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A non-continuum lumped-parameter dynamic model applied to Indian traffic

机译:非连续集总参数动力学模型应用于印度交通

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Dynamic traffic flow models are essential for obtaining information about the time evolution of variables describing the traffic flow phenomena and have a critical role in the development and implementation of real-time applications such as Intelligent Transportation Systems. Macroscopic traffic flow models that treat the traffic as a continuum are preferred for such applications. But, existing macroscopic models characterize homogeneous traffic, and may not be directly applicable to capture the vehicle heterogeneity seen on Indian roads. To address this issue, a non-continuum macroscopic dynamic traffic flow model based on the lumped-parameter approach was developed in this study. The model was developed based on the conservation of vehicles equation and a dynamic speed equation, incorporating an empirically developed traffic stream model, which is an important contribution of this study. Using this model, an estimation scheme has been developed based on the Kalman filtering technique to estimate traffic states in real time. The proposed scheme was implemented and corroborated for the heterogeneous traffic conditions existing in India. The performance of this scheme has been evaluated and the results obtained have been found to be promising.
机译:动态交通流模型对于获取有关描述交通流现象的变量的时间演变信息至关重要,并且在实时应用程序(如智能交通系统)的开发和实施中起着至关重要的作用。对于此类应用程序,首选将流量视为连续体的宏观流量模型。但是,现有的宏观模型具有同质交通的特征,可能无法直接应用于捕获印度道路上的车辆异质性。为了解决这个问题,本研究开发了一种基于集总参数方法的非连续宏观动态交通流模型。该模型是基于车辆守恒方程和动态速度方程,并结合经验开发的交通流模型而开发的,这是本研究的重要贡献。使用该模型,已经开发了一种基于卡尔曼滤波技术的估计方案,以实时估计交通状况。拟议的计划已针对印度现有的异构交通条件实施并得到证实。已对该方案的性能进行了评估,发现所获得的结果很有希望。

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