A Recommender System for Telecommunication Operators’ Campaigns

2019 
Achieving a complete client characterization to attribute better and customized products is a trend on the rise. This information filtering process, known as “recommendation system”, increases companies revenues, and improve client quality-of-experience. Unfortunately, current state-of-the-art focus mostly on data sets with explicit client feedback regarding the advised product, or are more focused on case studies such as e-commerce, or movies recommendation. Our main goal is to understand the feasibility of a recommendation approach in one specific scenario: recommendation of telecommunication operators’ campaigns. We aim to determine the extent to which it is possible to characterize the clients, using implicit feedback and state-of-the-art recommendation algorithms.
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