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- W4225152463 abstract "The idea of boosting emanates from the area of machine learning. It is a challenging task for imbalance data set to have appropriate distribution of data samples in each class by machine learning algorithm. To deal with this problem, ensemble learning method is one of the popular approaches. Ensemble methods integrate several learning algorithms, which gives better predictive performance as compared to any of the basic learning algorithms alone. Based on this research, a question is formulated. The null hypothesis is stated as “There is no significant difference between single classifier and classifier with ensemble techniques - AdaboostM1 and Bagging.” Alternative hypothesis is stated as “Ensemble techniques AdaBoostM1 and Bagging works more superior as compare to single classifier.” We have conducted an experiment on three imbalanced data sets. We examined the accuracy of four classifiers Naïve Bayes, Multilayer Perceptron, Locally Weighted Learning, and REPTree. The predicted accuracy score of these classifiers are compared with boosting techniques AdaboostM1, Bagging, Voting, and Stacking." @default.
- W4225152463 created "2022-05-01" @default.
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- W4225152463 date "2022-04-24" @default.
- W4225152463 modified "2023-09-26" @default.
- W4225152463 title "Enhancement of Imbalance Data Classification with Boosting Methods: An Experiment" @default.
- W4225152463 doi "https://doi.org/10.1149/10701.15923ecst" @default.
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