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FILTERED-X NLMS ALGORITHM WITH COMPENSATION OF MEMORYLESS NONLINEARITIES FOR ACTIVE NOISE CONTROL

机译:过滤器X NLMS算法,具有用于有源噪声控制的记忆非线性的补偿

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In this paper we consider the problem of deriving an efficient adaptation algorithm when the secondary path of a single- channel feed-forward Active Noise Control (ANC) system contains a memoryless nonlinearity affecting the output of the controller. In order to avoid complex nonlinear adaptation strategies, the solution proposed consists in the de- sign of a predistorter that linearizes the input-output relationship of the memoryless nonlinearity. The linearization technique exploits the histograms and the cumulative density functions of the input and output signals. Then, we show how the linear NLMS adaptation algorithm can be suitably modified and applied in the framework of a feed-forward delay compensated scheme. Theoretical considerations are developed to show that the algorithm is in general affected by a bias that depends on the deviations of the linearized model from the ideal linear input-output characteristic. The results of the reported experiments confirm, in agreement with the theoretical analysis, that the accurate design of the predistorter can reduce the bias so that useful results can be obtained.
机译:在本文中,当单通道前馈活动噪声控制(ANC)系统的二次路径包含影响控制器输出的记忆非线性时,考虑导出有效适应算法的问题。为了避免复杂的非线性适应策略,所提出的解决方案在于,预先证明了模拟了无记忆非线性的输入 - 输出关系。线性化技术利用直方图和输入和输出信号的累积密度函数。然后,我们展示了如何在前馈延迟补偿方案的框架中适当地修改和应用线性NLMS自适应算法。开发了理论考虑,表明该算法通常受到偏差的影响,这取决于线性化模型从理想的线性输入输出特性的偏差。报告的实验结果与理论分析一致地确认,预先设计的准确设计可以减少偏差,从而可以获得有用的结果。

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