1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * DMA driver for Xilinx Video DMA Engine
4 *
5 * Copyright (C) 2010-2014 Xilinx, Inc. All rights reserved.
6 *
7 * Based on the Freescale DMA driver.
8 *
9 * Description:
10 * The AXI Video Direct Memory Access (AXI VDMA) core is a soft Xilinx IP
11 * core that provides high-bandwidth direct memory access between memory
12 * and AXI4-Stream type video target peripherals. The core provides efficient
13 * two dimensional DMA operations with independent asynchronous read (S2MM)
14 * and write (MM2S) channel operation. It can be configured to have either
15 * one channel or two channels. If configured as two channels, one is to
16 * transmit to the video device (MM2S) and another is to receive from the
17 * video device (S2MM). Initialization, status, interrupt and management
18 * registers are accessed through an AXI4-Lite slave interface.
19 *
20 * The AXI Direct Memory Access (AXI DMA) core is a soft Xilinx IP core that
21 * provides high-bandwidth one dimensional direct memory access between memory
22 * and AXI4-Stream target peripherals. It supports one receive and one
23 * transmit channel, both of them optional at synthesis time.
24 *
25 * The AXI CDMA, is a soft IP, which provides high-bandwidth Direct Memory
26 * Access (DMA) between a memory-mapped source address and a memory-mapped
27 * destination address.
28 *
29 * The AXI Multichannel Direct Memory Access (AXI MCDMA) core is a soft
30 * Xilinx IP that provides high-bandwidth direct memory access between
31 * memory and AXI4-Stream target peripherals. It provides scatter gather
32 * (SG) interface with multiple channels independent configuration support.
33 *
34 */
35
36 #include <linux/bitops.h>
37 #include <linux/dmapool.h>
38 #include <linux/dma/xilinx_dma.h>
39 #include <linux/init.h>
40 #include <linux/interrupt.h>
41 #include <linux/io.h>
42 #include <linux/iopoll.h>
43 #include <linux/module.h>
44 #include <linux/of.h>
45 #include <linux/of_dma.h>
46 #include <linux/of_irq.h>
47 #include <linux/platform_device.h>
48 #include <linux/slab.h>
49 #include <linux/string_choices.h>
50 #include <linux/clk.h>
51 #include <linux/io-64-nonatomic-lo-hi.h>
52
53 #include "../dmaengine.h"
54
55 /* Register/Descriptor Offsets */
56 #define XILINX_DMA_MM2S_CTRL_OFFSET 0x0000
57 #define XILINX_DMA_S2MM_CTRL_OFFSET 0x0030
58 #define XILINX_VDMA_MM2S_DESC_OFFSET 0x0050
59 #define XILINX_VDMA_S2MM_DESC_OFFSET 0x00a0
60
61 /* Control Registers */
62 #define XILINX_DMA_REG_DMACR 0x0000
63 #define XILINX_DMA_DMACR_DELAY_MAX 0xff
64 #define XILINX_DMA_DMACR_DELAY_SHIFT 24
65 #define XILINX_DMA_DMACR_FRAME_COUNT_MAX 0xff
66 #define XILINX_DMA_DMACR_FRAME_COUNT_SHIFT 16
67 #define XILINX_DMA_DMACR_ERR_IRQ BIT(14)
68 #define XILINX_DMA_DMACR_DLY_CNT_IRQ BIT(13)
69 #define XILINX_DMA_DMACR_FRM_CNT_IRQ BIT(12)
70 #define XILINX_DMA_DMACR_MASTER_SHIFT 8
71 #define XILINX_DMA_DMACR_FSYNCSRC_SHIFT 5
72 #define XILINX_DMA_DMACR_FRAMECNT_EN BIT(4)
73 #define XILINX_DMA_DMACR_GENLOCK_EN BIT(3)
74 #define XILINX_DMA_DMACR_RESET BIT(2)
75 #define XILINX_DMA_DMACR_CIRC_EN BIT(1)
76 #define XILINX_DMA_DMACR_RUNSTOP BIT(0)
77 #define XILINX_DMA_DMACR_FSYNCSRC_MASK GENMASK(6, 5)
78 #define XILINX_DMA_DMACR_DELAY_MASK GENMASK(31, 24)
79 #define XILINX_DMA_DMACR_FRAME_COUNT_MASK GENMASK(23, 16)
80 #define XILINX_DMA_DMACR_MASTER_MASK GENMASK(11, 8)
81
82 #define XILINX_DMA_REG_DMASR 0x0004
83 #define XILINX_DMA_DMASR_EOL_LATE_ERR BIT(15)
84 #define XILINX_DMA_DMASR_ERR_IRQ BIT(14)
85 #define XILINX_DMA_DMASR_DLY_CNT_IRQ BIT(13)
86 #define XILINX_DMA_DMASR_FRM_CNT_IRQ BIT(12)
87 #define XILINX_DMA_DMASR_SOF_LATE_ERR BIT(11)
88 #define XILINX_DMA_DMASR_SG_DEC_ERR BIT(10)
89 #define XILINX_DMA_DMASR_SG_SLV_ERR BIT(9)
90 #define XILINX_DMA_DMASR_EOF_EARLY_ERR BIT(8)
91 #define XILINX_DMA_DMASR_SOF_EARLY_ERR BIT(7)
92 #define XILINX_DMA_DMASR_DMA_DEC_ERR BIT(6)
93 #define XILINX_DMA_DMASR_DMA_SLAVE_ERR BIT(5)
94 #define XILINX_DMA_DMASR_DMA_INT_ERR BIT(4)
95 #define XILINX_DMA_DMASR_SG_MASK BIT(3)
96 #define XILINX_DMA_DMASR_IDLE BIT(1)
97 #define XILINX_DMA_DMASR_HALTED BIT(0)
98 #define XILINX_DMA_DMASR_DELAY_MASK GENMASK(31, 24)
99 #define XILINX_DMA_DMASR_FRAME_COUNT_MASK GENMASK(23, 16)
100
101 #define XILINX_DMA_REG_CURDESC 0x0008
102 #define XILINX_DMA_REG_TAILDESC 0x0010
103 #define XILINX_DMA_REG_REG_INDEX 0x0014
104 #define XILINX_DMA_REG_FRMSTORE 0x0018
105 #define XILINX_DMA_REG_THRESHOLD 0x001c
106 #define XILINX_DMA_REG_FRMPTR_STS 0x0024
107 #define XILINX_DMA_REG_PARK_PTR 0x0028
108 #define XILINX_DMA_PARK_PTR_WR_REF_SHIFT 8
109 #define XILINX_DMA_PARK_PTR_WR_REF_MASK GENMASK(12, 8)
110 #define XILINX_DMA_PARK_PTR_RD_REF_SHIFT 0
111 #define XILINX_DMA_PARK_PTR_RD_REF_MASK GENMASK(4, 0)
112 #define XILINX_DMA_REG_VDMA_VERSION 0x002c
113
114 /* Register Direct Mode Registers */
115 #define XILINX_DMA_REG_VSIZE 0x0000
116 #define XILINX_DMA_VSIZE_MASK GENMASK(12, 0)
117 #define XILINX_DMA_REG_HSIZE 0x0004
118 #define XILINX_DMA_HSIZE_MASK GENMASK(15, 0)
119
120 #define XILINX_DMA_REG_FRMDLY_STRIDE 0x0008
121 #define XILINX_DMA_FRMDLY_STRIDE_FRMDLY_SHIFT 24
122 #define XILINX_DMA_FRMDLY_STRIDE_STRIDE_SHIFT 0
123
124 #define XILINX_VDMA_REG_START_ADDRESS(n) (0x000c + 4 * (n))
125 #define XILINX_VDMA_REG_START_ADDRESS_64(n) (0x000c + 8 * (n))
126
127 #define XILINX_VDMA_REG_ENABLE_VERTICAL_FLIP 0x00ec
128 #define XILINX_VDMA_ENABLE_VERTICAL_FLIP BIT(0)
129
130 /* HW specific definitions */
131 #define XILINX_MCDMA_MAX_CHANS_PER_DEVICE 0x20
132 #define XILINX_DMA_MAX_CHANS_PER_DEVICE 0x2
133 #define XILINX_CDMA_MAX_CHANS_PER_DEVICE 0x1
134 #define XILINX_DMA_DFAULT_ADDRWIDTH 0x20
135
136 #define XILINX_DMA_DMAXR_ALL_IRQ_MASK \
137 (XILINX_DMA_DMASR_FRM_CNT_IRQ | \
138 XILINX_DMA_DMASR_DLY_CNT_IRQ | \
139 XILINX_DMA_DMASR_ERR_IRQ)
140
141 #define XILINX_DMA_DMASR_ALL_ERR_MASK \
142 (XILINX_DMA_DMASR_EOL_LATE_ERR | \
143 XILINX_DMA_DMASR_SOF_LATE_ERR | \
144 XILINX_DMA_DMASR_SG_DEC_ERR | \
145 XILINX_DMA_DMASR_SG_SLV_ERR | \
146 XILINX_DMA_DMASR_EOF_EARLY_ERR | \
147 XILINX_DMA_DMASR_SOF_EARLY_ERR | \
148 XILINX_DMA_DMASR_DMA_DEC_ERR | \
149 XILINX_DMA_DMASR_DMA_SLAVE_ERR | \
150 XILINX_DMA_DMASR_DMA_INT_ERR)
151
152 /*
153 * Recoverable errors are DMA Internal error, SOF Early, EOF Early
154 * and SOF Late. They are only recoverable when C_FLUSH_ON_FSYNC
155 * is enabled in the h/w system.
156 */
157 #define XILINX_DMA_DMASR_ERR_RECOVER_MASK \
158 (XILINX_DMA_DMASR_SOF_LATE_ERR | \
159 XILINX_DMA_DMASR_EOF_EARLY_ERR | \
160 XILINX_DMA_DMASR_SOF_EARLY_ERR | \
161 XILINX_DMA_DMASR_DMA_INT_ERR)
162
163 /* Axi VDMA Flush on Fsync bits */
164 #define XILINX_DMA_FLUSH_S2MM 3
165 #define XILINX_DMA_FLUSH_MM2S 2
166 #define XILINX_DMA_FLUSH_BOTH 1
167
168 /* Timeout for polling various registers */
169 #define XILINX_DMA_POLL_TIMEOUT_US 1000000
170 /* Delay between polls (avoid a delay of 0 to prevent CPU stalls) */
171 #define XILINX_DMA_POLL_DELAY_US 10
172
173 /* AXI DMA Specific Registers/Offsets */
174 #define XILINX_DMA_REG_SRCDSTADDR 0x18
175 #define XILINX_DMA_REG_BTT 0x28
176
177 /* AXI DMA Specific Masks/Bit fields */
178 #define XILINX_DMA_MAX_TRANS_LEN_MIN 8
179 #define XILINX_DMA_MAX_TRANS_LEN_MAX 23
180 #define XILINX_DMA_V2_MAX_TRANS_LEN_MAX 26
181 #define XILINX_DMA_CR_COALESCE_MAX GENMASK(23, 16)
182 #define XILINX_DMA_CR_DELAY_MAX GENMASK(31, 24)
183 #define XILINX_DMA_CR_CYCLIC_BD_EN_MASK BIT(4)
184 #define XILINX_DMA_CR_COALESCE_SHIFT 16
185 #define XILINX_DMA_CR_DELAY_SHIFT 24
186 #define XILINX_DMA_BD_SOP BIT(27)
187 #define XILINX_DMA_BD_EOP BIT(26)
188 #define XILINX_DMA_BD_COMP_MASK BIT(31)
189 #define XILINX_DMA_COALESCE_MAX 255
190 #define XILINX_DMA_NUM_DESCS 512
191 #define XILINX_DMA_NUM_APP_WORDS 5
192
193 /* AXI CDMA Specific Registers/Offsets */
194 #define XILINX_CDMA_REG_SRCADDR 0x18
195 #define XILINX_CDMA_REG_DSTADDR 0x20
196
197 /* AXI CDMA Specific Masks */
198 #define XILINX_CDMA_CR_SGMODE BIT(3)
199
200 #define xilinx_prep_dma_addr_t(addr) \
201 ((dma_addr_t)((u64)addr##_##msb << 32 | (addr)))
202
203 /* AXI MCDMA Specific Registers/Offsets */
204 #define XILINX_MCDMA_MM2S_CTRL_OFFSET 0x0000
205 #define XILINX_MCDMA_S2MM_CTRL_OFFSET 0x0500
206 #define XILINX_MCDMA_CHEN_OFFSET 0x0008
207 #define XILINX_MCDMA_CH_ERR_OFFSET 0x0010
208 #define XILINX_MCDMA_RXINT_SER_OFFSET 0x0020
209 #define XILINX_MCDMA_TXINT_SER_OFFSET 0x0028
210 #define XILINX_MCDMA_CHAN_CR_OFFSET(x) (0x40 + (x) * 0x40)
211 #define XILINX_MCDMA_CHAN_SR_OFFSET(x) (0x44 + (x) * 0x40)
212 #define XILINX_MCDMA_CHAN_CDESC_OFFSET(x) (0x48 + (x) * 0x40)
213 #define XILINX_MCDMA_CHAN_TDESC_OFFSET(x) (0x50 + (x) * 0x40)
214
215 /* AXI MCDMA Specific Masks/Shifts */
216 #define XILINX_MCDMA_COALESCE_SHIFT 16
217 #define XILINX_MCDMA_COALESCE_MAX 24
218 #define XILINX_MCDMA_IRQ_ALL_MASK GENMASK(7, 5)
219 #define XILINX_MCDMA_COALESCE_MASK GENMASK(23, 16)
220 #define XILINX_MCDMA_CR_RUNSTOP_MASK BIT(0)
221 #define XILINX_MCDMA_IRQ_IOC_MASK BIT(5)
222 #define XILINX_MCDMA_IRQ_DELAY_MASK BIT(6)
223 #define XILINX_MCDMA_IRQ_ERR_MASK BIT(7)
224 #define XILINX_MCDMA_BD_EOP BIT(30)
225 #define XILINX_MCDMA_BD_SOP BIT(31)
226
227 /**
228 * struct xilinx_vdma_desc_hw - Hardware Descriptor
229 * @next_desc: Next Descriptor Pointer @0x00
230 * @pad1: Reserved @0x04
231 * @buf_addr: Buffer address @0x08
232 * @buf_addr_msb: MSB of Buffer address @0x0C
233 * @vsize: Vertical Size @0x10
234 * @hsize: Horizontal Size @0x14
235 * @stride: Number of bytes between the first
236 * pixels of each horizontal line @0x18
237 */
238 struct xilinx_vdma_desc_hw {
239 u32 next_desc;
240 u32 pad1;
241 u32 buf_addr;
242 u32 buf_addr_msb;
243 u32 vsize;
244 u32 hsize;
245 u32 stride;
246 } __aligned(64);
247
248 /**
249 * struct xilinx_axidma_desc_hw - Hardware Descriptor for AXI DMA
250 * @next_desc: Next Descriptor Pointer @0x00
251 * @next_desc_msb: MSB of Next Descriptor Pointer @0x04
252 * @buf_addr: Buffer address @0x08
253 * @buf_addr_msb: MSB of Buffer address @0x0C
254 * @reserved1: Reserved @0x10
255 * @reserved2: Reserved @0x14
256 * @control: Control field @0x18
257 * @status: Status field @0x1C
258 * @app: APP Fields @0x20 - 0x30
259 */
260 struct xilinx_axidma_desc_hw {
261 u32 next_desc;
262 u32 next_desc_msb;
263 u32 buf_addr;
264 u32 buf_addr_msb;
265 u32 reserved1;
266 u32 reserved2;
267 u32 control;
268 u32 status;
269 u32 app[XILINX_DMA_NUM_APP_WORDS];
270 } __aligned(64);
271
272 /**
273 * struct xilinx_aximcdma_desc_hw - Hardware Descriptor for AXI MCDMA
274 * @next_desc: Next Descriptor Pointer @0x00
275 * @next_desc_msb: MSB of Next Descriptor Pointer @0x04
276 * @buf_addr: Buffer address @0x08
277 * @buf_addr_msb: MSB of Buffer address @0x0C
278 * @rsvd: Reserved field @0x10
279 * @control: Control Information field @0x14
280 * @status: Status field @0x18
281 * @sideband_status: Status of sideband signals @0x1C
282 * @app: APP Fields @0x20 - 0x30
283 */
284 struct xilinx_aximcdma_desc_hw {
285 u32 next_desc;
286 u32 next_desc_msb;
287 u32 buf_addr;
288 u32 buf_addr_msb;
289 u32 rsvd;
290 u32 control;
291 u32 status;
292 u32 sideband_status;
293 u32 app[XILINX_DMA_NUM_APP_WORDS];
294 } __aligned(64);
295
296 /**
297 * struct xilinx_cdma_desc_hw - Hardware Descriptor
298 * @next_desc: Next Descriptor Pointer @0x00
299 * @next_desc_msb: Next Descriptor Pointer MSB @0x04
300 * @src_addr: Source address @0x08
301 * @src_addr_msb: Source address MSB @0x0C
302 * @dest_addr: Destination address @0x10
303 * @dest_addr_msb: Destination address MSB @0x14
304 * @control: Control field @0x18
305 * @status: Status field @0x1C
306 */
307 struct xilinx_cdma_desc_hw {
308 u32 next_desc;
309 u32 next_desc_msb;
310 u32 src_addr;
311 u32 src_addr_msb;
312 u32 dest_addr;
313 u32 dest_addr_msb;
314 u32 control;
315 u32 status;
316 } __aligned(64);
317
318 /**
319 * struct xilinx_vdma_tx_segment - Descriptor segment
320 * @hw: Hardware descriptor
321 * @node: Node in the descriptor segments list
322 * @phys: Physical address of segment
323 */
324 struct xilinx_vdma_tx_segment {
325 struct xilinx_vdma_desc_hw hw;
326 struct list_head node;
327 dma_addr_t phys;
328 } __aligned(64);
329
330 /**
331 * struct xilinx_axidma_tx_segment - Descriptor segment
332 * @hw: Hardware descriptor
333 * @node: Node in the descriptor segments list
334 * @phys: Physical address of segment
335 */
336 struct xilinx_axidma_tx_segment {
337 struct xilinx_axidma_desc_hw hw;
338 struct list_head node;
339 dma_addr_t phys;
340 } __aligned(64);
341
342 /**
343 * struct xilinx_aximcdma_tx_segment - Descriptor segment
344 * @hw: Hardware descriptor
345 * @node: Node in the descriptor segments list
346 * @phys: Physical address of segment
347 */
348 struct xilinx_aximcdma_tx_segment {
349 struct xilinx_aximcdma_desc_hw hw;
350 struct list_head node;
351 dma_addr_t phys;
352 } __aligned(64);
353
354 /**
355 * struct xilinx_cdma_tx_segment - Descriptor segment
356 * @hw: Hardware descriptor
357 * @node: Node in the descriptor segments list
358 * @phys: Physical address of segment
359 */
360 struct xilinx_cdma_tx_segment {
361 struct xilinx_cdma_desc_hw hw;
362 struct list_head node;
363 dma_addr_t phys;
364 } __aligned(64);
365
366 /**
367 * struct xilinx_dma_tx_descriptor - Per Transaction structure
368 * @async_tx: Async transaction descriptor
369 * @segments: TX segments list
370 * @node: Node in the channel descriptors list
371 * @cyclic: Check for cyclic transfers.
372 * @err: Whether the descriptor has an error.
373 * @residue: Residue of the completed descriptor
374 */
375 struct xilinx_dma_tx_descriptor {
376 struct dma_async_tx_descriptor async_tx;
377 struct list_head segments;
378 struct list_head node;
379 bool cyclic;
380 bool err;
381 u32 residue;
382 };
383
384 /**
385 * struct xilinx_dma_chan - Driver specific DMA channel structure
386 * @xdev: Driver specific device structure
387 * @ctrl_offset: Control registers offset
388 * @desc_offset: TX descriptor registers offset
389 * @lock: Descriptor operation lock
390 * @pending_list: Descriptors waiting
391 * @active_list: Descriptors ready to submit
392 * @done_list: Complete descriptors
393 * @free_seg_list: Free descriptors
394 * @common: DMA common channel
395 * @desc_pool: Descriptors pool
396 * @dev: The dma device
397 * @irq: Channel IRQ
398 * @id: Channel ID
399 * @direction: Transfer direction
400 * @num_frms: Number of frames
401 * @has_sg: Support scatter transfers
402 * @cyclic: Check for cyclic transfers.
403 * @genlock: Support genlock mode
404 * @err: Channel has errors
405 * @idle: Check for channel idle
406 * @terminating: Check for channel being synchronized by user
407 * @tasklet: Cleanup work after irq
408 * @config: Device configuration info
409 * @flush_on_fsync: Flush on Frame sync
410 * @desc_pendingcount: Descriptor pending count
411 * @ext_addr: Indicates 64 bit addressing is supported by dma channel
412 * @desc_submitcount: Descriptor h/w submitted count
413 * @seg_v: Statically allocated segments base
414 * @seg_mv: Statically allocated segments base for MCDMA
415 * @seg_p: Physical allocated segments base
416 * @cyclic_seg_v: Statically allocated segment base for cyclic transfers
417 * @cyclic_seg_p: Physical allocated segments base for cyclic dma
418 * @start_transfer: Differentiate b/w DMA IP's transfer
419 * @stop_transfer: Differentiate b/w DMA IP's quiesce
420 * @tdest: TDEST value for mcdma
421 * @has_vflip: S2MM vertical flip
422 * @irq_delay: Interrupt delay timeout
423 */
424 struct xilinx_dma_chan {
425 struct xilinx_dma_device *xdev;
426 u32 ctrl_offset;
427 u32 desc_offset;
428 spinlock_t lock;
429 struct list_head pending_list;
430 struct list_head active_list;
431 struct list_head done_list;
432 struct list_head free_seg_list;
433 struct dma_chan common;
434 struct dma_pool *desc_pool;
435 struct device *dev;
436 int irq;
437 int id;
438 enum dma_transfer_direction direction;
439 int num_frms;
440 bool has_sg;
441 bool cyclic;
442 bool genlock;
443 bool err;
444 bool idle;
445 bool terminating;
446 struct tasklet_struct tasklet;
447 struct xilinx_vdma_config config;
448 bool flush_on_fsync;
449 u32 desc_pendingcount;
450 bool ext_addr;
451 u32 desc_submitcount;
452 struct xilinx_axidma_tx_segment *seg_v;
453 struct xilinx_aximcdma_tx_segment *seg_mv;
454 dma_addr_t seg_p;
455 struct xilinx_axidma_tx_segment *cyclic_seg_v;
456 dma_addr_t cyclic_seg_p;
457 void (*start_transfer)(struct xilinx_dma_chan *chan);
458 int (*stop_transfer)(struct xilinx_dma_chan *chan);
459 u16 tdest;
460 bool has_vflip;
461 u8 irq_delay;
462 };
463
464 /**
465 * enum xdma_ip_type - DMA IP type.
466 *
467 * @XDMA_TYPE_AXIDMA: Axi dma ip.
468 * @XDMA_TYPE_CDMA: Axi cdma ip.
469 * @XDMA_TYPE_VDMA: Axi vdma ip.
470 * @XDMA_TYPE_AXIMCDMA: Axi MCDMA ip.
471 *
472 */
473 enum xdma_ip_type {
474 XDMA_TYPE_AXIDMA = 0,
475 XDMA_TYPE_CDMA,
476 XDMA_TYPE_VDMA,
477 XDMA_TYPE_AXIMCDMA
478 };
479
480 struct xilinx_dma_config {
481 enum xdma_ip_type dmatype;
482 int (*clk_init)(struct platform_device *pdev, struct clk **axi_clk,
483 struct clk **tx_clk, struct clk **txs_clk,
484 struct clk **rx_clk, struct clk **rxs_clk);
485 irqreturn_t (*irq_handler)(int irq, void *data);
486 const int max_channels;
487 };
488
489 /**
490 * struct xilinx_dma_device - DMA device structure
491 * @regs: I/O mapped base address
492 * @dev: Device Structure
493 * @common: DMA device structure
494 * @chan: Driver specific DMA channel
495 * @flush_on_fsync: Flush on frame sync
496 * @ext_addr: Indicates 64 bit addressing is supported by dma device
497 * @pdev: Platform device structure pointer
498 * @dma_config: DMA config structure
499 * @axi_clk: DMA Axi4-lite interace clock
500 * @tx_clk: DMA mm2s clock
501 * @txs_clk: DMA mm2s stream clock
502 * @rx_clk: DMA s2mm clock
503 * @rxs_clk: DMA s2mm stream clock
504 * @s2mm_chan_id: DMA s2mm channel identifier
505 * @mm2s_chan_id: DMA mm2s channel identifier
506 * @max_buffer_len: Max buffer length
507 * @has_axistream_connected: AXI DMA connected to AXI Stream IP
508 */
509 struct xilinx_dma_device {
510 void __iomem *regs;
511 struct device *dev;
512 struct dma_device common;
513 struct xilinx_dma_chan *chan[XILINX_MCDMA_MAX_CHANS_PER_DEVICE];
514 u32 flush_on_fsync;
515 bool ext_addr;
516 struct platform_device *pdev;
517 const struct xilinx_dma_config *dma_config;
518 struct clk *axi_clk;
519 struct clk *tx_clk;
520 struct clk *txs_clk;
521 struct clk *rx_clk;
522 struct clk *rxs_clk;
523 u32 s2mm_chan_id;
524 u32 mm2s_chan_id;
525 u32 max_buffer_len;
526 bool has_axistream_connected;
527 };
528
529 /* Macros */
530 #define to_xilinx_chan(chan) \
531 container_of(chan, struct xilinx_dma_chan, common)
532 #define to_dma_tx_descriptor(tx) \
533 container_of(tx, struct xilinx_dma_tx_descriptor, async_tx)
534 #define xilinx_dma_poll_timeout(chan, reg, val, cond, delay_us, timeout_us) \
535 readl_poll_timeout_atomic(chan->xdev->regs + chan->ctrl_offset + reg, \
536 val, cond, delay_us, timeout_us)
537
538 /* IO accessors */
dma_read(struct xilinx_dma_chan * chan,u32 reg)539 static inline u32 dma_read(struct xilinx_dma_chan *chan, u32 reg)
540 {
541 return ioread32(chan->xdev->regs + reg);
542 }
543
dma_write(struct xilinx_dma_chan * chan,u32 reg,u32 value)544 static inline void dma_write(struct xilinx_dma_chan *chan, u32 reg, u32 value)
545 {
546 iowrite32(value, chan->xdev->regs + reg);
547 }
548
vdma_desc_write(struct xilinx_dma_chan * chan,u32 reg,u32 value)549 static inline void vdma_desc_write(struct xilinx_dma_chan *chan, u32 reg,
550 u32 value)
551 {
552 dma_write(chan, chan->desc_offset + reg, value);
553 }
554
dma_ctrl_read(struct xilinx_dma_chan * chan,u32 reg)555 static inline u32 dma_ctrl_read(struct xilinx_dma_chan *chan, u32 reg)
556 {
557 return dma_read(chan, chan->ctrl_offset + reg);
558 }
559
dma_ctrl_write(struct xilinx_dma_chan * chan,u32 reg,u32 value)560 static inline void dma_ctrl_write(struct xilinx_dma_chan *chan, u32 reg,
561 u32 value)
562 {
563 dma_write(chan, chan->ctrl_offset + reg, value);
564 }
565
dma_ctrl_clr(struct xilinx_dma_chan * chan,u32 reg,u32 clr)566 static inline void dma_ctrl_clr(struct xilinx_dma_chan *chan, u32 reg,
567 u32 clr)
568 {
569 dma_ctrl_write(chan, reg, dma_ctrl_read(chan, reg) & ~clr);
570 }
571
dma_ctrl_set(struct xilinx_dma_chan * chan,u32 reg,u32 set)572 static inline void dma_ctrl_set(struct xilinx_dma_chan *chan, u32 reg,
573 u32 set)
574 {
575 dma_ctrl_write(chan, reg, dma_ctrl_read(chan, reg) | set);
576 }
577
578 /**
579 * vdma_desc_write_64 - 64-bit descriptor write
580 * @chan: Driver specific VDMA channel
581 * @reg: Register to write
582 * @value_lsb: lower address of the descriptor.
583 * @value_msb: upper address of the descriptor.
584 *
585 * Since vdma driver is trying to write to a register offset which is not a
586 * multiple of 64 bits(ex : 0x5c), we are writing as two separate 32 bits
587 * instead of a single 64 bit register write.
588 */
vdma_desc_write_64(struct xilinx_dma_chan * chan,u32 reg,u32 value_lsb,u32 value_msb)589 static inline void vdma_desc_write_64(struct xilinx_dma_chan *chan, u32 reg,
590 u32 value_lsb, u32 value_msb)
591 {
592 /* Write the lsb 32 bits*/
593 writel(value_lsb, chan->xdev->regs + chan->desc_offset + reg);
594
595 /* Write the msb 32 bits */
596 writel(value_msb, chan->xdev->regs + chan->desc_offset + reg + 4);
597 }
598
dma_writeq(struct xilinx_dma_chan * chan,u32 reg,u64 value)599 static inline void dma_writeq(struct xilinx_dma_chan *chan, u32 reg, u64 value)
600 {
601 lo_hi_writeq(value, chan->xdev->regs + chan->ctrl_offset + reg);
602 }
603
xilinx_write(struct xilinx_dma_chan * chan,u32 reg,dma_addr_t addr)604 static inline void xilinx_write(struct xilinx_dma_chan *chan, u32 reg,
605 dma_addr_t addr)
606 {
607 if (chan->ext_addr)
608 dma_writeq(chan, reg, addr);
609 else
610 dma_ctrl_write(chan, reg, addr);
611 }
612
xilinx_axidma_buf(struct xilinx_dma_chan * chan,struct xilinx_axidma_desc_hw * hw,dma_addr_t buf_addr,size_t sg_used,size_t period_len)613 static inline void xilinx_axidma_buf(struct xilinx_dma_chan *chan,
614 struct xilinx_axidma_desc_hw *hw,
615 dma_addr_t buf_addr, size_t sg_used,
616 size_t period_len)
617 {
618 if (chan->ext_addr) {
619 hw->buf_addr = lower_32_bits(buf_addr + sg_used + period_len);
620 hw->buf_addr_msb = upper_32_bits(buf_addr + sg_used +
621 period_len);
622 } else {
623 hw->buf_addr = buf_addr + sg_used + period_len;
624 }
625 }
626
xilinx_aximcdma_buf(struct xilinx_dma_chan * chan,struct xilinx_aximcdma_desc_hw * hw,dma_addr_t buf_addr,size_t sg_used)627 static inline void xilinx_aximcdma_buf(struct xilinx_dma_chan *chan,
628 struct xilinx_aximcdma_desc_hw *hw,
629 dma_addr_t buf_addr, size_t sg_used)
630 {
631 if (chan->ext_addr) {
632 hw->buf_addr = lower_32_bits(buf_addr + sg_used);
633 hw->buf_addr_msb = upper_32_bits(buf_addr + sg_used);
634 } else {
635 hw->buf_addr = buf_addr + sg_used;
636 }
637 }
638
639 /**
640 * xilinx_dma_get_metadata_ptr- Populate metadata pointer and payload length
641 * @tx: async transaction descriptor
642 * @payload_len: metadata payload length
643 * @max_len: metadata max length
644 * Return: The app field pointer.
645 */
xilinx_dma_get_metadata_ptr(struct dma_async_tx_descriptor * tx,size_t * payload_len,size_t * max_len)646 static void *xilinx_dma_get_metadata_ptr(struct dma_async_tx_descriptor *tx,
647 size_t *payload_len, size_t *max_len)
648 {
649 struct xilinx_dma_tx_descriptor *desc = to_dma_tx_descriptor(tx);
650 struct xilinx_axidma_tx_segment *seg;
651
652 *max_len = *payload_len = sizeof(u32) * XILINX_DMA_NUM_APP_WORDS;
653 seg = list_first_entry(&desc->segments,
654 struct xilinx_axidma_tx_segment, node);
655 return seg->hw.app;
656 }
657
658 static const struct dma_descriptor_metadata_ops xilinx_dma_metadata_ops = {
659 .get_ptr = xilinx_dma_get_metadata_ptr,
660 };
661
662 /* -----------------------------------------------------------------------------
663 * Descriptors and segments alloc and free
664 */
665
666 /**
667 * xilinx_vdma_alloc_tx_segment - Allocate transaction segment
668 * @chan: Driver specific DMA channel
669 *
670 * Return: The allocated segment on success and NULL on failure.
671 */
672 static struct xilinx_vdma_tx_segment *
xilinx_vdma_alloc_tx_segment(struct xilinx_dma_chan * chan)673 xilinx_vdma_alloc_tx_segment(struct xilinx_dma_chan *chan)
674 {
675 struct xilinx_vdma_tx_segment *segment;
676 dma_addr_t phys;
677
678 segment = dma_pool_zalloc(chan->desc_pool, GFP_ATOMIC, &phys);
679 if (!segment)
680 return NULL;
681
682 segment->phys = phys;
683
684 return segment;
685 }
686
687 /**
688 * xilinx_cdma_alloc_tx_segment - Allocate transaction segment
689 * @chan: Driver specific DMA channel
690 *
691 * Return: The allocated segment on success and NULL on failure.
692 */
693 static struct xilinx_cdma_tx_segment *
xilinx_cdma_alloc_tx_segment(struct xilinx_dma_chan * chan)694 xilinx_cdma_alloc_tx_segment(struct xilinx_dma_chan *chan)
695 {
696 struct xilinx_cdma_tx_segment *segment;
697 dma_addr_t phys;
698
699 segment = dma_pool_zalloc(chan->desc_pool, GFP_ATOMIC, &phys);
700 if (!segment)
701 return NULL;
702
703 segment->phys = phys;
704
705 return segment;
706 }
707
708 /**
709 * xilinx_axidma_alloc_tx_segment - Allocate transaction segment
710 * @chan: Driver specific DMA channel
711 *
712 * Return: The allocated segment on success and NULL on failure.
713 */
714 static struct xilinx_axidma_tx_segment *
xilinx_axidma_alloc_tx_segment(struct xilinx_dma_chan * chan)715 xilinx_axidma_alloc_tx_segment(struct xilinx_dma_chan *chan)
716 {
717 struct xilinx_axidma_tx_segment *segment = NULL;
718 unsigned long flags;
719
720 spin_lock_irqsave(&chan->lock, flags);
721 if (!list_empty(&chan->free_seg_list)) {
722 segment = list_first_entry(&chan->free_seg_list,
723 struct xilinx_axidma_tx_segment,
724 node);
725 list_del(&segment->node);
726 }
727 spin_unlock_irqrestore(&chan->lock, flags);
728
729 if (!segment)
730 dev_dbg(chan->dev, "Could not find free tx segment\n");
731
732 return segment;
733 }
734
735 /**
736 * xilinx_aximcdma_alloc_tx_segment - Allocate transaction segment
737 * @chan: Driver specific DMA channel
738 *
739 * Return: The allocated segment on success and NULL on failure.
740 */
741 static struct xilinx_aximcdma_tx_segment *
xilinx_aximcdma_alloc_tx_segment(struct xilinx_dma_chan * chan)742 xilinx_aximcdma_alloc_tx_segment(struct xilinx_dma_chan *chan)
743 {
744 struct xilinx_aximcdma_tx_segment *segment = NULL;
745 unsigned long flags;
746
747 spin_lock_irqsave(&chan->lock, flags);
748 if (!list_empty(&chan->free_seg_list)) {
749 segment = list_first_entry(&chan->free_seg_list,
750 struct xilinx_aximcdma_tx_segment,
751 node);
752 list_del(&segment->node);
753 }
754 spin_unlock_irqrestore(&chan->lock, flags);
755
756 return segment;
757 }
758
xilinx_dma_clean_hw_desc(struct xilinx_dma_chan * chan,struct xilinx_axidma_tx_segment * segment)759 static void xilinx_dma_clean_hw_desc(struct xilinx_dma_chan *chan,
760 struct xilinx_axidma_tx_segment *segment)
761 {
762 dma_addr_t next;
763 u32 i;
764
765 /*
766 * Restore the buffer descriptor's next descriptor pointer to the value
767 * set up in xilinx_dma_alloc_chan_resources(). Otherwise using the DMA
768 * in cyclic mode leaves the next descriptor pointer altered and
769 * prevents subsequent non-cyclic transfers.
770 */
771 i = segment - chan->seg_v;
772 next = chan->seg_p +
773 sizeof(*chan->seg_v) * ((i + 1) % XILINX_DMA_NUM_DESCS);
774
775 memset(&segment->hw, 0, sizeof(segment->hw));
776 segment->hw.next_desc = lower_32_bits(next);
777 segment->hw.next_desc_msb = upper_32_bits(next);
778 }
779
xilinx_mcdma_clean_hw_desc(struct xilinx_aximcdma_desc_hw * hw)780 static void xilinx_mcdma_clean_hw_desc(struct xilinx_aximcdma_desc_hw *hw)
781 {
782 u32 next_desc = hw->next_desc;
783 u32 next_desc_msb = hw->next_desc_msb;
784
785 memset(hw, 0, sizeof(struct xilinx_aximcdma_desc_hw));
786
787 hw->next_desc = next_desc;
788 hw->next_desc_msb = next_desc_msb;
789 }
790
791 /**
792 * xilinx_dma_free_tx_segment - Free transaction segment
793 * @chan: Driver specific DMA channel
794 * @segment: DMA transaction segment
795 */
xilinx_dma_free_tx_segment(struct xilinx_dma_chan * chan,struct xilinx_axidma_tx_segment * segment)796 static void xilinx_dma_free_tx_segment(struct xilinx_dma_chan *chan,
797 struct xilinx_axidma_tx_segment *segment)
798 {
799 xilinx_dma_clean_hw_desc(chan, segment);
800
801 list_add_tail(&segment->node, &chan->free_seg_list);
802 }
803
804 /**
805 * xilinx_mcdma_free_tx_segment - Free transaction segment
806 * @chan: Driver specific DMA channel
807 * @segment: DMA transaction segment
808 */
xilinx_mcdma_free_tx_segment(struct xilinx_dma_chan * chan,struct xilinx_aximcdma_tx_segment * segment)809 static void xilinx_mcdma_free_tx_segment(struct xilinx_dma_chan *chan,
810 struct xilinx_aximcdma_tx_segment *
811 segment)
812 {
813 xilinx_mcdma_clean_hw_desc(&segment->hw);
814
815 list_add_tail(&segment->node, &chan->free_seg_list);
816 }
817
818 /**
819 * xilinx_cdma_free_tx_segment - Free transaction segment
820 * @chan: Driver specific DMA channel
821 * @segment: DMA transaction segment
822 */
xilinx_cdma_free_tx_segment(struct xilinx_dma_chan * chan,struct xilinx_cdma_tx_segment * segment)823 static void xilinx_cdma_free_tx_segment(struct xilinx_dma_chan *chan,
824 struct xilinx_cdma_tx_segment *segment)
825 {
826 dma_pool_free(chan->desc_pool, segment, segment->phys);
827 }
828
829 /**
830 * xilinx_vdma_free_tx_segment - Free transaction segment
831 * @chan: Driver specific DMA channel
832 * @segment: DMA transaction segment
833 */
xilinx_vdma_free_tx_segment(struct xilinx_dma_chan * chan,struct xilinx_vdma_tx_segment * segment)834 static void xilinx_vdma_free_tx_segment(struct xilinx_dma_chan *chan,
835 struct xilinx_vdma_tx_segment *segment)
836 {
837 dma_pool_free(chan->desc_pool, segment, segment->phys);
838 }
839
840 /**
841 * xilinx_dma_alloc_tx_descriptor - Allocate transaction descriptor
842 * @chan: Driver specific DMA channel
843 *
844 * Return: The allocated descriptor on success and NULL on failure.
845 */
846 static struct xilinx_dma_tx_descriptor *
xilinx_dma_alloc_tx_descriptor(struct xilinx_dma_chan * chan)847 xilinx_dma_alloc_tx_descriptor(struct xilinx_dma_chan *chan)
848 {
849 struct xilinx_dma_tx_descriptor *desc;
850
851 desc = kzalloc_obj(*desc, GFP_NOWAIT);
852 if (!desc)
853 return NULL;
854
855 INIT_LIST_HEAD(&desc->segments);
856
857 return desc;
858 }
859
860 /**
861 * xilinx_dma_free_tx_descriptor - Free transaction descriptor
862 * @chan: Driver specific DMA channel
863 * @desc: DMA transaction descriptor
864 */
865 static void
xilinx_dma_free_tx_descriptor(struct xilinx_dma_chan * chan,struct xilinx_dma_tx_descriptor * desc)866 xilinx_dma_free_tx_descriptor(struct xilinx_dma_chan *chan,
867 struct xilinx_dma_tx_descriptor *desc)
868 {
869 struct xilinx_vdma_tx_segment *segment, *next;
870 struct xilinx_cdma_tx_segment *cdma_segment, *cdma_next;
871 struct xilinx_axidma_tx_segment *axidma_segment, *axidma_next;
872 struct xilinx_aximcdma_tx_segment *aximcdma_segment, *aximcdma_next;
873
874 if (!desc)
875 return;
876
877 if (chan->xdev->dma_config->dmatype == XDMA_TYPE_VDMA) {
878 list_for_each_entry_safe(segment, next, &desc->segments, node) {
879 list_del(&segment->node);
880 xilinx_vdma_free_tx_segment(chan, segment);
881 }
882 } else if (chan->xdev->dma_config->dmatype == XDMA_TYPE_CDMA) {
883 list_for_each_entry_safe(cdma_segment, cdma_next,
884 &desc->segments, node) {
885 list_del(&cdma_segment->node);
886 xilinx_cdma_free_tx_segment(chan, cdma_segment);
887 }
888 } else if (chan->xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA) {
889 list_for_each_entry_safe(axidma_segment, axidma_next,
890 &desc->segments, node) {
891 list_del(&axidma_segment->node);
892 xilinx_dma_free_tx_segment(chan, axidma_segment);
893 }
894 } else {
895 list_for_each_entry_safe(aximcdma_segment, aximcdma_next,
896 &desc->segments, node) {
897 list_del(&aximcdma_segment->node);
898 xilinx_mcdma_free_tx_segment(chan, aximcdma_segment);
899 }
900 }
901
902 kfree(desc);
903 }
904
905 /* Required functions */
906
907 /**
908 * xilinx_dma_free_desc_list - Free descriptors list
909 * @chan: Driver specific DMA channel
910 * @list: List to parse and delete the descriptor
911 */
xilinx_dma_free_desc_list(struct xilinx_dma_chan * chan,struct list_head * list)912 static void xilinx_dma_free_desc_list(struct xilinx_dma_chan *chan,
913 struct list_head *list)
914 {
915 struct xilinx_dma_tx_descriptor *desc, *next;
916
917 list_for_each_entry_safe(desc, next, list, node) {
918 list_del(&desc->node);
919 xilinx_dma_free_tx_descriptor(chan, desc);
920 }
921 }
922
923 /**
924 * xilinx_dma_free_descriptors - Free channel descriptors
925 * @chan: Driver specific DMA channel
926 */
xilinx_dma_free_descriptors(struct xilinx_dma_chan * chan)927 static void xilinx_dma_free_descriptors(struct xilinx_dma_chan *chan)
928 {
929 unsigned long flags;
930
931 spin_lock_irqsave(&chan->lock, flags);
932
933 xilinx_dma_free_desc_list(chan, &chan->done_list);
934 xilinx_dma_free_desc_list(chan, &chan->active_list);
935 xilinx_dma_free_desc_list(chan, &chan->pending_list);
936
937 spin_unlock_irqrestore(&chan->lock, flags);
938 }
939
940 /**
941 * xilinx_dma_free_chan_resources - Free channel resources
942 * @dchan: DMA channel
943 */
xilinx_dma_free_chan_resources(struct dma_chan * dchan)944 static void xilinx_dma_free_chan_resources(struct dma_chan *dchan)
945 {
946 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
947 unsigned long flags;
948
949 dev_dbg(chan->dev, "Free all channel resources.\n");
950
951 xilinx_dma_free_descriptors(chan);
952
953 if (chan->xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA) {
954 spin_lock_irqsave(&chan->lock, flags);
955 INIT_LIST_HEAD(&chan->free_seg_list);
956 spin_unlock_irqrestore(&chan->lock, flags);
957
958 /* Free memory that is allocated for BD */
959 dma_free_coherent(chan->dev, sizeof(*chan->seg_v) *
960 XILINX_DMA_NUM_DESCS, chan->seg_v,
961 chan->seg_p);
962
963 /* Free Memory that is allocated for cyclic DMA Mode */
964 dma_free_coherent(chan->dev, sizeof(*chan->cyclic_seg_v),
965 chan->cyclic_seg_v, chan->cyclic_seg_p);
966 }
967
968 if (chan->xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA) {
969 spin_lock_irqsave(&chan->lock, flags);
970 INIT_LIST_HEAD(&chan->free_seg_list);
971 spin_unlock_irqrestore(&chan->lock, flags);
972
973 /* Free memory that is allocated for BD */
974 dma_free_coherent(chan->dev, sizeof(*chan->seg_mv) *
975 XILINX_DMA_NUM_DESCS, chan->seg_mv,
976 chan->seg_p);
977 }
978
979 if (chan->xdev->dma_config->dmatype != XDMA_TYPE_AXIDMA &&
980 chan->xdev->dma_config->dmatype != XDMA_TYPE_AXIMCDMA) {
981 dma_pool_destroy(chan->desc_pool);
982 chan->desc_pool = NULL;
983 }
984
985 }
986
987 /**
988 * xilinx_dma_get_residue - Compute residue for a given descriptor
989 * @chan: Driver specific dma channel
990 * @desc: dma transaction descriptor
991 *
992 * Return: The number of residue bytes for the descriptor.
993 */
xilinx_dma_get_residue(struct xilinx_dma_chan * chan,struct xilinx_dma_tx_descriptor * desc)994 static u32 xilinx_dma_get_residue(struct xilinx_dma_chan *chan,
995 struct xilinx_dma_tx_descriptor *desc)
996 {
997 struct xilinx_cdma_tx_segment *cdma_seg;
998 struct xilinx_axidma_tx_segment *axidma_seg;
999 struct xilinx_aximcdma_tx_segment *aximcdma_seg;
1000 struct xilinx_cdma_desc_hw *cdma_hw;
1001 struct xilinx_axidma_desc_hw *axidma_hw;
1002 struct xilinx_aximcdma_desc_hw *aximcdma_hw;
1003 struct list_head *entry;
1004 u32 residue = 0;
1005
1006 list_for_each(entry, &desc->segments) {
1007 if (chan->xdev->dma_config->dmatype == XDMA_TYPE_CDMA) {
1008 cdma_seg = list_entry(entry,
1009 struct xilinx_cdma_tx_segment,
1010 node);
1011 cdma_hw = &cdma_seg->hw;
1012 residue += (cdma_hw->control & chan->xdev->max_buffer_len) -
1013 (cdma_hw->status & chan->xdev->max_buffer_len);
1014 } else if (chan->xdev->dma_config->dmatype ==
1015 XDMA_TYPE_AXIDMA) {
1016 axidma_seg = list_entry(entry,
1017 struct xilinx_axidma_tx_segment,
1018 node);
1019 axidma_hw = &axidma_seg->hw;
1020 residue += (axidma_hw->control & chan->xdev->max_buffer_len) -
1021 (axidma_hw->status & chan->xdev->max_buffer_len);
1022 } else {
1023 aximcdma_seg =
1024 list_entry(entry,
1025 struct xilinx_aximcdma_tx_segment,
1026 node);
1027 aximcdma_hw = &aximcdma_seg->hw;
1028 residue +=
1029 (aximcdma_hw->control & chan->xdev->max_buffer_len) -
1030 (aximcdma_hw->status & chan->xdev->max_buffer_len);
1031 }
1032 }
1033
1034 return residue;
1035 }
1036
1037 static u32
xilinx_dma_get_residue_axidma_direct_s2mm(struct xilinx_dma_chan * chan,struct xilinx_dma_tx_descriptor * desc)1038 xilinx_dma_get_residue_axidma_direct_s2mm(struct xilinx_dma_chan *chan,
1039 struct xilinx_dma_tx_descriptor *desc)
1040 {
1041 struct xilinx_axidma_tx_segment *seg;
1042 struct xilinx_axidma_desc_hw *hw;
1043 u32 finished_len;
1044
1045 finished_len = dma_ctrl_read(chan, XILINX_DMA_REG_BTT);
1046
1047 seg = list_first_entry(&desc->segments, struct xilinx_axidma_tx_segment,
1048 node);
1049
1050 hw = &seg->hw;
1051
1052 return hw->control - finished_len;
1053 }
1054
1055 /**
1056 * xilinx_dma_chan_handle_cyclic - Cyclic dma callback
1057 * @chan: Driver specific dma channel
1058 * @desc: dma transaction descriptor
1059 * @flags: flags for spin lock
1060 */
xilinx_dma_chan_handle_cyclic(struct xilinx_dma_chan * chan,struct xilinx_dma_tx_descriptor * desc,unsigned long * flags)1061 static void xilinx_dma_chan_handle_cyclic(struct xilinx_dma_chan *chan,
1062 struct xilinx_dma_tx_descriptor *desc,
1063 unsigned long *flags)
1064 {
1065 struct dmaengine_desc_callback cb;
1066
1067 dmaengine_desc_get_callback(&desc->async_tx, &cb);
1068 if (dmaengine_desc_callback_valid(&cb)) {
1069 spin_unlock_irqrestore(&chan->lock, *flags);
1070 dmaengine_desc_callback_invoke(&cb, NULL);
1071 spin_lock_irqsave(&chan->lock, *flags);
1072 }
1073 }
1074
1075 /**
1076 * xilinx_dma_chan_desc_cleanup - Clean channel descriptors
1077 * @chan: Driver specific DMA channel
1078 */
xilinx_dma_chan_desc_cleanup(struct xilinx_dma_chan * chan)1079 static void xilinx_dma_chan_desc_cleanup(struct xilinx_dma_chan *chan)
1080 {
1081 struct xilinx_dma_tx_descriptor *desc, *next;
1082 unsigned long flags;
1083
1084 spin_lock_irqsave(&chan->lock, flags);
1085
1086 list_for_each_entry_safe(desc, next, &chan->done_list, node) {
1087 struct dmaengine_result result;
1088
1089 if (desc->cyclic) {
1090 xilinx_dma_chan_handle_cyclic(chan, desc, &flags);
1091 break;
1092 }
1093
1094 /* Remove from the list of running transactions */
1095 list_del(&desc->node);
1096
1097 if (unlikely(desc->err)) {
1098 if (chan->direction == DMA_DEV_TO_MEM)
1099 result.result = DMA_TRANS_READ_FAILED;
1100 else
1101 result.result = DMA_TRANS_WRITE_FAILED;
1102 } else {
1103 result.result = DMA_TRANS_NOERROR;
1104 }
1105
1106 result.residue = desc->residue;
1107
1108 /* Run the link descriptor callback function */
1109 spin_unlock_irqrestore(&chan->lock, flags);
1110 dmaengine_desc_get_callback_invoke(&desc->async_tx, &result);
1111 spin_lock_irqsave(&chan->lock, flags);
1112
1113 /* Run any dependencies, then free the descriptor */
1114 dma_run_dependencies(&desc->async_tx);
1115 xilinx_dma_free_tx_descriptor(chan, desc);
1116
1117 /*
1118 * While we ran a callback the user called a terminate function,
1119 * which takes care of cleaning up any remaining descriptors
1120 */
1121 if (chan->terminating)
1122 break;
1123 }
1124
1125 spin_unlock_irqrestore(&chan->lock, flags);
1126 }
1127
1128 /**
1129 * xilinx_dma_do_tasklet - Schedule completion tasklet
1130 * @t: Pointer to the Xilinx DMA channel structure
1131 */
xilinx_dma_do_tasklet(struct tasklet_struct * t)1132 static void xilinx_dma_do_tasklet(struct tasklet_struct *t)
1133 {
1134 struct xilinx_dma_chan *chan = from_tasklet(chan, t, tasklet);
1135
1136 xilinx_dma_chan_desc_cleanup(chan);
1137 }
1138
1139 /**
1140 * xilinx_dma_alloc_chan_resources - Allocate channel resources
1141 * @dchan: DMA channel
1142 *
1143 * Return: '0' on success and failure value on error
1144 */
xilinx_dma_alloc_chan_resources(struct dma_chan * dchan)1145 static int xilinx_dma_alloc_chan_resources(struct dma_chan *dchan)
1146 {
1147 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
1148 int i;
1149
1150 /* Has this channel already been allocated? */
1151 if (chan->desc_pool)
1152 return 0;
1153
1154 /*
1155 * We need the descriptor to be aligned to 64bytes
1156 * for meeting Xilinx VDMA specification requirement.
1157 */
1158 if (chan->xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA) {
1159 /* Allocate the buffer descriptors. */
1160 chan->seg_v = dma_alloc_coherent(chan->dev,
1161 sizeof(*chan->seg_v) * XILINX_DMA_NUM_DESCS,
1162 &chan->seg_p, GFP_KERNEL);
1163 if (!chan->seg_v) {
1164 dev_err(chan->dev,
1165 "unable to allocate channel %d descriptors\n",
1166 chan->id);
1167 return -ENOMEM;
1168 }
1169 /*
1170 * For cyclic DMA mode we need to program the tail Descriptor
1171 * register with a value which is not a part of the BD chain
1172 * so allocating a desc segment during channel allocation for
1173 * programming tail descriptor.
1174 */
1175 chan->cyclic_seg_v = dma_alloc_coherent(chan->dev,
1176 sizeof(*chan->cyclic_seg_v),
1177 &chan->cyclic_seg_p,
1178 GFP_KERNEL);
1179 if (!chan->cyclic_seg_v) {
1180 dev_err(chan->dev,
1181 "unable to allocate desc segment for cyclic DMA\n");
1182 dma_free_coherent(chan->dev, sizeof(*chan->seg_v) *
1183 XILINX_DMA_NUM_DESCS, chan->seg_v,
1184 chan->seg_p);
1185 return -ENOMEM;
1186 }
1187 chan->cyclic_seg_v->phys = chan->cyclic_seg_p;
1188
1189 for (i = 0; i < XILINX_DMA_NUM_DESCS; i++) {
1190 chan->seg_v[i].hw.next_desc =
1191 lower_32_bits(chan->seg_p + sizeof(*chan->seg_v) *
1192 ((i + 1) % XILINX_DMA_NUM_DESCS));
1193 chan->seg_v[i].hw.next_desc_msb =
1194 upper_32_bits(chan->seg_p + sizeof(*chan->seg_v) *
1195 ((i + 1) % XILINX_DMA_NUM_DESCS));
1196 chan->seg_v[i].phys = chan->seg_p +
1197 sizeof(*chan->seg_v) * i;
1198 list_add_tail(&chan->seg_v[i].node,
1199 &chan->free_seg_list);
1200 }
1201 } else if (chan->xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA) {
1202 /* Allocate the buffer descriptors. */
1203 chan->seg_mv = dma_alloc_coherent(chan->dev,
1204 sizeof(*chan->seg_mv) *
1205 XILINX_DMA_NUM_DESCS,
1206 &chan->seg_p, GFP_KERNEL);
1207 if (!chan->seg_mv) {
1208 dev_err(chan->dev,
1209 "unable to allocate channel %d descriptors\n",
1210 chan->id);
1211 return -ENOMEM;
1212 }
1213 for (i = 0; i < XILINX_DMA_NUM_DESCS; i++) {
1214 chan->seg_mv[i].hw.next_desc =
1215 lower_32_bits(chan->seg_p + sizeof(*chan->seg_mv) *
1216 ((i + 1) % XILINX_DMA_NUM_DESCS));
1217 chan->seg_mv[i].hw.next_desc_msb =
1218 upper_32_bits(chan->seg_p + sizeof(*chan->seg_mv) *
1219 ((i + 1) % XILINX_DMA_NUM_DESCS));
1220 chan->seg_mv[i].phys = chan->seg_p +
1221 sizeof(*chan->seg_mv) * i;
1222 list_add_tail(&chan->seg_mv[i].node,
1223 &chan->free_seg_list);
1224 }
1225 } else if (chan->xdev->dma_config->dmatype == XDMA_TYPE_CDMA) {
1226 chan->desc_pool = dma_pool_create("xilinx_cdma_desc_pool",
1227 chan->dev,
1228 sizeof(struct xilinx_cdma_tx_segment),
1229 __alignof__(struct xilinx_cdma_tx_segment),
1230 0);
1231 } else {
1232 chan->desc_pool = dma_pool_create("xilinx_vdma_desc_pool",
1233 chan->dev,
1234 sizeof(struct xilinx_vdma_tx_segment),
1235 __alignof__(struct xilinx_vdma_tx_segment),
1236 0);
1237 }
1238
1239 if (!chan->desc_pool &&
1240 ((chan->xdev->dma_config->dmatype != XDMA_TYPE_AXIDMA) &&
1241 chan->xdev->dma_config->dmatype != XDMA_TYPE_AXIMCDMA)) {
1242 dev_err(chan->dev,
1243 "unable to allocate channel %d descriptor pool\n",
1244 chan->id);
1245 return -ENOMEM;
1246 }
1247
1248 dma_cookie_init(dchan);
1249
1250 if ((chan->xdev->dma_config->dmatype == XDMA_TYPE_CDMA) && chan->has_sg)
1251 dma_ctrl_set(chan, XILINX_DMA_REG_DMACR,
1252 XILINX_CDMA_CR_SGMODE);
1253
1254 return 0;
1255 }
1256
1257 /**
1258 * xilinx_dma_calc_copysize - Calculate the amount of data to copy
1259 * @chan: Driver specific DMA channel
1260 * @size: Total data that needs to be copied
1261 * @done: Amount of data that has been already copied
1262 *
1263 * Return: Amount of data that has to be copied
1264 */
xilinx_dma_calc_copysize(struct xilinx_dma_chan * chan,int size,int done)1265 static int xilinx_dma_calc_copysize(struct xilinx_dma_chan *chan,
1266 int size, int done)
1267 {
1268 size_t copy;
1269
1270 copy = min_t(size_t, size - done,
1271 chan->xdev->max_buffer_len);
1272
1273 if ((copy + done < size) &&
1274 chan->xdev->common.copy_align) {
1275 /*
1276 * If this is not the last descriptor, make sure
1277 * the next one will be properly aligned
1278 */
1279 copy = rounddown(copy,
1280 (1 << chan->xdev->common.copy_align));
1281 }
1282 return copy;
1283 }
1284
1285 /**
1286 * xilinx_dma_tx_status - Get DMA transaction status
1287 * @dchan: DMA channel
1288 * @cookie: Transaction identifier
1289 * @txstate: Transaction state
1290 *
1291 * Return: DMA transaction status
1292 */
xilinx_dma_tx_status(struct dma_chan * dchan,dma_cookie_t cookie,struct dma_tx_state * txstate)1293 static enum dma_status xilinx_dma_tx_status(struct dma_chan *dchan,
1294 dma_cookie_t cookie,
1295 struct dma_tx_state *txstate)
1296 {
1297 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
1298 struct xilinx_dma_tx_descriptor *desc;
1299 enum dma_status ret;
1300 unsigned long flags;
1301 u32 residue = 0;
1302
1303 ret = dma_cookie_status(dchan, cookie, txstate);
1304 if (ret == DMA_COMPLETE || !txstate)
1305 return ret;
1306
1307 spin_lock_irqsave(&chan->lock, flags);
1308 if (!list_empty(&chan->active_list)) {
1309 desc = list_last_entry(&chan->active_list,
1310 struct xilinx_dma_tx_descriptor, node);
1311 /*
1312 * VDMA and simple mode do not support residue reporting, so the
1313 * residue field will always be 0.
1314 */
1315 if (chan->has_sg && chan->xdev->dma_config->dmatype != XDMA_TYPE_VDMA)
1316 residue = xilinx_dma_get_residue(chan, desc);
1317 }
1318 spin_unlock_irqrestore(&chan->lock, flags);
1319
1320 dma_set_residue(txstate, residue);
1321
1322 return ret;
1323 }
1324
1325 /**
1326 * xilinx_dma_stop_transfer - Halt DMA channel
1327 * @chan: Driver specific DMA channel
1328 *
1329 * Return: '0' on success and failure value on error
1330 */
xilinx_dma_stop_transfer(struct xilinx_dma_chan * chan)1331 static int xilinx_dma_stop_transfer(struct xilinx_dma_chan *chan)
1332 {
1333 u32 val;
1334
1335 dma_ctrl_clr(chan, XILINX_DMA_REG_DMACR, XILINX_DMA_DMACR_RUNSTOP);
1336
1337 /* Wait for the hardware to halt */
1338 return xilinx_dma_poll_timeout(chan, XILINX_DMA_REG_DMASR, val,
1339 val & XILINX_DMA_DMASR_HALTED,
1340 XILINX_DMA_POLL_DELAY_US,
1341 XILINX_DMA_POLL_TIMEOUT_US);
1342 }
1343
1344 /**
1345 * xilinx_cdma_stop_transfer - Wait for the current transfer to complete
1346 * @chan: Driver specific DMA channel
1347 *
1348 * Return: '0' on success and failure value on error
1349 */
xilinx_cdma_stop_transfer(struct xilinx_dma_chan * chan)1350 static int xilinx_cdma_stop_transfer(struct xilinx_dma_chan *chan)
1351 {
1352 u32 val;
1353
1354 return xilinx_dma_poll_timeout(chan, XILINX_DMA_REG_DMASR, val,
1355 val & XILINX_DMA_DMASR_IDLE,
1356 XILINX_DMA_POLL_DELAY_US,
1357 XILINX_DMA_POLL_TIMEOUT_US);
1358 }
1359
1360 /**
1361 * xilinx_dma_start - Start DMA channel
1362 * @chan: Driver specific DMA channel
1363 */
xilinx_dma_start(struct xilinx_dma_chan * chan)1364 static void xilinx_dma_start(struct xilinx_dma_chan *chan)
1365 {
1366 int err;
1367 u32 val;
1368
1369 dma_ctrl_set(chan, XILINX_DMA_REG_DMACR, XILINX_DMA_DMACR_RUNSTOP);
1370
1371 /* Wait for the hardware to start */
1372 err = xilinx_dma_poll_timeout(chan, XILINX_DMA_REG_DMASR, val,
1373 !(val & XILINX_DMA_DMASR_HALTED),
1374 XILINX_DMA_POLL_DELAY_US,
1375 XILINX_DMA_POLL_TIMEOUT_US);
1376
1377 if (err) {
1378 dev_err(chan->dev, "Cannot start channel %p: %x\n",
1379 chan, dma_ctrl_read(chan, XILINX_DMA_REG_DMASR));
1380
1381 chan->err = true;
1382 }
1383 }
1384
1385 /**
1386 * xilinx_vdma_start_transfer - Starts VDMA transfer
1387 * @chan: Driver specific channel struct pointer
1388 */
xilinx_vdma_start_transfer(struct xilinx_dma_chan * chan)1389 static void xilinx_vdma_start_transfer(struct xilinx_dma_chan *chan)
1390 {
1391 struct xilinx_vdma_config *config = &chan->config;
1392 struct xilinx_dma_tx_descriptor *desc;
1393 u32 reg, j;
1394 struct xilinx_vdma_tx_segment *segment, *last = NULL;
1395 int i = 0;
1396
1397 /* This function was invoked with lock held */
1398 if (chan->err)
1399 return;
1400
1401 if (!chan->idle)
1402 return;
1403
1404 if (list_empty(&chan->pending_list))
1405 return;
1406
1407 desc = list_first_entry(&chan->pending_list,
1408 struct xilinx_dma_tx_descriptor, node);
1409
1410 /* Configure the hardware using info in the config structure */
1411 if (chan->has_vflip) {
1412 reg = dma_read(chan, XILINX_VDMA_REG_ENABLE_VERTICAL_FLIP);
1413 reg &= ~XILINX_VDMA_ENABLE_VERTICAL_FLIP;
1414 reg |= config->vflip_en;
1415 dma_write(chan, XILINX_VDMA_REG_ENABLE_VERTICAL_FLIP,
1416 reg);
1417 }
1418
1419 reg = dma_ctrl_read(chan, XILINX_DMA_REG_DMACR);
1420
1421 if (config->frm_cnt_en)
1422 reg |= XILINX_DMA_DMACR_FRAMECNT_EN;
1423 else
1424 reg &= ~XILINX_DMA_DMACR_FRAMECNT_EN;
1425
1426 /* If not parking, enable circular mode */
1427 if (config->park)
1428 reg &= ~XILINX_DMA_DMACR_CIRC_EN;
1429 else
1430 reg |= XILINX_DMA_DMACR_CIRC_EN;
1431
1432 dma_ctrl_write(chan, XILINX_DMA_REG_DMACR, reg);
1433
1434 if (config->park) {
1435 j = chan->desc_submitcount;
1436 reg = dma_read(chan, XILINX_DMA_REG_PARK_PTR);
1437 if (chan->direction == DMA_MEM_TO_DEV) {
1438 reg &= ~XILINX_DMA_PARK_PTR_RD_REF_MASK;
1439 reg |= j << XILINX_DMA_PARK_PTR_RD_REF_SHIFT;
1440 } else {
1441 reg &= ~XILINX_DMA_PARK_PTR_WR_REF_MASK;
1442 reg |= j << XILINX_DMA_PARK_PTR_WR_REF_SHIFT;
1443 }
1444 dma_write(chan, XILINX_DMA_REG_PARK_PTR, reg);
1445 }
1446
1447 /* Start the hardware */
1448 xilinx_dma_start(chan);
1449
1450 if (chan->err)
1451 return;
1452
1453 /* Start the transfer */
1454 if (chan->desc_submitcount < chan->num_frms)
1455 i = chan->desc_submitcount;
1456
1457 list_for_each_entry(segment, &desc->segments, node) {
1458 if (chan->ext_addr)
1459 vdma_desc_write_64(chan,
1460 XILINX_VDMA_REG_START_ADDRESS_64(i++),
1461 segment->hw.buf_addr,
1462 segment->hw.buf_addr_msb);
1463 else
1464 vdma_desc_write(chan,
1465 XILINX_VDMA_REG_START_ADDRESS(i++),
1466 segment->hw.buf_addr);
1467
1468 last = segment;
1469 }
1470
1471 if (!last)
1472 return;
1473
1474 /* HW expects these parameters to be same for one transaction */
1475 vdma_desc_write(chan, XILINX_DMA_REG_HSIZE, last->hw.hsize);
1476 vdma_desc_write(chan, XILINX_DMA_REG_FRMDLY_STRIDE,
1477 last->hw.stride);
1478 vdma_desc_write(chan, XILINX_DMA_REG_VSIZE, last->hw.vsize);
1479
1480 chan->desc_submitcount++;
1481 chan->desc_pendingcount--;
1482 list_move_tail(&desc->node, &chan->active_list);
1483 if (chan->desc_submitcount == chan->num_frms)
1484 chan->desc_submitcount = 0;
1485
1486 chan->idle = false;
1487 }
1488
1489 /**
1490 * xilinx_cdma_start_transfer - Starts cdma transfer
1491 * @chan: Driver specific channel struct pointer
1492 */
xilinx_cdma_start_transfer(struct xilinx_dma_chan * chan)1493 static void xilinx_cdma_start_transfer(struct xilinx_dma_chan *chan)
1494 {
1495 struct xilinx_dma_tx_descriptor *head_desc, *tail_desc;
1496 struct xilinx_cdma_tx_segment *tail_segment;
1497 u32 ctrl_reg = dma_read(chan, XILINX_DMA_REG_DMACR);
1498
1499 if (chan->err)
1500 return;
1501
1502 if (!chan->idle)
1503 return;
1504
1505 if (list_empty(&chan->pending_list))
1506 return;
1507
1508 head_desc = list_first_entry(&chan->pending_list,
1509 struct xilinx_dma_tx_descriptor, node);
1510 tail_desc = list_last_entry(&chan->pending_list,
1511 struct xilinx_dma_tx_descriptor, node);
1512 tail_segment = list_last_entry(&tail_desc->segments,
1513 struct xilinx_cdma_tx_segment, node);
1514
1515 if (chan->desc_pendingcount <= XILINX_DMA_COALESCE_MAX) {
1516 ctrl_reg &= ~XILINX_DMA_CR_COALESCE_MAX;
1517 ctrl_reg |= chan->desc_pendingcount <<
1518 XILINX_DMA_CR_COALESCE_SHIFT;
1519 dma_ctrl_write(chan, XILINX_DMA_REG_DMACR, ctrl_reg);
1520 }
1521
1522 if (chan->has_sg) {
1523 dma_ctrl_clr(chan, XILINX_DMA_REG_DMACR,
1524 XILINX_CDMA_CR_SGMODE);
1525
1526 dma_ctrl_set(chan, XILINX_DMA_REG_DMACR,
1527 XILINX_CDMA_CR_SGMODE);
1528
1529 xilinx_write(chan, XILINX_DMA_REG_CURDESC,
1530 head_desc->async_tx.phys);
1531
1532 /* Update tail ptr register which will start the transfer */
1533 xilinx_write(chan, XILINX_DMA_REG_TAILDESC,
1534 tail_segment->phys);
1535 } else {
1536 /* In simple mode */
1537 struct xilinx_cdma_tx_segment *segment;
1538 struct xilinx_cdma_desc_hw *hw;
1539
1540 segment = list_first_entry(&head_desc->segments,
1541 struct xilinx_cdma_tx_segment,
1542 node);
1543
1544 hw = &segment->hw;
1545
1546 xilinx_write(chan, XILINX_CDMA_REG_SRCADDR,
1547 xilinx_prep_dma_addr_t(hw->src_addr));
1548 xilinx_write(chan, XILINX_CDMA_REG_DSTADDR,
1549 xilinx_prep_dma_addr_t(hw->dest_addr));
1550
1551 /* Start the transfer */
1552 dma_ctrl_write(chan, XILINX_DMA_REG_BTT,
1553 hw->control & chan->xdev->max_buffer_len);
1554 }
1555
1556 list_splice_tail_init(&chan->pending_list, &chan->active_list);
1557 chan->desc_pendingcount = 0;
1558 chan->idle = false;
1559 }
1560
1561 /**
1562 * xilinx_dma_start_transfer - Starts DMA transfer
1563 * @chan: Driver specific channel struct pointer
1564 */
xilinx_dma_start_transfer(struct xilinx_dma_chan * chan)1565 static void xilinx_dma_start_transfer(struct xilinx_dma_chan *chan)
1566 {
1567 struct xilinx_dma_tx_descriptor *head_desc, *tail_desc;
1568 struct xilinx_axidma_tx_segment *tail_segment;
1569 u32 reg;
1570
1571 if (chan->err)
1572 return;
1573
1574 if (list_empty(&chan->pending_list)) {
1575 if (chan->cyclic) {
1576 struct xilinx_dma_tx_descriptor *desc;
1577 struct list_head *entry;
1578
1579 desc = list_last_entry(&chan->done_list,
1580 struct xilinx_dma_tx_descriptor, node);
1581 list_for_each(entry, &desc->segments) {
1582 struct xilinx_axidma_tx_segment *axidma_seg;
1583 struct xilinx_axidma_desc_hw *axidma_hw;
1584 axidma_seg = list_entry(entry,
1585 struct xilinx_axidma_tx_segment,
1586 node);
1587 axidma_hw = &axidma_seg->hw;
1588 axidma_hw->status = 0;
1589 }
1590
1591 list_splice_tail_init(&chan->done_list, &chan->active_list);
1592 chan->desc_pendingcount = 0;
1593 chan->idle = false;
1594 }
1595 return;
1596 }
1597
1598 /*
1599 * Direct (non-SG) mode has no descriptor queue: writing the BTT
1600 * register launches a transfer immediately, so a new transfer must
1601 * not be programmed while one is in flight. Keep such transfers
1602 * serialized. SG mode supports chaining onto a running transfer via
1603 * tail-pointer extension, so it is allowed to proceed when busy.
1604 */
1605 if (!chan->has_sg && !chan->idle)
1606 return;
1607
1608 head_desc = list_first_entry(&chan->pending_list,
1609 struct xilinx_dma_tx_descriptor, node);
1610 tail_desc = list_last_entry(&chan->pending_list,
1611 struct xilinx_dma_tx_descriptor, node);
1612 tail_segment = list_last_entry(&tail_desc->segments,
1613 struct xilinx_axidma_tx_segment, node);
1614
1615 reg = dma_ctrl_read(chan, XILINX_DMA_REG_DMACR);
1616
1617 if (chan->desc_pendingcount <= XILINX_DMA_COALESCE_MAX) {
1618 reg &= ~XILINX_DMA_CR_COALESCE_MAX;
1619 reg |= chan->desc_pendingcount <<
1620 XILINX_DMA_CR_COALESCE_SHIFT;
1621 }
1622
1623 if (chan->has_sg && list_empty(&chan->active_list))
1624 xilinx_write(chan, XILINX_DMA_REG_CURDESC,
1625 head_desc->async_tx.phys);
1626 reg &= ~XILINX_DMA_CR_DELAY_MAX;
1627 reg |= chan->irq_delay << XILINX_DMA_CR_DELAY_SHIFT;
1628 reg |= XILINX_DMA_DMAXR_ALL_IRQ_MASK;
1629 dma_ctrl_write(chan, XILINX_DMA_REG_DMACR, reg);
1630
1631 if (chan->idle)
1632 xilinx_dma_start(chan);
1633
1634 if (chan->err)
1635 return;
1636
1637 /* Start the transfer */
1638 if (chan->has_sg) {
1639 if (chan->cyclic)
1640 xilinx_write(chan, XILINX_DMA_REG_TAILDESC,
1641 chan->cyclic_seg_v->phys);
1642 else
1643 xilinx_write(chan, XILINX_DMA_REG_TAILDESC,
1644 tail_segment->phys);
1645 } else {
1646 struct xilinx_axidma_tx_segment *segment;
1647 struct xilinx_axidma_desc_hw *hw;
1648
1649 segment = list_first_entry(&head_desc->segments,
1650 struct xilinx_axidma_tx_segment,
1651 node);
1652 hw = &segment->hw;
1653
1654 xilinx_write(chan, XILINX_DMA_REG_SRCDSTADDR,
1655 xilinx_prep_dma_addr_t(hw->buf_addr));
1656
1657 /* Start the transfer */
1658 dma_ctrl_write(chan, XILINX_DMA_REG_BTT,
1659 hw->control & chan->xdev->max_buffer_len);
1660 }
1661
1662 list_splice_tail_init(&chan->pending_list, &chan->active_list);
1663 chan->desc_pendingcount = 0;
1664 chan->idle = false;
1665 }
1666
1667 /**
1668 * xilinx_mcdma_start_transfer - Starts MCDMA transfer
1669 * @chan: Driver specific channel struct pointer
1670 */
xilinx_mcdma_start_transfer(struct xilinx_dma_chan * chan)1671 static void xilinx_mcdma_start_transfer(struct xilinx_dma_chan *chan)
1672 {
1673 struct xilinx_dma_tx_descriptor *head_desc, *tail_desc;
1674 struct xilinx_aximcdma_tx_segment *tail_segment;
1675 u32 reg;
1676
1677 /*
1678 * lock has been held by calling functions, so we don't need it
1679 * to take it here again.
1680 */
1681
1682 if (chan->err)
1683 return;
1684
1685 if (list_empty(&chan->pending_list))
1686 return;
1687
1688 head_desc = list_first_entry(&chan->pending_list,
1689 struct xilinx_dma_tx_descriptor, node);
1690 tail_desc = list_last_entry(&chan->pending_list,
1691 struct xilinx_dma_tx_descriptor, node);
1692 tail_segment = list_last_entry(&tail_desc->segments,
1693 struct xilinx_aximcdma_tx_segment, node);
1694
1695 reg = dma_ctrl_read(chan, XILINX_MCDMA_CHAN_CR_OFFSET(chan->tdest));
1696
1697 if (chan->desc_pendingcount <= XILINX_MCDMA_COALESCE_MAX) {
1698 reg &= ~XILINX_MCDMA_COALESCE_MASK;
1699 reg |= chan->desc_pendingcount <<
1700 XILINX_MCDMA_COALESCE_SHIFT;
1701 }
1702
1703 reg |= XILINX_MCDMA_IRQ_ALL_MASK;
1704 dma_ctrl_write(chan, XILINX_MCDMA_CHAN_CR_OFFSET(chan->tdest), reg);
1705
1706 /* Program current descriptor */
1707 if (chan->has_sg && list_empty(&chan->active_list))
1708 xilinx_write(chan, XILINX_MCDMA_CHAN_CDESC_OFFSET(chan->tdest),
1709 head_desc->async_tx.phys);
1710
1711 /* Program channel enable register */
1712 reg = dma_ctrl_read(chan, XILINX_MCDMA_CHEN_OFFSET);
1713 reg |= BIT(chan->tdest);
1714 dma_ctrl_write(chan, XILINX_MCDMA_CHEN_OFFSET, reg);
1715
1716 /* Start the fetch of BDs for the channel */
1717 reg = dma_ctrl_read(chan, XILINX_MCDMA_CHAN_CR_OFFSET(chan->tdest));
1718 reg |= XILINX_MCDMA_CR_RUNSTOP_MASK;
1719 dma_ctrl_write(chan, XILINX_MCDMA_CHAN_CR_OFFSET(chan->tdest), reg);
1720
1721 if (chan->idle)
1722 xilinx_dma_start(chan);
1723
1724 if (chan->err)
1725 return;
1726
1727 /* Start the transfer */
1728 xilinx_write(chan, XILINX_MCDMA_CHAN_TDESC_OFFSET(chan->tdest),
1729 tail_segment->phys);
1730
1731 list_splice_tail_init(&chan->pending_list, &chan->active_list);
1732 chan->desc_pendingcount = 0;
1733 chan->idle = false;
1734 }
1735
1736 /**
1737 * xilinx_dma_issue_pending - Issue pending transactions
1738 * @dchan: DMA channel
1739 */
xilinx_dma_issue_pending(struct dma_chan * dchan)1740 static void xilinx_dma_issue_pending(struct dma_chan *dchan)
1741 {
1742 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
1743 unsigned long flags;
1744
1745 spin_lock_irqsave(&chan->lock, flags);
1746 chan->start_transfer(chan);
1747 spin_unlock_irqrestore(&chan->lock, flags);
1748 }
1749
1750 /**
1751 * xilinx_dma_device_config - Configure the DMA channel
1752 * @dchan: DMA channel
1753 * @config: channel configuration
1754 *
1755 * Return: 0 always.
1756 */
xilinx_dma_device_config(struct dma_chan * dchan,struct dma_slave_config * config)1757 static int xilinx_dma_device_config(struct dma_chan *dchan,
1758 struct dma_slave_config *config)
1759 {
1760 return 0;
1761 }
1762
1763 /**
1764 * xilinx_dma_complete_descriptor - Mark the active descriptor as complete
1765 * @chan : xilinx DMA channel
1766 *
1767 * CONTEXT: hardirq
1768 */
xilinx_dma_complete_descriptor(struct xilinx_dma_chan * chan)1769 static void xilinx_dma_complete_descriptor(struct xilinx_dma_chan *chan)
1770 {
1771 struct xilinx_dma_tx_descriptor *desc, *next;
1772
1773 /* This function was invoked with lock held */
1774 if (list_empty(&chan->active_list))
1775 return;
1776
1777 list_for_each_entry_safe(desc, next, &chan->active_list, node) {
1778 if (chan->xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA) {
1779 struct xilinx_axidma_tx_segment *seg;
1780
1781 seg = list_last_entry(&desc->segments,
1782 struct xilinx_axidma_tx_segment, node);
1783 if (!(seg->hw.status & XILINX_DMA_BD_COMP_MASK) && chan->has_sg)
1784 break;
1785 }
1786 if (chan->has_sg && chan->xdev->dma_config->dmatype !=
1787 XDMA_TYPE_VDMA)
1788 desc->residue = xilinx_dma_get_residue(chan, desc);
1789 else if (chan->xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA &&
1790 chan->direction == DMA_DEV_TO_MEM && !chan->has_sg)
1791 desc->residue = xilinx_dma_get_residue_axidma_direct_s2mm(chan, desc);
1792 else
1793 desc->residue = 0;
1794 desc->err = chan->err;
1795
1796 list_del(&desc->node);
1797 if (!desc->cyclic)
1798 dma_cookie_complete(&desc->async_tx);
1799 list_add_tail(&desc->node, &chan->done_list);
1800 }
1801 }
1802
1803 /**
1804 * xilinx_dma_reset - Reset DMA channel
1805 * @chan: Driver specific DMA channel
1806 *
1807 * Return: '0' on success and failure value on error
1808 */
xilinx_dma_reset(struct xilinx_dma_chan * chan)1809 static int xilinx_dma_reset(struct xilinx_dma_chan *chan)
1810 {
1811 int err;
1812 u32 tmp;
1813
1814 dma_ctrl_set(chan, XILINX_DMA_REG_DMACR, XILINX_DMA_DMACR_RESET);
1815
1816 /* Wait for the hardware to finish reset */
1817 err = xilinx_dma_poll_timeout(chan, XILINX_DMA_REG_DMACR, tmp,
1818 !(tmp & XILINX_DMA_DMACR_RESET),
1819 XILINX_DMA_POLL_DELAY_US,
1820 XILINX_DMA_POLL_TIMEOUT_US);
1821
1822 if (err) {
1823 dev_err(chan->dev, "reset timeout, cr %x, sr %x\n",
1824 dma_ctrl_read(chan, XILINX_DMA_REG_DMACR),
1825 dma_ctrl_read(chan, XILINX_DMA_REG_DMASR));
1826 return -ETIMEDOUT;
1827 }
1828
1829 chan->err = false;
1830 chan->idle = true;
1831 chan->desc_pendingcount = 0;
1832 chan->desc_submitcount = 0;
1833
1834 return err;
1835 }
1836
1837 /**
1838 * xilinx_dma_chan_reset - Reset DMA channel and enable interrupts
1839 * @chan: Driver specific DMA channel
1840 *
1841 * Return: '0' on success and failure value on error
1842 */
xilinx_dma_chan_reset(struct xilinx_dma_chan * chan)1843 static int xilinx_dma_chan_reset(struct xilinx_dma_chan *chan)
1844 {
1845 int err;
1846
1847 /* Reset VDMA */
1848 err = xilinx_dma_reset(chan);
1849 if (err)
1850 return err;
1851
1852 /* Enable interrupts */
1853 dma_ctrl_set(chan, XILINX_DMA_REG_DMACR,
1854 XILINX_DMA_DMAXR_ALL_IRQ_MASK);
1855
1856 return 0;
1857 }
1858
1859 /**
1860 * xilinx_mcdma_irq_handler - MCDMA Interrupt handler
1861 * @irq: IRQ number
1862 * @data: Pointer to the Xilinx MCDMA channel structure
1863 *
1864 * Return: IRQ_HANDLED/IRQ_NONE
1865 */
xilinx_mcdma_irq_handler(int irq,void * data)1866 static irqreturn_t xilinx_mcdma_irq_handler(int irq, void *data)
1867 {
1868 struct xilinx_dma_chan *chan = data;
1869 u32 status, ser_offset, chan_sermask, chan_offset = 0, chan_id;
1870
1871 if (chan->direction == DMA_DEV_TO_MEM)
1872 ser_offset = XILINX_MCDMA_RXINT_SER_OFFSET;
1873 else
1874 ser_offset = XILINX_MCDMA_TXINT_SER_OFFSET;
1875
1876 /* Read the channel id raising the interrupt*/
1877 chan_sermask = dma_ctrl_read(chan, ser_offset);
1878 chan_id = ffs(chan_sermask);
1879
1880 if (!chan_id)
1881 return IRQ_NONE;
1882
1883 if (chan->direction == DMA_DEV_TO_MEM)
1884 chan_offset = chan->xdev->dma_config->max_channels / 2;
1885
1886 chan_offset = chan_offset + (chan_id - 1);
1887 chan = chan->xdev->chan[chan_offset];
1888 /* Read the status and ack the interrupts. */
1889 status = dma_ctrl_read(chan, XILINX_MCDMA_CHAN_SR_OFFSET(chan->tdest));
1890 if (!(status & XILINX_MCDMA_IRQ_ALL_MASK))
1891 return IRQ_NONE;
1892
1893 dma_ctrl_write(chan, XILINX_MCDMA_CHAN_SR_OFFSET(chan->tdest),
1894 status & XILINX_MCDMA_IRQ_ALL_MASK);
1895
1896 if (status & XILINX_MCDMA_IRQ_ERR_MASK) {
1897 dev_err(chan->dev, "Channel %p has errors %x cdr %x tdr %x\n",
1898 chan,
1899 dma_ctrl_read(chan, XILINX_MCDMA_CH_ERR_OFFSET),
1900 dma_ctrl_read(chan, XILINX_MCDMA_CHAN_CDESC_OFFSET
1901 (chan->tdest)),
1902 dma_ctrl_read(chan, XILINX_MCDMA_CHAN_TDESC_OFFSET
1903 (chan->tdest)));
1904 chan->err = true;
1905 }
1906
1907 if (status & XILINX_MCDMA_IRQ_DELAY_MASK) {
1908 /*
1909 * Device takes too long to do the transfer when user requires
1910 * responsiveness.
1911 */
1912 dev_dbg(chan->dev, "Inter-packet latency too long\n");
1913 }
1914
1915 if (status & XILINX_MCDMA_IRQ_IOC_MASK) {
1916 spin_lock(&chan->lock);
1917 xilinx_dma_complete_descriptor(chan);
1918 if (list_empty(&chan->active_list)) {
1919 chan->idle = true;
1920 chan->start_transfer(chan);
1921 }
1922 spin_unlock(&chan->lock);
1923 }
1924
1925 tasklet_hi_schedule(&chan->tasklet);
1926 return IRQ_HANDLED;
1927 }
1928
1929 /**
1930 * xilinx_dma_irq_handler - DMA Interrupt handler
1931 * @irq: IRQ number
1932 * @data: Pointer to the Xilinx DMA channel structure
1933 *
1934 * Return: IRQ_HANDLED/IRQ_NONE
1935 */
xilinx_dma_irq_handler(int irq,void * data)1936 static irqreturn_t xilinx_dma_irq_handler(int irq, void *data)
1937 {
1938 struct xilinx_dma_chan *chan = data;
1939 u32 status;
1940
1941 /* Read the status and ack the interrupts. */
1942 status = dma_ctrl_read(chan, XILINX_DMA_REG_DMASR);
1943 if (!(status & XILINX_DMA_DMAXR_ALL_IRQ_MASK))
1944 return IRQ_NONE;
1945
1946 dma_ctrl_write(chan, XILINX_DMA_REG_DMASR,
1947 status & XILINX_DMA_DMAXR_ALL_IRQ_MASK);
1948
1949 if (status & XILINX_DMA_DMASR_ERR_IRQ) {
1950 /*
1951 * An error occurred. If C_FLUSH_ON_FSYNC is enabled and the
1952 * error is recoverable, ignore it. Otherwise flag the error.
1953 *
1954 * Only recoverable errors can be cleared in the DMASR register,
1955 * make sure not to write to other error bits to 1.
1956 */
1957 u32 errors = status & XILINX_DMA_DMASR_ALL_ERR_MASK;
1958
1959 dma_ctrl_write(chan, XILINX_DMA_REG_DMASR,
1960 errors & XILINX_DMA_DMASR_ERR_RECOVER_MASK);
1961
1962 if (!chan->flush_on_fsync ||
1963 (errors & ~XILINX_DMA_DMASR_ERR_RECOVER_MASK)) {
1964 dev_err(chan->dev,
1965 "Channel %p has errors %x, cdr %x tdr %x\n",
1966 chan, errors,
1967 dma_ctrl_read(chan, XILINX_DMA_REG_CURDESC),
1968 dma_ctrl_read(chan, XILINX_DMA_REG_TAILDESC));
1969 chan->err = true;
1970 }
1971 }
1972
1973 if (status & (XILINX_DMA_DMASR_FRM_CNT_IRQ |
1974 XILINX_DMA_DMASR_DLY_CNT_IRQ)) {
1975 spin_lock(&chan->lock);
1976 xilinx_dma_complete_descriptor(chan);
1977 if (list_empty(&chan->active_list)) {
1978 chan->idle = true;
1979 chan->start_transfer(chan);
1980 }
1981 spin_unlock(&chan->lock);
1982 }
1983
1984 tasklet_schedule(&chan->tasklet);
1985 return IRQ_HANDLED;
1986 }
1987
1988 /**
1989 * append_desc_queue - Queuing descriptor
1990 * @chan: Driver specific dma channel
1991 * @desc: dma transaction descriptor
1992 */
append_desc_queue(struct xilinx_dma_chan * chan,struct xilinx_dma_tx_descriptor * desc)1993 static void append_desc_queue(struct xilinx_dma_chan *chan,
1994 struct xilinx_dma_tx_descriptor *desc)
1995 {
1996 struct xilinx_vdma_tx_segment *tail_segment;
1997 struct xilinx_dma_tx_descriptor *tail_desc;
1998 struct xilinx_axidma_tx_segment *axidma_tail_segment;
1999 struct xilinx_aximcdma_tx_segment *aximcdma_tail_segment;
2000 struct xilinx_cdma_tx_segment *cdma_tail_segment;
2001
2002 if (list_empty(&chan->pending_list))
2003 goto append;
2004
2005 /*
2006 * Add the hardware descriptor to the chain of hardware descriptors
2007 * that already exists in memory.
2008 */
2009 tail_desc = list_last_entry(&chan->pending_list,
2010 struct xilinx_dma_tx_descriptor, node);
2011 if (chan->xdev->dma_config->dmatype == XDMA_TYPE_VDMA) {
2012 tail_segment = list_last_entry(&tail_desc->segments,
2013 struct xilinx_vdma_tx_segment,
2014 node);
2015 tail_segment->hw.next_desc = (u32)desc->async_tx.phys;
2016 } else if (chan->xdev->dma_config->dmatype == XDMA_TYPE_CDMA) {
2017 cdma_tail_segment = list_last_entry(&tail_desc->segments,
2018 struct xilinx_cdma_tx_segment,
2019 node);
2020 cdma_tail_segment->hw.next_desc = (u32)desc->async_tx.phys;
2021 } else if (chan->xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA) {
2022 axidma_tail_segment = list_last_entry(&tail_desc->segments,
2023 struct xilinx_axidma_tx_segment,
2024 node);
2025 axidma_tail_segment->hw.next_desc = (u32)desc->async_tx.phys;
2026 } else {
2027 aximcdma_tail_segment =
2028 list_last_entry(&tail_desc->segments,
2029 struct xilinx_aximcdma_tx_segment,
2030 node);
2031 aximcdma_tail_segment->hw.next_desc = (u32)desc->async_tx.phys;
2032 }
2033
2034 /*
2035 * Add the software descriptor and all children to the list
2036 * of pending transactions
2037 */
2038 append:
2039 list_add_tail(&desc->node, &chan->pending_list);
2040 chan->desc_pendingcount++;
2041
2042 if (chan->has_sg && (chan->xdev->dma_config->dmatype == XDMA_TYPE_VDMA)
2043 && unlikely(chan->desc_pendingcount > chan->num_frms)) {
2044 dev_dbg(chan->dev, "desc pendingcount is too high\n");
2045 chan->desc_pendingcount = chan->num_frms;
2046 }
2047 }
2048
2049 /**
2050 * xilinx_dma_tx_submit - Submit DMA transaction
2051 * @tx: Async transaction descriptor
2052 *
2053 * Return: cookie value on success and failure value on error
2054 */
xilinx_dma_tx_submit(struct dma_async_tx_descriptor * tx)2055 static dma_cookie_t xilinx_dma_tx_submit(struct dma_async_tx_descriptor *tx)
2056 {
2057 struct xilinx_dma_tx_descriptor *desc = to_dma_tx_descriptor(tx);
2058 struct xilinx_dma_chan *chan = to_xilinx_chan(tx->chan);
2059 dma_cookie_t cookie;
2060 unsigned long flags;
2061 int err;
2062
2063 if (chan->cyclic) {
2064 xilinx_dma_free_tx_descriptor(chan, desc);
2065 return -EBUSY;
2066 }
2067
2068 if (chan->err) {
2069 /*
2070 * If reset fails, need to hard reset the system.
2071 * Channel is no longer functional
2072 */
2073 err = xilinx_dma_chan_reset(chan);
2074 if (err < 0)
2075 return err;
2076 }
2077
2078 spin_lock_irqsave(&chan->lock, flags);
2079
2080 cookie = dma_cookie_assign(tx);
2081
2082 /* Put this transaction onto the tail of the pending queue */
2083 append_desc_queue(chan, desc);
2084
2085 if (desc->cyclic)
2086 chan->cyclic = true;
2087
2088 chan->terminating = false;
2089
2090 spin_unlock_irqrestore(&chan->lock, flags);
2091
2092 return cookie;
2093 }
2094
2095 /**
2096 * xilinx_vdma_dma_prep_interleaved - prepare a descriptor for a
2097 * DMA_SLAVE transaction
2098 * @dchan: DMA channel
2099 * @xt: Interleaved template pointer
2100 * @flags: transfer ack flags
2101 *
2102 * Return: Async transaction descriptor on success and NULL on failure
2103 */
2104 static struct dma_async_tx_descriptor *
xilinx_vdma_dma_prep_interleaved(struct dma_chan * dchan,struct dma_interleaved_template * xt,unsigned long flags)2105 xilinx_vdma_dma_prep_interleaved(struct dma_chan *dchan,
2106 struct dma_interleaved_template *xt,
2107 unsigned long flags)
2108 {
2109 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2110 struct xilinx_dma_tx_descriptor *desc;
2111 struct xilinx_vdma_tx_segment *segment;
2112 struct xilinx_vdma_desc_hw *hw;
2113
2114 if (!is_slave_direction(xt->dir))
2115 return NULL;
2116
2117 if (!xt->numf || !xt->sgl[0].size)
2118 return NULL;
2119
2120 if (xt->numf & ~XILINX_DMA_VSIZE_MASK ||
2121 xt->sgl[0].size & ~XILINX_DMA_HSIZE_MASK)
2122 return NULL;
2123
2124 if (xt->frame_size != 1)
2125 return NULL;
2126
2127 /* Allocate a transaction descriptor. */
2128 desc = xilinx_dma_alloc_tx_descriptor(chan);
2129 if (!desc)
2130 return NULL;
2131
2132 dma_async_tx_descriptor_init(&desc->async_tx, &chan->common);
2133 desc->async_tx.tx_submit = xilinx_dma_tx_submit;
2134 async_tx_ack(&desc->async_tx);
2135
2136 /* Allocate the link descriptor from DMA pool */
2137 segment = xilinx_vdma_alloc_tx_segment(chan);
2138 if (!segment)
2139 goto error;
2140
2141 /* Fill in the hardware descriptor */
2142 hw = &segment->hw;
2143 hw->vsize = xt->numf;
2144 hw->hsize = xt->sgl[0].size;
2145 hw->stride = (xt->sgl[0].icg + xt->sgl[0].size) <<
2146 XILINX_DMA_FRMDLY_STRIDE_STRIDE_SHIFT;
2147 hw->stride |= chan->config.frm_dly <<
2148 XILINX_DMA_FRMDLY_STRIDE_FRMDLY_SHIFT;
2149
2150 if (xt->dir != DMA_MEM_TO_DEV) {
2151 if (chan->ext_addr) {
2152 hw->buf_addr = lower_32_bits(xt->dst_start);
2153 hw->buf_addr_msb = upper_32_bits(xt->dst_start);
2154 } else {
2155 hw->buf_addr = xt->dst_start;
2156 }
2157 } else {
2158 if (chan->ext_addr) {
2159 hw->buf_addr = lower_32_bits(xt->src_start);
2160 hw->buf_addr_msb = upper_32_bits(xt->src_start);
2161 } else {
2162 hw->buf_addr = xt->src_start;
2163 }
2164 }
2165
2166 /* Insert the segment into the descriptor segments list. */
2167 list_add_tail(&segment->node, &desc->segments);
2168
2169 /* Link the last hardware descriptor with the first. */
2170 segment = list_first_entry(&desc->segments,
2171 struct xilinx_vdma_tx_segment, node);
2172 desc->async_tx.phys = segment->phys;
2173
2174 return &desc->async_tx;
2175
2176 error:
2177 xilinx_dma_free_tx_descriptor(chan, desc);
2178 return NULL;
2179 }
2180
2181 /**
2182 * xilinx_cdma_prep_memcpy - prepare descriptors for a memcpy transaction
2183 * @dchan: DMA channel
2184 * @dma_dst: destination address
2185 * @dma_src: source address
2186 * @len: transfer length
2187 * @flags: transfer ack flags
2188 *
2189 * Return: Async transaction descriptor on success and NULL on failure
2190 */
2191 static struct dma_async_tx_descriptor *
xilinx_cdma_prep_memcpy(struct dma_chan * dchan,dma_addr_t dma_dst,dma_addr_t dma_src,size_t len,unsigned long flags)2192 xilinx_cdma_prep_memcpy(struct dma_chan *dchan, dma_addr_t dma_dst,
2193 dma_addr_t dma_src, size_t len, unsigned long flags)
2194 {
2195 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2196 struct xilinx_dma_tx_descriptor *desc;
2197 struct xilinx_cdma_tx_segment *segment;
2198 struct xilinx_cdma_desc_hw *hw;
2199
2200 if (!len || len > chan->xdev->max_buffer_len)
2201 return NULL;
2202
2203 desc = xilinx_dma_alloc_tx_descriptor(chan);
2204 if (!desc)
2205 return NULL;
2206
2207 dma_async_tx_descriptor_init(&desc->async_tx, &chan->common);
2208 desc->async_tx.tx_submit = xilinx_dma_tx_submit;
2209
2210 /* Allocate the link descriptor from DMA pool */
2211 segment = xilinx_cdma_alloc_tx_segment(chan);
2212 if (!segment)
2213 goto error;
2214
2215 hw = &segment->hw;
2216 hw->control = len;
2217 hw->src_addr = dma_src;
2218 hw->dest_addr = dma_dst;
2219 if (chan->ext_addr) {
2220 hw->src_addr_msb = upper_32_bits(dma_src);
2221 hw->dest_addr_msb = upper_32_bits(dma_dst);
2222 }
2223
2224 /* Insert the segment into the descriptor segments list. */
2225 list_add_tail(&segment->node, &desc->segments);
2226
2227 desc->async_tx.phys = segment->phys;
2228 hw->next_desc = segment->phys;
2229
2230 return &desc->async_tx;
2231
2232 error:
2233 xilinx_dma_free_tx_descriptor(chan, desc);
2234 return NULL;
2235 }
2236
2237 /**
2238 * xilinx_dma_prep_peripheral_dma_vec - prepare descriptors for a DMA_SLAVE
2239 * transaction from DMA vectors
2240 * @dchan: DMA channel
2241 * @vecs: Array of DMA vectors that should be transferred
2242 * @nb: number of entries in @vecs
2243 * @direction: DMA direction
2244 * @flags: transfer ack flags
2245 *
2246 * Return: Async transaction descriptor on success and NULL on failure
2247 */
xilinx_dma_prep_peripheral_dma_vec(struct dma_chan * dchan,const struct dma_vec * vecs,size_t nb,enum dma_transfer_direction direction,unsigned long flags)2248 static struct dma_async_tx_descriptor *xilinx_dma_prep_peripheral_dma_vec(
2249 struct dma_chan *dchan, const struct dma_vec *vecs, size_t nb,
2250 enum dma_transfer_direction direction, unsigned long flags)
2251 {
2252 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2253 struct xilinx_dma_tx_descriptor *desc;
2254 struct xilinx_axidma_tx_segment *segment, *head, *prev = NULL;
2255 size_t copy;
2256 size_t sg_used;
2257 unsigned int i;
2258
2259 if (!is_slave_direction(direction) || direction != chan->direction)
2260 return NULL;
2261
2262 desc = xilinx_dma_alloc_tx_descriptor(chan);
2263 if (!desc)
2264 return NULL;
2265
2266 dma_async_tx_descriptor_init(&desc->async_tx, &chan->common);
2267 desc->async_tx.tx_submit = xilinx_dma_tx_submit;
2268
2269 /* Build transactions using information from DMA vectors */
2270 for (i = 0; i < nb; i++) {
2271 sg_used = 0;
2272
2273 /* Loop until the entire dma_vec entry is used */
2274 while (sg_used < vecs[i].len) {
2275 struct xilinx_axidma_desc_hw *hw;
2276
2277 /* Get a free segment */
2278 segment = xilinx_axidma_alloc_tx_segment(chan);
2279 if (!segment)
2280 goto error;
2281
2282 /*
2283 * Calculate the maximum number of bytes to transfer,
2284 * making sure it is less than the hw limit
2285 */
2286 copy = xilinx_dma_calc_copysize(chan, vecs[i].len,
2287 sg_used);
2288 hw = &segment->hw;
2289
2290 /* Fill in the descriptor */
2291 xilinx_axidma_buf(chan, hw, vecs[i].addr, sg_used, 0);
2292 hw->control = copy;
2293
2294 if (prev)
2295 prev->hw.next_desc = segment->phys;
2296
2297 prev = segment;
2298 sg_used += copy;
2299
2300 /*
2301 * Insert the segment into the descriptor segments
2302 * list.
2303 */
2304 list_add_tail(&segment->node, &desc->segments);
2305 }
2306 }
2307
2308 head = list_first_entry(&desc->segments, struct xilinx_axidma_tx_segment, node);
2309 desc->async_tx.phys = head->phys;
2310
2311 /* For the last DMA_MEM_TO_DEV transfer, set EOP */
2312 if (chan->direction == DMA_MEM_TO_DEV) {
2313 segment->hw.control |= XILINX_DMA_BD_SOP;
2314 segment = list_last_entry(&desc->segments,
2315 struct xilinx_axidma_tx_segment,
2316 node);
2317 segment->hw.control |= XILINX_DMA_BD_EOP;
2318 }
2319
2320 if (chan->xdev->has_axistream_connected)
2321 desc->async_tx.metadata_ops = &xilinx_dma_metadata_ops;
2322
2323 return &desc->async_tx;
2324
2325 error:
2326 xilinx_dma_free_tx_descriptor(chan, desc);
2327 return NULL;
2328 }
2329
2330 /**
2331 * xilinx_dma_prep_slave_sg - prepare descriptors for a DMA_SLAVE transaction
2332 * @dchan: DMA channel
2333 * @sgl: scatterlist to transfer to/from
2334 * @sg_len: number of entries in @scatterlist
2335 * @direction: DMA direction
2336 * @flags: transfer ack flags
2337 * @context: APP words of the descriptor
2338 *
2339 * Return: Async transaction descriptor on success and NULL on failure
2340 */
xilinx_dma_prep_slave_sg(struct dma_chan * dchan,struct scatterlist * sgl,unsigned int sg_len,enum dma_transfer_direction direction,unsigned long flags,void * context)2341 static struct dma_async_tx_descriptor *xilinx_dma_prep_slave_sg(
2342 struct dma_chan *dchan, struct scatterlist *sgl, unsigned int sg_len,
2343 enum dma_transfer_direction direction, unsigned long flags,
2344 void *context)
2345 {
2346 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2347 struct xilinx_dma_tx_descriptor *desc;
2348 struct xilinx_axidma_tx_segment *segment = NULL;
2349 u32 *app_w = (u32 *)context;
2350 struct scatterlist *sg;
2351 size_t copy;
2352 size_t sg_used;
2353 unsigned int i;
2354
2355 if (!is_slave_direction(direction))
2356 return NULL;
2357
2358 /* Allocate a transaction descriptor. */
2359 desc = xilinx_dma_alloc_tx_descriptor(chan);
2360 if (!desc)
2361 return NULL;
2362
2363 dma_async_tx_descriptor_init(&desc->async_tx, &chan->common);
2364 desc->async_tx.tx_submit = xilinx_dma_tx_submit;
2365
2366 /* Build transactions using information in the scatter gather list */
2367 for_each_sg(sgl, sg, sg_len, i) {
2368 sg_used = 0;
2369
2370 /* Loop until the entire scatterlist entry is used */
2371 while (sg_used < sg_dma_len(sg)) {
2372 struct xilinx_axidma_desc_hw *hw;
2373
2374 /* Get a free segment */
2375 segment = xilinx_axidma_alloc_tx_segment(chan);
2376 if (!segment)
2377 goto error;
2378
2379 /*
2380 * Calculate the maximum number of bytes to transfer,
2381 * making sure it is less than the hw limit
2382 */
2383 copy = xilinx_dma_calc_copysize(chan, sg_dma_len(sg),
2384 sg_used);
2385 hw = &segment->hw;
2386
2387 /* Fill in the descriptor */
2388 xilinx_axidma_buf(chan, hw, sg_dma_address(sg),
2389 sg_used, 0);
2390
2391 hw->control = copy;
2392
2393 if (chan->direction == DMA_MEM_TO_DEV) {
2394 if (app_w)
2395 memcpy(hw->app, app_w, sizeof(u32) *
2396 XILINX_DMA_NUM_APP_WORDS);
2397 }
2398
2399 sg_used += copy;
2400
2401 /*
2402 * Insert the segment into the descriptor segments
2403 * list.
2404 */
2405 list_add_tail(&segment->node, &desc->segments);
2406 }
2407 }
2408
2409 segment = list_first_entry(&desc->segments,
2410 struct xilinx_axidma_tx_segment, node);
2411 desc->async_tx.phys = segment->phys;
2412
2413 /* For the last DMA_MEM_TO_DEV transfer, set EOP */
2414 if (chan->direction == DMA_MEM_TO_DEV) {
2415 segment->hw.control |= XILINX_DMA_BD_SOP;
2416 segment = list_last_entry(&desc->segments,
2417 struct xilinx_axidma_tx_segment,
2418 node);
2419 segment->hw.control |= XILINX_DMA_BD_EOP;
2420 }
2421
2422 if (chan->xdev->has_axistream_connected)
2423 desc->async_tx.metadata_ops = &xilinx_dma_metadata_ops;
2424
2425 return &desc->async_tx;
2426
2427 error:
2428 xilinx_dma_free_tx_descriptor(chan, desc);
2429 return NULL;
2430 }
2431
2432 /**
2433 * xilinx_dma_prep_dma_cyclic - prepare descriptors for a DMA_SLAVE transaction
2434 * @dchan: DMA channel
2435 * @buf_addr: Physical address of the buffer
2436 * @buf_len: Total length of the cyclic buffers
2437 * @period_len: length of individual cyclic buffer
2438 * @direction: DMA direction
2439 * @flags: transfer ack flags
2440 *
2441 * Return: Async transaction descriptor on success and NULL on failure
2442 */
xilinx_dma_prep_dma_cyclic(struct dma_chan * dchan,dma_addr_t buf_addr,size_t buf_len,size_t period_len,enum dma_transfer_direction direction,unsigned long flags)2443 static struct dma_async_tx_descriptor *xilinx_dma_prep_dma_cyclic(
2444 struct dma_chan *dchan, dma_addr_t buf_addr, size_t buf_len,
2445 size_t period_len, enum dma_transfer_direction direction,
2446 unsigned long flags)
2447 {
2448 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2449 struct xilinx_dma_tx_descriptor *desc;
2450 struct xilinx_axidma_tx_segment *segment, *head_segment, *prev = NULL;
2451 size_t copy, sg_used;
2452 unsigned int num_periods;
2453 int i;
2454 u32 reg;
2455
2456 if (!period_len)
2457 return NULL;
2458
2459 num_periods = buf_len / period_len;
2460
2461 if (!num_periods)
2462 return NULL;
2463
2464 if (!is_slave_direction(direction))
2465 return NULL;
2466
2467 /* Allocate a transaction descriptor. */
2468 desc = xilinx_dma_alloc_tx_descriptor(chan);
2469 if (!desc)
2470 return NULL;
2471
2472 chan->direction = direction;
2473 dma_async_tx_descriptor_init(&desc->async_tx, &chan->common);
2474 desc->async_tx.tx_submit = xilinx_dma_tx_submit;
2475
2476 for (i = 0; i < num_periods; ++i) {
2477 sg_used = 0;
2478
2479 while (sg_used < period_len) {
2480 struct xilinx_axidma_desc_hw *hw;
2481
2482 /* Get a free segment */
2483 segment = xilinx_axidma_alloc_tx_segment(chan);
2484 if (!segment)
2485 goto error;
2486
2487 /*
2488 * Calculate the maximum number of bytes to transfer,
2489 * making sure it is less than the hw limit
2490 */
2491 copy = xilinx_dma_calc_copysize(chan, period_len,
2492 sg_used);
2493 hw = &segment->hw;
2494 xilinx_axidma_buf(chan, hw, buf_addr, sg_used,
2495 period_len * i);
2496 hw->control = copy;
2497
2498 if (prev)
2499 prev->hw.next_desc = segment->phys;
2500
2501 prev = segment;
2502 sg_used += copy;
2503
2504 /*
2505 * Insert the segment into the descriptor segments
2506 * list.
2507 */
2508 list_add_tail(&segment->node, &desc->segments);
2509 }
2510 }
2511
2512 head_segment = list_first_entry(&desc->segments,
2513 struct xilinx_axidma_tx_segment, node);
2514 desc->async_tx.phys = head_segment->phys;
2515
2516 desc->cyclic = true;
2517 reg = dma_ctrl_read(chan, XILINX_DMA_REG_DMACR);
2518 reg |= XILINX_DMA_CR_CYCLIC_BD_EN_MASK;
2519 dma_ctrl_write(chan, XILINX_DMA_REG_DMACR, reg);
2520
2521 segment = list_last_entry(&desc->segments,
2522 struct xilinx_axidma_tx_segment,
2523 node);
2524 segment->hw.next_desc = (u32) head_segment->phys;
2525
2526 /* For the last DMA_MEM_TO_DEV transfer, set EOP */
2527 if (direction == DMA_MEM_TO_DEV) {
2528 head_segment->hw.control |= XILINX_DMA_BD_SOP;
2529 segment->hw.control |= XILINX_DMA_BD_EOP;
2530 }
2531
2532 return &desc->async_tx;
2533
2534 error:
2535 xilinx_dma_free_tx_descriptor(chan, desc);
2536 return NULL;
2537 }
2538
2539 /**
2540 * xilinx_mcdma_prep_slave_sg - prepare descriptors for a DMA_SLAVE transaction
2541 * @dchan: DMA channel
2542 * @sgl: scatterlist to transfer to/from
2543 * @sg_len: number of entries in @scatterlist
2544 * @direction: DMA direction
2545 * @flags: transfer ack flags
2546 * @context: APP words of the descriptor
2547 *
2548 * Return: Async transaction descriptor on success and NULL on failure
2549 */
2550 static struct dma_async_tx_descriptor *
xilinx_mcdma_prep_slave_sg(struct dma_chan * dchan,struct scatterlist * sgl,unsigned int sg_len,enum dma_transfer_direction direction,unsigned long flags,void * context)2551 xilinx_mcdma_prep_slave_sg(struct dma_chan *dchan, struct scatterlist *sgl,
2552 unsigned int sg_len,
2553 enum dma_transfer_direction direction,
2554 unsigned long flags, void *context)
2555 {
2556 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2557 struct xilinx_dma_tx_descriptor *desc;
2558 struct xilinx_aximcdma_tx_segment *segment = NULL;
2559 u32 *app_w = (u32 *)context;
2560 struct scatterlist *sg;
2561 size_t copy;
2562 size_t sg_used;
2563 unsigned int i;
2564
2565 if (!is_slave_direction(direction))
2566 return NULL;
2567
2568 /* Allocate a transaction descriptor. */
2569 desc = xilinx_dma_alloc_tx_descriptor(chan);
2570 if (!desc)
2571 return NULL;
2572
2573 dma_async_tx_descriptor_init(&desc->async_tx, &chan->common);
2574 desc->async_tx.tx_submit = xilinx_dma_tx_submit;
2575
2576 /* Build transactions using information in the scatter gather list */
2577 for_each_sg(sgl, sg, sg_len, i) {
2578 sg_used = 0;
2579
2580 /* Loop until the entire scatterlist entry is used */
2581 while (sg_used < sg_dma_len(sg)) {
2582 struct xilinx_aximcdma_desc_hw *hw;
2583
2584 /* Get a free segment */
2585 segment = xilinx_aximcdma_alloc_tx_segment(chan);
2586 if (!segment)
2587 goto error;
2588
2589 /*
2590 * Calculate the maximum number of bytes to transfer,
2591 * making sure it is less than the hw limit
2592 */
2593 copy = min_t(size_t, sg_dma_len(sg) - sg_used,
2594 chan->xdev->max_buffer_len);
2595 hw = &segment->hw;
2596
2597 /* Fill in the descriptor */
2598 xilinx_aximcdma_buf(chan, hw, sg_dma_address(sg),
2599 sg_used);
2600 hw->control = copy;
2601
2602 if (chan->direction == DMA_MEM_TO_DEV && app_w) {
2603 memcpy(hw->app, app_w, sizeof(u32) *
2604 XILINX_DMA_NUM_APP_WORDS);
2605 }
2606
2607 sg_used += copy;
2608 /*
2609 * Insert the segment into the descriptor segments
2610 * list.
2611 */
2612 list_add_tail(&segment->node, &desc->segments);
2613 }
2614 }
2615
2616 segment = list_first_entry(&desc->segments,
2617 struct xilinx_aximcdma_tx_segment, node);
2618 desc->async_tx.phys = segment->phys;
2619
2620 /* For the last DMA_MEM_TO_DEV transfer, set EOP */
2621 if (chan->direction == DMA_MEM_TO_DEV) {
2622 segment->hw.control |= XILINX_MCDMA_BD_SOP;
2623 segment = list_last_entry(&desc->segments,
2624 struct xilinx_aximcdma_tx_segment,
2625 node);
2626 segment->hw.control |= XILINX_MCDMA_BD_EOP;
2627 }
2628
2629 return &desc->async_tx;
2630
2631 error:
2632 xilinx_dma_free_tx_descriptor(chan, desc);
2633
2634 return NULL;
2635 }
2636
2637 /**
2638 * xilinx_dma_terminate_all - Halt the channel and free descriptors
2639 * @dchan: Driver specific DMA Channel pointer
2640 *
2641 * Return: '0' always.
2642 */
xilinx_dma_terminate_all(struct dma_chan * dchan)2643 static int xilinx_dma_terminate_all(struct dma_chan *dchan)
2644 {
2645 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2646 u32 reg;
2647 int err;
2648
2649 if (!chan->cyclic) {
2650 err = chan->stop_transfer(chan);
2651 if (err) {
2652 dev_err(chan->dev, "Cannot stop channel %p: %x\n",
2653 chan, dma_ctrl_read(chan,
2654 XILINX_DMA_REG_DMASR));
2655 chan->err = true;
2656 }
2657 }
2658
2659 xilinx_dma_chan_reset(chan);
2660 /* Remove and free all of the descriptors in the lists */
2661 chan->terminating = true;
2662 xilinx_dma_free_descriptors(chan);
2663 chan->idle = true;
2664
2665 if (chan->cyclic) {
2666 reg = dma_ctrl_read(chan, XILINX_DMA_REG_DMACR);
2667 reg &= ~XILINX_DMA_CR_CYCLIC_BD_EN_MASK;
2668 dma_ctrl_write(chan, XILINX_DMA_REG_DMACR, reg);
2669 chan->cyclic = false;
2670 }
2671
2672 if ((chan->xdev->dma_config->dmatype == XDMA_TYPE_CDMA) && chan->has_sg)
2673 dma_ctrl_clr(chan, XILINX_DMA_REG_DMACR,
2674 XILINX_CDMA_CR_SGMODE);
2675
2676 return 0;
2677 }
2678
xilinx_dma_synchronize(struct dma_chan * dchan)2679 static void xilinx_dma_synchronize(struct dma_chan *dchan)
2680 {
2681 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2682
2683 tasklet_kill(&chan->tasklet);
2684 }
2685
2686 /**
2687 * xilinx_vdma_channel_set_config - Configure VDMA channel
2688 * Run-time configuration for Axi VDMA, supports:
2689 * . halt the channel
2690 * . configure interrupt coalescing and inter-packet delay threshold
2691 * . start/stop parking
2692 * . enable genlock
2693 *
2694 * @dchan: DMA channel
2695 * @cfg: VDMA device configuration pointer
2696 *
2697 * Return: '0' on success and failure value on error
2698 */
xilinx_vdma_channel_set_config(struct dma_chan * dchan,struct xilinx_vdma_config * cfg)2699 int xilinx_vdma_channel_set_config(struct dma_chan *dchan,
2700 struct xilinx_vdma_config *cfg)
2701 {
2702 struct xilinx_dma_chan *chan = to_xilinx_chan(dchan);
2703 u32 dmacr;
2704
2705 if (cfg->reset)
2706 return xilinx_dma_chan_reset(chan);
2707
2708 dmacr = dma_ctrl_read(chan, XILINX_DMA_REG_DMACR);
2709
2710 chan->config.frm_dly = cfg->frm_dly;
2711 chan->config.park = cfg->park;
2712
2713 /* genlock settings */
2714 chan->config.gen_lock = cfg->gen_lock;
2715 chan->config.master = cfg->master;
2716
2717 dmacr &= ~XILINX_DMA_DMACR_GENLOCK_EN;
2718 if (cfg->gen_lock && chan->genlock) {
2719 dmacr |= XILINX_DMA_DMACR_GENLOCK_EN;
2720 dmacr &= ~XILINX_DMA_DMACR_MASTER_MASK;
2721 dmacr |= cfg->master << XILINX_DMA_DMACR_MASTER_SHIFT;
2722 }
2723
2724 chan->config.frm_cnt_en = cfg->frm_cnt_en;
2725 chan->config.vflip_en = cfg->vflip_en;
2726
2727 if (cfg->park)
2728 chan->config.park_frm = cfg->park_frm;
2729 else
2730 chan->config.park_frm = -1;
2731
2732 chan->config.coalesc = cfg->coalesc;
2733 chan->config.delay = cfg->delay;
2734
2735 if (cfg->coalesc <= XILINX_DMA_DMACR_FRAME_COUNT_MAX) {
2736 dmacr &= ~XILINX_DMA_DMACR_FRAME_COUNT_MASK;
2737 dmacr |= cfg->coalesc << XILINX_DMA_DMACR_FRAME_COUNT_SHIFT;
2738 chan->config.coalesc = cfg->coalesc;
2739 }
2740
2741 if (cfg->delay <= XILINX_DMA_DMACR_DELAY_MAX) {
2742 dmacr &= ~XILINX_DMA_DMACR_DELAY_MASK;
2743 dmacr |= cfg->delay << XILINX_DMA_DMACR_DELAY_SHIFT;
2744 chan->config.delay = cfg->delay;
2745 }
2746
2747 /* FSync Source selection */
2748 dmacr &= ~XILINX_DMA_DMACR_FSYNCSRC_MASK;
2749 dmacr |= cfg->ext_fsync << XILINX_DMA_DMACR_FSYNCSRC_SHIFT;
2750
2751 dma_ctrl_write(chan, XILINX_DMA_REG_DMACR, dmacr);
2752
2753 return 0;
2754 }
2755 EXPORT_SYMBOL(xilinx_vdma_channel_set_config);
2756
2757 /* -----------------------------------------------------------------------------
2758 * Probe and remove
2759 */
2760
2761 /**
2762 * xilinx_dma_chan_remove - Per Channel remove function
2763 * @chan: Driver specific DMA channel
2764 */
xilinx_dma_chan_remove(struct xilinx_dma_chan * chan)2765 static void xilinx_dma_chan_remove(struct xilinx_dma_chan *chan)
2766 {
2767 /* Disable all interrupts */
2768 dma_ctrl_clr(chan, XILINX_DMA_REG_DMACR,
2769 XILINX_DMA_DMAXR_ALL_IRQ_MASK);
2770
2771 if (chan->irq > 0)
2772 free_irq(chan->irq, chan);
2773
2774 tasklet_kill(&chan->tasklet);
2775
2776 list_del(&chan->common.device_node);
2777 }
2778
axidma_clk_init(struct platform_device * pdev,struct clk ** axi_clk,struct clk ** tx_clk,struct clk ** rx_clk,struct clk ** sg_clk,struct clk ** tmp_clk)2779 static int axidma_clk_init(struct platform_device *pdev, struct clk **axi_clk,
2780 struct clk **tx_clk, struct clk **rx_clk,
2781 struct clk **sg_clk, struct clk **tmp_clk)
2782 {
2783 int err;
2784
2785 *tmp_clk = NULL;
2786
2787 *axi_clk = devm_clk_get(&pdev->dev, "s_axi_lite_aclk");
2788 if (IS_ERR(*axi_clk))
2789 return dev_err_probe(&pdev->dev, PTR_ERR(*axi_clk), "failed to get axi_aclk\n");
2790
2791 *tx_clk = devm_clk_get(&pdev->dev, "m_axi_mm2s_aclk");
2792 if (IS_ERR(*tx_clk))
2793 *tx_clk = NULL;
2794
2795 *rx_clk = devm_clk_get(&pdev->dev, "m_axi_s2mm_aclk");
2796 if (IS_ERR(*rx_clk))
2797 *rx_clk = NULL;
2798
2799 *sg_clk = devm_clk_get(&pdev->dev, "m_axi_sg_aclk");
2800 if (IS_ERR(*sg_clk))
2801 *sg_clk = NULL;
2802
2803 err = clk_prepare_enable(*axi_clk);
2804 if (err) {
2805 dev_err(&pdev->dev, "failed to enable axi_clk (%d)\n", err);
2806 return err;
2807 }
2808
2809 err = clk_prepare_enable(*tx_clk);
2810 if (err) {
2811 dev_err(&pdev->dev, "failed to enable tx_clk (%d)\n", err);
2812 goto err_disable_axiclk;
2813 }
2814
2815 err = clk_prepare_enable(*rx_clk);
2816 if (err) {
2817 dev_err(&pdev->dev, "failed to enable rx_clk (%d)\n", err);
2818 goto err_disable_txclk;
2819 }
2820
2821 err = clk_prepare_enable(*sg_clk);
2822 if (err) {
2823 dev_err(&pdev->dev, "failed to enable sg_clk (%d)\n", err);
2824 goto err_disable_rxclk;
2825 }
2826
2827 return 0;
2828
2829 err_disable_rxclk:
2830 clk_disable_unprepare(*rx_clk);
2831 err_disable_txclk:
2832 clk_disable_unprepare(*tx_clk);
2833 err_disable_axiclk:
2834 clk_disable_unprepare(*axi_clk);
2835
2836 return err;
2837 }
2838
axicdma_clk_init(struct platform_device * pdev,struct clk ** axi_clk,struct clk ** dev_clk,struct clk ** tmp_clk,struct clk ** tmp1_clk,struct clk ** tmp2_clk)2839 static int axicdma_clk_init(struct platform_device *pdev, struct clk **axi_clk,
2840 struct clk **dev_clk, struct clk **tmp_clk,
2841 struct clk **tmp1_clk, struct clk **tmp2_clk)
2842 {
2843 int err;
2844
2845 *tmp_clk = NULL;
2846 *tmp1_clk = NULL;
2847 *tmp2_clk = NULL;
2848
2849 *axi_clk = devm_clk_get(&pdev->dev, "s_axi_lite_aclk");
2850 if (IS_ERR(*axi_clk))
2851 return dev_err_probe(&pdev->dev, PTR_ERR(*axi_clk), "failed to get axi_aclk\n");
2852
2853 *dev_clk = devm_clk_get(&pdev->dev, "m_axi_aclk");
2854 if (IS_ERR(*dev_clk))
2855 return dev_err_probe(&pdev->dev, PTR_ERR(*dev_clk), "failed to get dev_clk\n");
2856
2857 err = clk_prepare_enable(*axi_clk);
2858 if (err) {
2859 dev_err(&pdev->dev, "failed to enable axi_clk (%d)\n", err);
2860 return err;
2861 }
2862
2863 err = clk_prepare_enable(*dev_clk);
2864 if (err) {
2865 dev_err(&pdev->dev, "failed to enable dev_clk (%d)\n", err);
2866 goto err_disable_axiclk;
2867 }
2868
2869 return 0;
2870
2871 err_disable_axiclk:
2872 clk_disable_unprepare(*axi_clk);
2873
2874 return err;
2875 }
2876
axivdma_clk_init(struct platform_device * pdev,struct clk ** axi_clk,struct clk ** tx_clk,struct clk ** txs_clk,struct clk ** rx_clk,struct clk ** rxs_clk)2877 static int axivdma_clk_init(struct platform_device *pdev, struct clk **axi_clk,
2878 struct clk **tx_clk, struct clk **txs_clk,
2879 struct clk **rx_clk, struct clk **rxs_clk)
2880 {
2881 int err;
2882
2883 *axi_clk = devm_clk_get(&pdev->dev, "s_axi_lite_aclk");
2884 if (IS_ERR(*axi_clk))
2885 return dev_err_probe(&pdev->dev, PTR_ERR(*axi_clk), "failed to get axi_aclk\n");
2886
2887 *tx_clk = devm_clk_get(&pdev->dev, "m_axi_mm2s_aclk");
2888 if (IS_ERR(*tx_clk))
2889 *tx_clk = NULL;
2890
2891 *txs_clk = devm_clk_get(&pdev->dev, "m_axis_mm2s_aclk");
2892 if (IS_ERR(*txs_clk))
2893 *txs_clk = NULL;
2894
2895 *rx_clk = devm_clk_get(&pdev->dev, "m_axi_s2mm_aclk");
2896 if (IS_ERR(*rx_clk))
2897 *rx_clk = NULL;
2898
2899 *rxs_clk = devm_clk_get(&pdev->dev, "s_axis_s2mm_aclk");
2900 if (IS_ERR(*rxs_clk))
2901 *rxs_clk = NULL;
2902
2903 err = clk_prepare_enable(*axi_clk);
2904 if (err) {
2905 dev_err(&pdev->dev, "failed to enable axi_clk (%d)\n",
2906 err);
2907 return err;
2908 }
2909
2910 err = clk_prepare_enable(*tx_clk);
2911 if (err) {
2912 dev_err(&pdev->dev, "failed to enable tx_clk (%d)\n", err);
2913 goto err_disable_axiclk;
2914 }
2915
2916 err = clk_prepare_enable(*txs_clk);
2917 if (err) {
2918 dev_err(&pdev->dev, "failed to enable txs_clk (%d)\n", err);
2919 goto err_disable_txclk;
2920 }
2921
2922 err = clk_prepare_enable(*rx_clk);
2923 if (err) {
2924 dev_err(&pdev->dev, "failed to enable rx_clk (%d)\n", err);
2925 goto err_disable_txsclk;
2926 }
2927
2928 err = clk_prepare_enable(*rxs_clk);
2929 if (err) {
2930 dev_err(&pdev->dev, "failed to enable rxs_clk (%d)\n", err);
2931 goto err_disable_rxclk;
2932 }
2933
2934 return 0;
2935
2936 err_disable_rxclk:
2937 clk_disable_unprepare(*rx_clk);
2938 err_disable_txsclk:
2939 clk_disable_unprepare(*txs_clk);
2940 err_disable_txclk:
2941 clk_disable_unprepare(*tx_clk);
2942 err_disable_axiclk:
2943 clk_disable_unprepare(*axi_clk);
2944
2945 return err;
2946 }
2947
xdma_disable_allclks(struct xilinx_dma_device * xdev)2948 static void xdma_disable_allclks(struct xilinx_dma_device *xdev)
2949 {
2950 clk_disable_unprepare(xdev->rxs_clk);
2951 clk_disable_unprepare(xdev->rx_clk);
2952 clk_disable_unprepare(xdev->txs_clk);
2953 clk_disable_unprepare(xdev->tx_clk);
2954 clk_disable_unprepare(xdev->axi_clk);
2955 }
2956
2957 /**
2958 * xilinx_dma_chan_probe - Per Channel Probing
2959 * It get channel features from the device tree entry and
2960 * initialize special channel handling routines
2961 *
2962 * @xdev: Driver specific device structure
2963 * @node: Device node
2964 *
2965 * Return: '0' on success and failure value on error
2966 */
xilinx_dma_chan_probe(struct xilinx_dma_device * xdev,struct device_node * node)2967 static int xilinx_dma_chan_probe(struct xilinx_dma_device *xdev,
2968 struct device_node *node)
2969 {
2970 struct xilinx_dma_chan *chan;
2971 bool has_dre = false;
2972 u32 value, width;
2973 int err;
2974
2975 /* Allocate and initialize the channel structure */
2976 chan = devm_kzalloc(xdev->dev, sizeof(*chan), GFP_KERNEL);
2977 if (!chan)
2978 return -ENOMEM;
2979
2980 chan->dev = xdev->dev;
2981 chan->xdev = xdev;
2982 chan->desc_pendingcount = 0x0;
2983 chan->ext_addr = xdev->ext_addr;
2984 /* This variable ensures that descriptors are not
2985 * Submitted when dma engine is in progress. This variable is
2986 * Added to avoid polling for a bit in the status register to
2987 * Know dma state in the driver hot path.
2988 */
2989 chan->idle = true;
2990
2991 spin_lock_init(&chan->lock);
2992 INIT_LIST_HEAD(&chan->pending_list);
2993 INIT_LIST_HEAD(&chan->done_list);
2994 INIT_LIST_HEAD(&chan->active_list);
2995 INIT_LIST_HEAD(&chan->free_seg_list);
2996
2997 /* Retrieve the channel properties from the device tree */
2998 has_dre = of_property_read_bool(node, "xlnx,include-dre");
2999
3000 of_property_read_u8(node, "xlnx,irq-delay", &chan->irq_delay);
3001
3002 chan->genlock = of_property_read_bool(node, "xlnx,genlock-mode");
3003
3004 err = of_property_read_u32(node, "xlnx,datawidth", &value);
3005 if (err) {
3006 dev_err(xdev->dev, "missing xlnx,datawidth property\n");
3007 return err;
3008 }
3009 width = value >> 3; /* Convert bits to bytes */
3010
3011 /* If data width is greater than 8 bytes, DRE is not in hw */
3012 if (width > 8)
3013 has_dre = false;
3014
3015 if (!has_dre)
3016 xdev->common.copy_align = (enum dmaengine_alignment)fls(width - 1);
3017
3018 if (of_device_is_compatible(node, "xlnx,axi-vdma-mm2s-channel") ||
3019 of_device_is_compatible(node, "xlnx,axi-dma-mm2s-channel") ||
3020 of_device_is_compatible(node, "xlnx,axi-cdma-channel")) {
3021 chan->direction = DMA_MEM_TO_DEV;
3022 chan->id = xdev->mm2s_chan_id++;
3023 chan->tdest = chan->id;
3024
3025 chan->ctrl_offset = XILINX_DMA_MM2S_CTRL_OFFSET;
3026 if (xdev->dma_config->dmatype == XDMA_TYPE_VDMA) {
3027 chan->desc_offset = XILINX_VDMA_MM2S_DESC_OFFSET;
3028 chan->config.park = 1;
3029
3030 if (xdev->flush_on_fsync == XILINX_DMA_FLUSH_BOTH ||
3031 xdev->flush_on_fsync == XILINX_DMA_FLUSH_MM2S)
3032 chan->flush_on_fsync = true;
3033 }
3034 } else if (of_device_is_compatible(node,
3035 "xlnx,axi-vdma-s2mm-channel") ||
3036 of_device_is_compatible(node,
3037 "xlnx,axi-dma-s2mm-channel")) {
3038 chan->direction = DMA_DEV_TO_MEM;
3039 chan->id = xdev->s2mm_chan_id++;
3040 chan->tdest = chan->id - xdev->dma_config->max_channels / 2;
3041 chan->has_vflip = of_property_read_bool(node,
3042 "xlnx,enable-vert-flip");
3043 if (chan->has_vflip) {
3044 chan->config.vflip_en = dma_read(chan,
3045 XILINX_VDMA_REG_ENABLE_VERTICAL_FLIP) &
3046 XILINX_VDMA_ENABLE_VERTICAL_FLIP;
3047 }
3048
3049 if (xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA)
3050 chan->ctrl_offset = XILINX_MCDMA_S2MM_CTRL_OFFSET;
3051 else
3052 chan->ctrl_offset = XILINX_DMA_S2MM_CTRL_OFFSET;
3053
3054 if (xdev->dma_config->dmatype == XDMA_TYPE_VDMA) {
3055 chan->desc_offset = XILINX_VDMA_S2MM_DESC_OFFSET;
3056 chan->config.park = 1;
3057
3058 if (xdev->flush_on_fsync == XILINX_DMA_FLUSH_BOTH ||
3059 xdev->flush_on_fsync == XILINX_DMA_FLUSH_S2MM)
3060 chan->flush_on_fsync = true;
3061 }
3062 } else {
3063 dev_err(xdev->dev, "Invalid channel compatible node\n");
3064 return -EINVAL;
3065 }
3066
3067 xdev->common.directions |= BIT(chan->direction);
3068
3069 /* Request the interrupt */
3070 chan->irq = of_irq_get(node, chan->tdest);
3071 if (chan->irq < 0)
3072 return dev_err_probe(xdev->dev, chan->irq, "failed to get irq\n");
3073 err = request_irq(chan->irq, xdev->dma_config->irq_handler,
3074 IRQF_SHARED, "xilinx-dma-controller", chan);
3075 if (err) {
3076 dev_err(xdev->dev, "unable to request IRQ %d\n", chan->irq);
3077 return err;
3078 }
3079
3080 if (xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA) {
3081 chan->start_transfer = xilinx_dma_start_transfer;
3082 chan->stop_transfer = xilinx_dma_stop_transfer;
3083 } else if (xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA) {
3084 chan->start_transfer = xilinx_mcdma_start_transfer;
3085 chan->stop_transfer = xilinx_dma_stop_transfer;
3086 } else if (xdev->dma_config->dmatype == XDMA_TYPE_CDMA) {
3087 chan->start_transfer = xilinx_cdma_start_transfer;
3088 chan->stop_transfer = xilinx_cdma_stop_transfer;
3089 } else {
3090 chan->start_transfer = xilinx_vdma_start_transfer;
3091 chan->stop_transfer = xilinx_dma_stop_transfer;
3092 }
3093
3094 /* check if SG is enabled (only for AXIDMA, AXIMCDMA, and CDMA) */
3095 if (xdev->dma_config->dmatype != XDMA_TYPE_VDMA) {
3096 if (xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA ||
3097 dma_ctrl_read(chan, XILINX_DMA_REG_DMASR) &
3098 XILINX_DMA_DMASR_SG_MASK)
3099 chan->has_sg = true;
3100 dev_dbg(chan->dev, "ch %d: SG %s\n", chan->id,
3101 str_enabled_disabled(chan->has_sg));
3102 }
3103
3104 /* Initialize the tasklet */
3105 tasklet_setup(&chan->tasklet, xilinx_dma_do_tasklet);
3106
3107 /*
3108 * Initialize the DMA channel and add it to the DMA engine channels
3109 * list.
3110 */
3111 chan->common.device = &xdev->common;
3112
3113 list_add_tail(&chan->common.device_node, &xdev->common.channels);
3114 xdev->chan[chan->id] = chan;
3115
3116 /* Reset the channel */
3117 err = xilinx_dma_chan_reset(chan);
3118 if (err < 0) {
3119 dev_err(xdev->dev, "Reset channel failed\n");
3120 return err;
3121 }
3122
3123 return 0;
3124 }
3125
3126 /**
3127 * xilinx_dma_child_probe - Per child node probe
3128 * It get number of dma-channels per child node from
3129 * device-tree and initializes all the channels.
3130 *
3131 * @xdev: Driver specific device structure
3132 * @node: Device node
3133 *
3134 * Return: '0' on success and failure value on error.
3135 */
xilinx_dma_child_probe(struct xilinx_dma_device * xdev,struct device_node * node)3136 static int xilinx_dma_child_probe(struct xilinx_dma_device *xdev,
3137 struct device_node *node)
3138 {
3139 int ret, i;
3140 u32 nr_channels = 1;
3141
3142 ret = of_property_read_u32(node, "dma-channels", &nr_channels);
3143 if (xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA && ret < 0)
3144 dev_warn(xdev->dev, "missing dma-channels property\n");
3145
3146 for (i = 0; i < nr_channels; i++) {
3147 ret = xilinx_dma_chan_probe(xdev, node);
3148 if (ret)
3149 return ret;
3150 }
3151
3152 return 0;
3153 }
3154
3155 /**
3156 * of_dma_xilinx_xlate - Translation function
3157 * @dma_spec: Pointer to DMA specifier as found in the device tree
3158 * @ofdma: Pointer to DMA controller data
3159 *
3160 * Return: DMA channel pointer on success and NULL on error
3161 */
of_dma_xilinx_xlate(struct of_phandle_args * dma_spec,struct of_dma * ofdma)3162 static struct dma_chan *of_dma_xilinx_xlate(struct of_phandle_args *dma_spec,
3163 struct of_dma *ofdma)
3164 {
3165 struct xilinx_dma_device *xdev = ofdma->of_dma_data;
3166 int chan_id = dma_spec->args[0];
3167
3168 if (chan_id >= xdev->dma_config->max_channels || !xdev->chan[chan_id])
3169 return NULL;
3170
3171 return dma_get_slave_channel(&xdev->chan[chan_id]->common);
3172 }
3173
3174 static const struct xilinx_dma_config axidma_config = {
3175 .dmatype = XDMA_TYPE_AXIDMA,
3176 .clk_init = axidma_clk_init,
3177 .irq_handler = xilinx_dma_irq_handler,
3178 .max_channels = XILINX_DMA_MAX_CHANS_PER_DEVICE,
3179 };
3180
3181 static const struct xilinx_dma_config aximcdma_config = {
3182 .dmatype = XDMA_TYPE_AXIMCDMA,
3183 .clk_init = axidma_clk_init,
3184 .irq_handler = xilinx_mcdma_irq_handler,
3185 .max_channels = XILINX_MCDMA_MAX_CHANS_PER_DEVICE,
3186 };
3187 static const struct xilinx_dma_config axicdma_config = {
3188 .dmatype = XDMA_TYPE_CDMA,
3189 .clk_init = axicdma_clk_init,
3190 .irq_handler = xilinx_dma_irq_handler,
3191 .max_channels = XILINX_CDMA_MAX_CHANS_PER_DEVICE,
3192 };
3193
3194 static const struct xilinx_dma_config axivdma_config = {
3195 .dmatype = XDMA_TYPE_VDMA,
3196 .clk_init = axivdma_clk_init,
3197 .irq_handler = xilinx_dma_irq_handler,
3198 .max_channels = XILINX_DMA_MAX_CHANS_PER_DEVICE,
3199 };
3200
3201 static const struct of_device_id xilinx_dma_of_ids[] = {
3202 { .compatible = "xlnx,axi-dma-1.00.a", .data = &axidma_config },
3203 { .compatible = "xlnx,axi-cdma-1.00.a", .data = &axicdma_config },
3204 { .compatible = "xlnx,axi-vdma-1.00.a", .data = &axivdma_config },
3205 { .compatible = "xlnx,axi-mcdma-1.00.a", .data = &aximcdma_config },
3206 {}
3207 };
3208 MODULE_DEVICE_TABLE(of, xilinx_dma_of_ids);
3209
3210 /**
3211 * xilinx_dma_probe - Driver probe function
3212 * @pdev: Pointer to the platform_device structure
3213 *
3214 * Return: '0' on success and failure value on error
3215 */
xilinx_dma_probe(struct platform_device * pdev)3216 static int xilinx_dma_probe(struct platform_device *pdev)
3217 {
3218 int (*clk_init)(struct platform_device *, struct clk **, struct clk **,
3219 struct clk **, struct clk **, struct clk **)
3220 = axivdma_clk_init;
3221 struct device_node *node = pdev->dev.of_node;
3222 struct xilinx_dma_device *xdev;
3223 struct device_node *np = pdev->dev.of_node;
3224 u32 num_frames, addr_width = XILINX_DMA_DFAULT_ADDRWIDTH, len_width;
3225 int i, err;
3226
3227 /* Allocate and initialize the DMA engine structure */
3228 xdev = devm_kzalloc(&pdev->dev, sizeof(*xdev), GFP_KERNEL);
3229 if (!xdev)
3230 return -ENOMEM;
3231
3232 xdev->dev = &pdev->dev;
3233 if (np) {
3234 const struct of_device_id *match;
3235
3236 match = of_match_node(xilinx_dma_of_ids, np);
3237 if (match && match->data) {
3238 xdev->dma_config = match->data;
3239 clk_init = xdev->dma_config->clk_init;
3240 }
3241 }
3242
3243 err = clk_init(pdev, &xdev->axi_clk, &xdev->tx_clk, &xdev->txs_clk,
3244 &xdev->rx_clk, &xdev->rxs_clk);
3245 if (err)
3246 return err;
3247
3248 /* Request and map I/O memory */
3249 xdev->regs = devm_platform_ioremap_resource(pdev, 0);
3250 if (IS_ERR(xdev->regs)) {
3251 err = PTR_ERR(xdev->regs);
3252 goto disable_clks;
3253 }
3254 /* Retrieve the DMA engine properties from the device tree */
3255 xdev->max_buffer_len = GENMASK(XILINX_DMA_MAX_TRANS_LEN_MAX - 1, 0);
3256 xdev->s2mm_chan_id = xdev->dma_config->max_channels / 2;
3257
3258 if (xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA ||
3259 xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA) {
3260 if (!of_property_read_u32(node, "xlnx,sg-length-width",
3261 &len_width)) {
3262 if (len_width < XILINX_DMA_MAX_TRANS_LEN_MIN ||
3263 len_width > XILINX_DMA_V2_MAX_TRANS_LEN_MAX) {
3264 dev_warn(xdev->dev,
3265 "invalid xlnx,sg-length-width property value. Using default width\n");
3266 } else {
3267 if (len_width > XILINX_DMA_MAX_TRANS_LEN_MAX)
3268 dev_warn(xdev->dev, "Please ensure that IP supports buffer length > 23 bits\n");
3269 xdev->max_buffer_len =
3270 GENMASK(len_width - 1, 0);
3271 }
3272 }
3273 }
3274
3275 dma_set_max_seg_size(xdev->dev, xdev->max_buffer_len);
3276
3277 if (xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA) {
3278 xdev->has_axistream_connected =
3279 of_property_read_bool(node, "xlnx,axistream-connected");
3280 }
3281
3282 if (xdev->dma_config->dmatype == XDMA_TYPE_VDMA) {
3283 err = of_property_read_u32(node, "xlnx,num-fstores",
3284 &num_frames);
3285 if (err < 0) {
3286 dev_err(xdev->dev,
3287 "missing xlnx,num-fstores property\n");
3288 goto disable_clks;
3289 }
3290
3291 err = of_property_read_u32(node, "xlnx,flush-fsync",
3292 &xdev->flush_on_fsync);
3293 if (err < 0)
3294 dev_warn(xdev->dev,
3295 "missing xlnx,flush-fsync property\n");
3296 }
3297
3298 err = of_property_read_u32(node, "xlnx,addrwidth", &addr_width);
3299 if (err < 0)
3300 dev_warn(xdev->dev,
3301 "missing xlnx,addrwidth property, using default value %d\n",
3302 XILINX_DMA_DFAULT_ADDRWIDTH);
3303
3304 if (addr_width > 32)
3305 xdev->ext_addr = true;
3306 else
3307 xdev->ext_addr = false;
3308
3309 /* Set metadata mode */
3310 if (xdev->has_axistream_connected)
3311 xdev->common.desc_metadata_modes = DESC_METADATA_ENGINE;
3312
3313 /* Set the dma mask bits */
3314 err = dma_set_mask_and_coherent(xdev->dev, DMA_BIT_MASK(addr_width));
3315 if (err < 0) {
3316 dev_err(xdev->dev, "DMA mask error %d\n", err);
3317 goto disable_clks;
3318 }
3319
3320 /* Initialize the DMA engine */
3321 xdev->common.dev = &pdev->dev;
3322
3323 INIT_LIST_HEAD(&xdev->common.channels);
3324 if (!(xdev->dma_config->dmatype == XDMA_TYPE_CDMA)) {
3325 dma_cap_set(DMA_SLAVE, xdev->common.cap_mask);
3326 dma_cap_set(DMA_PRIVATE, xdev->common.cap_mask);
3327 }
3328
3329 xdev->common.device_alloc_chan_resources =
3330 xilinx_dma_alloc_chan_resources;
3331 xdev->common.device_free_chan_resources =
3332 xilinx_dma_free_chan_resources;
3333 xdev->common.device_terminate_all = xilinx_dma_terminate_all;
3334 xdev->common.device_synchronize = xilinx_dma_synchronize;
3335 xdev->common.device_tx_status = xilinx_dma_tx_status;
3336 xdev->common.device_issue_pending = xilinx_dma_issue_pending;
3337 xdev->common.device_config = xilinx_dma_device_config;
3338 if (xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA) {
3339 dma_cap_set(DMA_CYCLIC, xdev->common.cap_mask);
3340 xdev->common.device_prep_peripheral_dma_vec = xilinx_dma_prep_peripheral_dma_vec;
3341 xdev->common.device_prep_slave_sg = xilinx_dma_prep_slave_sg;
3342 xdev->common.device_prep_dma_cyclic =
3343 xilinx_dma_prep_dma_cyclic;
3344 /* Residue calculation is supported by only AXI DMA and CDMA */
3345 xdev->common.residue_granularity =
3346 DMA_RESIDUE_GRANULARITY_SEGMENT;
3347 } else if (xdev->dma_config->dmatype == XDMA_TYPE_CDMA) {
3348 dma_cap_set(DMA_MEMCPY, xdev->common.cap_mask);
3349 xdev->common.device_prep_dma_memcpy = xilinx_cdma_prep_memcpy;
3350 /* Residue calculation is supported by only AXI DMA and CDMA */
3351 xdev->common.residue_granularity =
3352 DMA_RESIDUE_GRANULARITY_SEGMENT;
3353 } else if (xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA) {
3354 xdev->common.device_prep_slave_sg = xilinx_mcdma_prep_slave_sg;
3355 } else {
3356 xdev->common.device_prep_interleaved_dma =
3357 xilinx_vdma_dma_prep_interleaved;
3358 }
3359
3360 platform_set_drvdata(pdev, xdev);
3361
3362 /* Initialize the channels */
3363 for_each_child_of_node_scoped(node, child) {
3364 err = xilinx_dma_child_probe(xdev, child);
3365 if (err < 0)
3366 goto error;
3367 }
3368
3369 if (xdev->dma_config->dmatype == XDMA_TYPE_VDMA) {
3370 for (i = 0; i < xdev->dma_config->max_channels; i++)
3371 if (xdev->chan[i])
3372 xdev->chan[i]->num_frms = num_frames;
3373 }
3374
3375 /* Register the DMA engine with the core */
3376 err = dma_async_device_register(&xdev->common);
3377 if (err) {
3378 dev_err(xdev->dev, "failed to register the dma device\n");
3379 goto error;
3380 }
3381
3382 err = of_dma_controller_register(node, of_dma_xilinx_xlate,
3383 xdev);
3384 if (err < 0) {
3385 dev_err(&pdev->dev, "Unable to register DMA to DT\n");
3386 dma_async_device_unregister(&xdev->common);
3387 goto error;
3388 }
3389
3390 if (xdev->dma_config->dmatype == XDMA_TYPE_AXIDMA)
3391 dev_info(&pdev->dev, "Xilinx AXI DMA Engine Driver Probed!!\n");
3392 else if (xdev->dma_config->dmatype == XDMA_TYPE_CDMA)
3393 dev_info(&pdev->dev, "Xilinx AXI CDMA Engine Driver Probed!!\n");
3394 else if (xdev->dma_config->dmatype == XDMA_TYPE_AXIMCDMA)
3395 dev_info(&pdev->dev, "Xilinx AXI MCDMA Engine Driver Probed!!\n");
3396 else
3397 dev_info(&pdev->dev, "Xilinx AXI VDMA Engine Driver Probed!!\n");
3398
3399 return 0;
3400
3401 error:
3402 for (i = 0; i < xdev->dma_config->max_channels; i++)
3403 if (xdev->chan[i])
3404 xilinx_dma_chan_remove(xdev->chan[i]);
3405 disable_clks:
3406 xdma_disable_allclks(xdev);
3407
3408 return err;
3409 }
3410
3411 /**
3412 * xilinx_dma_remove - Driver remove function
3413 * @pdev: Pointer to the platform_device structure
3414 */
xilinx_dma_remove(struct platform_device * pdev)3415 static void xilinx_dma_remove(struct platform_device *pdev)
3416 {
3417 struct xilinx_dma_device *xdev = platform_get_drvdata(pdev);
3418 int i;
3419
3420 of_dma_controller_free(pdev->dev.of_node);
3421
3422 dma_async_device_unregister(&xdev->common);
3423
3424 for (i = 0; i < xdev->dma_config->max_channels; i++)
3425 if (xdev->chan[i])
3426 xilinx_dma_chan_remove(xdev->chan[i]);
3427
3428 xdma_disable_allclks(xdev);
3429 }
3430
3431 static struct platform_driver xilinx_vdma_driver = {
3432 .driver = {
3433 .name = "xilinx-vdma",
3434 .of_match_table = xilinx_dma_of_ids,
3435 },
3436 .probe = xilinx_dma_probe,
3437 .remove = xilinx_dma_remove,
3438 };
3439
3440 module_platform_driver(xilinx_vdma_driver);
3441
3442 MODULE_AUTHOR("Xilinx, Inc.");
3443 MODULE_DESCRIPTION("Xilinx VDMA driver");
3444 MODULE_LICENSE("GPL v2");
3445