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Trend prediction of internet public opinion based on collaborative filtering

机译:基于协同过滤的网络舆情趋势预测

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Collaborative filtering recommendation has very important applications in the personalized recommendation. Especially it is widely used in e-commerce. The key of this approach is to find similar users or items using user-item rating matrix so that the system can show recommendations and provide a lot similar or interesting advice for users. The method of internet public opinion trend prediction based on collaborative filtering is proposed in order to solve the problem of internet public opinion trend prediction. This paper introduces the collaborative filtering algorithm and study user-based collaborative filtering algorithm, then the principles of internet public opinion trend prediction based on collaborative filtering are analyzed, and the frame structure of internet public opinion trend prediction is designed. Furthermore, a series of experimental results show that this method can effectively predict the development trend of internet public opinion.
机译:协作过滤推荐在个性化推荐中具有非常重要的应用。特别是它广泛用于电子商务中。这种方法的关键是使用用户项目评分矩阵查找相似的用户或项目,以便系统可以显示推荐并为用户提供很多相似或有趣的建议。为了解决网络舆情趋势预测问题,提出了一种基于协同过滤的网络舆情趋势预测方法。介绍了协同过滤算法,研究了基于用户的协同过滤算法,然后分析了基于协同过滤的网络舆情趋势预测的原理,设计了网络舆情趋势预测的框架结构。此外,一系列实验结果表明,该方法可以有效预测网络舆情的发展趋势。

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