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Low-Complexity Map Channel Estimation for Mobile MIMO-OFDM Systems

机译:移动MIMO-OFDM系统的低复杂度映射信道估计

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This paper presents a reduced-complexity maximum a posteriori probability (MAP) channel estimator with iterative data detection for orthogonal frequency division multiplexing (OFDM) systems over mobile multiple-input multiple- output channels. The optimal MAP estimator needs to invert an NNT x NNT data-dependent matrix each in OFDM symbol interval, where N is the number of subcarriers and NT is the number of transmit antennas. We derive an expectation maximization (EM) algorithm with low-rank approximation to avoid inverting large-size matrices, and thus drastically reduce the receiver complexity. In the iterative process, channel parameters are initially obtained by a least square (LS) estimator for temporary symbol decisions. Then, inter-carrier interference (ICI) due to fast fading is approximated and canceled. Finally, the temporary symbol decisions and the ICI-canceled received signals are processed by the EM-based MAP estimator to refine the channel state information for improved detection. The proposed scheme achieves about 2 dB gain over the LS scheme in channels with medium to high normalized Doppler shifts.
机译:本文针对移动多输入多输出信道上的正交频分复用(OFDM)系统,提出了一种具有迭代数据检测功能的降低复杂度的最大后验概率(MAP)信道估计器。最佳MAP估计器需要在OFDM符号间隔中分别反转一个NNT x NNT数据相关的矩阵,其中N是子载波的数量,NT是发射天线的数量。我们推导了具有低秩逼近的期望最大化(EM)算法,以避免对大型矩阵求逆,从而大大降低了接收器的复杂度。在迭代过程中,信道参数最初由最小二乘(LS)估计器获得,用于临时符号决策。然后,近似并消除由于快速衰落引起的载波间干扰(ICI)。最终,临时符号决策和ICI取消的接收信号由基于EM的MAP估计器处理,以细化信道状态信息以提高检测效率。在具有中到高归一化多普勒频移的信道中,所提出的方案比LS方案可获得约2 dB的增益。

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