分辨率和配准算法对MRI实时头部运动校正中EPI vnav精度的影响。

Yingzhuo Zhang, Iman Aganj, André J W van der Kouwe, M Dylan Tisdall
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引用次数: 2

摘要

低分辨率,基于epi的体积导航仪(vnav)已被用作各种MRI神经成像脉冲序列的前瞻性运动校正系统。低分辨率体积的使用代表了运动跟踪精度和采集时间之间的权衡。然而,这意味着配准必须精确到0.2体素或更少才能有效地进行运动校正。虽然vnav在临床和研究应用中显示出有希望的结果,但导航器和配准算法的选择以前没有得到系统的评估。在这项工作中,我们通过实验评估了vnav的准确性,以及未来改进系统的可能设计选择,使用真实的人类数据。我们获得了三种各向同性分辨率(6.4 mm, 8 mm和10 mm)的导航体,已知旋转和平移。然后使用三线性、三次和三次b样条插值对vnav进行严格注册。我们展示了三次b样条算法的一种新的重构,该算法存储预先计算的系数,以减少每次插值的时间,使其与三次插值相同。结果表明,提高vNav分辨率可以提高配准精度,三次b样条在所有vNav分辨率下提供最高的配准精度。我们的研究结果还表明,vnav所需的时间可以通过在10毫米分辨率下成像而减少,而不会在配准精度上付出很大的代价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effects of Resolution and Registration Algorithm on the Accuracy of EPI vNavs for Real Time Head Motion Correction in MRI.

Effects of Resolution and Registration Algorithm on the Accuracy of EPI vNavs for Real Time Head Motion Correction in MRI.

Effects of Resolution and Registration Algorithm on the Accuracy of EPI vNavs for Real Time Head Motion Correction in MRI.

Effects of Resolution and Registration Algorithm on the Accuracy of EPI vNavs for Real Time Head Motion Correction in MRI.

Low-resolution, EPI-based Volumetric Navigators (vNavs) have been used as a prospective motion-correction system in a variety of MRI neuroimaging pulse sequences. The use of low-resolution volumes represents a trade-off between motion tracking accuracy and acquisition time. However, this means that registration must be accurate on the order of 0.2 voxels or less to be effective for motion correction. While vNavs have shown promising results in clinical and research use, the choice of navigator and registration algorithm have not previously been systematically evaluated. In this work we experimentally evaluate the accuracy of vNavs, and possible design choices for future improvements to the system, using real human data. We acquired navigator volumes at three isotropic resolutions (6.4 mm, 8 mm, and 10 mm) with known rotations and translations. The vNavs were then rigidly registered using trilinear, tricubic, and cubic B-spline interpolation. We demonstrate a novel refactoring of the cubic B-spline algorithm that stores pre-computed coefficients to reduce the per-interpolation time to be identical to tricubic interpolation. Our results show that increasing vNav resolution improves registration accuracy, and that cubic B-splines provide the highest registration accuracy at all vNav resolutions. Our results also suggest that the time required by vNavs may be reduced by imaging at 10 mm resolution, without substantial cost in registration accuracy.

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