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Breast density classification with deep convolutional neural networks

10 November 2017
Nan Wu
Krzysztof J. Geras
Yiqiu Shen
Jingyi Su
S. G. Kim
Eric Kim
Stacey Wolfson
Linda Moy
Kyunghyun Cho
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Abstract

Breast density classification is an essential part of breast cancer screening. Although a lot of prior work considered this problem as a task for learning algorithms, to our knowledge, all of them used small and not clinically realistic data both for training and evaluation of their models. In this work, we explore the limits of this task with a data set coming from over 200,000 breast cancer screening exams. We use this data to train and evaluate a strong convolutional neural network classifier. In a reader study, we find that our model can perform this task comparably to a human expert.

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