A process combining NLP-aided annotation and multi-wave adaptive sampling cuts chart review time by roughly half and would have skipped 77% of charts in a validation study of an intentional self-harm algorithm.
Adaptive multi-wave sampling for efficient chart validation
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abstract
Computable phenotypes are used to characterize patients and identify outcomes in studies conducted using healthcare claims and electronic health record data. Chart review studies establish reference labels against which computable phenotypes are compared to understand their measurement characteristics, the quantity of interest, for instance the positive predictive value. We describe a method to adaptively evaluate a quantity of interest over sequential samples of charts, with the goal to minimize the number of charts reviewed. With the help of a simultaneous confidence band, we stop the reviewing once the confidence band meets a pre-specified stopping threshold. The contribution of this article is threefold. First, we tested the use of an adaptive approach called Neyman's sampling of charts versus random or stratified random sampling. Second, we propose frequentist confidence bands and Bayesian credible intervals to sequentially evaluate the quantity of interest. Third, we propose a tool to predict the stopping time (defined as the number of charts reviewed) at which the chart review would be complete. We observe that Bayesian credible intervals proved to be tighter than its frequentist confidence band counterparts. Moreover, we observe that simple random sampling is often performing similarly to Neyman's sampling.
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cs.CL 1years
2025 1verdicts
CONDITIONAL 1representative citing papers
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A chart review process aided by natural language processing and multi-wave adaptive sampling to expedite validation of code-based algorithms for large database studies
A process combining NLP-aided annotation and multi-wave adaptive sampling cuts chart review time by roughly half and would have skipped 77% of charts in a validation study of an intentional self-harm algorithm.