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SINAS: Suspect Investigation Using Offenders' Activity Space

机译:SINAS:怀疑使用罪犯活动空间调查

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摘要

Suspect investigation as a critical function of policing determines the truth about how a crime occurred, as far as it can be found. Understanding of the environmental elements in the causes of a crime incidence inevitably improves the suspect investigation process. Crime pattern theory concludes that offenders, rather than venture into unknown territories, frequently commit opportunistic and serial violent crimes by taking advantage of opportunities they encounter in places they are most familiar with as part of their activity space. In this paper, we present a suspect investigation method, called SINAS, which learns the activity space of offenders using an extended version of the random walk method based on crime pattern theory, and then recommends the top-K potential suspects for a committed crime. Our experiments on a large real-world crime dataset show that SINAS outperforms the baseline suspect investigation methods we used for the experimental evaluation.
机译:怀疑调查作为警务的关键函数决定了如何发生犯罪的真相,就可以找到。了解犯罪发病率的原因中的环境要素不可避免地改善了嫌疑人调查过程。犯罪模式理论的结论是,罪犯而不是冒险进入未知的领土,经常通过利用他们在最熟悉的地方遇到的机会作为活动空间的一部分,经常犯有机会主义和连续的暴力犯罪。在本文中,我们提出了一种名为Sinas的可疑调查方法,该方法使用基于犯罪模式理论的随机步行方法的延长版本来学习违法者的活动空间,然后推荐顶级潜在的嫌疑人为犯罪犯罪。我们对大型现实世界犯罪数据集的实验表明,SINAS优于基线可疑的调查方法,我们用于实验评估。

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