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  3. Linear and Deformable Image Registration with 3D Convolutional Neural Networks
 

Linear and Deformable Image Registration with 3D Convolutional Neural Networks

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BORIS DOI
10.48350/120026
Publisher DOI
10.1007/978-3-030-00946-5_2
Description
Image registration and in particular deformable registration methods are pillars of medical imaging. Inspired by the recent advances in deep learning, we propose in this paper, a novel convolutional neural network architecture that couples linear and deformable registration within a unified architecture endowed with near real-time performance. Our framework is modular with respect to the global transformation component, as well as with respect to the similarity function while it guarantees smooth displacement fields. We evaluate the performance of our network on the challenging problem of MRI lung registration, and demonstrate superior performance with respect to state of the art elastic registration methods. The proposed deformation (between inspiration & expiration) was considered within a clinically relevant task of interstitial lung disease (ILD) classification and showed promising results.
Date of Publication
2018-09
Publication Type
Conference Item
Subject(s)
600 Technology > 610 Medicine & health
600 Technology > 620 Engineering
Language(s)
en
Contributor(s)
Christodoulidis, Stergios
ARTORG Center - Diabetes Technology
Sahasrabudhe, Mihir
Vakalopoulou, Maria
Chassagnon, Guillaume
Revel, Marie-Pierre
Mougiakakou, Stavroula
ARTORG Center - Diabetes Technology
Paragios, Nikos
Additional Credits
ARTORG Center - Diabetes Technology
Publisher
Springer, Cham
ISBN
978-3-030-00946-5
Title of Event
21st International Conference on Medical Image Computing and Computer Assisted Intervention (MICCAI2018)
Access(Rights)
restricted
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