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Modelling freeway networks by hybrid stochastic models

机译:通过混合随机模型对高速公路网络进行建模

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Traffic flow on freeways is a nonlinear, many-particle phenomenon, with complex interactions between the vehicles. This paper presents a stochastic hybrid model of freeway traffic at a time scale and at a level of detail suitable for on-line flow estimation, for routing and ramp metering control. The model describes the evolution of continuous and discrete state variables. The freeway is considered as a network of components, each component representing a different section of the network. The traffic model, designed from physical considerations, comprises sending and receiving functions describing the downstream and upstream propagation of perturbations to be controlled. Results from simulation investigations illustrate the effectiveness of our model compared to the well-known METANET model.
机译:高速公路上的交通流是一种非线性的多粒子现象,车辆之间存在复杂的相互作用。本文提出了一种高速公路交通量的随机混合模型,该模型在时间尺度和详细程度上适合于在线流量估计,路线选择和匝道计量控制。该模型描述了连续和离散状态变量的演变。高速公路被视为组件网络,每个组件代表网络的不同部分。根据物理考虑设计的流量模型包括发送和接收功能,这些功能描述了要控制的扰动的下游和上游传播。仿真研究的结果表明,与众所周知的METANET模型相比,我们的模型是有效的。

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