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Geospatial data integration and modeling for the investigation of urban neighborhood crime

机译:地理空间数据集成与建模用于城市邻里犯罪调查

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With more than half a century of development, Geographic Information Science (GIS) has evolved to become an interdisciplinary field of spatial thinking, geographic knowledge, geospatial technologies, and application practices. However, the integration of GIS in social science research is yet fully developed and more proactive emperical research examples are needed to continuously advance the application of GIS in social science research. To meet this challenge, in this article, the authors use the investigation of urban neighborhood crime as an experiment to examine the capability of geospatial technologies in the investigation of neighborhood crime in Oakland, CA, United States. First, a comprehensive theoretical framework is constructed with major neighborhood criminology theories to guide the empirical experiment. Second, a GIS-based methodological framework integrates geospatial data collection, integration, processing, and modeling on the one hand and advanced statistical methods on the other, to lead a data-driven examination of neighborhood crime. Specifically, a Random Neighborhood Sampling Matrix enables the generation of Hierarchical Adjustable Spatial Neighborhoods (HASNs). Areal Interpolation Matrixes allow the transformation of raw data in various geographic units to that in the HASN unit. Furthermore, a Neighborhood Accessibility Matrix accommodates the modeling of accessibility to nearest location-based crime factors from sampled neighborhoods. Third, multivariate statistics and multiple regression statistics are used to examine the relations between different types of neighborhood crime and their explanatory factors. Research rsesults indicate that the GIS-based methodological framework generates research findings highly consistent with those reported in the literature.View full textDownload full textKeywordsGIS, data integration, neighborhood crimeRelated var addthis_config = { ui_cobrand: "Taylor & Francis Online", services_compact: "citeulike,netvibes,twitter,technorati,delicious,linkedin,facebook,stumbleupon,digg,google,more", pubid: "ra-4dff56cd6bb1830b" }; Add to shortlist Link Permalink http://dx.doi.org/10.1080/19475683.2012.691903
机译:经过半个多世纪的发展,地理信息科学(GIS)已经发展成为空间思维,地理知识,地理空间技术和应用程序实践的跨学科领域。但是,GIS在社会科学研究中的整合尚未得到充分发展,需要更积极的经验研究实例来不断推进GIS在社会科学研究中的应用。为了应对这一挑战,在本文中,作者将城市邻里犯罪调查作为实验来检验地理空间技术在美国加利福尼亚州奥克兰市进行邻里犯罪调查中的能力。首先,用主要的邻里犯罪学理论构建一个综合的理论框架,以指导实证实验。其次,基于GIS的方法框架一方面集成了地理空间数据的收集,集成,处理和建模,另一方面集成了先进的统计方法,从而以数据驱动的方式调查邻里犯罪。具体而言,随机邻域采样矩阵可以生成层次可调空间邻域(HASN)。地域插值矩阵允许将各种地理单位的原始数据转换为HASN单位的原始数据。此外,“邻居可访问性矩阵”提供了对来自抽样社区的基于位置的最近犯罪因素的可访问性的建模。第三,多元统计和多元回归统计被用来检验不同类型的邻里犯罪及其解释因素之间的关系。研究结果表明,基于GIS的方法框架产生的研究结果与文献报道高度一致。查看全文下载全文关键词GIS,数据集成,邻里犯罪相关var addthis_config = {ui_cobrand:“泰勒和弗朗西斯在线”,service_compact:“ citeulike ,netvibes,twitter,technorati,可口,linkedin,facebook,stumbleupon,digg,google,更多”,发布:“ ra-4dff56cd6bb1830b”};添加到候选列表链接永久链接http://dx.doi.org/10.1080/19475683.2012.691903

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