基于PDF拟合的盲均衡新准则

Souhaila Fki, Malek Messai, A. Aïssa-El-Bey, T. Chonavel
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引用次数: 6

摘要

本文研究了基于信息论准则的M-QAM盲均衡问题。我们提出了两个新的成本函数,迫使均衡器输出的概率密度函数(pdf)与已知的星座pdf相匹配。它们涉及到核函数的近似。在迭代过程中对Parzen估计器的核带宽进行更新,提高了算法的收敛速度,减小了算法的残差。与现有的相关技术不同,新算法分别测量均衡器输出的实部和虚部的观测和假设pdf之间的距离误差。我们展示了相对于CMA(最流行的盲均衡技术)和经典pdf拟合方法的性能和复杂度增益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New criteria for blind equalization based on PDF fitting
In this paper, we address M-QAM blind equalization based on information theoretic criteria. We propose two new cost functions that force the probability density functions (pdf) at the equalizer output to match the known constellation pdf. They involve kernel pdf approximation. The kernel bandwidth of a Parzen estimator is updated during iterations to improve the convergence speed and to decrease the residual error of the algorithms. Unlike related existing techniques, the new algorithms measure the distance error between observed and assumed pdfs for the real and imaginary parts of the equalizer output separately. We show performance and complexity gain against the CMA, the most popular blind equalization technique, and classical pdf fitting approaches.
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