sh-sci.c 51.4 KB
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/*
 * SuperH on-chip serial module support.  (SCI with no FIFO / with FIFO)
 *
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 *  Copyright (C) 2002 - 2011  Paul Mundt
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 *  Modified to support SH7720 SCIF. Markus Brunner, Mark Jonas (Jul 2007).
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 *
 * based off of the old drivers/char/sh-sci.c by:
 *
 *   Copyright (C) 1999, 2000  Niibe Yutaka
 *   Copyright (C) 2000  Sugioka Toshinobu
 *   Modified to support multiple serial ports. Stuart Menefy (May 2000).
 *   Modified to support SecureEdge. David McCullough (2002)
 *   Modified to support SH7300 SCIF. Takashi Kusuda (Jun 2003).
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 *   Removed SH7300 support (Jul 2007).
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 *
 * This file is subject to the terms and conditions of the GNU General Public
 * License.  See the file "COPYING" in the main directory of this archive
 * for more details.
 */
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#if defined(CONFIG_SERIAL_SH_SCI_CONSOLE) && defined(CONFIG_MAGIC_SYSRQ)
#define SUPPORT_SYSRQ
#endif
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#undef DEBUG

#include <linux/module.h>
#include <linux/errno.h>
#include <linux/timer.h>
#include <linux/interrupt.h>
#include <linux/tty.h>
#include <linux/tty_flip.h>
#include <linux/serial.h>
#include <linux/major.h>
#include <linux/string.h>
#include <linux/sysrq.h>
#include <linux/ioport.h>
#include <linux/mm.h>
#include <linux/init.h>
#include <linux/delay.h>
#include <linux/console.h>
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#include <linux/platform_device.h>
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#include <linux/serial_sci.h>
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#include <linux/notifier.h>
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#include <linux/pm_runtime.h>
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#include <linux/cpufreq.h>
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#include <linux/clk.h>
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#include <linux/ctype.h>
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#include <linux/err.h>
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#include <linux/dmaengine.h>
#include <linux/scatterlist.h>
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#include <linux/slab.h>
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#ifdef CONFIG_SUPERH
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#include <asm/sh_bios.h>
#endif

#include "sh-sci.h"

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struct sci_port {
	struct uart_port	port;

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	/* Platform configuration */
	struct plat_sci_port	*cfg;
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	/* Port enable callback */
	void			(*enable)(struct uart_port *port);

	/* Port disable callback */
	void			(*disable)(struct uart_port *port);

	/* Break timer */
	struct timer_list	break_timer;
	int			break_flag;
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	/* Interface clock */
	struct clk		*iclk;
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	/* Function clock */
	struct clk		*fclk;
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	struct dma_chan			*chan_tx;
	struct dma_chan			*chan_rx;
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#ifdef CONFIG_SERIAL_SH_SCI_DMA
	struct dma_async_tx_descriptor	*desc_tx;
	struct dma_async_tx_descriptor	*desc_rx[2];
	dma_cookie_t			cookie_tx;
	dma_cookie_t			cookie_rx[2];
	dma_cookie_t			active_rx;
	struct scatterlist		sg_tx;
	unsigned int			sg_len_tx;
	struct scatterlist		sg_rx[2];
	size_t				buf_len_rx;
	struct sh_dmae_slave		param_tx;
	struct sh_dmae_slave		param_rx;
	struct work_struct		work_tx;
	struct work_struct		work_rx;
	struct timer_list		rx_timer;
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	unsigned int			rx_timeout;
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#endif
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	struct notifier_block		freq_transition;
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};

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/* Function prototypes */
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static void sci_start_tx(struct uart_port *port);
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static void sci_stop_tx(struct uart_port *port);
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static void sci_start_rx(struct uart_port *port);
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#define SCI_NPORTS CONFIG_SERIAL_SH_SCI_NR_UARTS
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static struct sci_port sci_ports[SCI_NPORTS];
static struct uart_driver sci_uart_driver;
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static inline struct sci_port *
to_sci_port(struct uart_port *uart)
{
	return container_of(uart, struct sci_port, port);
}

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struct plat_sci_reg {
	u8 offset, size;
};

/* Helper for invalidating specific entries of an inherited map. */
#define sci_reg_invalid	{ .offset = 0, .size = 0 }

static struct plat_sci_reg sci_regmap[SCIx_NR_REGTYPES][SCIx_NR_REGS] = {
	[SCIx_PROBE_REGTYPE] = {
		[0 ... SCIx_NR_REGS - 1] = sci_reg_invalid,
	},

	/*
	 * Common SCI definitions, dependent on the port's regshift
	 * value.
	 */
	[SCIx_SCI_REGTYPE] = {
		[SCSMR]		= { 0x00,  8 },
		[SCBRR]		= { 0x01,  8 },
		[SCSCR]		= { 0x02,  8 },
		[SCxTDR]	= { 0x03,  8 },
		[SCxSR]		= { 0x04,  8 },
		[SCxRDR]	= { 0x05,  8 },
		[SCFCR]		= sci_reg_invalid,
		[SCFDR]		= sci_reg_invalid,
		[SCTFDR]	= sci_reg_invalid,
		[SCRFDR]	= sci_reg_invalid,
		[SCSPTR]	= sci_reg_invalid,
		[SCLSR]		= sci_reg_invalid,
	},

	/*
	 * Common definitions for legacy IrDA ports, dependent on
	 * regshift value.
	 */
	[SCIx_IRDA_REGTYPE] = {
		[SCSMR]		= { 0x00,  8 },
		[SCBRR]		= { 0x01,  8 },
		[SCSCR]		= { 0x02,  8 },
		[SCxTDR]	= { 0x03,  8 },
		[SCxSR]		= { 0x04,  8 },
		[SCxRDR]	= { 0x05,  8 },
		[SCFCR]		= { 0x06,  8 },
		[SCFDR]		= { 0x07, 16 },
		[SCTFDR]	= sci_reg_invalid,
		[SCRFDR]	= sci_reg_invalid,
		[SCSPTR]	= sci_reg_invalid,
		[SCLSR]		= sci_reg_invalid,
	},

	/*
	 * Common SCIFA definitions.
	 */
	[SCIx_SCIFA_REGTYPE] = {
		[SCSMR]		= { 0x00, 16 },
		[SCBRR]		= { 0x04,  8 },
		[SCSCR]		= { 0x08, 16 },
		[SCxTDR]	= { 0x20,  8 },
		[SCxSR]		= { 0x14, 16 },
		[SCxRDR]	= { 0x24,  8 },
		[SCFCR]		= { 0x18, 16 },
		[SCFDR]		= { 0x1c, 16 },
		[SCTFDR]	= sci_reg_invalid,
		[SCRFDR]	= sci_reg_invalid,
		[SCSPTR]	= sci_reg_invalid,
		[SCLSR]		= sci_reg_invalid,
	},

	/*
	 * Common SCIFB definitions.
	 */
	[SCIx_SCIFB_REGTYPE] = {
		[SCSMR]		= { 0x00, 16 },
		[SCBRR]		= { 0x04,  8 },
		[SCSCR]		= { 0x08, 16 },
		[SCxTDR]	= { 0x40,  8 },
		[SCxSR]		= { 0x14, 16 },
		[SCxRDR]	= { 0x60,  8 },
		[SCFCR]		= { 0x18, 16 },
		[SCFDR]		= { 0x1c, 16 },
		[SCTFDR]	= sci_reg_invalid,
		[SCRFDR]	= sci_reg_invalid,
		[SCSPTR]	= sci_reg_invalid,
		[SCLSR]		= sci_reg_invalid,
	},

	/*
	 * Common SH-3 SCIF definitions.
	 */
	[SCIx_SH3_SCIF_REGTYPE] = {
		[SCSMR]		= { 0x00,  8 },
		[SCBRR]		= { 0x02,  8 },
		[SCSCR]		= { 0x04,  8 },
		[SCxTDR]	= { 0x06,  8 },
		[SCxSR]		= { 0x08, 16 },
		[SCxRDR]	= { 0x0a,  8 },
		[SCFCR]		= { 0x0c,  8 },
		[SCFDR]		= { 0x0e, 16 },
		[SCTFDR]	= sci_reg_invalid,
		[SCRFDR]	= sci_reg_invalid,
		[SCSPTR]	= sci_reg_invalid,
		[SCLSR]		= sci_reg_invalid,
	},

	/*
	 * Common SH-4(A) SCIF(B) definitions.
	 */
	[SCIx_SH4_SCIF_REGTYPE] = {
		[SCSMR]		= { 0x00, 16 },
		[SCBRR]		= { 0x04,  8 },
		[SCSCR]		= { 0x08, 16 },
		[SCxTDR]	= { 0x0c,  8 },
		[SCxSR]		= { 0x10, 16 },
		[SCxRDR]	= { 0x14,  8 },
		[SCFCR]		= { 0x18, 16 },
		[SCFDR]		= { 0x1c, 16 },
		[SCTFDR]	= sci_reg_invalid,
		[SCRFDR]	= sci_reg_invalid,
		[SCSPTR]	= { 0x20, 16 },
		[SCLSR]		= { 0x24, 16 },
	},

	/*
	 * Common SH-4(A) SCIF(B) definitions for ports without an SCSPTR
	 * register.
	 */
	[SCIx_SH4_SCIF_NO_SCSPTR_REGTYPE] = {
		[SCSMR]		= { 0x00, 16 },
		[SCBRR]		= { 0x04,  8 },
		[SCSCR]		= { 0x08, 16 },
		[SCxTDR]	= { 0x0c,  8 },
		[SCxSR]		= { 0x10, 16 },
		[SCxRDR]	= { 0x14,  8 },
		[SCFCR]		= { 0x18, 16 },
		[SCFDR]		= { 0x1c, 16 },
		[SCTFDR]	= sci_reg_invalid,
		[SCRFDR]	= sci_reg_invalid,
		[SCSPTR]	= sci_reg_invalid,
		[SCLSR]		= { 0x24, 16 },
	},

	/*
	 * Common SH-4(A) SCIF(B) definitions for ports with FIFO data
	 * count registers.
	 */
	[SCIx_SH4_SCIF_FIFODATA_REGTYPE] = {
		[SCSMR]		= { 0x00, 16 },
		[SCBRR]		= { 0x04,  8 },
		[SCSCR]		= { 0x08, 16 },
		[SCxTDR]	= { 0x0c,  8 },
		[SCxSR]		= { 0x10, 16 },
		[SCxRDR]	= { 0x14,  8 },
		[SCFCR]		= { 0x18, 16 },
		[SCFDR]		= { 0x1c, 16 },
		[SCTFDR]	= { 0x1c, 16 },	/* aliased to SCFDR */
		[SCRFDR]	= { 0x20, 16 },
		[SCSPTR]	= { 0x24, 16 },
		[SCLSR]		= { 0x28, 16 },
	},

	/*
	 * SH7705-style SCIF(B) ports, lacking both SCSPTR and SCLSR
	 * registers.
	 */
	[SCIx_SH7705_SCIF_REGTYPE] = {
		[SCSMR]		= { 0x00, 16 },
		[SCBRR]		= { 0x04,  8 },
		[SCSCR]		= { 0x08, 16 },
		[SCxTDR]	= { 0x20,  8 },
		[SCxSR]		= { 0x14, 16 },
		[SCxRDR]	= { 0x24,  8 },
		[SCFCR]		= { 0x18, 16 },
		[SCFDR]		= { 0x1c, 16 },
		[SCTFDR]	= sci_reg_invalid,
		[SCRFDR]	= sci_reg_invalid,
		[SCSPTR]	= sci_reg_invalid,
		[SCLSR]		= sci_reg_invalid,
	},
};

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#define sci_getreg(up, offset)		(sci_regmap[to_sci_port(up)->cfg->regtype] + offset)

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/*
 * The "offset" here is rather misleading, in that it refers to an enum
 * value relative to the port mapping rather than the fixed offset
 * itself, which needs to be manually retrieved from the platform's
 * register map for the given port.
 */
static unsigned int sci_serial_in(struct uart_port *p, int offset)
{
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	struct plat_sci_reg *reg = sci_getreg(p, offset);
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	if (reg->size == 8)
		return ioread8(p->membase + (reg->offset << p->regshift));
	else if (reg->size == 16)
		return ioread16(p->membase + (reg->offset << p->regshift));
	else
		WARN(1, "Invalid register access\n");

	return 0;
}

static void sci_serial_out(struct uart_port *p, int offset, int value)
{
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	struct plat_sci_reg *reg = sci_getreg(p, offset);
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	if (reg->size == 8)
		iowrite8(value, p->membase + (reg->offset << p->regshift));
	else if (reg->size == 16)
		iowrite16(value, p->membase + (reg->offset << p->regshift));
	else
		WARN(1, "Invalid register access\n");
}

#define sci_in(up, offset)		(up->serial_in(up, offset))
#define sci_out(up, offset, value)	(up->serial_out(up, offset, value))

static int sci_probe_regmap(struct plat_sci_port *cfg)
{
	switch (cfg->type) {
	case PORT_SCI:
		cfg->regtype = SCIx_SCI_REGTYPE;
		break;
	case PORT_IRDA:
		cfg->regtype = SCIx_IRDA_REGTYPE;
		break;
	case PORT_SCIFA:
		cfg->regtype = SCIx_SCIFA_REGTYPE;
		break;
	case PORT_SCIFB:
		cfg->regtype = SCIx_SCIFB_REGTYPE;
		break;
	case PORT_SCIF:
		/*
		 * The SH-4 is a bit of a misnomer here, although that's
		 * where this particular port layout originated. This
		 * configuration (or some slight variation thereof)
		 * remains the dominant model for all SCIFs.
		 */
		cfg->regtype = SCIx_SH4_SCIF_REGTYPE;
		break;
	default:
		printk(KERN_ERR "Can't probe register map for given port\n");
		return -EINVAL;
	}

	return 0;
}

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#if defined(CONFIG_CONSOLE_POLL) || defined(CONFIG_SERIAL_SH_SCI_CONSOLE)
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#ifdef CONFIG_CONSOLE_POLL
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static int sci_poll_get_char(struct uart_port *port)
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{
	unsigned short status;
	int c;

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	do {
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		status = sci_in(port, SCxSR);
		if (status & SCxSR_ERRORS(port)) {
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			sci_out(port, SCxSR, SCxSR_ERROR_CLEAR(port));
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			continue;
		}
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		break;
	} while (1);

	if (!(status & SCxSR_RDxF(port)))
		return NO_POLL_CHAR;
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	c = sci_in(port, SCxRDR);
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	/* Dummy read */
	sci_in(port, SCxSR);
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	sci_out(port, SCxSR, SCxSR_RDxF_CLEAR(port));

	return c;
}
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#endif
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static void sci_poll_put_char(struct uart_port *port, unsigned char c)
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{
	unsigned short status;

	do {
		status = sci_in(port, SCxSR);
	} while (!(status & SCxSR_TDxE(port)));

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	sci_out(port, SCxTDR, c);
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	sci_out(port, SCxSR, SCxSR_TDxE_CLEAR(port) & ~SCxSR_TEND(port));
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}
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#endif /* CONFIG_CONSOLE_POLL || CONFIG_SERIAL_SH_SCI_CONSOLE */
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static void sci_init_pins(struct uart_port *port, unsigned int cflag)
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{
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	struct sci_port *s = to_sci_port(port);
	struct plat_sci_reg *reg = sci_regmap[s->cfg->regtype] + SCSPTR;
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	/*
	 * Use port-specific handler if provided.
	 */
	if (s->cfg->ops && s->cfg->ops->init_pins) {
		s->cfg->ops->init_pins(port, cflag);
		return;
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	}
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	/*
	 * For the generic path SCSPTR is necessary. Bail out if that's
	 * unavailable, too.
	 */
	if (!reg->size)
		return;
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	if (!(cflag & CRTSCTS))
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		sci_out(port, SCSPTR, 0x0080); /* Set RTS = 1 */
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}
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static int sci_txfill(struct uart_port *port)
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{
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	struct plat_sci_reg *reg;
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	reg = sci_getreg(port, SCTFDR);
	if (reg->size)
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		return sci_in(port, SCTFDR) & 0xff;
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	reg = sci_getreg(port, SCFDR);
	if (reg->size)
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		return sci_in(port, SCFDR) >> 8;

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	return !(sci_in(port, SCxSR) & SCI_TDRE);
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}

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static int sci_txroom(struct uart_port *port)
{
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	return port->fifosize - sci_txfill(port);
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}

static int sci_rxfill(struct uart_port *port)
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{
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	struct plat_sci_reg *reg;

	reg = sci_getreg(port, SCRFDR);
	if (reg->size)
		return sci_in(port, SCRFDR) & 0xff;

	reg = sci_getreg(port, SCFDR);
	if (reg->size)
		return sci_in(port, SCFDR) & ((port->fifosize << 1) - 1);

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	return (sci_in(port, SCxSR) & SCxSR_RDxF(port)) != 0;
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}

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/*
 * SCI helper for checking the state of the muxed port/RXD pins.
 */
static inline int sci_rxd_in(struct uart_port *port)
{
	struct sci_port *s = to_sci_port(port);

	if (s->cfg->port_reg <= 0)
		return 1;

	return !!__raw_readb(s->cfg->port_reg);
}

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/* ********************************************************************** *
 *                   the interrupt related routines                       *
 * ********************************************************************** */

static void sci_transmit_chars(struct uart_port *port)
{
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	struct circ_buf *xmit = &port->state->xmit;
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	unsigned int stopped = uart_tx_stopped(port);
	unsigned short status;
	unsigned short ctrl;
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	int count;
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	status = sci_in(port, SCxSR);
	if (!(status & SCxSR_TDxE(port))) {
		ctrl = sci_in(port, SCSCR);
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		if (uart_circ_empty(xmit))
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			ctrl &= ~SCSCR_TIE;
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		else
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			ctrl |= SCSCR_TIE;
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		sci_out(port, SCSCR, ctrl);
		return;
	}

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	count = sci_txroom(port);
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	do {
		unsigned char c;

		if (port->x_char) {
			c = port->x_char;
			port->x_char = 0;
		} else if (!uart_circ_empty(xmit) && !stopped) {
			c = xmit->buf[xmit->tail];
			xmit->tail = (xmit->tail + 1) & (UART_XMIT_SIZE - 1);
		} else {
			break;
		}

		sci_out(port, SCxTDR, c);

		port->icount.tx++;
	} while (--count > 0);

	sci_out(port, SCxSR, SCxSR_TDxE_CLEAR(port));

	if (uart_circ_chars_pending(xmit) < WAKEUP_CHARS)
		uart_write_wakeup(port);
	if (uart_circ_empty(xmit)) {
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		sci_stop_tx(port);
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	} else {
		ctrl = sci_in(port, SCSCR);

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		if (port->type != PORT_SCI) {
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			sci_in(port, SCxSR); /* Dummy read */
			sci_out(port, SCxSR, SCxSR_TDxE_CLEAR(port));
		}

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		ctrl |= SCSCR_TIE;
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		sci_out(port, SCSCR, ctrl);
	}
}

/* On SH3, SCIF may read end-of-break as a space->mark char */
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#define STEPFN(c)  ({int __c = (c); (((__c-1)|(__c)) == -1); })
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static void sci_receive_chars(struct uart_port *port)
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{
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	struct sci_port *sci_port = to_sci_port(port);
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	struct tty_struct *tty = port->state->port.tty;
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	int i, count, copied = 0;
	unsigned short status;
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	unsigned char flag;
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	status = sci_in(port, SCxSR);
	if (!(status & SCxSR_RDxF(port)))
		return;

	while (1) {
		/* Don't copy more bytes than there is room for in the buffer */
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		count = tty_buffer_request_room(tty, sci_rxfill(port));
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		/* If for any reason we can't copy more data, we're done! */
		if (count == 0)
			break;

		if (port->type == PORT_SCI) {
			char c = sci_in(port, SCxRDR);
571 572
			if (uart_handle_sysrq_char(port, c) ||
			    sci_port->break_flag)
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				count = 0;
574
			else
575
				tty_insert_flip_char(tty, c, TTY_NORMAL);
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		} else {
577
			for (i = 0; i < count; i++) {
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				char c = sci_in(port, SCxRDR);
				status = sci_in(port, SCxSR);
#if defined(CONFIG_CPU_SH3)
				/* Skip "chars" during break */
582
				if (sci_port->break_flag) {
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					if ((c == 0) &&
					    (status & SCxSR_FER(port))) {
						count--; i--;
						continue;
					}
588

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					/* Nonzero => end-of-break */
590
					dev_dbg(port->dev, "debounce<%02x>\n", c);
591 592
					sci_port->break_flag = 0;

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					if (STEPFN(c)) {
						count--; i--;
						continue;
					}
				}
#endif /* CONFIG_CPU_SH3 */
599
				if (uart_handle_sysrq_char(port, c)) {
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					count--; i--;
					continue;
				}

				/* Store data and status */
605
				if (status & SCxSR_FER(port)) {
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					flag = TTY_FRAME;
607
					dev_notice(port->dev, "frame error\n");
608
				} else if (status & SCxSR_PER(port)) {
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					flag = TTY_PARITY;
610
					dev_notice(port->dev, "parity error\n");
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				} else
					flag = TTY_NORMAL;
613

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				tty_insert_flip_char(tty, c, flag);
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			}
		}

		sci_in(port, SCxSR); /* dummy read */
		sci_out(port, SCxSR, SCxSR_RDxF_CLEAR(port));

		copied += count;
		port->icount.rx += count;
	}

	if (copied) {
		/* Tell the rest of the system the news. New characters! */
		tty_flip_buffer_push(tty);
	} else {
		sci_in(port, SCxSR); /* dummy read */
		sci_out(port, SCxSR, SCxSR_RDxF_CLEAR(port));
	}
}

#define SCI_BREAK_JIFFIES (HZ/20)
635 636 637

/*
 * The sci generates interrupts during the break,
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 * 1 per millisecond or so during the break period, for 9600 baud.
 * So dont bother disabling interrupts.
 * But dont want more than 1 break event.
 * Use a kernel timer to periodically poll the rx line until
 * the break is finished.
 */
644
static inline void sci_schedule_break_timer(struct sci_port *port)
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{
646
	mod_timer(&port->break_timer, jiffies + SCI_BREAK_JIFFIES);
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}
648

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/* Ensure that two consecutive samples find the break over. */
static void sci_break_timer(unsigned long data)
{
652 653
	struct sci_port *port = (struct sci_port *)data;

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	if (port->enable)
		port->enable(&port->port);

657
	if (sci_rxd_in(&port->port) == 0) {
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		port->break_flag = 1;
659 660
		sci_schedule_break_timer(port);
	} else if (port->break_flag == 1) {
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		/* break is over. */
		port->break_flag = 2;
663 664 665
		sci_schedule_break_timer(port);
	} else
		port->break_flag = 0;
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	if (port->disable)
		port->disable(&port->port);
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}

671
static int sci_handle_errors(struct uart_port *port)
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{
	int copied = 0;
	unsigned short status = sci_in(port, SCxSR);
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	struct tty_struct *tty = port->state->port.tty;
676
	struct sci_port *s = to_sci_port(port);
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678 679 680 681 682 683 684 685
	/*
	 * Handle overruns, if supported.
	 */
	if (s->cfg->overrun_bit != SCIx_NOT_SUPPORTED) {
		if (status & (1 << s->cfg->overrun_bit)) {
			/* overrun error */
			if (tty_insert_flip_char(tty, 0, TTY_OVERRUN))
				copied++;
686

687 688
			dev_notice(port->dev, "overrun error");
		}
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	}

691
	if (status & SCxSR_FER(port)) {
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		if (sci_rxd_in(port) == 0) {
			/* Notify of BREAK */
694
			struct sci_port *sci_port = to_sci_port(port);
695 696 697 698 699

			if (!sci_port->break_flag) {
				sci_port->break_flag = 1;
				sci_schedule_break_timer(sci_port);

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				/* Do sysrq handling. */
701
				if (uart_handle_break(port))
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					return 0;
703 704 705

				dev_dbg(port->dev, "BREAK detected\n");

706
				if (tty_insert_flip_char(tty, 0, TTY_BREAK))
707 708 709
					copied++;
			}

710
		} else {
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			/* frame error */
712
			if (tty_insert_flip_char(tty, 0, TTY_FRAME))
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				copied++;
714 715

			dev_notice(port->dev, "frame error\n");
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716 717 718
		}
	}

719
	if (status & SCxSR_PER(port)) {
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		/* parity error */
721 722
		if (tty_insert_flip_char(tty, 0, TTY_PARITY))
			copied++;
723 724

		dev_notice(port->dev, "parity error");
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	}

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	if (copied)
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		tty_flip_buffer_push(tty);

	return copied;
}

733
static int sci_handle_fifo_overrun(struct uart_port *port)
734
{
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	struct tty_struct *tty = port->state->port.tty;
736
	struct sci_port *s = to_sci_port(port);
737 738
	int copied = 0;

739 740 741 742 743 744
	/*
	 * XXX: Technically not limited to non-SCIFs, it's simply the
	 * SCLSR check that is for the moment SCIF-specific. This
	 * probably wants to be revisited for SCIFA/B as well as for
	 * factoring in SCI overrun detection.
	 */
745 746 747
	if (port->type != PORT_SCIF)
		return 0;

748
	if ((sci_in(port, SCLSR) & (1 << s->cfg->overrun_bit))) {
749 750 751 752 753 754 755 756 757 758 759 760
		sci_out(port, SCLSR, 0);

		tty_insert_flip_char(tty, 0, TTY_OVERRUN);
		tty_flip_buffer_push(tty);

		dev_notice(port->dev, "overrun error\n");
		copied++;
	}

	return copied;
}

761
static int sci_handle_breaks(struct uart_port *port)
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{
	int copied = 0;
	unsigned short status = sci_in(port, SCxSR);
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	struct tty_struct *tty = port->state->port.tty;
766
	struct sci_port *s = to_sci_port(port);
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768 769 770
	if (uart_handle_break(port))
		return 0;

771
	if (!s->break_flag && status & SCxSR_BRK(port)) {
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#if defined(CONFIG_CPU_SH3)
		/* Debounce break */
		s->break_flag = 1;
#endif
		/* Notify of BREAK */
777
		if (tty_insert_flip_char(tty, 0, TTY_BREAK))
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			copied++;
779 780

		dev_dbg(port->dev, "BREAK detected\n");
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	}

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	if (copied)
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		tty_flip_buffer_push(tty);
785

786 787
	copied += sci_handle_fifo_overrun(port);

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	return copied;
}

791
static irqreturn_t sci_rx_interrupt(int irq, void *ptr)
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{
793 794 795 796 797 798 799 800 801
#ifdef CONFIG_SERIAL_SH_SCI_DMA
	struct uart_port *port = ptr;
	struct sci_port *s = to_sci_port(port);

	if (s->chan_rx) {
		u16 scr = sci_in(port, SCSCR);
		u16 ssr = sci_in(port, SCxSR);

		/* Disable future Rx interrupts */
802
		if (port->type == PORT_SCIFA || port->type == PORT_SCIFB) {
803 804 805
			disable_irq_nosync(irq);
			scr |= 0x4000;
		} else {
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			scr &= ~SCSCR_RIE;
807 808
		}
		sci_out(port, SCSCR, scr);
809 810
		/* Clear current interrupt */
		sci_out(port, SCxSR, ssr & ~(1 | SCxSR_RDxF(port)));
811 812 813
		dev_dbg(port->dev, "Rx IRQ %lu: setup t-out in %u jiffies\n",
			jiffies, s->rx_timeout);
		mod_timer(&s->rx_timer, jiffies + s->rx_timeout);
814 815 816 817 818

		return IRQ_HANDLED;
	}
#endif

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	/* I think sci_receive_chars has to be called irrespective
	 * of whether the I_IXOFF is set, otherwise, how is the interrupt
	 * to be disabled?
	 */
823
	sci_receive_chars(ptr);
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	return IRQ_HANDLED;
}

828
static irqreturn_t sci_tx_interrupt(int irq, void *ptr)
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{
	struct uart_port *port = ptr;
831
	unsigned long flags;
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833
	spin_lock_irqsave(&port->lock, flags);
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	sci_transmit_chars(port);
835
	spin_unlock_irqrestore(&port->lock, flags);
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	return IRQ_HANDLED;
}

840
static irqreturn_t sci_er_interrupt(int irq, void *ptr)
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{
	struct uart_port *port = ptr;

	/* Handle errors */
	if (port->type == PORT_SCI) {
		if (sci_handle_errors(port)) {
			/* discard character in rx buffer */
			sci_in(port, SCxSR);
			sci_out(port, SCxSR, SCxSR_RDxF_CLEAR(port));
		}
	} else {
852
		sci_handle_fifo_overrun(port);
853
		sci_rx_interrupt(irq, ptr);
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	}

	sci_out(port, SCxSR, SCxSR_ERROR_CLEAR(port));

	/* Kick the transmission */
859
	sci_tx_interrupt(irq, ptr);
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	return IRQ_HANDLED;
}

864
static irqreturn_t sci_br_interrupt(int irq, void *ptr)
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{
	struct uart_port *port = ptr;

	/* Handle BREAKs */
	sci_handle_breaks(port);
	sci_out(port, SCxSR, SCxSR_BREAK_CLEAR(port));

	return IRQ_HANDLED;
}

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static inline unsigned long port_rx_irq_mask(struct uart_port *port)
{
	/*
	 * Not all ports (such as SCIFA) will support REIE. Rather than
	 * special-casing the port type, we check the port initialization
	 * IRQ enable mask to see whether the IRQ is desired at all. If
	 * it's unset, it's logically inferred that there's no point in
	 * testing for it.
	 */
884
	return SCSCR_RIE | (to_sci_port(port)->cfg->scscr & SCSCR_REIE);
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}

887
static irqreturn_t sci_mpxed_interrupt(int irq, void *ptr)
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{
889
	unsigned short ssr_status, scr_status, err_enabled;
890
	struct uart_port *port = ptr;
891
	struct sci_port *s = to_sci_port(port);
892
	irqreturn_t ret = IRQ_NONE;
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894 895
	ssr_status = sci_in(port, SCxSR);
	scr_status = sci_in(port, SCSCR);
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	err_enabled = scr_status & port_rx_irq_mask(port);
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	/* Tx Interrupt */
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899
	if ((ssr_status & SCxSR_TDxE(port)) && (scr_status & SCSCR_TIE) &&
900
	    !s->chan_tx)
901
		ret = sci_tx_interrupt(irq, ptr);
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902

903 904 905 906 907
	/*
	 * Rx Interrupt: if we're using DMA, the DMA controller clears RDF /
	 * DR flags
	 */
	if (((ssr_status & SCxSR_RDxF(port)) || s->chan_rx) &&
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	    (scr_status & SCSCR_RIE))
909
		ret = sci_rx_interrupt(irq, ptr);
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910

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	/* Error Interrupt */
912
	if ((ssr_status & SCxSR_ERRORS(port)) && err_enabled)
913
		ret = sci_er_interrupt(irq, ptr);
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	/* Break Interrupt */
916
	if ((ssr_status & SCxSR_BRK(port)) && err_enabled)
917
		ret = sci_br_interrupt(irq, ptr);
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919
	return ret;
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920 921 922
}

/*
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923
 * Here we define a transition notifier so that we can update all of our
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 * ports' baud rate when the peripheral clock changes.
 */
926 927
static int sci_notifier(struct notifier_block *self,
			unsigned long phase, void *p)
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928
{
929 930
	struct sci_port *sci_port;
	unsigned long flags;
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931

932 933
	sci_port = container_of(self, struct sci_port, freq_transition);

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	if ((phase == CPUFREQ_POSTCHANGE) ||
935
	    (phase == CPUFREQ_RESUMECHANGE)) {
936
		struct uart_port *port = &sci_port->port;
937

938 939 940
		spin_lock_irqsave(&port->lock, flags);
		port->uartclk = clk_get_rate(sci_port->iclk);
		spin_unlock_irqrestore(&port->lock, flags);
941
	}
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	return NOTIFY_OK;
}
945 946 947 948 949

static void sci_clk_enable(struct uart_port *port)
{
	struct sci_port *sci_port = to_sci_port(port);

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	pm_runtime_get_sync(port->dev);

952 953 954
	clk_enable(sci_port->iclk);
	sci_port->port.uartclk = clk_get_rate(sci_port->iclk);
	clk_enable(sci_port->fclk);
955 956 957 958 959 960
}

static void sci_clk_disable(struct uart_port *port)
{
	struct sci_port *sci_port = to_sci_port(port);

961 962
	clk_disable(sci_port->fclk);
	clk_disable(sci_port->iclk);
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	pm_runtime_put_sync(port->dev);
965
}
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static int sci_request_irq(struct sci_port *port)
{
	int i;
970
	irqreturn_t (*handlers[4])(int irq, void *ptr) = {
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		sci_er_interrupt, sci_rx_interrupt, sci_tx_interrupt,
		sci_br_interrupt,
	};
	const char *desc[] = { "SCI Receive Error", "SCI Receive Data Full",
			       "SCI Transmit Data Empty", "SCI Break" };

977 978
	if (port->cfg->irqs[0] == port->cfg->irqs[1]) {
		if (unlikely(!port->cfg->irqs[0]))
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979
			return -ENODEV;
980

981
		if (request_irq(port->cfg->irqs[0], sci_mpxed_interrupt,
P
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982
				IRQF_DISABLED, "sci", port)) {
983
			dev_err(port->port.dev, "Can't allocate IRQ\n");
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984 985 986 987
			return -ENODEV;
		}
	} else {
		for (i = 0; i < ARRAY_SIZE(handlers); i++) {
988
			if (unlikely(!port->cfg->irqs[i]))
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989
				continue;
990

991
			if (request_irq(port->cfg->irqs[i], handlers[i],
P
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992
					IRQF_DISABLED, desc[i], port)) {
993
				dev_err(port->port.dev, "Can't allocate IRQ\n");
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				return -ENODEV;
			}
		}
	}

	return 0;
}

static void sci_free_irq(struct sci_port *port)
{
	int i;

1006 1007
	if (port->cfg->irqs[0] == port->cfg->irqs[1])
		free_irq(port->cfg->irqs[0], port);
1008
	else {
1009 1010
		for (i = 0; i < ARRAY_SIZE(port->cfg->irqs); i++) {
			if (!port->cfg->irqs[i])
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1011 1012
				continue;

1013
			free_irq(port->cfg->irqs[i], port);
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1014 1015 1016 1017 1018 1019
		}
	}
}

static unsigned int sci_tx_empty(struct uart_port *port)
{
1020
	unsigned short status = sci_in(port, SCxSR);
1021
	unsigned short in_tx_fifo = sci_txfill(port);
1022 1023

	return (status & SCxSR_TEND(port)) && !in_tx_fifo ? TIOCSER_TEMT : 0;
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}

static void sci_set_mctrl(struct uart_port *port, unsigned int mctrl)
{
	/* This routine is used for seting signals of: DTR, DCD, CTS/RTS */
	/* We use SCIF's hardware for CTS/RTS, so don't need any for that. */
	/* If you have signals for DTR and DCD, please implement here. */
}

static unsigned int sci_get_mctrl(struct uart_port *port)
{
1035
	/* This routine is used for getting signals of: DTR, DCD, DSR, RI,
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	   and CTS/RTS */

	return TIOCM_DTR | TIOCM_RTS | TIOCM_DSR;
}

1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052
#ifdef CONFIG_SERIAL_SH_SCI_DMA
static void sci_dma_tx_complete(void *arg)
{
	struct sci_port *s = arg;
	struct uart_port *port = &s->port;
	struct circ_buf *xmit = &port->state->xmit;
	unsigned long flags;

	dev_dbg(port->dev, "%s(%d)\n", __func__, port->line);

	spin_lock_irqsave(&port->lock, flags);

1053
	xmit->tail += sg_dma_len(&s->sg_tx);
1054 1055
	xmit->tail &= UART_XMIT_SIZE - 1;

1056
	port->icount.tx += sg_dma_len(&s->sg_tx);
1057 1058 1059 1060 1061 1062 1063 1064

	async_tx_ack(s->desc_tx);
	s->cookie_tx = -EINVAL;
	s->desc_tx = NULL;

	if (uart_circ_chars_pending(xmit) < WAKEUP_CHARS)
		uart_write_wakeup(port);

1065
	if (!uart_circ_empty(xmit)) {
1066
		schedule_work(&s->work_tx);
1067
	} else if (port->type == PORT_SCIFA || port->type == PORT_SCIFB) {
1068
		u16 ctrl = sci_in(port, SCSCR);
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		sci_out(port, SCSCR, ctrl & ~SCSCR_TIE);
1070 1071 1072
	}

	spin_unlock_irqrestore(&port->lock, flags);
1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 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
}

/* Locking: called with port lock held */
static int sci_dma_rx_push(struct sci_port *s, struct tty_struct *tty,
			   size_t count)
{
	struct uart_port *port = &s->port;
	int i, active, room;

	room = tty_buffer_request_room(tty, count);

	if (s->active_rx == s->cookie_rx[0]) {
		active = 0;
	} else if (s->active_rx == s->cookie_rx[1]) {
		active = 1;
	} else {
		dev_err(port->dev, "cookie %d not found!\n", s->active_rx);
		return 0;
	}

	if (room < count)
		dev_warn(port->dev, "Rx overrun: dropping %u bytes\n",
			 count - room);
	if (!room)
		return room;

	for (i = 0; i < room; i++)
		tty_insert_flip_char(tty, ((u8 *)sg_virt(&s->sg_rx[active]))[i],
				     TTY_NORMAL);

	port->icount.rx += room;

	return room;
}

static void sci_dma_rx_complete(void *arg)
{
	struct sci_port *s = arg;
	struct uart_port *port = &s->port;
	struct tty_struct *tty = port->state->port.tty;
	unsigned long flags;
	int count;

1116
	dev_dbg(port->dev, "%s(%d) active #%d\n", __func__, port->line, s->active_rx);
1117 1118 1119 1120 1121

	spin_lock_irqsave(&port->lock, flags);

	count = sci_dma_rx_push(s, tty, s->buf_len_rx);

1122
	mod_timer(&s->rx_timer, jiffies + s->rx_timeout);
1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139

	spin_unlock_irqrestore(&port->lock, flags);

	if (count)
		tty_flip_buffer_push(tty);

	schedule_work(&s->work_rx);
}

static void sci_rx_dma_release(struct sci_port *s, bool enable_pio)
{
	struct dma_chan *chan = s->chan_rx;
	struct uart_port *port = &s->port;

	s->chan_rx = NULL;
	s->cookie_rx[0] = s->cookie_rx[1] = -EINVAL;
	dma_release_channel(chan);
1140 1141 1142
	if (sg_dma_address(&s->sg_rx[0]))
		dma_free_coherent(port->dev, s->buf_len_rx * 2,
				  sg_virt(&s->sg_rx[0]), sg_dma_address(&s->sg_rx[0]));
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 1188 1189 1190 1191
	if (enable_pio)
		sci_start_rx(port);
}

static void sci_tx_dma_release(struct sci_port *s, bool enable_pio)
{
	struct dma_chan *chan = s->chan_tx;
	struct uart_port *port = &s->port;

	s->chan_tx = NULL;
	s->cookie_tx = -EINVAL;
	dma_release_channel(chan);
	if (enable_pio)
		sci_start_tx(port);
}

static void sci_submit_rx(struct sci_port *s)
{
	struct dma_chan *chan = s->chan_rx;
	int i;

	for (i = 0; i < 2; i++) {
		struct scatterlist *sg = &s->sg_rx[i];
		struct dma_async_tx_descriptor *desc;

		desc = chan->device->device_prep_slave_sg(chan,
			sg, 1, DMA_FROM_DEVICE, DMA_PREP_INTERRUPT);

		if (desc) {
			s->desc_rx[i] = desc;
			desc->callback = sci_dma_rx_complete;
			desc->callback_param = s;
			s->cookie_rx[i] = desc->tx_submit(desc);
		}

		if (!desc || s->cookie_rx[i] < 0) {
			if (i) {
				async_tx_ack(s->desc_rx[0]);
				s->cookie_rx[0] = -EINVAL;
			}
			if (desc) {
				async_tx_ack(desc);
				s->cookie_rx[i] = -EINVAL;
			}
			dev_warn(s->port.dev,
				 "failed to re-start DMA, using PIO\n");
			sci_rx_dma_release(s, true);
			return;
		}
1192 1193
		dev_dbg(s->port.dev, "%s(): cookie %d to #%d\n", __func__,
			s->cookie_rx[i], i);
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 1225 1226 1227
	}

	s->active_rx = s->cookie_rx[0];

	dma_async_issue_pending(chan);
}

static void work_fn_rx(struct work_struct *work)
{
	struct sci_port *s = container_of(work, struct sci_port, work_rx);
	struct uart_port *port = &s->port;
	struct dma_async_tx_descriptor *desc;
	int new;

	if (s->active_rx == s->cookie_rx[0]) {
		new = 0;
	} else if (s->active_rx == s->cookie_rx[1]) {
		new = 1;
	} else {
		dev_err(port->dev, "cookie %d not found!\n", s->active_rx);
		return;
	}
	desc = s->desc_rx[new];

	if (dma_async_is_tx_complete(s->chan_rx, s->active_rx, NULL, NULL) !=
	    DMA_SUCCESS) {
		/* Handle incomplete DMA receive */
		struct tty_struct *tty = port->state->port.tty;
		struct dma_chan *chan = s->chan_rx;
		struct sh_desc *sh_desc = container_of(desc, struct sh_desc,
						       async_tx);
		unsigned long flags;
		int count;

1228
		chan->device->device_control(chan, DMA_TERMINATE_ALL, 0);
1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251
		dev_dbg(port->dev, "Read %u bytes with cookie %d\n",
			sh_desc->partial, sh_desc->cookie);

		spin_lock_irqsave(&port->lock, flags);
		count = sci_dma_rx_push(s, tty, sh_desc->partial);
		spin_unlock_irqrestore(&port->lock, flags);

		if (count)
			tty_flip_buffer_push(tty);

		sci_submit_rx(s);

		return;
	}

	s->cookie_rx[new] = desc->tx_submit(desc);
	if (s->cookie_rx[new] < 0) {
		dev_warn(port->dev, "Failed submitting Rx DMA descriptor\n");
		sci_rx_dma_release(s, true);
		return;
	}

	s->active_rx = s->cookie_rx[!new];
1252 1253 1254

	dev_dbg(port->dev, "%s: cookie %d #%d, new active #%d\n", __func__,
		s->cookie_rx[new], new, s->active_rx);
1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274
}

static void work_fn_tx(struct work_struct *work)
{
	struct sci_port *s = container_of(work, struct sci_port, work_tx);
	struct dma_async_tx_descriptor *desc;
	struct dma_chan *chan = s->chan_tx;
	struct uart_port *port = &s->port;
	struct circ_buf *xmit = &port->state->xmit;
	struct scatterlist *sg = &s->sg_tx;

	/*
	 * DMA is idle now.
	 * Port xmit buffer is already mapped, and it is one page... Just adjust
	 * offsets and lengths. Since it is a circular buffer, we have to
	 * transmit till the end, and then the rest. Take the port lock to get a
	 * consistent xmit buffer state.
	 */
	spin_lock_irq(&port->lock);
	sg->offset = xmit->tail & (UART_XMIT_SIZE - 1);
1275
	sg_dma_address(sg) = (sg_dma_address(sg) & ~(UART_XMIT_SIZE - 1)) +
1276
		sg->offset;
1277
	sg_dma_len(sg) = min((int)CIRC_CNT(xmit->head, xmit->tail, UART_XMIT_SIZE),
1278 1279 1280
		CIRC_CNT_TO_END(xmit->head, xmit->tail, UART_XMIT_SIZE));
	spin_unlock_irq(&port->lock);

1281
	BUG_ON(!sg_dma_len(sg));
1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313

	desc = chan->device->device_prep_slave_sg(chan,
			sg, s->sg_len_tx, DMA_TO_DEVICE,
			DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
	if (!desc) {
		/* switch to PIO */
		sci_tx_dma_release(s, true);
		return;
	}

	dma_sync_sg_for_device(port->dev, sg, 1, DMA_TO_DEVICE);

	spin_lock_irq(&port->lock);
	s->desc_tx = desc;
	desc->callback = sci_dma_tx_complete;
	desc->callback_param = s;
	spin_unlock_irq(&port->lock);
	s->cookie_tx = desc->tx_submit(desc);
	if (s->cookie_tx < 0) {
		dev_warn(port->dev, "Failed submitting Tx DMA descriptor\n");
		/* switch to PIO */
		sci_tx_dma_release(s, true);
		return;
	}

	dev_dbg(port->dev, "%s: %p: %d...%d, cookie %d\n", __func__,
		xmit->buf, xmit->tail, xmit->head, s->cookie_tx);

	dma_async_issue_pending(chan);
}
#endif

1314
static void sci_start_tx(struct uart_port *port)
L
Linus Torvalds 已提交
1315
{
1316
	struct sci_port *s = to_sci_port(port);
1317
	unsigned short ctrl;
L
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1319
#ifdef CONFIG_SERIAL_SH_SCI_DMA
1320
	if (port->type == PORT_SCIFA || port->type == PORT_SCIFB) {
1321 1322 1323 1324 1325 1326 1327
		u16 new, scr = sci_in(port, SCSCR);
		if (s->chan_tx)
			new = scr | 0x8000;
		else
			new = scr & ~0x8000;
		if (new != scr)
			sci_out(port, SCSCR, new);
1328
	}
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1330 1331 1332
	if (s->chan_tx && !uart_circ_empty(&s->port.state->xmit) &&
	    s->cookie_tx < 0)
		schedule_work(&s->work_tx);
1333
#endif
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1334

1335
	if (!s->chan_tx || port->type == PORT_SCIFA || port->type == PORT_SCIFB) {
1336 1337
		/* Set TIE (Transmit Interrupt Enable) bit in SCSCR */
		ctrl = sci_in(port, SCSCR);
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1338
		sci_out(port, SCSCR, ctrl | SCSCR_TIE);
1339
	}
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}

1342
static void sci_stop_tx(struct uart_port *port)
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1343 1344 1345 1346 1347
{
	unsigned short ctrl;

	/* Clear TIE (Transmit Interrupt Enable) bit in SCSCR */
	ctrl = sci_in(port, SCSCR);
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1348

1349
	if (port->type == PORT_SCIFA || port->type == PORT_SCIFB)
1350
		ctrl &= ~0x8000;
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1351

1352
	ctrl &= ~SCSCR_TIE;
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1353

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	sci_out(port, SCSCR, ctrl);
}

1357
static void sci_start_rx(struct uart_port *port)
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{
	unsigned short ctrl;

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1361
	ctrl = sci_in(port, SCSCR) | port_rx_irq_mask(port);
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1362

1363
	if (port->type == PORT_SCIFA || port->type == PORT_SCIFB)
1364
		ctrl &= ~0x4000;
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1365

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	sci_out(port, SCSCR, ctrl);
}

static void sci_stop_rx(struct uart_port *port)
{
	unsigned short ctrl;

	ctrl = sci_in(port, SCSCR);
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1375
	if (port->type == PORT_SCIFA || port->type == PORT_SCIFB)
1376
		ctrl &= ~0x4000;
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	ctrl &= ~port_rx_irq_mask(port);

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	sci_out(port, SCSCR, ctrl);
}

static void sci_enable_ms(struct uart_port *port)
{
	/* Nothing here yet .. */
}

static void sci_break_ctl(struct uart_port *port, int break_state)
{
	/* Nothing here yet .. */
}

1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413
#ifdef CONFIG_SERIAL_SH_SCI_DMA
static bool filter(struct dma_chan *chan, void *slave)
{
	struct sh_dmae_slave *param = slave;

	dev_dbg(chan->device->dev, "%s: slave ID %d\n", __func__,
		param->slave_id);

	if (param->dma_dev == chan->device->dev) {
		chan->private = param;
		return true;
	} else {
		return false;
	}
}

static void rx_timer_fn(unsigned long arg)
{
	struct sci_port *s = (struct sci_port *)arg;
	struct uart_port *port = &s->port;
	u16 scr = sci_in(port, SCSCR);
1414

1415
	if (port->type == PORT_SCIFA || port->type == PORT_SCIFB) {
1416
		scr &= ~0x4000;
1417
		enable_irq(s->cfg->irqs[1]);
1418
	}
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	sci_out(port, SCSCR, scr | SCSCR_RIE);
1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432
	dev_dbg(port->dev, "DMA Rx timed out\n");
	schedule_work(&s->work_rx);
}

static void sci_request_dma(struct uart_port *port)
{
	struct sci_port *s = to_sci_port(port);
	struct sh_dmae_slave *param;
	struct dma_chan *chan;
	dma_cap_mask_t mask;
	int nent;

	dev_dbg(port->dev, "%s: port %d DMA %p\n", __func__,
1433
		port->line, s->cfg->dma_dev);
1434

1435
	if (!s->cfg->dma_dev)
1436 1437 1438 1439 1440 1441 1442 1443
		return;

	dma_cap_zero(mask);
	dma_cap_set(DMA_SLAVE, mask);

	param = &s->param_tx;

	/* Slave ID, e.g., SHDMA_SLAVE_SCIF0_TX */
1444 1445
	param->slave_id = s->cfg->dma_slave_tx;
	param->dma_dev = s->cfg->dma_dev;
1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472

	s->cookie_tx = -EINVAL;
	chan = dma_request_channel(mask, filter, param);
	dev_dbg(port->dev, "%s: TX: got channel %p\n", __func__, chan);
	if (chan) {
		s->chan_tx = chan;
		sg_init_table(&s->sg_tx, 1);
		/* UART circular tx buffer is an aligned page. */
		BUG_ON((int)port->state->xmit.buf & ~PAGE_MASK);
		sg_set_page(&s->sg_tx, virt_to_page(port->state->xmit.buf),
			    UART_XMIT_SIZE, (int)port->state->xmit.buf & ~PAGE_MASK);
		nent = dma_map_sg(port->dev, &s->sg_tx, 1, DMA_TO_DEVICE);
		if (!nent)
			sci_tx_dma_release(s, false);
		else
			dev_dbg(port->dev, "%s: mapped %d@%p to %x\n", __func__,
				sg_dma_len(&s->sg_tx),
				port->state->xmit.buf, sg_dma_address(&s->sg_tx));

		s->sg_len_tx = nent;

		INIT_WORK(&s->work_tx, work_fn_tx);
	}

	param = &s->param_rx;

	/* Slave ID, e.g., SHDMA_SLAVE_SCIF0_RX */
1473 1474
	param->slave_id = s->cfg->dma_slave_rx;
	param->dma_dev = s->cfg->dma_dev;
1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504

	chan = dma_request_channel(mask, filter, param);
	dev_dbg(port->dev, "%s: RX: got channel %p\n", __func__, chan);
	if (chan) {
		dma_addr_t dma[2];
		void *buf[2];
		int i;

		s->chan_rx = chan;

		s->buf_len_rx = 2 * max(16, (int)port->fifosize);
		buf[0] = dma_alloc_coherent(port->dev, s->buf_len_rx * 2,
					    &dma[0], GFP_KERNEL);

		if (!buf[0]) {
			dev_warn(port->dev,
				 "failed to allocate dma buffer, using PIO\n");
			sci_rx_dma_release(s, true);
			return;
		}

		buf[1] = buf[0] + s->buf_len_rx;
		dma[1] = dma[0] + s->buf_len_rx;

		for (i = 0; i < 2; i++) {
			struct scatterlist *sg = &s->sg_rx[i];

			sg_init_table(sg, 1);
			sg_set_page(sg, virt_to_page(buf[i]), s->buf_len_rx,
				    (int)buf[i] & ~PAGE_MASK);
1505
			sg_dma_address(sg) = dma[i];
1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518
		}

		INIT_WORK(&s->work_rx, work_fn_rx);
		setup_timer(&s->rx_timer, rx_timer_fn, (unsigned long)s);

		sci_submit_rx(s);
	}
}

static void sci_free_dma(struct uart_port *port)
{
	struct sci_port *s = to_sci_port(port);

1519
	if (!s->cfg->dma_dev)
1520 1521 1522 1523 1524 1525 1526
		return;

	if (s->chan_tx)
		sci_tx_dma_release(s, false);
	if (s->chan_rx)
		sci_rx_dma_release(s, false);
}
1527 1528 1529 1530 1531 1532 1533 1534
#else
static inline void sci_request_dma(struct uart_port *port)
{
}

static inline void sci_free_dma(struct uart_port *port)
{
}
1535 1536
#endif

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static int sci_startup(struct uart_port *port)
{
1539
	struct sci_port *s = to_sci_port(port);
1540
	int ret;
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1541

1542 1543
	dev_dbg(port->dev, "%s(%d)\n", __func__, port->line);

1544 1545
	if (s->enable)
		s->enable(port);
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1547 1548 1549 1550
	ret = sci_request_irq(s);
	if (unlikely(ret < 0))
		return ret;

1551
	sci_request_dma(port);
1552

1553
	sci_start_tx(port);
1554
	sci_start_rx(port);
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1555 1556 1557 1558 1559 1560

	return 0;
}

static void sci_shutdown(struct uart_port *port)
{
1561
	struct sci_port *s = to_sci_port(port);
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1562

1563 1564
	dev_dbg(port->dev, "%s(%d)\n", __func__, port->line);

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1565
	sci_stop_rx(port);
1566
	sci_stop_tx(port);
1567

1568
	sci_free_dma(port);
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1569 1570
	sci_free_irq(s);

1571 1572
	if (s->disable)
		s->disable(port);
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}

1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592
static unsigned int sci_scbrr_calc(unsigned int algo_id, unsigned int bps,
				   unsigned long freq)
{
	switch (algo_id) {
	case SCBRR_ALGO_1:
		return ((freq + 16 * bps) / (16 * bps) - 1);
	case SCBRR_ALGO_2:
		return ((freq + 16 * bps) / (32 * bps) - 1);
	case SCBRR_ALGO_3:
		return (((freq * 2) + 16 * bps) / (16 * bps) - 1);
	case SCBRR_ALGO_4:
		return (((freq * 2) + 16 * bps) / (32 * bps) - 1);
	case SCBRR_ALGO_5:
		return (((freq * 1000 / 32) / bps) - 1);
	}

	/* Warn, but use a safe default */
	WARN_ON(1);
1593

1594 1595 1596
	return ((freq + 16 * bps) / (32 * bps) - 1);
}

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1597 1598
static void sci_set_termios(struct uart_port *port, struct ktermios *termios,
			    struct ktermios *old)
L
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1599
{
1600
	struct sci_port *s = to_sci_port(port);
1601
	unsigned int status, baud, smr_val, max_baud;
1602
	int t = -1;
1603
	u16 scfcr = 0;
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1604

1605 1606 1607 1608 1609 1610 1611 1612 1613
	/*
	 * earlyprintk comes here early on with port->uartclk set to zero.
	 * the clock framework is not up and running at this point so here
	 * we assume that 115200 is the maximum baud rate. please note that
	 * the baud rate is not programmed during earlyprintk - it is assumed
	 * that the previous boot loader has enabled required clocks and
	 * setup the baud rate generator hardware for us already.
	 */
	max_baud = port->uartclk ? port->uartclk / 16 : 115200;
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1614

1615 1616
	baud = uart_get_baud_rate(port, termios, old, 0, max_baud);
	if (likely(baud && port->uartclk))
1617
		t = sci_scbrr_calc(s->cfg->scbrr_algo_id, baud, port->uartclk);
1618

1619 1620 1621
	if (s->enable)
		s->enable(port);

L
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1622 1623 1624 1625 1626 1627
	do {
		status = sci_in(port, SCxSR);
	} while (!(status & SCxSR_TEND(port)));

	sci_out(port, SCSCR, 0x00);	/* TE=0, RE=0, CKE1=0 */

1628
	if (port->type != PORT_SCI)
1629
		sci_out(port, SCFCR, scfcr | SCFCR_RFRST | SCFCR_TFRST);
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1630 1631

	smr_val = sci_in(port, SCSMR) & 3;
1632

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1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645
	if ((termios->c_cflag & CSIZE) == CS7)
		smr_val |= 0x40;
	if (termios->c_cflag & PARENB)
		smr_val |= 0x20;
	if (termios->c_cflag & PARODD)
		smr_val |= 0x30;
	if (termios->c_cflag & CSTOPB)
		smr_val |= 0x08;

	uart_update_timeout(port, termios->c_cflag, baud);

	sci_out(port, SCSMR, smr_val);

1646
	dev_dbg(port->dev, "%s: SMR %x, t %x, SCSCR %x\n", __func__, smr_val, t,
1647
		s->cfg->scscr);
1648

L
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1649
	if (t > 0) {
1650
		if (t >= 256) {
L
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1651 1652
			sci_out(port, SCSMR, (sci_in(port, SCSMR) & ~3) | 1);
			t >>= 2;
1653
		} else
L
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1654
			sci_out(port, SCSMR, sci_in(port, SCSMR) & ~3);
1655

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1656 1657 1658 1659
		sci_out(port, SCBRR, t);
		udelay((1000000+(baud-1)) / baud); /* Wait one bit interval */
	}

1660
	sci_init_pins(port, termios->c_cflag);
1661
	sci_out(port, SCFCR, scfcr | ((termios->c_cflag & CRTSCTS) ? SCFCR_MCE : 0));
1662

1663
	sci_out(port, SCSCR, s->cfg->scscr);
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1664

1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686
#ifdef CONFIG_SERIAL_SH_SCI_DMA
	/*
	 * Calculate delay for 1.5 DMA buffers: see
	 * drivers/serial/serial_core.c::uart_update_timeout(). With 10 bits
	 * (CS8), 250Hz, 115200 baud and 64 bytes FIFO, the above function
	 * calculates 1 jiffie for the data plus 5 jiffies for the "slop(e)."
	 * Then below we calculate 3 jiffies (12ms) for 1.5 DMA buffers (3 FIFO
	 * sizes), but it has been found out experimentally, that this is not
	 * enough: the driver too often needlessly runs on a DMA timeout. 20ms
	 * as a minimum seem to work perfectly.
	 */
	if (s->chan_rx) {
		s->rx_timeout = (port->timeout - HZ / 50) * s->buf_len_rx * 3 /
			port->fifosize / 2;
		dev_dbg(port->dev,
			"DMA Rx t-out %ums, tty t-out %u jiffies\n",
			s->rx_timeout * 1000 / HZ, port->timeout);
		if (s->rx_timeout < msecs_to_jiffies(20))
			s->rx_timeout = msecs_to_jiffies(20);
	}
#endif

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1687
	if ((termios->c_cflag & CREAD) != 0)
1688
		sci_start_rx(port);
1689 1690 1691

	if (s->disable)
		s->disable(port);
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1692 1693 1694 1695 1696
}

static const char *sci_type(struct uart_port *port)
{
	switch (port->type) {
1697 1698 1699 1700 1701 1702 1703 1704
	case PORT_IRDA:
		return "irda";
	case PORT_SCI:
		return "sci";
	case PORT_SCIF:
		return "scif";
	case PORT_SCIFA:
		return "scifa";
1705 1706
	case PORT_SCIFB:
		return "scifb";
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1707 1708
	}

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	return NULL;
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1710 1711
}

1712
static inline unsigned long sci_port_size(struct uart_port *port)
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{
1714 1715 1716 1717 1718 1719 1720
	/*
	 * Pick an arbitrary size that encapsulates all of the base
	 * registers by default. This can be optimized later, or derived
	 * from platform resource data at such a time that ports begin to
	 * behave more erratically.
	 */
	return 64;
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}

1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750
static int sci_remap_port(struct uart_port *port)
{
	unsigned long size = sci_port_size(port);

	/*
	 * Nothing to do if there's already an established membase.
	 */
	if (port->membase)
		return 0;

	if (port->flags & UPF_IOREMAP) {
		port->membase = ioremap_nocache(port->mapbase, size);
		if (unlikely(!port->membase)) {
			dev_err(port->dev, "can't remap port#%d\n", port->line);
			return -ENXIO;
		}
	} else {
		/*
		 * For the simple (and majority of) cases where we don't
		 * need to do any remapping, just cast the cookie
		 * directly.
		 */
		port->membase = (void __iomem *)port->mapbase;
	}

	return 0;
}

1751
static void sci_release_port(struct uart_port *port)
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{
1753 1754 1755 1756 1757 1758
	if (port->flags & UPF_IOREMAP) {
		iounmap(port->membase);
		port->membase = NULL;
	}

	release_mem_region(port->mapbase, sci_port_size(port));
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1759 1760
}

1761
static int sci_request_port(struct uart_port *port)
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1762
{
1763 1764
	unsigned long size = sci_port_size(port);
	struct resource *res;
1765
	int ret;
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1766

1767
	res = request_mem_region(port->mapbase, size, dev_name(port->dev));
1768 1769
	if (unlikely(res == NULL))
		return -EBUSY;
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1771 1772 1773 1774
	ret = sci_remap_port(port);
	if (unlikely(ret != 0)) {
		release_resource(res);
		return ret;
1775
	}
1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787

	return 0;
}

static void sci_config_port(struct uart_port *port, int flags)
{
	if (flags & UART_CONFIG_TYPE) {
		struct sci_port *sport = to_sci_port(port);

		port->type = sport->cfg->type;
		sci_request_port(port);
	}
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}

static int sci_verify_port(struct uart_port *port, struct serial_struct *ser)
{
1792
	struct sci_port *s = to_sci_port(port);
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1793

1794
	if (ser->irq != s->cfg->irqs[SCIx_TXI_IRQ] || ser->irq > nr_irqs)
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1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819
		return -EINVAL;
	if (ser->baud_base < 2400)
		/* No paper tape reader for Mitch.. */
		return -EINVAL;

	return 0;
}

static struct uart_ops sci_uart_ops = {
	.tx_empty	= sci_tx_empty,
	.set_mctrl	= sci_set_mctrl,
	.get_mctrl	= sci_get_mctrl,
	.start_tx	= sci_start_tx,
	.stop_tx	= sci_stop_tx,
	.stop_rx	= sci_stop_rx,
	.enable_ms	= sci_enable_ms,
	.break_ctl	= sci_break_ctl,
	.startup	= sci_startup,
	.shutdown	= sci_shutdown,
	.set_termios	= sci_set_termios,
	.type		= sci_type,
	.release_port	= sci_release_port,
	.request_port	= sci_request_port,
	.config_port	= sci_config_port,
	.verify_port	= sci_verify_port,
1820 1821 1822 1823
#ifdef CONFIG_CONSOLE_POLL
	.poll_get_char	= sci_poll_get_char,
	.poll_put_char	= sci_poll_put_char,
#endif
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1824 1825
};

1826 1827 1828 1829
static int __devinit sci_init_single(struct platform_device *dev,
				     struct sci_port *sci_port,
				     unsigned int index,
				     struct plat_sci_port *p)
1830
{
1831
	struct uart_port *port = &sci_port->port;
1832

1833 1834 1835
	port->ops	= &sci_uart_ops;
	port->iotype	= UPIO_MEM;
	port->line	= index;
1836 1837

	switch (p->type) {
1838 1839 1840
	case PORT_SCIFB:
		port->fifosize = 256;
		break;
1841
	case PORT_SCIFA:
1842
		port->fifosize = 64;
1843 1844
		break;
	case PORT_SCIF:
1845
		port->fifosize = 16;
1846 1847
		break;
	default:
1848
		port->fifosize = 1;
1849 1850
		break;
	}
1851

1852 1853 1854
	if (p->regtype == SCIx_PROBE_REGTYPE)
		BUG_ON(sci_probe_regmap(p) != 0);

1855
	if (dev) {
1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870 1871 1872
		sci_port->iclk = clk_get(&dev->dev, "sci_ick");
		if (IS_ERR(sci_port->iclk)) {
			sci_port->iclk = clk_get(&dev->dev, "peripheral_clk");
			if (IS_ERR(sci_port->iclk)) {
				dev_err(&dev->dev, "can't get iclk\n");
				return PTR_ERR(sci_port->iclk);
			}
		}

		/*
		 * The function clock is optional, ignore it if we can't
		 * find it.
		 */
		sci_port->fclk = clk_get(&dev->dev, "sci_fck");
		if (IS_ERR(sci_port->fclk))
			sci_port->fclk = NULL;

1873 1874
		sci_port->enable = sci_clk_enable;
		sci_port->disable = sci_clk_disable;
1875
		port->dev = &dev->dev;
M
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1876 1877

		pm_runtime_enable(&dev->dev);
1878
	}
1879

M
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1880 1881 1882 1883
	sci_port->break_timer.data = (unsigned long)sci_port;
	sci_port->break_timer.function = sci_break_timer;
	init_timer(&sci_port->break_timer);

1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909
	/*
	 * Establish some sensible defaults for the error detection.
	 */
	if (!p->error_mask)
		p->error_mask = (p->type == PORT_SCI) ?
			SCI_DEFAULT_ERROR_MASK : SCIF_DEFAULT_ERROR_MASK;

	/*
	 * Establish sensible defaults for the overrun detection, unless
	 * the part has explicitly disabled support for it.
	 */
	if (p->overrun_bit != SCIx_NOT_SUPPORTED) {
		if (p->type == PORT_SCI)
			p->overrun_bit = 5;
		else if (p->scbrr_algo_id == SCBRR_ALGO_4)
			p->overrun_bit = 9;
		else
			p->overrun_bit = 0;

		/*
		 * Make the error mask inclusive of overrun detection, if
		 * supported.
		 */
		p->error_mask |= (1 << p->overrun_bit);
	}

1910
	sci_port->cfg		= p;
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1911

1912 1913
	port->mapbase		= p->mapbase;
	port->type		= p->type;
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1914
	port->flags		= p->flags;
1915
	port->regshift		= p->regshift;
1916

1917
	/*
1918
	 * The UART port needs an IRQ value, so we peg this to the RX IRQ
1919 1920 1921 1922 1923
	 * for the multi-IRQ ports, which is where we are primarily
	 * concerned with the shutdown path synchronization.
	 *
	 * For the muxed case there's nothing more to do.
	 */
1924
	port->irq		= p->irqs[SCIx_RXI_IRQ];
1925

1926 1927 1928
	port->serial_in		= sci_serial_in;
	port->serial_out	= sci_serial_out;

1929 1930 1931
	if (p->dma_dev)
		dev_dbg(port->dev, "DMA device %p, tx %d, rx %d\n",
			p->dma_dev, p->dma_slave_tx, p->dma_slave_rx);
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1932

1933
	return 0;
1934 1935
}

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1936
#ifdef CONFIG_SERIAL_SH_SCI_CONSOLE
1937 1938 1939 1940 1941
static void serial_console_putchar(struct uart_port *port, int ch)
{
	sci_poll_put_char(port, ch);
}

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1942 1943 1944 1945 1946 1947 1948
/*
 *	Print a string to the serial port trying not to disturb
 *	any possible real use of the port...
 */
static void serial_console_write(struct console *co, const char *s,
				 unsigned count)
{
1949 1950
	struct sci_port *sci_port = &sci_ports[co->index];
	struct uart_port *port = &sci_port->port;
M
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1951
	unsigned short bits;
1952

1953 1954 1955 1956
	if (sci_port->enable)
		sci_port->enable(port);

	uart_console_write(port, s, count, serial_console_putchar);
M
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1957 1958 1959 1960 1961

	/* wait until fifo is empty and last bit has been transmitted */
	bits = SCxSR_TDxE(port) | SCxSR_TEND(port);
	while ((sci_in(port, SCxSR) & bits) != bits)
		cpu_relax();
1962

1963
	if (sci_port->disable)
1964
		sci_port->disable(port);
L
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1965 1966
}

1967
static int __devinit serial_console_setup(struct console *co, char *options)
L
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1968
{
1969
	struct sci_port *sci_port;
L
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1970 1971 1972 1973 1974 1975 1976
	struct uart_port *port;
	int baud = 115200;
	int bits = 8;
	int parity = 'n';
	int flow = 'n';
	int ret;

1977
	/*
1978
	 * Refuse to handle any bogus ports.
L
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1979
	 */
1980
	if (co->index < 0 || co->index >= SCI_NPORTS)
1981 1982
		return -ENODEV;

1983 1984 1985
	sci_port = &sci_ports[co->index];
	port = &sci_port->port;

1986 1987 1988 1989 1990 1991
	/*
	 * Refuse to handle uninitialized ports.
	 */
	if (!port->ops)
		return -ENODEV;

1992 1993 1994
	ret = sci_remap_port(port);
	if (unlikely(ret != 0))
		return ret;
1995

1996 1997
	if (sci_port->enable)
		sci_port->enable(port);
1998

L
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1999 2000 2001
	if (options)
		uart_parse_options(options, &baud, &parity, &bits, &flow);

2002
	/* TODO: disable clock */
2003
	return uart_set_options(port, co, baud, parity, bits, flow);
L
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2004 2005 2006 2007
}

static struct console serial_console = {
	.name		= "ttySC",
2008
	.device		= uart_console_device,
L
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2009 2010
	.write		= serial_console_write,
	.setup		= serial_console_setup,
P
Paul Mundt 已提交
2011
	.flags		= CON_PRINTBUFFER,
L
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2012
	.index		= -1,
2013
	.data		= &sci_uart_driver,
L
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2014 2015
};

2016 2017 2018 2019
static struct console early_serial_console = {
	.name           = "early_ttySC",
	.write          = serial_console_write,
	.flags          = CON_PRINTBUFFER,
2020
	.index		= -1,
2021
};
2022

2023 2024
static char early_serial_buf[32];

2025 2026 2027 2028 2029 2030 2031 2032 2033
static int __devinit sci_probe_earlyprintk(struct platform_device *pdev)
{
	struct plat_sci_port *cfg = pdev->dev.platform_data;

	if (early_serial_console.data)
		return -EEXIST;

	early_serial_console.index = pdev->id;

2034
	sci_init_single(NULL, &sci_ports[pdev->id], pdev->id, cfg);
2035 2036 2037 2038 2039 2040 2041 2042 2043

	serial_console_setup(&early_serial_console, early_serial_buf);

	if (!strstr(early_serial_buf, "keep"))
		early_serial_console.flags |= CON_BOOT;

	register_console(&early_serial_console);
	return 0;
}
2044 2045 2046

#define SCI_CONSOLE	(&serial_console)

2047 2048 2049 2050 2051
#else
static inline int __devinit sci_probe_earlyprintk(struct platform_device *pdev)
{
	return -EINVAL;
}
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2052

2053 2054 2055
#define SCI_CONSOLE	NULL

#endif /* CONFIG_SERIAL_SH_SCI_CONSOLE */
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2056 2057 2058 2059 2060 2061 2062 2063 2064 2065

static char banner[] __initdata =
	KERN_INFO "SuperH SCI(F) driver initialized\n";

static struct uart_driver sci_uart_driver = {
	.owner		= THIS_MODULE,
	.driver_name	= "sci",
	.dev_name	= "ttySC",
	.major		= SCI_MAJOR,
	.minor		= SCI_MINOR_START,
2066
	.nr		= SCI_NPORTS,
L
Linus Torvalds 已提交
2067 2068 2069
	.cons		= SCI_CONSOLE,
};

2070
static int sci_remove(struct platform_device *dev)
2071
{
2072
	struct sci_port *port = platform_get_drvdata(dev);
2073

2074 2075
	cpufreq_unregister_notifier(&port->freq_transition,
				    CPUFREQ_TRANSITION_NOTIFIER);
2076

2077 2078 2079 2080
	uart_remove_one_port(&sci_uart_driver, &port->port);

	clk_put(port->iclk);
	clk_put(port->fclk);
2081

M
Magnus Damm 已提交
2082
	pm_runtime_disable(&dev->dev);
2083 2084 2085
	return 0;
}

2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102
static int __devinit sci_probe_single(struct platform_device *dev,
				      unsigned int index,
				      struct plat_sci_port *p,
				      struct sci_port *sciport)
{
	int ret;

	/* Sanity check */
	if (unlikely(index >= SCI_NPORTS)) {
		dev_notice(&dev->dev, "Attempting to register port "
			   "%d when only %d are available.\n",
			   index+1, SCI_NPORTS);
		dev_notice(&dev->dev, "Consider bumping "
			   "CONFIG_SERIAL_SH_SCI_NR_UARTS!\n");
		return 0;
	}

2103 2104 2105
	ret = sci_init_single(dev, sciport, index, p);
	if (ret)
		return ret;
2106

2107
	return uart_add_one_port(&sci_uart_driver, &sciport->port);
2108 2109
}

2110
static int __devinit sci_probe(struct platform_device *dev)
L
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2111
{
2112
	struct plat_sci_port *p = dev->dev.platform_data;
2113
	struct sci_port *sp = &sci_ports[dev->id];
2114
	int ret;
2115

2116 2117 2118 2119 2120 2121 2122
	/*
	 * If we've come here via earlyprintk initialization, head off to
	 * the special early probe. We don't have sufficient device state
	 * to make it beyond this yet.
	 */
	if (is_early_platform_device(dev))
		return sci_probe_earlyprintk(dev);
2123

2124
	platform_set_drvdata(dev, sp);
2125

2126
	ret = sci_probe_single(dev, dev->id, p, sp);
2127 2128
	if (ret)
		goto err_unreg;
2129

2130
	sp->freq_transition.notifier_call = sci_notifier;
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2131

2132 2133 2134 2135
	ret = cpufreq_register_notifier(&sp->freq_transition,
					CPUFREQ_TRANSITION_NOTIFIER);
	if (unlikely(ret < 0))
		goto err_unreg;
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2136 2137 2138 2139 2140

#ifdef CONFIG_SH_STANDARD_BIOS
	sh_bios_gdb_detach();
#endif

2141
	return 0;
2142 2143

err_unreg:
2144
	sci_remove(dev);
2145
	return ret;
L
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2146 2147
}

2148
static int sci_suspend(struct device *dev)
L
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2149
{
2150
	struct sci_port *sport = dev_get_drvdata(dev);
2151

2152 2153
	if (sport)
		uart_suspend_port(&sci_uart_driver, &sport->port);
L
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2154

2155 2156
	return 0;
}
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2157

2158
static int sci_resume(struct device *dev)
2159
{
2160
	struct sci_port *sport = dev_get_drvdata(dev);
2161

2162 2163
	if (sport)
		uart_resume_port(&sci_uart_driver, &sport->port);
2164 2165 2166 2167

	return 0;
}

2168
static const struct dev_pm_ops sci_dev_pm_ops = {
2169 2170 2171 2172
	.suspend	= sci_suspend,
	.resume		= sci_resume,
};

2173 2174
static struct platform_driver sci_driver = {
	.probe		= sci_probe,
2175
	.remove		= sci_remove,
2176 2177 2178
	.driver		= {
		.name	= "sh-sci",
		.owner	= THIS_MODULE,
2179
		.pm	= &sci_dev_pm_ops,
2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191 2192 2193 2194 2195 2196 2197 2198 2199 2200 2201
	},
};

static int __init sci_init(void)
{
	int ret;

	printk(banner);

	ret = uart_register_driver(&sci_uart_driver);
	if (likely(ret == 0)) {
		ret = platform_driver_register(&sci_driver);
		if (unlikely(ret))
			uart_unregister_driver(&sci_uart_driver);
	}

	return ret;
}

static void __exit sci_exit(void)
{
	platform_driver_unregister(&sci_driver);
L
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2202 2203 2204
	uart_unregister_driver(&sci_uart_driver);
}

2205 2206 2207 2208
#ifdef CONFIG_SERIAL_SH_SCI_CONSOLE
early_platform_init_buffer("earlyprintk", &sci_driver,
			   early_serial_buf, ARRAY_SIZE(early_serial_buf));
#endif
L
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2209 2210 2211
module_init(sci_init);
module_exit(sci_exit);

2212
MODULE_LICENSE("GPL");
2213
MODULE_ALIAS("platform:sh-sci");