[216] | 1 | |
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| 2 | /* |
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| 3 | ----------------------------------------------------------------------------- |
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| 4 | This source file is part of GIMPACT Library. |
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| 5 | |
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| 6 | For the latest info, see http://gimpact.sourceforge.net/ |
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| 7 | |
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| 8 | Copyright (c) 2006 Francisco Leon. C.C. 80087371. |
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| 9 | email: projectileman@yahoo.com |
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| 10 | |
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| 11 | This library is free software; you can redistribute it and/or |
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| 12 | modify it under the terms of EITHER: |
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| 13 | (1) The GNU Lesser General Public License as published by the Free |
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| 14 | Software Foundation; either version 2.1 of the License, or (at |
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| 15 | your option) any later version. The text of the GNU Lesser |
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| 16 | General Public License is included with this library in the |
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| 17 | file GIMPACT-LICENSE-LGPL.TXT. |
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| 18 | (2) The BSD-style license that is included with this library in |
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| 19 | the file GIMPACT-LICENSE-BSD.TXT. |
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| 20 | |
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| 21 | This library is distributed in the hope that it will be useful, |
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| 22 | but WITHOUT ANY WARRANTY; without even the implied warranty of |
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| 23 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the files |
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| 24 | GIMPACT-LICENSE-LGPL.TXT and GIMPACT-LICENSE-BSD.TXT for more details. |
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| 25 | |
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| 26 | ----------------------------------------------------------------------------- |
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| 27 | */ |
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| 28 | |
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| 29 | |
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| 30 | #include "GIMPACT/gim_boxpruning.h" |
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| 31 | |
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| 32 | |
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| 33 | |
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| 34 | //! Allocate memory for all aabb set. |
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| 35 | void gim_aabbset_alloc(GIM_AABB_SET * aabbset, GUINT count) |
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| 36 | { |
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| 37 | aabbset->m_count = count; |
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| 38 | aabbset->m_boxes = (aabb3f *)gim_alloc(sizeof(aabb3f)*count); |
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| 39 | |
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| 40 | if(count<GIM_MIN_SORTED_BIPARTITE_PRUNING_BOXES) |
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| 41 | { |
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| 42 | aabbset->m_maxcoords = 0; |
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| 43 | aabbset->m_sorted_mincoords = 0; |
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| 44 | } |
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| 45 | else |
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| 46 | { |
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| 47 | aabbset->m_maxcoords = (GUINT *)gim_alloc(sizeof(GUINT)*aabbset->m_count ); |
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| 48 | aabbset->m_sorted_mincoords = (GIM_RSORT_TOKEN *)gim_alloc(sizeof(GIM_RSORT_TOKEN)*aabbset->m_count); |
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| 49 | } |
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| 50 | aabbset->m_shared = 0; |
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| 51 | INVALIDATE_AABB(aabbset->m_global_bound); |
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| 52 | } |
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| 53 | |
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| 54 | //! Destroys the aabb set. |
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| 55 | void gim_aabbset_destroy(GIM_AABB_SET * aabbset) |
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| 56 | { |
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| 57 | aabbset->m_count = 0; |
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| 58 | if(aabbset->m_shared==0) |
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| 59 | { |
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| 60 | gim_free(aabbset->m_boxes,0); |
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| 61 | gim_free(aabbset->m_maxcoords,0); |
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| 62 | gim_free(aabbset->m_sorted_mincoords,0); |
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| 63 | } |
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| 64 | aabbset->m_boxes = 0; |
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| 65 | aabbset->m_sorted_mincoords = 0; |
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| 66 | aabbset->m_maxcoords = 0; |
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| 67 | } |
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| 68 | |
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| 69 | void gim_aabbset_calc_global_bound(GIM_AABB_SET * aabbset) |
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| 70 | { |
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| 71 | aabb3f * paabb = aabbset->m_boxes; |
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| 72 | aabb3f * globalbox = &aabbset->m_global_bound; |
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| 73 | AABB_COPY((*globalbox),(*paabb)); |
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| 74 | |
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| 75 | GUINT count = aabbset->m_count-1; |
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| 76 | paabb++; |
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| 77 | while(count) |
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| 78 | { |
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| 79 | MERGEBOXES(*globalbox,*paabb) |
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| 80 | paabb++; |
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| 81 | count--; |
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| 82 | } |
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| 83 | } |
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| 84 | |
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| 85 | |
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| 86 | //! Sorts the boxes for box prunning. |
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| 87 | /*! |
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| 88 | 1) find the integer representation of the aabb coords |
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| 89 | 2) Sorts the min coords |
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| 90 | 3) Calcs the global bound |
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| 91 | \pre aabbset must be allocated. And the boxes must be already set. |
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| 92 | \param aabbset |
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| 93 | \param calc_global_bound If 1 , calcs the global bound |
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| 94 | \post If aabbset->m_sorted_mincoords == 0, then it allocs the sorted coordinates |
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| 95 | */ |
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| 96 | void gim_aabbset_sort(GIM_AABB_SET * aabbset, char calc_global_bound) |
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| 97 | { |
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| 98 | if(aabbset->m_sorted_mincoords == 0) |
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| 99 | {//allocate |
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| 100 | aabbset->m_maxcoords = (GUINT *)gim_alloc(sizeof(GUINT)*aabbset->m_count ); |
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| 101 | aabbset->m_sorted_mincoords = (GIM_RSORT_TOKEN *)gim_alloc(sizeof(GIM_RSORT_TOKEN)*aabbset->m_count); |
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| 102 | } |
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| 103 | |
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| 104 | GUINT i, count = aabbset->m_count; |
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| 105 | aabb3f * paabb = aabbset->m_boxes; |
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| 106 | GUINT * maxcoords = aabbset->m_maxcoords; |
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| 107 | GIM_RSORT_TOKEN * sorted_tokens = aabbset->m_sorted_mincoords; |
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| 108 | |
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| 109 | if(count<860)//Calibrated on a Pentium IV |
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| 110 | { |
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| 111 | //Sort by quick sort |
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| 112 | //Calculate keys |
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| 113 | for(i=0;i<count;i++) |
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| 114 | { |
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| 115 | GIM_CONVERT_VEC3F_GUINT_XZ_UPPER(paabb[i].maxX,paabb[i].maxZ,maxcoords[i]); |
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| 116 | GIM_CONVERT_VEC3F_GUINT_XZ(paabb[i].minX,paabb[i].minZ,sorted_tokens[i].m_key); |
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| 117 | sorted_tokens[i].m_value = i; |
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| 118 | } |
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| 119 | GIM_QUICK_SORT_ARRAY(GIM_RSORT_TOKEN , sorted_tokens, count, RSORT_TOKEN_COMPARATOR,GIM_DEF_EXCHANGE_MACRO); |
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| 120 | } |
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| 121 | else |
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| 122 | { |
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| 123 | //Sort by radix sort |
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| 124 | GIM_RSORT_TOKEN * unsorted = (GIM_RSORT_TOKEN *)gim_alloc(sizeof(GIM_RSORT_TOKEN )*count); |
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| 125 | //Calculate keys |
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| 126 | for(i=0;i<count;i++) |
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| 127 | { |
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| 128 | GIM_CONVERT_VEC3F_GUINT_XZ_UPPER(paabb[i].maxX,paabb[i].maxZ,maxcoords[i]); |
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| 129 | GIM_CONVERT_VEC3F_GUINT_XZ(paabb[i].minX,paabb[i].minZ,unsorted[i].m_key); |
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| 130 | unsorted[i].m_value = i; |
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| 131 | } |
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| 132 | GIM_RADIX_SORT_RTOKENS(unsorted,sorted_tokens,count); |
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| 133 | gim_free(unsorted,0); |
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| 134 | } |
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| 135 | |
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| 136 | if(calc_global_bound) gim_aabbset_calc_global_bound(aabbset); |
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| 137 | } |
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| 138 | |
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| 139 | //utility macros |
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| 140 | |
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| 141 | /*#define PUSH_PAIR(i,j,pairset)\ |
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| 142 | {\ |
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| 143 | GIM_PAIR _pair={i,j};\ |
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| 144 | GIM_DYNARRAY_PUSH_ITEM(GIM_PAIR,pairset,_pair);\ |
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| 145 | }*/ |
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| 146 | |
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| 147 | #define PUSH_PAIR(i,j,pairset)\ |
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| 148 | {\ |
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| 149 | GIM_DYNARRAY_PUSH_EMPTY(GIM_PAIR,pairset);\ |
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| 150 | GIM_PAIR * _pair = GIM_DYNARRAY_POINTER(GIM_PAIR,pairset) + (pairset).m_size - 1;\ |
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| 151 | _pair->m_index1 = i;\ |
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| 152 | _pair->m_index2 = j;\ |
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| 153 | } |
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| 154 | |
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| 155 | #define PUSH_PAIR_INV(i,j,pairset)\ |
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| 156 | {\ |
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| 157 | GIM_DYNARRAY_PUSH_EMPTY(GIM_PAIR,pairset);\ |
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| 158 | GIM_PAIR * _pair = GIM_DYNARRAY_POINTER(GIM_PAIR,pairset) + (pairset).m_size - 1;\ |
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| 159 | _pair->m_index1 = j;\ |
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| 160 | _pair->m_index2 = i;\ |
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| 161 | } |
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| 162 | |
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| 163 | #define FIND_OVERLAPPING_FOWARD(\ |
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| 164 | curr_index,\ |
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| 165 | test_count,\ |
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| 166 | test_aabb,\ |
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| 167 | max_coord_uint,\ |
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| 168 | sorted_tokens,\ |
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| 169 | aabbarray,\ |
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| 170 | pairset,\ |
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| 171 | push_pair_macro)\ |
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| 172 | {\ |
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| 173 | GUINT _i = test_count;\ |
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| 174 | char _intersected;\ |
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| 175 | GIM_RSORT_TOKEN * _psorted_tokens = sorted_tokens;\ |
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| 176 | while(max_coord_uint >= _psorted_tokens->m_key && _i>0)\ |
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| 177 | {\ |
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| 178 | AABBCOLLISION(_intersected,test_aabb,aabbarray[_psorted_tokens->m_value]);\ |
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| 179 | if(_intersected)\ |
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| 180 | {\ |
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| 181 | push_pair_macro(curr_index, _psorted_tokens->m_value,pairset);\ |
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| 182 | }\ |
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| 183 | _psorted_tokens++;\ |
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| 184 | _i--;\ |
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| 185 | }\ |
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| 186 | } |
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| 187 | |
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| 188 | //! log(N) Complete box pruning. Returns a list of overlapping pairs of boxes, each box of the pair belongs to the same set. |
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| 189 | /*! |
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| 190 | \pre aabbset must be allocated and sorted, the boxes must be already set. |
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| 191 | \param aabbset Must be sorted. Global bound isn't required |
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| 192 | \param collision_pairs Array of GIM_PAIR elements. Must be initialized before (Reserve size ~ 100) |
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| 193 | */ |
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| 194 | void gim_aabbset_self_intersections_sorted(GIM_AABB_SET * aabbset, GDYNAMIC_ARRAY * collision_pairs) |
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| 195 | { |
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| 196 | collision_pairs->m_size = 0; |
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| 197 | GUINT count = aabbset->m_count; |
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| 198 | aabb3f * paabb = aabbset->m_boxes; |
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| 199 | GUINT * maxcoords = aabbset->m_maxcoords; |
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| 200 | GIM_RSORT_TOKEN * sorted_tokens = aabbset->m_sorted_mincoords; |
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| 201 | aabb3f test_aabb; |
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| 202 | while(count>1) |
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| 203 | { |
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| 204 | ///current cache variables |
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| 205 | GUINT curr_index = sorted_tokens->m_value; |
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| 206 | GUINT max_coord_uint = maxcoords[curr_index]; |
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| 207 | AABB_COPY(test_aabb,paabb[curr_index]); |
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| 208 | |
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| 209 | ///next pairs |
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| 210 | sorted_tokens++; |
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| 211 | count--; |
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| 212 | FIND_OVERLAPPING_FOWARD( curr_index, count, test_aabb, max_coord_uint, sorted_tokens , paabb, (*collision_pairs),PUSH_PAIR); |
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| 213 | } |
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| 214 | } |
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| 215 | |
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| 216 | //! NxN Complete box pruning. Returns a list of overlapping pairs of boxes, each box of the pair belongs to the same set. |
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| 217 | /*! |
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| 218 | \pre aabbset must be allocated, the boxes must be already set. |
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| 219 | \param aabbset Global bound isn't required. Doen't need to be sorted. |
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| 220 | \param collision_pairs Array of GIM_PAIR elements. Must be initialized before (Reserve size ~ 100) |
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| 221 | */ |
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| 222 | void gim_aabbset_self_intersections_brute_force(GIM_AABB_SET * aabbset, GDYNAMIC_ARRAY * collision_pairs) |
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| 223 | { |
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| 224 | collision_pairs->m_size = 0; |
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| 225 | GUINT i,j; |
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| 226 | GUINT count = aabbset->m_count; |
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| 227 | aabb3f * paabb = aabbset->m_boxes; |
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| 228 | char intersected; |
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| 229 | for (i=0;i< count-1 ;i++ ) |
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| 230 | { |
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| 231 | for (j=i+1;j<count ;j++ ) |
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| 232 | { |
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| 233 | AABBCOLLISION(intersected,paabb[i],paabb[j]); |
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| 234 | if(intersected) |
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| 235 | { |
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| 236 | PUSH_PAIR(i,j,(*collision_pairs)); |
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| 237 | } |
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| 238 | } |
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| 239 | } |
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| 240 | } |
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| 241 | |
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| 242 | //! log(N) Bipartite box pruning. Returns a list of overlapping pairs of boxes, each box of the pair belongs to a different set. |
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| 243 | /*! |
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| 244 | \pre aabbset1 and aabbset2 must be allocated and sorted, the boxes must be already set. |
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| 245 | \param aabbset1 Must be sorted, Global bound is required. |
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| 246 | \param aabbset2 Must be sorted, Global bound is required. |
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| 247 | \param collision_pairs Array of GIM_PAIR elements. Must be initialized before (Reserve size ~ 100) |
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| 248 | */ |
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| 249 | void gim_aabbset_bipartite_intersections_sorted(GIM_AABB_SET * aabbset1, GIM_AABB_SET * aabbset2, GDYNAMIC_ARRAY * collision_pairs) |
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| 250 | { |
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| 251 | char intersected; |
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| 252 | collision_pairs->m_size = 0; |
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| 253 | |
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| 254 | AABBCOLLISION(intersected,aabbset1->m_global_bound,aabbset2->m_global_bound); |
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| 255 | if(intersected == 0) return; |
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| 256 | |
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| 257 | GUINT count1 = aabbset1->m_count; |
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| 258 | aabb3f * paabb1 = aabbset1->m_boxes; |
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| 259 | GUINT * maxcoords1 = aabbset1->m_maxcoords; |
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| 260 | GIM_RSORT_TOKEN * sorted_tokens1 = aabbset1->m_sorted_mincoords; |
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| 261 | |
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| 262 | GUINT count2 = aabbset2->m_count; |
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| 263 | aabb3f * paabb2 = aabbset2->m_boxes; |
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| 264 | GUINT * maxcoords2 = aabbset2->m_maxcoords; |
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| 265 | GIM_RSORT_TOKEN * sorted_tokens2 = aabbset2->m_sorted_mincoords; |
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| 266 | |
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| 267 | GUINT curr_index; |
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| 268 | |
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| 269 | GUINT max_coord_uint; |
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| 270 | aabb3f test_aabb; |
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| 271 | |
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| 272 | //Classify boxes |
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| 273 | //Find Set intersection |
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| 274 | aabb3f int_abbb; |
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| 275 | BOXINTERSECTION(aabbset1->m_global_bound,aabbset2->m_global_bound, int_abbb); |
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| 276 | |
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| 277 | //Clasify set 1 |
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| 278 | GIM_RSORT_TOKEN * classified_tokens1 = (GIM_RSORT_TOKEN *) gim_alloc(sizeof(GIM_RSORT_TOKEN)*count1); |
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| 279 | GUINT i,classified_count1 = 0,classified_count2 = 0; |
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| 280 | |
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| 281 | |
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| 282 | for (i=0;i<count1;i++ ) |
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| 283 | { |
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| 284 | curr_index = sorted_tokens1[i].m_value; |
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| 285 | AABBCOLLISION(intersected,paabb1[curr_index],int_abbb); |
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| 286 | if(intersected) |
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| 287 | { |
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| 288 | classified_tokens1[classified_count1] = sorted_tokens1[i]; |
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| 289 | classified_count1++; |
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| 290 | } |
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| 291 | } |
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| 292 | |
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| 293 | if(classified_count1==0) |
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| 294 | { |
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| 295 | gim_free(classified_tokens1 ,0); |
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| 296 | return; // no pairs |
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| 297 | } |
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| 298 | |
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| 299 | //Clasify set 2 |
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| 300 | GIM_RSORT_TOKEN * classified_tokens2 = (GIM_RSORT_TOKEN *) gim_alloc(sizeof(GIM_RSORT_TOKEN)*count2); |
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| 301 | |
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| 302 | for (i=0;i<count2;i++ ) |
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| 303 | { |
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| 304 | curr_index = sorted_tokens2[i].m_value; |
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| 305 | AABBCOLLISION(intersected,paabb2[curr_index],int_abbb); |
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| 306 | if(intersected) |
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| 307 | { |
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| 308 | classified_tokens2[classified_count2] = sorted_tokens2[i]; |
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| 309 | classified_count2++; |
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| 310 | } |
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| 311 | } |
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| 312 | |
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| 313 | if(classified_count2==0) |
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| 314 | { |
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| 315 | gim_free(classified_tokens1 ,0); |
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| 316 | gim_free(classified_tokens2 ,0); |
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| 317 | return; // no pairs |
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| 318 | } |
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| 319 | |
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| 320 | sorted_tokens1 = classified_tokens1; |
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| 321 | sorted_tokens2 = classified_tokens2; |
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| 322 | |
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| 323 | while(classified_count1>0&&classified_count2>0) |
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| 324 | { |
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| 325 | if(sorted_tokens1->m_key <= sorted_tokens2->m_key) |
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| 326 | { |
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| 327 | ///current cache variables |
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| 328 | curr_index = sorted_tokens1->m_value; |
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| 329 | max_coord_uint = maxcoords1[curr_index]; |
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| 330 | AABB_COPY(test_aabb,paabb1[curr_index]); |
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| 331 | ///next pairs |
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| 332 | sorted_tokens1++; |
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| 333 | classified_count1--; |
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| 334 | FIND_OVERLAPPING_FOWARD( curr_index, classified_count2, test_aabb, max_coord_uint, sorted_tokens2 , paabb2, (*collision_pairs), PUSH_PAIR); |
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| 335 | } |
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| 336 | else ///Switch test |
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| 337 | { |
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| 338 | ///current cache variables |
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| 339 | curr_index = sorted_tokens2->m_value; |
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| 340 | max_coord_uint = maxcoords2[curr_index]; |
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| 341 | AABB_COPY(test_aabb,paabb2[curr_index]); |
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| 342 | ///next pairs |
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| 343 | sorted_tokens2++; |
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| 344 | classified_count2--; |
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| 345 | FIND_OVERLAPPING_FOWARD( curr_index, classified_count1, test_aabb, max_coord_uint, sorted_tokens1 , paabb1, (*collision_pairs), PUSH_PAIR_INV ); |
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| 346 | } |
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| 347 | } |
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| 348 | gim_free(classified_tokens1 ,0); |
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| 349 | gim_free(classified_tokens2 ,0); |
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| 350 | } |
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| 351 | |
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| 352 | //! NxM Bipartite box pruning. Returns a list of overlapping pairs of boxes, each box of the pair belongs to a different set. |
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| 353 | /*! |
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| 354 | \pre aabbset1 and aabbset2 must be allocated and sorted, the boxes must be already set. |
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| 355 | \param aabbset1 Must be sorted, Global bound is required. |
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| 356 | \param aabbset2 Must be sorted, Global bound is required. |
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| 357 | \param collision_pairs Array of GIM_PAIR elements. Must be initialized before (Reserve size ~ 100) |
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| 358 | */ |
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| 359 | void gim_aabbset_bipartite_intersections_brute_force(GIM_AABB_SET * aabbset1,GIM_AABB_SET * aabbset2, GDYNAMIC_ARRAY * collision_pairs) |
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| 360 | { |
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| 361 | char intersected; |
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| 362 | collision_pairs->m_size = 0; |
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| 363 | AABBCOLLISION(intersected,aabbset1->m_global_bound,aabbset2->m_global_bound); |
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| 364 | if(intersected == 0) return; |
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| 365 | |
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| 366 | aabb3f int_abbb; |
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| 367 | //Find Set intersection |
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| 368 | BOXINTERSECTION(aabbset1->m_global_bound,aabbset2->m_global_bound, int_abbb); |
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| 369 | //Clasify set 1 |
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| 370 | GUINT i,j; |
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| 371 | GUINT classified_count = 0; |
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| 372 | |
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| 373 | GUINT count = aabbset1->m_count; |
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| 374 | aabb3f * paabb1 = aabbset1->m_boxes; |
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| 375 | aabb3f * paabb2 = aabbset2->m_boxes; |
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| 376 | |
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| 377 | GUINT * classified = (GUINT *) gim_alloc(sizeof(GUINT)*count); |
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| 378 | |
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| 379 | for (i=0;i<count;i++ ) |
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| 380 | { |
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| 381 | AABBCOLLISION(intersected,paabb1[i],int_abbb); |
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| 382 | if(intersected) |
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| 383 | { |
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| 384 | classified[classified_count] = i; |
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| 385 | classified_count++; |
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| 386 | } |
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| 387 | } |
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| 388 | |
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| 389 | if(classified_count==0) return; // no pairs |
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| 390 | |
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| 391 | //intesect set2 |
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| 392 | count = aabbset2->m_count; |
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| 393 | for (i=0;i<count;i++) |
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| 394 | { |
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| 395 | AABBCOLLISION(intersected,paabb2[i],int_abbb); |
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| 396 | if(intersected) |
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| 397 | { |
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| 398 | for (j=0;j<classified_count;j++) |
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| 399 | { |
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| 400 | AABBCOLLISION(intersected,paabb2[i],paabb1[classified[j]]); |
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| 401 | if(intersected) |
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| 402 | { |
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| 403 | PUSH_PAIR(classified[j],i,(*collision_pairs)); |
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| 404 | } |
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| 405 | } |
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| 406 | } |
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| 407 | } |
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| 408 | gim_free(classified,0); |
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| 409 | } |
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| 410 | |
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| 411 | |
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| 412 | //! Initalizes the set. Sort Boxes if needed. |
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| 413 | /*! |
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| 414 | \pre aabbset must be allocated. And the boxes must be already set. |
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| 415 | \post If the set has less of GIM_MIN_SORTED_BIPARTITE_PRUNING_BOXES boxes, only calcs the global box, |
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| 416 | else it Sorts the entire set( Only applicable for large sets) |
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| 417 | */ |
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| 418 | void gim_aabbset_update(GIM_AABB_SET * aabbset) |
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| 419 | { |
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| 420 | if(aabbset->m_count < GIM_MIN_SORTED_BIPARTITE_PRUNING_BOXES) |
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| 421 | {//Brute force approach |
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| 422 | gim_aabbset_calc_global_bound(aabbset); |
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| 423 | } |
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| 424 | else |
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| 425 | {//Sorted force approach |
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| 426 | gim_aabbset_sort(aabbset,1); |
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| 427 | } |
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| 428 | } |
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| 429 | |
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| 430 | //! Complete box pruning. Returns a list of overlapping pairs of boxes, each box of the pair belongs to the same set. |
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| 431 | /*! |
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| 432 | This function sorts the set and then it calls to gim_aabbset_self_intersections_brute_force or gim_aabbset_self_intersections_sorted. |
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| 433 | |
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| 434 | \param aabbset Set of boxes. Sorting isn't required. |
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| 435 | \param collision_pairs Array of GIM_PAIR elements. Must be initialized before (Reserve size ~ 100) |
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| 436 | \pre aabbset must be allocated and initialized. |
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| 437 | \post If aabbset->m_count >= GIM_MIN_SORTED_PRUNING_BOXES, then it calls to gim_aabbset_sort and then to gim_aabbset_self_intersections_sorted. |
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| 438 | */ |
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| 439 | void gim_aabbset_self_intersections(GIM_AABB_SET * aabbset, GDYNAMIC_ARRAY * collision_pairs) |
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| 440 | { |
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| 441 | if(aabbset->m_count < GIM_MIN_SORTED_PRUNING_BOXES) |
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| 442 | {//Brute force approach |
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| 443 | gim_aabbset_self_intersections_brute_force(aabbset,collision_pairs); |
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| 444 | } |
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| 445 | else |
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| 446 | {//Sorted force approach |
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| 447 | gim_aabbset_sort(aabbset,0); |
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| 448 | gim_aabbset_self_intersections_sorted(aabbset,collision_pairs); |
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| 449 | } |
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| 450 | } |
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| 451 | |
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| 452 | //! Collides two sets. Returns a list of overlapping pairs of boxes, each box of the pair belongs to a different set. |
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| 453 | /*! |
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| 454 | \pre aabbset1 and aabbset2 must be allocated and updated. See . |
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| 455 | \param aabbset1 Must be sorted, Global bound is required. |
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| 456 | \param aabbset2 Must be sorted, Global bound is required. |
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| 457 | \param collision_pairs Array of GIM_PAIR elements. Must be initialized before (Reserve size ~ 100) |
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| 458 | */ |
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| 459 | void gim_aabbset_bipartite_intersections(GIM_AABB_SET * aabbset1, GIM_AABB_SET * aabbset2, GDYNAMIC_ARRAY * collision_pairs) |
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| 460 | { |
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| 461 | if(aabbset1->m_sorted_mincoords == 0||aabbset2->m_sorted_mincoords == 0) |
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| 462 | {//Brute force approach |
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| 463 | gim_aabbset_bipartite_intersections_brute_force(aabbset1,aabbset2,collision_pairs); |
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| 464 | } |
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| 465 | else |
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| 466 | {//Sorted force approach |
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| 467 | gim_aabbset_bipartite_intersections_sorted(aabbset1,aabbset2,collision_pairs); |
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| 468 | } |
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| 469 | } |
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| 470 | |
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| 471 | void gim_aabbset_box_collision(aabb3f *test_aabb, GIM_AABB_SET * aabbset, GDYNAMIC_ARRAY * collided) |
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| 472 | { |
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| 473 | collided->m_size = 0; |
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| 474 | char intersected; |
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| 475 | AABBCOLLISION(intersected,aabbset->m_global_bound,(*test_aabb)); |
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| 476 | if(intersected == 0) return; |
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| 477 | |
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| 478 | GUINT i; |
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| 479 | GUINT count = aabbset->m_count; |
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| 480 | aabb3f * paabb = aabbset->m_boxes; |
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| 481 | aabb3f _testaabb; |
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| 482 | AABB_COPY(_testaabb,*test_aabb); |
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| 483 | |
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| 484 | for (i=0;i< count;i++ ) |
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| 485 | { |
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| 486 | AABBCOLLISION(intersected,paabb[i],_testaabb); |
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| 487 | if(intersected) |
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| 488 | { |
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| 489 | GIM_DYNARRAY_PUSH_ITEM(GUINT,(*collided),i); |
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| 490 | } |
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| 491 | } |
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| 492 | } |
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| 493 | |
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| 494 | void gim_aabbset_ray_collision(vec3f vorigin,vec3f vdir, GREAL tmax, GIM_AABB_SET * aabbset, GDYNAMIC_ARRAY * collided) |
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| 495 | { |
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| 496 | collided->m_size = 0; |
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| 497 | char intersected; |
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| 498 | GREAL tparam = 0; |
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| 499 | BOX_INTERSECTS_RAY(aabbset->m_global_bound, vorigin, vdir, tparam, tmax,intersected); |
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| 500 | if(intersected==0) return; |
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| 501 | |
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| 502 | GUINT i; |
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| 503 | GUINT count = aabbset->m_count; |
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| 504 | aabb3f * paabb = aabbset->m_boxes; |
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| 505 | |
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| 506 | for (i=0;i< count;i++ ) |
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| 507 | { |
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| 508 | BOX_INTERSECTS_RAY(paabb[i], vorigin, vdir, tparam, tmax,intersected); |
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| 509 | if(intersected) |
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| 510 | { |
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| 511 | GIM_DYNARRAY_PUSH_ITEM(GUINT,(*collided),i); |
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| 512 | } |
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| 513 | } |
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| 514 | } |
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