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Towards more intelligent network management: service-oriented proactive fault management using KDD techniques

机译:迈向更加智能的网络管理:使用KDD技术的面向服务的主动故障管理

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In this paper, we present a knowledge discovery system, Data Fusion Supported Frequent Episodes Discovery (DFSPED), for service-oriented proactive fault management in communication networks. The concept of network service topology is proposed first, and context-free grammars and network service dependence graph are used to model the service-oriented proactive fault management. Secondly, with the approaches of data fusion, two catalogues of important fault-pertinent data sources, i.e., service-oriented trouble-reporting data and real time alarm messages, are fused by temporal and spatial associations. KDD techniques are applied to perform incremental mining in the fused sequential events, finding frequent episodes among faults, alarms and service. Fast restoration of key service interruption, fault prediction and preventive maintenance benefit a lot from the discovered episodes.
机译:在本文中,我们提出了一种知识发现系统,即数据融合支持的频繁情节发现(DFSPED),用于通信网络中面向服务的主动故障管理。首先提出了网络服务拓扑的概念,并使用了上下文无关文法和网络服务依赖图来对面向服务的主动故障管理进行建模。其次,通过数据融合的方法,通过时空关联来融合两个重要的与故障有关的数据源的目录,即面向服务的故障报告数据和实时警报消息。 KDD技术用于在融合的顺序事件中执行增量挖掘,从而在故障,警报和服务中发现频繁的事件。从发现的事件中可以快速恢复关键服务中断,故障预测和预防性维护。

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