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Swimming with the Tide? Positional Claim Detection across Political Text Types

机译:与潮水一起游泳?跨政文本类型的位置索赔检测

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Manifestos are official documents of political parties, providing a comprehensive topical overview of the electoral programs. Voters, however, seldom read them and often prefer other channels, such as newspaper articles, to understand the party positions on various policy issues. The natural question to ask is how compatible these two formats (manifesto and newspaper reports) are in their representation of party positioning. We address this question with an approach that combines political science (manual annotation and analysis) and natural language processing (supervised claim identification) in a cross-text type setting: we train a classifier on annotated newspaper data and test its performance on manifestos. Our findings show a) strong performance for supervised classification even across text types and b) a substantive overlap between the two formats in terms of party positioning, with differences regarding the salience of specific issues.
机译:宣言是政党的正式文件,提供了选举方案的全面的主题概述。然而,选民很少读到他们,并且经常更喜欢其他渠道,如报纸文章,了解各种政策问题的党派职位。要问的自然问题是这两种格式(宣言和报告)的兼容性是多么兼容派对定位的代表性。我们通过将政治科学(手动注释和分析)和自然语言处理(监督索赔识别)结合在跨文本类型设置中的方法中解决了这个问题:我们在注释报纸数据上培训分类器并在宣言上测试其性能。我们的研究结果表明,即使在文本类型和B)方面,也可以对派对定位方面的两种格式之间的实质重叠进行强大的性能,具有关于特定问题的显着性的差异。

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