Generating AVTs using GA for learning decision tree classifiers with missing data

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초록

Attribute value taxonomies (AVTs) have been used to perform AVT-guided decision tree learning on partially or totally missing data. In many cases, user-supplied AVTs are used. We propose an approach to automatically generate an AVT for a given dataset using a genetic algorithm. Experiments on real world datasets demonstrate the feasibility of our approach, generating AVTs which yield comparable performance (in terms of classification accuracy) to that with user supplied AVTs.

제목
Generating AVTs using GA for learning decision tree classifiers with missing data
저자
Joo, JZhang, JYang, JHHonavar, V
발행일
2004
유형
Article; Proceedings Paper
저널명
Lecture Notes in Computer Science
3245
페이지
347 ~ 354