Title :
ML estimator and hybrid beamformer for multipath and interference mitigation in GNSS receivers
Author :
Seco-Granados, Gonzalo ; Fernandez-Rubio, Juan A. ; Fernandez-Prades, Carles
Author_Institution :
Electr. Eng. Dept., Eur. Space Agency, Noordwijk, Netherlands
fDate :
3/1/2005 12:00:00 AM
Abstract :
This paper addresses the estimation of the code-phase (pseudorange) and the carrier-phase of the direct signal received from a direct-sequence spread-spectrum satellite transmitter. The signal is received by an antenna array in a scenario with interference and multipath propagation. These two effects are generally the limiting error sources in most high-precision positioning applications. A new estimator of the code- and carrier-phases is derived by using a simplified signal model and the maximum likelihood (ML) principle. The simplified model consists essentially of gathering all signals, except for the direct one, in a component with unknown spatial correlation. The estimator exploits the knowledge of the direction-of-arrival of the direct signal and is much simpler than other estimators derived under more detailed signal models. Moreover, we present an iterative algorithm, that is adequate for a practical implementation and explores an interesting link between the ML estimator and a hybrid beamformer. The mean squared error and bias of the new estimator are computed for a number of scenarios and compared with those of other methods. The presented estimator and the hybrid beamforming outperform the existing techniques of comparable complexity and attains, in many situations, the Crame´r-Rao lower bound of the problem at hand.
Keywords :
antenna arrays; computational complexity; direction-of-arrival estimation; interference suppression; iterative methods; maximum likelihood estimation; phase estimation; radio receivers; radiofrequency interference; satellite navigation; spread spectrum communication; GNSS receiver; Gaussian channel; Global Positioning System; ML estimator; adaptive signal estimation; antenna array; array signal processing; calibration; carrier-phase estimation; channel coding; code division multiaccess; code-phase estimation; computational complexity; delay estimation; direct-sequence spread-spectrum satellite transmitter; direction-of-arrival estimation; early-late estimator; hybrid beamformer; interference mitigation; interference suppression; iterative algorithm; maximum likelihood principle; mean squared error method; multipath channel; multipath propagation; pseudorandom code; radio navigation; radio receiver; satellite navigation system; Antenna arrays; Antennas and propagation; Array signal processing; Interference; Iterative algorithms; Maximum likelihood estimation; Receiving antennas; Satellite navigation systems; Spread spectrum communication; Transmitters; Adaptive arrays; Code division multiaccess; CramÉr–Rao bounds; GPS; GPS positioning; GPS receiver; GPS signal; Global positioning system; Gold codes; MLE; Radio Navigation; Satellite navigation systems; Time of arrival estimation; adaptive estimation; array signal processing; beam steering; beamforming; bias; calibration; delay estimation; early-late estimator; interference suppression; iterative methods; low-complexity constraint; maximum likelihood estimation; maximum likelihood estimator; modeling; multipath channels; multipath environment; multipath propagation; pseudo random codes; radio receivers; reflected components; signal model; simulations; single-path environment; standard deviation;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2004.842193