TY - JOUR
T1 - Distributed measurements for estimating and updating cellular system performance
AU - Xiao, Liang
AU - Greenstein, Larry J.
AU - Mandayam, Narayan B.
AU - Periyalwar, Shalili
N1 - Funding Information:
Paper approved by K. K. Leung, the Editor for Wireless Network Access and Performance of the IEEE Communications Society. Manuscript received May 25, 2006; revised March 15, 2007. This work was supported in part by a grant from Nortel. This paper was presented in part at the IEEE International Conference on Communications, June 2006, Istanbul, Turkey.
PY - 2008/6
Y1 - 2008/6
N2 - We investigate the use of distributed measurements for estimating and updating the performance of a cellular system. Specifically, we discuss the number and placement of sensors in a given cell for estimating its signal coverage. Here, an "outage" is said to occur at a location if a mobile receiver there has inadequate signal-to-noise ratio (SNR-based outage) or, using another criterion, inadequate signal-to-interference ratio (SIRbased outage); and the "outage probability" is the fraction of the cell area over which outage occurs. A design goal is to improve measurement efficiency (i.e., minimizing the required number of measurement sensors) while accurately estimating the outage probability and mapping the coverage holes. The investigation uses a generic path loss model incorporating distance effects and spatially correlated shadow fading. Our emphasis is on the performance prediction accuracy of the sensor network, rather than on cellular system analysis per se. Through analysis and simulation, we assess several approaches to estimating the outage probability. Applying the principle of importance sampling to the sensor placement, we show that a cell outage probability of Po can be accurately estimated using ∼ 10/Po power-measuring sensors distributed in a random uniform way over the area with basesensor distances from 50% to 100% of the cell radius. This result applies to both SNR-based and SIR-based outage estimation for both indoor and outdoor environments.
AB - We investigate the use of distributed measurements for estimating and updating the performance of a cellular system. Specifically, we discuss the number and placement of sensors in a given cell for estimating its signal coverage. Here, an "outage" is said to occur at a location if a mobile receiver there has inadequate signal-to-noise ratio (SNR-based outage) or, using another criterion, inadequate signal-to-interference ratio (SIRbased outage); and the "outage probability" is the fraction of the cell area over which outage occurs. A design goal is to improve measurement efficiency (i.e., minimizing the required number of measurement sensors) while accurately estimating the outage probability and mapping the coverage holes. The investigation uses a generic path loss model incorporating distance effects and spatially correlated shadow fading. Our emphasis is on the performance prediction accuracy of the sensor network, rather than on cellular system analysis per se. Through analysis and simulation, we assess several approaches to estimating the outage probability. Applying the principle of importance sampling to the sensor placement, we show that a cell outage probability of Po can be accurately estimated using ∼ 10/Po power-measuring sensors distributed in a random uniform way over the area with basesensor distances from 50% to 100% of the cell radius. This result applies to both SNR-based and SIR-based outage estimation for both indoor and outdoor environments.
KW - Cellular systems
KW - Distributed measurements
KW - Importance sampling
KW - Path loss
KW - Sensor networks
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U2 - 10.1109/TCOMM.2008.060330
DO - 10.1109/TCOMM.2008.060330
M3 - Article
AN - SCOPUS:46349108904
SN - 0090-6778
VL - 56
SP - 991
EP - 998
JO - IEEE Transactions on Communications
JF - IEEE Transactions on Communications
IS - 6
ER -