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Road marking extraction using a model&data-driven RJ-MCMC

  • Université Paris-Est

Résultats de recherche: Contribution à un journalArticle de conférenceRevue par des pairs

Résumé

We propose an integrated bottom-up/top-down approach to road-marking extraction from image space. It is based on energy minimization using marked point processes. A generic road marking object model enable us to define universal energy functions that handle various types of road-marking objects (dashed-lines, arrows, characters, etc.). A RJ-MCMC sampler coupled with a simulated annealing is applied to find the configuration corresponding to the minimum of the proposed energy. We used input data measurements to guide the sampler process (data driven RJ-MCMC). The approach is enhanced with a model-driven kernel using preprocessed autocorrelation and inter-correlation of road-marking templates, in order to resolve type and transformation ambiguities. The method is generic and can be applied to detect road-markings in any orthogonal view produced from optical sensors or laser scanners from aerial or terrestrial platforms. We show the results an ortho-image computed from ground-based laser scanning.

langue originaleAnglais
Pages (de - à)47-54
Nombre de pages8
journalISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
Volume2
Numéro de publication3W4
Les DOIs
étatPublié - 12 mars 2015
Modification externeOui
EvénementJoint ISPRS workshops on Photogrammetric Image Analysis, PIA 2015 and High Resolution Earth Imaging for Geospatial Information, HRIGI 2015 - Munich, Allemagne
Durée: 25 mars 201527 mars 2015

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