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Opportunistic scheduling and resources consolidation system based on a new economic model

机译:基于新经济模式的机会定期和资源整合系统

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This paper presents a new opportunistic scheduling and resource consolidation system based on an economic model related to different service level agreements (SLAs) classes. The goal is to address the problem of companies that manage a private infrastructure of machines, i.e., a cloud platform and would like to optimize the scheduling of several requests submitted online by users. For the sake of simplicity of the presentation, the proposed economic model has two SLAs classes (qualitative and quantitative) with three Quality of Service for each SLA class (Premium, Advanced and Best effort). The consequence of this choice as well as the need to serve requests as they come have an impact on the algorithmic ways to consolidate an infrastructure. Indeed, our system proposes a new allocation heuristic that adapts the number of active machines in the cloud according to the global resources usage of all machines inside the infrastructure. This heuristic can be examined as a consolidation heuristic, based on the idea that the system can make reasonable choices, based on the SLAs, for the placement and the allocation of resources for each request. Experimentation with our system is conducted on Prezi (Web workload) and Google Cloud Data (HPC-oriented workload) traces, and they demonstrate the potential of our approach under different scenarios. From a methodological point of view, we propose a general framework which is limited in scope, for the sake of simplicity in reading the paper, with a small number of SLAs, but the idea can be extended to many more SLAs and performance metrics. In this way, the user or the provider operating the cloud have more latitude, thanks to our multi-criteria approach, to control the workload without a sacrifice on performance.
机译:本文介绍了基于与不同服务级别协议(SLA)课程相关的经济模式的新机会定期和资源整合系统。目标是解决管理机器私人基础设施的公司的问题,即云平台,并希望优化用户在线提交的几个请求的计划。为简单介绍了介绍,拟议的经济模式有两个SLA类(定性和定量),每个SLA级别有三种服务质量(优质,先进,最佳努力)。这种选择的结果以及作为服务要求的需要对算法的算法巩固基础设施的方式产生影响。实际上,我们的系统提出了一种新的分配启发式,根据基础设施内的所有机器的全球资源使用,适应云中的主动机器数量。这种启发式可以作为整合启发式审查,基于系统可以基于SLA的合理选择,用于放置和每个请求的资源分配。使用我们的系统进行实验在Prezi(Web工作负载)和Google云数据(HPC导向的工作负载)迹线上进行,它们在不同方案下展示了我们方法的潜力。从方法论的角度来看,为了简单地阅读纸张,我们提出了一个有限的一般框架,其范围是简单的,但少数SLA,但是这个想法可以扩展到更多的SLA和性能指标。通过这种方式,由于我们的多标准方法,用户或操作云的提供者具有更多的纬度,可以在没有牺牲性能的情况下控制工作负载。

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