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Evaluation of the Terminology Coverage in the French Corpus LiSSa.

Authors :
Cabot C
Soualmia LF
Grosjean J
Griffon N
Darmoni SJ
Source :
Studies in health technology and informatics [Stud Health Technol Inform] 2017; Vol. 235, pp. 126-130.
Publication Year :
2017

Abstract

Extracting concepts from medical texts is a key to support many advanced applications in medical information retrieval. Entity recognition in French texts is moreover challenged by the availability of many resources originally developed for English texts. This paper proposes an evaluation of the terminology coverage in a corpus of 50,000 French articles extracted from the bibliographic database LiSSa. This corpus was automatically indexed with 32 health terminologies, published in French or translated. Then, the terminologies providing the best coverage of these documents were determined. The results show that major resources such as the NCI and SNOMED CT thesauri achieve the largest annotation of the corpus while specific French resources prove to be valuable assets.

Details

Language :
English
ISSN :
1879-8365
Volume :
235
Database :
MEDLINE
Journal :
Studies in health technology and informatics
Publication Type :
Academic Journal
Accession number :
28423768