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Published on: May 2, 2014
A nonmagnetic micropositioner for displacement measurement validation in the MRI environment
William Ryan Willoughby1, Mark Bolding2
1Department of Radiology, Heersink School of Medicine, The University of Alabama at Birmingham, Birmingham, AL, USA. wwilloughby@uab.edu.
Objective:
The purpose of this study was to implement a nonmagnetic micropositioner in the MRI environment to validate displacement estimates of magnetic resonance acoustic radiation force imaging (MR-ARFI).
Methods:
The micropositioner consisted of a stage driven by a piezoelectric stepper motor in closed-loop operation with an optical quadrature encoder. A 100-gram agar gel phantom was prepared, and three MR-ARFI pulse sequences were used to generate displacement maps. MR-ARFI measured displacements were compared to ground truth data from the optical encoder.
Results:
The micropositioner demonstrated consistent performance with positioning times of ms for extension and ms for return to baseline position. The micropositioner decreased the signal-to-noise ratio of magnitude images due to increased electronic noise. Linear regression analysis showed that displacement measurements were highly linear with but exhibited scaling biases that may have been due to the experimental setup.
Conclusion:
The proposed instrument can potentially improve the accuracy and precision of MR-ARFI-based applications, including focused ultrasound dosimetry and mechanical biomarker imaging.

