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Ultra Fast 4D PET Image Reconstruction with User-Definable Temporal Basis Functions

机译:超快速4D PET图像重建,具有用户可定义的时间基功能

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Fully 4D image reconstruction, through its use of temporally extensive basis functions, is able to reduce spatiotemporal noise in dynamic PET imaging. This noise reduction has the potential to benefit post-reconstruction kinetic analysis, resulting in improved parametric images. However these benefits come at a significant computational cost: fully 4D reconstruction requires access to the entire time series of fully 3D sinograms (along with the same number of fully 3D scatter and randoms sinogram estimates) in the innermost iterative reconstruction loop. This results in a huge in-memory storage requirement combined with a projection/backprojection workload in the innermost reconstruction loop which is up to 10-40 times greater than conventional static 3D reconstruction (depending on the number of frames). This work presents a practical 4D methodology which i) uses an extremely efficient symmetry & SIMD forward and backprojector for ultra fast computation, ii) compresses the time series of dynamic sinogram data sets without information loss, and iii) permits the use of any user-specified set of temporal basis functions. The result is an extremely fast and flexible fully 4D iterative reconstruction methodology, greatly facilitating the determination of the (perhaps study-specific) optimal temporal basis functions. Whereas single CPU processing for fully 4D list-mode data reconstruction can take in excess of 2 weeks on a single node, the proposed method (using two quad-core CPUs, with span 9 projection data) takes approximately 3.5 hours, giving close to two orders of magnitude acceleration. The method is demonstrated on measured HRRT (High Resolution Research Tomograph) PET data for a [18F]flumazenil study and for an [18F] MPPF study.
机译:通过其使用时间广泛的基本功能,能够在动态宠物成像中减少时空噪声的完全4D图像重建。这种降噪具有促进重建后动力学分析的可能性,导致改进的参数图像。然而,这些益处以显着的计算成本:完全4D重建需要在最内万迭代重建循环中访问完全3D中文的整个时间序列(以及相同数量的完全3D散射和随机的Sinogram估计)。这导致巨大的内存存储要求与最内部重建循环中的投影/反投影工作量相结合,其比传统的静态三维重建高达10-40倍(取决于帧数)。这项工作提出了一种实用的4D方法,i)使用极其有效的对称和SIMD向前和反向作者进行超快速计算,ii)压缩无信息丢失的动态铭际数据集的时间序列,并且III)允许使用任何用户 - 指定的一组时间基函数。结果是一种极快而灵活的完全4D迭代重建方法,大大促进了(可能研究特定)最佳时间基函数的确定。虽然完全4D列表模式数据重建的单个CPU处理可以在单个节点上超过2周,所提出的方法(使用两个四核CPU,带有SPAN 9投影数据)需要大约3.5小时,靠近两个数量级加速度。该方法在测量的HRRT(高分辨率研究断层扫描仪)PET数据上进行了证明,用于[18F] Flumazenil研究和[18F] MPPF研究。

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