A deep learning model for the classification of indeterminate lung carcinoma in biopsy whole slide images

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作者
Fahdi Kanavati
Gouji Toyokawa
Seiya Momosaki
Hiroaki Takeoka
Masaki Okamoto
Koji Yamazaki
Sadanori Takeo
Osamu Iizuka
Masayuki Tsuneki
机构
[1] Medmain Research,Department of Thoracic Surgery, Clinical Research Institute
[2] Medmain Inc.,Department of Pathology, Clinical Research Institute
[3] National Hospital Organization,Department of Respiratory Medicine, Clinical Research Institute
[4] Kyushu Medical Center,undefined
[5] National Hospital Organization,undefined
[6] Kyushu Medical Center,undefined
[7] National Hospital Organization,undefined
[8] Kyushu Medical Center,undefined
[9] Medmain Inc.,undefined
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The differentiation between major histological types of lung cancer, such as adenocarcinoma (ADC), squamous cell carcinoma (SCC), and small-cell lung cancer (SCLC) is of crucial importance for determining optimum cancer treatment. Hematoxylin and Eosin (H&E)-stained slides of small transbronchial lung biopsy (TBLB) are one of the primary sources for making a diagnosis; however, a subset of cases present a challenge for pathologists to diagnose from H&E-stained slides alone, and these either require further immunohistochemistry or are deferred to surgical resection for definitive diagnosis. We trained a deep learning model to classify H&E-stained Whole Slide Images of TBLB specimens into ADC, SCC, SCLC, and non-neoplastic using a training set of 579 WSIs. The trained model was capable of classifying an independent test set of 83 challenging indeterminate cases with a receiver operator curve area under the curve (AUC) of 0.99. We further evaluated the model on four independent test sets—one TBLB and three surgical, with combined total of 2407 WSIs—demonstrating highly promising results with AUCs ranging from 0.94 to 0.99.
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