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Locating Central Actors in Co-offending Networks

机译:在共同犯罪网络中定位中央参与者

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摘要

A co-offending network is a network of offenders who have committed crimes together. Recently different researches have shown that there is a fairly strong concept of network among offenders. Analyzing these networks can help law enforcement agencies in designing more effective strategies for crime prevention and reduction. One of the important tasks in co-offending network analysis is central actors identification. In this paper, firstly we introduce a data model, called unified crime data model to bridge the conceptual gap between abstract crime data level and co-offending network mining level. Using this data model, we extract the co-offending network of five years real-world crime data. Then we apply different variations of centrality methods on the extracted network and discuss how key player identification and removal can help law enforcement agencies in policy making for crime reduction.
机译:共同违规网络是犯罪者的罪行网络。最近不同的研究表明,违法者之间存在相当强烈的网络概念。分析这些网络可以帮助执法机构设计更有效的预防犯罪和减少犯罪战略。共同冒犯网络分析中的重要任务之一是中央演员识别。在本文中,首先,我们介绍了一种数据模型,称为统一犯罪数据模型,以弥合抽象犯罪数据级和共同违规网络挖掘水平之间的概念间隙。使用此数据模型,我们提取了五年现实世界犯罪数据的共同违规网络。然后我们在提取的网络上应用不同的中心性方法的变化,并讨论关键玩家识别和删除如何帮助执法机构在减少犯罪方面的政策制定中。

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