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首页> 外文期刊>Journal of geographical systems >Multiscale spatiotemporal patterns of crime: a Bayesian cross-classified multilevel modelling approach
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Multiscale spatiotemporal patterns of crime: a Bayesian cross-classified multilevel modelling approach

机译:MultiSscale Spatiotemporal犯罪模式:贝叶斯交叉分类多级建模方法

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摘要

Characteristics of the urban environment influence where and when crime events occur; however, past studies often analyse cross-sectional data for one spatial scale and do not account for the processes and place-based policies that influence crime across multiple scales. This research applies a Bayesian cross-classified multilevel modelling approach to examine the spatiotemporal patterning of violent crime at the small-area, neighbourhood, electoral ward, and police patrol zone scales. Violent crime is measured at the small-area scale (lower-level units) and small areas are nested in neighbourhoods, electoral wards, and patrol zones (higher-level units). The cross-classified multilevel model accommodates multiple higher-level units that are non-hierarchical and have overlapping geographical boundaries. Results show that violent crime is positively associated with population size, residential instability, the central business district, and commercial, government-institutional, and recreational land uses within small areas and negatively associated with civic engagement within electoral wards. Combined, the three higher-level units explain approximately fifteen per cent of the total spatiotemporal variation of violent crime. Neighbourhoods are the most important source of variation among the higher-level units. This study advances understanding of the multiscale processes influencing spatiotemporal crime patterns and provides area-specific information within the geographical frameworks used by policymakers in urban planning, local government, and law enforcement.
机译:城市环境的特点影响犯罪事件发生的地方;然而,过去的研究经常分析一个空间尺度的横断面数据,并且不考虑影响犯罪的过程和基于地方跨多个尺度的政策。该研究适用于贝叶斯交叉分类的多级模型建模方法来检查小区,邻里,选举区和警察巡逻区鳞片上的暴力犯罪的时空图案。在小面积级(下级单位)和小区域嵌套在社区,选举区和巡逻区(更高级别单位)中衡量暴力犯罪。交叉分类的多级模型可容纳多个更高级别的单位,这些单位是非分层的并且具有重叠的地理边界。结果表明,暴力犯罪与人口规模,住宅不稳定,中央商业区和商业,政府机构和娱乐土地在小区内积极相关,与选举病房内的公民参与负相关。结合,三个高级单位解释了暴力犯罪总时尚变异的大约十五%。社区是高级单位中最重要的变化来源。本研究提出了对影响时空犯罪模式的多尺度流程的理解,并在城市规划,地方政府和执法部门的政策制定者使用的地理框架内提供了区域特定信息。

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