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Analyzing semantic orientation of terms using Affinity Propagation

机译:使用相似性传播分析术语​​的语义取向

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The aim of term semantic orientation analysis is to mine the sentiment polarity of words and phrases from their contexts. This paper presents a novel algorithm called Affinity Propagation to analyze semantic orientations of terms. Specifically, we build an informative graph from text corpus using an efficient Word Activation Force model and regard each term as a node in the graph. Then we propagate opinionated information over the whole graph using only a small number of seed terms. We finally utilize affinity vectors rather than context vectors to detect term polarities and construct the polarity lexicons. Evaluations on our proposed algorithm show its advantages over the state-of-the-art algorithms. And further improvements can be obtained by combining Affinity Propagation with Pointwise Mutual Information.
机译:术语语义定向分析的目的是从上下文中挖掘单词和短语的情感极性。本文提出了一种称为“亲和力传播”的新颖算法来分析术语的语义方向。具体来说,我们使用有效的单词激活力模型从文本语料库构建一个信息图,并将每个术语视为图中的一个节点。然后,我们仅使用少量种子项在整个图上传播有思想的信息。最后,我们利用亲和力向量而不是上下文向量来检测术语极性并构建极性词典。对我们提出的算法的评估显示出它优于最新算法的优势。通过将亲和传播与逐点相互信息相结合,可以获得进一步的改进。

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