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Application of Model Predictive Control to Robust Management of Multiechelon Demand Networks in Semiconductor Manufacturing

机译:模型预测控制在半导体制造多级需求网络鲁棒管理中的应用

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摘要

Model predictive control (MPC) is presented as a robust, flexible decision framework for dynamically managing inventories and satisfying customer demand in demand networks. In this paper, a formulation and the benefits of an MPC-based, control-oriented tactical inventory management system meaningful to the semiconductor industry are presented via two significant examples. The translation of available information in the supply chain problem into MPC variables is demonstrated with a single-product, two-node supply chain example. Simulations demonstrating the ability of a properly tuned MPC control system to maintain performance and robustness despite plant-model mismatch are shown. Insights gained from these simulations are used to formulate a partially decentralized MPC implementation for a six-node, two-product, three-echelon demand network problem developed by Intel Corporation. These simulations show that the demand network is well managed under conditions that involves simultaneous demand forecast inaccuracies and plant-model mismatch.
机译:模型预测控制(MPC)是一种健壮,灵活的决策框架,用于动态管理库存并满足需求网络中的客户需求。在本文中,通过两个重要的例子介绍了一种基于MPC,面向控制的战术库存管理系统的配方及其对半导体行业的意义。通过单产品,两个节点的供应链示例演示了将供应链问题中的可用信息转换为MPC变量的过程。显示了仿真,表明尽管工厂模型不匹配,但经过适当调整的MPC控制系统仍可保持性能和鲁棒性。从这些仿真中获得的见解可用于为英特尔公司开发的六节点,两产品,三级需求网络问题制定部分分散的MPC实施方案。这些模拟表明,在涉及需求同步预测不准确和工厂模型不匹配的条件下,需求网络得到了良好的管理。

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