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Sensing Time and Power Optimization in MIMO Cognitive Radio Networks

机译:MIMO认知无线电网络中的传感时间和功率优化

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摘要

In this paper, we investigate the sensing-throughput tradeoff in multi-antenna cognitive radio (CR) systems. Specifically, we optimize the sensing threshold, sensing time, and transmit power of a multi-input multi-output (MIMO) CR system for maximization of the opportunistic system throughput under transmit power, probability of false alarm, and probability of missed detection constraints. To this end, we propose a new transmission protocol which allows the CR user to simultaneously perform data transmission and spectrum sensing on different spatial subchannels. We formulate non-convex optimization problems for the optimal choice of the sensing threshold, sensing times, and transmit powers in each spatial subchannel for both single-band and multi-band MIMO CR systems. Since finding the global optimal solution of these problems entails a very high complexity, we develop two iterative algorithms that are based on the concept of alternating optimization and solve only convex subproblems in each iteration. Thus, the complexity of these algorithms is low, and we prove their convergence to a fixed point analytically. Simulation results show that the developed algorithms closely approach the global optimal performance and achieve significant performance gains compared to baseline schemes employing equal powers or equal sensing times in all subchannels.
机译:在本文中,我们研究了多天线认知无线电(CR)系统中的传感吞吐量权衡。具体而言,我们优化了多输入多输出(MIMO)CR系统的检测阈值,检测时间和发送功率,以在发送功率,虚警概率和错过检测约束的概率下最大化机会系统吞吐量。为此,我们提出了一种新的传输协议,该协议允许CR用户在不同的空间子信道上同时执行数据传输和频谱感测。我们针对单频带和多频带MIMO CR系统的每个空间子信道中的检测阈值,检测时间和发射功率的最佳选择制定了非凸优化问题。由于找到这些问题的全局最优解需要非常高的复杂性,因此我们开发了两种基于交替优化概念的迭代算法,并且每次迭代仅解决凸子问题。因此,这些算法的复杂度较低,并且我们通过分析证明了它们收敛到一个固定点。仿真结果表明,与在所有子信道中采用相等功率或相等感测时间的基准方案相比,所开发的算法紧密接近全局最佳性能并获得了显着的性能提升。

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