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User Preference-oriented Collaborative Recommendation Algorithm in E-commerce

机译:面向用户偏好的电子商务协同推荐算法

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摘要

Collaborative recommendation is a key issue today in e-commerce, which helps users find the information of products which they are interested in from the mass of information. Aiming at the problem in an insufficient personalization of e-commerce recommendation system, a user preference-oriented network model is established in the paper. Related theories and techniques of clustering are used to analyze the extracted preferences of the users. Finally, combined with the traditional collaborative filtering method, the paper proposed the user preference-oriented collaborative recommendation algorithm. The experimental results show that compared to the traditional collaborative filtering algorithm, user preference-oriented collaborative recommendation algorithm can effectively improve the efficiency of e-commerce recommendation system in ensuring the accuracy of the premise.
机译:协作推荐是当今电子商务中的关键问题,它可以帮助用户从大量信息中找到他们感兴趣的产品信息。针对电子商务推荐系统个性化不足的问题,建立了面向用户偏好的网络模型。相关的聚类理论和技术被用来分析提取的用户偏好。最后,结合传统的协同过滤方法,提出了面向用户偏好的协同推荐算法。实验结果表明,与传统的协同过滤算法相比,面向用户偏好的协同推荐算法可以有效提高电子商务推荐系统在保证前提准确性方面的效率。

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