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Subband decomposition and reconstruction of continuous volcanic tremor

机译:连续火山地震的子带分解与重构

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摘要

A new method of analyzing volcanic tremor is presented, which uses properties of undecimated wavelet packet transforms to filter, decompose, and recover signals from continuous multichannel data. The method preserves many standard properties that are used to characterize tremor, such as wavefield polarization and seismic energy. In this way, we can better understand the (potentially many) seismic sources that combine to form continuous volcanic tremor, and we can specifically address the problem of what causes changing tremor spectral content. Tests on synthetic data suggest that SDR can recover multiple quasi-continuous signals that differ from one another by an order of magnitude, even in noisy environments. Tests on real data recorded at Erta 'Ale in 2002 suggest that SDR can recover signals with geophysically meaningful interpretations, and corroborates existing seismic and multiparametric work by Harris et al. (2005), Jones et al. (2006), and Harris (2008). We suggest that this algorithm could effectively detect subtle changes in the time-frequency content of volcanic tremor, and recover signals from real seismic sources that appear buried in background noise (and/or partly masked by one another). Such an algorithm could allow volcanologists much greater insight into the dynamics of volcanic systems, and could detect subtle signals that might help address the possibility of unrest.
机译:提出了一种分析火山震颤的新方法,该方法利用未抽取小波包变换的特性来过滤,分解和恢复来自连续多通道数据的信号。该方法保留了许多用于表征震颤的标准属性,例如波场极化和地震能量。通过这种方式,我们可以更好地了解(可能很多)地震源,这些地震源组合在一起形成了连续的火山震颤,并且我们可以专门解决导致震颤频谱含量变化的问题。对合成数据的测试表明,即使在嘈杂的环境中,SDR也可以恢复彼此相差一个数量级的多个准连续信号。对2002年在Erta'Ale记录的真实数据的测试表明,SDR可以用有意义的地球物理解释来恢复信号,并证实了Harris等人现有的地震和多参数工作。 (2005),Jones等。 (2006)和哈里斯(2008)。我们建议该算法可以有效地检测火山震颤的时频含量中的细微变化,并从看起来像掩盖在背景噪声中(和/或被彼此部分掩盖)的真实地震源中恢复信号。这种算法可以使火山学家更加深入地了解火山系统的动力学,并可以检测出微妙的信号,从而有助于解决动荡的可能性。

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  • 来源
    《Journal of Volcanology and Geothermal Research》 |2012年第1期|p.98-115|共18页
  • 作者单位

    University of Washington, Department of Earth and Space Sciences, Seattle, WA 98195-1310, USA;

    Laboratorio di misure e trattamento dei segnali, DICA, Universita di Udine, Via delle Scienze, 206-33100 Udine, Friuli, Italy;

    University of Washington, Department of Earth and Space Sciences, Seattle, WA 98195-1310, USA;

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