Disentangled Self-Attention with Auto-Regressive Contrastive Learning for Neural Group Recommendation
Linyao Gao,
Haonan Zhang,
Luoyi Fu
Abstract:Group recommender systems aim to provide recommendations to a group of users as a whole rather than to individual users. Nonetheless, prevailing methodologies predominantly aggregate user preferences without adequately accounting for the unique individual intents influencing item selection. This oversight becomes particularly problematic in the context of ephemeral groups formed by users with limited shared historical interactions, which exacerbates the data sparsity challenge. In this paper, we introduce a no… Show more
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