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SGAI
2007
Springer

Towards a Computationally Efficient Approach to Modular Classification Rule Induction

14 years 5 months ago
Towards a Computationally Efficient Approach to Modular Classification Rule Induction
Induction of classification rules is one of the most important technologies in data mining. Most of the work in this field has concentrated on the Top Down Induction of Decision Trees (TDIDT) approach. However, alternative approaches have been developed such as the Prism algorithm for inducing modular rules. Prism often produces qualitatively better rules than TDIDT but suffers from higher computational requirements. We investigate approaches that have been developed to minimize the computational requirements of TDIDT, in order to find analogous approaches that could reduce the computational requirements of Prism.
Frederic T. Stahl, Max Bramer
Added 09 Jun 2010
Updated 09 Jun 2010
Type Conference
Year 2007
Where SGAI
Authors Frederic T. Stahl, Max Bramer
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