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Titlebook: Artificial Intelligence for Cyber-Physical Systems Hardening; Issa Traore,Isaac Woungang,Sherif Saad Book 2023 The Editor(s) (if applicabl

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楼主: Orthosis
发表于 2025-3-26 22:38:06 | 显示全部楼层
,Machine Learning Assessment: Implications to Cybersecurity,cal framework for these methods that can estimate both the error rate (a one-sample statistic) and the AUC (a two-sample statistic). The resampling methods are usually computationally expensive, because they rely on repeating the training and testing of a ML algorithm after each resampling iteration
发表于 2025-3-27 01:12:08 | 显示全部楼层
Unsupervised Anomaly Detection for MIL-STD-1553 Avionic Platforms Using CUSUM,ion bus to extract a set of relevant features that are fed to the CUSUM algorithm for detection. The experimental evaluation of the proposed detector using the dataset yielded promising results, which are very encouraging considering the unsupervised nature of the underlying algorithm.
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Qingyun Jiang,Lixian Qian,Min Dings. A statistical learning machine (SLM) is the algorithm, function, model, or rule, that learns such a process; and machine learning (ML) is the conventional name of this field. ML and its applications are ubiquitous in the modern world. Systems such as Automatic target recognition (ATR) in military
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发表于 2025-3-28 01:57:55 | 显示全部楼层
Qingyun Jiang,Lixian Qian,Min Dingof defense platforms. At its inception, the standard was conceived with a focus only on reliability and fault tolerance, with no attention paid to security concerns. However, it has been shown in the last few years that modern defense platforms are increasingly the target of cyber-attacks from both
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Space: Exclusion and Engagement,ill be deployed on radio frequency (RF)- based networks. As such, society will be heavily dependent on the ability to protect these new wireless networks as well as the radio spectrum. Solutions such as artificial intelligence (AI)-based transmitter fingerprinting to identify and track unintended in
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