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Reduced-Rank Channel Estimation for Time-Slotted Mobile Communication Systems

机译:时隙移动通信系统的降秩信道估计

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In time-slotted mobile communication systems with antenna array at the receiver, the space-time channel matrix is conventionally estimated by transmitting pilot symbols within each data packet (or block). This paper is focused on reduced rank (RR) estimation methods that exploit the low-rank property of the space-time channel matrix to estimate single or multiple user channels from the observation of single or multiple training blocks. The proposed RR methods allow to improve the estimate accuracy by reducing the set of unknown parameters (rank reduction) and extending the training set (multiblock processing). The maximum likelihood RR estimate is obtained as the projection of the prewhitened full-rank (FR) estimate onto the spatial or temporal signal subspace. The paper shows that, even for time varying channels, these subspaces can be considered to be slowly varying, and therefore, they can be estimated with increased accuracy by properly exploiting training signals from several blocks. The analytical and numerical performance in terms of mean square error for the RR estimate shows that the main advantage of the proposed method with respect to the conventional FR one can be ascribed to the reduced complexity of the channel parameterization.
机译:在接收机处具有天线阵列的时隙移动通信系统中,通常通过在每个数据分组(或块)内发送导频符号来估计空时信道矩阵。本文着重于降低秩(RR)估计方法,该方法利用空时信道矩阵的低秩属性从单个或多个训练块的观察值估计单个或多个用户信道。所提出的RR方法允许通过减少未知参数集(秩降低)和扩展训练集(多块处理)来提高估计准确性。获得最大似然率RR估计值,作为预先加白的全秩(FR)估计值到空间或时间信号子空间上的投影。该论文表明,即使对于时变信道,也可以将这些子空间视为缓慢变化的,因此,可以通过适当地利用来自多个块的训练信号来以更高的精度估算它们。 RR估计的均方误差方面的分析和数值性能表明,相对于传统FR而言,所提出方法的主要优势可归因于降低了信道参数化的复杂性。

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