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Real-Time Seismic Event Detection Using Voice Activity Detection Techniques

机译:使用语音活动检测技术的实时地震事件检测

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Seismic event detection is a key element for volcano monitoring systems. Real-time event detection is required by early warning monitoring systems in order to minimize the possible impact of natural disasters of geophysical nature. In this paper, we propose to implement a real–time long period (LP) and a volcano-tectonic (VT) event detector based on voice activity detection algorithms. The main advantage of such detector is that it can also locate the endpoints of the seismic event. In order to determine the efficiency of the proposed detector, a database containing 436 seismic events (LP and VT) acquired from the Cotopaxi volcano in Ecuador was used for testing. Main performance parameters such as accuracy (A), precision, sensitivity or recall, specificity, and the balanced error rate (BER) were then calculated, finally the processing time required by the algorithm was also considered. The results obtained suggest comparable performance when compared to previously developed event detection algorithms for the same dataset but with much less computational complexity, achieving an A of 95.2% and a BER of 0.005. With further refinements the algorithm may provide a useful tool for real-time volcanic research.
机译:地震事件检测是火山监测系统的关键要素。预警监视系统需要实时事件检测,以最大程度地减少地球物理自然灾害的可能影响。在本文中,我们建议基于语音活动检测算法实现实时长时间(LP)和火山构造(VT)事件检测器。这种探测器的主要优点是它也可以定位地震事件的终点。为了确定建议的探测器的效率,使用了一个数据库,该数据库包含从厄瓜多尔的科托帕希火山采集的436个地震事件(LP和VT),用于测试。然后计算出主要的性能参数,如准确度(A),准确度,灵敏度或召回率,特异性和平衡错误率(BER),最后还考虑了算法所需的处理时间。与先前针对相同数据集开发的事件检测算法相比,所获得的结果表明性能可比,但计算复杂度要低得多,A为95.2%,BER为0.005。通过进一步的改进,该算法可以为实时火山研究提供有用的工具。

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