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Evolution-Based Vision Algorithm with Fuzzy Fitness Function for Obstacle Detection
Acte de colloque   Open Access

Evolution-Based Vision Algorithm with Fuzzy Fitness Function for Obstacle Detection

Haythem Ghazouani, Tagina Moncef et René Zapata
1st International Conference on Metaheuristics and Nature Inspired Computing, pp.51-52
META: Metaheuristics and Nature Inspired Computing (Djerba, Tunisia, 27/10/2010–31/10/2010)
19/11/2010

Résumé

Parisian evolutionary approach fuzzy correlation obstacle detection vision
The proposed algorithm is a fast evolution-based vision technique for real-time obstacle detection. Based on the Parisian approach, our algorithm evolves a population of 3D particles which constitutes a three-dimensional representation of the scene. Evolution is controlled by a fuzzy fitness function able to deal with uncertain camera measurements, and uses classical evolutionary operators. The result of the algorithm is a set of 3D particles gathered on the surfaces of obstacles.

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