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Design for parallel computation of model-based signal processing in Thomson scattering diagnostic

机译:汤姆森散射诊断中基于模型的信号处理的并行计算设计

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The Thomson Scattering (TS) diagnostic system calculates electron temperature and density profiles of tokamak plasma. The diagnostic is enabled by measuring and analyzing pulse signals of scattered laser light in the tokamak plasma. In order to improve accuracy of the diagnostic, it is necessary to reduce noise level of the pulse signals. In KSTAR, a fast digitizer with 5 GS/s has been adopted for obtaining the pulse shape information, and a research of model-based signal processing for the pulse signals has been conducted. In this paper, we present a new approach for the model-based signal processing and its parallel computation architecture design to improve its computation speed. As our approach, we conduct a nonlinear least square method in frequency domain by taking Fourier Transformation (FT) of the TS pulse model containing a convolution operator. Then, we can obtain algebraic functions for the transformed model and its Jacobian, which can reduce amount of computation and can be computed in parallel respect to frequency component. We implement the parallel computation of the algorithm in Graphical Processing Unit (GPU) and evaluate its effectiveness in terms of computation performance, convergence analysis, and variation of the model parameters.
机译:汤姆森散射(TS)诊断系统计算托卡马克等离子体的电子温度和密度谱。通过测量和分析托卡马克等离子体中的散射激光的脉冲信号来实现诊断。为了提高诊断的准确性,有必要降低脉冲信号的噪声水平。在KSTAR中,已经采用具有5GS / s的快速数字转换器来获得脉冲形状信息,并进行了对脉冲信号的基于模型的信号处理的研究。在本文中,我们为模型的信号处理及其并行计算架构设计提供了一种新方法,以提高其计算速度。作为我们的方法,我们通过采用包含卷积运算符的TS脉冲模型的傅里叶变换(FT)在频域中进行非线性最小二乘法。然后,我们可以获得转换模型的代数功能及其雅各的曲线,其可以减少计算量,并且可以在并行地相对于频率分量计算。我们在图形处理单元(GPU)中实现了算法的并行计算,并在计算性能,收敛分析和模型参数的变化方面评估其有效性。

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