JUST-IN-TIME SCHEDULING IN IDENTICAL PARALLEL MACHINE SEQUENCE-DEPENDENT GROUP SCHEDULING PROBLEM

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Abstract

In this research, a parallel machine sequence-dependent group scheduling problem with the goal of minimizing total weighted earliness and tardiness is investigated. First, a mathematical model is developed for the research problem which can be used for solving small-sized instances. Since the problem is shown to be NP-hard, this research focuses on proposing metaheuristic algorithms for finding near-optimal solutions. In this regard, the main contribution of this research is to apply the Biogeography-based Optimization (BBO) algorithm as a novel meta-heuristic and Variable Neighborhood Search (VNS) algorithm as a best-known one. In order to evaluate the mathematical model and solution methods, several computational experiments are conducted. The computational experiments demonstrate the efficiency of the proposed meta-heuristic algorithms in terms of speed and solution quality. The maximum gap of BBO algorithm is 1.04% and for VNS algorithm, it is 1.35%.

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Goli, A., & Keshavarz, T. (2022). JUST-IN-TIME SCHEDULING IN IDENTICAL PARALLEL MACHINE SEQUENCE-DEPENDENT GROUP SCHEDULING PROBLEM. Journal of Industrial and Management Optimization, 18(6), 3807–3830. https://doi.org/10.3934/jimo.2021124

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