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New Model of Travel-Time Prediction Considering Weather Conditions: Case Study of Urban Expressway

机译:考虑天气条件的新旅行时间预测模型 - 城市高速公路案例研究

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In the prediction problem of urban expressway travel time, in addition to the influence of traffic flow characteristics on travel time, the influence of various traffic environmental factors makes the change of traffic conditions with time uncertain, and the uncertainty and ambiguity in the transportation environment affect the travel-time prediction to varying degrees. This paper studied the influence of weather conditions on expressway travel-time prediction, focusing on the impacts of rain intensity and visibility. The southern section of Sanyuanli-Guangzhou Airport Expressway was selected as a case study to analyze characteristics of travel time under different weather conditions, to determine the change law of travel time and vehicle speed under different rainfall intensity and visibility, and to quantify the uncertainty and fuzziness factors through membership function and parameter weight. The mapping relationship between the influencing factors and travel time was obtained through decision rules, and a travel-time prediction model was established based on soft set theory. The experimental results showed that, compared with the Bureau of Public Roads (BPR) function model, the travel-time prediction model considering weather conditions reduces the prediction error and effectively improves the calculation accuracy.
机译:在城市高速公路旅行时间的预测问题中,除了交通流量特征对旅行时间的影响外,各种交通环境因素的影响力在不确定的情况下使交通状况的变化,以及运输环境影响的不确定性和歧义旅行时间预测到不同程度。本文研究了天气条件对高速公路旅行时间预测的影响,专注于雨强度和可见性的影响。 Sanyuli-Puangzhou机场高速公路的南部被选为分析不同天气条件下的旅行时间特征,以确定不同降雨强度和可见度下的旅行时间和车辆速度的变化规律,并量化不确定性和通过隶属函数和参数重量的模糊因素。通过决策规则获得了影响因素和旅行时间之间的映射关系,基于软结构理论建立了行进时间预测模型。实验结果表明,与公共道路局(BPR)函数模型相比,考虑天气条件的旅行时间预测模型减少了预测误差,有效提高了计算精度。

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