void LorenzModel::evalModel( const InArgs& inArgs, const OutArgs& outArgs ) const { const Epetra_Vector &yin = *(inArgs.get_x()); const double t = inArgs.get_t(); // ignored #ifdef LORENZMODEL_DEBUG std::cout << "----------------------------------------------------------------------" << std::endl; std::cout << "LorenzModel::evalModel yin = " << std::endl; yin.Print(std::cout); #endif Epetra_Vector &yout = *outArgs.get_f(); yout[0] = -param0 * yin[0] + param0 * yin[1]; yout[1] = param1 * yin[0] - yin[1] - yin[0]*yin[2]; yout[2] = -param2*yin[2] + yin[0]*yin[1]; #ifdef LORENZMODEL_DEBUG std::cout << "LorenzModel::evalModel (explicit) f = " << std::endl; yout.Print(std::cout); #endif #ifdef LORENZMODEL_DEBUG std::cout << "----------------------------------------------------------------------" << std::endl; #endif }
void ExampleApplication::evalModel( const InArgs& inArgs, const OutArgs& outArgs ) const { const Epetra_Vector &x = *(inArgs.get_x()); const double t = inArgs.get_t(); const Epetra_Vector &lambda = *lambda_ptr_; #ifdef EXAMPLEAPPLICATION_DEBUG std::cout << "----------------------------------------------------------------------" << std::endl; std::cout << "ExampleApplication::evalModel x = " << std::endl; x.Print(std::cout); std::cout << "ExampleApplication::evalModel lambda = " << std::endl; lambda.Print(std::cout); #endif int localNumElements = x.MyLength(); if(implicit_) { const Epetra_Vector &x_dot = *inArgs.get_x_dot(); if(outArgs.get_f().get()) { Epetra_Vector &f = *outArgs.get_f(); for (int i=0 ; i<localNumElements ; ++i) { f[i] = x_dot[i] - lambda[i]*x[i] - evalR(t,lambda[i],coeff_s_); } #ifdef EXAMPLEAPPLICATION_DEBUG std::cout << "ExampleApplication::evalModel (implicit) x_dot = " << std::endl; x_dot.Print(std::cout); std::cout << "ExampleApplication::evalModel (implicit) f = " << std::endl; f.Print(std::cout); #endif } Teuchos::RCP<Epetra_Operator> W; if( (W = outArgs.get_W()).get() ) { const double alpha = inArgs.get_alpha(); const double beta = inArgs.get_beta(); Epetra_CrsMatrix &crsW = Teuchos::dyn_cast<Epetra_CrsMatrix>(*W); double values[1]; int indices[1]; const int IB = epetra_map_ptr_->IndexBase(); for( int i = 0; i < localNumElements; ++i ) { values[0] = alpha - beta*lambda[i]; indices[0] = i + IB; // global column crsW.ReplaceGlobalValues(i + IB // GlobalRow ,1 // NumEntries ,values // Values ,indices // Indices ); } #ifdef EXAMPLEAPPLICATION_DEBUG std::cout << "ExampleApplication::evalModel (implicit) alpha, beta = " << std::endl; std::cout << "alpha = " << alpha << std::endl; std::cout << "beta = " << beta << std::endl; std::cout << "ExampleApplication::evalModel (implicit) W = " << std::endl; crsW.Print(std::cout); #endif } } else { Epetra_Vector &f = *outArgs.get_f(); for (int i=0 ; i<localNumElements ; ++i) { f[i] = lambda[i]*x[i]+evalR(t,lambda[i],coeff_s_); } #ifdef EXAMPLEAPPLICATION_DEBUG std::cout << "ExampleApplication::evalModel (explicit) f = " << std::endl; f.Print(std::cout); #endif } #ifdef EXAMPLEAPPLICATION_DEBUG std::cout << "----------------------------------------------------------------------" << std::endl; #endif }
void Albany::ModelEvaluator::evalModel(const InArgs& inArgs, const OutArgs& outArgs) const { Teuchos::TimeMonitor Timer(*timer); //start timer // // Get the input arguments // Teuchos::RCP<const Epetra_Vector> x = inArgs.get_x(); Teuchos::RCP<const Epetra_Vector> x_dot; Teuchos::RCP<const Epetra_Vector> x_dotdot; double alpha = 0.0; double omega = 0.0; double beta = 1.0; double curr_time = 0.0; x_dot = inArgs.get_x_dot(); x_dotdot = inArgs.get_x_dotdot(); if (x_dot != Teuchos::null || x_dotdot != Teuchos::null) { alpha = inArgs.get_alpha(); omega = inArgs.get_omega(); beta = inArgs.get_beta(); curr_time = inArgs.get_t(); } for (int i=0; i<num_param_vecs; i++) { Teuchos::RCP<const Epetra_Vector> p = inArgs.get_p(i); if (p != Teuchos::null) { for (unsigned int j=0; j<sacado_param_vec[i].size(); j++) sacado_param_vec[i][j].baseValue = (*p)[j]; } } for (int i=0; i<num_dist_param_vecs; i++) { Teuchos::RCP<const Epetra_Vector> p = inArgs.get_p(i+num_param_vecs); if (p != Teuchos::null) { *(distParamLib->get(dist_param_names[i])->vector()) = *p; } } // // Get the output arguments // EpetraExt::ModelEvaluator::Evaluation<Epetra_Vector> f_out = outArgs.get_f(); Teuchos::RCP<Epetra_Operator> W_out = outArgs.get_W(); // Cast W to a CrsMatrix, throw an exception if this fails Teuchos::RCP<Epetra_CrsMatrix> W_out_crs; if (W_out != Teuchos::null) W_out_crs = Teuchos::rcp_dynamic_cast<Epetra_CrsMatrix>(W_out, true); int test_var = 0; if(test_var != 0){ std::cout << "The current solution length is: " << x->MyLength() << std::endl; x->Print(std::cout); } // Get preconditioner operator, if requested Teuchos::RCP<Epetra_Operator> WPrec_out; if (outArgs.supports(OUT_ARG_WPrec)) WPrec_out = outArgs.get_WPrec(); // // Compute the functions // bool f_already_computed = false; // W matrix if (W_out != Teuchos::null) { app->computeGlobalJacobian(alpha, beta, omega, curr_time, x_dot.get(), x_dotdot.get(),*x, sacado_param_vec, f_out.get(), *W_out_crs); f_already_computed=true; if(test_var != 0){ //std::cout << "The current rhs length is: " << f_out->MyLength() << std::endl; //f_out->Print(std::cout); std::cout << "The current Jacobian length is: " << W_out_crs->NumGlobalRows() << std::endl; W_out_crs->Print(std::cout); } } if (WPrec_out != Teuchos::null) { app->computeGlobalJacobian(alpha, beta, omega, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, f_out.get(), *Extra_W_crs); f_already_computed=true; if(test_var != 0){ //std::cout << "The current rhs length is: " << f_out->MyLength() << std::endl; //f_out->Print(std::cout); std::cout << "The current preconditioner length is: " << Extra_W_crs->NumGlobalRows() << std::endl; Extra_W_crs->Print(std::cout); } app->computeGlobalPreconditioner(Extra_W_crs, WPrec_out); } // scalar df/dp for (int i=0; i<num_param_vecs; i++) { Teuchos::RCP<Epetra_MultiVector> dfdp_out = outArgs.get_DfDp(i).getMultiVector(); if (dfdp_out != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DfDp(i).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[i],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int j=0; j<p_indexes.size(); j++) p_vec->addParam(sacado_param_vec[i][p_indexes[j]].family, sacado_param_vec[i][p_indexes[j]].baseValue); } app->computeGlobalTangent(0.0, 0.0, 0.0, curr_time, false, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, p_vec.get(), NULL, NULL, NULL, NULL, f_out.get(), NULL, dfdp_out.get()); f_already_computed=true; if(test_var != 0){ std::cout << "The current rhs length is: " << f_out->MyLength() << std::endl; f_out->Print(std::cout); } } } // distributed df/dp for (int i=0; i<num_dist_param_vecs; i++) { Teuchos::RCP<Epetra_Operator> dfdp_out = outArgs.get_DfDp(i+num_param_vecs).getLinearOp(); if (dfdp_out != Teuchos::null) { Teuchos::RCP<DistributedParameterDerivativeOp> dfdp_op = Teuchos::rcp_dynamic_cast<DistributedParameterDerivativeOp>(dfdp_out); dfdp_op->set(curr_time, x_dot, x_dotdot, x, Teuchos::rcp(&sacado_param_vec,false)); } } // f if (app->is_adjoint) { Derivative f_deriv(f_out, DERIV_TRANS_MV_BY_ROW); int response_index = 0; // need to add capability for sending this in app->evaluateResponseDerivative(response_index, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, NULL, NULL, f_deriv, Derivative(), Derivative(), Derivative()); } else { if (f_out != Teuchos::null && !f_already_computed) { app->computeGlobalResidual(curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, *f_out); if(test_var != 0){ std::cout << "The current rhs length is: " << f_out->MyLength() << std::endl; f_out->Print(std::cout); } } } // Response functions for (int i=0; i<outArgs.Ng(); i++) { Teuchos::RCP<Epetra_Vector> g_out = outArgs.get_g(i); bool g_computed = false; Derivative dgdx_out = outArgs.get_DgDx(i); Derivative dgdxdot_out = outArgs.get_DgDx_dot(i); Derivative dgdxdotdot_out = outArgs.get_DgDx_dotdot(i); // dg/dx, dg/dxdot if (!dgdx_out.isEmpty() || !dgdxdot_out.isEmpty() || !dgdxdotdot_out.isEmpty() ) { app->evaluateResponseDerivative(i, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, NULL, g_out.get(), dgdx_out, dgdxdot_out, dgdxdotdot_out, Derivative()); g_computed = true; } // dg/dp for (int j=0; j<num_param_vecs; j++) { Teuchos::RCP<Epetra_MultiVector> dgdp_out = outArgs.get_DgDp(i,j).getMultiVector(); if (dgdp_out != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DgDp(i,j).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[j],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int k=0; k<p_indexes.size(); k++) p_vec->addParam(sacado_param_vec[j][p_indexes[k]].family, sacado_param_vec[j][p_indexes[k]].baseValue); } app->evaluateResponseTangent(i, alpha, beta, omega, curr_time, false, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, p_vec.get(), NULL, NULL, NULL, NULL, g_out.get(), NULL, dgdp_out.get()); g_computed = true; } } // Need to handle dg/dp for distributed p if (g_out != Teuchos::null && !g_computed) app->evaluateResponse(i, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, *g_out); } // // Stochastic Galerkin // #ifdef ALBANY_SG_MP InArgs::sg_const_vector_t x_sg = inArgs.get_x_sg(); if (x_sg != Teuchos::null) { app->init_sg(inArgs.get_sg_basis(), inArgs.get_sg_quadrature(), inArgs.get_sg_expansion(), x_sg->productComm()); InArgs::sg_const_vector_t x_dot_sg = inArgs.get_x_dot_sg(); InArgs::sg_const_vector_t x_dotdot_sg = inArgs.get_x_dotdot_sg(); if (x_dot_sg != Teuchos::null || x_dotdot_sg != Teuchos::null) { alpha = inArgs.get_alpha(); omega = inArgs.get_omega(); beta = inArgs.get_beta(); curr_time = inArgs.get_t(); } InArgs::sg_const_vector_t epetra_p_sg = inArgs.get_p_sg(0); Teuchos::Array<int> p_sg_index; for (int i=0; i<num_param_vecs; i++) { InArgs::sg_const_vector_t p_sg = inArgs.get_p_sg(i); if (p_sg != Teuchos::null) { p_sg_index.push_back(i); for (int j=0; j<p_sg_vals[i].size(); j++) { int num_sg_blocks = p_sg->size(); p_sg_vals[i][j].reset(app->getStochasticExpansion(), num_sg_blocks); p_sg_vals[i][j].copyForWrite(); for (int l=0; l<num_sg_blocks; l++) { p_sg_vals[i][j].fastAccessCoeff(l) = (*p_sg)[l][j]; } } } } OutArgs::sg_vector_t f_sg = outArgs.get_f_sg(); OutArgs::sg_operator_t W_sg = outArgs.get_W_sg(); bool f_sg_computed = false; // W_sg if (W_sg != Teuchos::null) { Stokhos::VectorOrthogPoly<Epetra_CrsMatrix> W_sg_crs(W_sg->basis(), W_sg->map()); for (int i=0; i<W_sg->size(); i++) W_sg_crs.setCoeffPtr( i, Teuchos::rcp_dynamic_cast<Epetra_CrsMatrix>(W_sg->getCoeffPtr(i))); app->computeGlobalSGJacobian(alpha, beta, omega, curr_time, x_dot_sg.get(), x_dotdot_sg.get(), *x_sg, sacado_param_vec, p_sg_index, p_sg_vals, f_sg.get(), W_sg_crs); f_sg_computed = true; } // df/dp_sg for (int i=0; i<num_param_vecs; i++) { Teuchos::RCP< Stokhos::EpetraMultiVectorOrthogPoly > dfdp_sg = outArgs.get_DfDp_sg(i).getMultiVector(); if (dfdp_sg != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DfDp_sg(i).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[i],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int j=0; j<p_indexes.size(); j++) p_vec->addParam(sacado_param_vec[i][p_indexes[j]].family, sacado_param_vec[i][p_indexes[j]].baseValue); } app->computeGlobalSGTangent(0.0, 0.0, 0.0, curr_time, false, x_dot_sg.get(), x_dotdot_sg.get(),*x_sg, sacado_param_vec, p_sg_index, p_sg_vals, p_vec.get(), NULL, NULL, NULL, NULL, f_sg.get(), NULL, dfdp_sg.get()); f_sg_computed = true; } } if (f_sg != Teuchos::null && !f_sg_computed) app->computeGlobalSGResidual(curr_time, x_dot_sg.get(), x_dotdot_sg.get(),*x_sg, sacado_param_vec, p_sg_index, p_sg_vals, *f_sg); // Response functions for (int i=0; i<outArgs.Ng(); i++) { OutArgs::sg_vector_t g_sg = outArgs.get_g_sg(i); bool g_sg_computed = false; SGDerivative dgdx_sg = outArgs.get_DgDx_sg(i); SGDerivative dgdxdot_sg = outArgs.get_DgDx_dot_sg(i); SGDerivative dgdxdotdot_sg = outArgs.get_DgDx_dotdot_sg(i); // dg/dx, dg/dxdot if (!dgdx_sg.isEmpty() || !dgdxdot_sg.isEmpty() || !dgdxdotdot_sg.isEmpty()) { app->evaluateSGResponseDerivative( i, curr_time, x_dot_sg.get(), x_dotdot_sg.get(), *x_sg, sacado_param_vec, p_sg_index, p_sg_vals, NULL, g_sg.get(), dgdx_sg, dgdxdot_sg, dgdxdotdot_sg, SGDerivative()); g_sg_computed = true; } // dg/dp for (int j=0; j<num_param_vecs; j++) { Teuchos::RCP< Stokhos::EpetraMultiVectorOrthogPoly > dgdp_sg = outArgs.get_DgDp_sg(i,j).getMultiVector(); if (dgdp_sg != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DgDp_sg(i,j).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[j],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int k=0; k<p_indexes.size(); k++) p_vec->addParam(sacado_param_vec[j][p_indexes[k]].family, sacado_param_vec[j][p_indexes[k]].baseValue); } app->evaluateSGResponseTangent(i, alpha, beta, omega, curr_time, false, x_dot_sg.get(), x_dotdot_sg.get(), *x_sg, sacado_param_vec, p_sg_index, p_sg_vals, p_vec.get(), NULL, NULL, NULL, NULL, g_sg.get(), NULL, dgdp_sg.get()); g_sg_computed = true; } } if (g_sg != Teuchos::null && !g_sg_computed) app->evaluateSGResponse(i, curr_time, x_dot_sg.get(), x_dotdot_sg.get(), *x_sg, sacado_param_vec, p_sg_index, p_sg_vals, *g_sg); } } // // Multi-point evaluation // mp_const_vector_t x_mp = inArgs.get_x_mp(); if (x_mp != Teuchos::null) { mp_const_vector_t x_dot_mp = inArgs.get_x_dot_mp(); mp_const_vector_t x_dotdot_mp = inArgs.get_x_dotdot_mp(); if (x_dot_mp != Teuchos::null || x_dotdot_mp != Teuchos::null) { alpha = inArgs.get_alpha(); omega = inArgs.get_omega(); beta = inArgs.get_beta(); curr_time = inArgs.get_t(); } Teuchos::Array<int> p_mp_index; for (int i=0; i<num_param_vecs; i++) { mp_const_vector_t p_mp = inArgs.get_p_mp(i); if (p_mp != Teuchos::null) { p_mp_index.push_back(i); for (int j=0; j<p_mp_vals[i].size(); j++) { int num_mp_blocks = p_mp->size(); p_mp_vals[i][j].reset(num_mp_blocks); p_mp_vals[i][j].copyForWrite(); for (int l=0; l<num_mp_blocks; l++) { p_mp_vals[i][j].fastAccessCoeff(l) = (*p_mp)[l][j]; } } } } mp_vector_t f_mp = outArgs.get_f_mp(); mp_operator_t W_mp = outArgs.get_W_mp(); bool f_mp_computed = false; // W_mp if (W_mp != Teuchos::null) { Stokhos::ProductContainer<Epetra_CrsMatrix> W_mp_crs(W_mp->map()); for (int i=0; i<W_mp->size(); i++) W_mp_crs.setCoeffPtr( i, Teuchos::rcp_dynamic_cast<Epetra_CrsMatrix>(W_mp->getCoeffPtr(i))); app->computeGlobalMPJacobian(alpha, beta, omega, curr_time, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, f_mp.get(), W_mp_crs); f_mp_computed = true; } // df/dp_mp for (int i=0; i<num_param_vecs; i++) { Teuchos::RCP< Stokhos::ProductEpetraMultiVector > dfdp_mp = outArgs.get_DfDp_mp(i).getMultiVector(); if (dfdp_mp != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DfDp_mp(i).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[i],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int j=0; j<p_indexes.size(); j++) p_vec->addParam(sacado_param_vec[i][p_indexes[j]].family, sacado_param_vec[i][p_indexes[j]].baseValue); } app->computeGlobalMPTangent(0.0, 0.0, 0.0, curr_time, false, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, p_vec.get(), NULL, NULL, NULL, NULL, f_mp.get(), NULL, dfdp_mp.get()); f_mp_computed = true; } } if (f_mp != Teuchos::null && !f_mp_computed) app->computeGlobalMPResidual(curr_time, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, *f_mp); // Response functions for (int i=0; i<outArgs.Ng(); i++) { mp_vector_t g_mp = outArgs.get_g_mp(i); bool g_mp_computed = false; MPDerivative dgdx_mp = outArgs.get_DgDx_mp(i); MPDerivative dgdxdot_mp = outArgs.get_DgDx_dot_mp(i); MPDerivative dgdxdotdot_mp = outArgs.get_DgDx_dotdot_mp(i); // dg/dx, dg/dxdot if (!dgdx_mp.isEmpty() || !dgdxdot_mp.isEmpty() || !dgdxdotdot_mp.isEmpty() ) { app->evaluateMPResponseDerivative( i, curr_time, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, NULL, g_mp.get(), dgdx_mp, dgdxdot_mp, dgdxdotdot_mp, MPDerivative()); g_mp_computed = true; } // dg/dp for (int j=0; j<num_param_vecs; j++) { Teuchos::RCP< Stokhos::ProductEpetraMultiVector > dgdp_mp = outArgs.get_DgDp_mp(i,j).getMultiVector(); if (dgdp_mp != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DgDp_mp(i,j).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[j],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int k=0; k<p_indexes.size(); k++) p_vec->addParam(sacado_param_vec[j][p_indexes[k]].family, sacado_param_vec[j][p_indexes[k]].baseValue); } app->evaluateMPResponseTangent(i, alpha, beta, omega, curr_time, false, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, p_vec.get(), NULL, NULL, NULL, NULL, g_mp.get(), NULL, dgdp_mp.get()); g_mp_computed = true; } } if (g_mp != Teuchos::null && !g_mp_computed) app->evaluateMPResponse(i, curr_time, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, *g_mp); } } #endif //ALBANY_SG_MP }
void Albany::ModelEvaluator::evalModel(const InArgs& inArgs, const OutArgs& outArgs) const { Teuchos::TimeMonitor Timer(*timer); //start timer // // Get the input arguments // Teuchos::RCP<const Epetra_Vector> x = inArgs.get_x(); Teuchos::RCP<const Epetra_Vector> x_dot; Teuchos::RCP<const Epetra_Vector> x_dotdot; //create comm and node objects for Epetra -> Tpetra conversions Teuchos::RCP<const Teuchos::Comm<int> > commT = app->getComm(); Teuchos::RCP<Epetra_Comm> comm = Albany::createEpetraCommFromTeuchosComm(commT); //Create Tpetra copy of x, call it xT Teuchos::RCP<const Tpetra_Vector> xT; if (x != Teuchos::null) xT = Petra::EpetraVector_To_TpetraVectorConst(*x, commT); double alpha = 0.0; double omega = 0.0; double beta = 1.0; double curr_time = 0.0; if(num_time_deriv > 0) x_dot = inArgs.get_x_dot(); if(num_time_deriv > 1) x_dotdot = inArgs.get_x_dotdot(); //Declare and create Tpetra copy of x_dot, call it x_dotT Teuchos::RCP<const Tpetra_Vector> x_dotT; if (Teuchos::nonnull(x_dot)) x_dotT = Petra::EpetraVector_To_TpetraVectorConst(*x_dot, commT); //Declare and create Tpetra copy of x_dotdot, call it x_dotdotT Teuchos::RCP<const Tpetra_Vector> x_dotdotT; if (Teuchos::nonnull(x_dotdot)) x_dotdotT = Petra::EpetraVector_To_TpetraVectorConst(*x_dotdot, commT); if (Teuchos::nonnull(x_dot)){ alpha = inArgs.get_alpha(); beta = inArgs.get_beta(); curr_time = inArgs.get_t(); } if (Teuchos::nonnull(x_dotdot)) { omega = inArgs.get_omega(); } for (int i=0; i<num_param_vecs; i++) { Teuchos::RCP<const Epetra_Vector> p = inArgs.get_p(i); if (p != Teuchos::null) { for (unsigned int j=0; j<sacado_param_vec[i].size(); j++) { sacado_param_vec[i][j].baseValue = (*p)[j]; } } } for (int i=0; i<num_dist_param_vecs; i++) { Teuchos::RCP<const Epetra_Vector> p = inArgs.get_p(i+num_param_vecs); //create Tpetra copy of p Teuchos::RCP<const Tpetra_Vector> pT; if (p != Teuchos::null) { pT = Petra::EpetraVector_To_TpetraVectorConst(*p, commT); //*(distParamLib->get(dist_param_names[i])->vector()) = *p; *(distParamLib->get(dist_param_names[i])->vector()) = *pT; } } // // Get the output arguments // EpetraExt::ModelEvaluator::Evaluation<Epetra_Vector> f_out = outArgs.get_f(); Teuchos::RCP<Epetra_Operator> W_out = outArgs.get_W(); // Cast W to a CrsMatrix, throw an exception if this fails Teuchos::RCP<Epetra_CrsMatrix> W_out_crs; #ifdef WRITE_MASS_MATRIX_TO_MM_FILE //IK, 7/15/14: adding object to hold mass matrix to be written to matrix market file Teuchos::RCP<Epetra_CrsMatrix> Mass; //IK, 7/15/14: needed for writing mass matrix out to matrix market file EpetraExt::ModelEvaluator::Evaluation<Epetra_Vector> ftmp = outArgs.get_f(); #endif if (W_out != Teuchos::null) { W_out_crs = Teuchos::rcp_dynamic_cast<Epetra_CrsMatrix>(W_out, true); #ifdef WRITE_MASS_MATRIX_TO_MM_FILE //IK, 7/15/14: adding object to hold mass matrix to be written to matrix market file Mass = Teuchos::rcp_dynamic_cast<Epetra_CrsMatrix>(W_out, true); #endif } int test_var = 0; if(test_var != 0){ std::cout << "The current solution length is: " << x->MyLength() << std::endl; x->Print(std::cout); } // Get preconditioner operator, if requested Teuchos::RCP<Epetra_Operator> WPrec_out; if (outArgs.supports(OUT_ARG_WPrec)) WPrec_out = outArgs.get_WPrec(); // // Compute the functions // bool f_already_computed = false; // W matrix if (W_out != Teuchos::null) { app->computeGlobalJacobian(alpha, beta, omega, curr_time, x_dot.get(), x_dotdot.get(),*x, sacado_param_vec, f_out.get(), *W_out_crs); #ifdef WRITE_MASS_MATRIX_TO_MM_FILE //IK, 7/15/14: write mass matrix to matrix market file //Warning: to read this in to MATLAB correctly, code must be run in serial. //Otherwise Mass will have a distributed Map which would also need to be read in to MATLAB for proper //reading in of Mass. app->computeGlobalJacobian(1.0, 0.0, 0.0, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, ftmp.get(), *Mass); EpetraExt::RowMatrixToMatrixMarketFile("mass.mm", *Mass); EpetraExt::BlockMapToMatrixMarketFile("rowmap.mm", Mass->RowMap()); EpetraExt::BlockMapToMatrixMarketFile("colmap.mm", Mass->ColMap()); Teuchos::RCP<Teuchos::FancyOStream> out = Teuchos::VerboseObjectBase::getDefaultOStream(); #endif f_already_computed=true; if(test_var != 0){ //std::cout << "The current rhs length is: " << f_out->MyLength() << std::endl; //f_out->Print(std::cout); std::cout << "The current Jacobian length is: " << W_out_crs->NumGlobalRows() << std::endl; W_out_crs->Print(std::cout); } } if (WPrec_out != Teuchos::null) { app->computeGlobalJacobian(alpha, beta, omega, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, f_out.get(), *Extra_W_crs); f_already_computed=true; if(test_var != 0){ //std::cout << "The current rhs length is: " << f_out->MyLength() << std::endl; //f_out->Print(std::cout); std::cout << "The current preconditioner length is: " << Extra_W_crs->NumGlobalRows() << std::endl; Extra_W_crs->Print(std::cout); } app->computeGlobalPreconditioner(Extra_W_crs, WPrec_out); } // scalar df/dp for (int i=0; i<num_param_vecs; i++) { Teuchos::RCP<Epetra_MultiVector> dfdp_out = outArgs.get_DfDp(i).getMultiVector(); if (dfdp_out != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DfDp(i).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[i],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int j=0; j<p_indexes.size(); j++) p_vec->addParam(sacado_param_vec[i][p_indexes[j]].family, sacado_param_vec[i][p_indexes[j]].baseValue); } app->computeGlobalTangent(0.0, 0.0, 0.0, curr_time, false, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, p_vec.get(), NULL, NULL, NULL, NULL, f_out.get(), NULL, dfdp_out.get()); f_already_computed=true; if(test_var != 0){ std::cout << "The current rhs length is: " << f_out->MyLength() << std::endl; f_out->Print(std::cout); } } } // distributed df/dp for (int i=0; i<num_dist_param_vecs; i++) { Teuchos::RCP<Epetra_Operator> dfdp_out = outArgs.get_DfDp(i+num_param_vecs).getLinearOp(); if (dfdp_out != Teuchos::null) { Teuchos::RCP<DistributedParameterDerivativeOp> dfdp_op = Teuchos::rcp_dynamic_cast<DistributedParameterDerivativeOp>(dfdp_out); dfdp_op->set(curr_time, x_dotT, x_dotdotT, xT, Teuchos::rcp(&sacado_param_vec,false)); } } // f if (app->is_adjoint) { Derivative f_deriv(f_out, DERIV_TRANS_MV_BY_ROW); int response_index = 0; // need to add capability for sending this in app->evaluateResponseDerivative(response_index, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, NULL, NULL, f_deriv, Derivative(), Derivative(), Derivative()); } else { if (f_out != Teuchos::null && !f_already_computed) { app->computeGlobalResidual(curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, *f_out); if(test_var != 0){ std::cout << "The current rhs length is: " << f_out->MyLength() << std::endl; f_out->Print(std::cout); } } } // Response functions for (int i=0; i<outArgs.Ng(); i++) { //Set curr_time to final time at which response occurs. if(num_time_deriv > 0) curr_time = inArgs.get_t(); Teuchos::RCP<Epetra_Vector> g_out = outArgs.get_g(i); //Declare Tpetra_Vector copy of g_out Teuchos::RCP<Tpetra_Vector> g_outT; bool g_computed = false; Derivative dgdx_out = outArgs.get_DgDx(i); Derivative dgdxdot_out = outArgs.get_DgDx_dot(i); Derivative dgdxdotdot_out = outArgs.get_DgDx_dotdot(i); // dg/dx, dg/dxdot if (!dgdx_out.isEmpty() || !dgdxdot_out.isEmpty() || !dgdxdotdot_out.isEmpty() ) { app->evaluateResponseDerivative(i, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, NULL, g_out.get(), dgdx_out, dgdxdot_out, dgdxdotdot_out, Derivative()); g_computed = true; } // dg/dp for (int j=0; j<num_param_vecs; j++) { Teuchos::RCP<Epetra_MultiVector> dgdp_out = outArgs.get_DgDp(i,j).getMultiVector(); //Declare Tpetra copy of dgdp_out Teuchos::RCP<Tpetra_MultiVector> dgdp_outT; if (dgdp_out != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DgDp(i,j).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[j],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int k=0; k<p_indexes.size(); k++) p_vec->addParam(sacado_param_vec[j][p_indexes[k]].family, sacado_param_vec[j][p_indexes[k]].baseValue); } //create Tpetra copy of g_out, call it g_outT if (g_out != Teuchos::null) g_outT = Petra::EpetraVector_To_TpetraVectorNonConst(*g_out, commT); //create Tpetra copy of dgdp_out, call it dgdp_outT if (dgdp_out != Teuchos::null) dgdp_outT = Petra::EpetraMultiVector_To_TpetraMultiVector(*dgdp_out, commT); app->evaluateResponseTangentT(i, alpha, beta, omega, curr_time, false, x_dotT.get(), x_dotdotT.get(), *xT, sacado_param_vec, p_vec.get(), NULL, NULL, NULL, NULL, g_outT.get(), NULL, dgdp_outT.get()); //convert g_outT to Epetra_Vector g_out if (g_out != Teuchos::null) Petra::TpetraVector_To_EpetraVector(g_outT, *g_out, comm); //convert dgdp_outT to Epetra_MultiVector dgdp_out if (dgdp_out != Teuchos::null) Petra::TpetraMultiVector_To_EpetraMultiVector(dgdp_outT, *dgdp_out, comm); g_computed = true; } } // Need to handle dg/dp for distributed p for(int j=0; j<num_dist_param_vecs; j++) { Derivative dgdp_out = outArgs.get_DgDp(i,j+num_param_vecs); if (!dgdp_out.isEmpty()) { dgdp_out.getMultiVector()->PutScalar(0.); app->evaluateResponseDistParamDeriv(i, curr_time, x_dot.get(), x_dotdot.get(), *x, sacado_param_vec, dist_param_names[j], dgdp_out.getMultiVector().get()); } } if (g_out != Teuchos::null && !g_computed) { //create Tpetra copy of g_out, call it g_outT g_outT = Petra::EpetraVector_To_TpetraVectorNonConst(*g_out, commT); app->evaluateResponseT(i, curr_time, x_dotT.get(), x_dotdotT.get(), *xT, sacado_param_vec, *g_outT); //convert g_outT to Epetra_Vector g_out Petra::TpetraVector_To_EpetraVector(g_outT, *g_out, comm); } } // // Stochastic Galerkin // #ifdef ALBANY_SG InArgs::sg_const_vector_t x_sg = inArgs.get_x_sg(); if (x_sg != Teuchos::null) { app->init_sg(inArgs.get_sg_basis(), inArgs.get_sg_quadrature(), inArgs.get_sg_expansion(), x_sg->productComm()); InArgs::sg_const_vector_t x_dot_sg = Teuchos::null; InArgs::sg_const_vector_t x_dot_sg = Teuchos::null; if(num_time_deriv > 0) x_dotdot_sg = inArgs.get_x_dotdot_sg(); if(num_time_deriv > 1) x_dotdot_sg = inArgs.get_x_dotdot_sg(); if (x_dot_sg != Teuchos::null || x_dotdot_sg != Teuchos::null) { alpha = inArgs.get_alpha(); beta = inArgs.get_beta(); curr_time = inArgs.get_t(); } if (x_dotdot_sg != Teuchos::null) { omega = inArgs.get_omega(); } InArgs::sg_const_vector_t epetra_p_sg = inArgs.get_p_sg(0); Teuchos::Array<int> p_sg_index; for (int i=0; i<num_param_vecs; i++) { InArgs::sg_const_vector_t p_sg = inArgs.get_p_sg(i); if (p_sg != Teuchos::null) { p_sg_index.push_back(i); for (int j=0; j<p_sg_vals[i].size(); j++) { int num_sg_blocks = p_sg->size(); p_sg_vals[i][j].reset(app->getStochasticExpansion(), num_sg_blocks); p_sg_vals[i][j].copyForWrite(); for (int l=0; l<num_sg_blocks; l++) { p_sg_vals[i][j].fastAccessCoeff(l) = (*p_sg)[l][j]; } } } } OutArgs::sg_vector_t f_sg = outArgs.get_f_sg(); OutArgs::sg_operator_t W_sg = outArgs.get_W_sg(); bool f_sg_computed = false; // W_sg if (W_sg != Teuchos::null) { Stokhos::VectorOrthogPoly<Epetra_CrsMatrix> W_sg_crs(W_sg->basis(), W_sg->map()); for (int i=0; i<W_sg->size(); i++) W_sg_crs.setCoeffPtr( i, Teuchos::rcp_dynamic_cast<Epetra_CrsMatrix>(W_sg->getCoeffPtr(i))); app->computeGlobalSGJacobian(alpha, beta, omega, curr_time, x_dot_sg.get(), x_dotdot_sg.get(), *x_sg, sacado_param_vec, p_sg_index, p_sg_vals, f_sg.get(), W_sg_crs); f_sg_computed = true; } // df/dp_sg for (int i=0; i<num_param_vecs; i++) { Teuchos::RCP< Stokhos::EpetraMultiVectorOrthogPoly > dfdp_sg = outArgs.get_DfDp_sg(i).getMultiVector(); if (dfdp_sg != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DfDp_sg(i).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[i],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int j=0; j<p_indexes.size(); j++) p_vec->addParam(sacado_param_vec[i][p_indexes[j]].family, sacado_param_vec[i][p_indexes[j]].baseValue); } app->computeGlobalSGTangent(0.0, 0.0, 0.0, curr_time, false, x_dot_sg.get(), x_dotdot_sg.get(),*x_sg, sacado_param_vec, p_sg_index, p_sg_vals, p_vec.get(), NULL, NULL, NULL, NULL, f_sg.get(), NULL, dfdp_sg.get()); f_sg_computed = true; } } if (f_sg != Teuchos::null && !f_sg_computed) app->computeGlobalSGResidual(curr_time, x_dot_sg.get(), x_dotdot_sg.get(),*x_sg, sacado_param_vec, p_sg_index, p_sg_vals, *f_sg); // Response functions for (int i=0; i<outArgs.Ng(); i++) { OutArgs::sg_vector_t g_sg = outArgs.get_g_sg(i); bool g_sg_computed = false; SGDerivative dgdx_sg = outArgs.get_DgDx_sg(i); SGDerivative dgdxdot_sg = outArgs.get_DgDx_dot_sg(i); SGDerivative dgdxdotdot_sg = outArgs.get_DgDx_dotdot_sg(i); // dg/dx, dg/dxdot if (!dgdx_sg.isEmpty() || !dgdxdot_sg.isEmpty() || !dgdxdotdot_sg.isEmpty()) { app->evaluateSGResponseDerivative( i, curr_time, x_dot_sg.get(), x_dotdot_sg.get(), *x_sg, sacado_param_vec, p_sg_index, p_sg_vals, NULL, g_sg.get(), dgdx_sg, dgdxdot_sg, dgdxdotdot_sg, SGDerivative()); g_sg_computed = true; } // dg/dp for (int j=0; j<num_param_vecs; j++) { Teuchos::RCP< Stokhos::EpetraMultiVectorOrthogPoly > dgdp_sg = outArgs.get_DgDp_sg(i,j).getMultiVector(); if (dgdp_sg != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DgDp_sg(i,j).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[j],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int k=0; k<p_indexes.size(); k++) p_vec->addParam(sacado_param_vec[j][p_indexes[k]].family, sacado_param_vec[j][p_indexes[k]].baseValue); } app->evaluateSGResponseTangent(i, alpha, beta, omega, curr_time, false, x_dot_sg.get(), x_dotdot_sg.get(), *x_sg, sacado_param_vec, p_sg_index, p_sg_vals, p_vec.get(), NULL, NULL, NULL, NULL, g_sg.get(), NULL, dgdp_sg.get()); g_sg_computed = true; } } if (g_sg != Teuchos::null && !g_sg_computed) app->evaluateSGResponse(i, curr_time, x_dot_sg.get(), x_dotdot_sg.get(), *x_sg, sacado_param_vec, p_sg_index, p_sg_vals, *g_sg); } } #endif #ifdef ALBANY_ENSEMBLE // // Multi-point evaluation // mp_const_vector_t x_mp = inArgs.get_x_mp(); if (x_mp != Teuchos::null) { mp_const_vector_t x_dot_mp = Teuchos::null; mp_const_vector_t x_dotdot_mp = Teuchos::null; if(num_time_deriv > 0) x_dot_mp = inArgs.get_x_dot_mp(); if(num_time_deriv > 1) x_dotdot_mp = inArgs.get_x_dotdot_mp(); if (x_dot_mp != Teuchos::null || x_dotdot_mp != Teuchos::null) { alpha = inArgs.get_alpha(); //omega = inArgs.get_omega(); beta = inArgs.get_beta(); curr_time = inArgs.get_t(); } if (x_dotdot_mp != Teuchos::null) { omega = inArgs.get_omega(); } Teuchos::Array<int> p_mp_index; for (int i=0; i<num_param_vecs; i++) { mp_const_vector_t p_mp = inArgs.get_p_mp(i); if (p_mp != Teuchos::null) { p_mp_index.push_back(i); for (int j=0; j<p_mp_vals[i].size(); j++) { int num_mp_blocks = p_mp->size(); p_mp_vals[i][j].reset(num_mp_blocks); p_mp_vals[i][j].copyForWrite(); for (int l=0; l<num_mp_blocks; l++) { p_mp_vals[i][j].fastAccessCoeff(l) = (*p_mp)[l][j]; } } } } mp_vector_t f_mp = outArgs.get_f_mp(); mp_operator_t W_mp = outArgs.get_W_mp(); bool f_mp_computed = false; // W_mp if (W_mp != Teuchos::null) { Stokhos::ProductContainer<Epetra_CrsMatrix> W_mp_crs(W_mp->map()); for (int i=0; i<W_mp->size(); i++) W_mp_crs.setCoeffPtr( i, Teuchos::rcp_dynamic_cast<Epetra_CrsMatrix>(W_mp->getCoeffPtr(i))); app->computeGlobalMPJacobian(alpha, beta, omega, curr_time, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, f_mp.get(), W_mp_crs); f_mp_computed = true; } // df/dp_mp for (int i=0; i<num_param_vecs; i++) { Teuchos::RCP< Stokhos::ProductEpetraMultiVector > dfdp_mp = outArgs.get_DfDp_mp(i).getMultiVector(); if (dfdp_mp != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DfDp_mp(i).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[i],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int j=0; j<p_indexes.size(); j++) p_vec->addParam(sacado_param_vec[i][p_indexes[j]].family, sacado_param_vec[i][p_indexes[j]].baseValue); } app->computeGlobalMPTangent(0.0, 0.0, 0.0, curr_time, false, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, p_vec.get(), NULL, NULL, NULL, NULL, f_mp.get(), NULL, dfdp_mp.get()); f_mp_computed = true; } } if (f_mp != Teuchos::null && !f_mp_computed) app->computeGlobalMPResidual(curr_time, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, *f_mp); // Response functions for (int i=0; i<outArgs.Ng(); i++) { mp_vector_t g_mp = outArgs.get_g_mp(i); bool g_mp_computed = false; MPDerivative dgdx_mp = outArgs.get_DgDx_mp(i); MPDerivative dgdxdot_mp = outArgs.get_DgDx_dot_mp(i); MPDerivative dgdxdotdot_mp = outArgs.get_DgDx_dotdot_mp(i); // dg/dx, dg/dxdot if (!dgdx_mp.isEmpty() || !dgdxdot_mp.isEmpty() || !dgdxdotdot_mp.isEmpty() ) { app->evaluateMPResponseDerivative( i, curr_time, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, NULL, g_mp.get(), dgdx_mp, dgdxdot_mp, dgdxdotdot_mp, MPDerivative()); g_mp_computed = true; } // dg/dp for (int j=0; j<num_param_vecs; j++) { Teuchos::RCP< Stokhos::ProductEpetraMultiVector > dgdp_mp = outArgs.get_DgDp_mp(i,j).getMultiVector(); if (dgdp_mp != Teuchos::null) { Teuchos::Array<int> p_indexes = outArgs.get_DgDp_mp(i,j).getDerivativeMultiVector().getParamIndexes(); Teuchos::RCP<ParamVec> p_vec; if (p_indexes.size() == 0) p_vec = Teuchos::rcp(&sacado_param_vec[j],false); else { p_vec = Teuchos::rcp(new ParamVec); for (int k=0; k<p_indexes.size(); k++) p_vec->addParam(sacado_param_vec[j][p_indexes[k]].family, sacado_param_vec[j][p_indexes[k]].baseValue); } app->evaluateMPResponseTangent(i, alpha, beta, omega, curr_time, false, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, p_vec.get(), NULL, NULL, NULL, NULL, g_mp.get(), NULL, dgdp_mp.get()); g_mp_computed = true; } } if (g_mp != Teuchos::null && !g_mp_computed) app->evaluateMPResponse(i, curr_time, x_dot_mp.get(), x_dotdot_mp.get(), *x_mp, sacado_param_vec, p_mp_index, p_mp_vals, *g_mp); } } #endif }
void Stokhos::SGQuadModelEvaluator:: evalModel(const InArgs& inArgs, const OutArgs& outArgs) const { // Create underlying inargs InArgs me_inargs = me->createInArgs(); if (me_inargs.supports(IN_ARG_x)) me_inargs.set_x(inArgs.get_x()); if (me_inargs.supports(IN_ARG_x_dot)) me_inargs.set_x_dot(inArgs.get_x_dot()); if (me_inargs.supports(IN_ARG_alpha)) me_inargs.set_alpha(inArgs.get_alpha()); if (me_inargs.supports(IN_ARG_beta)) me_inargs.set_beta(inArgs.get_beta()); if (me_inargs.supports(IN_ARG_t)) me_inargs.set_t(inArgs.get_t()); for (int i=0; i<num_p; i++) me_inargs.set_p(i, inArgs.get_p(i)); // Create underlying outargs OutArgs me_outargs = me->createOutArgs(); if (me_outargs.supports(OUT_ARG_f)) me_outargs.set_f(outArgs.get_f()); if (me_outargs.supports(OUT_ARG_W)) me_outargs.set_W(outArgs.get_W()); for (int j=0; j<num_p; j++) if (!outArgs.supports(OUT_ARG_DfDp, j).none()) me_outargs.set_DfDp(j, outArgs.get_DfDp(j)); for (int i=0; i<num_g; i++) { me_outargs.set_g(i, outArgs.get_g(i)); if (!outArgs.supports(OUT_ARG_DgDx, i).none()) me_outargs.set_DgDx(i, outArgs.get_DgDx(i)); if (!outArgs.supports(OUT_ARG_DgDx_dot, i).none()) me_outargs.set_DgDx(i, outArgs.get_DgDx_dot(i)); for (int j=0; j<num_p; j++) if (!outArgs.supports(OUT_ARG_DgDp, i, j).none()) me_outargs.set_DgDp(i, j, outArgs.get_DgDp(i,j)); } bool do_quad = false; InArgs::sg_const_vector_t x_sg; InArgs::sg_const_vector_t x_dot_sg; Teuchos::Array<InArgs::sg_const_vector_t> p_sg(num_p); OutArgs::sg_vector_t f_sg; OutArgs::sg_operator_t W_sg; Teuchos::Array<SGDerivative> dfdp_sg(num_p); Teuchos::Array<OutArgs::sg_vector_t> g_sg(num_g); Teuchos::Array<SGDerivative> dgdx_sg(num_g); Teuchos::Array<SGDerivative> dgdx_dot_sg(num_g); Teuchos::Array< Teuchos::Array<SGDerivative> > dgdp_sg(num_g); TEUCHOS_TEST_FOR_EXCEPTION(inArgs.get_sg_basis() == Teuchos::null, std::logic_error, "Error! Stokhos::SGQuadModelEvaluator::evalModel(): " << "SG basis inArg cannot be null!"); TEUCHOS_TEST_FOR_EXCEPTION(inArgs.get_sg_quadrature() == Teuchos::null, std::logic_error, "Error! Stokhos::SGQuadModelEvaluator::evalModel(): " << "SG quadrature inArg cannot be null!"); Teuchos::RCP<const Stokhos::OrthogPolyBasis<int,double> > basis = inArgs.get_sg_basis(); Teuchos::RCP< const Stokhos::Quadrature<int,double> > quad = inArgs.get_sg_quadrature(); if (inArgs.supports(IN_ARG_x_sg)) { x_sg = inArgs.get_x_sg(); if (x_sg != Teuchos::null) { do_quad = true; } } if (inArgs.supports(IN_ARG_x_dot_sg)) { x_dot_sg = inArgs.get_x_dot_sg(); if (x_dot_sg != Teuchos::null) { do_quad = true; } } for (int i=0; i<num_p; i++) { p_sg[i] = inArgs.get_p_sg(i); if (p_sg[i] != Teuchos::null) { do_quad = true; } } if (outArgs.supports(OUT_ARG_f_sg)) { f_sg = outArgs.get_f_sg(); if (f_sg != Teuchos::null) f_sg->init(0.0); } if (outArgs.supports(OUT_ARG_W_sg)) { W_sg = outArgs.get_W_sg(); if (W_sg != Teuchos::null) W_sg->init(0.0); } for (int i=0; i<num_p; i++) { if (!outArgs.supports(OUT_ARG_DfDp_sg, i).none()) { dfdp_sg[i] = outArgs.get_DfDp_sg(i); if (dfdp_sg[i].getMultiVector() != Teuchos::null) dfdp_sg[i].getMultiVector()->init(0.0); else if (dfdp_sg[i].getLinearOp() != Teuchos::null) dfdp_sg[i].getLinearOp()->init(0.0); } } for (int i=0; i<num_g; i++) { g_sg[i] = outArgs.get_g_sg(i); if (g_sg[i] != Teuchos::null) g_sg[i]->init(0.0); if (!outArgs.supports(OUT_ARG_DgDx_sg, i).none()) { dgdx_sg[i] = outArgs.get_DgDx_sg(i); if (dgdx_sg[i].getMultiVector() != Teuchos::null) dgdx_sg[i].getMultiVector()->init(0.0); else if (dgdx_sg[i].getLinearOp() != Teuchos::null) dgdx_sg[i].getLinearOp()->init(0.0); } if (!outArgs.supports(OUT_ARG_DgDx_dot_sg, i).none()) { dgdx_dot_sg[i] = outArgs.get_DgDx_dot_sg(i); if (dgdx_dot_sg[i].getMultiVector() != Teuchos::null) dgdx_dot_sg[i].getMultiVector()->init(0.0); else if (dgdx_dot_sg[i].getLinearOp() != Teuchos::null) dgdx_dot_sg[i].getLinearOp()->init(0.0); } dgdp_sg[i].resize(num_p); for (int j=0; j<num_p; j++) { if (!outArgs.supports(OUT_ARG_DgDp_sg, i, j).none()) { dgdp_sg[i][j] = outArgs.get_DgDp_sg(i,j); if (dgdp_sg[i][j].getMultiVector() != Teuchos::null) dgdp_sg[i][j].getMultiVector()->init(0.0); else if (dgdp_sg[i][j].getLinearOp() != Teuchos::null) dgdp_sg[i][j].getLinearOp()->init(0.0); } } } if (do_quad) { // Get quadrature data const Teuchos::Array< Teuchos::Array<double> >& quad_points = quad->getQuadPoints(); const Teuchos::Array<double>& quad_weights = quad->getQuadWeights(); const Teuchos::Array< Teuchos::Array<double> > & quad_values = quad->getBasisAtQuadPoints(); const Teuchos::Array<double>& basis_norms = basis->norm_squared(); // Perform integrations for (int qp=0; qp<quad_points.size(); qp++) { // StieltjesPCEBasis can introduce quadrature points with zero weight // Don't do those evaluations, since the model might not like the // quadrature points (i.e., zero) if (quad_weights[qp] == 0.0) continue; { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR_DIFF("Stokhos: SGQuadModelEvaluator -- Polynomial Evaluation", PolyEvaluation); #endif // Evaluate inputs at quadrature points if (x_sg != Teuchos::null) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR("Stokhos: SGQuadModelEvaluator -- X Evaluation"); #endif x_sg->evaluate(quad_values[qp], *x_qp); me_inargs.set_x(x_qp); } if (x_dot_sg != Teuchos::null) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR("Stokhos: SGQuadModelEvaluator -- X_dot Evaluation"); #endif x_dot_sg->evaluate(quad_values[qp], *x_dot_qp); me_inargs.set_x_dot(x_qp); } for (int i=0; i<num_p; i++) { if (p_sg[i] != Teuchos::null) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR("Stokhos: SGQuadModelEvaluator -- P Evaluation"); #endif p_sg[i]->evaluate(quad_values[qp], *(p_qp[i])); me_inargs.set_p(i, p_qp[i]); } } if (f_sg != Teuchos::null) me_outargs.set_f(f_qp); if (W_sg != Teuchos::null) me_outargs.set_W(W_qp); for (int i=0; i<num_p; i++) { if (!dfdp_sg[i].isEmpty()) me_outargs.set_DfDp(i, dfdp_qp[i]); } for (int i=0; i<num_g; i++) { if (g_sg[i] != Teuchos::null) me_outargs.set_g(i, g_qp[i]); if (!dgdx_dot_sg[i].isEmpty()) me_outargs.set_DgDx_dot(i, dgdx_dot_qp[i]); if (!dgdx_sg[i].isEmpty()) me_outargs.set_DgDx(i, dgdx_qp[i]); for (int j=0; j<num_p; j++) if (!dgdp_sg[i][j].isEmpty()) me_outargs.set_DgDp(i, j, dgdp_qp[i][j]); } } { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR("Stokhos: SGQuadModelEvaluator -- Model Evaluation"); #endif // Evaluate model at quadrature points me->evalModel(me_inargs, me_outargs); } { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR_DIFF( "Stokhos: SGQuadModelEvaluator -- Polynomial Integration", Integration); #endif // Sum in results if (f_sg != Teuchos::null) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR("Stokhos: SGQuadModelEvaluator -- F Integration"); #endif f_sg->sumIntoAllTerms(quad_weights[qp], quad_values[qp], basis_norms, *f_qp); } if (W_sg != Teuchos::null) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR("Stokhos: SGQuadModelEvaluator -- W Integration"); #endif W_sg->sumIntoAllTerms(quad_weights[qp], quad_values[qp], basis_norms, *W_qp); } for (int j=0; j<num_p; j++) { if (!dfdp_sg[j].isEmpty()) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR( "Stokhos: SGQuadModelEvaluator -- df/dp Integration"); #endif if (dfdp_sg[j].getMultiVector() != Teuchos::null) { dfdp_sg[j].getMultiVector()->sumIntoAllTerms( quad_weights[qp], quad_values[qp], basis_norms, *(dfdp_qp[j].getMultiVector())); } else if (dfdp_sg[j].getLinearOp() != Teuchos::null) { dfdp_sg[j].getLinearOp()->sumIntoAllTerms( quad_weights[qp], quad_values[qp], basis_norms, *(dfdp_qp[j].getLinearOp())); } } } for (int i=0; i<num_g; i++) { if (g_sg[i] != Teuchos::null) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR("Stokhos: SGQuadModelEvaluator -- G Integration"); #endif g_sg[i]->sumIntoAllTerms(quad_weights[qp], quad_values[qp], basis_norms, *g_qp[i]); } if (!dgdx_dot_sg[i].isEmpty()) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR( "Stokhos: SGQuadModelEvaluator -- dg/dx_dot Integration"); #endif if (dgdx_dot_sg[i].getMultiVector() != Teuchos::null) { dgdx_dot_sg[i].getMultiVector()->sumIntoAllTerms( quad_weights[qp], quad_values[qp], basis_norms, *(dgdx_dot_qp[i].getMultiVector())); } else if (dgdx_dot_sg[i].getLinearOp() != Teuchos::null) { dgdx_dot_sg[i].getLinearOp()->sumIntoAllTerms( quad_weights[qp], quad_values[qp], basis_norms, *(dgdx_dot_qp[i].getLinearOp())); } } if (!dgdx_sg[i].isEmpty()) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR( "Stokhos: SGQuadModelEvaluator -- dg/dx Integration"); #endif if (dgdx_sg[i].getMultiVector() != Teuchos::null) { dgdx_sg[i].getMultiVector()->sumIntoAllTerms( quad_weights[qp], quad_values[qp], basis_norms, *(dgdx_qp[i].getMultiVector())); } else if (dgdx_sg[i].getLinearOp() != Teuchos::null) { dgdx_sg[i].getLinearOp()->sumIntoAllTerms( quad_weights[qp], quad_values[qp], basis_norms, *(dgdx_qp[i].getLinearOp())); } } for (int j=0; j<num_p; j++) { if (!dgdp_sg[i][j].isEmpty()) { #ifdef STOKHOS_TEUCHOS_TIME_MONITOR TEUCHOS_FUNC_TIME_MONITOR( "Stokhos: SGQuadModelEvaluator -- dg/dp Integration"); #endif if (dgdp_sg[i][j].getMultiVector() != Teuchos::null) { dgdp_sg[i][j].getMultiVector()->sumIntoAllTerms( quad_weights[qp], quad_values[qp], basis_norms, *(dgdp_qp[i][j].getMultiVector())); } else if (dgdp_sg[i][j].getLinearOp() != Teuchos::null) { dgdp_sg[i][j].getLinearOp()->sumIntoAllTerms( quad_weights[qp], quad_values[qp], basis_norms, *(dgdp_qp[i][j].getLinearOp())); } } } } } } } else { // Compute the non-SG functions me->evalModel(me_inargs, me_outargs); } }