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Add coordinate randomization back
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@ -1668,8 +1668,10 @@ cleanup:
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* This part is actually common with the basic comb method (GECC 3.44)
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*/
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static int ecp_mul_comb_core( const ecp_group *grp, ecp_point *R,
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const ecp_point T[], const unsigned char x[],
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size_t d )
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const ecp_point T[],
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const unsigned char x[], size_t d,
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int (*f_rng)(void *, unsigned char *, size_t),
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void *p_rng )
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{
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int ret;
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ecp_point Txi;
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@ -1677,9 +1679,11 @@ static int ecp_mul_comb_core( const ecp_group *grp, ecp_point *R,
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ecp_point_init( &Txi );
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/* Avoid useless doubling/addition of 0 by better initialisation */
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/* Start with a non-zero point and randomize its coordinates */
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i = d;
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MPI_CHK( ecp_select_comb( grp, R, T, x[i] ) );
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if( f_rng != 0 )
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MPI_CHK( ecp_randomize_coordinates( grp, R, f_rng, p_rng ) );
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while( i-- != 0 )
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{
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@ -1708,9 +1712,6 @@ int ecp_mul_comb( ecp_group *grp, ecp_point *R,
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ecp_point Q, *T = NULL, S[2];
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mpi M;
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(void) f_rng;
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(void) p_rng; // TODO
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if( mpi_cmp_int( m, 0 ) < 0 || mpi_msb( m ) > grp->nbits )
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return( POLARSSL_ERR_ECP_BAD_INPUT_DATA );
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@ -1781,7 +1782,7 @@ int ecp_mul_comb( ecp_group *grp, ecp_point *R,
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* Go for comb multiplication, Q = M * P
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*/
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ecp_comb_fixed( k, d, w, &M );
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ecp_mul_comb_core( grp, &Q, T, k, d );
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ecp_mul_comb_core( grp, &Q, T, k, d, f_rng, p_rng );
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/*
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* Now get m * P from M * P
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