DocumentCode :
1319529
Title :
Smart antennas for combined DOA and joint channel estimation in time-slotted CDMA mobile radio systems with joint detection
Author :
Blanz, Josef Johannes ; Papathanassiou, Apostolos ; Haardt, Martin ; Furió, Ignasi ; Baier, Paul Walter
Author_Institution :
Qualcomm Inc., Boulder, CO, USA
Volume :
49
Issue :
2
fYear :
2000
fDate :
3/1/2000 12:00:00 AM
Firstpage :
293
Lastpage :
306
Abstract :
In cellular mobile radio systems, the directional inhomogeneity of the mobile radio channel can be exploited by smart antennas to increase the spectral efficiency. In this paper, a novel smart antenna concept applying receiver antenna diversity at the uplink receiver is investigated for a time-slotted code-division multiple-access (CDMA) mobile radio air interface termed time-division CDMA (TD-CDMA), which has been selected by the European Telecommunications Standards Institute (ETSI) in January 1998 to form part of the Universal Mobile Telecommunications System (UMTS) air interface standard. First, a combined direction-of-arrival (DOA) and joint channel estimation scheme is presented, which is based on DOA estimation using the Unitary ESPRIT algorithm and maximum likelihood estimation of the channel impulse responses associated with the estimated DOA´s, which can also be used as an input for advanced mobile positioning schemes in UMTS. The performance of the combined DOA and joint channel estimation is compared with the conventional channel estimation through simulations in rural and urban propagation environments. Moreover, a novel joint data detection scheme is considered, which explicitly takes into account the signal DOA´s and the associated channel impulse responses. The link level performance of a TD-CDMA mobile radio system using these novel schemes is evaluated by Monte Carlo simulations of data transmission, and average bit error rates (BER´s) are determined for rural and urban propagation environments. The simulation results indicate that, depending on the propagation environment, the exploitation of the knowledge of the directional inhomogeneity of the mobile radio channel can lead to considerable system performance enhancements
Keywords :
Monte Carlo methods; adaptive antenna arrays; cellular radio; code division multiple access; data communication; direction-of-arrival estimation; diversity reception; maximum likelihood estimation; receiving antennas; signal detection; telecommunication channels; telecommunication standards; transient response; DOA estimation; ETSI; Monte Carlo simulations; UMTS air interface standard; Unitary ESPRIT algorithm; advanced mobile positioning schemes; average bit error rates; cellular mobile radio systems; channel impulse responses; code-division multiple-access; data transmission; directional inhomogeneity; joint channel estimation; joint data detection scheme; joint detection; link level performance; maximum likelihood estimation; mobile radio air interface; mobile radio channel; receiver antenna diversity; rural propagation environments; smart antennas; spectral efficiency; system performance enhancements; time-division CDMA; time-slotted CDMA mobile radio systems; uplink receiver; urban propagation environments; 3G mobile communication; Channel estimation; Direction of arrival estimation; Directive antennas; Land mobile radio; Mobile antennas; Multiaccess communication; Receivers; Receiving antennas; Telecommunication standards;
fLanguage :
English
Journal_Title :
Vehicular Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9545
Type :
jour
DOI :
10.1109/25.832962
Filename :
832962
Link To Document :
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