Paper
4 April 2023 Motion-corrected Fourier ghost imaging based on phase compensation
ShiZhuang Chen, JiaLi Zheng, Hui Liu, ZhaoHua Yang, YuanJin Yu
Author Affiliations +
Proceedings Volume 12617, Ninth Symposium on Novel Photoelectronic Detection Technology and Applications; 126171R (2023) https://doi.org/10.1117/12.2664558
Event: 9th Symposium on Novel Photoelectronic Detection Technology and Applications (NDTA 2022), 2022, Hefei, China
Abstract
The image quality of traditional computed ghost imaging is largely affected by the motion state of the target. When the target moves more than one pixel in the adjacent sampling interval, the image quality will decrease rapidly. Especially when the motion status of the target is unknown, high quality imaging will become difficult. To overcome the problem, we propose a simple and reliable method of imaging the moving target based on the reconstruction of Fourier Ghost Imaging (FGI) and phase compensation. The method uses the Fourier positioning patterns to estimate the displacement trajectory of the object followed by phase compensation of the spectrum. It combines the conjugate symmetry and sparsity properties of the Fourier spectrum to directly reconstruct the reasonable image of a moving object at low sampling rates, which saves time and computation. Simulation results show that the method does not require excessive priori knowledge and can achieve imaging of an object in different states of motion.
© (2023) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
ShiZhuang Chen, JiaLi Zheng, Hui Liu, ZhaoHua Yang, and YuanJin Yu "Motion-corrected Fourier ghost imaging based on phase compensation", Proc. SPIE 12617, Ninth Symposium on Novel Photoelectronic Detection Technology and Applications, 126171R (4 April 2023); https://doi.org/10.1117/12.2664558
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KEYWORDS
Phase compensation

Fourier transforms

Motion estimation

Sensors

Digital micromirror devices

Image quality

Phase shifts

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