利用强化学习和数字孪生优化MLK智能走廊沿线的交通控制器

Abhilasha J. Saroj, Toan V. Trant, Angshuman Guin, M. Hunter, Mina Sartipi
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引用次数: 3

摘要

随着智能交通系统(ITS)、传感器和计算资源的进步,世界各地的一些城市正在投资开发智能/互联走廊。这些走廊配备了先进的传感器,可提供来自走廊的实时、高分辨率数据,并实现车对基础设施(V2I)和车对车(V2V)通信。本研究的目的是优化美国田纳西州查塔努加市的MLK智能走廊的信号配时,考虑燃料和能源消耗(以燃油消耗十字路口控制性能指数EcoPI表示,该指数决定了交通管制人员造成的停车和延误造成的多余燃料消耗)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing Traffic Controllers along the MLK Smart Corridor Using Reinforcement Learning and Digital Twin
With advancements in Intelligent Transportation Systems (ITS), sensors, and computing resources, several cities across the world are investing in the development of smart/connected corridors. These corridors are being equipped with advanced sensors that provide real-time, high-resolution data from the corridor and enable vehicle-to-infrastructure (V2I) and vehicle-to-vehicle (V2V) communications. The objective of this study is to optimize signal timings for one such smart corridor – MLK Smart Corridor – in Chattanooga, Tennessee, USA with respect to fuel and energy consumption (represented by Fuel Consumption Intersection Control Performance Index, EcoPI, that determines the excess fuel consumption due to stops and delays caused by traffic controllers).
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