Suppressed multiple warnings.
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@ -166,16 +166,16 @@ namespace Opm
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}
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void SinglePvtLiveGas::evalBDeriv(const double press, const double* surfvol,
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double& B, double& dBdp) const
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double& Bval, double& dBdpval) const
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{
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if (surfvol[phase_pos_[Vapour]] == 0.0) {
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// To handle no-gas case.
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B = 1.0;
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dBdp = 0.0;
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Bval = 1.0;
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dBdpval = 0.0;
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return;
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}
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B = miscible_gas(press, surfvol, 1, false);
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dBdp = miscible_gas(press, surfvol, 1, true);
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Bval = miscible_gas(press, surfvol, 1, false);
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dBdpval = miscible_gas(press, surfvol, 1, true);
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}
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double SinglePvtLiveGas::evalR(const double press, const double* surfvol) const
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@ -197,12 +197,12 @@ namespace Opm
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}
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void SinglePvtLiveGas::evalRDeriv(const double press, const double* surfvol,
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double& R, double& dRdp) const
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double& Rval, double& dRdpval) const
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{
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if (surfvol[phase_pos_[Liquid]] == 0.0) {
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// To handle no-gas case.
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R = 0.0;
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dRdp = 0.0;
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Rval = 0.0;
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dRdpval = 0.0;
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return;
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}
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double satR = linearInterpolationExtrap(saturated_gas_table_[0],
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@ -210,14 +210,14 @@ namespace Opm
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double maxR = surfvol[phase_pos_[Liquid]]/surfvol[phase_pos_[Vapour]];
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if (satR < maxR ) {
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// Saturated case
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R = satR;
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dRdp = linearInterpolDerivative(saturated_gas_table_[0],
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Rval = satR;
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dRdpval = linearInterpolDerivative(saturated_gas_table_[0],
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saturated_gas_table_[3],
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press);
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} else {
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// Undersaturated case
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R = maxR;
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dRdp = 0.0;
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Rval = maxR;
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dRdpval = 0.0;
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}
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}
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@ -227,12 +227,12 @@ namespace Opm
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const bool deriv) const
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{
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int section;
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double R = linearInterpolationExtrap(saturated_gas_table_[0],
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saturated_gas_table_[3], press,
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section);
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double Rval = linearInterpolationExtrap(saturated_gas_table_[0],
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saturated_gas_table_[3], press,
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section);
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double maxR = surfvol[phase_pos_[Liquid]]/surfvol[phase_pos_[Vapour]];
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if (deriv) {
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if (R < maxR ) { // Saturated case
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if (Rval < maxR ) { // Saturated case
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return linearInterpolDerivative(saturated_gas_table_[0],
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saturated_gas_table_[item],
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press);
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@ -258,7 +258,7 @@ namespace Opm
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return val;
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}
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} else {
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if (R < maxR ) { // Saturated case
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if (Rval < maxR ) { // Saturated case
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return linearInterpolationExtrap(saturated_gas_table_[0],
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saturated_gas_table_[item],
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press);
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@ -243,10 +243,10 @@ namespace Opm
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void SinglePvtLiveOil::evalBDeriv(const double press, const double* surfvol,
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double& B, double& dBdp) const
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double& Bval, double& dBdpval) const
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{
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B = evalB(press, surfvol);
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dBdp = -B*B*miscible_oil(press, surfvol, 1, true);
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Bval = evalB(press, surfvol);
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dBdpval = -Bval*Bval*miscible_oil(press, surfvol, 1, true);
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}
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double SinglePvtLiveOil::evalR(double press, const double* surfvol) const
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@ -254,36 +254,36 @@ namespace Opm
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if (surfvol[phase_pos_[Vapour]] == 0.0) {
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return 0.0;
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}
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double R = linearInterpolationExtrap(saturated_oil_table_[0],
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double Rval = linearInterpolationExtrap(saturated_oil_table_[0],
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saturated_oil_table_[3], press);
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double maxR = surfvol[phase_pos_[Vapour]]/surfvol[phase_pos_[Liquid]];
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if (R < maxR ) { // Saturated case
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return R;
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if (Rval < maxR ) { // Saturated case
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return Rval;
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} else {
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return maxR; // Undersaturated case
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}
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}
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void SinglePvtLiveOil::evalRDeriv(const double press, const double* surfvol,
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double& R, double& dRdp) const
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double& Rval, double& dRdpval) const
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{
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if (surfvol[phase_pos_[Vapour]] == 0.0) {
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R = 0.0;
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dRdp = 0.0;
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Rval = 0.0;
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dRdpval = 0.0;
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return;
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}
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R = linearInterpolationExtrap(saturated_oil_table_[0],
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Rval = linearInterpolationExtrap(saturated_oil_table_[0],
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saturated_oil_table_[3], press);
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double maxR = surfvol[phase_pos_[Vapour]]/surfvol[phase_pos_[Liquid]];
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if (R < maxR ) {
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if (Rval < maxR ) {
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// Saturated case
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dRdp = linearInterpolDerivative(saturated_oil_table_[0],
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dRdpval = linearInterpolDerivative(saturated_oil_table_[0],
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saturated_oil_table_[3],
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press);
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} else {
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// Undersaturated case
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R = maxR;
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dRdp = 0.0;
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Rval = maxR;
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dRdpval = 0.0;
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}
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}
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@ -294,12 +294,12 @@ namespace Opm
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const bool deriv) const
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{
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int section;
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double R = linearInterpolationExtrap(saturated_oil_table_[0],
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saturated_oil_table_[3],
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press, section);
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double Rval = linearInterpolationExtrap(saturated_oil_table_[0],
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saturated_oil_table_[3],
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press, section);
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double maxR = (surfvol[phase_pos_[Liquid]] == 0.0) ? 0.0 : surfvol[phase_pos_[Vapour]]/surfvol[phase_pos_[Liquid]];
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if (deriv) {
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if (R < maxR ) { // Saturated case
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if (Rval < maxR ) { // Saturated case
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return linearInterpolDerivative(saturated_oil_table_[0],
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saturated_oil_table_[item],
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press);
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@ -321,7 +321,7 @@ namespace Opm
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return val;
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}
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} else {
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if (R < maxR ) { // Saturated case
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if (Rval < maxR ) { // Saturated case
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return linearInterpolationExtrap(saturated_oil_table_[0],
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saturated_oil_table_[item],
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press);
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@ -431,7 +431,7 @@ coarse_topology_build_final(int ncoarse_f, int nblk,
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int *subfacepos, int *subfaces)
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/* ---------------------------------------------------------------------- */
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{
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int coarse_f, b1, b2, n, subpos, subface_valid;
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int coarse_f, b1, b2, n, subpos, subface_valid = 1;
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size_t i;
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struct hash_set *set;
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@ -451,8 +451,6 @@ coarse_topology_build_final(int ncoarse_f, int nblk,
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coarse_f = 0;
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subpos = 0;
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subface_valid = 1;
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for (b1 = 0; (b1 < nblk) && subface_valid; b1++) {
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if (bns[b1] != NULL) {
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for (n = 0; n < bns[b1]->nneigh; n++) {
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struct coarse_sys *sys)
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/* ---------------------------------------------------------------------- */
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{
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int p, ret, dof;
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int p, ret = 0, dof;
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size_t b, nb;
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nb = ct->nblocks;
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@ -749,7 +749,6 @@ blkdof_fill(struct coarse_topology *ct,
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if (sys->blkdof == NULL) {
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free(sys->blkdof_pos);
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sys->blkdof_pos = NULL;
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ret = 0;
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} else {
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sys->blkdof_pos[0] = 0;
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LocalSolver linsolve)
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/* ---------------------------------------------------------------------- */
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{
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int max_nconn, nb, nconn_tot;
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int max_nconn = -1, nb, nconn_tot;
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int expected_nconn, alloc_ok;
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struct ifsh_ms_impl *new;
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{
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int wdof;
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size_t jc, jw;
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double res, w2c, w2w;
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double res = 0.0, w2c = 0.0, w2w = 0.0;
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switch (W->ctrl->ctrl[w]) {
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case BHP :
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@ -85,9 +85,9 @@ namespace Opm {
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return path_;
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}
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ParameterGroup::ParameterGroup(const std::string& path,
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ParameterGroup::ParameterGroup(const std::string& patharg,
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const ParameterGroup* parent)
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: path_(path), parent_(parent), output_is_enabled_(true)
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: path_(patharg), parent_(parent), output_is_enabled_(true)
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{
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}
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@ -54,6 +54,8 @@ namespace Opm {
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namespace parameter {
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namespace tinyxml {
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std::string getProperty(const std::string& property,
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const TiXmlElement* node_ptr);
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void read_xml(ParameterGroup& pg, const std::string filename);
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void fill_tree(ParameterGroup& pg,
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const TiXmlNode* root,
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}
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int TiXmlElement::QueryUnsignedAttribute( const char* name, unsigned* value ) const
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int TiXmlElement::QueryUnsignedAttribute( const char* name, unsigned* valuearg ) const
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{
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const TiXmlAttribute* node = attributeSet.Find( name );
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if ( !node )
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@ -675,7 +675,7 @@ int TiXmlElement::QueryUnsignedAttribute( const char* name, unsigned* value ) co
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int ival = 0;
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int result = node->QueryIntValue( &ival );
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*value = (unsigned)ival;
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*valuearg = (unsigned)ival;
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return result;
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}
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