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Generalizing Deep Learning MRI Reconstruction across Different Domains

31 January 2019
O. Cheng
Jo Schlemper
C. Biffi
Gavin Seegoolam
Jose Caballero
Anthony N. Price
Joseph V. Hajnal
Daniel Rueckert
    OOD
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Abstract

We look into robustness of deep learning based MRI reconstruction when tested on unseen contrasts and organs. We then propose to generalise the network by training with large publicly-available natural image datasets with synthesised phase information to achieve high cross-domain reconstruction performance which is competitive with domain-specific training. To explain its generalisation mechanism, we have also analysed patch sets for different training datasets.

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