fsl_ssi.c 40.1 KB
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/*
 * Freescale SSI ALSA SoC Digital Audio Interface (DAI) driver
 *
 * Author: Timur Tabi <timur@freescale.com>
 *
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 * Copyright 2007-2010 Freescale Semiconductor, Inc.
 *
 * This file is licensed under the terms of the GNU General Public License
 * version 2.  This program is licensed "as is" without any warranty of any
 * kind, whether express or implied.
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 *
 *
 * Some notes why imx-pcm-fiq is used instead of DMA on some boards:
 *
 * The i.MX SSI core has some nasty limitations in AC97 mode. While most
 * sane processor vendors have a FIFO per AC97 slot, the i.MX has only
 * one FIFO which combines all valid receive slots. We cannot even select
 * which slots we want to receive. The WM9712 with which this driver
 * was developed with always sends GPIO status data in slot 12 which
 * we receive in our (PCM-) data stream. The only chance we have is to
 * manually skip this data in the FIQ handler. With sampling rates different
 * from 48000Hz not every frame has valid receive data, so the ratio
 * between pcm data and GPIO status data changes. Our FIQ handler is not
 * able to handle this, hence this driver only works with 48000Hz sampling
 * rate.
 * Reading and writing AC97 registers is another challenge. The core
 * provides us status bits when the read register is updated with *another*
 * value. When we read the same register two times (and the register still
 * contains the same value) these status bits are not set. We work
 * around this by not polling these bits but only wait a fixed delay.
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 */

#include <linux/init.h>
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#include <linux/io.h>
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#include <linux/module.h>
#include <linux/interrupt.h>
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#include <linux/clk.h>
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#include <linux/device.h>
#include <linux/delay.h>
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#include <linux/slab.h>
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#include <linux/spinlock.h>
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#include <linux/of_address.h>
#include <linux/of_irq.h>
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#include <linux/of_platform.h>
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#include <sound/core.h>
#include <sound/pcm.h>
#include <sound/pcm_params.h>
#include <sound/initval.h>
#include <sound/soc.h>
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#include <sound/dmaengine_pcm.h>
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#include "fsl_ssi.h"
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#include "imx-pcm.h"
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#ifdef PPC
#define read_ssi(addr)			 in_be32(addr)
#define write_ssi(val, addr)		 out_be32(addr, val)
#define write_ssi_mask(addr, clear, set) clrsetbits_be32(addr, clear, set)
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#else
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#define read_ssi(addr)			 readl(addr)
#define write_ssi(val, addr)		 writel(val, addr)
/*
 * FIXME: Proper locking should be added at write_ssi_mask caller level
 * to ensure this register read/modify/write sequence is race free.
 */
static inline void write_ssi_mask(u32 __iomem *addr, u32 clear, u32 set)
{
	u32 val = readl(addr);
	val = (val & ~clear) | set;
	writel(val, addr);
}
#endif

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/**
 * FSLSSI_I2S_RATES: sample rates supported by the I2S
 *
 * This driver currently only supports the SSI running in I2S slave mode,
 * which means the codec determines the sample rate.  Therefore, we tell
 * ALSA that we support all rates and let the codec driver decide what rates
 * are really supported.
 */
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#define FSLSSI_I2S_RATES SNDRV_PCM_RATE_CONTINUOUS
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/**
 * FSLSSI_I2S_FORMATS: audio formats supported by the SSI
 *
 * This driver currently only supports the SSI running in I2S slave mode.
 *
 * The SSI has a limitation in that the samples must be in the same byte
 * order as the host CPU.  This is because when multiple bytes are written
 * to the STX register, the bytes and bits must be written in the same
 * order.  The STX is a shift register, so all the bits need to be aligned
 * (bit-endianness must match byte-endianness).  Processors typically write
 * the bits within a byte in the same order that the bytes of a word are
 * written in.  So if the host CPU is big-endian, then only big-endian
 * samples will be written to STX properly.
 */
#ifdef __BIG_ENDIAN
#define FSLSSI_I2S_FORMATS (SNDRV_PCM_FMTBIT_S8 | SNDRV_PCM_FMTBIT_S16_BE | \
	 SNDRV_PCM_FMTBIT_S18_3BE | SNDRV_PCM_FMTBIT_S20_3BE | \
	 SNDRV_PCM_FMTBIT_S24_3BE | SNDRV_PCM_FMTBIT_S24_BE)
#else
#define FSLSSI_I2S_FORMATS (SNDRV_PCM_FMTBIT_S8 | SNDRV_PCM_FMTBIT_S16_LE | \
	 SNDRV_PCM_FMTBIT_S18_3LE | SNDRV_PCM_FMTBIT_S20_3LE | \
	 SNDRV_PCM_FMTBIT_S24_3LE | SNDRV_PCM_FMTBIT_S24_LE)
#endif

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#define FSLSSI_SIER_DBG_RX_FLAGS (CCSR_SSI_SIER_RFF0_EN | \
		CCSR_SSI_SIER_RLS_EN | CCSR_SSI_SIER_RFS_EN | \
		CCSR_SSI_SIER_ROE0_EN | CCSR_SSI_SIER_RFRC_EN)
#define FSLSSI_SIER_DBG_TX_FLAGS (CCSR_SSI_SIER_TFE0_EN | \
		CCSR_SSI_SIER_TLS_EN | CCSR_SSI_SIER_TFS_EN | \
		CCSR_SSI_SIER_TUE0_EN | CCSR_SSI_SIER_TFRC_EN)
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enum fsl_ssi_type {
	FSL_SSI_MCP8610,
	FSL_SSI_MX21,
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	FSL_SSI_MX35,
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	FSL_SSI_MX51,
};

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struct fsl_ssi_reg_val {
	u32 sier;
	u32 srcr;
	u32 stcr;
	u32 scr;
};

struct fsl_ssi_rxtx_reg_val {
	struct fsl_ssi_reg_val rx;
	struct fsl_ssi_reg_val tx;
};
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struct fsl_ssi_soc_data {
	bool imx;
	bool offline_config;
	u32 sisr_write_mask;
};

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/**
 * fsl_ssi_private: per-SSI private data
 *
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 * @ssi: Pointer to the memory area
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 * @irq: IRQ of this SSI
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 * @cpu_dai_drv: CPU DAI driver for this device
 *
 * @dai_fmt: DAI configuration this device is currently used with
 * @i2s_mode: i2s and network mode configuration of the device. Is used to
 * switch between normal and i2s/network mode
 * mode depending on the number of channels
 * @use_dma: DMA is used or FIQ with stream filter
 * @use_dual_fifo: DMA with support for both FIFOs used
 * @fifo_deph: Depth of the SSI FIFOs
 * @rxtx_reg_val: Specific register settings for receive/transmit configuration
 *
 * @clk: SSI clock
 * @baudclk: SSI baud clock for master mode
 * @baudclk_streams: Active streams that are using baudclk
 * @bitclk_freq: bitclock frequency set by .set_dai_sysclk
 *
 * @dma_params_tx: DMA transmit parameters
 * @dma_params_rx: DMA receive parameters
 * @ssi_phys: physical address of the SSI registers
 *
 * @fiq_params: FIQ stream filtering parameters
 *
 * @pdev: Pointer to pdev used for deprecated fsl-ssi sound card
 *
 * @dbg_stats: Debugging statistics
 *
 * @soc: SoC specifc data
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 */
struct fsl_ssi_private {
	struct ccsr_ssi __iomem *ssi;
	unsigned int irq;
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	struct snd_soc_dai_driver cpu_dai_drv;
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	unsigned int dai_fmt;
	u8 i2s_mode;
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	bool use_dma;
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	bool use_dual_fifo;
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	unsigned int fifo_depth;
	struct fsl_ssi_rxtx_reg_val rxtx_reg_val;

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	struct clk *clk;
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	struct clk *baudclk;
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	unsigned int baudclk_streams;
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	unsigned int bitclk_freq;
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	/* DMA params */
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	struct snd_dmaengine_dai_dma_data dma_params_tx;
	struct snd_dmaengine_dai_dma_data dma_params_rx;
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	dma_addr_t ssi_phys;

	/* params for non-dma FIQ stream filtered mode */
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	struct imx_pcm_fiq_params fiq_params;
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	/* Used when using fsl-ssi as sound-card. This is only used by ppc and
	 * should be replaced with simple-sound-card. */
	struct platform_device *pdev;
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	struct fsl_ssi_dbg dbg_stats;
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	const struct fsl_ssi_soc_data *soc;
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};
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/*
 * imx51 and later SoCs have a slightly different IP that allows the
 * SSI configuration while the SSI unit is running.
 *
 * More important, it is necessary on those SoCs to configure the
 * sperate TX/RX DMA bits just before starting the stream
 * (fsl_ssi_trigger). The SDMA unit has to be configured before fsl_ssi
 * sends any DMA requests to the SDMA unit, otherwise it is not defined
 * how the SDMA unit handles the DMA request.
 *
 * SDMA units are present on devices starting at imx35 but the imx35
 * reference manual states that the DMA bits should not be changed
 * while the SSI unit is running (SSIEN). So we support the necessary
 * online configuration of fsl-ssi starting at imx51.
 */

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static struct fsl_ssi_soc_data fsl_ssi_mpc8610 = {
	.imx = false,
	.offline_config = true,
	.sisr_write_mask = CCSR_SSI_SISR_RFRC | CCSR_SSI_SISR_TFRC |
			CCSR_SSI_SISR_ROE0 | CCSR_SSI_SISR_ROE1 |
			CCSR_SSI_SISR_TUE0 | CCSR_SSI_SISR_TUE1,
};

static struct fsl_ssi_soc_data fsl_ssi_imx21 = {
	.imx = true,
	.offline_config = true,
	.sisr_write_mask = 0,
};

static struct fsl_ssi_soc_data fsl_ssi_imx35 = {
	.imx = true,
	.offline_config = true,
	.sisr_write_mask = CCSR_SSI_SISR_RFRC | CCSR_SSI_SISR_TFRC |
			CCSR_SSI_SISR_ROE0 | CCSR_SSI_SISR_ROE1 |
			CCSR_SSI_SISR_TUE0 | CCSR_SSI_SISR_TUE1,
};

static struct fsl_ssi_soc_data fsl_ssi_imx51 = {
	.imx = true,
	.offline_config = false,
	.sisr_write_mask = CCSR_SSI_SISR_ROE0 | CCSR_SSI_SISR_ROE1 |
		CCSR_SSI_SISR_TUE0 | CCSR_SSI_SISR_TUE1,
};

static const struct of_device_id fsl_ssi_ids[] = {
	{ .compatible = "fsl,mpc8610-ssi", .data = &fsl_ssi_mpc8610 },
	{ .compatible = "fsl,imx51-ssi", .data = &fsl_ssi_imx51 },
	{ .compatible = "fsl,imx35-ssi", .data = &fsl_ssi_imx35 },
	{ .compatible = "fsl,imx21-ssi", .data = &fsl_ssi_imx21 },
	{}
};
MODULE_DEVICE_TABLE(of, fsl_ssi_ids);

static bool fsl_ssi_is_ac97(struct fsl_ssi_private *ssi_private)
{
	return !!(ssi_private->dai_fmt & SND_SOC_DAIFMT_AC97);
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}

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static bool fsl_ssi_is_i2s_master(struct fsl_ssi_private *ssi_private)
{
	return (ssi_private->dai_fmt & SND_SOC_DAIFMT_MASTER_MASK) ==
		SND_SOC_DAIFMT_CBS_CFS;
}

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/**
 * fsl_ssi_isr: SSI interrupt handler
 *
 * Although it's possible to use the interrupt handler to send and receive
 * data to/from the SSI, we use the DMA instead.  Programming is more
 * complicated, but the performance is much better.
 *
 * This interrupt handler is used only to gather statistics.
 *
 * @irq: IRQ of the SSI device
 * @dev_id: pointer to the ssi_private structure for this SSI device
 */
static irqreturn_t fsl_ssi_isr(int irq, void *dev_id)
{
	struct fsl_ssi_private *ssi_private = dev_id;
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;
	__be32 sisr;
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	__be32 sisr2;
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	/* We got an interrupt, so read the status register to see what we
	   were interrupted for.  We mask it with the Interrupt Enable register
	   so that we only check for events that we're interested in.
	 */
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	sisr = read_ssi(&ssi->sisr);
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	sisr2 = sisr & ssi_private->soc->sisr_write_mask;
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	/* Clear the bits that we set */
	if (sisr2)
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		write_ssi(sisr2, &ssi->sisr);
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	fsl_ssi_dbg_isr(&ssi_private->dbg_stats, sisr);
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	return IRQ_HANDLED;
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}

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/*
 * Enable/Disable all rx/tx config flags at once.
 */
static void fsl_ssi_rxtx_config(struct fsl_ssi_private *ssi_private,
		bool enable)
{
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;
	struct fsl_ssi_rxtx_reg_val *vals = &ssi_private->rxtx_reg_val;

	if (enable) {
		write_ssi_mask(&ssi->sier, 0, vals->rx.sier | vals->tx.sier);
		write_ssi_mask(&ssi->srcr, 0, vals->rx.srcr | vals->tx.srcr);
		write_ssi_mask(&ssi->stcr, 0, vals->rx.stcr | vals->tx.stcr);
	} else {
		write_ssi_mask(&ssi->srcr, vals->rx.srcr | vals->tx.srcr, 0);
		write_ssi_mask(&ssi->stcr, vals->rx.stcr | vals->tx.stcr, 0);
		write_ssi_mask(&ssi->sier, vals->rx.sier | vals->tx.sier, 0);
	}
}

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/*
 * Calculate the bits that have to be disabled for the current stream that is
 * getting disabled. This keeps the bits enabled that are necessary for the
 * second stream to work if 'stream_active' is true.
 *
 * Detailed calculation:
 * These are the values that need to be active after disabling. For non-active
 * second stream, this is 0:
 *	vals_stream * !!stream_active
 *
 * The following computes the overall differences between the setup for the
 * to-disable stream and the active stream, a simple XOR:
 *	vals_disable ^ (vals_stream * !!(stream_active))
 *
 * The full expression adds a mask on all values we care about
 */
#define fsl_ssi_disable_val(vals_disable, vals_stream, stream_active) \
	((vals_disable) & \
	 ((vals_disable) ^ ((vals_stream) * (u32)!!(stream_active))))

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/*
 * Enable/Disable a ssi configuration. You have to pass either
 * ssi_private->rxtx_reg_val.rx or tx as vals parameter.
 */
static void fsl_ssi_config(struct fsl_ssi_private *ssi_private, bool enable,
		struct fsl_ssi_reg_val *vals)
{
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;
	struct fsl_ssi_reg_val *avals;
	u32 scr_val = read_ssi(&ssi->scr);
	int nr_active_streams = !!(scr_val & CCSR_SSI_SCR_TE) +
				!!(scr_val & CCSR_SSI_SCR_RE);
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	int keep_active;

	if (nr_active_streams - 1 > 0)
		keep_active = 1;
	else
		keep_active = 0;
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	/* Find the other direction values rx or tx which we do not want to
	 * modify */
	if (&ssi_private->rxtx_reg_val.rx == vals)
		avals = &ssi_private->rxtx_reg_val.tx;
	else
		avals = &ssi_private->rxtx_reg_val.rx;

	/* If vals should be disabled, start with disabling the unit */
	if (!enable) {
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		u32 scr = fsl_ssi_disable_val(vals->scr, avals->scr,
				keep_active);
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		write_ssi_mask(&ssi->scr, scr, 0);
	}

	/*
	 * We are running on a SoC which does not support online SSI
	 * reconfiguration, so we have to enable all necessary flags at once
	 * even if we do not use them later (capture and playback configuration)
	 */
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	if (ssi_private->soc->offline_config) {
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		if ((enable && !nr_active_streams) ||
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				(!enable && !keep_active))
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			fsl_ssi_rxtx_config(ssi_private, enable);

		goto config_done;
	}

	/*
	 * Configure single direction units while the SSI unit is running
	 * (online configuration)
	 */
	if (enable) {
		write_ssi_mask(&ssi->sier, 0, vals->sier);
		write_ssi_mask(&ssi->srcr, 0, vals->srcr);
		write_ssi_mask(&ssi->stcr, 0, vals->stcr);
	} else {
		u32 sier;
		u32 srcr;
		u32 stcr;

		/*
		 * Disabling the necessary flags for one of rx/tx while the
		 * other stream is active is a little bit more difficult. We
		 * have to disable only those flags that differ between both
		 * streams (rx XOR tx) and that are set in the stream that is
		 * disabled now. Otherwise we could alter flags of the other
		 * stream
		 */

		/* These assignments are simply vals without bits set in avals*/
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		sier = fsl_ssi_disable_val(vals->sier, avals->sier,
				keep_active);
		srcr = fsl_ssi_disable_val(vals->srcr, avals->srcr,
				keep_active);
		stcr = fsl_ssi_disable_val(vals->stcr, avals->stcr,
				keep_active);
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		write_ssi_mask(&ssi->srcr, srcr, 0);
		write_ssi_mask(&ssi->stcr, stcr, 0);
		write_ssi_mask(&ssi->sier, sier, 0);
	}

config_done:
	/* Enabling of subunits is done after configuration */
	if (enable)
		write_ssi_mask(&ssi->scr, 0, vals->scr);
}


static void fsl_ssi_rx_config(struct fsl_ssi_private *ssi_private, bool enable)
{
	fsl_ssi_config(ssi_private, enable, &ssi_private->rxtx_reg_val.rx);
}

static void fsl_ssi_tx_config(struct fsl_ssi_private *ssi_private, bool enable)
{
	fsl_ssi_config(ssi_private, enable, &ssi_private->rxtx_reg_val.tx);
}

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/*
 * Setup rx/tx register values used to enable/disable the streams. These will
 * be used later in fsl_ssi_config to setup the streams without the need to
 * check for all different SSI modes.
 */
static void fsl_ssi_setup_reg_vals(struct fsl_ssi_private *ssi_private)
{
	struct fsl_ssi_rxtx_reg_val *reg = &ssi_private->rxtx_reg_val;

	reg->rx.sier = CCSR_SSI_SIER_RFF0_EN;
	reg->rx.srcr = CCSR_SSI_SRCR_RFEN0;
	reg->rx.scr = 0;
	reg->tx.sier = CCSR_SSI_SIER_TFE0_EN;
	reg->tx.stcr = CCSR_SSI_STCR_TFEN0;
	reg->tx.scr = 0;

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	if (!fsl_ssi_is_ac97(ssi_private)) {
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		reg->rx.scr = CCSR_SSI_SCR_SSIEN | CCSR_SSI_SCR_RE;
		reg->rx.sier |= CCSR_SSI_SIER_RFF0_EN;
		reg->tx.scr = CCSR_SSI_SCR_SSIEN | CCSR_SSI_SCR_TE;
		reg->tx.sier |= CCSR_SSI_SIER_TFE0_EN;
	}

	if (ssi_private->use_dma) {
		reg->rx.sier |= CCSR_SSI_SIER_RDMAE;
		reg->tx.sier |= CCSR_SSI_SIER_TDMAE;
	} else {
		reg->rx.sier |= CCSR_SSI_SIER_RIE;
		reg->tx.sier |= CCSR_SSI_SIER_TIE;
	}

	reg->rx.sier |= FSLSSI_SIER_DBG_RX_FLAGS;
	reg->tx.sier |= FSLSSI_SIER_DBG_TX_FLAGS;
}

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static void fsl_ssi_setup_ac97(struct fsl_ssi_private *ssi_private)
{
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;

	/*
	 * Setup the clock control register
	 */
	write_ssi(CCSR_SSI_SxCCR_WL(17) | CCSR_SSI_SxCCR_DC(13),
			&ssi->stccr);
	write_ssi(CCSR_SSI_SxCCR_WL(17) | CCSR_SSI_SxCCR_DC(13),
			&ssi->srccr);

	/*
	 * Enable AC97 mode and startup the SSI
	 */
	write_ssi(CCSR_SSI_SACNT_AC97EN | CCSR_SSI_SACNT_FV,
			&ssi->sacnt);
	write_ssi(0xff, &ssi->saccdis);
	write_ssi(0x300, &ssi->saccen);

	/*
	 * Enable SSI, Transmit and Receive. AC97 has to communicate with the
	 * codec before a stream is started.
	 */
	write_ssi_mask(&ssi->scr, 0, CCSR_SSI_SCR_SSIEN |
			CCSR_SSI_SCR_TE | CCSR_SSI_SCR_RE);

	write_ssi(CCSR_SSI_SOR_WAIT(3), &ssi->sor);
}

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/**
 * fsl_ssi_startup: create a new substream
 *
 * This is the first function called when a stream is opened.
 *
 * If this is the first stream open, then grab the IRQ and program most of
 * the SSI registers.
 */
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static int fsl_ssi_startup(struct snd_pcm_substream *substream,
			   struct snd_soc_dai *dai)
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{
	struct snd_soc_pcm_runtime *rtd = substream->private_data;
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	struct fsl_ssi_private *ssi_private =
		snd_soc_dai_get_drvdata(rtd->cpu_dai);
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	/* When using dual fifo mode, it is safer to ensure an even period
	 * size. If appearing to an odd number while DMA always starts its
	 * task from fifo0, fifo1 would be neglected at the end of each
	 * period. But SSI would still access fifo1 with an invalid data.
	 */
	if (ssi_private->use_dual_fifo)
		snd_pcm_hw_constraint_step(substream->runtime, 0,
				SNDRV_PCM_HW_PARAM_PERIOD_SIZE, 2);

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	return 0;
}

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/**
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 * fsl_ssi_set_bclk - configure Digital Audio Interface bit clock
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 *
 * Note: This function can be only called when using SSI as DAI master
 *
 * Quick instruction for parameters:
 * freq: Output BCLK frequency = samplerate * 32 (fixed) * channels
 * dir: SND_SOC_CLOCK_OUT -> TxBCLK, SND_SOC_CLOCK_IN -> RxBCLK.
 */
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static int fsl_ssi_set_bclk(struct snd_pcm_substream *substream,
		struct snd_soc_dai *cpu_dai,
		struct snd_pcm_hw_params *hw_params)
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{
	struct fsl_ssi_private *ssi_private = snd_soc_dai_get_drvdata(cpu_dai);
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;
	int synchronous = ssi_private->cpu_dai_drv.symmetric_rates, ret;
	u32 pm = 999, div2, psr, stccr, mask, afreq, factor, i;
555
	unsigned long clkrate, baudrate, tmprate;
556
	u64 sub, savesub = 100000;
557
	unsigned int freq;
558
	bool baudclk_is_used;
559 560 561 562 563 564

	/* Prefer the explicitly set bitclock frequency */
	if (ssi_private->bitclk_freq)
		freq = ssi_private->bitclk_freq;
	else
		freq = params_channels(hw_params) * 32 * params_rate(hw_params);
565 566 567 568 569

	/* Don't apply it to any non-baudclk circumstance */
	if (IS_ERR(ssi_private->baudclk))
		return -EINVAL;

570 571
	baudclk_is_used = ssi_private->baudclk_streams & ~(BIT(substream->stream));

572 573 574 575 576 577 578 579 580 581 582 583
	/* It should be already enough to divide clock by setting pm alone */
	psr = 0;
	div2 = 0;

	factor = (div2 + 1) * (7 * psr + 1) * 2;

	for (i = 0; i < 255; i++) {
		/* The bclk rate must be smaller than 1/5 sysclk rate */
		if (factor * (i + 1) < 5)
			continue;

		tmprate = freq * factor * (i + 2);
584 585 586 587 588

		if (baudclk_is_used)
			clkrate = clk_get_rate(ssi_private->baudclk);
		else
			clkrate = clk_round_rate(ssi_private->baudclk, tmprate);
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		do_div(clkrate, factor);
		afreq = (u32)clkrate / (i + 1);

		if (freq == afreq)
			sub = 0;
		else if (freq / afreq == 1)
			sub = freq - afreq;
		else if (afreq / freq == 1)
			sub = afreq - freq;
		else
			continue;

		/* Calculate the fraction */
		sub *= 100000;
		do_div(sub, freq);

		if (sub < savesub) {
			baudrate = tmprate;
			savesub = sub;
			pm = i;
		}

		/* We are lucky */
		if (savesub == 0)
			break;
	}

	/* No proper pm found if it is still remaining the initial value */
	if (pm == 999) {
		dev_err(cpu_dai->dev, "failed to handle the required sysclk\n");
		return -EINVAL;
	}

	stccr = CCSR_SSI_SxCCR_PM(pm + 1) | (div2 ? CCSR_SSI_SxCCR_DIV2 : 0) |
		(psr ? CCSR_SSI_SxCCR_PSR : 0);
	mask = CCSR_SSI_SxCCR_PM_MASK | CCSR_SSI_SxCCR_DIV2 |
		CCSR_SSI_SxCCR_PSR;

628
	if (substream->stream == SNDRV_PCM_STREAM_PLAYBACK || synchronous)
629 630 631 632
		write_ssi_mask(&ssi->stccr, mask, stccr);
	else
		write_ssi_mask(&ssi->srccr, mask, stccr);

633
	if (!baudclk_is_used) {
634 635 636 637 638 639 640 641 642 643
		ret = clk_set_rate(ssi_private->baudclk, baudrate);
		if (ret) {
			dev_err(cpu_dai->dev, "failed to set baudclk rate\n");
			return -EINVAL;
		}
	}

	return 0;
}

644 645 646 647 648 649 650 651 652 653
static int fsl_ssi_set_dai_sysclk(struct snd_soc_dai *cpu_dai,
		int clk_id, unsigned int freq, int dir)
{
	struct fsl_ssi_private *ssi_private = snd_soc_dai_get_drvdata(cpu_dai);

	ssi_private->bitclk_freq = freq;

	return 0;
}

654
/**
655
 * fsl_ssi_hw_params - program the sample size
656 657 658 659 660 661 662 663 664 665 666
 *
 * Most of the SSI registers have been programmed in the startup function,
 * but the word length must be programmed here.  Unfortunately, programming
 * the SxCCR.WL bits requires the SSI to be temporarily disabled.  This can
 * cause a problem with supporting simultaneous playback and capture.  If
 * the SSI is already playing a stream, then that stream may be temporarily
 * stopped when you start capture.
 *
 * Note: The SxCCR.DC and SxCCR.PM bits are only used if the SSI is the
 * clock master.
 */
667 668
static int fsl_ssi_hw_params(struct snd_pcm_substream *substream,
	struct snd_pcm_hw_params *hw_params, struct snd_soc_dai *cpu_dai)
669
{
670
	struct fsl_ssi_private *ssi_private = snd_soc_dai_get_drvdata(cpu_dai);
671
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;
672
	unsigned int channels = params_channels(hw_params);
673 674 675
	unsigned int sample_size =
		snd_pcm_format_width(params_format(hw_params));
	u32 wl = CCSR_SSI_SxCCR_WL(sample_size);
676
	int enabled = read_ssi(&ssi->scr) & CCSR_SSI_SCR_SSIEN;
677
	int ret;
678

679 680 681 682 683 684
	/*
	 * If we're in synchronous mode, and the SSI is already enabled,
	 * then STCCR is already set properly.
	 */
	if (enabled && ssi_private->cpu_dai_drv.symmetric_rates)
		return 0;
685

686 687 688 689
	if (fsl_ssi_is_i2s_master(ssi_private)) {
		ret = fsl_ssi_set_bclk(substream, cpu_dai, hw_params);
		if (ret)
			return ret;
690 691 692 693 694 695 696 697 698

		/* Do not enable the clock if it is already enabled */
		if (!(ssi_private->baudclk_streams & BIT(substream->stream))) {
			ret = clk_prepare_enable(ssi_private->baudclk);
			if (ret)
				return ret;

			ssi_private->baudclk_streams |= BIT(substream->stream);
		}
699 700
	}

701 702 703 704 705 706 707 708 709
	/*
	 * FIXME: The documentation says that SxCCR[WL] should not be
	 * modified while the SSI is enabled.  The only time this can
	 * happen is if we're trying to do simultaneous playback and
	 * capture in asynchronous mode.  Unfortunately, I have been enable
	 * to get that to work at all on the P1022DS.  Therefore, we don't
	 * bother to disable/enable the SSI when setting SxCCR[WL], because
	 * the SSI will stop anyway.  Maybe one day, this will get fixed.
	 */
710

711 712 713
	/* In synchronous mode, the SSI uses STCCR for capture */
	if ((substream->stream == SNDRV_PCM_STREAM_PLAYBACK) ||
	    ssi_private->cpu_dai_drv.symmetric_rates)
714
		write_ssi_mask(&ssi->stccr, CCSR_SSI_SxCCR_WL_MASK, wl);
715
	else
716
		write_ssi_mask(&ssi->srccr, CCSR_SSI_SxCCR_WL_MASK, wl);
717

718
	if (!fsl_ssi_is_ac97(ssi_private))
719 720 721 722
		write_ssi_mask(&ssi->scr,
				CCSR_SSI_SCR_NET | CCSR_SSI_SCR_I2S_MODE_MASK,
				channels == 1 ? 0 : ssi_private->i2s_mode);

723 724 725
	return 0;
}

726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741
static int fsl_ssi_hw_free(struct snd_pcm_substream *substream,
		struct snd_soc_dai *cpu_dai)
{
	struct snd_soc_pcm_runtime *rtd = substream->private_data;
	struct fsl_ssi_private *ssi_private =
		snd_soc_dai_get_drvdata(rtd->cpu_dai);

	if (fsl_ssi_is_i2s_master(ssi_private) &&
			ssi_private->baudclk_streams & BIT(substream->stream)) {
		clk_disable_unprepare(ssi_private->baudclk);
		ssi_private->baudclk_streams &= ~BIT(substream->stream);
	}

	return 0;
}

742 743
static int _fsl_ssi_set_dai_fmt(struct fsl_ssi_private *ssi_private,
		unsigned int fmt)
744 745 746
{
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;
	u32 strcr = 0, stcr, srcr, scr, mask;
747 748
	u8 wm;

749 750
	ssi_private->dai_fmt = fmt;

751 752 753 754 755
	if (fsl_ssi_is_i2s_master(ssi_private) && IS_ERR(ssi_private->baudclk)) {
		dev_err(&ssi_private->pdev->dev, "baudclk is missing which is necessary for master mode\n");
		return -EINVAL;
	}

756
	fsl_ssi_setup_reg_vals(ssi_private);
757 758

	scr = read_ssi(&ssi->scr) & ~(CCSR_SSI_SCR_SYN | CCSR_SSI_SCR_I2S_MODE_MASK);
759
	scr |= CCSR_SSI_SCR_SYNC_TX_FS;
760 761 762 763 764 765 766

	mask = CCSR_SSI_STCR_TXBIT0 | CCSR_SSI_STCR_TFDIR | CCSR_SSI_STCR_TXDIR |
		CCSR_SSI_STCR_TSCKP | CCSR_SSI_STCR_TFSI | CCSR_SSI_STCR_TFSL |
		CCSR_SSI_STCR_TEFS;
	stcr = read_ssi(&ssi->stcr) & ~mask;
	srcr = read_ssi(&ssi->srcr) & ~mask;

767
	ssi_private->i2s_mode = CCSR_SSI_SCR_NET;
768 769 770 771
	switch (fmt & SND_SOC_DAIFMT_FORMAT_MASK) {
	case SND_SOC_DAIFMT_I2S:
		switch (fmt & SND_SOC_DAIFMT_MASTER_MASK) {
		case SND_SOC_DAIFMT_CBS_CFS:
772
			ssi_private->i2s_mode |= CCSR_SSI_SCR_I2S_MODE_MASTER;
773 774 775 776
			write_ssi_mask(&ssi->stccr, CCSR_SSI_SxCCR_DC_MASK,
				CCSR_SSI_SxCCR_DC(2));
			write_ssi_mask(&ssi->srccr, CCSR_SSI_SxCCR_DC_MASK,
				CCSR_SSI_SxCCR_DC(2));
777 778
			break;
		case SND_SOC_DAIFMT_CBM_CFM:
779
			ssi_private->i2s_mode |= CCSR_SSI_SCR_I2S_MODE_SLAVE;
780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802
			break;
		default:
			return -EINVAL;
		}

		/* Data on rising edge of bclk, frame low, 1clk before data */
		strcr |= CCSR_SSI_STCR_TFSI | CCSR_SSI_STCR_TSCKP |
			CCSR_SSI_STCR_TXBIT0 | CCSR_SSI_STCR_TEFS;
		break;
	case SND_SOC_DAIFMT_LEFT_J:
		/* Data on rising edge of bclk, frame high */
		strcr |= CCSR_SSI_STCR_TXBIT0 | CCSR_SSI_STCR_TSCKP;
		break;
	case SND_SOC_DAIFMT_DSP_A:
		/* Data on rising edge of bclk, frame high, 1clk before data */
		strcr |= CCSR_SSI_STCR_TFSL | CCSR_SSI_STCR_TSCKP |
			CCSR_SSI_STCR_TXBIT0 | CCSR_SSI_STCR_TEFS;
		break;
	case SND_SOC_DAIFMT_DSP_B:
		/* Data on rising edge of bclk, frame high */
		strcr |= CCSR_SSI_STCR_TFSL | CCSR_SSI_STCR_TSCKP |
			CCSR_SSI_STCR_TXBIT0;
		break;
803
	case SND_SOC_DAIFMT_AC97:
804
		ssi_private->i2s_mode |= CCSR_SSI_SCR_I2S_MODE_NORMAL;
805
		break;
806 807 808
	default:
		return -EINVAL;
	}
809
	scr |= ssi_private->i2s_mode;
810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858

	/* DAI clock inversion */
	switch (fmt & SND_SOC_DAIFMT_INV_MASK) {
	case SND_SOC_DAIFMT_NB_NF:
		/* Nothing to do for both normal cases */
		break;
	case SND_SOC_DAIFMT_IB_NF:
		/* Invert bit clock */
		strcr ^= CCSR_SSI_STCR_TSCKP;
		break;
	case SND_SOC_DAIFMT_NB_IF:
		/* Invert frame clock */
		strcr ^= CCSR_SSI_STCR_TFSI;
		break;
	case SND_SOC_DAIFMT_IB_IF:
		/* Invert both clocks */
		strcr ^= CCSR_SSI_STCR_TSCKP;
		strcr ^= CCSR_SSI_STCR_TFSI;
		break;
	default:
		return -EINVAL;
	}

	/* DAI clock master masks */
	switch (fmt & SND_SOC_DAIFMT_MASTER_MASK) {
	case SND_SOC_DAIFMT_CBS_CFS:
		strcr |= CCSR_SSI_STCR_TFDIR | CCSR_SSI_STCR_TXDIR;
		scr |= CCSR_SSI_SCR_SYS_CLK_EN;
		break;
	case SND_SOC_DAIFMT_CBM_CFM:
		scr &= ~CCSR_SSI_SCR_SYS_CLK_EN;
		break;
	default:
		return -EINVAL;
	}

	stcr |= strcr;
	srcr |= strcr;

	if (ssi_private->cpu_dai_drv.symmetric_rates) {
		/* Need to clear RXDIR when using SYNC mode */
		srcr &= ~CCSR_SSI_SRCR_RXDIR;
		scr |= CCSR_SSI_SCR_SYN;
	}

	write_ssi(stcr, &ssi->stcr);
	write_ssi(srcr, &ssi->srcr);
	write_ssi(scr, &ssi->scr);

859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890
	/*
	 * Set the watermark for transmit FIFI 0 and receive FIFO 0. We don't
	 * use FIFO 1. We program the transmit water to signal a DMA transfer
	 * if there are only two (or fewer) elements left in the FIFO. Two
	 * elements equals one frame (left channel, right channel). This value,
	 * however, depends on the depth of the transmit buffer.
	 *
	 * We set the watermark on the same level as the DMA burstsize.  For
	 * fiq it is probably better to use the biggest possible watermark
	 * size.
	 */
	if (ssi_private->use_dma)
		wm = ssi_private->fifo_depth - 2;
	else
		wm = ssi_private->fifo_depth;

	write_ssi(CCSR_SSI_SFCSR_TFWM0(wm) | CCSR_SSI_SFCSR_RFWM0(wm) |
			CCSR_SSI_SFCSR_TFWM1(wm) | CCSR_SSI_SFCSR_RFWM1(wm),
			&ssi->sfcsr);

	if (ssi_private->use_dual_fifo) {
		write_ssi_mask(&ssi->srcr, CCSR_SSI_SRCR_RFEN1,
				CCSR_SSI_SRCR_RFEN1);
		write_ssi_mask(&ssi->stcr, CCSR_SSI_STCR_TFEN1,
				CCSR_SSI_STCR_TFEN1);
		write_ssi_mask(&ssi->scr, CCSR_SSI_SCR_TCH_EN,
				CCSR_SSI_SCR_TCH_EN);
	}

	if (fmt & SND_SOC_DAIFMT_AC97)
		fsl_ssi_setup_ac97(ssi_private);

891
	return 0;
892 893 894 895 896 897 898 899 900 901 902

}

/**
 * fsl_ssi_set_dai_fmt - configure Digital Audio Interface Format.
 */
static int fsl_ssi_set_dai_fmt(struct snd_soc_dai *cpu_dai, unsigned int fmt)
{
	struct fsl_ssi_private *ssi_private = snd_soc_dai_get_drvdata(cpu_dai);

	return _fsl_ssi_set_dai_fmt(ssi_private, fmt);
903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942
}

/**
 * fsl_ssi_set_dai_tdm_slot - set TDM slot number
 *
 * Note: This function can be only called when using SSI as DAI master
 */
static int fsl_ssi_set_dai_tdm_slot(struct snd_soc_dai *cpu_dai, u32 tx_mask,
				u32 rx_mask, int slots, int slot_width)
{
	struct fsl_ssi_private *ssi_private = snd_soc_dai_get_drvdata(cpu_dai);
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;
	u32 val;

	/* The slot number should be >= 2 if using Network mode or I2S mode */
	val = read_ssi(&ssi->scr) & (CCSR_SSI_SCR_I2S_MODE_MASK | CCSR_SSI_SCR_NET);
	if (val && slots < 2) {
		dev_err(cpu_dai->dev, "slot number should be >= 2 in I2S or NET\n");
		return -EINVAL;
	}

	write_ssi_mask(&ssi->stccr, CCSR_SSI_SxCCR_DC_MASK,
			CCSR_SSI_SxCCR_DC(slots));
	write_ssi_mask(&ssi->srccr, CCSR_SSI_SxCCR_DC_MASK,
			CCSR_SSI_SxCCR_DC(slots));

	/* The register SxMSKs needs SSI to provide essential clock due to
	 * hardware design. So we here temporarily enable SSI to set them.
	 */
	val = read_ssi(&ssi->scr) & CCSR_SSI_SCR_SSIEN;
	write_ssi_mask(&ssi->scr, 0, CCSR_SSI_SCR_SSIEN);

	write_ssi(tx_mask, &ssi->stmsk);
	write_ssi(rx_mask, &ssi->srmsk);

	write_ssi_mask(&ssi->scr, CCSR_SSI_SCR_SSIEN, val);

	return 0;
}

943 944 945 946 947 948 949 950 951
/**
 * fsl_ssi_trigger: start and stop the DMA transfer.
 *
 * This function is called by ALSA to start, stop, pause, and resume the DMA
 * transfer of data.
 *
 * The DMA channel is in external master start and pause mode, which
 * means the SSI completely controls the flow of data.
 */
952 953
static int fsl_ssi_trigger(struct snd_pcm_substream *substream, int cmd,
			   struct snd_soc_dai *dai)
954 955
{
	struct snd_soc_pcm_runtime *rtd = substream->private_data;
956
	struct fsl_ssi_private *ssi_private = snd_soc_dai_get_drvdata(rtd->cpu_dai);
957
	struct ccsr_ssi __iomem *ssi = ssi_private->ssi;
958

959 960
	switch (cmd) {
	case SNDRV_PCM_TRIGGER_START:
961
	case SNDRV_PCM_TRIGGER_RESUME:
962
	case SNDRV_PCM_TRIGGER_PAUSE_RELEASE:
963
		if (substream->stream == SNDRV_PCM_STREAM_PLAYBACK)
964
			fsl_ssi_tx_config(ssi_private, true);
965
		else
966
			fsl_ssi_rx_config(ssi_private, true);
967 968 969
		break;

	case SNDRV_PCM_TRIGGER_STOP:
970
	case SNDRV_PCM_TRIGGER_SUSPEND:
971 972
	case SNDRV_PCM_TRIGGER_PAUSE_PUSH:
		if (substream->stream == SNDRV_PCM_STREAM_PLAYBACK)
973
			fsl_ssi_tx_config(ssi_private, false);
974
		else
975
			fsl_ssi_rx_config(ssi_private, false);
976 977 978 979 980 981
		break;

	default:
		return -EINVAL;
	}

982
	if (fsl_ssi_is_ac97(ssi_private)) {
983 984 985 986 987
		if (substream->stream == SNDRV_PCM_STREAM_PLAYBACK)
			write_ssi(CCSR_SSI_SOR_TX_CLR, &ssi->sor);
		else
			write_ssi(CCSR_SSI_SOR_RX_CLR, &ssi->sor);
	}
988

989 990 991
	return 0;
}

992 993 994 995
static int fsl_ssi_dai_probe(struct snd_soc_dai *dai)
{
	struct fsl_ssi_private *ssi_private = snd_soc_dai_get_drvdata(dai);

996
	if (ssi_private->soc->imx && ssi_private->use_dma) {
997 998 999 1000 1001 1002 1003
		dai->playback_dma_data = &ssi_private->dma_params_tx;
		dai->capture_dma_data = &ssi_private->dma_params_rx;
	}

	return 0;
}

1004
static const struct snd_soc_dai_ops fsl_ssi_dai_ops = {
1005 1006
	.startup	= fsl_ssi_startup,
	.hw_params	= fsl_ssi_hw_params,
1007
	.hw_free	= fsl_ssi_hw_free,
1008 1009 1010
	.set_fmt	= fsl_ssi_set_dai_fmt,
	.set_sysclk	= fsl_ssi_set_dai_sysclk,
	.set_tdm_slot	= fsl_ssi_set_dai_tdm_slot,
1011 1012 1013
	.trigger	= fsl_ssi_trigger,
};

1014 1015
/* Template for the CPU dai driver structure */
static struct snd_soc_dai_driver fsl_ssi_dai_template = {
1016
	.probe = fsl_ssi_dai_probe,
1017
	.playback = {
1018
		.channels_min = 1,
1019 1020 1021 1022 1023
		.channels_max = 2,
		.rates = FSLSSI_I2S_RATES,
		.formats = FSLSSI_I2S_FORMATS,
	},
	.capture = {
1024
		.channels_min = 1,
1025 1026 1027 1028
		.channels_max = 2,
		.rates = FSLSSI_I2S_RATES,
		.formats = FSLSSI_I2S_FORMATS,
	},
1029
	.ops = &fsl_ssi_dai_ops,
1030 1031
};

1032 1033 1034 1035
static const struct snd_soc_component_driver fsl_ssi_component = {
	.name		= "fsl-ssi",
};

1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051
static struct snd_soc_dai_driver fsl_ssi_ac97_dai = {
	.ac97_control = 1,
	.playback = {
		.stream_name = "AC97 Playback",
		.channels_min = 2,
		.channels_max = 2,
		.rates = SNDRV_PCM_RATE_8000_48000,
		.formats = SNDRV_PCM_FMTBIT_S16_LE,
	},
	.capture = {
		.stream_name = "AC97 Capture",
		.channels_min = 2,
		.channels_max = 2,
		.rates = SNDRV_PCM_RATE_48000,
		.formats = SNDRV_PCM_FMTBIT_S16_LE,
	},
1052
	.ops = &fsl_ssi_dai_ops,
1053 1054 1055 1056 1057
};


static struct fsl_ssi_private *fsl_ac97_data;

1058
static void fsl_ssi_ac97_write(struct snd_ac97 *ac97, unsigned short reg,
1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079
		unsigned short val)
{
	struct ccsr_ssi *ssi = fsl_ac97_data->ssi;
	unsigned int lreg;
	unsigned int lval;

	if (reg > 0x7f)
		return;


	lreg = reg <<  12;
	write_ssi(lreg, &ssi->sacadd);

	lval = val << 4;
	write_ssi(lval , &ssi->sacdat);

	write_ssi_mask(&ssi->sacnt, CCSR_SSI_SACNT_RDWR_MASK,
			CCSR_SSI_SACNT_WR);
	udelay(100);
}

1080
static unsigned short fsl_ssi_ac97_read(struct snd_ac97 *ac97,
1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104
		unsigned short reg)
{
	struct ccsr_ssi *ssi = fsl_ac97_data->ssi;

	unsigned short val = -1;
	unsigned int lreg;

	lreg = (reg & 0x7f) <<  12;
	write_ssi(lreg, &ssi->sacadd);
	write_ssi_mask(&ssi->sacnt, CCSR_SSI_SACNT_RDWR_MASK,
			CCSR_SSI_SACNT_RD);

	udelay(100);

	val = (read_ssi(&ssi->sacdat) >> 4) & 0xffff;

	return val;
}

static struct snd_ac97_bus_ops fsl_ssi_ac97_ops = {
	.read		= fsl_ssi_ac97_read,
	.write		= fsl_ssi_ac97_write,
};

1105
/**
1106
 * Make every character in a string lower-case
1107
 */
1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119
static void make_lowercase(char *s)
{
	char *p = s;
	char c;

	while ((c = *p)) {
		if ((c >= 'A') && (c <= 'Z'))
			*p = c + ('a' - 'A');
		p++;
	}
}

1120
static int fsl_ssi_imx_probe(struct platform_device *pdev,
1121
		struct fsl_ssi_private *ssi_private, void __iomem *iomem)
1122 1123
{
	struct device_node *np = pdev->dev.of_node;
1124
	u32 dmas[4];
1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158
	int ret;

	ssi_private->clk = devm_clk_get(&pdev->dev, NULL);
	if (IS_ERR(ssi_private->clk)) {
		ret = PTR_ERR(ssi_private->clk);
		dev_err(&pdev->dev, "could not get clock: %d\n", ret);
		return ret;
	}

	ret = clk_prepare_enable(ssi_private->clk);
	if (ret) {
		dev_err(&pdev->dev, "clk_prepare_enable failed: %d\n", ret);
		return ret;
	}

	/* For those SLAVE implementations, we ingore non-baudclk cases
	 * and, instead, abandon MASTER mode that needs baud clock.
	 */
	ssi_private->baudclk = devm_clk_get(&pdev->dev, "baud");
	if (IS_ERR(ssi_private->baudclk))
		dev_dbg(&pdev->dev, "could not get baud clock: %ld\n",
			 PTR_ERR(ssi_private->baudclk));

	/*
	 * We have burstsize be "fifo_depth - 2" to match the SSI
	 * watermark setting in fsl_ssi_startup().
	 */
	ssi_private->dma_params_tx.maxburst = ssi_private->fifo_depth - 2;
	ssi_private->dma_params_rx.maxburst = ssi_private->fifo_depth - 2;
	ssi_private->dma_params_tx.addr = ssi_private->ssi_phys +
			offsetof(struct ccsr_ssi, stx0);
	ssi_private->dma_params_rx.addr = ssi_private->ssi_phys +
			offsetof(struct ccsr_ssi, srx0);

1159 1160
	ret = !of_property_read_u32_array(np, "dmas", dmas, 4);
	if (ssi_private->use_dma && !ret && dmas[2] == IMX_DMATYPE_SSI_DUAL) {
1161 1162 1163 1164 1165 1166 1167 1168
		ssi_private->use_dual_fifo = true;
		/* When using dual fifo mode, we need to keep watermark
		 * as even numbers due to dma script limitation.
		 */
		ssi_private->dma_params_tx.maxburst &= ~0x1;
		ssi_private->dma_params_rx.maxburst &= ~0x1;
	}

1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193
	if (!ssi_private->use_dma) {

		/*
		 * Some boards use an incompatible codec. To get it
		 * working, we are using imx-fiq-pcm-audio, that
		 * can handle those codecs. DMA is not possible in this
		 * situation.
		 */

		ssi_private->fiq_params.irq = ssi_private->irq;
		ssi_private->fiq_params.base = iomem;
		ssi_private->fiq_params.dma_params_rx =
			&ssi_private->dma_params_rx;
		ssi_private->fiq_params.dma_params_tx =
			&ssi_private->dma_params_tx;

		ret = imx_pcm_fiq_init(pdev, &ssi_private->fiq_params);
		if (ret)
			goto error_pcm;
	} else {
		ret = imx_pcm_dma_init(pdev);
		if (ret)
			goto error_pcm;
	}

1194
	return 0;
1195 1196 1197 1198 1199

error_pcm:
	clk_disable_unprepare(ssi_private->clk);

	return ret;
1200 1201 1202 1203 1204
}

static void fsl_ssi_imx_clean(struct platform_device *pdev,
		struct fsl_ssi_private *ssi_private)
{
1205 1206
	if (!ssi_private->use_dma)
		imx_pcm_fiq_exit(pdev);
1207 1208 1209
	clk_disable_unprepare(ssi_private->clk);
}

1210
static int fsl_ssi_probe(struct platform_device *pdev)
1211 1212 1213
{
	struct fsl_ssi_private *ssi_private;
	int ret = 0;
1214
	struct device_node *np = pdev->dev.of_node;
1215
	const struct of_device_id *of_id;
1216
	const char *p, *sprop;
1217
	const uint32_t *iprop;
1218 1219
	struct resource res;
	char name[64];
1220

1221 1222 1223
	/* SSIs that are not connected on the board should have a
	 *      status = "disabled"
	 * property in their device tree nodes.
1224
	 */
1225
	if (!of_device_is_available(np))
1226 1227
		return -ENODEV;

1228
	of_id = of_match_device(fsl_ssi_ids, &pdev->dev);
1229
	if (!of_id || !of_id->data)
1230 1231
		return -EINVAL;

1232 1233
	ssi_private = devm_kzalloc(&pdev->dev, sizeof(*ssi_private),
			GFP_KERNEL);
1234
	if (!ssi_private) {
1235
		dev_err(&pdev->dev, "could not allocate DAI object\n");
1236
		return -ENOMEM;
1237 1238
	}

1239 1240
	ssi_private->soc = of_id->data;

1241 1242 1243 1244 1245 1246 1247 1248 1249
	sprop = of_get_property(np, "fsl,mode", NULL);
	if (sprop) {
		if (!strcmp(sprop, "ac97-slave"))
			ssi_private->dai_fmt = SND_SOC_DAIFMT_AC97;
		else if (!strcmp(sprop, "i2s-slave"))
			ssi_private->dai_fmt = SND_SOC_DAIFMT_I2S |
				SND_SOC_DAIFMT_CBM_CFM;
	}

1250 1251 1252
	ssi_private->use_dma = !of_property_read_bool(np,
			"fsl,fiq-stream-filter");

1253
	if (fsl_ssi_is_ac97(ssi_private)) {
1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264
		memcpy(&ssi_private->cpu_dai_drv, &fsl_ssi_ac97_dai,
				sizeof(fsl_ssi_ac97_dai));

		fsl_ac97_data = ssi_private;

		snd_soc_set_ac97_ops_of_reset(&fsl_ssi_ac97_ops, pdev);
	} else {
		/* Initialize this copy of the CPU DAI driver structure */
		memcpy(&ssi_private->cpu_dai_drv, &fsl_ssi_dai_template,
		       sizeof(fsl_ssi_dai_template));
	}
1265
	ssi_private->cpu_dai_drv.name = dev_name(&pdev->dev);
1266 1267 1268 1269

	/* Get the addresses and IRQ */
	ret = of_address_to_resource(np, 0, &res);
	if (ret) {
1270
		dev_err(&pdev->dev, "could not determine device resources\n");
1271
		return ret;
1272
	}
1273 1274 1275
	ssi_private->ssi = of_iomap(np, 0);
	if (!ssi_private->ssi) {
		dev_err(&pdev->dev, "could not map device resources\n");
1276
		return -ENOMEM;
1277
	}
1278
	ssi_private->ssi_phys = res.start;
1279

1280
	ssi_private->irq = irq_of_parse_and_map(np, 0);
1281
	if (!ssi_private->irq) {
1282
		dev_err(&pdev->dev, "no irq for node %s\n", np->full_name);
1283
		return -ENXIO;
1284 1285
	}

1286
	/* Are the RX and the TX clocks locked? */
1287
	if (!of_find_property(np, "fsl,ssi-asynchronous", NULL)) {
1288
		ssi_private->cpu_dai_drv.symmetric_rates = 1;
1289 1290 1291
		ssi_private->cpu_dai_drv.symmetric_channels = 1;
		ssi_private->cpu_dai_drv.symmetric_samplebits = 1;
	}
1292

1293 1294 1295
	/* Determine the FIFO depth. */
	iprop = of_get_property(np, "fsl,fifo-depth", NULL);
	if (iprop)
1296
		ssi_private->fifo_depth = be32_to_cpup(iprop);
1297 1298 1299 1300
	else
                /* Older 8610 DTs didn't have the fifo-depth property */
		ssi_private->fifo_depth = 8;

1301 1302
	dev_set_drvdata(&pdev->dev, ssi_private);

1303
	if (ssi_private->soc->imx) {
1304
		ret = fsl_ssi_imx_probe(pdev, ssi_private, ssi_private->ssi);
1305
		if (ret)
1306
			goto error_irqmap;
1307 1308
	}

1309 1310 1311 1312 1313 1314 1315
	ret = snd_soc_register_component(&pdev->dev, &fsl_ssi_component,
					 &ssi_private->cpu_dai_drv, 1);
	if (ret) {
		dev_err(&pdev->dev, "failed to register DAI: %d\n", ret);
		goto error_asoc_register;
	}

1316
	if (ssi_private->use_dma) {
1317
		ret = devm_request_irq(&pdev->dev, ssi_private->irq,
1318
					fsl_ssi_isr, 0, dev_name(&pdev->dev),
1319 1320 1321 1322
					ssi_private);
		if (ret < 0) {
			dev_err(&pdev->dev, "could not claim irq %u\n",
					ssi_private->irq);
1323
			goto error_irq;
1324
		}
1325 1326
	}

1327
	ret = fsl_ssi_debugfs_create(&ssi_private->dbg_stats, &pdev->dev);
1328
	if (ret)
1329
		goto error_asoc_register;
1330 1331 1332 1333 1334 1335

	/*
	 * If codec-handle property is missing from SSI node, we assume
	 * that the machine driver uses new binding which does not require
	 * SSI driver to trigger machine driver's probe.
	 */
1336
	if (!of_get_property(np, "codec-handle", NULL))
1337 1338
		goto done;

1339
	/* Trigger the machine driver's probe function.  The platform driver
1340
	 * name of the machine driver is taken from /compatible property of the
1341 1342 1343
	 * device tree.  We also pass the address of the CPU DAI driver
	 * structure.
	 */
1344 1345
	sprop = of_get_property(of_find_node_by_path("/"), "compatible", NULL);
	/* Sometimes the compatible name has a "fsl," prefix, so we strip it. */
1346 1347 1348 1349 1350 1351 1352
	p = strrchr(sprop, ',');
	if (p)
		sprop = p + 1;
	snprintf(name, sizeof(name), "snd-soc-%s", sprop);
	make_lowercase(name);

	ssi_private->pdev =
1353
		platform_device_register_data(&pdev->dev, name, 0, NULL, 0);
1354 1355
	if (IS_ERR(ssi_private->pdev)) {
		ret = PTR_ERR(ssi_private->pdev);
1356
		dev_err(&pdev->dev, "failed to register platform: %d\n", ret);
1357
		goto error_sound_card;
M
Mark Brown 已提交
1358
	}
1359

1360
done:
1361 1362 1363
	if (ssi_private->dai_fmt)
		_fsl_ssi_set_dai_fmt(ssi_private, ssi_private->dai_fmt);

1364
	return 0;
1365

1366
error_sound_card:
1367
	fsl_ssi_debugfs_remove(&ssi_private->dbg_stats);
1368

1369
error_irq:
1370
	snd_soc_unregister_component(&pdev->dev);
1371

1372
error_asoc_register:
1373
	if (ssi_private->soc->imx)
1374
		fsl_ssi_imx_clean(pdev, ssi_private);
1375 1376

error_irqmap:
1377
	if (ssi_private->use_dma)
1378
		irq_dispose_mapping(ssi_private->irq);
1379

1380
	return ret;
1381 1382
}

1383
static int fsl_ssi_remove(struct platform_device *pdev)
1384
{
1385
	struct fsl_ssi_private *ssi_private = dev_get_drvdata(&pdev->dev);
1386

1387
	fsl_ssi_debugfs_remove(&ssi_private->dbg_stats);
1388

1389
	if (ssi_private->pdev)
1390
		platform_device_unregister(ssi_private->pdev);
1391
	snd_soc_unregister_component(&pdev->dev);
1392

1393
	if (ssi_private->soc->imx)
1394 1395
		fsl_ssi_imx_clean(pdev, ssi_private);

1396
	if (ssi_private->use_dma)
1397
		irq_dispose_mapping(ssi_private->irq);
1398 1399

	return 0;
1400
}
1401

1402
static struct platform_driver fsl_ssi_driver = {
1403 1404 1405 1406 1407 1408 1409 1410
	.driver = {
		.name = "fsl-ssi-dai",
		.owner = THIS_MODULE,
		.of_match_table = fsl_ssi_ids,
	},
	.probe = fsl_ssi_probe,
	.remove = fsl_ssi_remove,
};
1411

1412
module_platform_driver(fsl_ssi_driver);
1413

1414
MODULE_ALIAS("platform:fsl-ssi-dai");
1415 1416
MODULE_AUTHOR("Timur Tabi <timur@freescale.com>");
MODULE_DESCRIPTION("Freescale Synchronous Serial Interface (SSI) ASoC Driver");
1417
MODULE_LICENSE("GPL v2");