多用户检测在α稳定噪声

P. Spasojevic, Xiaodong Wang
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引用次数: 2

摘要

我们研究了几种现有的和新的在α稳定环境噪声存在下的鲁棒多用户检测技术。这些方法基于在一组离散的候选用户位向量上最小化某个代价函数(例如,Huber惩罚函数)。候选向量要么通过量化连续最小化要么基于最慢下降法获得。仿真结果表明,与最近提出的鲁棒多用户检测器相比,新技术在性能和收敛速度上有了实质性的提高,而计算复杂度几乎没有增加。此外,性能对噪声分布参数alpha的灵敏度较低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-user detection in alpha stable noise
We study several existing and new techniques for robust multiuser detection in the presence of alpha stable ambient noise. These methods are based on minimizing a certain cost function (e.g., the Huber penalty function) over a discrete set of candidate user bit vectors. The candidate vectors are either obtained by quantizing the continuous minimizers or based on the slowest-descent approach. Simulation results show that the new techniques offer substantial performance and convergence rate improvement over the recently proposed robust multiuser detectors, with little attendant increase in computational complexity. Furthermore, performance sensitivity on the parameter alpha of the noise distribution is low.
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