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Nonparametric regression with discrete covariate and missing values

机译:具有离散协变量和缺失值的非参数回归

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We consider nonparametric regression with a mixture of continuous and discrete explanatory variables where realizations of the response variable may be missing. An imputation based nonparametric regression estimator is proposed. We show that the proposed approach leads to a leading order variance benefit, whereas smoothing the categorical variables gives a second order variance improvement. We also demonstrate the applications of the proposed approach through numerical simulations and two practical examples.
机译:我们考虑连续和离散的解释变量混合的非参数回归,其中可能缺少响应变量的实现。提出了一种基于归因的非参数回归估计量。我们表明,所提出的方法可带来先导方差的好处,而平滑分类变量则可改善二阶方差。我们还通过数值模拟和两个实际示例演示了该方法的应用。

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