A New Approach for Fairness Increment of Consensus-Driven Group Recommender Systems Based on Choquet Integral

Author:

Giap Cu Nguyen1ORCID,Son Nguyen Nhu2,Giang Nguyen Long2ORCID,Chau Hoang Thi Minh3,Tuan Tran Manh4,Son Le Hoang5ORCID

Affiliation:

1. Graduate University of Science and Technology, Vietnam

2. Institute of Information Technology, Vietnam Academy of Science and Technology, Vietnam

3. University of Economics Technology for Industries (UNETI), Hanoi, Vietnam

4. Thuyloi University, Hanoi, Vietnam

5. VNU Information Technology Institute, Vietnam National University, Hanoi, Vietnam

Abstract

It has been witnessed in recent years for the rising of Group recommender systems (GRSs) in most e-commerce and tourism applications like Booking.com, Traveloka.com, Amazon, etc. One of the most concerned problems in GRSs is to guarantee the fairness between users in a group so-called the consensus-driven group recommender system. This paper proposes a new flexible alternative that embeds a fuzzy measure to aggregation operators of consensus process to improve fairness of group recommendation and deals with group member interaction. Choquet integral is used to build a fuzzy measure based on group member interactions and to seek a better fairness recommendation. The empirical results on the benchmark datasets show the incremental advances of the proposal for dealing with group member interactions and the issue of fairness in Consensus-driven GRS.

Publisher

IGI Global

Subject

Hardware and Architecture,Software

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