基于准监督学习算法的组织学图像癌变纹理自动分类

Devrim Önder, S. Sarıoğlu, Bilge Karaçali
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引用次数: 3

摘要

本工作的目的是使用准监督统计学习方法对健康和癌症条件下的组织学切片图像进行自动纹理分类。从人结肠组织切片中获取组织图像,按正常和病变情况分为两组。利用共现矩阵计算每张图像组织段对应的纹理特征向量。利用正常组和癌组的纹理特征,采用准监督统计学习方法确定不同的纹理区域。
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Automated classification of cancerous textures in histology images using quasi-supervised learning algorithm
The aim of this work is to perform automated texture classification of histology slide images in health and cancerous conditions using quasi-supervised statistical learning method. Tissue images were acquired from histological slides of human colon and were separated into two groups in terms of normal and disease conditions. Texture feature vectors corresponding to tissue segments of each image were calculated using co-occurrence matrices. Different texture regions were determined by the quasi-supervised statistical learning method using texture features of normal and cancerous groups.
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