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A Novel Approach to Extract Significant Patterns of Travel Time Intervals of Vehicles from Freeway Gantry Timestamp Sequences ?

机译:从高速公路龙门时间戳序列中提取车辆行驶时间间隔重要模式的新方法?

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It is attractive to extract and determine the key features of traffic patterns for mitigating road congestion and predicting travel time of vehicles in traffic analysis. Based on the previous work that is a scalable approach via a Hadoop MapReduce programming model, this paper aims to extract significant patterns of travel time intervals of vehicles from freeway traffic in Taiwan, and meanwhile to compute the statistics of these patterns from the point of view one may concern. Experimental resources are the records of timestamp gantry sequences of vehicles passed in five months from 2016/11 to 2017/3 that were downloaded from the Traffic Data Collection System, one of Taiwan government open data platforms. To select one specific gantry sequence for demonstration, the longest sequence on the trip within the Taiwan National Freeway No. 5 is selected. Experimental results show that some statistics of vehicle travel time intervals according to 24 h per day are computed for illustration. These statistics can not only provide clues to experts to analyze traffic congestions, but also help drivers how to avoid rush hours. Furthermore, this work is able to handle a larger amount of real data and be promising for further traffic and transportation research in the future.
机译:在交通分析中,提取并确定交通模式的关键特征以缓解道路拥堵并预测车辆的行驶时间很有吸引力。基于以前的工作,即通过Hadoop MapReduce编程模型进行可扩展的方法,本文旨在从台湾的高速公路交通中提取车辆的行进时间间隔的重要模式,并同时从这些角度计算这些模式的统计数据一个人可能会担心。实验资源是从台湾政府开放数据平台之一的交通数据收集系统下载的从2016/11到2017/3的五个月内通过的车辆的时间戳门架序列记录。为了选择一个特定的龙门序列进行演示,选择了台湾国道5号内行程中最长的序列。实验结果表明,计算出了每天24小时的车辆行驶时间间隔的一些统计数据以进行说明。这些统计数据不仅可以为专家提供分析交通拥堵的线索,还可以帮助驾驶员避免高峰时间。此外,这项工作能够处理大量的真实数据,并有望在将来进行进一步的交通运输研究。

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