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Study on the Classification of Pulse Signal Based on the BP Neural Network

机译:基于BP神经网络的脉冲信号分类研究

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The objectification of the pulse signal analysis is a practical problem. The classification of the pulse signal is studied based on the BP neural network. It is first analyzed how to select the characteristic factors of the pulse signal. Then the method of nondimensionalization/normalization on the pulse signal is presented to preprocess the characteristic factors. The classification of the pulse signal and the effects of the selection of characteristic factors are studied by using the normalized data and BP neural network. It is shown that nondimensionalization/normalization of the data is in favor of the training and forecasting of the network. The selection of characteristic factors affects the accuracy of forecasting obviously. The results of forecasting by selection of 8, 6 and 4 factors respectively show that the less the factors are, the worse the effects are.
机译:脉冲信号分析的客观性是一个实际问题。基于BP神经网络研究了脉冲信号的分类。首先分析如何选择脉冲信号的特征因子。然后,介绍了脉冲信号的非潜能/归一化的方法以预处理特征因素。通过使用归一化数据和BP神经网络研究了脉冲信号的分类和选择特征因子的效果。结果表明,数据的非潜能/归一化有利于网络的培训和预测。特征因素的选择会影响预测的准确性。通过选择8,6和4因素的预测结果分别表明,因素越少,效果越差。

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