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Unified Medical Language System resources improve sieve-based generation and Bidirectional Encoder Representations

Dongfang Xu1, Manoj Gopale2, Jiacheng Zhang3

  • 1School of Information, University of Arizona, Tucson, Arizona, USA.

Journal of the American Medical Informatics Association : JAMIA
|July 29, 2020
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Summary
This summary is machine-generated.

A new generate-and-rank system accurately links text phrases to medical concepts using the Unified Medical Language System (UMLS). This approach achieved third place in a clinical challenge, improving concept normalization accuracy.

Keywords:
concept normalizationdeep learninggenerate-and-ranknatural language processingunified medical language system

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Area of Science:

  • Natural Language Processing
  • Medical Informatics

Background:

  • Concept normalization links text phrases to ontology concepts, crucial for tasks like relation extraction and information retrieval.
  • Accurate concept normalization requires robust systems to handle the complexity of clinical text.

Purpose of the Study:

  • To present a generate-and-rank concept normalization system for clinical text.
  • To evaluate the system's performance in the 2019 National NLP Clinical Challenges Shared Task Track 3.

Main Methods:

  • A sieve-based candidate generation system using Lucene indices, Unified Medical Language System (UMLS) preferred terms, and synonyms.
  • A BERT-based neural network classifier for ranking candidate concepts, incorporating UMLS semantic types via a regularizer.

Main Results:

  • The generate-and-rank system achieved third place out of 33 participants.
  • The system's accuracy improved from 79.44% (candidate generator alone) to 81.66% and later to 83.56% post-evaluation.
  • Performance surpassed the previous state-of-the-art accuracy of 76.35%.

Conclusions:

  • The generate-and-rank framework effectively integrates UMLS features with neural networks for accurate concept normalization.
  • Prioritizing UMLS preferred terms and utilizing the semantic type regularizer enhances prediction quality.
  • The model demonstrates robust performance, even on concepts not encountered during training.