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Correction of gradient echo images for first and second order macroscopic signal dephasing using phase derivative
1Image Sciences Institute, University Medical Center Utrecht, Utrecht, The Netherlands. hendrik@isi.uu.nl
Neuroimage
|December 14, 2011
Summary
This study introduces a new post-processing method to correct magnetic field variations in gradient echo imaging. The technique accurately compensates for phase incoherences without increasing scan time or compromising image resolution.
Area of Science:
- Magnetic Resonance Imaging (MRI)
- Medical Physics
- Image Processing
Background:
- Gradient echo (GRE) imaging is susceptible to signal dephasing caused by magnetic field inhomogeneities.
- Existing methods to correct these phase variations often require longer acquisition times, additional scans, or are limited in applicability.
- These limitations hinder the diagnostic utility of GRE techniques in the presence of field perturbations from shimming or biological tissues.
Purpose of the Study:
- To develop a universally applicable post-processing technique for evaluating and compensating signal alterations due to macroscopic phase incoherences in GRE imaging.
- To address the drawbacks of current correction methods by offering a faster and more accurate solution.
Main Methods:
- A novel post-processing technique utilizing the Fourier derivative theorem on complex MRI data.
- Determines phase derivatives directly from complex signal data without requiring phase unwrapping.
- Validated on phantom experiments with controlled magnetic field disturbances and in vivo human brain imaging.
Main Results:
- The proposed method effectively evaluates and compensates for first and second-order macroscopic phase incoherences.
- Phase derivatives are obtained without compromising spatial resolution.
- Demonstrated successful application in both single- and multi-echo GRE acquisitions, including human brain data.
Conclusions:
- The presented post-processing technique offers a generally applicable and efficient solution for correcting phase variations in GRE MRI.
- It overcomes limitations of existing methods by avoiding additional acquisitions and preserving image resolution.
- First-order correction is generally sufficient, with higher-order corrections proving beneficial near significant magnetic field gradients.
