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Measuring Data Quality: A Review of the Literature between 2005 and 2013
Jürgen Stausberg1, Daniel Nasseh2, Michael Nonnemacher3
1Essen, Germany.
Abstract:
A literature review was done within a revision of a guideline concerned with data quality management in registries and cohort studies. The review focused on quality indicators, feedback, and source data verification. Thirty-nine relevant articles were selected in a stepwise selection process. The majority of the papers dealt with indicators. The papers presented concepts or data analyses. The leading indicators were related to case or data completeness, correctness, and accuracy. In the future, data pools as well as research reports from quantitative studies should be obligatory supplemented by information about their data quality, ideally picking up some indicators presented in this review.
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