TEDS-Net: enforcing diffeomorphisms in spatial transformers to guarantee topology preservation in segmentations

Accurate topology is key when performing meaningful anatomical segmentations, however, it is often overlooked in traditional deep learning methods. In this work we propose TEDS-Net: a novel segmentation method that guarantees accurate topology. Our method is built upon a continuous diffeomorphic fra...

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Bibliografiska uppgifter
Huvudupphovsmän: Wyburd, MK, Jenkinson, M, Dinsdale, NK, Namburete, AIL
Materialtyp: Conference item
Språk:English
Publicerad: Springer 2021