ssi.c 26.6 KB
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// SPDX-License-Identifier: GPL-2.0
//
// Renesas R-Car SSIU/SSI support
//
// Copyright (C) 2013 Renesas Solutions Corp.
// Kuninori Morimoto <kuninori.morimoto.gx@renesas.com>
//
// Based on fsi.c
// Kuninori Morimoto <morimoto.kuninori@renesas.com>
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/*
 * you can enable below define if you don't need
 * SSI interrupt status debug message when debugging
 * see rsnd_dbg_irq_status()
 *
 * #define RSND_DEBUG_NO_IRQ_STATUS 1
 */

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#include <sound/simple_card_utils.h>
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#include <linux/delay.h>
#include "rsnd.h"
#define RSND_SSI_NAME_SIZE 16

/*
 * SSICR
 */
#define	FORCE		(1 << 31)	/* Fixed */
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#define	DMEN		(1 << 28)	/* DMA Enable */
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#define	UIEN		(1 << 27)	/* Underflow Interrupt Enable */
#define	OIEN		(1 << 26)	/* Overflow Interrupt Enable */
#define	IIEN		(1 << 25)	/* Idle Mode Interrupt Enable */
#define	DIEN		(1 << 24)	/* Data Interrupt Enable */
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#define	CHNL_4		(1 << 22)	/* Channels */
#define	CHNL_6		(2 << 22)	/* Channels */
#define	CHNL_8		(3 << 22)	/* Channels */
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#define DWL_MASK	(7 << 19)	/* Data Word Length mask */
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#define	DWL_8		(0 << 19)	/* Data Word Length */
#define	DWL_16		(1 << 19)	/* Data Word Length */
#define	DWL_18		(2 << 19)	/* Data Word Length */
#define	DWL_20		(3 << 19)	/* Data Word Length */
#define	DWL_22		(4 << 19)	/* Data Word Length */
#define	DWL_24		(5 << 19)	/* Data Word Length */
#define	DWL_32		(6 << 19)	/* Data Word Length */

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/*
 * System word length
 */
#define	SWL_16		(1 << 16)	/* R/W System Word Length */
#define	SWL_24		(2 << 16)	/* R/W System Word Length */
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#define	SWL_32		(3 << 16)	/* R/W System Word Length */
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#define	SCKD		(1 << 15)	/* Serial Bit Clock Direction */
#define	SWSD		(1 << 14)	/* Serial WS Direction */
#define	SCKP		(1 << 13)	/* Serial Bit Clock Polarity */
#define	SWSP		(1 << 12)	/* Serial WS Polarity */
#define	SDTA		(1 << 10)	/* Serial Data Alignment */
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#define	PDTA		(1 <<  9)	/* Parallel Data Alignment */
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#define	DEL		(1 <<  8)	/* Serial Data Delay */
#define	CKDV(v)		(v <<  4)	/* Serial Clock Division Ratio */
#define	TRMD		(1 <<  1)	/* Transmit/Receive Mode Select */
#define	EN		(1 <<  0)	/* SSI Module Enable */

/*
 * SSISR
 */
#define	UIRQ		(1 << 27)	/* Underflow Error Interrupt Status */
#define	OIRQ		(1 << 26)	/* Overflow Error Interrupt Status */
#define	IIRQ		(1 << 25)	/* Idle Mode Interrupt Status */
#define	DIRQ		(1 << 24)	/* Data Interrupt Status Flag */

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/*
 * SSIWSR
 */
#define CONT		(1 << 8)	/* WS Continue Function */
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#define WS_MODE		(1 << 0)	/* WS Mode */
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#define SSI_NAME "ssi"

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struct rsnd_ssi {
	struct rsnd_mod mod;

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	u32 flags;
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	u32 cr_own;
	u32 cr_clk;
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	u32 cr_mode;
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	u32 cr_en;
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	u32 wsr;
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	int chan;
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	int rate;
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	int irq;
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	unsigned int usrcnt;
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	/* for PIO */
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	int byte_pos;
	int byte_per_period;
	int next_period_byte;
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};

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/* flags */
#define RSND_SSI_CLK_PIN_SHARE		(1 << 0)
#define RSND_SSI_NO_BUSIF		(1 << 1) /* SSI+DMA without BUSIF */
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#define RSND_SSI_HDMI0			(1 << 2) /* for HDMI0 */
#define RSND_SSI_HDMI1			(1 << 3) /* for HDMI1 */
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#define RSND_SSI_PROBED			(1 << 4)
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#define for_each_rsnd_ssi(pos, priv, i)					\
	for (i = 0;							\
	     (i < rsnd_ssi_nr(priv)) &&					\
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		((pos) = ((struct rsnd_ssi *)(priv)->ssi + i));		\
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	     i++)

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#define rsnd_ssi_get(priv, id) ((struct rsnd_ssi *)(priv->ssi) + id)
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#define rsnd_ssi_nr(priv) ((priv)->ssi_nr)
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#define rsnd_mod_to_ssi(_mod) container_of((_mod), struct rsnd_ssi, mod)
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#define rsnd_ssi_is_parent(ssi, io) ((ssi) == rsnd_io_to_mod_ssip(io))
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#define rsnd_ssi_is_multi_slave(mod, io) \
	(rsnd_ssi_multi_slaves(io) & (1 << rsnd_mod_id(mod)))
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#define rsnd_ssi_is_run_mods(mod, io) \
	(rsnd_ssi_run_mods(io) & (1 << rsnd_mod_id(mod)))
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#define rsnd_ssi_can_output_clk(mod) (!__rsnd_ssi_is_pin_sharing(mod))
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int rsnd_ssi_hdmi_port(struct rsnd_dai_stream *io)
{
	struct rsnd_mod *mod = rsnd_io_to_mod_ssi(io);
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);

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	if (rsnd_flags_has(ssi, RSND_SSI_HDMI0))
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		return RSND_SSI_HDMI_PORT0;

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	if (rsnd_flags_has(ssi, RSND_SSI_HDMI1))
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		return RSND_SSI_HDMI_PORT1;

	return 0;
}

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int rsnd_ssi_use_busif(struct rsnd_dai_stream *io)
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{
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	struct rsnd_mod *mod = rsnd_io_to_mod_ssi(io);
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	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
	int use_busif = 0;

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	if (!rsnd_ssi_is_dma_mode(mod))
		return 0;

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	if (!(rsnd_flags_has(ssi, RSND_SSI_NO_BUSIF)))
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		use_busif = 1;
	if (rsnd_io_to_mod_src(io))
		use_busif = 1;

	return use_busif;
}

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int rsnd_ssi_get_busif(struct rsnd_dai_stream *io)
{
	return 0; /* BUSIF0 only for now */
}

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static void rsnd_ssi_status_clear(struct rsnd_mod *mod)
{
	rsnd_mod_write(mod, SSISR, 0);
}

static u32 rsnd_ssi_status_get(struct rsnd_mod *mod)
{
	return rsnd_mod_read(mod, SSISR);
}

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static void rsnd_ssi_status_check(struct rsnd_mod *mod,
				  u32 bit)
{
	struct rsnd_priv *priv = rsnd_mod_to_priv(mod);
	struct device *dev = rsnd_priv_to_dev(priv);
	u32 status;
	int i;

	for (i = 0; i < 1024; i++) {
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		status = rsnd_ssi_status_get(mod);
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		if (status & bit)
			return;

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		udelay(5);
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	}

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	dev_warn(dev, "%s[%d] status check failed\n",
		 rsnd_mod_name(mod), rsnd_mod_id(mod));
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}

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static u32 rsnd_ssi_multi_slaves(struct rsnd_dai_stream *io)
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{
	struct rsnd_mod *mod;
	enum rsnd_mod_type types[] = {
		RSND_MOD_SSIM1,
		RSND_MOD_SSIM2,
		RSND_MOD_SSIM3,
	};
	int i, mask;

	mask = 0;
	for (i = 0; i < ARRAY_SIZE(types); i++) {
		mod = rsnd_io_to_mod(io, types[i]);
		if (!mod)
			continue;

		mask |= 1 << rsnd_mod_id(mod);
	}

	return mask;
}

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static u32 rsnd_ssi_run_mods(struct rsnd_dai_stream *io)
{
	struct rsnd_mod *ssi_mod = rsnd_io_to_mod_ssi(io);
	struct rsnd_mod *ssi_parent_mod = rsnd_io_to_mod_ssip(io);
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	u32 mods;
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	mods = rsnd_ssi_multi_slaves_runtime(io) |
		1 << rsnd_mod_id(ssi_mod);

	if (ssi_parent_mod)
		mods |= 1 << rsnd_mod_id(ssi_parent_mod);

	return mods;
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}

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u32 rsnd_ssi_multi_slaves_runtime(struct rsnd_dai_stream *io)
{
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	if (rsnd_runtime_is_ssi_multi(io))
		return rsnd_ssi_multi_slaves(io);
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	return 0;
}

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static u32 rsnd_rdai_width_to_swl(struct rsnd_dai *rdai)
{
	struct rsnd_priv *priv = rsnd_rdai_to_priv(rdai);
	struct device *dev = rsnd_priv_to_dev(priv);
	int width = rsnd_rdai_width_get(rdai);

	switch (width) {
	case 32: return SWL_32;
	case 24: return SWL_24;
	case 16: return SWL_16;
	}

	dev_err(dev, "unsupported slot width value: %d\n", width);
	return 0;
}

unsigned int rsnd_ssi_clk_query(struct rsnd_dai *rdai,
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		       int param1, int param2, int *idx)
{
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	struct rsnd_priv *priv = rsnd_rdai_to_priv(rdai);
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	int ssi_clk_mul_table[] = {
		1, 2, 4, 8, 16, 6, 12,
	};
	int j, ret;
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	unsigned int main_rate;
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	int width = rsnd_rdai_width_get(rdai);
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	for (j = 0; j < ARRAY_SIZE(ssi_clk_mul_table); j++) {

		/*
		 * It will set SSIWSR.CONT here, but SSICR.CKDV = 000
		 * with it is not allowed. (SSIWSR.WS_MODE with
		 * SSICR.CKDV = 000 is not allowed either).
		 * Skip it. See SSICR.CKDV
		 */
		if (j == 0)
			continue;

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		main_rate = width * param1 * param2 * ssi_clk_mul_table[j];
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		ret = rsnd_adg_clk_query(priv, main_rate);
		if (ret < 0)
			continue;

		if (idx)
			*idx = j;

		return main_rate;
	}

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	return 0;
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}

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static int rsnd_ssi_master_clk_start(struct rsnd_mod *mod,
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				     struct rsnd_dai_stream *io)
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{
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	struct rsnd_priv *priv = rsnd_io_to_priv(io);
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	struct device *dev = rsnd_priv_to_dev(priv);
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	struct rsnd_dai *rdai = rsnd_io_to_rdai(io);
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	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
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	int chan = rsnd_runtime_channel_for_ssi(io);
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	int idx, ret;
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	unsigned int main_rate;
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	unsigned int rate = rsnd_io_is_play(io) ?
		rsnd_src_get_out_rate(priv, io) :
		rsnd_src_get_in_rate(priv, io);
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	if (!rsnd_rdai_is_clk_master(rdai))
		return 0;

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	if (!rsnd_ssi_can_output_clk(mod))
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		return 0;

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	if (rsnd_ssi_is_multi_slave(mod, io))
		return 0;

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	if (ssi->rate) {
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		if (ssi->rate != rate) {
			dev_err(dev, "SSI parent/child should use same rate\n");
			return -EINVAL;
		}

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		if (ssi->chan != chan) {
			dev_err(dev, "SSI parent/child should use same chan\n");
			return -EINVAL;
		}

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		return 0;
	}

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	main_rate = rsnd_ssi_clk_query(rdai, rate, chan, &idx);
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	if (!main_rate) {
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		dev_err(dev, "unsupported clock rate\n");
		return -EIO;
	}
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	ret = rsnd_adg_ssi_clk_try_start(mod, main_rate);
	if (ret < 0)
		return ret;
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	/*
	 * SSI clock will be output contiguously
	 * by below settings.
	 * This means, rsnd_ssi_master_clk_start()
	 * and rsnd_ssi_register_setup() are necessary
	 * for SSI parent
	 *
	 * SSICR  : FORCE, SCKD, SWSD
	 * SSIWSR : CONT
	 */
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	ssi->cr_clk = FORCE | rsnd_rdai_width_to_swl(rdai) |
			SCKD | SWSD | CKDV(idx);
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	ssi->wsr = CONT;
	ssi->rate = rate;
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	ssi->chan = chan;
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	dev_dbg(dev, "%s[%d] outputs %u Hz\n",
		rsnd_mod_name(mod),
		rsnd_mod_id(mod), rate);
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	return 0;
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}

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static void rsnd_ssi_master_clk_stop(struct rsnd_mod *mod,
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				     struct rsnd_dai_stream *io)
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{
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	struct rsnd_dai *rdai = rsnd_io_to_rdai(io);
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	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
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	if (!rsnd_rdai_is_clk_master(rdai))
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		return;

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	if (!rsnd_ssi_can_output_clk(mod))
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		return;
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	if (ssi->usrcnt > 1)
		return;
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	ssi->cr_clk	= 0;
	ssi->rate	= 0;
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	ssi->chan	= 0;
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	rsnd_adg_ssi_clk_stop(mod);
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}

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static void rsnd_ssi_config_init(struct rsnd_mod *mod,
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				struct rsnd_dai_stream *io)
{
	struct rsnd_dai *rdai = rsnd_io_to_rdai(io);
	struct snd_pcm_runtime *runtime = rsnd_io_to_runtime(io);
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	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
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	u32 cr_own	= ssi->cr_own;
	u32 cr_mode	= ssi->cr_mode;
	u32 wsr		= ssi->wsr;
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	int is_tdm;

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	is_tdm = rsnd_runtime_is_ssi_tdm(io);
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	cr_own |= FORCE | rsnd_rdai_width_to_swl(rdai);
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	if (rdai->bit_clk_inv)
		cr_own |= SCKP;
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	if (rdai->frm_clk_inv ^ is_tdm)
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		cr_own |= SWSP;
	if (rdai->data_alignment)
		cr_own |= SDTA;
	if (rdai->sys_delay)
		cr_own |= DEL;
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	/*
	 * We shouldn't exchange SWSP after running.
	 * This means, parent needs to care it.
	 */
	if (rsnd_ssi_is_parent(mod, io))
		goto init_end;

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	if (rsnd_io_is_play(io))
		cr_own |= TRMD;

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	cr_own &= ~DWL_MASK;
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	switch (snd_pcm_format_width(runtime->format)) {
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	case 8:
		cr_own |= DWL_8;
		break;
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	case 16:
		cr_own |= DWL_16;
		break;
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	case 24:
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		cr_own |= DWL_24;
		break;
	}

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	if (rsnd_ssi_is_dma_mode(mod)) {
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		cr_mode = UIEN | OIEN |	/* over/under run */
			  DMEN;		/* DMA : enable DMA */
	} else {
		cr_mode = DIEN;		/* PIO : enable Data interrupt */
	}

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	/*
	 * TDM Extend Mode
	 * see
	 *	rsnd_ssiu_init_gen2()
	 */
	wsr = ssi->wsr;
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	if (is_tdm) {
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		wsr	|= WS_MODE;
		cr_own	|= CHNL_8;
	}
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init_end:
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	ssi->cr_own	= cr_own;
	ssi->cr_mode	= cr_mode;
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	ssi->wsr	= wsr;
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}
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static void rsnd_ssi_register_setup(struct rsnd_mod *mod)
{
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);

	rsnd_mod_write(mod, SSIWSR,	ssi->wsr);
	rsnd_mod_write(mod, SSICR,	ssi->cr_own	|
					ssi->cr_clk	|
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					ssi->cr_mode	|
					ssi->cr_en);
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}

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/*
 *	SSI mod common functions
 */
static int rsnd_ssi_init(struct rsnd_mod *mod,
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			 struct rsnd_dai_stream *io,
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			 struct rsnd_priv *priv)
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{
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
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	if (!rsnd_ssi_is_run_mods(mod, io))
		return 0;

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	ssi->usrcnt++;

	rsnd_mod_power_on(mod);

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	rsnd_ssi_config_init(mod, io);
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	rsnd_ssi_register_setup(mod);
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	/* clear error status */
	rsnd_ssi_status_clear(mod);

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	return 0;
}

static int rsnd_ssi_quit(struct rsnd_mod *mod,
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			 struct rsnd_dai_stream *io,
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			 struct rsnd_priv *priv)
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{
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
	struct device *dev = rsnd_priv_to_dev(priv);

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	if (!rsnd_ssi_is_run_mods(mod, io))
		return 0;

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	if (!ssi->usrcnt) {
		dev_err(dev, "%s[%d] usrcnt error\n",
			rsnd_mod_name(mod), rsnd_mod_id(mod));
		return -EIO;
	}
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	rsnd_ssi_master_clk_stop(mod, io);
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	rsnd_mod_power_off(mod);

	ssi->usrcnt--;

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	if (!ssi->usrcnt) {
		ssi->cr_own	= 0;
		ssi->cr_mode	= 0;
		ssi->wsr	= 0;
	}

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	return 0;
}

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static int rsnd_ssi_hw_params(struct rsnd_mod *mod,
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			      struct rsnd_dai_stream *io,
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			      struct snd_pcm_substream *substream,
			      struct snd_pcm_hw_params *params)
{
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	struct rsnd_dai *rdai = rsnd_io_to_rdai(io);
	unsigned int fmt_width = snd_pcm_format_width(params_format(params));

	if (fmt_width > rdai->chan_width) {
		struct rsnd_priv *priv = rsnd_io_to_priv(io);
		struct device *dev = rsnd_priv_to_dev(priv);

		dev_err(dev, "invalid combination of slot-width and format-data-width\n");
		return -EINVAL;
	}
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	return 0;
}

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static int rsnd_ssi_start(struct rsnd_mod *mod,
			  struct rsnd_dai_stream *io,
			  struct rsnd_priv *priv)
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{
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	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);

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	if (!rsnd_ssi_is_run_mods(mod, io))
		return 0;

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	/*
	 * EN will be set via SSIU :: SSI_CONTROL
	 * if Multi channel mode
	 */
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	if (rsnd_ssi_multi_slaves_runtime(io))
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		return 0;
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	/*
	 * EN is for data output.
	 * SSI parent EN is not needed.
	 */
	if (rsnd_ssi_is_parent(mod, io))
		return 0;

	ssi->cr_en = EN;

	rsnd_mod_write(mod, SSICR,	ssi->cr_own	|
					ssi->cr_clk	|
					ssi->cr_mode	|
					ssi->cr_en);
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	return 0;
}

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static int rsnd_ssi_stop(struct rsnd_mod *mod,
			 struct rsnd_dai_stream *io,
			 struct rsnd_priv *priv)
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{
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	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
	u32 cr;

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	if (!rsnd_ssi_is_run_mods(mod, io))
		return 0;

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	if (rsnd_ssi_is_parent(mod, io))
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		return 0;
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	cr  =	ssi->cr_own	|
		ssi->cr_clk;
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	/*
	 * disable all IRQ,
	 * Playback: Wait all data was sent
	 * Capture:  It might not receave data. Do nothing
	 */
	if (rsnd_io_is_play(io)) {
		rsnd_mod_write(mod, SSICR, cr | EN);
		rsnd_ssi_status_check(mod, DIRQ);
	}
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	/*
	 * disable SSI,
	 * and, wait idle state
	 */
	rsnd_mod_write(mod, SSICR, cr);	/* disabled all */
	rsnd_ssi_status_check(mod, IIRQ);
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	ssi->cr_en = 0;

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	return 0;
}

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static int rsnd_ssi_irq(struct rsnd_mod *mod,
			struct rsnd_dai_stream *io,
			struct rsnd_priv *priv,
			int enable)
{
	u32 val = 0;

	if (rsnd_is_gen1(priv))
		return 0;

	if (rsnd_ssi_is_parent(mod, io))
		return 0;

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	if (!rsnd_ssi_is_run_mods(mod, io))
		return 0;

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	if (enable)
		val = rsnd_ssi_is_dma_mode(mod) ? 0x0e000000 : 0x0f000000;

	rsnd_mod_write(mod, SSI_INT_ENABLE, val);

	return 0;
}

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static bool rsnd_ssi_pio_interrupt(struct rsnd_mod *mod,
				   struct rsnd_dai_stream *io);
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static void __rsnd_ssi_interrupt(struct rsnd_mod *mod,
				 struct rsnd_dai_stream *io)
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{
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	struct rsnd_priv *priv = rsnd_mod_to_priv(mod);
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	struct device *dev = rsnd_priv_to_dev(priv);
637
	int is_dma = rsnd_ssi_is_dma_mode(mod);
638
	u32 status;
639
	bool elapsed = false;
640
	bool stop = false;
641 642

	spin_lock(&priv->lock);
643

644
	/* ignore all cases if not working */
645
	if (!rsnd_io_is_working(io))
646 647
		goto rsnd_ssi_interrupt_out;

648
	status = rsnd_ssi_status_get(mod);
649 650

	/* PIO only */
651 652
	if (!is_dma && (status & DIRQ))
		elapsed = rsnd_ssi_pio_interrupt(mod, io);
653

654
	/* DMA only */
655 656 657 658
	if (is_dma && (status & (UIRQ | OIRQ))) {
		rsnd_dbg_irq_status(dev, "%s[%d] err status : 0x%08x\n",
			rsnd_mod_name(mod), rsnd_mod_id(mod), status);

659
		stop = true;
660
	}
661

662
	rsnd_ssi_status_clear(mod);
663 664 665
rsnd_ssi_interrupt_out:
	spin_unlock(&priv->lock);

666 667
	if (elapsed)
		rsnd_dai_period_elapsed(io);
668 669 670 671

	if (stop)
		snd_pcm_stop_xrun(io->substream);

672 673 674 675 676 677 678
}

static irqreturn_t rsnd_ssi_interrupt(int irq, void *data)
{
	struct rsnd_mod *mod = data;

	rsnd_mod_interrupt(mod, __rsnd_ssi_interrupt);
679

680
	return IRQ_HANDLED;
681 682
}

683 684 685
/*
 *		SSI PIO
 */
686
static void rsnd_ssi_parent_attach(struct rsnd_mod *mod,
687
				   struct rsnd_dai_stream *io)
688
{
689 690 691
	struct rsnd_dai *rdai = rsnd_io_to_rdai(io);
	struct rsnd_priv *priv = rsnd_mod_to_priv(mod);

692 693 694
	if (!__rsnd_ssi_is_pin_sharing(mod))
		return;

695 696 697
	if (!rsnd_rdai_is_clk_master(rdai))
		return;

698 699 700 701 702 703 704 705 706 707 708 709 710 711
	switch (rsnd_mod_id(mod)) {
	case 1:
	case 2:
		rsnd_dai_connect(rsnd_ssi_mod_get(priv, 0), io, RSND_MOD_SSIP);
		break;
	case 4:
		rsnd_dai_connect(rsnd_ssi_mod_get(priv, 3), io, RSND_MOD_SSIP);
		break;
	case 8:
		rsnd_dai_connect(rsnd_ssi_mod_get(priv, 7), io, RSND_MOD_SSIP);
		break;
	}
}

712 713 714 715 716 717 718 719 720 721 722 723 724 725
static int rsnd_ssi_pcm_new(struct rsnd_mod *mod,
			    struct rsnd_dai_stream *io,
			    struct snd_soc_pcm_runtime *rtd)
{
	/*
	 * rsnd_rdai_is_clk_master() will be enabled after set_fmt,
	 * and, pcm_new will be called after it.
	 * This function reuse pcm_new at this point.
	 */
	rsnd_ssi_parent_attach(mod, io);

	return 0;
}

726 727 728
static int rsnd_ssi_common_probe(struct rsnd_mod *mod,
				 struct rsnd_dai_stream *io,
				 struct rsnd_priv *priv)
729 730 731 732 733
{
	struct device *dev = rsnd_priv_to_dev(priv);
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
	int ret;

734 735 736 737 738 739 740
	/*
	 * SSIP/SSIU/IRQ are not needed on
	 * SSI Multi slaves
	 */
	if (rsnd_ssi_is_multi_slave(mod, io))
		return 0;

741 742 743 744
	/*
	 * It can't judge ssi parent at this point
	 * see rsnd_ssi_pcm_new()
	 */
745

746 747 748 749
	ret = rsnd_ssiu_attach(io, mod);
	if (ret < 0)
		return ret;

750 751 752
	/*
	 * SSI might be called again as PIO fallback
	 * It is easy to manual handling for IRQ request/free
753 754 755 756 757 758 759
	 *
	 * OTOH, this function might be called many times if platform is
	 * using MIX. It needs xxx_attach() many times on xxx_probe().
	 * Because of it, we can't control .probe/.remove calling count by
	 * mod->status.
	 * But it don't need to call request_irq() many times.
	 * Let's control it by RSND_SSI_PROBED flag.
760
	 */
761
	if (!rsnd_flags_has(ssi, RSND_SSI_PROBED)) {
762 763 764 765 766
		ret = request_irq(ssi->irq,
				  rsnd_ssi_interrupt,
				  IRQF_SHARED,
				  dev_name(dev), mod);

767
		rsnd_flags_set(ssi, RSND_SSI_PROBED);
768
	}
769

770 771 772
	return ret;
}

773 774 775 776 777 778 779 780 781 782 783 784
static int rsnd_ssi_common_remove(struct rsnd_mod *mod,
				  struct rsnd_dai_stream *io,
				  struct rsnd_priv *priv)
{
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
	struct rsnd_mod *pure_ssi_mod = rsnd_io_to_mod_ssi(io);

	/* Do nothing if non SSI (= SSI parent, multi SSI) mod */
	if (pure_ssi_mod != mod)
		return 0;

	/* PIO will request IRQ again */
785
	if (rsnd_flags_has(ssi, RSND_SSI_PROBED)) {
786 787
		free_irq(ssi->irq, mod);

788
		rsnd_flags_del(ssi, RSND_SSI_PROBED);
789
	}
790 791 792 793

	return 0;
}

794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858
/*
 *	SSI PIO functions
 */
static bool rsnd_ssi_pio_interrupt(struct rsnd_mod *mod,
				   struct rsnd_dai_stream *io)
{
	struct snd_pcm_runtime *runtime = rsnd_io_to_runtime(io);
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
	u32 *buf = (u32 *)(runtime->dma_area + ssi->byte_pos);
	int shift = 0;
	int byte_pos;
	bool elapsed = false;

	if (snd_pcm_format_width(runtime->format) == 24)
		shift = 8;

	/*
	 * 8/16/32 data can be assesse to TDR/RDR register
	 * directly as 32bit data
	 * see rsnd_ssi_init()
	 */
	if (rsnd_io_is_play(io))
		rsnd_mod_write(mod, SSITDR, (*buf) << shift);
	else
		*buf = (rsnd_mod_read(mod, SSIRDR) >> shift);

	byte_pos = ssi->byte_pos + sizeof(*buf);

	if (byte_pos >= ssi->next_period_byte) {
		int period_pos = byte_pos / ssi->byte_per_period;

		if (period_pos >= runtime->periods) {
			byte_pos = 0;
			period_pos = 0;
		}

		ssi->next_period_byte = (period_pos + 1) * ssi->byte_per_period;

		elapsed = true;
	}

	WRITE_ONCE(ssi->byte_pos, byte_pos);

	return elapsed;
}

static int rsnd_ssi_pio_init(struct rsnd_mod *mod,
			     struct rsnd_dai_stream *io,
			     struct rsnd_priv *priv)
{
	struct snd_pcm_runtime *runtime = rsnd_io_to_runtime(io);
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);

	if (!rsnd_ssi_is_parent(mod, io)) {
		ssi->byte_pos		= 0;
		ssi->byte_per_period	= runtime->period_size *
					  runtime->channels *
					  samples_to_bytes(runtime, 1);
		ssi->next_period_byte	= ssi->byte_per_period;
	}

	return rsnd_ssi_init(mod, io, priv);
}

static int rsnd_ssi_pio_pointer(struct rsnd_mod *mod,
859 860 861
			    struct rsnd_dai_stream *io,
			    snd_pcm_uframes_t *pointer)
{
862
	struct rsnd_ssi *ssi = rsnd_mod_to_ssi(mod);
863 864
	struct snd_pcm_runtime *runtime = rsnd_io_to_runtime(io);

865
	*pointer = bytes_to_frames(runtime, READ_ONCE(ssi->byte_pos));
866 867 868 869

	return 0;
}

870 871 872 873 874 875 876
static int rsnd_ssi_prepare(struct rsnd_mod *mod,
			    struct rsnd_dai_stream *io,
			    struct rsnd_priv *priv)
{
	return rsnd_ssi_master_clk_start(mod, io);
}

877
static struct rsnd_mod_ops rsnd_ssi_pio_ops = {
878
	.name	= SSI_NAME,
879
	.probe	= rsnd_ssi_common_probe,
880
	.remove	= rsnd_ssi_common_remove,
881
	.init	= rsnd_ssi_pio_init,
882
	.quit	= rsnd_ssi_quit,
883 884
	.start	= rsnd_ssi_start,
	.stop	= rsnd_ssi_stop,
885
	.irq	= rsnd_ssi_irq,
886
	.pointer = rsnd_ssi_pio_pointer,
887
	.pcm_new = rsnd_ssi_pcm_new,
888
	.hw_params = rsnd_ssi_hw_params,
889
	.prepare = rsnd_ssi_prepare,
890 891
};

892
static int rsnd_ssi_dma_probe(struct rsnd_mod *mod,
893
			      struct rsnd_dai_stream *io,
894
			      struct rsnd_priv *priv)
895 896 897
{
	int ret;

898 899 900 901 902 903 904
	/*
	 * SSIP/SSIU/IRQ/DMA are not needed on
	 * SSI Multi slaves
	 */
	if (rsnd_ssi_is_multi_slave(mod, io))
		return 0;

905
	ret = rsnd_ssi_common_probe(mod, io, priv);
906
	if (ret)
907
		return ret;
908

909
	/* SSI probe might be called many times in MUX multi path */
910
	ret = rsnd_dma_attach(io, mod, &io->dma);
911

912 913 914
	return ret;
}

915
static int rsnd_ssi_fallback(struct rsnd_mod *mod,
916
			     struct rsnd_dai_stream *io,
917
			     struct rsnd_priv *priv)
918
{
919 920 921 922 923 924 925 926 927 928 929 930 931 932
	struct device *dev = rsnd_priv_to_dev(priv);

	/*
	 * fallback to PIO
	 *
	 * SSI .probe might be called again.
	 * see
	 *	rsnd_rdai_continuance_probe()
	 */
	mod->ops = &rsnd_ssi_pio_ops;

	dev_info(dev, "%s[%d] fallback to PIO mode\n",
		 rsnd_mod_name(mod), rsnd_mod_id(mod));

933 934 935
	return 0;
}

936 937
static struct dma_chan *rsnd_ssi_dma_req(struct rsnd_dai_stream *io,
					 struct rsnd_mod *mod)
938
{
939 940 941 942
	struct rsnd_priv *priv = rsnd_mod_to_priv(mod);
	int is_play = rsnd_io_is_play(io);
	char *name;

943
	if (rsnd_ssi_use_busif(io))
944 945 946 947 948 949
		name = is_play ? "rxu" : "txu";
	else
		name = is_play ? "rx" : "tx";

	return rsnd_dma_request_channel(rsnd_ssi_of_node(priv),
					mod, name);
950 951
}

952
static struct rsnd_mod_ops rsnd_ssi_dma_ops = {
953
	.name	= SSI_NAME,
954
	.dma_req = rsnd_ssi_dma_req,
955
	.probe	= rsnd_ssi_dma_probe,
956
	.remove	= rsnd_ssi_common_remove,
957 958
	.init	= rsnd_ssi_init,
	.quit	= rsnd_ssi_quit,
959 960
	.start	= rsnd_ssi_start,
	.stop	= rsnd_ssi_stop,
961
	.irq	= rsnd_ssi_irq,
962
	.pcm_new = rsnd_ssi_pcm_new,
963
	.fallback = rsnd_ssi_fallback,
964
	.hw_params = rsnd_ssi_hw_params,
965
	.prepare = rsnd_ssi_prepare,
966 967
};

968 969 970 971 972 973
int rsnd_ssi_is_dma_mode(struct rsnd_mod *mod)
{
	return mod->ops == &rsnd_ssi_dma_ops;
}


974 975 976
/*
 *		ssi mod function
 */
977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994
static void rsnd_ssi_connect(struct rsnd_mod *mod,
			     struct rsnd_dai_stream *io)
{
	struct rsnd_dai *rdai = rsnd_io_to_rdai(io);
	enum rsnd_mod_type types[] = {
		RSND_MOD_SSI,
		RSND_MOD_SSIM1,
		RSND_MOD_SSIM2,
		RSND_MOD_SSIM3,
	};
	enum rsnd_mod_type type;
	int i;

	/* try SSI -> SSIM1 -> SSIM2 -> SSIM3 */
	for (i = 0; i < ARRAY_SIZE(types); i++) {
		type = types[i];
		if (!rsnd_io_to_mod(io, type)) {
			rsnd_dai_connect(mod, io, type);
995 996
			rsnd_rdai_channels_set(rdai, (i + 1) * 2);
			rsnd_rdai_ssi_lane_set(rdai, (i + 1));
997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028
			return;
		}
	}
}

void rsnd_parse_connect_ssi(struct rsnd_dai *rdai,
			    struct device_node *playback,
			    struct device_node *capture)
{
	struct rsnd_priv *priv = rsnd_rdai_to_priv(rdai);
	struct device_node *node;
	struct device_node *np;
	struct rsnd_mod *mod;
	int i;

	node = rsnd_ssi_of_node(priv);
	if (!node)
		return;

	i = 0;
	for_each_child_of_node(node, np) {
		mod = rsnd_ssi_mod_get(priv, i);
		if (np == playback)
			rsnd_ssi_connect(mod, &rdai->playback);
		if (np == capture)
			rsnd_ssi_connect(mod, &rdai->capture);
		i++;
	}

	of_node_put(node);
}

1029 1030 1031 1032 1033 1034 1035
static void __rsnd_ssi_parse_hdmi_connection(struct rsnd_priv *priv,
					     struct rsnd_dai_stream *io,
					     struct device_node *remote_ep)
{
	struct device *dev = rsnd_priv_to_dev(priv);
	struct rsnd_mod *mod = rsnd_io_to_mod_ssi(io);
	struct rsnd_ssi *ssi;
1036 1037 1038 1039 1040
	struct device_node *remote_node = of_graph_get_port_parent(remote_ep);

	/* support Gen3 only */
	if (!rsnd_is_gen3(priv))
		return;
1041 1042 1043 1044 1045 1046

	if (!mod)
		return;

	ssi  = rsnd_mod_to_ssi(mod);

1047 1048
	/* HDMI0 */
	if (strstr(remote_node->full_name, "hdmi@fead0000")) {
1049
		rsnd_flags_set(ssi, RSND_SSI_HDMI0);
1050 1051 1052 1053
		dev_dbg(dev, "%s[%d] connected to HDMI0\n",
			 rsnd_mod_name(mod), rsnd_mod_id(mod));
	}

1054 1055
	/* HDMI1 */
	if (strstr(remote_node->full_name, "hdmi@feae0000")) {
1056
		rsnd_flags_set(ssi, RSND_SSI_HDMI1);
1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076
		dev_dbg(dev, "%s[%d] connected to HDMI1\n",
			rsnd_mod_name(mod), rsnd_mod_id(mod));
	}
}

void rsnd_ssi_parse_hdmi_connection(struct rsnd_priv *priv,
				    struct device_node *endpoint,
				    int dai_i)
{
	struct rsnd_dai *rdai = rsnd_rdai_get(priv, dai_i);
	struct device_node *remote_ep;

	remote_ep = of_graph_get_remote_endpoint(endpoint);
	if (!remote_ep)
		return;

	__rsnd_ssi_parse_hdmi_connection(priv, &rdai->playback, remote_ep);
	__rsnd_ssi_parse_hdmi_connection(priv, &rdai->capture,  remote_ep);
}

1077 1078
struct rsnd_mod *rsnd_ssi_mod_get(struct rsnd_priv *priv, int id)
{
1079 1080
	if (WARN_ON(id < 0 || id >= rsnd_ssi_nr(priv)))
		id = 0;
1081

1082
	return rsnd_mod_get(rsnd_ssi_get(priv, id));
1083 1084
}

1085
int __rsnd_ssi_is_pin_sharing(struct rsnd_mod *mod)
1086
{
1087 1088
	if (!mod)
		return 0;
1089

1090
	return !!(rsnd_flags_has(rsnd_mod_to_ssi(mod), RSND_SSI_CLK_PIN_SHARE));
1091 1092
}

1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127
static u32 *rsnd_ssi_get_status(struct rsnd_dai_stream *io,
				struct rsnd_mod *mod,
				enum rsnd_mod_type type)
{
	/*
	 * SSIP (= SSI parent) needs to be special, otherwise,
	 * 2nd SSI might doesn't start. see also rsnd_mod_call()
	 *
	 * We can't include parent SSI status on SSI, because we don't know
	 * how many SSI requests parent SSI. Thus, it is localed on "io" now.
	 * ex) trouble case
	 *	Playback: SSI0
	 *	Capture : SSI1 (needs SSI0)
	 *
	 * 1) start Capture  ->	SSI0/SSI1 are started.
	 * 2) start Playback ->	SSI0 doesn't work, because it is already
	 *			marked as "started" on 1)
	 *
	 * OTOH, using each mod's status is good for MUX case.
	 * It doesn't need to start in 2nd start
	 * ex)
	 *	IO-0: SRC0 -> CTU1 -+-> MUX -> DVC -> SSIU -> SSI0
	 *			    |
	 *	IO-1: SRC1 -> CTU2 -+
	 *
	 * 1) start IO-0 ->	start SSI0
	 * 2) start IO-1 ->	SSI0 doesn't need to start, because it is
	 *			already started on 1)
	 */
	if (type == RSND_MOD_SSIP)
		return &io->parent_ssi_status;

	return rsnd_mod_get_status(io, mod, type);
}

1128
int rsnd_ssi_probe(struct rsnd_priv *priv)
1129
{
1130 1131
	struct device_node *node;
	struct device_node *np;
1132 1133 1134 1135 1136
	struct device *dev = rsnd_priv_to_dev(priv);
	struct rsnd_mod_ops *ops;
	struct clk *clk;
	struct rsnd_ssi *ssi;
	char name[RSND_SSI_NAME_SIZE];
1137
	int i, nr, ret;
1138

1139 1140 1141 1142 1143 1144 1145 1146 1147
	node = rsnd_ssi_of_node(priv);
	if (!node)
		return -EINVAL;

	nr = of_get_child_count(node);
	if (!nr) {
		ret = -EINVAL;
		goto rsnd_ssi_probe_done;
	}
1148

1149
	ssi	= devm_kcalloc(dev, nr, sizeof(*ssi), GFP_KERNEL);
1150 1151 1152 1153
	if (!ssi) {
		ret = -ENOMEM;
		goto rsnd_ssi_probe_done;
	}
1154

1155 1156
	priv->ssi	= ssi;
	priv->ssi_nr	= nr;
1157

1158 1159
	i = 0;
	for_each_child_of_node(node, np) {
1160 1161 1162
		if (!of_device_is_available(np))
			goto skip;

1163
		ssi = rsnd_ssi_get(priv, i);
1164

1165 1166
		snprintf(name, RSND_SSI_NAME_SIZE, "%s.%d",
			 SSI_NAME, i);
1167

1168
		clk = devm_clk_get(dev, name);
1169 1170
		if (IS_ERR(clk)) {
			ret = PTR_ERR(clk);
1171
			of_node_put(np);
1172 1173
			goto rsnd_ssi_probe_done;
		}
1174

1175
		if (of_get_property(np, "shared-pin", NULL))
1176
			rsnd_flags_set(ssi, RSND_SSI_CLK_PIN_SHARE);
1177 1178

		if (of_get_property(np, "no-busif", NULL))
1179
			rsnd_flags_set(ssi, RSND_SSI_NO_BUSIF);
1180 1181 1182 1183

		ssi->irq = irq_of_parse_and_map(np, 0);
		if (!ssi->irq) {
			ret = -EINVAL;
1184
			of_node_put(np);
1185 1186
			goto rsnd_ssi_probe_done;
		}
1187

J
Julia Lawall 已提交
1188
		if (of_property_read_bool(np, "pio-transfer"))
1189
			ops = &rsnd_ssi_pio_ops;
1190 1191
		else
			ops = &rsnd_ssi_dma_ops;
1192

1193
		ret = rsnd_mod_init(priv, rsnd_mod_get(ssi), ops, clk,
1194
				    rsnd_ssi_get_status, RSND_MOD_SSI, i);
1195 1196
		if (ret) {
			of_node_put(np);
1197
			goto rsnd_ssi_probe_done;
1198
		}
1199
skip:
1200
		i++;
1201 1202
	}

1203 1204 1205 1206 1207 1208
	ret = 0;

rsnd_ssi_probe_done:
	of_node_put(node);

	return ret;
1209
}
1210

1211
void rsnd_ssi_remove(struct rsnd_priv *priv)
1212 1213 1214 1215 1216
{
	struct rsnd_ssi *ssi;
	int i;

	for_each_rsnd_ssi(ssi, priv, i) {
1217
		rsnd_mod_quit(rsnd_mod_get(ssi));
1218 1219
	}
}