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High performance Data Driven Agent-based Modeling Framework for Simulation of Commute Mode Choices in Metropolitan Area

机译:基于高性能数据驱动代理的大城市通勤模式选择仿真建模框架

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Active transportation, human-powered transportation modes such as walking and bicycling, not only reduces the carbon footprint from the transportation sector but also promotes healthy living by offering opportunities for people to build physical activity into their daily routine. To encourage active transportation through urban planning and public campaigns, it is of significant importance to infer factors that substantially influence commuters in their transportation mode choice process. This necessitates a flexible and repeatable tool that can evaluate how a policy is perceived by individual commuters and convert their decisions into macro level understanding. This paper introduces one such effort that is specifically designed for studies of transportation mode choices in metropolitan areas. It provides results from a high-resolution data driven simulation based on high performance computing implementation of the agent-based model framework for home-to-work commute trips. The framework uses a graph-partition based technique that can leverage the interaction structure of agents within a geographic proximity and can boost the simulation execution time. Further, based on a flexible design, it can run ABM with different levels of computing resources-from multi core workstations to an HPC grid. The framework has been tested on the Titan Cray XK7 supercomputer of the Oak Ridge Leadership Computing Facility.
机译:主动运输,步行和骑自行车等人力运输方式,不仅减少了运输部门的碳足迹,而且还通过为人们提供将体育活动纳入其日常生活的机会来促进健康生活。为了通过城市规划和公共运动鼓励积极的交通,推断对通勤者的交通方式选择过程产生重大影响的因素非常重要。这就需要一个灵活且可重复的工具,该工具可以评估单个通勤者对政策的看法,并将他们的决定转化为对宏观水平的理解。本文介绍了一种专门为研究都市地区的交通方式选择而设计的方法。它提供了基于数据的高分辨率驱动模拟的结果,该模拟基于针对家庭上下班通勤旅行的基于代理的模型框架的高性能计算实现。该框架使用基于图分区的技术,该技术可以利用地理邻近范围内代理的交互结构,并可以延长仿真执行时间。此外,基于灵活的设计,它可以使用从多核工作站到HPC网格的不同级别的计算资源运行ABM。该框架已经在Oak Ridge Leadership Computing Facility的Titan Cray XK7超级计算机上进行了测试。

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