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Measuring urban attitudes embedded in microblogging data: shrinking versus growing cities

机译:衡量微博数据中嵌入的城市态度:缩小与增长中的城市

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This paper explores the use of powerful new software tools and social media data that can be used to study the attitudes of people in urban places. In particular, it uses propensity scoring to develop matched pairs of mid-sized US cities in the North East and Midwest, where the most significant difference between each pair is that of population decline. This resulted in a group of fifty declining cities matched with fifty growing or stable cities. Over 300,000 Twitter posts were collected over the course of two months, each analysed for either positive or negative sentiment. After running difference-of-means tests, we found that sentiment in the declining cities does not differ in a statistically significant manner from that in stable and growing cities. These findings suggest that real opportunities exist the better to understand urban attitudes through sentiment analysis of Twitter data.
机译:本文探讨了功能强大的新型软件工具和社交媒体数据的使用,这些工​​具可用于研究城市居民的态度。尤其是,它使用倾向性评分来发展成对的美国东北部和中西部城市,其中每对之间最显着的差异是人口下降。这导致了一组五十个下降的城市,以及五十个正在成长或稳定的城市。在两个月的过程中,收集了超过300,000个Twitter帖子,每个帖子都分析了正面或负面情绪。在进行均值差异测试后,我们发现下降的城市中的情绪与稳定且增长中的城市在统计上没有显着差异。这些发现表明,通过对Twitter数据的情感分析,存在更好的机会来更好地理解城市态度。

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