Robust ptychographic imaging with low-discrepancy sequences

Ptychography is a widely-used imaging technique that enables high-resolution, large field-of-view reconstruction via a scanning process. The design of the scanning pattern is critical, as it directly affects both reconstruction quality and computational efficiency. In this paper, we propose a set of new sampling patterns based on low-discrepancy sequences. This non-periodic configuration promotes a relatively uniform distribution of scanning positions and reduces the number of points located far from measured locations. Unlike the common non-periodic scan patterns such as Fermat spiral pattern, which is deterministic but lacks extensibility and exhibits subtle periodicity, low-discrepancy sequences offer provably uniform coverage, support progressive sampling without a predefined number of points, and produce a flatter power spectral density. Consequently, the proposed patterns exhibit enhanced robustness against common experimental artifacts, such as noise and scanning drift. In simulation experiments, we evaluate the performance of low-discrepancy scanning patterns from multiple perspectives, including spatial distribution, power spectral density, and robustness under drifting conditions. Optical experiments further validate the effectiveness and practical utility of our method.

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Publication Details

Journal
Optics and Lasers in Engineering
Published
2026-09-12
DOI
https://doi.org/10.1016/j.optlaseng.2026.110116
Primary Topic
Advanced X-ray Imaging Techniques
Type
article
Field-Weighted Citation Impact
0.00

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article

Robust ptychographic imaging with low-discrepancy sequences

Edmund Y. Lam, Li Song, Xu Liu, Zhu Chen et al.
Optics and Lasers in Engineering
Advanced X-ray Imaging Techniques
article

Robust ptychographic imaging with low-discrepancy sequences

Edmund Y. Lam, Li Song, Xu Liu, Zhu Chen, Wenyi Ren, Kaiqiang Wang, Zhenbo Ren, Jianglei Di
article en

Abstract

Ptychography is a widely-used imaging technique that enables high-resolution, large field-of-view reconstruction via a scanning process. The design of the scanning pattern is critical, as it directly affects both reconstruction quality and computational efficiency. In this paper, we propose a set of new sampling patterns based on low-discrepancy sequences. This non-periodic configuration promotes a relatively uniform distribution of scanning positions and reduces the number of points located far from measured locations. Unlike the common non-periodic scan patterns such as Fermat spiral pattern, which is deterministic but lacks extensibility and exhibits subtle periodicity, low-discrepancy sequences offer provably uniform coverage, support progressive sampling without a predefined number of points, and produce a flatter power spectral density. Consequently, the proposed patterns exhibit enhanced robustness against common experimental artifacts, such as noise and scanning drift. In simulation experiments, we evaluate the performance of low-discrepancy scanning patterns from multiple perspectives, including spatial distribution, power spectral density, and robustness under drifting conditions. Optical experiments further validate the effectiveness and practical utility of our method.

Optics and Lasers in EngineeringVol. 208
Northwestern Polytechnical University (CN), China Academy of Engineering Physics (CN), Education University of Hong Kong (HK), University of Hong Kong (HK), Ministry of Industry and Information Technology (CN), Northwest A&F University (CN), South China University of Technology (CN)
National Natural Science Foundation of China, Scientific Startup Foundation for Doctors of Northwest A and F University
Openalex Percentile: Top 12%
Advanced X-ray Imaging Techniques
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