Signal and traveltime parameter estimation using singular value decomposition

Author:

Ursin Bjørn1,Silva Michelângelo G.2,Porsani Milton J.3

Affiliation:

1. The Norwegian University of Science and Technology (NTNU), Department of Petroleum Engineering and Applied Geophysics, Trondheim, Norway..

2. Universidade Federal da Bahia, Centro de Pesquisa em Geofísica e Geologia (CPPG/UFBA), Instituto de Geociências, Campus Universitário da Federação, Salvador, Bahia, Brazil..

3. Universidade Federal da Bahia, Centro de Pesquisa em Geofísica e Geologia (CPPG/UFBA) and National Institute of Science and Technology of Petroleum Geophysics (INCT-GP/CNPQ), Instituto de Geociências, Campus Universitário da Federação, Salvador, Bahia, Brazil..

Abstract

Signal detection and traveltime parameter estimation can be performed by computing a coherence function in a data window centered around a traveltime function defined by its parameters. We used singular value decomposition of the data matrix, not eigendecomposition of a covariance matrix, to review the most commonly used coherence measures. This resulted in a new reduced semblance coefficient defined from the first eigenimage, assuming that the signal amplitude was the same on all data channels (as in classical semblance). In a second signal model, the time signal was constant on each channel, but the amplitude changed. Then, the semblance coefficient is the square of the first singular value divided by the energy of the data. Two normalized crosscorrelation coefficients derived from the first eigenimage can also be used as a coherence measure: The normalized crosscorrelation of the spatial singular vector with a vector with all elements equal to one, and the normalized crosscorrelation of the temporal singular vector and the average time signal (the stacked trace). We defined a multiple signal classification (MUSIC) measure as the inverse of one minus any of the normalized coherence measures described above. To reduce the numerical range, we preferred to use [Formula: see text] MUSIC. Numerical examples with different coherence measures applied to seismic velocity analysis of synthetic and real data revealed that the normalized crosscorrelation coefficients performed poorly and that log MUSIC gave no resolution enhancement on real data. The normalized eigenimage-energy coherence measure performed poorly on synthetic data but gave the best result for a simulated reflection with a polarity reversal. It also gave good time resolution on the real data. The classical semblance coefficient and the reduced semblance coefficient gave similar results with the reduced semblance coefficient having better resolution.

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

Cited by 8 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. About Semblance Filtering in (Tau-P)-Domain;IEEE Geoscience and Remote Sensing Letters;2022

2. Seismic velocity analysis in the presence of amplitude variations using local semblance;Geophysical Prospecting;2021-06

3. Velocity analysis in homogeneous VTI media using AB- and SVD-semblance;15th International Congress of the Brazilian Geophysical Society & EXPOGEF, Rio de Janeiro, Brazil, 31 July-3 August 2017;2017-08-03

4. Weighted AB semblance using very fast simulated annealing;15th International Congress of the Brazilian Geophysical Society & EXPOGEF, Rio de Janeiro, Brazil, 31 July-3 August 2017;2017-08-03

5. A high-resolution weighted AB semblance for dealing with amplitude-variation-with-offset phenomenon;GEOPHYSICS;2017-03-01

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