amba-pl011.c 54.4 KB
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/*
 *  Driver for AMBA serial ports
 *
 *  Based on drivers/char/serial.c, by Linus Torvalds, Theodore Ts'o.
 *
 *  Copyright 1999 ARM Limited
 *  Copyright (C) 2000 Deep Blue Solutions Ltd.
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 *  Copyright (C) 2010 ST-Ericsson SA
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 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2 of the License, or
 * (at your option) any later version.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
 *
 * This is a generic driver for ARM AMBA-type serial ports.  They
 * have a lot of 16550-like features, but are not register compatible.
 * Note that although they do have CTS, DCD and DSR inputs, they do
 * not have an RI input, nor do they have DTR or RTS outputs.  If
 * required, these have to be supplied via some other means (eg, GPIO)
 * and hooked into this driver.
 */

#if defined(CONFIG_SERIAL_AMBA_PL011_CONSOLE) && defined(CONFIG_MAGIC_SYSRQ)
#define SUPPORT_SYSRQ
#endif

#include <linux/module.h>
#include <linux/ioport.h>
#include <linux/init.h>
#include <linux/console.h>
#include <linux/sysrq.h>
#include <linux/device.h>
#include <linux/tty.h>
#include <linux/tty_flip.h>
#include <linux/serial_core.h>
#include <linux/serial.h>
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#include <linux/amba/bus.h>
#include <linux/amba/serial.h>
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#include <linux/clk.h>
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#include <linux/slab.h>
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#include <linux/dmaengine.h>
#include <linux/dma-mapping.h>
#include <linux/scatterlist.h>
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#include <linux/delay.h>
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#include <linux/types.h>
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#include <linux/of.h>
#include <linux/of_device.h>
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#include <linux/pinctrl/consumer.h>
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#include <linux/sizes.h>
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#include <linux/io.h>
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#define UART_NR			14

#define SERIAL_AMBA_MAJOR	204
#define SERIAL_AMBA_MINOR	64
#define SERIAL_AMBA_NR		UART_NR

#define AMBA_ISR_PASS_LIMIT	256

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#define UART_DR_ERROR		(UART011_DR_OE|UART011_DR_BE|UART011_DR_PE|UART011_DR_FE)
#define UART_DUMMY_DR_RX	(1 << 16)
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/* There is by now at least one vendor with differing details, so handle it */
struct vendor_data {
	unsigned int		ifls;
	unsigned int		fifosize;
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	unsigned int		lcrh_tx;
	unsigned int		lcrh_rx;
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	bool			oversampling;
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	bool			dma_threshold;
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	bool			cts_event_workaround;
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};

static struct vendor_data vendor_arm = {
	.ifls			= UART011_IFLS_RX4_8|UART011_IFLS_TX4_8,
	.fifosize		= 16,
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	.lcrh_tx		= UART011_LCRH,
	.lcrh_rx		= UART011_LCRH,
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	.oversampling		= false,
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	.dma_threshold		= false,
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	.cts_event_workaround	= false,
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};

static struct vendor_data vendor_st = {
	.ifls			= UART011_IFLS_RX_HALF|UART011_IFLS_TX_HALF,
	.fifosize		= 64,
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	.lcrh_tx		= ST_UART011_LCRH_TX,
	.lcrh_rx		= ST_UART011_LCRH_RX,
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	.oversampling		= true,
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	.dma_threshold		= true,
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	.cts_event_workaround	= true,
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};

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static struct uart_amba_port *amba_ports[UART_NR];

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/* Deals with DMA transactions */
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struct pl011_sgbuf {
	struct scatterlist sg;
	char *buf;
};

struct pl011_dmarx_data {
	struct dma_chan		*chan;
	struct completion	complete;
	bool			use_buf_b;
	struct pl011_sgbuf	sgbuf_a;
	struct pl011_sgbuf	sgbuf_b;
	dma_cookie_t		cookie;
	bool			running;
};

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struct pl011_dmatx_data {
	struct dma_chan		*chan;
	struct scatterlist	sg;
	char			*buf;
	bool			queued;
};

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/*
 * We wrap our port structure around the generic uart_port.
 */
struct uart_amba_port {
	struct uart_port	port;
	struct clk		*clk;
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	/* Two optional pin states - default & sleep */
	struct pinctrl		*pinctrl;
	struct pinctrl_state	*pins_default;
	struct pinctrl_state	*pins_sleep;
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	const struct vendor_data *vendor;
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	unsigned int		dmacr;		/* dma control reg */
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	unsigned int		im;		/* interrupt mask */
	unsigned int		old_status;
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	unsigned int		fifosize;	/* vendor-specific */
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	unsigned int		lcrh_tx;	/* vendor-specific */
	unsigned int		lcrh_rx;	/* vendor-specific */
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	unsigned int		old_cr;		/* state during shutdown */
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	bool			autorts;
	char			type[12];
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#ifdef CONFIG_DMA_ENGINE
	/* DMA stuff */
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	bool			using_tx_dma;
	bool			using_rx_dma;
	struct pl011_dmarx_data dmarx;
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	struct pl011_dmatx_data	dmatx;
#endif
};

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/*
 * Reads up to 256 characters from the FIFO or until it's empty and
 * inserts them into the TTY layer. Returns the number of characters
 * read from the FIFO.
 */
static int pl011_fifo_to_tty(struct uart_amba_port *uap)
{
	u16 status, ch;
	unsigned int flag, max_count = 256;
	int fifotaken = 0;

	while (max_count--) {
		status = readw(uap->port.membase + UART01x_FR);
		if (status & UART01x_FR_RXFE)
			break;

		/* Take chars from the FIFO and update status */
		ch = readw(uap->port.membase + UART01x_DR) |
			UART_DUMMY_DR_RX;
		flag = TTY_NORMAL;
		uap->port.icount.rx++;
		fifotaken++;

		if (unlikely(ch & UART_DR_ERROR)) {
			if (ch & UART011_DR_BE) {
				ch &= ~(UART011_DR_FE | UART011_DR_PE);
				uap->port.icount.brk++;
				if (uart_handle_break(&uap->port))
					continue;
			} else if (ch & UART011_DR_PE)
				uap->port.icount.parity++;
			else if (ch & UART011_DR_FE)
				uap->port.icount.frame++;
			if (ch & UART011_DR_OE)
				uap->port.icount.overrun++;

			ch &= uap->port.read_status_mask;

			if (ch & UART011_DR_BE)
				flag = TTY_BREAK;
			else if (ch & UART011_DR_PE)
				flag = TTY_PARITY;
			else if (ch & UART011_DR_FE)
				flag = TTY_FRAME;
		}

		if (uart_handle_sysrq_char(&uap->port, ch & 255))
			continue;

		uart_insert_char(&uap->port, ch, UART011_DR_OE, ch, flag);
	}

	return fifotaken;
}


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/*
 * All the DMA operation mode stuff goes inside this ifdef.
 * This assumes that you have a generic DMA device interface,
 * no custom DMA interfaces are supported.
 */
#ifdef CONFIG_DMA_ENGINE

#define PL011_DMA_BUFFER_SIZE PAGE_SIZE

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static int pl011_sgbuf_init(struct dma_chan *chan, struct pl011_sgbuf *sg,
	enum dma_data_direction dir)
{
	sg->buf = kmalloc(PL011_DMA_BUFFER_SIZE, GFP_KERNEL);
	if (!sg->buf)
		return -ENOMEM;

	sg_init_one(&sg->sg, sg->buf, PL011_DMA_BUFFER_SIZE);

	if (dma_map_sg(chan->device->dev, &sg->sg, 1, dir) != 1) {
		kfree(sg->buf);
		return -EINVAL;
	}
	return 0;
}

static void pl011_sgbuf_free(struct dma_chan *chan, struct pl011_sgbuf *sg,
	enum dma_data_direction dir)
{
	if (sg->buf) {
		dma_unmap_sg(chan->device->dev, &sg->sg, 1, dir);
		kfree(sg->buf);
	}
}

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static void pl011_dma_probe_initcall(struct device *dev, struct uart_amba_port *uap)
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{
	/* DMA is the sole user of the platform data right now */
	struct amba_pl011_data *plat = uap->port.dev->platform_data;
	struct dma_slave_config tx_conf = {
		.dst_addr = uap->port.mapbase + UART01x_DR,
		.dst_addr_width = DMA_SLAVE_BUSWIDTH_1_BYTE,
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		.direction = DMA_MEM_TO_DEV,
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		.dst_maxburst = uap->fifosize >> 1,
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		.device_fc = false,
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	};
	struct dma_chan *chan;
	dma_cap_mask_t mask;

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	chan = dma_request_slave_channel(dev, "tx");
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	if (!chan) {
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		/* We need platform data */
		if (!plat || !plat->dma_filter) {
			dev_info(uap->port.dev, "no DMA platform data\n");
			return;
		}

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

		chan = dma_request_channel(mask, plat->dma_filter,
						plat->dma_tx_param);
		if (!chan) {
			dev_err(uap->port.dev, "no TX DMA channel!\n");
			return;
		}
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	}

	dmaengine_slave_config(chan, &tx_conf);
	uap->dmatx.chan = chan;

	dev_info(uap->port.dev, "DMA channel TX %s\n",
		 dma_chan_name(uap->dmatx.chan));
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	/* Optionally make use of an RX channel as well */
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	chan = dma_request_slave_channel(dev, "rx");
	
	if (!chan && plat->dma_rx_param) {
		chan = dma_request_channel(mask, plat->dma_filter, plat->dma_rx_param);

		if (!chan) {
			dev_err(uap->port.dev, "no RX DMA channel!\n");
			return;
		}
	}

	if (chan) {
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		struct dma_slave_config rx_conf = {
			.src_addr = uap->port.mapbase + UART01x_DR,
			.src_addr_width = DMA_SLAVE_BUSWIDTH_1_BYTE,
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			.direction = DMA_DEV_TO_MEM,
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			.src_maxburst = uap->fifosize >> 1,
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			.device_fc = false,
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		};

		dmaengine_slave_config(chan, &rx_conf);
		uap->dmarx.chan = chan;

		dev_info(uap->port.dev, "DMA channel RX %s\n",
			 dma_chan_name(uap->dmarx.chan));
	}
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}

#ifndef MODULE
/*
 * Stack up the UARTs and let the above initcall be done at device
 * initcall time, because the serial driver is called as an arch
 * initcall, and at this time the DMA subsystem is not yet registered.
 * At this point the driver will switch over to using DMA where desired.
 */
struct dma_uap {
	struct list_head node;
	struct uart_amba_port *uap;
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	struct device *dev;
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};

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static LIST_HEAD(pl011_dma_uarts);

static int __init pl011_dma_initcall(void)
{
	struct list_head *node, *tmp;

	list_for_each_safe(node, tmp, &pl011_dma_uarts) {
		struct dma_uap *dmau = list_entry(node, struct dma_uap, node);
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		pl011_dma_probe_initcall(dmau->dev, dmau->uap);
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		list_del(node);
		kfree(dmau);
	}
	return 0;
}

device_initcall(pl011_dma_initcall);

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static void pl011_dma_probe(struct device *dev, struct uart_amba_port *uap)
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{
	struct dma_uap *dmau = kzalloc(sizeof(struct dma_uap), GFP_KERNEL);
	if (dmau) {
		dmau->uap = uap;
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		dmau->dev = dev;
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		list_add_tail(&dmau->node, &pl011_dma_uarts);
	}
}
#else
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static void pl011_dma_probe(struct device *dev, struct uart_amba_port *uap)
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{
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	pl011_dma_probe_initcall(dev, uap);
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}
#endif

static void pl011_dma_remove(struct uart_amba_port *uap)
{
	/* TODO: remove the initcall if it has not yet executed */
	if (uap->dmatx.chan)
		dma_release_channel(uap->dmatx.chan);
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	if (uap->dmarx.chan)
		dma_release_channel(uap->dmarx.chan);
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}

/* Forward declare this for the refill routine */
static int pl011_dma_tx_refill(struct uart_amba_port *uap);

/*
 * The current DMA TX buffer has been sent.
 * Try to queue up another DMA buffer.
 */
static void pl011_dma_tx_callback(void *data)
{
	struct uart_amba_port *uap = data;
	struct pl011_dmatx_data *dmatx = &uap->dmatx;
	unsigned long flags;
	u16 dmacr;

	spin_lock_irqsave(&uap->port.lock, flags);
	if (uap->dmatx.queued)
		dma_unmap_sg(dmatx->chan->device->dev, &dmatx->sg, 1,
			     DMA_TO_DEVICE);

	dmacr = uap->dmacr;
	uap->dmacr = dmacr & ~UART011_TXDMAE;
	writew(uap->dmacr, uap->port.membase + UART011_DMACR);

	/*
	 * If TX DMA was disabled, it means that we've stopped the DMA for
	 * some reason (eg, XOFF received, or we want to send an X-char.)
	 *
	 * Note: we need to be careful here of a potential race between DMA
	 * and the rest of the driver - if the driver disables TX DMA while
	 * a TX buffer completing, we must update the tx queued status to
	 * get further refills (hence we check dmacr).
	 */
	if (!(dmacr & UART011_TXDMAE) || uart_tx_stopped(&uap->port) ||
	    uart_circ_empty(&uap->port.state->xmit)) {
		uap->dmatx.queued = false;
		spin_unlock_irqrestore(&uap->port.lock, flags);
		return;
	}

	if (pl011_dma_tx_refill(uap) <= 0) {
		/*
		 * We didn't queue a DMA buffer for some reason, but we
		 * have data pending to be sent.  Re-enable the TX IRQ.
		 */
		uap->im |= UART011_TXIM;
		writew(uap->im, uap->port.membase + UART011_IMSC);
	}
	spin_unlock_irqrestore(&uap->port.lock, flags);
}

/*
 * Try to refill the TX DMA buffer.
 * Locking: called with port lock held and IRQs disabled.
 * Returns:
 *   1 if we queued up a TX DMA buffer.
 *   0 if we didn't want to handle this by DMA
 *  <0 on error
 */
static int pl011_dma_tx_refill(struct uart_amba_port *uap)
{
	struct pl011_dmatx_data *dmatx = &uap->dmatx;
	struct dma_chan *chan = dmatx->chan;
	struct dma_device *dma_dev = chan->device;
	struct dma_async_tx_descriptor *desc;
	struct circ_buf *xmit = &uap->port.state->xmit;
	unsigned int count;

	/*
	 * Try to avoid the overhead involved in using DMA if the
	 * transaction fits in the first half of the FIFO, by using
	 * the standard interrupt handling.  This ensures that we
	 * issue a uart_write_wakeup() at the appropriate time.
	 */
	count = uart_circ_chars_pending(xmit);
	if (count < (uap->fifosize >> 1)) {
		uap->dmatx.queued = false;
		return 0;
	}

	/*
	 * Bodge: don't send the last character by DMA, as this
	 * will prevent XON from notifying us to restart DMA.
	 */
	count -= 1;

	/* Else proceed to copy the TX chars to the DMA buffer and fire DMA */
	if (count > PL011_DMA_BUFFER_SIZE)
		count = PL011_DMA_BUFFER_SIZE;

	if (xmit->tail < xmit->head)
		memcpy(&dmatx->buf[0], &xmit->buf[xmit->tail], count);
	else {
		size_t first = UART_XMIT_SIZE - xmit->tail;
		size_t second = xmit->head;

		memcpy(&dmatx->buf[0], &xmit->buf[xmit->tail], first);
		if (second)
			memcpy(&dmatx->buf[first], &xmit->buf[0], second);
	}

	dmatx->sg.length = count;

	if (dma_map_sg(dma_dev->dev, &dmatx->sg, 1, DMA_TO_DEVICE) != 1) {
		uap->dmatx.queued = false;
		dev_dbg(uap->port.dev, "unable to map TX DMA\n");
		return -EBUSY;
	}

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	desc = dmaengine_prep_slave_sg(chan, &dmatx->sg, 1, DMA_MEM_TO_DEV,
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					     DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
	if (!desc) {
		dma_unmap_sg(dma_dev->dev, &dmatx->sg, 1, DMA_TO_DEVICE);
		uap->dmatx.queued = false;
		/*
		 * If DMA cannot be used right now, we complete this
		 * transaction via IRQ and let the TTY layer retry.
		 */
		dev_dbg(uap->port.dev, "TX DMA busy\n");
		return -EBUSY;
	}

	/* Some data to go along to the callback */
	desc->callback = pl011_dma_tx_callback;
	desc->callback_param = uap;

	/* All errors should happen at prepare time */
	dmaengine_submit(desc);

	/* Fire the DMA transaction */
	dma_dev->device_issue_pending(chan);

	uap->dmacr |= UART011_TXDMAE;
	writew(uap->dmacr, uap->port.membase + UART011_DMACR);
	uap->dmatx.queued = true;

	/*
	 * Now we know that DMA will fire, so advance the ring buffer
	 * with the stuff we just dispatched.
	 */
	xmit->tail = (xmit->tail + count) & (UART_XMIT_SIZE - 1);
	uap->port.icount.tx += count;

	if (uart_circ_chars_pending(xmit) < WAKEUP_CHARS)
		uart_write_wakeup(&uap->port);

	return 1;
}

/*
 * We received a transmit interrupt without a pending X-char but with
 * pending characters.
 * Locking: called with port lock held and IRQs disabled.
 * Returns:
 *   false if we want to use PIO to transmit
 *   true if we queued a DMA buffer
 */
static bool pl011_dma_tx_irq(struct uart_amba_port *uap)
{
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	if (!uap->using_tx_dma)
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		return false;

	/*
	 * If we already have a TX buffer queued, but received a
	 * TX interrupt, it will be because we've just sent an X-char.
	 * Ensure the TX DMA is enabled and the TX IRQ is disabled.
	 */
	if (uap->dmatx.queued) {
		uap->dmacr |= UART011_TXDMAE;
		writew(uap->dmacr, uap->port.membase + UART011_DMACR);
		uap->im &= ~UART011_TXIM;
		writew(uap->im, uap->port.membase + UART011_IMSC);
		return true;
	}

	/*
	 * We don't have a TX buffer queued, so try to queue one.
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	 * If we successfully queued a buffer, mask the TX IRQ.
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	 */
	if (pl011_dma_tx_refill(uap) > 0) {
		uap->im &= ~UART011_TXIM;
		writew(uap->im, uap->port.membase + UART011_IMSC);
		return true;
	}
	return false;
}

/*
 * Stop the DMA transmit (eg, due to received XOFF).
 * Locking: called with port lock held and IRQs disabled.
 */
static inline void pl011_dma_tx_stop(struct uart_amba_port *uap)
{
	if (uap->dmatx.queued) {
		uap->dmacr &= ~UART011_TXDMAE;
		writew(uap->dmacr, uap->port.membase + UART011_DMACR);
	}
}

/*
 * Try to start a DMA transmit, or in the case of an XON/OFF
 * character queued for send, try to get that character out ASAP.
 * Locking: called with port lock held and IRQs disabled.
 * Returns:
 *   false if we want the TX IRQ to be enabled
 *   true if we have a buffer queued
 */
static inline bool pl011_dma_tx_start(struct uart_amba_port *uap)
{
	u16 dmacr;

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	if (!uap->using_tx_dma)
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		return false;

	if (!uap->port.x_char) {
		/* no X-char, try to push chars out in DMA mode */
		bool ret = true;

		if (!uap->dmatx.queued) {
			if (pl011_dma_tx_refill(uap) > 0) {
				uap->im &= ~UART011_TXIM;
				ret = true;
			} else {
				uap->im |= UART011_TXIM;
				ret = false;
			}
			writew(uap->im, uap->port.membase + UART011_IMSC);
		} else if (!(uap->dmacr & UART011_TXDMAE)) {
			uap->dmacr |= UART011_TXDMAE;
			writew(uap->dmacr,
				       uap->port.membase + UART011_DMACR);
		}
		return ret;
	}

	/*
	 * We have an X-char to send.  Disable DMA to prevent it loading
	 * the TX fifo, and then see if we can stuff it into the FIFO.
	 */
	dmacr = uap->dmacr;
	uap->dmacr &= ~UART011_TXDMAE;
	writew(uap->dmacr, uap->port.membase + UART011_DMACR);

	if (readw(uap->port.membase + UART01x_FR) & UART01x_FR_TXFF) {
		/*
		 * No space in the FIFO, so enable the transmit interrupt
		 * so we know when there is space.  Note that once we've
		 * loaded the character, we should just re-enable DMA.
		 */
		return false;
	}

	writew(uap->port.x_char, uap->port.membase + UART01x_DR);
	uap->port.icount.tx++;
	uap->port.x_char = 0;

	/* Success - restore the DMA state */
	uap->dmacr = dmacr;
	writew(dmacr, uap->port.membase + UART011_DMACR);

	return true;
}

/*
 * Flush the transmit buffer.
 * Locking: called with port lock held and IRQs disabled.
 */
static void pl011_dma_flush_buffer(struct uart_port *port)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;

643
	if (!uap->using_tx_dma)
644 645 646 647 648 649 650 651 652 653 654 655 656 657 658
		return;

	/* Avoid deadlock with the DMA engine callback */
	spin_unlock(&uap->port.lock);
	dmaengine_terminate_all(uap->dmatx.chan);
	spin_lock(&uap->port.lock);
	if (uap->dmatx.queued) {
		dma_unmap_sg(uap->dmatx.chan->device->dev, &uap->dmatx.sg, 1,
			     DMA_TO_DEVICE);
		uap->dmatx.queued = false;
		uap->dmacr &= ~UART011_TXDMAE;
		writew(uap->dmacr, uap->port.membase + UART011_DMACR);
	}
}

659 660 661 662 663 664 665 666 667 668 669 670 671 672 673
static void pl011_dma_rx_callback(void *data);

static int pl011_dma_rx_trigger_dma(struct uart_amba_port *uap)
{
	struct dma_chan *rxchan = uap->dmarx.chan;
	struct pl011_dmarx_data *dmarx = &uap->dmarx;
	struct dma_async_tx_descriptor *desc;
	struct pl011_sgbuf *sgbuf;

	if (!rxchan)
		return -EIO;

	/* Start the RX DMA job */
	sgbuf = uap->dmarx.use_buf_b ?
		&uap->dmarx.sgbuf_b : &uap->dmarx.sgbuf_a;
674
	desc = dmaengine_prep_slave_sg(rxchan, &sgbuf->sg, 1,
675
					DMA_DEV_TO_MEM,
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
					DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
	/*
	 * If the DMA engine is busy and cannot prepare a
	 * channel, no big deal, the driver will fall back
	 * to interrupt mode as a result of this error code.
	 */
	if (!desc) {
		uap->dmarx.running = false;
		dmaengine_terminate_all(rxchan);
		return -EBUSY;
	}

	/* Some data to go along to the callback */
	desc->callback = pl011_dma_rx_callback;
	desc->callback_param = uap;
	dmarx->cookie = dmaengine_submit(desc);
	dma_async_issue_pending(rxchan);

	uap->dmacr |= UART011_RXDMAE;
	writew(uap->dmacr, uap->port.membase + UART011_DMACR);
	uap->dmarx.running = true;

	uap->im &= ~UART011_RXIM;
	writew(uap->im, uap->port.membase + UART011_IMSC);

	return 0;
}

/*
 * This is called when either the DMA job is complete, or
 * the FIFO timeout interrupt occurred. This must be called
 * with the port spinlock uap->port.lock held.
 */
static void pl011_dma_rx_chars(struct uart_amba_port *uap,
			       u32 pending, bool use_buf_b,
			       bool readfifo)
{
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	struct tty_port *port = &uap->port.state->port;
714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729
	struct pl011_sgbuf *sgbuf = use_buf_b ?
		&uap->dmarx.sgbuf_b : &uap->dmarx.sgbuf_a;
	struct device *dev = uap->dmarx.chan->device->dev;
	int dma_count = 0;
	u32 fifotaken = 0; /* only used for vdbg() */

	/* Pick everything from the DMA first */
	if (pending) {
		/* Sync in buffer */
		dma_sync_sg_for_cpu(dev, &sgbuf->sg, 1, DMA_FROM_DEVICE);

		/*
		 * First take all chars in the DMA pipe, then look in the FIFO.
		 * Note that tty_insert_flip_buf() tries to take as many chars
		 * as it can.
		 */
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		dma_count = tty_insert_flip_string(port, sgbuf->buf, pending);
731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751

		/* Return buffer to device */
		dma_sync_sg_for_device(dev, &sgbuf->sg, 1, DMA_FROM_DEVICE);

		uap->port.icount.rx += dma_count;
		if (dma_count < pending)
			dev_warn(uap->port.dev,
				 "couldn't insert all characters (TTY is full?)\n");
	}

	/*
	 * Only continue with trying to read the FIFO if all DMA chars have
	 * been taken first.
	 */
	if (dma_count == pending && readfifo) {
		/* Clear any error flags */
		writew(UART011_OEIS | UART011_BEIS | UART011_PEIS | UART011_FEIS,
		       uap->port.membase + UART011_ICR);

		/*
		 * If we read all the DMA'd characters, and we had an
752 753 754 755 756 757 758 759
		 * incomplete buffer, that could be due to an rx error, or
		 * maybe we just timed out. Read any pending chars and check
		 * the error status.
		 *
		 * Error conditions will only occur in the FIFO, these will
		 * trigger an immediate interrupt and stop the DMA job, so we
		 * will always find the error in the FIFO, never in the DMA
		 * buffer.
760
		 */
761
		fifotaken = pl011_fifo_to_tty(uap);
762 763 764 765 766 767
	}

	spin_unlock(&uap->port.lock);
	dev_vdbg(uap->port.dev,
		 "Took %d chars from DMA buffer and %d chars from the FIFO\n",
		 dma_count, fifotaken);
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	tty_flip_buffer_push(port);
769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823
	spin_lock(&uap->port.lock);
}

static void pl011_dma_rx_irq(struct uart_amba_port *uap)
{
	struct pl011_dmarx_data *dmarx = &uap->dmarx;
	struct dma_chan *rxchan = dmarx->chan;
	struct pl011_sgbuf *sgbuf = dmarx->use_buf_b ?
		&dmarx->sgbuf_b : &dmarx->sgbuf_a;
	size_t pending;
	struct dma_tx_state state;
	enum dma_status dmastat;

	/*
	 * Pause the transfer so we can trust the current counter,
	 * do this before we pause the PL011 block, else we may
	 * overflow the FIFO.
	 */
	if (dmaengine_pause(rxchan))
		dev_err(uap->port.dev, "unable to pause DMA transfer\n");
	dmastat = rxchan->device->device_tx_status(rxchan,
						   dmarx->cookie, &state);
	if (dmastat != DMA_PAUSED)
		dev_err(uap->port.dev, "unable to pause DMA transfer\n");

	/* Disable RX DMA - incoming data will wait in the FIFO */
	uap->dmacr &= ~UART011_RXDMAE;
	writew(uap->dmacr, uap->port.membase + UART011_DMACR);
	uap->dmarx.running = false;

	pending = sgbuf->sg.length - state.residue;
	BUG_ON(pending > PL011_DMA_BUFFER_SIZE);
	/* Then we terminate the transfer - we now know our residue */
	dmaengine_terminate_all(rxchan);

	/*
	 * This will take the chars we have so far and insert
	 * into the framework.
	 */
	pl011_dma_rx_chars(uap, pending, dmarx->use_buf_b, true);

	/* Switch buffer & re-trigger DMA job */
	dmarx->use_buf_b = !dmarx->use_buf_b;
	if (pl011_dma_rx_trigger_dma(uap)) {
		dev_dbg(uap->port.dev, "could not retrigger RX DMA job "
			"fall back to interrupt mode\n");
		uap->im |= UART011_RXIM;
		writew(uap->im, uap->port.membase + UART011_IMSC);
	}
}

static void pl011_dma_rx_callback(void *data)
{
	struct uart_amba_port *uap = data;
	struct pl011_dmarx_data *dmarx = &uap->dmarx;
824
	struct dma_chan *rxchan = dmarx->chan;
825
	bool lastbuf = dmarx->use_buf_b;
826 827 828 829
	struct pl011_sgbuf *sgbuf = dmarx->use_buf_b ?
		&dmarx->sgbuf_b : &dmarx->sgbuf_a;
	size_t pending;
	struct dma_tx_state state;
830 831 832 833 834 835 836 837 838 839
	int ret;

	/*
	 * This completion interrupt occurs typically when the
	 * RX buffer is totally stuffed but no timeout has yet
	 * occurred. When that happens, we just want the RX
	 * routine to flush out the secondary DMA buffer while
	 * we immediately trigger the next DMA job.
	 */
	spin_lock_irq(&uap->port.lock);
840 841 842 843 844 845 846 847 848 849
	/*
	 * Rx data can be taken by the UART interrupts during
	 * the DMA irq handler. So we check the residue here.
	 */
	rxchan->device->device_tx_status(rxchan, dmarx->cookie, &state);
	pending = sgbuf->sg.length - state.residue;
	BUG_ON(pending > PL011_DMA_BUFFER_SIZE);
	/* Then we terminate the transfer - we now know our residue */
	dmaengine_terminate_all(rxchan);

850 851 852 853
	uap->dmarx.running = false;
	dmarx->use_buf_b = !lastbuf;
	ret = pl011_dma_rx_trigger_dma(uap);

854
	pl011_dma_rx_chars(uap, pending, lastbuf, false);
855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878
	spin_unlock_irq(&uap->port.lock);
	/*
	 * Do this check after we picked the DMA chars so we don't
	 * get some IRQ immediately from RX.
	 */
	if (ret) {
		dev_dbg(uap->port.dev, "could not retrigger RX DMA job "
			"fall back to interrupt mode\n");
		uap->im |= UART011_RXIM;
		writew(uap->im, uap->port.membase + UART011_IMSC);
	}
}

/*
 * Stop accepting received characters, when we're shutting down or
 * suspending this port.
 * Locking: called with port lock held and IRQs disabled.
 */
static inline void pl011_dma_rx_stop(struct uart_amba_port *uap)
{
	/* FIXME.  Just disable the DMA enable */
	uap->dmacr &= ~UART011_RXDMAE;
	writew(uap->dmacr, uap->port.membase + UART011_DMACR);
}
879 880 881

static void pl011_dma_startup(struct uart_amba_port *uap)
{
882 883
	int ret;

884 885 886 887 888 889 890 891 892 893 894 895 896 897
	if (!uap->dmatx.chan)
		return;

	uap->dmatx.buf = kmalloc(PL011_DMA_BUFFER_SIZE, GFP_KERNEL);
	if (!uap->dmatx.buf) {
		dev_err(uap->port.dev, "no memory for DMA TX buffer\n");
		uap->port.fifosize = uap->fifosize;
		return;
	}

	sg_init_one(&uap->dmatx.sg, uap->dmatx.buf, PL011_DMA_BUFFER_SIZE);

	/* The DMA buffer is now the FIFO the TTY subsystem can use */
	uap->port.fifosize = PL011_DMA_BUFFER_SIZE;
898 899 900 901 902 903 904 905 906 907 908 909 910
	uap->using_tx_dma = true;

	if (!uap->dmarx.chan)
		goto skip_rx;

	/* Allocate and map DMA RX buffers */
	ret = pl011_sgbuf_init(uap->dmarx.chan, &uap->dmarx.sgbuf_a,
			       DMA_FROM_DEVICE);
	if (ret) {
		dev_err(uap->port.dev, "failed to init DMA %s: %d\n",
			"RX buffer A", ret);
		goto skip_rx;
	}
911

912 913 914 915 916 917 918 919 920 921 922
	ret = pl011_sgbuf_init(uap->dmarx.chan, &uap->dmarx.sgbuf_b,
			       DMA_FROM_DEVICE);
	if (ret) {
		dev_err(uap->port.dev, "failed to init DMA %s: %d\n",
			"RX buffer B", ret);
		pl011_sgbuf_free(uap->dmarx.chan, &uap->dmarx.sgbuf_a,
				 DMA_FROM_DEVICE);
		goto skip_rx;
	}

	uap->using_rx_dma = true;
923

924
skip_rx:
925 926 927
	/* Turn on DMA error (RX/TX will be enabled on demand) */
	uap->dmacr |= UART011_DMAONERR;
	writew(uap->dmacr, uap->port.membase + UART011_DMACR);
928 929 930 931 932 933 934 935 936

	/*
	 * ST Micro variants has some specific dma burst threshold
	 * compensation. Set this to 16 bytes, so burst will only
	 * be issued above/below 16 bytes.
	 */
	if (uap->vendor->dma_threshold)
		writew(ST_UART011_DMAWM_RX_16 | ST_UART011_DMAWM_TX_16,
			       uap->port.membase + ST_UART011_DMAWM);
937 938 939 940 941 942

	if (uap->using_rx_dma) {
		if (pl011_dma_rx_trigger_dma(uap))
			dev_dbg(uap->port.dev, "could not trigger initial "
				"RX DMA job, fall back to interrupt mode\n");
	}
943 944 945 946
}

static void pl011_dma_shutdown(struct uart_amba_port *uap)
{
947
	if (!(uap->using_tx_dma || uap->using_rx_dma))
948 949 950 951 952 953 954 955 956 957 958
		return;

	/* Disable RX and TX DMA */
	while (readw(uap->port.membase + UART01x_FR) & UART01x_FR_BUSY)
		barrier();

	spin_lock_irq(&uap->port.lock);
	uap->dmacr &= ~(UART011_DMAONERR | UART011_RXDMAE | UART011_TXDMAE);
	writew(uap->dmacr, uap->port.membase + UART011_DMACR);
	spin_unlock_irq(&uap->port.lock);

959 960 961 962 963 964 965 966 967 968 969
	if (uap->using_tx_dma) {
		/* In theory, this should already be done by pl011_dma_flush_buffer */
		dmaengine_terminate_all(uap->dmatx.chan);
		if (uap->dmatx.queued) {
			dma_unmap_sg(uap->dmatx.chan->device->dev, &uap->dmatx.sg, 1,
				     DMA_TO_DEVICE);
			uap->dmatx.queued = false;
		}

		kfree(uap->dmatx.buf);
		uap->using_tx_dma = false;
970 971
	}

972 973 974 975 976 977 978 979
	if (uap->using_rx_dma) {
		dmaengine_terminate_all(uap->dmarx.chan);
		/* Clean up the RX DMA */
		pl011_sgbuf_free(uap->dmarx.chan, &uap->dmarx.sgbuf_a, DMA_FROM_DEVICE);
		pl011_sgbuf_free(uap->dmarx.chan, &uap->dmarx.sgbuf_b, DMA_FROM_DEVICE);
		uap->using_rx_dma = false;
	}
}
980

981 982 983
static inline bool pl011_dma_rx_available(struct uart_amba_port *uap)
{
	return uap->using_rx_dma;
984 985
}

986 987 988 989 990 991
static inline bool pl011_dma_rx_running(struct uart_amba_port *uap)
{
	return uap->using_rx_dma && uap->dmarx.running;
}


992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023
#else
/* Blank functions if the DMA engine is not available */
static inline void pl011_dma_probe(struct uart_amba_port *uap)
{
}

static inline void pl011_dma_remove(struct uart_amba_port *uap)
{
}

static inline void pl011_dma_startup(struct uart_amba_port *uap)
{
}

static inline void pl011_dma_shutdown(struct uart_amba_port *uap)
{
}

static inline bool pl011_dma_tx_irq(struct uart_amba_port *uap)
{
	return false;
}

static inline void pl011_dma_tx_stop(struct uart_amba_port *uap)
{
}

static inline bool pl011_dma_tx_start(struct uart_amba_port *uap)
{
	return false;
}

1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046
static inline void pl011_dma_rx_irq(struct uart_amba_port *uap)
{
}

static inline void pl011_dma_rx_stop(struct uart_amba_port *uap)
{
}

static inline int pl011_dma_rx_trigger_dma(struct uart_amba_port *uap)
{
	return -EIO;
}

static inline bool pl011_dma_rx_available(struct uart_amba_port *uap)
{
	return false;
}

static inline bool pl011_dma_rx_running(struct uart_amba_port *uap)
{
	return false;
}

1047 1048 1049
#define pl011_dma_flush_buffer	NULL
#endif

1050
static void pl011_stop_tx(struct uart_port *port)
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{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;

	uap->im &= ~UART011_TXIM;
	writew(uap->im, uap->port.membase + UART011_IMSC);
1056
	pl011_dma_tx_stop(uap);
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}

1059
static void pl011_start_tx(struct uart_port *port)
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{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;

1063 1064 1065 1066
	if (!pl011_dma_tx_start(uap)) {
		uap->im |= UART011_TXIM;
		writew(uap->im, uap->port.membase + UART011_IMSC);
	}
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}

static void pl011_stop_rx(struct uart_port *port)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;

	uap->im &= ~(UART011_RXIM|UART011_RTIM|UART011_FEIM|
		     UART011_PEIM|UART011_BEIM|UART011_OEIM);
	writew(uap->im, uap->port.membase + UART011_IMSC);
1076 1077

	pl011_dma_rx_stop(uap);
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}

static void pl011_enable_ms(struct uart_port *port)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;

	uap->im |= UART011_RIMIM|UART011_CTSMIM|UART011_DCDMIM|UART011_DSRMIM;
	writew(uap->im, uap->port.membase + UART011_IMSC);
}

1088
static void pl011_rx_chars(struct uart_amba_port *uap)
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{
1090
	pl011_fifo_to_tty(uap);
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1091

1092
	spin_unlock(&uap->port.lock);
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	tty_flip_buffer_push(&uap->port.state->port);
1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106
	/*
	 * If we were temporarily out of DMA mode for a while,
	 * attempt to switch back to DMA mode again.
	 */
	if (pl011_dma_rx_available(uap)) {
		if (pl011_dma_rx_trigger_dma(uap)) {
			dev_dbg(uap->port.dev, "could not trigger RX DMA job "
				"fall back to interrupt mode again\n");
			uap->im |= UART011_RXIM;
		} else
			uap->im &= ~UART011_RXIM;
		writew(uap->im, uap->port.membase + UART011_IMSC);
	}
1107
	spin_lock(&uap->port.lock);
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}

static void pl011_tx_chars(struct uart_amba_port *uap)
{
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	struct circ_buf *xmit = &uap->port.state->xmit;
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	int count;

	if (uap->port.x_char) {
		writew(uap->port.x_char, uap->port.membase + UART01x_DR);
		uap->port.icount.tx++;
		uap->port.x_char = 0;
		return;
	}
	if (uart_circ_empty(xmit) || uart_tx_stopped(&uap->port)) {
1122
		pl011_stop_tx(&uap->port);
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1123 1124 1125
		return;
	}

1126 1127 1128 1129
	/* If we are using DMA mode, try to send some characters. */
	if (pl011_dma_tx_irq(uap))
		return;

1130
	count = uap->fifosize >> 1;
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	do {
		writew(xmit->buf[xmit->tail], uap->port.membase + UART01x_DR);
		xmit->tail = (xmit->tail + 1) & (UART_XMIT_SIZE - 1);
		uap->port.icount.tx++;
		if (uart_circ_empty(xmit))
			break;
	} while (--count > 0);

	if (uart_circ_chars_pending(xmit) < WAKEUP_CHARS)
		uart_write_wakeup(&uap->port);

	if (uart_circ_empty(xmit))
1143
		pl011_stop_tx(&uap->port);
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}

static void pl011_modem_status(struct uart_amba_port *uap)
{
	unsigned int status, delta;

	status = readw(uap->port.membase + UART01x_FR) & UART01x_FR_MODEM_ANY;

	delta = status ^ uap->old_status;
	uap->old_status = status;

	if (!delta)
		return;

	if (delta & UART01x_FR_DCD)
		uart_handle_dcd_change(&uap->port, status & UART01x_FR_DCD);

	if (delta & UART01x_FR_DSR)
		uap->port.icount.dsr++;

	if (delta & UART01x_FR_CTS)
		uart_handle_cts_change(&uap->port, status & UART01x_FR_CTS);

1167
	wake_up_interruptible(&uap->port.state->port.delta_msr_wait);
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}

1170
static irqreturn_t pl011_int(int irq, void *dev_id)
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1171 1172
{
	struct uart_amba_port *uap = dev_id;
1173
	unsigned long flags;
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	unsigned int status, pass_counter = AMBA_ISR_PASS_LIMIT;
	int handled = 0;
1176
	unsigned int dummy_read;
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1178
	spin_lock_irqsave(&uap->port.lock, flags);
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	status = readw(uap->port.membase + UART011_MIS);
	if (status) {
		do {
1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195
			if (uap->vendor->cts_event_workaround) {
				/* workaround to make sure that all bits are unlocked.. */
				writew(0x00, uap->port.membase + UART011_ICR);

				/*
				 * WA: introduce 26ns(1 uart clk) delay before W1C;
				 * single apb access will incur 2 pclk(133.12Mhz) delay,
				 * so add 2 dummy reads
				 */
				dummy_read = readw(uap->port.membase + UART011_ICR);
				dummy_read = readw(uap->port.membase + UART011_ICR);
			}

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			writew(status & ~(UART011_TXIS|UART011_RTIS|
					  UART011_RXIS),
			       uap->port.membase + UART011_ICR);

1200 1201 1202 1203 1204 1205
			if (status & (UART011_RTIS|UART011_RXIS)) {
				if (pl011_dma_rx_running(uap))
					pl011_dma_rx_irq(uap);
				else
					pl011_rx_chars(uap);
			}
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			if (status & (UART011_DSRMIS|UART011_DCDMIS|
				      UART011_CTSMIS|UART011_RIMIS))
				pl011_modem_status(uap);
			if (status & UART011_TXIS)
				pl011_tx_chars(uap);

1212
			if (pass_counter-- == 0)
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				break;

			status = readw(uap->port.membase + UART011_MIS);
		} while (status != 0);
		handled = 1;
	}

1220
	spin_unlock_irqrestore(&uap->port.lock, flags);
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	return IRQ_RETVAL(handled);
}

1225
static unsigned int pl011_tx_empty(struct uart_port *port)
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{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	unsigned int status = readw(uap->port.membase + UART01x_FR);
	return status & (UART01x_FR_BUSY|UART01x_FR_TXFF) ? 0 : TIOCSER_TEMT;
}

1232
static unsigned int pl011_get_mctrl(struct uart_port *port)
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{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	unsigned int result = 0;
	unsigned int status = readw(uap->port.membase + UART01x_FR);

J
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1238
#define TIOCMBIT(uartbit, tiocmbit)	\
L
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	if (status & uartbit)		\
		result |= tiocmbit

J
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1242 1243 1244 1245 1246
	TIOCMBIT(UART01x_FR_DCD, TIOCM_CAR);
	TIOCMBIT(UART01x_FR_DSR, TIOCM_DSR);
	TIOCMBIT(UART01x_FR_CTS, TIOCM_CTS);
	TIOCMBIT(UART011_FR_RI, TIOCM_RNG);
#undef TIOCMBIT
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	return result;
}

static void pl011_set_mctrl(struct uart_port *port, unsigned int mctrl)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	unsigned int cr;

	cr = readw(uap->port.membase + UART011_CR);

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#define	TIOCMBIT(tiocmbit, uartbit)		\
L
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	if (mctrl & tiocmbit)		\
		cr |= uartbit;		\
	else				\
		cr &= ~uartbit

J
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1263 1264 1265 1266 1267
	TIOCMBIT(TIOCM_RTS, UART011_CR_RTS);
	TIOCMBIT(TIOCM_DTR, UART011_CR_DTR);
	TIOCMBIT(TIOCM_OUT1, UART011_CR_OUT1);
	TIOCMBIT(TIOCM_OUT2, UART011_CR_OUT2);
	TIOCMBIT(TIOCM_LOOP, UART011_CR_LBE);
1268 1269 1270 1271 1272

	if (uap->autorts) {
		/* We need to disable auto-RTS if we want to turn RTS off */
		TIOCMBIT(TIOCM_RTS, UART011_CR_RTSEN);
	}
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#undef TIOCMBIT
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	writew(cr, uap->port.membase + UART011_CR);
}

static void pl011_break_ctl(struct uart_port *port, int break_state)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	unsigned long flags;
	unsigned int lcr_h;

	spin_lock_irqsave(&uap->port.lock, flags);
1285
	lcr_h = readw(uap->port.membase + uap->lcrh_tx);
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	if (break_state == -1)
		lcr_h |= UART01x_LCRH_BRK;
	else
		lcr_h &= ~UART01x_LCRH_BRK;
1290
	writew(lcr_h, uap->port.membase + uap->lcrh_tx);
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	spin_unlock_irqrestore(&uap->port.lock, flags);
}

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#ifdef CONFIG_CONSOLE_POLL
1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317

static void pl011_quiesce_irqs(struct uart_port *port)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	unsigned char __iomem *regs = uap->port.membase;

	writew(readw(regs + UART011_MIS), regs + UART011_ICR);
	/*
	 * There is no way to clear TXIM as this is "ready to transmit IRQ", so
	 * we simply mask it. start_tx() will unmask it.
	 *
	 * Note we can race with start_tx(), and if the race happens, the
	 * polling user might get another interrupt just after we clear it.
	 * But it should be OK and can happen even w/o the race, e.g.
	 * controller immediately got some new data and raised the IRQ.
	 *
	 * And whoever uses polling routines assumes that it manages the device
	 * (including tx queue), so we're also fine with start_tx()'s caller
	 * side.
	 */
	writew(readw(regs + UART011_IMSC) & ~UART011_TXIM, regs + UART011_IMSC);
}

1318
static int pl011_get_poll_char(struct uart_port *port)
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{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	unsigned int status;

1323 1324 1325 1326 1327 1328
	/*
	 * The caller might need IRQs lowered, e.g. if used with KDB NMI
	 * debugger.
	 */
	pl011_quiesce_irqs(port);

1329 1330 1331
	status = readw(uap->port.membase + UART01x_FR);
	if (status & UART01x_FR_RXFE)
		return NO_POLL_CHAR;
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1332 1333 1334 1335

	return readw(uap->port.membase + UART01x_DR);
}

1336
static void pl011_put_poll_char(struct uart_port *port,
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1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348
			 unsigned char ch)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;

	while (readw(uap->port.membase + UART01x_FR) & UART01x_FR_TXFF)
		barrier();

	writew(ch, uap->port.membase + UART01x_DR);
}

#endif /* CONFIG_CONSOLE_POLL */

1349
static int pl011_hwinit(struct uart_port *port)
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{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	int retval;

1354 1355 1356 1357 1358 1359 1360 1361
	/* Optionaly enable pins to be muxed in and configured */
	if (!IS_ERR(uap->pins_default)) {
		retval = pinctrl_select_state(uap->pinctrl, uap->pins_default);
		if (retval)
			dev_err(port->dev,
				"could not set default pins\n");
	}

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	/*
	 * Try to enable the clock producer.
	 */
1365
	retval = clk_prepare_enable(uap->clk);
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	if (retval)
1367
		goto out;
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	uap->port.uartclk = clk_get_rate(uap->clk);

1371 1372 1373 1374
	/* Clear pending error and receive interrupts */
	writew(UART011_OEIS | UART011_BEIS | UART011_PEIS | UART011_FEIS |
	       UART011_RTIS | UART011_RXIS, uap->port.membase + UART011_ICR);

1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405
	/*
	 * Save interrupts enable mask, and enable RX interrupts in case if
	 * the interrupt is used for NMI entry.
	 */
	uap->im = readw(uap->port.membase + UART011_IMSC);
	writew(UART011_RTIM | UART011_RXIM, uap->port.membase + UART011_IMSC);

	if (uap->port.dev->platform_data) {
		struct amba_pl011_data *plat;

		plat = uap->port.dev->platform_data;
		if (plat->init)
			plat->init();
	}
	return 0;
 out:
	return retval;
}

static int pl011_startup(struct uart_port *port)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	unsigned int cr;
	int retval;

	retval = pl011_hwinit(port);
	if (retval)
		goto clk_dis;

	writew(uap->im, uap->port.membase + UART011_IMSC);

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	/*
	 * Allocate the IRQ
	 */
	retval = request_irq(uap->port.irq, pl011_int, 0, "uart-pl011", uap);
	if (retval)
		goto clk_dis;

1413
	writew(uap->vendor->ifls, uap->port.membase + UART011_IFLS);
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	/*
	 * Provoke TX FIFO interrupt into asserting.
	 */
	cr = UART01x_CR_UARTEN | UART011_CR_TXE | UART011_CR_LBE;
	writew(cr, uap->port.membase + UART011_CR);
	writew(0, uap->port.membase + UART011_FBRD);
	writew(1, uap->port.membase + UART011_IBRD);
1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432
	writew(0, uap->port.membase + uap->lcrh_rx);
	if (uap->lcrh_tx != uap->lcrh_rx) {
		int i;
		/*
		 * Wait 10 PCLKs before writing LCRH_TX register,
		 * to get this delay write read only register 10 times
		 */
		for (i = 0; i < 10; ++i)
			writew(0xff, uap->port.membase + UART011_MIS);
		writew(0, uap->port.membase + uap->lcrh_tx);
	}
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	writew(0, uap->port.membase + UART01x_DR);
	while (readw(uap->port.membase + UART01x_FR) & UART01x_FR_BUSY)
		barrier();

1437 1438 1439
	/* restore RTS and DTR */
	cr = uap->old_cr & (UART011_CR_RTS | UART011_CR_DTR);
	cr |= UART01x_CR_UARTEN | UART011_CR_RXE | UART011_CR_TXE;
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	writew(cr, uap->port.membase + UART011_CR);

	/*
	 * initialise the old status of the modem signals
	 */
	uap->old_status = readw(uap->port.membase + UART01x_FR) & UART01x_FR_MODEM_ANY;

1447 1448 1449
	/* Startup DMA */
	pl011_dma_startup(uap);

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	/*
1451 1452 1453
	 * Finally, enable interrupts, only timeouts when using DMA
	 * if initial RX DMA job failed, start in interrupt mode
	 * as well.
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	 */
	spin_lock_irq(&uap->port.lock);
1456 1457 1458
	/* Clear out any spuriously appearing RX interrupts */
	 writew(UART011_RTIS | UART011_RXIS,
		uap->port.membase + UART011_ICR);
1459 1460 1461
	uap->im = UART011_RTIM;
	if (!pl011_dma_rx_running(uap))
		uap->im |= UART011_RXIM;
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	writew(uap->im, uap->port.membase + UART011_IMSC);
	spin_unlock_irq(&uap->port.lock);

	return 0;

 clk_dis:
1468
	clk_disable_unprepare(uap->clk);
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	return retval;
}

1472 1473 1474 1475 1476 1477 1478 1479 1480 1481
static void pl011_shutdown_channel(struct uart_amba_port *uap,
					unsigned int lcrh)
{
      unsigned long val;

      val = readw(uap->port.membase + lcrh);
      val &= ~(UART01x_LCRH_BRK | UART01x_LCRH_FEN);
      writew(val, uap->port.membase + lcrh);
}

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static void pl011_shutdown(struct uart_port *port)
{
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
1485
	unsigned int cr;
1486
	int retval;
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	/*
	 * disable all interrupts
	 */
	spin_lock_irq(&uap->port.lock);
	uap->im = 0;
	writew(uap->im, uap->port.membase + UART011_IMSC);
	writew(0xffff, uap->port.membase + UART011_ICR);
	spin_unlock_irq(&uap->port.lock);

1497 1498
	pl011_dma_shutdown(uap);

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	/*
	 * Free the interrupt
	 */
	free_irq(uap->port.irq, uap);

	/*
	 * disable the port
1506 1507 1508
	 * disable the port. It should not disable RTS and DTR.
	 * Also RTS and DTR state should be preserved to restore
	 * it during startup().
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	 */
1510
	uap->autorts = false;
1511 1512 1513 1514 1515
	cr = readw(uap->port.membase + UART011_CR);
	uap->old_cr = cr;
	cr &= UART011_CR_RTS | UART011_CR_DTR;
	cr |= UART01x_CR_UARTEN | UART011_CR_TXE;
	writew(cr, uap->port.membase + UART011_CR);
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	/*
	 * disable break condition and fifos
	 */
1520 1521 1522
	pl011_shutdown_channel(uap, uap->lcrh_rx);
	if (uap->lcrh_rx != uap->lcrh_tx)
		pl011_shutdown_channel(uap, uap->lcrh_tx);
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	/*
	 * Shut down the clock producer
	 */
1527
	clk_disable_unprepare(uap->clk);
1528 1529 1530 1531 1532 1533 1534 1535
	/* Optionally let pins go into sleep states */
	if (!IS_ERR(uap->pins_sleep)) {
		retval = pinctrl_select_state(uap->pinctrl, uap->pins_sleep);
		if (retval)
			dev_err(port->dev,
				"could not set pins to sleep state\n");
	}

1536 1537 1538 1539 1540 1541 1542 1543 1544

	if (uap->port.dev->platform_data) {
		struct amba_pl011_data *plat;

		plat = uap->port.dev->platform_data;
		if (plat->exit)
			plat->exit();
	}

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}

static void
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pl011_set_termios(struct uart_port *port, struct ktermios *termios,
		     struct ktermios *old)
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{
1551
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
L
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	unsigned int lcr_h, old_cr;
	unsigned long flags;
1554 1555 1556 1557 1558 1559
	unsigned int baud, quot, clkdiv;

	if (uap->vendor->oversampling)
		clkdiv = 8;
	else
		clkdiv = 16;
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	/*
	 * Ask the core to calculate the divisor for us.
	 */
1564
	baud = uart_get_baud_rate(port, termios, old, 0,
1565
				  port->uartclk / clkdiv);
1566 1567 1568 1569 1570

	if (baud > port->uartclk/16)
		quot = DIV_ROUND_CLOSEST(port->uartclk * 8, baud);
	else
		quot = DIV_ROUND_CLOSEST(port->uartclk * 4, baud);
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	switch (termios->c_cflag & CSIZE) {
	case CS5:
		lcr_h = UART01x_LCRH_WLEN_5;
		break;
	case CS6:
		lcr_h = UART01x_LCRH_WLEN_6;
		break;
	case CS7:
		lcr_h = UART01x_LCRH_WLEN_7;
		break;
	default: // CS8
		lcr_h = UART01x_LCRH_WLEN_8;
		break;
	}
	if (termios->c_cflag & CSTOPB)
		lcr_h |= UART01x_LCRH_STP2;
	if (termios->c_cflag & PARENB) {
		lcr_h |= UART01x_LCRH_PEN;
		if (!(termios->c_cflag & PARODD))
			lcr_h |= UART01x_LCRH_EPS;
	}
1593
	if (uap->fifosize > 1)
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		lcr_h |= UART01x_LCRH_FEN;

	spin_lock_irqsave(&port->lock, flags);

	/*
	 * Update the per-port timeout.
	 */
	uart_update_timeout(port, termios->c_cflag, baud);

1603
	port->read_status_mask = UART011_DR_OE | 255;
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	if (termios->c_iflag & INPCK)
1605
		port->read_status_mask |= UART011_DR_FE | UART011_DR_PE;
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	if (termios->c_iflag & (BRKINT | PARMRK))
1607
		port->read_status_mask |= UART011_DR_BE;
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	/*
	 * Characters to ignore
	 */
	port->ignore_status_mask = 0;
	if (termios->c_iflag & IGNPAR)
1614
		port->ignore_status_mask |= UART011_DR_FE | UART011_DR_PE;
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	if (termios->c_iflag & IGNBRK) {
1616
		port->ignore_status_mask |= UART011_DR_BE;
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		/*
		 * If we're ignoring parity and break indicators,
		 * ignore overruns too (for real raw support).
		 */
		if (termios->c_iflag & IGNPAR)
1622
			port->ignore_status_mask |= UART011_DR_OE;
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	}

	/*
	 * Ignore all characters if CREAD is not set.
	 */
	if ((termios->c_cflag & CREAD) == 0)
1629
		port->ignore_status_mask |= UART_DUMMY_DR_RX;
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	if (UART_ENABLE_MS(port, termios->c_cflag))
		pl011_enable_ms(port);

	/* first, disable everything */
	old_cr = readw(port->membase + UART011_CR);
	writew(0, port->membase + UART011_CR);

1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648
	if (termios->c_cflag & CRTSCTS) {
		if (old_cr & UART011_CR_RTS)
			old_cr |= UART011_CR_RTSEN;

		old_cr |= UART011_CR_CTSEN;
		uap->autorts = true;
	} else {
		old_cr &= ~(UART011_CR_CTSEN | UART011_CR_RTSEN);
		uap->autorts = false;
	}

1649 1650
	if (uap->vendor->oversampling) {
		if (baud > port->uartclk / 16)
1651 1652 1653 1654 1655
			old_cr |= ST_UART011_CR_OVSFACT;
		else
			old_cr &= ~ST_UART011_CR_OVSFACT;
	}

1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667
	/*
	 * Workaround for the ST Micro oversampling variants to
	 * increase the bitrate slightly, by lowering the divisor,
	 * to avoid delayed sampling of start bit at high speeds,
	 * else we see data corruption.
	 */
	if (uap->vendor->oversampling) {
		if ((baud >= 3000000) && (baud < 3250000) && (quot > 1))
			quot -= 1;
		else if ((baud > 3250000) && (quot > 2))
			quot -= 2;
	}
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	/* Set baud rate */
	writew(quot & 0x3f, port->membase + UART011_FBRD);
	writew(quot >> 6, port->membase + UART011_IBRD);

	/*
	 * ----------v----------v----------v----------v-----
1674 1675
	 * NOTE: lcrh_tx and lcrh_rx MUST BE WRITTEN AFTER
	 * UART011_FBRD & UART011_IBRD.
L
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	 * ----------^----------^----------^----------^-----
	 */
1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688
	writew(lcr_h, port->membase + uap->lcrh_rx);
	if (uap->lcrh_rx != uap->lcrh_tx) {
		int i;
		/*
		 * Wait 10 PCLKs before writing LCRH_TX register,
		 * to get this delay write read only register 10 times
		 */
		for (i = 0; i < 10; ++i)
			writew(0xff, uap->port.membase + UART011_MIS);
		writew(lcr_h, port->membase + uap->lcrh_tx);
	}
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	writew(old_cr, port->membase + UART011_CR);

	spin_unlock_irqrestore(&port->lock, flags);
}

static const char *pl011_type(struct uart_port *port)
{
1696 1697
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
	return uap->port.type == PORT_AMBA ? uap->type : NULL;
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}

/*
 * Release the memory region(s) being used by 'port'
 */
1703
static void pl011_release_port(struct uart_port *port)
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{
	release_mem_region(port->mapbase, SZ_4K);
}

/*
 * Request the memory region(s) being used by 'port'
 */
1711
static int pl011_request_port(struct uart_port *port)
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{
	return request_mem_region(port->mapbase, SZ_4K, "uart-pl011")
			!= NULL ? 0 : -EBUSY;
}

/*
 * Configure/autoconfigure the port.
 */
1720
static void pl011_config_port(struct uart_port *port, int flags)
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{
	if (flags & UART_CONFIG_TYPE) {
		port->type = PORT_AMBA;
1724
		pl011_request_port(port);
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	}
}

/*
 * verify the new serial_struct (for TIOCSSERIAL).
 */
1731
static int pl011_verify_port(struct uart_port *port, struct serial_struct *ser)
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{
	int ret = 0;
	if (ser->type != PORT_UNKNOWN && ser->type != PORT_AMBA)
		ret = -EINVAL;
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	if (ser->irq < 0 || ser->irq >= nr_irqs)
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		ret = -EINVAL;
	if (ser->baud_base < 9600)
		ret = -EINVAL;
	return ret;
}

static struct uart_ops amba_pl011_pops = {
1744
	.tx_empty	= pl011_tx_empty,
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	.set_mctrl	= pl011_set_mctrl,
1746
	.get_mctrl	= pl011_get_mctrl,
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	.stop_tx	= pl011_stop_tx,
	.start_tx	= pl011_start_tx,
	.stop_rx	= pl011_stop_rx,
	.enable_ms	= pl011_enable_ms,
	.break_ctl	= pl011_break_ctl,
	.startup	= pl011_startup,
	.shutdown	= pl011_shutdown,
1754
	.flush_buffer	= pl011_dma_flush_buffer,
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	.set_termios	= pl011_set_termios,
	.type		= pl011_type,
1757 1758 1759 1760
	.release_port	= pl011_release_port,
	.request_port	= pl011_request_port,
	.config_port	= pl011_config_port,
	.verify_port	= pl011_verify_port,
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#ifdef CONFIG_CONSOLE_POLL
1762
	.poll_init     = pl011_hwinit,
1763 1764
	.poll_get_char = pl011_get_poll_char,
	.poll_put_char = pl011_put_poll_char,
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#endif
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};

static struct uart_amba_port *amba_ports[UART_NR];

#ifdef CONFIG_SERIAL_AMBA_PL011_CONSOLE

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static void pl011_console_putchar(struct uart_port *port, int ch)
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{
1774
	struct uart_amba_port *uap = (struct uart_amba_port *)port;
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1776 1777
	while (readw(uap->port.membase + UART01x_FR) & UART01x_FR_TXFF)
		barrier();
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	writew(ch, uap->port.membase + UART01x_DR);
}

static void
pl011_console_write(struct console *co, const char *s, unsigned int count)
{
	struct uart_amba_port *uap = amba_ports[co->index];
	unsigned int status, old_cr, new_cr;
1786 1787
	unsigned long flags;
	int locked = 1;
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	clk_enable(uap->clk);

1791 1792 1793 1794 1795 1796 1797 1798
	local_irq_save(flags);
	if (uap->port.sysrq)
		locked = 0;
	else if (oops_in_progress)
		locked = spin_trylock(&uap->port.lock);
	else
		spin_lock(&uap->port.lock);

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	/*
	 *	First save the CR then disable the interrupts
	 */
	old_cr = readw(uap->port.membase + UART011_CR);
	new_cr = old_cr & ~UART011_CR_CTSEN;
	new_cr |= UART01x_CR_UARTEN | UART011_CR_TXE;
	writew(new_cr, uap->port.membase + UART011_CR);

1807
	uart_console_write(&uap->port, s, count, pl011_console_putchar);
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	/*
	 *	Finally, wait for transmitter to become empty
	 *	and restore the TCR
	 */
	do {
		status = readw(uap->port.membase + UART01x_FR);
	} while (status & UART01x_FR_BUSY);
	writew(old_cr, uap->port.membase + UART011_CR);

1818 1819 1820 1821
	if (locked)
		spin_unlock(&uap->port.lock);
	local_irq_restore(flags);

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	clk_disable(uap->clk);
}

static void __init
pl011_console_get_options(struct uart_amba_port *uap, int *baud,
			     int *parity, int *bits)
{
	if (readw(uap->port.membase + UART011_CR) & UART01x_CR_UARTEN) {
		unsigned int lcr_h, ibrd, fbrd;

1832
		lcr_h = readw(uap->port.membase + uap->lcrh_tx);
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		*parity = 'n';
		if (lcr_h & UART01x_LCRH_PEN) {
			if (lcr_h & UART01x_LCRH_EPS)
				*parity = 'e';
			else
				*parity = 'o';
		}

		if ((lcr_h & 0x60) == UART01x_LCRH_WLEN_7)
			*bits = 7;
		else
			*bits = 8;

		ibrd = readw(uap->port.membase + UART011_IBRD);
		fbrd = readw(uap->port.membase + UART011_FBRD);

		*baud = uap->port.uartclk * 4 / (64 * ibrd + fbrd);
1851

1852
		if (uap->vendor->oversampling) {
1853 1854 1855 1856
			if (readw(uap->port.membase + UART011_CR)
				  & ST_UART011_CR_OVSFACT)
				*baud *= 2;
		}
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	}
}

static int __init pl011_console_setup(struct console *co, char *options)
{
	struct uart_amba_port *uap;
	int baud = 38400;
	int bits = 8;
	int parity = 'n';
	int flow = 'n';
1867
	int ret;
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	/*
	 * Check whether an invalid uart number has been specified, and
	 * if so, search for the first available port that does have
	 * console support.
	 */
	if (co->index >= UART_NR)
		co->index = 0;
	uap = amba_ports[co->index];
1877 1878
	if (!uap)
		return -ENODEV;
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1880 1881 1882 1883 1884 1885 1886 1887
	/* Allow pins to be muxed in and configured */
	if (!IS_ERR(uap->pins_default)) {
		ret = pinctrl_select_state(uap->pinctrl, uap->pins_default);
		if (ret)
			dev_err(uap->port.dev,
				"could not set default pins\n");
	}

1888 1889 1890 1891
	ret = clk_prepare(uap->clk);
	if (ret)
		return ret;

1892 1893 1894 1895 1896 1897 1898 1899
	if (uap->port.dev->platform_data) {
		struct amba_pl011_data *plat;

		plat = uap->port.dev->platform_data;
		if (plat->init)
			plat->init();
	}

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	uap->port.uartclk = clk_get_rate(uap->clk);

	if (options)
		uart_parse_options(options, &baud, &parity, &bits, &flow);
	else
		pl011_console_get_options(uap, &baud, &parity, &bits);

	return uart_set_options(&uap->port, co, baud, parity, bits, flow);
}

1910
static struct uart_driver amba_reg;
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static struct console amba_console = {
	.name		= "ttyAMA",
	.write		= pl011_console_write,
	.device		= uart_console_device,
	.setup		= pl011_console_setup,
	.flags		= CON_PRINTBUFFER,
	.index		= -1,
	.data		= &amba_reg,
};

#define AMBA_CONSOLE	(&amba_console)
#else
#define AMBA_CONSOLE	NULL
#endif

static struct uart_driver amba_reg = {
	.owner			= THIS_MODULE,
	.driver_name		= "ttyAMA",
	.dev_name		= "ttyAMA",
	.major			= SERIAL_AMBA_MAJOR,
	.minor			= SERIAL_AMBA_MINOR,
	.nr			= UART_NR,
	.cons			= AMBA_CONSOLE,
};

1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967
static int pl011_probe_dt_alias(int index, struct device *dev)
{
	struct device_node *np;
	static bool seen_dev_with_alias = false;
	static bool seen_dev_without_alias = false;
	int ret = index;

	if (!IS_ENABLED(CONFIG_OF))
		return ret;

	np = dev->of_node;
	if (!np)
		return ret;

	ret = of_alias_get_id(np, "serial");
	if (IS_ERR_VALUE(ret)) {
		seen_dev_without_alias = true;
		ret = index;
	} else {
		seen_dev_with_alias = true;
		if (ret >= ARRAY_SIZE(amba_ports) || amba_ports[ret] != NULL) {
			dev_warn(dev, "requested serial port %d  not available.\n", ret);
			ret = index;
		}
	}

	if (seen_dev_with_alias && seen_dev_without_alias)
		dev_warn(dev, "aliased and non-aliased serial devices found in device tree. Serial port enumeration may be unpredictable.\n");

	return ret;
}

1968
static int pl011_probe(struct amba_device *dev, const struct amba_id *id)
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{
	struct uart_amba_port *uap;
1971
	struct vendor_data *vendor = id->data;
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	void __iomem *base;
	int i, ret;

	for (i = 0; i < ARRAY_SIZE(amba_ports); i++)
		if (amba_ports[i] == NULL)
			break;

	if (i == ARRAY_SIZE(amba_ports)) {
		ret = -EBUSY;
		goto out;
	}

1984 1985
	uap = devm_kzalloc(&dev->dev, sizeof(struct uart_amba_port),
			   GFP_KERNEL);
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	if (uap == NULL) {
		ret = -ENOMEM;
		goto out;
	}

1991 1992
	i = pl011_probe_dt_alias(i, &dev->dev);

1993 1994
	base = devm_ioremap(&dev->dev, dev->res.start,
			    resource_size(&dev->res));
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	if (!base) {
		ret = -ENOMEM;
1997
		goto out;
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	}

2000 2001 2002
	uap->pinctrl = devm_pinctrl_get(&dev->dev);
	if (IS_ERR(uap->pinctrl)) {
		ret = PTR_ERR(uap->pinctrl);
2003
		goto out;
2004
	}
2005 2006 2007 2008 2009 2010 2011 2012 2013
	uap->pins_default = pinctrl_lookup_state(uap->pinctrl,
						 PINCTRL_STATE_DEFAULT);
	if (IS_ERR(uap->pins_default))
		dev_err(&dev->dev, "could not get default pinstate\n");

	uap->pins_sleep = pinctrl_lookup_state(uap->pinctrl,
					       PINCTRL_STATE_SLEEP);
	if (IS_ERR(uap->pins_sleep))
		dev_dbg(&dev->dev, "could not get sleep pinstate\n");
2014

2015
	uap->clk = devm_clk_get(&dev->dev, NULL);
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	if (IS_ERR(uap->clk)) {
		ret = PTR_ERR(uap->clk);
2018
		goto out;
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	}

2021
	uap->vendor = vendor;
2022 2023
	uap->lcrh_rx = vendor->lcrh_rx;
	uap->lcrh_tx = vendor->lcrh_tx;
2024
	uap->old_cr = 0;
2025
	uap->fifosize = vendor->fifosize;
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	uap->port.dev = &dev->dev;
	uap->port.mapbase = dev->res.start;
	uap->port.membase = base;
	uap->port.iotype = UPIO_MEM;
	uap->port.irq = dev->irq[0];
2031
	uap->port.fifosize = uap->fifosize;
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	uap->port.ops = &amba_pl011_pops;
	uap->port.flags = UPF_BOOT_AUTOCONF;
	uap->port.line = i;
2035
	pl011_dma_probe(&dev->dev, uap);
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2037 2038 2039 2040
	/* Ensure interrupts from this UART are masked and cleared */
	writew(0, uap->port.membase + UART011_IMSC);
	writew(0xffff, uap->port.membase + UART011_ICR);

2041 2042
	snprintf(uap->type, sizeof(uap->type), "PL011 rev%u", amba_rev(dev));

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	amba_ports[i] = uap;

	amba_set_drvdata(dev, uap);
	ret = uart_add_one_port(&amba_reg, &uap->port);
	if (ret) {
		amba_set_drvdata(dev, NULL);
		amba_ports[i] = NULL;
2050
		pl011_dma_remove(uap);
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	}
 out:
	return ret;
}

static int pl011_remove(struct amba_device *dev)
{
	struct uart_amba_port *uap = amba_get_drvdata(dev);
	int i;

	amba_set_drvdata(dev, NULL);

	uart_remove_one_port(&amba_reg, &uap->port);

	for (i = 0; i < ARRAY_SIZE(amba_ports); i++)
		if (amba_ports[i] == uap)
			amba_ports[i] = NULL;

2069
	pl011_dma_remove(uap);
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	return 0;
}

2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094
#ifdef CONFIG_PM
static int pl011_suspend(struct amba_device *dev, pm_message_t state)
{
	struct uart_amba_port *uap = amba_get_drvdata(dev);

	if (!uap)
		return -EINVAL;

	return uart_suspend_port(&amba_reg, &uap->port);
}

static int pl011_resume(struct amba_device *dev)
{
	struct uart_amba_port *uap = amba_get_drvdata(dev);

	if (!uap)
		return -EINVAL;

	return uart_resume_port(&amba_reg, &uap->port);
}
#endif

2095
static struct amba_id pl011_ids[] = {
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	{
		.id	= 0x00041011,
		.mask	= 0x000fffff,
2099 2100 2101 2102 2103 2104
		.data	= &vendor_arm,
	},
	{
		.id	= 0x00380802,
		.mask	= 0x00ffffff,
		.data	= &vendor_st,
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	},
	{ 0, 0 },
};

2109 2110
MODULE_DEVICE_TABLE(amba, pl011_ids);

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static struct amba_driver pl011_driver = {
	.drv = {
		.name	= "uart-pl011",
	},
	.id_table	= pl011_ids,
	.probe		= pl011_probe,
	.remove		= pl011_remove,
2118 2119 2120 2121
#ifdef CONFIG_PM
	.suspend	= pl011_suspend,
	.resume		= pl011_resume,
#endif
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};

static int __init pl011_init(void)
{
	int ret;
	printk(KERN_INFO "Serial: AMBA PL011 UART driver\n");

	ret = uart_register_driver(&amba_reg);
	if (ret == 0) {
		ret = amba_driver_register(&pl011_driver);
		if (ret)
			uart_unregister_driver(&amba_reg);
	}
	return ret;
}

static void __exit pl011_exit(void)
{
	amba_driver_unregister(&pl011_driver);
	uart_unregister_driver(&amba_reg);
}

2144 2145 2146 2147 2148
/*
 * While this can be a module, if builtin it's most likely the console
 * So let's leave module_exit but move module_init to an earlier place
 */
arch_initcall(pl011_init);
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module_exit(pl011_exit);

MODULE_AUTHOR("ARM Ltd/Deep Blue Solutions Ltd");
MODULE_DESCRIPTION("ARM AMBA serial port driver");
MODULE_LICENSE("GPL");