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Signal-to-noise ratio comparison of encoding methods for hyperpolarized noble gas MRISome non-Fourier encoding methods such as wavelet and direct encoding use spatially localized bases. The spatial localization feature of these methods enables optimized encoding for improved spatial and temporal resolution during dynamically adaptive MR imaging. These spatially localized bases, however, have inherently reduced image signal-to-noise ratio compared with Fourier or Hadamad encoding for proton imaging. Hyperpolarized noble gases, on the other hand, have quite different MR properties compared to proton, primarily the nonrenewability of the signal. It could be expected, therefore, that the characteristics of image SNR with respect to encoding method will also be very different from hyperpolarized noble gas MRI compared to proton MRI. In this article, hyperpolarized noble gas image SNRs of different encoding methods are compared theoretically using a matrix description of the encoding process. It is shown that image SNR for hyperpolarized noble gas imaging is maximized for any orthonormal encoding method. Methods are then proposed for designing RF pulses to achieve normalized encoding profiles using Fourier, Hadamard, wavelet, and direct encoding methods for hyperpolarized noble gases. Theoretical results are confirmed with hyperpolarized noble gas MRI experiments. Copyright 2001 Academic Press.
Document ID
20040112534
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Zhao, L.
(Brigham and Women's Hospital 75 Francis Street, Boston, Massachusetts 02115, United States)
Venkatesh, A. K.
Albert, M. S.
Panych, L. P.
Date Acquired
August 21, 2013
Publication Date
February 1, 2001
Publication Information
Publication: Journal of magnetic resonance (San Diego, Calif. : 1997)
Volume: 148
Issue: 2
ISSN: 1090-7807
Subject Category
Life Sciences (General)
Funding Number(s)
CONTRACT_GRANT: HL57563
CONTRACT_GRANT: R29-CA70314
Distribution Limits
Public
Copyright
Other
Keywords
Non-NASA Center
NASA Discipline Life Sciences Technologies

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