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Detection precursor of sumatra earthquake based on ionospheric total electron content anomalies using N-Model Articial Neural Network

机译:基于电离层总电子含量异常的苏门答腊地震检测前体使用N模型曲线网络神经网络

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Indonesia is a country located between the Indo-Australian, Euresian and the Pacific plate. Based on these facts, earthquakes are frequent in Indonesia, especially in Sumatra. Therefore, an early detection of an earthquake, also known as an earthquake precursor, is required. At the moment, some research is exploring the earthquake relation with Total Electron Content located in ionospere. Machine learning methods and artificial intelligence are used to detect earthquake precursors. This study focuses on the N-ANN (N-Model Neural Network Model) method for detecting earthquake precursors. In addition, this study uses the Dst (Disturbance Storm Time) Index to subtract the effects of geomagnetic storms from TEC. TEC data uses TEC GIM (Global Ionospheric Maps) at 00:00. The observed earthquakes were the December 2004 to March 2005 earthquakes. The experiments show that N-ANN is more stable with the 5 model ANN, 3 hidden layer and 2 neurons. Earthquake precursors found 3 to 0 days before the earthquake occurred. The experimental results on 16 earthquake events reach 76% accuracy, 81% recall, and 93% precision. It can be concluded that N-ANN can be considered to detect earthquake precursors for early detection of earthquakes as a warning system.
机译:印度尼西亚是一个位于印度 - 澳大利亚,蔚蓝板材和太平洋板之间的国家。基于这些事实,地震在印度尼西亚频繁,特别是在苏门答腊省。因此,需要早期检测地震,也称为地震前体。目前,一些研究正在探索与位于离子间的全电子含量的地震关系。机器学习方法和人工智能用于检测地震前体。本研究重点介绍了用于检测地震前体的N-ANN(N模型神经网络模型)方法。此外,本研究使用DST(干扰灾时)指数从TEC中减去了地磁风暴的影响。 TEC数据在00:00使用TEC GIM(全球电离层地图)。观察到的地震是2004年12月至2005年3月的地震。实验表明,N-ANN与5型号ANN,3层隐藏层和2个神经元更稳定。地震前体在发生地震前发现3至0天。对16个地震事件的实验结果达到76 %精度,81 %召回和93 %精度。可以得出结论,N-ANN可以被认为是检测地震前体,以便早期检测地震作为警告系统。

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