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Novel alarm correlation analysis system based on association rules mining in telecommunication networks

机译:电信网中基于关联规则挖掘的新型告警关联分析系统

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摘要

Alarm correlation analysis system is an useful method and tool for analyzing alarms and finding the root cause of faults in telecommunication networks. Recently, the application of association rules mining becomes an important research area in alarm correlation analysis. In this paper, we propose a novel Association Rules Mining based Alarm Correlation Analysis System (ARM-ACAS) to find interesting association rules between alarm events. In order to mine some infrequent but important items, ARM-ACAS first uses neural network to classify the alarms with different levels. In addition, ARM-ACAS also exploits an optimization technique with the weighted frequent pattern tree structure to improve the mining efficiency. The system is both efficient and practical in discovering significant relationships of alarms as illustrated by experiments performed on simulated and real-world datasets.
机译:警报关联分析系统是一种有用的方法和工具,可用于分析警报并查找电信网络中故障的根本原因。近年来,关联规则挖掘的应用成为警报关联分析中的重要研究领域。在本文中,我们提出了一种新颖的基于关联规则挖掘的警报关联分析系统(ARM-ACAS),以发现警报事件之间有趣的关联规则。为了挖掘一些不常见但重要的项目,ARM-ACAS首先使用神经网络对不同级别的警报进行分类。此外,ARM-ACAS还利用加权频繁模式树结构开发了一种优化技术,以提高挖掘效率。该系统在发现警报的重要关系方面既高效又实用,如在模拟和真实数据集上进行的实验所示。

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