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Hardware Reduction in Cascaded LMS Adaptive Filter for Noise Cancellation Using Feedback

机译:级联LMS自适应滤波器的硬件降噪

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摘要

The present work investigates the innovative concept of adaptive noise cancellation (ANC) using feedback connection of least-mean-square (LMS) adaptive filters for the sake of hardware reduction. The concept of cascading and feedback for real-time LMS-ANC are also described. The simulation model gives variation in the distinct signals of LMS-ANC like error signal, output signal and weights at various LMS filter parameters. An attempt has been made to provide solution in order to improve the performance of cascaded LMS adaptive noise canceller in terms of filter parameters. The results are obtained with the help of adaptive algorithm and feedback structure algorithm of LMS-ANC with different filter lengths and step sizes which provide high convergence speed of error signal. The signal-to-noise ratio for closed-loop LMS-ANC was found to be higher than single LMS-ANC system and equivalent to cascaded LMS-ANC. The novelty of the proposed model lies in reduction in hardware and low instantaneous power consumption making the model cost-effective as well as less complicated as compare to cascaded LMS-ANC.
机译:为了减少硬件,本工作研究了使用最小均方(LMS)自适应滤波器的反馈连接的自适应噪声消除(ANC)的创新概念。还描述了用于实时LMS-ANC的级联和反馈的概念。仿真模型给出了LMS-ANC不同信号的变化,例如误差信号,输出信号和各种LMS滤波器参数处的权重。已经尝试提供解决方案以根据滤波器参数来改善级联LMS自适应噪声消除器的性能。借助不同滤波器长度和步长的LMS-ANC自适应算法和反馈结构算法,可获得较高的误差信号收敛速度。发现闭环LMS-ANC的信噪比高于单个LMS-ANC系统,并且等效于级联LMS-ANC。与级联的LMS-ANC相比,该模型的新颖之处在于减少了硬件,并降低了瞬时功耗,使该模型具有成本效益,并且不那么复杂。

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