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Improved face-to-face communication using noise reduction and speech intelligibility enhancement

机译:使用降噪和语音清晰度增强的面对面交流

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Significant improvements in intelligibility of speech in noise can be obtained by modifying the speech signal in the time and/or frequency domains. However, most speech intelligibility enhancement algorithms are designed to use clean speech as an input, and their performance suffers once the input speech signal-to-noise ratio decreases, a common case in face-to-face communication environments such as restaurants or cafés. In this work we investigate whether a particularly successful speech intelligibility enhancement system—spectral shaping and dynamic range compression—and various front-end noise reduction methods might be suitable in such environments. Our evaluations suggest that such a complete system would provide an increase in speech intelligibility equivalent to a gain of 10 dB input signal-to-noise ratio in the more challenging face-to-face communication environments.
机译:通过在时域和/或频域中修改语音信号,可以获得语音在语音清晰度方面的显着改善。但是,大多数语音清晰度增强算法被设计为使用纯净的语音作为输入,并且一旦输入的语音信噪比降低,它们的性能就会下降,这在诸如餐厅或咖啡馆之类的面对面通信环境中很常见。在这项工作中,我们调查了一种特别成功的语音清晰度增强系统-频谱整形和动态范围压缩-以及各种前端降噪方法是否适合此类环境。我们的评估表明,这样一个完整的系统将在更具挑战性的面对面通信环境中提高语音清晰度,相当于增加10 dB的输入信噪比。

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