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An Empirical Analysis of Amazon EC2 Spot Instance Features Affecting Cost-Effective Resource Procurement

机译:影响成本效益型资源采购的Amazon EC2竞价型实例功能的实证分析

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Many cost-conscious public cloud workloads ("tenants") are turning to Amazon EC2's spot instances because, on average, these instances offer significantly lower prices (up to 10 times lower) than on-demand and reserved instances of comparable advertised resource capacities. To use spot instances effectively, a tenant must carefully weigh the lower costs of these instances against their poorer availability. Toward this, we empirically study four features of EC2 spot instance operation that a cost-conscious tenant may find useful to model. Using extensive evaluation based on historical spot instance data, we show shortcomings in the state-of-the-art modeling of these features that we overcome. As an extension to our prior work, we conduct data analysis on a rich dataset of the latest spot price traces collected from a variety of EC2 spot markets. Our analysis reveals many novel properties of spot instance operation, some of which offer predictive value whereas others do not. Using these insights, we design predictors for our features that offer a balance between computational efficiency (allowing for online resource procurement) and cost efficacy. We explore "case studies" wherein we implement prototypes of dynamic spot instance procurement advised by our predictors for two types of workloads. Compared to the state of the art, our approach achieves (ⅰ) comparable cost but much better performance (fewer bid failures) for a latency-sensitive in-memory Memcached cache and (ⅱ) an additional 18% cost savings with comparable (if not better than) performance for a delay-tolerant batch workload.
机译:许多具有成本意识的公共云工作负载(“租户”)转向Amazon EC2的现货实例,因为与具有相同广告资源容量的按需实例和预留实例相比,这些实例平均提供的价格低得多(最多低10倍)。为了有效使用现货实例,租户必须仔细权衡这些实例的较低成本与较差的可用性。为此,我们通过经验研究EC2竞价型实例操作的四个功能,这对精打细算的租户可能会有所帮助。使用基于历史现场实例数据的广泛评估,我们展示了我们克服的这些功能的最新模型的缺点。作为我们先前工作的扩展,我们对从各种EC2现货市场收集的最新现货价格轨迹的丰富数据集进行数据分析。我们的分析揭示了竞价型实例操作的许多新颖属性,其中一些提供了预测价值,而另一些则没有。利用这些见解,我们可以为我们的功能设计预测器,以在计算效率(允许在线资源采购)和成本效益之间取得平衡。我们探索“案例研究”,其中我们实现了由预测器建议的针对两种类型的工作负载的动态竞价型实例采购的原型。与现有技术相比,我们的方法实现了(ⅰ)可比的成本,但对于延迟敏感的内存中Memcached缓存,性能达到了(ⅰ)更好的性能(更少的出价失败),并且(ⅱ)与可比的(如果没有,则)节省了18%的成本性能优于延迟容忍的批处理工作负载。

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