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Handling Background Noise in Neural Speech Generation

机译:处理神经讲话中的背景噪音

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Recent advances in neural-network based generative modeling of speech has shown great potential for speech coding. However, the performance of such models drops when the input is not clean speech, e.g., in the presence of background noise, preventing its use in practical applications. In this paper we examine the reason and discuss methods to overcome this issue. Placing a denoising preprocessing stage when extracting features and target clean speech during training is shown to be the best performing strategy.
机译:基于神经网络的语音模型的最新进展显示了语音编码的潜力。 然而,当输入不清洁语音时,这种模型的性能下降,例如,在存在背景噪声的情况下,防止其在实际应用中使用。 在本文中,我们检查了克服这个问题的原因和讨论方法。 在培训期间提取特征和目标清洁语音时,将去噪预处理阶段放置在培训期间是最好的表现策略。

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