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Shape grammar parsing via Reinforcement Learning
2011
CVPR 2011
We address shape grammar parsing for facade segmentation using Reinforcement Learning (RL). Shape parsing entails simultaneously optimizing the geometry and the topology (e.g. number of floors) of the facade, so as to optimize the fit of the predicted shape with the responses of pixel-level 'terminal detectors'. We formulate this problem in terms of a Hierarchical Markov Decision Process, by employing a recursive binary split grammar. This allows us to use RL to efficiently find the optimal
doi:10.1109/cvpr.2011.5995319
dblp:conf/cvpr/TeboulKSKP11
fatcat:2ccykpz625gotmkw5ovyat22ta