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Generic resource allocation metrics and methods for heterogeneous cloud infrastructures

机译:异构云基础架构的通用资源分配指标和方法

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With the advent of cloud computing, computation has become a commodity used by customers to access computing resources with no up-front investment, but as an on-demand and pay-as-you-go basis. Cloud providers make their infrastructure available to public so that anyone can obtain a virtual machine (VM) instance that can be remotely configured and managed. The cloud infrastructure is a large resource pool, allocated to VM instances on demand. In a multi-resource heterogeneous cloud, allocation state of the data center needs to be captured in metrics that can be used by allocation algorithms to make proper assignments of virtual machines to servers. In this paper, we propose two novel metrics reflecting the current state of VM allocation. These metrics can be used by online and offline VM placement algorithms in judging which placement would be better. We also propose multi-dimensional resource allocation heuristic algorithms showing how metrics can be used. We studied the performance of proposed methods and compared them with the methods from the literature. Results show that our metrics perform significantly better than the others and can be used to efficiently place virtual machines with high success rate.
机译:随着云计算的出现,计算已成为客户使用的商品,以访问没有升级投资的计算资源,而是作为按需和支付的基础。云提供商使其基础架构可供公共使用,以便任何人都可以获取可以远程配置和管理的虚拟机(VM)实例。云基础架构是一个大资源池,按需分配给VM实例。在多资源异构云中,需要在可以通过分配算法使用的度量标准中捕获数据中心的分配状态,以便将虚拟机分配给服务器。在本文中,我们提出了两种新的度量,反映了VM分配的当前状态。这些指标可以通过在线和离线VM放置算法来判断哪个放置更好。我们还提出了多维资源分配启发式算法,显示了如何使用度量。我们研究了提出的方法的性能,并将其与文献中的方法进行了比较。结果表明,我们的指标比其他指标更好地表现得明显好,可用于高效地放置高成功率的虚拟机。

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