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Spice: a cognitive agent framework for computational crowd simulations in complex environments

机译:Spice:用于复杂环境中的计算人群模拟的认知主体框架

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Pedestrian behavior is an omnipresent topic, but the underlying cognitive processes and the various influences on movement behavior are still not fully understood. Nonetheless, computational simulations that predict crowd behavior are essential for safety, economics, and transport. Contemporary approaches of pedestrian behavior modeling focus strongly on the movement aspects and seldom address the rich body of research from cognitive science. Similarly, general purpose cognitive architectures are not suitable for agents that can move in spatial domains because they do not consider the profound findings of pedestrian dynamics research. Thus, multi-agent simulations of crowd behavior that strongly incorporate both research domains have not yet been fully realized. Here, we propose the cognitive agent framework Spice. The framework provides an approach to structure pedestrian agent models by integrating concepts of pedestrian dynamics and cognition. Further, we provide a model that implements the framework. The model solves spatial sequential choice problems in sufficient detail, including movement and cognition aspects. We apply the model in a computer simulation and validate the Spice approach by means of data from an uncontrolled field study. The Spice framework is an important starting point for further research, as we believe that fostering interdisciplinary modeling approaches will be highly beneficial to the field of pedestrian dynamics.
机译:行人行为是一个无所不在的话题,但是潜在的认知过程和对运动行为的各种影响仍然没有被完全理解。但是,预测人群行为的计算模拟对于安全性,经济性和运输而言至关重要。当代行人行为建模方法主要关注运动方面,很少涉及认知科学领域的丰富研究。同样,通用认知架构也不适合可以在空间域中移动的主体,因为它们没有考虑行人动力学研究的深刻发现。因此,尚未完全实现将两个研究领域紧密结合的人群行为的多主体模拟。在这里,我们提出了认知主体框架Spice。该框架提供了一种通过整合行人动力学和认知概念来构造行人代理模型的方法。此外,我们提供了一个实现框架的模型。该模型足够详细地解决了空间顺序选择问题,包括运动和认知方面。我们将模型应用到计算机仿真中,并通过不受控制的现场研究数据验证了Spice方法。 Spice框架是进一步研究的重要起点,因为我们认为,培养跨学科的建模方法将对行人动力学领域非常有益。

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