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Automatic cancer sub-grading on digital histopathology images of radical prostatectomy specimens

机译:在前列腺癌根治术标本的数字组织病理学图像上自动分类癌症

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Automatic cancer sub-grading of radical prostatectomy (RP) specimens can support clinical studies seeking theprognostic indications of the sub-grades, and potentially benefits patient risk management and treatment planning. Wedeveloped and validated an automatic system which classifies each of nine subgrades (i.e. 4 sub-grades of Gleason grade3, 3 sub-grades of Gleason grade 4, benign intervening, and other cancerous tissue) on digital histopathology whole-slideimages (WSIs). The system was cross-validated against expert-drawn contours on a 25-patient data set comprising 92mid-gland WSIs of RP specimens. The system used a transfer learning technique by fine-tuning AlexNet to classify eachcancerous region of interest (ROI) according to sub-grade. We used leave-one-WSI-out cross-validation to measureclassifier performance. The system yielded an area under the receiver-operating characteristic curve (AUC) higher than0.8 for sub-grades of small fused Gleason 4 (G4), intermediate G3, and other cancerous tissue (AUC of 0.976); andAUCs higher than 0.7 for sub-grades of sparse G3, large cribriform G4, and desmoplastic G3.
机译:前列腺癌根治术(RP)标本的自动癌症子分级可为寻求 该子等级的预后指征,并可能有益于患者风险管理和治疗计划。我们 开发并验证了一种自动系统,该系统可对9个路基(即Gleason级的4个路基)中的每一个进行分类 数字组织病理学全幻灯片上的格里森4级,良性介入及其他癌组织的3、3个子等级 图片(WSI)。该系统针对25位患者的数据集上的专家绘制的轮廓进行了交叉验证,其中包括92个 RP标本的中腺WSI。该系统通过微调AlexNet对每个分类进行分类,从而使用了转移学习技术 根据子级别划分癌变感兴趣区域(ROI)。我们使用了留一WSI-out交叉验证来衡量 分类器性能。系统在接收器工作特性曲线(AUC)下产生的区域大于 小融合格里森4(G4),中间G3和其他癌变组织的子等级为0.8(AUC为0.976);和 稀疏G3,大型筛状G4和增塑G3的子等级的AUC高于0.7。

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