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Decision Support System for Alarm Correlation in GSM Networks Based on Artificial Neural Networks

机译:基于人工神经网络的GSM网络报警关联决策支持系统

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As mobile networks grow in size and complexity, huge streams of alarms are flooding the operation and maintenance center (OMC). Thus, the operator needs a decision support system that converts these massive alarms to manageable magnitudes. Alarm correlation is very important in improving the service and the efficiency of the maintenance team in mobile networks and in modern telecommunications networks. As any fault in the mobile network results in a number of alarms, correlating these different alarms and identifying their source are a major problem in fault management. In this paper, an artificial neural network model is proposed to interpret the alarm stream, thereby simplifying the decision-making process and shortening the operator's reaction time. MATLAB program is used as programming tool to develop, implement, and compare between different types of designed artificial neural network models. To assist the operators to take fast decision and detect the root cause of the alarms, the alarms and the result of the artificial neural networks model are visualized in real time on the Google Earth application.
机译:随着移动网络规模和复杂性的增长,大量警报涌入运维中心(OMC)。因此,操作员需要一个决策支持系统,将这些大量警报转换为可管理的幅度。警报关联对于提高移动网络和现代电信网络中维护团队的服务和效率非常重要。由于移动网络中的任何故障都会导致大量警报,因此将这些不同的警报关联起来并确定其来源是故障管理中的主要问题。本文提出了一种人工神经网络模型来解释报警流,从而简化了决策过程并缩短了操作员的反应时间。 MATLAB程序用作编程工具,用于在不同类型的设计人工神经网络模型之间进行开发,实现和比较。为了帮助操作员做出快速决策并检测警报的根本原因,在Google Earth应用程序上实时可视化警报和人工神经网络模型的结果。

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