协调CPU和内存弹性控制器以满足业务响应时间约束

Soodeh Farokhi, Ewnetu Bayuh Lakew, C. Klein, I. Brandić, E. Elmroth
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引用次数: 38

摘要

垂直弹性被认为是通过细粒度资源配置高效利用云基础设施的关键因素,例如,允许将CPU周期短至几秒钟。然而,很少有研究支持垂直弹性,因为垂直弹性主要集中在单个资源(CPU或内存)上,而应用程序在执行的不同阶段可能需要这些资源的任意组合。尽管如此,如果没有适当的编排,现有技术不能按原样使用,因为它们可能导致资源供应不足或过度供应,从而导致性能差异等不良行为。本文的贡献是利用模糊控制方法作为协调技术设计了一个自主资源控制器。该控制器动态调整所需的CPU和内存的数量,以满足应用程序的性能目标,即其响应时间。我们在基于开放和封闭系统模型生成的工作负载跟踪下,使用三种不同的交互式基准测试应用程序(RUBiS、RUBBoS和Olio)执行彻底的实验评估。结果表明,使用所提出的模糊控制的内存和CPU弹性控制器的协调提供了适量的资源,以满足响应时间目标,而不会过度使用任何资源类型。相反,在控制器之间没有协调的情况下,系统的行为是不可预测的,例如,应用程序的性能可能会得到满足,但代价是其中一个资源的过度供应,或者由于相互冲突的决策导致严重的资源短缺而导致应用程序崩溃。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Coordinating CPU and Memory Elasticity Controllers to Meet Service Response Time Constraints
Vertical elasticity is recognized as a key enabler for efficient resource utilization of cloud infrastructure through fine-grained resource provisioning, e.g., allowing CPU cycles to be leased for as short as a few seconds. However, little research has been done to support vertical elasticity where the focus is mostly on a single resource, either CPU or memory, while an application may need arbitrary combinations of these resources at different stages of its execution. Nonetheless, the existing techniques cannot be readily used as-is without proper orchestration since they may lead to either under-or over-provisioning of resources and consequently result in undesirable behaviors such as performance disparity. The contribution of this paper is the design of an autonomic resource controller using a fuzzy control approach as a coordination technique. The novel controller dynamically adjusts the right amount of CPU and memory required to meet the performance objective of an application, namely its response time. We perform a thorough experimental evaluation using three different interactive benchmark applications, RUBiS, RUBBoS, and Olio, under workload traces generated based on open and closed system models. The results show that the coordination of memory and CPU elasticity controllers using the proposed fuzzy control provisions the right amount of resources to meet the response time target without over-committing any of the resource types. In contrast, with no coordinating between controllers, the behaviour of the system is unpredictable e.g., the application performance may be met but at the expense of over-provisioning of one of the resources, or application crashing due to severe resource shortage as a result of conflicting decisions.
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