| [0b990d] | 1 | //
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 | 2 | // shape.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 <stdio.h>
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 | 33 | #include <util/misc/math.h>
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 | 34 | 
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 | 35 | #include <util/misc/formio.h>
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 | 36 | #include <util/keyval/keyval.h>
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 | 37 | #include <math/isosurf/shape.h>
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 | 38 | 
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 | 39 | using namespace std;
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 | 40 | using namespace sc;
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 | 41 | 
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 | 42 | static const double shape_infinity = 1.0e23;
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 | 43 | 
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 | 44 | // given a vector X find which of the points in the vector of
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 | 45 | // vectors, A, is closest to it and return the distance
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 | 46 | static double
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 | 47 | closest_distance(SCVector3& X,SCVector3*A,int n,SCVector3*grad)
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 | 48 | {
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 | 49 |   SCVector3 T = X-A[0];
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 | 50 |   double min = T.dot(T);
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 | 51 |   int imin = 0;
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 | 52 |   for (int i=1; i<n; i++) {
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 | 53 |       T = X-A[i];
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 | 54 |       double tmp = T.dot(T);
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 | 55 |       if (tmp < min) {min = tmp; imin = i;}
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 | 56 |     }
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 | 57 |   if (grad) {
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 | 58 |       T = X - A[imin];
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 | 59 |       T.normalize();
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 | 60 |       *grad = T;
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 | 61 |     }
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 | 62 |   return sqrt(min);
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 | 63 | }
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 | 64 | 
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 | 65 | //////////////////////////////////////////////////////////////////////
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 | 66 | // Shape
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 | 67 | 
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 | 68 | static ClassDesc Shape_cd(
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 | 69 |   typeid(Shape),"Shape",1,"public Volume",
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 | 70 |   0, 0, 0);
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 | 71 | 
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 | 72 | Shape::Shape():
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 | 73 |   Volume()
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 | 74 | {
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 | 75 | }
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 | 76 | 
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 | 77 | Shape::Shape(const Ref<KeyVal>& keyval):
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 | 78 |   Volume(keyval)
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 | 79 | {
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 | 80 | }
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 | 81 | 
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 | 82 | Shape::~Shape()
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 | 83 | {
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 | 84 | }
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 | 85 | 
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 | 86 | void
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 | 87 | Shape::compute()
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 | 88 | {
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 | 89 |   SCVector3 r;
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 | 90 |   get_x(r);
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 | 91 |   if (gradient_needed()) {
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 | 92 |       if (!gradient_implemented()) {
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 | 93 |           ExEnv::errn() << "Shape::compute: gradient not implemented" << endl;
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 | 94 |           abort();
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 | 95 |         }
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 | 96 |       SCVector3 v;
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 | 97 |       set_value(distance_to_surface(r,&v));
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 | 98 |       set_actual_value_accuracy(desired_value_accuracy());
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 | 99 |       set_gradient(v);
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 | 100 |       set_actual_gradient_accuracy(desired_gradient_accuracy());
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 | 101 |     }
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 | 102 |   else if (value_needed()) {
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 | 103 |       set_value(distance_to_surface(r));
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 | 104 |       set_actual_value_accuracy(desired_value_accuracy());
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 | 105 |     }
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 | 106 |   if (hessian_needed()) {
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 | 107 |       ExEnv::errn() << "Shape::compute(): can't do hessian yet" << endl;
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 | 108 |       abort();
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 | 109 |     }
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 | 110 | }
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 | 111 | 
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 | 112 | int
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 | 113 | Shape::is_outside(const SCVector3&r) const
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 | 114 | {
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 | 115 |   if (distance_to_surface(r)>0.0) return 1;
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 | 116 |   return 0;
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 | 117 | }
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 | 118 | 
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 | 119 | // Shape overrides volume's interpolate so it always gets points on
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 | 120 | // the outside of the shape are always returned.
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 | 121 | 
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 | 122 | // interpolate using the bisection algorithm
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 | 123 | void
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 | 124 | Shape::interpolate(const SCVector3& A,
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 | 125 |                    const SCVector3& B,
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 | 126 |                    double val,
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 | 127 |                    SCVector3& result)
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 | 128 | {
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 | 129 |   if (val < 0.0) {
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 | 130 |       failure("Shape::interpolate(): val is < 0.0");
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 | 131 |     }
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 | 132 | 
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 | 133 |   set_x(A);
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 | 134 |   double value0 = value() - val;
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 | 135 | 
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 | 136 |   set_x(B);
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 | 137 |   double value1 = value() - val;
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 | 138 | 
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 | 139 |   if (value0*value1 > 0.0) {
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 | 140 |       failure("Shape::interpolate(): values at endpoints don't bracket val");
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 | 141 |     }
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 | 142 |   else if (value0 == 0.0) {
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 | 143 |       result = A;
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 | 144 |       return;
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 | 145 |     }
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 | 146 |   else if (value1 == 0.0) {
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 | 147 |       result = B;
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 | 148 |       return;
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 | 149 |     }
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 | 150 | 
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 | 151 |   SCVector3 BA = B - A;
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 | 152 | 
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 | 153 |   double length = BA.norm();
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 | 154 |   int niter = (int) (log(length/interpolation_accuracy())/M_LN2);
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 | 155 | 
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 | 156 |   double f0 = 0.0;
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 | 157 |   double f1 = 1.0;
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 | 158 |   double fnext = 0.5;
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 | 159 | 
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 | 160 |   SCVector3 X = A + fnext*BA;
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 | 161 |   set_x(X);
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 | 162 |   double valuenext = value() - val;
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 | 163 | 
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 | 164 |   do {
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 | 165 |       for (int i=0; i<niter; i++) {
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 | 166 |           if (valuenext*value0 <= 0.0) {
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 | 167 |               value1 = valuenext;
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 | 168 |               f1 = fnext;
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 | 169 |               fnext = (f0 + fnext)*0.5;
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 | 170 |             }
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 | 171 |           else {
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 | 172 |               value0 = valuenext;
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 | 173 |               f0 = fnext;
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 | 174 |               fnext = (fnext + f1)*0.5;
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 | 175 |             }
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 | 176 |           X = A + fnext*BA;
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 | 177 |           set_x(X);
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 | 178 |           valuenext = value() - val;
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 | 179 |         }
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 | 180 |       niter = 1;
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 | 181 |     } while (valuenext < 0.0);
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 | 182 | 
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 | 183 |   result = X;
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 | 184 | }
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 | 185 | 
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 | 186 | int
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 | 187 | Shape::value_implemented() const
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 | 188 | {
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 | 189 |   return 1;
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 | 190 | }
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 | 191 | 
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 | 192 | //////////////////////////////////////////////////////////////////////
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 | 193 | // SphereShape
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 | 194 | 
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 | 195 | static ClassDesc SphereShape_cd(
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 | 196 |   typeid(SphereShape),"SphereShape",1,"public Shape",
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 | 197 |   0, create<SphereShape>, 0);
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 | 198 | 
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 | 199 | SphereShape::SphereShape(const SCVector3&o,double r):
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 | 200 |   _origin(o),
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 | 201 |   _radius(r)
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 | 202 | {
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 | 203 | }
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 | 204 | 
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 | 205 | SphereShape::SphereShape(const SphereShape&s):
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 | 206 |   _origin(s._origin),
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 | 207 |   _radius(s._radius)
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 | 208 | {
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 | 209 | }
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 | 210 | 
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 | 211 | SphereShape::SphereShape(const Ref<KeyVal>& keyval):
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 | 212 |   _origin(new PrefixKeyVal(keyval,"origin")),
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 | 213 |   _radius(keyval->doublevalue("radius"))
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 | 214 | {
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 | 215 | }
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 | 216 | 
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 | 217 | SphereShape::~SphereShape()
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 | 218 | {
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 | 219 | }
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 | 220 | 
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 | 221 | double
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 | 222 | SphereShape::distance_to_surface(const SCVector3&p,SCVector3*grad) const
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 | 223 | {
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 | 224 |   int i;
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 | 225 |   double r2 = 0.0;
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 | 226 |   for (i=0; i<3; i++) {
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 | 227 |       double tmp = p[i] - _origin[i];
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 | 228 |       r2 += tmp*tmp;
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 | 229 |     }
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 | 230 |   double r = sqrt(r2);
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 | 231 |   double d = r - _radius;
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 | 232 |   if (grad) {
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 | 233 |       SCVector3 pv(p);
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 | 234 |       SCVector3 o(_origin);
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 | 235 |       SCVector3 unit = pv - o;
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 | 236 |       unit.normalize();
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 | 237 |       for (i=0; i<3; i++) grad->elem(i) = unit[i];
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 | 238 |     }
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 | 239 |   return d;
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 | 240 | }
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 | 241 | 
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 | 242 | void SphereShape::print(ostream&o) const
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 | 243 | {
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 | 244 |   o << indent
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 | 245 |     << scprintf("SphereShape: r = %8.4f o = (%8.4f %8.4f %8.4f)",
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 | 246 |                 radius(),origin()[0],origin()[1],origin()[2])
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 | 247 |     << endl;
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 | 248 | }
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 | 249 | 
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 | 250 | void
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 | 251 | SphereShape::boundingbox(double valuemin, double valuemax,
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 | 252 |                          SCVector3& p1,
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 | 253 |                          SCVector3& p2)
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 | 254 | {
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 | 255 |   if (valuemax < 0.0) valuemax = 0.0;
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 | 256 | 
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 | 257 |   int i;
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 | 258 |   for (i=0; i<3; i++) {
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 | 259 |       p1[i] = _origin[i] - _radius - valuemax;
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 | 260 |       p2[i] = _origin[i] + _radius + valuemax;
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 | 261 |     }
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 | 262 | }
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 | 263 | 
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 | 264 | int
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 | 265 | SphereShape::gradient_implemented() const
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 | 266 | {
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 | 267 |   return 1;
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 | 268 | }
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 | 269 | 
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 | 270 | ////////////////////////////////////////////////////////////////////////
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 | 271 | // UncappedTorusHoleShape
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 | 272 | 
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 | 273 | static ClassDesc UncappedTorusHoleShape_cd(
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 | 274 |   typeid(UncappedTorusHoleShape),"UncappedTorusHoleShape",1,"public Shape",
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 | 275 |   0, 0, 0);
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 | 276 | 
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 | 277 | UncappedTorusHoleShape::UncappedTorusHoleShape(double r,
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 | 278 |                                const SphereShape& s1,
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 | 279 |                                const SphereShape& s2):
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 | 280 | _s1(s1),
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 | 281 | _s2(s2),
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 | 282 | _r(r)
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 | 283 | {
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 | 284 | }
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 | 285 | 
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 | 286 | UncappedTorusHoleShape*
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 | 287 | UncappedTorusHoleShape::newUncappedTorusHoleShape(double r,
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 | 288 |                                                   const SphereShape&s1,
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 | 289 |                                                   const SphereShape&s2)
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 | 290 | {
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 | 291 |   // if the probe sphere fits between the two spheres, then there
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 | 292 |   // is no need to include this shape
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 | 293 |   SCVector3 A(s1.origin());
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 | 294 |   SCVector3 B(s2.origin());
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 | 295 |   SCVector3 BA = B - A;
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 | 296 |   if (2.0*r <  BA.norm() - s1.radius() - s2.radius()) return 0;
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 | 297 | 
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 | 298 |   // check to see if the surface is reentrant
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 | 299 |   double rrs1 = r+s1.radius();
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 | 300 |   double rrs2 = r+s2.radius();
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 | 301 |   SCVector3 R12 = ((SCVector3)s1.origin()) - ((SCVector3)s2.origin());
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 | 302 |   double r12 = sqrt(R12.dot(R12));
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 | 303 |   if (sqrt(rrs1*rrs1-r*r) + sqrt(rrs2*rrs2-r*r) < r12)
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 | 304 |     return new ReentrantUncappedTorusHoleShape(r,s1,s2);
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 | 305 | 
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 | 306 |   // otherwise create an ordinary torus hole
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 | 307 |   return new NonreentrantUncappedTorusHoleShape(r,s1,s2);
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 | 308 | }
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 | 309 | 
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 | 310 | // Given a node, finds a sphere in the plane of n and the centers
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 | 311 | // of _s1 and _s2 that touches the UncappedTorusHole.  There are two
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 | 312 | // candidates, the one closest to n is chosen.
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 | 313 | void
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 | 314 | UncappedTorusHoleShape::in_plane_sphere(
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 | 315 |     const SCVector3& n,
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 | 316 |     SCVector3& P) const
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 | 317 | {
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 | 318 |   // the center of the sphere is given by the vector equation
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 | 319 |   // P = A + a R(AB) + b U(perp),
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 | 320 |   // where
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 | 321 |   // A is the center of _s1
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 | 322 |   // B is the center of _s2
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 | 323 |   // R(AB) is the vector from A to B, R(AB) = B - A
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 | 324 |   // U(perp) is a unit vect perp to R(AB) and lies in the plane of n, A, and B
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 | 325 |   // The unknown scalars, a and b are given by solving the following
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 | 326 |   // equations:
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 | 327 |   // | P - A | = r(A) + _r, and
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 | 328 |   // | P - B | = r(B) + _r,
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 | 329 |   // which give
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 | 330 |   // | a R(AB) + b U(perp) | = r(A) + _r, and
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 | 331 |   // | (a-1) R(AB) + b U(perp) | = r(B) + _r.
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 | 332 |   // These further simplify to
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 | 333 |   // a^2 r(AB)^2 + b^2 = (r(A)+_r)^2, and
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 | 334 |   // (a-1)^2 r(AB)^2 + b^2 = (r(B)+_r)^2.
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 | 335 |   // Thus,
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 | 336 |   // a = (((r(A)+_r)^2 - (r(B)+_r)^2 )/(2 r(AB)^2)) + 1/2
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 | 337 |   // b^2 = (r(A)+r)^2 - a^2 r(AB)^2
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 | 338 | 
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 | 339 |   SCVector3 A = _s1.origin();
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 | 340 |   SCVector3 B = _s2.origin();
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 | 341 |   SCVector3 N = n;
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 | 342 |   SCVector3 R_AB = B - A;
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 | 343 |   SCVector3 R_AN = N - A;
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 | 344 | 
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 | 345 |   // vector projection of R_AN onto R_AB
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 | 346 |   SCVector3 P_AN_AB = R_AB * (R_AN.dot(R_AB)/R_AB.dot(R_AB));
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 | 347 |   // the perpendicular vector
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 | 348 |   SCVector3 U_perp = R_AN - P_AN_AB;
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 | 349 | 
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 | 350 |   // if |U| is tiny, then any vector perp to AB will do
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 | 351 |   double u = U_perp.dot(U_perp);
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 | 352 |   if (u<1.0e-23) {
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 | 353 |       SCVector3 vtry = R_AB;
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 | 354 |       vtry[0] += 1.0;
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 | 355 |       vtry = vtry - R_AB * (vtry.dot(R_AB)/R_AB.dot(R_AB));
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 | 356 |       if (vtry.dot(vtry) < 1.0e-23) {
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 | 357 |           vtry = R_AB;
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 | 358 |           vtry[1] += 1.0;
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 | 359 |           vtry = vtry - R_AB * (vtry.dot(R_AB)/R_AB.dot(R_AB));
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 | 360 |         }
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 | 361 |       U_perp = vtry;
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 | 362 |     }
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 | 363 | 
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 | 364 |   U_perp.normalize();
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 | 365 |   //ExEnv::outn() << "A: "; A.print();
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 | 366 |   //ExEnv::outn() << "U_perp: "; U_perp.print();
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 | 367 |   //ExEnv::outn() << "R_AB: "; R_AB.print();
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 | 368 | 
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 | 369 |   double r_AB = sqrt(R_AB.dot(R_AB));
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 | 370 |   double r_A = _s1.radius();
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 | 371 |   double r_B = _s2.radius();
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 | 372 | 
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 | 373 |   double r_Ar = r_A + _r;
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 | 374 |   double r_Br = r_B + _r;
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 | 375 |   double a = ((r_Ar*r_Ar - r_Br*r_Br)/(2.0*r_AB*r_AB)) + 0.5;
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 | 376 |   double b = sqrt(r_Ar*r_Ar - a*a*r_AB*r_AB);
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 | 377 | 
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 | 378 |   //ExEnv::outn() << scprintf("r_Ar = %f, r_AB = %f\n",r_Ar,r_AB);
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 | 379 |   //ExEnv::outn() << scprintf("a = %f, b = %f\n",a,b);
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 | 380 | 
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 | 381 |   P = A + a * R_AB + b * U_perp;
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 | 382 |   //ExEnv::outn() << "a*R_AB: "; (a*R_AB).print();
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 | 383 |   //ExEnv::outn() << "b*U_perp: "; (b*U_perp).print();
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 | 384 | }
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 | 385 | 
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 | 386 | void
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 | 387 | UncappedTorusHoleShape::print(ostream&o) const
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 | 388 | {
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 | 389 |   o << indent << "UncappedTorusHoleShape:" << endl;
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 | 390 |   o << incindent;
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 | 391 |   o << indent << "r = " << _r << endl;
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 | 392 |   o << indent << "s1 = ";
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 | 393 |   o << incindent << skipnextindent;
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 | 394 |   _s1.print(o);
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 | 395 |   o << decindent;
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 | 396 |   o << indent << "s2 = ";
 | 
|---|
 | 397 |   o << incindent << skipnextindent;
 | 
|---|
 | 398 |   _s2.print(o);
 | 
|---|
 | 399 |   o << decindent;
 | 
|---|
 | 400 |   o << decindent;
 | 
|---|
 | 401 | }
 | 
|---|
 | 402 | 
 | 
|---|
 | 403 | void
 | 
|---|
 | 404 | UncappedTorusHoleShape::boundingbox(double valuemin, double valuemax,
 | 
|---|
 | 405 |                                     SCVector3& p1,
 | 
|---|
 | 406 |                                     SCVector3& p2)
 | 
|---|
 | 407 | {
 | 
|---|
 | 408 |   SCVector3 p11;
 | 
|---|
 | 409 |   SCVector3 p12;
 | 
|---|
 | 410 |   SCVector3 p21;
 | 
|---|
 | 411 |   SCVector3 p22;
 | 
|---|
 | 412 | 
 | 
|---|
 | 413 |   _s1.boundingbox(valuemin,valuemax,p11,p12);
 | 
|---|
 | 414 |   _s2.boundingbox(valuemin,valuemax,p21,p22);
 | 
|---|
 | 415 | 
 | 
|---|
 | 416 |   int i;
 | 
|---|
 | 417 |   for (i=0; i<3; i++) {
 | 
|---|
 | 418 |       if (p11[i] < p21[i]) p1[i] = p11[i];
 | 
|---|
 | 419 |       else p1[i] = p21[i];
 | 
|---|
 | 420 |       if (p12[i] > p22[i]) p2[i] = p12[i];
 | 
|---|
 | 421 |       else p2[i] = p22[i];
 | 
|---|
 | 422 |     }
 | 
|---|
 | 423 | }
 | 
|---|
 | 424 | 
 | 
|---|
 | 425 | int
 | 
|---|
 | 426 | UncappedTorusHoleShape::gradient_implemented() const
 | 
|---|
 | 427 | {
 | 
|---|
 | 428 |   return 1;
 | 
|---|
 | 429 | }
 | 
|---|
 | 430 | 
 | 
|---|
 | 431 | /////////////////////////////////////////////////////////////////////
 | 
|---|
 | 432 | // is in triangle
 | 
|---|
 | 433 | 
 | 
|---|
 | 434 | static int
 | 
|---|
 | 435 | is_in_unbounded_triangle(const SCVector3&XP,const SCVector3&AP,const SCVector3&BP)
 | 
|---|
 | 436 | {
 | 
|---|
 | 437 |   SCVector3 axis = BP.cross(AP);
 | 
|---|
 | 438 | 
 | 
|---|
 | 439 |   SCVector3 BP_perp = BP; BP_perp.rotate(M_PI_2,axis);
 | 
|---|
 | 440 |   double u = BP_perp.dot(XP)/BP_perp.dot(AP);
 | 
|---|
 | 441 |   if (u<0.0) return 0;
 | 
|---|
 | 442 | 
 | 
|---|
 | 443 |   SCVector3 AP_perp = AP; AP_perp.rotate(M_PI_2,axis);
 | 
|---|
 | 444 |   double w = AP_perp.dot(XP)/AP_perp.dot(BP);
 | 
|---|
 | 445 |   if (w<0.0) return 0;
 | 
|---|
 | 446 | 
 | 
|---|
 | 447 |   return 1;
 | 
|---|
 | 448 | }
 | 
|---|
 | 449 | 
 | 
|---|
 | 450 | /////////////////////////////////////////////////////////////////////
 | 
|---|
 | 451 | // ReentrantUncappedTorusHoleShape
 | 
|---|
 | 452 | 
 | 
|---|
 | 453 | static ClassDesc ReentrantUncappedTorusHoleShape_cd(
 | 
|---|
 | 454 |   typeid(ReentrantUncappedTorusHoleShape),"ReentrantUncappedTorusHoleShape",1,"public UncappedTorusHoleShape",
 | 
|---|
 | 455 |   0, 0, 0);
 | 
|---|
 | 456 | 
 | 
|---|
 | 457 | ReentrantUncappedTorusHoleShape::ReentrantUncappedTorusHoleShape(double r,
 | 
|---|
 | 458 |                                                  const SphereShape& s1,
 | 
|---|
 | 459 |                                                  const SphereShape& s2):
 | 
|---|
 | 460 |   UncappedTorusHoleShape(r,s1,s2)
 | 
|---|
 | 461 | {
 | 
|---|
 | 462 |   rAP = r + s1.radius();
 | 
|---|
 | 463 |   rBP = r + s2.radius();
 | 
|---|
 | 464 |   BA = B() - A();
 | 
|---|
 | 465 | 
 | 
|---|
 | 466 |   // Find the points at the ends of the two cone-like objects, I[0] and I[1].
 | 
|---|
 | 467 |   // they are given by:
 | 
|---|
 | 468 |   //   I = z BA, where BA = B-A and I is actually IA = I - A
 | 
|---|
 | 469 |   //   r^2 = PI.PI, where PI = PA-I and P is the center of a probe sphere
 | 
|---|
 | 470 |   // this gives
 | 
|---|
 | 471 |   //  z^2 BA.BA - 2z PA.BA + PA.PA - r^2 = 0
 | 
|---|
 | 472 | 
 | 
|---|
 | 473 |   SCVector3 arbitrary; 
 | 
|---|
 | 474 |   arbitrary[0] = arbitrary[1] = arbitrary[2] = 0.0;
 | 
|---|
 | 475 |   SCVector3 P;
 | 
|---|
 | 476 |   in_plane_sphere(arbitrary,P);
 | 
|---|
 | 477 |   SCVector3 PA = P - A();
 | 
|---|
 | 478 | 
 | 
|---|
 | 479 |   double a = BA.dot(BA);
 | 
|---|
 | 480 |   double minus_b = 2.0 * PA.dot(BA);
 | 
|---|
 | 481 |   double c = PA.dot(PA) - r*r;
 | 
|---|
 | 482 |   double b2m4ac = minus_b*minus_b - 4*a*c;
 | 
|---|
 | 483 |   double sb2m4ac;
 | 
|---|
 | 484 |   if (b2m4ac >= 0.0) {
 | 
|---|
 | 485 |       sb2m4ac = sqrt(b2m4ac);
 | 
|---|
 | 486 |     }
 | 
|---|
 | 487 |   else if (b2m4ac > -1.0e-10) {
 | 
|---|
 | 488 |       sb2m4ac = 0.0;
 | 
|---|
 | 489 |     }
 | 
|---|
 | 490 |   else {
 | 
|---|
 | 491 |       ExEnv::errn() << "ReentrantUncappedTorusHoleShape:: imaginary point" << endl;
 | 
|---|
 | 492 |       abort();
 | 
|---|
 | 493 |     }
 | 
|---|
 | 494 |   double zA = (minus_b - sb2m4ac)/(2.0*a);
 | 
|---|
 | 495 |   double zB = (minus_b + sb2m4ac)/(2.0*a);
 | 
|---|
 | 496 |   I[0] = BA * zA + A();
 | 
|---|
 | 497 |   I[1] = BA * zB + A();
 | 
|---|
 | 498 | }
 | 
|---|
 | 499 | ReentrantUncappedTorusHoleShape::~ReentrantUncappedTorusHoleShape()
 | 
|---|
 | 500 | {
 | 
|---|
 | 501 | }
 | 
|---|
 | 502 | int
 | 
|---|
 | 503 | ReentrantUncappedTorusHoleShape::
 | 
|---|
 | 504 |   is_outside(const SCVector3&X) const
 | 
|---|
 | 505 | {
 | 
|---|
 | 506 |   SCVector3 Xv(X);
 | 
|---|
 | 507 | 
 | 
|---|
 | 508 |   SCVector3 P;
 | 
|---|
 | 509 |   in_plane_sphere(X,P);
 | 
|---|
 | 510 |   SCVector3 XP = Xv - P;
 | 
|---|
 | 511 |   double rXP = XP.norm();
 | 
|---|
 | 512 |   if (rXP > rAP || rXP > rBP) return 1;
 | 
|---|
 | 513 | 
 | 
|---|
 | 514 |   SCVector3 AP = A() - P;
 | 
|---|
 | 515 |   SCVector3 BP = B() - P;
 | 
|---|
 | 516 | 
 | 
|---|
 | 517 |   if (!is_in_unbounded_triangle(XP,AP,BP)) return 1;
 | 
|---|
 | 518 | 
 | 
|---|
 | 519 |   if (rXP < radius()) {
 | 
|---|
 | 520 |       return 1;
 | 
|---|
 | 521 |     }
 | 
|---|
 | 522 | 
 | 
|---|
 | 523 |   return 0;
 | 
|---|
 | 524 | }
 | 
|---|
 | 525 | double
 | 
|---|
 | 526 | ReentrantUncappedTorusHoleShape::
 | 
|---|
 | 527 |   distance_to_surface(const SCVector3&X,SCVector3*grad) const
 | 
|---|
 | 528 | {
 | 
|---|
 | 529 |   SCVector3 Xv(X);
 | 
|---|
 | 530 | 
 | 
|---|
 | 531 |   SCVector3 P;
 | 
|---|
 | 532 |   in_plane_sphere(X,P);
 | 
|---|
 | 533 |   SCVector3 XP = Xv - P;
 | 
|---|
 | 534 |   double rXP = XP.norm();
 | 
|---|
 | 535 |   if (rXP > rAP || rXP > rBP) return shape_infinity;
 | 
|---|
 | 536 | 
 | 
|---|
 | 537 |   SCVector3 AP = A() - P;
 | 
|---|
 | 538 |   SCVector3 BP = B() - P;
 | 
|---|
 | 539 | 
 | 
|---|
 | 540 |   if (!is_in_unbounded_triangle(XP,AP,BP)) return shape_infinity;
 | 
|---|
 | 541 | 
 | 
|---|
 | 542 |   SCVector3 I1P = I[0] - P;
 | 
|---|
 | 543 |   SCVector3 I2P = I[1] - P;
 | 
|---|
 | 544 | 
 | 
|---|
 | 545 |   if (!is_in_unbounded_triangle(XP,I1P,I2P)) {
 | 
|---|
 | 546 |       if (rXP < radius()) {
 | 
|---|
 | 547 |           if (grad) {
 | 
|---|
 | 548 |               SCVector3 unit(XP);
 | 
|---|
 | 549 |               unit.normalize();
 | 
|---|
 | 550 |               *grad = unit;
 | 
|---|
 | 551 |             }
 | 
|---|
 | 552 |           return radius() - rXP;
 | 
|---|
 | 553 |         }
 | 
|---|
 | 554 |       else return -1.0;
 | 
|---|
 | 555 |     }
 | 
|---|
 | 556 | 
 | 
|---|
 | 557 |   return closest_distance(Xv,(SCVector3*)I,2,grad);
 | 
|---|
 | 558 | }
 | 
|---|
 | 559 | 
 | 
|---|
 | 560 | int
 | 
|---|
 | 561 | ReentrantUncappedTorusHoleShape::gradient_implemented() const
 | 
|---|
 | 562 | {
 | 
|---|
 | 563 |   return 1;
 | 
|---|
 | 564 | }
 | 
|---|
 | 565 | 
 | 
|---|
 | 566 | /////////////////////////////////////////////////////////////////////
 | 
|---|
 | 567 | // NonreentrantUncappedTorusHoleShape
 | 
|---|
 | 568 | 
 | 
|---|
 | 569 | static ClassDesc NonreentrantUncappedTorusHoleShape_cd(
 | 
|---|
 | 570 |   typeid(NonreentrantUncappedTorusHoleShape),"NonreentrantUncappedTorusHoleShape",1,"public UncappedTorusHoleShape",
 | 
|---|
 | 571 |   0, 0, 0);
 | 
|---|
 | 572 | 
 | 
|---|
 | 573 | NonreentrantUncappedTorusHoleShape::
 | 
|---|
 | 574 |   NonreentrantUncappedTorusHoleShape(double r,
 | 
|---|
 | 575 |                                      const SphereShape& s1,
 | 
|---|
 | 576 |                                      const SphereShape& s2):
 | 
|---|
 | 577 |   UncappedTorusHoleShape(r,s1,s2)
 | 
|---|
 | 578 | {
 | 
|---|
 | 579 |   rAP = r + s1.radius();
 | 
|---|
 | 580 |   rBP = r + s2.radius();
 | 
|---|
 | 581 |   BA = B() - A();
 | 
|---|
 | 582 | }
 | 
|---|
 | 583 | NonreentrantUncappedTorusHoleShape::~NonreentrantUncappedTorusHoleShape()
 | 
|---|
 | 584 | {
 | 
|---|
 | 585 | }
 | 
|---|
 | 586 | double NonreentrantUncappedTorusHoleShape::
 | 
|---|
 | 587 |   distance_to_surface(const SCVector3&X,SCVector3* grad) const
 | 
|---|
 | 588 | {
 | 
|---|
 | 589 |   SCVector3 Xv(X);
 | 
|---|
 | 590 | 
 | 
|---|
 | 591 |   SCVector3 P;
 | 
|---|
 | 592 |   in_plane_sphere(X,P);
 | 
|---|
 | 593 |   SCVector3 PX = P - Xv;
 | 
|---|
 | 594 |   double rPX = PX.norm();
 | 
|---|
 | 595 |   if (rPX > rAP || rPX > rBP) return shape_infinity;
 | 
|---|
 | 596 | 
 | 
|---|
 | 597 |   SCVector3 PA = P - A();
 | 
|---|
 | 598 |   SCVector3 XA = Xv - A();
 | 
|---|
 | 599 | 
 | 
|---|
 | 600 |   SCVector3 axis = BA.cross(PA);
 | 
|---|
 | 601 | 
 | 
|---|
 | 602 |   SCVector3 BA_perp = BA; BA_perp.rotate(M_PI_2,axis);
 | 
|---|
 | 603 |   double u = BA_perp.dot(XA)/BA_perp.dot(PA);
 | 
|---|
 | 604 |   if (u<0.0 || u>1.0) return shape_infinity;
 | 
|---|
 | 605 | 
 | 
|---|
 | 606 |   SCVector3 PA_perp = PA; PA_perp.rotate(M_PI_2,axis);
 | 
|---|
 | 607 |   double w = PA_perp.dot(XA)/PA_perp.dot(BA);
 | 
|---|
 | 608 |   if (w<0.0 || w>1.0) return shape_infinity;
 | 
|---|
 | 609 | 
 | 
|---|
 | 610 |   double uw = u+w;
 | 
|---|
 | 611 |   if (uw<0.0 || uw>1.0) return shape_infinity;
 | 
|---|
 | 612 | 
 | 
|---|
 | 613 |   if (rPX < radius()) {
 | 
|---|
 | 614 |       if (grad) {
 | 
|---|
 | 615 |           SCVector3 unit(PX);
 | 
|---|
 | 616 |           unit.normalize();
 | 
|---|
 | 617 |           *grad = unit;
 | 
|---|
 | 618 |         }
 | 
|---|
 | 619 |       return radius() - rPX;
 | 
|---|
 | 620 |     }
 | 
|---|
 | 621 | 
 | 
|---|
 | 622 |   return -1;
 | 
|---|
 | 623 | }
 | 
|---|
 | 624 | 
 | 
|---|
 | 625 | int
 | 
|---|
 | 626 | NonreentrantUncappedTorusHoleShape::gradient_implemented() const
 | 
|---|
 | 627 | {
 | 
|---|
 | 628 |   return 1;
 | 
|---|
 | 629 | }
 | 
|---|
 | 630 | 
 | 
|---|
 | 631 | /////////////////////////////////////////////////////////////////////
 | 
|---|
 | 632 | // Uncapped5SphereExclusionShape
 | 
|---|
 | 633 | 
 | 
|---|
 | 634 | static ClassDesc Uncapped5SphereExclusionShape_cd(
 | 
|---|
 | 635 |   typeid(Uncapped5SphereExclusionShape),"Uncapped5SphereExclusionShape",1,"public Shape",
 | 
|---|
 | 636 |   0, 0, 0);
 | 
|---|
 | 637 | 
 | 
|---|
 | 638 | Uncapped5SphereExclusionShape*
 | 
|---|
 | 639 | Uncapped5SphereExclusionShape::
 | 
|---|
 | 640 |   newUncapped5SphereExclusionShape(double r,
 | 
|---|
 | 641 |                                    const SphereShape& s1,
 | 
|---|
 | 642 |                                    const SphereShape& s2,
 | 
|---|
 | 643 |                                    const SphereShape& s3)
 | 
|---|
 | 644 | {
 | 
|---|
 | 645 |   Uncapped5SphereExclusionShape* s =
 | 
|---|
 | 646 |     new Uncapped5SphereExclusionShape(r,s1,s2,s3);
 | 
|---|
 | 647 |   if (s->solution_exists()) {
 | 
|---|
 | 648 |       return s;
 | 
|---|
 | 649 |     }
 | 
|---|
 | 650 |   delete s;
 | 
|---|
 | 651 |   return 0;
 | 
|---|
 | 652 | }
 | 
|---|
 | 653 | static int verbose = 0;
 | 
|---|
 | 654 | Uncapped5SphereExclusionShape::
 | 
|---|
 | 655 |   Uncapped5SphereExclusionShape(double radius,
 | 
|---|
 | 656 |                                 const SphereShape&s1,
 | 
|---|
 | 657 |                                 const SphereShape&s2,
 | 
|---|
 | 658 |                                 const SphereShape&s3):
 | 
|---|
 | 659 |   _s1(s1),
 | 
|---|
 | 660 |   _s2(s2),
 | 
|---|
 | 661 |   _s3(s3),
 | 
|---|
 | 662 |   _r(radius)
 | 
|---|
 | 663 | {
 | 
|---|
 | 664 |   double rAr = rA() + r();
 | 
|---|
 | 665 |   double rAr2 = rAr*rAr;
 | 
|---|
 | 666 |   double rBr = rB() + r();
 | 
|---|
 | 667 |   double rBr2 = rBr*rBr;
 | 
|---|
 | 668 |   double rCr = rC() + r();
 | 
|---|
 | 669 |   double rCr2 = rCr*rCr;
 | 
|---|
 | 670 |   double A2 = A().dot(A());
 | 
|---|
 | 671 |   double B2 = B().dot(B());
 | 
|---|
 | 672 |   double C2 = C().dot(C());
 | 
|---|
 | 673 |   SCVector3 BA = B()-A();
 | 
|---|
 | 674 |   double DdotBA = 0.5*(rAr2 - rBr2 + B2 - A2);
 | 
|---|
 | 675 |   double DAdotBA = DdotBA - A().dot(BA);
 | 
|---|
 | 676 |   double BA2 = BA.dot(BA);
 | 
|---|
 | 677 |   SCVector3 CA = C() - A();
 | 
|---|
 | 678 |   double CAdotBA = CA.dot(BA);
 | 
|---|
 | 679 |   SCVector3 CA_perpBA = CA - (CAdotBA/BA2)*BA;
 | 
|---|
 | 680 |   double CA_perpBA2 = CA_perpBA.dot(CA_perpBA);
 | 
|---|
 | 681 |   if (CA_perpBA2 < 1.0e-23) {
 | 
|---|
 | 682 |       _solution_exists = 0;
 | 
|---|
 | 683 |       return;
 | 
|---|
 | 684 |     }
 | 
|---|
 | 685 |   double DdotCA_perpBA = 0.5*(rAr2 - rCr2 + C2 - A2)
 | 
|---|
 | 686 |     - CAdotBA*DdotBA/BA2;
 | 
|---|
 | 687 |   double DAdotCA_perpBA = DdotCA_perpBA - A().dot(CA_perpBA);
 | 
|---|
 | 688 |   double rAt2 = DAdotBA*DAdotBA/BA2 + DAdotCA_perpBA*DAdotCA_perpBA/CA_perpBA2;
 | 
|---|
 | 689 |   double h2 = rAr2 - rAt2;
 | 
|---|
 | 690 |   if (h2 <= 0.0) {
 | 
|---|
 | 691 |       _solution_exists = 0;
 | 
|---|
 | 692 |       return;
 | 
|---|
 | 693 |     }
 | 
|---|
 | 694 |   _solution_exists = 1;
 | 
|---|
 | 695 | 
 | 
|---|
 | 696 |   double h = sqrt(h2);
 | 
|---|
 | 697 |   if (h<r()) {
 | 
|---|
 | 698 |       _reentrant = 1;
 | 
|---|
 | 699 |       //ExEnv::outn() << "WARNING: throwing out reentrant shape" << endl;
 | 
|---|
 | 700 |       //_solution_exists = 0;
 | 
|---|
 | 701 |       //return;
 | 
|---|
 | 702 |     }
 | 
|---|
 | 703 |   else {
 | 
|---|
 | 704 |       _reentrant = 0;
 | 
|---|
 | 705 |       //ExEnv::outn() << "WARNING: throwing out nonreentrant shape" << endl;
 | 
|---|
 | 706 |       //_solution_exists = 0;
 | 
|---|
 | 707 |       //return;
 | 
|---|
 | 708 |     }
 | 
|---|
 | 709 | 
 | 
|---|
 | 710 |   // The projection of D into the ABC plane
 | 
|---|
 | 711 |   SCVector3 MA = (DAdotBA/BA2)*BA + (DAdotCA_perpBA/CA_perpBA2)*CA_perpBA;
 | 
|---|
 | 712 |   M = MA + A();
 | 
|---|
 | 713 |   SCVector3 BAxCA = BA.cross(CA);
 | 
|---|
 | 714 |   D[0] = M + h * BAxCA * ( 1.0/BAxCA.norm() );
 | 
|---|
 | 715 |   D[1] = M - h * BAxCA * ( 1.0/BAxCA.norm() );
 | 
|---|
 | 716 | 
 | 
|---|
 | 717 |   // The projection of D into the ABC plane, M, does not lie in the
 | 
|---|
 | 718 |   // ABC triangle, then this shape must be treated carefully and it
 | 
|---|
 | 719 |   // will be designated as folded.
 | 
|---|
 | 720 |   SCVector3 MC = M - C();
 | 
|---|
 | 721 |   if (!(is_in_unbounded_triangle(MA, BA, CA)
 | 
|---|
 | 722 |         &&is_in_unbounded_triangle(MC, B() - C(), A() - C()))) {
 | 
|---|
 | 723 |       _folded = 1;
 | 
|---|
 | 724 |       SCVector3 MB = M - B();
 | 
|---|
 | 725 |       double MA2 = MA.dot(MA);
 | 
|---|
 | 726 |       double MB2 = MB.dot(MB);
 | 
|---|
 | 727 |       double MC2 = MC.dot(MC);
 | 
|---|
 | 728 |       if (MA2 < MB2) {
 | 
|---|
 | 729 |           F1 = A();
 | 
|---|
 | 730 |           if (MB2 < MC2) F2 = B();
 | 
|---|
 | 731 |           else F2 = C();
 | 
|---|
 | 732 |         }
 | 
|---|
 | 733 |       else {
 | 
|---|
 | 734 |           F1 = B();
 | 
|---|
 | 735 |           if (MA2 < MC2) F2 = A();
 | 
|---|
 | 736 |           else F2 = C();
 | 
|---|
 | 737 |         }
 | 
|---|
 | 738 |     }
 | 
|---|
 | 739 |   else _folded = 0;
 | 
|---|
 | 740 |   
 | 
|---|
 | 741 |   //ExEnv::outn() << scprintf("r = %14.8f, h = %14.8f\n",r(),h);
 | 
|---|
 | 742 |   //M.print();
 | 
|---|
 | 743 |   //D[0].print();
 | 
|---|
 | 744 |   //D[1].print();
 | 
|---|
 | 745 |   //A().print();
 | 
|---|
 | 746 |   //B().print();
 | 
|---|
 | 747 |   //C().print();
 | 
|---|
 | 748 | 
 | 
|---|
 | 749 |   int i;
 | 
|---|
 | 750 |   for (i=0; i<2; i++) {
 | 
|---|
 | 751 |       SCVector3 AD = A() - D[i];
 | 
|---|
 | 752 |       SCVector3 BD = B() - D[i];
 | 
|---|
 | 753 |       SCVector3 CD = C() - D[i];
 | 
|---|
 | 754 |       BDxCD[i] = BD.cross(CD);
 | 
|---|
 | 755 |       BDxCDdotAD[i] = BDxCD[i].dot(AD);
 | 
|---|
 | 756 |       CDxAD[i] = CD.cross(AD);
 | 
|---|
 | 757 |       CDxADdotBD[i] = CDxAD[i].dot(BD);
 | 
|---|
 | 758 |       ADxBD[i] = AD.cross(BD);
 | 
|---|
 | 759 |       ADxBDdotCD[i] = ADxBD[i].dot(CD);
 | 
|---|
 | 760 |     }
 | 
|---|
 | 761 | 
 | 
|---|
 | 762 |   for (i=0; i<2; i++) MD[i] = M - D[i];
 | 
|---|
 | 763 | 
 | 
|---|
 | 764 |   // reentrant surfaces need a whole bunch more to be able to compute
 | 
|---|
 | 765 |   // the distance to the surface
 | 
|---|
 | 766 |   if (_reentrant) {
 | 
|---|
 | 767 |       int i;
 | 
|---|
 | 768 |       double rMD = MD[0].norm(); // this is the same as rMD[1]
 | 
|---|
 | 769 |       theta_intersect = M_PI_2 - asin(rMD/r());
 | 
|---|
 | 770 |       r_intersect = r() * sin(theta_intersect);
 | 
|---|
 | 771 | 
 | 
|---|
 | 772 |       {
 | 
|---|
 | 773 |         // Does the circle of intersection intersect with BA?
 | 
|---|
 | 774 |         SCVector3 MA = M - A();
 | 
|---|
 | 775 |         SCVector3 uBA = B() - A(); uBA.normalize();
 | 
|---|
 | 776 |         SCVector3 XA = uBA * MA.dot(uBA);
 | 
|---|
 | 777 |         SCVector3 XM = XA - MA;
 | 
|---|
 | 778 |         double rXM2 = XM.dot(XM);
 | 
|---|
 | 779 |         double d_intersect_from_x2 = r_intersect*r_intersect - rXM2;
 | 
|---|
 | 780 |         if (d_intersect_from_x2 > 0.0) {
 | 
|---|
 | 781 |             _intersects_AB = 1;
 | 
|---|
 | 782 |             double tmp = sqrt(d_intersect_from_x2);
 | 
|---|
 | 783 |             double d_intersect_from_x[2];
 | 
|---|
 | 784 |             d_intersect_from_x[0] = tmp;
 | 
|---|
 | 785 |             d_intersect_from_x[1] = -tmp;
 | 
|---|
 | 786 |             for (i=0; i<2; i++) {
 | 
|---|
 | 787 |                 for (int j=0; j<2; j++) {
 | 
|---|
 | 788 |                     IABD[i][j] = XM + d_intersect_from_x[j]*uBA + MD[i];
 | 
|---|
 | 789 |                   }
 | 
|---|
 | 790 |               }
 | 
|---|
 | 791 |           }
 | 
|---|
 | 792 |         else _intersects_AB = 0;
 | 
|---|
 | 793 |       }
 | 
|---|
 | 794 | 
 | 
|---|
 | 795 |       {
 | 
|---|
 | 796 |         // Does the circle of intersection intersect with BC?
 | 
|---|
 | 797 |         SCVector3 MC = M - C();
 | 
|---|
 | 798 |         SCVector3 uBC = B() - C(); uBC.normalize();
 | 
|---|
 | 799 |         SCVector3 XC = uBC * MC.dot(uBC);
 | 
|---|
 | 800 |         SCVector3 XM = XC - MC;
 | 
|---|
 | 801 |         double rXM2 = XM.dot(XM);
 | 
|---|
 | 802 |         double d_intersect_from_x2 = r_intersect*r_intersect - rXM2;
 | 
|---|
 | 803 |         if (d_intersect_from_x2 > 0.0) {
 | 
|---|
 | 804 |             _intersects_BC = 1;
 | 
|---|
 | 805 |             double tmp = sqrt(d_intersect_from_x2);
 | 
|---|
 | 806 |             double d_intersect_from_x[2];
 | 
|---|
 | 807 |             d_intersect_from_x[0] = tmp;
 | 
|---|
 | 808 |             d_intersect_from_x[1] = -tmp;
 | 
|---|
 | 809 |             for (i=0; i<2; i++) {
 | 
|---|
 | 810 |                 for (int j=0; j<2; j++) {
 | 
|---|
 | 811 |                     IBCD[i][j] = XM + d_intersect_from_x[j]*uBC + MD[i];
 | 
|---|
 | 812 |                   }
 | 
|---|
 | 813 |               }
 | 
|---|
 | 814 |           }
 | 
|---|
 | 815 |         else _intersects_BC = 0;
 | 
|---|
 | 816 |       }
 | 
|---|
 | 817 | 
 | 
|---|
 | 818 |       {
 | 
|---|
 | 819 |         // Does the circle of intersection intersect with CA?
 | 
|---|
 | 820 |         SCVector3 MA = M - A();
 | 
|---|
 | 821 |         SCVector3 uCA = C() - A(); uCA.normalize();
 | 
|---|
 | 822 |         SCVector3 XA = uCA * MA.dot(uCA);
 | 
|---|
 | 823 |         SCVector3 XM = XA - MA;
 | 
|---|
 | 824 |         double rXM2 = XM.dot(XM);
 | 
|---|
 | 825 |         double d_intersect_from_x2 = r_intersect*r_intersect - rXM2;
 | 
|---|
 | 826 |         if (d_intersect_from_x2 > 0.0) {
 | 
|---|
 | 827 |             _intersects_CA = 1;
 | 
|---|
 | 828 |             double tmp = sqrt(d_intersect_from_x2);
 | 
|---|
 | 829 |             double d_intersect_from_x[2];
 | 
|---|
 | 830 |             d_intersect_from_x[0] = tmp;
 | 
|---|
 | 831 |             d_intersect_from_x[1] = -tmp;
 | 
|---|
 | 832 |             for (i=0; i<2; i++) {
 | 
|---|
 | 833 |                 for (int j=0; j<2; j++) {
 | 
|---|
 | 834 |                     ICAD[i][j] = XM + d_intersect_from_x[j]*uCA + MD[i];
 | 
|---|
 | 835 |                   }
 | 
|---|
 | 836 |               }
 | 
|---|
 | 837 |           }
 | 
|---|
 | 838 |         else _intersects_CA = 0;
 | 
|---|
 | 839 |       }
 | 
|---|
 | 840 | 
 | 
|---|
 | 841 |     }
 | 
|---|
 | 842 | 
 | 
|---|
 | 843 | #if 0 // test code
 | 
|---|
 | 844 |   ExEnv::outn() << "Uncapped5SphereExclusionShape: running some tests" << endl;
 | 
|---|
 | 845 |   verbose = 1;
 | 
|---|
 | 846 | 
 | 
|---|
 | 847 |   FILE* testout = fopen("testout.vect", "w");
 | 
|---|
 | 848 | 
 | 
|---|
 | 849 |   const double scalefactor_inc = 0.05;
 | 
|---|
 | 850 |   const double start = -10.0;
 | 
|---|
 | 851 |   const double end = 10.0;
 | 
|---|
 | 852 | 
 | 
|---|
 | 853 |   SCVector3 middle = (1.0/3.0)*(A()+B()+C());
 | 
|---|
 | 854 | 
 | 
|---|
 | 855 |   int nlines = 1;
 | 
|---|
 | 856 |   int nvert = (int) ( (end-start) / scalefactor_inc);
 | 
|---|
 | 857 |   int ncolor = nvert;
 | 
|---|
 | 858 | 
 | 
|---|
 | 859 |   fprintf(testout, "VECT\n%d %d %d\n", nlines, nvert, ncolor);
 | 
|---|
 | 860 | 
 | 
|---|
 | 861 |   fprintf(testout, "%d\n", nvert);
 | 
|---|
 | 862 |   fprintf(testout, "%d\n", ncolor);
 | 
|---|
 | 863 | 
 | 
|---|
 | 864 |   double scalefactor = start;
 | 
|---|
 | 865 |   for (int ii = 0; ii<nvert; ii++) {
 | 
|---|
 | 866 |       SCVector3 position = (D[0] - middle) * scalefactor + middle;
 | 
|---|
 | 867 |       double d = distance_to_surface(position);
 | 
|---|
 | 868 |       fprintf(testout, "%f %f %f # value = %f\n",
 | 
|---|
 | 869 |               position[0], position[1], position[2], d);
 | 
|---|
 | 870 |       scalefactor += scalefactor_inc;
 | 
|---|
 | 871 |     }
 | 
|---|
 | 872 |   scalefactor = start;
 | 
|---|
 | 873 |   for (ii = 0; ii<nvert; ii++) {
 | 
|---|
 | 874 |       SCVector3 position = (D[0] - middle) * scalefactor + middle;
 | 
|---|
 | 875 |       double d = distance_to_surface(position);
 | 
|---|
 | 876 |       ExEnv::outn() << scprintf("d = %f\n", d);
 | 
|---|
 | 877 |       if (d<0.0) fprintf(testout,"1.0 0.0 0.0 0.5\n");
 | 
|---|
 | 878 |       else fprintf(testout,"0.0 0.0 1.0 0.5\n");
 | 
|---|
 | 879 |       scalefactor += scalefactor_inc;
 | 
|---|
 | 880 |     }
 | 
|---|
 | 881 | 
 | 
|---|
 | 882 |   fclose(testout);
 | 
|---|
 | 883 |   ExEnv::outn() << "testout.vect written" << endl;
 | 
|---|
 | 884 | 
 | 
|---|
 | 885 |   verbose = 0;
 | 
|---|
 | 886 | #endif // test code
 | 
|---|
 | 887 |   
 | 
|---|
 | 888 | }
 | 
|---|
 | 889 | int
 | 
|---|
 | 890 | Uncapped5SphereExclusionShape::is_outside(const SCVector3&X) const
 | 
|---|
 | 891 | {
 | 
|---|
 | 892 |   SCVector3 Xv(X);
 | 
|---|
 | 893 | 
 | 
|---|
 | 894 |   if (verbose) ExEnv::outn() << scprintf("point %14.8f %14.8f %14.8f\n",X(0),X(1),X(2));
 | 
|---|
 | 895 | 
 | 
|---|
 | 896 |   // The folded case isn't handled correctly here, so use
 | 
|---|
 | 897 |   // the less efficient distance_to_surface routine.
 | 
|---|
 | 898 |   if (_folded) {
 | 
|---|
 | 899 |       return distance_to_surface(X) >= 0.0;
 | 
|---|
 | 900 |     }
 | 
|---|
 | 901 | 
 | 
|---|
 | 902 |   for (int i=0; i<2; i++) {
 | 
|---|
 | 903 |       SCVector3 XD = Xv - D[i];
 | 
|---|
 | 904 |       double rXD = XD.norm();
 | 
|---|
 | 905 |       if (rXD <= r()) return 1;
 | 
|---|
 | 906 |       double u = BDxCD[i].dot(XD)/BDxCDdotAD[i];
 | 
|---|
 | 907 |       if (u <= 0.0) return 1;
 | 
|---|
 | 908 |       double v = CDxAD[i].dot(XD)/CDxADdotBD[i];
 | 
|---|
 | 909 |       if (v <= 0.0) return 1;
 | 
|---|
 | 910 |       double w = ADxBD[i].dot(XD)/ADxBDdotCD[i];
 | 
|---|
 | 911 |       if (w <= 0.0) return 1;
 | 
|---|
 | 912 |     }
 | 
|---|
 | 913 | 
 | 
|---|
 | 914 |   if (verbose) ExEnv::outn() << "is_inside" << endl;
 | 
|---|
 | 915 | 
 | 
|---|
 | 916 |   return 0;
 | 
|---|
 | 917 | }
 | 
|---|
 | 918 | static int
 | 
|---|
 | 919 | is_contained_in_unbounded_pyramid(SCVector3 XD,
 | 
|---|
 | 920 |                                   SCVector3 AD,
 | 
|---|
 | 921 |                                   SCVector3 BD,
 | 
|---|
 | 922 |                                   SCVector3 CD)
 | 
|---|
 | 923 | {
 | 
|---|
 | 924 |   SCVector3 BDxCD = BD.cross(CD);
 | 
|---|
 | 925 |   SCVector3 CDxAD = CD.cross(AD);
 | 
|---|
 | 926 |   SCVector3 ADxBD = AD.cross(BD);
 | 
|---|
 | 927 |   double u = BDxCD.dot(XD)/BDxCD.dot(AD);
 | 
|---|
 | 928 |   if (u <= 0.0) return 0;
 | 
|---|
 | 929 |   double v = CDxAD.dot(XD)/CDxAD.dot(BD);
 | 
|---|
 | 930 |   if (v <= 0.0) return 0;
 | 
|---|
 | 931 |   double w = ADxBD.dot(XD)/ADxBD.dot(CD);
 | 
|---|
 | 932 |   if (w <= 0.0) return 0;
 | 
|---|
 | 933 |   return 1;
 | 
|---|
 | 934 | }
 | 
|---|
 | 935 | double
 | 
|---|
 | 936 | Uncapped5SphereExclusionShape::
 | 
|---|
 | 937 |   distance_to_surface(const SCVector3&X,SCVector3*grad) const
 | 
|---|
 | 938 | {
 | 
|---|
 | 939 |   SCVector3 Xv(X);
 | 
|---|
 | 940 | 
 | 
|---|
 | 941 |   // Find out if I'm on the D[0] side or the D[1] side of the ABC plane.
 | 
|---|
 | 942 |   int side;
 | 
|---|
 | 943 |   SCVector3 XM = Xv - M;
 | 
|---|
 | 944 |   if (MD[0].dot(XM) > 0.0) side = 1;
 | 
|---|
 | 945 |   else side = 0;
 | 
|---|
 | 946 | 
 | 
|---|
 | 947 |   if (verbose) {
 | 
|---|
 | 948 |       ExEnv::outn() << scprintf("distance_to_surface: folded = %d, side = %d\n",
 | 
|---|
 | 949 |                        _folded, side);
 | 
|---|
 | 950 |       ExEnv::outn() << "XM = "; XM.print();
 | 
|---|
 | 951 |       ExEnv::outn() << "MD[0] = "; MD[0].print();
 | 
|---|
 | 952 |       ExEnv::outn() << "MD[0].dot(XM) = " << MD[0].dot(XM) << endl;
 | 
|---|
 | 953 |     }
 | 
|---|
 | 954 | 
 | 
|---|
 | 955 |   SCVector3 XD = Xv - D[side];
 | 
|---|
 | 956 |   double u = BDxCD[side].dot(XD)/BDxCDdotAD[side];
 | 
|---|
 | 957 |   if (verbose) ExEnv::outn() << scprintf("u = %14.8f\n", u);
 | 
|---|
 | 958 |   if (u <= 0.0) return shape_infinity;
 | 
|---|
 | 959 |   double v = CDxAD[side].dot(XD)/CDxADdotBD[side];
 | 
|---|
 | 960 |   if (verbose) ExEnv::outn() << scprintf("v = %14.8f\n", v);
 | 
|---|
 | 961 |   if (v <= 0.0) return shape_infinity;
 | 
|---|
 | 962 |   double w = ADxBD[side].dot(XD)/ADxBDdotCD[side];
 | 
|---|
 | 963 |   if (verbose) ExEnv::outn() << scprintf("w = %14.8f\n", w);
 | 
|---|
 | 964 |   if (w <= 0.0) return shape_infinity;
 | 
|---|
 | 965 |   double rXD = XD.norm();
 | 
|---|
 | 966 |   if (verbose) ExEnv::outn() << scprintf("r() - rXD = %14.8f\n", r() - rXD);
 | 
|---|
 | 967 |   if (rXD <= r()) {
 | 
|---|
 | 968 |       if (!_reentrant) return r() - rXD;
 | 
|---|
 | 969 |       // this shape is reentrant
 | 
|---|
 | 970 |       // make sure that we're on the right side
 | 
|---|
 | 971 |       if ((side == 1) || (u + v + w <= 1.0)) {
 | 
|---|
 | 972 |           // see if we're outside the cone that intersects
 | 
|---|
 | 973 |           // the opposite sphere
 | 
|---|
 | 974 |           double angle = acos(fabs(XD.dot(MD[side]))
 | 
|---|
 | 975 |                               /(XD.norm()*MD[side].norm()));
 | 
|---|
 | 976 |           if (angle >= theta_intersect) {
 | 
|---|
 | 977 |               if (grad) {
 | 
|---|
 | 978 |                   *grad = (-1.0/rXD)*XD;
 | 
|---|
 | 979 |                 }
 | 
|---|
 | 980 |               return r() - rXD;
 | 
|---|
 | 981 |             }
 | 
|---|
 | 982 |           if (_intersects_AB
 | 
|---|
 | 983 |               &&is_contained_in_unbounded_pyramid(XD,
 | 
|---|
 | 984 |                                                   MD[side],
 | 
|---|
 | 985 |                                                   IABD[side][0],
 | 
|---|
 | 986 |                                                   IABD[side][1])) {
 | 
|---|
 | 987 |               //ExEnv::outn() << scprintf("XD: "); XD.print();
 | 
|---|
 | 988 |               //ExEnv::outn() << scprintf("MD[%d]: ",i); MD[i].print();
 | 
|---|
 | 989 |               //ExEnv::outn() << scprintf("IABD[%d][0]: ",i); IABD[i][0].print();
 | 
|---|
 | 990 |               //ExEnv::outn() << scprintf("IABD[%d][1]: ",i); IABD[i][1].print();
 | 
|---|
 | 991 |               return closest_distance(XD,(SCVector3*)IABD[side],2,grad);
 | 
|---|
 | 992 |             }
 | 
|---|
 | 993 |           if (_intersects_BC
 | 
|---|
 | 994 |               &&is_contained_in_unbounded_pyramid(XD,
 | 
|---|
 | 995 |                                                   MD[side],
 | 
|---|
 | 996 |                                                   IBCD[side][0],
 | 
|---|
 | 997 |                                                   IBCD[side][1])) {
 | 
|---|
 | 998 |               return closest_distance(XD,(SCVector3*)IBCD[side],2,grad);
 | 
|---|
 | 999 |             }
 | 
|---|
 | 1000 |           if (_intersects_CA
 | 
|---|
 | 1001 |               &&is_contained_in_unbounded_pyramid(XD,
 | 
|---|
 | 1002 |                                                   MD[side],
 | 
|---|
 | 1003 |                                                   ICAD[side][0],
 | 
|---|
 | 1004 |                                                   ICAD[side][1])) {
 | 
|---|
 | 1005 |               return closest_distance(XD,(SCVector3*)ICAD[side],2,grad);
 | 
|---|
 | 1006 |             }
 | 
|---|
 | 1007 |           // at this point we are closest to the ring formed
 | 
|---|
 | 1008 |           // by the intersection of the two probe spheres
 | 
|---|
 | 1009 |           double distance_to_plane;
 | 
|---|
 | 1010 |           double distance_to_ring_in_plane;
 | 
|---|
 | 1011 |           double MDnorm = MD[side].norm();
 | 
|---|
 | 1012 |           SCVector3 XM = XD - MD[side];
 | 
|---|
 | 1013 |           SCVector3 XM_in_plane;
 | 
|---|
 | 1014 |           if (MDnorm<1.0e-16) {
 | 
|---|
 | 1015 |               distance_to_plane = 0.0;
 | 
|---|
 | 1016 |               XM_in_plane = XD;
 | 
|---|
 | 1017 |             }
 | 
|---|
 | 1018 |           else {
 | 
|---|
 | 1019 |               distance_to_plane = XM.dot(MD[side])/MDnorm;
 | 
|---|
 | 1020 |               XM_in_plane = XM - (distance_to_plane/MDnorm)*MD[side];
 | 
|---|
 | 1021 |             }
 | 
|---|
 | 1022 |           if (grad) {
 | 
|---|
 | 1023 |               double XM_in_plane_norm = XM_in_plane.norm();
 | 
|---|
 | 1024 |               if (XM_in_plane_norm < 1.e-8) {
 | 
|---|
 | 1025 |                   // the grad points along MD
 | 
|---|
 | 1026 |                   double scale = - distance_to_plane
 | 
|---|
 | 1027 |                          /(MDnorm*sqrt(r_intersect*r_intersect
 | 
|---|
 | 1028 |                                        + distance_to_plane*distance_to_plane));
 | 
|---|
 | 1029 |                   *grad = MD[side] * scale;
 | 
|---|
 | 1030 |                 }
 | 
|---|
 | 1031 |               else {
 | 
|---|
 | 1032 |                   SCVector3 point_on_ring;
 | 
|---|
 | 1033 |                   point_on_ring = XM_in_plane
 | 
|---|
 | 1034 |                                 * (r_intersect/XM_in_plane_norm) + M;
 | 
|---|
 | 1035 |                   SCVector3 gradv = Xv - point_on_ring;
 | 
|---|
 | 1036 |                   gradv.normalize();
 | 
|---|
 | 1037 |                   *grad = gradv;
 | 
|---|
 | 1038 |                 }
 | 
|---|
 | 1039 |             }
 | 
|---|
 | 1040 |           distance_to_ring_in_plane =
 | 
|---|
 | 1041 |                          r_intersect - sqrt(XM_in_plane.dot(XM_in_plane));
 | 
|---|
 | 1042 |           return sqrt(distance_to_ring_in_plane*distance_to_ring_in_plane
 | 
|---|
 | 1043 |                       +distance_to_plane*distance_to_plane);
 | 
|---|
 | 1044 |         }
 | 
|---|
 | 1045 |     }
 | 
|---|
 | 1046 | 
 | 
|---|
 | 1047 |   if (verbose) ExEnv::outn() << "returning -1.0" << endl;
 | 
|---|
 | 1048 |   return -1.0;
 | 
|---|
 | 1049 | }
 | 
|---|
 | 1050 | 
 | 
|---|
 | 1051 | void
 | 
|---|
 | 1052 | Uncapped5SphereExclusionShape::boundingbox(double valuemin, double valuemax,
 | 
|---|
 | 1053 |                                            SCVector3& p1,
 | 
|---|
 | 1054 |                                            SCVector3& p2)
 | 
|---|
 | 1055 | {
 | 
|---|
 | 1056 |   SCVector3 p11;
 | 
|---|
 | 1057 |   SCVector3 p12;
 | 
|---|
 | 1058 |   SCVector3 p21;
 | 
|---|
 | 1059 |   SCVector3 p22;
 | 
|---|
 | 1060 |   SCVector3 p31;
 | 
|---|
 | 1061 |   SCVector3 p32;
 | 
|---|
 | 1062 | 
 | 
|---|
 | 1063 |   _s1.boundingbox(valuemin,valuemax,p11,p12);
 | 
|---|
 | 1064 |   _s2.boundingbox(valuemin,valuemax,p21,p22);
 | 
|---|
 | 1065 |   _s3.boundingbox(valuemin,valuemax,p31,p32);
 | 
|---|
 | 1066 | 
 | 
|---|
 | 1067 |   int i;
 | 
|---|
 | 1068 |   for (i=0; i<3; i++) {
 | 
|---|
 | 1069 |       if (p11[i] < p21[i]) p1[i] = p11[i];
 | 
|---|
 | 1070 |       else p1[i] = p21[i];
 | 
|---|
 | 1071 |       if (p31[i] < p1[i]) p1[i] = p31[i];
 | 
|---|
 | 1072 |       if (p12[i] > p22[i]) p2[i] = p12[i];
 | 
|---|
 | 1073 |       else p2[i] = p22[i];
 | 
|---|
 | 1074 |       if (p32[i] > p2[i]) p2[i] = p32[i];
 | 
|---|
 | 1075 |     }
 | 
|---|
 | 1076 | }
 | 
|---|
 | 1077 | 
 | 
|---|
 | 1078 | int
 | 
|---|
 | 1079 | Uncapped5SphereExclusionShape::gradient_implemented() const
 | 
|---|
 | 1080 | {
 | 
|---|
 | 1081 |   return 1;
 | 
|---|
 | 1082 | }
 | 
|---|
 | 1083 | 
 | 
|---|
 | 1084 | /////////////////////////////////////////////////////////////////////
 | 
|---|
 | 1085 | // Unionshape
 | 
|---|
 | 1086 | 
 | 
|---|
 | 1087 | static ClassDesc UnionShape_cd(
 | 
|---|
 | 1088 |   typeid(UnionShape),"UnionShape",1,"public Shape",
 | 
|---|
 | 1089 |   0, 0, 0);
 | 
|---|
 | 1090 | 
 | 
|---|
 | 1091 | UnionShape::UnionShape()
 | 
|---|
 | 1092 | {
 | 
|---|
 | 1093 | }
 | 
|---|
 | 1094 | 
 | 
|---|
 | 1095 | UnionShape::~UnionShape()
 | 
|---|
 | 1096 | {
 | 
|---|
 | 1097 | }
 | 
|---|
 | 1098 | 
 | 
|---|
 | 1099 | void
 | 
|---|
 | 1100 | UnionShape::add_shape(Ref<Shape> s)
 | 
|---|
 | 1101 | {
 | 
|---|
 | 1102 |   _shapes.insert(s);
 | 
|---|
 | 1103 | }
 | 
|---|
 | 1104 | 
 | 
|---|
 | 1105 | // NOTE: this underestimates the distance to the surface when
 | 
|---|
 | 1106 | //inside the surface
 | 
|---|
 | 1107 | double
 | 
|---|
 | 1108 | UnionShape::distance_to_surface(const SCVector3&p,SCVector3* grad) const
 | 
|---|
 | 1109 | {
 | 
|---|
 | 1110 |   std::set<Ref<Shape> >::const_iterator imin = _shapes.begin();
 | 
|---|
 | 1111 |   if (imin == _shapes.end()) return 0.0;
 | 
|---|
 | 1112 |   double min = (*imin)->distance_to_surface(p);
 | 
|---|
 | 1113 |   for (std::set<Ref<Shape> >::const_iterator i=imin; i!=_shapes.end(); i++) {
 | 
|---|
 | 1114 |       double d = (*i)->distance_to_surface(p);
 | 
|---|
 | 1115 |       if (min <= 0.0) {
 | 
|---|
 | 1116 |           if (d < 0.0 && d > min) { min = d; imin = i; }
 | 
|---|
 | 1117 |         }
 | 
|---|
 | 1118 |       else {
 | 
|---|
 | 1119 |           if (min > d) { min = d; imin = i; }
 | 
|---|
 | 1120 |         }
 | 
|---|
 | 1121 |     }
 | 
|---|
 | 1122 | 
 | 
|---|
 | 1123 |   if (grad) {
 | 
|---|
 | 1124 |       (*imin)->distance_to_surface(p,grad);
 | 
|---|
 | 1125 |     }
 | 
|---|
 | 1126 |   return min;
 | 
|---|
 | 1127 | }
 | 
|---|
 | 1128 | 
 | 
|---|
 | 1129 | int
 | 
|---|
 | 1130 | UnionShape::is_outside(const SCVector3&p) const
 | 
|---|
 | 1131 | {
 | 
|---|
 | 1132 |   for (std::set<Ref<Shape> >::const_iterator i=_shapes.begin();
 | 
|---|
 | 1133 |        i!=_shapes.end(); i++) {
 | 
|---|
 | 1134 |       if (!(*i)->is_outside(p)) return 0;
 | 
|---|
 | 1135 |     }
 | 
|---|
 | 1136 | 
 | 
|---|
 | 1137 |   return 1;
 | 
|---|
 | 1138 | }
 | 
|---|
 | 1139 | 
 | 
|---|
 | 1140 | void
 | 
|---|
 | 1141 | UnionShape::boundingbox(double valuemin, double valuemax,
 | 
|---|
 | 1142 |                         SCVector3& p1,
 | 
|---|
 | 1143 |                         SCVector3& p2)
 | 
|---|
 | 1144 | {
 | 
|---|
 | 1145 |   if (_shapes.begin() == _shapes.end()) {
 | 
|---|
 | 1146 |       for (int i=0; i<3; i++) p1[i] = p2[i] = 0.0;
 | 
|---|
 | 1147 |       return;
 | 
|---|
 | 1148 |     }
 | 
|---|
 | 1149 |   
 | 
|---|
 | 1150 |   SCVector3 pt1;
 | 
|---|
 | 1151 |   SCVector3 pt2;
 | 
|---|
 | 1152 |   
 | 
|---|
 | 1153 |   std::set<Ref<Shape> >::iterator j = _shapes.begin();
 | 
|---|
 | 1154 |   int i;
 | 
|---|
 | 1155 |   (*j)->boundingbox(valuemin,valuemax,p1,p2);
 | 
|---|
 | 1156 |   for (j++; j!=_shapes.end(); j++) {
 | 
|---|
 | 1157 |       (*j)->boundingbox(valuemin,valuemax,pt1,pt2);
 | 
|---|
 | 1158 |       for (i=0; i<3; i++) {
 | 
|---|
 | 1159 |           if (pt1[i] < p1[i]) p1[i] = pt1[i];
 | 
|---|
 | 1160 |           if (pt2[i] > p2[i]) p2[i] = pt2[i];
 | 
|---|
 | 1161 |         }
 | 
|---|
 | 1162 |     }
 | 
|---|
 | 1163 | }
 | 
|---|
 | 1164 | 
 | 
|---|
 | 1165 | int
 | 
|---|
 | 1166 | UnionShape::gradient_implemented() const
 | 
|---|
 | 1167 | {
 | 
|---|
 | 1168 |   for (std::set<Ref<Shape> >::const_iterator j=_shapes.begin();
 | 
|---|
 | 1169 |        j!=_shapes.end(); j++) {
 | 
|---|
 | 1170 |       if (!(*j)->gradient_implemented()) return 0;
 | 
|---|
 | 1171 |     }
 | 
|---|
 | 1172 |   return 1;
 | 
|---|
 | 1173 | }
 | 
|---|
 | 1174 | 
 | 
|---|
 | 1175 | /////////////////////////////////////////////////////////////////////////////
 | 
|---|
 | 1176 | 
 | 
|---|
 | 1177 | // Local Variables:
 | 
|---|
 | 1178 | // mode: c++
 | 
|---|
 | 1179 | // c-file-style: "CLJ"
 | 
|---|
 | 1180 | // End:
 | 
|---|