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首页> 外文期刊>IEEE Transactions on Parallel and Distributed Systems >Linear Programming-Based Affinity Scheduling of Independent Tasks on Heterogeneous Computing Systems
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Linear Programming-Based Affinity Scheduling of Independent Tasks on Heterogeneous Computing Systems

机译:异构计算系统上基于线性规划的独立任务亲和力调度

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摘要

Resource management systems (RMS) are an important component in heterogeneous computing (HC) systems. One of the jobs of an RMS is the mapping of arriving tasks onto the machines of the HC system. Many different mapping heuristics have been proposed in recent years. However, most of these heuristics suffer from several limitations. One of these limitations is the performance degradation that results from using outdated global information about the status of all machines in the HC system. This paper proposes several heuristics which address this limitation by only requiring partial information in making the mapping decisions. These heuristics utilize the solution to a linear programming (LP) problem which maximizes the system capacity. Simulation results show that our heuristics perform very competitively while requiring dramatically less information.
机译:资源管理系统(RMS)是异构计算(HC)系统中的重要组件。 RMS的工作之一是将到达的任务映射到HC系统的机器上。近年来已经提出了许多不同的映射试探法。但是,大多数这些启发式方法都有一些局限性。这些限制之一是由于使用过时的有关HC系统中所有机器状态的全局信息而导致的性能下降。本文提出了几种启发式方法,通过仅需部分信息即可做出映射决策,从而解决了这一局限性。这些启发式方法将解决方案用于线性规划(LP)问题,从而最大程度地提高了系统容量。仿真结果表明,我们的启发式方法在竞争中表现出色,而所需的信息却少得多。

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