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A Micro-Meso-Macro Approach to Intelligent Transportation Systems

机译:智能交通系统的微细微宏观方法

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摘要

Despite all the technological advances in the automotive industry and the high instrumentation of road infrastructures, driving a vehicle is still a stressful and polluting operation. In order to achieve a more sustainable use of vehicles, in this paper we propose a three-layered (micro-meso-macro) framework that provides intelligence at different levels of detail of the driving experience. At the micro level, intelligence is provided to the individual vehicle, at the meso level, intelligence is concerned with local clusters of vehicles and group decision making, and at the macro level, intelligence is provided so that system-wide goals are achieved. We illustrate each of these levels with a particular implementation, although alternative implementations may be used as well. Namely, we use an affective anticipatory architecture for the micro level, a consensus algorithm at the meso level, and a resource allocation mechanism together with electronic institutions for the macro level. We believe that the combination of intelligences at each of the levels may lead to a more efficient and sustainable use of the vehicles and the infrastructure.
机译:尽管汽车工业中已取得了所有技术进步,并且道路基础设施的仪器化程度很高,但驾驶汽车仍然是压力大且污染严重的操作。为了实现更可持续的车辆使用,本文提出了一个三层(微中观宏)框架,该框架可在不同级别的驾驶体验细节上提供智能。在微观级别,为个体车辆提供情报,在中观级别,情报与车辆的本地集群和团队决策有关,而在宏观级别,情报则提供给整个系统目标。尽管可以使用其他替代实现,但我们将通过特定的实现来说明每个级别。即,我们在微观层次上使用情感预期体系结构,在中间层次使用共识算法,在宏观层次使用电子机构的资源分配机制。我们认为,各个级别的情报相结合可能会导致对车辆和基础设施的更有效和可持续的利用。

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