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Semiparametric estimation of plane similarities: application to fast computation of aeronautic loads
Authors:Edouard Fournier  Stéphane Grihon  Thierry Klein
Affiliation:1. Institut de Mathématique UMR5219, Université de Toulouse CNRS, UPS IMT, Toulouse Cedex 9, France;2. Airbus France, Toulouse, France;3. ENAC – Ecole Nationale de l'Aviation Civile, Université de Toulouse, Toulouse, Franceedouard.fournier@airbus.comfournier.e0403@gmail.com"ORCIDhttps://orcid.org/0000-0002-4133-5267;6. Airbus France, Toulouse, France;7. ENAC – Ecole Nationale de l'Aviation Civile, Université de Toulouse, Toulouse, France
Abstract:
In the big data era, it is often needed to resolve the problem of parsimonious data representation. In this paper, the data under study are curves and the sparse representation is based on a semiparametric model. Indeed, we propose an original registration model for noisy curves. The model is built transforming an unknown function by plane similarities. We develop a statistical method that allows to estimate the parameters characterizing the plane similarities. The properties of the statistical procedure are studied. We show the convergence and the asymptotic normality of the estimators. Numerical simulations and a real-life aeronautic example illustrate and demonstrate the strength of our methodology.
Keywords:Semiparametric model  registration of curves  statistical learning of a physical system
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