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Using temporal information in input features of neural networks

机译:在神经网络的输入特征中使用时间信息

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In many applications neural networks use temporal information, i.e. any kind of information related to a time series. Temporal information can be either represented within a network using a dynamic network paradigm or embodied in the inputfeatures of a network. The paper presents two methods for an explicit use of temporal information in input features. A least-squares approximation of signals with orthogonal polynomials will be used to infer information about trends in a signal (average,increase, curvature, etc.). Input information about the length of a time series up to a certain point in time may act as a decreasing threshold making the network more and more sensible to changes in other input features. The advantages of the two methods will be demonstrated by means of a real-world application example, tool wear monitoring in turning.
机译:在许多应用中,神经网络使用时间信息,即与时间序列相关的任何类型的信息。时间信息可以使用动态网络范例或在网络的InputFeatures中体现在网络中。本文呈现了两种方法,用于显式使用输入特征中的时间信息。具有正交多项式的信号的最小二乘近似值将用于推断有关信号中趋势的信息(平均,增加,曲率等)。关于时间序列长度的输入信息,最多一定时间的时间点可以充当降低阈值,使得网络更加明智地对其他输入特征的变化。通过现实世界的应用示例,刀具磨损监测将通过实际应用示例来证明这两种方法的优点。

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