How Many Lines to Paint the City: Exact Edge-Cover in Temporal Graphs
August 30, 2024 Β· Declared Dead Β· π AAAI Conference on Artificial Intelligence
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Authors
Argyrios Deligkas, Michelle DΓΆring, Eduard Eiben, Tiger-Lily Goldsmith, George Skretas, Georg Tennigkeit
arXiv ID
2408.17107
Category
cs.SI: Social & Info Networks
Cross-listed
cs.DM
Citations
6
Venue
AAAI Conference on Artificial Intelligence
Last Checked
5 months ago
Abstract
Logistics and transportation networks require a large amount of resources to realize necessary connections between locations and minimizing these resources is a vital aspect of planning research. Since such networks have dynamic connections that are only available at specific times, intricate models are needed to portray them accurately. In this paper, we study the problem of minimizing the number of resources needed to realize a dynamic network, using the temporal graphs model. In a temporal graph, edges appear at specific points in time. Given a temporal graph and a natural number k, we ask whether we can cover every temporal edge exactly once using at most k temporal journeys; in a temporal journey consecutive edges have to adhere to the order of time. We conduct a thorough investigation of the complexity of the problem with respect to four dimensions: (a) whether the type of the temporal journey is a walk, a trail, or a path; (b) whether the chronological order of edges in the journey is strict or non-strict; (c) whether the temporal graph is directed or undirected; (d) whether the start and end points of each journey are given or not. We almost completely resolve the complexity of all these problems and provide dichotomies for each one of them with respect to k.
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