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技术说明:通过多位置体模成像确定扩展视野(FOV)MRI 失真。

Technical Note: Extended field-of-view (FOV) MRI distortion determination through multi-positional phantom imaging.

机构信息

Department of Radiation Oncology, Stanford School of Medicine, Stanford University, Stanford, CA, USA.

The Phantom Laboratory Inc, Salem, NY, USA.

出版信息

J Appl Clin Med Phys. 2020 Nov;21(11):322-332. doi: 10.1002/acm2.13065. Epub 2020 Oct 19.

Abstract

Comprehensive characterization of geometric distortions for MRI simulators and MRI-guided treatment delivery systems is typically performed with large phantoms that are costly and unwieldy to handle. Here we propose an easily implementable methodology for MR distortion determination of the entire imaging space of the scanner through the use of a compact commercially available distortion phantom. The MagphanRT phantom was scanned at several locations within a MR scanner. From each scan, an approximate location of the phantom was determined from a subset of the fiducial spheres. The fiducial displacements were determined, and a displacement field was fitted to the displacement data using the entire multi-scan data set. An orthogonal polynomial expansion fitting function was used that had been augmented to include independent rigid-body transformations for each scan. The rigid-body portions of the displacement field were thereafter discarded, and the resultant fit then represented the distortion field. Multi-positional scans of the phantom were used successfully to determine the distortion field with extended coverage. A single scan of the phantom covered 20 cm in its smallest dimension. By stitching together overlapping scans we extended the distortion measurements to 30 cm. No information about the absolute location or orientation of each scan was required. The method, termed the Multi-Scan Expansion (MSE) method, can be easily applied for larger field-of-views (FOVs) by using a combination of larger phantom displacements and more scans. The implementation of the MSE method allows for distortion determination beyond the physical limitations of the phantom. The method is scalable to the user's needs and does not require any specialized equipment. This approach could open up for easier determination of the distortion magnitude at distances further from the scanner's isocenter. This is especially important in the newly proposed methodologies of MR-only simulation in RT and in adaptive replanning in MR linac systems.

摘要

综合表征 MRI 模拟器和 MRI 引导治疗输送系统的几何变形通常使用大型模体来进行,这些模体昂贵且难以操作。在这里,我们通过使用紧凑的商用变形模体,提出了一种易于实现的方法,用于确定扫描仪整个成像空间的 MR 变形。在磁共振扫描仪内的几个位置扫描 MagphanRT 模体。从每次扫描中,从一组基准球中确定了模体的大致位置。确定了基准点的位移,并使用整个多扫描数据集拟合了位移数据的位移场。使用了一种扩展的正交多项式展开拟合函数,该函数已被扩充为包含每个扫描的独立刚体变换。此后,丢弃位移场的刚体部分,然后将所得拟合表示为变形场。成功地使用多位置扫描来确定具有扩展覆盖范围的变形场。模体的单次扫描覆盖其最小尺寸的 20 厘米。通过拼接重叠的扫描,我们将失真测量扩展到 30 厘米。不需要每个扫描的绝对位置或方向的信息。该方法称为多扫描扩展(MSE)方法,可以通过使用更大的模体位移和更多的扫描来轻松应用于更大的视场(FOV)。MSE 方法的实现允许超出模体物理限制的失真确定。该方法可根据用户的需求进行扩展,并且不需要任何特殊设备。这种方法可以更轻松地确定距离扫描仪等中心点更远的距离处的失真幅度,这在 RT 中的仅 MR 模拟和 MR 直线加速器系统中的自适应重新计划等新提出的方法中尤为重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/caa9/7701113/cb35dc07d934/ACM2-21-322-g001.jpg

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