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A New Forecasting Method for Hard Disk Drive Manufacturing Throughput with a Hybrid Neural Network Model

机译:具有混合神经网络模型的硬盘驱动器制造吞吐量的新预测方法

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In this research,a new prediction method for the production throughput forecasting for testing operation in hard disk drive manufacturing are presented.The method for forecasting is separated into three stages.The first stage is input variable selection which is selecting the key input variables for prediction model by using mutual information (MI) method.The second stage is developing the forecasting model with generalized regression neural network (GRNN).The last state is for increasing the forecasting accuracy by optimizing the smoothing parameter of GRNN.The comparison result with the current forecasting system in real factory has shown that the proposed method gives forecasting accuracy higher than current method.
机译:在该研究中,提出了一种新的预测方法,用于生产硬盘驱动器制造中的测试操作的生产吞吐量预测。预测方法分为三个阶段。第一阶段是输入变量选择,该选择是选择预测的键输入变量模型通过使用互信息(MI)方法。第二阶段正在开发具有广义回归神经网络(GRNN)的预测模型。最后状态是通过优化GRNN的平滑参数来提高预测精度。当前的比较结果实际工厂预测系统表明,该方法提供了预测比当前方法高的预测精度。

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