缺秩多天线辅助OFDM低复杂度贝叶斯Turbo多用户检测的出口图分析

Lei Xu, Sheng Chen, L. Hanzo
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引用次数: 2

摘要

本文研究了一种用于空分多址(SDMA)辅助正交频分复用(OFDM)系统的新型低复杂度贝叶斯多用户检测器(MUD)的互信息传输特性。所提倡的贝叶斯MUD设计是基于在表征接收信号的条件PDF时,将最佳单用户贝叶斯设计扩展到由高斯混合而不是单一高斯分布建模的多用户OFDM信号。为了降低Bayesian MUD的复杂性,我们引入了一个先验的信息阈值,然后在计算产生的外部信息时丢弃低概率项。分析了不同阈值下可实现的复杂度降低,并通过仿真得到了最佳折衷值。采用非系统卷积码和递归系统卷积码与MUD交换外部信息,以实现涡轮检测辅助迭代增益。利用外部信息传递(EXIT)图分析研究了低复杂度贝叶斯turbo MUD的收敛性,并与软干扰抵消辅助最小均方误差(SIC-MMSE) MUD方案进行了比较。正如预期的那样,仿真结果表明,所提出的低复杂度Bayesian Turbo MUD优于SIC-MMSE MUD。拟议的MUD的一个实质性好处是,它可能能够支持多达三倍于接收天线数量的用户。在这种具有挑战性的多用户场景中,当经典的线性接收器往往表现出较差的性能时,所得到的信道矩阵变得秩不足,导致线性不可分离检测器输出相量星座。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
EXIT Chart Analysis of Low-Complexity Bayesian Turbo Multiuser Detection for Rank-Deficient Multiple Antenna Aided OFDM
This paper studies the mutual information transfer characteristics of a novel low-complexity Bayesian Multiuser Detector (MUD) proposed for employment in Space Division Multiple Access (SDMA) aided Orthogonal Frequency Division Multiplexing (OFDM) systems. The design of the Bayesian MUD advocated is based on extending the optimum single-user Bayesian design to multiuser OFDM signals modeled by a Gaussian mixture, rather than by a single Gaussian distribution, when characterizing the conditional PDF of the received signal. In order to reduce the complexity of the Bayesian MUD, we introduce an a priori information threshold and then discard the low- probability terms during the calculation of the extrinsic information generated . The achievable complexity reduction as a function of different threshold values is analyzed and the best tradeoff values are derived with the aid of simulation. Both non-systematic and recursive systematic convolutional codes are used for exchanging extrinsic information with the MUD for the sake of achieving a turbo-detection aided iteration gain. The convergence behavior of the proposed low-complexity Bayesian turbo MUD is investigated using Extrinsic Information Transfer (EXIT) chart analysis and compared to that of Soft Interference Cancellation aided Minimum Mean Square Error (SIC-MMSE) MUD schemes. As expected, the simulation results show that the proposed low-complexity Bayesian Turbo MUD outperforms the SIC-MMSE MUDs. A substantial benefit of the proposed MUD is that it is potentially capable of supporting up to three times higher number of users than the number of receiver antennas. In this challenging multiuser scenario, the resultant channel- matrix becomes rank-deficient, resulting in a linearly non-separable detector output phasor constellation, when classic linear receivers tend to exhibit a poor performance.
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