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Data Processing Methods for a High Throughput Brain Imaging PET Research Center

机译:高通量脑成像PET研究中心的数据处理方法

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We describe a computer system designed to meet the data processing needs of a high-volume brain PET research center based on the High Resolution Research Tomograph (HRRT). Listmode data are collected by an acquisition computer and stored on a high-speed disk. A workflow management program transfers the data through a gigabit network, rebins events into sinograms, and calculates correction factors. Reconstruction jobs are performed on a 64 processor cluster. We developed methods for dynamically allocating subclusters from the pool of available nodes, and reconstructing multiple images on multiple subclusters simultaneously. We also studied overall workflow. In our initial plan, scatter and randoms calculation unexpectedly became a bottleneck. We therefore adjusted our plan so that scatter estimation was performed initially in low resolution, and later expanded to high resolution.
机译:我们描述了一种计算机系统,该系统旨在满足基于高分辨率研究断层扫描仪(HRRT)的大容量大脑PET研究中心的数据处理需求。 Listmode数据由采集计算机收集并存储在高速磁盘上。工作流管理程序通过千兆位网络传输数据,将事件重新组合为正弦图,并计算校正因子。重建作业在64个处理器群集上执行。我们开发了用于从可用节点池中动态分配子群集,并同时在多个子群集上重建多个图像的方法。我们还研究了整体工作流程。在我们最初的计划中,分散和随机计算出乎意料地成为了瓶颈。因此,我们调整了计划,以便最初以低分辨率执行散射估计,然后扩展到高分辨率。

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