839 lines
21 KiB
C
839 lines
21 KiB
C
/*
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* Copyright (C) 2021 Andreas Steffen
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*
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* Copyright (C) secunet Security Networks AG
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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
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* Free Software Foundation; either version 2 of the License, or (at your
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* option) any later version. See <http://www.fsf.org/copyleft/gpl.txt>.
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*
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* This program is distributed in the hope that it will be useful, but
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* WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
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* or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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* for more details.
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*/
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#ifdef TSS_TSS2_V2
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#include "tpm_tss_tss2_session.h"
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#include "tpm_tss_tss2_names.h"
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#define LABEL "TPM 2.0 - "
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typedef struct private_tpm_tss_tss2_session_t private_tpm_tss_tss2_session_t;
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/**
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* Private data of an tpm_tss_tss2_session_t object.
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*/
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struct private_tpm_tss_tss2_session_t {
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/**
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* Public tpm_tss_tss2_session_t interface.
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*/
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tpm_tss_tss2_session_t public;
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/**
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* Session handle for protected communication with TPM 2.0
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*/
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uint32_t session_handle;
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/**
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* Session key for protected communication with TPM 2.0
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*/
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chunk_t session_key;
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/**
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* Hash algorithm to be used for protected communication with TPM 2.0
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*/
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TPM2_ALG_ID hash_alg;
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/**
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* nonceCaller used for protected communication with TPM 2.0
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*/
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TPM2B_NONCE nonceCaller;
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/**
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* nonceTPM used for protected communication with TPM 2.0
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*/
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TPM2B_NONCE nonceTPM;
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/**
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* AES-CFB key size in bytes
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*/
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size_t aes_key_len;
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/**
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* SYS context
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*/
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TSS2_SYS_CONTEXT *sys_context;
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};
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/**
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* Two functions shared with tpm_tss_tss2_v2.c
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*/
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hash_algorithm_t hash_alg_from_tpm_alg_id(TPM2_ALG_ID alg);
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size_t hash_len_from_tpm_alg_id(TPM2_ALG_ID alg);
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/**
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* Convert TPM2_ALG_ID to PRF algorithm
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*/
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pseudo_random_function_t prf_alg_from_tpm_alg_id(TPM2_ALG_ID alg)
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{
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switch (alg)
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{
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case TPM2_ALG_SHA1:
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return PRF_HMAC_SHA1;
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case TPM2_ALG_SHA256:
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return PRF_HMAC_SHA2_256;
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case TPM2_ALG_SHA384:
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return PRF_HMAC_SHA2_384;
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case TPM2_ALG_SHA512:
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return PRF_HMAC_SHA2_512;
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default:
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return PRF_UNDEFINED;
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}
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}
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static bool generate_nonce(size_t size, TPM2B_NONCE *nonce)
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{
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nonce_gen_t *nonce_gen;
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bool success;
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nonce_gen = lib->crypto->create_nonce_gen(lib->crypto);
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if (!nonce_gen)
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{
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DBG1(DBG_PTS, "no nonce generator available");
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return FALSE;
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}
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nonce->size = size;
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success = nonce_gen->get_nonce(nonce_gen, nonce->size, nonce->buffer);
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nonce_gen->destroy(nonce_gen);
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if (!success)
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{
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DBG1(DBG_PTS, "generation of nonce failed");
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return FALSE;
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}
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return TRUE;
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}
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METHOD(tpm_tss_tss2_session_t, set_cmd_auths, bool,
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private_tpm_tss_tss2_session_t *this)
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{
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size_t hash_len, param_size, cp_size;
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const uint8_t *param_buffer, *cp_buffer;
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uint8_t cc_buffer[4];
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hash_algorithm_t hash_algorithm;
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hasher_t *hasher;
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pseudo_random_function_t prf_alg;
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prf_t *prf;
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chunk_t data, cp_hash, cp_hmac, nonce_caller, nonce_tpm, session_attributes;
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bool success;
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uint32_t rval;
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TSS2L_SYS_AUTH_COMMAND cmd;
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TPM2B_DIGEST cpHash;
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cmd.count = 1;
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cmd.auths[0].sessionHandle = this->session_handle;
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cmd.auths[0].sessionAttributes = TPMA_SESSION_CONTINUESESSION |
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TPMA_SESSION_ENCRYPT;
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session_attributes = chunk_create(&cmd.auths[0].sessionAttributes, 1);
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hash_len = hash_len_from_tpm_alg_id(this->hash_alg);
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if (!generate_nonce(hash_len, &this->nonceCaller))
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{
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return FALSE;
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}
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cmd.auths[0].nonce.size = this->nonceCaller.size;
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memcpy(cmd.auths[0].nonce.buffer, this->nonceCaller.buffer,
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this->nonceCaller.size);
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rval = Tss2_Sys_GetEncryptParam(this->sys_context, ¶m_size,
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¶m_buffer);
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if (rval == TSS2_SYS_RC_NO_ENCRYPT_PARAM)
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{
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DBG2(DBG_PTS, LABEL "parameter encryption not possible");
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return FALSE;
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}
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rval = Tss2_Sys_GetCommandCode(this->sys_context, cc_buffer);
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if (rval != TSS2_RC_SUCCESS)
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{
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DBG1(DBG_PTS, LABEL "Tss2_Sys_GetCommandCode failed: 0x%06x", rval);
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return FALSE;
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}
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rval = Tss2_Sys_GetCpBuffer(this->sys_context, &cp_size, &cp_buffer);
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if (rval != TSS2_RC_SUCCESS)
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{
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DBG1(DBG_PTS, LABEL "Tss2_GetCpBuffer failed: 0x%06x", rval);
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return FALSE;
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}
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/* compute cpHash */
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hash_algorithm = hash_alg_from_tpm_alg_id(this->hash_alg);
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hasher = lib->crypto->create_hasher(lib->crypto, hash_algorithm);
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if (!hasher)
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{
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DBG1(DBG_PTS, "hasher could not be created");
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return FALSE;
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}
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data = chunk_alloc(4 + cp_size);
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memcpy(data.ptr, cc_buffer, 4);
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memcpy(data.ptr + 4, cp_buffer, cp_size);
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success = hasher->get_hash(hasher, data, cpHash.buffer);
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cpHash.size = hasher->get_hash_size(hasher);
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hasher->destroy(hasher);
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chunk_free(&data);
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if (!success)
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{
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DBG1(DBG_PTS, "computation of cpHash failed");
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return FALSE;
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}
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cp_hash = chunk_create(cpHash.buffer, cpHash.size);
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/* compute cp HMAC */
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prf_alg = prf_alg_from_tpm_alg_id(this->hash_alg);
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prf = lib->crypto->create_prf(lib->crypto, prf_alg);
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if (!prf)
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{
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DBG1(DBG_PTS, "could not create PRF");
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return FALSE;
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}
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if (!prf->set_key(prf, this->session_key))
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{
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DBG1(DBG_PTS, "could not set PRF key");
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prf->destroy(prf);
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return FALSE;
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}
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nonce_caller = chunk_create(this->nonceCaller.buffer, this->nonceCaller.size);
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nonce_tpm = chunk_create(this->nonceTPM.buffer, this->nonceTPM.size);
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success = prf->get_bytes(prf, cp_hash, NULL) &&
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prf->get_bytes(prf, nonce_caller, NULL) &&
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prf->get_bytes(prf, nonce_tpm, NULL) &&
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prf->get_bytes(prf, session_attributes, cmd.auths[0].hmac.buffer);
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cmd.auths[0].hmac.size = prf->get_block_size(prf);
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prf->destroy(prf);
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if (!success)
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{
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DBG1(DBG_PTS, "cpHmac computation failed");
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return FALSE;
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}
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cp_hmac = chunk_create(cmd.auths[0].hmac.buffer, cmd.auths[0].hmac.size);
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DBG2(DBG_PTS, LABEL "cpHmac: %B", &cp_hmac);
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rval = Tss2_Sys_SetCmdAuths(this->sys_context, &cmd);
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if (rval != TSS2_RC_SUCCESS)
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{
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DBG1(DBG_PTS, LABEL "Tss2_Sys_SetCmdAuths failed: 0x%06x", rval);
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return FALSE;
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}
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return TRUE;
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}
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/**
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* Key Derivation Function using Counter Mode as defined by NIST SP800-108
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* - the label is expected to be NUL terminated
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*/
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static bool kdf_a(TPMI_ALG_HASH hash_alg, chunk_t key, chunk_t label,
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chunk_t context_u, chunk_t context_v, uint32_t bytes,
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chunk_t *key_mat)
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{
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pseudo_random_function_t prf_alg;
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chunk_t count_chunk, bits_chunk;
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uint32_t iterations, counter, count, bits;
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uint8_t *pos;
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size_t hlen;
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prf_t *prf;
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bits = htonl(8 * bytes);
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bits_chunk = chunk_create((uint8_t*)&bits, sizeof(bits));
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prf_alg = prf_alg_from_tpm_alg_id(hash_alg);
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prf = lib->crypto->create_prf(lib->crypto, prf_alg);
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if (!prf)
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{
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DBG1(DBG_PTS, "could not create PRF");
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return FALSE;
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}
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if (!prf->set_key(prf, key))
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{
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DBG1(DBG_PTS, "could not set PRF key");
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prf->destroy(prf);
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return FALSE;
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}
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hlen = prf->get_block_size(prf);
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iterations = (bytes + hlen - 1) / hlen;
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*key_mat = chunk_alloc(iterations * hlen);
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pos = key_mat->ptr;
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for (counter = 1; counter <= iterations; counter++)
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{
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count = htonl(counter);
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count_chunk = chunk_create((uint8_t*)&count, sizeof(count));
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if (!prf->get_bytes(prf, count_chunk, NULL) ||
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!prf->get_bytes(prf, label, NULL) ||
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!prf->get_bytes(prf, context_u, NULL) ||
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!prf->get_bytes(prf, context_v, NULL) ||
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!prf->get_bytes(prf, bits_chunk, pos))
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{
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DBG1(DBG_PTS, "KDFa computation failed");
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chunk_free(key_mat);
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prf->destroy(prf);
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return FALSE;
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}
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pos += hlen;
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}
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prf->destroy(prf);
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return TRUE;
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}
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METHOD(tpm_tss_tss2_session_t, get_rsp_auths, bool,
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private_tpm_tss_tss2_session_t *this)
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{
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size_t param_size, rp_size, key_len, iv_len;
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const uint8_t *param_buffer, *rp_buffer;
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uint8_t rc_buffer[4] = { 0 };
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uint8_t cc_buffer[4];
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hash_algorithm_t hash_algorithm;
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hasher_t *hasher;
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pseudo_random_function_t prf_alg;
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prf_t *prf;
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crypter_t *crypter;
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chunk_t kdf_label = chunk_from_chars('C','F','B', 0x00);
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chunk_t data, rp_hash, rp_hmac, nonce_caller, nonce_tpm, session_attributes;
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chunk_t key_mat, aes_key, aes_iv;
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bool success;
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uint32_t rval;
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TSS2L_SYS_AUTH_RESPONSE rsp;
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TPM2B_DIGEST rpHash, rpHmac;
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rval = Tss2_Sys_GetRspAuths(this->sys_context, &rsp);
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if (rval != TSS2_RC_SUCCESS)
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{
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DBG1(DBG_PTS, LABEL "Tss2_Sys_GetRspAuths failed: 0x%06x", rval);
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return FALSE;
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}
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/* update nonceTPM */
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memcpy(this->nonceTPM.buffer, rsp.auths[0].nonce.buffer,
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rsp.auths[0].nonce.size);
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this->nonceTPM.size = rsp.auths[0].nonce.size;
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rval = Tss2_Sys_GetRpBuffer(this->sys_context, &rp_size, &rp_buffer);
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if (rval != TSS2_RC_SUCCESS)
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{
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DBG1(DBG_PTS, LABEL "Tss2_Sys_GetRpBuffer failed: 0x%06x", rval);
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return FALSE;
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}
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rval = Tss2_Sys_GetCommandCode(this->sys_context, cc_buffer);
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if (rval != TSS2_RC_SUCCESS)
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{
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DBG1(DBG_PTS, LABEL "Tss2_Sys_GetCommandCode failed: 0x%06x", rval);
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return FALSE;
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}
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/* compute rpHash */
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hash_algorithm = hash_alg_from_tpm_alg_id(this->hash_alg);
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hasher = lib->crypto->create_hasher(lib->crypto, hash_algorithm);
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if (!hasher)
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{
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DBG1(DBG_PTS, "hasher could not be created");
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return FALSE;
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}
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data = chunk_alloc(4 + 4 + rp_size);
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memcpy(data.ptr, rc_buffer, 4);
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memcpy(data.ptr + 4, cc_buffer, 4);
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memcpy(data.ptr + 8, rp_buffer, rp_size);
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success = hasher->get_hash(hasher, data, rpHash.buffer);
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rpHash.size = hasher->get_hash_size(hasher);
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hasher->destroy(hasher);
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chunk_free(&data);
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if (!success)
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{
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DBG1(DBG_PTS, "computation of rpHash failed");
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return FALSE;
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}
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rp_hash = chunk_create(rpHash.buffer, rpHash.size);
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/* compute rpHmac */
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prf_alg = prf_alg_from_tpm_alg_id(this->hash_alg);
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prf = lib->crypto->create_prf(lib->crypto, prf_alg);
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if (!prf)
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{
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DBG1(DBG_PTS, "could not create PRF");
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return FALSE;
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}
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if (!prf->set_key(prf, this->session_key))
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{
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DBG1(DBG_PTS, "could not set PRF key");
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prf->destroy(prf);
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return FALSE;
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}
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nonce_tpm = chunk_create(this->nonceTPM.buffer, this->nonceTPM.size);
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nonce_caller = chunk_create(this->nonceCaller.buffer, this->nonceCaller.size);
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session_attributes = chunk_create(&rsp.auths[0].sessionAttributes, 1);
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success = prf->get_bytes(prf, rp_hash, NULL) &&
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prf->get_bytes(prf, nonce_tpm, NULL) &&
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prf->get_bytes(prf, nonce_caller, NULL) &&
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prf->get_bytes(prf, session_attributes, rpHmac.buffer);
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rpHmac.size = prf->get_block_size(prf);
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prf->destroy(prf);
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if (!success)
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{
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DBG1(DBG_PTS, "computation of rpHmac failed");
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return FALSE;
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}
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rp_hmac = chunk_create(rpHmac.buffer, rpHmac.size);
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DBG2(DBG_PTS, LABEL "rpHMAC: %B", &rp_hmac);
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/* verify rpHmac */
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if (!memeq(rsp.auths[0].hmac.buffer, rpHmac.buffer, rpHmac.size))
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{
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DBG1(DBG_PTS, LABEL "invalid HMAC received for session 0x%08x",
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this->session_handle);
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return FALSE;
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}
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/* decrypt parameter */
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rval = Tss2_Sys_GetEncryptParam(this->sys_context, ¶m_size,
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¶m_buffer);
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if (rval != TSS2_RC_SUCCESS)
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{
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DBG1(DBG_PTS, LABEL "Tss2_Sys_GetEncryptParam failed: 0x%06x", rval);
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return FALSE;
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}
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crypter = lib->crypto->create_crypter(lib->crypto, ENCR_AES_CFB,
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this->aes_key_len);
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if (!crypter)
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{
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DBG1(DBG_PTS, "could not create %N crypter", encryption_algorithm_names,
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ENCR_AES_CFB);
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return FALSE;
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}
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key_len = crypter->get_key_size(crypter);
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iv_len = crypter->get_iv_size(crypter);
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/* derive decryption key using KDFa */
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if (!kdf_a(this->hash_alg, this->session_key, kdf_label, nonce_tpm,
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nonce_caller, key_len + iv_len , &key_mat))
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{
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return FALSE;
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}
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aes_key = chunk_create(key_mat.ptr, key_len);
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aes_iv = chunk_create(key_mat.ptr + key_len, iv_len);
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if (!crypter->set_key(crypter, aes_key))
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{
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crypter->destroy(crypter);
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chunk_clear(&key_mat);
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return FALSE;
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}
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/* copy ciphertext */
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data = chunk_alloc(param_size);
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memcpy(data.ptr, param_buffer, param_size);
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/* decrypt ciphertext */
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success = crypter->decrypt(crypter, data, aes_iv, NULL);
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crypter->destroy(crypter);
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chunk_clear(&key_mat);
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if (!success)
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{
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chunk_free(&data);
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return FALSE;
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}
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DBG4(DBG_PTS, LABEL "plaintext: %B", &data);
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/* copy back plaintext */
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rval = Tss2_Sys_SetEncryptParam(this->sys_context, data.len, data.ptr);
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chunk_clear(&data);
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if (rval != TSS2_RC_SUCCESS)
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{
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DBG1(DBG_PTS, LABEL "Tss2_Sys_SetEncryptParam failed: 0x%06x", rval);
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return FALSE;
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}
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return TRUE;
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}
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METHOD(tpm_tss_tss2_session_t, destroy, void,
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private_tpm_tss_tss2_session_t *this)
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{
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if (this->session_handle)
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{
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uint32_t rval;
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|
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/* flush session context */
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rval = Tss2_Sys_FlushContext(this->sys_context, this->session_handle);
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if (rval != TPM2_RC_SUCCESS)
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{
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DBG2(DBG_PTS, LABEL "Tss2_Sys_FlushContext failed: 0x%06x", rval);
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}
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chunk_clear(&this->session_key);
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}
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free(this);
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}
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static chunk_t secret_label = chunk_from_chars('S','E','C','R','E','T', 0x00);
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static bool rsa_salt(TPM2B_PUBLIC *public, TPMI_ALG_HASH hash_alg,
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chunk_t *secret, TPM2B_ENCRYPTED_SECRET *encryptedSalt)
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{
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encryption_scheme_t encryption_scheme;
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public_key_t *pubkey = NULL;
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nonce_gen_t *nonce_gen;
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chunk_t encrypted_salt = chunk_empty;
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chunk_t rsa_modulus;
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chunk_t rsa_exponent = chunk_from_chars(0x01, 0x00, 0x01);
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uint32_t exponent;
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size_t hash_len;
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bool success;
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TPM2B_PUBLIC_KEY_RSA *rsa;
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switch (hash_alg)
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{
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case TPM2_ALG_SHA1:
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encryption_scheme = ENCRYPT_RSA_OAEP_SHA1;
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break;
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case TPM2_ALG_SHA256:
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encryption_scheme = ENCRYPT_RSA_OAEP_SHA256;
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break;
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case TPM2_ALG_SHA384:
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encryption_scheme = ENCRYPT_RSA_OAEP_SHA384;
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break;
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case TPM2_ALG_SHA512:
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encryption_scheme = ENCRYPT_RSA_OAEP_SHA512;
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break;
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default:
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DBG1(DBG_PTS, LABEL "unsupported key hash algorithm");
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return FALSE;
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}
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hash_len = hash_len_from_tpm_alg_id(hash_alg);
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/* create a salt nonce to be used as a shared secret */
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nonce_gen = lib->crypto->create_nonce_gen(lib->crypto);
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if (!nonce_gen)
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{
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DBG1(DBG_PTS, "no nonce generator available");
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return FALSE;
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}
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success = nonce_gen->allocate_nonce(nonce_gen, hash_len, secret);
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nonce_gen->destroy(nonce_gen);
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if (!success)
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{
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DBG1(DBG_PTS, "generation of salt nonce failed");
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return FALSE;
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}
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/* get RSA public key */
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rsa = &public->publicArea.unique.rsa;
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rsa_modulus = chunk_create(rsa->buffer, rsa->size);
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exponent = htonl(public->publicArea.parameters.rsaDetail.exponent);
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if (exponent)
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{
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rsa_exponent = chunk_from_thing(exponent);
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}
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pubkey = lib->creds->create(lib->creds, CRED_PUBLIC_KEY, KEY_RSA,
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BUILD_RSA_MODULUS, rsa_modulus, BUILD_RSA_PUB_EXP,
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rsa_exponent, BUILD_END);
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if (!pubkey)
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{
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DBG1(DBG_PTS, "retrieval of EK public key failed");
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chunk_clear(secret);
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return FALSE;
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}
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/* use RSA public key encryption to encrypt secret salt nonce */
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success = pubkey->encrypt(pubkey, encryption_scheme, &secret_label,
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*secret, &encrypted_salt);
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pubkey->destroy(pubkey);
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if (!success)
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{
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DBG1(DBG_PTS, "encryption of salt failed");
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chunk_clear(secret);
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return FALSE;
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}
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/* copy encryptedSalt to output parameter */
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encryptedSalt->size = encrypted_salt.len;
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memcpy(encryptedSalt->secret, encrypted_salt.ptr, encrypted_salt.len);
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free(encrypted_salt.ptr);
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return TRUE;
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}
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|
|
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/**
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* Key Derivation Function used to derive an ecc-based secret
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* - the label is expected to be NUL terminated
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|
*/
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static bool kdf_e(TPMI_ALG_HASH hash_alg, chunk_t z, chunk_t label,
|
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chunk_t context_u, chunk_t context_v, uint32_t bytes,
|
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chunk_t *key_mat)
|
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{
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hash_algorithm_t hash_algorithm;
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chunk_t count_chunk;
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uint32_t iterations, counter, count;
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uint8_t *pos;
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size_t hlen;
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hasher_t *hasher;
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hash_algorithm = hash_alg_from_tpm_alg_id(hash_alg);
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hasher = lib->crypto->create_hasher(lib->crypto, hash_algorithm);
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if (!hasher)
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{
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DBG1(DBG_PTS, "could not create hasher");
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return FALSE;
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|
}
|
|
|
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hlen = hasher->get_hash_size(hasher);
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iterations = (bytes + hlen - 1) / hlen;
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*key_mat = chunk_alloc(iterations * hlen);
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pos = key_mat->ptr;
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for (counter = 1; counter <= iterations; counter++)
|
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{
|
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count = htonl(counter);
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count_chunk = chunk_create((uint8_t*)&count, sizeof(count));
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if (!hasher->get_hash(hasher, count_chunk, NULL) ||
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!hasher->get_hash(hasher, z, NULL) ||
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!hasher->get_hash(hasher, label, NULL) ||
|
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!hasher->get_hash(hasher, context_u, NULL) ||
|
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!hasher->get_hash(hasher, context_v, pos))
|
|
{
|
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DBG1(DBG_PTS, "KDFe computation failed");
|
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chunk_free(key_mat);
|
|
hasher->destroy(hasher);
|
|
return FALSE;
|
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}
|
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pos += hlen;
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}
|
|
hasher->destroy(hasher);
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|
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return TRUE;
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}
|
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static bool ecc_salt(TPM2B_PUBLIC *public, TPMI_ALG_HASH hash_alg,
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chunk_t *secret, TPM2B_ENCRYPTED_SECRET *encryptedSalt)
|
|
{
|
|
key_exchange_method_t ec_ke_method;
|
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key_exchange_t *ke;
|
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chunk_t ecdh_pubkey = chunk_empty, ecdh_pubkey_x, ecdh_pubkey_y;
|
|
chunk_t ecc_pubkey = chunk_empty, ecc_pubkey_x, ecc_pubkey_y;
|
|
chunk_t z = chunk_empty;
|
|
uint16_t len;
|
|
uint8_t *pos;
|
|
size_t hash_len;
|
|
bool success = FALSE;
|
|
|
|
switch (public->publicArea.parameters.eccDetail.curveID)
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|
{
|
|
case TPM2_ECC_NIST_P256:
|
|
ec_ke_method = ECP_256_BIT;
|
|
break;
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case TPM2_ECC_NIST_P384:
|
|
ec_ke_method = ECP_384_BIT;
|
|
break;
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case TPM2_ECC_NIST_P521:
|
|
ec_ke_method = ECP_521_BIT;
|
|
break;
|
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default:
|
|
DBG1(DBG_PTS, "type of ECC EK key not supported");
|
|
return FALSE;
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|
}
|
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|
|
/* Generate ECDH key pair */
|
|
ke = lib->crypto->create_ke(lib->crypto, ec_ke_method);
|
|
if (!ke)
|
|
{
|
|
DBG1(DBG_PTS, "DH group could not be created");
|
|
return FALSE;
|
|
}
|
|
if (!ke->get_public_key(ke, &ecdh_pubkey))
|
|
{
|
|
DBG1(DBG_PTS, "DH public key could not be generated");
|
|
ke->destroy(ke);
|
|
return FALSE;
|
|
}
|
|
ecdh_pubkey_x = chunk_create(ecdh_pubkey.ptr, ecdh_pubkey.len / 2);
|
|
ecdh_pubkey_y = chunk_create(ecdh_pubkey.ptr + ecdh_pubkey_x.len,
|
|
ecdh_pubkey_x.len);
|
|
|
|
/* get ECC public key */
|
|
ecc_pubkey_x = chunk_create(public->publicArea.unique.ecc.x.buffer,
|
|
public->publicArea.unique.ecc.x.size);
|
|
ecc_pubkey_y = chunk_create(public->publicArea.unique.ecc.y.buffer,
|
|
public->publicArea.unique.ecc.y.size);
|
|
ecc_pubkey = chunk_cat("cc", ecc_pubkey_x, ecc_pubkey_y);
|
|
|
|
/* compute point multiplication of ecc_pubkey with ecdh_privkey */
|
|
if (!ke->set_public_key(ke, ecc_pubkey))
|
|
{
|
|
DBG1(DBG_PTS, "ECC public could not be set");
|
|
goto error;
|
|
}
|
|
if (!ke->get_shared_secret(ke, &z))
|
|
{
|
|
DBG1(DBG_PTS, "could not create shared secret");
|
|
goto error;
|
|
}
|
|
|
|
hash_len = hash_len_from_tpm_alg_id(hash_alg);
|
|
|
|
/* derive secret using KDFe */
|
|
if (!kdf_e(hash_alg, z, secret_label, ecdh_pubkey_x, ecc_pubkey_x,
|
|
hash_len, secret))
|
|
{
|
|
goto error;
|
|
}
|
|
|
|
/* copy ECDH pubkey to encrypted salt parameter */
|
|
len = htons(ecdh_pubkey_x.len);
|
|
encryptedSalt->size = 2 * sizeof(len) + ecdh_pubkey.len;
|
|
pos = encryptedSalt->secret;
|
|
memcpy(pos, (uint8_t*)&len, sizeof(len));
|
|
pos += sizeof(len);
|
|
memcpy(pos, ecdh_pubkey_x.ptr, ecdh_pubkey_x.len);
|
|
pos += ecdh_pubkey_x.len;
|
|
memcpy(pos, (uint8_t*)&len, sizeof(len));
|
|
pos += sizeof(len);
|
|
memcpy(pos, ecdh_pubkey_y.ptr, ecdh_pubkey_y.len);
|
|
|
|
success = TRUE;
|
|
|
|
error:
|
|
ke->destroy(ke);
|
|
chunk_free(&ecdh_pubkey);
|
|
chunk_free(&ecc_pubkey);
|
|
chunk_clear(&z);
|
|
|
|
return success;
|
|
}
|
|
|
|
/**
|
|
* See header
|
|
*/
|
|
tpm_tss_tss2_session_t* tpm_tss_tss2_session_create(uint32_t ek_handle,
|
|
TPM2B_PUBLIC *public, TSS2_SYS_CONTEXT *sys_context)
|
|
{
|
|
private_tpm_tss_tss2_session_t *this;
|
|
chunk_t secret = chunk_empty;
|
|
chunk_t kdf_label = chunk_from_chars('A','T','H', 0x00);
|
|
chunk_t nonce_caller, nonce_tpm;
|
|
size_t hash_len;
|
|
uint32_t rval;
|
|
|
|
TPM2B_ENCRYPTED_SECRET encryptedSalt;
|
|
TPM2_SE sessionType = TPM2_SE_HMAC;
|
|
TPMT_SYM_DEF *sym;
|
|
|
|
INIT(this,
|
|
.public = {
|
|
.set_cmd_auths = _set_cmd_auths,
|
|
.get_rsp_auths = _get_rsp_auths,
|
|
.destroy = _destroy,
|
|
},
|
|
.sys_context = sys_context,
|
|
.hash_alg = public->publicArea.nameAlg,
|
|
);
|
|
|
|
hash_len = hash_len_from_tpm_alg_id(this->hash_alg);
|
|
|
|
if (!generate_nonce(hash_len, &this->nonceCaller))
|
|
{
|
|
goto error;
|
|
}
|
|
|
|
/* determine endorsement key type */
|
|
switch (public->publicArea.type)
|
|
{
|
|
case TPM2_ALG_RSA:
|
|
DBG1(DBG_PTS, LABEL "RSA EK handle: 0x%08x", ek_handle);
|
|
if (!rsa_salt(public, this->hash_alg, &secret, &encryptedSalt))
|
|
{
|
|
goto error;
|
|
}
|
|
break;
|
|
case TPM2_ALG_ECC:
|
|
DBG1(DBG_PTS, LABEL "ECC %N EK handle: 0x%08x", tpm_ecc_curve_names,
|
|
public->publicArea.parameters.eccDetail.curveID, ek_handle);
|
|
if (!ecc_salt(public, this->hash_alg, &secret, &encryptedSalt))
|
|
{
|
|
goto error;
|
|
}
|
|
break;
|
|
default:
|
|
DBG1(DBG_PTS, LABEL "unsupported ek key type");
|
|
goto error;
|
|
}
|
|
|
|
sym = (TPMT_SYM_DEF*)&public->publicArea.parameters.asymDetail.symmetric;
|
|
DBG2(DBG_PTS, LABEL "AES-CFB with %u bits", sym->keyBits.aes);
|
|
this->aes_key_len = sym->keyBits.aes / 8;
|
|
|
|
rval = Tss2_Sys_StartAuthSession(this->sys_context, ek_handle, TPM2_RH_NULL,
|
|
NULL, &this->nonceCaller, &encryptedSalt, sessionType, sym,
|
|
this->hash_alg, &this->session_handle, &this->nonceTPM, NULL);
|
|
if (rval != TSS2_RC_SUCCESS)
|
|
{
|
|
DBG1(DBG_PTS, LABEL "Tss2_Sys_StartAuthSession failed: 0x%06x", rval);
|
|
goto error;
|
|
}
|
|
DBG2(DBG_PTS, LABEL "session handle: 0x%08x", this->session_handle);
|
|
|
|
nonce_tpm = chunk_create(this->nonceTPM.buffer, this->nonceTPM.size);
|
|
nonce_caller = chunk_create(this->nonceCaller.buffer, this->nonceCaller.size);
|
|
|
|
/* derive sessionKey using KDFa */
|
|
if (!kdf_a(this->hash_alg, secret, kdf_label, nonce_tpm, nonce_caller,
|
|
hash_len, &this->session_key))
|
|
{
|
|
goto error;
|
|
}
|
|
chunk_clear(&secret);
|
|
DBG4(DBG_PTS, LABEL "session key: %B", &this->session_key);
|
|
|
|
return &this->public;
|
|
|
|
error:
|
|
chunk_clear(&secret);
|
|
destroy(this);
|
|
return NULL;
|
|
}
|
|
|
|
#endif /* TSS_TSS2_V2 */
|