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Deep learning-based six-type classifier for lung cancer and mimics from histopathological whole slide images: a retrospective study.

Huan YangLili ChenZhiqiang ChengMinglei YangJianbo WangChenghao LinYuefeng WangLeilei HuangYangshan ChenSui PengZunfu KeWeizhong Li
Published in: BMC medicine (2021)
Multi-cohort testing demonstrated our six-type classifier achieved consistent and comparable performance to experienced pathologists and gained advantages over other existing computational methods. The visualization of prediction heatmap improved the model interpretability intuitively. The classifier with the threshold-based tumour-first label inferencing method exhibited excellent accuracy and feasibility in classifying lung cancers and confused nonneoplastic tissues, indicating that deep learning can resolve complex multi-class tissue classification that conforms to real-world histopathological scenarios.
Keyphrases
  • deep learning
  • convolutional neural network
  • artificial intelligence
  • machine learning
  • climate change
  • gene expression