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Digital Modulation Identification Model Using Wavelet Transform and Statistical Parameters

机译:利用小波变换和统计参数的数字调制识别模型

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A generalized modulation identification scheme is developed and presented. With the help of this scheme, the automatic modulation classification and recognition of wireless communication signals with a priori unknown parameters are possible effectively. The special features of the procedure are the possibility to adapt it dynamically to nearly all modulation types, and the capability to identify. The developed scheme based on wavelet transform and statistical parameters has been used to identify M-ary PSK, M-ary QAM, GMSK, and M-ary FSK modulations. The simulated results show that the correct modulation identification is possible to a lower bound of 5 dB. The identification percentage has been analyzed based on the confusion matrix. When SNR is above 5 dB, the probability of detection of the proposed system is more than 0.968. The performance of the proposed scheme has been compared with existing methods and found it will identify all digital modulation schemes with low SNR.
机译:提出并提出了一种广义的调制识别方案。借助该方案,可以有效地对具有先验未知参数的无线通信信号进行自动调制分类和识别。该程序的特殊功能是可以使它动态适应几乎所有调制类型,并具有识别能力。基于小波变换和统计参数的已开发方案已用于识别Mary PSK,Mary QAM,GMSK和Mary FSK调制。仿真结果表明,正确的调制识别有可能达到5 dB的下限。已基于混淆矩阵分析了识别百分比。当SNR高于5 dB时,所提出系统的检测概率大于0.968。该提议方案的性能已与现有方法进行了比较,发现它将识别出所有具有低SNR的数字调制方案。

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