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Statistical Analyses of Freeway Traffic Flows

机译:高速公路交通流量的统计分析

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This paper concerns the exploration of statistical models for the analysis of observational freeway flow data, and the development of empirical models to capture and predict short-term changes in traffic flow characteristics on sequences of links in a partially detectorized freeway network. A first set of analyses explores regression models for minute-by-minute traffic flows, taking into account time of day, day of the week, and recent upstream detector-based flows. Day- and link-specific random effects are used in a hierarchical statistical modelling framework. A second set of analyses captures day-specific idiosyncrasies in traffic patterns by including parameters that may vary throughout the day. Model fit and short-term predictions of flows are thus improved significantly. A third set of analyses includes recent downstream flows as additional predictors. These further improvements, though marginal in most cases, can be quite radically useful in cases of very marked breakdown of freeway flows on some links. These three modelling stages are described and developed in analyses of observational flow data from a set of links on Interstate Highway 5 (I-5) near Seattle.
机译:本文涉及对用于观测高速公路流量数据分析的统计模型的探索,以及用于捕获和预测部分检测高速公路网络中各路段交通流量特性的短期变化的经验模型的开发。第一组分析探讨了分钟,分钟流量的回归模型,并考虑了一天中的时间,一周中的某天以及最近基于上游检测器的流量。特定于日期和链接的随机效应用于分层统计建模框架中。第二组分析通过包括可能在一天内变化的参数来捕获流量模式中特定于一天的特质。因此,模型拟合和流量的短期预测得到了显着改善。第三组分析包括最近的下游流量作为其他预测因子。这些进一步的改进,尽管在大多数情况下是微不足道的,但在某些路段的高速公路流量明显中断的情况下,可能会从根本上有用。在对西雅图附近的5号州际公路(I-5)上的一组链接进行的观测流数据分析中,描述和开发了这三个建模阶段。

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