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首页> 外文期刊>Journal of supercomputing >Fine-grained scheduling in multi-resource clusters
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Fine-grained scheduling in multi-resource clusters

机译:多资源集群中的细粒度调度

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In multi-resource clusters, many schedulers allocate resources based on fixed quantities. However, fixed allocations can easily lead to resource fragmentation and over-commitment problems, which may result in lower resource utilization and performance degradation. This paper proposes a fine-grained method (FGM) to improve the allocation granularity of resource allocation. This method divides tasks into execution stages according to the task requirement estimated using similar tasks at the runtime. Then, task resource requirements are matched with the available server resources by stages to refine two aspects of allocation granularity: allocation duration and allocation quantity. In addition, the FGM may over-allocate resources deliberately to further improve resource utilization and performance. The paper tested the FGM in three environments using both online and offline workloads. The test results show that the FGM can resolve resource fragmentation and over-commitment problems by significantly improving resource utilization and performance with acceptable fairness and scheduling response times.
机译:在多资源集群中,许多调度程序都基于固定数量分配资源。但是,固定分配很容易导致资源碎片化和超额使用问题,这可能导致资源利用率降低和性能下降。本文提出了一种细粒度的方法(FGM)来提高资源分配的分配粒度。该方法根据在运行时使用类似任务估算的任务需求将任务划分为执行阶段。然后,分阶段将任务资源需求与可用服务器资源匹配,以细化分配粒度的两个方面:分配持续时间和分配数量。此外,FGM可能会故意过度分配资源,以进一步提高资源利用率和性能。本文使用在线和离线工作负载在三种环境中测试了FGM。测试结果表明,FGM可以通过以可接受的公平性和调度响应时间显着提高资源利用率和性能来解决资源碎片和超额分配问题。

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