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Blind speech separation using a joint model of speech production

机译:使用语音生成的联合模型进行盲语音分离

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摘要

We propose a new blind signal separation (BSS) technique, developed specifically for speech, that exploits a priori knowledge of speech production mechanisms. In our approach, the autoregressive (AR) structure and fundamental frequency (F0) production mechanisms of speech are jointly modeled. We compare the separation performance of our joint AR-F0 algorithm to existing BSS algorithms that model either speech's AR structure or F0 individually. Experimental results indicate that the joint algorithm demonstrates superior separation performance to both the individual AR algorithm (up to 77% improvement) and F0 (up to 50% improvement) algorithms. This suggests that speech separation performance is improved by employing a BSS model with a more realistic description of the speech production process.
机译:我们提出了一种专门为语音开发的新盲信号分离(BSS)技术,该技术利用了语音产生机制的先验知识。在我们的方法中,语音的自回归(AR)结构和基频(F0)生成机制是联合建模的。我们将联合的AR-F0算法与现有的BSS算法(分别对语音的AR结构或F0进行建模)的分离性能进行比较。实验结果表明,联合算法展示了优于单独的AR算法(提高了77%)和F0(提高了50%)算法的分离性能。这表明通过使用BSS模型来对语音产生过程进行更实际的描述,可以提高语音分离性能。

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