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Enhancement of Automatic Incident Detection Algorithms for Singapore's Central Expressway

机译:新加坡中央高速公路自动事件检测算法的增强

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摘要

Timely detection of accidents, vehicle breakdowns, and events that obstruct normal traffic flow is critical to successful implementation of an incident management system in combating traffic congestion along expressways. The purpose of this study is to enhance the performance of existing expressway automatic incident detection algorithms in detecting lane-blocking incidents. In this study, a video-based vehicle detector system was used along the Central Expressway (CTE) in Singapore to collect 160 incidents. Two main tasks were carried out with the CTE incident database to investigate factors that influence incident detection performance and to investigate the use of these findings to enhance existing CTE-calibrated incident detection algorithms. Results indicated that the inclusion of preincident traffic flow or occupancy conditions and the use of traffic speed together with occupancy in an algorithm would yield enhanced detection performance. Of the algorithms studied, the dual variable algorithm, which uses traffic speed and occupancy, can consistently give the best detection performance. From an efficiency perspective, there were no significant changes in time lag in the detection of an incident A comparative evaluation suggested that the occupancy-based algorithms were generally more effective than the flow-based algorithms in detecting incidents.
机译:及时发现事故,车辆故障和阻碍正常交通流量的事件,对于成功实施事故管理系统来应对高速公路沿线的交通拥堵至关重要。本研究的目的是增强现有高速公路自动事件检测算法在检测车道阻塞事件方面的性能。在这项研究中,沿新加坡中央高速公路(CTE)使用了基于视频的车辆检测器系统,以收集160起事件。使用CTE事件数据库执行了两项主要任务,以调查影响事件检测性能的因素,并研究使用这些发现来增强现有的CTE校准的事件检测算法。结果表明,在算法中包括事前交通流量或占用条件以及使用交通速度和占用率将提高检测性能。在所研究的算法中,使用交通速度和占用率的双变量算法可以始终如一地提供最佳的检测性能。从效率的角度来看,事件检测中的时间延迟没有显着变化。一项比较评估表明,基于占用率的算法通常比基于流的算法更有效地检测事件。

著录项

  • 来源
    《Transportation Research Record》 |2005年第1923期|p.144-152|共9页
  • 作者

    Chin Long Mak; H. S. L. Fan;

  • 作者单位

    Center for Transportation Studies, School of Civil and Environmental Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 交通运输;
  • 关键词

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