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Published in: Multimedia Systems 4/2023

15-05-2023 | Regular Paper

Research on multi-context aware recommendation methods based on tensor factorization

Authors: Shulin Cheng, Huimin Jiang, Wanyan Wang, Wei Jiang

Published in: Multimedia Systems | Issue 4/2023

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Abstract

Compared to the traditional recommender systems, context-aware recommender systems are more in line with actual application contexts. However, the existing researches are mostly focused on single context-aware recommendation, such as time-aware recommendation or location-aware recommendation, and lack of in-depth research on multi-context-aware recommendation. Therefore, we proposed a recommendation method of high-order tensor factorization based on multi-context-aware. First, on the basis of analyzing the influence of context on users’ interest preferences, the sensitivity of users to multiple contexts was detected using statistical methods. For context-sensitive users, four-dimensional tensors and feature matrices used to solve data sparsity were constructed based on rating matrix and situational information. And then the stochastic gradient descent algorithm was used for iterative calculation to fill in missing data values and carry out parameter optimization. For context-insensitive users, we used matrix factorization to predict users’ interest preferences. Finally, we tested and validated our method on a multi-context-aware movie dataset, and the experimental results show that the proposed method could effectively reduce the prediction error and improve the recommendation quality.

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Metadata
Title
Research on multi-context aware recommendation methods based on tensor factorization
Authors
Shulin Cheng
Huimin Jiang
Wanyan Wang
Wei Jiang
Publication date
15-05-2023
Publisher
Springer Berlin Heidelberg
Published in
Multimedia Systems / Issue 4/2023
Print ISSN: 0942-4962
Electronic ISSN: 1432-1882
DOI
https://doi.org/10.1007/s00530-023-01103-z

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