Papers › Joint Learning of Named Entity Recognition and Entity Linking

Joint Learning of Named Entity Recognition and Entity Linking

18 Jul 2019ACL 2019 7arXiv:1907.08243archive 2025-07-28

Pedro Henrique Martins, Zita Marinho, André F. T. Martins

Named entity recognition (NER) and entity linking (EL) are two fundamentally related tasks, since in order to perform EL, first the mentions to entities have to be detected. However, most entity linking approaches disregard the mention detection part, assuming that the correct mentions have been previously detected. In this paper, we perform joint learning of NER and EL to leverage their relatedness and obtain a more robust and generalisable system. For that, we introduce a model inspired by the Stack-LSTM approach (Dyer et al., 2015). We observe that, in fact, doing multi-task learning of NER and EL improves the performance in both tasks when comparing with models trained with individual objectives. Furthermore, we achieve results competitive with the state-of-the-art in both NER and EL.

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Tasks

Entity LinkingMulti-Task LearningNERNamed Entity RecognitionNamed Entity Recognition (NER)named-entity-recognition

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Entity Linking AIDA-CoNLL Martins et al. (2019) Micro-F1 strong 81.9 #12 of 17 Archive leaderboard report
Named Entity Recognition (NER) CoNLL 2003 (English) Stack LSTM F1 92.43 #41 of 73 Archive leaderboard report

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