MotionTTT: 2D Test-Time-Training Motion Estimation for 3D Motion Corrected MRI
–Neural Information Processing Systems
A major challenge of the long measurement times in magnetic resonance imaging (MRI), an important medical imaging technology, is that patients may move during data acquisition. This leads to severe motion artifacts in the reconstructed images and volumes. In this paper, we propose MotionTTT a deep learning-based test-time-training (TTT) method for accurate motion estimation. The key idea is that a neural network trained for motion-free reconstruction has a small loss if there is no motion, thus optimizing over motion parameters passed through the reconstruction network enables accurate estimation of motion. The estimated motion parameters enable to correct for the motion and to reconstruct accurate motion-corrected images.
Neural Information Processing Systems
May-26-2025, 23:52:17 GMT
- Industry:
- Health & Medicine
- Diagnostic Medicine > Imaging (0.63)
- Health Care Technology (0.63)
- Health & Medicine
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