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用于全视场重建的傅里叶叠层显微镜快速且稳健的失准校正

Fast and robust misalignment correction of Fourier ptychographic microscopy for full field of view reconstruction.

作者信息

Zhou Ao, Wang Wei, Chen Ni, Lam Edmund Y, Lee Byoungho, Situ Guohaiz

出版信息

Opt Express. 2018 Sep 3;26(18):23661-23674. doi: 10.1364/OE.26.023661.

Abstract

Fourier ptychographic microscopy (FPM) is a newly developed computational imaging technique that can provide gigapixel images with both high resolution (HR) and wide field of view (FOV). However, there are two possible reasons for position misalignment, which induce a degradation of the reconstructed image. The first one is the position misalignment of the LED array, which can largely be eliminated during the experimental system building process. The more important one is the segment-dependent position misalignment. Note that, this segment-dependent positional misalignment still exists, even after we correct the central coordinates of every small segment. In this paper, we carefully analyze this segment-dependent misalignment and find that this global shift matters more, compared with the rotational misalignments. According to this fact, we propose a robust and fast method to correct the two factors of position misalignment of the FPM, termed as misalignment correction for the FPM misalignment correction (mcFPM). Although different regions in the FOV have different sensitivities to the position misalignment, the experimental results show that the mcFPM is robust with respect to the elimination of each region. Compared with the state-of-the-art methods, the mcFPM is much faster.

摘要

傅里叶叠层显微术(FPM)是一种新开发的计算成像技术,它能够提供具有高分辨率(HR)和宽视场(FOV)的数十亿像素图像。然而,存在两种可能导致位置失准的原因,这会使重建图像质量下降。第一个原因是LED阵列的位置失准,在实验系统搭建过程中,这一问题在很大程度上可以被消除。更重要的原因是与分段相关的位置失准。需要注意的是,即使我们校正了每个小分段的中心坐标,这种与分段相关的位置失准仍然存在。在本文中,我们仔细分析了这种与分段相关的失准现象,并发现与旋转失准相比,这种全局偏移的影响更大。基于这一事实,我们提出了一种鲁棒且快速的方法来校正FPM位置失准的两个因素,称为FPM失准校正(mcFPM)。尽管视场中的不同区域对位置失准的敏感度不同,但实验结果表明,mcFPM对于消除每个区域的失准都具有鲁棒性。与现有最先进的方法相比,mcFPM的速度要快得多。

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