608 lines
17 KiB
C
Executable File
608 lines
17 KiB
C
Executable File
/*
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* Copyright 2013 Freescale Semiconductor, Inc.
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* Copyright 2017 NXP Semiconductor, Inc.
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*
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* This program is free software; you can redistribute it and/or modify it
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* under the terms of the GNU General Public License as published by the Free
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* Software Foundation; either version 2 of the License, or (at your option)
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* any later version.
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*
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*/
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#include <crypto/internal/aead.h>
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#include <crypto/internal/hash.h>
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#include <crypto/internal/skcipher.h>
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#include <crypto/authenc.h>
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#include <crypto/null.h>
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#include <crypto/scatterwalk.h>
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#include <linux/err.h>
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#include <linux/init.h>
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#include <linux/module.h>
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#include <linux/rtnetlink.h>
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struct tls_instance_ctx {
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struct crypto_ahash_spawn auth;
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struct crypto_skcipher_spawn enc;
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};
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struct crypto_tls_ctx {
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unsigned int reqoff;
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struct crypto_ahash *auth;
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struct crypto_skcipher *enc;
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struct crypto_skcipher *null;
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};
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struct tls_request_ctx {
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/*
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* cryptlen holds the payload length in the case of encryption or
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* payload_len + icv_len + padding_len in case of decryption
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*/
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unsigned int cryptlen;
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/* working space for partial results */
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struct scatterlist tmp[2];
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struct scatterlist cipher[2];
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struct scatterlist dst[2];
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char tail[];
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};
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struct async_op {
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struct completion completion;
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int err;
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};
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static void tls_async_op_done(struct crypto_async_request *req, int err)
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{
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struct async_op *areq = req->data;
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if (err == -EINPROGRESS)
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return;
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areq->err = err;
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complete(&areq->completion);
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}
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static int crypto_tls_setkey(struct crypto_aead *tls, const u8 *key,
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unsigned int keylen)
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{
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struct crypto_tls_ctx *ctx = crypto_aead_ctx(tls);
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struct crypto_ahash *auth = ctx->auth;
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struct crypto_skcipher *enc = ctx->enc;
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struct crypto_authenc_keys keys;
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int err = -EINVAL;
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if (crypto_authenc_extractkeys(&keys, key, keylen) != 0)
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goto badkey;
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crypto_ahash_clear_flags(auth, CRYPTO_TFM_REQ_MASK);
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crypto_ahash_set_flags(auth, crypto_aead_get_flags(tls) &
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CRYPTO_TFM_REQ_MASK);
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err = crypto_ahash_setkey(auth, keys.authkey, keys.authkeylen);
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crypto_aead_set_flags(tls, crypto_ahash_get_flags(auth) &
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CRYPTO_TFM_RES_MASK);
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if (err)
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goto out;
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crypto_skcipher_clear_flags(enc, CRYPTO_TFM_REQ_MASK);
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crypto_skcipher_set_flags(enc, crypto_aead_get_flags(tls) &
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CRYPTO_TFM_REQ_MASK);
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err = crypto_skcipher_setkey(enc, keys.enckey, keys.enckeylen);
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crypto_aead_set_flags(tls, crypto_skcipher_get_flags(enc) &
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CRYPTO_TFM_RES_MASK);
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out:
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return err;
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badkey:
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crypto_aead_set_flags(tls, CRYPTO_TFM_RES_BAD_KEY_LEN);
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goto out;
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}
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/**
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* crypto_tls_genicv - Calculate hmac digest for a TLS record
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* @hash: (output) buffer to save the digest into
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* @src: (input) scatterlist with the assoc and payload data
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* @srclen: (input) size of the source buffer (assoclen + cryptlen)
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* @req: (input) aead request
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**/
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static int crypto_tls_genicv(u8 *hash, struct scatterlist *src,
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unsigned int srclen, struct aead_request *req)
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{
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struct crypto_aead *tls = crypto_aead_reqtfm(req);
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struct crypto_tls_ctx *ctx = crypto_aead_ctx(tls);
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struct tls_request_ctx *treq_ctx = aead_request_ctx(req);
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struct async_op ahash_op;
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struct ahash_request *ahreq = (void *)(treq_ctx->tail + ctx->reqoff);
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unsigned int flags = CRYPTO_TFM_REQ_MAY_SLEEP;
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int err = -EBADMSG;
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/* Bail out if the request assoc len is 0 */
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if (!req->assoclen)
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return err;
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init_completion(&ahash_op.completion);
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/* the hash transform to be executed comes from the original request */
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ahash_request_set_tfm(ahreq, ctx->auth);
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/* prepare the hash request with input data and result pointer */
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ahash_request_set_crypt(ahreq, src, hash, srclen);
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/* set the notifier for when the async hash function returns */
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ahash_request_set_callback(ahreq, aead_request_flags(req) & flags,
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tls_async_op_done, &ahash_op);
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/* Calculate the digest on the given data. The result is put in hash */
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err = crypto_ahash_digest(ahreq);
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if (err == -EINPROGRESS) {
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err = wait_for_completion_interruptible(&ahash_op.completion);
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if (!err)
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err = ahash_op.err;
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}
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return err;
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}
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/**
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* crypto_tls_gen_padicv - Calculate and pad hmac digest for a TLS record
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* @hash: (output) buffer to save the digest and padding into
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* @phashlen: (output) the size of digest + padding
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* @req: (input) aead request
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**/
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static int crypto_tls_gen_padicv(u8 *hash, unsigned int *phashlen,
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struct aead_request *req)
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{
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struct crypto_aead *tls = crypto_aead_reqtfm(req);
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unsigned int hash_size = crypto_aead_authsize(tls);
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unsigned int block_size = crypto_aead_blocksize(tls);
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unsigned int srclen = req->cryptlen + hash_size;
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unsigned int icvlen = req->cryptlen + req->assoclen;
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unsigned int padlen;
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int err;
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err = crypto_tls_genicv(hash, req->src, icvlen, req);
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if (err)
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goto out;
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/* add padding after digest */
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padlen = block_size - (srclen % block_size);
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memset(hash + hash_size, padlen - 1, padlen);
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*phashlen = hash_size + padlen;
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out:
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return err;
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}
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static int crypto_tls_copy_data(struct aead_request *req,
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struct scatterlist *src,
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struct scatterlist *dst,
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unsigned int len)
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{
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struct crypto_aead *tls = crypto_aead_reqtfm(req);
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struct crypto_tls_ctx *ctx = crypto_aead_ctx(tls);
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SKCIPHER_REQUEST_ON_STACK(skreq, ctx->null);
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skcipher_request_set_tfm(skreq, ctx->null);
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skcipher_request_set_callback(skreq, aead_request_flags(req),
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NULL, NULL);
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skcipher_request_set_crypt(skreq, src, dst, len, NULL);
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return crypto_skcipher_encrypt(skreq);
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}
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static int crypto_tls_encrypt(struct aead_request *req)
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{
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struct crypto_aead *tls = crypto_aead_reqtfm(req);
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struct crypto_tls_ctx *ctx = crypto_aead_ctx(tls);
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struct tls_request_ctx *treq_ctx = aead_request_ctx(req);
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struct skcipher_request *skreq;
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struct scatterlist *cipher = treq_ctx->cipher;
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struct scatterlist *tmp = treq_ctx->tmp;
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struct scatterlist *sg, *src, *dst;
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unsigned int cryptlen, phashlen;
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u8 *hash = treq_ctx->tail;
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int err;
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/*
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* The hash result is saved at the beginning of the tls request ctx
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* and is aligned as required by the hash transform. Enough space was
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* allocated in crypto_tls_init_tfm to accommodate the difference. The
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* requests themselves start later at treq_ctx->tail + ctx->reqoff so
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* the result is not overwritten by the second (cipher) request.
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*/
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hash = (u8 *)ALIGN((unsigned long)hash +
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crypto_ahash_alignmask(ctx->auth),
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crypto_ahash_alignmask(ctx->auth) + 1);
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/*
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* STEP 1: create ICV together with necessary padding
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*/
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err = crypto_tls_gen_padicv(hash, &phashlen, req);
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if (err)
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return err;
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/*
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* STEP 2: Hash and padding are combined with the payload
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* depending on the form it arrives. Scatter tables must have at least
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* one page of data before chaining with another table and can't have
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* an empty data page. The following code addresses these requirements.
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*
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* If the payload is empty, only the hash is encrypted, otherwise the
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* payload scatterlist is merged with the hash. A special merging case
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* is when the payload has only one page of data. In that case the
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* payload page is moved to another scatterlist and prepared there for
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* encryption.
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*/
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if (req->cryptlen) {
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src = scatterwalk_ffwd(tmp, req->src, req->assoclen);
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sg_init_table(cipher, 2);
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sg_set_buf(cipher + 1, hash, phashlen);
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if (sg_is_last(src)) {
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sg_set_page(cipher, sg_page(src), req->cryptlen,
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src->offset);
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src = cipher;
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} else {
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unsigned int rem_len = req->cryptlen;
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for (sg = src; rem_len > sg->length; sg = sg_next(sg))
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rem_len -= min(rem_len, sg->length);
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sg_set_page(cipher, sg_page(sg), rem_len, sg->offset);
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sg_chain(sg, 1, cipher);
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}
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} else {
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sg_init_one(cipher, hash, phashlen);
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src = cipher;
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}
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/**
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* If src != dst copy the associated data from source to destination.
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* In both cases fast-forward passed the associated data in the dest.
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*/
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if (req->src != req->dst) {
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err = crypto_tls_copy_data(req, req->src, req->dst,
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req->assoclen);
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if (err)
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return err;
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}
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dst = scatterwalk_ffwd(treq_ctx->dst, req->dst, req->assoclen);
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/*
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* STEP 3: encrypt the frame and return the result
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*/
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cryptlen = req->cryptlen + phashlen;
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/*
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* The hash and the cipher are applied at different times and their
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* requests can use the same memory space without interference
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*/
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skreq = (void *)(treq_ctx->tail + ctx->reqoff);
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skcipher_request_set_tfm(skreq, ctx->enc);
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skcipher_request_set_crypt(skreq, src, dst, cryptlen, req->iv);
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skcipher_request_set_callback(skreq, aead_request_flags(req),
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req->base.complete, req->base.data);
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/*
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* Apply the cipher transform. The result will be in req->dst when the
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* asynchronuous call terminates
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*/
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err = crypto_skcipher_encrypt(skreq);
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return err;
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}
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static int crypto_tls_decrypt(struct aead_request *req)
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{
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struct crypto_aead *tls = crypto_aead_reqtfm(req);
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struct crypto_tls_ctx *ctx = crypto_aead_ctx(tls);
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struct tls_request_ctx *treq_ctx = aead_request_ctx(req);
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unsigned int cryptlen = req->cryptlen;
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unsigned int hash_size = crypto_aead_authsize(tls);
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unsigned int block_size = crypto_aead_blocksize(tls);
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struct skcipher_request *skreq = (void *)(treq_ctx->tail + ctx->reqoff);
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struct scatterlist *tmp = treq_ctx->tmp;
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struct scatterlist *src, *dst;
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u8 padding[255]; /* padding can be 0-255 bytes */
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u8 pad_size;
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u16 *len_field;
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u8 *ihash, *hash = treq_ctx->tail;
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int paderr = 0;
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int err = -EINVAL;
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int i;
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struct async_op ciph_op;
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/*
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* Rule out bad packets. The input packet length must be at least one
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* byte more than the hash_size
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*/
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if (cryptlen <= hash_size || cryptlen % block_size)
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goto out;
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/*
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* Step 1 - Decrypt the source. Fast-forward past the associated data
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* to the encrypted data. The result will be overwritten in place so
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* that the decrypted data will be adjacent to the associated data. The
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* last step (computing the hash) will have it's input data already
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* prepared and ready to be accessed at req->src.
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*/
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src = scatterwalk_ffwd(tmp, req->src, req->assoclen);
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dst = src;
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init_completion(&ciph_op.completion);
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skcipher_request_set_tfm(skreq, ctx->enc);
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skcipher_request_set_callback(skreq, aead_request_flags(req),
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tls_async_op_done, &ciph_op);
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skcipher_request_set_crypt(skreq, src, dst, cryptlen, req->iv);
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err = crypto_skcipher_decrypt(skreq);
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if (err == -EINPROGRESS) {
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err = wait_for_completion_interruptible(&ciph_op.completion);
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if (!err)
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err = ciph_op.err;
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}
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if (err)
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goto out;
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/*
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* Step 2 - Verify padding
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* Retrieve the last byte of the payload; this is the padding size.
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*/
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cryptlen -= 1;
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scatterwalk_map_and_copy(&pad_size, dst, cryptlen, 1, 0);
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/* RFC recommendation for invalid padding size. */
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if (cryptlen < pad_size + hash_size) {
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pad_size = 0;
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paderr = -EBADMSG;
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}
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cryptlen -= pad_size;
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scatterwalk_map_and_copy(padding, dst, cryptlen, pad_size, 0);
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/* Padding content must be equal with pad_size. We verify it all */
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for (i = 0; i < pad_size; i++)
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if (padding[i] != pad_size)
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paderr = -EBADMSG;
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/*
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* Step 3 - Verify hash
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* Align the digest result as required by the hash transform. Enough
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* space was allocated in crypto_tls_init_tfm
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*/
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hash = (u8 *)ALIGN((unsigned long)hash +
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crypto_ahash_alignmask(ctx->auth),
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crypto_ahash_alignmask(ctx->auth) + 1);
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/*
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* Two bytes at the end of the associated data make the length field.
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* It must be updated with the length of the cleartext message before
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* the hash is calculated.
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*/
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len_field = sg_virt(req->src) + req->assoclen - 2;
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cryptlen -= hash_size;
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*len_field = htons(cryptlen);
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/* This is the hash from the decrypted packet. Save it for later */
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ihash = hash + hash_size;
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scatterwalk_map_and_copy(ihash, dst, cryptlen, hash_size, 0);
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/* Now compute and compare our ICV with the one from the packet */
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err = crypto_tls_genicv(hash, req->src, cryptlen + req->assoclen, req);
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if (!err)
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err = memcmp(hash, ihash, hash_size) ? -EBADMSG : 0;
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if (req->src != req->dst) {
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err = crypto_tls_copy_data(req, req->src, req->dst, cryptlen +
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req->assoclen);
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if (err)
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goto out;
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}
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/* return the first found error */
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if (paderr)
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err = paderr;
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out:
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aead_request_complete(req, err);
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return err;
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}
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static int crypto_tls_init_tfm(struct crypto_aead *tfm)
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{
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struct aead_instance *inst = aead_alg_instance(tfm);
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struct tls_instance_ctx *ictx = aead_instance_ctx(inst);
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struct crypto_tls_ctx *ctx = crypto_aead_ctx(tfm);
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struct crypto_ahash *auth;
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struct crypto_skcipher *enc;
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struct crypto_skcipher *null;
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int err;
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auth = crypto_spawn_ahash(&ictx->auth);
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if (IS_ERR(auth))
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return PTR_ERR(auth);
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enc = crypto_spawn_skcipher(&ictx->enc);
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err = PTR_ERR(enc);
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if (IS_ERR(enc))
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goto err_free_ahash;
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null = crypto_get_default_null_skcipher2();
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err = PTR_ERR(null);
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if (IS_ERR(null))
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goto err_free_skcipher;
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ctx->auth = auth;
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ctx->enc = enc;
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ctx->null = null;
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/*
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* Allow enough space for two digests. The two digests will be compared
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* during the decryption phase. One will come from the decrypted packet
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* and the other will be calculated. For encryption, one digest is
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* padded (up to a cipher blocksize) and chained with the payload
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*/
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ctx->reqoff = ALIGN(crypto_ahash_digestsize(auth) +
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crypto_ahash_alignmask(auth),
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crypto_ahash_alignmask(auth) + 1) +
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max(crypto_ahash_digestsize(auth),
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crypto_skcipher_blocksize(enc));
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crypto_aead_set_reqsize(tfm,
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sizeof(struct tls_request_ctx) +
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ctx->reqoff +
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max_t(unsigned int,
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crypto_ahash_reqsize(auth) +
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sizeof(struct ahash_request),
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crypto_skcipher_reqsize(enc) +
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sizeof(struct skcipher_request)));
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return 0;
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err_free_skcipher:
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crypto_free_skcipher(enc);
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err_free_ahash:
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crypto_free_ahash(auth);
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return err;
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}
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static void crypto_tls_exit_tfm(struct crypto_aead *tfm)
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{
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struct crypto_tls_ctx *ctx = crypto_aead_ctx(tfm);
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crypto_free_ahash(ctx->auth);
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crypto_free_skcipher(ctx->enc);
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crypto_put_default_null_skcipher2();
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}
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static void crypto_tls_free(struct aead_instance *inst)
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{
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struct tls_instance_ctx *ctx = aead_instance_ctx(inst);
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crypto_drop_skcipher(&ctx->enc);
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crypto_drop_ahash(&ctx->auth);
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kfree(inst);
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}
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static int crypto_tls_create(struct crypto_template *tmpl, struct rtattr **tb)
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{
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struct crypto_attr_type *algt;
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struct aead_instance *inst;
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struct hash_alg_common *auth;
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struct crypto_alg *auth_base;
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struct skcipher_alg *enc;
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struct tls_instance_ctx *ctx;
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const char *enc_name;
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|
int err;
|
|
|
|
algt = crypto_get_attr_type(tb);
|
|
if (IS_ERR(algt))
|
|
return PTR_ERR(algt);
|
|
|
|
if ((algt->type ^ CRYPTO_ALG_TYPE_AEAD) & algt->mask)
|
|
return -EINVAL;
|
|
|
|
auth = ahash_attr_alg(tb[1], CRYPTO_ALG_TYPE_HASH,
|
|
CRYPTO_ALG_TYPE_AHASH_MASK |
|
|
crypto_requires_sync(algt->type, algt->mask));
|
|
if (IS_ERR(auth))
|
|
return PTR_ERR(auth);
|
|
|
|
auth_base = &auth->base;
|
|
|
|
enc_name = crypto_attr_alg_name(tb[2]);
|
|
err = PTR_ERR(enc_name);
|
|
if (IS_ERR(enc_name))
|
|
goto out_put_auth;
|
|
|
|
inst = kzalloc(sizeof(*inst) + sizeof(*ctx), GFP_KERNEL);
|
|
err = -ENOMEM;
|
|
if (!inst)
|
|
goto out_put_auth;
|
|
|
|
ctx = aead_instance_ctx(inst);
|
|
|
|
err = crypto_init_ahash_spawn(&ctx->auth, auth,
|
|
aead_crypto_instance(inst));
|
|
if (err)
|
|
goto err_free_inst;
|
|
|
|
crypto_set_skcipher_spawn(&ctx->enc, aead_crypto_instance(inst));
|
|
err = crypto_grab_skcipher(&ctx->enc, enc_name, 0,
|
|
crypto_requires_sync(algt->type,
|
|
algt->mask));
|
|
if (err)
|
|
goto err_drop_auth;
|
|
|
|
enc = crypto_spawn_skcipher_alg(&ctx->enc);
|
|
|
|
err = -ENAMETOOLONG;
|
|
if (snprintf(inst->alg.base.cra_name, CRYPTO_MAX_ALG_NAME,
|
|
"tls10(%s,%s)", auth_base->cra_name,
|
|
enc->base.cra_name) >= CRYPTO_MAX_ALG_NAME)
|
|
goto err_drop_enc;
|
|
|
|
if (snprintf(inst->alg.base.cra_driver_name, CRYPTO_MAX_ALG_NAME,
|
|
"tls10(%s,%s)", auth_base->cra_driver_name,
|
|
enc->base.cra_driver_name) >= CRYPTO_MAX_ALG_NAME)
|
|
goto err_drop_enc;
|
|
|
|
inst->alg.base.cra_flags = (auth_base->cra_flags |
|
|
enc->base.cra_flags) & CRYPTO_ALG_ASYNC;
|
|
inst->alg.base.cra_priority = enc->base.cra_priority * 10 +
|
|
auth_base->cra_priority;
|
|
inst->alg.base.cra_blocksize = enc->base.cra_blocksize;
|
|
inst->alg.base.cra_alignmask = auth_base->cra_alignmask |
|
|
enc->base.cra_alignmask;
|
|
inst->alg.base.cra_ctxsize = sizeof(struct crypto_tls_ctx);
|
|
|
|
inst->alg.ivsize = crypto_skcipher_alg_ivsize(enc);
|
|
inst->alg.chunksize = crypto_skcipher_alg_chunksize(enc);
|
|
inst->alg.maxauthsize = auth->digestsize;
|
|
|
|
inst->alg.init = crypto_tls_init_tfm;
|
|
inst->alg.exit = crypto_tls_exit_tfm;
|
|
|
|
inst->alg.setkey = crypto_tls_setkey;
|
|
inst->alg.encrypt = crypto_tls_encrypt;
|
|
inst->alg.decrypt = crypto_tls_decrypt;
|
|
|
|
inst->free = crypto_tls_free;
|
|
|
|
err = aead_register_instance(tmpl, inst);
|
|
if (err)
|
|
goto err_drop_enc;
|
|
|
|
out:
|
|
crypto_mod_put(auth_base);
|
|
return err;
|
|
|
|
err_drop_enc:
|
|
crypto_drop_skcipher(&ctx->enc);
|
|
err_drop_auth:
|
|
crypto_drop_ahash(&ctx->auth);
|
|
err_free_inst:
|
|
kfree(inst);
|
|
out_put_auth:
|
|
goto out;
|
|
}
|
|
|
|
static struct crypto_template crypto_tls_tmpl = {
|
|
.name = "tls10",
|
|
.create = crypto_tls_create,
|
|
.module = THIS_MODULE,
|
|
};
|
|
|
|
static int __init crypto_tls_module_init(void)
|
|
{
|
|
return crypto_register_template(&crypto_tls_tmpl);
|
|
}
|
|
|
|
static void __exit crypto_tls_module_exit(void)
|
|
{
|
|
crypto_unregister_template(&crypto_tls_tmpl);
|
|
}
|
|
|
|
module_init(crypto_tls_module_init);
|
|
module_exit(crypto_tls_module_exit);
|
|
|
|
MODULE_LICENSE("GPL");
|
|
MODULE_DESCRIPTION("TLS 1.0 record encryption");
|