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Managing Uncertainty in Autonomic Cloud Elasticity Controllers

机译:管理自主云弹性控制器中的不确定性

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Elasticity allows a cloud system to maintain an optimal user experience by automatically acquiring and releasing resources. Autoscaling-adding or removing resources automatically on the fly-involves specifying threshold-based rules to implement elasticity policies. However, the elasticity rules must be specified through quantitative values, which requires cloud resource management knowledge and expertise. Furthermore, existing approaches don't explicitly deal with uncertainty in cloud-based software, where noise and unexpected events are common. The authors propose a control-theoretic approach that manages the behavior of a cloud environment as a dynamic system. They integrate a fuzzy cloud controller with an online learning mechanism, putting forward a framework that takes the human out of the dynamic adaptation loop and can cope with various sources of uncertainty in the cloud.
机译:弹性允许云系统通过自动获取和释放资源来维持最佳的用户体验。快速自动添加或删除资源自动伸缩涉及指定基于阈值的规则以实施弹性策略。但是,必须通过定量值来指定弹性规则,这需要云资源管理知识和专业知识。此外,现有的方法不能明确地解决基于云的软件中的不确定性问题,在这种情况下,噪声和意外事件很常见。作者提出了一种控制理论方法,可将云环境的行为作为动态系统进行管理。他们将模糊云控制器与在线学习机制集成在一起,提出了一个框架,该框架可以使人摆脱动态适应循环,并可以应对云中各种不确定性源。

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