xref: /linux/drivers/spi/spi-dw-dma.c (revision fab183d632628381b466a41479489541ac0e29a0)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Special handling for DW DMA core
4  *
5  * Copyright (c) 2009, 2014 Intel Corporation.
6  */
7 
8 #include <linux/completion.h>
9 #include <linux/dma-mapping.h>
10 #include <linux/dmaengine.h>
11 #include <linux/irqreturn.h>
12 #include <linux/jiffies.h>
13 #include <linux/module.h>
14 #include <linux/pci.h>
15 #include <linux/platform_data/dma-dw.h>
16 #include <linux/spi/spi.h>
17 #include <linux/types.h>
18 
19 #include "spi-dw.h"
20 
21 #define DW_SPI_RX_BUSY		0
22 #define DW_SPI_RX_BURST_LEVEL	16
23 #define DW_SPI_TX_BUSY		1
24 #define DW_SPI_TX_BURST_LEVEL	16
25 
dw_spi_dma_chan_filter(struct dma_chan * chan,void * param)26 static bool dw_spi_dma_chan_filter(struct dma_chan *chan, void *param)
27 {
28 	struct dw_dma_slave *s = param;
29 
30 	if (s->dma_dev != chan->device->dev)
31 		return false;
32 
33 	chan->private = s;
34 	return true;
35 }
36 
dw_spi_dma_maxburst_init(struct dw_spi * dws)37 static void dw_spi_dma_maxburst_init(struct dw_spi *dws)
38 {
39 	struct dma_slave_caps caps;
40 	u32 max_burst, def_burst;
41 	int ret;
42 
43 	def_burst = dws->fifo_len / 2;
44 
45 	ret = dma_get_slave_caps(dws->rxchan, &caps);
46 	if (!ret && caps.max_burst)
47 		max_burst = caps.max_burst;
48 	else
49 		max_burst = DW_SPI_RX_BURST_LEVEL;
50 
51 	dws->rxburst = min(max_burst, def_burst);
52 	dw_writel(dws, DW_SPI_DMARDLR, dws->rxburst - 1);
53 
54 	ret = dma_get_slave_caps(dws->txchan, &caps);
55 	if (!ret && caps.max_burst)
56 		max_burst = caps.max_burst;
57 	else
58 		max_burst = DW_SPI_TX_BURST_LEVEL;
59 
60 	/*
61 	 * Having a Rx DMA channel serviced with higher priority than a Tx DMA
62 	 * channel might not be enough to provide a well balanced DMA-based
63 	 * SPI transfer interface. There might still be moments when the Tx DMA
64 	 * channel is occasionally handled faster than the Rx DMA channel.
65 	 * That in its turn will eventually cause the SPI Rx FIFO overflow if
66 	 * SPI bus speed is high enough to fill the SPI Rx FIFO in before it's
67 	 * cleared by the Rx DMA channel. In order to fix the problem the Tx
68 	 * DMA activity is intentionally slowed down by limiting the SPI Tx
69 	 * FIFO depth with a value twice bigger than the Tx burst length.
70 	 */
71 	dws->txburst = min(max_burst, def_burst);
72 	dw_writel(dws, DW_SPI_DMATDLR, dws->txburst);
73 }
74 
dw_spi_dma_caps_init(struct dw_spi * dws)75 static int dw_spi_dma_caps_init(struct dw_spi *dws)
76 {
77 	struct dma_slave_caps tx, rx;
78 	int ret;
79 
80 	ret = dma_get_slave_caps(dws->txchan, &tx);
81 	if (ret)
82 		return ret;
83 
84 	ret = dma_get_slave_caps(dws->rxchan, &rx);
85 	if (ret)
86 		return ret;
87 
88 	if (!(tx.directions & BIT(DMA_MEM_TO_DEV) &&
89 	      rx.directions & BIT(DMA_DEV_TO_MEM)))
90 		return -ENXIO;
91 
92 	if (tx.max_sg_burst > 0 && rx.max_sg_burst > 0)
93 		dws->dma_sg_burst = min(tx.max_sg_burst, rx.max_sg_burst);
94 	else if (tx.max_sg_burst > 0)
95 		dws->dma_sg_burst = tx.max_sg_burst;
96 	else if (rx.max_sg_burst > 0)
97 		dws->dma_sg_burst = rx.max_sg_burst;
98 	else
99 		dws->dma_sg_burst = 0;
100 
101 	/*
102 	 * Assuming both channels belong to the same DMA controller hence the
103 	 * peripheral side address width capabilities most likely would be
104 	 * the same.
105 	 */
106 	dws->dma_addr_widths = tx.dst_addr_widths & rx.src_addr_widths;
107 
108 	return 0;
109 }
110 
dw_spi_dma_init_mfld(struct device * dev,struct dw_spi * dws)111 static int dw_spi_dma_init_mfld(struct device *dev, struct dw_spi *dws)
112 {
113 	struct dw_dma_slave dma_tx = { .dst_id = 1 }, *tx = &dma_tx;
114 	struct dw_dma_slave dma_rx = { .src_id = 0 }, *rx = &dma_rx;
115 	struct pci_dev *dma_dev;
116 	dma_cap_mask_t mask;
117 	int ret = -EBUSY;
118 
119 	/*
120 	 * Get pci device for DMA controller, currently it could only
121 	 * be the DMA controller of Medfield
122 	 */
123 	dma_dev = pci_get_device(PCI_VENDOR_ID_INTEL, 0x0827, NULL);
124 	if (!dma_dev)
125 		return -ENODEV;
126 
127 	dma_cap_zero(mask);
128 	dma_cap_set(DMA_SLAVE, mask);
129 
130 	/* 1. Init rx channel */
131 	rx->dma_dev = &dma_dev->dev;
132 	dws->rxchan = dma_request_channel(mask, dw_spi_dma_chan_filter, rx);
133 	if (!dws->rxchan)
134 		goto err_exit;
135 
136 	/* 2. Init tx channel */
137 	tx->dma_dev = &dma_dev->dev;
138 	dws->txchan = dma_request_channel(mask, dw_spi_dma_chan_filter, tx);
139 	if (!dws->txchan)
140 		goto free_rxchan;
141 
142 	dws->ctlr->dma_rx = dws->rxchan;
143 	dws->ctlr->dma_tx = dws->txchan;
144 
145 	init_completion(&dws->dma_completion);
146 
147 	ret = dw_spi_dma_caps_init(dws);
148 	if (ret)
149 		goto free_txchan;
150 
151 	dw_spi_dma_maxburst_init(dws);
152 
153 	pci_dev_put(dma_dev);
154 
155 	return 0;
156 
157 free_txchan:
158 	dma_release_channel(dws->txchan);
159 	dws->txchan = NULL;
160 free_rxchan:
161 	dma_release_channel(dws->rxchan);
162 	dws->rxchan = NULL;
163 err_exit:
164 	pci_dev_put(dma_dev);
165 	return ret;
166 }
167 
dw_spi_dma_init_generic(struct device * dev,struct dw_spi * dws)168 static int dw_spi_dma_init_generic(struct device *dev, struct dw_spi *dws)
169 {
170 	int ret;
171 
172 	dws->rxchan = dma_request_chan(dev, "rx");
173 	if (IS_ERR(dws->rxchan)) {
174 		ret = PTR_ERR(dws->rxchan);
175 		dws->rxchan = NULL;
176 		goto err_exit;
177 	}
178 
179 	dws->txchan = dma_request_chan(dev, "tx");
180 	if (IS_ERR(dws->txchan)) {
181 		ret = PTR_ERR(dws->txchan);
182 		dws->txchan = NULL;
183 		goto free_rxchan;
184 	}
185 
186 	dws->ctlr->dma_rx = dws->rxchan;
187 	dws->ctlr->dma_tx = dws->txchan;
188 
189 	init_completion(&dws->dma_completion);
190 
191 	ret = dw_spi_dma_caps_init(dws);
192 	if (ret)
193 		goto free_txchan;
194 
195 	dw_spi_dma_maxburst_init(dws);
196 
197 	return 0;
198 
199 free_txchan:
200 	dma_release_channel(dws->txchan);
201 	dws->txchan = NULL;
202 free_rxchan:
203 	dma_release_channel(dws->rxchan);
204 	dws->rxchan = NULL;
205 err_exit:
206 	return ret;
207 }
208 
dw_spi_dma_exit(struct dw_spi * dws)209 static void dw_spi_dma_exit(struct dw_spi *dws)
210 {
211 	if (dws->txchan) {
212 		dmaengine_terminate_sync(dws->txchan);
213 		dma_release_channel(dws->txchan);
214 	}
215 
216 	if (dws->rxchan) {
217 		dmaengine_terminate_sync(dws->rxchan);
218 		dma_release_channel(dws->rxchan);
219 	}
220 }
221 
dw_spi_dma_transfer_handler(struct dw_spi * dws)222 static irqreturn_t dw_spi_dma_transfer_handler(struct dw_spi *dws)
223 {
224 	dw_spi_check_status(dws, false);
225 
226 	complete(&dws->dma_completion);
227 
228 	return IRQ_HANDLED;
229 }
230 
dw_spi_dma_convert_width(u8 n_bytes)231 static enum dma_slave_buswidth dw_spi_dma_convert_width(u8 n_bytes)
232 {
233 	switch (n_bytes) {
234 	case 1:
235 		return DMA_SLAVE_BUSWIDTH_1_BYTE;
236 	case 2:
237 		return DMA_SLAVE_BUSWIDTH_2_BYTES;
238 	case 4:
239 		return DMA_SLAVE_BUSWIDTH_4_BYTES;
240 	default:
241 		return DMA_SLAVE_BUSWIDTH_UNDEFINED;
242 	}
243 }
244 
dw_spi_can_dma(struct spi_controller * ctlr,struct spi_device * spi,struct spi_transfer * xfer)245 static bool dw_spi_can_dma(struct spi_controller *ctlr,
246 			   struct spi_device *spi, struct spi_transfer *xfer)
247 {
248 	struct dw_spi *dws = spi_controller_get_devdata(ctlr);
249 	enum dma_slave_buswidth dma_bus_width;
250 	u8 n_bytes = roundup_pow_of_two(BITS_TO_BYTES(xfer->bits_per_word));
251 
252 	if (xfer->len <= dws->fifo_len)
253 		return false;
254 
255 	dma_bus_width = dw_spi_dma_convert_width(n_bytes);
256 
257 	return dws->dma_addr_widths & BIT(dma_bus_width);
258 }
259 
dw_spi_dma_wait(struct dw_spi * dws,unsigned int len,u32 speed)260 static int dw_spi_dma_wait(struct dw_spi *dws, unsigned int len, u32 speed)
261 {
262 	unsigned long long ms;
263 
264 	ms = len * MSEC_PER_SEC * BITS_PER_BYTE;
265 	do_div(ms, speed);
266 	ms += ms + 200;
267 
268 	if (ms > UINT_MAX)
269 		ms = UINT_MAX;
270 
271 	ms = wait_for_completion_timeout(&dws->dma_completion,
272 					 msecs_to_jiffies(ms));
273 
274 	if (ms == 0) {
275 		dev_err(&dws->ctlr->dev,
276 			"DMA transaction timed out\n");
277 		return -ETIMEDOUT;
278 	}
279 
280 	return 0;
281 }
282 
dw_spi_dma_tx_busy(struct dw_spi * dws)283 static inline bool dw_spi_dma_tx_busy(struct dw_spi *dws)
284 {
285 	return (dw_readl(dws, DW_SPI_SR) &
286 		(DW_SPI_SR_BUSY | DW_SPI_SR_TF_EMPT)) != DW_SPI_SR_TF_EMPT;
287 }
288 
dw_spi_dma_wait_tx_done(struct dw_spi * dws,struct spi_transfer * xfer)289 static int dw_spi_dma_wait_tx_done(struct dw_spi *dws,
290 				   struct spi_transfer *xfer)
291 {
292 	int retry = DW_SPI_WAIT_RETRIES;
293 	struct spi_delay delay;
294 	u32 nents;
295 
296 	nents = dw_readl(dws, DW_SPI_TXFLR);
297 	delay.unit = SPI_DELAY_UNIT_SCK;
298 	delay.value = nents * dws->n_bytes * BITS_PER_BYTE;
299 
300 	while (dw_spi_dma_tx_busy(dws) && retry--)
301 		spi_delay_exec(&delay, xfer);
302 
303 	if (retry < 0) {
304 		dev_err(&dws->ctlr->dev, "Tx hanged up\n");
305 		return -EIO;
306 	}
307 
308 	return 0;
309 }
310 
311 /*
312  * dws->dma_chan_busy is set before the dma transfer starts, callback for tx
313  * channel will clear a corresponding bit.
314  */
dw_spi_dma_tx_done(void * arg)315 static void dw_spi_dma_tx_done(void *arg)
316 {
317 	struct dw_spi *dws = arg;
318 
319 	clear_bit(DW_SPI_TX_BUSY, &dws->dma_chan_busy);
320 	if (test_bit(DW_SPI_RX_BUSY, &dws->dma_chan_busy))
321 		return;
322 
323 	complete(&dws->dma_completion);
324 }
325 
dw_spi_dma_config_tx(struct dw_spi * dws)326 static int dw_spi_dma_config_tx(struct dw_spi *dws)
327 {
328 	struct dma_slave_config txconf;
329 
330 	memset(&txconf, 0, sizeof(txconf));
331 	txconf.direction = DMA_MEM_TO_DEV;
332 	txconf.dst_addr = dws->dma_addr;
333 	txconf.dst_maxburst = dws->txburst;
334 	txconf.src_addr_width = DMA_SLAVE_BUSWIDTH_4_BYTES;
335 	txconf.dst_addr_width = dw_spi_dma_convert_width(dws->n_bytes);
336 	txconf.device_fc = false;
337 
338 	return dmaengine_slave_config(dws->txchan, &txconf);
339 }
340 
dw_spi_dma_submit_tx(struct dw_spi * dws,struct scatterlist * sgl,unsigned int nents)341 static int dw_spi_dma_submit_tx(struct dw_spi *dws, struct scatterlist *sgl,
342 				unsigned int nents)
343 {
344 	struct dma_async_tx_descriptor *txdesc;
345 	dma_cookie_t cookie;
346 	int ret;
347 
348 	txdesc = dmaengine_prep_slave_sg(dws->txchan, sgl, nents,
349 					 DMA_MEM_TO_DEV,
350 					 DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
351 	if (!txdesc)
352 		return -ENOMEM;
353 
354 	txdesc->callback = dw_spi_dma_tx_done;
355 	txdesc->callback_param = dws;
356 
357 	cookie = dmaengine_submit(txdesc);
358 	ret = dma_submit_error(cookie);
359 	if (ret) {
360 		dmaengine_terminate_sync(dws->txchan);
361 		return ret;
362 	}
363 
364 	set_bit(DW_SPI_TX_BUSY, &dws->dma_chan_busy);
365 
366 	return 0;
367 }
368 
dw_spi_dma_rx_busy(struct dw_spi * dws)369 static inline bool dw_spi_dma_rx_busy(struct dw_spi *dws)
370 {
371 	return !!(dw_readl(dws, DW_SPI_SR) & DW_SPI_SR_RF_NOT_EMPT);
372 }
373 
dw_spi_dma_wait_rx_done(struct dw_spi * dws)374 static int dw_spi_dma_wait_rx_done(struct dw_spi *dws)
375 {
376 	int retry = DW_SPI_WAIT_RETRIES;
377 	struct spi_delay delay;
378 	unsigned long ns, us;
379 	u32 nents;
380 
381 	/*
382 	 * It's unlikely that DMA engine is still doing the data fetching, but
383 	 * if it's let's give it some reasonable time. The timeout calculation
384 	 * is based on the synchronous APB/SSI reference clock rate, on a
385 	 * number of data entries left in the Rx FIFO, times a number of clock
386 	 * periods normally needed for a single APB read/write transaction
387 	 * without PREADY signal utilized (which is true for the DW APB SSI
388 	 * controller).
389 	 */
390 	nents = dw_readl(dws, DW_SPI_RXFLR);
391 	ns = 4U * NSEC_PER_SEC / dws->max_freq * nents;
392 	if (ns <= NSEC_PER_USEC) {
393 		delay.unit = SPI_DELAY_UNIT_NSECS;
394 		delay.value = ns;
395 	} else {
396 		us = DIV_ROUND_UP(ns, NSEC_PER_USEC);
397 		delay.unit = SPI_DELAY_UNIT_USECS;
398 		delay.value = clamp_val(us, 0, USHRT_MAX);
399 	}
400 
401 	while (dw_spi_dma_rx_busy(dws) && retry--)
402 		spi_delay_exec(&delay, NULL);
403 
404 	if (retry < 0) {
405 		dev_err(&dws->ctlr->dev, "Rx hanged up\n");
406 		return -EIO;
407 	}
408 
409 	return 0;
410 }
411 
412 /*
413  * dws->dma_chan_busy is set before the dma transfer starts, callback for rx
414  * channel will clear a corresponding bit.
415  */
dw_spi_dma_rx_done(void * arg)416 static void dw_spi_dma_rx_done(void *arg)
417 {
418 	struct dw_spi *dws = arg;
419 
420 	clear_bit(DW_SPI_RX_BUSY, &dws->dma_chan_busy);
421 	if (test_bit(DW_SPI_TX_BUSY, &dws->dma_chan_busy))
422 		return;
423 
424 	complete(&dws->dma_completion);
425 }
426 
dw_spi_dma_config_rx(struct dw_spi * dws)427 static int dw_spi_dma_config_rx(struct dw_spi *dws)
428 {
429 	struct dma_slave_config rxconf;
430 
431 	memset(&rxconf, 0, sizeof(rxconf));
432 	rxconf.direction = DMA_DEV_TO_MEM;
433 	rxconf.src_addr = dws->dma_addr;
434 	rxconf.src_maxburst = dws->rxburst;
435 	rxconf.dst_addr_width = DMA_SLAVE_BUSWIDTH_4_BYTES;
436 	rxconf.src_addr_width = dw_spi_dma_convert_width(dws->n_bytes);
437 	rxconf.device_fc = false;
438 
439 	return dmaengine_slave_config(dws->rxchan, &rxconf);
440 }
441 
dw_spi_dma_submit_rx(struct dw_spi * dws,struct scatterlist * sgl,unsigned int nents)442 static int dw_spi_dma_submit_rx(struct dw_spi *dws, struct scatterlist *sgl,
443 				unsigned int nents)
444 {
445 	struct dma_async_tx_descriptor *rxdesc;
446 	dma_cookie_t cookie;
447 	int ret;
448 
449 	rxdesc = dmaengine_prep_slave_sg(dws->rxchan, sgl, nents,
450 					 DMA_DEV_TO_MEM,
451 					 DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
452 	if (!rxdesc)
453 		return -ENOMEM;
454 
455 	rxdesc->callback = dw_spi_dma_rx_done;
456 	rxdesc->callback_param = dws;
457 
458 	cookie = dmaengine_submit(rxdesc);
459 	ret = dma_submit_error(cookie);
460 	if (ret) {
461 		dmaengine_terminate_sync(dws->rxchan);
462 		return ret;
463 	}
464 
465 	set_bit(DW_SPI_RX_BUSY, &dws->dma_chan_busy);
466 
467 	return 0;
468 }
469 
dw_spi_dma_setup(struct dw_spi * dws,struct spi_transfer * xfer)470 static int dw_spi_dma_setup(struct dw_spi *dws, struct spi_transfer *xfer)
471 {
472 	u16 imr, dma_ctrl;
473 	int ret;
474 
475 	if (!xfer->tx_buf)
476 		return -EINVAL;
477 
478 	/* Setup DMA channels */
479 	ret = dw_spi_dma_config_tx(dws);
480 	if (ret)
481 		return ret;
482 
483 	if (xfer->rx_buf) {
484 		ret = dw_spi_dma_config_rx(dws);
485 		if (ret)
486 			return ret;
487 	}
488 
489 	/* Set the DMA handshaking interface */
490 	dma_ctrl = DW_SPI_DMACR_TDMAE;
491 	if (xfer->rx_buf)
492 		dma_ctrl |= DW_SPI_DMACR_RDMAE;
493 	dw_writel(dws, DW_SPI_DMACR, dma_ctrl);
494 
495 	/* Set the interrupt mask */
496 	imr = DW_SPI_INT_TXOI;
497 	if (xfer->rx_buf)
498 		imr |= DW_SPI_INT_RXUI | DW_SPI_INT_RXOI;
499 	dw_spi_umask_intr(dws, imr);
500 
501 	reinit_completion(&dws->dma_completion);
502 
503 	dws->transfer_handler = dw_spi_dma_transfer_handler;
504 
505 	return 0;
506 }
507 
dw_spi_dma_transfer_all(struct dw_spi * dws,struct spi_transfer * xfer)508 static int dw_spi_dma_transfer_all(struct dw_spi *dws,
509 				   struct spi_transfer *xfer)
510 {
511 	int ret;
512 
513 	/* Submit the DMA Tx transfer */
514 	ret = dw_spi_dma_submit_tx(dws, xfer->tx_sg.sgl, xfer->tx_sg.nents);
515 	if (ret)
516 		goto err_clear_dmac;
517 
518 	/* Submit the DMA Rx transfer if required */
519 	if (xfer->rx_buf) {
520 		ret = dw_spi_dma_submit_rx(dws, xfer->rx_sg.sgl,
521 					   xfer->rx_sg.nents);
522 		if (ret)
523 			goto err_clear_dmac;
524 
525 		/* rx must be started before tx due to spi instinct */
526 		dma_async_issue_pending(dws->rxchan);
527 	}
528 
529 	dma_async_issue_pending(dws->txchan);
530 
531 	ret = dw_spi_dma_wait(dws, xfer->len, xfer->effective_speed_hz);
532 
533 err_clear_dmac:
534 	dw_writel(dws, DW_SPI_DMACR, 0);
535 
536 	return ret;
537 }
538 
539 /*
540  * In case if at least one of the requested DMA channels doesn't support the
541  * hardware accelerated SG list entries traverse, the DMA driver will most
542  * likely work that around by performing the IRQ-based SG list entries
543  * resubmission. That might and will cause a problem if the DMA Tx channel is
544  * recharged and re-executed before the Rx DMA channel. Due to
545  * non-deterministic IRQ-handler execution latency the DMA Tx channel will
546  * start pushing data to the SPI bus before the Rx DMA channel is even
547  * reinitialized with the next inbound SG list entry. By doing so the DMA Tx
548  * channel will implicitly start filling the DW APB SSI Rx FIFO up, which while
549  * the DMA Rx channel being recharged and re-executed will eventually be
550  * overflown.
551  *
552  * In order to solve the problem we have to feed the DMA engine with SG list
553  * entries one-by-one. It shall keep the DW APB SSI Tx and Rx FIFOs
554  * synchronized and prevent the Rx FIFO overflow. Since in general the tx_sg
555  * and rx_sg lists may have different number of entries of different lengths
556  * (though total length should match) let's virtually split the SG-lists to the
557  * set of DMA transfers, which length is a minimum of the ordered SG-entries
558  * lengths. An ASCII-sketch of the implemented algo is following:
559  *                  xfer->len
560  *                |___________|
561  * tx_sg list:    |___|____|__|
562  * rx_sg list:    |_|____|____|
563  * DMA transfers: |_|_|__|_|__|
564  *
565  * Note in order to have this workaround solving the denoted problem the DMA
566  * engine driver should properly initialize the max_sg_burst capability and set
567  * the DMA device max segment size parameter with maximum data block size the
568  * DMA engine supports.
569  */
570 
dw_spi_dma_transfer_one(struct dw_spi * dws,struct spi_transfer * xfer)571 static int dw_spi_dma_transfer_one(struct dw_spi *dws,
572 				   struct spi_transfer *xfer)
573 {
574 	struct scatterlist *tx_sg = NULL, *rx_sg = NULL, tx_tmp, rx_tmp;
575 	unsigned int tx_len = 0, rx_len = 0;
576 	unsigned int base, len;
577 	int ret;
578 
579 	sg_init_table(&tx_tmp, 1);
580 	sg_init_table(&rx_tmp, 1);
581 
582 	for (base = 0; base < xfer->len; base += len) {
583 		/* Fetch next Tx DMA data chunk */
584 		if (!tx_len) {
585 			tx_sg = !tx_sg ? &xfer->tx_sg.sgl[0] : sg_next(tx_sg);
586 			sg_dma_address(&tx_tmp) = sg_dma_address(tx_sg);
587 			tx_len = sg_dma_len(tx_sg);
588 		}
589 
590 		/* Fetch next Rx DMA data chunk */
591 		if (!rx_len) {
592 			rx_sg = !rx_sg ? &xfer->rx_sg.sgl[0] : sg_next(rx_sg);
593 			sg_dma_address(&rx_tmp) = sg_dma_address(rx_sg);
594 			rx_len = sg_dma_len(rx_sg);
595 		}
596 
597 		len = min(tx_len, rx_len);
598 
599 		sg_dma_len(&tx_tmp) = len;
600 		sg_dma_len(&rx_tmp) = len;
601 
602 		/* Submit DMA Tx transfer */
603 		ret = dw_spi_dma_submit_tx(dws, &tx_tmp, 1);
604 		if (ret)
605 			break;
606 
607 		/* Submit DMA Rx transfer */
608 		ret = dw_spi_dma_submit_rx(dws, &rx_tmp, 1);
609 		if (ret)
610 			break;
611 
612 		/* Rx must be started before Tx due to SPI instinct */
613 		dma_async_issue_pending(dws->rxchan);
614 
615 		dma_async_issue_pending(dws->txchan);
616 
617 		/*
618 		 * Here we only need to wait for the DMA transfer to be
619 		 * finished since SPI controller is kept enabled during the
620 		 * procedure this loop implements and there is no risk to lose
621 		 * data left in the Tx/Rx FIFOs.
622 		 */
623 		ret = dw_spi_dma_wait(dws, len, xfer->effective_speed_hz);
624 		if (ret)
625 			break;
626 
627 		reinit_completion(&dws->dma_completion);
628 
629 		sg_dma_address(&tx_tmp) += len;
630 		sg_dma_address(&rx_tmp) += len;
631 		tx_len -= len;
632 		rx_len -= len;
633 	}
634 
635 	dw_writel(dws, DW_SPI_DMACR, 0);
636 
637 	return ret;
638 }
639 
dw_spi_dma_transfer(struct dw_spi * dws,struct spi_transfer * xfer)640 static int dw_spi_dma_transfer(struct dw_spi *dws, struct spi_transfer *xfer)
641 {
642 	unsigned int nents;
643 	int ret;
644 
645 	nents = max(xfer->tx_sg.nents, xfer->rx_sg.nents);
646 
647 	/*
648 	 * Execute normal DMA-based transfer (which submits the Rx and Tx SG
649 	 * lists directly to the DMA engine at once) if either full hardware
650 	 * accelerated SG list traverse is supported by both channels, or the
651 	 * Tx-only SPI transfer is requested, or the DMA engine is capable to
652 	 * handle both SG lists on hardware accelerated basis.
653 	 */
654 	if (!dws->dma_sg_burst || !xfer->rx_buf || nents <= dws->dma_sg_burst)
655 		ret = dw_spi_dma_transfer_all(dws, xfer);
656 	else
657 		ret = dw_spi_dma_transfer_one(dws, xfer);
658 	if (ret)
659 		return ret;
660 
661 	if (dws->ctlr->cur_msg->status == -EINPROGRESS) {
662 		ret = dw_spi_dma_wait_tx_done(dws, xfer);
663 		if (ret)
664 			return ret;
665 	}
666 
667 	if (xfer->rx_buf && dws->ctlr->cur_msg->status == -EINPROGRESS)
668 		ret = dw_spi_dma_wait_rx_done(dws);
669 
670 	return ret;
671 }
672 
dw_spi_dma_stop(struct dw_spi * dws)673 static void dw_spi_dma_stop(struct dw_spi *dws)
674 {
675 	if (test_bit(DW_SPI_TX_BUSY, &dws->dma_chan_busy)) {
676 		dmaengine_terminate_sync(dws->txchan);
677 		clear_bit(DW_SPI_TX_BUSY, &dws->dma_chan_busy);
678 	}
679 	if (test_bit(DW_SPI_RX_BUSY, &dws->dma_chan_busy)) {
680 		dmaengine_terminate_sync(dws->rxchan);
681 		clear_bit(DW_SPI_RX_BUSY, &dws->dma_chan_busy);
682 	}
683 }
684 
685 static const struct dw_spi_dma_ops dw_spi_dma_mfld_ops = {
686 	.dma_init	= dw_spi_dma_init_mfld,
687 	.dma_exit	= dw_spi_dma_exit,
688 	.dma_setup	= dw_spi_dma_setup,
689 	.can_dma	= dw_spi_can_dma,
690 	.dma_transfer	= dw_spi_dma_transfer,
691 	.dma_stop	= dw_spi_dma_stop,
692 };
693 
dw_spi_dma_setup_mfld(struct dw_spi * dws)694 void dw_spi_dma_setup_mfld(struct dw_spi *dws)
695 {
696 	dws->dma_ops = &dw_spi_dma_mfld_ops;
697 }
698 EXPORT_SYMBOL_NS_GPL(dw_spi_dma_setup_mfld, "SPI_DW_CORE");
699 
700 static const struct dw_spi_dma_ops dw_spi_dma_generic_ops = {
701 	.dma_init	= dw_spi_dma_init_generic,
702 	.dma_exit	= dw_spi_dma_exit,
703 	.dma_setup	= dw_spi_dma_setup,
704 	.can_dma	= dw_spi_can_dma,
705 	.dma_transfer	= dw_spi_dma_transfer,
706 	.dma_stop	= dw_spi_dma_stop,
707 };
708 
dw_spi_dma_setup_generic(struct dw_spi * dws)709 void dw_spi_dma_setup_generic(struct dw_spi *dws)
710 {
711 	dws->dma_ops = &dw_spi_dma_generic_ops;
712 }
713 EXPORT_SYMBOL_NS_GPL(dw_spi_dma_setup_generic, "SPI_DW_CORE");
714