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Tytuł pozycji:

Web-based interactive mapping from data dictionaries to ontologies, with an application to cancer registry

Tytuł:
Web-based interactive mapping from data dictionaries to ontologies, with an application to cancer registry
Autorzy:
Shiqiang Tao
Ningzhou Zeng
Isaac Hands
Joseph Hurt-Mueller
Eric B. Durbin
Licong Cui
Guo-Qiang Zhang
Temat:
Data dictionary
Ontology
Concept mapping
Computer applications to medicine. Medical informatics
R858-859.7
Źródło:
BMC Medical Informatics and Decision Making, Vol 20, Iss S10, Pp 1-9 (2020)
Wydawca:
BMC, 2020.
Rok publikacji:
2020
Kolekcja:
LCC:Computer applications to medicine. Medical informatics
Typ dokumentu:
article
Opis pliku:
electronic resource
Język:
English
ISSN:
1472-6947
Relacje:
https://doaj.org/toc/1472-6947
DOI:
10.1186/s12911-020-01288-7
Dostęp URL:
https://doaj.org/article/52209f4aa78f4ecba6928a209b21101e  Link otwiera się w nowym oknie
Numer akcesji:
edsdoj.52209f4aa78f4ecba6928a209b21101e
Czasopismo naukowe
Abstract Background The Kentucky Cancer Registry (KCR) is a central cancer registry for the state of Kentucky that receives data about incident cancer cases from all healthcare facilities in the state within 6 months of diagnosis. Similar to all other U.S. and Canadian cancer registries, KCR uses a data dictionary provided by the North American Association of Central Cancer Registries (NAACCR) for standardized data entry. The NAACCR data dictionary is not an ontological system. Mapping between the NAACCR data dictionary and the National Cancer Institute (NCI) Thesaurus (NCIt) will facilitate the enrichment, dissemination and utilization of cancer registry data. We introduce a web-based system, called Interactive Mapping Interface (IMI), for creating mappings from data dictionaries to ontologies, in particular from NAACCR to NCIt. Method IMI has been designed as a general approach with three components: (1) ontology library; (2) mapping interface; and (3) recommendation engine. The ontology library provides a list of ontologies as targets for building mappings. The mapping interface consists of six modules: project management, mapping dashboard, access control, logs and comments, hierarchical visualization, and result review and export. The built-in recommendation engine automatically identifies a list of candidate concepts to facilitate the mapping process. Results We report the architecture design and interface features of IMI. To validate our approach, we implemented an IMI prototype and pilot-tested features using the IMI interface to map a sample set of NAACCR data elements to NCIt concepts. 47 out of 301 NAACCR data elements have been mapped to NCIt concepts. Five branches of hierarchical tree have been identified from these mapped concepts for visual inspection. Conclusions IMI provides an interactive, web-based interface for building mappings from data dictionaries to ontologies. Although our pilot-testing scope is limited, our results demonstrate feasibility using IMI for semantic enrichment of cancer registry data by mapping NAACCR data elements to NCIt concepts.
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