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SVoRT: Iterative Transformer for Slice-to-Volume Registration in Fetal Brain MRI

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arxiv 2206.10802 v1 pith:647TEMS7 submitted 2022-06-22 eess.IV cs.CV

SVoRT: Iterative Transformer for Slice-to-Volume Registration in Fetal Brain MRI

classification eess.IV cs.CV
keywords registrationslice-to-volumeslicesdatafetalmodelreconstructionimprove
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Volumetric reconstruction of fetal brains from multiple stacks of MR slices, acquired in the presence of almost unpredictable and often severe subject motion, is a challenging task that is highly sensitive to the initialization of slice-to-volume transformations. We propose a novel slice-to-volume registration method using Transformers trained on synthetically transformed data, which model multiple stacks of MR slices as a sequence. With the attention mechanism, our model automatically detects the relevance between slices and predicts the transformation of one slice using information from other slices. We also estimate the underlying 3D volume to assist slice-to-volume registration and update the volume and transformations alternately to improve accuracy. Results on synthetic data show that our method achieves lower registration error and better reconstruction quality compared with existing state-of-the-art methods. Experiments with real-world MRI data are also performed to demonstrate the ability of the proposed model to improve the quality of 3D reconstruction under severe fetal motion.

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  1. PRIME-SVR: Physics-infoRmed Implicit Multi-Echo Slice-to-Volume Reconstruction for Fetal T2 mapping

    physics.med-ph 2026-07 conditional novelty 6.0

    A self-supervised, physics-regularized neural reconstruction produces high-resolution fetal brain T2 maps at 0.55 T and 1.5 T from multi-echo MRI, with reduced acquisition time.