Text learning for user profiling in e-commerce

نویسندگان

  • Marco Degemmis
  • Pasquale Lops
  • Stefano Ferilli
  • Nicola Di Mauro
  • Teresa Maria Altomare Basile
  • Giovanni Semeraro
چکیده

Exploring digital collections to find information relevant to a user’s interests is a challenging task. Algorithms designed to solve this relevant information problem base their relevance computations on user profiles in which representations of the users’ interests are maintained. This article presents a new method, based on the classic Rocchio algorithm for text categorization, able to discover user preferences from the analysis of textual descriptions of items in online catalog of e-commerce Web sites. Experiments have been carried out on several data sets, and results have been compared with those obtained using an inductive logic programming (ILP) approach and a probabilistic one.

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عنوان ژورنال:
  • Int. J. Systems Science

دوره 37  شماره 

صفحات  -

تاریخ انتشار 2006