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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >Malicious AIS Spoofing and Abnormal Stealth Deviations: A Comprehensive Statistical Framework for Maritime Anomaly Detection
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Malicious AIS Spoofing and Abnormal Stealth Deviations: A Comprehensive Statistical Framework for Maritime Anomaly Detection

机译:恶意AIS欺骗和异常隐形偏差:海洋异常检测的综合统计框架

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摘要

The automatic identification system (AIS) is an essential and economical equipment for collision avoidance and maritime surveillance. However, AIS can be subject to intentional reporting of false information, or "spoofing". This article assumes the vessel trajectory nominally follows a piecewise mean-reverting process; thereby, it addresses the problem of establishing whether a vessel is reporting adulterated position information through AIS messages in order to hide its current planned route and a possible deviation from the nominal route. Multiple hypothesis testing suggests a framework to enlist reliable information from monitoring systems (coastal radars and space-born satellite sensors) in support of detection of anomalies, spoofing, and stealth deviations. The proposed solution involves the derivation of anomaly detection rules based on the generalized likelihood ratio test and the model-order selection methodologies. The effectiveness of the proposed anomaly detection strategy is tested for different case studies within an operational scenario with simulated data.
机译:自动识别系统(AIS)是一种必要和经济的碰撞避免和海上监控设备。但是,AIS可以进行故意报告虚假信息,或“欺骗”。本文假设船舶轨迹名义上遵循分段均值的过程;由此,它解决了通过AIS消息确定船舶是否正在报告掺假位置信息的问题,以便隐藏其当前计划的路线和与标称路径的可能偏差。多个假设检测表明,从监控系统(沿海雷达和空间 - 出生的卫星传感器)以支持检测异常,欺骗和隐形偏差的框架。所提出的解决方案涉及基于广义似然比测试和模型顺序选择方法的异常检测规则推导。在具有模拟数据的操作场景中测试了所提出的异常检测策略的有效性。

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