Title :
Bayesian Inversion of Multimode Interface-Wave Dispersion From Ambient Noise
Author :
Li, Cuilin ; Dosso, Stan E. ; Dong, Hefeng ; Yu, Dingyong ; Liu, Lanbo
Author_Institution :
Sch. of Earth & Ocean Sci., Univ. of Victoria, Victoria, BC, Canada
fDate :
7/1/2012 12:00:00 AM
Abstract :
This paper applies nonlinear Bayesian inversion to estimate seabed shear-wave speed profiles and their uncertainties using interface-wave dispersion curves extracted from ocean ambient noise, and compares the resolution of seabed structure for fundamental mode and multimode data. Ambient noise recordings were collected for 2.15 h at hydrophones of an entrenched ocean bottom cable in the North Sea. Scholte-wave dispersion curves for the fundamental mode and several higher order modes within the frequency range 0.25-3.9 Hz are extracted from cross correlations of noise recordings at sensor pairs via the slowness-frequency transform. The Bayesian information criterion is used to determine the preferred model parameterizations in terms of the number of sediment layers supported by the data for inversions based on the fundamental mode alone and on the first three modes. Adaptive hybrid optimization and Metropolis-Hastings sampling are applied to estimate the optimum a posteriori shear-wave speed models and to compute marginal posterior probability distributions and profiles. The results show quantitatively that multimode inversion provides higher resolution of shallow shear-wave speed structure with smaller uncertainties at all depths than inversion of the fundamental mode alone.
Keywords :
Bayes methods; ocean waves; sediments; underwater sound; Bayesian information criterion; Metropolis-Hastings sampling; North sea; Scholte-wave dispersion curves; adaptive hybrid optimization; ambient noise recordings; entrenched ocean bottom cable; frequency 0.25 Hz to 3.9 Hz; fundamental mode; interface-wave dispersion curves; marginal posterior probability distributions; marginal posterior probability profiles; multimode data; multimode interface-wave dispersion; multimode inversion; nonlinear Bayesian inversion; ocean ambient noise; posteriori shear-wave speed models; seabed shear-wave speed profiles; seabed structure resolution; sediment layers; shallow shear-wave speed structure; slowness-frequency transform; Bayesian methods; Data models; Dispersion; Green´s function methods; Noise; Oceans; Sea measurements; Ambient noise inversion; Bayesian inversion; dispersion curves; interface waves; shear-wave speed profiles;
Journal_Title :
Oceanic Engineering, IEEE Journal of
DOI :
10.1109/JOE.2012.2189922