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A copula-based closed-form binary logit choice model for accommodating spatial correlation across observational units

机译:基于copula的闭合形式二进制logit选择模型,用于适应跨观测单位的空间相关性

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摘要

This study focuses on accommodating spatial dependency in data indexed by geographic location. In particular, the emphasis is on accommodating spatial error correlation across observational units in binary discrete choice models. We propose a copula-based approach to spatial dependence modeling based on a spatial logit structure rather than a spatial probit structure. In this approach, the dependence between the logistic error terms of different observational units is directly accommodated using a multivariate logistic distribution based on the Farlie-Gumbel-Morgenstein (FGM) copula. The approach represents a simple and powerful technique that results in a closed-form analytic expression for the joint probability of choice across observational units, and is straightforward to apply using a standard and direct maximum likelihood inference procedure. There is no simulation machinery involved, leading to substantial computation gains relative to current methods to address spatial correlation. The approach is applied to teenagers’ physical activity participation levels, a subject of considerable interest in the public health, transportation, sociology, and adolescence development fields. The results indicate that failing to accommodate heteroscedasticity and spatial correlation can lead to inconsistent and inefficient parameter estimates, as well as incorrect conclusions regarding the elasticity effects of exogenous variables.
机译:这项研究的重点是在按地理位置索引的数据中适应空间依赖性。特别地,重点在于在二进制离散选择模型中适应观察单元之间的空间误差相关性。我们提出了一种基于copula的基于空间logit结构而非空间probit结构的空间依赖建模方法。在这种方法中,使用基于Farlie-Gumbel-Morgenstein(FGM)copula的多元logistic分布直接适应不同观测单位的logistic误差项之间的依赖性。该方法代表了一种简单而强大的技术,该技术可得出跨观察单位的联合选择概率的封闭形式的解析表达式,并且可以使用标准的直接最大似然推断程序直接应用。不涉及仿真机制,相对于解决空间相关性的当前方法,可带来大量的计算收益。该方法适用于青少年的体育活动参与水平,这是在公共卫生,交通,社会学和青少年发展领域相当感兴趣的主题。结果表明,未能适应异方差性和空间相关性可能导致参数估计不一致且效率低下,以及关于外生变量的弹性效应的错误结论。

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