spi-atmel.c 37.0 KB
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/*
 * Driver for Atmel AT32 and AT91 SPI Controllers
 *
 * Copyright (C) 2006 Atmel Corporation
 *
 * 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/kernel.h>
#include <linux/clk.h>
#include <linux/module.h>
#include <linux/platform_device.h>
#include <linux/delay.h>
#include <linux/dma-mapping.h>
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#include <linux/dmaengine.h>
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#include <linux/err.h>
#include <linux/interrupt.h>
#include <linux/spi/spi.h>
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#include <linux/slab.h>
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#include <linux/platform_data/atmel.h>
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#include <linux/platform_data/dma-atmel.h>
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#include <linux/of.h>
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#include <linux/io.h>
#include <linux/gpio.h>
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#include <linux/pinctrl/consumer.h>
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/* SPI register offsets */
#define SPI_CR					0x0000
#define SPI_MR					0x0004
#define SPI_RDR					0x0008
#define SPI_TDR					0x000c
#define SPI_SR					0x0010
#define SPI_IER					0x0014
#define SPI_IDR					0x0018
#define SPI_IMR					0x001c
#define SPI_CSR0				0x0030
#define SPI_CSR1				0x0034
#define SPI_CSR2				0x0038
#define SPI_CSR3				0x003c
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#define SPI_VERSION				0x00fc
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#define SPI_RPR					0x0100
#define SPI_RCR					0x0104
#define SPI_TPR					0x0108
#define SPI_TCR					0x010c
#define SPI_RNPR				0x0110
#define SPI_RNCR				0x0114
#define SPI_TNPR				0x0118
#define SPI_TNCR				0x011c
#define SPI_PTCR				0x0120
#define SPI_PTSR				0x0124

/* Bitfields in CR */
#define SPI_SPIEN_OFFSET			0
#define SPI_SPIEN_SIZE				1
#define SPI_SPIDIS_OFFSET			1
#define SPI_SPIDIS_SIZE				1
#define SPI_SWRST_OFFSET			7
#define SPI_SWRST_SIZE				1
#define SPI_LASTXFER_OFFSET			24
#define SPI_LASTXFER_SIZE			1

/* Bitfields in MR */
#define SPI_MSTR_OFFSET				0
#define SPI_MSTR_SIZE				1
#define SPI_PS_OFFSET				1
#define SPI_PS_SIZE				1
#define SPI_PCSDEC_OFFSET			2
#define SPI_PCSDEC_SIZE				1
#define SPI_FDIV_OFFSET				3
#define SPI_FDIV_SIZE				1
#define SPI_MODFDIS_OFFSET			4
#define SPI_MODFDIS_SIZE			1
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#define SPI_WDRBT_OFFSET			5
#define SPI_WDRBT_SIZE				1
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#define SPI_LLB_OFFSET				7
#define SPI_LLB_SIZE				1
#define SPI_PCS_OFFSET				16
#define SPI_PCS_SIZE				4
#define SPI_DLYBCS_OFFSET			24
#define SPI_DLYBCS_SIZE				8

/* Bitfields in RDR */
#define SPI_RD_OFFSET				0
#define SPI_RD_SIZE				16

/* Bitfields in TDR */
#define SPI_TD_OFFSET				0
#define SPI_TD_SIZE				16

/* Bitfields in SR */
#define SPI_RDRF_OFFSET				0
#define SPI_RDRF_SIZE				1
#define SPI_TDRE_OFFSET				1
#define SPI_TDRE_SIZE				1
#define SPI_MODF_OFFSET				2
#define SPI_MODF_SIZE				1
#define SPI_OVRES_OFFSET			3
#define SPI_OVRES_SIZE				1
#define SPI_ENDRX_OFFSET			4
#define SPI_ENDRX_SIZE				1
#define SPI_ENDTX_OFFSET			5
#define SPI_ENDTX_SIZE				1
#define SPI_RXBUFF_OFFSET			6
#define SPI_RXBUFF_SIZE				1
#define SPI_TXBUFE_OFFSET			7
#define SPI_TXBUFE_SIZE				1
#define SPI_NSSR_OFFSET				8
#define SPI_NSSR_SIZE				1
#define SPI_TXEMPTY_OFFSET			9
#define SPI_TXEMPTY_SIZE			1
#define SPI_SPIENS_OFFSET			16
#define SPI_SPIENS_SIZE				1

/* Bitfields in CSR0 */
#define SPI_CPOL_OFFSET				0
#define SPI_CPOL_SIZE				1
#define SPI_NCPHA_OFFSET			1
#define SPI_NCPHA_SIZE				1
#define SPI_CSAAT_OFFSET			3
#define SPI_CSAAT_SIZE				1
#define SPI_BITS_OFFSET				4
#define SPI_BITS_SIZE				4
#define SPI_SCBR_OFFSET				8
#define SPI_SCBR_SIZE				8
#define SPI_DLYBS_OFFSET			16
#define SPI_DLYBS_SIZE				8
#define SPI_DLYBCT_OFFSET			24
#define SPI_DLYBCT_SIZE				8

/* Bitfields in RCR */
#define SPI_RXCTR_OFFSET			0
#define SPI_RXCTR_SIZE				16

/* Bitfields in TCR */
#define SPI_TXCTR_OFFSET			0
#define SPI_TXCTR_SIZE				16

/* Bitfields in RNCR */
#define SPI_RXNCR_OFFSET			0
#define SPI_RXNCR_SIZE				16

/* Bitfields in TNCR */
#define SPI_TXNCR_OFFSET			0
#define SPI_TXNCR_SIZE				16

/* Bitfields in PTCR */
#define SPI_RXTEN_OFFSET			0
#define SPI_RXTEN_SIZE				1
#define SPI_RXTDIS_OFFSET			1
#define SPI_RXTDIS_SIZE				1
#define SPI_TXTEN_OFFSET			8
#define SPI_TXTEN_SIZE				1
#define SPI_TXTDIS_OFFSET			9
#define SPI_TXTDIS_SIZE				1

/* Constants for BITS */
#define SPI_BITS_8_BPT				0
#define SPI_BITS_9_BPT				1
#define SPI_BITS_10_BPT				2
#define SPI_BITS_11_BPT				3
#define SPI_BITS_12_BPT				4
#define SPI_BITS_13_BPT				5
#define SPI_BITS_14_BPT				6
#define SPI_BITS_15_BPT				7
#define SPI_BITS_16_BPT				8

/* Bit manipulation macros */
#define SPI_BIT(name) \
	(1 << SPI_##name##_OFFSET)
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#define SPI_BF(name, value) \
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	(((value) & ((1 << SPI_##name##_SIZE) - 1)) << SPI_##name##_OFFSET)
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#define SPI_BFEXT(name, value) \
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	(((value) >> SPI_##name##_OFFSET) & ((1 << SPI_##name##_SIZE) - 1))
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#define SPI_BFINS(name, value, old) \
	(((old) & ~(((1 << SPI_##name##_SIZE) - 1) << SPI_##name##_OFFSET)) \
	  | SPI_BF(name, value))
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/* Register access macros */
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#define spi_readl(port, reg) \
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	__raw_readl((port)->regs + SPI_##reg)
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#define spi_writel(port, reg, value) \
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	__raw_writel((value), (port)->regs + SPI_##reg)

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/* use PIO for small transfers, avoiding DMA setup/teardown overhead and
 * cache operations; better heuristics consider wordsize and bitrate.
 */
#define DMA_MIN_BYTES	16

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#define SPI_DMA_TIMEOUT		(msecs_to_jiffies(1000))

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struct atmel_spi_dma {
	struct dma_chan			*chan_rx;
	struct dma_chan			*chan_tx;
	struct scatterlist		sgrx;
	struct scatterlist		sgtx;
	struct dma_async_tx_descriptor	*data_desc_rx;
	struct dma_async_tx_descriptor	*data_desc_tx;

	struct at_dma_slave	dma_slave;
};

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struct atmel_spi_caps {
	bool	is_spi2;
	bool	has_wdrbt;
	bool	has_dma_support;
};
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/*
 * The core SPI transfer engine just talks to a register bank to set up
 * DMA transfers; transfer queue progress is driven by IRQs.  The clock
 * framework provides the base clock, subdivided for each spi_device.
 */
struct atmel_spi {
	spinlock_t		lock;
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	unsigned long		flags;
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	phys_addr_t		phybase;
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	void __iomem		*regs;
	int			irq;
	struct clk		*clk;
	struct platform_device	*pdev;

	struct spi_transfer	*current_transfer;
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	int			current_remaining_bytes;
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	int			done_status;
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	struct completion	xfer_completion;

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	/* scratch buffer */
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	void			*buffer;
	dma_addr_t		buffer_dma;
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	struct atmel_spi_caps	caps;
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	bool			use_dma;
	bool			use_pdc;
	/* dmaengine data */
	struct atmel_spi_dma	dma;
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	bool			keep_cs;
	bool			cs_active;
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};

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/* Controller-specific per-slave state */
struct atmel_spi_device {
	unsigned int		npcs_pin;
	u32			csr;
};

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#define BUFFER_SIZE		PAGE_SIZE
#define INVALID_DMA_ADDRESS	0xffffffff

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/*
 * Version 2 of the SPI controller has
 *  - CR.LASTXFER
 *  - SPI_MR.DIV32 may become FDIV or must-be-zero (here: always zero)
 *  - SPI_SR.TXEMPTY, SPI_SR.NSSR (and corresponding irqs)
 *  - SPI_CSRx.CSAAT
 *  - SPI_CSRx.SBCR allows faster clocking
 */
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static bool atmel_spi_is_v2(struct atmel_spi *as)
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{
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	return as->caps.is_spi2;
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}

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/*
 * Earlier SPI controllers (e.g. on at91rm9200) have a design bug whereby
 * they assume that spi slave device state will not change on deselect, so
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 * that automagic deselection is OK.  ("NPCSx rises if no data is to be
 * transmitted")  Not so!  Workaround uses nCSx pins as GPIOs; or newer
 * controllers have CSAAT and friends.
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 *
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 * Since the CSAAT functionality is a bit weird on newer controllers as
 * well, we use GPIO to control nCSx pins on all controllers, updating
 * MR.PCS to avoid confusing the controller.  Using GPIOs also lets us
 * support active-high chipselects despite the controller's belief that
 * only active-low devices/systems exists.
 *
 * However, at91rm9200 has a second erratum whereby nCS0 doesn't work
 * right when driven with GPIO.  ("Mode Fault does not allow more than one
 * Master on Chip Select 0.")  No workaround exists for that ... so for
 * nCS0 on that chip, we (a) don't use the GPIO, (b) can't support CS_HIGH,
 * and (c) will trigger that first erratum in some cases.
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 */

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static void cs_activate(struct atmel_spi *as, struct spi_device *spi)
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{
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	struct atmel_spi_device *asd = spi->controller_state;
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	unsigned active = spi->mode & SPI_CS_HIGH;
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	u32 mr;

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	if (atmel_spi_is_v2(as)) {
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		spi_writel(as, CSR0 + 4 * spi->chip_select, asd->csr);
		/* For the low SPI version, there is a issue that PDC transfer
		 * on CS1,2,3 needs SPI_CSR0.BITS config as SPI_CSR1,2,3.BITS
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		 */
		spi_writel(as, CSR0, asd->csr);
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		if (as->caps.has_wdrbt) {
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			spi_writel(as, MR,
					SPI_BF(PCS, ~(0x01 << spi->chip_select))
					| SPI_BIT(WDRBT)
					| SPI_BIT(MODFDIS)
					| SPI_BIT(MSTR));
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		} else {
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			spi_writel(as, MR,
					SPI_BF(PCS, ~(0x01 << spi->chip_select))
					| SPI_BIT(MODFDIS)
					| SPI_BIT(MSTR));
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		}
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		mr = spi_readl(as, MR);
		gpio_set_value(asd->npcs_pin, active);
	} else {
		u32 cpol = (spi->mode & SPI_CPOL) ? SPI_BIT(CPOL) : 0;
		int i;
		u32 csr;

		/* Make sure clock polarity is correct */
		for (i = 0; i < spi->master->num_chipselect; i++) {
			csr = spi_readl(as, CSR0 + 4 * i);
			if ((csr ^ cpol) & SPI_BIT(CPOL))
				spi_writel(as, CSR0 + 4 * i,
						csr ^ SPI_BIT(CPOL));
		}

		mr = spi_readl(as, MR);
		mr = SPI_BFINS(PCS, ~(1 << spi->chip_select), mr);
		if (spi->chip_select != 0)
			gpio_set_value(asd->npcs_pin, active);
		spi_writel(as, MR, mr);
	}
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	dev_dbg(&spi->dev, "activate %u%s, mr %08x\n",
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			asd->npcs_pin, active ? " (high)" : "",
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			mr);
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}

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static void cs_deactivate(struct atmel_spi *as, struct spi_device *spi)
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{
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	struct atmel_spi_device *asd = spi->controller_state;
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	unsigned active = spi->mode & SPI_CS_HIGH;
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	u32 mr;

	/* only deactivate *this* device; sometimes transfers to
	 * another device may be active when this routine is called.
	 */
	mr = spi_readl(as, MR);
	if (~SPI_BFEXT(PCS, mr) & (1 << spi->chip_select)) {
		mr = SPI_BFINS(PCS, 0xf, mr);
		spi_writel(as, MR, mr);
	}
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	dev_dbg(&spi->dev, "DEactivate %u%s, mr %08x\n",
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			asd->npcs_pin, active ? " (low)" : "",
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			mr);

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	if (atmel_spi_is_v2(as) || spi->chip_select != 0)
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		gpio_set_value(asd->npcs_pin, !active);
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}

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static void atmel_spi_lock(struct atmel_spi *as) __acquires(&as->lock)
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{
	spin_lock_irqsave(&as->lock, as->flags);
}

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static void atmel_spi_unlock(struct atmel_spi *as) __releases(&as->lock)
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{
	spin_unlock_irqrestore(&as->lock, as->flags);
}

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static inline bool atmel_spi_use_dma(struct atmel_spi *as,
				struct spi_transfer *xfer)
{
	return as->use_dma && xfer->len >= DMA_MIN_BYTES;
}

static int atmel_spi_dma_slave_config(struct atmel_spi *as,
				struct dma_slave_config *slave_config,
				u8 bits_per_word)
{
	int err = 0;

	if (bits_per_word > 8) {
		slave_config->dst_addr_width = DMA_SLAVE_BUSWIDTH_2_BYTES;
		slave_config->src_addr_width = DMA_SLAVE_BUSWIDTH_2_BYTES;
	} else {
		slave_config->dst_addr_width = DMA_SLAVE_BUSWIDTH_1_BYTE;
		slave_config->src_addr_width = DMA_SLAVE_BUSWIDTH_1_BYTE;
	}

	slave_config->dst_addr = (dma_addr_t)as->phybase + SPI_TDR;
	slave_config->src_addr = (dma_addr_t)as->phybase + SPI_RDR;
	slave_config->src_maxburst = 1;
	slave_config->dst_maxburst = 1;
	slave_config->device_fc = false;

	slave_config->direction = DMA_MEM_TO_DEV;
	if (dmaengine_slave_config(as->dma.chan_tx, slave_config)) {
		dev_err(&as->pdev->dev,
			"failed to configure tx dma channel\n");
		err = -EINVAL;
	}

	slave_config->direction = DMA_DEV_TO_MEM;
	if (dmaengine_slave_config(as->dma.chan_rx, slave_config)) {
		dev_err(&as->pdev->dev,
			"failed to configure rx dma channel\n");
		err = -EINVAL;
	}

	return err;
}

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static bool filter(struct dma_chan *chan, void *pdata)
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{
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	struct atmel_spi_dma *sl_pdata = pdata;
	struct at_dma_slave *sl;
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	if (!sl_pdata)
		return false;

	sl = &sl_pdata->dma_slave;
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	if (sl->dma_dev == chan->device->dev) {
		chan->private = sl;
		return true;
	} else {
		return false;
	}
}

static int atmel_spi_configure_dma(struct atmel_spi *as)
{
	struct dma_slave_config	slave_config;
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	struct device *dev = &as->pdev->dev;
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	int err;

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	dma_cap_mask_t mask;
	dma_cap_zero(mask);
	dma_cap_set(DMA_SLAVE, mask);
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	as->dma.chan_tx = dma_request_slave_channel_compat(mask, filter,
							   &as->dma,
							   dev, "tx");
	if (!as->dma.chan_tx) {
		dev_err(dev,
			"DMA TX channel not available, SPI unable to use DMA\n");
		err = -EBUSY;
		goto error;
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	}
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	as->dma.chan_rx = dma_request_slave_channel_compat(mask, filter,
							   &as->dma,
							   dev, "rx");

	if (!as->dma.chan_rx) {
		dev_err(dev,
			"DMA RX channel not available, SPI unable to use DMA\n");
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		err = -EBUSY;
		goto error;
	}

	err = atmel_spi_dma_slave_config(as, &slave_config, 8);
	if (err)
		goto error;

	dev_info(&as->pdev->dev,
			"Using %s (tx) and %s (rx) for DMA transfers\n",
			dma_chan_name(as->dma.chan_tx),
			dma_chan_name(as->dma.chan_rx));
	return 0;
error:
	if (as->dma.chan_rx)
		dma_release_channel(as->dma.chan_rx);
	if (as->dma.chan_tx)
		dma_release_channel(as->dma.chan_tx);
	return err;
}

static void atmel_spi_stop_dma(struct atmel_spi *as)
{
	if (as->dma.chan_rx)
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		dmaengine_terminate_all(as->dma.chan_rx);
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	if (as->dma.chan_tx)
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		dmaengine_terminate_all(as->dma.chan_tx);
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}

static void atmel_spi_release_dma(struct atmel_spi *as)
{
	if (as->dma.chan_rx)
		dma_release_channel(as->dma.chan_rx);
	if (as->dma.chan_tx)
		dma_release_channel(as->dma.chan_tx);
}

/* This function is called by the DMA driver from tasklet context */
static void dma_callback(void *data)
{
	struct spi_master	*master = data;
	struct atmel_spi	*as = spi_master_get_devdata(master);

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	complete(&as->xfer_completion);
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}

/*
 * Next transfer using PIO.
 */
static void atmel_spi_next_xfer_pio(struct spi_master *master,
				struct spi_transfer *xfer)
{
	struct atmel_spi	*as = spi_master_get_devdata(master);
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	unsigned long xfer_pos = xfer->len - as->current_remaining_bytes;
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	dev_vdbg(master->dev.parent, "atmel_spi_next_xfer_pio\n");

	/* Make sure data is not remaining in RDR */
	spi_readl(as, RDR);
	while (spi_readl(as, SR) & SPI_BIT(RDRF)) {
		spi_readl(as, RDR);
		cpu_relax();
	}

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	if (xfer->tx_buf) {
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		if (xfer->bits_per_word > 8)
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			spi_writel(as, TDR, *(u16 *)(xfer->tx_buf + xfer_pos));
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		else
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			spi_writel(as, TDR, *(u8 *)(xfer->tx_buf + xfer_pos));
	} else {
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		spi_writel(as, TDR, 0);
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	}
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	dev_dbg(master->dev.parent,
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		"  start pio xfer %p: len %u tx %p rx %p bitpw %d\n",
		xfer, xfer->len, xfer->tx_buf, xfer->rx_buf,
		xfer->bits_per_word);
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	/* Enable relevant interrupts */
	spi_writel(as, IER, SPI_BIT(RDRF) | SPI_BIT(OVRES));
}

/*
 * Submit next transfer for DMA.
 */
static int atmel_spi_next_xfer_dma_submit(struct spi_master *master,
				struct spi_transfer *xfer,
				u32 *plen)
{
	struct atmel_spi	*as = spi_master_get_devdata(master);
	struct dma_chan		*rxchan = as->dma.chan_rx;
	struct dma_chan		*txchan = as->dma.chan_tx;
	struct dma_async_tx_descriptor *rxdesc;
	struct dma_async_tx_descriptor *txdesc;
	struct dma_slave_config	slave_config;
	dma_cookie_t		cookie;
	u32	len = *plen;

	dev_vdbg(master->dev.parent, "atmel_spi_next_xfer_dma_submit\n");

	/* Check that the channels are available */
	if (!rxchan || !txchan)
		return -ENODEV;

	/* release lock for DMA operations */
	atmel_spi_unlock(as);

	/* prepare the RX dma transfer */
	sg_init_table(&as->dma.sgrx, 1);
	if (xfer->rx_buf) {
		as->dma.sgrx.dma_address = xfer->rx_dma + xfer->len - *plen;
	} else {
		as->dma.sgrx.dma_address = as->buffer_dma;
		if (len > BUFFER_SIZE)
			len = BUFFER_SIZE;
	}

	/* prepare the TX dma transfer */
	sg_init_table(&as->dma.sgtx, 1);
	if (xfer->tx_buf) {
		as->dma.sgtx.dma_address = xfer->tx_dma + xfer->len - *plen;
	} else {
		as->dma.sgtx.dma_address = as->buffer_dma;
		if (len > BUFFER_SIZE)
			len = BUFFER_SIZE;
		memset(as->buffer, 0, len);
	}

	sg_dma_len(&as->dma.sgtx) = len;
	sg_dma_len(&as->dma.sgrx) = len;

	*plen = len;

	if (atmel_spi_dma_slave_config(as, &slave_config, 8))
		goto err_exit;

	/* Send both scatterlists */
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	rxdesc = dmaengine_prep_slave_sg(rxchan, &as->dma.sgrx, 1,
					 DMA_FROM_DEVICE,
					 DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
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	if (!rxdesc)
		goto err_dma;

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	txdesc = dmaengine_prep_slave_sg(txchan, &as->dma.sgtx, 1,
					 DMA_TO_DEVICE,
					 DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
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	if (!txdesc)
		goto err_dma;

	dev_dbg(master->dev.parent,
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		"  start dma xfer %p: len %u tx %p/%08llx rx %p/%08llx\n",
		xfer, xfer->len, xfer->tx_buf, (unsigned long long)xfer->tx_dma,
		xfer->rx_buf, (unsigned long long)xfer->rx_dma);
614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643

	/* Enable relevant interrupts */
	spi_writel(as, IER, SPI_BIT(OVRES));

	/* Put the callback on the RX transfer only, that should finish last */
	rxdesc->callback = dma_callback;
	rxdesc->callback_param = master;

	/* Submit and fire RX and TX with TX last so we're ready to read! */
	cookie = rxdesc->tx_submit(rxdesc);
	if (dma_submit_error(cookie))
		goto err_dma;
	cookie = txdesc->tx_submit(txdesc);
	if (dma_submit_error(cookie))
		goto err_dma;
	rxchan->device->device_issue_pending(rxchan);
	txchan->device->device_issue_pending(txchan);

	/* take back lock */
	atmel_spi_lock(as);
	return 0;

err_dma:
	spi_writel(as, IDR, SPI_BIT(OVRES));
	atmel_spi_stop_dma(as);
err_exit:
	atmel_spi_lock(as);
	return -ENOMEM;
}

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static void atmel_spi_next_xfer_data(struct spi_master *master,
				struct spi_transfer *xfer,
				dma_addr_t *tx_dma,
				dma_addr_t *rx_dma,
				u32 *plen)
{
	struct atmel_spi	*as = spi_master_get_devdata(master);
	u32			len = *plen;

	/* use scratch buffer only when rx or tx data is unspecified */
	if (xfer->rx_buf)
655
		*rx_dma = xfer->rx_dma + xfer->len - *plen;
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	else {
		*rx_dma = as->buffer_dma;
		if (len > BUFFER_SIZE)
			len = BUFFER_SIZE;
	}
661

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	if (xfer->tx_buf)
663
		*tx_dma = xfer->tx_dma + xfer->len - *plen;
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	else {
		*tx_dma = as->buffer_dma;
		if (len > BUFFER_SIZE)
			len = BUFFER_SIZE;
		memset(as->buffer, 0, len);
		dma_sync_single_for_device(&as->pdev->dev,
				as->buffer_dma, len, DMA_TO_DEVICE);
	}

	*plen = len;
}

676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723
static int atmel_spi_set_xfer_speed(struct atmel_spi *as,
				    struct spi_device *spi,
				    struct spi_transfer *xfer)
{
	u32			scbr, csr;
	unsigned long		bus_hz;

	/* v1 chips start out at half the peripheral bus speed. */
	bus_hz = clk_get_rate(as->clk);
	if (!atmel_spi_is_v2(as))
		bus_hz /= 2;

	/*
	 * Calculate the lowest divider that satisfies the
	 * constraint, assuming div32/fdiv/mbz == 0.
	 */
	if (xfer->speed_hz)
		scbr = DIV_ROUND_UP(bus_hz, xfer->speed_hz);
	else
		/*
		 * This can happend if max_speed is null.
		 * In this case, we set the lowest possible speed
		 */
		scbr = 0xff;

	/*
	 * If the resulting divider doesn't fit into the
	 * register bitfield, we can't satisfy the constraint.
	 */
	if (scbr >= (1 << SPI_SCBR_SIZE)) {
		dev_err(&spi->dev,
			"setup: %d Hz too slow, scbr %u; min %ld Hz\n",
			xfer->speed_hz, scbr, bus_hz/255);
		return -EINVAL;
	}
	if (scbr == 0) {
		dev_err(&spi->dev,
			"setup: %d Hz too high, scbr %u; max %ld Hz\n",
			xfer->speed_hz, scbr, bus_hz);
		return -EINVAL;
	}
	csr = spi_readl(as, CSR0 + 4 * spi->chip_select);
	csr = SPI_BFINS(SCBR, scbr, csr);
	spi_writel(as, CSR0 + 4 * spi->chip_select, csr);

	return 0;
}

724
/*
725
 * Submit next transfer for PDC.
726 727
 * lock is held, spi irq is blocked
 */
728
static void atmel_spi_pdc_next_xfer(struct spi_master *master,
729 730
					struct spi_message *msg,
					struct spi_transfer *xfer)
731 732
{
	struct atmel_spi	*as = spi_master_get_devdata(master);
733
	u32			len;
734 735
	dma_addr_t		tx_dma, rx_dma;

736
	spi_writel(as, PTCR, SPI_BIT(RXTDIS) | SPI_BIT(TXTDIS));
737

738 739 740
	len = as->current_remaining_bytes;
	atmel_spi_next_xfer_data(master, xfer, &tx_dma, &rx_dma, &len);
	as->current_remaining_bytes -= len;
741

742 743
	spi_writel(as, RPR, rx_dma);
	spi_writel(as, TPR, tx_dma);
744

745 746 747 748
	if (msg->spi->bits_per_word > 8)
		len >>= 1;
	spi_writel(as, RCR, len);
	spi_writel(as, TCR, len);
749

750 751 752 753 754
	dev_dbg(&msg->spi->dev,
		"  start xfer %p: len %u tx %p/%08llx rx %p/%08llx\n",
		xfer, xfer->len, xfer->tx_buf,
		(unsigned long long)xfer->tx_dma, xfer->rx_buf,
		(unsigned long long)xfer->rx_dma);
755

756 757
	if (as->current_remaining_bytes) {
		len = as->current_remaining_bytes;
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		atmel_spi_next_xfer_data(master, xfer, &tx_dma, &rx_dma, &len);
759
		as->current_remaining_bytes -= len;
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		spi_writel(as, RNPR, rx_dma);
		spi_writel(as, TNPR, tx_dma);
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		if (msg->spi->bits_per_word > 8)
			len >>= 1;
		spi_writel(as, RNCR, len);
		spi_writel(as, TNCR, len);
768 769

		dev_dbg(&msg->spi->dev,
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			"  next xfer %p: len %u tx %p/%08llx rx %p/%08llx\n",
			xfer, xfer->len, xfer->tx_buf,
			(unsigned long long)xfer->tx_dma, xfer->rx_buf,
			(unsigned long long)xfer->rx_dma);
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	}

	/* REVISIT: We're waiting for ENDRX before we start the next
777 778 779 780 781 782 783 784 785
	 * transfer because we need to handle some difficult timing
	 * issues otherwise. If we wait for ENDTX in one transfer and
	 * then starts waiting for ENDRX in the next, it's difficult
	 * to tell the difference between the ENDRX interrupt we're
	 * actually waiting for and the ENDRX interrupt of the
	 * previous transfer.
	 *
	 * It should be doable, though. Just not now...
	 */
786
	spi_writel(as, IER, SPI_BIT(ENDRX) | SPI_BIT(OVRES));
787 788 789
	spi_writel(as, PTCR, SPI_BIT(TXTEN) | SPI_BIT(RXTEN));
}

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/*
 * For DMA, tx_buf/tx_dma have the same relationship as rx_buf/rx_dma:
 *  - The buffer is either valid for CPU access, else NULL
793
 *  - If the buffer is valid, so is its DMA address
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 *
795
 * This driver manages the dma address unless message->is_dma_mapped.
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 */
static int
798 799
atmel_spi_dma_map_xfer(struct atmel_spi *as, struct spi_transfer *xfer)
{
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	struct device	*dev = &as->pdev->dev;

802
	xfer->tx_dma = xfer->rx_dma = INVALID_DMA_ADDRESS;
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	if (xfer->tx_buf) {
804 805 806 807
		/* tx_buf is a const void* where we need a void * for the dma
		 * mapping */
		void *nonconst_tx = (void *)xfer->tx_buf;

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		xfer->tx_dma = dma_map_single(dev,
809
				nonconst_tx, xfer->len,
810
				DMA_TO_DEVICE);
811
		if (dma_mapping_error(dev, xfer->tx_dma))
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			return -ENOMEM;
	}
	if (xfer->rx_buf) {
		xfer->rx_dma = dma_map_single(dev,
816 817
				xfer->rx_buf, xfer->len,
				DMA_FROM_DEVICE);
818
		if (dma_mapping_error(dev, xfer->rx_dma)) {
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			if (xfer->tx_buf)
				dma_unmap_single(dev,
						xfer->tx_dma, xfer->len,
						DMA_TO_DEVICE);
			return -ENOMEM;
		}
	}
	return 0;
827 828 829 830 831 832
}

static void atmel_spi_dma_unmap_xfer(struct spi_master *master,
				     struct spi_transfer *xfer)
{
	if (xfer->tx_dma != INVALID_DMA_ADDRESS)
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		dma_unmap_single(master->dev.parent, xfer->tx_dma,
834 835
				 xfer->len, DMA_TO_DEVICE);
	if (xfer->rx_dma != INVALID_DMA_ADDRESS)
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836
		dma_unmap_single(master->dev.parent, xfer->rx_dma,
837 838 839
				 xfer->len, DMA_FROM_DEVICE);
}

840 841 842 843 844 845 846 847 848 849 850 851 852 853
static void atmel_spi_disable_pdc_transfer(struct atmel_spi *as)
{
	spi_writel(as, PTCR, SPI_BIT(RXTDIS) | SPI_BIT(TXTDIS));
}

/* Called from IRQ
 *
 * Must update "current_remaining_bytes" to keep track of data
 * to transfer.
 */
static void
atmel_spi_pump_pio_data(struct atmel_spi *as, struct spi_transfer *xfer)
{
	u8		*rxp;
854
	u16		*rxp16;
855 856 857
	unsigned long	xfer_pos = xfer->len - as->current_remaining_bytes;

	if (xfer->rx_buf) {
858 859 860 861 862 863 864
		if (xfer->bits_per_word > 8) {
			rxp16 = (u16 *)(((u8 *)xfer->rx_buf) + xfer_pos);
			*rxp16 = spi_readl(as, RDR);
		} else {
			rxp = ((u8 *)xfer->rx_buf) + xfer_pos;
			*rxp = spi_readl(as, RDR);
		}
865 866 867
	} else {
		spi_readl(as, RDR);
	}
868
	if (xfer->bits_per_word > 8) {
869 870 871
		if (as->current_remaining_bytes > 2)
			as->current_remaining_bytes -= 2;
		else
872 873 874 875
			as->current_remaining_bytes = 0;
	} else {
		as->current_remaining_bytes--;
	}
876 877 878 879 880
}

/* Interrupt
 *
 * No need for locking in this Interrupt handler: done_status is the
881
 * only information modified.
882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915
 */
static irqreturn_t
atmel_spi_pio_interrupt(int irq, void *dev_id)
{
	struct spi_master	*master = dev_id;
	struct atmel_spi	*as = spi_master_get_devdata(master);
	u32			status, pending, imr;
	struct spi_transfer	*xfer;
	int			ret = IRQ_NONE;

	imr = spi_readl(as, IMR);
	status = spi_readl(as, SR);
	pending = status & imr;

	if (pending & SPI_BIT(OVRES)) {
		ret = IRQ_HANDLED;
		spi_writel(as, IDR, SPI_BIT(OVRES));
		dev_warn(master->dev.parent, "overrun\n");

		/*
		 * When we get an overrun, we disregard the current
		 * transfer. Data will not be copied back from any
		 * bounce buffer and msg->actual_len will not be
		 * updated with the last xfer.
		 *
		 * We will also not process any remaning transfers in
		 * the message.
		 */
		as->done_status = -EIO;
		smp_wmb();

		/* Clear any overrun happening while cleaning up */
		spi_readl(as, SR);

916
		complete(&as->xfer_completion);
917 918 919 920 921 922 923 924

	} else if (pending & SPI_BIT(RDRF)) {
		atmel_spi_lock(as);

		if (as->current_remaining_bytes) {
			ret = IRQ_HANDLED;
			xfer = as->current_transfer;
			atmel_spi_pump_pio_data(as, xfer);
925
			if (!as->current_remaining_bytes)
926
				spi_writel(as, IDR, pending);
927 928

			complete(&as->xfer_completion);
929 930 931 932 933 934 935 936 937 938
		}

		atmel_spi_unlock(as);
	} else {
		WARN_ONCE(pending, "IRQ not handled, pending = %x\n", pending);
		ret = IRQ_HANDLED;
		spi_writel(as, IDR, pending);
	}

	return ret;
939 940 941
}

static irqreturn_t
942
atmel_spi_pdc_interrupt(int irq, void *dev_id)
943 944 945 946 947 948 949 950 951 952 953 954 955 956
{
	struct spi_master	*master = dev_id;
	struct atmel_spi	*as = spi_master_get_devdata(master);
	u32			status, pending, imr;
	int			ret = IRQ_NONE;

	imr = spi_readl(as, IMR);
	status = spi_readl(as, SR);
	pending = status & imr;

	if (pending & SPI_BIT(OVRES)) {

		ret = IRQ_HANDLED;

957
		spi_writel(as, IDR, (SPI_BIT(RXBUFF) | SPI_BIT(ENDRX)
958 959 960 961 962
				     | SPI_BIT(OVRES)));

		/* Clear any overrun happening while cleaning up */
		spi_readl(as, SR);

963
		as->done_status = -EIO;
964 965 966

		complete(&as->xfer_completion);

967
	} else if (pending & (SPI_BIT(RXBUFF) | SPI_BIT(ENDRX))) {
968 969 970 971
		ret = IRQ_HANDLED;

		spi_writel(as, IDR, pending);

972
		complete(&as->xfer_completion);
973 974 975 976 977 978 979 980
	}

	return ret;
}

static int atmel_spi_setup(struct spi_device *spi)
{
	struct atmel_spi	*as;
981
	struct atmel_spi_device	*asd;
982
	u32			csr;
983 984 985 986 987 988
	unsigned int		bits = spi->bits_per_word;
	unsigned int		npcs_pin;
	int			ret;

	as = spi_master_get_devdata(spi->master);

989
	/* see notes above re chipselect */
990
	if (!atmel_spi_is_v2(as)
991 992 993 994 995 996
			&& spi->chip_select == 0
			&& (spi->mode & SPI_CS_HIGH)) {
		dev_dbg(&spi->dev, "setup: can't be active-high\n");
		return -EINVAL;
	}

997
	csr = SPI_BF(BITS, bits - 8);
998 999 1000 1001 1002
	if (spi->mode & SPI_CPOL)
		csr |= SPI_BIT(CPOL);
	if (!(spi->mode & SPI_CPHA))
		csr |= SPI_BIT(NCPHA);

1003 1004 1005 1006 1007 1008 1009 1010
	/* DLYBS is mostly irrelevant since we manage chipselect using GPIOs.
	 *
	 * DLYBCT would add delays between words, slowing down transfers.
	 * It could potentially be useful to cope with DMA bottlenecks, but
	 * in those cases it's probably best to just use a lower bitrate.
	 */
	csr |= SPI_BF(DLYBS, 0);
	csr |= SPI_BF(DLYBCT, 0);
1011 1012

	/* chipselect must have been muxed as GPIO (e.g. in board setup) */
1013
	npcs_pin = (unsigned long)spi->controller_data;
1014 1015 1016 1017

	if (gpio_is_valid(spi->cs_gpio))
		npcs_pin = spi->cs_gpio;

1018 1019 1020 1021 1022 1023
	asd = spi->controller_state;
	if (!asd) {
		asd = kzalloc(sizeof(struct atmel_spi_device), GFP_KERNEL);
		if (!asd)
			return -ENOMEM;

1024
		ret = gpio_request(npcs_pin, dev_name(&spi->dev));
1025 1026
		if (ret) {
			kfree(asd);
1027
			return ret;
1028 1029 1030 1031
		}

		asd->npcs_pin = npcs_pin;
		spi->controller_state = asd;
1032
		gpio_direction_output(npcs_pin, !(spi->mode & SPI_CS_HIGH));
1033 1034
	}

1035 1036
	asd->csr = csr;

1037
	dev_dbg(&spi->dev,
1038 1039
		"setup: bpw %u mode 0x%x -> csr%d %08x\n",
		bits, spi->mode, spi->chip_select, csr);
1040

1041
	if (!atmel_spi_is_v2(as))
1042
		spi_writel(as, CSR0 + 4 * spi->chip_select, csr);
1043 1044 1045 1046

	return 0;
}

1047 1048 1049
static int atmel_spi_one_transfer(struct spi_master *master,
					struct spi_message *msg,
					struct spi_transfer *xfer)
1050 1051
{
	struct atmel_spi	*as;
1052
	struct spi_device	*spi = msg->spi;
1053
	u8			bits;
1054
	u32			len;
1055
	struct atmel_spi_device	*asd;
1056 1057
	int			timeout;
	int			ret;
1058

1059
	as = spi_master_get_devdata(master);
1060

1061 1062
	if (!(xfer->tx_buf || xfer->rx_buf) && xfer->len) {
		dev_dbg(&spi->dev, "missing rx or tx buf\n");
1063
		return -EINVAL;
1064
	}
1065

1066 1067 1068 1069 1070 1071 1072 1073 1074
	if (xfer->bits_per_word) {
		asd = spi->controller_state;
		bits = (asd->csr >> 4) & 0xf;
		if (bits != xfer->bits_per_word - 8) {
			dev_dbg(&spi->dev,
			"you can't yet change bits_per_word in transfers\n");
			return -ENOPROTOOPT;
		}
	}
1075

1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086
	/*
	 * DMA map early, for performance (empties dcache ASAP) and
	 * better fault reporting.
	 */
	if ((!msg->is_dma_mapped)
		&& (atmel_spi_use_dma(as, xfer)	|| as->use_pdc)) {
		if (atmel_spi_dma_map_xfer(as, xfer) < 0)
			return -ENOMEM;
	}

	atmel_spi_set_xfer_speed(as, msg->spi, xfer);
1087

1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105
	as->done_status = 0;
	as->current_transfer = xfer;
	as->current_remaining_bytes = xfer->len;
	while (as->current_remaining_bytes) {
		reinit_completion(&as->xfer_completion);

		if (as->use_pdc) {
			atmel_spi_pdc_next_xfer(master, msg, xfer);
		} else if (atmel_spi_use_dma(as, xfer)) {
			len = as->current_remaining_bytes;
			ret = atmel_spi_next_xfer_dma_submit(master,
								xfer, &len);
			if (ret) {
				dev_err(&spi->dev,
					"unable to use DMA, fallback to PIO\n");
				atmel_spi_next_xfer_pio(master, xfer);
			} else {
				as->current_remaining_bytes -= len;
1106 1107
				if (as->current_remaining_bytes < 0)
					as->current_remaining_bytes = 0;
1108
			}
1109 1110
		} else {
			atmel_spi_next_xfer_pio(master, xfer);
1111 1112
		}

1113 1114
		/* interrupts are disabled, so free the lock for schedule */
		atmel_spi_unlock(as);
1115 1116
		ret = wait_for_completion_timeout(&as->xfer_completion,
							SPI_DMA_TIMEOUT);
1117
		atmel_spi_lock(as);
1118 1119 1120 1121 1122 1123
		if (WARN_ON(ret == 0)) {
			dev_err(&spi->dev,
				"spi trasfer timeout, err %d\n", ret);
			as->done_status = -EIO;
		} else {
			ret = 0;
1124 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 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187
		if (as->done_status)
			break;
	}

	if (as->done_status) {
		if (as->use_pdc) {
			dev_warn(master->dev.parent,
				"overrun (%u/%u remaining)\n",
				spi_readl(as, TCR), spi_readl(as, RCR));

			/*
			 * Clean up DMA registers and make sure the data
			 * registers are empty.
			 */
			spi_writel(as, RNCR, 0);
			spi_writel(as, TNCR, 0);
			spi_writel(as, RCR, 0);
			spi_writel(as, TCR, 0);
			for (timeout = 1000; timeout; timeout--)
				if (spi_readl(as, SR) & SPI_BIT(TXEMPTY))
					break;
			if (!timeout)
				dev_warn(master->dev.parent,
					 "timeout waiting for TXEMPTY");
			while (spi_readl(as, SR) & SPI_BIT(RDRF))
				spi_readl(as, RDR);

			/* Clear any overrun happening while cleaning up */
			spi_readl(as, SR);

		} else if (atmel_spi_use_dma(as, xfer)) {
			atmel_spi_stop_dma(as);
		}

		if (!msg->is_dma_mapped
			&& (atmel_spi_use_dma(as, xfer) || as->use_pdc))
			atmel_spi_dma_unmap_xfer(master, xfer);

		return 0;

	} else {
		/* only update length if no error */
		msg->actual_length += xfer->len;
	}

	if (!msg->is_dma_mapped
		&& (atmel_spi_use_dma(as, xfer) || as->use_pdc))
		atmel_spi_dma_unmap_xfer(master, xfer);

	if (xfer->delay_usecs)
		udelay(xfer->delay_usecs);

	if (xfer->cs_change) {
		if (list_is_last(&xfer->transfer_list,
				 &msg->transfers)) {
			as->keep_cs = true;
		} else {
			as->cs_active = !as->cs_active;
			if (as->cs_active)
				cs_activate(as, msg->spi);
			else
				cs_deactivate(as, msg->spi);
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		}
1189 1190
	}

1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224
	return 0;
}

static int atmel_spi_transfer_one_message(struct spi_master *master,
						struct spi_message *msg)
{
	struct atmel_spi *as;
	struct spi_transfer *xfer;
	struct spi_device *spi = msg->spi;
	int ret = 0;

	as = spi_master_get_devdata(master);

	dev_dbg(&spi->dev, "new message %p submitted for %s\n",
					msg, dev_name(&spi->dev));

	atmel_spi_lock(as);
	cs_activate(as, spi);

	as->cs_active = true;
	as->keep_cs = false;

	msg->status = 0;
	msg->actual_length = 0;

	list_for_each_entry(xfer, &msg->transfers, transfer_list) {
		ret = atmel_spi_one_transfer(master, msg, xfer);
		if (ret)
			goto msg_done;
	}

	if (as->use_pdc)
		atmel_spi_disable_pdc_transfer(as);

1225
	list_for_each_entry(xfer, &msg->transfers, transfer_list) {
1226
		dev_dbg(&spi->dev,
1227
			"  xfer %p: len %u tx %p/%pad rx %p/%pad\n",
1228
			xfer, xfer->len,
1229 1230
			xfer->tx_buf, &xfer->tx_dma,
			xfer->rx_buf, &xfer->rx_dma);
1231 1232
	}

1233 1234 1235
msg_done:
	if (!as->keep_cs)
		cs_deactivate(as, msg->spi);
1236

1237
	atmel_spi_unlock(as);
1238

1239 1240 1241 1242
	msg->status = as->done_status;
	spi_finalize_current_message(spi->master);

	return ret;
1243 1244
}

1245
static void atmel_spi_cleanup(struct spi_device *spi)
1246
{
1247
	struct atmel_spi_device	*asd = spi->controller_state;
1248
	unsigned		gpio = (unsigned long) spi->controller_data;
1249

1250
	if (!asd)
1251 1252
		return;

1253
	spi->controller_state = NULL;
1254
	gpio_free(gpio);
1255
	kfree(asd);
1256 1257
}

1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274
static inline unsigned int atmel_get_version(struct atmel_spi *as)
{
	return spi_readl(as, VERSION) & 0x00000fff;
}

static void atmel_get_caps(struct atmel_spi *as)
{
	unsigned int version;

	version = atmel_get_version(as);
	dev_info(&as->pdev->dev, "version: 0x%x\n", version);

	as->caps.is_spi2 = version > 0x121;
	as->caps.has_wdrbt = version >= 0x210;
	as->caps.has_dma_support = version >= 0x212;
}

1275 1276
/*-------------------------------------------------------------------------*/

1277
static int atmel_spi_probe(struct platform_device *pdev)
1278 1279 1280 1281 1282 1283 1284 1285
{
	struct resource		*regs;
	int			irq;
	struct clk		*clk;
	int			ret;
	struct spi_master	*master;
	struct atmel_spi	*as;

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	/* Select default pin state */
	pinctrl_pm_select_default_state(&pdev->dev);

1289 1290 1291 1292 1293 1294 1295 1296
	regs = platform_get_resource(pdev, IORESOURCE_MEM, 0);
	if (!regs)
		return -ENXIO;

	irq = platform_get_irq(pdev, 0);
	if (irq < 0)
		return irq;

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	clk = devm_clk_get(&pdev->dev, "spi_clk");
1298 1299 1300 1301 1302
	if (IS_ERR(clk))
		return PTR_ERR(clk);

	/* setup spi core then atmel-specific driver state */
	ret = -ENOMEM;
1303
	master = spi_alloc_master(&pdev->dev, sizeof(*as));
1304 1305 1306
	if (!master)
		goto out_free;

1307 1308
	/* the spi->mode bits understood by this driver: */
	master->mode_bits = SPI_CPOL | SPI_CPHA | SPI_CS_HIGH;
1309
	master->bits_per_word_mask = SPI_BPW_RANGE_MASK(8, 16);
1310
	master->dev.of_node = pdev->dev.of_node;
1311
	master->bus_num = pdev->id;
1312
	master->num_chipselect = master->dev.of_node ? 0 : 4;
1313
	master->setup = atmel_spi_setup;
1314
	master->transfer_one_message = atmel_spi_transfer_one_message;
1315 1316 1317 1318 1319
	master->cleanup = atmel_spi_cleanup;
	platform_set_drvdata(pdev, master);

	as = spi_master_get_devdata(master);

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	/*
	 * Scratch buffer is used for throwaway rx and tx data.
	 * It's coherent to minimize dcache pollution.
	 */
1324 1325 1326 1327 1328 1329
	as->buffer = dma_alloc_coherent(&pdev->dev, BUFFER_SIZE,
					&as->buffer_dma, GFP_KERNEL);
	if (!as->buffer)
		goto out_free;

	spin_lock_init(&as->lock);
1330

1331
	as->pdev = pdev;
1332
	as->regs = devm_ioremap_resource(&pdev->dev, regs);
1333 1334
	if (IS_ERR(as->regs)) {
		ret = PTR_ERR(as->regs);
1335
		goto out_free_buffer;
1336
	}
1337
	as->phybase = regs->start;
1338 1339 1340
	as->irq = irq;
	as->clk = clk;

1341 1342
	init_completion(&as->xfer_completion);

1343 1344
	atmel_get_caps(as);

1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357
	as->use_dma = false;
	as->use_pdc = false;
	if (as->caps.has_dma_support) {
		if (atmel_spi_configure_dma(as) == 0)
			as->use_dma = true;
	} else {
		as->use_pdc = true;
	}

	if (as->caps.has_dma_support && !as->use_dma)
		dev_info(&pdev->dev, "Atmel SPI Controller using PIO only\n");

	if (as->use_pdc) {
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		ret = devm_request_irq(&pdev->dev, irq, atmel_spi_pdc_interrupt,
					0, dev_name(&pdev->dev), master);
1360
	} else {
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		ret = devm_request_irq(&pdev->dev, irq, atmel_spi_pio_interrupt,
					0, dev_name(&pdev->dev), master);
1363
	}
1364 1365 1366 1367
	if (ret)
		goto out_unmap_regs;

	/* Initialize the hardware */
1368 1369
	ret = clk_prepare_enable(clk);
	if (ret)
1370
		goto out_free_irq;
1371
	spi_writel(as, CR, SPI_BIT(SWRST));
1372
	spi_writel(as, CR, SPI_BIT(SWRST)); /* AT91SAM9263 Rev B workaround */
1373 1374 1375 1376 1377 1378
	if (as->caps.has_wdrbt) {
		spi_writel(as, MR, SPI_BIT(WDRBT) | SPI_BIT(MODFDIS)
				| SPI_BIT(MSTR));
	} else {
		spi_writel(as, MR, SPI_BIT(MSTR) | SPI_BIT(MODFDIS));
	}
1379 1380 1381

	if (as->use_pdc)
		spi_writel(as, PTCR, SPI_BIT(RXTDIS) | SPI_BIT(TXTDIS));
1382 1383 1384 1385 1386 1387
	spi_writel(as, CR, SPI_BIT(SPIEN));

	/* go! */
	dev_info(&pdev->dev, "Atmel SPI Controller at 0x%08lx (irq %d)\n",
			(unsigned long)regs->start, irq);

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	ret = devm_spi_register_master(&pdev->dev, master);
1389
	if (ret)
1390
		goto out_free_dma;
1391 1392 1393

	return 0;

1394 1395 1396 1397
out_free_dma:
	if (as->use_dma)
		atmel_spi_release_dma(as);

1398
	spi_writel(as, CR, SPI_BIT(SWRST));
1399
	spi_writel(as, CR, SPI_BIT(SWRST)); /* AT91SAM9263 Rev B workaround */
1400
	clk_disable_unprepare(clk);
1401
out_free_irq:
1402 1403 1404 1405 1406 1407 1408 1409 1410
out_unmap_regs:
out_free_buffer:
	dma_free_coherent(&pdev->dev, BUFFER_SIZE, as->buffer,
			as->buffer_dma);
out_free:
	spi_master_put(master);
	return ret;
}

1411
static int atmel_spi_remove(struct platform_device *pdev)
1412 1413 1414 1415 1416 1417
{
	struct spi_master	*master = platform_get_drvdata(pdev);
	struct atmel_spi	*as = spi_master_get_devdata(master);

	/* reset the hardware and block queue progress */
	spin_lock_irq(&as->lock);
1418 1419 1420 1421 1422
	if (as->use_dma) {
		atmel_spi_stop_dma(as);
		atmel_spi_release_dma(as);
	}

1423
	spi_writel(as, CR, SPI_BIT(SWRST));
1424
	spi_writel(as, CR, SPI_BIT(SWRST)); /* AT91SAM9263 Rev B workaround */
1425 1426 1427 1428 1429 1430
	spi_readl(as, SR);
	spin_unlock_irq(&as->lock);

	dma_free_coherent(&pdev->dev, BUFFER_SIZE, as->buffer,
			as->buffer_dma);

1431
	clk_disable_unprepare(as->clk);
1432 1433 1434 1435

	return 0;
}

1436 1437
#ifdef CONFIG_PM_SLEEP
static int atmel_spi_suspend(struct device *dev)
1438
{
1439
	struct spi_master	*master = dev_get_drvdata(dev);
1440
	struct atmel_spi	*as = spi_master_get_devdata(master);
1441 1442 1443 1444 1445 1446 1447 1448
	int ret;

	/* Stop the queue running */
	ret = spi_master_suspend(master);
	if (ret) {
		dev_warn(dev, "cannot suspend master\n");
		return ret;
	}
1449

1450
	clk_disable_unprepare(as->clk);
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1451 1452 1453

	pinctrl_pm_select_sleep_state(dev);

1454 1455 1456
	return 0;
}

1457
static int atmel_spi_resume(struct device *dev)
1458
{
1459
	struct spi_master	*master = dev_get_drvdata(dev);
1460
	struct atmel_spi	*as = spi_master_get_devdata(master);
1461
	int ret;
1462

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Wenyou Yang 已提交
1463
	pinctrl_pm_select_default_state(dev);
1464

1465
	clk_prepare_enable(as->clk);
1466 1467 1468 1469 1470 1471 1472

	/* Start the queue running */
	ret = spi_master_resume(master);
	if (ret)
		dev_err(dev, "problem starting queue (%d)\n", ret);

	return ret;
1473 1474
}

1475 1476 1477
static SIMPLE_DEV_PM_OPS(atmel_spi_pm_ops, atmel_spi_suspend, atmel_spi_resume);

#define ATMEL_SPI_PM_OPS	(&atmel_spi_pm_ops)
1478
#else
1479
#define ATMEL_SPI_PM_OPS	NULL
1480 1481
#endif

1482 1483 1484 1485 1486 1487 1488 1489
#if defined(CONFIG_OF)
static const struct of_device_id atmel_spi_dt_ids[] = {
	{ .compatible = "atmel,at91rm9200-spi" },
	{ /* sentinel */ }
};

MODULE_DEVICE_TABLE(of, atmel_spi_dt_ids);
#endif
1490 1491 1492 1493 1494

static struct platform_driver atmel_spi_driver = {
	.driver		= {
		.name	= "atmel_spi",
		.owner	= THIS_MODULE,
1495
		.pm	= ATMEL_SPI_PM_OPS,
1496
		.of_match_table	= of_match_ptr(atmel_spi_dt_ids),
1497
	},
1498
	.probe		= atmel_spi_probe,
1499
	.remove		= atmel_spi_remove,
1500
};
1501
module_platform_driver(atmel_spi_driver);
1502 1503

MODULE_DESCRIPTION("Atmel AT32/AT91 SPI Controller driver");
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1504
MODULE_AUTHOR("Haavard Skinnemoen (Atmel)");
1505
MODULE_LICENSE("GPL");
1506
MODULE_ALIAS("platform:atmel_spi");