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A Novel Special Emitter Identification Method Based on Improved Subclass Discriminant Analysis

机译:一种新的特殊发射极识别方法,基于改进的子类判别分析

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Radio frequency fingerprinting (RFF) is used to uniquely identify individual radios by exploiting the radio frequency characteristics. Often attributing to the phase ambiguity, the features of an emitter may split into several clusters, in this case, the traditional feature extraction methods, such as Linear Discriminant Analysis (LDA), Subclass Discriminant Analysis (SDA), lose efficacy. This paper investigates the problem of feature extraction and presents an improved SDA method. By modifying the clustering algorithm and replacing the sample covariance matrix with within-subclass scatter matrix, our method can achieve better performance.
机译:射频指纹(RFF)用于通过利用射频特性唯一地识别单个无线电。通常归因于相模糊,发射器的特征可以分成几个簇,在这种情况下,传统的特征提取方法,例如线性判别分析(LDA),亚类判别分析(SDA),失去疗效。本文研究了特征提取问题,提出了一种改进的SDA方法。通过修改聚类算法并用子类分布矩阵替换样本协方差矩阵,我们的方法可以实现更好的性能。

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