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Taxonomic Triangulation of Care in Healthcare Protocols: Mapping of Diagnostic Knowledge From Standardized Language
Alexandra González-Aguña1, Marta Fernández-Batalla, Sara Gasco-González
1Author Affiliations: Henares University Hospital (Ms González-Aguña), Meco Health Center (Drs Fernández-Batalla and Santamaría-García), Community of Madrid Health Service; Official College of Nursing of Madrid (Ms Gasco-González); Sanitas University Hospital "La Zarzuela" (Ms Cercas-Duque); Department of Computer Science, University of Alcalá (Dr Jiménez-Rodríguez); and Research Group MISKC, University of Alcalá (Ms González-Aguña, Dr Fernández-Batalla, Dr Santamaría-García, Ms Cercas-Duque and Dr Jiménez-Rodríguez), Madrid, Spain.
Abstract:
Taxonomic triangulation is a data mining technique for the management of care knowledge. This technique uses standardized languages, such as North American Nursing Diagnosis Association International, Nursing Outcomes Classification, and Nursing Interventions Classification, as well as logic. Its purpose is to find patterns in the data and identify care diagnoses. Triangulation can be applied to databases (clinical records) or to bibliographic sources (eg, protocols). The objective of this study is to identify the care diagnoses implicit in the nursing care protocols of the Community of Madrid. The method followed has three phases: knowledge extraction for mapping of variables, linking to diagnoses, and triangulation with analysis. The study analyzes six protocols, and 344 variables (167 assessment, 29 planning, and 148 intervention) and 6118 links have been extracted. Triangulation identified 165 NANDA diagnoses (68.48%), and only 25 labels were not revealed through this process. As a limitation, the results depend on the knowledge presented in protocols and change with language editions. Some labels included in the sample are recent and are not included in the links with nursing outcomes classification and nursing interventions classification. In conclusion, taxonomic triangulation makes it possible to manage knowledge, discover data patterns, and represent care situations.
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