erboost: Nonparametric Multiple Expectile Regression via ER-Boost
Expectile regression is a nice tool for estimating the conditional expectiles of a response variable given a set of covariates. This package implements a regression tree based gradient boosting estimator for nonparametric multiple expectile regression, proposed by Yang, Y., Qian, W. and Zou, H. (2018) <doi:10.1080/00949655.2013.876024>. The code is based on the 'gbm' package originally developed by Greg Ridgeway.
| Version: | 
1.5 | 
| Depends: | 
R (≥ 2.12.0), lattice, splines | 
| Published: | 
2025-03-25 | 
| DOI: | 
10.32614/CRAN.package.erboost | 
| Author: | 
Yi Yang [aut, cre] (http://www.math.mcgill.ca/yyang/),
  Hui Zou [aut] (http://users.stat.umn.edu/~zouxx019/),
  Greg Ridgeway [ctb, cph] | 
| Maintainer: | 
Yi Yang  <yi.yang6 at mcgill.ca> | 
| License: | 
GPL-3 | 
| NeedsCompilation: | 
yes | 
| Materials: | 
ChangeLog  | 
| CRAN checks: | 
erboost results | 
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