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Optimizing Resource allocation while handling SLA violations in Cloud Computing platforms

机译:在云计算平台处理SLA违规时优化资源分配

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In this paper, we study a resource allocation problem in the context of Cloud Computing, in which a set of Virtual Machines (VM) has to be allocated on a set of Physical Machines (PM). Each VM has a given demand (e.g. CPU demand), and each PM has a capacity. However, VMsonly use a fraction of their demand. The aim is to exploit the difference between the demand of the VM and its actual resource usage, to achieve a higher utilization on the PMs. However, the resource consumption of the VMs might change over time (while staying under its original demand), implying sometimes expensive "SLA violations" when the demand of some VMs is not satisfied because of overloaded PMs. Thus, while optimizing the global resource utilization of the PMs, it is necessary to ensure that at any moment a VM's need evolves, a few number of migrations (moving a VM from PM to PM) is sufficient to find a new configuration in which all the VMs' consumptions are satisfied. We model this problem using a fully dynamic bin packing approach and we present an algorithm ensuring a global utilization of the resources of 66%. Moreover, each time a PM is overloaded, at most one migration is sufficient to fall back in a configuration with no overloaded PM, and at most 3 different PMs are concerned by required migrations that may occur to keep the global resource utilization correct. This allows the platform to be highly resilient to a great number of changes.
机译:在本文中,我们在云计算的背景下,其中一组虚拟机(VM)的对一组物理机(PM)的待分配研究资源分配问题。每个VM具有给定的需求(例如,CPU需求),并且每个PM的容量。然而,VMsonly利用自己需求的一小部分。其目的是利用虚拟机和其实际资源使用需求之间的差异,实现对项目经理更高的利用率。但是,虚拟机的资源消耗可能会随时间(原来的需求下保持一段时间)的变化,这意味着有时昂贵的“SLA违规”时,一些虚拟机的需求并没有因为超载PM的满足。因此,同时优化了PM的全球资源利用率,既要保证在任何时刻虚拟机的需求演变,迁移的几号(移动虚拟机从PM到PM)就足以找到一个新的配置,其中所有虚拟机消费满意。使用一个完全动态的装箱方法和模型,我们这个问题,我们提出了一种算法,确保66%的资源的全球利用。此外,每次PM超载,最多一个迁移足以回落在没有重载PM的配置,以及至多3个不同的项目经理被可能发生,以保持全球资源利用正确的,需要迁移有关。这使得该平台具有高度弹性的变化的大量。

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