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Topic Maps for Association Rule Mining

Paper, was published by Tomáš Kliegr and Jan Zemánek at 2009-11-12

The paper investigates the possibilities for post-processing results of association rule mining algorithms with topic maps.

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This paper investigates the possibilities for post-processing results of association rule mining algorithms with topic maps. Converting discovered association rules (DARs) as well as background knowledge to a topic map representation allows to assess the interestingness of discovered rules automatically with a topic map query language. This paper introduces a DAR ontology based on the GUHA method, a background knowledge ontology and a way of linking these two ontologies. It is shown on an example how these topic map ontologies can be used to represent particular mining data and how the tolog query language can be used to automatically find interesting rules in such a representation.

Authors

Tomáš Kliegr

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Tomáš is author of Building and Integrating.. , Topic Maps for Association.. , Semantic annotation and.. , Semantic analytical reports:.. , and A PHP library for.. .

Jan Zemánek

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Jan is author of Topic Maps for Association.. and Semantic analytical reports:.. .

Presented at

TMRA 2009

Conference in Leipzig from {{start}} to {{end}}

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Call for Contributions TMRA 2009 will be the fifth event in the annual series of international conferences on Topic Maps Research and …

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