Tracking and predicting a network traffic process

Tracking and predicting a network traffic process

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Article ID: iaor19972392
Country: Netherlands
Volume: 13
Issue: 1
Start Page Number: 51
End Page Number: 61
Publication Date: Jan 1997
Journal: International Journal of Forecasting
Authors: , ,
Keywords: forecasting: applications
Abstract:

This article deals with the problem of real-time modelling and prediction of motorway traffic. Conditional independence relationships and ideas of Bayesian forecasting are proposed leading to the employment of dynamic state-space models, with optimal state estimation coming from the Kalman filter. Models, based on classical differential equations, which incorporate representations of the network topology are derived and are implemented in a state-space framework. The model is applied to several road networks in The Netherlands from which encouraging preliminary results are obtained.

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