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A hybrid discrete differential evolution – genetic algorithm approach with a new batch formation mechanism for parallel batch scheduling considering batch delivery

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  • Ibrahim Kucukkoc
  • Gulsen Aydin Keskin
  • Aslan Deniz Karaoglan
  • Sevgi Karadag

Abstract

Scheduling is an important decision-making problem in production planning and the resulting decisions have a direct impact on reducing waste, including energy and idle capacity. Batch scheduling problems occur in various industries from automotive to food and energy. This paper introduces the parallel p-batch scheduling problem with batch delivery, content-dependent loading/unloading times and energy-aware objective function. The problem has been motivated by a real system used for freezing products in a food processing company. A mixed-integer linear programming model (MILP) has been developed and explained through a numerical example. As it is not practical to solve large-size instances via a mathematical model, the discrete differential evolution algorithm has been improved (iDDE) and hybridised with the genetic algorithm (GA). A release-oriented vector generation procedure and a heuristic batch formation mechanism have been developed to efficiently solve the problem. The performance of the proposed approach (iDDEGA) has been compared with CPLEX, iDDE and GA through a comprehensive computational study. A case study was conducted based on real data collected from the freezing process of the company, which also verified the practical use and advantages of the proposed methodology.

Suggested Citation

  • Ibrahim Kucukkoc & Gulsen Aydin Keskin & Aslan Deniz Karaoglan & Sevgi Karadag, 2024. "A hybrid discrete differential evolution – genetic algorithm approach with a new batch formation mechanism for parallel batch scheduling considering batch delivery," International Journal of Production Research, Taylor & Francis Journals, vol. 62(1-2), pages 460-482, January.
  • Handle: RePEc:taf:tprsxx:v:62:y:2024:i:1-2:p:460-482
    DOI: 10.1080/00207543.2023.2233626
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