DocumentCode
1764990
Title
Resource Optimization in Device-to-Device Cellular Systems Using Time-Frequency Hopping
Author
Qiaoyang Ye ; Al-Shalash, Mazin ; Caramanis, Constantine ; Andrews, Jeffrey G.
Author_Institution
Wireless Networking & Commun. Group (WNCG), Univ. of Texas at Austin, Austin, TX, USA
Volume
13
Issue
10
fYear
2014
fDate
Oct. 2014
Firstpage
5467
Lastpage
5480
Abstract
We develop a flexible and accurate framework for device-to-device (D2D) communication in the context of a conventional cellular network, which allows for time-frequency resources to be either shared or orthogonally partitioned between the two networks. Using stochastic geometry, we provide accurate expressions for SINR distributions and average rates, under an assumption of interference randomization via time and/or frequency hopping, for both dedicated and shared spectrum approaches. We obtain analytical results in closed or semi-closed form in high SNR regime, that allow us to easily explore the impact of key parameters (e.g., the load and hopping probabilities) on the network performance. In particular, unlike other models, the expressions we obtain are tractable, i.e., they can be efficiently optimized without extensive simulation. Using these, we optimize the hopping probabilities for the D2D links, i.e., how often they should request a time or frequency slot. This can be viewed as an optimized lower bound to other more sophisticated scheduling schemes. We also investigate the optimal resource partitions between D2D and cellular networks when the dedicated spectrum approach is used.
Keywords
cellular radio; radio spectrum management; resource allocation; scheduling; stochastic processes; time-frequency analysis; D2D communication; D2D links; SINR distributions; average rates; cellular network; dedicated spectrum approaches; device-to-device communication; frequency hopping; hopping probabilities; interference randomization; optimal resource partitions; optimized lower bound; scheduling schemes; shared spectrum approaches; stochastic geometry; time hopping; time-frequency resources; Downlink; Interference; Optimization; Signal to noise ratio; Time-frequency analysis; Transmitters; Wireless communication; Device-to-device communication; mode selection; resource allocation; stochastic geometry; time-frequency hopping;
fLanguage
English
Journal_Title
Wireless Communications, IEEE Transactions on
Publisher
ieee
ISSN
1536-1276
Type
jour
DOI
10.1109/TWC.2014.2340879
Filename
6860305
Link To Document