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Evaluation of a method for measuring speech quality based on an authentication approach using a correlation criterion

机译:基于相关标准的认证方法测量语音质量的方法评价

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When interacting with the Smart environment using speech interfaces, one of the important aspects is to assess the quality of the pronunciation of phrases. Therefore, obtaining objective quantitative estimates of the proximity to the initial standard as one of the quality measures is relevant. The paper proposes a new method for assessing the quality of phrases pronunciation based on a user authentication approach using deep learning of neural networks. This approach can be used to assess the proximity of the presented sample within the Smart-environment in relation to the initial standard. Such an assessment can be useful both in determining the quality of pronunciation of repeated phrases in relation to the reference one (for example, for assessing the channel used when interacting with the Smart environment or for assessing the quality of the speaker’s speech to identify qualitative changes related to his condition or health), so and directly during the procedure for confirming the identity of the speaker. A significant correlation of a new approach for these tasks in comparison with the existing ones based on speech recognition (for quality assessment tasks) is shown.
机译:使用语音接口与智能环境交互时,一个重要方面是评估短语发音的质量。因此,作为质量措施之一获得初始标准的近距离的客观定量估计是相关的。本文提出了一种评估基于用户认证方法的短语发音质量的新方法,使用深度学习神经网络。这种方法可用于评估与初始标准相关的智能环境内所呈现的样本的接近度。这种评估在确定与参考文字相关的反复短语的质量时可以是有用的(例如,用于评估与智能环境交互时使用的信道或用于评估扬声器语音的质量以确定定性变化时与他的病情或健康有关),因此在确认发言者身份的程序期间和直接。显示了与基于语音识别(用于质量评估任务)的现有方法相比,这些任务的新方法的显着相关性。

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