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Fast grid search and bootstrap-based inference for continuous two-phase polynomial regression models

机译:基于快速网格搜索和引导基于连续两相多项式回归模型的推断

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摘要

Two-phase polynomial regression models (Robison, 1964; Fuller, 1969; Gallant and Fuller, 1973; Zhan et al., 1996) are widely used in ecology, public health, and other applied fields to model nonlinear relationships. These models are characterized by the presence of threshold parameters, across which the mean functions are allowed to change. That the threshold is a parameter of the model to be estimated from the data is an essential feature of two-phase models. It distinguishes them, and more generally, multiphase models, from the spline models and has profound implications for both computation and inference for the models. Estimation of two-phase polynomial regression models is a nonconvex, nonsmooth optimization problem. Grid search provides high-quality solutions to the estimation problem, but is very slow when performed by brute force. Building upon our previous work on piecewise linear two-phase regression models estimation, we develop fast grid search algorithms for two-phase polynomial regression models and demonstrate their performance. Furthermore, we develop bootstrap-based pointwise and simultaneous confidence bands for mean functions. Monte Carlo studies are conducted to demonstrate the computational and statistical properties of the proposed methods. Three real datasets are used to help illustrate the application of two-phase models, with special attention on model choice.
机译:两相多项式回归模型(罗米森,1964; Fulerer,1969; Gallant和Fuler,1973; Zhan等,1996)广泛用于生态,公共卫生和其他应用领域,以模拟非线性关系。这些模型的特征在于存在阈值参数,允许均匀的函数改变。阈值是从数据估计的模型的参数是两相模型的基本特征。它和更常见的是,从样条模型中区分它们,更通常是多相模型,并且对模型的计算和推理具有深远的影响。估计两相多项式回归模型是非凸起的非光学优化问题。网格搜索为估计问题提供了高质量的解决方案,但是在蛮力执行时非常慢。在我们以前的分段线性两相回归模型估算上建立,我们为两相多项式回归模型开发快速网格搜索算法,并展示其性能。此外,我们开发基于Bootstrap的点和同时置信带的均值。 Monte Carlo研究进行了展示所提出的方法的计算和统计特性。三个真实数据集用于帮助说明两相模型的应用,特别注意模型选择。

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