1 | #include <stack>
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2 | #include <algorithm>
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3 | #include <queue>
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4 | #include "Environment.h"
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5 | #include "Mesh.h"
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6 | #include "KdTree.h"
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7 | #include "ViewCell.h"
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8 | #include "Beam.h"
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9 |
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10 |
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11 |
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12 | namespace GtpVisibilityPreprocessor {
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13 |
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14 | int KdNode::sMailId = 1;
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15 | int KdNode::sReservedMailboxes = 1;
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16 |
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17 | inline static bool ilt(Intersectable *obj1, Intersectable *obj2)
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18 | {
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19 | return obj1->mId < obj2->mId;
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20 | }
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21 |
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22 |
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23 | KdNode::KdNode(KdInterior *parent):mParent(parent), mMailbox(0), mIntersectable(NULL)
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24 |
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25 | {
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26 | if (parent)
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27 | mDepth = parent->mDepth+1;
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28 | else
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29 | mDepth = 0;
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30 | }
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31 |
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32 |
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33 | KdInterior::~KdInterior()
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34 | {
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35 | // recursivly destroy children
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36 | DEL_PTR(mFront);
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37 | DEL_PTR(mBack);
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38 | }
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39 |
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40 |
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41 | KdTree::KdTree()
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42 | {
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43 |
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44 |
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45 | mRoot = new KdLeaf(NULL, 0);
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46 | Environment::GetSingleton()->GetIntValue("KdTree.Termination.maxNodes", mTermMaxNodes);
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47 | Environment::GetSingleton()->GetIntValue("KdTree.Termination.maxDepth", mTermMaxDepth);
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48 | Environment::GetSingleton()->GetIntValue("KdTree.Termination.minCost", mTermMinCost);
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49 | Environment::GetSingleton()->GetFloatValue("KdTree.Termination.maxCostRatio", mMaxCostRatio);
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50 | Environment::GetSingleton()->GetFloatValue("KdTree.Termination.ct_div_ci", mCt_div_ci);
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51 | Environment::GetSingleton()->GetFloatValue("KdTree.splitBorder", mSplitBorder);
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52 |
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53 | Environment::GetSingleton()->GetBoolValue("KdTree.sahUseFaces", mSahUseFaces);
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54 |
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55 | char splitType[64];
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56 | Environment::GetSingleton()->GetStringValue("KdTree.splitMethod", splitType);
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57 |
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58 | mSplitMethod = SPLIT_SPATIAL_MEDIAN;
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59 | if (strcmp(splitType, "spatialMedian") == 0)
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60 | mSplitMethod = SPLIT_SPATIAL_MEDIAN;
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61 | else
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62 | if (strcmp(splitType, "objectMedian") == 0)
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63 | mSplitMethod = SPLIT_OBJECT_MEDIAN;
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64 | else
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65 | if (strcmp(splitType, "SAH") == 0)
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66 | mSplitMethod = SPLIT_SAH;
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67 | else {
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68 | cerr<<"Wrong kd split type "<<splitType<<endl;
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69 | exit(1);
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70 | }
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71 | splitCandidates = NULL;
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72 | }
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73 |
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74 |
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75 | KdTree::~KdTree()
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76 | {
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77 | DEL_PTR(mRoot);
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78 | }
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79 |
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80 |
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81 | bool
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82 | KdTree::Construct()
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83 | {
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84 |
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85 | if (!splitCandidates)
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86 | splitCandidates = new vector<SortableEntry>;
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87 |
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88 | // first construct a leaf that will get subdivide
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89 | KdLeaf *leaf = (KdLeaf *) mRoot;
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90 |
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91 | mStat.nodes = 1;
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92 |
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93 | mBox.Initialize();
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94 | ObjectContainer::const_iterator mi;
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95 | for ( mi = leaf->mObjects.begin();
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96 | mi != leaf->mObjects.end();
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97 | mi++) {
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98 | // cout<<(*mi)->GetBox()<<endl;
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99 | mBox.Include((*mi)->GetBox());
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100 | }
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101 |
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102 | cout <<"KdTree Root Box:"<<mBox<<endl;
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103 | mRoot = Subdivide(TraversalData(leaf, mBox, 0));
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104 |
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105 | // remove the allocated array
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106 | delete splitCandidates;
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107 |
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108 | return true;
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109 | }
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110 |
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111 | KdNode *
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112 | KdTree::Subdivide(const TraversalData &tdata)
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113 | {
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114 |
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115 | KdNode *result = NULL;
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116 |
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117 | priority_queue<TraversalData> tStack;
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118 | // stack<STraversalData> tStack;
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119 |
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120 | tStack.push(tdata);
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121 | AxisAlignedBox3 backBox, frontBox;
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122 |
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123 | while (!tStack.empty()) {
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124 | // cout<<mStat.Nodes()<<" "<<mTermMaxNodes<<endl;
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125 | if (mStat.Nodes() > mTermMaxNodes) {
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126 | // if ( GetMemUsage() > maxMemory ) {
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127 | // count statistics on unprocessed leafs
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128 | while (!tStack.empty()) {
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129 | EvaluateLeafStats(tStack.top());
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130 | tStack.pop();
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131 | }
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132 | break;
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133 | }
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134 |
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135 |
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136 | TraversalData data = tStack.top();
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137 | tStack.pop();
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138 |
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139 | KdNode *node = SubdivideNode((KdLeaf *) data.mNode,
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140 | data.mBox,
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141 | backBox,
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142 | frontBox
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143 | );
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144 |
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145 | if (result == NULL)
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146 | result = node;
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147 |
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148 | if (!node->IsLeaf()) {
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149 |
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150 | KdInterior *interior = (KdInterior *) node;
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151 | // push the children on the stack
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152 | tStack.push(TraversalData(interior->mBack, backBox, data.mDepth+1));
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153 | tStack.push(TraversalData(interior->mFront, frontBox, data.mDepth+1));
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154 |
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155 | } else {
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156 | EvaluateLeafStats(data);
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157 | }
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158 | }
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159 |
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160 | return result;
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161 |
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162 | }
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163 |
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164 |
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165 |
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166 | bool
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167 | KdTree::TerminationCriteriaMet(const KdLeaf *leaf)
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168 | {
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169 | // cerr<<"\n OBJECTS="<<leaf->mObjects.size()<<endl;
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170 | return
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171 | ((int)leaf->mObjects.size() <= mTermMinCost) ||
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172 | (leaf->mDepth >= mTermMaxDepth);
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173 |
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174 | }
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175 |
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176 |
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177 | int
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178 | KdTree::SelectPlane(KdLeaf *leaf,
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179 | const AxisAlignedBox3 &box,
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180 | float &position
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181 | )
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182 | {
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183 | int axis = -1;
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184 |
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185 | switch (mSplitMethod)
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186 | {
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187 | case SPLIT_SPATIAL_MEDIAN: {
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188 | axis = box.Size().DrivingAxis();
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189 | position = (box.Min()[axis] + box.Max()[axis])*0.5f;
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190 | break;
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191 | }
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192 | case SPLIT_SAH: {
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193 | int objectsBack, objectsFront;
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194 | float costRatio;
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195 | bool mOnlyDrivingAxis = true;
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196 |
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197 | if (mOnlyDrivingAxis) {
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198 | axis = box.Size().DrivingAxis();
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199 | costRatio = BestCostRatio(leaf,
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200 | box,
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201 | axis,
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202 | position,
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203 | objectsBack,
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204 | objectsFront);
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205 | } else {
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206 | costRatio = MAX_FLOAT;
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207 | for (int i=0; i < 3; i++) {
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208 | float p;
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209 | float r = BestCostRatio(leaf,
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210 | box,
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211 | i,
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212 | p,
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213 | objectsBack,
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214 | objectsFront);
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215 | if (r < costRatio) {
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216 | costRatio = r;
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217 | axis = i;
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218 | position = p;
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219 | }
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220 | }
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221 | }
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222 |
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223 | if (costRatio > mMaxCostRatio) {
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224 | //cout<<"Too big cost ratio "<<costRatio<<endl;
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225 | axis = -1;
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226 | }
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227 | break;
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228 | }
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229 |
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230 | }
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231 | return axis;
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232 | }
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233 |
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234 | KdNode *
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235 | KdTree::SubdivideNode(
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236 | KdLeaf *leaf,
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237 | const AxisAlignedBox3 &box,
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238 | AxisAlignedBox3 &backBBox,
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239 | AxisAlignedBox3 &frontBBox
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240 | )
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241 | {
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242 |
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243 | if (TerminationCriteriaMet(leaf))
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244 | return leaf;
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245 |
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246 | float position;
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247 |
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248 | // select subdivision axis
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249 | int axis = SelectPlane( leaf, box, position );
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250 |
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251 | if (axis == -1) {
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252 | return leaf;
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253 | }
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254 |
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255 | mStat.nodes+=2;
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256 | mStat.splits[axis]++;
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257 |
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258 | // add the new nodes to the tree
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259 | KdInterior *node = new KdInterior(leaf->mParent);
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260 |
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261 | node->mAxis = axis;
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262 | node->mPosition = position;
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263 | node->mBox = box;
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264 |
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265 | backBBox = box;
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266 | frontBBox = box;
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267 |
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268 | // first count ray sides
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269 | int objectsBack = 0;
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270 | int objectsFront = 0;
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271 |
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272 | backBBox.SetMax(axis, position);
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273 | frontBBox.SetMin(axis, position);
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274 |
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275 | ObjectContainer::const_iterator mi;
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276 |
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277 | for ( mi = leaf->mObjects.begin();
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278 | mi != leaf->mObjects.end();
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279 | mi++) {
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280 | // determine the side of this ray with respect to the plane
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281 | AxisAlignedBox3 box = (*mi)->GetBox();
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282 | if (box.Max(axis) > position )
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283 | objectsFront++;
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284 |
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285 | if (box.Min(axis) < position )
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286 | objectsBack++;
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287 | }
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288 |
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289 |
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290 | KdLeaf *back = new KdLeaf(node, objectsBack);
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291 | KdLeaf *front = new KdLeaf(node, objectsFront);
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292 |
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293 |
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294 | // replace a link from node's parent
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295 | if ( leaf->mParent )
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296 | leaf->mParent->ReplaceChildLink(leaf, node);
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297 |
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298 | // and setup child links
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299 | node->SetupChildLinks(back, front);
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300 |
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301 | for (mi = leaf->mObjects.begin();
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302 | mi != leaf->mObjects.end();
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303 | mi++) {
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304 | // determine the side of this ray with respect to the plane
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305 | AxisAlignedBox3 box = (*mi)->GetBox();
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306 |
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307 | // matt: no more ref
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308 | // for handling multiple objects: keep track of references
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309 | //if (leaf->IsRoot())
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310 | // (*mi)->mReferences = 1; // initialise references at root
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311 |
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312 | // matt: no more ref
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313 | //-- (*mi)->mReferences; // remove parent ref
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314 |
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315 |
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316 | if (box.Max(axis) >= position )
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317 | {
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318 | front->mObjects.push_back(*mi);
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319 | //++ (*mi)->mReferences;
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320 | }
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321 |
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322 | if (box.Min(axis) < position )
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323 | {
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324 | back->mObjects.push_back(*mi);
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325 | // matt: no more ref
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326 | // ++ (*mi)->mReferences;
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327 | }
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328 |
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329 | mStat.objectRefs -= (int)leaf->mObjects.size();
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330 | mStat.objectRefs += objectsBack + objectsFront;
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331 | }
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332 |
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333 | // store objects referenced in more than one leaf
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334 | // for easy access
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335 | ProcessMultipleRefs(back);
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336 | ProcessMultipleRefs(front);
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337 |
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338 | delete leaf;
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339 | return node;
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340 | }
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341 |
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342 |
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343 | void KdTree::ProcessMultipleRefs(KdLeaf *leaf) const
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344 | {
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345 | // find objects from multiple kd-leaves
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346 | ObjectContainer::const_iterator oit, oit_end = leaf->mObjects.end();
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347 |
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348 | for (oit = leaf->mObjects.begin(); oit != oit_end; ++ oit)
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349 | {
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350 | Intersectable *object = *oit;
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351 |
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352 | // matt: no more ref
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353 | /*if (object->mReferences > 1)
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354 | {
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355 | leaf->mMultipleObjects.push_back(object);
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356 | }*/
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357 | }
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358 | }
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359 |
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360 |
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361 | void
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362 | KdTreeStatistics::Print(ostream &app) const
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363 | {
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364 | app << "===== KdTree statistics ===============\n";
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365 |
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366 | app << "#N_NODES ( Number of nodes )\n" << nodes << "\n";
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367 |
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368 | app << "#N_LEAVES ( Number of leaves )\n" << Leaves() << "\n";
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369 |
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370 | app << "#N_SPLITS ( Number of splits in axes x y z dx dy dz)\n";
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371 | for (int i=0; i<7; i++)
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372 | app << splits[i] <<" ";
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373 | app <<endl;
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374 |
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375 | app << "#N_RAYREFS ( Number of rayRefs )\n" <<
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376 | rayRefs << "\n";
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377 |
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378 | app << "#N_RAYRAYREFS ( Number of rayRefs / ray )\n" <<
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379 | rayRefs/(double)rays << "\n";
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380 |
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381 | app << "#N_LEAFRAYREFS ( Number of rayRefs / leaf )\n" <<
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382 | rayRefs/(double)Leaves() << "\n";
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383 |
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384 | app << "#N_MAXOBJECTREFS ( Max number of object refs / leaf )\n" <<
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385 | maxObjectRefs << "\n";
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386 |
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387 | app << "#N_NONEMPTYRAYREFS ( Number of rayRefs in nonEmpty leaves / non empty leaf )\n" <<
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388 | rayRefsNonZeroQuery/(double)(Leaves() - zeroQueryNodes) << "\n";
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389 |
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390 | app << "#N_LEAFDOMAINREFS ( Number of query domain Refs / leaf )\n" <<
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391 | objectRefs/(double)Leaves() << "\n";
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392 |
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393 | // app << setprecision(4);
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394 |
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395 | app << "#N_PEMPTYLEAVES ( Percentage of leaves with zero query domains )\n"<<
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396 | zeroQueryNodes*100/(double)Leaves()<<endl;
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397 |
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398 | app << "#N_PMAXDEPTHLEAVES ( Percentage of leaves at maxdepth )\n"<<
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399 | maxDepthNodes*100/(double)Leaves()<<endl;
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400 |
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401 | app << "#N_PMINCOSTLEAVES ( Percentage of leaves with minCost )\n"<<
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402 | minCostNodes*100/(double)Leaves()<<endl;
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403 |
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404 | app << "#N_ADDED_RAYREFS (Number of dynamically added ray references )\n"<<
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405 | addedRayRefs<<endl;
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406 |
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407 | app << "#N_REMOVED_RAYREFS (Number of dynamically removed ray references )\n"<<
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408 | removedRayRefs<<endl;
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409 |
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410 | // app << setprecision(4);
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411 |
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412 | // app << "#N_CTIME ( Construction time [s] )\n"
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413 | // << Time() << " \n";
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414 |
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415 | app << "===== END OF KdTree statistics ==========\n";
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416 |
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417 | }
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418 |
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419 |
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420 |
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421 | void
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422 | KdTree::EvaluateLeafStats(const TraversalData &data)
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423 | {
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424 |
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425 | // the node became a leaf -> evaluate stats for leafs
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426 | KdLeaf *leaf = (KdLeaf *)data.mNode;
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427 |
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428 | if (data.mDepth > mTermMaxDepth)
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429 | mStat.maxDepthNodes++;
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430 |
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431 | if ( (int)(leaf->mObjects.size()) < mTermMinCost)
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432 | mStat.minCostNodes++;
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433 |
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434 |
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435 | if ( (int)(leaf->mObjects.size()) > mStat.maxObjectRefs)
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436 | mStat.maxObjectRefs = (int)leaf->mObjects.size();
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437 |
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438 | }
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439 |
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440 |
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441 |
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442 | void
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443 | KdTree::SortSubdivisionCandidates(
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444 | KdLeaf *node,
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445 | const int axis
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446 | )
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447 | {
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448 | splitCandidates->clear();
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449 |
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450 | int requestedSize = 2*(int)node->mObjects.size();
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451 | // creates a sorted split candidates array
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452 | if (splitCandidates->capacity() > 500000 &&
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453 | requestedSize < (int)(splitCandidates->capacity()/10) ) {
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454 | delete splitCandidates;
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455 | splitCandidates = new vector<SortableEntry>;
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456 | }
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457 |
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458 | splitCandidates->reserve(requestedSize);
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459 |
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460 | // insert all queries
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461 | for(ObjectContainer::const_iterator mi = node->mObjects.begin();
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462 | mi != node->mObjects.end();
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463 | mi++) {
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464 | AxisAlignedBox3 box = (*mi)->GetBox();
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465 |
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466 | splitCandidates->push_back(SortableEntry(SortableEntry::BOX_MIN,
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467 | box.Min(axis),
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468 | *mi)
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469 | );
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470 |
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471 |
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472 | splitCandidates->push_back(SortableEntry(SortableEntry::BOX_MAX,
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473 | box.Max(axis),
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474 | *mi)
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475 | );
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476 | }
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477 |
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478 | stable_sort(splitCandidates->begin(), splitCandidates->end());
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479 | }
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480 |
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481 |
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482 | float
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483 | KdTree::BestCostRatio(
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484 | KdLeaf *node,
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485 | const AxisAlignedBox3 &box,
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486 | const int axis,
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487 | float &position,
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488 | int &objectsBack,
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489 | int &objectsFront
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490 | )
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491 | {
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492 |
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493 | #define DEBUG_COST 0
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494 |
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495 | #if DEBUG_COST
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496 | static int nodeId = -1;
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497 | char filename[256];
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498 |
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499 | static int lastAxis = 100;
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500 | if (axis <= lastAxis)
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501 | nodeId++;
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502 |
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503 | lastAxis = axis;
|
---|
504 |
|
---|
505 | sprintf(filename, "sah-cost%d-%d.log", nodeId, axis);
|
---|
506 | ofstream costStream;
|
---|
507 |
|
---|
508 | if (nodeId < 100)
|
---|
509 | costStream.open(filename);
|
---|
510 |
|
---|
511 | #endif
|
---|
512 |
|
---|
513 | SortSubdivisionCandidates(node, axis);
|
---|
514 |
|
---|
515 | // go through the lists, count the number of objects left and right
|
---|
516 | // and evaluate the following cost funcion:
|
---|
517 | // C = ct_div_ci + (ol + or)/queries
|
---|
518 |
|
---|
519 | float totalIntersections = 0.0f;
|
---|
520 | vector<SortableEntry>::const_iterator ci;
|
---|
521 |
|
---|
522 | for(ci = splitCandidates->begin();
|
---|
523 | ci < splitCandidates->end();
|
---|
524 | ci++)
|
---|
525 | if ((*ci).type == SortableEntry::BOX_MIN) {
|
---|
526 | totalIntersections += (*ci).intersectable->IntersectionComplexity();
|
---|
527 | }
|
---|
528 |
|
---|
529 | float intersectionsLeft = 0;
|
---|
530 | float intersectionsRight = totalIntersections;
|
---|
531 |
|
---|
532 | int objectsLeft = 0, objectsRight = (int)node->mObjects.size();
|
---|
533 |
|
---|
534 | float minBox = box.Min(axis);
|
---|
535 | float maxBox = box.Max(axis);
|
---|
536 | float boxArea = box.SurfaceArea();
|
---|
537 |
|
---|
538 | float minBand = minBox + mSplitBorder*(maxBox - minBox);
|
---|
539 | float maxBand = minBox + (1.0f - mSplitBorder)*(maxBox - minBox);
|
---|
540 |
|
---|
541 | float minSum = 1e20f;
|
---|
542 |
|
---|
543 | for(ci = splitCandidates->begin();
|
---|
544 | ci < splitCandidates->end();
|
---|
545 | ci++) {
|
---|
546 | switch ((*ci).type) {
|
---|
547 | case SortableEntry::BOX_MIN:
|
---|
548 | objectsLeft++;
|
---|
549 | intersectionsLeft += (*ci).intersectable->IntersectionComplexity();
|
---|
550 | break;
|
---|
551 | case SortableEntry::BOX_MAX:
|
---|
552 | objectsRight--;
|
---|
553 | intersectionsRight -= (*ci).intersectable->IntersectionComplexity();
|
---|
554 | break;
|
---|
555 | }
|
---|
556 |
|
---|
557 | if ((*ci).value > minBand && (*ci).value < maxBand) {
|
---|
558 | AxisAlignedBox3 lbox = box;
|
---|
559 | AxisAlignedBox3 rbox = box;
|
---|
560 | lbox.SetMax(axis, (*ci).value);
|
---|
561 | rbox.SetMin(axis, (*ci).value);
|
---|
562 |
|
---|
563 | float sum;
|
---|
564 | if (mSahUseFaces)
|
---|
565 | sum = intersectionsLeft*lbox.SurfaceArea() + intersectionsRight*rbox.SurfaceArea();
|
---|
566 | else
|
---|
567 | sum = objectsLeft*lbox.SurfaceArea() + objectsRight*rbox.SurfaceArea();
|
---|
568 |
|
---|
569 | // cout<<"pos="<<(*ci).value<<"\t q=("<<ql<<","<<qr<<")\t r=("<<rl<<","<<rr<<")"<<endl;
|
---|
570 | // cout<<"cost= "<<sum<<endl;
|
---|
571 |
|
---|
572 | #if DEBUG_COST
|
---|
573 | if (nodeId < 100) {
|
---|
574 | float oldCost = mSahUseFaces ? totalIntersections : node->mObjects.size();
|
---|
575 | float newCost = mCt_div_ci + sum/boxArea;
|
---|
576 | float ratio = newCost/oldCost;
|
---|
577 | costStream<<(*ci).value<<" "<<ratio<<endl;
|
---|
578 | }
|
---|
579 | #endif
|
---|
580 |
|
---|
581 | if (sum < minSum) {
|
---|
582 | minSum = sum;
|
---|
583 | position = (*ci).value;
|
---|
584 |
|
---|
585 | objectsBack = objectsLeft;
|
---|
586 | objectsFront = objectsRight;
|
---|
587 | }
|
---|
588 | }
|
---|
589 | }
|
---|
590 |
|
---|
591 | float oldCost = mSahUseFaces ? totalIntersections : node->mObjects.size();
|
---|
592 | float newCost = mCt_div_ci + minSum/boxArea;
|
---|
593 | float ratio = newCost/oldCost;
|
---|
594 |
|
---|
595 | #if 0
|
---|
596 | cout<<"===================="<<endl;
|
---|
597 | cout<<"costRatio="<<ratio<<" pos="<<position<<" t="<<(position - minBox)/(maxBox - minBox)
|
---|
598 | <<"\t o=("<<objectsBack<<","<<objectsFront<<")"<<endl;
|
---|
599 | #endif
|
---|
600 | return ratio;
|
---|
601 | }
|
---|
602 |
|
---|
603 | int
|
---|
604 | KdTree::CastRay(
|
---|
605 | Ray &ray
|
---|
606 | )
|
---|
607 | {
|
---|
608 | int hits = 0;
|
---|
609 |
|
---|
610 | stack<RayTraversalData> tStack;
|
---|
611 |
|
---|
612 | float maxt = 1e6;
|
---|
613 | float mint = 0;
|
---|
614 |
|
---|
615 | // ray.ComputeInvertedDir();
|
---|
616 |
|
---|
617 | Intersectable::NewMail();
|
---|
618 |
|
---|
619 | if (!mBox.GetMinMaxT(ray, &mint, &maxt))
|
---|
620 | return 0;
|
---|
621 |
|
---|
622 | if (mint < 0)
|
---|
623 | mint = 0;
|
---|
624 |
|
---|
625 |
|
---|
626 | maxt += Limits::Threshold;
|
---|
627 |
|
---|
628 | Vector3 entp = ray.Extrap(mint);
|
---|
629 | Vector3 extp = ray.Extrap(maxt);
|
---|
630 |
|
---|
631 | KdNode *node = mRoot;
|
---|
632 | KdNode *farChild;
|
---|
633 | float position;
|
---|
634 | int axis;
|
---|
635 |
|
---|
636 |
|
---|
637 | while (1) {
|
---|
638 | if (!node->IsLeaf()) {
|
---|
639 | KdInterior *in = (KdInterior *) node;
|
---|
640 | position = in->mPosition;
|
---|
641 | axis = in->mAxis;
|
---|
642 |
|
---|
643 | if (entp[axis] <= position) {
|
---|
644 | if (extp[axis] <= position) {
|
---|
645 | node = in->mBack;
|
---|
646 | // cases N1,N2,N3,P5,Z2,Z3
|
---|
647 | continue;
|
---|
648 | } else {
|
---|
649 | // case N4
|
---|
650 | node = in->mBack;
|
---|
651 | farChild = in->mFront;
|
---|
652 | }
|
---|
653 | }
|
---|
654 | else {
|
---|
655 | if (position <= extp[axis]) {
|
---|
656 | node = in->mFront;
|
---|
657 | // cases P1,P2,P3,N5,Z1
|
---|
658 | continue;
|
---|
659 | } else {
|
---|
660 | node = in->mFront;
|
---|
661 | farChild = in->mBack;
|
---|
662 | // case P4
|
---|
663 | }
|
---|
664 | }
|
---|
665 | // $$ modification 3.5.2004 - hints from Kamil Ghais
|
---|
666 | // case N4 or P4
|
---|
667 | float tdist = (position - ray.GetLoc(axis)) / ray.GetDir(axis);
|
---|
668 | tStack.push(RayTraversalData(farChild, extp, maxt));
|
---|
669 | extp = ray.GetLoc() + ray.GetDir()*tdist;
|
---|
670 | maxt = tdist;
|
---|
671 | } else {
|
---|
672 | // compute intersection with all objects in this leaf
|
---|
673 | KdLeaf *leaf = (KdLeaf *) node;
|
---|
674 | if (ray.mFlags & Ray::STORE_KDLEAVES)
|
---|
675 | ray.kdLeaves.push_back(leaf);
|
---|
676 |
|
---|
677 | ObjectContainer::const_iterator mi;
|
---|
678 | for ( mi = leaf->mObjects.begin();
|
---|
679 | mi != leaf->mObjects.end();
|
---|
680 | mi++) {
|
---|
681 | Intersectable *object = *mi;
|
---|
682 | if (!object->Mailed() ) {
|
---|
683 | object->Mail();
|
---|
684 | if (ray.mFlags & Ray::STORE_TESTED_OBJECTS)
|
---|
685 | ray.testedObjects.push_back(object);
|
---|
686 |
|
---|
687 | static int oi=1;
|
---|
688 | if (MeshDebug)
|
---|
689 | cout<<"Object "<<oi++;
|
---|
690 |
|
---|
691 | hits += object->CastRay(ray);
|
---|
692 |
|
---|
693 | if (MeshDebug) {
|
---|
694 | if (!ray.intersections.empty())
|
---|
695 | cout<<"nearest t="<<ray.intersections[0].mT<<endl;
|
---|
696 | else
|
---|
697 | cout<<"nearest t=-INF"<<endl;
|
---|
698 | }
|
---|
699 | }
|
---|
700 | }
|
---|
701 |
|
---|
702 | if (hits && ray.GetType() == Ray::LOCAL_RAY)
|
---|
703 | if (ray.intersections[0].mT <= maxt)
|
---|
704 | break;
|
---|
705 |
|
---|
706 | // get the next node from the stack
|
---|
707 | if (tStack.empty())
|
---|
708 | break;
|
---|
709 |
|
---|
710 | entp = extp;
|
---|
711 | mint = maxt;
|
---|
712 | if (ray.GetType() == Ray::LINE_SEGMENT && mint > 1.0f)
|
---|
713 | break;
|
---|
714 |
|
---|
715 | RayTraversalData &s = tStack.top();
|
---|
716 | node = s.mNode;
|
---|
717 | extp = s.mExitPoint;
|
---|
718 | maxt = s.mMaxT;
|
---|
719 | tStack.pop();
|
---|
720 | }
|
---|
721 | }
|
---|
722 | return hits;
|
---|
723 | }
|
---|
724 |
|
---|
725 | int KdTree::CastLineSegment(const Vector3 &origin,
|
---|
726 | const Vector3 &termination,
|
---|
727 | ViewCellContainer &viewcells)
|
---|
728 | {
|
---|
729 | int hits = 0;
|
---|
730 |
|
---|
731 | float mint = 0.0f, maxt = 1.0f;
|
---|
732 | const Vector3 dir = termination - origin;
|
---|
733 |
|
---|
734 | stack<RayTraversalData> tStack;
|
---|
735 |
|
---|
736 | Intersectable::NewMail();
|
---|
737 |
|
---|
738 | //maxt += Limits::Threshold;
|
---|
739 |
|
---|
740 | Vector3 entp = origin;
|
---|
741 | Vector3 extp = termination;
|
---|
742 |
|
---|
743 | KdNode *node = mRoot;
|
---|
744 | KdNode *farChild;
|
---|
745 |
|
---|
746 | float position;
|
---|
747 | int axis;
|
---|
748 |
|
---|
749 | while (1)
|
---|
750 | {
|
---|
751 | if (!node->IsLeaf())
|
---|
752 | {
|
---|
753 | KdInterior *in = dynamic_cast<KdInterior *>(node);
|
---|
754 | position = in->mPosition;
|
---|
755 | axis = in->mAxis;
|
---|
756 |
|
---|
757 | if (entp[axis] <= position)
|
---|
758 | {
|
---|
759 | if (extp[axis] <= position)
|
---|
760 | {
|
---|
761 | node = in->mBack;
|
---|
762 | // cases N1,N2,N3,P5,Z2,Z3
|
---|
763 | continue;
|
---|
764 | }
|
---|
765 | else
|
---|
766 | {
|
---|
767 | // case N4
|
---|
768 | node = in->mBack;
|
---|
769 | farChild = in->mFront;
|
---|
770 | }
|
---|
771 | }
|
---|
772 | else
|
---|
773 | {
|
---|
774 | if (position <= extp[axis])
|
---|
775 | {
|
---|
776 | node = in->mFront;
|
---|
777 | // cases P1,P2,P3,N5,Z1
|
---|
778 | continue;
|
---|
779 | }
|
---|
780 | else
|
---|
781 | {
|
---|
782 | node = in->mFront;
|
---|
783 | farChild = in->mBack;
|
---|
784 | // case P4
|
---|
785 | }
|
---|
786 | }
|
---|
787 |
|
---|
788 | // $$ modification 3.5.2004 - hints from Kamil Ghais
|
---|
789 | // case N4 or P4
|
---|
790 | float tdist = (position - origin[axis]) / dir[axis];
|
---|
791 | //tStack.push(RayTraversalData(farChild, extp, maxt)); //TODO
|
---|
792 | extp = origin + dir * tdist;
|
---|
793 | maxt = tdist;
|
---|
794 | }
|
---|
795 | else
|
---|
796 | {
|
---|
797 | // compute intersection with all objects in this leaf
|
---|
798 | KdLeaf *leaf = dynamic_cast<KdLeaf *>(node);
|
---|
799 |
|
---|
800 | // add view cell to intersections
|
---|
801 | ViewCell *vc = leaf->mViewCell;
|
---|
802 |
|
---|
803 | if (!vc->Mailed())
|
---|
804 | {
|
---|
805 | vc->Mail();
|
---|
806 | viewcells.push_back(vc);
|
---|
807 | ++ hits;
|
---|
808 | }
|
---|
809 |
|
---|
810 | // get the next node from the stack
|
---|
811 | if (tStack.empty())
|
---|
812 | break;
|
---|
813 |
|
---|
814 | entp = extp;
|
---|
815 | mint = maxt;
|
---|
816 |
|
---|
817 | RayTraversalData &s = tStack.top();
|
---|
818 | node = s.mNode;
|
---|
819 | extp = s.mExitPoint;
|
---|
820 | maxt = s.mMaxT;
|
---|
821 | tStack.pop();
|
---|
822 | }
|
---|
823 | }
|
---|
824 |
|
---|
825 | return hits;
|
---|
826 | }
|
---|
827 |
|
---|
828 |
|
---|
829 | void
|
---|
830 | KdTree::CollectObjects(const AxisAlignedBox3 &box,
|
---|
831 | ObjectContainer &objects)
|
---|
832 | {
|
---|
833 | stack<KdNode *> nodeStack;
|
---|
834 |
|
---|
835 | nodeStack.push(mRoot);
|
---|
836 |
|
---|
837 | while (!nodeStack.empty()) {
|
---|
838 | KdNode *node = nodeStack.top();
|
---|
839 | nodeStack.pop();
|
---|
840 | if (node->IsLeaf()) {
|
---|
841 | KdLeaf *leaf = (KdLeaf *)node;
|
---|
842 | for (int j=0; j < leaf->mObjects.size(); j++) {
|
---|
843 | Intersectable *object = leaf->mObjects[j];
|
---|
844 | if (!object->Mailed() && Overlap(box, object->GetBox())) {
|
---|
845 | object->Mail();
|
---|
846 | objects.push_back(object);
|
---|
847 | }
|
---|
848 | }
|
---|
849 | } else {
|
---|
850 | KdInterior *interior = (KdInterior *)node;
|
---|
851 |
|
---|
852 | if ( box.Max()[interior->mAxis] > interior->mPosition )
|
---|
853 | nodeStack.push(interior->mFront);
|
---|
854 |
|
---|
855 | if (box.Min()[interior->mAxis] < interior->mPosition)
|
---|
856 | nodeStack.push(interior->mBack);
|
---|
857 | }
|
---|
858 | }
|
---|
859 | }
|
---|
860 |
|
---|
861 | void
|
---|
862 | KdTree::CollectObjects(KdNode *n, ObjectContainer &objects)
|
---|
863 | {
|
---|
864 | stack<KdNode *> nodeStack;
|
---|
865 |
|
---|
866 | nodeStack.push(n);
|
---|
867 |
|
---|
868 | while (!nodeStack.empty()) {
|
---|
869 | KdNode *node = nodeStack.top();
|
---|
870 | nodeStack.pop();
|
---|
871 | if (node->IsLeaf()) {
|
---|
872 | KdLeaf *leaf = (KdLeaf *)node;
|
---|
873 | for (int j=0; j < leaf->mObjects.size(); j++) {
|
---|
874 | Intersectable *object = leaf->mObjects[j];
|
---|
875 | if (!object->Mailed()) {
|
---|
876 | object->Mail();
|
---|
877 | objects.push_back(object);
|
---|
878 | }
|
---|
879 | }
|
---|
880 | } else {
|
---|
881 | KdInterior *interior = (KdInterior *)node;
|
---|
882 | nodeStack.push(interior->mFront);
|
---|
883 | nodeStack.push(interior->mBack);
|
---|
884 | }
|
---|
885 | }
|
---|
886 | }
|
---|
887 |
|
---|
888 | // Find random neighbor which was not mailed
|
---|
889 | KdNode *
|
---|
890 | KdTree::FindRandomNeighbor(KdNode *n,
|
---|
891 | bool onlyUnmailed
|
---|
892 | )
|
---|
893 | {
|
---|
894 | stack<KdNode *> nodeStack;
|
---|
895 |
|
---|
896 | nodeStack.push(mRoot);
|
---|
897 |
|
---|
898 | AxisAlignedBox3 box = GetBox(n);
|
---|
899 | int mask = rand();
|
---|
900 |
|
---|
901 | while (!nodeStack.empty()) {
|
---|
902 | KdNode *node = nodeStack.top();
|
---|
903 | nodeStack.pop();
|
---|
904 | if (node->IsLeaf()) {
|
---|
905 | if ( node != n && (!onlyUnmailed || !node->Mailed()) )
|
---|
906 | return node;
|
---|
907 | } else {
|
---|
908 | KdInterior *interior = (KdInterior *)node;
|
---|
909 | if (interior->mPosition > box.Max(interior->mAxis))
|
---|
910 | nodeStack.push(interior->mBack);
|
---|
911 | else
|
---|
912 | if (interior->mPosition < box.Min(interior->mAxis))
|
---|
913 | nodeStack.push(interior->mFront);
|
---|
914 | else {
|
---|
915 | // random decision
|
---|
916 | if (mask&1)
|
---|
917 | nodeStack.push(interior->mBack);
|
---|
918 | else
|
---|
919 | nodeStack.push(interior->mFront);
|
---|
920 | mask = mask>>1;
|
---|
921 | }
|
---|
922 | }
|
---|
923 | }
|
---|
924 |
|
---|
925 | return NULL;
|
---|
926 | }
|
---|
927 |
|
---|
928 | int
|
---|
929 | KdTree::FindNeighbors(KdNode *n,
|
---|
930 | vector<KdNode *> &neighbors,
|
---|
931 | bool onlyUnmailed
|
---|
932 | )
|
---|
933 | {
|
---|
934 | stack<KdNode *> nodeStack;
|
---|
935 |
|
---|
936 | nodeStack.push(mRoot);
|
---|
937 |
|
---|
938 | AxisAlignedBox3 box = GetBox(n);
|
---|
939 |
|
---|
940 | while (!nodeStack.empty()) {
|
---|
941 | KdNode *node = nodeStack.top();
|
---|
942 | nodeStack.pop();
|
---|
943 | if (node->IsLeaf()) {
|
---|
944 | if ( node != n && (!onlyUnmailed || !node->Mailed()) )
|
---|
945 | neighbors.push_back(node);
|
---|
946 | } else {
|
---|
947 | KdInterior *interior = (KdInterior *)node;
|
---|
948 | if (interior->mPosition > box.Max(interior->mAxis))
|
---|
949 | nodeStack.push(interior->mBack);
|
---|
950 | else
|
---|
951 | if (interior->mPosition < box.Min(interior->mAxis))
|
---|
952 | nodeStack.push(interior->mFront);
|
---|
953 | else {
|
---|
954 | // random decision
|
---|
955 | nodeStack.push(interior->mBack);
|
---|
956 | nodeStack.push(interior->mFront);
|
---|
957 | }
|
---|
958 | }
|
---|
959 | }
|
---|
960 |
|
---|
961 | return (int)neighbors.size();
|
---|
962 | }
|
---|
963 |
|
---|
964 | // Find random neighbor which was not mailed
|
---|
965 | KdNode *
|
---|
966 | KdTree::GetRandomLeaf(const Plane3 &plane)
|
---|
967 | {
|
---|
968 | stack<KdNode *> nodeStack;
|
---|
969 |
|
---|
970 | nodeStack.push(mRoot);
|
---|
971 |
|
---|
972 | int mask = rand();
|
---|
973 |
|
---|
974 | while (!nodeStack.empty()) {
|
---|
975 | KdNode *node = nodeStack.top();
|
---|
976 | nodeStack.pop();
|
---|
977 | if (node->IsLeaf()) {
|
---|
978 | return node;
|
---|
979 | } else {
|
---|
980 | KdInterior *interior = (KdInterior *)node;
|
---|
981 | KdNode *next;
|
---|
982 | if (GetBox(interior->mBack).Side(plane) < 0)
|
---|
983 | next = interior->mFront;
|
---|
984 | else
|
---|
985 | if (GetBox(interior->mFront).Side(plane) < 0)
|
---|
986 | next = interior->mBack;
|
---|
987 | else {
|
---|
988 | // random decision
|
---|
989 | if (mask&1)
|
---|
990 | next = interior->mBack;
|
---|
991 | else
|
---|
992 | next = interior->mFront;
|
---|
993 | mask = mask>>1;
|
---|
994 | }
|
---|
995 | nodeStack.push(next);
|
---|
996 | }
|
---|
997 | }
|
---|
998 |
|
---|
999 |
|
---|
1000 | return NULL;
|
---|
1001 | }
|
---|
1002 |
|
---|
1003 | void
|
---|
1004 | KdTree::CollectLeaves(vector<KdLeaf *> &leaves)
|
---|
1005 | {
|
---|
1006 | stack<KdNode *> nodeStack;
|
---|
1007 | nodeStack.push(mRoot);
|
---|
1008 |
|
---|
1009 | while (!nodeStack.empty()) {
|
---|
1010 | KdNode *node = nodeStack.top();
|
---|
1011 | nodeStack.pop();
|
---|
1012 | if (node->IsLeaf()) {
|
---|
1013 | KdLeaf *leaf = (KdLeaf *)node;
|
---|
1014 | leaves.push_back(leaf);
|
---|
1015 | } else {
|
---|
1016 | KdInterior *interior = (KdInterior *)node;
|
---|
1017 | nodeStack.push(interior->mBack);
|
---|
1018 | nodeStack.push(interior->mFront);
|
---|
1019 | }
|
---|
1020 | }
|
---|
1021 | }
|
---|
1022 |
|
---|
1023 | void
|
---|
1024 | KdTree::CreateAndCollectViewCells(ViewCellContainer &vc) const
|
---|
1025 | {
|
---|
1026 | stack<KdNode *> nodeStack;
|
---|
1027 | nodeStack.push(mRoot);
|
---|
1028 |
|
---|
1029 | while (!nodeStack.empty()) {
|
---|
1030 | KdNode *node = nodeStack.top();
|
---|
1031 | nodeStack.pop();
|
---|
1032 | if (node->IsLeaf()) {
|
---|
1033 | KdLeaf *leaf = (KdLeaf *)node;
|
---|
1034 | // kdtree used as view cell container => create view cell
|
---|
1035 | KdViewCell *viewCell = new KdViewCell();
|
---|
1036 | leaf->mViewCell = viewCell;
|
---|
1037 | // push back pointer to this leaf
|
---|
1038 | viewCell->mLeaves[0] = leaf;
|
---|
1039 | vc.push_back(viewCell);
|
---|
1040 | } else {
|
---|
1041 | KdInterior *interior = (KdInterior *)node;
|
---|
1042 | nodeStack.push(interior->mBack);
|
---|
1043 | nodeStack.push(interior->mFront);
|
---|
1044 | }
|
---|
1045 | }
|
---|
1046 | }
|
---|
1047 |
|
---|
1048 | int
|
---|
1049 | KdTree::CollectLeafPvs()
|
---|
1050 | {
|
---|
1051 |
|
---|
1052 | // matt: no more kd pvs
|
---|
1053 | int totalPvsSize = 0;
|
---|
1054 | /*
|
---|
1055 | stack<KdNode *> nodeStack;
|
---|
1056 |
|
---|
1057 | nodeStack.push(mRoot);
|
---|
1058 |
|
---|
1059 | while (!nodeStack.empty()) {
|
---|
1060 | KdNode *node = nodeStack.top();
|
---|
1061 | nodeStack.pop();
|
---|
1062 | if (node->IsLeaf()) {
|
---|
1063 | KdLeaf *leaf = (KdLeaf *)node;
|
---|
1064 | for (int j=0; j < leaf->mObjects.size(); j++) {
|
---|
1065 | Intersectable *object = leaf->mObjects[j];
|
---|
1066 | if (!object->Mailed()) {
|
---|
1067 | object->Mail();
|
---|
1068 | // add this node to pvs of all nodes it can see
|
---|
1069 | KdPvsMap::iterator ni = object->mKdPvs.mEntries.begin();
|
---|
1070 | for (; ni != object->mKdPvs.mEntries.end(); ni++) {
|
---|
1071 | KdNode *node = (*ni).first;
|
---|
1072 | // $$ JB TEMPORARY solution -> should add object PVS or explictly computed
|
---|
1073 | // kd tree PVS
|
---|
1074 | float contribution;
|
---|
1075 | if (leaf->mKdPvs.AddSample(node, 1.0f, contribution))
|
---|
1076 | totalPvsSize++;
|
---|
1077 | }
|
---|
1078 | }
|
---|
1079 | }
|
---|
1080 | } else {
|
---|
1081 | KdInterior *interior = (KdInterior *)node;
|
---|
1082 | nodeStack.push(interior->mFront);
|
---|
1083 | nodeStack.push(interior->mBack);
|
---|
1084 | }
|
---|
1085 | }
|
---|
1086 | */
|
---|
1087 | return totalPvsSize;
|
---|
1088 | }
|
---|
1089 |
|
---|
1090 |
|
---|
1091 | KdNode *
|
---|
1092 | KdTree::GetRandomLeaf(const bool onlyUnmailed)
|
---|
1093 | {
|
---|
1094 | stack<KdNode *> nodeStack;
|
---|
1095 | nodeStack.push(mRoot);
|
---|
1096 |
|
---|
1097 | int mask = rand();
|
---|
1098 |
|
---|
1099 | while (!nodeStack.empty()) {
|
---|
1100 | KdNode *node = nodeStack.top();
|
---|
1101 | nodeStack.pop();
|
---|
1102 | if (node->IsLeaf()) {
|
---|
1103 | if ( (!onlyUnmailed || !node->Mailed()) )
|
---|
1104 | return node;
|
---|
1105 | } else {
|
---|
1106 | KdInterior *interior = (KdInterior *)node;
|
---|
1107 | // random decision
|
---|
1108 | if (mask&1)
|
---|
1109 | nodeStack.push(interior->mBack);
|
---|
1110 | else
|
---|
1111 | nodeStack.push(interior->mFront);
|
---|
1112 | mask = mask>>1;
|
---|
1113 | }
|
---|
1114 | }
|
---|
1115 | return NULL;
|
---|
1116 | }
|
---|
1117 |
|
---|
1118 |
|
---|
1119 | int
|
---|
1120 | KdTree::CastBeam(
|
---|
1121 | Beam &beam
|
---|
1122 | )
|
---|
1123 | {
|
---|
1124 | stack<KdNode *> nodeStack;
|
---|
1125 | nodeStack.push(mRoot);
|
---|
1126 |
|
---|
1127 | while (!nodeStack.empty()) {
|
---|
1128 | KdNode *node = nodeStack.top();
|
---|
1129 | nodeStack.pop();
|
---|
1130 |
|
---|
1131 | int side = beam.ComputeIntersection(GetBox(node));
|
---|
1132 | switch (side) {
|
---|
1133 | case -1:
|
---|
1134 | beam.mKdNodes.push_back(node);
|
---|
1135 | break;
|
---|
1136 | case 0:
|
---|
1137 | if (node->IsLeaf())
|
---|
1138 | beam.mKdNodes.push_back(node);
|
---|
1139 | else {
|
---|
1140 | KdInterior *interior = (KdInterior *)node;
|
---|
1141 | KdNode *first = interior->mBack;
|
---|
1142 | KdNode *second = interior->mFront;
|
---|
1143 |
|
---|
1144 | if (interior->mAxis < 3) {
|
---|
1145 | // spatial split -> decide on the order of the nodes
|
---|
1146 | if (beam.mPlanes[0].mNormal[interior->mAxis] > 0)
|
---|
1147 | swap(first, second);
|
---|
1148 | }
|
---|
1149 |
|
---|
1150 | nodeStack.push(first);
|
---|
1151 | nodeStack.push(second);
|
---|
1152 | }
|
---|
1153 | break;
|
---|
1154 | // default: cull
|
---|
1155 | }
|
---|
1156 | }
|
---|
1157 |
|
---|
1158 | if (beam.mFlags & Beam::STORE_OBJECTS)
|
---|
1159 | {
|
---|
1160 | vector<KdNode *>::const_iterator it, it_end = beam.mKdNodes.end();
|
---|
1161 |
|
---|
1162 | Intersectable::NewMail();
|
---|
1163 | for (it = beam.mKdNodes.begin(); it != it_end; ++ it)
|
---|
1164 | {
|
---|
1165 | CollectObjects(*it, beam.mObjects);
|
---|
1166 | }
|
---|
1167 | }
|
---|
1168 |
|
---|
1169 | return (int)beam.mKdNodes.size();
|
---|
1170 | }
|
---|
1171 |
|
---|
1172 |
|
---|
1173 | #define TYPE_INTERIOR -2
|
---|
1174 | #define TYPE_LEAF -3
|
---|
1175 |
|
---|
1176 |
|
---|
1177 | void KdTree::ExportBinLeaf(OUT_STREAM &stream, KdLeaf *leaf)
|
---|
1178 | {
|
---|
1179 | ObjectContainer::const_iterator it, it_end = leaf->mObjects.end();
|
---|
1180 |
|
---|
1181 | int type = TYPE_LEAF;
|
---|
1182 | int size = (int)leaf->mObjects.size();
|
---|
1183 |
|
---|
1184 | stream.write(reinterpret_cast<char *>(&type), sizeof(int));
|
---|
1185 | stream.write(reinterpret_cast<char *>(&size), sizeof(int));
|
---|
1186 |
|
---|
1187 | for (it = leaf->mObjects.begin(); it != it_end; ++ it)
|
---|
1188 | {
|
---|
1189 | Intersectable *obj = *it;
|
---|
1190 | int id = obj->mId;
|
---|
1191 |
|
---|
1192 | //stream.write(reinterpret_cast<char *>(&origin), sizeof(Vector3));
|
---|
1193 | stream.write(reinterpret_cast<char *>(&id), sizeof(int));
|
---|
1194 | }
|
---|
1195 | }
|
---|
1196 |
|
---|
1197 |
|
---|
1198 | KdLeaf *KdTree::ImportBinLeaf(IN_STREAM &stream,
|
---|
1199 | KdInterior *parent,
|
---|
1200 | const ObjectContainer &objects)
|
---|
1201 | {
|
---|
1202 | int leafId = TYPE_LEAF;
|
---|
1203 | int objId = leafId;
|
---|
1204 | int size;
|
---|
1205 |
|
---|
1206 | stream.read(reinterpret_cast<char *>(&size), sizeof(int));
|
---|
1207 | KdLeaf *leaf = new KdLeaf(parent, size);
|
---|
1208 |
|
---|
1209 | MeshInstance dummyInst(NULL);
|
---|
1210 |
|
---|
1211 | // read object ids
|
---|
1212 | // note: could also do this geometrically
|
---|
1213 | for (int i = 0; i < size; ++ i)
|
---|
1214 | {
|
---|
1215 | stream.read(reinterpret_cast<char *>(&objId), sizeof(int));
|
---|
1216 | dummyInst.SetId(objId);
|
---|
1217 |
|
---|
1218 | ObjectContainer::const_iterator oit =
|
---|
1219 | lower_bound(objects.begin(), objects.end(), (Intersectable *)&dummyInst, ilt);
|
---|
1220 |
|
---|
1221 | if ((oit != objects.end()) && ((*oit)->GetId() == objId))
|
---|
1222 | {
|
---|
1223 | leaf->mObjects.push_back(*oit);
|
---|
1224 | }
|
---|
1225 | else
|
---|
1226 | {
|
---|
1227 | Debug << "error: object with id " << objId << " does not exist" << endl;
|
---|
1228 | }
|
---|
1229 | }
|
---|
1230 |
|
---|
1231 | return leaf;
|
---|
1232 | }
|
---|
1233 |
|
---|
1234 |
|
---|
1235 | void KdTree::ExportBinInterior(OUT_STREAM &stream, KdInterior *interior)
|
---|
1236 | {
|
---|
1237 | int interiorid = TYPE_INTERIOR;
|
---|
1238 | stream.write(reinterpret_cast<char *>(&interiorid), sizeof(int));
|
---|
1239 |
|
---|
1240 | int axis = interior->mAxis;
|
---|
1241 | float pos = interior->mPosition;
|
---|
1242 |
|
---|
1243 | stream.write(reinterpret_cast<char *>(&axis), sizeof(int));
|
---|
1244 | stream.write(reinterpret_cast<char *>(&pos), sizeof(float));
|
---|
1245 | }
|
---|
1246 |
|
---|
1247 |
|
---|
1248 | KdInterior *KdTree::ImportBinInterior(IN_STREAM &stream, KdInterior *parent)
|
---|
1249 | {
|
---|
1250 | KdInterior *interior = new KdInterior(parent);
|
---|
1251 |
|
---|
1252 | int axis = interior->mAxis;
|
---|
1253 | float pos = interior->mPosition;
|
---|
1254 |
|
---|
1255 | stream.read(reinterpret_cast<char *>(&axis), sizeof(int));
|
---|
1256 | stream.read(reinterpret_cast<char *>(&pos), sizeof(float));
|
---|
1257 |
|
---|
1258 | interior->mAxis = axis;
|
---|
1259 | interior->mPosition = pos;
|
---|
1260 |
|
---|
1261 | return interior;
|
---|
1262 | }
|
---|
1263 |
|
---|
1264 |
|
---|
1265 | bool KdTree::ExportBinTree(const string &filename)
|
---|
1266 | {
|
---|
1267 | OUT_STREAM stream(filename.c_str(), OUT_BIN_MODE);
|
---|
1268 |
|
---|
1269 | //if (!stream.is_open()) return false;
|
---|
1270 |
|
---|
1271 | // export binary version of mesh
|
---|
1272 | queue<KdNode *> tStack;
|
---|
1273 | tStack.push(mRoot);
|
---|
1274 |
|
---|
1275 | while(!tStack.empty())
|
---|
1276 | {
|
---|
1277 | KdNode *node = tStack.front();
|
---|
1278 | tStack.pop();
|
---|
1279 |
|
---|
1280 | if (node->IsLeaf())
|
---|
1281 | {
|
---|
1282 | //Debug << "l";
|
---|
1283 | ExportBinLeaf(stream, dynamic_cast<KdLeaf *>(node));
|
---|
1284 | }
|
---|
1285 | else
|
---|
1286 | {
|
---|
1287 | //Debug << "i";
|
---|
1288 | KdInterior *interior = dynamic_cast<KdInterior *>(node);
|
---|
1289 |
|
---|
1290 | ExportBinInterior(stream, interior);
|
---|
1291 |
|
---|
1292 | tStack.push(interior->mFront);
|
---|
1293 | tStack.push(interior->mBack);
|
---|
1294 | }
|
---|
1295 | }
|
---|
1296 |
|
---|
1297 | return true;
|
---|
1298 | }
|
---|
1299 |
|
---|
1300 |
|
---|
1301 | KdNode *KdTree::LoadNextNode(IN_STREAM &stream,
|
---|
1302 | KdInterior *parent,
|
---|
1303 | const ObjectContainer &objects)
|
---|
1304 | {
|
---|
1305 | int nodeType;
|
---|
1306 | stream.read(reinterpret_cast<char *>(&nodeType), sizeof(int));
|
---|
1307 |
|
---|
1308 | if (nodeType == TYPE_LEAF)
|
---|
1309 | {
|
---|
1310 | return ImportBinLeaf(stream, dynamic_cast<KdInterior *>(parent), objects);
|
---|
1311 | }
|
---|
1312 |
|
---|
1313 | if (nodeType == TYPE_INTERIOR)
|
---|
1314 | {
|
---|
1315 | return ImportBinInterior(stream, dynamic_cast<KdInterior *>(parent));
|
---|
1316 | }
|
---|
1317 |
|
---|
1318 | Debug << "error! loading failed!" << endl;
|
---|
1319 |
|
---|
1320 | return NULL;
|
---|
1321 | }
|
---|
1322 |
|
---|
1323 |
|
---|
1324 | bool KdTree::LoadBinTree(const string &filename, ObjectContainer &objects)
|
---|
1325 | {
|
---|
1326 | // export binary version of mesh
|
---|
1327 | queue<TraversalData> tStack;
|
---|
1328 | IN_STREAM stream(filename.c_str(), IN_BIN_MODE);
|
---|
1329 |
|
---|
1330 | if (!stream.is_open()) return false;
|
---|
1331 |
|
---|
1332 | // sort objects by their id
|
---|
1333 | std::stable_sort(objects.begin(), objects.end(), ilt);
|
---|
1334 |
|
---|
1335 | mBox.Initialize();
|
---|
1336 | ObjectContainer::const_iterator oit, oit_end = objects.end();
|
---|
1337 |
|
---|
1338 | ///////////////////////////
|
---|
1339 | //-- compute bounding box of object space
|
---|
1340 |
|
---|
1341 | for (oit = objects.begin(); oit != oit_end; ++ oit)
|
---|
1342 | {
|
---|
1343 | const AxisAlignedBox3 box = (*oit)->GetBox();
|
---|
1344 | mBox.Include(box);
|
---|
1345 | }
|
---|
1346 |
|
---|
1347 | // hack: we make a new root
|
---|
1348 | DEL_PTR(mRoot);
|
---|
1349 |
|
---|
1350 | KdNode *node = LoadNextNode(stream, NULL, objects);
|
---|
1351 | mRoot = node;
|
---|
1352 |
|
---|
1353 | tStack.push(TraversalData(node, mBox, 0));
|
---|
1354 | mStat.Reset();
|
---|
1355 | mStat.nodes = 1;
|
---|
1356 |
|
---|
1357 | while(!tStack.empty())
|
---|
1358 | {
|
---|
1359 | TraversalData tData = tStack.front();
|
---|
1360 | tStack.pop();
|
---|
1361 |
|
---|
1362 | KdNode *node = tData.mNode;
|
---|
1363 |
|
---|
1364 | if (!node->IsLeaf())
|
---|
1365 | {
|
---|
1366 | mStat.nodes += 2;
|
---|
1367 |
|
---|
1368 | //Debug << "i" ;
|
---|
1369 | KdInterior *interior = dynamic_cast<KdInterior *>(node);
|
---|
1370 | interior->mBox = tData.mBox;
|
---|
1371 |
|
---|
1372 | KdNode *front = LoadNextNode(stream, interior, objects);
|
---|
1373 | KdNode *back = LoadNextNode(stream, interior, objects);
|
---|
1374 |
|
---|
1375 | interior->SetupChildLinks(back, front);
|
---|
1376 |
|
---|
1377 | ++ mStat.splits[interior->mAxis];
|
---|
1378 |
|
---|
1379 | // compute new bounding box
|
---|
1380 | AxisAlignedBox3 frontBox, backBox;
|
---|
1381 |
|
---|
1382 | tData.mBox.Split(interior->mAxis,
|
---|
1383 | interior->mPosition,
|
---|
1384 | frontBox,
|
---|
1385 | backBox);
|
---|
1386 |
|
---|
1387 | tStack.push(TraversalData(front, frontBox, tData.mDepth + 1));
|
---|
1388 | tStack.push(TraversalData(back, backBox, tData.mDepth + 1));
|
---|
1389 | }
|
---|
1390 | else
|
---|
1391 | {
|
---|
1392 | EvaluateLeafStats(tData);
|
---|
1393 | //cout << "l";
|
---|
1394 | }
|
---|
1395 | }
|
---|
1396 |
|
---|
1397 | Debug << mStat << endl;
|
---|
1398 |
|
---|
1399 | return true;
|
---|
1400 | }
|
---|
1401 |
|
---|
1402 | KdIntersectable *
|
---|
1403 | KdTree::GetOrCreateKdIntersectable(KdNode *node)
|
---|
1404 | {
|
---|
1405 |
|
---|
1406 | if (node == NULL)
|
---|
1407 | return NULL;
|
---|
1408 |
|
---|
1409 | if (node->mIntersectable == NULL) {
|
---|
1410 | // not in map => create new entry
|
---|
1411 | node->mIntersectable = new KdIntersectable(node, GetBox(node));
|
---|
1412 | mKdIntersectables.push_back(node->mIntersectable);
|
---|
1413 | }
|
---|
1414 |
|
---|
1415 | return node->mIntersectable;
|
---|
1416 | }
|
---|
1417 |
|
---|
1418 | KdNode *
|
---|
1419 | KdTree::GetNode(const Vector3 &point,
|
---|
1420 | const float maxArea) const
|
---|
1421 | {
|
---|
1422 | KdNode *node = mRoot;
|
---|
1423 |
|
---|
1424 | while (!node->IsLeaf() && (GetSurfaceArea(node) > maxArea) ) {
|
---|
1425 | KdInterior *inter = (KdInterior *)node;
|
---|
1426 | if (point[inter->mAxis] < inter->mPosition)
|
---|
1427 | node = inter->mBack;
|
---|
1428 | else
|
---|
1429 | node = inter->mFront;
|
---|
1430 | }
|
---|
1431 |
|
---|
1432 | return node;
|
---|
1433 | }
|
---|
1434 |
|
---|
1435 |
|
---|
1436 | void KdTree::InsertObjects(KdNode *node, const ObjectContainer &objects)
|
---|
1437 | {/*
|
---|
1438 | stack<KdObjectsTraversalData> tStack;
|
---|
1439 |
|
---|
1440 | while (!tStack.empty())
|
---|
1441 | {
|
---|
1442 | KdObjectsTraversalData tData = tStack.top();
|
---|
1443 | tStack.pop();
|
---|
1444 |
|
---|
1445 | KdNode *node = tData.node;
|
---|
1446 |
|
---|
1447 | if (node->IsLeaf())
|
---|
1448 | {
|
---|
1449 | KdLeaf *leaf = dynamic_cast<KdLeaf *>(node);
|
---|
1450 |
|
---|
1451 | ObjectContainer::const_iterator oit, oit_end = tData.objects->end();
|
---|
1452 |
|
---|
1453 | for (oit = tData.objects->begin(); oit != oit_end; ++ oit)
|
---|
1454 | {
|
---|
1455 | leaf->mObjects.push_back(*oit);
|
---|
1456 | }
|
---|
1457 | }
|
---|
1458 | else // interior
|
---|
1459 | {
|
---|
1460 | KdObjectsTraversalData frontData, backData;
|
---|
1461 | KdInterior *interior = dynamic_cast<KdInterior *>(node);
|
---|
1462 |
|
---|
1463 | frontData.objects = new ObjectContainer();
|
---|
1464 | backData.objects = new ObjectContainer();
|
---|
1465 |
|
---|
1466 | ObjectContainer::const_iterator oit, oit_end = tData.objects->end();
|
---|
1467 |
|
---|
1468 | for (oit = tData.objects->begin(); oit != oit_end; ++ oit)
|
---|
1469 | {
|
---|
1470 | Intersectable *object = *oit;
|
---|
1471 |
|
---|
1472 | // determine the side of this ray with respect to the plane
|
---|
1473 | const AxisAlignedBox3 box = object->GetBox();
|
---|
1474 |
|
---|
1475 | if (box.Max(interior->mAxis) >= interior->mPosition)
|
---|
1476 | {
|
---|
1477 | frontData.objects->push_back(object);
|
---|
1478 | }
|
---|
1479 |
|
---|
1480 | if (box.Min(interior->mAxis) < interior->mPosition)
|
---|
1481 | {
|
---|
1482 | backData.objects->push_back(object);
|
---|
1483 | }
|
---|
1484 | }
|
---|
1485 |
|
---|
1486 | tStack.push(backData);
|
---|
1487 | tStack.push(frontData);
|
---|
1488 | }
|
---|
1489 |
|
---|
1490 | DEL_PTR(tData.objects);
|
---|
1491 | }*/
|
---|
1492 | }
|
---|
1493 |
|
---|
1494 | }
|
---|