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Intelligent Agent Optimization of Urban Bus Transit System Design

机译:城市公交系统智能代理优化设计

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The transit route network design (TRND) problem seeks a set of bus routes and schedules that is optimal in the sense that it maximizes the utility of an urban bus system for passengers while minimizing operator cost. Because of the computational intractability of the problem, finding an optimal solution for most systems is not possible. Instead, a wide variety of heuristic and meta-heuristic approaches have been applied to the problem to attempt to find near-optimal solutions. This paper presents an optimization system that synthesizes aspects of previous approaches into a scalable, flexible, intelligent agent architecture. This architecture has successfully been applied to other transportation and logistics problems in both research studies and commercial applications. This study shows that this intelligent agent system outperforms previous solutions for both a benchmark Swiss bus network system and the very large bus system in Delhi, India. Moreover, the system produces in a single run a set of Pareto equivalent solutions that allow a transit operator to evaluate the trade-offs between operator costs and passenger costs.
机译:公交路线网络设计(TRND)问题寻求一组最佳的公交路线和时间表,从某种意义上来说,这是最佳的,它可以最大程度地为乘客提供城市公交系统的效用,同时将运营商的成本降至最低。由于问题的计算难点,不可能为大多数系统找到最佳解决方案。取而代之的是,各种各样的启发式和元启发式方法已应用于该问题,以试图找到接近最佳的解决方案。本文提出了一种优化系统,该系统将先前方法的各个方面综合为可扩展,灵活,智能的代理架构。该体系结构已成功应用于研究和商业应用中的其他运输和物流问题。这项研究表明,对于基准的瑞士公交网络系统和印度德里的超大型公交系统,该智能代理系统均优于以前的解决方案。此外,该系统可以在一次运行中产生一组帕累托等效解决方案,使公交运营商能够评估运营商成本与旅客成本之间的权衡。

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