Comprehensive processing, display and analysis for in vivo MR spectroscopic imaging
Open Access
- 8 June 2006
- journal article
- research article
- Published by Wiley in NMR in Biomedicine
- Vol. 19 (4) , 492-503
- https://doi.org/10.1002/nbm.1025
Abstract
Image reconstruction for magnetic resonance spectroscopic imaging (MRSI) requires specialized spatial and spectral data processing methods and benefits from the use of several sources of prior information that are not commonly available, including MRI‐derived tissue segmentation, morphological analysis and spectral characteristics of the observed metabolites. In addition, incorporating information obtained from MRI data can enhance the display of low‐resolution metabolite images and multiparametric and regional statistical analysis methods can improve detection of altered metabolite distributions. As a result, full MRSI processing and analysis can involve multiple processing steps and several different data types. In this paper, a processing environment is described that integrates and automates these data processing and analysis functions for imaging of proton metabolite distributions in the normal human brain. The capabilities include normalization of metabolite signal intensities and transformation into a common spatial reference frame, thereby allowing the formation of a database of MR‐measured human metabolite values as a function of acquisition, spatial and subject parameters. This development is carried out under the MIDAS project (Metabolite Imaging and Data Analysis System), which provides an integrated set of MRI and MRSI processing functions. It is anticipated that further development and distribution of these capabilities will facilitate more widespread use of MRSI for diagnostic imaging, encourage the development of standardized MRSI acquisition, processing and analysis methods and enable improved mapping of metabolite distributions in the human brain. Copyright © 2006 John Wiley & Sons, Ltd.Keywords
This publication has 35 references indexed in Scilit:
- Fast method for longitudinal relaxation time and water content mapping of the human brain on a clinical MR scannerActa Neurochirurgica, 2004
- Novel methodology for the archiving and interactive reading of clinical magnetic resonance spectroscopic imagingMagnetic Resonance in Medicine, 2002
- Estimating Tissue Deformation between Functional Images Induced by Intracranial Electrode Implantation Using Anatomical MRINeuroImage, 2001
- Use of magnetic resonance imaging for in vivo measurements of water content in human brain: method and normal valuesJournal of Neurosurgery, 1999
- An overlap invariant entropy measure of 3D medical image alignmentPattern Recognition, 1999
- Volumetric spectroscopic imaging with spiral‐based k‐space trajectoriesMagnetic Resonance in Medicine, 1998
- In vivo proton magnetic resonance spectroscopy of the normal aging human brainLife Sciences, 1996
- Self‐correction of proton spectroscopic images for gradient eddy current distortions and static field inhomogeneitiesMagnetic Resonance in Medicine, 1993
- Locally Weighted Regression: An Approach to Regression Analysis by Local FittingJournal of the American Statistical Association, 1988
- Empirical Model-Building and Response Surfaces.Journal of the American Statistical Association, 1988