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Multi-view Framework for Histomorphologic Classification

2020-01-25MIDL 2019Unverified0· sign in to hype

Stephanie A Harmon, Samira Masoudi, Thomas Sanford, Sherif Mehralivand, Stephanie Walker, Peter Choyke, Brad Wood, Peter Pinto, Jesse McKenney, Baris Turkbey

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Abstract

Current routine histopathologic evaluation of prostate cancer does not fully account for some individual morphology patterns associated with poor outcome. Pathologists evaluate and score morphology across multiple magnifications, motivating deep learning methods to incorporate various resolutions. We have evaluated a proof-of-concept multi-view framework to classify high risk morphology architectures that does not rely on ensemble-based techniques of multi-magnification models.

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