EmoKnob: Enhance Voice Cloning with Fine-Grained Emotion Control
Haozhe Chen, Run Chen, Julia Hirschberg
Abstract
While recent advances in Text-to-Speech (TTS) technology produce natural and expressive speech, they lack the option for users to select emotion and control intensity. We propose EmoKnob, a framework that allows fine-grained emotion control in speech synthesis with fewshot demonstrative samples of arbitrary emotion. Our framework leverages the expressive speaker representation space made possible by recent advances in foundation voice cloning models. Based on the few-shot capability of our emotion control framework, we propose two methods to apply emotion control on emotions described by open-ended text, enabling an intuitive interface for controlling a diverse array of nuanced emotions. To facilitate a more systematic emotional speech synthesis field, we introduce a set of evaluation metrics designed to rigorously assess the faithfulness and recognizability of emotion control frameworks. Through objective and subjective evaluations, we show that our emotion control framework effectively embeds emotions into speech and surpasses emotion expressiveness of commercial TTS services.
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Cited by top-tier papers3
- Cross-Modal Emotion Transfer for Emotion Editing in Talking Face VideoChanhyuk Choi, Taesoo Kim, Donggyu Lee, Siyeol Jung et al.CVPR 2026 · 1 citation
- ES4R: Speech Encoding Based on Prepositive Affective Modeling for Empathetic Response GenerationZhuoyue Gao, Xiaohui Wang, Xiaocui Yang, Wen Zhang et al.ACL 2026
- TED-TTS: Training-Free Intra-Utterance Emotion and Duration Control for Text-to-Speech SynthesisQifan Liang, Yuansen Liu, Ruixin Wei, Nan Lu et al.ACL 2026
Builds on2
- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh et al.ICML 2021 · 47,906 citations
- Robust Speech Recognition via Large-Scale Weak SupervisionAlec Radford, Jong Wook Kim, Tao Xu, Greg Brockman et al.ICML 2023 · 6,966 citations
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