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Detection of Spoofing Attack using Machine Learning based on Multi-Layer Neural Network in Single-Frequency GPS Receivers

机译:单频GPS接收机中基于多层神经网络的机器学习欺骗攻击检测

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摘要

The importance of the Global Positioning System (GPS) and related electronic systems continues to increase in a range of environmental, engineering and navigation applications. However, civilian GPS signals are vulnerable to Radio Frequency (RF) interference. Spoofing is an intentional intervention that aims to force a GPS receiver to acquire and track invalid navigation data. Analysis of spoofing and authentic signal patterns represents the differences as phase, energy and imaginary components of the signal. In this paper, early-late phase, delta, and signal level as the three main features are extracted from the correlation output of the tracking loop. Using these features, spoofing detection can be performed by exploiting conventional machine learning algorithms such as K-Nearest Neighbourhood (KNN) and naive Bayesian classifier. A Neural Network (NN) as a learning machine is a modern computational method for collecting the required knowledge and predicting the output values in complicated systems. This paper presents a new approach for GPS spoofing detection based on multi-layer NN whose inputs are indices of features. Simulation results on a software GPS receiver showed adequate detection accuracy was obtained from NN with a short detection time.
机译:在各种环境,工程和导航应用中,全球定位系统(GPS)和相关电子系统的重要性不断提高。但是,民用GPS信号容易受到射频(RF)干扰。欺骗是一种故意干预,旨在迫使GPS接收器获取和跟踪无效的导航数据。对欺骗信号和真实信号模式的分析将差异表示为信号的相位,能量和虚部。本文从跟踪环路的相关输出中提取了晚期相位,增量和信号电平这三个主要特征。使用这些功能,可以通过利用传统的机器学习算法(例如K最近邻(KNN)和朴素的贝叶斯分类器)来执行欺骗检测。神经网络(NN)作为学习机是一种现代的计算方法,用于收集所需的知识并预测复杂系统中的输出值。本文提出了一种基于多层神经网络的GPS欺骗检测新方法,其输入是特征指标。在软件GPS接收器上的仿真结果表明,从NN获得了足够的检测精度,而且检测时间很短。

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