DocumentCode
64123
Title
Analytical Modeling of Uplink Cellular Networks
Author
Novlan, T.D. ; Dhillon, Harpreet S. ; Andrews, Jeffrey G.
Author_Institution
Samsung Telecommun. America, Richardson, TX, USA
Volume
12
Issue
6
fYear
2013
fDate
Jun-13
Firstpage
2669
Lastpage
2679
Abstract
Cellular uplink analysis has typically been undertaken by either a simple approach that lumps all interference into a single deterministic or random parameter in a Wyner-type model, or via complex system level simulations that often do not provide insight into why various trends are observed. This paper proposes a novel middle way using point processes that is both accurate and also results in easy-to-evaluate integral expressions based on the Laplace transform of the interference. We assume mobiles and base stations are randomly placed in the network with each mobile pairing up to its closest base station. Compared to related recent work on downlink analysis, the proposed uplink model differs in two key features. First, dependence is considered between user and base station point processes to make sure each base station serves a single mobile in the given resource block. Second, per-mobile power control is included, which further couples the transmission of mobiles due to location-dependent channel inversion. Nevertheless, we succeed in deriving the coverage (equivalently outage) probability of a typical link in the network. This model can be used to address a wide variety of system design questions in the future. In this paper we focus on the implications for power control and show that partial channel inversion should be used at low signal-to-interference-plus-noise ratio (SINR), while full power transmission is optimal at higher SINR.
Keywords
Laplace transforms; cellular radio; mobile radio; probability; radio links; Laplace transform; SINR; Wyner-type model; base station; complex system level simulation; coverage equivalently outage probability; integral expression; location-dependent channel inversion; partial channel inversion; per-mobile power control; point process; signal-to-interference-plus-noise ratio; system design; uplink cellular network; SINR; Uplink; cellular networks; fractional power control; outage probability; stochastic geometry;
fLanguage
English
Journal_Title
Wireless Communications, IEEE Transactions on
Publisher
ieee
ISSN
1536-1276
Type
jour
DOI
10.1109/TWC.2013.050613.120325
Filename
6516885
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