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A hybrid user-based collaborative filtering algorithm with topic model

delete2021-03-20
delete17
PRE
AI
刘娜 (Liu Na) *
M
Ming-Xia Li
H
Haiyang Qiu
S
Su Hao-long
DOI:10.1007/s10489-021-02207-7delete
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摘要

摘要

En 中文
Currently available Collaborative Filtering(CF) algorithms often utilize user behavior data to generate recommendations. The similarity calculation between users is mostly based on the scores, without considering the explicit attributes of the users with profiles, as these are difficult to generate, or their evolution of preferences over time. This paper proposes a collaborative filtering algorithm named T-LDA (Time-decay Dirichlet Allocation), which is based on the topic model. In this method, we generate a hybrid score for similarity calculation with topic model. However, most topic models ignore the attribute of time order. In order to further improve the prediction accuracy, a time-decay function is introduced in topic model. The experimental results show that this algorithm has better performance than currently available algorithms on the MovieLens dataset, Netflix dataset and la.fm dataset.
Keyword:
Collaborative filtering
LDA
Topic model
Time decay
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期刊

Applied Intelligence 封面图
Applied Intelligence
IF:
3.5
论文数:
7.6K
被引数:
1.7W

机构

D
Dalian Polytechnic University
学者数:
7.4K
论文数: 4.3K
被引数: 9.5K
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