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Journal : Global Science: Journal of Information Technology and Computer Science

Enhancing Transparency in Recommender Systems: An Explainable AI Approach Using MovieLens Noe'man, Achmad; Samsinar; Wibowo, Agung
Global Science: Journal of Information Technology and Computer Science Vol. 1 No. 4 (2025): December: Global Science: Journal of Information Technology and Computer Scienc
Publisher : International Forum of Researchers and Lecturers

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.70062/globalscience.v1i4.190

Abstract

Recommender systems play a critical role in shaping user decisions across digital platforms; however, the increasing complexity of recommendation algorithms has raised serious concerns regarding transparency, trust, and accountability. This study focuses on enhancing the transparency of recommender systems by integrating Explainable Artificial Intelligence (XAI) techniques within a MovieLens-based recommendation framework. The primary problem addressed is the opacity of conventional recommendation models, which limits user understanding of why certain items are recommended and may reduce trust, perceived fairness, and system acceptance. Accordingly, the main objective of this research is to design and evaluate a hybrid explainable recommender system that balances predictive accuracy with human-understandable explanations. The proposed approach combines Matrix Factorization, feature-importance-aware neural networks, and knowledge graph embeddings to construct a robust recommendation model. To enhance explainability, multiple XAI strategies are integrated, including model-agnostic methods (LIME, SHAP, and CLIME), argumentation-based explanations, and context-aware personalized explanations. A comprehensive evaluation framework is employed, incorporating algorithmic metrics (accuracy, fidelity, robustness, counterfactual consistency, and fairness) alongside human-centered evaluations measuring trust, transparency, cognitive load, and perceived usefulness. Experimental results demonstrate that the knowledge graph–enhanced hybrid model achieves superior recommendation accuracy compared to baseline approaches. Moreover, context-aware explanations consistently outperform other methods in terms of fidelity, robustness, and user-perceived transparency, while argumentation-based explanations are found to be the most persuasive. CLIME offers a strong balance between technical stability and interpretability. The findings indicate that no single explainability technique is universally optimal; instead, hybrid and adaptive explanation strategies are most effective. In conclusion, this study confirms that human-centered, context-adaptive XAI significantly improves transparency and user trust in recommender systems, highlighting explainability as a fundamental component rather than an optional enhancement.
Co-Authors Adriani, Ayu Afriany, Renny Agung Wibowo Akmal Ridwan Al Ansari, Andi Khafifah Khairun Aldo Setiawan Ali Altri. Wahida Andi Faisal Andi Rizkiyah Hasbi Anisa Aprilia, Alifia Ardatulloh, Fouqi Arif, Novita Arisman Armalia, Yesi Auliyah, Nur Afifah Azkia, Meira Putri Cholik, Saiful Nur Daswan, Lestari Deny Hadi Siswanto Digor Mufti Dunakhir, Samirah Edi Maszudi Fachry Abda El Rahman Faidah, Rani Nurul Fani Rahmasari Fatihah Anggraeni Kautsar Fitriani Iskandar Gianina Ramdhani Ginting, Chris Dayanti Hajrah Hamzah Hamzah, Linduaji Handayani, Andi Asti Hariyani, Reni Hasni Haya, Nur Hendrawangsah, Tsabita Hidayat, Ahid Imran, Mita Pertiwi Indra Nola Indrawati Indrawati Ira Wahyuni Irwandi Ismi Nur Maharani Azis Izmi, Suci Rabiatul Juniarti, Irma Khusnul Qhatima Nurfajra La Ode Santiaji Bande M. Ihsan Said Ahmad M. JAYA ADI PUTRA, S.Si, M.Pd, M. JAYA ADI M. Ridwan Tikollah Madani B, Tiara MARTINI Masnawaty S Mayang Sari Miftahul Aulia Misdawati Muhaimin Hamzah Muhammad Azhar Rahmanto Muhammad Azis MUHAMMAD DINAR Muhammad Hasan Muhammad Ikbal Muhammad Kasran Muhammad Tahir Muhklas Abrar Mukhammad Idrus Mushoddiq Rahman, Ahmad Nashiruddin N, Irmawati Nani Fitriono, Eko Ningsih, Sri Mutiara Noe'man, Achmad Noviala, Arni Nur Afiah Nur Afiah, Nur Nur Nida Naziha Nur Wahyuni Nur Zazlin Nurachmah, Asri Essada Nurafni Oktaviyah Nuraisyiah Nurasizah, Nurasizah Nurfadilla Nurul Fadinah Nurwahida Permatasari, Dian Aflia Pitri Prasetio, Tio Puguh Wahyu Prasetyo Putu Arimbawa, Putu Qail Salam, Asdaqul Rafidah, Luluk Reski Amalia, A. Anggi Reski Gaka Rifda Faida Rijal, Abdul Rizka Cintya Edwar Rudolf Sinaga Ryketeng, Masdar S, Masnawaty S.Pd. M Kes I Ketut Sudiana . Sahade SALAMUN PASDA Salfianur Sangkala, Masnawaty Saputra, Renaldi Selvina Syam Sephiona Sitepu, Fransiska Siti Nur Annisa Aulia Sitti Hajerah Hasyim Subede, Nurul Fadillah Sukardi Weda, Sukardi Tenri Awaru, Andi Umra Utami, Dian Gita Warka Syachbrani Wegi Aswaya Weka Gusmiarty Abdullah, Weka Gusmiarty Winda Rahayu Windarto Wulandasari Yuli Astuti Yulianti Awalia Zailani