Literature DB >> 30876102

Cycle-consistent deep learning approach to coherent noise reduction in optical diffraction tomography.

Gunho Choi, DongHun Ryu, YoungJu Jo, Young Seo Kim, Weisun Park, Hyun-Seok Min, YongKeun Park.   

Abstract

We present a deep neural network to reduce coherent noise in three-dimensional quantitative phase imaging. Inspired by the cycle generative adversarial network, the denoising network was trained to learn a transform between two image domains: clean and noisy refractive index tomograms. The unique feature of this network, distinct from previous machine learning approaches employed in the optical imaging problem, is that it uses unpaired images. The learned network quantitatively demonstrated its performance and generalization capability through denoising experiments of various samples. We concluded by applying our technique to reduce the temporally changing noise emerging from focal drift in time-lapse imaging of biological cells. This reduction cannot be performed using other optical methods for denoising.

Year:  2019        PMID: 30876102     DOI: 10.1364/OE.27.004927

Source DB:  PubMed          Journal:  Opt Express        ISSN: 1094-4087            Impact factor:   3.894


  6 in total

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4.  Deep learning-based optical field screening for robust optical diffraction tomography.

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5.  High spatially sensitive quantitative phase imaging assisted with deep neural network for classification of human spermatozoa under stressed condition.

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6.  Deep learning-based hologram generation using a white light source.

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Journal:  Sci Rep       Date:  2020-06-02       Impact factor: 4.379

  6 in total

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