) {
1018
		mmci_set_mask1(host, 0);
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		writel(readl(base + MMCIMASK0) | MCI_DATAENDMASK, base + MMCIMASK0);
	}

	return IRQ_HANDLED;
}

/*
 * Handle completion of command and data transfers.
 */
1028
static irqreturn_t mmci_irq(int irq, void *dev_id)
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{
	struct mmci_host *host = dev_id;
	u32 status;
	int ret = 0;

	spin_lock(&host->lock);

	do {
		struct mmc_command *cmd;
		struct mmc_data *data;

		status = readl(host->base + MMCISTATUS);
1041 1042 1043 1044 1045 1046 1047 1048

		if (host->singleirq) {
			if (status & readl(host->base + MMCIMASK1))
				mmci_pio_irq(irq, dev_id);

			status &= ~MCI_IRQ1MASK;
		}

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		status &= readl(host->base + MMCIMASK0);
		writel(status, host->base + MMCICLEAR);

1052
		dev_dbg(mmc_dev(host->mmc), "irq0 (data+cmd) %08x\n", status);
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		data = host->data;
1055 1056 1057
		if (status & (MCI_DATACRCFAIL|MCI_DATATIMEOUT|MCI_STARTBITERR|
			      MCI_TXUNDERRUN|MCI_RXOVERRUN|MCI_DATAEND|
			      MCI_DATABLOCKEND) && data)
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			mmci_data_irq(host, data, status);

		cmd = host->cmd;
		if (status & (MCI_CMDCRCFAIL|MCI_CMDTIMEOUT|MCI_CMDSENT|MCI_CMDRESPEND) && cmd)
			mmci_cmd_irq(host, cmd, status);

		ret = 1;
	} while (status);

	spin_unlock(&host->lock);

	return IRQ_RETVAL(ret);
}

static void mmci_request(struct mmc_host *mmc, struct mmc_request *mrq)
{
	struct mmci_host *host = mmc_priv(mmc);
1075
	unsigned long flags;
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	WARN_ON(host->mrq != NULL);

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	if (mrq->data && !is_power_of_2(mrq->data->blksz)) {
1080 1081
		dev_err(mmc_dev(mmc), "unsupported block size (%d bytes)\n",
			mrq->data->blksz);
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		mrq->cmd->error = -EINVAL;
		mmc_request_done(mmc, mrq);
		return;
	}

1087 1088
	pm_runtime_get_sync(mmc_dev(mmc));

1089
	spin_lock_irqsave(&host->lock, flags);
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	host->mrq = mrq;

1093 1094 1095
	if (mrq->data)
		mmci_get_next_data(host, mrq->data);

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	if (mrq->data && mrq->data->flags & MMC_DATA_READ)
		mmci_start_data(host, mrq->data);

	mmci_start_command(host, mrq->cmd, 0);

1101
	spin_unlock_irqrestore(&host->lock, flags);
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}

static void mmci_set_ios(struct mmc_host *mmc, struct mmc_ios *ios)
{
	struct mmci_host *host = mmc_priv(mmc);
1107
	struct variant_data *variant = host->variant;
1108 1109
	u32 pwr = 0;
	unsigned long flags;
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1111 1112
	pm_runtime_get_sync(mmc_dev(mmc));

1113 1114 1115 1116
	if (host->plat->ios_handler &&
		host->plat->ios_handler(mmc_dev(mmc), ios))
			dev_err(mmc_dev(mmc), "platform ios_handler failed\n");

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	switch (ios->power_mode) {
	case MMC_POWER_OFF:
1119 1120
		if (!IS_ERR(mmc->supply.vmmc))
			mmc_regulator_set_ocr(mmc, mmc->supply.vmmc, 0);
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		break;
	case MMC_POWER_UP:
1123 1124 1125
		if (!IS_ERR(mmc->supply.vmmc))
			mmc_regulator_set_ocr(mmc, mmc->supply.vmmc, ios->vdd);

1126 1127 1128 1129 1130 1131 1132 1133
		/*
		 * The ST Micro variant doesn't have the PL180s MCI_PWR_UP
		 * and instead uses MCI_PWR_ON so apply whatever value is
		 * configured in the variant data.
		 */
		pwr |= variant->pwrreg_powerup;

		break;
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	case MMC_POWER_ON:
		pwr |= MCI_PWR_ON;
		break;
	}

1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154
	if (variant->signal_direction && ios->power_mode != MMC_POWER_OFF) {
		/*
		 * The ST Micro variant has some additional bits
		 * indicating signal direction for the signals in
		 * the SD/MMC bus and feedback-clock usage.
		 */
		pwr |= host->plat->sigdir;

		if (ios->bus_width == MMC_BUS_WIDTH_4)
			pwr &= ~MCI_ST_DATA74DIREN;
		else if (ios->bus_width == MMC_BUS_WIDTH_1)
			pwr &= (~MCI_ST_DATA74DIREN &
				~MCI_ST_DATA31DIREN &
				~MCI_ST_DATA2DIREN);
	}

1155
	if (ios->bus_mode == MMC_BUSMODE_OPENDRAIN) {
1156
		if (host->hw_designer != AMBA_VENDOR_ST)
1157 1158 1159 1160 1161 1162 1163 1164 1165
			pwr |= MCI_ROD;
		else {
			/*
			 * The ST Micro variant use the ROD bit for something
			 * else and only has OD (Open Drain).
			 */
			pwr |= MCI_OD;
		}
	}
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1167 1168 1169 1170 1171 1172 1173
	/*
	 * If clock = 0 and the variant requires the MMCIPOWER to be used for
	 * gating the clock, the MCI_PWR_ON bit is cleared.
	 */
	if (!ios->clock && variant->pwrreg_clkgate)
		pwr &= ~MCI_PWR_ON;

1174 1175 1176
	spin_lock_irqsave(&host->lock, flags);

	mmci_set_clkreg(host, ios->clock);
1177
	mmci_write_pwrreg(host, pwr);
1178 1179

	spin_unlock_irqrestore(&host->lock, flags);
1180 1181 1182

	pm_runtime_mark_last_busy(mmc_dev(mmc));
	pm_runtime_put_autosuspend(mmc_dev(mmc));
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}

1185 1186 1187 1188 1189 1190 1191
static int mmci_get_ro(struct mmc_host *mmc)
{
	struct mmci_host *host = mmc_priv(mmc);

	if (host->gpio_wp == -ENOSYS)
		return -ENOSYS;

1192
	return gpio_get_value_cansleep(host->gpio_wp);
1193 1194 1195 1196 1197
}

static int mmci_get_cd(struct mmc_host *mmc)
{
	struct mmci_host *host = mmc_priv(mmc);
1198
	struct mmci_platform_data *plat = host->plat;
1199 1200
	unsigned int status;

1201 1202 1203 1204
	if (host->gpio_cd == -ENOSYS) {
		if (!plat->status)
			return 1; /* Assume always present */

1205
		status = plat->status(mmc_dev(host->mmc));
1206
	} else
1207 1208
		status = !!gpio_get_value_cansleep(host->gpio_cd)
			^ plat->cd_invert;
1209

1210 1211 1212 1213 1214
	/*
	 * Use positive logic throughout - status is zero for no card,
	 * non-zero for card inserted.
	 */
	return status;
1215 1216
}

1217 1218 1219 1220 1221 1222 1223 1224 1225
static irqreturn_t mmci_cd_irq(int irq, void *dev_id)
{
	struct mmci_host *host = dev_id;

	mmc_detect_change(host->mmc, msecs_to_jiffies(500));

	return IRQ_HANDLED;
}

1226
static const struct mmc_host_ops mmci_ops = {
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	.request	= mmci_request,
1228 1229
	.pre_req	= mmci_pre_request,
	.post_req	= mmci_post_request,
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	.set_ios	= mmci_set_ios,
1231 1232
	.get_ro		= mmci_get_ro,
	.get_cd		= mmci_get_cd,
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};

1235 1236 1237 1238 1239 1240
#ifdef CONFIG_OF
static void mmci_dt_populate_generic_pdata(struct device_node *np,
					struct mmci_platform_data *pdata)
{
	int bus_width = 0;

1241 1242
	pdata->gpio_wp = of_get_named_gpio(np, "wp-gpios", 0);
	pdata->gpio_cd = of_get_named_gpio(np, "cd-gpios", 0);
1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272

	if (of_get_property(np, "cd-inverted", NULL))
		pdata->cd_invert = true;
	else
		pdata->cd_invert = false;

	of_property_read_u32(np, "max-frequency", &pdata->f_max);
	if (!pdata->f_max)
		pr_warn("%s has no 'max-frequency' property\n", np->full_name);

	if (of_get_property(np, "mmc-cap-mmc-highspeed", NULL))
		pdata->capabilities |= MMC_CAP_MMC_HIGHSPEED;
	if (of_get_property(np, "mmc-cap-sd-highspeed", NULL))
		pdata->capabilities |= MMC_CAP_SD_HIGHSPEED;

	of_property_read_u32(np, "bus-width", &bus_width);
	switch (bus_width) {
	case 0 :
		/* No bus-width supplied. */
		break;
	case 4 :
		pdata->capabilities |= MMC_CAP_4_BIT_DATA;
		break;
	case 8 :
		pdata->capabilities |= MMC_CAP_8_BIT_DATA;
		break;
	default :
		pr_warn("%s: Unsupported bus width\n", np->full_name);
	}
}
1273 1274 1275 1276 1277 1278
#else
static void mmci_dt_populate_generic_pdata(struct device_node *np,
					struct mmci_platform_data *pdata)
{
	return;
}
1279 1280
#endif

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static int mmci_probe(struct amba_device *dev,
1282
	const struct amba_id *id)
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{
1284
	struct mmci_platform_data *plat = dev->dev.platform_data;
1285
	struct device_node *np = dev->dev.of_node;
1286
	struct variant_data *variant = id->data;
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	struct mmci_host *host;
	struct mmc_host *mmc;
	int ret;

1291 1292 1293 1294
	/* Must have platform data or Device Tree. */
	if (!plat && !np) {
		dev_err(&dev->dev, "No plat data or DT found\n");
		return -EINVAL;
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	}

1297 1298 1299 1300 1301 1302
	if (!plat) {
		plat = devm_kzalloc(&dev->dev, sizeof(*plat), GFP_KERNEL);
		if (!plat)
			return -ENOMEM;
	}

1303 1304 1305
	if (np)
		mmci_dt_populate_generic_pdata(np, plat);

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	ret = amba_request_regions(dev, DRIVER_NAME);
	if (ret)
		goto out;

	mmc = mmc_alloc_host(sizeof(struct mmci_host), &dev->dev);
	if (!mmc) {
		ret = -ENOMEM;
		goto rel_regions;
	}

	host = mmc_priv(mmc);
1317
	host->mmc = mmc;
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1319 1320
	host->gpio_wp = -ENOSYS;
	host->gpio_cd = -ENOSYS;
1321
	host->gpio_cd_irq = -1;
1322

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1323 1324
	host->hw_designer = amba_manf(dev);
	host->hw_revision = amba_rev(dev);
1325 1326
	dev_dbg(mmc_dev(mmc), "designer ID = 0x%02x\n", host->hw_designer);
	dev_dbg(mmc_dev(mmc), "revision = 0x%01x\n", host->hw_revision);
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1327

1328
	host->clk = clk_get(&dev->dev, NULL);
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1329 1330 1331 1332 1333 1334
	if (IS_ERR(host->clk)) {
		ret = PTR_ERR(host->clk);
		host->clk = NULL;
		goto host_free;
	}

1335
	ret = clk_prepare_enable(host->clk);
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1336
	if (ret)
1337
		goto clk_free;
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1338 1339

	host->plat = plat;
1340
	host->variant = variant;
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1341
	host->mclk = clk_get_rate(host->clk);
1342 1343 1344 1345 1346 1347 1348 1349 1350 1351
	/*
	 * According to the spec, mclk is max 100 MHz,
	 * so we try to adjust the clock down to this,
	 * (if possible).
	 */
	if (host->mclk > 100000000) {
		ret = clk_set_rate(host->clk, 100000000);
		if (ret < 0)
			goto clk_disable;
		host->mclk = clk_get_rate(host->clk);
1352 1353
		dev_dbg(mmc_dev(mmc), "eventual mclk rate: %u Hz\n",
			host->mclk);
1354
	}
1355
	host->phybase = dev->res.start;
1356
	host->base = ioremap(dev->res.start, resource_size(&dev->res));
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1357 1358 1359 1360 1361 1362
	if (!host->base) {
		ret = -ENOMEM;
		goto clk_disable;
	}

	mmc->ops = &mmci_ops;
1363 1364 1365 1366 1367 1368 1369 1370 1371
	/*
	 * The ARM and ST versions of the block have slightly different
	 * clock divider equations which means that the minimum divider
	 * differs too.
	 */
	if (variant->st_clkdiv)
		mmc->f_min = DIV_ROUND_UP(host->mclk, 257);
	else
		mmc->f_min = DIV_ROUND_UP(host->mclk, 512);
1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383
	/*
	 * If the platform data supplies a maximum operating
	 * frequency, this takes precedence. Else, we fall back
	 * to using the module parameter, which has a (low)
	 * default value in case it is not specified. Either
	 * value must not exceed the clock rate into the block,
	 * of course.
	 */
	if (plat->f_max)
		mmc->f_max = min(host->mclk, plat->f_max);
	else
		mmc->f_max = min(host->mclk, fmax);
1384 1385
	dev_dbg(mmc_dev(mmc), "clocking block at %u Hz\n", mmc->f_max);

1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402
	host->pinctrl = devm_pinctrl_get(&dev->dev);
	if (IS_ERR(host->pinctrl)) {
		ret = PTR_ERR(host->pinctrl);
		goto clk_disable;
	}

	host->pins_default = pinctrl_lookup_state(host->pinctrl,
			PINCTRL_STATE_DEFAULT);

	/* enable pins to be muxed in and configured */
	if (!IS_ERR(host->pins_default)) {
		ret = pinctrl_select_state(host->pinctrl, host->pins_default);
		if (ret)
			dev_warn(&dev->dev, "could not set default pins\n");
	} else
		dev_warn(&dev->dev, "could not get default pinstate\n");

1403 1404 1405
	/* Get regulators and the supported OCR mask */
	mmc_regulator_get_supply(mmc);
	if (!mmc->ocr_avail)
1406
		mmc->ocr_avail = plat->ocr_mask;
1407 1408 1409
	else if (plat->ocr_mask)
		dev_warn(mmc_dev(mmc), "Platform OCR mask is ignored\n");

1410
	mmc->caps = plat->capabilities;
1411
	mmc->caps2 = plat->capabilities2;
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1413 1414 1415
	/* We support these PM capabilities. */
	mmc->pm_caps = MMC_PM_KEEP_POWER;

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1416 1417 1418
	/*
	 * We can do SGIO
	 */
1419
	mmc->max_segs = NR_SG;
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1420 1421

	/*
1422 1423 1424
	 * Since only a certain number of bits are valid in the data length
	 * register, we must ensure that we don't exceed 2^num-1 bytes in a
	 * single request.
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1425
	 */
1426
	mmc->max_req_size = (1 << variant->datalength_bits) - 1;
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1427 1428 1429 1430 1431

	/*
	 * Set the maximum segment size.  Since we aren't doing DMA
	 * (yet) we are only limited by the data length register.
	 */
1432
	mmc->max_seg_size = mmc->max_req_size;
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1434 1435 1436
	/*
	 * Block size can be up to 2048 bytes, but must be a power of two.
	 */
1437
	mmc->max_blk_size = 1 << 11;
1438

1439
	/*
1440 1441
	 * Limit the number of blocks transferred so that we don't overflow
	 * the maximum request size.
1442
	 */
1443
	mmc->max_blk_count = mmc->max_req_size >> 11;
1444

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	spin_lock_init(&host->lock);

	writel(0, host->base + MMCIMASK0);
	writel(0, host->base + MMCIMASK1);
	writel(0xfff, host->base + MMCICLEAR);

1451 1452 1453 1454
	if (plat->gpio_cd == -EPROBE_DEFER) {
		ret = -EPROBE_DEFER;
		goto err_gpio_cd;
	}
1455 1456 1457 1458 1459 1460 1461 1462
	if (gpio_is_valid(plat->gpio_cd)) {
		ret = gpio_request(plat->gpio_cd, DRIVER_NAME " (cd)");
		if (ret == 0)
			ret = gpio_direction_input(plat->gpio_cd);
		if (ret == 0)
			host->gpio_cd = plat->gpio_cd;
		else if (ret != -ENOSYS)
			goto err_gpio_cd;
1463

1464 1465 1466 1467 1468 1469 1470
		/*
		 * A gpio pin that will detect cards when inserted and removed
		 * will most likely want to trigger on the edges if it is
		 * 0 when ejected and 1 when inserted (or mutatis mutandis
		 * for the inverted case) so we request triggers on both
		 * edges.
		 */
1471
		ret = request_any_context_irq(gpio_to_irq(plat->gpio_cd),
1472 1473 1474
				mmci_cd_irq,
				IRQF_TRIGGER_RISING | IRQF_TRIGGER_FALLING,
				DRIVER_NAME " (cd)", host);
1475 1476
		if (ret >= 0)
			host->gpio_cd_irq = gpio_to_irq(plat->gpio_cd);
1477
	}
1478 1479 1480 1481
	if (plat->gpio_wp == -EPROBE_DEFER) {
		ret = -EPROBE_DEFER;
		goto err_gpio_wp;
	}
1482 1483 1484 1485 1486 1487 1488 1489 1490 1491
	if (gpio_is_valid(plat->gpio_wp)) {
		ret = gpio_request(plat->gpio_wp, DRIVER_NAME " (wp)");
		if (ret == 0)
			ret = gpio_direction_input(plat->gpio_wp);
		if (ret == 0)
			host->gpio_wp = plat->gpio_wp;
		else if (ret != -ENOSYS)
			goto err_gpio_wp;
	}

1492 1493
	if ((host->plat->status || host->gpio_cd != -ENOSYS)
	    && host->gpio_cd_irq < 0)
1494 1495
		mmc->caps |= MMC_CAP_NEEDS_POLL;

1496
	ret = request_irq(dev->irq[0], mmci_irq, IRQF_SHARED, DRIVER_NAME " (cmd)", host);
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	if (ret)
		goto unmap;

1500
	if (!dev->irq[1])
1501 1502 1503 1504 1505 1506 1507
		host->singleirq = true;
	else {
		ret = request_irq(dev->irq[1], mmci_pio_irq, IRQF_SHARED,
				  DRIVER_NAME " (pio)", host);
		if (ret)
			goto irq0_free;
	}
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1509
	writel(MCI_IRQENABLE, host->base + MMCIMASK0);
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	amba_set_drvdata(dev, mmc);

1513 1514 1515 1516 1517 1518
	dev_info(&dev->dev, "%s: PL%03x manf %x rev%u at 0x%08llx irq %d,%d (pio)\n",
		 mmc_hostname(mmc), amba_part(dev), amba_manf(dev),
		 amba_rev(dev), (unsigned long long)dev->res.start,
		 dev->irq[0], dev->irq[1]);

	mmci_dma_setup(host);
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1520 1521
	pm_runtime_set_autosuspend_delay(&dev->dev, 50);
	pm_runtime_use_autosuspend(&dev->dev);
1522 1523
	pm_runtime_put(&dev->dev);

1524 1525
	mmc_add_host(mmc);

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	return 0;

 irq0_free:
	free_irq(dev->irq[0], host);
 unmap:
1531 1532 1533
	if (host->gpio_wp != -ENOSYS)
		gpio_free(host->gpio_wp);
 err_gpio_wp:
1534 1535
	if (host->gpio_cd_irq >= 0)
		free_irq(host->gpio_cd_irq, host);
1536 1537 1538
	if (host->gpio_cd != -ENOSYS)
		gpio_free(host->gpio_cd);
 err_gpio_cd:
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1539 1540
	iounmap(host->base);
 clk_disable:
1541
	clk_disable_unprepare(host->clk);
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 clk_free:
	clk_put(host->clk);
 host_free:
	mmc_free_host(mmc);
 rel_regions:
	amba_release_regions(dev);
 out:
	return ret;
}

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static int mmci_remove(struct amba_device *dev)
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1553 1554 1555 1556 1557 1558 1559 1560
{
	struct mmc_host *mmc = amba_get_drvdata(dev);

	amba_set_drvdata(dev, NULL);

	if (mmc) {
		struct mmci_host *host = mmc_priv(mmc);

1561 1562 1563 1564 1565 1566
		/*
		 * Undo pm_runtime_put() in probe.  We use the _sync
		 * version here so that we can access the primecell.
		 */
		pm_runtime_get_sync(&dev->dev);

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		mmc_remove_host(mmc);

		writel(0, host->base + MMCIMASK0);
		writel(0, host->base + MMCIMASK1);

		writel(0, host->base + MMCICOMMAND);
		writel(0, host->base + MMCIDATACTRL);

1575
		mmci_dma_release(host);
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		free_irq(dev->irq[0], host);
1577 1578
		if (!host->singleirq)
			free_irq(dev->irq[1], host);
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1580 1581
		if (host->gpio_wp != -ENOSYS)
			gpio_free(host->gpio_wp);
1582 1583
		if (host->gpio_cd_irq >= 0)
			free_irq(host->gpio_cd_irq, host);
1584 1585 1586
		if (host->gpio_cd != -ENOSYS)
			gpio_free(host->gpio_cd);

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		iounmap(host->base);
1588
		clk_disable_unprepare(host->clk);
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		clk_put(host->clk);

		mmc_free_host(mmc);

		amba_release_regions(dev);
	}

	return 0;
}

1599 1600
#ifdef CONFIG_SUSPEND
static int mmci_suspend(struct device *dev)
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1601
{
1602 1603
	struct amba_device *adev = to_amba_device(dev);
	struct mmc_host *mmc = amba_get_drvdata(adev);
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	int ret = 0;

	if (mmc) {
		struct mmci_host *host = mmc_priv(mmc);

1609
		ret = mmc_suspend_host(mmc);
1610 1611
		if (ret == 0) {
			pm_runtime_get_sync(dev);
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1612
			writel(0, host->base + MMCIMASK0);
1613
		}
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	}

	return ret;
}

1619
static int mmci_resume(struct device *dev)
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1620
{
1621 1622
	struct amba_device *adev = to_amba_device(dev);
	struct mmc_host *mmc = amba_get_drvdata(adev);
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	int ret = 0;

	if (mmc) {
		struct mmci_host *host = mmc_priv(mmc);

		writel(MCI_IRQENABLE, host->base + MMCIMASK0);
1629
		pm_runtime_put(dev);
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		ret = mmc_resume_host(mmc);
	}

	return ret;
}
#endif

1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665
#ifdef CONFIG_PM_RUNTIME
static int mmci_runtime_suspend(struct device *dev)
{
	struct amba_device *adev = to_amba_device(dev);
	struct mmc_host *mmc = amba_get_drvdata(adev);

	if (mmc) {
		struct mmci_host *host = mmc_priv(mmc);
		clk_disable_unprepare(host->clk);
	}

	return 0;
}

static int mmci_runtime_resume(struct device *dev)
{
	struct amba_device *adev = to_amba_device(dev);
	struct mmc_host *mmc = amba_get_drvdata(adev);

	if (mmc) {
		struct mmci_host *host = mmc_priv(mmc);
		clk_prepare_enable(host->clk);
	}

	return 0;
}
#endif

1666 1667
static const struct dev_pm_ops mmci_dev_pm_ops = {
	SET_SYSTEM_SLEEP_PM_OPS(mmci_suspend, mmci_resume)
1668
	SET_RUNTIME_PM_OPS(mmci_runtime_suspend, mmci_runtime_resume, NULL)
1669 1670
};

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static struct amba_id mmci_ids[] = {
	{
		.id	= 0x00041180,
1674
		.mask	= 0xff0fffff,
1675
		.data	= &variant_arm,
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1676
	},
1677 1678 1679 1680 1681
	{
		.id	= 0x01041180,
		.mask	= 0xff0fffff,
		.data	= &variant_arm_extended_fifo,
	},
1682 1683 1684 1685 1686
	{
		.id	= 0x02041180,
		.mask	= 0xff0fffff,
		.data	= &variant_arm_extended_fifo_hwfc,
	},
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1687 1688 1689
	{
		.id	= 0x00041181,
		.mask	= 0x000fffff,
1690
		.data	= &variant_arm,
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1691
	},
1692 1693 1694 1695
	/* ST Micro variants */
	{
		.id     = 0x00180180,
		.mask   = 0x00ffffff,
1696
		.data	= &variant_u300,
1697
	},
1698 1699 1700 1701 1702
	{
		.id     = 0x10180180,
		.mask   = 0xf0ffffff,
		.data	= &variant_nomadik,
	},
1703 1704 1705
	{
		.id     = 0x00280180,
		.mask   = 0x00ffffff,
1706 1707 1708 1709
		.data	= &variant_u300,
	},
	{
		.id     = 0x00480180,
1710
		.mask   = 0xf0ffffff,
1711
		.data	= &variant_ux500,
1712
	},
1713 1714 1715 1716 1717
	{
		.id     = 0x10480180,
		.mask   = 0xf0ffffff,
		.data	= &variant_ux500v2,
	},
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1718 1719 1720
	{ 0, 0 },
};

1721 1722
MODULE_DEVICE_TABLE(amba, mmci_ids);

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static struct amba_driver mmci_driver = {
	.drv		= {
		.name	= DRIVER_NAME,
1726
		.pm	= &mmci_dev_pm_ops,
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1727 1728
	},
	.probe		= mmci_probe,
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1729
	.remove		= mmci_remove,
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1730 1731 1732
	.id_table	= mmci_ids,
};

1733
module_amba_driver(mmci_driver);
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Linus Torvalds 已提交
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module_param(fmax, uint, 0444);

MODULE_DESCRIPTION("ARM PrimeCell PL180/181 Multimedia Card Interface driver");
MODULE_LICENSE("GPL");