DocumentCode
265565
Title
Coverage analysis and training optimization for uplink cellular networks with practical channel estimation
Author
Khanduri, Prashant ; Bharath, B.N. ; Murthy, Chandra R.
Author_Institution
Dept. of ECE, Syracuse Univ., Syracuse, NY, USA
fYear
2014
fDate
8-12 Dec. 2014
Firstpage
205
Lastpage
210
Abstract
In this paper, we analyze the effect of channel estimation errors on the performance of an uplink cellular network. We use a stochastic geometric approach, where the Mobile Users (MUs) and the Base Stations (BSs) are modeled as being randomly located on the 2-dimensional plane according to independent Poisson point processes. Each MU makes use of fractional distance-dependent power control, while transmitting both the training signal as well as the data signal in the uplink direction. We derive an analytical expression for the uplink coverage probability for a typical BS-MU pair, accounting for the effects of channel estimation errors and fractional power control. We numerically obtain the fractional power control that maximizes the coverage probability, and show that the optimal power control factor does not depend on the training duration. Further, we numerically compute the optimal training duration that maximizes the area spectral efficiency. The results provide critical insights into the design and optimization of uplink cellular networks in the presence of pilot contamination due to practical channel estimation.
Keywords
cellular radio; channel estimation; power control; probability; stochastic processes; telecommunication control; 2-dimensional plane; BS-MU pair; analytical expression; area spectral efficiency; base stations; channel estimation error effect analysis; coverage analysis; data signal; fractional distance-dependent power control; independent Poisson point processes; mobile users; optimal training duration; stochastic geometric approach; training optimization; training signal; uplink cellular networks; uplink coverage probability; uplink direction; Channel estimation; Interference; Optimized production technology; Power control; Training; Uplink; Uplink training; channel estimation errors; fractional power control; stochastic geometry;
fLanguage
English
Publisher
ieee
Conference_Titel
Global Communications Conference (GLOBECOM), 2014 IEEE
Conference_Location
Austin, TX
Type
conf
DOI
10.1109/GLOCOM.2014.7036808
Filename
7036808
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