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Fast estimation of earthquake epicenter distance using a single seismological station with machine learning techniques

机译:使用单个地震台站和机器学习技术快速估算地震震中距离

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A Support Vector Machine Regression (SVMR) algorithm was applied to calculate the epicenter distance using a ten seconds signal, after primary waves arrive at a seismological station near to Bogota - Colombia. This algorithm was tested with 863 records of earthquakes, where the input parameters were an exponential function of waveform envelope estimated by least squares and maximum value of recorded waveforms for each component of the seismic station. Cross validation was applied to normalized polynomial kernel functions, obtaining mean absolute error for different exponents and complexity parameters. The epicenter distance was estimated with 10.3 kilometers of absolute error, improving the results previously obtained for this hypocentral parameter. The proposed algorithm is easy to implement in hardware and can be employed directly in the field, generating fast decisions at seismological control centers increasing the possibilities of effective reactions.
机译:在一次波到达哥伦比亚波哥大附近的地震台站之后,应用了支持向量机回归(SVMR)算法,使用十秒信号来计算震中距离。该算法在863次地震记录中进行了测试,其中输入参数是波形包络的指数函数,该波形包络是通过最小平方和地震台站每个组成部分的记录波形的最大值估算的。将交叉验证应用于归一化的多项式核函数,获得不同指数和复杂性参数的平均绝对误差。震中距离的绝对误差估计为10.3公里,从而改善了先前针对该震源参数获得的结果。所提出的算法易于在硬件中实现,并且可以直接在现场使用,从而在地震控制中心产生快速决策,从而增加了有效反应的可能性。

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