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Adaptive noise filtering based on artificial hydrocarbon networks: An application to audio signals

机译:基于人工烃网络的自适应噪声过滤:在音频信号中的应用

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摘要

Many audio signal applications are corrupted by noise. In particular, adaptive filters are frequently applied to white noise reduction in audio. Recent work provides that there exist some insights on using an artificial intelligence method called artificial hydrocarbon networks (AHNs) for filtering audio signals. Thus, the scope of this paper is to design and implement a novel approach of artificial hydrocarbon networks on adaptive filtering for audio signals. Three experiments were developed. Results demonstrate that AHNs can reduce noise from audio signals. A comparison between the proposed algorithm and a FIR-filter is also provided. The short-time objective intelligibility value (STOI) and the signal-to-noise ratio (SNR) were used for evaluation. At last, the proposed training method for finding the parameters involved in the AHN-filter can also be used in other fields of application.
机译:许多音频信号应用程序都被噪声破坏。特别地,自适应滤波器经常被应用于减少音频中的白噪声。最近的工作提供了关于使用称为人工碳氢化合物网络(AHN)的人工智能方法来过滤音频信号的一些见解。因此,本文的范围是设计和实现一种对音频信号进行自适应滤波的人工烃网络的新方法。开发了三个实验。结果表明,AHN可以减少音频信号中的噪声。还提供了所提出的算法与FIR滤波器之间的比较。短期目标清晰度值(STOI)和信噪比(SNR)用于评估。最后,所提出的用于寻找AHN滤波器参数的训练方法也可以用于其他应用领域。

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