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Performance and Energy Evaluation of CoMD on Intel Xeon Phi Co-processors

机译:Intel Xeon Phi协处理器上CoMD的性能和能耗评估

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摘要

Molecular dynamics simulations are used extensively in science and engineering. Co-Design Molecular Dynamics (CoMD) is a proxy application that reflects the workload characteristics of production molecular dynamics software. In particular, CoMD is computationally intensive with 90+% of execution time spent to calculate inter-atomic force potentials. Hence, this application is an ideal candidate for acceleration with the Intel Xeon Phi because it has high theoretical computational performance with low energy consumption. In this work, the kernel computing Embedded Atom model (EAM) forces is adapted to utilize the Intel Xeon Phi acceleration. Performance and energy are measured in the experiments that vary thread affinity, thread count, problem size, node count, and the number of Xeon Phi's per node. Dynamic voltage and frequency scaling (DVFS) is used to reduce host-side power draw during Xeon Phi accelerated phases of the application. Test results are compared against the original (host-only) implementation that uses multithreading, and energy savings as high as 30% are observed.
机译:分子动力学模拟在科学和工程中广泛使用。协同设计分子动力学(CoMD)是一个代理应用程序,可反映生产分子动力学软件的工作量特征。特别是,CoMD的计算量很大,其执行时间的90%以上用于计算原子间力势。因此,该应用程序具有较高的理论计算性能和较低的能耗,因此是使用Intel Xeon Phi加速的理想选择。在这项工作中,内核计算嵌入式Atom模型(EAM)力经过调整,可以利用英特尔至强融核加速技术。在改变线程亲和力,线程数,问题大小,节点数以及每个节点的Xeon Phi数量的实验中,对性能和能量进行了测量。动态电压和频率缩放(DVFS)用于在应用程序的至强融核加速阶段减少主机侧功耗。将测试结果与使用多线程的原始(仅主机)实现进行了比较,观察到节能高达30%。

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