Mining Sequential Patterns: A Context-Aware Approach

نویسندگان

  • Julien Rabatel
  • Sandra Bringay
  • Pascal Poncelet
چکیده

Traditional sequential patterns do not take into account contextual information associated with sequential data. For instance, when studying purchases of customers in a shop, a sequential pattern could be “frequently, customers buy products A and B at the same time, and then buy product C”. Such a pattern does not consider the age, the gender or the socio-professional category of customers. However, by taking into account contextual information, a decision expert can adapt his/her strategy according to the type of customers. In this paper, we focus on the analysis of a given context (e.g., a category of customers) by extracting context-dependent sequential patterns within this context. For instance, given the context corresponding to young customers, we propose to mine patterns of the form “buying products A and B then product C is a general behavior in this population” or “buying products B and D is frequent for young customers only”. We formally define such contextdependent sequential patterns and highlight relevant properties that lead to an efficient extraction algorithm. We conduct our experimental evaluation on real-world data and demonstrate performance issues. Julien Rabatel Tecnalia, Cap Omega, Rd-Pt B. Franklin, 34960 Montpellier Cedex 2, France, LIRMM (CNRS UMR 5506), Univ. Montpellier 2, 161 rue Ada, 34095 Montpellier Cedex 5, France, e-mail: [email protected] Sandra Bringay LIRMM (CNRS UMR 5506), Univ. Montpellier 2, 161 rue Ada, 34095 Montpellier Cedex 5, France, Dpt MIAP, Univ. Montpellier 3, Route de Mende, 34199 Montpellier Cedex 5, France, e-mail: [email protected] Pascal Poncelet LIRMM (CNRS UMR 5506), Univ. Montpellier 2, 161 rue Ada, 34095 Montpellier Cedex 5, France, e-mail: [email protected]

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تاریخ انتشار 2011