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Automatic Phoneme Segmentation Using Auditory Attention Features

机译:使用听觉注意功能的自动音素分段

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Segmentation of speech into phonemes is beneficial for many spoken language processing applications. Here, a novel method which uses auditory attention features for detecting phoneme boundaries from acoustic signal is proposed. The auditory attention model can successfully detect salient audio events/sounds in an acoustic scene by capturing changes that make such salient events perceptually different than their neighbours. Therefore, it naturally offers an effective solution for segmentation task. The proposed phoneme segmentation method does not require transcription or acoustic models of phonemes. When evaluated on TIMIT, the proposed method is shown to successfully predict phoneme boundaries and outperform the recently published text-independent phoneme segmentation methods [1,2].
机译:将语音分割成音素对许多口头语言处理应用程序都是有益的。在此,提出了一种利用听觉注意特征从声音信号中检测音素边界的新方法。听觉注意力模型可以通过捕获使显着事件与其邻域在感知上不同的变化来成功检测声学场景中的显着音频事件/声音。因此,它自然为分割任务提供了有效的解决方案。所提出的音素分割方法不需要音素的转录或声学模型。当在TIMIT上进行评估时,所提出的方法可以成功预测音素边界,并且胜过最近发布的与文本无关的音素分割方法[1,2]。

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