Retinex-qDPC: automatic background rectified quantitative differential phase contrast imaging
Shuhe Zhang, Tao Peng, Zeyu Ke, Han Yang, Tos T. J. M. Berendschot,, and Jinhua Zhou

TL;DR
This paper introduces Retinex-qDPC, a novel background-robust method for quantitative differential phase contrast imaging that improves phase recovery quality without modifying the optical system, using edge features and split Bregman optimization.
Contribution
The paper proposes Retinex-qDPC, a new approach utilizing edge features and Retinex models to enhance background robustness in qDPC imaging, outperforming existing algorithms.
Findings
Retinex-qDPC significantly improves phase recovery quality.
L1-Retinex-qDPC outperforms L2-Retinex and other algorithms.
Method increases robustness without optical system modifications.
Abstract
The quality of quantitative differential phase contrast reconstruction (qDPC) can be severely degenerated by the mismatch of the background of two oblique illuminated images, yielding problematic phase recovery results. These background mismatches may result from illumination patterns, inhomogeneous media distribution, or other defocusing layers. In previous reports, the background is manually calibrated which is time-consuming, and unstable, since new calibrations are needed if any modification to the optical system was made. It is also impossible to calibrate the background from the defocusing layers, or for high dynamic observation as the background changes over time. To tackle the mismatch of background and increases the experimental robustness, we propose the Retinex-qDPC in which we use the images edge features as data fidelity term yielding L2-Retinex-qDPC and L1-Retinex-qDPC for…
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Taxonomy
TopicsAdvanced X-ray Imaging Techniques · Digital Holography and Microscopy · Optical measurement and interference techniques
