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Effects of imperfect channel sensing and estimation on the performance of cognitive radio systems

机译:不完美信道感测和估计对认知无线电系统性能的影响

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摘要

In realistic scenarios of cognitive radio (CR) systems, imperfect channel sensing may occur due to false alarms and miss detections. Channel estimation between the secondary user transmitter and another secondary user receiver is another challenge in CR systems, especially for frequency-selective fading channels. In this context, this paper presents a study of the effects of imperfect channel sensing and channel estimation on the performance of CR systems. In particular, different methods of channel estimation are analyzed under channel sensing imperfections. Initially, a CR system model with channel sensing errors is described. Then, the expectation maximization (EM) algorithm is implemented in order to learn the channel fading coefficients. By exploiting the pilot symbols and the detected symbols at the secondary user receiver, we can estimate the channel coefficients. We further compare the proposed EM estimation algorithm with different estimation algorithms such as the least squares (LS) and linear minimum mean square error (LMMSE). The expressions of channel estimates and mean squared errors (MSE) are determined, and their dependencies on channel sensing uncertainty are investigated. Finally, to reduce the complexity of EM algorithm, a sub-optimal algorithm is also proposed. The obtained results show that the proposed sub-optimal algorithm provides a comparable bit error rate (BER) performance with that of the optimal one yet with less computational complexity.
机译:在认知无线电(CR)系统的现实方案中,由于误报警和错过检测,可能发生不完美的信道感测。辅助用户发送器和另一次级用户接收器之间的信道估计是CR系统中的另一个挑战,尤其是对于频率选择性衰落通道。在这种情况下,本文介绍了不完美信道感测和信道估计对CR系统性能的影响。特别地,在信道感测缺陷下分析了不同的信道估计方法。最初,描述了具有信道感测误差的CR系统模型。然后,实现期望最大化(EM)算法以便学习信道衰落系数。通过利用辅助用户接收器处的导频符号和检测到的符号,我们可以估计信道系数。我们进一步比较了具有不同估计算法的提议的EM估计算法,例如最小二乘(LS)和线性最小均方误差(LMMSE)。确定信道估计和平均平方误差(MSE)的表达,并研究了它们对信道感测不确定性的依赖性。最后,为了降低EM算法的复杂性,还提出了一种次优算法。所获得的结果表明,所提出的子最优算法提供了具有较低计算复杂度的最佳误差率(BER)性能。

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