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Image restoration for three-dimensional fluorescence microscopy using an orthonormal basis for efficient representation of depth-variant point-spread functions

机译:用于三维荧光显微镜的图像恢复使用正交法有效表示深度变化点扩散函数

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摘要

A depth-variant (DV) image restoration algorithm for wide field fluorescence microscopy, using an orthonormal basis decomposition of DV point-spread functions (PSFs), is investigated in this study. The efficient PSF representation is based on a previously developed principal component analysis (PCA), which is computationally intensive. We present an approach developed to reduce the number of DV PSFs required for the PCA computation, thereby making the PCA-based approach computationally tractable for thick samples. Restoration results from both synthetic and experimental images show consistency and that the proposed algorithm addresses efficiently depth-induced aberration using a small number of principal components. Comparison of the PCA-based algorithm with a previously-developed strata-based DV restoration algorithm demonstrates that the proposed method improves performance by 50% in terms of accuracy and simultaneously reduces the processing time by 64% using comparable computational resources.
机译:在这项研究中,研究了使用DV点扩展函数(PSF)的正交分解的广域荧光显微镜深度变异(DV)图像恢复算法。有效的PSF表示基于先前开发的主成分分析(PCA),它在计算上非常耗费大量时间。我们提出了一种减少PCA计算所需的DV PSF数量的方法,从而使基于PCA的方法对于较厚的样本在计算上易于处理。来自合成图像和实验图像的恢复结果均显示出一致性,并且所提出的算法使用少量的主分量有效地解决了深度引起的像差。将基于PCA的算法与以前开发的基于分层的DV恢复算法进行比较,结果表明,使用可比较的计算资源,该方法的准确性提高了50%,同时处理时间减少了64%。

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