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An Adaptive Scheduling Mechanism for Elastic Grid Computing

机译:弹性网格计算的自适应调度机制

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Server utilization is typically low (10%-30%) in today's datacenters (or clouds), especially when executing computational jobs with deadlines. Previous studies have shown that it is difficult to improve utilization above 20% without significantly increasing the failure rate of job execution. It is still unknown how to increase utilization while maintaining a low (e.g., 1-5%) failure rate. To solve this problem, this paper proposes to build an elastic grid, utilizing virtual computers from clouds, which can dynamically adjust its computing capability to maximize utilization within the constraint of an expected failure rate. At the heart of the elastic grid approach is a decentralized scheduling mechanism, based on a new risk-hedged-pricing instrument. The scheduling mechanism can change the number of virtual computers in the elastic grid dynamically, on demand of the computational job workload. The risk-hedged-pricing instrument relates price to failure rate, thus can control the failure rate via automatic price adjustment. Performance evaluation is conducted via simulations, utilizing both synthetic and real workloads. The results show that our approach outperforms other schemes, improving utilization to over 90% with failure rate still less than 6.27%.
机译:当今的数据中心(或云)中,服务器利用率通常低(10%-30%),尤其是使用截止日期执行计算作业时。以前的研究表明,难以提高20%以上的利用,而不会显着增加工作执行失败率。在保持低(例如1-5%)的故障率的同时,如何增加利用率尚不清楚。为了解决这个问题,本文建议使用来自云的虚拟计算机来构建弹性网格,这可以动态调整其计算能力,以最大限度地在预期失败率的约束范围内最大限度地利用利用率。在弹性网格方法的核心是一种分散的调度机制,基于新的风险预订仪器。调度机制可以根据计算作业工作负载的需求动态地改变弹性网格中的虚拟计算机的数量。风险预订定价仪器将价格与故障率相关,因此可以通过自动价格调整控制故障率。使用仿真进行性能评估,利用合成和实际工作负载进行。结果表明,我们的方法优于其他方案,将利用率提高到超过90%,故障率仍然小于6.27%。

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