Discovering New Intents via Constrained Deep Adaptive Clustering with Cluster Refinement
Ting-En Lin, Hua Xu, Hanlei Zhang
Abstract
Identifying new user intents is an essential task in the dialogue system. However, it is hard to get satisfying clustering results since the definition of intents is strongly guided by prior knowledge. Existing methods incorporate prior knowledge by intensive feature engineering, which not only leads to overfitting but also makes it sensitive to the number of clusters. In this paper, we propose constrained deep adaptive clustering with cluster refinement (CDAC+), an end-to-end clustering method that can naturally incorporate pairwise constraints as prior knowledge to guide the clustering process. Moreover, we refine the clusters by forcing the model to learn from the high confidence assignments. After eliminating low confidence assignments, our approach is surprisingly insensitive to the number of clusters. Experimental results on the three benchmark datasets show that our method can yield significant improvements over strong baselines. 1
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Install the CLIlune papers fulltext edb50615-fb69-4861-8dad-a50e2effa1b1Cited by top-tier papers27
- UniMSE: Towards Unified Multimodal Sentiment Analysis and Emotion RecognitionGuimin Hu, Ting-En Lin, Yi Zhao, Guangming Lu et al.EMNLP 2022 · 206 citations
- Discovering New Intents with Deep Aligned ClusteringHanlei Zhang, Hua Xu, Ting-En Lin, Rui LyuAAAI 2021 · 138 citations
- Deep Open Intent Classification with Adaptive Decision BoundaryHanlei Zhang, Hua Xu, Ting-En LinAAAI 2021 · 127 citations
- Co-GAT: A Co-Interactive Graph Attention Network for Joint Dialog Act Recognition and Sentiment ClassificationLibo Qin, Zhouyang Li, Wanxiang Che, Minheng Ni et al.AAAI 2021 · 77 citations
- Generalized Category Discovery with Decoupled Prototypical NetworkWenbin An, Feng Tian, Qinghua Zheng, Wei Ding et al.AAAI 2023 · 68 citations
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