Deep Learning Based HPV Status Prediction for Oropharyngeal Cancer Patients
November 17, 2020 Β· Declared Dead Β· π Cancers
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Authors
Daniel M. Lang, Jan C. Peeken, Stephanie E. Combs, Jan J. Wilkens, Stefan Bartzsch
arXiv ID
2011.08555
Category
eess.IV: Image & Video Processing
Cross-listed
cs.CV
Citations
34
Venue
Cancers
Last Checked
6 months ago
Abstract
We investigated the ability of deep learning models for imaging based HPV status detection. To overcome the problem of small medical datasets we used a transfer learning approach. A 3D convolutional network pre-trained on sports video clips was fine tuned such that full 3D information in the CT images could be exploited. The video pre-trained model was able to differentiate HPV-positive from HPV-negative cases with an area under the receiver operating characteristic curve (AUC) of 0.81 for an external test set. In comparison to a 3D convolutional neural network (CNN) trained from scratch and a 2D architecture pre-trained on ImageNet the video pre-trained model performed best.
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