Title :
Nonlinearity Estimation for Specific Emitter Identification in Multipath Channels
Author :
Liu, Ming-Wei ; Doherty, John F.
Author_Institution :
Dept. of Electr. Eng., Pennsylvania State Univ., University Park, PA, USA
Abstract :
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.
Keywords :
OFDM modulation; intersymbol interference; iterative methods; multipath channels; nonlinear estimation; ISI effect; OFDM system; RF front-end nonlinearity estimator; channel coefficient; complexity reduction; empirical indoor channel model; intersymbol interference; iterative estimator; multiamplitude modulation scheme; multipath channels; nonlinearity estimation; orthogonal-frequency-division multiplexing; radio frequency front-end nonlinearity estimator; specific emitter identification; symbol amplitude; transmitter nonlinearity coefficient; Channel estimation; Eigenvalues and eigenfunctions; Estimation; Linear approximation; OFDM; Training; Transmitters; Communication system security; OFDM; frequency-selective fading channels; nonlinear distortion; reconnaissance;
Journal_Title :
Information Forensics and Security, IEEE Transactions on
DOI :
10.1109/TIFS.2011.2134848