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Distributed Optimal Beamformers for Cognitive Radios Robust to Channel Uncertainties

机译:鲁棒的不确定性的认知无线电分布式最优波束形成器

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摘要

Through spatial multiplexing and diversity, multi-input multi-output (MIMO) cognitive radio (CR) networks can markedly increase transmission rates and reliability, while controlling the interference inflicted to peer nodes and primary users (PUs) via beamforming. The present paper optimizes the design of transmit- and receive-beamformers for ad hoc CR networks when CR-to-CR channels are known, but CR-to-PU channels cannot be estimated accurately. Capitalizing on a norm-bounded channel uncertainty model, the optimal beamforming design is formulated to minimize the overall mean-square error (MSE) from all data streams, while enforcing protection of the PU system when the CR-to-PU channels are uncertain. Even though the resultant optimization problem is non-convex, algorithms with provable convergence to stationary points are developed by resorting to block coordinate ascent iterations, along with suitable convex approximation techniques. Enticingly, the novel schemes also lend themselves naturally to distributed implementations. Numerical tests are reported to corroborate the analytical findings.
机译:通过空间复用和分集,多输入多输出(MIMO)认知无线电(CR)网络可以显着提高传输速率和可靠性,同时控制通过波束成形对对等节点和主要用户(PU)造成的干扰。当CR到CR的信道是已知的,但是CR到PU的信道不能被准确估计时,本论文优化了ad hoc CR网络的发射和接收波束形成器的设计。利用范数有限的信道不确定性模型,制定了最佳的波束成形设计,以最小化所有数据流的总体均方误差(MSE),同时在CR至PU信道不确定时加强PU系统的保护。即使最终的优化问题是非凸的,也可以借助块坐标上升迭代以及合适的凸近似技术来开发可证明收敛到固定点的算法。有趣的是,新颖的方案也自然地适合于分布式实现。据报道,数值试验证实了分析结果。

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