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New Valid Inequalities for the Optimal Communication Spanning Tree Problem

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  • Yogesh Kumar Agarwal

    (Decision Sciences, Indian Institute of Management, Prabandh Nagar, Lucknow 226013, India)

  • Prahalad Venkateshan

    (Indian Institute of Management, Vastrapur, Ahmedabad 380015, India)

Abstract

The problem of designing a spanning tree on an underlying graph to minimize the flow costs of a given set of traffic demands is considered. Several new classes of valid inequalities are developed for the problem. Tests on 10-node problem instances show that the addition of these inequalities results in integer solutions for a significant majority of the instances without requiring any branching. In the remaining cases, root gaps of less than 1% from the optimal solutions are realized. For 30-node problem instances, the inequalities substantially reduce the number of nodes explored in the branch-and-bound tree, resulting in significantly reduced computational times. Optimal solutions are reported for problems with 30 nodes, 60 edges, fully dense traffic matrices, and Euclidean distance-based flow costs. Problems with such flow costs are well-known to be a very difficult class of problems to solve. Using the inequalities substantially improves the performance of a variable-fixing heuristic. Some polyhedral issues relating to the strength of these inequalities are also discussed.

Suggested Citation

  • Yogesh Kumar Agarwal & Prahalad Venkateshan, 2019. "New Valid Inequalities for the Optimal Communication Spanning Tree Problem," INFORMS Journal on Computing, INFORMS, vol. 31(2), pages 268-284, April.
  • Handle: RePEc:inm:orijoc:v:31:y:2019:i:2:p:268-284
    DOI: 10.1287/ijoc.2018.0827
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    References listed on IDEAS

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