Title :
On call admission control in DS/CDMA cellular networks
Author :
Ho, Chi-Jui ; Copeland, John A. ; Lea, Chin-Tau ; Stüber, Gordon L.
Author_Institution :
Dept. of Electr. & Electron. Eng., Hong Kong Univ. of Sci. & Technol., Kowloon, China
fDate :
11/1/2001 12:00:00 AM
Abstract :
Analytical models are proposed for various direct sequence code-division multiple-access (DS/CDMA) call admission control schemes. Many mathematical call admission models for DS/CDMA cellular networks have been proposed. However, they have shortcomings. First, by ignoring the stochastic traffic load variation or call blocking effect, they failed to sufficiently characterize the second moment of other-cell interference. This leads to inaccurate analysis of a real network. Second, the optimal control parameters were often obtained through an exhaustive search which was very time consuming. Finally, the estimation of system capacity in previous models was obtained by using a simple one-slope path-loss propagation model. However, it is well known that a two-slope path loss propagation model is needed in a line-of-sight (LOS) microcell propagation environment. We propose an analytical model for call admission to overcome these drawbacks. In addition, we combine a modified linear programming technique with the built analytical model to find better call admission control schemes for a DS/CDMA cellular network
Keywords :
code division multiple access; electromagnetic wave absorption; linear programming; losses; microcellular radio; multiuser channels; radio links; radio networks; radiowave propagation; spread spectrum communication; telecommunication congestion control; DS/CDMA; DS/CDMA cellular networks; Erlang capacity; LOS microcell propagation environment; analytical models; call admission control; call blocking; direct sequence code-division multiple-access; line-of-sight propagation; modified linear programming; one-slope path-loss propagation model; optimal control parameters; other-cell interference; outage probability; propagation path loss; second moment; stochastic traffic load; system capacity; two-slope path loss propagation model; Analytical models; Call admission control; Interference; Land mobile radio cellular systems; Mathematical model; Multiaccess communication; Optimal control; Propagation losses; Stochastic processes; Telecommunication traffic;
Journal_Title :
Vehicular Technology, IEEE Transactions on