cs.AI updates on arXiv.org 09月26日
Paralinguistic Speech Captions:构建大规模语音风格标签数据集
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本文提出Paralinguistic Speech Captions(ParaSpeechCaps),一个大规模的语音风格标签数据集,标注了丰富的风格描述。该数据集包含人类标注的342小时数据和自动标注的2427小时数据,旨在提高语音合成风格一致性和质量。

arXiv:2503.04713v2 Announce Type: replace-cross Abstract: We introduce Paralinguistic Speech Captions (ParaSpeechCaps), a large-scale dataset that annotates speech utterances with rich style captions. While rich abstract tags (e.g. guttural, nasal, pained) have been explored in small-scale human-annotated datasets, existing large-scale datasets only cover basic tags (e.g. low-pitched, slow, loud). We combine off-the-shelf text and speech embedders, classifiers and an audio language model to automatically scale rich tag annotations for the first time. ParaSpeechCaps covers a total of 59 style tags, including both speaker-level intrinsic tags and utterance-level situational tags. It consists of 342 hours of human-labelled data (PSC-Base) and 2427 hours of automatically annotated data (PSC-Scaled). We finetune Parler-TTS, an open-source style-prompted TTS model, on ParaSpeechCaps, and achieve improved style consistency (+7.9% Consistency MOS) and speech quality (+15.5% Naturalness MOS) over the best performing baseline that combines existing rich style tag datasets. We ablate several of our dataset design choices to lay the foundation for future work in this space. Our dataset, models and code are released at https://github.com/ajd12342/paraspeechcaps .

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语音风格标签 大规模数据集 Paralinguistic Speech Captions
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