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Reliable Provisioning of Spot Instances for Compute-intensive Applications

机译:为计算密集型应用程序可靠地配置竞价型实例

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Cloud computing providers are now offering their unused resources for leasing in the spot market, which has been considered the first step towards a full-fledged market economy for computational resources. Spot instances are virtual machines (VMs) available at lower prices than their standard on-demand counterparts. These VMs will run for as long as the current price is lower than the maximum bid price users are willing to pay per hour. Spot instances have been increasingly used for executing compute-intensive applications. In spite of an apparent economical advantage, due to an intermittent nature of biddable resources, application execution times may be prolonged or they may not finish at all. This paper proposes a resource allocation strategy that addresses the problem of running compute-intensive jobs on a pool of intermittent virtual machines, while also aiming to run applications in a fast and economical way. To mitigate potential unavailability periods, a multifaceted fault-aware resource provisioning policy is proposed. Our solution employs price and runtime estimation mechanisms, as well as three fault-tolerance techniques, namely check pointing, task duplication and migration. We evaluate our strategies using trace-driven simulations, which take as input real price variation traces, as well as an application trace from the Parallel Workload Archive. Our results demonstrate the effectiveness of executing applications on spot instances, respecting QoS constraints, despite occasional failures.
机译:云计算提供商现在正在提供其未使用的资源以供在现货市场上租赁,这已被视为迈向成熟的计算资源市场经济的第一步。竞价型实例是价格低于其标准按需对等实例的虚拟机(VM)。只要当前价格低于用户每小时愿意支付的最高出价,这些虚拟机就会运行。竞价型实例已越来越多地用于执行计算密集型应用程序。尽管具有明显的经济优势,但由于可出价资源的间歇性,应用程序的执行时间可能会延长或根本无法完成。本文提出了一种资源分配策略,该策略可解决在间歇性虚拟机池上运行计算密集型作业的问题,同时还旨在以快速,经济的方式运行应用程序。为了减轻潜在的不可用时间,提出了多方面的故障感知资源供应策略。我们的解决方案采用价格和运行时估计机制以及三种容错技术,即检查点,任务重复和迁移。我们使用跟踪驱动的模拟来评估我们的策略,该模拟将实际价格变动跟踪以及Parallel Workload Archive中的应用跟踪作为输入。我们的结果证明了在偶发实例上执行应用程序的有效性,尽管偶尔会出现故障,但仍要遵守QoS约束。

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