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Random Regret-Minimization Model for Emergency Resource Preallocation at Freeway Accident Black Spots

机译:高速公路事故黑点应急资源预借贷最小化模型

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摘要

The preallocation of emergency resources is a mechanism increasing preparedness for uncertain traffic accidents under different weather conditions. This paper introduces the concept of accident probability of black spots and an improved accident frequency method to identify accident black spots and obtain the accident probability. At the same time, we propose a three-stage random regret-minimization (RRM) model to minimize the regret value of the attribute of overall response time, cost, and demand, which allocates limited emergency resources to more likely to happen accident spots. Due to the computational complexity of our model, a genetic algorithm is developed to solve a large-scale instance of the problem. A case study focuses on three-year rainy accidents’ data in Weifang, Linyi, and Rizhao of China to test the correctness and validity of the application of the model.
机译:预先利用紧急资源是一种在不同天气条件下不确定交通事故的准备机制。本文介绍了黑点事故概率的概念及改进的事故频率方法,以识别事故黑点并获得事故概率。与此同时,我们提出了一个三阶段随机遗憾 - 最小化(RRM)模型,以最大限度地减少整体响应时间,成本和需求的属性的遗憾值,该成本和需求分配有限的应急资源,以更容易发生意外斑点。由于我们模型的计算复杂性,开发了一种遗传算法来解决问题的大规模实例。案例研究侧重于潍坊,临沂和日照的三年多雨事故数据,以测试模型应用的正确性和有效性。

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