一种应用于移动通信信道均衡的软决策盲均衡算法

J. Karaoguz, S. Ardalan
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引用次数: 36

摘要

提出了一种基于神经网络分类技术的决策导向盲均衡方法。对于二元相移键控和正交相移键控信号的重构,新的软决策均衡算法DD最为有效。新的DD盲均衡器可以在闭着眼睛的情况下收敛。在仿真中,将软DD算法应用于二维数字移动通信系统,验证了该算法的性能。采用时变多径衰落信道模型作为传输介质。将软DD盲均衡算法与标准DD算法、最大误差(MLE)算法和快速递推最小二乘决策反馈均衡(FRLS-DFE)算法的性能进行了比较。仿真结果表明,所提出的软DD均衡算法在性能上取得了一定的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A soft decision-directed blind equalization algorithm applied to equalization of mobile communication channels
A new approach to decision-directed (DD) blind equalization is introduced based on a neural network classification technique. The new DD algorithm, the soft decision-directed equalization algorithm, is most effective for reconstructing binary phase shift keying and quadrature phase shift keying signals. The new DD blind equalizer can converge in closed eye situations. In the simulations, the performance of the soft DD algorithm was illustrated by applying it to a two-dimensional digital mobile communications system. A time-varying multipath fading channel model was used as the transmission medium. The performance of the soft DD blind equalization algorithm is compared to that of the standard DD algorithm, the maximum-level-error (MLE) algorithm, and the fast recursive least squares decision-feedback equalization (FRLS-DFE) algorithm. The simulation results demonstrate the improvement in performance achievable with the proposed soft DD equalization algorithm.<>
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