Title :
Operational Region of D2D Communications for Enhancing Cellular Network Performance
Author :
Stefanatos, Stelios ; Gotsis, Antonis G. ; Alexiou, Angeliki
Author_Institution :
Dept. of Digital Syst., Univ. of Piraeus, Piraeus, Greece
Abstract :
An important enabler towards the successful deployment of any new element/feature to the cellular network is the investigation and characterization of the operational conditions where its introduction will enhance performance. Although there has been significant research activity on the potential of device-to-device (D2D) communications, there are currently no clear indications of whether D2D communications are actually able to provide benefits for a wide range of operational conditions, thus justifying their introduction to the system. This paper attempts to fill this gap by taking a stochastic geometry approach on characterizing the set (region) of operational conditions for which D2D communications enhance performance in terms of average user rate. For the practically interesting case of a heavy-loaded network, the operational region is provided in closed form as a function of a variety of parameters such as maximum D2D link distances and user densities, reflecting a wide range of operational conditions (points). It is shown that, under the appropriate deployment scheme, D2D communications can indeed be beneficial not only for the usually considered regime of “proximal communications” but to a wide range of operational conditions that include D2D link distances comparable to the distance to the cellular access point and considerably large user densities.
Keywords :
cellular radio; radio equipment; stochastic processes; D2D communications; D2D link; average user rate; cellular access point; device-to-device communications; enhancing cellular network performance; heavy loaded network; operational conditions; operational region; proximal communications; stochastic geometry approach; Approximation methods; Downlink; Probabilistic logic; Resource management; System analysis and design; Time division multiple access; Wireless communication; Cellular network; D2D communications; cellular network; channel-access-mode selection; optimal system design; stochastic geometry;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2015.2446974