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Nonlinearity Estimation for Specific Emitter Identification in Multipath Channels

机译:多径信道中特定发射器识别的非线性估计

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摘要

We present a radio frequency (RF) front-end nonlinearity estimator that is based on the knowledge of a training sequence to perform specific emitter identification (SEI), which discerns radio emitters of interest. Design and fabrication variations provide unique signal signatures for each emitter, and we extract those characteristics through the estimation of transmitter nonlinearity coefficients. The algorithm provides robust identification by first using alternative degrees of nonlinearities associated with symbol amplitudes for initial estimation, and then iteratively estimating the channel coefficients and distorted transmit symbols to overcome the inter-symbol interference (ISI) effect. The convergence and unbiasedness of the iterative estimator are demonstrated semi-analytically. Based on this analysis, we also trade error performance for complexity reduction using the regularity of the estimation process. The algorithm is applicable to a wide range of multi-amplitude modulation schemes, and we present an SEI system designed for an orthogonal-frequency-division multiplexing (OFDM) system over an empirical indoor channel model with associated numerical results.
机译:我们提出一种射频(RF)前端非线性估计器,该估计器基于训练序列的知识来执行特定的发射器识别(SEI),从而识别出感兴趣的无线电发射器。设计和制造的变化为每个发射器提供了独特的信号特征,我们通过估计发射器的非线性系数来提取这些特征。该算法通过首先使用与符号幅度相关的非线性度来进行初始估计,然后迭代地估计信道系数和失真的发射符号,以克服符号间干扰(ISI)的影响,从而提供了可靠的标识。半解析地证明了迭代估计量的收敛性和无偏性。基于此分析,我们还使用估计过程的规则性来权衡错误性能以降低复杂度。该算法适用于广泛的多振幅调制方案,我们提出了一种在经验室内信道模型上为正交频分复用(OFDM)系统设计的SEI系统,并具有相关的数值结果。

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