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Leveraging Deep Learning and SNA approaches for Smart City Policing in the Developing World

机译:利用深度学习和SNA在发展中国家智能城市警务方面的途径

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摘要

Is it possible to identify crime suspects by their mobile phone call records? Can the spatial-temporal movements of individuals linked to convicted criminals help to identify those who facilitate crime? Might we leverage the usage of mobile phones, such as incoming and outgoing call numbers, coordinates, call duration and frequency of calls, in a specific time window on either side of a crime to provide a focus for the location and period under investigation? Might the call data records of convicted criminals' social networks serve to distinguish criminals from non-criminals? To address these questions, we used heterogeneous call data records dataset by tapping into the power of social network analysis and the advancements in graph convolutional networks. In collaboration with the Punjab Police and Punjab Information Technology Board, these techniques were useful in identifying convicted individuals. The approaches employed are useful in identifying crime suspects and facilitators to support smart policing in the fight against the country's increasing crime rates. Last but not least, the applied methods are highly desirable to complement high-cost video-based smart city surveillance platforms in developing countries.
机译:是否有可能通过手机呼叫记录识别犯罪嫌疑人?与被定罪的罪犯相关的个人的空间运动可以帮助确定那些促进犯罪的人吗?我们可以利用移动电话的使用,例如犯罪的任何一侧的特定时间窗口中的传入和拨出电话号码,坐标,呼叫持续时间和频率,以便在调查下的位置和时期提供重点?被定罪的罪犯社交网络的呼叫数据记录可能有助于区分非犯罪分子的罪犯吗?为解决这些问题,我们使用异构呼叫数据记录数据集通过攻丝进入社交网络分析的力量和图形卷积网络中的进步。与旁遮普警察和旁遮普信息技术委员会合作,这些技术对于识别被定罪的个人是有用的。所雇用的方法可用于识别犯罪嫌疑人和促进者,以支持对抗该国日益增长的犯罪率的策略。最后但并非最不重要的是,应用方法非常希望在发展中国家的高成本视频智能城市监控平台上补充。

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