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首页> 外文期刊>IEEE Transactions on Signal Processing >Nonlinear effects in LMS adaptive equalizers
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Nonlinear effects in LMS adaptive equalizers

机译:LMS自适应均衡器中的非线性效应

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An adaptive transversal equalizer based on the least-mean-square (LMS) algorithm, operating in an environment with a temporally correlated interference, can exhibit better steady-state mean-square-error (MSE) performance than the corresponding Wiener filter. This phenomenon is a result of the nonlinear nature of the LMS algorithm and is obscured by traditional analysis approaches that utilize the independence assumption (current filter weight vector assumed to be statistically independent of the current data vector). To analyze this equalizer problem, we use a transfer function approach to develop approximate analytical expressions of the LMS MSE for sinusoidal and autoregressive interference processes. We demonstrate that the degree to which LMS may outperform the corresponding Wiener filter is dependent on system parameters such as signal-to-noise ratio (SNR), signal-to-interference ratio (SIR), equalizer length, and the step-size parameter.
机译:在具有时间相关干扰的环境中运行的基于最小均方(LMS)算法的自适应横向均衡器可以表现出比相应的Wiener滤波器更好的稳态均方误差(MSE)性能。这种现象是LMS算法非线性性质的结果,并且被利用独立性假设(假设当前滤波器权重向量在统计上独立于当前数据向量)的传统分析方法所掩盖。为了分析该均衡器问题,我们使用传递函数方法为正弦和自回归干扰过程开发了LMS MSE的近似解析表达式。我们证明LMS胜过相应的Wiener滤波器的程度取决于系统参数,例如信噪比(SNR),信噪比(SIR),均衡器长度和步长参数。

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