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Hybrid Dynamic Traffic Model for Freeway Flow Analysis Using a Switched Reduced-Order Unknown-Input State Observer

机译:混合动态交通模型用于高速公路流量分析采用切换式降阶未知输入状态观测器

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摘要

This paper introduces a new methodology for reconstructing vehicle densities of freeway segments by utilizing the limited data collected by traffic-counting sensors and developing a macroscopic traffic stream model formulated as a switched reduced-order state observer design problem with unknown or partially known inputs. Specifically, the traffic network is modeled as a hybrid dynamic system in a state space that incorporates unknown inputs. For freeway segments with traffic-counting sensors installed, vehicle densities are directly computed using field traffic count data. A reduced-order state observer is designed to analyze traffic state transitions for freeway segments without field traffic count data to indirectly estimate the vehicle densities for each freeway segment. A simulation-based experiment is performed applying the methodology and using data of a segment of Beijing Jingtong freeway in Beijing, China. The model execution results are compared with the field data associated with the same freeway segment, and highly consistent results are achieved. The proposed methodology is expected to be adopted by traffic engineers to evaluate freeway operations and develop effective management strategies.
机译:本文介绍了一种新方法,可通过利用交通计数传感器收集的有限数据并利用公式化的宏观交通流模型来重构高速公路路段的车辆密度,该模型被设计为具有未知或部分已知输入的切换式降阶状态观察器设计问题。具体而言,将交通网络建模为包含未知输入的状态空间中的混合动态系统。对于安装了交通计数传感器的高速公路路段,可使用现场交通计数数据直接计算车辆密度。降阶状态观察器设计用于分析高速公路路段的交通状态转换,而无需现场交通计数数据来间接估计每个高速公路路段的车辆密度。应用该方法并利用北京京通高速公路的一段数据进行了基于模拟的实验。将模型执行结果与与同一高速公路路段相关联的现场数据进行比较,并获得高度一致的结果。预计交通运输工程师将采用拟议的方法来评估高速公路运营并制定有效的管理策略。

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