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The Combination of Discrete-Event Simulation and Genetic Algorithm for Solving the Stochastic Multi-Product Inventory Optimization Problem

机译:离散事件仿真与遗传算法相结合解决随机多产品库存优化问题

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The paper describes an eventual combination of discrete-event simulation and genetic algorithm to define the optimal inventory policy in stochastic multi-product inventory systems. The discrete-event model under consideration corresponds to the just-in-time inventory control system with a flexible reorder point. The system operates under stochastic demand and replenishment lead time. The utilized genetic algorithm is distinguished for a non-binary chromosome encoding, uniform crossover and two mutation operators. The paper contains a detailed description of the optimization technique and the numerical example of six- product inventory model. The proposed approach contributes to the field of industrial engineering by providing a simple, but still efficient way to compute nearly-optimal inventory parameters with regard to risk and reliability policy. Besides, the method may be applied in automated ordering systems.
机译:本文描述了离散事件模拟和遗传算法的最终组合,以定义随机多产品库存系统中的最优库存策略。正在考虑的离散事件模型对应于具有灵活重新订购点的实时库存控制系统。该系统在随机需求和补货提前期下运行。所利用的遗传算法因非二进制染色体编码,均匀交叉和两个突变算子而著称。本文包含优化技术的详细说明以及六产品库存模型的数值示例。所提出的方法通过提供一种简单但仍有效的方法来计算有关风险和可靠性策略的最佳库存参数,从而为工业工程领域做出了贡献。此外,该方法可以应用于自动订购系统中。

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