DocumentCode
1508192
Title
Unified spatial diversity combining and power allocation for CDMA systems in multiple time-scale fading channels
Author
Zhang, Juyong ; Chong, Edwin K. P. ; Kontoyiannis, Ioannis
Author_Institution
Dept. of Electr. Eng., Arizona State Univ., Tempe, AZ
Volume
19
Issue
7
fYear
2001
fDate
7/1/2001 12:00:00 AM
Firstpage
1276
Lastpage
1288
Abstract
In a mobile wireless system, fading effects can be classified into large-scale (long-term) effects and small-scale (short-term) effects. We use transmission power control to compensate for large-scale fading and exploit receiver antenna (space) diversity to combat small-scale fading. We show that the interferences across the antennas are jointly Gaussian in a large system, and then characterize the signal-to-interference ratio for both independent and correlated (across the antennas) small-scale fading cases. Our results show that when each user´s small-scale fading effects are independent across the antennas, there is a clear separation between the gains of transmission power control and diversity combining, and the two gains are additive (in decibels). When each user´s small-scale fading effects are correlated across the antennas, we observe that, in general, the gains of transmission power control and diversity combining are coupled. However, when the noise level diminishes to zero, using maximum ratio combining “decouples” the gains and achieves the same diversity gain as in the independent case. We then characterize the Pareto-optimal (minimum) transmission power allocation for the cases of perfect and noisy knowledge of the desired user´s large-scale fading effects. We find that using antenna diversity leads to significant gains for the transmission power
Keywords
Gaussian processes; code division multiple access; correlation methods; diversity reception; fading channels; land mobile radio; multiuser channels; optimisation; power control; radio receivers; radiofrequency interference; telecommunication control; CDMA systems; Gaussian interference; Pareto-optimal transmission power allocation; antenna diversity; correlated small-scale fading; diversity combining; diversity gain; fading effects; independent small-scale fading; large-scale fading; long-term effects; minimum transmission power allocation; mobile wireless system; mobile wireless systems; multiple time-scale fading channels; noise level; power allocation; receiver antenna diversity; receiver structure; short-term effects; signal-to-interference ratio; space diversity; transmission power control; unified spatial diversity combining; Couplings; Diversity reception; Fading; Interference; Large-scale systems; Multiaccess communication; Noise level; Power control; Receiving antennas; Transmitting antennas;
fLanguage
English
Journal_Title
Selected Areas in Communications, IEEE Journal on
Publisher
ieee
ISSN
0733-8716
Type
jour
DOI
10.1109/49.932696
Filename
932696
Link To Document