Publication | Closed Access
Short-term traffic predictions on large urban traffic networks: Applications of network-based machine learning models and dynamic traffic assignment models
77
Citations
15
References
2015
Year
Unknown Venue
Traffic TheoryEngineeringMachine LearningTraffic FlowNetwork AnalysisIntelligent SystemsIntelligent Traffic ManagementData ScienceTraffic PredictionSystems EngineeringTraffic SimulationTransportation EngineeringTraffic Assignment ModelsShort-term Traffic PredictionsImplicit ModelsPredictive AnalyticsComputer ScienceNetwork ModelingForecastingTraffic ModelTransportation Systems
The paper discusses the issues to face in applications of short-term traffic predictions on urban road networks and the opportunities provided by explicit and implicit models. Different specifications of Bayesian Networks and Artificial Neural Networks are applied for prediction of road link speed and are tested on a large floating car data set. Moreover, two traffic assignment models of different complexity are applied on a sub-area of the road network of Rome and validated on the same floating car data set.
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