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Superpixel approach in high resolution histopathological image segmentation

机译:超像素方法在高分辨率组织病理学图像分割中的应用

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Segmentation of cellular structures with high accuracy has a crucial importance for the detection of cancerous regions in histopathologic images. The proper segmentation of cellular structures is one of the most important issues to be considered when making a diagnosis by pathologists. In this study, the contribution of the superpixel method to the segmentation of high-resolution histopathologic images of renal cell carcinoma from the TCGA (The Cancer Genome Atlas) data set was investigated. The superpixel method performs clustering based on color similarities and spatial proximity of the pixels in histopathologic images. When the results are evaluated, it has been observed that the superpixel method has a positive contribution to both the segmentation success and the running time.
机译:高精度的细胞结构分割对于组织病理学图像中癌变区域的检测至关重要。细胞结构的正确分割是病理学家进行诊断时要考虑的最重要问题之一。在这项研究中,研究了超像素方法对TCGA(癌症基因组图谱)数据集对肾细胞癌高分辨率组织病理学图像进行分割的作用。超像素方法基于组织病理学图像中像素的颜色相似性和空间接近度来执行聚类。当评估结果时,已经观察到超像素方法对分割成功和运行时间都有积极的贡献。

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