xref: /openbmc/linux/drivers/spi/spi-imx.c (revision fed8b7e3)
1 // SPDX-License-Identifier: GPL-2.0+
2 // Copyright 2004-2007 Freescale Semiconductor, Inc. All Rights Reserved.
3 // Copyright (C) 2008 Juergen Beisert
4 
5 #include <linux/clk.h>
6 #include <linux/completion.h>
7 #include <linux/delay.h>
8 #include <linux/dmaengine.h>
9 #include <linux/dma-mapping.h>
10 #include <linux/err.h>
11 #include <linux/gpio.h>
12 #include <linux/interrupt.h>
13 #include <linux/io.h>
14 #include <linux/irq.h>
15 #include <linux/kernel.h>
16 #include <linux/module.h>
17 #include <linux/platform_device.h>
18 #include <linux/slab.h>
19 #include <linux/spi/spi.h>
20 #include <linux/spi/spi_bitbang.h>
21 #include <linux/types.h>
22 #include <linux/of.h>
23 #include <linux/of_device.h>
24 #include <linux/of_gpio.h>
25 
26 #include <linux/platform_data/dma-imx.h>
27 #include <linux/platform_data/spi-imx.h>
28 
29 #define DRIVER_NAME "spi_imx"
30 
31 #define MXC_CSPIRXDATA		0x00
32 #define MXC_CSPITXDATA		0x04
33 #define MXC_CSPICTRL		0x08
34 #define MXC_CSPIINT		0x0c
35 #define MXC_RESET		0x1c
36 
37 /* generic defines to abstract from the different register layouts */
38 #define MXC_INT_RR	(1 << 0) /* Receive data ready interrupt */
39 #define MXC_INT_TE	(1 << 1) /* Transmit FIFO empty interrupt */
40 #define MXC_INT_RDR	BIT(4) /* Receive date threshold interrupt */
41 
42 /* The maximum  bytes that a sdma BD can transfer.*/
43 #define MAX_SDMA_BD_BYTES  (1 << 15)
44 #define MX51_ECSPI_CTRL_MAX_BURST	512
45 /* The maximum bytes that IMX53_ECSPI can transfer in slave mode.*/
46 #define MX53_MAX_TRANSFER_BYTES		512
47 
48 enum spi_imx_devtype {
49 	IMX1_CSPI,
50 	IMX21_CSPI,
51 	IMX27_CSPI,
52 	IMX31_CSPI,
53 	IMX35_CSPI,	/* CSPI on all i.mx except above */
54 	IMX51_ECSPI,	/* ECSPI on i.mx51 */
55 	IMX53_ECSPI,	/* ECSPI on i.mx53 and later */
56 };
57 
58 struct spi_imx_data;
59 
60 struct spi_imx_devtype_data {
61 	void (*intctrl)(struct spi_imx_data *, int);
62 	int (*config)(struct spi_device *);
63 	void (*trigger)(struct spi_imx_data *);
64 	int (*rx_available)(struct spi_imx_data *);
65 	void (*reset)(struct spi_imx_data *);
66 	void (*setup_wml)(struct spi_imx_data *);
67 	void (*disable)(struct spi_imx_data *);
68 	bool has_dmamode;
69 	bool has_slavemode;
70 	unsigned int fifo_size;
71 	bool dynamic_burst;
72 	enum spi_imx_devtype devtype;
73 };
74 
75 struct spi_imx_data {
76 	struct spi_bitbang bitbang;
77 	struct device *dev;
78 
79 	struct completion xfer_done;
80 	void __iomem *base;
81 	unsigned long base_phys;
82 
83 	struct clk *clk_per;
84 	struct clk *clk_ipg;
85 	unsigned long spi_clk;
86 	unsigned int spi_bus_clk;
87 
88 	unsigned int speed_hz;
89 	unsigned int bits_per_word;
90 	unsigned int spi_drctl;
91 
92 	unsigned int count, remainder;
93 	void (*tx)(struct spi_imx_data *);
94 	void (*rx)(struct spi_imx_data *);
95 	void *rx_buf;
96 	const void *tx_buf;
97 	unsigned int txfifo; /* number of words pushed in tx FIFO */
98 	unsigned int dynamic_burst;
99 
100 	/* Slave mode */
101 	bool slave_mode;
102 	bool slave_aborted;
103 	unsigned int slave_burst;
104 
105 	/* DMA */
106 	bool usedma;
107 	u32 wml;
108 	struct completion dma_rx_completion;
109 	struct completion dma_tx_completion;
110 
111 	const struct spi_imx_devtype_data *devtype_data;
112 };
113 
114 static inline int is_imx27_cspi(struct spi_imx_data *d)
115 {
116 	return d->devtype_data->devtype == IMX27_CSPI;
117 }
118 
119 static inline int is_imx35_cspi(struct spi_imx_data *d)
120 {
121 	return d->devtype_data->devtype == IMX35_CSPI;
122 }
123 
124 static inline int is_imx51_ecspi(struct spi_imx_data *d)
125 {
126 	return d->devtype_data->devtype == IMX51_ECSPI;
127 }
128 
129 static inline int is_imx53_ecspi(struct spi_imx_data *d)
130 {
131 	return d->devtype_data->devtype == IMX53_ECSPI;
132 }
133 
134 #define MXC_SPI_BUF_RX(type)						\
135 static void spi_imx_buf_rx_##type(struct spi_imx_data *spi_imx)		\
136 {									\
137 	unsigned int val = readl(spi_imx->base + MXC_CSPIRXDATA);	\
138 									\
139 	if (spi_imx->rx_buf) {						\
140 		*(type *)spi_imx->rx_buf = val;				\
141 		spi_imx->rx_buf += sizeof(type);			\
142 	}								\
143 									\
144 	spi_imx->remainder -= sizeof(type);				\
145 }
146 
147 #define MXC_SPI_BUF_TX(type)						\
148 static void spi_imx_buf_tx_##type(struct spi_imx_data *spi_imx)		\
149 {									\
150 	type val = 0;							\
151 									\
152 	if (spi_imx->tx_buf) {						\
153 		val = *(type *)spi_imx->tx_buf;				\
154 		spi_imx->tx_buf += sizeof(type);			\
155 	}								\
156 									\
157 	spi_imx->count -= sizeof(type);					\
158 									\
159 	writel(val, spi_imx->base + MXC_CSPITXDATA);			\
160 }
161 
162 MXC_SPI_BUF_RX(u8)
163 MXC_SPI_BUF_TX(u8)
164 MXC_SPI_BUF_RX(u16)
165 MXC_SPI_BUF_TX(u16)
166 MXC_SPI_BUF_RX(u32)
167 MXC_SPI_BUF_TX(u32)
168 
169 /* First entry is reserved, second entry is valid only if SDHC_SPIEN is set
170  * (which is currently not the case in this driver)
171  */
172 static int mxc_clkdivs[] = {0, 3, 4, 6, 8, 12, 16, 24, 32, 48, 64, 96, 128, 192,
173 	256, 384, 512, 768, 1024};
174 
175 /* MX21, MX27 */
176 static unsigned int spi_imx_clkdiv_1(unsigned int fin,
177 		unsigned int fspi, unsigned int max, unsigned int *fres)
178 {
179 	int i;
180 
181 	for (i = 2; i < max; i++)
182 		if (fspi * mxc_clkdivs[i] >= fin)
183 			break;
184 
185 	*fres = fin / mxc_clkdivs[i];
186 	return i;
187 }
188 
189 /* MX1, MX31, MX35, MX51 CSPI */
190 static unsigned int spi_imx_clkdiv_2(unsigned int fin,
191 		unsigned int fspi, unsigned int *fres)
192 {
193 	int i, div = 4;
194 
195 	for (i = 0; i < 7; i++) {
196 		if (fspi * div >= fin)
197 			goto out;
198 		div <<= 1;
199 	}
200 
201 out:
202 	*fres = fin / div;
203 	return i;
204 }
205 
206 static int spi_imx_bytes_per_word(const int bits_per_word)
207 {
208 	if (bits_per_word <= 8)
209 		return 1;
210 	else if (bits_per_word <= 16)
211 		return 2;
212 	else
213 		return 4;
214 }
215 
216 static bool spi_imx_can_dma(struct spi_master *master, struct spi_device *spi,
217 			 struct spi_transfer *transfer)
218 {
219 	struct spi_imx_data *spi_imx = spi_master_get_devdata(master);
220 
221 	if (!master->dma_rx)
222 		return false;
223 
224 	if (spi_imx->slave_mode)
225 		return false;
226 
227 	if (transfer->len < spi_imx->devtype_data->fifo_size)
228 		return false;
229 
230 	spi_imx->dynamic_burst = 0;
231 
232 	return true;
233 }
234 
235 #define MX51_ECSPI_CTRL		0x08
236 #define MX51_ECSPI_CTRL_ENABLE		(1 <<  0)
237 #define MX51_ECSPI_CTRL_XCH		(1 <<  2)
238 #define MX51_ECSPI_CTRL_SMC		(1 << 3)
239 #define MX51_ECSPI_CTRL_MODE_MASK	(0xf << 4)
240 #define MX51_ECSPI_CTRL_DRCTL(drctl)	((drctl) << 16)
241 #define MX51_ECSPI_CTRL_POSTDIV_OFFSET	8
242 #define MX51_ECSPI_CTRL_PREDIV_OFFSET	12
243 #define MX51_ECSPI_CTRL_CS(cs)		((cs) << 18)
244 #define MX51_ECSPI_CTRL_BL_OFFSET	20
245 #define MX51_ECSPI_CTRL_BL_MASK		(0xfff << 20)
246 
247 #define MX51_ECSPI_CONFIG	0x0c
248 #define MX51_ECSPI_CONFIG_SCLKPHA(cs)	(1 << ((cs) +  0))
249 #define MX51_ECSPI_CONFIG_SCLKPOL(cs)	(1 << ((cs) +  4))
250 #define MX51_ECSPI_CONFIG_SBBCTRL(cs)	(1 << ((cs) +  8))
251 #define MX51_ECSPI_CONFIG_SSBPOL(cs)	(1 << ((cs) + 12))
252 #define MX51_ECSPI_CONFIG_SCLKCTL(cs)	(1 << ((cs) + 20))
253 
254 #define MX51_ECSPI_INT		0x10
255 #define MX51_ECSPI_INT_TEEN		(1 <<  0)
256 #define MX51_ECSPI_INT_RREN		(1 <<  3)
257 #define MX51_ECSPI_INT_RDREN		(1 <<  4)
258 
259 #define MX51_ECSPI_DMA      0x14
260 #define MX51_ECSPI_DMA_TX_WML(wml)	((wml) & 0x3f)
261 #define MX51_ECSPI_DMA_RX_WML(wml)	(((wml) & 0x3f) << 16)
262 #define MX51_ECSPI_DMA_RXT_WML(wml)	(((wml) & 0x3f) << 24)
263 
264 #define MX51_ECSPI_DMA_TEDEN		(1 << 7)
265 #define MX51_ECSPI_DMA_RXDEN		(1 << 23)
266 #define MX51_ECSPI_DMA_RXTDEN		(1 << 31)
267 
268 #define MX51_ECSPI_STAT		0x18
269 #define MX51_ECSPI_STAT_RR		(1 <<  3)
270 
271 #define MX51_ECSPI_TESTREG	0x20
272 #define MX51_ECSPI_TESTREG_LBC	BIT(31)
273 
274 static void spi_imx_buf_rx_swap_u32(struct spi_imx_data *spi_imx)
275 {
276 	unsigned int val = readl(spi_imx->base + MXC_CSPIRXDATA);
277 #ifdef __LITTLE_ENDIAN
278 	unsigned int bytes_per_word;
279 #endif
280 
281 	if (spi_imx->rx_buf) {
282 #ifdef __LITTLE_ENDIAN
283 		bytes_per_word = spi_imx_bytes_per_word(spi_imx->bits_per_word);
284 		if (bytes_per_word == 1)
285 			val = cpu_to_be32(val);
286 		else if (bytes_per_word == 2)
287 			val = (val << 16) | (val >> 16);
288 #endif
289 		*(u32 *)spi_imx->rx_buf = val;
290 		spi_imx->rx_buf += sizeof(u32);
291 	}
292 
293 	spi_imx->remainder -= sizeof(u32);
294 }
295 
296 static void spi_imx_buf_rx_swap(struct spi_imx_data *spi_imx)
297 {
298 	int unaligned;
299 	u32 val;
300 
301 	unaligned = spi_imx->remainder % 4;
302 
303 	if (!unaligned) {
304 		spi_imx_buf_rx_swap_u32(spi_imx);
305 		return;
306 	}
307 
308 	if (spi_imx_bytes_per_word(spi_imx->bits_per_word) == 2) {
309 		spi_imx_buf_rx_u16(spi_imx);
310 		return;
311 	}
312 
313 	val = readl(spi_imx->base + MXC_CSPIRXDATA);
314 
315 	while (unaligned--) {
316 		if (spi_imx->rx_buf) {
317 			*(u8 *)spi_imx->rx_buf = (val >> (8 * unaligned)) & 0xff;
318 			spi_imx->rx_buf++;
319 		}
320 		spi_imx->remainder--;
321 	}
322 }
323 
324 static void spi_imx_buf_tx_swap_u32(struct spi_imx_data *spi_imx)
325 {
326 	u32 val = 0;
327 #ifdef __LITTLE_ENDIAN
328 	unsigned int bytes_per_word;
329 #endif
330 
331 	if (spi_imx->tx_buf) {
332 		val = *(u32 *)spi_imx->tx_buf;
333 		spi_imx->tx_buf += sizeof(u32);
334 	}
335 
336 	spi_imx->count -= sizeof(u32);
337 #ifdef __LITTLE_ENDIAN
338 	bytes_per_word = spi_imx_bytes_per_word(spi_imx->bits_per_word);
339 
340 	if (bytes_per_word == 1)
341 		val = cpu_to_be32(val);
342 	else if (bytes_per_word == 2)
343 		val = (val << 16) | (val >> 16);
344 #endif
345 	writel(val, spi_imx->base + MXC_CSPITXDATA);
346 }
347 
348 static void spi_imx_buf_tx_swap(struct spi_imx_data *spi_imx)
349 {
350 	int unaligned;
351 	u32 val = 0;
352 
353 	unaligned = spi_imx->count % 4;
354 
355 	if (!unaligned) {
356 		spi_imx_buf_tx_swap_u32(spi_imx);
357 		return;
358 	}
359 
360 	if (spi_imx_bytes_per_word(spi_imx->bits_per_word) == 2) {
361 		spi_imx_buf_tx_u16(spi_imx);
362 		return;
363 	}
364 
365 	while (unaligned--) {
366 		if (spi_imx->tx_buf) {
367 			val |= *(u8 *)spi_imx->tx_buf << (8 * unaligned);
368 			spi_imx->tx_buf++;
369 		}
370 		spi_imx->count--;
371 	}
372 
373 	writel(val, spi_imx->base + MXC_CSPITXDATA);
374 }
375 
376 static void mx53_ecspi_rx_slave(struct spi_imx_data *spi_imx)
377 {
378 	u32 val = be32_to_cpu(readl(spi_imx->base + MXC_CSPIRXDATA));
379 
380 	if (spi_imx->rx_buf) {
381 		int n_bytes = spi_imx->slave_burst % sizeof(val);
382 
383 		if (!n_bytes)
384 			n_bytes = sizeof(val);
385 
386 		memcpy(spi_imx->rx_buf,
387 		       ((u8 *)&val) + sizeof(val) - n_bytes, n_bytes);
388 
389 		spi_imx->rx_buf += n_bytes;
390 		spi_imx->slave_burst -= n_bytes;
391 	}
392 
393 	spi_imx->remainder -= sizeof(u32);
394 }
395 
396 static void mx53_ecspi_tx_slave(struct spi_imx_data *spi_imx)
397 {
398 	u32 val = 0;
399 	int n_bytes = spi_imx->count % sizeof(val);
400 
401 	if (!n_bytes)
402 		n_bytes = sizeof(val);
403 
404 	if (spi_imx->tx_buf) {
405 		memcpy(((u8 *)&val) + sizeof(val) - n_bytes,
406 		       spi_imx->tx_buf, n_bytes);
407 		val = cpu_to_be32(val);
408 		spi_imx->tx_buf += n_bytes;
409 	}
410 
411 	spi_imx->count -= n_bytes;
412 
413 	writel(val, spi_imx->base + MXC_CSPITXDATA);
414 }
415 
416 /* MX51 eCSPI */
417 static unsigned int mx51_ecspi_clkdiv(struct spi_imx_data *spi_imx,
418 				      unsigned int fspi, unsigned int *fres)
419 {
420 	/*
421 	 * there are two 4-bit dividers, the pre-divider divides by
422 	 * $pre, the post-divider by 2^$post
423 	 */
424 	unsigned int pre, post;
425 	unsigned int fin = spi_imx->spi_clk;
426 
427 	if (unlikely(fspi > fin))
428 		return 0;
429 
430 	post = fls(fin) - fls(fspi);
431 	if (fin > fspi << post)
432 		post++;
433 
434 	/* now we have: (fin <= fspi << post) with post being minimal */
435 
436 	post = max(4U, post) - 4;
437 	if (unlikely(post > 0xf)) {
438 		dev_err(spi_imx->dev, "cannot set clock freq: %u (base freq: %u)\n",
439 				fspi, fin);
440 		return 0xff;
441 	}
442 
443 	pre = DIV_ROUND_UP(fin, fspi << post) - 1;
444 
445 	dev_dbg(spi_imx->dev, "%s: fin: %u, fspi: %u, post: %u, pre: %u\n",
446 			__func__, fin, fspi, post, pre);
447 
448 	/* Resulting frequency for the SCLK line. */
449 	*fres = (fin / (pre + 1)) >> post;
450 
451 	return (pre << MX51_ECSPI_CTRL_PREDIV_OFFSET) |
452 		(post << MX51_ECSPI_CTRL_POSTDIV_OFFSET);
453 }
454 
455 static void mx51_ecspi_intctrl(struct spi_imx_data *spi_imx, int enable)
456 {
457 	unsigned val = 0;
458 
459 	if (enable & MXC_INT_TE)
460 		val |= MX51_ECSPI_INT_TEEN;
461 
462 	if (enable & MXC_INT_RR)
463 		val |= MX51_ECSPI_INT_RREN;
464 
465 	if (enable & MXC_INT_RDR)
466 		val |= MX51_ECSPI_INT_RDREN;
467 
468 	writel(val, spi_imx->base + MX51_ECSPI_INT);
469 }
470 
471 static void mx51_ecspi_trigger(struct spi_imx_data *spi_imx)
472 {
473 	u32 reg;
474 
475 	reg = readl(spi_imx->base + MX51_ECSPI_CTRL);
476 	reg |= MX51_ECSPI_CTRL_XCH;
477 	writel(reg, spi_imx->base + MX51_ECSPI_CTRL);
478 }
479 
480 static void mx51_ecspi_disable(struct spi_imx_data *spi_imx)
481 {
482 	u32 ctrl;
483 
484 	ctrl = readl(spi_imx->base + MX51_ECSPI_CTRL);
485 	ctrl &= ~MX51_ECSPI_CTRL_ENABLE;
486 	writel(ctrl, spi_imx->base + MX51_ECSPI_CTRL);
487 }
488 
489 static int mx51_ecspi_config(struct spi_device *spi)
490 {
491 	struct spi_imx_data *spi_imx = spi_master_get_devdata(spi->master);
492 	u32 ctrl = MX51_ECSPI_CTRL_ENABLE;
493 	u32 clk = spi_imx->speed_hz, delay, reg;
494 	u32 cfg = readl(spi_imx->base + MX51_ECSPI_CONFIG);
495 
496 	/* set Master or Slave mode */
497 	if (spi_imx->slave_mode)
498 		ctrl &= ~MX51_ECSPI_CTRL_MODE_MASK;
499 	else
500 		ctrl |= MX51_ECSPI_CTRL_MODE_MASK;
501 
502 	/*
503 	 * Enable SPI_RDY handling (falling edge/level triggered).
504 	 */
505 	if (spi->mode & SPI_READY)
506 		ctrl |= MX51_ECSPI_CTRL_DRCTL(spi_imx->spi_drctl);
507 
508 	/* set clock speed */
509 	ctrl |= mx51_ecspi_clkdiv(spi_imx, spi_imx->speed_hz, &clk);
510 	spi_imx->spi_bus_clk = clk;
511 
512 	/* set chip select to use */
513 	ctrl |= MX51_ECSPI_CTRL_CS(spi->chip_select);
514 
515 	if (spi_imx->slave_mode && is_imx53_ecspi(spi_imx))
516 		ctrl |= (spi_imx->slave_burst * 8 - 1)
517 			<< MX51_ECSPI_CTRL_BL_OFFSET;
518 	else
519 		ctrl |= (spi_imx->bits_per_word - 1)
520 			<< MX51_ECSPI_CTRL_BL_OFFSET;
521 
522 	/*
523 	 * eCSPI burst completion by Chip Select signal in Slave mode
524 	 * is not functional for imx53 Soc, config SPI burst completed when
525 	 * BURST_LENGTH + 1 bits are received
526 	 */
527 	if (spi_imx->slave_mode && is_imx53_ecspi(spi_imx))
528 		cfg &= ~MX51_ECSPI_CONFIG_SBBCTRL(spi->chip_select);
529 	else
530 		cfg |= MX51_ECSPI_CONFIG_SBBCTRL(spi->chip_select);
531 
532 	if (spi->mode & SPI_CPHA)
533 		cfg |= MX51_ECSPI_CONFIG_SCLKPHA(spi->chip_select);
534 	else
535 		cfg &= ~MX51_ECSPI_CONFIG_SCLKPHA(spi->chip_select);
536 
537 	if (spi->mode & SPI_CPOL) {
538 		cfg |= MX51_ECSPI_CONFIG_SCLKPOL(spi->chip_select);
539 		cfg |= MX51_ECSPI_CONFIG_SCLKCTL(spi->chip_select);
540 	} else {
541 		cfg &= ~MX51_ECSPI_CONFIG_SCLKPOL(spi->chip_select);
542 		cfg &= ~MX51_ECSPI_CONFIG_SCLKCTL(spi->chip_select);
543 	}
544 	if (spi->mode & SPI_CS_HIGH)
545 		cfg |= MX51_ECSPI_CONFIG_SSBPOL(spi->chip_select);
546 	else
547 		cfg &= ~MX51_ECSPI_CONFIG_SSBPOL(spi->chip_select);
548 
549 	if (spi_imx->usedma)
550 		ctrl |= MX51_ECSPI_CTRL_SMC;
551 
552 	/* CTRL register always go first to bring out controller from reset */
553 	writel(ctrl, spi_imx->base + MX51_ECSPI_CTRL);
554 
555 	reg = readl(spi_imx->base + MX51_ECSPI_TESTREG);
556 	if (spi->mode & SPI_LOOP)
557 		reg |= MX51_ECSPI_TESTREG_LBC;
558 	else
559 		reg &= ~MX51_ECSPI_TESTREG_LBC;
560 	writel(reg, spi_imx->base + MX51_ECSPI_TESTREG);
561 
562 	writel(cfg, spi_imx->base + MX51_ECSPI_CONFIG);
563 
564 	/*
565 	 * Wait until the changes in the configuration register CONFIGREG
566 	 * propagate into the hardware. It takes exactly one tick of the
567 	 * SCLK clock, but we will wait two SCLK clock just to be sure. The
568 	 * effect of the delay it takes for the hardware to apply changes
569 	 * is noticable if the SCLK clock run very slow. In such a case, if
570 	 * the polarity of SCLK should be inverted, the GPIO ChipSelect might
571 	 * be asserted before the SCLK polarity changes, which would disrupt
572 	 * the SPI communication as the device on the other end would consider
573 	 * the change of SCLK polarity as a clock tick already.
574 	 */
575 	delay = (2 * 1000000) / clk;
576 	if (likely(delay < 10))	/* SCLK is faster than 100 kHz */
577 		udelay(delay);
578 	else			/* SCLK is _very_ slow */
579 		usleep_range(delay, delay + 10);
580 
581 	return 0;
582 }
583 
584 static void mx51_setup_wml(struct spi_imx_data *spi_imx)
585 {
586 	/*
587 	 * Configure the DMA register: setup the watermark
588 	 * and enable DMA request.
589 	 */
590 
591 	writel(MX51_ECSPI_DMA_RX_WML(spi_imx->wml - 1) |
592 		MX51_ECSPI_DMA_TX_WML(spi_imx->wml) |
593 		MX51_ECSPI_DMA_RXT_WML(spi_imx->wml) |
594 		MX51_ECSPI_DMA_TEDEN | MX51_ECSPI_DMA_RXDEN |
595 		MX51_ECSPI_DMA_RXTDEN, spi_imx->base + MX51_ECSPI_DMA);
596 }
597 
598 static int mx51_ecspi_rx_available(struct spi_imx_data *spi_imx)
599 {
600 	return readl(spi_imx->base + MX51_ECSPI_STAT) & MX51_ECSPI_STAT_RR;
601 }
602 
603 static void mx51_ecspi_reset(struct spi_imx_data *spi_imx)
604 {
605 	/* drain receive buffer */
606 	while (mx51_ecspi_rx_available(spi_imx))
607 		readl(spi_imx->base + MXC_CSPIRXDATA);
608 }
609 
610 #define MX31_INTREG_TEEN	(1 << 0)
611 #define MX31_INTREG_RREN	(1 << 3)
612 
613 #define MX31_CSPICTRL_ENABLE	(1 << 0)
614 #define MX31_CSPICTRL_MASTER	(1 << 1)
615 #define MX31_CSPICTRL_XCH	(1 << 2)
616 #define MX31_CSPICTRL_SMC	(1 << 3)
617 #define MX31_CSPICTRL_POL	(1 << 4)
618 #define MX31_CSPICTRL_PHA	(1 << 5)
619 #define MX31_CSPICTRL_SSCTL	(1 << 6)
620 #define MX31_CSPICTRL_SSPOL	(1 << 7)
621 #define MX31_CSPICTRL_BC_SHIFT	8
622 #define MX35_CSPICTRL_BL_SHIFT	20
623 #define MX31_CSPICTRL_CS_SHIFT	24
624 #define MX35_CSPICTRL_CS_SHIFT	12
625 #define MX31_CSPICTRL_DR_SHIFT	16
626 
627 #define MX31_CSPI_DMAREG	0x10
628 #define MX31_DMAREG_RH_DEN	(1<<4)
629 #define MX31_DMAREG_TH_DEN	(1<<1)
630 
631 #define MX31_CSPISTATUS		0x14
632 #define MX31_STATUS_RR		(1 << 3)
633 
634 #define MX31_CSPI_TESTREG	0x1C
635 #define MX31_TEST_LBC		(1 << 14)
636 
637 /* These functions also work for the i.MX35, but be aware that
638  * the i.MX35 has a slightly different register layout for bits
639  * we do not use here.
640  */
641 static void mx31_intctrl(struct spi_imx_data *spi_imx, int enable)
642 {
643 	unsigned int val = 0;
644 
645 	if (enable & MXC_INT_TE)
646 		val |= MX31_INTREG_TEEN;
647 	if (enable & MXC_INT_RR)
648 		val |= MX31_INTREG_RREN;
649 
650 	writel(val, spi_imx->base + MXC_CSPIINT);
651 }
652 
653 static void mx31_trigger(struct spi_imx_data *spi_imx)
654 {
655 	unsigned int reg;
656 
657 	reg = readl(spi_imx->base + MXC_CSPICTRL);
658 	reg |= MX31_CSPICTRL_XCH;
659 	writel(reg, spi_imx->base + MXC_CSPICTRL);
660 }
661 
662 static int mx31_config(struct spi_device *spi)
663 {
664 	struct spi_imx_data *spi_imx = spi_master_get_devdata(spi->master);
665 	unsigned int reg = MX31_CSPICTRL_ENABLE | MX31_CSPICTRL_MASTER;
666 	unsigned int clk;
667 
668 	reg |= spi_imx_clkdiv_2(spi_imx->spi_clk, spi_imx->speed_hz, &clk) <<
669 		MX31_CSPICTRL_DR_SHIFT;
670 	spi_imx->spi_bus_clk = clk;
671 
672 	if (is_imx35_cspi(spi_imx)) {
673 		reg |= (spi_imx->bits_per_word - 1) << MX35_CSPICTRL_BL_SHIFT;
674 		reg |= MX31_CSPICTRL_SSCTL;
675 	} else {
676 		reg |= (spi_imx->bits_per_word - 1) << MX31_CSPICTRL_BC_SHIFT;
677 	}
678 
679 	if (spi->mode & SPI_CPHA)
680 		reg |= MX31_CSPICTRL_PHA;
681 	if (spi->mode & SPI_CPOL)
682 		reg |= MX31_CSPICTRL_POL;
683 	if (spi->mode & SPI_CS_HIGH)
684 		reg |= MX31_CSPICTRL_SSPOL;
685 	if (!gpio_is_valid(spi->cs_gpio))
686 		reg |= (spi->chip_select) <<
687 			(is_imx35_cspi(spi_imx) ? MX35_CSPICTRL_CS_SHIFT :
688 						  MX31_CSPICTRL_CS_SHIFT);
689 
690 	if (spi_imx->usedma)
691 		reg |= MX31_CSPICTRL_SMC;
692 
693 	writel(reg, spi_imx->base + MXC_CSPICTRL);
694 
695 	reg = readl(spi_imx->base + MX31_CSPI_TESTREG);
696 	if (spi->mode & SPI_LOOP)
697 		reg |= MX31_TEST_LBC;
698 	else
699 		reg &= ~MX31_TEST_LBC;
700 	writel(reg, spi_imx->base + MX31_CSPI_TESTREG);
701 
702 	if (spi_imx->usedma) {
703 		/* configure DMA requests when RXFIFO is half full and
704 		   when TXFIFO is half empty */
705 		writel(MX31_DMAREG_RH_DEN | MX31_DMAREG_TH_DEN,
706 			spi_imx->base + MX31_CSPI_DMAREG);
707 	}
708 
709 	return 0;
710 }
711 
712 static int mx31_rx_available(struct spi_imx_data *spi_imx)
713 {
714 	return readl(spi_imx->base + MX31_CSPISTATUS) & MX31_STATUS_RR;
715 }
716 
717 static void mx31_reset(struct spi_imx_data *spi_imx)
718 {
719 	/* drain receive buffer */
720 	while (readl(spi_imx->base + MX31_CSPISTATUS) & MX31_STATUS_RR)
721 		readl(spi_imx->base + MXC_CSPIRXDATA);
722 }
723 
724 #define MX21_INTREG_RR		(1 << 4)
725 #define MX21_INTREG_TEEN	(1 << 9)
726 #define MX21_INTREG_RREN	(1 << 13)
727 
728 #define MX21_CSPICTRL_POL	(1 << 5)
729 #define MX21_CSPICTRL_PHA	(1 << 6)
730 #define MX21_CSPICTRL_SSPOL	(1 << 8)
731 #define MX21_CSPICTRL_XCH	(1 << 9)
732 #define MX21_CSPICTRL_ENABLE	(1 << 10)
733 #define MX21_CSPICTRL_MASTER	(1 << 11)
734 #define MX21_CSPICTRL_DR_SHIFT	14
735 #define MX21_CSPICTRL_CS_SHIFT	19
736 
737 static void mx21_intctrl(struct spi_imx_data *spi_imx, int enable)
738 {
739 	unsigned int val = 0;
740 
741 	if (enable & MXC_INT_TE)
742 		val |= MX21_INTREG_TEEN;
743 	if (enable & MXC_INT_RR)
744 		val |= MX21_INTREG_RREN;
745 
746 	writel(val, spi_imx->base + MXC_CSPIINT);
747 }
748 
749 static void mx21_trigger(struct spi_imx_data *spi_imx)
750 {
751 	unsigned int reg;
752 
753 	reg = readl(spi_imx->base + MXC_CSPICTRL);
754 	reg |= MX21_CSPICTRL_XCH;
755 	writel(reg, spi_imx->base + MXC_CSPICTRL);
756 }
757 
758 static int mx21_config(struct spi_device *spi)
759 {
760 	struct spi_imx_data *spi_imx = spi_master_get_devdata(spi->master);
761 	unsigned int reg = MX21_CSPICTRL_ENABLE | MX21_CSPICTRL_MASTER;
762 	unsigned int max = is_imx27_cspi(spi_imx) ? 16 : 18;
763 	unsigned int clk;
764 
765 	reg |= spi_imx_clkdiv_1(spi_imx->spi_clk, spi_imx->speed_hz, max, &clk)
766 		<< MX21_CSPICTRL_DR_SHIFT;
767 	spi_imx->spi_bus_clk = clk;
768 
769 	reg |= spi_imx->bits_per_word - 1;
770 
771 	if (spi->mode & SPI_CPHA)
772 		reg |= MX21_CSPICTRL_PHA;
773 	if (spi->mode & SPI_CPOL)
774 		reg |= MX21_CSPICTRL_POL;
775 	if (spi->mode & SPI_CS_HIGH)
776 		reg |= MX21_CSPICTRL_SSPOL;
777 	if (!gpio_is_valid(spi->cs_gpio))
778 		reg |= spi->chip_select << MX21_CSPICTRL_CS_SHIFT;
779 
780 	writel(reg, spi_imx->base + MXC_CSPICTRL);
781 
782 	return 0;
783 }
784 
785 static int mx21_rx_available(struct spi_imx_data *spi_imx)
786 {
787 	return readl(spi_imx->base + MXC_CSPIINT) & MX21_INTREG_RR;
788 }
789 
790 static void mx21_reset(struct spi_imx_data *spi_imx)
791 {
792 	writel(1, spi_imx->base + MXC_RESET);
793 }
794 
795 #define MX1_INTREG_RR		(1 << 3)
796 #define MX1_INTREG_TEEN		(1 << 8)
797 #define MX1_INTREG_RREN		(1 << 11)
798 
799 #define MX1_CSPICTRL_POL	(1 << 4)
800 #define MX1_CSPICTRL_PHA	(1 << 5)
801 #define MX1_CSPICTRL_XCH	(1 << 8)
802 #define MX1_CSPICTRL_ENABLE	(1 << 9)
803 #define MX1_CSPICTRL_MASTER	(1 << 10)
804 #define MX1_CSPICTRL_DR_SHIFT	13
805 
806 static void mx1_intctrl(struct spi_imx_data *spi_imx, int enable)
807 {
808 	unsigned int val = 0;
809 
810 	if (enable & MXC_INT_TE)
811 		val |= MX1_INTREG_TEEN;
812 	if (enable & MXC_INT_RR)
813 		val |= MX1_INTREG_RREN;
814 
815 	writel(val, spi_imx->base + MXC_CSPIINT);
816 }
817 
818 static void mx1_trigger(struct spi_imx_data *spi_imx)
819 {
820 	unsigned int reg;
821 
822 	reg = readl(spi_imx->base + MXC_CSPICTRL);
823 	reg |= MX1_CSPICTRL_XCH;
824 	writel(reg, spi_imx->base + MXC_CSPICTRL);
825 }
826 
827 static int mx1_config(struct spi_device *spi)
828 {
829 	struct spi_imx_data *spi_imx = spi_master_get_devdata(spi->master);
830 	unsigned int reg = MX1_CSPICTRL_ENABLE | MX1_CSPICTRL_MASTER;
831 	unsigned int clk;
832 
833 	reg |= spi_imx_clkdiv_2(spi_imx->spi_clk, spi_imx->speed_hz, &clk) <<
834 		MX1_CSPICTRL_DR_SHIFT;
835 	spi_imx->spi_bus_clk = clk;
836 
837 	reg |= spi_imx->bits_per_word - 1;
838 
839 	if (spi->mode & SPI_CPHA)
840 		reg |= MX1_CSPICTRL_PHA;
841 	if (spi->mode & SPI_CPOL)
842 		reg |= MX1_CSPICTRL_POL;
843 
844 	writel(reg, spi_imx->base + MXC_CSPICTRL);
845 
846 	return 0;
847 }
848 
849 static int mx1_rx_available(struct spi_imx_data *spi_imx)
850 {
851 	return readl(spi_imx->base + MXC_CSPIINT) & MX1_INTREG_RR;
852 }
853 
854 static void mx1_reset(struct spi_imx_data *spi_imx)
855 {
856 	writel(1, spi_imx->base + MXC_RESET);
857 }
858 
859 static struct spi_imx_devtype_data imx1_cspi_devtype_data = {
860 	.intctrl = mx1_intctrl,
861 	.config = mx1_config,
862 	.trigger = mx1_trigger,
863 	.rx_available = mx1_rx_available,
864 	.reset = mx1_reset,
865 	.fifo_size = 8,
866 	.has_dmamode = false,
867 	.dynamic_burst = false,
868 	.has_slavemode = false,
869 	.devtype = IMX1_CSPI,
870 };
871 
872 static struct spi_imx_devtype_data imx21_cspi_devtype_data = {
873 	.intctrl = mx21_intctrl,
874 	.config = mx21_config,
875 	.trigger = mx21_trigger,
876 	.rx_available = mx21_rx_available,
877 	.reset = mx21_reset,
878 	.fifo_size = 8,
879 	.has_dmamode = false,
880 	.dynamic_burst = false,
881 	.has_slavemode = false,
882 	.devtype = IMX21_CSPI,
883 };
884 
885 static struct spi_imx_devtype_data imx27_cspi_devtype_data = {
886 	/* i.mx27 cspi shares the functions with i.mx21 one */
887 	.intctrl = mx21_intctrl,
888 	.config = mx21_config,
889 	.trigger = mx21_trigger,
890 	.rx_available = mx21_rx_available,
891 	.reset = mx21_reset,
892 	.fifo_size = 8,
893 	.has_dmamode = false,
894 	.dynamic_burst = false,
895 	.has_slavemode = false,
896 	.devtype = IMX27_CSPI,
897 };
898 
899 static struct spi_imx_devtype_data imx31_cspi_devtype_data = {
900 	.intctrl = mx31_intctrl,
901 	.config = mx31_config,
902 	.trigger = mx31_trigger,
903 	.rx_available = mx31_rx_available,
904 	.reset = mx31_reset,
905 	.fifo_size = 8,
906 	.has_dmamode = false,
907 	.dynamic_burst = false,
908 	.has_slavemode = false,
909 	.devtype = IMX31_CSPI,
910 };
911 
912 static struct spi_imx_devtype_data imx35_cspi_devtype_data = {
913 	/* i.mx35 and later cspi shares the functions with i.mx31 one */
914 	.intctrl = mx31_intctrl,
915 	.config = mx31_config,
916 	.trigger = mx31_trigger,
917 	.rx_available = mx31_rx_available,
918 	.reset = mx31_reset,
919 	.fifo_size = 8,
920 	.has_dmamode = true,
921 	.dynamic_burst = false,
922 	.has_slavemode = false,
923 	.devtype = IMX35_CSPI,
924 };
925 
926 static struct spi_imx_devtype_data imx51_ecspi_devtype_data = {
927 	.intctrl = mx51_ecspi_intctrl,
928 	.config = mx51_ecspi_config,
929 	.trigger = mx51_ecspi_trigger,
930 	.rx_available = mx51_ecspi_rx_available,
931 	.reset = mx51_ecspi_reset,
932 	.setup_wml = mx51_setup_wml,
933 	.fifo_size = 64,
934 	.has_dmamode = true,
935 	.dynamic_burst = true,
936 	.has_slavemode = true,
937 	.disable = mx51_ecspi_disable,
938 	.devtype = IMX51_ECSPI,
939 };
940 
941 static struct spi_imx_devtype_data imx53_ecspi_devtype_data = {
942 	.intctrl = mx51_ecspi_intctrl,
943 	.config = mx51_ecspi_config,
944 	.trigger = mx51_ecspi_trigger,
945 	.rx_available = mx51_ecspi_rx_available,
946 	.reset = mx51_ecspi_reset,
947 	.fifo_size = 64,
948 	.has_dmamode = true,
949 	.has_slavemode = true,
950 	.disable = mx51_ecspi_disable,
951 	.devtype = IMX53_ECSPI,
952 };
953 
954 static const struct platform_device_id spi_imx_devtype[] = {
955 	{
956 		.name = "imx1-cspi",
957 		.driver_data = (kernel_ulong_t) &imx1_cspi_devtype_data,
958 	}, {
959 		.name = "imx21-cspi",
960 		.driver_data = (kernel_ulong_t) &imx21_cspi_devtype_data,
961 	}, {
962 		.name = "imx27-cspi",
963 		.driver_data = (kernel_ulong_t) &imx27_cspi_devtype_data,
964 	}, {
965 		.name = "imx31-cspi",
966 		.driver_data = (kernel_ulong_t) &imx31_cspi_devtype_data,
967 	}, {
968 		.name = "imx35-cspi",
969 		.driver_data = (kernel_ulong_t) &imx35_cspi_devtype_data,
970 	}, {
971 		.name = "imx51-ecspi",
972 		.driver_data = (kernel_ulong_t) &imx51_ecspi_devtype_data,
973 	}, {
974 		.name = "imx53-ecspi",
975 		.driver_data = (kernel_ulong_t) &imx53_ecspi_devtype_data,
976 	}, {
977 		/* sentinel */
978 	}
979 };
980 
981 static const struct of_device_id spi_imx_dt_ids[] = {
982 	{ .compatible = "fsl,imx1-cspi", .data = &imx1_cspi_devtype_data, },
983 	{ .compatible = "fsl,imx21-cspi", .data = &imx21_cspi_devtype_data, },
984 	{ .compatible = "fsl,imx27-cspi", .data = &imx27_cspi_devtype_data, },
985 	{ .compatible = "fsl,imx31-cspi", .data = &imx31_cspi_devtype_data, },
986 	{ .compatible = "fsl,imx35-cspi", .data = &imx35_cspi_devtype_data, },
987 	{ .compatible = "fsl,imx51-ecspi", .data = &imx51_ecspi_devtype_data, },
988 	{ .compatible = "fsl,imx53-ecspi", .data = &imx53_ecspi_devtype_data, },
989 	{ /* sentinel */ }
990 };
991 MODULE_DEVICE_TABLE(of, spi_imx_dt_ids);
992 
993 static void spi_imx_chipselect(struct spi_device *spi, int is_active)
994 {
995 	int active = is_active != BITBANG_CS_INACTIVE;
996 	int dev_is_lowactive = !(spi->mode & SPI_CS_HIGH);
997 
998 	if (spi->mode & SPI_NO_CS)
999 		return;
1000 
1001 	if (!gpio_is_valid(spi->cs_gpio))
1002 		return;
1003 
1004 	gpio_set_value(spi->cs_gpio, dev_is_lowactive ^ active);
1005 }
1006 
1007 static void spi_imx_set_burst_len(struct spi_imx_data *spi_imx, int n_bits)
1008 {
1009 	u32 ctrl;
1010 
1011 	ctrl = readl(spi_imx->base + MX51_ECSPI_CTRL);
1012 	ctrl &= ~MX51_ECSPI_CTRL_BL_MASK;
1013 	ctrl |= ((n_bits - 1) << MX51_ECSPI_CTRL_BL_OFFSET);
1014 	writel(ctrl, spi_imx->base + MX51_ECSPI_CTRL);
1015 }
1016 
1017 static void spi_imx_push(struct spi_imx_data *spi_imx)
1018 {
1019 	unsigned int burst_len, fifo_words;
1020 
1021 	if (spi_imx->dynamic_burst)
1022 		fifo_words = 4;
1023 	else
1024 		fifo_words = spi_imx_bytes_per_word(spi_imx->bits_per_word);
1025 	/*
1026 	 * Reload the FIFO when the remaining bytes to be transferred in the
1027 	 * current burst is 0. This only applies when bits_per_word is a
1028 	 * multiple of 8.
1029 	 */
1030 	if (!spi_imx->remainder) {
1031 		if (spi_imx->dynamic_burst) {
1032 
1033 			/* We need to deal unaligned data first */
1034 			burst_len = spi_imx->count % MX51_ECSPI_CTRL_MAX_BURST;
1035 
1036 			if (!burst_len)
1037 				burst_len = MX51_ECSPI_CTRL_MAX_BURST;
1038 
1039 			spi_imx_set_burst_len(spi_imx, burst_len * 8);
1040 
1041 			spi_imx->remainder = burst_len;
1042 		} else {
1043 			spi_imx->remainder = fifo_words;
1044 		}
1045 	}
1046 
1047 	while (spi_imx->txfifo < spi_imx->devtype_data->fifo_size) {
1048 		if (!spi_imx->count)
1049 			break;
1050 		if (spi_imx->dynamic_burst &&
1051 		    spi_imx->txfifo >=  DIV_ROUND_UP(spi_imx->remainder,
1052 						     fifo_words))
1053 			break;
1054 		spi_imx->tx(spi_imx);
1055 		spi_imx->txfifo++;
1056 	}
1057 
1058 	if (!spi_imx->slave_mode)
1059 		spi_imx->devtype_data->trigger(spi_imx);
1060 }
1061 
1062 static irqreturn_t spi_imx_isr(int irq, void *dev_id)
1063 {
1064 	struct spi_imx_data *spi_imx = dev_id;
1065 
1066 	while (spi_imx->txfifo &&
1067 	       spi_imx->devtype_data->rx_available(spi_imx)) {
1068 		spi_imx->rx(spi_imx);
1069 		spi_imx->txfifo--;
1070 	}
1071 
1072 	if (spi_imx->count) {
1073 		spi_imx_push(spi_imx);
1074 		return IRQ_HANDLED;
1075 	}
1076 
1077 	if (spi_imx->txfifo) {
1078 		/* No data left to push, but still waiting for rx data,
1079 		 * enable receive data available interrupt.
1080 		 */
1081 		spi_imx->devtype_data->intctrl(
1082 				spi_imx, MXC_INT_RR);
1083 		return IRQ_HANDLED;
1084 	}
1085 
1086 	spi_imx->devtype_data->intctrl(spi_imx, 0);
1087 	complete(&spi_imx->xfer_done);
1088 
1089 	return IRQ_HANDLED;
1090 }
1091 
1092 static int spi_imx_dma_configure(struct spi_master *master)
1093 {
1094 	int ret;
1095 	enum dma_slave_buswidth buswidth;
1096 	struct dma_slave_config rx = {}, tx = {};
1097 	struct spi_imx_data *spi_imx = spi_master_get_devdata(master);
1098 
1099 	switch (spi_imx_bytes_per_word(spi_imx->bits_per_word)) {
1100 	case 4:
1101 		buswidth = DMA_SLAVE_BUSWIDTH_4_BYTES;
1102 		break;
1103 	case 2:
1104 		buswidth = DMA_SLAVE_BUSWIDTH_2_BYTES;
1105 		break;
1106 	case 1:
1107 		buswidth = DMA_SLAVE_BUSWIDTH_1_BYTE;
1108 		break;
1109 	default:
1110 		return -EINVAL;
1111 	}
1112 
1113 	tx.direction = DMA_MEM_TO_DEV;
1114 	tx.dst_addr = spi_imx->base_phys + MXC_CSPITXDATA;
1115 	tx.dst_addr_width = buswidth;
1116 	tx.dst_maxburst = spi_imx->wml;
1117 	ret = dmaengine_slave_config(master->dma_tx, &tx);
1118 	if (ret) {
1119 		dev_err(spi_imx->dev, "TX dma configuration failed with %d\n", ret);
1120 		return ret;
1121 	}
1122 
1123 	rx.direction = DMA_DEV_TO_MEM;
1124 	rx.src_addr = spi_imx->base_phys + MXC_CSPIRXDATA;
1125 	rx.src_addr_width = buswidth;
1126 	rx.src_maxburst = spi_imx->wml;
1127 	ret = dmaengine_slave_config(master->dma_rx, &rx);
1128 	if (ret) {
1129 		dev_err(spi_imx->dev, "RX dma configuration failed with %d\n", ret);
1130 		return ret;
1131 	}
1132 
1133 	return 0;
1134 }
1135 
1136 static int spi_imx_setupxfer(struct spi_device *spi,
1137 				 struct spi_transfer *t)
1138 {
1139 	struct spi_imx_data *spi_imx = spi_master_get_devdata(spi->master);
1140 
1141 	if (!t)
1142 		return 0;
1143 
1144 	spi_imx->bits_per_word = t->bits_per_word;
1145 	spi_imx->speed_hz  = t->speed_hz;
1146 
1147 	/*
1148 	 * Initialize the functions for transfer. To transfer non byte-aligned
1149 	 * words, we have to use multiple word-size bursts, we can't use
1150 	 * dynamic_burst in that case.
1151 	 */
1152 	if (spi_imx->devtype_data->dynamic_burst && !spi_imx->slave_mode &&
1153 	    (spi_imx->bits_per_word == 8 ||
1154 	    spi_imx->bits_per_word == 16 ||
1155 	    spi_imx->bits_per_word == 32)) {
1156 
1157 		spi_imx->rx = spi_imx_buf_rx_swap;
1158 		spi_imx->tx = spi_imx_buf_tx_swap;
1159 		spi_imx->dynamic_burst = 1;
1160 
1161 	} else {
1162 		if (spi_imx->bits_per_word <= 8) {
1163 			spi_imx->rx = spi_imx_buf_rx_u8;
1164 			spi_imx->tx = spi_imx_buf_tx_u8;
1165 		} else if (spi_imx->bits_per_word <= 16) {
1166 			spi_imx->rx = spi_imx_buf_rx_u16;
1167 			spi_imx->tx = spi_imx_buf_tx_u16;
1168 		} else {
1169 			spi_imx->rx = spi_imx_buf_rx_u32;
1170 			spi_imx->tx = spi_imx_buf_tx_u32;
1171 		}
1172 		spi_imx->dynamic_burst = 0;
1173 	}
1174 
1175 	if (spi_imx_can_dma(spi_imx->bitbang.master, spi, t))
1176 		spi_imx->usedma = 1;
1177 	else
1178 		spi_imx->usedma = 0;
1179 
1180 	if (is_imx53_ecspi(spi_imx) && spi_imx->slave_mode) {
1181 		spi_imx->rx = mx53_ecspi_rx_slave;
1182 		spi_imx->tx = mx53_ecspi_tx_slave;
1183 		spi_imx->slave_burst = t->len;
1184 	}
1185 
1186 	spi_imx->devtype_data->config(spi);
1187 
1188 	return 0;
1189 }
1190 
1191 static void spi_imx_sdma_exit(struct spi_imx_data *spi_imx)
1192 {
1193 	struct spi_master *master = spi_imx->bitbang.master;
1194 
1195 	if (master->dma_rx) {
1196 		dma_release_channel(master->dma_rx);
1197 		master->dma_rx = NULL;
1198 	}
1199 
1200 	if (master->dma_tx) {
1201 		dma_release_channel(master->dma_tx);
1202 		master->dma_tx = NULL;
1203 	}
1204 }
1205 
1206 static int spi_imx_sdma_init(struct device *dev, struct spi_imx_data *spi_imx,
1207 			     struct spi_master *master)
1208 {
1209 	int ret;
1210 
1211 	/* use pio mode for i.mx6dl chip TKT238285 */
1212 	if (of_machine_is_compatible("fsl,imx6dl"))
1213 		return 0;
1214 
1215 	spi_imx->wml = spi_imx->devtype_data->fifo_size / 2;
1216 
1217 	/* Prepare for TX DMA: */
1218 	master->dma_tx = dma_request_slave_channel_reason(dev, "tx");
1219 	if (IS_ERR(master->dma_tx)) {
1220 		ret = PTR_ERR(master->dma_tx);
1221 		dev_dbg(dev, "can't get the TX DMA channel, error %d!\n", ret);
1222 		master->dma_tx = NULL;
1223 		goto err;
1224 	}
1225 
1226 	/* Prepare for RX : */
1227 	master->dma_rx = dma_request_slave_channel_reason(dev, "rx");
1228 	if (IS_ERR(master->dma_rx)) {
1229 		ret = PTR_ERR(master->dma_rx);
1230 		dev_dbg(dev, "can't get the RX DMA channel, error %d\n", ret);
1231 		master->dma_rx = NULL;
1232 		goto err;
1233 	}
1234 
1235 	init_completion(&spi_imx->dma_rx_completion);
1236 	init_completion(&spi_imx->dma_tx_completion);
1237 	master->can_dma = spi_imx_can_dma;
1238 	master->max_dma_len = MAX_SDMA_BD_BYTES;
1239 	spi_imx->bitbang.master->flags = SPI_MASTER_MUST_RX |
1240 					 SPI_MASTER_MUST_TX;
1241 
1242 	return 0;
1243 err:
1244 	spi_imx_sdma_exit(spi_imx);
1245 	return ret;
1246 }
1247 
1248 static void spi_imx_dma_rx_callback(void *cookie)
1249 {
1250 	struct spi_imx_data *spi_imx = (struct spi_imx_data *)cookie;
1251 
1252 	complete(&spi_imx->dma_rx_completion);
1253 }
1254 
1255 static void spi_imx_dma_tx_callback(void *cookie)
1256 {
1257 	struct spi_imx_data *spi_imx = (struct spi_imx_data *)cookie;
1258 
1259 	complete(&spi_imx->dma_tx_completion);
1260 }
1261 
1262 static int spi_imx_calculate_timeout(struct spi_imx_data *spi_imx, int size)
1263 {
1264 	unsigned long timeout = 0;
1265 
1266 	/* Time with actual data transfer and CS change delay related to HW */
1267 	timeout = (8 + 4) * size / spi_imx->spi_bus_clk;
1268 
1269 	/* Add extra second for scheduler related activities */
1270 	timeout += 1;
1271 
1272 	/* Double calculated timeout */
1273 	return msecs_to_jiffies(2 * timeout * MSEC_PER_SEC);
1274 }
1275 
1276 static int spi_imx_dma_transfer(struct spi_imx_data *spi_imx,
1277 				struct spi_transfer *transfer)
1278 {
1279 	struct dma_async_tx_descriptor *desc_tx, *desc_rx;
1280 	unsigned long transfer_timeout;
1281 	unsigned long timeout;
1282 	struct spi_master *master = spi_imx->bitbang.master;
1283 	struct sg_table *tx = &transfer->tx_sg, *rx = &transfer->rx_sg;
1284 	struct scatterlist *last_sg = sg_last(rx->sgl, rx->nents);
1285 	unsigned int bytes_per_word, i;
1286 	int ret;
1287 
1288 	/* Get the right burst length from the last sg to ensure no tail data */
1289 	bytes_per_word = spi_imx_bytes_per_word(transfer->bits_per_word);
1290 	for (i = spi_imx->devtype_data->fifo_size / 2; i > 0; i--) {
1291 		if (!(sg_dma_len(last_sg) % (i * bytes_per_word)))
1292 			break;
1293 	}
1294 	/* Use 1 as wml in case no available burst length got */
1295 	if (i == 0)
1296 		i = 1;
1297 
1298 	spi_imx->wml =  i;
1299 
1300 	ret = spi_imx_dma_configure(master);
1301 	if (ret)
1302 		return ret;
1303 
1304 	if (!spi_imx->devtype_data->setup_wml) {
1305 		dev_err(spi_imx->dev, "No setup_wml()?\n");
1306 		return -EINVAL;
1307 	}
1308 	spi_imx->devtype_data->setup_wml(spi_imx);
1309 
1310 	/*
1311 	 * The TX DMA setup starts the transfer, so make sure RX is configured
1312 	 * before TX.
1313 	 */
1314 	desc_rx = dmaengine_prep_slave_sg(master->dma_rx,
1315 				rx->sgl, rx->nents, DMA_DEV_TO_MEM,
1316 				DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
1317 	if (!desc_rx)
1318 		return -EINVAL;
1319 
1320 	desc_rx->callback = spi_imx_dma_rx_callback;
1321 	desc_rx->callback_param = (void *)spi_imx;
1322 	dmaengine_submit(desc_rx);
1323 	reinit_completion(&spi_imx->dma_rx_completion);
1324 	dma_async_issue_pending(master->dma_rx);
1325 
1326 	desc_tx = dmaengine_prep_slave_sg(master->dma_tx,
1327 				tx->sgl, tx->nents, DMA_MEM_TO_DEV,
1328 				DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
1329 	if (!desc_tx) {
1330 		dmaengine_terminate_all(master->dma_tx);
1331 		return -EINVAL;
1332 	}
1333 
1334 	desc_tx->callback = spi_imx_dma_tx_callback;
1335 	desc_tx->callback_param = (void *)spi_imx;
1336 	dmaengine_submit(desc_tx);
1337 	reinit_completion(&spi_imx->dma_tx_completion);
1338 	dma_async_issue_pending(master->dma_tx);
1339 
1340 	transfer_timeout = spi_imx_calculate_timeout(spi_imx, transfer->len);
1341 
1342 	/* Wait SDMA to finish the data transfer.*/
1343 	timeout = wait_for_completion_timeout(&spi_imx->dma_tx_completion,
1344 						transfer_timeout);
1345 	if (!timeout) {
1346 		dev_err(spi_imx->dev, "I/O Error in DMA TX\n");
1347 		dmaengine_terminate_all(master->dma_tx);
1348 		dmaengine_terminate_all(master->dma_rx);
1349 		return -ETIMEDOUT;
1350 	}
1351 
1352 	timeout = wait_for_completion_timeout(&spi_imx->dma_rx_completion,
1353 					      transfer_timeout);
1354 	if (!timeout) {
1355 		dev_err(&master->dev, "I/O Error in DMA RX\n");
1356 		spi_imx->devtype_data->reset(spi_imx);
1357 		dmaengine_terminate_all(master->dma_rx);
1358 		return -ETIMEDOUT;
1359 	}
1360 
1361 	return transfer->len;
1362 }
1363 
1364 static int spi_imx_pio_transfer(struct spi_device *spi,
1365 				struct spi_transfer *transfer)
1366 {
1367 	struct spi_imx_data *spi_imx = spi_master_get_devdata(spi->master);
1368 	unsigned long transfer_timeout;
1369 	unsigned long timeout;
1370 
1371 	spi_imx->tx_buf = transfer->tx_buf;
1372 	spi_imx->rx_buf = transfer->rx_buf;
1373 	spi_imx->count = transfer->len;
1374 	spi_imx->txfifo = 0;
1375 	spi_imx->remainder = 0;
1376 
1377 	reinit_completion(&spi_imx->xfer_done);
1378 
1379 	spi_imx_push(spi_imx);
1380 
1381 	spi_imx->devtype_data->intctrl(spi_imx, MXC_INT_TE);
1382 
1383 	transfer_timeout = spi_imx_calculate_timeout(spi_imx, transfer->len);
1384 
1385 	timeout = wait_for_completion_timeout(&spi_imx->xfer_done,
1386 					      transfer_timeout);
1387 	if (!timeout) {
1388 		dev_err(&spi->dev, "I/O Error in PIO\n");
1389 		spi_imx->devtype_data->reset(spi_imx);
1390 		return -ETIMEDOUT;
1391 	}
1392 
1393 	return transfer->len;
1394 }
1395 
1396 static int spi_imx_pio_transfer_slave(struct spi_device *spi,
1397 				      struct spi_transfer *transfer)
1398 {
1399 	struct spi_imx_data *spi_imx = spi_master_get_devdata(spi->master);
1400 	int ret = transfer->len;
1401 
1402 	if (is_imx53_ecspi(spi_imx) &&
1403 	    transfer->len > MX53_MAX_TRANSFER_BYTES) {
1404 		dev_err(&spi->dev, "Transaction too big, max size is %d bytes\n",
1405 			MX53_MAX_TRANSFER_BYTES);
1406 		return -EMSGSIZE;
1407 	}
1408 
1409 	spi_imx->tx_buf = transfer->tx_buf;
1410 	spi_imx->rx_buf = transfer->rx_buf;
1411 	spi_imx->count = transfer->len;
1412 	spi_imx->txfifo = 0;
1413 	spi_imx->remainder = 0;
1414 
1415 	reinit_completion(&spi_imx->xfer_done);
1416 	spi_imx->slave_aborted = false;
1417 
1418 	spi_imx_push(spi_imx);
1419 
1420 	spi_imx->devtype_data->intctrl(spi_imx, MXC_INT_TE | MXC_INT_RDR);
1421 
1422 	if (wait_for_completion_interruptible(&spi_imx->xfer_done) ||
1423 	    spi_imx->slave_aborted) {
1424 		dev_dbg(&spi->dev, "interrupted\n");
1425 		ret = -EINTR;
1426 	}
1427 
1428 	/* ecspi has a HW issue when works in Slave mode,
1429 	 * after 64 words writtern to TXFIFO, even TXFIFO becomes empty,
1430 	 * ECSPI_TXDATA keeps shift out the last word data,
1431 	 * so we have to disable ECSPI when in slave mode after the
1432 	 * transfer completes
1433 	 */
1434 	if (spi_imx->devtype_data->disable)
1435 		spi_imx->devtype_data->disable(spi_imx);
1436 
1437 	return ret;
1438 }
1439 
1440 static int spi_imx_transfer(struct spi_device *spi,
1441 				struct spi_transfer *transfer)
1442 {
1443 	struct spi_imx_data *spi_imx = spi_master_get_devdata(spi->master);
1444 
1445 	/* flush rxfifo before transfer */
1446 	while (spi_imx->devtype_data->rx_available(spi_imx))
1447 		spi_imx->rx(spi_imx);
1448 
1449 	if (spi_imx->slave_mode)
1450 		return spi_imx_pio_transfer_slave(spi, transfer);
1451 
1452 	if (spi_imx->usedma)
1453 		return spi_imx_dma_transfer(spi_imx, transfer);
1454 	else
1455 		return spi_imx_pio_transfer(spi, transfer);
1456 }
1457 
1458 static int spi_imx_setup(struct spi_device *spi)
1459 {
1460 	dev_dbg(&spi->dev, "%s: mode %d, %u bpw, %d hz\n", __func__,
1461 		 spi->mode, spi->bits_per_word, spi->max_speed_hz);
1462 
1463 	if (spi->mode & SPI_NO_CS)
1464 		return 0;
1465 
1466 	if (gpio_is_valid(spi->cs_gpio))
1467 		gpio_direction_output(spi->cs_gpio,
1468 				      spi->mode & SPI_CS_HIGH ? 0 : 1);
1469 
1470 	spi_imx_chipselect(spi, BITBANG_CS_INACTIVE);
1471 
1472 	return 0;
1473 }
1474 
1475 static void spi_imx_cleanup(struct spi_device *spi)
1476 {
1477 }
1478 
1479 static int
1480 spi_imx_prepare_message(struct spi_master *master, struct spi_message *msg)
1481 {
1482 	struct spi_imx_data *spi_imx = spi_master_get_devdata(master);
1483 	int ret;
1484 
1485 	ret = clk_enable(spi_imx->clk_per);
1486 	if (ret)
1487 		return ret;
1488 
1489 	ret = clk_enable(spi_imx->clk_ipg);
1490 	if (ret) {
1491 		clk_disable(spi_imx->clk_per);
1492 		return ret;
1493 	}
1494 
1495 	return 0;
1496 }
1497 
1498 static int
1499 spi_imx_unprepare_message(struct spi_master *master, struct spi_message *msg)
1500 {
1501 	struct spi_imx_data *spi_imx = spi_master_get_devdata(master);
1502 
1503 	clk_disable(spi_imx->clk_ipg);
1504 	clk_disable(spi_imx->clk_per);
1505 	return 0;
1506 }
1507 
1508 static int spi_imx_slave_abort(struct spi_master *master)
1509 {
1510 	struct spi_imx_data *spi_imx = spi_master_get_devdata(master);
1511 
1512 	spi_imx->slave_aborted = true;
1513 	complete(&spi_imx->xfer_done);
1514 
1515 	return 0;
1516 }
1517 
1518 static int spi_imx_probe(struct platform_device *pdev)
1519 {
1520 	struct device_node *np = pdev->dev.of_node;
1521 	const struct of_device_id *of_id =
1522 			of_match_device(spi_imx_dt_ids, &pdev->dev);
1523 	struct spi_imx_master *mxc_platform_info =
1524 			dev_get_platdata(&pdev->dev);
1525 	struct spi_master *master;
1526 	struct spi_imx_data *spi_imx;
1527 	struct resource *res;
1528 	int i, ret, irq, spi_drctl;
1529 	const struct spi_imx_devtype_data *devtype_data = of_id ? of_id->data :
1530 		(struct spi_imx_devtype_data *)pdev->id_entry->driver_data;
1531 	bool slave_mode;
1532 
1533 	if (!np && !mxc_platform_info) {
1534 		dev_err(&pdev->dev, "can't get the platform data\n");
1535 		return -EINVAL;
1536 	}
1537 
1538 	slave_mode = devtype_data->has_slavemode &&
1539 			of_property_read_bool(np, "spi-slave");
1540 	if (slave_mode)
1541 		master = spi_alloc_slave(&pdev->dev,
1542 					 sizeof(struct spi_imx_data));
1543 	else
1544 		master = spi_alloc_master(&pdev->dev,
1545 					  sizeof(struct spi_imx_data));
1546 	if (!master)
1547 		return -ENOMEM;
1548 
1549 	ret = of_property_read_u32(np, "fsl,spi-rdy-drctl", &spi_drctl);
1550 	if ((ret < 0) || (spi_drctl >= 0x3)) {
1551 		/* '11' is reserved */
1552 		spi_drctl = 0;
1553 	}
1554 
1555 	platform_set_drvdata(pdev, master);
1556 
1557 	master->bits_per_word_mask = SPI_BPW_RANGE_MASK(1, 32);
1558 	master->bus_num = np ? -1 : pdev->id;
1559 
1560 	spi_imx = spi_master_get_devdata(master);
1561 	spi_imx->bitbang.master = master;
1562 	spi_imx->dev = &pdev->dev;
1563 	spi_imx->slave_mode = slave_mode;
1564 
1565 	spi_imx->devtype_data = devtype_data;
1566 
1567 	/* Get number of chip selects, either platform data or OF */
1568 	if (mxc_platform_info) {
1569 		master->num_chipselect = mxc_platform_info->num_chipselect;
1570 		if (mxc_platform_info->chipselect) {
1571 			master->cs_gpios = devm_kcalloc(&master->dev,
1572 				master->num_chipselect, sizeof(int),
1573 				GFP_KERNEL);
1574 			if (!master->cs_gpios)
1575 				return -ENOMEM;
1576 
1577 			for (i = 0; i < master->num_chipselect; i++)
1578 				master->cs_gpios[i] = mxc_platform_info->chipselect[i];
1579 		}
1580 	} else {
1581 		u32 num_cs;
1582 
1583 		if (!of_property_read_u32(np, "num-cs", &num_cs))
1584 			master->num_chipselect = num_cs;
1585 		/* If not preset, default value of 1 is used */
1586 	}
1587 
1588 	spi_imx->bitbang.chipselect = spi_imx_chipselect;
1589 	spi_imx->bitbang.setup_transfer = spi_imx_setupxfer;
1590 	spi_imx->bitbang.txrx_bufs = spi_imx_transfer;
1591 	spi_imx->bitbang.master->setup = spi_imx_setup;
1592 	spi_imx->bitbang.master->cleanup = spi_imx_cleanup;
1593 	spi_imx->bitbang.master->prepare_message = spi_imx_prepare_message;
1594 	spi_imx->bitbang.master->unprepare_message = spi_imx_unprepare_message;
1595 	spi_imx->bitbang.master->slave_abort = spi_imx_slave_abort;
1596 	spi_imx->bitbang.master->mode_bits = SPI_CPOL | SPI_CPHA | SPI_CS_HIGH \
1597 					     | SPI_NO_CS;
1598 	if (is_imx35_cspi(spi_imx) || is_imx51_ecspi(spi_imx) ||
1599 	    is_imx53_ecspi(spi_imx))
1600 		spi_imx->bitbang.master->mode_bits |= SPI_LOOP | SPI_READY;
1601 
1602 	spi_imx->spi_drctl = spi_drctl;
1603 
1604 	init_completion(&spi_imx->xfer_done);
1605 
1606 	res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
1607 	spi_imx->base = devm_ioremap_resource(&pdev->dev, res);
1608 	if (IS_ERR(spi_imx->base)) {
1609 		ret = PTR_ERR(spi_imx->base);
1610 		goto out_master_put;
1611 	}
1612 	spi_imx->base_phys = res->start;
1613 
1614 	irq = platform_get_irq(pdev, 0);
1615 	if (irq < 0) {
1616 		ret = irq;
1617 		goto out_master_put;
1618 	}
1619 
1620 	ret = devm_request_irq(&pdev->dev, irq, spi_imx_isr, 0,
1621 			       dev_name(&pdev->dev), spi_imx);
1622 	if (ret) {
1623 		dev_err(&pdev->dev, "can't get irq%d: %d\n", irq, ret);
1624 		goto out_master_put;
1625 	}
1626 
1627 	spi_imx->clk_ipg = devm_clk_get(&pdev->dev, "ipg");
1628 	if (IS_ERR(spi_imx->clk_ipg)) {
1629 		ret = PTR_ERR(spi_imx->clk_ipg);
1630 		goto out_master_put;
1631 	}
1632 
1633 	spi_imx->clk_per = devm_clk_get(&pdev->dev, "per");
1634 	if (IS_ERR(spi_imx->clk_per)) {
1635 		ret = PTR_ERR(spi_imx->clk_per);
1636 		goto out_master_put;
1637 	}
1638 
1639 	ret = clk_prepare_enable(spi_imx->clk_per);
1640 	if (ret)
1641 		goto out_master_put;
1642 
1643 	ret = clk_prepare_enable(spi_imx->clk_ipg);
1644 	if (ret)
1645 		goto out_put_per;
1646 
1647 	spi_imx->spi_clk = clk_get_rate(spi_imx->clk_per);
1648 	/*
1649 	 * Only validated on i.mx35 and i.mx6 now, can remove the constraint
1650 	 * if validated on other chips.
1651 	 */
1652 	if (spi_imx->devtype_data->has_dmamode) {
1653 		ret = spi_imx_sdma_init(&pdev->dev, spi_imx, master);
1654 		if (ret == -EPROBE_DEFER)
1655 			goto out_clk_put;
1656 
1657 		if (ret < 0)
1658 			dev_err(&pdev->dev, "dma setup error %d, use pio\n",
1659 				ret);
1660 	}
1661 
1662 	spi_imx->devtype_data->reset(spi_imx);
1663 
1664 	spi_imx->devtype_data->intctrl(spi_imx, 0);
1665 
1666 	master->dev.of_node = pdev->dev.of_node;
1667 	ret = spi_bitbang_start(&spi_imx->bitbang);
1668 	if (ret) {
1669 		dev_err(&pdev->dev, "bitbang start failed with %d\n", ret);
1670 		goto out_clk_put;
1671 	}
1672 
1673 	/* Request GPIO CS lines, if any */
1674 	if (!spi_imx->slave_mode && master->cs_gpios) {
1675 		for (i = 0; i < master->num_chipselect; i++) {
1676 			if (!gpio_is_valid(master->cs_gpios[i]))
1677 				continue;
1678 
1679 			ret = devm_gpio_request(&pdev->dev,
1680 						master->cs_gpios[i],
1681 						DRIVER_NAME);
1682 			if (ret) {
1683 				dev_err(&pdev->dev, "Can't get CS GPIO %i\n",
1684 					master->cs_gpios[i]);
1685 				goto out_spi_bitbang;
1686 			}
1687 		}
1688 	}
1689 
1690 	dev_info(&pdev->dev, "probed\n");
1691 
1692 	clk_disable(spi_imx->clk_ipg);
1693 	clk_disable(spi_imx->clk_per);
1694 	return ret;
1695 
1696 out_spi_bitbang:
1697 	spi_bitbang_stop(&spi_imx->bitbang);
1698 out_clk_put:
1699 	clk_disable_unprepare(spi_imx->clk_ipg);
1700 out_put_per:
1701 	clk_disable_unprepare(spi_imx->clk_per);
1702 out_master_put:
1703 	spi_master_put(master);
1704 
1705 	return ret;
1706 }
1707 
1708 static int spi_imx_remove(struct platform_device *pdev)
1709 {
1710 	struct spi_master *master = platform_get_drvdata(pdev);
1711 	struct spi_imx_data *spi_imx = spi_master_get_devdata(master);
1712 	int ret;
1713 
1714 	spi_bitbang_stop(&spi_imx->bitbang);
1715 
1716 	ret = clk_enable(spi_imx->clk_per);
1717 	if (ret)
1718 		return ret;
1719 
1720 	ret = clk_enable(spi_imx->clk_ipg);
1721 	if (ret) {
1722 		clk_disable(spi_imx->clk_per);
1723 		return ret;
1724 	}
1725 
1726 	writel(0, spi_imx->base + MXC_CSPICTRL);
1727 	clk_disable_unprepare(spi_imx->clk_ipg);
1728 	clk_disable_unprepare(spi_imx->clk_per);
1729 	spi_imx_sdma_exit(spi_imx);
1730 	spi_master_put(master);
1731 
1732 	return 0;
1733 }
1734 
1735 static struct platform_driver spi_imx_driver = {
1736 	.driver = {
1737 		   .name = DRIVER_NAME,
1738 		   .of_match_table = spi_imx_dt_ids,
1739 		   },
1740 	.id_table = spi_imx_devtype,
1741 	.probe = spi_imx_probe,
1742 	.remove = spi_imx_remove,
1743 };
1744 module_platform_driver(spi_imx_driver);
1745 
1746 MODULE_DESCRIPTION("SPI Controller driver");
1747 MODULE_AUTHOR("Sascha Hauer, Pengutronix");
1748 MODULE_LICENSE("GPL");
1749 MODULE_ALIAS("platform:" DRIVER_NAME);
1750