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|---|---|---|---|
| 1 | /* | ||
| 2 | * Copyright (c) 2000-2022 Inria | ||
| 3 | * All rights reserved. | ||
| 4 | * | ||
| 5 | * Redistribution and use in source and binary forms, with or without | ||
| 6 | * modification, are permitted provided that the following conditions are met: | ||
| 7 | * | ||
| 8 | * * Redistributions of source code must retain the above copyright notice, | ||
| 9 | * this list of conditions and the following disclaimer. | ||
| 10 | * * Redistributions in binary form must reproduce the above copyright notice, | ||
| 11 | * this list of conditions and the following disclaimer in the documentation | ||
| 12 | * and/or other materials provided with the distribution. | ||
| 13 | * * Neither the name of the ALICE Project-Team nor the names of its | ||
| 14 | * contributors may be used to endorse or promote products derived from this | ||
| 15 | * software without specific prior written permission. | ||
| 16 | * | ||
| 17 | * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" | ||
| 18 | * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE | ||
| 19 | * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE | ||
| 20 | * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE | ||
| 21 | * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR | ||
| 22 | * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF | ||
| 23 | * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS | ||
| 24 | * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN | ||
| 25 | * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) | ||
| 26 | * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE | ||
| 27 | * POSSIBILITY OF SUCH DAMAGE. | ||
| 28 | * | ||
| 29 | * Contact: Bruno Levy | ||
| 30 | * | ||
| 31 | * https://www.inria.fr/fr/bruno-levy | ||
| 32 | * | ||
| 33 | * Inria, | ||
| 34 | * Domaine de Voluceau, | ||
| 35 | * 78150 Le Chesnay - Rocquencourt | ||
| 36 | * FRANCE | ||
| 37 | * | ||
| 38 | */ | ||
| 39 | |||
| 40 | #include <geogram/mesh/mesh_halfedges.h> | ||
| 41 | |||
| 42 | namespace GEO { | ||
| 43 | |||
| 44 | 6004 | bool MeshHalfedges::move_to_next_around_vertex(Halfedge& H) const { | |
| 45 |
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6004 | geo_debug_assert(halfedge_is_valid(H)); |
| 46 | 6004 | index_t v = mesh_.facet_corners.vertex(H.corner); | |
| 47 | 6004 | index_t f = mesh_.facet_corners.adjacent_facet(H.corner); | |
| 48 |
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6004 | if(f == NO_FACET) { |
| 49 | 2256 | return false; | |
| 50 | } | ||
| 51 | 3748 | if( | |
| 52 |
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3748 | facet_region_.is_bound() && |
| 53 | ✗ | facet_region_[H.facet] != facet_region_[f] | |
| 54 | ) { | ||
| 55 | ✗ | return false; | |
| 56 | } | ||
| 57 |
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7719 | for(index_t c: mesh_.facets.corners(f)) { |
| 58 |
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7719 | index_t pc = mesh_.facets.prev_corner_around_facet(f, c); |
| 59 | 7719 | if( | |
| 60 |
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11467 | mesh_.facet_corners.vertex(c) == v && |
| 61 |
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3748 | mesh_.facet_corners.adjacent_facet(pc) == H.facet |
| 62 | ) { | ||
| 63 | 3748 | H.corner = c; | |
| 64 | 3748 | H.facet = f; | |
| 65 | 3748 | return true; | |
| 66 | } | ||
| 67 | } | ||
| 68 | ✗ | geo_assert_not_reached; | |
| 69 | } | ||
| 70 | |||
| 71 | 121266 | bool MeshHalfedges::move_to_prev_around_vertex(Halfedge& H) const { | |
| 72 |
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121266 | geo_debug_assert(halfedge_is_valid(H)); |
| 73 | 121266 | index_t v = mesh_.facet_corners.vertex(H.corner); | |
| 74 | 121266 | index_t pc = mesh_.facets.prev_corner_around_facet(H.facet, H.corner); | |
| 75 | 121266 | index_t f = mesh_.facet_corners.adjacent_facet(pc); | |
| 76 |
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121266 | if(f == NO_FACET) { |
| 77 | 47743 | return false; | |
| 78 | } | ||
| 79 | 73523 | if( | |
| 80 |
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73523 | facet_region_.is_bound() && |
| 81 | ✗ | facet_region_[H.facet] != facet_region_[f] | |
| 82 | ) { | ||
| 83 | ✗ | return false; | |
| 84 | } | ||
| 85 |
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137547 | for(index_t c: mesh_.facets.corners(f)) { |
| 86 | 137547 | if( | |
| 87 |
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211070 | mesh_.facet_corners.vertex(c) == v && |
| 88 |
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73523 | mesh_.facet_corners.adjacent_facet(c) == H.facet |
| 89 | ) { | ||
| 90 | 73523 | H.corner = c; | |
| 91 | 73523 | H.facet = f; | |
| 92 | 73523 | return true; | |
| 93 | } | ||
| 94 | } | ||
| 95 | ✗ | geo_assert_not_reached; | |
| 96 | } | ||
| 97 | |||
| 98 | 2256 | void MeshHalfedges::move_to_next_around_border(Halfedge& H) const { | |
| 99 |
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2256 | geo_debug_assert(halfedge_is_valid(H)); |
| 100 |
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2256 | geo_debug_assert(halfedge_is_border(H)); |
| 101 | 2256 | move_to_next_around_facet(H); | |
| 102 | 2256 | index_t count = 0; | |
| 103 |
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6004 | while(move_to_next_around_vertex(H)) { |
| 104 | 3748 | ++count; | |
| 105 |
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3748 | geo_assert(count < 10000); |
| 106 | } | ||
| 107 | 2256 | } | |
| 108 | |||
| 109 | ✗ | void MeshHalfedges::move_to_prev_around_border(Halfedge& H) const { | |
| 110 | ✗ | geo_debug_assert(halfedge_is_valid(H)); | |
| 111 | ✗ | geo_debug_assert(halfedge_is_border(H)); | |
| 112 | ✗ | index_t count = 0; | |
| 113 | ✗ | while(move_to_prev_around_vertex(H)) { | |
| 114 | ✗ | ++count; | |
| 115 | ✗ | geo_assert(count < 10000); | |
| 116 | } | ||
| 117 | ✗ | move_to_prev_around_facet(H); | |
| 118 | ✗ | } | |
| 119 | |||
| 120 | ✗ | void MeshHalfedges::move_to_opposite(Halfedge& H) const { | |
| 121 | ✗ | geo_debug_assert(halfedge_is_valid(H)); | |
| 122 | ✗ | index_t v = mesh_.facet_corners.vertex( | |
| 123 | ✗ | mesh_.facets.next_corner_around_facet(H.facet, H.corner) | |
| 124 | ); | ||
| 125 | ✗ | index_t f = mesh_.facet_corners.adjacent_facet(H.corner); | |
| 126 | ✗ | geo_assert(f != NO_FACET); | |
| 127 | ✗ | for(index_t c: mesh_.facets.corners(f)) { | |
| 128 | ✗ | if(mesh_.facet_corners.vertex(c) == v) { | |
| 129 | ✗ | H.facet = f; | |
| 130 | ✗ | H.corner = c; | |
| 131 | ✗ | return; | |
| 132 | } | ||
| 133 | } | ||
| 134 | ✗ | geo_assert_not_reached; | |
| 135 | } | ||
| 136 | } | ||
| 137 |