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A Modified Cellular Automaton Approach for Mixed Bicycle Traffic Flow Modeling

机译:混合蜂窝交通流建模的改进元胞自动机方法

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Several previous studies have used the Cellular Automaton (CA) for the modeling of bicycle traffic flow. However, previous CA models have several limitations, resulting in differences between the simulated and the observed traffic flow features. The primary objective of this study is to propose a modified CA model for simulating the characteristics of mixed bicycle traffic flow. Field data were collected on physically separated bicycle path in Shanghai, China, and were used to calibrate the CA model using the genetic algorithm. Traffic flow features between simulations of several CA models and field observations were compared. The results showed that our modified CA model produced more accurate simulation for the fundamental diagram and the passing events in mixed bicycle traffic flow. Based on our model, the bicycle traffic flow features, including the fundamental diagram, the number of passing events, and the number of lane changes, were analyzed. We also analyzed the traffic flow features with different traffic densities, traffic components on different travel lanes. Results of the study can provide important information for understanding and simulating the operations of mixed bicycle traffic flow.
机译:先前的一些研究已使用元胞自动机(CA)对自行车交通流进行建模。但是,以前的CA模型有一些局限性,导致模拟流量流量特征与观察流量流量特征之间存在差异。这项研究的主要目的是提出一种改进的CA模型,以模拟混合自行车交通流量的特征。在中国上海,在分开的自行车道上收集了现场数据,并使用遗传算法将其用于校准CA模型。比较了几种CA模型的仿真与实地观察之间的交通流特征。结果表明,我们改进的CA模型对基础图和混合自行车交通流中的过往事件产生了更准确的仿真。基于我们的模型,分析了自行车交通流量特征,包括基本图,通过事件的数量和车道变更的数量。我们还分析了具有不同交通密度,不同行车道交通组成的交通流特征。研究结果可为理解和模拟混合自行车交通流的运行提供重要信息。

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