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基于PSOGSA前向神经网络的石化控制系统入侵检测 被引量:3

Intrusion detection of industrial control system based on PSOGSA feedforward neural network
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摘要 针对日趋严峻的石化行业工业控制系统(ICS)安全形势,提出一种基于粒子群优化(PSO)和万有引力搜索算法(GSA)的前向神经网络(FNNPSOGSA),用于解决其中的入侵检测问题。分别利用GSA的全局寻优能力和PSO快速局部收敛优势,提出了一种基于PSO和GSA的混合算法PSOGSA,并将其用于前向神经网络(FNNs)的训练。通过多组基准测试数据集,将FNNPSOGSA预测结果同FNNPSO、FNNGSA和参考文献中改进的FRGNN(K-NN)和FRGNN(Naive Bayes)预测结果相比较,验证了PSOGSA在训练FNNs中是可行的,并且FNNPSOGSA具有更高的预测准确率和更强的泛化能力。更进一步,对工控入侵检测标准数据集的仿真结果表明其在工控系统入侵检测中的可行性和有效性。 Aiming at the increasingly serious safety situation of industrial control system(ICS)in petrochemical industry,a forward neural network(FNNPSOGSA)based on particle swarm optimization(PSO)and universal gravitation search algorithm(GSA)is proposed to solve the problem of intrusion detection.A hybrid algorithm based on PSO and GSA is proposed by using the global optimization ability of GSA and the fast local convergence of PSO.PSOGSA is used as a new training method of FNNs to study the effectiveness of FNNPSOGSA model in practical engineering application scenarios.By comparing the FNNPSOGSA prediction results with the FNNPSO,FNNGSA and the improved FRGNN(K-NN)and FRGNN(Naive Bayes)prediction results in the reference literature,the results show that PSOGSA is feasible in training FNNs and has higher prediction accuracy and more generalization ability.The algorithm is applied to attack prediction in intrusion detection of industrial control system(ICS),and simulation study is carried out using industrial intrusion detection standard data set.The results show that the algorithm can achieve very good results in intrusion detection of industrial control systems.
作者 徐文星 王万红 王芳 刘才 景邵星 赵国新 XU Wenxing;WANG Wanhong;WANG Fang;LIU Cai;JING Shaoxing;ZHAO Guoxin(College of Information Engineering,Beijing Institute of Petrochemical Technology,Beijing 102617,China;College of Chemical Engineering,Beijing Institute of Petrochemical Technology,Beijing 102617,China)
出处 《化工学报》 EI CAS CSCD 北大核心 2018年第A02期350-357,共8页 CIESC Journal
基金 国家自然科学基金项目(61304217 21703013 61702040) 北京市属高校青年拔尖人才培育计划项目(CIT&TCD201704048)~~
关键词 神经网络 优化 算法 粒子群优化 引力搜索算法 工业控制系统 neural network optimization algorithm particle swarm optimization gravitational search algorithm industrial control system
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