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The Adaptive Safety Analysis and Monitoring System

机译:自适应安全分析与监控系统

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摘要

The Adaptive Safety Analysis and Monitoring (ASAM) system is a hybrid model-based software tool for assisting intelligence analysts to identify terrorist threats, to predict possible evolution of the terrorist activities, and to suggest strategies for countering terrorism. The ASAM system provides a distributed processing structure for gathering, sharing, understanding, and using information to assess and predict terrorist network states. In combination with counter-terrorist network models, it can also suggest feasible actions to inhibit potential terrorist threats. In this paper, we will introduce the architecture of the ASAM system, and discuss the hybrid modeling approach embedded in it, viz., Hidden Markov Models (HMMs) to detect and provide soft evidence on the states of terrorist network nodes based on partial and imperfect observations, and Bayesian networks (BNs) to integrate soft evidence from multiple HMMs. The functionality of the ASAM system is illustrated by way of application to the Indian Airlines Hijacking, as modeled from open sources.
机译:自适应安全分析和监视(ASAM)系统是基于混合模型的软件工具,可帮助情报分析人员识别恐怖分子威胁,预测恐怖分子活动的可能发展并提出反恐策略。 ASAM系统提供了一种分布式处理结构,用于收集,共享,理解和使用信息来评估和预测恐怖分子网络状态。结合反恐网络模型,它还可以建议采取可行的行动来抑制潜在的恐怖威胁。在本文中,我们将介绍ASAM系统的体系结构,并讨论其中嵌入的混合建模方法,即隐马尔可夫模型(HMM),以基于局部和局部检测并提供有关恐怖网络节点状态的软证据。不完美的观察,以及贝叶斯网络(BN)整合来自多个HMM的软证据。 ASAM系统的功能通过应用到印度航空公司劫持中的方式进行了说明,该模型是根据开放源代码建模的。

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