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使用随机多智能体模拟对新冠病毒及未来病原体进行生成式设计。

Generative design for COVID-19 and future pathogens using stochastic multi-agent simulation.

作者信息

Lee Bokyung, Lau Damon, Mogk Jeremy P M, Lee Michael, Bibliowicz Jacobo, Goldstein Rhys, Tessier Alexander

机构信息

Autodesk Research, 661 University Ave, West Tower, Ste. 200, Toronto, M5G 1MA, ON, Canada.

Autodesk Research, 19 Morris Ave, Brooklyn Navy Yard, Building 128, Brooklyn, 11205, NY, USA.

出版信息

Sustain Cities Soc. 2023 Oct;97:104661. doi: 10.1016/j.scs.2023.104661. Epub 2023 Jun 1.

Abstract

We propose a generative design workflow that integrates a stochastic multi-agent simulation with the intent of helping building designers reduce the risk posed by COVID-19 and future pathogens. Our custom simulation randomly generates activities and movements of individual occupants, tracking the amount of virus transmitted through air and surfaces from contagious to susceptible agents. The stochastic nature of the simulation requires that many repetitions be performed to achieve statistically reliable results. Accordingly, a series of initial experiments identified parameter values that balanced the trade-off between computational cost and accuracy. Applying generative design to a case study based on an existing office space reduced the predicted transmission by around 10% to 20% compared with a baseline set of layouts. Additionally, a qualitative examination of the generated layouts revealed design patterns that may reduce transmission. Stochastic multi-agent simulation is a computationally expensive yet plausible way to generate safer building designs.

摘要

我们提出了一种生成式设计工作流程,该流程集成了随机多智能体模拟,旨在帮助建筑设计师降低由COVID-19和未来病原体带来的风险。我们的定制模拟随机生成个体居住者的活动和移动,追踪从感染者到易感染者通过空气和表面传播的病毒量。模拟的随机性要求进行多次重复以获得统计上可靠的结果。因此,一系列初步实验确定了平衡计算成本和准确性之间权衡的参数值。与一组基线布局相比,将生成式设计应用于基于现有办公空间的案例研究,可将预测的传播率降低约10%至20%。此外,对生成布局的定性检查揭示了可能减少传播的设计模式。随机多智能体模拟是一种计算成本高昂但合理的生成更安全建筑设计的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e79/10234365/759e68db85ac/gr1_lrg.jpg

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