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Titlebook: Web and Big Data; 8th International Jo Wenjie Zhang,Anthony Tung,Hongjie Guo Conference proceedings 2024 The Editor(s) (if applicable) and

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Hierarchical Review-Based Recommendation with Contrastive Collaboration the target ratings for developing self-supervision signals. Finally, extensive experiments on public datasets and comparison studies with state-of-the-art baselines have demonstrated the effectiveness of the proposed model, additional investigations also provide a deep insight into the rationale un
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Automated Modeling of Influence Diversity with Graph Convolutional Network for Social Recommendations. The tailored aggregation mechanism automatically estimates the importance of each graph perspective for each user, reflecting the degree to which each user is influenced by social connections. This mechanism can model influence diversity in a manner that is highly interpretable, less prone to ran
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Contrastive Generator Generative Adversarial Networks for Sequential Recommendationuence and fake sequence. Additionally, we enhance the Discriminator by combining the Wasserstein loss with a ranking loss, creating a joint loss function.This combination better distinguishes between generated sequences and ground truth data, guiding the Generator towards producing item sequences th
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