Statistical Inference in Partial Linear Regression Models

Contains statistical inference tools applied to Partial Linear Regression (PLR) models. Specifically, point estimation, confidence intervals estimation, bandwidth selection, goodness-of-fit tests and analysis of covariance are considered. Kernel-based methods, combined with ordinary least squares estimation, are used and time series errors are allowed. In addition, these techniques are also implemented for both parametric (linear) and nonparametric regression models.


Reference manual

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install.packages("PLRModels")

1.4 by Ana Lopez-Cheda, 3 years ago


Browse source code at https://github.com/cran/PLRModels


Authors: German Aneiros Perez and Ana Lopez-Cheda


Documentation:   PDF Manual  


GPL-3 license


Imports stats


See at CRAN