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Reservoir Computing for Prediction of the Spatially-Variant Point Spread Function

by: S. J. Weddell, R. Y. Webb
Selected Topics in Signal Processing, IEEE Journal of In Selected Topics in Signal Processing, IEEE Journal of, Vol. 2, No. 5. (October 2008), pp. 624-634, doi:10.1109/jstsp.2008.2004218  Key: citeulike:3923008

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Abstract

A new method is presented which provides prediction of the spatially variant point spread function for the restoration of astronomical images, distorted by atmospheric turbulence when viewed using ground-based telescopes. Our approach uses reservoir computing to firstly learn the spatio-temporal evolution of aberrations caused by turbulence, and secondly, predicts the space-varying point spread function (PSF) for application of widely-used deconvolution algorithms, resulting in the restoration of astronomical images. In this article, a reservoir-based, recurrent neural network is used to predict modal aberrations that comprise the spatially variant PSF over a wide field-of-view using a time-series ensemble from multiple reference beacons.


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