Parallel imaging with phase scrambling.

Détails

ID Serval
serval:BIB_6EE586DD208C
Type
Article: article d'un périodique ou d'un magazine.
Collection
Publications
Institution
Titre
Parallel imaging with phase scrambling.
Périodique
Magnetic Resonance In Medicine
Auteur⸱e⸱s
Zaitsev M., Schultz G., Hennig J., Gruetter R., Gallichan D.
ISSN
1522-2594 (Electronic)
ISSN-L
0740-3194
Statut éditorial
Publié
Date de publication
04/2015
Peer-reviewed
Oui
Volume
73
Numéro
4
Pages
1407-1419
Langue
anglais
Notes
Publication types: JOURNAL ARTICLE
Résumé
PURPOSE: Most existing methods for accelerated parallel imaging in MRI require additional data, which are used to derive information about the sensitivity profile of each radiofrequency (RF) channel. In this work, a method is presented to avoid the acquisition of separate coil calibration data for accelerated Cartesian trajectories.
METHODS: Quadratic phase is imparted to the image to spread the signals in k-space (aka phase scrambling). By rewriting the Fourier transform as a convolution operation, a window can be introduced to the convolved chirp function, allowing a low-resolution image to be reconstructed from phase-scrambled data without prominent aliasing. This image (for each RF channel) can be used to derive coil sensitivities to drive existing parallel imaging techniques. As a proof of concept, the quadratic phase was applied by introducing an offset to the x(2) - y(2) shim and the data were reconstructed using adapted versions of the image space-based sensitivity encoding and GeneRalized Autocalibrating Partially Parallel Acquisitions algorithms.
RESULTS: The method is demonstrated in a phantom (1 × 2, 1 × 3, and 2 × 2 acceleration) and in vivo (2 × 2 acceleration) using a 3D gradient echo acquisition.
CONCLUSION: Phase scrambling can be used to perform parallel imaging acceleration without acquisition of separate coil calibration data, demonstrated here for a 3D-Cartesian trajectory. Further research is required to prove the applicability to other 2D and 3D sampling schemes. Magn Reson Med, 2014. © 2014 Wiley Periodicals, Inc.
Pubmed
Web of science
Création de la notice
23/04/2014 10:45
Dernière modification de la notice
20/08/2019 15:28
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