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Anisotropic field-of-view shapes for improved PROPELLER imaging

机译:各向异性的视场形状可改善PROPELLER成像

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摘要

The Periodically Rotated Overlapping ParallEL Lines with Enhanced Reconstruction (PROPELLER) method for magnetic resonance imaging data acquisition and reconstruction has the highly desirable property of being able to correct for motion during the scan, making it especially useful for imaging pediatric or uncooperative patients and diffusion imaging. This method nominally supports a circular field of view (FOV), but tailoring the FOV for noncircular shapes results in more efficient, shorter scans. This article presents new algorithms for tailoring PROPELLER acquisitions to the desired FOV shape and size that are flexible and precise. The FOV design also allows for rotational motion which provides better motion correction and reduced aliasing artifacts. Some possible FOV shapes demonstrated are ellipses, ovals and rectangles, and any convex, pi-symmetric shape can be designed. Standard PROPELLER reconstruction is used with minor modifications, and results with simulated motion presented confirm the effectiveness of the motion correction with these modified FOV shapes. These new acquisition design algorithms are simple and fast enough to be computed for each individual scan. Also presented are algorithms for further scan time reductions in PROPELLER echo-planar imaging (EPI) acquisitions by varying the sample spacing in two directions within each blade.
机译:用于磁共振成像数据采集和重建的周期性旋转重叠平行线增强重建(PROPELLER)方法具有在扫描过程中能够校正运动的非常理想的性能,使其特别适用于对儿科或不合作的患者进行成像以及弥散成像。此方法名义上支持圆形视场(FOV),但为非圆形形状定制FOV可以实现更高效,更短的扫描。本文提出了新的算法,可以灵活而精确地将PROPELLER采集量身定制为所需的FOV形状和大小。 FOV设计还允许旋转运动,从而提供更好的运动校正和减少的混叠伪影。演示的一些可能的FOV形状是椭圆,椭圆和矩形,并且可以设计任何凸的pi对称形状。使用标准的PROPELLER重建技术进行了较小的修改,显示的模拟运动结果证实了使用这些修改后的FOV形状进行运动校正的有效性。这些新的采集设计算法既简单又快速,足以针对每个单独的扫描进行计算。还介绍了通过减少每个叶片内两个方向上的样本间距来进一步减少PROPELLER回波平面成像(EPI)采集中的扫描时间的算法。

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