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Modeling Recovery Curves With Application to Prostatectomy

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arxiv 1504.06964 v6 pith:R6DXX6QQ submitted 2015-04-27 stat.ME stat.APstat.ML

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keywords recoverycurvesmedicalmodelprostatectomyaccurateagreeapplication
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We propose a Bayesian model that predicts recovery curves based on information available before the disruptive event. A recovery curve of interest is the quantified sexual function of prostate cancer patients after prostatectomy surgery. We illustrate the utility of our model as a pre-treatment medical decision aid, producing personalized predictions that are both interpretable and accurate. We uncover covariate relationships that agree with and supplement that in existing medical literature.

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