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Covering Pairs in Directed Acyclic Graphs

Contributo in Atti di convegno
Data di Pubblicazione:
2014
Citazione:
(2014). Covering Pairs in Directed Acyclic Graphs [conference presentation - intervento a convegno]. Retrieved from http://hdl.handle.net/10446/32244
Abstract:
The Minimum Path Cover problem on directed acyclic graphs (DAGs) is a classical problem that provides a clear and simple mathematical formulation for several applications in different areas and that has an efficient algorithmic solution. In this paper, we study the computational complexity of two constrained variants of Minimum Path Cover motivated by the recent introduction of next-generation sequencing technologies in bioinformatics. The first problem (MinPCRP), given a DAG and a set of pairs of vertices, asks for a minimum cardinality set of paths “covering” all the vertices such that both vertices of each pair belong to the same path. For this problem, we show that, while it is NP-hard to compute if there exists a solution consisting of at most three paths, it is possible to decide in polynomial time whether a solution consisting of at most two paths exists. The second problem (MaxRPSP), given a DAG and a set of pairs of vertices, asks for a single path containing the maximum number of the given pairs of vertices. We show its NP-hardness and also its W[1]-hardness when parametrized by the number of covered pairs. On the positive side, we give a fixed-parameter algorithm when the parameter is the maximum overlapping degree, a natural parameter in the bioinformatics applications of the problem.
Tipologia CRIS:
1.4.01 Contributi in atti di convegno - Conference presentations
Elenco autori:
Beerenwinkel, Niko; Beretta, Stefano; Bonizzoni, Paola; Dondi, Riccardo; Pirola, Yuri
Autori di Ateneo:
DONDI Riccardo
Link alla scheda completa:
https://aisberg.unibg.it/handle/10446/32244
Titolo del libro:
Language and Automata Theory and Applications
8th International Conference, LATA 2014, Madrid, Spain, March 10-14, 2014, Proceedings
Pubblicato in:
LECTURE NOTES IN COMPUTER SCIENCE
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