Title :
Truncated power control in code division multiple access communications
Author :
Kim, Sang Wu ; Goldsmith, Andrea
Author_Institution :
Dept. of Electr. Eng., Korea Adv. Inst. of Sci. & Technol., Seoul, South Korea
Abstract :
We analyze the performance of truncated power control in a code division multiple access communication system. This power control scheme compensates for fading above a certain cutoff fade depth: below the cutoff level an outage is declared. We assume a channel with fast Rayleigh fading and slow, log-normal shadowing, where truncated power control is applied to the shadowing and a RAKE receiver combines the Rayleigh fading multipath components separated by more than a chip time. We investigate the power gain as well as the capacity gain of this power control scheme relative to conventional power control as a function of the outage probability. We find that truncated power control significantly increases the capacity relative to conventional power control, since less power is wasted compensating for deep fading conditions. It is also found that truncated power control is most effective for channels with large power fluctuations or large background noise. We then apply truncated power control to multimedia systems, where different traffic types have different performance requirements (e.g. outage probability, bit error rate, information rate, etc.) For these systems truncated power control can significantly reduce the required transmit power for each traffic type. We conclude by examining the effects of estimation error. For a log-normally distributed estimation error we find that capacity is reduced by a factor of e-(M+1σe2b22)/, where σe is the standard deviation of the error, M is the number of paths in the RAKE receiver, and b=ln 10/10
Keywords :
Rayleigh channels; channel capacity; code division multiple access; coding errors; error statistics; fading; log normal distribution; multimedia communication; multipath channels; power control; probability; telecommunication control; RAKE receiver; bit error rate; capacity gain; chip time; code division multiple access communications; cutoff fade depth; cutoff level; fading compensation; fast Rayleigh fading channel; information rate; large background noise; large power fluctuations; log-normally distributed estimation error; multimedia systems; multipath components; outage probability; performance analysis; power gain; slow log-normal shadowing; standard deviation; traffic types; truncated power control; Capacity planning; Estimation error; Fading; Fluctuations; Multiaccess communication; Multipath channels; Performance analysis; Power control; Rayleigh channels; Shadow mapping;
Conference_Titel :
Global Telecommunications Conference, 1997. GLOBECOM '97., IEEE
Conference_Location :
Phoenix, AZ
Print_ISBN :
0-7803-4198-8
DOI :
10.1109/GLOCOM.1997.644382