conference-paper

A Collaborative Session-based Recommendation Approach with Parallel Memory Modules

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Session-based recommendation is the task of predicting the next item to recommend when the only available information consists of anonymous behavior sequences. Previous methods for session-based recommendation focus mostly on the current session, ignoring collaborative information in so-called neighborhood sessions, sessions that have been generated previously by other users and reflect similar user intents as the current session. We hypothesize that the collaborative information contained in such neighborhood sessions may help to improve recommendation performance for the current session.

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DOI
10.1145/3331184.3331210
OpenAlex
W2953586472
Document type
conference-paper
Language
EN
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