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Information Security Forecast Based on Artificial Neural Networks and Grey Analyze

机译:基于人工神经网络和灰色分析的信息安全预测

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Based on the artificial neural networks and grey correlation analyze, this paper presents a model forecasting the infection rate of computer viruses according to the number of vulnerabilities, the percentage of viruses infecting via web browsing and downloading and the percentage of viruses infecting via portable storage media. The prediction is realized precisely by MATLAB. The three factors are analyzed and sorted by grey correlation analyze, which reveals that the percentage of viruses infecting via on-line browsing has the most significant influence on the infection rate of computer viruses.
机译:在人工神经网络和灰色关联分析的基础上,提出了一种根据漏洞数量,通过网页浏览和下载的病毒感染百分比以及通过便携式存储介质感染的病毒百分比预测计算机病毒感染率的模型。 。该预测是通过MATLAB精确实现的。通过灰色关联分析对这三个因素进行了分析和分类,结果表明,通过在线浏览感染的病毒百分比对计算机病毒的感染率影响最大。

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