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Application of a Profile Similarity Methodology for Identifying Terrorist Groups That Use or Pursue CBRN Weapons

机译:识别使用或追求CBRN武器的恐怖主义群体的简档相似性方法的应用

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No single profile fits all CBRN-active groups, and therefore it is important to identify multiple profiles. In the analysis of terrorist organizations, linear and generalized regression modeling provide a set of tools to apply to data that is in the form of cases (named groups) by variables (traits and behaviors of the groups). We turn the conventional regression modeling "inside out" to reveal a network of relations among the cases on the basis of their attribute and behavioral similarity. We show that a network of profile similarity among the cases is built in to standard regression modeling, and that the exploitation of this aspect leads to new insights helpful in the identification of multiple profiles for actors. Our application builds on a study of 108 Islamic jihadist organizations that predicts use or pursuit of CBRN weapons.
机译:没有单一的配置文件适合所有CBRN-活动组,因此识别多个配置文件很重要。在对恐怖主义组织的分析中,线性和广义回归建模提供了一组工具,用于按变量(组的特征和行为)以案例(命名组)形式的数据应用于数据。我们将传统的回归建模“内部”展示在其属性和行为相似性的基础上揭示了案例之间的关系网络。我们表明,案例之间的简档相似性网络是基于标准回归建模的,并且该方面的开发导致新的见解有助于识别演员的多个轮廓。我们的申请建立在对108个伊斯兰圣战组织的研究中,这些组织预测使用或追求CBRN武器。

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