Enhancing Taxonomy Completion with Concept Generation via Fusing Relational Representations
Qingkai Zeng, Jinfeng Lin, Wenhao Yu, Jane Cleland-Huang, Meng Jiang
Abstract
Automatic construction of a taxonomy supports many applications in e-commerce, web search, and question answering. Existing taxonomy expansion or completion methods assume that new concepts have been accurately extracted and their embedding vectors learned from the text corpus. However, one critical and fundamental challenge in fixing the incompleteness of taxonomies is the incompleteness of the extracted concepts, especially for those whose names have multiple words and consequently low frequency in the corpus. To resolve the limitations of extraction-based methods, we propose GenTaxo to enhance taxonomy completion by identifying positions in existing taxonomies that need new concepts and then generating appropriate concept names. Instead of relying on the corpus for concept embeddings, GenTaxo learns the contextual embeddings from their surrounding graph-based and language-based relational information, and leverages the corpus for pre-training a concept name generator. Experimental results demonstrate that GenTaxo improves the completeness of taxonomies over existing methods.
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Install the CLIlune papers fulltext 364f8a3b-00a9-48a8-ba87-5fa6532a036dCited by top-tier papers11
- TaxoCom: Topic Taxonomy Completion with Hierarchical Discovery of Novel Topic ClustersDongha Lee, Jiaming Shen, Seongku Kang, Susik Yoon et al.WWW 2022 · 46 citations
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- Generative Entity Typing with Curriculum LearningSiyu Yuan, Deqing Yang, Jiaqing Liang, Zhixu Li et al.EMNLP 2022 · 11 citations
Builds on7
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- Taxonomy Completion via Triplet Matching NetworkJieyu Zhang, Xiangchen Song, Ying Zeng, Jiaze Chen et al.AAAI 2021 · 48 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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