TY - JOUR
T1 - Simulation of bi-directional pedestrian flow by using a cell transmission model
AU - Xu, Hai Hong
AU - Guo, Ren Yong
N1 - Publisher Copyright:
© 2018
PY - 2018/9
Y1 - 2018/9
N2 - An extended cell transmission model is proposed to simulate bi-directional pedestrian flow in the corridor. In the model, the walking space is discretized into regular hexagonal cells. Three walking preferences of pedestrians are taken into account, including walking on the right-hand side, following front people in the same direction, and avoiding conflicts with ones in the opposite direction. An implementation of the model with periodic boundary condition is then presented. Furthermore, by simulation experiments, we show the effects of the model parameters on flow distributions and fundamental diagrams. The model is also calibrated through comparing the flow-density relationships from empirical data and model simulations. In addition, the model can successfully reproduce typical self-organization phenomena in bi-directional pedestrian flow, e.g., two-lane formation and multi-lane formation, although it is not a microscopic model.
AB - An extended cell transmission model is proposed to simulate bi-directional pedestrian flow in the corridor. In the model, the walking space is discretized into regular hexagonal cells. Three walking preferences of pedestrians are taken into account, including walking on the right-hand side, following front people in the same direction, and avoiding conflicts with ones in the opposite direction. An implementation of the model with periodic boundary condition is then presented. Furthermore, by simulation experiments, we show the effects of the model parameters on flow distributions and fundamental diagrams. The model is also calibrated through comparing the flow-density relationships from empirical data and model simulations. In addition, the model can successfully reproduce typical self-organization phenomena in bi-directional pedestrian flow, e.g., two-lane formation and multi-lane formation, although it is not a microscopic model.
KW - Bi-directional pedestrian flow
KW - Cell transmission model
KW - Flow-density relationship
KW - Walking preference
UR - https://www.scopus.com/pages/publications/85047792820
U2 - 10.1016/j.simpat.2018.05.012
DO - 10.1016/j.simpat.2018.05.012
M3 - 文章
AN - SCOPUS:85047792820
SN - 1569-190X
VL - 87
SP - 1
EP - 14
JO - Simulation Modelling Practice and Theory
JF - Simulation Modelling Practice and Theory
ER -