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基于對抗機器學(xué)習的工業(yè)控制網(wǎng)絡(luò )欺騙攻擊行為檢測系統設計
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山西警察學(xué)院

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2022年山西省教育廳教學(xué)改革創(chuàng )新項目【名稱(chēng):基于多維驅動(dòng)的信息安全專(zhuān)業(yè)人才培養機制研究(項目編號:J20221297)】


Design of deception attack detection system for industrial control networks based on adversarial machine learning
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    摘要:

    欺騙攻擊行為會(huì )干擾工業(yè)控制網(wǎng)絡(luò )對傳輸信息的判斷能力,從而使得風(fēng)險性數據進(jìn)入網(wǎng)絡(luò )主機,造成網(wǎng)絡(luò )安全性下降的問(wèn)題。為避免上述情況的發(fā)生,設計基于對抗機器學(xué)習的工業(yè)控制網(wǎng)絡(luò )欺騙攻擊行為檢測系統。設置攻擊行為采集、處理、檢測驗證三類(lèi)子模塊單元,完成欺騙攻擊行為檢測系統的功能性模塊設計。在對抗機器學(xué)習算法中定義攻擊行為,并以此為基礎,提取欺騙攻擊行為特征,實(shí)現對攻擊行為的識別。分析工業(yè)控制網(wǎng)絡(luò )的安全風(fēng)險,聯(lián)合欺騙攻擊行為的風(fēng)險性度量條件,定義具體的檢測建模標準,從而實(shí)現對工業(yè)控制網(wǎng)絡(luò )欺騙攻擊行為信息的檢測。實(shí)驗結果表明,設計方法的應用可以按照數據樣本傳輸波長(cháng)的差異性,將欺騙性攻擊信息檢測出來(lái),且召回率測試結果在0.93~0.98之間,表明設計方法能夠準確地檢測出欺騙攻擊行為,使工控網(wǎng)絡(luò )的運行安全性得到了保障。

    Abstract:

    Deceptive attack behavior can interfere with the judgment ability of industrial control networks to transmit information, causing risky data to enter network hosts and leading to a decrease in network security. To avoid the occurrence of the above situation, design an industrial control network spoofing attack behavior detection system based on adversarial machine learning. Set up three types of sub module units for attack behavior collection, processing, and detection verification, and complete the functional module design of the deception attack behavior detection system. Define attack behavior in adversarial machine learning algorithms, and based on this, extract features of deceptive attack behavior to achieve recognition of attack behavior. Analyze the security risks of industrial control networks, establish risk measurement conditions for joint deceptive attack behaviors, define specific detection modeling standards, and thus achieve the detection of information on deceptive attack behaviors in industrial control networks. The experimental results show that the application of the design method can detect deceptive attack information based on the difference in transmission wavelength of data samples, and the recall test results are between 0.93 and 0.98, indicating that the design method can accurately detect deceptive attack behavior, ensuring the operational security of industrial control networks.

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張濤.基于對抗機器學(xué)習的工業(yè)控制網(wǎng)絡(luò )欺騙攻擊行為檢測系統設計計算機測量與控制[J].,2024,32(10):298-304.

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  • 收稿日期:2024-01-24
  • 最后修改日期:2024-03-04
  • 錄用日期:2024-03-11
  • 在線(xiàn)發(fā)布日期: 2024-10-30
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