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Elastic Registration of Medical Images With GANs

2018-05-23
Dwarikanath Mahapatra, Suman Sedai, Rahil Garnavi

Abstract

Conventional approaches to image registration consist of time consuming iterative methods. Most current deep learning (DL) based registration methods extract deep features to use in an iterative setting. We propose an end-to-end DL method for registering multimodal images. Our approach uses generative adversarial networks (GANs) that eliminates the need for time consuming iterative methods, and directly generates the registered image with the deformation field. Appropriate constraints in the GAN cost function produce accurately registered images in less than a second. Experiments demonstrate their accuracy for multimodal retinal and cardiac MR image registration.

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URL

https://arxiv.org/abs/1805.02369

PDF

https://arxiv.org/pdf/1805.02369


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