Incorporating Traffic Control and Safety Hardware Performance Functions into Risk-based Highway Safety Analysis

Traffic control and safety hardware such as traffic signs, lighting, signals, pavement markings, guardrails, barriers, and crash cushions form an important and inseparable part of highway infrastructure affecting safety performance. Significant progress has been made in recent decades to develop saf...

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Bibliographic Details
Main Authors: Zongzhi Li, Hoang Dao, Harshingar Patel, Yi Liu, Bei Zhou
Format: Article
Language:English
Published: University of Zagreb, Faculty of Transport and Traffic Sciences 2017-04-01
Series:Promet (Zagreb)
Subjects:
Online Access:https://traffic.fpz.hr/index.php/PROMTT/article/view/2041
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spelling doaj-070f39b7d52941e4a17ae30f50f8dcba2020-11-25T00:35:52ZengUniversity of Zagreb, Faculty of Transport and Traffic SciencesPromet (Zagreb)0353-53201848-40692017-04-0129214315310.7307/ptt.v29i2.20412041Incorporating Traffic Control and Safety Hardware Performance Functions into Risk-based Highway Safety AnalysisZongzhi LiHoang DaoHarshingar PatelYi LiuBei ZhouTraffic control and safety hardware such as traffic signs, lighting, signals, pavement markings, guardrails, barriers, and crash cushions form an important and inseparable part of highway infrastructure affecting safety performance. Significant progress has been made in recent decades to develop safety performance functions and crash modification factors for site-specific crash predictions. However, the existing models and methods lack rigorous treatments of safety impacts of time-deteriorating conditions of traffic control and safety hardware. This study introduces a refined method for computing the Safety Index (SI) as a means of crash predictions for a highway segment that incorporates traffic control and safety hardware performance functions into the analysis. The proposed method is applied in a computation experiment using five-year data on nearly two hundred rural and urban highway segments. The root-mean square error (RMSE), Chi-square, Spearman’s rank correlation, and Mann-Whitney U tests are employed for validation.https://traffic.fpz.hr/index.php/PROMTT/article/view/2041traffic controlsafety hardwaresafety performance functionhighway safetyrisk analysis
collection DOAJ
language English
format Article
sources DOAJ
author Zongzhi Li
Hoang Dao
Harshingar Patel
Yi Liu
Bei Zhou
spellingShingle Zongzhi Li
Hoang Dao
Harshingar Patel
Yi Liu
Bei Zhou
Incorporating Traffic Control and Safety Hardware Performance Functions into Risk-based Highway Safety Analysis
Promet (Zagreb)
traffic control
safety hardware
safety performance function
highway safety
risk analysis
author_facet Zongzhi Li
Hoang Dao
Harshingar Patel
Yi Liu
Bei Zhou
author_sort Zongzhi Li
title Incorporating Traffic Control and Safety Hardware Performance Functions into Risk-based Highway Safety Analysis
title_short Incorporating Traffic Control and Safety Hardware Performance Functions into Risk-based Highway Safety Analysis
title_full Incorporating Traffic Control and Safety Hardware Performance Functions into Risk-based Highway Safety Analysis
title_fullStr Incorporating Traffic Control and Safety Hardware Performance Functions into Risk-based Highway Safety Analysis
title_full_unstemmed Incorporating Traffic Control and Safety Hardware Performance Functions into Risk-based Highway Safety Analysis
title_sort incorporating traffic control and safety hardware performance functions into risk-based highway safety analysis
publisher University of Zagreb, Faculty of Transport and Traffic Sciences
series Promet (Zagreb)
issn 0353-5320
1848-4069
publishDate 2017-04-01
description Traffic control and safety hardware such as traffic signs, lighting, signals, pavement markings, guardrails, barriers, and crash cushions form an important and inseparable part of highway infrastructure affecting safety performance. Significant progress has been made in recent decades to develop safety performance functions and crash modification factors for site-specific crash predictions. However, the existing models and methods lack rigorous treatments of safety impacts of time-deteriorating conditions of traffic control and safety hardware. This study introduces a refined method for computing the Safety Index (SI) as a means of crash predictions for a highway segment that incorporates traffic control and safety hardware performance functions into the analysis. The proposed method is applied in a computation experiment using five-year data on nearly two hundred rural and urban highway segments. The root-mean square error (RMSE), Chi-square, Spearman’s rank correlation, and Mann-Whitney U tests are employed for validation.
topic traffic control
safety hardware
safety performance function
highway safety
risk analysis
url https://traffic.fpz.hr/index.php/PROMTT/article/view/2041
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AT hoangdao incorporatingtrafficcontrolandsafetyhardwareperformancefunctionsintoriskbasedhighwaysafetyanalysis
AT harshingarpatel incorporatingtrafficcontrolandsafetyhardwareperformancefunctionsintoriskbasedhighwaysafetyanalysis
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