A Linear Inversion Approach to Measuring the Composition and Directionality of the Seismic Noise Field

We develop a linear inversion technique for measuring the modal composition and directionality of ambient seismic noise. The technique draws from similar techniques used in astrophysics and gravitational-wave physics, and relies on measuring cross-correlations between different seismometer channels...

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Veröffentlicht in:Remote sensing (Basel, Switzerland) Switzerland), 2021-08, Vol.13 (16), p.3097
Hauptverfasser: Meyers, Patrick M., Prestegard, Tanner, Mandic, Vuk, Tsai, Victor C., Bowden, Daniel C., Matas, Andrew, Pavlis, Gary, Caton, Ross
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Sprache:eng
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Zusammenfassung:We develop a linear inversion technique for measuring the modal composition and directionality of ambient seismic noise. The technique draws from similar techniques used in astrophysics and gravitational-wave physics, and relies on measuring cross-correlations between different seismometer channels in a seismometer array. We characterize the sensitivity and the angular resolution of this technique using a series of simulations and real-world tests. We then apply the technique to data acquired by the three-dimensional seismometer array at the Homestake mine in Lead, SD, to estimate the composition and directionality of the seismic noise at microseism frequencies. We show that, at times of low-microseism amplitudes, noise is dominated by body waves (P and S), while at high-microseism times, the noise is dominated by surface Rayleigh waves.
ISSN:2072-4292
2072-4292
DOI:10.3390/rs13163097