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了解强奸案报案延迟中的空间模式。

Understanding spatial patterns in rape reporting delays.

作者信息

Klemmer Konstantin, Neill Daniel B, Jarvis Stephen A

机构信息

Department of Computer Science, University of Warwick, Coventry, UK.

The Alan Turing Institute, London, UK.

出版信息

R Soc Open Sci. 2021 Feb 10;8(2):201795. doi: 10.1098/rsos.201795.

Abstract

Under-reporting and delayed reporting of rape crime are severe issues that can complicate the prosecution of perpetrators and prevent rape survivors from receiving needed support. Building on a massive database of publicly available criminal reports from two US cities, we develop a machine learning framework to predict delayed reporting of rape to help tackle this issue. Motivated by large and unexplained spatial variation in reporting delays, we build predictive models to analyse spatial, temporal and socio-economic factors that might explain this variation. Our findings suggest that we can explain a substantial proportion of the variation in rape reporting delays using only openly available data. The insights from this study can be used to motivate targeted, data-driven policies to assist vulnerable communities. For example, we find that younger rape survivors and crimes committed during holiday seasons exhibit longer delays. Our insights can thus help organizations focused on supporting survivors of sexual violence to provide their services at the right place and time. Due to the non-confidential nature of the data used in our models, even community organizations lacking access to sensitive police data can use these findings to optimize their operations.

摘要

强奸犯罪的报告不足和延迟报告是严重问题,可能会使对犯罪者的起诉复杂化,并阻碍强奸幸存者获得所需的支持。基于来自美国两个城市的大量公开刑事报告数据库,我们开发了一个机器学习框架来预测强奸案的延迟报告,以帮助解决这一问题。受报告延迟中存在的巨大且无法解释的空间差异的影响,我们建立了预测模型,以分析可能解释这种差异的空间、时间和社会经济因素。我们的研究结果表明,仅使用公开可用的数据,我们就能解释强奸报告延迟中很大一部分的差异。这项研究的见解可用于推动有针对性的、数据驱动的政策,以帮助弱势群体。例如,我们发现年轻的强奸幸存者以及在节假日期间发生的犯罪的报告延迟更长。因此,我们的见解可以帮助专注于支持性暴力幸存者的组织在正确的地点和时间提供服务。由于我们模型中使用的数据不具保密性,即使是无法获取敏感警方数据的社区组织也可以利用这些发现来优化其运作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2666/8074621/03498201a8c1/rsos201795f01.jpg

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