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Research on the Effects of Heterogeneity on Pedestrian Dynamics in Walkway of Subway Station

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  • Haoling Wu
  • Zhenzhou Yuan
  • Huixuan Li
  • Junfang Tian

Abstract

The major objective of this paper is to study the effects of heterogeneity on pedestrian dynamics in walkway of subway station. We analyze the observed data of the selected facility and find that walking speed and occupied space were varied in the population. In reality, pedestrians are heterogeneous individuals with different attributes. However, the research on how the heterogeneity affects the pedestrian dynamics in facilities of subway stations is insufficient. The improved floor field model is therefore presented to explore the effects of heterogeneity. Pedestrians are classified into pedestrians walking in pairs, fast pedestrians, and ordinary pedestrians. For convenience, they are denoted as P -pedestrians, F -pedestrians, and O -pedestrians, respectively. The proposed model is validated under homogeneous and heterogeneous conditions. Three pedestrian compositions are simulated to analyze the effects of heterogeneity on pedestrian dynamics. The results show that P -pedestrians have negative effect and F -pedestrians have positive effect. All of the results in this paper indicate that the capacity of walkway is not a constant value. It changes with different component proportions of heterogeneous pedestrians. The heterogeneity of pedestrian has an important influence on the pedestrian dynamics in the walkway of the subway station.

Suggested Citation

  • Haoling Wu & Zhenzhou Yuan & Huixuan Li & Junfang Tian, 2016. "Research on the Effects of Heterogeneity on Pedestrian Dynamics in Walkway of Subway Station," Discrete Dynamics in Nature and Society, Hindawi, vol. 2016, pages 1-10, July.
  • Handle: RePEc:hin:jnddns:4961681
    DOI: 10.1155/2016/4961681
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    Cited by:

    1. Huang, Qi & Qin, Tianyu & Luo, Lin & Yang, Gaobo & Fu, Zhijian & Liu, Xiaobo, 2024. "Modeling heterogenous crowd evacuation on stairs in high-rise buildings using a fine discrete floor field cellular automaton model: Accounting for speed and boundary layer variations," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 639(C).

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