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Real-Time Measurement and Correction of Both B0 Changes and Subject Motion in Diffusion Tensor Imaging Using a Double Volumetric Navigated (DvNav) Sequence

机译:使用双体积导航(DvNav)序列实时测量和校正扩散张量成像中B0变化和对象运动

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摘要

Diffusion tensor imaging (DTI) requires a set of diffusion weighted measurements in order to acquire enough information to characterize local structure. The MRI scanner automatically performs a shimming process by acquiring a field map before the start of a DTI scan. Changes in B0, which can occur throughout the DTI acquisition due to several factors (including heating of the iron shim coils or subject motion), cause significant signal distortions that result in warped diffusion tensor (DT) parameter estimates.In this work we introduce a novel technique to simultaneously measure, report and correct in real time subject motion and changes in B0 field homogeneity, both in and through the imaging plane. This is achieved using double volumetric navigators (DvNav), i.e. a pair of 3D EPI acquisitions, interleaved with the DTI pulse sequence. Changes in the B0 field are evaluated in terms of zero-order (frequency) and first-order (linear gradients) shim. The ability of the DvNav to accurately estimate the shim parameters was first validated in a water phantom. Two healthy subjects were scanned both in the presence and absence of motion using standard, motion corrected (single navigator, vNav), and DvNav DTI sequences. The difference in performance between the proposed 3D EPI field maps and the standard 3D gradient echo field maps of the MRI scanner was also evaluated in a phantom and two healthy subjects. The DvNav sequence was shown to accurately measure and correct changes in B0 following manual adjustments of the scanner’s central frequency and the linear shim gradients. Compared to other methods, the DvNav produced DTI results that showed greater spatial overlap with anatomical references, particularly in scans with subject motion. This is largely due to the ability of the DvNav system to correct shim changes and subject motion between each volume acquisition, thus reducing shear distortion.
机译:扩散张量成像(DTI)需要一组扩散加权测量值,以便获取足够的信息来表征局部结构。 MRI扫描仪通过在开始DTI扫描之前获取场图来自动执行匀场过程。由于多种因素(包括铁垫片线圈的发热或对象运动),在整个DTI采集过程中可能会发生B0的变化,导致信号明显失真,从而导致扩散张量(DT)参数估计值失真。同时测量,报告和校正成像平面内和穿过成像平面的对象运动和B0场均匀性变化的新颖技术。这是通过使用双体积导航器(DvNav),即与DTI脉冲序列交错的一对3D EPI采集来实现的。根据零阶(频率)和一阶(线性梯度)匀场来评估B0字段中的变化。 DvNav准确估算匀场参数的能力首先在水模中得到验证。使用标准,运动校正(单个导航器,vNav)和DvNav DTI序列在运动存在和不存在下对两个健康受试者进行扫描。还评估了幻影和两个健康受试者的拟议3D EPI场图和MRI扫描仪的标准3D梯度回波场图之间的性能差异。在手动调整扫描仪的中心频率和线性匀场梯度之后,DvNav序列显示出可以准确测量和纠正B0的变化。与其他方法相比,DvNav产生的DTI结果显示与解剖参考有更大的空间重叠,特别是在对象运动的扫描中。这主要是由于DvNav系统能够校正垫片变化和每个体积采集之间的对象运动,从而减少了剪切变形。

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