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Estimating Baseline Travel Times for the UK Strategic Road Network

机译:估计英国战略公路网的基准旅行时间

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We present a new method for long-term estimation of the expected travel time for links on highways and their variation with time. The approach is based on a time series analysis of travel time data from the UK's National Traffic Information Service (NTIS). Time series of travel times are characterised by a noisy background variation exhibiting the expected daily and weekly patterns punctuated by large spikes associated with congestion events. Some spikes are caused by peak hour congestion and some are caused by unforeseen events like accidents. Our algorithm uses thresholding to split the data into background and spike signals, each of which is analysed separately. The the background signal is extracted using spectral filtering. The periodic part of the spike signal is extracted using locally weighted regression (LWR). The final estimated travel time is obtained by recombining these two. We assess our method by cross-validating in several UK motorways. We use 8 weeks of training data and calculate the error of the resulting travel time estimates for a week of test data, repeating this process 4 times. We find that the error is significantly reduced compared to estimates obtained by simple segmentation of the data and compared to the estimates published by the NTIS system.
机译:我们提出了一种新方法,可以长期估算高速公路上的路段的预期行驶时间及其随时间的变化。该方法基于对来自英国国家交通信息服务(NTIS)的旅行时间数据的时间序列分析。出行时间的时间序列的特征在于嘈杂的背景变化,表现出预期的每天和每周的模式,这些模式被与交通拥堵事件相关的大峰值所打断。一些高峰是由高峰时段的拥堵引起的,而某些高峰是由意外事件(如事故)引起的。我们的算法使用阈值将数据分为背景信号和峰值信号,分别对它们进行分析。使用频谱滤波提取背景信号。使用局部加权回归(LWR)提取尖峰信号的周期性部分。最终的预计旅行时间是通过重新组合这两者而获得的。我们通过在多个英国高速公路上进行交叉验证来评估我们的方法。我们使用8周的训练数据并计算一周测试数据得出的旅行时间估计值的误差,重复此过程4次。我们发现,与通过简单分割数据获得的估计值以及与NTIS系统发布的估计值相比,该错误显着减少。

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