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507 lines
15 KiB
507 lines
15 KiB
/**
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* (C) 2007-18 - ntop.org and contributors
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 3 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not see see <http://www.gnu.org/licenses/>
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*
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*/
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#include "n2n.h"
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#include "n2n_transforms.h"
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#include "twofish.h"
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#ifndef _MSC_VER
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/* Not included in Visual Studio 2008 */
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#include <strings.h> /* index() */
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#endif
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#define N2N_TWOFISH_NUM_SA 32 /* space for SAa */
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#define N2N_TWOFISH_TRANSFORM_VERSION 1 /* version of the transform encoding */
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struct sa_twofish
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{
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n2n_cipherspec_t spec; /* cipher spec parameters */
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n2n_sa_t sa_id; /* security association index */
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TWOFISH * enc_tf; /* tx state */
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TWOFISH * dec_tf; /* rx state */
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};
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typedef struct sa_twofish sa_twofish_t;
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/** Twofish transform state data.
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*
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* With a key-schedule in place this will be populated with a number of
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* SAs. Each SA has a lifetime and some opque data. The opaque data for twofish
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* consists of the SA number and key material.
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*
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*/
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struct transop_tf
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{
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ssize_t tx_sa;
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size_t num_sa;
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sa_twofish_t sa[N2N_TWOFISH_NUM_SA];
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};
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typedef struct transop_tf transop_tf_t;
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static int transop_deinit_twofish( n2n_trans_op_t * arg )
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{
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transop_tf_t * priv = (transop_tf_t *)arg->priv;
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size_t i;
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if ( priv )
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{
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/* Memory was previously allocated */
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for (i=0; i<N2N_TWOFISH_NUM_SA; ++i )
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{
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sa_twofish_t * sa = &(priv->sa[i]);
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TwoFishDestroy(sa->enc_tf); /* deallocate TWOFISH */
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sa->enc_tf=NULL;
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TwoFishDestroy(sa->dec_tf); /* deallocate TWOFISH */
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sa->dec_tf=NULL;
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sa->sa_id=0;
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}
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priv->num_sa=0;
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priv->tx_sa=-1;
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free(priv);
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}
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arg->priv=NULL; /* return to fully uninitialised state */
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return 0;
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}
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static size_t tf_choose_tx_sa( transop_tf_t * priv )
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{
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return priv->tx_sa; /* set in tick */
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}
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#define TRANSOP_TF_VER_SIZE 1 /* Support minor variants in encoding in one module. */
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#define TRANSOP_TF_NONCE_SIZE 4
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#define TRANSOP_TF_SA_SIZE 4
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/** The twofish packet format consists of:
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*
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* - a 8-bit twofish encoding version in clear text
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* - a 32-bit SA number in clear text
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* - ciphertext encrypted from a 32-bit nonce followed by the payload.
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*
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* [V|SSSS|nnnnDDDDDDDDDDDDDDDDDDDDD]
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* |<------ encrypted ------>|
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*/
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static int transop_encode_twofish( n2n_trans_op_t * arg,
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uint8_t * outbuf,
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size_t out_len,
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const uint8_t * inbuf,
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size_t in_len )
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{
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int len=-1;
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transop_tf_t * priv = (transop_tf_t *)arg->priv;
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uint8_t assembly[N2N_PKT_BUF_SIZE];
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uint32_t * pnonce;
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if ( (in_len + TRANSOP_TF_NONCE_SIZE) <= N2N_PKT_BUF_SIZE )
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{
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if ( (in_len + TRANSOP_TF_NONCE_SIZE + TRANSOP_TF_SA_SIZE + TRANSOP_TF_VER_SIZE) <= out_len )
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{
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size_t idx=0;
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sa_twofish_t * sa;
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size_t tx_sa_num = 0;
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/* The transmit sa is periodically updated */
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tx_sa_num = tf_choose_tx_sa( priv );
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sa = &(priv->sa[tx_sa_num]); /* Proper Tx SA index */
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traceEvent( TRACE_DEBUG, "encode_twofish %lu with SA %lu.", in_len, sa->sa_id );
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/* Encode the twofish format version. */
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encode_uint8( outbuf, &idx, N2N_TWOFISH_TRANSFORM_VERSION );
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/* Encode the security association (SA) number */
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encode_uint32( outbuf, &idx, sa->sa_id );
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/* The assembly buffer is a source for encrypting data. The nonce is
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* written in first followed by the packet payload. The whole
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* contents of assembly are encrypted. */
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pnonce = (uint32_t *)assembly;
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*pnonce = rand();
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memcpy( assembly + TRANSOP_TF_NONCE_SIZE, inbuf, in_len );
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/* Encrypt the assembly contents and write the ciphertext after the SA. */
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len = TwoFishEncryptRaw( assembly, /* source */
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outbuf + TRANSOP_TF_VER_SIZE + TRANSOP_TF_SA_SIZE,
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in_len + TRANSOP_TF_NONCE_SIZE, /* enc size */
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sa->enc_tf);
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if ( len > 0 )
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{
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len += TRANSOP_TF_VER_SIZE + TRANSOP_TF_SA_SIZE; /* size of data carried in UDP. */
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}
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else
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{
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traceEvent( TRACE_ERROR, "encode_twofish encryption failed." );
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}
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}
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else
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{
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traceEvent( TRACE_ERROR, "encode_twofish outbuf too small." );
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}
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}
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else
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{
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traceEvent( TRACE_ERROR, "encode_twofish inbuf too big to encrypt." );
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}
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return len;
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}
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/* Search through the array of SAs to find the one with the required ID.
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*
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* @return array index where found or -1 if not found
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*/
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static ssize_t twofish_find_sa( const transop_tf_t * priv, const n2n_sa_t req_id )
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{
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size_t i;
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for (i=0; i < priv->num_sa; ++i)
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{
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const sa_twofish_t * sa=NULL;
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sa = &(priv->sa[i]);
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if (req_id == sa->sa_id)
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{
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return i;
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}
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}
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return -1;
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}
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/** The twofish packet format consists of:
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*
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* - a 8-bit twofish encoding version in clear text
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* - a 32-bit SA number in clear text
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* - ciphertext encrypted from a 32-bit nonce followed by the payload.
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*
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* [V|SSSS|nnnnDDDDDDDDDDDDDDDDDDDDD]
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* |<------ encrypted ------>|
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*/
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static int transop_decode_twofish( n2n_trans_op_t * arg,
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uint8_t * outbuf,
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size_t out_len,
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const uint8_t * inbuf,
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size_t in_len )
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{
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int len=0;
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transop_tf_t * priv = (transop_tf_t *)arg->priv;
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uint8_t assembly[N2N_PKT_BUF_SIZE];
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if ( ( (in_len - (TRANSOP_TF_VER_SIZE + TRANSOP_TF_SA_SIZE)) <= N2N_PKT_BUF_SIZE ) /* Cipher text fits in assembly */
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&& (in_len >= (TRANSOP_TF_VER_SIZE + TRANSOP_TF_SA_SIZE + TRANSOP_TF_NONCE_SIZE) ) /* Has at least version, SA and nonce */
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)
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{
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n2n_sa_t sa_rx;
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ssize_t sa_idx=-1;
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size_t rem=in_len;
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size_t idx=0;
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uint8_t tf_enc_ver=0;
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/* Get the encoding version to make sure it is supported */
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decode_uint8( &tf_enc_ver, inbuf, &rem, &idx );
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if ( N2N_TWOFISH_TRANSFORM_VERSION == tf_enc_ver )
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{
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/* Get the SA number and make sure we are decrypting with the right one. */
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decode_uint32( &sa_rx, inbuf, &rem, &idx );
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sa_idx = twofish_find_sa(priv, sa_rx);
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if ( sa_idx >= 0 )
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{
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sa_twofish_t * sa = &(priv->sa[sa_idx]);
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traceEvent( TRACE_DEBUG, "decode_twofish %lu with SA %lu.", in_len, sa_rx, sa->sa_id );
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len = TwoFishDecryptRaw( (void *)(inbuf + TRANSOP_TF_VER_SIZE + TRANSOP_TF_SA_SIZE),
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assembly, /* destination */
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(in_len - (TRANSOP_TF_VER_SIZE + TRANSOP_TF_SA_SIZE)),
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sa->dec_tf);
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if ( len > 0 )
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{
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/* Step over 4-byte random nonce value */
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len -= TRANSOP_TF_NONCE_SIZE; /* size of ethernet packet */
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memcpy( outbuf,
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assembly + TRANSOP_TF_NONCE_SIZE,
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len );
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}
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else
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{
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traceEvent( TRACE_ERROR, "decode_twofish decryption failed." );
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}
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}
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else
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{
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/* Wrong security association; drop the packet as it is undecodable. */
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traceEvent( TRACE_ERROR, "decode_twofish SA number %lu not found.", sa_rx );
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/* REVISIT: should be able to load a new SA at this point to complete the decoding. */
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}
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}
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else
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{
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/* Wrong security association; drop the packet as it is undecodable. */
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traceEvent( TRACE_ERROR, "decode_twofish unsupported twofish version %u.", tf_enc_ver );
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/* REVISIT: should be able to load a new SA at this point to complete the decoding. */
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}
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}
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else
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{
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traceEvent( TRACE_ERROR, "decode_twofish inbuf wrong size (%ul) to decrypt.", in_len );
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}
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return len;
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}
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static int transop_addspec_twofish( n2n_trans_op_t * arg, const n2n_cipherspec_t * cspec )
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{
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int retval = 1;
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ssize_t pstat=-1;
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transop_tf_t * priv = (transop_tf_t *)arg->priv;
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uint8_t keybuf[N2N_MAX_KEYSIZE];
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if ( priv->num_sa < N2N_TWOFISH_NUM_SA )
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{
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const char * op = (const char *)cspec->opaque;
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#ifdef __ANDROID_NDK__
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const char *sep = strchr(op, '_');
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#else
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const char * sep = index( op, '_' );
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#endif // __ANDROID_NDK__
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if ( sep )
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{
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char tmp[256];
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size_t s;
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s = sep - op;
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memcpy( tmp, cspec->opaque, s );
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tmp[s]=0;
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s = strlen(sep+1); /* sep is the _ which might be immediately followed by NULL */
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priv->sa[priv->num_sa].spec = *cspec;
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priv->sa[priv->num_sa].sa_id = strtoul(tmp, NULL, 10);
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pstat = n2n_parse_hex( keybuf, N2N_MAX_KEYSIZE, sep+1, s );
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if ( pstat > 0 )
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{
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priv->sa[priv->num_sa].enc_tf = TwoFishInit( keybuf, pstat);
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priv->sa[priv->num_sa].dec_tf = TwoFishInit( keybuf, pstat);
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traceEvent( TRACE_DEBUG, "transop_addspec_twofish sa_id=%u data=%s.\n",
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priv->sa[priv->num_sa].sa_id, sep+1);
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++(priv->num_sa);
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retval = 0;
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}
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}
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else
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{
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traceEvent( TRACE_ERROR, "transop_addspec_twofish : bad key data - missing '_'.\n");
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}
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}
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else
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{
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traceEvent( TRACE_ERROR, "transop_addspec_twofish : full.\n");
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}
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return retval;
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}
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static n2n_tostat_t transop_tick_twofish( n2n_trans_op_t * arg, time_t now )
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{
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transop_tf_t * priv = (transop_tf_t *)arg->priv;
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size_t i;
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int found=0;
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n2n_tostat_t r;
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memset( &r, 0, sizeof(r) );
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traceEvent( TRACE_DEBUG, "transop_tf tick num_sa=%u", priv->num_sa );
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for ( i=0; i < priv->num_sa; ++i )
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{
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if ( 0 == validCipherSpec( &(priv->sa[i].spec), now ) )
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{
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time_t remaining = priv->sa[i].spec.valid_until - now;
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traceEvent( TRACE_INFO, "transop_tf choosing tx_sa=%u (valid for %lu sec)", priv->sa[i].sa_id, remaining );
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priv->tx_sa=i;
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found=1;
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break;
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}
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else
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{
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traceEvent( TRACE_DEBUG, "transop_tf tick rejecting sa=%u %lu -> %lu",
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priv->sa[i].sa_id, priv->sa[i].spec.valid_from, priv->sa[i].spec.valid_until );
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}
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}
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if ( 0==found)
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{
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traceEvent( TRACE_INFO, "transop_tf no keys are currently valid. Keeping tx_sa=%u", priv->tx_sa );
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}
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else
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{
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r.can_tx = 1;
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r.tx_spec.t = N2N_TRANSFORM_ID_TWOFISH;
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r.tx_spec = priv->sa[priv->tx_sa].spec;
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}
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return r;
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}
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int transop_twofish_setup( n2n_trans_op_t * ttt,
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n2n_sa_t sa_num,
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uint8_t * encrypt_pwd,
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uint32_t encrypt_pwd_len )
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{
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int retval = 1;
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transop_tf_t * priv = NULL;
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if ( ttt->priv )
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{
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transop_deinit_twofish( ttt );
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}
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memset( ttt, 0, sizeof( n2n_trans_op_t ) );
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priv = (transop_tf_t *) malloc( sizeof(transop_tf_t) );
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if ( NULL != priv )
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{
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size_t i;
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sa_twofish_t * sa=NULL;
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/* install the private structure. */
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ttt->priv = priv;
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for(i=0; i<N2N_TWOFISH_NUM_SA; ++i)
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{
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sa = &(priv->sa[i]);
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sa->sa_id=0;
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memset( &(sa->spec), 0, sizeof(n2n_cipherspec_t) );
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sa->enc_tf=NULL;
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sa->dec_tf=NULL;
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}
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priv->num_sa=1; /* There is one SA in the array. */
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priv->tx_sa=0;
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sa = &(priv->sa[priv->tx_sa]);
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sa->sa_id=sa_num;
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sa->spec.valid_until = 0x7fffffff;
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/* This is a preshared key setup. Both Tx and Rx are using the same security association. */
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sa->enc_tf = TwoFishInit(encrypt_pwd, encrypt_pwd_len);
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sa->dec_tf = TwoFishInit(encrypt_pwd, encrypt_pwd_len);
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if ( (sa->enc_tf) && (sa->dec_tf) )
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{
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ttt->transform_id = N2N_TRANSFORM_ID_TWOFISH;
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ttt->deinit = transop_deinit_twofish;
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ttt->addspec = transop_addspec_twofish;
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ttt->tick = transop_tick_twofish; /* chooses a new tx_sa */
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ttt->fwd = transop_encode_twofish;
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ttt->rev = transop_decode_twofish;
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retval = 0;
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}
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else
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{
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traceEvent( TRACE_ERROR, "TwoFishInit failed" );
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}
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}
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else
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{
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memset( ttt, 0, sizeof(n2n_trans_op_t) );
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traceEvent( TRACE_ERROR, "Failed to allocate priv for twofish" );
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}
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return retval;
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}
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int transop_twofish_init( n2n_trans_op_t * ttt )
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{
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int retval = 1;
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transop_tf_t * priv = NULL;
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if ( ttt->priv )
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{
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transop_deinit_twofish( ttt );
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}
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memset( ttt, 0, sizeof( n2n_trans_op_t ) );
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priv = (transop_tf_t *) malloc( sizeof(transop_tf_t) );
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if ( NULL != priv )
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{
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size_t i;
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sa_twofish_t * sa=NULL;
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/* install the private structure. */
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ttt->priv = priv;
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priv->num_sa=0;
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priv->tx_sa=0; /* We will use this sa index for encoding. */
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ttt->transform_id = N2N_TRANSFORM_ID_TWOFISH;
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ttt->addspec = transop_addspec_twofish;
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ttt->tick = transop_tick_twofish; /* chooses a new tx_sa */
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ttt->deinit = transop_deinit_twofish;
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ttt->fwd = transop_encode_twofish;
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ttt->rev = transop_decode_twofish;
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for(i=0; i<N2N_TWOFISH_NUM_SA; ++i)
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{
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sa = &(priv->sa[i]);
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sa->sa_id=0;
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memset( &(sa->spec), 0, sizeof(n2n_cipherspec_t) );
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sa->enc_tf=NULL;
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sa->dec_tf=NULL;
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}
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retval = 0;
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}
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else
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{
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memset( ttt, 0, sizeof(n2n_trans_op_t) );
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traceEvent( TRACE_ERROR, "Failed to allocate priv for twofish" );
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}
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return retval;
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}
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