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An Attribute-Based Availability Model for Large Scale IaaS Clouds with CARMA

机译:使用CARMA的大规模IaaS云的基于属性的可用性模型

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High availability is one of the core properties of Infrastructure as a Service (IaaS) and ensures that users have anytime access to on-demand cloud services. However, significant variations of workflow and the presence of super-tasks, mean that heterogeneous workload can severely impact the availability of IaaS clouds. Although previous work has investigated global queues, VM deployment, and failure of PMs, two aspects are yet to be fully explored: one is the impact of task size and the other is the differing features across PMs such as the variable execution rate and capacity. To address these challenges we propose an attribute-based availability model of large scale IaaS developed in the formal modeling language CARMA. The size of tasks in our model can be a fixed integer value or follow the normal, uniform or log-normal distribution. Additionally, our model also provides an easy approach to investigating how to arrange the slack and normal resources in order to achieve availability levels. The two goals of our work are providing an analysis of the availability of IaaS and showing that the use of CARMA allows us to easily model complex phenomena that were not readily captured by other existing approaches.
机译:高可用性是基础架构即服务(IaaS)的核心属性之一,可确保用户随时随地访问按需云服务。但是,工作流程的显着变化和超级任务的存在意味着异构工作负载会严重影响IaaS云的可用性。尽管先前的工作已经调查了全局队列,VM部署和PM的故障,但仍有两个方面需要充分探讨:一个是任务大小的影响,另一个是跨PM的不同功能,例如可变的执行速度和容量。为了应对这些挑战,我们提出了使用正式建模语言CARMA开发的大规模IaaS的基于属性的可用性模型。我们模型中的任务大小可以是固定的整数值,也可以遵循正态,均匀或对数正态分布。此外,我们的模型还提供了一种简单的方法来调查如何安排松弛资源和常规资源,以实现可用性级别。我们工作的两个目标是对IaaS可用性进行分析,并表明CARMA的使用使我们能够轻松地对其他现有方法无法轻易捕获的复杂现象进行建模。

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