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DESCRIPTION
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DESCRIPTION
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Package: rerf
Type: Package
Title: Randomer Forest
Version: 2.0.4.9007
Date: 2019-03-15
Authors@R: c(
person("Jesse", "Patsolic", role = c("ctb", "cre"), email = "software@neurodata.io"),
person("Benjamin", "Falk", role = "ctb", email = "falk.ben@jhu.edu"),
person("Jaewon", "Chung", role = "ctb", email = "j1c@jhu.edu"),
person("James", "Browne", role = "aut", email = "jbrowne6@jhu.edu"),
person("Tyler", "Tomita", role = "aut", email = "ttomita2@jhmi.edu"),
person("Joshua", "Vogelstein", role = "ths", email = "jovo@jhu.edu")
)
Description: R-RerF (aka Randomer Forest (RerF) or Random Projection
Forests) is an algorithm developed by Tomita (2016) <arXiv:1506.03410v2>
which is similar to Random Forest - Random Combination (Forest-RC)
developed by Breiman (2001) <doi:10.1023/A:1010933404324>. Random
Forests create axis-parallel, or orthogonal trees. That is, the feature
space is recursively split along directions parallel to the axes of the
feature space. Thus, in cases in which the classes seem inseparable
along any single dimension, Random Forests may be suboptimal. To
address this, Breiman also proposed and characterized Forest-RC, which
uses linear combinations of coordinates rather than individual
coordinates, to split along. This package, 'rerf', implements RerF
which is similar to Forest-RC. The difference between the two
algorithms is where the random linear combinations occur: Forest-RC
combines features at the per tree level whereas RerF takes linear
combinations of coordinates at every node in the tree.
Depends: R (>= 3.3.0), Rcpp (>= 1.0.0)
License: Apache License 2.0 | file LICENSE
URL: https://github.com/neurodata/R-RerF
BugReports: https://github.com/neurodata/R-RerF/issues
Imports: parallel, RcppZiggurat, utils, stats, dummies, mclust
Suggests: roxygen2 (>= 5.0.0), testthat
LinkingTo: Rcpp, RcppArmadillo
SystemRequirements: GNU make
ByteCompile: true
RoxygenNote: 6.1.1
RcppModules: forestPackingRConversion