Since the downlink outage probability expressed with bound value is not precise enough in co-channel interference-limited tiered networks
the stochastic geometry theory is used to model network framework and closed-expressions of per-tier downlink outage probability are derived based on the framework. The received signal to interference ratio(SIR)is formulated as a function of macrocell signal power and femtocell aggregated interference power. Then the probability for received SIR less than a threshold is derived according to the probability distribution of macrocell signal power in the condition on the aggregated interference power. The downlink outage probability is obtained by applying the probability distribution of aggregated interference power to calculate the expectation of conditioned outage probability. Simulation results show that the downlink outage probability in macrocell reduces about 20% and 5%
respectively
when the femtocell transmit power decreases 3.16 mW(the number of femtocells is 100 on average)or the number of femtocells decreases 20 on average(the femtocell transmit power is 100 mW).
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references
KNISELY D N, YOSHIZAWA Y, FAVICHIA F. Standardization of femtocells in 3GPP [J]. IEEE Communications Magazine, 2009, 47(9): 68-75.
XU Peng, FANG Xuming, YANG Jun. Handoff algorithm for hierarchical cell networks based on received signal strength and power loss [J]. Journal of Southwest Jiaotong University, 2011, 46(1): 98-102.
CHANDRASEKHAR V, ANDREWS J G, GATHERER A. Femtocell networks: a survey[J]. IEEE Communications Magazine, 2008, 46(9): 59-67.
ZHANG Jianmin, ZHANG Zhaoyang, HUANG Aiping. Optimal subchannel, rate and power allocation for OFDM-based two-tier Femtocell networks[J]. Journal of University of Science and Technology of China, 2009, 39(10): 1034-1038.
LIU Lei, FANG Xuming, XIA Yingying. Interference analysis and energy saving technologies in femtocell system [J]. ZTE Communications, 2010, 16(6): 24-28.
CHANDRASEKHAR V, KOUNTOURIS M, ANDREWS J G. Coverage in multi-antenna two-tier networks [J]. IEEE Transactions on Wireless Communications, 2009, 8(10): 5314-5327.
PARK S, SEO W, KIM Y, et al. Beam subset selection strategy for interference reduction in two-tier femtocell networks [J]. IEEE Transactions on Wireless Communications, 2010, 9(11): 3440-3449.
CHANDRASEKHAR V, ANDREWS J G. Uplink capacity and interference avoidance for two-tier femtocell networks[J]. IEEE Transactions on Wireless Communications, 2009, 8(7): 3498-3509.
CHANDRASEKHAR V, ANDREWS J G. Spectrum allocation in tiered cellular networks [J]. IEEE Transactions on Communications, 2009, 57(10): 3059-3068.
CHEN Changhai, YIN Changchuan, LI Nana, et al. Analysis of transmission capacity of Ad Hoc networks with SBPC strategy [J]. Journal of Beijing University of Posts and Telecommunications, 2010, 33(3): 117-120.
HAENGGI M, ANDREWS J G, BACCELLI F, et al. Stochastic geometry and random graphs for the analysis and design of wireless networks [J]. IEEE Journal on Selected Areas in Communications, 2009, 27(7):1029-1046.
BACCELLI F, BLASZCZYSZYN B, MUHLETHALER P. An Aloha protocol for multihop mobile wireless networks [J]. IEEE Transactions on Information Theory, 2006, 52(2): 421-436.
STEVEN B L, MALVIN C T. Power-law shot noise[J]. IEEE Transactions on Information Theory, 1990, 36(6): 1302-1318.
SOUSA E S, SILVESTER J A. Optimum transmission ranges in a direct-sequence spread-spectrum multihop packet radio network [J]. IEEE Journal on Selected Areas in Communications, 1990, 8(5): 762-771.
GRADSHTEYN I, RYZHIK I M, JEFFREY A. Tables of integrals, series, and products [M]. 7th ed. New York: Academic, 2007: 892-1028.
ITU. Recommendation M.1225 Guidelines for evaluation of radio transmission technologies for IMT-2000[S]. Geneva, Switzerland: ITU, 1997: 22-43.