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Evaluation of a dynamic bayesian belief network to predict osteoarthritic knee pain using data from the
Emily W Watt1, Emily Watt, Alex A T Bui
1University of California Los Angeles, Los Angeles, CA, USA.
Abstract:
The most common cause of disability in older adults in the United States is osteoarthritis. To address the problem of early disease prediction, we have constructed a Bayesian belief network (BBN) composed of knee OA-related symptoms to support prognostic queries. The purpose of this study is to evaluate a static and dynamic BBN--based on the NIH Osteoarthritis Initiative (OAI) data--in predicting the likelihood of a patient being diagnosed with knee OA. Initial validation results are promising: our model outperforms a logistic regression model in several designed studies. We can conclude that our model can effectively predict the symptoms that are commonly associated with the presence of knee OA.