| Literature DB >> 22135085 |
Daeho Lee1, William A Grissom, Michael Lustig, Adam B Kerr, Pascal P Stang, John M Pauly.
Abstract
In parallel excitation, the computational speed of numerical radiofrequency (RF) pulse design methods is critical when subject dependencies and system nonidealities need to be incorporated on-the-fly. One important concern with optimization-based methods is high peak RF power exceeding hardware or safety limits. Hence, online controllability of the peak RF power is essential. Variable-rate selective excitation pulse reshaping is ideally suited to this problem due to its simplicity and low computational cost. In this work, we first improve the fidelity of variable-rate selective excitation implementation for discrete-time waveforms through waveform oversampling such that variable-rate selective excitation can be robustly applied to numerically designed RF pulses. Then, a variable-rate selective excitation-guided numerical RF pulse design is suggested as an online RF pulse design framework, aiming to simultaneously control peak RF power and compensate for off-resonance.Entities:
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Year: 2011 PMID: 22135085 PMCID: PMC3644517 DOI: 10.1002/mrm.23010
Source DB: PubMed Journal: Magn Reson Med ISSN: 0740-3194 Impact factor: 4.668