Abstract

In this work, we propose a novel recommendation model, CLARER (Contrastive Learning for Aspect Representation towards Explainable Recommendation) that integrates aspect features learned from textual reviews with rating information to improve the accuracy and explainability of recommendations. Our proposed framework learns user and item representations by combining rating-based features and aspect-based features from reviews. Specifically, rating-based features are learned through a multi-layer perceptron (MLP) model, while aspect-specific review representations are learned using a transformer encoder to capture the semantic information and contrastive learning to better distinguish user preferences. To provide explanations, we train a transformer decoder, using the final representations of users and items from both rating and aspect-based features as context. Experimental results in three benchmark data sets demonstrate that our model achieves superior performance compared to baseline methods in both recommendation (accuracy) and explanation generation.

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Publication details

DOI
10.1109/wi-iat67162.2025.00070
Journal
Not available
Open access
Green open access

Cite this article

APA 7

Hasan, E., & Ding, C. (2026). Contrastive Learning for Aspect Representation towards Explainable Recommendation. https://doi.org/10.1109/wi-iat67162.2025.00070

MLA 9

Hasan, Emrul, and Chen Ding. "Contrastive Learning for Aspect Representation towards Explainable Recommendation." https://doi.org/10.1109/wi-iat67162.2025.00070.

Chicago (author–date)

Hasan, Emrul, and Chen Ding. 2026. "Contrastive Learning for Aspect Representation towards Explainable Recommendation." https://doi.org/10.1109/wi-iat67162.2025.00070.

Harvard

Hasan, E. and Ding, C. (2026) 'Contrastive Learning for Aspect Representation towards Explainable Recommendation', doi:10.1109/wi-iat67162.2025.00070.

Vancouver

Hasan E, Ding C. Contrastive Learning for Aspect Representation towards Explainable Recommendation. doi:10.1109/wi-iat67162.2025.00070

IEEE

E. Hasan, and C. Ding, "Contrastive Learning for Aspect Representation towards Explainable Recommendation," doi: 10.1109/wi-iat67162.2025.00070.