Title :
Body Wave Separation in the Time-Frequency Domain
Author :
Herrera, Roberto H. ; Tary, Jean Baptiste ; van der Baan, Mirko ; Eaton, David W.
Author_Institution :
Dept. of Phys., Univ. of Alberta, Edmonton, AB, Canada
Abstract :
Separation of a seismogram into its individual constitutive phases (Pand S-wave arrivals, surface waves, etc.) is a long-standing problem. In this letter, we use a high-resolution time-frequency transform to achieve this and reconstruct their individual waveforms in the time domain. The procedure is illustrated using microseismic events recorded during a hydraulic fracturing treatment. The synchrosqueezing transform is an extension of the continuous wavelet transform combined with frequency reassignment. Its high-resolution time-frequency decompositions allow for separation and identification of Pand S-waves with subtly different frequency contents that would not be recoverable using short-term Fourier transforms due to its smearing in the frequency domain. It is an invertible transform, thus allowing for signal reconstruction in the time domain after signal separation. The same approach is applicable to other seismic signals such as resonance frequencies and long-period events and offers promising new possibilities for enhanced signal interpretation in terms of underlying physical processes.
Keywords :
geophysical techniques; seismic waves; P-wave arrival; S-wave arrival; body wave separation; high-resolution time-frequency decompositions; high-resolution time-frequency transform; hydraulic fracturing treatment; microseismic events; seismic signals; short-term Fourier transforms; surface waves; synchrosqueezing transform; time-frequency domain; Continuous wavelet transforms; Educational institutions; Geophysics; Time-domain analysis; Time-frequency analysis; Signal reconstruction; spectral decomposition; synchrosqueezing transform (SST); wave separation;
Journal_Title :
Geoscience and Remote Sensing Letters, IEEE
DOI :
10.1109/LGRS.2014.2342033