Construction of Network Security Perception System Using Elman Neural Network

Yu Kai, H. Qiang, Ma Yixuan
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引用次数: 4

Abstract

the purpose of the study is to improve the security of the network, and make the state of network security predicted in advance. First, the theory of neural networks is studied, and its shortcomings are analyzed by the standard Elman neural network. Second, the layers of the feedback nodes of the Elman neural network are improved according to the problems that need to be solved. Then, a network security perception system based on GA-Elman (Genetic Algorithm-Elman) neural network is proposed to train the network by global search method. Finally, the perception ability is compared and analyzed through the model. The results show that the model can accurately predict network security based on the experimental charts and corresponding evaluation indexes. The comparative experiments show that the GA-Elman neural network security perception system has a better prediction ability. Therefore, the model proposed can be used to predict the state of network security and provide early warnings for network security administrators.
基于Elman神经网络的网络安全感知系统构建
研究的目的是为了提高网络的安全性,对网络的安全状态进行提前预测。首先,对神经网络的理论进行了研究,并用标准的Elman神经网络分析了其存在的不足。其次,根据需要解决的问题对Elman神经网络的反馈节点层进行改进;然后,提出了一种基于GA-Elman(遗传算法- elman)神经网络的网络安全感知系统,采用全局搜索方法对网络进行训练。最后,通过模型对感知能力进行比较分析。结果表明,基于实验图和相应的评价指标,该模型能够准确预测网络安全。对比实验表明,GA-Elman神经网络安全感知系统具有较好的预测能力。因此,所提出的模型可用于预测网络安全状态,为网络安全管理员提供早期预警。
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