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Signed-rank nonparametric multiuser detection in non-Gaussian channels

机译:非高斯信道中的符号秩非参数多用户检测

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We present a novel nonparametric multiuser detector for non-Gaussian channels that is based on the signed-rank norm for linear regression. Analytical and simulation results show that the proposed detector offers similar or better performance as compared to the minimax robust detector, but without requiring any a priori information on the noise. The complexity of this detector is lower than that of the pseudo-norm nonparametric detector stated previously by the authors. This is due to the fact that in contrast to the latter, it is not necessary to compute the intercept parameter for the signed-rank detector proposed in this correspondence. We analyze the behavior of the blind version of this detector and show that it outperforms the blind minimax detector. We also show that this detector has a bounded influence function and hence it is robust.
机译:我们提出了一种新的针对非高斯信道的非参数多用户检测器,它基于线性回归的符号秩范数。分析和仿真结果表明,与minimax鲁棒检测器相比,所提出的检测器具有相似或更好的性能,但不需要任何有关噪声的先验信息。该检测器的复杂度低于作者先前提出的伪范数非参数检测器。这是由于这样的事实,与后者相反,没有必要为该对应关系中提出的有符号秩检测器计算截距参数。我们分析了该探测器的盲版本的行为,并表明它优于盲minimax探测器。我们还表明,该检测器具有有限的影响函数,因此很鲁棒。

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