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RADIO INDIVIDUAL IDENTIFICATION VIA STABLE COMMUNICATION SIGNALS BASED ON SUBORDINATE COMPONENT ANALYSIS

机译:无线电单个识别通过基于从属分量分析的稳定通信信号

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In this paper, the wireless communication stable signal is decomposed into three components, i.e., communication waveforms, individual modulations and system noise. From the eigenvalue spectrum of the observed signal, it is found that the primary components, i.e., the several largest eigenvalues, correspond to the communication waveforms while those minimal components are caused by the noise. Meanwhile, the subordinate components can act as the features for individual identification. Accordingly, a novel method is proposed based on subordinate component analysis and real measuring data are provided to demonstrate its effectiveness.
机译:在本文中,无线通信稳定信号被分解成三个组件,即通信波形,各个调制和系统噪声。从观察到的信号的特征值谱来发现,发现初级分量,即几个最大的特征值对应于通信波形,而这些最小组件是由噪声引起的。同时,从属组件可以充当个人识别的特征。因此,基于从属分量分析和实际测量数据提出了一种新方法来证明其有效性。

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