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Performance Analysis of LP Residual and Correlation Coefficients based Speech Seperation Front End

机译:基于LP残差和相关系数的语音分离前端性能分析

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摘要

Performance of modern automatic speech recognition systems can be enhanced either at the front end by, speech separation system or by a set of efficient features or by a powerful classifier at the backend. A speech separation front end is built using average zero crossing rate, log energy, correlation coefficient of LP residual for separating the speech frames from AWGN samples. The experimental results on TIMIT database demonstrates that the proposed speech separation system performs well over the AWGN of various SNR levels.
机译:现代自动语音识别系统的性能可以通过,语音分离系统或一组有效的功能或后端的强大分类器来增强前端。使用平均零交叉速率,LOG能量,LP残差的相关系数来构建语音分离前端,用于将语音帧与AWGN样本分离。 Timit Database的实验结果表明,所提出的语音分离系统在各种SNR水平的AWGN上表现良好。

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