Publikation: Constrained Outer-String Representations
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An outer-string representation of a graph is an intersection representation in which each vertex is represented by a curve that is contained in the unit disk and has at least one endpoint on the boundary of the unit disk. In an outer-1-string representation the curves representing any two vertices are in addition allowed to intersect at most once. In this paper, we consider the following constrained version: Given a graph G plus a cyclic order v_1,…,v_n of the vertices in G, test whether G has an outer-string or an outer-1-string representation in which the curves representing v_1,…,v_n intersect the boundary of the unit disk in this order. We first show that a graph has an outer-string representation for all possible cyclic orders of the vertices if and only if the graph is the complement of a chordal graph. Then we turn towards the situation where one particular cyclic order of the vertices is fixed. We characterize the chordal graphs admitting a constrained outer-string representation and the trees and cycles admitting a constrained outer-1-string representation. The characterizations yield polynomial-time recognition and construction algorithms; in the case of outer-1-string representations the run time is linear. We also show how to decide in polynomial time whether an arbitrary graph admits a constrained L-shaped outer-1-string representation. In an L-shaped representation the curves are 1-bend orthogonal polylines anchored on a horizontal line, and they are contained in the half-plane below that line. However, not even all paths with a constrained outer-1-string representation admit one with L-shapes. We show that 2-bend orthogonal polylines are sufficient for trees and cycles with a constrained outer-1-string representation.
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BIEDL, Therese, Sabine CORNELSEN, Jan KRATOCHVÍL, Ignaz RUTTER, 2024. Constrained Outer-String Representations. 32nd International Symposium on Graph Drawing and Network Visualization (GD 2024). Vienna, Austria, 18. Sept. 2024 - 20. Sept. 2024. In: FELSNER, Stefan, Hrsg., KARSTEN KLEIN, Hrsg.. 32nd International Symposium on Graph Drawing and Network Visualization (GD 2024). Saarbrücken/Wadern: Schloss Dagstuhl – Leibniz-Zentrum für Informatik, 2024, S. 10:1-10:18. Leibniz International Proceedings in Informatics (LIPIcs). 320. ISBN 978-3-95977-343-0. Verfügbar unter: doi: 10.4230/LIPIcs.GD.2024.10BibTex
@inproceedings{Biedl2024-10-28Const-71681,
year={2024},
doi={10.4230/LIPIcs.GD.2024.10},
title={Constrained Outer-String Representations},
number={320},
isbn={978-3-95977-343-0},
publisher={Schloss Dagstuhl – Leibniz-Zentrum für Informatik},
address={Saarbrücken/Wadern},
series={Leibniz International Proceedings in Informatics (LIPIcs)},
booktitle={32nd International Symposium on Graph Drawing and Network Visualization (GD 2024)},
pages={10:1--10:18},
editor={Felsner, Stefan and Karsten Klein},
author={Biedl, Therese and Cornelsen, Sabine and Kratochvíl, Jan and Rutter, Ignaz}
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<dcterms:abstract>An outer-string representation of a graph is an intersection representation in which each vertex is represented by a curve that is contained in the unit disk and has at least one endpoint on the boundary of the unit disk. In an outer-1-string representation the curves representing any two vertices are in addition allowed to intersect at most once.
In this paper, we consider the following constrained version: Given a graph G plus a cyclic order v_1,…,v_n of the vertices in G, test whether G has an outer-string or an outer-1-string representation in which the curves representing v_1,…,v_n intersect the boundary of the unit disk in this order. We first show that a graph has an outer-string representation for all possible cyclic orders of the vertices if and only if the graph is the complement of a chordal graph. Then we turn towards the situation where one particular cyclic order of the vertices is fixed.
We characterize the chordal graphs admitting a constrained outer-string representation and the trees and cycles admitting a constrained outer-1-string representation. The characterizations yield polynomial-time recognition and construction algorithms; in the case of outer-1-string representations the run time is linear. We also show how to decide in polynomial time whether an arbitrary graph admits a constrained L-shaped outer-1-string representation. In an L-shaped representation the curves are 1-bend orthogonal polylines anchored on a horizontal line, and they are contained in the half-plane below that line. However, not even all paths with a constrained outer-1-string representation admit one with L-shapes. We show that 2-bend orthogonal polylines are sufficient for trees and cycles with a constrained outer-1-string representation.</dcterms:abstract>
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