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- W3205936992 abstract "Task-oriented dialogue systems have been a promising area in the NLP field. Previous work showed the effectiveness of using a single GPT-2 based model to predict belief states and responses via causal language modeling. In this paper, we leverage multi-task learning techniques to train a GPT-2 based model on a more challenging dataset with multiple domains, multiple modalities, and more diversity in output formats. Using only a single model, our method achieves better performance on all sub-tasks, across domains, compared to task and domain-specific models. Furthermore, we evaluated several proposed strategies for GPT-2 based dialogue systems with comprehensive ablation studies, showing that all techniques can further improve the performance." @default.
- W3205936992 created "2021-10-25" @default.
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- W3205936992 date "2021-10-11" @default.
- W3205936992 modified "2023-09-26" @default.
- W3205936992 title "Multi-Task Learning for Situated Multi-Domain End-to-End Dialogue Systems." @default.
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