| Literature DB >> 27895994 |
Liheng Bian1, Guoan Zheng2, Kaikai Guo2, Jinli Suo1, Changhuei Yang3, Feng Chen1, Qionghai Dai1.
Abstract
Fourier ptychography (FP) is a recently proposed computational imaging technique for high space-bandwidth product imaging. In real setups such as endoscope and transmission electron microscope, the common sample motion largely degrades the FP reconstruction and limits its practicability. In this paper, we propose a novel FP reconstruction method to efficiently correct for unknown sample motion. Specifically, we adaptively update the sample's Fourier spectrum from low spatial-frequency regions towards high spatial-frequency ones, with an additional motion recovery and phase-offset compensation procedure for each sub-spectrum. Benefiting from the phase retrieval redundancy theory, the required large overlap between adjacent sub-spectra offers an accurate guide for successful motion recovery. Experimental results on both simulated data and real captured data show that the proposed method can correct for unknown sample motion with its standard deviation being up to 10% of the field-of-view scale. We have released our source code for non-commercial use, and it may find wide applications in related FP platforms such as endoscopy and transmission electron microscopy.Keywords: (110.1758) Computational imaging; (170.0180) Microscopy; (170.3010) Image reconstruction techniques
Year: 2016 PMID: 27895994 PMCID: PMC5119594 DOI: 10.1364/BOE.7.004543
Source DB: PubMed Journal: Biomed Opt Express ISSN: 2156-7085 Impact factor: 3.732