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v6.2
   1// SPDX-License-Identifier: GPL-2.0-or-later
   2/*
   3 * OMAP2 McSPI controller driver
   4 *
   5 * Copyright (C) 2005, 2006 Nokia Corporation
   6 * Author:	Samuel Ortiz <samuel.ortiz@nokia.com> and
   7 *		Juha Yrjola <juha.yrjola@nokia.com>
   8 */
   9
  10#include <linux/kernel.h>
  11#include <linux/interrupt.h>
  12#include <linux/module.h>
  13#include <linux/device.h>
  14#include <linux/delay.h>
  15#include <linux/dma-mapping.h>
  16#include <linux/dmaengine.h>
  17#include <linux/pinctrl/consumer.h>
  18#include <linux/platform_device.h>
  19#include <linux/err.h>
  20#include <linux/clk.h>
  21#include <linux/io.h>
  22#include <linux/slab.h>
  23#include <linux/pm_runtime.h>
  24#include <linux/of.h>
  25#include <linux/of_device.h>
  26#include <linux/gcd.h>
 
  27
  28#include <linux/spi/spi.h>
 
  29
  30#include <linux/platform_data/spi-omap2-mcspi.h>
  31
  32#define OMAP2_MCSPI_MAX_FREQ		48000000
  33#define OMAP2_MCSPI_MAX_DIVIDER		4096
  34#define OMAP2_MCSPI_MAX_FIFODEPTH	64
  35#define OMAP2_MCSPI_MAX_FIFOWCNT	0xFFFF
  36#define SPI_AUTOSUSPEND_TIMEOUT		2000
  37
  38#define OMAP2_MCSPI_REVISION		0x00
  39#define OMAP2_MCSPI_SYSSTATUS		0x14
  40#define OMAP2_MCSPI_IRQSTATUS		0x18
  41#define OMAP2_MCSPI_IRQENABLE		0x1c
  42#define OMAP2_MCSPI_WAKEUPENABLE	0x20
  43#define OMAP2_MCSPI_SYST		0x24
  44#define OMAP2_MCSPI_MODULCTRL		0x28
  45#define OMAP2_MCSPI_XFERLEVEL		0x7c
  46
  47/* per-channel banks, 0x14 bytes each, first is: */
  48#define OMAP2_MCSPI_CHCONF0		0x2c
  49#define OMAP2_MCSPI_CHSTAT0		0x30
  50#define OMAP2_MCSPI_CHCTRL0		0x34
  51#define OMAP2_MCSPI_TX0			0x38
  52#define OMAP2_MCSPI_RX0			0x3c
  53
  54/* per-register bitmasks: */
  55#define OMAP2_MCSPI_IRQSTATUS_EOW	BIT(17)
  56
  57#define OMAP2_MCSPI_MODULCTRL_SINGLE	BIT(0)
  58#define OMAP2_MCSPI_MODULCTRL_MS	BIT(2)
  59#define OMAP2_MCSPI_MODULCTRL_STEST	BIT(3)
  60
  61#define OMAP2_MCSPI_CHCONF_PHA		BIT(0)
  62#define OMAP2_MCSPI_CHCONF_POL		BIT(1)
  63#define OMAP2_MCSPI_CHCONF_CLKD_MASK	(0x0f << 2)
  64#define OMAP2_MCSPI_CHCONF_EPOL		BIT(6)
  65#define OMAP2_MCSPI_CHCONF_WL_MASK	(0x1f << 7)
  66#define OMAP2_MCSPI_CHCONF_TRM_RX_ONLY	BIT(12)
  67#define OMAP2_MCSPI_CHCONF_TRM_TX_ONLY	BIT(13)
  68#define OMAP2_MCSPI_CHCONF_TRM_MASK	(0x03 << 12)
  69#define OMAP2_MCSPI_CHCONF_DMAW		BIT(14)
  70#define OMAP2_MCSPI_CHCONF_DMAR		BIT(15)
  71#define OMAP2_MCSPI_CHCONF_DPE0		BIT(16)
  72#define OMAP2_MCSPI_CHCONF_DPE1		BIT(17)
  73#define OMAP2_MCSPI_CHCONF_IS		BIT(18)
  74#define OMAP2_MCSPI_CHCONF_TURBO	BIT(19)
  75#define OMAP2_MCSPI_CHCONF_FORCE	BIT(20)
  76#define OMAP2_MCSPI_CHCONF_FFET		BIT(27)
  77#define OMAP2_MCSPI_CHCONF_FFER		BIT(28)
  78#define OMAP2_MCSPI_CHCONF_CLKG		BIT(29)
  79
  80#define OMAP2_MCSPI_CHSTAT_RXS		BIT(0)
  81#define OMAP2_MCSPI_CHSTAT_TXS		BIT(1)
  82#define OMAP2_MCSPI_CHSTAT_EOT		BIT(2)
  83#define OMAP2_MCSPI_CHSTAT_TXFFE	BIT(3)
  84
  85#define OMAP2_MCSPI_CHCTRL_EN		BIT(0)
  86#define OMAP2_MCSPI_CHCTRL_EXTCLK_MASK	(0xff << 8)
  87
  88#define OMAP2_MCSPI_WAKEUPENABLE_WKEN	BIT(0)
  89
  90/* We have 2 DMA channels per CS, one for RX and one for TX */
  91struct omap2_mcspi_dma {
  92	struct dma_chan *dma_tx;
  93	struct dma_chan *dma_rx;
  94
  95	struct completion dma_tx_completion;
  96	struct completion dma_rx_completion;
  97
  98	char dma_rx_ch_name[14];
  99	char dma_tx_ch_name[14];
 100};
 101
 102/* use PIO for small transfers, avoiding DMA setup/teardown overhead and
 103 * cache operations; better heuristics consider wordsize and bitrate.
 104 */
 105#define DMA_MIN_BYTES			160
 106
 107
 108/*
 109 * Used for context save and restore, structure members to be updated whenever
 110 * corresponding registers are modified.
 111 */
 112struct omap2_mcspi_regs {
 113	u32 modulctrl;
 114	u32 wakeupenable;
 115	struct list_head cs;
 116};
 117
 118struct omap2_mcspi {
 119	struct completion	txdone;
 120	struct spi_master	*master;
 121	/* Virtual base address of the controller */
 122	void __iomem		*base;
 123	unsigned long		phys;
 124	/* SPI1 has 4 channels, while SPI2 has 2 */
 125	struct omap2_mcspi_dma	*dma_channels;
 126	struct device		*dev;
 127	struct omap2_mcspi_regs ctx;
 128	int			fifo_depth;
 129	bool			slave_aborted;
 130	unsigned int		pin_dir:1;
 131	size_t			max_xfer_len;
 132};
 133
 134struct omap2_mcspi_cs {
 135	void __iomem		*base;
 136	unsigned long		phys;
 137	int			word_len;
 138	u16			mode;
 139	struct list_head	node;
 140	/* Context save and restore shadow register */
 141	u32			chconf0, chctrl0;
 142};
 143
 144static inline void mcspi_write_reg(struct spi_master *master,
 145		int idx, u32 val)
 146{
 147	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
 148
 149	writel_relaxed(val, mcspi->base + idx);
 150}
 151
 152static inline u32 mcspi_read_reg(struct spi_master *master, int idx)
 153{
 154	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
 155
 156	return readl_relaxed(mcspi->base + idx);
 157}
 158
 159static inline void mcspi_write_cs_reg(const struct spi_device *spi,
 160		int idx, u32 val)
 161{
 162	struct omap2_mcspi_cs	*cs = spi->controller_state;
 163
 164	writel_relaxed(val, cs->base +  idx);
 165}
 166
 167static inline u32 mcspi_read_cs_reg(const struct spi_device *spi, int idx)
 168{
 169	struct omap2_mcspi_cs	*cs = spi->controller_state;
 170
 171	return readl_relaxed(cs->base + idx);
 172}
 173
 174static inline u32 mcspi_cached_chconf0(const struct spi_device *spi)
 175{
 176	struct omap2_mcspi_cs *cs = spi->controller_state;
 177
 178	return cs->chconf0;
 179}
 180
 181static inline void mcspi_write_chconf0(const struct spi_device *spi, u32 val)
 182{
 183	struct omap2_mcspi_cs *cs = spi->controller_state;
 184
 185	cs->chconf0 = val;
 186	mcspi_write_cs_reg(spi, OMAP2_MCSPI_CHCONF0, val);
 187	mcspi_read_cs_reg(spi, OMAP2_MCSPI_CHCONF0);
 188}
 189
 190static inline int mcspi_bytes_per_word(int word_len)
 191{
 192	if (word_len <= 8)
 193		return 1;
 194	else if (word_len <= 16)
 195		return 2;
 196	else /* word_len <= 32 */
 197		return 4;
 198}
 199
 200static void omap2_mcspi_set_dma_req(const struct spi_device *spi,
 201		int is_read, int enable)
 202{
 203	u32 l, rw;
 204
 205	l = mcspi_cached_chconf0(spi);
 206
 207	if (is_read) /* 1 is read, 0 write */
 208		rw = OMAP2_MCSPI_CHCONF_DMAR;
 209	else
 210		rw = OMAP2_MCSPI_CHCONF_DMAW;
 211
 212	if (enable)
 213		l |= rw;
 214	else
 215		l &= ~rw;
 216
 217	mcspi_write_chconf0(spi, l);
 218}
 219
 220static void omap2_mcspi_set_enable(const struct spi_device *spi, int enable)
 221{
 222	struct omap2_mcspi_cs *cs = spi->controller_state;
 223	u32 l;
 224
 225	l = cs->chctrl0;
 226	if (enable)
 227		l |= OMAP2_MCSPI_CHCTRL_EN;
 228	else
 229		l &= ~OMAP2_MCSPI_CHCTRL_EN;
 230	cs->chctrl0 = l;
 231	mcspi_write_cs_reg(spi, OMAP2_MCSPI_CHCTRL0, cs->chctrl0);
 232	/* Flash post-writes */
 233	mcspi_read_cs_reg(spi, OMAP2_MCSPI_CHCTRL0);
 234}
 235
 236static void omap2_mcspi_set_cs(struct spi_device *spi, bool enable)
 237{
 238	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
 239	u32 l;
 240
 241	/* The controller handles the inverted chip selects
 242	 * using the OMAP2_MCSPI_CHCONF_EPOL bit so revert
 243	 * the inversion from the core spi_set_cs function.
 244	 */
 245	if (spi->mode & SPI_CS_HIGH)
 246		enable = !enable;
 247
 248	if (spi->controller_state) {
 249		int err = pm_runtime_resume_and_get(mcspi->dev);
 250		if (err < 0) {
 
 251			dev_err(mcspi->dev, "failed to get sync: %d\n", err);
 252			return;
 253		}
 254
 255		l = mcspi_cached_chconf0(spi);
 256
 257		if (enable)
 258			l &= ~OMAP2_MCSPI_CHCONF_FORCE;
 259		else
 260			l |= OMAP2_MCSPI_CHCONF_FORCE;
 261
 262		mcspi_write_chconf0(spi, l);
 263
 264		pm_runtime_mark_last_busy(mcspi->dev);
 265		pm_runtime_put_autosuspend(mcspi->dev);
 266	}
 267}
 268
 269static void omap2_mcspi_set_mode(struct spi_master *master)
 270{
 271	struct omap2_mcspi	*mcspi = spi_master_get_devdata(master);
 272	struct omap2_mcspi_regs	*ctx = &mcspi->ctx;
 273	u32 l;
 274
 275	/*
 276	 * Choose master or slave mode
 277	 */
 278	l = mcspi_read_reg(master, OMAP2_MCSPI_MODULCTRL);
 279	l &= ~(OMAP2_MCSPI_MODULCTRL_STEST);
 280	if (spi_controller_is_slave(master)) {
 281		l |= (OMAP2_MCSPI_MODULCTRL_MS);
 282	} else {
 283		l &= ~(OMAP2_MCSPI_MODULCTRL_MS);
 284		l |= OMAP2_MCSPI_MODULCTRL_SINGLE;
 285	}
 286	mcspi_write_reg(master, OMAP2_MCSPI_MODULCTRL, l);
 287
 288	ctx->modulctrl = l;
 289}
 290
 291static void omap2_mcspi_set_fifo(const struct spi_device *spi,
 292				struct spi_transfer *t, int enable)
 293{
 294	struct spi_master *master = spi->master;
 295	struct omap2_mcspi_cs *cs = spi->controller_state;
 296	struct omap2_mcspi *mcspi;
 297	unsigned int wcnt;
 298	int max_fifo_depth, bytes_per_word;
 299	u32 chconf, xferlevel;
 300
 301	mcspi = spi_master_get_devdata(master);
 302
 303	chconf = mcspi_cached_chconf0(spi);
 304	if (enable) {
 305		bytes_per_word = mcspi_bytes_per_word(cs->word_len);
 306		if (t->len % bytes_per_word != 0)
 307			goto disable_fifo;
 308
 309		if (t->rx_buf != NULL && t->tx_buf != NULL)
 310			max_fifo_depth = OMAP2_MCSPI_MAX_FIFODEPTH / 2;
 311		else
 312			max_fifo_depth = OMAP2_MCSPI_MAX_FIFODEPTH;
 313
 314		wcnt = t->len / bytes_per_word;
 315		if (wcnt > OMAP2_MCSPI_MAX_FIFOWCNT)
 316			goto disable_fifo;
 317
 318		xferlevel = wcnt << 16;
 319		if (t->rx_buf != NULL) {
 320			chconf |= OMAP2_MCSPI_CHCONF_FFER;
 321			xferlevel |= (bytes_per_word - 1) << 8;
 322		}
 323
 324		if (t->tx_buf != NULL) {
 325			chconf |= OMAP2_MCSPI_CHCONF_FFET;
 326			xferlevel |= bytes_per_word - 1;
 327		}
 328
 329		mcspi_write_reg(master, OMAP2_MCSPI_XFERLEVEL, xferlevel);
 330		mcspi_write_chconf0(spi, chconf);
 331		mcspi->fifo_depth = max_fifo_depth;
 332
 333		return;
 334	}
 335
 336disable_fifo:
 337	if (t->rx_buf != NULL)
 338		chconf &= ~OMAP2_MCSPI_CHCONF_FFER;
 339
 340	if (t->tx_buf != NULL)
 341		chconf &= ~OMAP2_MCSPI_CHCONF_FFET;
 342
 343	mcspi_write_chconf0(spi, chconf);
 344	mcspi->fifo_depth = 0;
 345}
 346
 347static int mcspi_wait_for_reg_bit(void __iomem *reg, unsigned long bit)
 348{
 349	unsigned long timeout;
 350
 351	timeout = jiffies + msecs_to_jiffies(1000);
 352	while (!(readl_relaxed(reg) & bit)) {
 353		if (time_after(jiffies, timeout)) {
 354			if (!(readl_relaxed(reg) & bit))
 355				return -ETIMEDOUT;
 356			else
 357				return 0;
 358		}
 359		cpu_relax();
 360	}
 361	return 0;
 362}
 363
 364static int mcspi_wait_for_completion(struct  omap2_mcspi *mcspi,
 365				     struct completion *x)
 366{
 367	if (spi_controller_is_slave(mcspi->master)) {
 368		if (wait_for_completion_interruptible(x) ||
 369		    mcspi->slave_aborted)
 370			return -EINTR;
 371	} else {
 372		wait_for_completion(x);
 373	}
 374
 375	return 0;
 376}
 377
 378static void omap2_mcspi_rx_callback(void *data)
 379{
 380	struct spi_device *spi = data;
 381	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
 382	struct omap2_mcspi_dma *mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 383
 384	/* We must disable the DMA RX request */
 385	omap2_mcspi_set_dma_req(spi, 1, 0);
 386
 387	complete(&mcspi_dma->dma_rx_completion);
 388}
 389
 390static void omap2_mcspi_tx_callback(void *data)
 391{
 392	struct spi_device *spi = data;
 393	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
 394	struct omap2_mcspi_dma *mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 395
 396	/* We must disable the DMA TX request */
 397	omap2_mcspi_set_dma_req(spi, 0, 0);
 398
 399	complete(&mcspi_dma->dma_tx_completion);
 400}
 401
 402static void omap2_mcspi_tx_dma(struct spi_device *spi,
 403				struct spi_transfer *xfer,
 404				struct dma_slave_config cfg)
 405{
 406	struct omap2_mcspi	*mcspi;
 407	struct omap2_mcspi_dma  *mcspi_dma;
 408	struct dma_async_tx_descriptor *tx;
 409
 410	mcspi = spi_master_get_devdata(spi->master);
 411	mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 412
 413	dmaengine_slave_config(mcspi_dma->dma_tx, &cfg);
 
 414
 415	tx = dmaengine_prep_slave_sg(mcspi_dma->dma_tx, xfer->tx_sg.sgl,
 416				     xfer->tx_sg.nents,
 417				     DMA_MEM_TO_DEV,
 418				     DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
 419	if (tx) {
 420		tx->callback = omap2_mcspi_tx_callback;
 421		tx->callback_param = spi;
 422		dmaengine_submit(tx);
 423	} else {
 424		/* FIXME: fall back to PIO? */
 
 
 
 425	}
 426	dma_async_issue_pending(mcspi_dma->dma_tx);
 427	omap2_mcspi_set_dma_req(spi, 0, 1);
 
 428}
 429
 430static unsigned
 431omap2_mcspi_rx_dma(struct spi_device *spi, struct spi_transfer *xfer,
 432				struct dma_slave_config cfg,
 433				unsigned es)
 434{
 435	struct omap2_mcspi	*mcspi;
 436	struct omap2_mcspi_dma  *mcspi_dma;
 437	unsigned int		count, transfer_reduction = 0;
 438	struct scatterlist	*sg_out[2];
 439	int			nb_sizes = 0, out_mapped_nents[2], ret, x;
 440	size_t			sizes[2];
 441	u32			l;
 442	int			elements = 0;
 443	int			word_len, element_count;
 444	struct omap2_mcspi_cs	*cs = spi->controller_state;
 445	void __iomem		*chstat_reg = cs->base + OMAP2_MCSPI_CHSTAT0;
 446	struct dma_async_tx_descriptor *tx;
 447
 448	mcspi = spi_master_get_devdata(spi->master);
 449	mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 450	count = xfer->len;
 451
 452	/*
 453	 *  In the "End-of-Transfer Procedure" section for DMA RX in OMAP35x TRM
 454	 *  it mentions reducing DMA transfer length by one element in master
 455	 *  normal mode.
 456	 */
 457	if (mcspi->fifo_depth == 0)
 458		transfer_reduction = es;
 459
 460	word_len = cs->word_len;
 461	l = mcspi_cached_chconf0(spi);
 462
 463	if (word_len <= 8)
 464		element_count = count;
 465	else if (word_len <= 16)
 466		element_count = count >> 1;
 467	else /* word_len <= 32 */
 468		element_count = count >> 2;
 469
 
 
 470
 471	dmaengine_slave_config(mcspi_dma->dma_rx, &cfg);
 472
 473	/*
 474	 *  Reduce DMA transfer length by one more if McSPI is
 475	 *  configured in turbo mode.
 476	 */
 477	if ((l & OMAP2_MCSPI_CHCONF_TURBO) && mcspi->fifo_depth == 0)
 478		transfer_reduction += es;
 479
 480	if (transfer_reduction) {
 481		/* Split sgl into two. The second sgl won't be used. */
 482		sizes[0] = count - transfer_reduction;
 483		sizes[1] = transfer_reduction;
 484		nb_sizes = 2;
 485	} else {
 486		/*
 487		 * Don't bother splitting the sgl. This essentially
 488		 * clones the original sgl.
 489		 */
 490		sizes[0] = count;
 491		nb_sizes = 1;
 492	}
 493
 494	ret = sg_split(xfer->rx_sg.sgl, xfer->rx_sg.nents, 0, nb_sizes,
 495		       sizes, sg_out, out_mapped_nents, GFP_KERNEL);
 
 
 
 
 
 
 
 
 
 
 
 496
 497	if (ret < 0) {
 498		dev_err(&spi->dev, "sg_split failed\n");
 499		return 0;
 500	}
 
 501
 502	tx = dmaengine_prep_slave_sg(mcspi_dma->dma_rx, sg_out[0],
 503				     out_mapped_nents[0], DMA_DEV_TO_MEM,
 504				     DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
 505	if (tx) {
 506		tx->callback = omap2_mcspi_rx_callback;
 507		tx->callback_param = spi;
 508		dmaengine_submit(tx);
 509	} else {
 510		/* FIXME: fall back to PIO? */
 
 
 
 
 
 
 
 
 511	}
 512
 513	dma_async_issue_pending(mcspi_dma->dma_rx);
 514	omap2_mcspi_set_dma_req(spi, 1, 1);
 515
 516	ret = mcspi_wait_for_completion(mcspi, &mcspi_dma->dma_rx_completion);
 517	if (ret || mcspi->slave_aborted) {
 518		dmaengine_terminate_sync(mcspi_dma->dma_rx);
 519		omap2_mcspi_set_dma_req(spi, 1, 0);
 520		return 0;
 521	}
 522
 523	for (x = 0; x < nb_sizes; x++)
 524		kfree(sg_out[x]);
 525
 526	if (mcspi->fifo_depth > 0)
 527		return count;
 528
 529	/*
 530	 *  Due to the DMA transfer length reduction the missing bytes must
 531	 *  be read manually to receive all of the expected data.
 532	 */
 533	omap2_mcspi_set_enable(spi, 0);
 534
 535	elements = element_count - 1;
 536
 537	if (l & OMAP2_MCSPI_CHCONF_TURBO) {
 538		elements--;
 539
 540		if (!mcspi_wait_for_reg_bit(chstat_reg,
 541					    OMAP2_MCSPI_CHSTAT_RXS)) {
 542			u32 w;
 543
 544			w = mcspi_read_cs_reg(spi, OMAP2_MCSPI_RX0);
 545			if (word_len <= 8)
 546				((u8 *)xfer->rx_buf)[elements++] = w;
 547			else if (word_len <= 16)
 548				((u16 *)xfer->rx_buf)[elements++] = w;
 549			else /* word_len <= 32 */
 550				((u32 *)xfer->rx_buf)[elements++] = w;
 551		} else {
 552			int bytes_per_word = mcspi_bytes_per_word(word_len);
 553			dev_err(&spi->dev, "DMA RX penultimate word empty\n");
 554			count -= (bytes_per_word << 1);
 555			omap2_mcspi_set_enable(spi, 1);
 556			return count;
 557		}
 558	}
 559	if (!mcspi_wait_for_reg_bit(chstat_reg, OMAP2_MCSPI_CHSTAT_RXS)) {
 560		u32 w;
 561
 562		w = mcspi_read_cs_reg(spi, OMAP2_MCSPI_RX0);
 563		if (word_len <= 8)
 564			((u8 *)xfer->rx_buf)[elements] = w;
 565		else if (word_len <= 16)
 566			((u16 *)xfer->rx_buf)[elements] = w;
 567		else /* word_len <= 32 */
 568			((u32 *)xfer->rx_buf)[elements] = w;
 569	} else {
 570		dev_err(&spi->dev, "DMA RX last word empty\n");
 571		count -= mcspi_bytes_per_word(word_len);
 572	}
 573	omap2_mcspi_set_enable(spi, 1);
 574	return count;
 575}
 576
 577static unsigned
 578omap2_mcspi_txrx_dma(struct spi_device *spi, struct spi_transfer *xfer)
 579{
 580	struct omap2_mcspi	*mcspi;
 581	struct omap2_mcspi_cs	*cs = spi->controller_state;
 582	struct omap2_mcspi_dma  *mcspi_dma;
 583	unsigned int		count;
 584	u8			*rx;
 585	const u8		*tx;
 586	struct dma_slave_config	cfg;
 587	enum dma_slave_buswidth width;
 588	unsigned es;
 589	void __iomem		*chstat_reg;
 590	void __iomem            *irqstat_reg;
 591	int			wait_res;
 592
 593	mcspi = spi_master_get_devdata(spi->master);
 594	mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 595
 596	if (cs->word_len <= 8) {
 597		width = DMA_SLAVE_BUSWIDTH_1_BYTE;
 598		es = 1;
 599	} else if (cs->word_len <= 16) {
 600		width = DMA_SLAVE_BUSWIDTH_2_BYTES;
 601		es = 2;
 602	} else {
 603		width = DMA_SLAVE_BUSWIDTH_4_BYTES;
 604		es = 4;
 605	}
 606
 607	count = xfer->len;
 608
 609	memset(&cfg, 0, sizeof(cfg));
 610	cfg.src_addr = cs->phys + OMAP2_MCSPI_RX0;
 611	cfg.dst_addr = cs->phys + OMAP2_MCSPI_TX0;
 612	cfg.src_addr_width = width;
 613	cfg.dst_addr_width = width;
 614	cfg.src_maxburst = 1;
 615	cfg.dst_maxburst = 1;
 616
 617	rx = xfer->rx_buf;
 618	tx = xfer->tx_buf;
 619
 620	mcspi->slave_aborted = false;
 621	reinit_completion(&mcspi_dma->dma_tx_completion);
 622	reinit_completion(&mcspi_dma->dma_rx_completion);
 623	reinit_completion(&mcspi->txdone);
 624	if (tx) {
 625		/* Enable EOW IRQ to know end of tx in slave mode */
 626		if (spi_controller_is_slave(spi->master))
 627			mcspi_write_reg(spi->master,
 628					OMAP2_MCSPI_IRQENABLE,
 629					OMAP2_MCSPI_IRQSTATUS_EOW);
 630		omap2_mcspi_tx_dma(spi, xfer, cfg);
 631	}
 632
 633	if (rx != NULL)
 634		count = omap2_mcspi_rx_dma(spi, xfer, cfg, es);
 635
 636	if (tx != NULL) {
 637		int ret;
 638
 639		ret = mcspi_wait_for_completion(mcspi, &mcspi_dma->dma_tx_completion);
 640		if (ret || mcspi->slave_aborted) {
 641			dmaengine_terminate_sync(mcspi_dma->dma_tx);
 642			omap2_mcspi_set_dma_req(spi, 0, 0);
 643			return 0;
 644		}
 645
 646		if (spi_controller_is_slave(mcspi->master)) {
 647			ret = mcspi_wait_for_completion(mcspi, &mcspi->txdone);
 648			if (ret || mcspi->slave_aborted)
 649				return 0;
 650		}
 651
 652		if (mcspi->fifo_depth > 0) {
 653			irqstat_reg = mcspi->base + OMAP2_MCSPI_IRQSTATUS;
 654
 655			if (mcspi_wait_for_reg_bit(irqstat_reg,
 656						OMAP2_MCSPI_IRQSTATUS_EOW) < 0)
 657				dev_err(&spi->dev, "EOW timed out\n");
 658
 659			mcspi_write_reg(mcspi->master, OMAP2_MCSPI_IRQSTATUS,
 660					OMAP2_MCSPI_IRQSTATUS_EOW);
 661		}
 662
 663		/* for TX_ONLY mode, be sure all words have shifted out */
 664		if (rx == NULL) {
 665			chstat_reg = cs->base + OMAP2_MCSPI_CHSTAT0;
 666			if (mcspi->fifo_depth > 0) {
 667				wait_res = mcspi_wait_for_reg_bit(chstat_reg,
 668						OMAP2_MCSPI_CHSTAT_TXFFE);
 669				if (wait_res < 0)
 670					dev_err(&spi->dev, "TXFFE timed out\n");
 671			} else {
 672				wait_res = mcspi_wait_for_reg_bit(chstat_reg,
 673						OMAP2_MCSPI_CHSTAT_TXS);
 674				if (wait_res < 0)
 675					dev_err(&spi->dev, "TXS timed out\n");
 676			}
 677			if (wait_res >= 0 &&
 678				(mcspi_wait_for_reg_bit(chstat_reg,
 679					OMAP2_MCSPI_CHSTAT_EOT) < 0))
 680				dev_err(&spi->dev, "EOT timed out\n");
 681		}
 682	}
 683	return count;
 684}
 685
 686static unsigned
 687omap2_mcspi_txrx_pio(struct spi_device *spi, struct spi_transfer *xfer)
 688{
 689	struct omap2_mcspi_cs	*cs = spi->controller_state;
 690	unsigned int		count, c;
 691	u32			l;
 692	void __iomem		*base = cs->base;
 693	void __iomem		*tx_reg;
 694	void __iomem		*rx_reg;
 695	void __iomem		*chstat_reg;
 696	int			word_len;
 697
 698	count = xfer->len;
 699	c = count;
 700	word_len = cs->word_len;
 701
 702	l = mcspi_cached_chconf0(spi);
 703
 704	/* We store the pre-calculated register addresses on stack to speed
 705	 * up the transfer loop. */
 706	tx_reg		= base + OMAP2_MCSPI_TX0;
 707	rx_reg		= base + OMAP2_MCSPI_RX0;
 708	chstat_reg	= base + OMAP2_MCSPI_CHSTAT0;
 709
 710	if (c < (word_len>>3))
 711		return 0;
 712
 713	if (word_len <= 8) {
 714		u8		*rx;
 715		const u8	*tx;
 716
 717		rx = xfer->rx_buf;
 718		tx = xfer->tx_buf;
 719
 720		do {
 721			c -= 1;
 722			if (tx != NULL) {
 723				if (mcspi_wait_for_reg_bit(chstat_reg,
 724						OMAP2_MCSPI_CHSTAT_TXS) < 0) {
 725					dev_err(&spi->dev, "TXS timed out\n");
 726					goto out;
 727				}
 728				dev_vdbg(&spi->dev, "write-%d %02x\n",
 729						word_len, *tx);
 730				writel_relaxed(*tx++, tx_reg);
 731			}
 732			if (rx != NULL) {
 733				if (mcspi_wait_for_reg_bit(chstat_reg,
 734						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 735					dev_err(&spi->dev, "RXS timed out\n");
 736					goto out;
 737				}
 738
 739				if (c == 1 && tx == NULL &&
 740				    (l & OMAP2_MCSPI_CHCONF_TURBO)) {
 741					omap2_mcspi_set_enable(spi, 0);
 742					*rx++ = readl_relaxed(rx_reg);
 743					dev_vdbg(&spi->dev, "read-%d %02x\n",
 744						    word_len, *(rx - 1));
 745					if (mcspi_wait_for_reg_bit(chstat_reg,
 746						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 747						dev_err(&spi->dev,
 748							"RXS timed out\n");
 749						goto out;
 750					}
 751					c = 0;
 752				} else if (c == 0 && tx == NULL) {
 753					omap2_mcspi_set_enable(spi, 0);
 754				}
 755
 756				*rx++ = readl_relaxed(rx_reg);
 757				dev_vdbg(&spi->dev, "read-%d %02x\n",
 758						word_len, *(rx - 1));
 759			}
 760			/* Add word delay between each word */
 761			spi_delay_exec(&xfer->word_delay, xfer);
 762		} while (c);
 763	} else if (word_len <= 16) {
 764		u16		*rx;
 765		const u16	*tx;
 766
 767		rx = xfer->rx_buf;
 768		tx = xfer->tx_buf;
 769		do {
 770			c -= 2;
 771			if (tx != NULL) {
 772				if (mcspi_wait_for_reg_bit(chstat_reg,
 773						OMAP2_MCSPI_CHSTAT_TXS) < 0) {
 774					dev_err(&spi->dev, "TXS timed out\n");
 775					goto out;
 776				}
 777				dev_vdbg(&spi->dev, "write-%d %04x\n",
 778						word_len, *tx);
 779				writel_relaxed(*tx++, tx_reg);
 780			}
 781			if (rx != NULL) {
 782				if (mcspi_wait_for_reg_bit(chstat_reg,
 783						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 784					dev_err(&spi->dev, "RXS timed out\n");
 785					goto out;
 786				}
 787
 788				if (c == 2 && tx == NULL &&
 789				    (l & OMAP2_MCSPI_CHCONF_TURBO)) {
 790					omap2_mcspi_set_enable(spi, 0);
 791					*rx++ = readl_relaxed(rx_reg);
 792					dev_vdbg(&spi->dev, "read-%d %04x\n",
 793						    word_len, *(rx - 1));
 794					if (mcspi_wait_for_reg_bit(chstat_reg,
 795						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 796						dev_err(&spi->dev,
 797							"RXS timed out\n");
 798						goto out;
 799					}
 800					c = 0;
 801				} else if (c == 0 && tx == NULL) {
 802					omap2_mcspi_set_enable(spi, 0);
 803				}
 804
 805				*rx++ = readl_relaxed(rx_reg);
 806				dev_vdbg(&spi->dev, "read-%d %04x\n",
 807						word_len, *(rx - 1));
 808			}
 809			/* Add word delay between each word */
 810			spi_delay_exec(&xfer->word_delay, xfer);
 811		} while (c >= 2);
 812	} else if (word_len <= 32) {
 813		u32		*rx;
 814		const u32	*tx;
 815
 816		rx = xfer->rx_buf;
 817		tx = xfer->tx_buf;
 818		do {
 819			c -= 4;
 820			if (tx != NULL) {
 821				if (mcspi_wait_for_reg_bit(chstat_reg,
 822						OMAP2_MCSPI_CHSTAT_TXS) < 0) {
 823					dev_err(&spi->dev, "TXS timed out\n");
 824					goto out;
 825				}
 826				dev_vdbg(&spi->dev, "write-%d %08x\n",
 827						word_len, *tx);
 828				writel_relaxed(*tx++, tx_reg);
 829			}
 830			if (rx != NULL) {
 831				if (mcspi_wait_for_reg_bit(chstat_reg,
 832						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 833					dev_err(&spi->dev, "RXS timed out\n");
 834					goto out;
 835				}
 836
 837				if (c == 4 && tx == NULL &&
 838				    (l & OMAP2_MCSPI_CHCONF_TURBO)) {
 839					omap2_mcspi_set_enable(spi, 0);
 840					*rx++ = readl_relaxed(rx_reg);
 841					dev_vdbg(&spi->dev, "read-%d %08x\n",
 842						    word_len, *(rx - 1));
 843					if (mcspi_wait_for_reg_bit(chstat_reg,
 844						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 845						dev_err(&spi->dev,
 846							"RXS timed out\n");
 847						goto out;
 848					}
 849					c = 0;
 850				} else if (c == 0 && tx == NULL) {
 851					omap2_mcspi_set_enable(spi, 0);
 852				}
 853
 854				*rx++ = readl_relaxed(rx_reg);
 855				dev_vdbg(&spi->dev, "read-%d %08x\n",
 856						word_len, *(rx - 1));
 857			}
 858			/* Add word delay between each word */
 859			spi_delay_exec(&xfer->word_delay, xfer);
 860		} while (c >= 4);
 861	}
 862
 863	/* for TX_ONLY mode, be sure all words have shifted out */
 864	if (xfer->rx_buf == NULL) {
 865		if (mcspi_wait_for_reg_bit(chstat_reg,
 866				OMAP2_MCSPI_CHSTAT_TXS) < 0) {
 867			dev_err(&spi->dev, "TXS timed out\n");
 868		} else if (mcspi_wait_for_reg_bit(chstat_reg,
 869				OMAP2_MCSPI_CHSTAT_EOT) < 0)
 870			dev_err(&spi->dev, "EOT timed out\n");
 871
 872		/* disable chan to purge rx datas received in TX_ONLY transfer,
 873		 * otherwise these rx datas will affect the direct following
 874		 * RX_ONLY transfer.
 875		 */
 876		omap2_mcspi_set_enable(spi, 0);
 877	}
 878out:
 879	omap2_mcspi_set_enable(spi, 1);
 880	return count - c;
 881}
 882
 883static u32 omap2_mcspi_calc_divisor(u32 speed_hz)
 884{
 885	u32 div;
 886
 887	for (div = 0; div < 15; div++)
 888		if (speed_hz >= (OMAP2_MCSPI_MAX_FREQ >> div))
 889			return div;
 890
 891	return 15;
 892}
 893
 894/* called only when no transfer is active to this device */
 895static int omap2_mcspi_setup_transfer(struct spi_device *spi,
 896		struct spi_transfer *t)
 897{
 898	struct omap2_mcspi_cs *cs = spi->controller_state;
 899	struct omap2_mcspi *mcspi;
 900	u32 l = 0, clkd = 0, div, extclk = 0, clkg = 0;
 901	u8 word_len = spi->bits_per_word;
 902	u32 speed_hz = spi->max_speed_hz;
 903
 904	mcspi = spi_master_get_devdata(spi->master);
 905
 906	if (t != NULL && t->bits_per_word)
 907		word_len = t->bits_per_word;
 908
 909	cs->word_len = word_len;
 910
 911	if (t && t->speed_hz)
 912		speed_hz = t->speed_hz;
 913
 914	speed_hz = min_t(u32, speed_hz, OMAP2_MCSPI_MAX_FREQ);
 915	if (speed_hz < (OMAP2_MCSPI_MAX_FREQ / OMAP2_MCSPI_MAX_DIVIDER)) {
 916		clkd = omap2_mcspi_calc_divisor(speed_hz);
 917		speed_hz = OMAP2_MCSPI_MAX_FREQ >> clkd;
 918		clkg = 0;
 919	} else {
 920		div = (OMAP2_MCSPI_MAX_FREQ + speed_hz - 1) / speed_hz;
 921		speed_hz = OMAP2_MCSPI_MAX_FREQ / div;
 922		clkd = (div - 1) & 0xf;
 923		extclk = (div - 1) >> 4;
 924		clkg = OMAP2_MCSPI_CHCONF_CLKG;
 925	}
 926
 927	l = mcspi_cached_chconf0(spi);
 928
 929	/* standard 4-wire master mode:  SCK, MOSI/out, MISO/in, nCS
 930	 * REVISIT: this controller could support SPI_3WIRE mode.
 931	 */
 932	if (mcspi->pin_dir == MCSPI_PINDIR_D0_IN_D1_OUT) {
 933		l &= ~OMAP2_MCSPI_CHCONF_IS;
 934		l &= ~OMAP2_MCSPI_CHCONF_DPE1;
 935		l |= OMAP2_MCSPI_CHCONF_DPE0;
 936	} else {
 937		l |= OMAP2_MCSPI_CHCONF_IS;
 938		l |= OMAP2_MCSPI_CHCONF_DPE1;
 939		l &= ~OMAP2_MCSPI_CHCONF_DPE0;
 940	}
 941
 942	/* wordlength */
 943	l &= ~OMAP2_MCSPI_CHCONF_WL_MASK;
 944	l |= (word_len - 1) << 7;
 945
 946	/* set chipselect polarity; manage with FORCE */
 947	if (!(spi->mode & SPI_CS_HIGH))
 948		l |= OMAP2_MCSPI_CHCONF_EPOL;	/* active-low; normal */
 949	else
 950		l &= ~OMAP2_MCSPI_CHCONF_EPOL;
 951
 952	/* set clock divisor */
 953	l &= ~OMAP2_MCSPI_CHCONF_CLKD_MASK;
 954	l |= clkd << 2;
 955
 956	/* set clock granularity */
 957	l &= ~OMAP2_MCSPI_CHCONF_CLKG;
 958	l |= clkg;
 959	if (clkg) {
 960		cs->chctrl0 &= ~OMAP2_MCSPI_CHCTRL_EXTCLK_MASK;
 961		cs->chctrl0 |= extclk << 8;
 962		mcspi_write_cs_reg(spi, OMAP2_MCSPI_CHCTRL0, cs->chctrl0);
 963	}
 964
 965	/* set SPI mode 0..3 */
 966	if (spi->mode & SPI_CPOL)
 967		l |= OMAP2_MCSPI_CHCONF_POL;
 968	else
 969		l &= ~OMAP2_MCSPI_CHCONF_POL;
 970	if (spi->mode & SPI_CPHA)
 971		l |= OMAP2_MCSPI_CHCONF_PHA;
 972	else
 973		l &= ~OMAP2_MCSPI_CHCONF_PHA;
 974
 975	mcspi_write_chconf0(spi, l);
 976
 977	cs->mode = spi->mode;
 978
 979	dev_dbg(&spi->dev, "setup: speed %d, sample %s edge, clk %s\n",
 980			speed_hz,
 981			(spi->mode & SPI_CPHA) ? "trailing" : "leading",
 982			(spi->mode & SPI_CPOL) ? "inverted" : "normal");
 983
 984	return 0;
 985}
 986
 987/*
 988 * Note that we currently allow DMA only if we get a channel
 989 * for both rx and tx. Otherwise we'll do PIO for both rx and tx.
 990 */
 991static int omap2_mcspi_request_dma(struct omap2_mcspi *mcspi,
 992				   struct omap2_mcspi_dma *mcspi_dma)
 993{
 
 
 
 994	int ret = 0;
 995
 996	mcspi_dma->dma_rx = dma_request_chan(mcspi->dev,
 
 
 
 
 
 
 997					     mcspi_dma->dma_rx_ch_name);
 998	if (IS_ERR(mcspi_dma->dma_rx)) {
 999		ret = PTR_ERR(mcspi_dma->dma_rx);
1000		mcspi_dma->dma_rx = NULL;
1001		goto no_dma;
1002	}
1003
1004	mcspi_dma->dma_tx = dma_request_chan(mcspi->dev,
1005					     mcspi_dma->dma_tx_ch_name);
1006	if (IS_ERR(mcspi_dma->dma_tx)) {
1007		ret = PTR_ERR(mcspi_dma->dma_tx);
1008		mcspi_dma->dma_tx = NULL;
1009		dma_release_channel(mcspi_dma->dma_rx);
1010		mcspi_dma->dma_rx = NULL;
1011	}
1012
1013	init_completion(&mcspi_dma->dma_rx_completion);
1014	init_completion(&mcspi_dma->dma_tx_completion);
1015
1016no_dma:
1017	return ret;
1018}
1019
1020static void omap2_mcspi_release_dma(struct spi_master *master)
1021{
1022	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1023	struct omap2_mcspi_dma	*mcspi_dma;
1024	int i;
1025
1026	for (i = 0; i < master->num_chipselect; i++) {
1027		mcspi_dma = &mcspi->dma_channels[i];
1028
1029		if (mcspi_dma->dma_rx) {
1030			dma_release_channel(mcspi_dma->dma_rx);
1031			mcspi_dma->dma_rx = NULL;
1032		}
1033		if (mcspi_dma->dma_tx) {
1034			dma_release_channel(mcspi_dma->dma_tx);
1035			mcspi_dma->dma_tx = NULL;
1036		}
1037	}
1038}
1039
1040static void omap2_mcspi_cleanup(struct spi_device *spi)
1041{
1042	struct omap2_mcspi_cs	*cs;
1043
1044	if (spi->controller_state) {
1045		/* Unlink controller state from context save list */
1046		cs = spi->controller_state;
1047		list_del(&cs->node);
1048
1049		kfree(cs);
1050	}
1051}
1052
1053static int omap2_mcspi_setup(struct spi_device *spi)
1054{
1055	bool			initial_setup = false;
1056	int			ret;
1057	struct omap2_mcspi	*mcspi = spi_master_get_devdata(spi->master);
1058	struct omap2_mcspi_regs	*ctx = &mcspi->ctx;
 
1059	struct omap2_mcspi_cs	*cs = spi->controller_state;
1060
 
 
1061	if (!cs) {
1062		cs = kzalloc(sizeof(*cs), GFP_KERNEL);
1063		if (!cs)
1064			return -ENOMEM;
1065		cs->base = mcspi->base + spi->chip_select * 0x14;
1066		cs->phys = mcspi->phys + spi->chip_select * 0x14;
1067		cs->mode = 0;
1068		cs->chconf0 = 0;
1069		cs->chctrl0 = 0;
1070		spi->controller_state = cs;
1071		/* Link this to context save list */
1072		list_add_tail(&cs->node, &ctx->cs);
1073		initial_setup = true;
 
 
 
 
 
 
 
 
 
1074	}
1075
1076	ret = pm_runtime_resume_and_get(mcspi->dev);
 
 
 
 
 
 
 
1077	if (ret < 0) {
1078		if (initial_setup)
1079			omap2_mcspi_cleanup(spi);
1080
1081		return ret;
1082	}
1083
1084	ret = omap2_mcspi_setup_transfer(spi, NULL);
1085	if (ret && initial_setup)
1086		omap2_mcspi_cleanup(spi);
1087
1088	pm_runtime_mark_last_busy(mcspi->dev);
1089	pm_runtime_put_autosuspend(mcspi->dev);
1090
1091	return ret;
1092}
1093
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1094static irqreturn_t omap2_mcspi_irq_handler(int irq, void *data)
1095{
1096	struct omap2_mcspi *mcspi = data;
1097	u32 irqstat;
1098
1099	irqstat	= mcspi_read_reg(mcspi->master, OMAP2_MCSPI_IRQSTATUS);
1100	if (!irqstat)
1101		return IRQ_NONE;
1102
1103	/* Disable IRQ and wakeup slave xfer task */
1104	mcspi_write_reg(mcspi->master, OMAP2_MCSPI_IRQENABLE, 0);
1105	if (irqstat & OMAP2_MCSPI_IRQSTATUS_EOW)
1106		complete(&mcspi->txdone);
1107
1108	return IRQ_HANDLED;
1109}
1110
1111static int omap2_mcspi_slave_abort(struct spi_master *master)
1112{
1113	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1114	struct omap2_mcspi_dma *mcspi_dma = mcspi->dma_channels;
1115
1116	mcspi->slave_aborted = true;
1117	complete(&mcspi_dma->dma_rx_completion);
1118	complete(&mcspi_dma->dma_tx_completion);
1119	complete(&mcspi->txdone);
1120
1121	return 0;
1122}
1123
1124static int omap2_mcspi_transfer_one(struct spi_master *master,
1125				    struct spi_device *spi,
1126				    struct spi_transfer *t)
1127{
1128
1129	/* We only enable one channel at a time -- the one whose message is
1130	 * -- although this controller would gladly
1131	 * arbitrate among multiple channels.  This corresponds to "single
1132	 * channel" master mode.  As a side effect, we need to manage the
1133	 * chipselect with the FORCE bit ... CS != channel enable.
1134	 */
1135
1136	struct omap2_mcspi		*mcspi;
1137	struct omap2_mcspi_dma		*mcspi_dma;
1138	struct omap2_mcspi_cs		*cs;
1139	struct omap2_mcspi_device_config *cd;
1140	int				par_override = 0;
1141	int				status = 0;
1142	u32				chconf;
1143
1144	mcspi = spi_master_get_devdata(master);
1145	mcspi_dma = mcspi->dma_channels + spi->chip_select;
1146	cs = spi->controller_state;
1147	cd = spi->controller_data;
1148
1149	/*
1150	 * The slave driver could have changed spi->mode in which case
1151	 * it will be different from cs->mode (the current hardware setup).
1152	 * If so, set par_override (even though its not a parity issue) so
1153	 * omap2_mcspi_setup_transfer will be called to configure the hardware
1154	 * with the correct mode on the first iteration of the loop below.
1155	 */
1156	if (spi->mode != cs->mode)
1157		par_override = 1;
1158
1159	omap2_mcspi_set_enable(spi, 0);
1160
1161	if (spi->cs_gpiod)
1162		omap2_mcspi_set_cs(spi, spi->mode & SPI_CS_HIGH);
1163
1164	if (par_override ||
1165	    (t->speed_hz != spi->max_speed_hz) ||
1166	    (t->bits_per_word != spi->bits_per_word)) {
1167		par_override = 1;
1168		status = omap2_mcspi_setup_transfer(spi, t);
1169		if (status < 0)
1170			goto out;
1171		if (t->speed_hz == spi->max_speed_hz &&
1172		    t->bits_per_word == spi->bits_per_word)
1173			par_override = 0;
1174	}
1175	if (cd && cd->cs_per_word) {
1176		chconf = mcspi->ctx.modulctrl;
1177		chconf &= ~OMAP2_MCSPI_MODULCTRL_SINGLE;
1178		mcspi_write_reg(master, OMAP2_MCSPI_MODULCTRL, chconf);
1179		mcspi->ctx.modulctrl =
1180			mcspi_read_cs_reg(spi, OMAP2_MCSPI_MODULCTRL);
1181	}
1182
1183	chconf = mcspi_cached_chconf0(spi);
1184	chconf &= ~OMAP2_MCSPI_CHCONF_TRM_MASK;
1185	chconf &= ~OMAP2_MCSPI_CHCONF_TURBO;
1186
1187	if (t->tx_buf == NULL)
1188		chconf |= OMAP2_MCSPI_CHCONF_TRM_RX_ONLY;
1189	else if (t->rx_buf == NULL)
1190		chconf |= OMAP2_MCSPI_CHCONF_TRM_TX_ONLY;
1191
1192	if (cd && cd->turbo_mode && t->tx_buf == NULL) {
1193		/* Turbo mode is for more than one word */
1194		if (t->len > ((cs->word_len + 7) >> 3))
1195			chconf |= OMAP2_MCSPI_CHCONF_TURBO;
1196	}
1197
1198	mcspi_write_chconf0(spi, chconf);
1199
1200	if (t->len) {
1201		unsigned	count;
1202
1203		if ((mcspi_dma->dma_rx && mcspi_dma->dma_tx) &&
1204		    master->cur_msg_mapped &&
1205		    master->can_dma(master, spi, t))
1206			omap2_mcspi_set_fifo(spi, t, 1);
1207
1208		omap2_mcspi_set_enable(spi, 1);
1209
1210		/* RX_ONLY mode needs dummy data in TX reg */
1211		if (t->tx_buf == NULL)
1212			writel_relaxed(0, cs->base
1213					+ OMAP2_MCSPI_TX0);
1214
1215		if ((mcspi_dma->dma_rx && mcspi_dma->dma_tx) &&
1216		    master->cur_msg_mapped &&
1217		    master->can_dma(master, spi, t))
1218			count = omap2_mcspi_txrx_dma(spi, t);
1219		else
1220			count = omap2_mcspi_txrx_pio(spi, t);
1221
1222		if (count != t->len) {
1223			status = -EIO;
1224			goto out;
1225		}
1226	}
1227
1228	omap2_mcspi_set_enable(spi, 0);
1229
1230	if (mcspi->fifo_depth > 0)
1231		omap2_mcspi_set_fifo(spi, t, 0);
1232
1233out:
1234	/* Restore defaults if they were overriden */
1235	if (par_override) {
1236		par_override = 0;
1237		status = omap2_mcspi_setup_transfer(spi, NULL);
1238	}
1239
1240	if (cd && cd->cs_per_word) {
1241		chconf = mcspi->ctx.modulctrl;
1242		chconf |= OMAP2_MCSPI_MODULCTRL_SINGLE;
1243		mcspi_write_reg(master, OMAP2_MCSPI_MODULCTRL, chconf);
1244		mcspi->ctx.modulctrl =
1245			mcspi_read_cs_reg(spi, OMAP2_MCSPI_MODULCTRL);
1246	}
1247
1248	omap2_mcspi_set_enable(spi, 0);
1249
1250	if (spi->cs_gpiod)
1251		omap2_mcspi_set_cs(spi, !(spi->mode & SPI_CS_HIGH));
1252
1253	if (mcspi->fifo_depth > 0 && t)
1254		omap2_mcspi_set_fifo(spi, t, 0);
1255
1256	return status;
1257}
1258
1259static int omap2_mcspi_prepare_message(struct spi_master *master,
1260				       struct spi_message *msg)
1261{
1262	struct omap2_mcspi	*mcspi = spi_master_get_devdata(master);
1263	struct omap2_mcspi_regs	*ctx = &mcspi->ctx;
1264	struct omap2_mcspi_cs	*cs;
1265
1266	/* Only a single channel can have the FORCE bit enabled
1267	 * in its chconf0 register.
1268	 * Scan all channels and disable them except the current one.
1269	 * A FORCE can remain from a last transfer having cs_change enabled
1270	 */
1271	list_for_each_entry(cs, &ctx->cs, node) {
1272		if (msg->spi->controller_state == cs)
1273			continue;
1274
1275		if ((cs->chconf0 & OMAP2_MCSPI_CHCONF_FORCE)) {
1276			cs->chconf0 &= ~OMAP2_MCSPI_CHCONF_FORCE;
1277			writel_relaxed(cs->chconf0,
1278					cs->base + OMAP2_MCSPI_CHCONF0);
1279			readl_relaxed(cs->base + OMAP2_MCSPI_CHCONF0);
1280		}
1281	}
1282
1283	return 0;
1284}
1285
1286static bool omap2_mcspi_can_dma(struct spi_master *master,
1287				struct spi_device *spi,
1288				struct spi_transfer *xfer)
1289{
1290	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
1291	struct omap2_mcspi_dma *mcspi_dma =
1292		&mcspi->dma_channels[spi->chip_select];
1293
1294	if (!mcspi_dma->dma_rx || !mcspi_dma->dma_tx)
1295		return false;
1296
1297	if (spi_controller_is_slave(master))
1298		return true;
1299
1300	master->dma_rx = mcspi_dma->dma_rx;
1301	master->dma_tx = mcspi_dma->dma_tx;
1302
1303	return (xfer->len >= DMA_MIN_BYTES);
1304}
1305
1306static size_t omap2_mcspi_max_xfer_size(struct spi_device *spi)
1307{
1308	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
1309	struct omap2_mcspi_dma *mcspi_dma =
1310		&mcspi->dma_channels[spi->chip_select];
1311
1312	if (mcspi->max_xfer_len && mcspi_dma->dma_rx)
1313		return mcspi->max_xfer_len;
1314
1315	return SIZE_MAX;
1316}
1317
1318static int omap2_mcspi_controller_setup(struct omap2_mcspi *mcspi)
1319{
1320	struct spi_master	*master = mcspi->master;
1321	struct omap2_mcspi_regs	*ctx = &mcspi->ctx;
1322	int			ret = 0;
1323
1324	ret = pm_runtime_resume_and_get(mcspi->dev);
1325	if (ret < 0)
 
 
1326		return ret;
 
1327
1328	mcspi_write_reg(master, OMAP2_MCSPI_WAKEUPENABLE,
1329			OMAP2_MCSPI_WAKEUPENABLE_WKEN);
1330	ctx->wakeupenable = OMAP2_MCSPI_WAKEUPENABLE_WKEN;
1331
1332	omap2_mcspi_set_mode(master);
1333	pm_runtime_mark_last_busy(mcspi->dev);
1334	pm_runtime_put_autosuspend(mcspi->dev);
1335	return 0;
1336}
1337
1338static int omap_mcspi_runtime_suspend(struct device *dev)
1339{
1340	int error;
1341
1342	error = pinctrl_pm_select_idle_state(dev);
1343	if (error)
1344		dev_warn(dev, "%s: failed to set pins: %i\n", __func__, error);
1345
1346	return 0;
1347}
1348
1349/*
1350 * When SPI wake up from off-mode, CS is in activate state. If it was in
1351 * inactive state when driver was suspend, then force it to inactive state at
1352 * wake up.
1353 */
1354static int omap_mcspi_runtime_resume(struct device *dev)
1355{
1356	struct spi_master *master = dev_get_drvdata(dev);
1357	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1358	struct omap2_mcspi_regs *ctx = &mcspi->ctx;
1359	struct omap2_mcspi_cs *cs;
1360	int error;
1361
1362	error = pinctrl_pm_select_default_state(dev);
1363	if (error)
1364		dev_warn(dev, "%s: failed to set pins: %i\n", __func__, error);
1365
1366	/* McSPI: context restore */
1367	mcspi_write_reg(master, OMAP2_MCSPI_MODULCTRL, ctx->modulctrl);
1368	mcspi_write_reg(master, OMAP2_MCSPI_WAKEUPENABLE, ctx->wakeupenable);
1369
1370	list_for_each_entry(cs, &ctx->cs, node) {
1371		/*
1372		 * We need to toggle CS state for OMAP take this
1373		 * change in account.
1374		 */
1375		if ((cs->chconf0 & OMAP2_MCSPI_CHCONF_FORCE) == 0) {
1376			cs->chconf0 |= OMAP2_MCSPI_CHCONF_FORCE;
1377			writel_relaxed(cs->chconf0,
1378				       cs->base + OMAP2_MCSPI_CHCONF0);
1379			cs->chconf0 &= ~OMAP2_MCSPI_CHCONF_FORCE;
1380			writel_relaxed(cs->chconf0,
1381				       cs->base + OMAP2_MCSPI_CHCONF0);
1382		} else {
1383			writel_relaxed(cs->chconf0,
1384				       cs->base + OMAP2_MCSPI_CHCONF0);
1385		}
1386	}
1387
1388	return 0;
1389}
1390
1391static struct omap2_mcspi_platform_config omap2_pdata = {
1392	.regs_offset = 0,
1393};
1394
1395static struct omap2_mcspi_platform_config omap4_pdata = {
1396	.regs_offset = OMAP4_MCSPI_REG_OFFSET,
1397};
1398
1399static struct omap2_mcspi_platform_config am654_pdata = {
1400	.regs_offset = OMAP4_MCSPI_REG_OFFSET,
1401	.max_xfer_len = SZ_4K - 1,
1402};
1403
1404static const struct of_device_id omap_mcspi_of_match[] = {
1405	{
1406		.compatible = "ti,omap2-mcspi",
1407		.data = &omap2_pdata,
1408	},
1409	{
1410		.compatible = "ti,omap4-mcspi",
1411		.data = &omap4_pdata,
1412	},
1413	{
1414		.compatible = "ti,am654-mcspi",
1415		.data = &am654_pdata,
1416	},
1417	{ },
1418};
1419MODULE_DEVICE_TABLE(of, omap_mcspi_of_match);
1420
1421static int omap2_mcspi_probe(struct platform_device *pdev)
1422{
1423	struct spi_master	*master;
1424	const struct omap2_mcspi_platform_config *pdata;
1425	struct omap2_mcspi	*mcspi;
1426	struct resource		*r;
1427	int			status = 0, i;
1428	u32			regs_offset = 0;
1429	struct device_node	*node = pdev->dev.of_node;
1430	const struct of_device_id *match;
1431
1432	if (of_property_read_bool(node, "spi-slave"))
1433		master = spi_alloc_slave(&pdev->dev, sizeof(*mcspi));
1434	else
1435		master = spi_alloc_master(&pdev->dev, sizeof(*mcspi));
1436	if (!master)
1437		return -ENOMEM;
1438
1439	/* the spi->mode bits understood by this driver: */
1440	master->mode_bits = SPI_CPOL | SPI_CPHA | SPI_CS_HIGH;
1441	master->bits_per_word_mask = SPI_BPW_RANGE_MASK(4, 32);
1442	master->setup = omap2_mcspi_setup;
1443	master->auto_runtime_pm = true;
1444	master->prepare_message = omap2_mcspi_prepare_message;
1445	master->can_dma = omap2_mcspi_can_dma;
1446	master->transfer_one = omap2_mcspi_transfer_one;
1447	master->set_cs = omap2_mcspi_set_cs;
1448	master->cleanup = omap2_mcspi_cleanup;
1449	master->slave_abort = omap2_mcspi_slave_abort;
1450	master->dev.of_node = node;
1451	master->max_speed_hz = OMAP2_MCSPI_MAX_FREQ;
1452	master->min_speed_hz = OMAP2_MCSPI_MAX_FREQ >> 15;
1453	master->use_gpio_descriptors = true;
1454
1455	platform_set_drvdata(pdev, master);
1456
1457	mcspi = spi_master_get_devdata(master);
1458	mcspi->master = master;
1459
1460	match = of_match_device(omap_mcspi_of_match, &pdev->dev);
1461	if (match) {
1462		u32 num_cs = 1; /* default number of chipselect */
1463		pdata = match->data;
1464
1465		of_property_read_u32(node, "ti,spi-num-cs", &num_cs);
1466		master->num_chipselect = num_cs;
1467		if (of_get_property(node, "ti,pindir-d0-out-d1-in", NULL))
1468			mcspi->pin_dir = MCSPI_PINDIR_D0_OUT_D1_IN;
1469	} else {
1470		pdata = dev_get_platdata(&pdev->dev);
1471		master->num_chipselect = pdata->num_cs;
1472		mcspi->pin_dir = pdata->pin_dir;
1473	}
1474	regs_offset = pdata->regs_offset;
1475	if (pdata->max_xfer_len) {
1476		mcspi->max_xfer_len = pdata->max_xfer_len;
1477		master->max_transfer_size = omap2_mcspi_max_xfer_size;
1478	}
1479
1480	r = platform_get_resource(pdev, IORESOURCE_MEM, 0);
1481	mcspi->base = devm_ioremap_resource(&pdev->dev, r);
1482	if (IS_ERR(mcspi->base)) {
1483		status = PTR_ERR(mcspi->base);
1484		goto free_master;
1485	}
1486	mcspi->phys = r->start + regs_offset;
1487	mcspi->base += regs_offset;
1488
1489	mcspi->dev = &pdev->dev;
1490
1491	INIT_LIST_HEAD(&mcspi->ctx.cs);
1492
1493	mcspi->dma_channels = devm_kcalloc(&pdev->dev, master->num_chipselect,
1494					   sizeof(struct omap2_mcspi_dma),
1495					   GFP_KERNEL);
1496	if (mcspi->dma_channels == NULL) {
1497		status = -ENOMEM;
1498		goto free_master;
1499	}
1500
1501	for (i = 0; i < master->num_chipselect; i++) {
1502		sprintf(mcspi->dma_channels[i].dma_rx_ch_name, "rx%d", i);
1503		sprintf(mcspi->dma_channels[i].dma_tx_ch_name, "tx%d", i);
1504
1505		status = omap2_mcspi_request_dma(mcspi,
1506						 &mcspi->dma_channels[i]);
1507		if (status == -EPROBE_DEFER)
1508			goto free_master;
1509	}
1510
1511	status = platform_get_irq(pdev, 0);
 
 
1512	if (status < 0) {
1513		dev_err_probe(&pdev->dev, status, "no irq resource found\n");
1514		goto free_master;
1515	}
1516	init_completion(&mcspi->txdone);
1517	status = devm_request_irq(&pdev->dev, status,
1518				  omap2_mcspi_irq_handler, 0, pdev->name,
1519				  mcspi);
1520	if (status) {
1521		dev_err(&pdev->dev, "Cannot request IRQ");
1522		goto free_master;
1523	}
1524
1525	pm_runtime_use_autosuspend(&pdev->dev);
1526	pm_runtime_set_autosuspend_delay(&pdev->dev, SPI_AUTOSUSPEND_TIMEOUT);
1527	pm_runtime_enable(&pdev->dev);
1528
1529	status = omap2_mcspi_controller_setup(mcspi);
1530	if (status < 0)
1531		goto disable_pm;
1532
1533	status = devm_spi_register_controller(&pdev->dev, master);
1534	if (status < 0)
1535		goto disable_pm;
1536
1537	return status;
1538
1539disable_pm:
1540	pm_runtime_dont_use_autosuspend(&pdev->dev);
1541	pm_runtime_put_sync(&pdev->dev);
1542	pm_runtime_disable(&pdev->dev);
1543free_master:
1544	omap2_mcspi_release_dma(master);
1545	spi_master_put(master);
1546	return status;
1547}
1548
1549static int omap2_mcspi_remove(struct platform_device *pdev)
1550{
1551	struct spi_master *master = platform_get_drvdata(pdev);
1552	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1553
1554	omap2_mcspi_release_dma(master);
1555
1556	pm_runtime_dont_use_autosuspend(mcspi->dev);
1557	pm_runtime_put_sync(mcspi->dev);
1558	pm_runtime_disable(&pdev->dev);
1559
1560	return 0;
1561}
1562
1563/* work with hotplug and coldplug */
1564MODULE_ALIAS("platform:omap2_mcspi");
1565
1566static int __maybe_unused omap2_mcspi_suspend(struct device *dev)
1567{
1568	struct spi_master *master = dev_get_drvdata(dev);
1569	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1570	int error;
1571
1572	error = pinctrl_pm_select_sleep_state(dev);
1573	if (error)
1574		dev_warn(mcspi->dev, "%s: failed to set pins: %i\n",
1575			 __func__, error);
1576
1577	error = spi_master_suspend(master);
1578	if (error)
1579		dev_warn(mcspi->dev, "%s: master suspend failed: %i\n",
1580			 __func__, error);
1581
1582	return pm_runtime_force_suspend(dev);
1583}
1584
1585static int __maybe_unused omap2_mcspi_resume(struct device *dev)
1586{
1587	struct spi_master *master = dev_get_drvdata(dev);
1588	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1589	int error;
1590
 
 
 
 
 
1591	error = spi_master_resume(master);
1592	if (error)
1593		dev_warn(mcspi->dev, "%s: master resume failed: %i\n",
1594			 __func__, error);
1595
1596	return pm_runtime_force_resume(dev);
1597}
1598
1599static const struct dev_pm_ops omap2_mcspi_pm_ops = {
1600	SET_SYSTEM_SLEEP_PM_OPS(omap2_mcspi_suspend,
1601				omap2_mcspi_resume)
1602	.runtime_suspend	= omap_mcspi_runtime_suspend,
1603	.runtime_resume		= omap_mcspi_runtime_resume,
1604};
1605
1606static struct platform_driver omap2_mcspi_driver = {
1607	.driver = {
1608		.name =		"omap2_mcspi",
1609		.pm =		&omap2_mcspi_pm_ops,
1610		.of_match_table = omap_mcspi_of_match,
1611	},
1612	.probe =	omap2_mcspi_probe,
1613	.remove =	omap2_mcspi_remove,
1614};
1615
1616module_platform_driver(omap2_mcspi_driver);
1617MODULE_LICENSE("GPL");
v5.4
   1// SPDX-License-Identifier: GPL-2.0-or-later
   2/*
   3 * OMAP2 McSPI controller driver
   4 *
   5 * Copyright (C) 2005, 2006 Nokia Corporation
   6 * Author:	Samuel Ortiz <samuel.ortiz@nokia.com> and
   7 *		Juha Yrj�l� <juha.yrjola@nokia.com>
   8 */
   9
  10#include <linux/kernel.h>
  11#include <linux/interrupt.h>
  12#include <linux/module.h>
  13#include <linux/device.h>
  14#include <linux/delay.h>
  15#include <linux/dma-mapping.h>
  16#include <linux/dmaengine.h>
  17#include <linux/pinctrl/consumer.h>
  18#include <linux/platform_device.h>
  19#include <linux/err.h>
  20#include <linux/clk.h>
  21#include <linux/io.h>
  22#include <linux/slab.h>
  23#include <linux/pm_runtime.h>
  24#include <linux/of.h>
  25#include <linux/of_device.h>
  26#include <linux/gcd.h>
  27#include <linux/iopoll.h>
  28
  29#include <linux/spi/spi.h>
  30#include <linux/gpio.h>
  31
  32#include <linux/platform_data/spi-omap2-mcspi.h>
  33
  34#define OMAP2_MCSPI_MAX_FREQ		48000000
  35#define OMAP2_MCSPI_MAX_DIVIDER		4096
  36#define OMAP2_MCSPI_MAX_FIFODEPTH	64
  37#define OMAP2_MCSPI_MAX_FIFOWCNT	0xFFFF
  38#define SPI_AUTOSUSPEND_TIMEOUT		2000
  39
  40#define OMAP2_MCSPI_REVISION		0x00
  41#define OMAP2_MCSPI_SYSSTATUS		0x14
  42#define OMAP2_MCSPI_IRQSTATUS		0x18
  43#define OMAP2_MCSPI_IRQENABLE		0x1c
  44#define OMAP2_MCSPI_WAKEUPENABLE	0x20
  45#define OMAP2_MCSPI_SYST		0x24
  46#define OMAP2_MCSPI_MODULCTRL		0x28
  47#define OMAP2_MCSPI_XFERLEVEL		0x7c
  48
  49/* per-channel banks, 0x14 bytes each, first is: */
  50#define OMAP2_MCSPI_CHCONF0		0x2c
  51#define OMAP2_MCSPI_CHSTAT0		0x30
  52#define OMAP2_MCSPI_CHCTRL0		0x34
  53#define OMAP2_MCSPI_TX0			0x38
  54#define OMAP2_MCSPI_RX0			0x3c
  55
  56/* per-register bitmasks: */
  57#define OMAP2_MCSPI_IRQSTATUS_EOW	BIT(17)
  58
  59#define OMAP2_MCSPI_MODULCTRL_SINGLE	BIT(0)
  60#define OMAP2_MCSPI_MODULCTRL_MS	BIT(2)
  61#define OMAP2_MCSPI_MODULCTRL_STEST	BIT(3)
  62
  63#define OMAP2_MCSPI_CHCONF_PHA		BIT(0)
  64#define OMAP2_MCSPI_CHCONF_POL		BIT(1)
  65#define OMAP2_MCSPI_CHCONF_CLKD_MASK	(0x0f << 2)
  66#define OMAP2_MCSPI_CHCONF_EPOL		BIT(6)
  67#define OMAP2_MCSPI_CHCONF_WL_MASK	(0x1f << 7)
  68#define OMAP2_MCSPI_CHCONF_TRM_RX_ONLY	BIT(12)
  69#define OMAP2_MCSPI_CHCONF_TRM_TX_ONLY	BIT(13)
  70#define OMAP2_MCSPI_CHCONF_TRM_MASK	(0x03 << 12)
  71#define OMAP2_MCSPI_CHCONF_DMAW		BIT(14)
  72#define OMAP2_MCSPI_CHCONF_DMAR		BIT(15)
  73#define OMAP2_MCSPI_CHCONF_DPE0		BIT(16)
  74#define OMAP2_MCSPI_CHCONF_DPE1		BIT(17)
  75#define OMAP2_MCSPI_CHCONF_IS		BIT(18)
  76#define OMAP2_MCSPI_CHCONF_TURBO	BIT(19)
  77#define OMAP2_MCSPI_CHCONF_FORCE	BIT(20)
  78#define OMAP2_MCSPI_CHCONF_FFET		BIT(27)
  79#define OMAP2_MCSPI_CHCONF_FFER		BIT(28)
  80#define OMAP2_MCSPI_CHCONF_CLKG		BIT(29)
  81
  82#define OMAP2_MCSPI_CHSTAT_RXS		BIT(0)
  83#define OMAP2_MCSPI_CHSTAT_TXS		BIT(1)
  84#define OMAP2_MCSPI_CHSTAT_EOT		BIT(2)
  85#define OMAP2_MCSPI_CHSTAT_TXFFE	BIT(3)
  86
  87#define OMAP2_MCSPI_CHCTRL_EN		BIT(0)
  88#define OMAP2_MCSPI_CHCTRL_EXTCLK_MASK	(0xff << 8)
  89
  90#define OMAP2_MCSPI_WAKEUPENABLE_WKEN	BIT(0)
  91
  92/* We have 2 DMA channels per CS, one for RX and one for TX */
  93struct omap2_mcspi_dma {
  94	struct dma_chan *dma_tx;
  95	struct dma_chan *dma_rx;
  96
  97	struct completion dma_tx_completion;
  98	struct completion dma_rx_completion;
  99
 100	char dma_rx_ch_name[14];
 101	char dma_tx_ch_name[14];
 102};
 103
 104/* use PIO for small transfers, avoiding DMA setup/teardown overhead and
 105 * cache operations; better heuristics consider wordsize and bitrate.
 106 */
 107#define DMA_MIN_BYTES			160
 108
 109
 110/*
 111 * Used for context save and restore, structure members to be updated whenever
 112 * corresponding registers are modified.
 113 */
 114struct omap2_mcspi_regs {
 115	u32 modulctrl;
 116	u32 wakeupenable;
 117	struct list_head cs;
 118};
 119
 120struct omap2_mcspi {
 121	struct completion	txdone;
 122	struct spi_master	*master;
 123	/* Virtual base address of the controller */
 124	void __iomem		*base;
 125	unsigned long		phys;
 126	/* SPI1 has 4 channels, while SPI2 has 2 */
 127	struct omap2_mcspi_dma	*dma_channels;
 128	struct device		*dev;
 129	struct omap2_mcspi_regs ctx;
 130	int			fifo_depth;
 131	bool			slave_aborted;
 132	unsigned int		pin_dir:1;
 
 133};
 134
 135struct omap2_mcspi_cs {
 136	void __iomem		*base;
 137	unsigned long		phys;
 138	int			word_len;
 139	u16			mode;
 140	struct list_head	node;
 141	/* Context save and restore shadow register */
 142	u32			chconf0, chctrl0;
 143};
 144
 145static inline void mcspi_write_reg(struct spi_master *master,
 146		int idx, u32 val)
 147{
 148	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
 149
 150	writel_relaxed(val, mcspi->base + idx);
 151}
 152
 153static inline u32 mcspi_read_reg(struct spi_master *master, int idx)
 154{
 155	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
 156
 157	return readl_relaxed(mcspi->base + idx);
 158}
 159
 160static inline void mcspi_write_cs_reg(const struct spi_device *spi,
 161		int idx, u32 val)
 162{
 163	struct omap2_mcspi_cs	*cs = spi->controller_state;
 164
 165	writel_relaxed(val, cs->base +  idx);
 166}
 167
 168static inline u32 mcspi_read_cs_reg(const struct spi_device *spi, int idx)
 169{
 170	struct omap2_mcspi_cs	*cs = spi->controller_state;
 171
 172	return readl_relaxed(cs->base + idx);
 173}
 174
 175static inline u32 mcspi_cached_chconf0(const struct spi_device *spi)
 176{
 177	struct omap2_mcspi_cs *cs = spi->controller_state;
 178
 179	return cs->chconf0;
 180}
 181
 182static inline void mcspi_write_chconf0(const struct spi_device *spi, u32 val)
 183{
 184	struct omap2_mcspi_cs *cs = spi->controller_state;
 185
 186	cs->chconf0 = val;
 187	mcspi_write_cs_reg(spi, OMAP2_MCSPI_CHCONF0, val);
 188	mcspi_read_cs_reg(spi, OMAP2_MCSPI_CHCONF0);
 189}
 190
 191static inline int mcspi_bytes_per_word(int word_len)
 192{
 193	if (word_len <= 8)
 194		return 1;
 195	else if (word_len <= 16)
 196		return 2;
 197	else /* word_len <= 32 */
 198		return 4;
 199}
 200
 201static void omap2_mcspi_set_dma_req(const struct spi_device *spi,
 202		int is_read, int enable)
 203{
 204	u32 l, rw;
 205
 206	l = mcspi_cached_chconf0(spi);
 207
 208	if (is_read) /* 1 is read, 0 write */
 209		rw = OMAP2_MCSPI_CHCONF_DMAR;
 210	else
 211		rw = OMAP2_MCSPI_CHCONF_DMAW;
 212
 213	if (enable)
 214		l |= rw;
 215	else
 216		l &= ~rw;
 217
 218	mcspi_write_chconf0(spi, l);
 219}
 220
 221static void omap2_mcspi_set_enable(const struct spi_device *spi, int enable)
 222{
 223	struct omap2_mcspi_cs *cs = spi->controller_state;
 224	u32 l;
 225
 226	l = cs->chctrl0;
 227	if (enable)
 228		l |= OMAP2_MCSPI_CHCTRL_EN;
 229	else
 230		l &= ~OMAP2_MCSPI_CHCTRL_EN;
 231	cs->chctrl0 = l;
 232	mcspi_write_cs_reg(spi, OMAP2_MCSPI_CHCTRL0, cs->chctrl0);
 233	/* Flash post-writes */
 234	mcspi_read_cs_reg(spi, OMAP2_MCSPI_CHCTRL0);
 235}
 236
 237static void omap2_mcspi_set_cs(struct spi_device *spi, bool enable)
 238{
 239	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
 240	u32 l;
 241
 242	/* The controller handles the inverted chip selects
 243	 * using the OMAP2_MCSPI_CHCONF_EPOL bit so revert
 244	 * the inversion from the core spi_set_cs function.
 245	 */
 246	if (spi->mode & SPI_CS_HIGH)
 247		enable = !enable;
 248
 249	if (spi->controller_state) {
 250		int err = pm_runtime_get_sync(mcspi->dev);
 251		if (err < 0) {
 252			pm_runtime_put_noidle(mcspi->dev);
 253			dev_err(mcspi->dev, "failed to get sync: %d\n", err);
 254			return;
 255		}
 256
 257		l = mcspi_cached_chconf0(spi);
 258
 259		if (enable)
 260			l &= ~OMAP2_MCSPI_CHCONF_FORCE;
 261		else
 262			l |= OMAP2_MCSPI_CHCONF_FORCE;
 263
 264		mcspi_write_chconf0(spi, l);
 265
 266		pm_runtime_mark_last_busy(mcspi->dev);
 267		pm_runtime_put_autosuspend(mcspi->dev);
 268	}
 269}
 270
 271static void omap2_mcspi_set_mode(struct spi_master *master)
 272{
 273	struct omap2_mcspi	*mcspi = spi_master_get_devdata(master);
 274	struct omap2_mcspi_regs	*ctx = &mcspi->ctx;
 275	u32 l;
 276
 277	/*
 278	 * Choose master or slave mode
 279	 */
 280	l = mcspi_read_reg(master, OMAP2_MCSPI_MODULCTRL);
 281	l &= ~(OMAP2_MCSPI_MODULCTRL_STEST);
 282	if (spi_controller_is_slave(master)) {
 283		l |= (OMAP2_MCSPI_MODULCTRL_MS);
 284	} else {
 285		l &= ~(OMAP2_MCSPI_MODULCTRL_MS);
 286		l |= OMAP2_MCSPI_MODULCTRL_SINGLE;
 287	}
 288	mcspi_write_reg(master, OMAP2_MCSPI_MODULCTRL, l);
 289
 290	ctx->modulctrl = l;
 291}
 292
 293static void omap2_mcspi_set_fifo(const struct spi_device *spi,
 294				struct spi_transfer *t, int enable)
 295{
 296	struct spi_master *master = spi->master;
 297	struct omap2_mcspi_cs *cs = spi->controller_state;
 298	struct omap2_mcspi *mcspi;
 299	unsigned int wcnt;
 300	int max_fifo_depth, bytes_per_word;
 301	u32 chconf, xferlevel;
 302
 303	mcspi = spi_master_get_devdata(master);
 304
 305	chconf = mcspi_cached_chconf0(spi);
 306	if (enable) {
 307		bytes_per_word = mcspi_bytes_per_word(cs->word_len);
 308		if (t->len % bytes_per_word != 0)
 309			goto disable_fifo;
 310
 311		if (t->rx_buf != NULL && t->tx_buf != NULL)
 312			max_fifo_depth = OMAP2_MCSPI_MAX_FIFODEPTH / 2;
 313		else
 314			max_fifo_depth = OMAP2_MCSPI_MAX_FIFODEPTH;
 315
 316		wcnt = t->len / bytes_per_word;
 317		if (wcnt > OMAP2_MCSPI_MAX_FIFOWCNT)
 318			goto disable_fifo;
 319
 320		xferlevel = wcnt << 16;
 321		if (t->rx_buf != NULL) {
 322			chconf |= OMAP2_MCSPI_CHCONF_FFER;
 323			xferlevel |= (bytes_per_word - 1) << 8;
 324		}
 325
 326		if (t->tx_buf != NULL) {
 327			chconf |= OMAP2_MCSPI_CHCONF_FFET;
 328			xferlevel |= bytes_per_word - 1;
 329		}
 330
 331		mcspi_write_reg(master, OMAP2_MCSPI_XFERLEVEL, xferlevel);
 332		mcspi_write_chconf0(spi, chconf);
 333		mcspi->fifo_depth = max_fifo_depth;
 334
 335		return;
 336	}
 337
 338disable_fifo:
 339	if (t->rx_buf != NULL)
 340		chconf &= ~OMAP2_MCSPI_CHCONF_FFER;
 341
 342	if (t->tx_buf != NULL)
 343		chconf &= ~OMAP2_MCSPI_CHCONF_FFET;
 344
 345	mcspi_write_chconf0(spi, chconf);
 346	mcspi->fifo_depth = 0;
 347}
 348
 349static int mcspi_wait_for_reg_bit(void __iomem *reg, unsigned long bit)
 350{
 351	u32 val;
 352
 353	return readl_poll_timeout(reg, val, val & bit, 1, MSEC_PER_SEC);
 
 
 
 
 
 
 
 
 
 
 354}
 355
 356static int mcspi_wait_for_completion(struct  omap2_mcspi *mcspi,
 357				     struct completion *x)
 358{
 359	if (spi_controller_is_slave(mcspi->master)) {
 360		if (wait_for_completion_interruptible(x) ||
 361		    mcspi->slave_aborted)
 362			return -EINTR;
 363	} else {
 364		wait_for_completion(x);
 365	}
 366
 367	return 0;
 368}
 369
 370static void omap2_mcspi_rx_callback(void *data)
 371{
 372	struct spi_device *spi = data;
 373	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
 374	struct omap2_mcspi_dma *mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 375
 376	/* We must disable the DMA RX request */
 377	omap2_mcspi_set_dma_req(spi, 1, 0);
 378
 379	complete(&mcspi_dma->dma_rx_completion);
 380}
 381
 382static void omap2_mcspi_tx_callback(void *data)
 383{
 384	struct spi_device *spi = data;
 385	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
 386	struct omap2_mcspi_dma *mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 387
 388	/* We must disable the DMA TX request */
 389	omap2_mcspi_set_dma_req(spi, 0, 0);
 390
 391	complete(&mcspi_dma->dma_tx_completion);
 392}
 393
 394static void omap2_mcspi_tx_dma(struct spi_device *spi,
 395				struct spi_transfer *xfer,
 396				struct dma_slave_config cfg)
 397{
 398	struct omap2_mcspi	*mcspi;
 399	struct omap2_mcspi_dma  *mcspi_dma;
 
 400
 401	mcspi = spi_master_get_devdata(spi->master);
 402	mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 403
 404	if (mcspi_dma->dma_tx) {
 405		struct dma_async_tx_descriptor *tx;
 406
 407		dmaengine_slave_config(mcspi_dma->dma_tx, &cfg);
 408
 409		tx = dmaengine_prep_slave_sg(mcspi_dma->dma_tx, xfer->tx_sg.sgl,
 410					     xfer->tx_sg.nents,
 411					     DMA_MEM_TO_DEV,
 412					     DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
 413		if (tx) {
 414			tx->callback = omap2_mcspi_tx_callback;
 415			tx->callback_param = spi;
 416			dmaengine_submit(tx);
 417		} else {
 418			/* FIXME: fall back to PIO? */
 419		}
 420	}
 421	dma_async_issue_pending(mcspi_dma->dma_tx);
 422	omap2_mcspi_set_dma_req(spi, 0, 1);
 423
 424}
 425
 426static unsigned
 427omap2_mcspi_rx_dma(struct spi_device *spi, struct spi_transfer *xfer,
 428				struct dma_slave_config cfg,
 429				unsigned es)
 430{
 431	struct omap2_mcspi	*mcspi;
 432	struct omap2_mcspi_dma  *mcspi_dma;
 433	unsigned int		count, transfer_reduction = 0;
 434	struct scatterlist	*sg_out[2];
 435	int			nb_sizes = 0, out_mapped_nents[2], ret, x;
 436	size_t			sizes[2];
 437	u32			l;
 438	int			elements = 0;
 439	int			word_len, element_count;
 440	struct omap2_mcspi_cs	*cs = spi->controller_state;
 441	void __iomem		*chstat_reg = cs->base + OMAP2_MCSPI_CHSTAT0;
 
 442
 443	mcspi = spi_master_get_devdata(spi->master);
 444	mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 445	count = xfer->len;
 446
 447	/*
 448	 *  In the "End-of-Transfer Procedure" section for DMA RX in OMAP35x TRM
 449	 *  it mentions reducing DMA transfer length by one element in master
 450	 *  normal mode.
 451	 */
 452	if (mcspi->fifo_depth == 0)
 453		transfer_reduction = es;
 454
 455	word_len = cs->word_len;
 456	l = mcspi_cached_chconf0(spi);
 457
 458	if (word_len <= 8)
 459		element_count = count;
 460	else if (word_len <= 16)
 461		element_count = count >> 1;
 462	else /* word_len <= 32 */
 463		element_count = count >> 2;
 464
 465	if (mcspi_dma->dma_rx) {
 466		struct dma_async_tx_descriptor *tx;
 467
 468		dmaengine_slave_config(mcspi_dma->dma_rx, &cfg);
 469
 
 
 
 
 
 
 
 
 
 
 
 
 
 470		/*
 471		 *  Reduce DMA transfer length by one more if McSPI is
 472		 *  configured in turbo mode.
 473		 */
 474		if ((l & OMAP2_MCSPI_CHCONF_TURBO) && mcspi->fifo_depth == 0)
 475			transfer_reduction += es;
 
 476
 477		if (transfer_reduction) {
 478			/* Split sgl into two. The second sgl won't be used. */
 479			sizes[0] = count - transfer_reduction;
 480			sizes[1] = transfer_reduction;
 481			nb_sizes = 2;
 482		} else {
 483			/*
 484			 * Don't bother splitting the sgl. This essentially
 485			 * clones the original sgl.
 486			 */
 487			sizes[0] = count;
 488			nb_sizes = 1;
 489		}
 490
 491		ret = sg_split(xfer->rx_sg.sgl, xfer->rx_sg.nents,
 492			       0, nb_sizes,
 493			       sizes,
 494			       sg_out, out_mapped_nents,
 495			       GFP_KERNEL);
 496
 497		if (ret < 0) {
 498			dev_err(&spi->dev, "sg_split failed\n");
 499			return 0;
 500		}
 501
 502		tx = dmaengine_prep_slave_sg(mcspi_dma->dma_rx,
 503					     sg_out[0],
 504					     out_mapped_nents[0],
 505					     DMA_DEV_TO_MEM,
 506					     DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
 507		if (tx) {
 508			tx->callback = omap2_mcspi_rx_callback;
 509			tx->callback_param = spi;
 510			dmaengine_submit(tx);
 511		} else {
 512				/* FIXME: fall back to PIO? */
 513		}
 514	}
 515
 516	dma_async_issue_pending(mcspi_dma->dma_rx);
 517	omap2_mcspi_set_dma_req(spi, 1, 1);
 518
 519	ret = mcspi_wait_for_completion(mcspi, &mcspi_dma->dma_rx_completion);
 520	if (ret || mcspi->slave_aborted) {
 521		dmaengine_terminate_sync(mcspi_dma->dma_rx);
 522		omap2_mcspi_set_dma_req(spi, 1, 0);
 523		return 0;
 524	}
 525
 526	for (x = 0; x < nb_sizes; x++)
 527		kfree(sg_out[x]);
 528
 529	if (mcspi->fifo_depth > 0)
 530		return count;
 531
 532	/*
 533	 *  Due to the DMA transfer length reduction the missing bytes must
 534	 *  be read manually to receive all of the expected data.
 535	 */
 536	omap2_mcspi_set_enable(spi, 0);
 537
 538	elements = element_count - 1;
 539
 540	if (l & OMAP2_MCSPI_CHCONF_TURBO) {
 541		elements--;
 542
 543		if (!mcspi_wait_for_reg_bit(chstat_reg,
 544					    OMAP2_MCSPI_CHSTAT_RXS)) {
 545			u32 w;
 546
 547			w = mcspi_read_cs_reg(spi, OMAP2_MCSPI_RX0);
 548			if (word_len <= 8)
 549				((u8 *)xfer->rx_buf)[elements++] = w;
 550			else if (word_len <= 16)
 551				((u16 *)xfer->rx_buf)[elements++] = w;
 552			else /* word_len <= 32 */
 553				((u32 *)xfer->rx_buf)[elements++] = w;
 554		} else {
 555			int bytes_per_word = mcspi_bytes_per_word(word_len);
 556			dev_err(&spi->dev, "DMA RX penultimate word empty\n");
 557			count -= (bytes_per_word << 1);
 558			omap2_mcspi_set_enable(spi, 1);
 559			return count;
 560		}
 561	}
 562	if (!mcspi_wait_for_reg_bit(chstat_reg, OMAP2_MCSPI_CHSTAT_RXS)) {
 563		u32 w;
 564
 565		w = mcspi_read_cs_reg(spi, OMAP2_MCSPI_RX0);
 566		if (word_len <= 8)
 567			((u8 *)xfer->rx_buf)[elements] = w;
 568		else if (word_len <= 16)
 569			((u16 *)xfer->rx_buf)[elements] = w;
 570		else /* word_len <= 32 */
 571			((u32 *)xfer->rx_buf)[elements] = w;
 572	} else {
 573		dev_err(&spi->dev, "DMA RX last word empty\n");
 574		count -= mcspi_bytes_per_word(word_len);
 575	}
 576	omap2_mcspi_set_enable(spi, 1);
 577	return count;
 578}
 579
 580static unsigned
 581omap2_mcspi_txrx_dma(struct spi_device *spi, struct spi_transfer *xfer)
 582{
 583	struct omap2_mcspi	*mcspi;
 584	struct omap2_mcspi_cs	*cs = spi->controller_state;
 585	struct omap2_mcspi_dma  *mcspi_dma;
 586	unsigned int		count;
 587	u8			*rx;
 588	const u8		*tx;
 589	struct dma_slave_config	cfg;
 590	enum dma_slave_buswidth width;
 591	unsigned es;
 592	void __iomem		*chstat_reg;
 593	void __iomem            *irqstat_reg;
 594	int			wait_res;
 595
 596	mcspi = spi_master_get_devdata(spi->master);
 597	mcspi_dma = &mcspi->dma_channels[spi->chip_select];
 598
 599	if (cs->word_len <= 8) {
 600		width = DMA_SLAVE_BUSWIDTH_1_BYTE;
 601		es = 1;
 602	} else if (cs->word_len <= 16) {
 603		width = DMA_SLAVE_BUSWIDTH_2_BYTES;
 604		es = 2;
 605	} else {
 606		width = DMA_SLAVE_BUSWIDTH_4_BYTES;
 607		es = 4;
 608	}
 609
 610	count = xfer->len;
 611
 612	memset(&cfg, 0, sizeof(cfg));
 613	cfg.src_addr = cs->phys + OMAP2_MCSPI_RX0;
 614	cfg.dst_addr = cs->phys + OMAP2_MCSPI_TX0;
 615	cfg.src_addr_width = width;
 616	cfg.dst_addr_width = width;
 617	cfg.src_maxburst = 1;
 618	cfg.dst_maxburst = 1;
 619
 620	rx = xfer->rx_buf;
 621	tx = xfer->tx_buf;
 622
 623	mcspi->slave_aborted = false;
 624	reinit_completion(&mcspi_dma->dma_tx_completion);
 625	reinit_completion(&mcspi_dma->dma_rx_completion);
 626	reinit_completion(&mcspi->txdone);
 627	if (tx) {
 628		/* Enable EOW IRQ to know end of tx in slave mode */
 629		if (spi_controller_is_slave(spi->master))
 630			mcspi_write_reg(spi->master,
 631					OMAP2_MCSPI_IRQENABLE,
 632					OMAP2_MCSPI_IRQSTATUS_EOW);
 633		omap2_mcspi_tx_dma(spi, xfer, cfg);
 634	}
 635
 636	if (rx != NULL)
 637		count = omap2_mcspi_rx_dma(spi, xfer, cfg, es);
 638
 639	if (tx != NULL) {
 640		int ret;
 641
 642		ret = mcspi_wait_for_completion(mcspi, &mcspi_dma->dma_tx_completion);
 643		if (ret || mcspi->slave_aborted) {
 644			dmaengine_terminate_sync(mcspi_dma->dma_tx);
 645			omap2_mcspi_set_dma_req(spi, 0, 0);
 646			return 0;
 647		}
 648
 649		if (spi_controller_is_slave(mcspi->master)) {
 650			ret = mcspi_wait_for_completion(mcspi, &mcspi->txdone);
 651			if (ret || mcspi->slave_aborted)
 652				return 0;
 653		}
 654
 655		if (mcspi->fifo_depth > 0) {
 656			irqstat_reg = mcspi->base + OMAP2_MCSPI_IRQSTATUS;
 657
 658			if (mcspi_wait_for_reg_bit(irqstat_reg,
 659						OMAP2_MCSPI_IRQSTATUS_EOW) < 0)
 660				dev_err(&spi->dev, "EOW timed out\n");
 661
 662			mcspi_write_reg(mcspi->master, OMAP2_MCSPI_IRQSTATUS,
 663					OMAP2_MCSPI_IRQSTATUS_EOW);
 664		}
 665
 666		/* for TX_ONLY mode, be sure all words have shifted out */
 667		if (rx == NULL) {
 668			chstat_reg = cs->base + OMAP2_MCSPI_CHSTAT0;
 669			if (mcspi->fifo_depth > 0) {
 670				wait_res = mcspi_wait_for_reg_bit(chstat_reg,
 671						OMAP2_MCSPI_CHSTAT_TXFFE);
 672				if (wait_res < 0)
 673					dev_err(&spi->dev, "TXFFE timed out\n");
 674			} else {
 675				wait_res = mcspi_wait_for_reg_bit(chstat_reg,
 676						OMAP2_MCSPI_CHSTAT_TXS);
 677				if (wait_res < 0)
 678					dev_err(&spi->dev, "TXS timed out\n");
 679			}
 680			if (wait_res >= 0 &&
 681				(mcspi_wait_for_reg_bit(chstat_reg,
 682					OMAP2_MCSPI_CHSTAT_EOT) < 0))
 683				dev_err(&spi->dev, "EOT timed out\n");
 684		}
 685	}
 686	return count;
 687}
 688
 689static unsigned
 690omap2_mcspi_txrx_pio(struct spi_device *spi, struct spi_transfer *xfer)
 691{
 692	struct omap2_mcspi_cs	*cs = spi->controller_state;
 693	unsigned int		count, c;
 694	u32			l;
 695	void __iomem		*base = cs->base;
 696	void __iomem		*tx_reg;
 697	void __iomem		*rx_reg;
 698	void __iomem		*chstat_reg;
 699	int			word_len;
 700
 701	count = xfer->len;
 702	c = count;
 703	word_len = cs->word_len;
 704
 705	l = mcspi_cached_chconf0(spi);
 706
 707	/* We store the pre-calculated register addresses on stack to speed
 708	 * up the transfer loop. */
 709	tx_reg		= base + OMAP2_MCSPI_TX0;
 710	rx_reg		= base + OMAP2_MCSPI_RX0;
 711	chstat_reg	= base + OMAP2_MCSPI_CHSTAT0;
 712
 713	if (c < (word_len>>3))
 714		return 0;
 715
 716	if (word_len <= 8) {
 717		u8		*rx;
 718		const u8	*tx;
 719
 720		rx = xfer->rx_buf;
 721		tx = xfer->tx_buf;
 722
 723		do {
 724			c -= 1;
 725			if (tx != NULL) {
 726				if (mcspi_wait_for_reg_bit(chstat_reg,
 727						OMAP2_MCSPI_CHSTAT_TXS) < 0) {
 728					dev_err(&spi->dev, "TXS timed out\n");
 729					goto out;
 730				}
 731				dev_vdbg(&spi->dev, "write-%d %02x\n",
 732						word_len, *tx);
 733				writel_relaxed(*tx++, tx_reg);
 734			}
 735			if (rx != NULL) {
 736				if (mcspi_wait_for_reg_bit(chstat_reg,
 737						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 738					dev_err(&spi->dev, "RXS timed out\n");
 739					goto out;
 740				}
 741
 742				if (c == 1 && tx == NULL &&
 743				    (l & OMAP2_MCSPI_CHCONF_TURBO)) {
 744					omap2_mcspi_set_enable(spi, 0);
 745					*rx++ = readl_relaxed(rx_reg);
 746					dev_vdbg(&spi->dev, "read-%d %02x\n",
 747						    word_len, *(rx - 1));
 748					if (mcspi_wait_for_reg_bit(chstat_reg,
 749						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 750						dev_err(&spi->dev,
 751							"RXS timed out\n");
 752						goto out;
 753					}
 754					c = 0;
 755				} else if (c == 0 && tx == NULL) {
 756					omap2_mcspi_set_enable(spi, 0);
 757				}
 758
 759				*rx++ = readl_relaxed(rx_reg);
 760				dev_vdbg(&spi->dev, "read-%d %02x\n",
 761						word_len, *(rx - 1));
 762			}
 
 
 763		} while (c);
 764	} else if (word_len <= 16) {
 765		u16		*rx;
 766		const u16	*tx;
 767
 768		rx = xfer->rx_buf;
 769		tx = xfer->tx_buf;
 770		do {
 771			c -= 2;
 772			if (tx != NULL) {
 773				if (mcspi_wait_for_reg_bit(chstat_reg,
 774						OMAP2_MCSPI_CHSTAT_TXS) < 0) {
 775					dev_err(&spi->dev, "TXS timed out\n");
 776					goto out;
 777				}
 778				dev_vdbg(&spi->dev, "write-%d %04x\n",
 779						word_len, *tx);
 780				writel_relaxed(*tx++, tx_reg);
 781			}
 782			if (rx != NULL) {
 783				if (mcspi_wait_for_reg_bit(chstat_reg,
 784						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 785					dev_err(&spi->dev, "RXS timed out\n");
 786					goto out;
 787				}
 788
 789				if (c == 2 && tx == NULL &&
 790				    (l & OMAP2_MCSPI_CHCONF_TURBO)) {
 791					omap2_mcspi_set_enable(spi, 0);
 792					*rx++ = readl_relaxed(rx_reg);
 793					dev_vdbg(&spi->dev, "read-%d %04x\n",
 794						    word_len, *(rx - 1));
 795					if (mcspi_wait_for_reg_bit(chstat_reg,
 796						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 797						dev_err(&spi->dev,
 798							"RXS timed out\n");
 799						goto out;
 800					}
 801					c = 0;
 802				} else if (c == 0 && tx == NULL) {
 803					omap2_mcspi_set_enable(spi, 0);
 804				}
 805
 806				*rx++ = readl_relaxed(rx_reg);
 807				dev_vdbg(&spi->dev, "read-%d %04x\n",
 808						word_len, *(rx - 1));
 809			}
 
 
 810		} while (c >= 2);
 811	} else if (word_len <= 32) {
 812		u32		*rx;
 813		const u32	*tx;
 814
 815		rx = xfer->rx_buf;
 816		tx = xfer->tx_buf;
 817		do {
 818			c -= 4;
 819			if (tx != NULL) {
 820				if (mcspi_wait_for_reg_bit(chstat_reg,
 821						OMAP2_MCSPI_CHSTAT_TXS) < 0) {
 822					dev_err(&spi->dev, "TXS timed out\n");
 823					goto out;
 824				}
 825				dev_vdbg(&spi->dev, "write-%d %08x\n",
 826						word_len, *tx);
 827				writel_relaxed(*tx++, tx_reg);
 828			}
 829			if (rx != NULL) {
 830				if (mcspi_wait_for_reg_bit(chstat_reg,
 831						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 832					dev_err(&spi->dev, "RXS timed out\n");
 833					goto out;
 834				}
 835
 836				if (c == 4 && tx == NULL &&
 837				    (l & OMAP2_MCSPI_CHCONF_TURBO)) {
 838					omap2_mcspi_set_enable(spi, 0);
 839					*rx++ = readl_relaxed(rx_reg);
 840					dev_vdbg(&spi->dev, "read-%d %08x\n",
 841						    word_len, *(rx - 1));
 842					if (mcspi_wait_for_reg_bit(chstat_reg,
 843						OMAP2_MCSPI_CHSTAT_RXS) < 0) {
 844						dev_err(&spi->dev,
 845							"RXS timed out\n");
 846						goto out;
 847					}
 848					c = 0;
 849				} else if (c == 0 && tx == NULL) {
 850					omap2_mcspi_set_enable(spi, 0);
 851				}
 852
 853				*rx++ = readl_relaxed(rx_reg);
 854				dev_vdbg(&spi->dev, "read-%d %08x\n",
 855						word_len, *(rx - 1));
 856			}
 
 
 857		} while (c >= 4);
 858	}
 859
 860	/* for TX_ONLY mode, be sure all words have shifted out */
 861	if (xfer->rx_buf == NULL) {
 862		if (mcspi_wait_for_reg_bit(chstat_reg,
 863				OMAP2_MCSPI_CHSTAT_TXS) < 0) {
 864			dev_err(&spi->dev, "TXS timed out\n");
 865		} else if (mcspi_wait_for_reg_bit(chstat_reg,
 866				OMAP2_MCSPI_CHSTAT_EOT) < 0)
 867			dev_err(&spi->dev, "EOT timed out\n");
 868
 869		/* disable chan to purge rx datas received in TX_ONLY transfer,
 870		 * otherwise these rx datas will affect the direct following
 871		 * RX_ONLY transfer.
 872		 */
 873		omap2_mcspi_set_enable(spi, 0);
 874	}
 875out:
 876	omap2_mcspi_set_enable(spi, 1);
 877	return count - c;
 878}
 879
 880static u32 omap2_mcspi_calc_divisor(u32 speed_hz)
 881{
 882	u32 div;
 883
 884	for (div = 0; div < 15; div++)
 885		if (speed_hz >= (OMAP2_MCSPI_MAX_FREQ >> div))
 886			return div;
 887
 888	return 15;
 889}
 890
 891/* called only when no transfer is active to this device */
 892static int omap2_mcspi_setup_transfer(struct spi_device *spi,
 893		struct spi_transfer *t)
 894{
 895	struct omap2_mcspi_cs *cs = spi->controller_state;
 896	struct omap2_mcspi *mcspi;
 897	u32 l = 0, clkd = 0, div, extclk = 0, clkg = 0;
 898	u8 word_len = spi->bits_per_word;
 899	u32 speed_hz = spi->max_speed_hz;
 900
 901	mcspi = spi_master_get_devdata(spi->master);
 902
 903	if (t != NULL && t->bits_per_word)
 904		word_len = t->bits_per_word;
 905
 906	cs->word_len = word_len;
 907
 908	if (t && t->speed_hz)
 909		speed_hz = t->speed_hz;
 910
 911	speed_hz = min_t(u32, speed_hz, OMAP2_MCSPI_MAX_FREQ);
 912	if (speed_hz < (OMAP2_MCSPI_MAX_FREQ / OMAP2_MCSPI_MAX_DIVIDER)) {
 913		clkd = omap2_mcspi_calc_divisor(speed_hz);
 914		speed_hz = OMAP2_MCSPI_MAX_FREQ >> clkd;
 915		clkg = 0;
 916	} else {
 917		div = (OMAP2_MCSPI_MAX_FREQ + speed_hz - 1) / speed_hz;
 918		speed_hz = OMAP2_MCSPI_MAX_FREQ / div;
 919		clkd = (div - 1) & 0xf;
 920		extclk = (div - 1) >> 4;
 921		clkg = OMAP2_MCSPI_CHCONF_CLKG;
 922	}
 923
 924	l = mcspi_cached_chconf0(spi);
 925
 926	/* standard 4-wire master mode:  SCK, MOSI/out, MISO/in, nCS
 927	 * REVISIT: this controller could support SPI_3WIRE mode.
 928	 */
 929	if (mcspi->pin_dir == MCSPI_PINDIR_D0_IN_D1_OUT) {
 930		l &= ~OMAP2_MCSPI_CHCONF_IS;
 931		l &= ~OMAP2_MCSPI_CHCONF_DPE1;
 932		l |= OMAP2_MCSPI_CHCONF_DPE0;
 933	} else {
 934		l |= OMAP2_MCSPI_CHCONF_IS;
 935		l |= OMAP2_MCSPI_CHCONF_DPE1;
 936		l &= ~OMAP2_MCSPI_CHCONF_DPE0;
 937	}
 938
 939	/* wordlength */
 940	l &= ~OMAP2_MCSPI_CHCONF_WL_MASK;
 941	l |= (word_len - 1) << 7;
 942
 943	/* set chipselect polarity; manage with FORCE */
 944	if (!(spi->mode & SPI_CS_HIGH))
 945		l |= OMAP2_MCSPI_CHCONF_EPOL;	/* active-low; normal */
 946	else
 947		l &= ~OMAP2_MCSPI_CHCONF_EPOL;
 948
 949	/* set clock divisor */
 950	l &= ~OMAP2_MCSPI_CHCONF_CLKD_MASK;
 951	l |= clkd << 2;
 952
 953	/* set clock granularity */
 954	l &= ~OMAP2_MCSPI_CHCONF_CLKG;
 955	l |= clkg;
 956	if (clkg) {
 957		cs->chctrl0 &= ~OMAP2_MCSPI_CHCTRL_EXTCLK_MASK;
 958		cs->chctrl0 |= extclk << 8;
 959		mcspi_write_cs_reg(spi, OMAP2_MCSPI_CHCTRL0, cs->chctrl0);
 960	}
 961
 962	/* set SPI mode 0..3 */
 963	if (spi->mode & SPI_CPOL)
 964		l |= OMAP2_MCSPI_CHCONF_POL;
 965	else
 966		l &= ~OMAP2_MCSPI_CHCONF_POL;
 967	if (spi->mode & SPI_CPHA)
 968		l |= OMAP2_MCSPI_CHCONF_PHA;
 969	else
 970		l &= ~OMAP2_MCSPI_CHCONF_PHA;
 971
 972	mcspi_write_chconf0(spi, l);
 973
 974	cs->mode = spi->mode;
 975
 976	dev_dbg(&spi->dev, "setup: speed %d, sample %s edge, clk %s\n",
 977			speed_hz,
 978			(spi->mode & SPI_CPHA) ? "trailing" : "leading",
 979			(spi->mode & SPI_CPOL) ? "inverted" : "normal");
 980
 981	return 0;
 982}
 983
 984/*
 985 * Note that we currently allow DMA only if we get a channel
 986 * for both rx and tx. Otherwise we'll do PIO for both rx and tx.
 987 */
 988static int omap2_mcspi_request_dma(struct spi_device *spi)
 
 989{
 990	struct spi_master	*master = spi->master;
 991	struct omap2_mcspi	*mcspi;
 992	struct omap2_mcspi_dma	*mcspi_dma;
 993	int ret = 0;
 994
 995	mcspi = spi_master_get_devdata(master);
 996	mcspi_dma = mcspi->dma_channels + spi->chip_select;
 997
 998	init_completion(&mcspi_dma->dma_rx_completion);
 999	init_completion(&mcspi_dma->dma_tx_completion);
1000
1001	mcspi_dma->dma_rx = dma_request_chan(&master->dev,
1002					     mcspi_dma->dma_rx_ch_name);
1003	if (IS_ERR(mcspi_dma->dma_rx)) {
1004		ret = PTR_ERR(mcspi_dma->dma_rx);
1005		mcspi_dma->dma_rx = NULL;
1006		goto no_dma;
1007	}
1008
1009	mcspi_dma->dma_tx = dma_request_chan(&master->dev,
1010					     mcspi_dma->dma_tx_ch_name);
1011	if (IS_ERR(mcspi_dma->dma_tx)) {
1012		ret = PTR_ERR(mcspi_dma->dma_tx);
1013		mcspi_dma->dma_tx = NULL;
1014		dma_release_channel(mcspi_dma->dma_rx);
1015		mcspi_dma->dma_rx = NULL;
1016	}
1017
 
 
 
1018no_dma:
1019	return ret;
1020}
1021
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1022static int omap2_mcspi_setup(struct spi_device *spi)
1023{
 
1024	int			ret;
1025	struct omap2_mcspi	*mcspi = spi_master_get_devdata(spi->master);
1026	struct omap2_mcspi_regs	*ctx = &mcspi->ctx;
1027	struct omap2_mcspi_dma	*mcspi_dma;
1028	struct omap2_mcspi_cs	*cs = spi->controller_state;
1029
1030	mcspi_dma = &mcspi->dma_channels[spi->chip_select];
1031
1032	if (!cs) {
1033		cs = kzalloc(sizeof *cs, GFP_KERNEL);
1034		if (!cs)
1035			return -ENOMEM;
1036		cs->base = mcspi->base + spi->chip_select * 0x14;
1037		cs->phys = mcspi->phys + spi->chip_select * 0x14;
1038		cs->mode = 0;
1039		cs->chconf0 = 0;
1040		cs->chctrl0 = 0;
1041		spi->controller_state = cs;
1042		/* Link this to context save list */
1043		list_add_tail(&cs->node, &ctx->cs);
1044
1045		if (gpio_is_valid(spi->cs_gpio)) {
1046			ret = gpio_request(spi->cs_gpio, dev_name(&spi->dev));
1047			if (ret) {
1048				dev_err(&spi->dev, "failed to request gpio\n");
1049				return ret;
1050			}
1051			gpio_direction_output(spi->cs_gpio,
1052					 !(spi->mode & SPI_CS_HIGH));
1053		}
1054	}
1055
1056	if (!mcspi_dma->dma_rx || !mcspi_dma->dma_tx) {
1057		ret = omap2_mcspi_request_dma(spi);
1058		if (ret)
1059			dev_warn(&spi->dev, "not using DMA for McSPI (%d)\n",
1060				 ret);
1061	}
1062
1063	ret = pm_runtime_get_sync(mcspi->dev);
1064	if (ret < 0) {
1065		pm_runtime_put_noidle(mcspi->dev);
 
1066
1067		return ret;
1068	}
1069
1070	ret = omap2_mcspi_setup_transfer(spi, NULL);
 
 
 
1071	pm_runtime_mark_last_busy(mcspi->dev);
1072	pm_runtime_put_autosuspend(mcspi->dev);
1073
1074	return ret;
1075}
1076
1077static void omap2_mcspi_cleanup(struct spi_device *spi)
1078{
1079	struct omap2_mcspi	*mcspi;
1080	struct omap2_mcspi_dma	*mcspi_dma;
1081	struct omap2_mcspi_cs	*cs;
1082
1083	mcspi = spi_master_get_devdata(spi->master);
1084
1085	if (spi->controller_state) {
1086		/* Unlink controller state from context save list */
1087		cs = spi->controller_state;
1088		list_del(&cs->node);
1089
1090		kfree(cs);
1091	}
1092
1093	if (spi->chip_select < spi->master->num_chipselect) {
1094		mcspi_dma = &mcspi->dma_channels[spi->chip_select];
1095
1096		if (mcspi_dma->dma_rx) {
1097			dma_release_channel(mcspi_dma->dma_rx);
1098			mcspi_dma->dma_rx = NULL;
1099		}
1100		if (mcspi_dma->dma_tx) {
1101			dma_release_channel(mcspi_dma->dma_tx);
1102			mcspi_dma->dma_tx = NULL;
1103		}
1104	}
1105
1106	if (gpio_is_valid(spi->cs_gpio))
1107		gpio_free(spi->cs_gpio);
1108}
1109
1110static irqreturn_t omap2_mcspi_irq_handler(int irq, void *data)
1111{
1112	struct omap2_mcspi *mcspi = data;
1113	u32 irqstat;
1114
1115	irqstat	= mcspi_read_reg(mcspi->master, OMAP2_MCSPI_IRQSTATUS);
1116	if (!irqstat)
1117		return IRQ_NONE;
1118
1119	/* Disable IRQ and wakeup slave xfer task */
1120	mcspi_write_reg(mcspi->master, OMAP2_MCSPI_IRQENABLE, 0);
1121	if (irqstat & OMAP2_MCSPI_IRQSTATUS_EOW)
1122		complete(&mcspi->txdone);
1123
1124	return IRQ_HANDLED;
1125}
1126
1127static int omap2_mcspi_slave_abort(struct spi_master *master)
1128{
1129	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1130	struct omap2_mcspi_dma *mcspi_dma = mcspi->dma_channels;
1131
1132	mcspi->slave_aborted = true;
1133	complete(&mcspi_dma->dma_rx_completion);
1134	complete(&mcspi_dma->dma_tx_completion);
1135	complete(&mcspi->txdone);
1136
1137	return 0;
1138}
1139
1140static int omap2_mcspi_transfer_one(struct spi_master *master,
1141				    struct spi_device *spi,
1142				    struct spi_transfer *t)
1143{
1144
1145	/* We only enable one channel at a time -- the one whose message is
1146	 * -- although this controller would gladly
1147	 * arbitrate among multiple channels.  This corresponds to "single
1148	 * channel" master mode.  As a side effect, we need to manage the
1149	 * chipselect with the FORCE bit ... CS != channel enable.
1150	 */
1151
1152	struct omap2_mcspi		*mcspi;
1153	struct omap2_mcspi_dma		*mcspi_dma;
1154	struct omap2_mcspi_cs		*cs;
1155	struct omap2_mcspi_device_config *cd;
1156	int				par_override = 0;
1157	int				status = 0;
1158	u32				chconf;
1159
1160	mcspi = spi_master_get_devdata(master);
1161	mcspi_dma = mcspi->dma_channels + spi->chip_select;
1162	cs = spi->controller_state;
1163	cd = spi->controller_data;
1164
1165	/*
1166	 * The slave driver could have changed spi->mode in which case
1167	 * it will be different from cs->mode (the current hardware setup).
1168	 * If so, set par_override (even though its not a parity issue) so
1169	 * omap2_mcspi_setup_transfer will be called to configure the hardware
1170	 * with the correct mode on the first iteration of the loop below.
1171	 */
1172	if (spi->mode != cs->mode)
1173		par_override = 1;
1174
1175	omap2_mcspi_set_enable(spi, 0);
1176
1177	if (gpio_is_valid(spi->cs_gpio))
1178		omap2_mcspi_set_cs(spi, spi->mode & SPI_CS_HIGH);
1179
1180	if (par_override ||
1181	    (t->speed_hz != spi->max_speed_hz) ||
1182	    (t->bits_per_word != spi->bits_per_word)) {
1183		par_override = 1;
1184		status = omap2_mcspi_setup_transfer(spi, t);
1185		if (status < 0)
1186			goto out;
1187		if (t->speed_hz == spi->max_speed_hz &&
1188		    t->bits_per_word == spi->bits_per_word)
1189			par_override = 0;
1190	}
1191	if (cd && cd->cs_per_word) {
1192		chconf = mcspi->ctx.modulctrl;
1193		chconf &= ~OMAP2_MCSPI_MODULCTRL_SINGLE;
1194		mcspi_write_reg(master, OMAP2_MCSPI_MODULCTRL, chconf);
1195		mcspi->ctx.modulctrl =
1196			mcspi_read_cs_reg(spi, OMAP2_MCSPI_MODULCTRL);
1197	}
1198
1199	chconf = mcspi_cached_chconf0(spi);
1200	chconf &= ~OMAP2_MCSPI_CHCONF_TRM_MASK;
1201	chconf &= ~OMAP2_MCSPI_CHCONF_TURBO;
1202
1203	if (t->tx_buf == NULL)
1204		chconf |= OMAP2_MCSPI_CHCONF_TRM_RX_ONLY;
1205	else if (t->rx_buf == NULL)
1206		chconf |= OMAP2_MCSPI_CHCONF_TRM_TX_ONLY;
1207
1208	if (cd && cd->turbo_mode && t->tx_buf == NULL) {
1209		/* Turbo mode is for more than one word */
1210		if (t->len > ((cs->word_len + 7) >> 3))
1211			chconf |= OMAP2_MCSPI_CHCONF_TURBO;
1212	}
1213
1214	mcspi_write_chconf0(spi, chconf);
1215
1216	if (t->len) {
1217		unsigned	count;
1218
1219		if ((mcspi_dma->dma_rx && mcspi_dma->dma_tx) &&
1220		    master->cur_msg_mapped &&
1221		    master->can_dma(master, spi, t))
1222			omap2_mcspi_set_fifo(spi, t, 1);
1223
1224		omap2_mcspi_set_enable(spi, 1);
1225
1226		/* RX_ONLY mode needs dummy data in TX reg */
1227		if (t->tx_buf == NULL)
1228			writel_relaxed(0, cs->base
1229					+ OMAP2_MCSPI_TX0);
1230
1231		if ((mcspi_dma->dma_rx && mcspi_dma->dma_tx) &&
1232		    master->cur_msg_mapped &&
1233		    master->can_dma(master, spi, t))
1234			count = omap2_mcspi_txrx_dma(spi, t);
1235		else
1236			count = omap2_mcspi_txrx_pio(spi, t);
1237
1238		if (count != t->len) {
1239			status = -EIO;
1240			goto out;
1241		}
1242	}
1243
1244	omap2_mcspi_set_enable(spi, 0);
1245
1246	if (mcspi->fifo_depth > 0)
1247		omap2_mcspi_set_fifo(spi, t, 0);
1248
1249out:
1250	/* Restore defaults if they were overriden */
1251	if (par_override) {
1252		par_override = 0;
1253		status = omap2_mcspi_setup_transfer(spi, NULL);
1254	}
1255
1256	if (cd && cd->cs_per_word) {
1257		chconf = mcspi->ctx.modulctrl;
1258		chconf |= OMAP2_MCSPI_MODULCTRL_SINGLE;
1259		mcspi_write_reg(master, OMAP2_MCSPI_MODULCTRL, chconf);
1260		mcspi->ctx.modulctrl =
1261			mcspi_read_cs_reg(spi, OMAP2_MCSPI_MODULCTRL);
1262	}
1263
1264	omap2_mcspi_set_enable(spi, 0);
1265
1266	if (gpio_is_valid(spi->cs_gpio))
1267		omap2_mcspi_set_cs(spi, !(spi->mode & SPI_CS_HIGH));
1268
1269	if (mcspi->fifo_depth > 0 && t)
1270		omap2_mcspi_set_fifo(spi, t, 0);
1271
1272	return status;
1273}
1274
1275static int omap2_mcspi_prepare_message(struct spi_master *master,
1276				       struct spi_message *msg)
1277{
1278	struct omap2_mcspi	*mcspi = spi_master_get_devdata(master);
1279	struct omap2_mcspi_regs	*ctx = &mcspi->ctx;
1280	struct omap2_mcspi_cs	*cs;
1281
1282	/* Only a single channel can have the FORCE bit enabled
1283	 * in its chconf0 register.
1284	 * Scan all channels and disable them except the current one.
1285	 * A FORCE can remain from a last transfer having cs_change enabled
1286	 */
1287	list_for_each_entry(cs, &ctx->cs, node) {
1288		if (msg->spi->controller_state == cs)
1289			continue;
1290
1291		if ((cs->chconf0 & OMAP2_MCSPI_CHCONF_FORCE)) {
1292			cs->chconf0 &= ~OMAP2_MCSPI_CHCONF_FORCE;
1293			writel_relaxed(cs->chconf0,
1294					cs->base + OMAP2_MCSPI_CHCONF0);
1295			readl_relaxed(cs->base + OMAP2_MCSPI_CHCONF0);
1296		}
1297	}
1298
1299	return 0;
1300}
1301
1302static bool omap2_mcspi_can_dma(struct spi_master *master,
1303				struct spi_device *spi,
1304				struct spi_transfer *xfer)
1305{
1306	struct omap2_mcspi *mcspi = spi_master_get_devdata(spi->master);
1307	struct omap2_mcspi_dma *mcspi_dma =
1308		&mcspi->dma_channels[spi->chip_select];
1309
1310	if (!mcspi_dma->dma_rx || !mcspi_dma->dma_tx)
1311		return false;
1312
1313	if (spi_controller_is_slave(master))
1314		return true;
1315
 
 
 
1316	return (xfer->len >= DMA_MIN_BYTES);
1317}
1318
 
 
 
 
 
 
 
 
 
 
 
 
1319static int omap2_mcspi_controller_setup(struct omap2_mcspi *mcspi)
1320{
1321	struct spi_master	*master = mcspi->master;
1322	struct omap2_mcspi_regs	*ctx = &mcspi->ctx;
1323	int			ret = 0;
1324
1325	ret = pm_runtime_get_sync(mcspi->dev);
1326	if (ret < 0) {
1327		pm_runtime_put_noidle(mcspi->dev);
1328
1329		return ret;
1330	}
1331
1332	mcspi_write_reg(master, OMAP2_MCSPI_WAKEUPENABLE,
1333			OMAP2_MCSPI_WAKEUPENABLE_WKEN);
1334	ctx->wakeupenable = OMAP2_MCSPI_WAKEUPENABLE_WKEN;
1335
1336	omap2_mcspi_set_mode(master);
1337	pm_runtime_mark_last_busy(mcspi->dev);
1338	pm_runtime_put_autosuspend(mcspi->dev);
1339	return 0;
1340}
1341
 
 
 
 
 
 
 
 
 
 
 
1342/*
1343 * When SPI wake up from off-mode, CS is in activate state. If it was in
1344 * inactive state when driver was suspend, then force it to inactive state at
1345 * wake up.
1346 */
1347static int omap_mcspi_runtime_resume(struct device *dev)
1348{
1349	struct spi_master *master = dev_get_drvdata(dev);
1350	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1351	struct omap2_mcspi_regs *ctx = &mcspi->ctx;
1352	struct omap2_mcspi_cs *cs;
 
 
 
 
 
1353
1354	/* McSPI: context restore */
1355	mcspi_write_reg(master, OMAP2_MCSPI_MODULCTRL, ctx->modulctrl);
1356	mcspi_write_reg(master, OMAP2_MCSPI_WAKEUPENABLE, ctx->wakeupenable);
1357
1358	list_for_each_entry(cs, &ctx->cs, node) {
1359		/*
1360		 * We need to toggle CS state for OMAP take this
1361		 * change in account.
1362		 */
1363		if ((cs->chconf0 & OMAP2_MCSPI_CHCONF_FORCE) == 0) {
1364			cs->chconf0 |= OMAP2_MCSPI_CHCONF_FORCE;
1365			writel_relaxed(cs->chconf0,
1366				       cs->base + OMAP2_MCSPI_CHCONF0);
1367			cs->chconf0 &= ~OMAP2_MCSPI_CHCONF_FORCE;
1368			writel_relaxed(cs->chconf0,
1369				       cs->base + OMAP2_MCSPI_CHCONF0);
1370		} else {
1371			writel_relaxed(cs->chconf0,
1372				       cs->base + OMAP2_MCSPI_CHCONF0);
1373		}
1374	}
1375
1376	return 0;
1377}
1378
1379static struct omap2_mcspi_platform_config omap2_pdata = {
1380	.regs_offset = 0,
1381};
1382
1383static struct omap2_mcspi_platform_config omap4_pdata = {
1384	.regs_offset = OMAP4_MCSPI_REG_OFFSET,
1385};
1386
 
 
 
 
 
1387static const struct of_device_id omap_mcspi_of_match[] = {
1388	{
1389		.compatible = "ti,omap2-mcspi",
1390		.data = &omap2_pdata,
1391	},
1392	{
1393		.compatible = "ti,omap4-mcspi",
1394		.data = &omap4_pdata,
1395	},
 
 
 
 
1396	{ },
1397};
1398MODULE_DEVICE_TABLE(of, omap_mcspi_of_match);
1399
1400static int omap2_mcspi_probe(struct platform_device *pdev)
1401{
1402	struct spi_master	*master;
1403	const struct omap2_mcspi_platform_config *pdata;
1404	struct omap2_mcspi	*mcspi;
1405	struct resource		*r;
1406	int			status = 0, i;
1407	u32			regs_offset = 0;
1408	struct device_node	*node = pdev->dev.of_node;
1409	const struct of_device_id *match;
1410
1411	if (of_property_read_bool(node, "spi-slave"))
1412		master = spi_alloc_slave(&pdev->dev, sizeof(*mcspi));
1413	else
1414		master = spi_alloc_master(&pdev->dev, sizeof(*mcspi));
1415	if (!master)
1416		return -ENOMEM;
1417
1418	/* the spi->mode bits understood by this driver: */
1419	master->mode_bits = SPI_CPOL | SPI_CPHA | SPI_CS_HIGH;
1420	master->bits_per_word_mask = SPI_BPW_RANGE_MASK(4, 32);
1421	master->setup = omap2_mcspi_setup;
1422	master->auto_runtime_pm = true;
1423	master->prepare_message = omap2_mcspi_prepare_message;
1424	master->can_dma = omap2_mcspi_can_dma;
1425	master->transfer_one = omap2_mcspi_transfer_one;
1426	master->set_cs = omap2_mcspi_set_cs;
1427	master->cleanup = omap2_mcspi_cleanup;
1428	master->slave_abort = omap2_mcspi_slave_abort;
1429	master->dev.of_node = node;
1430	master->max_speed_hz = OMAP2_MCSPI_MAX_FREQ;
1431	master->min_speed_hz = OMAP2_MCSPI_MAX_FREQ >> 15;
 
1432
1433	platform_set_drvdata(pdev, master);
1434
1435	mcspi = spi_master_get_devdata(master);
1436	mcspi->master = master;
1437
1438	match = of_match_device(omap_mcspi_of_match, &pdev->dev);
1439	if (match) {
1440		u32 num_cs = 1; /* default number of chipselect */
1441		pdata = match->data;
1442
1443		of_property_read_u32(node, "ti,spi-num-cs", &num_cs);
1444		master->num_chipselect = num_cs;
1445		if (of_get_property(node, "ti,pindir-d0-out-d1-in", NULL))
1446			mcspi->pin_dir = MCSPI_PINDIR_D0_OUT_D1_IN;
1447	} else {
1448		pdata = dev_get_platdata(&pdev->dev);
1449		master->num_chipselect = pdata->num_cs;
1450		mcspi->pin_dir = pdata->pin_dir;
1451	}
1452	regs_offset = pdata->regs_offset;
 
 
 
 
1453
1454	r = platform_get_resource(pdev, IORESOURCE_MEM, 0);
1455	mcspi->base = devm_ioremap_resource(&pdev->dev, r);
1456	if (IS_ERR(mcspi->base)) {
1457		status = PTR_ERR(mcspi->base);
1458		goto free_master;
1459	}
1460	mcspi->phys = r->start + regs_offset;
1461	mcspi->base += regs_offset;
1462
1463	mcspi->dev = &pdev->dev;
1464
1465	INIT_LIST_HEAD(&mcspi->ctx.cs);
1466
1467	mcspi->dma_channels = devm_kcalloc(&pdev->dev, master->num_chipselect,
1468					   sizeof(struct omap2_mcspi_dma),
1469					   GFP_KERNEL);
1470	if (mcspi->dma_channels == NULL) {
1471		status = -ENOMEM;
1472		goto free_master;
1473	}
1474
1475	for (i = 0; i < master->num_chipselect; i++) {
1476		sprintf(mcspi->dma_channels[i].dma_rx_ch_name, "rx%d", i);
1477		sprintf(mcspi->dma_channels[i].dma_tx_ch_name, "tx%d", i);
 
 
 
 
 
1478	}
1479
1480	status = platform_get_irq(pdev, 0);
1481	if (status == -EPROBE_DEFER)
1482		goto free_master;
1483	if (status < 0) {
1484		dev_err(&pdev->dev, "no irq resource found\n");
1485		goto free_master;
1486	}
1487	init_completion(&mcspi->txdone);
1488	status = devm_request_irq(&pdev->dev, status,
1489				  omap2_mcspi_irq_handler, 0, pdev->name,
1490				  mcspi);
1491	if (status) {
1492		dev_err(&pdev->dev, "Cannot request IRQ");
1493		goto free_master;
1494	}
1495
1496	pm_runtime_use_autosuspend(&pdev->dev);
1497	pm_runtime_set_autosuspend_delay(&pdev->dev, SPI_AUTOSUSPEND_TIMEOUT);
1498	pm_runtime_enable(&pdev->dev);
1499
1500	status = omap2_mcspi_controller_setup(mcspi);
1501	if (status < 0)
1502		goto disable_pm;
1503
1504	status = devm_spi_register_controller(&pdev->dev, master);
1505	if (status < 0)
1506		goto disable_pm;
1507
1508	return status;
1509
1510disable_pm:
1511	pm_runtime_dont_use_autosuspend(&pdev->dev);
1512	pm_runtime_put_sync(&pdev->dev);
1513	pm_runtime_disable(&pdev->dev);
1514free_master:
 
1515	spi_master_put(master);
1516	return status;
1517}
1518
1519static int omap2_mcspi_remove(struct platform_device *pdev)
1520{
1521	struct spi_master *master = platform_get_drvdata(pdev);
1522	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1523
 
 
1524	pm_runtime_dont_use_autosuspend(mcspi->dev);
1525	pm_runtime_put_sync(mcspi->dev);
1526	pm_runtime_disable(&pdev->dev);
1527
1528	return 0;
1529}
1530
1531/* work with hotplug and coldplug */
1532MODULE_ALIAS("platform:omap2_mcspi");
1533
1534static int __maybe_unused omap2_mcspi_suspend(struct device *dev)
1535{
1536	struct spi_master *master = dev_get_drvdata(dev);
1537	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1538	int error;
1539
1540	error = pinctrl_pm_select_sleep_state(dev);
1541	if (error)
1542		dev_warn(mcspi->dev, "%s: failed to set pins: %i\n",
1543			 __func__, error);
1544
1545	error = spi_master_suspend(master);
1546	if (error)
1547		dev_warn(mcspi->dev, "%s: master suspend failed: %i\n",
1548			 __func__, error);
1549
1550	return pm_runtime_force_suspend(dev);
1551}
1552
1553static int __maybe_unused omap2_mcspi_resume(struct device *dev)
1554{
1555	struct spi_master *master = dev_get_drvdata(dev);
1556	struct omap2_mcspi *mcspi = spi_master_get_devdata(master);
1557	int error;
1558
1559	error = pinctrl_pm_select_default_state(dev);
1560	if (error)
1561		dev_warn(mcspi->dev, "%s: failed to set pins: %i\n",
1562			 __func__, error);
1563
1564	error = spi_master_resume(master);
1565	if (error)
1566		dev_warn(mcspi->dev, "%s: master resume failed: %i\n",
1567			 __func__, error);
1568
1569	return pm_runtime_force_resume(dev);
1570}
1571
1572static const struct dev_pm_ops omap2_mcspi_pm_ops = {
1573	SET_SYSTEM_SLEEP_PM_OPS(omap2_mcspi_suspend,
1574				omap2_mcspi_resume)
1575	.runtime_resume	= omap_mcspi_runtime_resume,
 
1576};
1577
1578static struct platform_driver omap2_mcspi_driver = {
1579	.driver = {
1580		.name =		"omap2_mcspi",
1581		.pm =		&omap2_mcspi_pm_ops,
1582		.of_match_table = omap_mcspi_of_match,
1583	},
1584	.probe =	omap2_mcspi_probe,
1585	.remove =	omap2_mcspi_remove,
1586};
1587
1588module_platform_driver(omap2_mcspi_driver);
1589MODULE_LICENSE("GPL");