Optimizing HPC Fault-Tolerant Environment: An Analytical Approach

Hui Jin, Yong Chen, Huaiyu Zhu, Xian-He Sun
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引用次数: 45

Abstract

The increasingly large ensemble size of modern High-Performance Computing (HPC) systems has drastically increased the possibility of failures. Performance under failures and its optimization become timely important issues facing the HPC community. In this study, we propose an analytical model to predict the application performance. The model characterizes the impact of coordinated checkpointing and system failures on application performance, considering all the factors including workload, the number of nodes, failure arrival rate, recovery cost, and checkpointing interval and overhead. Based on the model, we gauge three parameters, the number of compute nodes, checkpointing interval, and the number of spare nodes to conduct a comprehensive study of performance optimization under failures. Performance scalability under failures is also studied to explore the performance improvement space for different parameters. Experimental results from both synthetic and actual system failure logs confirm that the proposed model and optimization methodologies are effective and feasible.
优化HPC容错环境:一种分析方法
现代高性能计算(HPC)系统越来越大的集成规模大大增加了故障的可能性。故障下的性能及其优化成为高性能计算社区面临的重要问题。在这项研究中,我们提出了一个分析模型来预测应用程序的性能。该模型描述了协调检查点和系统故障对应用程序性能的影响,考虑了包括工作负载、节点数量、故障到达率、恢复成本、检查点间隔和开销在内的所有因素。基于该模型,我们测量了计算节点数量、检查点间隔和备用节点数量三个参数,对故障情况下的性能优化进行了全面的研究。研究了故障下的性能可扩展性,探索了不同参数下的性能提升空间。综合和实际系统故障日志的实验结果证实了所提出的模型和优化方法的有效性和可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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