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Detecting radicalization trajectories using graph pattern matching algorithms

机译:使用曲线图案匹配算法检测激活轨迹

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This paper outlines our on-going efforts to address the radicalization detection problem, the automated or semi-automated task of dynamically detecting and tracking behavioral changes in individuals who undergo the process of increasingly espousing jihadist beliefs and transition to the use of violent action in support of those beliefs. Leveraging the notion that personal trajectories towards violent radicalization exist, we take a graph pattern matching approach to track individual-level indicators using data fused from available public and government/law enforcement databases. We show that our approach provides analysts with the ability to find full or partial matches against a query pattern of radicalization, and a means to quantify the pace of the appearance of the indicators that may help prioritize investigative efforts and resources to prevent planned attacks.
机译:本文概述了我们正在进行的努力解决激进化检测问题,动态检测和跟踪经历越来越多地支持圣战者信仰和过渡到使用暴力行动的个人的行为变化的自动化或半自动任务那些信仰。利用这些概念存在,存在对剧烈激进化的个人轨迹,我们采取了一种图形模式匹配方法,以跟踪使用从可用公共和政府/执法数据库融合的数据的个人级指标。我们表明我们的方法提供了分析师,该分析师能够找到针对激进的查询模式的全部或部分匹配,以及量化可能有助于优先考虑调查努力和资源以防止计划攻击的指标的速度的手段。

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