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Learning Wavefront Coding for Extended Depth of Field Imaging

Akpinar, Ugur; Sahin, Erdem; Meem, Monjurul; Menon, Rajesh; Gotchev, Atanas (2021-02-24)

 
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Akpinar, Ugur
Sahin, Erdem
Meem, Monjurul
Menon, Rajesh
Gotchev, Atanas
24.02.2021

IEEE Transactions on Image Processing
This publication is copyrighted. You may download, display and print it for Your own personal use. Commercial use is prohibited.
doi:10.1109/TIP.2021.3060166
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Julkaisun pysyvä osoite on
https://urn.fi/URN:NBN:fi:tuni-202107076240

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Peer reviewed
Tiivistelmä
Depth of field is an important factor of imaging systems that highly affects the quality of the acquired spatial information. Extended depth of field (EDoF) imaging is a challenging ill-posed problem and has been extensively addressed in the literature. We propose a computational imaging approach for EDoF, where we employ wavefront coding via a diffractive optical element (DOE) and we achieve deblurring through a convolutional neural network. Thanks to the end-to-end differentiable modeling of optical image formation and computational post-processing, we jointly optimize the optical design, i.e., DOE, and the deblurring through standard gradient descent methods. Based on the properties of the underlying refractive lens and the desired EDoF range, we provide an analytical expression for the search space of the DOE, which is instrumental in the convergence of the end-to-end network. We achieve superior EDoF imaging performance compared to the state of the art, where we demonstrate results with minimal artifacts in various scenarios, including deep 3D scenes and broadband imaging.
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Kalevantie 5
PL 617
33014 Tampereen yliopisto
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Kalevantie 5
PL 617
33014 Tampereen yliopisto
oa[@]tuni.fi | Tietosuoja | Saavutettavuusseloste