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Design of Social Content Recommendation System Based on Influential Ranking Algorithm

机译:基于影响力排名算法的社会内容推荐系统设计

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Presently, the use of social network services (SNS) is expanding, and the amount of content that is stored and shared on SNS is also increasing. With the increase in the amount of content distributed on SNS, the time and money being spent by users to find their desired content are also increasing. To resolve this problem, there is a growing interest in recommendation systems, which recommend content that is suitable for users. The core technology of recommendation systems is the filtering technology. The most widely used filtering technology is collaborative filtering; however, it has issues such as scarcity, extensibility, transparency, and cold starting. Therefore, in this study, we have designed a recommendation system using an influential ranking algorithm to overcome these issues.
机译:目前,使用社交网络服务(SNS)正在扩展,并且在SNS上存储和共享的内容量也在增加。随着在SNS上分布的内容量的增加,用户花费的时间和金钱也在寻找所需内容也在增加。要解决此问题,在推荐系统中存在越来越兴趣,推荐适合用户的内容。推荐系统的核心技术是过滤技术。最广泛使用的过滤技术是协作滤波;但是,它具有稀缺,可扩展性,透明度和冷启动等问题。因此,在本研究中,我们设计了一种推荐系统,使用了一个有影响力的排名算法来克服这些问题。

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