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Application of Improved Homogeneity Similarity-Based Denoising in Optical Coherence Tomography Retinal Images

机译:改进的基于同质相似度的降噪技术在光学相干断层扫描视网膜图像中的应用

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摘要

Image denoising is a fundamental preprocessing step of image processing in many applications developed for optical coherence tomography (OCT) retinal imaging—a high-resolution modality for evaluating disease in the eye. To make a homogeneity similarity-based image denoising method more suitable for OCT image removal, we improve it by considering the noise and retinal characteristics of OCT images in two respects: (1) median filtering preprocessing is used to make the noise distribution of OCT images more suitable for patch-based methods; (2) a rectangle neighborhood and region restriction are adopted to accommodate the horizontal stretching of retinal structures when observed in OCT images. As a performance measurement of the proposed technique, we tested the method on real and synthetic noisy retinal OCT images and compared the results with other well-known spatial denoising methods, including bilateral filtering, five partial differential equation (PDE)-based methods, and three patch-based methods. Our results indicate that our proposed method seems suitable for retinal OCT imaging denoising, and that, in general, patch-based methods can achieve better visual denoising results than point-based methods in this type of imaging, because the image patch can better represent the structured information in the images than a single pixel. However, the time complexity of the patch-based methods is substantially higher than that of the others.
机译:在许多为光学相干断层扫描(OCT)视网膜成像开发的应用程序中,图像去噪是图像处理的基本预处理步骤,这是一种用于评估眼部疾病的高分辨率方法。为了使基于均质相似度的图像去噪方法更适合OCT图像去除,我们在两个方面考虑了OCT图像的噪声和视网膜特征来对其进行改进:(1)使用中值滤波预处理来使OCT图像的噪声分布更适合基于补丁的方法; (2)当在OCT图像中观察时,采用矩形邻域和区域限制来适应视网膜结构的水平拉伸。作为对所提出技术的性能衡量,我们在真实和合成的有噪声的视网膜OCT图像上测试了该方法,并将结果与​​其他著名的空间去噪方法进行了比较,包括双边滤波,基于五个偏微分方程(PDE)的方法以及三种基于补丁的方法。我们的结果表明,我们提出的方法似乎适用于视网膜OCT成像降噪,并且一般而言,在这种类型的成像中,基于补丁的方法比基于点的方法可以实现更好的视觉去噪效果,因为图像补丁可以更好地代表图像中的结构化信息要比单个像素大。但是,基于补丁的方法的时间复杂度明显高于其他方法。

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