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Optimizations of the energy grid search algorithm in continuous-energy Monte Carlo particle transport codes

机译:连续能量蒙特卡罗粒子输运编码中能量网格搜索算法的优化

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摘要

In this work we propose, implement, and test various optimizations of the typical energy grid-cross section pair lookup algorithm in Monte Carlo particle transport codes. The key feature common to all of the optimizations is a reduction in the length of the vector of energies that must be searched when locating the index of a particle's current energy. Other factors held constant, a reduction in energy vector length yields a reduction in CPU time. The computational methods we present here are physics-informed. That is, they are designed to utilize the physical information embedded in a simulation in order to reduce the length of the vector to be searched. More specifically, the optimizations take advantage of information about scattering kinematics, neutron cross section structure and data representation, and also the expected characteristics of a system's spatial flux distribution and energy spectrum. The methods that we present are implemented in the OpenMC Monte Carlo neutron transport code as part of this work. The gains in computational efficiency, as measured by overall code speedup, associated with each of the optimizations are demonstrated in both serial and multithreaded simulations of realistic systems. Depending on the system, simulation parameters, and optimization method employed, overall code speedup factors of 1.2-1.5, relative to the typical single-nuclide binary search algorithm, are routinely observed.
机译:在这项工作中,我们提出,实施和测试了蒙特卡洛粒子传输代码中典型能量网格横截面对查找算法的各种优化。所有优化共同的关键特征是减少了定位粒子当前能量指数时必须搜索的能量向量的长度。在其他因素保持不变的情况下,减少能量矢量长度可减少CPU时间。我们在这里介绍的计算方法是基于物理的。即,它们被设计为利用嵌入在仿真中的物理信息,以减少要搜索的向量的长度。更具体地说,优化利用了有关散射运动学,中子截面结构和数据表示的信息,以及系统空间通量分布和能谱的预期特性。作为这项工作的一部分,我们在OpenMC蒙特卡洛中子传输代码中实现了我们介绍的方法。在实际系统的串行和多线程仿真中,都展示了与每个优化相关的计算效率的提高(通过总体代码加速来衡量)。根据系统,仿真参数和优化方法的不同,通常会观察到相对于典型的单核素二进制搜索算法,总的代码加速因子为1.2-1.5。

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