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Estimation of shape constrained additive models with missing response at random

机译:估计随机缺失响应的形状约束添加模型

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Shape constrained additive models are useful in estimating production functions or analysing disease risk where the relationship between predictors and response is known to be monotone or/and concave. We here consider the estimation of shape constrained additive models when the response is missing at random given missing data are common occurrence and problem in many real-life situations. To the best of our knowledge, no research has focused on this problem. Our paper nicely fills this gap and contributes to the literature by proposing a weighted constrained polynomial spline estimation method in a one-step backfitting procedure. The proposed method is not only easy to implement but also gives smooth estimators that satisfy shape constraints and accommodate missing data problem simultaneously. In theory, we show that the proposed estimator enjoys the optimal rate of convergence asymptotically. Both simulation studies and the application of our method to Norwegian farm data illustrate that the proposed method has superior performance due to the incorporation of weights and shape constraints.
机译:形状约束的添加剂模型可用于估计生产功能或分析疾病风险,其中已知预测器和响应之间的关系是单调或/和凹的。我们在此考虑在遗漏缺失数据时缺少响应时,考虑估计形状约束的添加剂模型是许多真实生活中的常见发生和问题。据我们所知,没有研究专注于这个问题。我们的论文很好地填充了这种差距,并通过在一步的回合过程中提出加权约束多项式样条估计方法来贡献文献。该方法不仅易于实现,还提供了满足形状约束的平滑估计器,并同时满足缺失的数据问题。从理论上讲,我们表明拟议的估算者享有渐近的收敛速度。仿真研究和我们对挪威农场数据的应用的应用说明了所提出的方法由于重量和形状约束而具有卓越的性能。

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