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dr (version 3.0.10)

Methods for Dimension Reduction for Regression

Description

Functions, methods, and datasets for fitting dimension reduction regression, using slicing (methods SAVE and SIR), Principal Hessian Directions (phd, using residuals and the response), and an iterative IRE. Partial methods, that condition on categorical predictors are also available. A variety of tests, and stepwise deletion of predictors, is also included. Also included is code for computing permutation tests of dimension. Adding additional methods of estimating dimension is straightforward. For documentation, see the vignette in the package. With version 3.0.4, the arguments for dr.step have been modified.

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Version

Install

install.packages('dr')

Monthly Downloads

1,187

Version

3.0.10

License

GPL (>= 2)

Last Published

August 3rd, 2015

Functions in dr (3.0.10)

dr.slices

Divide a vector into slices of approximately equal size
dr.x

Accessor functions for data in dr objects
plot.dr

Basic plot of a dr object
dr.directions

Directions selected by dimension reduction regressiosn
dr.weights

Estimate weights for elliptical symmetry
coord.hyp.basis

Internal function to find the basis of a subspace
dr.permutation.test

Permutation tests of dimension for dr
mussels

Mussels' muscles data
dr.pvalue

Compute the Chi-square approximations to a weighted sum of Chi-square(1) random variables.
drop1.dr

Sequential fitting of coordinate tests using a dr object
dr.coordinate.test

Dimension reduction tests
dr

Main function for dimension reduction regression
banknote

Swiss banknote data
ais

Australian institute of sport data