Title :
Multi-dimensional flow-adapted compressed sensing (MDFCS) for time-resolved velocity-encoded Phase Contrast MRA
Author :
Hutter, Jana ; Grimm, Robert ; Forman, Christoph ; Greiser, Andreas ; Hornegger, Joachim ; Schmitt, Peter
Author_Institution :
Pattern Recognition Lab., Friedrich-Alexander-Univ. Erlangen-Nuernberg, Erlangen, Germany
Abstract :
4D time-resolved velocity-encoded Phase-Contrast MRI (t-v PC MRI) is a fully non-invasive technique to assess hemodynamics in-vivo and can thus be extremely helpful in diagnosis and treatment planning. A common drawback of 4D acquisitions with high spatial and temporal resolution is the long acquisition time, which still inhibits the wider clinical use of such exams. Since a certain degree of data redundancy or sparsity can be expected in temporal as well as in velocity encoding direction, the combination of recently proposed Compressed Sensing techniques with t-v PC MRI might be promising. In this work, a Multi-Dimensional Flow-Adapted compressed Sensing (MDFCS) method is presented, which aims at exploiting these properties by using a dedicated incoherent data acquisition pattern as well as a temporal regularization term. Acceleration factors of up to 7.3 were reached while image quality was preserved. While non-regularized iterative reconstruction led to a drop of 42.8% ± 7.5% in Contrast-to-Noise compared to the fully sampled reference, the proposed MDFCS method was able to achieve values of 90.5% ± 12.2% and to reproduce the flow curve behavior with high accuracy.
Keywords :
biomedical MRI; compressed sensing; data acquisition; haemodynamics; image coding; iterative methods; medical image processing; spatiotemporal phenomena; 4D time-resolved velocity-encoded phase-contrast MRI; MDFCS method; acceleration factor; contrast-to-noise; data redundancy; data sparsity; flow curve behavior; hemodynamic assessement; image quality; incoherent data acquisition pattern; magnetic resonance imaging; multidimensional flow-adapted compressed sensing method; nonregularized iterative reconstruction; spatial resolution; temporal regularization term; temporal resolution; Acceleration; Blood; Compressed sensing; Encoding; Image reconstruction; Magnetic resonance imaging; Compressed Sensing; Hemodynamics; Magnetic Resonance Imaging; Phase Contrast MRI;
Conference_Titel :
Biomedical Imaging (ISBI), 2013 IEEE 10th International Symposium on
Conference_Location :
San Francisco, CA
Print_ISBN :
978-1-4673-6456-0
DOI :
10.1109/ISBI.2013.6556400