Field Strength in Neuro-MR Imaging
- 1 July 1990
- journal article
- research article
- Published by Wolters Kluwer Health in Journal of Computer Assisted Tomography
- Vol. 14 (4) , 505-513
- https://doi.org/10.1097/00004728-199007000-00002
Abstract
A study was undertaken comparing neurological magnetic resonance imaging at high (1.5 T) and mid (0.5 T) field strengths. Twenty-eight patients (20 head and 8 spine) from our routine case load volunteered to undergo two consecutive and identical MR studies on the two systems. The two MR systems were built by the same manufacturer and were equipped with essentially identical hardware and software. Individual patient studies were performed consecutively in adjacent MR suites, and pulse sequence parameters were replicated exactly at the two field strengths. One exception to this rule was that the second echo of the long TR sequence in the head was acquired with a narrow receiver bandwidth on the 0.5 T system. The resulting axial double echo long repetition time (TR) and sagittal short TR head images and sagittal short and double echo long TR spine images were graded by two blinded observers (senior staff neuroradiologists) on two levels. First, the images were graded for image quality, i.e., conspicuousness of artifacts and clarity in depiction of normal and pathologic anatomy. Second, diagnostic accuracy of MR was assessed relative to the clinical-pathologic diagnosis in each case. The image quality of the 1.5 T system was rated superior in both the head and spine for most specific items assessed. This observer preference for 1.5 T images did not, however, translate into greater diagnostic accuracy for the 1.5 T system in the head. Although the 1.5 T system did have a slight advantage in diagnostic accuracy in the spine, a significant difference was not found.This publication has 12 references indexed in Scilit:
- NMR Relaxation Times of BloodJournal of Computer Assisted Tomography, 1987
- The field dependence of NMR imaging. II. Arguments concerning an optimal field strengthMagnetic Resonance in Medicine, 1986
- Hydrogen MR imaging of the head at 0.35 T and 0.7 T: effects of magnetic field strength.Radiology, 1985
- Central nervous system high-resolution magnetic resonance imaging: effect of increasing spatial resolution on resolving power.Radiology, 1985
- Cerebral magnetic resonance: comparison of high and low field strength imaging.Radiology, 1984
- Magnetic resonance imaging of pituitary lesions using 1.0 to 1.5 T field strength.Radiology, 1984
- Magnetic resonance imaging: effects of magnetic field strength.Radiology, 1984
- Nuclear magnetic resonance imaging: contrast-to-noise ratio as a function of strength of magnetic fieldAmerican Journal of Roentgenology, 1983
- Nuclear magnetic resonance whole-body imager operating at 3.5 KGauss.Radiology, 1982
- RF magnetic field penetration, phase shift and power dissipation in biological tissue: implications for NMR imagingPhysics in Medicine & Biology, 1978