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Energy Evaluation for Applications with Different Thread Affinities on the Intel Xeon Phi

机译:英特尔至强融核上具有不同线程亲和力的应用程序的能源评估

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摘要

The Intel Xeon Phi coprocessor offers high parallelism on energy-efficient hardware to minimize energy consumption while maintaining performance. Dynamic frequency and voltage scaling is not accessible on the Intel Xeon Phi. Hence, saving energy relies mainly on tuning application performance. One general optimization technique is thread affinity, which is an important factor in multi-core architectures. This work investigates the effects of varying thread affinity modes and reducing core utilization on energy and execution time for the NASA Advanced Supercomputing Parallel Benchmarks (NPB). Energy measurements are captured using the micsmc utility tool available on Xeon Phi. The measurements are checked against total power captured using Watts up power meters. The results are compared to the system-default thread affinity and granularity modes. Mostly positive impacts on performance and energy are observed: When executed at the maximum thread count on all unoccupied cores, all the benchmarks but one exhibited energy savings if a specific affinity mode is set.
机译:英特尔®至强融核™协处理器在节能硬件上提供了高度并行性,以在保持性能的同时将能耗降至最低。英特尔至强融核无法访问动态频率和电压缩放。因此,节能主要取决于调整应用程序的性能。一种通用的优化技术是线程亲和力,它是多核体系结构中的重要因素。这项工作研究了NASA高级超级计算并行基准(NPB)的变化线程亲和模式和减少内核利用率对能源和执行时间的影响。使用至强融核上提供的micsmc实用工具捕获能量测量值。根据使用瓦特功率计捕获的总功率检查测量结果。将结果与系统默认的线程亲和力和粒度模式进行比较。主要观察到对性能和能量的积极影响:在所有未占用的内核上以最大线程数执行时,如果设置了特定的亲和模式,则所有基准测试(只有一个基准测试)会节省能源。

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