Parameterized Dynamic Cluster Editing

We introduce a dynamic version of the NP-hard graph modification problem Cluster Editing . The essential point here is to take into account dynamically evolving input graphs: having a cluster graph (that is, a disjoint union of cliques) constituting a solution for a first input graph, can we cost-ef...

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Veröffentlicht in:Algorithmica Jg. 83; H. 1; S. 1 - 44
Hauptverfasser: Luo, Junjie, Molter, Hendrik, Nichterlein, André, Niedermeier, Rolf
Format: Journal Article
Sprache:Englisch
Veröffentlicht: New York Springer US 01.01.2021
Springer Nature B.V
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ISSN:0178-4617, 1432-0541
Online-Zugang:Volltext
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Zusammenfassung:We introduce a dynamic version of the NP-hard graph modification problem Cluster Editing . The essential point here is to take into account dynamically evolving input graphs: having a cluster graph (that is, a disjoint union of cliques) constituting a solution for a first input graph, can we cost-efficiently transform it into a “similar” cluster graph that is a solution for a second (“subsequent”) input graph? This model is motivated by several application scenarios, including incremental clustering, the search for compromise clusterings, or also local search in graph-based data clustering. We thoroughly study six problem variants (three modification scenarios edge editing, edge deletion, edge insertion; each combined with two distance measures between cluster graphs). We obtain both fixed-parameter tractability as well as (parameterized) hardness results, thus (except for three open questions) providing a fairly complete picture of the parameterized computational complexity landscape under the two perhaps most natural parameterizations: the distances of the new “similar” cluster graph to (1) the second input graph and to (2) the input cluster graph.
Bibliographie:ObjectType-Article-1
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content type line 14
ISSN:0178-4617
1432-0541
DOI:10.1007/s00453-020-00746-y