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Polarity Analysis of Texts using Discourse Structure

机译:使用话语结构的文本极性分析

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Sentiment analysis has applications in many areas and the exploration of its potential has only just begun. We propose Pathos, a framework which performs document sentiment analysis (partly) based on a document's discourse structure. We hypothesize that by splitting a text into important and less important text spans, and by subsequently making use of this information by weighting the sentiment conveyed by distinct text spans in accordance with their importance, we can improve the performance of a sentiment classifier. A document's discourse structure is obtained by applying Rhetorical Structure Theory on sentence level. When controlling for each considered method's structural bias towards positive classifications, weights optimized by a genetic algorithm yield an improvement in sentiment classification accuracy and macro-level F_1 score on documents of 4.5% and 4.7%, respectively, in comparison to a baseline not taking into account discourse structure.
机译:情绪分析在许多领域具有应用,并且其潜力的探索才刚刚开始。我们提出了基于文档的话语结构执行文档情绪分析(部分)的框架。我们假设通过将文本分成重要和更重要的文本跨度,随后通过根据其重要性加权不同文本跨度传达的情绪来利用这些信息,我们可以提高情感分类器的性能。通过在句子水平上应用修辞结构理论来获得文件的话语结构。当控制每个考虑方法的结构偏差朝向阳性分类时,通过遗传算法优化的重量分别在4.5%和4.7%的文件中分别提高了情绪分类准确性和宏观级别的F_1得分,与基线没有采取帐户话语结构。

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