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Cold-Start Recommendation Using Bi-Clustering and Fusion for Large-Scale Social Recommender Systems

机译:大型社交推荐系统中使用双聚类和融合的冷启动建议

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Social recommender systems leverage collaborative filtering (CF) to serve users with content that is of potential interesting to active users. A wide spectrum of CF schemes has been proposed. However, most of them cannot deal with the cold-start problem that denotes a situation that social media sites fail to draw recommendation for new items, users or both. In addition, they regard that all ratings equally contribute to the social media recommendation. This supposition is against the fact that low-level ratings contribute little to suggesting items that are likely to be of interest of users. To this end, we propose bi-clustering and fusion (BiFu)-a newly-fashioned scheme for the cold-start problem based on the BiFu techniques under a cloud computing setting. To identify the rating sources for recommendation, it introduces the concepts of popular items and frequent raters. To reduce the dimensionality of the rating matrix, BiFu leverages the bi-clustering technique. To overcome the data sparsity and rating diversity, it employs the smoothing and fusion technique. Finally, BiFu recommends social media contents from both item and user clusters. Experimental results show that BiFu significantly alleviates the cold-start problem in terms of accuracy and scalability.
机译:社交推荐系统利用协作过滤(CF)为用户提供活动用户可能感兴趣的内容。已经提出了广泛的CF方案。但是,它们中的大多数不能处理冷启动问题,这种问题表示社交媒体网站无法为新项目,用户或两者提出建议。此外,他们认为所有评分都平等地有助于社交媒体的推荐。这种假设与以下事实相反:低级评分对建议用户可能感兴趣的项目的贡献很小。为此,我们在云计算环境下,基于BiFu技术,提出了一种双聚类和融合(BiFu)的新方案,用于基于冷启动问题的冷启动问题。为了确定推荐的评级来源,它介绍了热门商品和频繁评级者的概念。为了减少评分矩阵的维数,BiFu利用了双聚类技术。为了克服数据稀疏性和等级多样性,它采用了平滑和融合技术。最后,BiFu推荐项目和用户群中的社交媒体内容。实验结果表明,BiFu在准确性和可扩展性方面大大缓解了冷启动问题。

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