基于小众博弈和智能体仿真的交通政策评估

Hajar Baghcheband, Zafeiris Kokkinogenis, R. Rossetti
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引用次数: 0

摘要

交通拥堵是关系到城市活力和市民福祉的问题。交通系统正在使用各种技术,允许用户适应并对交通方式做出不同的决定。这些系统的修改和完善影响着通勤者的视角和社会福利。本研究将探讨不同交通方式下,道路流均衡对通勤者效用的影响。本文将举例说明一个具有两种交通方式的简单网络,并考虑三种不同的成本政策,以测试强化学习在通勤者关于时间和方式的日常出行决策中的效率。对人工智能体社会进行了模拟,并对结果进行了分析。
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Transportation Policy Evaluation Using Minority Games and Agent-Based Simulation
Traffic congestion is an issue regarding the vitality of cities and the welfare of citizens. Transportation systems are using various technologies to allow users to adapt and make different decisions towards transportation modes. Modification and improvement of these systems affect the commuters’ perspective and social welfare. In this study, the effect of road flow equilibrium on commuters’ utilities with different types of transportation modes will be discussed. A simple network with two modes of transportation will be illustrated and three different cost policies were considered to test the efficiency of reinforcement learning in commuters’ daily trip decision-making regarding time and mode. The artificial society of agents is simulated to analyse the results.
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