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- [21] A Methodology for Learning, Analyzing, and Mitigating Social Influence Bias in Recommender Systems PROCEEDINGS OF THE 8TH ACM CONFERENCE ON RECOMMENDER SYSTEMS (RECSYS'14), 2014, : 137 - 144
- [22] Dealing with Popularity Bias in Recommender Systems for Third-party Libraries: How far Are We? 2023 IEEE/ACM 20TH INTERNATIONAL CONFERENCE ON MINING SOFTWARE REPOSITORIES, MSR, 2023, : 12 - 24
- [23] Analyzing Bias in Recommender Systems: A Comprehensive Evaluation of YouTube's Recommendation Algorithm PROCEEDINGS OF THE 2023 IEEE/ACM INTERNATIONAL CONFERENCE ON ADVANCES IN SOCIAL NETWORKS ANALYSIS AND MINING, ASONAM 2023, 2023, : 753 - 760
- [24] Towards Analyzing the Bias of News Recommender Systems Using Sentiment and Stance Detection COMPANION PROCEEDINGS OF THE WEB CONFERENCE 2022, WWW 2022 COMPANION, 2022, : 448 - 457
- [25] A Novel Pre-Processing Technique to Combat Popularity Bias in Personality-Aware Recommender Systems IEEE ACCESS, 2024, 12 : 183230 - 183251
- [26] Effects of Personal Characteristics on Music Recommender Systems with Different Levels of Controllability 12TH ACM CONFERENCE ON RECOMMENDER SYSTEMS (RECSYS), 2018, : 13 - 21
- [28] Investigating the effectiveness of persuasive justification messages in fair music recommender systems for users with different personality traits 2023 PROCEEDINGS OF THE 31ST ACM CONFERENCE ON USER MODELING, ADAPTATION AND PERSONALIZATION, UMAP 2023, 2023, : 66 - 77