DocumentCode :
1359770
Title :
Spectrum sharing between cellular and mobile ad hoc networks: transmission-capacity trade-off
Author :
Huang, Kaibin ; Lau, Vincent K N ; Chen, Yan
Author_Institution :
Sch. of Electr. & Electron. Eng., Yonsei Univ., Seoul, South Korea
Volume :
27
Issue :
7
fYear :
2009
fDate :
9/1/2009 12:00:00 AM
Firstpage :
1256
Lastpage :
1267
Abstract :
Spectrum sharing between wireless networks improves the efficiency of spectrum usage, and thereby alleviates spectrum scarcity due to growing demands for wireless broadband access. To improve the usual underutilization of the cellular uplink spectrum, this paper addresses spectrum sharing between a cellular uplink and a mobile ad hoc networks. These networks access either all frequency subchannels or their disjoint subsets, called spectrum underlay and spectrum overlay, respectively. Given these spectrum sharing methods, the capacity trade-off between the coexisting networks is analyzed based on the transmission capacity of a network with Poisson distributed transmitters. This metric is defined as the maximum density of transmitters subject to an outage constraint for a given signal-to-interference ratio (SIR). Using tools from stochastic geometry, the transmission-capacity trade-off between the coexisting networks is analyzed, where both spectrum overlay and underlay as well as successive interference cancellation (SIC) are considered. In particular, for small target outage probability, the transmission capacities of the coexisting networks are proved to satisfy a linear equation, whose coefficients depend on the spectrum sharing method and whether SIC is applied. This linear equation shows that spectrum overlay is more efficient than spectrum underlay. Furthermore, this result also provides insight into the effects of network parameters on transmission capacities, including link diversity gains, transmission distances, and the base station density. In particular, SIC is shown to increase the transmission capacities of both coexisting networks by a linear factor, which depends on the interference-power threshold for qualifying canceled interferers.
Keywords :
Poisson distribution; ad hoc networks; broadband networks; cellular radio; diversity reception; frequency allocation; geometry; interference suppression; stochastic processes; Poisson distributed transmitter; SIC; base station density; cellular uplink; diversity gain; frequency subchannel; interference-power threshold; linear equation; linear factor; mobile ad hoc network; small target outage probability; spectrum overlay; spectrum sharing; spectrum underlay; spectrum usage; stochastic geometry; successive interference cancellation; transmission capacity; wireless broadband access; wireless network; Cellular networks; Equations; Frequency; Interference cancellation; Interference constraints; Mobile ad hoc networks; Silicon carbide; Stochastic processes; Transmitters; Wireless networks; Spatial reuse; wireless networks; Poisson processes; spectrum sharing; interference cancelation;
fLanguage :
English
Journal_Title :
Selected Areas in Communications, IEEE Journal on
Publisher :
ieee
ISSN :
0733-8716
Type :
jour
DOI :
10.1109/JSAC.2009.090921
Filename :
5226976
Link To Document :
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