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首页> 外文期刊>Journal of ICT Research and Applications >Filtered-X Radial Basis Function Neural Networks for Active Noise Control
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Filtered-X Radial Basis Function Neural Networks for Active Noise Control

机译:主动噪声控制的Filtered-X径向基函数神经网络

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摘要

This paper presents active control of acoustic noise using radial basis function (RBF) networks and its digital signal processor (DSP) real-time implementation. The neural control system consists of two stages: first, identification (modeling) of secondary path of the active noise control using RBF networks and its learning algorithm, and secondly neural control of primary path based on neural model obtained in the first stage. A tapped delay line is introduced in front of controller neural, and another tapped delay line is inserted between controller neural networks and model neural networks. A new algorithm referred to as Filtered X-RBF is proposed to account for secondary path effects of the control system arising in active noise control. The resulting algorithm turns out to be the filtered-X version of the standard RBF learning algorithm. We address centralized and decentralized controller configurations and their DSP implementation is carried out. Effectiveness of the neural controller is demonstrated by applying the algorithm to active noise control within a 3 dimension enclosure to generate quiet zones around error microphones. Results of the real-time experiments show that 10-23 dB noise attenuation is produced with moderate transient response.
机译:本文介绍了使用径向基函数(RBF)网络及其数字信号处理器(DSP)实时实现的噪声主动控制。神经控制系统包括两个阶段:首先,使用RBF网络及其学习算法对主动噪声控制的次级路径进行识别(建模),其次基于第一阶段获得的神经模型对初级路径进行神经控制。在控制器神经网络的前面引入了一条分接的延迟线,在控制器神经网络和模型神经网络之间插入了另一条分接的延迟线。提出了一种称为“滤波X-RBF”的新算法,以解决有源噪声控制中控制系统的次级路径影响。最终的算法证明是标准RBF学习算法的过滤X版本。我们解决了集中式和分散式控制器配置及其DSP实现的问题。通过将该算法应用于3维外壳内的主动噪声控制以在误差麦克风周围生成安静区域,可以证明神经控制器的有效性。实时实验的结果表明,产生10-23 dB的噪声衰减并具有适度的瞬态响应。

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