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Papers/Dynamic Fusion Network for Multi-Domain End-to-end Task-Or...

Dynamic Fusion Network for Multi-Domain End-to-end Task-Oriented Dialog

Libo Qin, Xiao Xu, Wanxiang Che, Yue Zhang, Ting Liu

2020-04-23ACL 2020 6SchedulingTask-Oriented Dialogue Systems
PaperPDFCode(official)

Abstract

Recent studies have shown remarkable success in end-to-end task-oriented dialog system. However, most neural models rely on large training data, which are only available for a certain number of task domains, such as navigation and scheduling. This makes it difficult to scalable for a new domain with limited labeled data. However, there has been relatively little research on how to effectively use data from all domains to improve the performance of each domain and also unseen domains. To this end, we investigate methods that can make explicit use of domain knowledge and introduce a shared-private network to learn shared and specific knowledge. In addition, we propose a novel Dynamic Fusion Network (DF-Net) which automatically exploit the relevance between the target domain and each domain. Results show that our model outperforms existing methods on multi-domain dialogue, giving the state-of-the-art in the literature. Besides, with little training data, we show its transferability by outperforming prior best model by 13.9\% on average.

Results

TaskDatasetMetricValueModel
DialogueKvretEntity F162.7DF-Net
DialogueKVRETBLEU15.2DF-Net
DialogueKVRETEntity F162.5DF-Net
Task-Oriented Dialogue SystemsKvretEntity F162.7DF-Net
Task-Oriented Dialogue SystemsKVRETBLEU15.2DF-Net
Task-Oriented Dialogue SystemsKVRETEntity F162.5DF-Net

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