Papers › Exploiting Unary Relations with Stacked Learning for Relation Extraction

Exploiting Unary Relations with Stacked Learning for Relation Extraction

1 Oct 2022sdp (COLING) 2022 10archive 2025-07-28

Yuan Zhuang, Ellen Riloff, Kiri L. Wagstaff, Raymond Francis, Matthew P. Golombek, Leslie K. Tamppari

Relation extraction models typically cast the problem of determining whether there is a relation between a pair of entities as a single decision. However, these models can struggle with long or complex language constructions in which two entities are not directly linked, as is often the case in scientific publications. We propose a novel approach that decomposes a binary relation into two unary relations that capture each argument’s role in the relation separately. We create a stacked learning model that incorporates information from unary and binary relation extractors to determine whether a relation holds between two entities. We present experimental results showing that this approach outperforms several competitive relation extractors on a new corpus of planetary science publications as well as a benchmark dataset in the biology domain.

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yyzhuang1991/stackedlearningwithunarymodels officialmentioned in paperpytorch report

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Relation Extraction

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Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Relation Extraction LPSC-contains Stacked_LinkedBERT F1 (micro) 78.5 #1 of 1 Archive leaderboard report
Relation Extraction LPSC-hasproperty Stacked_LinkedBERT F1 (micro) 78.1 #1 of 1 Archive leaderboard report

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