首页> 外文会议>IEEE International Symposium on Biomedical Imaging >CO-OCCURRENCE FEATURES CHARACTERIZING GLAND DISTRIBUTION PATTERNS AS NEW PROGNOSTIC MARKERS IN PROSTATE CANCER WHOLE-SLIDE IMAGES
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CO-OCCURRENCE FEATURES CHARACTERIZING GLAND DISTRIBUTION PATTERNS AS NEW PROGNOSTIC MARKERS IN PROSTATE CANCER WHOLE-SLIDE IMAGES

机译:共同发生特征将腺体分布模式表征为前列腺癌全幻灯片的新预后标志物

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Classifying whole-slide images of prostate cancer resections to derive an accurate prognosis for tumor progression is a highly challenging problem. We here introduce a novel type of high-level features which operate on the gland level for the application in computer-aided prognosis using a Tissue Phenomics approach. Since tissue architecture, and in particular, the gland distribution possibly provide information on the aggressiveness of the individual tumor, our features exploit the spatial relationship of different gland types. Glands are classified into cancerous and healthy glands, and also, into morphological classes based on size and shape. Co-occurrences of the classified glands are quantified and Haralick-like features are computed based on the derived gland co-occurrence matrices. The resulting gland co-occurrence features are mined to automatically determine the best parametrization. In experiments on whole-slide images it turned out that our novel features allow accurate stratification of patients into the prognostic groups tumor progression and non-progression outperforming clinical features. Our results indicate a strong correlation of tumor progression with invasion phenotypes.
机译:分类前列腺癌切除的全幻灯片图像衍生治疗肿瘤进展的准确预后是一个高度挑战性的问题。我们在这里介绍了一种新型的高级功能,用于使用组织表情方法在计算机辅助预后应用的腺体水平。由于组织架构,尤其是腺体分布可能提供有关个体肿瘤的侵蚀性的信息,我们的特征利用不同的腺体类型的空间关系。腺体分为癌症和健康的腺体,以及基于尺寸和形状的形态学课程。分类腺体的共同发生,并基于衍生的腺体共生发生矩阵计算类似于rAralick的特征。所产生的腺体共生发生特征被挖掘以自动确定最佳参数化。在全幻灯片上的实验中,结果证明我们的新功能允许患者准确分层进入预后群肿瘤进展和非进展优于临床特征。我们的结果表明肿瘤进展与侵袭表型强烈相关。

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