JSAI2021

Presentation information

General Session

General Session » GS-4 Web intelligence

[1I2-GS-4a] Webインテリジェンス:モデル化

Tue. Jun 8, 2021 1:20 PM - 3:00 PM Room I (GS room 4)

座長:宮川 大輝(NEC)

2:40 PM - 3:00 PM

[1I2-GS-4a-05] Session-based Recommender Systems with Real-time Learning using Distributed Representations

〇Yuma Nagi1, Kazushi Okamoto2 (1. School of Informatics and Engineering, The University of Electro-Communications, 2. Graduate School of Informatics and Engineering, The University of Electro-Communications)

Keywords:information recommendation, collaborative filtering, session data, distributed representation, k-nearest neighbor algorithm

The study proposes recommender systems which learn the distributed representation of items, sessions, and users from session data by using Item2Vec. For a recommendation query, the systems construct a session-specific distributed representation for the user (real-time user representation) in real-time via a simple computation method. In addition, we propose NN(Nearest Neighbors)-type and CF(Collaborative Filtering)-type search approaches which consider real-time user representations only and similar user representations, respectively. The experimental results suggest that the proposed systems are well balanced in accuracy, diversity, and novelty compared with the baseline systems. Moreover, CF-type search is superior to NN-type search in terms of accuracy, diversity, and novelty.

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