首页> 外文会议>International conference on the physics of reactors;PHYSOR 2010 >FPGA HARDWARE ACCELERATION FOR HIGH PERFORMANCE NEUTRON TRANSPORT COMPUTATION BASED ON AGENT METHODOLOGY
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FPGA HARDWARE ACCELERATION FOR HIGH PERFORMANCE NEUTRON TRANSPORT COMPUTATION BASED ON AGENT METHODOLOGY

机译:基于Agent方法的高性能中子传输计算的FPGA硬件加速

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The accurate, detailed and 3D neutron transport analysis for Gen-IV reactors is still time-consuming regardless of advanced computational hardware available in developed countries. This paper introduces a new concept in addressing the computational time while persevering the detailed and accurate modeling; a specifically designed FPGA coprocessor accelerates robust AGENT methodology for complex reactor geometries. For the first time this approach is applied to accelerate the neutronics analysis. The AGENT methodology solves neutron transport equation using the method of characteristics. The AGENT methodology performance was carefully analyzed before the hardware design based on the FPGA co-processor was adopted. The most time-consuming kernel part is then transplanted into the FPGA co-processor. The FPGA co-processor is designed with dataflow-driven non von-Neumann architecture and has much higher efficiency than the conventional computer architecture. Details of the FPGA co-processor design are introduced and the design is benchmarked using two different examples. The advanced chip architecture helps the FPGA co-processor obtaining more than 20 times speed up with its working frequency much lower than the CPU frequency.
机译:第四代反应堆的准确,详细和3D中子输运分析仍然很费时,而与发达国家中可用的先进计算硬件无关。本文在坚持详细而准确的建模的同时,提出了一种解决计算时间的新概念。专门设计的FPGA协处理器为复杂的反应器几何结构加速了健壮的AGENT方法。这是第一次将这种方法用于加速中子学分析。 AGENT方法使用特征方法求解中子输运方程。在采用基于FPGA协处理器的硬件设计之前,已经仔细分析了AGENT方法的性能。然后,将最耗时的内核部分移植到FPGA协处理器中。 FPGA协处理器采用数据流驱动的非von-Neumann架构设计,并且效率比传统计算机架构高得多。介绍了FPGA协处理器设计的详细信息,并使用两个不同的示例对设计进行了基准测试。先进的芯片架构可帮助FPGA协处理器获得20倍以上的加速,其工作频率远低于CPU频率。

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