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A Novel Modulation Classification Approach Using Gabor Filter Network

机译:Gabor滤波网络的调制分类新方法

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摘要

A Gabor filter network based approach is used for feature extraction and classification of digital modulated signals by adaptively tuning the parameters of Gabor filter network. Modulation classification of digitally modulated signals is done under the influence of additive white Gaussian noise (AWGN). The modulations considered for the classification purpose are PSK 2 to 64, FSK 2 to 64, and QAM 4 to 64. The Gabor filter network uses the network structure of two layers; the first layer which is input layer constitutes the adaptive feature extraction part and the second layer constitutes the signal classification part. The Gabor atom parameters are tuned using Delta rule and updating of weights of Gabor filter using least mean square (LMS) algorithm. The simulation results show that proposed novel modulation classification algorithm has high classification accuracy at low signal to noise ratio (SNR) on AWGN channel.
机译:通过自适应地调整Gabor滤波器网络的参数,基于Gabor滤波器网络的方法可用于特征提取和数字调制信号的分类。在加性高斯白噪声(AWGN)的影响下完成了数字调制信号的调制分类。考虑用于分类目的的调制是PSK 2至64,FSK 2至64和QAM 4至64。作为输入层的第一层构成自适应特征提取部分,而第二层构成信号分类部分。使用Delta规则调整Gabor原子参数,并使用最小均方(LMS)算法更新Gabor滤波器的权重。仿真结果表明,所提出的新型调制分类算法在低信噪比的信噪比下具有较高的分类精度。

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