Mining Temporal Patterns of Movement for Video Event Recognition

نویسندگان

  • Michael Fleischman
  • Phillip Decamp
  • Deb Roy
چکیده

Scalable approaches to video event recognition are limited by an inability to automatically generate representations of events that encode abstract temporal structure. This paper presents a method in which temporal information is captured by representing events using a lexicon of hierarchical patterns of movement that are mined from large corpora of unannotated video data. These patterns are then used as features for a discriminative model of event recognition that exploits tree kernels in a Support Vector Machine. Evaluations show the method learns informative patterns on a 1450-hour video corpus of natural human activities recorded in the home.

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تاریخ انتشار 2006