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A Bat Algorithm with Generalized Walk for the Two-Stage Hybrid Flow Shop Problem

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  • Latifa Dekhici

    (Mathematics and Computer Sciences Faculty, University of Sciences and the Technology of Oran, Oran, Algeria)

  • Khaled Belkadi

    (Mathematics and Computer Sciences Faculty, University of Sciences and the Technology of Oran, Oran, Algeria)

Abstract

In the last years, a set of bio-inspired metaheuristics has proved their efficiencies in combinational and continues optimization areas. This paper intends to hybrid a discrete version of Bat Algorithm (BA) with Generalized Evolutionary Walk Algorithm (GEWA) to solve the mono-processors two stages Hybrid Flow Shop scheduling. The authors compare the modified bat algorithm with the original one, with Particle Swarm Optimization (PSO) and with others results taken from literature. Computational results on a standard two-stage hybrid flow shop benchmark of 70 cases, and about 1700 instances, indicate that the proposed algorithm finds the best makespan (Cmax) in a good processing time comparing to the original bat algorithm and other algorithms.

Suggested Citation

  • Latifa Dekhici & Khaled Belkadi, 2015. "A Bat Algorithm with Generalized Walk for the Two-Stage Hybrid Flow Shop Problem," International Journal of Decision Support System Technology (IJDSST), IGI Global, vol. 7(3), pages 1-16, July.
  • Handle: RePEc:igg:jdsst0:v:7:y:2015:i:3:p:1-16
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    File URL: http://services.igi-global.com/resolvedoi/resolve.aspx?doi=10.4018/IJDSST.2015070101
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    Cited by:

    1. Khaled Guerraiche & Latifa Dekhici & Eric Chatelet & Abdelkader Zeblah, 2021. "Multi-Objective Electrical Power System Design Optimization Using a Modified Bat Algorithm," Energies, MDPI, vol. 14(13), pages 1-19, July.

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