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- W1915564872 abstract "The performance of the neural network classifier significantly depends on its architecture and generalization. It is usual to find the proper architecture by trial and error. This is time consuming and may not always find the optimal network. For this reason, we apply genetic algorithms to the automatic generation of neural networks. Many researchers have provided that combining multiple classifiers improves generalization. One of the most effective combining methods is bagging. In bagging, training sets are selected by resampling from the original training set and classifiers trained with these sets are combined by voting. We implement the bagging technique into the training of evolving neural network classifiers to improve generalization." @default.
- W1915564872 created "2016-06-24" @default.
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- W1915564872 date "2004-06-22" @default.
- W1915564872 modified "2023-09-25" @default.
- W1915564872 title "Combining evolving neural network classifiers using bagging" @default.
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- W1915564872 doi "https://doi.org/10.1109/ijcnn.2003.1224088" @default.
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