基于互联网的系统中支持自主决策的自检机制

M. Andreolini, S. Casolari, M. Colajanni
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引用次数: 1

摘要

任何自主系统都必须实现自动捕获有关内部状态的最重要信息的机制,并使监测系统适应内部和外部条件。我们将这些活动称为自检,并在基于internet的服务的背景下考虑它们,这些服务受到以突发到达和重尾分布为特征的工作负载的影响。驱动这些系统的绝大多数机制必须根据系统资源过去和/或现在的负载条件做出快速决策。在这种情况下,自检需要充分表示系统资源的负载行为,这使得在软实时约束下执行良好的操作成为可能。在本文中,我们通过大量的实验证明了基于线性和非线性模型(如指数移动平均和90百分位模型)的负荷分析和决策的必要性。所有考虑的模型都应用于一个多层的基于web的系统,该系统在操作系统级别使用合适的自检机制进行检测。然而,结果可以扩展到其他基于internet的环境,其中系统具有相似的工作负载和资源行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Self-Inspection Mechanisms for the Support of Autonomic Decisions in Internet-Based Systems
Any autonomic system must implement mechanisms to automatically capture the most significant information about the internal state and also adapt the monitoring system to internal and external conditions. We refer to these activities as self-inspection and we consider them in the context of Internet-based services that are subject to workloads characterized by burst arrivals and heavy-tailed distributions. The large majority of the mechanisms driving these systems must take fast decisions on the basis of past and/or present load conditions of the system resources. In this context, self-inspection requires an adequate representation of the load behavior of the system resources that makes it possible to perform good actions under soft real-time constraints. In this paper, we show through a large set of experiments the need of basing load analyses and decisions on linear and non-linear models, such as the exponential moving average and the 90-percentile models. All the considered models are applied to a multi-tier Web-based system that is instrumented with suitable self-inspection mechanisms at operating system level. However, the results can be extended to other Internet-based contexts where the systems are characterized by similar workload and resource behaviors.
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