Abstract
As electronic medical records (EMRs) grow in size and complexity, there is increasing need for automated EMR tools that highlight the medical record items most germane to a practitioner's task-specific needs. The development of such tools would be aided by gold standards of information relevance for a series of different clinical scenarios. We have previously proposed a process in which exemplar medical record data are extracted from actual patients' EMRs, anonymized, and presented to clinical experts, who then score each medical record item for its relevance to a specific clinical scenario. In this paper, we present how that body of expert relevancy data can be used to create a test framework to validate new EMR search strategies.
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Harvey, H., Krishnaraj, A., & Alkasab, T. K. (2014, January 1). Use of Expert Relevancy Ratings to Validate Task-Specific Search Strategies for Electronic Medical Records. JMIR Medical Informatics. JMIR Publications Inc. https://doi.org/10.2196/medinform.3205
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