JOURNAL ARTICLE

Geometric Disentangled Collaborative Filtering

Yiding ZhangChaozhuo LiXing XieXiao WangChuan ShiYuming LiuHao SunLiang‐Jie ZhangWeiwei DengQi Zhang

Year: 2022 Journal:   Proceedings of the 45th International ACM SIGIR Conference on Research and Development in Information Retrieval Pages: 80-90

Abstract

Learning informative representations of users and items from the historical interactions is crucial to collaborative filtering (CF). Existing CF approaches usually model interactions solely within the Euclidean space. However, the sophisticated user-item interactions inherently present highly non-Euclidean anatomy with various types of geometric patterns (i.e., tree-likeness and cyclic structures). The Euclidean-based models may be inadequate to fully uncover the intent factors beneath such hybrid-geometry interactions. To remedy this deficiency, in this paper, we study the novel problem of Geometric Disentangled Collaborative Filtering (GDCF), which aims to reveal and disentangle the latent intent factors across multiple geometric spaces. A novel generative GDCF model is proposed to learn geometric disentangled representations by inferring the high-level concepts associated with user intentions and various geometries. Empirically, our proposal is extensively evaluated over five real-world datasets, and the experimental results demonstrate the superiority of GDCF.

Keywords:
Euclidean geometry Computer science Euclidean space Collaborative filtering Space (punctuation) Generative model Generative grammar Tree (set theory) Artificial intelligence Theoretical computer science Euclidean distance Structuring Machine learning Mathematics Recommender system Pure mathematics Geometry Combinatorics

Metrics

53
Cited By
8.77
FWCI (Field Weighted Citation Impact)
25
Refs
0.98
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

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