采用恒模算法和可选校正方法对匹配滤波器进行盲自适应

I. Ozcelik, B. Baykal, I. Kale
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引用次数: 11

摘要

匹配滤波器(MF)和白化滤波器(WF)是最大似然序列检测(MLSD)的最佳接收前端。MF+WF之后的决策反馈均衡器(DFE)是最大似然(ML)接收器的近似值。在接收机中,中频的估计是至关重要的。本文将WF和MF分开处理,并采用恒模算法(CMA)对MF进行盲估计。这种方法代替了奇异值分解(SVD)等复杂且计算量大的方法,得到了一种非常简单的盲自适应的MF估计方法。此外,为了获得更快的收敛速度和更好的性能,还引入了一种校正MF的方法。仿真结果表明,该方法是非常有效和成功的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Blind adaptation of a matched filter using the constant modulus algorithm coupled with an optional correction method
The matched filter (MF) with the whitening filter (WF) is the optimum receiver front end for the maximum likelihood sequence detection (MLSD). The MF+WF followed by the decision feedback equalizer (DFE) is an approximation for the maximum likelihood (ML) receiver. The estimation of the MF is of utmost importance in a receiver. The WF and the MF are treated separately and the MF is estimated blindly using the constant modulus algorithm (CMA) in this work. In this way, a very simple and blind adaptive way of the MF estimate is obtained instead of the methods like the singular value decomposition (SVD), which is complex and computationally expensive. Moreover, a correction method on the MF is introduced to obtain faster convergence and better performance. Simulations prove that the method is very effective and successful.
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