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research-article

An end-to-end framework for biomedical event trigger identification with hierarchical attention and adaptive cost learning

Published: 01 January 2020 Publication History

Abstract

As a prerequisite step in biomedical event extraction, event trigger identification has attracted growing attention in biomedical research. Existing approaches to biomedical event trigger identification have two major drawbacks: (1) each sentence in a biomedical document is handled separately, which ignores the global context; (2) they fail to treat the issue of imbalanced class which is induced by the sparseness of event triggers in biomedical documents. To improve the performance of biomedical event trigger identification, we propose a deep neural network-based framework which addresses effectively the two mentioned challenges accordingly. Specifically, the syntactic dependency tree and hierarchical attention mechanism are utilised to model both local and global contexts. Moreover, we propose an adaptive cost learning method to address the class imbalance issue in biomedical event trigger identification. Extensive experiments are conducted on two real-world data sets, and the results demonstrate the effectiveness of the proposed framework.

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          Information & Contributors

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          Published In

          cover image International Journal of Data Mining and Bioinformatics
          International Journal of Data Mining and Bioinformatics  Volume 23, Issue 3
          2020
          95 pages
          ISSN:1748-5673
          EISSN:1748-5681
          DOI:10.1504/ijdmb.2020.23.issue-3
          Issue’s Table of Contents

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          Inderscience Publishers

          Geneva 15, Switzerland

          Publication History

          Published: 01 January 2020

          Author Tags

          1. biomedical event trigger identification
          2. end-to-end model
          3. graph convolutional network
          4. syntactic dependency tree
          5. hierarchical attention mechanism
          6. adaptive cost learning

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