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Parameter Estimation of Social Forces in Crowd Dynamics Models via a Probabilistic Method

Published 21 Mar 2014 in physics.data-an, cs.SI, math.PR, math.ST, physics.soc-ph, and stat.TH | (1403.5361v1)

Abstract: Focusing on a specific crowd dynamics situation, including real life experiments and measurements, our paper targets a twofold aim: (1) we present a Bayesian probabilistic method to estimate the value and the uncertainty (in the form of a probability density function) of parameters in crowd dynamic models from the experimental data; and (2) we introduce a fitness measure for the models to classify a couple of model structures (forces) according to their fitness to the experimental data, preparing the stage for a more general model-selection and validation strategy inspired by probabilistic data analysis. Finally, we review the essential aspects of our experimental setup and measurement technique.

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