Title :
Load-aware modeling for uplink cellular networks in a multi-channel environment
Author :
AlAmmouri, Ahmad ; Elsawy, Hesham ; Alouini, Mohamed-Slim
Author_Institution :
Comput., Electr., & Math. Sci. & Eng. Div., King Abdullah Univ. of Sci. & Technol., Makkah, Saudi Arabia
Abstract :
We exploit tools from stochastic geometry to develop a tractable analytical approach for modeling uplink cellular networks. The developed model is load aware and accounts for per-user power control as well as the limited transmit power constraint for the users´ equipment (UEs). The proposed analytical paradigm is based on a simple per-user power control scheme in which each user inverts his path-loss such that the signal is received at his serving base station (BS) with a certain power threshold ρ Due to the limited transmit power of the UEs, users that cannot invert their path-loss to their serving BSs are allowed to transmit with their maximum transmit power. We show that the proposed power control scheme not only provides a balanced cell center and cell edge user performance, it also facilitates the analysis when compared to the state-of-the-art approaches in the literature. To this end, we discuss how to manipulate the design variable ρ in response to the network parameters to optimize one or more of the performance metrics such as the outage probability, the network capacity, and the energy efficiency.
Keywords :
cellular radio; power control; stochastic processes; telecommunication power management; wireless channels; balanced cell center; cell edge user performance; energy efficiency; limited transmit power constraint; load-aware modeling; maximum transmit power; multichannel environment; network capacity; outage probability; per-user power control; state-of-the-art approaches; stochastic geometry; tractable analytical approach; uplink cellular networks; Analytical models; Interference; Load modeling; Power control; Signal to noise ratio; Stochastic processes; Uplink; Uplink transmission; channel inversion; outage probability; power control; stochastic geometry;
Conference_Titel :
Personal, Indoor, and Mobile Radio Communication (PIMRC), 2014 IEEE 25th Annual International Symposium on
DOI :
10.1109/PIMRC.2014.7136422