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Spatial Regression of Crime×空间滞后模型(SAR / 空间自回归)×
领域Criminology空间分析
方法族Regression modelRegression model
起源年份19881988
提出者Luc AnselinAnselin (textbook formalisation); LeSage & Pace
类型Regression model for areal crime data with spatial dependenceSpatial autoregressive regression
开创性文献Anselin, L. (1988). Spatial Econometrics: Methods and Models. Kluwer Academic Publishers. ISBN: 9789024737352Anselin, L. (1988). Spatial Econometrics: Methods and Models. Kluwer Academic. DOI ↗
别名Spatial Lag Model of Crime, Spatial Error Model of Crime, Geographically Weighted Regression of Crime, Spatial Econometric Crime ModelsSAR model, spatial autoregressive model, spatial lag, Uzamsal Gecikme Modeli (SAR / Spatial Lag)
相关45
摘要Spatial regression models explain crime rates across areal units — neighborhoods, census tracts, counties — while explicitly accounting for the fact that nearby places tend to have similar crime levels. Ordinary regression assumes each unit's residual is independent, an assumption crime data routinely violate, biasing standard errors and sometimes the coefficients themselves. Spatial econometric models, formalized in Luc Anselin's 1988 framework, introduce a spatial weights matrix and add a spatial lag of the outcome or a spatially correlated error so that the dependence between neighboring areas is modeled rather than ignored.The Spatial Lag Model is an autoregressive regression that assumes spatial dependence in the dependent variable itself: the outcome values of neighbouring units enter the model as an explanatory term (ρWy). It was formalised in Anselin's Spatial Econometrics (1988) and developed further by LeSage and Pace (2009), and it decomposes spillover effects into direct, indirect, and total impacts.
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ScholarGate方法对比: Spatial Regression of Crime · Spatial Lag Model. 于 2026-06-24 检索自 https://scholargate.app/zh/compare