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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >A nonlinear scheduling rule incorporating fuzzy-neural remaining cycle time estimator for scheduling a semiconductor manufacturing factory—a simulation study
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A nonlinear scheduling rule incorporating fuzzy-neural remaining cycle time estimator for scheduling a semiconductor manufacturing factory—a simulation study

机译:带有模糊神经剩余循环时间估计量的非线性调度规则,用于调度半导体制造工厂—仿真研究

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摘要

A nonlinear scheduling rule incorporating a fuzzy-neural remaining cycle time estimator is proposed in this study to improve scheduling performance in a semiconductor manufacturing factory. The proposed scheduling rule is modified from the well-known fluctuation smoothing rule with three treatments. At first, the look-ahead self-organization map-fuzzy back-propagation network approach in our previous study is used to estimate the remaining cycle time of every job in the semiconductor manufacturing factory. Subsequently, the release time and remaining cycle time of a job are both normalized to balance their importance in the fluctuation smoothing rule. Finally, the normalized release time is divided by the normalized remaining cycle time to obtain the slack. In this way, the proposed scheduling rule becomes a nonlinear one. To evaluate the effectiveness of the proposed methodology, production simulation is used to generate some test data. According to experimental results, the proposed methodology outperformed many existing approaches in reducing both the average cycle times and cycle time standard deviations. The advantage was up to 41% over the basis p-FS policy when the cycle time standard deviations were to be minimized.
机译:提出了一种结合模糊神经剩余循环时间估计量的非线性调度规则,以提高半导体制造工厂的调度性能。所提出的调度规则是通过三种处理方法从众所周知的波动平滑规则中修改而来的。首先,我们先前的研究中的超前自组织映射模糊反向传播网络方法用于估计半导体制造工厂中每个工作的剩余周期时间。随后,将作业的释放时间和剩余循环时间都进行标准化,以平衡它们在波动平滑规则中的重要性。最后,将标准化的释放时间除以标准化的剩余循环时间即可获得松弛。这样,所提出的调度规则成为非线性的。为了评估所提出方法的有效性,使用生产模拟来生成一些测试数据。根据实验结果,在减少平均循环时间和循环时间标准偏差方面,所提出的方法优于许多现有方法。当周期时间标准偏差最小化时,相对于基本的p-FS策略,优势高达41%。

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