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Опубликовано2009-10-00
Опубликовано на SciPeople2009-10-08 15:48:38
ОрганизацияLomonosov Moscow State University
ЖурналProceedings of GraphiCon'09
Fast Weak Learner Based on Genetic Algorithm
Аннотация
An approach to the acceleration of parametric weak classifier boosting
is proposed. Weak classifier is called parametric if it has fixed
number of parameters and, therefore, can be represented as a point
in multidimensional space. Genetic algorithm is used to learn parameters
of such classifier. Proposed approach also takes cases
when effective algorithm for learning some of the classifier parameters
exists into account. Experiments confirm that such an
approach can dramatically decrease classifier training time while
keeping both training and test errors small, at least for some widely
used pattern recognition algorithms.

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