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  1. The digital divide is a multi-dimensional complex.Simon Rogerson - 2020 - Journal of Information, Communication and Ethics in Society 18 (3):321-321.
    Since the advent of accessible online computing, the digital divide existed, it exists today and it will exist tomorrow. It means that almost every aspect of life will be affected, particularly for those who are most vulnerable for whatever reason. It is important that research-informed action addresses this unacceptable state. In this special issue, a number of perspectives are taken to consider different aspects of the digital divide. In total, they illustrate the synergistic value of crossing disciplinary boundaries and adopting (...)
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  • The news framing of artificial intelligence: a critical exploration of how media discourses make sense of automation.Dennis Nguyen & Erik Hekman - forthcoming - AI and Society:1-15.
    Analysing how news media portray A.I. reveals what interpretative frameworks around the technology circulate in public discourses. This allows for critical reflections on the making of meaning in prevalent narratives about A.I. and its impact. While research on the public perception of datafication and automation is growing, only a few studies investigate news framing practices. The present study connects to this nascent research area by charting A.I. news frames in four internationally renowned media outlets: The New York Times, The Guardian, (...)
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  • Emerging models of data governance in the age of datafication.Anna Berti Suman, Max Craglia, Marisa Ponti & Marina Micheli - 2020 - Big Data and Society 7 (2).
    The article examines four models of data governance emerging in the current platform society. While major attention is currently given to the dominant model of corporate platforms collecting and economically exploiting massive amounts of personal data, other actors, such as small businesses, public bodies and civic society, take also part in data governance. The article sheds light on four models emerging from the practices of these actors: data sharing pools, data cooperatives, public data trusts and personal data sovereignty. We propose (...)
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  • Developing data capability with non-profit organisations using participatory methods.Julia Stoyanovich, Jane Farmer, Alexia Maddox, Kath Albury, Xiaofang Yao & Anthony McCosker - 2022 - Big Data and Society 9 (1).
    In this paper, we explore the methodologies underpinning two participatory research collaborations with Australian non-profit organisations that aimed to build data capability and social benefit in data use. We suggest that studying and intervening in data practices in situ, that is, in organisational data settings expands opportunities for improving the social value of data. These situated and collaborative approaches not only address the ‘expertise lag’ for non-profits but also help to realign the potential social value of organisational data use. We (...)
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  • Data ratcheting and data-driven organisational change in transport.Liam Heaphy - 2019 - Big Data and Society 6 (2).
    This article explores the process by which intelligent transport system technologies have further advanced a data-driven culture in public transport and traffic control. Based on 12 interviews with transport engineers and fieldwork visits to three control rooms, it follows the implementation of Real-Time Passenger Information in Dublin and the various technologies on which it is dependent. It uses the concept of ‘data ratcheting’ to describe how a new data-driven rational order supplants a gradualist, conservative ethos, creating technological dependencies that pressure (...)
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  • Beyond data transactions: a framework for meaningfully informed data donation.Alejandra Gomez Ortega, Jacky Bourgeois, Wiebke Toussaint Hutiri & Gerd Kortuem - forthcoming - AI and Society:1-18.
    As we navigate physical (e.g., supermarket) and digital (e.g., social media) systems, we generate personal data about our behavior. Researchers and designers increasingly rely on this data and appeal to several approaches to collect it. One of these is data donation, which encourages people to voluntarily transfer their (personal) data collected by external parties to a specific cause. One of the central pillars of data donation is informed consent, meaning people should be _adequately informed_ about what and how their data (...)
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  • An invitation to critical social science of big data: from critical theory and critical research to omniresistance.Ulaş Başar Gezgin - 2020 - AI and Society 35 (1):187-195.
    How a social science of big data would look like? In this article, we exemplify such a social science through a number of cases. We start our discussion with the epistemic qualities of big data. We point out to the fact that contrary to the big data champions, big data is neither new nor a miracle without any error nor reliable and rigorous as assumed by its cheer leaders. Secondly, we identify three types of big data: natural big data, artificial (...)
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  • Opening the black box of data-based school monitoring: Data infrastructures, flows and practices in state education agencies.Annina Förschler & Sigrid Hartong - 2019 - Big Data and Society 6 (1).
    Contributing to a rising number of Critical Data Studies which seek to understand and critically reflect on the increasing datafication and digitalisation of governance, this paper focuses on the field of school monitoring, in particular on digital data infrastructures, flows and practices in state education agencies. Our goal is to examine selected features of the enactment of datafication and, hence, to open up what has widely remained a black box for most education researchers. Our findings are based on interviews conducted (...)
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  • Data diaries: A situated approach to the study of data.Giovanni Dolif Neto, Flávio Horita, João Porto de Albuquerque, Mário Henrique da Mata Martins & Nathaniel Tkacz - 2021 - Big Data and Society 8 (1).
    This article adapts the ethnographic medium of the diary to develop a method for studying data and related data practices. The article focuses on the creation of one data diary, developed iteratively over three years in the context of a national centre for monitoring disasters and natural hazards in Brazil. We describe four points of focus involved in the creation of a data diary – spaces, interfaces, types and situations – before reflecting on the value of this method. We suggest (...)
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