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A Fast Approximate Method for the Large-scale One-source P-median Problem

  • Runze Zhao
  • , Yiyong Xiao*
  • , Rui Luo
  • , Yue Zhang
  • , Xiaoyuan Liu
  • *Corresponding author for this work
  • Beihang University
  • University of Wisconsin-Madison

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

The p-median problem (PMP) involves determining $p$ locations among a set of candidates on which for building $q$ facilitates to best serve the customers scattered around. In real industrial applications, the scales of the problems may be large, with hundreds of candidate locations and thousands of demanding customers, such that solving directly the PMP using a mixed-integer programming (MIP) solvers may consume a lot of CPU time. In this paper, we presented a fast clustering-based method with continuous optimization model for the large-scale one-source PMP, where a two-stage strategy is applied to obtain the globally optimized solutions. Computational experiments were conducted on two groups of synthesized datasets to test the performances of the proposed method. The experimental results showed that optimal results could be obtained with much higher efficiencies, even hundreds of times faster than that of the traditional way.

Original languageEnglish
Title of host publication2021 IEEE International Conference on Industrial Engineering and Engineering Management, IEEM 2021
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages1696-1700
Number of pages5
ISBN (Electronic)9781665437714
DOIs
StatePublished - 2021
Event2021 IEEE International Conference on Industrial Engineering and Engineering Management, IEEM 2021 - Virtual, Online, Singapore
Duration: 13 Dec 202116 Dec 2021

Publication series

Name2021 IEEE International Conference on Industrial Engineering and Engineering Management, IEEM 2021

Conference

Conference2021 IEEE International Conference on Industrial Engineering and Engineering Management, IEEM 2021
Country/TerritorySingapore
CityVirtual, Online
Period13/12/2116/12/21

Keywords

  • Clustering
  • Location problem
  • Mixed-integer linear programming
  • Optimization

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