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Automatic recognition of radio signals using a hybrid intelligent technique

机译:使用混合智能技术自动识别无线电信号

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Automatic signal type recognition plays an important role in various applications. In this paper we have proposed a pattern recognition method for identification of digital signal types. In this technique a suitable combination of the higher order moments (up to eighth) and the higher order cumulants (up to eight) and spectral features are proposed a the effective features. As the classifier we have proposed a multi-class support vectors machine (SVM) based classifier that is constructed via one-against-all method. We have examined the different kernels of SVMs and compare the performances of them for automatic digital signal type identification. Experimental results show that the Gaussian radial basis function (GRBF) kernel has better performance than other kernels. Then we have used a particle swarm optimizer for selection the parameters of the classifier. Simulation results show that the proposed identifier has very high accuracy for identification of digital signal types even at low levels of SNR.
机译:自动信号类型识别在各种应用中起着重要作用。在本文中,我们提出了一种用于识别数字信号类型的模式识别方法。在该技术中,提出了高阶矩(至多八分之一)和高阶累积量(至多八分之一)以及频谱特征的适当组合是有效特征。作为分类器,我们提出了一种基于多类支持向量机(SVM)的分类器,该分类器是通过反对所有的方法构造的。我们检查了SVM的不同内核,并比较了它们在自动数字信号类型识别方面的性能。实验结果表明,高斯径向基函数(GRBF)核具有比其他核更好的性能。然后,我们使用了粒子群优化器来选择分类器的参数。仿真结果表明,即使在低信噪比的情况下,所提出的标识符也具有很高的识别数字信号类型的准确性。

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