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FLARE: Fusing Language Models and Collaborative Architectures for Recommender Enhancement

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Abstract

Recent proposals in recommender systems represent items with their textual description, using a large language model. They show better results on standard benchmarks compared to an item ID-only model, such as Bert4Rec. In this work, we revisit the often-used Bert4Rec baseline and show that with further tuning, Bert4Rec significantly outperforms previously reported numbers, and in some datasets, is competitive with state-of-the-art models.

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DOI
10.1145/3701716.3717554
OpenAlex
W4410636401
Document type
conference-paper
Language
EN
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