| [0b990d] | 1 | //
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 | 2 | // intv3.cc
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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: Curtis Janssen <cljanss@limitpt.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 | #include <stdexcept>
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 | 29 | 
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 | 30 | #include <util/state/stateio.h>
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 | 31 | #include <chemistry/qc/basis/integral.h>
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 | 32 | #include <chemistry/qc/intv3/intv3.h>
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 | 33 | #include <chemistry/qc/intv3/cartitv3.h>
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 | 34 | #include <chemistry/qc/intv3/tformv3.h>
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 | 35 | #include <chemistry/qc/intv3/obintv3.h>
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 | 36 | #include <chemistry/qc/intv3/tbintv3.h>
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 | 37 | 
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 | 38 | using namespace std;
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 | 39 | using namespace sc;
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 | 40 | 
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 | 41 | static ClassDesc IntegralV3_cd(
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 | 42 |   typeid(IntegralV3),"IntegralV3",1,"public Integral",
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 | 43 |   0, create<IntegralV3>, create<IntegralV3>);
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 | 44 | 
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 | 45 | extern Ref<Integral> default_integral;
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 | 46 | 
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 | 47 | Integral*
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 | 48 | Integral::get_default_integral()
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 | 49 | {
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 | 50 |   if (default_integral.null())
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 | 51 |     default_integral = new IntegralV3;
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 | 52 | 
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 | 53 |   return default_integral;
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 | 54 | }
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 | 55 | 
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 | 56 | IntegralV3::IntegralV3(const Ref<GaussianBasisSet> &b1,
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 | 57 |                        const Ref<GaussianBasisSet> &b2,
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 | 58 |                        const Ref<GaussianBasisSet> &b3,
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 | 59 |                        const Ref<GaussianBasisSet> &b4):
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 | 60 |   Integral(b1,b2,b3,b4)
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 | 61 | {
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 | 62 |   initialize_transforms();
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 | 63 | }
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 | 64 | 
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 | 65 | IntegralV3::IntegralV3(StateIn& s) :
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 | 66 |   Integral(s)
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 | 67 | {
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 | 68 |   initialize_transforms();
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 | 69 | }
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 | 70 | 
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 | 71 | IntegralV3::IntegralV3(const Ref<KeyVal>& k) :
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 | 72 |   Integral(k)
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 | 73 | {
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 | 74 |   initialize_transforms();
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 | 75 | }
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 | 76 | 
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 | 77 | void
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 | 78 | IntegralV3::save_data_state(StateOut& s)
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 | 79 | {
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 | 80 |   Integral::save_data_state(s);
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 | 81 | }
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 | 82 | 
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 | 83 | IntegralV3::~IntegralV3()
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 | 84 | {
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 | 85 |   free_transforms();
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 | 86 | }
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 | 87 | 
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 | 88 | Integral*
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 | 89 | IntegralV3::clone()
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 | 90 | {
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 | 91 |   return new IntegralV3;
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 | 92 | }
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 | 93 | 
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 | 94 | CartesianIter *
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 | 95 | IntegralV3::new_cartesian_iter(int l)
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 | 96 | {
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 | 97 |   return new CartesianIterV3(l);
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 | 98 | }
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 | 99 | 
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 | 100 | RedundantCartesianIter *
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 | 101 | IntegralV3::new_redundant_cartesian_iter(int l)
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 | 102 | {
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 | 103 |   return new RedundantCartesianIterV3(l);
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 | 104 | }
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 | 105 | 
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 | 106 | RedundantCartesianSubIter *
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 | 107 | IntegralV3::new_redundant_cartesian_sub_iter(int l)
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 | 108 | {
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 | 109 |   return new RedundantCartesianSubIterV3(l);
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 | 110 | }
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 | 111 | 
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 | 112 | SphericalTransformIter *
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 | 113 | IntegralV3::new_spherical_transform_iter(int l, int inv, int subl)
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 | 114 | {
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 | 115 |   if (l>maxl_ || l<0) {
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 | 116 |       ExEnv::errn() << "IntegralV3::new_spherical_transform_iter: bad l" << endl;
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 | 117 |       abort();
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 | 118 |     }
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 | 119 |   if (subl == -1) subl = l;
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 | 120 |   if (subl < 0 || subl > l || (l-subl)%2 != 0) {
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 | 121 |       ExEnv::errn() << "IntegralV3::new_spherical_transform_iter: bad subl" << endl;
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 | 122 |       abort();
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 | 123 |     }
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 | 124 |   if (inv) {
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 | 125 |       return new SphericalTransformIter(ist_[l][(l-subl)/2]);
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 | 126 |     }
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 | 127 |   return new SphericalTransformIter(st_[l][(l-subl)/2]);
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 | 128 | }
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 | 129 | 
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 | 130 | const SphericalTransform *
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 | 131 | IntegralV3::spherical_transform(int l, int inv, int subl)
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 | 132 | {
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 | 133 |   if (l>maxl_ || l<0) {
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 | 134 |       ExEnv::errn() << "IntegralV3::spherical_transform_iter: bad l" << endl;
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 | 135 |       abort();
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 | 136 |     }
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 | 137 |   if (subl == -1) subl = l;
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 | 138 |   if (subl < 0 || subl > l || (l-subl)%2 != 0) {
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 | 139 |       ExEnv::errn() << "IntegralV3::spherical_transform_iter: bad subl" << endl;
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 | 140 |       abort();
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 | 141 |     }
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 | 142 |   if (inv) {
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 | 143 |       return ist_[l][(l-subl)/2];
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 | 144 |     }
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 | 145 |   return st_[l][(l-subl)/2];
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 | 146 | }
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 | 147 | 
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 | 148 | Ref<OneBodyInt>
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 | 149 | IntegralV3::overlap()
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 | 150 | {
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 | 151 |   return new OneBodyIntV3(this, bs1_, bs2_, &Int1eV3::overlap);
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 | 152 | }
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 | 153 | 
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 | 154 | Ref<OneBodyInt>
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 | 155 | IntegralV3::kinetic()
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 | 156 | {
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 | 157 |   return new OneBodyIntV3(this, bs1_, bs2_, &Int1eV3::kinetic);
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 | 158 | }
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 | 159 | 
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 | 160 | Ref<OneBodyInt>
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 | 161 | IntegralV3::nuclear()
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 | 162 | {
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 | 163 |   return new OneBodyIntV3(this, bs1_, bs2_, &Int1eV3::nuclear);
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 | 164 | }
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 | 165 | 
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 | 166 | Ref<OneBodyInt>
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 | 167 | IntegralV3::hcore()
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 | 168 | {
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 | 169 |   return new OneBodyIntV3(this, bs1_, bs2_, &Int1eV3::hcore);
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 | 170 | }
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 | 171 | 
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 | 172 | Ref<OneBodyOneCenterInt>
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 | 173 | IntegralV3::point_charge1(const Ref<PointChargeData>& dat)
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 | 174 | {
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 | 175 |   Ref<GaussianBasisSet> unit(new GaussianBasisSet(GaussianBasisSet::Unit));
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 | 176 |   return new OneBodyOneCenterWrapper(new PointChargeIntV3(this, bs1_, unit ,dat));
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 | 177 | }
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 | 178 | 
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 | 179 | Ref<OneBodyInt>
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 | 180 | IntegralV3::point_charge(const Ref<PointChargeData>& dat)
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 | 181 | {
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 | 182 |   return new PointChargeIntV3(this, bs1_, bs2_, dat);
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 | 183 | }
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 | 184 | 
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 | 185 | Ref<OneBodyInt>
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 | 186 | IntegralV3::efield_dot_vector(const Ref<EfieldDotVectorData>&dat)
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 | 187 | {
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 | 188 |   return new EfieldDotVectorIntV3(this, bs1_, bs2_, dat);
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 | 189 | }
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 | 190 | 
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 | 191 | Ref<OneBodyInt>
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 | 192 | IntegralV3::dipole(const Ref<DipoleData>& dat)
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 | 193 | {
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 | 194 |   return new DipoleIntV3(this, bs1_, bs2_, dat);
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 | 195 | }
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 | 196 | 
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 | 197 | Ref<OneBodyInt>
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 | 198 | IntegralV3::quadrupole(const Ref<DipoleData>& dat)
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 | 199 | {
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 | 200 |   throw std::runtime_error("IntegralV3 cannot compute quadrupole moment integrals yet. Try IntegralCints instead.");
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 | 201 | }
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 | 202 | 
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 | 203 | Ref<OneBodyDerivInt>
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 | 204 | IntegralV3::overlap_deriv()
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 | 205 | {
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 | 206 |   return new OneBodyDerivIntV3(this, bs1_, bs2_, &Int1eV3::overlap_1der);
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 | 207 | }
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 | 208 | 
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 | 209 | Ref<OneBodyDerivInt>
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 | 210 | IntegralV3::kinetic_deriv()
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 | 211 | {
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 | 212 |   return new OneBodyDerivIntV3(this, bs1_, bs2_, &Int1eV3::kinetic_1der);
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 | 213 | }
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 | 214 | 
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 | 215 | Ref<OneBodyDerivInt>
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 | 216 | IntegralV3::nuclear_deriv()
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 | 217 | {
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 | 218 |   return new OneBodyDerivIntV3(this, bs1_, bs2_, &Int1eV3::nuclear_1der);
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 | 219 | }
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 | 220 | 
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 | 221 | Ref<OneBodyDerivInt>
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 | 222 | IntegralV3::hcore_deriv()
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 | 223 | {
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 | 224 |   return new OneBodyDerivIntV3(this, bs1_, bs2_, &Int1eV3::hcore_1der);
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 | 225 | }
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 | 226 | 
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 | 227 | Ref<TwoBodyInt>
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 | 228 | IntegralV3::electron_repulsion()
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 | 229 | {
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 | 230 |   return new TwoBodyIntV3(this, bs1_, bs2_, bs3_, bs4_, storage_);
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 | 231 | }
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 | 232 | 
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 | 233 | Ref<TwoBodyThreeCenterInt>
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 | 234 | IntegralV3::electron_repulsion3()
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 | 235 | {
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 | 236 |   return new TwoBodyThreeCenterIntV3(this, bs1_, bs2_, bs3_, storage_);
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 | 237 | }
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 | 238 | 
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 | 239 | Ref<TwoBodyTwoCenterInt>
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 | 240 | IntegralV3::electron_repulsion2()
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 | 241 | {
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 | 242 |   return new TwoBodyTwoCenterIntV3(this, bs1_, bs2_, storage_);
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 | 243 | }
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 | 244 | 
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 | 245 | Ref<TwoBodyDerivInt>
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 | 246 | IntegralV3::electron_repulsion_deriv()
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 | 247 | {
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 | 248 |   return new TwoBodyDerivIntV3(this, bs1_, bs2_, bs3_, bs4_, storage_);
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 | 249 | }
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 | 250 | 
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 | 251 | void
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 | 252 | IntegralV3::set_basis(const Ref<GaussianBasisSet> &b1,
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 | 253 |                       const Ref<GaussianBasisSet> &b2,
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 | 254 |                       const Ref<GaussianBasisSet> &b3,
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 | 255 |                       const Ref<GaussianBasisSet> &b4)
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 | 256 | {
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 | 257 |   free_transforms();
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 | 258 |   Integral::set_basis(b1,b2,b3,b4);
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 | 259 |   initialize_transforms();
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 | 260 | }
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 | 261 | 
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 | 262 | void
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 | 263 | IntegralV3::free_transforms()
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 | 264 | {
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 | 265 |   int i,j;
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 | 266 |   for (i=0; i<=maxl_; i++) {
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 | 267 |       for (j=0; j<=i/2; j++) {
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 | 268 |           delete st_[i][j];
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 | 269 |           delete ist_[i][j];
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 | 270 |         }
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 | 271 |       delete[] st_[i];
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 | 272 |       delete[] ist_[i];
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 | 273 |     }
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 | 274 |   delete[] st_;
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 | 275 |   delete[] ist_;
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 | 276 |   st_ = 0;
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 | 277 |   ist_ = 0;
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 | 278 | }
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 | 279 | 
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 | 280 | void
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 | 281 | IntegralV3::initialize_transforms()
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 | 282 | {
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 | 283 |   maxl_ = -1;
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 | 284 |   int maxam;
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 | 285 |   maxam = bs1_.nonnull()?bs1_->max_angular_momentum():-1;
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 | 286 |   if (maxl_ < maxam) maxl_ = maxam;
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 | 287 |   maxam = bs2_.nonnull()?bs2_->max_angular_momentum():-1;
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 | 288 |   if (maxl_ < maxam) maxl_ = maxam;
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 | 289 |   maxam = bs3_.nonnull()?bs3_->max_angular_momentum():-1;
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 | 290 |   if (maxl_ < maxam) maxl_ = maxam;
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 | 291 |   maxam = bs4_.nonnull()?bs4_->max_angular_momentum():-1;
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 | 292 |   if (maxl_ < maxam) maxl_ = maxam;
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 | 293 | 
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 | 294 |   st_ = new SphericalTransformV3**[maxl_+1];
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 | 295 |   ist_ = new ISphericalTransformV3**[maxl_+1];;
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 | 296 |   int i,j;
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 | 297 |   for (i=0; i<=maxl_; i++) {
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 | 298 |       st_[i] = new SphericalTransformV3*[i/2+1];
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 | 299 |       ist_[i] = new ISphericalTransformV3*[i/2+1];
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 | 300 |       for (j=0; j<=i/2; j++) {
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 | 301 |           st_[i][j] = new SphericalTransformV3(i,i-2*j);
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 | 302 |           ist_[i][j] = new ISphericalTransformV3(i,i-2*j);
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 | 303 |         }
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 | 304 |     }
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 | 305 | }
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 | 306 | 
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 | 307 | /////////////////////////////////////////////////////////////////////////////
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 | 308 | 
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 | 309 | // Local Variables:
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 | 310 | // mode: c++
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 | 311 | // c-file-style: "CLJ"
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 | 312 | // End:
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