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PROBABILISTIC MODELS FOR SHORT TERM TRAFFIC CONDITIONS PREDICTION
Details
Given the dynamic nature of freeway traffic, this study proposed two stochastic model approaches, Hidden Markov Model (HMM) and One-Step Stochastic Model, for short-term traffic prediction during peak periods. The HMM approach defines traffic states in a two dimensional space using both first and second order statistics of traffic parameters. For a sequence of traffic speed observations, the HMMs estimated the most likely corresponding traffic states sequence. The one-step stochastic model uses traffic speed as the traffic condition indicator. The cumulative negative/positive transition probabilities and expected values were derived from the transition probabilities. The conditional expected value of the most likely transition trend is taken as the predicted speed. Relatively small prediction errors were obtained for both approaches, and the model performance was not remarkably affected by location, travel direction, and peak period time. It is concluded that the stochastic properties are the characteristics of freeway traffic by nature and the stochastic approaches are appropriate for short-term traffic condition prediction during peak periods.
Autorentext
Ms. Qi enrolled in the doctoral program in civil engineering at Louisiana State University in the fall 2004. During her study at LSU, she finished a master degree in applied statistics. Ms. Qi's research interests lie in the broad area of transportation engineering with a specific interest in traffic operation, safety, and pavement management.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783639264937
- Sprache Englisch
- Genre Allgemeines & Lexika
- Größe H220mm x B220mm
- Jahr 2013
- EAN 9783639264937
- Format Kartonierter Einband (Kt)
- ISBN 978-3-639-26493-7
- Titel PROBABILISTIC MODELS FOR SHORT TERM TRAFFIC CONDITIONS PREDICTION
- Autor Yan Qi , Sherif Ishak
- Untertitel The application of Hidden Markov Model in short term traffic condition prediction
- Herausgeber VDM Verlag Dr. Müller e.K.
- Anzahl Seiten 172