Joint Bayesian separation and restoration of cosmic microwave background from convolutional mixtures
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2011-08Derechos
This article has been accepted for publication in Monthly notices of the Royal Astronomical Society © 2011 The authors. Published by Oxford University Press on behalf of the Royal Astronomical Society. All rights reserved.
Publicado en
Monthly Notices of the Royal Astronomical Society, 2011, 415(2), 1334-1342
Editorial
Oxford University Press
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Palabras clave
Methods: statistical
Techniques: image processing
Cosmic background radiation
Diffuse radiation
Resumen/Abstract
We propose a Bayesian approach to joint source separation and restoration for astrophysical diffuse sources. We constitute a prior statistical model for the source images by using their gradient maps. We assume a t-distribution for the gradient maps in different directions, because it is able to fit both smooth and sparse data. A Monte Carlo technique, called Langevin sampler, is used to estimate the source images and all the model parameters are estimated by using deterministic techniques.
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