safexcel_cipher.c 36.8 KB
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// SPDX-License-Identifier: GPL-2.0
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/*
 * Copyright (C) 2017 Marvell
 *
 * Antoine Tenart <antoine.tenart@free-electrons.com>
 */

#include <linux/device.h>
#include <linux/dma-mapping.h>
#include <linux/dmapool.h>

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#include <crypto/aead.h>
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#include <crypto/aes.h>
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#include <crypto/authenc.h>
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#include <crypto/des.h>
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#include <crypto/sha.h>
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#include <crypto/skcipher.h>
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#include <crypto/internal/aead.h>
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#include <crypto/internal/skcipher.h>
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#include "safexcel.h"

enum safexcel_cipher_direction {
	SAFEXCEL_ENCRYPT,
	SAFEXCEL_DECRYPT,
};

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enum safexcel_cipher_alg {
	SAFEXCEL_DES,
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	SAFEXCEL_3DES,
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	SAFEXCEL_AES,
};

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struct safexcel_cipher_ctx {
	struct safexcel_context base;
	struct safexcel_crypto_priv *priv;

	u32 mode;
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	enum safexcel_cipher_alg alg;
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	bool aead;
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	__le32 key[8];
	unsigned int key_len;
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	/* All the below is AEAD specific */
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	u32 hash_alg;
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	u32 state_sz;
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	u32 ipad[SHA512_DIGEST_SIZE / sizeof(u32)];
	u32 opad[SHA512_DIGEST_SIZE / sizeof(u32)];
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};

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struct safexcel_cipher_req {
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	enum safexcel_cipher_direction direction;
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	bool needs_inv;
};

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static void safexcel_skcipher_token(struct safexcel_cipher_ctx *ctx, u8 *iv,
				    struct safexcel_command_desc *cdesc,
				    u32 length)
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{
	struct safexcel_token *token;
	unsigned offset = 0;

	if (ctx->mode == CONTEXT_CONTROL_CRYPTO_MODE_CBC) {
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		switch (ctx->alg) {
		case SAFEXCEL_DES:
			offset = DES_BLOCK_SIZE / sizeof(u32);
			memcpy(cdesc->control_data.token, iv, DES_BLOCK_SIZE);
			cdesc->control_data.options |= EIP197_OPTION_2_TOKEN_IV_CMD;
			break;
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		case SAFEXCEL_3DES:
			offset = DES3_EDE_BLOCK_SIZE / sizeof(u32);
			memcpy(cdesc->control_data.token, iv, DES3_EDE_BLOCK_SIZE);
			cdesc->control_data.options |= EIP197_OPTION_2_TOKEN_IV_CMD;
			break;

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		case SAFEXCEL_AES:
			offset = AES_BLOCK_SIZE / sizeof(u32);
			memcpy(cdesc->control_data.token, iv, AES_BLOCK_SIZE);
			cdesc->control_data.options |= EIP197_OPTION_4_TOKEN_IV_CMD;
			break;
		}
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	}

	token = (struct safexcel_token *)(cdesc->control_data.token + offset);

	token[0].opcode = EIP197_TOKEN_OPCODE_DIRECTION;
	token[0].packet_length = length;
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	token[0].stat = EIP197_TOKEN_STAT_LAST_PACKET |
			EIP197_TOKEN_STAT_LAST_HASH;
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	token[0].instructions = EIP197_TOKEN_INS_LAST |
				EIP197_TOKEN_INS_TYPE_CRYTO |
				EIP197_TOKEN_INS_TYPE_OUTPUT;
}

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static void safexcel_aead_token(struct safexcel_cipher_ctx *ctx, u8 *iv,
				struct safexcel_command_desc *cdesc,
				enum safexcel_cipher_direction direction,
				u32 cryptlen, u32 assoclen, u32 digestsize)
{
	struct safexcel_token *token;
	unsigned offset = 0;

	if (ctx->mode == CONTEXT_CONTROL_CRYPTO_MODE_CBC) {
		offset = AES_BLOCK_SIZE / sizeof(u32);
		memcpy(cdesc->control_data.token, iv, AES_BLOCK_SIZE);

		cdesc->control_data.options |= EIP197_OPTION_4_TOKEN_IV_CMD;
	}

	token = (struct safexcel_token *)(cdesc->control_data.token + offset);

	if (direction == SAFEXCEL_DECRYPT)
		cryptlen -= digestsize;

	token[0].opcode = EIP197_TOKEN_OPCODE_DIRECTION;
	token[0].packet_length = assoclen;
	token[0].instructions = EIP197_TOKEN_INS_TYPE_HASH |
				EIP197_TOKEN_INS_TYPE_OUTPUT;

	token[1].opcode = EIP197_TOKEN_OPCODE_DIRECTION;
	token[1].packet_length = cryptlen;
	token[1].stat = EIP197_TOKEN_STAT_LAST_HASH;
	token[1].instructions = EIP197_TOKEN_INS_LAST |
				EIP197_TOKEN_INS_TYPE_CRYTO |
				EIP197_TOKEN_INS_TYPE_HASH |
				EIP197_TOKEN_INS_TYPE_OUTPUT;

	if (direction == SAFEXCEL_ENCRYPT) {
		token[2].opcode = EIP197_TOKEN_OPCODE_INSERT;
		token[2].packet_length = digestsize;
		token[2].stat = EIP197_TOKEN_STAT_LAST_HASH |
				EIP197_TOKEN_STAT_LAST_PACKET;
		token[2].instructions = EIP197_TOKEN_INS_TYPE_OUTPUT |
					EIP197_TOKEN_INS_INSERT_HASH_DIGEST;
	} else {
		token[2].opcode = EIP197_TOKEN_OPCODE_RETRIEVE;
		token[2].packet_length = digestsize;
		token[2].stat = EIP197_TOKEN_STAT_LAST_HASH |
				EIP197_TOKEN_STAT_LAST_PACKET;
		token[2].instructions = EIP197_TOKEN_INS_INSERT_HASH_DIGEST;

		token[3].opcode = EIP197_TOKEN_OPCODE_VERIFY;
		token[3].packet_length = digestsize |
					 EIP197_TOKEN_HASH_RESULT_VERIFY;
		token[3].stat = EIP197_TOKEN_STAT_LAST_HASH |
				EIP197_TOKEN_STAT_LAST_PACKET;
		token[3].instructions = EIP197_TOKEN_INS_TYPE_OUTPUT;
	}
}

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static int safexcel_skcipher_aes_setkey(struct crypto_skcipher *ctfm,
					const u8 *key, unsigned int len)
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{
	struct crypto_tfm *tfm = crypto_skcipher_tfm(ctfm);
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);
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	struct safexcel_crypto_priv *priv = ctx->priv;
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	struct crypto_aes_ctx aes;
	int ret, i;

	ret = crypto_aes_expand_key(&aes, key, len);
	if (ret) {
		crypto_skcipher_set_flags(ctfm, CRYPTO_TFM_RES_BAD_KEY_LEN);
		return ret;
	}

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	if (priv->flags & EIP197_TRC_CACHE && ctx->base.ctxr_dma) {
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		for (i = 0; i < len / sizeof(u32); i++) {
			if (ctx->key[i] != cpu_to_le32(aes.key_enc[i])) {
				ctx->base.needs_inv = true;
				break;
			}
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		}
	}

	for (i = 0; i < len / sizeof(u32); i++)
		ctx->key[i] = cpu_to_le32(aes.key_enc[i]);

	ctx->key_len = len;

	memzero_explicit(&aes, sizeof(aes));
	return 0;
}

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static int safexcel_aead_aes_setkey(struct crypto_aead *ctfm, const u8 *key,
				    unsigned int len)
{
	struct crypto_tfm *tfm = crypto_aead_tfm(ctfm);
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);
	struct safexcel_ahash_export_state istate, ostate;
	struct safexcel_crypto_priv *priv = ctx->priv;
	struct crypto_authenc_keys keys;

	if (crypto_authenc_extractkeys(&keys, key, len) != 0)
		goto badkey;

	if (keys.enckeylen > sizeof(ctx->key))
		goto badkey;

	/* Encryption key */
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	if (priv->flags & EIP197_TRC_CACHE && ctx->base.ctxr_dma &&
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	    memcmp(ctx->key, keys.enckey, keys.enckeylen))
		ctx->base.needs_inv = true;

	/* Auth key */
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	switch (ctx->hash_alg) {
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	case CONTEXT_CONTROL_CRYPTO_ALG_SHA1:
		if (safexcel_hmac_setkey("safexcel-sha1", keys.authkey,
					 keys.authkeylen, &istate, &ostate))
			goto badkey;
		break;
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	case CONTEXT_CONTROL_CRYPTO_ALG_SHA224:
		if (safexcel_hmac_setkey("safexcel-sha224", keys.authkey,
					 keys.authkeylen, &istate, &ostate))
			goto badkey;
		break;
	case CONTEXT_CONTROL_CRYPTO_ALG_SHA256:
		if (safexcel_hmac_setkey("safexcel-sha256", keys.authkey,
					 keys.authkeylen, &istate, &ostate))
			goto badkey;
		break;
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	case CONTEXT_CONTROL_CRYPTO_ALG_SHA384:
		if (safexcel_hmac_setkey("safexcel-sha384", keys.authkey,
					 keys.authkeylen, &istate, &ostate))
			goto badkey;
		break;
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	case CONTEXT_CONTROL_CRYPTO_ALG_SHA512:
		if (safexcel_hmac_setkey("safexcel-sha512", keys.authkey,
					 keys.authkeylen, &istate, &ostate))
			goto badkey;
		break;
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	default:
		dev_err(priv->dev, "aead: unsupported hash algorithm\n");
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		goto badkey;
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	}
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	crypto_aead_set_flags(ctfm, crypto_aead_get_flags(ctfm) &
				    CRYPTO_TFM_RES_MASK);

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	if (priv->flags & EIP197_TRC_CACHE && ctx->base.ctxr_dma &&
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	    (memcmp(ctx->ipad, istate.state, ctx->state_sz) ||
	     memcmp(ctx->opad, ostate.state, ctx->state_sz)))
		ctx->base.needs_inv = true;

	/* Now copy the keys into the context */
	memcpy(ctx->key, keys.enckey, keys.enckeylen);
	ctx->key_len = keys.enckeylen;

	memcpy(ctx->ipad, &istate.state, ctx->state_sz);
	memcpy(ctx->opad, &ostate.state, ctx->state_sz);

	memzero_explicit(&keys, sizeof(keys));
	return 0;

badkey:
	crypto_aead_set_flags(ctfm, CRYPTO_TFM_RES_BAD_KEY_LEN);
	memzero_explicit(&keys, sizeof(keys));
	return -EINVAL;
}

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static int safexcel_context_control(struct safexcel_cipher_ctx *ctx,
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				    struct crypto_async_request *async,
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				    struct safexcel_cipher_req *sreq,
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				    struct safexcel_command_desc *cdesc)
{
	struct safexcel_crypto_priv *priv = ctx->priv;
	int ctrl_size;

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	if (ctx->aead) {
		if (sreq->direction == SAFEXCEL_ENCRYPT)
			cdesc->control_data.control0 |= CONTEXT_CONTROL_TYPE_ENCRYPT_HASH_OUT;
		else
			cdesc->control_data.control0 |= CONTEXT_CONTROL_TYPE_HASH_DECRYPT_IN;
	} else {
		cdesc->control_data.control0 |= CONTEXT_CONTROL_TYPE_CRYPTO_OUT;

		/* The decryption control type is a combination of the
		 * encryption type and CONTEXT_CONTROL_TYPE_NULL_IN, for all
		 * types.
		 */
		if (sreq->direction == SAFEXCEL_DECRYPT)
			cdesc->control_data.control0 |= CONTEXT_CONTROL_TYPE_NULL_IN;
	}
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	cdesc->control_data.control0 |= CONTEXT_CONTROL_KEY_EN;
	cdesc->control_data.control1 |= ctx->mode;

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	if (ctx->aead)
		cdesc->control_data.control0 |= CONTEXT_CONTROL_DIGEST_HMAC |
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						ctx->hash_alg;

	if (ctx->alg == SAFEXCEL_DES) {
		cdesc->control_data.control0 |= CONTEXT_CONTROL_CRYPTO_ALG_DES;
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	} else if (ctx->alg == SAFEXCEL_3DES) {
		cdesc->control_data.control0 |= CONTEXT_CONTROL_CRYPTO_ALG_3DES;
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	} else if (ctx->alg == SAFEXCEL_AES) {
		switch (ctx->key_len) {
		case AES_KEYSIZE_128:
			cdesc->control_data.control0 |= CONTEXT_CONTROL_CRYPTO_ALG_AES128;
			break;
		case AES_KEYSIZE_192:
			cdesc->control_data.control0 |= CONTEXT_CONTROL_CRYPTO_ALG_AES192;
			break;
		case AES_KEYSIZE_256:
			cdesc->control_data.control0 |= CONTEXT_CONTROL_CRYPTO_ALG_AES256;
			break;
		default:
			dev_err(priv->dev, "aes keysize not supported: %u\n",
				ctx->key_len);
			return -EINVAL;
		}
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	}
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	ctrl_size = ctx->key_len / sizeof(u32);
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	if (ctx->aead)
		/* Take in account the ipad+opad digests */
		ctrl_size += ctx->state_sz / sizeof(u32) * 2;
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	cdesc->control_data.control0 |= CONTEXT_CONTROL_SIZE(ctrl_size);

	return 0;
}

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static int safexcel_handle_req_result(struct safexcel_crypto_priv *priv, int ring,
				      struct crypto_async_request *async,
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				      struct scatterlist *src,
				      struct scatterlist *dst,
				      unsigned int cryptlen,
				      struct safexcel_cipher_req *sreq,
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				      bool *should_complete, int *ret)
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{
	struct safexcel_result_desc *rdesc;
	int ndesc = 0;

	*ret = 0;

	do {
		rdesc = safexcel_ring_next_rptr(priv, &priv->ring[ring].rdr);
		if (IS_ERR(rdesc)) {
			dev_err(priv->dev,
				"cipher: result: could not retrieve the result descriptor\n");
			*ret = PTR_ERR(rdesc);
			break;
		}

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		if (likely(!*ret))
			*ret = safexcel_rdesc_check_errors(priv, rdesc);
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		ndesc++;
	} while (!rdesc->last_seg);

	safexcel_complete(priv, ring);

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	if (src == dst) {
		dma_unmap_sg(priv->dev, src,
			     sg_nents_for_len(src, cryptlen),
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			     DMA_BIDIRECTIONAL);
	} else {
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		dma_unmap_sg(priv->dev, src,
			     sg_nents_for_len(src, cryptlen),
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			     DMA_TO_DEVICE);
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		dma_unmap_sg(priv->dev, dst,
			     sg_nents_for_len(dst, cryptlen),
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			     DMA_FROM_DEVICE);
	}

	*should_complete = true;

	return ndesc;
}

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static int safexcel_send_req(struct crypto_async_request *base, int ring,
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			     struct safexcel_cipher_req *sreq,
			     struct scatterlist *src, struct scatterlist *dst,
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			     unsigned int cryptlen, unsigned int assoclen,
			     unsigned int digestsize, u8 *iv, int *commands,
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			     int *results)
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{
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	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(base->tfm);
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	struct safexcel_crypto_priv *priv = ctx->priv;
	struct safexcel_command_desc *cdesc;
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	struct safexcel_result_desc *rdesc, *first_rdesc = NULL;
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	struct scatterlist *sg;
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	unsigned int totlen = cryptlen + assoclen;
	int nr_src, nr_dst, n_cdesc = 0, n_rdesc = 0, queued = totlen;
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	int i, ret = 0;

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	if (src == dst) {
		nr_src = dma_map_sg(priv->dev, src,
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				    sg_nents_for_len(src, totlen),
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				    DMA_BIDIRECTIONAL);
		nr_dst = nr_src;
		if (!nr_src)
			return -EINVAL;
	} else {
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		nr_src = dma_map_sg(priv->dev, src,
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				    sg_nents_for_len(src, totlen),
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				    DMA_TO_DEVICE);
		if (!nr_src)
			return -EINVAL;

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		nr_dst = dma_map_sg(priv->dev, dst,
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				    sg_nents_for_len(dst, totlen),
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				    DMA_FROM_DEVICE);
		if (!nr_dst) {
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			dma_unmap_sg(priv->dev, src,
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				     sg_nents_for_len(src, totlen),
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				     DMA_TO_DEVICE);
			return -EINVAL;
		}
	}

	memcpy(ctx->base.ctxr->data, ctx->key, ctx->key_len);

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	if (ctx->aead) {
		memcpy(ctx->base.ctxr->data + ctx->key_len / sizeof(u32),
		       ctx->ipad, ctx->state_sz);
		memcpy(ctx->base.ctxr->data + (ctx->key_len + ctx->state_sz) / sizeof(u32),
		       ctx->opad, ctx->state_sz);
	}

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	/* command descriptors */
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	for_each_sg(src, sg, nr_src, i) {
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		int len = sg_dma_len(sg);

		/* Do not overflow the request */
		if (queued - len < 0)
			len = queued;

		cdesc = safexcel_add_cdesc(priv, ring, !n_cdesc, !(queued - len),
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					   sg_dma_address(sg), len, totlen,
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					   ctx->base.ctxr_dma);
		if (IS_ERR(cdesc)) {
			/* No space left in the command descriptor ring */
			ret = PTR_ERR(cdesc);
			goto cdesc_rollback;
		}
		n_cdesc++;

		if (n_cdesc == 1) {
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			safexcel_context_control(ctx, base, sreq, cdesc);
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			if (ctx->aead)
				safexcel_aead_token(ctx, iv, cdesc,
						    sreq->direction, cryptlen,
						    assoclen, digestsize);
			else
				safexcel_skcipher_token(ctx, iv, cdesc,
							cryptlen);
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		}

		queued -= len;
		if (!queued)
			break;
	}

	/* result descriptors */
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	for_each_sg(dst, sg, nr_dst, i) {
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		bool first = !i, last = (i == nr_dst - 1);
		u32 len = sg_dma_len(sg);

		rdesc = safexcel_add_rdesc(priv, ring, first, last,
					   sg_dma_address(sg), len);
		if (IS_ERR(rdesc)) {
			/* No space left in the result descriptor ring */
			ret = PTR_ERR(rdesc);
			goto rdesc_rollback;
		}
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		if (first)
			first_rdesc = rdesc;
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		n_rdesc++;
	}

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	safexcel_rdr_req_set(priv, ring, first_rdesc, base);
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	*commands = n_cdesc;
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	*results = n_rdesc;
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	return 0;

rdesc_rollback:
	for (i = 0; i < n_rdesc; i++)
		safexcel_ring_rollback_wptr(priv, &priv->ring[ring].rdr);
cdesc_rollback:
	for (i = 0; i < n_cdesc; i++)
		safexcel_ring_rollback_wptr(priv, &priv->ring[ring].cdr);

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	if (src == dst) {
		dma_unmap_sg(priv->dev, src,
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			     sg_nents_for_len(src, totlen),
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			     DMA_BIDIRECTIONAL);
	} else {
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		dma_unmap_sg(priv->dev, src,
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			     sg_nents_for_len(src, totlen),
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			     DMA_TO_DEVICE);
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		dma_unmap_sg(priv->dev, dst,
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			     sg_nents_for_len(dst, totlen),
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			     DMA_FROM_DEVICE);
	}

	return ret;
}

static int safexcel_handle_inv_result(struct safexcel_crypto_priv *priv,
				      int ring,
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				      struct crypto_async_request *base,
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				      bool *should_complete, int *ret)
{
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	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(base->tfm);
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	struct safexcel_result_desc *rdesc;
	int ndesc = 0, enq_ret;

	*ret = 0;

	do {
		rdesc = safexcel_ring_next_rptr(priv, &priv->ring[ring].rdr);
		if (IS_ERR(rdesc)) {
			dev_err(priv->dev,
				"cipher: invalidate: could not retrieve the result descriptor\n");
			*ret = PTR_ERR(rdesc);
			break;
		}

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		if (likely(!*ret))
			*ret = safexcel_rdesc_check_errors(priv, rdesc);
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		ndesc++;
	} while (!rdesc->last_seg);

	safexcel_complete(priv, ring);

	if (ctx->base.exit_inv) {
		dma_pool_free(priv->context_pool, ctx->base.ctxr,
			      ctx->base.ctxr_dma);

		*should_complete = true;

		return ndesc;
	}

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	ring = safexcel_select_ring(priv);
	ctx->base.ring = ring;
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	spin_lock_bh(&priv->ring[ring].queue_lock);
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	enq_ret = crypto_enqueue_request(&priv->ring[ring].queue, base);
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	spin_unlock_bh(&priv->ring[ring].queue_lock);
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	if (enq_ret != -EINPROGRESS)
		*ret = enq_ret;

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	queue_work(priv->ring[ring].workqueue,
		   &priv->ring[ring].work_data.work);
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	*should_complete = false;

	return ndesc;
}

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static int safexcel_skcipher_handle_result(struct safexcel_crypto_priv *priv,
					   int ring,
					   struct crypto_async_request *async,
					   bool *should_complete, int *ret)
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{
	struct skcipher_request *req = skcipher_request_cast(async);
	struct safexcel_cipher_req *sreq = skcipher_request_ctx(req);
	int err;

	if (sreq->needs_inv) {
		sreq->needs_inv = false;
		err = safexcel_handle_inv_result(priv, ring, async,
						 should_complete, ret);
	} else {
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		err = safexcel_handle_req_result(priv, ring, async, req->src,
						 req->dst, req->cryptlen, sreq,
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						 should_complete, ret);
	}

	return err;
}

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static int safexcel_aead_handle_result(struct safexcel_crypto_priv *priv,
				       int ring,
				       struct crypto_async_request *async,
				       bool *should_complete, int *ret)
{
	struct aead_request *req = aead_request_cast(async);
	struct crypto_aead *tfm = crypto_aead_reqtfm(req);
	struct safexcel_cipher_req *sreq = aead_request_ctx(req);
	int err;

	if (sreq->needs_inv) {
		sreq->needs_inv = false;
		err = safexcel_handle_inv_result(priv, ring, async,
						 should_complete, ret);
	} else {
		err = safexcel_handle_req_result(priv, ring, async, req->src,
						 req->dst,
						 req->cryptlen + crypto_aead_authsize(tfm),
						 sreq, should_complete, ret);
	}

	return err;
}

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static int safexcel_cipher_send_inv(struct crypto_async_request *base,
603
				    int ring, int *commands, int *results)
604
{
605
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(base->tfm);
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	struct safexcel_crypto_priv *priv = ctx->priv;
	int ret;

609
	ret = safexcel_invalidate_cache(base, priv, ctx->base.ctxr_dma, ring);
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	if (unlikely(ret))
		return ret;

	*commands = 1;
	*results = 1;

	return 0;
}

619 620
static int safexcel_skcipher_send(struct crypto_async_request *async, int ring,
				  int *commands, int *results)
621 622
{
	struct skcipher_request *req = skcipher_request_cast(async);
623
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(req->base.tfm);
624
	struct safexcel_cipher_req *sreq = skcipher_request_ctx(req);
625
	struct safexcel_crypto_priv *priv = ctx->priv;
626 627
	int ret;

628
	BUG_ON(!(priv->flags & EIP197_TRC_CACHE) && sreq->needs_inv);
629

630
	if (sreq->needs_inv)
631
		ret = safexcel_cipher_send_inv(async, ring, commands, results);
632
	else
633
		ret = safexcel_send_req(async, ring, sreq, req->src,
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					req->dst, req->cryptlen, 0, 0, req->iv,
					commands, results);
	return ret;
}

static int safexcel_aead_send(struct crypto_async_request *async, int ring,
640
			      int *commands, int *results)
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{
	struct aead_request *req = aead_request_cast(async);
	struct crypto_aead *tfm = crypto_aead_reqtfm(req);
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(req->base.tfm);
	struct safexcel_cipher_req *sreq = aead_request_ctx(req);
	struct safexcel_crypto_priv *priv = ctx->priv;
	int ret;

649
	BUG_ON(!(priv->flags & EIP197_TRC_CACHE) && sreq->needs_inv);
650 651

	if (sreq->needs_inv)
652
		ret = safexcel_cipher_send_inv(async, ring, commands, results);
653
	else
654 655
		ret = safexcel_send_req(async, ring, sreq, req->src, req->dst,
					req->cryptlen, req->assoclen,
656
					crypto_aead_authsize(tfm), req->iv,
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					commands, results);
	return ret;
}

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static int safexcel_cipher_exit_inv(struct crypto_tfm *tfm,
				    struct crypto_async_request *base,
				    struct safexcel_cipher_req *sreq,
				    struct safexcel_inv_result *result)
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{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);
	struct safexcel_crypto_priv *priv = ctx->priv;
668
	int ring = ctx->base.ring;
669

670
	init_completion(&result->completion);
671

672
	ctx = crypto_tfm_ctx(base->tfm);
673
	ctx->base.exit_inv = true;
674
	sreq->needs_inv = true;
675

676
	spin_lock_bh(&priv->ring[ring].queue_lock);
677
	crypto_enqueue_request(&priv->ring[ring].queue, base);
678
	spin_unlock_bh(&priv->ring[ring].queue_lock);
679

680 681
	queue_work(priv->ring[ring].workqueue,
		   &priv->ring[ring].work_data.work);
682

683
	wait_for_completion(&result->completion);
684

685
	if (result->error) {
686 687
		dev_warn(priv->dev,
			"cipher: sync: invalidate: completion error %d\n",
688 689
			 result->error);
		return result->error;
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	}

	return 0;
}

695
static int safexcel_skcipher_exit_inv(struct crypto_tfm *tfm)
696
{
697
	EIP197_REQUEST_ON_STACK(req, skcipher, EIP197_SKCIPHER_REQ_SIZE);
698
	struct safexcel_cipher_req *sreq = skcipher_request_ctx(req);
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	struct safexcel_inv_result result = {};

	memset(req, 0, sizeof(struct skcipher_request));

	skcipher_request_set_callback(req, CRYPTO_TFM_REQ_MAY_BACKLOG,
				      safexcel_inv_complete, &result);
	skcipher_request_set_tfm(req, __crypto_skcipher_cast(tfm));

	return safexcel_cipher_exit_inv(tfm, &req->base, sreq, &result);
}

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static int safexcel_aead_exit_inv(struct crypto_tfm *tfm)
{
	EIP197_REQUEST_ON_STACK(req, aead, EIP197_AEAD_REQ_SIZE);
	struct safexcel_cipher_req *sreq = aead_request_ctx(req);
	struct safexcel_inv_result result = {};

	memset(req, 0, sizeof(struct aead_request));

	aead_request_set_callback(req, CRYPTO_TFM_REQ_MAY_BACKLOG,
				  safexcel_inv_complete, &result);
	aead_request_set_tfm(req, __crypto_aead_cast(tfm));

	return safexcel_cipher_exit_inv(tfm, &req->base, sreq, &result);
}

725
static int safexcel_queue_req(struct crypto_async_request *base,
726
			struct safexcel_cipher_req *sreq,
727 728
			enum safexcel_cipher_direction dir, u32 mode,
			enum safexcel_cipher_alg alg)
729 730
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(base->tfm);
731
	struct safexcel_crypto_priv *priv = ctx->priv;
732
	int ret, ring;
733

734
	sreq->needs_inv = false;
735
	sreq->direction = dir;
736
	ctx->alg = alg;
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	ctx->mode = mode;

	if (ctx->base.ctxr) {
740
		if (priv->flags & EIP197_TRC_CACHE && ctx->base.needs_inv) {
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			sreq->needs_inv = true;
			ctx->base.needs_inv = false;
		}
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	} else {
		ctx->base.ring = safexcel_select_ring(priv);
		ctx->base.ctxr = dma_pool_zalloc(priv->context_pool,
747
						 EIP197_GFP_FLAGS(*base),
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						 &ctx->base.ctxr_dma);
		if (!ctx->base.ctxr)
			return -ENOMEM;
	}

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	ring = ctx->base.ring;

	spin_lock_bh(&priv->ring[ring].queue_lock);
756
	ret = crypto_enqueue_request(&priv->ring[ring].queue, base);
757
	spin_unlock_bh(&priv->ring[ring].queue_lock);
758

759 760
	queue_work(priv->ring[ring].workqueue,
		   &priv->ring[ring].work_data.work);
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	return ret;
}

static int safexcel_ecb_aes_encrypt(struct skcipher_request *req)
{
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	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_ENCRYPT, CONTEXT_CONTROL_CRYPTO_MODE_ECB,
			SAFEXCEL_AES);
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}

static int safexcel_ecb_aes_decrypt(struct skcipher_request *req)
{
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	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_DECRYPT, CONTEXT_CONTROL_CRYPTO_MODE_ECB,
			SAFEXCEL_AES);
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}

static int safexcel_skcipher_cra_init(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);
	struct safexcel_alg_template *tmpl =
		container_of(tfm->__crt_alg, struct safexcel_alg_template,
			     alg.skcipher.base);

786 787
	crypto_skcipher_set_reqsize(__crypto_skcipher_cast(tfm),
				    sizeof(struct safexcel_cipher_req));
788

789 790 791 792
	ctx->priv = tmpl->priv;

	ctx->base.send = safexcel_skcipher_send;
	ctx->base.handle_result = safexcel_skcipher_handle_result;
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	return 0;
}

796
static int safexcel_cipher_cra_exit(struct crypto_tfm *tfm)
797 798 799
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);

800
	memzero_explicit(ctx->key, sizeof(ctx->key));
801 802 803

	/* context not allocated, skip invalidation */
	if (!ctx->base.ctxr)
804
		return -ENOMEM;
805

806
	memzero_explicit(ctx->base.ctxr->data, sizeof(ctx->base.ctxr->data));
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	return 0;
}

static void safexcel_skcipher_cra_exit(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);
	struct safexcel_crypto_priv *priv = ctx->priv;
	int ret;

	if (safexcel_cipher_cra_exit(tfm))
		return;
818

819
	if (priv->flags & EIP197_TRC_CACHE) {
820
		ret = safexcel_skcipher_exit_inv(tfm);
821
		if (ret)
822 823
			dev_warn(priv->dev, "skcipher: invalidation error %d\n",
				 ret);
824 825 826 827
	} else {
		dma_pool_free(priv->context_pool, ctx->base.ctxr,
			      ctx->base.ctxr_dma);
	}
828 829
}

830 831 832 833 834 835 836 837 838
static void safexcel_aead_cra_exit(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);
	struct safexcel_crypto_priv *priv = ctx->priv;
	int ret;

	if (safexcel_cipher_cra_exit(tfm))
		return;

839
	if (priv->flags & EIP197_TRC_CACHE) {
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		ret = safexcel_aead_exit_inv(tfm);
		if (ret)
			dev_warn(priv->dev, "aead: invalidation error %d\n",
				 ret);
	} else {
		dma_pool_free(priv->context_pool, ctx->base.ctxr,
			      ctx->base.ctxr_dma);
	}
}

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struct safexcel_alg_template safexcel_alg_ecb_aes = {
	.type = SAFEXCEL_ALG_TYPE_SKCIPHER,
852
	.engines = EIP97IES | EIP197B | EIP197D,
853
	.alg.skcipher = {
854
		.setkey = safexcel_skcipher_aes_setkey,
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		.encrypt = safexcel_ecb_aes_encrypt,
		.decrypt = safexcel_ecb_aes_decrypt,
		.min_keysize = AES_MIN_KEY_SIZE,
		.max_keysize = AES_MAX_KEY_SIZE,
		.base = {
			.cra_name = "ecb(aes)",
			.cra_driver_name = "safexcel-ecb-aes",
			.cra_priority = 300,
863
			.cra_flags = CRYPTO_ALG_ASYNC |
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				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = AES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_skcipher_cra_init,
			.cra_exit = safexcel_skcipher_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};

static int safexcel_cbc_aes_encrypt(struct skcipher_request *req)
{
877 878 879
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_ENCRYPT, CONTEXT_CONTROL_CRYPTO_MODE_CBC,
			SAFEXCEL_AES);
880 881 882 883
}

static int safexcel_cbc_aes_decrypt(struct skcipher_request *req)
{
884 885 886
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_DECRYPT, CONTEXT_CONTROL_CRYPTO_MODE_CBC,
			SAFEXCEL_AES);
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}

struct safexcel_alg_template safexcel_alg_cbc_aes = {
	.type = SAFEXCEL_ALG_TYPE_SKCIPHER,
891
	.engines = EIP97IES | EIP197B | EIP197D,
892
	.alg.skcipher = {
893
		.setkey = safexcel_skcipher_aes_setkey,
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		.encrypt = safexcel_cbc_aes_encrypt,
		.decrypt = safexcel_cbc_aes_decrypt,
		.min_keysize = AES_MIN_KEY_SIZE,
		.max_keysize = AES_MAX_KEY_SIZE,
		.ivsize = AES_BLOCK_SIZE,
		.base = {
			.cra_name = "cbc(aes)",
			.cra_driver_name = "safexcel-cbc-aes",
			.cra_priority = 300,
903
			.cra_flags = CRYPTO_ALG_ASYNC |
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				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = AES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_skcipher_cra_init,
			.cra_exit = safexcel_skcipher_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};
914

915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942
static int safexcel_cbc_des_encrypt(struct skcipher_request *req)
{
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_ENCRYPT, CONTEXT_CONTROL_CRYPTO_MODE_CBC,
			SAFEXCEL_DES);
}

static int safexcel_cbc_des_decrypt(struct skcipher_request *req)
{
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_DECRYPT, CONTEXT_CONTROL_CRYPTO_MODE_CBC,
			SAFEXCEL_DES);
}

static int safexcel_des_setkey(struct crypto_skcipher *ctfm, const u8 *key,
			       unsigned int len)
{
	struct crypto_tfm *tfm = crypto_skcipher_tfm(ctfm);
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);
	u32 tmp[DES_EXPKEY_WORDS];
	int ret;

	if (len != DES_KEY_SIZE) {
		crypto_skcipher_set_flags(ctfm, CRYPTO_TFM_RES_BAD_KEY_LEN);
		return -EINVAL;
	}

	ret = des_ekey(tmp, key);
943
	if (!ret && (tfm->crt_flags & CRYPTO_TFM_REQ_FORBID_WEAK_KEYS)) {
944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972
		tfm->crt_flags |= CRYPTO_TFM_RES_WEAK_KEY;
		return -EINVAL;
	}

	/* if context exits and key changed, need to invalidate it */
	if (ctx->base.ctxr_dma)
		if (memcmp(ctx->key, key, len))
			ctx->base.needs_inv = true;

	memcpy(ctx->key, key, len);
	ctx->key_len = len;

	return 0;
}

struct safexcel_alg_template safexcel_alg_cbc_des = {
	.type = SAFEXCEL_ALG_TYPE_SKCIPHER,
	.engines = EIP97IES | EIP197B | EIP197D,
	.alg.skcipher = {
		.setkey = safexcel_des_setkey,
		.encrypt = safexcel_cbc_des_encrypt,
		.decrypt = safexcel_cbc_des_decrypt,
		.min_keysize = DES_KEY_SIZE,
		.max_keysize = DES_KEY_SIZE,
		.ivsize = DES_BLOCK_SIZE,
		.base = {
			.cra_name = "cbc(des)",
			.cra_driver_name = "safexcel-cbc-des",
			.cra_priority = 300,
973
			.cra_flags = CRYPTO_ALG_ASYNC |
974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012
				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = DES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_skcipher_cra_init,
			.cra_exit = safexcel_skcipher_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};

static int safexcel_ecb_des_encrypt(struct skcipher_request *req)
{
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_ENCRYPT, CONTEXT_CONTROL_CRYPTO_MODE_ECB,
			SAFEXCEL_DES);
}

static int safexcel_ecb_des_decrypt(struct skcipher_request *req)
{
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_DECRYPT, CONTEXT_CONTROL_CRYPTO_MODE_ECB,
			SAFEXCEL_DES);
}

struct safexcel_alg_template safexcel_alg_ecb_des = {
	.type = SAFEXCEL_ALG_TYPE_SKCIPHER,
	.engines = EIP97IES | EIP197B | EIP197D,
	.alg.skcipher = {
		.setkey = safexcel_des_setkey,
		.encrypt = safexcel_ecb_des_encrypt,
		.decrypt = safexcel_ecb_des_decrypt,
		.min_keysize = DES_KEY_SIZE,
		.max_keysize = DES_KEY_SIZE,
		.ivsize = DES_BLOCK_SIZE,
		.base = {
			.cra_name = "ecb(des)",
			.cra_driver_name = "safexcel-ecb-des",
			.cra_priority = 300,
1013
			.cra_flags = CRYPTO_ALG_ASYNC |
1014 1015 1016 1017 1018 1019 1020 1021 1022 1023
				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = DES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_skcipher_cra_init,
			.cra_exit = safexcel_skcipher_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};
1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076

static int safexcel_cbc_des3_ede_encrypt(struct skcipher_request *req)
{
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_ENCRYPT, CONTEXT_CONTROL_CRYPTO_MODE_CBC,
			SAFEXCEL_3DES);
}

static int safexcel_cbc_des3_ede_decrypt(struct skcipher_request *req)
{
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_DECRYPT, CONTEXT_CONTROL_CRYPTO_MODE_CBC,
			SAFEXCEL_3DES);
}

static int safexcel_des3_ede_setkey(struct crypto_skcipher *ctfm,
				   const u8 *key, unsigned int len)
{
	struct crypto_tfm *tfm = crypto_skcipher_tfm(ctfm);
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);

	if (len != DES3_EDE_KEY_SIZE) {
		crypto_skcipher_set_flags(ctfm, CRYPTO_TFM_RES_BAD_KEY_LEN);
		return -EINVAL;
	}

	/* if context exits and key changed, need to invalidate it */
	if (ctx->base.ctxr_dma) {
		if (memcmp(ctx->key, key, len))
			ctx->base.needs_inv = true;
	}

	memcpy(ctx->key, key, len);

	ctx->key_len = len;

	return 0;
}

struct safexcel_alg_template safexcel_alg_cbc_des3_ede = {
	.type = SAFEXCEL_ALG_TYPE_SKCIPHER,
	.engines = EIP97IES | EIP197B | EIP197D,
	.alg.skcipher = {
		.setkey = safexcel_des3_ede_setkey,
		.encrypt = safexcel_cbc_des3_ede_encrypt,
		.decrypt = safexcel_cbc_des3_ede_decrypt,
		.min_keysize = DES3_EDE_KEY_SIZE,
		.max_keysize = DES3_EDE_KEY_SIZE,
		.ivsize = DES3_EDE_BLOCK_SIZE,
		.base = {
			.cra_name = "cbc(des3_ede)",
			.cra_driver_name = "safexcel-cbc-des3_ede",
			.cra_priority = 300,
1077
			.cra_flags = CRYPTO_ALG_ASYNC |
1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116
				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = DES3_EDE_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_skcipher_cra_init,
			.cra_exit = safexcel_skcipher_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};

static int safexcel_ecb_des3_ede_encrypt(struct skcipher_request *req)
{
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_ENCRYPT, CONTEXT_CONTROL_CRYPTO_MODE_ECB,
			SAFEXCEL_3DES);
}

static int safexcel_ecb_des3_ede_decrypt(struct skcipher_request *req)
{
	return safexcel_queue_req(&req->base, skcipher_request_ctx(req),
			SAFEXCEL_DECRYPT, CONTEXT_CONTROL_CRYPTO_MODE_ECB,
			SAFEXCEL_3DES);
}

struct safexcel_alg_template safexcel_alg_ecb_des3_ede = {
	.type = SAFEXCEL_ALG_TYPE_SKCIPHER,
	.engines = EIP97IES | EIP197B | EIP197D,
	.alg.skcipher = {
		.setkey = safexcel_des3_ede_setkey,
		.encrypt = safexcel_ecb_des3_ede_encrypt,
		.decrypt = safexcel_ecb_des3_ede_decrypt,
		.min_keysize = DES3_EDE_KEY_SIZE,
		.max_keysize = DES3_EDE_KEY_SIZE,
		.ivsize = DES3_EDE_BLOCK_SIZE,
		.base = {
			.cra_name = "ecb(des3_ede)",
			.cra_driver_name = "safexcel-ecb-des3_ede",
			.cra_priority = 300,
1117
			.cra_flags = CRYPTO_ALG_ASYNC |
1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128
				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = DES3_EDE_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_skcipher_cra_init,
			.cra_exit = safexcel_skcipher_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};

1129 1130 1131 1132
static int safexcel_aead_encrypt(struct aead_request *req)
{
	struct safexcel_cipher_req *creq = aead_request_ctx(req);

1133 1134
	return safexcel_queue_req(&req->base, creq, SAFEXCEL_ENCRYPT,
			CONTEXT_CONTROL_CRYPTO_MODE_CBC, SAFEXCEL_AES);
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}

static int safexcel_aead_decrypt(struct aead_request *req)
{
	struct safexcel_cipher_req *creq = aead_request_ctx(req);

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	return safexcel_queue_req(&req->base, creq, SAFEXCEL_DECRYPT,
			CONTEXT_CONTROL_CRYPTO_MODE_CBC, SAFEXCEL_AES);
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}

static int safexcel_aead_cra_init(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);
	struct safexcel_alg_template *tmpl =
		container_of(tfm->__crt_alg, struct safexcel_alg_template,
			     alg.aead.base);

	crypto_aead_set_reqsize(__crypto_aead_cast(tfm),
				sizeof(struct safexcel_cipher_req));

	ctx->priv = tmpl->priv;

	ctx->aead = true;
	ctx->base.send = safexcel_aead_send;
	ctx->base.handle_result = safexcel_aead_handle_result;
	return 0;
}

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static int safexcel_aead_sha1_cra_init(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);

	safexcel_aead_cra_init(tfm);
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	ctx->hash_alg = CONTEXT_CONTROL_CRYPTO_ALG_SHA1;
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	ctx->state_sz = SHA1_DIGEST_SIZE;
	return 0;
}

struct safexcel_alg_template safexcel_alg_authenc_hmac_sha1_cbc_aes = {
	.type = SAFEXCEL_ALG_TYPE_AEAD,
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	.engines = EIP97IES | EIP197B | EIP197D,
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	.alg.aead = {
		.setkey = safexcel_aead_aes_setkey,
		.encrypt = safexcel_aead_encrypt,
		.decrypt = safexcel_aead_decrypt,
		.ivsize = AES_BLOCK_SIZE,
		.maxauthsize = SHA1_DIGEST_SIZE,
		.base = {
			.cra_name = "authenc(hmac(sha1),cbc(aes))",
			.cra_driver_name = "safexcel-authenc-hmac-sha1-cbc-aes",
			.cra_priority = 300,
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			.cra_flags = CRYPTO_ALG_ASYNC |
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				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = AES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_aead_sha1_cra_init,
			.cra_exit = safexcel_aead_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};

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static int safexcel_aead_sha256_cra_init(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);

	safexcel_aead_cra_init(tfm);
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	ctx->hash_alg = CONTEXT_CONTROL_CRYPTO_ALG_SHA256;
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	ctx->state_sz = SHA256_DIGEST_SIZE;
	return 0;
}

struct safexcel_alg_template safexcel_alg_authenc_hmac_sha256_cbc_aes = {
	.type = SAFEXCEL_ALG_TYPE_AEAD,
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	.engines = EIP97IES | EIP197B | EIP197D,
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	.alg.aead = {
		.setkey = safexcel_aead_aes_setkey,
		.encrypt = safexcel_aead_encrypt,
		.decrypt = safexcel_aead_decrypt,
		.ivsize = AES_BLOCK_SIZE,
		.maxauthsize = SHA256_DIGEST_SIZE,
		.base = {
			.cra_name = "authenc(hmac(sha256),cbc(aes))",
			.cra_driver_name = "safexcel-authenc-hmac-sha256-cbc-aes",
			.cra_priority = 300,
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			.cra_flags = CRYPTO_ALG_ASYNC |
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				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = AES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_aead_sha256_cra_init,
			.cra_exit = safexcel_aead_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};
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static int safexcel_aead_sha224_cra_init(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);

	safexcel_aead_cra_init(tfm);
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	ctx->hash_alg = CONTEXT_CONTROL_CRYPTO_ALG_SHA224;
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	ctx->state_sz = SHA256_DIGEST_SIZE;
	return 0;
}

struct safexcel_alg_template safexcel_alg_authenc_hmac_sha224_cbc_aes = {
	.type = SAFEXCEL_ALG_TYPE_AEAD,
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	.engines = EIP97IES | EIP197B | EIP197D,
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	.alg.aead = {
		.setkey = safexcel_aead_aes_setkey,
		.encrypt = safexcel_aead_encrypt,
		.decrypt = safexcel_aead_decrypt,
		.ivsize = AES_BLOCK_SIZE,
		.maxauthsize = SHA224_DIGEST_SIZE,
		.base = {
			.cra_name = "authenc(hmac(sha224),cbc(aes))",
			.cra_driver_name = "safexcel-authenc-hmac-sha224-cbc-aes",
			.cra_priority = 300,
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			.cra_flags = CRYPTO_ALG_ASYNC |
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				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = AES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_aead_sha224_cra_init,
			.cra_exit = safexcel_aead_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};
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static int safexcel_aead_sha512_cra_init(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);

	safexcel_aead_cra_init(tfm);
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	ctx->hash_alg = CONTEXT_CONTROL_CRYPTO_ALG_SHA512;
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	ctx->state_sz = SHA512_DIGEST_SIZE;
	return 0;
}

struct safexcel_alg_template safexcel_alg_authenc_hmac_sha512_cbc_aes = {
	.type = SAFEXCEL_ALG_TYPE_AEAD,
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	.engines = EIP97IES | EIP197B | EIP197D,
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	.alg.aead = {
		.setkey = safexcel_aead_aes_setkey,
		.encrypt = safexcel_aead_encrypt,
		.decrypt = safexcel_aead_decrypt,
		.ivsize = AES_BLOCK_SIZE,
		.maxauthsize = SHA512_DIGEST_SIZE,
		.base = {
			.cra_name = "authenc(hmac(sha512),cbc(aes))",
			.cra_driver_name = "safexcel-authenc-hmac-sha512-cbc-aes",
			.cra_priority = 300,
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			.cra_flags = CRYPTO_ALG_ASYNC |
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				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = AES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_aead_sha512_cra_init,
			.cra_exit = safexcel_aead_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};
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static int safexcel_aead_sha384_cra_init(struct crypto_tfm *tfm)
{
	struct safexcel_cipher_ctx *ctx = crypto_tfm_ctx(tfm);

	safexcel_aead_cra_init(tfm);
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	ctx->hash_alg = CONTEXT_CONTROL_CRYPTO_ALG_SHA384;
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	ctx->state_sz = SHA512_DIGEST_SIZE;
	return 0;
}

struct safexcel_alg_template safexcel_alg_authenc_hmac_sha384_cbc_aes = {
	.type = SAFEXCEL_ALG_TYPE_AEAD,
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	.engines = EIP97IES | EIP197B | EIP197D,
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	.alg.aead = {
		.setkey = safexcel_aead_aes_setkey,
		.encrypt = safexcel_aead_encrypt,
		.decrypt = safexcel_aead_decrypt,
		.ivsize = AES_BLOCK_SIZE,
		.maxauthsize = SHA384_DIGEST_SIZE,
		.base = {
			.cra_name = "authenc(hmac(sha384),cbc(aes))",
			.cra_driver_name = "safexcel-authenc-hmac-sha384-cbc-aes",
			.cra_priority = 300,
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			.cra_flags = CRYPTO_ALG_ASYNC |
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				     CRYPTO_ALG_KERN_DRIVER_ONLY,
			.cra_blocksize = AES_BLOCK_SIZE,
			.cra_ctxsize = sizeof(struct safexcel_cipher_ctx),
			.cra_alignmask = 0,
			.cra_init = safexcel_aead_sha384_cra_init,
			.cra_exit = safexcel_aead_cra_exit,
			.cra_module = THIS_MODULE,
		},
	},
};