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基于BM3D的全变差算法在光学相干断层扫描(OCT)图像中去除散斑并保留结构。

BM3D-based total variation algorithm for speckle removal with structure-preserving in OCT images.

作者信息

Huang Shengjian, Tang Chen, Xu Min, Qiu Yue, Lei Zhenkun

出版信息

Appl Opt. 2019 Aug 10;58(23):6233-6243. doi: 10.1364/AO.58.006233.

Abstract

In this paper, we propose a total variation based on block matching 3D (BM3D-TV method), which includes the total variation regular term, the data fidelity term, and the block matching term. In addition, we also propose a fast numerical algorithm based on the split Bregman iteration for the proposed method. By assigning suitable weights to the data fidelity term and block matching term, the image noise reduction and the image structural characteristics can be matched optimally. We test the proposed method on six human retinal and one mouse skin optical coherence tomography (OCT) images respectively, and also compare it with total variation (TV) and BM3D, which were proved to be effective in denoising. The performances of these methods are quantitatively evaluated in terms of the signal-to-noise ratio, the contrast-to-noise ratio, and the averaged equivalent number of homogeneous areas at the aspects of speckle reduction and structure protection. Vast experiments show that the BM3D-TV method can effectively reduce speckle noise in OCT images, protect important structural information and improve image quality, compared with the BM3D and TV methods.

摘要

在本文中,我们提出了一种基于块匹配3D的全变差方法(BM3D-TV方法),该方法包括全变差正则项、数据保真项和块匹配项。此外,我们还针对所提出的方法提出了一种基于分裂Bregman迭代的快速数值算法。通过为数据保真项和块匹配项分配合适的权重,可以最佳地匹配图像降噪和图像结构特征。我们分别在六幅人类视网膜光学相干断层扫描(OCT)图像和一幅小鼠皮肤OCT图像上测试了所提出的方法,并将其与已被证明在去噪方面有效的全变差(TV)方法和BM3D方法进行了比较。这些方法的性能在散斑减少和结构保护方面,根据信噪比、对比度噪声比以及均匀区域的平均等效数量进行了定量评估。大量实验表明,与BM3D和TV方法相比,BM3D-TV方法能够有效降低OCT图像中的散斑噪声,保护重要的结构信息并提高图像质量。

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