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Computational Intelligence in Urban Traffic Signal Control: A Survey

机译:城市交通信号控制中的计算智能:一项调查

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Urban transportation system is a large complex nonlinear system. It consists of surface-way networks, freeway networks, and ramps with a mixed traffic flow of vehicles, bicycles, and pedestrians. Traffic congestions occur frequently, which affect daily life and pose all kinds of problems and challenges. Alleviation of traffic congestions not only improves travel safety and efficiencies but also reduces environmental pollution. Among all the solutions, traffic signal control (TSC) is commonly thought as the most important and effective method. TSC algorithms have evolved quickly, especially over the past several decades. As a result, several TSC systems have been widely implemented in the world, making TSC a major component of intelligent transportation system (ITS). In TSC and ITS, many new technologies can be adopted. Computational intelligence (CI), which mainly includes artificial neural networks, fuzzy systems, and evolutionary computation algorithms, brings flexibility, autonomy, and robustness to overcome nonlinearity and randomness of traffic systems. This paper surveys some commonly used CI paradigms, analyzes their applications in TSC systems for urban surface-way and freeway networks, and introduces current and potential issues of control and management of recurrent and nonrecurrent congestions in traffic networks, in order to provide valuable references for further research and development.
机译:城市交通系统是一个大型的复杂非线性系统。它由地面道路网络,高速公路网络和带有车辆,自行车和行人的混合交通流的坡道组成。交通拥堵经常发生,影响到人们的日常生活,并带来各种问题和挑战。缓解交通拥堵不仅可以提高出行安全性和效率,还可以减少环境污染。在所有解决方案中,交通信号控制(TSC)通常被认为是最重要和最有效的方法。 TSC算法发展迅速,尤其是在过去的几十年中。结果,世界范围内已经广泛实施了多个TSC系统,使TSC成为智能交通系统(ITS)的主要组成部分。在TSC和ITS中,可以采用许多新技术。计算智能(CI)主要包括人工神经网络,模糊系统和进化计算算法,具有灵活性,自治性和鲁棒性,可克服交通系统的非线性和随机性。本文对一些常用的CI范例进行了调查,分析了它们在TSC系统中用于城市地面和高速公路网络的应用,并介绍了当前和潜在的交通网络中经常性和非经常性拥堵的控制和管理问题,以便为以下工作提供有价值的参考:进一步的研究和开发。

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