Invariant Smoothing on Lie Groups

Abstract : In this paper we propose a (non-linear) smoothing algorithm for group-affine observation systems, a recently introduced class of estimation problems on Lie groups that bear a particular structure. As most non-linear smoothing methods, the proposed algorithm is based on a maximum a posteriori estimator, determined by optimization. But owing to the specific properties of the considered class of problems, the involved linearizations are proved to have a form of independence with respect to the current estimates, leveraged to avoid (partially or sometimes totally) the need to relinearize. The method is validated on a robot localization example, both in simulations and on real experimental data.
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Contributeur : Paul Chauchat <>
Soumis le : mercredi 7 mars 2018 - 16:33:10
Dernière modification le : lundi 12 novembre 2018 - 11:02:04
Document(s) archivé(s) le : vendredi 8 juin 2018 - 14:42:10


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  • HAL Id : hal-01725847, version 1
  • ARXIV : 1803.02076



Paul Chauchat, Axel Barrau, Silvere Bonnabel. Invariant Smoothing on Lie Groups. 2018. 〈hal-01725847〉



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