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Who are happier? Spatio-temporal Analysis of Worldwide Human Emotion Based on Geo-Crowdsourcing Faces

机译:谁更快乐?基于地理覆盖面的全球人类情感的时空分析

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Geotagged social media data provides unprecedented opportunities and meaningful aspects of human analysis in the era of volunteered geographic information (VGI). Previous studies have examined users` emotions shared on these media, while most of them focused on text-based data and ignored diverse images. In this paper, we used a huge global scale image dataset: YFCC100, to extract emotions from photos and to describe the worldwide geographic patterns of human happiness. Two indices of Average Smiling Index (ASI) and Happiness Index (HI) are defined from different perspectives to describe the degree of human happiness in a specific region. We computed the spatio-temporal characteristics of facial expression-based happiness on a global scale and linked them to some demographic variables (ethnicity, gender, age, and nationality). After that, the robust analysis was made to ensure our results are reliable. Results are in accordance with some previous studies and common sense, for example, White and Black are better at expressing happiness than Asian, women are more expressive than men, and happiness expressed varies across space and time. Our research provides a novel methodology for emotion measurement and it could be utilized for assessing a region`s emotion conditions based on geo-crowdsourcing data. Robust analysis results on our dataset indicate that our approaches are reliable and could be implemented in research of human emotions.
机译:地理位置的社交媒体数据在志愿地理信息(VGI)时代,提供了前所未有的机会和人类分析的有意义方面。以前的研究已经检查了在这些媒体上共享的用户的情绪,而大多数集中在基于文本的数据上并忽略不同的图像。在本文中,我们使用了一个巨大的全球范围图像数据集:YFCC100,从照片中提取情绪,并描述人类幸福的全球地理模式。两种平均微观索引(ASI)和幸福指数(HI)的指数由不同的角度定义,以描述特定地区的人类幸福程度。我们在全球范围内计算了基于面部表情的幸福的时空特征,并将它们联系起来给一些人口变量(种族,性别,年龄和国籍)。之后,进行了稳健的分析,以确保我们的结果是可靠的。结果符合以前的一些研究和常识,例如,白色和黑色更好地表达幸福而不是亚洲人,女性更具表现力,而且幸福表达的幸福在空间和时间内变化。我们的研究提供了一种用于情感测量的新方法,可用于评估基于地理覆盖数据的地区的情感条件。我们数据集上的强大分析结果表明我们的方法可靠,可以在人类情绪的研究中实施。

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