Patch-Based U-Net Model for Isotropic Quantitative Differential Phase Contrast Imaging

  • An Cin Li
  • , Sunil Vyas
  • , Yu Hsiang Lin
  • , Yi You Huang
  • , Hsuan Ming Huang*
  • , Yuan Luo*
  • *Corresponding author for this work

Research output: Contribution to journalJournal Article peer-review

21 Scopus citations

Abstract

Quantitative differential phase-contrast (qDPC) imaging is a label-free phase retrieval method for weak phase objects using asymmetric illumination. However, qDPC imaging with fewer intensity measurements leads to anisotropic phase distribution in reconstructed images. In order to obtain isotropic phase transfer function, multiple measurements are required; thus, it is a time-consuming process. Here, we propose the feasibility of using deep learning (DL) method for isotropic qDPC microscopy from the least number of measurements. We utilize a commonly used convolutional neural network namely U-net architecture, trained to generate 12-axis isotropic reconstructed cell images (i.e. output) from 1-axis anisotropic cell images (i.e. input). To further extend the number of images for training, the U-net model is trained with a patch-wise approach. In this work, seven different types of living cell images were used for training, validation, and testing datasets. The results obtained from testing datasets show that our proposed DL-based method generates 1-axis qDPC images of similar accuracy to 12-axis measurements. The quantitative phase value in the region of interest is recovered from 66% up to 97%, compared to ground-truth values, providing solid evidence for improved phase uniformity, as well as retrieved missing spatial frequencies in 1-axis reconstructed images. In addition, results from our model are compared with paired and unpaired CycleGANs. Higher PSNR and SSIM values show the advantage of using the U-net model for isotropic qDPC microscopy. The proposed DL-based method may help in performing high-resolution quantitative studies for cell biology.

Original languageEnglish
Pages (from-to)3229-3237
Number of pages9
JournalIEEE Transactions on Medical Imaging
Volume40
Issue number11
DOIs
StatePublished - 01 11 2021

Bibliographical note

Publisher Copyright:
© 1982-2012 IEEE.

Keywords

  • Coded-illumination
  • CycleGAN
  • U-net model
  • deep neural network
  • differential phase contrast
  • patch-based
  • quantitative phase imaging

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