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Investigations Of Variable Importance Measures Within Random Forests, Andrew C. Merrill
Investigations Of Variable Importance Measures Within Random Forests, Andrew C. Merrill
All Graduate Theses and Dissertations, Spring 1920 to Summer 2023
Random Forests (RF) (Breiman 2001; Breiman and Cutler 2004) is a completely nonparametric statistical learning procedure that may be used for regression analysis and. A feature of RF that is drawing a lot of attention is the novel algorithm that is used to evaluate the relative importance of the predictor/explanatory variables. Other machine learning algorithms for regression and classification, such as support vector machines and artificial neural networks (Hastie et al. 2009), exhibit high predictive accuracy but provide little insight into predictive power of individual variables. In contrast, the permutation algorithm of RF has already established a track record for …