JOURNAL ARTICLE

Collaborative filtering recommendation model based on fuzzy clustering algorithm

Ye YangYunhua Zhang

Year: 2018 Journal:   AIP conference proceedings Vol: 1967 Pages: 040050-040050   Publisher: American Institute of Physics

Abstract

As one of the most widely used algorithms in recommender systems, collaborative filtering algorithm faces two serious problems, which are the sparsity of data and poor recommendation effect in big data environment. In traditional clustering analysis, the object is strictly divided into several classes and the boundary of this division is very clear. However, for most objects in real life, there is no strict definition of their forms and attributes of their class. Concerning the problems above, this paper proposes to improve the traditional collaborative filtering model through the hybrid optimization of implicit semantic algorithm and fuzzy clustering algorithm, meanwhile, cooperating with collaborative filtering algorithm. In this paper, the fuzzy clustering algorithm is introduced to fuzzy clustering the information of project attribute, which makes the project belong to different project categories with different membership degrees, and increases the density of data, effectively reduces the sparsity of data, and solves the problem of low accuracy which is resulted from the inaccuracy of similarity calculation. Finally, this paper carries out empirical analysis on the MovieLens dataset, and compares it with the traditional user-based collaborative filtering algorithm. The proposed algorithm has greatly improved the recommendation accuracy.

Keywords:
MovieLens Collaborative filtering Computer science Cluster analysis Data mining Recommender system Fuzzy clustering Fuzzy logic Class (philosophy) Algorithm Similarity (geometry) Artificial intelligence Machine learning Image (mathematics)

Metrics

4
Cited By
1.34
FWCI (Field Weighted Citation Impact)
13
Refs
0.85
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Recommender Systems and Techniques
Physical Sciences →  Computer Science →  Information Systems
Human Mobility and Location-Based Analysis
Social Sciences →  Social Sciences →  Transportation
Digital Marketing and Social Media
Social Sciences →  Social Sciences →  Sociology and Political Science

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