Improving E-Commerce Recommender Systems by the Identification of Seasonal Products

نویسنده

  • Henrik Stormer
چکیده

In recent years, the number of recommender systems used in online shops has strongly increased and is becoming an important success factor for electronic commerce applications. A recommender system can be utilized to suggest similar related or potentially interesting products for a given customer or a set of products for a marketing campaign. This paper shows how seasonal products can be identified and included in the recommendation process to improve the quality of a recommender system. The approach was tested using real life data from two companies selling working protection and tools.

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تاریخ انتشار 2007