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Application of Neural Networks in Probabilistic Forecasting of Earthquakes in the Southern California Region

Application of Neural Networks in Probabilistic Forecasting of Earthquakes in the Southern California Region

作     者:Vitor H. A. Dias Andrés R. R. Papa 

作者机构:Geophysics Department Observatório Nacional Rio de Janeiro Brazil Physics Institute Universidade do Estado do Rio de Janeiro Rio de Janeiro Brazil 

出 版 物:《International Journal of Geosciences》 (地球科学国际期刊(英文))

年 卷 期:2018年第9卷第6期

页      面:397-413页

学科分类:1002[医学-临床医学] 100214[医学-肿瘤学] 10[医学] 

主  题:Neurons Multi-Layer Perceptron Backpropagation Prediction 

摘      要:During the last few decades, many statistical physicists have devoted re-search efforts to the study of the problem of earthquakes. The purpose of this work is to apply methods of Statistical Physics and network systems based on “neurons in the study of seismological events. Data from the Advanced National Seismic System (ANSS) of Southern California were used to verify the relationship between time differences between consecutive seismic events with magnitudes greater than 3.0, 3.5, 4.0 and 4.5 through the modeling of neural networks. The problem we are analyzing is time differences between seismological events and how these data can be adopted as a time series with non linear characteristic. We are therefore using the multilayer perceptron neural network system with a backpropagation learning algorithm, because its characteristics allow for the analysis of non-linear data in order to obtain statistical results regarding the probabilistic forecast of tremor occurrence.

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