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首页> 外文期刊>IEEE Transactions on Signal Processing >Constrained iterative speech enhancement with application to speech recognition
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Constrained iterative speech enhancement with application to speech recognition

机译:约束迭代语音增强及其在语音识别中的应用

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摘要

The basis of an improved form of iterative speech enhancement for single-channel inputs is sequential maximum a posteriori estimation of the speech waveform and its all-pole parameters, followed by imposition of constraints upon the sequence of speech spectra. The approaches impose intraframe and interframe constraints on the input speech signal. Properties of the line spectral pair representation of speech allow for an efficient and direct procedure for application of many of the constraint requirements. Substantial improvement over the unconstrained method is observed in a variety of domains. Informed listener quality evaluation tests and objective speech quality measures demonstrate the technique's effectiveness for additive white Gaussian noise. A consistent terminating point of the iterative technique is shown. The current systems result in substantially improved speech quality and linear predictive coding (LPC) parameter estimation with only a minor increase in computational requirements. The algorithms are evaluated with respect to improving automatic recognition of speech in the presence of additive noise and shown to outperform other enhancement methods in this application.
机译:用于单通道输入的迭代语音增强的改进形式的基础是对语音波形及其全极参数进行顺序最大后验估计,然后在语音频谱序列上施加约束。该方法对输入语音信号施加帧内和帧间约束。语音的线谱对表示的属性允许应用许多约束要求的有效而直接的过程。在各种领域中,都可以看到无约束方法的实质性改进。知情的听众质量评估测试和客观的语音质量度量证明了该技术对于加性高斯白噪声的有效性。显示了迭代技术的一致终结点。当前的系统导致语音质量和线性预测编码(LPC)参数估计的显着改善,而计算需求却只有很小的增加。针对在存在加性噪声的情况下改善语音自动识别的性能,对算法进行了评估,结果表明该算法的性能优于本应用中的其他增强方法。

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