Generative Spoken Dialogue Language Modeling

Author:

Nguyen Tu Anh12,Kharitonov Eugene3,Copet Jade3,Adi Yossi4,Hsu Wei-Ning5,Elkahky Ali5,Tomasello Paden5,Algayres Robin3,Sagot Benoît2,Mohamed Abdelrahman6,Dupoux Emmanuel78

Affiliation:

1. Meta AI Research, France. ntuanh@meta.com

2. Inria, Paris, France

3. Meta AI Research, France

4. Meta AI Research, Israël

5. Meta AI Research, United States

6. Meta AI Research, France. abdo@meta.com

7. Meta AI Research, France. dpx@meta.com

8. EHESS, ENS-PSL, CNRS, Paris, France

Abstract

AbstractWe introduce dGSLM, the first “textless” model able to generate audio samples of naturalistic spoken dialogues. It uses recent work on unsupervised spoken unit discovery coupled with a dual-tower transformer architecture with cross-attention trained on 2000 hours of two-channel raw conversational audio (Fisher dataset) without any text or labels. We show that our model is able to generate speech, laughter, and other paralinguistic signals in the two channels simultaneously and reproduces more naturalistic and fluid turn taking compared to a text-based cascaded model.1,2

Publisher

MIT Press

Subject

Artificial Intelligence,Computer Science Applications,Linguistics and Language,Human-Computer Interaction,Communication

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