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METHOD FOR DETECTING MALICIOUS ATTACKS BASED ON DEEP LEARNING IN TRAFFIC CYBER PHYSICAL SYSTEM
METHOD FOR DETECTING MALICIOUS ATTACKS BASED ON DEEP LEARNING IN TRAFFIC CYBER PHYSICAL SYSTEM
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机译:交通网络物理系统中基于深度学习的恶意攻击检测方法
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摘要
Disclosed is a method for detection a malicious attack based on deep learning in a transportation cyber-physical system (TCPS), comprising: extracting original feature data of a malicious data flow and a normal data flow from a TCPS; cleaning and coding original feature data; selecting key features from the feature data; cleaning and coding the key features to establish a deep learning model; finally, inputing unknown behavior data to be identified into the deep learning model to identify whether the data is malicious data, thereby detecting a malicious attack. The present invention uses a deep learning method to extract and learn the behavior of a program in a TCPS, and detect the malicious attack according to the deep learning result, and effectively identify the malicious attack in the TCPS.
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