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Invisible Data: A Framework for Understanding Visibility Processes in Social Media Data

机译:隐形数据:了解社交媒体数据中可见流程的框架

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Social media data are increasingly used to study a variety of social phenomena. This development is based on the assumption that digital traces left on social media can provide insights into the nature of human interaction. In this research, we turn our attention to what remains invisible in research based on social media data. Using Andrea Brighenti’s work on “social visibility” as a point of departure, we unpack data invisibilities, as they are created within four dimensions: people and intentionality, technologies and tools, accessibility and form, and meaning and imaginaries. We introduce the notion of quasi-visible data as an intermediary between visible and invisible data highlighting the processual character of data invisibilities. With this conceptual framework, we contribute to developing a more reflective and ethical field of research into the study of social phenomena based on social media data. We conclude by arguing that distancing ourselves from the assumption that all social media data are visible and focusing on the invisible will enhance our understanding of digital data.
机译:社交媒体数据越来越多地用于研究各种社会现象。这种发展基于对社交媒体上留下的数字痕迹可以提供对人类互动性质的洞察。在这项研究中,我们将注意力根据社交媒体数据的研究中仍然隐蔽的内容。使用Andrea Brighenti对“社会能见度”的工作作为出发点,我们解开数据入侵,因为它们在四个方面创建:人员和有意,技术和工具,可访问性和形式以及意义和富有象征。我们将准可见数据的概念介绍为可见和隐形数据之间的中介,突出显示数据羽毛的处理特征。凭借这一概念框架,我们为基于社交媒体数据的社会现象的研究开发了更加反思和道德研究的研究。我们通过争辩说,从假设所有社交媒体数据都是可见并关注隐形的假设,我们的结论将增强我们对数字数据的理解。

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