Sónia Pelizzari

  1. Bayesian Segmentation of Oceanic SAR Images: Application to Oil Spill Detection.

    Authors: José M. Bioucas-Dias, Sónia Pelizzari
    Subjects: Applications
    Abstract

    This paper introduces Bayesian supervised and unsupervised segmentation
    algorithms aimed at oceanic segmentation of SAR images. The data term,
    \emph{i.e}., the density of the observed backscattered signal given the region,
    is modeled by a finite mixture of Gamma densities with a given predefined
    number of components. To estimate the parameters of the class conditional
    densities, a new expectation maximization algorithm was developed. The prior is
    a multi-level logistic Markov random field enforcing local continuity in a
    statistical sense.

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