Paper Title :The Pros and Cons of Pruning in Classification
Author :Nseer Ullah
Article Citation :Nseer Ullah ,
(2019 ) " The Pros and Cons of Pruning in Classification " ,
International Journal of Advance Computational Engineering and Networking (IJACEN) ,
pp. 13-15,
Volume-7, Issue-5
Abstract : A number of techniques are presented in the literature for pruning in both decision tree as well as rules based
classifiers. The pruning is used for two purposes; namely, Improve performance, and improve accuracy. As the pruning is
reducing the set of rules as well as the size of the tree, the probability of improvement in performance is, therefore high. While
on the other side, the pruning may eliminate the interesting information which can lead to reducing the accuracy. In this
research, the effects of pruning on the accuracy are studied in detail. The experiments were carried out on the same techniques
with and without using pruning strategies and the results of both types are compared. The analysis of the five algorithms over
fourteen datasets showed that the unwise selection of pruning strategy can reduce the accuracy.
Keywords- Rule Pruning, Associative Classification, Classification, Association Rules Mining, Data Mining
Type : Research paper
Published : Volume-7, Issue-5
DOIONLINE NO - IJACEN-IRAJ-DOIONLINE-15521
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Copyright: © Institute of Research and Journals
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Published on 2019-07-26 |
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