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首页> 外文期刊>Pure and Applied Geophysics >Motif Discovery on Seismic Amplitude Time Series: The Case Study of Mt Etna 2011 Eruptive Activity
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Motif Discovery on Seismic Amplitude Time Series: The Case Study of Mt Etna 2011 Eruptive Activity

机译:地震振幅时间序列的母题发现:以埃特纳火山2011年爆发活动为例

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摘要

Algorithms searching for similar patterns are widely used in seismology both when the waveforms of the events of interest are known and when there is no a priori-knowledge. Such methods usually make use of the cross-correlation coefficient as a measure of similarity; if there is no a-priori knowledge, they behave as brute-force searching algorithms. The disadvantage of these methods, preventing or limiting their application to very large datasets, is computational complexity. The Mueen-Keogh (MK) algorithm overcomes this limitation by means of two optimization techniques-the early abandoning concept and space indexing. Here, we apply the MK algorithm to amplitude time series retrieved from seismic signals recorded during episodic eruptive activity of Mt Etna in 2011. By adequately tuning the input to the MK algorithm we found eight motif groups characterized by distinct seismic amplitude trends, each related to a different phenomenon. In particular, we observed that earthquakes are accompanied by sharp increases and decreases in seismic amplitude whereas lava fountains are accompanied by slower changes. These results demonstrate that the MK algorithm, because of its particular features, may have wide applicability in seismology.
机译:当已知事件的波形已知并且没有先验知识时,寻找相似模式的算法已广泛用于地震学中。这种方法通常利用互相关系数作为相似度的度量。如果没有先验知识,则它们将充当蛮力搜索算法。这些方法的缺点是阻止或限制将其应用于非常大的数据集,这是计算复杂性。 Mueen-Keogh(MK)算法通过两种优化技术(早期放弃的概念和空间索引)克服了这一限制。在这里,我们将MK算法应用于从2011年埃特纳火山爆发期间记录的地震信号中检索到的振幅时间序列。通过适当地调整MK算法的输入,我们找到了八个特征组,这些特征组的特征在于不同的地震振幅趋势,每个与不同的现象。特别是,我们观察到地震伴随着地震幅度的急剧增加和减小,而熔岩喷泉伴随着缓慢的变化。这些结果表明,由于MK算法的特殊功能,它在地震学中可能具有广泛的适用性。

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