| [0b990d] | 1 | //
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 | 2 | // uks.cc --- implementation of the unrestricted Hartree-Fock class
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 | 3 | //
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 | 4 | // Copyright (C) 1996 Limit Point Systems, Inc.
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 | 5 | //
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 | 6 | // Author: Edward Seidl <seidl@janed.com>
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 | 7 | // Maintainer: LPS
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 | 8 | //
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 | 9 | // This file is part of the SC Toolkit.
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 | 10 | //
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 | 11 | // The SC Toolkit is free software; you can redistribute it and/or modify
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 | 12 | // it under the terms of the GNU Library General Public License as published by
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 | 13 | // the Free Software Foundation; either version 2, or (at your option)
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 | 14 | // any later version.
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 | 15 | //
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 | 16 | // The SC Toolkit is distributed in the hope that it will be useful,
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 | 17 | // but WITHOUT ANY WARRANTY; without even the implied warranty of
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 | 18 | // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
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 | 19 | // GNU Library General Public License for more details.
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 | 20 | //
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 | 21 | // You should have received a copy of the GNU Library General Public License
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 | 22 | // along with the SC Toolkit; see the file COPYING.LIB.  If not, write to
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 | 23 | // the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
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 | 24 | //
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 | 25 | // The U.S. Government is granted a limited license as per AL 91-7.
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 | 26 | //
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 | 27 | 
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 | 28 | #ifdef __GNUC__
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 | 29 | #pragma implementation
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 | 30 | #endif
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 | 31 | 
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 | 32 | #include <math.h>
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 | 33 | 
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 | 34 | #include <util/misc/timer.h>
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 | 35 | #include <util/misc/formio.h>
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 | 36 | #include <util/state/stateio.h>
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 | 37 | 
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 | 38 | #include <math/optimize/scextrapmat.h>
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 | 39 | 
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 | 40 | #include <chemistry/qc/basis/petite.h>
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 | 41 | 
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 | 42 | #include <chemistry/qc/dft/uks.h>
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 | 43 | #include <chemistry/qc/scf/lgbuild.h>
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 | 44 | #include <chemistry/qc/scf/ltbgrad.h>
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 | 45 | 
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 | 46 | #include <chemistry/qc/dft/ukstmpl.h>
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 | 47 | 
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 | 48 | using namespace std;
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 | 49 | using namespace sc;
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 | 50 | 
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 | 51 | ///////////////////////////////////////////////////////////////////////////
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 | 52 | // UKS
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 | 53 | 
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 | 54 | static ClassDesc UKS_cd(
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 | 55 |   typeid(UKS),"UKS",1,"public UnrestrictedSCF",
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 | 56 |   0, create<UKS>, create<UKS>);
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 | 57 | 
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 | 58 | UKS::UKS(StateIn& s) :
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 | 59 |   SavableState(s),
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 | 60 |   UnrestrictedSCF(s)
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 | 61 | {
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 | 62 |   exc_=0;
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 | 63 |   integrator_ << SavableState::restore_state(s);
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 | 64 |   functional_ << SavableState::restore_state(s);
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 | 65 |   vaxc_ = basis_matrixkit()->symmmatrix(so_dimension());
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 | 66 |   vaxc_.restore(s);
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 | 67 |   vbxc_ = basis_matrixkit()->symmmatrix(so_dimension());
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 | 68 |   vbxc_.restore(s);
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 | 69 | }
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 | 70 | 
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 | 71 | UKS::UKS(const Ref<KeyVal>& keyval) :
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 | 72 |   UnrestrictedSCF(keyval)
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 | 73 | {
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 | 74 |   exc_=0;
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 | 75 |   integrator_ << keyval->describedclassvalue("integrator");
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 | 76 |   if (integrator_.null()) integrator_ = new RadialAngularIntegrator();
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 | 77 | 
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 | 78 |   functional_ << keyval->describedclassvalue("functional");
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 | 79 |   if (functional_.null()) {
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 | 80 |     ExEnv::outn() << "ERROR: " << class_name() << ": no \"functional\" given" << endl;
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 | 81 |     abort();
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 | 82 |   }
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 | 83 | }
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 | 84 | 
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 | 85 | UKS::~UKS()
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 | 86 | {
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 | 87 | }
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 | 88 | 
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 | 89 | void
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 | 90 | UKS::save_data_state(StateOut& s)
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 | 91 | {
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 | 92 |   UnrestrictedSCF::save_data_state(s);
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 | 93 |   SavableState::save_state(integrator_.pointer(),s);
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 | 94 |   SavableState::save_state(functional_.pointer(),s);
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 | 95 |   vaxc_.save(s);
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 | 96 |   vbxc_.save(s);
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 | 97 | }
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 | 98 | 
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 | 99 | int
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 | 100 | UKS::value_implemented() const
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 | 101 | {
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 | 102 |   return 1;
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 | 103 | }
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 | 104 | 
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 | 105 | int
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 | 106 | UKS::gradient_implemented() const
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 | 107 | {
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 | 108 |   return 1;
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 | 109 | }
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 | 110 | 
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 | 111 | double
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 | 112 | UKS::scf_energy()
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 | 113 | {
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 | 114 |   RefSymmSCMatrix mva = vaxc_.copy();
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 | 115 |   mva.scale(-1.0);
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 | 116 |   focka_.result_noupdate().accumulate(mva);
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 | 117 |   RefSymmSCMatrix mvb = vbxc_.copy();
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 | 118 |   mvb.scale(-1.0);
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 | 119 |   fockb_.result_noupdate().accumulate(mvb);
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 | 120 |   double ehf = UnrestrictedSCF::scf_energy();
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 | 121 |   focka_.result_noupdate().accumulate(vaxc_);
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 | 122 |   fockb_.result_noupdate().accumulate(vbxc_);
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 | 123 |   return ehf + exc_;
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 | 124 | }
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 | 125 | 
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 | 126 | Ref<SCExtrapData>
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 | 127 | UKS::extrap_data()
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 | 128 | {
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 | 129 |   RefSymmSCMatrix *m = new RefSymmSCMatrix[4];
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 | 130 |   m[0] = focka_.result_noupdate();
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 | 131 |   m[1] = fockb_.result_noupdate();
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 | 132 |   m[2] = vaxc_;
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 | 133 |   m[3] = vbxc_;
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 | 134 |   
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 | 135 |   Ref<SCExtrapData> data = new SymmSCMatrixNSCExtrapData(4, m);
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 | 136 |   delete[] m;
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 | 137 |   
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 | 138 |   return data;
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 | 139 | }
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 | 140 | 
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 | 141 | void
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 | 142 | UKS::print(ostream&o) const
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 | 143 | {
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 | 144 |   o << indent << "Unrestricted Kohn-Sham (UKS) Parameters:" << endl;
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 | 145 |   o << incindent;
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 | 146 |   UnrestrictedSCF::print(o);
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 | 147 |   o << indent << "Functional:" << endl;
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 | 148 |   o << incindent;
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 | 149 |   functional_->print(o);
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 | 150 |   o << decindent;
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 | 151 |   o << indent << "Integrator:" << endl;
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 | 152 |   o << incindent;
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 | 153 |   integrator_->print(o);
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 | 154 |   o << decindent;
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 | 155 |   o << decindent;
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 | 156 | }
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 | 157 | 
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 | 158 | //////////////////////////////////////////////////////////////////////////////
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 | 159 | 
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 | 160 | void
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 | 161 | UKS::two_body_energy(double &ec, double &ex)
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 | 162 | {
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 | 163 |   tim_enter("uks e2");
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 | 164 |   ec = 0.0;
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 | 165 |   ex = 0.0;
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 | 166 |   if (local_ || local_dens_) {
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 | 167 |     // grab the data pointers from the G and P matrices
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 | 168 |     double *apmat;
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 | 169 |     double *bpmat;
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 | 170 |     tim_enter("local data");
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 | 171 |     RefSymmSCMatrix adens = alpha_ao_density();
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 | 172 |     RefSymmSCMatrix bdens = beta_ao_density();
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 | 173 |     adens->scale(2.0);
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 | 174 |     adens->scale_diagonal(0.5);
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 | 175 |     bdens->scale(2.0);
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 | 176 |     bdens->scale_diagonal(0.5);
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 | 177 |     RefSymmSCMatrix aptmp = get_local_data(adens, apmat, SCF::Read);
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 | 178 |     RefSymmSCMatrix bptmp = get_local_data(bdens, bpmat, SCF::Read);
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 | 179 |     tim_exit("local data");
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 | 180 | 
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 | 181 |     // initialize the two electron integral classes
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 | 182 |     Ref<TwoBodyInt> tbi = integral()->electron_repulsion();
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 | 183 |     tbi->set_integral_storage(0);
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 | 184 | 
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 | 185 |     signed char * pmax = init_pmax(apmat);
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 | 186 |   
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 | 187 |     LocalUKSEnergyContribution lclc(apmat, bpmat, 0);
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 | 188 |     Ref<PetiteList> pl = integral()->petite_list();
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 | 189 |     LocalGBuild<LocalUKSEnergyContribution>
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 | 190 |       gb(lclc, tbi_, pl, basis(), scf_grp_, pmax, desired_value_accuracy()/100.0);
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 | 191 |     gb.run();
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 | 192 | 
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 | 193 |     delete[] pmax;
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 | 194 | 
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 | 195 |     ec = lclc.ec;
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 | 196 |     ex = lclc.ex;
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 | 197 |   }
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 | 198 |   else {
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 | 199 |     ExEnv::out0() << indent << "Cannot yet use anything but Local matrices\n";
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 | 200 |     abort();
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 | 201 |   }
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 | 202 |   tim_exit("uks e2");
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 | 203 | }
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 | 204 | 
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 | 205 | //////////////////////////////////////////////////////////////////////////////
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 | 206 | 
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 | 207 | void
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 | 208 | UKS::ao_fock(double accuracy)
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 | 209 | {
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 | 210 |   Ref<PetiteList> pl = integral()->petite_list(basis());
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 | 211 |   
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 | 212 |   // calculate G.  First transform diff_densa_ to the AO basis, then
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 | 213 |   // scale the off-diagonal elements by 2.0
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 | 214 |   RefSymmSCMatrix dda = diff_densa_;
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 | 215 |   diff_densa_ = pl->to_AO_basis(dda);
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 | 216 |   diff_densa_->scale(2.0);
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 | 217 |   diff_densa_->scale_diagonal(0.5);
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 | 218 | 
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 | 219 |   RefSymmSCMatrix ddb = diff_densb_;
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 | 220 |   diff_densb_ = pl->to_AO_basis(ddb);
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 | 221 |   diff_densb_->scale(2.0);
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 | 222 |   diff_densb_->scale_diagonal(0.5);
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 | 223 | 
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 | 224 |   // now try to figure out the matrix specialization we're dealing with
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 | 225 |   // if we're using Local matrices, then there's just one subblock, or
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 | 226 |   // see if we can convert G and P to local matrices
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 | 227 |   if (local_ || local_dens_) {
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 | 228 |     double *gmat, *gmato, *pmat, *pmato;
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 | 229 |     
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 | 230 |     // grab the data pointers from the G and P matrices
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 | 231 |     RefSymmSCMatrix gtmp = get_local_data(gmata_, gmat, SCF::Accum);
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 | 232 |     RefSymmSCMatrix ptmp = get_local_data(diff_densa_, pmat, SCF::Read);
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 | 233 |     RefSymmSCMatrix gotmp = get_local_data(gmatb_, gmato, SCF::Accum);
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 | 234 |     RefSymmSCMatrix potmp = get_local_data(diff_densb_, pmato, SCF::Read);
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 | 235 | 
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 | 236 |     signed char * pmax = init_pmax(pmat);
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 | 237 |   
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 | 238 | //      LocalUKSContribution lclc(gmat, pmat, gmato, pmato, functional_->a0());
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 | 239 | //      LocalGBuild<LocalUKSContribution>
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 | 240 | //        gb(lclc, tbi_, pl, basis(), scf_grp_, pmax, desired_value_accuracy()/100.0);
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 | 241 | //      gb.run();
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 | 242 |     int i;
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 | 243 |     int nthread = threadgrp_->nthread();
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 | 244 |     LocalGBuild<LocalUKSContribution> **gblds =
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 | 245 |       new LocalGBuild<LocalUKSContribution>*[nthread];
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 | 246 |     LocalUKSContribution **conts = new LocalUKSContribution*[nthread];
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 | 247 |     
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 | 248 |     double **gmats = new double*[nthread];
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 | 249 |     gmats[0] = gmat;
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 | 250 |     double **gmatos = new double*[nthread];
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 | 251 |     gmatos[0] = gmato;
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 | 252 |     
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 | 253 |     Ref<GaussianBasisSet> bs = basis();
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 | 254 |     int ntri = i_offset(bs->nbasis());
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 | 255 | 
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 | 256 |     double gmat_accuracy = accuracy;
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 | 257 |     if (min_orthog_res() < 1.0) { gmat_accuracy *= min_orthog_res(); }
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 | 258 | 
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 | 259 |     for (i=0; i < nthread; i++) {
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 | 260 |       if (i) {
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 | 261 |         gmats[i] = new double[ntri];
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 | 262 |         memset(gmats[i], 0, sizeof(double)*ntri);
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 | 263 |         gmatos[i] = new double[ntri];
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 | 264 |         memset(gmatos[i], 0, sizeof(double)*ntri);
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 | 265 |       }
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 | 266 |       conts[i] = new LocalUKSContribution(gmats[i], pmat, gmatos[i], pmato,
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 | 267 |                                           functional_->a0());
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 | 268 |       gblds[i] = new LocalGBuild<LocalUKSContribution>(*conts[i], tbis_[i],
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 | 269 |         pl, bs, scf_grp_, pmax, gmat_accuracy, nthread, i
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 | 270 |         );
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 | 271 | 
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 | 272 |       threadgrp_->add_thread(i, gblds[i]);
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 | 273 |     }
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 | 274 | 
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 | 275 |     tim_enter("start thread");
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 | 276 |     if (threadgrp_->start_threads() < 0) {
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 | 277 |       ExEnv::err0() << indent
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 | 278 |            << "UKS: error starting threads" << endl;
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 | 279 |       abort();
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 | 280 |     }
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 | 281 |     tim_exit("start thread");
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 | 282 | 
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 | 283 |     tim_enter("stop thread");
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 | 284 |     if (threadgrp_->wait_threads() < 0) {
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 | 285 |       ExEnv::err0() << indent
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 | 286 |            << "UKS: error waiting for threads" << endl;
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 | 287 |       abort();
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 | 288 |     }
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 | 289 |     tim_exit("stop thread");
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 | 290 |       
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 | 291 |     double tnint=0;
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 | 292 |     for (i=0; i < nthread; i++) {
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 | 293 |       tnint += gblds[i]->tnint;
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 | 294 | 
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 | 295 |       if (i) {
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 | 296 |         for (int j=0; j < ntri; j++) {
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 | 297 |           gmat[j] += gmats[i][j];
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 | 298 |           gmato[j] += gmatos[i][j];
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 | 299 |         }
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 | 300 |         delete[] gmats[i];
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 | 301 |         delete[] gmatos[i];
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 | 302 |       }
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 | 303 | 
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 | 304 |       delete gblds[i];
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 | 305 |       delete conts[i];
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 | 306 |     }
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 | 307 | 
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 | 308 |     delete[] gmats;
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 | 309 |     delete[] gmatos;
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 | 310 |     delete[] gblds;
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 | 311 |     delete[] conts;
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 | 312 | 
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 | 313 |     delete[] pmax;
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 | 314 | 
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 | 315 |     scf_grp_->sum(&tnint, 1, 0, 0);
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 | 316 |     ExEnv::out0() << indent << scprintf("%20.0f integrals\n", tnint);
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 | 317 |     
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 | 318 |     // if we're running on multiple processors, then sum the G matrices
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 | 319 |     if (scf_grp_->n() > 1) {
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 | 320 |       scf_grp_->sum(gmat, i_offset(basis()->nbasis()));
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 | 321 |       scf_grp_->sum(gmato, i_offset(basis()->nbasis()));
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 | 322 |     }
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 | 323 |     
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 | 324 |     // if we're running on multiple processors, or we don't have local
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 | 325 |     // matrices, then accumulate gtmp back into G
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 | 326 |     if (!local_ || scf_grp_->n() > 1) {
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 | 327 |       gmata_->convert_accumulate(gtmp);
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 | 328 |       gmatb_->convert_accumulate(gotmp);
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 | 329 |     }
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 | 330 |   }
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 | 331 | 
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 | 332 |   // for now quit
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 | 333 |   else {
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 | 334 |     ExEnv::out0() << indent << "Cannot yet use anything but Local matrices\n";
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 | 335 |     abort();
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 | 336 |   }
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 | 337 |   
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 | 338 |   diff_densa_ = pl->to_AO_basis(densa_);
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 | 339 |   diff_densb_ = pl->to_AO_basis(densb_);
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 | 340 |   integrator_->set_compute_potential_integrals(1);
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 | 341 |   integrator_->set_accuracy(accuracy);
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 | 342 |   integrator_->integrate(functional_, diff_densa_, diff_densb_);
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 | 343 |   exc_ = integrator_->value();
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 | 344 |   RefSymmSCMatrix vxa = gmata_.clone();
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 | 345 |   RefSymmSCMatrix vxb = gmatb_.clone();
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 | 346 |   vxa->assign((double*)integrator_->alpha_vmat());
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 | 347 |   vxb->assign((double*)integrator_->beta_vmat());
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 | 348 |   vxa = pl->to_SO_basis(vxa);
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 | 349 |   vxb = pl->to_SO_basis(vxb);
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 | 350 |   vaxc_ = vxa;
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 | 351 |   vbxc_ = vxb;
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 | 352 | 
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 | 353 |   // get rid of AO delta P
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 | 354 |   diff_densa_ = dda;
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 | 355 |   dda = diff_densa_.clone();
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 | 356 | 
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 | 357 |   diff_densb_ = ddb;
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 | 358 |   ddb = diff_densb_.clone();
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 | 359 | 
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 | 360 |   // now symmetrize the skeleton G matrix, placing the result in dda
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 | 361 |   RefSymmSCMatrix skel_gmat = gmata_.copy();
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 | 362 |   skel_gmat.scale(1.0/(double)pl->order());
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 | 363 |   pl->symmetrize(skel_gmat,dda);
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 | 364 | 
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 | 365 |   skel_gmat = gmatb_.copy();
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 | 366 |   skel_gmat.scale(1.0/(double)pl->order());
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 | 367 |   pl->symmetrize(skel_gmat,ddb);
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 | 368 |   
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 | 369 |   // Fa = H+Ga
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 | 370 |   focka_.result_noupdate().assign(hcore_);
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 | 371 |   focka_.result_noupdate().accumulate(dda);
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 | 372 |   focka_.result_noupdate().accumulate(vaxc_);
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 | 373 | 
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 | 374 |   // Fb = H+Gb
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 | 375 |   fockb_.result_noupdate().assign(hcore_);
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 | 376 |   fockb_.result_noupdate().accumulate(ddb);
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 | 377 |   fockb_.result_noupdate().accumulate(vbxc_);
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 | 378 | 
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 | 379 |   dda.assign(0.0);
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 | 380 |   accumddh_->accum(dda);
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 | 381 |   focka_.result_noupdate().accumulate(dda);
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 | 382 |   fockb_.result_noupdate().accumulate(dda);
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 | 383 | 
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 | 384 |   focka_.computed()=1;
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 | 385 |   fockb_.computed()=1;
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 | 386 | }
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 | 387 | 
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 | 388 | /////////////////////////////////////////////////////////////////////////////
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 | 389 | 
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 | 390 | void
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 | 391 | UKS::two_body_deriv(double * tbgrad)
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 | 392 | {
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 | 393 |   tim_enter("grad");
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 | 394 | 
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 | 395 |   int natom3 = 3*molecule()->natom();
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 | 396 | 
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 | 397 |   tim_enter("two-body");
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 | 398 |   double *hfgrad = new double[natom3];
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 | 399 |   memset(hfgrad,0,sizeof(double)*natom3);
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 | 400 |   two_body_deriv_hf(hfgrad,functional_->a0());
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 | 401 |   //print_natom_3(hfgrad, "Two-body contribution to DFT gradient");
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 | 402 |   tim_exit("two-body");
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 | 403 | 
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 | 404 |   double *dftgrad = new double[natom3];
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 | 405 |   memset(dftgrad,0,sizeof(double)*natom3);
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 | 406 |   RefSymmSCMatrix ao_dens_a = alpha_ao_density();
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 | 407 |   RefSymmSCMatrix ao_dens_b = beta_ao_density();
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 | 408 |   integrator_->init(this);
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 | 409 |   integrator_->set_compute_potential_integrals(0);
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 | 410 |   integrator_->set_accuracy(desired_gradient_accuracy());
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 | 411 |   integrator_->integrate(functional_, ao_dens_a, ao_dens_b, dftgrad);
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 | 412 |   integrator_->done();
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 | 413 |   //print_natom_3(dftgrad, "E-X contribution to DFT gradient");
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 | 414 | 
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 | 415 |   scf_grp_->sum(dftgrad, natom3);
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 | 416 | 
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 | 417 |   for (int i=0; i<natom3; i++) tbgrad[i] += dftgrad[i] + hfgrad[i];
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 | 418 |   delete[] dftgrad;
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 | 419 |   delete[] hfgrad;
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 | 420 | 
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 | 421 |   tim_exit("grad");
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 | 422 | }
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 | 423 | 
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 | 424 | /////////////////////////////////////////////////////////////////////////////
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 | 425 | 
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 | 426 | void
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 | 427 | UKS::init_vector()
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 | 428 | {
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 | 429 |   integrator_->init(this);
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 | 430 |   UnrestrictedSCF::init_vector();
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 | 431 | }
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 | 432 | 
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 | 433 | void
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 | 434 | UKS::done_vector()
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 | 435 | {
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 | 436 |   integrator_->done();
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 | 437 |   UnrestrictedSCF::done_vector();
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 | 438 | }
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 | 439 | 
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 | 440 | /////////////////////////////////////////////////////////////////////////////
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 | 441 | 
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 | 442 | // Local Variables:
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 | 443 | // mode: c++
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 | 444 | // c-file-style: "ETS"
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 | 445 | // End:
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