Title :
Retrospective Rigid Motion Correction in k-Space for Segmented Radial MRI
Author :
Vaillant, Ghislain ; Prieto, Claudia ; Kolbitsch, Christoph ; Penney, Graeme ; Schaeffter, Tobias
Author_Institution :
Div. of Imaging Sci. & Biomed. Eng., King´s Coll. London, London, UK
Abstract :
Motion occurring during magnetic resonance imaging acquisition is a major factor of image quality degradation. Self-navigation can help reduce artefacts by estimating motion from the acquired data to enable motion correction. Popular self-navigation techniques rely on the availability of a fully-sampled motion-free reference to register the motion corrupted data with. In the proposed technique, rigid motion parameters are derived using the inherent correlation between radial segments in k-space. The registration is performed exclusively in k-space using the Phase Correlation Method, a popular registration technique in computer vision. Robust and accurate registration has been carried out from radial segments composed of as few as 32 profiles. Successful self-navigation has been performed on 2-D dynamic brain scans corrupted with continuous motion for six volunteers. Retrospective motion correction using the derived self-navigation parameters resulted in significant improvement of image quality compared to the conventional sliding window. This work also demonstrates the benefits of using a bit-reversed ordering scheme to limit undesirable effects specific to retrospective motion correction on radial trajectories. This method provides a fast and efficient mean of measuring rigid motion directly in k-space from dynamic radial data under continuous motion.
Keywords :
biomedical MRI; brain; correlation methods; image registration; medical image processing; motion compensation; motion estimation; 2D dynamic brain scan; artefact reduction; bit-reversed ordering scheme; computer vision; continuous motion; fully-sampled motion-free reference; image quality degradation; image quality improvement; k-space; magnetic resonance imaging acquisition; motion corrupted data registration; motion estimation; phase correlation method; radial segment correlation; retrospective rigid motion correction; rigid motion measurement; rigid motion parameter; segmented radial MRI; self-navigation parameter; self-navigation techniques; sliding window; Biomedical image processing; Magnetic resonance imaging; Motion control; Dynamic imaging; motion correction; phase correlation; radial magnetic resonance imaging (MRI); self-navigation;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2013.2268898