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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Fuzzy-neural-network-based fluctuation smoothing rule for reducing the cycle times of jobs with various priorities in a wafer fabrication plant: a simulation study
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Fuzzy-neural-network-based fluctuation smoothing rule for reducing the cycle times of jobs with various priorities in a wafer fabrication plant: a simulation study

机译:基于模糊神经网络的波动平滑规则,用于减少晶圆制造厂中具有各种优先级的作业的周期时间:仿真研究

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摘要

This paper presents a fuzzy-neural-network-based fluctuation smoothing rule to further improve the performance of scheduling jobs with various priorities in a wafer fabrication plant. The fuzzy system is modified from the well-known fluctuation smoothing policy for a mean cycle time (FSMCT) rule with three innovative treatments. First, the remaining cycle time of a job is estimated by applying an existing fuzzy-neural-network-based approach to improve the estimation accuracy. Second, the components of the FSMCT rule are normalized to balance their importance. Finally, the division operator is applied instead of the traditional subtraction operator in order to magnify the difference in the slack and to enhance the responsiveness of the FSMCT rule. To evaluate the effectiveness of the proposed methodology, production simulation is applied to generate some test data. According to the experimental results, the proposed methodology outperforms six existing approaches in the reduction of the average cycle times. In addition, the new rule is shown to be a Pareto optimal solution for scheduling jobs in a semiconductor manufacturing plant. [PUBLICATION ABSTRACT]
机译:本文提出了一种基于模糊神经网络的波动平滑规则,以进一步提高晶圆制造厂中具有各种优先级的作业调度的性能。模糊系统是从著名的波动平滑策略修改为平均周期时间(FSMCT)规则的三种创新方法。首先,通过应用现有的基于模糊神经网络的方法来估计作业的剩余周期时间,以提高估计精度。其次,将FSMCT规则的组成部分标准化以平衡其重要性。最后,应用除法运算符代替传统的减法运算符,以扩大松弛度的差异并增强FSMCT规则的响应能力。为了评估所提出方法的有效性,将生产模拟应用于生成一些测试数据。根据实验结果,所提出的方法在减少平均循环时间方面优于六种现有方法。此外,新规则被证明是用于安排半导体制造工厂中的作业的帕累托最优解决方案。 [出版物摘要]

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