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Data mining with an ant colony optimization algorithm | IEEE Journals & Magazine | IEEE Xplore

Data mining with an ant colony optimization algorithm


Abstract:

The paper proposes an algorithm for data mining called Ant-Miner (ant-colony-based data miner). The goal of Ant-Miner is to extract classification rules from data. The al...Show More

Abstract:

The paper proposes an algorithm for data mining called Ant-Miner (ant-colony-based data miner). The goal of Ant-Miner is to extract classification rules from data. The algorithm is inspired by both research on the behavior of real ant colonies and some data mining concepts as well as principles. We compare the performance of Ant-Miner with CN2, a well-known data mining algorithm for classification, in six public domain data sets. The results provide evidence that: 1) Ant-Miner is competitive with CN2 with respect to predictive accuracy, and 2) the rule lists discovered by Ant-Miner are considerably simpler (smaller) than those discovered by CN2.
Published in: IEEE Transactions on Evolutionary Computation ( Volume: 6, Issue: 4, August 2002)
Page(s): 321 - 332
Date of Publication: 07 November 2002

ISSN Information:


I. Introduction

In essence, the goal of data mining is to extract knowledge from data. Data mining is an interdisciplinary field, whose core is at the intersection of machine learning, statistics, and databases.

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References

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