Reduction of partial‐volume artifacts with zero‐filled interpolation in three‐dimensional MR angiography
- 1 September 1994
- journal article
- research article
- Published by Wiley in Journal of Magnetic Resonance Imaging
- Vol. 4 (5) , 733-741
- https://doi.org/10.1002/jmri.1880040517
Abstract
Partial-volume artifacts reduce vessel contrast and continuity (especially in small vessels) in magnetic resonance (MR angiography. The authors applied zero-filled (band-limited) interpolation to three-dimensional (3D) MR angiograms to reduce partial-volume artifacts. They demonstrated that zero-filled interpolation can also be implemented by means of voxel shifting in real space. Voxel-shifted interpolation is much less computer memory intensive than conventional zero-filled interpolation. They numerically simulated the contrast loss due to partial-volume artifacts and contrast recovery obtained with zero-filled interpolation. Zero-filled interpolation in all three orthogonal directions was applied to 3D MR angiography data sets from 29 human studies. These studies were obtained with the three commonly used 3D MR angiography techniques: 3D time of flight, multislab 3D time of flight, and 3D phase contrast. A substantial improvement in vessel contrast and vessel continuity was observed in all cases.Keywords
This publication has 7 references indexed in Scilit:
- Contrast-to-Noise-Ratio Measurements in Three-Dimensional Magnetic Resonance AngiographyInvestigative Radiology, 1993
- Impact of section doubling on MR angiography.Radiology, 1992
- Simultaneous acquisition of phase‐contrast angiograms and stationary‐tissue images with Hadamard encoding of flow‐induced phase shiftsJournal of Magnetic Resonance Imaging, 1991
- MR angiography by multiple thin slab 3D acquisitionMagnetic Resonance in Medicine, 1991
- Applications of Voxel Shifting in Magnetic Resonance ImagingInvestigative Radiology, 1990
- Signal‐to‐noise efficiency in magnetic resonance imagingMedical Physics, 1990
- Principles of computer assisted tomography (CAT) in radiographic and radioisotopic imagingPhysics in Medicine & Biology, 1976