DocumentCode
41777
Title
Throughput and Energy Efficiency Analysis of Small Cell Networks with Multi-Antenna Base Stations
Author
Chang Li ; Jun Zhang ; Letaief, Khaled
Author_Institution
Dept. of ECE, Hong Kong Univ. of Sci. & Technol., Hong Kong, China
Volume
13
Issue
5
fYear
2014
fDate
May-14
Firstpage
2505
Lastpage
2517
Abstract
Small cell networks have recently been proposed as an important evolution path for the next-generation cellular networks. However, with more and more irregularly deployed base stations (BSs), it is becoming increasingly difficult to quantify the achievable network throughput or energy efficiency. In this paper, we develop an analytical framework for downlink performance evaluation of small cell networks, based on a random spatial network model, where BSs and users are modeled as two independent spatial Poisson point processes. A new simple expression of the outage probability is derived, which is analytically tractable and is especially useful with multi-antenna transmissions. This new result is then applied to evaluate the network throughput and energy efficiency. It is analytically shown that deploying more BSs can always increase the network throughput, but the throughput will scale with the BS density first linearly, then logarithmically, and finally converge to a constant. On the other hand, increasing the number of BS antennas can decrease the outage probability exponentially, thus can always increase the network throughput. However, increasing the BS density or the number of transmit antennas will first increase and then decrease the energy efficiency if the non-transmission power or the circuit power consumption is less than certain thresholds, and the optimal BS density and the optimal number of BS antennas can be found. Otherwise, the energy efficiency will always decrease. Simulation results shall demonstrate that our conclusions based on the random network model are general and also hold in a regular grid-based model.
Keywords
antenna arrays; cellular radio; energy conservation; next generation networks; power consumption; stochastic processes; telecommunication network reliability; telecommunication power management; transmitting antennas; energy efficiency analysis; multiantenna base stations; multiantenna transmissions; network throughput analysis; next-generation cellular networks; outage probability; power consumption; small cell networks; spatial Poisson point processes; spatial network model; transmit antennas; Analytical models; Interference; Measurement; Power demand; Throughput; Transmitting antennas; Poisson point process; cellular networks; energy efficiency; network throughput; outage probability; stochastic geometry;
fLanguage
English
Journal_Title
Wireless Communications, IEEE Transactions on
Publisher
ieee
ISSN
1536-1276
Type
jour
DOI
10.1109/TWC.2014.031714.131020
Filename
6775036
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