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A hybrid approach development to solving the storage location assignment problem in a picker-to-parts system

机译:混合方法开发,以解决拾取器到零件系统中的存储位置分配问题

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Goal: This study developed a structured decision model capable of solving the storage location assignment problem (SLAP) in a picker-to-parts system, using multiples key performance indicators (KPIs). Design / Methodology / Approach: A hybrid approach was developed. For that, a Multi-Objective Genetic Algorithm (MOGA) was used considering three fitness functions, but more functions may be considered. Through MOGA it was possible to verify a high number of solutions and reduce it into a Pareto frontier. After that, a Multiple-Criteria Decision-Making (MCDM) approach was used to choose the best solution. Results: This model was able to find viable solutions considering multiples objectives, warehouse restrictions and decision makers' preferences, and the required processing time for the simulated cases was insignificant. Limitations of the investigation: One limitation of this work was the consideration of known and predictable data. Practical implications: The proposed model was developed with the purpose of assisting companies that face this type of problem, providing a solution for SLAP requiring the minimum information and operational actions. Originality / Value: SLAP is a NP (Non-Deterministic Polynomial time) complex problem and, after the MOGA, the number of solution can be still high for the final decision making by the engineering manager (decision maker - DM). Thus, the MOGA-MCDM hybrid approach developed was able incorporate the DM' preferences into a compensatory view, vetoing alternatives that were worse in any of the KPIs, to recommend a final solution.
机译:目标:本研究开发了一种结构化决策模型,其能够使用倍数密钥性能指示符(KPI)在拾取器到零件系统中解决存储位置分配问题(SLAP)。设计/方法/方法:开发了一种混合方法。为此,考虑三个健身函数使用多目标遗传算法(MOGA),但可以考虑更多功能。通过MOGA,可以验证大量的解决方案并将其减少到帕累托前沿。之后,使用多标准决策(MCDM)方法来选择最佳解决方案。结果:该模型能够找到可行的解决方案,考虑到倍数目标,仓库限制和决策者的偏好,以及模拟案例所需的处理时间是微不足道的。调查的局限性:这项工作的一个限制是对已知和可预测数据的考虑。实际意义:拟议的模型是通过协助面对这种问题的公司的目的开发的,为需要最低信息和操作动作的拍摄提供解决方案。原创性/值:SLAP是NP(非确定性多项式时间)复杂问题,并且在MOGA之后,解决方案的数量对于工程经理(决策者 - DM)的最终决策仍然很高。因此,开发的Moga-MCDM混合方法能够将DM'偏好纳入补偿性视图,在任何KPI中更差的否决替代品,推荐最终解决方案。

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