Literature DB >> 32645382

Fine-tuning ERNIE for chest abnormal imaging signs extraction.

Zhaoning Li1, Jiangtao Ren2.   

Abstract

Chest imaging reports describe the results of chest radiography procedures. Automatic extraction of abnormal imaging signs from chest imaging reports has a pivotal role in clinical research and a wide range of downstream medical tasks. However, there are few studies on information extraction from Chinese chest imaging reports. In this paper, we formulate chest abnormal imaging sign extraction as a sequence tagging and matching problem. On this basis, we propose a transferred abnormal imaging signs extractor with pretrained ERNIE as the backbone, named EASON (fine-tuning ERNIE with CRF for Abnormal Signs ExtractiON), which can address the problem of data insufficiency. In addition, to assign the attributes (the body part and degree) to corresponding abnormal imaging signs from the results of the sequence tagging model, we design a simple but effective tag2relation algorithm based on the nature of chest imaging report text. We evaluate our method on the corpus provided by a medical big data company, and the experimental results demonstrate that our method achieves significant and consistent improvement compared to other baselines.
Copyright © 2020 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Chest Abnormal imaging signs extraction; Conditional random field; ERNIE; Sequence tagging

Mesh:

Year:  2020        PMID: 32645382     DOI: 10.1016/j.jbi.2020.103492

Source DB:  PubMed          Journal:  J Biomed Inform        ISSN: 1532-0464            Impact factor:   6.317


  2 in total

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2.  A Comparative Study of Natural Language Processing Algorithms Based on Cities Changing Diabetes Vulnerability Data.

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Journal:  Healthcare (Basel)       Date:  2022-06-15
  2 in total

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