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Development of safety performance functions for SafetyAnalyst applications in Florida.

机译:为佛罗里达州的SafetyAnalyst应用开发安全性能功能。

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摘要

In 2010, the American Association of State Highway and Transportation Officials (AASHTO) released a safety analysis software system known as SafetyAnalyst. SafetyAnalyst implements the empirical Bayes (EB) method, which requires the use of Safety Performance Functions (SPFs). The system is equipped with a set of national default SPFs, and the software calibrates the default SPFs to represent the agency's safety performance. However, it is recommended that agencies generate agency-specific SPFs whenever possible. Many investigators support the view that the agency-specific SPFs represent the agency data better than the national default SPFs calibrated to agency data. Furthermore, it is believed that the crash trends in Florida are different from the states whose data were used to develop the national default SPFs.;In this dissertation, Florida-specific SPFs were developed using the 2008 Roadway Characteristics Inventory (RCI) data and crash and traffic data from 2007-2010 for both total and fatal and injury (FI) crashes. The data were randomly divided into two sets, one for calibration (70% of the data) and another for validation (30% of the data). The negative binomial (NB) model was used to develop the Florida-specific SPFs for each of the subtypes of roadway segments, intersections and ramps, using the calibration data. Statistical goodness-of-fit tests were performed on the calibrated models, which were then validated using the validation data set. The results were compared in order to assess the transferability of the Florida-specific SPF models.;The default SafetyAnalyst SPFs were calibrated to Florida data by adjusting the national default SPFs with local calibration factors. The performance of the Florida-specific SPFs and SafetyAnalyst default SPFs calibrated to Florida data were then compared using a number of methods, including visual plots and statistical goodness-of-fit tests. The plots of SPFs against the observed crash data were used to compare the prediction performance of the two models. Three goodness-of-fit tests, represented by the mean absolute deviance (MAD), the mean square prediction error (MSPE), and Freeman-Tukey R2 (R2FT), were also used for comparison in order to identify the better-fitting model. The results showed that Florida-specific SPFs yielded better prediction performance than the national default SPFs calibrated to Florida data.;The performance of Florida-specific SPFs was further compared with that of the full SPFs, which include both traffic and geometric variables, in two major applications of SPFs, i.e., crash prediction and identification of high crash locations. The results showed that both SPF models yielded very similar performance in both applications. These empirical results support the use of the flow-only SPF models adopted in SafetyAnalyst, which require much less effort to develop compared to full SPFs.
机译:2010年,美国国家公路和运输官员协会(AASHTO)发布了一种称为SafetyAnalyst的安全分析软件系统。 SafetyAnalyst实现了经验贝叶斯(EB)方法,该方法要求使用安全性能函数(SPF)。该系统配备了一组国家默认SPF,并且该软件会校准默认SPF以代表该机构的安全绩效。但是,建议代理机构尽可能生成特定于代理机构的SPF。许多研究人员支持这样一种观点,即特定于代理商的SPF代表的代理商数据要好于根据代理商数据校准的国家默认SPF。此外,据信佛罗里达州的碰撞趋势与用于开发国家默认SPF的州有所不同。在本论文中,使用2008年道路特征清单(RCI)数据和碰撞开发了佛罗里达特定的SPF。以及2007年至2010年的交通事故总数以及致命和伤害(FI)的交通数据。将数据随机分为两组,一组用于校准(数据的70%),另一组用于验证(数据的30%)。使用校正数据,使用负二项式(NB)模型为道路段,交叉口和坡道的每个子类型开发佛罗里达特定的SPF。在校准后的模型上进行统计拟合优度检验,然后使用验证数据集对其进行验证。比较结果以评估佛罗里达特定SPF模型的可移植性。通过使用本地校准因子调整国家默认SPF,将默认的SafetyAnalyst SPF校准为佛罗里达数据。然后,使用多种方法(包括视觉图和统计拟合优度检验)比较了针对佛罗里达数据校准的针对佛罗里达的SPF和SafetyAnalyst默认SPF的性能。 SPF对观察到的碰撞数据的图用于比较两个模型的预测性能。为了确定最佳拟合模型,还使用三个拟合优度检验(以平均绝对偏差(MAD),均方预测误差(MSPE)和Freeman-Tukey R2(R2FT)表示)进行比较。 。结果表明,佛罗里达州特定SPF的预测性能优于根据佛罗里达数据校准的国家默认SPF .;佛罗里达州特定SPF的性能与包括流量和几何变量在内的完整SPF的性能进一步进行了比较,其中两个SPF的主要应用,即碰撞预测和高碰撞位置识别。结果表明,两种SPF模型在两种应用中均产生非常相似的性能。这些经验结果支持使用SafetyAnalyst中采用的仅流程SPF模型,与完全SPF相比,开发所需的工作量更少。

著录项

  • 作者

    Lu, Jinyan.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 184 p.
  • 总页数 184
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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