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Blind Equalization Of Nonlinear Channels Using A Tensor Decomposition With Code/space/time Diversities

机译:使用具有代码/空间/时间差异的张量分解的非线性通道的盲均衡

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摘要

In this paper, we consider the blind equalization problem for nonlinear channels represented by means of a Volterra model. We first suggest a precoding scheme inducing a three-dimensional (3-D) structure for the received data due to code, space, and time diversities. The tensor of received data admits a PARAFAC (parallel factors) decomposition with finite alphabet and Vandermonde structure constraints. We derive a uniqueness result taking such constraints into account. When one of the matrix factors, the code matrix, is known or belongs to a known finite set of matrices, we give new uniqueness results and three equalization algorithms are proposed. The performances of these algorithms are illustrated by means of simulation results.
机译:在本文中,我们考虑了用Volterra模型表示的非线性通道的盲均衡问题。我们首先提出一种预编码方案,该方案由于代码,空间和时间的多样性而为接收到的数据引入了三维(3-D)结构。接收到的数据的张量允许具有有限字母和范德蒙德结构约束的PARAFAC(并行因子)分解。考虑到这些约束,我们得出了唯一性结果。当矩阵因子之一(代码矩阵)已知或属于已知的有限矩阵集时,我们给出新的唯一性结果,并提出了三种均衡算法。仿真结果说明了这些算法的性能。

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