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Shadow Replication: An Energy-Aware, Fault-Tolerant Computational Model for Green Cloud Computing

机译:影子复制:用于绿色云计算的节能,容错计算模型

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As the demand for cloud computing continues to increase, cloud service providers face the daunting challenge to meet the negotiated SLA agreement, in terms of reliability and timely performance, while achieving cost-effectiveness. This challenge is increasingly compounded by the increasing likelihood of failure in large-scale clouds and the rising impact of energy consumption and CO2 emission on the environment. This paper proposes Shadow Replication, a novel fault-tolerance model for cloud computing, which seamlessly addresses failure at scale, while minimizing energy consumption and reducing its impact on the environment. The basic tenet of the model is to associate a suite of shadow processes to execute concurrently with the main process, but initially at a much reduced execution speed, to overcome failures as they occur. Two computationally-feasible schemes are proposed to achieve Shadow Replication. A performance evaluation framework is developed to analyze these schemes and compare their performance to traditional replication-based fault tolerance methods, focusing on the inherent tradeoff between fault tolerance, the specified SLA and profit maximization. The results show that Shadow Replication leads to significant energy reduction, and is better suited for compute-intensive execution models, where up to 30% more profit increase can be achieved due to reduced energy consumption.
机译:随着对云计算需求的持续增长,云服务提供商要在可靠性和及时性方面实现成本效益,同时要满足达成的SLA协议的艰巨挑战。大型云发生故障的可能性越来越大,能源消耗和CO 2 排放对环境的影响越来越大,这一挑战变得越来越复杂。本文提出了影子复制(Shadow Replication),这是一种用于云计算的新型容错模型,可无缝解决大规模故障,同时将能耗降至最低,并减少其对环境的影响。该模型的基本原则是将一组影子进程与主进程并发执行关联,但是最初会以大大降低的执行速度来克服失败发生的可能性。提出了两种在计算上可行的方案来实现卷影复制。开发了一个性能评估框架来分析这些方案,并将其性能与传统的基于复制的容错方法进行比较,重点是容错,指定的SLA和利润最大化之间的固有权衡。结果表明,影子复制可显着减少能耗,并且更适合于计算密集型执行模型,由于减少了能耗,因此可以实现高达30%的利润增长。

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