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首页> 外文期刊>Procedia Computer Science >A System Architecture for Real-time Anomaly Detection in Large-scale NFV Systems
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A System Architecture for Real-time Anomaly Detection in Large-scale NFV Systems

机译:大型NFV系统中实时异常检测的系统架构

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Virtualization as a key IT technology has developed to a predominant model in data centers in recent years. The flexibility regarding scaling-out and migration of virtual machines for seamless maintenance has enabled a new level of continuous operation and changed service provisioning significantly. Meanwhile, services from domains striving for highest possible availability – e.g. from the telecommunications domain – are adopting this approach as well and are investing significant efforts into the development of Network Function Virtualization (NFV). However, the availability requirements for such infrastructures are much higher than typical for IT services built upon standard software with off-the-shelf hardware. They require sophisticated methods and mechanisms for fast detection and recovery of failures. This paper presents a set of methods and an implemented prototype for anomaly detection in cloud-based infrastructures with specific focus on the deployment of virtualized network functions. The framework is built upon OpenStack, which is the current de-facto standard of open-source cloud software and aims at increasing the availability and fault tolerance level by providing an extensive monitoring and analysis pipeline able to detect failures or degraded performance in real-time. The indicators for anomalies are created using supervised and non-supervised classification methods and preliminary experimental measurements showed a high percentage of correctly identified anomaly situations. After a successful failure detection, a set of pre-defined countermeasures is activated in order to mask or repair outages or situations with degraded performance.
机译:近年来,虚拟化作为关键的IT技术已发展成为数据中心的主流模型。虚拟机的横向扩展和迁移以实现无缝维护的灵活性已使连续操作达到了新的水平,并显着改变了服务供应。同时,来自域的服务正在争取尽可能高的可用性,例如来自电信领域的公司也正在采用这种方法,并且在网络功能虚拟化(NFV)的开发上投入了大量的精力。但是,此类基础结构的可用性要求远远高于基于标准软件和现成硬件构建的IT服务的典型要求。他们需要复杂的方法和机制来快速检测和恢复故障。本文介绍了一套用于基于云的基础架构中的异常检测的方法和一个实现的原型,特别着重于虚拟化网络功能的部署。该框架基于OpenStack,OpenStack是当前开源云软件的事实上的标准,旨在通过提供广泛的监视和分析管道来提高可用性和容错级别,以实时检测故障或性能下降。 。异常指标是使用监督和非监督分类方法创建的,初步的实验测量结果显示,正确识别的异常情况所占的百分比很高。成功检测到故障后,将激活一组预定义的对策,以掩盖或修复性能下降的停机或情况。

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