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Titel:

Bayesian Pose Graph Optimization via Bingham Distributions and Tempered Geodesic MCMC

Dokumenttyp:
Zeitschriftenaufsatz
Autor(en):
Birdal, T.; Simsekli, U.; Eken, M. O.; Ilic, S.
Abstract:
We introduce Tempered Geodesic Markov Chain Monte Carlo (TG-MCMC) algorithm for initializing pose graph optimization problems, arising in various scenarios such as SFM (structure from motion) or SLAM (simultaneous localization and mapping). TG-MCMC is first of its kind as it unites asymptotically global non-convex optimization on the spherical manifold of quaternions with posterior sampling, in order to provide both reliable initial poses and uncertainty estimates that are informative about the...     »
Stichworte:
CAMP,CAMPComputerVision,ComputerVision,ProjectPointClouds,NIPS,NIPS2018,Reconstruction,3DReconstruction
Zeitschriftentitel:
arXiv preprint arXiv:1805.12279
Jahr:
2018
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