DocumentCode
3604341
Title
Throughput Analysis for Full-Duplex Wireless Networks With Imperfect Self-Interference Cancellation
Author
Zhen Tong ; Haenggi, Martin
Author_Institution
Dept. of Electr. Eng., Univ. of Notre Dame, Notre Dame, IN, USA
Volume
63
Issue
11
fYear
2015
Firstpage
4490
Lastpage
4500
Abstract
This paper investigates the throughput for wireless network with full-duplex radios using stochastic geometry. Full-duplex (FD) radios can exchange data simultaneously with each other. On the other hand, the downside of FD transmission is that it will inevitably cause extra interference to the network compared to half-duplex (HD) transmission. Moreover, the residual self-interference has negative effects on the network throughput. In this paper, we focus on a wireless network of nodes with both HD and FD capabilities and derive and optimize the throughput in such a network. Our analytical result shows that if the network is adopting an ALOHA protocol, the maximal throughput is achieved by scheduling all concurrently transmitting nodes to work in either FD mode or HD mode depending on one simple condition. Moreover, the effects of imperfect self-interference cancellation on the signal-to-interference ratio (SIR) loss and throughput are also analyzed based on our mathematical model. We rigorously quantify the impact of imperfect self-interference cancellation on the throughput gain, transmission range, and other metrics, and we establish the minimum amount of self-interference suppression needed for FD to be beneficial.
Keywords
access protocols; geometry; interference suppression; radio networks; radiofrequency interference; stochastic processes; telecommunication scheduling; ALOHA protocol; FD transmission; HD transmission; SIR loss; data exchange; full-duplex radio scheduling; full-duplex wireless network throughput analysis; half-duplex transmission; imperfect self-interference cancellation; signal-to-interference ratio loss; stochastic geometry; High definition video; Interference cancellation; Phase frequency detector; Throughput; Upper bound; Wireless networks; Full Duplex Transmission; Full duplex transmission; Interference Cancellation; Poisson Point Process; Poisson point process; Stochastic Geometry; interference cancellation; stochastic geometry;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/TCOMM.2015.2465903
Filename
7182305
Link To Document