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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Decoupled automated rotational and translational registration for functional MRI time series data: the DART registration algorithm.
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Decoupled automated rotational and translational registration for functional MRI time series data: the DART registration algorithm.

机译:功能MRI时间序列数据的解耦自动旋转和平移配准:DART配准算法。

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摘要

A rapid, in-plane image registration algorithm that accurately estimates and corrects for rotational and translational motion is described. This automated, one-pass method achieves its computational efficiency by decoupling the estimation of rotation and translation, allowing the application of rapid cross-correlation and cross-spectrum techniques for the determination of displacement parameters. k-space regridding and modulation techniques are used for image correction as alternatives to linear interpolation. The performance of this method was analyzed with simulations and echo-planar image data from both phantoms and human subjects. The processing time for image registration on a Hewlett-Packard 735/125 is 7.5 s for a 128 x 128 pixel image and 1.7 s for a 64 x 64 pixel image. Imaging phantom data demonstrate the accuracy of the method (mean rotational error, -0.09 degrees; standard deviation = 0.17 degrees; range, -0.44 degrees to +0.31 degrees; mean translational error = -0.035 pixels; standard deviation = 0.054 pixels; range, -0.16 to +0.06 pixels). Registered human functional imaging data demonstrate a significant reduction in motion artifacts such as linear trends in pixel time series and activation artifacts due to stimulus-correlated motion. The advantages of this technique are its noniterative one-pass nature, the reduction in image degradation as compared to previous methods, and the speed of computation.
机译:描述了一种快速的平面图像配准算法,该算法可精确估算和校正旋转和平移运动。这种自动的单程方法通过解耦旋转和平移的估计来实现其计算效率,从而允许将快速互相关和互谱技术应用于确定位移参数。 k空间重新网格化和调制技术用于图像校正,作为线性插值的替代方法。通过仿真和幻影和人体对象的回波平面图像数据分析了该方法的性能。在Hewlett-Packard 735/125上进行图像配准的处理时间对于128 x 128像素的图像是7.5 s,对于64 x 64像素的图像是1.7 s。成像体模数据证明了该方法的准确性(平均旋转误差为-0.09度;标准偏差= 0.17度;范围为-0.44度至+0.31度;平均平移误差= -0.035像素;标准偏差= 0.054像素;范围为-0.16至+0.06像素)。记录的人体功能成像数据表明,由于刺激相关的运动,运动伪影(例如像素时间序列的线性趋势)和激活伪影显着减少。该技术的优点是其非迭代的单程特性,与以前的方法相比减少了图像质量下降以及计算速度快。

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