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B-Spline potential function for maximum a-posteriori image reconstruction in fluorescence microscopy
Author(s) -
Shilpa Dilipkumar
Publication year - 2015
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4914105
Subject(s) - maximum a posteriori estimation , microscopy , spline (mechanical) , piecewise , deconvolution , super resolution microscopy , b spline , sted microscopy , microscope , optics , fluorescence microscope , inverse problem , iterative reconstruction , artificial intelligence , materials science , mathematics , computer science , physics , fluorescence , scanning confocal electron microscopy , laser , stimulated emission , maximum likelihood , mathematical analysis , statistics , thermodynamics
An iterative image reconstruction technique employing B-Spline potential function in a Bayesian framework is proposed for fluorescence microscopy images. B-splines are piecewise polynomials with smooth transition, compact support and are the shortest polynomial splines. Incorporation of the B-spline potential function in the maximum-a-posteriori reconstruction technique resulted in improved contrast, enhanced resolution and substantial background reduction. The proposed technique is validated on simulated data as well as on the images acquired from fluorescence microscopes (widefield, confocal laser scanning fluorescence and super-resolution 4Pi microscopy). A comparative study of the proposed technique with the state-of-art maximum likelihood (ML) and maximum-a-posteriori (MAP) with quadratic potential function shows its superiority over the others. B-Spline MAP technique can find applications in several imaging modalities of fluorescence microscopy like selective plane illumination microscopy, localization microscopy and STED

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