Please use this identifier to cite or link to this item: http://hdl.handle.net/2445/194424
Title: Enabling cross-continent provider fairness in educational recommender systems
Author: Gómez, Elizabeth
Shui Zhang, Carlos
Boratto, Ludovico
Salamó Llorente, Maria
Ramos, Guilherme
Keywords: Intel·ligència artificial
Cursos en línia oberts i massius
Artificial intelligence
Massive Open Online Courses
Issue Date: Feb-2022
Publisher: Elsevier
Abstract: With the widespread diffusion of Massive Online Open Courses (MOOCs), educational recommender systems have become central tools to support students in their learning process. While most of the literature has focused on students and the learning opportunities that are offered to them, the teachers behind the recommended courses get a certain exposure when they appear in the final ranking. Underexposed teachers might have reduced opportunities to offer their services, so accounting for this perspective is of central importance to generate equity in the recommendation process. In this paper, we consider groups of teachers based on their geographic provenience and assess provider (un)fairness based on the continent they belong to. We consider measures of visibility and exposure, to account () in how many recommendations and () wherein the ranking of the teachers belonging to different groups appear. We observe disparities that favor the most represented groups, and we overcome these phenomena with a re-ranking approach that provides each group with the expected visibility and exposure, thus controlling fairness of providers coming from different continents (cross-continent provider fairness). Experiments performed on data coming from a real-world MOOC platform show that our approach can provide fairness without affecting recommendation effectiveness.
Note: Versió postprint del document publicat a: https://doi.org/10.1016/j.future.2021.08.025
It is part of: Future Generation Computer Systems-The International Journal Of Grid Computing-Theory Methods And Applications, 2022, vol. 127, p. 435-447
URI: http://hdl.handle.net/2445/194424
Related resource: https://doi.org/10.1016/j.future.2021.08.025
ISSN: 0167-739X
Appears in Collections:Articles publicats en revistes (Matemàtiques i Informàtica)

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