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Cross-Conformal Prediction with Ridge Regression

机译:带有岭回归的跨保形预测

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摘要

Cross-Conformal Prediction (CCP) is a recently proposed approach for overcoming the computational inefficiency problem of Con-formal Prediction (CP) without sacrificing as much informational efficiency as Inductive Conformal Prediction (ICP). In effect CCP is a hybrid approach combining the ideas of cross-validation and ICP. In the case of classification the predictions of CCP have been shown to be empirically valid and more informationally efficient than those of the ICP. This paper introduces CCP in the regression setting and examines its empirical validity and informational efficiency compared to that of the original CP and ICP when combined with Ridge Regression.
机译:跨适形预测(CCP)是最近提出的一种方法,用于克服适形预测(CP)的计算效率低下的问题,而不会牺牲与归纳适形预测(ICP)一样多的信息效率。实际上,CCP是一种结合了交叉验证和ICP思想的混合方法。在分类的情况下,CCP的预测已显示出比ICP的经验有效且信息效率更高。本文在回归设置中介绍了CCP,并比较了与Ridge回归相结合的原始CP和ICP的经验有效性和信息效率。

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