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Dynamic partially functional linear regression model

机译:动态部分功能线性回归模型

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In this paper, we develop a dynamic partially functional linear regression model in which the functional dependent variable is explained by the first order lagged functional observation and a finite number of real-valued variables. The bivariate slope function is estimated by bivariate tensor-product B-splines. Under some regularity conditions, the large sample properties of the proposed estimators are established. We investigate the finite sample performance of the proposed methods via Monte Carlo simulation studies, and illustrate its usefulness by the analysis of the electricity consumption data.
机译:在本文中,我们开发了一个动态的部分功能线性回归模型,其中功能因变量通过一阶滞后功能观察和有限数量的实值变量来解释。双变量斜率函数由双变量张量积B样条估计。在某些规律性条件下,建立了拟议估计量的大样本性质。我们通过蒙特卡洛模拟研究调查了所提出方法的有限样本性能,并通过分析电耗数据来说明其有用性。

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