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基于改进型BP网络的空间电场分类研究
引用本文:张伟,李忠,刘海军,安建琴,宋奕瑶.基于改进型BP网络的空间电场分类研究[J].地震,2017,37(4):173-180.
作者姓名:张伟  李忠  刘海军  安建琴  宋奕瑶
作者单位:防灾科技学院 灾害信息工程系, 河北 三河 065201
基金项目:中央高校基本科研业务费专项资金(ZY20140216, ZY20160106); 河北省科技支撑计划项目(13210122)
摘    要:空间电场信号异常识别是研究地震引起电离层扰动的重要内容。 将空间超低频电场电位数据看作随机数字信号, 以均值、 均方差、 偏度和峰度等四个指标进行描述, 采用“5·12”汶川大地震前空间超低频电场电位数据作为原始数据, 训练改进型BP神经网络, 建立了空间电场信号异常分类识别模型, 并以SOM神经网络进行验证。 计算结果显示, 空间超低频电场电位异常信号主要集中在5°~25°N, 88°~120°E之间的区域, 汶川大地震影响范围内的电离层扰动, 可能是汶川地震发生前引起的, 这与前人研究一致, 说明采用改进型BP神经网络异常分类识别模型研究地震引起的电离层扰动是可行的。

关 键 词:BP网络    空间电场信号    随机信号特征    汶川大地震  
收稿时间:2016-12-12

Classification of Space Electric Field Based on Improved BP Network
ZHANG Wei,LI Zhong,LIU Hai-jun,AN Jian-qin,SONG Yi-yao.Classification of Space Electric Field Based on Improved BP Network[J].Earthquake,2017,37(4):173-180.
Authors:ZHANG Wei  LI Zhong  LIU Hai-jun  AN Jian-qin  SONG Yi-yao
Institution:Institute of Disaster Prevention, Hebei Sanhe 065201, China
Abstract:The anomaly recognition of spatial electric field is an important issue in studying the ionospheric disturbance caused by earthquakes. As a random digital signal, the Ultra-Low Frequency (ULF) space electric field data can be disrobed by the four features of the mean, variance, skewness and kurtosis. The ULF data recorded before the 2008 Wenchuan earthquake was used as original data to train the improved BP neural network, the identification model is established for the classification of abnormal signal of space electric field, which is verified by SOM neural network. The calculation results show that the abnormal signal is concentrated in the area between 5°~25°N and 88°~120°E, which lie within the influence scope of and may be caused by the Wenchuan earthquake. This fact is consistent with previous research results and proves that the improved BP neural network model is reasonable.
Keywords:BP network  Space electric field signals  Random signal features  The 2008 Wenchuan earthquake  
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