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Operating cost and quality of service optimization for multi-vehicle-type timetabling for urban bus systems

机译:城市公交系统多车式时间表的运营成本和服务质量优化

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In this paper, we propose a timetable optimization method based on a Multiobjective Cellular genetic algorithm to tackle the multiple vehicle-type problems. The objective is to determine bus assignment in each time period to optimize a quality of service and transport operating cost. The quality of service, represented by the unsatisfied user demand, guarantees a good experience in terms of comfort, safety, availability, improving effects on how passengers perceive wait times. The operational cost contributes to reducing the traffic jams, the flux of unfilled vehicles and fuel consumption, helping to diminish the negative environmental impact. With the operation data of Los Angeles bus route 217 northbound, at peak and off-peak hours, we obtain a set of non-dominated solutions that represent different assignments of vehicles covering a given set of trips in a defined route. The experimental analysis based on several quality indicators, like Hypervolume, Spread, ε-Indicator, and Set Coverage, indicates that our algorithm is a competitive technique comparing with well-known techniques presented in the literature.
机译:在本文中,我们提出了一种基于多目标细胞遗传算法的时间表优化方法来解决多种车辆类型的问题。目的是确定每个时间段内的公交车分配,以优化服务质量和运输运营成本。以用户不满意的需求为代表的服务质量保证了在舒适性,安全性,可用性方面的良好体验,并改善了乘客对等待时间的感觉。运营成本有助于减少交通堵塞,空车通行量和燃料消耗,从而有助于减少负面的环境影响。利用在高峰和非高峰时间向北行驶的洛杉矶公交217号路线的运行数据,我们获得了一组非支配的解决方案,这些解决方案代表了在指定路线上覆盖给定行程的车辆的不同分配。基于一些质量指标的实验分析,例如超量,价差,ε-指标和集合覆盖率,表明我们的算法与文献中提出的众所周知的技术相比是一种竞争技术。

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