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首页> 外文期刊>Intelligent data analysis >A time-sensitive model to predict topic popularity in news providers1
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A time-sensitive model to predict topic popularity in news providers1

机译:在新闻提供商1中预测主题流行的时间敏感模型

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摘要

The volume of news increases everyday, triggering competition for users' attention. Predicting which topics will become trendy has many applications in domains like marketing or politics, where it is crucial to anticipate how much interest a product or a person will attract. We propose a model for representing topic popularity behavior across time and to predict if a topic will become trendy in the future. Furthermore, we tested our proposal on a real data set from Yahoo News and analyzed the performance of various classifiers for the topic popularity prediction task. Experiments confirmed the validity of the proposed model.
机译:每天的新闻量增加,触发用户注意力的竞争。预测哪些主题将成为时尚在营销或政治等领域的许多应用,这是预期产品或者一个人会吸引多少感兴趣。我们提出了一种模型,用于代表时间的主题流行性行为,并预测将来会成为一个主题。此外,我们在雅虎新闻的真实数据集上测试了我们的提议,并分析了各种分类器的性能,以获取主题流行性预测任务。实验证实了拟议模型的有效性。

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