1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Driver for Atmel QSPI Controller
4 *
5 * Copyright (C) 2015 Atmel Corporation
6 * Copyright (C) 2018 Cryptera A/S
7 *
8 * Author: Cyrille Pitchen <cyrille.pitchen@atmel.com>
9 * Author: Piotr Bugalski <bugalski.piotr@gmail.com>
10 *
11 * This driver is based on drivers/mtd/spi-nor/fsl-quadspi.c from Freescale.
12 */
13
14 #include <linux/clk.h>
15 #include <linux/delay.h>
16 #include <linux/err.h>
17 #include <linux/interrupt.h>
18 #include <linux/io.h>
19 #include <linux/kernel.h>
20 #include <linux/module.h>
21 #include <linux/of.h>
22 #include <linux/of_platform.h>
23 #include <linux/platform_device.h>
24 #include <linux/spi/spi-mem.h>
25
26 /* QSPI register offsets */
27 #define QSPI_CR 0x0000 /* Control Register */
28 #define QSPI_MR 0x0004 /* Mode Register */
29 #define QSPI_RD 0x0008 /* Receive Data Register */
30 #define QSPI_TD 0x000c /* Transmit Data Register */
31 #define QSPI_SR 0x0010 /* Status Register */
32 #define QSPI_IER 0x0014 /* Interrupt Enable Register */
33 #define QSPI_IDR 0x0018 /* Interrupt Disable Register */
34 #define QSPI_IMR 0x001c /* Interrupt Mask Register */
35 #define QSPI_SCR 0x0020 /* Serial Clock Register */
36
37 #define QSPI_IAR 0x0030 /* Instruction Address Register */
38 #define QSPI_ICR 0x0034 /* Instruction Code Register */
39 #define QSPI_WICR 0x0034 /* Write Instruction Code Register */
40 #define QSPI_IFR 0x0038 /* Instruction Frame Register */
41 #define QSPI_RICR 0x003C /* Read Instruction Code Register */
42
43 #define QSPI_SMR 0x0040 /* Scrambling Mode Register */
44 #define QSPI_SKR 0x0044 /* Scrambling Key Register */
45
46 #define QSPI_WPMR 0x00E4 /* Write Protection Mode Register */
47 #define QSPI_WPSR 0x00E8 /* Write Protection Status Register */
48
49 #define QSPI_VERSION 0x00FC /* Version Register */
50
51
52 /* Bitfields in QSPI_CR (Control Register) */
53 #define QSPI_CR_QSPIEN BIT(0)
54 #define QSPI_CR_QSPIDIS BIT(1)
55 #define QSPI_CR_SWRST BIT(7)
56 #define QSPI_CR_LASTXFER BIT(24)
57
58 /* Bitfields in QSPI_MR (Mode Register) */
59 #define QSPI_MR_SMM BIT(0)
60 #define QSPI_MR_LLB BIT(1)
61 #define QSPI_MR_WDRBT BIT(2)
62 #define QSPI_MR_SMRM BIT(3)
63 #define QSPI_MR_CSMODE_MASK GENMASK(5, 4)
64 #define QSPI_MR_CSMODE_NOT_RELOADED (0 << 4)
65 #define QSPI_MR_CSMODE_LASTXFER (1 << 4)
66 #define QSPI_MR_CSMODE_SYSTEMATICALLY (2 << 4)
67 #define QSPI_MR_NBBITS_MASK GENMASK(11, 8)
68 #define QSPI_MR_NBBITS(n) ((((n) - 8) << 8) & QSPI_MR_NBBITS_MASK)
69 #define QSPI_MR_DLYBCT_MASK GENMASK(23, 16)
70 #define QSPI_MR_DLYBCT(n) (((n) << 16) & QSPI_MR_DLYBCT_MASK)
71 #define QSPI_MR_DLYCS_MASK GENMASK(31, 24)
72 #define QSPI_MR_DLYCS(n) (((n) << 24) & QSPI_MR_DLYCS_MASK)
73
74 /* Bitfields in QSPI_SR/QSPI_IER/QSPI_IDR/QSPI_IMR */
75 #define QSPI_SR_RDRF BIT(0)
76 #define QSPI_SR_TDRE BIT(1)
77 #define QSPI_SR_TXEMPTY BIT(2)
78 #define QSPI_SR_OVRES BIT(3)
79 #define QSPI_SR_CSR BIT(8)
80 #define QSPI_SR_CSS BIT(9)
81 #define QSPI_SR_INSTRE BIT(10)
82 #define QSPI_SR_QSPIENS BIT(24)
83
84 #define QSPI_SR_CMD_COMPLETED (QSPI_SR_INSTRE | QSPI_SR_CSR)
85
86 /* Bitfields in QSPI_SCR (Serial Clock Register) */
87 #define QSPI_SCR_CPOL BIT(0)
88 #define QSPI_SCR_CPHA BIT(1)
89 #define QSPI_SCR_SCBR_MASK GENMASK(15, 8)
90 #define QSPI_SCR_SCBR(n) (((n) << 8) & QSPI_SCR_SCBR_MASK)
91 #define QSPI_SCR_DLYBS_MASK GENMASK(23, 16)
92 #define QSPI_SCR_DLYBS(n) (((n) << 16) & QSPI_SCR_DLYBS_MASK)
93
94 /* Bitfields in QSPI_ICR (Read/Write Instruction Code Register) */
95 #define QSPI_ICR_INST_MASK GENMASK(7, 0)
96 #define QSPI_ICR_INST(inst) (((inst) << 0) & QSPI_ICR_INST_MASK)
97 #define QSPI_ICR_OPT_MASK GENMASK(23, 16)
98 #define QSPI_ICR_OPT(opt) (((opt) << 16) & QSPI_ICR_OPT_MASK)
99
100 /* Bitfields in QSPI_IFR (Instruction Frame Register) */
101 #define QSPI_IFR_WIDTH_MASK GENMASK(2, 0)
102 #define QSPI_IFR_WIDTH_SINGLE_BIT_SPI (0 << 0)
103 #define QSPI_IFR_WIDTH_DUAL_OUTPUT (1 << 0)
104 #define QSPI_IFR_WIDTH_QUAD_OUTPUT (2 << 0)
105 #define QSPI_IFR_WIDTH_DUAL_IO (3 << 0)
106 #define QSPI_IFR_WIDTH_QUAD_IO (4 << 0)
107 #define QSPI_IFR_WIDTH_DUAL_CMD (5 << 0)
108 #define QSPI_IFR_WIDTH_QUAD_CMD (6 << 0)
109 #define QSPI_IFR_INSTEN BIT(4)
110 #define QSPI_IFR_ADDREN BIT(5)
111 #define QSPI_IFR_OPTEN BIT(6)
112 #define QSPI_IFR_DATAEN BIT(7)
113 #define QSPI_IFR_OPTL_MASK GENMASK(9, 8)
114 #define QSPI_IFR_OPTL_1BIT (0 << 8)
115 #define QSPI_IFR_OPTL_2BIT (1 << 8)
116 #define QSPI_IFR_OPTL_4BIT (2 << 8)
117 #define QSPI_IFR_OPTL_8BIT (3 << 8)
118 #define QSPI_IFR_ADDRL BIT(10)
119 #define QSPI_IFR_TFRTYP_MEM BIT(12)
120 #define QSPI_IFR_SAMA5D2_WRITE_TRSFR BIT(13)
121 #define QSPI_IFR_CRM BIT(14)
122 #define QSPI_IFR_NBDUM_MASK GENMASK(20, 16)
123 #define QSPI_IFR_NBDUM(n) (((n) << 16) & QSPI_IFR_NBDUM_MASK)
124 #define QSPI_IFR_APBTFRTYP_READ BIT(24) /* Defined in SAM9X60 */
125
126 /* Bitfields in QSPI_SMR (Scrambling Mode Register) */
127 #define QSPI_SMR_SCREN BIT(0)
128 #define QSPI_SMR_RVDIS BIT(1)
129
130 /* Bitfields in QSPI_WPMR (Write Protection Mode Register) */
131 #define QSPI_WPMR_WPEN BIT(0)
132 #define QSPI_WPMR_WPKEY_MASK GENMASK(31, 8)
133 #define QSPI_WPMR_WPKEY(wpkey) (((wpkey) << 8) & QSPI_WPMR_WPKEY_MASK)
134
135 /* Bitfields in QSPI_WPSR (Write Protection Status Register) */
136 #define QSPI_WPSR_WPVS BIT(0)
137 #define QSPI_WPSR_WPVSRC_MASK GENMASK(15, 8)
138 #define QSPI_WPSR_WPVSRC(src) (((src) << 8) & QSPI_WPSR_WPVSRC)
139
140 struct atmel_qspi_caps {
141 bool has_qspick;
142 bool has_ricr;
143 };
144
145 struct atmel_qspi {
146 void __iomem *regs;
147 void __iomem *mem;
148 struct clk *pclk;
149 struct clk *qspick;
150 struct platform_device *pdev;
151 const struct atmel_qspi_caps *caps;
152 resource_size_t mmap_size;
153 u32 pending;
154 u32 mr;
155 u32 scr;
156 struct completion cmd_completion;
157 };
158
159 struct atmel_qspi_mode {
160 u8 cmd_buswidth;
161 u8 addr_buswidth;
162 u8 data_buswidth;
163 u32 config;
164 };
165
166 static const struct atmel_qspi_mode atmel_qspi_modes[] = {
167 { 1, 1, 1, QSPI_IFR_WIDTH_SINGLE_BIT_SPI },
168 { 1, 1, 2, QSPI_IFR_WIDTH_DUAL_OUTPUT },
169 { 1, 1, 4, QSPI_IFR_WIDTH_QUAD_OUTPUT },
170 { 1, 2, 2, QSPI_IFR_WIDTH_DUAL_IO },
171 { 1, 4, 4, QSPI_IFR_WIDTH_QUAD_IO },
172 { 2, 2, 2, QSPI_IFR_WIDTH_DUAL_CMD },
173 { 4, 4, 4, QSPI_IFR_WIDTH_QUAD_CMD },
174 };
175
176 #ifdef VERBOSE_DEBUG
atmel_qspi_reg_name(u32 offset,char * tmp,size_t sz)177 static const char *atmel_qspi_reg_name(u32 offset, char *tmp, size_t sz)
178 {
179 switch (offset) {
180 case QSPI_CR:
181 return "CR";
182 case QSPI_MR:
183 return "MR";
184 case QSPI_RD:
185 return "MR";
186 case QSPI_TD:
187 return "TD";
188 case QSPI_SR:
189 return "SR";
190 case QSPI_IER:
191 return "IER";
192 case QSPI_IDR:
193 return "IDR";
194 case QSPI_IMR:
195 return "IMR";
196 case QSPI_SCR:
197 return "SCR";
198 case QSPI_IAR:
199 return "IAR";
200 case QSPI_ICR:
201 return "ICR/WICR";
202 case QSPI_IFR:
203 return "IFR";
204 case QSPI_RICR:
205 return "RICR";
206 case QSPI_SMR:
207 return "SMR";
208 case QSPI_SKR:
209 return "SKR";
210 case QSPI_WPMR:
211 return "WPMR";
212 case QSPI_WPSR:
213 return "WPSR";
214 case QSPI_VERSION:
215 return "VERSION";
216 default:
217 snprintf(tmp, sz, "0x%02x", offset);
218 break;
219 }
220
221 return tmp;
222 }
223 #endif /* VERBOSE_DEBUG */
224
atmel_qspi_read(struct atmel_qspi * aq,u32 offset)225 static u32 atmel_qspi_read(struct atmel_qspi *aq, u32 offset)
226 {
227 u32 value = readl_relaxed(aq->regs + offset);
228
229 #ifdef VERBOSE_DEBUG
230 char tmp[8];
231
232 dev_vdbg(&aq->pdev->dev, "read 0x%08x from %s\n", value,
233 atmel_qspi_reg_name(offset, tmp, sizeof(tmp)));
234 #endif /* VERBOSE_DEBUG */
235
236 return value;
237 }
238
atmel_qspi_write(u32 value,struct atmel_qspi * aq,u32 offset)239 static void atmel_qspi_write(u32 value, struct atmel_qspi *aq, u32 offset)
240 {
241 #ifdef VERBOSE_DEBUG
242 char tmp[8];
243
244 dev_vdbg(&aq->pdev->dev, "write 0x%08x into %s\n", value,
245 atmel_qspi_reg_name(offset, tmp, sizeof(tmp)));
246 #endif /* VERBOSE_DEBUG */
247
248 writel_relaxed(value, aq->regs + offset);
249 }
250
atmel_qspi_is_compatible(const struct spi_mem_op * op,const struct atmel_qspi_mode * mode)251 static inline bool atmel_qspi_is_compatible(const struct spi_mem_op *op,
252 const struct atmel_qspi_mode *mode)
253 {
254 if (op->cmd.buswidth != mode->cmd_buswidth)
255 return false;
256
257 if (op->addr.nbytes && op->addr.buswidth != mode->addr_buswidth)
258 return false;
259
260 if (op->data.nbytes && op->data.buswidth != mode->data_buswidth)
261 return false;
262
263 return true;
264 }
265
atmel_qspi_find_mode(const struct spi_mem_op * op)266 static int atmel_qspi_find_mode(const struct spi_mem_op *op)
267 {
268 u32 i;
269
270 for (i = 0; i < ARRAY_SIZE(atmel_qspi_modes); i++)
271 if (atmel_qspi_is_compatible(op, &atmel_qspi_modes[i]))
272 return i;
273
274 return -ENOTSUPP;
275 }
276
atmel_qspi_supports_op(struct spi_mem * mem,const struct spi_mem_op * op)277 static bool atmel_qspi_supports_op(struct spi_mem *mem,
278 const struct spi_mem_op *op)
279 {
280 if (!spi_mem_default_supports_op(mem, op))
281 return false;
282
283 if (atmel_qspi_find_mode(op) < 0)
284 return false;
285
286 /* special case not supported by hardware */
287 if (op->addr.nbytes == 2 && op->cmd.buswidth != op->addr.buswidth &&
288 op->dummy.nbytes == 0)
289 return false;
290
291 /* DTR ops not supported. */
292 if (op->cmd.dtr || op->addr.dtr || op->dummy.dtr || op->data.dtr)
293 return false;
294 if (op->cmd.nbytes != 1)
295 return false;
296
297 return true;
298 }
299
atmel_qspi_set_cfg(struct atmel_qspi * aq,const struct spi_mem_op * op,u32 * offset)300 static int atmel_qspi_set_cfg(struct atmel_qspi *aq,
301 const struct spi_mem_op *op, u32 *offset)
302 {
303 u32 iar, icr, ifr;
304 u32 dummy_cycles = 0;
305 int mode;
306
307 iar = 0;
308 icr = QSPI_ICR_INST(op->cmd.opcode);
309 ifr = QSPI_IFR_INSTEN;
310
311 mode = atmel_qspi_find_mode(op);
312 if (mode < 0)
313 return mode;
314 ifr |= atmel_qspi_modes[mode].config;
315
316 if (op->dummy.nbytes)
317 dummy_cycles = op->dummy.nbytes * 8 / op->dummy.buswidth;
318
319 /*
320 * The controller allows 24 and 32-bit addressing while NAND-flash
321 * requires 16-bit long. Handling 8-bit long addresses is done using
322 * the option field. For the 16-bit addresses, the workaround depends
323 * of the number of requested dummy bits. If there are 8 or more dummy
324 * cycles, the address is shifted and sent with the first dummy byte.
325 * Otherwise opcode is disabled and the first byte of the address
326 * contains the command opcode (works only if the opcode and address
327 * use the same buswidth). The limitation is when the 16-bit address is
328 * used without enough dummy cycles and the opcode is using a different
329 * buswidth than the address.
330 */
331 if (op->addr.buswidth) {
332 switch (op->addr.nbytes) {
333 case 0:
334 break;
335 case 1:
336 ifr |= QSPI_IFR_OPTEN | QSPI_IFR_OPTL_8BIT;
337 icr |= QSPI_ICR_OPT(op->addr.val & 0xff);
338 break;
339 case 2:
340 if (dummy_cycles < 8 / op->addr.buswidth) {
341 ifr &= ~QSPI_IFR_INSTEN;
342 ifr |= QSPI_IFR_ADDREN;
343 iar = (op->cmd.opcode << 16) |
344 (op->addr.val & 0xffff);
345 } else {
346 ifr |= QSPI_IFR_ADDREN;
347 iar = (op->addr.val << 8) & 0xffffff;
348 dummy_cycles -= 8 / op->addr.buswidth;
349 }
350 break;
351 case 3:
352 ifr |= QSPI_IFR_ADDREN;
353 iar = op->addr.val & 0xffffff;
354 break;
355 case 4:
356 ifr |= QSPI_IFR_ADDREN | QSPI_IFR_ADDRL;
357 iar = op->addr.val & 0x7ffffff;
358 break;
359 default:
360 return -ENOTSUPP;
361 }
362 }
363
364 /* offset of the data access in the QSPI memory space */
365 *offset = iar;
366
367 /* Set number of dummy cycles */
368 if (dummy_cycles)
369 ifr |= QSPI_IFR_NBDUM(dummy_cycles);
370
371 /* Set data enable and data transfer type. */
372 if (op->data.nbytes) {
373 ifr |= QSPI_IFR_DATAEN;
374
375 if (op->addr.nbytes)
376 ifr |= QSPI_IFR_TFRTYP_MEM;
377 }
378
379 /*
380 * If the QSPI controller is set in regular SPI mode, set it in
381 * Serial Memory Mode (SMM).
382 */
383 if (aq->mr != QSPI_MR_SMM) {
384 atmel_qspi_write(QSPI_MR_SMM, aq, QSPI_MR);
385 aq->mr = QSPI_MR_SMM;
386 }
387
388 /* Clear pending interrupts */
389 (void)atmel_qspi_read(aq, QSPI_SR);
390
391 /* Set QSPI Instruction Frame registers. */
392 if (op->addr.nbytes && !op->data.nbytes)
393 atmel_qspi_write(iar, aq, QSPI_IAR);
394
395 if (aq->caps->has_ricr) {
396 if (op->data.dir == SPI_MEM_DATA_IN)
397 atmel_qspi_write(icr, aq, QSPI_RICR);
398 else
399 atmel_qspi_write(icr, aq, QSPI_WICR);
400 } else {
401 if (op->data.nbytes && op->data.dir == SPI_MEM_DATA_OUT)
402 ifr |= QSPI_IFR_SAMA5D2_WRITE_TRSFR;
403
404 atmel_qspi_write(icr, aq, QSPI_ICR);
405 }
406
407 atmel_qspi_write(ifr, aq, QSPI_IFR);
408
409 return 0;
410 }
411
atmel_qspi_exec_op(struct spi_mem * mem,const struct spi_mem_op * op)412 static int atmel_qspi_exec_op(struct spi_mem *mem, const struct spi_mem_op *op)
413 {
414 struct atmel_qspi *aq = spi_controller_get_devdata(mem->spi->master);
415 u32 sr, offset;
416 int err;
417
418 /*
419 * Check if the address exceeds the MMIO window size. An improvement
420 * would be to add support for regular SPI mode and fall back to it
421 * when the flash memories overrun the controller's memory space.
422 */
423 if (op->addr.val + op->data.nbytes > aq->mmap_size)
424 return -ENOTSUPP;
425
426 err = atmel_qspi_set_cfg(aq, op, &offset);
427 if (err)
428 return err;
429
430 /* Skip to the final steps if there is no data */
431 if (op->data.nbytes) {
432 /* Dummy read of QSPI_IFR to synchronize APB and AHB accesses */
433 (void)atmel_qspi_read(aq, QSPI_IFR);
434
435 /* Send/Receive data */
436 if (op->data.dir == SPI_MEM_DATA_IN)
437 memcpy_fromio(op->data.buf.in, aq->mem + offset,
438 op->data.nbytes);
439 else
440 memcpy_toio(aq->mem + offset, op->data.buf.out,
441 op->data.nbytes);
442
443 /* Release the chip-select */
444 atmel_qspi_write(QSPI_CR_LASTXFER, aq, QSPI_CR);
445 }
446
447 /* Poll INSTRuction End status */
448 sr = atmel_qspi_read(aq, QSPI_SR);
449 if ((sr & QSPI_SR_CMD_COMPLETED) == QSPI_SR_CMD_COMPLETED)
450 return err;
451
452 /* Wait for INSTRuction End interrupt */
453 reinit_completion(&aq->cmd_completion);
454 aq->pending = sr & QSPI_SR_CMD_COMPLETED;
455 atmel_qspi_write(QSPI_SR_CMD_COMPLETED, aq, QSPI_IER);
456 if (!wait_for_completion_timeout(&aq->cmd_completion,
457 msecs_to_jiffies(1000)))
458 err = -ETIMEDOUT;
459 atmel_qspi_write(QSPI_SR_CMD_COMPLETED, aq, QSPI_IDR);
460
461 return err;
462 }
463
atmel_qspi_get_name(struct spi_mem * spimem)464 static const char *atmel_qspi_get_name(struct spi_mem *spimem)
465 {
466 return dev_name(spimem->spi->dev.parent);
467 }
468
469 static const struct spi_controller_mem_ops atmel_qspi_mem_ops = {
470 .supports_op = atmel_qspi_supports_op,
471 .exec_op = atmel_qspi_exec_op,
472 .get_name = atmel_qspi_get_name
473 };
474
atmel_qspi_setup(struct spi_device * spi)475 static int atmel_qspi_setup(struct spi_device *spi)
476 {
477 struct spi_controller *ctrl = spi->master;
478 struct atmel_qspi *aq = spi_controller_get_devdata(ctrl);
479 unsigned long src_rate;
480 u32 scbr;
481
482 if (ctrl->busy)
483 return -EBUSY;
484
485 if (!spi->max_speed_hz)
486 return -EINVAL;
487
488 src_rate = clk_get_rate(aq->pclk);
489 if (!src_rate)
490 return -EINVAL;
491
492 /* Compute the QSPI baudrate */
493 scbr = DIV_ROUND_UP(src_rate, spi->max_speed_hz);
494 if (scbr > 0)
495 scbr--;
496
497 aq->scr = QSPI_SCR_SCBR(scbr);
498 atmel_qspi_write(aq->scr, aq, QSPI_SCR);
499
500 return 0;
501 }
502
atmel_qspi_init(struct atmel_qspi * aq)503 static void atmel_qspi_init(struct atmel_qspi *aq)
504 {
505 /* Reset the QSPI controller */
506 atmel_qspi_write(QSPI_CR_SWRST, aq, QSPI_CR);
507
508 /* Set the QSPI controller by default in Serial Memory Mode */
509 atmel_qspi_write(QSPI_MR_SMM, aq, QSPI_MR);
510 aq->mr = QSPI_MR_SMM;
511
512 /* Enable the QSPI controller */
513 atmel_qspi_write(QSPI_CR_QSPIEN, aq, QSPI_CR);
514 }
515
atmel_qspi_interrupt(int irq,void * dev_id)516 static irqreturn_t atmel_qspi_interrupt(int irq, void *dev_id)
517 {
518 struct atmel_qspi *aq = dev_id;
519 u32 status, mask, pending;
520
521 status = atmel_qspi_read(aq, QSPI_SR);
522 mask = atmel_qspi_read(aq, QSPI_IMR);
523 pending = status & mask;
524
525 if (!pending)
526 return IRQ_NONE;
527
528 aq->pending |= pending;
529 if ((aq->pending & QSPI_SR_CMD_COMPLETED) == QSPI_SR_CMD_COMPLETED)
530 complete(&aq->cmd_completion);
531
532 return IRQ_HANDLED;
533 }
534
atmel_qspi_probe(struct platform_device * pdev)535 static int atmel_qspi_probe(struct platform_device *pdev)
536 {
537 struct spi_controller *ctrl;
538 struct atmel_qspi *aq;
539 struct resource *res;
540 int irq, err = 0;
541
542 ctrl = devm_spi_alloc_master(&pdev->dev, sizeof(*aq));
543 if (!ctrl)
544 return -ENOMEM;
545
546 ctrl->mode_bits = SPI_RX_DUAL | SPI_RX_QUAD | SPI_TX_DUAL | SPI_TX_QUAD;
547 ctrl->setup = atmel_qspi_setup;
548 ctrl->bus_num = -1;
549 ctrl->mem_ops = &atmel_qspi_mem_ops;
550 ctrl->num_chipselect = 1;
551 ctrl->dev.of_node = pdev->dev.of_node;
552 platform_set_drvdata(pdev, ctrl);
553
554 aq = spi_controller_get_devdata(ctrl);
555
556 init_completion(&aq->cmd_completion);
557 aq->pdev = pdev;
558
559 /* Map the registers */
560 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "qspi_base");
561 aq->regs = devm_ioremap_resource(&pdev->dev, res);
562 if (IS_ERR(aq->regs)) {
563 dev_err(&pdev->dev, "missing registers\n");
564 return PTR_ERR(aq->regs);
565 }
566
567 /* Map the AHB memory */
568 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "qspi_mmap");
569 aq->mem = devm_ioremap_resource(&pdev->dev, res);
570 if (IS_ERR(aq->mem)) {
571 dev_err(&pdev->dev, "missing AHB memory\n");
572 return PTR_ERR(aq->mem);
573 }
574
575 aq->mmap_size = resource_size(res);
576
577 /* Get the peripheral clock */
578 aq->pclk = devm_clk_get(&pdev->dev, "pclk");
579 if (IS_ERR(aq->pclk))
580 aq->pclk = devm_clk_get(&pdev->dev, NULL);
581
582 if (IS_ERR(aq->pclk)) {
583 dev_err(&pdev->dev, "missing peripheral clock\n");
584 return PTR_ERR(aq->pclk);
585 }
586
587 /* Enable the peripheral clock */
588 err = clk_prepare_enable(aq->pclk);
589 if (err) {
590 dev_err(&pdev->dev, "failed to enable the peripheral clock\n");
591 return err;
592 }
593
594 aq->caps = of_device_get_match_data(&pdev->dev);
595 if (!aq->caps) {
596 dev_err(&pdev->dev, "Could not retrieve QSPI caps\n");
597 err = -EINVAL;
598 goto disable_pclk;
599 }
600
601 if (aq->caps->has_qspick) {
602 /* Get the QSPI system clock */
603 aq->qspick = devm_clk_get(&pdev->dev, "qspick");
604 if (IS_ERR(aq->qspick)) {
605 dev_err(&pdev->dev, "missing system clock\n");
606 err = PTR_ERR(aq->qspick);
607 goto disable_pclk;
608 }
609
610 /* Enable the QSPI system clock */
611 err = clk_prepare_enable(aq->qspick);
612 if (err) {
613 dev_err(&pdev->dev,
614 "failed to enable the QSPI system clock\n");
615 goto disable_pclk;
616 }
617 }
618
619 /* Request the IRQ */
620 irq = platform_get_irq(pdev, 0);
621 if (irq < 0) {
622 err = irq;
623 goto disable_qspick;
624 }
625 err = devm_request_irq(&pdev->dev, irq, atmel_qspi_interrupt,
626 0, dev_name(&pdev->dev), aq);
627 if (err)
628 goto disable_qspick;
629
630 atmel_qspi_init(aq);
631
632 err = spi_register_controller(ctrl);
633 if (err)
634 goto disable_qspick;
635
636 return 0;
637
638 disable_qspick:
639 clk_disable_unprepare(aq->qspick);
640 disable_pclk:
641 clk_disable_unprepare(aq->pclk);
642
643 return err;
644 }
645
atmel_qspi_remove(struct platform_device * pdev)646 static int atmel_qspi_remove(struct platform_device *pdev)
647 {
648 struct spi_controller *ctrl = platform_get_drvdata(pdev);
649 struct atmel_qspi *aq = spi_controller_get_devdata(ctrl);
650
651 spi_unregister_controller(ctrl);
652 atmel_qspi_write(QSPI_CR_QSPIDIS, aq, QSPI_CR);
653 clk_disable_unprepare(aq->qspick);
654 clk_disable_unprepare(aq->pclk);
655 return 0;
656 }
657
atmel_qspi_suspend(struct device * dev)658 static int __maybe_unused atmel_qspi_suspend(struct device *dev)
659 {
660 struct spi_controller *ctrl = dev_get_drvdata(dev);
661 struct atmel_qspi *aq = spi_controller_get_devdata(ctrl);
662
663 atmel_qspi_write(QSPI_CR_QSPIDIS, aq, QSPI_CR);
664 clk_disable_unprepare(aq->qspick);
665 clk_disable_unprepare(aq->pclk);
666
667 return 0;
668 }
669
atmel_qspi_resume(struct device * dev)670 static int __maybe_unused atmel_qspi_resume(struct device *dev)
671 {
672 struct spi_controller *ctrl = dev_get_drvdata(dev);
673 struct atmel_qspi *aq = spi_controller_get_devdata(ctrl);
674
675 clk_prepare_enable(aq->pclk);
676 clk_prepare_enable(aq->qspick);
677
678 atmel_qspi_init(aq);
679
680 atmel_qspi_write(aq->scr, aq, QSPI_SCR);
681
682 return 0;
683 }
684
685 static SIMPLE_DEV_PM_OPS(atmel_qspi_pm_ops, atmel_qspi_suspend,
686 atmel_qspi_resume);
687
688 static const struct atmel_qspi_caps atmel_sama5d2_qspi_caps = {};
689
690 static const struct atmel_qspi_caps atmel_sam9x60_qspi_caps = {
691 .has_qspick = true,
692 .has_ricr = true,
693 };
694
695 static const struct of_device_id atmel_qspi_dt_ids[] = {
696 {
697 .compatible = "atmel,sama5d2-qspi",
698 .data = &atmel_sama5d2_qspi_caps,
699 },
700 {
701 .compatible = "microchip,sam9x60-qspi",
702 .data = &atmel_sam9x60_qspi_caps,
703 },
704 { /* sentinel */ }
705 };
706
707 MODULE_DEVICE_TABLE(of, atmel_qspi_dt_ids);
708
709 static struct platform_driver atmel_qspi_driver = {
710 .driver = {
711 .name = "atmel_qspi",
712 .of_match_table = atmel_qspi_dt_ids,
713 .pm = &atmel_qspi_pm_ops,
714 },
715 .probe = atmel_qspi_probe,
716 .remove = atmel_qspi_remove,
717 };
718 module_platform_driver(atmel_qspi_driver);
719
720 MODULE_AUTHOR("Cyrille Pitchen <cyrille.pitchen@atmel.com>");
721 MODULE_AUTHOR("Piotr Bugalski <bugalski.piotr@gmail.com");
722 MODULE_DESCRIPTION("Atmel QSPI Controller driver");
723 MODULE_LICENSE("GPL v2");
724