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Signal Analysis and Classification of Digital Communication Signals using Adaptive Smooth-Windowed Wigner-Ville Distribution

机译:应用自适应平滑窗口的Wigner-Ville分布信号分析与数字通信信号分类

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Signals in a non cooperative communication environment such as in the High Frequency (HF) spectrum are generally unknown in nature. There is a need for true spectrum monitoring where the information of the signal is made known as in spectrum management and intelligence gathering. In the spectrum surveillance system, the features that are estimated are: the measurement of signal strength and carrier frequency, the location of transmitters, estimation of modulation parameters and the classifications of signals. This paper describes the design and implement a spectrum monitoring system which is capable to analyze and classify the basic types of digital modulation signals such as ASK and FSK, and the more complex M-ary FSK. First, the signal is represented optimally using adaptive smooth-windowed Wigner-Ville (SWWVD) representation. The separable kernel of SWWVD is designed from the input signal to give the most optimal representation for each signal. Then various signal parameters is extracted from the representation for classification. A rules based approach is used as a classifier. The robustness of the system is tested in the presence of additive white Gaussian noise. On the average, the classification accuracy is 70 percent for signal-to-noise ratio (SNR) of 2 dB. Thus, the results show that the system gives reliable analysis and classification of signals in an uncooperative communication environment even if the received signal is weak.
机译:诸如在高频(HF)谱中的非协作通信环境中的信号通常是本质上的缺点。需要真正的频谱监测,其中通过频谱管理和智能收集中称为信号的信息。在频谱监控系统中,估计的特征是:信号强度和载波频率的测量,发射机的位置,调制参数的估计和信号的分类。本文介绍了设计和实现了一种频谱监测系统,能够分析和分类如询问和FSK的数字调制信号的基本类型,以及更复杂的M-ARY FSK。首先,使用自适应平滑窗口的Wigner-Ville(SWWVD)表示,该信号最佳地表示。 SWWVD的可分离内核由输入信号设计,以给出每个信号的最佳表示。然后从分类的表示中提取各种信号参数。基于规则的方法用作分类器。在存在的白色高斯噪声存在下测试系统的稳健性。在平均值,分类精度为2 dB的信噪比(SNR)的70%。因此,结果表明,即使接收信号较弱,该系统也能够在不合作的通信环境中提供可靠的分析和分类。

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