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首页> 外文期刊>BMC Medical Imaging >Accurate hybrid template–based and MR-based attenuation correction using UTE images for simultaneous PET/MR brain imaging applications
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Accurate hybrid template–based and MR-based attenuation correction using UTE images for simultaneous PET/MR brain imaging applications

机译:使用UTE图像进行基于模板和基于MR的精确混合衰减校正,以同时进行PET / MR脑成像应用

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Attenuation correction is one of the most crucial correction factors for accurate PET data quantitation in hybrid PET/MR scanners, and computing accurate attenuation coefficient maps from MR brain acquisitions is challenging. Here, we develop a method for accurate bone and air segmentation using MR ultrashort echo time (UTE) images. MR UTE images from simultaneous MR and PET imaging of five healthy volunteers was used to generate a whole head, bone and air template image for inclusion into an improved MR derived attenuation correction map, and applied to PET image data for quantitative analysis. Bone, air and soft tissue were segmented based on Gaussian Mixture Models with probabilistic tissue maps as a priori information. We present results for two approaches for bone attenuation coefficient assignments: one using a constant attenuation correction value; and another using an estimated continuous attenuation value based on a calibration fit. Quantitative comparisons were performed to evaluate the accuracy of the reconstructed PET images, with respect to a reference image reconstructed with manually segmented attenuation maps. The DICE coefficient analysis for the air and bone regions in the images demonstrated improvements compared to the UTE approach, and other state-of-the-art techniques. The most accurate whole brain and regional brain analyses were obtained using constant bone attenuation coefficient values. A novel attenuation correction method for PET data reconstruction is proposed. Analyses show improvements in the quantitative accuracy of the reconstructed PET images compared to other state-of-the-art AC methods for simultaneous PET/MR scanners. Further evaluation is needed with radiopharmaceuticals other than FDG, and in larger cohorts of participants.
机译:衰减校正是混合PET / MR扫描仪中准确进行PET数据定量的最关键的校正因素之一,并且从MR脑采集中计算出准确的衰减系数图非常具有挑战性。在这里,我们开发了一种使用MR超短回波时间(UTE)图像进行精确的骨骼和空气分割的方法。来自五名健康志愿者的同时MR和PET成像的MR UTE图像用于生成整个头部,骨骼和空气模板图像,以包含在改进的MR派生衰减校正图中,并应用于PET图像数据进行定量分析。根据高斯混合模型对骨骼,空气和软组织进行分割,并以概率组织图作为先验信息。我们为骨衰减系数分配提供两种方法的结果:一种使用恒定的衰减校正值;另一种使用固定的衰减校正值。另一个使用基于校准拟合的估计连续衰减值。相对于用手动分割的衰减图重建的参考图像,进行定量比较以评估重建的PET图像的准确性。图像中空气和骨骼区域的DICE系数分析表明,与UTE方法和其他最新技术相比,该方法有所改进。使用恒定的骨衰减系数值可以获得最准确的全脑和局部脑分析。提出了一种新的用于PET数据重建的衰减校正方法。分析显示,与其他同时使用PET / MR扫描仪的最新AC方法相比,重建的PET图像的定量准确性有所提高。除FDG以外的放射性药物以及更大范围的参与者都需要进一步评估。

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