Authors
Fan Jiang, Ying Wu, Aggelos K Katsaggelos
Publication date
2008/3/31
Conference
2008 IEEE International Conference on Acoustics, Speech and Signal Processing
Pages
2129-2132
Publisher
IEEE
Description
Clustering-based approaches for abnormal video event detection have been proven to be effective in the recent literature. Based on the framework proposed in our previous work [1], we have developed in this paper a new strategy for unsupervised trajectory clustering. More specifically, an information-based trajectory dissimilarity measure is proposed, based on the Bayesian information criterion (BIC). In order to minimize BIC, the agglomerative hierarchical clustering is applied using a 2-depth greedy search process. This strategy achieves better clustering results compared to the traditional 1-depth greedy search. The increased computational complexity is addressed with several bounds on the trajectory dissimilarity.
Total citations
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Scholar articles
F Jiang, Y Wu, AK Katsaggelos - 2008 IEEE International Conference on Acoustics …, 2008