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COVIs: Supporting Temporal Visual Analysis of Covid-19 Events Usable in Data-Driven Journalism

机译:COVIS:支持在数据驱动的新闻中可用的Covid-19活动的时间视觉分析

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Caused by a newly discovered coronavirus, COVID-19 is an infectious disease easily transmitted between people through close contacts that had exponential global growth in 2020 and became, in a very short time, a major health, and economic global issue. Real-world data concerning the spread of the disease was quickly made available by different global institutions and resulted in many works involving data visualizations and prediction models. In this paper, (1) we discuss the problem, data aspects, and challenges of COVID-19 data analysis; (2) We propose a Visual Analytics approach (called COVis) combining different temporal aspects of COVID-19 data with the output of a predictive model. This combination supports the estimation of the spread of the disease in different scenarios and allows correlating and monitoring the virus development in relation to different government response events; (3) We evaluate the approach with two domain experts to support the understanding of how our system can facilitate journalistic investigation tasks and (4) we discuss future works and a possible generalization of our solution.
机译:由新发现的冠状病毒引起的,COVID-19是通过在2020年有指数全球经济增长,并成为,在很短的时间内密切接触者,一个主要的健康和经济的全球性问题的人之间容易传播的传染病。有关疾病传播的现实世界数据被不同的全球机构迅速提供,导致许多涉及数据可视化和预测模型的作品。在本文中,(1)我们讨论了Covid-19数据分析的问题,数据方面和挑战; (2)我们提出了一种与预测模型的输出相结合的视觉分析方法(称为CoVIS)与Covid-19数据的不同时间方面。这种组合支持在不同场景中估算疾病的传播,并允许与不同的政府反应事件相关和监测病毒开发; (3)我们评估了两个领域专家的方法,以支持对我们的系统如何促进新闻调查任务和(4)我们讨论未来的作品和可能的解决方案的概括。

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