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Competitive perspective identification via topic based refinement for online documents

机译:通过基于主题的细化,对在线文档进行竞争性视角识别

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People write online documents from different personal perspectives. The competitive perspectives they hold reflect the conflicts in their fundamental stances and viewpoints. For many security-related applications, it is both beneficial and critical to identify the competitive perspectives implied in online documents. Previous work on competitive perspective identification is based on word features, which did not consider that the word usage for perspective expression varies with topics in documents. Thus topic information can be incorporated and contribute to a more fine-grained treatment of perspective identification. Motivated by this, this paper proposes an approach for competitive perspective identification in online documents via topic based refinement. Our approach refines the basic word feature-based perspective identification model with latent semantic information. In addition, we develop a self-adaptive process to fit the model parameters automatically. Experimental study shows the effectiveness of our approach compared to the related work and the baseline methods.
机译:人们从不同的个人角度来撰写在线文档。他们持有的竞争观点反映了他们基本立场和观点上的冲突。对于许多与安全相关的应用程序,确定在线文档中隐含的竞争观点既有益又至关重要。先前关于竞争性视角识别的工作基于单词特征,该功能没有考虑到视角表达的单词用法随文档中的主题而变化。因此,主题信息可以被合并并有助于更精细地处理透视识别。因此,本文提出了一种基于主题的提炼在线文档竞争观点识别的方法。我们的方法利用潜在的语义信息完善了基于基本单词特征的视角识别模型。此外,我们开发了自适应过程以自动拟合模型参数。实验研究表明,与相关工作和基准方法相比,我们的方法是有效的。

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