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Estimating Number of Citations Using Author Reputation

机译:使用作者声誉估算引文数量

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摘要

We study the problem of predicting the popularity of items in a dynamic environment in which authors post continuously new items and provide feedback on existing items. This problem can be applied to predict popularity of blog posts, rank photographs in a photo-sharing system, or predict the citations of a scientific article using author information and monitoring the items of interest for a short period of time after their creation. As a case study, we show how to estimate the number of citations for an academic paper using information about past articles written by the same author(s) of the paper. If we use only the citation information over a short period of time, we obtain a predicted value that has a correlation of r = 0.57 with the actual value. This is our baseline prediction. Our best-performing system can improve that prediction by adding features extracted from the past publishing history of its authors, increasing the correlation between the actual and the predicted values to r = 0.81.
机译:我们研究在动态环境中预测商品受欢迎程度的问题,在动态环境中作者不断发布新商品并提供有关现有商品的反馈。此问题可用于预测博客文章的受欢迎程度,在照片共享系统中对照片进行排名,或使用作者信息并在创建后的短时间内监视感兴趣的项目来预测科学文章的引文。作为案例研究,我们展示了如何使用该论文同一作者撰写的有关过去文章的信息来估算学术论文的被引次数。如果我们仅在短时间内使用引文信息,我们将获得与实际值具有r = 0.57的相关性的预测值。这是我们的基线预测。我们性能最佳的系统可以通过添加从其作者的过去出版历史中提取的功能来改进该预测,从而将实际值与预测值之间的相关性提高到r = 0.81。

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