基于CNN的SQL注入检测模型研究

Ruhua Lu, Shuangwei Wang, Yalan Li
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引用次数: 0

摘要

SQL注入攻击已连续五年被开放web应用安全项目(OWASP)列为十大网络应用风险之一,一直是网络安全研究的焦点。提出了一种基于卷积神经网络(CNN)的SQL注入检测模型。该模型分为模型训练阶段和分类检测阶段。其中关键部分是词向量模型和CNN模型。首先对SQL注入数据集进行预处理、word2vec、词向量化等步骤得到向量化后的数据,然后依次输入到CNN模型中进行模型训练和分类检测。本文提出的方法实现了SQL注入检测的目的,为学术界相关部门的研究人员和数据库安全维护人员提供了理论参考,具有一定的应用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on SQL Injection Detection Model Based on CNN
SQL injection attack has been listed as one of the top ten network application risks by the open web application security project (OWASP) for five consecutive years, and has always been the focus of network security research. In this paper, a SQL injection detection model based on Convolutional neural network (CNN) is proposed. The model is divided into model training stage and classification detection stage. The key parts are the word vector model and CNN model. Firstly, the SQL injection data set is pre-processed, word2vec, word vectorization and other steps to get the vectorized data, and then input to the CNN model for model training and classification detection in turn. The method proposed in this paper realizes the purpose of SQL injection detection, and provides a theoretical reference for researchers and database security maintainers of relevant departments in academic circles, which has a certain application value.
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