Title :
Improved maximum likelihood frequency offset estimation based on likelihood metric design
Author :
Minn, Hlaing ; Tarasak, Poramate
Author_Institution :
Dept. of Electr. Eng., Univ. of Texas, Richardson, TX, USA
fDate :
6/1/2006 12:00:00 AM
Abstract :
For emerging high data-rate communication systems in highly dispersive channels such as ultrawideband (UWB) systems, possible frequency offsets could be larger than the estimation range of the existing methods using training signals with identical parts or repetitive training signals (i.e., the training signals are composed of several identical subblocks or are obtained by repeating a training subblock for several times). This paper presents a novel improved maximum likelihood frequency offset estimator which can handle at least twice the estimation range of the existing methods using training signals with identical parts and achieves a better estimation performance. Based on the likelihood metric, a new design metric is introduced which is a pair-wise error probability (PEP) between the correct frequency offset point and a trial frequency offset point. The proposed PEP metric gives more theoretical insights on the performance of practical maximum likelihood estimators. How to design the PEP to achieve both a larger estimation range and a better estimation performance in fading channel environments is also presented and the corresponding estimator implementation is described.
Keywords :
channel estimation; dispersive channels; error statistics; fading channels; frequency estimation; signal processing; ultra wideband communication; dispersive channels; fading channel estimation; high data-rate communication systems; likelihood metric design; maximum likelihood frequency offset estimation; pair-wise error probability; training signals; ultrawideband systems; Communication systems; Dispersion; Fading; Frequency estimation; Frequency synchronization; Maximum likelihood estimation; Pairwise error probability; Signal design; Ultra wideband technology; Wireless LAN; Estimation; frequency offset; likelihood metric design; synchronization;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2006.874301