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Improved Precision in the Measurement of Longitudinal Global and Regional Volumetric Changes via a Novel MRI Gradient Distortion Characterization and Correction Technique

机译:通过新颖的MRI梯度失真表征和校正技术来改善纵向全球和区域体积变化的测量精度

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Reducing measurement variability in MRI-based morphometric analysis of human brain structures will increase statistical power to detect changes between groups and longitudinally over time in individual subjects. One source of measurement error in anatomical MR is magnetic field gradient-induced geometric distortion. This work proposes a method to characterize and compensate for these distortions using a novel image processing technique relying on the image acquisition of a phantom with known geometrical dimensions, without the need to acquire the magnetic field mapping. The method is not specific to any particular shape of the phantom, as long as it provides enough coverage of the volume of interest and enough structure to densely sample the distortion field. The distortions are expressed in terms of spherical harmonic functions, which are then used to define the distortion correction field for the volume of interest. Accuracy of the distortion measurement was evaluated using numerical simulation and reproducibility was estimated using multiple scans of the phantom in the same scanner. Finally, scan-rescan experiments with nine healthy subjects demonstrated that 90% of the distortion (in terms of local volume change) can be corrected with this technique.
机译:降低人脑结构的MRI的性形状分析中的测量变异性将增加统计学力,以检测各个受试者中群体之间的变化和纵向时间。解剖MR中的一个测量误差源是磁场梯度引起的几何失真。该工作提出了一种使用依赖于具有已知几何尺寸的幻像的图像获取的新颖图像处理技术来表征和补偿这些失真的方法,而不需要获取磁场映射。该方法没有特定于幻象的任何特定形状,只要它提供足够的兴趣体积和足够的结构来密集地对抗场的覆盖率。以球形谐波函数表示扭曲,然后用于为感兴趣的体积定义失真校正场。使用数值模拟评估失真测量的精度,并使用同一扫描仪中的幻像的多次扫描估计重现性。最后,用九个健康受试者的扫描重新扫描实验证明了90%的畸变(在局部体积变化方面)可以用这种技术校正。

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