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Automated segmentation of colon gland using histology images

机译:使用组织学图像自动分割结肠

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This paper represents an automated methodology for segmentation of colon glands using histology images. The manifestations of colorectal cancer under microscope has always been challenging as staining and sectioning leads to variation in tissue specimen, which causes conflict in gland appearance. Gland segmentation and classification is very important for the automation of the system. The presented methodology automatically segments the colon gland tissues by using intensity based thresholding which makes this methodology efficient. Unlike other segmentation methods, this methodology is entirely automated and quantifies lumen and epithelial cells only in the region of interest, which makes this method computationally efficient. This methodology is efficient for calculation of number of glands as well as for segmentation of gland area and achieves overall 93.76% accuracy for both.
机译:本文介绍了一种使用组织学图像分割结肠腺的自动化方法。在显微镜下,大肠癌的表现一直具有挑战性,因为染色和切片会导致组织标本发生变化,从而导致腺体外观发生冲突。腺体的分割和分类对于系统的自动化非常重要。提出的方法通过使用基于强度的阈值自动分割结肠组织,从而使该方法高效。与其他分割方法不同,该方法是完全自动化的,仅在目标区域内量化管腔和上皮细胞,这使该方法的计算效率很高。该方法可有效地计算腺体数量和分割腺体,两者均达到93.76%的总体准确度。

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