Hypernym Detection Using Strict Partial Order Networks

Author:

Dash Sarthak,Chowdhury Md Faisal Mahbub,Gliozzo Alfio,Mihindukulasooriya Nandana,Fauceglia Nicolas Rodolfo

Abstract

This paper introduces Strict Partial Order Networks (SPON), a novel neural network architecture designed to enforce asymmetry and transitive properties as soft constraints. We apply it to induce hypernymy relations by training with is-a pairs. We also present an augmented variant of SPON that can generalize type information learned for in-vocabulary terms to previously unseen ones. An extensive evaluation over eleven benchmarks across different tasks shows that SPON consistently either outperforms or attains the state of the art on all but one of these benchmarks.

Publisher

Association for the Advancement of Artificial Intelligence (AAAI)

Subject

General Medicine

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. EP-BoxE: A method for hypernym discovery based on extended patterns and box embeddings;Journal of Intelligent & Fuzzy Systems;2024-03-05

2. Hypert: hypernymy-aware BERT with Hearst pattern exploitation for hypernym discovery;Journal of Big Data;2023-09-12

3. Inference of isA commonsense knowledge with lexical taxonomy;Applied Intelligence;2022-06-22

4. Domain specific ontologies from Linked Open Data (LOD);5th Joint International Conference on Data Science & Management of Data (9th ACM IKDD CODS and 27th COMAD);2022-01-08

5. Enquire One’s Parent and Child Before Decision: Fully Exploit Hierarchical Structure for Self-Supervised Taxonomy Expansion;Proceedings of the Web Conference 2021;2021-04-19

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