[372] | 1 | #ifndef _KdTree_H__
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| 2 | #define _KdTree_H__
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| 3 |
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| 4 | #include <functional>
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| 5 | using namespace std;
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| 6 |
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| 7 | #include "Containers.h"
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| 8 | #include "AxisAlignedBox3.h"
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| 9 | #include "Ray.h"
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| 10 | #include "Pvs.h"
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[469] | 11 | #include "Viewcell.h"
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[860] | 12 |
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| 13 | namespace GtpVisibilityPreprocessor {
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| 14 |
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[372] | 15 | class KdNode;
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| 16 | class KdLeaf;
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| 17 | class KdInterior;
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| 18 | class Intersectable;
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[469] | 19 | //class KdViewCell;
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[512] | 20 | class Beam;
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[372] | 21 |
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| 22 | // --------------------------------------------------------------
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| 23 | // Static statistics for kd-tree search
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| 24 | // --------------------------------------------------------------
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| 25 | class KdTreeStatistics
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| 26 | {
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| 27 | public:
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| 28 | // total number of nodes
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| 29 | int nodes;
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| 30 | // number of splits along each of the axes
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| 31 | int splits[7];
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| 32 | // totals number of rays
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| 33 | int rays;
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| 34 | // total number of query domains
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| 35 | int queryDomains;
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| 36 | // total number of ray references
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| 37 | int rayRefs;
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| 38 | // refs in non empty leafs
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| 39 | int rayRefsNonZeroQuery;
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| 40 | // total number of query references
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| 41 | int objectRefs;
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| 42 | // nodes with zero queries
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| 43 | int zeroQueryNodes;
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| 44 | // max depth nodes
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| 45 | int maxDepthNodes;
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| 46 | // max depth nodes
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| 47 | int minCostNodes;
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| 48 | // max number of rays per node
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| 49 | int maxObjectRefs;
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| 50 | // number of dynamically added ray refs
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| 51 | int addedRayRefs;
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| 52 | // number of dynamically removed ray refs
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| 53 | int removedRayRefs;
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| 54 |
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| 55 | // Constructor
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| 56 | KdTreeStatistics() {
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| 57 | Reset();
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| 58 | }
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| 59 |
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| 60 | int Nodes() const {return nodes;}
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| 61 | int Interior() const { return nodes/2; }
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| 62 | int Leaves() const { return (nodes/2) + 1; }
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| 63 |
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| 64 | void Reset() {
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| 65 | nodes = 0;
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| 66 | for (int i=0; i<7; i++)
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| 67 | splits[i] = 0;
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| 68 | rays = queryDomains = 0;
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| 69 | rayRefs = rayRefsNonZeroQuery = objectRefs = 0;
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| 70 | zeroQueryNodes = 0;
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| 71 | maxDepthNodes = 0;
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| 72 | minCostNodes = 0;
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| 73 | maxObjectRefs = 0;
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| 74 | addedRayRefs = removedRayRefs = 0;
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| 75 | }
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| 76 |
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| 77 | void
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| 78 | Print(ostream &app) const;
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| 79 |
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| 80 | friend ostream &operator<<(ostream &s, const KdTreeStatistics &stat) {
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| 81 | stat.Print(s);
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| 82 | return s;
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| 83 | }
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| 84 |
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| 85 | };
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| 86 |
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| 87 |
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| 88 | class KdInterior;
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| 89 | /** Abstract class for kd-tree node */
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| 90 | class KdNode {
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| 91 | public:
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| 92 | static int mailID;
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| 93 | int mailbox;
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| 94 |
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| 95 | void Mail() { mailbox = mailID; }
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| 96 | static void NewMail() { mailID++; }
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| 97 | bool Mailed() const { return mailbox == mailID; }
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| 98 |
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[1002] | 99 | virtual ~KdNode(){};
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[372] | 100 | KdNode(KdInterior *parent);
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| 101 |
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| 102 | /** Determines whether this node is a leaf or interior node
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| 103 | @return true if leaf
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| 104 | */
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| 105 | virtual bool IsLeaf() const = 0;
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| 106 |
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| 107 | /** Determines whether this node is the root of the tree
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| 108 | @return true if root
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| 109 | */
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| 110 | virtual bool IsRoot() const {
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| 111 | return mParent == NULL;
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| 112 | }
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| 113 |
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| 114 | /** Parent of the node - the parent is a little overhead for maintanance of the tree,
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| 115 | but allows various optimizations of tree traversal algorithms */
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| 116 | KdInterior *mParent;
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| 117 | int mDepth;
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| 118 | };
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| 119 |
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| 120 | /** Implementation of the kd-tree interior node */
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| 121 | class KdInterior : public KdNode {
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| 122 |
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| 123 | public:
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| 124 |
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| 125 | KdInterior(KdInterior *parent):KdNode(parent), mBack(NULL), mFront(NULL) {}
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| 126 |
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[1002] | 127 | ~KdInterior();
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| 128 |
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[372] | 129 | /** \sa KdNode::IsLeaf() */
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| 130 | virtual bool IsLeaf() const { return false; }
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| 131 |
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| 132 | /** splitting axis */
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| 133 | int mAxis;
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| 134 | /** splitting position, absolute position within the bounding box of this node */
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| 135 | float mPosition;
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| 136 | /** bounding box of interior node */
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| 137 | AxisAlignedBox3 mBox;
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| 138 |
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| 139 | /** back node */
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| 140 | KdNode *mBack;
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| 141 | /** front node */
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| 142 | KdNode *mFront;
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| 143 |
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| 144 | void SetupChildLinks(KdNode *b, KdNode *f) {
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| 145 | mBack = b;
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| 146 | mFront = f;
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| 147 | b->mParent = f->mParent = this;
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| 148 | }
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| 149 |
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| 150 | void ReplaceChildLink(KdNode *oldChild, KdNode *newChild) {
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| 151 | if (mBack == oldChild)
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| 152 | mBack = newChild;
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| 153 | else
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| 154 | mFront = newChild;
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| 155 | }
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| 156 |
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| 157 |
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| 158 | };
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| 159 |
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| 160 |
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| 161 | /** Implementation of the kd-tree leaf node */
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| 162 | class KdLeaf : public KdNode {
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| 163 | public:
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[469] | 164 | KdLeaf(KdInterior *parent, const int objects):
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| 165 | KdNode(parent), mViewCell(NULL) {
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[372] | 166 | mObjects.reserve(objects);
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| 167 | }
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| 168 |
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[469] | 169 | void AddPassingRay(const Ray &ray, const int contributions) {
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[372] | 170 | mPassingRays.AddRay(ray, contributions);
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| 171 | // Debug << "adding passing ray" << endl;
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| 172 | }
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| 173 |
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[1002] | 174 | ~KdLeaf() { DEL_PTR(mViewCell); }
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[372] | 175 |
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| 176 | void AddPassingRay2(const Ray &ray,
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[469] | 177 | const int objects,
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| 178 | const int viewcells
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| 179 | ) {
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[372] | 180 | mPassingRays.AddRay2(ray, objects, viewcells);
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| 181 | // Debug << "adding passing ray" << endl;
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| 182 | }
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| 183 |
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| 184 | /** \sa KdNode::IsLeaf() */
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| 185 | virtual bool IsLeaf() const { return true; }
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| 186 |
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| 187 |
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| 188 | /** pointers to occluders contained in this node */
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| 189 | ObjectContainer mObjects;
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[1072] | 190 |
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| 191 | /** Objects that are part of several leaves.
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| 192 | */
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[1074] | 193 | ObjectContainer mMultipleObjects;
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[1072] | 194 |
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[1073] | 195 | /// universal counter
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| 196 | int mCounter;
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| 197 |
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[372] | 198 | /** Ray set description of the rays passing through this node */
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| 199 | PassingRaySet mPassingRays;
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| 200 |
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| 201 | /** PVS consisting of visible KdTree nodes */
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| 202 | KdPvs mKdPvs;
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| 203 |
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[469] | 204 | /** pointer to view cell.
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| 205 | */
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| 206 | KdViewCell *mViewCell;
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[372] | 207 | };
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| 208 |
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| 209 |
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| 210 |
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| 211 | /** KdTree for indexing scene entities - occluders/occludees/viewcells */
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| 212 | class KdTree {
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[878] | 213 |
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[372] | 214 | protected:
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| 215 | struct TraversalData
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| 216 | {
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| 217 | KdNode *mNode;
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| 218 | AxisAlignedBox3 mBox;
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| 219 | int mDepth;
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| 220 | float mPriority;
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| 221 |
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| 222 | TraversalData() {}
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| 223 |
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| 224 | TraversalData(KdNode *n, const float p):
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| 225 | mNode(n), mPriority(p)
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| 226 | {}
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| 227 |
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| 228 | TraversalData(KdNode *n,
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| 229 | const AxisAlignedBox3 &b,
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| 230 | const int d):
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| 231 | mNode(n), mBox(b), mDepth(d) {}
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| 232 |
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| 233 |
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| 234 | bool operator<(
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[752] | 235 | const TraversalData &b) const {
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[372] | 236 | KdLeaf *leafa = (KdLeaf *) mNode;
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| 237 | KdLeaf *leafb = (KdLeaf *) b.mNode;
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| 238 | return
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[752] | 239 | leafa->mObjects.size()*mBox.SurfaceArea()
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| 240 | <
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| 241 | leafb->mObjects.size()*b.mBox.SurfaceArea();
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[372] | 242 | }
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| 243 |
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| 244 |
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| 245 | // comparator for the
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| 246 | struct less_priority : public
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| 247 | binary_function<const TraversalData, const TraversalData, bool> {
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| 248 |
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| 249 | bool operator()(const TraversalData a, const TraversalData b) {
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| 250 | return a.mPriority < b.mPriority;
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| 251 | }
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| 252 |
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| 253 | };
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| 254 |
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| 255 | };
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| 256 |
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| 257 |
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| 258 |
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| 259 | public:
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| 260 |
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| 261 | enum {SPLIT_OBJECT_MEDIAN,
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| 262 | SPLIT_SPATIAL_MEDIAN,
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| 263 | SPLIT_SAH};
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| 264 |
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| 265 | KdTree();
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[1002] | 266 |
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| 267 | ~KdTree();
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[372] | 268 |
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| 269 | /** Insert view cell into the tree */
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| 270 | virtual void InsertViewCell(ViewCell *viewCell) {
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| 271 | // mRoot->mViewcells.push_back(viewCell);
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| 272 | }
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| 273 |
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| 274 | virtual bool Construct();
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| 275 |
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| 276 | /** Check whether subdivision criteria are met for the given subtree.
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| 277 | If not subdivide the leafs of the subtree. The criteria are specified in
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| 278 | the environment as well as the subdivision method. By default surface area
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| 279 | heuristics is used.
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| 280 |
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| 281 | @param subtree root of the subtree
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| 282 |
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| 283 | @return true if subdivision was performed, false if subdivision criteria
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| 284 | were already met
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| 285 | */
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| 286 | virtual KdNode *Subdivide(const TraversalData &tdata);
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| 287 |
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| 288 | /** Get the root of the tree */
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| 289 | KdNode *GetRoot() const {
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| 290 | return mRoot;
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| 291 | }
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| 292 |
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| 293 |
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| 294 | AxisAlignedBox3 GetBox() const { return mBox; }
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| 295 |
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| 296 | int
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| 297 | CastRay(
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[504] | 298 | Ray &ray
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| 299 | );
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| 300 |
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[372] | 301 |
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[504] | 302 | int
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[505] | 303 | CastBeam(
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[512] | 304 | Beam &beam
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[505] | 305 | );
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[504] | 306 |
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| 307 |
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[469] | 308 | /** Casts line segment into tree.
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| 309 | @returns intersected view cells.
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| 310 | */
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| 311 | int CastLineSegment(const Vector3 &origin,
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| 312 | const Vector3 &termination,
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| 313 | vector<ViewCell *> &viewcells);
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| 314 |
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| 315 |
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[372] | 316 | const KdTreeStatistics &GetStatistics() const {
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| 317 | return mStat;
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| 318 | }
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| 319 |
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| 320 | void
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| 321 | CollectObjects(KdNode *n, ObjectContainer &objects);
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[859] | 322 |
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[372] | 323 | void
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[859] | 324 | CollectObjects(const AxisAlignedBox3 &box,
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| 325 | ObjectContainer &objects);
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| 326 |
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| 327 | void
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[372] | 328 | CollectLeaves(vector<KdLeaf *> &leaves);
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| 329 |
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[469] | 330 | /** If the kd tree is used as view cell container, this
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| 331 | methods creates the view cells.
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| 332 | @returns the newly created view cells in a view cell container
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| 333 | */
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| 334 | void
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| 335 | CreateAndCollectViewCells(ViewCellContainer &viewCells) const;
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| 336 |
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[372] | 337 | AxisAlignedBox3 GetBox(const KdNode *node) const {
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| 338 | KdInterior *parent = node->mParent;
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| 339 | if (parent == NULL)
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| 340 | return mBox;
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| 341 |
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| 342 | if (!node->IsLeaf())
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| 343 | return ((KdInterior *)node)->mBox;
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| 344 |
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| 345 | AxisAlignedBox3 box(parent->mBox);
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| 346 | if (parent->mFront == node)
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| 347 | box.SetMin(parent->mAxis, parent->mPosition);
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| 348 | else
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| 349 | box.SetMax(parent->mAxis, parent->mPosition);
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| 350 | return box;
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| 351 | }
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| 352 |
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| 353 | KdNode *
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| 354 | FindRandomNeighbor(KdNode *n,
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[469] | 355 | bool onlyUnmailed
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| 356 | );
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[372] | 357 |
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| 358 | KdNode *
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| 359 | KdTree::GetRandomLeaf(const Plane3 &halfspace);
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| 360 |
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[859] | 361 | KdNode *
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| 362 | GetRandomLeaf(const bool onlyUnmailed = false);
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| 363 |
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[372] | 364 | int
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| 365 | FindNeighbors(KdNode *n,
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[859] | 366 | vector<KdNode *> &neighbors,
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| 367 | bool onlyUnmailed
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| 368 | );
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[372] | 369 |
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| 370 | int
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| 371 | CollectLeafPvs();
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| 372 |
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| 373 | protected:
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| 374 |
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| 375 | struct RayData {
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| 376 | // pointer to the actual ray
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| 377 | Ray *ray;
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| 378 |
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| 379 | // endpoints - do we need them?
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| 380 | #if USE_FIXEDPOINT_T
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| 381 | short tmin, tmax;
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| 382 | #else
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| 383 | float tmin, tmax;
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| 384 | #endif
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| 385 |
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| 386 | RayData():ray(NULL) {}
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| 387 | RayData(Ray *r):ray(r), tmin(0),
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| 388 |
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| 389 | #if USE_FIXEDPOINT_T
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| 390 | #define FIXEDPOINT_ONE 0x7FFE
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| 391 | // tmax(0xFFFF)
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| 392 | tmax(FIXEDPOINT_ONE)
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| 393 | #else
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| 394 | tmax(1.0f)
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| 395 | #endif
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| 396 | {}
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| 397 |
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| 398 | RayData(Ray *r,
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| 399 | const float _min,
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| 400 | const float _max
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| 401 | ):ray(r) {
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| 402 | SetTMin(_min);
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| 403 | SetTMax(_max);
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| 404 | }
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| 405 |
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| 406 | RayData(Ray *r,
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| 407 | const short _min,
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| 408 | const float _max
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| 409 | ):ray(r), tmin(_min) {
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| 410 | SetTMax(_max);
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| 411 | }
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| 412 |
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| 413 | RayData(Ray *r,
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| 414 | const float _min,
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| 415 | const short _max
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| 416 | ):ray(r), tmax(_max) {
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| 417 | SetTMin(_min);
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| 418 | }
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| 419 |
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| 420 | friend bool operator<(const RayData &a, const RayData &b) {
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| 421 | return a.ray < b.ray;
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| 422 | }
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| 423 |
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| 424 |
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| 425 | float ExtrapOrigin(const int axis) const {
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| 426 | return ray->GetLoc(axis) + GetTMin()*ray->GetDir(axis);
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| 427 | }
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| 428 |
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| 429 | float ExtrapTermination(const int axis) const {
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| 430 | return ray->GetLoc(axis) + GetTMax()*ray->GetDir(axis);
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| 431 | }
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| 432 |
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| 433 | #if USE_FIXEDPOINT_T
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| 434 | float GetTMin () const { return tmin/(float)(FIXEDPOINT_ONE); }
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| 435 | float GetTMax () const { return tmax/(float)(FIXEDPOINT_ONE); }
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| 436 |
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| 437 | void SetTMin (const float t) {
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| 438 | tmin = (short) (t*(float)(FIXEDPOINT_ONE));
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| 439 | }
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| 440 |
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| 441 | void SetTMax (const float t) {
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| 442 | tmax = (short) (t*(float)(FIXEDPOINT_ONE));
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| 443 | tmax++;
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| 444 | // if (tmax!=0xFFFF)
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| 445 | // tmax++;
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| 446 | }
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| 447 | #else
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| 448 | float GetTMin () const { return tmin; }
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| 449 | float GetTMax () const { return tmax; }
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| 450 |
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| 451 | void SetTMin (const float t) { tmin = t; }
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| 452 | void SetTMax (const float t) { tmax = t; }
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| 453 | #endif
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| 454 | };
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| 455 |
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| 456 | struct RayTraversalData {
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| 457 | KdNode *mNode;
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| 458 | Vector3 mExitPoint;
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| 459 | float mMaxT;
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| 460 |
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| 461 | RayTraversalData() {}
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| 462 | RayTraversalData(KdNode *n,
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| 463 | const Vector3 &p,
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| 464 | const float maxt):
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| 465 | mNode(n), mExitPoint(p), mMaxT(maxt) {}
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| 466 | };
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| 467 |
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| 468 | // --------------------------------------------------------------
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| 469 | // For sorting objects
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| 470 | // --------------------------------------------------------------
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| 471 | struct SortableEntry
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| 472 | {
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| 473 | enum {
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| 474 | BOX_MIN,
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| 475 | BOX_MAX
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| 476 | };
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| 477 |
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| 478 | int type;
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| 479 | float value;
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| 480 | Intersectable *intersectable;
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| 481 |
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| 482 | SortableEntry() {}
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| 483 | SortableEntry(const int t, const float v, Intersectable *i):type(t),
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| 484 | value(v),
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| 485 | intersectable(i) {}
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| 486 |
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| 487 | bool operator<(const SortableEntry &b) const {
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| 488 | return value < b.value;
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| 489 | }
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| 490 |
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| 491 | };
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| 492 |
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| 493 | // reusable array of split candidates
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| 494 | vector<SortableEntry> *splitCandidates;
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| 495 |
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| 496 | float
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| 497 | BestCostRatio(
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| 498 | KdLeaf *node,
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| 499 | const AxisAlignedBox3 &box,
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| 500 | const int axis,
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| 501 | float &position,
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| 502 | int &objectsBack,
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| 503 | int &objectsFront
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| 504 | );
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| 505 |
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| 506 | void
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| 507 | SortSplitCandidates(
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| 508 | KdLeaf *node,
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| 509 | const int axis
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| 510 | );
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| 511 |
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| 512 | void
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| 513 | EvaluateLeafStats(const TraversalData &data);
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| 514 |
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| 515 | KdNode *
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| 516 | SubdivideNode(
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| 517 | KdLeaf *leaf,
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| 518 | const AxisAlignedBox3 &box,
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| 519 | AxisAlignedBox3 &backBBox,
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| 520 | AxisAlignedBox3 &frontBBox
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| 521 | );
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| 522 |
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| 523 | bool
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| 524 | TerminationCriteriaMet(const KdLeaf *leaf);
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| 525 |
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| 526 | int
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| 527 | SelectPlane(KdLeaf *leaf,
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| 528 | const AxisAlignedBox3 &box,
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| 529 | float &position
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| 530 | );
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| 531 |
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| 532 |
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[1089] | 533 | /** does some post processing on the objects in the new child leaves.
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[1074] | 534 | */
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[1089] | 535 | void ProcessLeafObjects(KdLeaf *parent, KdLeaf *front, KdLeaf *back) const;
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[1074] | 536 |
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[752] | 537 | int mTermMaxNodes;
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[372] | 538 | float mSplitBorder;
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| 539 | int mTermMaxDepth;
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| 540 | int mTermMinCost;
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| 541 | float mMaxCostRatio;
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| 542 | float mCt_div_ci;
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| 543 | int mSplitMethod;
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| 544 | bool mSahUseFaces;
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| 545 | /// root of the tree
|
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| 546 | KdNode *mRoot;
|
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| 547 | /// bounding box of the tree root
|
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| 548 | AxisAlignedBox3 mBox;
|
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| 549 | KdTreeStatistics mStat;
|
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| 550 |
|
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| 551 | };
|
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| 552 |
|
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| 553 |
|
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| 554 |
|
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| 555 |
|
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[860] | 556 | }
|
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[372] | 557 |
|
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| 558 | #endif
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