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A dynamic multi-generation capacity planning under uncertainties

机译:不确定性下的动态多代容量规划

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This research studies multi-generation capacity planning problems under uncertainties. In high-tech industry, because of the frequent introduction of new production technology, capacity planners need to expand their facility while several technology options are available. Oftentimes, capacity of advanced technology can be used to produce products of lower technology. The partial flexibility of capacity makes multigeneration dynamic capacity optimization problems difficult. In this research, the multi-generation capacity planning problems are modeled by dynamic programming. In each decision time, capacity planners can invest in several types of capacity. The objective is to maximize expected revenue over a finite planning horizon. The dynamic programming model is solved by value iteration algorithm (VIA). In numerical study, we verify the robustness of proposed methods by discrete event simulation. Our finding provides general guidelines for multi-generation capacity planning under uncertainties.
机译:该研究在不确定因素下研究了多代的能力规划问题。在高新技术产业中,由于频繁引入新生产技术,容量规划者需要扩大其设施,同时提供几种技术选择。通常,先进技术的能力可用于生产较低技术的产品。容量的部分灵活性使得多成型动态容量优化问题困难。在本研究中,多代容量规划问题由动态编程建模。在每个决定时间中,容量规划人员可以投资几种类型的容量。目标是通过有限规划地平线最大化预期收入。动态编程模型通过价值迭代算法(VIA)解决。在数值研究中,我们通过离散事件仿真验证了所提出的方法的鲁棒性。我们的发现为不确定因素提供了一般性的多代性能规划指南。

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