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Spatial domain method for the design of RF pulses in multicoil parallel excitation
Magnetic resonance in medicine, 2006-09, Vol.56 (3), p.620-629
Grissom, William
Yip, Chun-yu
Zhang, Zhenghui
Stenger, V. Andrew
Fessler, Jeffrey A.
Noll, Douglas C.
2006
Volltextzugriff (PDF)
Details
Autor(en) / Beteiligte
Grissom, William
Yip, Chun-yu
Zhang, Zhenghui
Stenger, V. Andrew
Fessler, Jeffrey A.
Noll, Douglas C.
Titel
Spatial domain method for the design of RF pulses in multicoil parallel excitation
Ist Teil von
Magnetic resonance in medicine, 2006-09, Vol.56 (3), p.620-629
Ort / Verlag
Hoboken: Wiley Subscription Services, Inc., A Wiley Company
Erscheinungsjahr
2006
Quelle
Wiley Blackwell Single Titles
Beschreibungen/Notizen
Parallel excitation has been introduced as a means of accelerating multidimensional, spatially‐selective excitation using multiple transmit coils, each driven by a unique RF pulse. Previous approaches to RF pulse design in parallel excitation were either formulated in the frequency domain or restricted to echo‐planar trajectories, or both. This paper presents an approach that is formulated as a quadratic optimization problem in the spatial domain and allows the use of arbitrary k‐space trajectories. Compared to frequency domain approaches, the new design method has some important advantages. It allows for the specification of a region of interest (ROI), which improves excitation accuracy at high speedup factors. It allows for magnetic field inhomogeneity compensation during excitation. Regularization may be used to control integrated and peak pulse power. The effects of Bloch equation nonlinearity on the large‐tip‐angle excitation error of RF pulses designed with the method are investigated, and the utility of Tikhonov regularization in mitigating this error is demonstrated. Magn Reson Med, 2006. © 2006 Wiley‐Liss, Inc.
Sprache
Englisch
Identifikatoren
ISSN: 0740-3194
eISSN: 1522-2594
DOI: 10.1002/mrm.20978
Titel-ID: cdi_proquest_miscellaneous_68810107
Format
–
Schlagworte
Algorithms
,
Image Enhancement - instrumentation
,
Image Enhancement - methods
,
Image Interpretation, Computer-Assisted - instrumentation
,
Image Interpretation, Computer-Assisted - methods
,
large-tip-angle excitation
,
Magnetic Resonance Imaging - instrumentation
,
Magnetic Resonance Imaging - methods
,
parallel excitation
,
pulse design
,
Radio Waves
,
Reproducibility of Results
,
selective excitation
,
Sensitivity and Specificity
,
Signal Processing, Computer-Assisted
,
Transducers
,
transmit SENSE
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