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Journal article ยท Preprint article

Implicit methods for equation-free analysis: convergence results and analysis of emergent waves in microscopic traffic models

From

Department of Applied Mathematics and Computer Science, Technical University of Denmark1

Dynamical Systems, Department of Applied Mathematics and Computer Science, Technical University of Denmark2

University of Exeter3

AKAD University4

Toyota Central Research & Development Laboratories, Inc.5

We introduce a general formulation for an implicit equation-free method in the setting of slow-fast systems. First, we give a rigorous convergence result for equation-free analysis showing that the implicitly defined coarse-level time stepper converges to the true dynamics on the slow manifold within an error that is exponentially small with respect to the small parameter measuring time scale separation.

Second, we apply this result to the idealized traffic modeling problem of phantom jams generated by cars with uniform behavior on a circular road. The traffic jams are waves that travel slowly against the direction of traffic. Equation-free analysis enables us to investigate the behavior of the microscopic traffic model on a macroscopic level.

The standard deviation of cars' headways is chosen as the macroscopic measure of the underlying dynamics such that traveling wave solutions correspond to equilibria on the macroscopic level in the equation-free setup. The collapse of the traffic jam to the free flow then corresponds to a saddle-node bifurcation of this macroscopic equilibrium.

We continue this bifurcation in two parameters using equation-free analysis.

Language: English
Publisher: Society for Industrial and Applied Mathematics
Year: 2014
Pages: 1202-1238
ISSN: 15360040
Types: Journal article and Preprint article
DOI: 10.1137/130913961
ORCIDs: Starke, Jens

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