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ICMCS
2007
IEEE

Two-Layer Generative Models for Sport Video Mining

13 years 10 months ago
Two-Layer Generative Models for Sport Video Mining
We present a two-layer generative model for sport video mining that is composed of a two-layer observation model. The first layer is the Gaussian mixture model (GMM) using framewise camera motion for intra-shot analysis and the second layer is the hidden Markov model (HMM) involving the GMM as the mid-level observation for inter-shot analysis. A recursive model estimation method is developed for statistical inference which combines two Expectation Maximization (EM) algorithms. Specifically, the proposed generative model is used for American football play analysis where each play shot is classified into one of four classes, i.e., short plays, long plays, kicks and field goals. The experimental results show promising classification performance around 80%.
Yi Ding, Guoliang Fan, W. Bryan
Added 03 Jun 2010
Updated 03 Jun 2010
Type Conference
Year 2007
Where ICMCS
Authors Yi Ding, Guoliang Fan, W. Bryan
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