UniStyle: Unified Style Modeling for Speaking Style Captioning and Stylistic Speech Synthesis
Xinfa Zhu, Wenjie Tian, Xinsheng Wang, Lei He, Yujia Xiao, Xi Wang, Xu Tan, Sheng Zhao, Lei Xie
Abstract
Understanding the speaking style, such as the emotion of the interlocutor's speech, and responding with speech in an appropriate style is a natural occurrence in human conversations. However, technically, existing research on speech synthesis and speaking style captioning typically proceeds independently. In this work, an innovative framework, referred to as UniStyle, is proposed to incorporate both the capabilities of speaking style captioning and style-controllable speech synthesizing. Specifically, UniStyle consists of a UniConnector and a style prompt-based speech generator. The role of the UniConnector is to bridge the gap between different modalities, namely speech audio and text descriptions. It enables the generation of text descriptions with speech as input and the creation of style representations from text descriptions for speech synthesis with the speech generator. Besides, to overcome the issue of data scarcity, we propose a two-stage and semi-supervised training strategy, which reduces data requirements while boosting performance. Extensive experiments conducted on open-source corpora demonstrate that UniStyle achieves state-of-the-art performance in speaking style captioning and synthesizes expressive speech with various speaker timbres and speaking styles in a zero-shot manner.
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Install the CLIlune papers get 1ff2d07a-c477-4b55-a004-5f1bc7f3500dCited by top-tier papers2
- APG-MOS: Auditory Perception Guided-MOS Predictor for Synthetic SpeechZhicheng Lian, Lizhi Wang, Hua HuangACM MM 2025 · 1 citation
- ParaMETA: Towards Learning Disentangled Paralinguistic Speaking Styles Representations from SpeechHaowei Lou, Hye-young Paik, Wen Hu, Lina YaoAAAI 2026
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