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A heuristic to support make-to-stock, assemble-to-order, and make-to-order decisions in semiconductor supply chains

机译:在半导体供应链中支持按库存,按订单组装和按订单决策的启发式方法

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In this paper, we study Make-to-stock, Assemble-to-order, and Make-to-order decisions in semiconductor supply chains. We propose a genetic algorithm to support such decisions. Discrete-event simulation is used to estimate the profit-based objective function taking into account the stochastic behavior of the supply chain. We perform computational experiments with a simplified semiconductor supply chain model. It is shown that the proposed heuristic outperforms simple partitioning heuristics based on product characteristics.
机译:在本文中,我们研究了半导体供应链中的按库存生产,按订单组装和按订单生产决策。我们提出了一种遗传算法来支持此类决策。考虑到供应链的随机行为,离散事件模拟用于估计基于利润的目标函数。我们使用简化的半导体供应链模型进行计算实验。结果表明,所提出的启发式算法优于基于产品特征的简单分区启发式算法。

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