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A new approach for handling imbalanced dataset using ANN and genetic algorithm

机译:ANN和遗传算法处理不平衡数据集的新方法

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Classification of imbalance data is the major challenge to the community these days. Machine learning algorithms can evolve a one-sided classifier when data is imbalance. The vital challenge in imbalance dataset problem is that sometimes the minority (tiny) classes are more useful, but standard classifiers tend to be biased toward the majority (huge) classes and ignore the tiny ones. In this paper we compared the existing methods to handle imbalance dataset and provide a new hybrid approach which will improve the accuracy of classifier on imbalanced data.
机译:如今,不平衡数据的分类是社区面临的主要挑战。当数据不平衡时,机器学习算法可以演变为单侧分类器。不平衡数据集问题中的关键挑战是,有时少数(微小)类更有用,但是标准分类器倾向于偏向多数(巨大)类,而忽略微小类。在本文中,我们比较了处理不平衡数据集的现有方法,并提供了一种新的混合方法,该方法将提高不平衡数据分类器的准确性。

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