Title :
A generalized series approach to MR spectroscopic imaging
Author :
Liang, Zhi-Pei ; Lauterbur, Paul C.
Author_Institution :
Biomed. Magnetic Resonance Lab., Ilinois Univ., Urbana, IL, USA
fDate :
6/1/1991 12:00:00 AM
Abstract :
The problem of precise spatial localization of spectral information in magnetic resonance (MR) spectroscopic imaging is addressed. A novel method, called GSLIM (generalized spectral location by imaging), is proposed to make possible the marriage of high-resolution proton imaging with spectroscopic imaging and localization. This method improves on the conventional Fourier series inversion method used in chemical shift imaging (CSI) and the compartmental modeling method used in SLIM by using a generalized series framework for optimal representation of the spectral function. In this way, a priori information extracted from proton imaging can be used, as in SLIM, and the robustness and data consistency of CSI are also retained. Simulation results show that GSLIM can significantly reduce spectral leakage in CSI and inhomogeneity errors in SLIM. It can also reveal compartmental inhomogeneities, and can easily be extended to handle other a priori constraints when necessary. This approach, with some further development, may achieve an optimal combination of sensitivity, quantitative accuracy, speed, and flexibility for in vivo spectroscopy
Keywords :
biomedical NMR; nuclear magnetic resonance spectroscopy; Fourier series inversion method; MR spectroscopic imaging; a priori constraints; chemical shift imaging; compartmental inhomogeneities; data consistency; generalized series approach; generalized spectral location by imaging; high-resolution proton imaging; in vivo spectroscopy; inhomogeneity errors; spectral leakage; Chemicals; Data mining; Fourier series; High-resolution imaging; In vivo; Magnetic resonance; Magnetic resonance imaging; Protons; Robustness; Spectroscopy;
Journal_Title :
Medical Imaging, IEEE Transactions on