The empirical comparison of efficiency in classification algorithms

분류 알고리즘의 효율성에 대한 경험적 비교연구

  • Published : 2000.09.01

Abstract

We may be given a set of observations with the classes or clusters. The aim of this article is to provide an up-to-date review of different approaches to classification, compare their performance on a wide range of challenging data-sets. In this paper, machine learning algorithm classifiers based on CART, C4.5, CAL5, FACT, QUEST and statistical discriminant analysis are compared on various datasets in classification error rate and algorithms.

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