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المؤلفVaghefi, Seyed A.
المؤلفJafari, Mohsen A.
المؤلفJafari, Bobby
المؤلفRezvani, Amir Zahiredin
المؤلفGang, Tao
المؤلفAl-Khalifa, Khalifa Nasser M.N.
تاريخ الإتاحة2024-08-01T10:39:09Z
تاريخ النشر2014
اسم المنشور21st World Congress on Intelligent Transport Systems, ITSWC 2014: Reinventing Transportation in Our Connected World
المصدرScopus
معرّف المصادر الموحدhttp://dx.doi.org/10.13140/2.1.1110.4325
معرّف المصادر الموحدhttp://hdl.handle.net/10576/57379
الملخصThis paper presents development and application of a statistical crash prediction model for various types of crashes in Chinese roadway segments. The model is constructed based upon a Negative Binomial Generalized Linear Model and is applied for a large amount of data collected from a wide range of urban, suburban and rural areas. The Negative Binomial Regression proposes a link function to fit a set of roadway characteristics data and traffic flow with crash frequency and at the same time handles the overdispersion problem. Through a real-world example, the performance of the model is evaluated and practical issues regarding input data quality issues and model validation are discussed. The results reveal that the proposed model can appropriately predict the crash data and enables safety traffic engineers to identify and prioritize the high crash locations and diagnose the roadway characteristics, which significantly affect the crash frequencies.
اللغةen
الناشرIntelligent Transport Systems (ITS)
الموضوعCalibration
Empirical Bayesian
Negative Binomial Regression
Safety performance function
العنوانA model-based crash prediction technique for Chinese roadway segments
النوعConference
dc.accessType Abstract Only


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