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JDWM
2010

Mining Frequent Generalized Patterns for Web Personalization in the Presence of Taxonomies

13 years 2 months ago
Mining Frequent Generalized Patterns for Web Personalization in the Presence of Taxonomies
The Web is a continuously evolving environment, since its content is updated on a regular basis. As a result, the traditional usagebased approach to generate recommendations that takes as input the navigation paths recorded on the web page level, is not as effective. Moreover, most of the content available online is either explicitly or implicitly characterized by a set of categories organized in a taxonomy, allowing the page-level navigation patterns to be generalized to a higher, aggregate level. In this direction, we present the Frequent Generalized Pattern (FGP) algorithm. FGP takes as input the transaction data and a hierarchy of categories and produces generalized association rules that contain transaction items and/or item categories. The results can be used to generate association rules and subsequently recommendations for the users. The algorithm can be applied to the log files of a typical web site; however, it can be more helpful in a Web 2.0 application, such as a feed agg...
Panagiotis Giannikopoulos, Iraklis Varlamis, Magda
Added 28 Jan 2011
Updated 28 Jan 2011
Type Journal
Year 2010
Where JDWM
Authors Panagiotis Giannikopoulos, Iraklis Varlamis, Magdalini Eirinaki
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