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Adaptive XML tree classification on evolving data streams

  • Universidad Politecnica de Catalunia

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Résumé

We propose a new method to classify patterns, using closed and maximal frequent patterns as features. Generally, classification requires a previous mapping from the patterns to classify to vectors of features, and frequent patterns have been used as features in the past. Closed patterns maintain the same information as frequent patterns using less space and maximal patterns maintain approximate information. We use them to reduce the number of classification features. We present a new framework for XML tree stream classification. For the first component of our classification framework, we use closed tree mining algorithms for evolving data streams. For the second component, we use state of the art classification methods for data streams. To the best of our knowledge this is the first work on tree classification in streaming data varying with time. We give a first experimental evaluation of the proposed classification method.

langue originaleAnglais
titreMachine Learning and Knowledge Discovery in Databases - European Conference, ECML PKDD 2009, Proceedings
EditeurSpringer Verlag
Pages147-162
Nombre de pages16
EditionPART 1
ISBN (imprimé)3642041795, 9783642041792
Les DOIs
étatPublié - 1 janv. 2009
Modification externeOui
EvénementEuropean Conference on Machine Learning and Knowledge Discovery in Databases, ECML PKDD 2009 - Bled, Slovénie
Durée: 7 sept. 200911 sept. 2009

Série de publications

NomLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
nombrePART 1
Volume5781 LNAI
ISSN (imprimé)0302-9743
ISSN (Electronique)1611-3349

Une conférence

Une conférenceEuropean Conference on Machine Learning and Knowledge Discovery in Databases, ECML PKDD 2009
Pays/TerritoireSlovénie
La villeBled
période7/09/0911/09/09

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