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Apriori-based text mining method for the advancement of the transportation management plan in expressway work zones

机译:基于Apriori的文本挖掘方法,用于高速公路工作区的运输管理计划的改进

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This study contributes to knowledge by advancing the transportation management plan (TMP) development efforts for expressway work zones. Using text mining techniques to a large-scale transportation data set that contains descriptively narrated texts, this research analyzes the association between words related to the type of work being performed and the type of lane closure in expressway work zone areas. It found that recurrent everyday tasks and bridge repair works tend to cause shoulder lane closure, while works-such as tunnel repair, night work, pavement, median barrier, road surface repair, and line marking-are more associated with main lane closure. Moreover, the findings further clarify the characteristic patterns shared between the number of closed lanes, and the respective lane position in two- and three-lane expressways. These offer significant insights into the decision-making process for the development of work zone TMPs, which can further be integrated into the various components of TMP to make the plan more effective and, at the same time, ensure an efficient throughput flow throughout the work zone, reduced congestion, and improved safety.
机译:这项研究通过推进高速公路工作区的运输管理计划(TMP)的开发工作,为知识做出了贡献。这项研究使用文本挖掘技术对包含描述性叙述文本的大规模运输数据集进行了分析,分析了与正在执行的工作类型和高速公路工作区区域的车道封闭类型相关的单词之间的关联。研究发现,经常性的日常工作和桥梁维修工作往往会导致路肩封闭,而隧道维修,夜间工作,人行道,中间隔离带,路面维修和划线等工作则与主车道封闭更为相关。此外,研究结果进一步阐明了封闭车道的数量以及两车道和三车道高速公路中各自车道位置之间共享的特征模式。这些为开发工作区TMP的决策过程提供了重要的见识,可以进一步将其集成到TMP的各个组成部分中,以使计划更有效,同时确保整个工作过程中高效的生产流程区域,减少拥堵并提高安全性。

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