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System architecture of a decision support system for freeway incident management in Republic of Korea

机译:韩国高速公路事故管理决策支持系统的系统架构

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摘要

Traffic Management Centers play a vital role in efficient functioning of freeway network in the post-incident scenario. As per present practice in Korea, the traffic managers use a heuristic approach for incident analysis based on their experience of similar scenarios. However, this approach induces uncertainty thereby reducing the overall effectiveness of the subsequent incident management and rescue operations. This paper proposes a decision support system to account for these shortcomings. We name our system as 'FIAS' -Freeway Incident Analysis System. The novel idea presented in this paper is the use of historical, real-time and spatial data simultaneously to forecast post-incident traffic flows on a microscopic simulation platform, Cellular Automata. FIAS incorporate two additional rules in the conventional model to depict more realistic incident flow characteristics. This paper focuses on the system architecture of the model and tests its performance by comparing its predicted values with a real incident data. The evaluation results confirm the validity of FIAS as it can model the time dependent microstructure of traffic flows with significant accuracy.
机译:交通事故发生后,交通管理中心在高速公路网络的有效运行中起着至关重要的作用。根据韩国目前的做法,交通管理人员根据他们在类似情况下的经验,使用启发式方法进行事件分析。但是,这种方法引起不确定性,从而降低了后续事件管理和救援操作的整体效率。本文提出了一个决策支持系统来弥补这些缺点。我们将我们的系统命名为“ FIAS”-高速公路事件分析系统。本文提出的新颖思想是在微观模拟平台Cellular Automata上同时使用历史,实时和空间数据来预测事后交通流量。 FIAS在常规模型中并入了两个附加规则,以描述更现实的事件流特征。本文着重于模型的系统架构,并通过将其预测值与实际事件数据进行比较来测试其性能。评估结果证实了FIAS的有效性,因为它可以对交通流的时间依赖性微观结构进行建模,并且准确性很高。

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