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A low variance error boosting algorithm

delete2009-02-21
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OA
AI
C
Ching‐Wei Wang *
A
Andrew Hunter
DOI:10.1007/s10489-009-0172-0delete
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Abstract

Abstract

En 中文
This paper introduces a robust variant of AdaBoost, cw-AdaBoost, that uses weight perturbation to reduce variance error, and is particularly effective when dealing with data sets, such as microarray data, which have large numbers of features and small number of instances. The algorithm is compared with AdaBoost, Arcing and MultiBoost, using twelve gene expression datasets, using 10-fold cross validation. The new algorithm consistently achieves higher classification accuracy over all these datasets. In contrast to other AdaBoost variants, the algorithm is not susceptible to problems when a zero-error base classifier is encountered.
Keywords:
Boosting
Bagging
Arcing
Multiboost
Ensemble machine learning
Random resampling weighted instances
Variance error
Bias error

Journal

Applied Intelligence cover
Applied Intelligence
IF:
3.5
Papers:
7.6K
Citations:
1.7W

Organization

U
University of Lincoln
Scholars:
2.6K
Papers: 2.6K
Citations: 3.9K
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