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Maritime anomaly detection and threat assessment

机译:海洋异常检测和威胁评估

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Ships involved in commercial activities tend to follow set patterns of behaviour depending on the business in which they are engaged. If a ship exhibits anomalous behaviour, this could indicate it is being used for illicit activities. With the wide availability of automatic identification system (AIS) data it is now possible to detect some of these patterns of behaviour. Monitoring the possible threat posed by the worldwide movement of ships, however, requires efficient and robust automatic data processing to create a priority list for further investigation. This paper outlines five anomalous ship behaviours: deviation from standard routes, unexpected AIS activity, unexpected port arrival, close approach, and zone entry. For each behaviour, a process is described for determining the probability that it is anomalous. Individual probabilities are combined using a Bayesian network to calculate the overall probability that a specific threat is present. Examples of how the algorithms work are given using simulated and real data.
机译:涉及商业活动的船舶往往遵循根据他们订婚的业务的行为模式。如果船舶表现出异常行为,这可能表明它被用于非法活动。随着自动识别系统(AIS)数据的可用性,现在可以检测一些行为模式。然而,监视船舶全球运动所带来的可能威胁需要有效和强大的自动数据处理,以创建优先列表以进行进一步调查。本文概述了五种异常船舶行为:偏离标准路线,意外的AIS活动,意外端口到达,关闭方法和区域条目。对于每个行为,描述了用于确定它是异常的概率的过程。使用贝叶斯网络组合各个概率来计算特定威胁存在的整体概率。如何使用模拟和实际数据给出算法工作的示例。

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