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Greedy algorithms for sparse adaptive decision feedback equalization

机译:稀疏自适应判定反馈均衡的贪婪算法

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In this paper we propose two new adaptive decision feedback equalization (DFE) schemes for channels with long and sparse impulse responses. It has been shown that for a class of channels, and under reasonable assumptions concerning the DFE filter sizes, the feedforward (FF) and feedback (FB) filters possess also a sparse form. The sparsity form of both the channel impulse response (CIR) and the equalizer filters is properly exploited and two novel adaptive greedy schemes are derived. The first scheme is a channel estimation based one. In this scheme, the non-negligible taps of the involved CIR are first estimated via a new greedy algorithm, and then the FF and FB filters are adaptively computed by exploiting a useful relation between these filters and the CIR. The channel estimation part of this new technique is based on the steepest descent (SD) method and offers considerably improved performance as compared to other adaptive greedy algorithms that have been proposed. The second scheme is a direct adaptive sparse equalizer based on a SD-based greedy algorithm. Compared to non sparsity aware DFE, both of our schemes exhibit faster convergence, improved tracking capabilities and reduced complexity.
机译:在本文中,我们提出了具有长而稀疏脉冲响应的通道的两个新的自适应判定反馈均衡(DFE)方案。已经表明,对于一类信道,并且在有关DFE滤波器尺寸的合理假设下,前馈(FF)和反馈(FB)滤波器也具有稀疏形式。通道脉冲响应(CIR)和均衡器滤波器的稀疏形式被正确地利用,并且导出了两种新的自适应贪婪方案。第一方案是基于信道估计。在该方案中,首先通过新的贪婪算法估计所涉及的CIR的不可忽略的水龙头,然后通过利用这些滤波器与CIR之间的有用关系来自适应地计算FF和FB滤波器。与已经提出的其他自适应贪婪算法相比,该新技术的信道估计部分基于陡峭的下降(SD)方法,并提供显着提高的性能。第二种方案是基于SD基础贪婪算法的直接自适应稀疏均衡器。与非稀疏感知DFE相比,我们的两种方案都表现出更快的收敛性,提高跟踪能力和减少复杂性。

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