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Happy or not: Generating topic-based emotional heatmaps for Culturomics using CyberGIS

机译:开心与否:使用Cyber​​GIS为文化学生成基于主题的情感热图

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The field of Culturomics exploits “big data” to explore human society at population scale. Culturomics increasingly needs to consider geographic contexts and, thus, this research develops a geospatial visual analytical approach that transforms vast amounts of textual data into emotional heatmaps with fine-grained spatial resolution. Fulltext geocoding and sentiment mining extract locations and latent “tone” from text-based data, which are combined with spatial analysis methods — kernel density estimation and spatial interpolation — to generate heatmaps that capture the interplay of location, topic, and tone toward narrative impacts. To demonstrate the effectiveness of the approach, the complete English edition of Wikipedia is processed using a supercomputer to extract all locations and tone associated with the year of 2003. An emotional heatmap of Wikipedia's discussion of “armed conflict” for that year is created using the spatial analysis methods. Unlike previous research, our approach is designed for exploratory spatial analysis of topics in text archives by incorporating multiple attributes including the prominence of each location mentioned in the text, the density of a topic at each location compared to other topics, and the tone of the topics of interest into a single analysis. The generation of such fine-grained emotional heatmaps is computationally intensive particularly when accounting for the multiple attributes at fine scales. Therefore a CyberGIS platform based on national cyberinfrastructure in the United States is used to enable the computationally intensive visual analytics.
机译:文化学领域利用“大数据”在人口规模上探索人类社会。文化学越来越需要考虑地理环境,因此,本研究开发了一种地理空间视觉分析方法,该方法将大量文本数据转换为具有细粒度空间分辨率的情感热图。全文地理编码和情感挖掘从基于文本的数据中提取位置和潜在的“基调”,并与空间分析方法(内核密度估计和空间插值)相结合,生成热图,以捕获位置,主题和基调对叙述影响的相互作用。为了证明该方法的有效性,使用超级计算机处理了完整的英文版Wikipedia,以提取与2003年相关的所有位置和语调。使用该方法创建了Wikipedia关于该年“武装冲突”的讨论的情感热点图。空间分析方法。与以前的研究不同,我们的方法旨在通过合并多个属性(包括文本中提到的每个位置的突出程度,每个位置与其他主题相比的每个主题的密度)以及多种属性来对文本档案中的主题进行探索性空间分析。对感兴趣的主题进行单一分析。这种细粒度的情感热图的生成需要大量的计算量,尤其是在精细尺度上考虑多个属性时。因此,使用基于美国国家网络基础设施的Cyber​​GIS平台来启用计算密集型视觉分析。

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