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Recommending Related Microblogs: A Comparison Between Topic and WordNet Based Approaches

机译:推荐相关微博:基于主题和基于WordNet的方法之间的比较

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摘要

Computing similarity between short microblogs is an important step in microblog recommendation. In this paper, we investigate a topic based approach and a WordNet based approach to estimate similarity scores between microblogs and recommend top related ones to users. Empirical study is conducted to compare their recommendation effectiveness using two evaluation measures. The results show that the WordNet based approach has relatively higher precision than that of the topic based approach using 548 tweets as dataset. In addition, the Kendall tau distance between two lists recommended by WordNet and topic approaches is calculated. Its average of all the 548 pair lists tells us the two approaches have the relative high disaccord in the ranking of related tweets.
机译:计算简短微博之间的相似性是微博推荐中的重要步骤。在本文中,我们研究了基于主题的方法和基于WordNet的方法来估计微博客之间的相似性得分,并向用户推荐最相关的主题。进行了实证研究,以比较使用两种评估方法的推荐效果。结果表明,与使用548条推文作为数据集的基于主题的方法相比,基于WordNet的方法具有较高的精度。此外,还计算了WordNet和主题方法推荐的两个列表之间的Kendall tau距离。它在所有548对列表中的平均值告诉我们,这两种方法在相关推文的排名中相对较高。

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