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Lines and free line segments Tangent to Arbitrary Three-dimensional Convex Polyhedra

Identifieur interne : 002F22 ( Hal/Curation ); précédent : 002F21; suivant : 002F23

Lines and free line segments Tangent to Arbitrary Three-dimensional Convex Polyhedra

Auteurs : Hervé Bronnimann [États-Unis] ; Olivier Devillers [France] ; Vida Dujmovic [Canada] ; Hazel Everett [France] ; Marc Glisse [France] ; Xavier Goaoc [France] ; Sylvain Lazard [France] ; Hyeon-Suk Na [Corée du Sud] ; Sue Whitesides [Canada]

Source :

RBID : Hal:inria-00103916

English descriptors

Abstract

Motivated by visibility problems in three dimensions, we investigate the complexity and construction of the set of tangent lines in a scene of three-dimensional polyhedra. We prove that the set of lines tangent to four possibly intersecting convex polyhedra in $\Real^3$ with a total of $n$ edges consists of $\Theta(n^2)$ connected components in the worst case. In the generic case, each connected component is a single line, but our result still holds for arbitrarily degenerate scenes. More generally, we show that a set of $k$ possibly intersecting convex polyhedra with a total of $n$ edges admits, in the worst case, $\Theta(n^2k^2)$ connected components of maximal free line segments tangent to at least four polytopes. Furthermore, these bounds also hold for possibly occluded lines rather than maximal free line segments. Finally, we present a $O(n^2 k^2 \log n)$ time and $O(nk^2)$ space algorithm that, given a scene of $k$ possibly intersecting convex polyhedra, computes all the \emph{minimal} free line segments that are tangent to any four of the polytopes and are isolated transversals to the set of edges they intersect; in particular, we compute at least one line segment per connected component of tangent lines.

Url:
DOI: 10.1137/S0097539705447116

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Hal:inria-00103916

Le document en format XML

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<div type="abstract" xml:lang="en">Motivated by visibility problems in three dimensions, we investigate the complexity and construction of the set of tangent lines in a scene of three-dimensional polyhedra. We prove that the set of lines tangent to four possibly intersecting convex polyhedra in $\Real^3$ with a total of $n$ edges consists of $\Theta(n^2)$ connected components in the worst case. In the generic case, each connected component is a single line, but our result still holds for arbitrarily degenerate scenes. More generally, we show that a set of $k$ possibly intersecting convex polyhedra with a total of $n$ edges admits, in the worst case, $\Theta(n^2k^2)$ connected components of maximal free line segments tangent to at least four polytopes. Furthermore, these bounds also hold for possibly occluded lines rather than maximal free line segments. Finally, we present a $O(n^2 k^2 \log n)$ time and $O(nk^2)$ space algorithm that, given a scene of $k$ possibly intersecting convex polyhedra, computes all the \emph{minimal} free line segments that are tangent to any four of the polytopes and are isolated transversals to the set of edges they intersect; in particular, we compute at least one line segment per connected component of tangent lines.</div>
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<author role="aut">
<persName>
<forename type="first">Sue</forename>
<surname>Whitesides</surname>
</persName>
<email>sue@cs.mcgill.ca</email>
<idno type="halAuthorId">135222</idno>
<affiliation ref="#struct-49508"></affiliation>
</author>
</analytic>
<monogr>
<idno type="halJournalId" status="VALID">8476</idno>
<idno type="issn">0097-5397</idno>
<title level="j">SIAM Journal on Computing</title>
<imprint>
<publisher>Society for Industrial and Applied Mathematics</publisher>
<biblScope unit="volume">37</biblScope>
<biblScope unit="issue">2</biblScope>
<biblScope unit="pp">522-551</biblScope>
<date type="datePub">2007</date>
</imprint>
</monogr>
<idno type="doi">10.1137/S0097539705447116</idno>
</biblStruct>
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<langUsage>
<language ident="en">English</language>
</langUsage>
<textClass>
<keywords scheme="author">
<term xml:lang="en">computational geometry</term>
<term xml:lang="en">3D visibility</term>
<term xml:lang="en">visibility complex</term>
<term xml:lang="en">visual events</term>
</keywords>
<classCode scheme="halDomain" n="info.info-cg">Computer Science [cs]/Computational Geometry [cs.CG]</classCode>
<classCode scheme="halTypology" n="ART">Journal articles</classCode>
</textClass>
<abstract xml:lang="en">Motivated by visibility problems in three dimensions, we investigate the complexity and construction of the set of tangent lines in a scene of three-dimensional polyhedra. We prove that the set of lines tangent to four possibly intersecting convex polyhedra in $\Real^3$ with a total of $n$ edges consists of $\Theta(n^2)$ connected components in the worst case. In the generic case, each connected component is a single line, but our result still holds for arbitrarily degenerate scenes. More generally, we show that a set of $k$ possibly intersecting convex polyhedra with a total of $n$ edges admits, in the worst case, $\Theta(n^2k^2)$ connected components of maximal free line segments tangent to at least four polytopes. Furthermore, these bounds also hold for possibly occluded lines rather than maximal free line segments. Finally, we present a $O(n^2 k^2 \log n)$ time and $O(nk^2)$ space algorithm that, given a scene of $k$ possibly intersecting convex polyhedra, computes all the \emph{minimal} free line segments that are tangent to any four of the polytopes and are isolated transversals to the set of edges they intersect; in particular, we compute at least one line segment per connected component of tangent lines.</abstract>
</profileDesc>
</hal>
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