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Performance analysis of multi-antenna GLRT-based spectrum sensing for cognitive radio

机译:基于多天线GLRT的认知无线电频谱感知性能分析

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This paper addresses the generalized likelihood ratio test (GLRT) eigenvalue based detector with an arbitrary number of receive antennas. We investigate the optimum decision threshold, the minimum sensing time and the achievable sensing throughput trade-off of the secondary network. First, we derive the generalized asymptotic distributions of the test statistic. Second, we investigate the optimal decision threshold that can minimize the total error rate with constraints. Third, we provide the algorithm to find out the shortest sensing time that enables the minimum total error rate to achieve the target value. Finally, we formulate the achievable sensing throughput trade-off for the secondary network and investigate the optimal sensing time which can maximize the achievable throughput for the GLRT detector with multiple antennas under the absence and presence of the noise uncertainty. The accuracy of the derived theoretical models is supported by simulations. The results have shown that the optimized decision threshold and the minimum sensing time can satisfy the target value of the minimum total error rate speedily while both the interests of primary and secondary users are guaranteed simultaneously. In addition, the chosen optimal sensing time maximizes the throughput with and without noise uncertainty.
机译:本文针对具有任意数量的接收天线的基于广义似然比测试(GLRT)特征值的检测器。我们研究了辅助网络的最佳决策阈值,最小感测时间和可实现的感测吞吐量折衷。首先,我们得出检验统计量的广义渐近分布。其次,我们研究了最佳决策阈值,该阈值可以使带有约束的总错误率最小化。第三,我们提供了一种算法,以找出最短的感测时间,从而使最小的总错误率达到目标值。最后,我们为次级网络制定了可实现的感测吞吐量权衡,并研究了最佳的感测时间,该时间可以在不存在和存在噪声不确定性的情况下使具有多个天线的GLRT检测器的可实现吞吐量最大化。仿真支持了推导的理论模型的准确性。结果表明,优化的决策阈值和最小感知时间可以快速满足最小总误码率的目标值,同时保证了主要用户和次要用户的利益。此外,选择的最佳感测时间在有或没有噪声不确定性的情况下都能最大化吞吐量。

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