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A hybrid simulation-assignment modeling framework for crowd dynamics in large-scale pedestrian facilities

机译:大型步行设施人群动态混合仿真分配模型框架

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This paper presents a hybrid simulation-assignment modeling framework for studying crowd dynamics in large-scale pedestrian facilities. The proposed modeling framework judiciously manages the trade-off between ability to accurately capture congestion phenomena resulting from the pedestrians' collective behavior and scalability to model large facilities. We present a novel modeling framework that integrates a dynamic simulation assignment logic with a hybrid (two-layer or bi-resolution) representation of the facility. The top layer consists of a network representation of the facility, which enables modeling the pedestrians' route planning decisions while performing their activities. The bottom layer consists of a high resolution Cellular Automata (CA) system for all open spaces, which enables modeling the pedestrians' local maneuvers and movement decisions at a high level of detail. The model is applied to simulate the crowd dynamics in the ground floor of Al-Haram Al-Sharif Mosque in the City of Mecca, Saudi Arabia during the pilgrimage season. The analysis illustrates the model's capability in accurately representing the observed congestion phenomena in the facility. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文提出了一种混合仿真分配模型框架,用于研究大型步行设施中人群的动态。拟议的建模框架明智地管理了在准确捕获由行人的集体行为引起的拥塞现象的能力与对大型设施进行建模的可伸缩性之间的权衡。我们提出了一个新颖的建模框架,该框架将动态模拟分配逻辑与设施的混合(两层或双分辨率)表示相集成。顶层由设施的网络表示组成,可在执行活动时对行人的路线规划决策进行建模。底层由适用于所有开放空间的高分辨率Cellular Automata(CA)系统组成,可对行人的局部动作和运动决策进行建模,并具有较高的细节水平。该模型用于模拟朝圣季节沙特阿拉伯麦加市Al-Haram Al-Sharif清真寺地下的人群动态。分析说明了该模型能够准确表示所观察到的设施拥堵现象的能力。 (C)2016 Elsevier Ltd.保留所有权利。

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