Title :
Adaptive mobile positioning in WCDMA networks
Author :
Dong, Bin ; Wang, Xiaodong
Author_Institution :
Dept. of Electr. Eng., Columbia Univ., New York, NY, USA
fDate :
29 Nov.-3 Dec. 2004
Abstract :
We propose a new technique for mobile tracking in wideband code-division multiple-access (WCDMA) systems employing multiple receive antennas. To achieve a high estimation accuracy, the algorithm utilizes the time difference of arrival (TDOA) measurements in the forward link pilot channel, the angle of arrival (AOA) measurements in the reverse link pilot channel, as well as the received signal strength. The mobility dynamic is modelled by a first-order autoregressive (AR) vector process with an additional discrete state variable as the motion offset, which evolves according to a discrete-time Markov chain. It is assumed that the parameters in this model are unknown and must be jointly estimated by the tracking algorithm. By viewing such a nonlinear dynamic system as a jump-Markov model, we develop an efficient auxiliary particle filtering algorithm to track both the discrete and continuous state variables of this system as well as the associated system parameters. Simulation results are provided to demonstrate the excellent performance of the proposed adaptive mobile positioning algorithm in WCDMA networks.
Keywords :
3G mobile communication; Markov processes; Monte Carlo methods; code division multiple access; nonlinear filters; parameter estimation; receiving antennas; 3G mobile communication; AOA measurements; TDOA measurements; W-CDMA networks; WCDMA networks; adaptive mobile positioning; angle of arrival measurements; auxiliary particle filtering algorithm; continuous state variables; discrete state variable; discrete state variables; discrete-time Markov chain; first-order autoregressive vector process; forward link pilot channel; jump-Markov model; motion offset; multiple receive antennas; nonlinear dynamic system; nonlinear filters; parameter estimation; received signal strength; reverse link pilot channel; sequential Monte Carlo methods; time difference of arrival measurements; wideband code-division multiple-access systems; Antenna measurements; Inference algorithms; Intelligent networks; Intelligent transportation systems; Multiaccess communication; Nonlinear dynamical systems; Sampling methods; Sliding mode control; Time difference of arrival; Time measurement;
Conference_Titel :
Global Telecommunications Conference, 2004. GLOBECOM '04. IEEE
Print_ISBN :
0-7803-8794-5
DOI :
10.1109/GLOCOM.2004.1379094