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Journal ArticleDOI

Semantic Categorization of Video: An Evolutionary Learning based Approach

TLDR
A fuzzy rule based system for classification of video into semantic categories using an evolutionary learning methodology to evolve a fuzzy system for use in the classification process and an experimental system for categorization of sports video is developed.
Abstract
In this paper, we have proposed a fuzzy rule based system for classification of video into semantic categories. The classification scheme uses an evolutionary learning methodology to evolve a fuzzy system for use in the classification process. This evolved fuzzy classifier has the inherent capability to tackle variations and ambiguities invariably present in the video data. A novel fuzzy theoretic sheme has been suggested for extraction of key frames from a given video after shot segmentation. Frame based temporal features and spatial features obtained from key frames have been used in the classification system. We have developed an experimental system for categorization of sports video. The experimental system has yielded reasonably correct recognition results for a large number of samples.

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References
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Proceedings ArticleDOI

Indoor-outdoor image classification

TL;DR: This work systematically studied the features of: histograms in the Ohta color space; multiresolution, simultaneous autoregressive model parameters; and coefficients of a shift-invariant DCT to show how high-level scene properties can be inferred from classification of low-level image features.
Journal ArticleDOI

Implementation of evolutionary fuzzy systems

TL;DR: Benefits of the methodology are illustrated in the process of classifying the iris data set and possible extensions of the methods are summarized.
Journal ArticleDOI

Combining multiple classifiers by averaging or by multiplying

TL;DR: Differences and similarities are shown between this mean combination rule and the product combination rule in theory and in practice.
Proceedings ArticleDOI

Automatic parsing of TV soccer programs

TL;DR: The proposed system can classify a sequence of soccer frames into various play categories, such as shot at left goal, top left corner kick play in right penalty area, in midfield, etc, based on a priori model comprising four major components: a soccer court, a ball, the players and the motion vectors.
Proceedings ArticleDOI

Automatic classification of tennis video for high-level content-based retrieval

TL;DR: This work develops a court line detection algorithm; and a robust player tracking algorithm to track the tennis players over the image sequence and presents a color-based algorithm to select tennis court clips from an input raw footage of tennis video.
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