Publication | Closed Access
The application of edge feature in automatic sports genre classification
13
Citations
13
References
2005
Year
Unknown Venue
Sports Genre ClassificationEngineeringMachine LearningMultimedia AnalysisVideo SummarizationVideo RetrievalEdge FeatureClassification MethodImage AnalysisData MiningPattern RecognitionAutomatic Video ClassificationVideo Content AnalysisMachine VisionVideo UnderstandingComputer VisionData ClassificationVideo AnalysisMusic Classification
As a specific application of semantic video content analysis, automatic video classification has emerged as a very active area of research during the past few years. In terms of sports genre classification, commonly utilized features include color, motion, audio, and caption text. Although the edge feature is widely employed in other fields such as object detection, image enhancement and restoration, its potential value is underestimated, and it is seldom explored in automatic video content analysis. In this paper, we propose a sports video categorization method using edge feature. Our experiments show that our proposed method has.achieved 97.1% accuracy on a sct of 5 different popular sports video typcs. Moreover, we demonstrate thc effect of video sequence length in accurate identification, and the advantages of edge feature over color information in sports genre classification.
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