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DESCRIPTION
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DESCRIPTION
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Package: subsemble
Type: Package
Title: An Ensemble Method for Combining Subset-Specific Algorithm Fits
Version: 0.1.0
Date: 2022-01-22
Authors@R: c(
person("Erin", "LeDell", email = "[email protected]", role = "cre"),
person("Stephanie", "Sapp", role = "aut"),
person("Mark", "van der Laan", role = c("aut")))
Description: The Subsemble algorithm is a general subset ensemble prediction method, which can be used for small, moderate, or large datasets. Subsemble partitions the full dataset into subsets of observations, fits a specified underlying algorithm on each subset, and uses a unique form of k-fold cross-validation to output a prediction function that combines the subset-specific fits. An oracle result provides a theoretical performance guarantee for Subsemble. The paper, "Subsemble: An ensemble method for combining subset-specific algorithm fits" is authored by Stephanie Sapp, Mark J. van der Laan & John Canny (2014) <doi:10.1080/02664763.2013.864263>.
License: Apache License (== 2.0)
Depends: R (>= 2.14.0), SuperLearner
Suggests: arm, caret, class, cvAUC, e1071, earth, gam, gbm, glmnet, Hmisc, ipred, lattice, LogicReg, MASS, mda, mlbench, nnet, parallel, party, polspline, quadprog, randomForest, rpart, SIS, spls, stepPlr
URL: https://github.com/ledell/subsemble
BugReports: https://github.com/ledell/subsemble/issues
LazyLoad: yes