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Informatika i Ee Primeneniya [Informatics and its Applications], 2010, Volume 4, Issue 2, Pages 13–24
(Mi ia25)
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This article is cited in 1 scientific paper (total in 1 paper)
Nonparametric estimation of Bayesian classifier elements
M. P. Krivenko Institute for Problems of Informatics RAS
Abstract:
The problemof constructing an empirical Bayesian classifier, providing recognition of the text, where some symbols have different picture sizes, is considered. A combined method of constructing an evaluation of Bayesian classifier is proposed. The method includes nonparametric kernel estimation and parametric estimation with the help of the density of normal distribution. This combined assessment allows to deal effectively with the task of handling small amounts of training set. Productivity of the proposed ideas is illustrated by an example of recognizing the real text.
Keywords:
Bayesian classifier; combined multivariate density estimation; adaptive kernel estimation; text recognition.
Citation:
M. P. Krivenko, “Nonparametric estimation of Bayesian classifier elements”, Inform. Primen., 4:2 (2010), 13–24
Linking options:
https://www.mathnet.ru/eng/ia25 https://www.mathnet.ru/eng/ia/v4/i2/p13
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