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Efficient distributed algorithm for scheduling workload-aware jobs on multi-clouds

机译:高效分布式算法,用于在多云上调度工作负载感知作业

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Dynamic distributed algorithm for provisioning of resources has been proposed to support heterogeneous multi-cloud environment. Multi-cloud infrastructure heterogeneity implies the presence of more diverse sets of resources and constraints that aggravate competition among providers. Sigmoidal and logarithmic functions have been used as the utility functions to meet the indicated constraints in the Service Level Agreement (SLA). Spot instances as the elastic tasks can be supported with logarithmic functions while the algorithm always guaranteed sigmoidal functions have the priority over the elastic tasks. The model uses diverse sets of resources scheduled in a multi-clouds environment by the proposed Ranked method in a time window “slice”. The paper proposes multi-dimensional self-optimization problem in distributed autonomic computing systems to maximize the revenue and diminish cost of services in the pooled aggregated resources of multi-cloud environment.
机译:提出了用于提供资源的动态分布式算法来支持异构多云环境。多云基础设施异质性意味着存在更加多样化的资源和制约因素,使提供者之间的竞争加剧。 SigMoidal和对数函数已被用作实用程序函数,以满足服务级别协议(SLA)中的指示约束。当算法总是保证Sigmoider函数时,可以使用对数函数来支持弹性任务的现场实例,并在弹性任务中具有优先级。该模型在时间窗口“切片”中,使用所提出的排名方法在多云环境中计划的各种资源集。本文提出了分布式自主计算系统中的多维自我优化问题,以最大限度地提高多云环境汇总资源的收入和减少服务成本。

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