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  4. Discretization of continuous convolution operators for accurate modeling of wave propagation in digital holography
 
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Discretization of continuous convolution operators for accurate modeling of wave propagation in digital holography

Journal
Journal of the Optical Society of America A: Optics and Image Science, and Vision
Journal Volume
30
Journal Issue
10
Date Issued
2013-10-01
Author(s)
Chacko, Nikhil
Liebling, Michael
THIERRY BLU  
DOI
10.1364/JOSAA.30.002012
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/640520
URL
https://api.elsevier.com/content/abstract/scopus_id/84885343068
Abstract
Discretization of continuous (analog) convolution operators by direct sampling of the convolution kernel and use of fast Fourier transforms is highly efficient. However, it assumes the input and output signals are band-limited, a condition rarely met in practice, where signals have finite support or abrupt edges and sampling is nonideal. Here, we propose to approximate signals in analog, shift-invariant function spaces, which do not need to be band-limited, resulting in discrete coefficients for which we derive discrete convolution kernels that accurately model the analog convolution operator while taking into account nonideal sampling devices (such as finite fill-factor cameras). This approach retains the efficiency of direct sampling but not its limiting assumption. We propose fast forward and inverse algorithms that handle finite-length, periodic, and mirror-symmetric signals with rational sampling rates. We provide explicit convolution kernels for computing coherent wave propagation in the context of digital holography. When compared to band-limited methods in simulations, our method leads to fewer reconstruction artifacts when signals have sharp edges or when using nonideal sampling devices. © 2013 Optical Society of America.
Type
journal article

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