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Using a Text-Mining Approach to Evaluate the Quality of Nursing Records.

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1
Nursing Department, National Taiwan University Hospital, Taipei, Taiwan.
2
Nursing Department, National Taipei University of Nursing and Health Sciences, Taipei, Taiwan.

Abstract

Nursing records in Taiwan have been computerized, but their quality has rarely been discussed. Therefore, this study employed a text-mining approach and a cross-sectional retrospective research design to evaluate the quality of electronic nursing records at a medical center in Northern Taiwan. SAS Text Miner software Version 13.2 was employed to analyze unstructured nursing event records. The results show that SAS Text Miner is suitable for developing a textmining model for validating nursing records. The sensitivity of SAS Text Miner was approximately 0.94, and the specificity and accuracy were 0.99. Thus, SAS Text Miner software is an effective tool for auditing unstructured electronic nursing records.

PMID:
27332355
[Indexed for MEDLINE]
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