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Conformalized Regression for Continuous Bounded Outcomes

arXiv stat.ML1mo4 min read

arXiv:2507.14023v2 Announce Type: replace Abstract: Regression problems with bounded continuous outcomes frequently arise in statistical and machine learning applications, such as the analysis of rates and proportions. A central challenge in this setting is predicting the response at a new covariate value. Most of the existing literature has focused either on point prediction or on interval prediction based on asymptotic approximations. We develop conformal prediction intervals for bounded outcomes within the framework of transformation regression models, encompassing widely used models such a

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