Fast and automatic gradient tree boosting designed to avoid manual tuning and cross-validation by utilizing an information theoretic approach. This makes the algorithm adaptive to the dataset at hand; it is completely automatic, and with minimal worries of overfitting. Consequently, the speed-ups relative to state-of-the-art implementations can be in the thousands while mathematical and technical knowledge required on the user are minimized.
| Version: | 0.9.3 | 
| Depends: | R (≥ 3.6.0) | 
| Imports: | methods, Rcpp (≥ 1.0.1) | 
| LinkingTo: | Rcpp, RcppEigen | 
| Suggests: | testthat | 
| Published: | 2021-11-23 | 
| DOI: | 10.32614/CRAN.package.agtboost | 
| Author: | Berent Ånund Strømnes Lunde | 
| Maintainer: | Berent Ånund Strømnes Lunde <lundeberent at gmail.com> | 
| License: | GPL-3 | 
| NeedsCompilation: | yes | 
| Materials: | NEWS | 
| CRAN checks: | agtboost results | 
| Reference manual: | agtboost.html , agtboost.pdf | 
| Package source: | agtboost_0.9.3.tar.gz | 
| Windows binaries: | r-devel: agtboost_0.9.3.zip, r-release: agtboost_0.9.3.zip, r-oldrel: agtboost_0.9.3.zip | 
| macOS binaries: | r-release (arm64): agtboost_0.9.3.tgz, r-oldrel (arm64): agtboost_0.9.3.tgz, r-release (x86_64): agtboost_0.9.3.tgz, r-oldrel (x86_64): agtboost_0.9.3.tgz | 
| Old sources: | agtboost archive | 
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