Cheng Weijun, Wang Xiaoting, Ma Tengfei, Wang Gang
School of Information Engineering, Minzu University of China, Beijing 100081, China.
Key Laboratory of Mining Disaster Prevention and Control, Shandong University of Science and Technology, Qingdao 266590, China.
Sensors (Basel). 2021 Apr 25;21(9):3014. doi: 10.3390/s21093014.
In some emerging wireless applications, such as wearable communication and low-power sensor network applications, wireless devices or nodes not only require simple physical implementation approaches but also require certain reliable receiver techniques to overcome the effects of multipath or shadowed fading. Switched diversity combining (SDC) systems could be a simple and promising solution to the above requirements. Recently, a Fisher-Snedecor ℱ composited fading model has gained much interest because of its modeling accuracy and calculation tractability. However, the performance of SDC systems over ℱ fading channels has not yet been analyzed in the open literature. To this end, this paper presents a systematic analysis of SDC systems over ℱ fading channels, including dual-branch switch-and-stay combining (SSC), multibranch switch-and examine combining (SEC), and SEC with post-examining selection (SECps) systems. We first investigate the statistical characteristics of univariate and bivariate ℱ distributions. Then, these statistical expressions are introduced into the above SDC systems and the statistical metrics of the output signal-to-noise ratio (SNR) for these systems are deduced in different ℱ fading scenarios. Thirdly, certain exact and novel expressions of performance criteria, such as the outage probability, the average bit error probability and average symbol error probability, as well as the average channel capacity for SSC, SEC, and SECps are derived. To find the optimum performance, optimal analysis is performed for the independent and identically distributed cases. Finally, numerical evaluation and simulations are carried out to demonstrate the validity of the theoretical analysis under various ℱ fading scenarios. According to the obtained results, the multipath fading parameter has more influence on the performance of SDC systems than the shadowing parameter, the correlation coefficient, or the average SNR. Importantly, the SDC systems can provide switched diversity gains only when the switching threshold is not too large or too small compared to the average SNR.
在一些新兴的无线应用中,如可穿戴通信和低功耗传感器网络应用,无线设备或节点不仅需要简单的物理实现方法,还需要某些可靠的接收技术来克服多径或阴影衰落的影响。切换分集合并(SDC)系统可能是满足上述要求的一种简单且有前景的解决方案。最近,费希尔 - 斯内德科尔ℱ复合衰落模型因其建模准确性和计算易处理性而备受关注。然而,公开文献中尚未对SDC系统在ℱ衰落信道上的性能进行分析。为此,本文对SDC系统在ℱ衰落信道上进行了系统分析,包括双分支开关驻留合并(SSC)、多分支开关检测合并(SEC)以及带后检测选择的SEC(SECps)系统。我们首先研究单变量和双变量ℱ分布的统计特性。然后,将这些统计表达式引入上述SDC系统,并在不同的ℱ衰落场景中推导这些系统输出信噪比(SNR)的统计指标。第三,推导了性能准则的某些精确且新颖的表达式,如中断概率、平均误比特率和平均符号错误率,以及SSC、SEC和SECps的平均信道容量。为了找到最优性能,对独立同分布情况进行了最优分析。最后,进行了数值评估和仿真,以证明在各种ℱ衰落场景下理论分析的有效性。根据所得结果,多径衰落参数对SDC系统性能的影响比阴影参数、相关系数或平均SNR更大。重要的是,只有当切换阈值与平均SNR相比不过大或过小时,SDC系统才能提供切换分集增益。