Title :
Improved Round-Robin User Scheduling for Two-Hop ZF MIMO Relay Systems
Author_Institution :
Key Lab. of Trustworthy Distrib. Comput. & Service, Beijing Univ. of Posts & Telecommun., Beijing, China
Abstract :
In this paper, we propose an improved round-robin scheduling (RRS) method for multi-pair two-hop MIMO relay systems, where the relay is equipped with large-scale antenna arrays and performs zero-forcing processing. Our method not only preserves the advantages of RRS, i.e., The instantaneous channel state information independence and the extremely-low computational complexity, but also achieves much higher sum rate than the conventional RRS. First, we derive a closed-form approximate expression of the asymptotic sum rate. Then, the optimal number of simultaneously transmitted data streams, K*, is obtained by an offline one-dimensional search to maximize the approximate asymptotic sum rate. Finally, we modify the traditional RRS method by setting the number of active data streams at each time slot to K*. Numerical results show that compared with the common RRS method, the proposed method provides significant sum rate improvements without any online complexity increases.
Keywords :
MIMO communication; antenna arrays; computational complexity; relay networks (telecommunication); scheduling; RRS method; active data streams; approximate asymptotic sum rate maximization; closed-form approximate expression; extremely-low computational complexity; improved RRS method; improved round-robin user scheduling; instantaneous channel state information independence; large-scale antenna arrays; multipair two-hop MIMO relay systems; offline one-dimensional search; online complexity; simultaneously-transmitted data streams; sum rate improvement; two-hop ZF MIMO relay systems; zero-forcing processing; Antenna arrays; Channel estimation; Complexity theory; MIMO; Relay networks (telecommunications); Wireless communication;
Conference_Titel :
Military Communications Conference (MILCOM), 2014 IEEE
Conference_Location :
Baltimore, MD
DOI :
10.1109/MILCOM.2014.258