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https://github.com/ARM-software/arm-trusted-firmware.git
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Make this function return values from crypto_ret_value. The previous method of returning the mbedtls error code on failure meant that the authentication module couldn't correctly parse failures from this function. Change-Id: I9fe6eba1fc79e8f81004f8cd202781aea907e963 Signed-off-by: Ryan Everett <ryan.everett@arm.com>
435 lines
11 KiB
C
435 lines
11 KiB
C
/*
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* Copyright (c) 2015-2024, Arm Limited and Contributors. All rights reserved.
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*
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* SPDX-License-Identifier: BSD-3-Clause
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*/
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#include <assert.h>
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#include <stddef.h>
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#include <string.h>
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/* mbed TLS headers */
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#include <mbedtls/gcm.h>
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#include <mbedtls/md.h>
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#include <mbedtls/memory_buffer_alloc.h>
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#include <mbedtls/oid.h>
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#include <mbedtls/platform.h>
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#include <mbedtls/version.h>
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#include <mbedtls/x509.h>
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#include <common/debug.h>
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#include <drivers/auth/crypto_mod.h>
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#include <drivers/auth/mbedtls/mbedtls_common.h>
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#include <plat/common/platform.h>
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#define LIB_NAME "mbed TLS"
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#if CRYPTO_SUPPORT == CRYPTO_HASH_CALC_ONLY || \
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CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_AND_HASH_CALC
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/*
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* CRYPTO_MD_MAX_SIZE value is as per current stronger algorithm available
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* so make sure that mbed TLS MD maximum size must be lesser than this.
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*/
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CASSERT(CRYPTO_MD_MAX_SIZE >= MBEDTLS_MD_MAX_SIZE,
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assert_mbedtls_md_size_overflow);
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#endif /* CRYPTO_SUPPORT == CRYPTO_HASH_CALC_ONLY || \
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CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_AND_HASH_CALC */
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/*
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* AlgorithmIdentifier ::= SEQUENCE {
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* algorithm OBJECT IDENTIFIER,
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* parameters ANY DEFINED BY algorithm OPTIONAL
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* }
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*
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* SubjectPublicKeyInfo ::= SEQUENCE {
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* algorithm AlgorithmIdentifier,
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* subjectPublicKey BIT STRING
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* }
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*
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* DigestInfo ::= SEQUENCE {
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* digestAlgorithm AlgorithmIdentifier,
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* digest OCTET STRING
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* }
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*/
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/*
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* Initialize the library and export the descriptor
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*/
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static void init(void)
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{
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/* Initialize mbed TLS */
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mbedtls_init();
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}
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#if CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_ONLY || \
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CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_AND_HASH_CALC
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/*
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* NOTE: This has been made internal in mbedtls 3.6.0 and the mbedtls team has
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* advised that it's better to copy out the declaration than it would be to
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* update to 3.5.2, where this function is exposed.
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*/
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int mbedtls_x509_get_sig_alg(const mbedtls_x509_buf *sig_oid,
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const mbedtls_x509_buf *sig_params,
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mbedtls_md_type_t *md_alg,
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mbedtls_pk_type_t *pk_alg,
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void **sig_opts);
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/*
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* Verify a signature.
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*
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* Parameters are passed using the DER encoding format following the ASN.1
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* structures detailed above.
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*/
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static int verify_signature(void *data_ptr, unsigned int data_len,
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void *sig_ptr, unsigned int sig_len,
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void *sig_alg, unsigned int sig_alg_len,
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void *pk_ptr, unsigned int pk_len)
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{
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mbedtls_asn1_buf sig_oid, sig_params;
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mbedtls_asn1_buf signature;
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mbedtls_md_type_t md_alg;
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mbedtls_pk_type_t pk_alg;
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mbedtls_pk_context pk = {0};
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int rc;
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void *sig_opts = NULL;
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const mbedtls_md_info_t *md_info;
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unsigned char *p, *end;
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unsigned char hash[MBEDTLS_MD_MAX_SIZE];
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/* Get pointers to signature OID and parameters */
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p = (unsigned char *)sig_alg;
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end = (unsigned char *)(p + sig_alg_len);
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rc = mbedtls_asn1_get_alg(&p, end, &sig_oid, &sig_params);
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if (rc != 0) {
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return CRYPTO_ERR_SIGNATURE;
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}
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/* Get the actual signature algorithm (MD + PK) */
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rc = mbedtls_x509_get_sig_alg(&sig_oid, &sig_params, &md_alg, &pk_alg, &sig_opts);
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if (rc != 0) {
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return CRYPTO_ERR_SIGNATURE;
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}
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/* Parse the public key */
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mbedtls_pk_init(&pk);
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p = (unsigned char *)pk_ptr;
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end = (unsigned char *)(p + pk_len);
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rc = mbedtls_pk_parse_subpubkey(&p, end, &pk);
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if (rc != 0) {
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rc = CRYPTO_ERR_SIGNATURE;
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goto end2;
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}
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/* Get the signature (bitstring) */
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p = (unsigned char *)sig_ptr;
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end = (unsigned char *)(p + sig_len);
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signature.tag = *p;
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rc = mbedtls_asn1_get_bitstring_null(&p, end, &signature.len);
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if ((rc != 0) || ((size_t)(end - p) != signature.len)) {
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rc = CRYPTO_ERR_SIGNATURE;
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goto end1;
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}
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signature.p = p;
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/* Calculate the hash of the data */
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md_info = mbedtls_md_info_from_type(md_alg);
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if (md_info == NULL) {
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rc = CRYPTO_ERR_SIGNATURE;
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goto end1;
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}
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p = (unsigned char *)data_ptr;
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rc = mbedtls_md(md_info, p, data_len, hash);
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if (rc != 0) {
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rc = CRYPTO_ERR_SIGNATURE;
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goto end1;
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}
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/* Verify the signature */
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rc = mbedtls_pk_verify_ext(pk_alg, sig_opts, &pk, md_alg, hash,
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mbedtls_md_get_size(md_info),
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signature.p, signature.len);
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if (rc != 0) {
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rc = CRYPTO_ERR_SIGNATURE;
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goto end1;
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}
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/* Signature verification success */
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rc = CRYPTO_SUCCESS;
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end1:
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mbedtls_pk_free(&pk);
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end2:
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mbedtls_free(sig_opts);
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return rc;
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}
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/*
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* Match a hash
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*
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* Digest info is passed in DER format following the ASN.1 structure detailed
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* above.
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*/
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static int verify_hash(void *data_ptr, unsigned int data_len,
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void *digest_info_ptr, unsigned int digest_info_len)
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{
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mbedtls_asn1_buf hash_oid, params;
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mbedtls_md_type_t md_alg;
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const mbedtls_md_info_t *md_info;
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unsigned char *p, *end, *hash;
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unsigned char data_hash[MBEDTLS_MD_MAX_SIZE];
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size_t len;
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int rc;
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/*
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* Digest info should be an MBEDTLS_ASN1_SEQUENCE, but padding after
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* it is allowed. This is necessary to support multiple hash
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* algorithms.
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*/
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p = (unsigned char *)digest_info_ptr;
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end = p + digest_info_len;
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rc = mbedtls_asn1_get_tag(&p, end, &len, MBEDTLS_ASN1_CONSTRUCTED |
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MBEDTLS_ASN1_SEQUENCE);
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if (rc != 0) {
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return CRYPTO_ERR_HASH;
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}
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end = p + len;
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/* Get the hash algorithm */
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rc = mbedtls_asn1_get_alg(&p, end, &hash_oid, ¶ms);
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if (rc != 0) {
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return CRYPTO_ERR_HASH;
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}
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rc = mbedtls_oid_get_md_alg(&hash_oid, &md_alg);
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if (rc != 0) {
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return CRYPTO_ERR_HASH;
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}
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md_info = mbedtls_md_info_from_type(md_alg);
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if (md_info == NULL) {
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return CRYPTO_ERR_HASH;
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}
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/* Hash should be octet string type and consume all bytes */
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rc = mbedtls_asn1_get_tag(&p, end, &len, MBEDTLS_ASN1_OCTET_STRING);
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if ((rc != 0) || ((size_t)(end - p) != len)) {
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return CRYPTO_ERR_HASH;
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}
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/* Length of hash must match the algorithm's size */
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if (len != mbedtls_md_get_size(md_info)) {
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return CRYPTO_ERR_HASH;
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}
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hash = p;
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/* Calculate the hash of the data */
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p = (unsigned char *)data_ptr;
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rc = mbedtls_md(md_info, p, data_len, data_hash);
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if (rc != 0) {
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return CRYPTO_ERR_HASH;
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}
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/* Compare values */
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rc = memcmp(data_hash, hash, mbedtls_md_get_size(md_info));
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if (rc != 0) {
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return CRYPTO_ERR_HASH;
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}
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return CRYPTO_SUCCESS;
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}
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#endif /* CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_ONLY || \
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CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_AND_HASH_CALC */
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#if CRYPTO_SUPPORT == CRYPTO_HASH_CALC_ONLY || \
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CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_AND_HASH_CALC
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/*
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* Map a generic crypto message digest algorithm to the corresponding macro used
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* by Mbed TLS.
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*/
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static inline mbedtls_md_type_t md_type(enum crypto_md_algo algo)
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{
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switch (algo) {
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case CRYPTO_MD_SHA512:
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return MBEDTLS_MD_SHA512;
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case CRYPTO_MD_SHA384:
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return MBEDTLS_MD_SHA384;
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case CRYPTO_MD_SHA256:
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return MBEDTLS_MD_SHA256;
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default:
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/* Invalid hash algorithm. */
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return MBEDTLS_MD_NONE;
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}
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}
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/*
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* Calculate a hash
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*
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* output points to the computed hash
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*/
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static int calc_hash(enum crypto_md_algo md_algo, void *data_ptr,
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unsigned int data_len,
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unsigned char output[CRYPTO_MD_MAX_SIZE])
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{
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const mbedtls_md_info_t *md_info;
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int rc;
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md_info = mbedtls_md_info_from_type(md_type(md_algo));
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if (md_info == NULL) {
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return CRYPTO_ERR_HASH;
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}
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/*
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* Calculate the hash of the data, it is safe to pass the
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* 'output' hash buffer pointer considering its size is always
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* bigger than or equal to MBEDTLS_MD_MAX_SIZE.
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*/
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rc = mbedtls_md(md_info, data_ptr, data_len, output);
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if (rc != 0) {
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return CRYPTO_ERR_HASH;
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}
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return CRYPTO_SUCCESS;
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}
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#endif /* CRYPTO_SUPPORT == CRYPTO_HASH_CALC_ONLY || \
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CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_AND_HASH_CALC */
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#if TF_MBEDTLS_USE_AES_GCM
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/*
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* Stack based buffer allocation for decryption operation. It could
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* be configured to balance stack usage vs execution speed.
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*/
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#define DEC_OP_BUF_SIZE 128
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static int aes_gcm_decrypt(void *data_ptr, size_t len, const void *key,
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unsigned int key_len, const void *iv,
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unsigned int iv_len, const void *tag,
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unsigned int tag_len)
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{
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mbedtls_gcm_context ctx;
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mbedtls_cipher_id_t cipher = MBEDTLS_CIPHER_ID_AES;
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unsigned char buf[DEC_OP_BUF_SIZE];
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unsigned char tag_buf[CRYPTO_MAX_TAG_SIZE];
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unsigned char *pt = data_ptr;
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size_t dec_len;
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int diff, i, rc;
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size_t output_length __unused;
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mbedtls_gcm_init(&ctx);
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rc = mbedtls_gcm_setkey(&ctx, cipher, key, key_len * 8);
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if (rc != 0) {
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rc = CRYPTO_ERR_DECRYPTION;
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goto exit_gcm;
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}
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#if (MBEDTLS_VERSION_MAJOR < 3)
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rc = mbedtls_gcm_starts(&ctx, MBEDTLS_GCM_DECRYPT, iv, iv_len, NULL, 0);
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#else
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rc = mbedtls_gcm_starts(&ctx, MBEDTLS_GCM_DECRYPT, iv, iv_len);
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#endif
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if (rc != 0) {
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rc = CRYPTO_ERR_DECRYPTION;
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goto exit_gcm;
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}
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while (len > 0) {
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dec_len = MIN(sizeof(buf), len);
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#if (MBEDTLS_VERSION_MAJOR < 3)
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rc = mbedtls_gcm_update(&ctx, dec_len, pt, buf);
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#else
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rc = mbedtls_gcm_update(&ctx, pt, dec_len, buf, sizeof(buf), &output_length);
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#endif
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if (rc != 0) {
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rc = CRYPTO_ERR_DECRYPTION;
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goto exit_gcm;
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}
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memcpy(pt, buf, dec_len);
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pt += dec_len;
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len -= dec_len;
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}
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#if (MBEDTLS_VERSION_MAJOR < 3)
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rc = mbedtls_gcm_finish(&ctx, tag_buf, sizeof(tag_buf));
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#else
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rc = mbedtls_gcm_finish(&ctx, NULL, 0, &output_length, tag_buf, sizeof(tag_buf));
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#endif
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if (rc != 0) {
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rc = CRYPTO_ERR_DECRYPTION;
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goto exit_gcm;
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}
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/* Check tag in "constant-time" */
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for (diff = 0, i = 0; i < tag_len; i++)
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diff |= ((const unsigned char *)tag)[i] ^ tag_buf[i];
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if (diff != 0) {
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rc = CRYPTO_ERR_DECRYPTION;
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goto exit_gcm;
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}
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/* GCM decryption success */
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rc = CRYPTO_SUCCESS;
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exit_gcm:
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mbedtls_gcm_free(&ctx);
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return rc;
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}
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/*
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* Authenticated decryption of an image
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*/
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static int auth_decrypt(enum crypto_dec_algo dec_algo, void *data_ptr,
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size_t len, const void *key, unsigned int key_len,
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unsigned int key_flags, const void *iv,
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unsigned int iv_len, const void *tag,
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unsigned int tag_len)
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{
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int rc;
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assert((key_flags & ENC_KEY_IS_IDENTIFIER) == 0);
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switch (dec_algo) {
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case CRYPTO_GCM_DECRYPT:
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rc = aes_gcm_decrypt(data_ptr, len, key, key_len, iv, iv_len,
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tag, tag_len);
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if (rc != 0)
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return rc;
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break;
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default:
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return CRYPTO_ERR_DECRYPTION;
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}
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return CRYPTO_SUCCESS;
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}
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#endif /* TF_MBEDTLS_USE_AES_GCM */
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/*
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* Register crypto library descriptor
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*/
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#if CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_AND_HASH_CALC
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#if TF_MBEDTLS_USE_AES_GCM
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REGISTER_CRYPTO_LIB(LIB_NAME, init, verify_signature, verify_hash, calc_hash,
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auth_decrypt, NULL);
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#else
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REGISTER_CRYPTO_LIB(LIB_NAME, init, verify_signature, verify_hash, calc_hash,
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NULL, NULL);
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#endif
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#elif CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_ONLY
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#if TF_MBEDTLS_USE_AES_GCM
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REGISTER_CRYPTO_LIB(LIB_NAME, init, verify_signature, verify_hash, NULL,
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auth_decrypt, NULL);
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#else
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REGISTER_CRYPTO_LIB(LIB_NAME, init, verify_signature, verify_hash, NULL,
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NULL, NULL);
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#endif
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#elif CRYPTO_SUPPORT == CRYPTO_HASH_CALC_ONLY
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REGISTER_CRYPTO_LIB(LIB_NAME, init, NULL, NULL, calc_hash, NULL, NULL);
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#endif /* CRYPTO_SUPPORT == CRYPTO_AUTH_VERIFY_AND_HASH_CALC */
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