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Notes on Performance of Bidiagonalization-Based Noise Level Estimator in Image Deblurring

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    0458347 - ÚI 2017 RIV SK eng C - Conference Paper (international conference)
    Hnětynková, Iveta - Kubínová, Marie - Plešinger, Martin
    Notes on Performance of Bidiagonalization-Based Noise Level Estimator in Image Deblurring.
    Algoritmy 2016. Bratislava: Slovak University of Technology, 2016 - (Handlovičová, A.; Ševčovič, D.), s. 333-342. ISBN 978-80-227-4544-4.
    [ALGORITMY 2016. Conference on Scientific Computing /20./. Vysoké Tatry - Podbanské (SK), 13.03.2016-18.03.2016]
    R&D Projects: GA ČR GA13-06684S
    Institutional support: RVO:67985807
    Keywords : image deblurring * linear ill-posed problem * noise * noise level estimate * Golub-Kahan iterative bidiagonalization
    Subject RIV: BA - General Mathematics

    Image deblurring represents one of important areas of image processing. When information about the amount of noise in the given blurred image is available, it can signifficantly improve the performance of image deblurring algorithms. The paper [11] introduced an iterative method for estimating the noise level in linear algebraic ill-posed problems contaminated by white noise. Here we study applicability of this approach to image deblurring problems with various types of blurring operators. White as well as data-correlated noise of various sizes is considered.
    Permanent Link: http://hdl.handle.net/11104/0258613

     
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