首页> 外文会议>2013 11th International Symposium and Workshops on Modeling and Optimization in Mobile, Ad Hoc and Wireless Networks >Robust beamformer design for underlay cognitive radio network using worst case optimization
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Robust beamformer design for underlay cognitive radio network using worst case optimization

机译:使用最坏情况优化的底层认知无线电网络的稳健波束成形器设计

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We propose a robust beamforming design for underlay cognitive radio networks where multiple secondary transmitters communicate with corresponding secondary receivers and coexist with a primary network. The main focus is to design the optimal transmit beamforming vectors for secondary transmitters that maximize the minimum of the received signal-to-interference-plus-noise ratios of the cognitive users. We consider a scenario where all transmitters have multiple antennas and all primary and secondary receivers are equipped with a single antenna. Individual transmit powers of the transmitters are limited and interference power constraints to the primary receivers guarantee the performance of the primary network. Imperfect channel state information (CSI) in all relevant channels are considered and bounded ellipsoidal uncertainty model is used to model the CSI errors. We recast the problem in the form of semi-definite program and an iterative algorithm is proposed to achieve the optimal solution. Numerical simulation are conducted to show the effectiveness of the proposed method against the non-robust design.
机译:我们为底层认知无线电网络提出了一种鲁棒的波束成形设计,其中多个辅助发射机与相应的辅助接收机进行通信并与主网络共存。主要焦点是设计用于辅助发射机的最佳发射波束成形矢量,该矢量使认知用户的接收信号与干扰加噪声比的最小值最小。我们考虑一种情况,其中所有发射机都具有多个天线,并且所有主接收机和副接收机都配备有单个天线。发射机的各个发射功率是有限的,并且对主接收机的干扰功率约束保证了主网络的性能。考虑所有相关通道中的不完美通道状态信息(CSI),并使用有界椭圆不确定性模型来建模CSI错误。我们以半定程序的形式重现了该问题,并提出了一种迭代算法来实现最优解。数值模拟表明该方法对非鲁棒设计的有效性。

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