A Bayesian Analysis of Co-Training Algorithm with Insufficient Views

DIDACI, LUCA;ROLI, FABIO
2012-01-01

Abstract

The co-training algorithm can be applied if a dataset admits a representation into two different feature sets (two views). However, its optimality is proved only under the conditions a) sufficiency of each view, and b) conditional independence given the class. We address the case where condition a) doesn't hold, as often happens in concrete applications. In such cases the co-training is unable to converge to the optimal Bayesian classifier, because samples added in the training set are not distributed according to the classconditional distributions, even if their assigned label is correct. These results help to better understand the behavior of the co-training algorithm when the classes are only 'statistically' separable
2012
Inglese
2012 11th International Conference on Information Science, Signal Processing and their Applications (ISSPA)
978-1-4673-0380-4
IEEE
1108
1112
5
http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=6310456
Information Science, Signal Processing and their Applications (ISSPA), 2012 11th International Conference on
Esperti anonimi
July 3-5, 2012
Montreal, Canada
internazionale
scientifica
IEEE catalog number: CFP12450-CDR
no
4 Contributo in Atti di Convegno (Proceeding)::4.1 Contributo in Atti di convegno
Didaci, Luca; Roli, Fabio
273
2
4.1 Contributo in Atti di convegno
reserved
info:eu-repo/semantics/conferencePaper
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