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Field of view extension and truncation correction for MR-based human attenuation correction in simultaneous MR/PET imaging

机译:MR / PET同步成像中基于MR的人体衰减校正的视野扩展和截断校正

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摘要

Purpose: In quantitative PET imaging, it is critical to accurately measure and compensate for the attenuation of the photons absorbed in the tissue. While in PET/CT the linear attenuation coefficients can be easily determined from a low-dose CT-based transmission scan, in whole-body MR/PET the computation of the linear attenuation coefficients is based on the MR data. However, a constraint of the MR-based attenuation correction (AC) is the MR-inherent field-of-view (FoV) limitation due to static magnetic field (B0) inhomogeneities and gradient nonlinearities. Therefore, the MR-based human AC map may be truncated or geometrically distorted toward the edges of the FoV and, consequently, the PET reconstruction with MR-based AC may be biased. This is especially of impact laterally where the patient arms rest beside the body and are not fully considered. Methods: A method is proposed to extend the MR FoV by determining an optimal readout gradient field which locally compensates B 0 inhomogeneities and gradient nonlinearities. This technique was used to reduce truncation in AC maps of 12 patients, and the impact on the PET quantification was analyzed and compared to truncated data without applying the FoV extension and additionally to an established approach of PET-based FoV extension. Results: The truncation artifacts in the MR-based AC maps were successfully reduced in all patients, and the mean body volume was thereby increased by 5.4%. In some cases large patient-dependent changes in SUV of up to 30% were observed in individual lesions when compared to the standard truncated attenuation map. Conclusions: The proposed technique successfully extends the MR FoV in MR-based attenuation correction and shows an improvement of PET quantification in whole-body MR/PET hybrid imaging. In comparison to the PET-based completion of the truncated body contour, the proposed method is also applicable to specialized PET tracers with little uptake in the arms and might reduce the computation time by obviating the need for iterative calculations of the PET emission data beyond those required for reconstructing images.
机译:目的:在定量PET成像中,准确测量和补偿组织中吸收的光子的衰减至关重要。在PET / CT中,可以轻松地从基于低剂量CT的透射扫描确定线性衰减系数,而在全身MR / PET中,线性衰减系数的计算是基于MR数据的。但是,基于MR的衰减校正(AC)的一个约束是由于静态磁场(B0)不均匀和梯度非线性导致的MR固有视场(FoV)限制。因此,基于MR的人类AC贴图可能会被截断或在几何形状上朝FoV的边缘变形,因此,使用基于MR的AC的PET重建可能会产生偏差。当患者的手臂放在身体旁边而未被充分考虑时,这尤其会产生横向冲击。方法:提出了一种通过确定局部补偿B 0不均匀性和梯度非线性的最佳读出梯度场来扩展MR FoV的方法。该技术用于减少12例患者AC图中的截断,并分析了对PET定量的影响,并与不应用FoV扩展的截短数据进行了比较,此外还与基于PET的FoV扩展的既定方法进行了比较。结果:在所有患者中,基于MR的AC图中的截断伪影均成功减少,因此平均体积增加了5.4%。在某些情况下,与标准的截短衰减图相比,单个病变中SUV的患者依赖性最大变化高达30%。结论:所提出的技术成功地扩展了基于MR的衰减校正中的MR FoV,并显示了全身MR / PET混合成像中PET定量的改进。与基于PET的截断体轮廓的完成相比,该方法还适用于手臂摄取较少的专用PET示踪剂,并且由于不需要对PET排放数据进行迭代计算,因此可以减少计算时间重建图像所需。

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