Destination and route choice models for bidirectional pedestrian flow based on the social force model

被引:11
作者
Cao Ning-bo [1 ]
Qu Zhao-wei [1 ]
Chen Yong-heng [1 ]
Zhao Li-ying [1 ]
Song Xian-min [1 ]
Bai Qiao-wen [1 ]
机构
[1] Jilin Univ, Coll Transportat, Changchun, Jilin, Peoples R China
基金
中国国家自然科学基金;
关键词
pedestrians; road traffic; bidirectional pedestrian flow; social force model; rational destination model; route choice models; SFM; discretisation grid; SIMULATIONS; EVACUATION;
D O I
10.1049/iet-its.2016.0333
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this study, social force model (SFM) is extended by using a discretisation grid to permit pedestrians to change their desired speed directions dynamically. In reality, other pedestrians may obscure the visions of the behind pedestrians, so the behind pedestrians will be blocked if they insist to walk in the final desired directions calculated by the SFM. So, a dynamic destination choice model is established to provide pedestrians a series of available intermediate destinations. Based on the dynamic destination choice model, the authors use a discretisation grid to represent all the potential moving directions of pedestrians, and model the weight of every potential moving direction. The direction with the maximum weight is selected as the optimal route at that time step. Besides, pedestrians prefer to pass near to crowds with a low relative velocity and choose the low space occupancy route when several routes have the same pedestrian density. So, pedestrian speeds, space un-occupancy, route length, crowd density and object pedestrian ratio are used to develop the weight model. The modified SFM guarantees pedestrians to obtain an available and optimal route. Compared to other models, the proposed models can be used to reproduce the behavior of bidirectional pedestrians more really.
引用
收藏
页码:537 / 545
页数:9
相关论文
共 16 条
[1]   Modelling shared space users via rule-based social force model [J].
Anvari, Bani ;
Bell, Michael G. H. ;
Sivakumar, Aruna ;
Ochieng, Washington Y. .
TRANSPORTATION RESEARCH PART C-EMERGING TECHNOLOGIES, 2015, 51 :83-103
[2]   Microscopic pedestrian simulation model combined with a tactical model for route choice behaviour [J].
Asano, Miho ;
Iryo, Takamasa ;
Kuwahara, Masao .
TRANSPORTATION RESEARCH PART C-EMERGING TECHNOLOGIES, 2010, 18 (06) :842-855
[3]   The corridor map method: a general framework for real-time high-quality path planning [J].
Geraerts, Roland ;
Overmars, Mark H. .
COMPUTER ANIMATION AND VIRTUAL WORLDS, 2007, 18 (02) :107-119
[4]   A mobile lattice gas model for simulating pedestrian evacuation [J].
Guo, R. Y. ;
Huang, H. J. .
PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 2008, 387 (2-3) :580-586
[5]   SOCIAL FORCE MODEL FOR PEDESTRIAN DYNAMICS [J].
HELBING, D ;
MOLNAR, P .
PHYSICAL REVIEW E, 1995, 51 (05) :4282-4286
[6]  
Hoogendoorn SP, 2002, PEDESTRIAN AND EVACUATION DYNAMICS, P123
[7]   Pedestrian movement trajectory reappearance and crossing feature expression based on video processing [J].
Jiang, Sheng ;
Wang, Dianhai ;
Chen, Yongheng ;
Sun, Di .
Dongnan Daxue Xuebao (Ziran Kexue Ban)/Journal of Southeast University (Natural Science Edition), 2012, 42 (06) :1233-1237
[8]  
Kirik ES, 2009, J SIB FED UNIV-MATH, V2, P271
[9]   QUICKEST PATHS IN SIMULATIONS OF PEDESTRIANS [J].
Kretz, Tobias ;
Grosse, Andree ;
Hengst, Stefan ;
Kautzsch, Lukas ;
Pohlmann, Andrej ;
Vortisch, Peter .
ADVANCES IN COMPLEX SYSTEMS, 2011, 14 (05) :733-759
[10]   Morphological and dynamical aspects of the room evacuation process [J].
Parisi, D. R. ;
Dorso, C. O. .
PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 2007, 385 (01) :343-355