CFART: a multi-resolutional adaptive resonance system

Hai-Lung Hung, Hong-Yuan Mark Liao, Chwen-Jye Sze, Shing-Jong Lin, Wei‐Chung Lin, Kuo‐Chin Fan · 2002

In this paper, a cascade fuzzy ART (CFART) network is developed and applied to 3D object recognition. The proposed CFART network contains multiple layers which can express a hierarchical representation of an input pattern. The learning processes of the proposed network are unsupervised and self-organizing, which include a top-down search process and a bottom-up learning process. The proposed CFART can accept both binary and analog inputs. With fast learning and categorization capabilities, the proposed network is capable of acting as an extensible database, providing a multi-resolutional representation of 3D objects. In the experiments, we use superquadrics as a demonstration example.

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