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Blind bandwidth extension of audio signals based on non-linear prediction and hidden Markov model

机译:基于非线性预测和隐马尔可夫模型的音频信号盲带宽扩展

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The bandwidth limitation of wideband (WB) audio systems degrades the subjective quality and naturalness of audio signals. In this paper, a new method for blind bandwidth extension of WB audio signals is proposed based on non-linear prediction and hidden Markov model (HMM). The high-frequency (HF) components in the band of 7–14?kHz are artificially restored only from the low-frequency information of the WB audio. State-space reconstruction is used to convert the fine spectrum of WB audio to a multi-dimensional space, and a non-linear prediction based on nearest-neighbor mapping is employed in the state space to restore the fine spectrum of the HF components. The spectral envelope of the resulting HF components is estimated based on an HMM according to the features extracted from the WB audio. In addition, the proposed method and the reference methods are applied to the ITU-T G.722.1 WB audio codec for comparison with the ITU-T G.722.1C super WB audio codec. Objective quality evaluation results indicate that the proposed method is preferred over the reference bandwidth extension methods. Subjective listening results show that the proposed method has a comparable audio quality with G.722.1C and improves the extension performance compared with the reference methods.
机译:宽带(WB)音频系统的带宽限制降低了音频信号的主观质量和自然度。本文提出了一种基于非线性预测和隐马尔可夫模型(HMM)的WB音频信号盲带宽扩展的新方法。仅从WB音频的低频信息中,人为地恢复了7–14?kHz频带中的高频(HF)分量。使用状态空间重构将WB音频的精细频谱转换为多维空间,并在状态空间中使用基于最近邻居映射的非线性预测来还原HF分量的精细频谱。根据从WB音频提取的特征,基于HMM估计所得HF分量的频谱包络。另外,将所提出的方法和参考方法应用于ITU-T G.722.1 WB音频编解码器,以便与ITU-T G.722.1C超级WB音频编解码器进行比较。客观的质量评估结果表明,该方法优于参考带宽扩展方法。主观聆听结果表明,与参考方法相比,该方法具有与G.722.1C相当的音频质量,并改善了扩展性能。

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