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Automatic estimation of point-spread-function for deconvoluting out-of-focus optical coherence tomographic images using information entropy-based approach

机译:使用基于信息熵的方法对散焦光学相干断层图像进行去卷积的点扩展函数的自动估计

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摘要

This paper proposes an automatic point spread function (PSF) estimation method to de-blur out-of-focus optical coherence tomography (OCT) images. The method utilizes Richardson-Lucy deconvolution algorithm to deconvolve noisy defocused images with a family of Gaussian PSFs with different beam spot sizes. Then, the best beam spot size is automatically estimated based on the discontinuity of information entropy of recovered images. Therefore, it is not required a prior knowledge of the parameters or PSF of OCT system for de-convoluting image. The model does not account for the diffraction and the coherent scattering of light by the sample. A series of experiments are performed on digital phantoms, a custom-built phantom doped with microspheres, fresh onion as well as the human fingertip in vivo to show the performance of the proposed method. The method may also be useful in combining with other deconvolution algorithms for PSF estimation and image recovery.
机译:本文提出了一种自动点扩展函数(PSF)估计方法来对散焦光学相干断层扫描(OCT)图像进行模糊处理。该方法利用Richardson-Lucy反卷积算法对带有不同束斑大小的高斯PSF系列进行反卷积处理。然后,基于恢复图像的信息熵的不连续性,自动估计最佳光束光斑大小。因此,不需要用于卷积图像的OCT系统的参数或PSF的先验知识。该模型不考虑样品对光的衍射和相干散射。在数字体模,掺有微球的定制体模,新鲜洋葱以及人的指尖体内进行了一系列实验,以显示所提出方法的性能。该方法在与其他反卷积算法结合用于PSF估计和图像恢复时也可能很有用。

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