Title :
Classification of Digital Amplitude-Phase Modulated Signals in Time-Correlated Non-Gaussian Channels
Author :
Chavali, V.G. ; da Silva, Claudio R. C. M.
Author_Institution :
Bradley Dept. of Electr. & Comput. Eng., Virginia Tech, Blacksburg, VA, USA
Abstract :
In this paper, a new algorithm is proposed for the classification of digital amplitude-phase modulated signals in flat fading channels with time-correlated non-Gaussian noise. The first-order statistics of the additive noise is modeled by a Gaussian mixture distribution and an autoregressive (AR) process is used to model the time-correlation. The proposed classifier involves the use of a whitening filter, necessary to reduce the complexity of the classification process, and maximum-likelihood classification. For the estimation of the whitening filter coefficients, a new blind technique that is based on the use of a robust H∞ filter is developed. After whitening the received signal, following a composite hypothesis testing approach, the unknown fading and noise distribution parameters are estimated. Results are presented which show that when the noise process is time-correlated non-Gaussian, the proposed classifier outperforms maximum-likelihood classifiers developed under the assumption that the noise process is either white non-Gaussian or white Gaussian. It is also shown that when the noise process is white Gaussian, the proposed classifier´s performance closely approaches that of the maximum-likelihood classifier developed for white Gaussian noise channels.
Keywords :
Gaussian distribution; Gaussian noise; H∞ filters; amplitude modulation; autoregressive processes; fading channels; phase modulation; signal classification; Gaussian mixture distribution; H∞ filter; additive noise; autoregressive process; composite hypothesis testing; digital amplitude-phase modulated signals; first-order statistics; flat fading channels; maximum likelihood classification; noise distribution parameters; signal classification; time-correlated nonGaussian channels; time-correlated nonGaussian noise; white Gaussian noise channels; whitening filter; Correlation; Estimation; Fading; Modulation; Noise; Robustness; Signal processing algorithms; Gaussian mixture noise; Modulation classification; fading channels; non-Gaussian noise; parameter estimation;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2013.041113.120548