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ADAC
2007

Generalized mixture models, semi-supervised learning, and unknown class inference

13 years 4 months ago
Generalized mixture models, semi-supervised learning, and unknown class inference
In this paper, we discuss generalized mixture models and related semi-supervised learning methods, and show how they can be used to provide explicit methods for unknown class inference. After a brief description of standard mixture modeling and current model-based semi-supervised learning methods, we provide the generalization and discuss its computational implementation using three-stage expectation–maximization algorithm.
Samuel J. Frame, Sreenivasa Rao Jammalamadaka
Added 08 Dec 2010
Updated 08 Dec 2010
Type Journal
Year 2007
Where ADAC
Authors Samuel J. Frame, Sreenivasa Rao Jammalamadaka
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