Title :
Rate boundaries and performance comparison of pure-full-duplex and half-duplex systems
Author :
Yu Li ; Bin Zhou ; Jinling Du ; Wei Li ; Zhenhong Li ; Haowen Wang ; Hui Xu
Author_Institution :
Shanghai Res. Center for Wireless Commun., Shanghai, China
Abstract :
Reliable co-channel bidirectional transmission in wireless networks is moving towards reality by employing the emerging full-duplex (FD) technology. Enhanced by FD-capable nodes, a future wireless network can be made up merely with pairs of bidirectional communicating nodes where each pair occupies a block of orthogonal resource to avoid interference, referred to as pure-FD system. In this paper, we derive close-form expressions for the pure-FD system models with or without Error Vector Magnitude (EVM) noise. Adopting the weighted sum-rate maximization algorithm and using simulations with MATLAB, we give simulation results of pure-FD´s rate boundaries with joint optimization of power and bandwidth, and get the “FD workable area” where FD outperforms HD. Conventional frequency-division half-duplex(HD) system is present for comparison. Simulation results show that the rate boundary for FD system strongly depends on the self-interference attenuation capability of node, and there is a critical level where pure-FD performs the same with HD which is shown in our simulation. Besides, the simulation results with EVM show that the attenuation capability before baseband severely affects the rate boundary.
Keywords :
interference suppression; optimisation; radio networks; telecommunication network reliability; EVM noise; FD technology; FD-capable nodes; Matlab; bidirectional communicating nodes; cochannel bidirectional transmission reliability; error vector magnitude noise; frequency-division HD system; half-duplex systems; interference avoidance; orthogonal resource; pure-FD system model; pure-full-duplex systems; rate boundaries; self-interference attenuation capability; weighted sum-rate maximization algorithm; wireless networks; Attenuation; Baseband; Conferences; High definition video; Noise; Simulation; Wireless communication;
Conference_Titel :
Communications in China - Workshops (CIC/ICCC), 2013 IEEE/CIC International Conference on
Conference_Location :
Xi´an
DOI :
10.1109/ICCChinaW.2013.6670560