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Speckle noise reduction in spectral domain optical coherence tomography retinal images using anisotropic diffusion filtering

机译:使用各向异性扩散滤波的光谱域光学相干断层扫描视网膜图像的斑块降噪

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In Ophthalmology, Optical Coherence Tomography (OCT) is well accepted as a clinical standard for diagnosing and monitoring the pathological changes in optic disc and retinal layers. In recent times, even though spectral domain detection technique has proved higher potential in terms of extremely high sensitivity and image acquisition speed, the major shortcomings is existence of speckle and its effect on interpretation and diagnosis. In this present paper, preprocessing for automated segmentation in the Spectral Domain Optical Coherence Tomography (SDOCT) retinal images is performed using anisotropic diffusion filtering method. The image enhancement is done initially by fuzzification technique which uses the maximum fuzzy entropy principle. For effective removal of speckles which of the order of 2-3μm anistropic diffusion filtering is performed. The performance of the filter is analyzed practically by measuring its quantitative parameters of structural similarity index measure and the results show that significant improvement in image quality is achieved by preserving the edges.
机译:在眼科学中,光学相干断层扫描(OCT)是诊断和监测光盘和视网膜层中病理变化的临床标准。近来,尽管光谱域检测技术在极高的灵敏度和图像采集速度方面已经证明了更高的潜力,但主要的缺点是斑点的存在及其对解释和诊断的影响。在本文中,使用各向异性扩散滤波方法进行光谱域光学相干断层扫描(SDOCT)视网膜图像中的自动分割预处理。最初通过使用最大模糊熵原理的模糊化技术来完成图像增强。为了有效地去除斑点,执行2-3μm的主体分散滤波的大约一项顺序。几乎通过测量结构相似性指数测量的定量参数,结果表明通过保留边缘来实现图像质量的显着提高来分析过滤器的性能。

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