Open Access
Random Forests
Publication type: Journal Article
Publication date: 2001-01-01
scimago Q1
wos Q2
SJR: 1.147
CiteScore: 8.6
Impact factor: 2.9
ISSN: 08856125, 15730565
Artificial Intelligence
Software
Abstract
Random forests are a combination of tree predictors such that each tree depends on the values of a random vector sampled independently and with the same distribution for all trees in the forest. The generalization error for forests converges a.s. to a limit as the number of trees in the forest becomes large. The generalization error of a forest of tree classifiers depends on the strength of the individual trees in the forest and the correlation between them. Using a random selection of features to split each node yields error rates that compare favorably to Adaboost (Y. Freund & R. Schapire, Machine Learning: Proceedings of the Thirteenth International conference, ***, 148–156), but are more robust with respect to noise. Internal estimates monitor error, strength, and correlation and these are used to show the response to increasing the number of features used in the splitting. Internal estimates are also used to measure variable importance. These ideas are also applicable to regression.
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Metrics
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Total citations:
98948
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Cite this
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MLA
Cite this
RIS
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TY - JOUR
DO - 10.1023/A:1010933404324
UR - https://doi.org/10.1023/A:1010933404324
TI - Random Forests
T2 - Machine Learning
AU - Breiman, Leo
PY - 2001
DA - 2001/01/01
PB - Springer Nature
SP - 5-32
IS - 1
VL - 45
SN - 0885-6125
SN - 1573-0565
ER -
Cite this
BibTex (up to 50 authors)
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@article{2001_Breiman,
author = {Leo Breiman},
title = {Random Forests},
journal = {Machine Learning},
year = {2001},
volume = {45},
publisher = {Springer Nature},
month = {jan},
url = {https://doi.org/10.1023/A:1010933404324},
number = {1},
pages = {5--32},
doi = {10.1023/A:1010933404324}
}
Cite this
MLA
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Breiman, Leo. “Random Forests.” Machine Learning, vol. 45, no. 1, Jan. 2001, pp. 5-32. https://doi.org/10.1023/A:1010933404324.