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Robust decision feedback equalizer design via the solution of a regularized least squares problem

机译:通过正则化最小二乘问题的解决方案进行鲁棒的决策反馈均衡器设计

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This paper presents a method to estimate a Decision Feedback Equalizer (DFE) directly from training data, which is robust w.r.t. time-variations in the communication channel. It is based on the indirect method proposed in [15], where the time variations in the channel are modeled as a probabilistic uncertainty. The robust DFE optimizes the performance by minimizing the mean squared error averaged over the distribution of the uncertainty in the channel. We show, that the robust DFE design problem can be solved by a regularized least squares problem. The main advantage of this direct method over [15] is, that no longer a spectral factorization in addition to a least squares problem is necessary. Another advantage is, that a model of the (average) channel and the noise color are not necessary anymore.
机译:本文提出了一种直接从训练数据估计决策反馈均衡器(DFE)的方法,该方法具有很强的w.r.t.通讯渠道中的时变。它基于[15]中提出的间接方法,其中将通道中的时间变化建模为概率不确定性。健壮的DFE通过最小化通道不确定度分布上的均方误差来优化性能。我们表明,可以通过正则化最小二乘问题解决鲁棒的DFE设计问题。相对于[15],这种直接方法的主要优点是,除了最小二乘问题之外,不再需要进行频谱分解。另一个优点是不再需要(平均)通道和噪声颜色的模型。

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