Navigating Random Forests and related advances in algorithmic modeling

IF 11 Q1 STATISTICS & PROBABILITY Statistics Surveys Pub Date : 2009-12-01 DOI:10.1214/07-SS033
David S. Siroky
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引用次数: 166

Abstract

This article addresses current methodological research on nonparametric Random Forests. It provides a brief intellectual history of Random Forests that covers CART, boosting and bagging methods. It then introduces the primary methods by which researchers can visualize results, the relationships between covariates and responses, and the out-of-bag test set error. In addition, the article considers current research on universal consistency and importance tests in Random Forests. Finally, several uses for Random Forests are discussed, and available software is identified. AMS 2000 subject classifications: 62-02, 62-04, 62G08, 62G09, 62H30, 93E25, 62M99, 62N99.
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导航随机森林和相关的算法建模进展
本文讨论了目前非参数随机森林的方法学研究。它提供了一个简短的知识历史的随机森林,包括CART,促进和装袋方法。然后介绍了研究人员可以可视化结果的主要方法,协变量和响应之间的关系,以及袋外测试集误差。此外,本文还考虑了随机森林中普遍一致性检验和重要性检验的研究现状。最后,讨论了随机森林的几种用途,并确定了可用的软件。AMS 2000学科分类:62-02、62-04、62G08、62G09、62H30、93E25、62M99、62N99。
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来源期刊
Statistics Surveys
Statistics Surveys STATISTICS & PROBABILITY-
CiteScore
11.70
自引率
0.00%
发文量
5
期刊介绍: Statistics Surveys publishes survey articles in theoretical, computational, and applied statistics. The style of articles may range from reviews of recent research to graduate textbook exposition. Articles may be broad or narrow in scope. The essential requirements are a well specified topic and target audience, together with clear exposition. Statistics Surveys is sponsored by the American Statistical Association, the Bernoulli Society, the Institute of Mathematical Statistics, and by the Statistical Society of Canada.
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