Title :
Blind feedforward cyclostationarity-based timing estimation for linear modulations
Author :
Wang, Yan ; Serpedin, Erchin ; Ciblat, Philippe
Author_Institution :
Dept. of Electr. Eng., Texas A&M Univ., College Station, TX, USA
fDate :
5/1/2004 12:00:00 AM
Abstract :
By exploiting a general cyclostationary (CS) statistics-based framework, this letter develops a rigorous and unified asymptotic (large sample) performance analysis setup for a class of blind feedforward timing epoch estimators for linear modulations transmitted through time nonselective flat-fading channels. Within the proposed CS framework, it is shown that several estimators proposed in the literature can be asymptotically interpreted as maximum likelihood (ML) estimators applied on a (sub)set of the second- (and/or higher) order statistics of the received signal. The asymptotic variance of these ML estimators is established in closed-form expression and compared with the modified Crame´r-Rao bound. It is shown that the timing estimator proposed by Oerder and Meyr achieves asymptotically the best performance in the class of estimators which exploit all the second-order statistics of the received signal, and its performance is insensitive to oversampling rates P as long as P≥3. Further, an asymptotically best consistent estimator, which achieves the lowest asymptotic variance among all the possible estimators that can be derived by exploiting jointly the second- and fourth-order statistics of the received signal, is also proposed.
Keywords :
fading channels; feedforward; higher order statistics; maximum likelihood estimation; modulation; signal sampling; timing; Cramer-Rao bound; blind feedforward cyclostationary-based estimation; flat fading channels; linear modulations; maximum likelihood estimation; synchronization; timing estimation; Bandwidth; Closed-form solution; Data communication; Digital modulation; Higher order statistics; Maximum likelihood detection; Maximum likelihood estimation; Performance analysis; Phase shift keying; Timing; CRB; Cramér–Rao bound; ML; cyclostationarity; maximum likelihood; synchronization; timing estimation;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2004.827734