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Journey time estimator for assessment of road network performance under demand uncertainty

机译:在需求不确定性下评估路网性能的行程时间估计器

摘要

This paper proposes a journey time estimator (JTE) to estimate the stochastic journey time of each path for performance assessment in road network with uncertainty due to day-to-day demand variations. The stochastic network framework is adopted in this paper, in which link flows and path journey times are modeled as random variables so as to fully utilize the first- and the second-order statistical properties of the partial data collected for the journey time estimation. The second-order statistical property is referred to the variance-covariance (var-cov) of the observed path journey times and link flows available for the estimation. In this paper, the proposed JTE is formulated as a bi-level optimization problem. The objective of the upper-level problem is a variant of the Least Squares function, which considers the mean and var-cov of the observed path journey times. In addition, the observed statistical distribution of the link flow is also used to formulate a chance constraint in the upper-level problem. The lower-level problem is the reliability-based stochastic user equilibrium traffic assignment problem in stochastic network, which explicitly considers the reliability-based path choice behaviors of the road users under demand uncertainty. A heuristic iterative estimation-assignment algorithm is employed to solve the proposed bi-level problem. Numerical examples are provided to demonstrate the applications of the JTE and efficiency of the proposed algorithm.
机译:本文提出了一种行程时间估计器(JTE),用于估计由于日常需求变化而具有不确定性的道路网络中性能评估的每条路径的随机行程时间。本文采用随机网络框架,将链接流和路径旅行时间建模为随机变量,以充分利用收集的部分数据的一阶和二阶统计特性进行旅行时间估计。二阶统计属性是指观察到的路径旅行时间和可用于估算的链接流的方差-协方差(var-cov)。在本文中,提出的JTE被表述为双层优化问题。上层问题的目标是最小二乘函数的变体,该函数考虑了所观察到的路径旅行时间的均值和var-cov。另外,所观察到的链路流的统计分布也被用来制定高层问题中的机会约束。下层问题是随机网络中基于可靠性的随机用户均衡交通分配问题,该问题明确考虑了需求不确定性下道路用户基于可靠性的路径选择行为。采用启发式迭代估计分配算法来解决所提出的双层问题。数值例子说明了JTE的应用和所提算法的效率。

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