Semantic Search for Large Scale Clinical Ontologies

January 01, 2022 ยท Declared Dead ยท ๐Ÿ› American Medical Informatics Association Annual Symposium

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Authors Duy-Hoa Ngo, Madonna Kemp, Donna Truran, Bevan Koopman, Alejandro Metke-Jimenez arXiv ID 2201.00118 Category cs.CL: Computation & Language Cross-listed cs.IR, cs.LG Citations 3 Venue American Medical Informatics Association Annual Symposium Last Checked 5 months ago
Abstract
Finding concepts in large clinical ontologies can be challenging when queries use different vocabularies. A search algorithm that overcomes this problem is useful in applications such as concept normalisation and ontology matching, where concepts can be referred to in different ways, using different synonyms. In this paper, we present a deep learning based approach to build a semantic search system for large clinical ontologies. We propose a Triplet-BERT model and a method that generates training data directly from the ontologies. The model is evaluated using five real benchmark data sets and the results show that our approach achieves high results on both free text to concept and concept to concept searching tasks, and outperforms all baseline methods.
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