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Speckle Noise Reduction Mechanism Based on Dual-Density Dual-Tree Complex Wavelet in Optical Coherence Tomography

机译:相干层析成像中基于双密度双树复小波的斑点降噪机制

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Image quality is an important parameter characterizing the performances of an optical coherence tomography (OCT) system. Low image quality not only deteriorates the image analysis and interpretations, but also impacts on the clinical applications of OCT systems, leading to misdiagnosis. Speckle noise is always present in OCT signals, and thus inevitably affects the OCT image quality. This paper studies the speckle noise reduction problem in OCT systems, and tries to compare a variety of the wavelet transform based methods. Specifically, we give the logical flow diagram of the dual-density dual-tree complex wavelet method first, and then combine it with the local variance estimation based bivariate contraction model for speckle noise reduction. By performing experiments on OCT images of human retina, swine eye and human dental, we compare the speckle noise reduction effects of the dual-density method, dual-density dual-tree real wavelet method (R2D) and dual-density dual-tree complex wavelet (C2D) method. Results show that the C2D method can effectively eliminate the speckle noise while retaining the important edge detail information of the OCT images.
机译:图像质量是表征光学相干断层扫描(OCT)系统性能的重要参数。低图像质量不仅会使图像分析和解释变差,而且还会影响OCT系统的临床应用,从而导致误诊。 OCT信号中始终存在斑点噪声,因此不可避免地会影响OCT图像质量。本文研究了OCT系统中的散斑降噪问题,并试图比较各种基于小波变换的方法。具体来说,我们首先给出了双密度双树复小波方法的逻辑流程图,然后将其与基于局部方差估计的双变量收缩模型相结合以减少斑点噪声。通过对人的视网膜,猪眼和人的牙齿的OCT图像进行实验,我们比较了双密度方法,双密度双树实小波方法(R2D)和双密度双树复合体的散斑降噪效果小波(C2D)方法。结果表明,C2D方法可以有效消除斑点噪声,同时保留OCT图像的重要边缘细节信息。

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