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Covert Network Analysis for Key Player Detection and Event Prediction Using a Hybrid Classifier

机译:使用混合分类器进行关键球员检测和事件预测的隐蔽网络分析

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摘要

National security has gained vital importance due to increasing number of suspicious and terrorist events across the globe. Use of different subfields of information technology has also gained much attraction of researchers and practitioners to design systems which can detect main members which are actually responsible for such kind of events. In this paper, we present a novel method to predict key players from a covert network by applying a hybrid framework. The proposed system calculates certain centrality measures for each node in the network and then applies novel hybrid classifier for detection of key players. Our system also applies anomaly detection to predict any terrorist activity in order to help law enforcement agencies to destabilize the involved network. As a proof of concept, the proposed framework has been implemented and tested using different case studies including two publicly available datasets and one local network.
机译:由于全球范围内越来越多的可疑和恐怖事件,国家安全已变得至关重要。使用信息技术的不同子领域也吸引了研究人员和从业人员很多兴趣,以设计可以检测实际上负责此类事件的主要成员的系统。在本文中,我们提出了一种通过应用混合框架从隐蔽网络预测关键参与者的新颖方法。所提出的系统为网络中的每个节点计算某些集中度度量,然后将新颖的混合分类器应用于关键参与者的检测。我们的系统还应用异常检测来预测任何恐怖活动,以帮助执法机构破坏所涉网络的稳定性。作为概念的证明,已使用不同的案例研究(包括两个可公开获得的数据集和一个本地网络)来实施和测试所提出的框架。

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