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Managing dynamic enterprise and urgent workloads on clouds using layered queuing and historical performance models

机译:使用分层排队和历史性能模型在云上管理动态企业和紧急工作负载

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摘要

The automatic allocation of enterprise workload to resources can be enhanced by being able to make what-if response time predictions whilst different allocations are being considered. We experimentally investigate an historical and a layered queuing performance model and show how they can provide a good level of support for a dynamic-urgent cloud environment. Using this we define, implement and experimentally investigate the effectiveness of a prediction-based cloud workload and resource management algorithm. Based on these experimental analyses we: (i) comparatively evaluate the layered queuing and historical techniques; (ii) evaluate the effectiveness of the management algorithm in different operating scenarios; and (iii) provide guidance on using prediction-based workload and resource management.
机译:通过在考虑不同分配的情况下做出假设响应时间预测,可以增强企业工作负载对资源的自动分配。我们通过实验研究了历史和分层排队性能模型,并展示了它们如何为动态紧急的云环境提供良好的支持。利用这一点,我们定义,实施和实验研究了基于预测的云工作负载和资源管理算法的有效性。基于这些实验分析,我们:(i)比较评估分层排队和历史技术; (ii)评估管理算法在不同操作场景下的有效性; (iii)提供有关使用基于预测的工作量和资源管理的指南。

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