Astronomical image restoration using variational Bayesian blind deconvolution

An algorithm is presented for image prior combinations based blind deconvolution and applied to astronomical images.Using a hierarchical Bayesian framework, the unknown original image and all required algorithmic parameters are estimated simultaneously.Through utilization of variational Bayesian ana...

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Veröffentlicht in:Journal of systems engineering and electronics 2017-12, Vol.28 (6), p.1236-1247
Hauptverfasser: Xiaoping Shi, Rui Guo, Yi Zhu, Zicai Wang
Format: Artikel
Sprache:eng
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Zusammenfassung:An algorithm is presented for image prior combinations based blind deconvolution and applied to astronomical images.Using a hierarchical Bayesian framework, the unknown original image and all required algorithmic parameters are estimated simultaneously.Through utilization of variational Bayesian analysis,approximations of the posterior distributions on each unknown are obtained by minimizing the Kullback-Leibler (KL) distance, thus providing uncertainties of the estimates during the restoration process.Experimental results on both synthetic images and real astronomical images demonstrate that the proposed approaches compare favorably to other state-of-the-art reconstruction methods.
ISSN:1004-4132
DOI:10.21629/JSEE.2017.06.21