* working eytzinger aabb * working and reasonably efficient variable radius offset * working example * comments * better key commands * bad includes, defines * missing sign function; test
179 lines
4.7 KiB
C++
179 lines
4.7 KiB
C++
#include <igl/read_triangle_mesh.h>
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#include <igl/copyleft/cgal/oriented_bounding_box.h>
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#include <igl/copyleft/cgal/convex_hull.h>
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#include <igl/opengl/glfw/Viewer.h>
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#include <igl/oriented_bounding_box.h>
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#include <igl/moments.h>
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#include <igl/super_fibonacci.h>
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#include <igl/matlab_format.h>
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#include <igl/write_triangle_mesh.h>
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#include <igl/get_seconds.h>
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#include <igl/parallel_for.h>
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#include <Eigen/Core>
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#include <iostream>
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#include <limits>
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int main(int argc, char * argv[])
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{
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IGL_TICTOC_LAMBDA;
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Eigen::MatrixXi F;
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Eigen::MatrixXd V;
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// Read in inputs as double precision floating point meshes
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igl::read_triangle_mesh(
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argc>1?argv[1]: TUTORIAL_SHARED_PATH "/hand.mesh",V,F);
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V.array() += 1;
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tictoc();
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{
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Eigen::RowVector3d min_corner = V.colwise().minCoeff();
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Eigen::RowVector3d max_corner = V.colwise().maxCoeff();
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};
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double t_aabb = tictoc();
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// PCA
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tictoc();
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Eigen::RowVector3d mean = V.colwise().mean();
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Eigen::MatrixXd V_centered = V.rowwise() - mean;
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Eigen::Matrix3d cov = (V_centered.transpose() * V_centered) / (V.rows() - 1);
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Eigen::SelfAdjointEigenSolver<Eigen::Matrix3d> eig(cov);
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Eigen::Matrix3d PR = eig.eigenvectors();
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double t_pca = tictoc();
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Eigen::Matrix3d R;
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tictoc();
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igl::copyleft::cgal::oriented_bounding_box(V, R);
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double t_cgal = tictoc();
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tictoc();
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Eigen::MatrixXd W;
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Eigen::MatrixXi G;
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igl::copyleft::cgal::convex_hull(V,W,G);
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Eigen::Matrix3d BR;
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igl::oriented_bounding_box(W, 50000, igl::ORIENTED_BOUNDING_BOX_MINIMIZE_SURFACE_AREA, BR);
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std::cout<<igl::matlab_format(BR, "saBR")<<std::endl;
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igl::oriented_bounding_box(W, 50000, igl::ORIENTED_BOUNDING_BOX_MINIMIZE_VOLUME, BR);
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std::cout<<igl::matlab_format(BR, "vBR")<<std::endl;
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double t_best = tictoc();
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// Cube mesh
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Eigen::MatrixXd CV(8,3);
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CV<<
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0,0,0,
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0,1,0,
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1,0,0,
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1,1,0,
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1,0,1,
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1,1,1,
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0,0,1,
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0,1,1;
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Eigen::MatrixXi CF(12,3);
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CF<<
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1,2,0,
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1,3,2,
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3,4,2,
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3,5,4,
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0,4,6,
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0,2,4,
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7,3,1,
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7,5,3,
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7,0,6,
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7,1,0,
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5,6,4,
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5,7,6;
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Eigen::MatrixXi CE(12,2);
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CE<<
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0,1,
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0,2,
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0,6,
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1,3,
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1,7,
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2,3,
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2,4,
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3,5,
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4,5,
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4,6,
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5,7,
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6,7;
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const auto transform_cube = [](const Eigen::MatrixXd & V, const Eigen::MatrixXd & CV)
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{
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Eigen::RowVector3d min_corner = V.colwise().minCoeff();
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Eigen::RowVector3d max_corner = V.colwise().maxCoeff();
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Eigen::RowVector3d diff = max_corner - min_corner;
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Eigen::MatrixXd AV = CV;
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AV.array().rowwise() *= diff.array();
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AV.rowwise() += min_corner;
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return AV;
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};
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Eigen::MatrixXd AV = transform_cube(V, CV);
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Eigen::MatrixXd OV = transform_cube((V*R).eval(), CV);
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OV = (OV*R.transpose()).eval();
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Eigen::MatrixXd PV = transform_cube((V*PR).eval(), CV);
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PV = (PV*PR.transpose()).eval();
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Eigen::MatrixXd BV = transform_cube((V*BR).eval(), CV);
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BV = (BV*BR.transpose()).eval();
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const auto volume = [](const Eigen::MatrixXd & V, const Eigen::MatrixXi & F)
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{
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Eigen::Vector3d m1;
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Eigen::Matrix3d m2;
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double vol = 0;
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igl::moments(V,F,vol,m1,m2);
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return vol;
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};
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double Avol = volume(AV,CF);
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double Pvol = volume(PV,CF);
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double Ovol = volume(OV,CF);
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double Bvol = volume(BV,CF);
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printf("method: %20s %20s %20s %20s\n", "AABB", "PCA", "CGAL", "super_fibonacci");
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printf("volume: %20g %20g %20g %20g\n", Avol, Pvol, Ovol, Bvol);
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printf("time: %20g %20g %20g %20g\n", t_aabb, t_pca, t_cgal, t_best);
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igl::opengl::glfw::Viewer viewer;
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viewer.data().set_mesh(V,F);
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viewer.data().set_face_based(true);
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viewer.append_mesh();
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viewer.data().set_mesh(AV,CF);
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viewer.data().set_face_based(true);
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viewer.data().set_colors(Eigen::RowVector4d(0.43064,0.77072,0.51013,0.5));
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viewer.data().set_edges(AV,CE,Eigen::RowVector3d(0,0,0));
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viewer.data().show_lines = false;
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viewer.append_mesh();
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viewer.data().set_mesh(PV,CF);
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viewer.data().set_face_based(true);
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viewer.data().set_colors(Eigen::RowVector4d(0.9374,0.54164,0.66868,0.5));
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viewer.data().set_edges(PV,CE,Eigen::RowVector3d(0,0,0));
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viewer.data().show_lines = false;
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viewer.append_mesh();
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viewer.data().set_mesh(OV,CF);
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viewer.data().set_face_based(true);
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viewer.data().set_colors(Eigen::RowVector4d(0.91191,0.60119,0.32995,0.5));
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viewer.data().show_lines = false;
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viewer.append_mesh();
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viewer.data().set_mesh(BV,CF);
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viewer.data().set_face_based(true);
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viewer.data().set_colors(Eigen::RowVector4d(0.34481,0.72126,0.96535,0.5));
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viewer.data().show_lines = false;
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viewer.data().set_edges(OV,CE,Eigen::RowVector3d(0,0,0));
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// set background to white
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viewer.core().background_color = Eigen::Vector4f(1,1,1,1);
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viewer.data().show_lines = false;
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viewer.launch();
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}
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