Title :
A parametric power control with fast convergence in cellular radio systems
Author :
Lee, Chae Y. ; Park, Taehoon
Author_Institution :
Dept. of Ind. Eng., Korea Adv. Inst. of Sci. & Technol., Seoul, South Korea
fDate :
5/1/1998 12:00:00 AM
Abstract :
The capacity of a cellular radio system is largely dependent on its transmitter power control. Since power control is inherently a real-time problem, to find the fastest carrier-to-interference ratio (CIR) balancing algorithm, which forces the CIR of each cell to converge to a value, has been the essential issue. An efficient parametric power control (PPC) scheme is developed in this paper. In this scheme, the power control is performed at each base by using some parameters provided by the central collector, which determines the multiplier of the power update function. The algebraic property of its CIR balancing algorithm is analyzed. In an environment with zero noise, the scheme proposes a quick method for obtaining a least upper bound on the achievable CIR. The proposed scheme PPC is also considered in a cellular system with positive receiver noise. The computational results show that the convergence of the proposed CIR balancing algorithm is quick and the power consumption is reasonable compared to distributed schemes. With the proposed algorithm, the CIR´s are balanced sufficiently in a short power control period
Keywords :
cellular radio; convergence of numerical methods; power control; radiofrequency interference; telecommunication control; IR balancing algorithm; algebraic property; capacity; carrier-to-interference ratio balancing algorithm; cellular radio systems; central collector; fast convergence; least upper bound; multiplier; parametric power control; positive receiver noise; power consumption; power update function; real-time problem; transmitter power control; zero noise; Communication system control; Convergence; Frequency conversion; Interference; Land mobile radio cellular systems; Multiaccess communication; Power control; Radio transmitters; Receivers; Working environment noise;
Journal_Title :
Vehicular Technology, IEEE Transactions on