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Investigation on the Dependency of Phase Retrieval Accuracy Versus Edge Enhancement to the Noise Ratio of X-ray Propagation-Based Phase-Contrast Imaging

  • Lin Zhang
  • , Huijuan Zhao
  • , Jingying Jiang
  • , Limin Zhang
  • , Jiao Li
  • , Feng Gao
  • , Zhongxing Zhou*
  • *Corresponding author for this work
  • Tianjin University
  • Tianjin Key Laboratory of Biomedical Detecting Techniques and Instruments
  • Ltd.
  • Tianjin Key Laboratory in Environmental Monitoring Techniques

Research output: Contribution to journalArticlepeer-review

Abstract

Phase retrieval is necessary for propagation-based phase-contrast imaging (PB-PCI). Arhatari established a model for predicting the impact of the sample-to-detector distance and the system noise on the phase retrieval performance. We have extended Arhatari's model to account for the parameters of excessive source size, finite detector resolution, and geometrical magnification for more practical cases. However, there exist interaction effects among these parameters resulting in difficulty of predicting the phase retrieval performance. In this study, we found that optimizing the trade-off among these parameters for phase retrieval is consistent with the improvement of edge enhancement to noise ratio (EE/N) in the "forward problem" of the PB-PCI. Hence, we engaged in establishing a relationship between EE/N and phase retrieval performance in terms of the "forward problem" and "inverse problem" of the PB-PCI, respectively. Our results showed that, at fixed detector resolution, phase retrieval from the phase-contrast projections at the same EE/N level resulted in the consistent phase retrieval performance. Therefore, the performance of phase retrieval can be predicted based on the EE/N level and be quantitatively optimized by increasing EE/N.

Original languageEnglish
Pages (from-to)1201-1212
Number of pages12
JournalMicroscopy and Microanalysis
Volume25
Issue number5
DOIs
StatePublished - 1 Oct 2019

Keywords

  • EE/N
  • PB-PCI
  • forward and inverse model
  • optimization
  • phase retrieval

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