conference-paper Open access

Disentangled Graph Collaborative Filtering

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Abstract

Learning informative representations of users and items from the interaction data is of crucial importance to collaborative filtering (CF). Present embedding functions exploit user-item relationships to enrich the representations, evolving from a single user-item instance to the holistic interaction graph. Nevertheless, they largely model the relationships in a uniform manner, while neglecting the diversity of user intents on adopting the items, which could be to pass time, for interest, or shopping for others like families. Such uniform approach to model user interests easily results in suboptimal representations, failing to model diverse relationships and disentangle user intents in representations.

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Publication details

DOI
10.1145/3397271.3401137
OpenAlex
W3044311607
Document type
conference-paper
Language
EN
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