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首页> 外文期刊>Internet of Things Journal, IEEE >Deep Network Analyzer (DNA): A Big Data Analytics Platform for Cellular Networks
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Deep Network Analyzer (DNA): A Big Data Analytics Platform for Cellular Networks

机译:深度网络分析仪(DNA):用于蜂窝网络的大数据分析平台

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摘要

In this paper, we present deep network analyzer (DNA), a big data analytics platform for anomaly detection (AD) and root cause analysis (RCA) in mobile wireless networks. DNA is motivated by the growing scale and complexity of cellular networks along with the lack of advanced big data analytics tools for effective network management. It abstracts the RCA process into two modules, namely rule (fingerprint) learning and the module of AD and fingerprint matching. We first develop a rare association rule mining method to learn the symptoms of network anomalies and to build a fingerprint knowledge database from the historic data. Then a statistical machine learning approach is employed to identify the anomalies within the incoming dataset collected via various probes in the network and map the fingerprints of the detected anomalies to the rules in the knowledge database. The DNA platform has been tested using the real production data from the field and has been shown to be a highly effective platform for AD and RCA for large-scale cellular systems serving tens of millions of mobile users.
机译:在本文中,我们介绍了深度网络分析仪(DNA),这是一个用于移动无线网络中异常检测(AD)和根本原因分析(RCA)的大数据分析平台。 DNA受到蜂窝网络规模和复杂性不断增长的推动,同时缺乏用于有效网络管理的高级大数据分析工具。它将RCA过程抽象为两个模块,即规则(指纹)学习以及AD和指纹匹配模块。我们首先开发一种稀有的关联规则挖掘方法,以学习网络异常的症状并根据历史数据构建指纹知识数据库。然后,采用统计机器学习方法来识别通过网络中各种探测器收集的传入数据集中的异常,并将检测到的异常的指纹映射到知识数据库中的规则。 DNA平台已使用来自该领域的实际生产数据进行了测试,并已被证明是AD和RCA的高效平台,适用于为数千万移动用户服务的大规模蜂窝系统。

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