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Estimation of the Probability Density Function of the Interaural Level Diferences for Binaural Speech Separation

机译:双耳语音分离的听觉水平差异的概率密度函数的估计

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Source separation techniques are applied to audio signals to separate several sources from one mixture. One important challenge of speech processing is noise suppression and several methods have been proposed. However, in some applications like hearing aids, we are not interested just in removing noise from speech but amplifying speech and attenuating noise. A novel method based on the estimation of the Power Density Function of the Interaural Level Differences in conjunction with time-frequency decomposition and binary masking is applied to speech-noise mixtures in order to obtain both signals separately. Results show how both signal are clearly separated and the method entails low computational cost, so it could be implemented in a real-time environment, such as a hearing aid device.
机译:源分离技术应用于音频信号,以从一种混合物中分离出多个源。语音处理的一个重要挑战是噪声抑制,并且已经提出了几种方法。但是,在诸如助听器的某些应用中,我们不仅对消除语音中的噪声感兴趣,还对放大语音和衰减噪声不感兴趣。一种基于对听觉水平差的功率密度函数的估计以及时频分解和二进制掩蔽的新方法被应用于语音噪声混合,以便分别获得两个信号。结果表明如何将两种信号清晰地分离,并且该方法的计算成本较低,因此可以在实时环境(例如助听器)中实现。

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