A Zero-Shot Approach for Multi-User Task-Oriented Dialog Generation

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Abstract

Prior art investigating task-oriented dialog and automatic generation of such dialogs have focused on single-user dialogs between a single user and an agent. However, there is limited study on adapting such AI agents to multi-user conversations (involving multiple users and an agent). Multi-user conversations are richer than single-user conversations containing social banter and collaborative decision making. The most significant challenge impeding such studies is the lack of suitable multi-user task-oriented dialogs with annotations of user belief states and system actions. One potential solution is multi-user dialog generation from single-user data. Many single-user dialogs datasets already contain dialog state information (intents, slots), thus making them suitable candidates. In this work, we propose a novel approach for expanding single-user task-oriented dialogs (e.g. MultiWOZ) to multi-user dialogs in a zero-shot setting.

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Surya, S., Jo, Y., Biswas, A., & Potamianos, A. (2023). A Zero-Shot Approach for Multi-User Task-Oriented Dialog Generation. In INLG 2023 - 16th International Natural Language Generation Conference, Proceedings of the Conference (pp. 196–205). Association for Computational Linguistics (ACL). https://doi.org/10.18653/v1/2023.inlg-main.14

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