xref: /linux/drivers/crypto/atmel-sha.c (revision a50eba1e778ad4da5b6f9ddbbf57dabbea59bc05)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Cryptographic API.
4  *
5  * Support for ATMEL SHA1/SHA256 HW acceleration.
6  *
7  * Copyright (c) 2012 Eukréa Electromatique - ATMEL
8  * Author: Nicolas Royer <nicolas@eukrea.com>
9  *
10  * Some ideas are from omap-sham.c drivers.
11  */
12 
13 
14 #include <linux/kernel.h>
15 #include <linux/module.h>
16 #include <linux/slab.h>
17 #include <linux/err.h>
18 #include <linux/clk.h>
19 #include <linux/io.h>
20 #include <linux/hw_random.h>
21 #include <linux/platform_device.h>
22 
23 #include <linux/device.h>
24 #include <linux/dmaengine.h>
25 #include <linux/init.h>
26 #include <linux/errno.h>
27 #include <linux/interrupt.h>
28 #include <linux/irq.h>
29 #include <linux/scatterlist.h>
30 #include <linux/dma-mapping.h>
31 #include <linux/delay.h>
32 #include <linux/crypto.h>
33 #include <crypto/scatterwalk.h>
34 #include <crypto/algapi.h>
35 #include <crypto/sha1.h>
36 #include <crypto/sha2.h>
37 #include <crypto/hash.h>
38 #include <crypto/internal/hash.h>
39 #include "atmel-sha-regs.h"
40 #include "atmel-authenc.h"
41 
42 #define ATMEL_SHA_PRIORITY	300
43 
44 /* SHA flags */
45 #define SHA_FLAGS_BUSY			BIT(0)
46 #define	SHA_FLAGS_FINAL			BIT(1)
47 #define SHA_FLAGS_DMA_ACTIVE	BIT(2)
48 #define SHA_FLAGS_OUTPUT_READY	BIT(3)
49 #define SHA_FLAGS_INIT			BIT(4)
50 #define SHA_FLAGS_CPU			BIT(5)
51 #define SHA_FLAGS_DMA_READY		BIT(6)
52 #define SHA_FLAGS_DUMP_REG	BIT(7)
53 
54 /* bits[11:8] are reserved. */
55 
56 #define SHA_FLAGS_FINUP		BIT(16)
57 #define SHA_FLAGS_SG		BIT(17)
58 #define SHA_FLAGS_ERROR		BIT(23)
59 #define SHA_FLAGS_PAD		BIT(24)
60 #define SHA_FLAGS_RESTORE	BIT(25)
61 #define SHA_FLAGS_IDATAR0	BIT(26)
62 #define SHA_FLAGS_WAIT_DATARDY	BIT(27)
63 
64 #define SHA_OP_INIT	0
65 #define SHA_OP_UPDATE	1
66 #define SHA_OP_FINAL	2
67 #define SHA_OP_DIGEST	3
68 
69 #define SHA_BUFFER_LEN		(PAGE_SIZE / 16)
70 
71 #define ATMEL_SHA_DMA_THRESHOLD		56
72 
73 struct atmel_sha_caps {
74 	bool	has_dma;
75 	bool	has_dualbuff;
76 	bool	has_sha224;
77 	bool	has_sha_384_512;
78 	bool	has_uihv;
79 	bool	has_hmac;
80 };
81 
82 struct atmel_sha_dev;
83 
84 /*
85  * .statesize = sizeof(struct atmel_sha_reqctx) must be <= PAGE_SIZE / 8 as
86  * tested by the ahash_prepare_alg() function.
87  */
88 struct atmel_sha_reqctx {
89 	struct atmel_sha_dev	*dd;
90 	unsigned long	flags;
91 	unsigned long	op;
92 
93 	u8	digest[SHA512_DIGEST_SIZE] __aligned(sizeof(u32));
94 	u64	digcnt[2];
95 	size_t	bufcnt;
96 	size_t	buflen;
97 	dma_addr_t	dma_addr;
98 
99 	/* walk state */
100 	struct scatterlist	*sg;
101 	unsigned int	offset;	/* offset in current sg */
102 	unsigned int	total;	/* total request */
103 
104 	size_t block_size;
105 	size_t hash_size;
106 
107 	u8 buffer[SHA_BUFFER_LEN + SHA512_BLOCK_SIZE] __aligned(sizeof(u32));
108 };
109 
110 typedef int (*atmel_sha_fn_t)(struct atmel_sha_dev *);
111 
112 struct atmel_sha_ctx {
113 	struct atmel_sha_dev	*dd;
114 	atmel_sha_fn_t		start;
115 
116 	unsigned long		flags;
117 };
118 
119 #define ATMEL_SHA_QUEUE_LENGTH	50
120 
121 struct atmel_sha_dma {
122 	struct dma_chan			*chan;
123 	struct dma_slave_config dma_conf;
124 	struct scatterlist	*sg;
125 	int			nents;
126 	unsigned int		last_sg_length;
127 };
128 
129 struct atmel_sha_dev {
130 	struct list_head	list;
131 	unsigned long		phys_base;
132 	struct device		*dev;
133 	struct clk			*iclk;
134 	int					irq;
135 	void __iomem		*io_base;
136 
137 	spinlock_t		lock;
138 	struct tasklet_struct	done_task;
139 	struct tasklet_struct	queue_task;
140 
141 	unsigned long		flags;
142 	struct crypto_queue	queue;
143 	struct ahash_request	*req;
144 	bool			is_async;
145 	bool			force_complete;
146 	atmel_sha_fn_t		resume;
147 	atmel_sha_fn_t		cpu_transfer_complete;
148 
149 	struct atmel_sha_dma	dma_lch_in;
150 
151 	struct atmel_sha_caps	caps;
152 
153 	struct scatterlist	tmp;
154 
155 	u32	hw_version;
156 };
157 
158 struct atmel_sha_drv {
159 	struct list_head	dev_list;
160 	spinlock_t		lock;
161 };
162 
163 static struct atmel_sha_drv atmel_sha = {
164 	.dev_list = LIST_HEAD_INIT(atmel_sha.dev_list),
165 	.lock = __SPIN_LOCK_UNLOCKED(atmel_sha.lock),
166 };
167 
168 #ifdef VERBOSE_DEBUG
169 static const char *atmel_sha_reg_name(u32 offset, char *tmp, size_t sz, bool wr)
170 {
171 	switch (offset) {
172 	case SHA_CR:
173 		return "CR";
174 
175 	case SHA_MR:
176 		return "MR";
177 
178 	case SHA_IER:
179 		return "IER";
180 
181 	case SHA_IDR:
182 		return "IDR";
183 
184 	case SHA_IMR:
185 		return "IMR";
186 
187 	case SHA_ISR:
188 		return "ISR";
189 
190 	case SHA_MSR:
191 		return "MSR";
192 
193 	case SHA_BCR:
194 		return "BCR";
195 
196 	case SHA_REG_DIN(0):
197 	case SHA_REG_DIN(1):
198 	case SHA_REG_DIN(2):
199 	case SHA_REG_DIN(3):
200 	case SHA_REG_DIN(4):
201 	case SHA_REG_DIN(5):
202 	case SHA_REG_DIN(6):
203 	case SHA_REG_DIN(7):
204 	case SHA_REG_DIN(8):
205 	case SHA_REG_DIN(9):
206 	case SHA_REG_DIN(10):
207 	case SHA_REG_DIN(11):
208 	case SHA_REG_DIN(12):
209 	case SHA_REG_DIN(13):
210 	case SHA_REG_DIN(14):
211 	case SHA_REG_DIN(15):
212 		snprintf(tmp, sz, "IDATAR[%u]", (offset - SHA_REG_DIN(0)) >> 2);
213 		break;
214 
215 	case SHA_REG_DIGEST(0):
216 	case SHA_REG_DIGEST(1):
217 	case SHA_REG_DIGEST(2):
218 	case SHA_REG_DIGEST(3):
219 	case SHA_REG_DIGEST(4):
220 	case SHA_REG_DIGEST(5):
221 	case SHA_REG_DIGEST(6):
222 	case SHA_REG_DIGEST(7):
223 	case SHA_REG_DIGEST(8):
224 	case SHA_REG_DIGEST(9):
225 	case SHA_REG_DIGEST(10):
226 	case SHA_REG_DIGEST(11):
227 	case SHA_REG_DIGEST(12):
228 	case SHA_REG_DIGEST(13):
229 	case SHA_REG_DIGEST(14):
230 	case SHA_REG_DIGEST(15):
231 		if (wr)
232 			snprintf(tmp, sz, "IDATAR[%u]",
233 				 16u + ((offset - SHA_REG_DIGEST(0)) >> 2));
234 		else
235 			snprintf(tmp, sz, "ODATAR[%u]",
236 				 (offset - SHA_REG_DIGEST(0)) >> 2);
237 		break;
238 
239 	case SHA_HW_VERSION:
240 		return "HWVER";
241 
242 	default:
243 		snprintf(tmp, sz, "0x%02x", offset);
244 		break;
245 	}
246 
247 	return tmp;
248 }
249 
250 #endif /* VERBOSE_DEBUG */
251 
252 static inline u32 atmel_sha_read(struct atmel_sha_dev *dd, u32 offset)
253 {
254 	u32 value = readl_relaxed(dd->io_base + offset);
255 
256 #ifdef VERBOSE_DEBUG
257 	if (dd->flags & SHA_FLAGS_DUMP_REG) {
258 		char tmp[16];
259 
260 		dev_vdbg(dd->dev, "read 0x%08x from %s\n", value,
261 			 atmel_sha_reg_name(offset, tmp, sizeof(tmp), false));
262 	}
263 #endif /* VERBOSE_DEBUG */
264 
265 	return value;
266 }
267 
268 static inline void atmel_sha_write(struct atmel_sha_dev *dd,
269 					u32 offset, u32 value)
270 {
271 #ifdef VERBOSE_DEBUG
272 	if (dd->flags & SHA_FLAGS_DUMP_REG) {
273 		char tmp[16];
274 
275 		dev_vdbg(dd->dev, "write 0x%08x into %s\n", value,
276 			 atmel_sha_reg_name(offset, tmp, sizeof(tmp), true));
277 	}
278 #endif /* VERBOSE_DEBUG */
279 
280 	writel_relaxed(value, dd->io_base + offset);
281 }
282 
283 static inline int atmel_sha_complete(struct atmel_sha_dev *dd, int err)
284 {
285 	struct ahash_request *req = dd->req;
286 
287 	dd->flags &= ~(SHA_FLAGS_BUSY | SHA_FLAGS_FINAL | SHA_FLAGS_CPU |
288 		       SHA_FLAGS_DMA_READY | SHA_FLAGS_OUTPUT_READY |
289 		       SHA_FLAGS_DUMP_REG);
290 
291 	clk_disable(dd->iclk);
292 
293 	if ((dd->is_async || dd->force_complete) && req->base.complete)
294 		ahash_request_complete(req, err);
295 
296 	/* handle new request */
297 	tasklet_schedule(&dd->queue_task);
298 
299 	return err;
300 }
301 
302 static size_t atmel_sha_append_sg(struct atmel_sha_reqctx *ctx)
303 {
304 	size_t count;
305 
306 	while ((ctx->bufcnt < ctx->buflen) && ctx->total) {
307 		count = min3(ctx->sg->length - ctx->offset, ctx->total,
308 			     ctx->buflen - ctx->bufcnt);
309 
310 		if (count == 0) {
311 			/*
312 			* Check if count == 0 because the buffer is full or
313 			* because the sg length is 0. In the latest case,
314 			* check if there is another sg in the list, a 0 length
315 			* sg doesn't necessarily mean the end of the sg list.
316 			*/
317 			if ((ctx->sg->length == 0) && !sg_is_last(ctx->sg)) {
318 				ctx->sg = sg_next(ctx->sg);
319 				continue;
320 			} else {
321 				break;
322 			}
323 		}
324 
325 		scatterwalk_map_and_copy(ctx->buffer + ctx->bufcnt, ctx->sg,
326 			ctx->offset, count, 0);
327 
328 		ctx->bufcnt += count;
329 		ctx->offset += count;
330 		ctx->total -= count;
331 
332 		if (ctx->offset == ctx->sg->length) {
333 			ctx->sg = sg_next(ctx->sg);
334 			if (ctx->sg)
335 				ctx->offset = 0;
336 			else
337 				ctx->total = 0;
338 		}
339 	}
340 
341 	return 0;
342 }
343 
344 /*
345  * The purpose of this padding is to ensure that the padded message is a
346  * multiple of 512 bits (SHA1/SHA224/SHA256) or 1024 bits (SHA384/SHA512).
347  * The bit "1" is appended at the end of the message followed by
348  * "padlen-1" zero bits. Then a 64 bits block (SHA1/SHA224/SHA256) or
349  * 128 bits block (SHA384/SHA512) equals to the message length in bits
350  * is appended.
351  *
352  * For SHA1/SHA224/SHA256, padlen is calculated as followed:
353  *  - if message length < 56 bytes then padlen = 56 - message length
354  *  - else padlen = 64 + 56 - message length
355  *
356  * For SHA384/SHA512, padlen is calculated as followed:
357  *  - if message length < 112 bytes then padlen = 112 - message length
358  *  - else padlen = 128 + 112 - message length
359  */
360 static void atmel_sha_fill_padding(struct atmel_sha_reqctx *ctx, int length)
361 {
362 	unsigned int index, padlen;
363 	__be64 bits[2];
364 	u64 size[2];
365 
366 	size[0] = ctx->digcnt[0];
367 	size[1] = ctx->digcnt[1];
368 
369 	size[0] += ctx->bufcnt;
370 	if (size[0] < ctx->bufcnt)
371 		size[1]++;
372 
373 	size[0] += length;
374 	if (size[0]  < length)
375 		size[1]++;
376 
377 	bits[1] = cpu_to_be64(size[0] << 3);
378 	bits[0] = cpu_to_be64(size[1] << 3 | size[0] >> 61);
379 
380 	switch (ctx->flags & SHA_FLAGS_ALGO_MASK) {
381 	case SHA_FLAGS_SHA384:
382 	case SHA_FLAGS_SHA512:
383 		index = ctx->bufcnt & 0x7f;
384 		padlen = (index < 112) ? (112 - index) : ((128+112) - index);
385 		*(ctx->buffer + ctx->bufcnt) = 0x80;
386 		memset(ctx->buffer + ctx->bufcnt + 1, 0, padlen-1);
387 		memcpy(ctx->buffer + ctx->bufcnt + padlen, bits, 16);
388 		ctx->bufcnt += padlen + 16;
389 		ctx->flags |= SHA_FLAGS_PAD;
390 		break;
391 
392 	default:
393 		index = ctx->bufcnt & 0x3f;
394 		padlen = (index < 56) ? (56 - index) : ((64+56) - index);
395 		*(ctx->buffer + ctx->bufcnt) = 0x80;
396 		memset(ctx->buffer + ctx->bufcnt + 1, 0, padlen-1);
397 		memcpy(ctx->buffer + ctx->bufcnt + padlen, &bits[1], 8);
398 		ctx->bufcnt += padlen + 8;
399 		ctx->flags |= SHA_FLAGS_PAD;
400 		break;
401 	}
402 }
403 
404 static struct atmel_sha_dev *atmel_sha_find_dev(struct atmel_sha_ctx *tctx)
405 {
406 	struct atmel_sha_dev *dd;
407 
408 	spin_lock_bh(&atmel_sha.lock);
409 	if (!tctx->dd)
410 		tctx->dd = list_first_entry_or_null(&atmel_sha.dev_list,
411 						    struct atmel_sha_dev, list);
412 	dd = tctx->dd;
413 	spin_unlock_bh(&atmel_sha.lock);
414 
415 	return dd;
416 }
417 
418 static int atmel_sha_init(struct ahash_request *req)
419 {
420 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
421 	struct atmel_sha_ctx *tctx = crypto_ahash_ctx(tfm);
422 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
423 	struct atmel_sha_dev *dd = atmel_sha_find_dev(tctx);
424 
425 	ctx->dd = dd;
426 
427 	ctx->flags = 0;
428 
429 	dev_dbg(dd->dev, "init: digest size: %u\n",
430 		crypto_ahash_digestsize(tfm));
431 
432 	switch (crypto_ahash_digestsize(tfm)) {
433 	case SHA1_DIGEST_SIZE:
434 		ctx->flags |= SHA_FLAGS_SHA1;
435 		ctx->block_size = SHA1_BLOCK_SIZE;
436 		break;
437 	case SHA224_DIGEST_SIZE:
438 		ctx->flags |= SHA_FLAGS_SHA224;
439 		ctx->block_size = SHA224_BLOCK_SIZE;
440 		break;
441 	case SHA256_DIGEST_SIZE:
442 		ctx->flags |= SHA_FLAGS_SHA256;
443 		ctx->block_size = SHA256_BLOCK_SIZE;
444 		break;
445 	case SHA384_DIGEST_SIZE:
446 		ctx->flags |= SHA_FLAGS_SHA384;
447 		ctx->block_size = SHA384_BLOCK_SIZE;
448 		break;
449 	case SHA512_DIGEST_SIZE:
450 		ctx->flags |= SHA_FLAGS_SHA512;
451 		ctx->block_size = SHA512_BLOCK_SIZE;
452 		break;
453 	default:
454 		return -EINVAL;
455 	}
456 
457 	ctx->bufcnt = 0;
458 	ctx->digcnt[0] = 0;
459 	ctx->digcnt[1] = 0;
460 	ctx->buflen = SHA_BUFFER_LEN;
461 
462 	return 0;
463 }
464 
465 static void atmel_sha_write_ctrl(struct atmel_sha_dev *dd, int dma)
466 {
467 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(dd->req);
468 	u32 valmr = SHA_MR_MODE_AUTO;
469 	unsigned int i, hashsize = 0;
470 
471 	if (likely(dma)) {
472 		if (!dd->caps.has_dma)
473 			atmel_sha_write(dd, SHA_IER, SHA_INT_TXBUFE);
474 		valmr = SHA_MR_MODE_PDC;
475 		if (dd->caps.has_dualbuff)
476 			valmr |= SHA_MR_DUALBUFF;
477 	} else {
478 		atmel_sha_write(dd, SHA_IER, SHA_INT_DATARDY);
479 	}
480 
481 	switch (ctx->flags & SHA_FLAGS_ALGO_MASK) {
482 	case SHA_FLAGS_SHA1:
483 		valmr |= SHA_MR_ALGO_SHA1;
484 		hashsize = SHA1_DIGEST_SIZE;
485 		break;
486 
487 	case SHA_FLAGS_SHA224:
488 		valmr |= SHA_MR_ALGO_SHA224;
489 		hashsize = SHA256_DIGEST_SIZE;
490 		break;
491 
492 	case SHA_FLAGS_SHA256:
493 		valmr |= SHA_MR_ALGO_SHA256;
494 		hashsize = SHA256_DIGEST_SIZE;
495 		break;
496 
497 	case SHA_FLAGS_SHA384:
498 		valmr |= SHA_MR_ALGO_SHA384;
499 		hashsize = SHA512_DIGEST_SIZE;
500 		break;
501 
502 	case SHA_FLAGS_SHA512:
503 		valmr |= SHA_MR_ALGO_SHA512;
504 		hashsize = SHA512_DIGEST_SIZE;
505 		break;
506 
507 	default:
508 		break;
509 	}
510 
511 	/* Setting CR_FIRST only for the first iteration */
512 	if (!(ctx->digcnt[0] || ctx->digcnt[1])) {
513 		atmel_sha_write(dd, SHA_CR, SHA_CR_FIRST);
514 	} else if (dd->caps.has_uihv && (ctx->flags & SHA_FLAGS_RESTORE)) {
515 		const u32 *hash = (const u32 *)ctx->digest;
516 
517 		/*
518 		 * Restore the hardware context: update the User Initialize
519 		 * Hash Value (UIHV) with the value saved when the latest
520 		 * 'update' operation completed on this very same crypto
521 		 * request.
522 		 */
523 		ctx->flags &= ~SHA_FLAGS_RESTORE;
524 		atmel_sha_write(dd, SHA_CR, SHA_CR_WUIHV);
525 		for (i = 0; i < hashsize / sizeof(u32); ++i)
526 			atmel_sha_write(dd, SHA_REG_DIN(i), hash[i]);
527 		atmel_sha_write(dd, SHA_CR, SHA_CR_FIRST);
528 		valmr |= SHA_MR_UIHV;
529 	}
530 	/*
531 	 * WARNING: If the UIHV feature is not available, the hardware CANNOT
532 	 * process concurrent requests: the internal registers used to store
533 	 * the hash/digest are still set to the partial digest output values
534 	 * computed during the latest round.
535 	 */
536 
537 	atmel_sha_write(dd, SHA_MR, valmr);
538 }
539 
540 static inline int atmel_sha_wait_for_data_ready(struct atmel_sha_dev *dd,
541 						atmel_sha_fn_t resume)
542 {
543 	u32 isr = atmel_sha_read(dd, SHA_ISR);
544 
545 	if (unlikely(isr & SHA_INT_DATARDY))
546 		return resume(dd);
547 
548 	dd->resume = resume;
549 	atmel_sha_write(dd, SHA_IER, SHA_INT_DATARDY);
550 	return -EINPROGRESS;
551 }
552 
553 static int atmel_sha_xmit_cpu(struct atmel_sha_dev *dd, const u8 *buf,
554 			      size_t length, int final)
555 {
556 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(dd->req);
557 	int count, len32;
558 	const u32 *buffer = (const u32 *)buf;
559 
560 	dev_dbg(dd->dev, "xmit_cpu: digcnt: 0x%llx 0x%llx, length: %zd, final: %d\n",
561 		ctx->digcnt[1], ctx->digcnt[0], length, final);
562 
563 	atmel_sha_write_ctrl(dd, 0);
564 
565 	/* should be non-zero before next lines to disable clocks later */
566 	ctx->digcnt[0] += length;
567 	if (ctx->digcnt[0] < length)
568 		ctx->digcnt[1]++;
569 
570 	if (final)
571 		dd->flags |= SHA_FLAGS_FINAL; /* catch last interrupt */
572 
573 	len32 = DIV_ROUND_UP(length, sizeof(u32));
574 
575 	dd->flags |= SHA_FLAGS_CPU;
576 
577 	for (count = 0; count < len32; count++)
578 		atmel_sha_write(dd, SHA_REG_DIN(count), buffer[count]);
579 
580 	return -EINPROGRESS;
581 }
582 
583 static int atmel_sha_xmit_pdc(struct atmel_sha_dev *dd, dma_addr_t dma_addr1,
584 		size_t length1, dma_addr_t dma_addr2, size_t length2, int final)
585 {
586 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(dd->req);
587 	int len32;
588 
589 	dev_dbg(dd->dev, "xmit_pdc: digcnt: 0x%llx 0x%llx, length: %zd, final: %d\n",
590 		ctx->digcnt[1], ctx->digcnt[0], length1, final);
591 
592 	len32 = DIV_ROUND_UP(length1, sizeof(u32));
593 	atmel_sha_write(dd, SHA_PTCR, SHA_PTCR_TXTDIS);
594 	atmel_sha_write(dd, SHA_TPR, dma_addr1);
595 	atmel_sha_write(dd, SHA_TCR, len32);
596 
597 	len32 = DIV_ROUND_UP(length2, sizeof(u32));
598 	atmel_sha_write(dd, SHA_TNPR, dma_addr2);
599 	atmel_sha_write(dd, SHA_TNCR, len32);
600 
601 	atmel_sha_write_ctrl(dd, 1);
602 
603 	/* should be non-zero before next lines to disable clocks later */
604 	ctx->digcnt[0] += length1;
605 	if (ctx->digcnt[0] < length1)
606 		ctx->digcnt[1]++;
607 
608 	if (final)
609 		dd->flags |= SHA_FLAGS_FINAL; /* catch last interrupt */
610 
611 	dd->flags |=  SHA_FLAGS_DMA_ACTIVE;
612 
613 	/* Start DMA transfer */
614 	atmel_sha_write(dd, SHA_PTCR, SHA_PTCR_TXTEN);
615 
616 	return -EINPROGRESS;
617 }
618 
619 static void atmel_sha_dma_callback(void *data)
620 {
621 	struct atmel_sha_dev *dd = data;
622 
623 	dd->is_async = true;
624 
625 	/* dma_lch_in - completed - wait DATRDY */
626 	atmel_sha_write(dd, SHA_IER, SHA_INT_DATARDY);
627 }
628 
629 static int atmel_sha_xmit_dma(struct atmel_sha_dev *dd, dma_addr_t dma_addr1,
630 		size_t length1, dma_addr_t dma_addr2, size_t length2, int final)
631 {
632 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(dd->req);
633 	struct dma_async_tx_descriptor	*in_desc;
634 	struct scatterlist sg[2];
635 
636 	dev_dbg(dd->dev, "xmit_dma: digcnt: 0x%llx 0x%llx, length: %zd, final: %d\n",
637 		ctx->digcnt[1], ctx->digcnt[0], length1, final);
638 
639 	dd->dma_lch_in.dma_conf.src_maxburst = 16;
640 	dd->dma_lch_in.dma_conf.dst_maxburst = 16;
641 
642 	dmaengine_slave_config(dd->dma_lch_in.chan, &dd->dma_lch_in.dma_conf);
643 
644 	if (length2) {
645 		sg_init_table(sg, 2);
646 		sg_dma_address(&sg[0]) = dma_addr1;
647 		sg_dma_len(&sg[0]) = length1;
648 		sg_dma_address(&sg[1]) = dma_addr2;
649 		sg_dma_len(&sg[1]) = length2;
650 		in_desc = dmaengine_prep_slave_sg(dd->dma_lch_in.chan, sg, 2,
651 			DMA_MEM_TO_DEV, DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
652 	} else {
653 		sg_init_table(sg, 1);
654 		sg_dma_address(&sg[0]) = dma_addr1;
655 		sg_dma_len(&sg[0]) = length1;
656 		in_desc = dmaengine_prep_slave_sg(dd->dma_lch_in.chan, sg, 1,
657 			DMA_MEM_TO_DEV, DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
658 	}
659 	if (!in_desc)
660 		return atmel_sha_complete(dd, -EINVAL);
661 
662 	in_desc->callback = atmel_sha_dma_callback;
663 	in_desc->callback_param = dd;
664 
665 	atmel_sha_write_ctrl(dd, 1);
666 
667 	/* should be non-zero before next lines to disable clocks later */
668 	ctx->digcnt[0] += length1;
669 	if (ctx->digcnt[0] < length1)
670 		ctx->digcnt[1]++;
671 
672 	if (final)
673 		dd->flags |= SHA_FLAGS_FINAL; /* catch last interrupt */
674 
675 	dd->flags |=  SHA_FLAGS_DMA_ACTIVE;
676 
677 	/* Start DMA transfer */
678 	dmaengine_submit(in_desc);
679 	dma_async_issue_pending(dd->dma_lch_in.chan);
680 
681 	return -EINPROGRESS;
682 }
683 
684 static int atmel_sha_xmit_start(struct atmel_sha_dev *dd, dma_addr_t dma_addr1,
685 		size_t length1, dma_addr_t dma_addr2, size_t length2, int final)
686 {
687 	if (dd->caps.has_dma)
688 		return atmel_sha_xmit_dma(dd, dma_addr1, length1,
689 				dma_addr2, length2, final);
690 	else
691 		return atmel_sha_xmit_pdc(dd, dma_addr1, length1,
692 				dma_addr2, length2, final);
693 }
694 
695 static int atmel_sha_update_cpu(struct atmel_sha_dev *dd)
696 {
697 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(dd->req);
698 	int bufcnt;
699 
700 	atmel_sha_append_sg(ctx);
701 	atmel_sha_fill_padding(ctx, 0);
702 	bufcnt = ctx->bufcnt;
703 	ctx->bufcnt = 0;
704 
705 	return atmel_sha_xmit_cpu(dd, ctx->buffer, bufcnt, 1);
706 }
707 
708 static int atmel_sha_xmit_dma_map(struct atmel_sha_dev *dd,
709 					struct atmel_sha_reqctx *ctx,
710 					size_t length, int final)
711 {
712 	ctx->dma_addr = dma_map_single(dd->dev, ctx->buffer,
713 				ctx->buflen + ctx->block_size, DMA_TO_DEVICE);
714 	if (dma_mapping_error(dd->dev, ctx->dma_addr)) {
715 		dev_err(dd->dev, "dma %zu bytes error\n", ctx->buflen +
716 				ctx->block_size);
717 		return atmel_sha_complete(dd, -EINVAL);
718 	}
719 
720 	ctx->flags &= ~SHA_FLAGS_SG;
721 
722 	/* next call does not fail... so no unmap in the case of error */
723 	return atmel_sha_xmit_start(dd, ctx->dma_addr, length, 0, 0, final);
724 }
725 
726 static int atmel_sha_update_dma_slow(struct atmel_sha_dev *dd)
727 {
728 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(dd->req);
729 	unsigned int final;
730 	size_t count;
731 
732 	atmel_sha_append_sg(ctx);
733 
734 	final = (ctx->flags & SHA_FLAGS_FINUP) && !ctx->total;
735 
736 	dev_dbg(dd->dev, "slow: bufcnt: %zu, digcnt: 0x%llx 0x%llx, final: %d\n",
737 		 ctx->bufcnt, ctx->digcnt[1], ctx->digcnt[0], final);
738 
739 	if (final)
740 		atmel_sha_fill_padding(ctx, 0);
741 
742 	if (final || (ctx->bufcnt == ctx->buflen)) {
743 		count = ctx->bufcnt;
744 		ctx->bufcnt = 0;
745 		return atmel_sha_xmit_dma_map(dd, ctx, count, final);
746 	}
747 
748 	return 0;
749 }
750 
751 static int atmel_sha_update_dma_start(struct atmel_sha_dev *dd)
752 {
753 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(dd->req);
754 	unsigned int length, final, tail;
755 	struct scatterlist *sg;
756 	unsigned int count;
757 
758 	if (!ctx->total)
759 		return 0;
760 
761 	if (ctx->bufcnt || ctx->offset)
762 		return atmel_sha_update_dma_slow(dd);
763 
764 	dev_dbg(dd->dev, "fast: digcnt: 0x%llx 0x%llx, bufcnt: %zd, total: %u\n",
765 		ctx->digcnt[1], ctx->digcnt[0], ctx->bufcnt, ctx->total);
766 
767 	sg = ctx->sg;
768 
769 	if (!IS_ALIGNED(sg->offset, sizeof(u32)))
770 		return atmel_sha_update_dma_slow(dd);
771 
772 	if (!sg_is_last(sg) && !IS_ALIGNED(sg->length, ctx->block_size))
773 		/* size is not ctx->block_size aligned */
774 		return atmel_sha_update_dma_slow(dd);
775 
776 	length = min(ctx->total, sg->length);
777 
778 	if (sg_is_last(sg)) {
779 		if (!(ctx->flags & SHA_FLAGS_FINUP)) {
780 			/* not last sg must be ctx->block_size aligned */
781 			tail = length & (ctx->block_size - 1);
782 			length -= tail;
783 		}
784 	}
785 
786 	ctx->total -= length;
787 	ctx->offset = length; /* offset where to start slow */
788 
789 	final = (ctx->flags & SHA_FLAGS_FINUP) && !ctx->total;
790 
791 	/* Add padding */
792 	if (final) {
793 		tail = length & (ctx->block_size - 1);
794 		length -= tail;
795 		ctx->total += tail;
796 		ctx->offset = length; /* offset where to start slow */
797 
798 		sg = ctx->sg;
799 		atmel_sha_append_sg(ctx);
800 
801 		atmel_sha_fill_padding(ctx, length);
802 
803 		ctx->dma_addr = dma_map_single(dd->dev, ctx->buffer,
804 			ctx->buflen + ctx->block_size, DMA_TO_DEVICE);
805 		if (dma_mapping_error(dd->dev, ctx->dma_addr)) {
806 			dev_err(dd->dev, "dma %zu bytes error\n",
807 				ctx->buflen + ctx->block_size);
808 			return atmel_sha_complete(dd, -EINVAL);
809 		}
810 
811 		if (length == 0) {
812 			ctx->flags &= ~SHA_FLAGS_SG;
813 			count = ctx->bufcnt;
814 			ctx->bufcnt = 0;
815 			return atmel_sha_xmit_start(dd, ctx->dma_addr, count, 0,
816 					0, final);
817 		} else {
818 			ctx->sg = sg;
819 			if (!dma_map_sg(dd->dev, ctx->sg, 1,
820 				DMA_TO_DEVICE)) {
821 					dev_err(dd->dev, "dma_map_sg  error\n");
822 					return atmel_sha_complete(dd, -EINVAL);
823 			}
824 
825 			ctx->flags |= SHA_FLAGS_SG;
826 
827 			count = ctx->bufcnt;
828 			ctx->bufcnt = 0;
829 			return atmel_sha_xmit_start(dd, sg_dma_address(ctx->sg),
830 					length, ctx->dma_addr, count, final);
831 		}
832 	}
833 
834 	if (!dma_map_sg(dd->dev, ctx->sg, 1, DMA_TO_DEVICE)) {
835 		dev_err(dd->dev, "dma_map_sg  error\n");
836 		return atmel_sha_complete(dd, -EINVAL);
837 	}
838 
839 	ctx->flags |= SHA_FLAGS_SG;
840 
841 	/* next call does not fail... so no unmap in the case of error */
842 	return atmel_sha_xmit_start(dd, sg_dma_address(ctx->sg), length, 0,
843 								0, final);
844 }
845 
846 static void atmel_sha_update_dma_stop(struct atmel_sha_dev *dd)
847 {
848 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(dd->req);
849 
850 	if (ctx->flags & SHA_FLAGS_SG) {
851 		dma_unmap_sg(dd->dev, ctx->sg, 1, DMA_TO_DEVICE);
852 		if (ctx->sg->length == ctx->offset) {
853 			ctx->sg = sg_next(ctx->sg);
854 			if (ctx->sg)
855 				ctx->offset = 0;
856 		}
857 		if (ctx->flags & SHA_FLAGS_PAD) {
858 			dma_unmap_single(dd->dev, ctx->dma_addr,
859 				ctx->buflen + ctx->block_size, DMA_TO_DEVICE);
860 		}
861 	} else {
862 		dma_unmap_single(dd->dev, ctx->dma_addr, ctx->buflen +
863 						ctx->block_size, DMA_TO_DEVICE);
864 	}
865 }
866 
867 static int atmel_sha_update_req(struct atmel_sha_dev *dd)
868 {
869 	struct ahash_request *req = dd->req;
870 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
871 	int err;
872 
873 	dev_dbg(dd->dev, "update_req: total: %u, digcnt: 0x%llx 0x%llx\n",
874 		ctx->total, ctx->digcnt[1], ctx->digcnt[0]);
875 
876 	if (ctx->flags & SHA_FLAGS_CPU)
877 		err = atmel_sha_update_cpu(dd);
878 	else
879 		err = atmel_sha_update_dma_start(dd);
880 
881 	/* wait for dma completion before can take more data */
882 	dev_dbg(dd->dev, "update: err: %d, digcnt: 0x%llx 0%llx\n",
883 			err, ctx->digcnt[1], ctx->digcnt[0]);
884 
885 	return err;
886 }
887 
888 static int atmel_sha_final_req(struct atmel_sha_dev *dd)
889 {
890 	struct ahash_request *req = dd->req;
891 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
892 	int err = 0;
893 	int count;
894 
895 	if (ctx->bufcnt >= ATMEL_SHA_DMA_THRESHOLD) {
896 		atmel_sha_fill_padding(ctx, 0);
897 		count = ctx->bufcnt;
898 		ctx->bufcnt = 0;
899 		err = atmel_sha_xmit_dma_map(dd, ctx, count, 1);
900 	}
901 	/* faster to handle last block with cpu */
902 	else {
903 		atmel_sha_fill_padding(ctx, 0);
904 		count = ctx->bufcnt;
905 		ctx->bufcnt = 0;
906 		err = atmel_sha_xmit_cpu(dd, ctx->buffer, count, 1);
907 	}
908 
909 	dev_dbg(dd->dev, "final_req: err: %d\n", err);
910 
911 	return err;
912 }
913 
914 static void atmel_sha_copy_hash(struct ahash_request *req)
915 {
916 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
917 	u32 *hash = (u32 *)ctx->digest;
918 	unsigned int i, hashsize;
919 
920 	switch (ctx->flags & SHA_FLAGS_ALGO_MASK) {
921 	case SHA_FLAGS_SHA1:
922 		hashsize = SHA1_DIGEST_SIZE;
923 		break;
924 
925 	case SHA_FLAGS_SHA224:
926 	case SHA_FLAGS_SHA256:
927 		hashsize = SHA256_DIGEST_SIZE;
928 		break;
929 
930 	case SHA_FLAGS_SHA384:
931 	case SHA_FLAGS_SHA512:
932 		hashsize = SHA512_DIGEST_SIZE;
933 		break;
934 
935 	default:
936 		/* Should not happen... */
937 		return;
938 	}
939 
940 	for (i = 0; i < hashsize / sizeof(u32); ++i)
941 		hash[i] = atmel_sha_read(ctx->dd, SHA_REG_DIGEST(i));
942 	ctx->flags |= SHA_FLAGS_RESTORE;
943 }
944 
945 static void atmel_sha_copy_ready_hash(struct ahash_request *req)
946 {
947 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
948 
949 	if (!req->result)
950 		return;
951 
952 	switch (ctx->flags & SHA_FLAGS_ALGO_MASK) {
953 	default:
954 	case SHA_FLAGS_SHA1:
955 		memcpy(req->result, ctx->digest, SHA1_DIGEST_SIZE);
956 		break;
957 
958 	case SHA_FLAGS_SHA224:
959 		memcpy(req->result, ctx->digest, SHA224_DIGEST_SIZE);
960 		break;
961 
962 	case SHA_FLAGS_SHA256:
963 		memcpy(req->result, ctx->digest, SHA256_DIGEST_SIZE);
964 		break;
965 
966 	case SHA_FLAGS_SHA384:
967 		memcpy(req->result, ctx->digest, SHA384_DIGEST_SIZE);
968 		break;
969 
970 	case SHA_FLAGS_SHA512:
971 		memcpy(req->result, ctx->digest, SHA512_DIGEST_SIZE);
972 		break;
973 	}
974 }
975 
976 static int atmel_sha_finish(struct ahash_request *req)
977 {
978 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
979 	struct atmel_sha_dev *dd = ctx->dd;
980 
981 	if (ctx->digcnt[0] || ctx->digcnt[1])
982 		atmel_sha_copy_ready_hash(req);
983 
984 	dev_dbg(dd->dev, "digcnt: 0x%llx 0x%llx, bufcnt: %zd\n", ctx->digcnt[1],
985 		ctx->digcnt[0], ctx->bufcnt);
986 
987 	return 0;
988 }
989 
990 static void atmel_sha_finish_req(struct ahash_request *req, int err)
991 {
992 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
993 	struct atmel_sha_dev *dd = ctx->dd;
994 
995 	if (!err) {
996 		atmel_sha_copy_hash(req);
997 		if (SHA_FLAGS_FINAL & dd->flags)
998 			err = atmel_sha_finish(req);
999 	} else {
1000 		ctx->flags |= SHA_FLAGS_ERROR;
1001 	}
1002 
1003 	/* atomic operation is not needed here */
1004 	(void)atmel_sha_complete(dd, err);
1005 }
1006 
1007 static int atmel_sha_hw_init(struct atmel_sha_dev *dd)
1008 {
1009 	int err;
1010 
1011 	err = clk_enable(dd->iclk);
1012 	if (err)
1013 		return err;
1014 
1015 	if (!(SHA_FLAGS_INIT & dd->flags)) {
1016 		atmel_sha_write(dd, SHA_CR, SHA_CR_SWRST);
1017 		dd->flags |= SHA_FLAGS_INIT;
1018 	}
1019 
1020 	return 0;
1021 }
1022 
1023 static inline unsigned int atmel_sha_get_version(struct atmel_sha_dev *dd)
1024 {
1025 	return atmel_sha_read(dd, SHA_HW_VERSION) & 0x00000fff;
1026 }
1027 
1028 static int atmel_sha_hw_version_init(struct atmel_sha_dev *dd)
1029 {
1030 	int err;
1031 
1032 	err = atmel_sha_hw_init(dd);
1033 	if (err)
1034 		return err;
1035 
1036 	dd->hw_version = atmel_sha_get_version(dd);
1037 
1038 	dev_info(dd->dev,
1039 			"version: 0x%x\n", dd->hw_version);
1040 
1041 	clk_disable(dd->iclk);
1042 
1043 	return 0;
1044 }
1045 
1046 static int atmel_sha_handle_queue(struct atmel_sha_dev *dd,
1047 				  struct ahash_request *req)
1048 {
1049 	struct crypto_async_request *async_req, *backlog;
1050 	struct atmel_sha_ctx *ctx;
1051 	unsigned long flags;
1052 	bool start_async;
1053 	int err = 0, ret = 0;
1054 
1055 	spin_lock_irqsave(&dd->lock, flags);
1056 	if (req)
1057 		ret = ahash_enqueue_request(&dd->queue, req);
1058 
1059 	if (SHA_FLAGS_BUSY & dd->flags) {
1060 		spin_unlock_irqrestore(&dd->lock, flags);
1061 		return ret;
1062 	}
1063 
1064 	backlog = crypto_get_backlog(&dd->queue);
1065 	async_req = crypto_dequeue_request(&dd->queue);
1066 	if (async_req)
1067 		dd->flags |= SHA_FLAGS_BUSY;
1068 
1069 	spin_unlock_irqrestore(&dd->lock, flags);
1070 
1071 	if (!async_req)
1072 		return ret;
1073 
1074 	if (backlog)
1075 		crypto_request_complete(backlog, -EINPROGRESS);
1076 
1077 	ctx = crypto_tfm_ctx(async_req->tfm);
1078 
1079 	dd->req = ahash_request_cast(async_req);
1080 	start_async = (dd->req != req);
1081 	dd->is_async = start_async;
1082 	dd->force_complete = false;
1083 
1084 	/* WARNING: ctx->start() MAY change dd->is_async. */
1085 	err = ctx->start(dd);
1086 	return (start_async) ? ret : err;
1087 }
1088 
1089 static int atmel_sha_done(struct atmel_sha_dev *dd);
1090 
1091 static int atmel_sha_start(struct atmel_sha_dev *dd)
1092 {
1093 	struct ahash_request *req = dd->req;
1094 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1095 	int err;
1096 
1097 	dev_dbg(dd->dev, "handling new req, op: %lu, nbytes: %u\n",
1098 						ctx->op, req->nbytes);
1099 
1100 	err = atmel_sha_hw_init(dd);
1101 	if (err)
1102 		return atmel_sha_complete(dd, err);
1103 
1104 	/*
1105 	 * atmel_sha_update_req() and atmel_sha_final_req() can return either:
1106 	 *  -EINPROGRESS: the hardware is busy and the SHA driver will resume
1107 	 *                its job later in the done_task.
1108 	 *                This is the main path.
1109 	 *
1110 	 * 0: the SHA driver can continue its job then release the hardware
1111 	 *    later, if needed, with atmel_sha_finish_req().
1112 	 *    This is the alternate path.
1113 	 *
1114 	 * < 0: an error has occurred so atmel_sha_complete(dd, err) has already
1115 	 *      been called, hence the hardware has been released.
1116 	 *      The SHA driver must stop its job without calling
1117 	 *      atmel_sha_finish_req(), otherwise atmel_sha_complete() would be
1118 	 *      called a second time.
1119 	 *
1120 	 * Please note that currently, atmel_sha_final_req() never returns 0.
1121 	 */
1122 
1123 	dd->resume = atmel_sha_done;
1124 	if (ctx->op == SHA_OP_UPDATE) {
1125 		err = atmel_sha_update_req(dd);
1126 		if (!err && (ctx->flags & SHA_FLAGS_FINUP))
1127 			/* no final() after finup() */
1128 			err = atmel_sha_final_req(dd);
1129 	} else if (ctx->op == SHA_OP_FINAL) {
1130 		err = atmel_sha_final_req(dd);
1131 	}
1132 
1133 	if (!err)
1134 		/* done_task will not finish it, so do it here */
1135 		atmel_sha_finish_req(req, err);
1136 
1137 	dev_dbg(dd->dev, "exit, err: %d\n", err);
1138 
1139 	return err;
1140 }
1141 
1142 static int atmel_sha_enqueue(struct ahash_request *req, unsigned int op)
1143 {
1144 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1145 	struct atmel_sha_ctx *tctx = crypto_tfm_ctx(req->base.tfm);
1146 	struct atmel_sha_dev *dd = tctx->dd;
1147 
1148 	ctx->op = op;
1149 
1150 	return atmel_sha_handle_queue(dd, req);
1151 }
1152 
1153 static int atmel_sha_update(struct ahash_request *req)
1154 {
1155 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1156 
1157 	if (!req->nbytes)
1158 		return 0;
1159 
1160 	ctx->total = req->nbytes;
1161 	ctx->sg = req->src;
1162 	ctx->offset = 0;
1163 
1164 	if (ctx->flags & SHA_FLAGS_FINUP) {
1165 		if (ctx->bufcnt + ctx->total < ATMEL_SHA_DMA_THRESHOLD)
1166 			/* faster to use CPU for short transfers */
1167 			ctx->flags |= SHA_FLAGS_CPU;
1168 	} else if (ctx->bufcnt + ctx->total < ctx->buflen) {
1169 		atmel_sha_append_sg(ctx);
1170 		return 0;
1171 	}
1172 	return atmel_sha_enqueue(req, SHA_OP_UPDATE);
1173 }
1174 
1175 static int atmel_sha_final(struct ahash_request *req)
1176 {
1177 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1178 
1179 	ctx->flags |= SHA_FLAGS_FINUP;
1180 
1181 	if (ctx->flags & SHA_FLAGS_ERROR)
1182 		return 0; /* uncompleted hash is not needed */
1183 
1184 	if (ctx->flags & SHA_FLAGS_PAD)
1185 		/* copy ready hash (+ finalize hmac) */
1186 		return atmel_sha_finish(req);
1187 
1188 	return atmel_sha_enqueue(req, SHA_OP_FINAL);
1189 }
1190 
1191 static int atmel_sha_finup(struct ahash_request *req)
1192 {
1193 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1194 	int err1, err2;
1195 
1196 	ctx->flags |= SHA_FLAGS_FINUP;
1197 
1198 	err1 = atmel_sha_update(req);
1199 	if (err1 == -EINPROGRESS ||
1200 	    (err1 == -EBUSY && (ahash_request_flags(req) &
1201 				CRYPTO_TFM_REQ_MAY_BACKLOG)))
1202 		return err1;
1203 
1204 	/*
1205 	 * final() has to be always called to cleanup resources
1206 	 * even if udpate() failed, except EINPROGRESS
1207 	 */
1208 	err2 = atmel_sha_final(req);
1209 
1210 	return err1 ?: err2;
1211 }
1212 
1213 static int atmel_sha_digest(struct ahash_request *req)
1214 {
1215 	return atmel_sha_init(req) ?: atmel_sha_finup(req);
1216 }
1217 
1218 
1219 static int atmel_sha_export(struct ahash_request *req, void *out)
1220 {
1221 	const struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1222 
1223 	memcpy(out, ctx, sizeof(*ctx));
1224 	return 0;
1225 }
1226 
1227 static int atmel_sha_import(struct ahash_request *req, const void *in)
1228 {
1229 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1230 
1231 	memcpy(ctx, in, sizeof(*ctx));
1232 	return 0;
1233 }
1234 
1235 static int atmel_sha_cra_init(struct crypto_tfm *tfm)
1236 {
1237 	struct atmel_sha_ctx *ctx = crypto_tfm_ctx(tfm);
1238 
1239 	crypto_ahash_set_reqsize(__crypto_ahash_cast(tfm),
1240 				 sizeof(struct atmel_sha_reqctx));
1241 	ctx->start = atmel_sha_start;
1242 
1243 	return 0;
1244 }
1245 
1246 static void atmel_sha_alg_init(struct ahash_alg *alg)
1247 {
1248 	alg->halg.base.cra_priority = ATMEL_SHA_PRIORITY;
1249 	alg->halg.base.cra_flags = CRYPTO_ALG_ASYNC |
1250 				   CRYPTO_ALG_KERN_DRIVER_ONLY;
1251 	alg->halg.base.cra_ctxsize = sizeof(struct atmel_sha_ctx);
1252 	alg->halg.base.cra_module = THIS_MODULE;
1253 	alg->halg.base.cra_init = atmel_sha_cra_init;
1254 
1255 	alg->halg.statesize = sizeof(struct atmel_sha_reqctx);
1256 
1257 	alg->init = atmel_sha_init;
1258 	alg->update = atmel_sha_update;
1259 	alg->final = atmel_sha_final;
1260 	alg->finup = atmel_sha_finup;
1261 	alg->digest = atmel_sha_digest;
1262 	alg->export = atmel_sha_export;
1263 	alg->import = atmel_sha_import;
1264 }
1265 
1266 static struct ahash_alg sha_1_256_algs[] = {
1267 {
1268 	.halg.base.cra_name		= "sha1",
1269 	.halg.base.cra_driver_name	= "atmel-sha1",
1270 	.halg.base.cra_blocksize	= SHA1_BLOCK_SIZE,
1271 
1272 	.halg.digestsize = SHA1_DIGEST_SIZE,
1273 },
1274 {
1275 	.halg.base.cra_name		= "sha256",
1276 	.halg.base.cra_driver_name	= "atmel-sha256",
1277 	.halg.base.cra_blocksize	= SHA256_BLOCK_SIZE,
1278 
1279 	.halg.digestsize = SHA256_DIGEST_SIZE,
1280 },
1281 };
1282 
1283 static struct ahash_alg sha_224_alg = {
1284 	.halg.base.cra_name		= "sha224",
1285 	.halg.base.cra_driver_name	= "atmel-sha224",
1286 	.halg.base.cra_blocksize	= SHA224_BLOCK_SIZE,
1287 
1288 	.halg.digestsize = SHA224_DIGEST_SIZE,
1289 };
1290 
1291 static struct ahash_alg sha_384_512_algs[] = {
1292 {
1293 	.halg.base.cra_name		= "sha384",
1294 	.halg.base.cra_driver_name	= "atmel-sha384",
1295 	.halg.base.cra_blocksize	= SHA384_BLOCK_SIZE,
1296 
1297 	.halg.digestsize = SHA384_DIGEST_SIZE,
1298 },
1299 {
1300 	.halg.base.cra_name		= "sha512",
1301 	.halg.base.cra_driver_name	= "atmel-sha512",
1302 	.halg.base.cra_blocksize	= SHA512_BLOCK_SIZE,
1303 
1304 	.halg.digestsize = SHA512_DIGEST_SIZE,
1305 },
1306 };
1307 
1308 static void atmel_sha_queue_task(unsigned long data)
1309 {
1310 	struct atmel_sha_dev *dd = (struct atmel_sha_dev *)data;
1311 
1312 	atmel_sha_handle_queue(dd, NULL);
1313 }
1314 
1315 static int atmel_sha_done(struct atmel_sha_dev *dd)
1316 {
1317 	int err = 0;
1318 
1319 	if (SHA_FLAGS_CPU & dd->flags) {
1320 		if (SHA_FLAGS_OUTPUT_READY & dd->flags) {
1321 			dd->flags &= ~SHA_FLAGS_OUTPUT_READY;
1322 			goto finish;
1323 		}
1324 	} else if (SHA_FLAGS_DMA_READY & dd->flags) {
1325 		if (SHA_FLAGS_DMA_ACTIVE & dd->flags) {
1326 			dd->flags &= ~SHA_FLAGS_DMA_ACTIVE;
1327 			atmel_sha_update_dma_stop(dd);
1328 		}
1329 		if (SHA_FLAGS_OUTPUT_READY & dd->flags) {
1330 			/* hash or semi-hash ready */
1331 			dd->flags &= ~(SHA_FLAGS_DMA_READY |
1332 						SHA_FLAGS_OUTPUT_READY);
1333 			err = atmel_sha_update_dma_start(dd);
1334 			if (err != -EINPROGRESS)
1335 				goto finish;
1336 		}
1337 	}
1338 	return err;
1339 
1340 finish:
1341 	/* finish curent request */
1342 	atmel_sha_finish_req(dd->req, err);
1343 
1344 	return err;
1345 }
1346 
1347 static void atmel_sha_done_task(unsigned long data)
1348 {
1349 	struct atmel_sha_dev *dd = (struct atmel_sha_dev *)data;
1350 
1351 	dd->is_async = true;
1352 	(void)dd->resume(dd);
1353 }
1354 
1355 static irqreturn_t atmel_sha_irq(int irq, void *dev_id)
1356 {
1357 	struct atmel_sha_dev *sha_dd = dev_id;
1358 	u32 reg;
1359 
1360 	reg = atmel_sha_read(sha_dd, SHA_ISR);
1361 	if (reg & atmel_sha_read(sha_dd, SHA_IMR)) {
1362 		atmel_sha_write(sha_dd, SHA_IDR, reg);
1363 		if (SHA_FLAGS_BUSY & sha_dd->flags) {
1364 			sha_dd->flags |= SHA_FLAGS_OUTPUT_READY;
1365 			if (!(SHA_FLAGS_CPU & sha_dd->flags))
1366 				sha_dd->flags |= SHA_FLAGS_DMA_READY;
1367 			tasklet_schedule(&sha_dd->done_task);
1368 		} else {
1369 			dev_warn(sha_dd->dev, "SHA interrupt when no active requests.\n");
1370 		}
1371 		return IRQ_HANDLED;
1372 	}
1373 
1374 	return IRQ_NONE;
1375 }
1376 
1377 
1378 /* DMA transfer functions */
1379 
1380 static bool atmel_sha_dma_check_aligned(struct atmel_sha_dev *dd,
1381 					struct scatterlist *sg,
1382 					size_t len)
1383 {
1384 	struct atmel_sha_dma *dma = &dd->dma_lch_in;
1385 	struct ahash_request *req = dd->req;
1386 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1387 	size_t bs = ctx->block_size;
1388 	int nents;
1389 
1390 	for (nents = 0; sg; sg = sg_next(sg), ++nents) {
1391 		if (!IS_ALIGNED(sg->offset, sizeof(u32)))
1392 			return false;
1393 
1394 		/*
1395 		 * This is the last sg, the only one that is allowed to
1396 		 * have an unaligned length.
1397 		 */
1398 		if (len <= sg->length) {
1399 			dma->nents = nents + 1;
1400 			dma->last_sg_length = sg->length;
1401 			sg->length = ALIGN(len, sizeof(u32));
1402 			return true;
1403 		}
1404 
1405 		/* All other sg lengths MUST be aligned to the block size. */
1406 		if (!IS_ALIGNED(sg->length, bs))
1407 			return false;
1408 
1409 		len -= sg->length;
1410 	}
1411 
1412 	return false;
1413 }
1414 
1415 static void atmel_sha_dma_callback2(void *data)
1416 {
1417 	struct atmel_sha_dev *dd = data;
1418 	struct atmel_sha_dma *dma = &dd->dma_lch_in;
1419 	struct scatterlist *sg;
1420 	int nents;
1421 
1422 	dma_unmap_sg(dd->dev, dma->sg, dma->nents, DMA_TO_DEVICE);
1423 
1424 	sg = dma->sg;
1425 	for (nents = 0; nents < dma->nents - 1; ++nents)
1426 		sg = sg_next(sg);
1427 	sg->length = dma->last_sg_length;
1428 
1429 	dd->is_async = true;
1430 	(void)atmel_sha_wait_for_data_ready(dd, dd->resume);
1431 }
1432 
1433 static int atmel_sha_dma_start(struct atmel_sha_dev *dd,
1434 			       struct scatterlist *src,
1435 			       size_t len,
1436 			       atmel_sha_fn_t resume)
1437 {
1438 	struct atmel_sha_dma *dma = &dd->dma_lch_in;
1439 	struct dma_slave_config *config = &dma->dma_conf;
1440 	struct dma_chan *chan = dma->chan;
1441 	struct dma_async_tx_descriptor *desc;
1442 	dma_cookie_t cookie;
1443 	unsigned int sg_len;
1444 	int err;
1445 
1446 	dd->resume = resume;
1447 
1448 	/*
1449 	 * dma->nents has already been initialized by
1450 	 * atmel_sha_dma_check_aligned().
1451 	 */
1452 	dma->sg = src;
1453 	sg_len = dma_map_sg(dd->dev, dma->sg, dma->nents, DMA_TO_DEVICE);
1454 	if (!sg_len) {
1455 		err = -ENOMEM;
1456 		goto exit;
1457 	}
1458 
1459 	config->src_maxburst = 16;
1460 	config->dst_maxburst = 16;
1461 	err = dmaengine_slave_config(chan, config);
1462 	if (err)
1463 		goto unmap_sg;
1464 
1465 	desc = dmaengine_prep_slave_sg(chan, dma->sg, sg_len, DMA_MEM_TO_DEV,
1466 				       DMA_PREP_INTERRUPT | DMA_CTRL_ACK);
1467 	if (!desc) {
1468 		err = -ENOMEM;
1469 		goto unmap_sg;
1470 	}
1471 
1472 	desc->callback = atmel_sha_dma_callback2;
1473 	desc->callback_param = dd;
1474 	cookie = dmaengine_submit(desc);
1475 	err = dma_submit_error(cookie);
1476 	if (err)
1477 		goto unmap_sg;
1478 
1479 	dma_async_issue_pending(chan);
1480 
1481 	return -EINPROGRESS;
1482 
1483 unmap_sg:
1484 	dma_unmap_sg(dd->dev, dma->sg, dma->nents, DMA_TO_DEVICE);
1485 exit:
1486 	return atmel_sha_complete(dd, err);
1487 }
1488 
1489 
1490 /* CPU transfer functions */
1491 
1492 static int atmel_sha_cpu_transfer(struct atmel_sha_dev *dd)
1493 {
1494 	struct ahash_request *req = dd->req;
1495 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1496 	const u32 *words = (const u32 *)ctx->buffer;
1497 	size_t i, num_words;
1498 	u32 isr, din, din_inc;
1499 
1500 	din_inc = (ctx->flags & SHA_FLAGS_IDATAR0) ? 0 : 1;
1501 	for (;;) {
1502 		/* Write data into the Input Data Registers. */
1503 		num_words = DIV_ROUND_UP(ctx->bufcnt, sizeof(u32));
1504 		for (i = 0, din = 0; i < num_words; ++i, din += din_inc)
1505 			atmel_sha_write(dd, SHA_REG_DIN(din), words[i]);
1506 
1507 		ctx->offset += ctx->bufcnt;
1508 		ctx->total -= ctx->bufcnt;
1509 
1510 		if (!ctx->total)
1511 			break;
1512 
1513 		/*
1514 		 * Prepare next block:
1515 		 * Fill ctx->buffer now with the next data to be written into
1516 		 * IDATARx: it gives time for the SHA hardware to process
1517 		 * the current data so the SHA_INT_DATARDY flag might be set
1518 		 * in SHA_ISR when polling this register at the beginning of
1519 		 * the next loop.
1520 		 */
1521 		ctx->bufcnt = min_t(size_t, ctx->block_size, ctx->total);
1522 		scatterwalk_map_and_copy(ctx->buffer, ctx->sg,
1523 					 ctx->offset, ctx->bufcnt, 0);
1524 
1525 		/* Wait for hardware to be ready again. */
1526 		isr = atmel_sha_read(dd, SHA_ISR);
1527 		if (!(isr & SHA_INT_DATARDY)) {
1528 			/* Not ready yet. */
1529 			dd->resume = atmel_sha_cpu_transfer;
1530 			atmel_sha_write(dd, SHA_IER, SHA_INT_DATARDY);
1531 			return -EINPROGRESS;
1532 		}
1533 	}
1534 
1535 	if (unlikely(!(ctx->flags & SHA_FLAGS_WAIT_DATARDY)))
1536 		return dd->cpu_transfer_complete(dd);
1537 
1538 	return atmel_sha_wait_for_data_ready(dd, dd->cpu_transfer_complete);
1539 }
1540 
1541 static int atmel_sha_cpu_start(struct atmel_sha_dev *dd,
1542 			       struct scatterlist *sg,
1543 			       unsigned int len,
1544 			       bool idatar0_only,
1545 			       bool wait_data_ready,
1546 			       atmel_sha_fn_t resume)
1547 {
1548 	struct ahash_request *req = dd->req;
1549 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1550 
1551 	if (!len)
1552 		return resume(dd);
1553 
1554 	ctx->flags &= ~(SHA_FLAGS_IDATAR0 | SHA_FLAGS_WAIT_DATARDY);
1555 
1556 	if (idatar0_only)
1557 		ctx->flags |= SHA_FLAGS_IDATAR0;
1558 
1559 	if (wait_data_ready)
1560 		ctx->flags |= SHA_FLAGS_WAIT_DATARDY;
1561 
1562 	ctx->sg = sg;
1563 	ctx->total = len;
1564 	ctx->offset = 0;
1565 
1566 	/* Prepare the first block to be written. */
1567 	ctx->bufcnt = min_t(size_t, ctx->block_size, ctx->total);
1568 	scatterwalk_map_and_copy(ctx->buffer, ctx->sg,
1569 				 ctx->offset, ctx->bufcnt, 0);
1570 
1571 	dd->cpu_transfer_complete = resume;
1572 	return atmel_sha_cpu_transfer(dd);
1573 }
1574 
1575 static int atmel_sha_cpu_hash(struct atmel_sha_dev *dd,
1576 			      const void *data, unsigned int datalen,
1577 			      bool auto_padding,
1578 			      atmel_sha_fn_t resume)
1579 {
1580 	struct ahash_request *req = dd->req;
1581 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1582 	u32 msglen = (auto_padding) ? datalen : 0;
1583 	u32 mr = SHA_MR_MODE_AUTO;
1584 
1585 	if (!(IS_ALIGNED(datalen, ctx->block_size) || auto_padding))
1586 		return atmel_sha_complete(dd, -EINVAL);
1587 
1588 	mr |= (ctx->flags & SHA_FLAGS_ALGO_MASK);
1589 	atmel_sha_write(dd, SHA_MR, mr);
1590 	atmel_sha_write(dd, SHA_MSR, msglen);
1591 	atmel_sha_write(dd, SHA_BCR, msglen);
1592 	atmel_sha_write(dd, SHA_CR, SHA_CR_FIRST);
1593 
1594 	sg_init_one(&dd->tmp, data, datalen);
1595 	return atmel_sha_cpu_start(dd, &dd->tmp, datalen, false, true, resume);
1596 }
1597 
1598 
1599 /* hmac functions */
1600 
1601 struct atmel_sha_hmac_key {
1602 	bool			valid;
1603 	unsigned int		keylen;
1604 	u8			buffer[SHA512_BLOCK_SIZE];
1605 	u8			*keydup;
1606 };
1607 
1608 static inline void atmel_sha_hmac_key_init(struct atmel_sha_hmac_key *hkey)
1609 {
1610 	memset(hkey, 0, sizeof(*hkey));
1611 }
1612 
1613 static inline void atmel_sha_hmac_key_release(struct atmel_sha_hmac_key *hkey)
1614 {
1615 	kfree(hkey->keydup);
1616 	memset(hkey, 0, sizeof(*hkey));
1617 }
1618 
1619 static inline int atmel_sha_hmac_key_set(struct atmel_sha_hmac_key *hkey,
1620 					 const u8 *key,
1621 					 unsigned int keylen)
1622 {
1623 	atmel_sha_hmac_key_release(hkey);
1624 
1625 	if (keylen > sizeof(hkey->buffer)) {
1626 		hkey->keydup = kmemdup(key, keylen, GFP_KERNEL);
1627 		if (!hkey->keydup)
1628 			return -ENOMEM;
1629 
1630 	} else {
1631 		memcpy(hkey->buffer, key, keylen);
1632 	}
1633 
1634 	hkey->valid = true;
1635 	hkey->keylen = keylen;
1636 	return 0;
1637 }
1638 
1639 static inline bool atmel_sha_hmac_key_get(const struct atmel_sha_hmac_key *hkey,
1640 					  const u8 **key,
1641 					  unsigned int *keylen)
1642 {
1643 	if (!hkey->valid)
1644 		return false;
1645 
1646 	*keylen = hkey->keylen;
1647 	*key = (hkey->keydup) ? hkey->keydup : hkey->buffer;
1648 	return true;
1649 }
1650 
1651 
1652 struct atmel_sha_hmac_ctx {
1653 	struct atmel_sha_ctx	base;
1654 
1655 	struct atmel_sha_hmac_key	hkey;
1656 	u32			ipad[SHA512_BLOCK_SIZE / sizeof(u32)];
1657 	u32			opad[SHA512_BLOCK_SIZE / sizeof(u32)];
1658 	atmel_sha_fn_t		resume;
1659 };
1660 
1661 static int atmel_sha_hmac_setup(struct atmel_sha_dev *dd,
1662 				atmel_sha_fn_t resume);
1663 static int atmel_sha_hmac_prehash_key(struct atmel_sha_dev *dd,
1664 				      const u8 *key, unsigned int keylen);
1665 static int atmel_sha_hmac_prehash_key_done(struct atmel_sha_dev *dd);
1666 static int atmel_sha_hmac_compute_ipad_hash(struct atmel_sha_dev *dd);
1667 static int atmel_sha_hmac_compute_opad_hash(struct atmel_sha_dev *dd);
1668 static int atmel_sha_hmac_setup_done(struct atmel_sha_dev *dd);
1669 
1670 static int atmel_sha_hmac_init_done(struct atmel_sha_dev *dd);
1671 static int atmel_sha_hmac_final(struct atmel_sha_dev *dd);
1672 static int atmel_sha_hmac_final_done(struct atmel_sha_dev *dd);
1673 static int atmel_sha_hmac_digest2(struct atmel_sha_dev *dd);
1674 
1675 static int atmel_sha_hmac_setup(struct atmel_sha_dev *dd,
1676 				atmel_sha_fn_t resume)
1677 {
1678 	struct ahash_request *req = dd->req;
1679 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1680 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
1681 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1682 	unsigned int keylen;
1683 	const u8 *key;
1684 	size_t bs;
1685 
1686 	hmac->resume = resume;
1687 	switch (ctx->flags & SHA_FLAGS_ALGO_MASK) {
1688 	case SHA_FLAGS_SHA1:
1689 		ctx->block_size = SHA1_BLOCK_SIZE;
1690 		ctx->hash_size = SHA1_DIGEST_SIZE;
1691 		break;
1692 
1693 	case SHA_FLAGS_SHA224:
1694 		ctx->block_size = SHA224_BLOCK_SIZE;
1695 		ctx->hash_size = SHA256_DIGEST_SIZE;
1696 		break;
1697 
1698 	case SHA_FLAGS_SHA256:
1699 		ctx->block_size = SHA256_BLOCK_SIZE;
1700 		ctx->hash_size = SHA256_DIGEST_SIZE;
1701 		break;
1702 
1703 	case SHA_FLAGS_SHA384:
1704 		ctx->block_size = SHA384_BLOCK_SIZE;
1705 		ctx->hash_size = SHA512_DIGEST_SIZE;
1706 		break;
1707 
1708 	case SHA_FLAGS_SHA512:
1709 		ctx->block_size = SHA512_BLOCK_SIZE;
1710 		ctx->hash_size = SHA512_DIGEST_SIZE;
1711 		break;
1712 
1713 	default:
1714 		return atmel_sha_complete(dd, -EINVAL);
1715 	}
1716 	bs = ctx->block_size;
1717 
1718 	if (likely(!atmel_sha_hmac_key_get(&hmac->hkey, &key, &keylen)))
1719 		return resume(dd);
1720 
1721 	/* Compute K' from K. */
1722 	if (unlikely(keylen > bs))
1723 		return atmel_sha_hmac_prehash_key(dd, key, keylen);
1724 
1725 	/* Prepare ipad. */
1726 	memcpy_and_pad(hmac->ipad, bs, key, keylen, 0);
1727 	return atmel_sha_hmac_compute_ipad_hash(dd);
1728 }
1729 
1730 static int atmel_sha_hmac_prehash_key(struct atmel_sha_dev *dd,
1731 				      const u8 *key, unsigned int keylen)
1732 {
1733 	return atmel_sha_cpu_hash(dd, key, keylen, true,
1734 				  atmel_sha_hmac_prehash_key_done);
1735 }
1736 
1737 static int atmel_sha_hmac_prehash_key_done(struct atmel_sha_dev *dd)
1738 {
1739 	struct ahash_request *req = dd->req;
1740 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
1741 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1742 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1743 	size_t ds = crypto_ahash_digestsize(tfm);
1744 	size_t bs = ctx->block_size;
1745 	size_t i, num_words = ds / sizeof(u32);
1746 
1747 	/* Prepare ipad. */
1748 	for (i = 0; i < num_words; ++i)
1749 		hmac->ipad[i] = atmel_sha_read(dd, SHA_REG_DIGEST(i));
1750 	memset((u8 *)hmac->ipad + ds, 0, bs - ds);
1751 	return atmel_sha_hmac_compute_ipad_hash(dd);
1752 }
1753 
1754 static int atmel_sha_hmac_compute_ipad_hash(struct atmel_sha_dev *dd)
1755 {
1756 	struct ahash_request *req = dd->req;
1757 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
1758 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1759 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1760 	size_t bs = ctx->block_size;
1761 	size_t i, num_words = bs / sizeof(u32);
1762 
1763 	unsafe_memcpy(hmac->opad, hmac->ipad, bs,
1764 		      "fortified memcpy causes -Wrestrict warning");
1765 	for (i = 0; i < num_words; ++i) {
1766 		hmac->ipad[i] ^= 0x36363636;
1767 		hmac->opad[i] ^= 0x5c5c5c5c;
1768 	}
1769 
1770 	return atmel_sha_cpu_hash(dd, hmac->ipad, bs, false,
1771 				  atmel_sha_hmac_compute_opad_hash);
1772 }
1773 
1774 static int atmel_sha_hmac_compute_opad_hash(struct atmel_sha_dev *dd)
1775 {
1776 	struct ahash_request *req = dd->req;
1777 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
1778 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1779 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1780 	size_t bs = ctx->block_size;
1781 	size_t hs = ctx->hash_size;
1782 	size_t i, num_words = hs / sizeof(u32);
1783 
1784 	for (i = 0; i < num_words; ++i)
1785 		hmac->ipad[i] = atmel_sha_read(dd, SHA_REG_DIGEST(i));
1786 	return atmel_sha_cpu_hash(dd, hmac->opad, bs, false,
1787 				  atmel_sha_hmac_setup_done);
1788 }
1789 
1790 static int atmel_sha_hmac_setup_done(struct atmel_sha_dev *dd)
1791 {
1792 	struct ahash_request *req = dd->req;
1793 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
1794 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1795 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1796 	size_t hs = ctx->hash_size;
1797 	size_t i, num_words = hs / sizeof(u32);
1798 
1799 	for (i = 0; i < num_words; ++i)
1800 		hmac->opad[i] = atmel_sha_read(dd, SHA_REG_DIGEST(i));
1801 	atmel_sha_hmac_key_release(&hmac->hkey);
1802 	return hmac->resume(dd);
1803 }
1804 
1805 static int atmel_sha_hmac_start(struct atmel_sha_dev *dd)
1806 {
1807 	struct ahash_request *req = dd->req;
1808 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1809 	int err;
1810 
1811 	err = atmel_sha_hw_init(dd);
1812 	if (err)
1813 		return atmel_sha_complete(dd, err);
1814 
1815 	switch (ctx->op) {
1816 	case SHA_OP_INIT:
1817 		err = atmel_sha_hmac_setup(dd, atmel_sha_hmac_init_done);
1818 		break;
1819 
1820 	case SHA_OP_UPDATE:
1821 		dd->resume = atmel_sha_done;
1822 		err = atmel_sha_update_req(dd);
1823 		break;
1824 
1825 	case SHA_OP_FINAL:
1826 		dd->resume = atmel_sha_hmac_final;
1827 		err = atmel_sha_final_req(dd);
1828 		break;
1829 
1830 	case SHA_OP_DIGEST:
1831 		err = atmel_sha_hmac_setup(dd, atmel_sha_hmac_digest2);
1832 		break;
1833 
1834 	default:
1835 		return atmel_sha_complete(dd, -EINVAL);
1836 	}
1837 
1838 	return err;
1839 }
1840 
1841 static int atmel_sha_hmac_setkey(struct crypto_ahash *tfm, const u8 *key,
1842 				 unsigned int keylen)
1843 {
1844 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1845 
1846 	return atmel_sha_hmac_key_set(&hmac->hkey, key, keylen);
1847 }
1848 
1849 static int atmel_sha_hmac_init(struct ahash_request *req)
1850 {
1851 	int err;
1852 
1853 	err = atmel_sha_init(req);
1854 	if (err)
1855 		return err;
1856 
1857 	return atmel_sha_enqueue(req, SHA_OP_INIT);
1858 }
1859 
1860 static int atmel_sha_hmac_init_done(struct atmel_sha_dev *dd)
1861 {
1862 	struct ahash_request *req = dd->req;
1863 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1864 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
1865 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1866 	size_t bs = ctx->block_size;
1867 	size_t hs = ctx->hash_size;
1868 
1869 	ctx->bufcnt = 0;
1870 	ctx->digcnt[0] = bs;
1871 	ctx->digcnt[1] = 0;
1872 	ctx->flags |= SHA_FLAGS_RESTORE;
1873 	memcpy(ctx->digest, hmac->ipad, hs);
1874 	return atmel_sha_complete(dd, 0);
1875 }
1876 
1877 static int atmel_sha_hmac_final(struct atmel_sha_dev *dd)
1878 {
1879 	struct ahash_request *req = dd->req;
1880 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1881 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
1882 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1883 	u32 *digest = (u32 *)ctx->digest;
1884 	size_t ds = crypto_ahash_digestsize(tfm);
1885 	size_t bs = ctx->block_size;
1886 	size_t hs = ctx->hash_size;
1887 	size_t i, num_words;
1888 	u32 mr;
1889 
1890 	/* Save d = SHA((K' + ipad) | msg). */
1891 	num_words = ds / sizeof(u32);
1892 	for (i = 0; i < num_words; ++i)
1893 		digest[i] = atmel_sha_read(dd, SHA_REG_DIGEST(i));
1894 
1895 	/* Restore context to finish computing SHA((K' + opad) | d). */
1896 	atmel_sha_write(dd, SHA_CR, SHA_CR_WUIHV);
1897 	num_words = hs / sizeof(u32);
1898 	for (i = 0; i < num_words; ++i)
1899 		atmel_sha_write(dd, SHA_REG_DIN(i), hmac->opad[i]);
1900 
1901 	mr = SHA_MR_MODE_AUTO | SHA_MR_UIHV;
1902 	mr |= (ctx->flags & SHA_FLAGS_ALGO_MASK);
1903 	atmel_sha_write(dd, SHA_MR, mr);
1904 	atmel_sha_write(dd, SHA_MSR, bs + ds);
1905 	atmel_sha_write(dd, SHA_BCR, ds);
1906 	atmel_sha_write(dd, SHA_CR, SHA_CR_FIRST);
1907 
1908 	sg_init_one(&dd->tmp, digest, ds);
1909 	return atmel_sha_cpu_start(dd, &dd->tmp, ds, false, true,
1910 				   atmel_sha_hmac_final_done);
1911 }
1912 
1913 static int atmel_sha_hmac_final_done(struct atmel_sha_dev *dd)
1914 {
1915 	/*
1916 	 * req->result might not be sizeof(u32) aligned, so copy the
1917 	 * digest into ctx->digest[] before memcpy() the data into
1918 	 * req->result.
1919 	 */
1920 	atmel_sha_copy_hash(dd->req);
1921 	atmel_sha_copy_ready_hash(dd->req);
1922 	return atmel_sha_complete(dd, 0);
1923 }
1924 
1925 static int atmel_sha_hmac_digest(struct ahash_request *req)
1926 {
1927 	int err;
1928 
1929 	err = atmel_sha_init(req);
1930 	if (err)
1931 		return err;
1932 
1933 	return atmel_sha_enqueue(req, SHA_OP_DIGEST);
1934 }
1935 
1936 static int atmel_sha_hmac_digest2(struct atmel_sha_dev *dd)
1937 {
1938 	struct ahash_request *req = dd->req;
1939 	struct atmel_sha_reqctx *ctx = ahash_request_ctx(req);
1940 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
1941 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
1942 	struct scatterlist *sgbuf;
1943 	size_t hs = ctx->hash_size;
1944 	size_t i, num_words = hs / sizeof(u32);
1945 	bool use_dma = false;
1946 	u32 mr;
1947 
1948 	/* Special case for empty message. */
1949 	if (!req->nbytes) {
1950 		req->nbytes = 0;
1951 		ctx->bufcnt = 0;
1952 		ctx->digcnt[0] = 0;
1953 		ctx->digcnt[1] = 0;
1954 		switch (ctx->flags & SHA_FLAGS_ALGO_MASK) {
1955 		case SHA_FLAGS_SHA1:
1956 		case SHA_FLAGS_SHA224:
1957 		case SHA_FLAGS_SHA256:
1958 			atmel_sha_fill_padding(ctx, 64);
1959 			break;
1960 
1961 		case SHA_FLAGS_SHA384:
1962 		case SHA_FLAGS_SHA512:
1963 			atmel_sha_fill_padding(ctx, 128);
1964 			break;
1965 		}
1966 		sg_init_one(&dd->tmp, ctx->buffer, ctx->bufcnt);
1967 	}
1968 
1969 	/* Check DMA threshold and alignment. */
1970 	if (req->nbytes > ATMEL_SHA_DMA_THRESHOLD &&
1971 	    atmel_sha_dma_check_aligned(dd, req->src, req->nbytes))
1972 		use_dma = true;
1973 
1974 	/* Write both initial hash values to compute a HMAC. */
1975 	atmel_sha_write(dd, SHA_CR, SHA_CR_WUIHV);
1976 	for (i = 0; i < num_words; ++i)
1977 		atmel_sha_write(dd, SHA_REG_DIN(i), hmac->ipad[i]);
1978 
1979 	atmel_sha_write(dd, SHA_CR, SHA_CR_WUIEHV);
1980 	for (i = 0; i < num_words; ++i)
1981 		atmel_sha_write(dd, SHA_REG_DIN(i), hmac->opad[i]);
1982 
1983 	/* Write the Mode, Message Size, Bytes Count then Control Registers. */
1984 	mr = (SHA_MR_HMAC | SHA_MR_DUALBUFF);
1985 	mr |= ctx->flags & SHA_FLAGS_ALGO_MASK;
1986 	if (use_dma)
1987 		mr |= SHA_MR_MODE_IDATAR0;
1988 	else
1989 		mr |= SHA_MR_MODE_AUTO;
1990 	atmel_sha_write(dd, SHA_MR, mr);
1991 
1992 	atmel_sha_write(dd, SHA_MSR, req->nbytes);
1993 	atmel_sha_write(dd, SHA_BCR, req->nbytes);
1994 
1995 	atmel_sha_write(dd, SHA_CR, SHA_CR_FIRST);
1996 
1997 	/* Special case for empty message. */
1998 	if (!req->nbytes) {
1999 		sgbuf = &dd->tmp;
2000 		req->nbytes = ctx->bufcnt;
2001 	} else {
2002 		sgbuf = req->src;
2003 	}
2004 
2005 	/* Process data. */
2006 	if (use_dma)
2007 		return atmel_sha_dma_start(dd, sgbuf, req->nbytes,
2008 					   atmel_sha_hmac_final_done);
2009 
2010 	return atmel_sha_cpu_start(dd, sgbuf, req->nbytes, false, true,
2011 				   atmel_sha_hmac_final_done);
2012 }
2013 
2014 static int atmel_sha_hmac_cra_init(struct crypto_tfm *tfm)
2015 {
2016 	struct atmel_sha_hmac_ctx *hmac = crypto_tfm_ctx(tfm);
2017 
2018 	crypto_ahash_set_reqsize(__crypto_ahash_cast(tfm),
2019 				 sizeof(struct atmel_sha_reqctx));
2020 	hmac->base.start = atmel_sha_hmac_start;
2021 	atmel_sha_hmac_key_init(&hmac->hkey);
2022 
2023 	return 0;
2024 }
2025 
2026 static void atmel_sha_hmac_cra_exit(struct crypto_tfm *tfm)
2027 {
2028 	struct atmel_sha_hmac_ctx *hmac = crypto_tfm_ctx(tfm);
2029 
2030 	atmel_sha_hmac_key_release(&hmac->hkey);
2031 }
2032 
2033 static void atmel_sha_hmac_alg_init(struct ahash_alg *alg)
2034 {
2035 	alg->halg.base.cra_priority = ATMEL_SHA_PRIORITY;
2036 	alg->halg.base.cra_flags = CRYPTO_ALG_ASYNC |
2037 				   CRYPTO_ALG_KERN_DRIVER_ONLY;
2038 	alg->halg.base.cra_ctxsize = sizeof(struct atmel_sha_hmac_ctx);
2039 	alg->halg.base.cra_module = THIS_MODULE;
2040 	alg->halg.base.cra_init	= atmel_sha_hmac_cra_init;
2041 	alg->halg.base.cra_exit	= atmel_sha_hmac_cra_exit;
2042 
2043 	alg->halg.statesize = sizeof(struct atmel_sha_reqctx);
2044 
2045 	alg->init = atmel_sha_hmac_init;
2046 	alg->update = atmel_sha_update;
2047 	alg->final = atmel_sha_final;
2048 	alg->digest = atmel_sha_hmac_digest;
2049 	alg->setkey = atmel_sha_hmac_setkey;
2050 	alg->export = atmel_sha_export;
2051 	alg->import = atmel_sha_import;
2052 }
2053 
2054 static struct ahash_alg sha_hmac_algs[] = {
2055 {
2056 	.halg.base.cra_name		= "hmac(sha1)",
2057 	.halg.base.cra_driver_name	= "atmel-hmac-sha1",
2058 	.halg.base.cra_blocksize	= SHA1_BLOCK_SIZE,
2059 
2060 	.halg.digestsize = SHA1_DIGEST_SIZE,
2061 },
2062 {
2063 	.halg.base.cra_name		= "hmac(sha224)",
2064 	.halg.base.cra_driver_name	= "atmel-hmac-sha224",
2065 	.halg.base.cra_blocksize	= SHA224_BLOCK_SIZE,
2066 
2067 	.halg.digestsize = SHA224_DIGEST_SIZE,
2068 },
2069 {
2070 	.halg.base.cra_name		= "hmac(sha256)",
2071 	.halg.base.cra_driver_name	= "atmel-hmac-sha256",
2072 	.halg.base.cra_blocksize	= SHA256_BLOCK_SIZE,
2073 
2074 	.halg.digestsize = SHA256_DIGEST_SIZE,
2075 },
2076 {
2077 	.halg.base.cra_name		= "hmac(sha384)",
2078 	.halg.base.cra_driver_name	= "atmel-hmac-sha384",
2079 	.halg.base.cra_blocksize	= SHA384_BLOCK_SIZE,
2080 
2081 	.halg.digestsize = SHA384_DIGEST_SIZE,
2082 },
2083 {
2084 	.halg.base.cra_name		= "hmac(sha512)",
2085 	.halg.base.cra_driver_name	= "atmel-hmac-sha512",
2086 	.halg.base.cra_blocksize	= SHA512_BLOCK_SIZE,
2087 
2088 	.halg.digestsize = SHA512_DIGEST_SIZE,
2089 },
2090 };
2091 
2092 #if IS_ENABLED(CONFIG_CRYPTO_DEV_ATMEL_AUTHENC)
2093 /* authenc functions */
2094 
2095 static int atmel_sha_authenc_init2(struct atmel_sha_dev *dd);
2096 static int atmel_sha_authenc_init_done(struct atmel_sha_dev *dd);
2097 static int atmel_sha_authenc_final_done(struct atmel_sha_dev *dd);
2098 
2099 
2100 struct atmel_sha_authenc_ctx {
2101 	struct crypto_ahash	*tfm;
2102 };
2103 
2104 struct atmel_sha_authenc_reqctx {
2105 	struct atmel_sha_reqctx	base;
2106 
2107 	atmel_aes_authenc_fn_t	cb;
2108 	struct atmel_aes_dev	*aes_dev;
2109 
2110 	/* _init() parameters. */
2111 	struct scatterlist	*assoc;
2112 	u32			assoclen;
2113 	u32			textlen;
2114 
2115 	/* _final() parameters. */
2116 	u32			*digest;
2117 	unsigned int		digestlen;
2118 };
2119 
2120 static void atmel_sha_authenc_complete(void *data, int err)
2121 {
2122 	struct ahash_request *req = data;
2123 	struct atmel_sha_authenc_reqctx *authctx  = ahash_request_ctx(req);
2124 
2125 	authctx->cb(authctx->aes_dev, err, authctx->base.dd->is_async);
2126 }
2127 
2128 static int atmel_sha_authenc_start(struct atmel_sha_dev *dd)
2129 {
2130 	struct ahash_request *req = dd->req;
2131 	struct atmel_sha_authenc_reqctx *authctx = ahash_request_ctx(req);
2132 	int err;
2133 
2134 	/*
2135 	 * Force atmel_sha_complete() to call req->base.complete(), ie
2136 	 * atmel_sha_authenc_complete(), which in turn calls authctx->cb().
2137 	 */
2138 	dd->force_complete = true;
2139 
2140 	err = atmel_sha_hw_init(dd);
2141 	return authctx->cb(authctx->aes_dev, err, dd->is_async);
2142 }
2143 
2144 bool atmel_sha_authenc_is_ready(void)
2145 {
2146 	struct atmel_sha_ctx dummy;
2147 
2148 	dummy.dd = NULL;
2149 	return (atmel_sha_find_dev(&dummy) != NULL);
2150 }
2151 EXPORT_SYMBOL_GPL(atmel_sha_authenc_is_ready);
2152 
2153 unsigned int atmel_sha_authenc_get_reqsize(void)
2154 {
2155 	return sizeof(struct atmel_sha_authenc_reqctx);
2156 }
2157 EXPORT_SYMBOL_GPL(atmel_sha_authenc_get_reqsize);
2158 
2159 struct atmel_sha_authenc_ctx *atmel_sha_authenc_spawn(unsigned long mode)
2160 {
2161 	struct atmel_sha_authenc_ctx *auth;
2162 	struct crypto_ahash *tfm;
2163 	struct atmel_sha_ctx *tctx;
2164 	const char *name;
2165 	int err = -EINVAL;
2166 
2167 	switch (mode & SHA_FLAGS_MODE_MASK) {
2168 	case SHA_FLAGS_HMAC_SHA1:
2169 		name = "atmel-hmac-sha1";
2170 		break;
2171 
2172 	case SHA_FLAGS_HMAC_SHA224:
2173 		name = "atmel-hmac-sha224";
2174 		break;
2175 
2176 	case SHA_FLAGS_HMAC_SHA256:
2177 		name = "atmel-hmac-sha256";
2178 		break;
2179 
2180 	case SHA_FLAGS_HMAC_SHA384:
2181 		name = "atmel-hmac-sha384";
2182 		break;
2183 
2184 	case SHA_FLAGS_HMAC_SHA512:
2185 		name = "atmel-hmac-sha512";
2186 		break;
2187 
2188 	default:
2189 		goto error;
2190 	}
2191 
2192 	tfm = crypto_alloc_ahash(name, 0, 0);
2193 	if (IS_ERR(tfm)) {
2194 		err = PTR_ERR(tfm);
2195 		goto error;
2196 	}
2197 	tctx = crypto_ahash_ctx(tfm);
2198 	tctx->start = atmel_sha_authenc_start;
2199 	tctx->flags = mode;
2200 
2201 	auth = kzalloc_obj(*auth);
2202 	if (!auth) {
2203 		err = -ENOMEM;
2204 		goto err_free_ahash;
2205 	}
2206 	auth->tfm = tfm;
2207 
2208 	return auth;
2209 
2210 err_free_ahash:
2211 	crypto_free_ahash(tfm);
2212 error:
2213 	return ERR_PTR(err);
2214 }
2215 EXPORT_SYMBOL_GPL(atmel_sha_authenc_spawn);
2216 
2217 void atmel_sha_authenc_free(struct atmel_sha_authenc_ctx *auth)
2218 {
2219 	if (auth)
2220 		crypto_free_ahash(auth->tfm);
2221 	kfree(auth);
2222 }
2223 EXPORT_SYMBOL_GPL(atmel_sha_authenc_free);
2224 
2225 int atmel_sha_authenc_setkey(struct atmel_sha_authenc_ctx *auth,
2226 			     const u8 *key, unsigned int keylen, u32 flags)
2227 {
2228 	struct crypto_ahash *tfm = auth->tfm;
2229 
2230 	crypto_ahash_clear_flags(tfm, CRYPTO_TFM_REQ_MASK);
2231 	crypto_ahash_set_flags(tfm, flags & CRYPTO_TFM_REQ_MASK);
2232 	return crypto_ahash_setkey(tfm, key, keylen);
2233 }
2234 EXPORT_SYMBOL_GPL(atmel_sha_authenc_setkey);
2235 
2236 int atmel_sha_authenc_schedule(struct ahash_request *req,
2237 			       struct atmel_sha_authenc_ctx *auth,
2238 			       atmel_aes_authenc_fn_t cb,
2239 			       struct atmel_aes_dev *aes_dev)
2240 {
2241 	struct atmel_sha_authenc_reqctx *authctx = ahash_request_ctx(req);
2242 	struct atmel_sha_reqctx *ctx = &authctx->base;
2243 	struct crypto_ahash *tfm = auth->tfm;
2244 	struct atmel_sha_ctx *tctx = crypto_ahash_ctx(tfm);
2245 	struct atmel_sha_dev *dd;
2246 
2247 	/* Reset request context (MUST be done first). */
2248 	memset(authctx, 0, sizeof(*authctx));
2249 
2250 	/* Get SHA device. */
2251 	dd = atmel_sha_find_dev(tctx);
2252 	if (!dd)
2253 		return cb(aes_dev, -ENODEV, false);
2254 
2255 	/* Init request context. */
2256 	ctx->dd = dd;
2257 	ctx->buflen = SHA_BUFFER_LEN;
2258 	authctx->cb = cb;
2259 	authctx->aes_dev = aes_dev;
2260 	ahash_request_set_tfm(req, tfm);
2261 	ahash_request_set_callback(req, 0, atmel_sha_authenc_complete, req);
2262 
2263 	return atmel_sha_handle_queue(dd, req);
2264 }
2265 EXPORT_SYMBOL_GPL(atmel_sha_authenc_schedule);
2266 
2267 int atmel_sha_authenc_init(struct ahash_request *req,
2268 			   struct scatterlist *assoc, unsigned int assoclen,
2269 			   unsigned int textlen,
2270 			   atmel_aes_authenc_fn_t cb,
2271 			   struct atmel_aes_dev *aes_dev)
2272 {
2273 	struct atmel_sha_authenc_reqctx *authctx = ahash_request_ctx(req);
2274 	struct atmel_sha_reqctx *ctx = &authctx->base;
2275 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
2276 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
2277 	struct atmel_sha_dev *dd = ctx->dd;
2278 
2279 	if (unlikely(!IS_ALIGNED(assoclen, sizeof(u32))))
2280 		return atmel_sha_complete(dd, -EINVAL);
2281 
2282 	authctx->cb = cb;
2283 	authctx->aes_dev = aes_dev;
2284 	authctx->assoc = assoc;
2285 	authctx->assoclen = assoclen;
2286 	authctx->textlen = textlen;
2287 
2288 	ctx->flags = hmac->base.flags;
2289 	return atmel_sha_hmac_setup(dd, atmel_sha_authenc_init2);
2290 }
2291 EXPORT_SYMBOL_GPL(atmel_sha_authenc_init);
2292 
2293 static int atmel_sha_authenc_init2(struct atmel_sha_dev *dd)
2294 {
2295 	struct ahash_request *req = dd->req;
2296 	struct atmel_sha_authenc_reqctx *authctx = ahash_request_ctx(req);
2297 	struct atmel_sha_reqctx *ctx = &authctx->base;
2298 	struct crypto_ahash *tfm = crypto_ahash_reqtfm(req);
2299 	struct atmel_sha_hmac_ctx *hmac = crypto_ahash_ctx(tfm);
2300 	size_t hs = ctx->hash_size;
2301 	size_t i, num_words = hs / sizeof(u32);
2302 	u32 mr, msg_size;
2303 
2304 	atmel_sha_write(dd, SHA_CR, SHA_CR_WUIHV);
2305 	for (i = 0; i < num_words; ++i)
2306 		atmel_sha_write(dd, SHA_REG_DIN(i), hmac->ipad[i]);
2307 
2308 	atmel_sha_write(dd, SHA_CR, SHA_CR_WUIEHV);
2309 	for (i = 0; i < num_words; ++i)
2310 		atmel_sha_write(dd, SHA_REG_DIN(i), hmac->opad[i]);
2311 
2312 	mr = (SHA_MR_MODE_IDATAR0 |
2313 	      SHA_MR_HMAC |
2314 	      SHA_MR_DUALBUFF);
2315 	mr |= ctx->flags & SHA_FLAGS_ALGO_MASK;
2316 	atmel_sha_write(dd, SHA_MR, mr);
2317 
2318 	msg_size = authctx->assoclen + authctx->textlen;
2319 	atmel_sha_write(dd, SHA_MSR, msg_size);
2320 	atmel_sha_write(dd, SHA_BCR, msg_size);
2321 
2322 	atmel_sha_write(dd, SHA_CR, SHA_CR_FIRST);
2323 
2324 	/* Process assoc data. */
2325 	return atmel_sha_cpu_start(dd, authctx->assoc, authctx->assoclen,
2326 				   true, false,
2327 				   atmel_sha_authenc_init_done);
2328 }
2329 
2330 static int atmel_sha_authenc_init_done(struct atmel_sha_dev *dd)
2331 {
2332 	struct ahash_request *req = dd->req;
2333 	struct atmel_sha_authenc_reqctx *authctx = ahash_request_ctx(req);
2334 
2335 	return authctx->cb(authctx->aes_dev, 0, dd->is_async);
2336 }
2337 
2338 int atmel_sha_authenc_final(struct ahash_request *req,
2339 			    u32 *digest, unsigned int digestlen,
2340 			    atmel_aes_authenc_fn_t cb,
2341 			    struct atmel_aes_dev *aes_dev)
2342 {
2343 	struct atmel_sha_authenc_reqctx *authctx = ahash_request_ctx(req);
2344 	struct atmel_sha_reqctx *ctx = &authctx->base;
2345 	struct atmel_sha_dev *dd = ctx->dd;
2346 
2347 	switch (ctx->flags & SHA_FLAGS_ALGO_MASK) {
2348 	case SHA_FLAGS_SHA1:
2349 		authctx->digestlen = SHA1_DIGEST_SIZE;
2350 		break;
2351 
2352 	case SHA_FLAGS_SHA224:
2353 		authctx->digestlen = SHA224_DIGEST_SIZE;
2354 		break;
2355 
2356 	case SHA_FLAGS_SHA256:
2357 		authctx->digestlen = SHA256_DIGEST_SIZE;
2358 		break;
2359 
2360 	case SHA_FLAGS_SHA384:
2361 		authctx->digestlen = SHA384_DIGEST_SIZE;
2362 		break;
2363 
2364 	case SHA_FLAGS_SHA512:
2365 		authctx->digestlen = SHA512_DIGEST_SIZE;
2366 		break;
2367 
2368 	default:
2369 		return atmel_sha_complete(dd, -EINVAL);
2370 	}
2371 	if (authctx->digestlen > digestlen)
2372 		authctx->digestlen = digestlen;
2373 
2374 	authctx->cb = cb;
2375 	authctx->aes_dev = aes_dev;
2376 	authctx->digest = digest;
2377 	return atmel_sha_wait_for_data_ready(dd,
2378 					     atmel_sha_authenc_final_done);
2379 }
2380 EXPORT_SYMBOL_GPL(atmel_sha_authenc_final);
2381 
2382 static int atmel_sha_authenc_final_done(struct atmel_sha_dev *dd)
2383 {
2384 	struct ahash_request *req = dd->req;
2385 	struct atmel_sha_authenc_reqctx *authctx = ahash_request_ctx(req);
2386 	size_t i, num_words = authctx->digestlen / sizeof(u32);
2387 
2388 	for (i = 0; i < num_words; ++i)
2389 		authctx->digest[i] = atmel_sha_read(dd, SHA_REG_DIGEST(i));
2390 
2391 	return atmel_sha_complete(dd, 0);
2392 }
2393 
2394 void atmel_sha_authenc_abort(struct ahash_request *req)
2395 {
2396 	struct atmel_sha_authenc_reqctx *authctx = ahash_request_ctx(req);
2397 	struct atmel_sha_reqctx *ctx = &authctx->base;
2398 	struct atmel_sha_dev *dd = ctx->dd;
2399 
2400 	/* Prevent atmel_sha_complete() from calling req->base.complete(). */
2401 	dd->is_async = false;
2402 	dd->force_complete = false;
2403 	(void)atmel_sha_complete(dd, 0);
2404 }
2405 EXPORT_SYMBOL_GPL(atmel_sha_authenc_abort);
2406 
2407 #endif /* CONFIG_CRYPTO_DEV_ATMEL_AUTHENC */
2408 
2409 
2410 static void atmel_sha_unregister_algs(struct atmel_sha_dev *dd)
2411 {
2412 	if (dd->caps.has_hmac)
2413 		crypto_unregister_ahashes(sha_hmac_algs,
2414 					  ARRAY_SIZE(sha_hmac_algs));
2415 
2416 	crypto_unregister_ahashes(sha_1_256_algs, ARRAY_SIZE(sha_1_256_algs));
2417 
2418 	if (dd->caps.has_sha224)
2419 		crypto_unregister_ahash(&sha_224_alg);
2420 
2421 	if (dd->caps.has_sha_384_512)
2422 		crypto_unregister_ahashes(sha_384_512_algs,
2423 					  ARRAY_SIZE(sha_384_512_algs));
2424 }
2425 
2426 static int atmel_sha_register_algs(struct atmel_sha_dev *dd)
2427 {
2428 	int err, i;
2429 
2430 	for (i = 0; i < ARRAY_SIZE(sha_1_256_algs); i++) {
2431 		atmel_sha_alg_init(&sha_1_256_algs[i]);
2432 
2433 		err = crypto_register_ahash(&sha_1_256_algs[i]);
2434 		if (err)
2435 			goto err_sha_1_256_algs;
2436 	}
2437 
2438 	if (dd->caps.has_sha224) {
2439 		atmel_sha_alg_init(&sha_224_alg);
2440 
2441 		err = crypto_register_ahash(&sha_224_alg);
2442 		if (err)
2443 			goto err_sha_224_algs;
2444 	}
2445 
2446 	if (dd->caps.has_sha_384_512) {
2447 		for (i = 0; i < ARRAY_SIZE(sha_384_512_algs); i++) {
2448 			atmel_sha_alg_init(&sha_384_512_algs[i]);
2449 
2450 			err = crypto_register_ahash(&sha_384_512_algs[i]);
2451 			if (err)
2452 				goto err_sha_384_512_algs;
2453 		}
2454 	}
2455 
2456 	if (dd->caps.has_hmac) {
2457 		for (i = 0; i < ARRAY_SIZE(sha_hmac_algs); i++) {
2458 			atmel_sha_hmac_alg_init(&sha_hmac_algs[i]);
2459 
2460 			err = crypto_register_ahash(&sha_hmac_algs[i]);
2461 			if (err)
2462 				goto err_sha_hmac_algs;
2463 		}
2464 	}
2465 
2466 	return 0;
2467 
2468 	/*i = ARRAY_SIZE(sha_hmac_algs);*/
2469 err_sha_hmac_algs:
2470 	crypto_unregister_ahashes(sha_hmac_algs, i);
2471 	i = ARRAY_SIZE(sha_384_512_algs);
2472 err_sha_384_512_algs:
2473 	crypto_unregister_ahashes(sha_384_512_algs, i);
2474 	crypto_unregister_ahash(&sha_224_alg);
2475 err_sha_224_algs:
2476 	i = ARRAY_SIZE(sha_1_256_algs);
2477 err_sha_1_256_algs:
2478 	crypto_unregister_ahashes(sha_1_256_algs, i);
2479 
2480 	return err;
2481 }
2482 
2483 static int atmel_sha_dma_init(struct atmel_sha_dev *dd)
2484 {
2485 	dd->dma_lch_in.chan = dma_request_chan(dd->dev, "tx");
2486 	if (IS_ERR(dd->dma_lch_in.chan)) {
2487 		return dev_err_probe(dd->dev, PTR_ERR(dd->dma_lch_in.chan),
2488 			"DMA channel is not available\n");
2489 	}
2490 
2491 	dd->dma_lch_in.dma_conf.dst_addr = dd->phys_base +
2492 		SHA_REG_DIN(0);
2493 	dd->dma_lch_in.dma_conf.src_maxburst = 1;
2494 	dd->dma_lch_in.dma_conf.src_addr_width =
2495 		DMA_SLAVE_BUSWIDTH_4_BYTES;
2496 	dd->dma_lch_in.dma_conf.dst_maxburst = 1;
2497 	dd->dma_lch_in.dma_conf.dst_addr_width =
2498 		DMA_SLAVE_BUSWIDTH_4_BYTES;
2499 	dd->dma_lch_in.dma_conf.device_fc = false;
2500 
2501 	return 0;
2502 }
2503 
2504 static void atmel_sha_dma_cleanup(struct atmel_sha_dev *dd)
2505 {
2506 	dma_release_channel(dd->dma_lch_in.chan);
2507 }
2508 
2509 static void atmel_sha_get_cap(struct atmel_sha_dev *dd)
2510 {
2511 
2512 	dd->caps.has_dma = 0;
2513 	dd->caps.has_dualbuff = 0;
2514 	dd->caps.has_sha224 = 0;
2515 	dd->caps.has_sha_384_512 = 0;
2516 	dd->caps.has_uihv = 0;
2517 	dd->caps.has_hmac = 0;
2518 
2519 	/* keep only major version number */
2520 	switch (dd->hw_version & 0xff0) {
2521 	case 0x800:
2522 	case 0x700:
2523 	case 0x600:
2524 	case 0x510:
2525 		dd->caps.has_dma = 1;
2526 		dd->caps.has_dualbuff = 1;
2527 		dd->caps.has_sha224 = 1;
2528 		dd->caps.has_sha_384_512 = 1;
2529 		dd->caps.has_uihv = 1;
2530 		dd->caps.has_hmac = 1;
2531 		break;
2532 	case 0x420:
2533 		dd->caps.has_dma = 1;
2534 		dd->caps.has_dualbuff = 1;
2535 		dd->caps.has_sha224 = 1;
2536 		dd->caps.has_sha_384_512 = 1;
2537 		dd->caps.has_uihv = 1;
2538 		break;
2539 	case 0x410:
2540 		dd->caps.has_dma = 1;
2541 		dd->caps.has_dualbuff = 1;
2542 		dd->caps.has_sha224 = 1;
2543 		dd->caps.has_sha_384_512 = 1;
2544 		break;
2545 	case 0x400:
2546 		dd->caps.has_dma = 1;
2547 		dd->caps.has_dualbuff = 1;
2548 		dd->caps.has_sha224 = 1;
2549 		break;
2550 	case 0x320:
2551 		break;
2552 	default:
2553 		dev_warn(dd->dev,
2554 				"Unmanaged sha version, set minimum capabilities\n");
2555 		break;
2556 	}
2557 }
2558 
2559 static const struct of_device_id atmel_sha_dt_ids[] = {
2560 	{ .compatible = "atmel,at91sam9g46-sha" },
2561 	{ /* sentinel */ }
2562 };
2563 
2564 MODULE_DEVICE_TABLE(of, atmel_sha_dt_ids);
2565 
2566 static int atmel_sha_probe(struct platform_device *pdev)
2567 {
2568 	struct atmel_sha_dev *sha_dd;
2569 	struct device *dev = &pdev->dev;
2570 	struct resource *sha_res;
2571 	int err;
2572 
2573 	sha_dd = devm_kzalloc(&pdev->dev, sizeof(*sha_dd), GFP_KERNEL);
2574 	if (!sha_dd)
2575 		return -ENOMEM;
2576 
2577 	sha_dd->dev = dev;
2578 
2579 	platform_set_drvdata(pdev, sha_dd);
2580 
2581 	INIT_LIST_HEAD(&sha_dd->list);
2582 	spin_lock_init(&sha_dd->lock);
2583 
2584 	tasklet_init(&sha_dd->done_task, atmel_sha_done_task,
2585 					(unsigned long)sha_dd);
2586 	tasklet_init(&sha_dd->queue_task, atmel_sha_queue_task,
2587 					(unsigned long)sha_dd);
2588 
2589 	crypto_init_queue(&sha_dd->queue, ATMEL_SHA_QUEUE_LENGTH);
2590 
2591 	sha_dd->io_base = devm_platform_get_and_ioremap_resource(pdev, 0, &sha_res);
2592 	if (IS_ERR(sha_dd->io_base)) {
2593 		err = PTR_ERR(sha_dd->io_base);
2594 		goto err_tasklet_kill;
2595 	}
2596 	sha_dd->phys_base = sha_res->start;
2597 
2598 	/* Get the IRQ */
2599 	sha_dd->irq = platform_get_irq(pdev,  0);
2600 	if (sha_dd->irq < 0) {
2601 		err = sha_dd->irq;
2602 		goto err_tasklet_kill;
2603 	}
2604 
2605 	err = devm_request_irq(&pdev->dev, sha_dd->irq, atmel_sha_irq,
2606 			       IRQF_SHARED, "atmel-sha", sha_dd);
2607 	if (err) {
2608 		dev_err(dev, "unable to request sha irq.\n");
2609 		goto err_tasklet_kill;
2610 	}
2611 
2612 	/* Initializing the clock */
2613 	sha_dd->iclk = devm_clk_get_prepared(&pdev->dev, "sha_clk");
2614 	if (IS_ERR(sha_dd->iclk)) {
2615 		dev_err(dev, "clock initialization failed.\n");
2616 		err = PTR_ERR(sha_dd->iclk);
2617 		goto err_tasklet_kill;
2618 	}
2619 
2620 	err = atmel_sha_hw_version_init(sha_dd);
2621 	if (err)
2622 		goto err_tasklet_kill;
2623 
2624 	atmel_sha_get_cap(sha_dd);
2625 
2626 	if (sha_dd->caps.has_dma) {
2627 		err = atmel_sha_dma_init(sha_dd);
2628 		if (err)
2629 			goto err_tasklet_kill;
2630 
2631 		dev_info(dev, "using %s for DMA transfers\n",
2632 				dma_chan_name(sha_dd->dma_lch_in.chan));
2633 	}
2634 
2635 	spin_lock(&atmel_sha.lock);
2636 	list_add_tail(&sha_dd->list, &atmel_sha.dev_list);
2637 	spin_unlock(&atmel_sha.lock);
2638 
2639 	err = atmel_sha_register_algs(sha_dd);
2640 	if (err)
2641 		goto err_algs;
2642 
2643 	dev_info(dev, "Atmel SHA1/SHA256%s%s\n",
2644 			sha_dd->caps.has_sha224 ? "/SHA224" : "",
2645 			sha_dd->caps.has_sha_384_512 ? "/SHA384/SHA512" : "");
2646 
2647 	return 0;
2648 
2649 err_algs:
2650 	spin_lock(&atmel_sha.lock);
2651 	list_del(&sha_dd->list);
2652 	spin_unlock(&atmel_sha.lock);
2653 	if (sha_dd->caps.has_dma)
2654 		atmel_sha_dma_cleanup(sha_dd);
2655 err_tasklet_kill:
2656 	tasklet_kill(&sha_dd->queue_task);
2657 	tasklet_kill(&sha_dd->done_task);
2658 
2659 	return err;
2660 }
2661 
2662 static void atmel_sha_remove(struct platform_device *pdev)
2663 {
2664 	struct atmel_sha_dev *sha_dd = platform_get_drvdata(pdev);
2665 
2666 	spin_lock(&atmel_sha.lock);
2667 	list_del(&sha_dd->list);
2668 	spin_unlock(&atmel_sha.lock);
2669 
2670 	atmel_sha_unregister_algs(sha_dd);
2671 
2672 	tasklet_kill(&sha_dd->queue_task);
2673 	tasklet_kill(&sha_dd->done_task);
2674 
2675 	if (sha_dd->caps.has_dma)
2676 		atmel_sha_dma_cleanup(sha_dd);
2677 }
2678 
2679 static struct platform_driver atmel_sha_driver = {
2680 	.probe		= atmel_sha_probe,
2681 	.remove		= atmel_sha_remove,
2682 	.driver		= {
2683 		.name	= "atmel_sha",
2684 		.of_match_table	= atmel_sha_dt_ids,
2685 	},
2686 };
2687 
2688 module_platform_driver(atmel_sha_driver);
2689 
2690 MODULE_DESCRIPTION("Atmel SHA (1/256/224/384/512) hw acceleration support.");
2691 MODULE_LICENSE("GPL v2");
2692 MODULE_AUTHOR("Nicolas Royer - Eukréa Electromatique");
2693