English

Physics-Aware Motion Simulation for T2*-Weighted Brain MRI

Image and Video Processing 2023-10-17 v2

Abstract

In this work, we propose a realistic, physics-aware motion simulation procedure for T2*-weighted magnetic resonance imaging (MRI) to improve learning-based motion correction. As T2*-weighted MRI is highly sensitive to motion-related changes in magnetic field inhomogeneities, it is of utmost importance to include physics information in the simulation. Additionally, current motion simulations often only assume simplified motion patterns. Our simulations, on the other hand, include real recorded subject motion and realistic effects of motion-induced magnetic field inhomogeneity changes. We demonstrate the use of such simulated data by training a convolutional neural network to detect the presence of motion in affected k-space lines. The network accurately detects motion-affected k-space lines for simulated displacements down to \geq 0.5mm (accuracy on test set: 92.5%). Finally, our results demonstrate exciting opportunities of simulation-based k-space line detection combined with more powerful reconstruction methods.

Keywords

Cite

@article{arxiv.2303.10987,
  title  = {Physics-Aware Motion Simulation for T2*-Weighted Brain MRI},
  author = {Hannah Eichhorn and Kerstin Hammernik and Veronika Spieker and Samira M. Epp and Daniel Rueckert and Christine Preibisch and Julia A. Schnabel},
  journal= {arXiv preprint arXiv:2303.10987},
  year   = {2023}
}

Comments

Submitted to SASHIMI: Simulation and Synthesis in Medical Imaging Workshop, associated with MICCAI 2023

R2 v1 2026-06-28T09:23:49.717Z