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Implementation of Automatic First Arrival Picking On P-Wave Seismic Signal Using Logistic Regression Method

机译:基于Logistic回归的P波地震信号自动初到采集的实现。

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The development of automation technology is currently very fast and helps human work, one of them is used by the Badan Meteorologi, Klimatologi dan Geotisika (BMKG) to detect earthquakes. Automatic First Arrival Picking is a system that can detect primary waves at the first arrival or P-Wave that occurs in an earthquake seismic signal. This study aims to create an Automatic First Arrival Picking system and test the performance of the Logistic Regression method to classify this Automatic First Arrival Picking system in detecting primary waves at the first arrival or P-Wave. In this Automatic First Arrival Picking study, data samples taken on the IRIS (Incorporated Research Institutions for Seismology) website with 100 earthquake events taken from the three closest stations with magnitude 5-8 SR. Data samples will be processed using four Feature Extraction: Recursive STA/LTA, Classic STA/LTA, Carl STA/ LTA and Delayed STA/LTA.Furthermore, the results of Feature Extraction that will be used as a dataset will be classified by the Logistic Regression method. From the test results of the Automatic First Arrival Picking system it is known that several parameters can produce the best system performance, that is 50 seconds for time windowing, 55%: 45% for a ratio training and testing, and a value of 100 for Inverse of Regularization. The results of the research conducted using the Logistic Regression method to detect P-waves in the Automatic First Arrival Picking system with a calibration scheme that carried out that obtained accuracy of 83%, Precision by 75%, Recall of 64% and F1-Score of 67%.
机译:自动化技术的发展目前非常迅速,可以帮助人类工作,其中之一就是Badan Meteorologi,Klimatologi dan Geotisika(BMKG)用来检测地震。自动首次到达拣选是一种系统,可以检测地震信号中发生的首次到达时的原波或P波。这项研究的目的是创建一个自动先到达拣选系统,并测试Logistic回归方法的性能,以对该自动先到达拣选系统进行分类,以检测初次到达或P波中的一次波。在此“自动首次到达采摘”研究中,数据样本是在IRIS(联合地震研究机构)网站上采集的,其中三个最近的5-8 SR地震台站发生了100次地震事件。数据样本将使用四个特征提取进行处理:递归STA / LTA,经典STA / LTA,Carl STA / LTA和Delayed STA / LTA。此外,将用作数据集的特征提取结果将由Logistic分类回归方法。从自动先到自动拣选系统的测试结果可以知道,几个参数可以产生最佳的系统性能,即时间窗为50秒,比率训练和测试为55%:45%,而对于值比率训练和测试为100正则化的逆。使用Logistic回归方法通过校准方案检测自动先到自动拣选系统中的P波的研究结果,该方法获得了83%的精度,75%的精度,64%的召回率和F1-Score占67%。

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