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一种神经网络改进小波的地震数据随机噪声去除方法
引用本文:陈亮,陈丽芳,刘保相.一种神经网络改进小波的地震数据随机噪声去除方法[J].西北地震学报,2019,41(2):476-481.
作者姓名:陈亮  陈丽芳  刘保相
作者单位:唐山职业技术学院机电工程系, 河北 唐山 063000,华北理工大学理学院, 河北 唐山 063210,华北理工大学理学院, 河北 唐山 063210
基金项目:国家自然科学基金(61370168)
摘    要:地震资料的有效信号反射弱,且易受多次波的影响,不可避免地存在随机噪声干扰。提出一种基于神经网络改进小波的地震数据随机噪声去除方法,采用神经网络模型,识别出随机噪声信号,对该信号进行小波包分解,获取多类别随机噪声信号,采用级联BP神经网络模型提取出多类别随机噪声信号,实现地震数据的随机信号压制。实验结果显示,这种改进小波方法对地震数据随机噪声信号的去噪效果较好,在复杂沉积地质结构被探测介质的地震数据随机噪声压制方面具有较强的适用性。

关 键 词:神经网络  小波包分解  随机噪声  去噪  BP神经网络
收稿时间:2018/7/28 0:00:00

A Method for Random Noise Elimination from Seismic Data Based onthe Neural Network-improved Wavelet Transform
CHEN Liang,CHEN Lifang and LIU Baoxiang.A Method for Random Noise Elimination from Seismic Data Based onthe Neural Network-improved Wavelet Transform[J].Northwestern Seismological Journal,2019,41(2):476-481.
Authors:CHEN Liang  CHEN Lifang and LIU Baoxiang
Institution:Department of Electrical and Mechanical Engineering, Tangshan Vocational & Technology College, Tangshan 063000, Hebei, China,College of Science, North China University of Science and Technology, Tangshan 063210, Hebei, China and College of Science, North China University of Science and Technology, Tangshan 063210, Hebei, China
Abstract:The effective signal of seismic data reflects weakly and is affected by multiple waves, so random noise interference inevitably exists. A method of removing random noise from seismic data based on a neural network-improved wavelet is proposed. The neural network model was used to identify the random noise signal. The signal was decomposed by wavelet packet to obtain multi-class random noise signal. The cascaded back-propagation algorithm (BP) network model was used to extract multi-class random noise signals, the random signal suppression of seismic data was realized. The experimental results showed that the improved wavelet method has a better denoising effect on the random noise signals in seismic data, and has strong applicability in suppressing random noise in the seismic data in complex sedimentary geological structures.
Keywords:neural network  wavelet packet decomposition  random noise  denoising  BP neural network
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