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A novel modular neural network for imbalanced classification problems

机译:一种用于不平衡分类问题的新型模块化神经网络

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摘要

In this paper, a novel modular neural network is proposed to solve multi-class problems with imbalanced training sets. The proposed model can transform an imbalanced classification problem into a set of symmetrical two-class problems, each of which is solved by single neural network with a simple structure. The results of all neural networks are then combined by averaging or GA method to form a final classification decision. The experimental results show that the proposed method reduces the time consumption for training and improves the classification performance.
机译:本文提出了一种新颖的模块化神经网络来解决训练集不平衡的多类问题。所提出的模型可以将不平衡分类问题转化为一组对称的两类问题,每个问题都可以通过具有简单结构的单个神经网络来解决。然后,通过平均或GA方法将所有神经网络的结果合并,以形成最终的分类决策。实验结果表明,该方法减少了训练时间,提高了分类性能。

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