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ICML
2004
IEEE

Ensemble selection from libraries of models

15 years 1 months ago
Ensemble selection from libraries of models
We present a method for constructing ensembles from libraries of thousands of models. Model libraries are generated using different learning algorithms and parameter settings. Forward stepwise selection is used to add to the ensemble the models that maximize its performance. Ensemble selection allows ensembles to be optimized to performance metric such as accuracy, cross entropy, mean precision, or ROC Area. Experiments with seven test problems and ten metrics demonstrate the benefit of ensemble selection.
Rich Caruana, Alexandru Niculescu-Mizil, Geoff Cre
Added 17 Nov 2009
Updated 17 Nov 2009
Type Conference
Year 2004
Where ICML
Authors Rich Caruana, Alexandru Niculescu-Mizil, Geoff Crew, Alex Ksikes
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