Title :
Joint source/relay precoding designs in MIMO two-way AF relay systems with MMSE-SIC receiver
Author :
Yinke Shi ; Zhengyu Zhang ; Ling Qiu
Author_Institution :
Personal Commun. Network & Spread Spectrum Lab. (PCN&SS), Univ. of Sci. & Technol. of China (USTC), Hefei, China
Abstract :
This paper considers the joint source and relay linear precoding designs in three-node two-way amplify-and-forward (AF) multiple-input-multiple-output (MIMO) relay systems with the minimum-mean-squared-error (MMSE) successive-interference-cancelation (SIC) receiver. The designs are based on the criterion of minimizing the sum block error rate (sum-BLER). The primal optimization problem is nonconvex and remains unsolved. Aming to find an efficient way to solve the problem, we first resort to the primal decomposition approach where the optimization problem is decoupled into two subproblems called master optimization problem and subproblem optimization problem. Then the source precoding matrices can be derived as a function of the relay precoding matrix by solving the subproblem optimization problem when assuming both of the source precoders have unitary structure. Finally, we propose a structure of the relay precoding matrix with which the master optimization problem can be transferred to a water-filling power allocation problem. Based on the Karuch-Kuhn-Tucker (KKT) conditions, a closed-form solution can be further derived. Numerical results are shown to evaluate the effectiveness of our proposed precoding designs.
Keywords :
MIMO communication; amplify and forward communication; codecs; convex programming; interference suppression; precoding; radio receivers; source coding; Karuch-Kuhn-Tucker conditions; MIMO; MIMO two-way AF relay systems; MMSE; MMSE-SIC receiver; SIC receiver; closed-form solution; master optimization problem; minimum-mean-squared-error; multiple-input-multiple-output; nonconvex optimization problem; precoding designs; primal decomposition approach; relay precoding matrix; source precoders; source precoding matrices; source-relay precoding designs; subproblem optimization; successive interference-cancelation; sum block error rate; three-node two-way amplify-andforward; water-filling power allocation; MIMO; Matrices; Optimization; Receivers; Relays; Silicon; Vectors; Amplify-and-forward relaying; minimum-meansquared-error successive interference cancelation (MMSE-SIC); multiple-input-multiple-output (MIMO); precoding; two-way protocol;
Conference_Titel :
Wireless Communications and Networking Conference (WCNC), 2013 IEEE
Conference_Location :
Shanghai
Print_ISBN :
978-1-4673-5938-2
Electronic_ISBN :
1525-3511
DOI :
10.1109/WCNC.2013.6554994