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Robust spectral representation using group delay function and stabilized weighted linear prediction for additive noise degradations

机译:使用群延迟函数和稳定加权线性预测的稳健频谱表示,可用于累加噪声降级

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In this paper, we propose a robust spectral representation using the group delay (GD) function computed from the stabilized weighted linear prediction (SWLP) coefficients. Temporal weighting of the cost function in linear prediction (LP) analysis with the short-term energy of the speech signal improves the robustness of the resultant spectrum. The additive property of the group delay function provides for better representation of weaker resonances in the spectrum, and thereby improving the robustness of the representation. The SWLP provides robustness in the temporal domain, whereas the GD function provides robustness in the frequency domain. The proposed SWLP-GD representation is shown to be robust against different types of additive noise degradations, compared to the popularly used discrete Fourier transform (DFT) or LP based representations. In a small-scale closed-set speaker recognition experiment, the cepstral features derived from the proposed SWLP-GD spectrum perform better than the traditional mel-cepstral features computed from the discrete Fourier transform (DFT) spectrum under conditions of mismatched degradations.
机译:在本文中,我们提出了使用从稳定加权线性预测(SWLP)系数计算出的群延迟(GD)函数的鲁棒频谱表示。线性预测(LP)分析中代价函数的时间加权以及语音信号的短期能量可提高所得频谱的鲁棒性。群延迟函数的累加特性可更好地表示频谱中较弱的共振,从而提高表示的鲁棒性。 SWLP在时域提供鲁棒性,而GD函数在频域提供鲁棒性。与普遍使用的基于离散傅立叶变换(DFT)或LP的表示相比,所建议的SWLP-GD表示对不同类型的加性噪声​​衰减具有鲁棒性。在小规模的封闭式说话人识别实验中,在不匹配退化的情况下,从拟议的SWLP-GD频谱导出的倒谱特征要比从离散傅立叶变换(DFT)频谱计算出的传统mel倒谱特征更好。

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