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Coupling sentiment and human mobility in natural disasters: a Twitter-based study of the 2014 South Napa Earthquake

机译:自然灾害中的耦合情绪和人类流动性:基于Twitter的2014年南纳帕地震研究

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摘要

Understanding population dynamics during natural disasters is important to build urban resilience in preparation for extreme events. Social media has emerged as an important source for disaster managers to identify dynamic polarity of sentiments over the course of disasters, to understand human mobility patterns, and to enhance decision making and disaster recovery efforts. Although there is a growing body of literature on sentiment and human mobility in disaster contexts, the spatiotemporal characteristics of sentiment and the relationship between sentiment and mobility over time have not been investigated in detail. This study therefore addresses this research gap and proposes a new lens to evaluate population dynamics during disasters by coupling sentiment and mobility. We collected 3.74 million geotagged tweets over 8 weeks to examine individuals' sentiment and mobility before, during and after the M6.0 South Napa, California Earthquake in 2014. Our research results reveal that the average sentiment level decreases with the increasing intensity of the earthquake. We found that similar levels of sentiment tended to cluster in geographical space, and this spatial autocorrelation was significant over areas of different earthquake intensities. Moreover, we investigated the relationship between temporal dynamics of sentiment and mobility. We examined the trend and seasonality of the time series and found cointegration between the series. We included effects of the earthquake and built a segmented regression model to describe the time series finding that day-to-day changes in sentiment can either lead or lag daily changed mobility patterns. This study contributes a new lens to assess the dynamic process of disaster resilience unfolding over large spatial scales.
机译:在自然灾害期间了解人口动态对于建立全部恢复力来说,为建设极端事件而言非常重要。社交媒体已成为灾害管理者在灾害过程中识别情绪动态极性的重要来源,以了解人类流动模式,并加强决策和灾难恢复努力。虽然在灾害环境中有情绪和人类流动的情绪中存在越来越大的文献,但尚未详细研究了情绪的时尚特征和情绪与流动性之间的关系。因此,本研究解决了该研究差距,并提出了一种通过耦合情绪和移动性来评估灾害期间的人群动态。我们在2014年加州地震M6.0南纳地区M6.0南纳帕的374万次地理标枪推文中收集了374万次地理衰减推文,以检查南纳巴的M6.0南纳帕,以及我们的研究结果表明,随着地震强度的增加,平均情绪水平降低了平均情绪水平降低。我们发现,在地理空间中相似的情绪趋势,并且这种空间自相关在不同地震强度的区域上是显着的。此外,我们调查了情绪和移动性的时间动态之间的关系。我们审查了时间序列的趋势和季节性,并在系列之间找到了协整。我们包括地震的效果,并建立了分段回归模型,以描述时序序列发现情绪的日常变化可以引导或滞后日常发生更改的移动模式。这项研究有助于评估灾难恢复力的动态过程展现在大型空间尺度上的动态过程。

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