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A New Texture-Based Segmentation Method for Optical Coherence Tomography Images

机译:一种新的基于纹理的光学相干断层扫描图像分割方法

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Optical Coherence Tomography (OCT) is an imaging modality which facilitates capturing pictures from biological organs like retina. Accurate segmentation and verification of OCT images leads to the identification and treatment of harmful retinal diseases such as glaucoma. The main fact used for segmentation in this paper is that a considerable number of boundary pixels have similar features from texture point-of-view. Thus, a novel low-complexity segmentation method for OCT images is proposed paying attention to the texture feature of pixels on the boundaries. The simulation results show that the proposed method provides acceptable values for mean signed and unsigned errors compared to the result of manual segmentation.
机译:光学相干断层扫描(OCT)是一种成像方式,可帮助从生物器官(如视网膜)捕获图片。 OCT图像的准确分割和验证可识别和治疗有害的视网膜疾病,例如青光眼。本文中用于分割的主要事实是,从纹理的角度来看,相当数量的边界像素具有相似的特征。因此,提出了一种新的针对OCT图像的低复杂度分割方法,该方法关注边界像素的纹理特征。仿真结果表明,与人工分割的结果相比,该方法为有符号和无符号的均值误差提供了可接受的值。

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