首页> 外文会议>International Conference on Sensors Models in Remote Sensing Photogrammetry >MODELLING TEMPORAL SCHEDULE OF URBAN TRAINS USING AGENT-BASED SIMULATION AND NSGA2-BASED MULTIOBJECTIVE OPTIMIZATION APPROACHES
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MODELLING TEMPORAL SCHEDULE OF URBAN TRAINS USING AGENT-BASED SIMULATION AND NSGA2-BASED MULTIOBJECTIVE OPTIMIZATION APPROACHES

机译:基于代理的仿真和基于NSGA2的多目标优化方法建模城市列车的时间表

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Increasing distances between locations of residence and services leads to a large number of daily commutes in urban areas. Developing subway systems has been taken into consideration of transportation managers as a response to this huge amount of travel demands. In developments of subway infrastructures, representing a temporal schedule for trains is an important task; because an appropriately designed timetable decreases Total passenger travel times, Total Operation Costs and Energy Consumption of trains. Since these variables are not positively correlated, subway scheduling is considered as a multi-criteria optimization problem. Therefore, proposing a proper solution for subway scheduling has been always a controversial issue. On the other hand, research on a phenomenon requires a summarized representation of the real world that is known as Model. In this study, it is attempted to model temporal schedule of urban trains that can be applied in Multi-Criteria Subway Schedule Optimization (MCSSO) problems. At first, a conceptual framework is represented for MCSSO. Then, an agent-based simulation environment is implemented to perform Sensitivity Analysis (SA) that is used to extract the interrelations between the framework components. These interrelations is then taken into account in order to construct the proposed model. In order to evaluate performance of the model in MCSSO problems, Tehran subway line no. 1 is considered as the case study. Results of the study show that the model was able to generate an acceptable distribution of Pareto-optimal solutions which are applicable in the real situations while solving a MCSSO is the goal. Also, the accuracy of the model in representing the operation of subway systems was significant.
机译:居住地和服务地点之间的距离增加导致城市地区的大量日常通勤。正在考虑到运输管理人员作为对这一大量旅行需求的回应的开发地铁系统。在地铁基础设施的发展中,代表列车的时间时间表是一个重要的任务;由于适当设计的时间表降低了总客运时间,总运营成本和列车的能耗。由于这些变量没有肯定相关,因此地铁调度被认为是多标准优化问题。因此,为地铁调度提出适当的解决方案一直是一个有争议的问题。另一方面,对现象的研究需要总结称为模型的现实世界的代表。在这项研究中,试图模拟城市列车的时间时间表,这些列车可以应用于多标准地铁计划优化(MCSSO)问题。首先,为MCSSO表示概念框架。然后,实现了基于代理的模拟环境以执行用于提取框架组件之间的相互关系的灵敏度分析(SA)。然后考虑这些相互关系以构建所提出的模型。为了评估MCSSO问题模型的性能,德黑兰地铁线号。 1被认为是案例研究。研究结果表明,该模型能够在解决MCSSO的同时,该模型能够在实际情况下可接受的静态最佳解决方案分布,这是目标。此外,代表地铁系统操作的模型的准确性很大。

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