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Complexity Reduction of Iterative Receivers Using Low-Rank Equalization

机译:使用低秩均衡降低迭代接收器的复杂度

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This paper covers the consideration of an iterative or turbo receiver where the nonlinear trellis-based detection of the interleaved and coded data bits is replaced by linear detection using the Wiener filter (WF), i.e., the optimal linear filter based on the mean-square error (MSE) criterion. The equalization of channels with multiple antennas at the receiver as well as frequency-selective transfer functions requires high-dimensional observation vectors which involve computationally intense detectors. We extend an optimal but computationally efficient algorithm, originally derived for single receive antenna systems, to single-input multiple-output (SIMO) channels. To further reduce computational complexity, we apply the suboptimal low-rank multistage WF (MSWF), i.e., the WF approximation in the low-dimensional Krylov subspace, and replace additionally second-order statistics of nonstationary random processes by their time-invariant averages. Complexity investigations reveal the enormous capability of the proposed algorithms to decrease computational effort. Moreover, the analysis based on extrinsic information transfer (EXIT) charts as well as Monte Carlo simulations show that compared with reduced-rank detection methods based on eigensubspaces, the reduced-rank MSWF behaves near optimum although the rank is drastically reduced to two or even one
机译:本文涵盖了迭代或Turbo接收机的考虑,其中使用Wiener滤波器(WF)的线性检测取代了基于交错网格和编码数据位的基于非线性网格的检测,即基于均方的最优线性滤波器错误(MSE)准则。接收器上具有多个天线的信道均衡以及频率选择性传递函数需要高维观测向量,该向量涉及计算强度大的检测器。我们将最初为单接收天线系统推导的最佳但计算效率高的算法扩展到单输入多输出(SIMO)通道。为了进一步降低计算复杂度,我们应用了次优的低阶多级WF(MSWF),即低维Krylov子空间中的WF逼近,并用非平稳随机过程的时不变平均值替换了二阶统计量。复杂性调查表明,所提出算法的巨大能力可以减少计算量。此外,基于外部信息传递(EXIT)图的分析以及蒙特卡洛模拟显示,与基于特征子空间的降秩检测方法相比,降秩MSWF的行为接近最佳,尽管该秩急剧降低至两个甚至一

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