Response Selection for Multi-Party Conversations with Dynamic Topic Tracking
Weishi Wang, Steven C. H. Hoi, Shafiq R. Joty
摘要
While participants in a multi-party multi-turn conversation simultaneously engage in multiple conversation topics, existing response selection methods are developed mainly focusing on a two-party single-conversation scenario. Hence, the prolongation and transition of conversation topics are ignored by current methods. In this work, we frame response selection as a dynamic topic tracking task to match the topic between the response and relevant conversation context. With this new formulation, we propose a novel multi-task learning framework that supports efficient encoding through large pretrained models with only two utterances at once to perform dynamic topic disentanglement and response selection. We also propose Topic-BERT an essential pretraining step to embed topic information into BERT with self-supervised learning. Experimental results on the DSTC-8 Ubuntu IRC dataset show state-of-the-art results in response selection and topic disentanglement tasks outperforming existing methods by a good margin. 1
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引用它的顶会 Paper9
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- GIFT: Graph-Induced Fine-Tuning for Multi-Party Conversation UnderstandingJia-Chen Gu, Zhenhua Ling, Quan Liu, Cong Liu 等ACL 2023 · 被引用 3 次
- Online Conversation Disentanglement with Pointer NetworksTao Yu, Shafiq R. JotyEMNLP 2020 · 被引用 2 次
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