基于RBF神经网络的音频带宽扩展

Haojie Liu, C. Bao, Xin Liu, Xingtao Zhang, Liyan Zhang
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引用次数: 5

摘要

本文提出了一种从宽带到超宽带音频的盲带宽扩展新方法。基于音频频谱序列的非线性特性,利用径向基函数(RBF)神经网络进行高频系数的预测。此外,利用线性外推法重构了高频频谱的包络。利用该方法将重构音频信号的带宽扩展到SWB。客观性能评价结果表明,该方法可以有效地重建截断的高频分量,优于传统的盲带宽扩展算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Audio bandwidth extension based on RBF neural network
In this paper a new method of blind bandwidth extension from wideband (WB) to super-wideband (SWB) audio is proposed. The Radial Basic Function (RBF) neural network is utilized to predict the coefficients of high-frequency (HF) based on the nonlinear characteristics of audio spectrum series. In addition, the linear extrapolation is used for reconstructing the envelop of HF spectrum. The bandwidth of the reconstructed audio signals is extended to SWB by using the proposed method. The result of the objective performance evaluation indicates that the proposed method can reconstruct the truncated HF components effectively and outperforms the conventional algorithms of blind bandwidth extension.
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