首页> 外文期刊>Arabian Journal for Science and Engineering. Section A, Sciences >Comparison of Master Sigmoidal Curve and Markov Chain Techniques for Pavement Performance Prediction
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Comparison of Master Sigmoidal Curve and Markov Chain Techniques for Pavement Performance Prediction

机译:主S形曲线和马尔可夫链技术在路面性能预测中的比较

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摘要

Recently, highway agencies have become in need to enhance their pavement management systems (PMSs) using soundengineering and economic principles that find more prudent solutions to support wise investment choices and preserve thevalue of infrastructure assets. As pavement performance prediction models are one of the most important and fundamentalcomponents in any PMS, this paper focuses on comparing the master sigmoidal curve-based model as a deterministictechnique with the Markov chain-based model as a probabilistic technique for the prediction of the international roughnessindex (IRI) as a pavement performance indicator. The IRI data obtained from the long-term pavement performance (LTPP)program were used to evaluate and compare both methods. In this paper, 44 flexible pavement sections from the GPS-1experiment incorporating 432 IRI measurements ranging from 0.32 to 5.12 m/km were selected. Results showed that thepredictive ability of the investigated models for the selected LTPP data was good with a reasonable coincidence ratio ofabout 65 percent between the predicted results of the two modeling techniques.
机译:最近,公路部门需要使用声音工程和经济原理来增强其路面管理系统(PMS),以找到更审慎的解决方案来支持明智的投资选择并保持基础设施资产的价值。由于路面性能预测模型是任何PMS中最重要和最基本的组成部分之一,因此本文着重于比较基于主S曲线的确定性技术和基于马尔可夫链的模型作为预测国际粗糙度指数的概率技术(IRI)作为路面性能指标。从长期路面性能(LTPP)程序获得的IRI数据用于评估和比较这两种方法。在本文中,从GPS-1实验中选择了44个柔性路面,其中包括432个IRI测量值,范围从0.32到5.12 m / km。结果表明,所研究模型对所选LTPP数据的预测能力良好,两种建模技术的预测结果之间的合理重合率约为65%。

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