638 lines
19 KiB
C
638 lines
19 KiB
C
// SPDX-License-Identifier: GPL-2.0-only
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/*
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* AES using the RISC-V vector crypto extensions. Includes the bare block
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* cipher and the ECB, CBC, CBC-CTS, CTR, and XTS modes.
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*
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* Copyright (C) 2023 VRULL GmbH
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* Author: Heiko Stuebner <heiko.stuebner@vrull.eu>
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*
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* Copyright (C) 2023 SiFive, Inc.
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* Author: Jerry Shih <jerry.shih@sifive.com>
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*
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* Copyright 2024 Google LLC
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*/
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#include <asm/simd.h>
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#include <asm/vector.h>
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#include <crypto/aes.h>
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#include <crypto/internal/cipher.h>
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#include <crypto/internal/simd.h>
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#include <crypto/internal/skcipher.h>
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#include <crypto/scatterwalk.h>
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#include <crypto/xts.h>
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#include <linux/linkage.h>
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#include <linux/module.h>
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asmlinkage void aes_encrypt_zvkned(const struct crypto_aes_ctx *key,
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const u8 in[AES_BLOCK_SIZE],
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u8 out[AES_BLOCK_SIZE]);
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asmlinkage void aes_decrypt_zvkned(const struct crypto_aes_ctx *key,
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const u8 in[AES_BLOCK_SIZE],
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u8 out[AES_BLOCK_SIZE]);
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asmlinkage void aes_ecb_encrypt_zvkned(const struct crypto_aes_ctx *key,
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const u8 *in, u8 *out, size_t len);
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asmlinkage void aes_ecb_decrypt_zvkned(const struct crypto_aes_ctx *key,
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const u8 *in, u8 *out, size_t len);
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asmlinkage void aes_cbc_encrypt_zvkned(const struct crypto_aes_ctx *key,
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const u8 *in, u8 *out, size_t len,
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u8 iv[AES_BLOCK_SIZE]);
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asmlinkage void aes_cbc_decrypt_zvkned(const struct crypto_aes_ctx *key,
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const u8 *in, u8 *out, size_t len,
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u8 iv[AES_BLOCK_SIZE]);
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asmlinkage void aes_cbc_cts_crypt_zvkned(const struct crypto_aes_ctx *key,
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const u8 *in, u8 *out, size_t len,
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const u8 iv[AES_BLOCK_SIZE], bool enc);
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asmlinkage void aes_ctr32_crypt_zvkned_zvkb(const struct crypto_aes_ctx *key,
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const u8 *in, u8 *out, size_t len,
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u8 iv[AES_BLOCK_SIZE]);
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asmlinkage void aes_xts_encrypt_zvkned_zvbb_zvkg(
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const struct crypto_aes_ctx *key,
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const u8 *in, u8 *out, size_t len,
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u8 tweak[AES_BLOCK_SIZE]);
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asmlinkage void aes_xts_decrypt_zvkned_zvbb_zvkg(
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const struct crypto_aes_ctx *key,
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const u8 *in, u8 *out, size_t len,
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u8 tweak[AES_BLOCK_SIZE]);
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static int riscv64_aes_setkey(struct crypto_aes_ctx *ctx,
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const u8 *key, unsigned int keylen)
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{
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/*
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* For now we just use the generic key expansion, for these reasons:
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*
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* - zvkned's key expansion instructions don't support AES-192.
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* So, non-zvkned fallback code would be needed anyway.
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*
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* - Users of AES in Linux usually don't change keys frequently.
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* So, key expansion isn't performance-critical.
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*
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* - For single-block AES exposed as a "cipher" algorithm, it's
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* necessary to use struct crypto_aes_ctx and initialize its 'key_dec'
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* field with the round keys for the Equivalent Inverse Cipher. This
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* is because with "cipher", decryption can be requested from a
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* context where the vector unit isn't usable, necessitating a
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* fallback to aes_decrypt(). But, zvkned can only generate and use
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* the normal round keys. Of course, it's preferable to not have
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* special code just for "cipher", as e.g. XTS also uses a
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* single-block AES encryption. It's simplest to just use
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* struct crypto_aes_ctx and aes_expandkey() everywhere.
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*/
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return aes_expandkey(ctx, key, keylen);
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}
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static int riscv64_aes_setkey_cipher(struct crypto_tfm *tfm,
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const u8 *key, unsigned int keylen)
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{
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struct crypto_aes_ctx *ctx = crypto_tfm_ctx(tfm);
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return riscv64_aes_setkey(ctx, key, keylen);
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}
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static int riscv64_aes_setkey_skcipher(struct crypto_skcipher *tfm,
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const u8 *key, unsigned int keylen)
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{
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struct crypto_aes_ctx *ctx = crypto_skcipher_ctx(tfm);
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return riscv64_aes_setkey(ctx, key, keylen);
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}
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/* Bare AES, without a mode of operation */
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static void riscv64_aes_encrypt(struct crypto_tfm *tfm, u8 *dst, const u8 *src)
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{
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const struct crypto_aes_ctx *ctx = crypto_tfm_ctx(tfm);
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if (crypto_simd_usable()) {
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kernel_vector_begin();
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aes_encrypt_zvkned(ctx, src, dst);
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kernel_vector_end();
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} else {
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aes_encrypt(ctx, dst, src);
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}
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}
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static void riscv64_aes_decrypt(struct crypto_tfm *tfm, u8 *dst, const u8 *src)
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{
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const struct crypto_aes_ctx *ctx = crypto_tfm_ctx(tfm);
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if (crypto_simd_usable()) {
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kernel_vector_begin();
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aes_decrypt_zvkned(ctx, src, dst);
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kernel_vector_end();
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} else {
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aes_decrypt(ctx, dst, src);
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}
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}
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/* AES-ECB */
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static inline int riscv64_aes_ecb_crypt(struct skcipher_request *req, bool enc)
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{
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struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
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const struct crypto_aes_ctx *ctx = crypto_skcipher_ctx(tfm);
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struct skcipher_walk walk;
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unsigned int nbytes;
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int err;
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err = skcipher_walk_virt(&walk, req, false);
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while ((nbytes = walk.nbytes) != 0) {
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kernel_vector_begin();
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if (enc)
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aes_ecb_encrypt_zvkned(ctx, walk.src.virt.addr,
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walk.dst.virt.addr,
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nbytes & ~(AES_BLOCK_SIZE - 1));
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else
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aes_ecb_decrypt_zvkned(ctx, walk.src.virt.addr,
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walk.dst.virt.addr,
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nbytes & ~(AES_BLOCK_SIZE - 1));
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kernel_vector_end();
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err = skcipher_walk_done(&walk, nbytes & (AES_BLOCK_SIZE - 1));
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}
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return err;
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}
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static int riscv64_aes_ecb_encrypt(struct skcipher_request *req)
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{
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return riscv64_aes_ecb_crypt(req, true);
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}
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static int riscv64_aes_ecb_decrypt(struct skcipher_request *req)
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{
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return riscv64_aes_ecb_crypt(req, false);
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}
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/* AES-CBC */
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static int riscv64_aes_cbc_crypt(struct skcipher_request *req, bool enc)
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{
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struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
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const struct crypto_aes_ctx *ctx = crypto_skcipher_ctx(tfm);
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struct skcipher_walk walk;
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unsigned int nbytes;
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int err;
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err = skcipher_walk_virt(&walk, req, false);
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while ((nbytes = walk.nbytes) != 0) {
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kernel_vector_begin();
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if (enc)
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aes_cbc_encrypt_zvkned(ctx, walk.src.virt.addr,
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walk.dst.virt.addr,
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nbytes & ~(AES_BLOCK_SIZE - 1),
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walk.iv);
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else
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aes_cbc_decrypt_zvkned(ctx, walk.src.virt.addr,
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walk.dst.virt.addr,
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nbytes & ~(AES_BLOCK_SIZE - 1),
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walk.iv);
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kernel_vector_end();
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err = skcipher_walk_done(&walk, nbytes & (AES_BLOCK_SIZE - 1));
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}
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return err;
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}
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static int riscv64_aes_cbc_encrypt(struct skcipher_request *req)
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{
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return riscv64_aes_cbc_crypt(req, true);
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}
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static int riscv64_aes_cbc_decrypt(struct skcipher_request *req)
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{
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return riscv64_aes_cbc_crypt(req, false);
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}
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/* AES-CBC-CTS */
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static int riscv64_aes_cbc_cts_crypt(struct skcipher_request *req, bool enc)
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{
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struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
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const struct crypto_aes_ctx *ctx = crypto_skcipher_ctx(tfm);
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struct scatterlist sg_src[2], sg_dst[2];
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struct skcipher_request subreq;
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struct scatterlist *src, *dst;
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struct skcipher_walk walk;
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unsigned int cbc_len;
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int err;
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if (req->cryptlen < AES_BLOCK_SIZE)
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return -EINVAL;
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err = skcipher_walk_virt(&walk, req, false);
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if (err)
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return err;
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/*
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* If the full message is available in one step, decrypt it in one call
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* to the CBC-CTS assembly function. This reduces overhead, especially
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* on short messages. Otherwise, fall back to doing CBC up to the last
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* two blocks, then invoke CTS just for the ciphertext stealing.
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*/
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if (unlikely(walk.nbytes != req->cryptlen)) {
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cbc_len = round_down(req->cryptlen - AES_BLOCK_SIZE - 1,
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AES_BLOCK_SIZE);
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skcipher_walk_abort(&walk);
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skcipher_request_set_tfm(&subreq, tfm);
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skcipher_request_set_callback(&subreq,
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skcipher_request_flags(req),
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NULL, NULL);
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skcipher_request_set_crypt(&subreq, req->src, req->dst,
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cbc_len, req->iv);
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err = riscv64_aes_cbc_crypt(&subreq, enc);
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if (err)
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return err;
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dst = src = scatterwalk_ffwd(sg_src, req->src, cbc_len);
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if (req->dst != req->src)
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dst = scatterwalk_ffwd(sg_dst, req->dst, cbc_len);
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skcipher_request_set_crypt(&subreq, src, dst,
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req->cryptlen - cbc_len, req->iv);
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err = skcipher_walk_virt(&walk, &subreq, false);
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if (err)
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return err;
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}
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kernel_vector_begin();
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aes_cbc_cts_crypt_zvkned(ctx, walk.src.virt.addr, walk.dst.virt.addr,
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walk.nbytes, req->iv, enc);
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kernel_vector_end();
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return skcipher_walk_done(&walk, 0);
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}
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static int riscv64_aes_cbc_cts_encrypt(struct skcipher_request *req)
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{
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return riscv64_aes_cbc_cts_crypt(req, true);
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}
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static int riscv64_aes_cbc_cts_decrypt(struct skcipher_request *req)
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{
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return riscv64_aes_cbc_cts_crypt(req, false);
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}
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/* AES-CTR */
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static int riscv64_aes_ctr_crypt(struct skcipher_request *req)
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{
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struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
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const struct crypto_aes_ctx *ctx = crypto_skcipher_ctx(tfm);
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unsigned int nbytes, p1_nbytes;
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struct skcipher_walk walk;
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u32 ctr32, nblocks;
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int err;
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/* Get the low 32-bit word of the 128-bit big endian counter. */
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ctr32 = get_unaligned_be32(req->iv + 12);
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err = skcipher_walk_virt(&walk, req, false);
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while ((nbytes = walk.nbytes) != 0) {
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if (nbytes < walk.total) {
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/* Not the end yet, so keep the length block-aligned. */
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nbytes = round_down(nbytes, AES_BLOCK_SIZE);
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nblocks = nbytes / AES_BLOCK_SIZE;
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} else {
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/* It's the end, so include any final partial block. */
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nblocks = DIV_ROUND_UP(nbytes, AES_BLOCK_SIZE);
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}
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ctr32 += nblocks;
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kernel_vector_begin();
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if (ctr32 >= nblocks) {
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/* The low 32-bit word of the counter won't overflow. */
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aes_ctr32_crypt_zvkned_zvkb(ctx, walk.src.virt.addr,
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walk.dst.virt.addr, nbytes,
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req->iv);
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} else {
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/*
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* The low 32-bit word of the counter will overflow.
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* The assembly doesn't handle this case, so split the
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* operation into two at the point where the overflow
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* will occur. After the first part, add the carry bit.
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*/
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p1_nbytes = min_t(unsigned int, nbytes,
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(nblocks - ctr32) * AES_BLOCK_SIZE);
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aes_ctr32_crypt_zvkned_zvkb(ctx, walk.src.virt.addr,
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walk.dst.virt.addr,
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p1_nbytes, req->iv);
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crypto_inc(req->iv, 12);
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if (ctr32) {
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aes_ctr32_crypt_zvkned_zvkb(
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ctx,
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walk.src.virt.addr + p1_nbytes,
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walk.dst.virt.addr + p1_nbytes,
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nbytes - p1_nbytes, req->iv);
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}
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}
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kernel_vector_end();
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err = skcipher_walk_done(&walk, walk.nbytes - nbytes);
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}
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return err;
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}
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/* AES-XTS */
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struct riscv64_aes_xts_ctx {
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struct crypto_aes_ctx ctx1;
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struct crypto_aes_ctx ctx2;
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};
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static int riscv64_aes_xts_setkey(struct crypto_skcipher *tfm, const u8 *key,
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unsigned int keylen)
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{
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struct riscv64_aes_xts_ctx *ctx = crypto_skcipher_ctx(tfm);
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return xts_verify_key(tfm, key, keylen) ?:
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riscv64_aes_setkey(&ctx->ctx1, key, keylen / 2) ?:
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riscv64_aes_setkey(&ctx->ctx2, key + keylen / 2, keylen / 2);
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}
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static int riscv64_aes_xts_crypt(struct skcipher_request *req, bool enc)
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{
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struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
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const struct riscv64_aes_xts_ctx *ctx = crypto_skcipher_ctx(tfm);
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int tail = req->cryptlen % AES_BLOCK_SIZE;
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struct scatterlist sg_src[2], sg_dst[2];
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struct skcipher_request subreq;
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struct scatterlist *src, *dst;
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struct skcipher_walk walk;
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int err;
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if (req->cryptlen < AES_BLOCK_SIZE)
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return -EINVAL;
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/* Encrypt the IV with the tweak key to get the first tweak. */
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kernel_vector_begin();
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aes_encrypt_zvkned(&ctx->ctx2, req->iv, req->iv);
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kernel_vector_end();
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err = skcipher_walk_virt(&walk, req, false);
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/*
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* If the message length isn't divisible by the AES block size and the
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* full message isn't available in one step of the scatterlist walk,
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* then separate off the last full block and the partial block. This
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* ensures that they are processed in the same call to the assembly
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* function, which is required for ciphertext stealing.
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*/
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if (unlikely(tail > 0 && walk.nbytes < walk.total)) {
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skcipher_walk_abort(&walk);
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skcipher_request_set_tfm(&subreq, tfm);
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skcipher_request_set_callback(&subreq,
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skcipher_request_flags(req),
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NULL, NULL);
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skcipher_request_set_crypt(&subreq, req->src, req->dst,
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req->cryptlen - tail - AES_BLOCK_SIZE,
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req->iv);
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req = &subreq;
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err = skcipher_walk_virt(&walk, req, false);
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} else {
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tail = 0;
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}
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while (walk.nbytes) {
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unsigned int nbytes = walk.nbytes;
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if (nbytes < walk.total)
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nbytes = round_down(nbytes, AES_BLOCK_SIZE);
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kernel_vector_begin();
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if (enc)
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aes_xts_encrypt_zvkned_zvbb_zvkg(
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&ctx->ctx1, walk.src.virt.addr,
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walk.dst.virt.addr, nbytes, req->iv);
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else
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aes_xts_decrypt_zvkned_zvbb_zvkg(
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&ctx->ctx1, walk.src.virt.addr,
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walk.dst.virt.addr, nbytes, req->iv);
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kernel_vector_end();
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err = skcipher_walk_done(&walk, walk.nbytes - nbytes);
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}
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if (err || likely(!tail))
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return err;
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/* Do ciphertext stealing with the last full block and partial block. */
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dst = src = scatterwalk_ffwd(sg_src, req->src, req->cryptlen);
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if (req->dst != req->src)
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dst = scatterwalk_ffwd(sg_dst, req->dst, req->cryptlen);
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skcipher_request_set_crypt(req, src, dst, AES_BLOCK_SIZE + tail,
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req->iv);
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err = skcipher_walk_virt(&walk, req, false);
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if (err)
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return err;
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kernel_vector_begin();
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if (enc)
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aes_xts_encrypt_zvkned_zvbb_zvkg(
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&ctx->ctx1, walk.src.virt.addr,
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walk.dst.virt.addr, walk.nbytes, req->iv);
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else
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aes_xts_decrypt_zvkned_zvbb_zvkg(
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&ctx->ctx1, walk.src.virt.addr,
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walk.dst.virt.addr, walk.nbytes, req->iv);
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kernel_vector_end();
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return skcipher_walk_done(&walk, 0);
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}
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static int riscv64_aes_xts_encrypt(struct skcipher_request *req)
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{
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return riscv64_aes_xts_crypt(req, true);
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}
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static int riscv64_aes_xts_decrypt(struct skcipher_request *req)
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{
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return riscv64_aes_xts_crypt(req, false);
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}
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/* Algorithm definitions */
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static struct crypto_alg riscv64_zvkned_aes_cipher_alg = {
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.cra_flags = CRYPTO_ALG_TYPE_CIPHER,
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.cra_blocksize = AES_BLOCK_SIZE,
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.cra_ctxsize = sizeof(struct crypto_aes_ctx),
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.cra_priority = 300,
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.cra_name = "aes",
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.cra_driver_name = "aes-riscv64-zvkned",
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.cra_cipher = {
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.cia_min_keysize = AES_MIN_KEY_SIZE,
|
|
.cia_max_keysize = AES_MAX_KEY_SIZE,
|
|
.cia_setkey = riscv64_aes_setkey_cipher,
|
|
.cia_encrypt = riscv64_aes_encrypt,
|
|
.cia_decrypt = riscv64_aes_decrypt,
|
|
},
|
|
.cra_module = THIS_MODULE,
|
|
};
|
|
|
|
static struct skcipher_alg riscv64_zvkned_aes_skcipher_algs[] = {
|
|
{
|
|
.setkey = riscv64_aes_setkey_skcipher,
|
|
.encrypt = riscv64_aes_ecb_encrypt,
|
|
.decrypt = riscv64_aes_ecb_decrypt,
|
|
.min_keysize = AES_MIN_KEY_SIZE,
|
|
.max_keysize = AES_MAX_KEY_SIZE,
|
|
.walksize = 8 * AES_BLOCK_SIZE, /* matches LMUL=8 */
|
|
.base = {
|
|
.cra_blocksize = AES_BLOCK_SIZE,
|
|
.cra_ctxsize = sizeof(struct crypto_aes_ctx),
|
|
.cra_priority = 300,
|
|
.cra_name = "ecb(aes)",
|
|
.cra_driver_name = "ecb-aes-riscv64-zvkned",
|
|
.cra_module = THIS_MODULE,
|
|
},
|
|
}, {
|
|
.setkey = riscv64_aes_setkey_skcipher,
|
|
.encrypt = riscv64_aes_cbc_encrypt,
|
|
.decrypt = riscv64_aes_cbc_decrypt,
|
|
.min_keysize = AES_MIN_KEY_SIZE,
|
|
.max_keysize = AES_MAX_KEY_SIZE,
|
|
.ivsize = AES_BLOCK_SIZE,
|
|
.base = {
|
|
.cra_blocksize = AES_BLOCK_SIZE,
|
|
.cra_ctxsize = sizeof(struct crypto_aes_ctx),
|
|
.cra_priority = 300,
|
|
.cra_name = "cbc(aes)",
|
|
.cra_driver_name = "cbc-aes-riscv64-zvkned",
|
|
.cra_module = THIS_MODULE,
|
|
},
|
|
}, {
|
|
.setkey = riscv64_aes_setkey_skcipher,
|
|
.encrypt = riscv64_aes_cbc_cts_encrypt,
|
|
.decrypt = riscv64_aes_cbc_cts_decrypt,
|
|
.min_keysize = AES_MIN_KEY_SIZE,
|
|
.max_keysize = AES_MAX_KEY_SIZE,
|
|
.ivsize = AES_BLOCK_SIZE,
|
|
.walksize = 4 * AES_BLOCK_SIZE, /* matches LMUL=4 */
|
|
.base = {
|
|
.cra_blocksize = AES_BLOCK_SIZE,
|
|
.cra_ctxsize = sizeof(struct crypto_aes_ctx),
|
|
.cra_priority = 300,
|
|
.cra_name = "cts(cbc(aes))",
|
|
.cra_driver_name = "cts-cbc-aes-riscv64-zvkned",
|
|
.cra_module = THIS_MODULE,
|
|
},
|
|
}
|
|
};
|
|
|
|
static struct skcipher_alg riscv64_zvkned_zvkb_aes_skcipher_alg = {
|
|
.setkey = riscv64_aes_setkey_skcipher,
|
|
.encrypt = riscv64_aes_ctr_crypt,
|
|
.decrypt = riscv64_aes_ctr_crypt,
|
|
.min_keysize = AES_MIN_KEY_SIZE,
|
|
.max_keysize = AES_MAX_KEY_SIZE,
|
|
.ivsize = AES_BLOCK_SIZE,
|
|
.chunksize = AES_BLOCK_SIZE,
|
|
.walksize = 4 * AES_BLOCK_SIZE, /* matches LMUL=4 */
|
|
.base = {
|
|
.cra_blocksize = 1,
|
|
.cra_ctxsize = sizeof(struct crypto_aes_ctx),
|
|
.cra_priority = 300,
|
|
.cra_name = "ctr(aes)",
|
|
.cra_driver_name = "ctr-aes-riscv64-zvkned-zvkb",
|
|
.cra_module = THIS_MODULE,
|
|
},
|
|
};
|
|
|
|
static struct skcipher_alg riscv64_zvkned_zvbb_zvkg_aes_skcipher_alg = {
|
|
.setkey = riscv64_aes_xts_setkey,
|
|
.encrypt = riscv64_aes_xts_encrypt,
|
|
.decrypt = riscv64_aes_xts_decrypt,
|
|
.min_keysize = 2 * AES_MIN_KEY_SIZE,
|
|
.max_keysize = 2 * AES_MAX_KEY_SIZE,
|
|
.ivsize = AES_BLOCK_SIZE,
|
|
.chunksize = AES_BLOCK_SIZE,
|
|
.walksize = 4 * AES_BLOCK_SIZE, /* matches LMUL=4 */
|
|
.base = {
|
|
.cra_blocksize = AES_BLOCK_SIZE,
|
|
.cra_ctxsize = sizeof(struct riscv64_aes_xts_ctx),
|
|
.cra_priority = 300,
|
|
.cra_name = "xts(aes)",
|
|
.cra_driver_name = "xts-aes-riscv64-zvkned-zvbb-zvkg",
|
|
.cra_module = THIS_MODULE,
|
|
},
|
|
};
|
|
|
|
static inline bool riscv64_aes_xts_supported(void)
|
|
{
|
|
return riscv_isa_extension_available(NULL, ZVBB) &&
|
|
riscv_isa_extension_available(NULL, ZVKG) &&
|
|
riscv_vector_vlen() < 2048 /* Implementation limitation */;
|
|
}
|
|
|
|
static int __init riscv64_aes_mod_init(void)
|
|
{
|
|
int err = -ENODEV;
|
|
|
|
if (riscv_isa_extension_available(NULL, ZVKNED) &&
|
|
riscv_vector_vlen() >= 128) {
|
|
err = crypto_register_alg(&riscv64_zvkned_aes_cipher_alg);
|
|
if (err)
|
|
return err;
|
|
|
|
err = crypto_register_skciphers(
|
|
riscv64_zvkned_aes_skcipher_algs,
|
|
ARRAY_SIZE(riscv64_zvkned_aes_skcipher_algs));
|
|
if (err)
|
|
goto unregister_zvkned_cipher_alg;
|
|
|
|
if (riscv_isa_extension_available(NULL, ZVKB)) {
|
|
err = crypto_register_skcipher(
|
|
&riscv64_zvkned_zvkb_aes_skcipher_alg);
|
|
if (err)
|
|
goto unregister_zvkned_skcipher_algs;
|
|
}
|
|
|
|
if (riscv64_aes_xts_supported()) {
|
|
err = crypto_register_skcipher(
|
|
&riscv64_zvkned_zvbb_zvkg_aes_skcipher_alg);
|
|
if (err)
|
|
goto unregister_zvkned_zvkb_skcipher_alg;
|
|
}
|
|
}
|
|
|
|
return err;
|
|
|
|
unregister_zvkned_zvkb_skcipher_alg:
|
|
if (riscv_isa_extension_available(NULL, ZVKB))
|
|
crypto_unregister_skcipher(&riscv64_zvkned_zvkb_aes_skcipher_alg);
|
|
unregister_zvkned_skcipher_algs:
|
|
crypto_unregister_skciphers(riscv64_zvkned_aes_skcipher_algs,
|
|
ARRAY_SIZE(riscv64_zvkned_aes_skcipher_algs));
|
|
unregister_zvkned_cipher_alg:
|
|
crypto_unregister_alg(&riscv64_zvkned_aes_cipher_alg);
|
|
return err;
|
|
}
|
|
|
|
static void __exit riscv64_aes_mod_exit(void)
|
|
{
|
|
if (riscv64_aes_xts_supported())
|
|
crypto_unregister_skcipher(&riscv64_zvkned_zvbb_zvkg_aes_skcipher_alg);
|
|
if (riscv_isa_extension_available(NULL, ZVKB))
|
|
crypto_unregister_skcipher(&riscv64_zvkned_zvkb_aes_skcipher_alg);
|
|
crypto_unregister_skciphers(riscv64_zvkned_aes_skcipher_algs,
|
|
ARRAY_SIZE(riscv64_zvkned_aes_skcipher_algs));
|
|
crypto_unregister_alg(&riscv64_zvkned_aes_cipher_alg);
|
|
}
|
|
|
|
module_init(riscv64_aes_mod_init);
|
|
module_exit(riscv64_aes_mod_exit);
|
|
|
|
MODULE_DESCRIPTION("AES-ECB/CBC/CTS/CTR/XTS (RISC-V accelerated)");
|
|
MODULE_AUTHOR("Jerry Shih <jerry.shih@sifive.com>");
|
|
MODULE_LICENSE("GPL");
|
|
MODULE_ALIAS_CRYPTO("aes");
|
|
MODULE_ALIAS_CRYPTO("ecb(aes)");
|
|
MODULE_ALIAS_CRYPTO("cbc(aes)");
|
|
MODULE_ALIAS_CRYPTO("cts(cbc(aes))");
|
|
MODULE_ALIAS_CRYPTO("ctr(aes)");
|
|
MODULE_ALIAS_CRYPTO("xts(aes)");
|