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Generation and use of sparse navigation graphs for microscopic pedestrian simulation models

机译:微观行人模拟模型的稀疏导航图的生成和使用

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For the spatial design of buildings as well as for the layout of large event areas, the crowd behaviour of the future users plays a significant role. The designing engineer has to make sure that potentially critical situations, such as high densities in pedestrian crowds, are avoided in order to guarantee the integrity, safety and comfort of the users. To this end, computational pedestrian dynamics simulations have been developed and are increasingly used in practice. However, most of the available simulation systems rely on rather simple pedestrian navigation models, which reflect human behaviour only in a limited manner. This paper contributes to enhancing pedestrian simulation models by extending a microscopic model by a navigation graph layer serving as a basis for different routing algorithms. The paper presents an advanced method for the automated generation of a spatially embedded graph which is on the one hand as sparse as possible and on the other hand detailed enough to be able to serve as a navigation basis. Three different pedestrian types were modelled: pedestrians with good local knowledge, pedestrians with partly local knowledge and those without any local knowledge. The corresponding algorithms are discussed in detail. To illustrate how this approach improves on simulation results, an example scenario is presented to demonstrate the difference between results with and without using a graph as constructed here. Another example shows the application of the extended simulation in a real-world engineering context. The article concludes with an outlook of further potential application areas for such navigation graphs.
机译:对于建筑物的空间设计以及大型活动区域的布局,未来用户的人群行为起着重要作用。设计工程师必须确保避免潜在的紧急情况,例如行人拥挤的人群,以保证使用者的完整性,安全性和舒适性。为此,已经开发了计算行人动力学仿真,并且在实践中越来越多地使用它。但是,大多数可用的仿真系统都依赖于相当简单的行人导航模型,该模型仅以有限的方式反映了人类的行为。本文通过将导航图层作为不同路由算法的基础来扩展微观模型,从而为增强行人仿真模型做出了贡献。本文提出了一种自动生成空间嵌入图的高级方法,该方法一方面尽可能稀疏,另一方面又足够详细,可以用作导航基础。对三种不同的行人类型进行了建模:具有良好本地知识的行人,具有部分本地知识的行人和没有任何本地知识的行人。详细讨论了相应的算法。为了说明此方法如何改善模拟结果,给出了一个示例场景,以演示使用和不使用此处构造的图形时结果之间的差异。另一个示例显示了扩展仿真在实际工程环境中的应用。本文最后总结了此类导航图的其他潜在应用领域。

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