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An Adaptive Fuzzy Filter Based on Two Different Sets for Nonlinear Channel Estimation

机译:基于两个不同集合的自适应模糊滤波器用于非线性信道估计

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The opportune estimation of channel gain in wireless communication is significant to successful power control, but the channel's nonlinear characteristic degrades the performance of conventional estimation method. Based on fuzzy filter theory, a novel adaptive fuzzy least mean square (LMS) filter for channel estimation is proposed. Utilizing the human experiences and statistical knowledge of signal's fading, the filter builds two different type of fuzzy sets over the space of channel gain, which reflect the channel gain's value and its moving trends respectively, then adjusts the parameters of the member functions of the sets with LMS algorithm, thus adapts itself to the nonlinear characteristics of communication channel. The result of simulation experiment validates the efficiency of the algorithm.
机译:无线通信中信道增益的适当估计对于成功进行功率控制很重要,但是信道的非线性特性会降低传统估计方法的性能。基于模糊滤波器理论,提出了一种新型的信道估计自适应模糊最小均方(LMS)滤波器。该滤波器利用人类的经验和信号衰落的统计知识,在信道增益空间上建立了两种不同类型的模糊集,分别反映了信道增益的值及其移动趋势,然后调整了集合成员函数的参数。采用LMS算法,可以适应通信通道的非线性特性。仿真实验结果验证了算法的有效性。

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