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Study on Software Vulnerability Characteristics and Its Identification Method

机译:软件漏洞特征及其识别方法研究

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摘要

A method for identifying software data flow vulnerabilities is proposed based on the dendritic cell algorithm and the improved convolutional neural network to effectively solve the transmission errors in software data flow. In this method, we first gave the software data flow propagation model and constructed the data propagation tree structure. Secondly, we analyzed the running characteristics of the software, took the interaction among indexes into account, and identified data flow vulnerabilities using the dendritic cell algorithm and the improved convolutional neural network. Finally, we conducted an in-depth study on the performance of this method and other algorithms through mathematical simulation. The results show that this method has better advantages in detection time, storage cost, and software code size.
机译:该文提出一种基于树突状单元算法和改进卷积神经网络的软件数据流漏洞识别方法,有效解决软件数据流中的传输错误。该方法首先给出了软件数据流传播模型,并构建了数据传播树结构。其次,分析了软件的运行特性,考虑了指标之间的交互作用,利用树突状细胞算法和改进的卷积神经网络识别了数据流漏洞。最后,通过数学仿真对该方法和其他算法的性能进行了深入研究。结果表明,该方法在检测时间、存储成本和软件代码大小方面具有较好的优势。

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