High-Performance PDES on Manycore Clusters

B. Williams, Ali Eker, K. Chiu, D. Ponomarev
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引用次数: 3

Abstract

Performance and scalability of Parallel Discrete Event Simulation (PDES) is often limited by fine-grain communication, especially in execution environments with high communication cost. Low latencies of on-chip communication in emerging manycore processors promise to substantially alleviate conventional PDES bottlenecks. However, scaling to manycore clusters requires balancing faster on chip communication with slower traditional network communication between cluster nodes. In this work, we investigate performance of PDES on a cluster of Intel's Knights Landing (KNL) processors, identify performance bottlenecks, and propose techniques to address them. Specifically, we propose three performance optimizations: (1) a new design of the communication buffer centered around the use of atomic compare-and-swap operations to reduce synchronization overhead between a dedicated communication thread and computation threads; (2) careful selection of the number of computation threads per communication thread to limit the pressure on each communication thread; and (3) balancing the timing of communication and computation threads to ensure their synchronized forward progress. Combined, these optimizations result in a 2X - 16X speedup over baseline implementations in ROSS simulator.
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多核集群上的高性能PDES
并行离散事件仿真(PDES)的性能和可扩展性经常受到细粒度通信的限制,特别是在通信成本高的执行环境中。在新兴的多核处理器中,片上通信的低延迟有望大大缓解传统的PDES瓶颈。然而,扩展到多核集群需要平衡更快的芯片上通信和集群节点之间较慢的传统网络通信。在这项工作中,我们研究了PDES在英特尔骑士登陆(KNL)处理器集群上的性能,确定了性能瓶颈,并提出了解决这些瓶颈的技术。具体来说,我们提出了三个性能优化:(1)围绕原子比较与交换操作的通信缓冲区的新设计,以减少专用通信线程和计算线程之间的同步开销;(2)仔细选择每个通信线程的计算线程数,以限制每个通信线程的压力;(3)平衡通信线程和计算线程的时间,保证它们同步向前推进。综合起来,这些优化使ROSS模拟器中的基准实现速度提高了2 - 16倍。
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