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Exploiting graphic processing units parallelism to improve intelligent data acquisition system performance in JET's correlation reflectometer

机译:在JET的相关反射仪中利用图形处理单元并行性来提高智能数据采集系统的性能

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摘要

The performance of intelligent data acquisition systems relies heavily on their processing capabilities and local bus bandwidth, especially in applications with high sample rates or high number of channels. This is the case of the self adaptive sampling rate data acquisition system installed as a pilot experiment in KG8B correlation reflectometer at JET. The system, which is based on the ITMS platform, continuously adapts the sample rate during the acquisition depending on the signal bandwidth. In order to do so it must transfer acquired data to a memory buffer in the host processor and run heavy computational algorithms for each data block. The processing capabilities of the host CPU and the bandwidth of the PXI bus limit the maximum sample rate that can be achieved, therefore limiting the maximum bandwidth of the phenomena that can be studied. Graphic processing units (GPU) are becoming an alternative for speeding up compute intensive kernels of scientific, imaging and simulation applications. However, integrating this technology into data acquisition systems is not a straight forward step, not to mention exploiting their parallelism efficiently. This paper discusses the use of GPUs with new high speed data bus interfaces to improve the performance of the self adaptive sampling rate data acquisition system installed on JET. Integration issues are discussed and performance evaluations are presented
机译:智能数据采集系统的性能在很大程度上取决于其处理能力和本地总线带宽,尤其是在具有高采样率或大量通道的应用中。这是在JET的KG8B相关反射仪中安装的作为自适应实验的自适应采样率数据采集系统的情况。该系统基于ITMS平台,在采集过程中会根据信号带宽不断调整采样率。为此,它必须将获取的数据传输到主机处理器中的内存缓冲区,并为每个数据块运行大量的计算算法。主机CPU的处理能力和PXI总线的带宽限制了可以达到的最大采样率,因此限制了可以研究的现象的最大带宽。图形处理单元(GPU)成为加快科学,成像和模拟应用程序的计算密集型内核速度的替代方法。但是,将这种技术集成到数据采集系统中并不是一个直接的步骤,更不用说有效利用它们的并行性了。本文讨论了将GPU与新型高速数据总线接口配合使用以提高JET上安装的自适应采样率数据采集系统的性能。讨论了集成问题并提出了性能评估

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