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摘要:
Memory-based collaborative recommender system (CRS) computes the similarity between users based on their declared ratings. However, not all ratings are of the same importance to the user. The set of ratings each user weights highly differs from user to user according to his mood and taste. This is usually reflected in the user’s rating scale. Accordingly, many efforts have been done to introduce weights to the similarity measures of CRSs. This paper proposes fuzzy weightings for the most common similarity measures for memory-based CRSs. Fuzzy weighting can be considered as a learning mechanism for capturing the preferences of users for ratings. Comparing with genetic algorithm learning, fuzzy weighting is fast, effective and does not require any more space. Moreover, fuzzy weightings based on the rating deviations from the user’s mean of ratings take into account the different rating scales of different users. The experimental results show that fuzzy weightings obviously improve the CRSs performance to a good extent.
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篇名 Fuzzy-Weighted Similarity Measures for Memory-Based Collaborative Recommender Systems
来源期刊 智能学习系统与应用(英文) 学科 工学
关键词 COLLABORATIVE RECOMMENDER Systems Pearson Correlation Coefficient COSINE SIMILARITY MEASURE Mean Difference Weights SIMILARITY MEASURE FUZZY Weighting
年,卷(期) 2014,(1) 所属期刊栏目
研究方向 页码范围 1-10
页数 10页 分类号 TP39
字数 语种
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COLLABORATIVE
RECOMMENDER
Systems
Pearson
Correlation
Coefficient
COSINE
SIMILARITY
MEASURE
Mean
Difference
Weights
SIMILARITY
MEASURE
FUZZY
Weighting
研究起点
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研究分支
研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
智能学习系统与应用(英文)
季刊
2150-8402
武汉市江夏区汤逊湖北路38号光谷总部空间
出版文献量(篇)
166
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0
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