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  1. Democratizing AI from a Sociotechnical Perspective.Merel Noorman & Tsjalling Swierstra - 2023 - Minds and Machines 33 (4):563-586.
    Artificial Intelligence (AI) technologies offer new ways of conducting decision-making tasks that influence the daily lives of citizens, such as coordinating traffic, energy distributions, and crowd flows. They can sort, rank, and prioritize the distribution of fines or public funds and resources. Many of the changes that AI technologies promise to bring to such tasks pertain to decisions that are collectively binding. When these technologies become part of critical infrastructures, such as energy networks, citizens are affected by these decisions whether (...)
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  • Research and Practice of AI Ethics: A Case Study Approach Juxtaposing Academic Discourse with Organisational Reality.Bernd Stahl, Kevin Macnish, Tilimbe Jiya, Laurence Brooks, Josephina Antoniou & Mark Ryan - 2021 - Science and Engineering Ethics 27 (2):1-29.
    This study investigates the ethical use of Big Data and Artificial Intelligence (AI) technologies (BD + AI)—using an empirical approach. The paper categorises the current literature and presents a multi-case study of 'on-the-ground' ethical issues that uses qualitative tools to analyse findings from ten targeted case-studies from a range of domains. The analysis coalesces identified singular ethical issues, (from the literature), into clusters to offer a comparison with the proposed classification in the literature. The results show that despite the variety (...)
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  • Invisible: People with Disability and (In)equity in Precision Medicine Research.Maya Sabatello & Katherine E. McDonald - 2024 - American Journal of Bioethics 24 (3):103-106.
    Galasso (2024) shares findings from narrative analyses of relevant constituting material of and interviews with leaders in two national precision medicine research (PMR) programs: 100KGP of Genomic...
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  • The Urgent Need for Health Data Justice in Precision Medicine.James Shaw, Sharifah Sekalala & Amelia Fiske - 2024 - American Journal of Bioethics 24 (3):101-103.
    The inclusion of members of structurally marginalized communities in data-intensive innovation initiatives, such as precision medicine projects, is an urgent contemporary issue. On the one hand, th...
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  • Smart cities: reviewing the debate about their ethical implications.Marta Ziosi, Benjamin Hewitt, Prathm Juneja, Mariarosaria Taddeo & Luciano Floridi - forthcoming - AI and Society:1-16.
    This paper considers a host of definitions and labels attached to the concept of smart cities to identify four dimensions that ground a review of ethical concerns emerging from the current debate. These are: network infrastructure, with the corresponding concerns of control, surveillance, and data privacy and ownership; post-political governance, embodied in the tensions between public and private decision-making and cities as post-political entities; social inclusion, expressed in the aspects of citizen participation and inclusion, and inequality and discrimination; and sustainability, (...)
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  • Specifying a principle of cryptographic justice as a response to the problem of going dark.Michael Wilson - 2023 - Ethics and Information Technology 25 (3):1-15.
    Over the past decade, the Five Eyes Intelligence community has argued cryptosystems with end-to-end encryption (E2EE) are disrupting the acquisition and analysis of digital evidence. They have labelled this phenomenon the ‘problem of going dark’. Consequently, several jurisdictions have passed ‘responsible encryption’ laws that limit access to E2EE. Based upon a rhetorical analysis (Cunningham in Understanding rhetoric: a guide to critical reading and argumentation, BrownWalker Press, Boca Raton, 2018) of official statements about ‘going dark’, it is argued there is a (...)
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  • From FAIR data to fair data use: Methodological data fairness in health-related social media research.Hywel Williams, Lora Fleming, Benedict W. Wheeler, Rebecca Lovell & Sabina Leonelli - 2021 - Big Data and Society 8 (1).
    The paper problematises the reliability and ethics of using social media data, such as sourced from Twitter or Instagram, to carry out health-related research. As in many other domains, the opportunity to mine social media for information has been hailed as transformative for research on well-being and disease. Considerations around the fairness, responsibilities and accountabilities relating to using such data have often been set aside, on the understanding that as long as data were anonymised, no real ethical or scientific issue (...)
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  • Modeling Ethics: Approaches to Data Creep in Higher Education.Madisson Whitman - 2021 - Science and Engineering Ethics 27 (6):1-18.
    Though rapid collection of big data is ubiquitous across domains, from industry settings to academic contexts, the ethics of big data collection and research are contested. A nexus of data ethics issues is the concept of creep, or repurposing of data for other applications or research beyond the conditions of original collection. Data creep has proven controversial and has prompted concerns about the scope of ethical oversight. Institutional review boards offer little guidance regarding big data, and problematic research can still (...)
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  • Establishing a social licence for Financial Technology: Reflections on the role of the private sector in pursuing ethical data practices.Aad van Moorsel, Karen Elliott, Kovila Coopamootoo, Peter Carmichael, Ehsan Toreini & Mhairi Aitken - 2020 - Big Data and Society 7 (1).
    Current attention directed at ethical dimensions of data and Artificial Intelligence have led to increasing recognition of the need to secure and maintain public support for uses of people’s data. This is essential to establish a “Social Licence” for current and future practices. The notion of a “Social Licence” recognises that there can be meaningful differences between what is legally permissible and what is socially acceptable. Establishing a Social Licence entails public engagement to build relationships of trust and ensure that (...)
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  • Critical companionship: Some sensibilities for studying the lived experience of data subjects.Ranjit Singh & Malte Ziewitz - 2021 - Big Data and Society 8 (2).
    What are the challenges of turning data subjects into research participants—and how can we approach this task responsibly? In this paper, we develop a methodology for studying the lived experiences of people who are subject to automated scoring systems. Unlike most media technologies, automated scoring systems are designed to track and rate specific qualities of people without their active participation. Credit scoring, risk assessments, and predictive policing all operate obliquely in the background long before they come to matter. In doing (...)
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  • When digital health meets digital capitalism, how many common goods are at stake?Tamar Sharon - 2018 - Big Data and Society 5 (2).
    In recent years, all major consumer technology corporations have moved into the domain of health research. This ‘Googlization of health research’ begs the question of how the common good will be served in this research. As critical data scholars contend, such phenomena must be situated within the political economy of digital capitalism in order to foreground the question of public interest and the common good. Here, trends like GHR are framed within a double, incommensurable logic, where private gain and economic (...)
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  • Social media and microtargeting: Political data processing and the consequences for Germany.Orestis Papakyriakopoulos, Simon Hegelich, Morteza Shahrezaye & Juan Carlos Medina Serrano - 2018 - Big Data and Society 5 (2).
    Amongst other methods, political campaigns employ microtargeting, a specific technique used to address the individual voter. In the US, microtargeting relies on a broad set of collected data about the individual. However, due to the unavailability of comparable data in Germany, the practice of microtargeting is far more challenging. Citizens in Germany widely treat social media platforms as a means for political debate. The digital traces they leave through their interactions provide a rich information pool, which can create the necessary (...)
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  • Between surveillance and recognition: Rethinking digital identity in aid.Emrys Schoemaker, Aaron Martin, Margie Cheesman & Keren Weitzberg - 2021 - Big Data and Society 8 (1).
    Identification technologies like biometrics have long been associated with securitisation, coercion and surveillance but have also, in recent years, become constitutive of a politics of empowerment, particularly in contexts of international aid. Aid organisations tend to see digital identification technologies as tools of recognition and inclusion rather than oppressive forms of monitoring, tracking and top-down control. In addition, practices that many critical scholars describe as aiding surveillance are often experienced differently by humanitarian subjects. This commentary examines the fraught questions this (...)
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  • What is responsible and sustainable data science?Nadezhda Purtova & Linnet Taylor - 2019 - Big Data and Society 6 (2).
    In the expansion of health ecosystems, issues of responsibility and sustainability of the data science involved are central. The idea that these values should be central to the practice of data science is increasingly gaining traction, yet there is no agreement on what exactly makes data science responsible or sustainable because these concepts prove slippery when applied to a global field involving commercial, academic and governmental actors. This lack of clarity is causing problems in setting goals and boundaries for data (...)
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  • Political machines: a framework for studying politics in social machines.Orestis Papakyriakopoulos - 2022 - AI and Society 37 (1):113-130.
    In the age of ubiquitous computing and artificially intelligent applications, social machines serves as a powerful framework for understanding and interpreting interactions in socio-algorithmic ecosystems. Although researchers have largely used it to analyze the interactions of individuals and algorithms, limited attempts have been made to investigate the politics in social machines. In this study, I claim that social machines are per se political machines, and introduce a five-point framework for classifying influence processes in socio-algorithmic ecosystems. By drawing from scholars from (...)
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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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  • Engaging with ethics in Internet of Things: Imaginaries in the social milieu of technology developers.Selena Nemorin, Alison Powell & Funda Ustek-Spilda - 2019 - Big Data and Society 6 (2).
    Discussions about ethics of Big Data often focus on the ethics of data processing: collecting, storing, handling, analysing and sharing data. Data-based systems, however, do not come from nowhere. They are designed and brought into being within social spaces – or social milieu. This paper connects philosophical considerations of individual and collective capacity to enact practical reason to the influence of social spaces. Building a deeper engagement with the social imaginaries of technology development through analysis of two years of fieldwork (...)
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  • A Hippocratic Oath for mathematicians? Mapping the landscape of ethics in mathematics.Dennis Müller, Maurice Chiodo & James Franklin - 2022 - Science and Engineering Ethics 28 (5):1-30.
    While the consequences of mathematically-based software, algorithms and strategies have become ever wider and better appreciated, ethical reflection on mathematics has remained primitive. We review the somewhat disconnected suggestions of commentators in recent decades with a view to piecing together a coherent approach to ethics in mathematics. Calls for a Hippocratic Oath for mathematicians are examined and it is concluded that while lessons can be learned from the medical profession, the relation of mathematicians to those affected by their work is (...)
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  • COVID-19: What does it mean for digital social protection?Silvia Masiero - 2020 - Big Data and Society 7 (2).
    COVID-19 has hit a world in which social protection schemes are increasingly augmented with digital measures. Digital identity schemes are especially being adopted to match citizens’ data with social protection entitlements, enabling authentication through demographic and, increasingly, biometric data at the point of access. In this commentary, I discuss three sets of implications that COVID-19 has yielded on digital social protection, whose central trade-off – increasing the probabilities of accurate user identification, at the cost of greater exclusions – has become (...)
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  • Introduction to the Special Theme: The expansion of the health data ecosystem – Rethinking data ethics and governance.Federica Lucivero & Tamar Sharon - 2019 - Big Data and Society 6 (2).
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  • Big Data, Big Waste? A Reflection on the Environmental Sustainability of Big Data Initiatives.Federica Lucivero - 2020 - Science and Engineering Ethics 26 (2):1009-1030.
    This paper addresses a problem that has so far been neglected by scholars investigating the ethics of Big Data and policy makers: that is the ethical implications of Big Data initiatives’ environmental impact. Building on literature in environmental studies, cultural studies and Science and Technology Studies, the article draws attention to the physical presence of data, the material configuration of digital service, and the space occupied by data. It then explains how this material and situated character of data raises questions (...)
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  • Big Data, Big Waste? A Reflection on the Environmental Sustainability of Big Data Initiatives.Federica Lucivero - 2020 - Science and Engineering Ethics 26 (2):1009-1030.
    This paper addresses a problem that has so far been neglected by scholars investigating the ethics of Big Data and policy makers: that is the ethical implications of Big Data initiatives’ environmental impact. Building on literature in environmental studies, cultural studies and Science and Technology Studies, the article draws attention to the physical presence of data, the material configuration of digital service, and the space occupied by data. It then explains how this material and situated character of data raises questions (...)
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  • Foundations of Communication/Media/Digital (In)justice.Christian Fuchs - 2021 - Journal of Media Ethics 36 (4):186-201.
    The task of this article is to outline foundations of a Marxist-humanist approach to communication justice, media justice, and digital justice. A dialectical approach to justice is outlined that di...
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  • New but for whom? Discourses of innovation in precision agriculture.Emily Duncan, Alesandros Glaros, Dennis Z. Ross & Eric Nost - 2021 - Agriculture and Human Values 38 (4):1181-1199.
    We describe how the set of tools, practices, and social relations known as “precision agriculture” is defined, promoted, and debated. To do so, we perform a critical discourse analysis of popular and trade press websites. Promoters of precision agriculture champion how big data analytics, automated equipment, and decision-support software will optimize yields in the face of narrow margins and public concern about farming’s environmental impacts. At its core, however, the idea of farmers leveraging digital infrastructure in their operations is not (...)
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  • Grassroots resource mobilization through counter-data action.Carl DiSalvo & Amanda Meng - 2018 - Big Data and Society 5 (2).
    In this paper, we document the counter-data action and data activism of a grassroots affordable housing advocacy group in Atlanta. Our observation and insight into these data activities and strategies are achieved through ethnographic and engaged research and participatory design. We find that counter-data action through community-collected data is rooted in a legacy of Atlanta’s black activism and black scholarship; that this data activism enabled resource mobilization and critical conscious making; and that design and media production are essential post counter-data (...)
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  • Biometric identity systems in law enforcement and the politics of (voice) recognition: The case of SiiP.Lina Dencik, Javier Sánchez-Monedero & Fieke Jansen - 2021 - Big Data and Society 8 (2).
    Biometric identity systems are now a prominent feature of contemporary law enforcement, including in Europe. Often advanced on the premise of efficiency and accuracy, they have also been the subject of significant controversy. Much attention has focussed on longer-standing biometric data collection, such as finger-printing and facial recognition, foregrounding concerns with the impact such technologies can have on the nature of policing and fundamental human rights. Less researched is the growing use of voice recognition in law enforcement. This paper examines (...)
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  • Advancing Data Justice in Public Health and Beyond.Lina Dencik - 2020 - American Journal of Bioethics 20 (10):32-33.
    Volume 20, Issue 10, October 2020, Page 32-33.
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  • ‘The interface of the future’: Mixed reality, intimate data and imagined temporalities.Marcus Carter & Ben Egliston - 2022 - Big Data and Society 9 (1).
    This article examines discourses about mixed reality as a data-rich sensing technology – specifically, engaging with discourses of time as framed by developers, engineers and in corporate PR and marketing in a range of public facing materials. We focus on four main settings in which mixed reality is imagined to be used, and in which time was a dominant discursive theme – the development of mixed reality by big tech companies, the use of mixed reality for defence, mixed reality as (...)
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  • Advancing a Data Justice Framework for Public Health Surveillance.Mara Buchbinder, Eric Juengst, Stuart Rennie, Colleen Blue & David L. Rosen - 2022 - AJOB Empirical Bioethics 13 (3):205-213.
    Background Bioethical debates about privacy, big data, and public health surveillance have not sufficiently engaged the perspectives of those being surveilled. The data justice framework suggests that big data applications have the potential to create disproportionate harm for socially marginalized groups. Using examples from our research on HIV surveillance for individuals incarcerated in jails, we analyze ethical issues in deploying big data in public health surveillance. -/- Methods We conducted qualitative, semi-structured interviews with 24 people living with HIV who had (...)
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  • Just data? Solidarity and justice in data-driven medicine.Matthias Braun & Patrik Hummel - 2020 - Life Sciences, Society and Policy 16 (1):1-18.
    This paper argues that data-driven medicine gives rise to a particular normative challenge. Against the backdrop of a distinction between the good and the right, harnessing personal health data towards the development and refinement of data-driven medicine is to be welcomed from the perspective of the good. Enacting solidarity drives progress in research and clinical practice. At the same time, such acts of sharing could—especially considering current developments in big data and artificial intelligence—compromise the right by leading to injustices and (...)
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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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  • How Data Governance Principles Influence Participation in Biodiversity Science.Beckett Sterner & Steve Elliott - 2023 - Science as Culture.
    Biodiversity science is in a pivotal period when diverse groups of actors—including researchers, businesses, national governments, and Indigenous Peoples—are negotiating wide-ranging norms for governing and managing biodiversity data in digital repositories. These repositories, often called biodiversity data portals, are a type of organization for which governance can address or perpetuate the colonial history of biodiversity science and current inequities. Researchers and Indigenous Peoples are developing and implementing new strategies to examine and change assumptions about which agents should count as salient (...)
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