Anomalous Event Detection from Surveillance Video: a Smart Way to Understand Video Content - Fan Jiang - Grāmatas - LAP LAMBERT Academic Publishing - 9783844309645 - 2011. gada 15. februāris
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Anomalous Event Detection from Surveillance Video: a Smart Way to Understand Video Content

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Content-based video analysis serves as the cornerstone for many applications: video understanding or summarization, multimedia information retrieval and data mining, etc. In our research, we aim to automatically detect anomalous events from surveillance videos (such as video monitoring traffic flow or pedestrian congestion in public spaces). Conceptually, what constitutes an anomaly varies in different video scenarios and is difficult to be defined in a general case. Our first solution is based on unsupervised clustering of object trajectories and anomalous trajectory identification in a probabilistic framework. Then we extend this solution to an arbitrary time length (any part of a complete trajectory) and multiple objects (multiple trajectories). Furthermore, we solve problems specifically in video scenarios where object trajectories cannot be extracted (e.g., crowd motion analysis). Our contributions include a novel hierarchical clustering algorithm and categorization of anomalous video events by spatiotemporal context.

Mediji Grāmatas     Paperback Book   (Grāmata ar mīksto vāku un līmēto muguru)
Izlaists 2011. gada 15. februāris
ISBN13 9783844309645
Izdevēji LAP LAMBERT Academic Publishing
Lapas 96
Izmēri 226 × 6 × 150 mm   ·   161 g
Valoda Vācu  

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