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首页> 外文期刊>International journal of autonomous and adaptive communications systems >Automatic modulation recognition for DVB-S2 using pairwise support vector machines
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Automatic modulation recognition for DVB-S2 using pairwise support vector machines

机译:使用成对支持向量机对DVB-S2进行自动调制识别

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摘要

In this paper, a support vector machine (SVM) pairwise coupling algorithm is developed for classification of satellite communications signals used in second generation of digital video broadcasting via satellite (DVB-S2) standard. DVB-S2 standard adaptively uses one of QPSK, 8PSK, 16APSK, and 32APSK modulations. The proposed method extracts fourth and sixth order cumulants as features from the received signal. The features are given to a SVM pairwise coupling algorithm in which there is one binary SVM for each pair of modulation types. Finally the algorithm selects the modulation type chosen by the maximal number of pairwise SVMs as final decision. SVMs are trained by samples from different modulation types corrupted by Gaussian noise. The simulation results show that the proposed method allows higher recognition rates in comparison with previous methods, especially at low SNRs.
机译:本文提出了一种支持向量机(SVM)成对耦合算法,用于对第二代通过卫星(DVB-S2)数字广播的卫星通信信号进行分类。 DVB-S2标准自适应地使用QPSK,8PSK,16APSK和32APSK调制之一。所提出的方法从接收信号中提取四阶和六阶累积量作为特征。这些功能提供给SVM逐对耦合算法,其中每对调制类型都有一个二进制SVM。最终,算法选择由成对SVM的最大数量选择的调制类型作为最终决策。 SVM由来自受高斯噪声破坏的不同调制类型的样本训练。仿真结果表明,与以前的方法相比,该方法具有更高的识别率,尤其是在低信噪比的情况下。

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