Hypergraphs with Attention on Reviews for Explainable Recommendation

Theis E. Jendal, Trung-Hoang Le, Hady W. Lauw, Matteo Lissandrini, Peter Dolog, Katja Hose

Publikation: Bidrag til bog/antologi/rapport/konference proceedingKonferenceartikel i proceedingForskningpeer review

3 Citationer (Scopus)

Abstract

Given a recommender system based on reviews, the challenges are how to effectively represent the review data and how to explain the produced recommendations. We propose a novel review-specific Hypergraph (HG) model, and further introduce a model-agnostic explainability module. The HG model captures high-order connections between users, items, aspects, and opinions while maintaining information about the review. The explainability module can use the HG model to explain a prediction generated by any model. We propose a path-restricted review-selection method biased by the user preference for item reviews and propose a novel explanation method based on a review graph. Experiments on real-world datasets confirm the ability of the HG model to capture appropriate explanations.
OriginalsprogEngelsk
TitelAdvances in Information Retrieval : 46th European Conference on Information Retrieval, ECIR 2024, Glasgow, UK, March 24–28, 2024, Proceedings, Part I
RedaktørerNazli Goharian, Nicola Tonellotto, Yulan He, Aldo Lipani, Graham McDonald, Craig Macdonald, Iadh Ounis
Antal sider17
ForlagSpringer
Publikationsdato20 mar. 2024
Sider230–246
ISBN (Trykt)978-3-031-56026-2
ISBN (Elektronisk)978-3-031-56027-9
DOI
StatusUdgivet - 20 mar. 2024
Begivenhed46th European Conference on Information Retrieval - Glasgow, Storbritannien
Varighed: 24 mar. 202428 mar. 2024
https://link.springer.com/book/10.1007/978-3-031-56027-9

Konference

Konference46th European Conference on Information Retrieval
Land/OmrådeStorbritannien
ByGlasgow
Periode24/03/202428/03/2024
Internetadresse
NavnLecture Notes in Computer Science
Vol/bind14608
ISSN0302-9743

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