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Perceptual subspace speech enhancement using variance of the reconstruction error

机译:利用重构误差方差的感知子空间语音增强

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摘要

In this paper, a new signal subspace-based approach for enhancing a speech signal degraded by environmental noise is presented. The Perceptual Karhunen-Loève Transform (PKLT) method is improved here by including the Variance of the Reconstruction Error (VRE) criterion, in order to optimize the subspace decomposition model. The incorporation of the VRE in the PKLT (namely the PKLT-VRE hybrid method) yields a good tradeoff between the noise reduction and the speech distortion thanks to the combination of a perceptual criterion and the optimal determination of the noisy subspace dimension. In adverse conditions, the experimental tests, using objective quality measures, show that the proposed method provides a higher noise reduction and a lower signal distortion than the existing speech enhancement techniques.
机译:在本文中,提出了一种新的基于信号子空间的方法来增强环境噪声导致的语音信号恶化。通过包括重建误差(VRE)准则的方差,可对Karhunen-Loève变换(PKLT)方法进行改进,以优化子空间分解模型。由于将感知标准和对噪声子空间维度的最佳确定相结合,将VRE合并到PKLT中(即PKLT-VRE混合方法)可在降噪和语音失真之间取得良好的平衡。在不利条件下,使用客观质量度量进行的实验测试表明,与现有语音增强技术相比,该方法可提供更高的降噪效果和更低的信号失真。

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