网格环境下基于知识的并行循环调度

Wen-Chung Shih, Chao-Tung Yang, Chun-Jen Chen, S. Tseng
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引用次数: 1

摘要

网格环境下的并行循环调度是一个具有挑战性的问题,特别是对于工作负载分布不规则的循环。过去,由于工作负载不规律而导致的负载不平衡问题没有得到明确解决。本文提出了一种网格环境下不规则负载循环迭代调度的新方法。该方法基于对工作负载的知识估计,可以根据各节点的性能分配适当比例的工作负载执行。此外,调度器使用CPU使用情况和网络带宽的历史统计信息来估计每个节点的动态变化性能。在一个由四所学校组成的网格测试平台上,分别实现了规则型和不规则型两种应用程序。实验结果表明,该方法比以前的方法性能有很大提高
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parallel Loop Scheduling Using Knowledge-Based Workload Estimation on Grid Environments
Parallel loop scheduling on grid environments is a challenging problem, especially for loops with irregular workload distribution. In the past, this problem of load imbalance resulting from irregular workload was not explicitly addressed. This paper proposes a new approach to schedule loop iterations with irregular workload on grid environments. Based on knowledge-based estimation of workload, the proposed method can dispatch an appropriate proportion of workload to each node for execution according to its performance. In addition, the scheduler uses historical statistics of CPU usage and network bandwidth to estimate the dynamically changing performance of each node. Two applications, regular type and irregular one respectively, are implemented and executed on a grid test-bed, which consists of four schools. Experimental results show that the new approach improves the performance on previous schemes
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