Sparse Spike Deconvolution of Seismic Data Using Trust-Region Based SQP Algorithm

Author:

Zhou Qingbao12,Gao Jinghuai12,Wang Zhiguo12

Affiliation:

1. Institute of Wave and Information, Xi’an Jiaotong University, Xi’an 710049, P. R. China

2. Beijing Center for Mathematics and Information Interdisciplinary Science (BCMIIS), Beijing 100048, P. R. China

Abstract

A new deconvolution algorithm for retrieving a sparse reflectivity series from noisy seismic traces is proposed. The problem is formulated as a constrained minimization, taking the approximation zero norm of reflectivity as the objective function. The resulting minimization is solved efficiently by the trust-region based sequential quadratic programming (SQP) method, which provides global convergence and local quadratic convergence rates under suitable assumptions. The null space decomposition method and the de-biasing method are employed to reduce computational complexity and further improve the calculation accuracy. Synthetic simulations indicate that the spikes on the reflectivity, both their positions and amplitudes, are recovered effectively by the proposed approach.

Publisher

World Scientific Pub Co Pte Lt

Subject

Applied Mathematics,Acoustics and Ultrasonics

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