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Voice Activity Detection in Noisy Environments Based on Double-Combined Fourier Transform and Line Fitting

机译:基于双重组合傅里叶变换和线性拟合的嘈杂环境中的语音活动检测

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摘要

A new voice activity detector for noisy environments is proposed. In conventional algorithms, the endpoint of speech is found by applying an edge detection filter that finds the abrupt changing point in a feature domain. However, since the frame energy feature is unstable in noisy environments, it is difficult to accurately find the endpoint of speech. Therefore, a novel feature extraction algorithm based on the double-combined Fourier transform and envelope line fitting is proposed. It is combined with an edge detection filter for effective detection of endpoints. Effectiveness of the proposed algorithm is evaluated and compared to other VAD algorithms using two different databases, which are AURORA 2.0 database and SITEC database. Experimental results show that the proposed algorithm performs well under a variety of noisy conditions.
机译:提出了一种用于嘈杂环境的新型语音活动检测器。在常规算法中,语音的端点是通过应用边缘检测过滤器找到的,该边缘检测过滤器在特征域中找到突变点。但是,由于帧能量特征在嘈杂的环境中不稳定,因此很难准确地找到语音的终点。因此,提出了一种基于双重组合傅里叶变换和包络线拟合的特征提取算法。它与边缘检测过滤器结合使用,可以有效地检测端点。使用两个不同的数据库(AURORA 2.0数据库和SITEC数据库)对所提出算法的有效性进行了评估,并与其他VAD算法进行了比较。实验结果表明,该算法在各种噪声条件下均​​具有良好的性能。

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