Adaptive wavelets for analyzing dispersive seismic waves

Author:

Kritski A.1234,Vincent A. P.1234,Yuen D. A.1234,Carlsen T.1234

Affiliation:

1. Statoil Research Centre, Arkitekt Ebbellsvei 10, Rotvoll, N-7005 Trondheim, Norway.

2. Université de Montréal, Département de Physique, C. P. 6128, Succ., Centre-Ville, Montreal, QC, H3C 3J7, Canada.

3. University of Minnesota, Minnesota Supercomputing Institute, Department of Geology and Geophysics, Minneapolis, Minnesota 55455.

4. Formerly Norwegian University of Science and Technology, Department of Electronics and Telecommunications, Trondheim, Norway; presently CGG-Marine, Postboks 243, O. H. Bangs vei 70, N-1322 Høvik, Norway.

Abstract

Our primary objective is to develop an efficient and accurate method for analyzing time series with a multiscale character. Our motivation stems from the studies of the physical properties of marine sediment (stiffness and density) derived from seismic acoustic records of surface/interface waves along the water-seabed boundary. These studies depend on the dispersive characteristics of water-sediment surface waves. To obtain a reliable retrieval of the shear-wave velocities, we need a very accurate time-frequency record of the surface waves. Such a time-frequency analysis is best carried out by a wavelet-transform of the seismic records. We have employed the wavelet crosscorrelation technique for estimating the shear-wave propagational parameters as a function of depth and horizontal distance. For achieving a greatly improved resolution in time-frequency space, we have developed a new set of adaptive wavelets, which are driven by the data. This approach is based on a Karhunen-Loeve (KL) decomposition of the seismograms. This KL decomposition allows us to obtain a set of wavelet functions that are naturally adapted to the scales of the surface-wave modes. We demonstrate the superiority of these adaptive wavelets over standard wavelets in their ability to simultaneously discriminate the different surface-wave modes. The results can also be useful for imaging and statistical data analysis in exploration geophysics and in other disciplines in the environmental sciences.

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

Reference47 articles.

1. Abbate, A., C. M. DeCusatis, and P. K. Das, 2002, Wavelets and subbands, fundamentals and applications: Birkhäuser Verlag.

2. Allnor, R., 2000, Seismo-acoustic remote sensing of shear wave velocities in shallow marine sediments: Doktor Ingenior thesis, The Norwegian University Science and Technology.

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