Atmospheric Turbulence-Resilient Long-Range Fourier Ptychography

Fuente: arXiv
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Main Authors: Zhang, Junhao, Wei, Weilong, Yang, Kaiyuan, Zhou, Qiang, Ma, Haotong, Ren, Ge, Xie, Zongliang
Format: Preprint
Published: 2025
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_version_ 1866909675980587008
author Zhang, Junhao
Wei, Weilong
Yang, Kaiyuan
Zhou, Qiang
Ma, Haotong
Ren, Ge
Xie, Zongliang
author_facet Zhang, Junhao
Wei, Weilong
Yang, Kaiyuan
Zhou, Qiang
Ma, Haotong
Ren, Ge
Xie, Zongliang
contents While Fourier ptychography (FP) offers super-resolution for macroscopic imaging, its real-world application is severely hampered by atmospheric turbulence, a challenge largely unaddressed in existing macroscopic FP research operating under idealized conditions. This work establishes, to our knowledge, the first comprehensive computational framework specifically designed for turbulence mitigation in long-range FP, termed Turbulence-Mitigated FP (TMFP). Rather than correcting pupil errors, an image degradation model is developed alongside a reconstruction pipeline inspired by speckle interferometry. By taking multiple short-exposure randomly-distorted measurements and exploiting their statistical properties, the diffraction-limited sub-aperture images can be recovered for further FP reconstruction. Numerical simulations and experimental validations under optical turbulence demonstrate the method's robustness, resolution enhancement, and practicality in adverse conditions, paving the way for the reliable deployment of high-resolution macroscopic FP in real-world scenarios.
format Preprint
id arxiv_https___arxiv_org_abs_2507_03943
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Atmospheric Turbulence-Resilient Long-Range Fourier Ptychography
Zhang, Junhao
Wei, Weilong
Yang, Kaiyuan
Zhou, Qiang
Ma, Haotong
Ren, Ge
Xie, Zongliang
Optics
While Fourier ptychography (FP) offers super-resolution for macroscopic imaging, its real-world application is severely hampered by atmospheric turbulence, a challenge largely unaddressed in existing macroscopic FP research operating under idealized conditions. This work establishes, to our knowledge, the first comprehensive computational framework specifically designed for turbulence mitigation in long-range FP, termed Turbulence-Mitigated FP (TMFP). Rather than correcting pupil errors, an image degradation model is developed alongside a reconstruction pipeline inspired by speckle interferometry. By taking multiple short-exposure randomly-distorted measurements and exploiting their statistical properties, the diffraction-limited sub-aperture images can be recovered for further FP reconstruction. Numerical simulations and experimental validations under optical turbulence demonstrate the method's robustness, resolution enhancement, and practicality in adverse conditions, paving the way for the reliable deployment of high-resolution macroscopic FP in real-world scenarios.
title Atmospheric Turbulence-Resilient Long-Range Fourier Ptychography
topic Optics
url https://arxiv.org/abs/2507.03943