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source: orxonox.OLD/orxonox/trunk/src/lib/collision_detection/obb_tree_node.cc @ 4648

Last change on this file since 4648 was 4648, checked in by patrick, 19 years ago

orxonox/trunk: playing with different center/covariance calculation algorithms. main problem of the hole calc process is to find an ideal center for the obb. will take a little sleep before doing this:)

File size: 24.7 KB
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[4588]1/*
[4541]2   orxonox - the future of 3D-vertical-scrollers
3
4   Copyright (C) 2004 orx
5
6   This program is free software; you can redistribute it and/or modify
7   it under the terms of the GNU General Public License as published by
8   the Free Software Foundation; either version 2, or (at your option)
9   any later version.
10
[4617]11### File Specific:
[4541]12   main-programmer: Patrick Boenzli
13   co-programmer: ...
14*/
15
16#define DEBUG_SPECIAL_MODULE DEBUG_MODULE_COLLISION
17
18#include "obb_tree_node.h"
[4542]19#include "list.h"
20#include "obb.h"
[4616]21#include "obb_tree.h"
[4544]22#include "vector.h"
[4550]23#include "abstract_model.h"
[4541]24
[4543]25#include <math.h>
26
[4638]27#include "stdincl.h"
[4572]28
[4627]29#include "lin_alg.h"
[4572]30
31
32
[4627]33
[4541]34using namespace std;
35
[4622]36OBBTree*  OBBTreeNode::obbTree = NULL;
[4541]37
[4630]38float**  OBBTreeNode::coMat = NULL;
39float**  OBBTreeNode::eigvMat = NULL;
40float*   OBBTreeNode::eigvlMat = NULL;
41int*     OBBTreeNode::rotCount = NULL;
42
[4541]43/**
44   \brief standard constructor
[4617]45 */
[4588]46OBBTreeNode::OBBTreeNode ()
[4541]47{
[4617]48  this->setClassID(CL_OBB_TREE_NODE, "OBBTreeNode");
[4618]49  this->nodeLeft = NULL;
50  this->nodeRight = NULL;
[4630]51
52  if(coMat == NULL)
53  {
54    coMat = new float*[4];
55    for(int i = 0; i < 4; i++)
56      coMat[i] = new float[4];
57  }
58  if(eigvMat == NULL)
59  {
60    eigvMat = new float*[4];
61    for(int i = 0; i < 4; i++)
62      eigvMat[i] = new float[4];
63  }
64  if( eigvlMat == NULL)
65  {
66    eigvlMat = new float[4];
67  }
68  if( rotCount == NULL)
69    rotCount = new int;
[4638]70
71  this->sphereObj = gluNewQuadric();
[4541]72}
73
74
75/**
76   \brief standard deconstructor
[4617]77 */
[4588]78OBBTreeNode::~OBBTreeNode ()
[4541]79{
80  // delete what has to be deleted here
81}
82
83
[4542]84
85/**
86   \brief creates a new BVTree or BVTree partition
[4614]87   \param depth: how much more depth-steps to go: if == 1 don't go any deeper!
[4542]88   \param verticesList: the list of vertices of the object - each vertices triple is interpreted as a triangle
[4617]89 */
[4544]90void OBBTreeNode::spawnBVTree(const int depth, sVec3D *verticesList, const int length)
[4542]91{
[4638]92  PRINT(0)("\n");
93  this->treeIndex = this->obbTree->getID();
94  PRINTF(0)("OBB Depth: %i, tree index: %i, numVertices: %i\n", depth, treeIndex, length);
[4614]95  this->depth = depth;
96
[4638]97
[4630]98  this->bvElement = new OBB();
[4638]99  this->bvElement->vertices = verticesList;
100  this->bvElement->numOfVertices = length;
101  PRINTF(3)("Created OBBox\n");
[4632]102  this->calculateBoxCovariance(this->bvElement, verticesList, length);
[4638]103  PRINTF(3)("Calculated attributes1\n");
[4632]104  this->calculateBoxEigenvectors(this->bvElement, verticesList, length);
[4638]105  PRINTF(3)("Calculated attributes2\n");
[4632]106  this->calculateBoxAxis(this->bvElement, verticesList, length);
[4638]107  PRINTF(3)("Calculated attributes3\n");
[4617]108
[4632]109
[4614]110  if( likely( this->depth > 0))
111  {
112    this->forkBox(this->bvElement);
[4626]113
[4630]114
[4648]115    if(this->tmpLen1 > 0)
[4638]116    {
117      OBBTreeNode* node1 = new OBBTreeNode();
118      this->nodeLeft = node1;
119      this->nodeLeft->spawnBVTree(depth - 1, this->tmpVert1, this->tmpLen1);
120    }
121    else
122    {
123      PRINTF(0)("Aboarding tree walk: less than 3 vertices left\n");
124    }
[4630]125
[4648]126    if( this->tmpLen2 > 0)
[4638]127    {
128      OBBTreeNode* node2 = new OBBTreeNode();
129      this->nodeRight = node2;
130      this->nodeRight->spawnBVTree(depth - 1, this->tmpVert2, this->tmpLen2);
131    }
132    else
133    {
134      PRINTF(0)("Aboarding tree walk: less than 3 vertices left\n");
135    }
[4630]136
[4614]137  }
[4557]138}
139
140
141
[4632]142void OBBTreeNode::calculateBoxCovariance(OBB* box, sVec3D* verticesList, int length)
[4557]143{
[4543]144  float     facelet[length];                         //!< surface area of the i'th triangle of the convex hull
145  float     face;                                    //!< surface area of the entire convex hull
[4588]146  Vector    centroid[length];                        //!< centroid of the i'th convex hull
[4557]147  Vector    center;                                  //!< the center of the entire hull
[4544]148  Vector    p, q, r;                                 //!< holder of the polygon data, much more conveniant to work with Vector than sVec3d
[4545]149  Vector    t1, t2;                                  //!< temporary values
[4628]150  float     covariance[3][3];                        //!< the covariance matrix
[4648]151  int       mode = 3;                                //!< mode = 0: vertex soup, no connections, mode = 1: 3 following verteces build a triangle
[4588]152
[4553]153  this->numOfVertices = length;
154  this->vertices = verticesList;
155
[4562]156
[4648]157  if( likely(mode == 0))
158  {
159    /* fist compute all the convex hull face/facelets and centroids */
160    for(int i = 0; i < length; i+=3)          /* FIX-ME-QUICK: hops of 3, array indiscontinuity*/
161    {
162      p = verticesList[i];
163      q = verticesList[i + 1];
164      r = verticesList[i + 2];
[4638]165
[4648]166      t1 = p - q; t2 = p - r;
[4638]167
[4648]168      /* finding the facelet surface via cross-product */
169      facelet[i] = 0.5f * fabs( t1.cross(t2).len() );
170      /* update the entire convex hull surface */
171      face += facelet[i];
172
173      /* calculate the cetroid of the hull triangles */
174      centroid[i] = (p + q + r) * 1/3;
175      /* now calculate the centroid of the entire convex hull, weighted average of triangle centroids */
176      center += centroid[i] * facelet[i];
177    }
178    /* take the average of the centroid sum */
179    center /= face;
180    PRINTF(3)("-- Calculated Center\n");
181
182
183    /* now calculate the covariance matrix - if not written in three for-loops, it would compute faster: minor */
184    for(int j = 0; j < 3; ++j)
185    {
186      for(int k = 0; k < 3; ++k)
187      {
188        for(int i = 0; i < length; i+=3)
189        {
190          p = verticesList[i];
191          q = verticesList[i + 1];
192          r = verticesList[i + 2];
193
194          covariance[j][k] = facelet[i] / (12.0f * face) * (9.0f * centroid[i][j] * centroid[i][k] + p[j] * p[k] +
195              q[j] * q[k] + r[j] * r[k]) - center[j] * center[k];
196        }
197      }
198    }
199    PRINTF(3)("-- Calculated Covariance\n");
200  }
201  else if( mode == 1)
[4617]202  {
[4648]203    for( int i = 0; i < length; i+=3)          /* FIX-ME-QUICK: hops of 3, array indiscontinuity*/
204    {
205      p = verticesList[i];
206      q = verticesList[i + 1];
207      r = verticesList[i + 2];
[4588]208
[4648]209      centroid[i] = (p + q + r) / 3.0f;
210      center += centroid[i];
211    }
212    center /= length;
[4588]213
[4648]214    for( int j = 0; j < 3; ++j)
215    {
216      for( int k = 0; k < 3; ++k)
217      {
218        for( int i = 0; i < length; i+=3)
219        {
220          p = verticesList[i];
221          q = verticesList[i +1];
222          r = verticesList[i + 2];
[4545]223
[4648]224          covariance[j][k] = p[j] * p[k] + q[j] * q[k] + r[j] + r[k];
225        }
226        covariance[j][k] /= (3.0f * length);
227      }
228    }
229    PRINTF(3)("-- Calculated Covariance\n");
[4617]230  }
[4648]231  else if( mode == 2)
232  {
233    /* fist compute all the convex hull face/facelets and centroids */
234    for(int i = 0; i < length; i+=3)          /* FIX-ME-QUICK: hops of 3, array indiscontinuity*/
235    {
236      p = verticesList[i];
237      q = verticesList[i + 1];
238      r = verticesList[i + 2];
[4562]239
[4648]240      t1 = p - q; t2 = p - r;
[4562]241
[4648]242      /* finding the facelet surface via cross-product */
243      facelet[i] = 0.5f * fabs( t1.cross(t2).len() );
244      /* update the entire convex hull surface */
245      face += facelet[i];
246
247      /* calculate the cetroid of the hull triangles */
248      centroid[i] = (p + q + r) * 1/3;
249      /* now calculate the centroid of the entire convex hull, weighted average of triangle centroids */
250      center += centroid[i] * facelet[i];
251    }
252    /* take the average of the centroid sum */
253    center /= face;
254    PRINTF(3)("-- Calculated Center\n");
255
256    for( int j = 0; j < 3; ++j)
257    {
258      for( int k = 0; k < 3; ++k)
259      {
260        for( int i = 0; i < length; i+=3)
261        {
262          p = verticesList[i];
263          q = verticesList[i +1];
264          r = verticesList[i + 2];
265
266          covariance[j][k] = p[j] * p[k] + q[j] * q[k] + r[j] + r[k];
267        }
268        covariance[j][k] /= (3.0f * length);
269      }
270    }
271    PRINTF(3)("-- Calculated Covariance\n");
272  }
273  else
[4617]274  {
[4648]275    for( int i = 0; i < length; ++i)          /* FIX-ME-QUICK: hops of 3, array indiscontinuity*/
[4545]276    {
[4648]277      center += verticesList[i];
278    }
279    center /= length;
280
281    for( int j = 0; j < 3; ++j)
282    {
283      for( int k = 0; k < 3; ++k)
[4617]284      {
[4648]285        for( int i = 0; i < length; i+=3)
286        {
287          p = verticesList[i];
288          q = verticesList[i +1];
289          r = verticesList[i + 2];
[4544]290
[4648]291          covariance[j][k] = p[j] * p[k] + q[j] * q[k] + r[j] + r[k];
292        }
293        covariance[j][k] /= (3.0f * length);
[4617]294      }
[4545]295    }
[4648]296    PRINTF(3)("-- Calculated Covariance\n");
[4617]297  }
[4562]298
[4648]299  PRINTF(3)("\nVertex Data:\n");
[4638]300  for(int i = 0; i < length; i++)
301  {
302    //PRINTF(0)("vertex %i: %f, %f, %f\n", i, verticesList[i][0], verticesList[i][1], verticesList[i][2]);
[4648]303    PRINTF(3)("vertex %i: %f, %f, %f\n", i, box->vertices[i][0], box->vertices[i][1], box->vertices[i][2]);
[4638]304  }
[4588]305
[4648]306
[4638]307//   PRINTF(3)("\nCovariance Matrix:\n");
[4629]308//   for(int j = 0; j < 3; ++j)
309//   {
[4638]310//     PRINTF(3)(" |");
[4629]311//     for(int k = 0; k < 3; ++k)
312//     {
[4638]313//       PRINTF(3)(" \b%f ", covariance[j][k]);
[4629]314//     }
[4638]315//     PRINTF(3)(" |\n");
[4629]316//   }
[4638]317  PRINTF(3)("center: %f, %f, %f\n", center.x, center.y, center.z);
[4553]318
[4588]319
[4633]320//   for(int i = 0; i < 3; ++i)
321//   {
322//     box->covarianceMatrix[i][0] = covariance[i][0];
323//     box->covarianceMatrix[i][1] = covariance[i][1];
324//     box->covarianceMatrix[i][3] = covariance[i][2];
325//   }
[4560]326  *box->center = center;
[4638]327  PRINTF(3)("-- Written Result to obb\n");
[4631]328}
[4557]329
[4631]330
331
[4632]332void OBBTreeNode::calculateBoxEigenvectors(OBB* box, sVec3D* verticesList, int length)
[4631]333{
334
[4557]335  /* now getting spanning vectors of the sub-space:
[4617]336  the eigenvectors of a symmertric matrix, such as the
337  covarience matrix are mutually orthogonal.
338  after normalizing them, they can be used as a the basis
339  vectors
[4557]340  */
[4576]341  Vector**              axis = new Vector*[3];                //!< the references to the obb axis
[4588]342
[4631]343  coMat[1][1] = box->covarianceMatrix[0][0]; coMat[1][2] = box->covarianceMatrix[0][1]; coMat[1][3] = box->covarianceMatrix[0][2];
344  coMat[2][1] = box->covarianceMatrix[1][0]; coMat[2][2] = box->covarianceMatrix[1][1]; coMat[2][3] = box->covarianceMatrix[1][2];
345  coMat[3][1] = box->covarianceMatrix[2][0]; coMat[3][2] = box->covarianceMatrix[2][1]; coMat[3][3] = box->covarianceMatrix[2][2];
[4627]346
[4630]347  /* new jacobi tests */
348  JacobI(coMat, 3, eigvlMat, eigvMat, rotCount);
[4638]349  PRINTF(3)("-- Done Jacobi Decomposition\n");
[4628]350
[4627]351
[4638]352//   PRINTF(3)("Jacobi\n");
[4629]353//   for(int j = 1; j < 4; ++j)
354//   {
[4638]355//     PRINTF(3)(" |");
[4629]356//     for(int k = 1; k < 4; ++k)
357//     {
[4638]358//       PRINTF(3)(" \b%f ", eigvMat[j][k]);
[4629]359//     }
[4638]360//     PRINTF(3)(" |\n");
[4629]361//   }
362
[4630]363  axis[0] = new Vector(eigvMat[1][1], eigvMat[2][1], eigvMat[3][1]);
364  axis[1] = new Vector(eigvMat[1][2], eigvMat[2][2], eigvMat[3][2]);
365  axis[2] = new Vector(eigvMat[1][3], eigvMat[2][3], eigvMat[3][3]);
[4576]366  box->axis = axis;
[4638]367  PRINTF(3)("-- Got Axis\n");
[4588]368
[4638]369  PRINTF(0)("eigenvector: %f, %f, %f\n", box->axis[0]->x, box->axis[0]->y, box->axis[0]->z);
370  PRINTF(0)("eigenvector: %f, %f, %f\n", box->axis[1]->x, box->axis[1]->y, box->axis[1]->z);
371  PRINTF(0)("eigenvector: %f, %f, %f\n", box->axis[2]->x, box->axis[2]->y, box->axis[2]->z);
[4632]372}
[4588]373
[4626]374
[4632]375void OBBTreeNode::calculateBoxAxis(OBB* box, sVec3D* verticesList, int length)
[4631]376{
[4630]377
[4576]378  /* now get the axis length */
[4578]379  Line                ax[3];                                 //!< the axis
380  float*              halfLength = new float[3];             //!< half length of the axis
381  float               tmpLength;                             //!< tmp save point for the length
[4609]382  Plane               p0(*box->axis[0], *box->center);       //!< the axis planes
383  Plane               p1(*box->axis[1], *box->center);
384  Plane               p2(*box->axis[2], *box->center);
[4588]385
[4589]386  halfLength[0] = -1.0f;
[4585]387  for(int j = 0; j < length; ++j)
[4578]388  {
[4589]389    tmpLength = fabs(p0.distancePoint(vertices[j]));
[4585]390    if( tmpLength > halfLength[0])
391      halfLength[0] = tmpLength;
[4578]392  }
393
[4589]394  halfLength[1] = -1.0f;
[4585]395  for(int j = 0; j < length; ++j)
396  {
[4589]397    tmpLength = fabs(p1.distancePoint(vertices[j]));
[4585]398    if( tmpLength > halfLength[1])
399      halfLength[1] = tmpLength;
400  }
401
[4589]402  halfLength[2] = -1.0f;
[4585]403  for(int j = 0; j < length; ++j)
404  {
[4589]405    tmpLength = fabs(p2.distancePoint(vertices[j]));
[4585]406    if( tmpLength > halfLength[2])
407      halfLength[2] = tmpLength;
408  }
409
[4586]410  box->halfLength = halfLength;
[4638]411  PRINTF(3)("-- Written Axis to obb\n");
412  PRINTF(3)("-- Finished Calculating Attributes\n");
[4585]413
[4638]414
415
416//   PRINTF(3)("\nwe got length: \n");
417  for(int i = 0; i < 3; ++i)
418  {
419    //if( box->halfLength[i] == 0.0)
420      PRINTF(0)("length[%i] = %f\n", i, box->halfLength[i]);
421  }
[4542]422}
423
424
[4609]425
426/**
427  \brief this separates an ob-box in the middle
428  \param box: the box to separate
429
430  this will separate the box into to smaller boxes. the separation is done along the middle of the longest axis
431 */
[4557]432void OBBTreeNode::forkBox(OBB* box)
433{
434  /* get the longest axis of the box */
[4609]435  float               aLength = -1.0f;                     //!< the length of the longest axis
436  int                 axisIndex = 0;                       //!< this is the nr of the longest axis
437
[4557]438  for(int i = 0; i < 3; ++i)
[4609]439  {
440    if( aLength < box->halfLength[i])
[4557]441    {
[4609]442      aLength = box->halfLength[i];
443      axisIndex = i;
[4557]444    }
[4609]445  }
[4588]446
[4638]447   PRINTF(0)("longest axis is: nr %i with a half-length of: %f\n", axisIndex, aLength);
[4609]448
449
[4557]450  /* get the closest vertex near the center */
[4611]451  float               dist = 999999.0f;                    //!< the smallest distance to each vertex
[4609]452  float               tmpDist;                             //!< temporary distance
453  int                 vertexIndex;
[4611]454  Plane               middlePlane(*box->axis[axisIndex], *box->center); //!< the middle plane
[4588]455
[4609]456  for(int i = 0; i < box->numOfVertices; ++i)
457  {
[4611]458    tmpDist = fabs(middlePlane.distancePoint(box->vertices[i]));
459    if( tmpDist < dist)
460    {
[4609]461      dist = tmpDist;
[4611]462      vertexIndex = i;
463    }
[4609]464  }
465
[4638]466//   PRINTF(3)("\nthe clostest vertex is nr: %i, with a dist of: %f\n", vertexIndex ,dist);
[4609]467
468
[4611]469  /* now definin the separation plane through this specified nearest point and partition
[4617]470  the points depending on which side they are located
[4611]471  */
472  tList<sVec3D>      partition1;                           //!< the vertex partition 1
473  tList<sVec3D>      partition2;                           //!< the vertex partition 2
474
[4632]475
476  this->separationPlane = new Plane(*box->axis[axisIndex], box->vertices[vertexIndex]);  //!< separation plane
477  this->sepPlaneCenter = &box->vertices[vertexIndex];
478  this->longestAxisIndex = axisIndex;
479
[4612]480  for(int i = 0; i < box->numOfVertices; ++i)
481  {
[4632]482    if( this->separationPlane->distancePoint(box->vertices[i]) > 0.0f)
[4612]483      partition1.add(&box->vertices[i]);
484    else
485      partition2.add(&box->vertices[i]);
486  }
[4613]487  partition1.add(&box->vertices[vertexIndex]);
[4611]488
[4638]489//   PRINTF(3)("\npartition1: got %i vertices/ partition 2: got %i vertices\n", partition1.getSize(), partition2.getSize());
[4612]490
[4613]491
492  /* now comes the separation into two different sVec3D arrays */
493  tIterator<sVec3D>* iterator;                             //!< the iterator to go through the lists
494  sVec3D*            element;                              //!< the elements
495  int                index;                                //!< index storage place
496  sVec3D*            vertList1;                            //!< the vertex list 1
497  sVec3D*            vertList2;                            //!< the vertex list 2
498
499  vertList1 = new sVec3D[partition1.getSize()];
500  vertList2 = new sVec3D[partition2.getSize()];
501
502  iterator = partition1.getIterator();
503  element = iterator->nextElement();
504  index = 0;
505  while( element != NULL)
506  {
507    vertList1[index][0] = element[0][0];
508    vertList1[index][1] = element[0][1];
509    vertList1[index][2] = element[0][2];
510    ++index;
511    element = iterator->nextElement();
512  }
513
[4638]514//   PRINTF(0)("\npartition 1:\n");
[4626]515//   for(int i = 0; i < partition1.getSize(); ++i)
516//   {
[4638]517//     PRINTF(0)("v[%i][0] = %f,\tv[%i][1] = %f,\tv[%i][1] = %f\n", i, vertList1[i][0], i, vertList1[i][1], i, vertList1[i][2]);
[4626]518//   }
[4613]519
520  iterator = partition2.getIterator();
521  element = iterator->nextElement();
522  index = 0;
523  while( element != NULL)
524  {
525    vertList2[index][0] = element[0][0];
526    vertList2[index][1] = element[0][1];
527    vertList2[index][2] = element[0][2];
528    ++index;
529    element = iterator->nextElement();
530  }
531
[4630]532  this->tmpVert1 = vertList1;
533  this->tmpVert2 = vertList2;
534  this->tmpLen1 = partition1.getSize();
535  this->tmpLen2 = partition2.getSize();
536
[4638]537  delete iterator;
538
539//   PRINTF(0)("\npartition 2:\n");
[4626]540//   for(int i = 0; i < partition2.getSize(); ++i)
541//   {
[4638]542//     PRINTF(0)("v[%i][0] = %f,\tv[%i][1] = %f,\tv[%i][1] = %f\n", i, vertList2[i][0], i,  vertList2[i][1], i, vertList2[i][2]);
[4626]543//   }
[4557]544}
545
546
[4626]547
548
[4542]549void OBBTreeNode::collideWith(const BVTree &tree)
550{}
551
552
[4626]553
554
[4635]555void OBBTreeNode::drawBV(int depth, int drawMode) const
[4553]556{
[4638]557  this->obbTree->getMaterial(treeIndex)->select();
[4635]558
559  /* draw the model itself, there is some problem concerning this: the vertices are drawn multiple times */
560  if( drawMode & DRAW_MODEL || drawMode & DRAW_ALL)
561  {
[4638]562    if( !(drawMode & DRAW_SINGLE && depth != 0))
[4622]563    {
[4648]564      //glBegin(GL_LINE_STRIP);
[4638]565      for(int i = 0; i < this->bvElement->numOfVertices; ++i)
566      {
567        glPushMatrix();
[4648]568        //glMatrixMode(GL_MODELVIEW);
569        //glVertex3f(this->bvElement->vertices[i][0], this->bvElement->vertices[i][1], this->bvElement->vertices[i][2]);
[4638]570        glTranslatef(this->bvElement->vertices[i][0], this->bvElement->vertices[i][1], this->bvElement->vertices[i][2]);
571        gluSphere(this->sphereObj, 1, 10, 10);
[4648]572        //PRINTF(0)("v(%f, %f, %f)\n", this->bvElement->vertices[i][0], this->bvElement->vertices[i][1], this->bvElement->vertices[i][2]);
[4638]573        glPopMatrix();
574      }
[4648]575      //glEnd();
[4622]576    }
[4635]577  }
[4542]578
579
[4589]580  /* draw world axes */
[4618]581//   glBegin(GL_LINES);
582//   glColor3f(0.0, 0.4, 0.3);
583//   glVertex3f(0.0, 0.0, 0.0);
584//   glVertex3f(3.0, 0.0, 0.0);
585//
586//   glVertex3f(0.0, 0.0, 0.0);
587//   glVertex3f(0.0, 3.0, 0.0);
588//
589//   glVertex3f(0.0, 0.0, 0.0);
590//   glVertex3f(0.0, 0.0, 3.0);
591//   glEnd();
[4589]592
593
[4635]594  if( drawMode & DRAW_BV_AXIS || drawMode & DRAW_ALL)
595  {
[4636]596    if( !(drawMode & DRAW_SINGLE && depth != 0))
[4635]597    {
598      /* draw the obb axes */
599      glBegin(GL_LINES);
600      glColor3f(0.0, 0.4, 0.3);
601      glVertex3f(this->bvElement->center->x, this->bvElement->center->y, this->bvElement->center->z);
602      glVertex3f(this->bvElement->center->x + this->bvElement->axis[0]->x * this->bvElement->halfLength[0],
603                 this->bvElement->center->y + this->bvElement->axis[0]->y * this->bvElement->halfLength[0],
604                 this->bvElement->center->z + this->bvElement->axis[0]->z * this->bvElement->halfLength[0]);
[4589]605
[4635]606      glVertex3f(this->bvElement->center->x, this->bvElement->center->y, this->bvElement->center->z);
607      glVertex3f(this->bvElement->center->x + this->bvElement->axis[1]->x * this->bvElement->halfLength[1],
608                 this->bvElement->center->y + this->bvElement->axis[1]->y * this->bvElement->halfLength[1],
609                 this->bvElement->center->z + this->bvElement->axis[1]->z * this->bvElement->halfLength[1]);
[4588]610
[4635]611      glVertex3f(this->bvElement->center->x, this->bvElement->center->y, this->bvElement->center->z);
612      glVertex3f(this->bvElement->center->x + this->bvElement->axis[2]->x * this->bvElement->halfLength[2],
613                 this->bvElement->center->y + this->bvElement->axis[2]->y * this->bvElement->halfLength[2],
614                 this->bvElement->center->z + this->bvElement->axis[2]->z * this->bvElement->halfLength[2]);
615      glEnd();
616    }
617  }
[4581]618
[4588]619
[4635]620  if( drawMode & DRAW_BV_POLYGON || drawMode & DRAW_ALL)
621  {
[4636]622    if( !(drawMode & DRAW_SINGLE && depth != 0))
[4635]623    {
[4636]624    Vector cen = *this->bvElement->center;
625    Vector** axis = this->bvElement->axis;
626    float* len = this->bvElement->halfLength;
[4588]627
[4636]628    /* draw bounding box */
629    glBegin(GL_LINE_LOOP);
630    glVertex3f(cen.x + axis[0]->x * len[0] + axis[1]->x * len[1] + axis[2]->x * len[2],
631               cen.y + axis[0]->y * len[0] + axis[1]->y * len[1] + axis[2]->y * len[2],
632               cen.z + axis[0]->z * len[0] + axis[1]->z * len[1] + axis[2]->z * len[2]);
633    glVertex3f(cen.x + axis[0]->x * len[0] + axis[1]->x * len[1] - axis[2]->x * len[2],
634               cen.y + axis[0]->y * len[0] + axis[1]->y * len[1] - axis[2]->y * len[2],
635               cen.z + axis[0]->z * len[0] + axis[1]->z * len[1] - axis[2]->z * len[2]);
636    glVertex3f(cen.x + axis[0]->x * len[0] - axis[1]->x * len[1] - axis[2]->x * len[2],
637               cen.y + axis[0]->y * len[0] - axis[1]->y * len[1] - axis[2]->y * len[2],
638               cen.z + axis[0]->z * len[0] - axis[1]->z * len[1] - axis[2]->z * len[2]);
639    glVertex3f(cen.x + axis[0]->x * len[0] - axis[1]->x * len[1] + axis[2]->x * len[2],
640               cen.y + axis[0]->y * len[0] - axis[1]->y * len[1] + axis[2]->y * len[2],
641               cen.z + axis[0]->z * len[0] - axis[1]->z * len[1] + axis[2]->z * len[2]);
642    glEnd();
[4588]643
[4636]644    glBegin(GL_LINE_LOOP);
645    glVertex3f(cen.x + axis[0]->x * len[0] - axis[1]->x * len[1] + axis[2]->x * len[2],
646               cen.y + axis[0]->y * len[0] - axis[1]->y * len[1] + axis[2]->y * len[2],
647               cen.z + axis[0]->z * len[0] - axis[1]->z * len[1] + axis[2]->z * len[2]);
648    glVertex3f(cen.x + axis[0]->x * len[0] - axis[1]->x * len[1] - axis[2]->x * len[2],
649               cen.y + axis[0]->y * len[0] - axis[1]->y * len[1] - axis[2]->y * len[2],
650               cen.z + axis[0]->z * len[0] - axis[1]->z * len[1] - axis[2]->z * len[2]);
651    glVertex3f(cen.x - axis[0]->x * len[0] - axis[1]->x * len[1] - axis[2]->x * len[2],
652               cen.y - axis[0]->y * len[0] - axis[1]->y * len[1] - axis[2]->y * len[2],
653               cen.z - axis[0]->z * len[0] - axis[1]->z * len[1] - axis[2]->z * len[2]);
654    glVertex3f(cen.x - axis[0]->x * len[0] - axis[1]->x * len[1] + axis[2]->x * len[2],
655               cen.y - axis[0]->y * len[0] - axis[1]->y * len[1] + axis[2]->y * len[2],
656               cen.z - axis[0]->z * len[0] - axis[1]->z * len[1] + axis[2]->z * len[2]);
657    glEnd();
[4588]658
[4636]659    glBegin(GL_LINE_LOOP);
660    glVertex3f(cen.x - axis[0]->x * len[0] - axis[1]->x * len[1] + axis[2]->x * len[2],
661               cen.y - axis[0]->y * len[0] - axis[1]->y * len[1] + axis[2]->y * len[2],
662               cen.z - axis[0]->z * len[0] - axis[1]->z * len[1] + axis[2]->z * len[2]);
663    glVertex3f(cen.x - axis[0]->x * len[0] - axis[1]->x * len[1] - axis[2]->x * len[2],
664               cen.y - axis[0]->y * len[0] - axis[1]->y * len[1] - axis[2]->y * len[2],
665               cen.z - axis[0]->z * len[0] - axis[1]->z * len[1] - axis[2]->z * len[2]);
666    glVertex3f(cen.x - axis[0]->x * len[0] + axis[1]->x * len[1] - axis[2]->x * len[2],
667               cen.y - axis[0]->y * len[0] + axis[1]->y * len[1] - axis[2]->y * len[2],
668               cen.z - axis[0]->z * len[0] + axis[1]->z * len[1] - axis[2]->z * len[2]);
669    glVertex3f(cen.x - axis[0]->x * len[0] + axis[1]->x * len[1] + axis[2]->x * len[2],
670               cen.y - axis[0]->y * len[0] + axis[1]->y * len[1] + axis[2]->y * len[2],
671               cen.z - axis[0]->z * len[0] + axis[1]->z * len[1] + axis[2]->z * len[2]);
672    glEnd();
[4588]673
[4636]674    glBegin(GL_LINE_LOOP);
675    glVertex3f(cen.x - axis[0]->x * len[0] + axis[1]->x * len[1] - axis[2]->x * len[2],
676               cen.y - axis[0]->y * len[0] + axis[1]->y * len[1] - axis[2]->y * len[2],
677               cen.z - axis[0]->z * len[0] + axis[1]->z * len[1] - axis[2]->z * len[2]);
678    glVertex3f(cen.x - axis[0]->x * len[0] + axis[1]->x * len[1] + axis[2]->x * len[2],
679               cen.y - axis[0]->y * len[0] + axis[1]->y * len[1] + axis[2]->y * len[2],
680               cen.z - axis[0]->z * len[0] + axis[1]->z * len[1] + axis[2]->z * len[2]);
681    glVertex3f(cen.x + axis[0]->x * len[0] + axis[1]->x * len[1] + axis[2]->x * len[2],
682               cen.y + axis[0]->y * len[0] + axis[1]->y * len[1] + axis[2]->y * len[2],
683               cen.z + axis[0]->z * len[0] + axis[1]->z * len[1] + axis[2]->z * len[2]);
684    glVertex3f(cen.x + axis[0]->x * len[0] + axis[1]->x * len[1] - axis[2]->x * len[2],
685               cen.y + axis[0]->y * len[0] + axis[1]->y * len[1] - axis[2]->y * len[2],
686               cen.z + axis[0]->z * len[0] + axis[1]->z * len[1] - axis[2]->z * len[2]);
687    glEnd();
[4635]688    }
[4636]689
[4635]690  }
[4588]691
[4635]692  if( drawMode & DRAW_SEPARATING_PLANE || drawMode & DRAW_ALL)
[4632]693  {
[4636]694    if( !(drawMode & DRAW_SINGLE && depth != 0))
[4635]695    {
[4636]696    /* now draw the separation plane */
697    Vector a1 = *this->bvElement->axis[(this->longestAxisIndex + 1)%3];
698    Vector a2 = *this->bvElement->axis[(this->longestAxisIndex + 2)%3];
699    Vector c = *this->bvElement->center;
700    float l1 = this->bvElement->halfLength[(this->longestAxisIndex + 1)%3];
701    float l2 = this->bvElement->halfLength[(this->longestAxisIndex + 2)%3];
702    glBegin(GL_QUADS);
703    glVertex3f(c.x + a1.x * l1 + a2.x * l2, c.y + a1.y * l1+ a2.y * l2, c.z + a1.z * l1 + a2.z * l2);
704    glVertex3f(c.x - a1.x * l1 + a2.x * l2, c.y - a1.y * l1+ a2.y * l2, c.z - a1.z * l1 + a2.z * l2);
705    glVertex3f(c.x - a1.x * l1 - a2.x * l2, c.y - a1.y * l1- a2.y * l2, c.z - a1.z * l1 - a2.z * l2);
706    glVertex3f(c.x + a1.x * l1 - a2.x * l2, c.y + a1.y * l1- a2.y * l2, c.z + a1.z * l1 - a2.z * l2);
707    glEnd();
[4635]708    }
[4632]709  }
[4588]710
[4622]711  if( this->nodeLeft != NULL && depth != 0 )
[4635]712    this->nodeLeft->drawBV(depth - 1, drawMode);
[4618]713  if( this->nodeRight != NULL && depth != 0)
[4635]714    this->nodeRight->drawBV(depth - 1, drawMode);
[4588]715
[4557]716}
[4542]717
718
[4568]719
720void OBBTreeNode::debug()
721{
722
723  /*
724  for(int i = 0; i < length; i++)
[4617]725  {
[4638]726  PRINTF(3)("vertex %i: %f, %f, %f\n", i, verticesList[i][0], verticesList[i][1], verticesList[i][2]);
[4617]727}
[4568]728  */
729}
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