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gettingtothebottom (version 3.2)

Learning Optimization and Machine Learning for Statistics

Description

Getting to the Bottom accompanies the "Getting to the Bottom" optimization methods series at Statisticsviews.com. It contains data and code to reproduce the examples in the articles.

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Install

install.packages('gettingtothebottom')

Monthly Downloads

61

Version

3.2

License

MIT + file LICENSE

Maintainer

Last Published

December 5th, 2014

Functions in gettingtothebottom (3.2)

engel

Engel's Law - Engel Food Expenditures Data from the quantreg package for R
diff_norm

MM Algorithm - Normed Difference
example.alpha

Gradient Descent Algorithm - Plots Depicting Gradient Descent Results in Example 1 Using Different Choices for the Step Size
init.lambda

MM Algorithm - Initial lambda
plot_nnm_coef

MM Algorithm - Plotting the NNMLS regression coefficients
softhreshold

MM Algorithm - Softhreshold Function
makeY

MM Algorithm - Make Y
gdescent

Gradient Descent Algorithm
plot_gradient

Gradient Descent Algorithm - Plotting the Gradient Function
stigler

The Diet Problem: "Nutritive Values of Common Foods per Dollar of Expenditure, August 15, 1944", from George Stigler's 1945 paper on "The Cost of Subsistence"
plot_loss

Gradient Descent Algorithm - Plotting the Loss Function
plot_nnm

MM Algorithm - Plot NNM
matrixcomplete

MM Algorithm - Matrix Completion
plot_nnm_reconstruction

MM Algorithm - Plotting the Reconstruction
plot_nnm_truth

MM Algorithm - Plotting the True Signal
testmatrix

MM Algorithm - Generate Test Matrix
moviebudgets

Movie ratings and budget database derived from data from IMDB.com
example.quadratic.approx

Gradient Descent Algorithm - Plots Depicting How Different Choices of Alpha Result in Differing Quadratic Approximations
plot_solpaths_error

MM Algorithm - Function for plotting the imputed values against the truth for minimum error solution
plot_solutionpaths

MM Algorithm - Plot results of solutionpaths function
nnls_mm

Nonnegative Least Squares via MM
plot_iterates

Gradient Descent Algorithm - Plotting the Iterates
plot_nnm_obj

MM Algorithm - Plot NNM Objective
solutionpaths

MM Algorithm - Find the best fit lambda for a given problem based on an initial guess for lambda
movieratings

Movie ratings database derived from data from IMDB.com
makeZ

MM Algorithm - Make Z
plot_spect

MM Algorithm - Plotting the Spectroscopic Signal
plot_softhreshold

MM Algorithm - Plot the Softhreshold Function
makeLambdaseq

MM Algorithm - Function for making sequence of lambdas for solution paths
makeOmega

MM Algorithm - Generate Omega
generate_nnm

Generate random nonnegative mixture components
gettingtothebottom

gettingtothebottom
nutrition

The Diet Problem: "Daily Allowances of Nutrients for a Moderately Active Man (weighing 154 pounds)" from George Stigler's 1945 paper on "The Cost of Subsistence"
baltimoreyouth

Baltimore Youth Indicators - 2010 and 2011