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Bayesian methods: a useful tool for classifying injury narratives into cause groups
2009
Injury Prevention
To compare two Bayesian methods (Fuzzy and Naïve) for classifying injury narratives in large administrative databases into event cause groups, a dataset of 14 000 narratives was randomly extracted from claims filed with a worker's compensation insurance provider. Two expert coders assigned one-digit and two-digit Bureau of Labor Statistics (BLS) Occupational Injury and Illness Classification event codes to each narrative. The narratives were separated into a training set of 11 000 cases and a
doi:10.1136/ip.2008.021337
pmid:19652000
fatcat:gulszjagsngwphrtx3tpu2nnvq