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Modeling and Optimization of the Multiobjective Stochastic Joint Replenishment and Delivery Problem under Supply Chain Environment

机译:供应链环境下多目标随机联合补货与配送问题的建模与优化

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摘要

As a practical inventory and transportation problem, it is important to synthesize several objectives for the joint replenishment and delivery (JRD) decision. In this paper, a new multiobjective stochastic JRD (MSJRD) of the one-warehouse and n-retailer systems considering the balance of service level and total cost simultaneously is proposed. The goal of this problem is to decide the reasonable replenishment interval, safety stock factor, and traveling routing. Secondly, two approaches are designed to handle this complex multi-objective optimization problem. Linear programming (LP) approach converts the multi-objective to single objective, while a multi-objective evolution algorithm (MOEA) solves a multi-objective problem directly. Thirdly, three intelligent optimization algorithms, differential evolution algorithm (DE), hybrid DE (HDE), and genetic algorithm (GA), are utilized in LP-based and MOEA-based approaches. Results of the MSJRD with LP-based and MOEA-based approaches are compared by a contrastive numerical example. To analyses the nondominated solution of MOEA, a metric is also used to measure the distribution of the last generation solution. Results show that HDE outperforms DE and GA whenever LP or MOEA is adopted.
机译:作为实际的库存和运输问题,重要的是综合制定联合补给和交付(JRD)决策的几个目标。本文提出了一种同时考虑服务水平和总成本之间平衡的单仓库和n零售商系统的多目标随机JRD(MSJRD)。该问题的目的是确定合理的补货间隔,安全库存因子和行驶路线。其次,设计了两种方法来处理这个复杂的多目标优化问题。线性规划(LP)方法将多目标转换为单个目标,而多目标演化算法(MOEA)直接解决了多目标问题。第三,在基于LP和基于MOEA的方法中使用了三种智能优化算法:差分进化算法(DE),混合DE(HDE)和遗传算法(GA)。通过对比数值示例比较了基于LP和基于MOEA的MSJRD的结果。为了分析MOEA的非主导解决方案,还使用度量标准来度量上一代解决方案的分布。结果表明,采用LP或MOEA时,HDE的性能优于DE和GA。

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