PTdecode/CImg-1.3.0/examples/mcf_levelsets3d.cpp

Mon, 03 Aug 2009 14:09:20 +0100

author
Philip Pemberton <philpem@philpem.me.uk>
date
Mon, 03 Aug 2009 14:09:20 +0100
changeset 5
1204ebf9340d
permissions
-rwxr-xr-x

added P-touch decoder source

     1 /*
     2  #
     3  #  File        : mcf_levelsets3d.cpp
     4  #                ( C++ source file )
     5  #
     6  #  Description : Implementation of the Mean Curvature Flow on Surfaces
     7  #                using the framework of Level Sets 3D.
     8  #                This file is a part of the CImg Library project.
     9  #                ( http://cimg.sourceforge.net )
    10  #
    11  #  Copyright   : David Tschumperle
    12  #                ( http://www.greyc.ensicaen.fr/~dtschump/ )
    13  #
    14  #  License     : CeCILL v2.0
    15  #                ( http://www.cecill.info/licences/Licence_CeCILL_V2-en.html )
    16  #
    17  #  This software is governed by the CeCILL  license under French law and
    18  #  abiding by the rules of distribution of free software.  You can  use,
    19  #  modify and/ or redistribute the software under the terms of the CeCILL
    20  #  license as circulated by CEA, CNRS and INRIA at the following URL
    21  #  "http://www.cecill.info".
    22  #
    23  #  As a counterpart to the access to the source code and  rights to copy,
    24  #  modify and redistribute granted by the license, users are provided only
    25  #  with a limited warranty  and the software's author,  the holder of the
    26  #  economic rights,  and the successive licensors  have only  limited
    27  #  liability.
    28  #
    29  #  In this respect, the user's attention is drawn to the risks associated
    30  #  with loading,  using,  modifying and/or developing or reproducing the
    31  #  software by the user in light of its specific status of free software,
    32  #  that may mean  that it is complicated to manipulate,  and  that  also
    33  #  therefore means  that it is reserved for developers  and  experienced
    34  #  professionals having in-depth computer knowledge. Users are therefore
    35  #  encouraged to load and test the software's suitability as regards their
    36  #  requirements in conditions enabling the security of their systems and/or
    37  #  data to be ensured and,  more generally, to use and operate it in the
    38  #  same conditions as regards security.
    39  #
    40  #  The fact that you are presently reading this means that you have had
    41  #  knowledge of the CeCILL license and that you accept its terms.
    42  #
    43 */
    45 #include "CImg.h"
    46 using namespace cimg_library;
    48 // The lines below are necessary when using a non-standard compiler as visualcpp6.
    49 #ifdef cimg_use_visualcpp6
    50 #define std
    51 #endif
    52 #ifdef min
    53 #undef min
    54 #undef max
    55 #endif
    57 // Apply the Mean curvature flow PDE
    58 //-----------------------------------
    59 template<typename T> CImg<T>& mcf_PDE(CImg<T>& img, const unsigned int nb_iter,
    60                                       const float dt=0.25f, const float narrow=4.0f) {
    61   CImg<T> veloc(img.dimx(),img.dimy(),img.dimz(),img.dimv());
    62   CImg_3x3x3(I,float);
    63   for (unsigned int iter=0; iter<nb_iter; iter++) {
    64     cimg_for3x3x3(img,x,y,z,0,I) if (cimg::abs(Iccc)<narrow) {
    65       const float
    66         ix = 0.5f*(Incc-Ipcc),
    67         iy = 0.5f*(Icnc-Icpc),
    68         iz = 0.5f*(Iccn-Iccp),
    69         norm = (float)std::sqrt(1e-5f+ix*ix+iy*iy+iz*iz),
    70         ixx = Incc+Ipcc-2*Iccc,
    71         ixy = 0.25f*(Ippc+Innc-Inpc-Ipnc),
    72         ixz = 0.25f*(Ipcp+Incn-Incp-Ipcn),
    73         iyy = Icnc+Icpc-2*Iccc,
    74         iyz = 0.25f*(Icpp+Icnn-Icnp-Icpn),
    75         izz = Iccn+Iccp-2*Iccc,
    76         a = ix/norm,
    77         b = iy/norm,
    78         c = iz/norm,
    79         inn = a*a*ixx + b*b*iyy + c*c*izz + 2*a*b*ixy + 2*a*c*ixz + 2*b*c*iyz;
    80       veloc(x,y,z) = ixx+iyy+izz-inn;
    81     } else veloc(x,y,z) = 0;
    82     float m, M = veloc.maxmin(m);
    83     const double xdt = dt/cimg::max(cimg::abs(m),cimg::abs(M));
    84     img+=xdt*veloc;
    85   }
    86   return img;
    87 }
    89 // Main procedure
    90 //----------------
    91 int main(int argc,char **argv) {
    92   cimg_usage("Mean curvature flow of a surface, using 3D level sets");
    93   const char *file_i = cimg_option("-i",(char*)0,"Input image");
    94   const float dt = cimg_option("-dt",0.05f,"PDE Time step");
    95   const float narrow = cimg_option("-band",5.0f,"Size of the narrow band");
    96   const bool both = cimg_option("-both",false,"Show both evolving and initial surface");
    98   // Define the signed distance map of the initial surface
    99   CImg<> img;
   100   if (file_i) {
   101     const float sigma = cimg_option("-sigma",1.2f,"Segmentation regularity");
   102     const float alpha = cimg_option("-alpha",5.0f,"Region growing tolerance");
   103     img.load(file_i).channel(0);
   104     CImg<int> s;
   105     CImgDisplay disp(img,"Please select a starting point");
   106     while (!s || s[0]<0) s = img.get_select(0,disp);
   107     CImg<> region;
   108     float tmp[1] = { 0 };
   109     img.draw_fill(s[0],s[1],s[2],tmp,1,region,alpha);
   110     ((img = region.normalize(-1,1))*=-1).blur(sigma);
   112   }
   113   else { // Create synthetic implicit function
   114     img.assign(60,60,60);
   115     const float exte[1]={1}, inte[1]={-1};
   116     img.fill(*exte).draw_rectangle(15,15,15,45,45,45,inte).draw_rectangle(25,25,0,35,35,img.dimz()-1,exte).
   117       draw_rectangle(0,25,25,img.dimx()-1,35,35,exte).draw_rectangle(25,0,25,35,img.dimy()-1,35,exte);
   118   }
   119   img.distance_hamilton(10,0,0.1f);
   121   // Compute corresponding surface triangularization by the marching cube algorithm (isovalue 0)
   122   CImg<> points0;
   123   CImgList<unsigned int> faces0;
   124   if (both) points0 = img.get_isovalue3d(faces0,0);
   125   const CImgList<unsigned char> colors0(faces0.size,CImg<unsigned char>::vector(100,200,255));
   126   const CImgList<> opacities0(faces0.size,1,1,1,1,0.2f);
   128   // Perform MCF evolution
   129   CImgDisplay disp(256,256,"",1), disp3d(512,512,"",0);
   130   float alpha = 0, beta = 0;
   131   for (unsigned int iter=0; !disp.is_closed && !disp3d.is_closed && !disp.is_keyESC && !disp3d.is_keyESC &&
   132          !disp.is_keyQ && !disp3d.is_keyQ; iter++) {
   133     disp.set_title("3D implicit Function (iter. %u)",iter);
   134     disp3d.set_title("Mean curvature flow 3D - Isosurface (iter. %u)",iter);
   136     // Apply PDE on the distance function
   137     mcf_PDE(img,1,dt,narrow);                       // Do one iteration of mean curvature flow
   138     if (!(iter%10)) img.distance_hamilton(1,narrow,0.5f); // Every 10 steps, do one iteration of distance function re-initialization
   140     // Compute surface triangularization by the marching cube algorithm (isovalue 0)
   141     CImgList<unsigned int> faces;
   142     CImg<> points = img.get_isovalue3d(faces,0);
   143     CImgList<unsigned char> colors(faces.size,CImg<unsigned char>::vector(200,128,100));
   144     CImgList<> opacities(faces.size,CImg<>::vector(1.0f));
   145     const float fact = 3*cimg::max(disp3d.dimx(),disp3d.dimy())/(4.0f*cimg::max(img.dimx(),img.dimy()));
   147     // Append initial object if necessary.
   148     if (both) {
   149       points.append_object3d(faces,points0,faces0);
   150       colors.insert(colors0);
   151       opacities.insert(opacities0);
   152     }
   154     // center and rescale the objects
   155     cimg_forX(points,l) {
   156       points(l,0)=(points(l,0)-img.dimx()/2)*fact;
   157       points(l,1)=(points(l,1)-img.dimy()/2)*fact;
   158       points(l,2)=(points(l,2)-img.dimz()/2)*fact;
   159     }
   161     // Display 3D object on the display window.
   162     CImg<unsigned char> visu(disp3d.dimx(),disp3d.dimy(),1,3,0);
   163     const CImg<> rot = CImg<>::rotation_matrix(1,0,0,(beta+=0.01f))*CImg<>::rotation_matrix(0,1,1,(alpha+=0.05f));
   164     if (points.size()) {
   165       visu.draw_object3d(visu.dimx()/2.0f,visu.dimy()/2.0f,0.0f,
   166                          rot*points,faces,colors,opacities,3,
   167                          false,500.0,0.0f,0.0f,-8000.0f).display(disp3d);
   168     } else visu.fill(0).display(disp3d);
   169     img.display(disp.wait(20));
   171     if ((disp3d.button || disp3d.key) && points.size()) {
   172       unsigned char white[3]={ 255,255,255 };
   173       visu.fill(0).draw_text(10,10,"Time stopped, press any key to start again",white).
   174         display_object3d(disp3d,points,faces,colors,opacities,true,4,3,false,500,0.4f,0.3f);
   175       disp3d.key = 0;
   176     }
   177     if (disp.is_resized)   disp.resize(false);
   178     if (disp3d.is_resized) disp3d.resize(false);
   179   }
   181   // Exit
   182   return 0;
   183 }