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Sparsity analysis using a mixed approach with greedy and LS algorithms on channel estimation

机译:利用贪婪和LS算法的混合方法对渠道估计的混合方法进行稀疏性分析

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Various channels can be denoted by sparse channels and many algorithms have been proposed to exploit their sparsity. In this paper, we propose a mixed algorithm based on Greedy and LS algorithms for sparse channel estimation. Analyses of the proposed and commonly used algorithms in terms of performance and complexity are performed considering the channel's sparsity, the length of training sequence and the stopping criterion. Our results show that a suitable trade-off can be found and effective channel estimations can be obtained with a low-cost algorithm.
机译:各种频道可以用稀疏通道表示,并且已经提出了许多算法来利用它们的稀疏性。在本文中,我们提出了一种基于贪婪和LS算法的混合算法,用于稀疏信道估计。考虑到渠道的稀疏性,训练序列的长度和停止标准,执行在性能和复杂性方面提出和常用算法的分析。我们的结果表明,可以找到合适的权衡,并且可以以低成本算法获得有效的信道估计。

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