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Segmentation of Sinusoids in Hematoxylin and Eosin Stained Liver Specimens Using an Orientation-Selective Filter

机译:使用方向选择过滤器对苏木精和曙红染色的肝标本中的正弦曲线进行分割

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The liver comprises cell layers of hepatocytes called trabeculae, which are separated by vascular sinusoids. Under- standing the structure of hepatic trabeculae and liver sinusoids in hematoxylin and eosin (HE)-stained liver specimens is important for the differential diagnosis of liver diseases. In this study, we develop an approach to extracting liver sinusoids from HE-stained images. The proposed approach involves: 1) a new orientation-selective filter (OS filter) for edge enhancement and image denoising, 2) the clustering of image pixels to identify candidate sinusoids, and 3) a classification procedure that discards unlikely candidates and selects the final sinusoid areas. Experimental studies using a database of 16 images with a resolution of 512 × 512 pixels showed that the proposed approach could segment liver sinusoid pixels with 81% of specificity and 94% of sensitivity. A comparison with a method based on bilateral filters showed that this method improved the sensitivity for all images with an average improvement of 4% and no difference in specificity. The results were presented to a group of pathologists and they confirmed that the images were highly representative of the tissue morphology features.
机译:肝脏包括称为小梁的肝细胞细胞层,它们被血管正弦波隔开。了解苏木精和曙红(HE)染色的肝标本中的肝小梁和肝正弦曲线的结构对于肝病的鉴别诊断很重要。在这项研究中,我们开发了一种从HE染色图像中提取肝窦的方法。所提出的方法包括:1)用于边缘增强和图像去噪的新方向选择滤波器(OS滤波器); 2)图像像素的聚类以识别候选正弦波;以及3)分类程序,该方法将不太可能的候选者丢弃并选择最终的候选者。正弦区域。使用包含16个分辨率为512×512像素的图像的数据库进行的实验研究表明,该方法可以以81%的特异性和94%的敏感性对肝正弦像素进行分割。与基于双边滤镜的方法的比较表明,该方法提高了所有图像的灵敏度,平均提高了4%,并且特异性没有差异。结果被提交给一组病理学家,他们证实了这些图像高度代表了组织形态特征。

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