| 1 | /* | 
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| 2 | Bullet Continuous Collision Detection and Physics Library | 
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| 3 | Copyright (c) 2003-2006 Erwin Coumans  http://continuousphysics.com/Bullet/ | 
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| 4 |  | 
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| 5 | This software is provided 'as-is', without any express or implied warranty. | 
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| 6 | In no event will the authors be held liable for any damages arising from the use of this software. | 
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| 7 | Permission is granted to anyone to use this software for any purpose,  | 
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| 8 | including commercial applications, and to alter it and redistribute it freely,  | 
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| 9 | subject to the following restrictions: | 
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| 10 |  | 
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| 11 | 1. The origin of this software must not be misrepresented; you must not claim that you wrote the original software. If you use this software in a product, an acknowledgment in the product documentation would be appreciated but is not required. | 
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| 12 | 2. Altered source versions must be plainly marked as such, and must not be misrepresented as being the original software. | 
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| 13 | 3. This notice may not be removed or altered from any source distribution. | 
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| 14 | */ | 
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| 15 |  | 
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| 16 | #include "btQuantizedBvh.h" | 
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| 17 |  | 
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| 18 | #include "LinearMath/btAabbUtil2.h" | 
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| 19 | #include "LinearMath/btIDebugDraw.h" | 
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| 20 |  | 
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| 21 | #define RAYAABB2 | 
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| 22 |  | 
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| 23 | btQuantizedBvh::btQuantizedBvh() :  | 
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| 24 |                                         m_bulletVersion(BT_BULLET_VERSION), | 
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| 25 |                                         m_useQuantization(false),  | 
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| 26 |                                         //m_traversalMode(TRAVERSAL_STACKLESS_CACHE_FRIENDLY) | 
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| 27 |                                         m_traversalMode(TRAVERSAL_STACKLESS) | 
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| 28 |                                         //m_traversalMode(TRAVERSAL_RECURSIVE) | 
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| 29 |                                         ,m_subtreeHeaderCount(0) //PCK: add this line | 
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| 30 | { | 
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| 31 |         m_bvhAabbMin.setValue(-SIMD_INFINITY,-SIMD_INFINITY,-SIMD_INFINITY); | 
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| 32 |         m_bvhAabbMax.setValue(SIMD_INFINITY,SIMD_INFINITY,SIMD_INFINITY); | 
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| 33 | } | 
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| 34 |  | 
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| 35 |  | 
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| 36 |  | 
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| 37 |  | 
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| 38 |  | 
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| 39 | void btQuantizedBvh::buildInternal() | 
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| 40 | { | 
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| 41 |         ///assumes that caller filled in the m_quantizedLeafNodes | 
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| 42 |         m_useQuantization = true; | 
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| 43 |         int numLeafNodes = 0; | 
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| 44 |          | 
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| 45 |         if (m_useQuantization) | 
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| 46 |         { | 
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| 47 |                 //now we have an array of leafnodes in m_leafNodes | 
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| 48 |                 numLeafNodes = m_quantizedLeafNodes.size(); | 
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| 49 |  | 
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| 50 |                 m_quantizedContiguousNodes.resize(2*numLeafNodes); | 
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| 51 |  | 
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| 52 |         } | 
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| 53 |  | 
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| 54 |         m_curNodeIndex = 0; | 
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| 55 |  | 
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| 56 |         buildTree(0,numLeafNodes); | 
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| 57 |  | 
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| 58 |         ///if the entire tree is small then subtree size, we need to create a header info for the tree | 
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| 59 |         if(m_useQuantization && !m_SubtreeHeaders.size()) | 
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| 60 |         { | 
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| 61 |                 btBvhSubtreeInfo& subtree = m_SubtreeHeaders.expand(); | 
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| 62 |                 subtree.setAabbFromQuantizeNode(m_quantizedContiguousNodes[0]); | 
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| 63 |                 subtree.m_rootNodeIndex = 0; | 
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| 64 |                 subtree.m_subtreeSize = m_quantizedContiguousNodes[0].isLeafNode() ? 1 : m_quantizedContiguousNodes[0].getEscapeIndex(); | 
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| 65 |         } | 
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| 66 |  | 
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| 67 |         //PCK: update the copy of the size | 
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| 68 |         m_subtreeHeaderCount = m_SubtreeHeaders.size(); | 
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| 69 |  | 
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| 70 |         //PCK: clear m_quantizedLeafNodes and m_leafNodes, they are temporary | 
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| 71 |         m_quantizedLeafNodes.clear(); | 
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| 72 |         m_leafNodes.clear(); | 
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| 73 | } | 
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| 74 |  | 
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| 75 |  | 
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| 76 |  | 
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| 77 | ///just for debugging, to visualize the individual patches/subtrees | 
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| 78 | #ifdef DEBUG_PATCH_COLORS | 
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| 79 | btVector3 color[4]= | 
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| 80 | { | 
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| 81 |         btVector3(255,0,0), | 
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| 82 |         btVector3(0,255,0), | 
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| 83 |         btVector3(0,0,255), | 
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| 84 |         btVector3(0,255,255) | 
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| 85 | }; | 
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| 86 | #endif //DEBUG_PATCH_COLORS | 
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| 87 |  | 
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| 88 |  | 
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| 89 |  | 
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| 90 | void    btQuantizedBvh::setQuantizationValues(const btVector3& bvhAabbMin,const btVector3& bvhAabbMax,btScalar quantizationMargin) | 
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| 91 | { | 
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| 92 |         //enlarge the AABB to avoid division by zero when initializing the quantization values | 
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| 93 |         btVector3 clampValue(quantizationMargin,quantizationMargin,quantizationMargin); | 
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| 94 |         m_bvhAabbMin = bvhAabbMin - clampValue; | 
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| 95 |         m_bvhAabbMax = bvhAabbMax + clampValue; | 
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| 96 |         btVector3 aabbSize = m_bvhAabbMax - m_bvhAabbMin; | 
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| 97 |         m_bvhQuantization = btVector3(btScalar(65533.0),btScalar(65533.0),btScalar(65533.0)) / aabbSize; | 
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| 98 |         m_useQuantization = true; | 
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| 99 | } | 
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| 100 |  | 
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| 101 |  | 
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| 102 |  | 
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| 103 |  | 
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| 104 | btQuantizedBvh::~btQuantizedBvh() | 
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| 105 | { | 
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| 106 | } | 
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| 107 |  | 
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| 108 | #ifdef DEBUG_TREE_BUILDING | 
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| 109 | int gStackDepth = 0; | 
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| 110 | int gMaxStackDepth = 0; | 
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| 111 | #endif //DEBUG_TREE_BUILDING | 
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| 112 |  | 
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| 113 | void    btQuantizedBvh::buildTree       (int startIndex,int endIndex) | 
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| 114 | { | 
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| 115 | #ifdef DEBUG_TREE_BUILDING | 
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| 116 |         gStackDepth++; | 
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| 117 |         if (gStackDepth > gMaxStackDepth) | 
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| 118 |                 gMaxStackDepth = gStackDepth; | 
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| 119 | #endif //DEBUG_TREE_BUILDING | 
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| 120 |  | 
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| 121 |  | 
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| 122 |         int splitAxis, splitIndex, i; | 
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| 123 |         int numIndices =endIndex-startIndex; | 
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| 124 |         int curIndex = m_curNodeIndex; | 
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| 125 |  | 
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| 126 |         btAssert(numIndices>0); | 
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| 127 |  | 
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| 128 |         if (numIndices==1) | 
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| 129 |         { | 
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| 130 | #ifdef DEBUG_TREE_BUILDING | 
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| 131 |                 gStackDepth--; | 
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| 132 | #endif //DEBUG_TREE_BUILDING | 
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| 133 |                  | 
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| 134 |                 assignInternalNodeFromLeafNode(m_curNodeIndex,startIndex); | 
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| 135 |  | 
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| 136 |                 m_curNodeIndex++; | 
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| 137 |                 return;  | 
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| 138 |         } | 
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| 139 |         //calculate Best Splitting Axis and where to split it. Sort the incoming 'leafNodes' array within range 'startIndex/endIndex'. | 
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| 140 |          | 
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| 141 |         splitAxis = calcSplittingAxis(startIndex,endIndex); | 
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| 142 |  | 
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| 143 |         splitIndex = sortAndCalcSplittingIndex(startIndex,endIndex,splitAxis); | 
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| 144 |  | 
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| 145 |         int internalNodeIndex = m_curNodeIndex; | 
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| 146 |          | 
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| 147 |         //set the min aabb to 'inf' or a max value, and set the max aabb to a -inf/minimum value. | 
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| 148 |         //the aabb will be expanded during buildTree/mergeInternalNodeAabb with actual node values | 
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| 149 |         setInternalNodeAabbMin(m_curNodeIndex,m_bvhAabbMax);//can't use btVector3(SIMD_INFINITY,SIMD_INFINITY,SIMD_INFINITY)) because of quantization | 
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| 150 |         setInternalNodeAabbMax(m_curNodeIndex,m_bvhAabbMin);//can't use btVector3(-SIMD_INFINITY,-SIMD_INFINITY,-SIMD_INFINITY)) because of quantization | 
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| 151 |          | 
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| 152 |          | 
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| 153 |         for (i=startIndex;i<endIndex;i++) | 
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| 154 |         { | 
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| 155 |                 mergeInternalNodeAabb(m_curNodeIndex,getAabbMin(i),getAabbMax(i)); | 
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| 156 |         } | 
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| 157 |  | 
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| 158 |         m_curNodeIndex++; | 
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| 159 |          | 
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| 160 |  | 
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| 161 |         //internalNode->m_escapeIndex; | 
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| 162 |          | 
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| 163 |         int leftChildNodexIndex = m_curNodeIndex; | 
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| 164 |  | 
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| 165 |         //build left child tree | 
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| 166 |         buildTree(startIndex,splitIndex); | 
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| 167 |  | 
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| 168 |         int rightChildNodexIndex = m_curNodeIndex; | 
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| 169 |         //build right child tree | 
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| 170 |         buildTree(splitIndex,endIndex); | 
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| 171 |  | 
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| 172 | #ifdef DEBUG_TREE_BUILDING | 
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| 173 |         gStackDepth--; | 
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| 174 | #endif //DEBUG_TREE_BUILDING | 
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| 175 |  | 
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| 176 |         int escapeIndex = m_curNodeIndex - curIndex; | 
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| 177 |  | 
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| 178 |         if (m_useQuantization) | 
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| 179 |         { | 
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| 180 |                 //escapeIndex is the number of nodes of this subtree | 
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| 181 |                 const int sizeQuantizedNode =sizeof(btQuantizedBvhNode); | 
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| 182 |                 const int treeSizeInBytes = escapeIndex * sizeQuantizedNode; | 
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| 183 |                 if (treeSizeInBytes > MAX_SUBTREE_SIZE_IN_BYTES) | 
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| 184 |                 { | 
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| 185 |                         updateSubtreeHeaders(leftChildNodexIndex,rightChildNodexIndex); | 
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| 186 |                 } | 
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| 187 |         } else | 
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| 188 |         { | 
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| 189 |  | 
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| 190 |         } | 
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| 191 |  | 
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| 192 |         setInternalNodeEscapeIndex(internalNodeIndex,escapeIndex); | 
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| 193 |  | 
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| 194 | } | 
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| 195 |  | 
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| 196 | void    btQuantizedBvh::updateSubtreeHeaders(int leftChildNodexIndex,int rightChildNodexIndex) | 
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| 197 | { | 
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| 198 |         btAssert(m_useQuantization); | 
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| 199 |  | 
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| 200 |         btQuantizedBvhNode& leftChildNode = m_quantizedContiguousNodes[leftChildNodexIndex]; | 
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| 201 |         int leftSubTreeSize = leftChildNode.isLeafNode() ? 1 : leftChildNode.getEscapeIndex(); | 
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| 202 |         int leftSubTreeSizeInBytes =  leftSubTreeSize * static_cast<int>(sizeof(btQuantizedBvhNode)); | 
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| 203 |          | 
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| 204 |         btQuantizedBvhNode& rightChildNode = m_quantizedContiguousNodes[rightChildNodexIndex]; | 
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| 205 |         int rightSubTreeSize = rightChildNode.isLeafNode() ? 1 : rightChildNode.getEscapeIndex(); | 
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| 206 |         int rightSubTreeSizeInBytes =  rightSubTreeSize *  static_cast<int>(sizeof(btQuantizedBvhNode)); | 
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| 207 |  | 
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| 208 |         if(leftSubTreeSizeInBytes <= MAX_SUBTREE_SIZE_IN_BYTES) | 
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| 209 |         { | 
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| 210 |                 btBvhSubtreeInfo& subtree = m_SubtreeHeaders.expand(); | 
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| 211 |                 subtree.setAabbFromQuantizeNode(leftChildNode); | 
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| 212 |                 subtree.m_rootNodeIndex = leftChildNodexIndex; | 
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| 213 |                 subtree.m_subtreeSize = leftSubTreeSize; | 
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| 214 |         } | 
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| 215 |  | 
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| 216 |         if(rightSubTreeSizeInBytes <= MAX_SUBTREE_SIZE_IN_BYTES) | 
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| 217 |         { | 
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| 218 |                 btBvhSubtreeInfo& subtree = m_SubtreeHeaders.expand(); | 
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| 219 |                 subtree.setAabbFromQuantizeNode(rightChildNode); | 
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| 220 |                 subtree.m_rootNodeIndex = rightChildNodexIndex; | 
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| 221 |                 subtree.m_subtreeSize = rightSubTreeSize; | 
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| 222 |         } | 
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| 223 |  | 
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| 224 |         //PCK: update the copy of the size | 
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| 225 |         m_subtreeHeaderCount = m_SubtreeHeaders.size(); | 
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| 226 | } | 
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| 227 |  | 
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| 228 |  | 
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| 229 | int     btQuantizedBvh::sortAndCalcSplittingIndex(int startIndex,int endIndex,int splitAxis) | 
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| 230 | { | 
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| 231 |         int i; | 
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| 232 |         int splitIndex =startIndex; | 
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| 233 |         int numIndices = endIndex - startIndex; | 
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| 234 |         btScalar splitValue; | 
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| 235 |  | 
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| 236 |         btVector3 means(btScalar(0.),btScalar(0.),btScalar(0.)); | 
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| 237 |         for (i=startIndex;i<endIndex;i++) | 
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| 238 |         { | 
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| 239 |                 btVector3 center = btScalar(0.5)*(getAabbMax(i)+getAabbMin(i)); | 
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| 240 |                 means+=center; | 
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| 241 |         } | 
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| 242 |         means *= (btScalar(1.)/(btScalar)numIndices); | 
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| 243 |          | 
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| 244 |         splitValue = means[splitAxis]; | 
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| 245 |          | 
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| 246 |         //sort leafNodes so all values larger then splitValue comes first, and smaller values start from 'splitIndex'. | 
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| 247 |         for (i=startIndex;i<endIndex;i++) | 
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| 248 |         { | 
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| 249 |                 btVector3 center = btScalar(0.5)*(getAabbMax(i)+getAabbMin(i)); | 
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| 250 |                 if (center[splitAxis] > splitValue) | 
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| 251 |                 { | 
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| 252 |                         //swap | 
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| 253 |                         swapLeafNodes(i,splitIndex); | 
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| 254 |                         splitIndex++; | 
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| 255 |                 } | 
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| 256 |         } | 
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| 257 |  | 
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| 258 |         //if the splitIndex causes unbalanced trees, fix this by using the center in between startIndex and endIndex | 
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| 259 |         //otherwise the tree-building might fail due to stack-overflows in certain cases. | 
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| 260 |         //unbalanced1 is unsafe: it can cause stack overflows | 
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| 261 |         //bool unbalanced1 = ((splitIndex==startIndex) || (splitIndex == (endIndex-1))); | 
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| 262 |  | 
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| 263 |         //unbalanced2 should work too: always use center (perfect balanced trees)        | 
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| 264 |         //bool unbalanced2 = true; | 
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| 265 |  | 
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| 266 |         //this should be safe too: | 
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| 267 |         int rangeBalancedIndices = numIndices/3; | 
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| 268 |         bool unbalanced = ((splitIndex<=(startIndex+rangeBalancedIndices)) || (splitIndex >=(endIndex-1-rangeBalancedIndices))); | 
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| 269 |          | 
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| 270 |         if (unbalanced) | 
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| 271 |         { | 
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| 272 |                 splitIndex = startIndex+ (numIndices>>1); | 
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| 273 |         } | 
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| 274 |  | 
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| 275 |         bool unbal = (splitIndex==startIndex) || (splitIndex == (endIndex)); | 
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| 276 |         (void)unbal; | 
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| 277 |         btAssert(!unbal); | 
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| 278 |  | 
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| 279 |         return splitIndex; | 
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| 280 | } | 
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| 281 |  | 
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| 282 |  | 
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| 283 | int     btQuantizedBvh::calcSplittingAxis(int startIndex,int endIndex) | 
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| 284 | { | 
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| 285 |         int i; | 
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| 286 |  | 
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| 287 |         btVector3 means(btScalar(0.),btScalar(0.),btScalar(0.)); | 
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| 288 |         btVector3 variance(btScalar(0.),btScalar(0.),btScalar(0.)); | 
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| 289 |         int numIndices = endIndex-startIndex; | 
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| 290 |  | 
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| 291 |         for (i=startIndex;i<endIndex;i++) | 
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| 292 |         { | 
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| 293 |                 btVector3 center = btScalar(0.5)*(getAabbMax(i)+getAabbMin(i)); | 
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| 294 |                 means+=center; | 
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| 295 |         } | 
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| 296 |         means *= (btScalar(1.)/(btScalar)numIndices); | 
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| 297 |                  | 
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| 298 |         for (i=startIndex;i<endIndex;i++) | 
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| 299 |         { | 
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| 300 |                 btVector3 center = btScalar(0.5)*(getAabbMax(i)+getAabbMin(i)); | 
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| 301 |                 btVector3 diff2 = center-means; | 
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| 302 |                 diff2 = diff2 * diff2; | 
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| 303 |                 variance += diff2; | 
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| 304 |         } | 
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| 305 |         variance *= (btScalar(1.)/      ((btScalar)numIndices-1)        ); | 
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| 306 |          | 
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| 307 |         return variance.maxAxis(); | 
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| 308 | } | 
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| 309 |  | 
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| 310 |  | 
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| 311 |  | 
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| 312 | void    btQuantizedBvh::reportAabbOverlappingNodex(btNodeOverlapCallback* nodeCallback,const btVector3& aabbMin,const btVector3& aabbMax) const | 
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| 313 | { | 
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| 314 |         //either choose recursive traversal (walkTree) or stackless (walkStacklessTree) | 
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| 315 |  | 
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| 316 |         if (m_useQuantization) | 
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| 317 |         { | 
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| 318 |                 ///quantize query AABB | 
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| 319 |                 unsigned short int quantizedQueryAabbMin[3]; | 
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| 320 |                 unsigned short int quantizedQueryAabbMax[3]; | 
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| 321 |                 quantizeWithClamp(quantizedQueryAabbMin,aabbMin,0); | 
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| 322 |                 quantizeWithClamp(quantizedQueryAabbMax,aabbMax,1); | 
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| 323 |  | 
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| 324 |                 switch (m_traversalMode) | 
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| 325 |                 { | 
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| 326 |                 case TRAVERSAL_STACKLESS: | 
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| 327 |                                 walkStacklessQuantizedTree(nodeCallback,quantizedQueryAabbMin,quantizedQueryAabbMax,0,m_curNodeIndex); | 
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| 328 |                         break; | 
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| 329 |                 case TRAVERSAL_STACKLESS_CACHE_FRIENDLY: | 
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| 330 |                                 walkStacklessQuantizedTreeCacheFriendly(nodeCallback,quantizedQueryAabbMin,quantizedQueryAabbMax); | 
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| 331 |                         break; | 
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| 332 |                 case TRAVERSAL_RECURSIVE: | 
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| 333 |                         { | 
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| 334 |                                 const btQuantizedBvhNode* rootNode = &m_quantizedContiguousNodes[0]; | 
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| 335 |                                 walkRecursiveQuantizedTreeAgainstQueryAabb(rootNode,nodeCallback,quantizedQueryAabbMin,quantizedQueryAabbMax); | 
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| 336 |                         } | 
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| 337 |                         break; | 
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| 338 |                 default: | 
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| 339 |                         //unsupported | 
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| 340 |                         btAssert(0); | 
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| 341 |                 } | 
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| 342 |         } else | 
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| 343 |         { | 
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| 344 |                 walkStacklessTree(nodeCallback,aabbMin,aabbMax); | 
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| 345 |         } | 
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| 346 | } | 
|---|
| 347 |  | 
|---|
| 348 |  | 
|---|
| 349 | int maxIterations = 0; | 
|---|
| 350 |  | 
|---|
| 351 |  | 
|---|
| 352 | void    btQuantizedBvh::walkStacklessTree(btNodeOverlapCallback* nodeCallback,const btVector3& aabbMin,const btVector3& aabbMax) const | 
|---|
| 353 | { | 
|---|
| 354 |         btAssert(!m_useQuantization); | 
|---|
| 355 |  | 
|---|
| 356 |         const btOptimizedBvhNode* rootNode = &m_contiguousNodes[0]; | 
|---|
| 357 |         int escapeIndex, curIndex = 0; | 
|---|
| 358 |         int walkIterations = 0; | 
|---|
| 359 |         bool isLeafNode; | 
|---|
| 360 |         //PCK: unsigned instead of bool | 
|---|
| 361 |         unsigned aabbOverlap; | 
|---|
| 362 |  | 
|---|
| 363 |         while (curIndex < m_curNodeIndex) | 
|---|
| 364 |         { | 
|---|
| 365 |                 //catch bugs in tree data | 
|---|
| 366 |                 btAssert (walkIterations < m_curNodeIndex); | 
|---|
| 367 |  | 
|---|
| 368 |                 walkIterations++; | 
|---|
| 369 |                 aabbOverlap = TestAabbAgainstAabb2(aabbMin,aabbMax,rootNode->m_aabbMinOrg,rootNode->m_aabbMaxOrg); | 
|---|
| 370 |                 isLeafNode = rootNode->m_escapeIndex == -1; | 
|---|
| 371 |                  | 
|---|
| 372 |                 //PCK: unsigned instead of bool | 
|---|
| 373 |                 if (isLeafNode && (aabbOverlap != 0)) | 
|---|
| 374 |                 { | 
|---|
| 375 |                         nodeCallback->processNode(rootNode->m_subPart,rootNode->m_triangleIndex); | 
|---|
| 376 |                 }  | 
|---|
| 377 |                  | 
|---|
| 378 |                 //PCK: unsigned instead of bool | 
|---|
| 379 |                 if ((aabbOverlap != 0) || isLeafNode) | 
|---|
| 380 |                 { | 
|---|
| 381 |                         rootNode++; | 
|---|
| 382 |                         curIndex++; | 
|---|
| 383 |                 } else | 
|---|
| 384 |                 { | 
|---|
| 385 |                         escapeIndex = rootNode->m_escapeIndex; | 
|---|
| 386 |                         rootNode += escapeIndex; | 
|---|
| 387 |                         curIndex += escapeIndex; | 
|---|
| 388 |                 } | 
|---|
| 389 |         } | 
|---|
| 390 |         if (maxIterations < walkIterations) | 
|---|
| 391 |                 maxIterations = walkIterations; | 
|---|
| 392 |  | 
|---|
| 393 | } | 
|---|
| 394 |  | 
|---|
| 395 | /* | 
|---|
| 396 | ///this was the original recursive traversal, before we optimized towards stackless traversal | 
|---|
| 397 | void    btQuantizedBvh::walkTree(btOptimizedBvhNode* rootNode,btNodeOverlapCallback* nodeCallback,const btVector3& aabbMin,const btVector3& aabbMax) const | 
|---|
| 398 | { | 
|---|
| 399 |         bool isLeafNode, aabbOverlap = TestAabbAgainstAabb2(aabbMin,aabbMax,rootNode->m_aabbMin,rootNode->m_aabbMax); | 
|---|
| 400 |         if (aabbOverlap) | 
|---|
| 401 |         { | 
|---|
| 402 |                 isLeafNode = (!rootNode->m_leftChild && !rootNode->m_rightChild); | 
|---|
| 403 |                 if (isLeafNode) | 
|---|
| 404 |                 { | 
|---|
| 405 |                         nodeCallback->processNode(rootNode); | 
|---|
| 406 |                 } else | 
|---|
| 407 |                 { | 
|---|
| 408 |                         walkTree(rootNode->m_leftChild,nodeCallback,aabbMin,aabbMax); | 
|---|
| 409 |                         walkTree(rootNode->m_rightChild,nodeCallback,aabbMin,aabbMax); | 
|---|
| 410 |                 } | 
|---|
| 411 |         } | 
|---|
| 412 |  | 
|---|
| 413 | } | 
|---|
| 414 | */ | 
|---|
| 415 |  | 
|---|
| 416 | void btQuantizedBvh::walkRecursiveQuantizedTreeAgainstQueryAabb(const btQuantizedBvhNode* currentNode,btNodeOverlapCallback* nodeCallback,unsigned short int* quantizedQueryAabbMin,unsigned short int* quantizedQueryAabbMax) const | 
|---|
| 417 | { | 
|---|
| 418 |         btAssert(m_useQuantization); | 
|---|
| 419 |          | 
|---|
| 420 |         bool isLeafNode; | 
|---|
| 421 |         //PCK: unsigned instead of bool | 
|---|
| 422 |         unsigned aabbOverlap; | 
|---|
| 423 |  | 
|---|
| 424 |         //PCK: unsigned instead of bool | 
|---|
| 425 |         aabbOverlap = testQuantizedAabbAgainstQuantizedAabb(quantizedQueryAabbMin,quantizedQueryAabbMax,currentNode->m_quantizedAabbMin,currentNode->m_quantizedAabbMax); | 
|---|
| 426 |         isLeafNode = currentNode->isLeafNode(); | 
|---|
| 427 |                  | 
|---|
| 428 |         //PCK: unsigned instead of bool | 
|---|
| 429 |         if (aabbOverlap != 0) | 
|---|
| 430 |         { | 
|---|
| 431 |                 if (isLeafNode) | 
|---|
| 432 |                 { | 
|---|
| 433 |                         nodeCallback->processNode(currentNode->getPartId(),currentNode->getTriangleIndex()); | 
|---|
| 434 |                 } else | 
|---|
| 435 |                 { | 
|---|
| 436 |                         //process left and right children | 
|---|
| 437 |                         const btQuantizedBvhNode* leftChildNode = currentNode+1; | 
|---|
| 438 |                         walkRecursiveQuantizedTreeAgainstQueryAabb(leftChildNode,nodeCallback,quantizedQueryAabbMin,quantizedQueryAabbMax); | 
|---|
| 439 |  | 
|---|
| 440 |                         const btQuantizedBvhNode* rightChildNode = leftChildNode->isLeafNode() ? leftChildNode+1:leftChildNode+leftChildNode->getEscapeIndex(); | 
|---|
| 441 |                         walkRecursiveQuantizedTreeAgainstQueryAabb(rightChildNode,nodeCallback,quantizedQueryAabbMin,quantizedQueryAabbMax); | 
|---|
| 442 |                 } | 
|---|
| 443 |         }                | 
|---|
| 444 | } | 
|---|
| 445 |  | 
|---|
| 446 |  | 
|---|
| 447 |  | 
|---|
| 448 | void    btQuantizedBvh::walkStacklessTreeAgainstRay(btNodeOverlapCallback* nodeCallback, const btVector3& raySource, const btVector3& rayTarget, const btVector3& aabbMin, const btVector3& aabbMax, int startNodeIndex,int endNodeIndex) const | 
|---|
| 449 | { | 
|---|
| 450 |         btAssert(!m_useQuantization); | 
|---|
| 451 |  | 
|---|
| 452 |         const btOptimizedBvhNode* rootNode = &m_contiguousNodes[0]; | 
|---|
| 453 |         int escapeIndex, curIndex = 0; | 
|---|
| 454 |         int walkIterations = 0; | 
|---|
| 455 |         bool isLeafNode; | 
|---|
| 456 |         //PCK: unsigned instead of bool | 
|---|
| 457 |         unsigned aabbOverlap=0; | 
|---|
| 458 |         unsigned rayBoxOverlap=0; | 
|---|
| 459 |         btScalar lambda_max = 1.0; | 
|---|
| 460 |          | 
|---|
| 461 |                 /* Quick pruning by quantized box */ | 
|---|
| 462 |         btVector3 rayAabbMin = raySource; | 
|---|
| 463 |         btVector3 rayAabbMax = raySource; | 
|---|
| 464 |         rayAabbMin.setMin(rayTarget); | 
|---|
| 465 |         rayAabbMax.setMax(rayTarget); | 
|---|
| 466 |  | 
|---|
| 467 |         /* Add box cast extents to bounding box */ | 
|---|
| 468 |         rayAabbMin += aabbMin; | 
|---|
| 469 |         rayAabbMax += aabbMax; | 
|---|
| 470 |  | 
|---|
| 471 | #ifdef RAYAABB2 | 
|---|
| 472 |         btVector3 rayDir = (rayTarget-raySource); | 
|---|
| 473 |         rayDir.normalize (); | 
|---|
| 474 |         lambda_max = rayDir.dot(rayTarget-raySource); | 
|---|
| 475 |         ///what about division by zero? --> just set rayDirection[i] to 1.0 | 
|---|
| 476 |         btVector3 rayDirectionInverse; | 
|---|
| 477 |         rayDirectionInverse[0] = rayDir[0] == btScalar(0.0) ? btScalar(1e30) : btScalar(1.0) / rayDir[0]; | 
|---|
| 478 |         rayDirectionInverse[1] = rayDir[1] == btScalar(0.0) ? btScalar(1e30) : btScalar(1.0) / rayDir[1]; | 
|---|
| 479 |         rayDirectionInverse[2] = rayDir[2] == btScalar(0.0) ? btScalar(1e30) : btScalar(1.0) / rayDir[2]; | 
|---|
| 480 |         unsigned int sign[3] = { rayDirectionInverse[0] < 0.0, rayDirectionInverse[1] < 0.0, rayDirectionInverse[2] < 0.0}; | 
|---|
| 481 | #endif | 
|---|
| 482 |  | 
|---|
| 483 |         btVector3 bounds[2]; | 
|---|
| 484 |  | 
|---|
| 485 |         while (curIndex < m_curNodeIndex) | 
|---|
| 486 |         { | 
|---|
| 487 |                 btScalar param = 1.0; | 
|---|
| 488 |                 //catch bugs in tree data | 
|---|
| 489 |                 btAssert (walkIterations < m_curNodeIndex); | 
|---|
| 490 |  | 
|---|
| 491 |                 walkIterations++; | 
|---|
| 492 |  | 
|---|
| 493 |                 bounds[0] = rootNode->m_aabbMinOrg; | 
|---|
| 494 |                 bounds[1] = rootNode->m_aabbMaxOrg; | 
|---|
| 495 |                 /* Add box cast extents */ | 
|---|
| 496 |                 bounds[0] += aabbMin; | 
|---|
| 497 |                 bounds[1] += aabbMax; | 
|---|
| 498 |  | 
|---|
| 499 |                 aabbOverlap = TestAabbAgainstAabb2(rayAabbMin,rayAabbMax,rootNode->m_aabbMinOrg,rootNode->m_aabbMaxOrg); | 
|---|
| 500 |                 //perhaps profile if it is worth doing the aabbOverlap test first | 
|---|
| 501 |  | 
|---|
| 502 | #ifdef RAYAABB2 | 
|---|
| 503 |                         ///careful with this check: need to check division by zero (above) and fix the unQuantize method | 
|---|
| 504 |                         ///thanks Joerg/hiker for the reproduction case! | 
|---|
| 505 |                         ///http://www.bulletphysics.com/Bullet/phpBB3/viewtopic.php?f=9&t=1858 | 
|---|
| 506 |                 rayBoxOverlap = aabbOverlap ? btRayAabb2 (raySource, rayDirectionInverse, sign, bounds, param, 0.0f, lambda_max) : false; | 
|---|
| 507 |  | 
|---|
| 508 | #else | 
|---|
| 509 |                 btVector3 normal; | 
|---|
| 510 |                 rayBoxOverlap = btRayAabb(raySource, rayTarget,bounds[0],bounds[1],param, normal); | 
|---|
| 511 | #endif | 
|---|
| 512 |  | 
|---|
| 513 |                 isLeafNode = rootNode->m_escapeIndex == -1; | 
|---|
| 514 |                  | 
|---|
| 515 |                 //PCK: unsigned instead of bool | 
|---|
| 516 |                 if (isLeafNode && (rayBoxOverlap != 0)) | 
|---|
| 517 |                 { | 
|---|
| 518 |                         nodeCallback->processNode(rootNode->m_subPart,rootNode->m_triangleIndex); | 
|---|
| 519 |                 }  | 
|---|
| 520 |                  | 
|---|
| 521 |                 //PCK: unsigned instead of bool | 
|---|
| 522 |                 if ((rayBoxOverlap != 0) || isLeafNode) | 
|---|
| 523 |                 { | 
|---|
| 524 |                         rootNode++; | 
|---|
| 525 |                         curIndex++; | 
|---|
| 526 |                 } else | 
|---|
| 527 |                 { | 
|---|
| 528 |                         escapeIndex = rootNode->m_escapeIndex; | 
|---|
| 529 |                         rootNode += escapeIndex; | 
|---|
| 530 |                         curIndex += escapeIndex; | 
|---|
| 531 |                 } | 
|---|
| 532 |         } | 
|---|
| 533 |         if (maxIterations < walkIterations) | 
|---|
| 534 |                 maxIterations = walkIterations; | 
|---|
| 535 |  | 
|---|
| 536 | } | 
|---|
| 537 |  | 
|---|
| 538 |  | 
|---|
| 539 |  | 
|---|
| 540 | void    btQuantizedBvh::walkStacklessQuantizedTreeAgainstRay(btNodeOverlapCallback* nodeCallback, const btVector3& raySource, const btVector3& rayTarget, const btVector3& aabbMin, const btVector3& aabbMax, int startNodeIndex,int endNodeIndex) const | 
|---|
| 541 | { | 
|---|
| 542 |         btAssert(m_useQuantization); | 
|---|
| 543 |          | 
|---|
| 544 |         int curIndex = startNodeIndex; | 
|---|
| 545 |         int walkIterations = 0; | 
|---|
| 546 |         int subTreeSize = endNodeIndex - startNodeIndex; | 
|---|
| 547 |         (void)subTreeSize; | 
|---|
| 548 |  | 
|---|
| 549 |         const btQuantizedBvhNode* rootNode = &m_quantizedContiguousNodes[startNodeIndex]; | 
|---|
| 550 |         int escapeIndex; | 
|---|
| 551 |          | 
|---|
| 552 |         bool isLeafNode; | 
|---|
| 553 |         //PCK: unsigned instead of bool | 
|---|
| 554 |         unsigned boxBoxOverlap = 0; | 
|---|
| 555 |         unsigned rayBoxOverlap = 0; | 
|---|
| 556 |  | 
|---|
| 557 |         btScalar lambda_max = 1.0; | 
|---|
| 558 |  | 
|---|
| 559 | #ifdef RAYAABB2 | 
|---|
| 560 |         btVector3 rayDirection = (rayTarget-raySource); | 
|---|
| 561 |         rayDirection.normalize (); | 
|---|
| 562 |         lambda_max = rayDirection.dot(rayTarget-raySource); | 
|---|
| 563 |         ///what about division by zero? --> just set rayDirection[i] to 1.0 | 
|---|
| 564 |         rayDirection[0] = rayDirection[0] == btScalar(0.0) ? btScalar(1e30) : btScalar(1.0) / rayDirection[0]; | 
|---|
| 565 |         rayDirection[1] = rayDirection[1] == btScalar(0.0) ? btScalar(1e30) : btScalar(1.0) / rayDirection[1]; | 
|---|
| 566 |         rayDirection[2] = rayDirection[2] == btScalar(0.0) ? btScalar(1e30) : btScalar(1.0) / rayDirection[2]; | 
|---|
| 567 |         unsigned int sign[3] = { rayDirection[0] < 0.0, rayDirection[1] < 0.0, rayDirection[2] < 0.0}; | 
|---|
| 568 | #endif | 
|---|
| 569 |  | 
|---|
| 570 |         /* Quick pruning by quantized box */ | 
|---|
| 571 |         btVector3 rayAabbMin = raySource; | 
|---|
| 572 |         btVector3 rayAabbMax = raySource; | 
|---|
| 573 |         rayAabbMin.setMin(rayTarget); | 
|---|
| 574 |         rayAabbMax.setMax(rayTarget); | 
|---|
| 575 |  | 
|---|
| 576 |         /* Add box cast extents to bounding box */ | 
|---|
| 577 |         rayAabbMin += aabbMin; | 
|---|
| 578 |         rayAabbMax += aabbMax; | 
|---|
| 579 |  | 
|---|
| 580 |         unsigned short int quantizedQueryAabbMin[3]; | 
|---|
| 581 |         unsigned short int quantizedQueryAabbMax[3]; | 
|---|
| 582 |         quantizeWithClamp(quantizedQueryAabbMin,rayAabbMin,0); | 
|---|
| 583 |         quantizeWithClamp(quantizedQueryAabbMax,rayAabbMax,1); | 
|---|
| 584 |  | 
|---|
| 585 |         while (curIndex < endNodeIndex) | 
|---|
| 586 |         { | 
|---|
| 587 |  | 
|---|
| 588 | //#define VISUALLY_ANALYZE_BVH 1 | 
|---|
| 589 | #ifdef VISUALLY_ANALYZE_BVH | 
|---|
| 590 |                 //some code snippet to debugDraw aabb, to visually analyze bvh structure | 
|---|
| 591 |                 static int drawPatch = 0; | 
|---|
| 592 |                 //need some global access to a debugDrawer | 
|---|
| 593 |                 extern btIDebugDraw* debugDrawerPtr; | 
|---|
| 594 |                 if (curIndex==drawPatch) | 
|---|
| 595 |                 { | 
|---|
| 596 |                         btVector3 aabbMin,aabbMax; | 
|---|
| 597 |                         aabbMin = unQuantize(rootNode->m_quantizedAabbMin); | 
|---|
| 598 |                         aabbMax = unQuantize(rootNode->m_quantizedAabbMax); | 
|---|
| 599 |                         btVector3       color(1,0,0); | 
|---|
| 600 |                         debugDrawerPtr->drawAabb(aabbMin,aabbMax,color); | 
|---|
| 601 |                 } | 
|---|
| 602 | #endif//VISUALLY_ANALYZE_BVH | 
|---|
| 603 |  | 
|---|
| 604 |                 //catch bugs in tree data | 
|---|
| 605 |                 btAssert (walkIterations < subTreeSize); | 
|---|
| 606 |  | 
|---|
| 607 |                 walkIterations++; | 
|---|
| 608 |                 //PCK: unsigned instead of bool | 
|---|
| 609 |                 // only interested if this is closer than any previous hit | 
|---|
| 610 |                 btScalar param = 1.0; | 
|---|
| 611 |                 rayBoxOverlap = 0; | 
|---|
| 612 |                 boxBoxOverlap = testQuantizedAabbAgainstQuantizedAabb(quantizedQueryAabbMin,quantizedQueryAabbMax,rootNode->m_quantizedAabbMin,rootNode->m_quantizedAabbMax); | 
|---|
| 613 |                 isLeafNode = rootNode->isLeafNode(); | 
|---|
| 614 |                 if (boxBoxOverlap) | 
|---|
| 615 |                 { | 
|---|
| 616 |                         btVector3 bounds[2]; | 
|---|
| 617 |                         bounds[0] = unQuantize(rootNode->m_quantizedAabbMin); | 
|---|
| 618 |                         bounds[1] = unQuantize(rootNode->m_quantizedAabbMax); | 
|---|
| 619 |                         /* Add box cast extents */ | 
|---|
| 620 |                         bounds[0] += aabbMin; | 
|---|
| 621 |                         bounds[1] += aabbMax; | 
|---|
| 622 |                         btVector3 normal; | 
|---|
| 623 | #if 0 | 
|---|
| 624 |                         bool ra2 = btRayAabb2 (raySource, rayDirection, sign, bounds, param, 0.0, lambda_max); | 
|---|
| 625 |                         bool ra = btRayAabb (raySource, rayTarget, bounds[0], bounds[1], param, normal); | 
|---|
| 626 |                         if (ra2 != ra) | 
|---|
| 627 |                         { | 
|---|
| 628 |                                 printf("functions don't match\n"); | 
|---|
| 629 |                         } | 
|---|
| 630 | #endif | 
|---|
| 631 | #ifdef RAYAABB2 | 
|---|
| 632 |                         ///careful with this check: need to check division by zero (above) and fix the unQuantize method | 
|---|
| 633 |                         ///thanks Joerg/hiker for the reproduction case! | 
|---|
| 634 |                         ///http://www.bulletphysics.com/Bullet/phpBB3/viewtopic.php?f=9&t=1858 | 
|---|
| 635 |  | 
|---|
| 636 |                         //BT_PROFILE("btRayAabb2"); | 
|---|
| 637 |                         rayBoxOverlap = btRayAabb2 (raySource, rayDirection, sign, bounds, param, 0.0f, lambda_max); | 
|---|
| 638 |                          | 
|---|
| 639 | #else | 
|---|
| 640 |                         rayBoxOverlap = true;//btRayAabb(raySource, rayTarget, bounds[0], bounds[1], param, normal); | 
|---|
| 641 | #endif | 
|---|
| 642 |                 } | 
|---|
| 643 |                  | 
|---|
| 644 |                 if (isLeafNode && rayBoxOverlap) | 
|---|
| 645 |                 { | 
|---|
| 646 |                         nodeCallback->processNode(rootNode->getPartId(),rootNode->getTriangleIndex()); | 
|---|
| 647 |                 } | 
|---|
| 648 |                  | 
|---|
| 649 |                 //PCK: unsigned instead of bool | 
|---|
| 650 |                 if ((rayBoxOverlap != 0) || isLeafNode) | 
|---|
| 651 |                 { | 
|---|
| 652 |                         rootNode++; | 
|---|
| 653 |                         curIndex++; | 
|---|
| 654 |                 } else | 
|---|
| 655 |                 { | 
|---|
| 656 |                         escapeIndex = rootNode->getEscapeIndex(); | 
|---|
| 657 |                         rootNode += escapeIndex; | 
|---|
| 658 |                         curIndex += escapeIndex; | 
|---|
| 659 |                 } | 
|---|
| 660 |         } | 
|---|
| 661 |         if (maxIterations < walkIterations) | 
|---|
| 662 |                 maxIterations = walkIterations; | 
|---|
| 663 |  | 
|---|
| 664 | } | 
|---|
| 665 |  | 
|---|
| 666 | void    btQuantizedBvh::walkStacklessQuantizedTree(btNodeOverlapCallback* nodeCallback,unsigned short int* quantizedQueryAabbMin,unsigned short int* quantizedQueryAabbMax,int startNodeIndex,int endNodeIndex) const | 
|---|
| 667 | { | 
|---|
| 668 |         btAssert(m_useQuantization); | 
|---|
| 669 |          | 
|---|
| 670 |         int curIndex = startNodeIndex; | 
|---|
| 671 |         int walkIterations = 0; | 
|---|
| 672 |         int subTreeSize = endNodeIndex - startNodeIndex; | 
|---|
| 673 |         (void)subTreeSize; | 
|---|
| 674 |  | 
|---|
| 675 |         const btQuantizedBvhNode* rootNode = &m_quantizedContiguousNodes[startNodeIndex]; | 
|---|
| 676 |         int escapeIndex; | 
|---|
| 677 |          | 
|---|
| 678 |         bool isLeafNode; | 
|---|
| 679 |         //PCK: unsigned instead of bool | 
|---|
| 680 |         unsigned aabbOverlap; | 
|---|
| 681 |  | 
|---|
| 682 |         while (curIndex < endNodeIndex) | 
|---|
| 683 |         { | 
|---|
| 684 |  | 
|---|
| 685 | //#define VISUALLY_ANALYZE_BVH 1 | 
|---|
| 686 | #ifdef VISUALLY_ANALYZE_BVH | 
|---|
| 687 |                 //some code snippet to debugDraw aabb, to visually analyze bvh structure | 
|---|
| 688 |                 static int drawPatch = 0; | 
|---|
| 689 |                 //need some global access to a debugDrawer | 
|---|
| 690 |                 extern btIDebugDraw* debugDrawerPtr; | 
|---|
| 691 |                 if (curIndex==drawPatch) | 
|---|
| 692 |                 { | 
|---|
| 693 |                         btVector3 aabbMin,aabbMax; | 
|---|
| 694 |                         aabbMin = unQuantize(rootNode->m_quantizedAabbMin); | 
|---|
| 695 |                         aabbMax = unQuantize(rootNode->m_quantizedAabbMax); | 
|---|
| 696 |                         btVector3       color(1,0,0); | 
|---|
| 697 |                         debugDrawerPtr->drawAabb(aabbMin,aabbMax,color); | 
|---|
| 698 |                 } | 
|---|
| 699 | #endif//VISUALLY_ANALYZE_BVH | 
|---|
| 700 |  | 
|---|
| 701 |                 //catch bugs in tree data | 
|---|
| 702 |                 btAssert (walkIterations < subTreeSize); | 
|---|
| 703 |  | 
|---|
| 704 |                 walkIterations++; | 
|---|
| 705 |                 //PCK: unsigned instead of bool | 
|---|
| 706 |                 aabbOverlap = testQuantizedAabbAgainstQuantizedAabb(quantizedQueryAabbMin,quantizedQueryAabbMax,rootNode->m_quantizedAabbMin,rootNode->m_quantizedAabbMax); | 
|---|
| 707 |                 isLeafNode = rootNode->isLeafNode(); | 
|---|
| 708 |                  | 
|---|
| 709 |                 if (isLeafNode && aabbOverlap) | 
|---|
| 710 |                 { | 
|---|
| 711 |                         nodeCallback->processNode(rootNode->getPartId(),rootNode->getTriangleIndex()); | 
|---|
| 712 |                 }  | 
|---|
| 713 |                  | 
|---|
| 714 |                 //PCK: unsigned instead of bool | 
|---|
| 715 |                 if ((aabbOverlap != 0) || isLeafNode) | 
|---|
| 716 |                 { | 
|---|
| 717 |                         rootNode++; | 
|---|
| 718 |                         curIndex++; | 
|---|
| 719 |                 } else | 
|---|
| 720 |                 { | 
|---|
| 721 |                         escapeIndex = rootNode->getEscapeIndex(); | 
|---|
| 722 |                         rootNode += escapeIndex; | 
|---|
| 723 |                         curIndex += escapeIndex; | 
|---|
| 724 |                 } | 
|---|
| 725 |         } | 
|---|
| 726 |         if (maxIterations < walkIterations) | 
|---|
| 727 |                 maxIterations = walkIterations; | 
|---|
| 728 |  | 
|---|
| 729 | } | 
|---|
| 730 |  | 
|---|
| 731 | //This traversal can be called from Playstation 3 SPU | 
|---|
| 732 | void    btQuantizedBvh::walkStacklessQuantizedTreeCacheFriendly(btNodeOverlapCallback* nodeCallback,unsigned short int* quantizedQueryAabbMin,unsigned short int* quantizedQueryAabbMax) const | 
|---|
| 733 | { | 
|---|
| 734 |         btAssert(m_useQuantization); | 
|---|
| 735 |  | 
|---|
| 736 |         int i; | 
|---|
| 737 |  | 
|---|
| 738 |  | 
|---|
| 739 |         for (i=0;i<this->m_SubtreeHeaders.size();i++) | 
|---|
| 740 |         { | 
|---|
| 741 |                 const btBvhSubtreeInfo& subtree = m_SubtreeHeaders[i]; | 
|---|
| 742 |  | 
|---|
| 743 |                 //PCK: unsigned instead of bool | 
|---|
| 744 |                 unsigned overlap = testQuantizedAabbAgainstQuantizedAabb(quantizedQueryAabbMin,quantizedQueryAabbMax,subtree.m_quantizedAabbMin,subtree.m_quantizedAabbMax); | 
|---|
| 745 |                 if (overlap != 0) | 
|---|
| 746 |                 { | 
|---|
| 747 |                         walkStacklessQuantizedTree(nodeCallback,quantizedQueryAabbMin,quantizedQueryAabbMax, | 
|---|
| 748 |                                 subtree.m_rootNodeIndex, | 
|---|
| 749 |                                 subtree.m_rootNodeIndex+subtree.m_subtreeSize); | 
|---|
| 750 |                 } | 
|---|
| 751 |         } | 
|---|
| 752 | } | 
|---|
| 753 |  | 
|---|
| 754 |  | 
|---|
| 755 | void    btQuantizedBvh::reportRayOverlappingNodex (btNodeOverlapCallback* nodeCallback, const btVector3& raySource, const btVector3& rayTarget) const | 
|---|
| 756 | { | 
|---|
| 757 |         reportBoxCastOverlappingNodex(nodeCallback,raySource,rayTarget,btVector3(0,0,0),btVector3(0,0,0)); | 
|---|
| 758 | } | 
|---|
| 759 |  | 
|---|
| 760 |  | 
|---|
| 761 | void    btQuantizedBvh::reportBoxCastOverlappingNodex(btNodeOverlapCallback* nodeCallback, const btVector3& raySource, const btVector3& rayTarget, const btVector3& aabbMin,const btVector3& aabbMax) const | 
|---|
| 762 | { | 
|---|
| 763 |         //always use stackless | 
|---|
| 764 |  | 
|---|
| 765 |         if (m_useQuantization) | 
|---|
| 766 |         { | 
|---|
| 767 |                 walkStacklessQuantizedTreeAgainstRay(nodeCallback, raySource, rayTarget, aabbMin, aabbMax, 0, m_curNodeIndex); | 
|---|
| 768 |         } | 
|---|
| 769 |         else | 
|---|
| 770 |         { | 
|---|
| 771 |                 walkStacklessTreeAgainstRay(nodeCallback, raySource, rayTarget, aabbMin, aabbMax, 0, m_curNodeIndex); | 
|---|
| 772 |         } | 
|---|
| 773 |         /* | 
|---|
| 774 |         { | 
|---|
| 775 |                 //recursive traversal | 
|---|
| 776 |                 btVector3 qaabbMin = raySource; | 
|---|
| 777 |                 btVector3 qaabbMax = raySource; | 
|---|
| 778 |                 qaabbMin.setMin(rayTarget); | 
|---|
| 779 |                 qaabbMax.setMax(rayTarget); | 
|---|
| 780 |                 qaabbMin += aabbMin; | 
|---|
| 781 |                 qaabbMax += aabbMax; | 
|---|
| 782 |                 reportAabbOverlappingNodex(nodeCallback,qaabbMin,qaabbMax); | 
|---|
| 783 |         } | 
|---|
| 784 |         */ | 
|---|
| 785 |  | 
|---|
| 786 | } | 
|---|
| 787 |  | 
|---|
| 788 |  | 
|---|
| 789 | void    btQuantizedBvh::swapLeafNodes(int i,int splitIndex) | 
|---|
| 790 | { | 
|---|
| 791 |         if (m_useQuantization) | 
|---|
| 792 |         { | 
|---|
| 793 |                         btQuantizedBvhNode tmp = m_quantizedLeafNodes[i]; | 
|---|
| 794 |                         m_quantizedLeafNodes[i] = m_quantizedLeafNodes[splitIndex]; | 
|---|
| 795 |                         m_quantizedLeafNodes[splitIndex] = tmp; | 
|---|
| 796 |         } else | 
|---|
| 797 |         { | 
|---|
| 798 |                         btOptimizedBvhNode tmp = m_leafNodes[i]; | 
|---|
| 799 |                         m_leafNodes[i] = m_leafNodes[splitIndex]; | 
|---|
| 800 |                         m_leafNodes[splitIndex] = tmp; | 
|---|
| 801 |         } | 
|---|
| 802 | } | 
|---|
| 803 |  | 
|---|
| 804 | void    btQuantizedBvh::assignInternalNodeFromLeafNode(int internalNode,int leafNodeIndex) | 
|---|
| 805 | { | 
|---|
| 806 |         if (m_useQuantization) | 
|---|
| 807 |         { | 
|---|
| 808 |                 m_quantizedContiguousNodes[internalNode] = m_quantizedLeafNodes[leafNodeIndex]; | 
|---|
| 809 |         } else | 
|---|
| 810 |         { | 
|---|
| 811 |                 m_contiguousNodes[internalNode] = m_leafNodes[leafNodeIndex]; | 
|---|
| 812 |         } | 
|---|
| 813 | } | 
|---|
| 814 |  | 
|---|
| 815 | //PCK: include | 
|---|
| 816 | #include <new> | 
|---|
| 817 |  | 
|---|
| 818 | #if 0 | 
|---|
| 819 | //PCK: consts | 
|---|
| 820 | static const unsigned BVH_ALIGNMENT = 16; | 
|---|
| 821 | static const unsigned BVH_ALIGNMENT_MASK = BVH_ALIGNMENT-1; | 
|---|
| 822 |  | 
|---|
| 823 | static const unsigned BVH_ALIGNMENT_BLOCKS = 2; | 
|---|
| 824 | #endif | 
|---|
| 825 |  | 
|---|
| 826 |  | 
|---|
| 827 | unsigned int btQuantizedBvh::getAlignmentSerializationPadding() | 
|---|
| 828 | { | 
|---|
| 829 |         // I changed this to 0 since the extra padding is not needed or used. | 
|---|
| 830 |         return 0;//BVH_ALIGNMENT_BLOCKS * BVH_ALIGNMENT; | 
|---|
| 831 | } | 
|---|
| 832 |  | 
|---|
| 833 | unsigned btQuantizedBvh::calculateSerializeBufferSize() | 
|---|
| 834 | { | 
|---|
| 835 |         unsigned baseSize = sizeof(btQuantizedBvh) + getAlignmentSerializationPadding(); | 
|---|
| 836 |         baseSize += sizeof(btBvhSubtreeInfo) * m_subtreeHeaderCount; | 
|---|
| 837 |         if (m_useQuantization) | 
|---|
| 838 |         { | 
|---|
| 839 |                 return baseSize + m_curNodeIndex * sizeof(btQuantizedBvhNode); | 
|---|
| 840 |         } | 
|---|
| 841 |         return baseSize + m_curNodeIndex * sizeof(btOptimizedBvhNode); | 
|---|
| 842 | } | 
|---|
| 843 |  | 
|---|
| 844 | bool btQuantizedBvh::serialize(void *o_alignedDataBuffer, unsigned /*i_dataBufferSize */, bool i_swapEndian) | 
|---|
| 845 | { | 
|---|
| 846 |         btAssert(m_subtreeHeaderCount == m_SubtreeHeaders.size()); | 
|---|
| 847 |         m_subtreeHeaderCount = m_SubtreeHeaders.size(); | 
|---|
| 848 |  | 
|---|
| 849 | /*      if (i_dataBufferSize < calculateSerializeBufferSize() || o_alignedDataBuffer == NULL || (((unsigned)o_alignedDataBuffer & BVH_ALIGNMENT_MASK) != 0)) | 
|---|
| 850 |         { | 
|---|
| 851 |                 ///check alignedment for buffer? | 
|---|
| 852 |                 btAssert(0); | 
|---|
| 853 |                 return false; | 
|---|
| 854 |         } | 
|---|
| 855 | */ | 
|---|
| 856 |  | 
|---|
| 857 |         btQuantizedBvh *targetBvh = (btQuantizedBvh *)o_alignedDataBuffer; | 
|---|
| 858 |  | 
|---|
| 859 |         // construct the class so the virtual function table, etc will be set up | 
|---|
| 860 |         // Also, m_leafNodes and m_quantizedLeafNodes will be initialized to default values by the constructor | 
|---|
| 861 |         new (targetBvh) btQuantizedBvh; | 
|---|
| 862 |  | 
|---|
| 863 |         if (i_swapEndian) | 
|---|
| 864 |         { | 
|---|
| 865 |                 targetBvh->m_curNodeIndex = static_cast<int>(btSwapEndian(m_curNodeIndex)); | 
|---|
| 866 |  | 
|---|
| 867 |  | 
|---|
| 868 |                 btSwapVector3Endian(m_bvhAabbMin,targetBvh->m_bvhAabbMin); | 
|---|
| 869 |                 btSwapVector3Endian(m_bvhAabbMax,targetBvh->m_bvhAabbMax); | 
|---|
| 870 |                 btSwapVector3Endian(m_bvhQuantization,targetBvh->m_bvhQuantization); | 
|---|
| 871 |  | 
|---|
| 872 |                 targetBvh->m_traversalMode = (btTraversalMode)btSwapEndian(m_traversalMode); | 
|---|
| 873 |                 targetBvh->m_subtreeHeaderCount = static_cast<int>(btSwapEndian(m_subtreeHeaderCount)); | 
|---|
| 874 |         } | 
|---|
| 875 |         else | 
|---|
| 876 |         { | 
|---|
| 877 |                 targetBvh->m_curNodeIndex = m_curNodeIndex; | 
|---|
| 878 |                 targetBvh->m_bvhAabbMin = m_bvhAabbMin; | 
|---|
| 879 |                 targetBvh->m_bvhAabbMax = m_bvhAabbMax; | 
|---|
| 880 |                 targetBvh->m_bvhQuantization = m_bvhQuantization; | 
|---|
| 881 |                 targetBvh->m_traversalMode = m_traversalMode; | 
|---|
| 882 |                 targetBvh->m_subtreeHeaderCount = m_subtreeHeaderCount; | 
|---|
| 883 |         } | 
|---|
| 884 |  | 
|---|
| 885 |         targetBvh->m_useQuantization = m_useQuantization; | 
|---|
| 886 |  | 
|---|
| 887 |         unsigned char *nodeData = (unsigned char *)targetBvh; | 
|---|
| 888 |         nodeData += sizeof(btQuantizedBvh); | 
|---|
| 889 |          | 
|---|
| 890 |         unsigned sizeToAdd = 0;//(BVH_ALIGNMENT-((unsigned)nodeData & BVH_ALIGNMENT_MASK))&BVH_ALIGNMENT_MASK; | 
|---|
| 891 |         nodeData += sizeToAdd; | 
|---|
| 892 |          | 
|---|
| 893 |         int nodeCount = m_curNodeIndex; | 
|---|
| 894 |  | 
|---|
| 895 |         if (m_useQuantization) | 
|---|
| 896 |         { | 
|---|
| 897 |                 targetBvh->m_quantizedContiguousNodes.initializeFromBuffer(nodeData, nodeCount, nodeCount); | 
|---|
| 898 |  | 
|---|
| 899 |                 if (i_swapEndian) | 
|---|
| 900 |                 { | 
|---|
| 901 |                         for (int nodeIndex = 0; nodeIndex < nodeCount; nodeIndex++) | 
|---|
| 902 |                         { | 
|---|
| 903 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[0] = btSwapEndian(m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[0]); | 
|---|
| 904 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[1] = btSwapEndian(m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[1]); | 
|---|
| 905 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[2] = btSwapEndian(m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[2]); | 
|---|
| 906 |  | 
|---|
| 907 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[0] = btSwapEndian(m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[0]); | 
|---|
| 908 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[1] = btSwapEndian(m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[1]); | 
|---|
| 909 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[2] = btSwapEndian(m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[2]); | 
|---|
| 910 |  | 
|---|
| 911 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_escapeIndexOrTriangleIndex = static_cast<int>(btSwapEndian(m_quantizedContiguousNodes[nodeIndex].m_escapeIndexOrTriangleIndex)); | 
|---|
| 912 |                         } | 
|---|
| 913 |                 } | 
|---|
| 914 |                 else | 
|---|
| 915 |                 { | 
|---|
| 916 |                         for (int nodeIndex = 0; nodeIndex < nodeCount; nodeIndex++) | 
|---|
| 917 |                         { | 
|---|
| 918 |          | 
|---|
| 919 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[0] = m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[0]; | 
|---|
| 920 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[1] = m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[1]; | 
|---|
| 921 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[2] = m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[2]; | 
|---|
| 922 |  | 
|---|
| 923 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[0] = m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[0]; | 
|---|
| 924 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[1] = m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[1]; | 
|---|
| 925 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[2] = m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[2]; | 
|---|
| 926 |  | 
|---|
| 927 |                                 targetBvh->m_quantizedContiguousNodes[nodeIndex].m_escapeIndexOrTriangleIndex = m_quantizedContiguousNodes[nodeIndex].m_escapeIndexOrTriangleIndex; | 
|---|
| 928 |  | 
|---|
| 929 |  | 
|---|
| 930 |                         } | 
|---|
| 931 |                 } | 
|---|
| 932 |                 nodeData += sizeof(btQuantizedBvhNode) * nodeCount; | 
|---|
| 933 |  | 
|---|
| 934 |                 // this clears the pointer in the member variable it doesn't really do anything to the data | 
|---|
| 935 |                 // it does call the destructor on the contained objects, but they are all classes with no destructor defined | 
|---|
| 936 |                 // so the memory (which is not freed) is left alone | 
|---|
| 937 |                 targetBvh->m_quantizedContiguousNodes.initializeFromBuffer(NULL, 0, 0); | 
|---|
| 938 |         } | 
|---|
| 939 |         else | 
|---|
| 940 |         { | 
|---|
| 941 |                 targetBvh->m_contiguousNodes.initializeFromBuffer(nodeData, nodeCount, nodeCount); | 
|---|
| 942 |  | 
|---|
| 943 |                 if (i_swapEndian) | 
|---|
| 944 |                 { | 
|---|
| 945 |                         for (int nodeIndex = 0; nodeIndex < nodeCount; nodeIndex++) | 
|---|
| 946 |                         { | 
|---|
| 947 |                                 btSwapVector3Endian(m_contiguousNodes[nodeIndex].m_aabbMinOrg, targetBvh->m_contiguousNodes[nodeIndex].m_aabbMinOrg); | 
|---|
| 948 |                                 btSwapVector3Endian(m_contiguousNodes[nodeIndex].m_aabbMaxOrg, targetBvh->m_contiguousNodes[nodeIndex].m_aabbMaxOrg); | 
|---|
| 949 |  | 
|---|
| 950 |                                 targetBvh->m_contiguousNodes[nodeIndex].m_escapeIndex = static_cast<int>(btSwapEndian(m_contiguousNodes[nodeIndex].m_escapeIndex)); | 
|---|
| 951 |                                 targetBvh->m_contiguousNodes[nodeIndex].m_subPart = static_cast<int>(btSwapEndian(m_contiguousNodes[nodeIndex].m_subPart)); | 
|---|
| 952 |                                 targetBvh->m_contiguousNodes[nodeIndex].m_triangleIndex = static_cast<int>(btSwapEndian(m_contiguousNodes[nodeIndex].m_triangleIndex)); | 
|---|
| 953 |                         } | 
|---|
| 954 |                 } | 
|---|
| 955 |                 else | 
|---|
| 956 |                 { | 
|---|
| 957 |                         for (int nodeIndex = 0; nodeIndex < nodeCount; nodeIndex++) | 
|---|
| 958 |                         { | 
|---|
| 959 |                                 targetBvh->m_contiguousNodes[nodeIndex].m_aabbMinOrg = m_contiguousNodes[nodeIndex].m_aabbMinOrg; | 
|---|
| 960 |                                 targetBvh->m_contiguousNodes[nodeIndex].m_aabbMaxOrg = m_contiguousNodes[nodeIndex].m_aabbMaxOrg; | 
|---|
| 961 |  | 
|---|
| 962 |                                 targetBvh->m_contiguousNodes[nodeIndex].m_escapeIndex = m_contiguousNodes[nodeIndex].m_escapeIndex; | 
|---|
| 963 |                                 targetBvh->m_contiguousNodes[nodeIndex].m_subPart = m_contiguousNodes[nodeIndex].m_subPart; | 
|---|
| 964 |                                 targetBvh->m_contiguousNodes[nodeIndex].m_triangleIndex = m_contiguousNodes[nodeIndex].m_triangleIndex; | 
|---|
| 965 |                         } | 
|---|
| 966 |                 } | 
|---|
| 967 |                 nodeData += sizeof(btOptimizedBvhNode) * nodeCount; | 
|---|
| 968 |  | 
|---|
| 969 |                 // this clears the pointer in the member variable it doesn't really do anything to the data | 
|---|
| 970 |                 // it does call the destructor on the contained objects, but they are all classes with no destructor defined | 
|---|
| 971 |                 // so the memory (which is not freed) is left alone | 
|---|
| 972 |                 targetBvh->m_contiguousNodes.initializeFromBuffer(NULL, 0, 0); | 
|---|
| 973 |         } | 
|---|
| 974 |  | 
|---|
| 975 |         sizeToAdd = 0;//(BVH_ALIGNMENT-((unsigned)nodeData & BVH_ALIGNMENT_MASK))&BVH_ALIGNMENT_MASK; | 
|---|
| 976 |         nodeData += sizeToAdd; | 
|---|
| 977 |  | 
|---|
| 978 |         // Now serialize the subtree headers | 
|---|
| 979 |         targetBvh->m_SubtreeHeaders.initializeFromBuffer(nodeData, m_subtreeHeaderCount, m_subtreeHeaderCount); | 
|---|
| 980 |         if (i_swapEndian) | 
|---|
| 981 |         { | 
|---|
| 982 |                 for (int i = 0; i < m_subtreeHeaderCount; i++) | 
|---|
| 983 |                 { | 
|---|
| 984 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMin[0] = btSwapEndian(m_SubtreeHeaders[i].m_quantizedAabbMin[0]); | 
|---|
| 985 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMin[1] = btSwapEndian(m_SubtreeHeaders[i].m_quantizedAabbMin[1]); | 
|---|
| 986 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMin[2] = btSwapEndian(m_SubtreeHeaders[i].m_quantizedAabbMin[2]); | 
|---|
| 987 |  | 
|---|
| 988 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMax[0] = btSwapEndian(m_SubtreeHeaders[i].m_quantizedAabbMax[0]); | 
|---|
| 989 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMax[1] = btSwapEndian(m_SubtreeHeaders[i].m_quantizedAabbMax[1]); | 
|---|
| 990 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMax[2] = btSwapEndian(m_SubtreeHeaders[i].m_quantizedAabbMax[2]); | 
|---|
| 991 |  | 
|---|
| 992 |                         targetBvh->m_SubtreeHeaders[i].m_rootNodeIndex = static_cast<int>(btSwapEndian(m_SubtreeHeaders[i].m_rootNodeIndex)); | 
|---|
| 993 |                         targetBvh->m_SubtreeHeaders[i].m_subtreeSize = static_cast<int>(btSwapEndian(m_SubtreeHeaders[i].m_subtreeSize)); | 
|---|
| 994 |                 } | 
|---|
| 995 |         } | 
|---|
| 996 |         else | 
|---|
| 997 |         { | 
|---|
| 998 |                 for (int i = 0; i < m_subtreeHeaderCount; i++) | 
|---|
| 999 |                 { | 
|---|
| 1000 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMin[0] = (m_SubtreeHeaders[i].m_quantizedAabbMin[0]); | 
|---|
| 1001 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMin[1] = (m_SubtreeHeaders[i].m_quantizedAabbMin[1]); | 
|---|
| 1002 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMin[2] = (m_SubtreeHeaders[i].m_quantizedAabbMin[2]); | 
|---|
| 1003 |  | 
|---|
| 1004 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMax[0] = (m_SubtreeHeaders[i].m_quantizedAabbMax[0]); | 
|---|
| 1005 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMax[1] = (m_SubtreeHeaders[i].m_quantizedAabbMax[1]); | 
|---|
| 1006 |                         targetBvh->m_SubtreeHeaders[i].m_quantizedAabbMax[2] = (m_SubtreeHeaders[i].m_quantizedAabbMax[2]); | 
|---|
| 1007 |  | 
|---|
| 1008 |                         targetBvh->m_SubtreeHeaders[i].m_rootNodeIndex = (m_SubtreeHeaders[i].m_rootNodeIndex); | 
|---|
| 1009 |                         targetBvh->m_SubtreeHeaders[i].m_subtreeSize = (m_SubtreeHeaders[i].m_subtreeSize); | 
|---|
| 1010 |  | 
|---|
| 1011 |                         // need to clear padding in destination buffer | 
|---|
| 1012 |                         targetBvh->m_SubtreeHeaders[i].m_padding[0] = 0; | 
|---|
| 1013 |                         targetBvh->m_SubtreeHeaders[i].m_padding[1] = 0; | 
|---|
| 1014 |                         targetBvh->m_SubtreeHeaders[i].m_padding[2] = 0; | 
|---|
| 1015 |                 } | 
|---|
| 1016 |         } | 
|---|
| 1017 |         nodeData += sizeof(btBvhSubtreeInfo) * m_subtreeHeaderCount; | 
|---|
| 1018 |  | 
|---|
| 1019 |         // this clears the pointer in the member variable it doesn't really do anything to the data | 
|---|
| 1020 |         // it does call the destructor on the contained objects, but they are all classes with no destructor defined | 
|---|
| 1021 |         // so the memory (which is not freed) is left alone | 
|---|
| 1022 |         targetBvh->m_SubtreeHeaders.initializeFromBuffer(NULL, 0, 0); | 
|---|
| 1023 |  | 
|---|
| 1024 |         // this wipes the virtual function table pointer at the start of the buffer for the class | 
|---|
| 1025 |         *((void**)o_alignedDataBuffer) = NULL; | 
|---|
| 1026 |  | 
|---|
| 1027 |         return true; | 
|---|
| 1028 | } | 
|---|
| 1029 |  | 
|---|
| 1030 | btQuantizedBvh *btQuantizedBvh::deSerializeInPlace(void *i_alignedDataBuffer, unsigned int i_dataBufferSize, bool i_swapEndian) | 
|---|
| 1031 | { | 
|---|
| 1032 |  | 
|---|
| 1033 |         if (i_alignedDataBuffer == NULL)// || (((unsigned)i_alignedDataBuffer & BVH_ALIGNMENT_MASK) != 0)) | 
|---|
| 1034 |         { | 
|---|
| 1035 |                 return NULL; | 
|---|
| 1036 |         } | 
|---|
| 1037 |         btQuantizedBvh *bvh = (btQuantizedBvh *)i_alignedDataBuffer; | 
|---|
| 1038 |  | 
|---|
| 1039 |         if (i_swapEndian) | 
|---|
| 1040 |         { | 
|---|
| 1041 |                 bvh->m_curNodeIndex = static_cast<int>(btSwapEndian(bvh->m_curNodeIndex)); | 
|---|
| 1042 |  | 
|---|
| 1043 |                 btUnSwapVector3Endian(bvh->m_bvhAabbMin); | 
|---|
| 1044 |                 btUnSwapVector3Endian(bvh->m_bvhAabbMax); | 
|---|
| 1045 |                 btUnSwapVector3Endian(bvh->m_bvhQuantization); | 
|---|
| 1046 |  | 
|---|
| 1047 |                 bvh->m_traversalMode = (btTraversalMode)btSwapEndian(bvh->m_traversalMode); | 
|---|
| 1048 |                 bvh->m_subtreeHeaderCount = static_cast<int>(btSwapEndian(bvh->m_subtreeHeaderCount)); | 
|---|
| 1049 |         } | 
|---|
| 1050 |  | 
|---|
| 1051 |         unsigned int calculatedBufSize = bvh->calculateSerializeBufferSize(); | 
|---|
| 1052 |         btAssert(calculatedBufSize <= i_dataBufferSize); | 
|---|
| 1053 |  | 
|---|
| 1054 |         if (calculatedBufSize > i_dataBufferSize) | 
|---|
| 1055 |         { | 
|---|
| 1056 |                 return NULL; | 
|---|
| 1057 |         } | 
|---|
| 1058 |  | 
|---|
| 1059 |         unsigned char *nodeData = (unsigned char *)bvh; | 
|---|
| 1060 |         nodeData += sizeof(btQuantizedBvh); | 
|---|
| 1061 |          | 
|---|
| 1062 |         unsigned sizeToAdd = 0;//(BVH_ALIGNMENT-((unsigned)nodeData & BVH_ALIGNMENT_MASK))&BVH_ALIGNMENT_MASK; | 
|---|
| 1063 |         nodeData += sizeToAdd; | 
|---|
| 1064 |          | 
|---|
| 1065 |         int nodeCount = bvh->m_curNodeIndex; | 
|---|
| 1066 |  | 
|---|
| 1067 |         // Must call placement new to fill in virtual function table, etc, but we don't want to overwrite most data, so call a special version of the constructor | 
|---|
| 1068 |         // Also, m_leafNodes and m_quantizedLeafNodes will be initialized to default values by the constructor | 
|---|
| 1069 |         new (bvh) btQuantizedBvh(*bvh, false); | 
|---|
| 1070 |  | 
|---|
| 1071 |         if (bvh->m_useQuantization) | 
|---|
| 1072 |         { | 
|---|
| 1073 |                 bvh->m_quantizedContiguousNodes.initializeFromBuffer(nodeData, nodeCount, nodeCount); | 
|---|
| 1074 |  | 
|---|
| 1075 |                 if (i_swapEndian) | 
|---|
| 1076 |                 { | 
|---|
| 1077 |                         for (int nodeIndex = 0; nodeIndex < nodeCount; nodeIndex++) | 
|---|
| 1078 |                         { | 
|---|
| 1079 |                                 bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[0] = btSwapEndian(bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[0]); | 
|---|
| 1080 |                                 bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[1] = btSwapEndian(bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[1]); | 
|---|
| 1081 |                                 bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[2] = btSwapEndian(bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMin[2]); | 
|---|
| 1082 |  | 
|---|
| 1083 |                                 bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[0] = btSwapEndian(bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[0]); | 
|---|
| 1084 |                                 bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[1] = btSwapEndian(bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[1]); | 
|---|
| 1085 |                                 bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[2] = btSwapEndian(bvh->m_quantizedContiguousNodes[nodeIndex].m_quantizedAabbMax[2]); | 
|---|
| 1086 |  | 
|---|
| 1087 |                                 bvh->m_quantizedContiguousNodes[nodeIndex].m_escapeIndexOrTriangleIndex = static_cast<int>(btSwapEndian(bvh->m_quantizedContiguousNodes[nodeIndex].m_escapeIndexOrTriangleIndex)); | 
|---|
| 1088 |                         } | 
|---|
| 1089 |                 } | 
|---|
| 1090 |                 nodeData += sizeof(btQuantizedBvhNode) * nodeCount; | 
|---|
| 1091 |         } | 
|---|
| 1092 |         else | 
|---|
| 1093 |         { | 
|---|
| 1094 |                 bvh->m_contiguousNodes.initializeFromBuffer(nodeData, nodeCount, nodeCount); | 
|---|
| 1095 |  | 
|---|
| 1096 |                 if (i_swapEndian) | 
|---|
| 1097 |                 { | 
|---|
| 1098 |                         for (int nodeIndex = 0; nodeIndex < nodeCount; nodeIndex++) | 
|---|
| 1099 |                         { | 
|---|
| 1100 |                                 btUnSwapVector3Endian(bvh->m_contiguousNodes[nodeIndex].m_aabbMinOrg); | 
|---|
| 1101 |                                 btUnSwapVector3Endian(bvh->m_contiguousNodes[nodeIndex].m_aabbMaxOrg); | 
|---|
| 1102 |                                  | 
|---|
| 1103 |                                 bvh->m_contiguousNodes[nodeIndex].m_escapeIndex = static_cast<int>(btSwapEndian(bvh->m_contiguousNodes[nodeIndex].m_escapeIndex)); | 
|---|
| 1104 |                                 bvh->m_contiguousNodes[nodeIndex].m_subPart = static_cast<int>(btSwapEndian(bvh->m_contiguousNodes[nodeIndex].m_subPart)); | 
|---|
| 1105 |                                 bvh->m_contiguousNodes[nodeIndex].m_triangleIndex = static_cast<int>(btSwapEndian(bvh->m_contiguousNodes[nodeIndex].m_triangleIndex)); | 
|---|
| 1106 |                         } | 
|---|
| 1107 |                 } | 
|---|
| 1108 |                 nodeData += sizeof(btOptimizedBvhNode) * nodeCount; | 
|---|
| 1109 |         } | 
|---|
| 1110 |  | 
|---|
| 1111 |         sizeToAdd = 0;//(BVH_ALIGNMENT-((unsigned)nodeData & BVH_ALIGNMENT_MASK))&BVH_ALIGNMENT_MASK; | 
|---|
| 1112 |         nodeData += sizeToAdd; | 
|---|
| 1113 |  | 
|---|
| 1114 |         // Now serialize the subtree headers | 
|---|
| 1115 |         bvh->m_SubtreeHeaders.initializeFromBuffer(nodeData, bvh->m_subtreeHeaderCount, bvh->m_subtreeHeaderCount); | 
|---|
| 1116 |         if (i_swapEndian) | 
|---|
| 1117 |         { | 
|---|
| 1118 |                 for (int i = 0; i < bvh->m_subtreeHeaderCount; i++) | 
|---|
| 1119 |                 { | 
|---|
| 1120 |                         bvh->m_SubtreeHeaders[i].m_quantizedAabbMin[0] = btSwapEndian(bvh->m_SubtreeHeaders[i].m_quantizedAabbMin[0]); | 
|---|
| 1121 |                         bvh->m_SubtreeHeaders[i].m_quantizedAabbMin[1] = btSwapEndian(bvh->m_SubtreeHeaders[i].m_quantizedAabbMin[1]); | 
|---|
| 1122 |                         bvh->m_SubtreeHeaders[i].m_quantizedAabbMin[2] = btSwapEndian(bvh->m_SubtreeHeaders[i].m_quantizedAabbMin[2]); | 
|---|
| 1123 |  | 
|---|
| 1124 |                         bvh->m_SubtreeHeaders[i].m_quantizedAabbMax[0] = btSwapEndian(bvh->m_SubtreeHeaders[i].m_quantizedAabbMax[0]); | 
|---|
| 1125 |                         bvh->m_SubtreeHeaders[i].m_quantizedAabbMax[1] = btSwapEndian(bvh->m_SubtreeHeaders[i].m_quantizedAabbMax[1]); | 
|---|
| 1126 |                         bvh->m_SubtreeHeaders[i].m_quantizedAabbMax[2] = btSwapEndian(bvh->m_SubtreeHeaders[i].m_quantizedAabbMax[2]); | 
|---|
| 1127 |  | 
|---|
| 1128 |                         bvh->m_SubtreeHeaders[i].m_rootNodeIndex = static_cast<int>(btSwapEndian(bvh->m_SubtreeHeaders[i].m_rootNodeIndex)); | 
|---|
| 1129 |                         bvh->m_SubtreeHeaders[i].m_subtreeSize = static_cast<int>(btSwapEndian(bvh->m_SubtreeHeaders[i].m_subtreeSize)); | 
|---|
| 1130 |                 } | 
|---|
| 1131 |         } | 
|---|
| 1132 |  | 
|---|
| 1133 |         return bvh; | 
|---|
| 1134 | } | 
|---|
| 1135 |  | 
|---|
| 1136 | // Constructor that prevents btVector3's default constructor from being called | 
|---|
| 1137 | btQuantizedBvh::btQuantizedBvh(btQuantizedBvh &self, bool /* ownsMemory */) : | 
|---|
| 1138 | m_bvhAabbMin(self.m_bvhAabbMin), | 
|---|
| 1139 | m_bvhAabbMax(self.m_bvhAabbMax), | 
|---|
| 1140 | m_bvhQuantization(self.m_bvhQuantization), | 
|---|
| 1141 | m_bulletVersion(BT_BULLET_VERSION) | 
|---|
| 1142 | { | 
|---|
| 1143 |  | 
|---|
| 1144 | } | 
|---|
| 1145 |  | 
|---|
| 1146 |  | 
|---|
| 1147 |  | 
|---|
| 1148 |  | 
|---|