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Speckle noise reduction in OCT and projection images using hybrid wavelet thresholding

机译:使用混合小波阈值减少OCT和投影图像中的斑点噪声

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Speckle noise in optical coherence tomography (OCT) images is a granular noise that inherently exists and degrades the image quality. The challenge of conventional denoising methods is to distinguish the informational pattern from the speckle noise. In this paper we present a novel method for speckle noise reduction in OCT volumes, where the corresponding en face representation, which produces frontal sections of retinal layers and is relatively free of speckle, is considered as a reference. The proposed method estimates the anatomical structures by solving a constrained optimization problem that combines wavelet-domain sparsity and total variation (wavelet-TV) regularization to preserve the edges of retinal layers and to alleviate artifacts introduced by pure wavelet thresholding. Denoising performance is evaluated through the signal to noise ratio (SNR) and the contrast to noise ratio (CNR). The volumes processed by the proposed method show notable reduction of speckle without losing details in both en face and cross-sectional images.
机译:光学相干断层扫描(OCT)图像中的斑点噪声是固有存在的颗粒噪声,会降低图像质量。常规去噪方法的挑战是将信息图案与斑点噪声区分开。在本文中,我们提出了一种在OCT体积中减少斑点噪声的新方法,其中将产生视网膜层正面部分且相对没有斑点的相应面部表示作为参考。所提出的方法通过解决将小波域稀疏性和总变化(小波电视)正则化相结合的约束优化问题来估计解剖结构,以保留视网膜层的边缘并减轻由纯小波阈值引入的伪影。通过信噪比(SNR)和对比度与噪声比(CNR)评估降噪性能。通过所提出的方法处理的体积显示出明显的斑点斑点,而不会丢失正面图像和横截面图像中的细节。

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