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首页> 外文期刊>Stochastic environmental research and risk assessment >Quantifying geographic variations in associations between alcohol distribution and violence: a comparison of geographically weighted regression and spatially varying coefficient models
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Quantifying geographic variations in associations between alcohol distribution and violence: a comparison of geographically weighted regression and spatially varying coefficient models

机译:量化酒精分布与暴力之间的关联中的地理差异:地理加权回归和空间变化系数模型的比较

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摘要

Past studies consistently indicate measurable local associations between alcohol distribution and the incidence of violence. These results, coupled with measurements of spatial correlation, reveal the importance of spatial analysis in the study of the interaction of alcohol and violence. While studies increasingly incorporate spatial correlation among model residuals to improve precision and reduce bias, to date, most analyses assume associations that are constant and independent of location, an assumption coming under increasing scrutiny in the quantitative geography literature. In this paper, we review and contrast two approaches for the estimation of and inference for spatially heterogeneous effects (i.e., associative factors whose impacts on the outcome of interest vary throughout geographic space). Specifically, we provide an in-depth comparison of "geographically weighted regression" models (allowing covariate effects to vary in space but onlyrnallowing relatively ad hoc inference) with "variable coefficient" models (allowing varying effects via spatial random fields and providing model-based estimation and inference, but requiring more advanced computational techniques). We compare the approaches with respect to underlying conceptual structures, computational implementation, and inferential output. We apply both approaches to violent crime, illegal drug arrest, and alcohol distribution data from Houston, Texas and compare results in light of the differing methodological structures of the two approaches.
机译:过去的研究一致表明,酒精分布与暴力事件之间存在可测量的局部关联。这些结果,加上空间相关性的度量,揭示了空间分析在研究酒精与暴力之间的相互作用中的重要性。尽管研究越来越多地将模型残差之间的空间相关性纳入了研究范围,以提高精度并减少偏差,但迄今为止,大多数分析都假设关联是恒定且独立于位置的,这一假设在定量地理文献中正受到越来越严格的审查。在本文中,我们回顾并对比了两种评估和推断空间异质效应的方法(即,对感兴趣结果的影响在整个地理空间中变化的关联因素)。具体而言,我们将“地理加权回归”模型(允许协变量效应在空间中变化,但仅允许相对临时推断)与“可变系数”模型(允许通过空间随机场变化效应并提供基于模型的变量)进行深入比较估计和推断,但需要更高级的计算技术)。我们比较了有关基础概念结构,计算实现和推论性输出的方法。我们将这两种方法都用于暴力犯罪,非法毒品逮捕和得克萨斯州休斯顿的酒精分配数据,并根据两种方法的不同方法结构来比较结果。

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