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Wavelet Domain Radiofrequency Pulse Design Applied to Magnetic Resonance Imaging

A new method for designing radiofrequency (RF) pulses with numerical optimization in the wavelet domain is presented. Numerical optimization may yield solutions that might otherwise have not been discovered with analytic techniques alone. Further, processing in the wavelet domain reduces the number...

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Autores principales: Huettner, Andrew M., Mickevicius, Nikolai J., Ersoz, Ali, Koch, Kevin M., Muftuler, L. Tugan, Nencka, Andrew S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4627821/
https://www.ncbi.nlm.nih.gov/pubmed/26517262
http://dx.doi.org/10.1371/journal.pone.0141151
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author Huettner, Andrew M.
Mickevicius, Nikolai J.
Ersoz, Ali
Koch, Kevin M.
Muftuler, L. Tugan
Nencka, Andrew S.
author_facet Huettner, Andrew M.
Mickevicius, Nikolai J.
Ersoz, Ali
Koch, Kevin M.
Muftuler, L. Tugan
Nencka, Andrew S.
author_sort Huettner, Andrew M.
collection PubMed
description A new method for designing radiofrequency (RF) pulses with numerical optimization in the wavelet domain is presented. Numerical optimization may yield solutions that might otherwise have not been discovered with analytic techniques alone. Further, processing in the wavelet domain reduces the number of unknowns through compression properties inherent in wavelet transforms, providing a more tractable optimization problem. This algorithm is demonstrated with simultaneous multi-slice (SMS) spin echo refocusing pulses because reduced peak RF power is necessary for SMS diffusion imaging with high acceleration factors. An iterative, nonlinear, constrained numerical minimization algorithm was developed to generate an optimized RF pulse waveform. Wavelet domain coefficients were modulated while iteratively running a Bloch equation simulator to generate the intermediate slice profile of the net magnetization. The algorithm minimizes the L2-norm of the slice profile with additional terms to penalize rejection band ripple and maximize the net transverse magnetization across each slice. Simulations and human brain imaging were used to demonstrate a new RF pulse design that yields an optimized slice profile and reduced peak energy deposition when applied to a multiband single-shot echo planar diffusion acquisition. This method may be used to optimize factors such as magnitude and phase spectral profiles and peak RF pulse power for multiband simultaneous multi-slice (SMS) acquisitions. Wavelet-based RF pulse optimization provides a useful design method to achieve a pulse waveform with beneficial amplitude reduction while preserving appropriate magnetization response for magnetic resonance imaging.
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spelling pubmed-46278212015-11-06 Wavelet Domain Radiofrequency Pulse Design Applied to Magnetic Resonance Imaging Huettner, Andrew M. Mickevicius, Nikolai J. Ersoz, Ali Koch, Kevin M. Muftuler, L. Tugan Nencka, Andrew S. PLoS One Research Article A new method for designing radiofrequency (RF) pulses with numerical optimization in the wavelet domain is presented. Numerical optimization may yield solutions that might otherwise have not been discovered with analytic techniques alone. Further, processing in the wavelet domain reduces the number of unknowns through compression properties inherent in wavelet transforms, providing a more tractable optimization problem. This algorithm is demonstrated with simultaneous multi-slice (SMS) spin echo refocusing pulses because reduced peak RF power is necessary for SMS diffusion imaging with high acceleration factors. An iterative, nonlinear, constrained numerical minimization algorithm was developed to generate an optimized RF pulse waveform. Wavelet domain coefficients were modulated while iteratively running a Bloch equation simulator to generate the intermediate slice profile of the net magnetization. The algorithm minimizes the L2-norm of the slice profile with additional terms to penalize rejection band ripple and maximize the net transverse magnetization across each slice. Simulations and human brain imaging were used to demonstrate a new RF pulse design that yields an optimized slice profile and reduced peak energy deposition when applied to a multiband single-shot echo planar diffusion acquisition. This method may be used to optimize factors such as magnitude and phase spectral profiles and peak RF pulse power for multiband simultaneous multi-slice (SMS) acquisitions. Wavelet-based RF pulse optimization provides a useful design method to achieve a pulse waveform with beneficial amplitude reduction while preserving appropriate magnetization response for magnetic resonance imaging. Public Library of Science 2015-10-30 /pmc/articles/PMC4627821/ /pubmed/26517262 http://dx.doi.org/10.1371/journal.pone.0141151 Text en © 2015 Huettner et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Huettner, Andrew M.
Mickevicius, Nikolai J.
Ersoz, Ali
Koch, Kevin M.
Muftuler, L. Tugan
Nencka, Andrew S.
Wavelet Domain Radiofrequency Pulse Design Applied to Magnetic Resonance Imaging
title Wavelet Domain Radiofrequency Pulse Design Applied to Magnetic Resonance Imaging
title_full Wavelet Domain Radiofrequency Pulse Design Applied to Magnetic Resonance Imaging
title_fullStr Wavelet Domain Radiofrequency Pulse Design Applied to Magnetic Resonance Imaging
title_full_unstemmed Wavelet Domain Radiofrequency Pulse Design Applied to Magnetic Resonance Imaging
title_short Wavelet Domain Radiofrequency Pulse Design Applied to Magnetic Resonance Imaging
title_sort wavelet domain radiofrequency pulse design applied to magnetic resonance imaging
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4627821/
https://www.ncbi.nlm.nih.gov/pubmed/26517262
http://dx.doi.org/10.1371/journal.pone.0141151
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AT kochkevinm waveletdomainradiofrequencypulsedesignappliedtomagneticresonanceimaging
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