Ontology-Based Data Integration between Clinical and Research Systems
Author(s) -
Sebastian Mate,
Felix Köpcke,
Dennis Toddenroth,
Marcus Martin,
HansUlrich Prokosch,
Thomas Bürkle,
Thomas Ganslandt
Publication year - 2015
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0116656
Subject(s) - computer science , ontology , sql , data warehouse , abstraction , data integration , reuse , database , data transformation , identification (biology) , information retrieval , data extraction , data mining , medline , ecology , philosophy , botany , epistemology , biology , political science , law
Data from the electronic medical record comprise numerous structured but uncoded ele-ments, which are not linked to standard terminologies. Reuse of such data for secondary research purposes has gained in importance recently. However, the identification of rele-vant data elements and the creation of database jobs for extraction, transformation and loading (ETL) are challenging: With current methods such as data warehousing, it is not feasible to efficiently maintain and reuse semantically complex data extraction and trans-formation routines. We present an ontology-supported approach to overcome this challenge by making use of abstraction: Instead of defining ETL procedures at the database level, we use ontologies to organize and describe the medical concepts of both the source system and the target system. Instead of using unique, specifically developed SQL statements or ETL jobs, we define declarative transformation rules within ontologies and illustrate how these constructs can then be used to automatically generate SQL code to perform the desired ETL procedures. This demonstrates how a suitable level of abstraction may not only aid the interpretation of clinical data, but can also foster the reutilization of methods for un-locking it.
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