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The Effect of Negators, Modals, and Degree Adverbs on Sentiment Composition

机译:否定词,情态副词和程度副词对情感成分的影响

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Negators, modals, and degree adverbs can significantly affect the sentiment of the words they modify. Often, their impact is modeled with simple heuristics; although, recent work has shown that such heuristics do not capture the true sentiment of multi-word phrases. We created a dataset of phrases that include various negators, modals, and degree adverbs, as well as their combinations. Both the phrases and their constituent content words were annotated with real-valued scores of sentiment association. Using phrasal terms in the created dataset, we analyze the impact of individual modifiers and the average effect of the groups of modifiers on overall sentiment. We find that the effect of modifiers varies substantially among the members of the same group. Furthermore, each individual modifier can affect sentiment words in different ways. Therefore, solutions based on statistical learning seem more promising than fixed hand-crafted rules on the task of automatic sentiment prediction.
机译:否定词,情态副词和程度副词会显着影响其修饰词的情感。通常,它们的影响是通过简单的启发式方法建模的。不过,最近的工作表明,这种启发式方法无法捕捉到多词短语的真实情绪。我们创建了一个短语数据集,其中包括各种否定词,语气,程度副词及其组合。短语及其组成的内容词均用情感联想的实值评分进行注释。使用所创建数据集中的短语,我们分析单个修饰语的影响以及修饰语组对整体情绪的平均影响。我们发现,修饰剂的作用在同一组成员之间有很大差异。此外,每个修饰语可以不同方式影响情感词。因此,在自动情绪预测任务上,基于统计学习的解决方案似乎比固定的手工制定规则更有希望。

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