A deep learning model for breast ductal carcinoma in situ classification in whole slide images

被引:17
|
作者
Kanavati, Fahdi [1 ]
Ichihara, Shin [2 ]
Tsuneki, Masayuki [1 ]
机构
[1] Medmain Inc, Medmain Res, Chuo Ku, 2-4-5-104 Akasaka, Fukuoka, Fukuoka 8100042, Japan
[2] Sapporo Kosei Gen Hosp, Dept Surg Pathol, Chuo Ku, 8-5 Kita 3 Jo Higashi, Sapporo, Hokkaido 0600033, Japan
关键词
Deep learning; Ductal carcinoma in situ; Invasive ductal carcinoma; Whole slide image; INTERNATIONAL EXPERT CONSENSUS; CORE BIOPSY; DIAGNOSTIC-ACCURACY; SCLEROSING ADENOSIS; APOCRINE LESIONS; PRIMARY THERAPY; CANCER; BENIGN; IMMUNOHISTOCHEMISTRY; CONSISTENCY;
D O I
10.1007/s00428-021-03241-z
中图分类号
R36 [病理学];
学科分类号
100104 ;
摘要
The pathological differential diagnosis between breast ductal carcinoma in situ (DCIS) and invasive ductal carcinoma (IDC) is of pivotal importance for determining optimum cancer treatment(s) and clinical outcomes. Since conventional diagnosis by pathologists using microscopes is limited in terms of human resources, it is necessary to develop new techniques that can rapidly and accurately diagnose large numbers of histopathological specimens. Computational pathology tools which can assist pathologists in detecting and classifying DCIS and IDC from whole slide images (WSIs) would be of great benefit for routine pathological diagnosis. In this paper, we trained deep learning models capable of classifying biopsy and surgical histopathological WSIs into DCIS, IDC, and benign. We evaluated the models on two independent test sets (n= 1382, n= 548), achieving ROC areas under the curves (AUCs) up to 0.960 and 0.977 for DCIS and IDC, respectively.
引用
收藏
页码:1009 / 1022
页数:14
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