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Development of Planning-Level Transportation Safety Models using Full Bayesian Semiparametric Additive Techniques

机译:使用完全贝叶斯半参数累加技术开发计划级运输安全模型

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摘要

Recently, several attempts have been made to develop collision prediction models in which spatial dependency is considered. These models recognize the local nature of spatial data by relaxing the regression analysis assumption that the error terms for each observation are independent. The primary objective of this study is to investigate an alternative technique for capturing the spatial variations in the relationship between the number of zonal collisions and potential transportation planning predictors. Spatial relationships are incorporated into the full Bayesian semiparametric additive modeling framework through the covariance of the error terms. The secondary objective of this research study is to build on knowledge of comparing the accuracy of full Bayesian models to that of generalized linear and geographically weighted Poisson regression models. The spatial covariates from the full Bayesian semiparametric additive model indicate that collision frequencies in traffic analysis zones are spatially correlated. The results of accuracy comparison indicate that the spatial models perform better than the conventional generalized linear models. However, mixed results are obtained when the FBSA models were compared to the geographically weighted Poisson regression models.
机译:近来,已经进行了一些尝试来开发考虑了空间依赖性的碰撞预测模型。这些模型通过放宽回归分析假设(每个观测值的误差项是独立的)来识别空间数据的局部性质。这项研究的主要目的是研究一种替代技术,以捕获区域碰撞次数与潜在运输计划预测因子之间关系的空间变化。通过误差项的协方差将空间关系合并到完整的贝叶斯半参数加性建模框架中。这项研究的第二个目标是建立在将完整贝叶斯模型与广义线性和地理加权Poisson回归模型的准确性进行比较的知识之上。来自完整贝叶斯半参数加性模型的空间协变量表明交通分析区域中的碰撞频率在空间上相关。精度比较的结果表明,空间模型的性能优于传统的广义线性模型。但是,将FBSA模型与地理加权的Poisson回归模型进行比较时,会得到混合结果。

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