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Multiple motion encoding in phase-contrast MRI: A general theory and application to elastography imaging
Institution:1. Institute of Medical Informatics, Charité - Universitätsmedizin Berlin, Corporate Member of Freie Universität Berlin, Humboldt-Universitt zu Berlin, and Berlin Institute of Health, Berlin, 10117, Germany;2. Center for Mathematical Modeling, Universidad de Chile, Santiago, 8370456, Chile;3. Department of Mathematical Engineering, Universidad de Chile, Santiago, 8370456, Chile;4. ANID – Millennium Nucleus in Cardiovascular Magnetic Resonance, Santiago, 7820436, Chile;5. ANID – Millenium Nucleus in Applied Control and Inverse Problems ACIP, Santiago, 7820436, Chile;6. Biomedical Imaging Center, Pontificia Universidad Católica de Chile, Santiago, 7820436, Chile;7. Bernoulli Institute, University of Groningen, Groningen, 9747AG, the Netherlands
Abstract:While MRI allows to encode the motion of tissue in the magnetization’s phase, it remains yet a challenge to obtain high fidelity motion images due to wraps in the phase for high encoding efficiencies. Therefore, we propose an optimal multiple motion encoding method (OMME) and exemplify it in Magnetic Resonance Elastography (MRE) data. OMME is formulated as a non-convex least-squares problem for the motion using an arbitrary number of phase-contrast measurements with different motion encoding gradients (MEGs). The mathematical properties of OMME are proved in terms of standard deviation and dynamic range of the motion’s estimate for arbitrary MEGs combination which are confirmed using synthetically generated data. OMME’s performance is assessed on MRE data from in vivo human brain experiments and compared to dual encoding strategies. The unwrapped images are further used to reconstruct stiffness maps and compared to the ones obtained using conventional unwrapping methods. OMME allowed to successfully combine several MRE phase images with different MEGs, outperforming dual encoding strategies in either motion-to-noise ratio (MNR) or number of successfully reconstructed voxels with good noise stability. This lead to stiffness maps with greater resolution of details than obtained with conventional unwrapping methods. The proposed OMME method allows for a flexible and noise robust increase in the dynamic range and thus provides wrap-free phase images with high MNR. In MRE, the method may be especially suitable when high resolution images with high MNR are needed.
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