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用于光场显微镜的相空间去卷积

Phase-space deconvolution for light field microscopy.

作者信息

Lu Zhi, Wu Jiamin, Qiao Hui, Zhou You, Yan Tao, Zhou Zijing, Zhang Xu, Fan Jingtao, Dai Qionghai

出版信息

Opt Express. 2019 Jun 24;27(13):18131-18145. doi: 10.1364/OE.27.018131.

Abstract

Light field microscopy, featuring with snapshot large-scale three-dimensional (3D) fluorescence imaging, has aroused great interests in various biological applications, especially for high-speed 3D calcium imaging. Traditional 3D deconvolution algorithms based on the beam propagation model facilitate high-resolution 3D reconstructions. However, such a high-precision model is not robust enough for the experimental data with different system errors such as optical aberrations and background fluorescence, which bring great periodic artifacts and reduce the image contrast. In order to solve this problem, here we propose a phase-space deconvolution method for light field microscopy, which fully exploits the smoothness prior in the phase-space domain. By modeling the imaging process in the phase-space domain, we convert the spatially-nonuniform point spread function (PSF) into a spatially-uniform one with a much smaller size. Experiments on various biological samples and resolution charts are demonstrated to verify the contrast enhancement with much fewer artifacts and 10-times less computational cost by our method without any hardware modifications required.

摘要

光场显微镜具有快照式大规模三维(3D)荧光成像功能,在各种生物应用中引起了极大的兴趣,特别是对于高速3D钙成像。基于光束传播模型的传统3D反卷积算法有助于进行高分辨率3D重建。然而,对于存在诸如光学像差和背景荧光等不同系统误差的实验数据,这种高精度模型的鲁棒性不足,这些误差会带来很大的周期性伪影并降低图像对比度。为了解决这个问题,我们在此提出一种用于光场显微镜的相空间反卷积方法,该方法充分利用了相空间域中的平滑先验。通过在相空间域中对成像过程进行建模,我们将空间不均匀的点扩散函数(PSF)转换为尺寸小得多的空间均匀的点扩散函数。对各种生物样本和分辨率图表进行的实验表明,我们的方法在不进行任何硬件修改的情况下,能够以少得多的伪影和低10倍的计算成本增强对比度。

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