Exact Learning Augmented Naive Bayes Classifier

被引:15
|
作者
Sugahara, Shouta [1 ]
Ueno, Maomi [1 ]
机构
[1] Univ Electrocommun, Grad Sch Informat & Engn, 1-5-1 Chofugaoka, Tokyo 1828585, Japan
基金
日本学术振兴会;
关键词
augmented naive Bayes classifier; Bayesian networks; classification; structure learning; NETWORKS;
D O I
10.3390/e23121703
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Earlier studies have shown that classification accuracies of Bayesian networks (BNs) obtained by maximizing the conditional log likelihood (CLL) of a class variable, given the feature variables, were higher than those obtained by maximizing the marginal likelihood (ML). However, differences between the performances of the two scores in the earlier studies may be attributed to the fact that they used approximate learning algorithms, not exact ones. This paper compares the classification accuracies of BNs with approximate learning using CLL to those with exact learning using ML. The results demonstrate that the classification accuracies of BNs obtained by maximizing the ML are higher than those obtained by maximizing the CLL for large data. However, the results also demonstrate that the classification accuracies of exact learning BNs using the ML are much worse than those of other methods when the sample size is small and the class variable has numerous parents. To resolve the problem, we propose an exact learning augmented naive Bayes classifier (ANB), which ensures a class variable with no parents. The proposed method is guaranteed to asymptotically estimate the identical class posterior to that of the exactly learned BN. Comparison experiments demonstrated the superior performance of the proposed method.
引用
收藏
页数:25
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