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Introducing non-normality of latent psychological constructs in choice modeling with an application to bicyclist route choice

机译:在选择模型中引入潜在心理构造的非正态性及其在自行车手路线选择中的应用

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摘要

In the current paper, we propose the use of a multivariate skew-normal (MSN) distribution function for the latent psychological constructs within the context of an integrated choice and latent variable (ICLV) model system. The multivariate skew-normal (MSN) distribution that we use is tractable, parsimonious in parameters that regulate the distribution and its skewness, and includes the normal distribution as a special interior point case (this allows for testing with the traditional ICLV model). Our procedure to accommodate non-normality in the psychological constructs exploits the latent factor structure of the ICLV model, and is a flexible, yet very efficient approach (through dimension-reduction) to accommodate a multivariate non-normal structure across all indicator and outcome variables in a multivariate system through the specification of a much lower-dimensional multivariate skew-normal distribution for the structural errors. Taste variations (i.e., heterogeneity in sensitivity to response variables) can also be introduced efficiently and in a non-normal fashion through interactions of explanatory variables with the latent variables. The resulting model we develop is suitable for estimation using Bhat's (2011) maximum approximate composite marginal likelihood (MACML) inference approach. The proposed model is applied to model bicyclists' route choice behavior using a web-based survey of Texas bicyclists. The results reveal evidence for non-normality in the latent constructs. From a substantive point of view, the results suggest that the most unattractive features of a bicycle route are long travel times (for commuters), heavy motorized traffic volume, absence of a continuous bicycle facility, and high parking occupancy rates and long lengths of parking zones along the route. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在当前的论文中,我们建议在综合选择和潜变量(ICLV)模型系统的背景下,对潜在的心理构想使用多元偏态正态(MSN)分布函数。我们使用的多元偏态正态(MSN)分布是易处理的,在调节分布及其偏度的参数上是简约的,并且包括正态分布作为特殊的内点情况(这允许使用传统ICLV模型进行测试)。我们在心理结构中适应非正态性的程序利用了ICLV模型的潜在因素结构,并且是一种灵活但非常有效的方法(通过降维),可在所有指标和结果变量中适应多元非正态结构在多变量系统中,通过针对结构误差的低得多的多维偏正态分布的规范。通过解释性变量与潜在变量的交互作用,还可以以非正常的方式有效地引入口味变化(即,对响应变量的敏感性的异质性)。我们开发的结果模型适合使用Bhat(2011)最大近似复合边缘可能性(MACML)推断方法进行估算。使用基于网络的德克萨斯州骑自行车者调查,将建议的模型应用于模型骑自行车者的路线选择行为。结果揭示了潜在构造中非正常的证据。从实质的角度来看,结果表明自行车路线最不吸引人的特征是(对于通勤者而言)旅行时间长,机动车辆交通量大,缺乏连续的自行车设施,停车位占用率高且停车时间长沿线区域。 (C)2015 Elsevier Ltd.保留所有权利。

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