Taxonomy Completion via Triplet Matching Network
Jieyu Zhang, Xiangchen Song, Ying Zeng, Jiaze Chen, Jiaming Shen, Yuning Mao, Lei Li
Abstract
Automatically constructing taxonomy finds many applications in e-commerce and web search. One critical challenge is as data and business scope grow in real applications, new concepts are emerging and needed to be added to the existing taxonomy. Previous approaches focus on the taxonomy expansion, i.e. finding an appropriate hypernym concept from the taxonomy for a new query concept. In this paper, we formulate a new task, "taxonomy completion", by discovering both the hypernym and hyponym concepts for a query. We propose Triplet Matching Network (TMN 1 ), to find the appropriate hypernym, hyponym pairs for a given query concept. TMN consists of one primal scorer and multiple auxiliary scorers. These auxiliary scorers capture various fine-grained signals (e.g., query to hypernym or query to hyponym semantics), and the primal scorer makes a holistic prediction on query, hypernym, hyponym triplet based on the internal feature representations of all auxiliary scorers. Also, an innovative channel-wise gating mechanism that retains task-specific information in concept representations is introduced to further boost model performance. Experiments on four real-world large-scale datasets show that TMN achieves the best performance on both taxonomy completion task and the previous taxonomy expansion task, outperforming existing methods.
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Install the CLIlune papers fulltext 860bcc6a-8d85-49df-b204-b04015f6b1f4Cited by top-tier papers15
- TaxoEnrich: Self-Supervised Taxonomy Completion via Structure-Semantic RepresentationsMinhao Jiang, Xiangchen Song, Jieyu Zhang, Jiawei HanWWW 2022 · 45 citations
- Enhancing Taxonomy Completion with Concept Generation via Fusing Relational RepresentationsQingkai Zeng, Jinfeng Lin, Wenhao Yu, Jane Cleland-Huang et al.KDD 2021 · 37 citations
- TaxoComplete: Self-Supervised Taxonomy Completion Leveraging Position-Enhanced Semantic MatchingInes Arous, Ljiljana Dolamic, Philippe Cudré-MaurouxWWW 2023 · 16 citations
- TEMP: Taxonomy Expansion with Dynamic Margin Loss through Taxonomy-PathsZichen Liu, Hongyuan Xu, Yanlong Wen, Ning Jiang et al.EMNLP 2021 · 16 citations
- TaxoLLaMA: WordNet-based Model for Solving Multiple Lexical Semantic TasksViktor Moskvoretskii, Ekaterina Neminova, Alina Lobanova, Alexander Panchenko et al.ACL 2024 · 11 citations
Builds on6
- Which Tasks Should Be Learned Together in Multi-task Learning?Trevor Standley, Amir Zamir, Dawn Chen, Leonidas J. Guibas et al.ICML 2020 · 651 citations
- TaxoExpan: Self-supervised Taxonomy Expansion with Position-Enhanced Graph Neural NetworkJiaming Shen, Zhihong Shen, Chenyan Xiong, Chi Wang et al.WWW 2020 · 85 citations
- Self-supervised Auxiliary Learning with Meta-paths for Heterogeneous GraphsDasol Hwang, Jinyoung Park, Sunyoung Kwon, Kyung-Min Kim et al.NeurIPS 2020 · 84 citations
- Expanding Taxonomies with Implicit Edge SemanticsEmaad A. Manzoor, Rui Li, Dhananjay Shrouty, Jure LeskovecWWW 2020 · 49 citations
- STEAM: Self-Supervised Taxonomy Expansion with Mini-PathsYue Yu, Yinghao Li, Jiaming Shen, Hao Feng et al.KDD 2020 · 47 citations
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