DeepNeuro: an open-source deep learning toolbox for neuroimaging

被引:0
|
作者
Andrew Beers
James Brown
Ken Chang
Katharina Hoebel
Jay Patel
K. Ina Ly
Sara M. Tolaney
Priscilla Brastianos
Bruce Rosen
Elizabeth R. Gerstner
Jayashree Kalpathy-Cramer
机构
[1] Massachusetts General Hospital,Athinoula A. Martinos Center for Biomedical Imaging
[2] Dana-Farber Cancer Institute,Department of Medical Oncology
[3] Massachusetts General Hospital,Division of Neuro
[4] Harvard Medical School,Oncology
来源
Neuroinformatics | 2021年 / 19卷
关键词
Neuroimaging; Deep learning; Preprocessing; Augmentation; Docker;
D O I
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中图分类号
学科分类号
摘要
Translating deep learning research from theory into clinical practice has unique challenges, specifically in the field of neuroimaging. In this paper, we present DeepNeuro, a Python-based deep learning framework that puts deep neural networks for neuroimaging into practical usage with a minimum of friction during implementation. We show how this framework can be used to design deep learning pipelines that can load and preprocess data, design and train various neural network architectures, and evaluate and visualize the results of trained networks on evaluation data. We present a way of reproducibly packaging data pre- and postprocessing functions common in the neuroimaging community, which facilitates consistent performance of networks across variable users, institutions, and scanners. We show how deep learning pipelines created with DeepNeuro can be concisely packaged into shareable Docker and Singularity containers with user-friendly command-line interfaces.
引用
收藏
页码:127 / 140
页数:13
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