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Channel Estimation Performance Analysis of FBMC/OQAM Systems with Bayesian Approach for 5G-Enabled IoT Applications

机译:贝叶斯方法FBMC / OQAM系统对5G启用的物联网应用程序的信道估计性能分析

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A filter bank multicarrier (FBMC) with offset quadrature amplitude modulation (OQAM) (FBMC/OQAM) is considered to be one of the physical layer technologies in future communication systems, and it is also a wireless transmission technology that supports the applications of Internet of Things (IoT). However, efficient channel parameter estimation is one of the difficulties in realization of highly available FBMC systems. In this paper, the Bayesian compressive sensing (BCS) channel estimation approach for FBMC/OQAM systems is investigated and the performance in a multiple-input multiple-output (MIMO) scenario is also analyzed. An iterative fast Bayesian matching pursuit algorithm is proposed for high channel estimation. Bayesian channel estimation is first presented by exploring the prior statistical information of a sparse channel model. It is indicated that the BCS channel estimation scheme can effectively estimate the channel impulse response. Then, a modified FBMP algorithm is proposed by optimizing the iterative termination conditions. The simulation results indicate that the proposed method provides better mean square error (MSE) and bit error rate (BER) performance than conventional compressive sensing methods.
机译:具有偏移正交幅度调制(OQAM)(FBMC / OQAM)的滤波器组多载波(FBMC)被认为是未来通信系统中的物理层技术之一,并且它也是支持Internet的应用的无线传输技术事情(物联网)。然而,有效的信道参数估计是实现高度可用的FBMC系统的困难之一。本文研究了FBMC / OQAM系统的贝叶斯压缩感应(BCS)信道估计方法,并分析了多输入多输出(MIMO)方案中的性能。提出了一种迭代快速贝叶斯匹配追踪算法,用于高通道估计。首先通过探索稀疏通道模型的先前统计信息来呈现贝叶斯通道估计。表示BCS信道估计方案可以有效地估计信道脉冲响应。然后,通过优化迭代终止条件来提出修改的FBMP算法。仿真结果表明该所提出的方法提供比传统压缩传感方法更好的均方误差(MSE)和钻头错误率(BER)性能。

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