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A cost-aware mechanism for optimized resource provisioning in cloud computing

机译:云计算中优化资源供应的成本感知机制

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摘要

Due to the recent wide use of computational resources in cloud computing, new resource provisioning challenges have been emerged. Resource provisioning techniques must keep total costs to a minimum while meeting the requirements of the requests. According to widely usage of cloud services, it seems more challenging to develop effective schemes for provisioning services cost-effectively; we have proposed a novel learning based resource provisioning approach that achieves cost-reduction guarantees of demands. The contributions of our optimized resource provisioning (ORP) approach are as follows. Firstly, it is designed to provide a cost-effective method to efficiently handle the provisioning of requested applications; while most of the existing models allow only workflows in general which cares about the dependencies of the tasks, ORP performs based on services of which applications comprised and cares about their efficient provisioning totally. Secondly, it is a learning automata-based approach which selects the most proper resources for hosting each service of the demanded application; our approach considers both cost and service requirements together for deploying applications. Thirdly, a comprehensive evaluation is performed for three typical workloads: data-intensive, process-intensive and normal applications. The experimental results show that our method adapts most of the requirements efficiently, and furthermore the resulting performance meets our design goals.
机译:由于近期在云计算中使用计算资源,已出现新的资源供应挑战。资源供应技术必须在满足请求的要求时将总成本保持在最低规模。根据广泛使用云服务,似乎更具挑战性,可以有效地开发提供服务的有效计划;我们提出了一种基于新的学习资源供应方法,实现了需求的成本减少担保。我们优化资源供应(ORP)方法的贡献如下。首先,旨在提供一种经济高效的方法,可以有效地处理所请求的应用程序的配置;虽然大多数现有模型仅允许工作流程一般,这是关心任务的依赖性,ORP基于所构成的应用程序和关心其有效供应的服务。其次,它是一种基于学习自动机的方法,它选择最适合托管所需应用程序的每个服务;我们的方法将成本和服务要求共同考虑部署应用程序。第三,为三个典型工作负载进行了全面的评估:数据密集型,流程密集型和正常应用。实验结果表明,我们的方法有效地适应了大部分要求,此外,由此产生的性能符合我们的设计目标。

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