首页> 外文会议>International Conference on Computer Aided Systems Theory(EUROCAST 2007); 20070212-16; Las Palmas de Gran Canaria(ES) >Study of Correlation Among Several Traffic Parameters Using Evolutionary Algorithms: Traffic Flow, Greenhouse Emissions and Network Occupancy
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Study of Correlation Among Several Traffic Parameters Using Evolutionary Algorithms: Traffic Flow, Greenhouse Emissions and Network Occupancy

机译:使用进化算法研究交通流量,温室气体排放和网络占用率等几种交通参数之间的相关性

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During the last two years we have been working on the optimisation of traffic lights cycles. We designed an evolutionary, distributed architecture to do this. This architecture includes a Genetic Algorithm for the optimisation. So far we have performed a single criterion optimisation - the total volume of vehicles that left the network once the simulation finishes. Our aim is to extend our architecture towards a multicriteria optimisation. We are considering Network Occupancy and Greenhouse Emissions as suitable candidates for our purpose. Throughout this work we will share a statistical based study about the two new criteria that will help us to decide whether to include them or not in the fitness function of our system. To do so we have used data from two real world traffic networks.
机译:在过去的两年中,我们一直在致力于交通信号灯周期的优化。为此,我们设计了一种演化的分布式体系结构。该架构包括用于优化的遗传算法。到目前为止,我们已经执行了单个标准优化-仿真完成后离开网络的车辆总数。我们的目标是将我们的体系结构扩展到多准则优化。我们正在考虑将“网络占用率”和“温室气体排放量”作为适合我们目的的候选人。在整个工作中,我们将就两个新标准共享基于统计的研究,这将有助于我们确定是否将其包括在系统的适应度函数中。为此,我们使用了来自两个现实世界交通网络的数据。

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