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Analysis, Modeling and Simulation of Workload Patterns in a Large-Scale Utility Cloud

机译:大型公用事业云中工作量模式的分析,建模和仿真

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摘要

Understanding the characteristics and patterns of workloads within a Cloud computing environment is critical in order to improve resource management and operational conditions while Quality of Service (QoS) guarantees are maintained. Simulation models based on realistic parameters are also urgently needed for investigating the impact of these workload characteristics on new system designs and operation policies. Unfortunately there is a lack of analyses to support the development of workload models that capture the inherent diversity of users and tasks, largely due to the limited availability of Cloud tracelogs as well as the complexity in analyzing such systems. In this paper we present a comprehensive analysis of the workload characteristics derived from a production Cloud data center that features over 900 users submitting approximately 25 million tasks over a time period of a month. Our analysis focuses on exposing and quantifying the diversity of behavioral patterns for users and tasks, as well as identifying model parameters and their values for the simulation of the workload created by such components. Our derived model is implemented by extending the capabilities of the CloudSim framework and is further validated through empirical comparison and statistical hypothesis tests. We illustrate several examples of this work's practical applicability in the domain of resource management and energy-efficiency.
机译:为了在维持服务质量(QoS)保证的同时改善资源管理和操作条件,了解云计算环境中工作负载的特征和模式至关重要。为了研究这些工作负载特征对新系统设计和操作策略的影响,也迫切需要基于实际参数的仿真模型。不幸的是,缺乏分析来支持捕获用户和任务固有多样性的工作量模型的开发,这在很大程度上是由于Cloud跟踪日志的可用性有限以及分析此类系统的复杂性。在本文中,我们对来自生产云数据中心的工作负载特征进行了全面分析,该数据中心具有900多个用户,每个月提交大约2500万个任务。我们的分析重点在于揭示和量化用户和任务的行为模式的多样性,以及识别模型参数及其值,以模拟此类组件创建的工作负载。我们的派生模型通过扩展CloudSim框架的功能来实现,并通过经验比较和统计假设检验得到进一步验证。我们举例说明了这项工作在资源管理和能源效率领域的实际适用性。

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