Beamforming design for weighted rate balance in cognitive network

Jun Zhang, Li Guo, Tianyu Kang, Jianwei Zhang
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Abstract

When a cognitive radio network shares the spectrum with a primary network, the harmful interference to the primary users is one of the most important concerns. In this paper, we propose a new cognitive scheme which has two cognitive sub-networks sharing the same relay station, considering the interference to the primary user. We study the Weighted Rate Balance problem with the constraint of the transmit power of the cognitive network. Joint beamforming at the cognitive base station and the relay station is used to maximize the Weighted Rate Balance of SUs. To solve the non-convex problem, we adopt the classic altering optimization method, namely the Blahut-Arimoto algorithm. We show that we only need to solve several semidefinite programming(SDP) sub-problems, which have linear matrix inequalities(LMIs), in each iterative step. Simulation results show that, compared with the widely studied diagonally structured beamforming design, the proposed approach performs better.
认知网络中加权速率平衡的波束形成设计
当认知无线网络与主网络共享频谱时,对主用户的有害干扰是最重要的问题之一。考虑到对主用户的干扰,提出了一种由两个认知子网共享同一中继站的认知方案。研究了以认知网络传输功率为约束的加权速率平衡问题。采用认知基站和中继站联合波束形成的方法,最大限度地提高各单元的加权速率平衡。为了解决非凸问题,我们采用了经典的改变优化方法,即Blahut-Arimoto算法。我们证明在每个迭代步骤中只需要求解几个具有线性矩阵不等式(lmi)的半定规划子问题。仿真结果表明,与广泛研究的对角结构波束形成设计相比,该方法具有更好的性能。
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