Machine Learning Foundations

Offers a gentle introduction to machine learning concepts for practitioners with a statistical pedigree: decomposition of model error (bias-variance trade-off), nonlinear correlations, information theory and functional permutation/bootstrap simulations. Székely GJ, Rizzo ML, Bakirov NK. (2007). . Reshef DN, Reshef YA, Finucane HK, Grossman SR, McVean G, Turnbaugh PJ, Lander ES, Mitzenmacher M, Sabeti PC. (2011). .


Reference manual

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install.packages("mlf")

1.2.1 by Kyle Peterson, 8 years ago


http://mlf-project.us/


Browse source code at https://github.com/cran/mlf


Authors: Kyle Peterson [aut, cre]


Documentation:   PDF Manual  


GPL-2 license


Imports stats, utils


See at CRAN