| 1 | //
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| 2 | // molrender.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 | #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/class/scexception.h>
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| 35 | #include <util/misc/formio.h>
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| 36 | #include <util/render/sphere.h>
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| 37 | #include <util/render/polygons.h>
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| 38 | #include <util/render/polylines.h>
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| 39 | #include <util/render/color.h>
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| 40 | #include <chemistry/molecule/molrender.h>
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| 41 | #include <math/scmat/vector3.h>
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| 42 | 
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| 43 | using namespace sc;
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| 44 | 
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| 45 | ////////////////////////////////////////////////////////////////
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| 46 | // RenderedMolecule
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| 47 | 
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| 48 | static ClassDesc RenderedMolecule_cd(
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| 49 |   typeid(RenderedMolecule),"RenderedMolecule",1,"public RenderedObject",
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| 50 |   0, 0, 0);
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| 51 | 
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| 52 | RenderedMolecule::RenderedMolecule(const Ref<KeyVal>& keyval):
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| 53 |   RenderedObject(keyval)
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| 54 | {
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| 55 |   mol_ << keyval->describedclassvalue("molecule");
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| 56 |   atominfo_ << keyval->describedclassvalue("atominfo");
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| 57 |   if (atominfo_.null()) {
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| 58 |       atominfo_ = new AtomInfo();
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| 59 |     }
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| 60 | 
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| 61 |   if (mol_.null()) {
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| 62 |       throw InputError("missing required input of type Molecule",
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| 63 |                        __FILE__, __LINE__, "molecule", 0,
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| 64 |                        class_desc());
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| 65 |     }
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| 66 | }
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| 67 | 
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| 68 | RenderedMolecule::~RenderedMolecule()
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| 69 | {
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| 70 | }
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| 71 | 
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| 72 | void
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| 73 | RenderedMolecule::render(const Ref<Render>& render)
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| 74 | {
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| 75 |   object_->render(render);
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| 76 | }
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| 77 | 
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| 78 | ////////////////////////////////////////////////////////////////
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| 79 | // RenderedBallMolecule
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| 80 | 
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| 81 | static ClassDesc RenderedBallMolecule_cd(
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| 82 |   typeid(RenderedBallMolecule),"RenderedBallMolecule",1,"public RenderedMolecule",
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| 83 |   0, create<RenderedBallMolecule>, 0);
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| 84 | 
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| 85 | RenderedBallMolecule::RenderedBallMolecule(const Ref<KeyVal>& keyval):
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| 86 |   RenderedMolecule(keyval)
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| 87 | {
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| 88 |   init();
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| 89 | }
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| 90 | 
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| 91 | RenderedBallMolecule::~RenderedBallMolecule()
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| 92 | {
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| 93 | }
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| 94 | 
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| 95 | void
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| 96 | RenderedBallMolecule::init()
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| 97 | {
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| 98 |   Ref<RenderedObjectSet> set = new RenderedObjectSet;
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| 99 | 
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| 100 |   for (int i=0; i<mol_->natom(); i++) {
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| 101 |       Ref<RenderedObject> atom = new RenderedSphere;
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| 102 | 
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| 103 |       int Z = mol_->Z(i);
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| 104 | 
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| 105 |       Ref<Material> material = new Material;
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| 106 |       Color color(atominfo_->red(Z),
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| 107 |                   atominfo_->green(Z),
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| 108 |                   atominfo_->blue(Z));
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| 109 |       material->diffuse().set(color);
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| 110 |       material->ambient().set(color);
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| 111 | 
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| 112 |       Ref<Transform> transform = new Transform;
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| 113 |       transform->scale(atominfo_->vdw_radius(Z));
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| 114 |       transform->translate(mol_->r(i,0), mol_->r(i,1), mol_->r(i,2));
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| 115 | 
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| 116 |       atom->material(material);
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| 117 |       atom->transform(transform);
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| 118 | 
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| 119 |       set->add(atom);
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| 120 |     }
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| 121 | 
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| 122 |   object_ = set.pointer();
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| 123 | }
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| 124 | 
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| 125 | ////////////////////////////////////////////////////////////////
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| 126 | // RenderedStickMolecule
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| 127 | 
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| 128 | static ClassDesc RenderedStickMolecule_cd(
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| 129 |   typeid(RenderedStickMolecule),"RenderedStickMolecule",1,"public RenderedMolecule",
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| 130 |   0, create<RenderedStickMolecule>, 0);
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| 131 | 
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| 132 | RenderedStickMolecule::RenderedStickMolecule(const Ref<KeyVal>& keyval):
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| 133 |   RenderedMolecule(keyval)
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| 134 | {
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| 135 |   use_color_ = keyval->booleanvalue("color");
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| 136 |   if (keyval->error() != KeyVal::OK) use_color_ = 1;
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| 137 |   init();
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| 138 | }
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| 139 | 
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| 140 | RenderedStickMolecule::~RenderedStickMolecule()
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| 141 | {
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| 142 | }
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| 143 | 
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| 144 | static int
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| 145 | bonding(const Ref<Molecule>& m, const Ref<AtomInfo>& a, int i, int j)
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| 146 | {
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| 147 |   SCVector3 ri(m->r(i));
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| 148 |   SCVector3 rj(m->r(j));
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| 149 |   double maxbonddist = 1.1*(m->atominfo()->atomic_radius(m->Z(i))
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| 150 |                             +m->atominfo()->atomic_radius(m->Z(j)));
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| 151 |   SCVector3 r(ri-rj);
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| 152 |   if (r.dot(r) <= maxbonddist*maxbonddist) return 1;
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| 153 |   return 0;
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| 154 | }
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| 155 | 
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| 156 | void
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| 157 | RenderedStickMolecule::init()
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| 158 | {
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| 159 |   int i,j;
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| 160 |   int nbonds;
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| 161 |   int natoms = mol_->natom();
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| 162 |   
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| 163 |   Ref<RenderedPolylines> o = new RenderedPolylines;
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| 164 | 
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| 165 |   // count the number of bonds
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| 166 |   nbonds = 0;
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| 167 |   for (i=0; i<natoms; i++) {
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| 168 |       for (j=0; j<i; j++) {
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| 169 |           if (bonding(mol_, atominfo_, i, j)) nbonds++;
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| 170 |         }
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| 171 |     }
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| 172 | 
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| 173 |   int nvertex = natoms;
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| 174 |   if (use_color_) nvertex += 2*nbonds;
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| 175 | 
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| 176 |   // initialize the polylines
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| 177 |   o->initialize(nvertex, nbonds, RenderedPolylines::Vertex);
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| 178 | 
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| 179 |   // put the atoms in the vertex list
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| 180 |   for (i=0; i<natoms; i++) {
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| 181 |       o->set_vertex(i,
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| 182 |                     mol_->r(i,0),
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| 183 |                     mol_->r(i,1),
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| 184 |                     mol_->r(i,2));
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| 185 |       if (use_color_) {
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| 186 |           int Z = mol_->Z(i);
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| 187 |           o->set_vertex_rgb(i,
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| 188 |                             atominfo_->red(Z),
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| 189 |                             atominfo_->green(Z),
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| 190 |                             atominfo_->blue(Z));
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| 191 |         }
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| 192 |       else {
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| 193 |           o->set_vertex_rgb(i, 0.0, 0.0, 0.0);
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| 194 |         }
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| 195 |     }
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| 196 | 
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| 197 |   // put the bonds in the line list
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| 198 |   nbonds = 0;
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| 199 |   int ibonds2 = natoms;
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| 200 |   for (i=0; i<natoms; i++) {
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| 201 |       SCVector3 ri(mol_->r(i));
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| 202 |       int Zi = mol_->Z(i);
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| 203 |       for (j=0; j<i; j++) {
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| 204 |           if (bonding(mol_, atominfo_, i, j)) {
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| 205 |               if (use_color_) {
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| 206 |                   SCVector3 rj(mol_->r(j));
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| 207 |                   int Zj = mol_->Z(j);
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| 208 |                   SCVector3 v = 0.5*(ri+rj);
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| 209 |                   o->set_vertex(ibonds2, v.x(), v.y(), v.z());
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| 210 |                   o->set_vertex_rgb(ibonds2,
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| 211 |                                     atominfo_->red(Zi),
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| 212 |                                     atominfo_->green(Zi),
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| 213 |                                     atominfo_->blue(Zi));
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| 214 |                   o->set_vertex(ibonds2+1, v.x(), v.y(), v.z());
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| 215 |                   o->set_vertex_rgb(ibonds2+1,
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| 216 |                                     atominfo_->red(Zj),
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| 217 |                                     atominfo_->green(Zj),
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| 218 |                                     atominfo_->blue(Zj));
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| 219 |                   o->set_polyline(nbonds, i, ibonds2, ibonds2+1, j);
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| 220 |                   ibonds2 += 2;
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| 221 |                 }
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| 222 |               else {
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| 223 |                   o->set_polyline(nbonds, i, j);
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| 224 |                 }
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| 225 |               nbonds++;
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| 226 |             }
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| 227 |         }
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| 228 |     }
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| 229 | 
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| 230 |   object_ = o.pointer();
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| 231 | }
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| 232 | 
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| 233 | ////////////////////////////////////////////////////////////////
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| 234 | // RenderedMolecularSurface
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| 235 | 
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| 236 | static ClassDesc RenderedMolecularSurface_cd(
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| 237 |   typeid(RenderedMolecularSurface),"RenderedMolecularSurface",1,"public RenderedMolecule",
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| 238 |   0, create<RenderedMolecularSurface>, 0);
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| 239 | 
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| 240 | RenderedMolecularSurface::RenderedMolecularSurface(const Ref<KeyVal>& keyval):
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| 241 |   RenderedMolecule(keyval)
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| 242 | {
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| 243 |   surf_ << keyval->describedclassvalue("surface");
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| 244 |   colorizer_ << keyval->describedclassvalue("colorizer");
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| 245 |   if (colorizer_.null())
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| 246 |       colorizer_ = new AtomProximityColorizer(mol_,atominfo_);
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| 247 |   init(0);
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| 248 | }
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| 249 | 
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| 250 | RenderedMolecularSurface::~RenderedMolecularSurface()
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| 251 | {
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| 252 | }
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| 253 | 
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| 254 | void
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| 255 | RenderedMolecularSurface::init()
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| 256 | {
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| 257 |   init(1);
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| 258 | }
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| 259 | 
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| 260 | void
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| 261 | RenderedMolecularSurface::init(int reinit_surf)
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| 262 | {
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| 263 |   int i, ij, j;
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| 264 |   if (reinit_surf || !surf_->inited()) surf_->init();
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| 265 |   int nvertex = surf_->nvertex();
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| 266 |   int ntriangle = surf_->ntriangle();
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| 267 |   int natom = mol_->natom();
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| 268 | 
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| 269 |   Ref<RenderedPolygons> o = new RenderedPolygons;
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| 270 | 
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| 271 |   o->initialize(nvertex, ntriangle, RenderedPolygons::Vertex);
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| 272 | 
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| 273 |   // extract the atomic positions and colors into an array for rapid access
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| 274 |   double *axyz = new double[3*natom];
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| 275 |   double *argb = new double[3*natom];
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| 276 |   double *arad = new double[natom];
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| 277 |   ij = 0;
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| 278 |   for (i=0; i<natom; i++) {
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| 279 |       int Z = mol_->Z(i);
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| 280 |       arad[i] = atominfo_->vdw_radius(Z);
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| 281 |       for (j=0; j<3; j++,ij++) {
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| 282 |           axyz[ij] = mol_->r(i,j);
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| 283 |           argb[ij] = atominfo_->rgb(Z, j);
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| 284 |         }
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| 285 |     }
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| 286 | 
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| 287 |   for (i=0; i<nvertex; i++) {
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| 288 |       const SCVector3& v = surf_->vertex(i)->point();
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| 289 |       double x = v[0];
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| 290 |       double y = v[1];
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| 291 |       double z = v[2];
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| 292 |       o->set_vertex(i, x, y, z);
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| 293 |     }
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| 294 |   colorizer_->colorize(o);
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| 295 | 
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| 296 |   delete[] axyz;
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| 297 |   delete[] argb;
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| 298 |   delete[] arad;
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| 299 | 
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| 300 |   for (i=0; i<ntriangle; i++) {
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| 301 |       o->set_face(i,
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| 302 |                   surf_->triangle_vertex(i,0),
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| 303 |                   surf_->triangle_vertex(i,1),
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| 304 |                   surf_->triangle_vertex(i,2));
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| 305 |     }
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| 306 | 
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| 307 |   object_ = o.pointer();
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| 308 | }
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| 309 | 
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| 310 | /////////////////////////////////////////////////////////////////////////////
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| 311 | // MoleculeColorizer
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| 312 | 
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| 313 | static ClassDesc MoleculeColorizer_cd(
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| 314 |   typeid(MoleculeColorizer),"MoleculeColorizer",1,"public DescribedClass",
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| 315 |   0, 0, 0);
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| 316 | 
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| 317 | MoleculeColorizer::MoleculeColorizer(const Ref<Molecule>&mol)
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| 318 | {
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| 319 |   mol_ = mol;
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| 320 | }
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| 321 | 
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| 322 | MoleculeColorizer::MoleculeColorizer(const Ref<KeyVal>&keyval)
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| 323 | {
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| 324 |   mol_ << keyval->describedclassvalue("molecule");
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| 325 | }
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| 326 | 
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| 327 | MoleculeColorizer::~MoleculeColorizer()
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| 328 | {
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| 329 | }
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| 330 | 
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| 331 | /////////////////////////////////////////////////////////////////////////////
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| 332 | // AtomProximityColorizer
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| 333 | 
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| 334 | static ClassDesc AtomProximityColorizer_cd(
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| 335 |   typeid(AtomProximityColorizer),"AtomProximityColorizer",1,"public MoleculeColorizer",
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| 336 |   0, create<AtomProximityColorizer>, 0);
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| 337 | 
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| 338 | AtomProximityColorizer::AtomProximityColorizer(const Ref<Molecule> &mol,
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| 339 |                                                const Ref<AtomInfo> &ai):
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| 340 |   MoleculeColorizer(mol)
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| 341 | {
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| 342 |   atominfo_ = ai;
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| 343 | }
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| 344 | 
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| 345 | AtomProximityColorizer::AtomProximityColorizer(const Ref<KeyVal>&keyval):
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| 346 |   MoleculeColorizer(keyval)
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| 347 | {
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| 348 |   atominfo_ << keyval->describedclassvalue("atominfo");
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| 349 |   if (atominfo_.null()) {
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| 350 |       atominfo_ = new AtomInfo();
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| 351 |     }
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| 352 | }
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| 353 | 
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| 354 | AtomProximityColorizer::~AtomProximityColorizer()
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| 355 | {
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| 356 | }
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| 357 | 
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| 358 | static void
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| 359 | compute_color(int n, double* axyz, double* argb, double* arad,
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| 360 |               double x, double y, double z, Color& c)
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| 361 | {
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| 362 |   int i, j;
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| 363 |   const int maxclosest = 10;
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| 364 |   int closest[maxclosest];
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| 365 |   double distance2[maxclosest]; // the distance squared - radius squared
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| 366 |   int nclosest;
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| 367 | 
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| 368 |   if (n == 0) {
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| 369 |       c.set_rgb(1.0, 1.0, 1.0);
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| 370 |       return;
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| 371 |     }
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| 372 | 
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| 373 |   // find the closest atoms
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| 374 |   nclosest = 0;
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| 375 |   for (i=0; i<n; i++) {
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| 376 |       SCVector3 r(axyz[0] - x, axyz[1] - y, axyz[2] - z);
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| 377 |       double tmpdist2 = r.dot(r) - arad[i]*arad[i];
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| 378 | //       if (tmpdist2 < 1.e-6) {
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| 379 | //           c.set_rgb(argb[3*i], argb[3*i+1], argb[3*i+2]);
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| 380 | //           return;
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| 381 | //         }
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| 382 |       if (tmpdist2 < 0.0) tmpdist2 = 0.0;
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| 383 |       for (j=nclosest-1; j>=0; j--) {
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| 384 |           if (distance2[j] <= tmpdist2) break;
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| 385 |           if (j+1 < maxclosest) {
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| 386 |               distance2[j+1] = distance2[j];
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| 387 |               closest[j+1] = closest[j];
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| 388 |             }
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| 389 |         }
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| 390 |       if (j+1 < maxclosest) {
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| 391 |           distance2[j+1] = tmpdist2;
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| 392 |           closest[j+1] = i;
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| 393 |           if (maxclosest > nclosest) nclosest++;
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| 394 |         }
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| 395 |       axyz += 3;
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| 396 |     }
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| 397 | 
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| 398 |   if (nclosest == 1) {
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| 399 |       c.set_rgb(argb[3*closest[0]],argb[3*closest[0]]+1,argb[3*closest[0]]+2);
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| 400 |       return;
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| 401 |     }
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| 402 | 
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| 403 |   // average the colors of the closest atoms
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| 404 |   for (i=0; i<nclosest; i++) distance2[i] = sqrt(distance2[i]);
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| 405 |   for (i=1; i<nclosest; i++) distance2[i] -= distance2[0];
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| 406 |   distance2[0] = 0.0;
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| 407 |   for (i=0; i<nclosest; i++) distance2[i] = 2.0*exp(-distance2[i]);
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| 408 |   double sum = 0.0;
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| 409 |   for (i=0; i<nclosest; i++) sum += distance2[i];
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| 410 |   sum = 1.0/sum;
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| 411 |   for (i=0; i<nclosest; i++) distance2[i] *= sum;
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| 412 | 
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| 413 |   double rgb[3] = {0.0, 0.0, 0.0};
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| 414 |   for (i=0; i<nclosest; i++) {
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| 415 |       for (j=0; j<3; j++) {
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| 416 |           rgb[j] += distance2[i]*argb[3*closest[i] + j];
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| 417 |         }
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| 418 |     }
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| 419 |   c.set_rgb(rgb[0], rgb[1], rgb[2]);
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| 420 | }
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| 421 | 
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| 422 | void
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| 423 | AtomProximityColorizer::colorize(const Ref<RenderedPolygons> &poly)
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| 424 | {
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| 425 |   int natom = mol_->natom();
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| 426 |   int nvertex = poly->nvertex();
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| 427 | 
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| 428 |   int i,j,ij;
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| 429 |   // extract the atomic positions and colors into an array for rapid access
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| 430 |   double *axyz = new double[3*natom];
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| 431 |   double *argb = new double[3*natom];
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| 432 |   double *arad = new double[natom];
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| 433 |   ij = 0;
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| 434 |   for (i=0; i<natom; i++) {
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| 435 |       int Z = mol_->Z(i);
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| 436 |       arad[i] = atominfo_->vdw_radius(Z);
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| 437 |       for (j=0; j<3; j++,ij++) {
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| 438 |           axyz[ij] = mol_->r(i,j);
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| 439 |           argb[ij] = atominfo_->rgb(Z, j);
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| 440 |         }
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| 441 |     }
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| 442 | 
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| 443 |   for (i=0; i<nvertex; i++) {
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| 444 |       const double *v = poly->vertex(i);
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| 445 |       double x = v[0];
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| 446 |       double y = v[1];
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| 447 |       double z = v[2];
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| 448 |       Color c;
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| 449 |       compute_color(natom, axyz, argb, arad, x, y, z, c);
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| 450 |       poly->set_vertex_color(i, c);
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| 451 |     }
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| 452 | 
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| 453 |   delete[] axyz;
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| 454 |   delete[] argb;
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| 455 |   delete[] arad;
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| 456 | }
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| 457 | 
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| 458 | /////////////////////////////////////////////////////////////////////////////
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| 459 | 
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| 460 | // Local Variables:
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| 461 | // mode: c++
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| 462 | // c-file-style: "CLJ"
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| 463 | // End:
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