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Network Information Security Pipeline Based on Grey Relational Cluster and Neural Networks

机译:基于灰色关系集群和神经网络的网络信息安全管道

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Network information security pipeline based on the grey relational cluster and neural networks is designed and implemented in this paper. This method is based on the principle that the optimal selected feature set must contain the feature with the highest information entropy gain to the data set category. First, the feature with the largest information gain is selected from all features as the search starting point, and then the sample data set classification mark is fully considered. For the better performance, the neural networks are considered. The network learning ability is directly determined by its complexity. The learning of general complex problems and large sample data will bring about a core dramatic increase in network scale. The proposed model is validated through the simulation.
机译:基于灰色关系群集和神经网络的网络信息安全管道设计并在本文中设计和实现。 此方法基于最佳选定功能集必须包含具有最高信息熵增益的功能到数据集类别的原理。 首先,从所有功能中选择具有最大信息增益的特征,作为搜索起始点,然后完全考虑示例数据集分类标记。 为了更好的性能,考虑神经网络。 网络学习能力直接由其复杂性决定。 一般复杂问题和大型样本数据的学习将带来网络规模的核心显着增加。 所提出的模型通过模拟验证。

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