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Identifying Warning Behaviors of Violent Lone Offenders in Written Communication

机译:识别书面交流中暴力孤独者的警告行为

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Violent lone offenders such as school shooters and lone actor terrorists pose a threat to the modern society but since they act alone or with minimal help form others they are very difficult to detect. Previous research has shown that violent lone offenders show signs of certain psychological warning behaviors that can be viewed as indicators of an increasing or accelerating risk of committing targeted violence. In this work, we use a machine learning approach to identify potential violent lone offenders based on their written communication. The aim of this work is to capture psychological warning behaviors in written text and identify texts written by violent lone offenders. We use a set of features that are psychologically meaningful based on the different categories in the text analysis tool Linguistic Inquiry and Word Count (LIWC). Our study only contains a small number of known perpetrators and their written communication but the results are promising and there are many interesting directions for future work in this area.
机译:诸如学校射手和单身演员恐怖分子等暴力单身犯罪者对现代社会构成了威胁,但由于他们独自行动或在他人的协助下工作很少,因此很难发现。先前的研究表明,暴力的独行犯显示出某些心理警告行为的迹象,这些行为可以被视为增加或加速实施有针对性的暴力行为的风险的指标。在这项工作中,我们使用机器学习方法,根据他们的书面交流来识别潜在的暴力独行者。这项工作的目的是捕获书面文本中的心理警告行为,并识别暴力单身犯罪者撰写的文本。根据文本分析工具“语言查询和字数统计”(LIWC)中的不同类别,我们使用了一系列在心理上有意义的功能。我们的研究仅包含少数已知的犯罪者及其书面交流,但结果令人鼓舞,并且在该领域的未来工作中有许多有趣的方向。

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