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1 /*
2 * Ingenic JZ4780 DMA controller
3 *
4 * Copyright (c) 2015 Imagination Technologies
5 * Author: Alex Smith <alex@alex-smith.me.uk>
6 *
7 * This program is free software; you can redistribute it and/or modify it
8 * under the terms of the GNU General Public License as published by the
9 * Free Software Foundation; either version 2 of the License, or (at your
10 * option) any later version.
11 */
12
13 #include <linux/clk.h>
14 #include <linux/dmapool.h>
15 #include <linux/init.h>
16 #include <linux/interrupt.h>
17 #include <linux/module.h>
18 #include <linux/of.h>
19 #include <linux/of_dma.h>
20 #include <linux/platform_device.h>
21 #include <linux/slab.h>
22
23 #include "dmaengine.h"
24 #include "virt-dma.h"
25
26 #define JZ_DMA_NR_CHANNELS 32
27
28 /* Global registers. */
29 #define JZ_DMA_REG_DMAC 0x1000
30 #define JZ_DMA_REG_DIRQP 0x1004
31 #define JZ_DMA_REG_DDR 0x1008
32 #define JZ_DMA_REG_DDRS 0x100c
33 #define JZ_DMA_REG_DMACP 0x101c
34 #define JZ_DMA_REG_DSIRQP 0x1020
35 #define JZ_DMA_REG_DSIRQM 0x1024
36 #define JZ_DMA_REG_DCIRQP 0x1028
37 #define JZ_DMA_REG_DCIRQM 0x102c
38
39 /* Per-channel registers. */
40 #define JZ_DMA_REG_CHAN(n) (n * 0x20)
41 #define JZ_DMA_REG_DSA(n) (0x00 + JZ_DMA_REG_CHAN(n))
42 #define JZ_DMA_REG_DTA(n) (0x04 + JZ_DMA_REG_CHAN(n))
43 #define JZ_DMA_REG_DTC(n) (0x08 + JZ_DMA_REG_CHAN(n))
44 #define JZ_DMA_REG_DRT(n) (0x0c + JZ_DMA_REG_CHAN(n))
45 #define JZ_DMA_REG_DCS(n) (0x10 + JZ_DMA_REG_CHAN(n))
46 #define JZ_DMA_REG_DCM(n) (0x14 + JZ_DMA_REG_CHAN(n))
47 #define JZ_DMA_REG_DDA(n) (0x18 + JZ_DMA_REG_CHAN(n))
48 #define JZ_DMA_REG_DSD(n) (0x1c + JZ_DMA_REG_CHAN(n))
49
50 #define JZ_DMA_DMAC_DMAE BIT(0)
51 #define JZ_DMA_DMAC_AR BIT(2)
52 #define JZ_DMA_DMAC_HLT BIT(3)
53 #define JZ_DMA_DMAC_FMSC BIT(31)
54
55 #define JZ_DMA_DRT_AUTO 0x8
56
57 #define JZ_DMA_DCS_CTE BIT(0)
58 #define JZ_DMA_DCS_HLT BIT(2)
59 #define JZ_DMA_DCS_TT BIT(3)
60 #define JZ_DMA_DCS_AR BIT(4)
61 #define JZ_DMA_DCS_DES8 BIT(30)
62
63 #define JZ_DMA_DCM_LINK BIT(0)
64 #define JZ_DMA_DCM_TIE BIT(1)
65 #define JZ_DMA_DCM_STDE BIT(2)
66 #define JZ_DMA_DCM_TSZ_SHIFT 8
67 #define JZ_DMA_DCM_TSZ_MASK (0x7 << JZ_DMA_DCM_TSZ_SHIFT)
68 #define JZ_DMA_DCM_DP_SHIFT 12
69 #define JZ_DMA_DCM_SP_SHIFT 14
70 #define JZ_DMA_DCM_DAI BIT(22)
71 #define JZ_DMA_DCM_SAI BIT(23)
72
73 #define JZ_DMA_SIZE_4_BYTE 0x0
74 #define JZ_DMA_SIZE_1_BYTE 0x1
75 #define JZ_DMA_SIZE_2_BYTE 0x2
76 #define JZ_DMA_SIZE_16_BYTE 0x3
77 #define JZ_DMA_SIZE_32_BYTE 0x4
78 #define JZ_DMA_SIZE_64_BYTE 0x5
79 #define JZ_DMA_SIZE_128_BYTE 0x6
80
81 #define JZ_DMA_WIDTH_32_BIT 0x0
82 #define JZ_DMA_WIDTH_8_BIT 0x1
83 #define JZ_DMA_WIDTH_16_BIT 0x2
84
85 #define JZ_DMA_BUSWIDTHS (BIT(DMA_SLAVE_BUSWIDTH_1_BYTE) | \
86 BIT(DMA_SLAVE_BUSWIDTH_2_BYTES) | \
87 BIT(DMA_SLAVE_BUSWIDTH_4_BYTES))
88
89 /**
90 * struct jz4780_dma_hwdesc - descriptor structure read by the DMA controller.
91 * @dcm: value for the DCM (channel command) register
92 * @dsa: source address
93 * @dta: target address
94 * @dtc: transfer count (number of blocks of the transfer size specified in DCM
95 * to transfer) in the low 24 bits, offset of the next descriptor from the
96 * descriptor base address in the upper 8 bits.
97 * @sd: target/source stride difference (in stride transfer mode).
98 * @drt: request type
99 */
100 struct jz4780_dma_hwdesc {
101 uint32_t dcm;
102 uint32_t dsa;
103 uint32_t dta;
104 uint32_t dtc;
105 uint32_t sd;
106 uint32_t drt;
107 uint32_t reserved[2];
108 };
109
110 /* Size of allocations for hardware descriptor blocks. */
111 #define JZ_DMA_DESC_BLOCK_SIZE PAGE_SIZE
112 #define JZ_DMA_MAX_DESC \
113 (JZ_DMA_DESC_BLOCK_SIZE / sizeof(struct jz4780_dma_hwdesc))
114
115 struct jz4780_dma_desc {
116 struct virt_dma_desc vdesc;
117
118 struct jz4780_dma_hwdesc *desc;
119 dma_addr_t desc_phys;
120 unsigned int count;
121 enum dma_transaction_type type;
122 uint32_t status;
123 };
124
125 struct jz4780_dma_chan {
126 struct virt_dma_chan vchan;
127 unsigned int id;
128 struct dma_pool *desc_pool;
129
130 uint32_t transfer_type;
131 uint32_t transfer_shift;
132 struct dma_slave_config config;
133
134 struct jz4780_dma_desc *desc;
135 unsigned int curr_hwdesc;
136 };
137
138 struct jz4780_dma_dev {
139 struct dma_device dma_device;
140 void __iomem *base;
141 struct clk *clk;
142 unsigned int irq;
143
144 uint32_t chan_reserved;
145 struct jz4780_dma_chan chan[JZ_DMA_NR_CHANNELS];
146 };
147
148 struct jz4780_dma_filter_data {
149 struct device_node *of_node;
150 uint32_t transfer_type;
151 int channel;
152 };
153
154 static inline struct jz4780_dma_chan *to_jz4780_dma_chan(struct dma_chan *chan)
155 {
156 return container_of(chan, struct jz4780_dma_chan, vchan.chan);
157 }
158
159 static inline struct jz4780_dma_desc *to_jz4780_dma_desc(
160 struct virt_dma_desc *vdesc)
161 {
162 return container_of(vdesc, struct jz4780_dma_desc, vdesc);
163 }
164
165 static inline struct jz4780_dma_dev *jz4780_dma_chan_parent(
166 struct jz4780_dma_chan *jzchan)
167 {
168 return container_of(jzchan->vchan.chan.device, struct jz4780_dma_dev,
169 dma_device);
170 }
171
172 static inline uint32_t jz4780_dma_readl(struct jz4780_dma_dev *jzdma,
173 unsigned int reg)
174 {
175 return readl(jzdma->base + reg);
176 }
177
178 static inline void jz4780_dma_writel(struct jz4780_dma_dev *jzdma,
179 unsigned int reg, uint32_t val)
180 {
181 writel(val, jzdma->base + reg);
182 }
183
184 static struct jz4780_dma_desc *jz4780_dma_desc_alloc(
185 struct jz4780_dma_chan *jzchan, unsigned int count,
186 enum dma_transaction_type type)
187 {
188 struct jz4780_dma_desc *desc;
189
190 if (count > JZ_DMA_MAX_DESC)
191 return NULL;
192
193 desc = kzalloc(sizeof(*desc), GFP_NOWAIT);
194 if (!desc)
195 return NULL;
196
197 desc->desc = dma_pool_alloc(jzchan->desc_pool, GFP_NOWAIT,
198 &desc->desc_phys);
199 if (!desc->desc) {
200 kfree(desc);
201 return NULL;
202 }
203
204 desc->count = count;
205 desc->type = type;
206 return desc;
207 }
208
209 static void jz4780_dma_desc_free(struct virt_dma_desc *vdesc)
210 {
211 struct jz4780_dma_desc *desc = to_jz4780_dma_desc(vdesc);
212 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(vdesc->tx.chan);
213
214 dma_pool_free(jzchan->desc_pool, desc->desc, desc->desc_phys);
215 kfree(desc);
216 }
217
218 static uint32_t jz4780_dma_transfer_size(unsigned long val, uint32_t *shift)
219 {
220 int ord = ffs(val) - 1;
221
222 /*
223 * 8 byte transfer sizes unsupported so fall back on 4. If it's larger
224 * than the maximum, just limit it. It is perfectly safe to fall back
225 * in this way since we won't exceed the maximum burst size supported
226 * by the device, the only effect is reduced efficiency. This is better
227 * than refusing to perform the request at all.
228 */
229 if (ord == 3)
230 ord = 2;
231 else if (ord > 7)
232 ord = 7;
233
234 *shift = ord;
235
236 switch (ord) {
237 case 0:
238 return JZ_DMA_SIZE_1_BYTE;
239 case 1:
240 return JZ_DMA_SIZE_2_BYTE;
241 case 2:
242 return JZ_DMA_SIZE_4_BYTE;
243 case 4:
244 return JZ_DMA_SIZE_16_BYTE;
245 case 5:
246 return JZ_DMA_SIZE_32_BYTE;
247 case 6:
248 return JZ_DMA_SIZE_64_BYTE;
249 default:
250 return JZ_DMA_SIZE_128_BYTE;
251 }
252 }
253
254 static int jz4780_dma_setup_hwdesc(struct jz4780_dma_chan *jzchan,
255 struct jz4780_dma_hwdesc *desc, dma_addr_t addr, size_t len,
256 enum dma_transfer_direction direction)
257 {
258 struct dma_slave_config *config = &jzchan->config;
259 uint32_t width, maxburst, tsz;
260
261 if (direction == DMA_MEM_TO_DEV) {
262 desc->dcm = JZ_DMA_DCM_SAI;
263 desc->dsa = addr;
264 desc->dta = config->dst_addr;
265 desc->drt = jzchan->transfer_type;
266
267 width = config->dst_addr_width;
268 maxburst = config->dst_maxburst;
269 } else {
270 desc->dcm = JZ_DMA_DCM_DAI;
271 desc->dsa = config->src_addr;
272 desc->dta = addr;
273 desc->drt = jzchan->transfer_type;
274
275 width = config->src_addr_width;
276 maxburst = config->src_maxburst;
277 }
278
279 /*
280 * This calculates the maximum transfer size that can be used with the
281 * given address, length, width and maximum burst size. The address
282 * must be aligned to the transfer size, the total length must be
283 * divisible by the transfer size, and we must not use more than the
284 * maximum burst specified by the user.
285 */
286 tsz = jz4780_dma_transfer_size(addr | len | (width * maxburst),
287 &jzchan->transfer_shift);
288
289 switch (width) {
290 case DMA_SLAVE_BUSWIDTH_1_BYTE:
291 case DMA_SLAVE_BUSWIDTH_2_BYTES:
292 break;
293 case DMA_SLAVE_BUSWIDTH_4_BYTES:
294 width = JZ_DMA_WIDTH_32_BIT;
295 break;
296 default:
297 return -EINVAL;
298 }
299
300 desc->dcm |= tsz << JZ_DMA_DCM_TSZ_SHIFT;
301 desc->dcm |= width << JZ_DMA_DCM_SP_SHIFT;
302 desc->dcm |= width << JZ_DMA_DCM_DP_SHIFT;
303
304 desc->dtc = len >> jzchan->transfer_shift;
305 return 0;
306 }
307
308 static struct dma_async_tx_descriptor *jz4780_dma_prep_slave_sg(
309 struct dma_chan *chan, struct scatterlist *sgl, unsigned int sg_len,
310 enum dma_transfer_direction direction, unsigned long flags,
311 void *context)
312 {
313 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
314 struct jz4780_dma_desc *desc;
315 unsigned int i;
316 int err;
317
318 desc = jz4780_dma_desc_alloc(jzchan, sg_len, DMA_SLAVE);
319 if (!desc)
320 return NULL;
321
322 for (i = 0; i < sg_len; i++) {
323 err = jz4780_dma_setup_hwdesc(jzchan, &desc->desc[i],
324 sg_dma_address(&sgl[i]),
325 sg_dma_len(&sgl[i]),
326 direction);
327 if (err < 0) {
328 jz4780_dma_desc_free(&jzchan->desc->vdesc);
329 return NULL;
330 }
331
332 desc->desc[i].dcm |= JZ_DMA_DCM_TIE;
333
334 if (i != (sg_len - 1)) {
335 /* Automatically proceeed to the next descriptor. */
336 desc->desc[i].dcm |= JZ_DMA_DCM_LINK;
337
338 /*
339 * The upper 8 bits of the DTC field in the descriptor
340 * must be set to (offset from descriptor base of next
341 * descriptor >> 4).
342 */
343 desc->desc[i].dtc |=
344 (((i + 1) * sizeof(*desc->desc)) >> 4) << 24;
345 }
346 }
347
348 return vchan_tx_prep(&jzchan->vchan, &desc->vdesc, flags);
349 }
350
351 static struct dma_async_tx_descriptor *jz4780_dma_prep_dma_cyclic(
352 struct dma_chan *chan, dma_addr_t buf_addr, size_t buf_len,
353 size_t period_len, enum dma_transfer_direction direction,
354 unsigned long flags)
355 {
356 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
357 struct jz4780_dma_desc *desc;
358 unsigned int periods, i;
359 int err;
360
361 if (buf_len % period_len)
362 return NULL;
363
364 periods = buf_len / period_len;
365
366 desc = jz4780_dma_desc_alloc(jzchan, periods, DMA_CYCLIC);
367 if (!desc)
368 return NULL;
369
370 for (i = 0; i < periods; i++) {
371 err = jz4780_dma_setup_hwdesc(jzchan, &desc->desc[i], buf_addr,
372 period_len, direction);
373 if (err < 0) {
374 jz4780_dma_desc_free(&jzchan->desc->vdesc);
375 return NULL;
376 }
377
378 buf_addr += period_len;
379
380 /*
381 * Set the link bit to indicate that the controller should
382 * automatically proceed to the next descriptor. In
383 * jz4780_dma_begin(), this will be cleared if we need to issue
384 * an interrupt after each period.
385 */
386 desc->desc[i].dcm |= JZ_DMA_DCM_TIE | JZ_DMA_DCM_LINK;
387
388 /*
389 * The upper 8 bits of the DTC field in the descriptor must be
390 * set to (offset from descriptor base of next descriptor >> 4).
391 * If this is the last descriptor, link it back to the first,
392 * i.e. leave offset set to 0, otherwise point to the next one.
393 */
394 if (i != (periods - 1)) {
395 desc->desc[i].dtc |=
396 (((i + 1) * sizeof(*desc->desc)) >> 4) << 24;
397 }
398 }
399
400 return vchan_tx_prep(&jzchan->vchan, &desc->vdesc, flags);
401 }
402
403 static struct dma_async_tx_descriptor *jz4780_dma_prep_dma_memcpy(
404 struct dma_chan *chan, dma_addr_t dest, dma_addr_t src,
405 size_t len, unsigned long flags)
406 {
407 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
408 struct jz4780_dma_desc *desc;
409 uint32_t tsz;
410
411 desc = jz4780_dma_desc_alloc(jzchan, 1, DMA_MEMCPY);
412 if (!desc)
413 return NULL;
414
415 tsz = jz4780_dma_transfer_size(dest | src | len,
416 &jzchan->transfer_shift);
417
418 desc->desc[0].dsa = src;
419 desc->desc[0].dta = dest;
420 desc->desc[0].drt = JZ_DMA_DRT_AUTO;
421 desc->desc[0].dcm = JZ_DMA_DCM_TIE | JZ_DMA_DCM_SAI | JZ_DMA_DCM_DAI |
422 tsz << JZ_DMA_DCM_TSZ_SHIFT |
423 JZ_DMA_WIDTH_32_BIT << JZ_DMA_DCM_SP_SHIFT |
424 JZ_DMA_WIDTH_32_BIT << JZ_DMA_DCM_DP_SHIFT;
425 desc->desc[0].dtc = len >> jzchan->transfer_shift;
426
427 return vchan_tx_prep(&jzchan->vchan, &desc->vdesc, flags);
428 }
429
430 static void jz4780_dma_begin(struct jz4780_dma_chan *jzchan)
431 {
432 struct jz4780_dma_dev *jzdma = jz4780_dma_chan_parent(jzchan);
433 struct virt_dma_desc *vdesc;
434 unsigned int i;
435 dma_addr_t desc_phys;
436
437 if (!jzchan->desc) {
438 vdesc = vchan_next_desc(&jzchan->vchan);
439 if (!vdesc)
440 return;
441
442 list_del(&vdesc->node);
443
444 jzchan->desc = to_jz4780_dma_desc(vdesc);
445 jzchan->curr_hwdesc = 0;
446
447 if (jzchan->desc->type == DMA_CYCLIC && vdesc->tx.callback) {
448 /*
449 * The DMA controller doesn't support triggering an
450 * interrupt after processing each descriptor, only
451 * after processing an entire terminated list of
452 * descriptors. For a cyclic DMA setup the list of
453 * descriptors is not terminated so we can never get an
454 * interrupt.
455 *
456 * If the user requested a callback for a cyclic DMA
457 * setup then we workaround this hardware limitation
458 * here by degrading to a set of unlinked descriptors
459 * which we will submit in sequence in response to the
460 * completion of processing the previous descriptor.
461 */
462 for (i = 0; i < jzchan->desc->count; i++)
463 jzchan->desc->desc[i].dcm &= ~JZ_DMA_DCM_LINK;
464 }
465 } else {
466 /*
467 * There is an existing transfer, therefore this must be one
468 * for which we unlinked the descriptors above. Advance to the
469 * next one in the list.
470 */
471 jzchan->curr_hwdesc =
472 (jzchan->curr_hwdesc + 1) % jzchan->desc->count;
473 }
474
475 /* Use 8-word descriptors. */
476 jz4780_dma_writel(jzdma, JZ_DMA_REG_DCS(jzchan->id), JZ_DMA_DCS_DES8);
477
478 /* Write descriptor address and initiate descriptor fetch. */
479 desc_phys = jzchan->desc->desc_phys +
480 (jzchan->curr_hwdesc * sizeof(*jzchan->desc->desc));
481 jz4780_dma_writel(jzdma, JZ_DMA_REG_DDA(jzchan->id), desc_phys);
482 jz4780_dma_writel(jzdma, JZ_DMA_REG_DDRS, BIT(jzchan->id));
483
484 /* Enable the channel. */
485 jz4780_dma_writel(jzdma, JZ_DMA_REG_DCS(jzchan->id),
486 JZ_DMA_DCS_DES8 | JZ_DMA_DCS_CTE);
487 }
488
489 static void jz4780_dma_issue_pending(struct dma_chan *chan)
490 {
491 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
492 unsigned long flags;
493
494 spin_lock_irqsave(&jzchan->vchan.lock, flags);
495
496 if (vchan_issue_pending(&jzchan->vchan) && !jzchan->desc)
497 jz4780_dma_begin(jzchan);
498
499 spin_unlock_irqrestore(&jzchan->vchan.lock, flags);
500 }
501
502 static int jz4780_dma_terminate_all(struct dma_chan *chan)
503 {
504 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
505 struct jz4780_dma_dev *jzdma = jz4780_dma_chan_parent(jzchan);
506 unsigned long flags;
507 LIST_HEAD(head);
508
509 spin_lock_irqsave(&jzchan->vchan.lock, flags);
510
511 /* Clear the DMA status and stop the transfer. */
512 jz4780_dma_writel(jzdma, JZ_DMA_REG_DCS(jzchan->id), 0);
513 if (jzchan->desc) {
514 jz4780_dma_desc_free(&jzchan->desc->vdesc);
515 jzchan->desc = NULL;
516 }
517
518 vchan_get_all_descriptors(&jzchan->vchan, &head);
519
520 spin_unlock_irqrestore(&jzchan->vchan.lock, flags);
521
522 vchan_dma_desc_free_list(&jzchan->vchan, &head);
523 return 0;
524 }
525
526 static int jz4780_dma_config(struct dma_chan *chan,
527 struct dma_slave_config *config)
528 {
529 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
530
531 if ((config->src_addr_width == DMA_SLAVE_BUSWIDTH_8_BYTES)
532 || (config->dst_addr_width == DMA_SLAVE_BUSWIDTH_8_BYTES))
533 return -EINVAL;
534
535 /* Copy the reset of the slave configuration, it is used later. */
536 memcpy(&jzchan->config, config, sizeof(jzchan->config));
537
538 return 0;
539 }
540
541 static size_t jz4780_dma_desc_residue(struct jz4780_dma_chan *jzchan,
542 struct jz4780_dma_desc *desc, unsigned int next_sg)
543 {
544 struct jz4780_dma_dev *jzdma = jz4780_dma_chan_parent(jzchan);
545 unsigned int residue, count;
546 unsigned int i;
547
548 residue = 0;
549
550 for (i = next_sg; i < desc->count; i++)
551 residue += desc->desc[i].dtc << jzchan->transfer_shift;
552
553 if (next_sg != 0) {
554 count = jz4780_dma_readl(jzdma,
555 JZ_DMA_REG_DTC(jzchan->id));
556 residue += count << jzchan->transfer_shift;
557 }
558
559 return residue;
560 }
561
562 static enum dma_status jz4780_dma_tx_status(struct dma_chan *chan,
563 dma_cookie_t cookie, struct dma_tx_state *txstate)
564 {
565 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
566 struct virt_dma_desc *vdesc;
567 enum dma_status status;
568 unsigned long flags;
569
570 status = dma_cookie_status(chan, cookie, txstate);
571 if ((status == DMA_COMPLETE) || (txstate == NULL))
572 return status;
573
574 spin_lock_irqsave(&jzchan->vchan.lock, flags);
575
576 vdesc = vchan_find_desc(&jzchan->vchan, cookie);
577 if (vdesc) {
578 /* On the issued list, so hasn't been processed yet */
579 txstate->residue = jz4780_dma_desc_residue(jzchan,
580 to_jz4780_dma_desc(vdesc), 0);
581 } else if (cookie == jzchan->desc->vdesc.tx.cookie) {
582 txstate->residue = jz4780_dma_desc_residue(jzchan, jzchan->desc,
583 (jzchan->curr_hwdesc + 1) % jzchan->desc->count);
584 } else
585 txstate->residue = 0;
586
587 if (vdesc && jzchan->desc && vdesc == &jzchan->desc->vdesc
588 && jzchan->desc->status & (JZ_DMA_DCS_AR | JZ_DMA_DCS_HLT))
589 status = DMA_ERROR;
590
591 spin_unlock_irqrestore(&jzchan->vchan.lock, flags);
592 return status;
593 }
594
595 static void jz4780_dma_chan_irq(struct jz4780_dma_dev *jzdma,
596 struct jz4780_dma_chan *jzchan)
597 {
598 uint32_t dcs;
599
600 spin_lock(&jzchan->vchan.lock);
601
602 dcs = jz4780_dma_readl(jzdma, JZ_DMA_REG_DCS(jzchan->id));
603 jz4780_dma_writel(jzdma, JZ_DMA_REG_DCS(jzchan->id), 0);
604
605 if (dcs & JZ_DMA_DCS_AR) {
606 dev_warn(&jzchan->vchan.chan.dev->device,
607 "address error (DCS=0x%x)\n", dcs);
608 }
609
610 if (dcs & JZ_DMA_DCS_HLT) {
611 dev_warn(&jzchan->vchan.chan.dev->device,
612 "channel halt (DCS=0x%x)\n", dcs);
613 }
614
615 if (jzchan->desc) {
616 jzchan->desc->status = dcs;
617
618 if ((dcs & (JZ_DMA_DCS_AR | JZ_DMA_DCS_HLT)) == 0) {
619 if (jzchan->desc->type == DMA_CYCLIC) {
620 vchan_cyclic_callback(&jzchan->desc->vdesc);
621 } else {
622 vchan_cookie_complete(&jzchan->desc->vdesc);
623 jzchan->desc = NULL;
624 }
625
626 jz4780_dma_begin(jzchan);
627 }
628 } else {
629 dev_err(&jzchan->vchan.chan.dev->device,
630 "channel IRQ with no active transfer\n");
631 }
632
633 spin_unlock(&jzchan->vchan.lock);
634 }
635
636 static irqreturn_t jz4780_dma_irq_handler(int irq, void *data)
637 {
638 struct jz4780_dma_dev *jzdma = data;
639 uint32_t pending, dmac;
640 int i;
641
642 pending = jz4780_dma_readl(jzdma, JZ_DMA_REG_DIRQP);
643
644 for (i = 0; i < JZ_DMA_NR_CHANNELS; i++) {
645 if (!(pending & (1<<i)))
646 continue;
647
648 jz4780_dma_chan_irq(jzdma, &jzdma->chan[i]);
649 }
650
651 /* Clear halt and address error status of all channels. */
652 dmac = jz4780_dma_readl(jzdma, JZ_DMA_REG_DMAC);
653 dmac &= ~(JZ_DMA_DMAC_HLT | JZ_DMA_DMAC_AR);
654 jz4780_dma_writel(jzdma, JZ_DMA_REG_DMAC, dmac);
655
656 /* Clear interrupt pending status. */
657 jz4780_dma_writel(jzdma, JZ_DMA_REG_DIRQP, 0);
658
659 return IRQ_HANDLED;
660 }
661
662 static int jz4780_dma_alloc_chan_resources(struct dma_chan *chan)
663 {
664 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
665
666 jzchan->desc_pool = dma_pool_create(dev_name(&chan->dev->device),
667 chan->device->dev,
668 JZ_DMA_DESC_BLOCK_SIZE,
669 PAGE_SIZE, 0);
670 if (!jzchan->desc_pool) {
671 dev_err(&chan->dev->device,
672 "failed to allocate descriptor pool\n");
673 return -ENOMEM;
674 }
675
676 return 0;
677 }
678
679 static void jz4780_dma_free_chan_resources(struct dma_chan *chan)
680 {
681 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
682
683 vchan_free_chan_resources(&jzchan->vchan);
684 dma_pool_destroy(jzchan->desc_pool);
685 jzchan->desc_pool = NULL;
686 }
687
688 static bool jz4780_dma_filter_fn(struct dma_chan *chan, void *param)
689 {
690 struct jz4780_dma_chan *jzchan = to_jz4780_dma_chan(chan);
691 struct jz4780_dma_dev *jzdma = jz4780_dma_chan_parent(jzchan);
692 struct jz4780_dma_filter_data *data = param;
693
694 if (jzdma->dma_device.dev->of_node != data->of_node)
695 return false;
696
697 if (data->channel > -1) {
698 if (data->channel != jzchan->id)
699 return false;
700 } else if (jzdma->chan_reserved & BIT(jzchan->id)) {
701 return false;
702 }
703
704 jzchan->transfer_type = data->transfer_type;
705
706 return true;
707 }
708
709 static struct dma_chan *jz4780_of_dma_xlate(struct of_phandle_args *dma_spec,
710 struct of_dma *ofdma)
711 {
712 struct jz4780_dma_dev *jzdma = ofdma->of_dma_data;
713 dma_cap_mask_t mask = jzdma->dma_device.cap_mask;
714 struct jz4780_dma_filter_data data;
715
716 if (dma_spec->args_count != 2)
717 return NULL;
718
719 data.of_node = ofdma->of_node;
720 data.transfer_type = dma_spec->args[0];
721 data.channel = dma_spec->args[1];
722
723 if (data.channel > -1) {
724 if (data.channel >= JZ_DMA_NR_CHANNELS) {
725 dev_err(jzdma->dma_device.dev,
726 "device requested non-existent channel %u\n",
727 data.channel);
728 return NULL;
729 }
730
731 /* Can only select a channel marked as reserved. */
732 if (!(jzdma->chan_reserved & BIT(data.channel))) {
733 dev_err(jzdma->dma_device.dev,
734 "device requested unreserved channel %u\n",
735 data.channel);
736 return NULL;
737 }
738
739 jzdma->chan[data.channel].transfer_type = data.transfer_type;
740
741 return dma_get_slave_channel(
742 &jzdma->chan[data.channel].vchan.chan);
743 } else {
744 return dma_request_channel(mask, jz4780_dma_filter_fn, &data);
745 }
746 }
747
748 static int jz4780_dma_probe(struct platform_device *pdev)
749 {
750 struct device *dev = &pdev->dev;
751 struct jz4780_dma_dev *jzdma;
752 struct jz4780_dma_chan *jzchan;
753 struct dma_device *dd;
754 struct resource *res;
755 int i, ret;
756
757 jzdma = devm_kzalloc(dev, sizeof(*jzdma), GFP_KERNEL);
758 if (!jzdma)
759 return -ENOMEM;
760
761 platform_set_drvdata(pdev, jzdma);
762
763 res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
764 if (!res) {
765 dev_err(dev, "failed to get I/O memory\n");
766 return -EINVAL;
767 }
768
769 jzdma->base = devm_ioremap_resource(dev, res);
770 if (IS_ERR(jzdma->base))
771 return PTR_ERR(jzdma->base);
772
773 ret = platform_get_irq(pdev, 0);
774 if (ret < 0) {
775 dev_err(dev, "failed to get IRQ: %d\n", ret);
776 return ret;
777 }
778
779 jzdma->irq = ret;
780
781 ret = request_irq(jzdma->irq, jz4780_dma_irq_handler, 0, dev_name(dev),
782 jzdma);
783 if (ret) {
784 dev_err(dev, "failed to request IRQ %u!\n", jzdma->irq);
785 return ret;
786 }
787
788 jzdma->clk = devm_clk_get(dev, NULL);
789 if (IS_ERR(jzdma->clk)) {
790 dev_err(dev, "failed to get clock\n");
791 ret = PTR_ERR(jzdma->clk);
792 goto err_free_irq;
793 }
794
795 clk_prepare_enable(jzdma->clk);
796
797 /* Property is optional, if it doesn't exist the value will remain 0. */
798 of_property_read_u32_index(dev->of_node, "ingenic,reserved-channels",
799 0, &jzdma->chan_reserved);
800
801 dd = &jzdma->dma_device;
802
803 dma_cap_set(DMA_MEMCPY, dd->cap_mask);
804 dma_cap_set(DMA_SLAVE, dd->cap_mask);
805 dma_cap_set(DMA_CYCLIC, dd->cap_mask);
806
807 dd->dev = dev;
808 dd->copy_align = DMAENGINE_ALIGN_4_BYTES;
809 dd->device_alloc_chan_resources = jz4780_dma_alloc_chan_resources;
810 dd->device_free_chan_resources = jz4780_dma_free_chan_resources;
811 dd->device_prep_slave_sg = jz4780_dma_prep_slave_sg;
812 dd->device_prep_dma_cyclic = jz4780_dma_prep_dma_cyclic;
813 dd->device_prep_dma_memcpy = jz4780_dma_prep_dma_memcpy;
814 dd->device_config = jz4780_dma_config;
815 dd->device_terminate_all = jz4780_dma_terminate_all;
816 dd->device_tx_status = jz4780_dma_tx_status;
817 dd->device_issue_pending = jz4780_dma_issue_pending;
818 dd->src_addr_widths = JZ_DMA_BUSWIDTHS;
819 dd->dst_addr_widths = JZ_DMA_BUSWIDTHS;
820 dd->directions = BIT(DMA_DEV_TO_MEM) | BIT(DMA_MEM_TO_DEV);
821 dd->residue_granularity = DMA_RESIDUE_GRANULARITY_BURST;
822
823 /*
824 * Enable DMA controller, mark all channels as not programmable.
825 * Also set the FMSC bit - it increases MSC performance, so it makes
826 * little sense not to enable it.
827 */
828 jz4780_dma_writel(jzdma, JZ_DMA_REG_DMAC,
829 JZ_DMA_DMAC_DMAE | JZ_DMA_DMAC_FMSC);
830 jz4780_dma_writel(jzdma, JZ_DMA_REG_DMACP, 0);
831
832 INIT_LIST_HEAD(&dd->channels);
833
834 for (i = 0; i < JZ_DMA_NR_CHANNELS; i++) {
835 jzchan = &jzdma->chan[i];
836 jzchan->id = i;
837
838 vchan_init(&jzchan->vchan, dd);
839 jzchan->vchan.desc_free = jz4780_dma_desc_free;
840 }
841
842 ret = dma_async_device_register(dd);
843 if (ret) {
844 dev_err(dev, "failed to register device\n");
845 goto err_disable_clk;
846 }
847
848 /* Register with OF DMA helpers. */
849 ret = of_dma_controller_register(dev->of_node, jz4780_of_dma_xlate,
850 jzdma);
851 if (ret) {
852 dev_err(dev, "failed to register OF DMA controller\n");
853 goto err_unregister_dev;
854 }
855
856 dev_info(dev, "JZ4780 DMA controller initialised\n");
857 return 0;
858
859 err_unregister_dev:
860 dma_async_device_unregister(dd);
861
862 err_disable_clk:
863 clk_disable_unprepare(jzdma->clk);
864
865 err_free_irq:
866 free_irq(jzdma->irq, jzdma);
867 return ret;
868 }
869
870 static int jz4780_dma_remove(struct platform_device *pdev)
871 {
872 struct jz4780_dma_dev *jzdma = platform_get_drvdata(pdev);
873 int i;
874
875 of_dma_controller_free(pdev->dev.of_node);
876
877 free_irq(jzdma->irq, jzdma);
878
879 for (i = 0; i < JZ_DMA_NR_CHANNELS; i++)
880 tasklet_kill(&jzdma->chan[i].vchan.task);
881
882 dma_async_device_unregister(&jzdma->dma_device);
883 return 0;
884 }
885
886 static const struct of_device_id jz4780_dma_dt_match[] = {
887 { .compatible = "ingenic,jz4780-dma", .data = NULL },
888 {},
889 };
890 MODULE_DEVICE_TABLE(of, jz4780_dma_dt_match);
891
892 static struct platform_driver jz4780_dma_driver = {
893 .probe = jz4780_dma_probe,
894 .remove = jz4780_dma_remove,
895 .driver = {
896 .name = "jz4780-dma",
897 .of_match_table = of_match_ptr(jz4780_dma_dt_match),
898 },
899 };
900
901 static int __init jz4780_dma_init(void)
902 {
903 return platform_driver_register(&jz4780_dma_driver);
904 }
905 subsys_initcall(jz4780_dma_init);
906
907 static void __exit jz4780_dma_exit(void)
908 {
909 platform_driver_unregister(&jz4780_dma_driver);
910 }
911 module_exit(jz4780_dma_exit);
912
913 MODULE_AUTHOR("Alex Smith <alex@alex-smith.me.uk>");
914 MODULE_DESCRIPTION("Ingenic JZ4780 DMA controller driver");
915 MODULE_LICENSE("GPL");