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AS-70: A Mandarin stuttered speech dataset for automatic speech recognition and stuttering event detection
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The rapid advancements in speech technologies over the past two decades have led to human-level performance in tasks like automatic speech recognition (ASR) for fluent speech. However, the efficacy of these models diminishes when applied to atypical speech, such as stuttering. This paper introduces AS-70, the first publicly available Mandarin stuttered speech dataset, which stands out as the largest dataset in its category. Encompassing conversational and voice command reading speech, AS-70 includes verbatim manual transcription, rendering it suitable for various speech-related tasks. Furthermore, baseline systems are established, and experimental results are presented for ASR and stuttering event detection (SED) tasks. By incorporating this dataset into the model fine-tuning, significant improvements in the state-of-the-art ASR models, e.g., Whisper and Hubert, are observed, enhancing their inclusivity in addressing stuttered speech.
Forward citations
Cited by 2 Pith papers
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DisSpeech: Low-Resource Controllable Mandarin Stuttered Speech Synthesis for ASR Augmentation
DisSpeech synthesizes controllable stuttered Mandarin speech via discrete tokens and stuttering event labels to augment ASR datasets, improving recognition to 4.19% CER on stuttered tasks with minimal impact on fluent speech.
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