论文标题
使用基于子空间的实时MR成像在同时使用PET/MR中的PET运动校正
Motion correction for PET using subspace-based real-time MR imaging in simultaneous PET/MR
论文作者
论文摘要
宠物重建的图像质量会因采集期间发生的受试者运动而降低。已经研究了基于MR的运动校正方法,用于使用PET/MR扫描仪,并在与替代信号(例如导航器)结合使用时成功捕获常规运动模式。但是,处理不规则的呼吸运动和大量运动仍然具有挑战性。在这项工作中,我们提出了一种基于MR的运动校正方法,该方法依靠基于子空间的实时MR成像来估计用于纠正PET重建的运动场。我们利用动态MR图像的低排名特征来以高度不足的K空间数据的高帧速率重建高分辨率的MR图像。重建的动态MR图像用于确定PET重建的运动阶段,并估算相位到相的非刚性运动场,能够捕获复杂的运动模式,例如不规则的呼吸和散装运动。 MR来源的套筒和运动场用于PET重建,以产生运动校正的PET图像。对具有不规则运动模式的体内数据评估了所提出的方法。 MR重建精确地捕获了运动,表现优于最先进的动态MR重建技术。对PET重建的评估证明了该方法在减少运动伪影方面的优点比标准方法的好处。所提出的方法可以提高临床应用中运动校正的PET重建的图像质量。
Image quality of PET reconstructions is degraded by subject motion occurring during the acquisition. MR-based motion correction approaches have been studied for PET/MR scanners and have been successful at capturing regular motion patterns, when used in conjunction with surrogate signals (e.g. navigators) to detect motion. However, handling irregular respiratory motion and bulk motion remains challenging. In this work, we propose an MR-based motion correction method relying on subspace-based real-time MR imaging to estimate motion fields used to correct PET reconstructions. We take advantage of the low-rank characteristics of dynamic MR images to reconstruct high-resolution MR images at high frame rates from highly undersampled k-space data. Reconstructed dynamic MR images are used to determine motion phases for PET reconstruction and estimate phase-to-phase nonrigid motion fields able to capture complex motion patterns such as irregular respiratory and bulk motion. MR-derived binning and motion fields are used for PET reconstruction to generate motion-corrected PET images. The proposed method was evaluated on in vivo data with irregular motion patterns. MR reconstructions accurately captured motion, outperforming state-of-the-art dynamic MR reconstruction techniques. Evaluation of PET reconstructions demonstrated the benefits of the proposed method over standard methods in terms of motion artifact reduction. The proposed method can improve the image quality of motion-corrected PET reconstructions in clinical applications.