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Decentralized State-Observer-Based Traffic Density Estimation of Large-Scale Urban Freeway Network by Dynamic Model

机译:基于分散状态-观测器的大型城市高速公路网络交通密度估算

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In order to estimate traffic densities in a large-scale urban freeway network in an accurate and timely fashion when traffic sensors do not cover the freeway network completely and thus only local measurement data can be utilized, this paper proposes a decentralized state observer approach based on a macroscopic traffic flow model. Firstly, by using the well-known cell transmission model (CTM), the urban freeway network is modeled in the way of distributed systems. Secondly, based on the model, a decentralized observer is designed. With the help of the Lyapunov function and S-procedure theory, the observer gains are computed by using linear matrix inequality (LMI) technique. So, the traffic densities of the whole road network can be estimated by the designed observer. Finally, this method is applied to the outer ring of the Beijing’s second ring road and experimental results demonstrate the effectiveness and applicability of the proposed approach.
机译:为了在交通传感器不能完全覆盖高速公路网络的情况下准确,及时地估计大型城市高速公路网络中的交通密度,本文提出了一种基于状态测量的分散状态观测器方法。宏观交通流模型。首先,通过使用众所周知的小区传输模型(CTM),以分布式系统的方式对城市高速公路网络进行建模。其次,基于模型,设计了一个分散的观察者。借助李雅普诺夫函数和S过程理论,使用线性矩阵不等式(LMI)技术计算观测器增益。因此,整个道路网的交通密度可以由设计的观察者来估计。最后,该方法被应用于北京二环路的外环,实验结果证明了该方法的有效性和适用性。

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