GAMens: Applies GAMbag, GAMrsm and GAMens Ensemble Classifiers for
Binary Classification
Implements the GAMbag, GAMrsm and GAMens ensemble
classifiers for binary classification (De Bock et al., 2010) <doi:10.1016/j.csda.2009.12.013>. The ensembles
implement Bagging (Breiman, 1996) <doi:10.1023/A:1010933404324>, the Random Subspace Method (Ho, 1998) <doi:10.1109/34.709601>
, or both, and use Hastie and Tibshirani's (1990, ISBN:978-0412343902) generalized additive models (GAMs)
as base classifiers. Once an ensemble classifier has been trained, it can
be used for predictions on new data. A function for cross validation is also
included.
Version: |
1.2.1 |
Depends: |
R (≥ 2.4.0), splines, gam, mlbench, caTools |
Published: |
2018-04-05 |
Author: |
Koen W. De Bock, Kristof Coussement and Dirk Van den Poel |
Maintainer: |
Koen W. De Bock <kdebock at audencia.com> |
License: |
GPL-2 | GPL-3 [expanded from: GPL (≥ 2)] |
NeedsCompilation: |
no |
CRAN checks: |
GAMens results |
Documentation:
Downloads:
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