Effectiveness Evaluation of Rule Based Classifiers for the Classification of Iris Data Set

Journal Title: Bonfring International Journal of Man Machine Interface - Year 2012, Vol 1, Issue 1

Abstract

In machine learning, classification refers to a step by step procedure for designating a given piece of input data into any one of the given categories. There are many classification problem occurs and need to be solved. Different types are classification algorithms like tree-based, rule-based, etc are widely used. This work studies the effectiveness of Rule-Based classifiers for classification by taking a sample data set from UCI machine learning repository using the open source machine learning tool. A comparison of different rule-based classifiers used in Data Mining and a practical guideline for selecting the most suited algorithm for a classification is presented and some empirical criteria for describing and evaluating the classifiers are given.

Authors and Affiliations

Lakshmi Devasena C, Sumathi T, Gomathi V. V, Hemalatha M

Keywords

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  • EP ID EP156472
  • DOI 10.9756/BIJMMI.1002
  • Views 129
  • Downloads 0

How To Cite

Lakshmi Devasena C, Sumathi T, Gomathi V. V, Hemalatha M (2012). Effectiveness Evaluation of Rule Based Classifiers for the Classification of Iris Data Set. Bonfring International Journal of Man Machine Interface, 1(1), 5-9. https://europub.co.uk/articles/-A-156472