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On the performance of semi-blind subspace-based channel estimation

机译:基于半盲子空间的信道估计性能

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This paper is devoted to the analysis of a "semi-blind" estimation framework in which the standard least-squares estimator (based on a known training sequence) is enhanced by using the statistical structure of the observations. More specifically, we consider the case of a general time-division multiple access (TDMA) frame-based receiver equipped with multiple sensors and restrict our attention to second order based subspace methods that are suitable for most standard communication applications due to their moderate computational cost. The semi-blind channel estimator is obtained as a regularized least-squares solution where a blind subspace criterion plays the role of the regularization constraint. The main contribution of the paper consists of showing by asymptotic analysis how to optimally tune the balance between the blind criterion and the least-squares fit, depending on the design parameters of the system. Simulations show that the proposed solutions are robust and significantly improve the efficiency of the equalization.
机译:本文致力于分析“半盲”估计框架,其中标准的最小二乘估计器(基于已知的训练序列)通过使用观察值的统计结构得到增强。更具体地,我们考虑了配备有多个传感器的基于通用时分多址(TDMA)帧的接收机的情况,并且由于其中等的计算成本,我们的注意力仅限于适用于大多数标准通信应用的基于二阶子空间方法。将半盲信道估计器作为正则化最小二乘解获得,其中盲子空间准则扮演正则化约束的角色。本文的主要贡献在于通过渐近分析显示如何根据系统的设计参数最佳地调整盲准则和最小二乘拟合之间的平衡。仿真表明,所提出的解决方案是鲁棒的,并且可以显着提高均衡的效率。

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