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首页> 外文期刊>EURASIP journal on image and video processing >Epidermis segmentation in skin histopathological images based on thickness measurement and k-means algorithm
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Epidermis segmentation in skin histopathological images based on thickness measurement and k-means algorithm

机译:基于厚度测量和k-means算法的皮肤组织病理学图像中的表皮分割

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Automatic segmentation of the epidermis area in skin histopathological images is an essential step for computer-aided diagnosis of various skin cancers. This paper presents a robust technique for epidermis segmentation in the whole slide skin histopathological images. The proposed technique first performs a coarse epidermis segmentation using global thresholding and shape analysis. The epidermis thickness is then measured by a series of line segments perpendicular to the main axis of the initially segmented epidermis mask. If the segmented epidermis mask has a thickness greater than a predefined threshold, the segmentation is assumed to be inaccurate. A second pass of fine segmentation using k-means algorithm is then carried out over these coarsely segmented result to enhance the performance. Experimental results on 64 different skin histopathological images show that the proposed technique provides a superior performance compared to the existing techniques. Keywords Histopathological image analysis Epidermis segmentation Epidermis thickness Global threshold
机译:皮肤组织病理学图像中的表皮区域的自动分割是各种皮肤癌的计算机辅助诊断的重要步骤。本文提出了一种在整个玻片皮肤组织病理学图像中进行表皮分割的可靠技术。所提出的技术首先使用全局阈值和形状分析执行粗略的表皮分割。然后通过一系列垂直于最初分割的表皮掩模的主轴线的线段来测量表皮厚度。如果分段的表皮蒙版的厚度大于预定义的阈值,则假定分段不准确。然后使用k-means算法对这些粗略分割的结果进行第二次精细分割,以提高性能。在64种不同的皮肤组织病理学图像上的实验结果表明,与现有技术相比,该技术具有更好的性能。关键词组织病理学图像分析表皮分割表皮厚度整体阈值

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