Hierarchical overlapped growing neural gas networks with applications to video shot detection and motion characterization

Xiang Guang Cao, Ponnuthurai Nagaratnam Suganthan · 2003

This paper describes a hierarchical overlapped architecture (HOGNG) based upon the growing neural gas (GNG) network. The proposed architecture combines the unsupervised and supervised learning schemes in GNG. This novel network model was used to perform automatic video shot detection and motion characterization. Experimental results are presented to show the good classification accuracy of the proposed algorithm on real MPEG video sequences.

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